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315 lines
9.1 KiB
C
315 lines
9.1 KiB
C
//#include "terasic_includes.h"
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//#include "mcu.h"
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#include "it6613_sys.h"
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#include "hdmitx.h"
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#include "HDMI_TX.h"
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#include "edid.h"
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int TX_HDP = FALSE;
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extern BYTE bOutputColorMode;
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extern BYTE bInputColorMode;
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extern BOOL bChangeMode;
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extern RX_CAP RxCapability;
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extern BOOL bHDMIMode;
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extern BOOL bAudioEnable;
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BOOL ParseEDID();
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INSTANCE InitInstanceData =
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{
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0,0, //I2C_DEV, I2C_ADDR
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0, //bIntType (TxCLK active, Push-Pull Mode, INT active low)
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0,/* | T_MODE_CCIR656 | T_MODE_SYNCEMB | T_MODE_INDDR */ // bInputVideoSignalType
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B_AUDFMT_STD_I2S, // bOutputAudioMode, 0x00, standard i2s, rising edge to sample ws/i2s, not full packet mode REG[0xE1]
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0,// bAudioChannelSwap
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B_AUD_EN_I2S0 | B_AUD_I2S | M_AUD_16BIT, // bAudioChannelEnable, 0x01, REG[0xE0], defined in it6613_drv.h
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AUDFS_48KHz, //0, //bAudFs,
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0, // TMDSClock
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TRUE,//bAuthenticated
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TRUE,// bHDMIMode
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FALSE,// bIntPOL
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FALSE // bHPD
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} ;
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bool HDMITX_ChipVerify(void){
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bool bPass = FALSE;
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alt_u8 szID[4];
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int i;
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for(i=0;i<4;i++)
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szID[i] = HDMITX_ReadI2C_Byte(i);
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// if (szID[0] == 0x00 && szID[1] == 0xCA && szID[1] == 0x13 && szID[1] == 0x06) szID[0] ???
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if ((szID[1] == 0xCA && szID[2] == 0x13 && szID[3] == 0x06) || (szID[1] == 0xCA && szID[2] == 0x13 && szID[3] == 0x16)){
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bPass = TRUE;
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printf("TX Chip Revision ID: %d\n", szID[0]);
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}else{
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printf("NG, Read TX Chip ID:%02X%02X%02X%02Xh (expected:00CA1306h)\n", szID[0], szID[1], szID[2], szID[3]);
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}
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return bPass;
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}
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bool HDMITX_Init(void){
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bool bSuccess = TRUE;
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HDMITX_Reset();
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usleep(500*1000);
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if (!HDMITX_ChipVerify()){
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OS_PRINTF("Failed to find IT6613 HDMI-TX Chip.\n");
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bSuccess = FALSE;
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//return 0;
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}
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HDMITX_InitInstance(&InitInstanceData) ;
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InitIT6613() ;
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return bSuccess;
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}
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bool HDMITX_HPD(void){
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if (TX_HDP)
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return TRUE;
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return FALSE;
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}
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void HDMITX_SetAVIInfoFrame(alt_u8 VIC, alt_u8 OutputColorMode, bool b16x9, bool ITU709)
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{
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AVI_InfoFrame AviInfo;
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alt_u8 pixelrep = 0;
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OS_PRINTF("HDMITX_SetAVIInfoFrame, VIC=%d, ColorMode=%d, Aspect-Ratio=%s, ITU709=%s\n",
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VIC, OutputColorMode, b16x9?"16:9":"4:3", ITU709?"Yes":"No");
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AviInfo.pktbyte.AVI_HB[0] = AVI_INFOFRAME_TYPE|0x80 ;
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AviInfo.pktbyte.AVI_HB[1] = AVI_INFOFRAME_VER ;
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AviInfo.pktbyte.AVI_HB[2] = AVI_INFOFRAME_LEN ;
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switch(OutputColorMode)
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{
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case F_MODE_YUV444:
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// AviInfo.info.ColorMode = 2 ;
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AviInfo.pktbyte.AVI_DB[0] = (2<<5)|(1<<4) ;
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break ;
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case F_MODE_YUV422:
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// AviInfo.info.ColorMode = 1 ;
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AviInfo.pktbyte.AVI_DB[0] = (1<<5)|(1<<4) ;
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break ;
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case F_MODE_RGB444:
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default:
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// AviInfo.info.ColorMode = 0 ;
