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* Do not simulate freeze in decoded output file when frames have been dropped. * Add more DCHECKs and consts. * Remove unused members |num_encoded_frames_| and |num_decoded_frames_|. * Move SdpVideoFormat conversion to TestConfig. Bug: webrtc:8448 Change-Id: Ia879141f36dc23427cd1abcaa66716656fbaac2a Reviewed-on: https://webrtc-review.googlesource.com/56802 Commit-Queue: Rasmus Brandt <brandtr@webrtc.org> Reviewed-by: Sergey Silkin <ssilkin@webrtc.org> Cr-Commit-Position: refs/heads/master@{#22239}
486 lines
19 KiB
C++
486 lines
19 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/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/codecs/vp8/simulcast_rate_allocator.h"
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#include "modules/video_coding/include/video_codec_initializer.h"
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#include "modules/video_coding/utility/default_video_bitrate_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/scale.h"
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namespace webrtc {
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namespace test {
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namespace {
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const int kMsToRtpTimestamp = kVideoPayloadTypeFrequency / 1000;
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std::unique_ptr<VideoBitrateAllocator> CreateBitrateAllocator(
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TestConfig* config) {
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std::unique_ptr<TemporalLayersFactory> tl_factory;
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if (config->codec_settings.codecType == VideoCodecType::kVideoCodecVP8) {
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tl_factory.reset(new TemporalLayersFactory());
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config->codec_settings.VP8()->tl_factory = tl_factory.get();
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}
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return std::unique_ptr<VideoBitrateAllocator>(
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VideoCodecInitializer::CreateBitrateAllocator(config->codec_settings,
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std::move(tl_factory)));
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}
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size_t GetMaxNaluSizeBytes(const EncodedImage& encoded_frame,
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const TestConfig& 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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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 ExtractBufferWithSize(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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} // 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 TestConfig& config,
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Stats* 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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encoder_(encoder),
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decoders_(decoders),
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bitrate_allocator_(CreateBitrateAllocator(&config_)),
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encode_callback_(this),
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decode_callback_(this),
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input_frame_reader_(input_frame_reader),
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encoded_frame_writers_(encoded_frame_writers),
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decoded_frame_writers_(decoded_frame_writers),
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first_encoded_frame(true),
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last_inputed_frame_num_(0),
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last_encoded_frame_num_(0),
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last_encoded_simulcast_svc_idx_(0),
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last_decoded_frame_num_(0),
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stats_(stats) {
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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 && 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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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 (auto& decoder : *decoders_) {
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RTC_CHECK_EQ(decoder->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(decoder->RegisterDecodeCompleteCallback(&decode_callback_),
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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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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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RTC_CHECK(last_encoded_frames_.empty());
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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 frame from file.
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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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size_t rtp_timestamp =
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(frame_number > 0) ? input_frames_[frame_number - 1]->timestamp() : 0;
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rtp_timestamp +=
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kVideoPayloadTypeFrequency / config_.codec_settings.maxFramerate;
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input_frames_[frame_number] = rtc::MakeUnique<VideoFrame>(
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buffer, static_cast<uint32_t>(rtp_timestamp),
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static_cast<int64_t>(rtp_timestamp / kMsToRtpTimestamp),
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webrtc::kVideoRotation_0);
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std::vector<FrameType> frame_types = config_.FrameTypeForFrame(frame_number);
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// Create frame statistics object for all simulcast/spatial layers.
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for (size_t simulcast_svc_idx = 0;
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simulcast_svc_idx < num_simulcast_or_spatial_layers_;
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++simulcast_svc_idx) {
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stats_->AddFrame(rtp_timestamp, simulcast_svc_idx);
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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 simulcast_svc_idx = 0;
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simulcast_svc_idx < num_simulcast_or_spatial_layers_;
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++simulcast_svc_idx) {
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FrameStatistics* frame_stat =
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stats_->GetFrame(frame_number, simulcast_svc_idx);
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frame_stat->encode_start_ns = encode_start_ns;
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}
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const int encode_return_code =
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encoder_->Encode(*input_frames_[frame_number], nullptr, &frame_types);
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for (size_t simulcast_svc_idx = 0;
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simulcast_svc_idx < num_simulcast_or_spatial_layers_;
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++simulcast_svc_idx) {
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FrameStatistics* frame_stat =
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stats_->GetFrame(frame_number, simulcast_svc_idx);
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frame_stat->encode_return_code = encode_return_code;
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}
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// For async codecs frame decoding is done in frame encode callback.
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if (!config_.IsAsyncCodec()) {
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for (size_t simulcast_svc_idx = 0;
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simulcast_svc_idx < num_simulcast_or_spatial_layers_;
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++simulcast_svc_idx) {
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if (last_encoded_frames_.find(simulcast_svc_idx) !=
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last_encoded_frames_.end()) {
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EncodedImage& encoded_image = last_encoded_frames_[simulcast_svc_idx];
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FrameStatistics* frame_stat =
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stats_->GetFrame(frame_number, simulcast_svc_idx);
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if (encoded_frame_writers_) {
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RTC_CHECK(encoded_frame_writers_->at(simulcast_svc_idx)
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->WriteFrame(encoded_image,
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config_.codec_settings.codecType));
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}
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// For the highest measurement accuracy of the decode time, the
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// start/stop time recordings should wrap the Decode call as tightly as
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// possible.
