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Bug: webrtc:14111 Change-Id: I9785b00012ea84f55789845a7e71fe26006d5067 Reviewed-on: https://webrtc-review.googlesource.com/c/src/+/263581 Reviewed-by: Artem Titov <titovartem@webrtc.org> Commit-Queue: Rasmus Brandt <brandtr@webrtc.org> Reviewed-by: Åsa Persson <asapersson@webrtc.org> Cr-Commit-Position: refs/heads/main@{#37061}
694 lines
22 KiB
C++
694 lines
22 KiB
C++
/*
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* Copyright (c) 2016 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/frame_buffer2.h"
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#include <algorithm>
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#include <cstring>
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#include <limits>
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#include <memory>
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#include <vector>
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#include "api/units/time_delta.h"
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#include "api/units/timestamp.h"
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#include "modules/video_coding/frame_object.h"
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#include "modules/video_coding/timing/jitter_estimator.h"
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#include "modules/video_coding/timing/timing.h"
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#include "rtc_base/numerics/sequence_number_util.h"
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#include "rtc_base/platform_thread.h"
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#include "rtc_base/random.h"
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#include "system_wrappers/include/clock.h"
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#include "test/field_trial.h"
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#include "test/gmock.h"
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#include "test/gtest.h"
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#include "test/scoped_key_value_config.h"
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#include "test/time_controller/simulated_time_controller.h"
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using ::testing::_;
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using ::testing::IsEmpty;
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using ::testing::Return;
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using ::testing::SizeIs;
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namespace webrtc {
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namespace video_coding {
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class VCMTimingFake : public VCMTiming {
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public:
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explicit VCMTimingFake(Clock* clock, const FieldTrialsView& field_trials)
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: VCMTiming(clock, field_trials) {}
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Timestamp RenderTime(uint32_t frame_timestamp, Timestamp now) const override {
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if (last_render_time_.IsMinusInfinity()) {
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last_render_time_ = now + kDelay;
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last_timestamp_ = frame_timestamp;
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}
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auto diff = MinDiff(frame_timestamp, last_timestamp_);
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auto timeDiff = TimeDelta::Millis(diff / 90);
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if (AheadOf(frame_timestamp, last_timestamp_))
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last_render_time_ += timeDiff;
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else
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last_render_time_ -= timeDiff;
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last_timestamp_ = frame_timestamp;
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return last_render_time_;
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}
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TimeDelta MaxWaitingTime(Timestamp render_time,
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Timestamp now,
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bool too_many_frames_queued) const override {
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return render_time - now - kDecodeTime;
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}
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TimeDelta GetCurrentJitter() {
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return VCMTiming::GetTimings().jitter_buffer_delay;
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}
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private:
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static constexpr TimeDelta kDelay = TimeDelta::Millis(50);
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const TimeDelta kDecodeTime = kDelay / 2;
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mutable uint32_t last_timestamp_ = 0;
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mutable Timestamp last_render_time_ = Timestamp::MinusInfinity();
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};
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class FrameObjectFake : public EncodedFrame {
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public:
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int64_t ReceivedTime() const override { return 0; }
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int64_t RenderTime() const override { return _renderTimeMs; }
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bool delayed_by_retransmission() const override {
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return delayed_by_retransmission_;
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}
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void set_delayed_by_retransmission(bool delayed) {
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delayed_by_retransmission_ = delayed;
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}
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private:
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bool delayed_by_retransmission_ = false;
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};
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class VCMReceiveStatisticsCallbackMock : public VCMReceiveStatisticsCallback {
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public:
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MOCK_METHOD(void,
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OnCompleteFrame,
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(bool is_keyframe,
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size_t size_bytes,
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VideoContentType content_type),
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(override));
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MOCK_METHOD(void, OnDroppedFrames, (uint32_t frames_dropped), (override));
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MOCK_METHOD(void,
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OnFrameBufferTimingsUpdated,
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(int max_decode,
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int current_delay,
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int target_delay,
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int jitter_buffer,
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int min_playout_delay,
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int render_delay),
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(override));
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MOCK_METHOD(void,
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OnTimingFrameInfoUpdated,
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(const TimingFrameInfo& info),
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(override));
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};
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class TestFrameBuffer2 : public ::testing::Test {
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protected:
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static constexpr int kMaxReferences = 5;
