
Enabled method based on encode time and modified values for the low (60->55) and high threshold (90->85). Moved DelayedEncoder to fake_encoder.h and added configuration for the delay. R=mflodman@webrtc.org, pbos@webrtc.org, stefan@webrtc.org Review URL: https://webrtc-codereview.appspot.com/30969004 git-svn-id: http://webrtc.googlecode.com/svn/trunk@7722 4adac7df-926f-26a2-2b94-8c16560cd09d
581 lines
22 KiB
C++
581 lines
22 KiB
C++
/*
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* Copyright (c) 2013 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 "testing/gmock/include/gmock/gmock.h"
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#include "testing/gtest/include/gtest/gtest.h"
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#include "webrtc/system_wrappers/interface/clock.h"
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#include "webrtc/system_wrappers/interface/scoped_ptr.h"
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#include "webrtc/video_engine/include/vie_base.h"
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#include "webrtc/video_engine/overuse_frame_detector.h"
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namespace webrtc {
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namespace {
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const int kWidth = 640;
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const int kHeight = 480;
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const int kFrameInterval33ms = 33;
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const int kProcessIntervalMs = 5000;
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} // namespace
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class MockCpuOveruseObserver : public CpuOveruseObserver {
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public:
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MockCpuOveruseObserver() {}
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virtual ~MockCpuOveruseObserver() {}
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MOCK_METHOD0(OveruseDetected, void());
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MOCK_METHOD0(NormalUsage, void());
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};
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class CpuOveruseObserverImpl : public CpuOveruseObserver {
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public:
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CpuOveruseObserverImpl() :
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overuse_(0),
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normaluse_(0) {}
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virtual ~CpuOveruseObserverImpl() {}
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void OveruseDetected() { ++overuse_; }
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void NormalUsage() { ++normaluse_; }
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int overuse_;
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int normaluse_;
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};
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class OveruseFrameDetectorTest : public ::testing::Test {
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protected:
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virtual void SetUp() {
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clock_.reset(new SimulatedClock(1234));
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observer_.reset(new MockCpuOveruseObserver());
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overuse_detector_.reset(new OveruseFrameDetector(clock_.get()));
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options_.low_capture_jitter_threshold_ms = 10.0f;
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options_.high_capture_jitter_threshold_ms = 15.0f;
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options_.min_process_count = 0;
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overuse_detector_->SetOptions(options_);
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overuse_detector_->SetObserver(observer_.get());
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}
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int InitialJitter() {
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return ((options_.low_capture_jitter_threshold_ms +
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options_.high_capture_jitter_threshold_ms) / 2.0f) + 0.5;
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}
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int InitialUsage() {
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return ((options_.low_encode_usage_threshold_percent +
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options_.high_encode_usage_threshold_percent) / 2.0f) + 0.5;
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}
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void InsertFramesWithInterval(
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size_t num_frames, int interval_ms, int width, int height) {
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while (num_frames-- > 0) {
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clock_->AdvanceTimeMilliseconds(interval_ms);
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overuse_detector_->FrameCaptured(width, height,
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clock_->TimeInMilliseconds());
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}
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}
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void InsertAndSendFramesWithInterval(
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int num_frames, int interval_ms, int width, int height, int delay_ms) {
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while (num_frames-- > 0) {
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int64_t capture_time_ms = clock_->TimeInMilliseconds();
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overuse_detector_->FrameCaptured(width, height, capture_time_ms);
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clock_->AdvanceTimeMilliseconds(delay_ms);
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overuse_detector_->FrameEncoded(delay_ms);
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overuse_detector_->FrameSent(capture_time_ms);
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clock_->AdvanceTimeMilliseconds(interval_ms - delay_ms);
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}
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}
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void TriggerOveruse(int num_times) {
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for (int i = 0; i < num_times; ++i) {
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InsertFramesWithInterval(200, kFrameInterval33ms, kWidth, kHeight);
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InsertFramesWithInterval(50, 110, kWidth, kHeight);
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overuse_detector_->Process();
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}
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}
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void TriggerUnderuse() {
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InsertFramesWithInterval(900, kFrameInterval33ms, kWidth, kHeight);
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overuse_detector_->Process();
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}
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void TriggerOveruseWithProcessingUsage(int num_times) {
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const int kDelayMs = 32;
