650 lines
24 KiB
C++
650 lines
24 KiB
C++
/*
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* Copyright (c) 2016 The WebRTC project authors. All Rights Reserved.
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*
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* Use of this source code is governed by a BSD-style license
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* that can be found in the LICENSE file in the root of the source
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* tree. An additional intellectual property rights grant can be found
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* in the file PATENTS. All contributing project authors may
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* be found in the AUTHORS file in the root of the source tree.
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*/
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#include "modules/rtp_rtcp/include/flexfec_receiver.h"
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#include <algorithm>
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#include <memory>
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#include "modules/rtp_rtcp/mocks/mock_recovered_packet_receiver.h"
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#include "modules/rtp_rtcp/source/fec_test_helper.h"
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#include "modules/rtp_rtcp/source/forward_error_correction.h"
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#include "modules/rtp_rtcp/source/rtp_packet_received.h"
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#include "test/gmock.h"
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#include "test/gtest.h"
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namespace webrtc {
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namespace {
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using ::testing::_;
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using ::testing::Args;
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using ::testing::ElementsAreArray;
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using test::fec::FlexfecPacketGenerator;
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using Packet = ForwardErrorCorrection::Packet;
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using PacketList = ForwardErrorCorrection::PacketList;
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constexpr size_t kPayloadLength = 500;
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constexpr uint32_t kFlexfecSsrc = 42984;
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constexpr uint32_t kMediaSsrc = 8353;
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RtpPacketReceived ParsePacket(const Packet& packet) {
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RtpPacketReceived parsed_packet;
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EXPECT_TRUE(parsed_packet.Parse(packet.data));
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return parsed_packet;
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}
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} // namespace
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class FlexfecReceiverForTest : public FlexfecReceiver {
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public:
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FlexfecReceiverForTest(uint32_t ssrc,
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uint32_t protected_media_ssrc,
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RecoveredPacketReceiver* recovered_packet_receiver)
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: FlexfecReceiver(Clock::GetRealTimeClock(),
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ssrc,
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protected_media_ssrc,
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recovered_packet_receiver) {}
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// Expose methods for tests.
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using FlexfecReceiver::AddReceivedPacket;
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using FlexfecReceiver::ProcessReceivedPacket;
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};
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class FlexfecReceiverTest : public ::testing::Test {
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protected:
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FlexfecReceiverTest()
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: receiver_(kFlexfecSsrc, kMediaSsrc, &recovered_packet_receiver_),
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erasure_code_(
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ForwardErrorCorrection::CreateFlexfec(kFlexfecSsrc, kMediaSsrc)),
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packet_generator_(kMediaSsrc, kFlexfecSsrc) {}
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// Generates |num_media_packets| corresponding to a single frame.
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void PacketizeFrame(size_t num_media_packets,
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size_t frame_offset,
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PacketList* media_packets);
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// Generates |num_fec_packets| FEC packets, given |media_packets|.
