зеркало из https://github.com/mozilla/gecko-dev.git
563 строки
20 KiB
C++
563 строки
20 KiB
C++
/*
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* Copyright (c) 2014 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 "media/engine/simulcast_encoder_adapter.h"
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#include <algorithm>
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// NOTE(ajm): Path provided by gyp.
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#include "libyuv/scale.h" // NOLINT
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#include "api/video/i420_buffer.h"
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#include "api/video_codecs/video_encoder_factory.h"
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#include "media/engine/scopedvideoencoder.h"
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#include "modules/video_coding/codecs/vp8/screenshare_layers.h"
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#include "modules/video_coding/codecs/vp8/simulcast_rate_allocator.h"
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#include "rtc_base/checks.h"
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#include "system_wrappers/include/clock.h"
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namespace {
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const unsigned int kDefaultMinQp = 2;
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const unsigned int kDefaultMaxQp = 56;
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// Max qp for lowest spatial resolution when doing simulcast.
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const unsigned int kLowestResMaxQp = 45;
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uint32_t SumStreamMaxBitrate(int streams, const webrtc::VideoCodec& codec) {
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uint32_t bitrate_sum = 0;
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for (int i = 0; i < streams; ++i) {
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bitrate_sum += codec.simulcastStream[i].maxBitrate;
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}
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return bitrate_sum;
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}
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int NumberOfStreams(const webrtc::VideoCodec& codec) {
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int streams =
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codec.numberOfSimulcastStreams < 1 ? 1 : codec.numberOfSimulcastStreams;
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uint32_t simulcast_max_bitrate = SumStreamMaxBitrate(streams, codec);
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if (simulcast_max_bitrate == 0) {
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streams = 1;
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}
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return streams;
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}
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int VerifyCodec(const webrtc::VideoCodec* inst) {
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if (inst == nullptr) {
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return WEBRTC_VIDEO_CODEC_ERR_PARAMETER;
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}
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if (inst->maxFramerate < 1) {
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return WEBRTC_VIDEO_CODEC_ERR_PARAMETER;
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}
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// allow zero to represent an unspecified maxBitRate
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if (inst->maxBitrate > 0 && inst->startBitrate > inst->maxBitrate) {
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return WEBRTC_VIDEO_CODEC_ERR_PARAMETER;
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}
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if (inst->width <= 1 || inst->height <= 1) {
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return WEBRTC_VIDEO_CODEC_ERR_PARAMETER;
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}
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if (inst->VP8().automaticResizeOn && inst->numberOfSimulcastStreams > 1) {
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return WEBRTC_VIDEO_CODEC_ERR_PARAMETER;
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}
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return WEBRTC_VIDEO_CODEC_OK;
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}
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bool StreamResolutionCompare(const webrtc::SimulcastStream& a,
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const webrtc::SimulcastStream& b) {
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return std::tie(a.height, a.width, a.maxBitrate) <
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std::tie(b.height, b.width, b.maxBitrate);
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}
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// An EncodedImageCallback implementation that forwards on calls to a
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// SimulcastEncoderAdapter, but with the stream index it's registered with as
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// the first parameter to Encoded.
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class AdapterEncodedImageCallback : public webrtc::EncodedImageCallback {
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public:
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AdapterEncodedImageCallback(webrtc::SimulcastEncoderAdapter* adapter,
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size_t stream_idx)
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: adapter_(adapter), stream_idx_(stream_idx) {}
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EncodedImageCallback::Result OnEncodedImage(
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const webrtc::EncodedImage& encoded_image,
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const webrtc::CodecSpecificInfo* codec_specific_info,
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const webrtc::RTPFragmentationHeader* fragmentation) override {
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return adapter_->OnEncodedImage(stream_idx_, encoded_image,
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codec_specific_info, fragmentation);
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}
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private:
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webrtc::SimulcastEncoderAdapter* const adapter_;
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const size_t stream_idx_;
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};
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// Utility class used to adapt the simulcast id as reported by the temporal
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// layers factory, since each sub-encoder will report stream 0.
