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To make testing easier all of PacketQueues functions have been made virtual, and PacketQueue2 now inherits PacketQueue. This change was made to minimize changes in PacedSender. Bug: webrtc:8287, webrtc:8288 Change-Id: I2593340e7cc7da617370b0a33e7b9deeb46d9487 Reviewed-on: https://webrtc-review.googlesource.com/9380 Reviewed-by: Stefan Holmer <stefan@webrtc.org> Commit-Queue: Philip Eliasson <philipel@webrtc.org> Cr-Commit-Position: refs/heads/master@{#20385}
1147 lines
44 KiB
C++
1147 lines
44 KiB
C++
/*
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* Copyright (c) 2012 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 <list>
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#include <memory>
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#include <string>
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#include "modules/pacing/paced_sender.h"
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#include "system_wrappers/include/clock.h"
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#include "system_wrappers/include/field_trial.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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using testing::_;
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using testing::Field;
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using testing::Return;
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namespace {
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constexpr unsigned kFirstClusterBps = 900000;
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constexpr unsigned kSecondClusterBps = 1800000;
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// The error stems from truncating the time interval of probe packets to integer
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// values. This results in probing slightly higher than the target bitrate.
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// For 1.8 Mbps, this comes to be about 120 kbps with 1200 probe packets.
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constexpr int kBitrateProbingError = 150000;
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} // namespace
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namespace webrtc {
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namespace test {
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static const int kTargetBitrateBps = 800000;
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class MockPacedSenderCallback : public PacedSender::PacketSender {
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public:
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MOCK_METHOD5(TimeToSendPacket,
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bool(uint32_t ssrc,
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uint16_t sequence_number,
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int64_t capture_time_ms,
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bool retransmission,
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const PacedPacketInfo& pacing_info));
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MOCK_METHOD2(TimeToSendPadding,
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size_t(size_t bytes, const PacedPacketInfo& pacing_info));
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};
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class PacedSenderPadding : public PacedSender::PacketSender {
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public:
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PacedSenderPadding() : padding_sent_(0) {}
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bool TimeToSendPacket(uint32_t ssrc,
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uint16_t sequence_number,
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int64_t capture_time_ms,
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bool retransmission,
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const PacedPacketInfo& pacing_info) override {
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return true;
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}
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size_t TimeToSendPadding(size_t bytes,
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const PacedPacketInfo& pacing_info) override {
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const size_t kPaddingPacketSize = 224;
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size_t num_packets = (bytes + kPaddingPacketSize - 1) / kPaddingPacketSize;
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padding_sent_ += kPaddingPacketSize * num_packets;
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return kPaddingPacketSize * num_packets;
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}
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size_t padding_sent() { return padding_sent_; }
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private:
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size_t padding_sent_;
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};
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class PacedSenderProbing : public PacedSender::PacketSender {
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public:
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PacedSenderProbing() : packets_sent_(0), padding_sent_(0) {}
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bool TimeToSendPacket(uint32_t ssrc,
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uint16_t sequence_number,
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int64_t capture_time_ms,
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bool retransmission,
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const PacedPacketInfo& pacing_info) override {
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packets_sent_++;
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return true;
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}
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size_t TimeToSendPadding(size_t bytes,
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const PacedPacketInfo& pacing_info) override {
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padding_sent_ += bytes;
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return padding_sent_;
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}
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int packets_sent() const { return packets_sent_; }
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int padding_sent() const { return padding_sent_; }
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private:
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int packets_sent_;
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int padding_sent_;
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};
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class PacedSenderTest : public testing::TestWithParam<std::string> {
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protected:
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PacedSenderTest() : clock_(123456), field_trial_(GetParam()) {
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srand(0);
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// Need to initialize PacedSender after we initialize clock.
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send_bucket_.reset(new PacedSender(&clock_, &callback_, nullptr));
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send_bucket_->CreateProbeCluster(kFirstClusterBps);
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send_bucket_->CreateProbeCluster(kSecondClusterBps);
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// Default to bitrate probing disabled for testing purposes. Probing tests
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// have to enable probing, either by creating a new PacedSender instance or
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// by calling SetProbingEnabled(true).
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send_bucket_->SetProbingEnabled(false);
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send_bucket_->SetEstimatedBitrate(kTargetBitrateBps);
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clock_.AdvanceTimeMilliseconds(send_bucket_->TimeUntilNextProcess());
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}
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void SendAndExpectPacket(PacedSender::Priority priority,
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uint32_t ssrc,
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uint16_t sequence_number,
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int64_t capture_time_ms,
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size_t size,
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bool retransmission) {
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send_bucket_->InsertPacket(priority, ssrc, sequence_number, capture_time_ms,
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size, retransmission);
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EXPECT_CALL(callback_, TimeToSendPacket(ssrc, sequence_number,
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capture_time_ms, retransmission, _))
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.Times(1)
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.WillRepeatedly(Return(true));
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}
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SimulatedClock clock_;
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MockPacedSenderCallback callback_;
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std::unique_ptr<PacedSender> send_bucket_;
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test::ScopedFieldTrials field_trial_;
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};
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INSTANTIATE_TEST_CASE_P(RoundRobin,
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PacedSenderTest,
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::testing::Values("WebRTC-RoundRobinPacing/Disabled/",
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"WebRTC-RoundRobinPacing/Enabled/"));
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TEST_P(PacedSenderTest, FirstSentPacketTimeIsSet) {
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uint16_t sequence_number = 1234;
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const uint32_t kSsrc = 12345;
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const size_t kSizeBytes = 250;
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const size_t kPacketToSend = 3;
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const int64_t kStartMs = clock_.TimeInMilliseconds();
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// No packet sent.
