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Compared the original CL: https://webrtc-review.googlesource.com/c/src/+/94782 This new CL added backward compatible functions to WebRtcMediaEngineFactory so that internal projects will not be broken. Because of that, now we can revert all the changes to SDK and PeerConnection and do it in following CLs. This makes this CL cleaner. One temporary disadvantage of this is the media engine now need to take a dependency onto builtin video bitrate factory, but practically it just moved code around and should not result in a large binary size change. We can remove this dependency later if needed. Bug: webrtc:9513 Change-Id: I38708762ff365e4ca05974b99fac71edc739a756 Reviewed-on: https://webrtc-review.googlesource.com/c/109040 Commit-Queue: Jiawei Ou <ouj@fb.com> Reviewed-by: Kári Helgason <kthelgason@webrtc.org> Reviewed-by: Niels Moller <nisse@webrtc.org> Reviewed-by: Erik Språng <sprang@webrtc.org> Reviewed-by: Seth Hampson <shampson@webrtc.org> Reviewed-by: Sebastian Jansson <srte@webrtc.org> Cr-Commit-Position: refs/heads/master@{#25574}
587 lines
24 KiB
C++
587 lines
24 KiB
C++
/*
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* Copyright (c) 2012 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/codecs/test/videoprocessor.h"
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#include <algorithm>
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#include <limits>
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#include <utility>
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#include "api/video/builtin_video_bitrate_allocator_factory.h"
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#include "api/video/i420_buffer.h"
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#include "common_types.h" // NOLINT(build/include)
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#include "common_video/h264/h264_common.h"
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#include "common_video/libyuv/include/webrtc_libyuv.h"
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#include "modules/rtp_rtcp/include/rtp_rtcp_defines.h"
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#include "modules/video_coding/include/video_codec_initializer.h"
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#include "modules/video_coding/include/video_error_codes.h"
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#include "modules/video_coding/utility/default_video_bitrate_allocator.h"
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#include "modules/video_coding/utility/simulcast_rate_allocator.h"
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#include "rtc_base/checks.h"
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#include "rtc_base/timeutils.h"
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#include "test/gtest.h"
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#include "third_party/libyuv/include/libyuv/compare.h"
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#include "third_party/libyuv/include/libyuv/scale.h"
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namespace webrtc {
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namespace test {
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using FrameStatistics = VideoCodecTestStats::FrameStatistics;
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namespace {
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const int kMsToRtpTimestamp = kVideoPayloadTypeFrequency / 1000;
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const int kMaxBufferedInputFrames = 20;
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size_t GetMaxNaluSizeBytes(const EncodedImage& encoded_frame,
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const VideoCodecTestFixture::Config& config) {
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if (config.codec_settings.codecType != kVideoCodecH264)
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return 0;
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std::vector<webrtc::H264::NaluIndex> nalu_indices =
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webrtc::H264::FindNaluIndices(encoded_frame._buffer,
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encoded_frame._length);
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RTC_CHECK(!nalu_indices.empty());
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size_t max_size = 0;
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for (const webrtc::H264::NaluIndex& index : nalu_indices)
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max_size = std::max(max_size, index.payload_size);
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return max_size;
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}
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size_t GetTemporalLayerIndex(const CodecSpecificInfo& codec_specific) {
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size_t temporal_idx = 0;
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if (codec_specific.codecType == kVideoCodecVP8) {
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temporal_idx = codec_specific.codecSpecific.VP8.temporalIdx;
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} else if (codec_specific.codecType == kVideoCodecVP9) {
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temporal_idx = codec_specific.codecSpecific.VP9.temporal_idx;
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}
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if (temporal_idx == kNoTemporalIdx) {
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temporal_idx = 0;
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}
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return temporal_idx;
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}
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int GetElapsedTimeMicroseconds(int64_t start_ns, int64_t stop_ns) {
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int64_t diff_us = (stop_ns - start_ns) / rtc::kNumNanosecsPerMicrosec;
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RTC_DCHECK_GE(diff_us, std::numeric_limits<int>::min());
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RTC_DCHECK_LE(diff_us, std::numeric_limits<int>::max());
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return static_cast<int>(diff_us);
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}
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void ExtractI420BufferWithSize(const VideoFrame& image,
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int width,
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int height,
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rtc::Buffer* buffer) {
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if (image.width() != width || image.height() != height) {
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EXPECT_DOUBLE_EQ(static_cast<double>(width) / height,
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static_cast<double>(image.width()) / image.height());
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// Same aspect ratio, no cropping needed.
