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henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001/*
2 * Copyright 2004 The WebRTC Project Authors. All rights reserved.
3 *
4 * Use of this source code is governed by a BSD-style license
5 * that can be found in the LICENSE file in the root of the source
6 * tree. An additional intellectual property rights grant can be found
7 * in the file PATENTS. All contributing project authors may
8 * be found in the AUTHORS file in the root of the source tree.
9 */
10
11#include "webrtc/p2p/base/basicpacketsocketfactory.h"
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +000012#include "webrtc/p2p/base/relayport.h"
13#include "webrtc/p2p/base/stunport.h"
14#include "webrtc/p2p/base/tcpport.h"
15#include "webrtc/p2p/base/testrelayserver.h"
16#include "webrtc/p2p/base/teststunserver.h"
17#include "webrtc/p2p/base/testturnserver.h"
18#include "webrtc/p2p/base/transport.h"
19#include "webrtc/p2p/base/turnport.h"
20#include "webrtc/base/crc32.h"
21#include "webrtc/base/gunit.h"
22#include "webrtc/base/helpers.h"
23#include "webrtc/base/logging.h"
24#include "webrtc/base/natserver.h"
25#include "webrtc/base/natsocketfactory.h"
26#include "webrtc/base/physicalsocketserver.h"
27#include "webrtc/base/scoped_ptr.h"
28#include "webrtc/base/socketaddress.h"
29#include "webrtc/base/ssladapter.h"
30#include "webrtc/base/stringutils.h"
31#include "webrtc/base/thread.h"
32#include "webrtc/base/virtualsocketserver.h"
33
34using rtc::AsyncPacketSocket;
35using rtc::ByteBuffer;
36using rtc::NATType;
37using rtc::NAT_OPEN_CONE;
38using rtc::NAT_ADDR_RESTRICTED;
39using rtc::NAT_PORT_RESTRICTED;
40using rtc::NAT_SYMMETRIC;
41using rtc::PacketSocketFactory;
42using rtc::scoped_ptr;
43using rtc::Socket;
44using rtc::SocketAddress;
45using namespace cricket;
46
47static const int kTimeout = 1000;
48static const SocketAddress kLocalAddr1("192.168.1.2", 0);
49static const SocketAddress kLocalAddr2("192.168.1.3", 0);
deadbeefc5d0d952015-07-16 10:22:21 -070050static const SocketAddress kNatAddr1("77.77.77.77", rtc::NAT_SERVER_UDP_PORT);
51static const SocketAddress kNatAddr2("88.88.88.88", rtc::NAT_SERVER_UDP_PORT);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +000052static const SocketAddress kStunAddr("99.99.99.1", STUN_SERVER_PORT);
53static const SocketAddress kRelayUdpIntAddr("99.99.99.2", 5000);
54static const SocketAddress kRelayUdpExtAddr("99.99.99.3", 5001);
55static const SocketAddress kRelayTcpIntAddr("99.99.99.2", 5002);
56static const SocketAddress kRelayTcpExtAddr("99.99.99.3", 5003);
57static const SocketAddress kRelaySslTcpIntAddr("99.99.99.2", 5004);
58static const SocketAddress kRelaySslTcpExtAddr("99.99.99.3", 5005);
59static const SocketAddress kTurnUdpIntAddr("99.99.99.4", STUN_SERVER_PORT);
60static const SocketAddress kTurnUdpExtAddr("99.99.99.5", 0);
61static const RelayCredentials kRelayCredentials("test", "test");
62
63// TODO: Update these when RFC5245 is completely supported.
64// Magic value of 30 is from RFC3484, for IPv4 addresses.
65static const uint32 kDefaultPrflxPriority = ICE_TYPE_PREFERENCE_PRFLX << 24 |
66 30 << 8 | (256 - ICE_CANDIDATE_COMPONENT_DEFAULT);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +000067
68static const int kTiebreaker1 = 11111;
69static const int kTiebreaker2 = 22222;
70
Guo-wei Shiehbe508a12015-04-06 12:48:47 -070071static const char* data = "ABCDEFGHIJKLMNOPQRSTUVWXYZ1234567890";
72
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +000073static Candidate GetCandidate(Port* port) {
Peter Thatcher2159b892015-08-21 20:46:05 -070074 assert(port->Candidates().size() >= 1);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +000075 return port->Candidates()[0];
76}
77
78static SocketAddress GetAddress(Port* port) {
79 return GetCandidate(port).address();
80}
81
82static IceMessage* CopyStunMessage(const IceMessage* src) {
83 IceMessage* dst = new IceMessage();
84 ByteBuffer buf;
85 src->Write(&buf);
86 dst->Read(&buf);
87 return dst;
88}
89
90static bool WriteStunMessage(const StunMessage* msg, ByteBuffer* buf) {
91 buf->Resize(0); // clear out any existing buffer contents
92 return msg->Write(buf);
93}
94
95// Stub port class for testing STUN generation and processing.
96class TestPort : public Port {
97 public:
pkasting@chromium.org332331f2014-11-06 20:19:22 +000098 TestPort(rtc::Thread* thread,
99 const std::string& type,
100 rtc::PacketSocketFactory* factory,
101 rtc::Network* network,
102 const rtc::IPAddress& ip,
103 uint16 min_port,
104 uint16 max_port,
105 const std::string& username_fragment,
106 const std::string& password)
107 : Port(thread, type, factory, network, ip, min_port, max_port,
108 username_fragment, password) {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000109 }
110 ~TestPort() {}
111
112 // Expose GetStunMessage so that we can test it.
113 using cricket::Port::GetStunMessage;
114
115 // The last StunMessage that was sent on this Port.
116 // TODO: Make these const; requires changes to SendXXXXResponse.
117 ByteBuffer* last_stun_buf() { return last_stun_buf_.get(); }
118 IceMessage* last_stun_msg() { return last_stun_msg_.get(); }
119 int last_stun_error_code() {
120 int code = 0;
121 if (last_stun_msg_) {
122 const StunErrorCodeAttribute* error_attr = last_stun_msg_->GetErrorCode();
123 if (error_attr) {
124 code = error_attr->code();
125 }
126 }
127 return code;
128 }
129
130 virtual void PrepareAddress() {
131 rtc::SocketAddress addr(ip(), min_port());
Guo-wei Shieh3d564c12015-08-19 16:51:15 -0700132 AddAddress(addr, addr, rtc::SocketAddress(), "udp", "", "", Type(),
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000133 ICE_TYPE_PREFERENCE_HOST, 0, true);
134 }
135
136 // Exposed for testing candidate building.
137 void AddCandidateAddress(const rtc::SocketAddress& addr) {
Guo-wei Shieh3d564c12015-08-19 16:51:15 -0700138 AddAddress(addr, addr, rtc::SocketAddress(), "udp", "", "", Type(),
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000139 type_preference_, 0, false);
140 }
141 void AddCandidateAddress(const rtc::SocketAddress& addr,
142 const rtc::SocketAddress& base_address,
143 const std::string& type,
144 int type_preference,
145 bool final) {
Guo-wei Shieh3d564c12015-08-19 16:51:15 -0700146 AddAddress(addr, base_address, rtc::SocketAddress(), "udp", "", "", type,
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000147 type_preference, 0, final);
148 }
149
150 virtual Connection* CreateConnection(const Candidate& remote_candidate,
151 CandidateOrigin origin) {
152 Connection* conn = new ProxyConnection(this, 0, remote_candidate);
153 AddConnection(conn);
154 // Set use-candidate attribute flag as this will add USE-CANDIDATE attribute
155 // in STUN binding requests.
156 conn->set_use_candidate_attr(true);
157 return conn;
158 }
159 virtual int SendTo(
160 const void* data, size_t size, const rtc::SocketAddress& addr,
161 const rtc::PacketOptions& options, bool payload) {
162 if (!payload) {
163 IceMessage* msg = new IceMessage;
164 ByteBuffer* buf = new ByteBuffer(static_cast<const char*>(data), size);
165 ByteBuffer::ReadPosition pos(buf->GetReadPosition());
166 if (!msg->Read(buf)) {
167 delete msg;
168 delete buf;
169 return -1;
170 }
171 buf->SetReadPosition(pos);
172 last_stun_buf_.reset(buf);
173 last_stun_msg_.reset(msg);
174 }
175 return static_cast<int>(size);
176 }
177 virtual int SetOption(rtc::Socket::Option opt, int value) {
178 return 0;
179 }
180 virtual int GetOption(rtc::Socket::Option opt, int* value) {
181 return -1;
182 }
183 virtual int GetError() {
184 return 0;
185 }
186 void Reset() {
187 last_stun_buf_.reset();
188 last_stun_msg_.reset();
189 }
190 void set_type_preference(int type_preference) {
191 type_preference_ = type_preference;
192 }
193
194 private:
195 rtc::scoped_ptr<ByteBuffer> last_stun_buf_;
196 rtc::scoped_ptr<IceMessage> last_stun_msg_;
197 int type_preference_;
198};
199
200class TestChannel : public sigslot::has_slots<> {
201 public:
202 // Takes ownership of |p1| (but not |p2|).
203 TestChannel(Port* p1, Port* p2)
204 : ice_mode_(ICEMODE_FULL), src_(p1), dst_(p2), complete_count_(0),
pthatcher@webrtc.org0ba15332015-01-10 00:47:02 +0000205 conn_(NULL), remote_request_(), nominated_(false) {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000206 src_->SignalPortComplete.connect(
207 this, &TestChannel::OnPortComplete);
208 src_->SignalUnknownAddress.connect(this, &TestChannel::OnUnknownAddress);
209 src_->SignalDestroyed.connect(this, &TestChannel::OnSrcPortDestroyed);
210 }
211
212 int complete_count() { return complete_count_; }
213 Connection* conn() { return conn_; }
214 const SocketAddress& remote_address() { return remote_address_; }
215 const std::string remote_fragment() { return remote_frag_; }
216
217 void Start() {
218 src_->PrepareAddress();
219 }
220 void CreateConnection() {
221 conn_ = src_->CreateConnection(GetCandidate(dst_), Port::ORIGIN_MESSAGE);
222 IceMode remote_ice_mode =
223 (ice_mode_ == ICEMODE_FULL) ? ICEMODE_LITE : ICEMODE_FULL;
224 conn_->set_remote_ice_mode(remote_ice_mode);
225 conn_->set_use_candidate_attr(remote_ice_mode == ICEMODE_FULL);
226 conn_->SignalStateChange.connect(
227 this, &TestChannel::OnConnectionStateChange);
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700228 conn_->SignalDestroyed.connect(this, &TestChannel::OnDestroyed);
Guo-wei Shiehb5940412015-08-24 11:58:03 -0700229 conn_->SignalReadyToSend.connect(this,
230 &TestChannel::OnConnectionReadyToSend);
231 connection_ready_to_send_ = false;
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000232 }
233 void OnConnectionStateChange(Connection* conn) {
234 if (conn->write_state() == Connection::STATE_WRITABLE) {
235 conn->set_use_candidate_attr(true);
236 nominated_ = true;
237 }
238 }
239 void AcceptConnection() {
240 ASSERT_TRUE(remote_request_.get() != NULL);
241 Candidate c = GetCandidate(dst_);
242 c.set_address(remote_address_);
243 conn_ = src_->CreateConnection(c, Port::ORIGIN_MESSAGE);
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700244 conn_->SignalDestroyed.connect(this, &TestChannel::OnDestroyed);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000245 src_->SendBindingResponse(remote_request_.get(), remote_address_);
246 remote_request_.reset();
247 }
248 void Ping() {
249 Ping(0);
250 }
251 void Ping(uint32 now) {
252 conn_->Ping(now);
253 }
254 void Stop() {
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700255 if (conn_) {
256 conn_->Destroy();
257 }
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000258 }
259
260 void OnPortComplete(Port* port) {
261 complete_count_++;
262 }
263 void SetIceMode(IceMode ice_mode) {
264 ice_mode_ = ice_mode;
265 }
266
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700267 int SendData(const char* data, size_t len) {
268 rtc::PacketOptions options;
269 return conn_->Send(data, len, options);
270 }
271
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000272 void OnUnknownAddress(PortInterface* port, const SocketAddress& addr,
273 ProtocolType proto,
274 IceMessage* msg, const std::string& rf,
275 bool /*port_muxed*/) {
276 ASSERT_EQ(src_.get(), port);
277 if (!remote_address_.IsNil()) {
278 ASSERT_EQ(remote_address_, addr);
279 }
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000280 const cricket::StunUInt32Attribute* priority_attr =
281 msg->GetUInt32(STUN_ATTR_PRIORITY);
282 const cricket::StunByteStringAttribute* mi_attr =
283 msg->GetByteString(STUN_ATTR_MESSAGE_INTEGRITY);
284 const cricket::StunUInt32Attribute* fingerprint_attr =
285 msg->GetUInt32(STUN_ATTR_FINGERPRINT);
Peter Thatcher2159b892015-08-21 20:46:05 -0700286 EXPECT_TRUE(priority_attr != NULL);
287 EXPECT_TRUE(mi_attr != NULL);
288 EXPECT_TRUE(fingerprint_attr != NULL);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000289 remote_address_ = addr;
290 remote_request_.reset(CopyStunMessage(msg));
291 remote_frag_ = rf;
292 }
293
294 void OnDestroyed(Connection* conn) {
295 ASSERT_EQ(conn_, conn);
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700296 LOG(INFO) << "OnDestroy connection " << conn << " deleted";
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000297 conn_ = NULL;
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700298 // When the connection is destroyed, also clear these fields so future
299 // connections are possible.
300 remote_request_.reset();
301 remote_address_.Clear();
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000302 }
303
304 void OnSrcPortDestroyed(PortInterface* port) {
305 Port* destroyed_src = src_.release();
306 ASSERT_EQ(destroyed_src, port);
307 }
308
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700309 Port* src_port() { return src_.get(); }
310
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000311 bool nominated() const { return nominated_; }
312
Guo-wei Shiehb5940412015-08-24 11:58:03 -0700313 void set_connection_ready_to_send(bool ready) {
314 connection_ready_to_send_ = ready;
315 }
316 bool connection_ready_to_send() const {
317 return connection_ready_to_send_;
318 }
319
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000320 private:
Guo-wei Shiehb5940412015-08-24 11:58:03 -0700321 // ReadyToSend will only issue after a Connection recovers from EWOULDBLOCK.