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EXPECT_EQ(-1, send_bucket_->FirstSentPacketTimeMs());
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for (size_t i = 0; i < kPacketToSend; ++i) {
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SendAndExpectPacket(PacedSender::kNormalPriority, kSsrc, sequence_number++,
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clock_.TimeInMilliseconds(), kSizeBytes, false);
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send_bucket_->Process();
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clock_.AdvanceTimeMilliseconds(send_bucket_->TimeUntilNextProcess());
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}
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EXPECT_EQ(kStartMs, send_bucket_->FirstSentPacketTimeMs());
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}
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TEST_P(PacedSenderTest, QueuePacket) {
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uint32_t ssrc = 12345;
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uint16_t sequence_number = 1234;
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// Due to the multiplicative factor we can send 5 packets during a send
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// interval. (network capacity * multiplier / (8 bits per byte *
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// (packet size * #send intervals per second)
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const size_t packets_to_send =
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kTargetBitrateBps * PacedSender::kDefaultPaceMultiplier / (8 * 250 * 200);
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for (size_t i = 0; i < packets_to_send; ++i) {
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SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number++,
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clock_.TimeInMilliseconds(), 250, false);
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}
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int64_t queued_packet_timestamp = clock_.TimeInMilliseconds();
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send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
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sequence_number, queued_packet_timestamp, 250,
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false);
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EXPECT_EQ(packets_to_send + 1, send_bucket_->QueueSizePackets());
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send_bucket_->Process();
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EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
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EXPECT_CALL(callback_, TimeToSendPadding(_, _)).Times(0);
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clock_.AdvanceTimeMilliseconds(4);
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EXPECT_EQ(1, send_bucket_->TimeUntilNextProcess());
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clock_.AdvanceTimeMilliseconds(1);
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EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
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EXPECT_EQ(1u, send_bucket_->QueueSizePackets());
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EXPECT_CALL(callback_, TimeToSendPacket(ssrc, sequence_number++,
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queued_packet_timestamp, false, _))
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.Times(1)
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.WillRepeatedly(Return(true));
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send_bucket_->Process();
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sequence_number++;
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EXPECT_EQ(0u, send_bucket_->QueueSizePackets());
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// We can send packets_to_send -1 packets of size 250 during the current
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// interval since one packet has already been sent.
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for (size_t i = 0; i < packets_to_send - 1; ++i) {
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SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number++,
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clock_.TimeInMilliseconds(), 250, false);
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}
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send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
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sequence_number++, clock_.TimeInMilliseconds(),
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250, false);
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EXPECT_EQ(packets_to_send, send_bucket_->QueueSizePackets());
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send_bucket_->Process();
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EXPECT_EQ(1u, send_bucket_->QueueSizePackets());
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}
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TEST_P(PacedSenderTest, PaceQueuedPackets) {
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uint32_t ssrc = 12345;
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uint16_t sequence_number = 1234;
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// Due to the multiplicative factor we can send 5 packets during a send
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// interval. (network capacity * multiplier / (8 bits per byte *
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// (packet size * #send intervals per second)
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const size_t packets_to_send_per_interval =
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kTargetBitrateBps * PacedSender::kDefaultPaceMultiplier / (8 * 250 * 200);
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for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
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SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number++,
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clock_.TimeInMilliseconds(), 250, false);
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}
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for (size_t j = 0; j < packets_to_send_per_interval * 10; ++j) {
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send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
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sequence_number++, clock_.TimeInMilliseconds(),
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250, false);
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}
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EXPECT_EQ(packets_to_send_per_interval + packets_to_send_per_interval * 10,
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send_bucket_->QueueSizePackets());
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send_bucket_->Process();
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EXPECT_EQ(packets_to_send_per_interval * 10,
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send_bucket_->QueueSizePackets());
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EXPECT_CALL(callback_, TimeToSendPadding(_, _)).Times(0);
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for (int k = 0; k < 10; ++k) {
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EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
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clock_.AdvanceTimeMilliseconds(5);
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EXPECT_CALL(callback_, TimeToSendPacket(ssrc, _, _, false, _))
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.Times(packets_to_send_per_interval)
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.WillRepeatedly(Return(true));
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EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
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send_bucket_->Process();
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}
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EXPECT_EQ(0u, send_bucket_->QueueSizePackets());
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EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
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clock_.AdvanceTimeMilliseconds(5);
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EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
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EXPECT_EQ(0u, send_bucket_->QueueSizePackets());
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send_bucket_->Process();
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for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
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SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number++,
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clock_.TimeInMilliseconds(), 250, false);
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}
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send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
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sequence_number, clock_.TimeInMilliseconds(), 250,
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false);
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send_bucket_->Process();
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EXPECT_EQ(1u, send_bucket_->QueueSizePackets());
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}
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TEST_P(PacedSenderTest, RepeatedRetransmissionsAllowed) {
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// Send one packet, then two retransmissions of that packet.
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for (size_t i = 0; i < 3; i++) {
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constexpr uint32_t ssrc = 333;
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constexpr uint16_t sequence_number = 444;
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constexpr size_t bytes = 250;
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bool is_retransmission = (i != 0); // Original followed by retransmissions.
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SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number,
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clock_.TimeInMilliseconds(), bytes, is_retransmission);
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clock_.AdvanceTimeMilliseconds(5);
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}
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send_bucket_->Process();
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}
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TEST_P(PacedSenderTest, CanQueuePacketsWithSameSequenceNumberOnDifferentSsrcs) {
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uint32_t ssrc = 12345;
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uint16_t sequence_number = 1234;
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SendAndExpectPacket(PacedSender::kNormalPriority,
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ssrc,
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sequence_number,
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clock_.TimeInMilliseconds(),
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250,
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false);
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// Expect packet on second ssrc to be queued and sent as well.
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SendAndExpectPacket(PacedSender::kNormalPriority,
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ssrc + 1,
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sequence_number,
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clock_.TimeInMilliseconds(),
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250,
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false);
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clock_.AdvanceTimeMilliseconds(1000);
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send_bucket_->Process();
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}
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TEST_P(PacedSenderTest, Padding) {
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uint32_t ssrc = 12345;
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uint16_t sequence_number = 1234;
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send_bucket_->SetEstimatedBitrate(kTargetBitrateBps);
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send_bucket_->SetSendBitrateLimits(kTargetBitrateBps, kTargetBitrateBps);
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// Due to the multiplicative factor we can send 5 packets during a send
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// interval. (network capacity * multiplier / (8 bits per byte *
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// (packet size * #send intervals per second)
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const size_t packets_to_send_per_interval =
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kTargetBitrateBps * PacedSender::kDefaultPaceMultiplier / (8 * 250 * 200);
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for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
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SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number++,
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clock_.TimeInMilliseconds(), 250, false);
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}
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// No padding is expected since we have sent too much already.
