Bug: webrtc:10138 Change-Id: Ib5f8e95761813bd117a5e29adbc6822a5c6c73bd Reviewed-on: https://webrtc-review.googlesource.com/c/src/+/126122 Commit-Queue: Artem Titov <titovartem@webrtc.org> Reviewed-by: Karl Wiberg <kwiberg@webrtc.org> Reviewed-by: Sebastian Jansson <srte@webrtc.org> Cr-Commit-Position: refs/heads/master@{#27146}
255 lines
8.5 KiB
C++
255 lines
8.5 KiB
C++
/*
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* Copyright (c) 2019 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 "test/scenario/network/network_emulation_manager.h"
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#include <algorithm>
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#include <memory>
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#include "absl/memory/memory.h"
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#include "api/units/time_delta.h"
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#include "api/units/timestamp.h"
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#include "rtc_base/fake_network.h"
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namespace webrtc {
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namespace test {
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namespace {
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constexpr int64_t kPacketProcessingIntervalMs = 1;
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// uint32_t representation of 192.168.0.0 address
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constexpr uint32_t kMinIPv4Address = 0xC0A80000;
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// uint32_t representation of 192.168.255.255 address
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constexpr uint32_t kMaxIPv4Address = 0xC0A8FFFF;
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} // namespace
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NetworkEmulationManagerImpl::NetworkEmulationManagerImpl()
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: clock_(Clock::GetRealTimeClock()),
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next_node_id_(1),
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next_ip4_address_(kMinIPv4Address),
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task_queue_("network_emulation_manager") {
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process_task_handle_ = RepeatingTaskHandle::Start(task_queue_.Get(), [this] {
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ProcessNetworkPackets();
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return TimeDelta::ms(kPacketProcessingIntervalMs);
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});
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}
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// TODO(srte): Ensure that any pending task that must be run for consistency
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// (such as stats collection tasks) are not cancelled when the task queue is
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// destroyed.
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NetworkEmulationManagerImpl::~NetworkEmulationManagerImpl() = default;
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EmulatedNetworkNode* NetworkEmulationManagerImpl::CreateEmulatedNode(
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std::unique_ptr<NetworkBehaviorInterface> network_behavior) {
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auto node =
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absl::make_unique<EmulatedNetworkNode>(std::move(network_behavior));
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EmulatedNetworkNode* out = node.get();
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struct Closure {
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void operator()() { manager->network_nodes_.push_back(std::move(node)); }
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NetworkEmulationManagerImpl* manager;
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std::unique_ptr<EmulatedNetworkNode> node;
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};
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task_queue_.PostTask(Closure{this, std::move(node)});
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return out;
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}
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EmulatedEndpoint* NetworkEmulationManagerImpl::CreateEndpoint(
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EmulatedEndpointConfig config) {
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absl::optional<rtc::IPAddress> ip = config.ip;
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if (!ip) {
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switch (config.generated_ip_family) {
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case EmulatedEndpointConfig::IpAddressFamily::kIpv4:
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ip = GetNextIPv4Address();
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RTC_CHECK(ip) << "All auto generated IPv4 addresses exhausted";
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break;
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case EmulatedEndpointConfig::IpAddressFamily::kIpv6:
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ip = GetNextIPv4Address();
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RTC_CHECK(ip) << "All auto generated IPv6 addresses exhausted";
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ip = ip->AsIPv6Address();
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break;
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}
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}
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bool res = used_ip_addresses_.insert(*ip).second;
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RTC_CHECK(res) << "IP=" << ip->ToString() << " already in use";
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auto node = absl::make_unique<EmulatedEndpoint>(next_node_id_++, *ip, clock_);
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EmulatedEndpoint* out = node.get();
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endpoints_.push_back(std::move(node));
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return out;
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}
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EmulatedRoute* NetworkEmulationManagerImpl::CreateRoute(
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EmulatedEndpoint* from,
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const std::vector<EmulatedNetworkNode*>& via_nodes,
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EmulatedEndpoint* to) {
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// Because endpoint has no send node by default at least one should be
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// provided here.
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RTC_CHECK(!via_nodes.empty());
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from->SetSendNode(via_nodes[0]);
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EmulatedNetworkNode* cur_node = via_nodes[0];
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for (size_t i = 1; i < via_nodes.size(); ++i) {
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cur_node->SetReceiver(to->GetId(), via_nodes[i]);
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cur_node = via_nodes[i];
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}
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cur_node->SetReceiver(to->GetId(), to);
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from->SetConnectedEndpointId(to->GetId());
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std::unique_ptr<EmulatedRoute> route =
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absl::make_unique<EmulatedRoute>(from, std::move(via_nodes), to);
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EmulatedRoute* out = route.get();
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routes_.push_back(std::move(route));
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return out;
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}
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void NetworkEmulationManagerImpl::ClearRoute(EmulatedRoute* route) {
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RTC_CHECK(route->active) << "Route already cleared";
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// Remove receiver from intermediate nodes.
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for (auto* node : route->via_nodes) {
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node->RemoveReceiver(route->to->GetId());
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}
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// Detach endpoint from current send node.
