| OLD | NEW |
| 1 /* | 1 /* |
| 2 * Copyright 2004 The WebRTC Project Authors. All rights reserved. | 2 * Copyright 2004 The WebRTC Project Authors. All rights reserved. |
| 3 * | 3 * |
| 4 * Use of this source code is governed by a BSD-style license | 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 | 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 | 6 * tree. An additional intellectual property rights grant can be found |
| 7 * in the file PATENTS. All contributing project authors may | 7 * in the file PATENTS. All contributing project authors may |
| 8 * be found in the AUTHORS file in the root of the source tree. | 8 * be found in the AUTHORS file in the root of the source tree. |
| 9 */ | 9 */ |
| 10 | 10 |
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| 51 uint32 maximum_time, | 51 uint32 maximum_time, |
| 52 uint32 now) { | 52 uint32 now) { |
| 53 | 53 |
| 54 if (pings_since_last_response.size() == 0) | 54 if (pings_since_last_response.size() == 0) |
| 55 return false; | 55 return false; |
| 56 | 56 |
| 57 auto first = pings_since_last_response[0]; | 57 auto first = pings_since_last_response[0]; |
| 58 return now > (first.sent_time + maximum_time); | 58 return now > (first.sent_time + maximum_time); |
| 59 } | 59 } |
| 60 | 60 |
| 61 // GICE(ICEPROTO_GOOGLE) requires different username for RTP and RTCP. |
| 62 // This function generates a different username by +1 on the last character of |
| 63 // the given username (|rtp_ufrag|). |
| 64 std::string GetRtcpUfragFromRtpUfrag(const std::string& rtp_ufrag) { |
| 65 ASSERT(!rtp_ufrag.empty()); |
| 66 if (rtp_ufrag.empty()) { |
| 67 return rtp_ufrag; |
| 68 } |
| 69 // Change the last character to the one next to it in the base64 table. |
| 70 char new_last_char; |
| 71 if (!rtc::Base64::GetNextBase64Char(rtp_ufrag[rtp_ufrag.size() - 1], |
| 72 &new_last_char)) { |
| 73 // Should not be here. |
| 74 ASSERT(false); |
| 75 } |
| 76 std::string rtcp_ufrag = rtp_ufrag; |
| 77 rtcp_ufrag[rtcp_ufrag.size() - 1] = new_last_char; |
| 78 ASSERT(rtcp_ufrag != rtp_ufrag); |
| 79 return rtcp_ufrag; |
| 80 } |
| 81 |
| 61 // We will restrict RTT estimates (when used for determining state) to be | 82 // We will restrict RTT estimates (when used for determining state) to be |
| 62 // within a reasonable range. | 83 // within a reasonable range. |
| 63 const uint32 MINIMUM_RTT = 100; // 0.1 seconds | 84 const uint32 MINIMUM_RTT = 100; // 0.1 seconds |
| 64 const uint32 MAXIMUM_RTT = 3000; // 3 seconds | 85 const uint32 MAXIMUM_RTT = 3000; // 3 seconds |
| 65 | 86 |
| 66 // When we don't have any RTT data, we have to pick something reasonable. We | 87 // When we don't have any RTT data, we have to pick something reasonable. We |
| 67 // use a large value just in case the connection is really slow. | 88 // use a large value just in case the connection is really slow. |
| 68 const uint32 DEFAULT_RTT = MAXIMUM_RTT; | 89 const uint32 DEFAULT_RTT = MAXIMUM_RTT; |
| 69 | 90 |
| 70 // Computes our estimate of the RTT given the current estimate. | 91 // Computes our estimate of the RTT given the current estimate. |
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| 143 network_(network), | 164 network_(network), |
| 144 ip_(ip), | 165 ip_(ip), |
| 145 min_port_(0), | 166 min_port_(0), |
| 146 max_port_(0), | 167 max_port_(0), |
| 147 component_(ICE_CANDIDATE_COMPONENT_DEFAULT), | 168 component_(ICE_CANDIDATE_COMPONENT_DEFAULT), |
| 148 generation_(0), | 169 generation_(0), |
| 149 ice_username_fragment_(username_fragment), | 170 ice_username_fragment_(username_fragment), |
| 150 password_(password), | 171 password_(password), |
| 151 timeout_delay_(kPortTimeoutDelay), | 172 timeout_delay_(kPortTimeoutDelay), |
| 152 enable_port_packets_(false), | 173 enable_port_packets_(false), |
| 174 ice_protocol_(ICEPROTO_HYBRID), |
| 153 ice_role_(ICEROLE_UNKNOWN), | 175 ice_role_(ICEROLE_UNKNOWN), |
| 154 tiebreaker_(0), | 176 tiebreaker_(0), |
| 155 shared_socket_(true), | 177 shared_socket_(true), |
| 156 candidate_filter_(CF_ALL) { | 178 candidate_filter_(CF_ALL) { |
| 157 Construct(); | 179 Construct(); |
| 158 } | 180 } |
| 159 | 181 |
| 160 Port::Port(rtc::Thread* thread, | 182 Port::Port(rtc::Thread* thread, |
| 161 const std::string& type, | 183 const std::string& type, |
| 162 rtc::PacketSocketFactory* factory, | 184 rtc::PacketSocketFactory* factory, |
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| 173 network_(network), | 195 network_(network), |
| 174 ip_(ip), | 196 ip_(ip), |
| 175 min_port_(min_port), | 197 min_port_(min_port), |
