* updated libjpeg to version 8, as the previous version on trunk didn't look like version 7, the merge wasn't usable. I modified jpeglib.h to have the JPEGTranslator built.
* added libjpeg to AboutSystem * JPEGTranslator now uses the shared library libjpeg.so git-svn-id: file:///srv/svn/repos/haiku/haiku/trunk@35312 a95241bf-73f2-0310-859d-f6bbb57e9c96
This commit is contained in:
+18
-18
@@ -1,7 +1,8 @@
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/*
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* jerror.h
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*
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* Copyright (C) 1994-1998, Thomas G. Lane.
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* Copyright (C) 1994-1997, Thomas G. Lane.
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* Modified 1997-2009 by Guido Vollbeding.
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* This file is part of the Independent JPEG Group's software.
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* For conditions of distribution and use, see the accompanying README file.
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*
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@@ -39,25 +40,21 @@ typedef enum {
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JMESSAGE(JMSG_NOMESSAGE, "Bogus message code %d") /* Must be first entry! */
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/* For maintenance convenience, list is alphabetical by message code name */
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JMESSAGE(JERR_ARITH_NOTIMPL,
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"Sorry, there are legal restrictions on arithmetic coding")
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JMESSAGE(JERR_BAD_ALIGN_TYPE, "ALIGN_TYPE is wrong, please fix")
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JMESSAGE(JERR_BAD_ALLOC_CHUNK, "MAX_ALLOC_CHUNK is wrong, please fix")
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JMESSAGE(JERR_BAD_BUFFER_MODE, "Bogus buffer control mode")
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JMESSAGE(JERR_BAD_COMPONENT_ID, "Invalid component ID %d in SOS")
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JMESSAGE(JERR_BAD_CROP_SPEC, "Invalid crop request")
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JMESSAGE(JERR_BAD_DCT_COEF, "DCT coefficient out of range")
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JMESSAGE(JERR_BAD_DCTSIZE, "IDCT output block size %d not supported")
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JMESSAGE(JERR_BAD_DIFF, "spatial difference out of range")
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JMESSAGE(JERR_BAD_DCTSIZE, "DCT scaled block size %dx%d not supported")
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JMESSAGE(JERR_BAD_DROP_SAMPLING,
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"Component index %d: mismatching sampling ratio %d:%d, %d:%d, %c")
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JMESSAGE(JERR_BAD_HUFF_TABLE, "Bogus Huffman table definition")
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JMESSAGE(JERR_BAD_IN_COLORSPACE, "Bogus input colorspace")
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JMESSAGE(JERR_BAD_J_COLORSPACE, "Bogus JPEG colorspace")
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JMESSAGE(JERR_BAD_LENGTH, "Bogus marker length")
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JMESSAGE(JERR_BAD_LIB_VERSION,
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"Wrong JPEG library version: library is %d, caller expects %d")
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JMESSAGE(JERR_BAD_LOSSLESS,
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"Invalid lossless parameters Ss=%d Se=%d Ah=%d Al=%d")
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JMESSAGE(JERR_BAD_LOSSLESS_SCRIPT,
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"Invalid lossless parameters at scan script entry %d")
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JMESSAGE(JERR_BAD_MCU_SIZE, "Sampling factors too large for interleaved scan")
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JMESSAGE(JERR_BAD_POOL_ID, "Invalid memory pool code %d")
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JMESSAGE(JERR_BAD_PRECISION, "Unsupported JPEG data precision %d")
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@@ -65,7 +62,6 @@ JMESSAGE(JERR_BAD_PROGRESSION,
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"Invalid progressive parameters Ss=%d Se=%d Ah=%d Al=%d")
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JMESSAGE(JERR_BAD_PROG_SCRIPT,
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"Invalid progressive parameters at scan script entry %d")
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JMESSAGE(JERR_BAD_RESTART, "Invalid restart interval: %d, must be an integer multiple of the number of MCUs in an MCU_row (%d)")
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JMESSAGE(JERR_BAD_SAMPLING, "Bogus sampling factors")
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JMESSAGE(JERR_BAD_SCAN_SCRIPT, "Invalid scan script at entry %d")
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JMESSAGE(JERR_BAD_STATE, "Improper call to JPEG library in state %d")
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@@ -74,8 +70,6 @@ JMESSAGE(JERR_BAD_STRUCT_SIZE,
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JMESSAGE(JERR_BAD_VIRTUAL_ACCESS, "Bogus virtual array access")
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JMESSAGE(JERR_BUFFER_SIZE, "Buffer passed to JPEG library is too small")
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JMESSAGE(JERR_CANT_SUSPEND, "Suspension not allowed here")
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JMESSAGE(JERR_CANT_TRANSCODE,
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"Cannot transcode to/from lossless JPEG datastreams")
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JMESSAGE(JERR_CCIR601_NOTIMPL, "CCIR601 sampling not implemented yet")
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JMESSAGE(JERR_COMPONENT_COUNT, "Too many color components: %d, max %d")
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JMESSAGE(JERR_CONVERSION_NOTIMPL, "Unsupported color conversion request")
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@@ -101,10 +95,10 @@ JMESSAGE(JERR_MISSING_DATA, "Scan script does not transmit all data")
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JMESSAGE(JERR_MODE_CHANGE, "Invalid color quantization mode change")
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JMESSAGE(JERR_NOTIMPL, "Not implemented yet")
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JMESSAGE(JERR_NOT_COMPILED, "Requested feature was omitted at compile time")
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JMESSAGE(JERR_NO_ARITH_TABLE, "Arithmetic table 0x%02x was not defined")
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JMESSAGE(JERR_NO_BACKING_STORE, "Backing store not supported")
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JMESSAGE(JERR_NO_HUFF_TABLE, "Huffman table 0x%02x was not defined")
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JMESSAGE(JERR_NO_IMAGE, "JPEG datastream contains no image")
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JMESSAGE(JERR_NO_LOSSLESS_SCRIPT, "Lossless encoding was requested but no scan script was supplied")
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JMESSAGE(JERR_NO_QUANT_TABLE, "Quantization table 0x%02x was not defined")
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JMESSAGE(JERR_NO_SOI, "Not a JPEG file: starts with 0x%02x 0x%02x")
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JMESSAGE(JERR_OUT_OF_MEMORY, "Insufficient memory (case %d)")
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@@ -174,13 +168,12 @@ JMESSAGE(JTRC_THUMB_PALETTE,
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"JFIF extension marker: palette thumbnail image, length %u")
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JMESSAGE(JTRC_THUMB_RGB,
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"JFIF extension marker: RGB thumbnail image, length %u")
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JMESSAGE(JTRC_UNKNOWN_LOSSLESS_IDS,
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"Unrecognized component IDs %d %d %d, assuming RGB")
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JMESSAGE(JTRC_UNKNOWN_LOSSY_IDS,
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JMESSAGE(JTRC_UNKNOWN_IDS,
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"Unrecognized component IDs %d %d %d, assuming YCbCr")
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JMESSAGE(JTRC_XMS_CLOSE, "Freed XMS handle %u")
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JMESSAGE(JTRC_XMS_OPEN, "Obtained XMS handle %u")
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JMESSAGE(JWRN_ADOBE_XFORM, "Unknown Adobe color transform code %d")
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JMESSAGE(JWRN_ARITH_BAD_CODE, "Corrupt JPEG data: bad arithmetic code")
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JMESSAGE(JWRN_BOGUS_PROGRESSION,
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"Inconsistent progression sequence for component %d coefficient %d")
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JMESSAGE(JWRN_EXTRANEOUS_DATA,
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@@ -189,8 +182,6 @@ JMESSAGE(JWRN_HIT_MARKER, "Corrupt JPEG data: premature end of data segment")
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JMESSAGE(JWRN_HUFF_BAD_CODE, "Corrupt JPEG data: bad Huffman code")
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JMESSAGE(JWRN_JFIF_MAJOR, "Warning: unknown JFIF revision number %d.%02d")
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JMESSAGE(JWRN_JPEG_EOF, "Premature end of JPEG file")
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JMESSAGE(JWRN_MUST_DOWNSCALE,
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"Must downscale data from %d bits to %d")
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JMESSAGE(JWRN_MUST_RESYNC,
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"Corrupt JPEG data: found marker 0x%02x instead of RST%d")
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JMESSAGE(JWRN_NOT_SEQUENTIAL, "Invalid SOS parameters for sequential JPEG")
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@@ -240,6 +231,15 @@ JMESSAGE(JWRN_TOO_MUCH_DATA, "Application transferred too many scanlines")
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(cinfo)->err->msg_parm.i[2] = (p3), \
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(cinfo)->err->msg_parm.i[3] = (p4), \
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(*(cinfo)->err->error_exit) ((j_common_ptr) (cinfo)))
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#define ERREXIT6(cinfo,code,p1,p2,p3,p4,p5,p6) \
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((cinfo)->err->msg_code = (code), \
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(cinfo)->err->msg_parm.i[0] = (p1), \
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(cinfo)->err->msg_parm.i[1] = (p2), \
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(cinfo)->err->msg_parm.i[2] = (p3), \
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(cinfo)->err->msg_parm.i[3] = (p4), \
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(cinfo)->err->msg_parm.i[4] = (p5), \
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(cinfo)->err->msg_parm.i[5] = (p6), \
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(*(cinfo)->err->error_exit) ((j_common_ptr) (cinfo)))
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#define ERREXITS(cinfo,code,str) \
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((cinfo)->err->msg_code = (code), \
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strncpy((cinfo)->err->msg_parm.s, (str), JMSG_STR_PARM_MAX), \
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@@ -1,7 +1,8 @@
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/*
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* jmorecfg.h
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*
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||||
* Copyright (C) 1991-1998, Thomas G. Lane.
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* Copyright (C) 1991-1997, Thomas G. Lane.
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* Modified 1997-2009 by Guido Vollbeding.
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* This file is part of the Independent JPEG Group's software.
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* For conditions of distribution and use, see the accompanying README file.
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*
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@@ -90,33 +91,6 @@ typedef short JSAMPLE;
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#endif /* BITS_IN_JSAMPLE == 12 */
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#if BITS_IN_JSAMPLE == 16
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/* JSAMPLE should be the smallest type that will hold the values 0..65535.
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* You can use a signed short by having GETJSAMPLE mask it with 0xFFFF.
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*/
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#ifdef HAVE_UNSIGNED_SHORT
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typedef unsigned short JSAMPLE;
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#define GETJSAMPLE(value) ((int) (value))
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#else /* not HAVE_UNSIGNED_SHORT */
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typedef short JSAMPLE;
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#ifdef SHORT_IS_UNSIGNED
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#define GETJSAMPLE(value) ((int) (value))
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#else
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#define GETJSAMPLE(value) ((int) (value) & 0xFFFF)
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#endif /* SHORT_IS_UNSIGNED */
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#endif /* HAVE_UNSIGNED_SHORT */
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#define MAXJSAMPLE 65535
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#define CENTERJSAMPLE 32768
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#endif /* BITS_IN_JSAMPLE == 16 */
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/* Representation of a DCT frequency coefficient.
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* This should be a signed value of at least 16 bits; "short" is usually OK.
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* Again, we allocate large arrays of these, but you can change to int
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@@ -125,11 +99,6 @@ typedef short JSAMPLE;
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typedef short JCOEF;
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/* Representation of a spatial difference value.
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* This should be a signed value of at least 16 bits; int is usually OK.
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*/
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typedef int JDIFF;
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/* Compressed datastreams are represented as arrays of JOCTET.
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* These must be EXACTLY 8 bits wide, at least once they are written to
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@@ -190,8 +159,14 @@ typedef short INT16;
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/* INT32 must hold at least signed 32-bit values. */
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#ifndef XMD_H /* X11/xmd.h correctly defines INT32 */
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#ifndef _BASETSD_H_ /* Microsoft defines it in basetsd.h */
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#ifndef _BASETSD_H /* MinGW is slightly different */
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#ifndef QGLOBAL_H /* Qt defines it in qglobal.h */
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typedef long INT32;
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#endif
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#endif
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#endif
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#endif
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/* Datatype used for image dimensions. The JPEG standard only supports
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* images up to 64K*64K due to 16-bit fields in SOF markers. Therefore
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@@ -241,11 +216,13 @@ typedef unsigned int JDIMENSION;
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* explicit coding is needed; see uses of the NEED_FAR_POINTERS symbol.
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*/
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#ifndef FAR
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#ifdef NEED_FAR_POINTERS
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#define FAR far
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#else
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#define FAR
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#endif
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#endif
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/*
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@@ -288,8 +265,6 @@ typedef int boolean;
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* (You may HAVE to do that if your compiler doesn't like null source files.)
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*/
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/* Arithmetic coding is unsupported for legal reasons. Complaints to IBM. */
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/* Capability options common to encoder and decoder: */
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#define DCT_ISLOW_SUPPORTED /* slow but accurate integer algorithm */
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@@ -298,31 +273,29 @@ typedef int boolean;
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/* Encoder capability options: */
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#undef C_ARITH_CODING_SUPPORTED /* Arithmetic coding back end? */
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#define C_ARITH_CODING_SUPPORTED /* Arithmetic coding back end? */
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#define C_MULTISCAN_FILES_SUPPORTED /* Multiple-scan JPEG files? */
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#define C_PROGRESSIVE_SUPPORTED /* Progressive JPEG? (Requires MULTISCAN)*/
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#define C_LOSSLESS_SUPPORTED /* Lossless JPEG? */
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#define DCT_SCALING_SUPPORTED /* Input rescaling via DCT? (Requires DCT_ISLOW)*/
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#define ENTROPY_OPT_SUPPORTED /* Optimization of entropy coding parms? */
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/* Note: if you selected 12-bit data precision, it is dangerous to turn off
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* ENTROPY_OPT_SUPPORTED. The standard Huffman tables are only good for 8-bit
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* precision, so jcshuff.c normally uses entropy optimization to compute
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* precision, so jchuff.c normally uses entropy optimization to compute
|
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* usable tables for higher precision. If you don't want to do optimization,
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||||
* you'll have to supply different default Huffman tables.
|
||||
* The exact same statements apply for progressive and lossless JPEG:
|
||||
* the default tables don't work for progressive mode or lossless mode.
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||||
* (This may get fixed, however.)
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||||
* The exact same statements apply for progressive JPEG: the default tables
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||||
* don't work for progressive mode. (This may get fixed, however.)
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*/
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||||
#define INPUT_SMOOTHING_SUPPORTED /* Input image smoothing option? */
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||||
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||||
/* Decoder capability options: */
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||||
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||||
#undef D_ARITH_CODING_SUPPORTED /* Arithmetic coding back end? */
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#define D_ARITH_CODING_SUPPORTED /* Arithmetic coding back end? */
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||||
#define D_MULTISCAN_FILES_SUPPORTED /* Multiple-scan JPEG files? */
|
||||
#define D_PROGRESSIVE_SUPPORTED /* Progressive JPEG? (Requires MULTISCAN)*/
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#define D_LOSSLESS_SUPPORTED /* Lossless JPEG? */
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#define IDCT_SCALING_SUPPORTED /* Output rescaling via IDCT? */
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#define SAVE_MARKERS_SUPPORTED /* jpeg_save_markers() needed? */
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#define BLOCK_SMOOTHING_SUPPORTED /* Block smoothing? (Progressive only) */
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#define IDCT_SCALING_SUPPORTED /* Output rescaling via IDCT? */
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#undef UPSAMPLE_SCALING_SUPPORTED /* Output rescaling at upsample stage? */
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||||
#define UPSAMPLE_MERGING_SUPPORTED /* Fast path for sloppy upsampling? */
|
||||
#define QUANT_1PASS_SUPPORTED /* 1-pass color quantization? */
|
||||
|
||||
+120
-93
@@ -2,6 +2,7 @@
|
||||
* jpeglib.h
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Modified 2002-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -25,17 +26,21 @@
|
||||
#endif
|
||||
#include "jmorecfg.h" /* seldom changed options */
|
||||
|
||||
#ifdef __HAIKU__
|
||||
#include <setjmp.h>
|
||||
#endif
|
||||
|
||||
#ifdef __cplusplus
|
||||
#ifndef DONT_USE_EXTERN_C
|
||||
extern "C" {
|
||||
#endif
|
||||
#endif
|
||||
|
||||
/* Version ID for the JPEG library.
|
||||
* Might be useful for tests like "#if JPEG_LIB_VERSION >= 60".
|
||||
* Might be useful for tests like "#if JPEG_LIB_VERSION >= 80".
|
||||
*/
|
||||
|
||||
#define JPEG_LIB_VERSION 62 /* Version 6b */
|
||||
#define JPEG_LIB_VERSION 80 /* Version 8.0 */
|
||||
|
||||
|
||||
/* Various constants determining the sizes of things.
|
||||
@@ -51,16 +56,15 @@ extern "C" {
|
||||
#define MAX_COMPS_IN_SCAN 4 /* JPEG limit on # of components in one scan */
|
||||
#define MAX_SAMP_FACTOR 4 /* JPEG limit on sampling factors */
|
||||
/* Unfortunately, some bozo at Adobe saw no reason to be bound by the standard;
|
||||
* the PostScript DCT filter can emit files with many more than 10 data units
|
||||
* per MCU.
|
||||
* If you happen to run across such a file, you can up D_MAX_DATA_UNITS_IN_MCU
|
||||
* the PostScript DCT filter can emit files with many more than 10 blocks/MCU.
|
||||
* If you happen to run across such a file, you can up D_MAX_BLOCKS_IN_MCU
|
||||
* to handle it. We even let you do this from the jconfig.h file. However,
|
||||
* we strongly discourage changing C_MAX_DATA_UNITS_IN_MCU; just because Adobe
|
||||
* we strongly discourage changing C_MAX_BLOCKS_IN_MCU; just because Adobe
|
||||
* sometimes emits noncompliant files doesn't mean you should too.
|
||||
*/
|
||||
#define C_MAX_DATA_UNITS_IN_MCU 10 /* compressor's limit on data units/MCU */
|
||||
#ifndef D_MAX_DATA_UNITS_IN_MCU
|
||||
#define D_MAX_DATA_UNITS_IN_MCU 10 /* decompressor's limit on data units/MCU */
|
||||
#define C_MAX_BLOCKS_IN_MCU 10 /* compressor's limit on blocks per MCU */
|
||||
#ifndef D_MAX_BLOCKS_IN_MCU
|
||||
#define D_MAX_BLOCKS_IN_MCU 10 /* decompressor's limit on blocks per MCU */
|
||||
#endif
|
||||
|
||||
|
||||
@@ -80,9 +84,6 @@ typedef JBLOCKARRAY *JBLOCKIMAGE; /* a 3-D array of coefficient blocks */
|
||||
|
||||
typedef JCOEF FAR *JCOEFPTR; /* useful in a couple of places */
|
||||
|
||||
typedef JDIFF FAR *JDIFFROW; /* pointer to one row of difference values */
|
||||
typedef JDIFFROW *JDIFFARRAY; /* ptr to some rows (a 2-D diff array) */
|
||||
typedef JDIFFARRAY *JDIFFIMAGE; /* a 3-D diff array: top index is color */
|
||||
|
||||
/* Types for JPEG compression parameters and working tables. */
|
||||
|
||||
@@ -141,26 +142,24 @@ typedef struct {
|
||||
/* Remaining fields should be treated as private by applications. */
|
||||
|
||||
/* These values are computed during compression or decompression startup: */
|
||||
/* Component's size in data units.
|
||||
* Any dummy data units added to complete an MCU are not counted; therefore
|
||||
/* Component's size in DCT blocks.
|
||||
* Any dummy blocks added to complete an MCU are not counted; therefore
|
||||
* these values do not depend on whether a scan is interleaved or not.
|
||||
*/
|
||||
JDIMENSION width_in_data_units;
|
||||
JDIMENSION height_in_data_units;
|
||||
/* Size of a data unit in/output by the codec (in samples). Always
|
||||
* data_unit for compression. For decompression this is the size of the
|
||||
* output from one data_unit, reflecting any processing performed by the
|
||||
* codec. For example, in the DCT-based codec, scaling may be applied
|
||||
* during the IDCT step. Values of 1,2,4,8 are likely to be supported.
|
||||
* Note that different components may have different codec_data_unit sizes.
|
||||
JDIMENSION width_in_blocks;
|
||||
JDIMENSION height_in_blocks;
|
||||
/* Size of a DCT block in samples,
|
||||
* reflecting any scaling we choose to apply during the DCT step.
|
||||
* Values from 1 to 16 are supported.
|
||||
* Note that different components may receive different DCT scalings.
|
||||
*/
|
||||
int codec_data_unit;
|
||||
int DCT_h_scaled_size;
|
||||
int DCT_v_scaled_size;
|
||||
/* The downsampled dimensions are the component's actual, unpadded number
|
||||
* of samples at the main buffer (preprocessing/compression interface), thus
|
||||
* downsampled_width = ceil(image_width * Hi/Hmax)
|
||||
* and similarly for height. For decompression, codec-based processing is
|
||||
* included (ie, IDCT scaling), so
|
||||
* downsampled_width = ceil(image_width * Hi/Hmax * codec_data_unit/data_unit)
|
||||
* of samples at the main buffer (preprocessing/compression interface);
|
||||
* DCT scaling is included, so
|
||||
* downsampled_width = ceil(image_width * Hi/Hmax * DCT_h_scaled_size/DCTSIZE)
|
||||
* and similarly for height.
|
||||
*/
|
||||
JDIMENSION downsampled_width; /* actual width in samples */
|
||||
JDIMENSION downsampled_height; /* actual height in samples */
|
||||
@@ -172,12 +171,12 @@ typedef struct {
|
||||
|
||||
/* These values are computed before starting a scan of the component. */
|
||||
/* The decompressor output side may not use these variables. */
|
||||
int MCU_width; /* number of data units per MCU, horizontally */
|
||||
int MCU_height; /* number of data units per MCU, vertically */
|
||||
int MCU_data_units; /* MCU_width * MCU_height */
|
||||
int MCU_sample_width; /* MCU width in samples, MCU_width*codec_data_unit */
|
||||
int last_col_width; /* # of non-dummy data_units across in last MCU */
|
||||
int last_row_height; /* # of non-dummy data_units down in last MCU */
|
||||
int MCU_width; /* number of blocks per MCU, horizontally */
|
||||
int MCU_height; /* number of blocks per MCU, vertically */
|
||||
int MCU_blocks; /* MCU_width * MCU_height */
|
||||
int MCU_sample_width; /* MCU width in samples: MCU_width * DCT_h_scaled_size */
|
||||
int last_col_width; /* # of non-dummy blocks across in last MCU */
|
||||
int last_row_height; /* # of non-dummy blocks down in last MCU */
|
||||
|
||||
/* Saved quantization table for component; NULL if none yet saved.
|
||||
* See jdinput.c comments about the need for this information.
|
||||
@@ -195,10 +194,8 @@ typedef struct {
|
||||
typedef struct {
|
||||
int comps_in_scan; /* number of components encoded in this scan */
|
||||
int component_index[MAX_COMPS_IN_SCAN]; /* their SOF/comp_info[] indexes */
|
||||
int Ss, Se; /* progressive JPEG spectral selection parms
|
||||
lossless JPEG predictor select parm (Ss) */
|
||||
int Ah, Al; /* progressive JPEG successive approx. parms
|
||||
lossless JPEG point transform parm (Al) */
|
||||
int Ss, Se; /* progressive JPEG spectral selection parms */
|
||||
int Ah, Al; /* progressive JPEG successive approx. parms */
|
||||
} jpeg_scan_info;
|
||||
|
||||
/* The decompressor can save APPn and COM markers in a list of these: */
|
||||
@@ -214,14 +211,6 @@ struct jpeg_marker_struct {
|
||||
/* the marker length word is not counted in data_length or original_length */
|
||||
};
|
||||
|
||||
/* Known codec processes. */
|
||||
|
||||
typedef enum {
|
||||
JPROC_SEQUENTIAL, /* baseline/extended sequential DCT */
|
||||
JPROC_PROGRESSIVE, /* progressive DCT */
|
||||
JPROC_LOSSLESS /* lossless (sequential) */
|
||||
} J_CODEC_PROCESS;
|
||||
|
||||
/* Known color spaces. */
|
||||
|
||||
typedef enum {
|
||||
@@ -311,7 +300,17 @@ struct jpeg_compress_struct {
|
||||
* burnt when new parameters are added. Also note that there are several
|
||||
* helper routines to simplify changing parameters.
|
||||
*/
|
||||
boolean lossless; /* TRUE=lossless encoding, FALSE=lossy */
|
||||
|
||||
unsigned int scale_num, scale_denom; /* fraction by which to scale image */
|
||||
|
||||
JDIMENSION jpeg_width; /* scaled JPEG image width */
|
||||
JDIMENSION jpeg_height; /* scaled JPEG image height */
|
||||
/* Dimensions of actual JPEG image that will be written to file,
|
||||
* derived from input dimensions by scaling factors above.
|
||||
* These fields are computed by jpeg_start_compress().
|
||||
* You can also use jpeg_calc_jpeg_dimensions() to determine these values
|
||||
* in advance of calling jpeg_start_compress().
|
||||
*/
|
||||
|
||||
int data_precision; /* bits of precision in image data */
|
||||
|
||||
@@ -322,7 +321,10 @@ struct jpeg_compress_struct {
|
||||
/* comp_info[i] describes component that appears i'th in SOF */
|
||||
|
||||
JQUANT_TBL * quant_tbl_ptrs[NUM_QUANT_TBLS];
|
||||
/* ptrs to coefficient quantization tables, or NULL if not defined */
|
||||
int q_scale_factor[NUM_QUANT_TBLS];
|
||||
/* ptrs to coefficient quantization tables, or NULL if not defined,
|
||||
* and corresponding scale factors (percentage, initialized 100).
|
||||
*/
|
||||
|
||||
JHUFF_TBL * dc_huff_tbl_ptrs[NUM_HUFF_TBLS];
|
||||
JHUFF_TBL * ac_huff_tbl_ptrs[NUM_HUFF_TBLS];
|
||||
@@ -343,6 +345,7 @@ struct jpeg_compress_struct {
|
||||
boolean arith_code; /* TRUE=arithmetic coding, FALSE=Huffman */
|
||||
boolean optimize_coding; /* TRUE=optimize entropy encoding parms */
|
||||
boolean CCIR601_sampling; /* TRUE=first samples are cosited */
|
||||
boolean do_fancy_downsampling; /* TRUE=apply fancy downsampling */
|
||||
int smoothing_factor; /* 1..100, or 0 for no input smoothing */
|
||||
J_DCT_METHOD dct_method; /* DCT algorithm selector */
|
||||
|
||||
@@ -382,16 +385,17 @@ struct jpeg_compress_struct {
|
||||
/*
|
||||
* These fields are computed during compression startup
|
||||
*/
|
||||
int data_unit; /* size of data unit in samples */
|
||||
J_CODEC_PROCESS process; /* encoding process of JPEG image */
|
||||
|
||||
boolean progressive_mode; /* TRUE if scan script uses progressive mode */
|
||||
int max_h_samp_factor; /* largest h_samp_factor */
|
||||
int max_v_samp_factor; /* largest v_samp_factor */
|
||||
|
||||
JDIMENSION total_iMCU_rows; /* # of iMCU rows to be input to codec */
|
||||
/* The codec receives data in units of MCU rows as defined for fully
|
||||
* interleaved scans (whether the JPEG file is interleaved or not).
|
||||
* There are v_samp_factor * data_unit sample rows of each component in an
|
||||
int min_DCT_h_scaled_size; /* smallest DCT_h_scaled_size of any component */
|
||||
int min_DCT_v_scaled_size; /* smallest DCT_v_scaled_size of any component */
|
||||
|
||||
JDIMENSION total_iMCU_rows; /* # of iMCU rows to be input to coef ctlr */
|
||||
/* The coefficient controller receives data in units of MCU rows as defined
|
||||
* for fully interleaved scans (whether the JPEG file is interleaved or not).
|
||||
* There are v_samp_factor * DCTSIZE sample rows of each component in an
|
||||
* "iMCU" (interleaved MCU) row.
|
||||
*/
|
||||
|
||||
@@ -406,12 +410,16 @@ struct jpeg_compress_struct {
|
||||
JDIMENSION MCUs_per_row; /* # of MCUs across the image */
|
||||
JDIMENSION MCU_rows_in_scan; /* # of MCU rows in the image */
|
||||
|
||||
int data_units_in_MCU; /* # of data units per MCU */
|
||||
int MCU_membership[C_MAX_DATA_UNITS_IN_MCU];
|
||||
int blocks_in_MCU; /* # of DCT blocks per MCU */
|
||||
int MCU_membership[C_MAX_BLOCKS_IN_MCU];
|
||||
/* MCU_membership[i] is index in cur_comp_info of component owning */
|
||||
/* i'th block in an MCU */
|
||||
|
||||
int Ss, Se, Ah, Al; /* progressive/lossless JPEG parameters for scan */
|
||||
int Ss, Se, Ah, Al; /* progressive JPEG parameters for scan */
|
||||
|
||||
int block_size; /* the basic DCT block size: 1..16 */
|
||||
const int * natural_order; /* natural-order position array */
|
||||
int lim_Se; /* min( Se, DCTSIZE2-1 ) */
|
||||
|
||||
/*
|
||||
* Links to compression subobjects (methods and private variables of modules)
|
||||
@@ -419,10 +427,12 @@ struct jpeg_compress_struct {
|
||||
struct jpeg_comp_master * master;
|
||||
struct jpeg_c_main_controller * main;
|
||||
struct jpeg_c_prep_controller * prep;
|
||||
struct jpeg_c_codec * codec;
|
||||
struct jpeg_c_coef_controller * coef;
|
||||
struct jpeg_marker_writer * marker;
|
||||
struct jpeg_color_converter * cconvert;
|
||||
struct jpeg_downsampler * downsample;
|
||||
struct jpeg_forward_dct * fdct;
|
||||
struct jpeg_entropy_encoder * entropy;
|
||||
jpeg_scan_info * script_space; /* workspace for jpeg_simple_progression */
|
||||
int script_space_size;
|
||||
};
|
||||
@@ -557,6 +567,8 @@ struct jpeg_decompress_struct {
|
||||
jpeg_component_info * comp_info;
|
||||
/* comp_info[i] describes component that appears i'th in SOF */
|
||||
|
||||
boolean is_baseline; /* TRUE if Baseline SOF0 encountered */
|
||||
boolean progressive_mode; /* TRUE if SOFn specifies progressive mode */
|
||||
boolean arith_code; /* TRUE=arithmetic coding, FALSE=Huffman */
|
||||
|
||||
UINT8 arith_dc_L[NUM_ARITH_TBLS]; /* L values for DC arith-coding tables */
|
||||
@@ -593,21 +605,19 @@ struct jpeg_decompress_struct {
|
||||
/*
|
||||
* These fields are computed during decompression startup
|
||||
*/
|
||||
int data_unit; /* size of data unit in samples */
|
||||
J_CODEC_PROCESS process; /* decoding process of JPEG image */
|
||||
|
||||
int max_h_samp_factor; /* largest h_samp_factor */
|
||||
int max_v_samp_factor; /* largest v_samp_factor */
|
||||
|
||||
int min_codec_data_unit; /* smallest codec_data_unit of any component */
|
||||
int min_DCT_h_scaled_size; /* smallest DCT_h_scaled_size of any component */
|
||||
int min_DCT_v_scaled_size; /* smallest DCT_v_scaled_size of any component */
|
||||
|
||||
JDIMENSION total_iMCU_rows; /* # of iMCU rows in image */
|
||||
/* The codec's input and output progress is measured in units of "iMCU"
|
||||
* (interleaved MCU) rows. These are the same as MCU rows in fully
|
||||
* interleaved JPEG scans, but are used whether the scan is interleaved
|
||||
* or not. We define an iMCU row as v_samp_factor data_unit rows of each
|
||||
* component. Therefore, the codec output contains
|
||||
* v_samp_factor*codec_data_unit sample rows of a component per iMCU row.
|
||||
/* The coefficient controller's input and output progress is measured in
|
||||
* units of "iMCU" (interleaved MCU) rows. These are the same as MCU rows
|
||||
* in fully interleaved JPEG scans, but are used whether the scan is
|
||||
* interleaved or not. We define an iMCU row as v_samp_factor DCT block
|
||||
* rows of each component. Therefore, the IDCT output contains
|
||||
* v_samp_factor*DCT_v_scaled_size sample rows of a component per iMCU row.
|
||||
*/
|
||||
|
||||
JSAMPLE * sample_range_limit; /* table for fast range-limiting */
|
||||
@@ -624,12 +634,18 @@ struct jpeg_decompress_struct {
|
||||
JDIMENSION MCUs_per_row; /* # of MCUs across the image */
|
||||
JDIMENSION MCU_rows_in_scan; /* # of MCU rows in the image */
|
||||
|
||||
int data_units_in_MCU; /* # of data _units per MCU */
|
||||
int MCU_membership[D_MAX_DATA_UNITS_IN_MCU];
|
||||
int blocks_in_MCU; /* # of DCT blocks per MCU */
|
||||
int MCU_membership[D_MAX_BLOCKS_IN_MCU];
|
||||
/* MCU_membership[i] is index in cur_comp_info of component owning */
|
||||
/* i'th data unit in an MCU */
|
||||
/* i'th block in an MCU */
|
||||
|
||||
int Ss, Se, Ah, Al; /* progressive/lossless JPEG parms for scan */
|
||||
int Ss, Se, Ah, Al; /* progressive JPEG parameters for scan */
|
||||
|
||||
/* These fields are derived from Se of first SOS marker.
|
||||
*/
|
||||
int block_size; /* the basic DCT block size: 1..16 */
|
||||
const int * natural_order; /* natural-order position array for entropy decode */
|
||||
int lim_Se; /* min( Se, DCTSIZE2-1 ) for entropy decode */
|
||||
|
||||
/* This field is shared between entropy decoder and marker parser.
|
||||
* It is either zero or the code of a JPEG marker that has been
|
||||
@@ -642,10 +658,12 @@ struct jpeg_decompress_struct {
|
||||
*/
|
||||
struct jpeg_decomp_master * master;
|
||||
struct jpeg_d_main_controller * main;
|
||||
struct jpeg_d_codec * codec;
|
||||
struct jpeg_d_coef_controller * coef;
|
||||
struct jpeg_d_post_controller * post;
|
||||
struct jpeg_input_controller * inputctl;
|
||||
struct jpeg_marker_reader * marker;
|
||||
struct jpeg_entropy_decoder * entropy;
|
||||
struct jpeg_inverse_dct * idct;
|
||||
struct jpeg_upsampler * upsample;
|
||||
struct jpeg_color_deconverter * cconvert;
|
||||
struct jpeg_color_quantizer * cquantize;
|
||||
@@ -716,7 +734,9 @@ struct jpeg_error_mgr {
|
||||
int first_addon_message; /* code for first string in addon table */
|
||||
int last_addon_message; /* code for last string in addon table */
|
||||
|
||||
#ifdef __HAIKU__
|
||||
jmp_buf long_jump_buffer;
|
||||
#endif
|
||||
};
|
||||
|
||||
|
||||
@@ -776,13 +796,6 @@ struct jpeg_source_mgr {
|
||||
typedef struct jvirt_sarray_control * jvirt_sarray_ptr;
|
||||
typedef struct jvirt_barray_control * jvirt_barray_ptr;
|
||||
|
||||
#ifdef C_LOSSLESS_SUPPORTED
|
||||
#define NEED_DARRAY
|
||||
#else
|
||||
#ifdef D_LOSSLESS_SUPPORTED
|
||||
#define NEED_DARRAY
|
||||
#endif
|
||||
#endif
|
||||
|
||||
struct jpeg_memory_mgr {
|
||||
/* Method pointers */
|
||||
@@ -796,11 +809,6 @@ struct jpeg_memory_mgr {
|
||||
JMETHOD(JBLOCKARRAY, alloc_barray, (j_common_ptr cinfo, int pool_id,
|
||||
JDIMENSION blocksperrow,
|
||||
JDIMENSION numrows));
|
||||
#ifdef NEED_DARRAY
|
||||
JMETHOD(JDIFFARRAY, alloc_darray, (j_common_ptr cinfo, int pool_id,
|
||||
JDIMENSION diffsperrow,
|
||||
JDIMENSION numrows));
|
||||
#endif
|
||||
JMETHOD(jvirt_sarray_ptr, request_virt_sarray, (j_common_ptr cinfo,
|
||||
int pool_id,
|
||||
boolean pre_zero,
|
||||
@@ -872,14 +880,16 @@ typedef JMETHOD(boolean, jpeg_marker_parser_method, (j_decompress_ptr cinfo));
|
||||
#define jpeg_destroy_decompress jDestDecompress
|
||||
#define jpeg_stdio_dest jStdDest
|
||||
#define jpeg_stdio_src jStdSrc
|
||||
#define jpeg_mem_dest jMemDest
|
||||
#define jpeg_mem_src jMemSrc
|
||||
#define jpeg_set_defaults jSetDefaults
|
||||
#define jpeg_set_colorspace jSetColorspace
|
||||
#define jpeg_default_colorspace jDefColorspace
|
||||
#define jpeg_set_quality jSetQuality
|
||||
#define jpeg_set_linear_quality jSetLQuality
|
||||
#define jpeg_default_qtables jDefQTables
|
||||
#define jpeg_add_quant_table jAddQuantTable
|
||||
#define jpeg_quality_scaling jQualityScaling
|
||||
#define jpeg_simple_lossless jSimLossless
|
||||
#define jpeg_simple_progression jSimProgress
|
||||
#define jpeg_suppress_tables jSuppressTables
|
||||
#define jpeg_alloc_quant_table jAlcQTable
|
||||
@@ -887,6 +897,7 @@ typedef JMETHOD(boolean, jpeg_marker_parser_method, (j_decompress_ptr cinfo));
|
||||
#define jpeg_start_compress jStrtCompress
|
||||
#define jpeg_write_scanlines jWrtScanlines
|
||||
#define jpeg_finish_compress jFinCompress
|
||||
#define jpeg_calc_jpeg_dimensions jCjpegDimensions
|
||||
#define jpeg_write_raw_data jWrtRawData
|
||||
#define jpeg_write_marker jWrtMarker
|
||||
#define jpeg_write_m_header jWrtMHeader
|
||||
@@ -903,6 +914,7 @@ typedef JMETHOD(boolean, jpeg_marker_parser_method, (j_decompress_ptr cinfo));
|
||||
#define jpeg_input_complete jInComplete
|
||||
#define jpeg_new_colormap jNewCMap
|
||||
#define jpeg_consume_input jConsumeInput
|
||||
#define jpeg_core_output_dimensions jCoreDimensions
|
||||
#define jpeg_calc_output_dimensions jCalcDimensions
|
||||
#define jpeg_save_markers jSaveMarkers
|
||||
#define jpeg_set_marker_processor jSetMarker
|
||||
@@ -947,6 +959,14 @@ EXTERN(void) jpeg_destroy_decompress JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jpeg_stdio_dest JPP((j_compress_ptr cinfo, FILE * outfile));
|
||||
EXTERN(void) jpeg_stdio_src JPP((j_decompress_ptr cinfo, FILE * infile));
|
||||
|
||||
/* Data source and destination managers: memory buffers. */
|
||||
EXTERN(void) jpeg_mem_dest JPP((j_compress_ptr cinfo,
|
||||
unsigned char ** outbuffer,
|
||||
unsigned long * outsize));
|
||||
EXTERN(void) jpeg_mem_src JPP((j_decompress_ptr cinfo,
|
||||
unsigned char * inbuffer,
|
||||
unsigned long insize));
|
||||
|
||||
/* Default parameter setup for compression */
|
||||
EXTERN(void) jpeg_set_defaults JPP((j_compress_ptr cinfo));
|
||||
/* Compression parameter setup aids */
|
||||
@@ -958,13 +978,13 @@ EXTERN(void) jpeg_set_quality JPP((j_compress_ptr cinfo, int quality,
|
||||
EXTERN(void) jpeg_set_linear_quality JPP((j_compress_ptr cinfo,
|
||||
int scale_factor,
|
||||
boolean force_baseline));
|
||||
EXTERN(void) jpeg_default_qtables JPP((j_compress_ptr cinfo,
|
||||
boolean force_baseline));
|
||||
EXTERN(void) jpeg_add_quant_table JPP((j_compress_ptr cinfo, int which_tbl,
|
||||
const unsigned int *basic_table,
|
||||
int scale_factor,
|
||||
boolean force_baseline));
|
||||
EXTERN(int) jpeg_quality_scaling JPP((int quality));
|
||||
EXTERN(void) jpeg_simple_lossless JPP((j_compress_ptr cinfo,
|
||||
int predictor, int point_transform));
|
||||
EXTERN(void) jpeg_simple_progression JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jpeg_suppress_tables JPP((j_compress_ptr cinfo,
|
||||
boolean suppress));
|
||||
@@ -979,12 +999,15 @@ EXTERN(JDIMENSION) jpeg_write_scanlines JPP((j_compress_ptr cinfo,
|
||||
JDIMENSION num_lines));
|
||||
EXTERN(void) jpeg_finish_compress JPP((j_compress_ptr cinfo));
|
||||
|
||||
/* Precalculate JPEG dimensions for current compression parameters. */
|
||||
EXTERN(void) jpeg_calc_jpeg_dimensions JPP((j_compress_ptr cinfo));
|
||||
|
||||
/* Replaces jpeg_write_scanlines when writing raw downsampled data. */
|
||||
EXTERN(JDIMENSION) jpeg_write_raw_data JPP((j_compress_ptr cinfo,
|
||||
JSAMPIMAGE data,
|
||||
JDIMENSION num_lines));
|
||||
|
||||
/* Write a special marker. See libjpeg.doc concerning safe usage. */
|
||||
/* Write a special marker. See libjpeg.txt concerning safe usage. */
|
||||
EXTERN(void) jpeg_write_marker
|
||||
JPP((j_compress_ptr cinfo, int marker,
|
||||
const JOCTET * dataptr, unsigned int datalen));
|
||||
@@ -1038,6 +1061,7 @@ EXTERN(int) jpeg_consume_input JPP((j_decompress_ptr cinfo));
|
||||
#define JPEG_SCAN_COMPLETED 4 /* Completed last iMCU row of a scan */
|
||||
|
||||
/* Precalculate output dimensions for current decompression parameters. */
|
||||
EXTERN(void) jpeg_core_output_dimensions JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jpeg_calc_output_dimensions JPP((j_decompress_ptr cinfo));
|
||||
|
||||
/* Control saving of COM and APPn markers into marker_list. */
|
||||
@@ -1119,9 +1143,6 @@ struct jpeg_color_quantizer { long dummy; };
|
||||
#endif /* JPEG_INTERNALS */
|
||||
#endif /* INCOMPLETE_TYPES_BROKEN */
|
||||
|
||||
#ifdef __cplusplus
|
||||
}
|
||||
#endif
|
||||
|
||||
/*
|
||||
* The JPEG library modules define JPEG_INTERNALS before including this file.
|
||||
@@ -1135,4 +1156,10 @@ struct jpeg_color_quantizer { long dummy; };
|
||||
#include "jerror.h" /* fetch error codes too */
|
||||
#endif
|
||||
|
||||
#ifdef __cplusplus
|
||||
#ifndef DONT_USE_EXTERN_C
|
||||
}
|
||||
#endif
|
||||
#endif
|
||||
|
||||
#endif /* JPEGLIB_H */
|
||||
|
||||
@@ -55,7 +55,7 @@ char translatorInfo[] =
|
||||
"©2002-2003, Marcin Konicki\n"
|
||||
"©2005-2007, Haiku\n"
|
||||
"\n"
|
||||
"Based on IJG library © 1991-1998, Thomas G. Lane\n"
|
||||
"Based on IJG library © 1994-2009, Thomas G. Lane, Guido Vollbeding.\n"
|
||||
" http://www.ijg.org/files/\n"
|
||||
"with \"lossless\" encoding support patch by Ken Murchison\n"
|
||||
" http://www.oceana.com/ftp/ljpeg/\n"
|
||||
|
||||
@@ -14,7 +14,7 @@ Translator JPEGTranslator :
|
||||
exif_parser.cpp
|
||||
JPEGTranslator.cpp
|
||||
|
||||
: be translation libjpeg.a $(TARGET_LIBSTDC++)
|
||||
: be translation libjpeg.so $(TARGET_LIBSTDC++)
|
||||
: true
|
||||
;
|
||||
|
||||
|
||||
@@ -1212,6 +1212,13 @@ AboutView::_CreateCreditsView()
|
||||
"Randers-Pehrson."));
|
||||
// TODO: License!
|
||||
|
||||
// libjpeg copyrights
|
||||
_AddPackageCredit(PackageCredit("libjpeg")
|
||||
.SetCopyright(COPYRIGHT_STRING " 1994-2009, Thomas G. Lane,"
|
||||
" Guido Vollbeding. This software is based in part on the "
|
||||
"work of the Independent JPEG Group"));
|
||||
// TODO: License!
|
||||
|
||||
// libprint copyrights
|
||||
_AddPackageCredit(PackageCredit("libprint")
|
||||
.SetCopyright(COPYRIGHT_STRING
|
||||
|
||||
+5
-20
@@ -5,53 +5,39 @@ SetSubDirSupportedPlatformsBeOSCompatible ;
|
||||
UseLibraryHeaders jpeg ;
|
||||
|
||||
local jpeg_files =
|
||||
jaricom.c
|
||||
jcapimin.c
|
||||
jcapistd.c
|
||||
jcarith.c
|
||||
jccoefct.c
|
||||
jccolor.c
|
||||
jcdctmgr.c
|
||||
jcdiffct.c
|
||||
jchuff.c
|
||||
jcinit.c
|
||||
jclhuff.c
|
||||
jclossls.c
|
||||
jclossy.c
|
||||
jcmainct.c
|
||||
jcmarker.c
|
||||
jcmaster.c
|
||||
jcodec.c
|
||||
jcomapi.c
|
||||
jcparam.c
|
||||
jcphuff.c
|
||||
jcpred.c
|
||||
jcprepct.c
|
||||
jcsample.c
|
||||
jcscale.c
|
||||
jcshuff.c
|
||||
jctrans.c
|
||||
jdapimin.c
|
||||
jdapistd.c
|
||||
jdarith.c
|
||||
jdatadst.c
|
||||
jdatasrc.c
|
||||
jdcoefct.c
|
||||
jdcolor.c
|
||||
jddctmgr.c
|
||||
jddiffct.c
|
||||
jdhuff.c
|
||||
jdinput.c
|
||||
jdlhuff.c
|
||||
jdlossls.c
|
||||
jdlossy.c
|
||||
jdmainct.c
|
||||
jdmarker.c
|
||||
jdmaster.c
|
||||
jdmerge.c
|
||||
jdphuff.c
|
||||
jdpostct.c
|
||||
jdpred.c
|
||||
jdsample.c
|
||||
jdscale.c
|
||||
jdshuff.c
|
||||
jdtrans.c
|
||||
jerror.c
|
||||
jfdctflt.c
|
||||
@@ -60,12 +46,11 @@ local jpeg_files =
|
||||
jidctflt.c
|
||||
jidctfst.c
|
||||
jidctint.c
|
||||
jidctred.c
|
||||
jmemmgr.c
|
||||
jmemnobs.c
|
||||
jquant1.c
|
||||
jquant2.c
|
||||
jutils.c
|
||||
jmemmgr.c
|
||||
jmemname.c
|
||||
;
|
||||
|
||||
ObjectCcFlags [ FGristFiles $(jpeg_files:S=$(SUFOBJ)) ] : -w ;
|
||||
|
||||
+112
-172
@@ -1,22 +1,17 @@
|
||||
The Independent JPEG Group's JPEG software
|
||||
==========================================
|
||||
|
||||
README for release 6b of 27-Mar-1998
|
||||
====================================
|
||||
README for release 8 of 10-Jan-2010
|
||||
===================================
|
||||
|
||||
This distribution contains the sixth public release of the Independent JPEG
|
||||
This distribution contains the eighth public release of the Independent JPEG
|
||||
Group's free JPEG software. You are welcome to redistribute this software and
|
||||
to use it for any purpose, subject to the conditions under LEGAL ISSUES, below.
|
||||
|
||||
Serious users of this software (particularly those incorporating it into
|
||||
larger programs) should contact IJG at [email protected] to be added to
|
||||
our electronic mailing list. Mailing list members are notified of updates
|
||||
and have a chance to participate in technical discussions, etc.
|
||||
|
||||
This software is the work of Tom Lane, Philip Gladstone, Jim Boucher,
|
||||
Lee Crocker, Julian Minguillon, Luis Ortiz, George Phillips, Davide Rossi,
|
||||
Guido Vollbeding, Ge' Weijers, and other members of the Independent JPEG
|
||||
Group.
|
||||
This software is the work of Tom Lane, Guido Vollbeding, Philip Gladstone,
|
||||
Bill Allombert, Jim Boucher, Lee Crocker, Bob Friesenhahn, Ben Jackson,
|
||||
Julian Minguillon, Luis Ortiz, George Phillips, Davide Rossi, Ge' Weijers,
|
||||
and other members of the Independent JPEG Group.
|
||||
|
||||
IJG is not affiliated with the official ISO JPEG standards committee.
|
||||
|
||||
@@ -30,27 +25,27 @@ OVERVIEW General description of JPEG and the IJG software.
|
||||
LEGAL ISSUES Copyright, lack of warranty, terms of distribution.
|
||||
REFERENCES Where to learn more about JPEG.
|
||||
ARCHIVE LOCATIONS Where to find newer versions of this software.
|
||||
RELATED SOFTWARE Other stuff you should get.
|
||||
ACKNOWLEDGMENTS Special thanks.
|
||||
FILE FORMAT WARS Software *not* to get.
|
||||
TO DO Plans for future IJG releases.
|
||||
|
||||
Other documentation files in the distribution are:
|
||||
|
||||
User documentation:
|
||||
install.doc How to configure and install the IJG software.
|
||||
usage.doc Usage instructions for cjpeg, djpeg, jpegtran,
|
||||
install.txt How to configure and install the IJG software.
|
||||
usage.txt Usage instructions for cjpeg, djpeg, jpegtran,
|
||||
rdjpgcom, and wrjpgcom.
|
||||
*.1 Unix-style man pages for programs (same info as usage.doc).
|
||||
wizard.doc Advanced usage instructions for JPEG wizards only.
|
||||
*.1 Unix-style man pages for programs (same info as usage.txt).
|
||||
wizard.txt Advanced usage instructions for JPEG wizards only.
|
||||
change.log Version-to-version change highlights.
|
||||
Programmer and internal documentation:
|
||||
libjpeg.doc How to use the JPEG library in your own programs.
|
||||
libjpeg.txt How to use the JPEG library in your own programs.
|
||||
example.c Sample code for calling the JPEG library.
|
||||
structure.doc Overview of the JPEG library's internal structure.
|
||||
filelist.doc Road map of IJG files.
|
||||
coderules.doc Coding style rules --- please read if you contribute code.
|
||||
structure.txt Overview of the JPEG library's internal structure.
|
||||
filelist.txt Road map of IJG files.
|
||||
coderules.txt Coding style rules --- please read if you contribute code.
|
||||
|
||||
Please read at least the files install.doc and usage.doc. Useful information
|
||||
Please read at least the files install.txt and usage.txt. Some information
|
||||
can also be found in the JPEG FAQ (Frequently Asked Questions) article. See
|
||||
ARCHIVE LOCATIONS below to find out where to obtain the FAQ article.
|
||||
|
||||
@@ -62,24 +57,15 @@ the order listed) before diving into the code.
|
||||
OVERVIEW
|
||||
========
|
||||
|
||||
This package contains C software to implement JPEG image compression and
|
||||
decompression. JPEG (pronounced "jay-peg") is a standardized compression
|
||||
method for full-color and gray-scale images. JPEG is intended for compressing
|
||||
"real-world" scenes; line drawings, cartoons and other non-realistic images
|
||||
are not its strong suit. JPEG is lossy, meaning that the output image is not
|
||||
exactly identical to the input image. Hence you must not use JPEG if you
|
||||
have to have identical output bits. However, on typical photographic images,
|
||||
very good compression levels can be obtained with no visible change, and
|
||||
remarkably high compression levels are possible if you can tolerate a
|
||||
low-quality image. For more details, see the references, or just experiment
|
||||
with various compression settings.
|
||||
This package contains C software to implement JPEG image encoding, decoding,
|
||||
and transcoding. JPEG (pronounced "jay-peg") is a standardized compression
|
||||
method for full-color and gray-scale images.
|
||||
|
||||
This software implements JPEG baseline, extended-sequential, progressive
|
||||
and lossless compression processes. Provision is made for supporting all
|
||||
variants of these processes, although some uncommon parameter settings aren't
|
||||
implemented yet. For legal reasons, we are not distributing code for the
|
||||
arithmetic-coding variants of JPEG; see LEGAL ISSUES. We have made no
|
||||
provision for supporting the hierarchical processes defined in the standard.
|
||||
This software implements JPEG baseline, extended-sequential, and progressive
|
||||
compression processes. Provision is made for supporting all variants of these
|
||||
processes, although some uncommon parameter settings aren't implemented yet.
|
||||
We have made no provision for supporting the hierarchical or lossless
|
||||
processes defined in the standard.
|
||||
|
||||
We provide a set of library routines for reading and writing JPEG image files,
|
||||
plus two sample applications "cjpeg" and "djpeg", which use the library to
|
||||
@@ -91,10 +77,11 @@ considerable functionality beyond the bare JPEG coding/decoding capability;
|
||||
for example, the color quantization modules are not strictly part of JPEG
|
||||
decoding, but they are essential for output to colormapped file formats or
|
||||
colormapped displays. These extra functions can be compiled out of the
|
||||
library if not required for a particular application. We have also included
|
||||
"jpegtran", a utility for lossless transcoding between different JPEG
|
||||
processes, and "rdjpgcom" and "wrjpgcom", two simple applications for
|
||||
inserting and extracting textual comments in JFIF files.
|
||||
library if not required for a particular application.
|
||||
|
||||
We have also included "jpegtran", a utility for lossless transcoding between
|
||||
different JPEG processes, and "rdjpgcom" and "wrjpgcom", two simple
|
||||
applications for inserting and extracting textual comments in JFIF files.
|
||||
|
||||
The emphasis in designing this software has been on achieving portability and
|
||||
flexibility, while also making it fast enough to be useful. In particular,
|
||||
@@ -127,7 +114,7 @@ with respect to this software, its quality, accuracy, merchantability, or
|
||||
fitness for a particular purpose. This software is provided "AS IS", and you,
|
||||
its user, assume the entire risk as to its quality and accuracy.
|
||||
|
||||
This software is copyright (C) 1991-1998, Thomas G. Lane.
|
||||
This software is copyright (C) 1991-2010, Thomas G. Lane, Guido Vollbeding.
|
||||
All Rights Reserved except as specified below.
|
||||
|
||||
Permission is hereby granted to use, copy, modify, and distribute this
|
||||
@@ -170,17 +157,8 @@ the foregoing paragraphs do.
|
||||
The Unix configuration script "configure" was produced with GNU Autoconf.
|
||||
It is copyright by the Free Software Foundation but is freely distributable.
|
||||
The same holds for its supporting scripts (config.guess, config.sub,
|
||||
ltconfig, ltmain.sh). Another support script, install-sh, is copyright
|
||||
by M.I.T. but is also freely distributable.
|
||||
|
||||
It appears that the arithmetic coding option of the JPEG spec is covered by
|
||||
patents owned by IBM, AT&T, and Mitsubishi. Hence arithmetic coding cannot
|
||||
legally be used without obtaining one or more licenses. For this reason,
|
||||
support for arithmetic coding has been removed from the free JPEG software.
|
||||
(Since arithmetic coding provides only a marginal gain over the unpatented
|
||||
Huffman mode, it is unlikely that very many implementations will support it.)
|
||||
So far as we are aware, there are no patent restrictions on the remaining
|
||||
code.
|
||||
ltmain.sh). Another support script, install-sh, is copyright by X Consortium
|
||||
but is also freely distributable.
|
||||
|
||||
The IJG distribution formerly included code to read and write GIF files.
|
||||
To avoid entanglement with the Unisys LZW patent, GIF reading support has
|
||||
@@ -198,7 +176,7 @@ We are required to state that
|
||||
REFERENCES
|
||||
==========
|
||||
|
||||
We highly recommend reading one or more of these references before trying to
|
||||
We recommend reading one or more of these references before trying to
|
||||
understand the innards of the JPEG software.
|
||||
|
||||
The best short technical introduction to the JPEG compression algorithm is
|
||||
@@ -207,7 +185,7 @@ The best short technical introduction to the JPEG compression algorithm is
|
||||
(Adjacent articles in that issue discuss MPEG motion picture compression,
|
||||
applications of JPEG, and related topics.) If you don't have the CACM issue
|
||||
handy, a PostScript file containing a revised version of Wallace's article is
|
||||
available at ftp://ftp.uu.net/graphics/jpeg/wallace.ps.gz. The file (actually
|
||||
available at http://www.ijg.org/files/wallace.ps.gz. The file (actually
|
||||
a preprint for an article that appeared in IEEE Trans. Consumer Electronics)
|
||||
omits the sample images that appeared in CACM, but it includes corrections
|
||||
and some added material. Note: the Wallace article is copyright ACM and IEEE,
|
||||
@@ -222,82 +200,65 @@ code but don't know much about data compression in general. The book's JPEG
|
||||
sample code is far from industrial-strength, but when you are ready to look
|
||||
at a full implementation, you've got one here...
|
||||
|
||||
The best full description of JPEG is the textbook "JPEG Still Image Data
|
||||
Compression Standard" by William B. Pennebaker and Joan L. Mitchell, published
|
||||
by Van Nostrand Reinhold, 1993, ISBN 0-442-01272-1. Price US$59.95, 638 pp.
|
||||
The book includes the complete text of the ISO JPEG standards (DIS 10918-1
|
||||
and draft DIS 10918-2). This is by far the most complete exposition of JPEG
|
||||
in existence, and we highly recommend it.
|
||||
The best currently available description of JPEG is the textbook "JPEG Still
|
||||
Image Data Compression Standard" by William B. Pennebaker and Joan L.
|
||||
Mitchell, published by Van Nostrand Reinhold, 1993, ISBN 0-442-01272-1.
|
||||
Price US$59.95, 638 pp. The book includes the complete text of the ISO JPEG
|
||||
standards (DIS 10918-1 and draft DIS 10918-2).
|
||||
Although this is by far the most detailed and comprehensive exposition of
|
||||
JPEG publicly available, we point out that it is still missing an explanation
|
||||
of the most essential properties and algorithms of the underlying DCT
|
||||
technology.
|
||||
If you think that you know about DCT-based JPEG after reading this book,
|
||||
then you are in delusion. The real fundamentals and corresponding potential
|
||||
of DCT-based JPEG are not publicly known so far, and that is the reason for
|
||||
all the mistaken developments taking place in the image coding domain.
|
||||
|
||||
The JPEG standard itself is not available electronically; you must order a
|
||||
paper copy through ISO or ITU. (Unless you feel a need to own a certified
|
||||
official copy, we recommend buying the Pennebaker and Mitchell book instead;
|
||||
it's much cheaper and includes a great deal of useful explanatory material.)
|
||||
In the USA, copies of the standard may be ordered from ANSI Sales at (212)
|
||||
642-4900, or from Global Engineering Documents at (800) 854-7179. (ANSI
|
||||
doesn't take credit card orders, but Global does.) It's not cheap: as of
|
||||
1992, ANSI was charging $95 for Part 1 and $47 for Part 2, plus 7%
|
||||
shipping/handling. The standard is divided into two parts, Part 1 being the
|
||||
actual specification, while Part 2 covers compliance testing methods. Part 1
|
||||
is titled "Digital Compression and Coding of Continuous-tone Still Images,
|
||||
The original JPEG standard is divided into two parts, Part 1 being the actual
|
||||
specification, while Part 2 covers compliance testing methods. Part 1 is
|
||||
titled "Digital Compression and Coding of Continuous-tone Still Images,
|
||||
Part 1: Requirements and guidelines" and has document numbers ISO/IEC IS
|
||||
10918-1, ITU-T T.81. Part 2 is titled "Digital Compression and Coding of
|
||||
Continuous-tone Still Images, Part 2: Compliance testing" and has document
|
||||
numbers ISO/IEC IS 10918-2, ITU-T T.83.
|
||||
|
||||
Some extensions to the original JPEG standard are defined in JPEG Part 3,
|
||||
a newer ISO standard numbered ISO/IEC IS 10918-3 and ITU-T T.84. IJG
|
||||
currently does not support any Part 3 extensions.
|
||||
IJG JPEG 8 introduces an implementation of the JPEG SmartScale extension
|
||||
which is specified in a contributed document at ITU and ISO with title "ITU-T
|
||||
JPEG-Plus Proposal for Extending ITU-T T.81 for Advanced Image Coding", April
|
||||
2006, Geneva, Switzerland. The latest version of the document is Revision 3.
|
||||
|
||||
The JPEG standard does not specify all details of an interchangeable file
|
||||
format. For the omitted details we follow the "JFIF" conventions, revision
|
||||
1.02. A copy of the JFIF spec is available from:
|
||||
Literature Department
|
||||
C-Cube Microsystems, Inc.
|
||||
1778 McCarthy Blvd.
|
||||
Milpitas, CA 95035
|
||||
phone (408) 944-6300, fax (408) 944-6314
|
||||
A PostScript version of this document is available by FTP at
|
||||
ftp://ftp.uu.net/graphics/jpeg/jfif.ps.gz. There is also a plain text
|
||||
version at ftp://ftp.uu.net/graphics/jpeg/jfif.txt.gz, but it is missing
|
||||
the figures.
|
||||
1.02. JFIF 1.02 has been adopted as an Ecma International Technical Report
|
||||
and thus received a formal publication status. It is available as a free
|
||||
download in PDF format from
|
||||
http://www.ecma-international.org/publications/techreports/E-TR-098.htm.
|
||||
A PostScript version of the JFIF document is available at
|
||||
http://www.ijg.org/files/jfif.ps.gz. There is also a plain text version at
|
||||
http://www.ijg.org/files/jfif.txt.gz, but it is missing the figures.
|
||||
|
||||
The TIFF 6.0 file format specification can be obtained by FTP from
|
||||
ftp://ftp.sgi.com/graphics/tiff/TIFF6.ps.gz. The JPEG incorporation scheme
|
||||
found in the TIFF 6.0 spec of 3-June-92 has a number of serious problems.
|
||||
IJG does not recommend use of the TIFF 6.0 design (TIFF Compression tag 6).
|
||||
Instead, we recommend the JPEG design proposed by TIFF Technical Note #2
|
||||
(Compression tag 7). Copies of this Note can be obtained from ftp.sgi.com or
|
||||
from ftp://ftp.uu.net/graphics/jpeg/. It is expected that the next revision
|
||||
(Compression tag 7). Copies of this Note can be obtained from
|
||||
http://www.ijg.org/files/. It is expected that the next revision
|
||||
of the TIFF spec will replace the 6.0 JPEG design with the Note's design.
|
||||
Although IJG's own code does not support TIFF/JPEG, the free libtiff library
|
||||
uses our library to implement TIFF/JPEG per the Note. libtiff is available
|
||||
from ftp://ftp.sgi.com/graphics/tiff/.
|
||||
uses our library to implement TIFF/JPEG per the Note.
|
||||
|
||||
|
||||
ARCHIVE LOCATIONS
|
||||
=================
|
||||
|
||||
The "official" archive site for this software is ftp.uu.net (Internet
|
||||
address 192.48.96.9). The most recent released version can always be found
|
||||
there in directory graphics/jpeg. This particular version will be archived
|
||||
as ftp://ftp.uu.net/graphics/jpeg/jpegsrc.v6b.tar.gz. If you don't have
|
||||
direct Internet access, UUNET's archives are also available via UUCP; contact
|
||||
[email protected] for information on retrieving files that way.
|
||||
The "official" archive site for this software is www.ijg.org.
|
||||
The most recent released version can always be found there in
|
||||
directory "files". This particular version will be archived as
|
||||
http://www.ijg.org/files/jpegsrc.v8.tar.gz, and in Windows-compatible
|
||||
"zip" archive format as http://www.ijg.org/files/jpegsr8.zip.
|
||||
|
||||
Numerous Internet sites maintain copies of the UUNET files. However, only
|
||||
ftp.uu.net is guaranteed to have the latest official version.
|
||||
|
||||
You can also obtain this software in DOS-compatible "zip" archive format from
|
||||
the SimTel archives (ftp://ftp.simtel.net/pub/simtelnet/msdos/graphics/), or
|
||||
on CompuServe in the Graphics Support forum (GO CIS:GRAPHSUP), library 12
|
||||
"JPEG Tools". Again, these versions may sometimes lag behind the ftp.uu.net
|
||||
release.
|
||||
|
||||
The JPEG FAQ (Frequently Asked Questions) article is a useful source of
|
||||
general information about JPEG. It is updated constantly and therefore is
|
||||
not included in this distribution. The FAQ is posted every two weeks to
|
||||
Usenet newsgroups comp.graphics.misc, news.answers, and other groups.
|
||||
The JPEG FAQ (Frequently Asked Questions) article is a source of some
|
||||
general information about JPEG.
|
||||
It is available on the World Wide Web at http://www.faqs.org/faqs/jpeg-faq/
|
||||
and other news.answers archive sites, including the official news.answers
|
||||
archive at rtfm.mit.edu: ftp://rtfm.mit.edu/pub/usenet/news.answers/jpeg-faq/.
|
||||
@@ -307,79 +268,58 @@ with body
|
||||
send usenet/news.answers/jpeg-faq/part2
|
||||
|
||||
|
||||
RELATED SOFTWARE
|
||||
================
|
||||
ACKNOWLEDGMENTS
|
||||
===============
|
||||
|
||||
Numerous viewing and image manipulation programs now support JPEG. (Quite a
|
||||
few of them use this library to do so.) The JPEG FAQ described above lists
|
||||
some of the more popular free and shareware viewers, and tells where to
|
||||
obtain them on Internet.
|
||||
Thank to Juergen Bruder for providing me with a copy of the common DCT
|
||||
algorithm article, only to find out that I had come to the same result
|
||||
in a more direct and comprehensible way with a more generative approach.
|
||||
|
||||
If you are on a Unix machine, we highly recommend Jef Poskanzer's free
|
||||
PBMPLUS software, which provides many useful operations on PPM-format image
|
||||
files. In particular, it can convert PPM images to and from a wide range of
|
||||
other formats, thus making cjpeg/djpeg considerably more useful. The latest
|
||||
version is distributed by the NetPBM group, and is available from numerous
|
||||
sites, notably ftp://wuarchive.wustl.edu/graphics/graphics/packages/NetPBM/.
|
||||
Unfortunately PBMPLUS/NETPBM is not nearly as portable as the IJG software is;
|
||||
you are likely to have difficulty making it work on any non-Unix machine.
|
||||
Thank to Istvan Sebestyen and Joan L. Mitchell for inviting me to the
|
||||
ITU JPEG (Study Group 16) meeting in Geneva, Switzerland.
|
||||
|
||||
A different free JPEG implementation, written by the PVRG group at Stanford,
|
||||
is available from ftp://havefun.stanford.edu/pub/jpeg/. This program
|
||||
is designed for research and experimentation rather than production use;
|
||||
it is slower, harder to use, and less portable than the IJG code, but it
|
||||
is easier to read and modify. Also, the PVRG code supports lossless JPEG,
|
||||
which we do not. (On the other hand, it doesn't do progressive JPEG.)
|
||||
Thank to Thomas Wiegand and Gary Sullivan for inviting me to the
|
||||
Joint Video Team (MPEG & ITU) meeting in Geneva, Switzerland.
|
||||
|
||||
Thank to John Korejwa and Massimo Ballerini for inviting me to
|
||||
fruitful consultations in Boston, MA and Milan, Italy.
|
||||
|
||||
Thank to Hendrik Elstner, Roland Fassauer, Simone Zuck, Guenther
|
||||
Maier-Gerber, and Walter Stoeber for corresponding business development.
|
||||
|
||||
Thank to Nico Zschach and Dirk Stelling of the technical support team
|
||||
at the Digital Images company in Halle for providing me with extra
|
||||
equipment for configuration tests.
|
||||
|
||||
Thank to Richard F. Lyon (then of Foveon Inc.) for fruitful
|
||||
communication about JPEG configuration in Sigma Photo Pro software.
|
||||
|
||||
Thank to Andrew Finkenstadt for hosting the ijg.org site.
|
||||
|
||||
Last but not least special thank to Thomas G. Lane for the original
|
||||
design and development of this singular software package.
|
||||
|
||||
|
||||
FILE FORMAT WARS
|
||||
================
|
||||
|
||||
Some JPEG programs produce files that are not compatible with our library.
|
||||
The root of the problem is that the ISO JPEG committee failed to specify a
|
||||
concrete file format. Some vendors "filled in the blanks" on their own,
|
||||
creating proprietary formats that no one else could read. (For example, none
|
||||
of the early commercial JPEG implementations for the Macintosh were able to
|
||||
exchange compressed files.)
|
||||
|
||||
The file format we have adopted is called JFIF (see REFERENCES). This format
|
||||
has been agreed to by a number of major commercial JPEG vendors, and it has
|
||||
become the de facto standard. JFIF is a minimal or "low end" representation.
|
||||
We recommend the use of TIFF/JPEG (TIFF revision 6.0 as modified by TIFF
|
||||
Technical Note #2) for "high end" applications that need to record a lot of
|
||||
additional data about an image. TIFF/JPEG is fairly new and not yet widely
|
||||
supported, unfortunately.
|
||||
|
||||
The upcoming JPEG Part 3 standard defines a file format called SPIFF.
|
||||
SPIFF is interoperable with JFIF, in the sense that most JFIF decoders should
|
||||
be able to read the most common variant of SPIFF. SPIFF has some technical
|
||||
advantages over JFIF, but its major claim to fame is simply that it is an
|
||||
official standard rather than an informal one. At this point it is unclear
|
||||
whether SPIFF will supersede JFIF or whether JFIF will remain the de-facto
|
||||
standard. IJG intends to support SPIFF once the standard is frozen, but we
|
||||
have not decided whether it should become our default output format or not.
|
||||
(In any case, our decoder will remain capable of reading JFIF indefinitely.)
|
||||
|
||||
Various proprietary file formats incorporating JPEG compression also exist.
|
||||
We have little or no sympathy for the existence of these formats. Indeed,
|
||||
The ISO JPEG standards committee actually promotes different formats like
|
||||
"JPEG 2000" or "JPEG XR" which are incompatible with original DCT-based
|
||||
JPEG and which are based on faulty technologies. IJG therefore does not
|
||||
and will not support such momentary mistakes (see REFERENCES).
|
||||
We have little or no sympathy for the promotion of these formats. Indeed,
|
||||
one of the original reasons for developing this free software was to help
|
||||
force convergence on common, open format standards for JPEG files. Don't
|
||||
use a proprietary file format!
|
||||
force convergence on common, interoperable format standards for JPEG files.
|
||||
Don't use an incompatible file format!
|
||||
(In any case, our decoder will remain capable of reading existing JPEG
|
||||
image files indefinitely.)
|
||||
|
||||
|
||||
TO DO
|
||||
=====
|
||||
|
||||
The major thrust for v7 will probably be improvement of visual quality.
|
||||
The current method for scaling the quantization tables is known not to be
|
||||
very good at low Q values. We also intend to investigate block boundary
|
||||
smoothing, "poor man's variable quantization", and other means of improving
|
||||
quality-vs-file-size performance without sacrificing compatibility.
|
||||
Version 8.0 is the first release of a new generation JPEG standard
|
||||
to overcome the limitations of the original JPEG specification.
|
||||
More features are being prepared for coming releases...
|
||||
|
||||
In future versions, we are considering supporting some of the upcoming JPEG
|
||||
Part 3 extensions --- principally, variable quantization and the SPIFF file
|
||||
format.
|
||||
|
||||
As always, speeding things up is of great interest.
|
||||
|
||||
Please send bug reports, offers of help, etc. to [email protected].
|
||||
Please send bug reports, offers of help, etc. to [email protected].
|
||||
|
||||
@@ -1,76 +0,0 @@
|
||||
libjpeg release 6b of 27-Mar-1998 (http://www.ijg.org/files/) patched with "lossless" patch by Ken Murchison (http://www.oceana.com/ftp/ljpeg/) with following changes by Marcin 'Shard' Konicki.
|
||||
|
||||
|
||||
@jconfig.h
|
||||
|
||||
+ #define USE_BEOS_ALERT // use Alert window for error messages in BeOS
|
||||
|
||||
|
||||
|
||||
@jpeglib.h
|
||||
|
||||
#ifndef JCONFIG_INCLUDED /* in case jinclude.h already did */
|
||||
#include "jconfig.h" /* widely used configuration options */
|
||||
#endif
|
||||
#include "jmorecfg.h" /* seldom changed options */
|
||||
|
||||
+ #ifdef __cplusplus
|
||||
+ extern "C" {
|
||||
+ #endif
|
||||
|
||||
....
|
||||
|
||||
#endif /* JPEG_INTERNALS */
|
||||
#endif /* INCOMPLETE_TYPES_BROKEN */
|
||||
|
||||
+ #ifdef __cplusplus
|
||||
+ }
|
||||
+ #endif
|
||||
|
||||
|
||||
@jerror.c
|
||||
|
||||
* If you define USE_WINDOWS_MESSAGEBOX in jconfig.h or in the makefile,
|
||||
* you get a Windows-specific hack to display error messages in a dialog box.
|
||||
* It ain't much, but it beats dropping error messages into the bit bucket,
|
||||
* which is what happens to output to stderr under most Windows C compilers.
|
||||
+ *
|
||||
+ * If you define USE_BEOS_ALERT in jconfig.h or in the makefile,
|
||||
+ * you get a BeOS-specific hack to display error messages in a dialog box.
|
||||
+ * It ain't much, but it beats dropping error messages into the bit bucket,
|
||||
+ * which is what happens to output to stderr under most Windows C compilers.
|
||||
*
|
||||
|
||||
....
|
||||
|
||||
#ifdef USE_WINDOWS_MESSAGEBOX
|
||||
#include <windows.h>
|
||||
#endif
|
||||
|
||||
+ #ifdef USE_BEOS_ALERT
|
||||
+ #include <Alert.h>
|
||||
+ #endif
|
||||
|
||||
....
|
||||
|
||||
METHODDEF(void)
|
||||
output_message (j_common_ptr cinfo)
|
||||
{
|
||||
char buffer[JMSG_LENGTH_MAX];
|
||||
|
||||
/* Create the message */
|
||||
(*cinfo->err->format_message) (cinfo, buffer);
|
||||
|
||||
#ifdef USE_WINDOWS_MESSAGEBOX
|
||||
/* Display it in a message dialog box */
|
||||
MessageBox(GetActiveWindow(), buffer, "JPEG Library Error",
|
||||
MB_OK | MB_ICONERROR);
|
||||
#else
|
||||
+ #ifdef USE_BEOS_ALERT
|
||||
+ (new BAlert("JPEG Library Error", buffer, "OK", NULL, NULL, B_WIDTH_AS_USUAL, B_WARNING_ALERT))->Go();
|
||||
+ #else
|
||||
/* Send it to stderr, adding a newline */
|
||||
fprintf(stderr, "%s\n", buffer);
|
||||
+ #endif
|
||||
#endif
|
||||
}
|
||||
@@ -1,132 +0,0 @@
|
||||
/*
|
||||
* cderror.h
|
||||
*
|
||||
* Copyright (C) 1994-1997, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file defines the error and message codes for the cjpeg/djpeg
|
||||
* applications. These strings are not needed as part of the JPEG library
|
||||
* proper.
|
||||
* Edit this file to add new codes, or to translate the message strings to
|
||||
* some other language.
|
||||
*/
|
||||
|
||||
/*
|
||||
* To define the enum list of message codes, include this file without
|
||||
* defining macro JMESSAGE. To create a message string table, include it
|
||||
* again with a suitable JMESSAGE definition (see jerror.c for an example).
|
||||
*/
|
||||
#ifndef JMESSAGE
|
||||
#ifndef CDERROR_H
|
||||
#define CDERROR_H
|
||||
/* First time through, define the enum list */
|
||||
#define JMAKE_ENUM_LIST
|
||||
#else
|
||||
/* Repeated inclusions of this file are no-ops unless JMESSAGE is defined */
|
||||
#define JMESSAGE(code,string)
|
||||
#endif /* CDERROR_H */
|
||||
#endif /* JMESSAGE */
|
||||
|
||||
#ifdef JMAKE_ENUM_LIST
|
||||
|
||||
typedef enum {
|
||||
|
||||
#define JMESSAGE(code,string) code ,
|
||||
|
||||
#endif /* JMAKE_ENUM_LIST */
|
||||
|
||||
JMESSAGE(JMSG_FIRSTADDONCODE=1000, NULL) /* Must be first entry! */
|
||||
|
||||
#ifdef BMP_SUPPORTED
|
||||
JMESSAGE(JERR_BMP_BADCMAP, "Unsupported BMP colormap format")
|
||||
JMESSAGE(JERR_BMP_BADDEPTH, "Only 8- and 24-bit BMP files are supported")
|
||||
JMESSAGE(JERR_BMP_BADHEADER, "Invalid BMP file: bad header length")
|
||||
JMESSAGE(JERR_BMP_BADPLANES, "Invalid BMP file: biPlanes not equal to 1")
|
||||
JMESSAGE(JERR_BMP_COLORSPACE, "BMP output must be grayscale or RGB")
|
||||
JMESSAGE(JERR_BMP_COMPRESSED, "Sorry, compressed BMPs not yet supported")
|
||||
JMESSAGE(JERR_BMP_NOT, "Not a BMP file - does not start with BM")
|
||||
JMESSAGE(JTRC_BMP, "%ux%u 24-bit BMP image")
|
||||
JMESSAGE(JTRC_BMP_MAPPED, "%ux%u 8-bit colormapped BMP image")
|
||||
JMESSAGE(JTRC_BMP_OS2, "%ux%u 24-bit OS2 BMP image")
|
||||
JMESSAGE(JTRC_BMP_OS2_MAPPED, "%ux%u 8-bit colormapped OS2 BMP image")
|
||||
#endif /* BMP_SUPPORTED */
|
||||
|
||||
#ifdef GIF_SUPPORTED
|
||||
JMESSAGE(JERR_GIF_BUG, "GIF output got confused")
|
||||
JMESSAGE(JERR_GIF_CODESIZE, "Bogus GIF codesize %d")
|
||||
JMESSAGE(JERR_GIF_COLORSPACE, "GIF output must be grayscale or RGB")
|
||||
JMESSAGE(JERR_GIF_IMAGENOTFOUND, "Too few images in GIF file")
|
||||
JMESSAGE(JERR_GIF_NOT, "Not a GIF file")
|
||||
JMESSAGE(JTRC_GIF, "%ux%ux%d GIF image")
|
||||
JMESSAGE(JTRC_GIF_BADVERSION,
|
||||
"Warning: unexpected GIF version number '%c%c%c'")
|
||||
JMESSAGE(JTRC_GIF_EXTENSION, "Ignoring GIF extension block of type 0x%02x")
|
||||
JMESSAGE(JTRC_GIF_NONSQUARE, "Caution: nonsquare pixels in input")
|
||||
JMESSAGE(JWRN_GIF_BADDATA, "Corrupt data in GIF file")
|
||||
JMESSAGE(JWRN_GIF_CHAR, "Bogus char 0x%02x in GIF file, ignoring")
|
||||
JMESSAGE(JWRN_GIF_ENDCODE, "Premature end of GIF image")
|
||||
JMESSAGE(JWRN_GIF_NOMOREDATA, "Ran out of GIF bits")
|
||||
#endif /* GIF_SUPPORTED */
|
||||
|
||||
#ifdef PPM_SUPPORTED
|
||||
JMESSAGE(JERR_PPM_COLORSPACE, "PPM output must be grayscale or RGB")
|
||||
JMESSAGE(JERR_PPM_NONNUMERIC, "Nonnumeric data in PPM file")
|
||||
JMESSAGE(JERR_PPM_NOT, "Not a PPM/PGM file")
|
||||
JMESSAGE(JTRC_PGM, "%ux%u PGM image")
|
||||
JMESSAGE(JTRC_PGM_TEXT, "%ux%u text PGM image")
|
||||
JMESSAGE(JTRC_PPM, "%ux%u PPM image")
|
||||
JMESSAGE(JTRC_PPM_TEXT, "%ux%u text PPM image")
|
||||
#endif /* PPM_SUPPORTED */
|
||||
|
||||
#ifdef RLE_SUPPORTED
|
||||
JMESSAGE(JERR_RLE_BADERROR, "Bogus error code from RLE library")
|
||||
JMESSAGE(JERR_RLE_COLORSPACE, "RLE output must be grayscale or RGB")
|
||||
JMESSAGE(JERR_RLE_DIMENSIONS, "Image dimensions (%ux%u) too large for RLE")
|
||||
JMESSAGE(JERR_RLE_EMPTY, "Empty RLE file")
|
||||
JMESSAGE(JERR_RLE_EOF, "Premature EOF in RLE header")
|
||||
JMESSAGE(JERR_RLE_MEM, "Insufficient memory for RLE header")
|
||||
JMESSAGE(JERR_RLE_NOT, "Not an RLE file")
|
||||
JMESSAGE(JERR_RLE_TOOMANYCHANNELS, "Cannot handle %d output channels for RLE")
|
||||
JMESSAGE(JERR_RLE_UNSUPPORTED, "Cannot handle this RLE setup")
|
||||
JMESSAGE(JTRC_RLE, "%ux%u full-color RLE file")
|
||||
JMESSAGE(JTRC_RLE_FULLMAP, "%ux%u full-color RLE file with map of length %d")
|
||||
JMESSAGE(JTRC_RLE_GRAY, "%ux%u grayscale RLE file")
|
||||
JMESSAGE(JTRC_RLE_MAPGRAY, "%ux%u grayscale RLE file with map of length %d")
|
||||
JMESSAGE(JTRC_RLE_MAPPED, "%ux%u colormapped RLE file with map of length %d")
|
||||
#endif /* RLE_SUPPORTED */
|
||||
|
||||
#ifdef TARGA_SUPPORTED
|
||||
JMESSAGE(JERR_TGA_BADCMAP, "Unsupported Targa colormap format")
|
||||
JMESSAGE(JERR_TGA_BADPARMS, "Invalid or unsupported Targa file")
|
||||
JMESSAGE(JERR_TGA_COLORSPACE, "Targa output must be grayscale or RGB")
|
||||
JMESSAGE(JTRC_TGA, "%ux%u RGB Targa image")
|
||||
JMESSAGE(JTRC_TGA_GRAY, "%ux%u grayscale Targa image")
|
||||
JMESSAGE(JTRC_TGA_MAPPED, "%ux%u colormapped Targa image")
|
||||
#else
|
||||
JMESSAGE(JERR_TGA_NOTCOMP, "Targa support was not compiled")
|
||||
#endif /* TARGA_SUPPORTED */
|
||||
|
||||
JMESSAGE(JERR_BAD_CMAP_FILE,
|
||||
"Color map file is invalid or of unsupported format")
|
||||
JMESSAGE(JERR_TOO_MANY_COLORS,
|
||||
"Output file format cannot handle %d colormap entries")
|
||||
JMESSAGE(JERR_UNGETC_FAILED, "ungetc failed")
|
||||
#ifdef TARGA_SUPPORTED
|
||||
JMESSAGE(JERR_UNKNOWN_FORMAT,
|
||||
"Unrecognized input file format --- perhaps you need -targa")
|
||||
#else
|
||||
JMESSAGE(JERR_UNKNOWN_FORMAT, "Unrecognized input file format")
|
||||
#endif
|
||||
JMESSAGE(JERR_UNSUPPORTED_FORMAT, "Unsupported output file format")
|
||||
|
||||
#ifdef JMAKE_ENUM_LIST
|
||||
|
||||
JMSG_LASTADDONCODE
|
||||
} ADDON_MESSAGE_CODE;
|
||||
|
||||
#undef JMAKE_ENUM_LIST
|
||||
#endif /* JMAKE_ENUM_LIST */
|
||||
|
||||
/* Zap JMESSAGE macro so that future re-inclusions do nothing by default */
|
||||
#undef JMESSAGE
|
||||
@@ -1,181 +0,0 @@
|
||||
/*
|
||||
* cdjpeg.c
|
||||
*
|
||||
* Copyright (C) 1991-1997, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains common support routines used by the IJG application
|
||||
* programs (cjpeg, djpeg, jpegtran).
|
||||
*/
|
||||
|
||||
#include "cdjpeg.h" /* Common decls for cjpeg/djpeg applications */
|
||||
#include <ctype.h> /* to declare isupper(), tolower() */
|
||||
#ifdef NEED_SIGNAL_CATCHER
|
||||
#include <signal.h> /* to declare signal() */
|
||||
#endif
|
||||
#ifdef USE_SETMODE
|
||||
#include <fcntl.h> /* to declare setmode()'s parameter macros */
|
||||
/* If you have setmode() but not <io.h>, just delete this line: */
|
||||
#include <io.h> /* to declare setmode() */
|
||||
#endif
|
||||
|
||||
|
||||
/*
|
||||
* Signal catcher to ensure that temporary files are removed before aborting.
|
||||
* NB: for Amiga Manx C this is actually a global routine named _abort();
|
||||
* we put "#define signal_catcher _abort" in jconfig.h. Talk about bogus...
|
||||
*/
|
||||
|
||||
#ifdef NEED_SIGNAL_CATCHER
|
||||
|
||||
static j_common_ptr sig_cinfo;
|
||||
|
||||
void /* must be global for Manx C */
|
||||
signal_catcher (int signum)
|
||||
{
|
||||
if (sig_cinfo != NULL) {
|
||||
if (sig_cinfo->err != NULL) /* turn off trace output */
|
||||
sig_cinfo->err->trace_level = 0;
|
||||
jpeg_destroy(sig_cinfo); /* clean up memory allocation & temp files */
|
||||
}
|
||||
exit(EXIT_FAILURE);
|
||||
}
|
||||
|
||||
|
||||
GLOBAL(void)
|
||||
enable_signal_catcher (j_common_ptr cinfo)
|
||||
{
|
||||
sig_cinfo = cinfo;
|
||||
#ifdef SIGINT /* not all systems have SIGINT */
|
||||
signal(SIGINT, signal_catcher);
|
||||
#endif
|
||||
#ifdef SIGTERM /* not all systems have SIGTERM */
|
||||
signal(SIGTERM, signal_catcher);
|
||||
#endif
|
||||
}
|
||||
|
||||
#endif
|
||||
|
||||
|
||||
/*
|
||||
* Optional progress monitor: display a percent-done figure on stderr.
|
||||
*/
|
||||
|
||||
#ifdef PROGRESS_REPORT
|
||||
|
||||
METHODDEF(void)
|
||||
progress_monitor (j_common_ptr cinfo)
|
||||
{
|
||||
cd_progress_ptr prog = (cd_progress_ptr) cinfo->progress;
|
||||
int total_passes = prog->pub.total_passes + prog->total_extra_passes;
|
||||
int percent_done = (int) (prog->pub.pass_counter*100L/prog->pub.pass_limit);
|
||||
|
||||
if (percent_done != prog->percent_done) {
|
||||
prog->percent_done = percent_done;
|
||||
if (total_passes > 1) {
|
||||
fprintf(stderr, "\rPass %d/%d: %3d%% ",
|
||||
prog->pub.completed_passes + prog->completed_extra_passes + 1,
|
||||
total_passes, percent_done);
|
||||
} else {
|
||||
fprintf(stderr, "\r %3d%% ", percent_done);
|
||||
}
|
||||
fflush(stderr);
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
GLOBAL(void)
|
||||
start_progress_monitor (j_common_ptr cinfo, cd_progress_ptr progress)
|
||||
{
|
||||
/* Enable progress display, unless trace output is on */
|
||||
if (cinfo->err->trace_level == 0) {
|
||||
progress->pub.progress_monitor = progress_monitor;
|
||||
progress->completed_extra_passes = 0;
|
||||
progress->total_extra_passes = 0;
|
||||
progress->percent_done = -1;
|
||||
cinfo->progress = &progress->pub;
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
GLOBAL(void)
|
||||
end_progress_monitor (j_common_ptr cinfo)
|
||||
{
|
||||
/* Clear away progress display */
|
||||
if (cinfo->err->trace_level == 0) {
|
||||
fprintf(stderr, "\r \r");
|
||||
fflush(stderr);
|
||||
}
|
||||
}
|
||||
|
||||
#endif
|
||||
|
||||
|
||||
/*
|
||||
* Case-insensitive matching of possibly-abbreviated keyword switches.
|
||||
* keyword is the constant keyword (must be lower case already),
|
||||
* minchars is length of minimum legal abbreviation.
|
||||
*/
|
||||
|
||||
GLOBAL(boolean)
|
||||
keymatch (char * arg, const char * keyword, int minchars)
|
||||
{
|
||||
register int ca, ck;
|
||||
register int nmatched = 0;
|
||||
|
||||
while ((ca = *arg++) != '\0') {
|
||||
if ((ck = *keyword++) == '\0')
|
||||
return FALSE; /* arg longer than keyword, no good */
|
||||
if (isupper(ca)) /* force arg to lcase (assume ck is already) */
|
||||
ca = tolower(ca);
|
||||
if (ca != ck)
|
||||
return FALSE; /* no good */
|
||||
nmatched++; /* count matched characters */
|
||||
}
|
||||
/* reached end of argument; fail if it's too short for unique abbrev */
|
||||
if (nmatched < minchars)
|
||||
return FALSE;
|
||||
return TRUE; /* A-OK */
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Routines to establish binary I/O mode for stdin and stdout.
|
||||
* Non-Unix systems often require some hacking to get out of text mode.
|
||||
*/
|
||||
|
||||
GLOBAL(FILE *)
|
||||
read_stdin (void)
|
||||
{
|
||||
FILE * input_file = stdin;
|
||||
|
||||
#ifdef USE_SETMODE /* need to hack file mode? */
|
||||
setmode(fileno(stdin), O_BINARY);
|
||||
#endif
|
||||
#ifdef USE_FDOPEN /* need to re-open in binary mode? */
|
||||
if ((input_file = fdopen(fileno(stdin), READ_BINARY)) == NULL) {
|
||||
fprintf(stderr, "Cannot reopen stdin\n");
|
||||
exit(EXIT_FAILURE);
|
||||
}
|
||||
#endif
|
||||
return input_file;
|
||||
}
|
||||
|
||||
|
||||
GLOBAL(FILE *)
|
||||
write_stdout (void)
|
||||
{
|
||||
FILE * output_file = stdout;
|
||||
|
||||
#ifdef USE_SETMODE /* need to hack file mode? */
|
||||
setmode(fileno(stdout), O_BINARY);
|
||||
#endif
|
||||
#ifdef USE_FDOPEN /* need to re-open in binary mode? */
|
||||
if ((output_file = fdopen(fileno(stdout), WRITE_BINARY)) == NULL) {
|
||||
fprintf(stderr, "Cannot reopen stdout\n");
|
||||
exit(EXIT_FAILURE);
|
||||
}
|
||||
#endif
|
||||
return output_file;
|
||||
}
|
||||
@@ -1,184 +0,0 @@
|
||||
/*
|
||||
* cdjpeg.h
|
||||
*
|
||||
* Copyright (C) 1994-1997, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains common declarations for the sample applications
|
||||
* cjpeg and djpeg. It is NOT used by the core JPEG library.
|
||||
*/
|
||||
|
||||
#define JPEG_CJPEG_DJPEG /* define proper options in jconfig.h */
|
||||
#define JPEG_INTERNAL_OPTIONS /* cjpeg.c,djpeg.c need to see xxx_SUPPORTED */
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jerror.h" /* get library error codes too */
|
||||
#include "cderror.h" /* get application-specific error codes */
|
||||
|
||||
|
||||
/*
|
||||
* Object interface for cjpeg's source file decoding modules
|
||||
*/
|
||||
|
||||
typedef struct cjpeg_source_struct * cjpeg_source_ptr;
|
||||
|
||||
struct cjpeg_source_struct {
|
||||
JMETHOD(void, start_input, (j_compress_ptr cinfo,
|
||||
cjpeg_source_ptr sinfo));
|
||||
JMETHOD(JDIMENSION, get_pixel_rows, (j_compress_ptr cinfo,
|
||||
cjpeg_source_ptr sinfo));
|
||||
JMETHOD(void, finish_input, (j_compress_ptr cinfo,
|
||||
cjpeg_source_ptr sinfo));
|
||||
|
||||
FILE *input_file;
|
||||
|
||||
JSAMPARRAY buffer;
|
||||
JDIMENSION buffer_height;
|
||||
};
|
||||
|
||||
|
||||
/*
|
||||
* Object interface for djpeg's output file encoding modules
|
||||
*/
|
||||
|
||||
typedef struct djpeg_dest_struct * djpeg_dest_ptr;
|
||||
|
||||
struct djpeg_dest_struct {
|
||||
/* start_output is called after jpeg_start_decompress finishes.
|
||||
* The color map will be ready at this time, if one is needed.
|
||||
*/
|
||||
JMETHOD(void, start_output, (j_decompress_ptr cinfo,
|
||||
djpeg_dest_ptr dinfo));
|
||||
/* Emit the specified number of pixel rows from the buffer. */
|
||||
JMETHOD(void, put_pixel_rows, (j_decompress_ptr cinfo,
|
||||
djpeg_dest_ptr dinfo,
|
||||
JDIMENSION rows_supplied));
|
||||
/* Finish up at the end of the image. */
|
||||
JMETHOD(void, finish_output, (j_decompress_ptr cinfo,
|
||||
djpeg_dest_ptr dinfo));
|
||||
|
||||
/* Target file spec; filled in by djpeg.c after object is created. */
|
||||
FILE * output_file;
|
||||
|
||||
/* Output pixel-row buffer. Created by module init or start_output.
|
||||
* Width is cinfo->output_width * cinfo->output_components;
|
||||
* height is buffer_height.
|
||||
*/
|
||||
JSAMPARRAY buffer;
|
||||
JDIMENSION buffer_height;
|
||||
};
|
||||
|
||||
|
||||
/*
|
||||
* cjpeg/djpeg may need to perform extra passes to convert to or from
|
||||
* the source/destination file format. The JPEG library does not know
|
||||
* about these passes, but we'd like them to be counted by the progress
|
||||
* monitor. We use an expanded progress monitor object to hold the
|
||||
* additional pass count.
|
||||
*/
|
||||
|
||||
struct cdjpeg_progress_mgr {
|
||||
struct jpeg_progress_mgr pub; /* fields known to JPEG library */
|
||||
int completed_extra_passes; /* extra passes completed */
|
||||
int total_extra_passes; /* total extra */
|
||||
/* last printed percentage stored here to avoid multiple printouts */
|
||||
int percent_done;
|
||||
};
|
||||
|
||||
typedef struct cdjpeg_progress_mgr * cd_progress_ptr;
|
||||
|
||||
|
||||
/* Short forms of external names for systems with brain-damaged linkers. */
|
||||
|
||||
#ifdef NEED_SHORT_EXTERNAL_NAMES
|
||||
#define jinit_read_bmp jIRdBMP
|
||||
#define jinit_write_bmp jIWrBMP
|
||||
#define jinit_read_gif jIRdGIF
|
||||
#define jinit_write_gif jIWrGIF
|
||||
#define jinit_read_ppm jIRdPPM
|
||||
#define jinit_write_ppm jIWrPPM
|
||||
#define jinit_read_rle jIRdRLE
|
||||
#define jinit_write_rle jIWrRLE
|
||||
#define jinit_read_targa jIRdTarga
|
||||
#define jinit_write_targa jIWrTarga
|
||||
#define read_quant_tables RdQTables
|
||||
#define read_scan_script RdScnScript
|
||||
#define set_quant_slots SetQSlots
|
||||
#define set_sample_factors SetSFacts
|
||||
#define read_color_map RdCMap
|
||||
#define enable_signal_catcher EnSigCatcher
|
||||
#define start_progress_monitor StProgMon
|
||||
#define end_progress_monitor EnProgMon
|
||||
#define read_stdin RdStdin
|
||||
#define write_stdout WrStdout
|
||||
#endif /* NEED_SHORT_EXTERNAL_NAMES */
|
||||
|
||||
/* Module selection routines for I/O modules. */
|
||||
|
||||
EXTERN(cjpeg_source_ptr) jinit_read_bmp JPP((j_compress_ptr cinfo));
|
||||
EXTERN(djpeg_dest_ptr) jinit_write_bmp JPP((j_decompress_ptr cinfo,
|
||||
boolean is_os2));
|
||||
EXTERN(cjpeg_source_ptr) jinit_read_gif JPP((j_compress_ptr cinfo));
|
||||
EXTERN(djpeg_dest_ptr) jinit_write_gif JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(cjpeg_source_ptr) jinit_read_ppm JPP((j_compress_ptr cinfo));
|
||||
EXTERN(djpeg_dest_ptr) jinit_write_ppm JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(cjpeg_source_ptr) jinit_read_rle JPP((j_compress_ptr cinfo));
|
||||
EXTERN(djpeg_dest_ptr) jinit_write_rle JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(cjpeg_source_ptr) jinit_read_targa JPP((j_compress_ptr cinfo));
|
||||
EXTERN(djpeg_dest_ptr) jinit_write_targa JPP((j_decompress_ptr cinfo));
|
||||
|
||||
/* cjpeg support routines (in rdswitch.c) */
|
||||
|
||||
EXTERN(boolean) read_quant_tables JPP((j_compress_ptr cinfo, char * filename,
|
||||
int scale_factor, boolean force_baseline));
|
||||
EXTERN(boolean) read_scan_script JPP((j_compress_ptr cinfo, char * filename));
|
||||
EXTERN(boolean) set_quant_slots JPP((j_compress_ptr cinfo, char *arg));
|
||||
EXTERN(boolean) set_sample_factors JPP((j_compress_ptr cinfo, char *arg));
|
||||
|
||||
/* djpeg support routines (in rdcolmap.c) */
|
||||
|
||||
EXTERN(void) read_color_map JPP((j_decompress_ptr cinfo, FILE * infile));
|
||||
|
||||
/* common support routines (in cdjpeg.c) */
|
||||
|
||||
EXTERN(void) enable_signal_catcher JPP((j_common_ptr cinfo));
|
||||
EXTERN(void) start_progress_monitor JPP((j_common_ptr cinfo,
|
||||
cd_progress_ptr progress));
|
||||
EXTERN(void) end_progress_monitor JPP((j_common_ptr cinfo));
|
||||
EXTERN(boolean) keymatch JPP((char * arg, const char * keyword, int minchars));
|
||||
EXTERN(FILE *) read_stdin JPP((void));
|
||||
EXTERN(FILE *) write_stdout JPP((void));
|
||||
|
||||
/* miscellaneous useful macros */
|
||||
|
||||
#ifdef DONT_USE_B_MODE /* define mode parameters for fopen() */
|
||||
#define READ_BINARY "r"
|
||||
#define WRITE_BINARY "w"
|
||||
#else
|
||||
#ifdef VMS /* VMS is very nonstandard */
|
||||
#define READ_BINARY "rb", "ctx=stm"
|
||||
#define WRITE_BINARY "wb", "ctx=stm"
|
||||
#else /* standard ANSI-compliant case */
|
||||
#define READ_BINARY "rb"
|
||||
#define WRITE_BINARY "wb"
|
||||
#endif
|
||||
#endif
|
||||
|
||||
#ifndef EXIT_FAILURE /* define exit() codes if not provided */
|
||||
#define EXIT_FAILURE 1
|
||||
#endif
|
||||
#ifndef EXIT_SUCCESS
|
||||
#ifdef VMS
|
||||
#define EXIT_SUCCESS 1 /* VMS is very nonstandard */
|
||||
#else
|
||||
#define EXIT_SUCCESS 0
|
||||
#endif
|
||||
#endif
|
||||
#ifndef EXIT_WARNING
|
||||
#ifdef VMS
|
||||
#define EXIT_WARNING 1 /* VMS is very nonstandard */
|
||||
#else
|
||||
#define EXIT_WARNING 2
|
||||
#endif
|
||||
#endif
|
||||
@@ -1,212 +0,0 @@
|
||||
IJG JPEG LIBRARY: FILE LIST
|
||||
|
||||
Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
This file is part of the Independent JPEG Group's software.
|
||||
For conditions of distribution and use, see the accompanying README file.
|
||||
|
||||
|
||||
Here is a road map to the files in the IJG JPEG distribution. The
|
||||
distribution includes the JPEG library proper, plus two application
|
||||
programs ("cjpeg" and "djpeg") which use the library to convert JPEG
|
||||
files to and from some other popular image formats. A third application
|
||||
"jpegtran" uses the library to do lossless conversion between different
|
||||
variants of JPEG. There are also two stand-alone applications,
|
||||
"rdjpgcom" and "wrjpgcom".
|
||||
|
||||
|
||||
THE JPEG LIBRARY
|
||||
================
|
||||
|
||||
Include files:
|
||||
|
||||
jpeglib.h JPEG library's exported data and function declarations.
|
||||
jconfig.h Configuration declarations. Note: this file is not present
|
||||
in the distribution; it is generated during installation.
|
||||
jmorecfg.h Additional configuration declarations; need not be changed
|
||||
for a standard installation.
|
||||
jerror.h Declares JPEG library's error and trace message codes.
|
||||
jinclude.h Central include file used by all IJG .c files to reference
|
||||
system include files.
|
||||
jpegint.h JPEG library's internal data structures.
|
||||
jlossls.h JPEG library's lossless codec data structures.
|
||||
jlossy.h JPEG library's lossy codec structures.
|
||||
jchuff.h Private declarations for Huffman encoder modules.
|
||||
jdhuff.h Private declarations for Huffman decoder modules.
|
||||
jdct.h Private declarations for forward & reverse DCT subsystems.
|
||||
jmemsys.h Private declarations for memory management subsystem.
|
||||
jversion.h Version information.
|
||||
|
||||
Applications using the library should include jpeglib.h (which in turn
|
||||
includes jconfig.h and jmorecfg.h). Optionally, jerror.h may be included
|
||||
if the application needs to reference individual JPEG error codes. The
|
||||
other include files are intended for internal use and would not normally
|
||||
be included by an application program. (cjpeg/djpeg/etc do use jinclude.h,
|
||||
since its function is to improve portability of the whole IJG distribution.
|
||||
Most other applications will directly include the system include files they
|
||||
want, and hence won't need jinclude.h.)
|
||||
|
||||
|
||||
C source code files:
|
||||
|
||||
These files contain most of the functions intended to be called directly by
|
||||
an application program:
|
||||
|
||||
jcapimin.c Application program interface: core routines for compression.
|
||||
jcapistd.c Application program interface: standard compression.
|
||||
jdapimin.c Application program interface: core routines for decompression.
|
||||
jdapistd.c Application program interface: standard decompression.
|
||||
jcomapi.c Application program interface routines common to compression
|
||||
and decompression.
|
||||
jcparam.c Compression parameter setting helper routines.
|
||||
jctrans.c API and library routines for transcoding compression.
|
||||
jdtrans.c API and library routines for transcoding decompression.
|
||||
|
||||
Compression side of the library:
|
||||
|
||||
jcinit.c Initialization: determines which other modules to use.
|
||||
jcmaster.c Master control: setup and inter-pass sequencing logic.
|
||||
jcmainct.c Main buffer controller (preprocessor => JPEG compressor).
|
||||
jcprepct.c Preprocessor buffer controller.
|
||||
jccoefct.c Buffer controller for DCT coefficient buffer.
|
||||
jccolor.c Color space conversion.
|
||||
jcsample.c Downsampling.
|
||||
jcdctmgr.c DCT manager (DCT implementation selection & control).
|
||||
jfdctint.c Forward DCT using slow-but-accurate integer method.
|
||||
jfdctfst.c Forward DCT using faster, less accurate integer method.
|
||||
jfdctflt.c Forward DCT using floating-point arithmetic.
|
||||
jchuff.c Huffman entropy coding for sequential JPEG.
|
||||
jcphuff.c Huffman entropy coding for progressive JPEG.
|
||||
jcmarker.c JPEG marker writing.
|
||||
jdatadst.c Data destination manager for stdio output.
|
||||
|
||||
Decompression side of the library:
|
||||
|
||||
jdmaster.c Master control: determines which other modules to use.
|
||||
jdinput.c Input controller: controls input processing modules.
|
||||
jdmainct.c Main buffer controller (JPEG decompressor => postprocessor).
|
||||
jdcoefct.c Buffer controller for DCT coefficient buffer.
|
||||
jdpostct.c Postprocessor buffer controller.
|
||||
jdmarker.c JPEG marker reading.
|
||||
jdhuff.c Huffman entropy decoding for sequential JPEG.
|
||||
jdphuff.c Huffman entropy decoding for progressive JPEG.
|
||||
jddctmgr.c IDCT manager (IDCT implementation selection & control).
|
||||
jidctint.c Inverse DCT using slow-but-accurate integer method.
|
||||
jidctfst.c Inverse DCT using faster, less accurate integer method.
|
||||
jidctflt.c Inverse DCT using floating-point arithmetic.
|
||||
jidctred.c Inverse DCTs with reduced-size outputs.
|
||||
jdsample.c Upsampling.
|
||||
jdcolor.c Color space conversion.
|
||||
jdmerge.c Merged upsampling/color conversion (faster, lower quality).
|
||||
jquant1.c One-pass color quantization using a fixed-spacing colormap.
|
||||
jquant2.c Two-pass color quantization using a custom-generated colormap.
|
||||
Also handles one-pass quantization to an externally given map.
|
||||
jdatasrc.c Data source manager for stdio input.
|
||||
|
||||
Support files for both compression and decompression:
|
||||
|
||||
jerror.c Standard error handling routines (application replaceable).
|
||||
jmemmgr.c System-independent (more or less) memory management code.
|
||||
jutils.c Miscellaneous utility routines.
|
||||
|
||||
jmemmgr.c relies on a system-dependent memory management module. The IJG
|
||||
distribution includes the following implementations of the system-dependent
|
||||
module:
|
||||
|
||||
jmemnobs.c "No backing store": assumes adequate virtual memory exists.
|
||||
jmemansi.c Makes temporary files with ANSI-standard routine tmpfile().
|
||||
jmemname.c Makes temporary files with program-generated file names.
|
||||
jmemdos.c Custom implementation for MS-DOS (16-bit environment only):
|
||||
can use extended and expanded memory as well as temp files.
|
||||
jmemmac.c Custom implementation for Apple Macintosh.
|
||||
|
||||
Exactly one of the system-dependent modules should be configured into an
|
||||
installed JPEG library (see install.doc for hints about which one to use).
|
||||
On unusual systems you may find it worthwhile to make a special
|
||||
system-dependent memory manager.
|
||||
|
||||
|
||||
Non-C source code files:
|
||||
|
||||
jmemdosa.asm 80x86 assembly code support for jmemdos.c; used only in
|
||||
MS-DOS-specific configurations of the JPEG library.
|
||||
|
||||
|
||||
CJPEG/DJPEG/JPEGTRAN
|
||||
====================
|
||||
|
||||
Include files:
|
||||
|
||||
cdjpeg.h Declarations shared by cjpeg/djpeg/jpegtran modules.
|
||||
cderror.h Additional error and trace message codes for cjpeg et al.
|
||||
transupp.h Declarations for jpegtran support routines in transupp.c.
|
||||
|
||||
C source code files:
|
||||
|
||||
cjpeg.c Main program for cjpeg.
|
||||
djpeg.c Main program for djpeg.
|
||||
jpegtran.c Main program for jpegtran.
|
||||
cdjpeg.c Utility routines used by all three programs.
|
||||
rdcolmap.c Code to read a colormap file for djpeg's "-map" switch.
|
||||
rdswitch.c Code to process some of cjpeg's more complex switches.
|
||||
Also used by jpegtran.
|
||||
transupp.c Support code for jpegtran: lossless image manipulations.
|
||||
|
||||
Image file reader modules for cjpeg:
|
||||
|
||||
rdbmp.c BMP file input.
|
||||
rdgif.c GIF file input (now just a stub).
|
||||
rdppm.c PPM/PGM file input.
|
||||
rdrle.c Utah RLE file input.
|
||||
rdtarga.c Targa file input.
|
||||
|
||||
Image file writer modules for djpeg:
|
||||
|
||||
wrbmp.c BMP file output.
|
||||
wrgif.c GIF file output (a mere shadow of its former self).
|
||||
wrppm.c PPM/PGM file output.
|
||||
wrrle.c Utah RLE file output.
|
||||
wrtarga.c Targa file output.
|
||||
|
||||
|
||||
RDJPGCOM/WRJPGCOM
|
||||
=================
|
||||
|
||||
C source code files:
|
||||
|
||||
rdjpgcom.c Stand-alone rdjpgcom application.
|
||||
wrjpgcom.c Stand-alone wrjpgcom application.
|
||||
|
||||
These programs do not depend on the IJG library. They do use
|
||||
jconfig.h and jinclude.h, only to improve portability.
|
||||
|
||||
|
||||
ADDITIONAL FILES
|
||||
================
|
||||
|
||||
Documentation (see README for a guide to the documentation files):
|
||||
|
||||
README Master documentation file.
|
||||
*.doc Other documentation files.
|
||||
*.1 Documentation in Unix man page format.
|
||||
change.log Version-to-version change highlights.
|
||||
example.c Sample code for calling JPEG library.
|
||||
|
||||
Configuration/installation files and programs (see install.doc for more info):
|
||||
|
||||
configure Unix shell script to perform automatic configuration.
|
||||
ltconfig Support scripts for configure (from GNU libtool).
|
||||
ltmain.sh
|
||||
config.guess
|
||||
config.sub
|
||||
install-sh Install shell script for those Unix systems lacking one.
|
||||
ckconfig.c Program to generate jconfig.h on non-Unix systems.
|
||||
jconfig.doc Template for making jconfig.h by hand.
|
||||
makefile.* Sample makefiles for particular systems.
|
||||
jconfig.* Sample jconfig.h for particular systems.
|
||||
ansi2knr.c De-ANSIfier for pre-ANSI C compilers (courtesy of
|
||||
L. Peter Deutsch and Aladdin Enterprises).
|
||||
|
||||
Test files (see install.doc for test procedure):
|
||||
|
||||
test*.* Source and comparison files for confidence test.
|
||||
These are binary image files, NOT text files.
|
||||
@@ -0,0 +1,153 @@
|
||||
/*
|
||||
* jaricom.c
|
||||
*
|
||||
* Developed 1997-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains probability estimation tables for common use in
|
||||
* arithmetic entropy encoding and decoding routines.
|
||||
*
|
||||
* This data represents Table D.2 in the JPEG spec (ISO/IEC IS 10918-1
|
||||
* and CCITT Recommendation ITU-T T.81) and Table 24 in the JBIG spec
|
||||
* (ISO/IEC IS 11544 and CCITT Recommendation ITU-T T.82).
