crtc2 modifications for NV dualhead mode

git-svn-id: file:///srv/svn/repos/haiku/trunk/current@6029 a95241bf-73f2-0310-859d-f6bbb57e9c96
This commit is contained in:
Rudolf Cornelissen
2004-01-12 19:06:43 +00:00
parent 028ec37e0b
commit ff50d0d10a
4 changed files with 539 additions and 202 deletions
+15 -15
View File
@@ -86,7 +86,7 @@ status_t SET_DISPLAY_MODE(display_mode *mode_to_set)
/* find current DPMS state, then turn off screen(s) */
nv_crtc_dpms_fetch(&display, &h, &v);
nv_crtc_dpms(false, false, false);
// if (si->ps.secondary_head) g400_crtc2_dpms(0,0,0);
if (si->ps.secondary_head) nv_crtc2_dpms(false, false, false);
/*where in framebuffer the screen is (should this be dependant on previous MOVEDISPLAY?)*/
startadd = (uint8*)si->fbc.frame_buffer - (uint8*)si->framebuffer;
@@ -145,12 +145,12 @@ status_t SET_DISPLAY_MODE(display_mode *mode_to_set)
case B_RGB16_LITTLE:
colour_depth2 = 16;
nv_maven_mode(BPP16, 1.0);
g400_crtc2_depth(BPP16);
nv_crtc2_depth(BPP16);
break;
case B_RGB32_LITTLE:
colour_depth2 = 32;
nv_maven_mode(BPP32DIR, 1.0);
g400_crtc2_depth(BPP32DIR);
nv_crtc2_depth(BPP32DIR);
break;
}
@@ -163,7 +163,7 @@ status_t SET_DISPLAY_MODE(display_mode *mode_to_set)
nv_crtc_set_display_pitch ();
//fixme: seperate for real dualhead modes:
//we need a secondary si->fbc!
g400_crtc2_set_display_pitch ();
nv_crtc2_set_display_pitch ();
/*work out where the "right" screen starts*/
startadd_right=startadd+(target.timing.h_display * (colour_depth1 >> 3));
@@ -304,18 +304,18 @@ status_t SET_DISPLAY_MODE(display_mode *mode_to_set)
case DUALHEAD_ON:
case DUALHEAD_SWITCH:
nv_crtc_set_display_start(startadd,colour_depth1);
g400_crtc2_set_display_start(startadd_right,colour_depth2);
nv_crtc2_set_display_start(startadd_right,colour_depth2);
break;
case DUALHEAD_CLONE:
nv_crtc_set_display_start(startadd,colour_depth1);
g400_crtc2_set_display_start(startadd,colour_depth2);
nv_crtc2_set_display_start(startadd,colour_depth2);
break;
}
/* set the timing */
nv_crtc_set_timing(target);
/* we do not need to setup CRTC2 here for a head that's in TVout mode */
if (!(target2.flags & TV_BITS)) result = g400_crtc2_set_timing(target2);
if (!(target2.flags & TV_BITS)) result = nv_crtc2_set_timing(target2);
/* TVout support: setup CRTC2 and it's pixelclock */
if (si->ps.tvout && (target2.flags & TV_BITS))
@@ -384,7 +384,7 @@ status_t SET_DISPLAY_MODE(display_mode *mode_to_set)
/* turn screen one on */
nv_crtc_dpms(display, h, v);
/* turn screen two on if a dualhead mode is active */
// if (target.flags & DUALHEAD_BITS) g400_crtc2_dpms(display,h,v);
if (target.flags & DUALHEAD_BITS) nv_crtc2_dpms(display,h,v);
/* set up acceleration for this mode */
nv_acc_init();
@@ -494,19 +494,19 @@ status_t MOVE_DISPLAY(uint16 h_display_start, uint16 v_display_start) {
interrupt_enable(false);
switch (si->dm.flags&DUALHEAD_BITS)
switch (si->dm.flags & DUALHEAD_BITS)
{
case DUALHEAD_ON:
case DUALHEAD_SWITCH:
nv_crtc_set_display_start(startadd,colour_depth);
g400_crtc2_set_display_start(startadd_right,colour_depth);
nv_crtc2_set_display_start(startadd_right,colour_depth);
break;
case DUALHEAD_OFF:
nv_crtc_set_display_start(startadd,colour_depth);
break;
case DUALHEAD_CLONE:
nv_crtc_set_display_start(startadd,colour_depth);
g400_crtc2_set_display_start(startadd,colour_depth);
nv_crtc2_set_display_start(startadd,colour_depth);
break;
}
@@ -560,19 +560,19 @@ status_t SET_DPMS_MODE(uint32 dpms_flags) {
{
case B_DPMS_ON: /* H: on, V: on, display on */
nv_crtc_dpms(true, true, true);
if (si->ps.secondary_head) g400_crtc2_dpms(1,1,1);
if (si->ps.secondary_head) nv_crtc2_dpms(true, true, true);
break;
case B_DPMS_STAND_BY:
nv_crtc_dpms(false, false, true);
if (si->ps.secondary_head) g400_crtc2_dpms(0,0,1);
if (si->ps.secondary_head) nv_crtc2_dpms(false, false, true);
break;
case B_DPMS_SUSPEND:
nv_crtc_dpms(false, true, false);
if (si->ps.secondary_head) g400_crtc2_dpms(0,1,0);
if (si->ps.secondary_head) nv_crtc2_dpms(false, true, false);
break;
case B_DPMS_OFF: /* H: off, V: off, display off */
nv_crtc_dpms(false, false, false);
if (si->ps.secondary_head) g400_crtc2_dpms(0,0,0);