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rtc::scoped_refptr<I420Buffer> scaled(I420Buffer::Create(width, height));
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scaled->ScaleFrom(*image.video_frame_buffer()->ToI420());
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size_t length =
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CalcBufferSize(VideoType::kI420, scaled->width(), scaled->height());
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buffer->SetSize(length);
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RTC_CHECK_NE(ExtractBuffer(scaled, length, buffer->data()), -1);
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return;
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}
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// No resize.
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size_t length =
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CalcBufferSize(VideoType::kI420, image.width(), image.height());
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buffer->SetSize(length);
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RTC_CHECK_NE(ExtractBuffer(image, length, buffer->data()), -1);
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}
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void CalculateFrameQuality(const I420BufferInterface& ref_buffer,
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const I420BufferInterface& dec_buffer,
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FrameStatistics* frame_stat) {
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if (ref_buffer.width() != dec_buffer.width() ||
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ref_buffer.height() != dec_buffer.height()) {
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RTC_CHECK_GE(ref_buffer.width(), dec_buffer.width());
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RTC_CHECK_GE(ref_buffer.height(), dec_buffer.height());
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// Downscale reference frame.
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rtc::scoped_refptr<I420Buffer> scaled_buffer =
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I420Buffer::Create(dec_buffer.width(), dec_buffer.height());
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I420Scale(ref_buffer.DataY(), ref_buffer.StrideY(), ref_buffer.DataU(),
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ref_buffer.StrideU(), ref_buffer.DataV(), ref_buffer.StrideV(),
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ref_buffer.width(), ref_buffer.height(),
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scaled_buffer->MutableDataY(), scaled_buffer->StrideY(),
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scaled_buffer->MutableDataU(), scaled_buffer->StrideU(),
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scaled_buffer->MutableDataV(), scaled_buffer->StrideV(),
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scaled_buffer->width(), scaled_buffer->height(),
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libyuv::kFilterBox);
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CalculateFrameQuality(*scaled_buffer, dec_buffer, frame_stat);
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} else {
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const uint64_t sse_y = libyuv::ComputeSumSquareErrorPlane(
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dec_buffer.DataY(), dec_buffer.StrideY(), ref_buffer.DataY(),
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ref_buffer.StrideY(), dec_buffer.width(), dec_buffer.height());
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const uint64_t sse_u = libyuv::ComputeSumSquareErrorPlane(
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dec_buffer.DataU(), dec_buffer.StrideU(), ref_buffer.DataU(),
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ref_buffer.StrideU(), dec_buffer.width() / 2, dec_buffer.height() / 2);
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const uint64_t sse_v = libyuv::ComputeSumSquareErrorPlane(
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dec_buffer.DataV(), dec_buffer.StrideV(), ref_buffer.DataV(),
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ref_buffer.StrideV(), dec_buffer.width() / 2, dec_buffer.height() / 2);
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const size_t num_y_samples = dec_buffer.width() * dec_buffer.height();
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const size_t num_u_samples =
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dec_buffer.width() / 2 * dec_buffer.height() / 2;
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frame_stat->psnr_y = libyuv::SumSquareErrorToPsnr(sse_y, num_y_samples);
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frame_stat->psnr_u = libyuv::SumSquareErrorToPsnr(sse_u, num_u_samples);
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frame_stat->psnr_v = libyuv::SumSquareErrorToPsnr(sse_v, num_u_samples);
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frame_stat->psnr = libyuv::SumSquareErrorToPsnr(
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sse_y + sse_u + sse_v, num_y_samples + 2 * num_u_samples);
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frame_stat->ssim = I420SSIM(ref_buffer, dec_buffer);
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}
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}
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std::vector<FrameType> FrameTypeForFrame(
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const VideoCodecTestFixture::Config& config,
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size_t frame_idx) {
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if (config.keyframe_interval > 0 &&
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(frame_idx % config.keyframe_interval == 0)) {
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return {kVideoFrameKey};
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}
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return {kVideoFrameDelta};
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}
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} // namespace
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VideoProcessor::VideoProcessor(webrtc::VideoEncoder* encoder,
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VideoDecoderList* decoders,
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FrameReader* input_frame_reader,
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const VideoCodecTestFixture::Config& config,
