ZeroHertzAdapterMode: do not dead-reckon repeated frame timestamps.
Timestamps are currently dead-reckoned for repeated frames in zero-hertz mode. This leads to an ever increasing totalPacketSendDelay metric in chrome://webrtc-internals which is bad. Fix this by tracking the origin timestamp of the first delay and measuring time's progression since then. A unit test was added which fails with the previous version. go/rtc-0hz-present Bug: chromium:1255737 Change-Id: I8627b91424f9bc56305b1dbd6a4c0624b6b3669d Reviewed-on: https://webrtc-review.googlesource.com/c/src/+/242863 Reviewed-by: Erik Språng <sprang@webrtc.org> Commit-Queue: Markus Handell <handellm@webrtc.org> Cr-Commit-Position: refs/heads/main@{#35595}
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@ -132,13 +132,25 @@ class ZeroHertzAdapterMode : public AdapterMode {
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};
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// The state of a scheduled repeat.
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struct ScheduledRepeat {
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ScheduledRepeat(Timestamp scheduled, bool idle)
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: scheduled(scheduled), idle(idle) {}
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ScheduledRepeat(Timestamp origin,
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int64_t origin_timestamp_us,
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int64_t origin_ntp_time_ms)
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: scheduled(origin),
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idle(false),
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origin(origin),
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origin_timestamp_us(origin_timestamp_us),
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origin_ntp_time_ms(origin_ntp_time_ms) {}
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// The instant when the repeat was scheduled.
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Timestamp scheduled;
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// True if the repeat was scheduled as an idle repeat (long), false
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// otherwise.
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bool idle;
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// The moment we decided to start repeating.
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Timestamp origin;
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// The timestamp_us of the frame when we started repeating.
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int64_t origin_timestamp_us;
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// The ntp_times_ms of the frame when we started repeating.
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int64_t origin_ntp_time_ms;
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};
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// Returns true if all spatial layers can be considered to be converged in
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@ -372,7 +384,7 @@ bool ZeroHertzAdapterMode::ProcessKeyFrameRequest() {
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// refinement frames.
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ResetQualityConvergenceInfo();
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// If we're not repeating, or we're repeating with non-idle duration, we will
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// If we're not repeating, or we're repeating with short duration, we will
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// very soon send out a frame and don't need a refresh frame.
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if (!scheduled_repeat_.has_value() || !scheduled_repeat_->idle) {
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RTC_LOG(LS_INFO) << __func__ << " this " << this
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@ -449,7 +461,14 @@ void ZeroHertzAdapterMode::ProcessOnDelayedCadence() {
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void ZeroHertzAdapterMode::ScheduleRepeat(int frame_id, bool idle_repeat) {
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RTC_DLOG(LS_VERBOSE) << __func__ << " this " << this << " frame_id "
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<< frame_id;
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scheduled_repeat_.emplace(clock_->CurrentTime(), idle_repeat);
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Timestamp now = clock_->CurrentTime();
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if (!scheduled_repeat_.has_value()) {
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scheduled_repeat_.emplace(now, queued_frames_.front().timestamp_us(),
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queued_frames_.front().ntp_time_ms());
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}
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scheduled_repeat_->scheduled = now;
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scheduled_repeat_->idle = idle_repeat;
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TimeDelta repeat_delay = RepeatDuration(idle_repeat);
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queue_->PostDelayedTask(
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ToQueuedTask(safety_,
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@ -478,15 +497,20 @@ void ZeroHertzAdapterMode::ProcessRepeatedFrameOnDelayedCadence(int frame_id) {
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empty_update_rect.MakeEmptyUpdate();
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frame.set_update_rect(empty_update_rect);
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// Adjust timestamps of the frame of the repeat, accounting for the delay in
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// scheduling this method.
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// Adjust timestamps of the frame of the repeat, accounting for the actual
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// delay since we started repeating.
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//
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// NOTE: No need to update the RTP timestamp as the VideoStreamEncoder
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// overwrites it based on its chosen NTP timestamp source.
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TimeDelta scheduled_delay = RepeatDuration(scheduled_repeat_->idle);
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if (frame.timestamp_us() > 0)
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frame.set_timestamp_us(frame.timestamp_us() + scheduled_delay.us());
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if (frame.ntp_time_ms())
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frame.set_ntp_time_ms(frame.ntp_time_ms() + scheduled_delay.ms());
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TimeDelta total_delay = clock_->CurrentTime() - scheduled_repeat_->origin;
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if (frame.timestamp_us() > 0) {
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frame.set_timestamp_us(scheduled_repeat_->origin_timestamp_us +
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total_delay.us());
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}
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if (frame.ntp_time_ms()) {
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frame.set_ntp_time_ms(scheduled_repeat_->origin_ntp_time_ms +
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total_delay.ms());
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}
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SendFrameNow(frame);
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// Schedule another repeat.