if (si->ps.secondary_head) nv_crtc2_dpms(false, false, false);
break;
default:
LOG(8,("SET: Invalid DPMS settings (DH) 0x%08x\n", dpms_flags));
+504 -177
View File
@@ -1,247 +1,574 @@
/* second CTRC functionality
Authors:
Mark Watson 6/2000,
Rudolf Cornelissen 12/2002 - 4/2003
/* second CTRC functionality for GeForce cards */
/* Author:
Rudolf Cornelissen 11/2002-1/2004
*/
#define MODULE_BIT 0x00020000
#include "nv_std.h"
/*set a mode line - inputs are in pixels/scanlines*/
status_t g400_crtc2_set_timing(display_mode target)
/*Adjust passed parameters to a valid mode line*/
status_t nv_crtc2_validate_timing(
uint16 *hd_e,uint16 *hs_s,uint16 *hs_e,uint16 *ht,
uint16 *vd_e,uint16 *vs_s,uint16 *vs_e,uint16 *vt
)
{
uint32 temp;
/* horizontal */
/* make all parameters multiples of 8 */
*hd_e &= 0xfff8;
*hs_s &= 0xfff8;
*hs_e &= 0xfff8;
*ht &= 0xfff8;
/* confine to required number of bits, taking logic into account */
if (*hd_e > ((0x01ff - 2) << 3)) *hd_e = ((0x01ff - 2) << 3);
if (*hs_s > ((0x01ff - 1) << 3)) *hs_s = ((0x01ff - 1) << 3);
if (*hs_e > ( 0x01ff << 3)) *hs_e = ( 0x01ff << 3);
if (*ht > ((0x01ff + 5) << 3)) *ht = ((0x01ff + 5) << 3);
/* NOTE: keep horizontal timing at multiples of 8! */
/* confine to a reasonable width */
if (*hd_e < 640) *hd_e = 640;
if (*hd_e > 2048) *hd_e = 2048;
/* if hor. total does not leave room for a sensible sync pulse, increase it! */
if (*ht < (*hd_e + 80)) *ht = (*hd_e + 80);
/* make sure sync pulse is not during display */
if (*hs_e > (*ht - 8)) *hs_e = (*ht - 8);
if (*hs_s < (*hd_e + 8)) *hs_s = (*hd_e + 8);
/* correct sync pulse if it is too long:
* there are only 5 bits available to save this in the card registers! */
if (*hs_e > (*hs_s + 0xf8)) *hs_e = (*hs_s + 0xf8);
/*vertical*/
/* confine to required number of bits, taking logic into account */
//fixme if needed: on GeForce cards there are 12 instead of 11 bits...
if (*vd_e > (0x7ff - 2)) *vd_e = (0x7ff - 2);
if (*vs_s > (0x7ff - 1)) *vs_s = (0x7ff - 1);
if (*vs_e > 0x7ff ) *vs_e = 0x7ff ;
if (*vt > (0x7ff + 2)) *vt = (0x7ff + 2);
/* confine to a reasonable height */
if (*vd_e < 480) *vd_e = 480;
if (*vd_e > 1536) *vd_e = 1536;
/*if vertical total does not leave room for a sync pulse, increase it!*/
if (*vt < (*vd_e + 3)) *vt = (*vd_e + 3);
/* make sure sync pulse is not during display */
if (*vs_e > (*vt - 1)) *vs_e = (*vt - 1);
if (*vs_s < (*vd_e + 1)) *vs_s = (*vd_e + 1);
/* correct sync pulse if it is too long:
* there are only 4 bits available to save this in the card registers! */
if (*vs_e > (*vs_s + 0x0f)) *vs_e = (*vs_s + 0x0f);
return B_OK;
}
/*set a mode line - inputs are in pixels*/
status_t nv_crtc2_set_timing(display_mode target)
{
uint8 temp;
uint32 htotal; /*total horizontal total VCLKs*/
uint32 hdisp_e; /*end of horizontal display (begins at 0)*/
uint32 hsync_s; /*begin of horizontal sync pulse*/
uint32 hsync_e; /*end of horizontal sync pulse*/
uint32 hblnk_s; /*begin horizontal blanking*/
uint32 hblnk_e; /*end horizontal blanking*/
uint32 vtotal; /*total vertical total scanlines*/
uint32 vdisp_e; /*end of vertical display*/
uint32 vsync_s; /*begin of vertical sync pulse*/
uint32 vsync_e; /*end of vertical sync pulse*/
uint32 vblnk_s; /*begin vertical blanking*/
uint32 vblnk_e; /*end vertical blanking*/
uint32 linecomp; /*split screen and vdisp_e interrupt*/
LOG(4,("CRTC2: setting timing\n"));
// if ((!(target.flags & TV_BITS)) || (si->ps.card_type <= G400MAX))
/* Modify parameters as required by standard VGA */
htotal = ((target.timing.h_total >> 3) - 5);
hdisp_e = ((target.timing.h_display >> 3) - 1);
hblnk_s = hdisp_e;
hblnk_e = (htotal + 4);//0;
hsync_s = (target.timing.h_sync_start >> 3);
hsync_e = (target.timing.h_sync_end >> 3);
vtotal = target.timing.v_total - 2;
vdisp_e = target.timing.v_display - 1;
vblnk_s = vdisp_e;
vblnk_e = (vtotal + 1);
vsync_s = target.timing.v_sync_start;//-1;
vsync_e = target.timing.v_sync_end;//-1;
/* prevent memory adress counter from being reset (linecomp may not occur) */
linecomp = target.timing.v_display;
//fixme: flatpanel 'don't touch' update needed for 'Go' cards!?!