322 void OnConnectionReadyToSend(Connection* conn) {
323 ASSERT_EQ(conn, conn_);
324 connection_ready_to_send_ = true;
325 }
326
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000327 IceMode ice_mode_;
328 rtc::scoped_ptr<Port> src_;
329 Port* dst_;
330
331 int complete_count_;
332 Connection* conn_;
333 SocketAddress remote_address_;
334 rtc::scoped_ptr<StunMessage> remote_request_;
335 std::string remote_frag_;
336 bool nominated_;
Guo-wei Shiehb5940412015-08-24 11:58:03 -0700337 bool connection_ready_to_send_ = false;
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000338};
339
340class PortTest : public testing::Test, public sigslot::has_slots<> {
341 public:
342 PortTest()
343 : main_(rtc::Thread::Current()),
344 pss_(new rtc::PhysicalSocketServer),
345 ss_(new rtc::VirtualSocketServer(pss_.get())),
346 ss_scope_(ss_.get()),
347 network_("unittest", "unittest", rtc::IPAddress(INADDR_ANY), 32),
348 socket_factory_(rtc::Thread::Current()),
deadbeefc5d0d952015-07-16 10:22:21 -0700349 nat_factory1_(ss_.get(), kNatAddr1, SocketAddress()),
350 nat_factory2_(ss_.get(), kNatAddr2, SocketAddress()),
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000351 nat_socket_factory1_(&nat_factory1_),
352 nat_socket_factory2_(&nat_factory2_),
353 stun_server_(TestStunServer::Create(main_, kStunAddr)),
354 turn_server_(main_, kTurnUdpIntAddr, kTurnUdpExtAddr),
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700355 relay_server_(main_,
356 kRelayUdpIntAddr,
357 kRelayUdpExtAddr,
358 kRelayTcpIntAddr,
359 kRelayTcpExtAddr,
360 kRelaySslTcpIntAddr,
361 kRelaySslTcpExtAddr),
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000362 username_(rtc::CreateRandomString(ICE_UFRAG_LENGTH)),
363 password_(rtc::CreateRandomString(ICE_PWD_LENGTH)),
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000364 role_conflict_(false),
365 destroyed_(false) {
366 network_.AddIP(rtc::IPAddress(INADDR_ANY));
367 }
368
369 protected:
370 void TestLocalToLocal() {
371 Port* port1 = CreateUdpPort(kLocalAddr1);
Peter Thatcher2159b892015-08-21 20:46:05 -0700372 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000373 Port* port2 = CreateUdpPort(kLocalAddr2);
Peter Thatcher2159b892015-08-21 20:46:05 -0700374 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000375 TestConnectivity("udp", port1, "udp", port2, true, true, true, true);
376 }
377 void TestLocalToStun(NATType ntype) {
378 Port* port1 = CreateUdpPort(kLocalAddr1);
Peter Thatcher2159b892015-08-21 20:46:05 -0700379 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000380 nat_server2_.reset(CreateNatServer(kNatAddr2, ntype));
381 Port* port2 = CreateStunPort(kLocalAddr2, &nat_socket_factory2_);
Peter Thatcher2159b892015-08-21 20:46:05 -0700382 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000383 TestConnectivity("udp", port1, StunName(ntype), port2,
384 ntype == NAT_OPEN_CONE, true,
385 ntype != NAT_SYMMETRIC, true);
386 }
387 void TestLocalToRelay(RelayType rtype, ProtocolType proto) {
388 Port* port1 = CreateUdpPort(kLocalAddr1);
Peter Thatcher2159b892015-08-21 20:46:05 -0700389 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000390 Port* port2 = CreateRelayPort(kLocalAddr2, rtype, proto, PROTO_UDP);
Peter Thatcher2159b892015-08-21 20:46:05 -0700391 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000392 TestConnectivity("udp", port1, RelayName(rtype, proto), port2,
393 rtype == RELAY_GTURN, true, true, true);
394 }
395 void TestStunToLocal(NATType ntype) {
396 nat_server1_.reset(CreateNatServer(kNatAddr1, ntype));
397 Port* port1 = CreateStunPort(kLocalAddr1, &nat_socket_factory1_);
Peter Thatcher2159b892015-08-21 20:46:05 -0700398 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000399 Port* port2 = CreateUdpPort(kLocalAddr2);
Peter Thatcher2159b892015-08-21 20:46:05 -0700400 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000401 TestConnectivity(StunName(ntype), port1, "udp", port2,
402 true, ntype != NAT_SYMMETRIC, true, true);
403 }
404 void TestStunToStun(NATType ntype1, NATType ntype2) {
405 nat_server1_.reset(CreateNatServer(kNatAddr1, ntype1));
406 Port* port1 = CreateStunPort(kLocalAddr1, &nat_socket_factory1_);
Peter Thatcher2159b892015-08-21 20:46:05 -0700407 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000408 nat_server2_.reset(CreateNatServer(kNatAddr2, ntype2));
409 Port* port2 = CreateStunPort(kLocalAddr2, &nat_socket_factory2_);
Peter Thatcher2159b892015-08-21 20:46:05 -0700410 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000411 TestConnectivity(StunName(ntype1), port1, StunName(ntype2), port2,
412 ntype2 == NAT_OPEN_CONE,
413 ntype1 != NAT_SYMMETRIC, ntype2 != NAT_SYMMETRIC,
414 ntype1 + ntype2 < (NAT_PORT_RESTRICTED + NAT_SYMMETRIC));
415 }
416 void TestStunToRelay(NATType ntype, RelayType rtype, ProtocolType proto) {
417 nat_server1_.reset(CreateNatServer(kNatAddr1, ntype));
418 Port* port1 = CreateStunPort(kLocalAddr1, &nat_socket_factory1_);
Peter Thatcher2159b892015-08-21 20:46:05 -0700419 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000420 Port* port2 = CreateRelayPort(kLocalAddr2, rtype, proto, PROTO_UDP);
Peter Thatcher2159b892015-08-21 20:46:05 -0700421 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000422 TestConnectivity(StunName(ntype), port1, RelayName(rtype, proto), port2,
423 rtype == RELAY_GTURN, ntype != NAT_SYMMETRIC, true, true);
424 }
425 void TestTcpToTcp() {
426 Port* port1 = CreateTcpPort(kLocalAddr1);
Peter Thatcher2159b892015-08-21 20:46:05 -0700427 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000428 Port* port2 = CreateTcpPort(kLocalAddr2);
Peter Thatcher2159b892015-08-21 20:46:05 -0700429 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000430 TestConnectivity("tcp", port1, "tcp", port2, true, false, true, true);
431 }
432 void TestTcpToRelay(RelayType rtype, ProtocolType proto) {
433 Port* port1 = CreateTcpPort(kLocalAddr1);
Peter Thatcher2159b892015-08-21 20:46:05 -0700434 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000435 Port* port2 = CreateRelayPort(kLocalAddr2, rtype, proto, PROTO_TCP);
Peter Thatcher2159b892015-08-21 20:46:05 -0700436 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000437 TestConnectivity("tcp", port1, RelayName(rtype, proto), port2,
438 rtype == RELAY_GTURN, false, true, true);
439 }
440 void TestSslTcpToRelay(RelayType rtype, ProtocolType proto) {
441 Port* port1 = CreateTcpPort(kLocalAddr1);
Peter Thatcher2159b892015-08-21 20:46:05 -0700442 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000443 Port* port2 = CreateRelayPort(kLocalAddr2, rtype, proto, PROTO_SSLTCP);
Peter Thatcher2159b892015-08-21 20:46:05 -0700444 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000445 TestConnectivity("ssltcp", port1, RelayName(rtype, proto), port2,
446 rtype == RELAY_GTURN, false, true, true);
447 }
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000448 // helpers for above functions
449 UDPPort* CreateUdpPort(const SocketAddress& addr) {
450 return CreateUdpPort(addr, &socket_factory_);
451 }
452 UDPPort* CreateUdpPort(const SocketAddress& addr,
453 PacketSocketFactory* socket_factory) {
Peter Thatcher2159b892015-08-21 20:46:05 -0700454 return UDPPort::Create(main_, socket_factory, &network_,
455 addr.ipaddr(), 0, 0, username_, password_,
456 std::string(), false);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000457 }
458 TCPPort* CreateTcpPort(const SocketAddress& addr) {
Peter Thatcher2159b892015-08-21 20:46:05 -0700459 return CreateTcpPort(addr, &socket_factory_);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000460 }
461 TCPPort* CreateTcpPort(const SocketAddress& addr,
462 PacketSocketFactory* socket_factory) {
Peter Thatcher2159b892015-08-21 20:46:05 -0700463 return TCPPort::Create(main_, socket_factory, &network_,
464 addr.ipaddr(), 0, 0, username_, password_,
465 true);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000466 }
467 StunPort* CreateStunPort(const SocketAddress& addr,
468 rtc::PacketSocketFactory* factory) {
469 ServerAddresses stun_servers;
470 stun_servers.insert(kStunAddr);
Peter Thatcher2159b892015-08-21 20:46:05 -0700471 return StunPort::Create(main_, factory, &network_,
472 addr.ipaddr(), 0, 0,
473 username_, password_, stun_servers,
474 std::string());
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000475 }
476 Port* CreateRelayPort(const SocketAddress& addr, RelayType rtype,
477 ProtocolType int_proto, ProtocolType ext_proto) {
478 if (rtype == RELAY_TURN) {
479 return CreateTurnPort(addr, &socket_factory_, int_proto, ext_proto);
480 } else {
481 return CreateGturnPort(addr, int_proto, ext_proto);
482 }
483 }
484 TurnPort* CreateTurnPort(const SocketAddress& addr,
485 PacketSocketFactory* socket_factory,
486 ProtocolType int_proto, ProtocolType ext_proto) {
487 return CreateTurnPort(addr, socket_factory,
488 int_proto, ext_proto, kTurnUdpIntAddr);
489 }
490 TurnPort* CreateTurnPort(const SocketAddress& addr,
491 PacketSocketFactory* socket_factory,
492 ProtocolType int_proto, ProtocolType ext_proto,
493 const rtc::SocketAddress& server_addr) {
Peter Thatcher2159b892015-08-21 20:46:05 -0700494 return TurnPort::Create(main_, socket_factory, &network_,
495 addr.ipaddr(), 0, 0,
496 username_, password_, ProtocolAddress(
497 server_addr, PROTO_UDP),
498 kRelayCredentials, 0,
499 std::string());
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000500 }
501 RelayPort* CreateGturnPort(const SocketAddress& addr,
502 ProtocolType int_proto, ProtocolType ext_proto) {
503 RelayPort* port = CreateGturnPort(addr);
504 SocketAddress addrs[] =
505 { kRelayUdpIntAddr, kRelayTcpIntAddr, kRelaySslTcpIntAddr };
506 port->AddServerAddress(ProtocolAddress(addrs[int_proto], int_proto));
507 return port;
508 }
509 RelayPort* CreateGturnPort(const SocketAddress& addr) {
Peter Thatcher2159b892015-08-21 20:46:05 -0700510 // TODO(pthatcher): Remove GTURN.
511 return RelayPort::Create(main_, &socket_factory_, &network_,
512 addr.ipaddr(), 0, 0,
513 username_, password_);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000514 // TODO: Add an external address for ext_proto, so that the
515 // other side can connect to this port using a non-UDP protocol.
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000516 }
517 rtc::NATServer* CreateNatServer(const SocketAddress& addr,
518 rtc::NATType type) {
deadbeefc5d0d952015-07-16 10:22:21 -0700519 return new rtc::NATServer(type, ss_.get(), addr, addr, ss_.get(), addr);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000520 }
521 static const char* StunName(NATType type) {
522 switch (type) {
523 case NAT_OPEN_CONE: return "stun(open cone)";
524 case NAT_ADDR_RESTRICTED: return "stun(addr restricted)";
525 case NAT_PORT_RESTRICTED: return "stun(port restricted)";
526 case NAT_SYMMETRIC: return "stun(symmetric)";
527 default: return "stun(?)";
528 }
529 }
530 static const char* RelayName(RelayType type, ProtocolType proto) {
531 if (type == RELAY_TURN) {
532 switch (proto) {
533 case PROTO_UDP: return "turn(udp)";
534 case PROTO_TCP: return "turn(tcp)";
535 case PROTO_SSLTCP: return "turn(ssltcp)";
536 default: return "turn(?)";
537 }
538 } else {
539 switch (proto) {
540 case PROTO_UDP: return "gturn(udp)";
541 case PROTO_TCP: return "gturn(tcp)";
542 case PROTO_SSLTCP: return "gturn(ssltcp)";
543 default: return "gturn(?)";
544 }
545 }
546 }
547
548 void TestCrossFamilyPorts(int type);
549
Peter Thatcherb8b01432015-07-07 16:45:53 -0700550 void ExpectPortsCanConnect(bool can_connect, Port* p1, Port* p2);
551
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000552 // This does all the work and then deletes |port1| and |port2|.
553 void TestConnectivity(const char* name1, Port* port1,
554 const char* name2, Port* port2,
555 bool accept, bool same_addr1,
556 bool same_addr2, bool possible);
557
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700558 // This connects the provided channels which have already started. |ch1|
559 // should have its Connection created (either through CreateConnection() or
560 // TCP reconnecting mechanism before entering this function.
561 void ConnectStartedChannels(TestChannel* ch1, TestChannel* ch2) {
562 ASSERT_TRUE(ch1->conn());
563 EXPECT_TRUE_WAIT(ch1->conn()->connected(), kTimeout); // for TCP connect
564 ch1->Ping();
565 WAIT(!ch2->remote_address().IsNil(), kTimeout);
566
567 // Send a ping from dst to src.
568 ch2->AcceptConnection();
569 ch2->Ping();
570 EXPECT_EQ_WAIT(Connection::STATE_WRITABLE, ch2->conn()->write_state(),
571 kTimeout);
572 }
573
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000574 // This connects and disconnects the provided channels in the same sequence as
575 // TestConnectivity with all options set to |true|. It does not delete either
576 // channel.
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700577 void StartConnectAndStopChannels(TestChannel* ch1, TestChannel* ch2) {
578 // Acquire addresses.
579 ch1->Start();
580 ch2->Start();
581
582 ch1->CreateConnection();
583 ConnectStartedChannels(ch1, ch2);
584
585 // Destroy the connections.
586 ch1->Stop();
587 ch2->Stop();
588 }
589
590 // This disconnects both end's Connection and make sure ch2 ready for new
591 // connection.
592 void DisconnectTcpTestChannels(TestChannel* ch1, TestChannel* ch2) {
593 ASSERT_TRUE(ss_->CloseTcpConnections(
594 static_cast<TCPConnection*>(ch1->conn())->socket()->GetLocalAddress(),
595 static_cast<TCPConnection*>(ch2->conn())->socket()->GetLocalAddress()));
596
597 // Wait for both OnClose are delivered.
598 EXPECT_TRUE_WAIT(!ch1->conn()->connected(), kTimeout);
599 EXPECT_TRUE_WAIT(!ch2->conn()->connected(), kTimeout);
600
601 // Destroy channel2 connection to get ready for new incoming TCPConnection.
602 ch2->conn()->Destroy();
603 EXPECT_TRUE_WAIT(ch2->conn() == NULL, kTimeout);
604 }
605
606 void TestTcpReconnect(bool ping_after_disconnected,
607 bool send_after_disconnected) {
608 Port* port1 = CreateTcpPort(kLocalAddr1);
Peter Thatcher2159b892015-08-21 20:46:05 -0700609 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700610 Port* port2 = CreateTcpPort(kLocalAddr2);
Peter Thatcher2159b892015-08-21 20:46:05 -0700611 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700612
613 port1->set_component(cricket::ICE_CANDIDATE_COMPONENT_DEFAULT);
614 port2->set_component(cricket::ICE_CANDIDATE_COMPONENT_DEFAULT);
615
616 // Set up channels and ensure both ports will be deleted.
617 TestChannel ch1(port1, port2);
618 TestChannel ch2(port2, port1);
619 EXPECT_EQ(0, ch1.complete_count());
620 EXPECT_EQ(0, ch2.complete_count());
621
622 ch1.Start();
623 ch2.Start();
624 ASSERT_EQ_WAIT(1, ch1.complete_count(), kTimeout);
625 ASSERT_EQ_WAIT(1, ch2.complete_count(), kTimeout);
626
627 // Initial connecting the channel, create connection on channel1.
628 ch1.CreateConnection();
629 ConnectStartedChannels(&ch1, &ch2);
630
631 // Shorten the timeout period.
