
Instead of going through our wrappers in ptr_util.h. This CL was generated by the following script: git grep -l ptr_util | xargs perl -pi -e 's,#include "rtc_base/ptr_util.h",#include "absl/memory/memory.h",' git grep -l MakeUnique | xargs perl -pi -e 's,\b(rtc::)?MakeUnique\b,absl::make_unique,g' git grep -l WrapUnique | xargs perl -pi -e 's,\b(rtc::)?WrapUnique\b,absl::WrapUnique,g' git checkout -- rtc_base/ptr_util{.h,_unittest.cc} git cl format Followed by manually adding dependencies on //third_party/abseil-cpp/absl/memory until `gn check` stopped complaining. Bug: webrtc:9473 Change-Id: I89ccd363f070479b8c431eb2c3d404a46eaacc1c Reviewed-on: https://webrtc-review.googlesource.com/86600 Commit-Queue: Karl Wiberg <kwiberg@webrtc.org> Reviewed-by: Danil Chapovalov <danilchap@webrtc.org> Cr-Commit-Position: refs/heads/master@{#23850}
579 lines
21 KiB
C++
579 lines
21 KiB
C++
/*
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* Copyright 2018 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/vp8/include/vp8.h"
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#include "test/call_test.h"
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#include "test/gtest.h"
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#include "test/rtcp_packet_parser.h"
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namespace webrtc {
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class RtpRtcpEndToEndTest : public test::CallTest {
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protected:
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void RespectsRtcpMode(RtcpMode rtcp_mode);
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void TestRtpStatePreservation(bool use_rtx, bool provoke_rtcpsr_before_rtp);
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};
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void RtpRtcpEndToEndTest::RespectsRtcpMode(RtcpMode rtcp_mode) {
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static const int kNumCompoundRtcpPacketsToObserve = 10;
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class RtcpModeObserver : public test::EndToEndTest {
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public:
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explicit RtcpModeObserver(RtcpMode rtcp_mode)
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: EndToEndTest(kDefaultTimeoutMs),
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rtcp_mode_(rtcp_mode),
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sent_rtp_(0),
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sent_rtcp_(0) {}
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private:
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Action OnSendRtp(const uint8_t* packet, size_t length) override {
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rtc::CritScope lock(&crit_);
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if (++sent_rtp_ % 3 == 0)
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return DROP_PACKET;
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return SEND_PACKET;
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}
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Action OnReceiveRtcp(const uint8_t* packet, size_t length) override {
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rtc::CritScope lock(&crit_);
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++sent_rtcp_;
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test::RtcpPacketParser parser;
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EXPECT_TRUE(parser.Parse(packet, length));
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EXPECT_EQ(0, parser.sender_report()->num_packets());
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switch (rtcp_mode_) {
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case RtcpMode::kCompound:
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// TODO(holmer): We shouldn't send transport feedback alone if
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// compound RTCP is negotiated.
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if (parser.receiver_report()->num_packets() == 0 &&
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parser.transport_feedback()->num_packets() == 0) {
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ADD_FAILURE() << "Received RTCP packet without receiver report for "
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"RtcpMode::kCompound.";
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observation_complete_.Set();
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}
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if (sent_rtcp_ >= kNumCompoundRtcpPacketsToObserve)
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observation_complete_.Set();
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break;
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case RtcpMode::kReducedSize:
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if (parser.receiver_report()->num_packets() == 0)
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observation_complete_.Set();
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break;
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case RtcpMode::kOff:
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RTC_NOTREACHED();
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break;
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}
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return SEND_PACKET;
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}
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void ModifyVideoConfigs(
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VideoSendStream::Config* send_config,
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std::vector<VideoReceiveStream::Config>* receive_configs,
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VideoEncoderConfig* encoder_config) override {
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send_config->rtp.nack.rtp_history_ms = kNackRtpHistoryMs;
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(*receive_configs)[0].rtp.nack.rtp_history_ms = kNackRtpHistoryMs;
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(*receive_configs)[0].rtp.rtcp_mode = rtcp_mode_;
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}
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void PerformTest() override {
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EXPECT_TRUE(Wait())
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<< (rtcp_mode_ == RtcpMode::kCompound
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? "Timed out before observing enough compound packets."
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: "Timed out before receiving a non-compound RTCP packet.");
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}
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RtcpMode rtcp_mode_;
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rtc::CriticalSection crit_;
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// Must be protected since RTCP can be sent by both the process thread
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// and the pacer thread.