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std::list<Packet*> EncodeFec(const PacketList& media_packets,
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size_t num_fec_packets);
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FlexfecReceiverForTest receiver_;
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std::unique_ptr<ForwardErrorCorrection> erasure_code_;
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FlexfecPacketGenerator packet_generator_;
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::testing::StrictMock<MockRecoveredPacketReceiver> recovered_packet_receiver_;
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};
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void FlexfecReceiverTest::PacketizeFrame(size_t num_media_packets,
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size_t frame_offset,
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PacketList* media_packets) {
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packet_generator_.NewFrame(num_media_packets);
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for (size_t i = 0; i < num_media_packets; ++i) {
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std::unique_ptr<Packet> next_packet(
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packet_generator_.NextPacket(frame_offset + i, kPayloadLength));
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media_packets->push_back(std::move(next_packet));
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}
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}
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std::list<Packet*> FlexfecReceiverTest::EncodeFec(
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const PacketList& media_packets,
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size_t num_fec_packets) {
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const uint8_t protection_factor =
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num_fec_packets * 255 / media_packets.size();
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constexpr int kNumImportantPackets = 0;
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constexpr bool kUseUnequalProtection = false;
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constexpr FecMaskType kFecMaskType = kFecMaskRandom;
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std::list<Packet*> fec_packets;
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EXPECT_EQ(0, erasure_code_->EncodeFec(
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media_packets, protection_factor, kNumImportantPackets,
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kUseUnequalProtection, kFecMaskType, &fec_packets));
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EXPECT_EQ(num_fec_packets, fec_packets.size());
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return fec_packets;
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}
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TEST_F(FlexfecReceiverTest, ReceivesMediaPacket) {
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packet_generator_.NewFrame(1);
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std::unique_ptr<Packet> media_packet(
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packet_generator_.NextPacket(0, kPayloadLength));
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std::unique_ptr<ForwardErrorCorrection::ReceivedPacket> received_packet =
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receiver_.AddReceivedPacket(ParsePacket(*media_packet));
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ASSERT_TRUE(received_packet);
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receiver_.ProcessReceivedPacket(*received_packet);
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}
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TEST_F(FlexfecReceiverTest, ReceivesMediaAndFecPackets) {
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const size_t kNumMediaPackets = 1;
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const size_t kNumFecPackets = 1;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPackets, 0, &media_packets);
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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const auto& media_packet = media_packets.front();
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auto fec_packet = packet_generator_.BuildFlexfecPacket(*fec_packets.front());
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std::unique_ptr<ForwardErrorCorrection::ReceivedPacket> received_packet =
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receiver_.AddReceivedPacket(ParsePacket(*media_packet));
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ASSERT_TRUE(received_packet);
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receiver_.ProcessReceivedPacket(*received_packet);
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received_packet = receiver_.AddReceivedPacket(ParsePacket(*fec_packet));
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ASSERT_TRUE(received_packet);
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receiver_.ProcessReceivedPacket(*received_packet);
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}
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TEST_F(FlexfecReceiverTest, FailsOnTruncatedFecPacket) {
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const size_t kNumMediaPackets = 1;
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const size_t kNumFecPackets = 1;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPackets, 0, &media_packets);
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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const auto& media_packet = media_packets.front();
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// Simulate truncated FlexFEC payload.
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fec_packets.front()->data.SetSize(1);
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auto fec_packet = packet_generator_.BuildFlexfecPacket(*fec_packets.front());
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std::unique_ptr<ForwardErrorCorrection::ReceivedPacket> received_packet =
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receiver_.AddReceivedPacket(ParsePacket(*media_packet));
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ASSERT_TRUE(received_packet);
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receiver_.ProcessReceivedPacket(*received_packet);
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EXPECT_FALSE(receiver_.AddReceivedPacket(ParsePacket(*fec_packet)));
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}
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TEST_F(FlexfecReceiverTest, FailsOnUnknownMediaSsrc) {
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const size_t kNumMediaPackets = 1;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPackets, 0, &media_packets);
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auto& media_packet = media_packets.front();
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// Corrupt the SSRC.
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media_packet->data[8] = 0;
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media_packet->data[9] = 1;
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media_packet->data[10] = 2;
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media_packet->data[11] = 3;
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EXPECT_FALSE(receiver_.AddReceivedPacket(ParsePacket(*media_packet)));
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}
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TEST_F(FlexfecReceiverTest, FailsOnUnknownFecSsrc) {
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const size_t kNumMediaPackets = 1;
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const size_t kNumFecPackets = 1;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPackets, 0, &media_packets);
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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const auto& media_packet = media_packets.front();
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auto fec_packet = packet_generator_.BuildFlexfecPacket(*fec_packets.front());
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// Corrupt the SSRC.