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
|
||||
/* The following #define specifies the packing of the four components
|
||||
* into the compact INT32 representation.
|
||||
* Note that this formula must match the actual arithmetic encoder
|
||||
* and decoder implementation. The implementation has to be changed
|
||||
* if this formula is changed.
|
||||
* The current organization is leaned on Markus Kuhn's JBIG
|
||||
* implementation (jbig_tab.c).
|
||||
*/
|
||||
|
||||
#define V(i,a,b,c,d) (((INT32)a << 16) | ((INT32)c << 8) | ((INT32)d << 7) | b)
|
||||
|
||||
const INT32 jpeg_aritab[113+1] = {
|
||||
/*
|
||||
* Index, Qe_Value, Next_Index_LPS, Next_Index_MPS, Switch_MPS
|
||||
*/
|
||||
V( 0, 0x5a1d, 1, 1, 1 ),
|
||||
V( 1, 0x2586, 14, 2, 0 ),
|
||||
V( 2, 0x1114, 16, 3, 0 ),
|
||||
V( 3, 0x080b, 18, 4, 0 ),
|
||||
V( 4, 0x03d8, 20, 5, 0 ),
|
||||
V( 5, 0x01da, 23, 6, 0 ),
|
||||
V( 6, 0x00e5, 25, 7, 0 ),
|
||||
V( 7, 0x006f, 28, 8, 0 ),
|
||||
V( 8, 0x0036, 30, 9, 0 ),
|
||||
V( 9, 0x001a, 33, 10, 0 ),
|
||||
V( 10, 0x000d, 35, 11, 0 ),
|
||||
V( 11, 0x0006, 9, 12, 0 ),
|
||||
V( 12, 0x0003, 10, 13, 0 ),
|
||||
V( 13, 0x0001, 12, 13, 0 ),
|
||||
V( 14, 0x5a7f, 15, 15, 1 ),
|
||||
V( 15, 0x3f25, 36, 16, 0 ),
|
||||
V( 16, 0x2cf2, 38, 17, 0 ),
|
||||
V( 17, 0x207c, 39, 18, 0 ),
|
||||
V( 18, 0x17b9, 40, 19, 0 ),
|
||||
V( 19, 0x1182, 42, 20, 0 ),
|
||||
V( 20, 0x0cef, 43, 21, 0 ),
|
||||
V( 21, 0x09a1, 45, 22, 0 ),
|
||||
V( 22, 0x072f, 46, 23, 0 ),
|
||||
V( 23, 0x055c, 48, 24, 0 ),
|
||||
V( 24, 0x0406, 49, 25, 0 ),
|
||||
V( 25, 0x0303, 51, 26, 0 ),
|
||||
V( 26, 0x0240, 52, 27, 0 ),
|
||||
V( 27, 0x01b1, 54, 28, 0 ),
|
||||
V( 28, 0x0144, 56, 29, 0 ),
|
||||
V( 29, 0x00f5, 57, 30, 0 ),
|
||||
V( 30, 0x00b7, 59, 31, 0 ),
|
||||
V( 31, 0x008a, 60, 32, 0 ),
|
||||
V( 32, 0x0068, 62, 33, 0 ),
|
||||
V( 33, 0x004e, 63, 34, 0 ),
|
||||
V( 34, 0x003b, 32, 35, 0 ),
|
||||
V( 35, 0x002c, 33, 9, 0 ),
|
||||
V( 36, 0x5ae1, 37, 37, 1 ),
|
||||
V( 37, 0x484c, 64, 38, 0 ),
|
||||
V( 38, 0x3a0d, 65, 39, 0 ),
|
||||
V( 39, 0x2ef1, 67, 40, 0 ),
|
||||
V( 40, 0x261f, 68, 41, 0 ),
|
||||
V( 41, 0x1f33, 69, 42, 0 ),
|
||||
V( 42, 0x19a8, 70, 43, 0 ),
|
||||
V( 43, 0x1518, 72, 44, 0 ),
|
||||
V( 44, 0x1177, 73, 45, 0 ),
|
||||
V( 45, 0x0e74, 74, 46, 0 ),
|
||||
V( 46, 0x0bfb, 75, 47, 0 ),
|
||||
V( 47, 0x09f8, 77, 48, 0 ),
|
||||
V( 48, 0x0861, 78, 49, 0 ),
|
||||
V( 49, 0x0706, 79, 50, 0 ),
|
||||
V( 50, 0x05cd, 48, 51, 0 ),
|
||||
V( 51, 0x04de, 50, 52, 0 ),
|
||||
V( 52, 0x040f, 50, 53, 0 ),
|
||||
V( 53, 0x0363, 51, 54, 0 ),
|
||||
V( 54, 0x02d4, 52, 55, 0 ),
|
||||
V( 55, 0x025c, 53, 56, 0 ),
|
||||
V( 56, 0x01f8, 54, 57, 0 ),
|
||||
V( 57, 0x01a4, 55, 58, 0 ),
|
||||
V( 58, 0x0160, 56, 59, 0 ),
|
||||
V( 59, 0x0125, 57, 60, 0 ),
|
||||
V( 60, 0x00f6, 58, 61, 0 ),
|
||||
V( 61, 0x00cb, 59, 62, 0 ),
|
||||
V( 62, 0x00ab, 61, 63, 0 ),
|
||||
V( 63, 0x008f, 61, 32, 0 ),
|
||||
V( 64, 0x5b12, 65, 65, 1 ),
|
||||
V( 65, 0x4d04, 80, 66, 0 ),
|
||||
V( 66, 0x412c, 81, 67, 0 ),
|
||||
V( 67, 0x37d8, 82, 68, 0 ),
|
||||
V( 68, 0x2fe8, 83, 69, 0 ),
|
||||
V( 69, 0x293c, 84, 70, 0 ),
|
||||
V( 70, 0x2379, 86, 71, 0 ),
|
||||
V( 71, 0x1edf, 87, 72, 0 ),
|
||||
V( 72, 0x1aa9, 87, 73, 0 ),
|
||||
V( 73, 0x174e, 72, 74, 0 ),
|
||||
V( 74, 0x1424, 72, 75, 0 ),
|
||||
V( 75, 0x119c, 74, 76, 0 ),
|
||||
V( 76, 0x0f6b, 74, 77, 0 ),
|
||||
V( 77, 0x0d51, 75, 78, 0 ),
|
||||
V( 78, 0x0bb6, 77, 79, 0 ),
|
||||
V( 79, 0x0a40, 77, 48, 0 ),
|
||||
V( 80, 0x5832, 80, 81, 1 ),
|
||||
V( 81, 0x4d1c, 88, 82, 0 ),
|
||||
V( 82, 0x438e, 89, 83, 0 ),
|
||||
V( 83, 0x3bdd, 90, 84, 0 ),
|
||||
V( 84, 0x34ee, 91, 85, 0 ),
|
||||
V( 85, 0x2eae, 92, 86, 0 ),
|
||||
V( 86, 0x299a, 93, 87, 0 ),
|
||||
V( 87, 0x2516, 86, 71, 0 ),
|
||||
V( 88, 0x5570, 88, 89, 1 ),
|
||||
V( 89, 0x4ca9, 95, 90, 0 ),
|
||||
V( 90, 0x44d9, 96, 91, 0 ),
|
||||
V( 91, 0x3e22, 97, 92, 0 ),
|
||||
V( 92, 0x3824, 99, 93, 0 ),
|
||||
V( 93, 0x32b4, 99, 94, 0 ),
|
||||
V( 94, 0x2e17, 93, 86, 0 ),
|
||||
V( 95, 0x56a8, 95, 96, 1 ),
|
||||
V( 96, 0x4f46, 101, 97, 0 ),
|
||||
V( 97, 0x47e5, 102, 98, 0 ),
|
||||
V( 98, 0x41cf, 103, 99, 0 ),
|
||||
V( 99, 0x3c3d, 104, 100, 0 ),
|
||||
V( 100, 0x375e, 99, 93, 0 ),
|
||||
V( 101, 0x5231, 105, 102, 0 ),
|
||||
V( 102, 0x4c0f, 106, 103, 0 ),
|
||||
V( 103, 0x4639, 107, 104, 0 ),
|
||||
V( 104, 0x415e, 103, 99, 0 ),
|
||||
V( 105, 0x5627, 105, 106, 1 ),
|
||||
V( 106, 0x50e7, 108, 107, 0 ),
|
||||
V( 107, 0x4b85, 109, 103, 0 ),
|
||||
V( 108, 0x5597, 110, 109, 0 ),
|
||||
V( 109, 0x504f, 111, 107, 0 ),
|
||||
V( 110, 0x5a10, 110, 111, 1 ),
|
||||
V( 111, 0x5522, 112, 109, 0 ),
|
||||
V( 112, 0x59eb, 112, 111, 1 ),
|
||||
/*
|
||||
* This last entry is used for fixed probability estimate of 0.5
|
||||
* as recommended in Section 10.3 Table 5 of ITU-T Rec. T.851.
|
||||
*/
|
||||
V( 113, 0x5a1d, 113, 113, 0 )
|
||||
};
|
||||
@@ -63,8 +63,10 @@ jpeg_CreateCompress (j_compress_ptr cinfo, int version, size_t structsize)
|
||||
|
||||
cinfo->comp_info = NULL;
|
||||
|
||||
for (i = 0; i < NUM_QUANT_TBLS; i++)
|
||||
for (i = 0; i < NUM_QUANT_TBLS; i++) {
|
||||
cinfo->quant_tbl_ptrs[i] = NULL;
|
||||
cinfo->q_scale_factor[i] = 100;
|
||||
}
|
||||
|
||||
for (i = 0; i < NUM_HUFF_TBLS; i++) {
|
||||
cinfo->dc_huff_tbl_ptrs[i] = NULL;
|
||||
@@ -168,7 +170,7 @@ jpeg_finish_compress (j_compress_ptr cinfo)
|
||||
/* We bypass the main controller and invoke coef controller directly;
|
||||
* all work is being done from the coefficient buffer.
|
||||
*/
|
||||
if (! (*cinfo->codec->compress_data) (cinfo, (JSAMPIMAGE) NULL))
|
||||
if (! (*cinfo->coef->compress_data) (cinfo, (JSAMPIMAGE) NULL))
|
||||
ERREXIT(cinfo, JERR_CANT_SUSPEND);
|
||||
}
|
||||
(*cinfo->master->finish_pass) (cinfo);
|
||||
|
||||
@@ -145,12 +145,12 @@ jpeg_write_raw_data (j_compress_ptr cinfo, JSAMPIMAGE data,
|
||||
(*cinfo->master->pass_startup) (cinfo);
|
||||
|
||||
/* Verify that at least one iMCU row has been passed. */
|
||||
lines_per_iMCU_row = cinfo->max_v_samp_factor * cinfo->data_unit;
|
||||
lines_per_iMCU_row = cinfo->max_v_samp_factor * DCTSIZE;
|
||||
if (num_lines < lines_per_iMCU_row)
|
||||
ERREXIT(cinfo, JERR_BUFFER_SIZE);
|
||||
|
||||
/* Directly compress the row. */
|
||||
if (! (*cinfo->codec->compress_data) (cinfo, data)) {
|
||||
if (! (*cinfo->coef->compress_data) (cinfo, data)) {
|
||||
/* If compressor did not consume the whole row, suspend processing. */
|
||||
return 0;
|
||||
}
|
||||
|
||||
@@ -0,0 +1,934 @@
|
||||
/*
|
||||
* jcarith.c
|
||||
*
|
||||
* Developed 1997-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains portable arithmetic entropy encoding routines for JPEG
|
||||
* (implementing the ISO/IEC IS 10918-1 and CCITT Recommendation ITU-T T.81).
|
||||
*
|
||||
* Both sequential and progressive modes are supported in this single module.
|
||||
*
|
||||
* Suspension is not currently supported in this module.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
|
||||
|
||||
/* Expanded entropy encoder object for arithmetic encoding. */
|
||||
|
||||
typedef struct {
|
||||
struct jpeg_entropy_encoder pub; /* public fields */
|
||||
|
||||
INT32 c; /* C register, base of coding interval, layout as in sec. D.1.3 */
|
||||
INT32 a; /* A register, normalized size of coding interval */
|
||||
INT32 sc; /* counter for stacked 0xFF values which might overflow */
|
||||
INT32 zc; /* counter for pending 0x00 output values which might *
|
||||
* be discarded at the end ("Pacman" termination) */
|
||||
int ct; /* bit shift counter, determines when next byte will be written */
|
||||
int buffer; /* buffer for most recent output byte != 0xFF */
|
||||
|
||||
int last_dc_val[MAX_COMPS_IN_SCAN]; /* last DC coef for each component */
|
||||
int dc_context[MAX_COMPS_IN_SCAN]; /* context index for DC conditioning */
|
||||
|
||||
unsigned int restarts_to_go; /* MCUs left in this restart interval */
|
||||
int next_restart_num; /* next restart number to write (0-7) */
|
||||
|
||||
/* Pointers to statistics areas (these workspaces have image lifespan) */
|
||||
unsigned char * dc_stats[NUM_ARITH_TBLS];
|
||||
unsigned char * ac_stats[NUM_ARITH_TBLS];
|
||||
|
||||
/* Statistics bin for coding with fixed probability 0.5 */
|
||||
unsigned char fixed_bin[4];
|
||||
} arith_entropy_encoder;
|
||||
|
||||
typedef arith_entropy_encoder * arith_entropy_ptr;
|
||||
|
||||
/* The following two definitions specify the allocation chunk size
|
||||
* for the statistics area.
|
||||
* According to sections F.1.4.4.1.3 and F.1.4.4.2, we need at least
|
||||
* 49 statistics bins for DC, and 245 statistics bins for AC coding.
|
||||
*
|
||||
* We use a compact representation with 1 byte per statistics bin,
|
||||
* thus the numbers directly represent byte sizes.
|
||||
* This 1 byte per statistics bin contains the meaning of the MPS
|
||||
* (more probable symbol) in the highest bit (mask 0x80), and the
|
||||
* index into the probability estimation state machine table
|
||||
* in the lower bits (mask 0x7F).
|
||||
*/
|
||||
|
||||
#define DC_STAT_BINS 64
|
||||
#define AC_STAT_BINS 256
|
||||
|
||||
/* NOTE: Uncomment the following #define if you want to use the
|
||||
* given formula for calculating the AC conditioning parameter Kx
|
||||
* for spectral selection progressive coding in section G.1.3.2
|
||||
* of the spec (Kx = Kmin + SRL (8 + Se - Kmin) 4).
|
||||
* Although the spec and P&M authors claim that this "has proven
|
||||
* to give good results for 8 bit precision samples", I'm not
|
||||
* convinced yet that this is really beneficial.
|
||||
* Early tests gave only very marginal compression enhancements
|
||||
* (a few - around 5 or so - bytes even for very large files),
|
||||
* which would turn out rather negative if we'd suppress the
|
||||
* DAC (Define Arithmetic Conditioning) marker segments for
|
||||
* the default parameters in the future.
|
||||
* Note that currently the marker writing module emits 12-byte
|
||||
* DAC segments for a full-component scan in a color image.
|
||||
* This is not worth worrying about IMHO. However, since the
|
||||
* spec defines the default values to be used if the tables
|
||||
* are omitted (unlike Huffman tables, which are required
|
||||
* anyway), one might optimize this behaviour in the future,
|
||||
* and then it would be disadvantageous to use custom tables if
|
||||
* they don't provide sufficient gain to exceed the DAC size.
|
||||
*
|
||||
* On the other hand, I'd consider it as a reasonable result
|
||||
* that the conditioning has no significant influence on the
|
||||
* compression performance. This means that the basic
|
||||
* statistical model is already rather stable.
|
||||
*
|
||||
* Thus, at the moment, we use the default conditioning values
|
||||
* anyway, and do not use the custom formula.
|
||||
*
|
||||
#define CALCULATE_SPECTRAL_CONDITIONING
|
||||
*/
|
||||
|
||||
/* IRIGHT_SHIFT is like RIGHT_SHIFT, but works on int rather than INT32.
|
||||
* We assume that int right shift is unsigned if INT32 right shift is,
|
||||
* which should be safe.
|
||||
*/
|
||||
|
||||
#ifdef RIGHT_SHIFT_IS_UNSIGNED
|
||||
#define ISHIFT_TEMPS int ishift_temp;
|
||||
#define IRIGHT_SHIFT(x,shft) \
|
||||
((ishift_temp = (x)) < 0 ? \
|
||||
(ishift_temp >> (shft)) | ((~0) << (16-(shft))) : \
|
||||
(ishift_temp >> (shft)))
|
||||
#else
|
||||
#define ISHIFT_TEMPS
|
||||
#define IRIGHT_SHIFT(x,shft) ((x) >> (shft))
|
||||
#endif
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
emit_byte (int val, j_compress_ptr cinfo)
|
||||
/* Write next output byte; we do not support suspension in this module. */
|
||||
{
|
||||
struct jpeg_destination_mgr * dest = cinfo->dest;
|
||||
|
||||
*dest->next_output_byte++ = (JOCTET) val;
|
||||
if (--dest->free_in_buffer == 0)
|
||||
if (! (*dest->empty_output_buffer) (cinfo))
|
||||
ERREXIT(cinfo, JERR_CANT_SUSPEND);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Finish up at the end of an arithmetic-compressed scan.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
finish_pass (j_compress_ptr cinfo)
|
||||
{
|
||||
arith_entropy_ptr e = (arith_entropy_ptr) cinfo->entropy;
|
||||
INT32 temp;
|
||||
|
||||
/* Section D.1.8: Termination of encoding */
|
||||
|
||||
/* Find the e->c in the coding interval with the largest
|
||||
* number of trailing zero bits */
|
||||
if ((temp = (e->a - 1 + e->c) & 0xFFFF0000L) < e->c)
|
||||
e->c = temp + 0x8000L;
|
||||
else
|
||||
e->c = temp;
|
||||
/* Send remaining bytes to output */
|
||||
e->c <<= e->ct;
|
||||
if (e->c & 0xF8000000L) {
|
||||
/* One final overflow has to be handled */
|
||||
if (e->buffer >= 0) {
|
||||
if (e->zc)
|
||||
do emit_byte(0x00, cinfo);
|
||||
while (--e->zc);
|
||||
emit_byte(e->buffer + 1, cinfo);
|
||||
if (e->buffer + 1 == 0xFF)
|
||||
emit_byte(0x00, cinfo);
|
||||
}
|
||||
e->zc += e->sc; /* carry-over converts stacked 0xFF bytes to 0x00 */
|
||||
e->sc = 0;
|
||||
} else {
|
||||
if (e->buffer == 0)
|
||||
++e->zc;
|
||||
else if (e->buffer >= 0) {
|
||||
if (e->zc)
|
||||
do emit_byte(0x00, cinfo);
|
||||
while (--e->zc);
|
||||
emit_byte(e->buffer, cinfo);
|
||||
}
|
||||
if (e->sc) {
|
||||
if (e->zc)
|
||||
do emit_byte(0x00, cinfo);
|
||||
while (--e->zc);
|
||||
do {
|
||||
emit_byte(0xFF, cinfo);
|
||||
emit_byte(0x00, cinfo);
|
||||
} while (--e->sc);
|
||||
}
|
||||
}
|
||||
/* Output final bytes only if they are not 0x00 */
|
||||
if (e->c & 0x7FFF800L) {
|
||||
if (e->zc) /* output final pending zero bytes */
|
||||
do emit_byte(0x00, cinfo);
|
||||
while (--e->zc);
|
||||
emit_byte((e->c >> 19) & 0xFF, cinfo);
|
||||
if (((e->c >> 19) & 0xFF) == 0xFF)
|
||||
emit_byte(0x00, cinfo);
|
||||
if (e->c & 0x7F800L) {
|
||||
emit_byte((e->c >> 11) & 0xFF, cinfo);
|
||||
if (((e->c >> 11) & 0xFF) == 0xFF)
|
||||
emit_byte(0x00, cinfo);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* The core arithmetic encoding routine (common in JPEG and JBIG).
|
||||
* This needs to go as fast as possible.
|
||||
* Machine-dependent optimization facilities
|
||||
* are not utilized in this portable implementation.
|
||||
* However, this code should be fairly efficient and
|
||||
* may be a good base for further optimizations anyway.
|
||||
*
|
||||
* Parameter 'val' to be encoded may be 0 or 1 (binary decision).
|
||||
*
|
||||
* Note: I've added full "Pacman" termination support to the
|
||||
* byte output routines, which is equivalent to the optional
|
||||
* Discard_final_zeros procedure (Figure D.15) in the spec.
|
||||
* Thus, we always produce the shortest possible output
|
||||
* stream compliant to the spec (no trailing zero bytes,
|
||||
* except for FF stuffing).
|
||||
*
|
||||
* I've also introduced a new scheme for accessing
|
||||
* the probability estimation state machine table,
|
||||
* derived from Markus Kuhn's JBIG implementation.
|
||||
*/
|
||||
|
||||
LOCAL(void)
|
||||
arith_encode (j_compress_ptr cinfo, unsigned char *st, int val)
|
||||
{
|
||||
register arith_entropy_ptr e = (arith_entropy_ptr) cinfo->entropy;
|
||||
register unsigned char nl, nm;
|
||||
register INT32 qe, temp;
|
||||
register int sv;
|
||||
|
||||
/* Fetch values from our compact representation of Table D.2:
|
||||
* Qe values and probability estimation state machine
|
||||
*/
|
||||
sv = *st;
|
||||
qe = jpeg_aritab[sv & 0x7F]; /* => Qe_Value */
|
||||
nl = qe & 0xFF; qe >>= 8; /* Next_Index_LPS + Switch_MPS */
|
||||
nm = qe & 0xFF; qe >>= 8; /* Next_Index_MPS */
|
||||
|
||||
/* Encode & estimation procedures per sections D.1.4 & D.1.5 */
|
||||
e->a -= qe;
|
||||
if (val != (sv >> 7)) {
|
||||
/* Encode the less probable symbol */
|
||||
if (e->a >= qe) {
|
||||
/* If the interval size (qe) for the less probable symbol (LPS)
|
||||
* is larger than the interval size for the MPS, then exchange
|
||||
* the two symbols for coding efficiency, otherwise code the LPS
|
||||
* as usual: */
|
||||
e->c += e->a;
|
||||
e->a = qe;
|
||||
}
|
||||
*st = (sv & 0x80) ^ nl; /* Estimate_after_LPS */
|
||||
} else {
|
||||
/* Encode the more probable symbol */
|
||||
if (e->a >= 0x8000L)
|
||||
return; /* A >= 0x8000 -> ready, no renormalization required */
|
||||
if (e->a < qe) {
|
||||
/* If the interval size (qe) for the less probable symbol (LPS)
|
||||
* is larger than the interval size for the MPS, then exchange
|
||||
* the two symbols for coding efficiency: */
|
||||
e->c += e->a;
|
||||
e->a = qe;
|
||||
}
|
||||
*st = (sv & 0x80) ^ nm; /* Estimate_after_MPS */
|
||||
}
|
||||
|
||||
/* Renormalization & data output per section D.1.6 */
|
||||
do {
|
||||
e->a <<= 1;
|
||||
e->c <<= 1;
|
||||
if (--e->ct == 0) {
|
||||
/* Another byte is ready for output */
|
||||
temp = e->c >> 19;
|
||||
if (temp > 0xFF) {
|
||||
/* Handle overflow over all stacked 0xFF bytes */
|
||||
if (e->buffer >= 0) {
|
||||
if (e->zc)
|
||||
do emit_byte(0x00, cinfo);
|
||||
while (--e->zc);
|
||||
emit_byte(e->buffer + 1, cinfo);
|
||||
if (e->buffer + 1 == 0xFF)
|
||||
emit_byte(0x00, cinfo);
|
||||
}
|
||||
e->zc += e->sc; /* carry-over converts stacked 0xFF bytes to 0x00 */
|
||||
e->sc = 0;
|
||||
/* Note: The 3 spacer bits in the C register guarantee
|
||||
* that the new buffer byte can't be 0xFF here
|
||||
* (see page 160 in the P&M JPEG book). */
|
||||
e->buffer = temp & 0xFF; /* new output byte, might overflow later */
|
||||
} else if (temp == 0xFF) {
|
||||
++e->sc; /* stack 0xFF byte (which might overflow later) */
|
||||
} else {
|
||||
/* Output all stacked 0xFF bytes, they will not overflow any more */
|
||||
if (e->buffer == 0)
|
||||
++e->zc;
|
||||
else if (e->buffer >= 0) {
|
||||
if (e->zc)
|
||||
do emit_byte(0x00, cinfo);
|
||||
while (--e->zc);
|
||||
emit_byte(e->buffer, cinfo);
|
||||
}
|
||||
if (e->sc) {
|
||||
if (e->zc)
|
||||
do emit_byte(0x00, cinfo);
|
||||
while (--e->zc);
|
||||
do {
|
||||
emit_byte(0xFF, cinfo);
|
||||
emit_byte(0x00, cinfo);
|
||||
} while (--e->sc);
|
||||
}
|
||||
e->buffer = temp & 0xFF; /* new output byte (can still overflow) */
|
||||
}
|
||||
e->c &= 0x7FFFFL;
|
||||
e->ct += 8;
|
||||
}
|
||||
} while (e->a < 0x8000L);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Emit a restart marker & resynchronize predictions.
|
||||
*/
|
||||
|
||||
LOCAL(void)
|
||||
emit_restart (j_compress_ptr cinfo, int restart_num)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
int ci;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
finish_pass(cinfo);
|
||||
|
||||
emit_byte(0xFF, cinfo);
|
||||
emit_byte(JPEG_RST0 + restart_num, cinfo);
|
||||
|
||||
/* Re-initialize statistics areas */
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
/* DC needs no table for refinement scan */
|
||||
if (cinfo->Ss == 0 && cinfo->Ah == 0) {
|
||||
MEMZERO(entropy->dc_stats[compptr->dc_tbl_no], DC_STAT_BINS);
|
||||
/* Reset DC predictions to 0 */
|
||||
entropy->last_dc_val[ci] = 0;
|
||||
entropy->dc_context[ci] = 0;
|
||||
}
|
||||
/* AC needs no table when not present */
|
||||
if (cinfo->Se) {
|
||||
MEMZERO(entropy->ac_stats[compptr->ac_tbl_no], AC_STAT_BINS);
|
||||
}
|
||||
}
|
||||
|
||||
/* Reset arithmetic encoding variables */
|
||||
entropy->c = 0;
|
||||
entropy->a = 0x10000L;
|
||||
entropy->sc = 0;
|
||||
entropy->zc = 0;
|
||||
entropy->ct = 11;
|
||||
entropy->buffer = -1; /* empty */
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU encoding for DC initial scan (either spectral selection,
|
||||
* or first pass of successive approximation).
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
encode_mcu_DC_first (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
JBLOCKROW block;
|
||||
unsigned char *st;
|
||||
int blkn, ci, tbl;
|
||||
int v, v2, m;
|
||||
ISHIFT_TEMPS
|
||||
|
||||
/* Emit restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
emit_restart(cinfo, entropy->next_restart_num);
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num++;
|
||||
entropy->next_restart_num &= 7;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
/* Encode the MCU data blocks */
|
||||
for (blkn = 0; blkn < cinfo->blocks_in_MCU; blkn++) {
|
||||
block = MCU_data[blkn];
|
||||
ci = cinfo->MCU_membership[blkn];
|
||||
tbl = cinfo->cur_comp_info[ci]->dc_tbl_no;
|
||||
|
||||
/* Compute the DC value after the required point transform by Al.
|
||||
* This is simply an arithmetic right shift.
|
||||
*/
|
||||
m = IRIGHT_SHIFT((int) ((*block)[0]), cinfo->Al);
|
||||
|
||||
/* Sections F.1.4.1 & F.1.4.4.1: Encoding of DC coefficients */
|
||||
|
||||
/* Table F.4: Point to statistics bin S0 for DC coefficient coding */
|
||||
st = entropy->dc_stats[tbl] + entropy->dc_context[ci];
|
||||
|
||||
/* Figure F.4: Encode_DC_DIFF */
|
||||
if ((v = m - entropy->last_dc_val[ci]) == 0) {
|
||||
arith_encode(cinfo, st, 0);
|
||||
entropy->dc_context[ci] = 0; /* zero diff category */
|
||||
} else {
|
||||
entropy->last_dc_val[ci] = m;
|
||||
arith_encode(cinfo, st, 1);
|
||||
/* Figure F.6: Encoding nonzero value v */
|
||||
/* Figure F.7: Encoding the sign of v */
|
||||
if (v > 0) {
|
||||
arith_encode(cinfo, st + 1, 0); /* Table F.4: SS = S0 + 1 */
|
||||
st += 2; /* Table F.4: SP = S0 + 2 */
|
||||
entropy->dc_context[ci] = 4; /* small positive diff category */
|
||||
} else {
|
||||
v = -v;
|
||||
arith_encode(cinfo, st + 1, 1); /* Table F.4: SS = S0 + 1 */
|
||||
st += 3; /* Table F.4: SN = S0 + 3 */
|
||||
entropy->dc_context[ci] = 8; /* small negative diff category */
|
||||
}
|
||||
/* Figure F.8: Encoding the magnitude category of v */
|
||||
m = 0;
|
||||
if (v -= 1) {
|
||||
arith_encode(cinfo, st, 1);
|
||||
m = 1;
|
||||
v2 = v;
|
||||
st = entropy->dc_stats[tbl] + 20; /* Table F.4: X1 = 20 */
|
||||
while (v2 >>= 1) {
|
||||
arith_encode(cinfo, st, 1);
|
||||
m <<= 1;
|
||||
st += 1;
|
||||
}
|
||||
}
|
||||
arith_encode(cinfo, st, 0);
|
||||
/* Section F.1.4.4.1.2: Establish dc_context conditioning category */
|
||||
if (m < (int) ((1L << cinfo->arith_dc_L[tbl]) >> 1))
|
||||
entropy->dc_context[ci] = 0; /* zero diff category */
|
||||
else if (m > (int) ((1L << cinfo->arith_dc_U[tbl]) >> 1))
|
||||
entropy->dc_context[ci] += 8; /* large diff category */
|
||||
/* Figure F.9: Encoding the magnitude bit pattern of v */
|
||||
st += 14;
|
||||
while (m >>= 1)
|
||||
arith_encode(cinfo, st, (m & v) ? 1 : 0);
|
||||
}
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU encoding for AC initial scan (either spectral selection,
|
||||
* or first pass of successive approximation).
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
encode_mcu_AC_first (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
JBLOCKROW block;
|
||||
unsigned char *st;
|
||||
int tbl, k, ke;
|
||||
int v, v2, m;
|
||||
const int * natural_order;
|
||||
|
||||
/* Emit restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
emit_restart(cinfo, entropy->next_restart_num);
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num++;
|
||||
entropy->next_restart_num &= 7;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
natural_order = cinfo->natural_order;
|
||||
|
||||
/* Encode the MCU data block */
|
||||
block = MCU_data[0];
|
||||
tbl = cinfo->cur_comp_info[0]->ac_tbl_no;
|
||||
|
||||
/* Sections F.1.4.2 & F.1.4.4.2: Encoding of AC coefficients */
|
||||
|
||||
/* Establish EOB (end-of-block) index */
|
||||
for (ke = cinfo->Se; ke > 0; ke--)
|
||||
/* We must apply the point transform by Al. For AC coefficients this
|
||||
* is an integer division with rounding towards 0. To do this portably
|
||||
* in C, we shift after obtaining the absolute value.
|
||||
*/
|
||||
if ((v = (*block)[natural_order[ke]]) >= 0) {
|
||||
if (v >>= cinfo->Al) break;
|
||||
} else {
|
||||
v = -v;
|
||||
if (v >>= cinfo->Al) break;
|
||||
}
|
||||
|
||||
/* Figure F.5: Encode_AC_Coefficients */
|
||||
for (k = cinfo->Ss; k <= ke; k++) {
|
||||
st = entropy->ac_stats[tbl] + 3 * (k - 1);
|
||||
arith_encode(cinfo, st, 0); /* EOB decision */
|
||||
for (;;) {
|
||||
if ((v = (*block)[natural_order[k]]) >= 0) {
|
||||
if (v >>= cinfo->Al) {
|
||||
arith_encode(cinfo, st + 1, 1);
|
||||
arith_encode(cinfo, entropy->fixed_bin, 0);
|
||||
break;
|
||||
}
|
||||
} else {
|
||||
v = -v;
|
||||
if (v >>= cinfo->Al) {
|
||||
arith_encode(cinfo, st + 1, 1);
|
||||
arith_encode(cinfo, entropy->fixed_bin, 1);
|
||||
break;
|
||||
}
|
||||
}
|
||||
arith_encode(cinfo, st + 1, 0); st += 3; k++;
|
||||
}
|
||||
st += 2;
|
||||
/* Figure F.8: Encoding the magnitude category of v */
|
||||
m = 0;
|
||||
if (v -= 1) {
|
||||
arith_encode(cinfo, st, 1);
|
||||
m = 1;
|
||||
v2 = v;
|
||||
if (v2 >>= 1) {
|
||||
arith_encode(cinfo, st, 1);
|
||||
m <<= 1;
|
||||
st = entropy->ac_stats[tbl] +
|
||||
(k <= cinfo->arith_ac_K[tbl] ? 189 : 217);
|
||||
while (v2 >>= 1) {
|
||||
arith_encode(cinfo, st, 1);
|
||||
m <<= 1;
|
||||
st += 1;
|
||||
}
|
||||
}
|
||||
}
|
||||
arith_encode(cinfo, st, 0);
|
||||
/* Figure F.9: Encoding the magnitude bit pattern of v */
|
||||
st += 14;
|
||||
while (m >>= 1)
|
||||
arith_encode(cinfo, st, (m & v) ? 1 : 0);
|
||||
}
|
||||
/* Encode EOB decision only if k <= cinfo->Se */
|
||||
if (k <= cinfo->Se) {
|
||||
st = entropy->ac_stats[tbl] + 3 * (k - 1);
|
||||
arith_encode(cinfo, st, 1);
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU encoding for DC successive approximation refinement scan.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
encode_mcu_DC_refine (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
unsigned char *st;
|
||||
int Al, blkn;
|
||||
|
||||
/* Emit restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
emit_restart(cinfo, entropy->next_restart_num);
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num++;
|
||||
entropy->next_restart_num &= 7;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
st = entropy->fixed_bin; /* use fixed probability estimation */
|
||||
Al = cinfo->Al;
|
||||
|
||||
/* Encode the MCU data blocks */
|
||||
for (blkn = 0; blkn < cinfo->blocks_in_MCU; blkn++) {
|
||||
/* We simply emit the Al'th bit of the DC coefficient value. */
|
||||
arith_encode(cinfo, st, (MCU_data[blkn][0][0] >> Al) & 1);
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU encoding for AC successive approximation refinement scan.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
encode_mcu_AC_refine (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
JBLOCKROW block;
|
||||
unsigned char *st;
|
||||
int tbl, k, ke, kex;
|
||||
int v;
|
||||
const int * natural_order;
|
||||
|
||||
/* Emit restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
emit_restart(cinfo, entropy->next_restart_num);
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num++;
|
||||
entropy->next_restart_num &= 7;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
natural_order = cinfo->natural_order;
|
||||
|
||||
/* Encode the MCU data block */
|
||||
block = MCU_data[0];
|
||||
tbl = cinfo->cur_comp_info[0]->ac_tbl_no;
|
||||
|
||||
/* Section G.1.3.3: Encoding of AC coefficients */
|
||||
|
||||
/* Establish EOB (end-of-block) index */
|
||||
for (ke = cinfo->Se; ke > 0; ke--)
|
||||
/* We must apply the point transform by Al. For AC coefficients this
|
||||
* is an integer division with rounding towards 0. To do this portably
|
||||
* in C, we shift after obtaining the absolute value.
|
||||
*/
|
||||
if ((v = (*block)[natural_order[ke]]) >= 0) {
|
||||
if (v >>= cinfo->Al) break;
|
||||
} else {
|
||||
v = -v;
|
||||
if (v >>= cinfo->Al) break;
|
||||
}
|
||||
|
||||
/* Establish EOBx (previous stage end-of-block) index */
|
||||
for (kex = ke; kex > 0; kex--)
|
||||
if ((v = (*block)[natural_order[kex]]) >= 0) {
|
||||
if (v >>= cinfo->Ah) break;
|
||||
} else {
|
||||
v = -v;
|
||||
if (v >>= cinfo->Ah) break;
|
||||
}
|
||||
|
||||
/* Figure G.10: Encode_AC_Coefficients_SA */
|
||||
for (k = cinfo->Ss; k <= ke; k++) {
|
||||
st = entropy->ac_stats[tbl] + 3 * (k - 1);
|
||||
if (k > kex)
|
||||
arith_encode(cinfo, st, 0); /* EOB decision */
|
||||
for (;;) {
|
||||
if ((v = (*block)[natural_order[k]]) >= 0) {
|
||||
if (v >>= cinfo->Al) {
|
||||
if (v >> 1) /* previously nonzero coef */
|
||||
arith_encode(cinfo, st + 2, (v & 1));
|
||||
else { /* newly nonzero coef */
|
||||
arith_encode(cinfo, st + 1, 1);
|
||||
arith_encode(cinfo, entropy->fixed_bin, 0);
|
||||
}
|
||||
break;
|
||||
}
|
||||
} else {
|
||||
v = -v;
|
||||
if (v >>= cinfo->Al) {
|
||||
if (v >> 1) /* previously nonzero coef */
|
||||
arith_encode(cinfo, st + 2, (v & 1));
|
||||
else { /* newly nonzero coef */
|
||||
arith_encode(cinfo, st + 1, 1);
|
||||
arith_encode(cinfo, entropy->fixed_bin, 1);
|
||||
}
|
||||
break;
|
||||
}
|
||||
}
|
||||
arith_encode(cinfo, st + 1, 0); st += 3; k++;
|
||||
}
|
||||
}
|
||||
/* Encode EOB decision only if k <= cinfo->Se */
|
||||
if (k <= cinfo->Se) {
|
||||
st = entropy->ac_stats[tbl] + 3 * (k - 1);
|
||||
arith_encode(cinfo, st, 1);
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Encode and output one MCU's worth of arithmetic-compressed coefficients.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
encode_mcu (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
jpeg_component_info * compptr;
|
||||
JBLOCKROW block;
|
||||
unsigned char *st;
|
||||
int blkn, ci, tbl, k, ke;
|
||||
int v, v2, m;
|
||||
const int * natural_order;
|
||||
|
||||
/* Emit restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
emit_restart(cinfo, entropy->next_restart_num);
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num++;
|
||||
entropy->next_restart_num &= 7;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
natural_order = cinfo->natural_order;
|
||||
|
||||
/* Encode the MCU data blocks */
|
||||
for (blkn = 0; blkn < cinfo->blocks_in_MCU; blkn++) {
|
||||
block = MCU_data[blkn];
|
||||
ci = cinfo->MCU_membership[blkn];
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
|
||||
/* Sections F.1.4.1 & F.1.4.4.1: Encoding of DC coefficients */
|
||||
|
||||
tbl = compptr->dc_tbl_no;
|
||||
|
||||
/* Table F.4: Point to statistics bin S0 for DC coefficient coding */
|
||||
st = entropy->dc_stats[tbl] + entropy->dc_context[ci];
|
||||
|
||||
/* Figure F.4: Encode_DC_DIFF */
|
||||
if ((v = (*block)[0] - entropy->last_dc_val[ci]) == 0) {
|
||||
arith_encode(cinfo, st, 0);
|
||||
entropy->dc_context[ci] = 0; /* zero diff category */
|
||||
} else {
|
||||
entropy->last_dc_val[ci] = (*block)[0];
|
||||
arith_encode(cinfo, st, 1);
|
||||
/* Figure F.6: Encoding nonzero value v */
|
||||
/* Figure F.7: Encoding the sign of v */
|
||||
if (v > 0) {
|
||||
arith_encode(cinfo, st + 1, 0); /* Table F.4: SS = S0 + 1 */
|
||||
st += 2; /* Table F.4: SP = S0 + 2 */
|
||||
entropy->dc_context[ci] = 4; /* small positive diff category */
|
||||
} else {
|
||||
v = -v;
|
||||
arith_encode(cinfo, st + 1, 1); /* Table F.4: SS = S0 + 1 */
|
||||
st += 3; /* Table F.4: SN = S0 + 3 */
|
||||
entropy->dc_context[ci] = 8; /* small negative diff category */
|
||||
}
|
||||
/* Figure F.8: Encoding the magnitude category of v */
|
||||
m = 0;
|
||||
if (v -= 1) {
|
||||
arith_encode(cinfo, st, 1);
|
||||
m = 1;
|
||||
v2 = v;
|
||||
st = entropy->dc_stats[tbl] + 20; /* Table F.4: X1 = 20 */
|
||||
while (v2 >>= 1) {
|
||||
arith_encode(cinfo, st, 1);
|
||||
m <<= 1;
|
||||
st += 1;
|
||||
}
|
||||
}
|
||||
arith_encode(cinfo, st, 0);
|
||||
/* Section F.1.4.4.1.2: Establish dc_context conditioning category */
|
||||
if (m < (int) ((1L << cinfo->arith_dc_L[tbl]) >> 1))
|
||||
entropy->dc_context[ci] = 0; /* zero diff category */
|
||||
else if (m > (int) ((1L << cinfo->arith_dc_U[tbl]) >> 1))
|
||||
entropy->dc_context[ci] += 8; /* large diff category */
|
||||
/* Figure F.9: Encoding the magnitude bit pattern of v */
|
||||
st += 14;
|
||||
while (m >>= 1)
|
||||
arith_encode(cinfo, st, (m & v) ? 1 : 0);
|
||||
}
|
||||
|
||||
/* Sections F.1.4.2 & F.1.4.4.2: Encoding of AC coefficients */
|
||||
|
||||
tbl = compptr->ac_tbl_no;
|
||||
|
||||
/* Establish EOB (end-of-block) index */
|
||||
for (ke = cinfo->lim_Se; ke > 0; ke--)
|
||||
if ((*block)[natural_order[ke]]) break;
|
||||
|
||||
/* Figure F.5: Encode_AC_Coefficients */
|
||||
for (k = 1; k <= ke; k++) {
|
||||
st = entropy->ac_stats[tbl] + 3 * (k - 1);
|
||||
arith_encode(cinfo, st, 0); /* EOB decision */
|
||||
while ((v = (*block)[natural_order[k]]) == 0) {
|
||||
arith_encode(cinfo, st + 1, 0); st += 3; k++;
|
||||
}
|
||||
arith_encode(cinfo, st + 1, 1);
|
||||
/* Figure F.6: Encoding nonzero value v */
|
||||
/* Figure F.7: Encoding the sign of v */
|
||||
if (v > 0) {
|
||||
arith_encode(cinfo, entropy->fixed_bin, 0);
|
||||
} else {
|
||||
v = -v;
|
||||
arith_encode(cinfo, entropy->fixed_bin, 1);
|
||||
}
|
||||
st += 2;
|
||||
/* Figure F.8: Encoding the magnitude category of v */
|
||||
m = 0;
|
||||
if (v -= 1) {
|
||||
arith_encode(cinfo, st, 1);
|
||||
m = 1;
|
||||
v2 = v;
|
||||
if (v2 >>= 1) {
|
||||
arith_encode(cinfo, st, 1);
|
||||
m <<= 1;
|
||||
st = entropy->ac_stats[tbl] +
|
||||
(k <= cinfo->arith_ac_K[tbl] ? 189 : 217);
|
||||
while (v2 >>= 1) {
|
||||
arith_encode(cinfo, st, 1);
|
||||
m <<= 1;
|
||||
st += 1;
|
||||
}
|
||||
}
|
||||
}
|
||||
arith_encode(cinfo, st, 0);
|
||||
/* Figure F.9: Encoding the magnitude bit pattern of v */
|
||||
st += 14;
|
||||
while (m >>= 1)
|
||||
arith_encode(cinfo, st, (m & v) ? 1 : 0);
|
||||
}
|
||||
/* Encode EOB decision only if k <= cinfo->lim_Se */
|
||||
if (k <= cinfo->lim_Se) {
|
||||
st = entropy->ac_stats[tbl] + 3 * (k - 1);
|
||||
arith_encode(cinfo, st, 1);
|
||||
}
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for an arithmetic-compressed scan.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass (j_compress_ptr cinfo, boolean gather_statistics)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
int ci, tbl;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
if (gather_statistics)
|
||||
/* Make sure to avoid that in the master control logic!
|
||||
* We are fully adaptive here and need no extra
|
||||
* statistics gathering pass!
|
||||
*/
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
|
||||
/* We assume jcmaster.c already validated the progressive scan parameters. */
|
||||
|
||||
/* Select execution routines */
|
||||
if (cinfo->progressive_mode) {
|
||||
if (cinfo->Ah == 0) {
|
||||
if (cinfo->Ss == 0)
|
||||
entropy->pub.encode_mcu = encode_mcu_DC_first;
|
||||
else
|
||||
entropy->pub.encode_mcu = encode_mcu_AC_first;
|
||||
} else {
|
||||
if (cinfo->Ss == 0)
|
||||
entropy->pub.encode_mcu = encode_mcu_DC_refine;
|
||||
else
|
||||
entropy->pub.encode_mcu = encode_mcu_AC_refine;
|
||||
}
|
||||
} else
|
||||
entropy->pub.encode_mcu = encode_mcu;
|
||||
|
||||
/* Allocate & initialize requested statistics areas */
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
/* DC needs no table for refinement scan */
|
||||
if (cinfo->Ss == 0 && cinfo->Ah == 0) {
|
||||
tbl = compptr->dc_tbl_no;
|
||||
if (tbl < 0 || tbl >= NUM_ARITH_TBLS)
|
||||
ERREXIT1(cinfo, JERR_NO_ARITH_TABLE, tbl);
|
||||
if (entropy->dc_stats[tbl] == NULL)
|
||||
entropy->dc_stats[tbl] = (unsigned char *) (*cinfo->mem->alloc_small)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE, DC_STAT_BINS);
|
||||
MEMZERO(entropy->dc_stats[tbl], DC_STAT_BINS);
|
||||
/* Initialize DC predictions to 0 */
|
||||
entropy->last_dc_val[ci] = 0;
|
||||
entropy->dc_context[ci] = 0;
|
||||
}
|
||||
/* AC needs no table when not present */
|
||||
if (cinfo->Se) {
|
||||
tbl = compptr->ac_tbl_no;
|
||||
if (tbl < 0 || tbl >= NUM_ARITH_TBLS)
|
||||
ERREXIT1(cinfo, JERR_NO_ARITH_TABLE, tbl);
|
||||
if (entropy->ac_stats[tbl] == NULL)
|
||||
entropy->ac_stats[tbl] = (unsigned char *) (*cinfo->mem->alloc_small)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE, AC_STAT_BINS);
|
||||
MEMZERO(entropy->ac_stats[tbl], AC_STAT_BINS);
|
||||
#ifdef CALCULATE_SPECTRAL_CONDITIONING
|
||||
if (cinfo->progressive_mode)
|
||||
/* Section G.1.3.2: Set appropriate arithmetic conditioning value Kx */
|
||||
cinfo->arith_ac_K[tbl] = cinfo->Ss + ((8 + cinfo->Se - cinfo->Ss) >> 4);
|
||||
#endif
|
||||
}
|
||||
}
|
||||
|
||||
/* Initialize arithmetic encoding variables */
|
||||
entropy->c = 0;
|
||||
entropy->a = 0x10000L;
|
||||
entropy->sc = 0;
|
||||
entropy->zc = 0;
|
||||
entropy->ct = 11;
|
||||
entropy->buffer = -1; /* empty */
|
||||
|
||||
/* Initialize restart stuff */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num = 0;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Module initialization routine for arithmetic entropy encoding.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_arith_encoder (j_compress_ptr cinfo)
|
||||
{
|
||||
arith_entropy_ptr entropy;
|
||||
int i;
|
||||
|
||||
entropy = (arith_entropy_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(arith_entropy_encoder));
|
||||
cinfo->entropy = (struct jpeg_entropy_encoder *) entropy;
|
||||
entropy->pub.start_pass = start_pass;
|
||||
entropy->pub.finish_pass = finish_pass;
|
||||
|
||||
/* Mark tables unallocated */
|
||||
for (i = 0; i < NUM_ARITH_TBLS; i++) {
|
||||
entropy->dc_stats[i] = NULL;
|
||||
entropy->ac_stats[i] = NULL;
|
||||
}
|
||||
|
||||
/* Initialize index for fixed probability estimation */
|
||||
entropy->fixed_bin[0] = 113;
|
||||
}
|
||||
+44
-42
@@ -1,7 +1,7 @@
|
||||
/*
|
||||
* jccoefct.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1994-1997, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -13,7 +13,6 @@
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h" /* Private declarations for lossy codec */
|
||||
|
||||
|
||||
/* We use a full-image coefficient buffer when doing Huffman optimization,
|
||||
@@ -33,6 +32,8 @@
|
||||
/* Private buffer controller object */
|
||||
|
||||
typedef struct {
|
||||
struct jpeg_c_coef_controller pub; /* public fields */
|
||||
|
||||
JDIMENSION iMCU_row_num; /* iMCU row # within image */
|
||||
JDIMENSION mcu_ctr; /* counts MCUs processed in current row */
|
||||
int MCU_vert_offset; /* counts MCU rows within iMCU row */
|
||||
@@ -40,20 +41,20 @@ typedef struct {
|
||||
|
||||
/* For single-pass compression, it's sufficient to buffer just one MCU
|
||||
* (although this may prove a bit slow in practice). We allocate a
|
||||
* workspace of C_MAX_DATA_UNITS_IN_MCU coefficient blocks, and reuse it for
|
||||
* each MCU constructed and sent. (On 80x86, the workspace is FAR even
|
||||
* though it's not really very big; this is to keep the module interfaces
|
||||
* unchanged when a large coefficient buffer is necessary.)
|
||||
* workspace of C_MAX_BLOCKS_IN_MCU coefficient blocks, and reuse it for each
|
||||
* MCU constructed and sent. (On 80x86, the workspace is FAR even though
|
||||
* it's not really very big; this is to keep the module interfaces unchanged
|
||||
* when a large coefficient buffer is necessary.)
|
||||
* In multi-pass modes, this array points to the current MCU's blocks
|
||||
* within the virtual arrays.
|
||||
*/
|
||||
JBLOCKROW MCU_buffer[C_MAX_DATA_UNITS_IN_MCU];
|
||||
JBLOCKROW MCU_buffer[C_MAX_BLOCKS_IN_MCU];
|
||||
|
||||
/* In multi-pass modes, we need a virtual block array for each component. */
|
||||
jvirt_barray_ptr whole_image[MAX_COMPONENTS];
|
||||
} c_coef_controller;
|
||||
} my_coef_controller;
|
||||
|
||||
typedef c_coef_controller * c_coef_ptr;
|
||||
typedef my_coef_controller * my_coef_ptr;
|
||||
|
||||
|
||||
/* Forward declarations */
|
||||
@@ -71,8 +72,7 @@ LOCAL(void)
|
||||
start_iMCU_row (j_compress_ptr cinfo)
|
||||
/* Reset within-iMCU-row counters for a new row */
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
c_coef_ptr coef = (c_coef_ptr) lossyc->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
|
||||
/* In an interleaved scan, an MCU row is the same as an iMCU row.
|
||||
* In a noninterleaved scan, an iMCU row has v_samp_factor MCU rows.
|
||||
@@ -99,8 +99,7 @@ start_iMCU_row (j_compress_ptr cinfo)
|
||||
METHODDEF(void)
|
||||
start_pass_coef (j_compress_ptr cinfo, J_BUF_MODE pass_mode)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
c_coef_ptr coef = (c_coef_ptr) lossyc->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
|
||||
coef->iMCU_row_num = 0;
|
||||
start_iMCU_row(cinfo);
|
||||
@@ -109,18 +108,18 @@ start_pass_coef (j_compress_ptr cinfo, J_BUF_MODE pass_mode)
|
||||
case JBUF_PASS_THRU:
|
||||
if (coef->whole_image[0] != NULL)
|
||||
ERREXIT(cinfo, JERR_BAD_BUFFER_MODE);
|
||||
lossyc->pub.compress_data = compress_data;
|
||||
coef->pub.compress_data = compress_data;
|
||||
break;
|
||||
#ifdef FULL_COEF_BUFFER_SUPPORTED
|
||||
case JBUF_SAVE_AND_PASS:
|
||||
if (coef->whole_image[0] == NULL)
|
||||
ERREXIT(cinfo, JERR_BAD_BUFFER_MODE);
|
||||
lossyc->pub.compress_data = compress_first_pass;
|
||||
coef->pub.compress_data = compress_first_pass;
|
||||
break;
|
||||
case JBUF_CRANK_DEST:
|
||||
if (coef->whole_image[0] == NULL)
|
||||
ERREXIT(cinfo, JERR_BAD_BUFFER_MODE);
|
||||
lossyc->pub.compress_data = compress_output;
|
||||
coef->pub.compress_data = compress_output;
|
||||
break;
|
||||
#endif
|
||||
default:
|
||||
@@ -143,13 +142,14 @@ start_pass_coef (j_compress_ptr cinfo, J_BUF_MODE pass_mode)
|
||||
METHODDEF(boolean)
|
||||
compress_data (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
c_coef_ptr coef = (c_coef_ptr) lossyc->coef_private; JDIMENSION MCU_col_num; /* index of current MCU within row */
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
JDIMENSION MCU_col_num; /* index of current MCU within row */
|
||||
JDIMENSION last_MCU_col = cinfo->MCUs_per_row - 1;
|
||||
JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
int blkn, bi, ci, yindex, yoffset, blockcnt;
|
||||
JDIMENSION ypos, xpos;
|
||||
jpeg_component_info *compptr;
|
||||
forward_DCT_ptr forward_DCT;
|
||||
|
||||
/* Loop to write as much as one whole iMCU row */
|
||||
for (yoffset = coef->MCU_vert_offset; yoffset < coef->MCU_rows_per_iMCU_row;
|
||||
@@ -168,14 +168,16 @@ compress_data (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
blkn = 0;
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
forward_DCT = cinfo->fdct->forward_DCT[compptr->component_index];
|
||||
blockcnt = (MCU_col_num < last_MCU_col) ? compptr->MCU_width
|
||||
: compptr->last_col_width;
|
||||
xpos = MCU_col_num * compptr->MCU_sample_width;
|
||||
ypos = yoffset * DCTSIZE; /* ypos == (yoffset+yindex) * DCTSIZE */
|
||||
ypos = yoffset * compptr->DCT_v_scaled_size;
|
||||
/* ypos == (yoffset+yindex) * DCTSIZE */
|
||||
for (yindex = 0; yindex < compptr->MCU_height; yindex++) {
|
||||
if (coef->iMCU_row_num < last_iMCU_row ||
|
||||
yoffset+yindex < compptr->last_row_height) {
|
||||
(*lossyc->fdct_forward_DCT) (cinfo, compptr,
|
||||
(*forward_DCT) (cinfo, compptr,
|
||||
input_buf[compptr->component_index],
|
||||
coef->MCU_buffer[blkn],
|
||||
ypos, xpos, (JDIMENSION) blockcnt);
|
||||
@@ -196,13 +198,13 @@ compress_data (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
}
|
||||
}
|
||||
blkn += compptr->MCU_width;
|
||||
ypos += DCTSIZE;
|
||||
ypos += compptr->DCT_v_scaled_size;
|
||||
}
|
||||
}
|
||||
/* Try to write the MCU. In event of a suspension failure, we will
|
||||
* re-DCT the MCU on restart (a bit inefficient, could be fixed...)
|
||||
*/
|
||||
if (! (*lossyc->entropy_encode_mcu) (cinfo, coef->MCU_buffer)) {
|
||||
if (! (*cinfo->entropy->encode_mcu) (cinfo, coef->MCU_buffer)) {
|
||||
/* Suspension forced; update state counters and exit */
|
||||
coef->MCU_vert_offset = yoffset;
|
||||
coef->mcu_ctr = MCU_col_num;
|
||||
@@ -245,14 +247,15 @@ compress_data (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
METHODDEF(boolean)
|
||||
compress_first_pass (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
c_coef_ptr coef = (c_coef_ptr) lossyc->coef_private; JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
JDIMENSION blocks_across, MCUs_across, MCUindex;
|
||||
int bi, ci, h_samp_factor, block_row, block_rows, ndummy;
|
||||
JCOEF lastDC;
|
||||
jpeg_component_info *compptr;
|
||||
JBLOCKARRAY buffer;
|
||||
JBLOCKROW thisblockrow, lastblockrow;
|
||||
forward_DCT_ptr forward_DCT;
|
||||
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
@@ -266,23 +269,23 @@ compress_first_pass (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
block_rows = compptr->v_samp_factor;
|
||||
else {
|
||||
/* NB: can't use last_row_height here, since may not be set! */
|
||||
block_rows = (int) (compptr->height_in_data_units % compptr->v_samp_factor);
|
||||
block_rows = (int) (compptr->height_in_blocks % compptr->v_samp_factor);
|
||||
if (block_rows == 0) block_rows = compptr->v_samp_factor;
|
||||
}
|
||||
blocks_across = compptr->width_in_data_units;
|
||||
blocks_across = compptr->width_in_blocks;
|
||||
h_samp_factor = compptr->h_samp_factor;
|
||||
/* Count number of dummy blocks to be added at the right margin. */
|
||||
ndummy = (int) (blocks_across % h_samp_factor);
|
||||
if (ndummy > 0)
|
||||
ndummy = h_samp_factor - ndummy;
|
||||
forward_DCT = cinfo->fdct->forward_DCT[ci];
|
||||
/* Perform DCT for all non-dummy blocks in this iMCU row. Each call
|
||||
* on forward_DCT processes a complete horizontal row of DCT blocks.
|
||||
*/
|
||||
for (block_row = 0; block_row < block_rows; block_row++) {
|
||||
thisblockrow = buffer[block_row];
|
||||
(*lossyc->fdct_forward_DCT) (cinfo, compptr,
|
||||
input_buf[ci], thisblockrow,
|
||||
(JDIMENSION) (block_row * DCTSIZE),
|
||||
(*forward_DCT) (cinfo, compptr, input_buf[ci], thisblockrow,
|
||||
(JDIMENSION) (block_row * compptr->DCT_v_scaled_size),
|
||||
(JDIMENSION) 0, blocks_across);
|
||||
if (ndummy > 0) {
|
||||
/* Create dummy blocks at the right edge of the image. */
|
||||
@@ -341,8 +344,8 @@ compress_first_pass (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
METHODDEF(boolean)
|
||||
compress_output (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
c_coef_ptr coef = (c_coef_ptr) lossyc->coef_private; JDIMENSION MCU_col_num; /* index of current MCU within row */
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
JDIMENSION MCU_col_num; /* index of current MCU within row */
|
||||
int blkn, ci, xindex, yindex, yoffset;
|
||||
JDIMENSION start_col;
|
||||
JBLOCKARRAY buffer[MAX_COMPS_IN_SCAN];
|
||||
@@ -379,7 +382,7 @@ compress_output (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
}
|
||||
}
|
||||
/* Try to write the MCU. */
|
||||
if (! (*lossyc->entropy_encode_mcu) (cinfo, coef->MCU_buffer)) {
|
||||
if (! (*cinfo->entropy->encode_mcu) (cinfo, coef->MCU_buffer)) {
|
||||
/* Suspension forced; update state counters and exit */
|
||||
coef->MCU_vert_offset = yoffset;
|
||||
coef->mcu_ctr = MCU_col_num;
|
||||
@@ -405,14 +408,13 @@ compress_output (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
GLOBAL(void)
|
||||
jinit_c_coef_controller (j_compress_ptr cinfo, boolean need_full_buffer)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
c_coef_ptr coef;
|
||||
my_coef_ptr coef;
|
||||
|
||||
coef = (c_coef_ptr)
|
||||
coef = (my_coef_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(c_coef_controller));
|
||||
lossyc->coef_private = (struct jpeg_c_coef_controller *) coef;
|
||||
lossyc->coef_start_pass = start_pass_coef;
|
||||
SIZEOF(my_coef_controller));
|
||||
cinfo->coef = (struct jpeg_c_coef_controller *) coef;
|
||||
coef->pub.start_pass = start_pass_coef;
|
||||
|
||||
/* Create the coefficient buffer. */
|
||||
if (need_full_buffer) {
|
||||
@@ -426,9 +428,9 @@ jinit_c_coef_controller (j_compress_ptr cinfo, boolean need_full_buffer)
|
||||
ci++, compptr++) {
|
||||
coef->whole_image[ci] = (*cinfo->mem->request_virt_barray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE, FALSE,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_data_units,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_blocks,
|
||||
(long) compptr->h_samp_factor),
|
||||
(JDIMENSION) jround_up((long) compptr->height_in_data_units,
|
||||
(JDIMENSION) jround_up((long) compptr->height_in_blocks,
|
||||
(long) compptr->v_samp_factor),
|
||||
(JDIMENSION) compptr->v_samp_factor);
|
||||
}
|
||||
@@ -442,8 +444,8 @@ jinit_c_coef_controller (j_compress_ptr cinfo, boolean need_full_buffer)
|
||||
|
||||
buffer = (JBLOCKROW)
|
||||
(*cinfo->mem->alloc_large) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
C_MAX_DATA_UNITS_IN_MCU * SIZEOF(JBLOCK));
|
||||
for (i = 0; i < C_MAX_DATA_UNITS_IN_MCU; i++) {
|
||||
C_MAX_BLOCKS_IN_MCU * SIZEOF(JBLOCK));
|
||||
for (i = 0; i < C_MAX_BLOCKS_IN_MCU; i++) {
|
||||
coef->MCU_buffer[i] = buffer + i;
|
||||
}
|
||||
coef->whole_image[0] = NULL; /* flag for no virtual arrays */
|
||||
|
||||
+303
-209
@@ -1,7 +1,7 @@
|
||||
/*
|
||||
* jcdctmgr.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1994-1996, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -14,15 +14,16 @@
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h" /* Private declarations for lossy codec */
|
||||
#include "jdct.h" /* Private declarations for DCT subsystem */
|
||||
|
||||
|
||||
/* Private subobject for this module */
|
||||
|
||||
typedef struct {
|
||||
struct jpeg_forward_dct pub; /* public fields */
|
||||
|
||||
/* Pointer to the DCT routine actually in use */
|
||||
forward_DCT_method_ptr do_dct;
|
||||
forward_DCT_method_ptr do_dct[MAX_COMPONENTS];
|
||||
|
||||
/* The actual post-DCT divisors --- not identical to the quant table
|
||||
* entries, because of scaling (especially for an unnormalized DCT).
|
||||
@@ -32,140 +33,24 @@ typedef struct {
|
||||
|
||||
#ifdef DCT_FLOAT_SUPPORTED
|
||||
/* Same as above for the floating-point case. */
|
||||
float_DCT_method_ptr do_float_dct;
|
||||
float_DCT_method_ptr do_float_dct[MAX_COMPONENTS];
|
||||
FAST_FLOAT * float_divisors[NUM_QUANT_TBLS];
|
||||
#endif
|
||||
} fdct_controller;
|
||||
} my_fdct_controller;
|
||||
|
||||
typedef fdct_controller * fdct_ptr;
|
||||
typedef my_fdct_controller * my_fdct_ptr;
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for a processing pass.
|
||||
* Verify that all referenced Q-tables are present, and set up
|
||||
* the divisor table for each one.
|
||||
* In the current implementation, DCT of all components is done during
|
||||
* the first pass, even if only some components will be output in the
|
||||
* first scan. Hence all components should be examined here.
|
||||
/* The current scaled-DCT routines require ISLOW-style divisor tables,
|
||||
* so be sure to compile that code if either ISLOW or SCALING is requested.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass_fdctmgr (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
fdct_ptr fdct = (fdct_ptr) lossyc->fdct_private;
|
||||
int ci, qtblno, i;
|
||||
jpeg_component_info *compptr;
|
||||
JQUANT_TBL * qtbl;
|
||||
DCTELEM * dtbl;
|
||||
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
qtblno = compptr->quant_tbl_no;
|
||||
/* Make sure specified quantization table is present */
|
||||
if (qtblno < 0 || qtblno >= NUM_QUANT_TBLS ||
|
||||
cinfo->quant_tbl_ptrs[qtblno] == NULL)
|
||||
ERREXIT1(cinfo, JERR_NO_QUANT_TABLE, qtblno);
|
||||
qtbl = cinfo->quant_tbl_ptrs[qtblno];
|
||||
/* Compute divisors for this quant table */
|
||||
/* We may do this more than once for same table, but it's not a big deal */
|
||||
switch (cinfo->dct_method) {
|
||||
#ifdef DCT_ISLOW_SUPPORTED
|
||||
case JDCT_ISLOW:
|
||||
/* For LL&M IDCT method, divisors are equal to raw quantization
|
||||
* coefficients multiplied by 8 (to counteract scaling).
|
||||
*/
|
||||
if (fdct->divisors[qtblno] == NULL) {
|
||||
fdct->divisors[qtblno] = (DCTELEM *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
DCTSIZE2 * SIZEOF(DCTELEM));
|
||||
}
|
||||
dtbl = fdct->divisors[qtblno];
|
||||
for (i = 0; i < DCTSIZE2; i++) {
|
||||
dtbl[i] = ((DCTELEM) qtbl->quantval[i]) << 3;
|
||||
}
|
||||
break;
|
||||
#define PROVIDE_ISLOW_TABLES
|
||||
#else
|
||||
#ifdef DCT_SCALING_SUPPORTED
|
||||
#define PROVIDE_ISLOW_TABLES
|
||||
#endif
|
||||
#ifdef DCT_IFAST_SUPPORTED
|
||||
case JDCT_IFAST:
|
||||
{
|
||||
/* For AA&N IDCT method, divisors are equal to quantization
|
||||
* coefficients scaled by scalefactor[row]*scalefactor[col], where
|
||||
* scalefactor[0] = 1
|
||||
* scalefactor[k] = cos(k*PI/16) * sqrt(2) for k=1..7
|
||||
* We apply a further scale factor of 8.
|
||||
*/
|
||||
#define CONST_BITS 14
|
||||
static const INT16 aanscales[DCTSIZE2] = {
|
||||
/* precomputed values scaled up by 14 bits */
|
||||
16384, 22725, 21407, 19266, 16384, 12873, 8867, 4520,
|
||||
22725, 31521, 29692, 26722, 22725, 17855, 12299, 6270,
|
||||
21407, 29692, 27969, 25172, 21407, 16819, 11585, 5906,
|
||||
19266, 26722, 25172, 22654, 19266, 15137, 10426, 5315,
|
||||
16384, 22725, 21407, 19266, 16384, 12873, 8867, 4520,
|
||||
12873, 17855, 16819, 15137, 12873, 10114, 6967, 3552,
|
||||
8867, 12299, 11585, 10426, 8867, 6967, 4799, 2446,
|
||||
4520, 6270, 5906, 5315, 4520, 3552, 2446, 1247
|
||||
};
|
||||
SHIFT_TEMPS
|
||||
|
||||
if (fdct->divisors[qtblno] == NULL) {
|
||||
fdct->divisors[qtblno] = (DCTELEM *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
DCTSIZE2 * SIZEOF(DCTELEM));
|
||||
}
|
||||
dtbl = fdct->divisors[qtblno];
|
||||
for (i = 0; i < DCTSIZE2; i++) {
|
||||
dtbl[i] = (DCTELEM)
|
||||
DESCALE(MULTIPLY16V16((INT32) qtbl->quantval[i],
|
||||
(INT32) aanscales[i]),
|
||||
CONST_BITS-3);
|
||||
}
|
||||
}
|
||||
break;
|
||||
#endif
|
||||
#ifdef DCT_FLOAT_SUPPORTED
|
||||
case JDCT_FLOAT:
|
||||
{
|
||||
/* For float AA&N IDCT method, divisors are equal to quantization
|
||||
* coefficients scaled by scalefactor[row]*scalefactor[col], where
|
||||
* scalefactor[0] = 1
|
||||
* scalefactor[k] = cos(k*PI/16) * sqrt(2) for k=1..7
|
||||
* We apply a further scale factor of 8.
|
||||
* What's actually stored is 1/divisor so that the inner loop can
|
||||
* use a multiplication rather than a division.
|
||||
*/
|
||||
FAST_FLOAT * fdtbl;
|
||||
int row, col;
|
||||
static const double aanscalefactor[DCTSIZE] = {
|
||||
1.0, 1.387039845, 1.306562965, 1.175875602,
|
||||
1.0, 0.785694958, 0.541196100, 0.275899379
|
||||
};
|
||||
|
||||
if (fdct->float_divisors[qtblno] == NULL) {
|
||||
fdct->float_divisors[qtblno] = (FAST_FLOAT *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
DCTSIZE2 * SIZEOF(FAST_FLOAT));
|
||||
}
|
||||
fdtbl = fdct->float_divisors[qtblno];
|
||||
i = 0;
|
||||
for (row = 0; row < DCTSIZE; row++) {
|
||||
for (col = 0; col < DCTSIZE; col++) {
|
||||
fdtbl[i] = (FAST_FLOAT)
|
||||
(1.0 / (((double) qtbl->quantval[i] *
|
||||
aanscalefactor[row] * aanscalefactor[col] * 8.0)));
|
||||
i++;
|
||||
}
|
||||
}
|
||||
}
|
||||
break;
|
||||
#endif
|
||||
default:
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
@@ -184,44 +69,17 @@ forward_DCT (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
/* This version is used for integer DCT implementations. */
|
||||
{
|
||||
/* This routine is heavily used, so it's worth coding it tightly. */
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
fdct_ptr fdct = (fdct_ptr) lossyc->fdct_private; forward_DCT_method_ptr do_dct = fdct->do_dct;
|
||||
my_fdct_ptr fdct = (my_fdct_ptr) cinfo->fdct;
|
||||
forward_DCT_method_ptr do_dct = fdct->do_dct[compptr->component_index];
|
||||
DCTELEM * divisors = fdct->divisors[compptr->quant_tbl_no];
|
||||
DCTELEM workspace[DCTSIZE2]; /* work area for FDCT subroutine */
|
||||
JDIMENSION bi;
|
||||
|
||||
sample_data += start_row; /* fold in the vertical offset once */
|
||||
|
||||
for (bi = 0; bi < num_blocks; bi++, start_col += DCTSIZE) {
|
||||
/* Load data into workspace, applying unsigned->signed conversion */
|
||||
{ register DCTELEM *workspaceptr;
|
||||
register JSAMPROW elemptr;
|
||||
register int elemr;
|
||||
|
||||
workspaceptr = workspace;
|
||||
for (elemr = 0; elemr < DCTSIZE; elemr++) {
|
||||
elemptr = sample_data[elemr] + start_col;
|
||||
#if DCTSIZE == 8 /* unroll the inner loop */
|
||||
*workspaceptr++ = GETJSAMPLE(*elemptr++) - CENTERJSAMPLE;
|
||||
*workspaceptr++ = GETJSAMPLE(*elemptr++) - CENTERJSAMPLE;
|
||||
*workspaceptr++ = GETJSAMPLE(*elemptr++) - CENTERJSAMPLE;
|
||||
*workspaceptr++ = GETJSAMPLE(*elemptr++) - CENTERJSAMPLE;
|
||||
*workspaceptr++ = GETJSAMPLE(*elemptr++) - CENTERJSAMPLE;
|
||||
*workspaceptr++ = GETJSAMPLE(*elemptr++) - CENTERJSAMPLE;
|
||||
*workspaceptr++ = GETJSAMPLE(*elemptr++) - CENTERJSAMPLE;
|
||||
*workspaceptr++ = GETJSAMPLE(*elemptr++) - CENTERJSAMPLE;
|
||||
#else
|
||||
{ register int elemc;
|
||||
for (elemc = DCTSIZE; elemc > 0; elemc--) {
|
||||
*workspaceptr++ = GETJSAMPLE(*elemptr++) - CENTERJSAMPLE;
|
||||
}
|
||||
}
|
||||
#endif
|
||||
}
|
||||
}
|
||||
|
||||
for (bi = 0; bi < num_blocks; bi++, start_col += compptr->DCT_h_scaled_size) {
|
||||
/* Perform the DCT */
|
||||
(*do_dct) (workspace);
|
||||
(*do_dct) (workspace, sample_data, start_col);
|
||||
|
||||
/* Quantize/descale the coefficients, and store into coef_blocks[] */
|
||||
{ register DCTELEM temp, qval;
|
||||
@@ -274,45 +132,17 @@ forward_DCT_float (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
/* This version is used for floating-point DCT implementations. */
|
||||
{
|
||||
/* This routine is heavily used, so it's worth coding it tightly. */
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
fdct_ptr fdct = (fdct_ptr) lossyc->fdct_private; float_DCT_method_ptr do_dct = fdct->do_float_dct;
|
||||
my_fdct_ptr fdct = (my_fdct_ptr) cinfo->fdct;
|
||||
float_DCT_method_ptr do_dct = fdct->do_float_dct[compptr->component_index];
|
||||
FAST_FLOAT * divisors = fdct->float_divisors[compptr->quant_tbl_no];
|
||||
FAST_FLOAT workspace[DCTSIZE2]; /* work area for FDCT subroutine */
|
||||
JDIMENSION bi;
|
||||
|
||||
sample_data += start_row; /* fold in the vertical offset once */
|
||||
|
||||
for (bi = 0; bi < num_blocks; bi++, start_col += DCTSIZE) {
|
||||
/* Load data into workspace, applying unsigned->signed conversion */
|
||||
{ register FAST_FLOAT *workspaceptr;
|
||||
register JSAMPROW elemptr;
|
||||
register int elemr;
|
||||
|
||||
workspaceptr = workspace;
|
||||
for (elemr = 0; elemr < DCTSIZE; elemr++) {
|
||||
elemptr = sample_data[elemr] + start_col;
|
||||
#if DCTSIZE == 8 /* unroll the inner loop */
|
||||
*workspaceptr++ = (FAST_FLOAT)(GETJSAMPLE(*elemptr++) - CENTERJSAMPLE);
|
||||
*workspaceptr++ = (FAST_FLOAT)(GETJSAMPLE(*elemptr++) - CENTERJSAMPLE);
|
||||
*workspaceptr++ = (FAST_FLOAT)(GETJSAMPLE(*elemptr++) - CENTERJSAMPLE);
|
||||
*workspaceptr++ = (FAST_FLOAT)(GETJSAMPLE(*elemptr++) - CENTERJSAMPLE);
|
||||
*workspaceptr++ = (FAST_FLOAT)(GETJSAMPLE(*elemptr++) - CENTERJSAMPLE);
|
||||
*workspaceptr++ = (FAST_FLOAT)(GETJSAMPLE(*elemptr++) - CENTERJSAMPLE);
|
||||
*workspaceptr++ = (FAST_FLOAT)(GETJSAMPLE(*elemptr++) - CENTERJSAMPLE);
|
||||
*workspaceptr++ = (FAST_FLOAT)(GETJSAMPLE(*elemptr++) - CENTERJSAMPLE);
|
||||
#else
|
||||
{ register int elemc;
|
||||
for (elemc = DCTSIZE; elemc > 0; elemc--) {
|
||||
*workspaceptr++ = (FAST_FLOAT)
|
||||
(GETJSAMPLE(*elemptr++) - CENTERJSAMPLE);
|
||||
}
|
||||
}
|
||||
#endif
|
||||
}
|
||||
}
|
||||
|
||||
for (bi = 0; bi < num_blocks; bi++, start_col += compptr->DCT_h_scaled_size) {
|
||||
/* Perform the DCT */
|
||||
(*do_dct) (workspace);
|
||||
(*do_dct) (workspace, sample_data, start_col);
|
||||
|
||||
/* Quantize/descale the coefficients, and store into coef_blocks[] */
|
||||
{ register FAST_FLOAT temp;
|
||||
@@ -338,45 +168,309 @@ forward_DCT_float (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
|
||||
|
||||
/*
|
||||
* Initialize FDCT manager.
|
||||
* Initialize for a processing pass.
|
||||
* Verify that all referenced Q-tables are present, and set up
|
||||
* the divisor table for each one.
|
||||
* In the current implementation, DCT of all components is done during
|
||||
* the first pass, even if only some components will be output in the
|
||||
* first scan. Hence all components should be examined here.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_forward_dct (j_compress_ptr cinfo)
|
||||
METHODDEF(void)
|
||||
start_pass_fdctmgr (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
fdct_ptr fdct;
|
||||
int i;
|
||||
|
||||
fdct = (fdct_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(fdct_controller));
|
||||
lossyc->fdct_private = (struct jpeg_forward_dct *) fdct;
|
||||
lossyc->fdct_start_pass = start_pass_fdctmgr;
|
||||
my_fdct_ptr fdct = (my_fdct_ptr) cinfo->fdct;
|
||||
int ci, qtblno, i;
|
||||
jpeg_component_info *compptr;
|
||||
int method = 0;
|
||||
JQUANT_TBL * qtbl;
|
||||
DCTELEM * dtbl;
|
||||
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
/* Select the proper DCT routine for this component's scaling */
|
||||
switch ((compptr->DCT_h_scaled_size << 8) + compptr->DCT_v_scaled_size) {
|
||||
#ifdef DCT_SCALING_SUPPORTED
|
||||
case ((1 << 8) + 1):
|
||||
fdct->do_dct[ci] = jpeg_fdct_1x1;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((2 << 8) + 2):
|
||||
fdct->do_dct[ci] = jpeg_fdct_2x2;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((3 << 8) + 3):
|
||||
fdct->do_dct[ci] = jpeg_fdct_3x3;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((4 << 8) + 4):
|
||||
fdct->do_dct[ci] = jpeg_fdct_4x4;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((5 << 8) + 5):
|
||||
fdct->do_dct[ci] = jpeg_fdct_5x5;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((6 << 8) + 6):
|
||||
fdct->do_dct[ci] = jpeg_fdct_6x6;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((7 << 8) + 7):
|
||||
fdct->do_dct[ci] = jpeg_fdct_7x7;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((9 << 8) + 9):
|
||||
fdct->do_dct[ci] = jpeg_fdct_9x9;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((10 << 8) + 10):
|
||||
fdct->do_dct[ci] = jpeg_fdct_10x10;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((11 << 8) + 11):
|
||||
fdct->do_dct[ci] = jpeg_fdct_11x11;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((12 << 8) + 12):
|
||||
fdct->do_dct[ci] = jpeg_fdct_12x12;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((13 << 8) + 13):
|
||||
fdct->do_dct[ci] = jpeg_fdct_13x13;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((14 << 8) + 14):
|
||||
fdct->do_dct[ci] = jpeg_fdct_14x14;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((15 << 8) + 15):
|
||||
fdct->do_dct[ci] = jpeg_fdct_15x15;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((16 << 8) + 16):
|
||||
fdct->do_dct[ci] = jpeg_fdct_16x16;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((16 << 8) + 8):
|
||||
fdct->do_dct[ci] = jpeg_fdct_16x8;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((14 << 8) + 7):
|
||||
fdct->do_dct[ci] = jpeg_fdct_14x7;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((12 << 8) + 6):
|
||||
fdct->do_dct[ci] = jpeg_fdct_12x6;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((10 << 8) + 5):
|
||||
fdct->do_dct[ci] = jpeg_fdct_10x5;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((8 << 8) + 4):
|
||||
fdct->do_dct[ci] = jpeg_fdct_8x4;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((6 << 8) + 3):
|
||||
fdct->do_dct[ci] = jpeg_fdct_6x3;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((4 << 8) + 2):
|
||||
fdct->do_dct[ci] = jpeg_fdct_4x2;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((2 << 8) + 1):
|
||||
fdct->do_dct[ci] = jpeg_fdct_2x1;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((8 << 8) + 16):
|
||||
fdct->do_dct[ci] = jpeg_fdct_8x16;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((7 << 8) + 14):
|
||||
fdct->do_dct[ci] = jpeg_fdct_7x14;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((6 << 8) + 12):
|
||||
fdct->do_dct[ci] = jpeg_fdct_6x12;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((5 << 8) + 10):
|
||||
fdct->do_dct[ci] = jpeg_fdct_5x10;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((4 << 8) + 8):
|
||||
fdct->do_dct[ci] = jpeg_fdct_4x8;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((3 << 8) + 6):
|
||||
fdct->do_dct[ci] = jpeg_fdct_3x6;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((2 << 8) + 4):
|
||||
fdct->do_dct[ci] = jpeg_fdct_2x4;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
case ((1 << 8) + 2):
|
||||
fdct->do_dct[ci] = jpeg_fdct_1x2;
|
||||
method = JDCT_ISLOW; /* jfdctint uses islow-style table */
|
||||
break;
|
||||
#endif
|
||||
case ((DCTSIZE << 8) + DCTSIZE):
|
||||
switch (cinfo->dct_method) {
|
||||
#ifdef DCT_ISLOW_SUPPORTED
|
||||
case JDCT_ISLOW:
|
||||
lossyc->fdct_forward_DCT = forward_DCT;
|
||||
fdct->do_dct = jpeg_fdct_islow;
|
||||
fdct->do_dct[ci] = jpeg_fdct_islow;
|
||||
method = JDCT_ISLOW;
|
||||
break;
|
||||
#endif
|
||||
#ifdef DCT_IFAST_SUPPORTED
|
||||
case JDCT_IFAST:
|
||||
lossyc->fdct_forward_DCT = forward_DCT;
|
||||
fdct->do_dct = jpeg_fdct_ifast;
|
||||
fdct->do_dct[ci] = jpeg_fdct_ifast;
|
||||
method = JDCT_IFAST;
|
||||
break;
|
||||
#endif
|
||||
#ifdef DCT_FLOAT_SUPPORTED
|
||||
case JDCT_FLOAT:
|
||||
lossyc->fdct_forward_DCT = forward_DCT_float;
|
||||
fdct->do_float_dct = jpeg_fdct_float;
|
||||
fdct->do_float_dct[ci] = jpeg_fdct_float;
|
||||
method = JDCT_FLOAT;
|
||||
break;
|
||||
#endif
|
||||
default:
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
break;
|
||||
}
|
||||
break;
|
||||
default:
|
||||
ERREXIT2(cinfo, JERR_BAD_DCTSIZE,
|
||||
compptr->DCT_h_scaled_size, compptr->DCT_v_scaled_size);
|
||||
break;
|
||||
}
|
||||
qtblno = compptr->quant_tbl_no;
|
||||
/* Make sure specified quantization table is present */
|
||||
if (qtblno < 0 || qtblno >= NUM_QUANT_TBLS ||
|
||||
cinfo->quant_tbl_ptrs[qtblno] == NULL)
|
||||
ERREXIT1(cinfo, JERR_NO_QUANT_TABLE, qtblno);
|
||||
qtbl = cinfo->quant_tbl_ptrs[qtblno];
|
||||
/* Compute divisors for this quant table */
|
||||
/* We may do this more than once for same table, but it's not a big deal */
|
||||
switch (method) {
|
||||
#ifdef PROVIDE_ISLOW_TABLES
|
||||
case JDCT_ISLOW:
|
||||
/* For LL&M IDCT method, divisors are equal to raw quantization
|
||||
* coefficients multiplied by 8 (to counteract scaling).
|
||||
*/
|
||||
if (fdct->divisors[qtblno] == NULL) {
|
||||
fdct->divisors[qtblno] = (DCTELEM *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
DCTSIZE2 * SIZEOF(DCTELEM));
|
||||
}
|
||||
dtbl = fdct->divisors[qtblno];
|
||||
for (i = 0; i < DCTSIZE2; i++) {
|
||||
dtbl[i] = ((DCTELEM) qtbl->quantval[i]) << 3;
|
||||
}
|
||||
fdct->pub.forward_DCT[ci] = forward_DCT;
|
||||
break;
|
||||
#endif
|
||||
#ifdef DCT_IFAST_SUPPORTED
|
||||
case JDCT_IFAST:
|
||||
{
|
||||
/* For AA&N IDCT method, divisors are equal to quantization
|
||||
* coefficients scaled by scalefactor[row]*scalefactor[col], where
|
||||
* scalefactor[0] = 1
|
||||
* scalefactor[k] = cos(k*PI/16) * sqrt(2) for k=1..7
|
||||
* We apply a further scale factor of 8.
|
||||
*/
|
||||
#define CONST_BITS 14
|
||||
static const INT16 aanscales[DCTSIZE2] = {
|
||||
/* precomputed values scaled up by 14 bits */
|
||||
16384, 22725, 21407, 19266, 16384, 12873, 8867, 4520,
|
||||
22725, 31521, 29692, 26722, 22725, 17855, 12299, 6270,
|
||||
21407, 29692, 27969, 25172, 21407, 16819, 11585, 5906,
|
||||
19266, 26722, 25172, 22654, 19266, 15137, 10426, 5315,
|
||||
16384, 22725, 21407, 19266, 16384, 12873, 8867, 4520,
|
||||
12873, 17855, 16819, 15137, 12873, 10114, 6967, 3552,
|
||||
8867, 12299, 11585, 10426, 8867, 6967, 4799, 2446,
|
||||
4520, 6270, 5906, 5315, 4520, 3552, 2446, 1247
|
||||
};
|
||||
SHIFT_TEMPS
|
||||
|
||||
if (fdct->divisors[qtblno] == NULL) {
|
||||
fdct->divisors[qtblno] = (DCTELEM *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
DCTSIZE2 * SIZEOF(DCTELEM));
|
||||
}
|
||||
dtbl = fdct->divisors[qtblno];
|
||||
for (i = 0; i < DCTSIZE2; i++) {
|
||||
dtbl[i] = (DCTELEM)
|
||||
DESCALE(MULTIPLY16V16((INT32) qtbl->quantval[i],
|
||||
(INT32) aanscales[i]),
|
||||
CONST_BITS-3);
|
||||
}
|
||||
}
|
||||
fdct->pub.forward_DCT[ci] = forward_DCT;
|
||||
break;
|
||||
#endif
|
||||
#ifdef DCT_FLOAT_SUPPORTED
|
||||
case JDCT_FLOAT:
|
||||
{
|
||||
/* For float AA&N IDCT method, divisors are equal to quantization
|
||||
* coefficients scaled by scalefactor[row]*scalefactor[col], where
|
||||
* scalefactor[0] = 1
|
||||
* scalefactor[k] = cos(k*PI/16) * sqrt(2) for k=1..7
|
||||
* We apply a further scale factor of 8.
|
||||
* What's actually stored is 1/divisor so that the inner loop can
|
||||
* use a multiplication rather than a division.
|
||||
*/
|
||||
FAST_FLOAT * fdtbl;
|
||||
int row, col;
|
||||
static const double aanscalefactor[DCTSIZE] = {
|
||||
1.0, 1.387039845, 1.306562965, 1.175875602,
|
||||
1.0, 0.785694958, 0.541196100, 0.275899379
|
||||
};
|
||||
|
||||
if (fdct->float_divisors[qtblno] == NULL) {
|
||||
fdct->float_divisors[qtblno] = (FAST_FLOAT *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
DCTSIZE2 * SIZEOF(FAST_FLOAT));
|
||||
}
|
||||
fdtbl = fdct->float_divisors[qtblno];
|
||||
i = 0;
|
||||
for (row = 0; row < DCTSIZE; row++) {
|
||||
for (col = 0; col < DCTSIZE; col++) {
|
||||
fdtbl[i] = (FAST_FLOAT)
|
||||
(1.0 / (((double) qtbl->quantval[i] *
|
||||
aanscalefactor[row] * aanscalefactor[col] * 8.0)));
|
||||
i++;
|
||||
}
|
||||
}
|
||||
}
|
||||
fdct->pub.forward_DCT[ci] = forward_DCT_float;
|
||||
break;
|
||||
#endif
|
||||
default:
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize FDCT manager.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_forward_dct (j_compress_ptr cinfo)
|
||||
{
|
||||
my_fdct_ptr fdct;
|
||||
int i;
|
||||
|
||||
fdct = (my_fdct_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(my_fdct_controller));
|
||||
cinfo->fdct = (struct jpeg_forward_dct *) fdct;
|
||||
fdct->pub.start_pass = start_pass_fdctmgr;
|
||||
|
||||
/* Mark divisor tables unallocated */
|
||||
for (i = 0; i < NUM_QUANT_TBLS; i++) {
|
||||
|
||||
@@ -1,409 +0,0 @@
|
||||
/*
|
||||
* jcdiffct.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains the difference buffer controller for compression.
|
||||
* This controller is the top level of the lossless JPEG compressor proper.
|
||||
* The difference buffer lies between prediction/differencing and entropy
|
||||
* encoding.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossls.h" /* Private declarations for lossless codec */
|
||||
|
||||
|
||||
#ifdef C_LOSSLESS_SUPPORTED
|
||||
|
||||
/* We use a full-image sample buffer when doing Huffman optimization,
|
||||
* and also for writing multiple-scan JPEG files. In all cases, the
|
||||
* full-image buffer is filled during the first pass, and the scaling,
|
||||
* prediction and differencing steps are run during subsequent passes.
|
||||
*/
|
||||
#ifdef ENTROPY_OPT_SUPPORTED
|
||||
#define FULL_SAMP_BUFFER_SUPPORTED
|
||||
#else
|
||||
#ifdef C_MULTISCAN_FILES_SUPPORTED
|
||||
#define FULL_SAMP_BUFFER_SUPPORTED
|
||||
#endif
|
||||
#endif
|
||||
|
||||
|
||||
/* Private buffer controller object */
|
||||
|
||||
typedef struct {
|
||||
JDIMENSION iMCU_row_num; /* iMCU row # within image */
|
||||
JDIMENSION mcu_ctr; /* counts MCUs processed in current row */
|
||||
int MCU_vert_offset; /* counts MCU rows within iMCU row */
|
||||
int MCU_rows_per_iMCU_row; /* number of such rows needed */
|
||||
|
||||
JSAMPROW cur_row[MAX_COMPONENTS]; /* row of point transformed samples */
|
||||
JSAMPROW prev_row[MAX_COMPONENTS]; /* previous row of Pt'd samples */
|
||||
JDIFFARRAY diff_buf[MAX_COMPONENTS]; /* iMCU row of differences */
|
||||
|
||||
/* In multi-pass modes, we need a virtual sample array for each component. */
|
||||
jvirt_sarray_ptr whole_image[MAX_COMPONENTS];
|
||||
} c_diff_controller;
|
||||
|
||||
typedef c_diff_controller * c_diff_ptr;
|
||||
|
||||
|
||||
/* Forward declarations */
|
||||
METHODDEF(boolean) compress_data
|
||||
JPP((j_compress_ptr cinfo, JSAMPIMAGE input_buf));
|
||||
#ifdef FULL_SAMP_BUFFER_SUPPORTED
|
||||
METHODDEF(boolean) compress_first_pass
|
||||
JPP((j_compress_ptr cinfo, JSAMPIMAGE input_buf));
|
||||
METHODDEF(boolean) compress_output
|
||||
JPP((j_compress_ptr cinfo, JSAMPIMAGE input_buf));
|
||||
#endif
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
start_iMCU_row (j_compress_ptr cinfo)
|
||||
/* Reset within-iMCU-row counters for a new row */
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
c_diff_ptr diff = (c_diff_ptr) losslsc->diff_private;
|
||||
|
||||
/* In an interleaved scan, an MCU row is the same as an iMCU row.
|
||||
* In a noninterleaved scan, an iMCU row has v_samp_factor MCU rows.
|
||||
* But at the bottom of the image, process only what's left.
|
||||
*/
|
||||
if (cinfo->comps_in_scan > 1) {
|
||||
diff->MCU_rows_per_iMCU_row = 1;
|
||||
} else {
|
||||
if (diff->iMCU_row_num < (cinfo->total_iMCU_rows-1))
|
||||
diff->MCU_rows_per_iMCU_row = cinfo->cur_comp_info[0]->v_samp_factor;
|
||||
else
|
||||
diff->MCU_rows_per_iMCU_row = cinfo->cur_comp_info[0]->last_row_height;
|
||||
}
|
||||
|
||||
diff->mcu_ctr = 0;
|
||||
diff->MCU_vert_offset = 0;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for a processing pass.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass_diff (j_compress_ptr cinfo, J_BUF_MODE pass_mode)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
c_diff_ptr diff = (c_diff_ptr) losslsc->diff_private;
|
||||
|
||||
diff->iMCU_row_num = 0;
|
||||
start_iMCU_row(cinfo);
|
||||
|
||||
switch (pass_mode) {
|
||||
case JBUF_PASS_THRU:
|
||||
if (diff->whole_image[0] != NULL)
|
||||
ERREXIT(cinfo, JERR_BAD_BUFFER_MODE);
|
||||
losslsc->pub.compress_data = compress_data;
|
||||
break;
|
||||
#ifdef FULL_SAMP_BUFFER_SUPPORTED
|
||||
case JBUF_SAVE_AND_PASS:
|
||||
if (diff->whole_image[0] == NULL)
|
||||
ERREXIT(cinfo, JERR_BAD_BUFFER_MODE);
|
||||
losslsc->pub.compress_data = compress_first_pass;
|
||||
break;
|
||||
case JBUF_CRANK_DEST:
|
||||
if (diff->whole_image[0] == NULL)
|
||||
ERREXIT(cinfo, JERR_BAD_BUFFER_MODE);
|
||||
losslsc->pub.compress_data = compress_output;
|
||||
break;
|
||||
#endif
|
||||
default:
|
||||
ERREXIT(cinfo, JERR_BAD_BUFFER_MODE);
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
#define SWAP_ROWS(rowa,rowb) {JSAMPROW temp; temp=rowa; rowa=rowb; rowb=temp;}
|
||||
|
||||
/*
|
||||
* Process some data in the single-pass case.
|
||||
* We process the equivalent of one fully interleaved MCU row ("iMCU" row)
|
||||
* per call, ie, v_samp_factor rows for each component in the image.
|
||||
* Returns TRUE if the iMCU row is completed, FALSE if suspended.
|
||||
*
|
||||
* NB: input_buf contains a plane for each component in image,
|
||||
* which we index according to the component's SOF position.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
compress_data (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
c_diff_ptr diff = (c_diff_ptr) losslsc->diff_private;
|
||||
JDIMENSION MCU_col_num; /* index of current MCU within row */
|
||||
JDIMENSION MCU_count; /* number of MCUs encoded */
|
||||
//JDIMENSION last_MCU_col = cinfo->MCUs_per_row - 1;
|
||||
JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
int comp, ci, yoffset, samp_row, samp_rows, samps_across;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* Loop to write as much as one whole iMCU row */
|
||||
for (yoffset = diff->MCU_vert_offset; yoffset < diff->MCU_rows_per_iMCU_row;
|
||||
yoffset++) {
|
||||
|
||||
MCU_col_num = diff->mcu_ctr;
|
||||
|
||||
/* Scale and predict each scanline of the MCU-row separately.
|
||||
*
|
||||
* Note: We only do this if we are at the start of a MCU-row, ie,
|
||||
* we don't want to reprocess a row suspended by the output.
|
||||
*/
|
||||
if (MCU_col_num == 0) {
|
||||
for (comp = 0; comp < cinfo->comps_in_scan; comp++) {
|
||||
compptr = cinfo->cur_comp_info[comp];
|
||||
ci = compptr->component_index;
|
||||
if (diff->iMCU_row_num < last_iMCU_row)
|
||||
samp_rows = compptr->v_samp_factor;
|
||||
else {
|
||||
/* NB: can't use last_row_height here, since may not be set! */
|
||||
samp_rows = (int) (compptr->height_in_data_units % compptr->v_samp_factor);
|
||||
if (samp_rows == 0) samp_rows = compptr->v_samp_factor;
|
||||
else {
|
||||
/* Fill dummy difference rows at the bottom edge with zeros, which
|
||||
* will encode to the smallest amount of data.
|
||||
*/
|
||||
for (samp_row = samp_rows; samp_row < compptr->v_samp_factor;
|
||||
samp_row++)
|
||||
MEMZERO(diff->diff_buf[ci][samp_row],
|
||||
jround_up((long) compptr->width_in_data_units,
|
||||
(long) compptr->h_samp_factor) * SIZEOF(JDIFF));
|
||||
}
|
||||
}
|
||||
samps_across = compptr->width_in_data_units;
|
||||
|
||||
for (samp_row = 0; samp_row < samp_rows; samp_row++) {
|
||||
(*losslsc->scaler_scale) (cinfo,
|
||||
input_buf[ci][samp_row],
|
||||
diff->cur_row[ci], samps_across);
|
||||
(*losslsc->predict_difference[ci]) (cinfo, ci,
|
||||
diff->cur_row[ci],
|
||||
diff->prev_row[ci],
|
||||
diff->diff_buf[ci][samp_row],
|
||||
samps_across);
|
||||
SWAP_ROWS(diff->cur_row[ci], diff->prev_row[ci]);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/* Try to write the MCU-row (or remaining portion of suspended MCU-row). */
|
||||
MCU_count =
|
||||
(*losslsc->entropy_encode_mcus) (cinfo,
|
||||
diff->diff_buf, yoffset, MCU_col_num,
|
||||
cinfo->MCUs_per_row - MCU_col_num);
|
||||
if (MCU_count != cinfo->MCUs_per_row - MCU_col_num) {
|
||||
/* Suspension forced; update state counters and exit */
|
||||
diff->MCU_vert_offset = yoffset;
|
||||
diff->mcu_ctr += MCU_col_num;
|
||||
return FALSE;
|
||||
}
|
||||
|
||||
/* Completed an MCU row, but perhaps not an iMCU row */
|
||||
diff->mcu_ctr = 0;
|
||||
}
|
||||
|
||||
/* Completed the iMCU row, advance counters for next one */
|
||||
diff->iMCU_row_num++;
|
||||
start_iMCU_row(cinfo);
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
#ifdef FULL_SAMP_BUFFER_SUPPORTED
|
||||
|
||||
/*
|
||||
* Process some data in the first pass of a multi-pass case.
|
||||
* We process the equivalent of one fully interleaved MCU row ("iMCU" row)
|
||||
* per call, ie, v_samp_factor rows for each component in the image.
|
||||
* This amount of data is read from the source buffer and saved into the
|
||||
* virtual arrays.
|
||||
*
|
||||
* We must also emit the data to the compressor. This is conveniently
|
||||
* done by calling compress_output() after we've loaded the current strip
|
||||
* of the virtual arrays.
|
||||
*
|
||||
* NB: input_buf contains a plane for each component in image. All components
|
||||
* are loaded into the virtual arrays in this pass. However, it may be that
|
||||
* only a subset of the components are emitted to the compressor during
|
||||
* this first pass; be careful about looking at the scan-dependent variables
|
||||
* (MCU dimensions, etc).
