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The check finds implicit conversions of integer literals to bools: bool b1 = 1; bool b2 = static_cast<bool>(1); and transforms them to: bool b1 = true; bool b2 = true; Bug: chromium:1290142 Change-Id: I6819a0bd2ca84ecadae08ed9389c17d2652589f4 Reviewed-on: https://webrtc-review.googlesource.com/c/src/+/248166 Auto-Submit: Anton Bikineev <bikineev@chromium.org> Reviewed-by: Magnus Flodman <mflodman@webrtc.org> Commit-Queue: Anton Bikineev <bikineev@chromium.org> Cr-Commit-Position: refs/heads/main@{#35778}
533 lines
15 KiB
C++
533 lines
15 KiB
C++
/*
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* Copyright (c) 2017 The WebRTC project authors. All Rights Reserved.
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*
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* Use of this source code is governed by a BSD-style license
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* that can be found in the LICENSE file in the root of the source
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* tree. An additional intellectual property rights grant can be found
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* in the file PATENTS. All contributing project authors may
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* be found in the AUTHORS file in the root of the source tree.
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*/
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#include "modules/video_coding/utility/vp9_uncompressed_header_parser.h"
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#include "absl/numeric/bits.h"
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#include "absl/strings/string_view.h"
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#include "rtc_base/bitstream_reader.h"
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#include "rtc_base/logging.h"
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#include "rtc_base/strings/string_builder.h"
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namespace webrtc {
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namespace {
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const size_t kVp9NumRefsPerFrame = 3;
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const size_t kVp9MaxRefLFDeltas = 4;
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const size_t kVp9MaxModeLFDeltas = 2;
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const size_t kVp9MinTileWidthB64 = 4;
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const size_t kVp9MaxTileWidthB64 = 64;
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void Vp9ReadColorConfig(BitstreamReader& br,
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Vp9UncompressedHeader* frame_info) {
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if (frame_info->profile == 2 || frame_info->profile == 3) {
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frame_info->bit_detph =
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br.Read<bool>() ? Vp9BitDept::k12Bit : Vp9BitDept::k10Bit;
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} else {
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frame_info->bit_detph = Vp9BitDept::k8Bit;
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}
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frame_info->color_space = static_cast<Vp9ColorSpace>(br.ReadBits(3));
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if (frame_info->color_space != Vp9ColorSpace::CS_RGB) {
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frame_info->color_range =
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br.Read<bool>() ? Vp9ColorRange::kFull : Vp9ColorRange::kStudio;
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if (frame_info->profile == 1 || frame_info->profile == 3) {
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static constexpr Vp9YuvSubsampling kSubSamplings[] = {
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Vp9YuvSubsampling::k444, Vp9YuvSubsampling::k440,
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Vp9YuvSubsampling::k422, Vp9YuvSubsampling::k420};
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frame_info->sub_sampling = kSubSamplings[br.ReadBits(2)];
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if (br.Read<bool>()) {
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RTC_LOG(LS_WARNING) << "Failed to parse header. Reserved bit set.";
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br.Invalidate();
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return;
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}
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} else {
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// Profile 0 or 2.
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frame_info->sub_sampling = Vp9YuvSubsampling::k420;
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}
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} else {
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// SRGB
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frame_info->color_range = Vp9ColorRange::kFull;
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if (frame_info->profile == 1 || frame_info->profile == 3) {
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frame_info->sub_sampling = Vp9YuvSubsampling::k444;
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if (br.Read<bool>()) {
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RTC_LOG(LS_WARNING) << "Failed to parse header. Reserved bit set.";
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br.Invalidate();
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}
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} else {
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RTC_LOG(LS_WARNING) << "Failed to parse header. 4:4:4 color not supported"
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" in profile 0 or 2.";
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br.Invalidate();
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}
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}
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}
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void ReadRefreshFrameFlags(BitstreamReader& br,
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Vp9UncompressedHeader* frame_info) {
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// Refresh frame flags.