| 176 max_port_(max_port), | 198 max_port_(max_port), |
| 177 component_(ICE_CANDIDATE_COMPONENT_DEFAULT), | 199 component_(ICE_CANDIDATE_COMPONENT_DEFAULT), |
| 178 generation_(0), | 200 generation_(0), |
| 179 ice_username_fragment_(username_fragment), | 201 ice_username_fragment_(username_fragment), |
| 180 password_(password), | 202 password_(password), |
| 181 timeout_delay_(kPortTimeoutDelay), | 203 timeout_delay_(kPortTimeoutDelay), |
| 182 enable_port_packets_(false), | 204 enable_port_packets_(false), |
| 205 ice_protocol_(ICEPROTO_HYBRID), |
| 183 ice_role_(ICEROLE_UNKNOWN), | 206 ice_role_(ICEROLE_UNKNOWN), |
| 184 tiebreaker_(0), | 207 tiebreaker_(0), |
| 185 shared_socket_(false), | 208 shared_socket_(false), |
| 186 candidate_filter_(CF_ALL) { | 209 candidate_filter_(CF_ALL) { |
| 187 ASSERT(factory_ != NULL); | 210 ASSERT(factory_ != NULL); |
| 188 Construct(); | 211 Construct(); |
| 189 } | 212 } |
| 190 | 213 |
| 191 void Port::Construct() { | 214 void Port::Construct() { |
| 192 // TODO(pthatcher): Remove this old behavior once we're sure no one | 215 // If the username_fragment and password are empty, we should just create one. |
| 193 // relies on it. If the username_fragment and password are empty, | |
| 194 // we should just create one. | |
| 195 if (ice_username_fragment_.empty()) { | 216 if (ice_username_fragment_.empty()) { |
| 196 ASSERT(password_.empty()); | 217 ASSERT(password_.empty()); |
| 197 ice_username_fragment_ = rtc::CreateRandomString(ICE_UFRAG_LENGTH); | 218 ice_username_fragment_ = rtc::CreateRandomString(ICE_UFRAG_LENGTH); |
| 198 password_ = rtc::CreateRandomString(ICE_PWD_LENGTH); | 219 password_ = rtc::CreateRandomString(ICE_PWD_LENGTH); |
| 199 } | 220 } |
| 200 LOG_J(LS_INFO, this) << "Port created"; | 221 LOG_J(LS_INFO, this) << "Port created"; |
| 201 } | 222 } |
| 202 | 223 |
| 203 Port::~Port() { | 224 Port::~Port() { |
| 204 // Delete all of the remaining connections. We copy the list up front | 225 // Delete all of the remaining connections. We copy the list up front |
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| 286 LOG_J(LS_ERROR, this) << "Received non-STUN packet from unknown address (" | 307 LOG_J(LS_ERROR, this) << "Received non-STUN packet from unknown address (" |
| 287 << addr.ToSensitiveString() << ")"; | 308 << addr.ToSensitiveString() << ")"; |
| 288 } else if (!msg) { | 309 } else if (!msg) { |
| 289 // STUN message handled already | 310 // STUN message handled already |
| 290 } else if (msg->type() == STUN_BINDING_REQUEST) { | 311 } else if (msg->type() == STUN_BINDING_REQUEST) { |
| 291 LOG(LS_INFO) << "Received STUN ping " | 312 LOG(LS_INFO) << "Received STUN ping " |
| 292 << " id=" << rtc::hex_encode(msg->transaction_id()) | 313 << " id=" << rtc::hex_encode(msg->transaction_id()) |
| 293 << " from unknown address " << addr.ToSensitiveString(); | 314 << " from unknown address " << addr.ToSensitiveString(); |
| 294 | 315 |
| 295 // Check for role conflicts. | 316 // Check for role conflicts. |
| 296 if (!MaybeIceRoleConflict(addr, msg.get(), remote_username)) { | 317 if (IsStandardIce() && |
| 318 !MaybeIceRoleConflict(addr, msg.get(), remote_username)) { |
| 297 LOG(LS_INFO) << "Received conflicting role from the peer."; | 319 LOG(LS_INFO) << "Received conflicting role from the peer."; |
| 298 return; | 320 return; |
| 299 } | 321 } |
| 300 | 322 |
| 301 SignalUnknownAddress(this, addr, proto, msg.get(), remote_username, false); | 323 SignalUnknownAddress(this, addr, proto, msg.get(), remote_username, false); |
| 302 } else { | 324 } else { |
| 303 // NOTE(tschmelcher): STUN_BINDING_RESPONSE is benign. It occurs if we | 325 // NOTE(tschmelcher): STUN_BINDING_RESPONSE is benign. It occurs if we |
| 304 // pruned a connection for this port while it had STUN requests in flight, | 326 // pruned a connection for this port while it had STUN requests in flight, |
| 305 // because we then get back responses for them, which this code correctly | 327 // because we then get back responses for them, which this code correctly |
| 306 // does not handle. | 328 // does not handle. |
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| 317 for (; iter != connections_.end(); ++iter) { | 339 for (; iter != connections_.end(); ++iter) { |
| 318 iter->second->OnReadyToSend(); | 340 iter->second->OnReadyToSend(); |
| 319 } | 341 } |
| 320 } | 342 } |
| 321 | 343 |
| 322 size_t Port::AddPrflxCandidate(const Candidate& local) { | 344 size_t Port::AddPrflxCandidate(const Candidate& local) { |