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frame_stat->decode_start_ns = rtc::TimeNanos();
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frame_stat->decode_return_code =
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decoders_->at(simulcast_svc_idx)
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->Decode(encoded_image, false, nullptr);
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RTC_CHECK(encoded_image._buffer);
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delete[] encoded_image._buffer;
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encoded_image._buffer = nullptr;
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last_encoded_frames_.erase(simulcast_svc_idx);
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}
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}
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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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config_.codec_settings.maxFramerate = 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),
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static_cast<uint32_t>(framerate_fps));
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const int set_rates_result = encoder_->SetRateAllocation(
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bitrate_allocation_, static_cast<uint32_t>(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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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 = codec_specific.codecType;
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if (config_.encoded_frame_checker) {
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config_.encoded_frame_checker->CheckEncodedFrame(codec, encoded_image);
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}
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size_t simulcast_svc_idx = 0;
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size_t temporal_idx = 0;
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if (codec == kVideoCodecVP8) {
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simulcast_svc_idx = codec_specific.codecSpecific.VP8.simulcastIdx;
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temporal_idx = codec_specific.codecSpecific.VP8.temporalIdx;
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} else if (codec == kVideoCodecVP9) {
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simulcast_svc_idx = codec_specific.codecSpecific.VP9.spatial_idx;
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temporal_idx = codec_specific.codecSpecific.VP9.temporal_idx;
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}
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if (simulcast_svc_idx == kNoSpatialIdx) {
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simulcast_svc_idx = 0;
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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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const size_t frame_wxh =
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encoded_image._encodedWidth * encoded_image._encodedHeight;
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frame_wxh_to_simulcast_svc_idx_[frame_wxh] = simulcast_svc_idx;
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FrameStatistics* frame_stat = stats_->GetFrameWithTimestamp(
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encoded_image._timeStamp, simulcast_svc_idx);
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const size_t frame_number = frame_stat->frame_number;
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// Reordering is unexpected. Frames of different layers have the same value
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// of frame_number. VP8 multi-res delivers frames starting from hires layer.
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RTC_CHECK_GE(frame_number, last_encoded_frame_num_);
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// Ensure SVC spatial layers are delivered in ascending order.
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if (config_.NumberOfSpatialLayers() > 1) {
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RTC_CHECK(first_encoded_frame || frame_number >= last_encoded_frame_num_ ||
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simulcast_svc_idx > last_encoded_simulcast_svc_idx_);
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}
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first_encoded_frame = false;
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last_encoded_frame_num_ = frame_number;
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last_encoded_simulcast_svc_idx_ = simulcast_svc_idx;
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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 =
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GetElapsedTimeMicroseconds(frame_stat->encode_start_ns, encode_stop_ns);
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if (codec == 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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// TODO(ssilkin): Implement bitrate allocation for VP9 SVC. For now set
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// target for base layers equal to total target to avoid devision by zero
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// at analysis.
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frame_stat->target_bitrate_kbps = bitrate_allocation_.get_sum_kbps();
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} else {
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frame_stat->target_bitrate_kbps =
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(bitrate_allocation_.GetBitrate(simulcast_svc_idx, temporal_idx) +
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500) /
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1000;
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}
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frame_stat->encoded_frame_size_bytes = encoded_image._length;
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frame_stat->frame_type = encoded_image._frameType;
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frame_stat->temporal_layer_idx = temporal_idx;
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frame_stat->simulcast_svc_idx = simulcast_svc_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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if (!config_.IsAsyncCodec()) {
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// Store encoded frame. It will be decoded after all layers are encoded.
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CopyEncodedImage(encoded_image, codec, frame_number, simulcast_svc_idx);
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} else {
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const size_t simulcast_idx =
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codec == kVideoCodecVP8 ? codec_specific.codecSpecific.VP8.simulcastIdx
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: 0;
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frame_stat->decode_start_ns = rtc::TimeNanos();
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frame_stat->decode_return_code =
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decoders_->at(simulcast_idx)->Decode(encoded_image, false, nullptr);
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}
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}
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void VideoProcessor::FrameDecoded(const VideoFrame& decoded_frame) {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&sequence_checker_);
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// For the highest measurement accuracy of the decode time, the start/stop
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// time recordings should wrap the Decode call as tightly as possible.
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const int64_t decode_stop_ns = rtc::TimeNanos();
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RTC_CHECK(frame_wxh_to_simulcast_svc_idx_.find(decoded_frame.size()) !=
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frame_wxh_to_simulcast_svc_idx_.end());
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const size_t simulcast_svc_idx =
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frame_wxh_to_simulcast_svc_idx_[decoded_frame.size()];
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FrameStatistics* frame_stat = stats_->GetFrameWithTimestamp(
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decoded_frame.timestamp(), simulcast_svc_idx);
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const size_t frame_number = frame_stat->frame_number;
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// Reordering is unexpected. Frames of different layers have the same value
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// of frame_number.
