#include "ui/display/util/edid_parser.h"
#include <stddef.h>
#include <algorithm>
#include <bitset>
#include "base/check.h"
#include "base/hash/hash.h"
#include "base/hash/md5.h"
#include "base/metrics/histogram_functions.h"
#include "base/strings/string_number_conversions.h"
#include "base/strings/string_util.h"
#include "base/strings/stringprintf.h"
#include "base/sys_byteorder.h"
#include "third_party/skia/include/core/SkColorSpace.h"
#include "ui/display/util/display_util.h"
#include "ui/gfx/geometry/size.h"
namespace display {
namespace {
constexpr char kParseEdidFailureMetric[] = "Display.ParseEdidFailure";
constexpr char kParseExternalDisplayEdidOptionalsMetric[] =
"Display.External.ParseEdidOptionals";
constexpr char kBlockZeroSerialNumberTypeMetric[] =
"Display.External.BlockZeroSerialNumberType";
constexpr char kNumOfSerialNumbersProvidedByExternalDisplay[] =
"Display.External.NumOfSerialNumbersProvided";
constexpr uint8_t kMaxSerialNumberCount = 2;
enum class ParseEdidFailure {
kNoError = 0,
kManufacturerId = 1,
kProductId = 2,
kYearOfManufacture = 3,
kBitsPerChannel = 4,
kGamma = 5,
kChromaticityCoordinates = 6,
kDisplayName = 7,
kExtensions = 8,
kSerialNumber = 9,
kWeekOfManufacture = 10,
kPhysicalSize = 11,
kMaxValue = kPhysicalSize,
};
enum class ParseEdidOptionals {
kAllAvailable = 0,
kBlockZeroSerialNumber = 1,
kDescriptorBlockSerialNumber = 2,
kWeekOfManufacture = 3,
kPhysicalSize = 4,
kMaxValue = kPhysicalSize,
};
enum class BlockZeroSerialNumberType {
kNormal = 0,
kRepeatingPattern = 1,
kNoSerialNumber = 2,
kMaxValue = kNoSerialNumber,
};
BlockZeroSerialNumberType GetSerialNumberType(const uint8_t serial_number[],
size_t size) {
int sum = serial_number[0];
bool all_equal = true;
for (size_t i = 1; i < size; ++i) {
sum += serial_number[i];
if (serial_number[i - 1] != serial_number[i])
all_equal = false;
}
if (sum == 0)
return BlockZeroSerialNumberType::kNoSerialNumber;
if (all_equal)
return BlockZeroSerialNumberType::kRepeatingPattern;
return BlockZeroSerialNumberType::kNormal;
}
}
EdidParser::EdidParser(const std::vector<uint8_t>& edid_blob, bool is_external)
: is_external_display_(is_external),
manufacturer_id_(0),
product_id_(0),
year_of_manufacture_(display::kInvalidYearOfManufacture),
gamma_(0.0),
bits_per_channel_(-1),
primaries_({0}),
audio_formats_(0) {
ParseEdid(edid_blob);
}
EdidParser::~EdidParser() = default;
uint32_t EdidParser::GetProductCode() const {
return ((static_cast<uint32_t>(manufacturer_id_) << 16) |
(static_cast<uint32_t>(product_id_)));
}
int64_t EdidParser::GetIndexBasedDisplayId(uint8_t output_index) const {
const uint32_t product_code_hash =
display_name_.empty() ? 0 : base::Hash(display_name_);
return GenerateDisplayID(manufacturer_id_, product_code_hash, output_index);
}
int64_t EdidParser::GetEdidBasedDisplayId() const {
const std::string string_to_hash =
base::NumberToString(manufacturer_id_) +
base::NumberToString(product_id_) + display_name_ +
base::NumberToString(week_of_manufacture()) +
base::NumberToString(year_of_manufacture_) + max_image_size().ToString() +
block_zero_serial_number_hash() + descriptor_block_serial_number_hash();
return static_cast<int64_t>(base::PersistentHash(string_to_hash));
}
void EdidParser::SplitProductCodeInManufacturerIdAndProductId(
int64_t product_code,
uint16_t* manufacturer_id,
uint16_t* product_id) {