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class TemporalLayersFactoryAdapter : public webrtc::TemporalLayersFactory {
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public:
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TemporalLayersFactoryAdapter(int adapted_simulcast_id,
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const TemporalLayersFactory& tl_factory)
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: adapted_simulcast_id_(adapted_simulcast_id), tl_factory_(tl_factory) {}
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~TemporalLayersFactoryAdapter() override {}
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webrtc::TemporalLayers* Create(int simulcast_id, int temporal_layers,
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uint8_t initial_tl0_pic_idx) const override {
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return tl_factory_.Create(adapted_simulcast_id_, temporal_layers,
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initial_tl0_pic_idx);
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}
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std::unique_ptr<webrtc::TemporalLayersChecker> CreateChecker(
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int simulcast_id, int temporal_layers,
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uint8_t initial_tl0_pic_idx) const override {
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return tl_factory_.CreateChecker(adapted_simulcast_id_, temporal_layers,
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initial_tl0_pic_idx);
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}
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const int adapted_simulcast_id_;
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const TemporalLayersFactory& tl_factory_;
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};
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} // namespace
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namespace webrtc {
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SimulcastEncoderAdapter::SimulcastEncoderAdapter(VideoEncoderFactory* factory)
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: inited_(0),
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factory_(factory),
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cricket_factory_(nullptr),
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encoded_complete_callback_(nullptr),
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implementation_name_("SimulcastEncoderAdapter") {
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// The adapter is typically created on the worker thread, but operated on
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// the encoder task queue.
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encoder_queue_.Detach();
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memset(&codec_, 0, sizeof(webrtc::VideoCodec));
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}
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SimulcastEncoderAdapter::SimulcastEncoderAdapter(
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cricket::WebRtcVideoEncoderFactory* factory)
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: inited_(0),
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factory_(nullptr),
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cricket_factory_(factory),
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encoded_complete_callback_(nullptr),
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implementation_name_("SimulcastEncoderAdapter") {
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// The adapter is typically created on the worker thread, but operated on
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// the encoder task queue.
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encoder_queue_.Detach();
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memset(&codec_, 0, sizeof(webrtc::VideoCodec));
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}
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SimulcastEncoderAdapter::~SimulcastEncoderAdapter() {
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RTC_DCHECK(!Initialized());
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DestroyStoredEncoders();
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}
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int SimulcastEncoderAdapter::Release() {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&encoder_queue_);
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while (!streaminfos_.empty()) {
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std::unique_ptr<VideoEncoder> encoder =
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std::move(streaminfos_.back().encoder);
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// Even though it seems very unlikely, there are no guarantees that the
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// encoder will not call back after being Release()'d. Therefore, we first
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// disable the callbacks here.
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encoder->RegisterEncodeCompleteCallback(nullptr);
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encoder->Release();
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streaminfos_.pop_back(); // Deletes callback adapter.
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stored_encoders_.push(std::move(encoder));
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}
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// It's legal to move the encoder to another queue now.
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encoder_queue_.Detach();
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rtc::AtomicOps::ReleaseStore(&inited_, 0);
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return WEBRTC_VIDEO_CODEC_OK;
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}
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int SimulcastEncoderAdapter::InitEncode(const VideoCodec* inst,
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int number_of_cores,
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size_t max_payload_size) {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&encoder_queue_);
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if (number_of_cores < 1) {
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return WEBRTC_VIDEO_CODEC_ERR_PARAMETER;
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}
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int ret = VerifyCodec(inst);
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if (ret < 0) {
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return ret;
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}
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ret = Release();
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if (ret < 0) {
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return ret;
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}
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int number_of_streams = NumberOfStreams(*inst);
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RTC_DCHECK_LE(number_of_streams, kMaxSimulcastStreams);
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const bool doing_simulcast = (number_of_streams > 1);
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codec_ = *inst;
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SimulcastRateAllocator rate_allocator(codec_, nullptr);
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BitrateAllocation allocation = rate_allocator.GetAllocation(
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codec_.startBitrate * 1000, codec_.maxFramerate);
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std::vector<uint32_t> start_bitrates;
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for (int i = 0; i < kMaxSimulcastStreams; ++i) {
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uint32_t stream_bitrate = allocation.GetSpatialLayerSum(i) / 1000;
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start_bitrates.push_back(stream_bitrate);
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}
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std::string implementation_name;
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// Create |number_of_streams| of encoder instances and init them.