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RTC_CHECK_GE(frame_number, last_decoded_frame_num_);
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last_decoded_frame_num_ = frame_number;
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// Update frame statistics.
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frame_stat->decoding_successful = true;
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frame_stat->decode_time_us =
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GetElapsedTimeMicroseconds(frame_stat->decode_start_ns, decode_stop_ns);
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frame_stat->decoded_width = decoded_frame.width();
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frame_stat->decoded_height = decoded_frame.height();
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// Skip quality metrics calculation to not affect CPU usage.
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if (!config_.measure_cpu) {
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CalculateFrameQuality(*input_frames_[frame_number], decoded_frame,
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frame_stat);
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}
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// Delay erasing of input frames by one frame. The current frame might
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// still be needed for other simulcast stream or spatial layer.
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if (frame_number > 0) {
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auto input_frame_erase_to = input_frames_.lower_bound(frame_number - 1);
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input_frames_.erase(input_frames_.begin(), input_frame_erase_to);
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}
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if (decoded_frame_writers_) {
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ExtractBufferWithSize(decoded_frame, config_.codec_settings.width,
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config_.codec_settings.height,
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&tmp_planar_i420_buffer_);
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RTC_CHECK(simulcast_svc_idx < decoded_frame_writers_->size());
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RTC_CHECK_EQ(tmp_planar_i420_buffer_.size(),
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decoded_frame_writers_->at(simulcast_svc_idx)->FrameLength());
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RTC_CHECK(decoded_frame_writers_->at(simulcast_svc_idx)
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->WriteFrame(tmp_planar_i420_buffer_.data()));
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}
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}
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void VideoProcessor::CopyEncodedImage(const EncodedImage& encoded_image,
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const VideoCodecType codec,
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size_t frame_number,
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size_t simulcast_svc_idx) {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&sequence_checker_);
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EncodedImage base_image;
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RTC_CHECK_EQ(base_image._length, 0);
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// Each SVC layer is decoded with dedicated decoder. Add data of base layers
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// to current coded frame buffer.
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if (config_.NumberOfSpatialLayers() > 1 && simulcast_svc_idx > 0) {
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RTC_CHECK(last_encoded_frames_.find(simulcast_svc_idx - 1) !=
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last_encoded_frames_.end());
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base_image = last_encoded_frames_[simulcast_svc_idx - 1];
|
|
}
|
|
|
|
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) {
|
|
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;
|
|
|
|
last_encoded_frames_[simulcast_svc_idx] = copied_image;
|
|
}
|
|
|
|
void VideoProcessor::CalculateFrameQuality(const VideoFrame& ref_frame,
|
|
const VideoFrame& dec_frame,
|
|
FrameStatistics* frame_stat) {
|
|
if (ref_frame.width() == dec_frame.width() ||
|
|
ref_frame.height() == dec_frame.height()) {
|
|
frame_stat->psnr = I420PSNR(&ref_frame, &dec_frame);
|
|
frame_stat->ssim = I420SSIM(&ref_frame, &dec_frame);
|
|
} else {
|
|
RTC_CHECK_GE(ref_frame.width(), dec_frame.width());
|
|
RTC_CHECK_GE(ref_frame.height(), dec_frame.height());
|
|
// Downscale reference frame. Use bilinear interpolation since it is used
|
|
// to get lowres inputs for encoder at simulcasting.
|
|
// TODO(ssilkin): Sync with VP9 SVC which uses 8-taps polyphase.
|
|
rtc::scoped_refptr<I420Buffer> scaled_buffer =
|
|
I420Buffer::Create(dec_frame.width(), dec_frame.height());
|
|
const I420BufferInterface& ref_buffer =
|
|
*ref_frame.video_frame_buffer()->ToI420();
|
|
I420Scale(ref_buffer.DataY(), ref_buffer.StrideY(), ref_buffer.DataU(),
|
|
ref_buffer.StrideU(), ref_buffer.DataV(), ref_buffer.StrideV(),
|
|
ref_buffer.width(), ref_buffer.height(),
|
|
scaled_buffer->MutableDataY(), scaled_buffer->StrideY(),
|
|
scaled_buffer->MutableDataU(), scaled_buffer->StrideU(),
|
|
scaled_buffer->MutableDataV(), scaled_buffer->StrideV(),
|
|
scaled_buffer->width(), scaled_buffer->height(),
|
|
libyuv::kFilterBox);
|
|
frame_stat->psnr =
|
|
I420PSNR(*scaled_buffer, *dec_frame.video_frame_buffer()->ToI420());
|
|
frame_stat->ssim =
|
|
I420SSIM(*scaled_buffer, *dec_frame.video_frame_buffer()->ToI420());
|
|
}
|
|
}
|
|
|
|
} // namespace test
|
|
} // namespace webrtc
|