if (true)
{
/* G450/G550 monitor mode, and all modes on older cards */
LOG(4,("CRTC2: CRT only mode, setting full timing...\n"));
/* check horizontal timing parameters are to nearest 8 pixels */
if ((target.timing.h_display & 0x07) | (target.timing.h_sync_start & 0x07) |
(target.timing.h_sync_end & 0x07) | (target.timing.h_total & 0x07))
/* log the mode that will be set */
LOG(2,("CRTC2:\n\tHTOT:%x\n\tHDISPEND:%x\n\tHBLNKS:%x\n\tHBLNKE:%x\n\tHSYNCS:%x\n\tHSYNCE:%x\n\t",htotal,hdisp_e,hblnk_s,hblnk_e,hsync_s,hsync_e));
LOG(2,("VTOT:%x\n\tVDISPEND:%x\n\tVBLNKS:%x\n\tVBLNKE:%x\n\tVSYNCS:%x\n\tVSYNCE:%x\n",vtotal,vdisp_e,vblnk_s,vblnk_e,vsync_s,vsync_e));
/* actually program the card! */
/* unlock CRTC registers at index 0-7 */
CRTC2W(VSYNCE, (CRTC2R(VSYNCE) & 0x7f));
/* horizontal standard VGA regs */
CRTC2W(HTOTAL, (htotal & 0xff));
CRTC2W(HDISPE, (hdisp_e & 0xff));
CRTC2W(HBLANKS, (hblnk_s & 0xff));
/* also unlock vertical retrace registers in advance */
CRTC2W(HBLANKE, ((hblnk_e & 0x1f) | 0x80));
CRTC2W(HSYNCS, (hsync_s & 0xff));
CRTC2W(HSYNCE, ((hsync_e & 0x1f) | ((hblnk_e & 0x20) << 2)));
/* vertical standard VGA regs */
CRTC2W(VTOTAL, (vtotal & 0xff));
CRTC2W(OVERFLOW,
(
((vtotal & 0x100) >> (8 - 0)) | ((vtotal & 0x200) >> (9 - 5)) |
((vdisp_e & 0x100) >> (8 - 1)) | ((vdisp_e & 0x200) >> (9 - 6)) |
((vsync_s & 0x100) >> (8 - 2)) | ((vsync_s & 0x200) >> (9 - 7)) |
((vblnk_s & 0x100) >> (8 - 3)) | ((linecomp & 0x100) >> (8 - 4))
));
CRTC2W(PRROWSCN, 0x00); /* not used */
CRTC2W(MAXSCLIN, (((vblnk_s & 0x200) >> (9 - 5)) | ((linecomp & 0x200) >> (9 - 6))));
CRTC2W(VSYNCS, (vsync_s & 0xff));
CRTC2W(VSYNCE, ((CRTC2R(VSYNCE) & 0xf0) | (vsync_e & 0x0f)));
CRTC2W(VDISPE, (vdisp_e & 0xff));
CRTC2W(VBLANKS, (vblnk_s & 0xff));
CRTC2W(VBLANKE, (vblnk_e & 0xff));
CRTC2W(LINECOMP, (linecomp & 0xff));
/* horizontal extended regs */
//fixme: we reset bit4. is this correct??
CRTC2W(HEB, (CRTC2R(HEB) & 0xe0) |
(
((htotal & 0x100) >> (8 - 0)) |
((hdisp_e & 0x100) >> (8 - 1)) |
((hblnk_s & 0x100) >> (8 - 2)) |
((hsync_s & 0x100) >> (8 - 3))
));
/* (mostly) vertical extended regs */
CRTC2W(LSR,
(
((vtotal & 0x400) >> (10 - 0)) |
((vdisp_e & 0x400) >> (10 - 1)) |
((vsync_s & 0x400) >> (10 - 2)) |
((vblnk_s & 0x400) >> (10 - 3)) |
((hblnk_e & 0x040) >> (6 - 4))
//fixme: we still miss one linecomp bit!?! is this it??