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EXPECT_CALL(callback_, TimeToSendPadding(_, _)).Times(0);
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EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
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send_bucket_->Process();
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EXPECT_EQ(0u, send_bucket_->QueueSizePackets());
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// 5 milliseconds later should not send padding since we filled the buffers
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// initially.
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EXPECT_CALL(callback_, TimeToSendPadding(250, _)).Times(0);
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EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
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clock_.AdvanceTimeMilliseconds(5);
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EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
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send_bucket_->Process();
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// 5 milliseconds later we have enough budget to send some padding.
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EXPECT_CALL(callback_, TimeToSendPadding(250, _))
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.Times(1)
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.WillOnce(Return(250));
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EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
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clock_.AdvanceTimeMilliseconds(5);
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EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
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send_bucket_->Process();
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}
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TEST_P(PacedSenderTest, NoPaddingBeforeNormalPacket) {
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send_bucket_->SetEstimatedBitrate(kTargetBitrateBps);
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send_bucket_->SetSendBitrateLimits(kTargetBitrateBps, kTargetBitrateBps);
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EXPECT_CALL(callback_, TimeToSendPadding(_, _)).Times(0);
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send_bucket_->Process();
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clock_.AdvanceTimeMilliseconds(send_bucket_->TimeUntilNextProcess());
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send_bucket_->Process();
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clock_.AdvanceTimeMilliseconds(send_bucket_->TimeUntilNextProcess());
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uint32_t ssrc = 12345;
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uint16_t sequence_number = 1234;
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int64_t capture_time_ms = 56789;
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SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number++,
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capture_time_ms, 250, false);
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EXPECT_CALL(callback_, TimeToSendPadding(250, _))
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.Times(1)
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.WillOnce(Return(250));
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send_bucket_->Process();
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}
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TEST_P(PacedSenderTest, VerifyPaddingUpToBitrate) {
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uint32_t ssrc = 12345;
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uint16_t sequence_number = 1234;
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int64_t capture_time_ms = 56789;
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const int kTimeStep = 5;
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const int64_t kBitrateWindow = 100;
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send_bucket_->SetEstimatedBitrate(kTargetBitrateBps);
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send_bucket_->SetSendBitrateLimits(kTargetBitrateBps, kTargetBitrateBps);
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int64_t start_time = clock_.TimeInMilliseconds();
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while (clock_.TimeInMilliseconds() - start_time < kBitrateWindow) {
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SendAndExpectPacket(PacedSender::kNormalPriority,
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ssrc,
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sequence_number++,
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capture_time_ms,
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250,
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false);
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EXPECT_CALL(callback_, TimeToSendPadding(250, _))
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.Times(1)
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.WillOnce(Return(250));
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send_bucket_->Process();
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clock_.AdvanceTimeMilliseconds(kTimeStep);
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}
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}
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TEST_P(PacedSenderTest, VerifyAverageBitrateVaryingMediaPayload) {
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uint32_t ssrc = 12345;
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uint16_t sequence_number = 1234;
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int64_t capture_time_ms = 56789;
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const int kTimeStep = 5;
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const int64_t kBitrateWindow = 10000;
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PacedSenderPadding callback;
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send_bucket_.reset(new PacedSender(&clock_, &callback, nullptr));
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send_bucket_->SetProbingEnabled(false);
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send_bucket_->SetEstimatedBitrate(kTargetBitrateBps);
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send_bucket_->SetSendBitrateLimits(
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0 /*allocated_bitrate_bps*/,
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kTargetBitrateBps * 2 /* max_padding_bitrate_bps */);
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int64_t start_time = clock_.TimeInMilliseconds();
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size_t media_bytes = 0;
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while (clock_.TimeInMilliseconds() - start_time < kBitrateWindow) {
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int rand_value = rand(); // NOLINT (rand_r instead of rand)
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size_t media_payload = rand_value % 100 + 200; // [200, 300] bytes.
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send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
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sequence_number++, capture_time_ms,
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media_payload, false);
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media_bytes += media_payload;
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clock_.AdvanceTimeMilliseconds(kTimeStep);
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send_bucket_->Process();
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}
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EXPECT_NEAR(kTargetBitrateBps / 1000,
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static_cast<int>(8 * (media_bytes + callback.padding_sent()) /
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kBitrateWindow),
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1);
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}
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TEST_P(PacedSenderTest, Priority) {
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uint32_t ssrc_low_priority = 12345;
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uint32_t ssrc = 12346;
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uint16_t sequence_number = 1234;
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int64_t capture_time_ms = 56789;
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int64_t capture_time_ms_low_priority = 1234567;
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// Due to the multiplicative factor we can send 5 packets during a send
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// interval. (network capacity * multiplier / (8 bits per byte *
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// (packet size * #send intervals per second)
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const size_t packets_to_send_per_interval =
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kTargetBitrateBps * PacedSender::kDefaultPaceMultiplier / (8 * 250 * 200);
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for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
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SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number++,
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clock_.TimeInMilliseconds(), 250, false);
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}
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send_bucket_->Process();
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EXPECT_EQ(0u, send_bucket_->QueueSizePackets());
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// Expect normal and low priority to be queued and high to pass through.