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fec_packet->data[8] = 4;
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fec_packet->data[9] = 5;
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fec_packet->data[10] = 6;
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fec_packet->data[11] = 7;
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std::unique_ptr<ForwardErrorCorrection::ReceivedPacket> received_packet =
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receiver_.AddReceivedPacket(ParsePacket(*media_packet));
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ASSERT_TRUE(received_packet);
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receiver_.ProcessReceivedPacket(*received_packet);
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EXPECT_FALSE(receiver_.AddReceivedPacket(ParsePacket(*fec_packet)));
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}
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TEST_F(FlexfecReceiverTest, ReceivesMultiplePackets) {
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const size_t kNumMediaPackets = 2;
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const size_t kNumFecPackets = 1;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPackets, 0, &media_packets);
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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// Receive all media packets.
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for (const auto& media_packet : media_packets) {
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std::unique_ptr<ForwardErrorCorrection::ReceivedPacket> received_packet =
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receiver_.AddReceivedPacket(ParsePacket(*media_packet));
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ASSERT_TRUE(received_packet);
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receiver_.ProcessReceivedPacket(*received_packet);
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}
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// Receive FEC packet.
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auto* fec_packet = fec_packets.front();
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std::unique_ptr<Packet> packet_with_rtp_header =
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packet_generator_.BuildFlexfecPacket(*fec_packet);
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std::unique_ptr<ForwardErrorCorrection::ReceivedPacket> received_packet =
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receiver_.AddReceivedPacket(ParsePacket(*packet_with_rtp_header));
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ASSERT_TRUE(received_packet);
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receiver_.ProcessReceivedPacket(*received_packet);
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}
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TEST_F(FlexfecReceiverTest, RecoversFromSingleMediaLoss) {
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const size_t kNumMediaPackets = 2;
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const size_t kNumFecPackets = 1;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPackets, 0, &media_packets);
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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// Receive first media packet but drop second.
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auto media_it = media_packets.begin();
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receiver_.OnRtpPacket(ParsePacket(**media_it));
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// Receive FEC packet and ensure recovery of lost media packet.
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auto fec_it = fec_packets.begin();
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std::unique_ptr<Packet> packet_with_rtp_header =
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packet_generator_.BuildFlexfecPacket(**fec_it);
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media_it++;
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EXPECT_CALL(recovered_packet_receiver_,
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OnRecoveredPacket(_, (*media_it)->data.size()))
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.With(Args<0, 1>(ElementsAreArray((*media_it)->data.cdata(),
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(*media_it)->data.size())));
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receiver_.OnRtpPacket(ParsePacket(*packet_with_rtp_header));
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}
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TEST_F(FlexfecReceiverTest, RecoversFromDoubleMediaLoss) {
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const size_t kNumMediaPackets = 2;
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const size_t kNumFecPackets = 2;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPackets, 0, &media_packets);
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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// Drop both media packets.
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// Receive first FEC packet and recover first lost media packet.
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auto fec_it = fec_packets.begin();
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std::unique_ptr<Packet> packet_with_rtp_header =
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packet_generator_.BuildFlexfecPacket(**fec_it);
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auto media_it = media_packets.begin();
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EXPECT_CALL(recovered_packet_receiver_,
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OnRecoveredPacket(_, (*media_it)->data.size()))
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.With(Args<0, 1>(ElementsAreArray((*media_it)->data.cdata(),
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(*media_it)->data.size())));
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receiver_.OnRtpPacket(ParsePacket(*packet_with_rtp_header));
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// Receive second FEC packet and recover second lost media packet.
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fec_it++;
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packet_with_rtp_header = packet_generator_.BuildFlexfecPacket(**fec_it);
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media_it++;
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EXPECT_CALL(recovered_packet_receiver_,
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OnRecoveredPacket(_, (*media_it)->data.size()))
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.With(Args<0, 1>(ElementsAreArray((*media_it)->data.cdata(),
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(*media_it)->data.size())));
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receiver_.OnRtpPacket(ParsePacket(*packet_with_rtp_header));
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}
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TEST_F(FlexfecReceiverTest, DoesNotRecoverFromMediaAndFecLoss) {
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const size_t kNumMediaPackets = 2;
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const size_t kNumFecPackets = 1;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPackets, 0, &media_packets);
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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// Receive first media packet.