//| ((linecomp & 0x400) >> 3)
));
/* more vertical extended regs */
CRTC2W(EXTRA,
(
((vtotal & 0x800) >> (11 - 0)) |
((vdisp_e & 0x800) >> (11 - 2)) |
((vsync_s & 0x800) >> (11 - 4)) |
((vblnk_s & 0x800) >> (11 - 6))
//fixme: do we miss another linecomp bit!?!
));
/* setup 'large screen' mode */
if (target.timing.h_display >= 1280)
CRTC2W(REPAINT1, (CRTC2R(REPAINT1) & 0xfb));
else
CRTC2W(REPAINT1, (CRTC2R(REPAINT1) | 0x04));
/* setup HSYNC & VSYNC polarity */
LOG(2,("CRTC2: sync polarity: "));
//fixme: how is sync polarity programmed for CRTC2?
// temp = NV_REG8(NV8_MISCR);
temp = 0;
if (target.timing.flags & B_POSITIVE_HSYNC)
{
LOG(8,("CRTC2: Horizontal timings are not multiples of 8 pixels\n"));
return B_ERROR;
LOG(2,("H:pos "));
temp &= ~0x40;
}
else
{
LOG(2,("H:neg "));
temp |= 0x40;
}
if (target.timing.flags & B_POSITIVE_VSYNC)
{
LOG(2,("V:pos "));
temp &= ~0x80;
}
else
{
LOG(2,("V:neg "));
temp |= 0x80;
}
// NV_REG8(NV8_MISCW) = temp;
/* make sure NTSC clock killer circuitry is disabled */
CR2W(DATACTL, (CR2R(DATACTL) & ~0x00000010));
/* make sure CRTC2 is set to progressive scan for monitor mode */
CR2W(CTL, (CR2R(CTL) & ~0x02001000));
/* program the second CRTC */
CR2W(HPARAM, ((((target.timing.h_display - 8) & 0x0fff) << 16) |
((target.timing.h_total - 8) & 0x0fff)));
CR2W(HSYNC, ((((target.timing.h_sync_end - 8) & 0x0fff) << 16) |
((target.timing.h_sync_start - 8) & 0x0fff)));
CR2W(VPARAM, ((((target.timing.v_display - 1) & 0x0fff) << 16) |
((target.timing.v_total - 1) & 0x0fff)));
CR2W(VSYNC, ((((target.timing.v_sync_end - 1) & 0x0fff) << 16) |
((target.timing.v_sync_start - 1) & 0x0fff)));
//Mark: (wrong AFAIK, warning: SETMODE MAVEN-CRTC delay is now tuned to new setup!!)
//CR2W(PRELOAD, (((target.timing.v_sync_start & 0x0fff) << 16) |
// (target.timing.h_sync_start & 0x0fff)));
CR2W(PRELOAD, ((((target.timing.v_sync_start - 1) & 0x0fff) << 16) |
((target.timing.h_sync_start - 8) & 0x0fff)));
temp = (0xfff << 16);
if (!(target.timing.flags & B_POSITIVE_HSYNC)) temp |= (0x01 << 8);
if (!(target.timing.flags & B_POSITIVE_VSYNC)) temp |= (0x01 << 9);
CR2W(MISC, temp);
/* On <= G400MAX dualhead cards we need to send a copy to the MAVEN;
* unless TVout is active */
if ((si->ps.secondary_head) && (!(target.flags & TV_BITS)))
nv_maven_set_timing(target);
// LOG(2,(", MISC reg readback: $%02x\n", NV_REG8(NV8_MISCR)));
}
// else
{
/* G450/G550 TVout mode */
display_mode tv_mode = target;
uint8 frame;
unsigned int vcount, prev_vcount;
LOG(4,("CRTC2: setting up G450/G550 TVout mode\n"));
/* check horizontal timing parameters are to nearest 8 pixels */
if ((tv_mode.timing.h_display & 0x07) | (tv_mode.timing.h_sync_start & 0x07) |
(tv_mode.timing.h_sync_end & 0x07))
{
LOG(8,("CRTC2: Horizontal timings are not multiples of 8 pixels\n"));
return B_ERROR;
}
/* disable NTSC clock killer circuitry */
CR2W(DATACTL, (CR2R(DATACTL) & ~0x00000010));
if (tv_mode.timing.h_total & 0x07)
{
/* we rely on this for both PAL and NTSC modes if h_total is 'illegal' */
LOG(4,("CRTC2: enabling clock killer circuitry\n"));
CR2W(DATACTL, (CR2R(DATACTL) | 0x00000010));
}
/* make sure h_total is valid for TVout mode */
tv_mode.timing.h_total &= ~0x07;
/* modify tv_mode for interlaced use */
tv_mode.timing.v_display >>= 1;
tv_mode.timing.v_sync_start >>= 1;
tv_mode.timing.v_sync_end >>= 1;
tv_mode.timing.v_total >>= 1;
/*program the second CRTC*/
CR2W(HPARAM, ((((tv_mode.timing.h_display - 8) & 0x0fff) << 16) |
((tv_mode.timing.h_total - 8) & 0x0fff)));
CR2W(HSYNC, ((((tv_mode.timing.h_sync_end - 8) & 0x0fff) << 16) |
((tv_mode.timing.h_sync_start - 8) & 0x0fff)));
CR2W(VPARAM, ((((tv_mode.timing.v_display - 1) & 0x0fff) << 16) |
((tv_mode.timing.v_total - 1) & 0x0fff)));
CR2W(VSYNC, ((((tv_mode.timing.v_sync_end - 1) & 0x0fff) << 16) |
((tv_mode.timing.v_sync_start - 1) & 0x0fff)));
//Mark: (wrong AFAIK, warning: SETMODE MAVEN-CRTC delay is now tuned to new setup!!)
