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LookingGlass/idd/LGIdd/CEdid.cpp
Geoffrey McRae 23e394fd57
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[idd] hdr: correct virtual monitor capabilities
2026-07-19 23:38:05 +10:00

618 lines
18 KiB
C++

/**
* Looking Glass
* Copyright © 2017-2026 The Looking Glass Authors
* https://looking-glass.io
*
* This program is free software; you can redistribute it and/or modify it
* under the terms of the GNU General Public License as published by the Free
* Software Foundation; either version 2 of the License, or (at your option)
* any later version.
*
* This program is distributed in the hope that it will be useful, but WITHOUT
* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
* more details.
*
* You should have received a copy of the GNU General Public License along
* with this program; if not, write to the Free Software Foundation, Inc., 59
* Temple Place, Suite 330, Boston, MA 02111-1307 USA
*/
#include "CEdid.h"
#include <algorithm>
#include <string.h>
static const UINT EDID_BLOCK_SIZE = 128;
static const UINT EDID_DTD_SIZE = 18;
static const UINT EDID_STANDARD_TIMING_COUNT = 8;
static const UINT EDID_BASE_DESCRIPTOR_COUNT = 4;
static const UINT EDID_BASE_DETAILED_TIMING_COUNT = 3;
static const UINT EDID_BASE_MONITOR_NAME_DESCRIPTOR_INDEX = 3;
static const UINT CTA_HEADER_SIZE = 4;
static const UINT CTA_DATA_BLOCK_MAX_PAYLOAD_SIZE = 31;
static const BYTE EDID_HEADER[8] = { 0x00, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0x00 };
static const WORD EDID_MANUFACTURER_ID_LGD = 0x30e4;
static const WORD EDID_PRODUCT_CODE = 0x1ddd;
static const BYTE EDID_SERIAL_NUMBER[4] = { 0x01, 0x00, 0x00, 0x00 };
static const BYTE EDID_MANUFACTURE_WEEK = 1;
static const BYTE EDID_MANUFACTURE_YEAR_2026 = 36; // 1990 + 36 = 2026
static const BYTE EDID_VERSION = 1;
static const BYTE EDID_REVISION = 4;
static const BYTE EDID_VIDEO_INPUT_DIGITAL_8BPC = 0xa0;
static const BYTE EDID_VIDEO_INPUT_DIGITAL_10BPC = 0xb0;
static const BYTE EDID_DISPLAY_GAMMA_2_2 = 0x78;
static const BYTE EDID_FEATURES_PREFERRED_TIMING_RGB = 0x0a;
static const BYTE EDID_FEATURES_PREFERRED_TIMING_SRGB = 0x0e;
static const BYTE EDID_STANDARD_TIMING_UNUSED_X = 0x01;
static const BYTE EDID_STANDARD_TIMING_UNUSED_AR_REFRESH = 0x01;
static const BYTE EDID_DESCRIPTOR_MONITOR_NAME = 0xfc;
static const BYTE EDID_DTD_FLAGS_DIGITAL_SEPARATE_SYNC_POSITIVE = 0x1e;
static const BYTE CTA_EXTENSION_TAG = 0x02;
static const BYTE CTA_REVISION = 0x03;
static const BYTE CTA_DATA_BLOCK_TAG_EXTENDED = 0x07;
static const BYTE CTA_DATA_BLOCK_LENGTH_MASK = 0x1f;
static const BYTE CTA_EXTENDED_TAG_COLORIMETRY = 0x05;
static const BYTE CTA_EXTENDED_TAG_HDR_STATIC_METADATA = 0x06;
static const BYTE CTA_HDR_EOTF_TRADITIONAL_SDR = (BYTE)(1 << 0);
static const BYTE CTA_HDR_EOTF_SMPTE_ST_2084 = (BYTE)(1 << 2);
static const BYTE CTA_HDR_STATIC_METADATA_TYPE_1 = (BYTE)(1 << 0);
// The virtual display is a transport rather than a physical light-emitting
// device. Advertise the complete PQ range so Windows preserves HDR content
// for the real host display instead of mapping it to an arbitrary virtual
// peak or frame-average limit. The maximum values encode approximately
// 10,000 cd/m^2, while zero leaves the nonexistent physical black level
// unspecified.