| 323 candidates_.push_back(local); | 345 candidates_.push_back(local); |
| 324 return (candidates_.size() - 1); | 346 return (candidates_.size() - 1); |
| 325 } | 347 } |
| 326 | 348 |
| 349 bool Port::IsStandardIce() const { |
| 350 return (ice_protocol_ == ICEPROTO_RFC5245); |
| 351 } |
| 352 |
| 353 bool Port::IsGoogleIce() const { |
| 354 return (ice_protocol_ == ICEPROTO_GOOGLE); |
| 355 } |
| 356 |
| 357 bool Port::IsHybridIce() const { |
| 358 return (ice_protocol_ == ICEPROTO_HYBRID); |
| 359 } |
| 360 |
| 327 bool Port::GetStunMessage(const char* data, size_t size, | 361 bool Port::GetStunMessage(const char* data, size_t size, |
| 328 const rtc::SocketAddress& addr, | 362 const rtc::SocketAddress& addr, |
| 329 IceMessage** out_msg, std::string* out_username) { | 363 IceMessage** out_msg, std::string* out_username) { |
| 330 // NOTE: This could clearly be optimized to avoid allocating any memory. | 364 // NOTE: This could clearly be optimized to avoid allocating any memory. |
| 331 // However, at the data rates we'll be looking at on the client side, | 365 // However, at the data rates we'll be looking at on the client side, |
| 332 // this probably isn't worth worrying about. | 366 // this probably isn't worth worrying about. |
| 333 ASSERT(out_msg != NULL); | 367 ASSERT(out_msg != NULL); |
| 334 ASSERT(out_username != NULL); | 368 ASSERT(out_username != NULL); |
| 335 *out_msg = NULL; | 369 *out_msg = NULL; |
| 336 out_username->clear(); | 370 out_username->clear(); |
| 337 | 371 |
| 338 // Don't bother parsing the packet if we can tell it's not STUN. | 372 // Don't bother parsing the packet if we can tell it's not STUN. |
| 339 // In ICE mode, all STUN packets will have a valid fingerprint. | 373 // In ICE mode, all STUN packets will have a valid fingerprint. |
| 340 if (!StunMessage::ValidateFingerprint(data, size)) { | 374 if (IsStandardIce() && !StunMessage::ValidateFingerprint(data, size)) { |
| 341 return false; | 375 return false; |
| 342 } | 376 } |
| 343 | 377 |
| 344 // Parse the request message. If the packet is not a complete and correct | 378 // Parse the request message. If the packet is not a complete and correct |
| 345 // STUN message, then ignore it. | 379 // STUN message, then ignore it. |
| 346 rtc::scoped_ptr<IceMessage> stun_msg(new IceMessage()); | 380 rtc::scoped_ptr<IceMessage> stun_msg(new IceMessage()); |
| 347 rtc::ByteBuffer buf(data, size); | 381 rtc::ByteBuffer buf(data, size); |
| 348 if (!stun_msg->Read(&buf) || (buf.Length() > 0)) { | 382 if (!stun_msg->Read(&buf) || (buf.Length() > 0)) { |
| 349 return false; | 383 return false; |
| 350 } | 384 } |
| 351 | 385 |
| 352 if (stun_msg->type() == STUN_BINDING_REQUEST) { | 386 if (stun_msg->type() == STUN_BINDING_REQUEST) { |
| 353 // Check for the presence of USERNAME and MESSAGE-INTEGRITY (if ICE) first. | 387 // Check for the presence of USERNAME and MESSAGE-INTEGRITY (if ICE) first. |
| 354 // If not present, fail with a 400 Bad Request. | 388 // If not present, fail with a 400 Bad Request. |
| 355 if (!stun_msg->GetByteString(STUN_ATTR_USERNAME) || | 389 if (!stun_msg->GetByteString(STUN_ATTR_USERNAME) || |
| 356 !stun_msg->GetByteString(STUN_ATTR_MESSAGE_INTEGRITY)) { | 390 (IsStandardIce() && |
| 391 !stun_msg->GetByteString(STUN_ATTR_MESSAGE_INTEGRITY))) { |
| 357 LOG_J(LS_ERROR, this) << "Received STUN request without username/M-I " | 392 LOG_J(LS_ERROR, this) << "Received STUN request without username/M-I " |
| 358 << "from " << addr.ToSensitiveString(); | 393 << "from " << addr.ToSensitiveString(); |
| 359 SendBindingErrorResponse(stun_msg.get(), addr, STUN_ERROR_BAD_REQUEST, | 394 SendBindingErrorResponse(stun_msg.get(), addr, STUN_ERROR_BAD_REQUEST, |
| 360 STUN_ERROR_REASON_BAD_REQUEST); | 395 STUN_ERROR_REASON_BAD_REQUEST); |
| 361 return true; | 396 return true; |
| 362 } | 397 } |
| 363 | 398 |
| 364 // If the username is bad or unknown, fail with a 401 Unauthorized. | 399 // If the username is bad or unknown, fail with a 401 Unauthorized. |
| 365 std::string local_ufrag; | 400 std::string local_ufrag; |
| 366 std::string remote_ufrag; | 401 std::string remote_ufrag; |
| 367 if (!ParseStunUsername(stun_msg.get(), &local_ufrag, &remote_ufrag) || | 402 IceProtocolType remote_protocol_type; |
| 403 if (!ParseStunUsername(stun_msg.get(), &local_ufrag, &remote_ufrag, |
| 404 &remote_protocol_type) || |
| 368 local_ufrag != username_fragment()) { | 405 local_ufrag != username_fragment()) { |
| 369 LOG_J(LS_ERROR, this) << "Received STUN request with bad local username " | 406 LOG_J(LS_ERROR, this) << "Received STUN request with bad local username " |