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send_bucket_->InsertPacket(PacedSender::kLowPriority, ssrc_low_priority,
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sequence_number++, capture_time_ms_low_priority,
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250, false);
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for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number++, capture_time_ms, 250, false);
|
|
}
|
|
send_bucket_->InsertPacket(PacedSender::kHighPriority, ssrc,
|
|
sequence_number++, capture_time_ms, 250, false);
|
|
|
|
// Expect all high and normal priority to be sent out first.
|
|
EXPECT_CALL(callback_, TimeToSendPadding(_, _)).Times(0);
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc, _, capture_time_ms, false, _))
|
|
.Times(packets_to_send_per_interval + 1)
|
|
.WillRepeatedly(Return(true));
|
|
|
|
EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
|
|
clock_.AdvanceTimeMilliseconds(5);
|
|
EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
|
|
send_bucket_->Process();
|
|
EXPECT_EQ(1u, send_bucket_->QueueSizePackets());
|
|
|
|
EXPECT_CALL(callback_,
|
|
TimeToSendPacket(ssrc_low_priority, _,
|
|
capture_time_ms_low_priority, false, _))
|
|
.Times(1)
|
|
.WillRepeatedly(Return(true));
|
|
|
|
EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
|
|
clock_.AdvanceTimeMilliseconds(5);
|
|
EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
|
|
send_bucket_->Process();
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, RetransmissionPriority) {
|
|
uint32_t ssrc = 12345;
|
|
uint16_t sequence_number = 1234;
|
|
int64_t capture_time_ms = 45678;
|
|
int64_t capture_time_ms_retransmission = 56789;
|
|
|
|
// Due to the multiplicative factor we can send 5 packets during a send
|
|
// interval. (network capacity * multiplier / (8 bits per byte *
|
|
// (packet size * #send intervals per second)
|
|
const size_t packets_to_send_per_interval =
|
|
kTargetBitrateBps * PacedSender::kDefaultPaceMultiplier / (8 * 250 * 200);
|
|
send_bucket_->Process();
|
|
EXPECT_EQ(0u, send_bucket_->QueueSizePackets());
|
|
|
|
// Alternate retransmissions and normal packets.
|
|
for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number++,
|
|
capture_time_ms_retransmission, 250, true);
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number++, capture_time_ms, 250, false);
|
|
}
|
|
EXPECT_EQ(2 * packets_to_send_per_interval, send_bucket_->QueueSizePackets());
|
|
|
|
// Expect all retransmissions to be sent out first despite having a later
|
|
// capture time.
|
|
EXPECT_CALL(callback_, TimeToSendPadding(_, _)).Times(0);
|
|
EXPECT_CALL(callback_, TimeToSendPacket(_, _, _, false, _)).Times(0);
|
|
EXPECT_CALL(callback_, TimeToSendPacket(
|
|
ssrc, _, capture_time_ms_retransmission, true, _))
|
|
.Times(packets_to_send_per_interval)
|
|
.WillRepeatedly(Return(true));
|
|
|
|
EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
|
|
clock_.AdvanceTimeMilliseconds(5);
|
|
EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
|
|
send_bucket_->Process();
|
|
EXPECT_EQ(packets_to_send_per_interval, send_bucket_->QueueSizePackets());
|
|
|
|
// Expect the remaining (non-retransmission) packets to be sent.
|
|
EXPECT_CALL(callback_, TimeToSendPadding(_, _)).Times(0);
|
|
EXPECT_CALL(callback_, TimeToSendPacket(_, _, _, true, _)).Times(0);
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc, _, capture_time_ms, false, _))
|
|
.Times(packets_to_send_per_interval)
|
|
.WillRepeatedly(Return(true));
|
|
|
|
EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
|
|
clock_.AdvanceTimeMilliseconds(5);
|
|
EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
|
|
send_bucket_->Process();
|
|
|
|
EXPECT_EQ(0u, send_bucket_->QueueSizePackets());
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, HighPrioDoesntAffectBudget) {
|
|
uint32_t ssrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
int64_t capture_time_ms = 56789;
|
|
|
|
// As high prio packets doesn't affect the budget, we should be able to send
|
|
// a high number of them at once.
|
|
for (int i = 0; i < 25; ++i) {
|
|
SendAndExpectPacket(PacedSender::kHighPriority, ssrc, sequence_number++,
|
|
capture_time_ms, 250, false);
|
|
}
|
|
send_bucket_->Process();
|
|
// Low prio packets does affect the budget.
|
|
// Due to the multiplicative factor we can send 5 packets during a send
|
|
// interval. (network capacity * multiplier / (8 bits per byte *
|
|
// (packet size * #send intervals per second)
|
|
const size_t packets_to_send_per_interval =
|
|
kTargetBitrateBps * PacedSender::kDefaultPaceMultiplier / (8 * 250 * 200);
|
|
for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
|
|
SendAndExpectPacket(PacedSender::kLowPriority, ssrc, sequence_number++,
|
|
clock_.TimeInMilliseconds(), 250, false);
|
|
}
|
|
send_bucket_->InsertPacket(PacedSender::kLowPriority, ssrc, sequence_number,
|
|
capture_time_ms, 250, false);
|
|
EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
|
|
clock_.AdvanceTimeMilliseconds(5);
|
|
send_bucket_->Process();
|
|
EXPECT_EQ(1u, send_bucket_->QueueSizePackets());
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc, sequence_number++,
|
|
capture_time_ms, false, _))
|
|
.Times(1)
|
|
.WillRepeatedly(Return(true));
|
|
EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
|
|
clock_.AdvanceTimeMilliseconds(5);
|
|
send_bucket_->Process();
|
|
EXPECT_EQ(0u, send_bucket_->QueueSizePackets());
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, Pause) {
|
|
uint32_t ssrc_low_priority = 12345;
|
|
uint32_t ssrc = 12346;
|
|
uint32_t ssrc_high_priority = 12347;
|
|
uint16_t sequence_number = 1234;
|
|
int64_t capture_time_ms = clock_.TimeInMilliseconds();
|
|
|
|
EXPECT_EQ(0, send_bucket_->QueueInMs());
|
|
|
|
// Due to the multiplicative factor we can send 5 packets during a send
|
|
// interval. (network capacity * multiplier / (8 bits per byte *
|
|
// (packet size * #send intervals per second)
|
|
const size_t packets_to_send_per_interval =
|
|
kTargetBitrateBps * PacedSender::kDefaultPaceMultiplier / (8 * 250 * 200);
|
|
for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
|
|
SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number++,
|
|
clock_.TimeInMilliseconds(), 250, false);
|
|
}
|
|
|
|
send_bucket_->Process();
|
|
|
|
send_bucket_->Pause();
|
|
|
|
for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
|
|
send_bucket_->InsertPacket(PacedSender::kLowPriority, ssrc_low_priority,
|
|
sequence_number++, capture_time_ms, 250, false);
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number++, capture_time_ms, 250, false);
|
|
send_bucket_->InsertPacket(PacedSender::kHighPriority, ssrc_high_priority,
|
|
sequence_number++, capture_time_ms, 250, false);
|
|
}
|
|
clock_.AdvanceTimeMilliseconds(10000);
|
|
int64_t second_capture_time_ms = clock_.TimeInMilliseconds();
|
|
for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
|
|
send_bucket_->InsertPacket(PacedSender::kLowPriority, ssrc_low_priority,
|
|
sequence_number++, second_capture_time_ms, 250,
|
|
false);
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number++, second_capture_time_ms, 250,
|
|
false);
|
|
send_bucket_->InsertPacket(PacedSender::kHighPriority, ssrc_high_priority,
|
|
sequence_number++, second_capture_time_ms, 250,
|
|
false);
|
|
}
|
|
|
|
// Expect everything to be queued.
