
Instead of going through our wrappers in ptr_util.h. This CL was generated by the following script: git grep -l ptr_util | xargs perl -pi -e 's,#include "rtc_base/ptr_util.h",#include "absl/memory/memory.h",' git grep -l MakeUnique | xargs perl -pi -e 's,\b(rtc::)?MakeUnique\b,absl::make_unique,g' git grep -l WrapUnique | xargs perl -pi -e 's,\b(rtc::)?WrapUnique\b,absl::WrapUnique,g' git checkout -- rtc_base/ptr_util{.h,_unittest.cc} git cl format Followed by manually adding dependencies on //third_party/abseil-cpp/absl/memory until `gn check` stopped complaining. Bug: webrtc:9473 Change-Id: I89ccd363f070479b8c431eb2c3d404a46eaacc1c Reviewed-on: https://webrtc-review.googlesource.com/86600 Commit-Queue: Karl Wiberg <kwiberg@webrtc.org> Reviewed-by: Danil Chapovalov <danilchap@webrtc.org> Cr-Commit-Position: refs/heads/master@{#23850}
500 lines
17 KiB
C++
500 lines
17 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 <assert.h>
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#include <math.h>
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#include <string.h>
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#include <algorithm>
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#include <cmath>
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#include <utility>
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#include "absl/memory/memory.h"
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#include "call/call.h"
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#include "call/fake_network_pipe.h"
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#include "rtc_base/logging.h"
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#include "system_wrappers/include/clock.h"
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namespace webrtc {
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namespace {
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constexpr int64_t kDefaultProcessIntervalMs = 5;
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constexpr int64_t kLogIntervalMs = 5000;
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} // namespace
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NetworkPacket::NetworkPacket(rtc::CopyOnWriteBuffer packet,
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int64_t send_time,
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int64_t arrival_time,
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absl::optional<PacketOptions> packet_options,
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bool is_rtcp,
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MediaType media_type,
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absl::optional<PacketTime> packet_time)
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: packet_(std::move(packet)),
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send_time_(send_time),
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arrival_time_(arrival_time),
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packet_options_(packet_options),
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is_rtcp_(is_rtcp),
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media_type_(media_type),
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packet_time_(packet_time) {}
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NetworkPacket::NetworkPacket(NetworkPacket&& o)
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: packet_(std::move(o.packet_)),
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send_time_(o.send_time_),
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arrival_time_(o.arrival_time_),
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packet_options_(o.packet_options_),
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is_rtcp_(o.is_rtcp_),
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media_type_(o.media_type_),
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packet_time_(o.packet_time_) {}
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NetworkPacket& NetworkPacket::operator=(NetworkPacket&& o) {
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packet_ = std::move(o.packet_);
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send_time_ = o.send_time_;
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arrival_time_ = o.arrival_time_;
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packet_options_ = o.packet_options_;
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is_rtcp_ = o.is_rtcp_;
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media_type_ = o.media_type_;
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packet_time_ = o.packet_time_;
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return *this;
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}
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FakeNetworkPipe::FakeNetworkPipe(Clock* clock,
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const FakeNetworkPipe::Config& config)
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: FakeNetworkPipe(clock, config, nullptr, 1) {}
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FakeNetworkPipe::FakeNetworkPipe(Clock* clock,
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const FakeNetworkPipe::Config& config,
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PacketReceiver* receiver)
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: FakeNetworkPipe(clock, config, receiver, 1) {}
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FakeNetworkPipe::FakeNetworkPipe(Clock* clock,
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const FakeNetworkPipe::Config& config,
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PacketReceiver* receiver,
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uint64_t seed)
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: clock_(clock),
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network_simulation_(absl::make_unique<SimulatedNetwork>(config, seed)),
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receiver_(receiver),
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transport_(nullptr),
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clock_offset_ms_(0),
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dropped_packets_(0),
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sent_packets_(0),
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total_packet_delay_us_(0),
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next_process_time_us_(clock_->TimeInMicroseconds()),
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last_log_time_us_(clock_->TimeInMicroseconds()) {}
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FakeNetworkPipe::FakeNetworkPipe(Clock* clock,
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const FakeNetworkPipe::Config& config,
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Transport* transport)
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: clock_(clock),