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const auto minmax = std::minmax_element(
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std::begin(codec_.simulcastStream),
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std::begin(codec_.simulcastStream) + number_of_streams,
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StreamResolutionCompare);
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const auto lowest_resolution_stream_index =
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std::distance(std::begin(codec_.simulcastStream), minmax.first);
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const auto highest_resolution_stream_index =
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std::distance(std::begin(codec_.simulcastStream), minmax.second);
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RTC_DCHECK_LT(lowest_resolution_stream_index, number_of_streams);
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RTC_DCHECK_LT(highest_resolution_stream_index, number_of_streams);
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for (int i = 0; i < number_of_streams; ++i) {
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VideoCodec stream_codec;
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uint32_t start_bitrate_kbps = start_bitrates[i];
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if (!doing_simulcast) {
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stream_codec = codec_;
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stream_codec.numberOfSimulcastStreams = 1;
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} else {
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// Cap start bitrate to the min bitrate in order to avoid strange codec
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// behavior. Since sending sending will be false, this should not matter.
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StreamResolution stream_resolution =
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i == highest_resolution_stream_index
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? StreamResolution::HIGHEST
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: i == lowest_resolution_stream_index ? StreamResolution::LOWEST
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: StreamResolution::OTHER;
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start_bitrate_kbps =
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std::max(codec_.simulcastStream[i].minBitrate, start_bitrate_kbps);
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PopulateStreamCodec(codec_, i, start_bitrate_kbps, stream_resolution,
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&stream_codec);
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}
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TemporalLayersFactoryAdapter tl_factory_adapter(i,
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*codec_.VP8()->tl_factory);
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stream_codec.VP8()->tl_factory = &tl_factory_adapter;
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// TODO(ronghuawu): Remove once this is handled in VP8EncoderImpl.
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if (stream_codec.qpMax < kDefaultMinQp) {
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stream_codec.qpMax = kDefaultMaxQp;
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}
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// If an existing encoder instance exists, reuse it.
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// TODO(brandtr): Set initial RTP state (e.g., picture_id/tl0_pic_idx) here,
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// when we start storing that state outside the encoder wrappers.
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std::unique_ptr<VideoEncoder> encoder;
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if (!stored_encoders_.empty()) {
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encoder = std::move(stored_encoders_.top());
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stored_encoders_.pop();
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} else {
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encoder = factory_ ? factory_->CreateVideoEncoder(SdpVideoFormat("VP8"))
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: CreateScopedVideoEncoder(cricket_factory_,
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cricket::VideoCodec("VP8"));
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}
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ret = encoder->InitEncode(&stream_codec, number_of_cores, max_payload_size);
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if (ret < 0) {
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// Explicitly destroy the current encoder; because we haven't registered a
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// StreamInfo for it yet, Release won't do anything about it.
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encoder.reset();
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Release();
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return ret;
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}
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std::unique_ptr<EncodedImageCallback> callback(
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new AdapterEncodedImageCallback(this, i));
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encoder->RegisterEncodeCompleteCallback(callback.get());
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streaminfos_.emplace_back(std::move(encoder), std::move(callback),
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stream_codec.width, stream_codec.height,
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start_bitrate_kbps > 0);
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if (i != 0) {
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implementation_name += ", ";
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}
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implementation_name += streaminfos_[i].encoder->ImplementationName();
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}
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if (doing_simulcast) {
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implementation_name_ =
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"SimulcastEncoderAdapter (" + implementation_name + ")";
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} else {
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implementation_name_ = implementation_name;
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}
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// To save memory, don't store encoders that we don't use.