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
compress_first_pass (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
c_diff_ptr diff = (c_diff_ptr) losslsc->diff_private;
|
||||
JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
JDIMENSION samps_across;
|
||||
int ci, samp_row, samp_rows;
|
||||
JSAMPARRAY buffer[MAX_COMPONENTS];
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
/* Align the virtual buffers for this component. */
|
||||
buffer[ci] = (*cinfo->mem->access_virt_sarray)
|
||||
((j_common_ptr) cinfo, diff->whole_image[ci],
|
||||
diff->iMCU_row_num * compptr->v_samp_factor,
|
||||
(JDIMENSION) compptr->v_samp_factor, TRUE);
|
||||
|
||||
/* Count non-dummy sample rows in this iMCU row. */
|
||||
if (diff->iMCU_row_num < last_iMCU_row)
|
||||
samp_rows = compptr->v_samp_factor;
|
||||
else {
|
||||
/* NB: can't use last_row_height here, since may not be set! */
|
||||
samp_rows = (int) (compptr->height_in_data_units % compptr->v_samp_factor);
|
||||
if (samp_rows == 0) samp_rows = compptr->v_samp_factor;
|
||||
}
|
||||
samps_across = compptr->width_in_data_units;
|
||||
|
||||
/* Perform point transform scaling and prediction/differencing for all
|
||||
* non-dummy rows in this iMCU row. Each call on these functions
|
||||
* process a complete row of samples.
|
||||
*/
|
||||
for (samp_row = 0; samp_row < samp_rows; samp_row++) {
|
||||
MEMCOPY(buffer[ci][samp_row], input_buf[ci][samp_row],
|
||||
samps_across * SIZEOF(JSAMPLE));
|
||||
}
|
||||
}
|
||||
|
||||
/* NB: compress_output will increment iMCU_row_num if successful.
|
||||
* A suspension return will result in redoing all the work above next time.
|
||||
*/
|
||||
|
||||
/* Emit data to the compressor, sharing code with subsequent passes */
|
||||
return compress_output(cinfo, input_buf);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Process some data in subsequent passes of a multi-pass case.
|
||||
* We process the equivalent of one fully interleaved MCU row ("iMCU" row)
|
||||
* per call, ie, v_samp_factor rows for each component in the scan.
|
||||
* The data is obtained from the virtual arrays and fed to the compressor.
|
||||
* Returns TRUE if the iMCU row is completed, FALSE if suspended.
|
||||
*
|
||||
* NB: input_buf is ignored; it is likely to be a NULL pointer.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
compress_output (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
c_diff_ptr diff = (c_diff_ptr) losslsc->diff_private;
|
||||
//JDIMENSION MCU_col_num; /* index of current MCU within row */
|
||||
//JDIMENSION MCU_count; /* number of MCUs encoded */
|
||||
int comp, ci;//, yoffset;
|
||||
JSAMPARRAY buffer[MAX_COMPONENTS];
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* Align the virtual buffers for the components used in this scan.
|
||||
* NB: during first pass, this is safe only because the buffers will
|
||||
* already be aligned properly, so jmemmgr.c won't need to do any I/O.
|
||||
*/
|
||||
for (comp = 0; comp < cinfo->comps_in_scan; comp++) {
|
||||
compptr = cinfo->cur_comp_info[comp];
|
||||
ci = compptr->component_index;
|
||||
buffer[ci] = (*cinfo->mem->access_virt_sarray)
|
||||
((j_common_ptr) cinfo, diff->whole_image[ci],
|
||||
diff->iMCU_row_num * compptr->v_samp_factor,
|
||||
(JDIMENSION) compptr->v_samp_factor, FALSE);
|
||||
}
|
||||
|
||||
return compress_data(cinfo, buffer);
|
||||
}
|
||||
|
||||
#endif /* FULL_SAMP_BUFFER_SUPPORTED */
|
||||
|
||||
|
||||
/*
|
||||
* Initialize difference buffer controller.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_c_diff_controller (j_compress_ptr cinfo, boolean need_full_buffer)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
c_diff_ptr diff;
|
||||
int ci, row;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
diff = (c_diff_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(c_diff_controller));
|
||||
losslsc->diff_private = (void *) diff;
|
||||
losslsc->diff_start_pass = start_pass_diff;
|
||||
|
||||
/* Create the prediction row buffers. */
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
diff->cur_row[ci] = *(*cinfo->mem->alloc_sarray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_data_units,
|
||||
(long) compptr->h_samp_factor),
|
||||
(JDIMENSION) 1);
|
||||
diff->prev_row[ci] = *(*cinfo->mem->alloc_sarray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_data_units,
|
||||
(long) compptr->h_samp_factor),
|
||||
(JDIMENSION) 1);
|
||||
}
|
||||
|
||||
/* Create the difference buffer. */
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
diff->diff_buf[ci] = (*cinfo->mem->alloc_darray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_data_units,
|
||||
(long) compptr->h_samp_factor),
|
||||
(JDIMENSION) compptr->v_samp_factor);
|
||||
/* Prefill difference rows with zeros. We do this because only actual
|
||||
* data is placed in the buffers during prediction/differencing, leaving
|
||||
* any dummy differences at the right edge as zeros, which will encode
|
||||
* to the smallest amount of data.
|
||||
*/
|
||||
for (row = 0; row < compptr->v_samp_factor; row++)
|
||||
MEMZERO(diff->diff_buf[ci][row],
|
||||
jround_up((long) compptr->width_in_data_units,
|
||||
(long) compptr->h_samp_factor) * SIZEOF(JDIFF));
|
||||
}
|
||||
|
||||
/* Create the sample buffer. */
|
||||
if (need_full_buffer) {
|
||||
#ifdef FULL_SAMP_BUFFER_SUPPORTED
|
||||
/* Allocate a full-image virtual array for each component, */
|
||||
/* padded to a multiple of samp_factor differences in each direction. */
|
||||
int ci;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
diff->whole_image[ci] = (*cinfo->mem->request_virt_sarray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE, FALSE,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_data_units,
|
||||
(long) compptr->h_samp_factor),
|
||||
(JDIMENSION) jround_up((long) compptr->height_in_data_units,
|
||||
(long) compptr->v_samp_factor),
|
||||
(JDIMENSION) compptr->v_samp_factor);
|
||||
}
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_BAD_BUFFER_MODE);
|
||||
#endif
|
||||
} else
|
||||
diff->whole_image[0] = NULL; /* flag for no virtual arrays */
|
||||
}
|
||||
|
||||
#endif /* C_LOSSLESS_SUPPORTED */
|
||||
+1311
-8
File diff suppressed because it is too large
Load Diff
@@ -1,55 +0,0 @@
|
||||
/*
|
||||
* jchuff.h
|
||||
*
|
||||
* Copyright (C) 1991-1997, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains declarations for Huffman entropy encoding routines
|
||||
* that are shared between the sequential encoder (jchuff.c) and the
|
||||
* progressive encoder (jcphuff.c). No other modules need to see these.
|
||||
*/
|
||||
|
||||
/* The legal range of a DCT coefficient is
|
||||
* -1024 .. +1023 for 8-bit data;
|
||||
* -16384 .. +16383 for 12-bit data.
|
||||
* Hence the magnitude should always fit in 10 or 14 bits respectively.
|
||||
*/
|
||||
|
||||
#if BITS_IN_JSAMPLE == 8
|
||||
#define MAX_COEF_BITS 10
|
||||
#else
|
||||
#define MAX_COEF_BITS 14
|
||||
#endif
|
||||
|
||||
/* The legal range of a spatial difference is
|
||||
* -32767 .. +32768.
|
||||
* Hence the magnitude should always fit in 16 bits.
|
||||
*/
|
||||
|
||||
#define MAX_DIFF_BITS 16
|
||||
|
||||
|
||||
/* Derived data constructed for each Huffman table */
|
||||
|
||||
typedef struct {
|
||||
unsigned int ehufco[256]; /* code for each symbol */
|
||||
char ehufsi[256]; /* length of code for each symbol */
|
||||
/* If no code has been allocated for a symbol S, ehufsi[S] contains 0 */
|
||||
} c_derived_tbl;
|
||||
|
||||
/* Short forms of external names for systems with brain-damaged linkers. */
|
||||
|
||||
#ifdef NEED_SHORT_EXTERNAL_NAMES
|
||||
#define jpeg_make_c_derived_tbl jMkCDerived
|
||||
#define jpeg_gen_optimal_table jGenOptTbl
|
||||
#endif /* NEED_SHORT_EXTERNAL_NAMES */
|
||||
|
||||
/* Expand a Huffman table definition into the derived format */
|
||||
EXTERN(void) jpeg_make_c_derived_tbl
|
||||
JPP((j_compress_ptr cinfo, boolean isDC, int tblno,
|
||||
c_derived_tbl ** pdtbl));
|
||||
|
||||
/* Generate an optimal table definition given the specified counts */
|
||||
EXTERN(void) jpeg_gen_optimal_table
|
||||
JPP((j_compress_ptr cinfo, JHUFF_TBL * htbl, long freq[]));
|
||||
+11
-4
@@ -19,7 +19,6 @@
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
|
||||
EXTERN(void) jinit_c_codec (j_compress_ptr cinfo);
|
||||
|
||||
/*
|
||||
* Master selection of compression modules.
|
||||
@@ -33,16 +32,24 @@ jinit_compress_master (j_compress_ptr cinfo)
|
||||
/* Initialize master control (includes parameter checking/processing) */
|
||||
jinit_c_master_control(cinfo, FALSE /* full compression */);
|
||||
|
||||
/* Initialize compression codec */
|
||||
jinit_c_codec(cinfo);
|
||||
|
||||
/* Preprocessing */
|
||||
if (! cinfo->raw_data_in) {
|
||||
jinit_color_converter(cinfo);
|
||||
jinit_downsampler(cinfo);
|
||||
jinit_c_prep_controller(cinfo, FALSE /* never need full buffer here */);
|
||||
}
|
||||
/* Forward DCT */
|
||||
jinit_forward_dct(cinfo);
|
||||
/* Entropy encoding: either Huffman or arithmetic coding. */
|
||||
if (cinfo->arith_code)
|
||||
jinit_arith_encoder(cinfo);
|
||||
else {
|
||||
jinit_huff_encoder(cinfo);
|
||||
}
|
||||
|
||||
/* Need a full-image coefficient buffer in any multi-pass mode. */
|
||||
jinit_c_coef_controller(cinfo,
|
||||
(boolean) (cinfo->num_scans > 1 || cinfo->optimize_coding));
|
||||
jinit_c_main_controller(cinfo, FALSE /* never need full buffer here */);
|
||||
|
||||
jinit_marker_writer(cinfo);
|
||||
|
||||
@@ -1,601 +0,0 @@
|
||||
/*
|
||||
* jclhuff.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains Huffman entropy encoding routines for lossless JPEG.
|
||||
*
|
||||
* Much of the complexity here has to do with supporting output suspension.
|
||||
* If the data destination module demands suspension, we want to be able to
|
||||
* back up to the start of the current MCU. To do this, we copy state
|
||||
* variables into local working storage, and update them back to the
|
||||
* permanent JPEG objects only upon successful completion of an MCU.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossls.h" /* Private declarations for lossless codec */
|
||||
#include "jchuff.h" /* Declarations shared with jc*huff.c */
|
||||
|
||||
|
||||
/* Expanded entropy encoder object for Huffman encoding.
|
||||
*
|
||||
* The savable_state subrecord contains fields that change within an MCU,
|
||||
* but must not be updated permanently until we complete the MCU.
|
||||
*/
|
||||
|
||||
typedef struct {
|
||||
INT32 put_buffer; /* current bit-accumulation buffer */
|
||||
int put_bits; /* # of bits now in it */
|
||||
} savable_state;
|
||||
|
||||
/* This macro is to work around compilers with missing or broken
|
||||
* structure assignment. You'll need to fix this code if you have
|
||||
* such a compiler and you change MAX_COMPS_IN_SCAN.
|
||||
*/
|
||||
|
||||
#ifndef NO_STRUCT_ASSIGN
|
||||
#define ASSIGN_STATE(dest,src) ((dest) = (src))
|
||||
#else
|
||||
#define ASSIGN_STATE(dest,src) \
|
||||
((dest).put_buffer = (src).put_buffer, \
|
||||
(dest).put_bits = (src).put_bits)
|
||||
#endif
|
||||
|
||||
|
||||
typedef struct {
|
||||
int ci, yoffset, MCU_width;
|
||||
} lhe_input_ptr_info;
|
||||
|
||||
|
||||
typedef struct {
|
||||
savable_state saved; /* Bit buffer at start of MCU */
|
||||
|
||||
/* These fields are NOT loaded into local working state. */
|
||||
unsigned int restarts_to_go; /* MCUs left in this restart interval */
|
||||
int next_restart_num; /* next restart number to write (0-7) */
|
||||
|
||||
/* Pointers to derived tables (these workspaces have image lifespan) */
|
||||
c_derived_tbl * derived_tbls[NUM_HUFF_TBLS];
|
||||
|
||||
/* Pointers to derived tables to be used for each data unit within an MCU */
|
||||
c_derived_tbl * cur_tbls[C_MAX_DATA_UNITS_IN_MCU];
|
||||
|
||||
#ifdef ENTROPY_OPT_SUPPORTED /* Statistics tables for optimization */
|
||||
long * count_ptrs[NUM_HUFF_TBLS];
|
||||
|
||||
/* Pointers to stats tables to be used for each data unit within an MCU */
|
||||
long * cur_counts[C_MAX_DATA_UNITS_IN_MCU];
|
||||
#endif
|
||||
|
||||
/* Pointers to the proper input difference row for each group of data units
|
||||
* within an MCU. For each component, there are Vi groups of Hi data units.
|
||||
*/
|
||||
JDIFFROW input_ptr[C_MAX_DATA_UNITS_IN_MCU];
|
||||
|
||||
/* Number of input pointers in use for the current MCU. This is the sum
|
||||
* of all Vi in the MCU.
|
||||
*/
|
||||
int num_input_ptrs;
|
||||
|
||||
/* Information used for positioning the input pointers within the input
|
||||
* difference rows.
|
||||
*/
|
||||
lhe_input_ptr_info input_ptr_info[C_MAX_DATA_UNITS_IN_MCU];
|
||||
|
||||
/* Index of the proper input pointer for each data unit within an MCU */
|
||||
int input_ptr_index[C_MAX_DATA_UNITS_IN_MCU];
|
||||
|
||||
} lhuff_entropy_encoder;
|
||||
|
||||
typedef lhuff_entropy_encoder * lhuff_entropy_ptr;
|
||||
|
||||
/* Working state while writing an MCU.
|
||||
* This struct contains all the fields that are needed by subroutines.
|
||||
*/
|
||||
|
||||
typedef struct {
|
||||
JOCTET * next_output_byte; /* => next byte to write in buffer */
|
||||
size_t free_in_buffer; /* # of byte spaces remaining in buffer */
|
||||
savable_state cur; /* Current bit buffer & DC state */
|
||||
j_compress_ptr cinfo; /* dump_buffer needs access to this */
|
||||
} working_state;
|
||||
|
||||
|
||||
/* Forward declarations */
|
||||
METHODDEF(JDIMENSION) encode_mcus_huff (j_compress_ptr cinfo,
|
||||
JDIFFIMAGE diff_buf,
|
||||
JDIMENSION MCU_row_num,
|
||||
JDIMENSION MCU_col_num,
|
||||
JDIMENSION nMCU);
|
||||
METHODDEF(void) finish_pass_huff JPP((j_compress_ptr cinfo));
|
||||
#ifdef ENTROPY_OPT_SUPPORTED
|
||||
METHODDEF(JDIMENSION) encode_mcus_gather (j_compress_ptr cinfo,
|
||||
JDIFFIMAGE diff_buf,
|
||||
JDIMENSION MCU_row_num,
|
||||
JDIMENSION MCU_col_num,
|
||||
JDIMENSION nMCU);
|
||||
METHODDEF(void) finish_pass_gather JPP((j_compress_ptr cinfo));
|
||||
#endif
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for a Huffman-compressed scan.
|
||||
* If gather_statistics is TRUE, we do not output anything during the scan,
|
||||
* just count the Huffman symbols used and generate Huffman code tables.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass_huff (j_compress_ptr cinfo, boolean gather_statistics)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
lhuff_entropy_ptr entropy = (lhuff_entropy_ptr) losslsc->entropy_private;
|
||||
int ci, dctbl, sampn, ptrn, yoffset, xoffset;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
if (gather_statistics) {
|
||||
#ifdef ENTROPY_OPT_SUPPORTED
|
||||
losslsc->entropy_encode_mcus = encode_mcus_gather;
|
||||
losslsc->pub.entropy_finish_pass = finish_pass_gather;
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
} else {
|
||||
losslsc->entropy_encode_mcus = encode_mcus_huff;
|
||||
losslsc->pub.entropy_finish_pass = finish_pass_huff;
|
||||
}
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
dctbl = compptr->dc_tbl_no;
|
||||
if (gather_statistics) {
|
||||
#ifdef ENTROPY_OPT_SUPPORTED
|
||||
/* Check for invalid table indexes */
|
||||
/* (make_c_derived_tbl does this in the other path) */
|
||||
if (dctbl < 0 || dctbl >= NUM_HUFF_TBLS)
|
||||
ERREXIT1(cinfo, JERR_NO_HUFF_TABLE, dctbl);
|
||||
/* Allocate and zero the statistics tables */
|
||||
/* Note that jpeg_gen_optimal_table expects 257 entries in each table! */
|
||||
if (entropy->count_ptrs[dctbl] == NULL)
|
||||
entropy->count_ptrs[dctbl] = (long *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
257 * SIZEOF(long));
|
||||
MEMZERO(entropy->count_ptrs[dctbl], 257 * SIZEOF(long));
|
||||
#endif
|
||||
} else {
|
||||
/* Compute derived values for Huffman tables */
|
||||
/* We may do this more than once for a table, but it's not expensive */
|
||||
jpeg_make_c_derived_tbl(cinfo, TRUE, dctbl,
|
||||
& entropy->derived_tbls[dctbl]);
|
||||
}
|
||||
}
|
||||
|
||||
/* Precalculate encoding info for each sample in an MCU of this scan */
|
||||
for (sampn = 0, ptrn = 0; sampn < cinfo->data_units_in_MCU;) {
|
||||
compptr = cinfo->cur_comp_info[cinfo->MCU_membership[sampn]];
|
||||
ci = compptr->component_index;
|
||||
/* ci = cinfo->MCU_membership[sampn];
|
||||
compptr = cinfo->cur_comp_info[ci];*/
|
||||
for (yoffset = 0; yoffset < compptr->MCU_height; yoffset++, ptrn++) {
|
||||
/* Precalculate the setup info for each input pointer */
|
||||
entropy->input_ptr_info[ptrn].ci = ci;
|
||||
entropy->input_ptr_info[ptrn].yoffset = yoffset;
|
||||
entropy->input_ptr_info[ptrn].MCU_width = compptr->MCU_width;
|
||||
for (xoffset = 0; xoffset < compptr->MCU_width; xoffset++, sampn++) {
|
||||
/* Precalculate the input pointer index for each sample */
|
||||
entropy->input_ptr_index[sampn] = ptrn;
|
||||
/* Precalculate which tables to use for each sample */
|
||||
entropy->cur_tbls[sampn] = entropy->derived_tbls[compptr->dc_tbl_no];
|
||||
entropy->cur_counts[sampn] = entropy->count_ptrs[compptr->dc_tbl_no];
|
||||
}
|
||||
}
|
||||
}
|
||||
entropy->num_input_ptrs = ptrn;
|
||||
|
||||
/* Initialize bit buffer to empty */
|
||||
entropy->saved.put_buffer = 0;
|
||||
entropy->saved.put_bits = 0;
|
||||
|
||||
/* Initialize restart stuff */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num = 0;
|
||||
}
|
||||
|
||||
|
||||
/* Outputting bytes to the file */
|
||||
|
||||
/* Emit a byte, taking 'action' if must suspend. */
|
||||
#define emit_byte(state,val,action) \
|
||||
{ *(state)->next_output_byte++ = (JOCTET) (val); \
|
||||
if (--(state)->free_in_buffer == 0) \
|
||||
if (! dump_buffer(state)) \
|
||||
{ action; } }
|
||||
|
||||
|
||||
LOCAL(boolean)
|
||||
dump_buffer (working_state * state)
|
||||
/* Empty the output buffer; return TRUE if successful, FALSE if must suspend */
|
||||
{
|
||||
struct jpeg_destination_mgr * dest = state->cinfo->dest;
|
||||
|
||||
if (! (*dest->empty_output_buffer) (state->cinfo))
|
||||
return FALSE;
|
||||
/* After a successful buffer dump, must reset buffer pointers */
|
||||
state->next_output_byte = dest->next_output_byte;
|
||||
state->free_in_buffer = dest->free_in_buffer;
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/* Outputting bits to the file */
|
||||
|
||||
/* Only the right 24 bits of put_buffer are used; the valid bits are
|
||||
* left-justified in this part. At most 16 bits can be passed to emit_bits
|
||||
* in one call, and we never retain more than 7 bits in put_buffer
|
||||
* between calls, so 24 bits are sufficient.
|
||||
*/
|
||||
|
||||
INLINE
|
||||
LOCAL(boolean)
|
||||
emit_bits (working_state * state, unsigned int code, int size)
|
||||
/* Emit some bits; return TRUE if successful, FALSE if must suspend */
|
||||
{
|
||||
/* This routine is heavily used, so it's worth coding tightly. */
|
||||
register INT32 put_buffer = (INT32) code;
|
||||
register int put_bits = state->cur.put_bits;
|
||||
|
||||
/* if size is 0, caller used an invalid Huffman table entry */
|
||||
if (size == 0)
|
||||
ERREXIT(state->cinfo, JERR_HUFF_MISSING_CODE);
|
||||
|
||||
put_buffer &= (((INT32) 1)<<size) - 1; /* mask off any extra bits in code */
|
||||
|
||||
put_bits += size; /* new number of bits in buffer */
|
||||
|
||||
put_buffer <<= 24 - put_bits; /* align incoming bits */
|
||||
|
||||
put_buffer |= state->cur.put_buffer; /* and merge with old buffer contents */
|
||||
|
||||
while (put_bits >= 8) {
|
||||
int c = (int) ((put_buffer >> 16) & 0xFF);
|
||||
|
||||
emit_byte(state, c, return FALSE);
|
||||
if (c == 0xFF) { /* need to stuff a zero byte? */
|
||||
emit_byte(state, 0, return FALSE);
|
||||
}
|
||||
put_buffer <<= 8;
|
||||
put_bits -= 8;
|
||||
}
|
||||
|
||||
state->cur.put_buffer = put_buffer; /* update state variables */
|
||||
state->cur.put_bits = put_bits;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
LOCAL(boolean)
|
||||
flush_bits (working_state * state)
|
||||
{
|
||||
if (! emit_bits(state, 0x7F, 7)) /* fill any partial byte with ones */
|
||||
return FALSE;
|
||||
state->cur.put_buffer = 0; /* and reset bit-buffer to empty */
|
||||
state->cur.put_bits = 0;
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Emit a restart marker & resynchronize predictions.
|
||||
*/
|
||||
|
||||
LOCAL(boolean)
|
||||
emit_restart (working_state * state, int restart_num)
|
||||
{
|
||||
//int ci;
|
||||
|
||||
if (! flush_bits(state))
|
||||
return FALSE;
|
||||
|
||||
emit_byte(state, 0xFF, return FALSE);
|
||||
emit_byte(state, JPEG_RST0 + restart_num, return FALSE);
|
||||
|
||||
/* The restart counter is not updated until we successfully write the MCU. */
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Encode and output one nMCU's worth of Huffman-compressed differences.
|
||||
*/
|
||||
|
||||
METHODDEF(JDIMENSION)
|
||||
encode_mcus_huff (j_compress_ptr cinfo, JDIFFIMAGE diff_buf,
|
||||
JDIMENSION MCU_row_num, JDIMENSION MCU_col_num,
|
||||
JDIMENSION nMCU)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
lhuff_entropy_ptr entropy = (lhuff_entropy_ptr) losslsc->entropy_private;
|
||||
working_state state;
|
||||
int sampn, ci, yoffset, MCU_width, ptrn;
|
||||
uint mcu_num;
|
||||
//jpeg_component_info * compptr;
|
||||
|
||||
/* Load up working state */
|
||||
state.next_output_byte = cinfo->dest->next_output_byte;
|
||||
state.free_in_buffer = cinfo->dest->free_in_buffer;
|
||||
ASSIGN_STATE(state.cur, entropy->saved);
|
||||
state.cinfo = cinfo;
|
||||
|
||||
/* Emit restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
if (! emit_restart(&state, entropy->next_restart_num))
|
||||
return 0;
|
||||
}
|
||||
|
||||
/* Set input pointer locations based on MCU_col_num */
|
||||
for (ptrn = 0; ptrn < entropy->num_input_ptrs; ptrn++) {
|
||||
ci = entropy->input_ptr_info[ptrn].ci;
|
||||
yoffset = entropy->input_ptr_info[ptrn].yoffset;
|
||||
MCU_width = entropy->input_ptr_info[ptrn].MCU_width;
|
||||
entropy->input_ptr[ptrn] =
|
||||
diff_buf[ci][MCU_row_num + yoffset] + (MCU_col_num * MCU_width);
|
||||
}
|
||||
|
||||
for (mcu_num = 0; mcu_num < nMCU; mcu_num++) {
|
||||
|
||||
/* Inner loop handles the samples in the MCU */
|
||||
for (sampn = 0; sampn < cinfo->data_units_in_MCU; sampn++) {
|
||||
register int temp, temp2;//, temp3;
|
||||
register int nbits;
|
||||
c_derived_tbl *dctbl = entropy->cur_tbls[sampn];
|
||||
|
||||
/* Encode the difference per section H.1.2.2 */
|
||||
|
||||
/* Input the sample difference */
|
||||
temp = *entropy->input_ptr[entropy->input_ptr_index[sampn]]++;
|
||||
|
||||
if (temp & 0x8000) { /* instead of temp < 0 */
|
||||
temp = (-temp) & 0x7FFF; /* absolute value, mod 2^16 */
|
||||
if (temp == 0) /* special case: magnitude = 32768 */
|
||||
temp2 = temp = 0x8000;
|
||||
temp2 = ~ temp; /* one's complement of magnitude */
|
||||
} else {
|
||||
temp &= 0x7FFF; /* abs value mod 2^16 */
|
||||
temp2 = temp; /* magnitude */
|
||||
}
|
||||
|
||||
/* Find the number of bits needed for the magnitude of the difference */
|
||||
nbits = 0;
|
||||
while (temp) {
|
||||
nbits++;
|
||||
temp >>= 1;
|
||||
}
|
||||
/* Check for out-of-range difference values.
|
||||
*/
|
||||
if (nbits > MAX_DIFF_BITS)
|
||||
ERREXIT(cinfo, JERR_BAD_DIFF);
|
||||
|
||||
/* Emit the Huffman-coded symbol for the number of bits */
|
||||
if (! emit_bits(&state, dctbl->ehufco[nbits], dctbl->ehufsi[nbits]))
|
||||
return mcu_num;
|
||||
|
||||
/* Emit that number of bits of the value, if positive, */
|
||||
/* or the complement of its magnitude, if negative. */
|
||||
if (nbits && /* emit_bits rejects calls with size 0 */
|
||||
nbits != 16) /* special case: no bits should be emitted */
|
||||
if (! emit_bits(&state, (unsigned int) temp2, nbits))
|
||||
return mcu_num;
|
||||
}
|
||||
|
||||
/* Completed MCU, so update state */
|
||||
cinfo->dest->next_output_byte = state.next_output_byte;
|
||||
cinfo->dest->free_in_buffer = state.free_in_buffer;
|
||||
ASSIGN_STATE(entropy->saved, state.cur);
|
||||
|
||||
/* Update restart-interval state too */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num++;
|
||||
entropy->next_restart_num &= 7;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
}
|
||||
|
||||
return nMCU;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Finish up at the end of a Huffman-compressed scan.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
finish_pass_huff (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
lhuff_entropy_ptr entropy = (lhuff_entropy_ptr) losslsc->entropy_private;
|
||||
working_state state;
|
||||
|
||||
/* Load up working state ... flush_bits needs it */
|
||||
state.next_output_byte = cinfo->dest->next_output_byte;
|
||||
state.free_in_buffer = cinfo->dest->free_in_buffer;
|
||||
ASSIGN_STATE(state.cur, entropy->saved);
|
||||
state.cinfo = cinfo;
|
||||
|
||||
/* Flush out the last data */
|
||||
if (! flush_bits(&state))
|
||||
ERREXIT(cinfo, JERR_CANT_SUSPEND);
|
||||
|
||||
/* Update state */
|
||||
cinfo->dest->next_output_byte = state.next_output_byte;
|
||||
cinfo->dest->free_in_buffer = state.free_in_buffer;
|
||||
ASSIGN_STATE(entropy->saved, state.cur);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Huffman coding optimization.
|
||||
*
|
||||
* We first scan the supplied data and count the number of uses of each symbol
|
||||
* that is to be Huffman-coded. (This process MUST agree with the code above.)
|
||||
* Then we build a Huffman coding tree for the observed counts.
|
||||
* Symbols which are not needed at all for the particular image are not
|
||||
* assigned any code, which saves space in the DHT marker as well as in
|
||||
* the compressed data.
|
||||
*/
|
||||
|
||||
#ifdef ENTROPY_OPT_SUPPORTED
|
||||
|
||||
/*
|
||||
* Trial-encode one nMCU's worth of Huffman-compressed differences.
|
||||
* No data is actually output, so no suspension return is possible.
|
||||
*/
|
||||
|
||||
METHODDEF(JDIMENSION)
|
||||
encode_mcus_gather (j_compress_ptr cinfo, JDIFFIMAGE diff_buf,
|
||||
JDIMENSION MCU_row_num, JDIMENSION MCU_col_num,
|
||||
JDIMENSION nMCU)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
lhuff_entropy_ptr entropy = (lhuff_entropy_ptr) losslsc->entropy_private;
|
||||
int sampn, ci, yoffset, MCU_width, ptrn;
|
||||
uint mcu_num;
|
||||
//jpeg_component_info * compptr;
|
||||
|
||||
/* Take care of restart intervals if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
/* Update restart state */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
/* Set input pointer locations based on MCU_col_num */
|
||||
for (ptrn = 0; ptrn < entropy->num_input_ptrs; ptrn++) {
|
||||
ci = entropy->input_ptr_info[ptrn].ci;
|
||||
yoffset = entropy->input_ptr_info[ptrn].yoffset;
|
||||
MCU_width = entropy->input_ptr_info[ptrn].MCU_width;
|
||||
entropy->input_ptr[ptrn] =
|
||||
diff_buf[ci][MCU_row_num + yoffset] + (MCU_col_num * MCU_width);
|
||||
}
|
||||
|
||||
for (mcu_num = 0; mcu_num < nMCU; mcu_num++) {
|
||||
|
||||
/* Inner loop handles the samples in the MCU */
|
||||
for (sampn = 0; sampn < cinfo->data_units_in_MCU; sampn++) {
|
||||
register int temp;
|
||||
register int nbits;
|
||||
//c_derived_tbl *dctbl = entropy->cur_tbls[sampn];
|
||||
long * counts = entropy->cur_counts[sampn];
|
||||
|
||||
/* Encode the difference per section H.1.2.2 */
|
||||
|
||||
/* Input the sample difference */
|
||||
temp = *entropy->input_ptr[entropy->input_ptr_index[sampn]]++;
|
||||
|
||||
if (temp & 0x8000) { /* instead of temp < 0 */
|
||||
temp = (-temp) & 0x7FFF; /* absolute value, mod 2^16 */
|
||||
if (temp == 0) /* special case: magnitude = 32768 */
|
||||
temp = 0x8000;
|
||||
} else
|
||||
temp &= 0x7FFF; /* abs value mod 2^16 */
|
||||
|
||||
/* Find the number of bits needed for the magnitude of the difference */
|
||||
nbits = 0;
|
||||
while (temp) {
|
||||
nbits++;
|
||||
temp >>= 1;
|
||||
}
|
||||
/* Check for out-of-range difference values.
|
||||
*/
|
||||
if (nbits > MAX_DIFF_BITS)
|
||||
ERREXIT(cinfo, JERR_BAD_DIFF);
|
||||
|
||||
/* Count the Huffman symbol for the number of bits */
|
||||
counts[nbits]++;
|
||||
}
|
||||
}
|
||||
|
||||
return nMCU;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Finish up a statistics-gathering pass and create the new Huffman tables.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
finish_pass_gather (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
lhuff_entropy_ptr entropy = (lhuff_entropy_ptr) losslsc->entropy_private;
|
||||
int ci, dctbl;
|
||||
jpeg_component_info * compptr;
|
||||
JHUFF_TBL **htblptr;
|
||||
boolean did_dc[NUM_HUFF_TBLS];
|
||||
|
||||
/* It's important not to apply jpeg_gen_optimal_table more than once
|
||||
* per table, because it clobbers the input frequency counts!
|
||||
*/
|
||||
MEMZERO(did_dc, SIZEOF(did_dc));
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
dctbl = compptr->dc_tbl_no;
|
||||
if (! did_dc[dctbl]) {
|
||||
htblptr = & cinfo->dc_huff_tbl_ptrs[dctbl];
|
||||
if (*htblptr == NULL)
|
||||
*htblptr = jpeg_alloc_huff_table((j_common_ptr) cinfo);
|
||||
jpeg_gen_optimal_table(cinfo, *htblptr, entropy->count_ptrs[dctbl]);
|
||||
did_dc[dctbl] = TRUE;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
#endif /* ENTROPY_OPT_SUPPORTED */
|
||||
|
||||
|
||||
METHODDEF(boolean)
|
||||
need_optimization_pass (j_compress_ptr cinfo)
|
||||
{
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Module initialization routine for Huffman entropy encoding.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_lhuff_encoder (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
lhuff_entropy_ptr entropy;
|
||||
int i;
|
||||
|
||||
entropy = (lhuff_entropy_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(lhuff_entropy_encoder));
|
||||
losslsc->entropy_private = (struct jpeg_entropy_encoder *) entropy;
|
||||
losslsc->pub.entropy_start_pass = start_pass_huff;
|
||||
losslsc->pub.need_optimization_pass = need_optimization_pass;
|
||||
|
||||
/* Mark tables unallocated */
|
||||
for (i = 0; i < NUM_HUFF_TBLS; i++) {
|
||||
entropy->derived_tbls[i] = NULL;
|
||||
#ifdef ENTROPY_OPT_SUPPORTED
|
||||
entropy->count_ptrs[i] = NULL;
|
||||
#endif
|
||||
}
|
||||
}
|
||||
@@ -1,78 +0,0 @@
|
||||
/*
|
||||
* jclossls.c
|
||||
*
|
||||
* Copyright (C) 1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains the control logic for the lossless JPEG compressor.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossls.h"
|
||||
|
||||
|
||||
#ifdef C_LOSSLESS_SUPPORTED
|
||||
|
||||
/*
|
||||
* Initialize for a processing pass.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass (j_compress_ptr cinfo, J_BUF_MODE pass_mode)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
|
||||
(*losslsc->scaler_start_pass) (cinfo);
|
||||
(*losslsc->predict_start_pass) (cinfo);
|
||||
(*losslsc->diff_start_pass) (cinfo, pass_mode);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize the lossless compression codec.
|
||||
* This is called only once, during master selection.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_lossless_c_codec(j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossless_c_ptr losslsc;
|
||||
|
||||
/* Create subobject in permanent pool */
|
||||
losslsc = (j_lossless_c_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
|
||||
SIZEOF(jpeg_lossless_c_codec));
|
||||
cinfo->codec = (struct jpeg_c_codec *) losslsc;
|
||||
|
||||
/* Initialize sub-modules */
|
||||
|
||||
/* Scaler */
|
||||
jinit_c_scaler(cinfo);
|
||||
|
||||
/* Differencer */
|
||||
jinit_differencer(cinfo);
|
||||
|
||||
/* Entropy encoding: either Huffman or arithmetic coding. */
|
||||
if (cinfo->arith_code) {
|
||||
ERREXIT(cinfo, JERR_ARITH_NOTIMPL);
|
||||
} else {
|
||||
jinit_lhuff_encoder(cinfo);
|
||||
}
|
||||
|
||||
/* Need a full-image difference buffer in any multi-pass mode. */
|
||||
jinit_c_diff_controller(cinfo,
|
||||
(boolean) (cinfo->num_scans > 1 ||
|
||||
cinfo->optimize_coding));
|
||||
|
||||
/* Initialize method pointers.
|
||||
*
|
||||
* Note: entropy_start_pass and entropy_finish_pass are assigned in
|
||||
* jclhuff.c and compress_data is assigned in jcdiffct.c.
|
||||
*/
|
||||
losslsc->pub.start_pass = start_pass;
|
||||
}
|
||||
|
||||
#endif /* C_LOSSLESS_SUPPORTED */
|
||||
@@ -1,76 +0,0 @@
|
||||
/*
|
||||
* jclossy.c
|
||||
*
|
||||
* Copyright (C) 1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains the control logic for the lossy JPEG compressor.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h"
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for a processing pass.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass (j_compress_ptr cinfo, J_BUF_MODE pass_mode)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
|
||||
(*lossyc->fdct_start_pass) (cinfo);
|
||||
(*lossyc->coef_start_pass) (cinfo, pass_mode);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize the lossy compression codec.
|
||||
* This is called only once, during master selection.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_lossy_c_codec (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossy_c_ptr lossyc;
|
||||
|
||||
/* Create subobject in permanent pool */
|
||||
lossyc = (j_lossy_c_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
|
||||
SIZEOF(jpeg_lossy_c_codec));
|
||||
cinfo->codec = (struct jpeg_c_codec *) lossyc;
|
||||
|
||||
/* Initialize sub-modules */
|
||||
|
||||
/* Forward DCT */
|
||||
jinit_forward_dct(cinfo);
|
||||
/* Entropy encoding: either Huffman or arithmetic coding. */
|
||||
if (cinfo->arith_code) {
|
||||
ERREXIT(cinfo, JERR_ARITH_NOTIMPL);
|
||||
} else {
|
||||
if (cinfo->process == JPROC_PROGRESSIVE) {
|
||||
#ifdef C_PROGRESSIVE_SUPPORTED
|
||||
jinit_phuff_encoder(cinfo);
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
} else
|
||||
jinit_shuff_encoder(cinfo);
|
||||
}
|
||||
|
||||
/* Need a full-image coefficient buffer in any multi-pass mode. */
|
||||
jinit_c_coef_controller(cinfo,
|
||||
(boolean) (cinfo->num_scans > 1 ||
|
||||
cinfo->optimize_coding));
|
||||
|
||||
/* Initialize method pointers.
|
||||
*
|
||||
* Note: entropy_start_pass and entropy_finish_pass are assigned in
|
||||
* jcshuff.c or jcphuff.c and compress_data is assigned in jccoefct.c.
|
||||
*/
|
||||
lossyc->pub.start_pass = start_pass;
|
||||
}
|
||||
+18
-21
@@ -1,7 +1,7 @@
|
||||
/*
|
||||
* jcmainct.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1994-1996, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -115,25 +115,24 @@ process_data_simple_main (j_compress_ptr cinfo,
|
||||
JDIMENSION in_rows_avail)
|
||||
{
|
||||
my_main_ptr main = (my_main_ptr) cinfo->main;
|
||||
uint data_unit = cinfo->data_unit;
|
||||
|
||||
while (main->cur_iMCU_row < cinfo->total_iMCU_rows) {
|
||||
/* Read input data if we haven't filled the main buffer yet */
|
||||
if (main->rowgroup_ctr < data_unit)
|
||||
if (main->rowgroup_ctr < (JDIMENSION) cinfo->min_DCT_v_scaled_size)
|
||||
(*cinfo->prep->pre_process_data) (cinfo,
|
||||
input_buf, in_row_ctr, in_rows_avail,
|
||||
main->buffer, &main->rowgroup_ctr,
|
||||
(JDIMENSION) data_unit);
|
||||
(JDIMENSION) cinfo->min_DCT_v_scaled_size);
|
||||
|
||||
/* If we don't have a full iMCU row buffered, return to application for
|
||||
* more data. Note that preprocessor will always pad to fill the iMCU row
|
||||
* at the bottom of the image.
|
||||
*/
|
||||
if (main->rowgroup_ctr != data_unit)
|
||||
if (main->rowgroup_ctr != (JDIMENSION) cinfo->min_DCT_v_scaled_size)
|
||||
return;
|
||||
|
||||
/* Send the completed row to the compressor */
|
||||
if (! (*cinfo->codec->compress_data) (cinfo, main->buffer)) {
|
||||
if (! (*cinfo->coef->compress_data) (cinfo, main->buffer)) {
|
||||
/* If compressor did not consume the whole row, then we must need to
|
||||
* suspend processing and return to the application. In this situation
|
||||
* we pretend we didn't yet consume the last input row; otherwise, if
|
||||
@@ -175,7 +174,6 @@ process_data_buffer_main (j_compress_ptr cinfo,
|
||||
int ci;
|
||||
jpeg_component_info *compptr;
|
||||
boolean writing = (main->pass_mode != JBUF_CRANK_DEST);
|
||||
int data_unit = cinfo->data_unit;
|
||||
|
||||
while (main->cur_iMCU_row < cinfo->total_iMCU_rows) {
|
||||
/* Realign the virtual buffers if at the start of an iMCU row. */
|
||||
@@ -184,13 +182,13 @@ process_data_buffer_main (j_compress_ptr cinfo,
|
||||
ci++, compptr++) {
|
||||
main->buffer[ci] = (*cinfo->mem->access_virt_sarray)
|
||||
((j_common_ptr) cinfo, main->whole_image[ci],
|
||||
main->cur_iMCU_row * (compptr->v_samp_factor * data_unit),
|
||||
(JDIMENSION) (compptr->v_samp_factor * data_unit), writing);
|
||||
main->cur_iMCU_row * (compptr->v_samp_factor * DCTSIZE),
|
||||
(JDIMENSION) (compptr->v_samp_factor * DCTSIZE), writing);
|
||||
}
|
||||
/* In a read pass, pretend we just read some source data. */
|
||||
if (! writing) {
|
||||
*in_row_ctr += cinfo->max_v_samp_factor * data_unit;
|
||||
main->rowgroup_ctr = data_unit;
|
||||
*in_row_ctr += cinfo->max_v_samp_factor * DCTSIZE;
|
||||
main->rowgroup_ctr = DCTSIZE;
|
||||
}
|
||||
}
|
||||
|
||||
@@ -200,15 +198,15 @@ process_data_buffer_main (j_compress_ptr cinfo,
|
||||
(*cinfo->prep->pre_process_data) (cinfo,
|
||||
input_buf, in_row_ctr, in_rows_avail,
|
||||
main->buffer, &main->rowgroup_ctr,
|
||||
(JDIMENSION) data_unit);
|
||||
(JDIMENSION) DCTSIZE);
|
||||
/* Return to application if we need more data to fill the iMCU row. */
|
||||
if (main->rowgroup_ctr < data_unit)
|
||||
if (main->rowgroup_ctr < DCTSIZE)
|
||||
return;
|
||||
}
|
||||
|
||||
/* Emit data, unless this is a sink-only pass. */
|
||||
if (main->pass_mode != JBUF_SAVE_SOURCE) {
|
||||
if (! (*cinfo->codec->compress_data) (cinfo, main->buffer)) {
|
||||
if (! (*cinfo->coef->compress_data) (cinfo, main->buffer)) {
|
||||
/* If compressor did not consume the whole row, then we must need to
|
||||
* suspend processing and return to the application. In this situation
|
||||
* we pretend we didn't yet consume the last input row; otherwise, if
|
||||
@@ -249,7 +247,6 @@ jinit_c_main_controller (j_compress_ptr cinfo, boolean need_full_buffer)
|
||||
my_main_ptr main;
|
||||
int ci;
|
||||
jpeg_component_info *compptr;
|
||||
int data_unit = cinfo->data_unit;
|
||||
|
||||
main = (my_main_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
@@ -272,10 +269,10 @@ jinit_c_main_controller (j_compress_ptr cinfo, boolean need_full_buffer)
|
||||
ci++, compptr++) {
|
||||
main->whole_image[ci] = (*cinfo->mem->request_virt_sarray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE, FALSE,
|
||||
compptr->width_in_data_units * data_unit,
|
||||
(JDIMENSION) jround_up((long) compptr->height_in_data_units,
|
||||
(long) compptr->v_samp_factor) * data_unit,
|
||||
(JDIMENSION) (compptr->v_samp_factor * data_unit));
|
||||
compptr->width_in_blocks * compptr->DCT_h_scaled_size,
|
||||
(JDIMENSION) jround_up((long) compptr->height_in_blocks,
|
||||
(long) compptr->v_samp_factor) * DCTSIZE,
|
||||
(JDIMENSION) (compptr->v_samp_factor * compptr->DCT_v_scaled_size));
|
||||
}
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_BAD_BUFFER_MODE);
|
||||
@@ -289,8 +286,8 @@ jinit_c_main_controller (j_compress_ptr cinfo, boolean need_full_buffer)
|
||||
ci++, compptr++) {
|
||||
main->buffer[ci] = (*cinfo->mem->alloc_sarray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
compptr->width_in_data_units * data_unit,
|
||||
(JDIMENSION) (compptr->v_samp_factor * data_unit));
|
||||
compptr->width_in_blocks * compptr->DCT_h_scaled_size,
|
||||
(JDIMENSION) (compptr->v_samp_factor * compptr->DCT_v_scaled_size));
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
+56
-48
@@ -2,6 +2,7 @@
|
||||
* jcmarker.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Modified 2003-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -153,21 +154,22 @@ emit_dqt (j_compress_ptr cinfo, int index)
|
||||
ERREXIT1(cinfo, JERR_NO_QUANT_TABLE, index);
|
||||
|
||||
prec = 0;
|
||||
for (i = 0; i < DCTSIZE2; i++) {
|
||||
if (qtbl->quantval[i] > 255)
|
||||
for (i = 0; i <= cinfo->lim_Se; i++) {
|
||||
if (qtbl->quantval[cinfo->natural_order[i]] > 255)
|
||||
prec = 1;
|
||||
}
|
||||
|
||||
if (! qtbl->sent_table) {
|
||||
emit_marker(cinfo, M_DQT);
|
||||
|
||||
emit_2bytes(cinfo, prec ? DCTSIZE2*2 + 1 + 2 : DCTSIZE2 + 1 + 2);
|
||||
emit_2bytes(cinfo,
|
||||
prec ? cinfo->lim_Se * 2 + 2 + 1 + 2 : cinfo->lim_Se + 1 + 1 + 2);
|
||||
|
||||
emit_byte(cinfo, index + (prec<<4));
|
||||
|
||||
for (i = 0; i < DCTSIZE2; i++) {
|
||||
for (i = 0; i <= cinfo->lim_Se; i++) {
|
||||
/* The table entries must be emitted in zigzag order. */
|
||||
unsigned int qval = qtbl->quantval[jpeg_natural_order[i]];
|
||||
unsigned int qval = qtbl->quantval[cinfo->natural_order[i]];
|
||||
if (prec)
|
||||
emit_byte(cinfo, (int) (qval >> 8));
|
||||
emit_byte(cinfo, (int) (qval & 0xFF));
|
||||
@@ -235,7 +237,11 @@ emit_dac (j_compress_ptr cinfo)
|
||||
|
||||
for (i = 0; i < cinfo->comps_in_scan; i++) {
|
||||
compptr = cinfo->cur_comp_info[i];
|
||||
/* DC needs no table for refinement scan */
|
||||
if (cinfo->Ss == 0 && cinfo->Ah == 0)
|
||||
dc_in_use[compptr->dc_tbl_no] = 1;
|
||||
/* AC needs no table when not present */
|
||||
if (cinfo->Se)
|
||||
ac_in_use[compptr->ac_tbl_no] = 1;
|
||||
}
|
||||
|
||||
@@ -285,13 +291,13 @@ emit_sof (j_compress_ptr cinfo, JPEG_MARKER code)
|
||||
emit_2bytes(cinfo, 3 * cinfo->num_components + 2 + 5 + 1); /* length */
|
||||
|
||||
/* Make sure image isn't bigger than SOF field can handle */
|
||||
if ((long) cinfo->image_height > 65535L ||
|
||||
(long) cinfo->image_width > 65535L)
|
||||
if ((long) cinfo->jpeg_height > 65535L ||
|
||||
(long) cinfo->jpeg_width > 65535L)
|
||||
ERREXIT1(cinfo, JERR_IMAGE_TOO_BIG, (unsigned int) 65535);
|
||||
|
||||
emit_byte(cinfo, cinfo->data_precision);
|
||||
emit_2bytes(cinfo, (int) cinfo->image_height);
|
||||
emit_2bytes(cinfo, (int) cinfo->image_width);
|
||||
emit_2bytes(cinfo, (int) cinfo->jpeg_height);
|
||||
emit_2bytes(cinfo, (int) cinfo->jpeg_width);
|
||||
|
||||
emit_byte(cinfo, cinfo->num_components);
|
||||
|
||||
@@ -320,22 +326,16 @@ emit_sos (j_compress_ptr cinfo)
|
||||
for (i = 0; i < cinfo->comps_in_scan; i++) {
|
||||
compptr = cinfo->cur_comp_info[i];
|
||||
emit_byte(cinfo, compptr->component_id);
|
||||
td = compptr->dc_tbl_no;
|
||||
ta = compptr->ac_tbl_no;
|
||||
if (cinfo->process == JPROC_PROGRESSIVE) {
|
||||
/* Progressive mode: only DC or only AC tables are used in one scan;
|
||||
* furthermore, Huffman coding of DC refinement uses no table at all.
|
||||
* We emit 0 for unused field(s); this is recommended by the P&M text
|
||||
|
||||
/* We emit 0 for unused field(s); this is recommended by the P&M text
|
||||
* but does not seem to be specified in the standard.
|
||||
*/
|
||||
if (cinfo->Ss == 0) {
|
||||
ta = 0; /* DC scan */
|
||||
if (cinfo->Ah != 0 && !cinfo->arith_code)
|
||||
td = 0; /* no DC table either */
|
||||
} else {
|
||||
td = 0; /* AC scan */
|
||||
}
|
||||
}
|
||||
|
||||
/* DC needs no table for refinement scan */
|
||||
td = cinfo->Ss == 0 && cinfo->Ah == 0 ? compptr->dc_tbl_no : 0;
|
||||
/* AC needs no table when not present */
|
||||
ta = cinfo->Se ? compptr->ac_tbl_no : 0;
|
||||
|
||||
emit_byte(cinfo, (td << 4) + ta);
|
||||
}
|
||||
|
||||
@@ -345,6 +345,22 @@ emit_sos (j_compress_ptr cinfo)
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
emit_pseudo_sos (j_compress_ptr cinfo)
|
||||
/* Emit a pseudo SOS marker */
|
||||
{
|
||||
emit_marker(cinfo, M_SOS);
|
||||
|
||||
emit_2bytes(cinfo, 2 + 1 + 3); /* length */
|
||||
|
||||
emit_byte(cinfo, 0); /* Ns */
|
||||
|
||||
emit_byte(cinfo, 0); /* Ss */
|
||||
emit_byte(cinfo, cinfo->block_size * cinfo->block_size - 1); /* Se */
|
||||
emit_byte(cinfo, 0); /* Ah/Al */
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
emit_jfif_app0 (j_compress_ptr cinfo)
|
||||
/* Emit a JFIF-compliant APP0 marker */
|
||||
@@ -484,7 +500,7 @@ write_file_header (j_compress_ptr cinfo)
|
||||
|
||||
/*
|
||||
* Write frame header.
|
||||
* This consists of DQT and SOFn markers.
|
||||
* This consists of DQT and SOFn markers, and a conditional pseudo SOS marker.
|
||||
* Note that we do not emit the SOF until we have emitted the DQT(s).
|
||||
* This avoids compatibility problems with incorrect implementations that
|
||||
* try to error-check the quant table numbers as soon as they see the SOF.
|
||||
@@ -493,12 +509,10 @@ write_file_header (j_compress_ptr cinfo)
|
||||
METHODDEF(void)
|
||||
write_frame_header (j_compress_ptr cinfo)
|
||||
{
|
||||
int ci;
|
||||
int prec = 0;
|
||||
int ci, prec;
|
||||
boolean is_baseline;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
if (cinfo->process != JPROC_LOSSLESS) {
|
||||
/* Emit DQT for each quantization table.
|
||||
* Note that emit_dqt() suppresses any duplicate tables.
|
||||
*/
|
||||
@@ -508,13 +522,12 @@ write_frame_header (j_compress_ptr cinfo)
|
||||
prec += emit_dqt(cinfo, compptr->quant_tbl_no);
|
||||
}
|
||||
/* now prec is nonzero iff there are any 16-bit quant tables. */
|
||||
}
|
||||
|
||||
/* Check for a non-baseline specification.
|
||||
* Note we assume that Huffman table numbers won't be changed later.
|
||||
*/
|
||||
if (cinfo->arith_code || cinfo->process != JPROC_SEQUENTIAL ||
|
||||
cinfo->data_precision != 8) {
|
||||
if (cinfo->arith_code || cinfo->progressive_mode ||
|
||||
cinfo->data_precision != 8 || cinfo->block_size != DCTSIZE) {
|
||||
is_baseline = FALSE;
|
||||
} else {
|
||||
is_baseline = TRUE;
|
||||
@@ -532,17 +545,22 @@ write_frame_header (j_compress_ptr cinfo)
|
||||
|
||||
/* Emit the proper SOF marker */
|
||||
if (cinfo->arith_code) {
|
||||
emit_sof(cinfo, M_SOF9); /* SOF code for arithmetic coding */
|
||||
if (cinfo->progressive_mode)
|
||||
emit_sof(cinfo, M_SOF10); /* SOF code for progressive arithmetic */
|
||||
else
|
||||
emit_sof(cinfo, M_SOF9); /* SOF code for sequential arithmetic */
|
||||
} else {
|
||||
if (cinfo->process == JPROC_PROGRESSIVE)
|
||||
if (cinfo->progressive_mode)
|
||||
emit_sof(cinfo, M_SOF2); /* SOF code for progressive Huffman */
|
||||
else if (cinfo->process == JPROC_LOSSLESS)
|
||||
emit_sof(cinfo, M_SOF3); /* SOF code for lossless Huffman */
|
||||
else if (is_baseline)
|
||||
emit_sof(cinfo, M_SOF0); /* SOF code for baseline implementation */
|
||||
else
|
||||
emit_sof(cinfo, M_SOF1); /* SOF code for non-baseline Huffman file */
|
||||
}
|
||||
|
||||
/* Check to emit pseudo SOS marker */
|
||||
if (cinfo->progressive_mode && cinfo->block_size != DCTSIZE)
|
||||
emit_pseudo_sos(cinfo);
|
||||
}
|
||||
|
||||
|
||||
@@ -571,23 +589,13 @@ write_scan_header (j_compress_ptr cinfo)
|
||||
*/
|
||||
for (i = 0; i < cinfo->comps_in_scan; i++) {
|
||||
compptr = cinfo->cur_comp_info[i];
|
||||
if (cinfo->process == JPROC_PROGRESSIVE) {
|
||||
/* Progressive mode: only DC or only AC tables are used in one scan */
|
||||
if (cinfo->Ss == 0) {
|
||||
if (cinfo->Ah == 0) /* DC needs no table for refinement scan */
|
||||
/* DC needs no table for refinement scan */
|
||||
if (cinfo->Ss == 0 && cinfo->Ah == 0)
|
||||
emit_dht(cinfo, compptr->dc_tbl_no, FALSE);
|
||||
} else {
|
||||
/* AC needs no table when not present */
|
||||
if (cinfo->Se)
|
||||
emit_dht(cinfo, compptr->ac_tbl_no, TRUE);
|
||||
}
|
||||
} else if (cinfo->process == JPROC_LOSSLESS) {
|
||||
/* Lossless mode: only DC tables are used */
|
||||
emit_dht(cinfo, compptr->dc_tbl_no, FALSE);
|
||||
} else {
|
||||
/* Sequential mode: need both DC and AC tables */
|
||||
emit_dht(cinfo, compptr->dc_tbl_no, FALSE);
|
||||
emit_dht(cinfo, compptr->ac_tbl_no, TRUE);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/* Emit DRI if required --- note that DRI value could change for each scan.
|
||||
|
||||
+321
-126
@@ -1,7 +1,8 @@
|
||||
/*
|
||||
* jcmaster.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1991-1997, Thomas G. Lane.
|
||||
* Modified 2003-2010 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -14,7 +15,6 @@
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h" /* Private declarations for lossy codec */
|
||||
|
||||
|
||||
/* Private state */
|
||||
@@ -43,24 +43,204 @@ typedef my_comp_master * my_master_ptr;
|
||||
* Support routines that do various essential calculations.
|
||||
*/
|
||||
|
||||
LOCAL(void)
|
||||
initial_setup (j_compress_ptr cinfo)
|
||||
/*
|
||||
* Compute JPEG image dimensions and related values.
|
||||
* NOTE: this is exported for possible use by application.
|
||||
* Hence it mustn't do anything that can't be done twice.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_calc_jpeg_dimensions (j_compress_ptr cinfo)
|
||||
/* Do computations that are needed before master selection phase */
|
||||
{
|
||||
int ci;
|
||||
#ifdef DCT_SCALING_SUPPORTED
|
||||
|
||||
/* Compute actual JPEG image dimensions and DCT scaling choices. */
|
||||
if (cinfo->scale_num >= cinfo->scale_denom * 8) {
|
||||
/* Provide 8/1 scaling */
|
||||
cinfo->jpeg_width = cinfo->image_width << 3;
|
||||
cinfo->jpeg_height = cinfo->image_height << 3;
|
||||
cinfo->min_DCT_h_scaled_size = 1;
|
||||
cinfo->min_DCT_v_scaled_size = 1;
|
||||
} else if (cinfo->scale_num >= cinfo->scale_denom * 4) {
|
||||
/* Provide 4/1 scaling */
|
||||
cinfo->jpeg_width = cinfo->image_width << 2;
|
||||
cinfo->jpeg_height = cinfo->image_height << 2;
|
||||
cinfo->min_DCT_h_scaled_size = 2;
|
||||
cinfo->min_DCT_v_scaled_size = 2;
|
||||
} else if (cinfo->scale_num * 3 >= cinfo->scale_denom * 8) {
|
||||
/* Provide 8/3 scaling */
|
||||
cinfo->jpeg_width = (cinfo->image_width << 1) + (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 2, 3L);
|
||||
cinfo->jpeg_height = (cinfo->image_height << 1) + (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 2, 3L);
|
||||
cinfo->min_DCT_h_scaled_size = 3;
|
||||
cinfo->min_DCT_v_scaled_size = 3;
|
||||
} else if (cinfo->scale_num >= cinfo->scale_denom * 2) {
|
||||
/* Provide 2/1 scaling */
|
||||
cinfo->jpeg_width = cinfo->image_width << 1;
|
||||
cinfo->jpeg_height = cinfo->image_height << 1;
|
||||
cinfo->min_DCT_h_scaled_size = 4;
|
||||
cinfo->min_DCT_v_scaled_size = 4;
|
||||
} else if (cinfo->scale_num * 5 >= cinfo->scale_denom * 8) {
|
||||
/* Provide 8/5 scaling */
|
||||
cinfo->jpeg_width = cinfo->image_width + (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 3, 5L);
|
||||
cinfo->jpeg_height = cinfo->image_height + (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 3, 5L);
|
||||
cinfo->min_DCT_h_scaled_size = 5;
|
||||
cinfo->min_DCT_v_scaled_size = 5;
|
||||
} else if (cinfo->scale_num * 3 >= cinfo->scale_denom * 4) {
|
||||
/* Provide 4/3 scaling */
|
||||
cinfo->jpeg_width = cinfo->image_width + (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width, 3L);
|
||||
cinfo->jpeg_height = cinfo->image_height + (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height, 3L);
|
||||
cinfo->min_DCT_h_scaled_size = 6;
|
||||
cinfo->min_DCT_v_scaled_size = 6;
|
||||
} else if (cinfo->scale_num * 7 >= cinfo->scale_denom * 8) {
|
||||
/* Provide 8/7 scaling */
|
||||
cinfo->jpeg_width = cinfo->image_width + (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width, 7L);
|
||||
cinfo->jpeg_height = cinfo->image_height + (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height, 7L);
|
||||
cinfo->min_DCT_h_scaled_size = 7;
|
||||
cinfo->min_DCT_v_scaled_size = 7;
|
||||
} else if (cinfo->scale_num >= cinfo->scale_denom) {
|
||||
/* Provide 1/1 scaling */
|
||||
cinfo->jpeg_width = cinfo->image_width;
|
||||
cinfo->jpeg_height = cinfo->image_height;
|
||||
cinfo->min_DCT_h_scaled_size = 8;
|
||||
cinfo->min_DCT_v_scaled_size = 8;
|
||||
} else if (cinfo->scale_num * 9 >= cinfo->scale_denom * 8) {
|
||||
/* Provide 8/9 scaling */
|
||||
cinfo->jpeg_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 8, 9L);
|
||||
cinfo->jpeg_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 8, 9L);
|
||||
cinfo->min_DCT_h_scaled_size = 9;
|
||||
cinfo->min_DCT_v_scaled_size = 9;
|
||||
} else if (cinfo->scale_num * 5 >= cinfo->scale_denom * 4) {
|
||||
/* Provide 4/5 scaling */
|
||||
cinfo->jpeg_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 4, 5L);
|
||||
cinfo->jpeg_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 4, 5L);
|
||||
cinfo->min_DCT_h_scaled_size = 10;
|
||||
cinfo->min_DCT_v_scaled_size = 10;
|
||||
} else if (cinfo->scale_num * 11 >= cinfo->scale_denom * 8) {
|
||||
/* Provide 8/11 scaling */
|
||||
cinfo->jpeg_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 8, 11L);
|
||||
cinfo->jpeg_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 8, 11L);
|
||||
cinfo->min_DCT_h_scaled_size = 11;
|
||||
cinfo->min_DCT_v_scaled_size = 11;
|
||||
} else if (cinfo->scale_num * 3 >= cinfo->scale_denom * 2) {
|
||||
/* Provide 2/3 scaling */
|
||||
cinfo->jpeg_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 2, 3L);
|
||||
cinfo->jpeg_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 2, 3L);
|
||||
cinfo->min_DCT_h_scaled_size = 12;
|
||||
cinfo->min_DCT_v_scaled_size = 12;
|
||||
} else if (cinfo->scale_num * 13 >= cinfo->scale_denom * 8) {
|
||||
/* Provide 8/13 scaling */
|
||||
cinfo->jpeg_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 8, 13L);
|
||||
cinfo->jpeg_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 8, 13L);
|
||||
cinfo->min_DCT_h_scaled_size = 13;
|
||||
cinfo->min_DCT_v_scaled_size = 13;
|
||||
} else if (cinfo->scale_num * 7 >= cinfo->scale_denom * 4) {
|
||||
/* Provide 4/7 scaling */
|
||||
cinfo->jpeg_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 4, 7L);
|
||||
cinfo->jpeg_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 4, 7L);
|
||||
cinfo->min_DCT_h_scaled_size = 14;
|
||||
cinfo->min_DCT_v_scaled_size = 14;
|
||||
} else if (cinfo->scale_num * 15 >= cinfo->scale_denom * 8) {
|
||||
/* Provide 8/15 scaling */
|
||||
cinfo->jpeg_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 8, 15L);
|
||||
cinfo->jpeg_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 8, 15L);
|
||||
cinfo->min_DCT_h_scaled_size = 15;
|
||||
cinfo->min_DCT_v_scaled_size = 15;
|
||||
} else {
|
||||
/* Provide 1/2 scaling */
|
||||
cinfo->jpeg_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width, 2L);
|
||||
cinfo->jpeg_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height, 2L);
|
||||
cinfo->min_DCT_h_scaled_size = 16;
|
||||
cinfo->min_DCT_v_scaled_size = 16;
|
||||
}
|
||||
|
||||
#else /* !DCT_SCALING_SUPPORTED */
|
||||
|
||||
/* Hardwire it to "no scaling" */
|
||||
cinfo->jpeg_width = cinfo->image_width;
|
||||
cinfo->jpeg_height = cinfo->image_height;
|
||||
cinfo->min_DCT_h_scaled_size = DCTSIZE;
|
||||
cinfo->min_DCT_v_scaled_size = DCTSIZE;
|
||||
|
||||
#endif /* DCT_SCALING_SUPPORTED */
|
||||
|
||||
cinfo->block_size = DCTSIZE;
|
||||
cinfo->natural_order = jpeg_natural_order;
|
||||
cinfo->lim_Se = DCTSIZE2-1;
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
jpeg_calc_trans_dimensions (j_compress_ptr cinfo)
|
||||
{
|
||||
if (cinfo->min_DCT_h_scaled_size < 1 || cinfo->min_DCT_h_scaled_size > 16
|
||||
|| cinfo->min_DCT_h_scaled_size != cinfo->min_DCT_v_scaled_size)
|
||||
ERREXIT2(cinfo, JERR_BAD_DCTSIZE,
|
||||
cinfo->min_DCT_h_scaled_size, cinfo->min_DCT_v_scaled_size);
|
||||
|
||||
cinfo->block_size = cinfo->min_DCT_h_scaled_size;
|
||||
|
||||
switch (cinfo->block_size) {
|
||||
case 2: cinfo->natural_order = jpeg_natural_order2; break;
|
||||
case 3: cinfo->natural_order = jpeg_natural_order3; break;
|
||||
case 4: cinfo->natural_order = jpeg_natural_order4; break;
|
||||
case 5: cinfo->natural_order = jpeg_natural_order5; break;
|
||||
case 6: cinfo->natural_order = jpeg_natural_order6; break;
|
||||
case 7: cinfo->natural_order = jpeg_natural_order7; break;
|
||||
default: cinfo->natural_order = jpeg_natural_order; break;
|
||||
}
|
||||
|
||||
cinfo->lim_Se = cinfo->block_size < DCTSIZE ?
|
||||
cinfo->block_size * cinfo->block_size - 1 : DCTSIZE2-1;
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
initial_setup (j_compress_ptr cinfo, boolean transcode_only)
|
||||
/* Do computations that are needed before master selection phase */
|
||||
{
|
||||
int ci, ssize;
|
||||
jpeg_component_info *compptr;
|
||||
long samplesperrow;
|
||||
JDIMENSION jd_samplesperrow;
|
||||
int data_unit = cinfo->data_unit;
|
||||
|
||||
if (transcode_only)
|
||||
jpeg_calc_trans_dimensions(cinfo);
|
||||
else
|
||||
jpeg_calc_jpeg_dimensions(cinfo);
|
||||
|
||||
/* Sanity check on image dimensions */
|
||||
if (cinfo->image_height <= 0 || cinfo->image_width <= 0
|
||||
|| cinfo->num_components <= 0 || cinfo->input_components <= 0)
|
||||
if (cinfo->jpeg_height <= 0 || cinfo->jpeg_width <= 0 ||
|
||||
cinfo->num_components <= 0 || cinfo->input_components <= 0)
|
||||
ERREXIT(cinfo, JERR_EMPTY_IMAGE);
|
||||
|
||||
/* Make sure image isn't bigger than I can handle */
|
||||
if ((long) cinfo->image_height > (long) JPEG_MAX_DIMENSION ||
|
||||
(long) cinfo->image_width > (long) JPEG_MAX_DIMENSION)
|
||||
if ((long) cinfo->jpeg_height > (long) JPEG_MAX_DIMENSION ||
|
||||
(long) cinfo->jpeg_width > (long) JPEG_MAX_DIMENSION)
|
||||
ERREXIT1(cinfo, JERR_IMAGE_TOO_BIG, (unsigned int) JPEG_MAX_DIMENSION);
|
||||
|
||||
/* Width of an input scanline must be representable as JDIMENSION. */
|
||||
@@ -97,22 +277,52 @@ initial_setup (j_compress_ptr cinfo)
|
||||
ci++, compptr++) {
|
||||
/* Fill in the correct component_index value; don't rely on application */
|
||||
compptr->component_index = ci;
|
||||
/* For compression, we never do any codec-based processing. */
|
||||
compptr->codec_data_unit = data_unit;
|
||||
/* Size in data units */
|
||||
compptr->width_in_data_units = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * (long) compptr->h_samp_factor,
|
||||
(long) (cinfo->max_h_samp_factor * data_unit));
|
||||
compptr->height_in_data_units = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * (long) compptr->v_samp_factor,
|
||||
(long) (cinfo->max_v_samp_factor * data_unit));
|
||||
/* In selecting the actual DCT scaling for each component, we try to
|
||||
* scale down the chroma components via DCT scaling rather than downsampling.
|
||||
* This saves time if the downsampler gets to use 1:1 scaling.
|
||||
* Note this code adapts subsampling ratios which are powers of 2.
|
||||
*/
|
||||
ssize = 1;
|
||||
#ifdef DCT_SCALING_SUPPORTED
|
||||
while (cinfo->min_DCT_h_scaled_size * ssize <=
|
||||
(cinfo->do_fancy_downsampling ? DCTSIZE : DCTSIZE / 2) &&
|
||||
(cinfo->max_h_samp_factor % (compptr->h_samp_factor * ssize * 2)) == 0) {
|
||||
ssize = ssize * 2;
|
||||
}
|
||||
#endif
|
||||
compptr->DCT_h_scaled_size = cinfo->min_DCT_h_scaled_size * ssize;
|
||||
ssize = 1;
|
||||
#ifdef DCT_SCALING_SUPPORTED
|
||||
while (cinfo->min_DCT_v_scaled_size * ssize <=
|
||||
(cinfo->do_fancy_downsampling ? DCTSIZE : DCTSIZE / 2) &&
|
||||
(cinfo->max_v_samp_factor % (compptr->v_samp_factor * ssize * 2)) == 0) {
|
||||
ssize = ssize * 2;
|
||||
}
|
||||
#endif
|
||||
compptr->DCT_v_scaled_size = cinfo->min_DCT_v_scaled_size * ssize;
|
||||
|
||||
/* We don't support DCT ratios larger than 2. */
|
||||
if (compptr->DCT_h_scaled_size > compptr->DCT_v_scaled_size * 2)
|
||||
compptr->DCT_h_scaled_size = compptr->DCT_v_scaled_size * 2;
|
||||
else if (compptr->DCT_v_scaled_size > compptr->DCT_h_scaled_size * 2)
|
||||
compptr->DCT_v_scaled_size = compptr->DCT_h_scaled_size * 2;
|
||||
|
||||
/* Size in DCT blocks */
|
||||
compptr->width_in_blocks = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->jpeg_width * (long) compptr->h_samp_factor,
|
||||
(long) (cinfo->max_h_samp_factor * cinfo->block_size));
|
||||
compptr->height_in_blocks = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->jpeg_height * (long) compptr->v_samp_factor,
|
||||
(long) (cinfo->max_v_samp_factor * cinfo->block_size));
|
||||
/* Size in samples */
|
||||
compptr->downsampled_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * (long) compptr->h_samp_factor,
|
||||
(long) cinfo->max_h_samp_factor);
|
||||
jdiv_round_up((long) cinfo->jpeg_width *
|
||||
(long) (compptr->h_samp_factor * compptr->DCT_h_scaled_size),
|
||||
(long) (cinfo->max_h_samp_factor * cinfo->block_size));
|
||||
compptr->downsampled_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * (long) compptr->v_samp_factor,
|
||||
(long) cinfo->max_v_samp_factor);
|
||||
jdiv_round_up((long) cinfo->jpeg_height *
|
||||
(long) (compptr->v_samp_factor * compptr->DCT_v_scaled_size),
|
||||
(long) (cinfo->max_v_samp_factor * cinfo->block_size));
|
||||
/* Mark component needed (this flag isn't actually used for compression) */
|
||||
compptr->component_needed = TRUE;
|
||||
}
|
||||
@@ -121,24 +331,17 @@ initial_setup (j_compress_ptr cinfo)
|
||||
* main controller will call coefficient controller).
|
||||
*/
|
||||
cinfo->total_iMCU_rows = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height,
|
||||
(long) (cinfo->max_v_samp_factor*data_unit));
|
||||
jdiv_round_up((long) cinfo->jpeg_height,
|
||||
(long) (cinfo->max_v_samp_factor * cinfo->block_size));
|
||||
}
|
||||
|
||||
#ifdef C_MULTISCAN_FILES_SUPPORTED
|
||||
#define NEED_SCAN_SCRIPT
|
||||
#else
|
||||
#ifdef C_LOSSLESS_SUPPORTED
|
||||
#define NEED_SCAN_SCRIPT
|
||||
#endif
|
||||
#endif
|
||||
|
||||
#ifdef NEED_SCAN_SCRIPT
|
||||
#ifdef C_MULTISCAN_FILES_SUPPORTED
|
||||
|
||||
LOCAL(void)
|
||||
validate_script (j_compress_ptr cinfo)
|
||||
/* Verify that the scan script in cinfo->scan_info[] is valid; also
|
||||
* determine whether it uses progressive JPEG, and set cinfo->process.
|
||||
* determine whether it uses progressive JPEG, and set cinfo->progressive_mode.
|
||||
*/
|
||||
{
|
||||
const jpeg_scan_info * scanptr;
|
||||
@@ -154,27 +357,13 @@ validate_script (j_compress_ptr cinfo)
|
||||
if (cinfo->num_scans <= 0)
|
||||
ERREXIT1(cinfo, JERR_BAD_SCAN_SCRIPT, 0);
|
||||
|
||||
#ifndef C_MULTISCAN_FILES_SUPPORTED
|
||||
if (cinfo->num_scans > 1)
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
|
||||
scanptr = cinfo->scan_info;
|
||||
if (cinfo->lossless) {
|
||||
#ifdef C_LOSSLESS_SUPPORTED
|
||||
cinfo->process = JPROC_LOSSLESS;
|
||||
for (ci = 0; ci < cinfo->num_components; ci++)
|
||||
component_sent[ci] = FALSE;
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
}
|
||||
/* For sequential JPEG, all scans must have Ss=0, Se=DCTSIZE2-1;
|
||||
* for progressive JPEG, no scan can have this.
|
||||
*/
|
||||
else if (scanptr->Ss != 0 || scanptr->Se != DCTSIZE2-1) {
|
||||
scanptr = cinfo->scan_info;
|
||||
if (scanptr->Ss != 0 || scanptr->Se != DCTSIZE2-1) {
|
||||
#ifdef C_PROGRESSIVE_SUPPORTED
|
||||
cinfo->process = JPROC_PROGRESSIVE;
|
||||
cinfo->progressive_mode = TRUE;
|
||||
last_bitpos_ptr = & last_bitpos[0][0];
|
||||
for (ci = 0; ci < cinfo->num_components; ci++)
|
||||
for (coefi = 0; coefi < DCTSIZE2; coefi++)
|
||||
@@ -183,7 +372,7 @@ validate_script (j_compress_ptr cinfo)
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
} else {
|
||||
cinfo->process = JPROC_SEQUENTIAL;
|
||||
cinfo->progressive_mode = FALSE;
|
||||
for (ci = 0; ci < cinfo->num_components; ci++)
|
||||
component_sent[ci] = FALSE;
|
||||
}
|
||||
@@ -206,26 +395,7 @@ validate_script (j_compress_ptr cinfo)
|
||||
Se = scanptr->Se;
|
||||
Ah = scanptr->Ah;
|
||||
Al = scanptr->Al;
|
||||
if (cinfo->process == JPROC_LOSSLESS) {
|
||||
#ifdef C_LOSSLESS_SUPPORTED
|
||||
/* The JPEG spec simply gives the range 0..15 for Al (Pt), but that
|
||||
* seems wrong: the upper bound ought to depend on data precision.
|
||||
* Perhaps they really meant 0..N-1 for N-bit precision, which is what
|
||||
* we allow here.
|
||||
*/
|
||||
if (Ss < 1 || Ss > 7 || /* predictor selector */
|
||||
Se != 0 || Ah != 0 ||
|
||||
Al < 0 || Al >= cinfo->data_precision) /* point transform */
|
||||
ERREXIT1(cinfo, JERR_BAD_LOSSLESS_SCRIPT, scanno);
|
||||
/* Make sure components are not sent twice */
|
||||
for (ci = 0; ci < ncomps; ci++) {
|
||||
thisi = scanptr->component_index[ci];
|
||||
if (component_sent[thisi])
|
||||
ERREXIT1(cinfo, JERR_BAD_SCAN_SCRIPT, scanno);
|
||||
component_sent[thisi] = TRUE;
|
||||
}
|
||||
#endif
|
||||
} else if (cinfo->process == JPROC_PROGRESSIVE) {
|
||||
if (cinfo->progressive_mode) {
|
||||
#ifdef C_PROGRESSIVE_SUPPORTED
|
||||
/* The JPEG spec simply gives the ranges 0..13 for Ah and Al, but that
|
||||
* seems wrong: the upper bound ought to depend on data precision.
|
||||
@@ -282,7 +452,7 @@ validate_script (j_compress_ptr cinfo)
|
||||
}
|
||||
|
||||
/* Now verify that everything got sent. */
|
||||
if (cinfo->process == JPROC_PROGRESSIVE) {
|
||||
if (cinfo->progressive_mode) {
|
||||
#ifdef C_PROGRESSIVE_SUPPORTED
|
||||
/* For progressive mode, we only check that at least some DC data
|
||||
* got sent for each component; the spec does not require that all bits
|
||||
@@ -302,7 +472,40 @@ validate_script (j_compress_ptr cinfo)
|
||||
}
|
||||
}
|
||||
|
||||
#endif /* NEED_SCAN_SCRIPT */
|
||||
|
||||
LOCAL(void)
|
||||
reduce_script (j_compress_ptr cinfo)
|
||||
/* Adapt scan script for use with reduced block size;
|
||||
* assume that script has been validated before.
|
||||
*/
|
||||
{
|
||||
jpeg_scan_info * scanptr;
|
||||
int idxout, idxin;
|
||||
|
||||
/* Circumvent const declaration for this function */
|
||||
scanptr = (jpeg_scan_info *) cinfo->scan_info;
|
||||
idxout = 0;
|
||||
|
||||
for (idxin = 0; idxin < cinfo->num_scans; idxin++) {
|
||||
/* After skipping, idxout becomes smaller than idxin */
|
||||
if (idxin != idxout)
|
||||
/* Copy rest of data;
|
||||
* note we stay in given chunk of allocated memory.
|
||||
*/
|
||||
scanptr[idxout] = scanptr[idxin];
|
||||
if (scanptr[idxout].Ss > cinfo->lim_Se)
|
||||
/* Entire scan out of range - skip this entry */
|
||||
continue;
|
||||
if (scanptr[idxout].Se > cinfo->lim_Se)
|
||||
/* Limit scan to end of block */
|
||||
scanptr[idxout].Se = cinfo->lim_Se;
|
||||
idxout++;
|
||||
}
|
||||
|
||||
cinfo->num_scans = idxout;
|
||||
}
|
||||
|
||||
#endif /* C_MULTISCAN_FILES_SUPPORTED */
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
@@ -311,7 +514,7 @@ select_scan_parameters (j_compress_ptr cinfo)
|
||||
{
|
||||
int ci;
|
||||
|
||||
#ifdef NEED_SCAN_SCRIPT
|
||||
#ifdef C_MULTISCAN_FILES_SUPPORTED
|
||||
if (cinfo->scan_info != NULL) {
|
||||
/* Prepare for current scan --- the script is already validated */
|
||||
my_master_ptr master = (my_master_ptr) cinfo->master;
|
||||
@@ -322,11 +525,15 @@ select_scan_parameters (j_compress_ptr cinfo)
|
||||
cinfo->cur_comp_info[ci] =
|
||||
&cinfo->comp_info[scanptr->component_index[ci]];
|
||||
}
|
||||
if (cinfo->progressive_mode) {
|
||||
cinfo->Ss = scanptr->Ss;
|
||||
cinfo->Se = scanptr->Se;
|
||||
cinfo->Ah = scanptr->Ah;
|
||||
cinfo->Al = scanptr->Al;
|
||||
} else
|
||||
return;
|
||||
}
|
||||
}
|
||||
else
|
||||
#endif
|
||||
{
|
||||
/* Prepare for single sequential-JPEG scan containing all components */
|
||||
@@ -337,22 +544,12 @@ select_scan_parameters (j_compress_ptr cinfo)
|
||||
for (ci = 0; ci < cinfo->num_components; ci++) {
|
||||
cinfo->cur_comp_info[ci] = &cinfo->comp_info[ci];
|
||||
}
|
||||
if (cinfo->lossless) {
|
||||
#ifdef C_LOSSLESS_SUPPORTED
|
||||
/* If we fall through to here, the user specified lossless, but did not
|
||||
* provide a scan script.
|
||||
*/
|
||||
ERREXIT(cinfo, JERR_NO_LOSSLESS_SCRIPT);
|
||||
#endif
|
||||
} else {
|
||||
cinfo->process = JPROC_SEQUENTIAL;
|
||||
}
|
||||
cinfo->Ss = 0;
|
||||
cinfo->Se = DCTSIZE2-1;
|
||||
cinfo->Se = cinfo->block_size * cinfo->block_size - 1;
|
||||
cinfo->Ah = 0;
|
||||
cinfo->Al = 0;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
@@ -362,7 +559,6 @@ per_scan_setup (j_compress_ptr cinfo)
|
||||
{
|
||||
int ci, mcublks, tmp;
|
||||
jpeg_component_info *compptr;
|
||||
int data_unit = cinfo->data_unit;
|
||||
|
||||
if (cinfo->comps_in_scan == 1) {
|
||||
|
||||
@@ -370,24 +566,24 @@ per_scan_setup (j_compress_ptr cinfo)
|
||||
compptr = cinfo->cur_comp_info[0];
|
||||
|
||||
/* Overall image size in MCUs */
|
||||
cinfo->MCUs_per_row = compptr->width_in_data_units;
|
||||
cinfo->MCU_rows_in_scan = compptr->height_in_data_units;
|
||||
cinfo->MCUs_per_row = compptr->width_in_blocks;
|
||||
cinfo->MCU_rows_in_scan = compptr->height_in_blocks;
|
||||
|
||||
/* For noninterleaved scan, always one block per MCU */
|
||||
compptr->MCU_width = 1;
|
||||
compptr->MCU_height = 1;
|
||||
compptr->MCU_data_units = 1;
|
||||
compptr->MCU_sample_width = data_unit;
|
||||
compptr->MCU_blocks = 1;
|
||||
compptr->MCU_sample_width = compptr->DCT_h_scaled_size;
|
||||
compptr->last_col_width = 1;
|
||||
/* For noninterleaved scans, it is convenient to define last_row_height
|
||||
* as the number of block rows present in the last iMCU row.
|
||||
*/
|
||||
tmp = (int) (compptr->height_in_data_units % compptr->v_samp_factor);
|
||||
tmp = (int) (compptr->height_in_blocks % compptr->v_samp_factor);
|
||||
if (tmp == 0) tmp = compptr->v_samp_factor;
|
||||
compptr->last_row_height = tmp;
|
||||
|
||||
/* Prepare array describing MCU composition */
|
||||
cinfo->data_units_in_MCU = 1;
|
||||
cinfo->blocks_in_MCU = 1;
|
||||
cinfo->MCU_membership[0] = 0;
|
||||
|
||||
} else {
|
||||
@@ -399,34 +595,34 @@ per_scan_setup (j_compress_ptr cinfo)
|
||||
|
||||
/* Overall image size in MCUs */
|
||||
cinfo->MCUs_per_row = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width,
|
||||
(long) (cinfo->max_h_samp_factor*data_unit));
|
||||
jdiv_round_up((long) cinfo->jpeg_width,
|
||||
(long) (cinfo->max_h_samp_factor * cinfo->block_size));
|
||||
cinfo->MCU_rows_in_scan = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height,
|
||||
(long) (cinfo->max_v_samp_factor*data_unit));
|
||||
jdiv_round_up((long) cinfo->jpeg_height,
|
||||
(long) (cinfo->max_v_samp_factor * cinfo->block_size));
|
||||
|
||||
cinfo->data_units_in_MCU = 0;
|
||||
cinfo->blocks_in_MCU = 0;
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
/* Sampling factors give # of blocks of component in each MCU */
|
||||
compptr->MCU_width = compptr->h_samp_factor;
|
||||
compptr->MCU_height = compptr->v_samp_factor;
|
||||
compptr->MCU_data_units = compptr->MCU_width * compptr->MCU_height;
|
||||
compptr->MCU_sample_width = compptr->MCU_width * data_unit;
|
||||
compptr->MCU_blocks = compptr->MCU_width * compptr->MCU_height;
|
||||
compptr->MCU_sample_width = compptr->MCU_width * compptr->DCT_h_scaled_size;
|
||||
/* Figure number of non-dummy blocks in last MCU column & row */
|
||||
tmp = (int) (compptr->width_in_data_units % compptr->MCU_width);
|
||||
tmp = (int) (compptr->width_in_blocks % compptr->MCU_width);
|
||||
if (tmp == 0) tmp = compptr->MCU_width;
|
||||
compptr->last_col_width = tmp;
|
||||
tmp = (int) (compptr->height_in_data_units % compptr->MCU_height);
|
||||
tmp = (int) (compptr->height_in_blocks % compptr->MCU_height);
|
||||
if (tmp == 0) tmp = compptr->MCU_height;
|
||||
compptr->last_row_height = tmp;
|
||||
/* Prepare array describing MCU composition */
|
||||
mcublks = compptr->MCU_data_units;
|
||||
if (cinfo->data_units_in_MCU + mcublks > C_MAX_DATA_UNITS_IN_MCU)
|
||||
mcublks = compptr->MCU_blocks;
|
||||
if (cinfo->blocks_in_MCU + mcublks > C_MAX_BLOCKS_IN_MCU)
|
||||
ERREXIT(cinfo, JERR_BAD_MCU_SIZE);
|
||||
while (mcublks-- > 0) {
|
||||
cinfo->MCU_membership[cinfo->data_units_in_MCU++] = ci;
|
||||
cinfo->MCU_membership[cinfo->blocks_in_MCU++] = ci;
|
||||
}
|
||||
}
|
||||
|
||||
@@ -452,7 +648,6 @@ per_scan_setup (j_compress_ptr cinfo)
|
||||
METHODDEF(void)
|
||||
prepare_for_pass (j_compress_ptr cinfo)
|
||||
{
|
||||
//j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
my_master_ptr master = (my_master_ptr) cinfo->master;
|
||||
|
||||
switch (master->pass_type) {
|
||||
@@ -467,8 +662,9 @@ prepare_for_pass (j_compress_ptr cinfo)
|
||||
(*cinfo->downsample->start_pass) (cinfo);
|
||||
(*cinfo->prep->start_pass) (cinfo, JBUF_PASS_THRU);
|
||||
}
|
||||
(*cinfo->codec->entropy_start_pass) (cinfo, cinfo->optimize_coding);
|
||||
(*cinfo->codec->start_pass) (cinfo,
|
||||
(*cinfo->fdct->start_pass) (cinfo);
|
||||
(*cinfo->entropy->start_pass) (cinfo, cinfo->optimize_coding);
|
||||
(*cinfo->coef->start_pass) (cinfo,
|
||||
(master->total_passes > 1 ?
|
||||
JBUF_SAVE_AND_PASS : JBUF_PASS_THRU));
|
||||
(*cinfo->main->start_pass) (cinfo, JBUF_PASS_THRU);
|
||||
@@ -485,9 +681,9 @@ prepare_for_pass (j_compress_ptr cinfo)
|
||||
/* Do Huffman optimization for a scan after the first one. */
|
||||
select_scan_parameters(cinfo);
|
||||
per_scan_setup(cinfo);
|
||||
if ((*cinfo->codec->need_optimization_pass) (cinfo) || cinfo->arith_code) {
|
||||
(*cinfo->codec->entropy_start_pass) (cinfo, TRUE);
|
||||
(*cinfo->codec->start_pass) (cinfo, JBUF_CRANK_DEST);
|
||||
if (cinfo->Ss != 0 || cinfo->Ah == 0) {
|
||||
(*cinfo->entropy->start_pass) (cinfo, TRUE);
|
||||
(*cinfo->coef->start_pass) (cinfo, JBUF_CRANK_DEST);
|
||||
master->pub.call_pass_startup = FALSE;
|
||||
break;
|
||||
}
|
||||
@@ -505,8 +701,8 @@ prepare_for_pass (j_compress_ptr cinfo)
|
||||
select_scan_parameters(cinfo);
|
||||
per_scan_setup(cinfo);
|
||||
}
|
||||
(*cinfo->codec->entropy_start_pass) (cinfo, FALSE);
|
||||
(*cinfo->codec->start_pass) (cinfo, JBUF_CRANK_DEST);
|
||||
(*cinfo->entropy->start_pass) (cinfo, FALSE);
|
||||
(*cinfo->coef->start_pass) (cinfo, JBUF_CRANK_DEST);
|
||||
/* We emit frame/scan headers now */
|
||||
if (master->scan_number == 0)
|
||||
(*cinfo->marker->write_frame_header) (cinfo);
|
||||
@@ -554,13 +750,12 @@ pass_startup (j_compress_ptr cinfo)
|
||||
METHODDEF(void)
|
||||
finish_pass_master (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
my_master_ptr master = (my_master_ptr) cinfo->master;
|
||||
|
||||
/* The entropy coder always needs an end-of-pass call,
|
||||
* either to analyze statistics or to flush its output buffer.
|
||||
*/
|
||||
(*lossyc->pub.entropy_finish_pass) (cinfo);
|
||||
(*cinfo->entropy->finish_pass) (cinfo);
|
||||
|
||||
/* Update state for next pass */
|
||||
switch (master->pass_type) {
|
||||
@@ -606,26 +801,26 @@ jinit_c_master_control (j_compress_ptr cinfo, boolean transcode_only)
|
||||
master->pub.finish_pass = finish_pass_master;
|
||||
master->pub.is_last_pass = FALSE;
|
||||
|
||||
cinfo->data_unit = cinfo->lossless ? 1 : DCTSIZE;
|
||||
|
||||
/* Validate parameters, determine derived values */
|
||||
initial_setup(cinfo);
|
||||
initial_setup(cinfo, transcode_only);
|
||||
|
||||
if (cinfo->scan_info != NULL) {
|
||||
#ifdef NEED_SCAN_SCRIPT
|
||||
#ifdef C_MULTISCAN_FILES_SUPPORTED
|
||||
validate_script(cinfo);
|
||||
if (cinfo->block_size < DCTSIZE)
|
||||
reduce_script(cinfo);
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
} else {
|
||||
cinfo->process = JPROC_SEQUENTIAL;
|
||||
cinfo->progressive_mode = FALSE;
|
||||
cinfo->num_scans = 1;
|
||||
}
|
||||
|
||||
if (cinfo->process == JPROC_PROGRESSIVE || /* TEMPORARY HACK ??? */
|
||||
cinfo->process == JPROC_LOSSLESS)
|
||||
cinfo->optimize_coding = TRUE; /* assume default tables no good for
|
||||
* progressive mode or lossless mode */
|
||||
if ((cinfo->progressive_mode || cinfo->block_size < DCTSIZE) &&
|
||||
!cinfo->arith_code) /* TEMPORARY HACK ??? */
|
||||
/* assume default tables no good for progressive or downscale mode */
|
||||
cinfo->optimize_coding = TRUE;
|
||||
|
||||
/* Initialize my private state */
|
||||
if (transcode_only) {
|
||||
|
||||
@@ -1,53 +0,0 @@
|
||||
/*
|
||||
* jcodec.c
|
||||
*
|
||||
* Copyright (C) 1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains utility functions for the JPEG codec(s).