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static constexpr int kFps1 = 1000;
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static constexpr int kFps10 = kFps1 / 10;
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static constexpr int kFps20 = kFps1 / 20;
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static constexpr size_t kFrameSize = 10;
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TestFrameBuffer2()
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: time_controller_(Timestamp::Seconds(0)),
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time_task_queue_(
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time_controller_.GetTaskQueueFactory()->CreateTaskQueue(
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"extract queue",
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TaskQueueFactory::Priority::NORMAL)),
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timing_(time_controller_.GetClock(), field_trials_),
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buffer_(new FrameBuffer(time_controller_.GetClock(),
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&timing_,
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&stats_callback_,
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field_trials_)),
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rand_(0x34678213) {}
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template <typename... T>
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std::unique_ptr<FrameObjectFake> CreateFrame(uint16_t picture_id,
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uint8_t spatial_layer,
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int64_t ts_ms,
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bool last_spatial_layer,
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size_t frame_size_bytes,
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T... refs) {
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static_assert(sizeof...(refs) <= kMaxReferences,
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"To many references specified for EncodedFrame.");
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std::array<uint16_t, sizeof...(refs)> references = {
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{rtc::checked_cast<uint16_t>(refs)...}};
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auto frame = std::make_unique<FrameObjectFake>();
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frame->SetId(picture_id);
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frame->SetSpatialIndex(spatial_layer);
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frame->SetTimestamp(ts_ms * 90);
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frame->num_references = references.size();
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frame->is_last_spatial_layer = last_spatial_layer;
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// Add some data to buffer.
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frame->SetEncodedData(EncodedImageBuffer::Create(frame_size_bytes));
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for (size_t r = 0; r < references.size(); ++r)
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frame->references[r] = references[r];
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return frame;
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}
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template <typename... T>
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int InsertFrame(uint16_t picture_id,
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uint8_t spatial_layer,
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int64_t ts_ms,
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bool last_spatial_layer,
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size_t frame_size_bytes,
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T... refs) {
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return buffer_->InsertFrame(CreateFrame(picture_id, spatial_layer, ts_ms,
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last_spatial_layer,
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frame_size_bytes, refs...));
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}
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int InsertNackedFrame(uint16_t picture_id, int64_t ts_ms) {
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std::unique_ptr<FrameObjectFake> frame =
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CreateFrame(picture_id, 0, ts_ms, true, kFrameSize);
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frame->set_delayed_by_retransmission(true);
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return buffer_->InsertFrame(std::move(frame));
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}
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void ExtractFrame(int64_t max_wait_time = 0, bool keyframe_required = false) {
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time_task_queue_.PostTask([this, max_wait_time, keyframe_required]() {
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buffer_->NextFrame(max_wait_time, keyframe_required, &time_task_queue_,
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[this](std::unique_ptr<EncodedFrame> frame) {
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frames_.emplace_back(std::move(frame));
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});
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});
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if (max_wait_time == 0) {
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time_controller_.AdvanceTime(TimeDelta::Millis(0));
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}
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}
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void CheckFrame(size_t index, int picture_id, int spatial_layer) {
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ASSERT_LT(index, frames_.size());
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ASSERT_TRUE(frames_[index]);
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ASSERT_EQ(picture_id, frames_[index]->Id());
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ASSERT_EQ(spatial_layer, frames_[index]->SpatialIndex().value_or(0));
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}
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void CheckFrameSize(size_t index, size_t size) {
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ASSERT_LT(index, frames_.size());
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ASSERT_TRUE(frames_[index]);
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ASSERT_EQ(frames_[index]->size(), size);
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}
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void CheckNoFrame(size_t index) {
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ASSERT_LT(index, frames_.size());
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ASSERT_FALSE(frames_[index]);
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}
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uint32_t Rand() { return rand_.Rand<uint32_t>(); }
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test::ScopedKeyValueConfig field_trials_;
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webrtc::GlobalSimulatedTimeController time_controller_;
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rtc::TaskQueue time_task_queue_;
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VCMTimingFake timing_;
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std::unique_ptr<FrameBuffer> buffer_;
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std::vector<std::unique_ptr<EncodedFrame>> frames_;
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Random rand_;
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::testing::NiceMock<VCMReceiveStatisticsCallbackMock> stats_callback_;
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};
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// From https://en.cppreference.com/w/cpp/language/static: "If ... a constexpr
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// static data member (since C++11) is odr-used, a definition at namespace scope
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// is still required... This definition is deprecated for constexpr data members
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// since C++17."