| 370 << local_ufrag << " from " | 407 << local_ufrag << " from " |
| 371 << addr.ToSensitiveString(); | 408 << addr.ToSensitiveString(); |
| 372 SendBindingErrorResponse(stun_msg.get(), addr, STUN_ERROR_UNAUTHORIZED, | 409 SendBindingErrorResponse(stun_msg.get(), addr, STUN_ERROR_UNAUTHORIZED, |
| 373 STUN_ERROR_REASON_UNAUTHORIZED); | 410 STUN_ERROR_REASON_UNAUTHORIZED); |
| 374 return true; | 411 return true; |
| 375 } | 412 } |
| 376 | 413 |
| 414 // Port is initialized to GOOGLE-ICE protocol type. If pings from remote |
| 415 // are received before the signal message, protocol type may be different. |
| 416 // Based on the STUN username, we can determine what's the remote protocol. |
| 417 // This also enables us to send the response back using the same protocol |
| 418 // as the request. |
| 419 if (IsHybridIce()) { |
| 420 SetIceProtocolType(remote_protocol_type); |
| 421 } |
| 422 |
| 377 // If ICE, and the MESSAGE-INTEGRITY is bad, fail with a 401 Unauthorized | 423 // If ICE, and the MESSAGE-INTEGRITY is bad, fail with a 401 Unauthorized |
| 378 if (!stun_msg->ValidateMessageIntegrity(data, size, password_)) { | 424 if (IsStandardIce() && |
| 425 !stun_msg->ValidateMessageIntegrity(data, size, password_)) { |
| 379 LOG_J(LS_ERROR, this) << "Received STUN request with bad M-I " | 426 LOG_J(LS_ERROR, this) << "Received STUN request with bad M-I " |
| 380 << "from " << addr.ToSensitiveString() | 427 << "from " << addr.ToSensitiveString() |
| 381 << ", password_=" << password_; | 428 << ", password_=" << password_; |
| 382 SendBindingErrorResponse(stun_msg.get(), addr, STUN_ERROR_UNAUTHORIZED, | 429 SendBindingErrorResponse(stun_msg.get(), addr, STUN_ERROR_UNAUTHORIZED, |
| 383 STUN_ERROR_REASON_UNAUTHORIZED); | 430 STUN_ERROR_REASON_UNAUTHORIZED); |
| 384 return true; | 431 return true; |
| 385 } | 432 } |
| 386 out_username->assign(remote_ufrag); | 433 out_username->assign(remote_ufrag); |
| 387 } else if ((stun_msg->type() == STUN_BINDING_RESPONSE) || | 434 } else if ((stun_msg->type() == STUN_BINDING_RESPONSE) || |
| 388 (stun_msg->type() == STUN_BINDING_ERROR_RESPONSE)) { | 435 (stun_msg->type() == STUN_BINDING_ERROR_RESPONSE)) { |
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| 429 // Link-local IPv6 ports can only connect to other link-local IPv6 ports. | 476 // Link-local IPv6 ports can only connect to other link-local IPv6 ports. |
| 430 if (family == AF_INET6 && | 477 if (family == AF_INET6 && |
| 431 (IPIsLinkLocal(ip()) != IPIsLinkLocal(addr.ipaddr()))) { | 478 (IPIsLinkLocal(ip()) != IPIsLinkLocal(addr.ipaddr()))) { |
| 432 return false; | 479 return false; |
| 433 } | 480 } |
| 434 return true; | 481 return true; |
| 435 } | 482 } |
| 436 | 483 |
| 437 bool Port::ParseStunUsername(const StunMessage* stun_msg, | 484 bool Port::ParseStunUsername(const StunMessage* stun_msg, |
| 438 std::string* local_ufrag, | 485 std::string* local_ufrag, |
| 439 std::string* remote_ufrag) const { | 486 std::string* remote_ufrag, |
| 487 IceProtocolType* remote_protocol_type) const { |
| 440 // The packet must include a username that either begins or ends with our | 488 // The packet must include a username that either begins or ends with our |
| 441 // fragment. It should begin with our fragment if it is a request and it | 489 // fragment. It should begin with our fragment if it is a request and it |
| 442 // should end with our fragment if it is a response. | 490 // should end with our fragment if it is a response. |
| 443 local_ufrag->clear(); | 491 local_ufrag->clear(); |
| 444 remote_ufrag->clear(); | 492 remote_ufrag->clear(); |
| 445 const StunByteStringAttribute* username_attr = | 493 const StunByteStringAttribute* username_attr = |
| 446 stun_msg->GetByteString(STUN_ATTR_USERNAME); | 494 stun_msg->GetByteString(STUN_ATTR_USERNAME); |
| 447 if (username_attr == NULL) | 495 if (username_attr == NULL) |
| 448 return false; | 496 return false; |
| 449 | 497 |
| 450 // RFRAG:LFRAG | 498 const std::string username_attr_str = username_attr->GetString(); |
| 451 const std::string username = username_attr->GetString(); | 499 size_t colon_pos = username_attr_str.find(":"); |
| 452 size_t colon_pos = username.find(":"); | 500 // If we are in hybrid mode set the appropriate ice protocol type based on |
| 453 if (colon_pos == std::string::npos) { | 501 // the username argument style. |
| 454 return false; | 502 if (IsHybridIce()) { |
| 503 *remote_protocol_type = (colon_pos != std::string::npos) ? |