|
|
EXPECT_EQ(second_capture_time_ms - capture_time_ms,
|
|
send_bucket_->QueueInMs());
|
|
|
|
EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
|
|
EXPECT_CALL(callback_, TimeToSendPadding(1, _)).Times(1);
|
|
send_bucket_->Process();
|
|
|
|
int64_t expected_time_until_send = 500;
|
|
EXPECT_CALL(callback_, TimeToSendPadding(1, _)).Times(1);
|
|
while (expected_time_until_send >= 0) {
|
|
// TimeUntilNextProcess must not return 0 when paused. If it does,
|
|
// we risk running a busy loop, so ideally it should return a large value.
|
|
EXPECT_EQ(expected_time_until_send, send_bucket_->TimeUntilNextProcess());
|
|
if (expected_time_until_send == 0)
|
|
send_bucket_->Process();
|
|
clock_.AdvanceTimeMilliseconds(5);
|
|
expected_time_until_send -= 5;
|
|
}
|
|
|
|
// Expect high prio packets to come out first followed by normal
|
|
// prio packets and low prio packets (all in capture order).
|
|
{
|
|
::testing::InSequence sequence;
|
|
EXPECT_CALL(callback_,
|
|
TimeToSendPacket(ssrc_high_priority, _, capture_time_ms, _, _))
|
|
.Times(packets_to_send_per_interval)
|
|
.WillRepeatedly(Return(true));
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc_high_priority, _,
|
|
second_capture_time_ms, _, _))
|
|
.Times(packets_to_send_per_interval)
|
|
.WillRepeatedly(Return(true));
|
|
|
|
for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc, _, capture_time_ms, _, _))
|
|
.Times(1)
|
|
.WillRepeatedly(Return(true));
|
|
}
|
|
for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
|
|
EXPECT_CALL(callback_,
|
|
TimeToSendPacket(ssrc, _, second_capture_time_ms, _, _))
|
|
.Times(1)
|
|
.WillRepeatedly(Return(true));
|
|
}
|
|
for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
|
|
EXPECT_CALL(callback_,
|
|
TimeToSendPacket(ssrc_low_priority, _, capture_time_ms, _, _))
|
|
.Times(1)
|
|
.WillRepeatedly(Return(true));
|
|
}
|
|
for (size_t i = 0; i < packets_to_send_per_interval; ++i) {
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc_low_priority, _,
|
|
second_capture_time_ms, _, _))
|
|
.Times(1)
|
|
.WillRepeatedly(Return(true));
|
|
}
|
|
}
|
|
send_bucket_->Resume();
|
|
|
|
for (size_t i = 0; i < 4; i++) {
|
|
EXPECT_EQ(0, send_bucket_->TimeUntilNextProcess());
|
|
send_bucket_->Process();
|
|
EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
|
|
clock_.AdvanceTimeMilliseconds(5);
|
|
}
|
|
|
|
EXPECT_EQ(0, send_bucket_->QueueInMs());
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, ResendPacket) {
|
|
uint32_t ssrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
int64_t capture_time_ms = clock_.TimeInMilliseconds();
|
|
EXPECT_EQ(0, send_bucket_->QueueInMs());
|
|
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number, capture_time_ms, 250, false);
|
|
clock_.AdvanceTimeMilliseconds(1);
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number + 1, capture_time_ms + 1, 250,
|
|
false);
|
|
clock_.AdvanceTimeMilliseconds(9999);
|
|
EXPECT_EQ(clock_.TimeInMilliseconds() - capture_time_ms,
|
|
send_bucket_->QueueInMs());
|
|
// Fails to send first packet so only one call.
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc, sequence_number,
|
|
capture_time_ms, false, _))
|
|
.Times(1)
|
|
.WillOnce(Return(false));
|
|
clock_.AdvanceTimeMilliseconds(10000);
|
|
send_bucket_->Process();
|
|
|
|
// Queue remains unchanged.
|
|
EXPECT_EQ(clock_.TimeInMilliseconds() - capture_time_ms,
|
|
send_bucket_->QueueInMs());
|
|
|
|
// Fails to send second packet.
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc, sequence_number,
|
|
capture_time_ms, false, _))
|
|
.Times(1)
|
|
.WillOnce(Return(true));
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc, sequence_number + 1,
|
|
capture_time_ms + 1, false, _))
|
|
.Times(1)
|
|
.WillOnce(Return(false));
|
|
clock_.AdvanceTimeMilliseconds(10000);
|
|
send_bucket_->Process();
|
|
|
|
// Queue is reduced by 1 packet.
|
|
EXPECT_EQ(clock_.TimeInMilliseconds() - capture_time_ms - 1,
|
|
send_bucket_->QueueInMs());
|
|
|
|
// Send second packet and queue becomes empty.