static const BYTE CTA_HDR_DESIRED_MAX_LUMINANCE = 245;
static const BYTE CTA_HDR_DESIRED_MAX_FRAME_AVG_LUMINANCE = 245;
static const BYTE CTA_HDR_DESIRED_MIN_LUMINANCE = 0;
static const BYTE CTA_COLORIMETRY_BT2020_RGB = (BYTE)(1 << 7);
#pragma pack(push, 1)
struct EdidLe16
{
BYTE lo;
BYTE hi;
};
struct EdidBe16
{
BYTE hi;
BYTE lo;
};
struct EdidStandardTiming
{
BYTE horizontalActivePixels;
BYTE aspectRatioAndRefreshRate;
};
struct EdidDetailedTimingDescriptor
{
EdidLe16 pixelClock10KHz;
BYTE hActiveLo;
BYTE hBlankLo;
BYTE hActiveBlankHi;
BYTE vActiveLo;
BYTE vBlankLo;
BYTE vActiveBlankHi;
BYTE hFrontPorchLo;
BYTE hSyncPulseWidthLo;
BYTE vFrontPorchSyncPulseWidthLo;
BYTE syncPorchPulseWidthHi;
BYTE imageWidthMmLo;
BYTE imageHeightMmLo;
BYTE imageSizeMmHi;
BYTE hBorder;
BYTE vBorder;
BYTE flags;
};
struct EdidMonitorNameDescriptor
{
EdidLe16 pixelClock;
BYTE reserved0;
BYTE descriptorTag;
BYTE reserved1;
char name[13];
};
union EdidDescriptor
{
EdidDetailedTimingDescriptor detailedTiming;
EdidMonitorNameDescriptor monitorName;
BYTE raw[EDID_DTD_SIZE];
};
struct EdidBaseBlock
{
BYTE header[8];
EdidBe16 manufacturerId;
EdidLe16 productCode;
BYTE serialNumber[4];
BYTE manufactureWeek;
BYTE manufactureYear;
BYTE version;
BYTE revision;
BYTE videoInputDefinition;
BYTE horizontalSizeCm;
BYTE verticalSizeCm;
BYTE displayGamma;
BYTE supportedFeatures;
BYTE chromaticityCoordinates[10];
BYTE establishedTimings[3];
EdidStandardTiming standardTimings[EDID_STANDARD_TIMING_COUNT];
EdidDescriptor descriptors[EDID_BASE_DESCRIPTOR_COUNT];
BYTE extensionBlockCount;
BYTE checksum;
};
struct CtaDataBlockHeader
{
BYTE value;
};
struct CtaExtensionBlock
{
BYTE tag;
BYTE revision;
BYTE dtdOffset;
BYTE flags;
BYTE payload[EDID_BLOCK_SIZE - CTA_HEADER_SIZE - 1];
BYTE checksum;
};
struct CtaHdrStaticMetadataDataBlock
{
CtaDataBlockHeader header;
BYTE extendedTag;
BYTE eotf;
BYTE staticMetadataDescriptor;
BYTE desiredContentMaxLuminance;
BYTE desiredContentMaxFrameAverageLuminance;
BYTE desiredContentMinLuminance;
};
struct CtaColorimetryDataBlock
{
CtaDataBlockHeader header;
BYTE extendedTag;
BYTE colorimetry;
BYTE metadataAndAdditionalColorimetry;
};
#pragma pack(pop)
static_assert(sizeof(EdidLe16) == 2, "Unexpected EDID little-endian word size");
static_assert(sizeof(EdidBe16) == 2, "Unexpected EDID big-endian word size");
static_assert(sizeof(EdidStandardTiming) == 2, "Unexpected EDID standard timing size");
static_assert(sizeof(EdidDetailedTimingDescriptor) == EDID_DTD_SIZE,
"Unexpected EDID detailed timing descriptor size");
static_assert(sizeof(EdidMonitorNameDescriptor) == EDID_DTD_SIZE,
"Unexpected EDID monitor name descriptor size");
static_assert(sizeof(EdidDescriptor) == EDID_DTD_SIZE,
"Unexpected EDID descriptor size");
static_assert(sizeof(EdidBaseBlock) == EDID_BLOCK_SIZE,
"Unexpected EDID base block size");