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int sent_rtp_ RTC_GUARDED_BY(&crit_);
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int sent_rtcp_ RTC_GUARDED_BY(&crit_);
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} test(rtcp_mode);
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RunBaseTest(&test);
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}
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TEST_F(RtpRtcpEndToEndTest, UsesRtcpCompoundMode) {
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RespectsRtcpMode(RtcpMode::kCompound);
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}
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TEST_F(RtpRtcpEndToEndTest, UsesRtcpReducedSizeMode) {
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RespectsRtcpMode(RtcpMode::kReducedSize);
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}
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void RtpRtcpEndToEndTest::TestRtpStatePreservation(
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bool use_rtx,
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bool provoke_rtcpsr_before_rtp) {
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// This test uses other VideoStream settings than the the default settings
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// implemented in DefaultVideoStreamFactory. Therefore this test implements
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// its own VideoEncoderConfig::VideoStreamFactoryInterface which is created
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// in ModifyVideoConfigs.
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class VideoStreamFactory
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: public VideoEncoderConfig::VideoStreamFactoryInterface {
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public:
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VideoStreamFactory() {}
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private:
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std::vector<VideoStream> CreateEncoderStreams(
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int width,
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int height,
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const VideoEncoderConfig& encoder_config) override {
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std::vector<VideoStream> streams =
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test::CreateVideoStreams(width, height, encoder_config);
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if (encoder_config.number_of_streams > 1) {
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// Lower bitrates so that all streams send initially.
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RTC_DCHECK_EQ(3, encoder_config.number_of_streams);
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for (size_t i = 0; i < encoder_config.number_of_streams; ++i) {
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streams[i].min_bitrate_bps = 10000;
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streams[i].target_bitrate_bps = 15000;
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streams[i].max_bitrate_bps = 20000;
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}
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} else {
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// Use the same total bitrates when sending a single stream to avoid
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// lowering
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// the bitrate estimate and requiring a subsequent rampup.
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streams[0].min_bitrate_bps = 3 * 10000;
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streams[0].target_bitrate_bps = 3 * 15000;
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streams[0].max_bitrate_bps = 3 * 20000;
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}
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return streams;
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}
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};
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class RtpSequenceObserver : public test::RtpRtcpObserver {
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public:
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explicit RtpSequenceObserver(bool use_rtx)
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: test::RtpRtcpObserver(kDefaultTimeoutMs),
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ssrcs_to_observe_(kNumSimulcastStreams) {
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for (size_t i = 0; i < kNumSimulcastStreams; ++i) {
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ssrc_is_rtx_[kVideoSendSsrcs[i]] = false;
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if (use_rtx)
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ssrc_is_rtx_[kSendRtxSsrcs[i]] = true;
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}
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}
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void ResetExpectedSsrcs(size_t num_expected_ssrcs) {
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rtc::CritScope lock(&crit_);
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ssrc_observed_.clear();
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ssrcs_to_observe_ = num_expected_ssrcs;
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}
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private:
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void ValidateTimestampGap(uint32_t ssrc,
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uint32_t timestamp,
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bool only_padding)
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RTC_EXCLUSIVE_LOCKS_REQUIRED(crit_) {
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static const int32_t kMaxTimestampGap = kDefaultTimeoutMs * 90;
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auto timestamp_it = last_observed_timestamp_.find(ssrc);
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if (timestamp_it == last_observed_timestamp_.end()) {
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EXPECT_FALSE(only_padding);
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last_observed_timestamp_[ssrc] = timestamp;
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} else {
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// Verify timestamps are reasonably close.
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uint32_t latest_observed = timestamp_it->second;
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// Wraparound handling is unnecessary here as long as an int variable
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// is used to store the result.
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int32_t timestamp_gap = timestamp - latest_observed;
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EXPECT_LE(std::abs(timestamp_gap), kMaxTimestampGap)
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<< "Gap in timestamps (" << latest_observed << " -> " << timestamp
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<< ") too large for SSRC: " << ssrc << ".";
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timestamp_it->second = timestamp;
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}
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}
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Action OnSendRtp(const uint8_t* packet, size_t length) override {
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RTPHeader header;
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EXPECT_TRUE(parser_->Parse(packet, length, &header));
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const uint32_t ssrc = header.ssrc;
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const int64_t sequence_number =
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seq_numbers_unwrapper_.Unwrap(header.sequenceNumber);
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const uint32_t timestamp = header.timestamp;
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const bool only_padding =
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header.headerLength + header.paddingLength == length;
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EXPECT_TRUE(ssrc_is_rtx_.find(ssrc) != ssrc_is_rtx_.end())
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<< "Received SSRC that wasn't configured: " << ssrc;
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static const int64_t kMaxSequenceNumberGap = 100;
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std::list<int64_t>* seq_numbers = &last_observed_seq_numbers_[ssrc];
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if (seq_numbers->empty()) {
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seq_numbers->push_back(sequence_number);
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} else {
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// We shouldn't get replays of previous sequence numbers.
