370 lines
14 KiB
C++
370 lines
14 KiB
C++
/*
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* Copyright 2009 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 <memory>
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#include "webrtc/p2p/base/basicpacketsocketfactory.h"
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#include "webrtc/p2p/base/stunport.h"
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#include "webrtc/p2p/base/teststunserver.h"
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#include "webrtc/base/gunit.h"
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#include "webrtc/base/helpers.h"
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#include "webrtc/base/physicalsocketserver.h"
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#include "webrtc/base/socketaddress.h"
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#include "webrtc/base/ssladapter.h"
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#include "webrtc/base/virtualsocketserver.h"
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using cricket::ServerAddresses;
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using rtc::SocketAddress;
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static const SocketAddress kLocalAddr("127.0.0.1", 0);
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static const SocketAddress kStunAddr1("127.0.0.1", 5000);
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static const SocketAddress kStunAddr2("127.0.0.1", 4000);
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static const SocketAddress kStunAddr3("127.0.0.1", 3000);
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static const SocketAddress kBadAddr("0.0.0.1", 5000);
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static const SocketAddress kStunHostnameAddr("localhost", 5000);
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static const SocketAddress kBadHostnameAddr("not-a-real-hostname", 5000);
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// STUN timeout (with all retries) is 9500ms.
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// Add some margin of error for slow bots.
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// TODO(deadbeef): Use simulated clock instead of just increasing timeouts to
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// fix flaky tests.
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static const int kTimeoutMs = 15000;
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// stun prio = 100 << 24 | 30 (IPV4) << 8 | 256 - 0
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static const uint32_t kStunCandidatePriority = 1677729535;
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static const int kInfiniteLifetime = -1;
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static const int kHighCostPortKeepaliveLifetimeMs = 2 * 60 * 1000;
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// Tests connecting a StunPort to a fake STUN server (cricket::StunServer)
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// TODO: Use a VirtualSocketServer here. We have to use a
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// PhysicalSocketServer right now since DNS is not part of SocketServer yet.
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class StunPortTest : public testing::Test,
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public sigslot::has_slots<> {
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public:
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StunPortTest()
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: pss_(new rtc::PhysicalSocketServer),
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ss_(new rtc::VirtualSocketServer(pss_.get())),
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ss_scope_(ss_.get()),
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network_("unittest", "unittest", rtc::IPAddress(INADDR_ANY), 32),
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socket_factory_(rtc::Thread::Current()),
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stun_server_1_(cricket::TestStunServer::Create(rtc::Thread::Current(),
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kStunAddr1)),
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stun_server_2_(cricket::TestStunServer::Create(rtc::Thread::Current(),
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kStunAddr2)),
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done_(false),
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error_(false),
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stun_keepalive_delay_(0),
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stun_keepalive_lifetime_(-1) {}
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cricket::UDPPort* port() const { return stun_port_.get(); }
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bool done() const { return done_; }
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bool error() const { return error_; }
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void SetNetworkType(rtc::AdapterType adapter_type) {
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network_.set_type(adapter_type);
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}
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void CreateStunPort(const rtc::SocketAddress& server_addr) {
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ServerAddresses stun_servers;
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stun_servers.insert(server_addr);
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CreateStunPort(stun_servers);
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}
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void CreateStunPort(const ServerAddresses& stun_servers) {
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stun_port_.reset(cricket::StunPort::Create(
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rtc::Thread::Current(), &socket_factory_, &network_,
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kLocalAddr.ipaddr(), 0, 0, rtc::CreateRandomString(16),
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rtc::CreateRandomString(22), stun_servers, std::string()));
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stun_port_->set_stun_keepalive_delay(stun_keepalive_delay_);
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// If |stun_keepalive_lifetime_| is negative, let the stun port
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// choose its lifetime from the network type.