DCHECK(manufacturer_id);
DCHECK(product_id);
*product_id = product_code & 0xFFFF;
*manufacturer_id = (product_code >> 16) & 0xFFFF;
}
std::string EdidParser::ManufacturerIdToString(uint16_t manufacturer_id) {
constexpr uint8_t kFiveBitAsciiMask = 0x1F;
constexpr char kFiveBitToAsciiOffset = 'A' - 1;
constexpr size_t kSecondLetterOffset = 5;
constexpr size_t kFirstLetterOffset = 10;
char out[4] = {};
out[2] = (manufacturer_id & kFiveBitAsciiMask) + kFiveBitToAsciiOffset;
out[1] = ((manufacturer_id >> kSecondLetterOffset) & kFiveBitAsciiMask) +
kFiveBitToAsciiOffset;
out[0] = ((manufacturer_id >> kFirstLetterOffset) & kFiveBitAsciiMask) +
kFiveBitToAsciiOffset;
return out;
}
std::string EdidParser::ProductIdToString(uint16_t product_id) {
uint8_t lower_char = (product_id >> 8) & 0xFF;
uint8_t upper_char = product_id & 0xFF;
return base::StringPrintf("%02X%02X", upper_char, lower_char);
}
void EdidParser::ParseEdid(const std::vector<uint8_t>& edid) {
constexpr size_t kManufacturerOffset = 8;
constexpr size_t kManufacturerLength = 2;
constexpr size_t kProductIdOffset = 10;
constexpr size_t kProductIdLength = 2;
if (edid.size() < kManufacturerOffset + kManufacturerLength) {
base::UmaHistogramEnumeration(kParseEdidFailureMetric,
ParseEdidFailure::kManufacturerId);
return;
}
manufacturer_id_ =
(edid[kManufacturerOffset] << 8) + edid[kManufacturerOffset + 1];
if (edid.size() < kProductIdOffset + kProductIdLength) {
base::UmaHistogramEnumeration(kParseEdidFailureMetric,
ParseEdidFailure::kProductId);
return;
}
product_id_ = (edid[kProductIdOffset] << 8) + edid[kProductIdOffset + 1];
constexpr size_t kSerialNumberOffset = 12;
constexpr size_t kSerialNumberLength = 4;
if (edid.size() < kSerialNumberOffset + kSerialNumberLength) {
base::UmaHistogramEnumeration(kParseEdidFailureMetric,
ParseEdidFailure::kSerialNumber);
return;
}
const uint8_t serial_number_bytes[kSerialNumberLength] = {
edid[kSerialNumberOffset], edid[kSerialNumberOffset + 1],
edid[kSerialNumberOffset + 2], edid[kSerialNumberOffset + 3]};
if (is_external_display_) {
base::UmaHistogramEnumeration(
kBlockZeroSerialNumberTypeMetric,
GetSerialNumberType(serial_number_bytes,
std::size(serial_number_bytes)));
}
const uint32_t serial_number =
serial_number_bytes[0] + (serial_number_bytes[1] << 8) +
(serial_number_bytes[2] << 16) + (serial_number_bytes[3] << 24);
if (serial_number) {
block_zero_serial_number_hash_ =
base::MD5String(base::NumberToString(serial_number));
}
constexpr size_t kWeekOfManufactureOffset = 16;
constexpr uint32_t kValidWeekValueUpperBound = 0x36;
constexpr uint32_t kModelYearMarker = 0xFF;
if (edid.size() < kWeekOfManufactureOffset + 1) {
base::UmaHistogramEnumeration(kParseEdidFailureMetric,
ParseEdidFailure::kWeekOfManufacture);
return;
}
{
const uint8_t byte_data = edid[kWeekOfManufactureOffset];
if ((byte_data > 0x00 && byte_data <= kValidWeekValueUpperBound) ||
byte_data == kModelYearMarker) {
week_of_manufacture_ = byte_data;
}
}
constexpr size_t kYearOfManufactureOffset = 17;
constexpr uint32_t kValidYearValueLowerBound = 0x10;
constexpr int32_t kYearOffset = 1990;
if (edid.size() < kYearOfManufactureOffset + 1) {
base::UmaHistogramEnumeration(kParseEdidFailureMetric,
ParseEdidFailure::kYearOfManufacture);
return;
}
{
const uint8_t byte_data = edid[kYearOfManufactureOffset];