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for (int64_t observed : *seq_numbers) {
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EXPECT_NE(observed, sequence_number)
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<< "Received sequence number " << sequence_number << " for SSRC "
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<< ssrc << " 2nd time.";
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}
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// Verify sequence numbers are reasonably close.
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int64_t latest_observed = seq_numbers->back();
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int64_t sequence_number_gap = sequence_number - latest_observed;
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EXPECT_LE(std::abs(sequence_number_gap), kMaxSequenceNumberGap)
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<< "Gap in sequence numbers (" << latest_observed << " -> "
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<< sequence_number << ") too large for SSRC: " << ssrc << ".";
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seq_numbers->push_back(sequence_number);
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if (seq_numbers->size() >= kMaxSequenceNumberGap) {
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seq_numbers->pop_front();
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}
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}
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if (!ssrc_is_rtx_[ssrc]) {
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rtc::CritScope lock(&crit_);
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ValidateTimestampGap(ssrc, timestamp, only_padding);
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// Wait for media packets on all ssrcs.
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if (!ssrc_observed_[ssrc] && !only_padding) {
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ssrc_observed_[ssrc] = true;
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if (--ssrcs_to_observe_ == 0)
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observation_complete_.Set();
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}
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}
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return SEND_PACKET;
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}
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Action OnSendRtcp(const uint8_t* packet, size_t length) override {
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test::RtcpPacketParser rtcp_parser;
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rtcp_parser.Parse(packet, length);
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if (rtcp_parser.sender_report()->num_packets() > 0) {
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uint32_t ssrc = rtcp_parser.sender_report()->sender_ssrc();
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uint32_t rtcp_timestamp = rtcp_parser.sender_report()->rtp_timestamp();
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rtc::CritScope lock(&crit_);
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ValidateTimestampGap(ssrc, rtcp_timestamp, false);
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}
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return SEND_PACKET;
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}
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SequenceNumberUnwrapper seq_numbers_unwrapper_;
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std::map<uint32_t, std::list<int64_t>> last_observed_seq_numbers_;
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std::map<uint32_t, uint32_t> last_observed_timestamp_;
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std::map<uint32_t, bool> ssrc_is_rtx_;
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rtc::CriticalSection crit_;
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size_t ssrcs_to_observe_ RTC_GUARDED_BY(crit_);
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std::map<uint32_t, bool> ssrc_observed_ RTC_GUARDED_BY(crit_);
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} observer(use_rtx);
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std::unique_ptr<test::PacketTransport> send_transport;
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std::unique_ptr<test::PacketTransport> receive_transport;
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Call::Config config(event_log_.get());
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VideoEncoderConfig one_stream;
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task_queue_.SendTask([this, &observer, &send_transport, &receive_transport,
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&config, &one_stream, use_rtx]() {
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CreateCalls(config, config);
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send_transport = absl::make_unique<test::PacketTransport>(
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&task_queue_, sender_call_.get(), &observer,
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test::PacketTransport::kSender, payload_type_map_,
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FakeNetworkPipe::Config());
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receive_transport = absl::make_unique<test::PacketTransport>(
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&task_queue_, nullptr, &observer, test::PacketTransport::kReceiver,
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payload_type_map_, FakeNetworkPipe::Config());
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send_transport->SetReceiver(receiver_call_->Receiver());
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receive_transport->SetReceiver(sender_call_->Receiver());
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CreateSendConfig(kNumSimulcastStreams, 0, 0, send_transport.get());
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if (use_rtx) {
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for (size_t i = 0; i < kNumSimulcastStreams; ++i) {
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video_send_config_.rtp.rtx.ssrcs.push_back(kSendRtxSsrcs[i]);
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}
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video_send_config_.rtp.rtx.payload_type = kSendRtxPayloadType;
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}
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video_encoder_config_.video_stream_factory =
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new rtc::RefCountedObject<VideoStreamFactory>();
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// Use the same total bitrates when sending a single stream to avoid
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// lowering the bitrate estimate and requiring a subsequent rampup.
