Matrox: fix 64bit warnings.
This commit is contained in:
@@ -75,18 +75,19 @@ uint32 OVERLAY_SUPPORTED_FEATURES(uint32 a_color_space)
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}
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}
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const overlay_buffer *ALLOCATE_OVERLAY_BUFFER(color_space cs, uint16 width, uint16 height)
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{
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int offset = 0; /* used to determine next buffer to create */
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uint32 adress, adress2, temp32; /* used to calculate buffer adresses */
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uintptr_t adress, adress2, temp32; /* used to calculate buffer adresses */
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uint32 oldsize = 0; /* used to 'squeeze' new buffers between already existing ones */
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int cnt; /* loopcounter */
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/* acquire the shared benaphore */
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AQUIRE_BEN(si->overlay.lock)
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LOG(4,("Overlay: cardRAM_start = $%08x\n",(uint32)((uint8*)si->framebuffer)));
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LOG(4,("Overlay: cardRAM_start_DMA = $%08x\n",(uint32)((uint8*)si->framebuffer_pci)));
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LOG(4, ("Overlay: cardRAM_start = $%p\n", (uint8*)si->framebuffer));
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LOG(4, ("Overlay: cardRAM_start_DMA = $%p\n", (uint8*)si->framebuffer_pci));
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LOG(4, ("Overlay: cardRAM_size = %dMb\n", si->ps.memory_size));
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/* find first empty slot (room for another buffer?) */
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@@ -245,14 +246,14 @@ const overlay_buffer *ALLOCATE_OVERLAY_BUFFER(color_space cs, uint16 width, uint
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* Driver setup is as follows:
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* card base: - hardware cursor bitmap (if used),
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* directly above - screen memory for both heads */
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adress2 = (((uint32)((uint8*)si->fbc.frame_buffer)) + /* cursor already included here */
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adress2 = (((uintptr_t)((uint8*)si->fbc.frame_buffer)) + /* cursor already included here */
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(si->fbc.bytes_per_row * si->dm.virtual_height)); /* size in bytes of screen(s) */
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LOG(4, ("Overlay: first free cardRAM virtual adress $%08x\n", adress2));
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/* calculate 'preliminary' buffer size including slopspace */
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oldsize = si->overlay.myBufInfo[offset].size;
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si->overlay.myBufInfo[offset].size =
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si->overlay.myBuffer[offset].bytes_per_row * si->overlay.myBuffer[offset].height;
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si->overlay.myBufInfo[offset].size
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= si->overlay.myBuffer[offset].bytes_per_row * si->overlay.myBuffer[offset].height;
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/* calculate virtual memory adress that would be needed for a new bitmap */
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/* NOTE to app programmers:
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@@ -265,7 +266,7 @@ const overlay_buffer *ALLOCATE_OVERLAY_BUFFER(color_space cs, uint16 width, uint
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* If you switch now to settings: 1600x1200x32bit (single head) the app needs to fallback to
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* bitmap output or maybe single buffered overlay output if small bitmaps are used. */
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adress = (((uint32)((uint8*)si->framebuffer)) + (si->ps.memory_size * 1024 * 1024));
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adress = (((uintptr_t)((uint8*)si->framebuffer)) + (si->ps.memory_size * 1024 * 1024));
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for (cnt = 0; cnt <= offset; cnt++)
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{
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adress -= si->overlay.myBufInfo[cnt].size;
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@@ -276,7 +277,7 @@ const overlay_buffer *ALLOCATE_OVERLAY_BUFFER(color_space cs, uint16 width, uint
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/* Check if we need to modify the buffers starting adress and thus the size */
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/* calculate 'would be' cardRAM offset */
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temp32 = (adress - ((uint32)((vuint32 *)si->framebuffer)));
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temp32 = (adress - ((uintptr_t)((vuint32 *)si->framebuffer)));
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/* check if it is aligned */
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if (temp32 != (temp32 & 0xfffffff0))
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{
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@@ -359,7 +360,7 @@ const overlay_buffer *ALLOCATE_OVERLAY_BUFFER(color_space cs, uint16 width, uint
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* If you switch now to settings: 1600x1200x32bit (single head) the app needs to fallback to
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* bitmap output or maybe single buffered overlay output if small bitmaps are used. */
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adress = (((uint32)((uint8*)si->framebuffer_pci)) + (si->ps.memory_size * 1024 * 1024));
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adress = (((uintptr_t)((uint8*)si->framebuffer_pci)) + (si->ps.memory_size * 1024 * 1024));
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for (cnt = 0; cnt <= offset; cnt++)
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{
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adress -= si->overlay.myBufInfo[cnt].size;
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@@ -367,19 +368,17 @@ const overlay_buffer *ALLOCATE_OVERLAY_BUFFER(color_space cs, uint16 width, uint