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uint8_t flags = br.Read<uint8_t>();
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for (int i = 0; i < 8; ++i) {
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frame_info->updated_buffers.set(i, (flags & (0x01 << (7 - i))) != 0);
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}
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}
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void Vp9ReadFrameSize(BitstreamReader& br, Vp9UncompressedHeader* frame_info) {
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// 16 bits: frame (width|height) - 1.
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frame_info->frame_width = br.Read<uint16_t>() + 1;
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frame_info->frame_height = br.Read<uint16_t>() + 1;
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}
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void Vp9ReadRenderSize(size_t total_buffer_size_bits,
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BitstreamReader& br,
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Vp9UncompressedHeader* frame_info) {
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// render_and_frame_size_different
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if (br.Read<bool>()) {
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frame_info->render_size_offset_bits =
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total_buffer_size_bits - br.RemainingBitCount();
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// 16 bits: render (width|height) - 1.
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frame_info->render_width = br.Read<uint16_t>() + 1;
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frame_info->render_height = br.Read<uint16_t>() + 1;
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} else {
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frame_info->render_height = frame_info->frame_height;
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frame_info->render_width = frame_info->frame_width;
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}
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}
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void Vp9ReadFrameSizeFromRefs(BitstreamReader& br,
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Vp9UncompressedHeader* frame_info) {
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for (size_t i = 0; i < kVp9NumRefsPerFrame; i++) {
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// Size in refs.
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if (br.Read<bool>()) {
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frame_info->infer_size_from_reference = frame_info->reference_buffers[i];
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return;
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}
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}
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Vp9ReadFrameSize(br, frame_info);
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}
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void Vp9ReadLoopfilter(BitstreamReader& br) {
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// 6 bits: filter level.
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// 3 bits: sharpness level.
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br.ConsumeBits(9);
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if (!br.Read<bool>()) { // mode_ref_delta_enabled
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return;
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}
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if (!br.Read<bool>()) { // mode_ref_delta_update
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return;
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}
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for (size_t i = 0; i < kVp9MaxRefLFDeltas; i++) {
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if (br.Read<bool>()) { // update_ref_delta
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br.ConsumeBits(7);
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}
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}
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for (size_t i = 0; i < kVp9MaxModeLFDeltas; i++) {
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if (br.Read<bool>()) { // update_mode_delta
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br.ConsumeBits(7);
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}
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}
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}
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void Vp9ReadQp(BitstreamReader& br, Vp9UncompressedHeader* frame_info) {
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frame_info->base_qp = br.Read<uint8_t>();
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// yuv offsets
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frame_info->is_lossless = frame_info->base_qp == 0;
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for (int i = 0; i < 3; ++i) {
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if (br.Read<bool>()) { // if delta_coded
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// delta_q is a signed integer with leading 4 bits containing absolute
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// value and last bit containing sign. There are are two ways to represent
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// zero with such encoding.
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if ((br.ReadBits(5) & 0b1111'0) != 0) { // delta_q
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frame_info->is_lossless = false;
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}
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}
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}
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}
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void Vp9ReadSegmentationParams(BitstreamReader& br,
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Vp9UncompressedHeader* frame_info) {
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constexpr int kSegmentationFeatureBits[kVp9SegLvlMax] = {8, 6, 2, 0};
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constexpr bool kSegmentationFeatureSigned[kVp9SegLvlMax] = {true, true, false,
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false};
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frame_info->segmentation_enabled = br.Read<bool>();
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if (!frame_info->segmentation_enabled) {
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return;
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}
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if (br.Read<bool>()) { // update_map
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frame_info->segmentation_tree_probs.emplace();
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for (int i = 0; i < 7; ++i) {
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if (br.Read<bool>()) {
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(*frame_info->segmentation_tree_probs)[i] = br.Read<uint8_t>();
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} else {
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(*frame_info->segmentation_tree_probs)[i] = 255;
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}
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}
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// temporal_update
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frame_info->segmentation_pred_prob.emplace();
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if (br.Read<bool>()) {
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for (int i = 0; i < 3; ++i) {
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if (br.Read<bool>()) {
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(*frame_info->segmentation_pred_prob)[i] = br.Read<uint8_t>();
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} else {
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(*frame_info->segmentation_pred_prob)[i] = 255;
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}
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}
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} else {
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frame_info->segmentation_pred_prob->fill(255);
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}
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}
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if (br.Read<bool>()) { // segmentation_update_data
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frame_info->segmentation_is_delta = br.Read<bool>();
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for (size_t i = 0; i < kVp9MaxSegments; ++i) {
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for (size_t j = 0; j < kVp9SegLvlMax; ++j) {
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if (!br.Read<bool>()) { // feature_enabled
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continue;
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}
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if (kSegmentationFeatureBits[j] == 0) {
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// No feature bits used and no sign, just mark it and return.