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// kFrameSize is odr-used since it is passed by reference to EXPECT_EQ().
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#if __cplusplus < 201703L
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constexpr size_t TestFrameBuffer2::kFrameSize;
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#endif
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TEST_F(TestFrameBuffer2, WaitForFrame) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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ExtractFrame(50);
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InsertFrame(pid, 0, ts, true, kFrameSize);
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time_controller_.AdvanceTime(TimeDelta::Millis(50));
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CheckFrame(0, pid, 0);
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}
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TEST_F(TestFrameBuffer2, ClearWhileWaitingForFrame) {
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const uint16_t pid = Rand();
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// Insert a frame and wait for it for max 100ms.
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InsertFrame(pid, 0, 25, true, kFrameSize);
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ExtractFrame(100);
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// After 10ms, clear the buffer.
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time_controller_.AdvanceTime(TimeDelta::Millis(10));
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buffer_->Clear();
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// Confirm that the frame was not sent for rendering.
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time_controller_.AdvanceTime(TimeDelta::Millis(15));
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EXPECT_THAT(frames_, IsEmpty());
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// We are still waiting for a frame, since 100ms has not passed. Insert a new
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// frame. This new frame should be the one that is returned as the old frame
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// was cleared.
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const uint16_t new_pid = pid + 1;
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InsertFrame(new_pid, 0, 50, true, kFrameSize);
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time_controller_.AdvanceTime(TimeDelta::Millis(25));
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ASSERT_THAT(frames_, SizeIs(1));
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CheckFrame(0, new_pid, 0);
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}
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TEST_F(TestFrameBuffer2, OneSuperFrame) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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InsertFrame(pid, 0, ts, false, kFrameSize);
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InsertFrame(pid + 1, 1, ts, true, kFrameSize);
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ExtractFrame();
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CheckFrame(0, pid, 1);
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}
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TEST_F(TestFrameBuffer2, ZeroPlayoutDelay) {
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test::ScopedKeyValueConfig field_trials;
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VCMTiming timing(time_controller_.GetClock(), field_trials);
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buffer_.reset(new FrameBuffer(time_controller_.GetClock(), &timing,
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&stats_callback_, field_trials));
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const VideoPlayoutDelay kPlayoutDelayMs = {0, 0};
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std::unique_ptr<FrameObjectFake> test_frame(new FrameObjectFake());
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test_frame->SetId(0);
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test_frame->SetPlayoutDelay(kPlayoutDelayMs);
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buffer_->InsertFrame(std::move(test_frame));
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ExtractFrame(0, false);
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CheckFrame(0, 0, 0);
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EXPECT_EQ(0, frames_[0]->RenderTimeMs());
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}
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// Flaky test, see bugs.webrtc.org/7068.
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TEST_F(TestFrameBuffer2, DISABLED_OneUnorderedSuperFrame) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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ExtractFrame(50);
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InsertFrame(pid, 1, ts, true, kFrameSize);
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InsertFrame(pid, 0, ts, false, kFrameSize);
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time_controller_.AdvanceTime(TimeDelta::Millis(0));
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CheckFrame(0, pid, 0);
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CheckFrame(1, pid, 1);
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}
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TEST_F(TestFrameBuffer2, DISABLED_OneLayerStreamReordered) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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InsertFrame(pid, 0, ts, false, true, kFrameSize);
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ExtractFrame();
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CheckFrame(0, pid, 0);
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for (int i = 1; i < 10; i += 2) {
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ExtractFrame(50);
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InsertFrame(pid + i + 1, 0, ts + (i + 1) * kFps10, true, kFrameSize,
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pid + i);
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time_controller_.AdvanceTime(TimeDelta::Millis(kFps10));
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InsertFrame(pid + i, 0, ts + i * kFps10, true, kFrameSize, pid + i - 1);
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time_controller_.AdvanceTime(TimeDelta::Millis(kFps10));
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ExtractFrame();
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CheckFrame(i, pid + i, 0);
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CheckFrame(i + 1, pid + i + 1, 0);
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}
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}
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TEST_F(TestFrameBuffer2, ExtractFromEmptyBuffer) {
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ExtractFrame();
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CheckNoFrame(0);
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}
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TEST_F(TestFrameBuffer2, MissingFrame) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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InsertFrame(pid, 0, ts, true, kFrameSize);