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h"
|
||||
#include "jlossls.h"
|
||||
|
||||
|
||||
/*
|
||||
* Initialize the compression codec.
|
||||
* This is called only once, during master selection.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_c_codec (j_compress_ptr cinfo)
|
||||
{
|
||||
if (cinfo->process == JPROC_LOSSLESS) {
|
||||
#ifdef C_LOSSLESS_SUPPORTED
|
||||
jinit_lossless_c_codec(cinfo);
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
} else
|
||||
jinit_lossy_c_codec(cinfo);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize the decompression codec.
|
||||
* This is called only once, during master selection.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_d_codec (j_decompress_ptr cinfo)
|
||||
{
|
||||
if (cinfo->process == JPROC_LOSSLESS) {
|
||||
#ifdef D_LOSSLESS_SUPPORTED
|
||||
jinit_lossless_d_codec(cinfo);
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
} else
|
||||
jinit_lossy_d_codec(cinfo);
|
||||
}
|
||||
@@ -1,155 +0,0 @@
|
||||
/*
|
||||
* jconfig.doc
|
||||
*
|
||||
* Copyright (C) 1991-1994, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file documents the configuration options that are required to
|
||||
* customize the JPEG software for a particular system.
|
||||
*
|
||||
* The actual configuration options for a particular installation are stored
|
||||
* in jconfig.h. On many machines, jconfig.h can be generated automatically
|
||||
* or copied from one of the "canned" jconfig files that we supply. But if
|
||||
* you need to generate a jconfig.h file by hand, this file tells you how.
|
||||
*
|
||||
* DO NOT EDIT THIS FILE --- IT WON'T ACCOMPLISH ANYTHING.
|
||||
* EDIT A COPY NAMED JCONFIG.H.
|
||||
*/
|
||||
|
||||
|
||||
/*
|
||||
* These symbols indicate the properties of your machine or compiler.
|
||||
* #define the symbol if yes, #undef it if no.
|
||||
*/
|
||||
|
||||
/* Does your compiler support function prototypes?
|
||||
* (If not, you also need to use ansi2knr, see install.doc)
|
||||
*/
|
||||
#define HAVE_PROTOTYPES
|
||||
|
||||
/* Does your compiler support the declaration "unsigned char" ?
|
||||
* How about "unsigned short" ?
|
||||
*/
|
||||
#define HAVE_UNSIGNED_CHAR
|
||||
#define HAVE_UNSIGNED_SHORT
|
||||
|
||||
/* Define "void" as "char" if your compiler doesn't know about type void.
|
||||
* NOTE: be sure to define void such that "void *" represents the most general
|
||||
* pointer type, e.g., that returned by malloc().
|
||||
*/
|
||||
/* #define void char */
|
||||
|
||||
/* Define "const" as empty if your compiler doesn't know the "const" keyword.
|
||||
*/
|
||||
/* #define const */
|
||||
|
||||
/* Define this if an ordinary "char" type is unsigned.
|
||||
* If you're not sure, leaving it undefined will work at some cost in speed.
|
||||
* If you defined HAVE_UNSIGNED_CHAR then the speed difference is minimal.
|
||||
*/
|
||||
#undef CHAR_IS_UNSIGNED
|
||||
|
||||
/* Define this if your system has an ANSI-conforming <stddef.h> file.
|
||||
*/
|
||||
#define HAVE_STDDEF_H
|
||||
|
||||
/* Define this if your system has an ANSI-conforming <stdlib.h> file.
|
||||
*/
|
||||
#define HAVE_STDLIB_H
|
||||
|
||||
/* Define this if your system does not have an ANSI/SysV <string.h>,
|
||||
* but does have a BSD-style <strings.h>.
|
||||
*/
|
||||
#undef NEED_BSD_STRINGS
|
||||
|
||||
/* Define this if your system does not provide typedef size_t in any of the
|
||||
* ANSI-standard places (stddef.h, stdlib.h, or stdio.h), but places it in
|
||||
* <sys/types.h> instead.
|
||||
*/
|
||||
#undef NEED_SYS_TYPES_H
|
||||
|
||||
/* For 80x86 machines, you need to define NEED_FAR_POINTERS,
|
||||
* unless you are using a large-data memory model or 80386 flat-memory mode.
|
||||
* On less brain-damaged CPUs this symbol must not be defined.
|
||||
* (Defining this symbol causes large data structures to be referenced through
|
||||
* "far" pointers and to be allocated with a special version of malloc.)
|
||||
*/
|
||||
#undef NEED_FAR_POINTERS
|
||||
|
||||
/* Define this if your linker needs global names to be unique in less
|
||||
* than the first 15 characters.
|
||||
*/
|
||||
#undef NEED_SHORT_EXTERNAL_NAMES
|
||||
|
||||
/* Although a real ANSI C compiler can deal perfectly well with pointers to
|
||||
* unspecified structures (see "incomplete types" in the spec), a few pre-ANSI
|
||||
* and pseudo-ANSI compilers get confused. To keep one of these bozos happy,
|
||||
* define INCOMPLETE_TYPES_BROKEN. This is not recommended unless you
|
||||
* actually get "missing structure definition" warnings or errors while
|
||||
* compiling the JPEG code.
|
||||
*/
|
||||
#undef INCOMPLETE_TYPES_BROKEN
|
||||
|
||||
|
||||
/*
|
||||
* The following options affect code selection within the JPEG library,
|
||||
* but they don't need to be visible to applications using the library.
|
||||
* To minimize application namespace pollution, the symbols won't be
|
||||
* defined unless JPEG_INTERNALS has been defined.
|
||||
*/
|
||||
|
||||
#ifdef JPEG_INTERNALS
|
||||
|
||||
/* Define this if your compiler implements ">>" on signed values as a logical
|
||||
* (unsigned) shift; leave it undefined if ">>" is a signed (arithmetic) shift,
|
||||
* which is the normal and rational definition.
|
||||
*/
|
||||
#undef RIGHT_SHIFT_IS_UNSIGNED
|
||||
|
||||
|
||||
#endif /* JPEG_INTERNALS */
|
||||
|
||||
|
||||
/*
|
||||
* The remaining options do not affect the JPEG library proper,
|
||||
* but only the sample applications cjpeg/djpeg (see cjpeg.c, djpeg.c).
|
||||
* Other applications can ignore these.
|
||||
*/
|
||||
|
||||
#ifdef JPEG_CJPEG_DJPEG
|
||||
|
||||
/* These defines indicate which image (non-JPEG) file formats are allowed. */
|
||||
|
||||
#define BMP_SUPPORTED /* BMP image file format */
|
||||
#define GIF_SUPPORTED /* GIF image file format */
|
||||
#define PPM_SUPPORTED /* PBMPLUS PPM/PGM image file format */
|
||||
#undef RLE_SUPPORTED /* Utah RLE image file format */
|
||||
#define TARGA_SUPPORTED /* Targa image file format */
|
||||
|
||||
/* Define this if you want to name both input and output files on the command
|
||||
* line, rather than using stdout and optionally stdin. You MUST do this if
|
||||
* your system can't cope with binary I/O to stdin/stdout. See comments at
|
||||
* head of cjpeg.c or djpeg.c.
|
||||
*/
|
||||
#undef TWO_FILE_COMMANDLINE
|
||||
|
||||
/* Define this if your system needs explicit cleanup of temporary files.
|
||||
* This is crucial under MS-DOS, where the temporary "files" may be areas
|
||||
* of extended memory; on most other systems it's not as important.
|
||||
*/
|
||||
#undef NEED_SIGNAL_CATCHER
|
||||
|
||||
/* By default, we open image files with fopen(...,"rb") or fopen(...,"wb").
|
||||
* This is necessary on systems that distinguish text files from binary files,
|
||||
* and is harmless on most systems that don't. If you have one of the rare
|
||||
* systems that complains about the "b" spec, define this symbol.
|
||||
*/
|
||||
#undef DONT_USE_B_MODE
|
||||
|
||||
/* Define this if you want percent-done progress reports from cjpeg/djpeg.
|
||||
*/
|
||||
#undef PROGRESS_REPORT
|
||||
|
||||
|
||||
#endif /* JPEG_CJPEG_DJPEG */
|
||||
+46
-100
@@ -2,6 +2,7 @@
|
||||
* jcparam.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Modified 2003-2008 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -60,15 +61,6 @@ jpeg_add_quant_table (j_compress_ptr cinfo, int which_tbl,
|
||||
}
|
||||
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_set_linear_quality (j_compress_ptr cinfo, int scale_factor,
|
||||
boolean force_baseline)
|
||||
/* Set or change the 'quality' (quantization) setting, using default tables
|
||||
* and a straight percentage-scaling quality scale. In most cases it's better
|
||||
* to use jpeg_set_quality (below); this entry point is provided for
|
||||
* applications that insist on a linear percentage scaling.
|
||||
*/
|
||||
{
|
||||
/* These are the sample quantization tables given in JPEG spec section K.1.
|
||||
* The spec says that the values given produce "good" quality, and
|
||||
* when divided by 2, "very good" quality.
|
||||
@@ -94,6 +86,31 @@ jpeg_set_linear_quality (j_compress_ptr cinfo, int scale_factor,
|
||||
99, 99, 99, 99, 99, 99, 99, 99
|
||||
};
|
||||
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_default_qtables (j_compress_ptr cinfo, boolean force_baseline)
|
||||
/* Set or change the 'quality' (quantization) setting, using default tables
|
||||
* and straight percentage-scaling quality scales.
|
||||
* This entry point allows different scalings for luminance and chrominance.
|
||||
*/
|
||||
{
|
||||
/* Set up two quantization tables using the specified scaling */
|
||||
jpeg_add_quant_table(cinfo, 0, std_luminance_quant_tbl,
|
||||
cinfo->q_scale_factor[0], force_baseline);
|
||||
jpeg_add_quant_table(cinfo, 1, std_chrominance_quant_tbl,
|
||||
cinfo->q_scale_factor[1], force_baseline);
|
||||
}
|
||||
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_set_linear_quality (j_compress_ptr cinfo, int scale_factor,
|
||||
boolean force_baseline)
|
||||
/* Set or change the 'quality' (quantization) setting, using default tables
|
||||
* and a straight percentage-scaling quality scale. In most cases it's better
|
||||
* to use jpeg_set_quality (below); this entry point is provided for
|
||||
* applications that insist on a linear percentage scaling.
|
||||
*/
|
||||
{
|
||||
/* Set up two quantization tables using the specified scaling */
|
||||
jpeg_add_quant_table(cinfo, 0, std_luminance_quant_tbl,
|
||||
scale_factor, force_baseline);
|
||||
@@ -284,7 +301,8 @@ jpeg_set_defaults (j_compress_ptr cinfo)
|
||||
|
||||
/* Initialize everything not dependent on the color space */
|
||||
|
||||
cinfo->lossless = FALSE;
|
||||
cinfo->scale_num = 1; /* 1:1 scaling */
|
||||
cinfo->scale_denom = 1;
|
||||
cinfo->data_precision = BITS_IN_JSAMPLE;
|
||||
/* Set up two quantization tables using default quality of 75 */
|
||||
jpeg_set_quality(cinfo, 75, TRUE);
|
||||
@@ -321,6 +339,9 @@ jpeg_set_defaults (j_compress_ptr cinfo)
|
||||
/* By default, use the simpler non-cosited sampling alignment */
|
||||
cinfo->CCIR601_sampling = FALSE;
|
||||
|
||||
/* By default, apply fancy downsampling */
|
||||
cinfo->do_fancy_downsampling = TRUE;
|
||||
|
||||
/* No input smoothing */
|
||||
cinfo->smoothing_factor = 0;
|
||||
|
||||
@@ -359,9 +380,6 @@ jpeg_set_defaults (j_compress_ptr cinfo)
|
||||
GLOBAL(void)
|
||||
jpeg_default_colorspace (j_compress_ptr cinfo)
|
||||
{
|
||||
if (cinfo->lossless)
|
||||
jpeg_set_colorspace(cinfo, cinfo->in_color_space);
|
||||
else { /* lossy */
|
||||
switch (cinfo->in_color_space) {
|
||||
case JCS_GRAYSCALE:
|
||||
jpeg_set_colorspace(cinfo, JCS_GRAYSCALE);
|
||||
@@ -385,7 +403,6 @@ jpeg_default_colorspace (j_compress_ptr cinfo)
|
||||
ERREXIT(cinfo, JERR_BAD_IN_COLORSPACE);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
@@ -438,16 +455,10 @@ jpeg_set_colorspace (j_compress_ptr cinfo, J_COLOR_SPACE colorspace)
|
||||
cinfo->write_JFIF_header = TRUE; /* Write a JFIF marker */
|
||||
cinfo->num_components = 3;
|
||||
/* JFIF specifies component IDs 1,2,3 */
|
||||
if (cinfo->lossless) {
|
||||
SET_COMP(0, 1, 1,1, 0, 0,0);
|
||||
SET_COMP(1, 2, 1,1, 1, 1,1);
|
||||
SET_COMP(2, 3, 1,1, 1, 1,1);
|
||||
} else { /* lossy */
|
||||
/* We default to 2x2 subsamples of chrominance */
|
||||
SET_COMP(0, 1, 2,2, 0, 0,0);
|
||||
SET_COMP(1, 2, 1,1, 1, 1,1);
|
||||
SET_COMP(2, 3, 1,1, 1, 1,1);
|
||||
}
|
||||
break;
|
||||
case JCS_CMYK:
|
||||
cinfo->write_Adobe_marker = TRUE; /* write Adobe marker to flag CMYK */
|
||||
@@ -460,17 +471,10 @@ jpeg_set_colorspace (j_compress_ptr cinfo, J_COLOR_SPACE colorspace)
|
||||
case JCS_YCCK:
|
||||
cinfo->write_Adobe_marker = TRUE; /* write Adobe marker to flag YCCK */
|
||||
cinfo->num_components = 4;
|
||||
if (cinfo->lossless) {
|
||||
SET_COMP(0, 1, 1,1, 0, 0,0);
|
||||
SET_COMP(1, 2, 1,1, 1, 1,1);
|
||||
SET_COMP(2, 3, 1,1, 1, 1,1);
|
||||
SET_COMP(3, 4, 1,1, 0, 0,0);
|
||||
} else { /* lossy */
|
||||
SET_COMP(0, 1, 2,2, 0, 0,0);
|
||||
SET_COMP(1, 2, 1,1, 1, 1,1);
|
||||
SET_COMP(2, 3, 1,1, 1, 1,1);
|
||||
SET_COMP(3, 4, 2,2, 0, 0,0);
|
||||
}
|
||||
break;
|
||||
case JCS_UNKNOWN:
|
||||
cinfo->num_components = cinfo->input_components;
|
||||
@@ -489,6 +493,21 @@ jpeg_set_colorspace (j_compress_ptr cinfo, J_COLOR_SPACE colorspace)
|
||||
|
||||
#ifdef C_PROGRESSIVE_SUPPORTED
|
||||
|
||||
LOCAL(jpeg_scan_info *)
|
||||
fill_a_scan (jpeg_scan_info * scanptr, int ci,
|
||||
int Ss, int Se, int Ah, int Al)
|
||||
/* Support routine: generate one scan for specified component */
|
||||
{
|
||||
scanptr->comps_in_scan = 1;
|
||||
scanptr->component_index[0] = ci;
|
||||
scanptr->Ss = Ss;
|
||||
scanptr->Se = Se;
|
||||
scanptr->Ah = Ah;
|
||||
scanptr->Al = Al;
|
||||
scanptr++;
|
||||
return scanptr;
|
||||
}
|
||||
|
||||
LOCAL(jpeg_scan_info *)
|
||||
fill_scans (jpeg_scan_info * scanptr, int ncomps,
|
||||
int Ss, int Se, int Ah, int Al)
|
||||
@@ -508,21 +527,6 @@ fill_scans (jpeg_scan_info * scanptr, int ncomps,
|
||||
return scanptr;
|
||||
}
|
||||
|
||||
LOCAL(jpeg_scan_info *)
|
||||
fill_a_scan (jpeg_scan_info * scanptr, int ci,
|
||||
int Ss, int Se, int Ah, int Al)
|
||||
/* Support routine: generate one scan for specified component */
|
||||
{
|
||||
scanptr->comps_in_scan = 1;
|
||||
scanptr->component_index[0] = ci;
|
||||
scanptr->Ss = Ss;
|
||||
scanptr->Se = Se;
|
||||
scanptr->Ah = Ah;
|
||||
scanptr->Al = Al;
|
||||
scanptr++;
|
||||
return scanptr;
|
||||
}
|
||||
|
||||
LOCAL(jpeg_scan_info *)
|
||||
fill_dc_scans (jpeg_scan_info * scanptr, int ncomps, int Ah, int Al)
|
||||
/* Support routine: generate interleaved DC scan if possible, else N scans */
|
||||
@@ -626,61 +630,3 @@ jpeg_simple_progression (j_compress_ptr cinfo)
|
||||
}
|
||||
|
||||
#endif /* C_PROGRESSIVE_SUPPORTED */
|
||||
|
||||
|
||||
#ifdef C_LOSSLESS_SUPPORTED
|
||||
|
||||
/*
|
||||
* Create a single-entry lossless-JPEG script containing all components.
|
||||
* cinfo->num_components must be correct.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_simple_lossless (j_compress_ptr cinfo, int predictor, int point_transform)
|
||||
{
|
||||
int ncomps = cinfo->num_components;
|
||||
int nscans = 1;
|
||||
int ci;
|
||||
jpeg_scan_info * scanptr;
|
||||
|
||||
/* Safety check to ensure start_compress not called yet. */
|
||||
if (cinfo->global_state != CSTATE_START)
|
||||
ERREXIT1(cinfo, JERR_BAD_STATE, cinfo->global_state);
|
||||
|
||||
cinfo->lossless = TRUE;
|
||||
|
||||
/* Set jpeg_color_space. */
|
||||
jpeg_default_colorspace(cinfo);
|
||||
|
||||
/* Check to ensure that all components will fit in one scan. */
|
||||
if (cinfo->num_components > MAX_COMPS_IN_SCAN)
|
||||
ERREXIT2(cinfo, JERR_COMPONENT_COUNT, cinfo->num_components,
|
||||
MAX_COMPS_IN_SCAN);
|
||||
|
||||
/* Allocate space for script.
|
||||
* We need to put it in the permanent pool in case the application performs
|
||||
* multiple compressions without changing the settings. To avoid a memory
|
||||
* leak if jpeg_simple_lossless is called repeatedly for the same JPEG
|
||||
* object, we try to re-use previously allocated space.
|
||||
*/
|
||||
if (cinfo->script_space == NULL || cinfo->script_space_size < nscans) {
|
||||
cinfo->script_space_size = nscans;
|
||||
cinfo->script_space = (jpeg_scan_info *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
|
||||
cinfo->script_space_size * SIZEOF(jpeg_scan_info));
|
||||
}
|
||||
scanptr = cinfo->script_space;
|
||||
cinfo->scan_info = scanptr;
|
||||
cinfo->num_scans = nscans;
|
||||
|
||||
/* Fill the script. */
|
||||
scanptr->comps_in_scan = ncomps;
|
||||
for (ci = 0; ci < ncomps; ci++)
|
||||
scanptr->component_index[ci] = ci;
|
||||
scanptr->Ss = predictor;
|
||||
scanptr->Se = 0;
|
||||
scanptr->Ah = 0;
|
||||
scanptr->Al = point_transform;
|
||||
}
|
||||
|
||||
#endif /* C_LOSSLESS_SUPPORTED */
|
||||
|
||||
@@ -1,848 +0,0 @@
|
||||
/*
|
||||
* jcphuff.c
|
||||
*
|
||||
* Copyright (C) 1995-1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains Huffman entropy encoding routines for progressive JPEG.
|
||||
*
|
||||
* We do not support output suspension in this module, since the library
|
||||
* currently does not allow multiple-scan files to be written with output
|
||||
* suspension.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h" /* Private declarations for lossy codec */
|
||||
#include "jchuff.h" /* Declarations shared with jc*huff.c */
|
||||
|
||||
#ifdef C_PROGRESSIVE_SUPPORTED
|
||||
|
||||
/* Expanded entropy encoder object for progressive Huffman encoding. */
|
||||
|
||||
typedef struct {
|
||||
/* Mode flag: TRUE for optimization, FALSE for actual data output */
|
||||
boolean gather_statistics;
|
||||
|
||||
/* Bit-level coding status.
|
||||
* next_output_byte/free_in_buffer are local copies of cinfo->dest fields.
|
||||
*/
|
||||
JOCTET * next_output_byte; /* => next byte to write in buffer */
|
||||
size_t free_in_buffer; /* # of byte spaces remaining in buffer */
|
||||
INT32 put_buffer; /* current bit-accumulation buffer */
|
||||
int put_bits; /* # of bits now in it */
|
||||
j_compress_ptr cinfo; /* link to cinfo (needed for dump_buffer) */
|
||||
|
||||
/* Coding status for DC components */
|
||||
int last_dc_val[MAX_COMPS_IN_SCAN]; /* last DC coef for each component */
|
||||
|
||||
/* Coding status for AC components */
|
||||
int ac_tbl_no; /* the table number of the single component */
|
||||
unsigned int EOBRUN; /* run length of EOBs */
|
||||
unsigned int BE; /* # of buffered correction bits before MCU */
|
||||
char * bit_buffer; /* buffer for correction bits (1 per char) */
|
||||
/* packing correction bits tightly would save some space but cost time... */
|
||||
|
||||
unsigned int restarts_to_go; /* MCUs left in this restart interval */
|
||||
int next_restart_num; /* next restart number to write (0-7) */
|
||||
|
||||
/* Pointers to derived tables (these workspaces have image lifespan).
|
||||
* Since any one scan codes only DC or only AC, we only need one set
|
||||
* of tables, not one for DC and one for AC.
|
||||
*/
|
||||
c_derived_tbl * derived_tbls[NUM_HUFF_TBLS];
|
||||
|
||||
/* Statistics tables for optimization; again, one set is enough */
|
||||
long * count_ptrs[NUM_HUFF_TBLS];
|
||||
} phuff_entropy_encoder;
|
||||
|
||||
typedef phuff_entropy_encoder * phuff_entropy_ptr;
|
||||
|
||||
/* MAX_CORR_BITS is the number of bits the AC refinement correction-bit
|
||||
* buffer can hold. Larger sizes may slightly improve compression, but
|
||||
* 1000 is already well into the realm of overkill.
|
||||
* The minimum safe size is 64 bits.
|
||||
*/
|
||||
|
||||
#define MAX_CORR_BITS 1000 /* Max # of correction bits I can buffer */
|
||||
|
||||
/* IRIGHT_SHIFT is like RIGHT_SHIFT, but works on int rather than INT32.
|
||||
* We assume that int right shift is unsigned if INT32 right shift is,
|
||||
* which should be safe.
|
||||
*/
|
||||
|
||||
#ifdef RIGHT_SHIFT_IS_UNSIGNED
|
||||
#define ISHIFT_TEMPS int ishift_temp;
|
||||
#define IRIGHT_SHIFT(x,shft) \
|
||||
((ishift_temp = (x)) < 0 ? \
|
||||
(ishift_temp >> (shft)) | ((~0) << (16-(shft))) : \
|
||||
(ishift_temp >> (shft)))
|
||||
#else
|
||||
#define ISHIFT_TEMPS
|
||||
#define IRIGHT_SHIFT(x,shft) ((x) >> (shft))
|
||||
#endif
|
||||
|
||||
/* Forward declarations */
|
||||
METHODDEF(boolean) encode_mcu_DC_first JPP((j_compress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
METHODDEF(boolean) encode_mcu_AC_first JPP((j_compress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
METHODDEF(boolean) encode_mcu_DC_refine JPP((j_compress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
METHODDEF(boolean) encode_mcu_AC_refine JPP((j_compress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
METHODDEF(void) finish_pass_phuff JPP((j_compress_ptr cinfo));
|
||||
METHODDEF(void) finish_pass_gather_phuff JPP((j_compress_ptr cinfo));
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for a Huffman-compressed scan using progressive JPEG.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass_phuff (j_compress_ptr cinfo, boolean gather_statistics)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyc->entropy_private;
|
||||
boolean is_DC_band;
|
||||
int ci, tbl;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
entropy->cinfo = cinfo;
|
||||
entropy->gather_statistics = gather_statistics;
|
||||
|
||||
is_DC_band = (cinfo->Ss == 0);
|
||||
|
||||
/* We assume jcmaster.c already validated the scan parameters. */
|
||||
|
||||
/* Select execution routines */
|
||||
if (cinfo->Ah == 0) {
|
||||
if (is_DC_band)
|
||||
lossyc->entropy_encode_mcu = encode_mcu_DC_first;
|
||||
else
|
||||
lossyc->entropy_encode_mcu = encode_mcu_AC_first;
|
||||
} else {
|
||||
if (is_DC_band)
|
||||
lossyc->entropy_encode_mcu = encode_mcu_DC_refine;
|
||||
else {
|
||||
lossyc->entropy_encode_mcu = encode_mcu_AC_refine;
|
||||
/* AC refinement needs a correction bit buffer */
|
||||
if (entropy->bit_buffer == NULL)
|
||||
entropy->bit_buffer = (char *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
MAX_CORR_BITS * SIZEOF(char));
|
||||
}
|
||||
}
|
||||
if (gather_statistics)
|
||||
lossyc->pub.entropy_finish_pass = finish_pass_gather_phuff;
|
||||
else
|
||||
lossyc->pub.entropy_finish_pass = finish_pass_phuff;
|
||||
|
||||
/* Only DC coefficients may be interleaved, so cinfo->comps_in_scan = 1
|
||||
* for AC coefficients.
|
||||
*/
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
/* Initialize DC predictions to 0 */
|
||||
entropy->last_dc_val[ci] = 0;
|
||||
/* Get table index */
|
||||
if (is_DC_band) {
|
||||
if (cinfo->Ah != 0) /* DC refinement needs no table */
|
||||
continue;
|
||||
tbl = compptr->dc_tbl_no;
|
||||
} else {
|
||||
entropy->ac_tbl_no = tbl = compptr->ac_tbl_no;
|
||||
}
|
||||
if (gather_statistics) {
|
||||
/* Check for invalid table index */
|
||||
/* (make_c_derived_tbl does this in the other path) */
|
||||
if (tbl < 0 || tbl >= NUM_HUFF_TBLS)
|
||||
ERREXIT1(cinfo, JERR_NO_HUFF_TABLE, tbl);
|
||||
/* Allocate and zero the statistics tables */
|
||||
/* Note that jpeg_gen_optimal_table expects 257 entries in each table! */
|
||||
if (entropy->count_ptrs[tbl] == NULL)
|
||||
entropy->count_ptrs[tbl] = (long *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
257 * SIZEOF(long));
|
||||
MEMZERO(entropy->count_ptrs[tbl], 257 * SIZEOF(long));
|
||||
} else {
|
||||
/* Compute derived values for Huffman table */
|
||||
/* We may do this more than once for a table, but it's not expensive */
|
||||
jpeg_make_c_derived_tbl(cinfo, is_DC_band, tbl,
|
||||
& entropy->derived_tbls[tbl]);
|
||||
}
|
||||
}
|
||||
|
||||
/* Initialize AC stuff */
|
||||
entropy->EOBRUN = 0;
|
||||
entropy->BE = 0;
|
||||
|
||||
/* Initialize bit buffer to empty */
|
||||
entropy->put_buffer = 0;
|
||||
entropy->put_bits = 0;
|
||||
|
||||
/* Initialize restart stuff */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num = 0;
|
||||
}
|
||||
|
||||
|
||||
/* Outputting bytes to the file.
|
||||
* NB: these must be called only when actually outputting,
|
||||
* that is, entropy->gather_statistics == FALSE.
|
||||
*/
|
||||
|
||||
/* Emit a byte */
|
||||
#define emit_byte(entropy,val) \
|
||||
{ *(entropy)->next_output_byte++ = (JOCTET) (val); \
|
||||
if (--(entropy)->free_in_buffer == 0) \
|
||||
dump_buffer(entropy); }
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
dump_buffer (phuff_entropy_ptr entropy)
|
||||
/* Empty the output buffer; we do not support suspension in this module. */
|
||||
{
|
||||
struct jpeg_destination_mgr * dest = entropy->cinfo->dest;
|
||||
|
||||
if (! (*dest->empty_output_buffer) (entropy->cinfo))
|
||||
ERREXIT(entropy->cinfo, JERR_CANT_SUSPEND);
|
||||
/* After a successful buffer dump, must reset buffer pointers */
|
||||
entropy->next_output_byte = dest->next_output_byte;
|
||||
entropy->free_in_buffer = dest->free_in_buffer;
|
||||
}
|
||||
|
||||
|
||||
/* Outputting bits to the file */
|
||||
|
||||
/* Only the right 24 bits of put_buffer are used; the valid bits are
|
||||
* left-justified in this part. At most 16 bits can be passed to emit_bits
|
||||
* in one call, and we never retain more than 7 bits in put_buffer
|
||||
* between calls, so 24 bits are sufficient.
|
||||
*/
|
||||
|
||||
INLINE
|
||||
LOCAL(void)
|
||||
emit_bits (phuff_entropy_ptr entropy, unsigned int code, int size)
|
||||
/* Emit some bits, unless we are in gather mode */
|
||||
{
|
||||
/* This routine is heavily used, so it's worth coding tightly. */
|
||||
register INT32 put_buffer = (INT32) code;
|
||||
register int put_bits = entropy->put_bits;
|
||||
|
||||
/* if size is 0, caller used an invalid Huffman table entry */
|
||||
if (size == 0)
|
||||
ERREXIT(entropy->cinfo, JERR_HUFF_MISSING_CODE);
|
||||
|
||||
if (entropy->gather_statistics)
|
||||
return; /* do nothing if we're only getting stats */
|
||||
|
||||
put_buffer &= (((INT32) 1)<<size) - 1; /* mask off any extra bits in code */
|
||||
|
||||
put_bits += size; /* new number of bits in buffer */
|
||||
|
||||
put_buffer <<= 24 - put_bits; /* align incoming bits */
|
||||
|
||||
put_buffer |= entropy->put_buffer; /* and merge with old buffer contents */
|
||||
|
||||
while (put_bits >= 8) {
|
||||
int c = (int) ((put_buffer >> 16) & 0xFF);
|
||||
|
||||
emit_byte(entropy, c);
|
||||
if (c == 0xFF) { /* need to stuff a zero byte? */
|
||||
emit_byte(entropy, 0);
|
||||
}
|
||||
put_buffer <<= 8;
|
||||
put_bits -= 8;
|
||||
}
|
||||
|
||||
entropy->put_buffer = put_buffer; /* update variables */
|
||||
entropy->put_bits = put_bits;
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
flush_bits (phuff_entropy_ptr entropy)
|
||||
{
|
||||
emit_bits(entropy, 0x7F, 7); /* fill any partial byte with ones */
|
||||
entropy->put_buffer = 0; /* and reset bit-buffer to empty */
|
||||
entropy->put_bits = 0;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Emit (or just count) a Huffman symbol.
|
||||
*/
|
||||
|
||||
INLINE
|
||||
LOCAL(void)
|
||||
emit_symbol (phuff_entropy_ptr entropy, int tbl_no, int symbol)
|
||||
{
|
||||
if (entropy->gather_statistics)
|
||||
entropy->count_ptrs[tbl_no][symbol]++;
|
||||
else {
|
||||
c_derived_tbl * tbl = entropy->derived_tbls[tbl_no];
|
||||
emit_bits(entropy, tbl->ehufco[symbol], tbl->ehufsi[symbol]);
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Emit bits from a correction bit buffer.
|
||||
*/
|
||||
|
||||
LOCAL(void)
|
||||
emit_buffered_bits (phuff_entropy_ptr entropy, char * bufstart,
|
||||
unsigned int nbits)
|
||||
{
|
||||
if (entropy->gather_statistics)
|
||||
return; /* no real work */
|
||||
|
||||
while (nbits > 0) {
|
||||
emit_bits(entropy, (unsigned int) (*bufstart), 1);
|
||||
bufstart++;
|
||||
nbits--;
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Emit any pending EOBRUN symbol.
|
||||
*/
|
||||
|
||||
LOCAL(void)
|
||||
emit_eobrun (phuff_entropy_ptr entropy)
|
||||
{
|
||||
register int temp, nbits;
|
||||
|
||||
if (entropy->EOBRUN > 0) { /* if there is any pending EOBRUN */
|
||||
temp = entropy->EOBRUN;
|
||||
nbits = 0;
|
||||
while ((temp >>= 1))
|
||||
nbits++;
|
||||
/* safety check: shouldn't happen given limited correction-bit buffer */
|
||||
if (nbits > 14)
|
||||
ERREXIT(entropy->cinfo, JERR_HUFF_MISSING_CODE);
|
||||
|
||||
emit_symbol(entropy, entropy->ac_tbl_no, nbits << 4);
|
||||
if (nbits)
|
||||
emit_bits(entropy, entropy->EOBRUN, nbits);
|
||||
|
||||
entropy->EOBRUN = 0;
|
||||
|
||||
/* Emit any buffered correction bits */
|
||||
emit_buffered_bits(entropy, entropy->bit_buffer, entropy->BE);
|
||||
entropy->BE = 0;
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Emit a restart marker & resynchronize predictions.
|
||||
*/
|
||||
|
||||
LOCAL(void)
|
||||
emit_restart (phuff_entropy_ptr entropy, int restart_num)
|
||||
{
|
||||
int ci;
|
||||
|
||||
emit_eobrun(entropy);
|
||||
|
||||
if (! entropy->gather_statistics) {
|
||||
flush_bits(entropy);
|
||||
emit_byte(entropy, 0xFF);
|
||||
emit_byte(entropy, JPEG_RST0 + restart_num);
|
||||
}
|
||||
|
||||
if (entropy->cinfo->Ss == 0) {
|
||||
/* Re-initialize DC predictions to 0 */
|
||||
for (ci = 0; ci < entropy->cinfo->comps_in_scan; ci++)
|
||||
entropy->last_dc_val[ci] = 0;
|
||||
} else {
|
||||
/* Re-initialize all AC-related fields to 0 */
|
||||
entropy->EOBRUN = 0;
|
||||
entropy->BE = 0;
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU encoding for DC initial scan (either spectral selection,
|
||||
* or first pass of successive approximation).
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
encode_mcu_DC_first (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyc->entropy_private;
|
||||
register int temp, temp2;
|
||||
register int nbits;
|
||||
int blkn, ci;
|
||||
int Al = cinfo->Al;
|
||||
JBLOCKROW block;
|
||||
jpeg_component_info * compptr;
|
||||
ISHIFT_TEMPS
|
||||
|
||||
entropy->next_output_byte = cinfo->dest->next_output_byte;
|
||||
entropy->free_in_buffer = cinfo->dest->free_in_buffer;
|
||||
|
||||
/* Emit restart marker if needed */
|
||||
if (cinfo->restart_interval)
|
||||
if (entropy->restarts_to_go == 0)
|
||||
emit_restart(entropy, entropy->next_restart_num);
|
||||
|
||||
/* Encode the MCU data blocks */
|
||||
for (blkn = 0; blkn < cinfo->data_units_in_MCU; blkn++) {
|
||||
block = MCU_data[blkn];
|
||||
ci = cinfo->MCU_membership[blkn];
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
|
||||
/* Compute the DC value after the required point transform by Al.
|
||||
* This is simply an arithmetic right shift.
|
||||
*/
|
||||
temp2 = IRIGHT_SHIFT((int) ((*block)[0]), Al);
|
||||
|
||||
/* DC differences are figured on the point-transformed values. */
|
||||
temp = temp2 - entropy->last_dc_val[ci];
|
||||
entropy->last_dc_val[ci] = temp2;
|
||||
|
||||
/* Encode the DC coefficient difference per section G.1.2.1 */
|
||||
temp2 = temp;
|
||||
if (temp < 0) {
|
||||
temp = -temp; /* temp is abs value of input */
|
||||
/* For a negative input, want temp2 = bitwise complement of abs(input) */
|
||||
/* This code assumes we are on a two's complement machine */
|
||||
temp2--;
|
||||
}
|
||||
|
||||
/* Find the number of bits needed for the magnitude of the coefficient */
|
||||
nbits = 0;
|
||||
while (temp) {
|
||||
nbits++;
|
||||
temp >>= 1;
|
||||
}
|
||||
/* Check for out-of-range coefficient values.
|
||||
* Since we're encoding a difference, the range limit is twice as much.
|
||||
*/
|
||||
if (nbits > MAX_COEF_BITS+1)
|
||||
ERREXIT(cinfo, JERR_BAD_DCT_COEF);
|
||||
|
||||
/* Count/emit the Huffman-coded symbol for the number of bits */
|
||||
emit_symbol(entropy, compptr->dc_tbl_no, nbits);
|
||||
|
||||
/* Emit that number of bits of the value, if positive, */
|
||||
/* or the complement of its magnitude, if negative. */
|
||||
if (nbits) /* emit_bits rejects calls with size 0 */
|
||||
emit_bits(entropy, (unsigned int) temp2, nbits);
|
||||
}
|
||||
|
||||
cinfo->dest->next_output_byte = entropy->next_output_byte;
|
||||
cinfo->dest->free_in_buffer = entropy->free_in_buffer;
|
||||
|
||||
/* Update restart-interval state too */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num++;
|
||||
entropy->next_restart_num &= 7;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU encoding for AC initial scan (either spectral selection,
|
||||
* or first pass of successive approximation).
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
encode_mcu_AC_first (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyc->entropy_private;
|
||||
register int temp, temp2;
|
||||
register int nbits;
|
||||
register int r, k;
|
||||
int Se = cinfo->Se;
|
||||
int Al = cinfo->Al;
|
||||
JBLOCKROW block;
|
||||
|
||||
entropy->next_output_byte = cinfo->dest->next_output_byte;
|
||||
entropy->free_in_buffer = cinfo->dest->free_in_buffer;
|
||||
|
||||
/* Emit restart marker if needed */
|
||||
if (cinfo->restart_interval)
|
||||
if (entropy->restarts_to_go == 0)
|
||||
emit_restart(entropy, entropy->next_restart_num);
|
||||
|
||||
/* Encode the MCU data block */
|
||||
block = MCU_data[0];
|
||||
|
||||
/* Encode the AC coefficients per section G.1.2.2, fig. G.3 */
|
||||
|
||||
r = 0; /* r = run length of zeros */
|
||||
|
||||
for (k = cinfo->Ss; k <= Se; k++) {
|
||||
if ((temp = (*block)[jpeg_natural_order[k]]) == 0) {
|
||||
r++;
|
||||
continue;
|
||||
}
|
||||
/* We must apply the point transform by Al. For AC coefficients this
|
||||
* is an integer division with rounding towards 0. To do this portably
|
||||
* in C, we shift after obtaining the absolute value; so the code is
|
||||
* interwoven with finding the abs value (temp) and output bits (temp2).
|
||||
*/
|
||||
if (temp < 0) {
|
||||
temp = -temp; /* temp is abs value of input */
|
||||
temp >>= Al; /* apply the point transform */
|
||||
/* For a negative coef, want temp2 = bitwise complement of abs(coef) */
|
||||
temp2 = ~temp;
|
||||
} else {
|
||||
temp >>= Al; /* apply the point transform */
|
||||
temp2 = temp;
|
||||
}
|
||||
/* Watch out for case that nonzero coef is zero after point transform */
|
||||
if (temp == 0) {
|
||||
r++;
|
||||
continue;
|
||||
}
|
||||
|
||||
/* Emit any pending EOBRUN */
|
||||
if (entropy->EOBRUN > 0)
|
||||
emit_eobrun(entropy);
|
||||
/* if run length > 15, must emit special run-length-16 codes (0xF0) */
|
||||
while (r > 15) {
|
||||
emit_symbol(entropy, entropy->ac_tbl_no, 0xF0);
|
||||
r -= 16;
|
||||
}
|
||||
|
||||
/* Find the number of bits needed for the magnitude of the coefficient */
|
||||
nbits = 1; /* there must be at least one 1 bit */
|
||||
while ((temp >>= 1))
|
||||
nbits++;
|
||||
/* Check for out-of-range coefficient values */
|
||||
if (nbits > MAX_COEF_BITS)
|
||||
ERREXIT(cinfo, JERR_BAD_DCT_COEF);
|
||||
|
||||
/* Count/emit Huffman symbol for run length / number of bits */
|
||||
emit_symbol(entropy, entropy->ac_tbl_no, (r << 4) + nbits);
|
||||
|
||||
/* Emit that number of bits of the value, if positive, */
|
||||
/* or the complement of its magnitude, if negative. */
|
||||
emit_bits(entropy, (unsigned int) temp2, nbits);
|
||||
|
||||
r = 0; /* reset zero run length */
|
||||
}
|
||||
|
||||
if (r > 0) { /* If there are trailing zeroes, */
|
||||
entropy->EOBRUN++; /* count an EOB */
|
||||
if (entropy->EOBRUN == 0x7FFF)
|
||||
emit_eobrun(entropy); /* force it out to avoid overflow */
|
||||
}
|
||||
|
||||
cinfo->dest->next_output_byte = entropy->next_output_byte;
|
||||
cinfo->dest->free_in_buffer = entropy->free_in_buffer;
|
||||
|
||||
/* Update restart-interval state too */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num++;
|
||||
entropy->next_restart_num &= 7;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU encoding for DC successive approximation refinement scan.
|
||||
* Note: we assume such scans can be multi-component, although the spec
|
||||
* is not very clear on the point.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
encode_mcu_DC_refine (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyc->entropy_private;
|
||||
register int temp;
|
||||
int blkn;
|
||||
int Al = cinfo->Al;
|
||||
JBLOCKROW block;
|
||||
|
||||
entropy->next_output_byte = cinfo->dest->next_output_byte;
|
||||
entropy->free_in_buffer = cinfo->dest->free_in_buffer;
|
||||
|
||||
/* Emit restart marker if needed */
|
||||
if (cinfo->restart_interval)
|
||||
if (entropy->restarts_to_go == 0)
|
||||
emit_restart(entropy, entropy->next_restart_num);
|
||||
|
||||
/* Encode the MCU data blocks */
|
||||
for (blkn = 0; blkn < cinfo->data_units_in_MCU; blkn++) {
|
||||
block = MCU_data[blkn];
|
||||
|
||||
/* We simply emit the Al'th bit of the DC coefficient value. */
|
||||
temp = (*block)[0];
|
||||
emit_bits(entropy, (unsigned int) (temp >> Al), 1);
|
||||
}
|
||||
|
||||
cinfo->dest->next_output_byte = entropy->next_output_byte;
|
||||
cinfo->dest->free_in_buffer = entropy->free_in_buffer;
|
||||
|
||||
/* Update restart-interval state too */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num++;
|
||||
entropy->next_restart_num &= 7;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU encoding for AC successive approximation refinement scan.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
encode_mcu_AC_refine (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyc->entropy_private;
|
||||
register int temp;
|
||||
register int r, k;
|
||||
int EOB;
|
||||
char *BR_buffer;
|
||||
unsigned int BR;
|
||||
int Se = cinfo->Se;
|
||||
int Al = cinfo->Al;
|
||||
JBLOCKROW block;
|
||||
int absvalues[DCTSIZE2];
|
||||
|
||||
entropy->next_output_byte = cinfo->dest->next_output_byte;
|
||||
entropy->free_in_buffer = cinfo->dest->free_in_buffer;
|
||||
|
||||
/* Emit restart marker if needed */
|
||||
if (cinfo->restart_interval)
|
||||
if (entropy->restarts_to_go == 0)
|
||||
emit_restart(entropy, entropy->next_restart_num);
|
||||
|
||||
/* Encode the MCU data block */
|
||||
block = MCU_data[0];
|
||||
|
||||
/* It is convenient to make a pre-pass to determine the transformed
|
||||
* coefficients' absolute values and the EOB position.
|
||||
*/
|
||||
EOB = 0;
|
||||
for (k = cinfo->Ss; k <= Se; k++) {
|
||||
temp = (*block)[jpeg_natural_order[k]];
|
||||
/* We must apply the point transform by Al. For AC coefficients this
|
||||
* is an integer division with rounding towards 0. To do this portably
|
||||
* in C, we shift after obtaining the absolute value.
|
||||
*/
|
||||
if (temp < 0)
|
||||
temp = -temp; /* temp is abs value of input */
|
||||
temp >>= Al; /* apply the point transform */
|
||||
absvalues[k] = temp; /* save abs value for main pass */
|
||||
if (temp == 1)
|
||||
EOB = k; /* EOB = index of last newly-nonzero coef */
|
||||
}
|
||||
|
||||
/* Encode the AC coefficients per section G.1.2.3, fig. G.7 */
|
||||
|
||||
r = 0; /* r = run length of zeros */
|
||||
BR = 0; /* BR = count of buffered bits added now */
|
||||
BR_buffer = entropy->bit_buffer + entropy->BE; /* Append bits to buffer */
|
||||
|
||||
for (k = cinfo->Ss; k <= Se; k++) {
|
||||
if ((temp = absvalues[k]) == 0) {
|
||||
r++;
|
||||
continue;
|
||||
}
|
||||
|
||||
/* Emit any required ZRLs, but not if they can be folded into EOB */
|
||||
while (r > 15 && k <= EOB) {
|
||||
/* emit any pending EOBRUN and the BE correction bits */
|
||||
emit_eobrun(entropy);
|
||||
/* Emit ZRL */
|
||||
emit_symbol(entropy, entropy->ac_tbl_no, 0xF0);
|
||||
r -= 16;
|
||||
/* Emit buffered correction bits that must be associated with ZRL */
|
||||
emit_buffered_bits(entropy, BR_buffer, BR);
|
||||
BR_buffer = entropy->bit_buffer; /* BE bits are gone now */
|
||||
BR = 0;
|
||||
}
|
||||
|
||||
/* If the coef was previously nonzero, it only needs a correction bit.
|
||||
* NOTE: a straight translation of the spec's figure G.7 would suggest
|
||||
* that we also need to test r > 15. But if r > 15, we can only get here
|
||||
* if k > EOB, which implies that this coefficient is not 1.
|
||||
*/
|
||||
if (temp > 1) {
|
||||
/* The correction bit is the next bit of the absolute value. */
|
||||
BR_buffer[BR++] = (char) (temp & 1);
|
||||
continue;
|
||||
}
|
||||
|
||||
/* Emit any pending EOBRUN and the BE correction bits */
|
||||
emit_eobrun(entropy);
|
||||
|
||||
/* Count/emit Huffman symbol for run length / number of bits */
|
||||
emit_symbol(entropy, entropy->ac_tbl_no, (r << 4) + 1);
|
||||
|
||||
/* Emit output bit for newly-nonzero coef */
|
||||
temp = ((*block)[jpeg_natural_order[k]] < 0) ? 0 : 1;
|
||||
emit_bits(entropy, (unsigned int) temp, 1);
|
||||
|
||||
/* Emit buffered correction bits that must be associated with this code */
|
||||
emit_buffered_bits(entropy, BR_buffer, BR);
|
||||
BR_buffer = entropy->bit_buffer; /* BE bits are gone now */
|
||||
BR = 0;
|
||||
r = 0; /* reset zero run length */
|
||||
}
|
||||
|
||||
if (r > 0 || BR > 0) { /* If there are trailing zeroes, */
|
||||
entropy->EOBRUN++; /* count an EOB */
|
||||
entropy->BE += BR; /* concat my correction bits to older ones */
|
||||
/* We force out the EOB if we risk either:
|
||||
* 1. overflow of the EOB counter;
|
||||
* 2. overflow of the correction bit buffer during the next MCU.
|
||||
*/
|
||||
if (entropy->EOBRUN == 0x7FFF || entropy->BE > (MAX_CORR_BITS-DCTSIZE2+1))
|
||||
emit_eobrun(entropy);
|
||||
}
|
||||
|
||||
cinfo->dest->next_output_byte = entropy->next_output_byte;
|
||||
cinfo->dest->free_in_buffer = entropy->free_in_buffer;
|
||||
|
||||
/* Update restart-interval state too */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num++;
|
||||
entropy->next_restart_num &= 7;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Finish up at the end of a Huffman-compressed progressive scan.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
finish_pass_phuff (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyc->entropy_private;
|
||||
|
||||
entropy->next_output_byte = cinfo->dest->next_output_byte;
|
||||
entropy->free_in_buffer = cinfo->dest->free_in_buffer;
|
||||
|
||||
/* Flush out any buffered data */
|
||||
emit_eobrun(entropy);
|
||||
flush_bits(entropy);
|
||||
|
||||
cinfo->dest->next_output_byte = entropy->next_output_byte;
|
||||
cinfo->dest->free_in_buffer = entropy->free_in_buffer;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Finish up a statistics-gathering pass and create the new Huffman tables.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
finish_pass_gather_phuff (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyc->entropy_private;
|
||||
boolean is_DC_band;
|
||||
int ci, tbl;
|
||||
jpeg_component_info * compptr;
|
||||
JHUFF_TBL **htblptr;
|
||||
boolean did[NUM_HUFF_TBLS];
|
||||
|
||||
/* Flush out buffered data (all we care about is counting the EOB symbol) */
|
||||
emit_eobrun(entropy);
|
||||
|
||||
is_DC_band = (cinfo->Ss == 0);
|
||||
|
||||
/* It's important not to apply jpeg_gen_optimal_table more than once
|
||||
* per table, because it clobbers the input frequency counts!
|
||||
*/
|
||||
MEMZERO(did, SIZEOF(did));
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
if (is_DC_band) {
|
||||
if (cinfo->Ah != 0) /* DC refinement needs no table */
|
||||
continue;
|
||||
tbl = compptr->dc_tbl_no;
|
||||
} else {
|
||||
tbl = compptr->ac_tbl_no;
|
||||
}
|
||||
if (! did[tbl]) {
|
||||
if (is_DC_band)
|
||||
htblptr = & cinfo->dc_huff_tbl_ptrs[tbl];
|
||||
else
|
||||
htblptr = & cinfo->ac_huff_tbl_ptrs[tbl];
|
||||
if (*htblptr == NULL)
|
||||
*htblptr = jpeg_alloc_huff_table((j_common_ptr) cinfo);
|
||||
jpeg_gen_optimal_table(cinfo, *htblptr, entropy->count_ptrs[tbl]);
|
||||
did[tbl] = TRUE;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
METHODDEF(boolean)
|
||||
need_optimization_pass (j_compress_ptr cinfo)
|
||||
{
|
||||
return (cinfo->Ss != 0 || cinfo->Ah == 0);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Module initialization routine for progressive Huffman entropy encoding.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_phuff_encoder (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy;
|
||||
int i;
|
||||
|
||||
entropy = (phuff_entropy_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(phuff_entropy_encoder));
|
||||
lossyc->entropy_private = (struct jpeg_entropy_encoder *) entropy;
|
||||
lossyc->pub.entropy_start_pass = start_pass_phuff;
|
||||
lossyc->pub.need_optimization_pass = need_optimization_pass;
|
||||
|
||||
/* Mark tables unallocated */
|
||||
for (i = 0; i < NUM_HUFF_TBLS; i++) {
|
||||
entropy->derived_tbls[i] = NULL;
|
||||
entropy->count_ptrs[i] = NULL;
|
||||
}
|
||||
entropy->bit_buffer = NULL; /* needed only in AC refinement scan */
|
||||
}
|
||||
|
||||
#endif /* C_PROGRESSIVE_SUPPORTED */
|
||||
@@ -1,296 +0,0 @@
|
||||
/*
|
||||
* jcpred.c
|
||||
*
|
||||
* Copyright (C) 1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains sample differencing for lossless JPEG.
|
||||
*
|
||||
* In order to avoid paying the performance penalty of having to check the
|
||||
* predictor being used and the row being processed for each call of the
|
||||
* undifferencer, and to promote optimization, we have separate differencing
|
||||
* functions for each case.
|
||||
*
|
||||
* We are able to avoid duplicating source code by implementing the predictors
|
||||
* and differencers as macros. Each of the differencing functions are
|
||||
* simply wrappers around a DIFFERENCE macro with the appropriate PREDICTOR
|
||||
* macro passed as an argument.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossls.h" /* Private declarations for lossless codec */
|
||||
|
||||
|
||||
#ifdef C_LOSSLESS_SUPPORTED
|
||||
|
||||
/* Private predictor object */
|
||||
|
||||
typedef struct {
|
||||
/* MCU-rows left in the restart interval for each component */
|
||||
unsigned int restart_rows_to_go[MAX_COMPONENTS];
|
||||
} c_predictor;
|
||||
|
||||
typedef c_predictor * c_pred_ptr;
|
||||
|
||||
/* Forward declarations */
|
||||
LOCAL(void) reset_predictor
|
||||
JPP((j_compress_ptr cinfo, int ci));
|
||||
METHODDEF(void) start_pass
|
||||
JPP((j_compress_ptr cinfo));
|
||||
|
||||
|
||||
/* Predictor for the first column of the first row: 2^(P-Pt-1) */
|
||||
#define INITIAL_PREDICTORx (1 << (cinfo->data_precision - cinfo->Al - 1))
|
||||
|
||||
/* Predictor for the first column of the remaining rows: Rb */
|
||||
#define INITIAL_PREDICTOR2 GETJSAMPLE(prev_row[0])
|
||||
|
||||
|
||||
/*
|
||||
* 1-Dimensional differencer routine.
|
||||
*
|
||||
* This macro implements the 1-D horizontal predictor (1). INITIAL_PREDICTOR
|
||||
* is used as the special case predictor for the first column, which must be
|
||||
* either INITIAL_PREDICTOR2 or INITIAL_PREDICTORx. The remaining samples
|
||||
* use PREDICTOR1.
|
||||
*/
|
||||
|
||||
#define DIFFERENCE_1D(INITIAL_PREDICTOR) \
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec; \
|
||||
c_pred_ptr pred = (c_pred_ptr) losslsc->pred_private; \
|
||||
boolean restart = FALSE; \
|
||||
uint xindex; \
|
||||
int samp, Ra; \
|
||||
\
|
||||
samp = GETJSAMPLE(input_buf[0]); \
|
||||
diff_buf[0] = samp - INITIAL_PREDICTOR; \
|
||||
\
|
||||
for (xindex = 1; xindex < width; xindex++) { \
|
||||
Ra = samp; \
|
||||
samp = GETJSAMPLE(input_buf[xindex]); \
|
||||
diff_buf[xindex] = samp - PREDICTOR1; \
|
||||
} \
|
||||
\
|
||||
/* Account for restart interval (no-op if not using restarts) */ \
|
||||
if (cinfo->restart_interval) { \
|
||||
if (--(pred->restart_rows_to_go[ci]) == 0) { \
|
||||
reset_predictor(cinfo, ci); \
|
||||
restart = TRUE; \
|
||||
} \
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* 2-Dimensional differencer routine.
|
||||
*
|
||||
* This macro implements the 2-D horizontal predictors (#2-7). PREDICTOR2 is
|
||||
* used as the special case predictor for the first column. The remaining
|
||||
* samples use PREDICTOR, which is a function of Ra, Rb, Rc.
|
||||
*
|
||||
* Because prev_row and output_buf may point to the same storage area (in an
|
||||
* interleaved image with Vi=1, for example), we must take care to buffer Rb/Rc
|
||||
* before writing the current reconstructed sample value into output_buf.
|
||||
*/
|
||||
|
||||
#define DIFFERENCE_2D(PREDICTOR) \
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec; \
|
||||
c_pred_ptr pred = (c_pred_ptr) losslsc->pred_private; \
|
||||
uint xindex; \
|
||||
int samp, Ra, Rb, Rc; \
|
||||
\
|
||||
Rb = GETJSAMPLE(prev_row[0]); \
|
||||
samp = GETJSAMPLE(input_buf[0]); \
|
||||
diff_buf[0] = samp - PREDICTOR2; \
|
||||
\
|
||||
for (xindex = 1; xindex < width; xindex++) { \
|
||||
Rc = Rb; \
|
||||
Rb = GETJSAMPLE(prev_row[xindex]); \
|
||||
Ra = samp; \
|
||||
samp = GETJSAMPLE(input_buf[xindex]); \
|
||||
diff_buf[xindex] = samp - PREDICTOR; \
|
||||
} \
|
||||
\
|
||||
/* Account for restart interval (no-op if not using restarts) */ \
|
||||
if (cinfo->restart_interval) { \
|
||||
if (--pred->restart_rows_to_go[ci] == 0) \
|
||||
reset_predictor(cinfo, ci); \
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Differencers for the all rows but the first in a scan or restart interval.
|
||||
* The first sample in the row is differenced using the vertical
|
||||
* predictor (2). The rest of the samples are differenced using the
|
||||
* predictor specified in the scan header.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_difference1(j_compress_ptr cinfo, int ci,
|
||||
JSAMPROW input_buf, JSAMPROW prev_row,
|
||||
JDIFFROW diff_buf, JDIMENSION width)
|
||||
{
|
||||
DIFFERENCE_1D(INITIAL_PREDICTOR2);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_difference2(j_compress_ptr cinfo, int ci,
|
||||
JSAMPROW input_buf, JSAMPROW prev_row,
|
||||
JDIFFROW diff_buf, JDIMENSION width)
|
||||
{
|
||||
DIFFERENCE_2D(PREDICTOR2);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_difference3(j_compress_ptr cinfo, int ci,
|
||||
JSAMPROW input_buf, JSAMPROW prev_row,
|
||||
JDIFFROW diff_buf, JDIMENSION width)
|
||||
{
|
||||
DIFFERENCE_2D(PREDICTOR3);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_difference4(j_compress_ptr cinfo, int ci,
|
||||
JSAMPROW input_buf, JSAMPROW prev_row,
|
||||
JDIFFROW diff_buf, JDIMENSION width)
|
||||
{
|
||||
DIFFERENCE_2D(PREDICTOR4);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_difference5(j_compress_ptr cinfo, int ci,
|
||||
JSAMPROW input_buf, JSAMPROW prev_row,
|
||||
JDIFFROW diff_buf, JDIMENSION width)
|
||||
{
|
||||
DIFFERENCE_2D(PREDICTOR5);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_difference6(j_compress_ptr cinfo, int ci,
|
||||
JSAMPROW input_buf, JSAMPROW prev_row,
|
||||
JDIFFROW diff_buf, JDIMENSION width)
|
||||
{
|
||||
DIFFERENCE_2D(PREDICTOR6);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_difference7(j_compress_ptr cinfo, int ci,
|
||||
JSAMPROW input_buf, JSAMPROW prev_row,
|
||||
JDIFFROW diff_buf, JDIMENSION width)
|
||||
{
|
||||
DIFFERENCE_2D(PREDICTOR7);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Differencer for the first row in a scan or restart interval. The first
|
||||
* sample in the row is differenced using the special predictor constant
|
||||
* x=2^(P-Pt-1). The rest of the samples are differenced using the
|
||||
* 1-D horizontal predictor (1).
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_difference_first_row(j_compress_ptr cinfo, int ci,
|
||||
JSAMPROW input_buf, JSAMPROW prev_row,
|
||||
JDIFFROW diff_buf, JDIMENSION width)
|
||||
{
|
||||
DIFFERENCE_1D(INITIAL_PREDICTORx);
|
||||
|
||||
/*
|
||||
* Now that we have differenced the first row, we want to use the
|
||||
* differencer which corresponds to the predictor specified in the
|
||||
* scan header.
|
||||
*
|
||||
* Note that we don't to do this if we have just reset the predictor
|
||||
* for a new restart interval.
|
||||
*/
|
||||
if (!restart) {
|
||||
switch (cinfo->Ss) {
|
||||
case 1:
|
||||
losslsc->predict_difference[ci] = jpeg_difference1;
|
||||
break;
|
||||
case 2:
|
||||
losslsc->predict_difference[ci] = jpeg_difference2;
|
||||
break;
|
||||
case 3:
|
||||
losslsc->predict_difference[ci] = jpeg_difference3;
|
||||
break;
|
||||
case 4:
|
||||
losslsc->predict_difference[ci] = jpeg_difference4;
|
||||
break;
|
||||
case 5:
|
||||
losslsc->predict_difference[ci] = jpeg_difference5;
|
||||
break;
|
||||
case 6:
|
||||
losslsc->predict_difference[ci] = jpeg_difference6;
|
||||
break;
|
||||
case 7:
|
||||
losslsc->predict_difference[ci] = jpeg_difference7;
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/*
|
||||
* Reset predictor at the start of a pass or restart interval.
|
||||
*/
|
||||
|
||||
LOCAL(void)
|
||||
reset_predictor (j_compress_ptr cinfo, int ci)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
c_pred_ptr pred = (c_pred_ptr) losslsc->pred_private;
|
||||
|
||||
/* Initialize restart counter */
|
||||
pred->restart_rows_to_go[ci] =
|
||||
cinfo->restart_interval / cinfo->MCUs_per_row;
|
||||
|
||||
/* Set difference function to first row function */
|
||||
losslsc->predict_difference[ci] = jpeg_difference_first_row;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for an input processing pass.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass (j_compress_ptr cinfo)
|
||||
{
|
||||
//j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
//c_pred_ptr pred = (c_pred_ptr) losslsc->pred_private;
|
||||
int ci;
|
||||
|
||||
/* Check that the restart interval is an integer multiple of the number
|
||||
* of MCU in an MCU-row.
|
||||
*/
|
||||
if (cinfo->restart_interval % cinfo->MCUs_per_row != 0)
|
||||
ERREXIT2(cinfo, JERR_BAD_RESTART,
|
||||
cinfo->restart_interval, cinfo->MCUs_per_row);
|
||||
|
||||
/* Set predictors for start of pass */
|
||||
for (ci = 0; ci < cinfo->num_components; ci++)
|
||||
reset_predictor(cinfo, ci);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Module initialization routine for the differencer.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_differencer (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
c_pred_ptr pred;
|
||||
|
||||
pred = (c_pred_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(c_predictor));
|
||||
losslsc->pred_private = (void *) pred;
|
||||
losslsc->predict_start_pass = start_pass;
|
||||
}
|
||||
|
||||
#endif /* C_LOSSLESS_SUPPORTED */
|
||||
@@ -1,7 +1,7 @@
|
||||
/*
|
||||
* jcprepct.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1994-1996, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -173,10 +173,12 @@ pre_process_data (j_compress_ptr cinfo,
|
||||
*out_row_group_ctr < out_row_groups_avail) {
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
numrows = (compptr->v_samp_factor * compptr->DCT_v_scaled_size) /
|
||||
cinfo->min_DCT_v_scaled_size;
|
||||
expand_bottom_edge(output_buf[ci],
|
||||
compptr->width_in_data_units * cinfo->data_unit,
|
||||
(int) (*out_row_group_ctr * compptr->v_samp_factor),
|
||||
(int) (out_row_groups_avail * compptr->v_samp_factor));
|
||||
compptr->width_in_blocks * compptr->DCT_h_scaled_size,
|
||||
(int) (*out_row_group_ctr * numrows),
|
||||
(int) (out_row_groups_avail * numrows));
|
||||
}
|
||||
*out_row_group_ctr = out_row_groups_avail;
|
||||
break; /* can exit outer loop without test */
|
||||
@@ -288,7 +290,8 @@ create_context_buffer (j_compress_ptr cinfo)
|
||||
*/
|
||||
true_buffer = (*cinfo->mem->alloc_sarray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
(JDIMENSION) (((long) compptr->width_in_data_units * cinfo->data_unit *
|
||||
(JDIMENSION) (((long) compptr->width_in_blocks *
|
||||
cinfo->min_DCT_h_scaled_size *
|
||||
cinfo->max_h_samp_factor) / compptr->h_samp_factor),
|
||||
(JDIMENSION) (3 * rgroup_height));
|
||||
/* Copy true buffer row pointers into the middle of the fake row array */
|
||||
@@ -346,7 +349,8 @@ jinit_c_prep_controller (j_compress_ptr cinfo, boolean need_full_buffer)
|
||||
ci++, compptr++) {
|
||||
prep->color_buf[ci] = (*cinfo->mem->alloc_sarray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
(JDIMENSION) (((long) compptr->width_in_data_units * cinfo->data_unit *
|
||||
(JDIMENSION) (((long) compptr->width_in_blocks *
|
||||
cinfo->min_DCT_h_scaled_size *
|
||||
cinfo->max_h_samp_factor) / compptr->h_samp_factor),
|
||||
(JDIMENSION) cinfo->max_v_samp_factor);
|
||||
}
|
||||
|
||||
+61
-35
@@ -1,7 +1,7 @@
|
||||
/*
|
||||
* jcsample.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1991-1996, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -62,6 +62,15 @@ typedef struct {
|
||||
|
||||
/* Downsampling method pointers, one per component */
|
||||
downsample1_ptr methods[MAX_COMPONENTS];
|
||||
|
||||
/* Height of an output row group for each component. */
|
||||
int rowgroup_height[MAX_COMPONENTS];
|
||||
|
||||
/* These arrays save pixel expansion factors so that int_downsample need not
|
||||
* recompute them each time. They are unused for other downsampling methods.
|
||||
*/
|
||||
UINT8 h_expand[MAX_COMPONENTS];
|
||||
UINT8 v_expand[MAX_COMPONENTS];
|
||||
} my_downsampler;
|
||||
|
||||
typedef my_downsampler * my_downsample_ptr;
|
||||
@@ -123,7 +132,8 @@ sep_downsample (j_compress_ptr cinfo,
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
in_ptr = input_buf[ci] + in_row_index;
|
||||
out_ptr = output_buf[ci] + (out_row_group_index * compptr->v_samp_factor);
|
||||
out_ptr = output_buf[ci] +
|
||||
(out_row_group_index * downsample->rowgroup_height[ci]);
|
||||
(*downsample->methods[ci]) (cinfo, compptr, in_ptr, out_ptr);
|
||||
}
|
||||
}
|
||||
@@ -140,14 +150,15 @@ METHODDEF(void)
|
||||
int_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JSAMPARRAY input_data, JSAMPARRAY output_data)
|
||||
{
|
||||
my_downsample_ptr downsample = (my_downsample_ptr) cinfo->downsample;
|
||||
int inrow, outrow, h_expand, v_expand, numpix, numpix2, h, v;
|
||||
JDIMENSION outcol, outcol_h; /* outcol_h == outcol*h_expand */
|
||||
JDIMENSION output_cols = compptr->width_in_data_units * cinfo->data_unit;
|
||||
JDIMENSION output_cols = compptr->width_in_blocks * compptr->DCT_h_scaled_size;
|
||||
JSAMPROW inptr, outptr;
|
||||
INT32 outvalue;
|
||||
|
||||
h_expand = cinfo->max_h_samp_factor / compptr->h_samp_factor;
|
||||
v_expand = cinfo->max_v_samp_factor / compptr->v_samp_factor;
|
||||
h_expand = downsample->h_expand[compptr->component_index];
|
||||
v_expand = downsample->v_expand[compptr->component_index];
|
||||
numpix = h_expand * v_expand;
|
||||
numpix2 = numpix/2;
|
||||
|
||||
@@ -158,8 +169,8 @@ int_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
expand_right_edge(input_data, cinfo->max_v_samp_factor,
|
||||
cinfo->image_width, output_cols * h_expand);
|
||||
|
||||
inrow = 0;
|
||||
for (outrow = 0; outrow < compptr->v_samp_factor; outrow++) {
|
||||
inrow = outrow = 0;
|
||||
while (inrow < cinfo->max_v_samp_factor) {
|
||||
outptr = output_data[outrow];
|
||||
for (outcol = 0, outcol_h = 0; outcol < output_cols;
|
||||
outcol++, outcol_h += h_expand) {
|
||||
@@ -173,6 +184,7 @@ int_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
*outptr++ = (JSAMPLE) ((outvalue + numpix2) / numpix);
|
||||
}
|
||||
inrow += v_expand;
|
||||
outrow++;
|
||||
}
|
||||
}
|
||||
|
||||
@@ -191,8 +203,8 @@ fullsize_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
jcopy_sample_rows(input_data, 0, output_data, 0,
|
||||
cinfo->max_v_samp_factor, cinfo->image_width);
|
||||
/* Edge-expand */
|
||||
expand_right_edge(output_data, cinfo->max_v_samp_factor,
|
||||
cinfo->image_width, compptr->width_in_data_units * cinfo->data_unit);
|
||||
expand_right_edge(output_data, cinfo->max_v_samp_factor, cinfo->image_width,
|
||||
compptr->width_in_blocks * compptr->DCT_h_scaled_size);
|
||||
}
|
||||
|
||||
|
||||
@@ -212,9 +224,9 @@ METHODDEF(void)
|
||||
h2v1_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JSAMPARRAY input_data, JSAMPARRAY output_data)
|
||||
{
|
||||
int outrow;
|
||||
int inrow;
|
||||
JDIMENSION outcol;
|
||||
JDIMENSION output_cols = compptr->width_in_data_units * cinfo->data_unit;
|
||||
JDIMENSION output_cols = compptr->width_in_blocks * compptr->DCT_h_scaled_size;
|
||||
register JSAMPROW inptr, outptr;
|
||||
register int bias;
|
||||
|
||||
@@ -225,9 +237,9 @@ h2v1_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
expand_right_edge(input_data, cinfo->max_v_samp_factor,
|
||||
cinfo->image_width, output_cols * 2);
|
||||
|
||||
for (outrow = 0; outrow < compptr->v_samp_factor; outrow++) {
|
||||
outptr = output_data[outrow];
|
||||
inptr = input_data[outrow];
|
||||
for (inrow = 0; inrow < cinfo->max_v_samp_factor; inrow++) {
|
||||
outptr = output_data[inrow];
|
||||
inptr = input_data[inrow];
|
||||
bias = 0; /* bias = 0,1,0,1,... for successive samples */
|
||||
for (outcol = 0; outcol < output_cols; outcol++) {
|
||||
*outptr++ = (JSAMPLE) ((GETJSAMPLE(*inptr) + GETJSAMPLE(inptr[1])
|
||||
@@ -251,7 +263,7 @@ h2v2_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
{
|
||||
int inrow, outrow;
|
||||
JDIMENSION outcol;
|
||||
JDIMENSION output_cols = compptr->width_in_data_units * cinfo->data_unit;
|
||||
JDIMENSION output_cols = compptr->width_in_blocks * compptr->DCT_h_scaled_size;
|
||||
register JSAMPROW inptr0, inptr1, outptr;
|
||||
register int bias;
|
||||
|
||||
@@ -262,8 +274,8 @@ h2v2_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
expand_right_edge(input_data, cinfo->max_v_samp_factor,
|
||||
cinfo->image_width, output_cols * 2);
|
||||
|
||||
inrow = 0;
|
||||
for (outrow = 0; outrow < compptr->v_samp_factor; outrow++) {
|
||||
inrow = outrow = 0;
|
||||
while (inrow < cinfo->max_v_samp_factor) {
|
||||
outptr = output_data[outrow];
|
||||
inptr0 = input_data[inrow];
|
||||
inptr1 = input_data[inrow+1];
|
||||
@@ -276,6 +288,7 @@ h2v2_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
inptr0 += 2; inptr1 += 2;
|
||||
}
|
||||
inrow += 2;
|
||||
outrow++;
|
||||
}
|
||||
}
|
||||
|
||||
@@ -294,7 +307,7 @@ h2v2_smooth_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
{
|
||||
int inrow, outrow;
|
||||
JDIMENSION colctr;
|
||||
JDIMENSION output_cols = compptr->width_in_data_units * cinfo->data_unit;
|
||||
JDIMENSION output_cols = compptr->width_in_blocks * compptr->DCT_h_scaled_size;
|
||||
register JSAMPROW inptr0, inptr1, above_ptr, below_ptr, outptr;
|
||||
INT32 membersum, neighsum, memberscale, neighscale;
|
||||
|
||||
@@ -321,8 +334,8 @@ h2v2_smooth_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
memberscale = 16384 - cinfo->smoothing_factor * 80; /* scaled (1-5*SF)/4 */
|
||||
neighscale = cinfo->smoothing_factor * 16; /* scaled SF/4 */
|
||||
|
||||
inrow = 0;
|
||||
for (outrow = 0; outrow < compptr->v_samp_factor; outrow++) {
|
||||
inrow = outrow = 0;
|
||||
while (inrow < cinfo->max_v_samp_factor) {
|
||||
outptr = output_data[outrow];
|
||||
inptr0 = input_data[inrow];
|
||||
inptr1 = input_data[inrow+1];
|
||||
@@ -378,6 +391,7 @@ h2v2_smooth_downsample (j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
*outptr = (JSAMPLE) ((membersum + 32768) >> 16);
|
||||
|
||||
inrow += 2;
|
||||
outrow++;
|
||||
}
|
||||
}
|
||||
|
||||
@@ -392,9 +406,9 @@ METHODDEF(void)
|
||||
fullsize_smooth_downsample (j_compress_ptr cinfo, jpeg_component_info *compptr,
|
||||
JSAMPARRAY input_data, JSAMPARRAY output_data)
|
||||
{
|
||||
int outrow;
|
||||
int inrow;
|
||||
JDIMENSION colctr;
|
||||
JDIMENSION output_cols = compptr->width_in_data_units * cinfo->data_unit;
|
||||
JDIMENSION output_cols = compptr->width_in_blocks * compptr->DCT_h_scaled_size;
|
||||
register JSAMPROW inptr, above_ptr, below_ptr, outptr;
|
||||
INT32 membersum, neighsum, memberscale, neighscale;
|
||||
int colsum, lastcolsum, nextcolsum;
|
||||
@@ -415,11 +429,11 @@ fullsize_smooth_downsample (j_compress_ptr cinfo, jpeg_component_info *compptr,
|
||||
memberscale = 65536L - cinfo->smoothing_factor * 512L; /* scaled 1-8*SF */
|
||||
neighscale = cinfo->smoothing_factor * 64; /* scaled SF */
|
||||
|
||||
for (outrow = 0; outrow < compptr->v_samp_factor; outrow++) {
|
||||
outptr = output_data[outrow];
|
||||
inptr = input_data[outrow];
|
||||
above_ptr = input_data[outrow-1];
|
||||
below_ptr = input_data[outrow+1];
|
||||
for (inrow = 0; inrow < cinfo->max_v_samp_factor; inrow++) {
|
||||
outptr = output_data[inrow];
|
||||
inptr = input_data[inrow];
|
||||
above_ptr = input_data[inrow-1];
|
||||
below_ptr = input_data[inrow+1];
|
||||
|
||||
/* Special case for first column */
|
||||
colsum = GETJSAMPLE(*above_ptr++) + GETJSAMPLE(*below_ptr++) +
|
||||
@@ -467,6 +481,7 @@ jinit_downsampler (j_compress_ptr cinfo)
|
||||
int ci;
|
||||
jpeg_component_info * compptr;
|
||||
boolean smoothok = TRUE;
|
||||
int h_in_group, v_in_group, h_out_group, v_out_group;
|
||||
|
||||
downsample = (my_downsample_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
@@ -482,8 +497,17 @@ jinit_downsampler (j_compress_ptr cinfo)
|
||||
/* Verify we can handle the sampling factors, and set up method pointers */
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
if (compptr->h_samp_factor == cinfo->max_h_samp_factor &&
|
||||
compptr->v_samp_factor == cinfo->max_v_samp_factor) {
|
||||
/* Compute size of an "output group" for DCT scaling. This many samples
|
||||
* are to be converted from max_h_samp_factor * max_v_samp_factor pixels.
|
||||
*/
|
||||
h_out_group = (compptr->h_samp_factor * compptr->DCT_h_scaled_size) /
|
||||
cinfo->min_DCT_h_scaled_size;
|
||||
v_out_group = (compptr->v_samp_factor * compptr->DCT_v_scaled_size) /
|
||||
cinfo->min_DCT_v_scaled_size;
|
||||
h_in_group = cinfo->max_h_samp_factor;
|
||||
v_in_group = cinfo->max_v_samp_factor;
|
||||
downsample->rowgroup_height[ci] = v_out_group; /* save for use later */
|
||||
if (h_in_group == h_out_group && v_in_group == v_out_group) {
|
||||
#ifdef INPUT_SMOOTHING_SUPPORTED
|
||||
if (cinfo->smoothing_factor) {
|
||||
downsample->methods[ci] = fullsize_smooth_downsample;
|
||||
@@ -491,12 +515,12 @@ jinit_downsampler (j_compress_ptr cinfo)
|
||||
} else
|
||||
#endif
|
||||
downsample->methods[ci] = fullsize_downsample;
|
||||
} else if (compptr->h_samp_factor * 2 == cinfo->max_h_samp_factor &&
|
||||
compptr->v_samp_factor == cinfo->max_v_samp_factor) {
|
||||
} else if (h_in_group == h_out_group * 2 &&
|
||||
v_in_group == v_out_group) {
|
||||
smoothok = FALSE;
|
||||
downsample->methods[ci] = h2v1_downsample;
|
||||
} else if (compptr->h_samp_factor * 2 == cinfo->max_h_samp_factor &&
|
||||
compptr->v_samp_factor * 2 == cinfo->max_v_samp_factor) {
|
||||
} else if (h_in_group == h_out_group * 2 &&
|
||||
v_in_group == v_out_group * 2) {
|
||||
#ifdef INPUT_SMOOTHING_SUPPORTED
|
||||
if (cinfo->smoothing_factor) {
|
||||
downsample->methods[ci] = h2v2_smooth_downsample;
|
||||
@@ -504,10 +528,12 @@ jinit_downsampler (j_compress_ptr cinfo)
|
||||
} else
|
||||
#endif
|
||||
downsample->methods[ci] = h2v2_downsample;
|
||||
} else if ((cinfo->max_h_samp_factor % compptr->h_samp_factor) == 0 &&
|
||||
(cinfo->max_v_samp_factor % compptr->v_samp_factor) == 0) {
|
||||
} else if ((h_in_group % h_out_group) == 0 &&
|
||||
(v_in_group % v_out_group) == 0) {
|
||||
smoothok = FALSE;
|
||||
downsample->methods[ci] = int_downsample;
|
||||
downsample->h_expand[ci] = (UINT8) (h_in_group / h_out_group);
|
||||
downsample->v_expand[ci] = (UINT8) (v_in_group / v_out_group);
|
||||
} else
|
||||
ERREXIT(cinfo, JERR_FRACT_SAMPLE_NOTIMPL);
|
||||
}
|
||||
|
||||
@@ -1,62 +0,0 @@
|
||||
/*
|
||||
* jcscale.c
|
||||
*
|
||||
* Copyright (C) 1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains sample downscaling by 2^Pt for lossless JPEG.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossls.h" /* Private declarations for lossless codec */
|
||||
|
||||
|
||||
#ifdef C_LOSSLESS_SUPPORTED
|
||||
|
||||
METHODDEF(void)
|
||||
simple_downscale(j_compress_ptr cinfo,
|
||||
JSAMPROW input_buf, JSAMPROW output_buf, JDIMENSION width)
|
||||
{
|
||||
//j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
uint xindex;
|
||||
|
||||
for (xindex = 0; xindex < width; xindex++)
|
||||
output_buf[xindex] = (JSAMPLE) RIGHT_SHIFT(GETJSAMPLE(input_buf[xindex]),
|
||||
cinfo->Al);
|
||||
}
|
||||
|
||||
|
||||
METHODDEF(void)
|
||||
noscale(j_compress_ptr cinfo,
|
||||
JSAMPROW input_buf, JSAMPROW output_buf, JDIMENSION width)
|
||||
{
|
||||
MEMCOPY(output_buf, input_buf, width * SIZEOF(JSAMPLE));
|
||||
return;
|
||||
}
|
||||
|
||||
|
||||
METHODDEF(void)
|
||||
scaler_start_pass (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
|
||||
/* Set scaler function based on Pt */
|
||||
if (cinfo->Al)
|
||||
losslsc->scaler_scale = simple_downscale;
|
||||
else
|
||||
losslsc->scaler_scale = noscale;
|
||||
}
|
||||
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_c_scaler (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossless_c_ptr losslsc = (j_lossless_c_ptr) cinfo->codec;
|
||||
|
||||
losslsc->scaler_start_pass = scaler_start_pass;
|
||||
}
|
||||
|
||||
#endif /* C_LOSSLESS_SUPPORTED */
|
||||
@@ -1,661 +0,0 @@
|
||||
/*
|
||||
* jcshuff.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains Huffman entropy encoding routines for sequential JPEG.
|
||||
*
|
||||
* Much of the complexity here has to do with supporting output suspension.
|
||||
* If the data destination module demands suspension, we want to be able to
|
||||
* back up to the start of the current MCU. To do this, we copy state
|
||||
* variables into local working storage, and update them back to the
|
||||
* permanent JPEG objects only upon successful completion of an MCU.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h" /* Private declarations for lossy codec */
|
||||
#include "jchuff.h" /* Declarations shared with jc*huff.c */
|
||||
|
||||
|
||||
/* Expanded entropy encoder object for Huffman encoding.
|
||||
*
|
||||
* The savable_state subrecord contains fields that change within an MCU,
|
||||
* but must not be updated permanently until we complete the MCU.
|
||||
*/
|
||||
|
||||
typedef struct {
|
||||
INT32 put_buffer; /* current bit-accumulation buffer */
|
||||
int put_bits; /* # of bits now in it */
|
||||
int last_dc_val[MAX_COMPS_IN_SCAN]; /* last DC coef for each component */
|
||||
} savable_state;
|
||||
|
||||
/* This macro is to work around compilers with missing or broken
|
||||
* structure assignment. You'll need to fix this code if you have
|
||||
* such a compiler and you change MAX_COMPS_IN_SCAN.
|
||||
*/
|
||||
|
||||
#ifndef NO_STRUCT_ASSIGN
|
||||
#define ASSIGN_STATE(dest,src) ((dest) = (src))
|
||||
#else
|
||||
#if MAX_COMPS_IN_SCAN == 4
|
||||
#define ASSIGN_STATE(dest,src) \
|
||||
((dest).put_buffer = (src).put_buffer, \
|
||||
(dest).put_bits = (src).put_bits, \
|
||||
(dest).last_dc_val[0] = (src).last_dc_val[0], \
|
||||
(dest).last_dc_val[1] = (src).last_dc_val[1], \
|
||||
(dest).last_dc_val[2] = (src).last_dc_val[2], \
|
||||
(dest).last_dc_val[3] = (src).last_dc_val[3])
|
||||
#endif
|
||||
#endif
|
||||
|
||||
|
||||
typedef struct {
|
||||
savable_state saved; /* Bit buffer & DC state at start of MCU */
|
||||
|
||||
/* These fields are NOT loaded into local working state. */
|
||||
unsigned int restarts_to_go; /* MCUs left in this restart interval */
|
||||
int next_restart_num; /* next restart number to write (0-7) */
|
||||
|
||||
/* Pointers to derived tables (these workspaces have image lifespan) */
|
||||
c_derived_tbl * dc_derived_tbls[NUM_HUFF_TBLS];
|
||||
c_derived_tbl * ac_derived_tbls[NUM_HUFF_TBLS];
|
||||
|
||||
#ifdef ENTROPY_OPT_SUPPORTED /* Statistics tables for optimization */
|
||||
long * dc_count_ptrs[NUM_HUFF_TBLS];
|
||||
long * ac_count_ptrs[NUM_HUFF_TBLS];
|
||||
#endif
|
||||
} shuff_entropy_encoder;
|
||||
|
||||
typedef shuff_entropy_encoder * shuff_entropy_ptr;
|
||||
|
||||
/* Working state while writing an MCU.
|
||||
* This struct contains all the fields that are needed by subroutines.
|
||||
*/
|
||||
|
||||
typedef struct {
|
||||
JOCTET * next_output_byte; /* => next byte to write in buffer */
|
||||
size_t free_in_buffer; /* # of byte spaces remaining in buffer */
|
||||
savable_state cur; /* Current bit buffer & DC state */
|
||||
j_compress_ptr cinfo; /* dump_buffer needs access to this */
|
||||
} working_state;
|
||||
|
||||
|
||||
/* Forward declarations */
|
||||
METHODDEF(boolean) encode_mcu_huff JPP((j_compress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
METHODDEF(void) finish_pass_huff JPP((j_compress_ptr cinfo));
|
||||
#ifdef ENTROPY_OPT_SUPPORTED
|
||||
METHODDEF(boolean) encode_mcu_gather JPP((j_compress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
METHODDEF(void) finish_pass_gather JPP((j_compress_ptr cinfo));
|
||||
#endif
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for a Huffman-compressed scan.
|
||||
* If gather_statistics is TRUE, we do not output anything during the scan,
|
||||
* just count the Huffman symbols used and generate Huffman code tables.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass_huff (j_compress_ptr cinfo, boolean gather_statistics)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyc->entropy_private;
|
||||
int ci, dctbl, actbl;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
if (gather_statistics) {
|
||||
#ifdef ENTROPY_OPT_SUPPORTED
|
||||
lossyc->entropy_encode_mcu = encode_mcu_gather;
|
||||
lossyc->pub.entropy_finish_pass = finish_pass_gather;
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
} else {
|
||||
lossyc->entropy_encode_mcu = encode_mcu_huff;
|
||||
lossyc->pub.entropy_finish_pass = finish_pass_huff;
|
||||
}
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
dctbl = compptr->dc_tbl_no;
|
||||
actbl = compptr->ac_tbl_no;
|
||||
if (gather_statistics) {
|
||||
#ifdef ENTROPY_OPT_SUPPORTED
|
||||
/* Check for invalid table indexes */
|
||||
/* (make_c_derived_tbl does this in the other path) */
|
||||
if (dctbl < 0 || dctbl >= NUM_HUFF_TBLS)
|
||||
ERREXIT1(cinfo, JERR_NO_HUFF_TABLE, dctbl);
|
||||
if (actbl < 0 || actbl >= NUM_HUFF_TBLS)
|
||||
ERREXIT1(cinfo, JERR_NO_HUFF_TABLE, actbl);
|
||||
/* Allocate and zero the statistics tables */
|
||||
/* Note that jpeg_gen_optimal_table expects 257 entries in each table! */
|
||||
if (entropy->dc_count_ptrs[dctbl] == NULL)
|
||||
entropy->dc_count_ptrs[dctbl] = (long *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
257 * SIZEOF(long));
|
||||
MEMZERO(entropy->dc_count_ptrs[dctbl], 257 * SIZEOF(long));
|
||||
if (entropy->ac_count_ptrs[actbl] == NULL)
|
||||
entropy->ac_count_ptrs[actbl] = (long *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
257 * SIZEOF(long));
|
||||
MEMZERO(entropy->ac_count_ptrs[actbl], 257 * SIZEOF(long));
|
||||
#endif
|
||||
} else {
|
||||
/* Compute derived values for Huffman tables */
|
||||
/* We may do this more than once for a table, but it's not expensive */
|
||||
jpeg_make_c_derived_tbl(cinfo, TRUE, dctbl,
|
||||
& entropy->dc_derived_tbls[dctbl]);
|
||||
jpeg_make_c_derived_tbl(cinfo, FALSE, actbl,
|
||||
& entropy->ac_derived_tbls[actbl]);
|
||||
}
|
||||
/* Initialize DC predictions to 0 */
|
||||
entropy->saved.last_dc_val[ci] = 0;
|
||||
}
|
||||
|
||||
/* Initialize bit buffer to empty */
|
||||
entropy->saved.put_buffer = 0;
|
||||
entropy->saved.put_bits = 0;
|
||||
|
||||
/* Initialize restart stuff */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num = 0;
|
||||
}
|
||||
|
||||
|
||||
/* Outputting bytes to the file */
|
||||
|
||||
/* Emit a byte, taking 'action' if must suspend. */
|
||||
#define emit_byte(state,val,action) \
|
||||
{ *(state)->next_output_byte++ = (JOCTET) (val); \
|
||||
if (--(state)->free_in_buffer == 0) \
|
||||
if (! dump_buffer(state)) \
|
||||
{ action; } }
|
||||
|
||||
|
||||
LOCAL(boolean)
|
||||
dump_buffer (working_state * state)
|
||||
/* Empty the output buffer; return TRUE if successful, FALSE if must suspend */
|
||||
{
|
||||
struct jpeg_destination_mgr * dest = state->cinfo->dest;
|
||||
|
||||
if (! (*dest->empty_output_buffer) (state->cinfo))
|
||||
return FALSE;
|
||||
/* After a successful buffer dump, must reset buffer pointers */
|
||||
state->next_output_byte = dest->next_output_byte;
|
||||
state->free_in_buffer = dest->free_in_buffer;
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/* Outputting bits to the file */
|
||||
|
||||
/* Only the right 24 bits of put_buffer are used; the valid bits are
|
||||
* left-justified in this part. At most 16 bits can be passed to emit_bits
|
||||
* in one call, and we never retain more than 7 bits in put_buffer
|
||||
* between calls, so 24 bits are sufficient.
|
||||
*/
|
||||
|
||||
INLINE
|
||||
LOCAL(boolean)
|
||||
emit_bits (working_state * state, unsigned int code, int size)
|
||||
/* Emit some bits; return TRUE if successful, FALSE if must suspend */
|
||||
{
|
||||
/* This routine is heavily used, so it's worth coding tightly. */
|
||||
register INT32 put_buffer = (INT32) code;
|
||||
register int put_bits = state->cur.put_bits;
|
||||
|
||||
/* if size is 0, caller used an invalid Huffman table entry */
|
||||
if (size == 0)
|
||||
ERREXIT(state->cinfo, JERR_HUFF_MISSING_CODE);
|
||||
|
||||
put_buffer &= (((INT32) 1)<<size) - 1; /* mask off any extra bits in code */
|
||||
|
||||
put_bits += size; /* new number of bits in buffer */
|
||||
|
||||
put_buffer <<= 24 - put_bits; /* align incoming bits */
|
||||
|
||||
put_buffer |= state->cur.put_buffer; /* and merge with old buffer contents */
|
||||
|
||||
while (put_bits >= 8) {
|
||||
int c = (int) ((put_buffer >> 16) & 0xFF);
|
||||
|
||||
emit_byte(state, c, return FALSE);
|
||||
if (c == 0xFF) { /* need to stuff a zero byte? */
|
||||
emit_byte(state, 0, return FALSE);
|
||||
}
|
||||
put_buffer <<= 8;
|
||||
put_bits -= 8;
|
||||
}
|
||||
|
||||
state->cur.put_buffer = put_buffer; /* update state variables */
|
||||
state->cur.put_bits = put_bits;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
LOCAL(boolean)
|
||||
flush_bits (working_state * state)
|
||||
{
|
||||
if (! emit_bits(state, 0x7F, 7)) /* fill any partial byte with ones */
|
||||
return FALSE;
|
||||
state->cur.put_buffer = 0; /* and reset bit-buffer to empty */
|
||||
state->cur.put_bits = 0;
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/* Encode a single block's worth of coefficients */
|
||||
|
||||
LOCAL(boolean)
|
||||
encode_one_block (working_state * state, JCOEFPTR block, int last_dc_val,
|
||||
c_derived_tbl *dctbl, c_derived_tbl *actbl)
|
||||
{
|
||||
register int temp, temp2;
|
||||
register int nbits;
|
||||
register int k, r, i;
|
||||
|
||||
/* Encode the DC coefficient difference per section F.1.2.1 */
|
||||
|
||||
temp = temp2 = block[0] - last_dc_val;
|
||||
|
||||
if (temp < 0) {
|
||||
temp = -temp; /* temp is abs value of input */
|
||||
/* For a negative input, want temp2 = bitwise complement of abs(input) */
|
||||
/* This code assumes we are on a two's complement machine */
|
||||
temp2--;
|
||||
}
|
||||
|
||||
/* Find the number of bits needed for the magnitude of the coefficient */
|
||||
nbits = 0;
|
||||
while (temp) {
|
||||
nbits++;
|
||||
temp >>= 1;
|
||||
}
|
||||
/* Check for out-of-range coefficient values.
|
||||
* Since we're encoding a difference, the range limit is twice as much.
|
||||
*/
|
||||
if (nbits > MAX_COEF_BITS+1)
|
||||
ERREXIT(state->cinfo, JERR_BAD_DCT_COEF);
|
||||
|
||||
/* Emit the Huffman-coded symbol for the number of bits */
|
||||
if (! emit_bits(state, dctbl->ehufco[nbits], dctbl->ehufsi[nbits]))
|
||||
return FALSE;
|
||||
|
||||
/* Emit that number of bits of the value, if positive, */
|
||||
/* or the complement of its magnitude, if negative. */
|
||||
if (nbits) /* emit_bits rejects calls with size 0 */
|
||||
if (! emit_bits(state, (unsigned int) temp2, nbits))
|
||||
return FALSE;
|
||||
|
||||
/* Encode the AC coefficients per section F.1.2.2 */
|
||||
|
||||
r = 0; /* r = run length of zeros */
|
||||
|
||||
for (k = 1; k < DCTSIZE2; k++) {
|
||||
if ((temp = block[jpeg_natural_order[k]]) == 0) {
|
||||
r++;
|
||||
} else {
|
||||
/* if run length > 15, must emit special run-length-16 codes (0xF0) */
|
||||
while (r > 15) {
|
||||
if (! emit_bits(state, actbl->ehufco[0xF0], actbl->ehufsi[0xF0]))
|
||||
return FALSE;
|
||||
r -= 16;
|
||||
}
|
||||
|
||||
temp2 = temp;
|
||||
if (temp < 0) {
|
||||
temp = -temp; /* temp is abs value of input */
|
||||
/* This code assumes we are on a two's complement machine */
|
||||
temp2--;
|
||||
}
|
||||
|
||||
/* Find the number of bits needed for the magnitude of the coefficient */
|
||||
nbits = 1; /* there must be at least one 1 bit */
|
||||
while ((temp >>= 1))
|
||||
nbits++;
|
||||
/* Check for out-of-range coefficient values */
|
||||
if (nbits > MAX_COEF_BITS)
|
||||
ERREXIT(state->cinfo, JERR_BAD_DCT_COEF);
|
||||
|
||||
/* Emit Huffman symbol for run length / number of bits */
|
||||
i = (r << 4) + nbits;
|
||||
if (! emit_bits(state, actbl->ehufco[i], actbl->ehufsi[i]))
|
||||
return FALSE;
|
||||
|
||||
/* Emit that number of bits of the value, if positive, */
|
||||
/* or the complement of its magnitude, if negative. */
|
||||
if (! emit_bits(state, (unsigned int) temp2, nbits))
|
||||
return FALSE;
|
||||
|
||||
r = 0;
|
||||
}
|
||||
}
|
||||
|
||||
/* If the last coef(s) were zero, emit an end-of-block code */
|
||||
if (r > 0)
|
||||
if (! emit_bits(state, actbl->ehufco[0], actbl->ehufsi[0]))
|
||||
return FALSE;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Emit a restart marker & resynchronize predictions.
|
||||
*/
|
||||
|
||||
LOCAL(boolean)
|
||||
emit_restart (working_state * state, int restart_num)
|
||||
{
|
||||
int ci;
|
||||
|
||||
if (! flush_bits(state))
|
||||
return FALSE;
|
||||
|
||||
emit_byte(state, 0xFF, return FALSE);
|
||||
emit_byte(state, JPEG_RST0 + restart_num, return FALSE);
|
||||
|
||||
/* Re-initialize DC predictions to 0 */
|
||||
for (ci = 0; ci < state->cinfo->comps_in_scan; ci++)
|
||||
state->cur.last_dc_val[ci] = 0;
|
||||
|
||||
/* The restart counter is not updated until we successfully write the MCU. */
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Encode and output one MCU's worth of Huffman-compressed coefficients.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
encode_mcu_huff (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyc->entropy_private;
|
||||
working_state state;
|
||||
int blkn, ci;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
/* Load up working state */
|
||||
state.next_output_byte = cinfo->dest->next_output_byte;
|
||||
state.free_in_buffer = cinfo->dest->free_in_buffer;
|
||||
ASSIGN_STATE(state.cur, entropy->saved);
|
||||
state.cinfo = cinfo;
|
||||
|
||||
/* Emit restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
if (! emit_restart(&state, entropy->next_restart_num))
|
||||
return FALSE;
|
||||
}
|
||||
|
||||
/* Encode the MCU data blocks */
|
||||
for (blkn = 0; blkn < cinfo->data_units_in_MCU; blkn++) {
|
||||
ci = cinfo->MCU_membership[blkn];
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
if (! encode_one_block(&state,
|
||||
MCU_data[blkn][0], state.cur.last_dc_val[ci],
|
||||
entropy->dc_derived_tbls[compptr->dc_tbl_no],
|
||||
entropy->ac_derived_tbls[compptr->ac_tbl_no]))
|
||||
return FALSE;
|
||||
/* Update last_dc_val */
|
||||
state.cur.last_dc_val[ci] = MCU_data[blkn][0][0];
|
||||
}
|
||||
|
||||
/* Completed MCU, so update state */
|
||||
cinfo->dest->next_output_byte = state.next_output_byte;
|
||||
cinfo->dest->free_in_buffer = state.free_in_buffer;
|
||||
ASSIGN_STATE(entropy->saved, state.cur);
|
||||
|
||||
/* Update restart-interval state too */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
entropy->next_restart_num++;
|
||||
entropy->next_restart_num &= 7;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Finish up at the end of a Huffman-compressed scan.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
finish_pass_huff (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyc->entropy_private;
|
||||
working_state state;
|
||||
|
||||
/* Load up working state ... flush_bits needs it */
|
||||
state.next_output_byte = cinfo->dest->next_output_byte;
|
||||
state.free_in_buffer = cinfo->dest->free_in_buffer;
|
||||
ASSIGN_STATE(state.cur, entropy->saved);
|
||||
state.cinfo = cinfo;
|
||||
|
||||
/* Flush out the last data */
|
||||
if (! flush_bits(&state))
|
||||
ERREXIT(cinfo, JERR_CANT_SUSPEND);
|
||||
|
||||
/* Update state */
|
||||
cinfo->dest->next_output_byte = state.next_output_byte;
|
||||
cinfo->dest->free_in_buffer = state.free_in_buffer;
|
||||
ASSIGN_STATE(entropy->saved, state.cur);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Huffman coding optimization.
|
||||
*
|
||||
* We first scan the supplied data and count the number of uses of each symbol
|
||||
* that is to be Huffman-coded. (This process MUST agree with the code above.)
|
||||
* Then we build a Huffman coding tree for the observed counts.
|
||||
* Symbols which are not needed at all for the particular image are not
|
||||
* assigned any code, which saves space in the DHT marker as well as in
|
||||
* the compressed data.
|
||||
*/
|
||||
|
||||
#ifdef ENTROPY_OPT_SUPPORTED
|
||||
|
||||
|
||||
/* Process a single block's worth of coefficients */
|
||||
|
||||
LOCAL(void)
|
||||
htest_one_block (j_compress_ptr cinfo, JCOEFPTR block, int last_dc_val,
|
||||
long dc_counts[], long ac_counts[])
|
||||
{
|
||||
register int temp;
|
||||
register int nbits;
|
||||
register int k, r;
|
||||
|
||||
/* Encode the DC coefficient difference per section F.1.2.1 */
|
||||
|
||||
temp = block[0] - last_dc_val;
|
||||
if (temp < 0)
|
||||
temp = -temp;
|
||||
|
||||
/* Find the number of bits needed for the magnitude of the coefficient */
|
||||
nbits = 0;
|
||||
while (temp) {
|
||||
nbits++;
|
||||
temp >>= 1;
|
||||
}
|
||||
/* Check for out-of-range coefficient values.
|
||||
* Since we're encoding a difference, the range limit is twice as much.
|
||||
*/
|
||||
if (nbits > MAX_COEF_BITS+1)
|
||||
ERREXIT(cinfo, JERR_BAD_DCT_COEF);
|
||||
|
||||
/* Count the Huffman symbol for the number of bits */
|
||||
dc_counts[nbits]++;
|
||||
|
||||
/* Encode the AC coefficients per section F.1.2.2 */
|
||||
|
||||
r = 0; /* r = run length of zeros */
|
||||
|
||||
for (k = 1; k < DCTSIZE2; k++) {
|
||||
if ((temp = block[jpeg_natural_order[k]]) == 0) {
|
||||
r++;
|
||||
} else {
|
||||
/* if run length > 15, must emit special run-length-16 codes (0xF0) */
|
||||
while (r > 15) {
|
||||
ac_counts[0xF0]++;
|
||||
r -= 16;
|
||||
}
|
||||
|
||||
/* Find the number of bits needed for the magnitude of the coefficient */
|
||||
if (temp < 0)
|
||||
temp = -temp;
|
||||
|
||||
/* Find the number of bits needed for the magnitude of the coefficient */
|
||||
nbits = 1; /* there must be at least one 1 bit */
|
||||
while ((temp >>= 1))
|
||||
nbits++;
|
||||
/* Check for out-of-range coefficient values */
|
||||
if (nbits > MAX_COEF_BITS)
|
||||
ERREXIT(cinfo, JERR_BAD_DCT_COEF);
|
||||
|
||||
/* Count Huffman symbol for run length / number of bits */
|
||||
ac_counts[(r << 4) + nbits]++;
|
||||
|
||||
r = 0;
|
||||
}
|
||||
}
|
||||
|
||||
/* If the last coef(s) were zero, emit an end-of-block code */
|
||||
if (r > 0)
|
||||
ac_counts[0]++;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Trial-encode one MCU's worth of Huffman-compressed coefficients.
|
||||
* No data is actually output, so no suspension return is possible.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
encode_mcu_gather (j_compress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyc->entropy_private;
|
||||
int blkn, ci;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
/* Take care of restart intervals if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0) {
|
||||
/* Re-initialize DC predictions to 0 */
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++)
|
||||
entropy->saved.last_dc_val[ci] = 0;
|
||||
/* Update restart state */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
}
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
for (blkn = 0; blkn < cinfo->data_units_in_MCU; blkn++) {
|
||||
ci = cinfo->MCU_membership[blkn];
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
htest_one_block(cinfo, MCU_data[blkn][0], entropy->saved.last_dc_val[ci],
|
||||
entropy->dc_count_ptrs[compptr->dc_tbl_no],
|
||||
entropy->ac_count_ptrs[compptr->ac_tbl_no]);
|
||||
entropy->saved.last_dc_val[ci] = MCU_data[blkn][0][0];
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Finish up a statistics-gathering pass and create the new Huffman tables.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
finish_pass_gather (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyc->entropy_private;
|
||||
int ci, dctbl, actbl;
|
||||
jpeg_component_info * compptr;
|
||||
JHUFF_TBL **htblptr;
|
||||
boolean did_dc[NUM_HUFF_TBLS];
|
||||
boolean did_ac[NUM_HUFF_TBLS];
|
||||
|
||||
/* It's important not to apply jpeg_gen_optimal_table more than once
|
||||
* per table, because it clobbers the input frequency counts!