632 const int kTcpReconnectTimeout = kTimeout;
633 static_cast<TCPConnection*>(ch1.conn())
634 ->set_reconnection_timeout(kTcpReconnectTimeout);
635 static_cast<TCPConnection*>(ch2.conn())
636 ->set_reconnection_timeout(kTcpReconnectTimeout);
637
Guo-wei Shiehb5940412015-08-24 11:58:03 -0700638 EXPECT_FALSE(ch1.connection_ready_to_send());
639 EXPECT_FALSE(ch2.connection_ready_to_send());
640
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700641 // Once connected, disconnect them.
642 DisconnectTcpTestChannels(&ch1, &ch2);
643
644 if (send_after_disconnected || ping_after_disconnected) {
645 if (send_after_disconnected) {
646 // First SendData after disconnect should fail but will trigger
647 // reconnect.
648 EXPECT_EQ(-1, ch1.SendData(data, static_cast<int>(strlen(data))));
649 }
650
651 if (ping_after_disconnected) {
652 // Ping should trigger reconnect.
653 ch1.Ping();
654 }
655
656 // Wait for channel's outgoing TCPConnection connected.
657 EXPECT_TRUE_WAIT(ch1.conn()->connected(), kTimeout);
658
659 // Verify that we could still connect channels.
660 ConnectStartedChannels(&ch1, &ch2);
Guo-wei Shiehb5940412015-08-24 11:58:03 -0700661 EXPECT_TRUE_WAIT(ch1.connection_ready_to_send(),
662 kTcpReconnectTimeout);
663 // Channel2 is the passive one so a new connection is created during
664 // reconnect. This new connection should never have issued EWOULDBLOCK
665 // hence the connection_ready_to_send() should be false.
666 EXPECT_FALSE(ch2.connection_ready_to_send());
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700667 } else {
668 EXPECT_EQ(ch1.conn()->write_state(), Connection::STATE_WRITABLE);
669 EXPECT_TRUE_WAIT(
670 ch1.conn()->write_state() == Connection::STATE_WRITE_TIMEOUT,
671 kTcpReconnectTimeout + kTimeout);
Guo-wei Shiehb5940412015-08-24 11:58:03 -0700672 EXPECT_FALSE(ch1.connection_ready_to_send());
673 EXPECT_FALSE(ch2.connection_ready_to_send());
Guo-wei Shiehbe508a12015-04-06 12:48:47 -0700674 }
675
676 // Tear down and ensure that goes smoothly.
677 ch1.Stop();
678 ch2.Stop();
679 EXPECT_TRUE_WAIT(ch1.conn() == NULL, kTimeout);
680 EXPECT_TRUE_WAIT(ch2.conn() == NULL, kTimeout);
681 }
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000682
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000683 IceMessage* CreateStunMessage(int type) {
684 IceMessage* msg = new IceMessage();
685 msg->SetType(type);
686 msg->SetTransactionID("TESTTESTTEST");
687 return msg;
688 }
689 IceMessage* CreateStunMessageWithUsername(int type,
690 const std::string& username) {
691 IceMessage* msg = CreateStunMessage(type);
692 msg->AddAttribute(
693 new StunByteStringAttribute(STUN_ATTR_USERNAME, username));
694 return msg;
695 }
696 TestPort* CreateTestPort(const rtc::SocketAddress& addr,
697 const std::string& username,
698 const std::string& password) {
699 TestPort* port = new TestPort(main_, "test", &socket_factory_, &network_,
700 addr.ipaddr(), 0, 0, username, password);
701 port->SignalRoleConflict.connect(this, &PortTest::OnRoleConflict);
702 return port;
703 }
704 TestPort* CreateTestPort(const rtc::SocketAddress& addr,
705 const std::string& username,
706 const std::string& password,
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000707 cricket::IceRole role,
708 int tiebreaker) {
709 TestPort* port = CreateTestPort(addr, username, password);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000710 port->SetIceRole(role);
711 port->SetIceTiebreaker(tiebreaker);
712 return port;
713 }
714
715 void OnRoleConflict(PortInterface* port) {
716 role_conflict_ = true;
717 }
718 bool role_conflict() const { return role_conflict_; }
719
720 void ConnectToSignalDestroyed(PortInterface* port) {
721 port->SignalDestroyed.connect(this, &PortTest::OnDestroyed);
722 }
723
724 void OnDestroyed(PortInterface* port) {
725 destroyed_ = true;
726 }
727 bool destroyed() const { return destroyed_; }
728
729 rtc::BasicPacketSocketFactory* nat_socket_factory1() {
730 return &nat_socket_factory1_;
731 }
732
733 private:
734 rtc::Thread* main_;
735 rtc::scoped_ptr<rtc::PhysicalSocketServer> pss_;
736 rtc::scoped_ptr<rtc::VirtualSocketServer> ss_;
737 rtc::SocketServerScope ss_scope_;
738 rtc::Network network_;
739 rtc::BasicPacketSocketFactory socket_factory_;
740 rtc::scoped_ptr<rtc::NATServer> nat_server1_;
741 rtc::scoped_ptr<rtc::NATServer> nat_server2_;
742 rtc::NATSocketFactory nat_factory1_;
743 rtc::NATSocketFactory nat_factory2_;
744 rtc::BasicPacketSocketFactory nat_socket_factory1_;
745 rtc::BasicPacketSocketFactory nat_socket_factory2_;
746 scoped_ptr<TestStunServer> stun_server_;
747 TestTurnServer turn_server_;
748 TestRelayServer relay_server_;
749 std::string username_;
750 std::string password_;
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000751 bool role_conflict_;
752 bool destroyed_;
753};
754
755void PortTest::TestConnectivity(const char* name1, Port* port1,
756 const char* name2, Port* port2,
757 bool accept, bool same_addr1,
758 bool same_addr2, bool possible) {
759 LOG(LS_INFO) << "Test: " << name1 << " to " << name2 << ": ";
760 port1->set_component(cricket::ICE_CANDIDATE_COMPONENT_DEFAULT);
761 port2->set_component(cricket::ICE_CANDIDATE_COMPONENT_DEFAULT);
762
763 // Set up channels and ensure both ports will be deleted.
764 TestChannel ch1(port1, port2);
765 TestChannel ch2(port2, port1);
766 EXPECT_EQ(0, ch1.complete_count());
767 EXPECT_EQ(0, ch2.complete_count());
768
769 // Acquire addresses.
770 ch1.Start();
771 ch2.Start();
772 ASSERT_EQ_WAIT(1, ch1.complete_count(), kTimeout);
773 ASSERT_EQ_WAIT(1, ch2.complete_count(), kTimeout);
774
775 // Send a ping from src to dst. This may or may not make it.
776 ch1.CreateConnection();
777 ASSERT_TRUE(ch1.conn() != NULL);
778 EXPECT_TRUE_WAIT(ch1.conn()->connected(), kTimeout); // for TCP connect
779 ch1.Ping();
780 WAIT(!ch2.remote_address().IsNil(), kTimeout);
781
782 if (accept) {
783 // We are able to send a ping from src to dst. This is the case when
784 // sending to UDP ports and cone NATs.
785 EXPECT_TRUE(ch1.remote_address().IsNil());
786 EXPECT_EQ(ch2.remote_fragment(), port1->username_fragment());
787
788 // Ensure the ping came from the same address used for src.
789 // This is the case unless the source NAT was symmetric.
790 if (same_addr1) EXPECT_EQ(ch2.remote_address(), GetAddress(port1));
791 EXPECT_TRUE(same_addr2);
792
793 // Send a ping from dst to src.
794 ch2.AcceptConnection();
795 ASSERT_TRUE(ch2.conn() != NULL);
796 ch2.Ping();
797 EXPECT_EQ_WAIT(Connection::STATE_WRITABLE, ch2.conn()->write_state(),
798 kTimeout);
799 } else {
800 // We can't send a ping from src to dst, so flip it around. This will happen
801 // when the destination NAT is addr/port restricted or symmetric.
802 EXPECT_TRUE(ch1.remote_address().IsNil());
803 EXPECT_TRUE(ch2.remote_address().IsNil());
804
805 // Send a ping from dst to src. Again, this may or may not make it.
806 ch2.CreateConnection();
807 ASSERT_TRUE(ch2.conn() != NULL);
808 ch2.Ping();
809 WAIT(ch2.conn()->write_state() == Connection::STATE_WRITABLE, kTimeout);
810
811 if (same_addr1 && same_addr2) {
812 // The new ping got back to the source.
813 EXPECT_EQ(Connection::STATE_READABLE, ch1.conn()->read_state());
814 EXPECT_EQ(Connection::STATE_WRITABLE, ch2.conn()->write_state());
815
816 // First connection may not be writable if the first ping did not get
817 // through. So we will have to do another.
818 if (ch1.conn()->write_state() == Connection::STATE_WRITE_INIT) {
819 ch1.Ping();
820 EXPECT_EQ_WAIT(Connection::STATE_WRITABLE, ch1.conn()->write_state(),
821 kTimeout);
822 }
823 } else if (!same_addr1 && possible) {
824 // The new ping went to the candidate address, but that address was bad.
825 // This will happen when the source NAT is symmetric.
826 EXPECT_TRUE(ch1.remote_address().IsNil());
827 EXPECT_TRUE(ch2.remote_address().IsNil());
828
829 // However, since we have now sent a ping to the source IP, we should be
830 // able to get a ping from it. This gives us the real source address.
831 ch1.Ping();
832 EXPECT_TRUE_WAIT(!ch2.remote_address().IsNil(), kTimeout);
833 EXPECT_EQ(Connection::STATE_READ_INIT, ch2.conn()->read_state());
834 EXPECT_TRUE(ch1.remote_address().IsNil());
835
836 // Pick up the actual address and establish the connection.
837 ch2.AcceptConnection();
838 ASSERT_TRUE(ch2.conn() != NULL);
839 ch2.Ping();
840 EXPECT_EQ_WAIT(Connection::STATE_WRITABLE, ch2.conn()->write_state(),
841 kTimeout);
842 } else if (!same_addr2 && possible) {
843 // The new ping came in, but from an unexpected address. This will happen
844 // when the destination NAT is symmetric.
845 EXPECT_FALSE(ch1.remote_address().IsNil());
846 EXPECT_EQ(Connection::STATE_READ_INIT, ch1.conn()->read_state());
847
848 // Update our address and complete the connection.
849 ch1.AcceptConnection();
850 ch1.Ping();
851 EXPECT_EQ_WAIT(Connection::STATE_WRITABLE, ch1.conn()->write_state(),
852 kTimeout);
853 } else { // (!possible)
854 // There should be s no way for the pings to reach each other. Check it.
855 EXPECT_TRUE(ch1.remote_address().IsNil());
856 EXPECT_TRUE(ch2.remote_address().IsNil());
857 ch1.Ping();
858 WAIT(!ch2.remote_address().IsNil(), kTimeout);
859 EXPECT_TRUE(ch1.remote_address().IsNil());
860 EXPECT_TRUE(ch2.remote_address().IsNil());
861 }
862 }
863
864 // Everything should be good, unless we know the situation is impossible.
865 ASSERT_TRUE(ch1.conn() != NULL);
866 ASSERT_TRUE(ch2.conn() != NULL);
867 if (possible) {
868 EXPECT_EQ(Connection::STATE_READABLE, ch1.conn()->read_state());
869 EXPECT_EQ(Connection::STATE_WRITABLE, ch1.conn()->write_state());
870 EXPECT_EQ(Connection::STATE_READABLE, ch2.conn()->read_state());
871 EXPECT_EQ(Connection::STATE_WRITABLE, ch2.conn()->write_state());
872 } else {
873 EXPECT_NE(Connection::STATE_READABLE, ch1.conn()->read_state());
874 EXPECT_NE(Connection::STATE_WRITABLE, ch1.conn()->write_state());
875 EXPECT_NE(Connection::STATE_READABLE, ch2.conn()->read_state());
876 EXPECT_NE(Connection::STATE_WRITABLE, ch2.conn()->write_state());
877 }
878
879 // Tear down and ensure that goes smoothly.
880 ch1.Stop();
881 ch2.Stop();
882 EXPECT_TRUE_WAIT(ch1.conn() == NULL, kTimeout);
883 EXPECT_TRUE_WAIT(ch2.conn() == NULL, kTimeout);
884}
885
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000886class FakePacketSocketFactory : public rtc::PacketSocketFactory {
887 public:
888 FakePacketSocketFactory()
889 : next_udp_socket_(NULL),
890 next_server_tcp_socket_(NULL),
891 next_client_tcp_socket_(NULL) {
892 }
pkasting@chromium.org332331f2014-11-06 20:19:22 +0000893 ~FakePacketSocketFactory() override { }
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000894
pkasting@chromium.org332331f2014-11-06 20:19:22 +0000895 AsyncPacketSocket* CreateUdpSocket(const SocketAddress& address,
896 uint16 min_port,
897 uint16 max_port) override {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000898 EXPECT_TRUE(next_udp_socket_ != NULL);
899 AsyncPacketSocket* result = next_udp_socket_;
900 next_udp_socket_ = NULL;
901 return result;
902 }
903
pkasting@chromium.org332331f2014-11-06 20:19:22 +0000904 AsyncPacketSocket* CreateServerTcpSocket(const SocketAddress& local_address,
905 uint16 min_port,
906 uint16 max_port,
907 int opts) override {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000908 EXPECT_TRUE(next_server_tcp_socket_ != NULL);
909 AsyncPacketSocket* result = next_server_tcp_socket_;
910 next_server_tcp_socket_ = NULL;
911 return result;
912 }
913
914 // TODO: |proxy_info| and |user_agent| should be set
915 // per-factory and not when socket is created.
pkasting@chromium.org332331f2014-11-06 20:19:22 +0000916 AsyncPacketSocket* CreateClientTcpSocket(const SocketAddress& local_address,
917 const SocketAddress& remote_address,
918 const rtc::ProxyInfo& proxy_info,
919 const std::string& user_agent,
920 int opts) override {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +0000921 EXPECT_TRUE(next_client_tcp_socket_ != NULL);
922 AsyncPacketSocket* result = next_client_tcp_socket_;
923 next_client_tcp_socket_ = NULL;
924 return result;
925 }
926
927 void set_next_udp_socket(AsyncPacketSocket* next_udp_socket) {
928 next_udp_socket_ = next_udp_socket;
929 }
930 void set_next_server_tcp_socket(AsyncPacketSocket* next_server_tcp_socket) {
931 next_server_tcp_socket_ = next_server_tcp_socket;
932 }
933 void set_next_client_tcp_socket(AsyncPacketSocket* next_client_tcp_socket) {
934 next_client_tcp_socket_ = next_client_tcp_socket;
935 }
936 rtc::AsyncResolverInterface* CreateAsyncResolver() {
937 return NULL;
938 }
939
940 private:
941 AsyncPacketSocket* next_udp_socket_;
942 AsyncPacketSocket* next_server_tcp_socket_;
943 AsyncPacketSocket* next_client_tcp_socket_;
944};
945
946class FakeAsyncPacketSocket : public AsyncPacketSocket {
947 public:
948 // Returns current local address. Address may be set to NULL if the
949 // socket is not bound yet (GetState() returns STATE_BINDING).
950 virtual SocketAddress GetLocalAddress() const {
951 return SocketAddress();
952 }
953
954 // Returns remote address. Returns zeroes if this is not a client TCP socket.
955 virtual SocketAddress GetRemoteAddress() const {
956 return SocketAddress();
957 }
958
959 // Send a packet.