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if (route->from->GetSendNode()) {
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route->from->GetSendNode()->RemoveReceiver(route->to->GetId());
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route->from->SetSendNode(nullptr);
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}
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route->active = false;
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}
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TrafficRoute* NetworkEmulationManagerImpl::CreateTrafficRoute(
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const std::vector<EmulatedNetworkNode*>& via_nodes) {
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RTC_CHECK(!via_nodes.empty());
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EmulatedEndpoint* endpoint = CreateEndpoint(EmulatedEndpointConfig());
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// Setup a route via specified nodes.
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EmulatedNetworkNode* cur_node = via_nodes[0];
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for (size_t i = 1; i < via_nodes.size(); ++i) {
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cur_node->SetReceiver(endpoint->GetId(), via_nodes[i]);
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cur_node = via_nodes[i];
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}
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cur_node->SetReceiver(endpoint->GetId(), endpoint);
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std::unique_ptr<TrafficRoute> traffic_route =
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absl::make_unique<TrafficRoute>(clock_, via_nodes[0], endpoint);
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TrafficRoute* out = traffic_route.get();
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traffic_routes_.push_back(std::move(traffic_route));
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return out;
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}
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RandomWalkCrossTraffic*
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NetworkEmulationManagerImpl::CreateRandomWalkCrossTraffic(
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TrafficRoute* traffic_route,
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RandomWalkConfig config) {
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auto traffic = absl::make_unique<RandomWalkCrossTraffic>(std::move(config),
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traffic_route);
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RandomWalkCrossTraffic* out = traffic.get();
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struct Closure {
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void operator()() {
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manager->random_cross_traffics_.push_back(std::move(traffic));
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}
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NetworkEmulationManagerImpl* manager;
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std::unique_ptr<RandomWalkCrossTraffic> traffic;
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};
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task_queue_.PostTask(Closure{this, std::move(traffic)});
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return out;
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}
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PulsedPeaksCrossTraffic*
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NetworkEmulationManagerImpl::CreatePulsedPeaksCrossTraffic(
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TrafficRoute* traffic_route,
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PulsedPeaksConfig config) {
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auto traffic = absl::make_unique<PulsedPeaksCrossTraffic>(std::move(config),
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traffic_route);
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PulsedPeaksCrossTraffic* out = traffic.get();
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struct Closure {
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void operator()() {
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manager->pulsed_cross_traffics_.push_back(std::move(traffic));
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}
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NetworkEmulationManagerImpl* manager;
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std::unique_ptr<PulsedPeaksCrossTraffic> traffic;
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};
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task_queue_.PostTask(Closure{this, std::move(traffic)});
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return out;
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}
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rtc::Thread* NetworkEmulationManagerImpl::CreateNetworkThread(
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const std::vector<EmulatedEndpoint*>& endpoints) {
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FakeNetworkSocketServer* socket_server = CreateSocketServer(endpoints);
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std::unique_ptr<rtc::Thread> network_thread =
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absl::make_unique<rtc::Thread>(socket_server);
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network_thread->SetName("network_thread" + std::to_string(threads_.size()),
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nullptr);
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network_thread->Start();
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rtc::Thread* out = network_thread.get();
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threads_.push_back(std::move(network_thread));
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return out;
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}
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rtc::NetworkManager* NetworkEmulationManagerImpl::CreateNetworkManager(
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const std::vector<EmulatedEndpoint*>& endpoints) {
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auto network_manager = absl::make_unique<rtc::FakeNetworkManager>();
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for (auto* endpoint : endpoints) {
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network_manager->AddInterface(
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rtc::SocketAddress(endpoint->GetPeerLocalAddress(), /*port=*/0));
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}
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rtc::NetworkManager* out = network_manager.get();
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managers_.push_back(std::move(network_manager));
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return out;
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}
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FakeNetworkSocketServer* NetworkEmulationManagerImpl::CreateSocketServer(
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const std::vector<EmulatedEndpoint*>& endpoints) {
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auto socket_server =
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absl::make_unique<FakeNetworkSocketServer>(clock_, endpoints);
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FakeNetworkSocketServer* out = socket_server.get();
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socket_servers_.push_back(std::move(socket_server));
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return out;
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}
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absl::optional<rtc::IPAddress>
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NetworkEmulationManagerImpl::GetNextIPv4Address() {
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uint32_t addresses_count = kMaxIPv4Address - kMinIPv4Address;
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for (uint32_t i = 0; i < addresses_count; i++) {
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rtc::IPAddress ip(next_ip4_address_);
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if (next_ip4_address_ == kMaxIPv4Address) {
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next_ip4_address_ = kMinIPv4Address;
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} else {
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next_ip4_address_++;
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}
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if (used_ip_addresses_.find(ip) == used_ip_addresses_.end()) {
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return ip;
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}
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}
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return absl::nullopt;
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}
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void NetworkEmulationManagerImpl::ProcessNetworkPackets() {
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Timestamp current_time = Now();
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for (auto& traffic : random_cross_traffics_) {
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traffic->Process(current_time);
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}
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for (auto& traffic : pulsed_cross_traffics_) {
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traffic->Process(current_time);
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}
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for (auto& node : network_nodes_) {
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node->Process(current_time);
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}
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}
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Timestamp NetworkEmulationManagerImpl::Now() const {
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return Timestamp::us(clock_->TimeInMicroseconds());
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}
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} // namespace test
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} // namespace webrtc
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