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if (stun_keepalive_lifetime_ >= 0) {
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stun_port_->set_stun_keepalive_lifetime(stun_keepalive_lifetime_);
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}
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stun_port_->SignalPortComplete.connect(this,
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&StunPortTest::OnPortComplete);
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stun_port_->SignalPortError.connect(this,
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&StunPortTest::OnPortError);
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}
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void CreateSharedStunPort(const rtc::SocketAddress& server_addr) {
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socket_.reset(socket_factory_.CreateUdpSocket(
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rtc::SocketAddress(kLocalAddr.ipaddr(), 0), 0, 0));
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ASSERT_TRUE(socket_ != NULL);
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socket_->SignalReadPacket.connect(this, &StunPortTest::OnReadPacket);
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stun_port_.reset(cricket::UDPPort::Create(
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rtc::Thread::Current(), &socket_factory_,
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&network_, socket_.get(),
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rtc::CreateRandomString(16), rtc::CreateRandomString(22),
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std::string(), false));
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ASSERT_TRUE(stun_port_ != NULL);
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ServerAddresses stun_servers;
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stun_servers.insert(server_addr);
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stun_port_->set_server_addresses(stun_servers);
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stun_port_->SignalPortComplete.connect(this,
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&StunPortTest::OnPortComplete);
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stun_port_->SignalPortError.connect(this,
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&StunPortTest::OnPortError);
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}
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void PrepareAddress() {
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stun_port_->PrepareAddress();
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}
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void OnReadPacket(rtc::AsyncPacketSocket* socket, const char* data,
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size_t size, const rtc::SocketAddress& remote_addr,
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const rtc::PacketTime& packet_time) {
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stun_port_->HandleIncomingPacket(
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socket, data, size, remote_addr, rtc::PacketTime());
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}
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void SendData(const char* data, size_t len) {
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stun_port_->HandleIncomingPacket(
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socket_.get(), data, len, rtc::SocketAddress("22.22.22.22", 0),
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rtc::PacketTime());
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}
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protected:
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static void SetUpTestCase() {
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// Ensure the RNG is inited.
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rtc::InitRandom(NULL, 0);
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}
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void OnPortComplete(cricket::Port* port) {
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ASSERT_FALSE(done_);
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done_ = true;
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error_ = false;
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}
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void OnPortError(cricket::Port* port) {
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done_ = true;
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error_ = true;
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}
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void SetKeepaliveDelay(int delay) {
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stun_keepalive_delay_ = delay;
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}
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void SetKeepaliveLifetime(int lifetime) {
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stun_keepalive_lifetime_ = lifetime;
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}
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cricket::TestStunServer* stun_server_1() {
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return stun_server_1_.get();
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}
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cricket::TestStunServer* stun_server_2() {
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return stun_server_2_.get();
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}
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private:
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std::unique_ptr<rtc::PhysicalSocketServer> pss_;
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std::unique_ptr<rtc::VirtualSocketServer> ss_;
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rtc::SocketServerScope ss_scope_;
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rtc::Network network_;
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rtc::BasicPacketSocketFactory socket_factory_;
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std::unique_ptr<cricket::UDPPort> stun_port_;
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std::unique_ptr<cricket::TestStunServer> stun_server_1_;
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std::unique_ptr<cricket::TestStunServer> stun_server_2_;
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std::unique_ptr<rtc::AsyncPacketSocket> socket_;
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bool done_;
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bool error_;
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int stun_keepalive_delay_;
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int stun_keepalive_lifetime_;
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};
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// Test that we can create a STUN port
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TEST_F(StunPortTest, TestBasic) {
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CreateStunPort(kStunAddr1);
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EXPECT_EQ("stun", port()->Type());
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EXPECT_EQ(0U, port()->Candidates().size());
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}
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// Test that we can get an address from a STUN server.
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TEST_F(StunPortTest, TestPrepareAddress) {
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CreateStunPort(kStunAddr1);
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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ASSERT_EQ(1U, port()->Candidates().size());
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EXPECT_TRUE(kLocalAddr.EqualIPs(port()->Candidates()[0].address()));
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// TODO: Add IPv6 tests here, once either physicalsocketserver supports
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// IPv6, or this test is changed to use VirtualSocketServer.
