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198 lines
7.2 KiB
C++
198 lines
7.2 KiB
C++
// Copyright 2014 The Chromium Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE file.
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#include "ui/display/util/edid_parser.h"
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#include <algorithm>
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#include "base/hash.h"
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#include "base/strings/string_util.h"
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#include "base/sys_byteorder.h"
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namespace ui {
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namespace {
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// Returns 64-bit persistent ID for the specified manufacturer's ID and
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// product_code_hash, and the index of the output it is connected to.
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// |output_index| is used to distinguish the displays of the same type. For
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// example, swapping two identical display between two outputs will not be
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// treated as swap. The 'serial number' field in EDID isn't used here because
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// it is not guaranteed to have unique number and it may have the same fixed
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// value (like 0).
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int64_t GetID(uint16_t manufacturer_id,
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uint32_t product_code_hash,
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uint8_t output_index) {
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return ((static_cast<int64_t>(manufacturer_id) << 40) |
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(static_cast<int64_t>(product_code_hash) << 8) | output_index);
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}
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} // namespace
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bool GetDisplayIdFromEDID(const std::vector<uint8_t>& edid,
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uint8_t output_index,
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int64_t* display_id_out) {
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uint16_t manufacturer_id = 0;
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std::string product_name;
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// ParseOutputDeviceData fails if it doesn't have product_name.
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ParseOutputDeviceData(edid, &manufacturer_id, &product_name);
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// Generates product specific value from product_name instead of product code.
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// See crbug.com/240341
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uint32_t product_code_hash = product_name.empty() ?
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0 : base::Hash(product_name);
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if (manufacturer_id != 0) {
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// An ID based on display's index will be assigned later if this call
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// fails.
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*display_id_out = GetID(
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manufacturer_id, product_code_hash, output_index);
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return true;
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}
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return false;
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}
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bool ParseOutputDeviceData(const std::vector<uint8_t>& edid,
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uint16_t* manufacturer_id,
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std::string* human_readable_name) {
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// See http://en.wikipedia.org/wiki/Extended_display_identification_data
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// for the details of EDID data format. We use the following data:
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// bytes 8-9: manufacturer EISA ID, in big-endian
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// bytes 54-125: four descriptors (18-bytes each) which may contain
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// the display name.
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const unsigned int kManufacturerOffset = 8;
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const unsigned int kManufacturerLength = 2;
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const unsigned int kDescriptorOffset = 54;
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const unsigned int kNumDescriptors = 4;
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const unsigned int kDescriptorLength = 18;
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// The specifier types.
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const unsigned char kMonitorNameDescriptor = 0xfc;
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if (manufacturer_id) {
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if (edid.size() < kManufacturerOffset + kManufacturerLength) {
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LOG(ERROR) << "too short EDID data: manifacturer id";
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return false;
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}
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*manufacturer_id =
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*reinterpret_cast<const uint16_t*>(&edid[kManufacturerOffset]);
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#if defined(ARCH_CPU_LITTLE_ENDIAN)
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*manufacturer_id = base::ByteSwap(*manufacturer_id);
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#endif
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}
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if (!human_readable_name)
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return true;
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human_readable_name->clear();
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for (unsigned int i = 0; i < kNumDescriptors; ++i) {
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if (edid.size() < kDescriptorOffset + (i + 1) * kDescriptorLength)
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break;
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size_t offset = kDescriptorOffset + i * kDescriptorLength;
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// If the descriptor contains the display name, it has the following
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// structure:
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// bytes 0-2, 4: \0
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// byte 3: descriptor type, defined above.
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// bytes 5-17: text data, ending with \r, padding with spaces
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// we should check bytes 0-2 and 4, since it may have other values in
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// case that the descriptor contains other type of data.
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if (edid[offset] == 0 && edid[offset + 1] == 0 && edid[offset + 2] == 0 &&
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edid[offset + 3] == kMonitorNameDescriptor && edid[offset + 4] == 0) {
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std::string found_name(reinterpret_cast<const char*>(&edid[offset + 5]),
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kDescriptorLength - 5);
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base::TrimWhitespaceASCII(
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found_name, base::TRIM_TRAILING, human_readable_name);
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break;
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}
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}
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// Verify if the |human_readable_name| consists of printable characters only.
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for (size_t i = 0; i < human_readable_name->size(); ++i) {
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char c = (*human_readable_name)[i];
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if (!isascii(c) || !isprint(c)) {
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human_readable_name->clear();
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LOG(ERROR) << "invalid EDID: human unreadable char in name";
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return false;
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}
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}
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return true;
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}
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bool ParseOutputOverscanFlag(const std::vector<uint8_t>& edid,
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bool* flag) {
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// See http://en.wikipedia.org/wiki/Extended_display_identification_data
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// for the extension format of EDID. Also see EIA/CEA-861 spec for
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// the format of the extensions and how video capability is encoded.
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// - byte 0: tag. should be 02h.
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// - byte 1: revision. only cares revision 3 (03h).
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// - byte 4-: data block.
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const unsigned int kExtensionBase = 128;
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const unsigned int kExtensionSize = 128;
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const unsigned int kNumExtensionsOffset = 126;
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const unsigned int kDataBlockOffset = 4;
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const unsigned char kCEAExtensionTag = '\x02';
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const unsigned char kExpectedExtensionRevision = '\x03';
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const unsigned char kExtendedTag = 7;
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const unsigned char kExtendedVideoCapabilityTag = 0;
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const unsigned int kPTOverscan = 4;
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const unsigned int kITOverscan = 2;
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const unsigned int kCEOverscan = 0;
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if (edid.size() <= kNumExtensionsOffset)
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return false;
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unsigned char num_extensions = edid[kNumExtensionsOffset];
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for (size_t i = 0; i < num_extensions; ++i) {
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// Skip parsing the whole extension if size is not enough.
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if (edid.size() < kExtensionBase + (i + 1) * kExtensionSize)
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break;
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size_t extension_offset = kExtensionBase + i * kExtensionSize;
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unsigned char tag = edid[extension_offset];
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unsigned char revision = edid[extension_offset + 1];
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if (tag != kCEAExtensionTag || revision != kExpectedExtensionRevision)
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continue;
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unsigned char timing_descriptors_start = std::min(
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edid[extension_offset + 2], static_cast<unsigned char>(kExtensionSize));
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for (size_t data_offset = extension_offset + kDataBlockOffset;
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data_offset < extension_offset + timing_descriptors_start;) {
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// A data block is encoded as:
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// - byte 1 high 3 bits: tag. '07' for extended tags.
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// - byte 1 remaining bits: the length of data block.
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// - byte 2: the extended tag. '0' for video capability.
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// - byte 3: the capability.
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unsigned char tag = edid[data_offset] >> 5;
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unsigned char payload_length = edid[data_offset] & 0x1f;
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if (data_offset + payload_length > edid.size())
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break;
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if (tag != kExtendedTag || payload_length < 2 ||
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edid[data_offset + 1] != kExtendedVideoCapabilityTag) {
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data_offset += payload_length + 1;
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continue;
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}
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// The difference between preferred, IT, and CE video formats
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// doesn't matter. Sets |flag| to true if any of these flags are true.
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if ((edid[data_offset + 2] & (1 << kPTOverscan)) ||
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(edid[data_offset + 2] & (1 << kITOverscan)) ||
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(edid[data_offset + 2] & (1 << kCEOverscan))) {
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*flag = true;
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} else {
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*flag = false;
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}
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return true;
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}
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}
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return false;
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}
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} // namespace ui
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