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frame_info->segmentation_features[i][j] = 1;
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continue;
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}
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frame_info->segmentation_features[i][j] =
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br.ReadBits(kSegmentationFeatureBits[j]);
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if (kSegmentationFeatureSigned[j] && br.Read<bool>()) {
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(*frame_info->segmentation_features[i][j]) *= -1;
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}
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}
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}
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}
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}
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void Vp9ReadTileInfo(BitstreamReader& br, Vp9UncompressedHeader* frame_info) {
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size_t mi_cols = (frame_info->frame_width + 7) >> 3;
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size_t sb64_cols = (mi_cols + 7) >> 3;
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size_t min_log2 = 0;
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while ((kVp9MaxTileWidthB64 << min_log2) < sb64_cols) {
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++min_log2;
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}
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size_t max_log2 = 1;
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while ((sb64_cols >> max_log2) >= kVp9MinTileWidthB64) {
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++max_log2;
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}
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--max_log2;
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frame_info->tile_cols_log2 = min_log2;
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while (frame_info->tile_cols_log2 < max_log2) {
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if (br.Read<bool>()) {
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++frame_info->tile_cols_log2;
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} else {
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break;
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}
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}
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frame_info->tile_rows_log2 = 0;
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if (br.Read<bool>()) {
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++frame_info->tile_rows_log2;
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if (br.Read<bool>()) {
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++frame_info->tile_rows_log2;
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}
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}
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}
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const Vp9InterpolationFilter kLiteralToType[4] = {
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Vp9InterpolationFilter::kEightTapSmooth, Vp9InterpolationFilter::kEightTap,
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Vp9InterpolationFilter::kEightTapSharp, Vp9InterpolationFilter::kBilinear};
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} // namespace
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std::string Vp9UncompressedHeader::ToString() const {
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char buf[1024];
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rtc::SimpleStringBuilder oss(buf);
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oss << "Vp9UncompressedHeader { "
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<< "profile = " << profile;
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if (show_existing_frame) {
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oss << ", show_existing_frame = " << *show_existing_frame << " }";
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return oss.str();
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}
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oss << ", frame type = " << (is_keyframe ? "key" : "delta")
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<< ", show_frame = " << (show_frame ? "true" : "false")
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<< ", error_resilient = " << (error_resilient ? "true" : "false");
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oss << ", bit_depth = ";
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switch (bit_detph) {
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case Vp9BitDept::k8Bit:
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oss << "8bit";
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break;
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case Vp9BitDept::k10Bit:
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oss << "10bit";
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break;
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case Vp9BitDept::k12Bit:
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oss << "12bit";
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break;
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}
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if (color_space) {
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oss << ", color_space = ";
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switch (*color_space) {
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case Vp9ColorSpace::CS_UNKNOWN:
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oss << "unknown";
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break;
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case Vp9ColorSpace::CS_BT_601:
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oss << "CS_BT_601 Rec. ITU-R BT.601-7";
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break;
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case Vp9ColorSpace::CS_BT_709:
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oss << "Rec. ITU-R BT.709-6";
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break;
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case Vp9ColorSpace::CS_SMPTE_170:
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oss << "SMPTE-170";
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break;
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case Vp9ColorSpace::CS_SMPTE_240:
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oss << "SMPTE-240";
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break;
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case Vp9ColorSpace::CS_BT_2020:
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oss << "Rec. ITU-R BT.2020-2";
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break;
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case Vp9ColorSpace::CS_RESERVED:
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oss << "Reserved";
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break;
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case Vp9ColorSpace::CS_RGB:
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oss << "sRGB (IEC 61966-2-1)";
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break;
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}
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}
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if (color_range) {
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oss << ", color_range = ";
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switch (*color_range) {
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case Vp9ColorRange::kFull:
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oss << "full";