|
||||
*/
|
||||
MEMZERO(did_dc, SIZEOF(did_dc));
|
||||
MEMZERO(did_ac, SIZEOF(did_ac));
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
dctbl = compptr->dc_tbl_no;
|
||||
actbl = compptr->ac_tbl_no;
|
||||
if (! did_dc[dctbl]) {
|
||||
htblptr = & cinfo->dc_huff_tbl_ptrs[dctbl];
|
||||
if (*htblptr == NULL)
|
||||
*htblptr = jpeg_alloc_huff_table((j_common_ptr) cinfo);
|
||||
jpeg_gen_optimal_table(cinfo, *htblptr, entropy->dc_count_ptrs[dctbl]);
|
||||
did_dc[dctbl] = TRUE;
|
||||
}
|
||||
if (! did_ac[actbl]) {
|
||||
htblptr = & cinfo->ac_huff_tbl_ptrs[actbl];
|
||||
if (*htblptr == NULL)
|
||||
*htblptr = jpeg_alloc_huff_table((j_common_ptr) cinfo);
|
||||
jpeg_gen_optimal_table(cinfo, *htblptr, entropy->ac_count_ptrs[actbl]);
|
||||
did_ac[actbl] = TRUE;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
#endif /* ENTROPY_OPT_SUPPORTED */
|
||||
|
||||
|
||||
METHODDEF(boolean)
|
||||
need_optimization_pass (j_compress_ptr cinfo)
|
||||
{
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Module initialization routine for Huffman entropy encoding.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_shuff_encoder (j_compress_ptr cinfo)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
shuff_entropy_ptr entropy;
|
||||
int i;
|
||||
|
||||
entropy = (shuff_entropy_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(shuff_entropy_encoder));
|
||||
lossyc->entropy_private = (struct jpeg_entropy_encoder *) entropy;
|
||||
lossyc->pub.entropy_start_pass = start_pass_huff;
|
||||
lossyc->pub.need_optimization_pass = need_optimization_pass;
|
||||
|
||||
/* Mark tables unallocated */
|
||||
for (i = 0; i < NUM_HUFF_TBLS; i++) {
|
||||
entropy->dc_derived_tbls[i] = entropy->ac_derived_tbls[i] = NULL;
|
||||
#ifdef ENTROPY_OPT_SUPPORTED
|
||||
entropy->dc_count_ptrs[i] = entropy->ac_count_ptrs[i] = NULL;
|
||||
#endif
|
||||
}
|
||||
}
|
||||
+35
-72
@@ -2,6 +2,7 @@
|
||||
* jctrans.c
|
||||
*
|
||||
* Copyright (C) 1995-1998, Thomas G. Lane.
|
||||
* Modified 2000-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -13,13 +14,11 @@
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h" /* Private declarations for lossy codec */
|
||||
|
||||
|
||||
/* Forward declarations */
|
||||
LOCAL(void) transencode_master_selection
|
||||
JPP((j_compress_ptr cinfo, jvirt_barray_ptr * coef_arrays));
|
||||
LOCAL(void) transencode_codec
|
||||
JPP((j_compress_ptr cinfo, jvirt_barray_ptr * coef_arrays));
|
||||
LOCAL(void) transencode_coef_controller
|
||||
JPP((j_compress_ptr cinfo, jvirt_barray_ptr * coef_arrays));
|
||||
|
||||
@@ -78,6 +77,10 @@ jpeg_copy_critical_parameters (j_decompress_ptr srcinfo,
|
||||
dstinfo->image_height = srcinfo->image_height;
|
||||
dstinfo->input_components = srcinfo->num_components;
|
||||
dstinfo->in_color_space = srcinfo->jpeg_color_space;
|
||||
dstinfo->jpeg_width = srcinfo->output_width;
|
||||
dstinfo->jpeg_height = srcinfo->output_height;
|
||||
dstinfo->min_DCT_h_scaled_size = srcinfo->min_DCT_h_scaled_size;
|
||||
dstinfo->min_DCT_v_scaled_size = srcinfo->min_DCT_v_scaled_size;
|
||||
/* Initialize all parameters to default values */
|
||||
jpeg_set_defaults(dstinfo);
|
||||
/* jpeg_set_defaults may choose wrong colorspace, eg YCbCr if input is RGB.
|
||||
@@ -160,16 +163,18 @@ LOCAL(void)
|
||||
transencode_master_selection (j_compress_ptr cinfo,
|
||||
jvirt_barray_ptr * coef_arrays)
|
||||
{
|
||||
cinfo->data_unit = DCTSIZE;
|
||||
/* Although we don't actually use input_components for transcoding,
|
||||
* jcmaster.c's initial_setup will complain if input_components is 0.
|
||||
*/
|
||||
cinfo->input_components = 1;
|
||||
/* Initialize master control (includes parameter checking/processing) */
|
||||
jinit_c_master_control(cinfo, TRUE /* transcode only */);
|
||||
|
||||
/* We need a special compression codec. */
|
||||
transencode_codec(cinfo, coef_arrays);
|
||||
/* Entropy encoding: either Huffman or arithmetic coding. */
|
||||
if (cinfo->arith_code)
|
||||
jinit_arith_encoder(cinfo);
|
||||
else {
|
||||
jinit_huff_encoder(cinfo);
|
||||
}
|
||||
|
||||
/* We need a special coefficient buffer controller. */
|
||||
transencode_coef_controller(cinfo, coef_arrays);
|
||||
|
||||
jinit_marker_writer(cinfo);
|
||||
|
||||
@@ -195,6 +200,8 @@ transencode_master_selection (j_compress_ptr cinfo,
|
||||
/* Private buffer controller object */
|
||||
|
||||
typedef struct {
|
||||
struct jpeg_c_coef_controller pub; /* public fields */
|
||||
|
||||
JDIMENSION iMCU_row_num; /* iMCU row # within image */
|
||||
JDIMENSION mcu_ctr; /* counts MCUs processed in current row */
|
||||
int MCU_vert_offset; /* counts MCU rows within iMCU row */
|
||||
@@ -204,18 +211,17 @@ typedef struct {
|
||||
jvirt_barray_ptr * whole_image;
|
||||
|
||||
/* Workspace for constructing dummy blocks at right/bottom edges. */
|
||||
JBLOCKROW dummy_buffer[C_MAX_DATA_UNITS_IN_MCU];
|
||||
} c_coef_controller;
|
||||
JBLOCKROW dummy_buffer[C_MAX_BLOCKS_IN_MCU];
|
||||
} my_coef_controller;
|
||||
|
||||
typedef c_coef_controller * c_coef_ptr;
|
||||
typedef my_coef_controller * my_coef_ptr;
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
start_iMCU_row (j_compress_ptr cinfo)
|
||||
/* Reset within-iMCU-row counters for a new row */
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
c_coef_ptr coef = (c_coef_ptr) lossyc->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
|
||||
/* In an interleaved scan, an MCU row is the same as an iMCU row.
|
||||
* In a noninterleaved scan, an iMCU row has v_samp_factor MCU rows.
|
||||
@@ -242,8 +248,7 @@ start_iMCU_row (j_compress_ptr cinfo)
|
||||
METHODDEF(void)
|
||||
start_pass_coef (j_compress_ptr cinfo, J_BUF_MODE pass_mode)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
c_coef_ptr coef = (c_coef_ptr) lossyc->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
|
||||
if (pass_mode != JBUF_CRANK_DEST)
|
||||
ERREXIT(cinfo, JERR_BAD_BUFFER_MODE);
|
||||
@@ -266,15 +271,14 @@ start_pass_coef (j_compress_ptr cinfo, J_BUF_MODE pass_mode)
|
||||
METHODDEF(boolean)
|
||||
compress_output (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
c_coef_ptr coef = (c_coef_ptr) lossyc->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
JDIMENSION MCU_col_num; /* index of current MCU within row */
|
||||
JDIMENSION last_MCU_col = cinfo->MCUs_per_row - 1;
|
||||
JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
int blkn, ci, xindex, yindex, yoffset, blockcnt;
|
||||
JDIMENSION start_col;
|
||||
JBLOCKARRAY buffer[MAX_COMPS_IN_SCAN];
|
||||
JBLOCKROW MCU_buffer[C_MAX_DATA_UNITS_IN_MCU];
|
||||
JBLOCKROW MCU_buffer[C_MAX_BLOCKS_IN_MCU];
|
||||
JBLOCKROW buffer_ptr;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
@@ -324,7 +328,7 @@ compress_output (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
}
|
||||
}
|
||||
/* Try to write the MCU. */
|
||||
if (! (*lossyc->entropy_encode_mcu) (cinfo, MCU_buffer)) {
|
||||
if (! (*cinfo->entropy->encode_mcu) (cinfo, MCU_buffer)) {
|
||||
/* Suspension forced; update state counters and exit */
|
||||
coef->MCU_vert_offset = yoffset;
|
||||
coef->mcu_ctr = MCU_col_num;
|
||||
@@ -345,7 +349,7 @@ compress_output (j_compress_ptr cinfo, JSAMPIMAGE input_buf)
|
||||
* Initialize coefficient buffer controller.
|
||||
*
|
||||
* Each passed coefficient array must be the right size for that
|
||||
* coefficient: width_in_data_units wide and height_in_data_units high,
|
||||
* coefficient: width_in_blocks wide and height_in_blocks high,
|
||||
* with unitheight at least v_samp_factor.
|
||||
*/
|
||||
|
||||
@@ -353,15 +357,16 @@ LOCAL(void)
|
||||
transencode_coef_controller (j_compress_ptr cinfo,
|
||||
jvirt_barray_ptr * coef_arrays)
|
||||
{
|
||||
j_lossy_c_ptr lossyc = (j_lossy_c_ptr) cinfo->codec;
|
||||
c_coef_ptr coef;
|
||||
my_coef_ptr coef;
|
||||
JBLOCKROW buffer;
|
||||
int i;
|
||||
|
||||
coef = (c_coef_ptr)
|
||||
coef = (my_coef_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(c_coef_controller));
|
||||
lossyc->coef_private = (struct jpeg_c_coef_controller *) coef;
|
||||
SIZEOF(my_coef_controller));
|
||||
cinfo->coef = (struct jpeg_c_coef_controller *) coef;
|
||||
coef->pub.start_pass = start_pass_coef;
|
||||
coef->pub.compress_data = compress_output;
|
||||
|
||||
/* Save pointer to virtual arrays */
|
||||
coef->whole_image = coef_arrays;
|
||||
@@ -369,51 +374,9 @@ transencode_coef_controller (j_compress_ptr cinfo,
|
||||
/* Allocate and pre-zero space for dummy DCT blocks. */
|
||||
buffer = (JBLOCKROW)
|
||||
(*cinfo->mem->alloc_large) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
C_MAX_DATA_UNITS_IN_MCU * SIZEOF(JBLOCK));
|
||||
jzero_far((void FAR *) buffer, C_MAX_DATA_UNITS_IN_MCU * SIZEOF(JBLOCK));
|
||||
for (i = 0; i < C_MAX_DATA_UNITS_IN_MCU; i++) {
|
||||
C_MAX_BLOCKS_IN_MCU * SIZEOF(JBLOCK));
|
||||
jzero_far((void FAR *) buffer, C_MAX_BLOCKS_IN_MCU * SIZEOF(JBLOCK));
|
||||
for (i = 0; i < C_MAX_BLOCKS_IN_MCU; i++) {
|
||||
coef->dummy_buffer[i] = buffer + i;
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize the transencoer codec.
|
||||
* This is called only once, during master selection.
|
||||
*/
|
||||
|
||||
LOCAL(void)
|
||||
transencode_codec (j_compress_ptr cinfo,
|
||||
jvirt_barray_ptr * coef_arrays)
|
||||
{
|
||||
j_lossy_c_ptr lossyc;
|
||||
|
||||
/* Create subobject in permanent pool */
|
||||
lossyc = (j_lossy_c_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
|
||||
SIZEOF(jpeg_lossy_c_codec));
|
||||
cinfo->codec = (struct jpeg_c_codec *) lossyc;
|
||||
|
||||
/* Initialize sub-modules */
|
||||
|
||||
/* Entropy encoding: either Huffman or arithmetic coding. */
|
||||
if (cinfo->arith_code) {
|
||||
ERREXIT(cinfo, JERR_ARITH_NOTIMPL);
|
||||
} else {
|
||||
if (cinfo->process == JPROC_PROGRESSIVE) {
|
||||
#ifdef C_PROGRESSIVE_SUPPORTED
|
||||
jinit_phuff_encoder(cinfo);
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
} else
|
||||
jinit_shuff_encoder(cinfo);
|
||||
}
|
||||
|
||||
/* We need a special coefficient buffer controller. */
|
||||
transencode_coef_controller(cinfo, coef_arrays);
|
||||
|
||||
/* Initialize method pointers */
|
||||
lossyc->pub.start_pass = start_pass_coef;
|
||||
lossyc->pub.compress_data = compress_output;
|
||||
}
|
||||
|
||||
@@ -2,6 +2,7 @@
|
||||
* jdapimin.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* Modified 2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -149,16 +150,10 @@ default_decompress_parms (j_decompress_ptr cinfo)
|
||||
else if (cid0 == 82 && cid1 == 71 && cid2 == 66)
|
||||
cinfo->jpeg_color_space = JCS_RGB; /* ASCII 'R', 'G', 'B' */
|
||||
else {
|
||||
if (cinfo->process == JPROC_LOSSLESS) {
|
||||
TRACEMS3(cinfo, 1, JTRC_UNKNOWN_LOSSLESS_IDS, cid0, cid1, cid2);
|
||||
cinfo->jpeg_color_space = JCS_RGB; /* assume it's RGB */
|
||||
}
|
||||
else { /* Lossy processes */
|
||||
TRACEMS3(cinfo, 1, JTRC_UNKNOWN_LOSSY_IDS, cid0, cid1, cid2);
|
||||
TRACEMS3(cinfo, 1, JTRC_UNKNOWN_IDS, cid0, cid1, cid2);
|
||||
cinfo->jpeg_color_space = JCS_YCbCr; /* assume it's YCbCr */
|
||||
}
|
||||
}
|
||||
}
|
||||
/* Always guess RGB is proper output colorspace. */
|
||||
cinfo->out_color_space = JCS_RGB;
|
||||
break;
|
||||
@@ -191,8 +186,8 @@ default_decompress_parms (j_decompress_ptr cinfo)
|
||||
}
|
||||
|
||||
/* Set defaults for other decompression parameters. */
|
||||
cinfo->scale_num = 1; /* 1:1 scaling */
|
||||
cinfo->scale_denom = 1;
|
||||
cinfo->scale_num = cinfo->block_size; /* 1:1 scaling */
|
||||
cinfo->scale_denom = cinfo->block_size;
|
||||
cinfo->output_gamma = 1.0;
|
||||
cinfo->buffered_image = FALSE;
|
||||
cinfo->raw_data_out = FALSE;
|
||||
|
||||
@@ -1,7 +1,7 @@
|
||||
/*
|
||||
* jdapistd.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1994-1996, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -202,12 +202,12 @@ jpeg_read_raw_data (j_decompress_ptr cinfo, JSAMPIMAGE data,
|
||||
}
|
||||
|
||||
/* Verify that at least one iMCU row can be returned. */
|
||||
lines_per_iMCU_row = cinfo->max_v_samp_factor * cinfo->min_codec_data_unit;
|
||||
lines_per_iMCU_row = cinfo->max_v_samp_factor * cinfo->min_DCT_v_scaled_size;
|
||||
if (max_lines < lines_per_iMCU_row)
|
||||
ERREXIT(cinfo, JERR_BUFFER_SIZE);
|
||||
|
||||
/* Decompress directly into user's buffer. */
|
||||
if (! (*cinfo->codec->decompress_data) (cinfo, data))
|
||||
if (! (*cinfo->coef->decompress_data) (cinfo, data))
|
||||
return 0; /* suspension forced, can do nothing more */
|
||||
|
||||
/* OK, we processed one iMCU row. */
|
||||
|
||||
@@ -0,0 +1,772 @@
|
||||
/*
|
||||
* jdarith.c
|
||||
*
|
||||
* Developed 1997-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains portable arithmetic entropy decoding routines for JPEG
|
||||
* (implementing the ISO/IEC IS 10918-1 and CCITT Recommendation ITU-T T.81).
|
||||
*
|
||||
* Both sequential and progressive modes are supported in this single module.
|
||||
*
|
||||
* Suspension is not currently supported in this module.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
|
||||
|
||||
/* Expanded entropy decoder object for arithmetic decoding. */
|
||||
|
||||
typedef struct {
|
||||
struct jpeg_entropy_decoder pub; /* public fields */
|
||||
|
||||
INT32 c; /* C register, base of coding interval + input bit buffer */
|
||||
INT32 a; /* A register, normalized size of coding interval */
|
||||
int ct; /* bit shift counter, # of bits left in bit buffer part of C */
|
||||
/* init: ct = -16 */
|
||||
/* run: ct = 0..7 */
|
||||
/* error: ct = -1 */
|
||||
int last_dc_val[MAX_COMPS_IN_SCAN]; /* last DC coef for each component */
|
||||
int dc_context[MAX_COMPS_IN_SCAN]; /* context index for DC conditioning */
|
||||
|
||||
unsigned int restarts_to_go; /* MCUs left in this restart interval */
|
||||
|
||||
/* Pointers to statistics areas (these workspaces have image lifespan) */
|
||||
unsigned char * dc_stats[NUM_ARITH_TBLS];
|
||||
unsigned char * ac_stats[NUM_ARITH_TBLS];
|
||||
|
||||
/* Statistics bin for coding with fixed probability 0.5 */
|
||||
unsigned char fixed_bin[4];
|
||||
} arith_entropy_decoder;
|
||||
|
||||
typedef arith_entropy_decoder * arith_entropy_ptr;
|
||||
|
||||
/* The following two definitions specify the allocation chunk size
|
||||
* for the statistics area.
|
||||
* According to sections F.1.4.4.1.3 and F.1.4.4.2, we need at least
|
||||
* 49 statistics bins for DC, and 245 statistics bins for AC coding.
|
||||
*
|
||||
* We use a compact representation with 1 byte per statistics bin,
|
||||
* thus the numbers directly represent byte sizes.
|
||||
* This 1 byte per statistics bin contains the meaning of the MPS
|
||||
* (more probable symbol) in the highest bit (mask 0x80), and the
|
||||
* index into the probability estimation state machine table
|
||||
* in the lower bits (mask 0x7F).
|
||||
*/
|
||||
|
||||
#define DC_STAT_BINS 64
|
||||
#define AC_STAT_BINS 256
|
||||
|
||||
|
||||
LOCAL(int)
|
||||
get_byte (j_decompress_ptr cinfo)
|
||||
/* Read next input byte; we do not support suspension in this module. */
|
||||
{
|
||||
struct jpeg_source_mgr * src = cinfo->src;
|
||||
|
||||
if (src->bytes_in_buffer == 0)
|
||||
if (! (*src->fill_input_buffer) (cinfo))
|
||||
ERREXIT(cinfo, JERR_CANT_SUSPEND);
|
||||
src->bytes_in_buffer--;
|
||||
return GETJOCTET(*src->next_input_byte++);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* The core arithmetic decoding routine (common in JPEG and JBIG).
|
||||
* This needs to go as fast as possible.
|
||||
* Machine-dependent optimization facilities
|
||||
* are not utilized in this portable implementation.
|
||||
* However, this code should be fairly efficient and
|
||||
* may be a good base for further optimizations anyway.
|
||||
*
|
||||
* Return value is 0 or 1 (binary decision).
|
||||
*
|
||||
* Note: I've changed the handling of the code base & bit
|
||||
* buffer register C compared to other implementations
|
||||
* based on the standards layout & procedures.
|
||||
* While it also contains both the actual base of the
|
||||
* coding interval (16 bits) and the next-bits buffer,
|
||||
* the cut-point between these two parts is floating
|
||||
* (instead of fixed) with the bit shift counter CT.
|
||||
* Thus, we also need only one (variable instead of
|
||||
* fixed size) shift for the LPS/MPS decision, and
|
||||
* we can get away with any renormalization update
|
||||
* of C (except for new data insertion, of course).
|
||||
*
|
||||
* I've also introduced a new scheme for accessing
|
||||
* the probability estimation state machine table,
|
||||
* derived from Markus Kuhn's JBIG implementation.
|
||||
*/
|
||||
|
||||
LOCAL(int)
|
||||
arith_decode (j_decompress_ptr cinfo, unsigned char *st)
|
||||
{
|
||||
register arith_entropy_ptr e = (arith_entropy_ptr) cinfo->entropy;
|
||||
register unsigned char nl, nm;
|
||||
register INT32 qe, temp;
|
||||
register int sv, data;
|
||||
|
||||
/* Renormalization & data input per section D.2.6 */
|
||||
while (e->a < 0x8000L) {
|
||||
if (--e->ct < 0) {
|
||||
/* Need to fetch next data byte */
|
||||
if (cinfo->unread_marker)
|
||||
data = 0; /* stuff zero data */
|
||||
else {
|
||||
data = get_byte(cinfo); /* read next input byte */
|
||||
if (data == 0xFF) { /* zero stuff or marker code */
|
||||
do data = get_byte(cinfo);
|
||||
while (data == 0xFF); /* swallow extra 0xFF bytes */
|
||||
if (data == 0)
|
||||
data = 0xFF; /* discard stuffed zero byte */
|
||||
else {
|
||||
/* Note: Different from the Huffman decoder, hitting
|
||||
* a marker while processing the compressed data
|
||||
* segment is legal in arithmetic coding.
|
||||
* The convention is to supply zero data
|
||||
* then until decoding is complete.
|
||||
*/
|
||||
cinfo->unread_marker = data;
|
||||
data = 0;
|
||||
}
|
||||
}
|
||||
}
|
||||
e->c = (e->c << 8) | data; /* insert data into C register */
|
||||
if ((e->ct += 8) < 0) /* update bit shift counter */
|
||||
/* Need more initial bytes */
|
||||
if (++e->ct == 0)
|
||||
/* Got 2 initial bytes -> re-init A and exit loop */
|
||||
e->a = 0x8000L; /* => e->a = 0x10000L after loop exit */
|
||||
}
|
||||
e->a <<= 1;
|
||||
}
|
||||
|
||||
/* Fetch values from our compact representation of Table D.2:
|
||||
* Qe values and probability estimation state machine
|
||||
*/
|
||||
sv = *st;
|
||||
qe = jpeg_aritab[sv & 0x7F]; /* => Qe_Value */
|
||||
nl = qe & 0xFF; qe >>= 8; /* Next_Index_LPS + Switch_MPS */
|
||||
nm = qe & 0xFF; qe >>= 8; /* Next_Index_MPS */
|
||||
|
||||
/* Decode & estimation procedures per sections D.2.4 & D.2.5 */
|
||||
temp = e->a - qe;
|
||||
e->a = temp;
|
||||
temp <<= e->ct;
|
||||
if (e->c >= temp) {
|
||||
e->c -= temp;
|
||||
/* Conditional LPS (less probable symbol) exchange */
|
||||
if (e->a < qe) {
|
||||
e->a = qe;
|
||||
*st = (sv & 0x80) ^ nm; /* Estimate_after_MPS */
|
||||
} else {
|
||||
e->a = qe;
|
||||
*st = (sv & 0x80) ^ nl; /* Estimate_after_LPS */
|
||||
sv ^= 0x80; /* Exchange LPS/MPS */
|
||||
}
|
||||
} else if (e->a < 0x8000L) {
|
||||
/* Conditional MPS (more probable symbol) exchange */
|
||||
if (e->a < qe) {
|
||||
*st = (sv & 0x80) ^ nl; /* Estimate_after_LPS */
|
||||
sv ^= 0x80; /* Exchange LPS/MPS */
|
||||
} else {
|
||||
*st = (sv & 0x80) ^ nm; /* Estimate_after_MPS */
|
||||
}
|
||||
}
|
||||
|
||||
return sv >> 7;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Check for a restart marker & resynchronize decoder.
|
||||
*/
|
||||
|
||||
LOCAL(void)
|
||||
process_restart (j_decompress_ptr cinfo)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
int ci;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
/* Advance past the RSTn marker */
|
||||
if (! (*cinfo->marker->read_restart_marker) (cinfo))
|
||||
ERREXIT(cinfo, JERR_CANT_SUSPEND);
|
||||
|
||||
/* Re-initialize statistics areas */
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
if (! cinfo->progressive_mode || (cinfo->Ss == 0 && cinfo->Ah == 0)) {
|
||||
MEMZERO(entropy->dc_stats[compptr->dc_tbl_no], DC_STAT_BINS);
|
||||
/* Reset DC predictions to 0 */
|
||||
entropy->last_dc_val[ci] = 0;
|
||||
entropy->dc_context[ci] = 0;
|
||||
}
|
||||
if ((! cinfo->progressive_mode && cinfo->lim_Se) ||
|
||||
(cinfo->progressive_mode && cinfo->Ss)) {
|
||||
MEMZERO(entropy->ac_stats[compptr->ac_tbl_no], AC_STAT_BINS);
|
||||
}
|
||||
}
|
||||
|
||||
/* Reset arithmetic decoding variables */
|
||||
entropy->c = 0;
|
||||
entropy->a = 0;
|
||||
entropy->ct = -16; /* force reading 2 initial bytes to fill C */
|
||||
|
||||
/* Reset restart counter */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Arithmetic MCU decoding.
|
||||
* Each of these routines decodes and returns one MCU's worth of
|
||||
* arithmetic-compressed coefficients.
|
||||
* The coefficients are reordered from zigzag order into natural array order,
|
||||
* but are not dequantized.
|
||||
*
|
||||
* The i'th block of the MCU is stored into the block pointed to by
|
||||
* MCU_data[i]. WE ASSUME THIS AREA IS INITIALLY ZEROED BY THE CALLER.
|
||||
*/
|
||||
|
||||
/*
|
||||
* MCU decoding for DC initial scan (either spectral selection,
|
||||
* or first pass of successive approximation).
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
decode_mcu_DC_first (j_decompress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
JBLOCKROW block;
|
||||
unsigned char *st;
|
||||
int blkn, ci, tbl, sign;
|
||||
int v, m;
|
||||
|
||||
/* Process restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
process_restart(cinfo);
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
if (entropy->ct == -1) return TRUE; /* if error do nothing */
|
||||
|
||||
/* Outer loop handles each block in the MCU */
|
||||
|
||||
for (blkn = 0; blkn < cinfo->blocks_in_MCU; blkn++) {
|
||||
block = MCU_data[blkn];
|
||||
ci = cinfo->MCU_membership[blkn];
|
||||
tbl = cinfo->cur_comp_info[ci]->dc_tbl_no;
|
||||
|
||||
/* Sections F.2.4.1 & F.1.4.4.1: Decoding of DC coefficients */
|
||||
|
||||
/* Table F.4: Point to statistics bin S0 for DC coefficient coding */
|
||||
st = entropy->dc_stats[tbl] + entropy->dc_context[ci];
|
||||
|
||||
/* Figure F.19: Decode_DC_DIFF */
|
||||
if (arith_decode(cinfo, st) == 0)
|
||||
entropy->dc_context[ci] = 0;
|
||||
else {
|
||||
/* Figure F.21: Decoding nonzero value v */
|
||||
/* Figure F.22: Decoding the sign of v */
|
||||
sign = arith_decode(cinfo, st + 1);
|
||||
st += 2; st += sign;
|
||||
/* Figure F.23: Decoding the magnitude category of v */
|
||||
if ((m = arith_decode(cinfo, st)) != 0) {
|
||||
st = entropy->dc_stats[tbl] + 20; /* Table F.4: X1 = 20 */
|
||||
while (arith_decode(cinfo, st)) {
|
||||
if ((m <<= 1) == 0x8000) {
|
||||
WARNMS(cinfo, JWRN_ARITH_BAD_CODE);
|
||||
entropy->ct = -1; /* magnitude overflow */
|
||||
return TRUE;
|
||||
}
|
||||
st += 1;
|
||||
}
|
||||
}
|
||||
/* Section F.1.4.4.1.2: Establish dc_context conditioning category */
|
||||
if (m < (int) ((1L << cinfo->arith_dc_L[tbl]) >> 1))
|
||||
entropy->dc_context[ci] = 0; /* zero diff category */
|
||||
else if (m > (int) ((1L << cinfo->arith_dc_U[tbl]) >> 1))
|
||||
entropy->dc_context[ci] = 12 + (sign * 4); /* large diff category */
|
||||
else
|
||||
entropy->dc_context[ci] = 4 + (sign * 4); /* small diff category */
|
||||
v = m;
|
||||
/* Figure F.24: Decoding the magnitude bit pattern of v */
|
||||
st += 14;
|
||||
while (m >>= 1)
|
||||
if (arith_decode(cinfo, st)) v |= m;
|
||||
v += 1; if (sign) v = -v;
|
||||
entropy->last_dc_val[ci] += v;
|
||||
}
|
||||
|
||||
/* Scale and output the DC coefficient (assumes jpeg_natural_order[0]=0) */
|
||||
(*block)[0] = (JCOEF) (entropy->last_dc_val[ci] << cinfo->Al);
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU decoding for AC initial scan (either spectral selection,
|
||||
* or first pass of successive approximation).
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
decode_mcu_AC_first (j_decompress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
JBLOCKROW block;
|
||||
unsigned char *st;
|
||||
int tbl, sign, k;
|
||||
int v, m;
|
||||
const int * natural_order;
|
||||
|
||||
/* Process restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
process_restart(cinfo);
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
if (entropy->ct == -1) return TRUE; /* if error do nothing */
|
||||
|
||||
natural_order = cinfo->natural_order;
|
||||
|
||||
/* There is always only one block per MCU */
|
||||
block = MCU_data[0];
|
||||
tbl = cinfo->cur_comp_info[0]->ac_tbl_no;
|
||||
|
||||
/* Sections F.2.4.2 & F.1.4.4.2: Decoding of AC coefficients */
|
||||
|
||||
/* Figure F.20: Decode_AC_coefficients */
|
||||
for (k = cinfo->Ss; k <= cinfo->Se; k++) {
|
||||
st = entropy->ac_stats[tbl] + 3 * (k - 1);
|
||||
if (arith_decode(cinfo, st)) break; /* EOB flag */
|
||||
while (arith_decode(cinfo, st + 1) == 0) {
|
||||
st += 3; k++;
|
||||
if (k > cinfo->Se) {
|
||||
WARNMS(cinfo, JWRN_ARITH_BAD_CODE);
|
||||
entropy->ct = -1; /* spectral overflow */
|
||||
return TRUE;
|
||||
}
|
||||
}
|
||||
/* Figure F.21: Decoding nonzero value v */
|
||||
/* Figure F.22: Decoding the sign of v */
|
||||
sign = arith_decode(cinfo, entropy->fixed_bin);
|
||||
st += 2;
|
||||
/* Figure F.23: Decoding the magnitude category of v */
|
||||
if ((m = arith_decode(cinfo, st)) != 0) {
|
||||
if (arith_decode(cinfo, st)) {
|
||||
m <<= 1;
|
||||
st = entropy->ac_stats[tbl] +
|
||||
(k <= cinfo->arith_ac_K[tbl] ? 189 : 217);
|
||||
while (arith_decode(cinfo, st)) {
|
||||
if ((m <<= 1) == 0x8000) {
|
||||
WARNMS(cinfo, JWRN_ARITH_BAD_CODE);
|
||||
entropy->ct = -1; /* magnitude overflow */
|
||||
return TRUE;
|
||||
}
|
||||
st += 1;
|
||||
}
|
||||
}
|
||||
}
|
||||
v = m;
|
||||
/* Figure F.24: Decoding the magnitude bit pattern of v */
|
||||
st += 14;
|
||||
while (m >>= 1)
|
||||
if (arith_decode(cinfo, st)) v |= m;
|
||||
v += 1; if (sign) v = -v;
|
||||
/* Scale and output coefficient in natural (dezigzagged) order */
|
||||
(*block)[natural_order[k]] = (JCOEF) (v << cinfo->Al);
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU decoding for DC successive approximation refinement scan.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
decode_mcu_DC_refine (j_decompress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
unsigned char *st;
|
||||
int p1, blkn;
|
||||
|
||||
/* Process restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
process_restart(cinfo);
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
st = entropy->fixed_bin; /* use fixed probability estimation */
|
||||
p1 = 1 << cinfo->Al; /* 1 in the bit position being coded */
|
||||
|
||||
/* Outer loop handles each block in the MCU */
|
||||
|
||||
for (blkn = 0; blkn < cinfo->blocks_in_MCU; blkn++) {
|
||||
/* Encoded data is simply the next bit of the two's-complement DC value */
|
||||
if (arith_decode(cinfo, st))
|
||||
MCU_data[blkn][0][0] |= p1;
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU decoding for AC successive approximation refinement scan.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
decode_mcu_AC_refine (j_decompress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
JBLOCKROW block;
|
||||
JCOEFPTR thiscoef;
|
||||
unsigned char *st;
|
||||
int tbl, k, kex;
|
||||
int p1, m1;
|
||||
const int * natural_order;
|
||||
|
||||
/* Process restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
process_restart(cinfo);
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
if (entropy->ct == -1) return TRUE; /* if error do nothing */
|
||||
|
||||
natural_order = cinfo->natural_order;
|
||||
|
||||
/* There is always only one block per MCU */
|
||||
block = MCU_data[0];
|
||||
tbl = cinfo->cur_comp_info[0]->ac_tbl_no;
|
||||
|
||||
p1 = 1 << cinfo->Al; /* 1 in the bit position being coded */
|
||||
m1 = (-1) << cinfo->Al; /* -1 in the bit position being coded */
|
||||
|
||||
/* Establish EOBx (previous stage end-of-block) index */
|
||||
for (kex = cinfo->Se; kex > 0; kex--)
|
||||
if ((*block)[natural_order[kex]]) break;
|
||||
|
||||
for (k = cinfo->Ss; k <= cinfo->Se; k++) {
|
||||
st = entropy->ac_stats[tbl] + 3 * (k - 1);
|
||||
if (k > kex)
|
||||
if (arith_decode(cinfo, st)) break; /* EOB flag */
|
||||
for (;;) {
|
||||
thiscoef = *block + natural_order[k];
|
||||
if (*thiscoef) { /* previously nonzero coef */
|
||||
if (arith_decode(cinfo, st + 2)) {
|
||||
if (*thiscoef < 0)
|
||||
*thiscoef += m1;
|
||||
else
|
||||
*thiscoef += p1;
|
||||
}
|
||||
break;
|
||||
}
|
||||
if (arith_decode(cinfo, st + 1)) { /* newly nonzero coef */
|
||||
if (arith_decode(cinfo, entropy->fixed_bin))
|
||||
*thiscoef = m1;
|
||||
else
|
||||
*thiscoef = p1;
|
||||
break;
|
||||
}
|
||||
st += 3; k++;
|
||||
if (k > cinfo->Se) {
|
||||
WARNMS(cinfo, JWRN_ARITH_BAD_CODE);
|
||||
entropy->ct = -1; /* spectral overflow */
|
||||
return TRUE;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Decode one MCU's worth of arithmetic-compressed coefficients.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
decode_mcu (j_decompress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
jpeg_component_info * compptr;
|
||||
JBLOCKROW block;
|
||||
unsigned char *st;
|
||||
int blkn, ci, tbl, sign, k;
|
||||
int v, m;
|
||||
const int * natural_order;
|
||||
|
||||
/* Process restart marker if needed */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
process_restart(cinfo);
|
||||
entropy->restarts_to_go--;
|
||||
}
|
||||
|
||||
if (entropy->ct == -1) return TRUE; /* if error do nothing */
|
||||
|
||||
natural_order = cinfo->natural_order;
|
||||
|
||||
/* Outer loop handles each block in the MCU */
|
||||
|
||||
for (blkn = 0; blkn < cinfo->blocks_in_MCU; blkn++) {
|
||||
block = MCU_data[blkn];
|
||||
ci = cinfo->MCU_membership[blkn];
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
|
||||
/* Sections F.2.4.1 & F.1.4.4.1: Decoding of DC coefficients */
|
||||
|
||||
tbl = compptr->dc_tbl_no;
|
||||
|
||||
/* Table F.4: Point to statistics bin S0 for DC coefficient coding */
|
||||
st = entropy->dc_stats[tbl] + entropy->dc_context[ci];
|
||||
|
||||
/* Figure F.19: Decode_DC_DIFF */
|
||||
if (arith_decode(cinfo, st) == 0)
|
||||
entropy->dc_context[ci] = 0;
|
||||
else {
|
||||
/* Figure F.21: Decoding nonzero value v */
|
||||
/* Figure F.22: Decoding the sign of v */
|
||||
sign = arith_decode(cinfo, st + 1);
|
||||
st += 2; st += sign;
|
||||
/* Figure F.23: Decoding the magnitude category of v */
|
||||
if ((m = arith_decode(cinfo, st)) != 0) {
|
||||
st = entropy->dc_stats[tbl] + 20; /* Table F.4: X1 = 20 */
|
||||
while (arith_decode(cinfo, st)) {
|
||||
if ((m <<= 1) == 0x8000) {
|
||||
WARNMS(cinfo, JWRN_ARITH_BAD_CODE);
|
||||
entropy->ct = -1; /* magnitude overflow */
|
||||
return TRUE;
|
||||
}
|
||||
st += 1;
|
||||
}
|
||||
}
|
||||
/* Section F.1.4.4.1.2: Establish dc_context conditioning category */
|
||||
if (m < (int) ((1L << cinfo->arith_dc_L[tbl]) >> 1))
|
||||
entropy->dc_context[ci] = 0; /* zero diff category */
|
||||
else if (m > (int) ((1L << cinfo->arith_dc_U[tbl]) >> 1))
|
||||
entropy->dc_context[ci] = 12 + (sign * 4); /* large diff category */
|
||||
else
|
||||
entropy->dc_context[ci] = 4 + (sign * 4); /* small diff category */
|
||||
v = m;
|
||||
/* Figure F.24: Decoding the magnitude bit pattern of v */
|
||||
st += 14;
|
||||
while (m >>= 1)
|
||||
if (arith_decode(cinfo, st)) v |= m;
|
||||
v += 1; if (sign) v = -v;
|
||||
entropy->last_dc_val[ci] += v;
|
||||
}
|
||||
|
||||
(*block)[0] = (JCOEF) entropy->last_dc_val[ci];
|
||||
|
||||
/* Sections F.2.4.2 & F.1.4.4.2: Decoding of AC coefficients */
|
||||
|
||||
tbl = compptr->ac_tbl_no;
|
||||
|
||||
/* Figure F.20: Decode_AC_coefficients */
|
||||
for (k = 1; k <= cinfo->lim_Se; k++) {
|
||||
st = entropy->ac_stats[tbl] + 3 * (k - 1);
|
||||
if (arith_decode(cinfo, st)) break; /* EOB flag */
|
||||
while (arith_decode(cinfo, st + 1) == 0) {
|
||||
st += 3; k++;
|
||||
if (k > cinfo->lim_Se) {
|
||||
WARNMS(cinfo, JWRN_ARITH_BAD_CODE);
|
||||
entropy->ct = -1; /* spectral overflow */
|
||||
return TRUE;
|
||||
}
|
||||
}
|
||||
/* Figure F.21: Decoding nonzero value v */
|
||||
/* Figure F.22: Decoding the sign of v */
|
||||
sign = arith_decode(cinfo, entropy->fixed_bin);
|
||||
st += 2;
|
||||
/* Figure F.23: Decoding the magnitude category of v */
|
||||
if ((m = arith_decode(cinfo, st)) != 0) {
|
||||
if (arith_decode(cinfo, st)) {
|
||||
m <<= 1;
|
||||
st = entropy->ac_stats[tbl] +
|
||||
(k <= cinfo->arith_ac_K[tbl] ? 189 : 217);
|
||||
while (arith_decode(cinfo, st)) {
|
||||
if ((m <<= 1) == 0x8000) {
|
||||
WARNMS(cinfo, JWRN_ARITH_BAD_CODE);
|
||||
entropy->ct = -1; /* magnitude overflow */
|
||||
return TRUE;
|
||||
}
|
||||
st += 1;
|
||||
}
|
||||
}
|
||||
}
|
||||
v = m;
|
||||
/* Figure F.24: Decoding the magnitude bit pattern of v */
|
||||
st += 14;
|
||||
while (m >>= 1)
|
||||
if (arith_decode(cinfo, st)) v |= m;
|
||||
v += 1; if (sign) v = -v;
|
||||
(*block)[natural_order[k]] = (JCOEF) v;
|
||||
}
|
||||
}
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for an arithmetic-compressed scan.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass (j_decompress_ptr cinfo)
|
||||
{
|
||||
arith_entropy_ptr entropy = (arith_entropy_ptr) cinfo->entropy;
|
||||
int ci, tbl;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
if (cinfo->progressive_mode) {
|
||||
/* Validate progressive scan parameters */
|
||||
if (cinfo->Ss == 0) {
|
||||
if (cinfo->Se != 0)
|
||||
goto bad;
|
||||
} else {
|
||||
/* need not check Ss/Se < 0 since they came from unsigned bytes */
|
||||
if (cinfo->Se < cinfo->Ss || cinfo->Se > cinfo->lim_Se)
|
||||
goto bad;
|
||||
/* AC scans may have only one component */
|
||||
if (cinfo->comps_in_scan != 1)
|
||||
goto bad;
|
||||
}
|
||||
if (cinfo->Ah != 0) {
|
||||
/* Successive approximation refinement scan: must have Al = Ah-1. */
|
||||
if (cinfo->Ah-1 != cinfo->Al)
|
||||
goto bad;
|
||||
}
|
||||
if (cinfo->Al > 13) { /* need not check for < 0 */
|
||||
bad:
|
||||
ERREXIT4(cinfo, JERR_BAD_PROGRESSION,
|
||||
cinfo->Ss, cinfo->Se, cinfo->Ah, cinfo->Al);
|
||||
}
|
||||
/* Update progression status, and verify that scan order is legal.
|
||||
* Note that inter-scan inconsistencies are treated as warnings
|
||||
* not fatal errors ... not clear if this is right way to behave.
|
||||
*/
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
int coefi, cindex = cinfo->cur_comp_info[ci]->component_index;
|
||||
int *coef_bit_ptr = & cinfo->coef_bits[cindex][0];
|
||||
if (cinfo->Ss && coef_bit_ptr[0] < 0) /* AC without prior DC scan */
|
||||
WARNMS2(cinfo, JWRN_BOGUS_PROGRESSION, cindex, 0);
|
||||
for (coefi = cinfo->Ss; coefi <= cinfo->Se; coefi++) {
|
||||
int expected = (coef_bit_ptr[coefi] < 0) ? 0 : coef_bit_ptr[coefi];
|
||||
if (cinfo->Ah != expected)
|
||||
WARNMS2(cinfo, JWRN_BOGUS_PROGRESSION, cindex, coefi);
|
||||
coef_bit_ptr[coefi] = cinfo->Al;
|
||||
}
|
||||
}
|
||||
/* Select MCU decoding routine */
|
||||
if (cinfo->Ah == 0) {
|
||||
if (cinfo->Ss == 0)
|
||||
entropy->pub.decode_mcu = decode_mcu_DC_first;
|
||||
else
|
||||
entropy->pub.decode_mcu = decode_mcu_AC_first;
|
||||
} else {
|
||||
if (cinfo->Ss == 0)
|
||||
entropy->pub.decode_mcu = decode_mcu_DC_refine;
|
||||
else
|
||||
entropy->pub.decode_mcu = decode_mcu_AC_refine;
|
||||
}
|
||||
} else {
|
||||
/* Check that the scan parameters Ss, Se, Ah/Al are OK for sequential JPEG.
|
||||
* This ought to be an error condition, but we make it a warning.
|
||||
*/
|
||||
if (cinfo->Ss != 0 || cinfo->Ah != 0 || cinfo->Al != 0 ||
|
||||
(cinfo->Se < DCTSIZE2 && cinfo->Se != cinfo->lim_Se))
|
||||
WARNMS(cinfo, JWRN_NOT_SEQUENTIAL);
|
||||
/* Select MCU decoding routine */
|
||||
entropy->pub.decode_mcu = decode_mcu;
|
||||
}
|
||||
|
||||
/* Allocate & initialize requested statistics areas */
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
if (! cinfo->progressive_mode || (cinfo->Ss == 0 && cinfo->Ah == 0)) {
|
||||
tbl = compptr->dc_tbl_no;
|
||||
if (tbl < 0 || tbl >= NUM_ARITH_TBLS)
|
||||
ERREXIT1(cinfo, JERR_NO_ARITH_TABLE, tbl);
|
||||
if (entropy->dc_stats[tbl] == NULL)
|
||||
entropy->dc_stats[tbl] = (unsigned char *) (*cinfo->mem->alloc_small)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE, DC_STAT_BINS);
|
||||
MEMZERO(entropy->dc_stats[tbl], DC_STAT_BINS);
|
||||
/* Initialize DC predictions to 0 */
|
||||
entropy->last_dc_val[ci] = 0;
|
||||
entropy->dc_context[ci] = 0;
|
||||
}
|
||||
if ((! cinfo->progressive_mode && cinfo->lim_Se) ||
|
||||
(cinfo->progressive_mode && cinfo->Ss)) {
|
||||
tbl = compptr->ac_tbl_no;
|
||||
if (tbl < 0 || tbl >= NUM_ARITH_TBLS)
|
||||
ERREXIT1(cinfo, JERR_NO_ARITH_TABLE, tbl);
|
||||
if (entropy->ac_stats[tbl] == NULL)
|
||||
entropy->ac_stats[tbl] = (unsigned char *) (*cinfo->mem->alloc_small)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE, AC_STAT_BINS);
|
||||
MEMZERO(entropy->ac_stats[tbl], AC_STAT_BINS);
|
||||
}
|
||||
}
|
||||
|
||||
/* Initialize arithmetic decoding variables */
|
||||
entropy->c = 0;
|
||||
entropy->a = 0;
|
||||
entropy->ct = -16; /* force reading 2 initial bytes to fill C */
|
||||
|
||||
/* Initialize restart counter */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Module initialization routine for arithmetic entropy decoding.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_arith_decoder (j_decompress_ptr cinfo)
|
||||
{
|
||||
arith_entropy_ptr entropy;
|
||||
int i;
|
||||
|
||||
entropy = (arith_entropy_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(arith_entropy_decoder));
|
||||
cinfo->entropy = (struct jpeg_entropy_decoder *) entropy;
|
||||
entropy->pub.start_pass = start_pass;
|
||||
|
||||
/* Mark tables unallocated */
|
||||
for (i = 0; i < NUM_ARITH_TBLS; i++) {
|
||||
entropy->dc_stats[i] = NULL;
|
||||
entropy->ac_stats[i] = NULL;
|
||||
}
|
||||
|
||||
/* Initialize index for fixed probability estimation */
|
||||
entropy->fixed_bin[0] = 113;
|
||||
|
||||
if (cinfo->progressive_mode) {
|
||||
/* Create progression status table */
|
||||
int *coef_bit_ptr, ci;
|
||||
cinfo->coef_bits = (int (*)[DCTSIZE2])
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
cinfo->num_components*DCTSIZE2*SIZEOF(int));
|
||||
coef_bit_ptr = & cinfo->coef_bits[0][0];
|
||||
for (ci = 0; ci < cinfo->num_components; ci++)
|
||||
for (i = 0; i < DCTSIZE2; i++)
|
||||
*coef_bit_ptr++ = -1;
|
||||
}
|
||||
}
|
||||
+119
-3
@@ -2,13 +2,14 @@
|
||||
* jdatadst.c
|
||||
*
|
||||
* Copyright (C) 1994-1996, Thomas G. Lane.
|
||||
* Modified 2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains compression data destination routines for the case of
|
||||
* emitting JPEG data to a file (or any stdio stream). While these routines
|
||||
* are sufficient for most applications, some will want to use a different
|
||||
* destination manager.
|
||||
* emitting JPEG data to memory or to a file (or any stdio stream).
|
||||
* While these routines are sufficient for most applications,
|
||||
* some will want to use a different destination manager.
|
||||
* IMPORTANT: we assume that fwrite() will correctly transcribe an array of
|
||||
* JOCTETs into 8-bit-wide elements on external storage. If char is wider
|
||||
* than 8 bits on your machine, you may need to do some tweaking.
|
||||
@@ -19,6 +20,11 @@
|
||||
#include "jpeglib.h"
|
||||
#include "jerror.h"
|
||||
|
||||
#ifndef HAVE_STDLIB_H /* <stdlib.h> should declare malloc(),free() */
|
||||
extern void * malloc JPP((size_t size));
|
||||
extern void free JPP((void *ptr));
|
||||
#endif
|
||||
|
||||
|
||||
/* Expanded data destination object for stdio output */
|
||||
|
||||
@@ -34,6 +40,21 @@ typedef my_destination_mgr * my_dest_ptr;
|
||||
#define OUTPUT_BUF_SIZE 4096 /* choose an efficiently fwrite'able size */
|
||||
|
||||
|
||||
/* Expanded data destination object for memory output */
|
||||
|
||||
typedef struct {
|
||||
struct jpeg_destination_mgr pub; /* public fields */
|
||||
|
||||
unsigned char ** outbuffer; /* target buffer */
|
||||
unsigned long * outsize;
|
||||
unsigned char * newbuffer; /* newly allocated buffer */
|
||||
JOCTET * buffer; /* start of buffer */
|
||||
size_t bufsize;
|
||||
} my_mem_destination_mgr;
|
||||
|
||||
typedef my_mem_destination_mgr * my_mem_dest_ptr;
|
||||
|
||||
|
||||
/*
|
||||
* Initialize destination --- called by jpeg_start_compress
|
||||
* before any data is actually written.
|
||||
@@ -53,6 +74,12 @@ init_destination (j_compress_ptr cinfo)
|
||||
dest->pub.free_in_buffer = OUTPUT_BUF_SIZE;
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
init_mem_destination (j_compress_ptr cinfo)
|
||||
{
|
||||
/* no work necessary here */
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Empty the output buffer --- called whenever buffer fills up.
|
||||
@@ -92,6 +119,36 @@ empty_output_buffer (j_compress_ptr cinfo)
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
METHODDEF(boolean)
|
||||
empty_mem_output_buffer (j_compress_ptr cinfo)
|
||||
{
|
||||
size_t nextsize;
|
||||
JOCTET * nextbuffer;
|
||||
my_mem_dest_ptr dest = (my_mem_dest_ptr) cinfo->dest;
|
||||
|
||||
/* Try to allocate new buffer with double size */
|
||||
nextsize = dest->bufsize * 2;
|
||||
nextbuffer = malloc(nextsize);
|
||||
|
||||
if (nextbuffer == NULL)
|
||||
ERREXIT1(cinfo, JERR_OUT_OF_MEMORY, 10);
|
||||
|
||||
MEMCOPY(nextbuffer, dest->buffer, dest->bufsize);
|
||||
|
||||
if (dest->newbuffer != NULL)
|
||||
free(dest->newbuffer);
|
||||
|
||||
dest->newbuffer = nextbuffer;
|
||||
|
||||
dest->pub.next_output_byte = nextbuffer + dest->bufsize;
|
||||
dest->pub.free_in_buffer = dest->bufsize;
|
||||
|
||||
dest->buffer = nextbuffer;
|
||||
dest->bufsize = nextsize;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Terminate destination --- called by jpeg_finish_compress
|
||||
@@ -119,6 +176,15 @@ term_destination (j_compress_ptr cinfo)
|
||||
ERREXIT(cinfo, JERR_FILE_WRITE);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
term_mem_destination (j_compress_ptr cinfo)
|
||||
{
|
||||
my_mem_dest_ptr dest = (my_mem_dest_ptr) cinfo->dest;
|
||||
|
||||
*dest->outbuffer = dest->buffer;
|
||||
*dest->outsize = dest->bufsize - dest->pub.free_in_buffer;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Prepare for output to a stdio stream.
|
||||
@@ -149,3 +215,53 @@ jpeg_stdio_dest (j_compress_ptr cinfo, FILE * outfile)
|
||||
dest->pub.term_destination = term_destination;
|
||||
dest->outfile = outfile;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Prepare for output to a memory buffer.
|
||||
* The caller may supply an own initial buffer with appropriate size.
|
||||
* Otherwise, or when the actual data output exceeds the given size,
|
||||
* the library adapts the buffer size as necessary.
|
||||
* The standard library functions malloc/free are used for allocating
|
||||
* larger memory, so the buffer is available to the application after
|
||||
* finishing compression, and then the application is responsible for
|
||||
* freeing the requested memory.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_mem_dest (j_compress_ptr cinfo,
|
||||
unsigned char ** outbuffer, unsigned long * outsize)
|
||||
{
|
||||
my_mem_dest_ptr dest;
|
||||
|
||||
if (outbuffer == NULL || outsize == NULL) /* sanity check */
|
||||
ERREXIT(cinfo, JERR_BUFFER_SIZE);
|
||||
|
||||
/* The destination object is made permanent so that multiple JPEG images
|
||||
* can be written to the same buffer without re-executing jpeg_mem_dest.
|
||||
*/
|
||||
if (cinfo->dest == NULL) { /* first time for this JPEG object? */
|
||||
cinfo->dest = (struct jpeg_destination_mgr *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
|
||||
SIZEOF(my_mem_destination_mgr));
|
||||
}
|
||||
|
||||
dest = (my_mem_dest_ptr) cinfo->dest;
|
||||
dest->pub.init_destination = init_mem_destination;
|
||||
dest->pub.empty_output_buffer = empty_mem_output_buffer;
|
||||
dest->pub.term_destination = term_mem_destination;
|
||||
dest->outbuffer = outbuffer;
|
||||
dest->outsize = outsize;
|
||||
dest->newbuffer = NULL;
|
||||
|
||||
if (*outbuffer == NULL || *outsize == 0) {
|
||||
/* Allocate initial buffer */
|
||||
dest->newbuffer = *outbuffer = malloc(OUTPUT_BUF_SIZE);
|
||||
if (dest->newbuffer == NULL)
|
||||
ERREXIT1(cinfo, JERR_OUT_OF_MEMORY, 10);
|
||||
*outsize = OUTPUT_BUF_SIZE;
|
||||
}
|
||||
|
||||
dest->pub.next_output_byte = dest->buffer = *outbuffer;
|
||||
dest->pub.free_in_buffer = dest->bufsize = *outsize;
|
||||
}
|
||||
|
||||
@@ -2,13 +2,14 @@
|
||||
* jdatasrc.c
|
||||
*
|
||||
* Copyright (C) 1994-1996, Thomas G. Lane.
|
||||
* Modified 2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains decompression data source routines for the case of
|
||||
* reading JPEG data from a file (or any stdio stream). While these routines
|
||||
* are sufficient for most applications, some will want to use a different
|
||||
* source manager.
|
||||
* reading JPEG data from memory or from a file (or any stdio stream).
|
||||
* While these routines are sufficient for most applications,
|
||||
* some will want to use a different source manager.
|
||||
* IMPORTANT: we assume that fread() will correctly transcribe an array of
|
||||
* JOCTETs from 8-bit-wide elements on external storage. If char is wider
|
||||
* than 8 bits on your machine, you may need to do some tweaking.
|
||||
@@ -52,6 +53,12 @@ init_source (j_decompress_ptr cinfo)
|
||||
src->start_of_file = TRUE;
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
init_mem_source (j_decompress_ptr cinfo)
|
||||
{
|
||||
/* no work necessary here */
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Fill the input buffer --- called whenever buffer is emptied.
|
||||
@@ -111,6 +118,26 @@ fill_input_buffer (j_decompress_ptr cinfo)
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
METHODDEF(boolean)
|
||||
fill_mem_input_buffer (j_decompress_ptr cinfo)
|
||||
{
|
||||
static JOCTET mybuffer[4];
|
||||
|
||||
/* The whole JPEG data is expected to reside in the supplied memory
|
||||
* buffer, so any request for more data beyond the given buffer size
|
||||
* is treated as an error.
|
||||
*/
|
||||
WARNMS(cinfo, JWRN_JPEG_EOF);
|
||||
/* Insert a fake EOI marker */
|
||||
mybuffer[0] = (JOCTET) 0xFF;
|
||||
mybuffer[1] = (JOCTET) JPEG_EOI;
|
||||
|
||||
cinfo->src->next_input_byte = mybuffer;
|
||||
cinfo->src->bytes_in_buffer = 2;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Skip data --- used to skip over a potentially large amount of
|
||||
@@ -127,22 +154,22 @@ fill_input_buffer (j_decompress_ptr cinfo)
|
||||
METHODDEF(void)
|
||||
skip_input_data (j_decompress_ptr cinfo, long num_bytes)
|
||||
{
|
||||
my_src_ptr src = (my_src_ptr) cinfo->src;
|
||||
struct jpeg_source_mgr * src = cinfo->src;
|
||||
|
||||
/* Just a dumb implementation for now. Could use fseek() except
|
||||
* it doesn't work on pipes. Not clear that being smart is worth
|
||||
* any trouble anyway --- large skips are infrequent.
|
||||
*/
|
||||
if (num_bytes > 0) {
|
||||
while (num_bytes > (long) src->pub.bytes_in_buffer) {
|
||||
num_bytes -= (long) src->pub.bytes_in_buffer;
|
||||
while (num_bytes > (long) src->bytes_in_buffer) {
|
||||
num_bytes -= (long) src->bytes_in_buffer;
|
||||
(void) fill_input_buffer(cinfo);
|
||||
/* note we assume that fill_input_buffer will never return FALSE,
|
||||
* so suspension need not be handled.
|
||||
*/
|
||||
}
|
||||
src->pub.next_input_byte += (size_t) num_bytes;
|
||||
src->pub.bytes_in_buffer -= (size_t) num_bytes;
|
||||
src->next_input_byte += (size_t) num_bytes;
|
||||
src->bytes_in_buffer -= (size_t) num_bytes;
|
||||
}
|
||||
}
|
||||
|
||||
@@ -210,3 +237,38 @@ jpeg_stdio_src (j_decompress_ptr cinfo, FILE * infile)
|
||||
src->pub.bytes_in_buffer = 0; /* forces fill_input_buffer on first read */
|
||||
src->pub.next_input_byte = NULL; /* until buffer loaded */
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Prepare for input from a supplied memory buffer.
|
||||
* The buffer must contain the whole JPEG data.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_mem_src (j_decompress_ptr cinfo,
|
||||
unsigned char * inbuffer, unsigned long insize)
|
||||
{
|
||||
struct jpeg_source_mgr * src;
|
||||
|
||||
if (inbuffer == NULL || insize == 0) /* Treat empty input as fatal error */
|
||||
ERREXIT(cinfo, JERR_INPUT_EMPTY);
|
||||
|
||||
/* The source object is made permanent so that a series of JPEG images
|
||||
* can be read from the same buffer by calling jpeg_mem_src only before
|
||||
* the first one.
|
||||
*/
|
||||
if (cinfo->src == NULL) { /* first time for this JPEG object? */
|
||||
cinfo->src = (struct jpeg_source_mgr *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
|
||||
SIZEOF(struct jpeg_source_mgr));
|
||||
}
|
||||
|
||||
src = cinfo->src;
|
||||
src->init_source = init_mem_source;
|
||||
src->fill_input_buffer = fill_mem_input_buffer;
|
||||
src->skip_input_data = skip_input_data;
|
||||
src->resync_to_restart = jpeg_resync_to_restart; /* use default method */
|
||||
src->term_source = term_source;
|
||||
src->bytes_in_buffer = (size_t) insize;
|
||||
src->next_input_byte = (JOCTET *) inbuffer;
|
||||
}
|
||||
|
||||
+54
-61
@@ -1,12 +1,12 @@
|
||||
/*
|
||||
* jdcoefct.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1994-1997, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains the coefficient buffer controller for decompression.
|
||||
* This controller is the top level of the lossy JPEG decompressor proper.
|
||||
* This controller is the top level of the JPEG decompressor proper.
|
||||
* The coefficient buffer lies between entropy decoding and inverse-DCT steps.
|
||||
*
|
||||
* In buffered-image mode, this controller is the interface between
|
||||
@@ -17,7 +17,6 @@
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h"
|
||||
|
||||
/* Block smoothing is only applicable for progressive JPEG, so: */
|
||||
#ifndef D_PROGRESSIVE_SUPPORTED
|
||||
@@ -27,6 +26,8 @@
|
||||
/* Private buffer controller object */
|
||||
|
||||
typedef struct {
|
||||
struct jpeg_d_coef_controller pub; /* public fields */
|
||||
|
||||
/* These variables keep track of the current location of the input side. */
|
||||
/* cinfo->input_iMCU_row is also used for this. */
|
||||
JDIMENSION MCU_ctr; /* counts MCUs processed in current row */
|
||||
@@ -36,7 +37,7 @@ typedef struct {
|
||||
/* The output side's location is represented by cinfo->output_iMCU_row. */
|
||||
|
||||
/* In single-pass modes, it's sufficient to buffer just one MCU.
|
||||
* We allocate a workspace of D_MAX_DATA_UNITS_IN_MCU coefficient blocks,
|
||||
* We allocate a workspace of D_MAX_BLOCKS_IN_MCU coefficient blocks,
|
||||
* and let the entropy decoder write into that workspace each time.
|
||||
* (On 80x86, the workspace is FAR even though it's not really very big;
|
||||
* this is to keep the module interfaces unchanged when a large coefficient
|
||||
@@ -44,7 +45,7 @@ typedef struct {
|
||||
* In multi-pass modes, this array points to the current MCU's blocks
|
||||
* within the virtual arrays; it is used only by the input side.
|
||||
*/
|
||||
JBLOCKROW MCU_buffer[D_MAX_DATA_UNITS_IN_MCU];
|
||||
JBLOCKROW MCU_buffer[D_MAX_BLOCKS_IN_MCU];
|
||||
|
||||
#ifdef D_MULTISCAN_FILES_SUPPORTED
|
||||
/* In multi-pass modes, we need a virtual block array for each component. */
|
||||
@@ -56,9 +57,9 @@ typedef struct {
|
||||
int * coef_bits_latch;
|
||||
#define SAVED_COEFS 6 /* we save coef_bits[0..5] */
|
||||
#endif
|
||||
} d_coef_controller;
|
||||
} my_coef_controller;
|
||||
|
||||
typedef d_coef_controller * d_coef_ptr;
|
||||
typedef my_coef_controller * my_coef_ptr;
|
||||
|
||||
/* Forward declarations */
|
||||
METHODDEF(int) decompress_onepass
|
||||
@@ -78,8 +79,7 @@ LOCAL(void)
|
||||
start_iMCU_row (j_decompress_ptr cinfo)
|
||||
/* Reset within-iMCU-row counters for a new row (input side) */
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
d_coef_ptr coef = (d_coef_ptr) lossyd->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
|
||||
/* In an interleaved scan, an MCU row is the same as an iMCU row.
|
||||
* In a noninterleaved scan, an iMCU row has v_samp_factor MCU rows.
|
||||
@@ -119,15 +119,14 @@ METHODDEF(void)
|
||||
start_output_pass (j_decompress_ptr cinfo)
|
||||
{
|
||||
#ifdef BLOCK_SMOOTHING_SUPPORTED
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
//d_coef_ptr coef = (d_coef_ptr) lossyd->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
|
||||
/* If multipass, check to see whether to use block smoothing on this pass */
|
||||
if (lossyd->coef_arrays != NULL) {
|
||||
if (coef->pub.coef_arrays != NULL) {
|
||||
if (cinfo->do_block_smoothing && smoothing_ok(cinfo))
|
||||
lossyd->pub.decompress_data = decompress_smooth_data;
|
||||
coef->pub.decompress_data = decompress_smooth_data;
|
||||
else
|
||||
lossyd->pub.decompress_data = decompress_data;
|
||||
coef->pub.decompress_data = decompress_data;
|
||||
}
|
||||
#endif
|
||||
cinfo->output_iMCU_row = 0;
|
||||
@@ -147,8 +146,7 @@ start_output_pass (j_decompress_ptr cinfo)
|
||||
METHODDEF(int)
|
||||
decompress_onepass (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
d_coef_ptr coef = (d_coef_ptr) lossyd->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
JDIMENSION MCU_col_num; /* index of current MCU within row */
|
||||
JDIMENSION last_MCU_col = cinfo->MCUs_per_row - 1;
|
||||
JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
@@ -165,8 +163,8 @@ decompress_onepass (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
MCU_col_num++) {
|
||||
/* Try to fetch an MCU. Entropy decoder expects buffer to be zeroed. */
|
||||
jzero_far((void FAR *) coef->MCU_buffer[0],
|
||||
(size_t) (cinfo->data_units_in_MCU * SIZEOF(JBLOCK)));
|
||||
if (! (*lossyd->entropy_decode_mcu) (cinfo, coef->MCU_buffer)) {
|
||||
(size_t) (cinfo->blocks_in_MCU * SIZEOF(JBLOCK)));
|
||||
if (! (*cinfo->entropy->decode_mcu) (cinfo, coef->MCU_buffer)) {
|
||||
/* Suspension forced; update state counters and exit */
|
||||
coef->MCU_vert_offset = yoffset;
|
||||
coef->MCU_ctr = MCU_col_num;
|
||||
@@ -182,14 +180,14 @@ decompress_onepass (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
/* Don't bother to IDCT an uninteresting component. */
|
||||
if (! compptr->component_needed) {
|
||||
blkn += compptr->MCU_data_units;
|
||||
blkn += compptr->MCU_blocks;
|
||||
continue;
|
||||
}
|
||||
inverse_DCT = lossyd->inverse_DCT[compptr->component_index];
|
||||
inverse_DCT = cinfo->idct->inverse_DCT[compptr->component_index];
|
||||
useful_width = (MCU_col_num < last_MCU_col) ? compptr->MCU_width
|
||||
: compptr->last_col_width;
|
||||
output_ptr = output_buf[compptr->component_index] +
|
||||
yoffset * compptr->codec_data_unit;
|
||||
yoffset * compptr->DCT_v_scaled_size;
|
||||
start_col = MCU_col_num * compptr->MCU_sample_width;
|
||||
for (yindex = 0; yindex < compptr->MCU_height; yindex++) {
|
||||
if (cinfo->input_iMCU_row < last_iMCU_row ||
|
||||
@@ -199,11 +197,11 @@ decompress_onepass (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
(*inverse_DCT) (cinfo, compptr,
|
||||
(JCOEFPTR) coef->MCU_buffer[blkn+xindex],
|
||||
output_ptr, output_col);
|
||||
output_col += compptr->codec_data_unit;
|
||||
output_col += compptr->DCT_h_scaled_size;
|
||||
}
|
||||
}
|
||||
blkn += compptr->MCU_width;
|
||||
output_ptr += compptr->codec_data_unit;
|
||||
output_ptr += compptr->DCT_v_scaled_size;
|
||||
}
|
||||
}
|
||||
}
|
||||
@@ -245,8 +243,7 @@ dummy_consume_data (j_decompress_ptr cinfo)
|
||||
METHODDEF(int)
|
||||
consume_data (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
d_coef_ptr coef = (d_coef_ptr) lossyd->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
JDIMENSION MCU_col_num; /* index of current MCU within row */
|
||||
int blkn, ci, xindex, yindex, yoffset;
|
||||
JDIMENSION start_col;
|
||||
@@ -285,7 +282,7 @@ consume_data (j_decompress_ptr cinfo)
|
||||
}
|
||||
}
|
||||
/* Try to fetch the MCU. */
|
||||
if (! (*lossyd->entropy_decode_mcu) (cinfo, coef->MCU_buffer)) {
|
||||
if (! (*cinfo->entropy->decode_mcu) (cinfo, coef->MCU_buffer)) {
|
||||
/* Suspension forced; update state counters and exit */
|
||||
coef->MCU_vert_offset = yoffset;
|
||||
coef->MCU_ctr = MCU_col_num;
|
||||
@@ -317,8 +314,7 @@ consume_data (j_decompress_ptr cinfo)
|
||||
METHODDEF(int)
|
||||
decompress_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
d_coef_ptr coef = (d_coef_ptr) lossyd->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
JDIMENSION block_num;
|
||||
int ci, block_row, block_rows;
|
||||
@@ -353,22 +349,22 @@ decompress_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
block_rows = compptr->v_samp_factor;
|
||||
else {
|
||||
/* NB: can't use last_row_height here; it is input-side-dependent! */
|
||||
block_rows = (int) (compptr->height_in_data_units % compptr->v_samp_factor);
|
||||
block_rows = (int) (compptr->height_in_blocks % compptr->v_samp_factor);
|
||||
if (block_rows == 0) block_rows = compptr->v_samp_factor;
|
||||
}
|
||||
inverse_DCT = lossyd->inverse_DCT[ci];
|
||||
inverse_DCT = cinfo->idct->inverse_DCT[ci];
|
||||
output_ptr = output_buf[ci];
|
||||
/* Loop over all DCT blocks to be processed. */
|
||||
for (block_row = 0; block_row < block_rows; block_row++) {
|
||||
buffer_ptr = buffer[block_row];
|
||||
output_col = 0;
|
||||
for (block_num = 0; block_num < compptr->width_in_data_units; block_num++) {
|
||||
for (block_num = 0; block_num < compptr->width_in_blocks; block_num++) {
|
||||
(*inverse_DCT) (cinfo, compptr, (JCOEFPTR) buffer_ptr,
|
||||
output_ptr, output_col);
|
||||
buffer_ptr++;
|
||||
output_col += compptr->codec_data_unit;
|
||||
output_col += compptr->DCT_h_scaled_size;
|
||||
}
|
||||
output_ptr += compptr->codec_data_unit;
|
||||
output_ptr += compptr->DCT_v_scaled_size;
|
||||
}
|
||||
}
|
||||
|
||||
@@ -408,8 +404,7 @@ decompress_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
LOCAL(boolean)
|
||||
smoothing_ok (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
d_coef_ptr coef = (d_coef_ptr) lossyd->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
boolean smoothing_useful = FALSE;
|
||||
int ci, coefi;
|
||||
jpeg_component_info *compptr;
|
||||
@@ -417,7 +412,7 @@ smoothing_ok (j_decompress_ptr cinfo)
|
||||
int * coef_bits;
|
||||
int * coef_bits_latch;
|
||||
|
||||
if (! cinfo->process == JPROC_PROGRESSIVE || cinfo->coef_bits == NULL)
|
||||
if (! cinfo->progressive_mode || cinfo->coef_bits == NULL)
|
||||
return FALSE;
|
||||
|
||||
/* Allocate latch area if not already done */
|
||||
@@ -465,8 +460,7 @@ smoothing_ok (j_decompress_ptr cinfo)
|
||||
METHODDEF(int)
|
||||
decompress_smooth_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
d_coef_ptr coef = (d_coef_ptr) lossyd->coef_private;
|
||||
my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
|
||||
JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
JDIMENSION block_num, last_block_column;
|
||||
int ci, block_row, block_rows, access_rows;
|
||||
@@ -514,7 +508,7 @@ decompress_smooth_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
last_row = FALSE;
|
||||
} else {
|
||||
/* NB: can't use last_row_height here; it is input-side-dependent! */
|
||||
block_rows = (int) (compptr->height_in_data_units % compptr->v_samp_factor);
|
||||
block_rows = (int) (compptr->height_in_blocks % compptr->v_samp_factor);
|
||||
if (block_rows == 0) block_rows = compptr->v_samp_factor;
|
||||
access_rows = block_rows; /* this iMCU row only */
|
||||
last_row = TRUE;
|
||||
@@ -543,7 +537,7 @@ decompress_smooth_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
Q20 = quanttbl->quantval[Q20_POS];
|
||||
Q11 = quanttbl->quantval[Q11_POS];
|
||||
Q02 = quanttbl->quantval[Q02_POS];
|
||||
inverse_DCT = lossyd->inverse_DCT[ci];
|
||||
inverse_DCT = cinfo->idct->inverse_DCT[ci];
|
||||
output_ptr = output_buf[ci];
|
||||
/* Loop over all DCT blocks to be processed. */
|
||||
for (block_row = 0; block_row < block_rows; block_row++) {
|
||||
@@ -563,7 +557,7 @@ decompress_smooth_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
DC4 = DC5 = DC6 = (int) buffer_ptr[0][0];
|
||||
DC7 = DC8 = DC9 = (int) next_block_row[0][0];
|
||||
output_col = 0;
|
||||
last_block_column = compptr->width_in_data_units - 1;
|
||||
last_block_column = compptr->width_in_blocks - 1;
|
||||
for (block_num = 0; block_num <= last_block_column; block_num++) {
|
||||
/* Fetch current DCT block into workspace so we can modify it. */
|
||||
jcopy_block_row(buffer_ptr, (JBLOCKROW) workspace, (JDIMENSION) 1);
|
||||
@@ -660,9 +654,9 @@ decompress_smooth_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
DC4 = DC5; DC5 = DC6;
|
||||
DC7 = DC8; DC8 = DC9;
|
||||
buffer_ptr++, prev_block_row++, next_block_row++;
|
||||
output_col += compptr->codec_data_unit;
|
||||
output_col += compptr->DCT_h_scaled_size;
|
||||
}
|
||||
output_ptr += compptr->codec_data_unit;
|
||||
output_ptr += compptr->DCT_v_scaled_size;
|
||||
}
|
||||
}
|
||||
|
||||
@@ -681,15 +675,14 @@ decompress_smooth_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
GLOBAL(void)
|
||||
jinit_d_coef_controller (j_decompress_ptr cinfo, boolean need_full_buffer)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
d_coef_ptr coef;
|
||||
my_coef_ptr coef;
|
||||
|
||||
coef = (d_coef_ptr)
|
||||
coef = (my_coef_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(d_coef_controller));
|
||||
lossyd->coef_private = (void *) coef;
|
||||
lossyd->coef_start_input_pass = start_input_pass;
|
||||
lossyd->coef_start_output_pass = start_output_pass;
|
||||
SIZEOF(my_coef_controller));
|
||||
cinfo->coef = (struct jpeg_d_coef_controller *) coef;
|
||||
coef->pub.start_input_pass = start_input_pass;
|
||||
coef->pub.start_output_pass = start_output_pass;
|
||||
#ifdef BLOCK_SMOOTHING_SUPPORTED
|
||||
coef->coef_bits_latch = NULL;
|
||||
#endif
|
||||
@@ -708,20 +701,20 @@ jinit_d_coef_controller (j_decompress_ptr cinfo, boolean need_full_buffer)
|
||||
access_rows = compptr->v_samp_factor;
|
||||
#ifdef BLOCK_SMOOTHING_SUPPORTED
|
||||
/* If block smoothing could be used, need a bigger window */
|
||||
if (cinfo->process == JPROC_PROGRESSIVE)
|
||||
if (cinfo->progressive_mode)
|
||||
access_rows *= 3;
|
||||
#endif
|
||||
coef->whole_image[ci] = (*cinfo->mem->request_virt_barray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE, TRUE,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_data_units,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_blocks,
|
||||
(long) compptr->h_samp_factor),
|
||||
(JDIMENSION) jround_up((long) compptr->height_in_data_units,
|
||||
(JDIMENSION) jround_up((long) compptr->height_in_blocks,
|
||||
(long) compptr->v_samp_factor),
|
||||
(JDIMENSION) access_rows);
|
||||
}
|
||||
lossyd->pub.consume_data = consume_data;
|
||||
lossyd->pub.decompress_data = decompress_data;
|
||||
lossyd->coef_arrays = coef->whole_image; /* link to virtual arrays */
|
||||
coef->pub.consume_data = consume_data;
|
||||
coef->pub.decompress_data = decompress_data;
|
||||
coef->pub.coef_arrays = coef->whole_image; /* link to virtual arrays */
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
@@ -732,12 +725,12 @@ jinit_d_coef_controller (j_decompress_ptr cinfo, boolean need_full_buffer)
|
||||
|
||||
buffer = (JBLOCKROW)
|
||||
(*cinfo->mem->alloc_large) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
D_MAX_DATA_UNITS_IN_MCU * SIZEOF(JBLOCK));
|
||||
for (i = 0; i < D_MAX_DATA_UNITS_IN_MCU; i++) {
|
||||
D_MAX_BLOCKS_IN_MCU * SIZEOF(JBLOCK));
|
||||
for (i = 0; i < D_MAX_BLOCKS_IN_MCU; i++) {
|
||||
coef->MCU_buffer[i] = buffer + i;
|
||||
}
|
||||
lossyd->pub.consume_data = dummy_consume_data;
|
||||
lossyd->pub.decompress_data = decompress_onepass;
|
||||
lossyd->coef_arrays = NULL; /* flag for no virtual arrays */
|
||||
coef->pub.consume_data = dummy_consume_data;
|
||||
coef->pub.decompress_data = decompress_onepass;
|
||||
coef->pub.coef_arrays = NULL; /* flag for no virtual arrays */
|
||||
}
|
||||
}
|
||||
|
||||
+228
-11
@@ -14,11 +14,16 @@
|
||||
|
||||
|
||||
/*
|
||||
* A forward DCT routine is given a pointer to a work area of type DCTELEM[];
|
||||
* the DCT is to be performed in-place in that buffer. Type DCTELEM is int
|
||||
* for 8-bit samples, INT32 for 12-bit samples. (NOTE: Floating-point DCT
|
||||
* implementations use an array of type FAST_FLOAT, instead.)
|
||||
* The DCT inputs are expected to be signed (range +-CENTERJSAMPLE).
|
||||
* A forward DCT routine is given a pointer to an input sample array and
|
||||
* a pointer to a work area of type DCTELEM[]; the DCT is to be performed
|
||||
* in-place in that buffer. Type DCTELEM is int for 8-bit samples, INT32
|
||||
* for 12-bit samples. (NOTE: Floating-point DCT implementations use an
|
||||
* array of type FAST_FLOAT, instead.)
|
||||
* The input data is to be fetched from the sample array starting at a
|
||||
* specified column. (Any row offset needed will be applied to the array
|
||||
* pointer before it is passed to the FDCT code.)
|
||||
* Note that the number of samples fetched by the FDCT routine is
|
||||
* DCT_h_scaled_size * DCT_v_scaled_size.
|
||||
* The DCT outputs are returned scaled up by a factor of 8; they therefore
|
||||
* have a range of +-8K for 8-bit data, +-128K for 12-bit data. This
|
||||
* convention improves accuracy in integer implementations and saves some
|
||||
@@ -32,8 +37,12 @@ typedef int DCTELEM; /* 16 or 32 bits is fine */
|
||||
typedef INT32 DCTELEM; /* must have 32 bits */
|
||||
#endif
|
||||
|
||||
typedef JMETHOD(void, forward_DCT_method_ptr, (DCTELEM * data));
|
||||
typedef JMETHOD(void, float_DCT_method_ptr, (FAST_FLOAT * data));
|
||||
typedef JMETHOD(void, forward_DCT_method_ptr, (DCTELEM * data,
|
||||
JSAMPARRAY sample_data,
|
||||
JDIMENSION start_col));
|
||||
typedef JMETHOD(void, float_DCT_method_ptr, (FAST_FLOAT * data,
|
||||
JSAMPARRAY sample_data,
|
||||
JDIMENSION start_col));
|
||||
|
||||
|
||||
/*
|
||||
@@ -44,7 +53,7 @@ typedef JMETHOD(void, float_DCT_method_ptr, (FAST_FLOAT * data));
|
||||
* sample array starting at a specified column. (Any row offset needed will
|
||||
* be applied to the array pointer before it is passed to the IDCT code.)
|
||||
* Note that the number of samples emitted by the IDCT routine is
|
||||
* DCT_scaled_size * DCT_scaled_size.
|
||||
* DCT_h_scaled_size * DCT_v_scaled_size.
|
||||
*/
|
||||
|
||||
/* typedef inverse_DCT_method_ptr is declared in jpegint.h */
|
||||
@@ -84,19 +93,143 @@ typedef FAST_FLOAT FLOAT_MULT_TYPE; /* preferred floating type */
|
||||
#define jpeg_fdct_islow jFDislow
|
||||
#define jpeg_fdct_ifast jFDifast
|
||||
#define jpeg_fdct_float jFDfloat
|
||||
#define jpeg_fdct_7x7 jFD7x7
|
||||
#define jpeg_fdct_6x6 jFD6x6
|
||||
#define jpeg_fdct_5x5 jFD5x5
|
||||
#define jpeg_fdct_4x4 jFD4x4
|
||||
#define jpeg_fdct_3x3 jFD3x3
|
||||
#define jpeg_fdct_2x2 jFD2x2
|
||||
#define jpeg_fdct_1x1 jFD1x1
|
||||
#define jpeg_fdct_9x9 jFD9x9
|
||||
#define jpeg_fdct_10x10 jFD10x10
|
||||
#define jpeg_fdct_11x11 jFD11x11
|
||||
#define jpeg_fdct_12x12 jFD12x12
|
||||
#define jpeg_fdct_13x13 jFD13x13
|
||||
#define jpeg_fdct_14x14 jFD14x14
|
||||
#define jpeg_fdct_15x15 jFD15x15
|
||||
#define jpeg_fdct_16x16 jFD16x16
|
||||
#define jpeg_fdct_16x8 jFD16x8
|
||||
#define jpeg_fdct_14x7 jFD14x7
|
||||
#define jpeg_fdct_12x6 jFD12x6
|
||||
#define jpeg_fdct_10x5 jFD10x5
|
||||
#define jpeg_fdct_8x4 jFD8x4
|
||||
#define jpeg_fdct_6x3 jFD6x3
|
||||
#define jpeg_fdct_4x2 jFD4x2
|
||||
#define jpeg_fdct_2x1 jFD2x1
|
||||
#define jpeg_fdct_8x16 jFD8x16
|
||||
#define jpeg_fdct_7x14 jFD7x14
|
||||
#define jpeg_fdct_6x12 jFD6x12
|
||||
#define jpeg_fdct_5x10 jFD5x10
|
||||
#define jpeg_fdct_4x8 jFD4x8
|
||||
#define jpeg_fdct_3x6 jFD3x6
|
||||
#define jpeg_fdct_2x4 jFD2x4
|
||||
#define jpeg_fdct_1x2 jFD1x2
|
||||
#define jpeg_idct_islow jRDislow
|
||||
#define jpeg_idct_ifast jRDifast
|
||||
#define jpeg_idct_float jRDfloat
|
||||
#define jpeg_idct_7x7 jRD7x7
|
||||
#define jpeg_idct_6x6 jRD6x6
|
||||
#define jpeg_idct_5x5 jRD5x5
|
||||
#define jpeg_idct_4x4 jRD4x4
|
||||
#define jpeg_idct_3x3 jRD3x3
|
||||
#define jpeg_idct_2x2 jRD2x2
|
||||
#define jpeg_idct_1x1 jRD1x1
|
||||
#define jpeg_idct_9x9 jRD9x9
|
||||
#define jpeg_idct_10x10 jRD10x10
|
||||
#define jpeg_idct_11x11 jRD11x11
|
||||
#define jpeg_idct_12x12 jRD12x12
|
||||
#define jpeg_idct_13x13 jRD13x13
|
||||
#define jpeg_idct_14x14 jRD14x14
|
||||
#define jpeg_idct_15x15 jRD15x15
|
||||
#define jpeg_idct_16x16 jRD16x16
|
||||
#define jpeg_idct_16x8 jRD16x8
|
||||
#define jpeg_idct_14x7 jRD14x7
|
||||
#define jpeg_idct_12x6 jRD12x6
|
||||
#define jpeg_idct_10x5 jRD10x5
|
||||
#define jpeg_idct_8x4 jRD8x4
|
||||
#define jpeg_idct_6x3 jRD6x3
|
||||
#define jpeg_idct_4x2 jRD4x2
|
||||
#define jpeg_idct_2x1 jRD2x1
|
||||
#define jpeg_idct_8x16 jRD8x16
|
||||
#define jpeg_idct_7x14 jRD7x14
|
||||
#define jpeg_idct_6x12 jRD6x12
|
||||
#define jpeg_idct_5x10 jRD5x10
|
||||
#define jpeg_idct_4x8 jRD4x8
|
||||
#define jpeg_idct_3x6 jRD3x8
|
||||
#define jpeg_idct_2x4 jRD2x4
|
||||
#define jpeg_idct_1x2 jRD1x2
|
||||
#endif /* NEED_SHORT_EXTERNAL_NAMES */
|
||||
|
||||
/* Extern declarations for the forward and inverse DCT routines. */
|
||||
|
||||
EXTERN(void) jpeg_fdct_islow JPP((DCTELEM * data));
|
||||
EXTERN(void) jpeg_fdct_ifast JPP((DCTELEM * data));
|
||||
EXTERN(void) jpeg_fdct_float JPP((FAST_FLOAT * data));
|
||||
EXTERN(void) jpeg_fdct_islow
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_ifast
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_float
|
||||
JPP((FAST_FLOAT * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_7x7
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_6x6
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_5x5
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_4x4
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_3x3
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_2x2
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_1x1
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_9x9
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_10x10
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_11x11
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_12x12
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_13x13
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_14x14
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_15x15
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_16x16
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_16x8
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_14x7
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_12x6
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_10x5
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_8x4
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_6x3
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_4x2
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_2x1
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_8x16
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_7x14
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_6x12
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_5x10
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_4x8
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_3x6
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_2x4
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
EXTERN(void) jpeg_fdct_1x2
|
||||
JPP((DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col));
|
||||
|
||||
EXTERN(void) jpeg_idct_islow
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
@@ -107,15 +240,99 @@ EXTERN(void) jpeg_idct_ifast
|
||||
EXTERN(void) jpeg_idct_float
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_7x7
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_6x6
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_5x5
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_4x4
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_3x3
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_2x2
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_1x1
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_9x9
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_10x10
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_11x11
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_12x12
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_13x13
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_14x14
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_15x15
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_16x16
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_16x8
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_14x7
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_12x6
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_10x5
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_8x4
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_6x3
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_4x2
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_2x1
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_8x16
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_7x14
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_6x12
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_5x10
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_4x8
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_3x6
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_2x4
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
EXTERN(void) jpeg_idct_1x2
|
||||
JPP((j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block, JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
|
||||
|
||||
/*
|
||||
|
||||
+134
-22
@@ -1,7 +1,7 @@
|
||||
/*
|
||||
* jddctmgr.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1994-1996, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -18,7 +18,6 @@
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h" /* Private declarations for lossy subsystem */
|
||||
#include "jdct.h" /* Private declarations for DCT subsystem */
|
||||
|
||||
|
||||
@@ -42,15 +41,17 @@
|
||||
/* Private subobject for this module */
|
||||
|
||||
typedef struct {
|
||||
struct jpeg_inverse_dct pub; /* public fields */
|
||||
|
||||
/* This array contains the IDCT method code that each multiplier table
|
||||
* is currently set up for, or -1 if it's not yet set up.
|
||||
* The actual multiplier tables are pointed to by dct_table in the
|
||||
* per-component comp_info structures.
|
||||
*/
|
||||
int cur_method[MAX_COMPONENTS];
|
||||
} idct_controller;
|
||||
} my_idct_controller;
|
||||
|
||||
typedef idct_controller * idct_ptr;
|
||||
typedef my_idct_controller * my_idct_ptr;
|
||||
|
||||
|
||||
/* Allocated multiplier tables: big enough for any supported variant */
|
||||
@@ -87,8 +88,7 @@ typedef union {
|
||||
METHODDEF(void)
|
||||
start_pass (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
idct_ptr idct = (idct_ptr) lossyd->idct_private;
|
||||
my_idct_ptr idct = (my_idct_ptr) cinfo->idct;
|
||||
int ci, i;
|
||||
jpeg_component_info *compptr;
|
||||
int method = 0;
|
||||
@@ -98,22 +98,134 @@ start_pass (j_decompress_ptr cinfo)
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
/* Select the proper IDCT routine for this component's scaling */
|
||||
switch (compptr->codec_data_unit) {
|
||||
switch ((compptr->DCT_h_scaled_size << 8) + compptr->DCT_v_scaled_size) {
|
||||
#ifdef IDCT_SCALING_SUPPORTED
|
||||
case 1:
|
||||
case ((1 << 8) + 1):
|
||||
method_ptr = jpeg_idct_1x1;
|
||||
method = JDCT_ISLOW; /* jidctred uses islow-style table */
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case 2:
|
||||
case ((2 << 8) + 2):
|
||||
method_ptr = jpeg_idct_2x2;
|
||||
method = JDCT_ISLOW; /* jidctred uses islow-style table */
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case 4:
|
||||
case ((3 << 8) + 3):
|
||||
method_ptr = jpeg_idct_3x3;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((4 << 8) + 4):
|
||||
method_ptr = jpeg_idct_4x4;
|
||||
method = JDCT_ISLOW; /* jidctred uses islow-style table */
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((5 << 8) + 5):
|
||||
method_ptr = jpeg_idct_5x5;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((6 << 8) + 6):
|
||||
method_ptr = jpeg_idct_6x6;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((7 << 8) + 7):
|
||||
method_ptr = jpeg_idct_7x7;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((9 << 8) + 9):
|
||||
method_ptr = jpeg_idct_9x9;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((10 << 8) + 10):
|
||||
method_ptr = jpeg_idct_10x10;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((11 << 8) + 11):
|
||||
method_ptr = jpeg_idct_11x11;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((12 << 8) + 12):
|
||||
method_ptr = jpeg_idct_12x12;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((13 << 8) + 13):
|
||||
method_ptr = jpeg_idct_13x13;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((14 << 8) + 14):
|
||||
method_ptr = jpeg_idct_14x14;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((15 << 8) + 15):
|
||||
method_ptr = jpeg_idct_15x15;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((16 << 8) + 16):
|
||||
method_ptr = jpeg_idct_16x16;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((16 << 8) + 8):
|
||||
method_ptr = jpeg_idct_16x8;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((14 << 8) + 7):
|
||||
method_ptr = jpeg_idct_14x7;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((12 << 8) + 6):
|
||||
method_ptr = jpeg_idct_12x6;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((10 << 8) + 5):
|
||||
method_ptr = jpeg_idct_10x5;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((8 << 8) + 4):
|
||||
method_ptr = jpeg_idct_8x4;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((6 << 8) + 3):
|
||||
method_ptr = jpeg_idct_6x3;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((4 << 8) + 2):
|
||||
method_ptr = jpeg_idct_4x2;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((2 << 8) + 1):
|
||||
method_ptr = jpeg_idct_2x1;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((8 << 8) + 16):
|
||||
method_ptr = jpeg_idct_8x16;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((7 << 8) + 14):
|
||||
method_ptr = jpeg_idct_7x14;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((6 << 8) + 12):
|
||||
method_ptr = jpeg_idct_6x12;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((5 << 8) + 10):
|
||||
method_ptr = jpeg_idct_5x10;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((4 << 8) + 8):
|
||||
method_ptr = jpeg_idct_4x8;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((3 << 8) + 6):
|
||||
method_ptr = jpeg_idct_3x6;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((2 << 8) + 4):
|
||||
method_ptr = jpeg_idct_2x4;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
case ((1 << 8) + 2):
|
||||
method_ptr = jpeg_idct_1x2;
|
||||
method = JDCT_ISLOW; /* jidctint uses islow-style table */
|
||||
break;
|
||||
#endif
|
||||
case DCTSIZE:
|
||||
case ((DCTSIZE << 8) + DCTSIZE):
|
||||
switch (cinfo->dct_method) {
|
||||
#ifdef DCT_ISLOW_SUPPORTED
|
||||
case JDCT_ISLOW:
|
||||
@@ -139,10 +251,11 @@ start_pass (j_decompress_ptr cinfo)
|
||||
}
|
||||
break;
|
||||
default:
|
||||
ERREXIT1(cinfo, JERR_BAD_DCTSIZE, compptr->codec_data_unit);
|
||||
ERREXIT2(cinfo, JERR_BAD_DCTSIZE,
|
||||
compptr->DCT_h_scaled_size, compptr->DCT_v_scaled_size);
|
||||
break;
|
||||
}
|
||||
lossyd->inverse_DCT[ci] = method_ptr;
|
||||
idct->pub.inverse_DCT[ci] = method_ptr;
|
||||
/* Create multiplier table from quant table.
|
||||
* However, we can skip this if the component is uninteresting
|
||||
* or if we already built the table. Also, if no quant table
|
||||
@@ -246,16 +359,15 @@ start_pass (j_decompress_ptr cinfo)
|
||||
GLOBAL(void)
|
||||
jinit_inverse_dct (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
idct_ptr idct;
|
||||
my_idct_ptr idct;
|
||||
int ci;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
idct = (idct_ptr)
|
||||
idct = (my_idct_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(idct_controller));
|
||||
lossyd->idct_private = (void *) idct;
|
||||
lossyd->idct_start_pass = start_pass;
|
||||
SIZEOF(my_idct_controller));
|
||||
cinfo->idct = (struct jpeg_inverse_dct *) idct;
|
||||
idct->pub.start_pass = start_pass;
|
||||
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
|
||||
@@ -1,399 +0,0 @@
|
||||
/*
|
||||
* jddiffct.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains the [un]difference buffer controller for decompression.
|
||||
* This controller is the top level of the lossless JPEG decompressor proper.
|
||||
* The difference buffer lies between the entropy decoding and
|
||||
* prediction/undifferencing steps. The undifference buffer lies between the
|
||||
* prediction/undifferencing and scaling steps.
|
||||
*
|
||||
* In buffered-image mode, this controller is the interface between
|
||||
* input-oriented processing and output-oriented processing.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossls.h"
|
||||
|
||||
|
||||
#ifdef D_LOSSLESS_SUPPORTED
|
||||
|
||||
/* Private buffer controller object */
|
||||
|
||||
typedef struct {
|
||||
/* These variables keep track of the current location of the input side. */
|
||||
/* cinfo->input_iMCU_row is also used for this. */
|
||||
JDIMENSION MCU_ctr; /* counts MCUs processed in current row */
|
||||
unsigned int restart_rows_to_go; /* MCU-rows left in this restart interval */
|
||||
unsigned int MCU_vert_offset; /* counts MCU rows within iMCU row */
|
||||
unsigned int MCU_rows_per_iMCU_row; /* number of such rows needed */
|
||||
|
||||
/* The output side's location is represented by cinfo->output_iMCU_row. */
|
||||
|
||||
JDIFFARRAY diff_buf[MAX_COMPONENTS]; /* iMCU row of differences */
|
||||
JDIFFARRAY undiff_buf[MAX_COMPONENTS]; /* iMCU row of undiff'd samples */
|
||||
|
||||
#ifdef D_MULTISCAN_FILES_SUPPORTED
|
||||
/* In multi-pass modes, we need a virtual sample array for each component. */
|
||||
jvirt_sarray_ptr whole_image[MAX_COMPONENTS];
|
||||
#endif
|
||||
} d_diff_controller;
|
||||
|
||||
typedef d_diff_controller * d_diff_ptr;
|
||||
|
||||
/* Forward declarations */
|
||||
METHODDEF(int) decompress_data
|
||||
JPP((j_decompress_ptr cinfo, JSAMPIMAGE output_buf));
|
||||
#ifdef D_MULTISCAN_FILES_SUPPORTED
|
||||
METHODDEF(int) output_data
|
||||
JPP((j_decompress_ptr cinfo, JSAMPIMAGE output_buf));
|
||||
#endif
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
start_iMCU_row (j_decompress_ptr cinfo)
|
||||
/* Reset within-iMCU-row counters for a new row (input side) */
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
d_diff_ptr diff = (d_diff_ptr) losslsd->diff_private;
|
||||
|
||||
/* In an interleaved scan, an MCU row is the same as an iMCU row.
|
||||
* In a noninterleaved scan, an iMCU row has v_samp_factor MCU rows.
|
||||
* But at the bottom of the image, process only what's left.
|
||||
*/
|
||||
if (cinfo->comps_in_scan > 1) {
|
||||
diff->MCU_rows_per_iMCU_row = 1;
|
||||
} else {
|
||||
if (cinfo->input_iMCU_row < (cinfo->total_iMCU_rows-1))
|
||||
diff->MCU_rows_per_iMCU_row = cinfo->cur_comp_info[0]->v_samp_factor;
|
||||
else
|
||||
diff->MCU_rows_per_iMCU_row = cinfo->cur_comp_info[0]->last_row_height;
|
||||
}
|
||||
|
||||
diff->MCU_ctr = 0;
|
||||
diff->MCU_vert_offset = 0;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for an input processing pass.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_input_pass (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
d_diff_ptr diff = (d_diff_ptr) losslsd->diff_private;
|
||||
|
||||
/* Check that the restart interval is an integer multiple of the number
|
||||
* of MCU in an MCU-row.
|
||||
*/
|
||||
if (cinfo->restart_interval % cinfo->MCUs_per_row != 0)
|
||||
ERREXIT2(cinfo, JERR_BAD_RESTART,
|
||||
cinfo->restart_interval, cinfo->MCUs_per_row);
|
||||
|
||||
/* Initialize restart counter */
|
||||
diff->restart_rows_to_go = cinfo->restart_interval / cinfo->MCUs_per_row;
|
||||
|
||||
cinfo->input_iMCU_row = 0;
|
||||
start_iMCU_row(cinfo);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Check for a restart marker & resynchronize decoder, undifferencer.
|
||||
* Returns FALSE if must suspend.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
process_restart (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
d_diff_ptr diff = (d_diff_ptr) losslsd->diff_private;
|
||||
|
||||
if (! (*losslsd->entropy_process_restart) (cinfo))
|
||||
return FALSE;
|
||||
|
||||
(*losslsd->predict_process_restart) (cinfo);
|
||||
|
||||
/* Reset restart counter */
|
||||
diff->restart_rows_to_go = cinfo->restart_interval / cinfo->MCUs_per_row;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for an output processing pass.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_output_pass (j_decompress_ptr cinfo)
|
||||
{
|
||||
cinfo->output_iMCU_row = 0;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Decompress and return some data in the supplied buffer.
|
||||
* Always attempts to emit one fully interleaved MCU row ("iMCU" row).
|
||||
* Input and output must run in lockstep since we have only a one-MCU buffer.
|
||||
* Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
|
||||
*
|
||||
* NB: output_buf contains a plane for each component in image,
|
||||
* which we index according to the component's SOF position.
|
||||
*/
|
||||
|
||||
METHODDEF(int)
|
||||
decompress_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
d_diff_ptr diff = (d_diff_ptr) losslsd->diff_private;
|
||||
JDIMENSION MCU_col_num; /* index of current MCU within row */
|
||||
JDIMENSION MCU_count; /* number of MCUs decoded */
|
||||
JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
int comp, ci, row, prev_row;
|
||||
uint yoffset;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* Loop to process as much as one whole iMCU row */
|
||||
for (yoffset = diff->MCU_vert_offset; yoffset < diff->MCU_rows_per_iMCU_row;
|
||||
yoffset++) {
|
||||
|
||||
/* Process restart marker if needed; may have to suspend */
|
||||
if (cinfo->restart_interval) {
|
||||
if (diff->restart_rows_to_go == 0)
|
||||
if (! process_restart(cinfo))
|
||||
return JPEG_SUSPENDED;
|
||||
}
|
||||
|
||||
MCU_col_num = diff->MCU_ctr;
|
||||
/* Try to fetch an MCU-row (or remaining portion of suspended MCU-row). */
|
||||
MCU_count =
|
||||
(*losslsd->entropy_decode_mcus) (cinfo,
|
||||
diff->diff_buf, yoffset, MCU_col_num,
|
||||
cinfo->MCUs_per_row - MCU_col_num);
|
||||
if (MCU_count != cinfo->MCUs_per_row - MCU_col_num) {
|
||||
/* Suspension forced; update state counters and exit */
|
||||
diff->MCU_vert_offset = yoffset;
|
||||
diff->MCU_ctr += MCU_count;
|
||||
return JPEG_SUSPENDED;
|
||||
}
|
||||
|
||||
/* Account for restart interval (no-op if not using restarts) */
|
||||
diff->restart_rows_to_go--;
|
||||
|
||||
/* Completed an MCU row, but perhaps not an iMCU row */
|
||||
diff->MCU_ctr = 0;
|
||||
}
|
||||
|
||||
/*
|
||||
* Undifference and scale each scanline of the disassembled MCU-row
|
||||
* separately. We do not process dummy samples at the end of a scanline
|
||||
* or dummy rows at the end of the image.
|
||||
*/
|
||||
for (comp = 0; comp < cinfo->comps_in_scan; comp++) {
|
||||
compptr = cinfo->cur_comp_info[comp];
|
||||
ci = compptr->component_index;
|
||||
for (row = 0, prev_row = compptr->v_samp_factor - 1;
|
||||
row < (cinfo->input_iMCU_row == last_iMCU_row ?
|
||||
compptr->last_row_height : compptr->v_samp_factor);
|
||||
prev_row = row, row++) {
|
||||
(*losslsd->predict_undifference[ci]) (cinfo, ci,
|
||||
diff->diff_buf[ci][row],
|
||||
diff->undiff_buf[ci][prev_row],
|
||||
diff->undiff_buf[ci][row],
|
||||
compptr->width_in_data_units);
|
||||
(*losslsd->scaler_scale) (cinfo, diff->undiff_buf[ci][row],
|
||||
output_buf[ci][row],
|
||||
compptr->width_in_data_units);
|
||||
}
|
||||
}
|
||||
|
||||
/* Completed the iMCU row, advance counters for next one.
|
||||
*
|
||||
* NB: output_data will increment output_iMCU_row.
|
||||
* This counter is not needed for the single-pass case
|
||||
* or the input side of the multi-pass case.