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/* this adress is already aligned to the scaler's requirements (via the already modified sizes) */
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si->overlay.myBuffer[offset].buffer_dma = (void *) adress;
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LOG(4,("Overlay: New buffer: addr $%08x, dma_addr $%08x, color space $%08x\n",
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(uint32)((uint8*)si->overlay.myBuffer[offset].buffer),
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(uint32)((uint8*)si->overlay.myBuffer[offset].buffer_dma), cs));
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LOG(4, ("Overlay: New buffer: addr $%p, dma_addr $%p, color space $%08x\n",
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(uint8*)si->overlay.myBuffer[offset].buffer,
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(uint8*)si->overlay.myBuffer[offset].buffer_dma, cs));
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LOG(4, ("Overlay: New buffer's size is $%08x\n", si->overlay.myBufInfo[offset].size));
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/* release the shared benaphore */
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RELEASE_BEN(si->overlay.lock)
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return &si->overlay.myBuffer[offset];
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}
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else
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} else {
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/* sorry, no more room for buffers */
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{
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LOG(4, ("Overlay: Sorry, no more space for buffers: aborted\n"));
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/* release the shared benaphore */
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@@ -389,6 +388,7 @@ const overlay_buffer *ALLOCATE_OVERLAY_BUFFER(color_space cs, uint16 width, uint
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}
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}
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status_t RELEASE_OVERLAY_BUFFER(const overlay_buffer *ob)
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/* Note that the user can delete the buffers in any order desired! */
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{
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@@ -14,7 +14,7 @@ struct move_overlay_info
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uint32 hsrcstv; /* horizontal source start in source buffer (clipping) */
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uint32 hsrcendv; /* horizontal source end in source buffer (clipping) */
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uint32 v1srcstv; /* vertical source start in source buffer (clipping) */
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uint32 a1orgv; /* alternate source clipping via startadress of source buffer */
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uintptr_t a1orgv; /* alternate source clipping via startadress of source buffer */
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};
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static void gx00_bes_calc_move_overlay(move_overlay_info *moi);
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@@ -270,8 +270,8 @@ static void gx00_bes_calc_move_overlay(move_overlay_info *moi)
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/* calculate relative base_adress and 'vertical weight fractional part' */
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moi->v1srcstv = 0;
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/* calculate origin adress */
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moi->a1orgv = (uint32)((vuint32 *)si->overlay.ob.buffer);
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moi->a1orgv -= (uint32)((vuint32 *)si->framebuffer);
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moi->a1orgv = (uintptr_t)((vuint32 *)si->overlay.ob.buffer);
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moi->a1orgv -= (uintptr_t)((vuint32 *)si->framebuffer);
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LOG(4, ("Overlay: topleft corner of input bitmap (cardRAM offset) $%08x\n", moi->a1orgv));
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/* check for destination vertical clipping at top side */
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if (si->overlay.ow.v_start < crtc_vstart)
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@@ -285,9 +285,7 @@ static void gx00_bes_calc_move_overlay(move_overlay_info *moi)
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* bytes per row source picture */
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moi->v1srcstv = (si->overlay.ow.height - 2) * si->overlay.v_ifactor;
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moi->a1orgv += ((moi->v1srcstv >> 16) * si->overlay.ob.bytes_per_row);
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}
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else
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{
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} else {
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/* increase source buffer origin with:
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* (integer part of (number of destination picture clipping pixels * inverse scaling factor)) *
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* bytes per row source picture */
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@@ -337,13 +337,15 @@ status_t gx00_dac_pix_pll_find
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return B_ERROR;
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}
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/* find nearest valid pixel PLL setting: rewritten by rudolf */
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static status_t milx_dac_pix_pll_find(
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display_mode target,float * calc_pclk,uint8 * m_result,uint8 * n_result,uint8 * p_result)
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display_mode target, float* calc_pclk, uint8* m_result, uint8* n_result,
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uint8* p_result)
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{
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int m = 0, n = 0, p = 0;
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float error, error_best = 999999999;
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int best[3];