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auto media_it = media_packets.begin();
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receiver_.OnRtpPacket(ParsePacket(**media_it));
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// Drop second media packet and FEC packet. Do not expect call back.
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}
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TEST_F(FlexfecReceiverTest, DoesNotCallbackTwice) {
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const size_t kNumMediaPackets = 2;
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const size_t kNumFecPackets = 1;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPackets, 0, &media_packets);
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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// Receive first media packet but drop second.
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auto media_it = media_packets.begin();
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receiver_.OnRtpPacket(ParsePacket(**media_it));
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// Receive FEC packet and ensure recovery of lost media packet.
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auto fec_it = fec_packets.begin();
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std::unique_ptr<Packet> packet_with_rtp_header =
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packet_generator_.BuildFlexfecPacket(**fec_it);
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media_it++;
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EXPECT_CALL(recovered_packet_receiver_,
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OnRecoveredPacket(_, (*media_it)->data.size()))
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.With(Args<0, 1>(ElementsAreArray((*media_it)->data.cdata(),
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(*media_it)->data.size())));
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receiver_.OnRtpPacket(ParsePacket(*packet_with_rtp_header));
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// Receive the FEC packet again, but do not call back.
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receiver_.OnRtpPacket(ParsePacket(*packet_with_rtp_header));
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// Receive the first media packet again, but do not call back.
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media_it = media_packets.begin();
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receiver_.OnRtpPacket(ParsePacket(**media_it));
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// Receive the second media packet again (the one recovered above),
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// but do not call back again.
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media_it++;
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receiver_.OnRtpPacket(ParsePacket(**media_it));
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}
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// Here we are implicitly assuming packet masks that are suitable for
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// this type of 50% correlated loss. If we are changing our precomputed
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// packet masks, this test might need to be updated.
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TEST_F(FlexfecReceiverTest, RecoversFrom50PercentLoss) {
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const size_t kNumFecPackets = 5;
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const size_t kNumFrames = 2 * kNumFecPackets;
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const size_t kNumMediaPacketsPerFrame = 1;
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PacketList media_packets;
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for (size_t i = 0; i < kNumFrames; ++i) {
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PacketizeFrame(kNumMediaPacketsPerFrame, i, &media_packets);
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}
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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// Drop every second media packet.
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auto media_it = media_packets.begin();
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while (media_it != media_packets.end()) {
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receiver_.OnRtpPacket(ParsePacket(**media_it));
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++media_it;
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if (media_it == media_packets.end()) {
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break;
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}
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++media_it;
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}
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// Receive all FEC packets.
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media_it = media_packets.begin();
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for (const auto* fec_packet : fec_packets) {
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std::unique_ptr<Packet> fec_packet_with_rtp_header =
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packet_generator_.BuildFlexfecPacket(*fec_packet);
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++media_it;
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if (media_it == media_packets.end()) {
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break;
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}
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EXPECT_CALL(recovered_packet_receiver_,
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OnRecoveredPacket(_, (*media_it)->data.size()))
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.With(Args<0, 1>(ElementsAreArray((*media_it)->data.cdata(),
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(*media_it)->data.size())));
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receiver_.OnRtpPacket(ParsePacket(*fec_packet_with_rtp_header));
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++media_it;
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}
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}
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TEST_F(FlexfecReceiverTest, DelayedFecPacketDoesHelp) {
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// These values need to be updated if the underlying erasure code
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// implementation changes.
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const size_t kNumFrames = 48;
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const size_t kNumMediaPacketsPerFrame = 1;
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const size_t kNumFecPackets = 1;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPacketsPerFrame, 0, &media_packets);
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PacketizeFrame(kNumMediaPacketsPerFrame, 1, &media_packets);
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// Protect two first frames.