|
||||
*/
|
||||
if (++(cinfo->input_iMCU_row) < cinfo->total_iMCU_rows) {
|
||||
start_iMCU_row(cinfo);
|
||||
return JPEG_ROW_COMPLETED;
|
||||
}
|
||||
/* Completed the scan */
|
||||
(*cinfo->inputctl->finish_input_pass) (cinfo);
|
||||
return JPEG_SCAN_COMPLETED;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Dummy consume-input routine for single-pass operation.
|
||||
*/
|
||||
|
||||
METHODDEF(int)
|
||||
dummy_consume_data (j_decompress_ptr cinfo)
|
||||
{
|
||||
return JPEG_SUSPENDED; /* Always indicate nothing was done */
|
||||
}
|
||||
|
||||
|
||||
#ifdef D_MULTISCAN_FILES_SUPPORTED
|
||||
|
||||
/*
|
||||
* Consume input data and store it in the full-image sample buffer.
|
||||
* We read as much as one fully interleaved MCU row ("iMCU" row) per call,
|
||||
* ie, v_samp_factor rows for each component in the scan.
|
||||
* Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
|
||||
*/
|
||||
|
||||
METHODDEF(int)
|
||||
consume_data (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
d_diff_ptr diff = (d_diff_ptr) losslsd->diff_private;
|
||||
//JDIMENSION MCU_col_num; /* index of current MCU within row */
|
||||
//JDIMENSION MCU_count; /* number of MCUs decoded */
|
||||
//JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
int comp, ci;//, yoffset, row, prev_row;
|
||||
JSAMPARRAY buffer[MAX_COMPS_IN_SCAN];
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* Align the virtual buffers for the components used in this scan. */
|
||||
for (comp = 0; comp < cinfo->comps_in_scan; comp++) {
|
||||
compptr = cinfo->cur_comp_info[comp];
|
||||
ci = compptr->component_index;
|
||||
buffer[ci] = (*cinfo->mem->access_virt_sarray)
|
||||
((j_common_ptr) cinfo, diff->whole_image[ci],
|
||||
cinfo->input_iMCU_row * compptr->v_samp_factor,
|
||||
(JDIMENSION) compptr->v_samp_factor, TRUE);
|
||||
}
|
||||
|
||||
return decompress_data(cinfo, buffer);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Output some data from the full-image buffer sample in the multi-pass case.
|
||||
* Always attempts to emit one fully interleaved MCU row ("iMCU" row).
|
||||
* Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
|
||||
*
|
||||
* NB: output_buf contains a plane for each component in image.
|
||||
*/
|
||||
|
||||
METHODDEF(int)
|
||||
output_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
d_diff_ptr diff = (d_diff_ptr) losslsd->diff_private;
|
||||
JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
|
||||
int ci, samp_rows, row;
|
||||
JSAMPARRAY buffer;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* Force some input to be done if we are getting ahead of the input. */
|
||||
while (cinfo->input_scan_number < cinfo->output_scan_number ||
|
||||
(cinfo->input_scan_number == cinfo->output_scan_number &&
|
||||
cinfo->input_iMCU_row <= cinfo->output_iMCU_row)) {
|
||||
if ((*cinfo->inputctl->consume_input)(cinfo) == JPEG_SUSPENDED)
|
||||
return JPEG_SUSPENDED;
|
||||
}
|
||||
|
||||
/* OK, output from the virtual arrays. */
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
/* Align the virtual buffer for this component. */
|
||||
buffer = (*cinfo->mem->access_virt_sarray)
|
||||
((j_common_ptr) cinfo, diff->whole_image[ci],
|
||||
cinfo->output_iMCU_row * compptr->v_samp_factor,
|
||||
(JDIMENSION) compptr->v_samp_factor, FALSE);
|
||||
|
||||
if (cinfo->output_iMCU_row < last_iMCU_row)
|
||||
samp_rows = compptr->v_samp_factor;
|
||||
else {
|
||||
/* NB: can't use last_row_height here; it is input-side-dependent! */
|
||||
samp_rows = (int) (compptr->height_in_data_units % compptr->v_samp_factor);
|
||||
if (samp_rows == 0) samp_rows = compptr->v_samp_factor;
|
||||
}
|
||||
|
||||
for (row = 0; row < samp_rows; row++) {
|
||||
MEMCOPY(output_buf[ci][row], buffer[row],
|
||||
compptr->width_in_data_units * SIZEOF(JSAMPLE));
|
||||
}
|
||||
}
|
||||
|
||||
if (++(cinfo->output_iMCU_row) < cinfo->total_iMCU_rows)
|
||||
return JPEG_ROW_COMPLETED;
|
||||
return JPEG_SCAN_COMPLETED;
|
||||
}
|
||||
|
||||
#endif /* D_MULTISCAN_FILES_SUPPORTED */
|
||||
|
||||
|
||||
/*
|
||||
* Initialize difference buffer controller.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_d_diff_controller (j_decompress_ptr cinfo, boolean need_full_buffer)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
d_diff_ptr diff;
|
||||
int ci;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
diff = (d_diff_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(d_diff_controller));
|
||||
losslsd->diff_private = (void *) diff;
|
||||
losslsd->diff_start_input_pass = start_input_pass;
|
||||
losslsd->pub.start_output_pass = start_output_pass;
|
||||
|
||||
/* Create the [un]difference buffers. */
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
diff->diff_buf[ci] = (*cinfo->mem->alloc_darray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_data_units,
|
||||
(long) compptr->h_samp_factor),
|
||||
(JDIMENSION) compptr->v_samp_factor);
|
||||
diff->undiff_buf[ci] = (*cinfo->mem->alloc_darray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_data_units,
|
||||
(long) compptr->h_samp_factor),
|
||||
(JDIMENSION) compptr->v_samp_factor);
|
||||
}
|
||||
|
||||
if (need_full_buffer) {
|
||||
#ifdef D_MULTISCAN_FILES_SUPPORTED
|
||||
/* Allocate a full-image virtual array for each component. */
|
||||
int access_rows;
|
||||
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
access_rows = compptr->v_samp_factor;
|
||||
diff->whole_image[ci] = (*cinfo->mem->request_virt_sarray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE, FALSE,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_data_units,
|
||||
(long) compptr->h_samp_factor),
|
||||
(JDIMENSION) jround_up((long) compptr->height_in_data_units,
|
||||
(long) compptr->v_samp_factor),
|
||||
(JDIMENSION) access_rows);
|
||||
}
|
||||
losslsd->pub.consume_data = consume_data;
|
||||
losslsd->pub.decompress_data = output_data;
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
} else {
|
||||
losslsd->pub.consume_data = dummy_consume_data;
|
||||
losslsd->pub.decompress_data = decompress_data;
|
||||
diff->whole_image[0] = NULL; /* flag for no virtual arrays */
|
||||
}
|
||||
}
|
||||
|
||||
#endif /* D_LOSSLESS_SUPPORTED */
|
||||
+1247
-21
File diff suppressed because it is too large
Load Diff
@@ -1,229 +0,0 @@
|
||||
/*
|
||||
* jdhuff.h
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains declarations for Huffman entropy decoding routines
|
||||
* that are shared between the sequential decoder (jdhuff.c), the
|
||||
* progressive decoder (jdphuff.c) and the lossless decoder (jdlhuff.c).
|
||||
* No other modules need to see these.
|
||||
*/
|
||||
|
||||
/* Short forms of external names for systems with brain-damaged linkers. */
|
||||
|
||||
#ifdef NEED_SHORT_EXTERNAL_NAMES
|
||||
#define jpeg_make_d_derived_tbl jMkDDerived
|
||||
#define jpeg_fill_bit_buffer jFilBitBuf
|
||||
#define jpeg_huff_decode jHufDecode
|
||||
#endif /* NEED_SHORT_EXTERNAL_NAMES */
|
||||
|
||||
|
||||
/* Derived data constructed for each Huffman table */
|
||||
|
||||
#define HUFF_LOOKAHEAD 8 /* # of bits of lookahead */
|
||||
|
||||
typedef struct {
|
||||
/* Basic tables: (element [0] of each array is unused) */
|
||||
INT32 maxcode[18]; /* largest code of length k (-1 if none) */
|
||||
/* (maxcode[17] is a sentinel to ensure jpeg_huff_decode terminates) */
|
||||
INT32 valoffset[17]; /* huffval[] offset for codes of length k */
|
||||
/* valoffset[k] = huffval[] index of 1st symbol of code length k, less
|
||||
* the smallest code of length k; so given a code of length k, the
|
||||
* corresponding symbol is huffval[code + valoffset[k]]
|
||||
*/
|
||||
|
||||
/* Link to public Huffman table (needed only in jpeg_huff_decode) */
|
||||
JHUFF_TBL *pub;
|
||||
|
||||
/* Lookahead tables: indexed by the next HUFF_LOOKAHEAD bits of
|
||||
* the input data stream. If the next Huffman code is no more
|
||||
* than HUFF_LOOKAHEAD bits long, we can obtain its length and
|
||||
* the corresponding symbol directly from these tables.
|
||||
*/
|
||||
int look_nbits[1<<HUFF_LOOKAHEAD]; /* # bits, or 0 if too long */
|
||||
UINT8 look_sym[1<<HUFF_LOOKAHEAD]; /* symbol, or unused */
|
||||
} d_derived_tbl;
|
||||
|
||||
/* Expand a Huffman table definition into the derived format */
|
||||
EXTERN(void) jpeg_make_d_derived_tbl
|
||||
JPP((j_decompress_ptr cinfo, boolean isDC, int tblno,
|
||||
d_derived_tbl ** pdtbl));
|
||||
|
||||
|
||||
/*
|
||||
* Fetching the next N bits from the input stream is a time-critical operation
|
||||
* for the Huffman decoders. We implement it with a combination of inline
|
||||
* macros and out-of-line subroutines. Note that N (the number of bits
|
||||
* demanded at one time) never exceeds 15 for JPEG use.
|
||||
*
|
||||
* We read source bytes into get_buffer and dole out bits as needed.
|
||||
* If get_buffer already contains enough bits, they are fetched in-line
|
||||
* by the macros CHECK_BIT_BUFFER and GET_BITS. When there aren't enough
|
||||
* bits, jpeg_fill_bit_buffer is called; it will attempt to fill get_buffer
|
||||
* as full as possible (not just to the number of bits needed; this
|
||||
* prefetching reduces the overhead cost of calling jpeg_fill_bit_buffer).
|
||||
* Note that jpeg_fill_bit_buffer may return FALSE to indicate suspension.
|
||||
* On TRUE return, jpeg_fill_bit_buffer guarantees that get_buffer contains
|
||||
* at least the requested number of bits --- dummy zeroes are inserted if
|
||||
* necessary.
|
||||
*/
|
||||
|
||||
typedef INT32 bit_buf_type; /* type of bit-extraction buffer */
|
||||
#define BIT_BUF_SIZE 32 /* size of buffer in bits */
|
||||
|
||||
/* If long is > 32 bits on your machine, and shifting/masking longs is
|
||||
* reasonably fast, making bit_buf_type be long and setting BIT_BUF_SIZE
|
||||
* appropriately should be a win. Unfortunately we can't define the size
|
||||
* with something like #define BIT_BUF_SIZE (sizeof(bit_buf_type)*8)
|
||||
* because not all machines measure sizeof in 8-bit bytes.
|
||||
*/
|
||||
|
||||
typedef struct { /* Bitreading state saved across MCUs */
|
||||
bit_buf_type get_buffer; /* current bit-extraction buffer */
|
||||
int bits_left; /* # of unused bits in it */
|
||||
} bitread_perm_state;
|
||||
|
||||
typedef struct { /* Bitreading working state within an MCU */
|
||||
/* Current data source location */
|
||||
/* We need a copy, rather than munging the original, in case of suspension */
|
||||
const JOCTET * next_input_byte; /* => next byte to read from source */
|
||||
size_t bytes_in_buffer; /* # of bytes remaining in source buffer */
|
||||
/* Bit input buffer --- note these values are kept in register variables,
|
||||
* not in this struct, inside the inner loops.
|
||||
*/
|
||||
bit_buf_type get_buffer; /* current bit-extraction buffer */
|
||||
int bits_left; /* # of unused bits in it */
|
||||
/* Pointer needed by jpeg_fill_bit_buffer. */
|
||||
j_decompress_ptr cinfo; /* back link to decompress master record */
|
||||
} bitread_working_state;
|
||||
|
||||
/* Macros to declare and load/save bitread local variables. */
|
||||
#define BITREAD_STATE_VARS \
|
||||
register bit_buf_type get_buffer; \
|
||||
register int bits_left; \
|
||||
bitread_working_state br_state
|
||||
|
||||
#define BITREAD_LOAD_STATE(cinfop,permstate) \
|
||||
br_state.cinfo = cinfop; \
|
||||
br_state.next_input_byte = cinfop->src->next_input_byte; \
|
||||
br_state.bytes_in_buffer = cinfop->src->bytes_in_buffer; \
|
||||
get_buffer = permstate.get_buffer; \
|
||||
bits_left = permstate.bits_left;
|
||||
|
||||
#define BITREAD_SAVE_STATE(cinfop,permstate) \
|
||||
cinfop->src->next_input_byte = br_state.next_input_byte; \
|
||||
cinfop->src->bytes_in_buffer = br_state.bytes_in_buffer; \
|
||||
permstate.get_buffer = get_buffer; \
|
||||
permstate.bits_left = bits_left
|
||||
|
||||
/*
|
||||
* These macros provide the in-line portion of bit fetching.
|
||||
* Use CHECK_BIT_BUFFER to ensure there are N bits in get_buffer
|
||||
* before using GET_BITS, PEEK_BITS, or DROP_BITS.
|
||||
* The variables get_buffer and bits_left are assumed to be locals,
|
||||
* but the state struct might not be (jpeg_huff_decode needs this).
|
||||
* CHECK_BIT_BUFFER(state,n,action);
|
||||
* Ensure there are N bits in get_buffer; if suspend, take action.
|
||||
* val = GET_BITS(n);
|
||||
* Fetch next N bits.
|
||||
* val = PEEK_BITS(n);
|
||||
* Fetch next N bits without removing them from the buffer.
|
||||
* DROP_BITS(n);
|
||||
* Discard next N bits.
|
||||
* The value N should be a simple variable, not an expression, because it
|
||||
* is evaluated multiple times.
|
||||
*/
|
||||
|
||||
#define CHECK_BIT_BUFFER(state,nbits,action) \
|
||||
{ if (bits_left < (nbits)) { \
|
||||
if (! jpeg_fill_bit_buffer(&(state),get_buffer,bits_left,nbits)) \
|
||||
{ action; } \
|
||||
get_buffer = (state).get_buffer; bits_left = (state).bits_left; } }
|
||||
|
||||
#define GET_BITS(nbits) \
|
||||
(((int) (get_buffer >> (bits_left -= (nbits)))) & ((1<<(nbits))-1))
|
||||
|
||||
#define PEEK_BITS(nbits) \
|
||||
(((int) (get_buffer >> (bits_left - (nbits)))) & ((1<<(nbits))-1))
|
||||
|
||||
#define DROP_BITS(nbits) \
|
||||
(bits_left -= (nbits))
|
||||
|
||||
/* Load up the bit buffer to a depth of at least nbits */
|
||||
EXTERN(boolean) jpeg_fill_bit_buffer
|
||||
JPP((bitread_working_state * state, register bit_buf_type get_buffer,
|
||||
register int bits_left, int nbits));
|
||||
|
||||
|
||||
/*
|
||||
* Code for extracting next Huffman-coded symbol from input bit stream.
|
||||
* Again, this is time-critical and we make the main paths be macros.
|
||||
*
|
||||
* We use a lookahead table to process codes of up to HUFF_LOOKAHEAD bits
|
||||
* without looping. Usually, more than 95% of the Huffman codes will be 8
|
||||
* or fewer bits long. The few overlength codes are handled with a loop,
|
||||
* which need not be inline code.
|
||||
*
|
||||
* Notes about the HUFF_DECODE macro:
|
||||
* 1. Near the end of the data segment, we may fail to get enough bits
|
||||
* for a lookahead. In that case, we do it the hard way.
|
||||
* 2. If the lookahead table contains no entry, the next code must be
|
||||
* more than HUFF_LOOKAHEAD bits long.
|
||||
* 3. jpeg_huff_decode returns -1 if forced to suspend.
|
||||
*/
|
||||
|
||||
#define HUFF_DECODE(result,state,htbl,failaction,slowlabel) \
|
||||
{ register int nb, look; \
|
||||
if (bits_left < HUFF_LOOKAHEAD) { \
|
||||
if (! jpeg_fill_bit_buffer(&state,get_buffer,bits_left, 0)) {failaction;} \
|
||||
get_buffer = state.get_buffer; bits_left = state.bits_left; \
|
||||
if (bits_left < HUFF_LOOKAHEAD) { \
|
||||
nb = 1; goto slowlabel; \
|
||||
} \
|
||||
} \
|
||||
look = PEEK_BITS(HUFF_LOOKAHEAD); \
|
||||
if ((nb = htbl->look_nbits[look]) != 0) { \
|
||||
DROP_BITS(nb); \
|
||||
result = htbl->look_sym[look]; \
|
||||
} else { \
|
||||
nb = HUFF_LOOKAHEAD+1; \
|
||||
slowlabel: \
|
||||
if ((result=jpeg_huff_decode(&state,get_buffer,bits_left,htbl,nb)) < 0) \
|
||||
{ failaction; } \
|
||||
get_buffer = state.get_buffer; bits_left = state.bits_left; \
|
||||
} \
|
||||
}
|
||||
|
||||
/* Out-of-line case for Huffman code fetching */
|
||||
EXTERN(int) jpeg_huff_decode
|
||||
JPP((bitread_working_state * state, register bit_buf_type get_buffer,
|
||||
register int bits_left, d_derived_tbl * htbl, int min_bits));
|
||||
|
||||
|
||||
/* Common fields between sequential, progressive and lossless Huffman entropy
|
||||
* decoder master structs.
|
||||
*/
|
||||
|
||||
#define huffd_common_fields \
|
||||
boolean insufficient_data; /* set TRUE after emmitting warning */ \
|
||||
/* These fields are loaded into local variables at start of each MCU. \
|
||||
* In case of suspension, we exit WITHOUT updating them. \
|
||||
*/ \
|
||||
bitread_perm_state bitstate /* Bit buffer at start of MCU */
|
||||
|
||||
/* Routines that are to be used by any or all of the entropy decoders are
|
||||
* declared to receive a pointer to this structure. There are no actual
|
||||
* instances of huffd_common_struct, only of shuff_entropy_decoder,
|
||||
* phuff_entropy_decoder and lhuff_entropy_decoder.
|
||||
*/
|
||||
struct huffd_common_struct {
|
||||
huffd_common_fields; /* Fields common to all decoder struct types */
|
||||
/* Additional fields follow in an actual shuff_entropy_decoder,
|
||||
* phuff_entropy_decoder or lhuff_entropy_decoder struct. All four structs
|
||||
* must agree on these initial fields! (This would be a lot cleaner in C++.)
|
||||
*/
|
||||
};
|
||||
|
||||
typedef struct huffd_common_struct * huffd_common_ptr;
|
||||
+378
-64
@@ -1,30 +1,28 @@
|
||||
/*
|
||||
* jdinput.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1991-1997, Thomas G. Lane.
|
||||
* Modified 2002-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains input control logic for the JPEG decompressor.
|
||||
* These routines are concerned with controlling the decompressor's input
|
||||
* processing (marker reading and coefficient/difference decoding).
|
||||
* The actual input reading is done in jdmarker.c, jdhuff.c, jdphuff.c,
|
||||
* and jdlhuff.c.
|
||||
* processing (marker reading and coefficient decoding). The actual input
|
||||
* reading is done in jdmarker.c, jdhuff.c, and jdarith.c.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
|
||||
EXTERN(void) jinit_d_codec (j_decompress_ptr cinfo);
|
||||
|
||||
|
||||
/* Private state */
|
||||
|
||||
typedef struct {
|
||||
struct jpeg_input_controller pub; /* public fields */
|
||||
|
||||
boolean inheaders; /* TRUE until first SOS is reached */
|
||||
int inheaders; /* Nonzero until first SOS is reached */
|
||||
} my_input_controller;
|
||||
|
||||
typedef my_input_controller * my_inputctl_ptr;
|
||||
@@ -38,6 +36,174 @@ METHODDEF(int) consume_markers JPP((j_decompress_ptr cinfo));
|
||||
* Routines to calculate various quantities related to the size of the image.
|
||||
*/
|
||||
|
||||
|
||||
/*
|
||||
* Compute output image dimensions and related values.
|
||||
* NOTE: this is exported for possible use by application.
|
||||
* Hence it mustn't do anything that can't be done twice.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_core_output_dimensions (j_decompress_ptr cinfo)
|
||||
/* Do computations that are needed before master selection phase.
|
||||
* This function is used for transcoding and full decompression.
|
||||
*/
|
||||
{
|
||||
#ifdef IDCT_SCALING_SUPPORTED
|
||||
int ci;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* Compute actual output image dimensions and DCT scaling choices. */
|
||||
if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom) {
|
||||
/* Provide 1/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 1;
|
||||
cinfo->min_DCT_v_scaled_size = 1;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 2) {
|
||||
/* Provide 2/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 2L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 2L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 2;
|
||||
cinfo->min_DCT_v_scaled_size = 2;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 3) {
|
||||
/* Provide 3/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 3L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 3L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 3;
|
||||
cinfo->min_DCT_v_scaled_size = 3;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 4) {
|
||||
/* Provide 4/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 4L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 4L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 4;
|
||||
cinfo->min_DCT_v_scaled_size = 4;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 5) {
|
||||
/* Provide 5/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 5L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 5L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 5;
|
||||
cinfo->min_DCT_v_scaled_size = 5;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 6) {
|
||||
/* Provide 6/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 6L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 6L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 6;
|
||||
cinfo->min_DCT_v_scaled_size = 6;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 7) {
|
||||
/* Provide 7/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 7L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 7L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 7;
|
||||
cinfo->min_DCT_v_scaled_size = 7;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 8) {
|
||||
/* Provide 8/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 8L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 8L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 8;
|
||||
cinfo->min_DCT_v_scaled_size = 8;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 9) {
|
||||
/* Provide 9/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 9L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 9L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 9;
|
||||
cinfo->min_DCT_v_scaled_size = 9;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 10) {
|
||||
/* Provide 10/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 10L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 10L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 10;
|
||||
cinfo->min_DCT_v_scaled_size = 10;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 11) {
|
||||
/* Provide 11/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 11L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 11L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 11;
|
||||
cinfo->min_DCT_v_scaled_size = 11;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 12) {
|
||||
/* Provide 12/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 12L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 12L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 12;
|
||||
cinfo->min_DCT_v_scaled_size = 12;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 13) {
|
||||
/* Provide 13/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 13L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 13L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 13;
|
||||
cinfo->min_DCT_v_scaled_size = 13;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 14) {
|
||||
/* Provide 14/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 14L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 14L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 14;
|
||||
cinfo->min_DCT_v_scaled_size = 14;
|
||||
} else if (cinfo->scale_num * cinfo->block_size <= cinfo->scale_denom * 15) {
|
||||
/* Provide 15/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 15L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 15L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 15;
|
||||
cinfo->min_DCT_v_scaled_size = 15;
|
||||
} else {
|
||||
/* Provide 16/block_size scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * 16L, (long) cinfo->block_size);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * 16L, (long) cinfo->block_size);
|
||||
cinfo->min_DCT_h_scaled_size = 16;
|
||||
cinfo->min_DCT_v_scaled_size = 16;
|
||||
}
|
||||
|
||||
/* Recompute dimensions of components */
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
compptr->DCT_h_scaled_size = cinfo->min_DCT_h_scaled_size;
|
||||
compptr->DCT_v_scaled_size = cinfo->min_DCT_v_scaled_size;
|
||||
}
|
||||
|
||||
#else /* !IDCT_SCALING_SUPPORTED */
|
||||
|
||||
/* Hardwire it to "no scaling" */
|
||||
cinfo->output_width = cinfo->image_width;
|
||||
cinfo->output_height = cinfo->image_height;
|
||||
/* jdinput.c has already initialized DCT_scaled_size,
|
||||
* and has computed unscaled downsampled_width and downsampled_height.
|
||||
*/
|
||||
|
||||
#endif /* IDCT_SCALING_SUPPORTED */
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
initial_setup (j_decompress_ptr cinfo)
|
||||
/* Called once, when first SOS marker is reached */
|
||||
@@ -50,17 +216,9 @@ initial_setup (j_decompress_ptr cinfo)
|
||||
(long) cinfo->image_width > (long) JPEG_MAX_DIMENSION)
|
||||
ERREXIT1(cinfo, JERR_IMAGE_TOO_BIG, (unsigned int) JPEG_MAX_DIMENSION);
|
||||
|
||||
if (cinfo->process == JPROC_LOSSLESS) {
|
||||
/* If precision > compiled-in value, we must downscale */
|
||||
if (cinfo->data_precision > BITS_IN_JSAMPLE)
|
||||
WARNMS2(cinfo, JWRN_MUST_DOWNSCALE,
|
||||
cinfo->data_precision, BITS_IN_JSAMPLE);
|
||||
}
|
||||
else { /* Lossy processes */
|
||||
/* For now, precision must match compiled-in value... */
|
||||
if (cinfo->data_precision != BITS_IN_JSAMPLE)
|
||||
ERREXIT1(cinfo, JERR_BAD_PRECISION, cinfo->data_precision);
|
||||
}
|
||||
|
||||
/* Check that number of components won't exceed internal array sizes */
|
||||
if (cinfo->num_components > MAX_COMPONENTS)
|
||||
@@ -81,23 +239,121 @@ initial_setup (j_decompress_ptr cinfo)
|
||||
compptr->v_samp_factor);
|
||||
}
|
||||
|
||||
/* We initialize codec_data_unit and min_codec_data_unit to data_unit.
|
||||
* In the full decompressor, this will be overridden by jdmaster.c;
|
||||
* but in the transcoder, jdmaster.c is not used, so we must do it here.
|
||||
/* Derive block_size, natural_order, and lim_Se */
|
||||
if (cinfo->is_baseline || (cinfo->progressive_mode &&
|
||||
cinfo->comps_in_scan)) { /* no pseudo SOS marker */
|
||||
cinfo->block_size = DCTSIZE;
|
||||
cinfo->natural_order = jpeg_natural_order;
|
||||
cinfo->lim_Se = DCTSIZE2-1;
|
||||
} else
|
||||
switch (cinfo->Se) {
|
||||
case (1*1-1):
|
||||
cinfo->block_size = 1;
|
||||
cinfo->natural_order = jpeg_natural_order; /* not needed */
|
||||
cinfo->lim_Se = cinfo->Se;
|
||||
break;
|
||||
case (2*2-1):
|
||||
cinfo->block_size = 2;
|
||||
cinfo->natural_order = jpeg_natural_order2;
|
||||
cinfo->lim_Se = cinfo->Se;
|
||||
break;
|
||||
case (3*3-1):
|
||||
cinfo->block_size = 3;
|
||||
cinfo->natural_order = jpeg_natural_order3;
|
||||
cinfo->lim_Se = cinfo->Se;
|
||||
break;
|
||||
case (4*4-1):
|
||||
cinfo->block_size = 4;
|
||||
cinfo->natural_order = jpeg_natural_order4;
|
||||
cinfo->lim_Se = cinfo->Se;
|
||||
break;
|
||||
case (5*5-1):
|
||||
cinfo->block_size = 5;
|
||||
cinfo->natural_order = jpeg_natural_order5;
|
||||
cinfo->lim_Se = cinfo->Se;
|
||||
break;
|
||||
case (6*6-1):
|
||||
cinfo->block_size = 6;
|
||||
cinfo->natural_order = jpeg_natural_order6;
|
||||
cinfo->lim_Se = cinfo->Se;
|
||||
break;
|
||||
case (7*7-1):
|
||||
cinfo->block_size = 7;
|
||||
cinfo->natural_order = jpeg_natural_order7;
|
||||
cinfo->lim_Se = cinfo->Se;
|
||||
break;
|
||||
case (8*8-1):
|
||||
cinfo->block_size = 8;
|
||||
cinfo->natural_order = jpeg_natural_order;
|
||||
cinfo->lim_Se = DCTSIZE2-1;
|
||||
break;
|
||||
case (9*9-1):
|
||||
cinfo->block_size = 9;
|
||||
cinfo->natural_order = jpeg_natural_order;
|
||||
cinfo->lim_Se = DCTSIZE2-1;
|
||||
break;
|
||||
case (10*10-1):
|
||||
cinfo->block_size = 10;
|
||||
cinfo->natural_order = jpeg_natural_order;
|
||||
cinfo->lim_Se = DCTSIZE2-1;
|
||||
break;
|
||||
case (11*11-1):
|
||||
cinfo->block_size = 11;
|
||||
cinfo->natural_order = jpeg_natural_order;
|
||||
cinfo->lim_Se = DCTSIZE2-1;
|
||||
break;
|
||||
case (12*12-1):
|
||||
cinfo->block_size = 12;
|
||||
cinfo->natural_order = jpeg_natural_order;
|
||||
cinfo->lim_Se = DCTSIZE2-1;
|
||||
break;
|
||||
case (13*13-1):
|
||||
cinfo->block_size = 13;
|
||||
cinfo->natural_order = jpeg_natural_order;
|
||||
cinfo->lim_Se = DCTSIZE2-1;
|
||||
break;
|
||||
case (14*14-1):
|
||||
cinfo->block_size = 14;
|
||||
cinfo->natural_order = jpeg_natural_order;
|
||||
cinfo->lim_Se = DCTSIZE2-1;
|
||||
break;
|
||||
case (15*15-1):
|
||||
cinfo->block_size = 15;
|
||||
cinfo->natural_order = jpeg_natural_order;
|
||||
cinfo->lim_Se = DCTSIZE2-1;
|
||||
break;
|
||||
case (16*16-1):
|
||||
cinfo->block_size = 16;
|
||||
cinfo->natural_order = jpeg_natural_order;
|
||||
cinfo->lim_Se = DCTSIZE2-1;
|
||||
break;
|
||||
default:
|
||||
ERREXIT4(cinfo, JERR_BAD_PROGRESSION,
|
||||
cinfo->Ss, cinfo->Se, cinfo->Ah, cinfo->Al);
|
||||
break;
|
||||
}
|
||||
|
||||
/* We initialize DCT_scaled_size and min_DCT_scaled_size to block_size.
|
||||
* In the full decompressor,
|
||||
* this will be overridden by jpeg_calc_output_dimensions in jdmaster.c;
|
||||
* but in the transcoder,
|
||||
* jpeg_calc_output_dimensions is not used, so we must do it here.
|
||||
*/
|
||||
cinfo->min_codec_data_unit = cinfo->data_unit;
|
||||
cinfo->min_DCT_h_scaled_size = cinfo->block_size;
|
||||
cinfo->min_DCT_v_scaled_size = cinfo->block_size;
|
||||
|
||||
/* Compute dimensions of components */
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
compptr->codec_data_unit = cinfo->data_unit;
|
||||
/* Size in data units */
|
||||
compptr->width_in_data_units = (JDIMENSION)
|
||||
compptr->DCT_h_scaled_size = cinfo->block_size;
|
||||
compptr->DCT_v_scaled_size = cinfo->block_size;
|
||||
/* Size in DCT blocks */
|
||||
compptr->width_in_blocks = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width * (long) compptr->h_samp_factor,
|
||||
(long) (cinfo->max_h_samp_factor * cinfo->data_unit));
|
||||
compptr->height_in_data_units = (JDIMENSION)
|
||||
(long) (cinfo->max_h_samp_factor * cinfo->block_size));
|
||||
compptr->height_in_blocks = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height * (long) compptr->v_samp_factor,
|
||||
(long) (cinfo->max_v_samp_factor * cinfo->data_unit));
|
||||
(long) (cinfo->max_v_samp_factor * cinfo->block_size));
|
||||
/* downsampled_width and downsampled_height will also be overridden by
|
||||
* jdmaster.c if we are doing full decompression. The transcoder library
|
||||
* doesn't use these values, but the calling application might.
|
||||
@@ -118,10 +374,10 @@ initial_setup (j_decompress_ptr cinfo)
|
||||
/* Compute number of fully interleaved MCU rows. */
|
||||
cinfo->total_iMCU_rows = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height,
|
||||
(long) (cinfo->max_v_samp_factor*cinfo->data_unit));
|
||||
(long) (cinfo->max_v_samp_factor * cinfo->block_size));
|
||||
|
||||
/* Decide whether file contains multiple scans */
|
||||
if (cinfo->comps_in_scan < cinfo->num_components || cinfo->process == JPROC_PROGRESSIVE)
|
||||
if (cinfo->comps_in_scan < cinfo->num_components || cinfo->progressive_mode)
|
||||
cinfo->inputctl->has_multiple_scans = TRUE;
|
||||
else
|
||||
cinfo->inputctl->has_multiple_scans = FALSE;
|
||||
@@ -142,24 +398,24 @@ per_scan_setup (j_decompress_ptr cinfo)
|
||||
compptr = cinfo->cur_comp_info[0];
|
||||
|
||||
/* Overall image size in MCUs */
|
||||
cinfo->MCUs_per_row = compptr->width_in_data_units;
|
||||
cinfo->MCU_rows_in_scan = compptr->height_in_data_units;
|
||||
cinfo->MCUs_per_row = compptr->width_in_blocks;
|
||||
cinfo->MCU_rows_in_scan = compptr->height_in_blocks;
|
||||
|
||||
/* For noninterleaved scan, always one data unit per MCU */
|
||||
/* For noninterleaved scan, always one block per MCU */
|
||||
compptr->MCU_width = 1;
|
||||
compptr->MCU_height = 1;
|
||||
compptr->MCU_data_units = 1;
|
||||
compptr->MCU_sample_width = compptr->codec_data_unit;
|
||||
compptr->MCU_blocks = 1;
|
||||
compptr->MCU_sample_width = compptr->DCT_h_scaled_size;
|
||||
compptr->last_col_width = 1;
|
||||
/* For noninterleaved scans, it is convenient to define last_row_height
|
||||
* as the number of data unit rows present in the last iMCU row.
|
||||
* as the number of block rows present in the last iMCU row.
|
||||
*/
|
||||
tmp = (int) (compptr->height_in_data_units % compptr->v_samp_factor);
|
||||
tmp = (int) (compptr->height_in_blocks % compptr->v_samp_factor);
|
||||
if (tmp == 0) tmp = compptr->v_samp_factor;
|
||||
compptr->last_row_height = tmp;
|
||||
|
||||
/* Prepare array describing MCU composition */
|
||||
cinfo->data_units_in_MCU = 1;
|
||||
cinfo->blocks_in_MCU = 1;
|
||||
cinfo->MCU_membership[0] = 0;
|
||||
|
||||
} else {
|
||||
@@ -172,35 +428,84 @@ per_scan_setup (j_decompress_ptr cinfo)
|
||||
/* Overall image size in MCUs */
|
||||
cinfo->MCUs_per_row = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width,
|
||||
(long) (cinfo->max_h_samp_factor*cinfo->data_unit));
|
||||
(long) (cinfo->max_h_samp_factor * cinfo->block_size));
|
||||
cinfo->MCU_rows_in_scan = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height,
|
||||
(long) (cinfo->max_v_samp_factor*cinfo->data_unit));
|
||||
(long) (cinfo->max_v_samp_factor * cinfo->block_size));
|
||||
|
||||
cinfo->data_units_in_MCU = 0;
|
||||
cinfo->blocks_in_MCU = 0;
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
/* Sampling factors give # of data units of component in each MCU */
|
||||
/* Sampling factors give # of blocks of component in each MCU */
|
||||
compptr->MCU_width = compptr->h_samp_factor;
|
||||
compptr->MCU_height = compptr->v_samp_factor;
|
||||
compptr->MCU_data_units = compptr->MCU_width * compptr->MCU_height;
|
||||
compptr->MCU_sample_width = compptr->MCU_width * compptr->codec_data_unit;
|
||||
/* Figure number of non-dummy data units in last MCU column & row */
|
||||
tmp = (int) (compptr->width_in_data_units % compptr->MCU_width);
|
||||
compptr->MCU_blocks = compptr->MCU_width * compptr->MCU_height;
|
||||
compptr->MCU_sample_width = compptr->MCU_width * compptr->DCT_h_scaled_size;
|
||||
/* Figure number of non-dummy blocks in last MCU column & row */
|
||||
tmp = (int) (compptr->width_in_blocks % compptr->MCU_width);
|
||||
if (tmp == 0) tmp = compptr->MCU_width;
|
||||
compptr->last_col_width = tmp;
|
||||
tmp = (int) (compptr->height_in_data_units % compptr->MCU_height);
|
||||
tmp = (int) (compptr->height_in_blocks % compptr->MCU_height);
|
||||
if (tmp == 0) tmp = compptr->MCU_height;
|
||||
compptr->last_row_height = tmp;
|
||||
/* Prepare array describing MCU composition */
|
||||
mcublks = compptr->MCU_data_units;
|
||||
if (cinfo->data_units_in_MCU + mcublks > D_MAX_DATA_UNITS_IN_MCU)
|
||||
mcublks = compptr->MCU_blocks;
|
||||
if (cinfo->blocks_in_MCU + mcublks > D_MAX_BLOCKS_IN_MCU)
|
||||
ERREXIT(cinfo, JERR_BAD_MCU_SIZE);
|
||||
while (mcublks-- > 0) {
|
||||
cinfo->MCU_membership[cinfo->data_units_in_MCU++] = ci;
|
||||
cinfo->MCU_membership[cinfo->blocks_in_MCU++] = ci;
|
||||
}
|
||||
}
|
||||
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Save away a copy of the Q-table referenced by each component present
|
||||
* in the current scan, unless already saved during a prior scan.
|
||||
*
|
||||
* In a multiple-scan JPEG file, the encoder could assign different components
|
||||
* the same Q-table slot number, but change table definitions between scans
|
||||
* so that each component uses a different Q-table. (The IJG encoder is not
|
||||
* currently capable of doing this, but other encoders might.) Since we want
|
||||
* to be able to dequantize all the components at the end of the file, this
|
||||
* means that we have to save away the table actually used for each component.
|
||||
* We do this by copying the table at the start of the first scan containing
|
||||
* the component.
|
||||
* The JPEG spec prohibits the encoder from changing the contents of a Q-table
|
||||
* slot between scans of a component using that slot. If the encoder does so
|
||||
* anyway, this decoder will simply use the Q-table values that were current
|
||||
* at the start of the first scan for the component.
|
||||
*
|
||||
* The decompressor output side looks only at the saved quant tables,
|
||||
* not at the current Q-table slots.
|
||||
*/
|
||||
|
||||
LOCAL(void)
|
||||
latch_quant_tables (j_decompress_ptr cinfo)
|
||||
{
|
||||
int ci, qtblno;
|
||||
jpeg_component_info *compptr;
|
||||
JQUANT_TBL * qtbl;
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
/* No work if we already saved Q-table for this component */
|
||||
if (compptr->quant_table != NULL)
|
||||
continue;
|
||||
/* Make sure specified quantization table is present */
|
||||
qtblno = compptr->quant_tbl_no;
|
||||
if (qtblno < 0 || qtblno >= NUM_QUANT_TBLS ||
|
||||
cinfo->quant_tbl_ptrs[qtblno] == NULL)
|
||||
ERREXIT1(cinfo, JERR_NO_QUANT_TABLE, qtblno);
|
||||
/* OK, save away the quantization table */
|
||||
qtbl = (JQUANT_TBL *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(JQUANT_TBL));
|
||||
MEMCOPY(qtbl, cinfo->quant_tbl_ptrs[qtblno], SIZEOF(JQUANT_TBL));
|
||||
compptr->quant_table = qtbl;
|
||||
}
|
||||
}
|
||||
|
||||
@@ -216,8 +521,10 @@ METHODDEF(void)
|
||||
start_input_pass (j_decompress_ptr cinfo)
|
||||
{
|
||||
per_scan_setup(cinfo);
|
||||
(*cinfo->codec->start_input_pass) (cinfo);
|
||||
cinfo->inputctl->consume_input = cinfo->codec->consume_data;
|
||||
latch_quant_tables(cinfo);
|
||||
(*cinfo->entropy->start_pass) (cinfo);
|
||||
(*cinfo->coef->start_input_pass) (cinfo);
|
||||
cinfo->inputctl->consume_input = cinfo->coef->consume_data;
|
||||
}
|
||||
|
||||
|
||||
@@ -242,6 +549,10 @@ finish_input_pass (j_decompress_ptr cinfo)
|
||||
* The consume_input method pointer points either here or to the
|
||||
* coefficient controller's consume_data routine, depending on whether
|
||||
* we are reading a compressed data segment or inter-segment markers.
|
||||
*
|
||||
* Note: This function should NOT return a pseudo SOS marker (with zero
|
||||
* component number) to the caller. A pseudo marker received by
|
||||
* read_markers is processed and then skipped for other markers.
|
||||
*/
|
||||
|
||||
METHODDEF(int)
|
||||
@@ -253,19 +564,19 @@ consume_markers (j_decompress_ptr cinfo)
|
||||
if (inputctl->pub.eoi_reached) /* After hitting EOI, read no further */
|
||||
return JPEG_REACHED_EOI;
|
||||
|
||||
for (;;) { /* Loop to pass pseudo SOS marker */
|
||||
val = (*cinfo->marker->read_markers) (cinfo);
|
||||
|
||||
switch (val) {
|
||||
case JPEG_REACHED_SOS: /* Found SOS */
|
||||
if (inputctl->inheaders) { /* 1st SOS */
|
||||
if (inputctl->inheaders == 1)
|
||||
initial_setup(cinfo);
|
||||
/*
|
||||
* Initialize the decompression codec. We need to do this here so that
|
||||
* any codec-specific fields and function pointers are available to
|
||||
* the rest of the library.
|
||||
*/
|
||||
jinit_d_codec(cinfo);
|
||||
inputctl->inheaders = FALSE;
|
||||
if (cinfo->comps_in_scan == 0) { /* pseudo SOS marker */
|
||||
inputctl->inheaders = 2;
|
||||
break;
|
||||
}
|
||||
inputctl->inheaders = 0;
|
||||
/* Note: start_input_pass must be called by jdmaster.c
|
||||
* before any more input can be consumed. jdapimin.c is
|
||||
* responsible for enforcing this sequencing.
|
||||
@@ -273,9 +584,11 @@ consume_markers (j_decompress_ptr cinfo)
|
||||
} else { /* 2nd or later SOS marker */
|
||||
if (! inputctl->pub.has_multiple_scans)
|
||||
ERREXIT(cinfo, JERR_EOI_EXPECTED); /* Oops, I wasn't expecting this! */
|
||||
if (cinfo->comps_in_scan == 0) /* unexpected pseudo SOS marker */
|
||||
break;
|
||||
start_input_pass(cinfo);
|
||||
}
|
||||
break;
|
||||
return val;
|
||||
case JPEG_REACHED_EOI: /* Found EOI */
|
||||
inputctl->pub.eoi_reached = TRUE;
|
||||
if (inputctl->inheaders) { /* Tables-only datastream, apparently */
|
||||
@@ -288,12 +601,13 @@ consume_markers (j_decompress_ptr cinfo)
|
||||
if (cinfo->output_scan_number > cinfo->input_scan_number)
|
||||
cinfo->output_scan_number = cinfo->input_scan_number;
|
||||
}
|
||||
break;
|
||||
case JPEG_SUSPENDED:
|
||||
break;
|
||||
}
|
||||
|
||||
return val;
|
||||
case JPEG_SUSPENDED:
|
||||
return val;
|
||||
default:
|
||||
return val;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
@@ -309,7 +623,7 @@ reset_input_controller (j_decompress_ptr cinfo)
|
||||
inputctl->pub.consume_input = consume_markers;
|
||||
inputctl->pub.has_multiple_scans = FALSE; /* "unknown" would be better */
|
||||
inputctl->pub.eoi_reached = FALSE;
|
||||
inputctl->inheaders = TRUE;
|
||||
inputctl->inheaders = 1;
|
||||
/* Reset other modules */
|
||||
(*cinfo->err->reset_error_mgr) ((j_common_ptr) cinfo);
|
||||
(*cinfo->marker->reset_marker_reader) (cinfo);
|
||||
@@ -343,5 +657,5 @@ jinit_input_controller (j_decompress_ptr cinfo)
|
||||
*/
|
||||
inputctl->pub.has_multiple_scans = FALSE; /* "unknown" would be better */
|
||||
inputctl->pub.eoi_reached = FALSE;
|
||||
inputctl->inheaders = TRUE;
|
||||
inputctl->inheaders = 1;
|
||||
}
|
||||
|
||||
@@ -1,291 +0,0 @@
|
||||
/*
|
||||
* jdlhuff.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains Huffman entropy decoding routines for lossless JPEG.
|
||||
*
|
||||
* Much of the complexity here has to do with supporting input suspension.
|
||||
* If the data source module demands suspension, we want to be able to back
|
||||
* up to the start of the current MCU. To do this, we copy state variables
|
||||
* into local working storage, and update them back to the permanent
|
||||
* storage only upon successful completion of an MCU.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossls.h" /* Private declarations for lossless codec */
|
||||
#include "jdhuff.h" /* Declarations shared with jd*huff.c */
|
||||
|
||||
|
||||
#ifdef D_LOSSLESS_SUPPORTED
|
||||
|
||||
typedef struct {
|
||||
int ci, yoffset, MCU_width;
|
||||
} lhd_output_ptr_info;
|
||||
|
||||
/*
|
||||
* Private entropy decoder object for lossless Huffman decoding.
|
||||
*/
|
||||
|
||||
typedef struct {
|
||||
huffd_common_fields; /* Fields shared with other entropy decoders */
|
||||
|
||||
/* Pointers to derived tables (these workspaces have image lifespan) */
|
||||
d_derived_tbl * derived_tbls[NUM_HUFF_TBLS];
|
||||
|
||||
/* Precalculated info set up by start_pass for use in decode_mcus: */
|
||||
|
||||
/* Pointers to derived tables to be used for each data unit within an MCU */
|
||||
d_derived_tbl * cur_tbls[D_MAX_DATA_UNITS_IN_MCU];
|
||||
|
||||
/* Pointers to the proper output difference row for each group of data units
|
||||
* within an MCU. For each component, there are Vi groups of Hi data units.
|
||||
*/
|
||||
JDIFFROW output_ptr[D_MAX_DATA_UNITS_IN_MCU];
|
||||
|
||||
/* Number of output pointers in use for the current MCU. This is the sum
|
||||
* of all Vi in the MCU.
|
||||
*/
|
||||
int num_output_ptrs;
|
||||
|
||||
/* Information used for positioning the output pointers within the output
|
||||
* difference rows.
|
||||
*/
|
||||
lhd_output_ptr_info output_ptr_info[D_MAX_DATA_UNITS_IN_MCU];
|
||||
|
||||
/* Index of the proper output pointer for each data unit within an MCU */
|
||||
int output_ptr_index[D_MAX_DATA_UNITS_IN_MCU];
|
||||
|
||||
} lhuff_entropy_decoder;
|
||||
|
||||
typedef lhuff_entropy_decoder * lhuff_entropy_ptr;
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for a Huffman-compressed scan.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass_lhuff_decoder (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
lhuff_entropy_ptr entropy = (lhuff_entropy_ptr) losslsd->entropy_private;
|
||||
int ci, dctbl, sampn, ptrn, yoffset, xoffset;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
dctbl = compptr->dc_tbl_no;
|
||||
/* Make sure requested tables are present */
|
||||
if (dctbl < 0 || dctbl >= NUM_HUFF_TBLS ||
|
||||
cinfo->dc_huff_tbl_ptrs[dctbl] == NULL)
|
||||
ERREXIT1(cinfo, JERR_NO_HUFF_TABLE, dctbl);
|
||||
/* Compute derived values for Huffman tables */
|
||||
/* We may do this more than once for a table, but it's not expensive */
|
||||
jpeg_make_d_derived_tbl(cinfo, TRUE, dctbl,
|
||||
& entropy->derived_tbls[dctbl]);
|
||||
}
|
||||
|
||||
/* Precalculate decoding info for each sample in an MCU of this scan */
|
||||
for (sampn = 0, ptrn = 0; sampn < cinfo->data_units_in_MCU;) {
|
||||
compptr = cinfo->cur_comp_info[cinfo->MCU_membership[sampn]];
|
||||
ci = compptr->component_index;
|
||||
for (yoffset = 0; yoffset < compptr->MCU_height; yoffset++, ptrn++) {
|
||||
/* Precalculate the setup info for each output pointer */
|
||||
entropy->output_ptr_info[ptrn].ci = ci;
|
||||
entropy->output_ptr_info[ptrn].yoffset = yoffset;
|
||||
entropy->output_ptr_info[ptrn].MCU_width = compptr->MCU_width;
|
||||
for (xoffset = 0; xoffset < compptr->MCU_width; xoffset++, sampn++) {
|
||||
/* Precalculate the output pointer index for each sample */
|
||||
entropy->output_ptr_index[sampn] = ptrn;
|
||||
/* Precalculate which table to use for each sample */
|
||||
entropy->cur_tbls[sampn] = entropy->derived_tbls[compptr->dc_tbl_no];
|
||||
}
|
||||
}
|
||||
}
|
||||
entropy->num_output_ptrs = ptrn;
|
||||
|
||||
/* Initialize bitread state variables */
|
||||
entropy->bitstate.bits_left = 0;
|
||||
entropy->bitstate.get_buffer = 0; /* unnecessary, but keeps Purify quiet */
|
||||
entropy->insufficient_data = FALSE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Figure F.12: extend sign bit.
|
||||
* On some machines, a shift and add will be faster than a table lookup.
|
||||
*/
|
||||
|
||||
#ifdef AVOID_TABLES
|
||||
|
||||
#define HUFF_EXTEND(x,s) ((x) < (1<<((s)-1)) ? (x) + (((-1)<<(s)) + 1) : (x))
|
||||
|
||||
#else
|
||||
|
||||
#define HUFF_EXTEND(x,s) ((x) < extend_test[s] ? (x) + extend_offset[s] : (x))
|
||||
|
||||
static const int extend_test[16] = /* entry n is 2**(n-1) */
|
||||
{ 0, 0x0001, 0x0002, 0x0004, 0x0008, 0x0010, 0x0020, 0x0040, 0x0080,
|
||||
0x0100, 0x0200, 0x0400, 0x0800, 0x1000, 0x2000, 0x4000 };
|
||||
|
||||
static const int extend_offset[16] = /* entry n is (-1 << n) + 1 */
|
||||
{ 0, ((-1)<<1) + 1, ((-1)<<2) + 1, ((-1)<<3) + 1, ((-1)<<4) + 1,
|
||||
((-1)<<5) + 1, ((-1)<<6) + 1, ((-1)<<7) + 1, ((-1)<<8) + 1,
|
||||
((-1)<<9) + 1, ((-1)<<10) + 1, ((-1)<<11) + 1, ((-1)<<12) + 1,
|
||||
((-1)<<13) + 1, ((-1)<<14) + 1, ((-1)<<15) + 1 };
|
||||
|
||||
#endif /* AVOID_TABLES */
|
||||
|
||||
|
||||
/*
|
||||
* Check for a restart marker & resynchronize decoder.
|
||||
* Returns FALSE if must suspend.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
process_restart (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
lhuff_entropy_ptr entropy = (lhuff_entropy_ptr) losslsd->entropy_private;
|
||||
//int ci;
|
||||
|
||||
/* Throw away any unused bits remaining in bit buffer; */
|
||||
/* include any full bytes in next_marker's count of discarded bytes */
|
||||
cinfo->marker->discarded_bytes += entropy->bitstate.bits_left / 8;
|
||||
entropy->bitstate.bits_left = 0;
|
||||
|
||||
/* Advance past the RSTn marker */
|
||||
if (! (*cinfo->marker->read_restart_marker) (cinfo))
|
||||
return FALSE;
|
||||
|
||||
/* Reset out-of-data flag, unless read_restart_marker left us smack up
|
||||
* against a marker. In that case we will end up treating the next data
|
||||
* segment as empty, and we can avoid producing bogus output pixels by
|
||||
* leaving the flag set.
|
||||
*/
|
||||
if (cinfo->unread_marker == 0)
|
||||
entropy->insufficient_data = FALSE;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Decode and return nMCU's worth of Huffman-compressed differences.
|
||||
* Each MCU is also disassembled and placed accordingly in diff_buf.
|
||||
*
|
||||
* MCU_col_num specifies the column of the first MCU being requested within
|
||||
* the MCU-row. This tells us where to position the output row pointers in
|
||||
* diff_buf.
|
||||
*
|
||||
* Returns the number of MCUs decoded. This may be less than nMCU if data
|
||||
* source requested suspension. In that case no changes have been made to
|
||||
* permanent state. (Exception: some output differences may already have
|
||||
* been assigned. This is harmless for this module, since we'll just
|
||||
* re-assign them on the next call.)
|
||||
*/
|
||||
|
||||
METHODDEF(JDIMENSION)
|
||||
decode_mcus (j_decompress_ptr cinfo, JDIFFIMAGE diff_buf,
|
||||
JDIMENSION MCU_row_num, JDIMENSION MCU_col_num, JDIMENSION nMCU)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
lhuff_entropy_ptr entropy = (lhuff_entropy_ptr) losslsd->entropy_private;
|
||||
int sampn, ci, yoffset, MCU_width, ptrn;
|
||||
uint mcu_num;
|
||||
BITREAD_STATE_VARS;
|
||||
|
||||
/* Set output pointer locations based on MCU_col_num */
|
||||
for (ptrn = 0; ptrn < entropy->num_output_ptrs; ptrn++) {
|
||||
ci = entropy->output_ptr_info[ptrn].ci;
|
||||
yoffset = entropy->output_ptr_info[ptrn].yoffset;
|
||||
MCU_width = entropy->output_ptr_info[ptrn].MCU_width;
|
||||
entropy->output_ptr[ptrn] =
|
||||
diff_buf[ci][MCU_row_num + yoffset] + (MCU_col_num * MCU_width);
|
||||
}
|
||||
|
||||
/*
|
||||
* If we've run out of data, zero out the buffers and return.
|
||||
* By resetting the undifferencer, the output samples will be CENTERJSAMPLE.
|
||||
*
|
||||
* NB: We should find a way to do this without interacting with the
|
||||
* undifferencer module directly.
|
||||
*/
|
||||
if (entropy->insufficient_data) {
|
||||
for (ptrn = 0; ptrn < entropy->num_output_ptrs; ptrn++)
|
||||
jzero_far((void FAR *) entropy->output_ptr[ptrn],
|
||||
nMCU * entropy->output_ptr_info[ptrn].MCU_width * SIZEOF(JDIFF));
|
||||
|
||||
(*losslsd->predict_process_restart) (cinfo);
|
||||
}
|
||||
|
||||
else {
|
||||
|
||||
/* Load up working state */
|
||||
BITREAD_LOAD_STATE(cinfo,entropy->bitstate);
|
||||
|
||||
/* Outer loop handles the number of MCU requested */
|
||||
|
||||
for (mcu_num = 0; mcu_num < nMCU; mcu_num++) {
|
||||
|
||||
/* Inner loop handles the samples in the MCU */
|
||||
for (sampn = 0; sampn < cinfo->data_units_in_MCU; sampn++) {
|
||||
d_derived_tbl * dctbl = entropy->cur_tbls[sampn];
|
||||
register int s, r;
|
||||
|
||||
/* Section H.2.2: decode the sample difference */
|
||||
HUFF_DECODE(s, br_state, dctbl, return mcu_num, label1);
|
||||
if (s) {
|
||||
if (s == 16) /* special case: always output 32768 */
|
||||
s = 32768;
|
||||
else { /* normal case: fetch subsequent bits */
|
||||
CHECK_BIT_BUFFER(br_state, s, return mcu_num);
|
||||
r = GET_BITS(s);
|
||||
s = HUFF_EXTEND(r, s);
|
||||
}
|
||||
}
|
||||
|
||||
/* Output the sample difference */
|
||||
*entropy->output_ptr[entropy->output_ptr_index[sampn]]++ = (JDIFF) s;
|
||||
}
|
||||
|
||||
/* Completed MCU, so update state */
|
||||
BITREAD_SAVE_STATE(cinfo,entropy->bitstate);
|
||||
}
|
||||
}
|
||||
|
||||
return nMCU;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Module initialization routine for lossless Huffman entropy decoding.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_lhuff_decoder (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
lhuff_entropy_ptr entropy;
|
||||
int i;
|
||||
|
||||
entropy = (lhuff_entropy_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(lhuff_entropy_decoder));
|
||||
losslsd->entropy_private = (void *) entropy;
|
||||
losslsd->entropy_start_pass = start_pass_lhuff_decoder;
|
||||
losslsd->entropy_process_restart = process_restart;
|
||||
losslsd->entropy_decode_mcus = decode_mcus;
|
||||
|
||||
/* Mark tables unallocated */
|
||||
for (i = 0; i < NUM_HUFF_TBLS; i++) {
|
||||
entropy->derived_tbls[i] = NULL;
|
||||
}
|
||||
}
|
||||
|
||||
#endif /* D_LOSSLESS_SUPPORTED */
|
||||
@@ -1,94 +0,0 @@
|
||||
/*
|
||||
* jdlossls.c
|
||||
*
|
||||
* Copyright (C) 1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains the control logic for the lossless JPEG decompressor.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossls.h"
|
||||
|
||||
|
||||
#ifdef D_LOSSLESS_SUPPORTED
|
||||
|
||||
/*
|
||||
* Compute output image dimensions and related values.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
calc_output_dimensions (j_decompress_ptr cinfo)
|
||||
{
|
||||
/* Hardwire it to "no scaling" */
|
||||
cinfo->output_width = cinfo->image_width;
|
||||
cinfo->output_height = cinfo->image_height;
|
||||
/* jdinput.c has already initialized codec_data_unit to 1,
|
||||
* and has computed unscaled downsampled_width and downsampled_height.
|
||||
*/
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for an input processing pass.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_input_pass (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
|
||||
(*losslsd->entropy_start_pass) (cinfo);
|
||||
(*losslsd->predict_start_pass) (cinfo);
|
||||
(*losslsd->scaler_start_pass) (cinfo);
|
||||
(*losslsd->diff_start_input_pass) (cinfo);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize the lossless decompression codec.
|
||||
* This is called only once, during master selection.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_lossless_d_codec(j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd;
|
||||
boolean use_c_buffer;
|
||||
|
||||
/* Create subobject in permanent pool */
|
||||
losslsd = (j_lossless_d_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
|
||||
SIZEOF(jpeg_lossless_d_codec));
|
||||
cinfo->codec = (struct jpeg_d_codec *) losslsd;
|
||||
|
||||
/* Initialize sub-modules */
|
||||
/* Entropy decoding: either Huffman or arithmetic coding. */
|
||||
if (cinfo->arith_code) {
|
||||
ERREXIT(cinfo, JERR_ARITH_NOTIMPL);
|
||||
} else {
|
||||
jinit_lhuff_decoder(cinfo);
|
||||
}
|
||||
|
||||
/* Undifferencer */
|
||||
jinit_undifferencer(cinfo);
|
||||
|
||||
/* Scaler */
|
||||
jinit_d_scaler(cinfo);
|
||||
|
||||
use_c_buffer = cinfo->inputctl->has_multiple_scans || cinfo->buffered_image;
|
||||
jinit_d_diff_controller(cinfo, use_c_buffer);
|
||||
|
||||
/* Initialize method pointers.
|
||||
*
|
||||
* Note: consume_data, start_output_pass and decompress_data are
|
||||
* assigned in jddiffct.c.
|
||||
*/
|
||||
losslsd->pub.calc_output_dimensions = calc_output_dimensions;
|
||||
losslsd->pub.start_input_pass = start_input_pass;
|
||||
}
|
||||
|
||||
#endif /* D_LOSSLESS_SUPPORTED */
|
||||
@@ -1,227 +0,0 @@
|
||||
/*
|
||||
* jdlossy.c
|
||||
*
|
||||
* Copyright (C) 1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains the control logic for the lossy JPEG decompressor.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h"
|
||||
|
||||
|
||||
/*
|
||||
* Compute output image dimensions and related values.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
calc_output_dimensions (j_decompress_ptr cinfo)
|
||||
{
|
||||
#ifdef IDCT_SCALING_SUPPORTED
|
||||
int ci;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* Compute actual output image dimensions and DCT scaling choices. */
|
||||
if (cinfo->scale_num * 8 <= cinfo->scale_denom) {
|
||||
/* Provide 1/8 scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width, 8L);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height, 8L);
|
||||
cinfo->min_codec_data_unit = 1;
|
||||
} else if (cinfo->scale_num * 4 <= cinfo->scale_denom) {
|
||||
/* Provide 1/4 scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width, 4L);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height, 4L);
|
||||
cinfo->min_codec_data_unit = 2;
|
||||
} else if (cinfo->scale_num * 2 <= cinfo->scale_denom) {
|
||||
/* Provide 1/2 scaling */
|
||||
cinfo->output_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width, 2L);
|
||||
cinfo->output_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height, 2L);
|
||||
cinfo->min_codec_data_unit = 4;
|
||||
} else {
|
||||
/* Provide 1/1 scaling */
|
||||
cinfo->output_width = cinfo->image_width;
|
||||
cinfo->output_height = cinfo->image_height;
|
||||
cinfo->min_codec_data_unit = DCTSIZE;
|
||||
}
|
||||
/* In selecting the actual DCT scaling for each component, we try to
|
||||
* scale up the chroma components via IDCT scaling rather than upsampling.
|
||||
* This saves time if the upsampler gets to use 1:1 scaling.
|
||||
* Note this code assumes that the supported DCT scalings are powers of 2.
|
||||
*/
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
int ssize = cinfo->min_codec_data_unit;
|
||||
while (ssize < DCTSIZE &&
|
||||
(compptr->h_samp_factor * ssize * 2 <=
|
||||
cinfo->max_h_samp_factor * cinfo->min_codec_data_unit) &&
|
||||
(compptr->v_samp_factor * ssize * 2 <=
|
||||
cinfo->max_v_samp_factor * cinfo->min_codec_data_unit)) {
|
||||
ssize = ssize * 2;
|
||||
}
|
||||
compptr->codec_data_unit = ssize;
|
||||
}
|
||||
|
||||
/* Recompute downsampled dimensions of components;
|
||||
* application needs to know these if using raw downsampled data.
|
||||
*/
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
/* Size in samples, after IDCT scaling */
|
||||
compptr->downsampled_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width *
|
||||
(long) (compptr->h_samp_factor * compptr->codec_data_unit),
|
||||
(long) (cinfo->max_h_samp_factor * DCTSIZE));
|
||||
compptr->downsampled_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height *
|
||||
(long) (compptr->v_samp_factor * compptr->codec_data_unit),
|
||||
(long) (cinfo->max_v_samp_factor * DCTSIZE));
|
||||
}
|
||||
|
||||
#else /* !IDCT_SCALING_SUPPORTED */
|
||||
|
||||
/* Hardwire it to "no scaling" */
|
||||
cinfo->output_width = cinfo->image_width;
|
||||
cinfo->output_height = cinfo->image_height;
|
||||
/* jdinput.c has already initialized codec_data_unit to DCTSIZE,
|
||||
* and has computed unscaled downsampled_width and downsampled_height.
|
||||
*/
|
||||
|
||||
#endif /* IDCT_SCALING_SUPPORTED */
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Save away a copy of the Q-table referenced by each component present
|
||||
* in the current scan, unless already saved during a prior scan.
|
||||
*
|
||||
* In a multiple-scan JPEG file, the encoder could assign different components
|
||||
* the same Q-table slot number, but change table definitions between scans
|
||||
* so that each component uses a different Q-table. (The IJG encoder is not
|
||||
* currently capable of doing this, but other encoders might.) Since we want
|
||||
* to be able to dequantize all the components at the end of the file, this
|
||||
* means that we have to save away the table actually used for each component.
|
||||
* We do this by copying the table at the start of the first scan containing
|
||||
* the component.
|
||||
* The JPEG spec prohibits the encoder from changing the contents of a Q-table
|
||||
* slot between scans of a component using that slot. If the encoder does so
|
||||
* anyway, this decoder will simply use the Q-table values that were current
|
||||
* at the start of the first scan for the component.
|
||||
*
|
||||
* The decompressor output side looks only at the saved quant tables,
|
||||
* not at the current Q-table slots.
|
||||
*/
|
||||
|
||||
LOCAL(void)
|
||||
latch_quant_tables (j_decompress_ptr cinfo)
|
||||
{
|
||||
int ci, qtblno;
|
||||
jpeg_component_info *compptr;
|
||||
JQUANT_TBL * qtbl;
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
/* No work if we already saved Q-table for this component */
|
||||
if (compptr->quant_table != NULL)
|
||||
continue;
|
||||
/* Make sure specified quantization table is present */
|
||||
qtblno = compptr->quant_tbl_no;
|
||||
if (qtblno < 0 || qtblno >= NUM_QUANT_TBLS ||
|
||||
cinfo->quant_tbl_ptrs[qtblno] == NULL)
|
||||
ERREXIT1(cinfo, JERR_NO_QUANT_TABLE, qtblno);
|
||||
/* OK, save away the quantization table */
|
||||
qtbl = (JQUANT_TBL *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(JQUANT_TBL));
|
||||
MEMCOPY(qtbl, cinfo->quant_tbl_ptrs[qtblno], SIZEOF(JQUANT_TBL));
|
||||
compptr->quant_table = qtbl;
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for an input processing pass.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_input_pass (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
|
||||
latch_quant_tables(cinfo);
|
||||
(*lossyd->entropy_start_pass) (cinfo);
|
||||
(*lossyd->coef_start_input_pass) (cinfo);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for an output processing pass.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_output_pass (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
|
||||
(*lossyd->idct_start_pass) (cinfo);
|
||||
(*lossyd->coef_start_output_pass) (cinfo);
|
||||
}
|
||||
|
||||
/*
|
||||
* Initialize the lossy decompression codec.
|
||||
* This is called only once, during master selection.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_lossy_d_codec (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd;
|
||||
boolean use_c_buffer;
|
||||
|
||||
/* Create subobject in permanent pool */
|
||||
lossyd = (j_lossy_d_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
|
||||
SIZEOF(jpeg_lossy_d_codec));
|
||||
cinfo->codec = (struct jpeg_d_codec *) lossyd;
|
||||
|
||||
/* Initialize sub-modules */
|
||||
|
||||
/* Inverse DCT */
|
||||
jinit_inverse_dct(cinfo);
|
||||
/* Entropy decoding: either Huffman or arithmetic coding. */
|
||||
if (cinfo->arith_code) {
|
||||
ERREXIT(cinfo, JERR_ARITH_NOTIMPL);
|
||||
} else {
|
||||
if (cinfo->process == JPROC_PROGRESSIVE) {
|
||||
#ifdef D_PROGRESSIVE_SUPPORTED
|
||||
jinit_phuff_decoder(cinfo);
|
||||
#else
|
||||
ERREXIT(cinfo, JERR_NOT_COMPILED);
|
||||
#endif
|
||||
} else
|
||||
jinit_shuff_decoder(cinfo);
|
||||
}
|
||||
|
||||
use_c_buffer = cinfo->inputctl->has_multiple_scans || cinfo->buffered_image;
|
||||
jinit_d_coef_controller(cinfo, use_c_buffer);
|
||||
|
||||
/* Initialize method pointers.
|
||||
*
|
||||
* Note: consume_data and decompress_data are assigned in jdcoefct.c.
|
||||
*/
|
||||
lossyd->pub.calc_output_dimensions = calc_output_dimensions;
|
||||
lossyd->pub.start_input_pass = start_input_pass;
|
||||
lossyd->pub.start_output_pass = start_output_pass;
|
||||
}
|
||||
|
||||
|
||||
|
||||
+36
-36
@@ -1,7 +1,7 @@
|
||||
/*
|
||||
* jdmainct.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1994-1996, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -26,18 +26,18 @@
|
||||
* rescaling, and doing this in an efficient fashion is a bit tricky.
|
||||
*
|
||||
* Postprocessor input data is counted in "row groups". A row group
|
||||
* is defined to be (v_samp_factor * codec_data_unit / min_codec_data_unit)
|
||||
* sample rows of each component. (We require codec_data_unit values to be
|
||||
* chosen such that these numbers are integers. In practice codec_data_unit
|
||||
* is defined to be (v_samp_factor * DCT_scaled_size / min_DCT_scaled_size)
|
||||
* sample rows of each component. (We require DCT_scaled_size values to be
|
||||
* chosen such that these numbers are integers. In practice DCT_scaled_size
|
||||
* values will likely be powers of two, so we actually have the stronger
|
||||
* condition that codec_data_unit / min_codec_data_unit is an integer.)
|
||||
* condition that DCT_scaled_size / min_DCT_scaled_size is an integer.)
|
||||
* Upsampling will typically produce max_v_samp_factor pixel rows from each
|
||||
* row group (times any additional scale factor that the upsampler is
|
||||
* applying).
|
||||
*
|
||||
* The decompression codec will deliver data to us one iMCU row at a time;
|
||||
* each iMCU row contains v_samp_factor * codec_data_unit sample rows, or
|
||||
* exactly min_codec_data_unit row groups. (This amount of data corresponds
|
||||
* The coefficient controller will deliver data to us one iMCU row at a time;
|
||||
* each iMCU row contains v_samp_factor * DCT_scaled_size sample rows, or
|
||||
* exactly min_DCT_scaled_size row groups. (This amount of data corresponds
|
||||
* to one row of MCUs when the image is fully interleaved.) Note that the
|
||||
* number of sample rows varies across components, but the number of row
|
||||
* groups does not. Some garbage sample rows may be included in the last iMCU
|
||||
@@ -64,7 +64,7 @@
|
||||
* supporting arbitrary output rescaling might wish for more than one row
|
||||
* group of context when shrinking the image; tough, we don't handle that.
|
||||
* (This is justified by the assumption that downsizing will be handled mostly
|
||||
* by adjusting the codec_data_unit values, so that the actual scale factor at
|
||||
* by adjusting the DCT_scaled_size values, so that the actual scale factor at
|
||||
* the upsample step needn't be much less than one.)
|
||||
*
|
||||
* To provide the desired context, we have to retain the last two row groups
|
||||
@@ -74,7 +74,7 @@
|
||||
* We could do this most simply by copying data around in our buffer, but
|
||||
* that'd be very slow. We can avoid copying any data by creating a rather
|
||||
* strange pointer structure. Here's how it works. We allocate a workspace
|
||||
* consisting of M+2 row groups (where M = min_codec_data_unit is the number
|
||||
* consisting of M+2 row groups (where M = min_DCT_scaled_size is the number
|
||||
* of row groups per iMCU row). We create two sets of redundant pointers to
|
||||
* the workspace. Labeling the physical row groups 0 to M+1, the synthesized
|
||||
* pointer lists look like this:
|
||||
@@ -99,11 +99,11 @@
|
||||
* the first or last sample row as necessary (this is cheaper than copying
|
||||
* sample rows around).
|
||||
*
|
||||
* This scheme breaks down if M < 2, ie, min_codec_data_unit is 1. In that
|
||||
* This scheme breaks down if M < 2, ie, min_DCT_scaled_size is 1. In that
|
||||
* situation each iMCU row provides only one row group so the buffering logic
|
||||
* must be different (eg, we must read two iMCU rows before we can emit the
|
||||
* first row group). For now, we simply do not support providing context
|
||||
* rows when min_codec_data_unit is 1. That combination seems unlikely to
|
||||
* rows when min_DCT_scaled_size is 1. That combination seems unlikely to
|
||||
* be worth providing --- if someone wants a 1/8th-size preview, they probably
|
||||
* want it quick and dirty, so a context-free upsampler is sufficient.
|
||||
*/
|
||||
@@ -161,7 +161,7 @@ alloc_funny_pointers (j_decompress_ptr cinfo)
|
||||
{
|
||||
my_main_ptr main = (my_main_ptr) cinfo->main;
|
||||
int ci, rgroup;
|
||||
int M = cinfo->min_codec_data_unit;
|
||||
int M = cinfo->min_DCT_v_scaled_size;
|
||||
jpeg_component_info *compptr;
|
||||
JSAMPARRAY xbuf;
|
||||
|
||||
@@ -175,8 +175,8 @@ alloc_funny_pointers (j_decompress_ptr cinfo)
|
||||
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
rgroup = (compptr->v_samp_factor * compptr->codec_data_unit) /
|
||||
cinfo->min_codec_data_unit; /* height of a row group of component */
|
||||
rgroup = (compptr->v_samp_factor * compptr->DCT_v_scaled_size) /
|
||||
cinfo->min_DCT_v_scaled_size; /* height of a row group of component */
|
||||
/* Get space for pointer lists --- M+4 row groups in each list.
|
||||
* We alloc both pointer lists with one call to save a few cycles.
|
||||
*/
|
||||
@@ -202,14 +202,14 @@ make_funny_pointers (j_decompress_ptr cinfo)
|
||||
{
|
||||
my_main_ptr main = (my_main_ptr) cinfo->main;
|
||||
int ci, i, rgroup;
|
||||
int M = cinfo->min_codec_data_unit;
|
||||
int M = cinfo->min_DCT_v_scaled_size;
|
||||
jpeg_component_info *compptr;
|
||||
JSAMPARRAY buf, xbuf0, xbuf1;
|
||||
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
rgroup = (compptr->v_samp_factor * compptr->codec_data_unit) /
|
||||
cinfo->min_codec_data_unit; /* height of a row group of component */
|
||||
rgroup = (compptr->v_samp_factor * compptr->DCT_v_scaled_size) /
|
||||
cinfo->min_DCT_v_scaled_size; /* height of a row group of component */
|
||||
xbuf0 = main->xbuffer[0][ci];
|
||||
xbuf1 = main->xbuffer[1][ci];
|
||||
/* First copy the workspace pointers as-is */
|
||||
@@ -242,14 +242,14 @@ set_wraparound_pointers (j_decompress_ptr cinfo)
|
||||
{
|
||||
my_main_ptr main = (my_main_ptr) cinfo->main;
|
||||
int ci, i, rgroup;
|
||||
int M = cinfo->min_codec_data_unit;
|
||||
int M = cinfo->min_DCT_v_scaled_size;
|
||||
jpeg_component_info *compptr;
|
||||
JSAMPARRAY xbuf0, xbuf1;
|
||||
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
rgroup = (compptr->v_samp_factor * compptr->codec_data_unit) /
|
||||
cinfo->min_codec_data_unit; /* height of a row group of component */
|
||||
rgroup = (compptr->v_samp_factor * compptr->DCT_v_scaled_size) /
|
||||
cinfo->min_DCT_v_scaled_size; /* height of a row group of component */
|
||||
xbuf0 = main->xbuffer[0][ci];
|
||||
xbuf1 = main->xbuffer[1][ci];
|
||||
for (i = 0; i < rgroup; i++) {
|
||||
@@ -277,8 +277,8 @@ set_bottom_pointers (j_decompress_ptr cinfo)
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
/* Count sample rows in one iMCU row and in one row group */
|
||||
iMCUheight = compptr->v_samp_factor * compptr->codec_data_unit;
|
||||
rgroup = iMCUheight / cinfo->min_codec_data_unit;
|
||||
iMCUheight = compptr->v_samp_factor * compptr->DCT_v_scaled_size;
|
||||
rgroup = iMCUheight / cinfo->min_DCT_v_scaled_size;
|
||||
/* Count nondummy sample rows remaining for this component */
|
||||
rows_left = (int) (compptr->downsampled_height % (JDIMENSION) iMCUheight);
|
||||
if (rows_left == 0) rows_left = iMCUheight;
|
||||
@@ -351,13 +351,13 @@ process_data_simple_main (j_decompress_ptr cinfo,
|
||||
|
||||
/* Read input data if we haven't filled the main buffer yet */
|
||||
if (! main->buffer_full) {
|
||||
if (! (*cinfo->codec->decompress_data) (cinfo, main->buffer))
|
||||
if (! (*cinfo->coef->decompress_data) (cinfo, main->buffer))
|
||||
return; /* suspension forced, can do nothing more */
|
||||
main->buffer_full = TRUE; /* OK, we have an iMCU row to work with */
|
||||
}
|
||||
|
||||
/* There are always min_codec_data_unit row groups in an iMCU row. */
|
||||
rowgroups_avail = (JDIMENSION) cinfo->min_codec_data_unit;
|
||||
/* There are always min_DCT_scaled_size row groups in an iMCU row. */
|
||||
rowgroups_avail = (JDIMENSION) cinfo->min_DCT_v_scaled_size;
|
||||
/* Note: at the bottom of the image, we may pass extra garbage row groups
|
||||
* to the postprocessor. The postprocessor has to check for bottom
|
||||
* of image anyway (at row resolution), so no point in us doing it too.
|
||||
@@ -390,7 +390,7 @@ process_data_context_main (j_decompress_ptr cinfo,
|
||||
|
||||
/* Read input data if we haven't filled the main buffer yet */
|
||||
if (! main->buffer_full) {
|
||||
if (! (*cinfo->codec->decompress_data) (cinfo,
|
||||
if (! (*cinfo->coef->decompress_data) (cinfo,
|
||||
main->xbuffer[main->whichptr]))
|
||||
return; /* suspension forced, can do nothing more */
|
||||
main->buffer_full = TRUE; /* OK, we have an iMCU row to work with */
|
||||
@@ -417,7 +417,7 @@ process_data_context_main (j_decompress_ptr cinfo,
|
||||
case CTX_PREPARE_FOR_IMCU:
|
||||
/* Prepare to process first M-1 row groups of this iMCU row */
|
||||
main->rowgroup_ctr = 0;
|
||||
main->rowgroups_avail = (JDIMENSION) (cinfo->min_codec_data_unit - 1);
|
||||
main->rowgroups_avail = (JDIMENSION) (cinfo->min_DCT_v_scaled_size - 1);
|
||||
/* Check for bottom of image: if so, tweak pointers to "duplicate"
|
||||
* the last sample row, and adjust rowgroups_avail to ignore padding rows.
|
||||
*/
|
||||
@@ -440,8 +440,8 @@ process_data_context_main (j_decompress_ptr cinfo,
|
||||
main->buffer_full = FALSE;
|
||||
/* Still need to process last row group of this iMCU row, */
|
||||
/* which is saved at index M+1 of the other xbuffer */
|
||||
main->rowgroup_ctr = (JDIMENSION) (cinfo->min_codec_data_unit + 1);
|
||||
main->rowgroups_avail = (JDIMENSION) (cinfo->min_codec_data_unit + 2);
|
||||
main->rowgroup_ctr = (JDIMENSION) (cinfo->min_DCT_v_scaled_size + 1);
|
||||
main->rowgroups_avail = (JDIMENSION) (cinfo->min_DCT_v_scaled_size + 2);
|
||||
main->context_state = CTX_POSTPONED_ROW;
|
||||
}
|
||||
}
|
||||
@@ -492,21 +492,21 @@ jinit_d_main_controller (j_decompress_ptr cinfo, boolean need_full_buffer)
|
||||
* ngroups is the number of row groups we need.
|
||||
*/
|
||||
if (cinfo->upsample->need_context_rows) {
|
||||
if (cinfo->min_codec_data_unit < 2) /* unsupported, see comments above */
|
||||
if (cinfo->min_DCT_v_scaled_size < 2) /* unsupported, see comments above */
|
||||
ERREXIT(cinfo, JERR_NOTIMPL);
|
||||
alloc_funny_pointers(cinfo); /* Alloc space for xbuffer[] lists */
|
||||
ngroups = cinfo->min_codec_data_unit + 2;
|
||||
ngroups = cinfo->min_DCT_v_scaled_size + 2;
|
||||
} else {
|
||||
ngroups = cinfo->min_codec_data_unit;
|
||||
ngroups = cinfo->min_DCT_v_scaled_size;
|
||||
}
|
||||
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
rgroup = (compptr->v_samp_factor * compptr->codec_data_unit) /
|
||||
cinfo->min_codec_data_unit; /* height of a row group of component */
|
||||
rgroup = (compptr->v_samp_factor * compptr->DCT_v_scaled_size) /
|
||||
cinfo->min_DCT_v_scaled_size; /* height of a row group of component */
|
||||
main->buffer[ci] = (*cinfo->mem->alloc_sarray)
|
||||
((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
compptr->width_in_data_units * compptr->codec_data_unit,
|
||||
compptr->width_in_blocks * compptr->DCT_h_scaled_size,
|
||||
(JDIMENSION) (rgroup * ngroups));
|
||||
}
|
||||
}
|
||||
|
||||
+62
-25
@@ -2,6 +2,7 @@
|
||||
* jdmarker.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Modified 2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -234,7 +235,8 @@ get_soi (j_decompress_ptr cinfo)
|
||||
|
||||
|
||||
LOCAL(boolean)
|
||||
get_sof (j_decompress_ptr cinfo, J_CODEC_PROCESS process, boolean is_arith, int data_unit)
|
||||
get_sof (j_decompress_ptr cinfo, boolean is_baseline, boolean is_prog,
|
||||
boolean is_arith)
|
||||
/* Process a SOFn marker */
|
||||
{
|
||||
INT32 length;
|
||||
@@ -242,8 +244,8 @@ get_sof (j_decompress_ptr cinfo, J_CODEC_PROCESS process, boolean is_arith, int
|
||||
jpeg_component_info * compptr;
|
||||
INPUT_VARS(cinfo);
|
||||
|
||||
cinfo->data_unit = data_unit;
|
||||
cinfo->process = process;
|
||||
cinfo->is_baseline = is_baseline;
|
||||
cinfo->progressive_mode = is_prog;
|
||||
cinfo->arith_code = is_arith;
|
||||
|
||||
INPUT_2BYTES(cinfo, length, return FALSE);
|
||||
@@ -316,7 +318,9 @@ get_sos (j_decompress_ptr cinfo)
|
||||
|
||||
TRACEMS1(cinfo, 1, JTRC_SOS, n);
|
||||
|
||||
if (length != (n * 2 + 6) || n < 1 || n > MAX_COMPS_IN_SCAN)
|
||||
if (length != (n * 2 + 6) || n > MAX_COMPS_IN_SCAN ||
|
||||
(n == 0 && !cinfo->progressive_mode))
|
||||
/* pseudo SOS marker only allowed in progressive mode */
|
||||
ERREXIT(cinfo, JERR_BAD_LENGTH);
|
||||
|
||||
cinfo->comps_in_scan = n;
|
||||
@@ -360,8 +364,8 @@ get_sos (j_decompress_ptr cinfo)
|
||||
/* Prepare to scan data & restart markers */
|
||||
cinfo->marker->next_restart_num = 0;
|
||||
|
||||
/* Count another SOS marker */
|
||||
cinfo->input_scan_number++;
|
||||
/* Count another (non-pseudo) SOS marker */
|
||||
if (n) cinfo->input_scan_number++;
|
||||
|
||||
INPUT_SYNC(cinfo);
|
||||
return TRUE;
|
||||
@@ -491,16 +495,18 @@ LOCAL(boolean)
|
||||
get_dqt (j_decompress_ptr cinfo)
|
||||
/* Process a DQT marker */
|
||||
{
|
||||
INT32 length;
|
||||
int n, i, prec;
|
||||
INT32 length, count, i;
|
||||
int n, prec;
|
||||
unsigned int tmp;
|
||||
JQUANT_TBL *quant_ptr;
|
||||
const int *natural_order;
|
||||
INPUT_VARS(cinfo);
|
||||
|
||||
INPUT_2BYTES(cinfo, length, return FALSE);
|
||||
length -= 2;
|
||||
|
||||
while (length > 0) {
|
||||
length--;
|
||||
INPUT_BYTE(cinfo, n, return FALSE);
|
||||
prec = n >> 4;
|
||||
n &= 0x0F;
|
||||
@@ -514,13 +520,43 @@ get_dqt (j_decompress_ptr cinfo)
|
||||
cinfo->quant_tbl_ptrs[n] = jpeg_alloc_quant_table((j_common_ptr) cinfo);
|
||||
quant_ptr = cinfo->quant_tbl_ptrs[n];
|
||||
|
||||
if (prec) {
|
||||
if (length < DCTSIZE2 * 2) {
|
||||
/* Initialize full table for safety. */
|
||||
for (i = 0; i < DCTSIZE2; i++) {
|
||||
quant_ptr->quantval[i] = 1;
|
||||
}
|
||||
count = length >> 1;
|
||||
} else
|
||||
count = DCTSIZE2;
|
||||
} else {
|
||||
if (length < DCTSIZE2) {
|
||||
/* Initialize full table for safety. */
|
||||
for (i = 0; i < DCTSIZE2; i++) {
|
||||
quant_ptr->quantval[i] = 1;
|
||||
}
|
||||
count = length;
|
||||
} else
|
||||
count = DCTSIZE2;
|
||||
}
|
||||
|
||||
switch (count) {
|
||||
case (2*2): natural_order = jpeg_natural_order2; break;
|
||||
case (3*3): natural_order = jpeg_natural_order3; break;
|
||||
case (4*4): natural_order = jpeg_natural_order4; break;
|
||||
case (5*5): natural_order = jpeg_natural_order5; break;
|
||||
case (6*6): natural_order = jpeg_natural_order6; break;
|
||||
case (7*7): natural_order = jpeg_natural_order7; break;
|
||||
default: natural_order = jpeg_natural_order; break;
|
||||
}
|
||||
|
||||
for (i = 0; i < count; i++) {
|
||||
if (prec)
|
||||
INPUT_2BYTES(cinfo, tmp, return FALSE);
|
||||
else
|
||||
INPUT_BYTE(cinfo, tmp, return FALSE);
|
||||
/* We convert the zigzag-order table to natural array order. */
|
||||
quant_ptr->quantval[jpeg_natural_order[i]] = (UINT16) tmp;
|
||||
quant_ptr->quantval[natural_order[i]] = (UINT16) tmp;
|
||||
}
|
||||
|
||||
if (cinfo->err->trace_level >= 2) {
|
||||
@@ -533,8 +569,8 @@ get_dqt (j_decompress_ptr cinfo)
|
||||
}
|
||||
}
|
||||
|
||||
length -= DCTSIZE2+1;
|
||||
if (prec) length -= DCTSIZE2;
|
||||
length -= count;
|
||||
if (prec) length -= count;
|
||||
}
|
||||
|
||||
if (length != 0)
|
||||
@@ -947,6 +983,11 @@ first_marker (j_decompress_ptr cinfo)
|
||||
*
|
||||
* Returns same codes as are defined for jpeg_consume_input:
|
||||
* JPEG_SUSPENDED, JPEG_REACHED_SOS, or JPEG_REACHED_EOI.
|
||||
*
|
||||
* Note: This function may return a pseudo SOS marker (with zero
|
||||
* component number) for treat by input controller's consume_input.
|
||||
* consume_input itself should filter out (skip) the pseudo marker
|
||||
* after processing for the caller.
|
||||
*/
|
||||
|
||||
METHODDEF(int)
|
||||
@@ -976,41 +1017,37 @@ read_markers (j_decompress_ptr cinfo)
|
||||
break;
|
||||
|
||||
case M_SOF0: /* Baseline */
|
||||
if (! get_sof(cinfo, TRUE, FALSE, FALSE))
|
||||
return JPEG_SUSPENDED;
|
||||
break;
|
||||
|
||||
case M_SOF1: /* Extended sequential, Huffman */
|
||||
if (! get_sof(cinfo, JPROC_SEQUENTIAL, FALSE, DCTSIZE))
|
||||
if (! get_sof(cinfo, FALSE, FALSE, FALSE))
|
||||
return JPEG_SUSPENDED;
|
||||
break;
|
||||
|
||||
case M_SOF2: /* Progressive, Huffman */
|
||||
if (! get_sof(cinfo, JPROC_PROGRESSIVE, FALSE, DCTSIZE))
|
||||
return JPEG_SUSPENDED;
|
||||
break;
|
||||
|
||||
case M_SOF3: /* Lossless, Huffman */
|
||||
if (! get_sof(cinfo, JPROC_LOSSLESS, FALSE, 1))
|
||||
if (! get_sof(cinfo, FALSE, TRUE, FALSE))
|
||||
return JPEG_SUSPENDED;
|
||||
break;
|
||||
|
||||
case M_SOF9: /* Extended sequential, arithmetic */
|
||||
if (! get_sof(cinfo, JPROC_SEQUENTIAL, TRUE, DCTSIZE))
|
||||
if (! get_sof(cinfo, FALSE, FALSE, TRUE))
|
||||
return JPEG_SUSPENDED;
|
||||
break;
|
||||
|
||||
case M_SOF10: /* Progressive, arithmetic */
|
||||
if (! get_sof(cinfo, JPROC_PROGRESSIVE, TRUE, DCTSIZE))
|
||||
return JPEG_SUSPENDED;
|
||||
break;
|
||||
|
||||
case M_SOF11: /* Lossless, arithmetic */
|
||||
if (! get_sof(cinfo, JPROC_LOSSLESS, TRUE, 1))
|
||||
if (! get_sof(cinfo, FALSE, TRUE, TRUE))
|
||||
return JPEG_SUSPENDED;
|
||||
break;
|
||||
|
||||
/* Currently unsupported SOFn types */
|
||||
case M_SOF3: /* Lossless, Huffman */
|
||||
case M_SOF5: /* Differential sequential, Huffman */
|
||||
case M_SOF6: /* Differential progressive, Huffman */
|
||||
case M_SOF7: /* Differential lossless, Huffman */
|
||||
case M_JPG: /* Reserved for JPEG extensions */
|
||||
case M_SOF11: /* Lossless, arithmetic */
|
||||
case M_SOF13: /* Differential sequential, arithmetic */
|
||||
case M_SOF14: /* Differential progressive, arithmetic */
|
||||
case M_SOF15: /* Differential lossless, arithmetic */
|
||||
|
||||
+84
-10
@@ -1,7 +1,8 @@
|
||||
/*
|
||||
* jdmaster.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1991-1997, Thomas G. Lane.
|
||||
* Modified 2002-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -60,11 +61,13 @@ use_merged_upsample (j_decompress_ptr cinfo)
|
||||
cinfo->comp_info[1].v_samp_factor != 1 ||
|
||||
cinfo->comp_info[2].v_samp_factor != 1)
|
||||
return FALSE;
|
||||
/* furthermore, it doesn't work if each component has been
|
||||
processed differently */
|
||||
if (cinfo->comp_info[0].codec_data_unit != cinfo->min_codec_data_unit ||
|
||||
cinfo->comp_info[1].codec_data_unit != cinfo->min_codec_data_unit ||
|
||||
cinfo->comp_info[2].codec_data_unit != cinfo->min_codec_data_unit)
|
||||
/* furthermore, it doesn't work if we've scaled the IDCTs differently */
|
||||
if (cinfo->comp_info[0].DCT_h_scaled_size != cinfo->min_DCT_h_scaled_size ||
|
||||
cinfo->comp_info[1].DCT_h_scaled_size != cinfo->min_DCT_h_scaled_size ||
|
||||
cinfo->comp_info[2].DCT_h_scaled_size != cinfo->min_DCT_h_scaled_size ||
|
||||
cinfo->comp_info[0].DCT_v_scaled_size != cinfo->min_DCT_v_scaled_size ||
|
||||
cinfo->comp_info[1].DCT_v_scaled_size != cinfo->min_DCT_v_scaled_size ||
|
||||
cinfo->comp_info[2].DCT_v_scaled_size != cinfo->min_DCT_v_scaled_size)
|
||||
return FALSE;
|
||||
/* ??? also need to test for upsample-time rescaling, when & if supported */
|
||||
return TRUE; /* by golly, it'll work... */
|
||||
@@ -83,13 +86,71 @@ use_merged_upsample (j_decompress_ptr cinfo)
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_calc_output_dimensions (j_decompress_ptr cinfo)
|
||||
/* Do computations that are needed before master selection phase */
|
||||
/* Do computations that are needed before master selection phase.
|
||||
* This function is used for full decompression.
|
||||
*/
|
||||
{
|
||||
#ifdef IDCT_SCALING_SUPPORTED
|
||||
int ci;
|
||||
jpeg_component_info *compptr;
|
||||
#endif
|
||||
|
||||
/* Prevent application from calling me at wrong times */
|
||||
if (cinfo->global_state != DSTATE_READY)
|
||||
ERREXIT1(cinfo, JERR_BAD_STATE, cinfo->global_state);
|
||||
|
||||
(*cinfo->codec->calc_output_dimensions) (cinfo);
|
||||
/* Compute core output image dimensions and DCT scaling choices. */
|
||||
jpeg_core_output_dimensions(cinfo);
|
||||
|
||||
#ifdef IDCT_SCALING_SUPPORTED
|
||||
|
||||
/* In selecting the actual DCT scaling for each component, we try to
|
||||
* scale up the chroma components via IDCT scaling rather than upsampling.
|
||||
* This saves time if the upsampler gets to use 1:1 scaling.
|
||||
* Note this code adapts subsampling ratios which are powers of 2.
|
||||
*/
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
int ssize = 1;
|
||||
while (cinfo->min_DCT_h_scaled_size * ssize <=
|
||||
(cinfo->do_fancy_upsampling ? DCTSIZE : DCTSIZE / 2) &&
|
||||
(cinfo->max_h_samp_factor % (compptr->h_samp_factor * ssize * 2)) == 0) {
|
||||
ssize = ssize * 2;
|
||||
}
|
||||
compptr->DCT_h_scaled_size = cinfo->min_DCT_h_scaled_size * ssize;
|
||||
ssize = 1;
|
||||
while (cinfo->min_DCT_v_scaled_size * ssize <=
|
||||
(cinfo->do_fancy_upsampling ? DCTSIZE : DCTSIZE / 2) &&
|
||||
(cinfo->max_v_samp_factor % (compptr->v_samp_factor * ssize * 2)) == 0) {
|
||||
ssize = ssize * 2;
|
||||
}
|
||||
compptr->DCT_v_scaled_size = cinfo->min_DCT_v_scaled_size * ssize;
|
||||
|
||||
/* We don't support IDCT ratios larger than 2. */
|
||||
if (compptr->DCT_h_scaled_size > compptr->DCT_v_scaled_size * 2)
|
||||
compptr->DCT_h_scaled_size = compptr->DCT_v_scaled_size * 2;
|
||||
else if (compptr->DCT_v_scaled_size > compptr->DCT_h_scaled_size * 2)
|
||||
compptr->DCT_v_scaled_size = compptr->DCT_h_scaled_size * 2;
|
||||
}
|
||||
|
||||
/* Recompute downsampled dimensions of components;
|
||||
* application needs to know these if using raw downsampled data.
|
||||
*/
|
||||
for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
|
||||
ci++, compptr++) {
|
||||
/* Size in samples, after IDCT scaling */
|
||||
compptr->downsampled_width = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_width *
|
||||
(long) (compptr->h_samp_factor * compptr->DCT_h_scaled_size),
|
||||
(long) (cinfo->max_h_samp_factor * cinfo->block_size));
|
||||
compptr->downsampled_height = (JDIMENSION)
|
||||
jdiv_round_up((long) cinfo->image_height *
|
||||
(long) (compptr->v_samp_factor * compptr->DCT_v_scaled_size),
|
||||
(long) (cinfo->max_v_samp_factor * cinfo->block_size));
|
||||
}
|
||||
|
||||
#endif /* IDCT_SCALING_SUPPORTED */
|
||||
|
||||
/* Report number of components in selected colorspace. */
|
||||
/* Probably this should be in the color conversion module... */
|
||||
switch (cinfo->out_color_space) {
|
||||
@@ -210,6 +271,7 @@ LOCAL(void)
|
||||
master_selection (j_decompress_ptr cinfo)
|
||||
{
|
||||
my_master_ptr master = (my_master_ptr) cinfo->master;
|
||||
boolean use_c_buffer;
|
||||
long samplesperrow;
|
||||
JDIMENSION jd_samplesperrow;
|
||||
|
||||
@@ -290,8 +352,19 @@ master_selection (j_decompress_ptr cinfo)
|
||||
}
|
||||
jinit_d_post_controller(cinfo, cinfo->enable_2pass_quant);
|
||||
}
|
||||
/* Inverse DCT */
|
||||
jinit_inverse_dct(cinfo);
|
||||
/* Entropy decoding: either Huffman or arithmetic coding. */
|
||||
if (cinfo->arith_code)
|
||||
jinit_arith_decoder(cinfo);
|
||||
else {
|
||||
jinit_huff_decoder(cinfo);
|
||||
}
|
||||
|
||||
/* Initialize principal buffer controllers. */
|
||||
use_c_buffer = cinfo->inputctl->has_multiple_scans || cinfo->buffered_image;
|
||||
jinit_d_coef_controller(cinfo, use_c_buffer);
|
||||
|
||||
if (! cinfo->raw_data_out)
|
||||
jinit_d_main_controller(cinfo, FALSE /* never need full buffer here */);
|
||||
|
||||
@@ -310,7 +383,7 @@ master_selection (j_decompress_ptr cinfo)
|
||||
cinfo->inputctl->has_multiple_scans) {
|
||||
int nscans;
|
||||
/* Estimate number of scans to set pass_limit. */
|
||||
if (cinfo->process == JPROC_PROGRESSIVE) {
|
||||
if (cinfo->progressive_mode) {
|
||||
/* Arbitrarily estimate 2 interleaved DC scans + 3 AC scans/component. */
|
||||
nscans = 2 + 3 * cinfo->num_components;
|
||||
} else {
|
||||
@@ -364,7 +437,8 @@ prepare_for_output_pass (j_decompress_ptr cinfo)
|
||||
ERREXIT(cinfo, JERR_MODE_CHANGE);
|
||||
}
|
||||
}
|
||||
(*cinfo->codec->start_output_pass) (cinfo);
|
||||
(*cinfo->idct->start_pass) (cinfo);
|
||||
(*cinfo->coef->start_output_pass) (cinfo);
|
||||
if (! cinfo->raw_data_out) {
|
||||
if (! master->using_merged_upsample)
|
||||
(*cinfo->cconvert->start_pass) (cinfo);
|
||||
|
||||
@@ -1,674 +0,0 @@
|
||||
/*
|
||||
* jdphuff.c
|
||||
*
|
||||
* Copyright (C) 1995-1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains Huffman entropy decoding routines for progressive JPEG.
|
||||
*
|
||||
* Much of the complexity here has to do with supporting input suspension.
|
||||
* If the data source module demands suspension, we want to be able to back
|
||||
* up to the start of the current MCU. To do this, we copy state variables
|
||||
* into local working storage, and update them back to the permanent
|
||||
* storage only upon successful completion of an MCU.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h" /* Private declarations for lossy subsystem */
|
||||
#include "jdhuff.h" /* Declarations shared with jd*huff.c */
|
||||
|
||||
#ifdef D_PROGRESSIVE_SUPPORTED
|
||||
|
||||
/*
|
||||
* Private entropy decoder object for progressive Huffman decoding.
|
||||
*
|
||||
* The savable_state subrecord contains fields that change within an MCU,
|
||||
* but must not be updated permanently until we complete the MCU.
|
||||
*/
|
||||
|
||||
typedef struct {
|
||||
unsigned int EOBRUN; /* remaining EOBs in EOBRUN */
|
||||
int last_dc_val[MAX_COMPS_IN_SCAN]; /* last DC coef for each component */
|
||||
} savable_state;
|
||||
|
||||
/* This macro is to work around compilers with missing or broken
|
||||
* structure assignment. You'll need to fix this code if you have
|
||||
* such a compiler and you change MAX_COMPS_IN_SCAN.
|
||||
*/
|
||||
|
||||
#ifndef NO_STRUCT_ASSIGN
|
||||
#define ASSIGN_STATE(dest,src) ((dest) = (src))
|
||||
#else
|
||||
#if MAX_COMPS_IN_SCAN == 4
|
||||
#define ASSIGN_STATE(dest,src) \
|
||||
((dest).EOBRUN = (src).EOBRUN, \
|
||||
(dest).last_dc_val[0] = (src).last_dc_val[0], \
|
||||
(dest).last_dc_val[1] = (src).last_dc_val[1], \
|
||||
(dest).last_dc_val[2] = (src).last_dc_val[2], \
|
||||
(dest).last_dc_val[3] = (src).last_dc_val[3])
|
||||
#endif
|
||||
#endif
|
||||
|
||||
|
||||
typedef struct {
|
||||
huffd_common_fields; /* Fields shared with other entropy decoders */
|
||||
|
||||
/* These fields are loaded into local variables at start of each MCU.
|
||||
* In case of suspension, we exit WITHOUT updating them.
|
||||
*/
|
||||
savable_state saved; /* Other state at start of MCU */
|
||||
|
||||
/* These fields are NOT loaded into local working state. */
|
||||
unsigned int restarts_to_go; /* MCUs left in this restart interval */
|
||||
|
||||
/* Pointers to derived tables (these workspaces have image lifespan) */
|
||||
d_derived_tbl * derived_tbls[NUM_HUFF_TBLS];
|
||||
|
||||
d_derived_tbl * ac_derived_tbl; /* active table during an AC scan */
|
||||
} phuff_entropy_decoder;
|
||||
|
||||
typedef phuff_entropy_decoder * phuff_entropy_ptr;
|
||||
|
||||
/* Forward declarations */
|
||||
METHODDEF(boolean) decode_mcu_DC_first JPP((j_decompress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
METHODDEF(boolean) decode_mcu_AC_first JPP((j_decompress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
METHODDEF(boolean) decode_mcu_DC_refine JPP((j_decompress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
METHODDEF(boolean) decode_mcu_AC_refine JPP((j_decompress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for a Huffman-compressed scan.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass_phuff_decoder (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyd->entropy_private;
|
||||
boolean is_DC_band, bad;
|
||||
int ci, coefi, tbl;
|
||||
int *coef_bit_ptr;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
is_DC_band = (cinfo->Ss == 0);
|
||||
|
||||
/* Validate scan parameters */
|
||||
bad = FALSE;
|
||||
if (is_DC_band) {
|
||||
if (cinfo->Se != 0)
|
||||
bad = TRUE;
|
||||
} else {
|
||||
/* need not check Ss/Se < 0 since they came from unsigned bytes */
|
||||
if (cinfo->Ss > cinfo->Se || cinfo->Se >= DCTSIZE2)
|
||||
bad = TRUE;
|
||||
/* AC scans may have only one component */
|
||||
if (cinfo->comps_in_scan != 1)
|
||||
bad = TRUE;
|
||||
}
|
||||
if (cinfo->Ah != 0) {
|
||||
/* Successive approximation refinement scan: must have Al = Ah-1. */
|
||||
if (cinfo->Al != cinfo->Ah-1)
|
||||
bad = TRUE;
|
||||
}
|
||||
if (cinfo->Al > 13) /* need not check for < 0 */
|
||||
bad = TRUE;
|
||||
/* Arguably the maximum Al value should be less than 13 for 8-bit precision,
|
||||
* but the spec doesn't say so, and we try to be liberal about what we
|
||||
* accept. Note: large Al values could result in out-of-range DC
|
||||
* coefficients during early scans, leading to bizarre displays due to
|
||||
* overflows in the IDCT math. But we won't crash.
|
||||
*/
|
||||
if (bad)
|
||||
ERREXIT4(cinfo, JERR_BAD_PROGRESSION,
|
||||
cinfo->Ss, cinfo->Se, cinfo->Ah, cinfo->Al);
|
||||
/* Update progression status, and verify that scan order is legal.
|
||||
* Note that inter-scan inconsistencies are treated as warnings
|
||||
* not fatal errors ... not clear if this is right way to behave.
|
||||
*/
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
int cindex = cinfo->cur_comp_info[ci]->component_index;
|
||||
coef_bit_ptr = & cinfo->coef_bits[cindex][0];
|
||||
if (!is_DC_band && coef_bit_ptr[0] < 0) /* AC without prior DC scan */
|
||||
WARNMS2(cinfo, JWRN_BOGUS_PROGRESSION, cindex, 0);
|
||||
for (coefi = cinfo->Ss; coefi <= cinfo->Se; coefi++) {
|
||||
int expected = (coef_bit_ptr[coefi] < 0) ? 0 : coef_bit_ptr[coefi];
|
||||
if (cinfo->Ah != expected)
|
||||
WARNMS2(cinfo, JWRN_BOGUS_PROGRESSION, cindex, coefi);
|
||||
coef_bit_ptr[coefi] = cinfo->Al;
|
||||
}
|
||||
}
|
||||
|
||||
/* Select MCU decoding routine */
|
||||
if (cinfo->Ah == 0) {
|
||||
if (is_DC_band)
|
||||
lossyd->entropy_decode_mcu = decode_mcu_DC_first;
|
||||
else
|
||||
lossyd->entropy_decode_mcu = decode_mcu_AC_first;
|
||||
} else {
|
||||
if (is_DC_band)
|
||||
lossyd->entropy_decode_mcu = decode_mcu_DC_refine;
|
||||
else
|
||||
lossyd->entropy_decode_mcu = decode_mcu_AC_refine;
|
||||
}
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
/* Make sure requested tables are present, and compute derived tables.
|
||||
* We may build same derived table more than once, but it's not expensive.
|
||||
*/
|
||||
if (is_DC_band) {
|
||||
if (cinfo->Ah == 0) { /* DC refinement needs no table */
|
||||
tbl = compptr->dc_tbl_no;
|
||||
jpeg_make_d_derived_tbl(cinfo, TRUE, tbl,
|
||||
& entropy->derived_tbls[tbl]);
|
||||
}
|
||||
} else {
|
||||
tbl = compptr->ac_tbl_no;
|
||||
jpeg_make_d_derived_tbl(cinfo, FALSE, tbl,
|
||||
& entropy->derived_tbls[tbl]);
|
||||
/* remember the single active table */
|
||||
entropy->ac_derived_tbl = entropy->derived_tbls[tbl];
|
||||
}
|
||||
/* Initialize DC predictions to 0 */
|
||||
entropy->saved.last_dc_val[ci] = 0;
|
||||
}
|
||||
|
||||
/* Initialize bitread state variables */
|
||||
entropy->bitstate.bits_left = 0;
|
||||
entropy->bitstate.get_buffer = 0; /* unnecessary, but keeps Purify quiet */
|
||||
entropy->insufficient_data = FALSE;
|
||||
|
||||
/* Initialize private state variables */
|
||||
entropy->saved.EOBRUN = 0;
|
||||
|
||||
/* Initialize restart counter */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Figure F.12: extend sign bit.
|
||||
* On some machines, a shift and add will be faster than a table lookup.
|
||||
*/
|
||||
|
||||
#ifdef AVOID_TABLES
|
||||
|
||||
#define HUFF_EXTEND(x,s) ((x) < (1<<((s)-1)) ? (x) + (((-1)<<(s)) + 1) : (x))
|
||||
|
||||
#else
|
||||
|
||||
#define HUFF_EXTEND(x,s) ((x) < extend_test[s] ? (x) + extend_offset[s] : (x))
|
||||
|
||||
static const int extend_test[16] = /* entry n is 2**(n-1) */
|
||||
{ 0, 0x0001, 0x0002, 0x0004, 0x0008, 0x0010, 0x0020, 0x0040, 0x0080,
|
||||
0x0100, 0x0200, 0x0400, 0x0800, 0x1000, 0x2000, 0x4000 };
|
||||
|
||||
static const int extend_offset[16] = /* entry n is (-1 << n) + 1 */
|
||||
{ 0, ((-1)<<1) + 1, ((-1)<<2) + 1, ((-1)<<3) + 1, ((-1)<<4) + 1,
|
||||
((-1)<<5) + 1, ((-1)<<6) + 1, ((-1)<<7) + 1, ((-1)<<8) + 1,
|
||||
((-1)<<9) + 1, ((-1)<<10) + 1, ((-1)<<11) + 1, ((-1)<<12) + 1,
|
||||
((-1)<<13) + 1, ((-1)<<14) + 1, ((-1)<<15) + 1 };
|
||||
|
||||
#endif /* AVOID_TABLES */
|
||||
|
||||
|
||||
/*
|
||||
* Check for a restart marker & resynchronize decoder.
|
||||
* Returns FALSE if must suspend.
|
||||
*/
|
||||
|
||||
LOCAL(boolean)
|
||||
process_restart (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyd->entropy_private;
|
||||
int ci;
|
||||
|
||||
/* Throw away any unused bits remaining in bit buffer; */
|
||||
/* include any full bytes in next_marker's count of discarded bytes */
|
||||
cinfo->marker->discarded_bytes += entropy->bitstate.bits_left / 8;
|
||||
entropy->bitstate.bits_left = 0;
|
||||
|
||||
/* Advance past the RSTn marker */
|
||||
if (! (*cinfo->marker->read_restart_marker) (cinfo))
|
||||
return FALSE;
|
||||
|
||||
/* Re-initialize DC predictions to 0 */
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++)
|
||||
entropy->saved.last_dc_val[ci] = 0;
|
||||
/* Re-init EOB run count, too */
|
||||
entropy->saved.EOBRUN = 0;
|
||||
|
||||
/* Reset restart counter */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
|
||||
/* Reset out-of-data flag, unless read_restart_marker left us smack up
|
||||
* against a marker. In that case we will end up treating the next data
|
||||
* segment as empty, and we can avoid producing bogus output pixels by
|
||||
* leaving the flag set.
|
||||
*/
|
||||
if (cinfo->unread_marker == 0)
|
||||
entropy->insufficient_data = FALSE;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Huffman MCU decoding.
|
||||
* Each of these routines decodes and returns one MCU's worth of
|
||||
* Huffman-compressed coefficients.
|
||||
* The coefficients are reordered from zigzag order into natural array order,
|
||||
* but are not dequantized.
|
||||
*
|
||||
* The i'th block of the MCU is stored into the block pointed to by
|
||||
* MCU_data[i]. WE ASSUME THIS AREA IS INITIALLY ZEROED BY THE CALLER.
|
||||
*
|
||||
* We return FALSE if data source requested suspension. In that case no
|
||||
* changes have been made to permanent state. (Exception: some output
|
||||
* coefficients may already have been assigned. This is harmless for
|
||||
* spectral selection, since we'll just re-assign them on the next call.
|
||||
* Successive approximation AC refinement has to be more careful, however.)
|
||||
*/
|
||||
|
||||
/*
|
||||
* MCU decoding for DC initial scan (either spectral selection,
|
||||
* or first pass of successive approximation).