static_assert(sizeof(CtaExtensionBlock) == EDID_BLOCK_SIZE,
"Unexpected CTA extension block size");
static_assert(sizeof(CtaHdrStaticMetadataDataBlock) == 7,
"Unexpected HDR static metadata data block size");
static_assert(sizeof(CtaColorimetryDataBlock) == 4,
"Unexpected colorimetry data block size");
static_assert(CTA_HEADER_SIZE +
sizeof(CtaHdrStaticMetadataDataBlock) +
sizeof(CtaColorimetryDataBlock) <= EDID_BLOCK_SIZE - 1,
"CTA data blocks exceed extension block space");
static void SetBe16(EdidBe16& dst, DWORD value)
{
dst.hi = (BYTE)((value >> 8) & 0xff);
dst.lo = (BYTE)(value & 0xff);
}
static void SetLe16(EdidLe16& dst, DWORD value)
{
dst.lo = (BYTE)(value & 0xff);
dst.hi = (BYTE)((value >> 8) & 0xff);
}
static BYTE Lo8(DWORD value)
{
return (BYTE)(value & 0xff);
}
static BYTE PackMsbNibbles(DWORD upperValue, DWORD lowerValue)
{
return (BYTE)((((upperValue >> 8) & 0x0f) << 4) |
((lowerValue >> 8) & 0x0f));
}
static BYTE PackLowNibbles(DWORD upperValue, DWORD lowerValue)
{
return (BYTE)(((upperValue & 0x0f) << 4) |
(lowerValue & 0x0f));
}
static BYTE PackSyncPorchPulseWidthHi(
DWORD hFrontPorch,
DWORD hSyncPulseWidth,
DWORD vFrontPorch,
DWORD vSyncPulseWidth)
{
return (BYTE)(
(((hFrontPorch >> 8) & 0x03) << 6) |
(((hSyncPulseWidth >> 8) & 0x03) << 4) |
(((vFrontPorch >> 4) & 0x03) << 2) |
((vSyncPulseWidth >> 4) & 0x03));
}
static EdidStandardTiming MakeUnusedStandardTiming()
{
EdidStandardTiming timing = {};
timing.horizontalActivePixels = EDID_STANDARD_TIMING_UNUSED_X;
timing.aspectRatioAndRefreshRate = EDID_STANDARD_TIMING_UNUSED_AR_REFRESH;
return timing;
}
static WORD EdidChromaticity(double value)
{
return (WORD)min(1023.0, max(0.0, value * 1024.0 + 0.5));
}
static void SetChromaticityCoordinates(BYTE coordinates[10], bool hdr)
{
// Describe the wire gamut. Accelerated HDR uses the BT.2020 container;
// software rendering is SDR-only and uses the standard sRGB/BT.709 gamut.
const WORD rx = EdidChromaticity(hdr ? 0.7080 : 0.6400);
const WORD ry = EdidChromaticity(hdr ? 0.2920 : 0.3300);
const WORD gx = EdidChromaticity(hdr ? 0.1700 : 0.3000);
const WORD gy = EdidChromaticity(hdr ? 0.7970 : 0.6000);
const WORD bx = EdidChromaticity(hdr ? 0.1310 : 0.1500);
const WORD by = EdidChromaticity(hdr ? 0.0460 : 0.0600);
const WORD wx = EdidChromaticity(0.3127);
const WORD wy = EdidChromaticity(0.3290);
coordinates[0] = (BYTE)(((rx & 3) << 6) | ((ry & 3) << 4) |
((gx & 3) << 2) | (gy & 3));
coordinates[1] = (BYTE)(((bx & 3) << 6) | ((by & 3) << 4) |
((wx & 3) << 2) | (wy & 3));
coordinates[2] = (BYTE)(rx >> 2);
coordinates[3] = (BYTE)(ry >> 2);
coordinates[4] = (BYTE)(gx >> 2);
coordinates[5] = (BYTE)(gy >> 2);
coordinates[6] = (BYTE)(bx >> 2);
coordinates[7] = (BYTE)(by >> 2);
coordinates[8] = (BYTE)(wx >> 2);
coordinates[9] = (BYTE)(wy >> 2);
}
static BYTE GetVideoInputDefinition(bool hdr)
{
return hdr ?