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one_stream = video_encoder_config_.Copy();
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// one_stream.streams.resize(1);
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one_stream.number_of_streams = 1;
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CreateMatchingReceiveConfigs(receive_transport.get());
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CreateVideoStreams();
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CreateFrameGeneratorCapturer(30, 1280, 720);
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Start();
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});
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EXPECT_TRUE(observer.Wait())
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<< "Timed out waiting for all SSRCs to send packets.";
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// Test stream resetting more than once to make sure that the state doesn't
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// get set once (this could be due to using std::map::insert for instance).
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for (size_t i = 0; i < 3; ++i) {
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task_queue_.SendTask([&]() {
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frame_generator_capturer_->Stop();
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sender_call_->DestroyVideoSendStream(video_send_stream_);
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// Re-create VideoSendStream with only one stream.
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video_send_stream_ = sender_call_->CreateVideoSendStream(
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video_send_config_.Copy(), one_stream.Copy());
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video_send_stream_->Start();
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if (provoke_rtcpsr_before_rtp) {
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// Rapid Resync Request forces sending RTCP Sender Report back.
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// Using this request speeds up this test because then there is no need
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// to wait for a second for periodic Sender Report.
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rtcp::RapidResyncRequest force_send_sr_back_request;
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rtc::Buffer packet = force_send_sr_back_request.Build();
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static_cast<webrtc::test::DirectTransport*>(receive_transport.get())
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->SendRtcp(packet.data(), packet.size());
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}
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CreateFrameGeneratorCapturer(30, 1280, 720);
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frame_generator_capturer_->Start();
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});
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observer.ResetExpectedSsrcs(1);
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EXPECT_TRUE(observer.Wait()) << "Timed out waiting for single RTP packet.";
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// Reconfigure back to use all streams.
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task_queue_.SendTask([this]() {
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video_send_stream_->ReconfigureVideoEncoder(video_encoder_config_.Copy());
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});
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observer.ResetExpectedSsrcs(kNumSimulcastStreams);
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EXPECT_TRUE(observer.Wait())
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<< "Timed out waiting for all SSRCs to send packets.";
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// Reconfigure down to one stream.
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task_queue_.SendTask([this, &one_stream]() {
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video_send_stream_->ReconfigureVideoEncoder(one_stream.Copy());
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});
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observer.ResetExpectedSsrcs(1);
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EXPECT_TRUE(observer.Wait()) << "Timed out waiting for single RTP packet.";
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// Reconfigure back to use all streams.
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task_queue_.SendTask([this]() {
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video_send_stream_->ReconfigureVideoEncoder(video_encoder_config_.Copy());
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});
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observer.ResetExpectedSsrcs(kNumSimulcastStreams);
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EXPECT_TRUE(observer.Wait())
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<< "Timed out waiting for all SSRCs to send packets.";
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}
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task_queue_.SendTask([this, &send_transport, &receive_transport]() {
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Stop();
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DestroyStreams();
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send_transport.reset();
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receive_transport.reset();
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DestroyCalls();
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});
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}
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TEST_F(RtpRtcpEndToEndTest, RestartingSendStreamPreservesRtpState) {
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TestRtpStatePreservation(false, false);
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}
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TEST_F(RtpRtcpEndToEndTest, RestartingSendStreamPreservesRtpStatesWithRtx) {
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TestRtpStatePreservation(true, false);
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}
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TEST_F(RtpRtcpEndToEndTest,
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RestartingSendStreamKeepsRtpAndRtcpTimestampsSynced) {
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TestRtpStatePreservation(true, true);
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}
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// This test is flaky on linux_memcheck. Disable on all linux bots until
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// flakyness has been fixed.