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VideoCodecTestStats* stats,
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IvfFileWriterList* encoded_frame_writers,
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FrameWriterList* decoded_frame_writers)
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: config_(config),
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num_simulcast_or_spatial_layers_(
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std::max(config_.NumberOfSimulcastStreams(),
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config_.NumberOfSpatialLayers())),
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stats_(stats),
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encoder_(encoder),
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decoders_(decoders),
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bitrate_allocator_(
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CreateBuiltinVideoBitrateAllocatorFactory()
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->CreateVideoBitrateAllocator(config_.codec_settings)),
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framerate_fps_(0),
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encode_callback_(this),
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input_frame_reader_(input_frame_reader),
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merged_encoded_frames_(num_simulcast_or_spatial_layers_),
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encoded_frame_writers_(encoded_frame_writers),
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decoded_frame_writers_(decoded_frame_writers),
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last_inputed_frame_num_(0),
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last_inputed_timestamp_(0),
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first_encoded_frame_(num_simulcast_or_spatial_layers_, true),
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last_encoded_frame_num_(num_simulcast_or_spatial_layers_),
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first_decoded_frame_(num_simulcast_or_spatial_layers_, true),
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last_decoded_frame_num_(num_simulcast_or_spatial_layers_),
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decoded_frame_buffer_(num_simulcast_or_spatial_layers_),
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post_encode_time_ns_(0) {
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// Sanity checks.
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RTC_CHECK(rtc::TaskQueue::Current())
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<< "VideoProcessor must be run on a task queue.";
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RTC_CHECK(encoder);
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RTC_CHECK(decoders);
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RTC_CHECK_EQ(decoders->size(), num_simulcast_or_spatial_layers_);
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RTC_CHECK(input_frame_reader);
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RTC_CHECK(stats);
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RTC_CHECK(!encoded_frame_writers ||
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encoded_frame_writers->size() == num_simulcast_or_spatial_layers_);
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RTC_CHECK(!decoded_frame_writers ||
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decoded_frame_writers->size() == num_simulcast_or_spatial_layers_);
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// Setup required callbacks for the encoder and decoder and initialize them.
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RTC_CHECK_EQ(encoder_->RegisterEncodeCompleteCallback(&encode_callback_),
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WEBRTC_VIDEO_CODEC_OK);
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// Initialize codecs so that they are ready to receive frames.
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RTC_CHECK_EQ(encoder_->InitEncode(&config_.codec_settings,
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static_cast<int>(config_.NumberOfCores()),
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config_.max_payload_size_bytes),
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WEBRTC_VIDEO_CODEC_OK);
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for (size_t i = 0; i < num_simulcast_or_spatial_layers_; ++i) {
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decode_callback_.push_back(
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absl::make_unique<VideoProcessorDecodeCompleteCallback>(this, i));
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RTC_CHECK_EQ(
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decoders_->at(i)->InitDecode(&config_.codec_settings,
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static_cast<int>(config_.NumberOfCores())),
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WEBRTC_VIDEO_CODEC_OK);
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RTC_CHECK_EQ(decoders_->at(i)->RegisterDecodeCompleteCallback(
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decode_callback_.at(i).get()),
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WEBRTC_VIDEO_CODEC_OK);
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}
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}
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VideoProcessor::~VideoProcessor() {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&sequence_checker_);
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// Explicitly reset codecs, in case they don't do that themselves when they
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// go out of scope.
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RTC_CHECK_EQ(encoder_->Release(), WEBRTC_VIDEO_CODEC_OK);
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encoder_->RegisterEncodeCompleteCallback(nullptr);
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for (auto& decoder : *decoders_) {
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RTC_CHECK_EQ(decoder->Release(), WEBRTC_VIDEO_CODEC_OK);
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decoder->RegisterDecodeCompleteCallback(nullptr);
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}
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// Sanity check.
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RTC_CHECK_LE(input_frames_.size(), kMaxBufferedInputFrames);
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// Deal with manual memory management of EncodedImage's.