if (byte_data >= kValidYearValueLowerBound)
year_of_manufacture_ = byte_data + kYearOffset;
}
static constexpr int kBitsPerChannelTable[] = {0, 6, 8, 10, 12, 14, 16, 0};
constexpr size_t kEDIDRevisionNumberOffset = 19;
constexpr uint8_t kEDIDRevision4Value = 4;
constexpr size_t kVideoInputDefinitionOffset = 20;
constexpr uint8_t kDigitalInfoMask = 0x80;
constexpr uint8_t kColorBitDepthMask = 0x70;
constexpr uint8_t kColorBitDepthOffset = 4;
if (edid.size() < kVideoInputDefinitionOffset + 1) {
base::UmaHistogramEnumeration(kParseEdidFailureMetric,
ParseEdidFailure::kBitsPerChannel);
return;
}
if (edid[kEDIDRevisionNumberOffset] >= kEDIDRevision4Value &&
(edid[kVideoInputDefinitionOffset] & kDigitalInfoMask)) {
bits_per_channel_ = kBitsPerChannelTable[(
(edid[kVideoInputDefinitionOffset] & kColorBitDepthMask) >>
kColorBitDepthOffset)];
}
constexpr size_t kEDIDMaxHorizontalImageSizeOffset = 21;
constexpr size_t kEDIDMaxVerticalImageSizeOffset = 22;
if (edid.size() < kEDIDMaxVerticalImageSizeOffset + 1) {
base::UmaHistogramEnumeration(kParseEdidFailureMetric,
ParseEdidFailure::kPhysicalSize);
return;
}
const gfx::Size max_image_size(edid[kEDIDMaxHorizontalImageSizeOffset],
edid[kEDIDMaxVerticalImageSizeOffset]);
if (!max_image_size.IsEmpty())
max_image_size_ = max_image_size;
constexpr size_t kGammaOffset = 23;
constexpr double kGammaMultiplier = 100.0;
constexpr double kGammaBias = 100.0;
if (edid.size() < kGammaOffset + 1) {
base::UmaHistogramEnumeration(kParseEdidFailureMetric,
ParseEdidFailure::kGamma);
return;
}
if (edid[kGammaOffset] != 0xFF) {
gamma_ = (edid[kGammaOffset] + kGammaBias) / kGammaMultiplier;
}
constexpr size_t kChromaticityOffset = 25;
constexpr unsigned int kChromaticityLength = 10;
constexpr size_t kRedGreenLsbOffset = 25;
constexpr uint8_t kRedxLsbPosition = 6;
constexpr uint8_t kRedyLsbPosition = 4;
constexpr uint8_t kGreenxLsbPosition = 2;
constexpr uint8_t kGreenyLsbPosition = 0;
constexpr size_t kBlueWhiteLsbOffset = 26;
constexpr uint8_t kBluexLsbPosition = 6;
constexpr uint8_t kBlueyLsbPosition = 4;
constexpr uint8_t kWhitexLsbPosition = 2;
constexpr uint8_t kWhiteyLsbPosition = 0;
constexpr uint8_t kLsbMask = 0x3;
constexpr size_t kRedxMsbOffset = 27;
constexpr size_t kRedyMsbOffset = 28;
constexpr size_t kGreenxMsbOffset = 29;
constexpr size_t kGreenyMsbOffset = 30;
constexpr size_t kBluexMsbOffset = 31;
constexpr size_t kBlueyMsbOffset = 32;
constexpr size_t kWhitexMsbOffset = 33;
constexpr size_t kWhiteyMsbOffset = 34;
static_assert(
kChromaticityOffset + kChromaticityLength == kWhiteyMsbOffset + 1,
"EDID Parameter section length error");
if (edid.size() < kChromaticityOffset + kChromaticityLength) {
base::UmaHistogramEnumeration(kParseEdidFailureMetric,
ParseEdidFailure::kChromaticityCoordinates);
return;
}
const uint8_t red_green_lsbs = edid[kRedGreenLsbOffset];
const uint8_t blue_white_lsbs = edid[kBlueWhiteLsbOffset];
primaries_.fRX = ((edid[kRedxMsbOffset] << 2) +
((red_green_lsbs >> kRedxLsbPosition) & kLsbMask)) /
1024.0f;
primaries_.fRY = ((edid[kRedyMsbOffset] << 2) +
((red_green_lsbs >> kRedyLsbPosition) & kLsbMask)) /
1024.0f;
primaries_.fGX = ((edid[kGreenxMsbOffset] << 2) +
((red_green_lsbs >> kGreenxLsbPosition) & kLsbMask)) /
1024.0f;
primaries_.fGY = ((edid[kGreenyMsbOffset] << 2) +
((red_green_lsbs >> kGreenyLsbPosition) & kLsbMask)) /
1024.0f;