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@ -495,7 +519,10 @@ void ZeroHertzAdapterMode::ProcessRepeatedFrameOnDelayedCadence(int frame_id) {
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// RTC_RUN_ON(&sequence_checker_)
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void ZeroHertzAdapterMode::SendFrameNow(const VideoFrame& frame) const {
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RTC_DLOG(LS_VERBOSE) << __func__ << " this " << this;
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RTC_DLOG(LS_VERBOSE) << __func__ << " this " << this << " timestamp "
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<< frame.timestamp() << " timestamp_us "
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<< frame.timestamp_us() << " ntp_time_ms "
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<< frame.ntp_time_ms();
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// TODO(crbug.com/1255737): figure out if frames_scheduled_for_processing
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// makes sense to compute in this implementation.
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callback_->OnFrame(/*post_time=*/clock_->CurrentTime(),
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@ -13,17 +13,20 @@
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#include <utility>
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#include <vector>
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#include "api/task_queue/default_task_queue_factory.h"
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#include "api/task_queue/task_queue_base.h"
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#include "api/task_queue/task_queue_factory.h"
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#include "api/units/timestamp.h"
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#include "api/video/nv12_buffer.h"
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#include "api/video/video_frame.h"
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#include "rtc_base/event.h"
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#include "rtc_base/rate_statistics.h"
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#include "rtc_base/ref_counted_object.h"
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#include "rtc_base/task_utils/to_queued_task.h"
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#include "rtc_base/time_utils.h"
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#include "system_wrappers/include/metrics.h"
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#include "system_wrappers/include/ntp_time.h"
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#include "system_wrappers/include/sleep.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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@ -879,5 +882,61 @@ TEST_F(FrameCadenceAdapterMetricsTest, RecordsMinLtMaxConstraintIfSetOnFrame) {
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ElementsAre(Pair(60 * 4.0 + 5.0 - 1, 1)));
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}
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TEST(FrameCadenceAdapterRealTimeTest, TimestampsDoNotDrift) {
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// This regression test must be performed in realtime because of limitations
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// in GlobalSimulatedTimeController.
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//
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// We sleep for a long while in OnFrame when a repeat was scheduled which
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// should reflect in accordingly increased ntp_time_ms() and timestamp_us() in
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// the repeated frames.
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auto factory = CreateDefaultTaskQueueFactory();
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auto queue =
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factory->CreateTaskQueue("test", TaskQueueFactory::Priority::NORMAL);
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ZeroHertzFieldTrialEnabler enabler;
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MockCallback callback;
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Clock* clock = Clock::GetRealTimeClock();
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std::unique_ptr<FrameCadenceAdapterInterface> adapter;
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int frame_counter = 0;
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int64_t original_ntp_time_ms;
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int64_t original_timestamp_us;
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rtc::Event event;
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queue->PostTask(ToQueuedTask([&] {
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adapter = CreateAdapter(clock);
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adapter->Initialize(&callback);
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adapter->SetZeroHertzModeEnabled(
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FrameCadenceAdapterInterface::ZeroHertzModeParams{});
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adapter->OnConstraintsChanged(VideoTrackSourceConstraints{0, 30});
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auto frame = CreateFrame();
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original_ntp_time_ms = clock->CurrentNtpInMilliseconds();
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frame.set_ntp_time_ms(original_ntp_time_ms);
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original_timestamp_us = clock->CurrentTime().us();
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frame.set_timestamp_us(original_timestamp_us);
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constexpr int kSleepMs = rtc::kNumMillisecsPerSec / 2;
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EXPECT_CALL(callback, OnFrame)
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.WillRepeatedly(
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Invoke([&](Timestamp, int, const VideoFrame& incoming_frame) {
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++frame_counter;
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// Avoid the first OnFrame and sleep on the second.
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if (frame_counter == 2) {
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SleepMs(kSleepMs);
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} else if (frame_counter == 3) {
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EXPECT_GE(incoming_frame.ntp_time_ms(),
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original_ntp_time_ms + kSleepMs);
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EXPECT_GE(incoming_frame.timestamp_us(),
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original_timestamp_us + kSleepMs);
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event.Set();
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}
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}));
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adapter->OnFrame(frame);
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}));
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event.Wait(rtc::Event::kForever);
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rtc::Event finalized;
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queue->PostTask(ToQueuedTask([&] {
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adapter = nullptr;
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finalized.Set();
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}));
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finalized.Wait(rtc::Event::kForever);
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}
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} // namespace
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} // namespace webrtc
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