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for (size_t i = 0; i < num_simulcast_or_spatial_layers_; ++i) {
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uint8_t* buffer = merged_encoded_frames_.at(i)._buffer;
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if (buffer) {
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delete[] buffer;
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}
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}
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}
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void VideoProcessor::ProcessFrame() {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&sequence_checker_);
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const size_t frame_number = last_inputed_frame_num_++;
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// Get input frame and store for future quality calculation.
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rtc::scoped_refptr<I420BufferInterface> buffer =
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input_frame_reader_->ReadFrame();
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RTC_CHECK(buffer) << "Tried to read too many frames from the file.";
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const size_t timestamp =
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last_inputed_timestamp_ + kVideoPayloadTypeFrequency / framerate_fps_;
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VideoFrame input_frame(buffer, static_cast<uint32_t>(timestamp),
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static_cast<int64_t>(timestamp / kMsToRtpTimestamp),
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webrtc::kVideoRotation_0);
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// Store input frame as a reference for quality calculations.
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if (config_.decode && !config_.measure_cpu) {
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if (input_frames_.size() == kMaxBufferedInputFrames) {
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input_frames_.erase(input_frames_.begin());
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}
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input_frames_.emplace(frame_number, input_frame);
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}
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last_inputed_timestamp_ = timestamp;
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post_encode_time_ns_ = 0;
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// Create frame statistics object for all simulcast/spatial layers.
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for (size_t i = 0; i < num_simulcast_or_spatial_layers_; ++i) {
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FrameStatistics frame_stat(frame_number, timestamp, i);
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stats_->AddFrame(frame_stat);
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}
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// For the highest measurement accuracy of the encode time, the start/stop
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// time recordings should wrap the Encode call as tightly as possible.
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const int64_t encode_start_ns = rtc::TimeNanos();
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for (size_t i = 0; i < num_simulcast_or_spatial_layers_; ++i) {
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FrameStatistics* frame_stat = stats_->GetFrame(frame_number, i);
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frame_stat->encode_start_ns = encode_start_ns;
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}
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// Encode.
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const std::vector<FrameType> frame_types =
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FrameTypeForFrame(config_, frame_number);
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const int encode_return_code =
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encoder_->Encode(input_frame, nullptr, &frame_types);
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for (size_t i = 0; i < num_simulcast_or_spatial_layers_; ++i) {
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FrameStatistics* frame_stat = stats_->GetFrame(frame_number, i);
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frame_stat->encode_return_code = encode_return_code;
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}
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}
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void VideoProcessor::SetRates(size_t bitrate_kbps, size_t framerate_fps) {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&sequence_checker_);
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framerate_fps_ = static_cast<uint32_t>(framerate_fps);
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bitrate_allocation_ = bitrate_allocator_->GetAllocation(
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static_cast<uint32_t>(bitrate_kbps * 1000), framerate_fps_);
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const int set_rates_result =
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encoder_->SetRateAllocation(bitrate_allocation_, framerate_fps_);
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RTC_DCHECK_GE(set_rates_result, 0)
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<< "Failed to update encoder with new rate " << bitrate_kbps << ".";
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}
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int32_t VideoProcessor::VideoProcessorDecodeCompleteCallback::Decoded(
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VideoFrame& image) {
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// Post the callback to the right task queue, if needed.
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if (!task_queue_->IsCurrent()) {
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// There might be a limited amount of output buffers, make a copy to make
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// sure we don't block the decoder.
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VideoFrame copy(I420Buffer::Copy(*image.video_frame_buffer()->ToI420()),
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image.rotation(), image.timestamp_us());
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copy.set_timestamp(image.timestamp());
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task_queue_->PostTask([this, copy]() {
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video_processor_->FrameDecoded(copy, simulcast_svc_idx_);
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});
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return 0;
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}
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video_processor_->FrameDecoded(image, simulcast_svc_idx_);
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return 0;
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}
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void VideoProcessor::FrameEncoded(
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const webrtc::EncodedImage& encoded_image,
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const webrtc::CodecSpecificInfo& codec_specific) {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&sequence_checker_);
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// For the highest measurement accuracy of the encode time, the start/stop
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// time recordings should wrap the Encode call as tightly as possible.