//CR2W(PRELOAD, (((tv_mode.timing.v_sync_start & 0x0fff) << 16) |
// (tv_mode.timing.h_sync_start & 0x0fff)));
CR2W(PRELOAD, ((((tv_mode.timing.v_sync_start - 1) & 0x0fff) << 16) |
((tv_mode.timing.h_sync_start - 8) & 0x0fff)));
/* set CRTC2 to interlaced mode:
* First enable progressive scan mode while making sure
* CRTC2 is setup for TVout mode use... */
CR2W(CTL, ((CR2R(CTL) & ~0x02000000) | 0x00001000));
/* now synchronize to the start of a frame... */
prev_vcount = 0;
for (frame = 0; frame < 2; frame++)
{
for (;;)
{
vcount = (CR2R(VCOUNT) & 0x00000fff);
if (vcount >= prev_vcount)
prev_vcount = vcount;
else
break;
}
}
/* and start interlaced mode now! */
CR2W(CTL, (CR2R(CTL) | 0x02000000));
temp = (0xfff << 16);
if (!(tv_mode.timing.flags & B_POSITIVE_HSYNC)) temp |= (0x01 << 8);
if (!(tv_mode.timing.flags & B_POSITIVE_VSYNC)) temp |= (0x01 << 9);
CR2W(MISC, temp);
}
/* always disable interlaced operation */
/* (interlace is only supported on upto and including NV15 except for NV11) */
CRTC2W(INTERLACE, 0xff);
return B_OK;
}
status_t g400_crtc2_depth(int mode)
status_t nv_crtc2_depth(int mode)
{
/* validate bit depth and set mode */
/* also clears TVout mode (b12) */
uint8 viddelay = 0;
uint32 genctrl = 0;
/* set VCLK scaling */
switch(mode)
{
case BPP16:case BPP32DIR:
CR2W(CTL,(CR2R(CTL)&0xFF10077F)|(mode<<21));
case BPP8:
viddelay = 0x01;
/* genctrl b4 & b5 reset: 'direct mode' */
genctrl = 0x00101100;
break;
case BPP8:case BPP15:case BPP24:case BPP32:default:
LOG(8,("CRTC2:Invalid bit depth\n"));
return B_ERROR;
case BPP15:
viddelay = 0x02;
/* genctrl b4 & b5 set: 'indirect mode' (via colorpalette) */
genctrl = 0x00100130;
break;
case BPP16:
viddelay = 0x02;
/* genctrl b4 & b5 set: 'indirect mode' (via colorpalette) */
genctrl = 0x00101130;
break;
case BPP24:
viddelay = 0x03;
/* genctrl b4 & b5 set: 'indirect mode' (via colorpalette) */
genctrl = 0x00100130;
break;
case BPP32:
viddelay = 0x03;
/* genctrl b4 & b5 set: 'indirect mode' (via colorpalette) */
genctrl = 0x00101130;
break;
}
CRTC2W(PIXEL, ((CRTC2R(PIXEL) & 0xfc) | viddelay));
//fixme: check if this works..
DAC2W(GENCTRL, genctrl);
return B_OK;
}
status_t g400_crtc2_dpms(uint8 display,uint8 h,uint8 v)
status_t nv_crtc2_dpms(bool display, bool h, bool v)
{
if (display & h & v)
// uint8 temp;
LOG(4,("CRTC2: setting DPMS: "));
/* start synchronous reset: required before turning screen off! */
//fixme: howto switch display on/off?