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DestroyStoredEncoders();
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rtc::AtomicOps::ReleaseStore(&inited_, 1);
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return WEBRTC_VIDEO_CODEC_OK;
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}
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int SimulcastEncoderAdapter::Encode(
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const VideoFrame& input_image, const CodecSpecificInfo* codec_specific_info,
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const std::vector<FrameType>* frame_types) {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&encoder_queue_);
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if (!Initialized()) {
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return WEBRTC_VIDEO_CODEC_UNINITIALIZED;
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}
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if (encoded_complete_callback_ == nullptr) {
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return WEBRTC_VIDEO_CODEC_UNINITIALIZED;
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}
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// All active streams should generate a key frame if
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// a key frame is requested by any stream.
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bool send_key_frame = false;
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if (frame_types) {
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for (size_t i = 0; i < frame_types->size(); ++i) {
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if (frame_types->at(i) == kVideoFrameKey) {
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send_key_frame = true;
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break;
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}
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}
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}
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for (size_t stream_idx = 0; stream_idx < streaminfos_.size(); ++stream_idx) {
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if (streaminfos_[stream_idx].key_frame_request &&
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streaminfos_[stream_idx].send_stream) {
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send_key_frame = true;
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break;
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}
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}
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int src_width = input_image.width();
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int src_height = input_image.height();
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for (size_t stream_idx = 0; stream_idx < streaminfos_.size(); ++stream_idx) {
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// Don't encode frames in resolutions that we don't intend to send.
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if (!streaminfos_[stream_idx].send_stream) {
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continue;
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}
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std::vector<FrameType> stream_frame_types;
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if (send_key_frame) {
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stream_frame_types.push_back(kVideoFrameKey);
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streaminfos_[stream_idx].key_frame_request = false;
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} else {
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stream_frame_types.push_back(kVideoFrameDelta);
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}
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int dst_width = streaminfos_[stream_idx].width;
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int dst_height = streaminfos_[stream_idx].height;
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// If scaling isn't required, because the input resolution
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// matches the destination or the input image is empty (e.g.
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// a keyframe request for encoders with internal camera
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// sources) or the source image has a native handle, pass the image on
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// directly. Otherwise, we'll scale it to match what the encoder expects
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// (below).
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// For texture frames, the underlying encoder is expected to be able to
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// correctly sample/scale the source texture.
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// TODO(perkj): ensure that works going forward, and figure out how this
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// affects webrtc:5683.
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if ((dst_width == src_width && dst_height == src_height) ||
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input_image.video_frame_buffer()->type() ==
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VideoFrameBuffer::Type::kNative) {
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int ret = streaminfos_[stream_idx].encoder->Encode(
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input_image, codec_specific_info, &stream_frame_types);
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if (ret != WEBRTC_VIDEO_CODEC_OK) {
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return ret;
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}
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} else {
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rtc::scoped_refptr<I420Buffer> dst_buffer =
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I420Buffer::Create(dst_width, dst_height);
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rtc::scoped_refptr<I420BufferInterface> src_buffer =
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input_image.video_frame_buffer()->ToI420();
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libyuv::I420Scale(src_buffer->DataY(), src_buffer->StrideY(),
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src_buffer->DataU(), src_buffer->StrideU(),
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src_buffer->DataV(), src_buffer->StrideV(), src_width,
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src_height, dst_buffer->MutableDataY(),
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dst_buffer->StrideY(), dst_buffer->MutableDataU(),
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dst_buffer->StrideU(), dst_buffer->MutableDataV(),
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dst_buffer->StrideV(), dst_width, dst_height,