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for (int i = 0; i < num_times; ++i) {
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InsertAndSendFramesWithInterval(
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1000, kFrameInterval33ms, kWidth, kHeight, kDelayMs);
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overuse_detector_->Process();
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}
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}
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void TriggerUnderuseWithProcessingUsage() {
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const int kDelayMs1 = 5;
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const int kDelayMs2 = 6;
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InsertAndSendFramesWithInterval(
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1300, kFrameInterval33ms, kWidth, kHeight, kDelayMs1);
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InsertAndSendFramesWithInterval(
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1, kFrameInterval33ms, kWidth, kHeight, kDelayMs2);
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overuse_detector_->Process();
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}
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int CaptureJitterMs() {
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CpuOveruseMetrics metrics;
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overuse_detector_->GetCpuOveruseMetrics(&metrics);
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return metrics.capture_jitter_ms;
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}
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int AvgEncodeTimeMs() {
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CpuOveruseMetrics metrics;
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overuse_detector_->GetCpuOveruseMetrics(&metrics);
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return metrics.avg_encode_time_ms;
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}
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int UsagePercent() {
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CpuOveruseMetrics metrics;
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overuse_detector_->GetCpuOveruseMetrics(&metrics);
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return metrics.encode_usage_percent;
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}
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CpuOveruseOptions options_;
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scoped_ptr<SimulatedClock> clock_;
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scoped_ptr<MockCpuOveruseObserver> observer_;
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scoped_ptr<OveruseFrameDetector> overuse_detector_;
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};
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// enable_capture_jitter_method = true;
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// CaptureJitterMs() > high_capture_jitter_threshold_ms => overuse.
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// CaptureJitterMs() < low_capture_jitter_threshold_ms => underuse.
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TEST_F(OveruseFrameDetectorTest, TriggerOveruse) {
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options_.enable_capture_jitter_method = true;
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options_.enable_encode_usage_method = false;
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options_.enable_extended_processing_usage = false;
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overuse_detector_->SetOptions(options_);
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// capture_jitter > high => overuse
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EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(1);
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TriggerOveruse(options_.high_threshold_consecutive_count);
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}
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TEST_F(OveruseFrameDetectorTest, OveruseAndRecover) {
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options_.enable_capture_jitter_method = true;
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options_.enable_encode_usage_method = false;
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options_.enable_extended_processing_usage = false;
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overuse_detector_->SetOptions(options_);
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// capture_jitter > high => overuse
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EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(1);
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TriggerOveruse(options_.high_threshold_consecutive_count);
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// capture_jitter < low => underuse
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EXPECT_CALL(*(observer_.get()), NormalUsage()).Times(testing::AtLeast(1));
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TriggerUnderuse();
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}
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TEST_F(OveruseFrameDetectorTest, OveruseAndRecoverWithNoObserver) {
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options_.enable_capture_jitter_method = true;
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options_.enable_encode_usage_method = false;
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options_.enable_extended_processing_usage = false;
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overuse_detector_->SetOptions(options_);
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overuse_detector_->SetObserver(NULL);
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EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(0);
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TriggerOveruse(options_.high_threshold_consecutive_count);
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EXPECT_CALL(*(observer_.get()), NormalUsage()).Times(0);
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TriggerUnderuse();
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}
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TEST_F(OveruseFrameDetectorTest, OveruseAndRecoverWithMethodDisabled) {
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options_.enable_capture_jitter_method = false;
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options_.enable_encode_usage_method = false;
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options_.enable_extended_processing_usage = false;
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overuse_detector_->SetOptions(options_);
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EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(0);
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TriggerOveruse(options_.high_threshold_consecutive_count);
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EXPECT_CALL(*(observer_.get()), NormalUsage()).Times(0);
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TriggerUnderuse();
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}
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TEST_F(OveruseFrameDetectorTest, DoubleOveruseAndRecover) {
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options_.enable_capture_jitter_method = true;
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options_.enable_encode_usage_method = false;
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options_.enable_extended_processing_usage = false;
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overuse_detector_->SetOptions(options_);