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InsertFrame(pid + 2, 0, ts, true, kFrameSize, pid);
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InsertFrame(pid + 3, 0, ts, true, kFrameSize, pid + 1, pid + 2);
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ExtractFrame();
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ExtractFrame();
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ExtractFrame();
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CheckFrame(0, pid, 0);
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CheckFrame(1, pid + 2, 0);
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CheckNoFrame(2);
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}
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TEST_F(TestFrameBuffer2, OneLayerStream) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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InsertFrame(pid, 0, ts, true, kFrameSize);
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ExtractFrame();
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CheckFrame(0, pid, 0);
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for (int i = 1; i < 10; ++i) {
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InsertFrame(pid + i, 0, ts + i * kFps10, true, kFrameSize, pid + i - 1);
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ExtractFrame();
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time_controller_.AdvanceTime(TimeDelta::Millis(kFps10));
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CheckFrame(i, pid + i, 0);
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}
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}
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TEST_F(TestFrameBuffer2, DropTemporalLayerSlowDecoder) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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InsertFrame(pid, 0, ts, true, kFrameSize);
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InsertFrame(pid + 1, 0, ts + kFps20, true, kFrameSize, pid);
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for (int i = 2; i < 10; i += 2) {
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uint32_t ts_tl0 = ts + i / 2 * kFps10;
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InsertFrame(pid + i, 0, ts_tl0, true, kFrameSize, pid + i - 2);
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InsertFrame(pid + i + 1, 0, ts_tl0 + kFps20, true, kFrameSize, pid + i,
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pid + i - 1);
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}
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EXPECT_CALL(stats_callback_, OnDroppedFrames(1)).Times(3);
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for (int i = 0; i < 10; ++i) {
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ExtractFrame();
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time_controller_.AdvanceTime(TimeDelta::Millis(70));
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}
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CheckFrame(0, pid, 0);
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CheckFrame(1, pid + 1, 0);
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CheckFrame(2, pid + 2, 0);
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CheckFrame(3, pid + 4, 0);
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CheckFrame(4, pid + 6, 0);
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CheckFrame(5, pid + 8, 0);
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CheckNoFrame(6);
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CheckNoFrame(7);
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CheckNoFrame(8);
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CheckNoFrame(9);
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}
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TEST_F(TestFrameBuffer2, DropFramesIfSystemIsStalled) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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InsertFrame(pid, 0, ts, true, kFrameSize);
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InsertFrame(pid + 1, 0, ts + 1 * kFps10, true, kFrameSize, pid);
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InsertFrame(pid + 2, 0, ts + 2 * kFps10, true, kFrameSize, pid + 1);
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InsertFrame(pid + 3, 0, ts + 3 * kFps10, true, kFrameSize);
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ExtractFrame();
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// Jump forward in time, simulating the system being stalled for some reason.
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time_controller_.AdvanceTime(TimeDelta::Millis(3) * kFps10);
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// Extract one more frame, expect second and third frame to be dropped.
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EXPECT_CALL(stats_callback_, OnDroppedFrames(2)).Times(1);
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ExtractFrame();
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CheckFrame(0, pid + 0, 0);
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CheckFrame(1, pid + 3, 0);
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}
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TEST_F(TestFrameBuffer2, DroppedFramesCountedOnClear) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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InsertFrame(pid, 0, ts, true, kFrameSize);
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for (int i = 1; i < 5; ++i) {
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InsertFrame(pid + i, 0, ts + i * kFps10, true, kFrameSize, pid + i - 1);
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}
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// All frames should be dropped when Clear is called.
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EXPECT_CALL(stats_callback_, OnDroppedFrames(5)).Times(1);
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buffer_->Clear();
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}
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TEST_F(TestFrameBuffer2, InsertLateFrame) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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InsertFrame(pid, 0, ts, true, kFrameSize);
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ExtractFrame();
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InsertFrame(pid + 2, 0, ts, true, kFrameSize);
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ExtractFrame();
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InsertFrame(pid + 1, 0, ts, true, kFrameSize, pid);
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ExtractFrame();
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CheckFrame(0, pid, 0);
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CheckFrame(1, pid + 2, 0);
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CheckNoFrame(2);
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}
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TEST_F(TestFrameBuffer2, ProtectionModeNackFEC) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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constexpr int64_t kRttMs = 200;
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buffer_->UpdateRtt(kRttMs);
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// Jitter estimate unaffected by RTT in this protection mode.