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float error, error_best = INFINITY;
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int best[3] = {0, 0, 0};
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float f_vco, max_pclk;
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float req_pclk = target.timing.pixel_clock / 1000.0;
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@@ -455,13 +457,15 @@ static status_t milx_dac_pix_pll_find(
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return B_OK;
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}
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/* find nearest valid pixel PLL setting: rewritten by rudolf */
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static status_t g100_g400max_dac_pix_pll_find(
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display_mode target,float * calc_pclk,uint8 * m_result,uint8 * n_result,uint8 * p_result, uint8 test)
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display_mode target, float* calc_pclk, uint8* m_result, uint8* n_result,
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uint8* p_result, uint8 test)
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{
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int m = 0, n = 0, p = 0, m_max;
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float error, error_best = 999999999;
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int best[3];
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float error, error_best = INFINITY;
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int best[3] = {0, 0, 0};
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float f_vco, max_pclk;
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float req_pclk = target.timing.pixel_clock/1000.0;
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@@ -613,14 +617,16 @@ static status_t g100_g400max_dac_pix_pll_find(
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return B_OK;
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}
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/* find nearest valid pixel PLL setting: rewritten by rudolf */
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static status_t g450_g550_dac_pix_pll_find
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(display_mode target,float * calc_pclk,uint8 * m_result,uint8 * n_result,uint8 * p_result, uint8 test)
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(display_mode target, float* calc_pclk, uint8* m_result, uint8* n_result,
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uint8* p_result, uint8 test)
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{
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int m = 0, n = 0;
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uint8 p = 0, q = 0;
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float error, error_best = 999999999;
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int best[3];
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float error, error_best = INFINITY;
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int best[3] = {0, 0, 0};
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float f_vco, max_pclk;
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float req_pclk = target.timing.pixel_clock / 1000.0;
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@@ -746,13 +752,15 @@ static status_t g450_g550_dac_pix_pll_find
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return B_OK;
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}
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/* find nearest valid system PLL setting */
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static status_t g100_g400max_dac_sys_pll_find(
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float req_sclk,float * calc_sclk,uint8 * m_result,uint8 * n_result,uint8 * p_result)
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float req_sclk, float* calc_sclk, uint8* m_result, uint8* n_result,
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uint8 * p_result)
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{
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int m = 0, n = 0, p = 0, m_max;
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float error, error_best = 999999999;
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int best[3];
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float error, error_best = INFINITY;
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int best[3] = {0, 0, 0};
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float f_vco;
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/* determine the max. reference-frequency postscaler setting for the
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@@ -867,6 +875,7 @@ static status_t g100_g400max_dac_sys_pll_find(
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return B_OK;
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}
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static status_t gx50_dac_check_sys_pll(uint8 m, uint8 n, uint8 p)
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{
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uint time = 0, count = 0;
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@@ -952,14 +961,16 @@ static status_t gx50_dac_check_sys_pll_range(uint8 m, uint8 n, uint8 *p, uint8 *
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return B_ERROR;
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}
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/* find nearest valid system PLL setting */
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static status_t g450_g550_dac_sys_pll_find(
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float req_sclk,float * calc_sclk,uint8 * m_result,uint8 * n_result,uint8 * p_result)
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float req_sclk, float* calc_sclk, uint8* m_result, uint8* n_result,
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uint8* p_result)
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{
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int m = 0, n = 0;
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uint8 p = 0, q = 0;
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float error, error_best = 999999999;
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int best[3];
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float error, error_best = INFINITY;
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int best[3] = {0, 0, 0};
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float f_vco;