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network_simulation_(absl::make_unique<SimulatedNetwork>(config, 1)),
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receiver_(nullptr),
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transport_(transport),
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clock_offset_ms_(0),
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dropped_packets_(0),
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sent_packets_(0),
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total_packet_delay_us_(0),
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next_process_time_us_(clock_->TimeInMicroseconds()),
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last_log_time_us_(clock_->TimeInMicroseconds()) {}
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FakeNetworkPipe::~FakeNetworkPipe() = default;
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void FakeNetworkPipe::SetReceiver(PacketReceiver* receiver) {
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rtc::CritScope crit(&config_lock_);
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receiver_ = receiver;
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}
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bool FakeNetworkPipe::SendRtp(const uint8_t* packet,
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size_t length,
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const PacketOptions& options) {
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RTC_DCHECK(HasTransport());
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EnqueuePacket(rtc::CopyOnWriteBuffer(packet, length), options, false,
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MediaType::ANY, absl::nullopt);
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return true;
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}
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bool FakeNetworkPipe::SendRtcp(const uint8_t* packet, size_t length) {
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RTC_DCHECK(HasTransport());
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EnqueuePacket(rtc::CopyOnWriteBuffer(packet, length), absl::nullopt, true,
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MediaType::ANY, absl::nullopt);
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return true;
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}
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PacketReceiver::DeliveryStatus FakeNetworkPipe::DeliverPacket(
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MediaType media_type,
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rtc::CopyOnWriteBuffer packet,
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const PacketTime& packet_time) {
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return EnqueuePacket(std::move(packet), absl::nullopt, false, media_type,
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packet_time)
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? PacketReceiver::DELIVERY_OK
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: PacketReceiver::DELIVERY_PACKET_ERROR;
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}
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void FakeNetworkPipe::SetClockOffset(int64_t offset_ms) {
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rtc::CritScope crit(&config_lock_);
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clock_offset_ms_ = offset_ms;
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}
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SimulatedNetwork::SimulatedNetwork(SimulatedNetwork::Config config,
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uint64_t random_seed)
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: random_(random_seed), bursting_(false) {
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SetConfig(config);
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}
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void FakeNetworkPipe::SetConfig(const FakeNetworkPipe::Config& config) {
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network_simulation_->SetConfig(config);
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}
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void SimulatedNetwork::SetConfig(const SimulatedNetwork::Config& config) {
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rtc::CritScope crit(&config_lock_);
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config_ = config; // Shallow copy of the struct.
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double prob_loss = config.loss_percent / 100.0;
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if (config_.avg_burst_loss_length == -1) {
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// Uniform loss
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prob_loss_bursting_ = prob_loss;
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prob_start_bursting_ = prob_loss;
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} else {
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// Lose packets according to a gilbert-elliot model.
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int avg_burst_loss_length = config.avg_burst_loss_length;
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int min_avg_burst_loss_length = std::ceil(prob_loss / (1 - prob_loss));
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RTC_CHECK_GT(avg_burst_loss_length, min_avg_burst_loss_length)
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<< "For a total packet loss of " << config.loss_percent << "%% then"
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<< " avg_burst_loss_length must be " << min_avg_burst_loss_length + 1
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<< " or higher.";
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prob_loss_bursting_ = (1.0 - 1.0 / avg_burst_loss_length);
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prob_start_bursting_ = prob_loss / (1 - prob_loss) / avg_burst_loss_length;
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}
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}
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bool SimulatedNetwork::EnqueuePacket(PacketInFlightInfo packet) {
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Config config;
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{
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rtc::CritScope crit(&config_lock_);
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config = config_;
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}
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rtc::CritScope crit(&process_lock_);
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if (config.queue_length_packets > 0 &&
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capacity_link_.size() >= config.queue_length_packets) {
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// Too many packet on the link, drop this one.