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EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(2);
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TriggerOveruse(options_.high_threshold_consecutive_count);
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TriggerOveruse(options_.high_threshold_consecutive_count);
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EXPECT_CALL(*(observer_.get()), NormalUsage()).Times(testing::AtLeast(1));
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TriggerUnderuse();
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}
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TEST_F(OveruseFrameDetectorTest, TriggerUnderuseWithMinProcessCount) {
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options_.enable_capture_jitter_method = true;
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options_.enable_encode_usage_method = false;
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options_.enable_extended_processing_usage = false;
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CpuOveruseObserverImpl overuse_observer_;
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overuse_detector_->SetObserver(&overuse_observer_);
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options_.min_process_count = 1;
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overuse_detector_->SetOptions(options_);
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InsertFramesWithInterval(1200, kFrameInterval33ms, kWidth, kHeight);
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overuse_detector_->Process();
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EXPECT_EQ(0, overuse_observer_.normaluse_);
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clock_->AdvanceTimeMilliseconds(kProcessIntervalMs);
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overuse_detector_->Process();
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EXPECT_EQ(1, overuse_observer_.normaluse_);
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}
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TEST_F(OveruseFrameDetectorTest, ConstantOveruseGivesNoNormalUsage) {
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options_.enable_capture_jitter_method = true;
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options_.enable_encode_usage_method = false;
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options_.enable_extended_processing_usage = false;
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overuse_detector_->SetOptions(options_);
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EXPECT_CALL(*(observer_.get()), NormalUsage()).Times(0);
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EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(64);
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for(size_t i = 0; i < 64; ++i) {
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TriggerOveruse(options_.high_threshold_consecutive_count);
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}
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}
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TEST_F(OveruseFrameDetectorTest, ConsecutiveCountTriggersOveruse) {
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options_.enable_capture_jitter_method = true;
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options_.enable_encode_usage_method = false;
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options_.enable_extended_processing_usage = false;
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EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(1);
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options_.high_threshold_consecutive_count = 2;
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overuse_detector_->SetOptions(options_);
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TriggerOveruse(2);
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}
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TEST_F(OveruseFrameDetectorTest, IncorrectConsecutiveCountTriggersNoOveruse) {
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options_.enable_capture_jitter_method = true;
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options_.enable_encode_usage_method = false;
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options_.enable_extended_processing_usage = false;
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EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(0);
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options_.high_threshold_consecutive_count = 2;
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overuse_detector_->SetOptions(options_);
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TriggerOveruse(1);
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}
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TEST_F(OveruseFrameDetectorTest, GetCpuOveruseMetrics) {
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CpuOveruseMetrics metrics;
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overuse_detector_->GetCpuOveruseMetrics(&metrics);
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EXPECT_GT(metrics.capture_jitter_ms, 0);
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EXPECT_GT(metrics.avg_encode_time_ms, 0);
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EXPECT_GT(metrics.encode_usage_percent, 0);
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EXPECT_GE(metrics.capture_queue_delay_ms_per_s, 0);
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EXPECT_GE(metrics.encode_rsd, 0);
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}
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TEST_F(OveruseFrameDetectorTest, CaptureJitter) {
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EXPECT_EQ(InitialJitter(), CaptureJitterMs());
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InsertFramesWithInterval(1000, kFrameInterval33ms, kWidth, kHeight);
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EXPECT_NE(InitialJitter(), CaptureJitterMs());
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}
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TEST_F(OveruseFrameDetectorTest, CaptureJitterResetAfterResolutionChange) {
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EXPECT_EQ(InitialJitter(), CaptureJitterMs());
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InsertFramesWithInterval(1000, kFrameInterval33ms, kWidth, kHeight);
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EXPECT_NE(InitialJitter(), CaptureJitterMs());
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// Verify reset.
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InsertFramesWithInterval(1, kFrameInterval33ms, kWidth, kHeight + 1);
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EXPECT_EQ(InitialJitter(), CaptureJitterMs());
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}
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TEST_F(OveruseFrameDetectorTest, CaptureJitterResetAfterFrameTimeout) {
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EXPECT_EQ(InitialJitter(), CaptureJitterMs());
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InsertFramesWithInterval(1000, kFrameInterval33ms, kWidth, kHeight);
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EXPECT_NE(InitialJitter(), CaptureJitterMs());
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InsertFramesWithInterval(
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1, options_.frame_timeout_interval_ms, kWidth, kHeight);
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EXPECT_NE(InitialJitter(), CaptureJitterMs());
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// Verify reset.