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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for (size_t i = 2; i < kNumFrames; ++i) {
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PacketizeFrame(kNumMediaPacketsPerFrame, i, &media_packets);
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}
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// Drop first media packet and delay FEC packet.
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auto media_it = media_packets.begin();
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++media_it;
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// Receive all other media packets.
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while (media_it != media_packets.end()) {
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receiver_.OnRtpPacket(ParsePacket(**media_it));
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++media_it;
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}
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// Receive FEC packet and recover first media packet.
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auto fec_it = fec_packets.begin();
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std::unique_ptr<Packet> packet_with_rtp_header =
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packet_generator_.BuildFlexfecPacket(**fec_it);
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media_it = media_packets.begin();
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EXPECT_CALL(recovered_packet_receiver_,
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OnRecoveredPacket(_, (*media_it)->data.size()))
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.With(Args<0, 1>(ElementsAreArray((*media_it)->data.cdata(),
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(*media_it)->data.size())));
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receiver_.OnRtpPacket(ParsePacket(*packet_with_rtp_header));
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}
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TEST_F(FlexfecReceiverTest, TooDelayedFecPacketDoesNotHelp) {
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// These values need to be updated if the underlying erasure code
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// implementation changes.
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const size_t kNumFrames = 49;
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const size_t kNumMediaPacketsPerFrame = 1;
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const size_t kNumFecPackets = 1;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPacketsPerFrame, 0, &media_packets);
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PacketizeFrame(kNumMediaPacketsPerFrame, 1, &media_packets);
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// Protect two first frames.
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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for (size_t i = 2; i < kNumFrames; ++i) {
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PacketizeFrame(kNumMediaPacketsPerFrame, i, &media_packets);
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}
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// Drop first media packet and delay FEC packet.
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auto media_it = media_packets.begin();
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++media_it;
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// Receive all other media packets.
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while (media_it != media_packets.end()) {
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receiver_.OnRtpPacket(ParsePacket(**media_it));
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++media_it;
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}
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// Receive FEC packet.
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auto fec_it = fec_packets.begin();
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std::unique_ptr<Packet> packet_with_rtp_header =
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packet_generator_.BuildFlexfecPacket(**fec_it);
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receiver_.OnRtpPacket(ParsePacket(*packet_with_rtp_header));
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// Do not expect a call back.
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}
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TEST_F(FlexfecReceiverTest, SurvivesOldRecoveredPacketBeingReinserted) {
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// Simulates the behaviour of the
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// Call->FlexfecReceiveStream->FlexfecReceiver->Call loop in production code.
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class LoopbackRecoveredPacketReceiver : public RecoveredPacketReceiver {
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public:
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LoopbackRecoveredPacketReceiver() : receiver_(nullptr) {}
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void SetReceiver(FlexfecReceiver* receiver) { receiver_ = receiver; }
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// Implements RecoveredPacketReceiver.
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void OnRecoveredPacket(const uint8_t* packet, size_t length) override {
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RtpPacketReceived parsed_packet;
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EXPECT_TRUE(parsed_packet.Parse(packet, length));
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parsed_packet.set_recovered(true);
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RTC_DCHECK(receiver_);
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receiver_->OnRtpPacket(parsed_packet);
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}
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private:
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FlexfecReceiver* receiver_;
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} loopback_recovered_packet_receiver;
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// Feed recovered packets back into |receiver|.
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FlexfecReceiver receiver(Clock::GetRealTimeClock(), kFlexfecSsrc, kMediaSsrc,
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&loopback_recovered_packet_receiver);
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loopback_recovered_packet_receiver.SetReceiver(&receiver);
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// Receive first set of packets.
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PacketList first_media_packets;
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for (int i = 0; i < 46; ++i) {
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PacketizeFrame(1, 0, &first_media_packets);
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}
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for (const auto& media_packet : first_media_packets) {
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receiver.OnRtpPacket(ParsePacket(*media_packet));
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}
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// Protect one media packet. Lose the media packet,
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// but do not receive FEC packet yet.