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libyuv::kFilterBilinear);
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int ret = streaminfos_[stream_idx].encoder->Encode(
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VideoFrame(dst_buffer, input_image.timestamp(),
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input_image.render_time_ms(), webrtc::kVideoRotation_0),
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codec_specific_info, &stream_frame_types);
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if (ret != WEBRTC_VIDEO_CODEC_OK) {
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return ret;
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}
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}
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}
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return WEBRTC_VIDEO_CODEC_OK;
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}
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int SimulcastEncoderAdapter::RegisterEncodeCompleteCallback(
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EncodedImageCallback* callback) {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&encoder_queue_);
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encoded_complete_callback_ = callback;
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return WEBRTC_VIDEO_CODEC_OK;
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}
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int SimulcastEncoderAdapter::SetChannelParameters(uint32_t packet_loss,
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int64_t rtt) {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&encoder_queue_);
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for (size_t stream_idx = 0; stream_idx < streaminfos_.size(); ++stream_idx) {
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streaminfos_[stream_idx].encoder->SetChannelParameters(packet_loss, rtt);
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}
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return WEBRTC_VIDEO_CODEC_OK;
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}
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int SimulcastEncoderAdapter::SetRateAllocation(const BitrateAllocation& bitrate,
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uint32_t new_framerate) {
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RTC_DCHECK_CALLED_SEQUENTIALLY(&encoder_queue_);
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if (!Initialized()) {
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return WEBRTC_VIDEO_CODEC_UNINITIALIZED;
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}
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if (new_framerate < 1) {
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return WEBRTC_VIDEO_CODEC_ERR_PARAMETER;
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}
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if (codec_.maxBitrate > 0 && bitrate.get_sum_kbps() > codec_.maxBitrate) {
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return WEBRTC_VIDEO_CODEC_ERR_PARAMETER;
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}
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if (bitrate.get_sum_bps() > 0) {
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// Make sure the bitrate fits the configured min bitrates. 0 is a special
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// value that means paused, though, so leave it alone.
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if (bitrate.get_sum_kbps() < codec_.minBitrate) {
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return WEBRTC_VIDEO_CODEC_ERR_PARAMETER;
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}
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if (codec_.numberOfSimulcastStreams > 0 &&
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bitrate.get_sum_kbps() < codec_.simulcastStream[0].minBitrate) {
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return WEBRTC_VIDEO_CODEC_ERR_PARAMETER;
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}
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}
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codec_.maxFramerate = new_framerate;
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for (size_t stream_idx = 0; stream_idx < streaminfos_.size(); ++stream_idx) {
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uint32_t stream_bitrate_kbps =
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bitrate.GetSpatialLayerSum(stream_idx) / 1000;
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// Need a key frame if we have not sent this stream before.
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if (stream_bitrate_kbps > 0 && !streaminfos_[stream_idx].send_stream) {
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streaminfos_[stream_idx].key_frame_request = true;
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}
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streaminfos_[stream_idx].send_stream = stream_bitrate_kbps > 0;
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// Slice the temporal layers out of the full allocation and pass it on to
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// the encoder handling the current simulcast stream.
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BitrateAllocation stream_allocation;
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for (int i = 0; i < kMaxTemporalStreams; ++i) {
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if (bitrate.HasBitrate(stream_idx, i)) {
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stream_allocation.SetBitrate(0, i, bitrate.GetBitrate(stream_idx, i));
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|
}
|
|
}
|
|
streaminfos_[stream_idx].encoder->SetRateAllocation(stream_allocation,
|
|
new_framerate);
|
|
}
|
|
|
|
return WEBRTC_VIDEO_CODEC_OK;
|
|
}
|
|
|
|
// TODO(brandtr): Add task checker to this member function, when all encoder
|
|
// callbacks are coming in on the encoder queue.
|
|
EncodedImageCallback::Result SimulcastEncoderAdapter::OnEncodedImage(
|
|
size_t stream_idx, const EncodedImage& encodedImage,
|
|
const CodecSpecificInfo* codecSpecificInfo,
|
|
const RTPFragmentationHeader* fragmentation) {
|
|
CodecSpecificInfo stream_codec_specific = *codecSpecificInfo;
|
|
stream_codec_specific.codec_name = implementation_name_.c_str();
|
|
CodecSpecificInfoVP8* vp8Info = &(stream_codec_specific.codecSpecific.VP8);
|
|
vp8Info->simulcastIdx = stream_idx;
|
|
|
|
return encoded_complete_callback_->OnEncodedImage(
|
|
encodedImage, &stream_codec_specific, fragmentation);
|
|
}
|
|
|
|
void SimulcastEncoderAdapter::PopulateStreamCodec(
|
|
const webrtc::VideoCodec& inst, int stream_index,
|
|
uint32_t start_bitrate_kbps, StreamResolution stream_resolution,
|
|
webrtc::VideoCodec* stream_codec) {
|
|
*stream_codec = inst;
|
|
|
|
// Stream specific settings.