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// https://bugs.chromium.org/p/webrtc/issues/detail?id=7737
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#if defined(WEBRTC_LINUX)
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TEST_F(RtpRtcpEndToEndTest, DISABLED_TestFlexfecRtpStatePreservation) {
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#else
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TEST_F(RtpRtcpEndToEndTest, TestFlexfecRtpStatePreservation) {
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#endif
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class RtpSequenceObserver : public test::RtpRtcpObserver {
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public:
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RtpSequenceObserver()
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: test::RtpRtcpObserver(kDefaultTimeoutMs),
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num_flexfec_packets_sent_(0) {}
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void ResetPacketCount() {
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rtc::CritScope lock(&crit_);
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num_flexfec_packets_sent_ = 0;
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}
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private:
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Action OnSendRtp(const uint8_t* packet, size_t length) override {
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rtc::CritScope lock(&crit_);
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RTPHeader header;
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EXPECT_TRUE(parser_->Parse(packet, length, &header));
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const uint16_t sequence_number = header.sequenceNumber;
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const uint32_t timestamp = header.timestamp;
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const uint32_t ssrc = header.ssrc;
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if (ssrc == kVideoSendSsrcs[0] || ssrc == kSendRtxSsrcs[0]) {
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return SEND_PACKET;
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}
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EXPECT_EQ(kFlexfecSendSsrc, ssrc) << "Unknown SSRC sent.";
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++num_flexfec_packets_sent_;
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// If this is the first packet, we have nothing to compare to.
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if (!last_observed_sequence_number_) {
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last_observed_sequence_number_.emplace(sequence_number);
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last_observed_timestamp_.emplace(timestamp);
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return SEND_PACKET;
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}
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// Verify continuity and monotonicity of RTP sequence numbers.
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EXPECT_EQ(static_cast<uint16_t>(*last_observed_sequence_number_ + 1),
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sequence_number);
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last_observed_sequence_number_.emplace(sequence_number);
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|
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// Timestamps should be non-decreasing...
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const bool timestamp_is_same_or_newer =
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timestamp == *last_observed_timestamp_ ||
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IsNewerTimestamp(timestamp, *last_observed_timestamp_);
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EXPECT_TRUE(timestamp_is_same_or_newer);
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// ...but reasonably close in time.
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const int k10SecondsInRtpTimestampBase = 10 * kVideoPayloadTypeFrequency;
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EXPECT_TRUE(IsNewerTimestamp(
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*last_observed_timestamp_ + k10SecondsInRtpTimestampBase, timestamp));
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last_observed_timestamp_.emplace(timestamp);
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// Pass test when enough packets have been let through.
|
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if (num_flexfec_packets_sent_ >= 10) {
|
|
observation_complete_.Set();
|
|
}
|
|
|
|
return SEND_PACKET;
|
|
}
|
|
|
|
absl::optional<uint16_t> last_observed_sequence_number_
|
|
RTC_GUARDED_BY(crit_);
|
|
absl::optional<uint32_t> last_observed_timestamp_ RTC_GUARDED_BY(crit_);
|
|
size_t num_flexfec_packets_sent_ RTC_GUARDED_BY(crit_);
|
|
rtc::CriticalSection crit_;
|
|
} observer;
|
|
|
|
static constexpr int kFrameMaxWidth = 320;
|
|
static constexpr int kFrameMaxHeight = 180;
|
|
static constexpr int kFrameRate = 15;
|
|
|
|
Call::Config config(event_log_.get());
|
|
|
|
std::unique_ptr<test::PacketTransport> send_transport;
|
|
std::unique_ptr<test::PacketTransport> receive_transport;
|
|
test::FunctionVideoEncoderFactory encoder_factory(
|
|
[]() { return VP8Encoder::Create(); });
|
|
|
|
task_queue_.SendTask([&]() {
|
|
CreateCalls(config, config);
|
|
|
|
FakeNetworkPipe::Config lossy_delayed_link;
|
|
lossy_delayed_link.loss_percent = 2;
|
|
lossy_delayed_link.queue_delay_ms = 50;
|
|
|
|
send_transport = absl::make_unique<test::PacketTransport>(
|
|
&task_queue_, sender_call_.get(), &observer,
|
|
test::PacketTransport::kSender, payload_type_map_, lossy_delayed_link);
|
|
send_transport->SetReceiver(receiver_call_->Receiver());
|
|
|
|
FakeNetworkPipe::Config flawless_link;
|
|
receive_transport = absl::make_unique<test::PacketTransport>(
|
|
&task_queue_, nullptr, &observer, test::PacketTransport::kReceiver,
|
|
payload_type_map_, flawless_link);
|
|
receive_transport->SetReceiver(sender_call_->Receiver());
|
|
|
|
// For reduced flakyness, we use a real VP8 encoder together with NACK
|
|
// and RTX.