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return false;
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}
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// Delay introduced by the link capacity.
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int64_t capacity_delay_ms = 0;
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if (config.link_capacity_kbps > 0) {
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// Using bytes per millisecond to avoid losing precision.
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const int64_t bytes_per_millisecond = config.link_capacity_kbps / 8;
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// To round to the closest millisecond we add half a milliseconds worth of
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// bytes to the delay calculation.
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capacity_delay_ms = (packet.size + capacity_delay_error_bytes_ +
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bytes_per_millisecond / 2) /
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bytes_per_millisecond;
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capacity_delay_error_bytes_ +=
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packet.size - capacity_delay_ms * bytes_per_millisecond;
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}
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int64_t network_start_time_us = packet.send_time_us;
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// Check if there already are packets on the link and change network start
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// time forward if there is.
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if (!capacity_link_.empty() &&
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network_start_time_us < capacity_link_.back().arrival_time_us)
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network_start_time_us = capacity_link_.back().arrival_time_us;
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int64_t arrival_time_us = network_start_time_us + capacity_delay_ms * 1000;
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capacity_link_.push({packet, arrival_time_us});
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return true;
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}
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absl::optional<int64_t> SimulatedNetwork::NextDeliveryTimeUs() const {
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if (!delay_link_.empty())
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return delay_link_.begin()->arrival_time_us;
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return absl::nullopt;
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}
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FakeNetworkPipe::StoredPacket::StoredPacket(NetworkPacket&& packet)
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: packet(std::move(packet)) {}
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bool FakeNetworkPipe::EnqueuePacket(rtc::CopyOnWriteBuffer packet,
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absl::optional<PacketOptions> options,
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bool is_rtcp,
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MediaType media_type,
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absl::optional<PacketTime> packet_time) {
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int64_t time_now_us = clock_->TimeInMicroseconds();
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rtc::CritScope crit(&process_lock_);
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size_t packet_size = packet.size();
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NetworkPacket net_packet(std::move(packet), time_now_us, time_now_us, options,
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is_rtcp, media_type, packet_time);
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packets_in_flight_.emplace_back(StoredPacket(std::move(net_packet)));
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int64_t packet_id = reinterpret_cast<uint64_t>(&packets_in_flight_.back());
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bool sent = network_simulation_->EnqueuePacket(
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PacketInFlightInfo(packet_size, time_now_us, packet_id));
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if (!sent) {
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packets_in_flight_.pop_back();
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++dropped_packets_;
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}
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return sent;
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}
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float FakeNetworkPipe::PercentageLoss() {
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rtc::CritScope crit(&process_lock_);
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if (sent_packets_ == 0)
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return 0;
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return static_cast<float>(dropped_packets_) /
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(sent_packets_ + dropped_packets_);
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}
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int FakeNetworkPipe::AverageDelay() {
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rtc::CritScope crit(&process_lock_);
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if (sent_packets_ == 0)
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return 0;
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return static_cast<int>(total_packet_delay_us_ /
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(1000 * static_cast<int64_t>(sent_packets_)));
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}
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size_t FakeNetworkPipe::DroppedPackets() {
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rtc::CritScope crit(&process_lock_);
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return dropped_packets_;
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}
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size_t FakeNetworkPipe::SentPackets() {
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rtc::CritScope crit(&process_lock_);
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return sent_packets_;
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}
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std::vector<PacketDeliveryInfo> SimulatedNetwork::DequeueDeliverablePackets(
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int64_t receive_time_us) {
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int64_t time_now_us = receive_time_us;
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Config config;
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double prob_loss_bursting;
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double prob_start_bursting;
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{
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rtc::CritScope crit(&config_lock_);
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config = config_;
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prob_loss_bursting = prob_loss_bursting_;
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prob_start_bursting = prob_start_bursting_;
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}
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{
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rtc::CritScope crit(&process_lock_);
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// Check the capacity link first.