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc, sequence_number + 1,
|
|
capture_time_ms + 1, false, _))
|
|
.Times(1)
|
|
.WillOnce(Return(true));
|
|
clock_.AdvanceTimeMilliseconds(10000);
|
|
send_bucket_->Process();
|
|
EXPECT_EQ(0, send_bucket_->QueueInMs());
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, ExpectedQueueTimeMs) {
|
|
uint32_t ssrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
const size_t kNumPackets = 60;
|
|
const size_t kPacketSize = 1200;
|
|
const int32_t kMaxBitrate = PacedSender::kDefaultPaceMultiplier * 30000;
|
|
EXPECT_EQ(0, send_bucket_->ExpectedQueueTimeMs());
|
|
|
|
send_bucket_->SetEstimatedBitrate(30000);
|
|
for (size_t i = 0; i < kNumPackets; ++i) {
|
|
SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number++,
|
|
clock_.TimeInMilliseconds(), kPacketSize, false);
|
|
}
|
|
|
|
// Queue in ms = 1000 * (bytes in queue) *8 / (bits per second)
|
|
int64_t queue_in_ms =
|
|
static_cast<int64_t>(1000 * kNumPackets * kPacketSize * 8 / kMaxBitrate);
|
|
EXPECT_EQ(queue_in_ms, send_bucket_->ExpectedQueueTimeMs());
|
|
|
|
int64_t time_start = clock_.TimeInMilliseconds();
|
|
while (send_bucket_->QueueSizePackets() > 0) {
|
|
int time_until_process = send_bucket_->TimeUntilNextProcess();
|
|
if (time_until_process <= 0) {
|
|
send_bucket_->Process();
|
|
} else {
|
|
clock_.AdvanceTimeMilliseconds(time_until_process);
|
|
}
|
|
}
|
|
int64_t duration = clock_.TimeInMilliseconds() - time_start;
|
|
|
|
EXPECT_EQ(0, send_bucket_->ExpectedQueueTimeMs());
|
|
|
|
// Allow for aliasing, duration should be within one pack of max time limit.
|
|
EXPECT_NEAR(duration, PacedSender::kMaxQueueLengthMs,
|
|
static_cast<int64_t>(1000 * kPacketSize * 8 / kMaxBitrate));
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, QueueTimeGrowsOverTime) {
|
|
uint32_t ssrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
EXPECT_EQ(0, send_bucket_->QueueInMs());
|
|
|
|
send_bucket_->SetEstimatedBitrate(30000);
|
|
SendAndExpectPacket(PacedSender::kNormalPriority,
|
|
ssrc,
|
|
sequence_number,
|
|
clock_.TimeInMilliseconds(),
|
|
1200,
|
|
false);
|
|
|
|
clock_.AdvanceTimeMilliseconds(500);
|
|
EXPECT_EQ(500, send_bucket_->QueueInMs());
|
|
send_bucket_->Process();
|
|
EXPECT_EQ(0, send_bucket_->QueueInMs());
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, ProbingWithInsertedPackets) {
|
|
const size_t kPacketSize = 1200;
|
|
const int kInitialBitrateBps = 300000;
|
|
uint32_t ssrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
|
|
PacedSenderProbing packet_sender;
|
|
send_bucket_.reset(new PacedSender(&clock_, &packet_sender, nullptr));
|
|
send_bucket_->CreateProbeCluster(kFirstClusterBps);
|
|
send_bucket_->CreateProbeCluster(kSecondClusterBps);
|
|
send_bucket_->SetEstimatedBitrate(kInitialBitrateBps);
|
|
|
|
for (int i = 0; i < 10; ++i) {
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number++, clock_.TimeInMilliseconds(),
|
|
kPacketSize, false);
|
|
}
|
|
|
|
int64_t start = clock_.TimeInMilliseconds();
|
|
while (packet_sender.packets_sent() < 5) {
|
|
int time_until_process = send_bucket_->TimeUntilNextProcess();
|
|
clock_.AdvanceTimeMilliseconds(time_until_process);
|
|
send_bucket_->Process();
|
|
}
|
|
int packets_sent = packet_sender.packets_sent();
|
|
// Validate first cluster bitrate. Note that we have to account for number
|
|
// of intervals and hence (packets_sent - 1) on the first cluster.
|
|
EXPECT_NEAR((packets_sent - 1) * kPacketSize * 8000 /
|
|
(clock_.TimeInMilliseconds() - start),
|
|
kFirstClusterBps, kBitrateProbingError);
|
|
EXPECT_EQ(0, packet_sender.padding_sent());
|
|
|
|
clock_.AdvanceTimeMilliseconds(send_bucket_->TimeUntilNextProcess());
|
|
start = clock_.TimeInMilliseconds();
|
|
while (packet_sender.packets_sent() < 10) {
|
|
int time_until_process = send_bucket_->TimeUntilNextProcess();
|
|
clock_.AdvanceTimeMilliseconds(time_until_process);
|
|
send_bucket_->Process();
|
|
}
|
|
packets_sent = packet_sender.packets_sent() - packets_sent;
|
|
// Validate second cluster bitrate.
|
|
EXPECT_NEAR((packets_sent - 1) * kPacketSize * 8000 /
|
|
(clock_.TimeInMilliseconds() - start),
|
|
kSecondClusterBps, kBitrateProbingError);
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, ProbingWithPaddingSupport) {
|
|
const size_t kPacketSize = 1200;
|
|
const int kInitialBitrateBps = 300000;
|
|
uint32_t ssrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
|
|
PacedSenderProbing packet_sender;
|
|
send_bucket_.reset(new PacedSender(&clock_, &packet_sender, nullptr));
|
|
send_bucket_->CreateProbeCluster(kFirstClusterBps);
|
|
send_bucket_->SetEstimatedBitrate(kInitialBitrateBps);
|
|
|
|
for (int i = 0; i < 3; ++i) {
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number++, clock_.TimeInMilliseconds(),
|
|
kPacketSize, false);
|
|
}
|
|
|
|
int64_t start = clock_.TimeInMilliseconds();
|
|
int process_count = 0;
|
|
while (process_count < 5) {
|
|
int time_until_process = send_bucket_->TimeUntilNextProcess();
|
|
clock_.AdvanceTimeMilliseconds(time_until_process);
|
|
send_bucket_->Process();
|
|
++process_count;
|
|
}
|
|
int packets_sent = packet_sender.packets_sent();
|
|
int padding_sent = packet_sender.padding_sent();
|
|
EXPECT_GT(packets_sent, 0);
|
|
EXPECT_GT(padding_sent, 0);
|
|
// Note that the number of intervals here for kPacketSize is
|
|
// packets_sent due to padding in the same cluster.
|
|
EXPECT_NEAR((packets_sent * kPacketSize * 8000 + padding_sent) /
|
|
(clock_.TimeInMilliseconds() - start),
|
|
kFirstClusterBps, kBitrateProbingError);
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, PriorityInversion) {
|
|
// In this test capture timestamps are used to order packets, capture
|
|
// timestamps are not used in PacketQueue2.