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AviInfo.pktbyte.AVI_DB[0] = (0<<5)|(1<<4) ;
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break ;
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}
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AviInfo.pktbyte.AVI_DB[0] |= 2; // indicate "no overscan"
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AviInfo.pktbyte.AVI_DB[1] = 8 ;
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AviInfo.pktbyte.AVI_DB[1] |= (!b16x9)?(1<<4):(2<<4) ; // 4:3 or 16:9
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AviInfo.pktbyte.AVI_DB[1] |= (!ITU709)?(1<<6):(2<<6) ; // ITU709 or ITU601
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AviInfo.pktbyte.AVI_DB[2] = (1<<3) ; // indicate "full-range RGB"
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AviInfo.pktbyte.AVI_DB[3] = VIC ;
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AviInfo.pktbyte.AVI_DB[4] = pixelrep & 3 ;
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AviInfo.pktbyte.AVI_DB[5] = 0 ;
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AviInfo.pktbyte.AVI_DB[6] = 0 ;
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AviInfo.pktbyte.AVI_DB[7] = 0 ;
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AviInfo.pktbyte.AVI_DB[8] = 0 ;
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AviInfo.pktbyte.AVI_DB[9] = 0 ;
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AviInfo.pktbyte.AVI_DB[10] = 0 ;
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AviInfo.pktbyte.AVI_DB[11] = 0 ;
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AviInfo.pktbyte.AVI_DB[12] = 0 ;
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EnableAVIInfoFrame(TRUE, (unsigned char *)&AviInfo) ;
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}
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void HDMITX_ChangeVideoTiming(int VIC){
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int OutputVideoTiming = VIC;
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int HdmiColorMode;
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switch(bOutputColorMode)
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{
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case F_MODE_YUV444:
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HdmiColorMode = HDMI_YUV444;
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break ;
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case F_MODE_YUV422:
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HdmiColorMode = HDMI_YUV422;
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break ;
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case F_MODE_RGB444:
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default:
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HdmiColorMode = HDMI_RGB444;
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break ;
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}
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HDMITX_ChangeDisplayOption(OutputVideoTiming, HdmiColorMode); // just modify variable. Take effect when HDMITX_SetOutput is called in HDMITX_DevLoopProc
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}
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void HDMITX_ChangeVideoTimingAndColor(int VIC, COLOR_TYPE Color){
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int OutputVideoTiming = VIC;
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int HdmiColorMode;
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switch(Color)
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{
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case COLOR_YUV444:
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HdmiColorMode = HDMI_YUV444;
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break ;
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case COLOR_YUV422:
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HdmiColorMode = HDMI_YUV422;
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break ;
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case COLOR_RGB444:
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default:
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HdmiColorMode = HDMI_RGB444;
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break ;
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}
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HDMITX_ChangeDisplayOption(OutputVideoTiming, HdmiColorMode);
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}
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void HDMITX_DisableVideoOutput(void){
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DisableVideoOutput();
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}
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void HDMITX_EnableVideoOutput(void){
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HDMITX_SetOutput();
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}
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void HDMITX_SetColorSpace(COLOR_TYPE InputColor, COLOR_TYPE OutputColor){
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// DisableVideoOutput();
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bInputColorMode = InputColor;
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bOutputColorMode = OutputColor;
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// HDMITX_SetOutput();
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}
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bool HDMITX_IsSinkSupportYUV444(void){
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bool bSupport = FALSE;
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if (RxCapability.Valid && RxCapability.ValidHDMI && RxCapability.ValidCEA &&
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(RxCapability.VideoMode & CEA_SUPPORT_YUV444))
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bSupport = TRUE;
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return bSupport;
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}
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bool HDMITX_IsSinkSupportYUV422(void){
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bool bSupport = FALSE;
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if (RxCapability.Valid && RxCapability.ValidHDMI && RxCapability.ValidCEA &&
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(RxCapability.VideoMode & CEA_SUPPORT_YUV422))
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bSupport = TRUE;
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return bSupport;
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}
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bool HDMITX_IsSinkSupportColorDepth36(void){
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bool bSupport = FALSE;
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if (RxCapability.Valid && RxCapability.ValidHDMI && RxCapability.ValidCEA &&