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if (!capacity_link_.empty()) {
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int64_t last_arrival_time_us =
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delay_link_.empty() ? -1 : delay_link_.back().arrival_time_us;
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bool needs_sort = false;
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while (!capacity_link_.empty() &&
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time_now_us >= capacity_link_.front().arrival_time_us) {
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// Time to get this packet.
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PacketInfo packet = std::move(capacity_link_.front());
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capacity_link_.pop();
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// Drop packets at an average rate of |config_.loss_percent| with
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// and average loss burst length of |config_.avg_burst_loss_length|.
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if ((bursting_ && random_.Rand<double>() < prob_loss_bursting) ||
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(!bursting_ && random_.Rand<double>() < prob_start_bursting)) {
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bursting_ = true;
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continue;
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} else {
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bursting_ = false;
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}
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int64_t arrival_time_jitter_us = std::max(
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random_.Gaussian(config.queue_delay_ms * 1000,
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config.delay_standard_deviation_ms * 1000),
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0.0);
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// If reordering is not allowed then adjust arrival_time_jitter
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// to make sure all packets are sent in order.
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if (!config.allow_reordering && !delay_link_.empty() &&
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packet.arrival_time_us + arrival_time_jitter_us <
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last_arrival_time_us) {
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arrival_time_jitter_us =
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last_arrival_time_us - packet.arrival_time_us;
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}
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packet.arrival_time_us += arrival_time_jitter_us;
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if (packet.arrival_time_us >= last_arrival_time_us) {
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last_arrival_time_us = packet.arrival_time_us;
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} else {
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needs_sort = true;
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}
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delay_link_.emplace_back(std::move(packet));
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}
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if (needs_sort) {
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// Packet(s) arrived out of order, make sure list is sorted.
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std::sort(delay_link_.begin(), delay_link_.end(),
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[](const PacketInfo& p1, const PacketInfo& p2) {
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return p1.arrival_time_us < p2.arrival_time_us;
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});
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}
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}
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std::vector<PacketDeliveryInfo> packets_to_deliver;
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// Check the extra delay queue.
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while (!delay_link_.empty() &&
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time_now_us >= delay_link_.front().arrival_time_us) {
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PacketInfo packet_info = delay_link_.front();
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packets_to_deliver.emplace_back(
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PacketDeliveryInfo(packet_info.packet, packet_info.arrival_time_us));
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delay_link_.pop_front();
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}
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return packets_to_deliver;
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}
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}
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void FakeNetworkPipe::Process() {
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int64_t time_now_us = clock_->TimeInMicroseconds();
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std::queue<NetworkPacket> packets_to_deliver;
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{
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rtc::CritScope crit(&process_lock_);
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if (time_now_us - last_log_time_us_ > kLogIntervalMs * 1000) {
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int64_t queueing_delay_us = 0;
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if (!packets_in_flight_.empty())
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queueing_delay_us =
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time_now_us - packets_in_flight_.front().packet.send_time();
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RTC_LOG(LS_INFO) << "Network queue: " << queueing_delay_us / 1000
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<< " ms.";
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last_log_time_us_ = time_now_us;
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}
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std::vector<PacketDeliveryInfo> delivery_infos =
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network_simulation_->DequeueDeliverablePackets(time_now_us);
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for (auto& delivery_info : delivery_infos) {
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// In the common case where no reordering happens, find will return early
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// as the first packet will be a match.
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auto packet_it =
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std::find_if(packets_in_flight_.begin(), packets_in_flight_.end(),
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[&delivery_info](StoredPacket& packet_ref) {
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return reinterpret_cast<uint64_t>(&packet_ref) ==
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delivery_info.packet_id;
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});
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// Check that the packet is in the deque of packets in flight.
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RTC_CHECK(packet_it != packets_in_flight_.end());
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// Check that the packet is not already removed.
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RTC_DCHECK(!packet_it->removed);
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NetworkPacket packet = std::move(packet_it->packet);
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packet_it->removed = true;
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// Cleanup of removed packets at the beginning of the deque.