EDID_VIDEO_INPUT_DIGITAL_10BPC :
EDID_VIDEO_INPUT_DIGITAL_8BPC;
}
static void InitEdidBaseBlock(EdidBaseBlock& base, bool hdr)
{
memcpy(base.header, EDID_HEADER, sizeof(base.header));
// Manufacturer ID: LGD, product/serial values identify the virtual monitor.
SetBe16(base.manufacturerId, EDID_MANUFACTURER_ID_LGD);
SetLe16(base.productCode , EDID_PRODUCT_CODE);
memcpy (base.serialNumber , EDID_SERIAL_NUMBER, sizeof(base.serialNumber));
base.manufactureWeek = EDID_MANUFACTURE_WEEK;
base.manufactureYear = EDID_MANUFACTURE_YEAR_2026;
base.version = EDID_VERSION;
base.revision = EDID_REVISION;
base.videoInputDefinition = GetVideoInputDefinition(hdr);
// This is a transport endpoint rather than a physical panel, so leave its
// physical dimensions unspecified instead of imposing a false DPI/aspect.
base.horizontalSizeCm = 0;
base.verticalSizeCm = 0;
base.displayGamma = EDID_DISPLAY_GAMMA_2_2;
base.supportedFeatures = hdr ?
EDID_FEATURES_PREFERRED_TIMING_RGB :
EDID_FEATURES_PREFERRED_TIMING_SRGB;
SetChromaticityCoordinates(base.chromaticityCoordinates, hdr);
for (UINT i = 0; i < EDID_STANDARD_TIMING_COUNT; ++i)
base.standardTimings[i] = MakeUnusedStandardTiming();
base.extensionBlockCount = 1;
}
bool CEdid::GetTiming(Timing& timing, const CSettings::DisplayMode& mode)
{
timing = {};
timing.hActive = mode.width;
timing.vActive = mode.height;
if (timing.hActive == 0 || timing.vActive == 0 || mode.refresh == 0)
return false;
timing.hBlank = std::max<DWORD>(160,
((timing.hActive / 20) + 7) & ~7UL);
timing.vBlank = std::max<DWORD>(30, timing.vActive / 20);
timing.hSync = std::max<DWORD>(32, timing.hActive / 100);
timing.hSync = (timing.hSync + 7) & ~7UL;
timing.hFront = std::max<DWORD>(48, timing.hBlank / 3);
timing.hFront = (timing.hFront + 7) & ~7UL;
if (timing.hFront + timing.hSync >= timing.hBlank)
{
timing.hFront = 48;
timing.hSync = 32;
}
timing.vFront = 3;
timing.vSync = 5;
if (timing.vFront + timing.vSync >= timing.vBlank)
return false;
const UINT64 pixelClock =
(UINT64)(timing.hActive + timing.hBlank) *
(UINT64)(timing.vActive + timing.vBlank) *
(UINT64)mode.refresh;
const UINT64 pixelClock10KHz = (pixelClock + 5000) / 10000;
timing.pixelClock = pixelClock10KHz * 10000;
return timing.pixelClock != 0;
}
static bool MakeDetailedTiming(
EdidDetailedTimingDescriptor& descriptor,
const CSettings::DisplayMode& mode)
{
memset(&descriptor, 0, sizeof(descriptor));
CEdid::Timing timing;
if (!CEdid::GetTiming(timing, mode) ||
timing.hActive > 4095 || timing.vActive > 4095 ||
timing.hBlank > 4095 || timing.vBlank > 4095)
return false;
const UINT64 pixelClock10KHz = timing.pixelClock / 10000;
if (pixelClock10KHz == 0 || pixelClock10KHz > 0xffff)
return false;
SetLe16(descriptor.pixelClock10KHz, (DWORD)pixelClock10KHz);