| 504 ICEPROTO_RFC5245 : ICEPROTO_GOOGLE; |
| 505 } else { |
| 506 *remote_protocol_type = ice_protocol_; |
| 455 } | 507 } |
| 508 if (*remote_protocol_type == ICEPROTO_RFC5245) { |
| 509 if (colon_pos != std::string::npos) { // RFRAG:LFRAG |
| 510 *local_ufrag = username_attr_str.substr(0, colon_pos); |
| 511 *remote_ufrag = username_attr_str.substr( |
| 512 colon_pos + 1, username_attr_str.size()); |
| 513 } else { |
| 514 return false; |
| 515 } |
| 516 } else if (*remote_protocol_type == ICEPROTO_GOOGLE) { |
| 517 int remote_frag_len = static_cast<int>(username_attr_str.size()); |
| 518 remote_frag_len -= static_cast<int>(username_fragment().size()); |
| 519 if (remote_frag_len < 0) |
| 520 return false; |
| 456 | 521 |
| 457 *local_ufrag = username.substr(0, colon_pos); | 522 *local_ufrag = username_attr_str.substr(0, username_fragment().size()); |
| 458 *remote_ufrag = username.substr(colon_pos + 1, username.size()); | 523 *remote_ufrag = username_attr_str.substr( |
| 524 username_fragment().size(), username_attr_str.size()); |
| 525 } |
| 459 return true; | 526 return true; |
| 460 } | 527 } |
| 461 | 528 |
| 462 bool Port::MaybeIceRoleConflict( | 529 bool Port::MaybeIceRoleConflict( |
| 463 const rtc::SocketAddress& addr, IceMessage* stun_msg, | 530 const rtc::SocketAddress& addr, IceMessage* stun_msg, |
| 464 const std::string& remote_ufrag) { | 531 const std::string& remote_ufrag) { |
| 465 // Validate ICE_CONTROLLING or ICE_CONTROLLED attributes. | 532 // Validate ICE_CONTROLLING or ICE_CONTROLLED attributes. |
| 466 bool ret = true; | 533 bool ret = true; |
| 467 IceRole remote_ice_role = ICEROLE_UNKNOWN; | 534 IceRole remote_ice_role = ICEROLE_UNKNOWN; |
| 468 uint64 remote_tiebreaker = 0; | 535 uint64 remote_tiebreaker = 0; |
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| 517 default: | 584 default: |
| 518 ASSERT(false); | 585 ASSERT(false); |
| 519 } | 586 } |
| 520 return ret; | 587 return ret; |
| 521 } | 588 } |
| 522 | 589 |
| 523 void Port::CreateStunUsername(const std::string& remote_username, | 590 void Port::CreateStunUsername(const std::string& remote_username, |
| 524 std::string* stun_username_attr_str) const { | 591 std::string* stun_username_attr_str) const { |
| 525 stun_username_attr_str->clear(); | 592 stun_username_attr_str->clear(); |
| 526 *stun_username_attr_str = remote_username; | 593 *stun_username_attr_str = remote_username; |
| 527 stun_username_attr_str->append(":"); | 594 if (IsStandardIce()) { |
| 595 // Connectivity checks from L->R will have username RFRAG:LFRAG. |
| 596 stun_username_attr_str->append(":"); |
| 597 } |
| 528 stun_username_attr_str->append(username_fragment()); | 598 stun_username_attr_str->append(username_fragment()); |
| 529 } | 599 } |
| 530 | 600 |
| 531 void Port::SendBindingResponse(StunMessage* request, | 601 void Port::SendBindingResponse(StunMessage* request, |
| 532 const rtc::SocketAddress& addr) { | 602 const rtc::SocketAddress& addr) { |
| 533 ASSERT(request->type() == STUN_BINDING_REQUEST); | 603 ASSERT(request->type() == STUN_BINDING_REQUEST); |
| 534 | 604 |
| 535 // Retrieve the username from the request. | 605 // Retrieve the username from the request. |
| 536 const StunByteStringAttribute* username_attr = | 606 const StunByteStringAttribute* username_attr = |
| 537 request->GetByteString(STUN_ATTR_USERNAME); | 607 request->GetByteString(STUN_ATTR_USERNAME); |
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| 553 response.AddAttribute(new StunUInt32Attribute( | 623 response.AddAttribute(new StunUInt32Attribute( |
| 554 STUN_ATTR_RETRANSMIT_COUNT, retransmit_attr->value())); | 624 STUN_ATTR_RETRANSMIT_COUNT, retransmit_attr->value())); |
| 555 | 625 |
| 556 if (retransmit_attr->value() > CONNECTION_WRITE_CONNECT_FAILURES) { | 626 if (retransmit_attr->value() > CONNECTION_WRITE_CONNECT_FAILURES) { |
| 557 LOG_J(LS_INFO, this) | 627 LOG_J(LS_INFO, this) |
| 558 << "Received a remote ping with high retransmit count: " | 628 << "Received a remote ping with high retransmit count: " |
| 559 << retransmit_attr->value(); | 629 << retransmit_attr->value(); |
| 560 } | 630 } |
| 561 } | 631 } |
| 562 | 632 |
| 563 response.AddAttribute( | 633 // Only GICE messages have USERNAME and MAPPED-ADDRESS in the response. |
| 564 new StunXorAddressAttribute(STUN_ATTR_XOR_MAPPED_ADDRESS, addr)); | 634 // ICE messages use XOR-MAPPED-ADDRESS, and add MESSAGE-INTEGRITY. |
| 565 response.AddMessageIntegrity(password_); | 635 if (IsStandardIce()) { |
| 566 response.AddFingerprint(); | 636 response.AddAttribute( |