|
|
const int kNumVideoStreams = 1;
|
|
const int kNumFlexfecStreams = 1;
|
|
CreateSendConfig(kNumVideoStreams, 0, kNumFlexfecStreams,
|
|
send_transport.get());
|
|
|
|
video_send_config_.encoder_settings.encoder_factory = &encoder_factory;
|
|
video_send_config_.rtp.payload_name = "VP8";
|
|
video_send_config_.rtp.payload_type = kVideoSendPayloadType;
|
|
video_send_config_.rtp.nack.rtp_history_ms = kNackRtpHistoryMs;
|
|
video_send_config_.rtp.rtx.ssrcs.push_back(kSendRtxSsrcs[0]);
|
|
video_send_config_.rtp.rtx.payload_type = kSendRtxPayloadType;
|
|
video_encoder_config_.codec_type = kVideoCodecVP8;
|
|
|
|
CreateMatchingReceiveConfigs(receive_transport.get());
|
|
video_receive_configs_[0].rtp.nack.rtp_history_ms = kNackRtpHistoryMs;
|
|
video_receive_configs_[0].rtp.rtx_ssrc = kSendRtxSsrcs[0];
|
|
video_receive_configs_[0]
|
|
.rtp.rtx_associated_payload_types[kSendRtxPayloadType] =
|
|
kVideoSendPayloadType;
|
|
|
|
// The matching FlexFEC receive config is not created by
|
|
// CreateMatchingReceiveConfigs since this is not a test::BaseTest.
|
|
// Set up the receive config manually instead.
|
|
FlexfecReceiveStream::Config flexfec_receive_config(
|
|
receive_transport.get());
|
|
flexfec_receive_config.payload_type =
|
|
video_send_config_.rtp.flexfec.payload_type;
|
|
flexfec_receive_config.remote_ssrc = video_send_config_.rtp.flexfec.ssrc;
|
|
flexfec_receive_config.protected_media_ssrcs =
|
|
video_send_config_.rtp.flexfec.protected_media_ssrcs;
|
|
flexfec_receive_config.local_ssrc = kReceiverLocalVideoSsrc;
|
|
flexfec_receive_config.transport_cc = true;
|
|
flexfec_receive_config.rtp_header_extensions.emplace_back(
|
|
RtpExtension::kTransportSequenceNumberUri,
|
|
test::kTransportSequenceNumberExtensionId);
|
|
flexfec_receive_configs_.push_back(flexfec_receive_config);
|
|
|
|
CreateFlexfecStreams();
|
|
CreateVideoStreams();
|
|
|
|
// RTCP might be disabled if the network is "down".
|
|
sender_call_->SignalChannelNetworkState(MediaType::VIDEO, kNetworkUp);
|
|
receiver_call_->SignalChannelNetworkState(MediaType::VIDEO, kNetworkUp);
|
|
|
|
CreateFrameGeneratorCapturer(kFrameRate, kFrameMaxWidth, kFrameMaxHeight);
|
|
|
|
Start();
|
|
});
|
|
|
|
// Initial test.
|
|
EXPECT_TRUE(observer.Wait()) << "Timed out waiting for packets.";
|
|
|
|
task_queue_.SendTask([this, &observer]() {
|
|
// Ensure monotonicity when the VideoSendStream is restarted.
|
|
Stop();
|
|
observer.ResetPacketCount();
|
|
Start();
|
|
});
|
|
|
|
EXPECT_TRUE(observer.Wait()) << "Timed out waiting for packets.";
|
|
|
|
task_queue_.SendTask([this, &observer]() {
|
|
// Ensure monotonicity when the VideoSendStream is recreated.
|
|
frame_generator_capturer_->Stop();
|
|
sender_call_->DestroyVideoSendStream(video_send_stream_);
|
|
observer.ResetPacketCount();
|
|
video_send_stream_ = sender_call_->CreateVideoSendStream(
|
|
video_send_config_.Copy(), video_encoder_config_.Copy());
|
|
video_send_stream_->Start();
|
|
CreateFrameGeneratorCapturer(kFrameRate, kFrameMaxWidth, kFrameMaxHeight);
|
|
frame_generator_capturer_->Start();
|
|
});
|
|
|
|
EXPECT_TRUE(observer.Wait()) << "Timed out waiting for packets.";
|
|
|
|
// Cleanup.
|
|
task_queue_.SendTask([this, &send_transport, &receive_transport]() {
|
|
Stop();
|
|
DestroyStreams();
|
|
send_transport.reset();
|
|
receive_transport.reset();
|
|
DestroyCalls();
|
|
});
|
|
}
|
|
} // namespace webrtc
|