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PacketList protected_media_packet;
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PacketizeFrame(1, 0, &protected_media_packet);
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const std::list<Packet*> fec_packets = EncodeFec(protected_media_packet, 1);
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EXPECT_EQ(1u, fec_packets.size());
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std::unique_ptr<Packet> fec_packet_with_rtp_header =
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packet_generator_.BuildFlexfecPacket(*fec_packets.front());
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// Lose some packets, thus introducing a sequence number gap.
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PacketList lost_packets;
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for (int i = 0; i < 100; ++i) {
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PacketizeFrame(1, 0, &lost_packets);
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}
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// Receive one more packet.
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PacketList second_media_packets;
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PacketizeFrame(1, 0, &second_media_packets);
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for (const auto& media_packet : second_media_packets) {
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receiver.OnRtpPacket(ParsePacket(*media_packet));
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}
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// Receive delayed FEC packet.
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receiver.OnRtpPacket(ParsePacket(*fec_packet_with_rtp_header));
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// Expect no crash.
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}
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TEST_F(FlexfecReceiverTest, RecoversWithMediaPacketsOutOfOrder) {
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const size_t kNumMediaPackets = 6;
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const size_t kNumFecPackets = 2;
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PacketList media_packets;
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PacketizeFrame(kNumMediaPackets, 0, &media_packets);
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std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
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// Lose two media packets, and receive the others out of order.
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auto media_it = media_packets.begin();
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auto media_packet0 = media_it++;
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auto media_packet1 = media_it++;
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auto media_packet2 = media_it++;
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auto media_packet3 = media_it++;
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auto media_packet4 = media_it++;
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auto media_packet5 = media_it++;
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receiver_.OnRtpPacket(ParsePacket(**media_packet5));
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receiver_.OnRtpPacket(ParsePacket(**media_packet2));
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receiver_.OnRtpPacket(ParsePacket(**media_packet3));
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receiver_.OnRtpPacket(ParsePacket(**media_packet0));
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// Expect to recover lost media packets.
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EXPECT_CALL(recovered_packet_receiver_,
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OnRecoveredPacket(_, (*media_packet1)->data.size()))
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.With(Args<0, 1>(ElementsAreArray((*media_packet1)->data.cdata(),
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(*media_packet1)->data.size())));
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EXPECT_CALL(recovered_packet_receiver_,
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OnRecoveredPacket(_, (*media_packet4)->data.size()))
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.With(Args<0, 1>(ElementsAreArray((*media_packet4)->data.cdata(),
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(*media_packet4)->data.size())));
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// Add FEC packets.
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auto fec_it = fec_packets.begin();
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std::unique_ptr<Packet> packet_with_rtp_header;
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while (fec_it != fec_packets.end()) {
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packet_with_rtp_header = packet_generator_.BuildFlexfecPacket(**fec_it);
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receiver_.OnRtpPacket(ParsePacket(*packet_with_rtp_header));
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++fec_it;
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}
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}
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// Recovered media packets may be fed back into the FlexfecReceiver by the
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// callback. This test ensures the idempotency of such a situation.
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TEST_F(FlexfecReceiverTest, RecoveryCallbackDoesNotLoopInfinitely) {
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class LoopbackRecoveredPacketReceiver : public RecoveredPacketReceiver {
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public:
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const int kMaxRecursionDepth = 10;
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|
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LoopbackRecoveredPacketReceiver()
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: receiver_(nullptr),
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did_receive_call_back_(false),
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|
recursion_depth_(0),
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deep_recursion_(false) {}
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|
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void SetReceiver(FlexfecReceiver* receiver) { receiver_ = receiver; }
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bool DidReceiveCallback() const { return did_receive_call_back_; }
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bool DeepRecursion() const { return deep_recursion_; }
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|
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// Implements RecoveredPacketReceiver.