| 637 new StunXorAddressAttribute(STUN_ATTR_XOR_MAPPED_ADDRESS, addr)); |
| 638 response.AddMessageIntegrity(password_); |
| 639 response.AddFingerprint(); |
| 640 } else if (IsGoogleIce()) { |
| 641 response.AddAttribute( |
| 642 new StunAddressAttribute(STUN_ATTR_MAPPED_ADDRESS, addr)); |
| 643 response.AddAttribute(new StunByteStringAttribute( |
| 644 STUN_ATTR_USERNAME, username_attr->GetString())); |
| 645 } |
| 567 | 646 |
| 568 // The fact that we received a successful request means that this connection | 647 // The fact that we received a successful request means that this connection |
| 569 // (if one exists) should now be readable. | 648 // (if one exists) should now be readable. |
| 570 Connection* conn = GetConnection(addr); | 649 Connection* conn = GetConnection(addr); |
| 571 | 650 |
| 572 // Send the response message. | 651 // Send the response message. |
| 573 rtc::ByteBuffer buf; | 652 rtc::ByteBuffer buf; |
| 574 response.Write(&buf); | 653 response.Write(&buf); |
| 575 rtc::PacketOptions options(DefaultDscpValue()); | 654 rtc::PacketOptions options(DefaultDscpValue()); |
| 576 auto err = SendTo(buf.Data(), buf.Length(), addr, options, false); | 655 auto err = SendTo(buf.Data(), buf.Length(), addr, options, false); |
| (...skipping 25 matching lines...) Expand all Loading... |
| 602 ASSERT(request->type() == STUN_BINDING_REQUEST); | 681 ASSERT(request->type() == STUN_BINDING_REQUEST); |
| 603 | 682 |
| 604 // Fill in the response message. | 683 // Fill in the response message. |
| 605 StunMessage response; | 684 StunMessage response; |
| 606 response.SetType(STUN_BINDING_ERROR_RESPONSE); | 685 response.SetType(STUN_BINDING_ERROR_RESPONSE); |
| 607 response.SetTransactionID(request->transaction_id()); | 686 response.SetTransactionID(request->transaction_id()); |
| 608 | 687 |
| 609 // When doing GICE, we need to write out the error code incorrectly to | 688 // When doing GICE, we need to write out the error code incorrectly to |
| 610 // maintain backwards compatiblility. | 689 // maintain backwards compatiblility. |
| 611 StunErrorCodeAttribute* error_attr = StunAttribute::CreateErrorCode(); | 690 StunErrorCodeAttribute* error_attr = StunAttribute::CreateErrorCode(); |
| 612 error_attr->SetCode(error_code); | 691 if (IsStandardIce()) { |
| 692 error_attr->SetCode(error_code); |
| 693 } else if (IsGoogleIce()) { |
| 694 error_attr->SetClass(error_code / 256); |
| 695 error_attr->SetNumber(error_code % 256); |
| 696 } |
| 613 error_attr->SetReason(reason); | 697 error_attr->SetReason(reason); |
| 614 response.AddAttribute(error_attr); | 698 response.AddAttribute(error_attr); |
| 615 | 699 |
| 616 // Per Section 10.1.2, certain error cases don't get a MESSAGE-INTEGRITY, | 700 if (IsStandardIce()) { |
| 617 // because we don't have enough information to determine the shared secret. | 701 // Per Section 10.1.2, certain error cases don't get a MESSAGE-INTEGRITY, |
| 618 if (error_code != STUN_ERROR_BAD_REQUEST && | 702 // because we don't have enough information to determine the shared secret. |
| 619 error_code != STUN_ERROR_UNAUTHORIZED) | 703 if (error_code != STUN_ERROR_BAD_REQUEST && |
| 620 response.AddMessageIntegrity(password_); | 704 error_code != STUN_ERROR_UNAUTHORIZED) |
| 621 response.AddFingerprint(); | 705 response.AddMessageIntegrity(password_); |
| 706 response.AddFingerprint(); |
| 707 } else if (IsGoogleIce()) { |
| 708 // GICE responses include a username, if one exists. |
| 709 const StunByteStringAttribute* username_attr = |
| 710 request->GetByteString(STUN_ATTR_USERNAME); |
| 711 if (username_attr) |
| 712 response.AddAttribute(new StunByteStringAttribute( |
| 713 STUN_ATTR_USERNAME, username_attr->GetString())); |
| 714 } |
| 622 | 715 |
| 623 // Send the response message. | 716 // Send the response message. |
| 624 rtc::ByteBuffer buf; | 717 rtc::ByteBuffer buf; |
| 625 response.Write(&buf); | 718 response.Write(&buf); |
| 626 rtc::PacketOptions options(DefaultDscpValue()); | 719 rtc::PacketOptions options(DefaultDscpValue()); |
| 627 SendTo(buf.Data(), buf.Length(), addr, options, false); | 720 SendTo(buf.Data(), buf.Length(), addr, options, false); |
| 628 LOG_J(LS_INFO, this) << "Sending STUN binding error: reason=" << reason | 721 LOG_J(LS_INFO, this) << "Sending STUN binding error: reason=" << reason |
| 629 << " to " << addr.ToSensitiveString(); | 722 << " to " << addr.ToSensitiveString(); |
| 630 } | 723 } |
| 631 | 724 |
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| 671 ASSERT(ice_role_ == ICEROLE_CONTROLLED); | 764 ASSERT(ice_role_ == ICEROLE_CONTROLLED); |