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
decode_mcu_DC_first (j_decompress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyd->entropy_private;
|
||||
int Al = cinfo->Al;
|
||||
register int s, r;
|
||||
int blkn, ci;
|
||||
JBLOCKROW block;
|
||||
BITREAD_STATE_VARS;
|
||||
savable_state state;
|
||||
d_derived_tbl * tbl;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
/* Process restart marker if needed; may have to suspend */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
if (! process_restart(cinfo))
|
||||
return FALSE;
|
||||
}
|
||||
|
||||
/* If we've run out of data, just leave the MCU set to zeroes.
|
||||
* This way, we return uniform gray for the remainder of the segment.
|
||||
*/
|
||||
if (! entropy->insufficient_data) {
|
||||
|
||||
/* Load up working state */
|
||||
BITREAD_LOAD_STATE(cinfo,entropy->bitstate);
|
||||
ASSIGN_STATE(state, entropy->saved);
|
||||
|
||||
/* Outer loop handles each block in the MCU */
|
||||
|
||||
for (blkn = 0; blkn < cinfo->data_units_in_MCU; blkn++) {
|
||||
block = MCU_data[blkn];
|
||||
ci = cinfo->MCU_membership[blkn];
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
tbl = entropy->derived_tbls[compptr->dc_tbl_no];
|
||||
|
||||
/* Decode a single block's worth of coefficients */
|
||||
|
||||
/* Section F.2.2.1: decode the DC coefficient difference */
|
||||
HUFF_DECODE(s, br_state, tbl, return FALSE, label1);
|
||||
if (s) {
|
||||
CHECK_BIT_BUFFER(br_state, s, return FALSE);
|
||||
r = GET_BITS(s);
|
||||
s = HUFF_EXTEND(r, s);
|
||||
}
|
||||
|
||||
/* Convert DC difference to actual value, update last_dc_val */
|
||||
s += state.last_dc_val[ci];
|
||||
state.last_dc_val[ci] = s;
|
||||
/* Scale and output the coefficient (assumes jpeg_natural_order[0]=0) */
|
||||
(*block)[0] = (JCOEF) (s << Al);
|
||||
}
|
||||
|
||||
/* Completed MCU, so update state */
|
||||
BITREAD_SAVE_STATE(cinfo,entropy->bitstate);
|
||||
ASSIGN_STATE(entropy->saved, state);
|
||||
}
|
||||
|
||||
/* Account for restart interval (no-op if not using restarts) */
|
||||
entropy->restarts_to_go--;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU decoding for AC initial scan (either spectral selection,
|
||||
* or first pass of successive approximation).
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
decode_mcu_AC_first (j_decompress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyd->entropy_private;
|
||||
int Se = cinfo->Se;
|
||||
int Al = cinfo->Al;
|
||||
register int s, k, r;
|
||||
unsigned int EOBRUN;
|
||||
JBLOCKROW block;
|
||||
BITREAD_STATE_VARS;
|
||||
d_derived_tbl * tbl;
|
||||
|
||||
/* Process restart marker if needed; may have to suspend */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
if (! process_restart(cinfo))
|
||||
return FALSE;
|
||||
}
|
||||
|
||||
/* If we've run out of data, just leave the MCU set to zeroes.
|
||||
* This way, we return uniform gray for the remainder of the segment.
|
||||
*/
|
||||
if (! entropy->insufficient_data) {
|
||||
|
||||
/* Load up working state.
|
||||
* We can avoid loading/saving bitread state if in an EOB run.
|
||||
*/
|
||||
EOBRUN = entropy->saved.EOBRUN; /* only part of saved state we need */
|
||||
|
||||
/* There is always only one block per MCU */
|
||||
|
||||
if (EOBRUN > 0) /* if it's a band of zeroes... */
|
||||
EOBRUN--; /* ...process it now (we do nothing) */
|
||||
else {
|
||||
BITREAD_LOAD_STATE(cinfo,entropy->bitstate);
|
||||
block = MCU_data[0];
|
||||
tbl = entropy->ac_derived_tbl;
|
||||
|
||||
for (k = cinfo->Ss; k <= Se; k++) {
|
||||
HUFF_DECODE(s, br_state, tbl, return FALSE, label2);
|
||||
r = s >> 4;
|
||||
s &= 15;
|
||||
if (s) {
|
||||
k += r;
|
||||
CHECK_BIT_BUFFER(br_state, s, return FALSE);
|
||||
r = GET_BITS(s);
|
||||
s = HUFF_EXTEND(r, s);
|
||||
/* Scale and output coefficient in natural (dezigzagged) order */
|
||||
(*block)[jpeg_natural_order[k]] = (JCOEF) (s << Al);
|
||||
} else {
|
||||
if (r == 15) { /* ZRL */
|
||||
k += 15; /* skip 15 zeroes in band */
|
||||
} else { /* EOBr, run length is 2^r + appended bits */
|
||||
EOBRUN = 1 << r;
|
||||
if (r) { /* EOBr, r > 0 */
|
||||
CHECK_BIT_BUFFER(br_state, r, return FALSE);
|
||||
r = GET_BITS(r);
|
||||
EOBRUN += r;
|
||||
}
|
||||
EOBRUN--; /* this band is processed at this moment */
|
||||
break; /* force end-of-band */
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
BITREAD_SAVE_STATE(cinfo,entropy->bitstate);
|
||||
}
|
||||
|
||||
/* Completed MCU, so update state */
|
||||
entropy->saved.EOBRUN = EOBRUN; /* only part of saved state we need */
|
||||
}
|
||||
|
||||
/* Account for restart interval (no-op if not using restarts) */
|
||||
entropy->restarts_to_go--;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU decoding for DC successive approximation refinement scan.
|
||||
* Note: we assume such scans can be multi-component, although the spec
|
||||
* is not very clear on the point.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
decode_mcu_DC_refine (j_decompress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyd->entropy_private;
|
||||
int p1 = 1 << cinfo->Al; /* 1 in the bit position being coded */
|
||||
int blkn;
|
||||
JBLOCKROW block;
|
||||
BITREAD_STATE_VARS;
|
||||
|
||||
/* Process restart marker if needed; may have to suspend */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
if (! process_restart(cinfo))
|
||||
return FALSE;
|
||||
}
|
||||
|
||||
/* Not worth the cycles to check insufficient_data here,
|
||||
* since we will not change the data anyway if we read zeroes.
|
||||
*/
|
||||
|
||||
/* Load up working state */
|
||||
BITREAD_LOAD_STATE(cinfo,entropy->bitstate);
|
||||
|
||||
/* Outer loop handles each block in the MCU */
|
||||
|
||||
for (blkn = 0; blkn < cinfo->data_units_in_MCU; blkn++) {
|
||||
block = MCU_data[blkn];
|
||||
|
||||
/* Encoded data is simply the next bit of the two's-complement DC value */
|
||||
CHECK_BIT_BUFFER(br_state, 1, return FALSE);
|
||||
if (GET_BITS(1))
|
||||
(*block)[0] |= p1;
|
||||
/* Note: since we use |=, repeating the assignment later is safe */
|
||||
}
|
||||
|
||||
/* Completed MCU, so update state */
|
||||
BITREAD_SAVE_STATE(cinfo,entropy->bitstate);
|
||||
|
||||
/* Account for restart interval (no-op if not using restarts) */
|
||||
entropy->restarts_to_go--;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* MCU decoding for AC successive approximation refinement scan.
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
decode_mcu_AC_refine (j_decompress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy = (phuff_entropy_ptr) lossyd->entropy_private;
|
||||
int Se = cinfo->Se;
|
||||
int p1 = 1 << cinfo->Al; /* 1 in the bit position being coded */
|
||||
int m1 = (-1) << cinfo->Al; /* -1 in the bit position being coded */
|
||||
register int s, k, r;
|
||||
unsigned int EOBRUN;
|
||||
JBLOCKROW block;
|
||||
JCOEFPTR thiscoef;
|
||||
BITREAD_STATE_VARS;
|
||||
d_derived_tbl * tbl;
|
||||
int num_newnz;
|
||||
int newnz_pos[DCTSIZE2];
|
||||
|
||||
/* Process restart marker if needed; may have to suspend */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
if (! process_restart(cinfo))
|
||||
return FALSE;
|
||||
}
|
||||
|
||||
/* If we've run out of data, don't modify the MCU.
|
||||
*/
|
||||
if (! entropy->insufficient_data) {
|
||||
|
||||
/* Load up working state */
|
||||
BITREAD_LOAD_STATE(cinfo,entropy->bitstate);
|
||||
EOBRUN = entropy->saved.EOBRUN; /* only part of saved state we need */
|
||||
|
||||
/* There is always only one block per MCU */
|
||||
block = MCU_data[0];
|
||||
tbl = entropy->ac_derived_tbl;
|
||||
|
||||
/* If we are forced to suspend, we must undo the assignments to any newly
|
||||
* nonzero coefficients in the block, because otherwise we'd get confused
|
||||
* next time about which coefficients were already nonzero.
|
||||
* But we need not undo addition of bits to already-nonzero coefficients;
|
||||
* instead, we can test the current bit to see if we already did it.
|
||||
*/
|
||||
num_newnz = 0;
|
||||
|
||||
/* initialize coefficient loop counter to start of band */
|
||||
k = cinfo->Ss;
|
||||
|
||||
if (EOBRUN == 0) {
|
||||
for (; k <= Se; k++) {
|
||||
HUFF_DECODE(s, br_state, tbl, goto undoit, label3);
|
||||
r = s >> 4;
|
||||
s &= 15;
|
||||
if (s) {
|
||||
if (s != 1) /* size of new coef should always be 1 */
|
||||
WARNMS(cinfo, JWRN_HUFF_BAD_CODE);
|
||||
CHECK_BIT_BUFFER(br_state, 1, goto undoit);
|
||||
if (GET_BITS(1))
|
||||
s = p1; /* newly nonzero coef is positive */
|
||||
else
|
||||
s = m1; /* newly nonzero coef is negative */
|
||||
} else {
|
||||
if (r != 15) {
|
||||
EOBRUN = 1 << r; /* EOBr, run length is 2^r + appended bits */
|
||||
if (r) {
|
||||
CHECK_BIT_BUFFER(br_state, r, goto undoit);
|
||||
r = GET_BITS(r);
|
||||
EOBRUN += r;
|
||||
}
|
||||
break; /* rest of block is handled by EOB logic */
|
||||
}
|
||||
/* note s = 0 for processing ZRL */
|
||||
}
|
||||
/* Advance over already-nonzero coefs and r still-zero coefs,
|
||||
* appending correction bits to the nonzeroes. A correction bit is 1
|
||||
* if the absolute value of the coefficient must be increased.
|
||||
*/
|
||||
do {
|
||||
thiscoef = *block + jpeg_natural_order[k];
|
||||
if (*thiscoef != 0) {
|
||||
CHECK_BIT_BUFFER(br_state, 1, goto undoit);
|
||||
if (GET_BITS(1)) {
|
||||
if ((*thiscoef & p1) == 0) { /* do nothing if already set it */
|
||||
if (*thiscoef >= 0)
|
||||
*thiscoef += p1;
|
||||
else
|
||||
*thiscoef += m1;
|
||||
}
|
||||
}
|
||||
} else {
|
||||
if (--r < 0)
|
||||
break; /* reached target zero coefficient */
|
||||
}
|
||||
k++;
|
||||
} while (k <= Se);
|
||||
if (s) {
|
||||
int pos = jpeg_natural_order[k];
|
||||
/* Output newly nonzero coefficient */
|
||||
(*block)[pos] = (JCOEF) s;
|
||||
/* Remember its position in case we have to suspend */
|
||||
newnz_pos[num_newnz++] = pos;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
if (EOBRUN > 0) {
|
||||
/* Scan any remaining coefficient positions after the end-of-band
|
||||
* (the last newly nonzero coefficient, if any). Append a correction
|
||||
* bit to each already-nonzero coefficient. A correction bit is 1
|
||||
* if the absolute value of the coefficient must be increased.
|
||||
*/
|
||||
for (; k <= Se; k++) {
|
||||
thiscoef = *block + jpeg_natural_order[k];
|
||||
if (*thiscoef != 0) {
|
||||
CHECK_BIT_BUFFER(br_state, 1, goto undoit);
|
||||
if (GET_BITS(1)) {
|
||||
if ((*thiscoef & p1) == 0) { /* do nothing if already changed it */
|
||||
if (*thiscoef >= 0)
|
||||
*thiscoef += p1;
|
||||
else
|
||||
*thiscoef += m1;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
/* Count one block completed in EOB run */
|
||||
EOBRUN--;
|
||||
}
|
||||
|
||||
/* Completed MCU, so update state */
|
||||
BITREAD_SAVE_STATE(cinfo,entropy->bitstate);
|
||||
entropy->saved.EOBRUN = EOBRUN; /* only part of saved state we need */
|
||||
}
|
||||
|
||||
/* Account for restart interval (no-op if not using restarts) */
|
||||
entropy->restarts_to_go--;
|
||||
|
||||
return TRUE;
|
||||
|
||||
undoit:
|
||||
/* Re-zero any output coefficients that we made newly nonzero */
|
||||
while (num_newnz > 0)
|
||||
(*block)[newnz_pos[--num_newnz]] = 0;
|
||||
|
||||
return FALSE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Module initialization routine for progressive Huffman entropy decoding.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_phuff_decoder (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
phuff_entropy_ptr entropy;
|
||||
int *coef_bit_ptr;
|
||||
int ci, i;
|
||||
|
||||
entropy = (phuff_entropy_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(phuff_entropy_decoder));
|
||||
lossyd->entropy_private = (void *) entropy;
|
||||
lossyd->entropy_start_pass = start_pass_phuff_decoder;
|
||||
|
||||
/* Mark derived tables unallocated */
|
||||
for (i = 0; i < NUM_HUFF_TBLS; i++) {
|
||||
entropy->derived_tbls[i] = NULL;
|
||||
}
|
||||
|
||||
/* Create progression status table */
|
||||
cinfo->coef_bits = (int (*)[DCTSIZE2])
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
cinfo->num_components*DCTSIZE2*SIZEOF(int));
|
||||
coef_bit_ptr = & cinfo->coef_bits[0][0];
|
||||
for (ci = 0; ci < cinfo->num_components; ci++)
|
||||
for (i = 0; i < DCTSIZE2; i++)
|
||||
*coef_bit_ptr++ = -1;
|
||||
}
|
||||
|
||||
#endif /* D_PROGRESSIVE_SUPPORTED */
|
||||
@@ -1,246 +0,0 @@
|
||||
/*
|
||||
* jdpred.c
|
||||
*
|
||||
* Copyright (C) 1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains sample undifferencing (reconstruction) for lossless JPEG.
|
||||
*
|
||||
* In order to avoid paying the performance penalty of having to check the
|
||||
* predictor being used and the row being processed for each call of the
|
||||
* undifferencer, and to promote optimization, we have separate undifferencing
|
||||
* functions for each case.
|
||||
*
|
||||
* We are able to avoid duplicating source code by implementing the predictors
|
||||
* and undifferencers as macros. Each of the undifferencing functions are
|
||||
* simply wrappers around an UNDIFFERENCE macro with the appropriate PREDICTOR
|
||||
* macro passed as an argument.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossls.h" /* Private declarations for lossless codec */
|
||||
|
||||
|
||||
#ifdef D_LOSSLESS_SUPPORTED
|
||||
|
||||
/* Predictor for the first column of the first row: 2^(P-Pt-1) */
|
||||
#define INITIAL_PREDICTORx (1 << (cinfo->data_precision - cinfo->Al - 1))
|
||||
|
||||
/* Predictor for the first column of the remaining rows: Rb */
|
||||
#define INITIAL_PREDICTOR2 GETJSAMPLE(prev_row[0])
|
||||
|
||||
|
||||
/*
|
||||
* 1-Dimensional undifferencer routine.
|
||||
*
|
||||
* This macro implements the 1-D horizontal predictor (1). INITIAL_PREDICTOR
|
||||
* is used as the special case predictor for the first column, which must be
|
||||
* either INITIAL_PREDICTOR2 or INITIAL_PREDICTORx. The remaining samples
|
||||
* use PREDICTOR1.
|
||||
*
|
||||
* The reconstructed sample is supposed to be calculated modulo 2^16, so we
|
||||
* logically AND the result with 0xFFFF.
|
||||
*/
|
||||
|
||||
#define UNDIFFERENCE_1D(INITIAL_PREDICTOR) \
|
||||
uint xindex; \
|
||||
int Ra; \
|
||||
\
|
||||
Ra = (diff_buf[0] + INITIAL_PREDICTOR) & 0xFFFF; \
|
||||
undiff_buf[0] = Ra; \
|
||||
\
|
||||
for (xindex = 1; xindex < width; xindex++) { \
|
||||
Ra = (diff_buf[xindex] + PREDICTOR1) & 0xFFFF; \
|
||||
undiff_buf[xindex] = Ra; \
|
||||
}
|
||||
|
||||
/*
|
||||
* 2-Dimensional undifferencer routine.
|
||||
*
|
||||
* This macro implements the 2-D horizontal predictors (#2-7). PREDICTOR2 is
|
||||
* used as the special case predictor for the first column. The remaining
|
||||
* samples use PREDICTOR, which is a function of Ra, Rb, Rc.
|
||||
*
|
||||
* Because prev_row and output_buf may point to the same storage area (in an
|
||||
* interleaved image with Vi=1, for example), we must take care to buffer Rb/Rc
|
||||
* before writing the current reconstructed sample value into output_buf.
|
||||
*
|
||||
* The reconstructed sample is supposed to be calculated modulo 2^16, so we
|
||||
* logically AND the result with 0xFFFF.
|
||||
*/
|
||||
|
||||
#define UNDIFFERENCE_2D(PREDICTOR) \
|
||||
uint xindex; \
|
||||
int Ra, Rb, Rc; \
|
||||
\
|
||||
Rb = GETJSAMPLE(prev_row[0]); \
|
||||
Ra = (diff_buf[0] + PREDICTOR2) & 0xFFFF; \
|
||||
undiff_buf[0] = Ra; \
|
||||
\
|
||||
for (xindex = 1; xindex < width; xindex++) { \
|
||||
Rc = Rb; \
|
||||
Rb = GETJSAMPLE(prev_row[xindex]); \
|
||||
Ra = (diff_buf[xindex] + PREDICTOR) & 0xFFFF; \
|
||||
undiff_buf[xindex] = Ra; \
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Undifferencers for the all rows but the first in a scan or restart interval.
|
||||
* The first sample in the row is undifferenced using the vertical
|
||||
* predictor (2). The rest of the samples are undifferenced using the
|
||||
* predictor specified in the scan header.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_undifference1(j_decompress_ptr cinfo, int comp_index,
|
||||
JDIFFROW diff_buf, JDIFFROW prev_row,
|
||||
JDIFFROW undiff_buf, JDIMENSION width)
|
||||
{
|
||||
UNDIFFERENCE_1D(INITIAL_PREDICTOR2);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_undifference2(j_decompress_ptr cinfo, int comp_index,
|
||||
JDIFFROW diff_buf, JDIFFROW prev_row,
|
||||
JDIFFROW undiff_buf, JDIMENSION width)
|
||||
{
|
||||
UNDIFFERENCE_2D(PREDICTOR2);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_undifference3(j_decompress_ptr cinfo, int comp_index,
|
||||
JDIFFROW diff_buf, JDIFFROW prev_row,
|
||||
JDIFFROW undiff_buf, JDIMENSION width)
|
||||
{
|
||||
UNDIFFERENCE_2D(PREDICTOR3);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_undifference4(j_decompress_ptr cinfo, int comp_index,
|
||||
JDIFFROW diff_buf, JDIFFROW prev_row,
|
||||
JDIFFROW undiff_buf, JDIMENSION width)
|
||||
{
|
||||
UNDIFFERENCE_2D(PREDICTOR4);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_undifference5(j_decompress_ptr cinfo, int comp_index,
|
||||
JDIFFROW diff_buf, JDIFFROW prev_row,
|
||||
JDIFFROW undiff_buf, JDIMENSION width)
|
||||
{
|
||||
UNDIFFERENCE_2D(PREDICTOR5);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_undifference6(j_decompress_ptr cinfo, int comp_index,
|
||||
JDIFFROW diff_buf, JDIFFROW prev_row,
|
||||
JDIFFROW undiff_buf, JDIMENSION width)
|
||||
{
|
||||
UNDIFFERENCE_2D(PREDICTOR6);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_undifference7(j_decompress_ptr cinfo, int comp_index,
|
||||
JDIFFROW diff_buf, JDIFFROW prev_row,
|
||||
JDIFFROW undiff_buf, JDIMENSION width)
|
||||
{
|
||||
UNDIFFERENCE_2D(PREDICTOR7);
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Undifferencer for the first row in a scan or restart interval. The first
|
||||
* sample in the row is undifferenced using the special predictor constant
|
||||
* x=2^(P-Pt-1). The rest of the samples are undifferenced using the
|
||||
* 1-D horizontal predictor (1).
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
jpeg_undifference_first_row(j_decompress_ptr cinfo, int comp_index,
|
||||
JDIFFROW diff_buf, JDIFFROW prev_row,
|
||||
JDIFFROW undiff_buf, JDIMENSION width)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
|
||||
UNDIFFERENCE_1D(INITIAL_PREDICTORx);
|
||||
|
||||
/*
|
||||
* Now that we have undifferenced the first row, we want to use the
|
||||
* undifferencer which corresponds to the predictor specified in the
|
||||
* scan header.
|
||||
*/
|
||||
switch (cinfo->Ss) {
|
||||
case 1:
|
||||
losslsd->predict_undifference[comp_index] = jpeg_undifference1;
|
||||
break;
|
||||
case 2:
|
||||
losslsd->predict_undifference[comp_index] = jpeg_undifference2;
|
||||
break;
|
||||
case 3:
|
||||
losslsd->predict_undifference[comp_index] = jpeg_undifference3;
|
||||
break;
|
||||
case 4:
|
||||
losslsd->predict_undifference[comp_index] = jpeg_undifference4;
|
||||
break;
|
||||
case 5:
|
||||
losslsd->predict_undifference[comp_index] = jpeg_undifference5;
|
||||
break;
|
||||
case 6:
|
||||
losslsd->predict_undifference[comp_index] = jpeg_undifference6;
|
||||
break;
|
||||
case 7:
|
||||
losslsd->predict_undifference[comp_index] = jpeg_undifference7;
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for an input processing pass.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
predict_start_pass (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
int ci;
|
||||
|
||||
/* Check that the scan parameters Ss, Se, Ah, Al are OK for lossless JPEG.
|
||||
*
|
||||
* Ss is the predictor selection value (psv). Legal values for sequential
|
||||
* lossless JPEG are: 1 <= psv <= 7.
|
||||
*
|
||||
* Se and Ah are not used and should be zero.
|
||||
*
|
||||
* Al specifies the point transform (Pt). Legal values are: 0 <= Pt <= 15.
|
||||
*/
|
||||
if (cinfo->Ss < 1 || cinfo->Ss > 7 ||
|
||||
cinfo->Se != 0 || cinfo->Ah != 0 ||
|
||||
cinfo->Al > 15) /* need not check for < 0 */
|
||||
ERREXIT4(cinfo, JERR_BAD_LOSSLESS,
|
||||
cinfo->Ss, cinfo->Se, cinfo->Ah, cinfo->Al);
|
||||
|
||||
/* Set undifference functions to first row function */
|
||||
for (ci = 0; ci < cinfo->num_components; ci++)
|
||||
losslsd->predict_undifference[ci] = jpeg_undifference_first_row;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Module initialization routine for the undifferencer.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_undifferencer (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
|
||||
losslsd->predict_start_pass = predict_start_pass;
|
||||
losslsd->predict_process_restart = predict_start_pass;
|
||||
}
|
||||
|
||||
#endif /* D_LOSSLESS_SUPPORTED */
|
||||
+14
-131
@@ -1,14 +1,15 @@
|
||||
/*
|
||||
* jdsample.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1991-1996, Thomas G. Lane.
|
||||
* Modified 2002-2008 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains upsampling routines.
|
||||
*
|
||||
* Upsampling input data is counted in "row groups". A row group
|
||||
* is defined to be (v_samp_factor * codec_data_unit / min_codec_data_unit)
|
||||
* is defined to be (v_samp_factor * DCT_v_scaled_size / min_DCT_v_scaled_size)
|
||||
* sample rows of each component. Upsampling will normally produce
|
||||
* max_v_samp_factor pixel rows from each row group (but this could vary
|
||||
* if the upsampler is applying a scale factor of its own).
|
||||
@@ -237,11 +238,11 @@ h2v1_upsample (j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
register JSAMPROW inptr, outptr;
|
||||
register JSAMPLE invalue;
|
||||
JSAMPROW outend;
|
||||
int inrow;
|
||||
int outrow;
|
||||
|
||||
for (inrow = 0; inrow < cinfo->max_v_samp_factor; inrow++) {
|
||||
inptr = input_data[inrow];
|
||||
outptr = output_data[inrow];
|
||||
for (outrow = 0; outrow < cinfo->max_v_samp_factor; outrow++) {
|
||||
inptr = input_data[outrow];
|
||||
outptr = output_data[outrow];
|
||||
outend = outptr + cinfo->output_width;
|
||||
while (outptr < outend) {
|
||||
invalue = *inptr++; /* don't need GETJSAMPLE() here */
|
||||
@@ -285,112 +286,6 @@ h2v2_upsample (j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Fancy processing for the common case of 2:1 horizontal and 1:1 vertical.
|
||||
*
|
||||
* The upsampling algorithm is linear interpolation between pixel centers,
|
||||
* also known as a "triangle filter". This is a good compromise between
|
||||
* speed and visual quality. The centers of the output pixels are 1/4 and 3/4
|
||||
* of the way between input pixel centers.
|
||||
*
|
||||
* A note about the "bias" calculations: when rounding fractional values to
|
||||
* integer, we do not want to always round 0.5 up to the next integer.
|
||||
* If we did that, we'd introduce a noticeable bias towards larger values.
|
||||
* Instead, this code is arranged so that 0.5 will be rounded up or down at
|
||||
* alternate pixel locations (a simple ordered dither pattern).
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
h2v1_fancy_upsample (j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JSAMPARRAY input_data, JSAMPARRAY * output_data_ptr)
|
||||
{
|
||||
JSAMPARRAY output_data = *output_data_ptr;
|
||||
register JSAMPROW inptr, outptr;
|
||||
register int invalue;
|
||||
register JDIMENSION colctr;
|
||||
int inrow;
|
||||
|
||||
for (inrow = 0; inrow < cinfo->max_v_samp_factor; inrow++) {
|
||||
inptr = input_data[inrow];
|
||||
outptr = output_data[inrow];
|
||||
/* Special case for first column */
|
||||
invalue = GETJSAMPLE(*inptr++);
|
||||
*outptr++ = (JSAMPLE) invalue;
|
||||
*outptr++ = (JSAMPLE) ((invalue * 3 + GETJSAMPLE(*inptr) + 2) >> 2);
|
||||
|
||||
for (colctr = compptr->downsampled_width - 2; colctr > 0; colctr--) {
|
||||
/* General case: 3/4 * nearer pixel + 1/4 * further pixel */
|
||||
invalue = GETJSAMPLE(*inptr++) * 3;
|
||||
*outptr++ = (JSAMPLE) ((invalue + GETJSAMPLE(inptr[-2]) + 1) >> 2);
|
||||
*outptr++ = (JSAMPLE) ((invalue + GETJSAMPLE(*inptr) + 2) >> 2);
|
||||
}
|
||||
|
||||
/* Special case for last column */
|
||||
invalue = GETJSAMPLE(*inptr);
|
||||
*outptr++ = (JSAMPLE) ((invalue * 3 + GETJSAMPLE(inptr[-1]) + 1) >> 2);
|
||||
*outptr++ = (JSAMPLE) invalue;
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Fancy processing for the common case of 2:1 horizontal and 2:1 vertical.
|
||||
* Again a triangle filter; see comments for h2v1 case, above.
|
||||
*
|
||||
* It is OK for us to reference the adjacent input rows because we demanded
|
||||
* context from the main buffer controller (see initialization code).
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
h2v2_fancy_upsample (j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JSAMPARRAY input_data, JSAMPARRAY * output_data_ptr)
|
||||
{
|
||||
JSAMPARRAY output_data = *output_data_ptr;
|
||||
register JSAMPROW inptr0, inptr1, outptr;
|
||||
#if BITS_IN_JSAMPLE == 8
|
||||
register int thiscolsum, lastcolsum, nextcolsum;
|
||||
#else
|
||||
register INT32 thiscolsum, lastcolsum, nextcolsum;
|
||||
#endif
|
||||
register JDIMENSION colctr;
|
||||
int inrow, outrow, v;
|
||||
|
||||
inrow = outrow = 0;
|
||||
while (outrow < cinfo->max_v_samp_factor) {
|
||||
for (v = 0; v < 2; v++) {
|
||||
/* inptr0 points to nearest input row, inptr1 points to next nearest */
|
||||
inptr0 = input_data[inrow];
|
||||
if (v == 0) /* next nearest is row above */
|
||||
inptr1 = input_data[inrow-1];
|
||||
else /* next nearest is row below */
|
||||
inptr1 = input_data[inrow+1];
|
||||
outptr = output_data[outrow++];
|
||||
|
||||
/* Special case for first column */
|
||||
thiscolsum = GETJSAMPLE(*inptr0++) * 3 + GETJSAMPLE(*inptr1++);
|
||||
nextcolsum = GETJSAMPLE(*inptr0++) * 3 + GETJSAMPLE(*inptr1++);
|
||||
*outptr++ = (JSAMPLE) ((thiscolsum * 4 + 8) >> 4);
|
||||
*outptr++ = (JSAMPLE) ((thiscolsum * 3 + nextcolsum + 7) >> 4);
|
||||
lastcolsum = thiscolsum; thiscolsum = nextcolsum;
|
||||
|
||||
for (colctr = compptr->downsampled_width - 2; colctr > 0; colctr--) {
|
||||
/* General case: 3/4 * nearer pixel + 1/4 * further pixel in each */
|
||||
/* dimension, thus 9/16, 3/16, 3/16, 1/16 overall */
|
||||
nextcolsum = GETJSAMPLE(*inptr0++) * 3 + GETJSAMPLE(*inptr1++);
|
||||
*outptr++ = (JSAMPLE) ((thiscolsum * 3 + lastcolsum + 8) >> 4);
|
||||
*outptr++ = (JSAMPLE) ((thiscolsum * 3 + nextcolsum + 7) >> 4);
|
||||
lastcolsum = thiscolsum; thiscolsum = nextcolsum;
|
||||
}
|
||||
|
||||
/* Special case for last column */
|
||||
*outptr++ = (JSAMPLE) ((thiscolsum * 3 + lastcolsum + 8) >> 4);
|
||||
*outptr++ = (JSAMPLE) ((thiscolsum * 4 + 7) >> 4);
|
||||
}
|
||||
inrow++;
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Module initialization routine for upsampling.
|
||||
*/
|
||||
@@ -401,7 +296,7 @@ jinit_upsampler (j_decompress_ptr cinfo)
|
||||
my_upsample_ptr upsample;
|
||||
int ci;
|
||||
jpeg_component_info * compptr;
|
||||
boolean need_buffer, do_fancy;
|
||||
boolean need_buffer;
|
||||
int h_in_group, v_in_group, h_out_group, v_out_group;
|
||||
|
||||
upsample = (my_upsample_ptr)
|
||||
@@ -415,11 +310,6 @@ jinit_upsampler (j_decompress_ptr cinfo)
|
||||
if (cinfo->CCIR601_sampling) /* this isn't supported */
|
||||
ERREXIT(cinfo, JERR_CCIR601_NOTIMPL);
|
||||
|
||||
/* jdmainct.c doesn't support context rows when min_codec_data_unit = 1,
|
||||
* so don't ask for it.
|
||||
*/
|
||||
do_fancy = cinfo->do_fancy_upsampling && cinfo->min_codec_data_unit > 1;
|
||||
|
||||
/* Verify we can handle the sampling factors, select per-component methods,
|
||||
* and create storage as needed.
|
||||
*/
|
||||
@@ -428,10 +318,10 @@ jinit_upsampler (j_decompress_ptr cinfo)
|
||||
/* Compute size of an "input group" after IDCT scaling. This many samples
|
||||
* are to be converted to max_h_samp_factor * max_v_samp_factor pixels.
|
||||
*/
|
||||
h_in_group = (compptr->h_samp_factor * compptr->codec_data_unit) /
|
||||
cinfo->min_codec_data_unit;
|
||||
v_in_group = (compptr->v_samp_factor * compptr->codec_data_unit) /
|
||||
cinfo->min_codec_data_unit;
|
||||
h_in_group = (compptr->h_samp_factor * compptr->DCT_h_scaled_size) /
|
||||
cinfo->min_DCT_h_scaled_size;
|
||||
v_in_group = (compptr->v_samp_factor * compptr->DCT_v_scaled_size) /
|
||||
cinfo->min_DCT_v_scaled_size;
|
||||
h_out_group = cinfo->max_h_samp_factor;
|
||||
v_out_group = cinfo->max_v_samp_factor;
|
||||
upsample->rowgroup_height[ci] = v_in_group; /* save for use later */
|
||||
@@ -446,18 +336,11 @@ jinit_upsampler (j_decompress_ptr cinfo)
|
||||
need_buffer = FALSE;
|
||||
} else if (h_in_group * 2 == h_out_group &&
|
||||
v_in_group == v_out_group) {
|
||||
/* Special cases for 2h1v upsampling */
|
||||
if (do_fancy && compptr->downsampled_width > 2)
|
||||
upsample->methods[ci] = h2v1_fancy_upsample;
|
||||
else
|
||||
/* Special case for 2h1v upsampling */
|
||||
upsample->methods[ci] = h2v1_upsample;
|
||||
} else if (h_in_group * 2 == h_out_group &&
|
||||
v_in_group * 2 == v_out_group) {
|
||||
/* Special cases for 2h2v upsampling */
|
||||
if (do_fancy && compptr->downsampled_width > 2) {
|
||||
upsample->methods[ci] = h2v2_fancy_upsample;
|
||||
upsample->pub.need_context_rows = TRUE;
|
||||
} else
|
||||
/* Special case for 2h2v upsampling */
|
||||
upsample->methods[ci] = h2v2_upsample;
|
||||
} else if ((h_out_group % h_in_group) == 0 &&
|
||||
(v_out_group % v_in_group) == 0) {
|
||||
|
||||
@@ -1,117 +0,0 @@
|
||||
/*
|
||||
* jdscale.c
|
||||
*
|
||||
* Copyright (C) 1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains sample scaling for lossless JPEG. This is a
|
||||
* combination of upscaling the undifferenced sample by 2^Pt and downscaling
|
||||
* the sample to fit into JSAMPLE.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossls.h" /* Private declarations for lossless codec */
|
||||
|
||||
|
||||
#ifdef D_LOSSLESS_SUPPORTED
|
||||
|
||||
/*
|
||||
* Private scaler object for lossless decoding.
|
||||
*/
|
||||
|
||||
typedef struct {
|
||||
int scale_factor;
|
||||
} scaler;
|
||||
|
||||
typedef scaler * scaler_ptr;
|
||||
|
||||
|
||||
/*
|
||||
* Scalers for packing sample differences into JSAMPLEs.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
simple_upscale(j_decompress_ptr cinfo,
|
||||
JDIFFROW diff_buf, JSAMPROW output_buf,
|
||||
JDIMENSION width)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
scaler_ptr scaler = (scaler_ptr) losslsd->scaler_private;
|
||||
int scale_factor = scaler->scale_factor;
|
||||
uint xindex;
|
||||
|
||||
for (xindex = 0; xindex < width; xindex++)
|
||||
output_buf[xindex] = (JSAMPLE) (diff_buf[xindex] << scale_factor);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
simple_downscale(j_decompress_ptr cinfo,
|
||||
JDIFFROW diff_buf, JSAMPROW output_buf,
|
||||
JDIMENSION width)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
scaler_ptr scaler = (scaler_ptr) losslsd->scaler_private;
|
||||
int scale_factor = scaler->scale_factor;
|
||||
uint xindex;
|
||||
|
||||
for (xindex = 0; xindex < width; xindex++)
|
||||
output_buf[xindex] = (JSAMPLE) RIGHT_SHIFT(diff_buf[xindex], scale_factor);
|
||||
}
|
||||
|
||||
METHODDEF(void)
|
||||
noscale(j_decompress_ptr cinfo,
|
||||
JDIFFROW diff_buf, JSAMPROW output_buf,
|
||||
JDIMENSION width)
|
||||
{
|
||||
uint xindex;
|
||||
|
||||
for (xindex = 0; xindex < width; xindex++)
|
||||
output_buf[xindex] = (JSAMPLE) diff_buf[xindex];
|
||||
}
|
||||
|
||||
|
||||
METHODDEF(void)
|
||||
scaler_start_pass (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
scaler_ptr scaler = (scaler_ptr) losslsd->scaler_private;
|
||||
int downscale;
|
||||
|
||||
/*
|
||||
* Downscale by the difference in the input vs. output precision. If the
|
||||
* output precision >= input precision, then do not downscale.
|
||||
*/
|
||||
downscale = BITS_IN_JSAMPLE < cinfo->data_precision ?
|
||||
cinfo->data_precision - BITS_IN_JSAMPLE : 0;
|
||||
|
||||
scaler->scale_factor = cinfo->Al - downscale;
|
||||
|
||||
/* Set scaler functions based on scale_factor (positive = left shift) */
|
||||
if (scaler->scale_factor > 0)
|
||||
losslsd->scaler_scale = simple_upscale;
|
||||
else if (scaler->scale_factor < 0) {
|
||||
scaler->scale_factor = -scaler->scale_factor;
|
||||
losslsd->scaler_scale = simple_downscale;
|
||||
}
|
||||
else
|
||||
losslsd->scaler_scale = noscale;
|
||||
}
|
||||
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_d_scaler (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossless_d_ptr losslsd = (j_lossless_d_ptr) cinfo->codec;
|
||||
scaler_ptr scaler;
|
||||
|
||||
scaler = (scaler_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(scaler));
|
||||
losslsd->scaler_private = (void *) scaler;
|
||||
losslsd->scaler_start_pass = scaler_start_pass;
|
||||
}
|
||||
|
||||
#endif /* D_LOSSLESS_SUPPORTED */
|
||||
@@ -1,360 +0,0 @@
|
||||
/*
|
||||
* jdshuff.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains Huffman entropy decoding routines for sequential JPEG.
|
||||
*
|
||||
* Much of the complexity here has to do with supporting input suspension.
|
||||
* If the data source module demands suspension, we want to be able to back
|
||||
* up to the start of the current MCU. To do this, we copy state variables
|
||||
* into local working storage, and update them back to the permanent
|
||||
* storage only upon successful completion of an MCU.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h" /* Private declarations for lossy codec */
|
||||
#include "jdhuff.h" /* Declarations shared with jd*huff.c */
|
||||
|
||||
|
||||
/*
|
||||
* Private entropy decoder object for Huffman decoding.
|
||||
*
|
||||
* The savable_state subrecord contains fields that change within an MCU,
|
||||
* but must not be updated permanently until we complete the MCU.
|
||||
*/
|
||||
|
||||
typedef struct {
|
||||
int last_dc_val[MAX_COMPS_IN_SCAN]; /* last DC coef for each component */
|
||||
} savable_state;
|
||||
|
||||
/* This macro is to work around compilers with missing or broken
|
||||
* structure assignment. You'll need to fix this code if you have
|
||||
* such a compiler and you change MAX_COMPS_IN_SCAN.
|
||||
*/
|
||||
|
||||
#ifndef NO_STRUCT_ASSIGN
|
||||
#define ASSIGN_STATE(dest,src) ((dest) = (src))
|
||||
#else
|
||||
#if MAX_COMPS_IN_SCAN == 4
|
||||
#define ASSIGN_STATE(dest,src) \
|
||||
((dest).last_dc_val[0] = (src).last_dc_val[0], \
|
||||
(dest).last_dc_val[1] = (src).last_dc_val[1], \
|
||||
(dest).last_dc_val[2] = (src).last_dc_val[2], \
|
||||
(dest).last_dc_val[3] = (src).last_dc_val[3])
|
||||
#endif
|
||||
#endif
|
||||
|
||||
|
||||
typedef struct {
|
||||
huffd_common_fields; /* Fields shared with other entropy decoders */
|
||||
|
||||
/* These fields are loaded into local variables at start of each MCU.
|
||||
* In case of suspension, we exit WITHOUT updating them.
|
||||
*/
|
||||
savable_state saved; /* Other state at start of MCU */
|
||||
|
||||
/* These fields are NOT loaded into local working state. */
|
||||
unsigned int restarts_to_go; /* MCUs left in this restart interval */
|
||||
|
||||
/* Pointers to derived tables (these workspaces have image lifespan) */
|
||||
d_derived_tbl * dc_derived_tbls[NUM_HUFF_TBLS];
|
||||
d_derived_tbl * ac_derived_tbls[NUM_HUFF_TBLS];
|
||||
|
||||
/* Precalculated info set up by start_pass for use in decode_mcu: */
|
||||
|
||||
/* Pointers to derived tables to be used for each block within an MCU */
|
||||
d_derived_tbl * dc_cur_tbls[D_MAX_DATA_UNITS_IN_MCU];
|
||||
d_derived_tbl * ac_cur_tbls[D_MAX_DATA_UNITS_IN_MCU];
|
||||
/* Whether we care about the DC and AC coefficient values for each block */
|
||||
boolean dc_needed[D_MAX_DATA_UNITS_IN_MCU];
|
||||
boolean ac_needed[D_MAX_DATA_UNITS_IN_MCU];
|
||||
} shuff_entropy_decoder;
|
||||
|
||||
typedef shuff_entropy_decoder * shuff_entropy_ptr;
|
||||
|
||||
|
||||
/*
|
||||
* Initialize for a Huffman-compressed scan.
|
||||
*/
|
||||
|
||||
METHODDEF(void)
|
||||
start_pass_huff_decoder (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyd->entropy_private;
|
||||
int ci, blkn, dctbl, actbl;
|
||||
jpeg_component_info * compptr;
|
||||
|
||||
/* Check that the scan parameters Ss, Se, Ah/Al are OK for sequential JPEG.
|
||||
* This ought to be an error condition, but we make it a warning because
|
||||
* there are some baseline files out there with all zeroes in these bytes.
|
||||
*/
|
||||
if (cinfo->Ss != 0 || cinfo->Se != DCTSIZE2-1 ||
|
||||
cinfo->Ah != 0 || cinfo->Al != 0)
|
||||
WARNMS(cinfo, JWRN_NOT_SEQUENTIAL);
|
||||
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
dctbl = compptr->dc_tbl_no;
|
||||
actbl = compptr->ac_tbl_no;
|
||||
/* Compute derived values for Huffman tables */
|
||||
/* We may do this more than once for a table, but it's not expensive */
|
||||
jpeg_make_d_derived_tbl(cinfo, TRUE, dctbl,
|
||||
& entropy->dc_derived_tbls[dctbl]);
|
||||
jpeg_make_d_derived_tbl(cinfo, FALSE, actbl,
|
||||
& entropy->ac_derived_tbls[actbl]);
|
||||
/* Initialize DC predictions to 0 */
|
||||
entropy->saved.last_dc_val[ci] = 0;
|
||||
}
|
||||
|
||||
/* Precalculate decoding info for each block in an MCU of this scan */
|
||||
for (blkn = 0; blkn < cinfo->data_units_in_MCU; blkn++) {
|
||||
ci = cinfo->MCU_membership[blkn];
|
||||
compptr = cinfo->cur_comp_info[ci];
|
||||
/* Precalculate which table to use for each block */
|
||||
entropy->dc_cur_tbls[blkn] = entropy->dc_derived_tbls[compptr->dc_tbl_no];
|
||||
entropy->ac_cur_tbls[blkn] = entropy->ac_derived_tbls[compptr->ac_tbl_no];
|
||||
/* Decide whether we really care about the coefficient values */
|
||||
if (compptr->component_needed) {
|
||||
entropy->dc_needed[blkn] = TRUE;
|
||||
/* we don't need the ACs if producing a 1/8th-size image */
|
||||
entropy->ac_needed[blkn] = (compptr->codec_data_unit > 1);
|
||||
} else {
|
||||
entropy->dc_needed[blkn] = entropy->ac_needed[blkn] = FALSE;
|
||||
}
|
||||
}
|
||||
|
||||
/* Initialize bitread state variables */
|
||||
entropy->bitstate.bits_left = 0;
|
||||
entropy->bitstate.get_buffer = 0; /* unnecessary, but keeps Purify quiet */
|
||||
entropy->insufficient_data = FALSE;
|
||||
|
||||
/* Initialize restart counter */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Figure F.12: extend sign bit.
|
||||
* On some machines, a shift and add will be faster than a table lookup.
|
||||
*/
|
||||
|
||||
#ifdef AVOID_TABLES
|
||||
|
||||
#define HUFF_EXTEND(x,s) ((x) < (1<<((s)-1)) ? (x) + (((-1)<<(s)) + 1) : (x))
|
||||
|
||||
#else
|
||||
|
||||
#define HUFF_EXTEND(x,s) ((x) < extend_test[s] ? (x) + extend_offset[s] : (x))
|
||||
|
||||
static const int extend_test[16] = /* entry n is 2**(n-1) */
|
||||
{ 0, 0x0001, 0x0002, 0x0004, 0x0008, 0x0010, 0x0020, 0x0040, 0x0080,
|
||||
0x0100, 0x0200, 0x0400, 0x0800, 0x1000, 0x2000, 0x4000 };
|
||||
|
||||
static const int extend_offset[16] = /* entry n is (-1 << n) + 1 */
|
||||
{ 0, ((-1)<<1) + 1, ((-1)<<2) + 1, ((-1)<<3) + 1, ((-1)<<4) + 1,
|
||||
((-1)<<5) + 1, ((-1)<<6) + 1, ((-1)<<7) + 1, ((-1)<<8) + 1,
|
||||
((-1)<<9) + 1, ((-1)<<10) + 1, ((-1)<<11) + 1, ((-1)<<12) + 1,
|
||||
((-1)<<13) + 1, ((-1)<<14) + 1, ((-1)<<15) + 1 };
|
||||
|
||||
#endif /* AVOID_TABLES */
|
||||
|
||||
|
||||
/*
|
||||
* Check for a restart marker & resynchronize decoder.
|
||||
* Returns FALSE if must suspend.
|
||||
*/
|
||||
|
||||
LOCAL(boolean)
|
||||
process_restart (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyd->entropy_private;
|
||||
int ci;
|
||||
|
||||
/* Throw away any unused bits remaining in bit buffer; */
|
||||
/* include any full bytes in next_marker's count of discarded bytes */
|
||||
cinfo->marker->discarded_bytes += entropy->bitstate.bits_left / 8;
|
||||
entropy->bitstate.bits_left = 0;
|
||||
|
||||
/* Advance past the RSTn marker */
|
||||
if (! (*cinfo->marker->read_restart_marker) (cinfo))
|
||||
return FALSE;
|
||||
|
||||
/* Re-initialize DC predictions to 0 */
|
||||
for (ci = 0; ci < cinfo->comps_in_scan; ci++)
|
||||
entropy->saved.last_dc_val[ci] = 0;
|
||||
|
||||
/* Reset restart counter */
|
||||
entropy->restarts_to_go = cinfo->restart_interval;
|
||||
|
||||
/* Reset out-of-data flag, unless read_restart_marker left us smack up
|
||||
* against a marker. In that case we will end up treating the next data
|
||||
* segment as empty, and we can avoid producing bogus output pixels by
|
||||
* leaving the flag set.
|
||||
*/
|
||||
if (cinfo->unread_marker == 0)
|
||||
entropy->insufficient_data = FALSE;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Decode and return one MCU's worth of Huffman-compressed coefficients.
|
||||
* The coefficients are reordered from zigzag order into natural array order,
|
||||
* but are not dequantized.
|
||||
*
|
||||
* The i'th block of the MCU is stored into the block pointed to by
|
||||
* MCU_data[i]. WE ASSUME THIS AREA HAS BEEN ZEROED BY THE CALLER.
|
||||
* (Wholesale zeroing is usually a little faster than retail...)
|
||||
*
|
||||
* Returns FALSE if data source requested suspension. In that case no
|
||||
* changes have been made to permanent state. (Exception: some output
|
||||
* coefficients may already have been assigned. This is harmless for
|
||||
* this module, since we'll just re-assign them on the next call.)
|
||||
*/
|
||||
|
||||
METHODDEF(boolean)
|
||||
decode_mcu (j_decompress_ptr cinfo, JBLOCKROW *MCU_data)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
shuff_entropy_ptr entropy = (shuff_entropy_ptr) lossyd->entropy_private;
|
||||
int blkn;
|
||||
BITREAD_STATE_VARS;
|
||||
savable_state state;
|
||||
|
||||
/* Process restart marker if needed; may have to suspend */
|
||||
if (cinfo->restart_interval) {
|
||||
if (entropy->restarts_to_go == 0)
|
||||
if (! process_restart(cinfo))
|
||||
return FALSE;
|
||||
}
|
||||
|
||||
/* If we've run out of data, just leave the MCU set to zeroes.
|
||||
* This way, we return uniform gray for the remainder of the segment.
|
||||
*/
|
||||
if (! entropy->insufficient_data) {
|
||||
|
||||
/* Load up working state */
|
||||
BITREAD_LOAD_STATE(cinfo,entropy->bitstate);
|
||||
ASSIGN_STATE(state, entropy->saved);
|
||||
|
||||
/* Outer loop handles each block in the MCU */
|
||||
|
||||
for (blkn = 0; blkn < cinfo->data_units_in_MCU; blkn++) {
|
||||
JBLOCKROW block = MCU_data[blkn];
|
||||
d_derived_tbl * dctbl = entropy->dc_cur_tbls[blkn];
|
||||
d_derived_tbl * actbl = entropy->ac_cur_tbls[blkn];
|
||||
register int s, k, r;
|
||||
|
||||
/* Decode a single block's worth of coefficients */
|
||||
|
||||
/* Section F.2.2.1: decode the DC coefficient difference */
|
||||
HUFF_DECODE(s, br_state, dctbl, return FALSE, label1);
|
||||
if (s) {
|
||||
CHECK_BIT_BUFFER(br_state, s, return FALSE);
|
||||
r = GET_BITS(s);
|
||||
s = HUFF_EXTEND(r, s);
|
||||
}
|
||||
|
||||
if (entropy->dc_needed[blkn]) {
|
||||
/* Convert DC difference to actual value, update last_dc_val */
|
||||
int ci = cinfo->MCU_membership[blkn];
|
||||
s += state.last_dc_val[ci];
|
||||
state.last_dc_val[ci] = s;
|
||||
/* Output the DC coefficient (assumes jpeg_natural_order[0] = 0) */
|
||||
(*block)[0] = (JCOEF) s;
|
||||
}
|
||||
|
||||
if (entropy->ac_needed[blkn]) {
|
||||
|
||||
/* Section F.2.2.2: decode the AC coefficients */
|
||||
/* Since zeroes are skipped, output area must be cleared beforehand */
|
||||
for (k = 1; k < DCTSIZE2; k++) {
|
||||
HUFF_DECODE(s, br_state, actbl, return FALSE, label2);
|
||||
|
||||
r = s >> 4;
|
||||
s &= 15;
|
||||
|
||||
if (s) {
|
||||
k += r;
|
||||
CHECK_BIT_BUFFER(br_state, s, return FALSE);
|
||||
r = GET_BITS(s);
|
||||
s = HUFF_EXTEND(r, s);
|
||||
/* Output coefficient in natural (dezigzagged) order.
|
||||
* Note: the extra entries in jpeg_natural_order[] will save us
|
||||
* if k >= DCTSIZE2, which could happen if the data is corrupted.
|
||||
*/
|
||||
(*block)[jpeg_natural_order[k]] = (JCOEF) s;
|
||||
} else {
|
||||
if (r != 15)
|
||||
break;
|
||||
k += 15;
|
||||
}
|
||||
}
|
||||
|
||||
} else {
|
||||
|
||||
/* Section F.2.2.2: decode the AC coefficients */
|
||||
/* In this path we just discard the values */
|
||||
for (k = 1; k < DCTSIZE2; k++) {
|
||||
HUFF_DECODE(s, br_state, actbl, return FALSE, label3);
|
||||
|
||||
r = s >> 4;
|
||||
s &= 15;
|
||||
|
||||
if (s) {
|
||||
k += r;
|
||||
CHECK_BIT_BUFFER(br_state, s, return FALSE);
|
||||
DROP_BITS(s);
|
||||
} else {
|
||||
if (r != 15)
|
||||
break;
|
||||
k += 15;
|
||||
}
|
||||
}
|
||||
|
||||
}
|
||||
}
|
||||
|
||||
/* Completed MCU, so update state */
|
||||
BITREAD_SAVE_STATE(cinfo,entropy->bitstate);
|
||||
ASSIGN_STATE(entropy->saved, state);
|
||||
}
|
||||
|
||||
/* Account for restart interval (no-op if not using restarts) */
|
||||
entropy->restarts_to_go--;
|
||||
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Module initialization routine for Huffman entropy decoding.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jinit_shuff_decoder (j_decompress_ptr cinfo)
|
||||
{
|
||||
j_lossy_d_ptr lossyd = (j_lossy_d_ptr) cinfo->codec;
|
||||
shuff_entropy_ptr entropy;
|
||||
int i;
|
||||
|
||||
entropy = (shuff_entropy_ptr)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
SIZEOF(shuff_entropy_decoder));
|
||||
lossyd->entropy_private = (void *) entropy;
|
||||
lossyd->entropy_start_pass = start_pass_huff_decoder;
|
||||
lossyd->entropy_decode_mcu = decode_mcu;
|
||||
|
||||
/* Mark tables unallocated */
|
||||
for (i = 0; i < NUM_HUFF_TBLS; i++) {
|
||||
entropy->dc_derived_tbls[i] = entropy->ac_derived_tbls[i] = NULL;
|
||||
}
|
||||
}
|
||||
+16
-15
@@ -1,7 +1,8 @@
|
||||
/*
|
||||
* jdtrans.c
|
||||
*
|
||||
* Copyright (C) 1995-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1995-1997, Thomas G. Lane.
|
||||
* Modified 2000-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -13,9 +14,7 @@
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jlossy.h"
|
||||
|
||||
EXTERN(void) jinit_d_codec (j_decompress_ptr cinfo);
|
||||
|
||||
/* Forward declarations */
|
||||
LOCAL(void) transdecode_master_selection JPP((j_decompress_ptr cinfo));
|
||||
@@ -46,14 +45,6 @@ LOCAL(void) transdecode_master_selection JPP((j_decompress_ptr cinfo));
|
||||
GLOBAL(jvirt_barray_ptr *)
|
||||
jpeg_read_coefficients (j_decompress_ptr cinfo)
|
||||
{
|
||||
//j_lossy_d_ptr decomp;
|
||||
|
||||
/* Can't read coefficients from lossless streams */
|
||||
if (cinfo->process == JPROC_LOSSLESS) {
|
||||
ERREXIT(cinfo, JERR_CANT_TRANSCODE);
|
||||
return NULL;
|
||||
}
|
||||
|
||||
if (cinfo->global_state == DSTATE_READY) {
|
||||
/* First call: initialize active modules */
|
||||
transdecode_master_selection(cinfo);
|
||||
@@ -90,7 +81,7 @@ jpeg_read_coefficients (j_decompress_ptr cinfo)
|
||||
*/
|
||||
if ((cinfo->global_state == DSTATE_STOPPING ||
|
||||
cinfo->global_state == DSTATE_BUFIMAGE) && cinfo->buffered_image) {
|
||||
return ((j_lossy_d_ptr) cinfo->codec)->coef_arrays;
|
||||
return cinfo->coef->coef_arrays;
|
||||
}
|
||||
/* Oops, improper usage */
|
||||
ERREXIT1(cinfo, JERR_BAD_STATE, cinfo->global_state);
|
||||
@@ -109,8 +100,18 @@ transdecode_master_selection (j_decompress_ptr cinfo)
|
||||
/* This is effectively a buffered-image operation. */
|
||||
cinfo->buffered_image = TRUE;
|
||||
|
||||
/* Initialize decompression codec */
|
||||
jinit_d_codec(cinfo);
|
||||
/* Compute output image dimensions and related values. */
|
||||
jpeg_core_output_dimensions(cinfo);
|
||||
|
||||
/* Entropy decoding: either Huffman or arithmetic coding. */
|
||||
if (cinfo->arith_code)
|
||||
jinit_arith_decoder(cinfo);
|
||||
else {
|
||||
jinit_huff_decoder(cinfo);
|
||||
}
|
||||
|
||||
/* Always get a full-image coefficient buffer. */
|
||||
jinit_d_coef_controller(cinfo, TRUE);
|
||||
|
||||
/* We can now tell the memory manager to allocate virtual arrays. */
|
||||
(*cinfo->mem->realize_virt_arrays) ((j_common_ptr) cinfo);
|
||||
@@ -122,7 +123,7 @@ transdecode_master_selection (j_decompress_ptr cinfo)
|
||||
if (cinfo->progress != NULL) {
|
||||
int nscans;
|
||||
/* Estimate number of scans to set pass_limit. */
|
||||
if (cinfo->process == JPROC_PROGRESSIVE) {
|
||||
if (cinfo->progressive_mode) {
|
||||
/* Arbitrarily estimate 2 interleaved DC scans + 3 AC scans/component. */
|
||||
nscans = 2 + 3 * cinfo->num_components;
|
||||
} else if (cinfo->inputctl->has_multiple_scans) {
|
||||
|
||||
@@ -15,11 +15,6 @@
|
||||
* It ain't much, but it beats dropping error messages into the bit bucket,
|
||||
* which is what happens to output to stderr under most Windows C compilers.
|
||||
*
|
||||
* If you define USE_BEOS_ALERT in jconfig.h or in the makefile,
|
||||
* you get a BeOS-specific hack to display error messages in a dialog box.
|
||||
* It ain't much, but it beats dropping error messages into the bit bucket,
|
||||
* which is what happens to output to stderr under most Windows C compilers.
|
||||
*
|
||||
* These routines are used by both the compression and decompression code.
|
||||
*/
|
||||
|
||||
@@ -33,10 +28,6 @@
|
||||
#include <windows.h>
|
||||
#endif
|
||||
|
||||
//#ifdef USE_BEOS_ALERT
|
||||
//#include <Alert.h>
|
||||
//#endif
|
||||
|
||||
#ifndef EXIT_FAILURE /* define exit() codes if not provided */
|
||||
#define EXIT_FAILURE 1
|
||||
#endif
|
||||
@@ -116,12 +107,8 @@ output_message (j_common_ptr cinfo)
|
||||
MessageBox(GetActiveWindow(), buffer, "JPEG Library Error",
|
||||
MB_OK | MB_ICONERROR);
|
||||
#else
|
||||
// #ifdef USE_BEOS_ALERT
|
||||
// (new BAlert("JPEG Library Error", buffer, "OK", NULL, NULL, B_WIDTH_AS_USUAL, B_WARNING_ALERT))->Go();
|
||||
// #else
|
||||
/* Send it to stderr, adding a newline */
|
||||
fprintf(stderr, "%s\n", buffer);
|
||||
// #endif
|
||||
#endif
|
||||
}
|
||||
|
||||
|
||||
+17
-11
@@ -2,6 +2,7 @@
|
||||
* jfdctflt.c
|
||||
*
|
||||
* Copyright (C) 1994-1996, Thomas G. Lane.
|
||||
* Modified 2003-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -56,26 +57,30 @@
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_fdct_float (FAST_FLOAT * data)
|
||||
jpeg_fdct_float (FAST_FLOAT * data, JSAMPARRAY sample_data, JDIMENSION start_col)
|
||||
{
|
||||
FAST_FLOAT tmp0, tmp1, tmp2, tmp3, tmp4, tmp5, tmp6, tmp7;
|
||||
FAST_FLOAT tmp10, tmp11, tmp12, tmp13;
|
||||
FAST_FLOAT z1, z2, z3, z4, z5, z11, z13;
|
||||
FAST_FLOAT *dataptr;
|
||||
JSAMPROW elemptr;
|
||||
int ctr;
|
||||
|
||||
/* Pass 1: process rows. */
|
||||
|
||||
dataptr = data;
|
||||
for (ctr = DCTSIZE-1; ctr >= 0; ctr--) {
|
||||
tmp0 = dataptr[0] + dataptr[7];
|
||||
tmp7 = dataptr[0] - dataptr[7];
|
||||
tmp1 = dataptr[1] + dataptr[6];
|
||||
tmp6 = dataptr[1] - dataptr[6];
|
||||
tmp2 = dataptr[2] + dataptr[5];
|
||||
tmp5 = dataptr[2] - dataptr[5];
|
||||
tmp3 = dataptr[3] + dataptr[4];
|
||||
tmp4 = dataptr[3] - dataptr[4];
|
||||
for (ctr = 0; ctr < DCTSIZE; ctr++) {
|
||||
elemptr = sample_data[ctr] + start_col;
|
||||
|
||||
/* Load data into workspace */
|
||||
tmp0 = (FAST_FLOAT) (GETJSAMPLE(elemptr[0]) + GETJSAMPLE(elemptr[7]));
|
||||
tmp7 = (FAST_FLOAT) (GETJSAMPLE(elemptr[0]) - GETJSAMPLE(elemptr[7]));
|
||||
tmp1 = (FAST_FLOAT) (GETJSAMPLE(elemptr[1]) + GETJSAMPLE(elemptr[6]));
|
||||
tmp6 = (FAST_FLOAT) (GETJSAMPLE(elemptr[1]) - GETJSAMPLE(elemptr[6]));
|
||||
tmp2 = (FAST_FLOAT) (GETJSAMPLE(elemptr[2]) + GETJSAMPLE(elemptr[5]));
|
||||
tmp5 = (FAST_FLOAT) (GETJSAMPLE(elemptr[2]) - GETJSAMPLE(elemptr[5]));
|
||||
tmp3 = (FAST_FLOAT) (GETJSAMPLE(elemptr[3]) + GETJSAMPLE(elemptr[4]));
|
||||
tmp4 = (FAST_FLOAT) (GETJSAMPLE(elemptr[3]) - GETJSAMPLE(elemptr[4]));
|
||||
|
||||
/* Even part */
|
||||
|
||||
@@ -84,7 +89,8 @@ jpeg_fdct_float (FAST_FLOAT * data)
|
||||
tmp11 = tmp1 + tmp2;
|
||||
tmp12 = tmp1 - tmp2;
|
||||
|
||||
dataptr[0] = tmp10 + tmp11; /* phase 3 */
|
||||
/* Apply unsigned->signed conversion */
|
||||
dataptr[0] = tmp10 + tmp11 - 8 * CENTERJSAMPLE; /* phase 3 */
|
||||
dataptr[4] = tmp10 - tmp11;
|
||||
|
||||
z1 = (tmp12 + tmp13) * ((FAST_FLOAT) 0.707106781); /* c4 */
|
||||
|
||||
+17
-11
@@ -2,6 +2,7 @@
|
||||
* jfdctfst.c
|
||||
*
|
||||
* Copyright (C) 1994-1996, Thomas G. Lane.
|
||||
* Modified 2003-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -111,27 +112,31 @@
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_fdct_ifast (DCTELEM * data)
|
||||
jpeg_fdct_ifast (DCTELEM * data, JSAMPARRAY sample_data, JDIMENSION start_col)
|
||||
{
|
||||
DCTELEM tmp0, tmp1, tmp2, tmp3, tmp4, tmp5, tmp6, tmp7;
|
||||
DCTELEM tmp10, tmp11, tmp12, tmp13;
|
||||
DCTELEM z1, z2, z3, z4, z5, z11, z13;
|
||||
DCTELEM *dataptr;
|
||||
JSAMPROW elemptr;
|
||||
int ctr;
|
||||
SHIFT_TEMPS
|
||||
|
||||
/* Pass 1: process rows. */
|
||||
|
||||
dataptr = data;
|
||||
for (ctr = DCTSIZE-1; ctr >= 0; ctr--) {
|
||||
tmp0 = dataptr[0] + dataptr[7];
|
||||
tmp7 = dataptr[0] - dataptr[7];
|
||||
tmp1 = dataptr[1] + dataptr[6];
|
||||
tmp6 = dataptr[1] - dataptr[6];
|
||||
tmp2 = dataptr[2] + dataptr[5];
|
||||
tmp5 = dataptr[2] - dataptr[5];
|
||||
tmp3 = dataptr[3] + dataptr[4];
|
||||
tmp4 = dataptr[3] - dataptr[4];
|
||||
for (ctr = 0; ctr < DCTSIZE; ctr++) {
|
||||
elemptr = sample_data[ctr] + start_col;
|
||||
|
||||
/* Load data into workspace */
|
||||
tmp0 = GETJSAMPLE(elemptr[0]) + GETJSAMPLE(elemptr[7]);
|
||||
tmp7 = GETJSAMPLE(elemptr[0]) - GETJSAMPLE(elemptr[7]);
|
||||
tmp1 = GETJSAMPLE(elemptr[1]) + GETJSAMPLE(elemptr[6]);
|
||||
tmp6 = GETJSAMPLE(elemptr[1]) - GETJSAMPLE(elemptr[6]);
|
||||
tmp2 = GETJSAMPLE(elemptr[2]) + GETJSAMPLE(elemptr[5]);
|
||||
tmp5 = GETJSAMPLE(elemptr[2]) - GETJSAMPLE(elemptr[5]);
|
||||
tmp3 = GETJSAMPLE(elemptr[3]) + GETJSAMPLE(elemptr[4]);
|
||||
tmp4 = GETJSAMPLE(elemptr[3]) - GETJSAMPLE(elemptr[4]);
|
||||
|
||||
/* Even part */
|
||||
|
||||
@@ -140,7 +145,8 @@ jpeg_fdct_ifast (DCTELEM * data)
|
||||
tmp11 = tmp1 + tmp2;
|
||||
tmp12 = tmp1 - tmp2;
|
||||
|
||||
dataptr[0] = tmp10 + tmp11; /* phase 3 */
|
||||
/* Apply unsigned->signed conversion */
|
||||
dataptr[0] = tmp10 + tmp11 - 8 * CENTERJSAMPLE; /* phase 3 */
|
||||
dataptr[4] = tmp10 - tmp11;
|
||||
|
||||
z1 = MULTIPLY(tmp12 + tmp13, FIX_0_707106781); /* c4 */
|
||||
|
||||
+4146
-81
File diff suppressed because it is too large
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+4818
-70
File diff suppressed because it is too large
Load Diff
@@ -1,398 +0,0 @@
|
||||
/*
|
||||
* jidctred.c
|
||||
*
|
||||
* Copyright (C) 1994-1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains inverse-DCT routines that produce reduced-size output:
|
||||
* either 4x4, 2x2, or 1x1 pixels from an 8x8 DCT block.
|
||||
*
|
||||
* The implementation is based on the Loeffler, Ligtenberg and Moschytz (LL&M)
|
||||
* algorithm used in jidctint.c. We simply replace each 8-to-8 1-D IDCT step
|
||||
* with an 8-to-4 step that produces the four averages of two adjacent outputs
|
||||
* (or an 8-to-2 step producing two averages of four outputs, for 2x2 output).
|
||||
* These steps were derived by computing the corresponding values at the end
|
||||
* of the normal LL&M code, then simplifying as much as possible.
|
||||
*
|
||||
* 1x1 is trivial: just take the DC coefficient divided by 8.
|
||||
*
|
||||
* See jidctint.c for additional comments.
|
||||
*/
|
||||
|
||||
#define JPEG_INTERNALS
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "jdct.h" /* Private declarations for DCT subsystem */
|
||||
|
||||
#ifdef IDCT_SCALING_SUPPORTED
|
||||
|
||||
|
||||
/*
|
||||
* This module is specialized to the case DCTSIZE = 8.
|
||||
*/
|
||||
|
||||
#if DCTSIZE != 8
|
||||
Sorry, this code only copes with 8x8 DCTs. /* deliberate syntax err */
|
||||
#endif
|
||||
|
||||
|
||||
/* Scaling is the same as in jidctint.c. */
|
||||
|
||||
#if BITS_IN_JSAMPLE == 8
|
||||
#define CONST_BITS 13
|
||||
#define PASS1_BITS 2
|
||||
#else
|
||||
#define CONST_BITS 13
|
||||
#define PASS1_BITS 1 /* lose a little precision to avoid overflow */
|
||||
#endif
|
||||
|
||||
/* Some C compilers fail to reduce "FIX(constant)" at compile time, thus
|
||||
* causing a lot of useless floating-point operations at run time.
|
||||
* To get around this we use the following pre-calculated constants.
|
||||
* If you change CONST_BITS you may want to add appropriate values.
|
||||
* (With a reasonable C compiler, you can just rely on the FIX() macro...)
|
||||
*/
|
||||
|
||||
#if CONST_BITS == 13
|
||||
#define FIX_0_211164243 ((INT32) 1730) /* FIX(0.211164243) */
|
||||
#define FIX_0_509795579 ((INT32) 4176) /* FIX(0.509795579) */
|
||||
#define FIX_0_601344887 ((INT32) 4926) /* FIX(0.601344887) */
|
||||
#define FIX_0_720959822 ((INT32) 5906) /* FIX(0.720959822) */
|
||||
#define FIX_0_765366865 ((INT32) 6270) /* FIX(0.765366865) */
|
||||
#define FIX_0_850430095 ((INT32) 6967) /* FIX(0.850430095) */
|
||||
#define FIX_0_899976223 ((INT32) 7373) /* FIX(0.899976223) */
|
||||
#define FIX_1_061594337 ((INT32) 8697) /* FIX(1.061594337) */
|
||||
#define FIX_1_272758580 ((INT32) 10426) /* FIX(1.272758580) */
|
||||
#define FIX_1_451774981 ((INT32) 11893) /* FIX(1.451774981) */
|
||||
#define FIX_1_847759065 ((INT32) 15137) /* FIX(1.847759065) */
|
||||
#define FIX_2_172734803 ((INT32) 17799) /* FIX(2.172734803) */
|
||||
#define FIX_2_562915447 ((INT32) 20995) /* FIX(2.562915447) */
|
||||
#define FIX_3_624509785 ((INT32) 29692) /* FIX(3.624509785) */
|
||||
#else
|
||||
#define FIX_0_211164243 FIX(0.211164243)
|
||||
#define FIX_0_509795579 FIX(0.509795579)
|
||||
#define FIX_0_601344887 FIX(0.601344887)
|
||||
#define FIX_0_720959822 FIX(0.720959822)
|
||||
#define FIX_0_765366865 FIX(0.765366865)
|
||||
#define FIX_0_850430095 FIX(0.850430095)
|
||||
#define FIX_0_899976223 FIX(0.899976223)
|
||||
#define FIX_1_061594337 FIX(1.061594337)
|
||||
#define FIX_1_272758580 FIX(1.272758580)
|
||||
#define FIX_1_451774981 FIX(1.451774981)
|
||||
#define FIX_1_847759065 FIX(1.847759065)
|
||||
#define FIX_2_172734803 FIX(2.172734803)
|
||||
#define FIX_2_562915447 FIX(2.562915447)
|
||||
#define FIX_3_624509785 FIX(3.624509785)
|
||||
#endif
|
||||
|
||||
|
||||
/* Multiply an INT32 variable by an INT32 constant to yield an INT32 result.
|
||||
* For 8-bit samples with the recommended scaling, all the variable
|
||||
* and constant values involved are no more than 16 bits wide, so a
|
||||
* 16x16->32 bit multiply can be used instead of a full 32x32 multiply.
|
||||
* For 12-bit samples, a full 32-bit multiplication will be needed.
|
||||
*/
|
||||
|
||||
#if BITS_IN_JSAMPLE == 8
|
||||
#define MULTIPLY(var,const) MULTIPLY16C16(var,const)
|
||||
#else
|
||||
#define MULTIPLY(var,const) ((var) * (const))
|
||||
#endif
|
||||
|
||||
|
||||
/* Dequantize a coefficient by multiplying it by the multiplier-table
|
||||
* entry; produce an int result. In this module, both inputs and result
|
||||
* are 16 bits or less, so either int or short multiply will work.
|
||||
*/
|
||||
|
||||
#define DEQUANTIZE(coef,quantval) (((ISLOW_MULT_TYPE) (coef)) * (quantval))
|
||||
|
||||
|
||||
/*
|
||||
* Perform dequantization and inverse DCT on one block of coefficients,
|
||||
* producing a reduced-size 4x4 output block.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_idct_4x4 (j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block,
|
||||
JSAMPARRAY output_buf, JDIMENSION output_col)
|
||||
{
|
||||
INT32 tmp0, tmp2, tmp10, tmp12;
|
||||
INT32 z1, z2, z3, z4;
|
||||
JCOEFPTR inptr;
|
||||
ISLOW_MULT_TYPE * quantptr;
|
||||
int * wsptr;
|
||||
JSAMPROW outptr;
|
||||
JSAMPLE *range_limit = IDCT_range_limit(cinfo);
|
||||
int ctr;
|
||||
int workspace[DCTSIZE*4]; /* buffers data between passes */
|
||||
SHIFT_TEMPS
|
||||
|
||||
/* Pass 1: process columns from input, store into work array. */
|
||||
|
||||
inptr = coef_block;
|
||||
quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;
|
||||
wsptr = workspace;
|
||||
for (ctr = DCTSIZE; ctr > 0; inptr++, quantptr++, wsptr++, ctr--) {
|
||||
/* Don't bother to process column 4, because second pass won't use it */
|
||||
if (ctr == DCTSIZE-4)
|
||||
continue;
|
||||
if (inptr[DCTSIZE*1] == 0 && inptr[DCTSIZE*2] == 0 &&
|
||||
inptr[DCTSIZE*3] == 0 && inptr[DCTSIZE*5] == 0 &&
|
||||
inptr[DCTSIZE*6] == 0 && inptr[DCTSIZE*7] == 0) {
|
||||
/* AC terms all zero; we need not examine term 4 for 4x4 output */
|
||||
int dcval = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]) << PASS1_BITS;
|
||||
|
||||
wsptr[DCTSIZE*0] = dcval;
|
||||
wsptr[DCTSIZE*1] = dcval;
|
||||
wsptr[DCTSIZE*2] = dcval;
|
||||
wsptr[DCTSIZE*3] = dcval;
|
||||
|
||||
continue;
|
||||
}
|
||||
|
||||
/* Even part */
|
||||
|
||||
tmp0 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);
|
||||
tmp0 <<= (CONST_BITS+1);
|
||||
|
||||
z2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);
|
||||
z3 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);
|
||||
|
||||
tmp2 = MULTIPLY(z2, FIX_1_847759065) + MULTIPLY(z3, - FIX_0_765366865);
|
||||
|
||||
tmp10 = tmp0 + tmp2;
|
||||
tmp12 = tmp0 - tmp2;
|
||||
|
||||
/* Odd part */
|
||||
|
||||
z1 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);
|
||||
z2 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);
|
||||
z3 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);
|
||||
z4 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);
|
||||
|
||||
tmp0 = MULTIPLY(z1, - FIX_0_211164243) /* sqrt(2) * (c3-c1) */
|
||||
+ MULTIPLY(z2, FIX_1_451774981) /* sqrt(2) * (c3+c7) */
|
||||
+ MULTIPLY(z3, - FIX_2_172734803) /* sqrt(2) * (-c1-c5) */
|
||||
+ MULTIPLY(z4, FIX_1_061594337); /* sqrt(2) * (c5+c7) */
|
||||
|
||||
tmp2 = MULTIPLY(z1, - FIX_0_509795579) /* sqrt(2) * (c7-c5) */
|
||||
+ MULTIPLY(z2, - FIX_0_601344887) /* sqrt(2) * (c5-c1) */
|
||||
+ MULTIPLY(z3, FIX_0_899976223) /* sqrt(2) * (c3-c7) */
|
||||
+ MULTIPLY(z4, FIX_2_562915447); /* sqrt(2) * (c1+c3) */
|
||||
|
||||
/* Final output stage */
|
||||
|
||||
wsptr[DCTSIZE*0] = (int) DESCALE(tmp10 + tmp2, CONST_BITS-PASS1_BITS+1);
|
||||
wsptr[DCTSIZE*3] = (int) DESCALE(tmp10 - tmp2, CONST_BITS-PASS1_BITS+1);
|
||||
wsptr[DCTSIZE*1] = (int) DESCALE(tmp12 + tmp0, CONST_BITS-PASS1_BITS+1);
|
||||
wsptr[DCTSIZE*2] = (int) DESCALE(tmp12 - tmp0, CONST_BITS-PASS1_BITS+1);
|
||||
}
|
||||
|
||||
/* Pass 2: process 4 rows from work array, store into output array. */
|
||||
|
||||
wsptr = workspace;
|
||||
for (ctr = 0; ctr < 4; ctr++) {
|
||||
outptr = output_buf[ctr] + output_col;
|
||||
/* It's not clear whether a zero row test is worthwhile here ... */
|
||||
|
||||
#ifndef NO_ZERO_ROW_TEST
|
||||
if (wsptr[1] == 0 && wsptr[2] == 0 && wsptr[3] == 0 &&
|
||||
wsptr[5] == 0 && wsptr[6] == 0 && wsptr[7] == 0) {
|
||||
/* AC terms all zero */
|
||||
JSAMPLE dcval = range_limit[(int) DESCALE((INT32) wsptr[0], PASS1_BITS+3)
|
||||
& RANGE_MASK];
|
||||
|
||||
outptr[0] = dcval;
|
||||
outptr[1] = dcval;
|
||||
outptr[2] = dcval;
|
||||
outptr[3] = dcval;
|
||||
|
||||
wsptr += DCTSIZE; /* advance pointer to next row */
|
||||
continue;
|
||||
}
|
||||
#endif
|
||||
|
||||
/* Even part */
|
||||
|
||||
tmp0 = ((INT32) wsptr[0]) << (CONST_BITS+1);
|
||||
|
||||
tmp2 = MULTIPLY((INT32) wsptr[2], FIX_1_847759065)
|
||||
+ MULTIPLY((INT32) wsptr[6], - FIX_0_765366865);
|
||||
|
||||
tmp10 = tmp0 + tmp2;
|
||||
tmp12 = tmp0 - tmp2;
|
||||
|
||||
/* Odd part */
|
||||
|
||||
z1 = (INT32) wsptr[7];
|
||||
z2 = (INT32) wsptr[5];
|
||||
z3 = (INT32) wsptr[3];
|
||||
z4 = (INT32) wsptr[1];
|
||||
|
||||
tmp0 = MULTIPLY(z1, - FIX_0_211164243) /* sqrt(2) * (c3-c1) */
|
||||
+ MULTIPLY(z2, FIX_1_451774981) /* sqrt(2) * (c3+c7) */
|
||||
+ MULTIPLY(z3, - FIX_2_172734803) /* sqrt(2) * (-c1-c5) */
|
||||
+ MULTIPLY(z4, FIX_1_061594337); /* sqrt(2) * (c5+c7) */
|
||||
|
||||
tmp2 = MULTIPLY(z1, - FIX_0_509795579) /* sqrt(2) * (c7-c5) */
|
||||
+ MULTIPLY(z2, - FIX_0_601344887) /* sqrt(2) * (c5-c1) */
|
||||
+ MULTIPLY(z3, FIX_0_899976223) /* sqrt(2) * (c3-c7) */
|
||||
+ MULTIPLY(z4, FIX_2_562915447); /* sqrt(2) * (c1+c3) */
|
||||
|
||||
/* Final output stage */
|
||||
|
||||
outptr[0] = range_limit[(int) DESCALE(tmp10 + tmp2,
|
||||
CONST_BITS+PASS1_BITS+3+1)
|
||||
& RANGE_MASK];
|
||||
outptr[3] = range_limit[(int) DESCALE(tmp10 - tmp2,
|
||||
CONST_BITS+PASS1_BITS+3+1)
|
||||
& RANGE_MASK];
|
||||
outptr[1] = range_limit[(int) DESCALE(tmp12 + tmp0,
|
||||
CONST_BITS+PASS1_BITS+3+1)
|
||||
& RANGE_MASK];
|
||||
outptr[2] = range_limit[(int) DESCALE(tmp12 - tmp0,
|
||||
CONST_BITS+PASS1_BITS+3+1)
|
||||
& RANGE_MASK];
|
||||
|
||||
wsptr += DCTSIZE; /* advance pointer to next row */
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Perform dequantization and inverse DCT on one block of coefficients,
|
||||
* producing a reduced-size 2x2 output block.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_idct_2x2 (j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block,
|
||||
JSAMPARRAY output_buf, JDIMENSION output_col)
|
||||
{
|
||||
INT32 tmp0, tmp10, z1;
|
||||
JCOEFPTR inptr;
|
||||
ISLOW_MULT_TYPE * quantptr;
|
||||
int * wsptr;
|
||||
JSAMPROW outptr;
|
||||
JSAMPLE *range_limit = IDCT_range_limit(cinfo);
|
||||
int ctr;
|
||||
int workspace[DCTSIZE*2]; /* buffers data between passes */
|
||||
SHIFT_TEMPS
|
||||
|
||||
/* Pass 1: process columns from input, store into work array. */
|
||||
|
||||
inptr = coef_block;
|
||||
quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;
|
||||
wsptr = workspace;
|
||||
for (ctr = DCTSIZE; ctr > 0; inptr++, quantptr++, wsptr++, ctr--) {
|
||||
/* Don't bother to process columns 2,4,6 */
|
||||
if (ctr == DCTSIZE-2 || ctr == DCTSIZE-4 || ctr == DCTSIZE-6)
|
||||
continue;
|
||||
if (inptr[DCTSIZE*1] == 0 && inptr[DCTSIZE*3] == 0 &&
|
||||
inptr[DCTSIZE*5] == 0 && inptr[DCTSIZE*7] == 0) {
|
||||
/* AC terms all zero; we need not examine terms 2,4,6 for 2x2 output */
|
||||
int dcval = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]) << PASS1_BITS;
|
||||
|
||||
wsptr[DCTSIZE*0] = dcval;
|
||||
wsptr[DCTSIZE*1] = dcval;
|
||||
|
||||
continue;
|
||||
}
|
||||
|
||||
/* Even part */
|
||||
|
||||
z1 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);
|
||||
tmp10 = z1 << (CONST_BITS+2);
|
||||
|
||||
/* Odd part */
|
||||
|
||||
z1 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);
|
||||
tmp0 = MULTIPLY(z1, - FIX_0_720959822); /* sqrt(2) * (c7-c5+c3-c1) */
|
||||
z1 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);
|
||||
tmp0 += MULTIPLY(z1, FIX_0_850430095); /* sqrt(2) * (-c1+c3+c5+c7) */
|
||||
z1 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);
|
||||
tmp0 += MULTIPLY(z1, - FIX_1_272758580); /* sqrt(2) * (-c1+c3-c5-c7) */
|
||||
z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);
|
||||
tmp0 += MULTIPLY(z1, FIX_3_624509785); /* sqrt(2) * (c1+c3+c5+c7) */
|
||||
|
||||
/* Final output stage */
|
||||
|
||||
wsptr[DCTSIZE*0] = (int) DESCALE(tmp10 + tmp0, CONST_BITS-PASS1_BITS+2);
|
||||
wsptr[DCTSIZE*1] = (int) DESCALE(tmp10 - tmp0, CONST_BITS-PASS1_BITS+2);
|
||||
}
|
||||
|
||||
/* Pass 2: process 2 rows from work array, store into output array. */
|
||||
|
||||
wsptr = workspace;
|
||||
for (ctr = 0; ctr < 2; ctr++) {
|
||||
outptr = output_buf[ctr] + output_col;
|
||||
/* It's not clear whether a zero row test is worthwhile here ... */
|
||||
|
||||
#ifndef NO_ZERO_ROW_TEST
|
||||
if (wsptr[1] == 0 && wsptr[3] == 0 && wsptr[5] == 0 && wsptr[7] == 0) {
|
||||
/* AC terms all zero */
|
||||
JSAMPLE dcval = range_limit[(int) DESCALE((INT32) wsptr[0], PASS1_BITS+3)
|
||||
& RANGE_MASK];
|
||||
|
||||
outptr[0] = dcval;
|
||||
outptr[1] = dcval;
|
||||
|
||||
wsptr += DCTSIZE; /* advance pointer to next row */
|
||||
continue;
|
||||
}
|
||||
#endif
|
||||
|
||||
/* Even part */
|
||||
|
||||
tmp10 = ((INT32) wsptr[0]) << (CONST_BITS+2);
|
||||
|
||||
/* Odd part */
|
||||
|
||||
tmp0 = MULTIPLY((INT32) wsptr[7], - FIX_0_720959822) /* sqrt(2) * (c7-c5+c3-c1) */
|
||||
+ MULTIPLY((INT32) wsptr[5], FIX_0_850430095) /* sqrt(2) * (-c1+c3+c5+c7) */
|
||||
+ MULTIPLY((INT32) wsptr[3], - FIX_1_272758580) /* sqrt(2) * (-c1+c3-c5-c7) */
|
||||
+ MULTIPLY((INT32) wsptr[1], FIX_3_624509785); /* sqrt(2) * (c1+c3+c5+c7) */
|
||||
|
||||
/* Final output stage */
|
||||
|
||||
outptr[0] = range_limit[(int) DESCALE(tmp10 + tmp0,
|
||||
CONST_BITS+PASS1_BITS+3+2)
|
||||
& RANGE_MASK];
|
||||
outptr[1] = range_limit[(int) DESCALE(tmp10 - tmp0,
|
||||
CONST_BITS+PASS1_BITS+3+2)
|
||||
& RANGE_MASK];
|
||||
|
||||
wsptr += DCTSIZE; /* advance pointer to next row */
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/*
|
||||
* Perform dequantization and inverse DCT on one block of coefficients,
|
||||
* producing a reduced-size 1x1 output block.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jpeg_idct_1x1 (j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block,
|
||||
JSAMPARRAY output_buf, JDIMENSION output_col)
|
||||
{
|
||||
int dcval;
|
||||
ISLOW_MULT_TYPE * quantptr;
|
||||
JSAMPLE *range_limit = IDCT_range_limit(cinfo);
|
||||
SHIFT_TEMPS
|
||||
|
||||
/* We hardly need an inverse DCT routine for this: just take the
|
||||
* average pixel value, which is one-eighth of the DC coefficient.
|
||||
*/
|
||||
quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;
|
||||
dcval = DEQUANTIZE(coef_block[0], quantptr[0]);
|
||||
dcval = (int) DESCALE((INT32) dcval, 3);
|
||||
|
||||
output_buf[0][output_col] = range_limit[dcval & RANGE_MASK];
|
||||
}
|
||||
|
||||
#endif /* IDCT_SCALING_SUPPORTED */
|
||||
@@ -1,157 +0,0 @@
|
||||
/*
|
||||
* jlossls.h
|
||||
*
|
||||
* Copyright (C) 1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This include file contains common declarations for the lossless JPEG
|
||||
* codec modules.
|
||||
*/
|
||||
|
||||
#ifndef JLOSSLS_H
|
||||
#define JLOSSLS_H
|
||||
|
||||
|
||||
/*
|
||||
* Table H.1: Predictors for lossless coding.
|
||||
*/
|
||||
|
||||
#define PREDICTOR1 Ra
|
||||
#define PREDICTOR2 Rb
|
||||
#define PREDICTOR3 Rc
|
||||
#define PREDICTOR4 (int) ((INT32) Ra + (INT32) Rb - (INT32) Rc)
|
||||
#define PREDICTOR5 (int) ((INT32) Ra + RIGHT_SHIFT((INT32) Rb - (INT32) Rc, 1))
|
||||
#define PREDICTOR6 (int) ((INT32) Rb + RIGHT_SHIFT((INT32) Ra - (INT32) Rc, 1))
|
||||
#define PREDICTOR7 (int) RIGHT_SHIFT((INT32) Ra + (INT32) Rb, 1)
|
||||
|
||||
|
||||
typedef JMETHOD(void, predict_difference_method_ptr,
|
||||
(j_compress_ptr cinfo, int ci,
|
||||
JSAMPROW input_buf, JSAMPROW prev_row,
|
||||
JDIFFROW diff_buf, JDIMENSION width));
|
||||
|
||||
typedef JMETHOD(void, scaler_method_ptr,
|
||||
(j_compress_ptr cinfo, int ci,
|
||||
JSAMPROW input_buf, JSAMPROW output_buf,
|
||||
JDIMENSION width));
|
||||
|
||||
/* Lossless-specific compression codec (compressor proper) */
|
||||
typedef struct {
|
||||
struct jpeg_c_codec pub; /* public fields */
|
||||
|
||||
|
||||
/* Difference buffer control */
|
||||
JMETHOD(void, diff_start_pass, (j_compress_ptr cinfo,
|
||||
J_BUF_MODE pass_mode));
|
||||
|
||||
/* Pointer to data which is private to diff controller */
|
||||
void *diff_private;
|
||||
|
||||
|
||||
/* Entropy encoding */
|
||||
JMETHOD(JDIMENSION, entropy_encode_mcus, (j_compress_ptr cinfo,
|
||||
JDIFFIMAGE diff_buf,
|
||||
JDIMENSION MCU_row_num,
|
||||
JDIMENSION MCU_col_num,
|
||||
JDIMENSION nMCU));
|
||||
|
||||
/* Pointer to data which is private to entropy module */
|
||||
void *entropy_private;
|
||||
|
||||
|
||||
/* Prediction, differencing */
|
||||
JMETHOD(void, predict_start_pass, (j_compress_ptr cinfo));
|
||||
|
||||
/* It is useful to allow each component to have a separate diff method. */
|
||||
predict_difference_method_ptr predict_difference[MAX_COMPONENTS];
|
||||
|
||||
/* Pointer to data which is private to predictor module */
|
||||
void *pred_private;
|
||||
|
||||
/* Sample scaling */
|
||||
JMETHOD(void, scaler_start_pass, (j_compress_ptr cinfo));
|
||||
JMETHOD(void, scaler_scale, (j_compress_ptr cinfo,
|
||||
JSAMPROW input_buf, JSAMPROW output_buf,
|
||||
JDIMENSION width));
|
||||
|
||||
/* Pointer to data which is private to scaler module */
|
||||
void *scaler_private;
|
||||
|
||||
} jpeg_lossless_c_codec;
|
||||
|
||||
typedef jpeg_lossless_c_codec * j_lossless_c_ptr;
|
||||
|
||||
|
||||
typedef JMETHOD(void, predict_undifference_method_ptr,
|
||||
(j_decompress_ptr cinfo, int comp_index,
|
||||
JDIFFROW diff_buf, JDIFFROW prev_row,
|
||||
JDIFFROW undiff_buf, JDIMENSION width));
|
||||
|
||||
/* Lossless-specific decompression codec (decompressor proper) */
|
||||
typedef struct {
|
||||
struct jpeg_d_codec pub; /* public fields */
|
||||
|
||||
|
||||
/* Difference buffer control */
|
||||
JMETHOD(void, diff_start_input_pass, (j_decompress_ptr cinfo));
|
||||
|
||||
/* Pointer to data which is private to diff controller */
|
||||
void *diff_private;
|
||||
|
||||
|
||||
/* Entropy decoding */
|
||||
JMETHOD(void, entropy_start_pass, (j_decompress_ptr cinfo));
|
||||
JMETHOD(boolean, entropy_process_restart, (j_decompress_ptr cinfo));
|
||||
JMETHOD(JDIMENSION, entropy_decode_mcus, (j_decompress_ptr cinfo,
|
||||
JDIFFIMAGE diff_buf,
|
||||
JDIMENSION MCU_row_num,
|
||||
JDIMENSION MCU_col_num,
|
||||
JDIMENSION nMCU));
|
||||
|
||||
/* Pointer to data which is private to entropy module */
|
||||
void *entropy_private;
|
||||
|
||||
|
||||
/* Prediction, undifferencing */
|
||||
JMETHOD(void, predict_start_pass, (j_decompress_ptr cinfo));
|
||||
JMETHOD(void, predict_process_restart, (j_decompress_ptr cinfo));
|
||||
|
||||
/* It is useful to allow each component to have a separate undiff method. */
|
||||
predict_undifference_method_ptr predict_undifference[MAX_COMPONENTS];
|
||||
|
||||
/* Pointer to data which is private to predictor module */
|
||||
void *pred_private;
|
||||
|
||||
/* Sample scaling */
|
||||
JMETHOD(void, scaler_start_pass, (j_decompress_ptr cinfo));
|
||||
JMETHOD(void, scaler_scale, (j_decompress_ptr cinfo,
|
||||
JDIFFROW diff_buf, JSAMPROW output_buf,
|
||||
JDIMENSION width));
|
||||
|
||||
/* Pointer to data which is private to scaler module */
|
||||
void *scaler_private;
|
||||
|
||||
} jpeg_lossless_d_codec;
|
||||
|
||||
typedef jpeg_lossless_d_codec * j_lossless_d_ptr;
|
||||
|
||||
|
||||
/* Compression module initialization routines */
|
||||
EXTERN(void) jinit_lhuff_encoder JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jinit_differencer JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jinit_c_scaler JPP((j_compress_ptr cinfo));
|
||||
/* Decompression module initialization routines */
|
||||
EXTERN(void) jinit_lhuff_decoder JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_undifferencer JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_d_scaler JPP((j_decompress_ptr cinfo));
|
||||
|
||||
EXTERN(void) jinit_lossless_c_codec(j_compress_ptr cinfo);
|
||||
EXTERN(void) jinit_lossless_d_codec(j_decompress_ptr cinfo);
|
||||
|
||||
// from other files
|
||||
EXTERN(void) jinit_d_diff_controller (j_decompress_ptr cinfo, boolean need_full_buffer);
|
||||
EXTERN(void) jinit_d_codec (j_decompress_ptr cinfo);
|
||||
EXTERN(void) jinit_c_diff_controller (j_compress_ptr cinfo, boolean need_full_buffer);
|
||||
|
||||
#endif /* JLOSSLS_H */
|
||||
@@ -1,120 +0,0 @@
|
||||
/*
|
||||
* jlossy.h
|
||||
*
|
||||
* Copyright (C) 1998, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This include file contains common declarations for the lossy (DCT-based)
|
||||
* JPEG codec modules.