primaries_.fBX = ((edid[kBluexMsbOffset] << 2) +
((blue_white_lsbs >> kBluexLsbPosition) & kLsbMask)) /
1024.0f;
primaries_.fBY = ((edid[kBlueyMsbOffset] << 2) +
((blue_white_lsbs >> kBlueyLsbPosition) & kLsbMask)) /
1024.0f;
primaries_.fWX = ((edid[kWhitexMsbOffset] << 2) +
((blue_white_lsbs >> kWhitexLsbPosition) & kLsbMask)) /
1024.0f;
primaries_.fWY = ((edid[kWhiteyMsbOffset] << 2) +
((blue_white_lsbs >> kWhiteyLsbPosition) & kLsbMask)) /
1024.0f;
constexpr size_t kDescriptorOffset = 54;
constexpr size_t kNumDescriptors = 4;
constexpr size_t kDescriptorLength = 18;
constexpr uint8_t kMonitorNameDescriptor = 0xfc;
constexpr uint8_t kDisplayRangeLimitsDescriptor = 0xfd;
constexpr uint8_t kMonitorSerialNumberDescriptor = 0xff;
display_name_.clear();
for (size_t i = 0; i < kNumDescriptors; ++i) {
if (edid.size() < kDescriptorOffset + (i + 1) * kDescriptorLength)
break;
size_t offset = kDescriptorOffset + i * kDescriptorLength;
if (edid[offset] != 0 && edid[offset + 1] != 0) {
constexpr int kMaxResolution = 10080;
if (active_pixel_size_.IsEmpty()) {
constexpr size_t kHorizontalPixelLsbOffset = 2;
constexpr size_t kHorizontalPixelMsbOffset = 4;
constexpr size_t kVerticalPixelLsbOffset = 5;
constexpr size_t kVerticalPixelMsbOffset = 7;
const uint8_t h_lsb = edid[offset + kHorizontalPixelLsbOffset];
const uint8_t h_msb = edid[offset + kHorizontalPixelMsbOffset];
int h_pixel = std::min(h_lsb + ((h_msb & 0xF0) << 4), kMaxResolution);
const uint8_t v_lsb = edid[offset + kVerticalPixelLsbOffset];
const uint8_t v_msb = edid[offset + kVerticalPixelMsbOffset];
int v_pixel = std::min(v_lsb + ((v_msb & 0xF0) << 4), kMaxResolution);
active_pixel_size_.SetSize(h_pixel, v_pixel);
}
continue;
}
if (edid[offset] == 0 && edid[offset + 1] == 0 && edid[offset + 2] == 0 &&
edid[offset + 3] == kMonitorNameDescriptor && edid[offset + 4] == 0) {
std::string name(reinterpret_cast<const char*>(&edid[offset + 5]),
kDescriptorLength - 5);
base::TrimWhitespaceASCII(name, base::TRIM_TRAILING, &display_name_);
continue;
}
if (edid[offset] == 0 && edid[offset + 1] == 0 && edid[offset + 2] == 0 &&
edid[offset + 3] == kDisplayRangeLimitsDescriptor) {
const uint8_t rateOffset = edid[offset + 4];
if (rateOffset & 0xf0)
continue;
const uint8_t verticalMinRateOffset = rateOffset & (1 << 0) ? 255 : 0;
if (edid[offset + 5] == 0 || edid[offset + 6] == 0 ||
edid[offset + 7] == 0 || edid[offset + 8] == 0)
continue;
vsync_rate_min_ = edid[offset + 5] + verticalMinRateOffset;
continue;
}
if (edid[offset] == 0 && edid[offset + 1] == 0 && edid[offset + 2] == 0 &&
edid[offset + 3] == kMonitorSerialNumberDescriptor &&
edid[offset + 4] == 0) {
std::string serial_number_str(
reinterpret_cast<const char*>(&edid[offset + 5]),
kDescriptorLength - 5);
base::TrimWhitespaceASCII(serial_number_str, base::TRIM_TRAILING,
&serial_number_str);
if (!serial_number_str.empty()) {
descriptor_block_serial_number_hash_ =
base::MD5String(serial_number_str);
}
continue;
}
}
std::replace_if(
display_name_.begin(), display_name_.end(),
[](char c) { return !isascii(c) || !isprint(c); }, ' ');
constexpr size_t kExtensionBaseOffset = 128;
constexpr size_t kExtensionSize = 128;
constexpr size_t kNumExtensionsOffset = 126;
constexpr size_t kDataBlockOffset = 4;
constexpr uint8_t kCEAExtensionTag = '\x02';
constexpr uint8_t kExpectedExtensionRevision = '\x03';