| 672 // If this port has no connections, then there's no reason to keep it around. | 765 // If this port has no connections, then there's no reason to keep it around. |
| 673 // When the connections time out (both read and write), they will delete | 766 // When the connections time out (both read and write), they will delete |
| 674 // themselves, so if we have any connections, they are either readable or | 767 // themselves, so if we have any connections, they are either readable or |
| 675 // writable (or still connecting). | 768 // writable (or still connecting). |
| 676 if (connections_.empty()) | 769 if (connections_.empty()) |
| 677 Destroy(); | 770 Destroy(); |
| 678 } | 771 } |
| 679 | 772 |
| 680 const std::string Port::username_fragment() const { | 773 const std::string Port::username_fragment() const { |
| 681 return ice_username_fragment_; | 774 if (!IsStandardIce() && |
| 775 component_ == ICE_CANDIDATE_COMPONENT_RTCP) { |
| 776 // In GICE mode, we should adjust username fragment for rtcp component. |
| 777 return GetRtcpUfragFromRtpUfrag(ice_username_fragment_); |
| 778 } else { |
| 779 return ice_username_fragment_; |
| 780 } |
| 682 } | 781 } |
| 683 | 782 |
| 684 // A ConnectionRequest is a simple STUN ping used to determine writability. | 783 // A ConnectionRequest is a simple STUN ping used to determine writability. |
| 685 class ConnectionRequest : public StunRequest { | 784 class ConnectionRequest : public StunRequest { |
| 686 public: | 785 public: |
| 687 explicit ConnectionRequest(Connection* connection) | 786 explicit ConnectionRequest(Connection* connection) |
| 688 : StunRequest(new IceMessage()), | 787 : StunRequest(new IceMessage()), |
| 689 connection_(connection) { | 788 connection_(connection) { |
| 690 } | 789 } |
| 691 | 790 |
| 692 virtual ~ConnectionRequest() { | 791 virtual ~ConnectionRequest() { |
| 693 } | 792 } |
| 694 | 793 |
| 695 void Prepare(StunMessage* request) override { | 794 void Prepare(StunMessage* request) override { |
| 696 request->SetType(STUN_BINDING_REQUEST); | 795 request->SetType(STUN_BINDING_REQUEST); |
| 697 std::string username; | 796 std::string username; |
| 698 connection_->port()->CreateStunUsername( | 797 connection_->port()->CreateStunUsername( |
| 699 connection_->remote_candidate().username(), &username); | 798 connection_->remote_candidate().username(), &username); |
| 700 request->AddAttribute( | 799 request->AddAttribute( |
| 701 new StunByteStringAttribute(STUN_ATTR_USERNAME, username)); | 800 new StunByteStringAttribute(STUN_ATTR_USERNAME, username)); |
| 702 | 801 |
| 703 // connection_ already holds this ping, so subtract one from count. | 802 // connection_ already holds this ping, so subtract one from count. |
| 704 if (connection_->port()->send_retransmit_count_attribute()) { | 803 if (connection_->port()->send_retransmit_count_attribute()) { |
| 705 request->AddAttribute(new StunUInt32Attribute( | 804 request->AddAttribute(new StunUInt32Attribute( |
| 706 STUN_ATTR_RETRANSMIT_COUNT, | 805 STUN_ATTR_RETRANSMIT_COUNT, |
| 707 static_cast<uint32>( | 806 static_cast<uint32>( |
| 708 connection_->pings_since_last_response_.size() - 1))); | 807 connection_->pings_since_last_response_.size() - 1))); |
| 709 } | 808 } |
| 710 | 809 |
| 711 // Adding ICE_CONTROLLED or ICE_CONTROLLING attribute based on the role. | 810 // Adding ICE-specific attributes to the STUN request message. |
| 712 if (connection_->port()->GetIceRole() == ICEROLE_CONTROLLING) { | 811 if (connection_->port()->IsStandardIce()) { |
| 713 request->AddAttribute(new StunUInt64Attribute( | 812 // Adding ICE_CONTROLLED or ICE_CONTROLLING attribute based on the role. |
| 714 STUN_ATTR_ICE_CONTROLLING, connection_->port()->IceTiebreaker())); | 813 if (connection_->port()->GetIceRole() == ICEROLE_CONTROLLING) { |
| 715 // Since we are trying aggressive nomination, sending USE-CANDIDATE | 814 request->AddAttribute(new StunUInt64Attribute( |
| 716 // attribute in every ping. | 815 STUN_ATTR_ICE_CONTROLLING, connection_->port()->IceTiebreaker())); |
| 717 // If we are dealing with a ice-lite end point, nomination flag | 816 // Since we are trying aggressive nomination, sending USE-CANDIDATE |
| 718 // in Connection will be set to false by default. Once the connection | 817 // attribute in every ping. |
| 719 // becomes "best connection", nomination flag will be turned on. | 818 // If we are dealing with a ice-lite end point, nomination flag |
| 720 if (connection_->use_candidate_attr()) { | 819 // in Connection will be set to false by default. Once the connection |