// SEQW(RESET, 0x01);
/* turn screen off */
// temp = SEQR(CLKMODE);
if (display)
{
/* enable CRTC2 and don't touch the rest */
CR2W(CTL, ((CR2R(CTL) & 0xFFF0177E) | 0x01));
// SEQW(CLKMODE, (temp & ~0x20));
/* end synchronous reset if display should be enabled */
// SEQW(RESET, 0x03);
LOG(4,("display on, "));
}
else
{
/* disable CRTC2 and don't touch the rest */
CR2W(CTL, (CR2R(CTL) & 0xFFF0177E));
// SEQW(CLKMODE, (temp | 0x20));
LOG(4,("display off, "));
}
// if (si->ps.card_type >= G450)
// {
//fixme:
/* setup monitor mode DPMS: G450 and later fully support this on CRTC2 */
//for now:
//enable 'straight-through' sync outputs on both analog output connectors...
// DXIW(SYNCCTRL,0x00);
// }
/* On <= G400MAX dualhead cards we always need to send a 'copy' to the MAVEN */
if (si->ps.secondary_head) nv_maven_dpms(display, h, v);
if (h)
{
CRTC2W(REPAINT1, (CRTC2R(REPAINT1) & 0x7f));
LOG(4,("hsync enabled, "));
}
else
{
CRTC2W(REPAINT1, (CRTC2R(REPAINT1) | 0x80));
LOG(4,("hsync disabled, "));
}
if (v)
{
CRTC2W(REPAINT1, (CRTC2R(REPAINT1) & 0xbf));
LOG(4,("vsync enabled\n"));
}
else
{
CRTC2W(REPAINT1, (CRTC2R(REPAINT1) | 0x40));
LOG(4,("vsync disabled\n"));
}
return B_OK;
}
status_t g400_crtc2_dpms_fetch(uint8 * display,uint8 * h,uint8 * v)
status_t nv_crtc2_dpms_fetch(bool *display, bool *h, bool *v)
{
*display=CR2R(CTL)&1;
//fixme:
// *display = !(SEQR(CLKMODE) & 0x20);
*display = true;
*h = !(CRTC2R(REPAINT1) & 0x80);
*v = !(CRTC2R(REPAINT1) & 0x40);
*h=*v=1; /*h/vsync always enabled on second CRTC, does not support other*/
LOG(4,("CTRC2: fetched DPMS state:"));
if (display) LOG(4,("display on, "));
else LOG(4,("display off, "));
if (h) LOG(4,("hsync enabled, "));
else LOG(4,("hsync disabled, "));
if (v) LOG(4,("vsync enabled\n"));
else LOG(4,("vsync disabled\n"));
return B_OK;
}
status_t g400_crtc2_set_display_pitch()
status_t nv_crtc2_set_display_pitch()
{
uint32 offset;
LOG(4,("CRTC2: setting card pitch (offset between lines)\n"));
/* figure out offset value hardware needs */
offset = si->fbc.bytes_per_row;
if (si->interlaced_tv_mode)
{
LOG(4,("CRTC2: setting interlaced mode\n"));
/* double the CRTC2 linelength so fields are displayed instead of frames */
offset *= 2;
}
else
LOG(4,("CRTC2: setting progressive scan mode\n"));
offset = si->fbc.bytes_per_row / 8;
LOG(2,("CRTC2: offset set to %d bytes\n", offset));
LOG(2,("CRTC2: offset register set to: $%04x\n", offset));
/*program the card!*/
CRTC2W(PITCHL, (offset & 0x00ff));
CRTC2W(REPAINT0, ((CRTC2R(REPAINT0) & 0x1f) | ((offset & 0x0700) >> 3)));
/* program the head */
CR2W(OFFSET,offset);
return B_OK;
}
status_t g400_crtc2_set_display_start(uint32 startadd,uint8 bpp)
status_t nv_crtc2_set_display_start(uint32 startadd,uint8 bpp)
{
LOG(4,("CRTC2: setting card RAM to be displayed for %d bits per pixel\n", bpp));
uint8 temp;
LOG(2,("CRTC2: startadd: $%x\n",startadd));
LOG(2,("CRTC2: frameRAM: $%x\n",si->framebuffer));
LOG(2,("CRTC2: framebuffer: $%x\n",si->fbc.frame_buffer));
LOG(4,("CRTC2: setting card RAM to be displayed bpp %d\n", bpp));
if (si->interlaced_tv_mode)
LOG(2,("CRTC2: startadd: $%08x\n", startadd));
LOG(2,("CRTC2: frameRAM: $%08x\n", si->framebuffer));
LOG(2,("CRTC2: framebuffer: $%08x\n", si->fbc.frame_buffer));
//fixme? on TNT1, TNT2, and GF2MX400 not needed. How about the rest??