|
|
if (webrtc::field_trial::IsEnabled("WebRTC-RoundRobinPacing"))
|
|
return;
|
|
uint32_t ssrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
const size_t kPacketSize = 1200;
|
|
|
|
send_bucket_->InsertPacket(
|
|
PacedSender::kHighPriority, ssrc, sequence_number + 3,
|
|
clock_.TimeInMilliseconds() + 33, kPacketSize, true);
|
|
|
|
send_bucket_->InsertPacket(
|
|
PacedSender::kHighPriority, ssrc, sequence_number + 2,
|
|
clock_.TimeInMilliseconds() + 33, kPacketSize, true);
|
|
|
|
send_bucket_->InsertPacket(PacedSender::kHighPriority, ssrc, sequence_number,
|
|
clock_.TimeInMilliseconds(), kPacketSize, true);
|
|
|
|
send_bucket_->InsertPacket(PacedSender::kHighPriority, ssrc,
|
|
sequence_number + 1, clock_.TimeInMilliseconds(),
|
|
kPacketSize, true);
|
|
|
|
// Packets from earlier frames should be sent first.
|
|
{
|
|
::testing::InSequence sequence;
|
|
EXPECT_CALL(callback_,
|
|
TimeToSendPacket(ssrc, sequence_number,
|
|
clock_.TimeInMilliseconds(), true, _))
|
|
.WillOnce(Return(true));
|
|
EXPECT_CALL(callback_,
|
|
TimeToSendPacket(ssrc, sequence_number + 1,
|
|
clock_.TimeInMilliseconds(), true, _))
|
|
.WillOnce(Return(true));
|
|
EXPECT_CALL(callback_,
|
|
TimeToSendPacket(ssrc, sequence_number + 3,
|
|
clock_.TimeInMilliseconds() + 33, true, _))
|
|
.WillOnce(Return(true));
|
|
EXPECT_CALL(callback_,
|
|
TimeToSendPacket(ssrc, sequence_number + 2,
|
|
clock_.TimeInMilliseconds() + 33, true, _))
|
|
.WillOnce(Return(true));
|
|
|
|
while (send_bucket_->QueueSizePackets() > 0) {
|
|
int time_until_process = send_bucket_->TimeUntilNextProcess();
|
|
if (time_until_process <= 0) {
|
|
send_bucket_->Process();
|
|
} else {
|
|
clock_.AdvanceTimeMilliseconds(time_until_process);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, PaddingOveruse) {
|
|
uint32_t ssrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
const size_t kPacketSize = 1200;
|
|
|
|
send_bucket_->Process();
|
|
send_bucket_->SetEstimatedBitrate(60000);
|
|
send_bucket_->SetSendBitrateLimits(60000, 0);
|
|
|
|
SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number++,
|
|
clock_.TimeInMilliseconds(), kPacketSize, false);
|
|
send_bucket_->Process();
|
|
|
|
// Add 30kbit padding. When increasing budget, media budget will increase from
|
|
// negative (overuse) while padding budget will increase from 0.
|
|
clock_.AdvanceTimeMilliseconds(5);
|
|
send_bucket_->SetSendBitrateLimits(60000, 30000);
|
|
|
|
SendAndExpectPacket(PacedSender::kNormalPriority, ssrc, sequence_number++,
|
|
clock_.TimeInMilliseconds(), kPacketSize, false);
|
|
EXPECT_LT(5u, send_bucket_->ExpectedQueueTimeMs());
|
|
// Don't send padding if queue is non-empty, even if padding budget > 0.
|
|
EXPECT_CALL(callback_, TimeToSendPadding(_, _)).Times(0);
|
|
send_bucket_->Process();
|
|
}
|
|
|
|
// TODO(philipel): Move to PacketQueue2 unittests.
|
|
#if 0
|
|
TEST_F(PacedSenderTest, AverageQueueTime) {
|
|
uint32_t ssrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
const size_t kPacketSize = 1200;
|
|
const int kBitrateBps = 10 * kPacketSize * 8; // 10 packets per second.
|
|
|
|
send_bucket_->SetEstimatedBitrate(kBitrateBps);
|
|
|
|
EXPECT_EQ(0, send_bucket_->AverageQueueTimeMs());
|
|
|
|
int64_t first_capture_time = clock_.TimeInMilliseconds();
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number, first_capture_time, kPacketSize,
|
|
false);
|
|
clock_.AdvanceTimeMilliseconds(10);
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number + 1, clock_.TimeInMilliseconds(),
|
|
kPacketSize, false);
|
|
clock_.AdvanceTimeMilliseconds(10);
|
|
|
|
EXPECT_EQ((20 + 10) / 2, send_bucket_->AverageQueueTimeMs());
|
|
|
|
// Only first packet (queued for 20ms) should be removed, leave the second
|
|
// packet (queued for 10ms) alone in the queue.
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc, sequence_number,
|
|
first_capture_time, false, _))
|
|
.Times(1)
|
|
.WillRepeatedly(Return(true));
|
|
send_bucket_->Process();
|
|
|
|
EXPECT_EQ(10, send_bucket_->AverageQueueTimeMs());
|
|
|
|
clock_.AdvanceTimeMilliseconds(10);
|
|
EXPECT_CALL(callback_, TimeToSendPacket(ssrc, sequence_number + 1,
|
|
first_capture_time + 10, false, _))
|
|
.Times(1)
|
|
.WillRepeatedly(Return(true));
|
|
for (int i = 0; i < 3; ++i) {
|
|
clock_.AdvanceTimeMilliseconds(30); // Max delta.
|
|
send_bucket_->Process();
|
|
}
|
|
|
|
EXPECT_EQ(0, send_bucket_->AverageQueueTimeMs());
|
|
}
|
|
#endif
|
|
|
|
TEST_P(PacedSenderTest, ProbeClusterId) {
|
|
uint32_t ssrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
const size_t kPacketSize = 1200;
|
|
|
|
send_bucket_->SetSendBitrateLimits(kTargetBitrateBps, kTargetBitrateBps);
|
|
send_bucket_->SetProbingEnabled(true);
|
|
for (int i = 0; i < 10; ++i) {
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number + i, clock_.TimeInMilliseconds(),
|
|
kPacketSize, false);
|
|
}
|
|
|
|
// First probing cluster.