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buffer_->SetProtectionMode(kProtectionNackFEC);
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InsertNackedFrame(pid, ts);
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InsertNackedFrame(pid + 1, ts + 100);
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InsertNackedFrame(pid + 2, ts + 200);
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InsertFrame(pid + 3, 0, ts + 300, true, kFrameSize);
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ExtractFrame();
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ExtractFrame();
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ExtractFrame();
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ExtractFrame();
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ASSERT_EQ(4u, frames_.size());
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EXPECT_LT(timing_.GetCurrentJitter().ms(), kRttMs);
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}
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TEST_F(TestFrameBuffer2, NoContinuousFrame) {
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uint16_t pid = Rand();
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uint32_t ts = Rand();
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EXPECT_EQ(-1, InsertFrame(pid + 1, 0, ts, true, kFrameSize, pid));
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}
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TEST_F(TestFrameBuffer2, LastContinuousFrameSingleLayer) {
|
|
uint16_t pid = Rand();
|
|
uint32_t ts = Rand();
|
|
|
|
EXPECT_EQ(pid, InsertFrame(pid, 0, ts, true, kFrameSize));
|
|
EXPECT_EQ(pid, InsertFrame(pid + 2, 0, ts, true, kFrameSize, pid + 1));
|
|
EXPECT_EQ(pid + 2, InsertFrame(pid + 1, 0, ts, true, kFrameSize, pid));
|
|
EXPECT_EQ(pid + 2, InsertFrame(pid + 4, 0, ts, true, kFrameSize, pid + 3));
|
|
EXPECT_EQ(pid + 5, InsertFrame(pid + 5, 0, ts, true, kFrameSize));
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, LastContinuousFrameTwoLayers) {
|
|
uint16_t pid = Rand();
|
|
uint32_t ts = Rand();
|
|
|
|
EXPECT_EQ(pid, InsertFrame(pid, 0, ts, false, kFrameSize));
|
|
EXPECT_EQ(pid + 1, InsertFrame(pid + 1, 1, ts, true, kFrameSize));
|
|
EXPECT_EQ(pid + 1,
|
|
InsertFrame(pid + 3, 1, ts, true, kFrameSize, pid + 1, pid + 2));
|
|
EXPECT_EQ(pid + 1, InsertFrame(pid + 4, 0, ts, false, kFrameSize, pid + 2));
|
|
EXPECT_EQ(pid + 1,
|
|
InsertFrame(pid + 5, 1, ts, true, kFrameSize, pid + 3, pid + 4));
|
|
EXPECT_EQ(pid + 1, InsertFrame(pid + 6, 0, ts, false, kFrameSize, pid + 4));
|
|
EXPECT_EQ(pid + 6, InsertFrame(pid + 2, 0, ts, false, kFrameSize, pid));
|
|
EXPECT_EQ(pid + 7,
|
|
InsertFrame(pid + 7, 1, ts, true, kFrameSize, pid + 5, pid + 6));
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, PictureIdJumpBack) {
|
|
uint16_t pid = Rand();
|
|
uint32_t ts = Rand();
|
|
|
|
EXPECT_EQ(pid, InsertFrame(pid, 0, ts, true, kFrameSize));
|
|
EXPECT_EQ(pid + 1, InsertFrame(pid + 1, 0, ts + 1, true, kFrameSize, pid));
|
|
ExtractFrame();
|
|
CheckFrame(0, pid, 0);
|
|
|
|
// Jump back in pid but increase ts.
|
|
EXPECT_EQ(pid - 1, InsertFrame(pid - 1, 0, ts + 2, true, kFrameSize));
|
|
ExtractFrame();
|
|
ExtractFrame();
|
|
CheckFrame(1, pid - 1, 0);
|
|
CheckNoFrame(2);
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, StatsCallback) {
|
|
uint16_t pid = Rand();
|
|
uint32_t ts = Rand();
|
|
const int kFrameSize = 5000;
|
|
|
|
EXPECT_CALL(stats_callback_,
|
|
OnCompleteFrame(true, kFrameSize, VideoContentType::UNSPECIFIED));
|
|
EXPECT_CALL(stats_callback_, OnFrameBufferTimingsUpdated(_, _, _, _, _, _));
|
|
// Stats callback requires a previously decoded frame.