/* make sure we are in retrace on MIL cards (if possible), because otherwise
* distortions might occur during our reprogramming them (no double buffering) */
// if (si->ps.card_type < G100)
// {
/* we might have no retraces during setmode! */
// uint32 timeout = 0;
/* wait 25mS max. for retrace to occur (refresh > 40Hz) */
// while ((!(ACCR(STATUS) & 0x08)) && (timeout < (25000/4)))
// {
// snooze(4);
// timeout++;
// }
// }
// if (si->ps.card_arch == NV04A)
// {
/* upto 32Mb RAM adressing: must be used this way on pre-NV10! */
/* set standard registers */
/* (NVidia: startadress in 32bit words (b2 - b17) */
// CRTC2W(FBSTADDL, ((startadd & 0x000003fc) >> 2));
// CRTC2W(FBSTADDH, ((startadd & 0x0003fc00) >> 10));
/* set extended registers */
/* NV4 extended bits: (b18-22) */
// temp = (CRTC2R(REPAINT0) & 0xe0);
// CRTC2W(REPAINT0, (temp | ((startadd & 0x007c0000) >> 18)));
/* NV4 extended bits: (b23-24) */
// temp = (CRTC2R(HEB) & 0x9f);
// CRTC2W(HEB, (temp | ((startadd & 0x01800000) >> 18)));
// }
// else
{
LOG(4,("CRTC2: setting up fields for interlaced mode\n"));
/* program the head for interlaced use */
//fixme: seperate both heads: we need a secondary si->fbc!
/* setup field 0 startadress in buffer to read picture's odd lines */
CR2W(STARTADD0, (startadd + si->fbc.bytes_per_row));
/* setup field 1 startadress in buffer to read picture's even lines */
CR2W(STARTADD1, startadd);
/* upto 4Gb RAM adressing: must be used on NV10 and later! */
/* NOTE:
* While this register also exists on pre-NV10 cards, it will
* wrap-around at 16Mb boundaries!! */
/* 30bit adress in 32bit words */
NV_REG32(NV32_NV10FB2STADD32) = (startadd & 0xfffffffc);
}
/* set NV4/NV10 byte adress: (b0 - 1) */
temp = (ATB2R(HORPIXPAN) & 0xf9);
ATB2W(HORPIXPAN, (temp | ((startadd & 0x00000003) << 1)));
return B_OK;
}
status_t nv_crtc2_cursor_init()
{
int i;
uint32 * fb;
/* cursor bitmap will be stored at the start of the framebuffer */
const uint32 curadd = 0;
/* set cursor bitmap adress ... */
if ((si->ps.card_arch == NV04A) || (si->ps.laptop))
{
/* must be used this way on pre-NV10 and on all 'Go' cards! */
/* cursorbitmap must start on 2Kbyte boundary: */
/* set adress bit11-16, and set 'no doublescan' (registerbit 1 = 0) */
CRTC2W(CURCTL0, ((curadd & 0x0001f800) >> 9));
/* set adress bit17-23, and set graphics mode cursor(?) (registerbit 7 = 1) */
CRTC2W(CURCTL1, (((curadd & 0x00fe0000) >> 17) | 0x80));
/* set adress bit24-31 */
CRTC2W(CURCTL2, ((curadd & 0xff000000) >> 24));
}
else
{
LOG(4,("CRTC2: setting up frames for progressive scan mode\n"));
/* program the head for non-interlaced use */
CR2W(STARTADD0, startadd);
/* upto 4Gb RAM adressing:
* can be used on NV10 and later (except for 'Go' cards)! */
/* NOTE:
* This register does not exist on pre-NV10 and 'Go' cards. */
/* cursorbitmap must still start on 2Kbyte boundary: */
NV_REG32(NV32_NV10CUR2ADD32) = (curadd & 0xfffff800);
}
/* set cursor colour: not needed because of direct nature of cursor bitmap. */
/*clear cursor*/
fb = (uint32 *) si->framebuffer + curadd;
for (i=0;i<(2048/4);i++)
{
fb[i]=0;
}
/* select 32x32 pixel, 16bit color cursorbitmap, no doublescan */
NV_REG32(NV32_2CURCONF) = 0x02000100;
/* activate hardware cursor */
CRTC2W(CURCTL0, (CRTC2R(CURCTL0) | 0x01));
return B_OK;
}
status_t nv_crtc2_cursor_show()
{
/* b0 = 1 enables cursor */
CRTC2W(CURCTL0, (CRTC2R(CURCTL0) | 0x01));
return B_OK;
}
status_t nv_crtc2_cursor_hide()
{
/* b0 = 0 disables cursor */
CRTC2W(CURCTL0, (CRTC2R(CURCTL0) & 0xfe));
return B_OK;
}
/*set up cursor shape*/
status_t nv_crtc2_cursor_define(uint8* andMask,uint8* xorMask)
{
int x, y;
uint8 b;
uint16 *cursor;
uint16 pixel;
/* get a pointer to the cursor */
cursor = (uint16*) si->framebuffer;
/* draw the cursor */
/* (Nvidia cards have a RGB15 direct color cursor bitmap, bit #16 is transparancy) */
for (y = 0; y < 16; y++)
{
b = 0x80;
for (x = 0; x < 8; x++)
{
/* preset transparant */