960 virtual int Send(const void *pv, size_t cb,
961 const rtc::PacketOptions& options) {
962 return static_cast<int>(cb);
963 }
964 virtual int SendTo(const void *pv, size_t cb, const SocketAddress& addr,
965 const rtc::PacketOptions& options) {
966 return static_cast<int>(cb);
967 }
968 virtual int Close() {
969 return 0;
970 }
971
972 virtual State GetState() const { return state_; }
973 virtual int GetOption(Socket::Option opt, int* value) { return 0; }
974 virtual int SetOption(Socket::Option opt, int value) { return 0; }
975 virtual int GetError() const { return 0; }
976 virtual void SetError(int error) { }
977
978 void set_state(State state) { state_ = state; }
979
980 private:
981 State state_;
982};
983
984// Local -> XXXX
985TEST_F(PortTest, TestLocalToLocal) {
986 TestLocalToLocal();
987}
988
989TEST_F(PortTest, TestLocalToConeNat) {
990 TestLocalToStun(NAT_OPEN_CONE);
991}
992
993TEST_F(PortTest, TestLocalToARNat) {
994 TestLocalToStun(NAT_ADDR_RESTRICTED);
995}
996
997TEST_F(PortTest, TestLocalToPRNat) {
998 TestLocalToStun(NAT_PORT_RESTRICTED);
999}
1000
1001TEST_F(PortTest, TestLocalToSymNat) {
1002 TestLocalToStun(NAT_SYMMETRIC);
1003}
1004
1005// Flaky: https://code.google.com/p/webrtc/issues/detail?id=3316.
1006TEST_F(PortTest, DISABLED_TestLocalToTurn) {
1007 TestLocalToRelay(RELAY_TURN, PROTO_UDP);
1008}
1009
1010TEST_F(PortTest, TestLocalToGturn) {
1011 TestLocalToRelay(RELAY_GTURN, PROTO_UDP);
1012}
1013
1014TEST_F(PortTest, TestLocalToTcpGturn) {
1015 TestLocalToRelay(RELAY_GTURN, PROTO_TCP);
1016}
1017
1018TEST_F(PortTest, TestLocalToSslTcpGturn) {
1019 TestLocalToRelay(RELAY_GTURN, PROTO_SSLTCP);
1020}
1021
1022// Cone NAT -> XXXX
1023TEST_F(PortTest, TestConeNatToLocal) {
1024 TestStunToLocal(NAT_OPEN_CONE);
1025}
1026
1027TEST_F(PortTest, TestConeNatToConeNat) {
1028 TestStunToStun(NAT_OPEN_CONE, NAT_OPEN_CONE);
1029}
1030
1031TEST_F(PortTest, TestConeNatToARNat) {
1032 TestStunToStun(NAT_OPEN_CONE, NAT_ADDR_RESTRICTED);
1033}
1034
1035TEST_F(PortTest, TestConeNatToPRNat) {
1036 TestStunToStun(NAT_OPEN_CONE, NAT_PORT_RESTRICTED);
1037}
1038
1039TEST_F(PortTest, TestConeNatToSymNat) {
1040 TestStunToStun(NAT_OPEN_CONE, NAT_SYMMETRIC);
1041}
1042
1043TEST_F(PortTest, TestConeNatToTurn) {
1044 TestStunToRelay(NAT_OPEN_CONE, RELAY_TURN, PROTO_UDP);
1045}
1046
1047TEST_F(PortTest, TestConeNatToGturn) {
1048 TestStunToRelay(NAT_OPEN_CONE, RELAY_GTURN, PROTO_UDP);
1049}
1050
1051TEST_F(PortTest, TestConeNatToTcpGturn) {
1052 TestStunToRelay(NAT_OPEN_CONE, RELAY_GTURN, PROTO_TCP);
1053}
1054
1055// Address-restricted NAT -> XXXX
1056TEST_F(PortTest, TestARNatToLocal) {
1057 TestStunToLocal(NAT_ADDR_RESTRICTED);
1058}
1059
1060TEST_F(PortTest, TestARNatToConeNat) {
1061 TestStunToStun(NAT_ADDR_RESTRICTED, NAT_OPEN_CONE);
1062}
1063
1064TEST_F(PortTest, TestARNatToARNat) {
1065 TestStunToStun(NAT_ADDR_RESTRICTED, NAT_ADDR_RESTRICTED);
1066}
1067
1068TEST_F(PortTest, TestARNatToPRNat) {
1069 TestStunToStun(NAT_ADDR_RESTRICTED, NAT_PORT_RESTRICTED);
1070}
1071
1072TEST_F(PortTest, TestARNatToSymNat) {
1073 TestStunToStun(NAT_ADDR_RESTRICTED, NAT_SYMMETRIC);
1074}
1075
1076TEST_F(PortTest, TestARNatToTurn) {
1077 TestStunToRelay(NAT_ADDR_RESTRICTED, RELAY_TURN, PROTO_UDP);
1078}
1079
1080TEST_F(PortTest, TestARNatToGturn) {
1081 TestStunToRelay(NAT_ADDR_RESTRICTED, RELAY_GTURN, PROTO_UDP);
1082}
1083
1084TEST_F(PortTest, TestARNATNatToTcpGturn) {
1085 TestStunToRelay(NAT_ADDR_RESTRICTED, RELAY_GTURN, PROTO_TCP);
1086}
1087
1088// Port-restricted NAT -> XXXX
1089TEST_F(PortTest, TestPRNatToLocal) {
1090 TestStunToLocal(NAT_PORT_RESTRICTED);
1091}
1092
1093TEST_F(PortTest, TestPRNatToConeNat) {
1094 TestStunToStun(NAT_PORT_RESTRICTED, NAT_OPEN_CONE);
1095}
1096
1097TEST_F(PortTest, TestPRNatToARNat) {
1098 TestStunToStun(NAT_PORT_RESTRICTED, NAT_ADDR_RESTRICTED);
1099}
1100
1101TEST_F(PortTest, TestPRNatToPRNat) {
1102 TestStunToStun(NAT_PORT_RESTRICTED, NAT_PORT_RESTRICTED);
1103}
1104
1105TEST_F(PortTest, TestPRNatToSymNat) {
1106 // Will "fail"
1107 TestStunToStun(NAT_PORT_RESTRICTED, NAT_SYMMETRIC);
1108}
1109
1110TEST_F(PortTest, TestPRNatToTurn) {
1111 TestStunToRelay(NAT_PORT_RESTRICTED, RELAY_TURN, PROTO_UDP);
1112}
1113
1114TEST_F(PortTest, TestPRNatToGturn) {
1115 TestStunToRelay(NAT_PORT_RESTRICTED, RELAY_GTURN, PROTO_UDP);
1116}
1117
1118TEST_F(PortTest, TestPRNatToTcpGturn) {
1119 TestStunToRelay(NAT_PORT_RESTRICTED, RELAY_GTURN, PROTO_TCP);
1120}
1121
1122// Symmetric NAT -> XXXX
1123TEST_F(PortTest, TestSymNatToLocal) {
1124 TestStunToLocal(NAT_SYMMETRIC);
1125}
1126
1127TEST_F(PortTest, TestSymNatToConeNat) {
1128 TestStunToStun(NAT_SYMMETRIC, NAT_OPEN_CONE);
1129}
1130
1131TEST_F(PortTest, TestSymNatToARNat) {
1132 TestStunToStun(NAT_SYMMETRIC, NAT_ADDR_RESTRICTED);
1133}
1134
1135TEST_F(PortTest, TestSymNatToPRNat) {
1136 // Will "fail"
1137 TestStunToStun(NAT_SYMMETRIC, NAT_PORT_RESTRICTED);
1138}
1139
1140TEST_F(PortTest, TestSymNatToSymNat) {
1141 // Will "fail"
1142 TestStunToStun(NAT_SYMMETRIC, NAT_SYMMETRIC);
1143}
1144
1145TEST_F(PortTest, TestSymNatToTurn) {
1146 TestStunToRelay(NAT_SYMMETRIC, RELAY_TURN, PROTO_UDP);
1147}
1148
1149TEST_F(PortTest, TestSymNatToGturn) {
1150 TestStunToRelay(NAT_SYMMETRIC, RELAY_GTURN, PROTO_UDP);
1151}
1152
1153TEST_F(PortTest, TestSymNatToTcpGturn) {
1154 TestStunToRelay(NAT_SYMMETRIC, RELAY_GTURN, PROTO_TCP);
1155}
1156
1157// Outbound TCP -> XXXX
1158TEST_F(PortTest, TestTcpToTcp) {
1159 TestTcpToTcp();
1160}
1161
Guo-wei Shiehbe508a12015-04-06 12:48:47 -07001162TEST_F(PortTest, TestTcpReconnectOnSendPacket) {
1163 TestTcpReconnect(false /* ping */, true /* send */);
1164}
1165
1166TEST_F(PortTest, TestTcpReconnectOnPing) {
1167 TestTcpReconnect(true /* ping */, false /* send */);
1168}
1169
1170TEST_F(PortTest, TestTcpReconnectTimeout) {
1171 TestTcpReconnect(false /* ping */, false /* send */);
1172}
1173
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001174/* TODO: Enable these once testrelayserver can accept external TCP.
1175TEST_F(PortTest, TestTcpToTcpRelay) {
1176 TestTcpToRelay(PROTO_TCP);
1177}
1178
1179TEST_F(PortTest, TestTcpToSslTcpRelay) {
1180 TestTcpToRelay(PROTO_SSLTCP);
1181}
1182*/
1183
1184// Outbound SSLTCP -> XXXX
1185/* TODO: Enable these once testrelayserver can accept external SSL.
1186TEST_F(PortTest, TestSslTcpToTcpRelay) {
1187 TestSslTcpToRelay(PROTO_TCP);
1188}
1189
1190TEST_F(PortTest, TestSslTcpToSslTcpRelay) {
1191 TestSslTcpToRelay(PROTO_SSLTCP);
1192}
1193*/
1194
1195// This test case verifies standard ICE features in STUN messages. Currently it
1196// verifies Message Integrity attribute in STUN messages and username in STUN
1197// binding request will have colon (":") between remote and local username.
Peter Thatcher2159b892015-08-21 20:46:05 -07001198TEST_F(PortTest, TestLocalToLocalStandard) {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001199 UDPPort* port1 = CreateUdpPort(kLocalAddr1);
1200 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
1201 port1->SetIceTiebreaker(kTiebreaker1);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001202 UDPPort* port2 = CreateUdpPort(kLocalAddr2);
1203 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
1204 port2->SetIceTiebreaker(kTiebreaker2);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001205 // Same parameters as TestLocalToLocal above.
1206 TestConnectivity("udp", port1, "udp", port2, true, true, true, true);
1207}
1208
1209// This test is trying to validate a successful and failure scenario in a
1210// loopback test when protocol is RFC5245. For success IceTiebreaker, username
1211// should remain equal to the request generated by the port and role of port
1212// must be in controlling.
Peter Thatcher2159b892015-08-21 20:46:05 -07001213TEST_F(PortTest, TestLoopbackCal) {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001214 rtc::scoped_ptr<TestPort> lport(
1215 CreateTestPort(kLocalAddr1, "lfrag", "lpass"));
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001216 lport->SetIceRole(cricket::ICEROLE_CONTROLLING);
1217 lport->SetIceTiebreaker(kTiebreaker1);
1218 lport->PrepareAddress();
1219 ASSERT_FALSE(lport->Candidates().empty());
1220 Connection* conn = lport->CreateConnection(lport->Candidates()[0],
1221 Port::ORIGIN_MESSAGE);
1222 conn->Ping(0);
1223
1224 ASSERT_TRUE_WAIT(lport->last_stun_msg() != NULL, 1000);
1225 IceMessage* msg = lport->last_stun_msg();
1226 EXPECT_EQ(STUN_BINDING_REQUEST, msg->type());
1227 conn->OnReadPacket(lport->last_stun_buf()->Data(),
1228 lport->last_stun_buf()->Length(),
1229 rtc::PacketTime());
1230 ASSERT_TRUE_WAIT(lport->last_stun_msg() != NULL, 1000);
1231 msg = lport->last_stun_msg();
1232 EXPECT_EQ(STUN_BINDING_RESPONSE, msg->type());
1233
1234 // If the tiebreaker value is different from port, we expect a error
1235 // response.
1236 lport->Reset();
1237 lport->AddCandidateAddress(kLocalAddr2);
1238 // Creating a different connection as |conn| is in STATE_READABLE.
1239 Connection* conn1 = lport->CreateConnection(lport->Candidates()[1],
1240 Port::ORIGIN_MESSAGE);
1241 conn1->Ping(0);
1242
1243 ASSERT_TRUE_WAIT(lport->last_stun_msg() != NULL, 1000);
1244 msg = lport->last_stun_msg();
1245 EXPECT_EQ(STUN_BINDING_REQUEST, msg->type());
1246 rtc::scoped_ptr<IceMessage> modified_req(
1247 CreateStunMessage(STUN_BINDING_REQUEST));
1248 const StunByteStringAttribute* username_attr = msg->GetByteString(
1249 STUN_ATTR_USERNAME);
1250 modified_req->AddAttribute(new StunByteStringAttribute(
1251 STUN_ATTR_USERNAME, username_attr->GetString()));
1252 // To make sure we receive error response, adding tiebreaker less than
1253 // what's present in request.
1254 modified_req->AddAttribute(new StunUInt64Attribute(
1255 STUN_ATTR_ICE_CONTROLLING, kTiebreaker1 - 1));
1256 modified_req->AddMessageIntegrity("lpass");
1257 modified_req->AddFingerprint();
1258
1259 lport->Reset();
1260 rtc::scoped_ptr<ByteBuffer> buf(new ByteBuffer());
1261 WriteStunMessage(modified_req.get(), buf.get());
1262 conn1->OnReadPacket(buf->Data(), buf->Length(), rtc::PacketTime());
1263 ASSERT_TRUE_WAIT(lport->last_stun_msg() != NULL, 1000);
1264 msg = lport->last_stun_msg();
1265 EXPECT_EQ(STUN_BINDING_ERROR_RESPONSE, msg->type());
1266}
1267
1268// This test verifies role conflict signal is received when there is
1269// conflict in the role. In this case both ports are in controlling and
1270// |rport| has higher tiebreaker value than |lport|. Since |lport| has lower
1271// value of tiebreaker, when it receives ping request from |rport| it will
1272// send role conflict signal.
1273TEST_F(PortTest, TestIceRoleConflict) {
1274 rtc::scoped_ptr<TestPort> lport(
1275 CreateTestPort(kLocalAddr1, "lfrag", "lpass"));
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001276 lport->SetIceRole(cricket::ICEROLE_CONTROLLING);
1277 lport->SetIceTiebreaker(kTiebreaker1);
1278 rtc::scoped_ptr<TestPort> rport(
1279 CreateTestPort(kLocalAddr2, "rfrag", "rpass"));
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001280 rport->SetIceRole(cricket::ICEROLE_CONTROLLING);
1281 rport->SetIceTiebreaker(kTiebreaker2);
1282
1283 lport->PrepareAddress();
1284 rport->PrepareAddress();
1285 ASSERT_FALSE(lport->Candidates().empty());
1286 ASSERT_FALSE(rport->Candidates().empty());
1287 Connection* lconn = lport->CreateConnection(rport->Candidates()[0],
1288 Port::ORIGIN_MESSAGE);
1289 Connection* rconn = rport->CreateConnection(lport->Candidates()[0],
1290 Port::ORIGIN_MESSAGE);
1291 rconn->Ping(0);
1292
1293 ASSERT_TRUE_WAIT(rport->last_stun_msg() != NULL, 1000);
1294 IceMessage* msg = rport->last_stun_msg();
1295 EXPECT_EQ(STUN_BINDING_REQUEST, msg->type());
1296 // Send rport binding request to lport.