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while (!packets_in_flight_.empty() &&
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packets_in_flight_.front().removed) {
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packets_in_flight_.pop_front();
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}
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if (delivery_info.receive_time_us != PacketDeliveryInfo::kNotReceived) {
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int64_t added_delay_us =
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delivery_info.receive_time_us - packet.send_time();
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packet.IncrementArrivalTime(added_delay_us);
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packets_to_deliver.emplace(std::move(packet));
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// |time_now_us| might be later than when the packet should have
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// arrived, due to NetworkProcess being called too late. For stats, use
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// the time it should have been on the link.
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total_packet_delay_us_ += added_delay_us;
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}
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}
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sent_packets_ += packets_to_deliver.size();
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}
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rtc::CritScope crit(&config_lock_);
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while (!packets_to_deliver.empty()) {
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NetworkPacket packet = std::move(packets_to_deliver.front());
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packets_to_deliver.pop();
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DeliverPacket(&packet);
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}
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absl::optional<int64_t> delivery_us =
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network_simulation_->NextDeliveryTimeUs();
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next_process_time_us_ = delivery_us
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? *delivery_us
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: time_now_us + kDefaultProcessIntervalMs * 1000;
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}
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void FakeNetworkPipe::DeliverPacket(NetworkPacket* packet) {
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if (transport_) {
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RTC_DCHECK(!receiver_);
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if (packet->is_rtcp()) {
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transport_->SendRtcp(packet->data(), packet->data_length());
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} else {
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transport_->SendRtp(packet->data(), packet->data_length(),
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packet->packet_options());
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}
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} else if (receiver_) {
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PacketTime packet_time = packet->packet_time();
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if (packet_time.timestamp != -1) {
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int64_t queue_time_us = packet->arrival_time() - packet->send_time();
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RTC_CHECK(queue_time_us >= 0);
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packet_time.timestamp += queue_time_us;
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packet_time.timestamp += (clock_offset_ms_ * 1000);
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}
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receiver_->DeliverPacket(packet->media_type(),
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std::move(*packet->raw_packet()), packet_time);
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}
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}
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int64_t FakeNetworkPipe::TimeUntilNextProcess() {
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rtc::CritScope crit(&process_lock_);
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int64_t delay_us = next_process_time_us_ - clock_->TimeInMicroseconds();
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return std::max<int64_t>((delay_us + 500) / 1000, 0);
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}
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bool FakeNetworkPipe::HasTransport() const {
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rtc::CritScope crit(&config_lock_);
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return transport_ != nullptr;
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}
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bool FakeNetworkPipe::HasReceiver() const {
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rtc::CritScope crit(&config_lock_);
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return receiver_ != nullptr;
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}
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void FakeNetworkPipe::DeliverPacketWithLock(NetworkPacket* packet) {
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rtc::CritScope crit(&config_lock_);
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DeliverPacket(packet);
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}
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void FakeNetworkPipe::ResetStats() {
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rtc::CritScope crit(&process_lock_);
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dropped_packets_ = 0;
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sent_packets_ = 0;
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total_packet_delay_us_ = 0;
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}
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void FakeNetworkPipe::AddToPacketDropCount() {
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rtc::CritScope crit(&process_lock_);
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++dropped_packets_;
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}
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void FakeNetworkPipe::AddToPacketSentCount(int count) {
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rtc::CritScope crit(&process_lock_);
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sent_packets_ += count;
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}
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void FakeNetworkPipe::AddToTotalDelay(int delay_us) {
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rtc::CritScope crit(&process_lock_);
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total_packet_delay_us_ += delay_us;
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}
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int64_t FakeNetworkPipe::GetTimeInMicroseconds() const {
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return clock_->TimeInMicroseconds();
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}
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bool FakeNetworkPipe::ShouldProcess(int64_t time_now_us) const {
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return time_now_us >= next_process_time_us_;
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}
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void FakeNetworkPipe::SetTimeToNextProcess(int64_t skip_us) {
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next_process_time_us_ += skip_us;
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}
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} // namespace webrtc
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