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RxCapability.dc.info.DC_36Bit)
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bSupport = TRUE;
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return bSupport;
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}
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bool HDMITX_IsSinkSupportColorDepth30(void){
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bool bSupport = FALSE;
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if (RxCapability.Valid && RxCapability.ValidHDMI && RxCapability.ValidCEA &&
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RxCapability.dc.info.DC_30Bit)
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bSupport = TRUE;
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return bSupport;
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}
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void HDMITX_SetOutputColorDepth(int ColorDepth){
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SetOutputColorDepthPhase(ColorDepth, 0);
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}
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bool HDMITX_DevLoopProc()
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{
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static BYTE PreHPDChange = 0;
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static BYTE PreHPD = 0;
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BYTE HPD, HPDChange ;
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// Richard CheckHDMI(&HPD,&HPDChange) ;
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CheckHDMITX(&HPD,&HPDChange) ;
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if (HPD == PreHPD && HPDChange) // richard add
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return FALSE;
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TX_HDP = HPD;
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PreHPD = HPD;
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PreHPDChange = HPDChange;
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if( HPDChange )
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{
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OS_PRINTF("HPDChange\n");
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if( HPD )
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{
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OS_PRINTF("HPD=ON\n");
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RxCapability.Valid = ParseEDID() ;
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//bOutputColorMode = F_MODE_YUV444; //F_MODE_RGB444; // richard node. users can change color space here according to HDMI sink
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if( RxCapability.Valid && RxCapability.ValidHDMI )
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{
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OS_PRINTF("HDMI Display found\n");
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bHDMIMode = TRUE ;
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if(RxCapability.VideoMode & (1<<6))
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{
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bAudioEnable = TRUE ;
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}
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#if 0 // richard, don't care edid, the output always RGB444
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if( RxCapability.VideoMode & (1<<5))
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{
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bOutputColorMode &= ~F_MODE_CLRMOD_MASK ;
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bOutputColorMode |= F_MODE_YUV444;
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}
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else if (RxCapability.VideoMode & (1<<4))
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{
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bOutputColorMode &= ~F_MODE_CLRMOD_MASK ;
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bOutputColorMode |= F_MODE_YUV422 ;
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}
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#endif
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}
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else if (!RxCapability.Valid)
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{
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OS_PRINTF("Failed to read EDID\n");
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// enable it when edid fail
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bHDMIMode = TRUE ;
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bAudioEnable = TRUE ;
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}
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else
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{
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OS_PRINTF("Invalid HDMI Display\n");
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bHDMIMode = FALSE ;
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bAudioEnable = FALSE ;
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}
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OS_PRINTF("HDMITX_SetOutput\n");
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//HDMITX_SetOutput() ;
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}
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else
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{
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OS_PRINTF("HPD=OFF\n");
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// unplug mode, ...
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OS_PRINTF("DisableVideoOutput\n");
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//DisableVideoOutput() ;
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RxCapability.Valid = FALSE; // richard add
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RxCapability.ValidHDMI = FALSE; // richard add
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RxCapability.ValidCEA = FALSE; // richard add
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}
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}
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else // no stable but need to process mode change procedure
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{
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if(bChangeMode && HPD)
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{
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OS_PRINTF("HDMITX_SetOutput\n");
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HDMITX_SetOutput() ;
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}
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}
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return HPDChange;
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}
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