1297 lconn->OnReadPacket(rport->last_stun_buf()->Data(),
1298 rport->last_stun_buf()->Length(),
1299 rtc::PacketTime());
1300
1301 ASSERT_TRUE_WAIT(lport->last_stun_msg() != NULL, 1000);
1302 EXPECT_EQ(STUN_BINDING_RESPONSE, lport->last_stun_msg()->type());
1303 EXPECT_TRUE(role_conflict());
1304}
1305
1306TEST_F(PortTest, TestTcpNoDelay) {
1307 TCPPort* port1 = CreateTcpPort(kLocalAddr1);
Peter Thatcher2159b892015-08-21 20:46:05 -07001308 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001309 int option_value = -1;
1310 int success = port1->GetOption(rtc::Socket::OPT_NODELAY,
1311 &option_value);
1312 ASSERT_EQ(0, success); // GetOption() should complete successfully w/ 0
1313 ASSERT_EQ(1, option_value);
1314 delete port1;
1315}
1316
1317TEST_F(PortTest, TestDelayedBindingUdp) {
1318 FakeAsyncPacketSocket *socket = new FakeAsyncPacketSocket();
1319 FakePacketSocketFactory socket_factory;
1320
1321 socket_factory.set_next_udp_socket(socket);
1322 scoped_ptr<UDPPort> port(
1323 CreateUdpPort(kLocalAddr1, &socket_factory));
1324
1325 socket->set_state(AsyncPacketSocket::STATE_BINDING);
1326 port->PrepareAddress();
1327
1328 EXPECT_EQ(0U, port->Candidates().size());
1329 socket->SignalAddressReady(socket, kLocalAddr2);
1330
1331 EXPECT_EQ(1U, port->Candidates().size());
1332}
1333
1334TEST_F(PortTest, TestDelayedBindingTcp) {
1335 FakeAsyncPacketSocket *socket = new FakeAsyncPacketSocket();
1336 FakePacketSocketFactory socket_factory;
1337
1338 socket_factory.set_next_server_tcp_socket(socket);
1339 scoped_ptr<TCPPort> port(
1340 CreateTcpPort(kLocalAddr1, &socket_factory));
1341
1342 socket->set_state(AsyncPacketSocket::STATE_BINDING);
1343 port->PrepareAddress();
1344
1345 EXPECT_EQ(0U, port->Candidates().size());
1346 socket->SignalAddressReady(socket, kLocalAddr2);
1347
1348 EXPECT_EQ(1U, port->Candidates().size());
1349}
1350
1351void PortTest::TestCrossFamilyPorts(int type) {
1352 FakePacketSocketFactory factory;
1353 scoped_ptr<Port> ports[4];
1354 SocketAddress addresses[4] = {SocketAddress("192.168.1.3", 0),
1355 SocketAddress("192.168.1.4", 0),
1356 SocketAddress("2001:db8::1", 0),
1357 SocketAddress("2001:db8::2", 0)};
1358 for (int i = 0; i < 4; i++) {
1359 FakeAsyncPacketSocket *socket = new FakeAsyncPacketSocket();
1360 if (type == SOCK_DGRAM) {
1361 factory.set_next_udp_socket(socket);
1362 ports[i].reset(CreateUdpPort(addresses[i], &factory));
1363 } else if (type == SOCK_STREAM) {
1364 factory.set_next_server_tcp_socket(socket);
1365 ports[i].reset(CreateTcpPort(addresses[i], &factory));
1366 }
1367 socket->set_state(AsyncPacketSocket::STATE_BINDING);
1368 socket->SignalAddressReady(socket, addresses[i]);
1369 ports[i]->PrepareAddress();
1370 }
1371
1372 // IPv4 Port, connects to IPv6 candidate and then to IPv4 candidate.
1373 if (type == SOCK_STREAM) {
1374 FakeAsyncPacketSocket* clientsocket = new FakeAsyncPacketSocket();
1375 factory.set_next_client_tcp_socket(clientsocket);
1376 }
1377 Connection* c = ports[0]->CreateConnection(GetCandidate(ports[2].get()),
1378 Port::ORIGIN_MESSAGE);
1379 EXPECT_TRUE(NULL == c);
1380 EXPECT_EQ(0U, ports[0]->connections().size());
1381 c = ports[0]->CreateConnection(GetCandidate(ports[1].get()),
1382 Port::ORIGIN_MESSAGE);
1383 EXPECT_FALSE(NULL == c);
1384 EXPECT_EQ(1U, ports[0]->connections().size());
1385
1386 // IPv6 Port, connects to IPv4 candidate and to IPv6 candidate.
1387 if (type == SOCK_STREAM) {
1388 FakeAsyncPacketSocket* clientsocket = new FakeAsyncPacketSocket();
1389 factory.set_next_client_tcp_socket(clientsocket);
1390 }
1391 c = ports[2]->CreateConnection(GetCandidate(ports[0].get()),
1392 Port::ORIGIN_MESSAGE);
1393 EXPECT_TRUE(NULL == c);
1394 EXPECT_EQ(0U, ports[2]->connections().size());
1395 c = ports[2]->CreateConnection(GetCandidate(ports[3].get()),
1396 Port::ORIGIN_MESSAGE);
1397 EXPECT_FALSE(NULL == c);
1398 EXPECT_EQ(1U, ports[2]->connections().size());
1399}
1400
1401TEST_F(PortTest, TestSkipCrossFamilyTcp) {
1402 TestCrossFamilyPorts(SOCK_STREAM);
1403}
1404
1405TEST_F(PortTest, TestSkipCrossFamilyUdp) {
1406 TestCrossFamilyPorts(SOCK_DGRAM);
1407}
1408
Peter Thatcherb8b01432015-07-07 16:45:53 -07001409void PortTest::ExpectPortsCanConnect(bool can_connect, Port* p1, Port* p2) {
1410 Connection* c = p1->CreateConnection(GetCandidate(p2),
1411 Port::ORIGIN_MESSAGE);
1412 if (can_connect) {
1413 EXPECT_FALSE(NULL == c);
1414 EXPECT_EQ(1U, p1->connections().size());
1415 } else {
1416 EXPECT_TRUE(NULL == c);
1417 EXPECT_EQ(0U, p1->connections().size());
1418 }
1419}
1420
1421TEST_F(PortTest, TestUdpV6CrossTypePorts) {
1422 FakePacketSocketFactory factory;
1423 scoped_ptr<Port> ports[4];
1424 SocketAddress addresses[4] = {SocketAddress("2001:db8::1", 0),
1425 SocketAddress("fe80::1", 0),
1426 SocketAddress("fe80::2", 0),
1427 SocketAddress("::1", 0)};
1428 for (int i = 0; i < 4; i++) {
1429 FakeAsyncPacketSocket *socket = new FakeAsyncPacketSocket();
1430 factory.set_next_udp_socket(socket);
1431 ports[i].reset(CreateUdpPort(addresses[i], &factory));
1432 socket->set_state(AsyncPacketSocket::STATE_BINDING);
1433 socket->SignalAddressReady(socket, addresses[i]);
1434 ports[i]->PrepareAddress();
1435 }
1436
1437 Port* standard = ports[0].get();
1438 Port* link_local1 = ports[1].get();
1439 Port* link_local2 = ports[2].get();
1440 Port* localhost = ports[3].get();
1441
1442 ExpectPortsCanConnect(false, link_local1, standard);
1443 ExpectPortsCanConnect(false, standard, link_local1);
1444 ExpectPortsCanConnect(false, link_local1, localhost);
1445 ExpectPortsCanConnect(false, localhost, link_local1);
1446
1447 ExpectPortsCanConnect(true, link_local1, link_local2);
1448 ExpectPortsCanConnect(true, localhost, standard);
1449 ExpectPortsCanConnect(true, standard, localhost);
1450}
1451
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001452// This test verifies DSCP value set through SetOption interface can be
1453// get through DefaultDscpValue.
1454TEST_F(PortTest, TestDefaultDscpValue) {
1455 int dscp;
1456 rtc::scoped_ptr<UDPPort> udpport(CreateUdpPort(kLocalAddr1));
1457 EXPECT_EQ(0, udpport->SetOption(rtc::Socket::OPT_DSCP,
1458 rtc::DSCP_CS6));
1459 EXPECT_EQ(0, udpport->GetOption(rtc::Socket::OPT_DSCP, &dscp));
1460 rtc::scoped_ptr<TCPPort> tcpport(CreateTcpPort(kLocalAddr1));
1461 EXPECT_EQ(0, tcpport->SetOption(rtc::Socket::OPT_DSCP,
1462 rtc::DSCP_AF31));
1463 EXPECT_EQ(0, tcpport->GetOption(rtc::Socket::OPT_DSCP, &dscp));
1464 EXPECT_EQ(rtc::DSCP_AF31, dscp);
1465 rtc::scoped_ptr<StunPort> stunport(
1466 CreateStunPort(kLocalAddr1, nat_socket_factory1()));
1467 EXPECT_EQ(0, stunport->SetOption(rtc::Socket::OPT_DSCP,
1468 rtc::DSCP_AF41));
1469 EXPECT_EQ(0, stunport->GetOption(rtc::Socket::OPT_DSCP, &dscp));
1470 EXPECT_EQ(rtc::DSCP_AF41, dscp);
1471 rtc::scoped_ptr<TurnPort> turnport1(CreateTurnPort(
1472 kLocalAddr1, nat_socket_factory1(), PROTO_UDP, PROTO_UDP));
1473 // Socket is created in PrepareAddress.
1474 turnport1->PrepareAddress();
1475 EXPECT_EQ(0, turnport1->SetOption(rtc::Socket::OPT_DSCP,
1476 rtc::DSCP_CS7));
1477 EXPECT_EQ(0, turnport1->GetOption(rtc::Socket::OPT_DSCP, &dscp));
1478 EXPECT_EQ(rtc::DSCP_CS7, dscp);
1479 // This will verify correct value returned without the socket.
1480 rtc::scoped_ptr<TurnPort> turnport2(CreateTurnPort(
1481 kLocalAddr1, nat_socket_factory1(), PROTO_UDP, PROTO_UDP));
1482 EXPECT_EQ(0, turnport2->SetOption(rtc::Socket::OPT_DSCP,
1483 rtc::DSCP_CS6));
1484 EXPECT_EQ(0, turnport2->GetOption(rtc::Socket::OPT_DSCP, &dscp));
1485 EXPECT_EQ(rtc::DSCP_CS6, dscp);
1486}
1487
Peter Thatcher2159b892015-08-21 20:46:05 -07001488// Test sending STUN messages.
1489TEST_F(PortTest, TestSendStunMessage) {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001490 rtc::scoped_ptr<TestPort> lport(
1491 CreateTestPort(kLocalAddr1, "lfrag", "lpass"));
1492 rtc::scoped_ptr<TestPort> rport(
1493 CreateTestPort(kLocalAddr2, "rfrag", "rpass"));
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001494 lport->SetIceRole(cricket::ICEROLE_CONTROLLING);
1495 lport->SetIceTiebreaker(kTiebreaker1);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001496 rport->SetIceRole(cricket::ICEROLE_CONTROLLED);
1497 rport->SetIceTiebreaker(kTiebreaker2);
1498
1499 // Send a fake ping from lport to rport.
1500 lport->PrepareAddress();
1501 rport->PrepareAddress();
1502 ASSERT_FALSE(rport->Candidates().empty());
1503 Connection* lconn = lport->CreateConnection(
1504 rport->Candidates()[0], Port::ORIGIN_MESSAGE);
1505 Connection* rconn = rport->CreateConnection(
1506 lport->Candidates()[0], Port::ORIGIN_MESSAGE);
1507 lconn->Ping(0);
1508
1509 // Check that it's a proper BINDING-REQUEST.
1510 ASSERT_TRUE_WAIT(lport->last_stun_msg() != NULL, 1000);
1511 IceMessage* msg = lport->last_stun_msg();
1512 EXPECT_EQ(STUN_BINDING_REQUEST, msg->type());
1513 EXPECT_FALSE(msg->IsLegacy());
1514 const StunByteStringAttribute* username_attr =
1515 msg->GetByteString(STUN_ATTR_USERNAME);
1516 ASSERT_TRUE(username_attr != NULL);
1517 const StunUInt32Attribute* priority_attr = msg->GetUInt32(STUN_ATTR_PRIORITY);
1518 ASSERT_TRUE(priority_attr != NULL);
1519 EXPECT_EQ(kDefaultPrflxPriority, priority_attr->value());
1520 EXPECT_EQ("rfrag:lfrag", username_attr->GetString());
1521 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_MESSAGE_INTEGRITY) != NULL);
1522 EXPECT_TRUE(StunMessage::ValidateMessageIntegrity(
1523 lport->last_stun_buf()->Data(), lport->last_stun_buf()->Length(),
1524 "rpass"));
1525 const StunUInt64Attribute* ice_controlling_attr =
1526 msg->GetUInt64(STUN_ATTR_ICE_CONTROLLING);
1527 ASSERT_TRUE(ice_controlling_attr != NULL);
1528 EXPECT_EQ(lport->IceTiebreaker(), ice_controlling_attr->value());
1529 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_ICE_CONTROLLED) == NULL);
1530 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_USE_CANDIDATE) != NULL);
1531 EXPECT_TRUE(msg->GetUInt32(STUN_ATTR_FINGERPRINT) != NULL);
1532 EXPECT_TRUE(StunMessage::ValidateFingerprint(
1533 lport->last_stun_buf()->Data(), lport->last_stun_buf()->Length()));
1534
1535 // Request should not include ping count.
1536 ASSERT_TRUE(msg->GetUInt32(STUN_ATTR_RETRANSMIT_COUNT) == NULL);
1537
1538 // Save a copy of the BINDING-REQUEST for use below.
1539 rtc::scoped_ptr<IceMessage> request(CopyStunMessage(msg));
1540
1541 // Respond with a BINDING-RESPONSE.
1542 rport->SendBindingResponse(request.get(), lport->Candidates()[0].address());
1543 msg = rport->last_stun_msg();
1544 ASSERT_TRUE(msg != NULL);
1545 EXPECT_EQ(STUN_BINDING_RESPONSE, msg->type());
1546
1547
1548 EXPECT_FALSE(msg->IsLegacy());
1549 const StunAddressAttribute* addr_attr = msg->GetAddress(
1550 STUN_ATTR_XOR_MAPPED_ADDRESS);
1551 ASSERT_TRUE(addr_attr != NULL);
1552 EXPECT_EQ(lport->Candidates()[0].address(), addr_attr->GetAddress());
1553 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_MESSAGE_INTEGRITY) != NULL);
1554 EXPECT_TRUE(StunMessage::ValidateMessageIntegrity(
1555 rport->last_stun_buf()->Data(), rport->last_stun_buf()->Length(),
1556 "rpass"));
1557 EXPECT_TRUE(msg->GetUInt32(STUN_ATTR_FINGERPRINT) != NULL);
1558 EXPECT_TRUE(StunMessage::ValidateFingerprint(
1559 lport->last_stun_buf()->Data(), lport->last_stun_buf()->Length()));
1560 // No USERNAME or PRIORITY in ICE responses.
1561 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_USERNAME) == NULL);
1562 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_PRIORITY) == NULL);
1563 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_MAPPED_ADDRESS) == NULL);
1564 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_ICE_CONTROLLING) == NULL);
1565 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_ICE_CONTROLLED) == NULL);
1566 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_USE_CANDIDATE) == NULL);
1567
1568 // Response should not include ping count.
1569 ASSERT_TRUE(msg->GetUInt32(STUN_ATTR_RETRANSMIT_COUNT) == NULL);
1570
1571 // Respond with a BINDING-ERROR-RESPONSE. This wouldn't happen in real life,
1572 // but we can do it here.