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}
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// Test that we fail properly if we can't get an address.
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TEST_F(StunPortTest, TestPrepareAddressFail) {
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CreateStunPort(kBadAddr);
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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EXPECT_TRUE(error());
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EXPECT_EQ(0U, port()->Candidates().size());
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}
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// Test that we can get an address from a STUN server specified by a hostname.
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TEST_F(StunPortTest, TestPrepareAddressHostname) {
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CreateStunPort(kStunHostnameAddr);
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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ASSERT_EQ(1U, port()->Candidates().size());
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EXPECT_TRUE(kLocalAddr.EqualIPs(port()->Candidates()[0].address()));
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EXPECT_EQ(kStunCandidatePriority, port()->Candidates()[0].priority());
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}
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// Test that we handle hostname lookup failures properly.
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TEST_F(StunPortTest, TestPrepareAddressHostnameFail) {
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CreateStunPort(kBadHostnameAddr);
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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EXPECT_TRUE(error());
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EXPECT_EQ(0U, port()->Candidates().size());
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}
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// This test verifies keepalive response messages don't result in
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// additional candidate generation.
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TEST_F(StunPortTest, TestKeepAliveResponse) {
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SetKeepaliveDelay(500); // 500ms of keepalive delay.
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CreateStunPort(kStunHostnameAddr);
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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ASSERT_EQ(1U, port()->Candidates().size());
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EXPECT_TRUE(kLocalAddr.EqualIPs(port()->Candidates()[0].address()));
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// Waiting for 1 seond, which will allow us to process
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// response for keepalive binding request. 500 ms is the keepalive delay.
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rtc::Thread::Current()->ProcessMessages(1000);
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ASSERT_EQ(1U, port()->Candidates().size());
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}
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// Test that a local candidate can be generated using a shared socket.
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TEST_F(StunPortTest, TestSharedSocketPrepareAddress) {
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CreateSharedStunPort(kStunAddr1);
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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ASSERT_EQ(1U, port()->Candidates().size());
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EXPECT_TRUE(kLocalAddr.EqualIPs(port()->Candidates()[0].address()));
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}
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// Test that we still a get a local candidate with invalid stun server hostname.
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// Also verifing that UDPPort can receive packets when stun address can't be
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// resolved.
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TEST_F(StunPortTest, TestSharedSocketPrepareAddressInvalidHostname) {
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CreateSharedStunPort(kBadHostnameAddr);
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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ASSERT_EQ(1U, port()->Candidates().size());
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EXPECT_TRUE(kLocalAddr.EqualIPs(port()->Candidates()[0].address()));
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// Send data to port after it's ready. This is to make sure, UDP port can
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// handle data with unresolved stun server address.
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std::string data = "some random data, sending to cricket::Port.";
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SendData(data.c_str(), data.length());
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// No crash is success.
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}
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// Test that the same address is added only once if two STUN servers are in use.
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TEST_F(StunPortTest, TestNoDuplicatedAddressWithTwoStunServers) {
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ServerAddresses stun_servers;
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stun_servers.insert(kStunAddr1);
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stun_servers.insert(kStunAddr2);
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CreateStunPort(stun_servers);
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EXPECT_EQ("stun", port()->Type());
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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EXPECT_EQ(1U, port()->Candidates().size());
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EXPECT_EQ(port()->Candidates()[0].relay_protocol(), "");
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}
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// Test that candidates can be allocated for multiple STUN servers, one of which
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// is not reachable.
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TEST_F(StunPortTest, TestMultipleStunServersWithBadServer) {
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ServerAddresses stun_servers;
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stun_servers.insert(kStunAddr1);
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stun_servers.insert(kBadAddr);
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CreateStunPort(stun_servers);
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EXPECT_EQ("stun", port()->Type());
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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EXPECT_EQ(1U, port()->Candidates().size());
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}
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// Test that two candidates are allocated if the two STUN servers return
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// different mapped addresses.