pixel = 0x0000;
/* set white if requested */
if ((!(*andMask & b)) && (!(*xorMask & b))) pixel = 0xffff;
/* set black if requested */
if ((!(*andMask & b)) && (*xorMask & b)) pixel = 0x8000;
/* set invert if requested */
if ( (*andMask & b) && (*xorMask & b)) pixel = 0x7fff;
/* place the pixel in the bitmap */
cursor[x + (y * 32)] = pixel;
b >>= 1;
}
xorMask++;
andMask++;
b = 0x80;
for (; x < 16; x++)
{
/* preset transparant */
pixel = 0x0000;
/* set white if requested */
if ((!(*andMask & b)) && (!(*xorMask & b))) pixel = 0xffff;
/* set black if requested */
if ((!(*andMask & b)) && (*xorMask & b)) pixel = 0x8000;
/* set invert if requested */
if ( (*andMask & b) && (*xorMask & b)) pixel = 0x7fff;
/* place the pixel in the bitmap */
cursor[x + (y * 32)] = pixel;
b >>= 1;
}
xorMask++;
andMask++;
}
return B_OK;
}
/* position the cursor */
status_t nv_crtc2_cursor_position(uint16 x, uint16 y)
{
uint16 yhigh;
/* make sure we are beyond the first line of the cursorbitmap being drawn during
* updating the position to prevent distortions: no double buffering feature */
/* Note:
* we need to return as quick as possible or some apps will exhibit lagging.. */
/* read the old cursor Y position */
yhigh = ((DAC2R(CURPOS) & 0x0fff0000) >> 16);
/* make sure we will wait until we are below both the old and new Y position:
* visible cursorbitmap drawing needs to be done at least... */
if (y > yhigh) yhigh = y;
if (yhigh < (si->dm.timing.v_display - 16))
{
/* we have vertical lines below old and new cursorposition to spare. So we
* update the cursor postion 'mid-screen', but below that area. */
while (((uint16)(NV_REG32(NV32_RASTER2) & 0x000007ff)) < (yhigh + 16))
{
snooze(10);
}
}
else
{
/* no room to spare, just wait for retrace (is relatively slow) */
while ((NV_REG32(NV32_RASTER2) & 0x000007ff) < si->dm.timing.v_display)
{
/* don't snooze much longer or retrace might get missed! */
snooze(10);
}
}
/* update cursorposition */
DAC2W(CURPOS, ((x & 0x0fff) | ((y & 0x0fff) << 16)));
return B_OK;
}
@@ -1206,7 +1206,7 @@ int maventv_init(display_mode target)
// }
/* setup CRTC2 timing */
g400_crtc2_set_timing(tv_target);
nv_crtc2_set_timing(tv_target);
/* start whole thing if needed */
// if (si->ps.card_type <= G400MAX) MAVW(RESYNC, 0x20);
@@ -55,7 +55,7 @@ status_t g100_g400max_maventv_vid_pll_find(
uint8 * m_result, uint8 * n_result, uint8 * p_result);
int maventv_init(display_mode target);
/*CRTC1 functions*/
/* CRTC1 functions */
status_t nv_crtc_validate_timing(
uint16 *hd_e,uint16 *hs_s,uint16 *hs_e,uint16 *ht,
uint16 *vd_e,uint16 *vs_s,uint16 *vs_e,uint16 *vt
@@ -75,15 +75,25 @@ status_t nv_crtc_cursor_position(uint16 x ,uint16 y);
status_t nv_crtc_cursor_show(void);
status_t nv_crtc_cursor_hide(void);
/*CRTC2 functions*/
/*XXX - validate_timing*/
status_t g400_crtc2_set_timing(display_mode target);
status_t g400_crtc2_depth(int mode);
status_t g400_crtc2_set_display_pitch(void);
status_t g400_crtc2_set_display_start(uint32 startadd,uint8 bpp);
/* CRTC2 functions */
status_t nv_crtc2_validate_timing(
uint16 *hd_e,uint16 *hs_s,uint16 *hs_e,uint16 *ht,
uint16 *vd_e,uint16 *vs_s,uint16 *vs_e,uint16 *vt
);
status_t nv_crtc2_set_timing(display_mode target);
status_t nv_crtc2_depth(int mode);
status_t nv_crtc2_set_display_start(uint32 startadd,uint8 bpp);
status_t nv_crtc2_set_display_pitch(void);
status_t g400_crtc2_dpms(uint8 display,uint8 h,uint8 v);
status_t g400_crtc2_dpms_fetch(uint8 * display,uint8 * h,uint8 * v);
status_t nv_crtc2_dpms(bool, bool, bool);
status_t nv_crtc2_dpms_fetch(bool*, bool*, bool*);
status_t nv_crtc2_mem_priority(uint8);
status_t nv_crtc2_cursor_init(void); /*Yes, cursor follows CRTC1 - not the DAC!*/
status_t nv_crtc2_cursor_define(uint8*,uint8*);
status_t nv_crtc2_cursor_position(uint16 x ,uint16 y);
status_t nv_crtc2_cursor_show(void);
status_t nv_crtc2_cursor_hide(void);
/*acceleration functions*/
status_t check_acc_capability(uint32 feature);