1573 rport->SendBindingErrorResponse(request.get(),
1574 lport->Candidates()[0].address(),
1575 STUN_ERROR_SERVER_ERROR,
1576 STUN_ERROR_REASON_SERVER_ERROR);
1577 msg = rport->last_stun_msg();
1578 ASSERT_TRUE(msg != NULL);
1579 EXPECT_EQ(STUN_BINDING_ERROR_RESPONSE, msg->type());
1580 EXPECT_FALSE(msg->IsLegacy());
1581 const StunErrorCodeAttribute* error_attr = msg->GetErrorCode();
1582 ASSERT_TRUE(error_attr != NULL);
1583 EXPECT_EQ(STUN_ERROR_SERVER_ERROR, error_attr->code());
1584 EXPECT_EQ(std::string(STUN_ERROR_REASON_SERVER_ERROR), error_attr->reason());
1585 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_MESSAGE_INTEGRITY) != NULL);
1586 EXPECT_TRUE(StunMessage::ValidateMessageIntegrity(
1587 rport->last_stun_buf()->Data(), rport->last_stun_buf()->Length(),
1588 "rpass"));
1589 EXPECT_TRUE(msg->GetUInt32(STUN_ATTR_FINGERPRINT) != NULL);
1590 EXPECT_TRUE(StunMessage::ValidateFingerprint(
1591 lport->last_stun_buf()->Data(), lport->last_stun_buf()->Length()));
1592 // No USERNAME with ICE.
1593 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_USERNAME) == NULL);
1594 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_PRIORITY) == NULL);
1595
1596 // Testing STUN binding requests from rport --> lport, having ICE_CONTROLLED
1597 // and (incremented) RETRANSMIT_COUNT attributes.
1598 rport->Reset();
1599 rport->set_send_retransmit_count_attribute(true);
1600 rconn->Ping(0);
1601 rconn->Ping(0);
1602 rconn->Ping(0);
1603 ASSERT_TRUE_WAIT(rport->last_stun_msg() != NULL, 1000);
1604 msg = rport->last_stun_msg();
1605 EXPECT_EQ(STUN_BINDING_REQUEST, msg->type());
1606 const StunUInt64Attribute* ice_controlled_attr =
1607 msg->GetUInt64(STUN_ATTR_ICE_CONTROLLED);
1608 ASSERT_TRUE(ice_controlled_attr != NULL);
1609 EXPECT_EQ(rport->IceTiebreaker(), ice_controlled_attr->value());
1610 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_USE_CANDIDATE) == NULL);
1611
1612 // Request should include ping count.
1613 const StunUInt32Attribute* retransmit_attr =
1614 msg->GetUInt32(STUN_ATTR_RETRANSMIT_COUNT);
1615 ASSERT_TRUE(retransmit_attr != NULL);
1616 EXPECT_EQ(2U, retransmit_attr->value());
1617
1618 // Respond with a BINDING-RESPONSE.
1619 request.reset(CopyStunMessage(msg));
1620 lport->SendBindingResponse(request.get(), rport->Candidates()[0].address());
1621 msg = lport->last_stun_msg();
1622
1623 // Response should include same ping count.
1624 retransmit_attr = msg->GetUInt32(STUN_ATTR_RETRANSMIT_COUNT);
1625 ASSERT_TRUE(retransmit_attr != NULL);
1626 EXPECT_EQ(2U, retransmit_attr->value());
1627}
1628
1629TEST_F(PortTest, TestUseCandidateAttribute) {
1630 rtc::scoped_ptr<TestPort> lport(
1631 CreateTestPort(kLocalAddr1, "lfrag", "lpass"));
1632 rtc::scoped_ptr<TestPort> rport(
1633 CreateTestPort(kLocalAddr2, "rfrag", "rpass"));
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001634 lport->SetIceRole(cricket::ICEROLE_CONTROLLING);
1635 lport->SetIceTiebreaker(kTiebreaker1);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001636 rport->SetIceRole(cricket::ICEROLE_CONTROLLED);
1637 rport->SetIceTiebreaker(kTiebreaker2);
1638
1639 // Send a fake ping from lport to rport.
1640 lport->PrepareAddress();
1641 rport->PrepareAddress();
1642 ASSERT_FALSE(rport->Candidates().empty());
1643 Connection* lconn = lport->CreateConnection(
1644 rport->Candidates()[0], Port::ORIGIN_MESSAGE);
1645 lconn->Ping(0);
1646 ASSERT_TRUE_WAIT(lport->last_stun_msg() != NULL, 1000);
1647 IceMessage* msg = lport->last_stun_msg();
1648 const StunUInt64Attribute* ice_controlling_attr =
1649 msg->GetUInt64(STUN_ATTR_ICE_CONTROLLING);
1650 ASSERT_TRUE(ice_controlling_attr != NULL);
1651 const StunByteStringAttribute* use_candidate_attr = msg->GetByteString(
1652 STUN_ATTR_USE_CANDIDATE);
1653 ASSERT_TRUE(use_candidate_attr != NULL);
1654}
1655
Peter Thatcher2159b892015-08-21 20:46:05 -07001656// Test handling STUN messages.
1657TEST_F(PortTest, TestHandleStunMessage) {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001658 // Our port will act as the "remote" port.
1659 rtc::scoped_ptr<TestPort> port(
1660 CreateTestPort(kLocalAddr2, "rfrag", "rpass"));
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001661
1662 rtc::scoped_ptr<IceMessage> in_msg, out_msg;
1663 rtc::scoped_ptr<ByteBuffer> buf(new ByteBuffer());
1664 rtc::SocketAddress addr(kLocalAddr1);
1665 std::string username;
1666
1667 // BINDING-REQUEST from local to remote with valid ICE username,
1668 // MESSAGE-INTEGRITY, and FINGERPRINT.
1669 in_msg.reset(CreateStunMessageWithUsername(STUN_BINDING_REQUEST,
1670 "rfrag:lfrag"));
1671 in_msg->AddMessageIntegrity("rpass");
1672 in_msg->AddFingerprint();
1673 WriteStunMessage(in_msg.get(), buf.get());
1674 EXPECT_TRUE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1675 out_msg.accept(), &username));
1676 EXPECT_TRUE(out_msg.get() != NULL);
1677 EXPECT_EQ("lfrag", username);
1678
1679 // BINDING-RESPONSE without username, with MESSAGE-INTEGRITY and FINGERPRINT.
1680 in_msg.reset(CreateStunMessage(STUN_BINDING_RESPONSE));
1681 in_msg->AddAttribute(
1682 new StunXorAddressAttribute(STUN_ATTR_XOR_MAPPED_ADDRESS, kLocalAddr2));
1683 in_msg->AddMessageIntegrity("rpass");
1684 in_msg->AddFingerprint();
1685 WriteStunMessage(in_msg.get(), buf.get());
1686 EXPECT_TRUE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1687 out_msg.accept(), &username));
1688 EXPECT_TRUE(out_msg.get() != NULL);
1689 EXPECT_EQ("", username);
1690
1691 // BINDING-ERROR-RESPONSE without username, with error, M-I, and FINGERPRINT.
1692 in_msg.reset(CreateStunMessage(STUN_BINDING_ERROR_RESPONSE));
1693 in_msg->AddAttribute(new StunErrorCodeAttribute(STUN_ATTR_ERROR_CODE,
1694 STUN_ERROR_SERVER_ERROR, STUN_ERROR_REASON_SERVER_ERROR));
1695 in_msg->AddFingerprint();
1696 WriteStunMessage(in_msg.get(), buf.get());
1697 EXPECT_TRUE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1698 out_msg.accept(), &username));
1699 EXPECT_TRUE(out_msg.get() != NULL);
1700 EXPECT_EQ("", username);
1701 ASSERT_TRUE(out_msg->GetErrorCode() != NULL);
1702 EXPECT_EQ(STUN_ERROR_SERVER_ERROR, out_msg->GetErrorCode()->code());
1703 EXPECT_EQ(std::string(STUN_ERROR_REASON_SERVER_ERROR),
1704 out_msg->GetErrorCode()->reason());
1705}
1706
minyuel5bdafd42015-08-21 15:52:48 +02001707// Tests handling of ICE binding requests with missing or incorrect usernames.
Peter Thatcher2159b892015-08-21 20:46:05 -07001708TEST_F(PortTest, TestHandleStunMessageBadUsername) {
minyuel5bdafd42015-08-21 15:52:48 +02001709 rtc::scoped_ptr<TestPort> port(
1710 CreateTestPort(kLocalAddr2, "rfrag", "rpass"));
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001711
1712 rtc::scoped_ptr<IceMessage> in_msg, out_msg;
1713 rtc::scoped_ptr<ByteBuffer> buf(new ByteBuffer());
1714 rtc::SocketAddress addr(kLocalAddr1);
1715 std::string username;
1716
1717 // BINDING-REQUEST with no username.
1718 in_msg.reset(CreateStunMessage(STUN_BINDING_REQUEST));
1719 in_msg->AddMessageIntegrity("rpass");
1720 in_msg->AddFingerprint();
1721 WriteStunMessage(in_msg.get(), buf.get());
1722 EXPECT_TRUE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1723 out_msg.accept(), &username));
1724 EXPECT_TRUE(out_msg.get() == NULL);
1725 EXPECT_EQ("", username);
1726 EXPECT_EQ(STUN_ERROR_BAD_REQUEST, port->last_stun_error_code());
1727
1728 // BINDING-REQUEST with empty username.
1729 in_msg.reset(CreateStunMessageWithUsername(STUN_BINDING_REQUEST, ""));
1730 in_msg->AddMessageIntegrity("rpass");
1731 in_msg->AddFingerprint();
1732 WriteStunMessage(in_msg.get(), buf.get());
1733 EXPECT_TRUE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1734 out_msg.accept(), &username));
1735 EXPECT_TRUE(out_msg.get() == NULL);
1736 EXPECT_EQ("", username);
1737 EXPECT_EQ(STUN_ERROR_UNAUTHORIZED, port->last_stun_error_code());
1738
1739 // BINDING-REQUEST with too-short username.
1740 in_msg.reset(CreateStunMessageWithUsername(STUN_BINDING_REQUEST, "rfra"));
1741 in_msg->AddMessageIntegrity("rpass");
1742 in_msg->AddFingerprint();
1743 WriteStunMessage(in_msg.get(), buf.get());
1744 EXPECT_TRUE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1745 out_msg.accept(), &username));
1746 EXPECT_TRUE(out_msg.get() == NULL);
1747 EXPECT_EQ("", username);
1748 EXPECT_EQ(STUN_ERROR_UNAUTHORIZED, port->last_stun_error_code());
1749
1750 // BINDING-REQUEST with reversed username.
1751 in_msg.reset(CreateStunMessageWithUsername(STUN_BINDING_REQUEST,
1752 "lfrag:rfrag"));
1753 in_msg->AddMessageIntegrity("rpass");
1754 in_msg->AddFingerprint();
1755 WriteStunMessage(in_msg.get(), buf.get());
1756 EXPECT_TRUE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1757 out_msg.accept(), &username));
1758 EXPECT_TRUE(out_msg.get() == NULL);
1759 EXPECT_EQ("", username);
1760 EXPECT_EQ(STUN_ERROR_UNAUTHORIZED, port->last_stun_error_code());
1761
1762 // BINDING-REQUEST with garbage username.
1763 in_msg.reset(CreateStunMessageWithUsername(STUN_BINDING_REQUEST,
1764 "abcd:efgh"));
1765 in_msg->AddMessageIntegrity("rpass");
1766 in_msg->AddFingerprint();
1767 WriteStunMessage(in_msg.get(), buf.get());
1768 EXPECT_TRUE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1769 out_msg.accept(), &username));
1770 EXPECT_TRUE(out_msg.get() == NULL);
1771 EXPECT_EQ("", username);
1772 EXPECT_EQ(STUN_ERROR_UNAUTHORIZED, port->last_stun_error_code());
1773}
1774
Peter Thatcher2159b892015-08-21 20:46:05 -07001775// Test handling STUN messages with missing or malformed M-I.
1776TEST_F(PortTest, TestHandleStunMessageBadMessageIntegrity) {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001777 // Our port will act as the "remote" port.
1778 rtc::scoped_ptr<TestPort> port(
1779 CreateTestPort(kLocalAddr2, "rfrag", "rpass"));
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001780
1781 rtc::scoped_ptr<IceMessage> in_msg, out_msg;
1782 rtc::scoped_ptr<ByteBuffer> buf(new ByteBuffer());
1783 rtc::SocketAddress addr(kLocalAddr1);
1784 std::string username;
1785
1786 // BINDING-REQUEST from local to remote with valid ICE username and
1787 // FINGERPRINT, but no MESSAGE-INTEGRITY.
1788 in_msg.reset(CreateStunMessageWithUsername(STUN_BINDING_REQUEST,
1789 "rfrag:lfrag"));
1790 in_msg->AddFingerprint();
1791 WriteStunMessage(in_msg.get(), buf.get());
1792 EXPECT_TRUE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1793 out_msg.accept(), &username));
1794 EXPECT_TRUE(out_msg.get() == NULL);
1795 EXPECT_EQ("", username);
1796 EXPECT_EQ(STUN_ERROR_BAD_REQUEST, port->last_stun_error_code());
1797
1798 // BINDING-REQUEST from local to remote with valid ICE username and
1799 // FINGERPRINT, but invalid MESSAGE-INTEGRITY.
1800 in_msg.reset(CreateStunMessageWithUsername(STUN_BINDING_REQUEST,
1801 "rfrag:lfrag"));
1802 in_msg->AddMessageIntegrity("invalid");
1803 in_msg->AddFingerprint();
1804 WriteStunMessage(in_msg.get(), buf.get());
1805 EXPECT_TRUE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1806 out_msg.accept(), &username));
1807 EXPECT_TRUE(out_msg.get() == NULL);
1808 EXPECT_EQ("", username);
1809 EXPECT_EQ(STUN_ERROR_UNAUTHORIZED, port->last_stun_error_code());
1810
1811 // TODO: BINDING-RESPONSES and BINDING-ERROR-RESPONSES are checked
1812 // by the Connection, not the Port, since they require the remote username.
1813 // Change this test to pass in data via Connection::OnReadPacket instead.
1814}
1815
Peter Thatcher2159b892015-08-21 20:46:05 -07001816// Test handling STUN messages with missing or malformed FINGERPRINT.
1817TEST_F(PortTest, TestHandleStunMessageBadFingerprint) {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001818 // Our port will act as the "remote" port.
1819 rtc::scoped_ptr<TestPort> port(
1820 CreateTestPort(kLocalAddr2, "rfrag", "rpass"));
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001821
1822 rtc::scoped_ptr<IceMessage> in_msg, out_msg;
1823 rtc::scoped_ptr<ByteBuffer> buf(new ByteBuffer());
1824 rtc::SocketAddress addr(kLocalAddr1);
1825 std::string username;
1826
1827 // BINDING-REQUEST from local to remote with valid ICE username and
1828 // MESSAGE-INTEGRITY, but no FINGERPRINT; GetStunMessage should fail.
1829 in_msg.reset(CreateStunMessageWithUsername(STUN_BINDING_REQUEST,
1830 "rfrag:lfrag"));
1831 in_msg->AddMessageIntegrity("rpass");
1832 WriteStunMessage(in_msg.get(), buf.get());
1833 EXPECT_FALSE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1834 out_msg.accept(), &username));
1835 EXPECT_EQ(0, port->last_stun_error_code());
1836
1837 // Now, add a fingerprint, but munge the message so it's not valid.