|
|
timing_.StopDecodeTimer(TimeDelta::Millis(1), Timestamp::Zero());
|
|
|
|
{
|
|
std::unique_ptr<FrameObjectFake> frame(new FrameObjectFake());
|
|
frame->SetEncodedData(EncodedImageBuffer::Create(kFrameSize));
|
|
frame->SetId(pid);
|
|
frame->SetTimestamp(ts);
|
|
frame->num_references = 0;
|
|
|
|
EXPECT_EQ(buffer_->InsertFrame(std::move(frame)), pid);
|
|
}
|
|
|
|
ExtractFrame();
|
|
CheckFrame(0, pid, 0);
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, ForwardJumps) {
|
|
EXPECT_EQ(5453, InsertFrame(5453, 0, 1, true, kFrameSize));
|
|
ExtractFrame();
|
|
EXPECT_EQ(5454, InsertFrame(5454, 0, 1, true, kFrameSize, 5453));
|
|
ExtractFrame();
|
|
EXPECT_EQ(15670, InsertFrame(15670, 0, 1, true, kFrameSize));
|
|
ExtractFrame();
|
|
EXPECT_EQ(29804, InsertFrame(29804, 0, 1, true, kFrameSize));
|
|
ExtractFrame();
|
|
EXPECT_EQ(29805, InsertFrame(29805, 0, 1, true, kFrameSize, 29804));
|
|
ExtractFrame();
|
|
EXPECT_EQ(29806, InsertFrame(29806, 0, 1, true, kFrameSize, 29805));
|
|
ExtractFrame();
|
|
EXPECT_EQ(33819, InsertFrame(33819, 0, 1, true, kFrameSize));
|
|
ExtractFrame();
|
|
EXPECT_EQ(41248, InsertFrame(41248, 0, 1, true, kFrameSize));
|
|
ExtractFrame();
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, DuplicateFrames) {
|
|
EXPECT_EQ(22256, InsertFrame(22256, 0, 1, true, kFrameSize));
|
|
ExtractFrame();
|
|
EXPECT_EQ(22256, InsertFrame(22256, 0, 1, true, kFrameSize));
|
|
}
|
|
|
|
// TODO(philipel): implement more unittests related to invalid references.
|
|
TEST_F(TestFrameBuffer2, InvalidReferences) {
|
|
EXPECT_EQ(-1, InsertFrame(0, 0, 1000, true, kFrameSize, 2));
|
|
EXPECT_EQ(1, InsertFrame(1, 0, 2000, true, kFrameSize));
|
|
ExtractFrame();
|
|
EXPECT_EQ(2, InsertFrame(2, 0, 3000, true, kFrameSize, 1));
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, KeyframeRequired) {
|
|
EXPECT_EQ(1, InsertFrame(1, 0, 1000, true, kFrameSize));
|
|
EXPECT_EQ(2, InsertFrame(2, 0, 2000, true, kFrameSize, 1));
|
|
EXPECT_EQ(3, InsertFrame(3, 0, 3000, true, kFrameSize));
|
|
ExtractFrame();
|
|
ExtractFrame(0, true);
|
|
ExtractFrame();
|
|
|
|
CheckFrame(0, 1, 0);
|
|
CheckFrame(1, 3, 0);
|
|
CheckNoFrame(2);
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, KeyframeClearsFullBuffer) {
|
|
const int kMaxBufferSize = 600;
|
|
|
|
for (int i = 1; i <= kMaxBufferSize; ++i)
|
|
EXPECT_EQ(-1, InsertFrame(i, 0, i * 1000, true, kFrameSize, i - 1));
|
|
ExtractFrame();
|
|
CheckNoFrame(0);
|
|
|
|
EXPECT_EQ(kMaxBufferSize + 1,
|
|
InsertFrame(kMaxBufferSize + 1, 0, (kMaxBufferSize + 1) * 1000,
|
|
true, kFrameSize));
|
|
ExtractFrame();
|
|
CheckFrame(1, kMaxBufferSize + 1, 0);
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, DontUpdateOnUndecodableFrame) {
|
|
InsertFrame(1, 0, 0, true, kFrameSize);
|
|
ExtractFrame(0, true);
|
|
InsertFrame(3, 0, 0, true, kFrameSize, 2, 0);
|
|
InsertFrame(3, 0, 0, true, kFrameSize, 0);
|
|
InsertFrame(2, 0, 0, true, kFrameSize);
|
|
ExtractFrame(0, true);
|
|
ExtractFrame(0, true);
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, DontDecodeOlderTimestamp) {
|
|
InsertFrame(2, 0, 1, true, kFrameSize);
|
|
InsertFrame(1, 0, 2, true,
|
|
kFrameSize); // Older picture id but newer timestamp.