descriptor.hActiveLo = Lo8(timing.hActive);
descriptor.hBlankLo = Lo8(timing.hBlank);
descriptor.hActiveBlankHi = PackMsbNibbles(timing.hActive, timing.hBlank);
descriptor.vActiveLo = Lo8(timing.vActive);
descriptor.vBlankLo = Lo8(timing.vBlank);
descriptor.vActiveBlankHi = PackMsbNibbles(timing.vActive, timing.vBlank);
descriptor.hFrontPorchLo = Lo8(timing.hFront);
descriptor.hSyncPulseWidthLo = Lo8(timing.hSync);
descriptor.vFrontPorchSyncPulseWidthLo =
PackLowNibbles(timing.vFront, timing.vSync);
descriptor.syncPorchPulseWidthHi = PackSyncPorchPulseWidthHi(
timing.hFront, timing.hSync, timing.vFront, timing.vSync);
descriptor.imageWidthMmLo = 0;
descriptor.imageHeightMmLo = 0;
descriptor.imageSizeMmHi = 0;
descriptor.flags = EDID_DTD_FLAGS_DIGITAL_SEPARATE_SYNC_POSITIVE;
return true;
}
static void MakeMonitorName(
EdidMonitorNameDescriptor& monitorName,
const char* name)
{
memset(&monitorName, 0, sizeof(monitorName));
monitorName.descriptorTag = EDID_DESCRIPTOR_MONITOR_NAME;
UINT len = 0;
for (; len < sizeof(monitorName.name) && name[len]; ++len)
monitorName.name[len] = name[len];
if (len < sizeof(monitorName.name))
monitorName.name[len++] = '\n';
for (; len < sizeof(monitorName.name); ++len)
monitorName.name[len] = ' ';
}
static CtaDataBlockHeader MakeCtaDataBlockHeader(BYTE tag, UINT payloadSize)
{
CtaDataBlockHeader header = {};
if (payloadSize > CTA_DATA_BLOCK_MAX_PAYLOAD_SIZE)
payloadSize = CTA_DATA_BLOCK_MAX_PAYLOAD_SIZE;
header.value = (BYTE)((tag << 5) |
(payloadSize & CTA_DATA_BLOCK_LENGTH_MASK));
return header;
}
template <typename T>
static void AppendCtaDataBlock(BYTE* cta, UINT& offset, const T& block)
{
static_assert(sizeof(T) > sizeof(CtaDataBlockHeader),
"CTA data block has no payload");
static_assert(sizeof(T) - sizeof(CtaDataBlockHeader) <=
CTA_DATA_BLOCK_MAX_PAYLOAD_SIZE,
"CTA data block payload exceeds header length field");
memcpy(cta + offset, &block, sizeof(block));
offset += (UINT)sizeof(block);
}
static CtaHdrStaticMetadataDataBlock MakeCtaHdrStaticMetadataDataBlock()
{
CtaHdrStaticMetadataDataBlock block = {};
block.header = MakeCtaDataBlockHeader(CTA_DATA_BLOCK_TAG_EXTENDED,
(UINT)(sizeof(block) - sizeof(block.header)));
block.extendedTag = CTA_EXTENDED_TAG_HDR_STATIC_METADATA;
block.eotf = (BYTE)(
CTA_HDR_EOTF_TRADITIONAL_SDR |
CTA_HDR_EOTF_SMPTE_ST_2084);
block.staticMetadataDescriptor = CTA_HDR_STATIC_METADATA_TYPE_1;
block.desiredContentMaxLuminance = CTA_HDR_DESIRED_MAX_LUMINANCE;
block.desiredContentMaxFrameAverageLuminance = CTA_HDR_DESIRED_MAX_FRAME_AVG_LUMINANCE;
block.desiredContentMinLuminance = CTA_HDR_DESIRED_MIN_LUMINANCE;
return block;
}
static CtaColorimetryDataBlock MakeCtaColorimetryDataBlock()
{
CtaColorimetryDataBlock block = {};
block.header = MakeCtaDataBlockHeader(CTA_DATA_BLOCK_TAG_EXTENDED,