1838 in_msg->AddFingerprint();
1839 in_msg->SetTransactionID("TESTTESTBADD");
1840 WriteStunMessage(in_msg.get(), buf.get());
1841 EXPECT_FALSE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1842 out_msg.accept(), &username));
1843 EXPECT_EQ(0, port->last_stun_error_code());
1844
1845 // Valid BINDING-RESPONSE, except no FINGERPRINT.
1846 in_msg.reset(CreateStunMessage(STUN_BINDING_RESPONSE));
1847 in_msg->AddAttribute(
1848 new StunXorAddressAttribute(STUN_ATTR_XOR_MAPPED_ADDRESS, kLocalAddr2));
1849 in_msg->AddMessageIntegrity("rpass");
1850 WriteStunMessage(in_msg.get(), buf.get());
1851 EXPECT_FALSE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1852 out_msg.accept(), &username));
1853 EXPECT_EQ(0, port->last_stun_error_code());
1854
1855 // Now, add a fingerprint, but munge the message so it's not valid.
1856 in_msg->AddFingerprint();
1857 in_msg->SetTransactionID("TESTTESTBADD");
1858 WriteStunMessage(in_msg.get(), buf.get());
1859 EXPECT_FALSE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1860 out_msg.accept(), &username));
1861 EXPECT_EQ(0, port->last_stun_error_code());
1862
1863 // Valid BINDING-ERROR-RESPONSE, except no FINGERPRINT.
1864 in_msg.reset(CreateStunMessage(STUN_BINDING_ERROR_RESPONSE));
1865 in_msg->AddAttribute(new StunErrorCodeAttribute(STUN_ATTR_ERROR_CODE,
1866 STUN_ERROR_SERVER_ERROR, STUN_ERROR_REASON_SERVER_ERROR));
1867 in_msg->AddMessageIntegrity("rpass");
1868 WriteStunMessage(in_msg.get(), buf.get());
1869 EXPECT_FALSE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1870 out_msg.accept(), &username));
1871 EXPECT_EQ(0, port->last_stun_error_code());
1872
1873 // Now, add a fingerprint, but munge the message so it's not valid.
1874 in_msg->AddFingerprint();
1875 in_msg->SetTransactionID("TESTTESTBADD");
1876 WriteStunMessage(in_msg.get(), buf.get());
1877 EXPECT_FALSE(port->GetStunMessage(buf->Data(), buf->Length(), addr,
1878 out_msg.accept(), &username));
1879 EXPECT_EQ(0, port->last_stun_error_code());
1880}
1881
Peter Thatcher2159b892015-08-21 20:46:05 -07001882// Test handling of STUN binding indication messages . STUN binding
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001883// indications are allowed only to the connection which is in read mode.
1884TEST_F(PortTest, TestHandleStunBindingIndication) {
1885 rtc::scoped_ptr<TestPort> lport(
1886 CreateTestPort(kLocalAddr2, "lfrag", "lpass"));
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001887 lport->SetIceRole(cricket::ICEROLE_CONTROLLING);
1888 lport->SetIceTiebreaker(kTiebreaker1);
1889
1890 // Verifying encoding and decoding STUN indication message.
1891 rtc::scoped_ptr<IceMessage> in_msg, out_msg;
1892 rtc::scoped_ptr<ByteBuffer> buf(new ByteBuffer());
1893 rtc::SocketAddress addr(kLocalAddr1);
1894 std::string username;
1895
1896 in_msg.reset(CreateStunMessage(STUN_BINDING_INDICATION));
1897 in_msg->AddFingerprint();
1898 WriteStunMessage(in_msg.get(), buf.get());
1899 EXPECT_TRUE(lport->GetStunMessage(buf->Data(), buf->Length(), addr,
1900 out_msg.accept(), &username));
1901 EXPECT_TRUE(out_msg.get() != NULL);
1902 EXPECT_EQ(out_msg->type(), STUN_BINDING_INDICATION);
1903 EXPECT_EQ("", username);
1904
1905 // Verify connection can handle STUN indication and updates
1906 // last_ping_received.
1907 rtc::scoped_ptr<TestPort> rport(
1908 CreateTestPort(kLocalAddr2, "rfrag", "rpass"));
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001909 rport->SetIceRole(cricket::ICEROLE_CONTROLLED);
1910 rport->SetIceTiebreaker(kTiebreaker2);
1911
1912 lport->PrepareAddress();
1913 rport->PrepareAddress();
1914 ASSERT_FALSE(lport->Candidates().empty());
1915 ASSERT_FALSE(rport->Candidates().empty());
1916
1917 Connection* lconn = lport->CreateConnection(rport->Candidates()[0],
1918 Port::ORIGIN_MESSAGE);
1919 Connection* rconn = rport->CreateConnection(lport->Candidates()[0],
1920 Port::ORIGIN_MESSAGE);
1921 rconn->Ping(0);
1922
1923 ASSERT_TRUE_WAIT(rport->last_stun_msg() != NULL, 1000);
1924 IceMessage* msg = rport->last_stun_msg();
1925 EXPECT_EQ(STUN_BINDING_REQUEST, msg->type());
1926 // Send rport binding request to lport.
1927 lconn->OnReadPacket(rport->last_stun_buf()->Data(),
1928 rport->last_stun_buf()->Length(),
1929 rtc::PacketTime());
1930 ASSERT_TRUE_WAIT(lport->last_stun_msg() != NULL, 1000);
1931 EXPECT_EQ(STUN_BINDING_RESPONSE, lport->last_stun_msg()->type());
1932 uint32 last_ping_received1 = lconn->last_ping_received();
1933
1934 // Adding a delay of 100ms.
1935 rtc::Thread::Current()->ProcessMessages(100);
1936 // Pinging lconn using stun indication message.
1937 lconn->OnReadPacket(buf->Data(), buf->Length(), rtc::PacketTime());
1938 uint32 last_ping_received2 = lconn->last_ping_received();
1939 EXPECT_GT(last_ping_received2, last_ping_received1);
1940}
1941
1942TEST_F(PortTest, TestComputeCandidatePriority) {
1943 rtc::scoped_ptr<TestPort> port(
1944 CreateTestPort(kLocalAddr1, "name", "pass"));
1945 port->set_type_preference(90);
1946 port->set_component(177);
1947 port->AddCandidateAddress(SocketAddress("192.168.1.4", 1234));
1948 port->AddCandidateAddress(SocketAddress("2001:db8::1234", 1234));
1949 port->AddCandidateAddress(SocketAddress("fc12:3456::1234", 1234));
1950 port->AddCandidateAddress(SocketAddress("::ffff:192.168.1.4", 1234));
1951 port->AddCandidateAddress(SocketAddress("::192.168.1.4", 1234));
1952 port->AddCandidateAddress(SocketAddress("2002::1234:5678", 1234));
1953 port->AddCandidateAddress(SocketAddress("2001::1234:5678", 1234));
1954 port->AddCandidateAddress(SocketAddress("fecf::1234:5678", 1234));
1955 port->AddCandidateAddress(SocketAddress("3ffe::1234:5678", 1234));
1956 // These should all be:
1957 // (90 << 24) | ([rfc3484 pref value] << 8) | (256 - 177)
1958 uint32 expected_priority_v4 = 1509957199U;
1959 uint32 expected_priority_v6 = 1509959759U;
1960 uint32 expected_priority_ula = 1509962319U;
1961 uint32 expected_priority_v4mapped = expected_priority_v4;
1962 uint32 expected_priority_v4compat = 1509949775U;
1963 uint32 expected_priority_6to4 = 1509954639U;
1964 uint32 expected_priority_teredo = 1509952079U;
1965 uint32 expected_priority_sitelocal = 1509949775U;
1966 uint32 expected_priority_6bone = 1509949775U;
1967 ASSERT_EQ(expected_priority_v4, port->Candidates()[0].priority());
1968 ASSERT_EQ(expected_priority_v6, port->Candidates()[1].priority());
1969 ASSERT_EQ(expected_priority_ula, port->Candidates()[2].priority());
1970 ASSERT_EQ(expected_priority_v4mapped, port->Candidates()[3].priority());
1971 ASSERT_EQ(expected_priority_v4compat, port->Candidates()[4].priority());
1972 ASSERT_EQ(expected_priority_6to4, port->Candidates()[5].priority());
1973 ASSERT_EQ(expected_priority_teredo, port->Candidates()[6].priority());
1974 ASSERT_EQ(expected_priority_sitelocal, port->Candidates()[7].priority());
1975 ASSERT_EQ(expected_priority_6bone, port->Candidates()[8].priority());
1976}
1977
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00001978// In the case of shared socket, one port may be shared by local and stun.
1979// Test that candidates with different types will have different foundation.
1980TEST_F(PortTest, TestFoundation) {
1981 rtc::scoped_ptr<TestPort> testport(
1982 CreateTestPort(kLocalAddr1, "name", "pass"));
1983 testport->AddCandidateAddress(kLocalAddr1, kLocalAddr1,
1984 LOCAL_PORT_TYPE,
1985 cricket::ICE_TYPE_PREFERENCE_HOST, false);
1986 testport->AddCandidateAddress(kLocalAddr2, kLocalAddr1,
1987 STUN_PORT_TYPE,
1988 cricket::ICE_TYPE_PREFERENCE_SRFLX, true);
1989 EXPECT_NE(testport->Candidates()[0].foundation(),
1990 testport->Candidates()[1].foundation());
1991}
1992
1993// This test verifies the foundation of different types of ICE candidates.
1994TEST_F(PortTest, TestCandidateFoundation) {
1995 rtc::scoped_ptr<rtc::NATServer> nat_server(
1996 CreateNatServer(kNatAddr1, NAT_OPEN_CONE));
1997 rtc::scoped_ptr<UDPPort> udpport1(CreateUdpPort(kLocalAddr1));
1998 udpport1->PrepareAddress();
1999 rtc::scoped_ptr<UDPPort> udpport2(CreateUdpPort(kLocalAddr1));
2000 udpport2->PrepareAddress();
2001 EXPECT_EQ(udpport1->Candidates()[0].foundation(),
2002 udpport2->Candidates()[0].foundation());
2003 rtc::scoped_ptr<TCPPort> tcpport1(CreateTcpPort(kLocalAddr1));
2004 tcpport1->PrepareAddress();
2005 rtc::scoped_ptr<TCPPort> tcpport2(CreateTcpPort(kLocalAddr1));
2006 tcpport2->PrepareAddress();
2007 EXPECT_EQ(tcpport1->Candidates()[0].foundation(),
2008 tcpport2->Candidates()[0].foundation());
2009 rtc::scoped_ptr<Port> stunport(
2010 CreateStunPort(kLocalAddr1, nat_socket_factory1()));
2011 stunport->PrepareAddress();
2012 ASSERT_EQ_WAIT(1U, stunport->Candidates().size(), kTimeout);
2013 EXPECT_NE(tcpport1->Candidates()[0].foundation(),
2014 stunport->Candidates()[0].foundation());
2015 EXPECT_NE(tcpport2->Candidates()[0].foundation(),
2016 stunport->Candidates()[0].foundation());
2017 EXPECT_NE(udpport1->Candidates()[0].foundation(),
2018 stunport->Candidates()[0].foundation());
2019 EXPECT_NE(udpport2->Candidates()[0].foundation(),
2020 stunport->Candidates()[0].foundation());
2021 // Verify GTURN candidate foundation.
2022 rtc::scoped_ptr<RelayPort> relayport(
2023 CreateGturnPort(kLocalAddr1));
2024 relayport->AddServerAddress(
2025 cricket::ProtocolAddress(kRelayUdpIntAddr, cricket::PROTO_UDP));
2026 relayport->PrepareAddress();
2027 ASSERT_EQ_WAIT(1U, relayport->Candidates().size(), kTimeout);
2028 EXPECT_NE(udpport1->Candidates()[0].foundation(),
2029 relayport->Candidates()[0].foundation());
2030 EXPECT_NE(udpport2->Candidates()[0].foundation(),
2031 relayport->Candidates()[0].foundation());
2032 // Verifying TURN candidate foundation.
2033 rtc::scoped_ptr<Port> turnport1(CreateTurnPort(
2034 kLocalAddr1, nat_socket_factory1(), PROTO_UDP, PROTO_UDP));
2035 turnport1->PrepareAddress();
2036 ASSERT_EQ_WAIT(1U, turnport1->Candidates().size(), kTimeout);
2037 EXPECT_NE(udpport1->Candidates()[0].foundation(),
2038 turnport1->Candidates()[0].foundation());
2039 EXPECT_NE(udpport2->Candidates()[0].foundation(),
2040 turnport1->Candidates()[0].foundation());
2041 EXPECT_NE(stunport->Candidates()[0].foundation(),
2042 turnport1->Candidates()[0].foundation());
2043 rtc::scoped_ptr<Port> turnport2(CreateTurnPort(
2044 kLocalAddr1, nat_socket_factory1(), PROTO_UDP, PROTO_UDP));
2045 turnport2->PrepareAddress();
2046 ASSERT_EQ_WAIT(1U, turnport2->Candidates().size(), kTimeout);
2047 EXPECT_EQ(turnport1->Candidates()[0].foundation(),
2048 turnport2->Candidates()[0].foundation());
2049
2050 // Running a second turn server, to get different base IP address.
2051 SocketAddress kTurnUdpIntAddr2("99.99.98.4", STUN_SERVER_PORT);
2052 SocketAddress kTurnUdpExtAddr2("99.99.98.5", 0);
2053 TestTurnServer turn_server2(
2054 rtc::Thread::Current(), kTurnUdpIntAddr2, kTurnUdpExtAddr2);
2055 rtc::scoped_ptr<Port> turnport3(CreateTurnPort(
2056 kLocalAddr1, nat_socket_factory1(), PROTO_UDP, PROTO_UDP,
2057 kTurnUdpIntAddr2));
2058 turnport3->PrepareAddress();
2059 ASSERT_EQ_WAIT(1U, turnport3->Candidates().size(), kTimeout);
2060 EXPECT_NE(turnport3->Candidates()[0].foundation(),
2061 turnport2->Candidates()[0].foundation());
2062}
2063
2064// This test verifies the related addresses of different types of
2065// ICE candiates.
2066TEST_F(PortTest, TestCandidateRelatedAddress) {
2067 rtc::scoped_ptr<rtc::NATServer> nat_server(
2068 CreateNatServer(kNatAddr1, NAT_OPEN_CONE));
2069 rtc::scoped_ptr<UDPPort> udpport(CreateUdpPort(kLocalAddr1));
2070 udpport->PrepareAddress();
2071 // For UDPPort, related address will be empty.
2072 EXPECT_TRUE(udpport->Candidates()[0].related_address().IsNil());
2073 // Testing related address for stun candidates.
2074 // For stun candidate related address must be equal to the base
2075 // socket address.
2076 rtc::scoped_ptr<StunPort> stunport(
2077 CreateStunPort(kLocalAddr1, nat_socket_factory1()));
2078 stunport->PrepareAddress();
2079 ASSERT_EQ_WAIT(1U, stunport->Candidates().size(), kTimeout);
2080 // Check STUN candidate address.
2081 EXPECT_EQ(stunport->Candidates()[0].address().ipaddr(),
2082 kNatAddr1.ipaddr());
2083 // Check STUN candidate related address.
2084 EXPECT_EQ(stunport->Candidates()[0].related_address(),
2085 stunport->GetLocalAddress());
2086 // Verifying the related address for the GTURN candidates.
2087 // NOTE: In case of GTURN related address will be equal to the mapped
2088 // address, but address(mapped) will not be XOR.