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const int64_t encode_stop_ns = rtc::TimeNanos();
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const VideoCodecType codec_type = codec_specific.codecType;
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if (config_.encoded_frame_checker) {
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config_.encoded_frame_checker->CheckEncodedFrame(codec_type, encoded_image);
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}
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// Layer metadata.
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size_t spatial_idx = encoded_image.SpatialIndex().value_or(0);
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size_t temporal_idx = GetTemporalLayerIndex(codec_specific);
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FrameStatistics* frame_stat =
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stats_->GetFrameWithTimestamp(encoded_image.Timestamp(), spatial_idx);
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const size_t frame_number = frame_stat->frame_number;
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// Ensure that the encode order is monotonically increasing, within this
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// simulcast/spatial layer.
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RTC_CHECK(first_encoded_frame_[spatial_idx] ||
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last_encoded_frame_num_[spatial_idx] < frame_number);
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// Ensure SVC spatial layers are delivered in ascending order.
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if (!first_encoded_frame_[spatial_idx] &&
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config_.NumberOfSpatialLayers() > 1) {
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for (size_t i = 0; i < spatial_idx; ++i) {
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RTC_CHECK_LE(last_encoded_frame_num_[i], frame_number);
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}
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for (size_t i = spatial_idx + 1; i < num_simulcast_or_spatial_layers_;
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++i) {
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RTC_CHECK_GT(frame_number, last_encoded_frame_num_[i]);
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}
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}
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first_encoded_frame_[spatial_idx] = false;
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last_encoded_frame_num_[spatial_idx] = frame_number;
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// Update frame statistics.
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frame_stat->encoding_successful = true;
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frame_stat->encode_time_us = GetElapsedTimeMicroseconds(
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frame_stat->encode_start_ns, encode_stop_ns - post_encode_time_ns_);
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frame_stat->target_bitrate_kbps =
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bitrate_allocation_.GetTemporalLayerSum(spatial_idx, temporal_idx) / 1000;
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frame_stat->length_bytes = encoded_image._length;
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frame_stat->frame_type = encoded_image._frameType;
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frame_stat->temporal_idx = temporal_idx;
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frame_stat->max_nalu_size_bytes = GetMaxNaluSizeBytes(encoded_image, config_);
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frame_stat->qp = encoded_image.qp_;
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const size_t num_spatial_layers = config_.NumberOfSpatialLayers();
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bool end_of_picture = false;
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if (codec_type == kVideoCodecVP9) {
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const CodecSpecificInfoVP9& vp9_info = codec_specific.codecSpecific.VP9;
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frame_stat->inter_layer_predicted = vp9_info.inter_layer_predicted;
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frame_stat->non_ref_for_inter_layer_pred =
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vp9_info.non_ref_for_inter_layer_pred;
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end_of_picture = vp9_info.end_of_picture;
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} else {
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frame_stat->inter_layer_predicted = false;
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frame_stat->non_ref_for_inter_layer_pred = true;
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}
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const webrtc::EncodedImage* encoded_image_for_decode = &encoded_image;
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if (config_.decode || encoded_frame_writers_) {
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if (num_spatial_layers > 1) {
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encoded_image_for_decode = BuildAndStoreSuperframe(
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encoded_image, codec_type, frame_number, spatial_idx,
|
|
frame_stat->inter_layer_predicted);
|
|
}
|
|
}
|
|
|
|
if (config_.decode) {
|
|
DecodeFrame(*encoded_image_for_decode, spatial_idx);
|
|
|
|
if (end_of_picture && num_spatial_layers > 1) {
|
|
// If inter-layer prediction is enabled and upper layer was dropped then
|
|
// base layer should be passed to upper layer decoder. Otherwise decoder
|
|
// won't be able to decode next superframe.
|
|
const EncodedImage* base_image = nullptr;
|
|
const FrameStatistics* base_stat = nullptr;
|
|
for (size_t i = 0; i < num_spatial_layers; ++i) {
|
|
const bool layer_dropped = (first_decoded_frame_[i] ||
|
|
last_decoded_frame_num_[i] < frame_number);
|
|
|
|
// Ensure current layer was decoded.