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break;
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case Vp9ColorRange::kStudio:
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oss << "studio";
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break;
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}
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}
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if (sub_sampling) {
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oss << ", sub_sampling = ";
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switch (*sub_sampling) {
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case Vp9YuvSubsampling::k444:
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oss << "444";
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break;
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case Vp9YuvSubsampling::k440:
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oss << "440";
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break;
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case Vp9YuvSubsampling::k422:
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oss << "422";
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break;
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case Vp9YuvSubsampling::k420:
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oss << "420";
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break;
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}
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}
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if (infer_size_from_reference) {
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oss << ", infer_frame_resolution_from = " << *infer_size_from_reference;
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} else {
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oss << ", frame_width = " << frame_width
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<< ", frame_height = " << frame_height;
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}
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if (render_width != 0 && render_height != 0) {
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oss << ", render_width = " << render_width
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<< ", render_height = " << render_height;
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}
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oss << ", base qp = " << base_qp;
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if (reference_buffers[0] != -1) {
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oss << ", last_buffer = " << reference_buffers[0];
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}
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if (reference_buffers[1] != -1) {
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oss << ", golden_buffer = " << reference_buffers[1];
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}
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if (reference_buffers[2] != -1) {
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oss << ", altref_buffer = " << reference_buffers[2];
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}
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oss << ", updated buffers = { ";
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bool first = true;
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for (int i = 0; i < 8; ++i) {
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if (updated_buffers.test(i)) {
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if (first) {
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first = false;
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} else {
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oss << ", ";
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}
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oss << i;
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}
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}
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oss << " }";
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oss << ", compressed_header_size_bytes = " << compressed_header_size;
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oss << " }";
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return oss.str();
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}
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void Parse(BitstreamReader& br,
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Vp9UncompressedHeader* frame_info,
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bool qp_only) {
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const size_t total_buffer_size_bits = br.RemainingBitCount();
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// Frame marker.
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if (br.ReadBits(2) != 0b10) {
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RTC_LOG(LS_WARNING) << "Failed to parse header. Frame marker should be 2.";
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br.Invalidate();
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return;
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}
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// Profile has low bit first.
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frame_info->profile = br.ReadBit();
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frame_info->profile |= br.ReadBit() << 1;
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if (frame_info->profile > 2 && br.Read<bool>()) {
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RTC_LOG(LS_WARNING)
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<< "Failed to parse header. Unsupported bitstream profile.";
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br.Invalidate();
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return;
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}
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// Show existing frame.
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if (br.Read<bool>()) {
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frame_info->show_existing_frame = br.ReadBits(3);
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return;
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}
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// Frame type: KEY_FRAME(0), INTER_FRAME(1).
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frame_info->is_keyframe = !br.Read<bool>();
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frame_info->show_frame = br.Read<bool>();
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frame_info->error_resilient = br.Read<bool>();
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if (frame_info->is_keyframe) {
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if (br.ReadBits(24) != 0x498342) {
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RTC_LOG(LS_WARNING) << "Failed to parse header. Invalid sync code.";
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br.Invalidate();
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return;
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}
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Vp9ReadColorConfig(br, frame_info);
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Vp9ReadFrameSize(br, frame_info);
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Vp9ReadRenderSize(total_buffer_size_bits, br, frame_info);
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// Key-frames implicitly update all buffers.
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frame_info->updated_buffers.set();
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} else {
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// Non-keyframe.