2089 rtc::scoped_ptr<RelayPort> relayport(
2090 CreateGturnPort(kLocalAddr1));
2091 relayport->AddServerAddress(
2092 cricket::ProtocolAddress(kRelayUdpIntAddr, cricket::PROTO_UDP));
2093 relayport->PrepareAddress();
2094 ASSERT_EQ_WAIT(1U, relayport->Candidates().size(), kTimeout);
2095 // For Gturn related address is set to "0.0.0.0:0"
2096 EXPECT_EQ(rtc::SocketAddress(),
2097 relayport->Candidates()[0].related_address());
2098 // Verifying the related address for TURN candidate.
2099 // For TURN related address must be equal to the mapped address.
2100 rtc::scoped_ptr<Port> turnport(CreateTurnPort(
2101 kLocalAddr1, nat_socket_factory1(), PROTO_UDP, PROTO_UDP));
2102 turnport->PrepareAddress();
2103 ASSERT_EQ_WAIT(1U, turnport->Candidates().size(), kTimeout);
2104 EXPECT_EQ(kTurnUdpExtAddr.ipaddr(),
2105 turnport->Candidates()[0].address().ipaddr());
2106 EXPECT_EQ(kNatAddr1.ipaddr(),
2107 turnport->Candidates()[0].related_address().ipaddr());
2108}
2109
2110// Test priority value overflow handling when preference is set to 3.
Peter Thatcher2159b892015-08-21 20:46:05 -07002111TEST_F(PortTest, TestCandidatePriority) {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002112 cricket::Candidate cand1;
Peter Thatcher2159b892015-08-21 20:46:05 -07002113 cand1.set_priority(3);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002114 cricket::Candidate cand2;
Peter Thatcher2159b892015-08-21 20:46:05 -07002115 cand2.set_priority(1);
2116 EXPECT_TRUE(cand1.priority() > cand2.priority());
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002117}
2118
2119// Test the Connection priority is calculated correctly.
2120TEST_F(PortTest, TestConnectionPriority) {
2121 rtc::scoped_ptr<TestPort> lport(
2122 CreateTestPort(kLocalAddr1, "lfrag", "lpass"));
2123 lport->set_type_preference(cricket::ICE_TYPE_PREFERENCE_HOST);
2124 rtc::scoped_ptr<TestPort> rport(
2125 CreateTestPort(kLocalAddr2, "rfrag", "rpass"));
2126 rport->set_type_preference(cricket::ICE_TYPE_PREFERENCE_RELAY);
2127 lport->set_component(123);
2128 lport->AddCandidateAddress(SocketAddress("192.168.1.4", 1234));
2129 rport->set_component(23);
2130 rport->AddCandidateAddress(SocketAddress("10.1.1.100", 1234));
2131
2132 EXPECT_EQ(0x7E001E85U, lport->Candidates()[0].priority());
2133 EXPECT_EQ(0x2001EE9U, rport->Candidates()[0].priority());
2134
2135 // RFC 5245
2136 // pair priority = 2^32*MIN(G,D) + 2*MAX(G,D) + (G>D?1:0)
2137 lport->SetIceRole(cricket::ICEROLE_CONTROLLING);
2138 rport->SetIceRole(cricket::ICEROLE_CONTROLLED);
2139 Connection* lconn = lport->CreateConnection(
2140 rport->Candidates()[0], Port::ORIGIN_MESSAGE);
2141#if defined(WEBRTC_WIN)
2142 EXPECT_EQ(0x2001EE9FC003D0BU, lconn->priority());
2143#else
2144 EXPECT_EQ(0x2001EE9FC003D0BLLU, lconn->priority());
2145#endif
2146
2147 lport->SetIceRole(cricket::ICEROLE_CONTROLLED);
2148 rport->SetIceRole(cricket::ICEROLE_CONTROLLING);
2149 Connection* rconn = rport->CreateConnection(
2150 lport->Candidates()[0], Port::ORIGIN_MESSAGE);
2151#if defined(WEBRTC_WIN)
2152 EXPECT_EQ(0x2001EE9FC003D0AU, rconn->priority());
2153#else
2154 EXPECT_EQ(0x2001EE9FC003D0ALLU, rconn->priority());
2155#endif
2156}
2157
2158TEST_F(PortTest, TestWritableState) {
2159 UDPPort* port1 = CreateUdpPort(kLocalAddr1);
Peter Thatcher2159b892015-08-21 20:46:05 -07002160 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002161 UDPPort* port2 = CreateUdpPort(kLocalAddr2);
Peter Thatcher2159b892015-08-21 20:46:05 -07002162 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002163
2164 // Set up channels.
2165 TestChannel ch1(port1, port2);
2166 TestChannel ch2(port2, port1);
2167
2168 // Acquire addresses.
2169 ch1.Start();
2170 ch2.Start();
2171 ASSERT_EQ_WAIT(1, ch1.complete_count(), kTimeout);
2172 ASSERT_EQ_WAIT(1, ch2.complete_count(), kTimeout);
2173
2174 // Send a ping from src to dst.
2175 ch1.CreateConnection();
2176 ASSERT_TRUE(ch1.conn() != NULL);
2177 EXPECT_EQ(Connection::STATE_WRITE_INIT, ch1.conn()->write_state());
2178 EXPECT_TRUE_WAIT(ch1.conn()->connected(), kTimeout); // for TCP connect
2179 ch1.Ping();
2180 WAIT(!ch2.remote_address().IsNil(), kTimeout);
2181
2182 // Data should be unsendable until the connection is accepted.
2183 char data[] = "abcd";
2184 int data_size = ARRAY_SIZE(data);
2185 rtc::PacketOptions options;
2186 EXPECT_EQ(SOCKET_ERROR, ch1.conn()->Send(data, data_size, options));
2187
2188 // Accept the connection to return the binding response, transition to
2189 // writable, and allow data to be sent.
2190 ch2.AcceptConnection();
2191 EXPECT_EQ_WAIT(Connection::STATE_WRITABLE, ch1.conn()->write_state(),
2192 kTimeout);
2193 EXPECT_EQ(data_size, ch1.conn()->Send(data, data_size, options));
2194
2195 // Ask the connection to update state as if enough time has passed to lose
2196 // full writability and 5 pings went unresponded to. We'll accomplish the
2197 // latter by sending pings but not pumping messages.
2198 for (uint32 i = 1; i <= CONNECTION_WRITE_CONNECT_FAILURES; ++i) {
2199 ch1.Ping(i);
2200 }
2201 uint32 unreliable_timeout_delay = CONNECTION_WRITE_CONNECT_TIMEOUT + 500u;
2202 ch1.conn()->UpdateState(unreliable_timeout_delay);
2203 EXPECT_EQ(Connection::STATE_WRITE_UNRELIABLE, ch1.conn()->write_state());
2204
2205 // Data should be able to be sent in this state.
2206 EXPECT_EQ(data_size, ch1.conn()->Send(data, data_size, options));
2207
2208 // And now allow the other side to process the pings and send binding
2209 // responses.
2210 EXPECT_EQ_WAIT(Connection::STATE_WRITABLE, ch1.conn()->write_state(),
2211 kTimeout);
2212
2213 // Wait long enough for a full timeout (past however long we've already
2214 // waited).
2215 for (uint32 i = 1; i <= CONNECTION_WRITE_CONNECT_FAILURES; ++i) {
2216 ch1.Ping(unreliable_timeout_delay + i);
2217 }
2218 ch1.conn()->UpdateState(unreliable_timeout_delay + CONNECTION_WRITE_TIMEOUT +
2219 500u);
2220 EXPECT_EQ(Connection::STATE_WRITE_TIMEOUT, ch1.conn()->write_state());
2221
2222 // Now that the connection has completely timed out, data send should fail.
2223 EXPECT_EQ(SOCKET_ERROR, ch1.conn()->Send(data, data_size, options));
2224
2225 ch1.Stop();
2226 ch2.Stop();
2227}
2228
2229TEST_F(PortTest, TestTimeoutForNeverWritable) {
2230 UDPPort* port1 = CreateUdpPort(kLocalAddr1);
Peter Thatcher2159b892015-08-21 20:46:05 -07002231 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002232 UDPPort* port2 = CreateUdpPort(kLocalAddr2);
Peter Thatcher2159b892015-08-21 20:46:05 -07002233 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002234
2235 // Set up channels.
2236 TestChannel ch1(port1, port2);
2237 TestChannel ch2(port2, port1);
2238
2239 // Acquire addresses.
2240 ch1.Start();
2241 ch2.Start();
2242
2243 ch1.CreateConnection();
2244 ASSERT_TRUE(ch1.conn() != NULL);
2245 EXPECT_EQ(Connection::STATE_WRITE_INIT, ch1.conn()->write_state());
2246
2247 // Attempt to go directly to write timeout.
2248 for (uint32 i = 1; i <= CONNECTION_WRITE_CONNECT_FAILURES; ++i) {
2249 ch1.Ping(i);
2250 }
2251 ch1.conn()->UpdateState(CONNECTION_WRITE_TIMEOUT + 500u);
2252 EXPECT_EQ(Connection::STATE_WRITE_TIMEOUT, ch1.conn()->write_state());
2253}
2254
2255// This test verifies the connection setup between ICEMODE_FULL
2256// and ICEMODE_LITE.
2257// In this test |ch1| behaves like FULL mode client and we have created
2258// port which responds to the ping message just like LITE client.
2259TEST_F(PortTest, TestIceLiteConnectivity) {
2260 TestPort* ice_full_port = CreateTestPort(
Peter Thatcher2159b892015-08-21 20:46:05 -07002261 kLocalAddr1, "lfrag", "lpass",
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002262 cricket::ICEROLE_CONTROLLING, kTiebreaker1);
2263
2264 rtc::scoped_ptr<TestPort> ice_lite_port(CreateTestPort(
Peter Thatcher2159b892015-08-21 20:46:05 -07002265 kLocalAddr2, "rfrag", "rpass",
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002266 cricket::ICEROLE_CONTROLLED, kTiebreaker2));
2267 // Setup TestChannel. This behaves like FULL mode client.
2268 TestChannel ch1(ice_full_port, ice_lite_port.get());
2269 ch1.SetIceMode(ICEMODE_FULL);
2270
2271 // Start gathering candidates.
2272 ch1.Start();
2273 ice_lite_port->PrepareAddress();
2274
2275 ASSERT_EQ_WAIT(1, ch1.complete_count(), kTimeout);
2276 ASSERT_FALSE(ice_lite_port->Candidates().empty());
2277
2278 ch1.CreateConnection();
2279 ASSERT_TRUE(ch1.conn() != NULL);
2280 EXPECT_EQ(Connection::STATE_WRITE_INIT, ch1.conn()->write_state());
2281
2282 // Send ping from full mode client.
2283 // This ping must not have USE_CANDIDATE_ATTR.
2284 ch1.Ping();
2285
2286 // Verify stun ping is without USE_CANDIDATE_ATTR. Getting message directly
2287 // from port.
2288 ASSERT_TRUE_WAIT(ice_full_port->last_stun_msg() != NULL, 1000);
2289 IceMessage* msg = ice_full_port->last_stun_msg();
2290 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_USE_CANDIDATE) == NULL);
2291
2292 // Respond with a BINDING-RESPONSE from litemode client.
2293 // NOTE: Ideally we should't create connection at this stage from lite
2294 // port, as it should be done only after receiving ping with USE_CANDIDATE.
2295 // But we need a connection to send a response message.
2296 ice_lite_port->CreateConnection(
2297 ice_full_port->Candidates()[0], cricket::Port::ORIGIN_MESSAGE);
2298 rtc::scoped_ptr<IceMessage> request(CopyStunMessage(msg));
2299 ice_lite_port->SendBindingResponse(
2300 request.get(), ice_full_port->Candidates()[0].address());
2301
2302 // Feeding the respone message from litemode to the full mode connection.
2303 ch1.conn()->OnReadPacket(ice_lite_port->last_stun_buf()->Data(),
2304 ice_lite_port->last_stun_buf()->Length(),
2305 rtc::PacketTime());
2306 // Verifying full mode connection becomes writable from the response.
2307 EXPECT_EQ_WAIT(Connection::STATE_WRITABLE, ch1.conn()->write_state(),
2308 kTimeout);
2309 EXPECT_TRUE_WAIT(ch1.nominated(), kTimeout);
2310
2311 // Clear existing stun messsages. Otherwise we will process old stun
2312 // message right after we send ping.
2313 ice_full_port->Reset();
2314 // Send ping. This must have USE_CANDIDATE_ATTR.
2315 ch1.Ping();
2316 ASSERT_TRUE_WAIT(ice_full_port->last_stun_msg() != NULL, 1000);
2317 msg = ice_full_port->last_stun_msg();
2318 EXPECT_TRUE(msg->GetByteString(STUN_ATTR_USE_CANDIDATE) != NULL);
2319 ch1.Stop();
2320}
2321
2322// This test case verifies that the CONTROLLING port does not time out.
2323TEST_F(PortTest, TestControllingNoTimeout) {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002324 UDPPort* port1 = CreateUdpPort(kLocalAddr1);
2325 ConnectToSignalDestroyed(port1);
2326 port1->set_timeout_delay(10); // milliseconds
2327 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
2328 port1->SetIceTiebreaker(kTiebreaker1);
2329
2330 UDPPort* port2 = CreateUdpPort(kLocalAddr2);
2331 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
2332 port2->SetIceTiebreaker(kTiebreaker2);
2333
2334 // Set up channels and ensure both ports will be deleted.
2335 TestChannel ch1(port1, port2);
2336 TestChannel ch2(port2, port1);
2337
2338 // Simulate a connection that succeeds, and then is destroyed.
Guo-wei Shiehbe508a12015-04-06 12:48:47 -07002339 StartConnectAndStopChannels(&ch1, &ch2);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002340
2341 // After the connection is destroyed, the port should not be destroyed.
2342 rtc::Thread::Current()->ProcessMessages(kTimeout);
2343 EXPECT_FALSE(destroyed());
2344}
2345
2346// This test case verifies that the CONTROLLED port does time out, but only
2347// after connectivity is lost.
2348TEST_F(PortTest, TestControlledTimeout) {
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002349 UDPPort* port1 = CreateUdpPort(kLocalAddr1);
2350 port1->SetIceRole(cricket::ICEROLE_CONTROLLING);
2351 port1->SetIceTiebreaker(kTiebreaker1);
2352
2353 UDPPort* port2 = CreateUdpPort(kLocalAddr2);
2354 ConnectToSignalDestroyed(port2);
2355 port2->set_timeout_delay(10); // milliseconds
2356 port2->SetIceRole(cricket::ICEROLE_CONTROLLED);
2357 port2->SetIceTiebreaker(kTiebreaker2);
2358
2359 // The connection must not be destroyed before a connection is attempted.
2360 EXPECT_FALSE(destroyed());
2361
2362 port1->set_component(cricket::ICE_CANDIDATE_COMPONENT_DEFAULT);
2363 port2->set_component(cricket::ICE_CANDIDATE_COMPONENT_DEFAULT);
2364
2365 // Set up channels and ensure both ports will be deleted.
2366 TestChannel ch1(port1, port2);
2367 TestChannel ch2(port2, port1);
2368
2369 // Simulate a connection that succeeds, and then is destroyed.
Guo-wei Shiehbe508a12015-04-06 12:48:47 -07002370 StartConnectAndStopChannels(&ch1, &ch2);
henrike@webrtc.org269fb4b2014-10-28 22:20:11 +00002371
2372 // The controlled port should be destroyed after 10 milliseconds.
2373 EXPECT_TRUE_WAIT(destroyed(), kTimeout);
2374}