|
|
ExtractFrame(0);
|
|
ExtractFrame(0);
|
|
CheckFrame(0, 1, 0);
|
|
CheckNoFrame(1);
|
|
|
|
InsertFrame(3, 0, 4, true, kFrameSize);
|
|
InsertFrame(4, 0, 3, true,
|
|
kFrameSize); // Newer picture id but older timestamp.
|
|
ExtractFrame(0);
|
|
ExtractFrame(0);
|
|
CheckFrame(2, 3, 0);
|
|
CheckNoFrame(3);
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, CombineFramesToSuperframe) {
|
|
uint16_t pid = Rand();
|
|
uint32_t ts = Rand();
|
|
|
|
InsertFrame(pid, 0, ts, false, kFrameSize);
|
|
InsertFrame(pid + 1, 1, ts, true, 2 * kFrameSize, pid);
|
|
ExtractFrame(0);
|
|
ExtractFrame(0);
|
|
CheckFrame(0, pid, 1);
|
|
CheckNoFrame(1);
|
|
// Two frames should be combined and returned together.
|
|
CheckFrameSize(0, 3 * kFrameSize);
|
|
|
|
EXPECT_EQ(frames_[0]->SpatialIndex(), 1);
|
|
EXPECT_EQ(frames_[0]->SpatialLayerFrameSize(0), kFrameSize);
|
|
EXPECT_EQ(frames_[0]->SpatialLayerFrameSize(1), 2 * kFrameSize);
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, HigherSpatialLayerNonDecodable) {
|
|
uint16_t pid = Rand();
|
|
uint32_t ts = Rand();
|
|
|
|
InsertFrame(pid, 0, ts, false, kFrameSize);
|
|
InsertFrame(pid + 1, 1, ts, true, kFrameSize, pid);
|
|
|
|
ExtractFrame(0);
|
|
CheckFrame(0, pid, 1);
|
|
|
|
InsertFrame(pid + 3, 1, ts + kFps20, true, kFrameSize, pid);
|
|
InsertFrame(pid + 4, 0, ts + kFps10, false, kFrameSize, pid);
|
|
InsertFrame(pid + 5, 1, ts + kFps10, true, kFrameSize, pid + 3, pid + 4);
|
|
|
|
time_controller_.AdvanceTime(TimeDelta::Millis(1000));
|
|
// Frame pid+3 is decodable but too late.
|
|
// In superframe pid+4 is decodable, but frame pid+5 is not.
|
|
// Incorrect implementation might skip pid+2 frame and output undecodable
|
|
// pid+5 instead.
|
|
ExtractFrame();
|
|
ExtractFrame();
|
|
CheckFrame(1, pid + 3, 1);
|
|
CheckFrame(2, pid + 4, 1);
|
|
}
|
|
|
|
TEST_F(TestFrameBuffer2, StopWhileWaitingForFrame) {
|
|
uint16_t pid = Rand();
|
|
uint32_t ts = Rand();
|
|
|
|
InsertFrame(pid, 0, ts, true, kFrameSize);
|
|
ExtractFrame(10);
|
|
buffer_->Stop();
|
|
time_controller_.AdvanceTime(TimeDelta::Millis(10));
|
|
EXPECT_THAT(frames_, IsEmpty());
|
|
|
|
// A new frame request should exit immediately and return no new frame.
|
|
ExtractFrame(0);
|
|
EXPECT_THAT(frames_, IsEmpty());
|
|
}
|
|
|
|
} // namespace video_coding
|
|
} // namespace webrtc
|