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void OnRecoveredPacket(const uint8_t* packet, size_t length) override {
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RtpPacketReceived parsed_packet;
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EXPECT_TRUE(parsed_packet.Parse(packet, length));
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did_receive_call_back_ = true;
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|
|
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if (recursion_depth_ > kMaxRecursionDepth) {
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deep_recursion_ = true;
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return;
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|
}
|
|
++recursion_depth_;
|
|
RTC_DCHECK(receiver_);
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receiver_->OnRtpPacket(parsed_packet);
|
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--recursion_depth_;
|
|
}
|
|
|
|
private:
|
|
FlexfecReceiver* receiver_;
|
|
bool did_receive_call_back_;
|
|
int recursion_depth_;
|
|
bool deep_recursion_;
|
|
} loopback_recovered_packet_receiver;
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|
|
|
// Feed recovered packets back into |receiver|.
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|
FlexfecReceiver receiver(Clock::GetRealTimeClock(), kFlexfecSsrc, kMediaSsrc,
|
|
&loopback_recovered_packet_receiver);
|
|
loopback_recovered_packet_receiver.SetReceiver(&receiver);
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|
|
|
const size_t kNumMediaPackets = 2;
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|
const size_t kNumFecPackets = 1;
|
|
|
|
PacketList media_packets;
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|
PacketizeFrame(kNumMediaPackets, 0, &media_packets);
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|
std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
|
|
|
|
// Receive first media packet but drop second.
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|
auto media_it = media_packets.begin();
|
|
receiver.OnRtpPacket(ParsePacket(**media_it));
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|
|
|
// Receive FEC packet and verify that a packet was recovered.
|
|
auto fec_it = fec_packets.begin();
|
|
std::unique_ptr<Packet> packet_with_rtp_header =
|
|
packet_generator_.BuildFlexfecPacket(**fec_it);
|
|
receiver.OnRtpPacket(ParsePacket(*packet_with_rtp_header));
|
|
EXPECT_TRUE(loopback_recovered_packet_receiver.DidReceiveCallback());
|
|
EXPECT_FALSE(loopback_recovered_packet_receiver.DeepRecursion());
|
|
}
|
|
|
|
TEST_F(FlexfecReceiverTest, CalculatesNumberOfPackets) {
|
|
const size_t kNumMediaPackets = 2;
|
|
const size_t kNumFecPackets = 1;
|
|
|
|
PacketList media_packets;
|
|
PacketizeFrame(kNumMediaPackets, 0, &media_packets);
|
|
std::list<Packet*> fec_packets = EncodeFec(media_packets, kNumFecPackets);
|
|
|
|
// Receive first media packet but drop second.
|
|
auto media_it = media_packets.begin();
|
|
receiver_.OnRtpPacket(ParsePacket(**media_it));
|
|
|
|
// Receive FEC packet and ensure recovery of lost media packet.
|
|
auto fec_it = fec_packets.begin();
|
|
std::unique_ptr<Packet> packet_with_rtp_header =
|
|
packet_generator_.BuildFlexfecPacket(**fec_it);
|
|
media_it++;
|
|
EXPECT_CALL(recovered_packet_receiver_,
|
|
OnRecoveredPacket(_, (*media_it)->data.size()))
|
|
.With(Args<0, 1>(ElementsAreArray((*media_it)->data.cdata(),
|
|
(*media_it)->data.size())));
|
|
receiver_.OnRtpPacket(ParsePacket(*packet_with_rtp_header));
|
|
|
|
// Check stats calculations.
|
|
FecPacketCounter packet_counter = receiver_.GetPacketCounter();
|
|
EXPECT_EQ(2U, packet_counter.num_packets);
|
|
EXPECT_EQ(1U, packet_counter.num_fec_packets);
|
|
EXPECT_EQ(1U, packet_counter.num_recovered_packets);
|
|
}
|
|
|
|
} // namespace webrtc
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