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InsertFramesWithInterval(
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1, options_.frame_timeout_interval_ms + 1, kWidth, kHeight);
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EXPECT_EQ(InitialJitter(), CaptureJitterMs());
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}
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TEST_F(OveruseFrameDetectorTest, CaptureJitterResetAfterChangingThreshold) {
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EXPECT_EQ(InitialJitter(), CaptureJitterMs());
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options_.high_capture_jitter_threshold_ms = 90.0f;
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overuse_detector_->SetOptions(options_);
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EXPECT_EQ(InitialJitter(), CaptureJitterMs());
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options_.low_capture_jitter_threshold_ms = 30.0f;
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overuse_detector_->SetOptions(options_);
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EXPECT_EQ(InitialJitter(), CaptureJitterMs());
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}
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TEST_F(OveruseFrameDetectorTest, MinFrameSamplesBeforeUpdatingCaptureJitter) {
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options_.min_frame_samples = 40;
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overuse_detector_->SetOptions(options_);
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InsertFramesWithInterval(40, kFrameInterval33ms, kWidth, kHeight);
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EXPECT_EQ(InitialJitter(), CaptureJitterMs());
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}
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TEST_F(OveruseFrameDetectorTest, NoCaptureQueueDelay) {
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EXPECT_EQ(overuse_detector_->CaptureQueueDelayMsPerS(), 0);
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overuse_detector_->FrameCaptured(
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kWidth, kHeight, clock_->TimeInMilliseconds());
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overuse_detector_->FrameProcessingStarted();
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EXPECT_EQ(overuse_detector_->CaptureQueueDelayMsPerS(), 0);
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}
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TEST_F(OveruseFrameDetectorTest, CaptureQueueDelay) {
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overuse_detector_->FrameCaptured(
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kWidth, kHeight, clock_->TimeInMilliseconds());
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clock_->AdvanceTimeMilliseconds(100);
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overuse_detector_->FrameProcessingStarted();
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EXPECT_EQ(overuse_detector_->CaptureQueueDelayMsPerS(), 100);
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}
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TEST_F(OveruseFrameDetectorTest, CaptureQueueDelayMultipleFrames) {
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overuse_detector_->FrameCaptured(
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kWidth, kHeight, clock_->TimeInMilliseconds());
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clock_->AdvanceTimeMilliseconds(10);
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overuse_detector_->FrameCaptured(
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kWidth, kHeight, clock_->TimeInMilliseconds());
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clock_->AdvanceTimeMilliseconds(20);
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overuse_detector_->FrameProcessingStarted();
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EXPECT_EQ(overuse_detector_->CaptureQueueDelayMsPerS(), 30);
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overuse_detector_->FrameProcessingStarted();
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EXPECT_EQ(overuse_detector_->CaptureQueueDelayMsPerS(), 20);
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}
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TEST_F(OveruseFrameDetectorTest, CaptureQueueDelayResetAtResolutionSwitch) {
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overuse_detector_->FrameCaptured(
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kWidth, kHeight, clock_->TimeInMilliseconds());
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clock_->AdvanceTimeMilliseconds(10);
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overuse_detector_->FrameCaptured(
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kWidth, kHeight + 1, clock_->TimeInMilliseconds());
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clock_->AdvanceTimeMilliseconds(20);
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overuse_detector_->FrameProcessingStarted();
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EXPECT_EQ(overuse_detector_->CaptureQueueDelayMsPerS(), 20);
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}
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TEST_F(OveruseFrameDetectorTest, CaptureQueueDelayNoMatchingCapturedFrame) {
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overuse_detector_->FrameCaptured(
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kWidth, kHeight, clock_->TimeInMilliseconds());
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clock_->AdvanceTimeMilliseconds(100);
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overuse_detector_->FrameProcessingStarted();
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EXPECT_EQ(overuse_detector_->CaptureQueueDelayMsPerS(), 100);
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// No new captured frame. The last delay should be reported.