|
|
RTC_CHECK(layer_dropped == false || i != spatial_idx);
|
|
|
|
if (!layer_dropped) {
|
|
base_image = &merged_encoded_frames_[i];
|
|
base_stat =
|
|
stats_->GetFrameWithTimestamp(encoded_image.Timestamp(), i);
|
|
} else if (base_image && !base_stat->non_ref_for_inter_layer_pred) {
|
|
DecodeFrame(*base_image, i);
|
|
}
|
|
}
|
|
}
|
|
} else {
|
|
frame_stat->decode_return_code = WEBRTC_VIDEO_CODEC_NO_OUTPUT;
|
|
}
|
|
|
|
if (encoded_frame_writers_) {
|
|
RTC_CHECK(encoded_frame_writers_->at(spatial_idx)
|
|
->WriteFrame(*encoded_image_for_decode,
|
|
config_.codec_settings.codecType));
|
|
}
|
|
|
|
if (!config_.encode_in_real_time) {
|
|
// To get pure encode time for next layers, measure time spent in encode
|
|
// callback and subtract it from encode time of next layers.
|
|
post_encode_time_ns_ += rtc::TimeNanos() - encode_stop_ns;
|
|
}
|
|
}
|
|
|
|
void VideoProcessor::FrameDecoded(const VideoFrame& decoded_frame,
|
|
size_t spatial_idx) {
|
|
RTC_DCHECK_CALLED_SEQUENTIALLY(&sequence_checker_);
|
|
|
|
// For the highest measurement accuracy of the decode time, the start/stop
|
|
// time recordings should wrap the Decode call as tightly as possible.
|
|
const int64_t decode_stop_ns = rtc::TimeNanos();
|
|
|
|
FrameStatistics* frame_stat =
|
|
stats_->GetFrameWithTimestamp(decoded_frame.timestamp(), spatial_idx);
|
|
const size_t frame_number = frame_stat->frame_number;
|
|
|
|
if (decoded_frame_writers_ && !first_decoded_frame_[spatial_idx]) {
|
|
// Fill drops with last decoded frame to make them look like freeze at
|
|
// playback and to keep decoded layers in sync.
|
|
for (size_t i = last_decoded_frame_num_[spatial_idx] + 1; i < frame_number;
|
|
++i) {
|
|
RTC_CHECK(decoded_frame_writers_->at(spatial_idx)
|
|
->WriteFrame(decoded_frame_buffer_[spatial_idx].data()));
|
|
}
|
|
}
|
|
|
|
// Ensure that the decode order is monotonically increasing, within this
|
|
// simulcast/spatial layer.
|
|
RTC_CHECK(first_decoded_frame_[spatial_idx] ||
|
|
last_decoded_frame_num_[spatial_idx] < frame_number);
|
|
first_decoded_frame_[spatial_idx] = false;
|
|
last_decoded_frame_num_[spatial_idx] = frame_number;
|
|
|
|
// Update frame statistics.
|
|
frame_stat->decoding_successful = true;
|
|
frame_stat->decode_time_us =
|
|
GetElapsedTimeMicroseconds(frame_stat->decode_start_ns, decode_stop_ns);
|
|
frame_stat->decoded_width = decoded_frame.width();
|
|
frame_stat->decoded_height = decoded_frame.height();
|
|
|
|
// Skip quality metrics calculation to not affect CPU usage.
|
|
if (!config_.measure_cpu) {
|
|
const auto reference_frame = input_frames_.find(frame_number);
|
|
RTC_CHECK(reference_frame != input_frames_.cend())
|
|
<< "The codecs are either buffering too much, dropping too much, or "
|
|
"being too slow relative the input frame rate.";
|
|
CalculateFrameQuality(
|
|
*reference_frame->second.video_frame_buffer()->ToI420(),
|
|
*decoded_frame.video_frame_buffer()->ToI420(), frame_stat);
|
|
|
|
// Erase all buffered input frames that we have moved past for all
|
|
// simulcast/spatial layers. Never buffer more than
|
|
// |kMaxBufferedInputFrames| frames, to protect against long runs of
|
|
// consecutive frame drops for a particular layer.