|
||||
*/
|
||||
|
||||
#ifndef JLOSSY_H
|
||||
#define JLOSSY_H
|
||||
|
||||
|
||||
/* Lossy-specific compression codec (compressor proper) */
|
||||
typedef struct {
|
||||
struct jpeg_c_codec pub; /* public fields */
|
||||
|
||||
|
||||
/* Coefficient buffer control */
|
||||
JMETHOD(void, coef_start_pass, (j_compress_ptr cinfo, J_BUF_MODE pass_mode));
|
||||
/* JMETHOD(boolean, coef_compress_data, (j_compress_ptr cinfo,
|
||||
JSAMPIMAGE input_buf));*/
|
||||
|
||||
/* Pointer to data which is private to coef module */
|
||||
void *coef_private;
|
||||
|
||||
|
||||
/* Forward DCT (also controls coefficient quantization) */
|
||||
JMETHOD(void, fdct_start_pass, (j_compress_ptr cinfo));
|
||||
/* perhaps this should be an array??? */
|
||||
JMETHOD(void, fdct_forward_DCT, (j_compress_ptr cinfo,
|
||||
jpeg_component_info * compptr,
|
||||
JSAMPARRAY sample_data, JBLOCKROW coef_blocks,
|
||||
JDIMENSION start_row, JDIMENSION start_col,
|
||||
JDIMENSION num_blocks));
|
||||
|
||||
/* Pointer to data which is private to fdct module */
|
||||
void *fdct_private;
|
||||
|
||||
|
||||
/* Entropy encoding */
|
||||
JMETHOD(boolean, entropy_encode_mcu, (j_compress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
|
||||
/* Pointer to data which is private to entropy module */
|
||||
void *entropy_private;
|
||||
|
||||
} jpeg_lossy_c_codec;
|
||||
|
||||
typedef jpeg_lossy_c_codec * j_lossy_c_ptr;
|
||||
|
||||
|
||||
|
||||
typedef JMETHOD(void, inverse_DCT_method_ptr,
|
||||
(j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block,
|
||||
JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
|
||||
/* Lossy-specific decompression codec (decompressor proper) */
|
||||
typedef struct {
|
||||
struct jpeg_d_codec pub; /* public fields */
|
||||
|
||||
|
||||
/* Coefficient buffer control */
|
||||
JMETHOD(void, coef_start_input_pass, (j_decompress_ptr cinfo));
|
||||
JMETHOD(void, coef_start_output_pass, (j_decompress_ptr cinfo));
|
||||
|
||||
/* Pointer to array of coefficient virtual arrays, or NULL if none */
|
||||
jvirt_barray_ptr *coef_arrays;
|
||||
|
||||
/* Pointer to data which is private to coef module */
|
||||
void *coef_private;
|
||||
|
||||
|
||||
/* Entropy decoding */
|
||||
JMETHOD(void, entropy_start_pass, (j_decompress_ptr cinfo));
|
||||
JMETHOD(boolean, entropy_decode_mcu, (j_decompress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
|
||||
/* This is here to share code between baseline and progressive decoders; */
|
||||
/* other modules probably should not use it */
|
||||
boolean entropy_insufficient_data; /* set TRUE after emitting warning */
|
||||
|
||||
/* Pointer to data which is private to entropy module */
|
||||
void *entropy_private;
|
||||
|
||||
|
||||
/* Inverse DCT (also performs dequantization) */
|
||||
JMETHOD(void, idct_start_pass, (j_decompress_ptr cinfo));
|
||||
|
||||
/* It is useful to allow each component to have a separate IDCT method. */
|
||||
inverse_DCT_method_ptr inverse_DCT[MAX_COMPONENTS];
|
||||
|
||||
/* Pointer to data which is private to idct module */
|
||||
void *idct_private;
|
||||
|
||||
} jpeg_lossy_d_codec;
|
||||
|
||||
typedef jpeg_lossy_d_codec * j_lossy_d_ptr;
|
||||
|
||||
|
||||
/* Compression module initialization routines */
|
||||
EXTERN(void) jinit_lossy_c_codec JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jinit_c_coef_controller JPP((j_compress_ptr cinfo,
|
||||
boolean need_full_buffer));
|
||||
EXTERN(void) jinit_forward_dct JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jinit_shuff_encoder JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jinit_phuff_encoder JPP((j_compress_ptr cinfo));
|
||||
|
||||
/* Decompression module initialization routines */
|
||||
EXTERN(void) jinit_lossy_d_codec JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_d_coef_controller JPP((j_decompress_ptr cinfo,
|
||||
boolean need_full_buffer));
|
||||
EXTERN(void) jinit_shuff_decoder JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_phuff_decoder JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_inverse_dct JPP((j_decompress_ptr cinfo));
|
||||
|
||||
#endif /* JLOSSY_H */
|
||||
+6
-62
@@ -1,7 +1,7 @@
|
||||
/*
|
||||
* jmemmgr.c
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1991-1997, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -42,12 +42,11 @@ extern char * getenv JPP((const char * name));
|
||||
* The allocation routines provided here must never return NULL.
|
||||
* They should exit to error_exit if unsuccessful.
|
||||
*
|
||||
* It's not a good idea to try to merge the sarray, barray and darray
|
||||
* routines, even though they are textually almost the same, because
|
||||
* samples are usually stored as bytes while coefficients and differenced
|
||||
* are shorts or ints. Thus, in machines where byte pointers have a
|
||||
* different representation from word pointers, the resulting machine
|
||||
* code could not be the same.
|
||||
* It's not a good idea to try to merge the sarray and barray routines,
|
||||
* even though they are textually almost the same, because samples are
|
||||
* usually stored as bytes while coefficients are shorts or ints. Thus,
|
||||
* in machines where byte pointers have a different representation from
|
||||
* word pointers, the resulting machine code could not be the same.
|
||||
*/
|
||||
|
||||
|
||||
@@ -483,58 +482,6 @@ alloc_barray (j_common_ptr cinfo, int pool_id,
|
||||
}
|
||||
|
||||
|
||||
#ifdef NEED_DARRAY
|
||||
|
||||
/*
|
||||
* Creation of 2-D difference arrays.
|
||||
* This is essentially the same as the code for sample arrays, above.
|
||||
*/
|
||||
|
||||
METHODDEF(JDIFFARRAY)
|
||||
alloc_darray (j_common_ptr cinfo, int pool_id,
|
||||
JDIMENSION diffsperrow, JDIMENSION numrows)
|
||||
/* Allocate a 2-D difference array */
|
||||
{
|
||||
my_mem_ptr mem = (my_mem_ptr) cinfo->mem;
|
||||
JDIFFARRAY result;
|
||||
JDIFFROW workspace;
|
||||
JDIMENSION rowsperchunk, currow, i;
|
||||
long ltemp;
|
||||
|
||||
/* Calculate max # of rows allowed in one allocation chunk */
|
||||
ltemp = (MAX_ALLOC_CHUNK-SIZEOF(large_pool_hdr)) /
|
||||
((long) diffsperrow * SIZEOF(JDIFF));
|
||||
if (ltemp <= 0)
|
||||
ERREXIT(cinfo, JERR_WIDTH_OVERFLOW);
|
||||
if (ltemp < (long) numrows)
|
||||
rowsperchunk = (JDIMENSION) ltemp;
|
||||
else
|
||||
rowsperchunk = numrows;
|
||||
mem->last_rowsperchunk = rowsperchunk;
|
||||
|
||||
/* Get space for row pointers (small object) */
|
||||
result = (JDIFFARRAY) alloc_small(cinfo, pool_id,
|
||||
(size_t) (numrows * SIZEOF(JDIFFROW)));
|
||||
|
||||
/* Get the rows themselves (large objects) */
|
||||
currow = 0;
|
||||
while (currow < numrows) {
|
||||
rowsperchunk = MIN(rowsperchunk, numrows - currow);
|
||||
workspace = (JDIFFROW) alloc_large(cinfo, pool_id,
|
||||
(size_t) ((size_t) rowsperchunk * (size_t) diffsperrow
|
||||
* SIZEOF(JDIFF)));
|
||||
for (i = rowsperchunk; i > 0; i--) {
|
||||
result[currow++] = workspace;
|
||||
workspace += diffsperrow;
|
||||
}
|
||||
}
|
||||
|
||||
return result;
|
||||
}
|
||||
|
||||
#endif
|
||||
|
||||
|
||||
/*
|
||||
* About virtual array management:
|
||||
*
|
||||
@@ -1121,9 +1068,6 @@ jinit_memory_mgr (j_common_ptr cinfo)
|
||||
mem->pub.alloc_large = alloc_large;
|
||||
mem->pub.alloc_sarray = alloc_sarray;
|
||||
mem->pub.alloc_barray = alloc_barray;
|
||||
#ifdef NEED_DARRAY
|
||||
mem->pub.alloc_darray = alloc_darray;
|
||||
#endif
|
||||
mem->pub.request_virt_sarray = request_virt_sarray;
|
||||
mem->pub.request_virt_barray = request_virt_barray;
|
||||
mem->pub.realize_virt_arrays = realize_virt_arrays;
|
||||
|
||||
+77
-25
@@ -1,7 +1,8 @@
|
||||
/*
|
||||
* jpegint.h
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1991-1997, Thomas G. Lane.
|
||||
* Modified 1997-2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -72,12 +73,8 @@ struct jpeg_c_prep_controller {
|
||||
JDIMENSION out_row_groups_avail));
|
||||
};
|
||||
|
||||
/* Compression codec (compressor proper) */
|
||||
struct jpeg_c_codec {
|
||||
JMETHOD(void, entropy_start_pass, (j_compress_ptr cinfo,
|
||||
boolean gather_statistics));
|
||||
JMETHOD(void, entropy_finish_pass, (j_compress_ptr cinfo));
|
||||
JMETHOD(boolean, need_optimization_pass, (j_compress_ptr cinfo));
|
||||
/* Coefficient buffer control */
|
||||
struct jpeg_c_coef_controller {
|
||||
JMETHOD(void, start_pass, (j_compress_ptr cinfo, J_BUF_MODE pass_mode));
|
||||
JMETHOD(boolean, compress_data, (j_compress_ptr cinfo,
|
||||
JSAMPIMAGE input_buf));
|
||||
@@ -102,6 +99,26 @@ struct jpeg_downsampler {
|
||||
boolean need_context_rows; /* TRUE if need rows above & below */
|
||||
};
|
||||
|
||||
/* Forward DCT (also controls coefficient quantization) */
|
||||
typedef JMETHOD(void, forward_DCT_ptr,
|
||||
(j_compress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JSAMPARRAY sample_data, JBLOCKROW coef_blocks,
|
||||
JDIMENSION start_row, JDIMENSION start_col,
|
||||
JDIMENSION num_blocks));
|
||||
|
||||
struct jpeg_forward_dct {
|
||||
JMETHOD(void, start_pass, (j_compress_ptr cinfo));
|
||||
/* It is useful to allow each component to have a separate FDCT method. */
|
||||
forward_DCT_ptr forward_DCT[MAX_COMPONENTS];
|
||||
};
|
||||
|
||||
/* Entropy encoding */
|
||||
struct jpeg_entropy_encoder {
|
||||
JMETHOD(void, start_pass, (j_compress_ptr cinfo, boolean gather_statistics));
|
||||
JMETHOD(boolean, encode_mcu, (j_compress_ptr cinfo, JBLOCKROW *MCU_data));
|
||||
JMETHOD(void, finish_pass, (j_compress_ptr cinfo));
|
||||
};
|
||||
|
||||
/* Marker writing */
|
||||
struct jpeg_marker_writer {
|
||||
JMETHOD(void, write_file_header, (j_compress_ptr cinfo));
|
||||
@@ -148,14 +165,15 @@ struct jpeg_d_main_controller {
|
||||
JDIMENSION out_rows_avail));
|
||||
};
|
||||
|
||||
/* Decompression codec (decompressor proper) */
|
||||
struct jpeg_d_codec {
|
||||
JMETHOD(void, calc_output_dimensions, (j_decompress_ptr cinfo));
|
||||
/* Coefficient buffer control */
|
||||
struct jpeg_d_coef_controller {
|
||||
JMETHOD(void, start_input_pass, (j_decompress_ptr cinfo));
|
||||
JMETHOD(int, consume_data, (j_decompress_ptr cinfo));
|
||||
JMETHOD(void, start_output_pass, (j_decompress_ptr cinfo));
|
||||
JMETHOD(int, decompress_data, (j_decompress_ptr cinfo,
|
||||
JSAMPIMAGE output_buf));
|
||||
/* Pointer to array of coefficient virtual arrays, or NULL if none */
|
||||
jvirt_barray_ptr *coef_arrays;
|
||||
};
|
||||
|
||||
/* Decompression postprocessing (color quantization buffer control) */
|
||||
@@ -190,6 +208,25 @@ struct jpeg_marker_reader {
|
||||
unsigned int discarded_bytes; /* # of bytes skipped looking for a marker */
|
||||
};
|
||||
|
||||
/* Entropy decoding */
|
||||
struct jpeg_entropy_decoder {
|
||||
JMETHOD(void, start_pass, (j_decompress_ptr cinfo));
|
||||
JMETHOD(boolean, decode_mcu, (j_decompress_ptr cinfo,
|
||||
JBLOCKROW *MCU_data));
|
||||
};
|
||||
|
||||
/* Inverse DCT (also performs dequantization) */
|
||||
typedef JMETHOD(void, inverse_DCT_method_ptr,
|
||||
(j_decompress_ptr cinfo, jpeg_component_info * compptr,
|
||||
JCOEFPTR coef_block,
|
||||
JSAMPARRAY output_buf, JDIMENSION output_col));
|
||||
|
||||
struct jpeg_inverse_dct {
|
||||
JMETHOD(void, start_pass, (j_decompress_ptr cinfo));
|
||||
/* It is useful to allow each component to have a separate IDCT method. */
|
||||
inverse_DCT_method_ptr inverse_DCT[MAX_COMPONENTS];
|
||||
};
|
||||
|
||||
/* Upsampling (note that upsampler must also call color converter) */
|
||||
struct jpeg_upsampler {
|
||||
JMETHOD(void, start_pass, (j_decompress_ptr cinfo));
|
||||
@@ -256,8 +293,6 @@ struct jpeg_color_quantizer {
|
||||
/* Short forms of external names for systems with brain-damaged linkers. */
|
||||
|
||||
#ifdef NEED_SHORT_EXTERNAL_NAMES
|
||||
#define jinit_c_codec jICCodec
|
||||
#define jinit_lossy_c_codec jILossyC
|
||||
#define jinit_compress_master jICompress
|
||||
#define jinit_c_master_control jICMaster
|
||||
#define jinit_c_main_controller jICMainC
|
||||
@@ -266,24 +301,17 @@ struct jpeg_color_quantizer {
|
||||
#define jinit_color_converter jICColor
|
||||
#define jinit_downsampler jIDownsampler
|
||||
#define jinit_forward_dct jIFDCT
|
||||
#define jinit_shuff_encoder jISHEncoder
|
||||
#define jinit_phuff_encoder jIPHEncoder
|
||||
#define jinit_huff_encoder jIHEncoder
|
||||
#define jinit_arith_encoder jIAEncoder
|
||||
#define jinit_marker_writer jIMWriter
|
||||
#define jinit_d_codec jIDCodec
|
||||
#define jinit_lossy_d_codec jILossyD
|
||||
#define jinit_lossless_d_codec jILosslsD
|
||||
#define jinit_master_decompress jIDMaster
|
||||
#define jinit_d_main_controller jIDMainC
|
||||
#define jinit_d_coef_controller jIDCoefC
|
||||
#define jinit_d_diff_controller jIDDiffC
|
||||
#define jinit_d_post_controller jIDPostC
|
||||
#define jinit_input_controller jIInCtlr
|
||||
#define jinit_marker_reader jIMReader
|
||||
#define jinit_shuff_decoder jISHDecoder
|
||||
#define jinit_phuff_decoder jIPHDecoder
|
||||
#define jinit_lhuff_decoder jILHDecoder
|
||||
#define jinit_undifferencer jIUndiff
|
||||
#define jinit_d_scaler jIDScaler
|
||||
#define jinit_huff_decoder jIHDecoder
|
||||
#define jinit_arith_decoder jIADecoder
|
||||
#define jinit_inverse_dct jIIDCT
|
||||
#define jinit_upsampler jIUpsampler
|
||||
#define jinit_color_deconverter jIDColor
|
||||
@@ -298,6 +326,13 @@ struct jpeg_color_quantizer {
|
||||
#define jzero_far jZeroFar
|
||||
#define jpeg_zigzag_order jZIGTable
|
||||
#define jpeg_natural_order jZAGTable
|
||||
#define jpeg_natural_order7 jZAGTable7
|
||||
#define jpeg_natural_order6 jZAGTable6
|
||||
#define jpeg_natural_order5 jZAGTable5
|
||||
#define jpeg_natural_order4 jZAGTable4
|
||||
#define jpeg_natural_order3 jZAGTable3
|
||||
#define jpeg_natural_order2 jZAGTable2
|
||||
#define jpeg_aritab jAriTab
|
||||
#endif /* NEED_SHORT_EXTERNAL_NAMES */
|
||||
|
||||
|
||||
@@ -309,19 +344,27 @@ EXTERN(void) jinit_c_main_controller JPP((j_compress_ptr cinfo,
|
||||
boolean need_full_buffer));
|
||||
EXTERN(void) jinit_c_prep_controller JPP((j_compress_ptr cinfo,
|
||||
boolean need_full_buffer));
|
||||
EXTERN(void) jinit_compressor JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jinit_c_coef_controller JPP((j_compress_ptr cinfo,
|
||||
boolean need_full_buffer));
|
||||
EXTERN(void) jinit_color_converter JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jinit_downsampler JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jinit_forward_dct JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jinit_huff_encoder JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jinit_arith_encoder JPP((j_compress_ptr cinfo));
|
||||
EXTERN(void) jinit_marker_writer JPP((j_compress_ptr cinfo));
|
||||
/* Decompression module initialization routines */
|
||||
EXTERN(void) jinit_master_decompress JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_d_main_controller JPP((j_decompress_ptr cinfo,
|
||||
boolean need_full_buffer));
|
||||
EXTERN(void) jinit_decompressor JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_d_coef_controller JPP((j_decompress_ptr cinfo,
|
||||
boolean need_full_buffer));
|
||||
EXTERN(void) jinit_d_post_controller JPP((j_decompress_ptr cinfo,
|
||||
boolean need_full_buffer));
|
||||
EXTERN(void) jinit_input_controller JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_marker_reader JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_huff_decoder JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_arith_decoder JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_inverse_dct JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_upsampler JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_color_deconverter JPP((j_decompress_ptr cinfo));
|
||||
EXTERN(void) jinit_1pass_quantizer JPP((j_decompress_ptr cinfo));
|
||||
@@ -344,6 +387,15 @@ EXTERN(void) jzero_far JPP((void FAR * target, size_t bytestozero));
|
||||
extern const int jpeg_zigzag_order[]; /* natural coef order to zigzag order */
|
||||
#endif
|
||||
extern const int jpeg_natural_order[]; /* zigzag coef order to natural order */
|
||||
extern const int jpeg_natural_order7[]; /* zz to natural order for 7x7 block */
|
||||
extern const int jpeg_natural_order6[]; /* zz to natural order for 6x6 block */
|
||||
extern const int jpeg_natural_order5[]; /* zz to natural order for 5x5 block */
|
||||
extern const int jpeg_natural_order4[]; /* zz to natural order for 4x4 block */
|
||||
extern const int jpeg_natural_order3[]; /* zz to natural order for 3x3 block */
|
||||
extern const int jpeg_natural_order2[]; /* zz to natural order for 2x2 block */
|
||||
|
||||
/* Arithmetic coding probability estimation tables in jaricom.c */
|
||||
extern const INT32 jpeg_aritab[];
|
||||
|
||||
/* Suppress undefined-structure complaints if necessary. */
|
||||
|
||||
|
||||
+84
-30
@@ -1,14 +1,14 @@
|
||||
/*
|
||||
* jpegtran.c
|
||||
*
|
||||
* Copyright (C) 1995-1997, Thomas G. Lane.
|
||||
* Copyright (C) 1995-2009, Thomas G. Lane, Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains a command-line user interface for JPEG transcoding.
|
||||
* It is very similar to cjpeg.c, but provides lossless transcoding between
|
||||
* different JPEG file formats. It also provides some lossless and sort-of-
|
||||
* lossless transformations of JPEG data.
|
||||
* It is very similar to cjpeg.c, and partly to djpeg.c, but provides
|
||||
* lossless transcoding between different JPEG file formats. It also
|
||||
* provides some lossless and sort-of-lossless transformations of JPEG data.
|
||||
*/
|
||||
|
||||
#include "cdjpeg.h" /* Common decls for cjpeg/djpeg applications */
|
||||
@@ -37,6 +37,7 @@
|
||||
|
||||
static const char * progname; /* program name for error messages */
|
||||
static char * outfilename; /* for -outfile switch */
|
||||
static char * scaleoption; /* -scale switch */
|
||||
static JCOPY_OPTION copyoption; /* -copy switch */
|
||||
static jpeg_transform_info transformoption; /* image transformation options */
|
||||
|
||||
@@ -64,9 +65,12 @@ usage (void)
|
||||
#endif
|
||||
#if TRANSFORMS_SUPPORTED
|
||||
fprintf(stderr, "Switches for modifying the image:\n");
|
||||
fprintf(stderr, " -crop WxH+X+Y Crop to a rectangular subarea\n");
|
||||
fprintf(stderr, " -grayscale Reduce to grayscale (omit color data)\n");
|
||||
fprintf(stderr, " -flip [horizontal|vertical] Mirror image (left-right or top-bottom)\n");
|
||||
fprintf(stderr, " -perfect Fail if there is non-transformable edge blocks\n");
|
||||
fprintf(stderr, " -rotate [90|180|270] Rotate image (degrees clockwise)\n");
|
||||
fprintf(stderr, " -scale M/N Scale output image by fraction M/N, eg, 1/8\n");
|
||||
fprintf(stderr, " -transpose Transpose image\n");
|
||||
fprintf(stderr, " -transverse Transverse transpose image\n");
|
||||
fprintf(stderr, " -trim Drop non-transformable edge blocks\n");
|
||||
@@ -130,10 +134,13 @@ parse_switches (j_compress_ptr cinfo, int argc, char **argv,
|
||||
/* Set up default JPEG parameters. */
|
||||
simple_progressive = FALSE;
|
||||
outfilename = NULL;
|
||||
scaleoption = NULL;
|
||||
copyoption = JCOPYOPT_DEFAULT;
|
||||
transformoption.transform = JXFORM_NONE;
|
||||
transformoption.perfect = FALSE;
|
||||
transformoption.trim = FALSE;
|
||||
transformoption.force_grayscale = FALSE;
|
||||
transformoption.crop = FALSE;
|
||||
cinfo->err->trace_level = 0;
|
||||
|
||||
/* Scan command line options, adjust parameters */
|
||||
@@ -160,7 +167,7 @@ parse_switches (j_compress_ptr cinfo, int argc, char **argv,
|
||||
exit(EXIT_FAILURE);
|
||||
#endif
|
||||
|
||||
} else if (keymatch(arg, "copy", 1)) {
|
||||
} else if (keymatch(arg, "copy", 2)) {
|
||||
/* Select which extra markers to copy. */
|
||||
if (++argn >= argc) /* advance to next argument */
|
||||
usage();
|
||||
@@ -173,6 +180,20 @@ parse_switches (j_compress_ptr cinfo, int argc, char **argv,
|
||||
} else
|
||||
usage();
|
||||
|
||||
} else if (keymatch(arg, "crop", 2)) {
|
||||
/* Perform lossless cropping. */
|
||||
#if TRANSFORMS_SUPPORTED
|
||||
if (++argn >= argc) /* advance to next argument */
|
||||
usage();
|
||||
if (! jtransform_parse_crop_spec(&transformoption, argv[argn])) {
|
||||
fprintf(stderr, "%s: bogus -crop argument '%s'\n",
|
||||
progname, argv[argn]);
|
||||
exit(EXIT_FAILURE);
|
||||
}
|
||||
#else
|
||||
select_transform(JXFORM_NONE); /* force an error */
|
||||
#endif
|
||||
|
||||
} else if (keymatch(arg, "debug", 1) || keymatch(arg, "verbose", 1)) {
|
||||
/* Enable debug printouts. */
|
||||
/* On first -d, print version identification */
|
||||
@@ -233,7 +254,12 @@ parse_switches (j_compress_ptr cinfo, int argc, char **argv,
|
||||
usage();
|
||||
outfilename = argv[argn]; /* save it away for later use */
|
||||
|
||||
} else if (keymatch(arg, "progressive", 1)) {
|
||||
} else if (keymatch(arg, "perfect", 2)) {
|
||||
/* Fail if there is any partial edge MCUs that the transform can't
|
||||
* handle. */
|
||||
transformoption.perfect = TRUE;
|
||||
|
||||
} else if (keymatch(arg, "progressive", 2)) {
|
||||
/* Select simple progressive mode. */
|
||||
#ifdef C_PROGRESSIVE_SUPPORTED
|
||||
simple_progressive = TRUE;
|
||||
@@ -276,6 +302,13 @@ parse_switches (j_compress_ptr cinfo, int argc, char **argv,
|
||||
else
|
||||
usage();
|
||||
|
||||
} else if (keymatch(arg, "scale", 4)) {
|
||||
/* Scale the output image by a fraction M/N. */
|
||||
if (++argn >= argc) /* advance to next argument */
|
||||
usage();
|
||||
scaleoption = argv[argn];
|
||||
/* We must postpone processing until decompression startup. */
|
||||
|
||||
} else if (keymatch(arg, "scans", 1)) {
|
||||
/* Set scan script. */
|
||||
#ifdef C_MULTISCAN_FILES_SUPPORTED
|
||||
@@ -342,8 +375,10 @@ main (int argc, char **argv)
|
||||
jvirt_barray_ptr * src_coef_arrays;
|
||||
jvirt_barray_ptr * dst_coef_arrays;
|
||||
int file_index;
|
||||
FILE * input_file;
|
||||
FILE * output_file;
|
||||
/* We assume all-in-memory processing and can therefore use only a
|
||||
* single file pointer for sequential input and output operation.
|
||||
*/
|
||||
FILE * fp;
|
||||
|
||||
/* On Mac, fetch a command line. */
|
||||
#ifdef USE_CCOMMAND
|
||||
@@ -406,24 +441,13 @@ main (int argc, char **argv)
|
||||
|
||||
/* Open the input file. */
|
||||
if (file_index < argc) {
|
||||
if ((input_file = fopen(argv[file_index], READ_BINARY)) == NULL) {
|
||||
fprintf(stderr, "%s: can't open %s\n", progname, argv[file_index]);
|
||||
if ((fp = fopen(argv[file_index], READ_BINARY)) == NULL) {
|
||||
fprintf(stderr, "%s: can't open %s for reading\n", progname, argv[file_index]);
|
||||
exit(EXIT_FAILURE);
|
||||
}
|
||||
} else {
|
||||
/* default input file is stdin */
|
||||
input_file = read_stdin();
|
||||
}
|
||||
|
||||
/* Open the output file. */
|
||||
if (outfilename != NULL) {
|
||||
if ((output_file = fopen(outfilename, WRITE_BINARY)) == NULL) {
|
||||
fprintf(stderr, "%s: can't open %s\n", progname, outfilename);
|
||||
exit(EXIT_FAILURE);
|
||||
}
|
||||
} else {
|
||||
/* default output file is stdout */
|
||||
output_file = write_stdout();
|
||||
fp = read_stdin();
|
||||
}
|
||||
|
||||
#ifdef PROGRESS_REPORT
|
||||
@@ -431,7 +455,7 @@ main (int argc, char **argv)
|
||||
#endif
|
||||
|
||||
/* Specify data source for decompression */
|
||||
jpeg_stdio_src(&srcinfo, input_file);
|
||||
jpeg_stdio_src(&srcinfo, fp);
|
||||
|
||||
/* Enable saving of extra markers that we want to copy */
|
||||
jcopy_markers_setup(&srcinfo, copyoption);
|
||||
@@ -439,11 +463,22 @@ main (int argc, char **argv)
|
||||
/* Read file header */
|
||||
(void) jpeg_read_header(&srcinfo, TRUE);
|
||||
|
||||
/* Adjust default decompression parameters */
|
||||
if (scaleoption != NULL)
|
||||
if (sscanf(scaleoption, "%d/%d",
|
||||
&srcinfo.scale_num, &srcinfo.scale_denom) < 1)
|
||||
usage();
|
||||
|
||||
/* Any space needed by a transform option must be requested before
|
||||
* jpeg_read_coefficients so that memory allocation will be done right.
|
||||
*/
|
||||
#if TRANSFORMS_SUPPORTED
|
||||
jtransform_request_workspace(&srcinfo, &transformoption);
|
||||
/* Fail right away if -perfect is given and transformation is not perfect.
|
||||
*/
|
||||
if (!jtransform_request_workspace(&srcinfo, &transformoption)) {
|
||||
fprintf(stderr, "%s: transformation is not perfect\n", progname);
|
||||
exit(EXIT_FAILURE);
|
||||
}
|
||||
#endif
|
||||
|
||||
/* Read source file as DCT coefficients */
|
||||
@@ -463,11 +498,32 @@ main (int argc, char **argv)
|
||||
dst_coef_arrays = src_coef_arrays;
|
||||
#endif
|
||||
|
||||
/* Close input file, if we opened it.
|
||||
* Note: we assume that jpeg_read_coefficients consumed all input
|
||||
* until JPEG_REACHED_EOI, and that jpeg_finish_decompress will
|
||||
* only consume more while (! cinfo->inputctl->eoi_reached).
|
||||
* We cannot call jpeg_finish_decompress here since we still need the
|
||||
* virtual arrays allocated from the source object for processing.
|
||||
*/
|
||||
if (fp != stdin)
|
||||
fclose(fp);
|
||||
|
||||
/* Open the output file. */
|
||||
if (outfilename != NULL) {
|
||||
if ((fp = fopen(outfilename, WRITE_BINARY)) == NULL) {
|
||||
fprintf(stderr, "%s: can't open %s for writing\n", progname, outfilename);
|
||||
exit(EXIT_FAILURE);
|
||||
}
|
||||
} else {
|
||||
/* default output file is stdout */
|
||||
fp = write_stdout();
|
||||
}
|
||||
|
||||
/* Adjust default compression parameters by re-parsing the options */
|
||||
file_index = parse_switches(&dstinfo, argc, argv, 0, TRUE);
|
||||
|
||||
/* Specify data destination for compression */
|
||||
jpeg_stdio_dest(&dstinfo, output_file);
|
||||
jpeg_stdio_dest(&dstinfo, fp);
|
||||
|
||||
/* Start compressor (note no image data is actually written here) */
|
||||
jpeg_write_coefficients(&dstinfo, dst_coef_arrays);
|
||||
@@ -488,11 +544,9 @@ main (int argc, char **argv)
|
||||
(void) jpeg_finish_decompress(&srcinfo);
|
||||
jpeg_destroy_decompress(&srcinfo);
|
||||
|
||||
/* Close files, if we opened them */
|
||||
if (input_file != stdin)
|
||||
fclose(input_file);
|
||||
if (output_file != stdout)
|
||||
fclose(output_file);
|
||||
/* Close output file, if we opened it */
|
||||
if (fp != stdout)
|
||||
fclose(fp);
|
||||
|
||||
#ifdef PROGRESS_REPORT
|
||||
end_progress_monitor((j_common_ptr) &dstinfo);
|
||||
|
||||
@@ -129,9 +129,9 @@
|
||||
/* These will do the right thing for either R,G,B or B,G,R color order,
|
||||
* but you may not like the results for other color orders.
|
||||
*/
|
||||
#define HIST_C0_BITS 6 /* bits of precision in R/B histogram */
|
||||
#define HIST_C0_BITS 5 /* bits of precision in R/B histogram */
|
||||
#define HIST_C1_BITS 6 /* bits of precision in G histogram */
|
||||
#define HIST_C2_BITS 6 /* bits of precision in B/R histogram */
|
||||
#define HIST_C2_BITS 5 /* bits of precision in B/R histogram */
|
||||
|
||||
/* Number of elements along histogram axes. */
|
||||
#define HIST_C0_ELEMS (1<<HIST_C0_BITS)
|
||||
|
||||
@@ -2,6 +2,7 @@
|
||||
* jutils.c
|
||||
*
|
||||
* Copyright (C) 1991-1996, Thomas G. Lane.
|
||||
* Modified 2009 by Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -63,6 +64,57 @@ const int jpeg_natural_order[DCTSIZE2+16] = {
|
||||
63, 63, 63, 63, 63, 63, 63, 63
|
||||
};
|
||||
|
||||
const int jpeg_natural_order7[7*7+16] = {
|
||||
0, 1, 8, 16, 9, 2, 3, 10,
|
||||
17, 24, 32, 25, 18, 11, 4, 5,
|
||||
12, 19, 26, 33, 40, 48, 41, 34,
|
||||
27, 20, 13, 6, 14, 21, 28, 35,
|
||||
42, 49, 50, 43, 36, 29, 22, 30,
|
||||
37, 44, 51, 52, 45, 38, 46, 53,
|
||||
54,
|
||||
63, 63, 63, 63, 63, 63, 63, 63, /* extra entries for safety in decoder */
|
||||
63, 63, 63, 63, 63, 63, 63, 63
|
||||
};
|
||||
|
||||
const int jpeg_natural_order6[6*6+16] = {
|
||||
0, 1, 8, 16, 9, 2, 3, 10,
|
||||
17, 24, 32, 25, 18, 11, 4, 5,
|
||||
12, 19, 26, 33, 40, 41, 34, 27,
|
||||
20, 13, 21, 28, 35, 42, 43, 36,
|
||||
29, 37, 44, 45,
|
||||
63, 63, 63, 63, 63, 63, 63, 63, /* extra entries for safety in decoder */
|
||||
63, 63, 63, 63, 63, 63, 63, 63
|
||||
};
|
||||
|
||||
const int jpeg_natural_order5[5*5+16] = {
|
||||
0, 1, 8, 16, 9, 2, 3, 10,
|
||||
17, 24, 32, 25, 18, 11, 4, 12,
|
||||
19, 26, 33, 34, 27, 20, 28, 35,
|
||||
36,
|
||||
63, 63, 63, 63, 63, 63, 63, 63, /* extra entries for safety in decoder */
|
||||
63, 63, 63, 63, 63, 63, 63, 63
|
||||
};
|
||||
|
||||
const int jpeg_natural_order4[4*4+16] = {
|
||||
0, 1, 8, 16, 9, 2, 3, 10,
|
||||
17, 24, 25, 18, 11, 19, 26, 27,
|
||||
63, 63, 63, 63, 63, 63, 63, 63, /* extra entries for safety in decoder */
|
||||
63, 63, 63, 63, 63, 63, 63, 63
|
||||
};
|
||||
|
||||
const int jpeg_natural_order3[3*3+16] = {
|
||||
0, 1, 8, 16, 9, 2, 10, 17,
|
||||
18,
|
||||
63, 63, 63, 63, 63, 63, 63, 63, /* extra entries for safety in decoder */
|
||||
63, 63, 63, 63, 63, 63, 63, 63
|
||||
};
|
||||
|
||||
const int jpeg_natural_order2[2*2+16] = {
|
||||
0, 1, 8, 9,
|
||||
63, 63, 63, 63, 63, 63, 63, 63, /* extra entries for safety in decoder */
|
||||
63, 63, 63, 63, 63, 63, 63, 63
|
||||
};
|
||||
|
||||
|
||||
/*
|
||||
* Arithmetic utilities
|
||||
|
||||
@@ -1,7 +1,7 @@
|
||||
/*
|
||||
* jversion.h
|
||||
*
|
||||
* Copyright (C) 1991-1998, Thomas G. Lane.
|
||||
* Copyright (C) 1991-2010, Thomas G. Lane, Guido Vollbeding.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
@@ -9,6 +9,6 @@
|
||||
*/
|
||||
|
||||
|
||||
#define JVERSION "6b 27-Mar-1998"
|
||||
#define JVERSION "8 10-Jan-2010"
|
||||
|
||||
#define JCOPYRIGHT "Copyright (C) 1998, Thomas G. Lane"
|
||||
#define JCOPYRIGHT "Copyright (C) 2010, Thomas G. Lane, Guido Vollbeding"
|
||||
|
||||
@@ -1,332 +0,0 @@
|
||||
/*
|
||||
* rdswitch.c
|
||||
*
|
||||
* Copyright (C) 1991-1996, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains routines to process some of cjpeg's more complicated
|
||||
* command-line switches. Switches processed here are:
|
||||
* -qtables file Read quantization tables from text file
|
||||
* -scans file Read scan script from text file
|
||||
* -qslots N[,N,...] Set component quantization table selectors
|
||||
* -sample HxV[,HxV,...] Set component sampling factors
|
||||
*/
|
||||
|
||||
#include "cdjpeg.h" /* Common decls for cjpeg/djpeg applications */
|
||||
#include <ctype.h> /* to declare isdigit(), isspace() */
|
||||
|
||||
|
||||
LOCAL(int)
|
||||
text_getc (FILE * file)
|
||||
/* Read next char, skipping over any comments (# to end of line) */
|
||||
/* A comment/newline sequence is returned as a newline */
|
||||
{
|
||||
register int ch;
|
||||
|
||||
ch = getc(file);
|
||||
if (ch == '#') {
|
||||
do {
|
||||
ch = getc(file);
|
||||
} while (ch != '\n' && ch != EOF);
|
||||
}
|
||||
return ch;
|
||||
}
|
||||
|
||||
|
||||
LOCAL(boolean)
|
||||
read_text_integer (FILE * file, long * result, int * termchar)
|
||||
/* Read an unsigned decimal integer from a file, store it in result */
|
||||
/* Reads one trailing character after the integer; returns it in termchar */
|
||||
{
|
||||
register int ch;
|
||||
register long val;
|
||||
|
||||
/* Skip any leading whitespace, detect EOF */
|
||||
do {
|
||||
ch = text_getc(file);
|
||||
if (ch == EOF) {
|
||||
*termchar = ch;
|
||||
return FALSE;
|
||||
}
|
||||
} while (isspace(ch));
|
||||
|
||||
if (! isdigit(ch)) {
|
||||
*termchar = ch;
|
||||
return FALSE;
|
||||
}
|
||||
|
||||
val = ch - '0';
|
||||
while ((ch = text_getc(file)) != EOF) {
|
||||
if (! isdigit(ch))
|
||||
break;
|
||||
val *= 10;
|
||||
val += ch - '0';
|
||||
}
|
||||
*result = val;
|
||||
*termchar = ch;
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
GLOBAL(boolean)
|
||||
read_quant_tables (j_compress_ptr cinfo, char * filename,
|
||||
int scale_factor, boolean force_baseline)
|
||||
/* Read a set of quantization tables from the specified file.
|
||||
* The file is plain ASCII text: decimal numbers with whitespace between.
|
||||
* Comments preceded by '#' may be included in the file.
|
||||
* There may be one to NUM_QUANT_TBLS tables in the file, each of 64 values.
|
||||
* The tables are implicitly numbered 0,1,etc.
|
||||
* NOTE: does not affect the qslots mapping, which will default to selecting
|
||||
* table 0 for luminance (or primary) components, 1 for chrominance components.
|
||||
* You must use -qslots if you want a different component->table mapping.
|
||||
*/
|
||||
{
|
||||
FILE * fp;
|
||||
int tblno, i, termchar;
|
||||
long val;
|
||||
unsigned int table[DCTSIZE2];
|
||||
|
||||
if ((fp = fopen(filename, "r")) == NULL) {
|
||||
fprintf(stderr, "Can't open table file %s\n", filename);
|
||||
return FALSE;
|
||||
}
|
||||
tblno = 0;
|
||||
|
||||
while (read_text_integer(fp, &val, &termchar)) { /* read 1st element of table */
|
||||
if (tblno >= NUM_QUANT_TBLS) {
|
||||
fprintf(stderr, "Too many tables in file %s\n", filename);
|
||||
fclose(fp);
|
||||
return FALSE;
|
||||
}
|
||||
table[0] = (unsigned int) val;
|
||||
for (i = 1; i < DCTSIZE2; i++) {
|
||||
if (! read_text_integer(fp, &val, &termchar)) {
|
||||
fprintf(stderr, "Invalid table data in file %s\n", filename);
|
||||
fclose(fp);
|
||||
return FALSE;
|
||||
}
|
||||
table[i] = (unsigned int) val;
|
||||
}
|
||||
jpeg_add_quant_table(cinfo, tblno, table, scale_factor, force_baseline);
|
||||
tblno++;
|
||||
}
|
||||
|
||||
if (termchar != EOF) {
|
||||
fprintf(stderr, "Non-numeric data in file %s\n", filename);
|
||||
fclose(fp);
|
||||
return FALSE;
|
||||
}
|
||||
|
||||
fclose(fp);
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
#ifdef C_MULTISCAN_FILES_SUPPORTED
|
||||
|
||||
LOCAL(boolean)
|
||||
read_scan_integer (FILE * file, long * result, int * termchar)
|
||||
/* Variant of read_text_integer that always looks for a non-space termchar;
|
||||
* this simplifies parsing of punctuation in scan scripts.
|
||||
*/
|
||||
{
|
||||
register int ch;
|
||||
|
||||
if (! read_text_integer(file, result, termchar))
|
||||
return FALSE;
|
||||
ch = *termchar;
|
||||
while (ch != EOF && isspace(ch))
|
||||
ch = text_getc(file);
|
||||
if (isdigit(ch)) { /* oops, put it back */
|
||||
if (ungetc(ch, file) == EOF)
|
||||
return FALSE;
|
||||
ch = ' ';
|
||||
} else {
|
||||
/* Any separators other than ';' and ':' are ignored;
|
||||
* this allows user to insert commas, etc, if desired.
|
||||
*/
|
||||
if (ch != EOF && ch != ';' && ch != ':')
|
||||
ch = ' ';
|
||||
}
|
||||
*termchar = ch;
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
GLOBAL(boolean)
|
||||
read_scan_script (j_compress_ptr cinfo, char * filename)
|
||||
/* Read a scan script from the specified text file.
|
||||
* Each entry in the file defines one scan to be emitted.
|
||||
* Entries are separated by semicolons ';'.
|
||||
* An entry contains one to four component indexes,
|
||||
* optionally followed by a colon ':' and four progressive-JPEG parameters.
|
||||
* The component indexes denote which component(s) are to be transmitted
|
||||
* in the current scan. The first component has index 0.
|
||||
* Sequential JPEG is used if the progressive-JPEG parameters are omitted.
|
||||
* The file is free format text: any whitespace may appear between numbers
|
||||
* and the ':' and ';' punctuation marks. Also, other punctuation (such
|
||||
* as commas or dashes) can be placed between numbers if desired.
|
||||
* Comments preceded by '#' may be included in the file.
|
||||
* Note: we do very little validity checking here;
|
||||
* jcmaster.c will validate the script parameters.
|
||||
*/
|
||||
{
|
||||
FILE * fp;
|
||||
int scanno, ncomps, termchar;
|
||||
long val;
|
||||
jpeg_scan_info * scanptr;
|
||||
#define MAX_SCANS 100 /* quite arbitrary limit */
|
||||
jpeg_scan_info scans[MAX_SCANS];
|
||||
|
||||
if ((fp = fopen(filename, "r")) == NULL) {
|
||||
fprintf(stderr, "Can't open scan definition file %s\n", filename);
|
||||
return FALSE;
|
||||
}
|
||||
scanptr = scans;
|
||||
scanno = 0;
|
||||
|
||||
while (read_scan_integer(fp, &val, &termchar)) {
|
||||
if (scanno >= MAX_SCANS) {
|
||||
fprintf(stderr, "Too many scans defined in file %s\n", filename);
|
||||
fclose(fp);
|
||||
return FALSE;
|
||||
}
|
||||
scanptr->component_index[0] = (int) val;
|
||||
ncomps = 1;
|
||||
while (termchar == ' ') {
|
||||
if (ncomps >= MAX_COMPS_IN_SCAN) {
|
||||
fprintf(stderr, "Too many components in one scan in file %s\n",
|
||||
filename);
|
||||
fclose(fp);
|
||||
return FALSE;
|
||||
}
|
||||
if (! read_scan_integer(fp, &val, &termchar))
|
||||
goto bogus;
|
||||
scanptr->component_index[ncomps] = (int) val;
|
||||
ncomps++;
|
||||
}
|
||||
scanptr->comps_in_scan = ncomps;
|
||||
if (termchar == ':') {
|
||||
if (! read_scan_integer(fp, &val, &termchar) || termchar != ' ')
|
||||
goto bogus;
|
||||
scanptr->Ss = (int) val;
|
||||
if (! read_scan_integer(fp, &val, &termchar) || termchar != ' ')
|
||||
goto bogus;
|
||||
scanptr->Se = (int) val;
|
||||
if (! read_scan_integer(fp, &val, &termchar) || termchar != ' ')
|
||||
goto bogus;
|
||||
scanptr->Ah = (int) val;
|
||||
if (! read_scan_integer(fp, &val, &termchar))
|
||||
goto bogus;
|
||||
scanptr->Al = (int) val;
|
||||
} else {
|
||||
/* set non-progressive parameters */
|
||||
scanptr->Ss = 0;
|
||||
scanptr->Se = DCTSIZE2-1;
|
||||
scanptr->Ah = 0;
|
||||
scanptr->Al = 0;
|
||||
}
|
||||
if (termchar != ';' && termchar != EOF) {
|
||||
bogus:
|
||||
fprintf(stderr, "Invalid scan entry format in file %s\n", filename);
|
||||
fclose(fp);
|
||||
return FALSE;
|
||||
}
|
||||
scanptr++, scanno++;
|
||||
}
|
||||
|
||||
if (termchar != EOF) {
|
||||
fprintf(stderr, "Non-numeric data in file %s\n", filename);
|
||||
fclose(fp);
|
||||
return FALSE;
|
||||
}
|
||||
|
||||
if (scanno > 0) {
|
||||
/* Stash completed scan list in cinfo structure.
|
||||
* NOTE: for cjpeg's use, JPOOL_IMAGE is the right lifetime for this data,
|
||||
* but if you want to compress multiple images you'd want JPOOL_PERMANENT.
|
||||
*/
|
||||
scanptr = (jpeg_scan_info *)
|
||||
(*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
|
||||
scanno * SIZEOF(jpeg_scan_info));
|
||||
MEMCOPY(scanptr, scans, scanno * SIZEOF(jpeg_scan_info));
|
||||
cinfo->scan_info = scanptr;
|
||||
cinfo->num_scans = scanno;
|
||||
}
|
||||
|
||||
fclose(fp);
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
#endif /* C_MULTISCAN_FILES_SUPPORTED */
|
||||
|
||||
|
||||
GLOBAL(boolean)
|
||||
set_quant_slots (j_compress_ptr cinfo, char *arg)
|
||||
/* Process a quantization-table-selectors parameter string, of the form
|
||||
* N[,N,...]
|
||||
* If there are more components than parameters, the last value is replicated.
|
||||
*/
|
||||
{
|
||||
int val = 0; /* default table # */
|
||||
int ci;
|
||||
char ch;
|
||||
|
||||
for (ci = 0; ci < MAX_COMPONENTS; ci++) {
|
||||
if (*arg) {
|
||||
ch = ','; /* if not set by sscanf, will be ',' */
|
||||
if (sscanf(arg, "%d%c", &val, &ch) < 1)
|
||||
return FALSE;
|
||||
if (ch != ',') /* syntax check */
|
||||
return FALSE;
|
||||
if (val < 0 || val >= NUM_QUANT_TBLS) {
|
||||
fprintf(stderr, "JPEG quantization tables are numbered 0..%d\n",
|
||||
NUM_QUANT_TBLS-1);
|
||||
return FALSE;
|
||||
}
|
||||
cinfo->comp_info[ci].quant_tbl_no = val;
|
||||
while (*arg && *arg++ != ',') /* advance to next segment of arg string */
|
||||
;
|
||||
} else {
|
||||
/* reached end of parameter, set remaining components to last table */
|
||||
cinfo->comp_info[ci].quant_tbl_no = val;
|
||||
}
|
||||
}
|
||||
return TRUE;
|
||||
}
|
||||
|
||||
|
||||
GLOBAL(boolean)
|
||||
set_sample_factors (j_compress_ptr cinfo, char *arg)
|
||||
/* Process a sample-factors parameter string, of the form
|
||||
* HxV[,HxV,...]
|
||||
* If there are more components than parameters, "1x1" is assumed for the rest.
|
||||
*/
|
||||
{
|
||||
int ci, val1, val2;
|
||||
char ch1, ch2;
|
||||
|
||||
for (ci = 0; ci < MAX_COMPONENTS; ci++) {
|
||||
if (*arg) {
|
||||
ch2 = ','; /* if not set by sscanf, will be ',' */
|
||||
if (sscanf(arg, "%d%c%d%c", &val1, &ch1, &val2, &ch2) < 3)
|
||||
return FALSE;
|
||||
if ((ch1 != 'x' && ch1 != 'X') || ch2 != ',') /* syntax check */
|
||||
return FALSE;
|
||||
if (val1 <= 0 || val1 > 4 || val2 <= 0 || val2 > 4) {
|
||||
fprintf(stderr, "JPEG sampling factors must be 1..4\n");
|
||||
return FALSE;
|
||||
}
|
||||
cinfo->comp_info[ci].h_samp_factor = val1;
|
||||
cinfo->comp_info[ci].v_samp_factor = val2;
|
||||
while (*arg && *arg++ != ',') /* advance to next segment of arg string */
|
||||
;
|
||||
} else {
|
||||
/* reached end of parameter, set remaining components to 1x1 sampling */
|
||||
cinfo->comp_info[ci].h_samp_factor = 1;
|
||||
cinfo->comp_info[ci].v_samp_factor = 1;
|
||||
}
|
||||
}
|
||||
return TRUE;
|
||||
}
|
||||
@@ -1,928 +0,0 @@
|
||||
/*
|
||||
* transupp.c
|
||||
*
|
||||
* Copyright (C) 1997, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains image transformation routines and other utility code
|
||||
* used by the jpegtran sample application. These are NOT part of the core
|
||||
* JPEG library. But we keep these routines separate from jpegtran.c to
|
||||
* ease the task of maintaining jpegtran-like programs that have other user
|
||||
* interfaces.
|
||||
*/
|
||||
|
||||
/* Although this file really shouldn't have access to the library internals,
|
||||
* it's helpful to let it call jround_up() and jcopy_block_row().
|
||||
*/
|
||||
#define JPEG_INTERNALS
|
||||
|
||||
#include "jinclude.h"
|
||||
#include "jpeglib.h"
|
||||
#include "transupp.h" /* My own external interface */
|
||||
|
||||
|
||||
#if TRANSFORMS_SUPPORTED
|
||||
|
||||
/*
|
||||
* Lossless image transformation routines. These routines work on DCT
|
||||
* coefficient arrays and thus do not require any lossy decompression
|
||||
* or recompression of the image.
|
||||
* Thanks to Guido Vollbeding for the initial design and code of this feature.
|
||||
*
|
||||
* Horizontal flipping is done in-place, using a single top-to-bottom
|
||||
* pass through the virtual source array. It will thus be much the
|
||||
* fastest option for images larger than main memory.
|
||||
*
|
||||
* The other routines require a set of destination virtual arrays, so they
|
||||
* need twice as much memory as jpegtran normally does. The destination
|
||||
* arrays are always written in normal scan order (top to bottom) because
|
||||
* the virtual array manager expects this. The source arrays will be scanned
|
||||
* in the corresponding order, which means multiple passes through the source
|
||||
* arrays for most of the transforms. That could result in much thrashing
|
||||
* if the image is larger than main memory.
|
||||
*
|
||||
* Some notes about the operating environment of the individual transform
|
||||
* routines:
|
||||
* 1. Both the source and destination virtual arrays are allocated from the
|
||||
* source JPEG object, and therefore should be manipulated by calling the
|
||||
* source's memory manager.
|
||||
* 2. The destination's component count should be used. It may be smaller
|
||||
* than the source's when forcing to grayscale.
|
||||
* 3. Likewise the destination's sampling factors should be used. When
|
||||
* forcing to grayscale the destination's sampling factors will be all 1,
|
||||
* and we may as well take that as the effective iMCU size.
|
||||
* 4. When "trim" is in effect, the destination's dimensions will be the
|
||||
* trimmed values but the source's will be untrimmed.
|
||||
* 5. All the routines assume that the source and destination buffers are
|
||||
* padded out to a full iMCU boundary. This is true, although for the
|
||||
* source buffer it is an undocumented property of jdcoefct.c.
|
||||
* Notes 2,3,4 boil down to this: generally we should use the destination's
|
||||
* dimensions and ignore the source's.
|
||||
*/
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
do_flip_h (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
|
||||
jvirt_barray_ptr *src_coef_arrays)
|
||||
/* Horizontal flip; done in-place, so no separate dest array is required */
|
||||
{
|
||||
JDIMENSION MCU_cols, comp_width, blk_x, blk_y;
|
||||
int ci, k, offset_y;
|
||||
JBLOCKARRAY buffer;
|
||||
JCOEFPTR ptr1, ptr2;
|
||||
JCOEF temp1, temp2;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* Horizontal mirroring of DCT blocks is accomplished by swapping
|
||||
* pairs of blocks in-place. Within a DCT block, we perform horizontal
|
||||
* mirroring by changing the signs of odd-numbered columns.
|
||||
* Partial iMCUs at the right edge are left untouched.
|
||||
*/
|
||||
MCU_cols = dstinfo->image_width / (dstinfo->max_h_samp_factor * DCTSIZE);
|
||||
|
||||
for (ci = 0; ci < dstinfo->num_components; ci++) {
|
||||
compptr = dstinfo->comp_info + ci;
|
||||
comp_width = MCU_cols * compptr->h_samp_factor;
|
||||
for (blk_y = 0; blk_y < compptr->height_in_data_units;
|
||||
blk_y += compptr->v_samp_factor) {
|
||||
buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, src_coef_arrays[ci], blk_y,
|
||||
(JDIMENSION) compptr->v_samp_factor, TRUE);
|
||||
for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
|
||||
for (blk_x = 0; blk_x * 2 < comp_width; blk_x++) {
|
||||
ptr1 = buffer[offset_y][blk_x];
|
||||
ptr2 = buffer[offset_y][comp_width - blk_x - 1];
|
||||
/* this unrolled loop doesn't need to know which row it's on... */
|
||||
for (k = 0; k < DCTSIZE2; k += 2) {
|
||||
temp1 = *ptr1; /* swap even column */
|
||||
temp2 = *ptr2;
|
||||
*ptr1++ = temp2;
|
||||
*ptr2++ = temp1;
|
||||
temp1 = *ptr1; /* swap odd column with sign change */
|
||||
temp2 = *ptr2;
|
||||
*ptr1++ = -temp2;
|
||||
*ptr2++ = -temp1;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
do_flip_v (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
|
||||
jvirt_barray_ptr *src_coef_arrays,
|
||||
jvirt_barray_ptr *dst_coef_arrays)
|
||||
/* Vertical flip */
|
||||
{
|
||||
JDIMENSION MCU_rows, comp_height, dst_blk_x, dst_blk_y;
|
||||
int ci, i, j, offset_y;
|
||||
JBLOCKARRAY src_buffer, dst_buffer;
|
||||
JBLOCKROW src_row_ptr, dst_row_ptr;
|
||||
JCOEFPTR src_ptr, dst_ptr;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* We output into a separate array because we can't touch different
|
||||
* rows of the source virtual array simultaneously. Otherwise, this
|
||||
* is a pretty straightforward analog of horizontal flip.
|
||||
* Within a DCT block, vertical mirroring is done by changing the signs
|
||||
* of odd-numbered rows.
|
||||
* Partial iMCUs at the bottom edge are copied verbatim.
|
||||
*/
|
||||
MCU_rows = dstinfo->image_height / (dstinfo->max_v_samp_factor * DCTSIZE);
|
||||
|
||||
for (ci = 0; ci < dstinfo->num_components; ci++) {
|
||||
compptr = dstinfo->comp_info + ci;
|
||||
comp_height = MCU_rows * compptr->v_samp_factor;
|
||||
for (dst_blk_y = 0; dst_blk_y < compptr->height_in_data_units;
|
||||
dst_blk_y += compptr->v_samp_factor) {
|
||||
dst_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
|
||||
(JDIMENSION) compptr->v_samp_factor, TRUE);
|
||||
if (dst_blk_y < comp_height) {
|
||||
/* Row is within the mirrorable area. */
|
||||
src_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, src_coef_arrays[ci],
|
||||
comp_height - dst_blk_y - (JDIMENSION) compptr->v_samp_factor,
|
||||
(JDIMENSION) compptr->v_samp_factor, FALSE);
|
||||
} else {
|
||||
/* Bottom-edge blocks will be copied verbatim. */
|
||||
src_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, src_coef_arrays[ci], dst_blk_y,
|
||||
(JDIMENSION) compptr->v_samp_factor, FALSE);
|
||||
}
|
||||
for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
|
||||
if (dst_blk_y < comp_height) {
|
||||
/* Row is within the mirrorable area. */
|
||||
dst_row_ptr = dst_buffer[offset_y];
|
||||
src_row_ptr = src_buffer[compptr->v_samp_factor - offset_y - 1];
|
||||
for (dst_blk_x = 0; dst_blk_x < compptr->width_in_data_units;
|
||||
dst_blk_x++) {
|
||||
dst_ptr = dst_row_ptr[dst_blk_x];
|
||||
src_ptr = src_row_ptr[dst_blk_x];
|
||||
for (i = 0; i < DCTSIZE; i += 2) {
|
||||
/* copy even row */
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
*dst_ptr++ = *src_ptr++;
|
||||
/* copy odd row with sign change */
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
*dst_ptr++ = - *src_ptr++;
|
||||
}
|
||||
}
|
||||
} else {
|
||||
/* Just copy row verbatim. */
|
||||
jcopy_block_row(src_buffer[offset_y], dst_buffer[offset_y],
|
||||
compptr->width_in_data_units);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
do_transpose (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
|
||||
jvirt_barray_ptr *src_coef_arrays,
|
||||
jvirt_barray_ptr *dst_coef_arrays)
|
||||
/* Transpose source into destination */
|
||||
{
|
||||
JDIMENSION dst_blk_x, dst_blk_y;
|
||||
int ci, i, j, offset_x, offset_y;
|
||||
JBLOCKARRAY src_buffer, dst_buffer;
|
||||
JCOEFPTR src_ptr, dst_ptr;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* Transposing pixels within a block just requires transposing the
|
||||
* DCT coefficients.
|
||||
* Partial iMCUs at the edges require no special treatment; we simply
|
||||
* process all the available DCT blocks for every component.
|
||||
*/
|
||||
for (ci = 0; ci < dstinfo->num_components; ci++) {
|
||||
compptr = dstinfo->comp_info + ci;
|
||||
for (dst_blk_y = 0; dst_blk_y < compptr->height_in_data_units;
|
||||
dst_blk_y += compptr->v_samp_factor) {
|
||||
dst_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
|
||||
(JDIMENSION) compptr->v_samp_factor, TRUE);
|
||||
for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
|
||||
for (dst_blk_x = 0; dst_blk_x < compptr->width_in_data_units;
|
||||
dst_blk_x += compptr->h_samp_factor) {
|
||||
src_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, src_coef_arrays[ci], dst_blk_x,
|
||||
(JDIMENSION) compptr->h_samp_factor, FALSE);
|
||||
for (offset_x = 0; offset_x < compptr->h_samp_factor; offset_x++) {
|
||||
src_ptr = src_buffer[offset_x][dst_blk_y + offset_y];
|
||||
dst_ptr = dst_buffer[offset_y][dst_blk_x + offset_x];
|
||||
for (i = 0; i < DCTSIZE; i++)
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
do_rot_90 (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
|
||||
jvirt_barray_ptr *src_coef_arrays,
|
||||
jvirt_barray_ptr *dst_coef_arrays)
|
||||
/* 90 degree rotation is equivalent to
|
||||
* 1. Transposing the image;
|
||||
* 2. Horizontal mirroring.
|
||||
* These two steps are merged into a single processing routine.
|
||||
*/
|
||||
{
|
||||
JDIMENSION MCU_cols, comp_width, dst_blk_x, dst_blk_y;
|
||||
int ci, i, j, offset_x, offset_y;
|
||||
JBLOCKARRAY src_buffer, dst_buffer;
|
||||
JCOEFPTR src_ptr, dst_ptr;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* Because of the horizontal mirror step, we can't process partial iMCUs
|
||||
* at the (output) right edge properly. They just get transposed and
|
||||
* not mirrored.
|
||||
*/
|
||||
MCU_cols = dstinfo->image_width / (dstinfo->max_h_samp_factor * DCTSIZE);
|
||||
|
||||
for (ci = 0; ci < dstinfo->num_components; ci++) {
|
||||
compptr = dstinfo->comp_info + ci;
|
||||
comp_width = MCU_cols * compptr->h_samp_factor;
|
||||
for (dst_blk_y = 0; dst_blk_y < compptr->height_in_data_units;
|
||||
dst_blk_y += compptr->v_samp_factor) {
|
||||
dst_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
|
||||
(JDIMENSION) compptr->v_samp_factor, TRUE);
|
||||
for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
|
||||
for (dst_blk_x = 0; dst_blk_x < compptr->width_in_data_units;
|
||||
dst_blk_x += compptr->h_samp_factor) {
|
||||
src_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, src_coef_arrays[ci], dst_blk_x,
|
||||
(JDIMENSION) compptr->h_samp_factor, FALSE);
|
||||
for (offset_x = 0; offset_x < compptr->h_samp_factor; offset_x++) {
|
||||
src_ptr = src_buffer[offset_x][dst_blk_y + offset_y];
|
||||
if (dst_blk_x < comp_width) {
|
||||
/* Block is within the mirrorable area. */
|
||||
dst_ptr = dst_buffer[offset_y]
|
||||
[comp_width - dst_blk_x - offset_x - 1];
|
||||
for (i = 0; i < DCTSIZE; i++) {
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
|
||||
i++;
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
|
||||
}
|
||||
} else {
|
||||
/* Edge blocks are transposed but not mirrored. */
|
||||
dst_ptr = dst_buffer[offset_y][dst_blk_x + offset_x];
|
||||
for (i = 0; i < DCTSIZE; i++)
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
do_rot_270 (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
|
||||
jvirt_barray_ptr *src_coef_arrays,
|
||||
jvirt_barray_ptr *dst_coef_arrays)
|
||||
/* 270 degree rotation is equivalent to
|
||||
* 1. Horizontal mirroring;
|
||||
* 2. Transposing the image.
|
||||
* These two steps are merged into a single processing routine.
|
||||
*/
|
||||
{
|
||||
JDIMENSION MCU_rows, comp_height, dst_blk_x, dst_blk_y;
|
||||
int ci, i, j, offset_x, offset_y;
|
||||
JBLOCKARRAY src_buffer, dst_buffer;
|
||||
JCOEFPTR src_ptr, dst_ptr;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
/* Because of the horizontal mirror step, we can't process partial iMCUs
|
||||
* at the (output) bottom edge properly. They just get transposed and
|
||||
* not mirrored.
|
||||
*/
|
||||
MCU_rows = dstinfo->image_height / (dstinfo->max_v_samp_factor * DCTSIZE);
|
||||
|
||||
for (ci = 0; ci < dstinfo->num_components; ci++) {
|
||||
compptr = dstinfo->comp_info + ci;
|
||||
comp_height = MCU_rows * compptr->v_samp_factor;
|
||||
for (dst_blk_y = 0; dst_blk_y < compptr->height_in_data_units;
|
||||
dst_blk_y += compptr->v_samp_factor) {
|
||||
dst_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
|
||||
(JDIMENSION) compptr->v_samp_factor, TRUE);
|
||||
for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
|
||||
for (dst_blk_x = 0; dst_blk_x < compptr->width_in_data_units;
|
||||
dst_blk_x += compptr->h_samp_factor) {
|
||||
src_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, src_coef_arrays[ci], dst_blk_x,
|
||||
(JDIMENSION) compptr->h_samp_factor, FALSE);
|
||||
for (offset_x = 0; offset_x < compptr->h_samp_factor; offset_x++) {
|
||||
dst_ptr = dst_buffer[offset_y][dst_blk_x + offset_x];
|
||||
if (dst_blk_y < comp_height) {
|
||||
/* Block is within the mirrorable area. */
|
||||
src_ptr = src_buffer[offset_x]
|
||||
[comp_height - dst_blk_y - offset_y - 1];
|
||||
for (i = 0; i < DCTSIZE; i++) {
|
||||
for (j = 0; j < DCTSIZE; j++) {
|
||||
dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
|
||||
j++;
|
||||
dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
|
||||
}
|
||||
}
|
||||
} else {
|
||||
/* Edge blocks are transposed but not mirrored. */
|
||||
src_ptr = src_buffer[offset_x][dst_blk_y + offset_y];
|
||||
for (i = 0; i < DCTSIZE; i++)
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
do_rot_180 (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
|
||||
jvirt_barray_ptr *src_coef_arrays,
|
||||
jvirt_barray_ptr *dst_coef_arrays)
|
||||
/* 180 degree rotation is equivalent to
|
||||
* 1. Vertical mirroring;
|
||||
* 2. Horizontal mirroring.
|
||||
* These two steps are merged into a single processing routine.
|
||||
*/
|
||||
{
|
||||
JDIMENSION MCU_cols, MCU_rows, comp_width, comp_height, dst_blk_x, dst_blk_y;
|
||||
int ci, i, j, offset_y;
|
||||
JBLOCKARRAY src_buffer, dst_buffer;
|
||||
JBLOCKROW src_row_ptr, dst_row_ptr;
|
||||
JCOEFPTR src_ptr, dst_ptr;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
MCU_cols = dstinfo->image_width / (dstinfo->max_h_samp_factor * DCTSIZE);
|
||||
MCU_rows = dstinfo->image_height / (dstinfo->max_v_samp_factor * DCTSIZE);
|
||||
|
||||
for (ci = 0; ci < dstinfo->num_components; ci++) {
|
||||
compptr = dstinfo->comp_info + ci;
|
||||
comp_width = MCU_cols * compptr->h_samp_factor;
|
||||
comp_height = MCU_rows * compptr->v_samp_factor;
|
||||
for (dst_blk_y = 0; dst_blk_y < compptr->height_in_data_units;
|
||||
dst_blk_y += compptr->v_samp_factor) {
|
||||
dst_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
|
||||
(JDIMENSION) compptr->v_samp_factor, TRUE);
|
||||
if (dst_blk_y < comp_height) {
|
||||
/* Row is within the vertically mirrorable area. */
|
||||
src_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, src_coef_arrays[ci],
|
||||
comp_height - dst_blk_y - (JDIMENSION) compptr->v_samp_factor,
|
||||
(JDIMENSION) compptr->v_samp_factor, FALSE);
|
||||
} else {
|
||||
/* Bottom-edge rows are only mirrored horizontally. */
|
||||
src_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, src_coef_arrays[ci], dst_blk_y,
|
||||
(JDIMENSION) compptr->v_samp_factor, FALSE);
|
||||
}
|
||||
for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
|
||||
if (dst_blk_y < comp_height) {
|
||||
/* Row is within the mirrorable area. */
|
||||
dst_row_ptr = dst_buffer[offset_y];
|
||||
src_row_ptr = src_buffer[compptr->v_samp_factor - offset_y - 1];
|
||||
/* Process the blocks that can be mirrored both ways. */
|
||||
for (dst_blk_x = 0; dst_blk_x < comp_width; dst_blk_x++) {
|
||||
dst_ptr = dst_row_ptr[dst_blk_x];
|
||||
src_ptr = src_row_ptr[comp_width - dst_blk_x - 1];
|
||||
for (i = 0; i < DCTSIZE; i += 2) {
|
||||
/* For even row, negate every odd column. */
|
||||
for (j = 0; j < DCTSIZE; j += 2) {
|
||||
*dst_ptr++ = *src_ptr++;
|
||||
*dst_ptr++ = - *src_ptr++;
|
||||
}
|
||||
/* For odd row, negate every even column. */
|
||||
for (j = 0; j < DCTSIZE; j += 2) {
|
||||
*dst_ptr++ = - *src_ptr++;
|
||||
*dst_ptr++ = *src_ptr++;
|
||||
}
|
||||
}
|
||||
}
|
||||
/* Any remaining right-edge blocks are only mirrored vertically. */
|
||||
for (; dst_blk_x < compptr->width_in_data_units; dst_blk_x++) {
|
||||
dst_ptr = dst_row_ptr[dst_blk_x];
|
||||
src_ptr = src_row_ptr[dst_blk_x];
|
||||
for (i = 0; i < DCTSIZE; i += 2) {
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
*dst_ptr++ = *src_ptr++;
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
*dst_ptr++ = - *src_ptr++;
|
||||
}
|
||||
}
|
||||
} else {
|
||||
/* Remaining rows are just mirrored horizontally. */
|
||||
dst_row_ptr = dst_buffer[offset_y];
|
||||
src_row_ptr = src_buffer[offset_y];
|
||||
/* Process the blocks that can be mirrored. */
|
||||
for (dst_blk_x = 0; dst_blk_x < comp_width; dst_blk_x++) {
|
||||
dst_ptr = dst_row_ptr[dst_blk_x];
|
||||
src_ptr = src_row_ptr[comp_width - dst_blk_x - 1];
|
||||
for (i = 0; i < DCTSIZE2; i += 2) {
|
||||
*dst_ptr++ = *src_ptr++;
|
||||
*dst_ptr++ = - *src_ptr++;
|
||||
}
|
||||
}
|
||||
/* Any remaining right-edge blocks are only copied. */
|
||||
for (; dst_blk_x < compptr->width_in_data_units; dst_blk_x++) {
|
||||
dst_ptr = dst_row_ptr[dst_blk_x];
|
||||
src_ptr = src_row_ptr[dst_blk_x];
|
||||
for (i = 0; i < DCTSIZE2; i++)
|
||||
*dst_ptr++ = *src_ptr++;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
LOCAL(void)
|
||||
do_transverse (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
|
||||
jvirt_barray_ptr *src_coef_arrays,
|
||||
jvirt_barray_ptr *dst_coef_arrays)
|
||||
/* Transverse transpose is equivalent to
|
||||
* 1. 180 degree rotation;
|
||||
* 2. Transposition;
|
||||
* or
|
||||
* 1. Horizontal mirroring;
|
||||
* 2. Transposition;
|
||||
* 3. Horizontal mirroring.
|
||||
* These steps are merged into a single processing routine.
|
||||
*/
|
||||
{
|
||||
JDIMENSION MCU_cols, MCU_rows, comp_width, comp_height, dst_blk_x, dst_blk_y;
|
||||
int ci, i, j, offset_x, offset_y;
|
||||
JBLOCKARRAY src_buffer, dst_buffer;
|
||||
JCOEFPTR src_ptr, dst_ptr;
|
||||
jpeg_component_info *compptr;
|
||||
|
||||
MCU_cols = dstinfo->image_width / (dstinfo->max_h_samp_factor * DCTSIZE);
|
||||
MCU_rows = dstinfo->image_height / (dstinfo->max_v_samp_factor * DCTSIZE);
|
||||
|
||||
for (ci = 0; ci < dstinfo->num_components; ci++) {
|
||||
compptr = dstinfo->comp_info + ci;
|
||||
comp_width = MCU_cols * compptr->h_samp_factor;
|
||||
comp_height = MCU_rows * compptr->v_samp_factor;
|
||||
for (dst_blk_y = 0; dst_blk_y < compptr->height_in_data_units;
|
||||
dst_blk_y += compptr->v_samp_factor) {
|
||||
dst_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
|
||||
(JDIMENSION) compptr->v_samp_factor, TRUE);
|
||||
for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
|
||||
for (dst_blk_x = 0; dst_blk_x < compptr->width_in_data_units;
|
||||
dst_blk_x += compptr->h_samp_factor) {
|
||||
src_buffer = (*srcinfo->mem->access_virt_barray)
|
||||
((j_common_ptr) srcinfo, src_coef_arrays[ci], dst_blk_x,
|
||||
(JDIMENSION) compptr->h_samp_factor, FALSE);
|
||||
for (offset_x = 0; offset_x < compptr->h_samp_factor; offset_x++) {
|
||||
if (dst_blk_y < comp_height) {
|
||||
src_ptr = src_buffer[offset_x]
|
||||
[comp_height - dst_blk_y - offset_y - 1];
|
||||
if (dst_blk_x < comp_width) {
|
||||
/* Block is within the mirrorable area. */
|
||||
dst_ptr = dst_buffer[offset_y]
|
||||
[comp_width - dst_blk_x - offset_x - 1];
|
||||
for (i = 0; i < DCTSIZE; i++) {
|
||||
for (j = 0; j < DCTSIZE; j++) {
|
||||
dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
|
||||
j++;
|
||||
dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
|
||||
}
|
||||
i++;
|
||||
for (j = 0; j < DCTSIZE; j++) {
|
||||
dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
|
||||
j++;
|
||||
dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
|
||||
}
|
||||
}
|
||||
} else {
|
||||
/* Right-edge blocks are mirrored in y only */
|
||||
dst_ptr = dst_buffer[offset_y][dst_blk_x + offset_x];
|
||||
for (i = 0; i < DCTSIZE; i++) {
|
||||
for (j = 0; j < DCTSIZE; j++) {
|
||||
dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
|
||||
j++;
|
||||
dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
|
||||
}
|
||||
}
|
||||
}
|
||||
} else {
|
||||
src_ptr = src_buffer[offset_x][dst_blk_y + offset_y];
|
||||
if (dst_blk_x < comp_width) {
|
||||
/* Bottom-edge blocks are mirrored in x only */
|
||||
dst_ptr = dst_buffer[offset_y]
|
||||
[comp_width - dst_blk_x - offset_x - 1];
|
||||
for (i = 0; i < DCTSIZE; i++) {
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
|
||||
i++;
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
|
||||
}
|
||||
} else {
|
||||
/* At lower right corner, just transpose, no mirroring */
|
||||
dst_ptr = dst_buffer[offset_y][dst_blk_x + offset_x];
|
||||
for (i = 0; i < DCTSIZE; i++)
|
||||
for (j = 0; j < DCTSIZE; j++)
|
||||
dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/* Request any required workspace.
|
||||
*
|
||||
* We allocate the workspace virtual arrays from the source decompression
|
||||
* object, so that all the arrays (both the original data and the workspace)
|
||||
* will be taken into account while making memory management decisions.
|
||||
* Hence, this routine must be called after jpeg_read_header (which reads
|
||||
* the image dimensions) and before jpeg_read_coefficients (which realizes
|
||||
* the source's virtual arrays).
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jtransform_request_workspace (j_decompress_ptr srcinfo,
|
||||
jpeg_transform_info *info)
|
||||
{
|
||||
jvirt_barray_ptr *coef_arrays = NULL;
|
||||
jpeg_component_info *compptr;
|
||||
int ci;
|
||||
|
||||
if (info->force_grayscale &&
|
||||
srcinfo->jpeg_color_space == JCS_YCbCr &&
|
||||
srcinfo->num_components == 3) {
|
||||
/* We'll only process the first component */
|
||||
info->num_components = 1;
|
||||
} else {
|
||||
/* Process all the components */
|
||||
info->num_components = srcinfo->num_components;
|
||||
}
|
||||
|
||||
switch (info->transform) {
|
||||
case JXFORM_NONE:
|
||||
case JXFORM_FLIP_H:
|
||||
/* Don't need a workspace array */
|
||||
break;
|
||||
case JXFORM_FLIP_V:
|
||||
case JXFORM_ROT_180:
|
||||
/* Need workspace arrays having same dimensions as source image.
|
||||
* Note that we allocate arrays padded out to the next iMCU boundary,
|
||||
* so that transform routines need not worry about missing edge blocks.
|
||||
*/
|
||||
coef_arrays = (jvirt_barray_ptr *)
|
||||
(*srcinfo->mem->alloc_small) ((j_common_ptr) srcinfo, JPOOL_IMAGE,
|
||||
SIZEOF(jvirt_barray_ptr) * info->num_components);
|
||||
for (ci = 0; ci < info->num_components; ci++) {
|
||||
compptr = srcinfo->comp_info + ci;
|
||||
coef_arrays[ci] = (*srcinfo->mem->request_virt_barray)
|
||||
((j_common_ptr) srcinfo, JPOOL_IMAGE, FALSE,
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_data_units,
|
||||
(long) compptr->h_samp_factor),
|
||||
(JDIMENSION) jround_up((long) compptr->height_in_data_units,
|
||||
(long) compptr->v_samp_factor),
|
||||
(JDIMENSION) compptr->v_samp_factor);
|
||||
}
|
||||
break;
|
||||
case JXFORM_TRANSPOSE:
|
||||
case JXFORM_TRANSVERSE:
|
||||
case JXFORM_ROT_90:
|
||||
case JXFORM_ROT_270:
|
||||
/* Need workspace arrays having transposed dimensions.
|
||||
* Note that we allocate arrays padded out to the next iMCU boundary,
|
||||
* so that transform routines need not worry about missing edge blocks.
|
||||
*/
|
||||
coef_arrays = (jvirt_barray_ptr *)
|
||||
(*srcinfo->mem->alloc_small) ((j_common_ptr) srcinfo, JPOOL_IMAGE,
|
||||
SIZEOF(jvirt_barray_ptr) * info->num_components);
|
||||
for (ci = 0; ci < info->num_components; ci++) {
|
||||
compptr = srcinfo->comp_info + ci;
|
||||
coef_arrays[ci] = (*srcinfo->mem->request_virt_barray)
|
||||
((j_common_ptr) srcinfo, JPOOL_IMAGE, FALSE,
|
||||
(JDIMENSION) jround_up((long) compptr->height_in_data_units,
|
||||
(long) compptr->v_samp_factor),
|
||||
(JDIMENSION) jround_up((long) compptr->width_in_data_units,
|
||||
(long) compptr->h_samp_factor),
|
||||
(JDIMENSION) compptr->h_samp_factor);
|
||||
}
|
||||
break;
|
||||
}
|
||||
info->workspace_coef_arrays = coef_arrays;
|
||||
}
|
||||
|
||||
|
||||
/* Transpose destination image parameters */
|
||||
|
||||
LOCAL(void)
|
||||
transpose_critical_parameters (j_compress_ptr dstinfo)
|
||||
{
|
||||
int tblno, i, j, ci, itemp;
|
||||
jpeg_component_info *compptr;
|
||||
JQUANT_TBL *qtblptr;
|
||||
JDIMENSION dtemp;
|
||||
UINT16 qtemp;
|
||||
|
||||
/* Transpose basic image dimensions */
|
||||
dtemp = dstinfo->image_width;
|
||||
dstinfo->image_width = dstinfo->image_height;
|
||||
dstinfo->image_height = dtemp;
|
||||
|
||||
/* Transpose sampling factors */
|
||||
for (ci = 0; ci < dstinfo->num_components; ci++) {
|
||||
compptr = dstinfo->comp_info + ci;
|
||||
itemp = compptr->h_samp_factor;
|
||||
compptr->h_samp_factor = compptr->v_samp_factor;
|
||||
compptr->v_samp_factor = itemp;
|
||||
}
|
||||
|
||||
/* Transpose quantization tables */
|
||||
for (tblno = 0; tblno < NUM_QUANT_TBLS; tblno++) {
|
||||
qtblptr = dstinfo->quant_tbl_ptrs[tblno];
|
||||
if (qtblptr != NULL) {
|
||||
for (i = 0; i < DCTSIZE; i++) {
|
||||
for (j = 0; j < i; j++) {
|
||||
qtemp = qtblptr->quantval[i*DCTSIZE+j];
|
||||
qtblptr->quantval[i*DCTSIZE+j] = qtblptr->quantval[j*DCTSIZE+i];
|
||||
qtblptr->quantval[j*DCTSIZE+i] = qtemp;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/* Trim off any partial iMCUs on the indicated destination edge */
|
||||
|
||||
LOCAL(void)
|
||||
trim_right_edge (j_compress_ptr dstinfo)
|
||||
{
|
||||
int ci, max_h_samp_factor;
|
||||
JDIMENSION MCU_cols;
|
||||
|
||||
/* We have to compute max_h_samp_factor ourselves,
|
||||
* because it hasn't been set yet in the destination
|
||||
* (and we don't want to use the source's value).
|
||||
*/
|
||||
max_h_samp_factor = 1;
|
||||
for (ci = 0; ci < dstinfo->num_components; ci++) {
|
||||
int h_samp_factor = dstinfo->comp_info[ci].h_samp_factor;
|
||||
max_h_samp_factor = MAX(max_h_samp_factor, h_samp_factor);
|
||||
}
|
||||
MCU_cols = dstinfo->image_width / (max_h_samp_factor * DCTSIZE);
|
||||
if (MCU_cols > 0) /* can't trim to 0 pixels */
|
||||
dstinfo->image_width = MCU_cols * (max_h_samp_factor * DCTSIZE);
|
||||
}
|
||||
|
||||
LOCAL(void)
|
||||
trim_bottom_edge (j_compress_ptr dstinfo)
|
||||
{
|
||||
int ci, max_v_samp_factor;
|
||||
JDIMENSION MCU_rows;
|
||||
|
||||
/* We have to compute max_v_samp_factor ourselves,
|
||||
* because it hasn't been set yet in the destination
|
||||
* (and we don't want to use the source's value).
|
||||
*/
|
||||
max_v_samp_factor = 1;
|
||||
for (ci = 0; ci < dstinfo->num_components; ci++) {
|
||||
int v_samp_factor = dstinfo->comp_info[ci].v_samp_factor;
|
||||
max_v_samp_factor = MAX(max_v_samp_factor, v_samp_factor);
|
||||
}
|
||||
MCU_rows = dstinfo->image_height / (max_v_samp_factor * DCTSIZE);
|
||||
if (MCU_rows > 0) /* can't trim to 0 pixels */
|
||||
dstinfo->image_height = MCU_rows * (max_v_samp_factor * DCTSIZE);
|
||||
}
|
||||
|
||||
|
||||
/* Adjust output image parameters as needed.
|
||||
*
|
||||
* This must be called after jpeg_copy_critical_parameters()
|
||||
* and before jpeg_write_coefficients().
|
||||
*
|
||||
* The return value is the set of virtual coefficient arrays to be written
|
||||
* (either the ones allocated by jtransform_request_workspace, or the
|
||||
* original source data arrays). The caller will need to pass this value
|
||||
* to jpeg_write_coefficients().
|
||||
*/
|
||||
|
||||
GLOBAL(jvirt_barray_ptr *)
|
||||
jtransform_adjust_parameters (j_decompress_ptr srcinfo,
|
||||
j_compress_ptr dstinfo,
|
||||
jvirt_barray_ptr *src_coef_arrays,
|
||||
jpeg_transform_info *info)
|
||||
{
|
||||
/* If force-to-grayscale is requested, adjust destination parameters */
|
||||
if (info->force_grayscale) {
|
||||
/* We use jpeg_set_colorspace to make sure subsidiary settings get fixed
|
||||
* properly. Among other things, the target h_samp_factor & v_samp_factor
|
||||
* will get set to 1, which typically won't match the source.
|
||||
* In fact we do this even if the source is already grayscale; that
|
||||
* provides an easy way of coercing a grayscale JPEG with funny sampling
|
||||
* factors to the customary 1,1. (Some decoders fail on other factors.)
|
||||
*/
|
||||
if ((dstinfo->jpeg_color_space == JCS_YCbCr &&
|
||||
dstinfo->num_components == 3) ||
|
||||
(dstinfo->jpeg_color_space == JCS_GRAYSCALE &&
|
||||
dstinfo->num_components == 1)) {
|
||||
/* We have to preserve the source's quantization table number. */
|
||||
int sv_quant_tbl_no = dstinfo->comp_info[0].quant_tbl_no;
|
||||
jpeg_set_colorspace(dstinfo, JCS_GRAYSCALE);
|
||||
dstinfo->comp_info[0].quant_tbl_no = sv_quant_tbl_no;
|
||||
} else {
|
||||
/* Sorry, can't do it */
|
||||
ERREXIT(dstinfo, JERR_CONVERSION_NOTIMPL);
|
||||
}
|
||||
}
|
||||
|
||||
/* Correct the destination's image dimensions etc if necessary */
|
||||
switch (info->transform) {
|
||||
case JXFORM_NONE:
|
||||
/* Nothing to do */
|
||||
break;
|
||||
case JXFORM_FLIP_H:
|
||||
if (info->trim)
|
||||
trim_right_edge(dstinfo);
|
||||
break;
|
||||
case JXFORM_FLIP_V:
|
||||
if (info->trim)
|
||||
trim_bottom_edge(dstinfo);
|
||||
break;
|
||||
case JXFORM_TRANSPOSE:
|
||||
transpose_critical_parameters(dstinfo);
|
||||
/* transpose does NOT have to trim anything */
|
||||
break;
|
||||
case JXFORM_TRANSVERSE:
|
||||
transpose_critical_parameters(dstinfo);
|
||||
if (info->trim) {
|
||||
trim_right_edge(dstinfo);
|
||||
trim_bottom_edge(dstinfo);
|
||||
}
|
||||
break;
|
||||
case JXFORM_ROT_90:
|
||||
transpose_critical_parameters(dstinfo);
|
||||
if (info->trim)
|
||||
trim_right_edge(dstinfo);
|
||||
break;
|
||||
case JXFORM_ROT_180:
|
||||
if (info->trim) {
|
||||
trim_right_edge(dstinfo);
|
||||
trim_bottom_edge(dstinfo);
|
||||
}
|
||||
break;
|
||||
case JXFORM_ROT_270:
|
||||
transpose_critical_parameters(dstinfo);
|
||||
if (info->trim)
|
||||
trim_bottom_edge(dstinfo);
|
||||
break;
|
||||
}
|
||||
|
||||
/* Return the appropriate output data set */
|
||||
if (info->workspace_coef_arrays != NULL)
|
||||
return info->workspace_coef_arrays;
|
||||
return src_coef_arrays;
|
||||
}
|
||||
|
||||
|
||||
/* Execute the actual transformation, if any.
|
||||
*
|
||||
* This must be called *after* jpeg_write_coefficients, because it depends
|
||||
* on jpeg_write_coefficients to have computed subsidiary values such as
|
||||
* the per-component width and height fields in the destination object.
|
||||
*
|
||||
* Note that some transformations will modify the source data arrays!
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jtransform_execute_transformation (j_decompress_ptr srcinfo,
|
||||
j_compress_ptr dstinfo,
|
||||
jvirt_barray_ptr *src_coef_arrays,
|
||||
jpeg_transform_info *info)
|
||||
{
|
||||
jvirt_barray_ptr *dst_coef_arrays = info->workspace_coef_arrays;
|
||||
|
||||
switch (info->transform) {
|
||||
case JXFORM_NONE:
|
||||
break;
|
||||
case JXFORM_FLIP_H:
|
||||
do_flip_h(srcinfo, dstinfo, src_coef_arrays);
|
||||
break;
|
||||
case JXFORM_FLIP_V:
|
||||
do_flip_v(srcinfo, dstinfo, src_coef_arrays, dst_coef_arrays);
|
||||
break;
|
||||
case JXFORM_TRANSPOSE:
|
||||
do_transpose(srcinfo, dstinfo, src_coef_arrays, dst_coef_arrays);
|
||||
break;
|
||||
case JXFORM_TRANSVERSE:
|
||||
do_transverse(srcinfo, dstinfo, src_coef_arrays, dst_coef_arrays);
|
||||
break;
|
||||
case JXFORM_ROT_90:
|
||||
do_rot_90(srcinfo, dstinfo, src_coef_arrays, dst_coef_arrays);
|
||||
break;
|
||||
case JXFORM_ROT_180:
|
||||
do_rot_180(srcinfo, dstinfo, src_coef_arrays, dst_coef_arrays);
|
||||
break;
|
||||
case JXFORM_ROT_270:
|
||||
do_rot_270(srcinfo, dstinfo, src_coef_arrays, dst_coef_arrays);
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
#endif /* TRANSFORMS_SUPPORTED */
|
||||
|
||||
|
||||
/* Setup decompression object to save desired markers in memory.
|
||||
* This must be called before jpeg_read_header() to have the desired effect.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jcopy_markers_setup (j_decompress_ptr srcinfo, JCOPY_OPTION option)
|
||||
{
|
||||
#ifdef SAVE_MARKERS_SUPPORTED
|
||||
int m;
|
||||
|
||||
/* Save comments except under NONE option */
|
||||
if (option != JCOPYOPT_NONE) {
|
||||
jpeg_save_markers(srcinfo, JPEG_COM, 0xFFFF);
|
||||
}
|
||||
/* Save all types of APPn markers iff ALL option */
|
||||
if (option == JCOPYOPT_ALL) {
|
||||
for (m = 0; m < 16; m++)
|
||||
jpeg_save_markers(srcinfo, JPEG_APP0 + m, 0xFFFF);
|
||||
}
|
||||
#endif /* SAVE_MARKERS_SUPPORTED */
|
||||
}
|
||||
|
||||
/* Copy markers saved in the given source object to the destination object.
|
||||
* This should be called just after jpeg_start_compress() or
|
||||
* jpeg_write_coefficients().
|
||||
* Note that those routines will have written the SOI, and also the
|
||||
* JFIF APP0 or Adobe APP14 markers if selected.
|
||||
*/
|
||||
|
||||
GLOBAL(void)
|
||||
jcopy_markers_execute (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
|
||||
JCOPY_OPTION option)
|
||||
{
|
||||
jpeg_saved_marker_ptr marker;
|
||||
|
||||
/* In the current implementation, we don't actually need to examine the
|
||||
* option flag here; we just copy everything that got saved.
|
||||
* But to avoid confusion, we do not output JFIF and Adobe APP14 markers
|
||||
* if the encoder library already wrote one.
|
||||
*/
|
||||
for (marker = srcinfo->marker_list; marker != NULL; marker = marker->next) {
|
||||
if (dstinfo->write_JFIF_header &&
|
||||
marker->marker == JPEG_APP0 &&
|
||||
marker->data_length >= 5 &&
|
||||
GETJOCTET(marker->data[0]) == 0x4A &&
|
||||
GETJOCTET(marker->data[1]) == 0x46 &&
|
||||
GETJOCTET(marker->data[2]) == 0x49 &&
|
||||
GETJOCTET(marker->data[3]) == 0x46 &&
|
||||
GETJOCTET(marker->data[4]) == 0)
|
||||
continue; /* reject duplicate JFIF */
|
||||
if (dstinfo->write_Adobe_marker &&
|
||||
marker->marker == JPEG_APP0+14 &&
|
||||
marker->data_length >= 5 &&
|
||||
GETJOCTET(marker->data[0]) == 0x41 &&
|
||||
GETJOCTET(marker->data[1]) == 0x64 &&
|
||||
GETJOCTET(marker->data[2]) == 0x6F &&
|
||||
GETJOCTET(marker->data[3]) == 0x62 &&
|
||||
GETJOCTET(marker->data[4]) == 0x65)
|
||||
continue; /* reject duplicate Adobe */
|
||||
#ifdef NEED_FAR_POINTERS
|
||||
/* We could use jpeg_write_marker if the data weren't FAR... */
|
||||
{
|
||||
unsigned int i;
|
||||
jpeg_write_m_header(dstinfo, marker->marker, marker->data_length);
|
||||
for (i = 0; i < marker->data_length; i++)
|
||||
jpeg_write_m_byte(dstinfo, marker->data[i]);
|
||||
}
|
||||
#else
|
||||
jpeg_write_marker(dstinfo, marker->marker,
|
||||
marker->data, marker->data_length);
|
||||
#endif
|
||||
}
|
||||
}
|
||||
@@ -1,135 +0,0 @@
|
||||
/*
|
||||
* transupp.h
|
||||
*
|
||||
* Copyright (C) 1997, Thomas G. Lane.
|
||||
* This file is part of the Independent JPEG Group's software.
|
||||
* For conditions of distribution and use, see the accompanying README file.
|
||||
*
|
||||
* This file contains declarations for image transformation routines and
|
||||
* other utility code used by the jpegtran sample application. These are
|
||||
* NOT part of the core JPEG library. But we keep these routines separate
|
||||
* from jpegtran.c to ease the task of maintaining jpegtran-like programs
|
||||
* that have other user interfaces.
|
||||
*
|
||||
* NOTE: all the routines declared here have very specific requirements
|
||||
* about when they are to be executed during the reading and writing of the
|
||||
* source and destination files. See the comments in transupp.c, or see
|
||||
* jpegtran.c for an example of correct usage.
|
||||
*/
|
||||
|
||||
/* If you happen not to want the image transform support, disable it here */
|
||||
#ifndef TRANSFORMS_SUPPORTED
|
||||
#define TRANSFORMS_SUPPORTED 1 /* 0 disables transform code */
|
||||
#endif
|
||||
|
||||
/* Short forms of external names for systems with brain-damaged linkers. */
|
||||
|
||||
#ifdef NEED_SHORT_EXTERNAL_NAMES
|
||||
#define jtransform_request_workspace jTrRequest
|
||||
#define jtransform_adjust_parameters jTrAdjust
|
||||
#define jtransform_execute_transformation jTrExec
|
||||
#define jcopy_markers_setup jCMrkSetup
|
||||
#define jcopy_markers_execute jCMrkExec
|
||||
#endif /* NEED_SHORT_EXTERNAL_NAMES */
|
||||
|
||||
|
||||
/*
|
||||
* Codes for supported types of image transformations.
|
||||
*/
|
||||
|
||||
typedef enum {
|
||||
JXFORM_NONE, /* no transformation */
|
||||
JXFORM_FLIP_H, /* horizontal flip */
|
||||
JXFORM_FLIP_V, /* vertical flip */
|
||||
JXFORM_TRANSPOSE, /* transpose across UL-to-LR axis */
|
||||
JXFORM_TRANSVERSE, /* transpose across UR-to-LL axis */
|
||||
JXFORM_ROT_90, /* 90-degree clockwise rotation */
|
||||
JXFORM_ROT_180, /* 180-degree rotation */
|
||||
JXFORM_ROT_270 /* 270-degree clockwise (or 90 ccw) */
|
||||
} JXFORM_CODE;
|
||||
|
||||
/*
|
||||
* Although rotating and flipping data expressed as DCT coefficients is not
|
||||
* hard, there is an asymmetry in the JPEG format specification for images
|
||||
* whose dimensions aren't multiples of the iMCU size. The right and bottom
|
||||
* image edges are padded out to the next iMCU boundary with junk data; but
|
||||
* no padding is possible at the top and left edges. If we were to flip
|
||||
* the whole image including the pad data, then pad garbage would become
|
||||
* visible at the top and/or left, and real pixels would disappear into the
|
||||
* pad margins --- perhaps permanently, since encoders & decoders may not
|
||||
* bother to preserve DCT blocks that appear to be completely outside the
|
||||
* nominal image area. So, we have to exclude any partial iMCUs from the
|
||||
* basic transformation.
|
||||
*
|
||||
* Transpose is the only transformation that can handle partial iMCUs at the
|
||||
* right and bottom edges completely cleanly. flip_h can flip partial iMCUs
|
||||
* at the bottom, but leaves any partial iMCUs at the right edge untouched.
|
||||
* Similarly flip_v leaves any partial iMCUs at the bottom edge untouched.
|
||||
* The other transforms are defined as combinations of these basic transforms
|
||||
* and process edge blocks in a way that preserves the equivalence.
|
||||
*
|
||||
* The "trim" option causes untransformable partial iMCUs to be dropped;
|
||||
* this is not strictly lossless, but it usually gives the best-looking
|
||||
* result for odd-size images. Note that when this option is active,
|
||||
* the expected mathematical equivalences between the transforms may not hold.
|
||||
* (For example, -rot 270 -trim trims only the bottom edge, but -rot 90 -trim
|
||||
* followed by -rot 180 -trim trims both edges.)
|
||||
*
|
||||
* We also offer a "force to grayscale" option, which simply discards the
|
||||
* chrominance channels of a YCbCr image. This is lossless in the sense that
|
||||
* the luminance channel is preserved exactly. It's not the same kind of
|
||||
* thing as the rotate/flip transformations, but it's convenient to handle it
|
||||
* as part of this package, mainly because the transformation routines have to
|
||||
* be aware of the option to know how many components to work on.
|
||||
*/
|
||||
|
||||
typedef struct {
|
||||
/* Options: set by caller */
|
||||
JXFORM_CODE transform; /* image transform operator */
|
||||
boolean trim; /* if TRUE, trim partial MCUs as needed */
|
||||
boolean force_grayscale; /* if TRUE, convert color image to grayscale */
|
||||
|
||||
/* Internal workspace: caller should not touch these */
|
||||
int num_components; /* # of components in workspace */
|
||||
jvirt_barray_ptr * workspace_coef_arrays; /* workspace for transformations */
|
||||
} jpeg_transform_info;
|
||||
|
||||
|
||||
#if TRANSFORMS_SUPPORTED
|
||||
|
||||
/* Request any required workspace */
|
||||
EXTERN(void) jtransform_request_workspace
|
||||
JPP((j_decompress_ptr srcinfo, jpeg_transform_info *info));
|
||||
/* Adjust output image parameters */
|
||||
EXTERN(jvirt_barray_ptr *) jtransform_adjust_parameters
|
||||
JPP((j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
|
||||
jvirt_barray_ptr *src_coef_arrays,
|
||||
jpeg_transform_info *info));
|
||||
/* Execute the actual transformation, if any */
|
||||
EXTERN(void) jtransform_execute_transformation
|
||||
JPP((j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
|
||||
jvirt_barray_ptr *src_coef_arrays,
|
||||
jpeg_transform_info *info));
|
||||
|
||||
#endif /* TRANSFORMS_SUPPORTED */
|
||||
|
||||
|
||||
/*
|
||||
* Support for copying optional markers from source to destination file.
|
||||
*/
|
||||
|
||||
typedef enum {
|
||||
JCOPYOPT_NONE, /* copy no optional markers */
|
||||
JCOPYOPT_COMMENTS, /* copy only comment (COM) markers */
|
||||
JCOPYOPT_ALL /* copy all optional markers */
|
||||
} JCOPY_OPTION;
|
||||
|
||||
#define JCOPYOPT_DEFAULT JCOPYOPT_COMMENTS /* recommended default */
|
||||
|
||||
/* Setup decompression object to save desired markers in memory */
|
||||
EXTERN(void) jcopy_markers_setup
|
||||
JPP((j_decompress_ptr srcinfo, JCOPY_OPTION option));
|
||||
/* Copy markers saved in the given source object to the destination object */
|
||||
EXTERN(void) jcopy_markers_execute
|
||||
JPP((j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
|
||||
JCOPY_OPTION option));
|
||||
Reference in New Issue
Block a user