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TEST_F(StunPortTest, TestTwoCandidatesWithTwoStunServersAcrossNat) {
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const SocketAddress kStunMappedAddr1("77.77.77.77", 0);
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const SocketAddress kStunMappedAddr2("88.77.77.77", 0);
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stun_server_1()->set_fake_stun_addr(kStunMappedAddr1);
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stun_server_2()->set_fake_stun_addr(kStunMappedAddr2);
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ServerAddresses stun_servers;
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stun_servers.insert(kStunAddr1);
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stun_servers.insert(kStunAddr2);
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CreateStunPort(stun_servers);
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EXPECT_EQ("stun", port()->Type());
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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EXPECT_EQ(2U, port()->Candidates().size());
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EXPECT_EQ(port()->Candidates()[0].relay_protocol(), "");
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EXPECT_EQ(port()->Candidates()[1].relay_protocol(), "");
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}
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// Test that the stun_keepalive_lifetime is set correctly based on the network
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// type on a STUN port. Also test that it will be updated if the network type
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// changes.
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TEST_F(StunPortTest, TestStunPortGetStunKeepaliveLifetime) {
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// Lifetime for the default (unknown) network type is |kInfiniteLifetime|.
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CreateStunPort(kStunAddr1);
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EXPECT_EQ(kInfiniteLifetime, port()->stun_keepalive_lifetime());
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// Lifetime for the cellular network is |kHighCostPortKeepaliveLifetimeMs|
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SetNetworkType(rtc::ADAPTER_TYPE_CELLULAR);
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EXPECT_EQ(kHighCostPortKeepaliveLifetimeMs,
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port()->stun_keepalive_lifetime());
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// Lifetime for the wifi network is |kInfiniteLifetime|.
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SetNetworkType(rtc::ADAPTER_TYPE_WIFI);
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CreateStunPort(kStunAddr2);
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EXPECT_EQ(kInfiniteLifetime, port()->stun_keepalive_lifetime());
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}
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// Test that the stun_keepalive_lifetime is set correctly based on the network
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// type on a shared STUN port (UDPPort). Also test that it will be updated
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// if the network type changes.
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TEST_F(StunPortTest, TestUdpPortGetStunKeepaliveLifetime) {
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// Lifetime for the default (unknown) network type is |kInfiniteLifetime|.
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CreateSharedStunPort(kStunAddr1);
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EXPECT_EQ(kInfiniteLifetime, port()->stun_keepalive_lifetime());
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// Lifetime for the cellular network is |kHighCostPortKeepaliveLifetimeMs|.
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SetNetworkType(rtc::ADAPTER_TYPE_CELLULAR);
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EXPECT_EQ(kHighCostPortKeepaliveLifetimeMs,
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port()->stun_keepalive_lifetime());
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// Lifetime for the wifi network type is |kInfiniteLifetime|.
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SetNetworkType(rtc::ADAPTER_TYPE_WIFI);
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CreateSharedStunPort(kStunAddr2);
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EXPECT_EQ(kInfiniteLifetime, port()->stun_keepalive_lifetime());
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}
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// Test that STUN binding requests will be stopped shortly if the keep-alive
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// lifetime is short.
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TEST_F(StunPortTest, TestStunBindingRequestShortLifetime) {
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SetKeepaliveDelay(101);
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SetKeepaliveLifetime(100);
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CreateStunPort(kStunAddr1);
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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EXPECT_TRUE_WAIT(!port()->HasPendingRequest(cricket::STUN_BINDING_REQUEST),
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2000);
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}
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// Test that by default, the STUN binding requests will last for a long time.
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TEST_F(StunPortTest, TestStunBindingRequestLongLifetime) {
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SetKeepaliveDelay(101);
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CreateStunPort(kStunAddr1);
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PrepareAddress();
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EXPECT_TRUE_WAIT(done(), kTimeoutMs);
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rtc::Thread::Current()->ProcessMessages(1000);
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EXPECT_TRUE(port()->HasPendingRequest(cricket::STUN_BINDING_REQUEST));
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}
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