|
|
stream_codec->VP8()->numberOfTemporalLayers =
|
|
inst.simulcastStream[stream_index].numberOfTemporalLayers;
|
|
stream_codec->numberOfSimulcastStreams = 0;
|
|
stream_codec->width = inst.simulcastStream[stream_index].width;
|
|
stream_codec->height = inst.simulcastStream[stream_index].height;
|
|
stream_codec->maxBitrate = inst.simulcastStream[stream_index].maxBitrate;
|
|
stream_codec->minBitrate = inst.simulcastStream[stream_index].minBitrate;
|
|
stream_codec->qpMax = inst.simulcastStream[stream_index].qpMax;
|
|
// Settings that are based on stream/resolution.
|
|
if (stream_resolution == StreamResolution::LOWEST) {
|
|
// Settings for lowest spatial resolutions.
|
|
stream_codec->qpMax = kLowestResMaxQp;
|
|
}
|
|
if (stream_resolution != StreamResolution::HIGHEST) {
|
|
// For resolutions below CIF, set the codec |complexity| parameter to
|
|
// kComplexityHigher, which maps to cpu_used = -4.
|
|
int pixels_per_frame = stream_codec->width * stream_codec->height;
|
|
if (pixels_per_frame < 352 * 288) {
|
|
stream_codec->VP8()->complexity = webrtc::kComplexityHigher;
|
|
}
|
|
// Turn off denoising for all streams but the highest resolution.
|
|
stream_codec->VP8()->denoisingOn = false;
|
|
}
|
|
// TODO(ronghuawu): what to do with targetBitrate.
|
|
|
|
stream_codec->startBitrate = start_bitrate_kbps;
|
|
}
|
|
|
|
bool SimulcastEncoderAdapter::Initialized() const {
|
|
return rtc::AtomicOps::AcquireLoad(&inited_) == 1;
|
|
}
|
|
|
|
void SimulcastEncoderAdapter::DestroyStoredEncoders() {
|
|
while (!stored_encoders_.empty()) {
|
|
stored_encoders_.pop();
|
|
}
|
|
}
|
|
|
|
bool SimulcastEncoderAdapter::SupportsNativeHandle() const {
|
|
RTC_DCHECK_CALLED_SEQUENTIALLY(&encoder_queue_);
|
|
// We should not be calling this method before streaminfos_ are configured.
|
|
RTC_DCHECK(!streaminfos_.empty());
|
|
for (const auto& streaminfo : streaminfos_) {
|
|
if (!streaminfo.encoder->SupportsNativeHandle()) {
|
|
return false;
|
|
}
|
|
}
|
|
return true;
|
|
}
|
|
|
|
VideoEncoder::ScalingSettings SimulcastEncoderAdapter::GetScalingSettings()
|
|
const {
|
|
// TODO(brandtr): Investigate why the sequence checker below fails on mac.
|
|
// RTC_DCHECK_CALLED_SEQUENTIALLY(&encoder_queue_);
|
|
// Turn off quality scaling for simulcast.
|
|
if (!Initialized() || NumberOfStreams(codec_) != 1) {
|
|
return VideoEncoder::ScalingSettings(false);
|
|
}
|
|
return streaminfos_[0].encoder->GetScalingSettings();
|
|
}
|
|
|
|
const char* SimulcastEncoderAdapter::ImplementationName() const {
|
|
RTC_DCHECK_CALLED_SEQUENTIALLY(&encoder_queue_);
|
|
return implementation_name_.c_str();
|
|
}
|
|
|
|
} // namespace webrtc
|