constexpr uint8_t kAudioTag = 1;
constexpr uint8_t kExtendedTag = 7;
constexpr uint8_t kExtendedVideoCapabilityTag = 0;
constexpr uint8_t kPTOverscanFlagPosition = 4;
constexpr uint8_t kITOverscanFlagPosition = 2;
constexpr uint8_t kCEOverscanFlagPosition = 0;
constexpr uint8_t kColorimetryDataBlockCapabilityTag = 0x05;
constexpr std::pair<gfx::ColorSpace::PrimaryID, gfx::ColorSpace::MatrixID>
kPrimaryMatrixIDMap[] = {
{gfx::ColorSpace::PrimaryID::SMPTE170M,
gfx::ColorSpace::MatrixID::SMPTE170M},
{gfx::ColorSpace::PrimaryID::BT709, gfx::ColorSpace::MatrixID::BT709},
{gfx::ColorSpace::PrimaryID::SMPTE170M,
gfx::ColorSpace::MatrixID::SMPTE170M},
{gfx::ColorSpace::PrimaryID::SMPTE170M,
gfx::ColorSpace::MatrixID::SMPTE170M},
{gfx::ColorSpace::PrimaryID::SMPTE170M,
gfx::ColorSpace::MatrixID::RGB},
{gfx::ColorSpace::PrimaryID::BT2020, gfx::ColorSpace::MatrixID::RGB},
{gfx::ColorSpace::PrimaryID::BT2020,
gfx::ColorSpace::MatrixID::BT2020_NCL},
{gfx::ColorSpace::PrimaryID::BT2020,
gfx::ColorSpace::MatrixID::BT2020_CL}};
constexpr uint8_t kHDRStaticMetadataCapabilityTag = 0x6;
constexpr gfx::ColorSpace::TransferID kTransferIDMap[] = {
gfx::ColorSpace::TransferID::BT709,
gfx::ColorSpace::TransferID::GAMMA24,
gfx::ColorSpace::TransferID::PQ,
gfx::ColorSpace::TransferID::HLG,
};
constexpr uint8_t kHDRStaticMetadataDataBlockLengthMask = 0x1F;
if (edid.size() < kNumExtensionsOffset + 1) {
base::UmaHistogramEnumeration(kParseEdidFailureMetric,
ParseEdidFailure::kExtensions);
return;
}
const uint8_t num_extensions = edid[kNumExtensionsOffset];
for (size_t i = 0; i < num_extensions; ++i) {
if (edid.size() < kExtensionBaseOffset + (i + 1) * kExtensionSize)
break;
const size_t extension_offset = kExtensionBaseOffset + i * kExtensionSize;
const uint8_t cea_tag = edid[extension_offset];
const uint8_t revision = edid[extension_offset + 1];
if (cea_tag != kCEAExtensionTag || revision != kExpectedExtensionRevision)
continue;
const uint8_t timing_descriptors_start = std::min(
edid[extension_offset + 2], static_cast<unsigned char>(kExtensionSize));
for (size_t data_offset = extension_offset + kDataBlockOffset;
data_offset < extension_offset + timing_descriptors_start;) {
const uint8_t tag = edid[data_offset] >> 5;
const uint8_t payload_length = edid[data_offset] & 0x1f;
if (data_offset + payload_length + 1 > edid.size())
break;
if (tag == kAudioTag) {
constexpr uint8_t kCEAShortAudioDescriptorLength = 3;
constexpr uint8_t kFormatBitsLPCM = 1;
constexpr uint8_t kFormatBitsDTS = 7;
constexpr uint8_t kFormatBitsDTSHD = 11;
for (int sad_index = 0;
sad_index + kCEAShortAudioDescriptorLength <= payload_length;
sad_index += kCEAShortAudioDescriptorLength) {
switch ((edid[data_offset + 1 + sad_index] >> 3) & 0x1F) {
case kFormatBitsLPCM:
audio_formats_ |= kAudioBitstreamPcmLinear;
break;
case kFormatBitsDTS:
audio_formats_ |= kAudioBitstreamDts;
break;
case kFormatBitsDTSHD:
audio_formats_ |= kAudioBitstreamDtsHd;
break;
}
}
data_offset += payload_length + 1;
continue;
}
if (tag != kExtendedTag || payload_length < 2) {
data_offset += payload_length + 1;
continue;
}
switch (edid[data_offset + 1]) {
case kExtendedVideoCapabilityTag:
overscan_flag_ =
(edid[data_offset + 2] & (1 << kPTOverscanFlagPosition)) ||
(edid[data_offset + 2] & (1 << kITOverscanFlagPosition)) ||
(edid[data_offset + 2] & (1 << kCEOverscanFlagPosition));