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overuse_detector_->FrameProcessingStarted();
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EXPECT_EQ(overuse_detector_->CaptureQueueDelayMsPerS(), 100);
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}
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TEST_F(OveruseFrameDetectorTest, FrameDelay_OneFrameDisabled) {
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options_.enable_extended_processing_usage = false;
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overuse_detector_->SetOptions(options_);
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const int kProcessingTimeMs = 100;
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overuse_detector_->FrameCaptured(kWidth, kHeight, 33);
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clock_->AdvanceTimeMilliseconds(kProcessingTimeMs);
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overuse_detector_->FrameSent(33);
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EXPECT_EQ(-1, overuse_detector_->LastProcessingTimeMs());
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}
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TEST_F(OveruseFrameDetectorTest, FrameDelay_OneFrame) {
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options_.enable_extended_processing_usage = true;
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overuse_detector_->SetOptions(options_);
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const int kProcessingTimeMs = 100;
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overuse_detector_->FrameCaptured(kWidth, kHeight, 33);
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clock_->AdvanceTimeMilliseconds(kProcessingTimeMs);
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EXPECT_EQ(-1, overuse_detector_->LastProcessingTimeMs());
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overuse_detector_->FrameSent(33);
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EXPECT_EQ(kProcessingTimeMs, overuse_detector_->LastProcessingTimeMs());
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EXPECT_EQ(0, overuse_detector_->FramesInQueue());
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}
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TEST_F(OveruseFrameDetectorTest, FrameDelay_TwoFrames) {
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options_.enable_extended_processing_usage = true;
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overuse_detector_->SetOptions(options_);
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const int kProcessingTimeMs1 = 100;
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const int kProcessingTimeMs2 = 50;
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const int kTimeBetweenFramesMs = 200;
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overuse_detector_->FrameCaptured(kWidth, kHeight, 33);
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clock_->AdvanceTimeMilliseconds(kProcessingTimeMs1);
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overuse_detector_->FrameSent(33);
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EXPECT_EQ(kProcessingTimeMs1, overuse_detector_->LastProcessingTimeMs());
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clock_->AdvanceTimeMilliseconds(kTimeBetweenFramesMs);
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overuse_detector_->FrameCaptured(kWidth, kHeight, 66);
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clock_->AdvanceTimeMilliseconds(kProcessingTimeMs2);
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overuse_detector_->FrameSent(66);
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EXPECT_EQ(kProcessingTimeMs2, overuse_detector_->LastProcessingTimeMs());
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}
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TEST_F(OveruseFrameDetectorTest, FrameDelay_MaxQueueSize) {
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options_.enable_extended_processing_usage = true;
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overuse_detector_->SetOptions(options_);
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const int kMaxQueueSize = 91;
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for (int i = 0; i < kMaxQueueSize * 2; ++i) {
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overuse_detector_->FrameCaptured(kWidth, kHeight, i);
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}
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EXPECT_EQ(kMaxQueueSize, overuse_detector_->FramesInQueue());
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}
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TEST_F(OveruseFrameDetectorTest, FrameDelay_NonProcessedFramesRemoved) {
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options_.enable_extended_processing_usage = true;
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overuse_detector_->SetOptions(options_);
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const int kProcessingTimeMs = 100;
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overuse_detector_->FrameCaptured(kWidth, kHeight, 33);
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clock_->AdvanceTimeMilliseconds(kProcessingTimeMs);
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overuse_detector_->FrameCaptured(kWidth, kHeight, 35);
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clock_->AdvanceTimeMilliseconds(kProcessingTimeMs);
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overuse_detector_->FrameCaptured(kWidth, kHeight, 66);
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clock_->AdvanceTimeMilliseconds(kProcessingTimeMs);
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overuse_detector_->FrameCaptured(kWidth, kHeight, 99);
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clock_->AdvanceTimeMilliseconds(kProcessingTimeMs);
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EXPECT_EQ(-1, overuse_detector_->LastProcessingTimeMs());
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EXPECT_EQ(4, overuse_detector_->FramesInQueue());
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overuse_detector_->FrameSent(66);
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// Frame 33, 35 removed, 66 processed, 99 not processed.