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bool is_intra_only = false;
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if (!frame_info->show_frame) {
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is_intra_only = br.Read<bool>();
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}
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if (!frame_info->error_resilient) {
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br.ConsumeBits(2); // Reset frame context.
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}
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if (is_intra_only) {
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if (br.ReadBits(24) != 0x498342) {
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RTC_LOG(LS_WARNING) << "Failed to parse header. Invalid sync code.";
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br.Invalidate();
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return;
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}
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if (frame_info->profile > 0) {
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Vp9ReadColorConfig(br, frame_info);
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} else {
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frame_info->color_space = Vp9ColorSpace::CS_BT_601;
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frame_info->sub_sampling = Vp9YuvSubsampling::k420;
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frame_info->bit_detph = Vp9BitDept::k8Bit;
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}
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frame_info->reference_buffers.fill(-1);
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ReadRefreshFrameFlags(br, frame_info);
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Vp9ReadFrameSize(br, frame_info);
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Vp9ReadRenderSize(total_buffer_size_bits, br, frame_info);
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} else {
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ReadRefreshFrameFlags(br, frame_info);
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frame_info->reference_buffers_sign_bias[0] = false;
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for (size_t i = 0; i < kVp9NumRefsPerFrame; i++) {
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frame_info->reference_buffers[i] = br.ReadBits(3);
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frame_info->reference_buffers_sign_bias[Vp9ReferenceFrame::kLast + i] =
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br.Read<bool>();
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}
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Vp9ReadFrameSizeFromRefs(br, frame_info);
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Vp9ReadRenderSize(total_buffer_size_bits, br, frame_info);
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frame_info->allow_high_precision_mv = br.Read<bool>();
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// Interpolation filter.
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if (br.Read<bool>()) {
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frame_info->interpolation_filter = Vp9InterpolationFilter::kSwitchable;
|
|
} else {
|
|
frame_info->interpolation_filter = kLiteralToType[br.ReadBits(2)];
|
|
}
|
|
}
|
|
}
|
|
|
|
if (!frame_info->error_resilient) {
|
|
// 1 bit: Refresh frame context.
|
|
// 1 bit: Frame parallel decoding mode.
|
|
br.ConsumeBits(2);
|
|
}
|
|
|
|
// Frame context index.
|
|
frame_info->frame_context_idx = br.ReadBits(2);
|
|
|
|
Vp9ReadLoopfilter(br);
|
|
|
|
// Read base QP.
|
|
Vp9ReadQp(br, frame_info);
|
|
|
|
if (qp_only) {
|
|
// Not interested in the rest of the header, return early.
|
|
return;
|
|
}
|
|
|
|
Vp9ReadSegmentationParams(br, frame_info);
|
|
Vp9ReadTileInfo(br, frame_info);
|
|
frame_info->compressed_header_size = br.Read<uint16_t>();
|
|
frame_info->uncompressed_header_size =
|
|
(total_buffer_size_bits / 8) - (br.RemainingBitCount() / 8);
|
|
}
|
|
|
|
absl::optional<Vp9UncompressedHeader> ParseUncompressedVp9Header(
|
|
rtc::ArrayView<const uint8_t> buf) {
|
|
BitstreamReader reader(buf);
|
|
Vp9UncompressedHeader frame_info;
|
|
Parse(reader, &frame_info, /*qp_only=*/false);
|
|
if (reader.Ok() && frame_info.frame_width > 0) {
|
|
return frame_info;
|
|
}
|
|
return absl::nullopt;
|
|
}
|
|
|
|
namespace vp9 {
|
|
|
|
bool GetQp(const uint8_t* buf, size_t length, int* qp) {
|
|
BitstreamReader reader(rtc::MakeArrayView(buf, length));
|
|
Vp9UncompressedHeader frame_info;
|
|
Parse(reader, &frame_info, /*qp_only=*/true);
|
|
if (!reader.Ok()) {
|
|
return false;
|
|
}
|
|
*qp = frame_info.base_qp;
|
|
return true;
|
|
}
|
|
|
|
} // namespace vp9
|
|
} // namespace webrtc
|