(UINT)(sizeof(block) - sizeof(block.header)));
block.extendedTag = CTA_EXTENDED_TAG_COLORIMETRY;
block.colorimetry = CTA_COLORIMETRY_BT2020_RGB;
block.metadataAndAdditionalColorimetry = 0;
return block;
}
void CEdid::SetChecksum(BYTE* block)
{
BYTE sum = 0;
for (UINT i = 0; i < EDID_BLOCK_SIZE - 1; ++i)
sum = (BYTE)(sum + block[i]);
block[EDID_BLOCK_SIZE - 1] = (BYTE)(0 - sum);
}
void CEdid::WriteMonitorName(BYTE* desc, const char* name)
{
EdidMonitorNameDescriptor monitorName = {};
MakeMonitorName(monitorName, name);
memcpy(desc, &monitorName, sizeof(monitorName));
}
bool CEdid::WriteDetailedTiming(BYTE* dtd, const CSettings::DisplayMode& mode)
{
EdidDetailedTimingDescriptor timing = {};
if (!MakeDetailedTiming(timing, mode))
return false;
memcpy(dtd, &timing, sizeof(timing));
return true;
}
void CEdid::Build(const CSettings::DisplayModes& modes, bool hdr)
{
m_data.assign(
static_cast<std::vector<BYTE, std::allocator<BYTE>>::size_type>(
EDID_BLOCK_SIZE) * 2,
0);
EdidBaseBlock baseBlock = {};
InitEdidBaseBlock(baseBlock, hdr);
CSettings::DisplayModes sorted = modes;
std::stable_sort(sorted.begin(), sorted.end(),
[](const CSettings::DisplayMode& a, const CSettings::DisplayMode& b)
{
if (a.preferred != b.preferred)
return a.preferred && !b.preferred;
if (a.width != b.width)
return a.width > b.width;
if (a.height != b.height)
return a.height > b.height;
return a.refresh > b.refresh;
});
UINT modeIndex = 0;
UINT baseDtdIndex = 0;
for (; modeIndex < sorted.size() &&
baseDtdIndex < EDID_BASE_DETAILED_TIMING_COUNT;
++modeIndex)
{
// never include the extra mode in the EDID
if (sorted[modeIndex].extraMode)
continue;
if (MakeDetailedTiming(
baseBlock.descriptors[baseDtdIndex].detailedTiming,
sorted[modeIndex]))
{
++baseDtdIndex;
}
}
MakeMonitorName(
baseBlock.descriptors[EDID_BASE_MONITOR_NAME_DESCRIPTOR_INDEX].monitorName,
"Looking Glass");
SetChecksum(reinterpret_cast<BYTE*>(&baseBlock));
memcpy(m_data.data(), &baseBlock, sizeof(baseBlock));
CtaExtensionBlock ctaBlock = {};
BYTE* cta = reinterpret_cast<BYTE*>(&ctaBlock);
ctaBlock.tag = CTA_EXTENSION_TAG;
ctaBlock.revision = CTA_REVISION;
UINT dataOffset = CTA_HEADER_SIZE;
if (hdr)
{
AppendCtaDataBlock(cta, dataOffset, MakeCtaHdrStaticMetadataDataBlock ());
AppendCtaDataBlock(cta, dataOffset, MakeCtaColorimetryDataBlock ());
}
ctaBlock.dtdOffset = (BYTE)dataOffset;
ctaBlock.flags = 0x00;
UINT ctaDtdWrite = dataOffset;
for (; modeIndex < sorted.size() &&
ctaDtdWrite + EDID_DTD_SIZE <= EDID_BLOCK_SIZE - 1;
++modeIndex)
{
// never include the extra mode in the EDID
if (sorted[modeIndex].extraMode)
continue;
if (WriteDetailedTiming(cta + ctaDtdWrite, sorted[modeIndex]))
ctaDtdWrite += EDID_DTD_SIZE;
}
SetChecksum(cta);
memcpy(m_data.data() + sizeof(baseBlock), &ctaBlock, sizeof(ctaBlock));
}