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EXPECT_EQ(2 * kProcessingTimeMs, overuse_detector_->LastProcessingTimeMs());
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EXPECT_EQ(1, overuse_detector_->FramesInQueue());
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overuse_detector_->FrameSent(99);
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|
EXPECT_EQ(kProcessingTimeMs, overuse_detector_->LastProcessingTimeMs());
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EXPECT_EQ(0, overuse_detector_->FramesInQueue());
|
|
}
|
|
|
|
TEST_F(OveruseFrameDetectorTest, FrameDelay_ResetClearsFrames) {
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|
options_.enable_extended_processing_usage = true;
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|
overuse_detector_->SetOptions(options_);
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|
const int kProcessingTimeMs = 100;
|
|
overuse_detector_->FrameCaptured(kWidth, kHeight, 33);
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EXPECT_EQ(1, overuse_detector_->FramesInQueue());
|
|
clock_->AdvanceTimeMilliseconds(kProcessingTimeMs);
|
|
// Verify reset (resolution changed).
|
|
overuse_detector_->FrameCaptured(kWidth, kHeight + 1, 66);
|
|
EXPECT_EQ(1, overuse_detector_->FramesInQueue());
|
|
clock_->AdvanceTimeMilliseconds(kProcessingTimeMs);
|
|
overuse_detector_->FrameSent(66);
|
|
EXPECT_EQ(kProcessingTimeMs, overuse_detector_->LastProcessingTimeMs());
|
|
EXPECT_EQ(0, overuse_detector_->FramesInQueue());
|
|
}
|
|
|
|
TEST_F(OveruseFrameDetectorTest, FrameDelay_NonMatchingSendFrameIgnored) {
|
|
options_.enable_extended_processing_usage = true;
|
|
overuse_detector_->SetOptions(options_);
|
|
const int kProcessingTimeMs = 100;
|
|
overuse_detector_->FrameCaptured(kWidth, kHeight, 33);
|
|
clock_->AdvanceTimeMilliseconds(kProcessingTimeMs);
|
|
overuse_detector_->FrameSent(34);
|
|
EXPECT_EQ(-1, overuse_detector_->LastProcessingTimeMs());
|
|
overuse_detector_->FrameSent(33);
|
|
EXPECT_EQ(kProcessingTimeMs, overuse_detector_->LastProcessingTimeMs());
|
|
}
|
|
|
|
TEST_F(OveruseFrameDetectorTest, EncodedFrame) {
|
|
const int kInitialAvgEncodeTimeInMs = 5;
|
|
EXPECT_EQ(kInitialAvgEncodeTimeInMs, AvgEncodeTimeMs());
|
|
for (int i = 0; i < 30; i++) {
|
|
clock_->AdvanceTimeMilliseconds(33);
|
|
overuse_detector_->FrameEncoded(2);
|
|
}
|
|
EXPECT_EQ(2, AvgEncodeTimeMs());
|
|
}
|
|
|
|
TEST_F(OveruseFrameDetectorTest, InitialProcessingUsage) {
|
|
EXPECT_EQ(InitialUsage(), UsagePercent());
|
|
}
|
|
|
|
TEST_F(OveruseFrameDetectorTest, ProcessingUsage) {
|
|
const int kProcessingTimeMs = 5;
|
|
InsertAndSendFramesWithInterval(
|
|
1000, kFrameInterval33ms, kWidth, kHeight, kProcessingTimeMs);
|
|
EXPECT_EQ(kProcessingTimeMs * 100 / kFrameInterval33ms, UsagePercent());
|
|
}
|
|
|
|
TEST_F(OveruseFrameDetectorTest, ProcessingUsageResetAfterChangingThreshold) {
|
|
EXPECT_EQ(InitialUsage(), UsagePercent());
|
|
options_.high_encode_usage_threshold_percent = 100;
|
|
overuse_detector_->SetOptions(options_);
|
|
EXPECT_EQ(InitialUsage(), UsagePercent());
|
|
options_.low_encode_usage_threshold_percent = 20;
|
|
overuse_detector_->SetOptions(options_);
|
|
EXPECT_EQ(InitialUsage(), UsagePercent());
|
|
}
|
|
|
|
// enable_encode_usage_method = true;
|
|
// UsagePercent() > high_encode_usage_threshold_percent => overuse.
|
|
// UsagePercent() < low_encode_usage_threshold_percent => underuse.