|
|
EXPECT_CALL(callback_,
|
|
TimeToSendPacket(_, _, _, _,
|
|
Field(&PacedPacketInfo::probe_cluster_id, 0)))
|
|
.Times(5)
|
|
.WillRepeatedly(Return(true));
|
|
for (int i = 0; i < 5; ++i) {
|
|
clock_.AdvanceTimeMilliseconds(20);
|
|
send_bucket_->Process();
|
|
}
|
|
|
|
// Second probing cluster.
|
|
EXPECT_CALL(callback_,
|
|
TimeToSendPacket(_, _, _, _,
|
|
Field(&PacedPacketInfo::probe_cluster_id, 1)))
|
|
.Times(5)
|
|
.WillRepeatedly(Return(true));
|
|
for (int i = 0; i < 5; ++i) {
|
|
clock_.AdvanceTimeMilliseconds(20);
|
|
send_bucket_->Process();
|
|
}
|
|
|
|
// Needed for the Field comparer below.
|
|
const int kNotAProbe = PacedPacketInfo::kNotAProbe;
|
|
// No more probing packets.
|
|
EXPECT_CALL(callback_,
|
|
TimeToSendPadding(
|
|
_, Field(&PacedPacketInfo::probe_cluster_id, kNotAProbe)))
|
|
.Times(1)
|
|
.WillRepeatedly(Return(500));
|
|
send_bucket_->Process();
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, AvoidBusyLoopOnSendFailure) {
|
|
uint32_t ssrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
const size_t kPacketSize = kFirstClusterBps / (8000 / 10);
|
|
|
|
send_bucket_->SetSendBitrateLimits(kTargetBitrateBps, kTargetBitrateBps);
|
|
send_bucket_->SetProbingEnabled(true);
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, ssrc,
|
|
sequence_number, clock_.TimeInMilliseconds(),
|
|
kPacketSize, false);
|
|
|
|
EXPECT_CALL(callback_, TimeToSendPacket(_, _, _, _, _))
|
|
.WillOnce(Return(true));
|
|
send_bucket_->Process();
|
|
EXPECT_EQ(10, send_bucket_->TimeUntilNextProcess());
|
|
clock_.AdvanceTimeMilliseconds(9);
|
|
|
|
EXPECT_CALL(callback_, TimeToSendPadding(_, _))
|
|
.Times(2)
|
|
.WillRepeatedly(Return(0));
|
|
send_bucket_->Process();
|
|
EXPECT_EQ(1, send_bucket_->TimeUntilNextProcess());
|
|
clock_.AdvanceTimeMilliseconds(1);
|
|
send_bucket_->Process();
|
|
EXPECT_EQ(5, send_bucket_->TimeUntilNextProcess());
|
|
}
|
|
|
|
// TODO(philipel): Move to PacketQueue2 unittests.
|
|
#if 0
|
|
TEST_F(PacedSenderTest, QueueTimeWithPause) {
|
|
const size_t kPacketSize = 1200;
|
|
const uint32_t kSsrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, kSsrc,
|
|
sequence_number++, clock_.TimeInMilliseconds(),
|
|
kPacketSize, false);
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, kSsrc,
|
|
sequence_number++, clock_.TimeInMilliseconds(),
|
|
kPacketSize, false);
|
|
|
|
clock_.AdvanceTimeMilliseconds(100);
|
|
EXPECT_EQ(100, send_bucket_->AverageQueueTimeMs());
|
|
|
|
send_bucket_->Pause();
|
|
EXPECT_EQ(100, send_bucket_->AverageQueueTimeMs());
|
|
|
|
// In paused state, queue time should not increase.
|
|
clock_.AdvanceTimeMilliseconds(100);
|
|
EXPECT_EQ(100, send_bucket_->AverageQueueTimeMs());
|
|
|
|
send_bucket_->Resume();
|
|
EXPECT_EQ(100, send_bucket_->AverageQueueTimeMs());
|
|
|
|
clock_.AdvanceTimeMilliseconds(100);
|
|
EXPECT_EQ(200, send_bucket_->AverageQueueTimeMs());
|
|
}
|
|
|
|
TEST_P(PacedSenderTest, QueueTimePausedDuringPush) {
|
|
const size_t kPacketSize = 1200;
|
|
const uint32_t kSsrc = 12346;
|
|
uint16_t sequence_number = 1234;
|
|
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, kSsrc,
|
|
sequence_number++, clock_.TimeInMilliseconds(),
|
|
kPacketSize, false);
|
|
clock_.AdvanceTimeMilliseconds(100);
|
|
send_bucket_->Pause();
|
|
clock_.AdvanceTimeMilliseconds(100);
|
|
EXPECT_EQ(100, send_bucket_->AverageQueueTimeMs());
|
|
|
|
// Add a new packet during paused phase.
|
|
send_bucket_->InsertPacket(PacedSender::kNormalPriority, kSsrc,
|
|
sequence_number++, clock_.TimeInMilliseconds(),
|
|
kPacketSize, false);
|
|
// From a queue time perspective, packet inserted during pause will have zero
|
|
// queue time. Average queue time will then be (0 + 100) / 2 = 50.
|
|
EXPECT_EQ(50, send_bucket_->AverageQueueTimeMs());
|
|
|
|
clock_.AdvanceTimeMilliseconds(100);
|
|
EXPECT_EQ(50, send_bucket_->AverageQueueTimeMs());
|
|
|
|
send_bucket_->Resume();
|
|
EXPECT_EQ(50, send_bucket_->AverageQueueTimeMs());
|
|
|
|
clock_.AdvanceTimeMilliseconds(100);
|
|
EXPECT_EQ(150, send_bucket_->AverageQueueTimeMs());
|
|
}
|
|
#endif
|
|
|
|
// TODO(sprang): Extract PacketQueue from PacedSender so that we can test
|
|
// removing elements while paused. (This is possible, but only because of semi-
|
|
// racy condition so can't easily be tested).
|
|
|
|
} // namespace test
|
|
} // namespace webrtc
|