break;
case kColorimetryDataBlockCapabilityTag: {
constexpr size_t kMaxNumColorimetryEntries = 8;
const std::bitset<kMaxNumColorimetryEntries>
supported_primaries_bitfield(edid[data_offset + 2]);
static_assert(
kMaxNumColorimetryEntries == std::size(kPrimaryMatrixIDMap),
"kPrimaryIDMap should describe all possible colorimetry entries");
for (size_t entry = 0; entry < kMaxNumColorimetryEntries; ++entry) {
if (supported_primaries_bitfield[entry]) {
supported_color_primary_matrix_ids_.insert(
kPrimaryMatrixIDMap[entry]);
}
}
break;
}
case kHDRStaticMetadataCapabilityTag: {
constexpr size_t kMaxNumHDRStaticMetadataEntries = 4;
const std::bitset<kMaxNumHDRStaticMetadataEntries>
supported_eotfs_bitfield(edid[data_offset + 2]);
static_assert(
kMaxNumHDRStaticMetadataEntries == std::size(kTransferIDMap),
"kTransferIDMap should describe all possible transfer entries");
for (size_t entry = 0; entry < kMaxNumHDRStaticMetadataEntries;
++entry) {
if (supported_eotfs_bitfield[entry])
supported_color_transfer_ids_.insert(kTransferIDMap[entry]);
}
const uint8_t length_of_data_block =
edid[data_offset] & kHDRStaticMetadataDataBlockLengthMask;
if (length_of_data_block <= 3)
break;
const uint8_t desired_content_max_luminance = edid[data_offset + 4];
hdr_static_metadata_ =
absl::make_optional<gfx::HDRStaticMetadata>({});
hdr_static_metadata_->max =
50.0 * pow(2, desired_content_max_luminance / 32.0);
if (length_of_data_block <= 4)
break;
const uint8_t desired_content_max_frame_average_luminance =
edid[data_offset + 5];
hdr_static_metadata_->max_avg =
50.0 * pow(2, desired_content_max_frame_average_luminance / 32.0);
if (length_of_data_block <= 5)
break;
const uint8_t desired_content_min_luminance = edid[data_offset + 6];
hdr_static_metadata_->min =
hdr_static_metadata_->max *
pow(desired_content_min_luminance / 255.0, 2) / 100.0;
break;
}
default:
break;
}
data_offset += payload_length + 1;
}
}
base::UmaHistogramEnumeration(kParseEdidFailureMetric,
ParseEdidFailure::kNoError);
ReportEdidOptionalsForExternalDisplay();
}
void EdidParser::ReportEdidOptionalsForExternalDisplay() const {
if (!is_external_display_)
return;
bool all_optionals_available = true;
if (!week_of_manufacture_.has_value()) {
all_optionals_available = false;
base::UmaHistogramEnumeration(kParseExternalDisplayEdidOptionalsMetric,
ParseEdidOptionals::kWeekOfManufacture);
}
if (!max_image_size_.has_value()) {
all_optionals_available = false;
base::UmaHistogramEnumeration(kParseExternalDisplayEdidOptionalsMetric,
ParseEdidOptionals::kPhysicalSize);
}
uint8_t serial_number_count = kMaxSerialNumberCount;
if (!block_zero_serial_number_hash_.has_value()) {
all_optionals_available = false;
serial_number_count--;
base::UmaHistogramEnumeration(kParseExternalDisplayEdidOptionalsMetric,
ParseEdidOptionals::kBlockZeroSerialNumber);
}
if (!descriptor_block_serial_number_hash_.has_value()) {
all_optionals_available = false;
serial_number_count--;
base::UmaHistogramEnumeration(
kParseExternalDisplayEdidOptionalsMetric,
ParseEdidOptionals::kDescriptorBlockSerialNumber);
}
base::UmaHistogramExactLinear(kNumOfSerialNumbersProvidedByExternalDisplay,
serial_number_count, kMaxSerialNumberCount);
if (all_optionals_available) {
base::UmaHistogramEnumeration(kParseExternalDisplayEdidOptionalsMetric,
ParseEdidOptionals::kAllAvailable);
}
}
}