|
|
const auto min_last_decoded_frame_num = std::min_element(
|
|
last_decoded_frame_num_.cbegin(), last_decoded_frame_num_.cend());
|
|
const size_t min_buffered_frame_num = std::max(
|
|
0, static_cast<int>(frame_number) - kMaxBufferedInputFrames + 1);
|
|
RTC_CHECK(min_last_decoded_frame_num != last_decoded_frame_num_.cend());
|
|
const auto input_frames_erase_before = input_frames_.lower_bound(
|
|
std::max(*min_last_decoded_frame_num, min_buffered_frame_num));
|
|
input_frames_.erase(input_frames_.cbegin(), input_frames_erase_before);
|
|
}
|
|
|
|
if (decoded_frame_writers_) {
|
|
ExtractI420BufferWithSize(decoded_frame, config_.codec_settings.width,
|
|
config_.codec_settings.height,
|
|
&decoded_frame_buffer_[spatial_idx]);
|
|
RTC_CHECK_EQ(decoded_frame_buffer_[spatial_idx].size(),
|
|
decoded_frame_writers_->at(spatial_idx)->FrameLength());
|
|
RTC_CHECK(decoded_frame_writers_->at(spatial_idx)
|
|
->WriteFrame(decoded_frame_buffer_[spatial_idx].data()));
|
|
}
|
|
}
|
|
|
|
void VideoProcessor::DecodeFrame(const EncodedImage& encoded_image,
|
|
size_t spatial_idx) {
|
|
RTC_DCHECK_CALLED_SEQUENTIALLY(&sequence_checker_);
|
|
FrameStatistics* frame_stat =
|
|
stats_->GetFrameWithTimestamp(encoded_image.Timestamp(), spatial_idx);
|
|
|
|
frame_stat->decode_start_ns = rtc::TimeNanos();
|
|
frame_stat->decode_return_code =
|
|
decoders_->at(spatial_idx)->Decode(encoded_image, false, nullptr, 0);
|
|
}
|
|
|
|
const webrtc::EncodedImage* VideoProcessor::BuildAndStoreSuperframe(
|
|
const EncodedImage& encoded_image,
|
|
const VideoCodecType codec,
|
|
size_t frame_number,
|
|
size_t spatial_idx,
|
|
bool inter_layer_predicted) {
|
|
// Should only be called for SVC.
|
|
RTC_CHECK_GT(config_.NumberOfSpatialLayers(), 1);
|
|
|
|
EncodedImage base_image;
|
|
RTC_CHECK_EQ(base_image._length, 0);
|
|
|
|
// Each SVC layer is decoded with dedicated decoder. Find the nearest
|
|
// non-dropped base frame and merge it and current frame into superframe.
|
|
if (inter_layer_predicted) {
|
|
for (int base_idx = static_cast<int>(spatial_idx) - 1; base_idx >= 0;
|
|
--base_idx) {
|
|
EncodedImage lower_layer = merged_encoded_frames_.at(base_idx);
|
|
if (lower_layer.Timestamp() == encoded_image.Timestamp()) {
|
|
base_image = lower_layer;
|
|
break;
|
|
}
|
|
}
|
|
}
|
|
const size_t payload_size_bytes = base_image._length + encoded_image._length;
|
|
const size_t buffer_size_bytes =
|
|
payload_size_bytes + EncodedImage::GetBufferPaddingBytes(codec);
|
|
|
|
uint8_t* copied_buffer = new uint8_t[buffer_size_bytes];
|
|
RTC_CHECK(copied_buffer);
|
|
|
|
if (base_image._length) {
|
|
RTC_CHECK(base_image._buffer);
|
|
memcpy(copied_buffer, base_image._buffer, base_image._length);
|
|
}
|
|
memcpy(copied_buffer + base_image._length, encoded_image._buffer,
|
|
encoded_image._length);
|
|
|
|
EncodedImage copied_image = encoded_image;
|
|
copied_image = encoded_image;
|
|
copied_image._buffer = copied_buffer;
|
|
copied_image._length = payload_size_bytes;
|
|
copied_image._size = buffer_size_bytes;
|
|
|
|
// Replace previous EncodedImage for this spatial layer.
|
|
uint8_t* old_buffer = merged_encoded_frames_.at(spatial_idx)._buffer;
|
|
if (old_buffer) {
|
|
delete[] old_buffer;
|
|
}
|
|
merged_encoded_frames_.at(spatial_idx) = copied_image;
|
|
|
|
return &merged_encoded_frames_.at(spatial_idx);
|
|
}
|
|
|
|
} // namespace test
|
|
} // namespace webrtc
|