|
|
TEST_F(OveruseFrameDetectorTest, TriggerOveruseWithProcessingUsage) {
|
|
options_.enable_capture_jitter_method = false;
|
|
options_.enable_encode_usage_method = true;
|
|
options_.enable_extended_processing_usage = false;
|
|
overuse_detector_->SetOptions(options_);
|
|
// usage > high => overuse
|
|
EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(1);
|
|
TriggerOveruseWithProcessingUsage(options_.high_threshold_consecutive_count);
|
|
}
|
|
|
|
TEST_F(OveruseFrameDetectorTest, OveruseAndRecoverWithProcessingUsage) {
|
|
options_.enable_capture_jitter_method = false;
|
|
options_.enable_encode_usage_method = true;
|
|
options_.enable_extended_processing_usage = false;
|
|
overuse_detector_->SetOptions(options_);
|
|
// usage > high => overuse
|
|
EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(1);
|
|
TriggerOveruseWithProcessingUsage(options_.high_threshold_consecutive_count);
|
|
// usage < low => underuse
|
|
EXPECT_CALL(*(observer_.get()), NormalUsage()).Times(testing::AtLeast(1));
|
|
TriggerUnderuseWithProcessingUsage();
|
|
}
|
|
|
|
TEST_F(OveruseFrameDetectorTest,
|
|
OveruseAndRecoverWithProcessingUsageMethodDisabled) {
|
|
options_.enable_capture_jitter_method = false;
|
|
options_.enable_encode_usage_method = false;
|
|
options_.enable_extended_processing_usage = false;
|
|
overuse_detector_->SetOptions(options_);
|
|
// usage > high => overuse
|
|
EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(0);
|
|
TriggerOveruseWithProcessingUsage(options_.high_threshold_consecutive_count);
|
|
// usage < low => underuse
|
|
EXPECT_CALL(*(observer_.get()), NormalUsage()).Times(0);
|
|
TriggerUnderuseWithProcessingUsage();
|
|
}
|
|
|
|
// enable_extended_processing_usage = true;
|
|
// enable_encode_usage_method = true;
|
|
// UsagePercent() > high_encode_usage_threshold_percent => overuse.
|
|
// UsagePercent() < low_encode_usage_threshold_percent => underuse.
|
|
TEST_F(OveruseFrameDetectorTest, TriggerOveruseWithExtendedProcessingUsage) {
|
|
options_.enable_capture_jitter_method = false;
|
|
options_.enable_encode_usage_method = true;
|
|
options_.enable_extended_processing_usage = true;
|
|
overuse_detector_->SetOptions(options_);
|
|
// usage > high => overuse
|
|
EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(1);
|
|
TriggerOveruseWithProcessingUsage(options_.high_threshold_consecutive_count);
|
|
}
|
|
|
|
TEST_F(OveruseFrameDetectorTest, OveruseAndRecoverWithExtendedProcessingUsage) {
|
|
options_.enable_capture_jitter_method = false;
|
|
options_.enable_encode_usage_method = true;
|
|
options_.enable_extended_processing_usage = true;
|
|
overuse_detector_->SetOptions(options_);
|
|
// usage > high => overuse
|
|
EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(1);
|
|
TriggerOveruseWithProcessingUsage(options_.high_threshold_consecutive_count);
|
|
// usage < low => underuse
|
|
EXPECT_CALL(*(observer_.get()), NormalUsage()).Times(testing::AtLeast(1));
|
|
TriggerUnderuseWithProcessingUsage();
|
|
}
|
|
|
|
TEST_F(OveruseFrameDetectorTest,
|
|
OveruseAndRecoverWithExtendedProcessingUsageMethodDisabled) {
|
|
options_.enable_capture_jitter_method = false;
|
|
options_.enable_encode_usage_method = false;
|
|
options_.enable_extended_processing_usage = true;
|
|
overuse_detector_->SetOptions(options_);
|
|
// usage > high => overuse
|
|
EXPECT_CALL(*(observer_.get()), OveruseDetected()).Times(0);
|
|
TriggerOveruseWithProcessingUsage(options_.high_threshold_consecutive_count);
|
|
// usage < low => underuse
|
|
EXPECT_CALL(*(observer_.get()), NormalUsage()).Times(0);
|
|
TriggerUnderuseWithProcessingUsage();
|
|
}
|
|
|
|
} // namespace webrtc
|