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LOG(4, ("DAC: G450/G550 restrictions apply\n"));
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@@ -329,13 +329,15 @@ status_t g100_g400max_maven_set_vid_pll(display_mode target)
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return B_OK;
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}
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/* find nearest valid video PLL setting */
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status_t g100_g400max_maven_vid_pll_find(
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display_mode target,float * calc_pclk,uint8 * m_result,uint8 * n_result,uint8 * p_result)
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display_mode target, float* calc_pclk, uint8* m_result, uint8* n_result,
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uint8* p_result)
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{
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int m = 0, n = 0, p = 0, m_max;
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float error, error_best = 999999999;
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int best[3];
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float error, error_best = INT_MAX;
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int best[3] = {0, 0, 0};
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float f_vco, max_pclk;
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float req_pclk = target.timing.pixel_clock/1000.0;
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@@ -468,6 +470,7 @@ status_t g100_g400max_maven_vid_pll_find(
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return B_OK;
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}
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static status_t gx50_maven_check_vid_pll(uint8 m, uint8 n, uint8 p)
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{
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uint time = 0, count = 0;
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@@ -558,14 +561,16 @@ static status_t gx50_maven_check_vid_pll_range(uint8 m, uint8 n, uint8 *p, uint8
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return B_ERROR;
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}
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/* find nearest valid video PLL setting */
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status_t g450_g550_maven_vid_pll_find
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(display_mode target,float * calc_pclk,uint8 * m_result,uint8 * n_result,uint8 * p_result, uint8 test)
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(display_mode target, float* calc_pclk, uint8* m_result, uint8* n_result,
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uint8* p_result, uint8 test)
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{
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int m = 0, n = 0;
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uint8 p = 0, q = 0;
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float error, error_best = 999999999;
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int best[3];
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float error, error_best = INFINITY;
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int best[3] = {0, 0, 0};
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float f_vco, max_pclk;
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float req_pclk = target.timing.pixel_clock/1000.0;
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@@ -20,9 +20,11 @@ typedef struct {
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float chroma_subcarrier;
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} gx50_maven_timing;
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//fixme: try to implement 'fast' and 'slow' settings for all modes,
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// so buffer duplication or skipping won't be neccesary for realtime video.
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//fixme: try to setup the CRTC2 in interlaced mode for the video modes on <= G400MAX cards.
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// FIXME: try to implement 'fast' and 'slow' settings for all modes, so buffer
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// duplication or skipping won't be neccesary for realtime video.
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// FIXME: try to setup the CRTC2 in interlaced mode for the video modes
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// on <= G400MAX cards.
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/* find 'exact' valid video PLL setting */
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status_t g100_g400max_maventv_vid_pll_find(
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@@ -30,8 +32,9 @@ status_t g100_g400max_maventv_vid_pll_find(
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uint8 * m_result, uint8 * n_result, uint8 * p_result)
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{
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int m = 0, n = 0, p = 0, m_max;
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float diff, diff_smallest = 999999999;
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int best[5], h_total_mod;
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float diff, diff_smallest = INFINITY;
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int best[5] = {0, 0, 0, 0, 0};
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int h_total_mod;
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float fields_sec, f_vco;
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/* We need to be exact, so work with clockperiods per field instead of with frequency.
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* Make sure however we truncate these clocks to be integers!
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@@ -199,9 +202,7 @@ status_t g100_g400max_maventv_vid_pll_find(
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m = 0x03;
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n = 0x07;
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p = 0x03;
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}
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else
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{
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} else {
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/* set 14.31818Mhz */
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m = 0x01;
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n = 0x07;
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