| 721 request->AddAttribute(new StunByteStringAttribute( | 820 // becomes "best connection", nomination flag will be turned on. |
| 722 STUN_ATTR_USE_CANDIDATE)); | 821 if (connection_->use_candidate_attr()) { |
| 822 request->AddAttribute(new StunByteStringAttribute( |
| 823 STUN_ATTR_USE_CANDIDATE)); |
| 824 } |
| 825 } else if (connection_->port()->GetIceRole() == ICEROLE_CONTROLLED) { |
| 826 request->AddAttribute(new StunUInt64Attribute( |
| 827 STUN_ATTR_ICE_CONTROLLED, connection_->port()->IceTiebreaker())); |
| 828 } else { |
| 829 ASSERT(false); |
| 723 } | 830 } |
| 724 } else if (connection_->port()->GetIceRole() == ICEROLE_CONTROLLED) { | 831 |
| 725 request->AddAttribute(new StunUInt64Attribute( | 832 // Adding PRIORITY Attribute. |
| 726 STUN_ATTR_ICE_CONTROLLED, connection_->port()->IceTiebreaker())); | 833 // Changing the type preference to Peer Reflexive and local preference |
| 727 } else { | 834 // and component id information is unchanged from the original priority. |
| 728 ASSERT(false); | 835 // priority = (2^24)*(type preference) + |
| 836 // (2^8)*(local preference) + |
| 837 // (2^0)*(256 - component ID) |
| 838 uint32 prflx_priority = ICE_TYPE_PREFERENCE_PRFLX << 24 | |
| 839 (connection_->local_candidate().priority() & 0x00FFFFFF); |
| 840 request->AddAttribute( |
| 841 new StunUInt32Attribute(STUN_ATTR_PRIORITY, prflx_priority)); |
| 842 |
| 843 // Adding Message Integrity attribute. |
| 844 request->AddMessageIntegrity(connection_->remote_candidate().password()); |
| 845 // Adding Fingerprint. |
| 846 request->AddFingerprint(); |
| 729 } | 847 } |
| 730 | |
| 731 // Adding PRIORITY Attribute. | |
| 732 // Changing the type preference to Peer Reflexive and local preference | |
| 733 // and component id information is unchanged from the original priority. | |
| 734 // priority = (2^24)*(type preference) + | |
| 735 // (2^8)*(local preference) + | |
| 736 // (2^0)*(256 - component ID) | |
| 737 uint32 prflx_priority = ICE_TYPE_PREFERENCE_PRFLX << 24 | | |
| 738 (connection_->local_candidate().priority() & 0x00FFFFFF); | |
| 739 request->AddAttribute( | |
| 740 new StunUInt32Attribute(STUN_ATTR_PRIORITY, prflx_priority)); | |
| 741 | |
| 742 // Adding Message Integrity attribute. | |
| 743 request->AddMessageIntegrity(connection_->remote_candidate().password()); | |
| 744 // Adding Fingerprint. | |
| 745 request->AddFingerprint(); | |
| 746 } | 848 } |
| 747 | 849 |
| 748 void OnResponse(StunMessage* response) override { | 850 void OnResponse(StunMessage* response) override { |
| 749 connection_->OnConnectionRequestResponse(this, response); | 851 connection_->OnConnectionRequestResponse(this, response); |
| 750 } | 852 } |
| 751 | 853 |
| 752 void OnErrorResponse(StunMessage* response) override { | 854 void OnErrorResponse(StunMessage* response) override { |
| 753 connection_->OnConnectionRequestErrorResponse(this, response); | 855 connection_->OnConnectionRequestErrorResponse(this, response); |
| 754 } | 856 } |
| 755 | 857 |
| (...skipping 175 matching lines...) Expand 10 before | Expand all | Expand 10 after Loading... |
| 931 // If this is a STUN response, then update the writable bit. | 1033 // If this is a STUN response, then update the writable bit. |
| 932 // Log at LS_INFO if we receive a ping on an unwritable connection. | 1034 // Log at LS_INFO if we receive a ping on an unwritable connection. |
| 933 rtc::LoggingSeverity sev = (!writable() ? rtc::LS_INFO : rtc::LS_VERBOSE); | 1035 rtc::LoggingSeverity sev = (!writable() ? rtc::LS_INFO : rtc::LS_VERBOSE); |
| 934 switch (msg->type()) { | 1036 switch (msg->type()) { |
| 935 case STUN_BINDING_REQUEST: | 1037 case STUN_BINDING_REQUEST: |
| 936 LOG_JV(sev, this) << "Received STUN ping" | 1038 LOG_JV(sev, this) << "Received STUN ping" |
| 937 << ", id=" << rtc::hex_encode(msg->transaction_id()); | 1039 << ", id=" << rtc::hex_encode(msg->transaction_id()); |
| 938 | 1040 |
| 939 if (remote_ufrag == remote_candidate_.username()) { | 1041 if (remote_ufrag == remote_candidate_.username()) { |
| 940 // Check for role conflicts. | 1042 // Check for role conflicts. |
| 941 if (!port_->MaybeIceRoleConflict(addr, msg.get(), remote_ufrag)) { | 1043 if (port_->IsStandardIce() && |
| 1044 !port_->MaybeIceRoleConflict(addr, msg.get(), remote_ufrag)) { |
| 942 // Received conflicting role from the peer. | 1045 // Received conflicting role from the peer. |
| 943 LOG(LS_INFO) << "Received conflicting role from the peer."; | 1046 LOG(LS_INFO) << "Received conflicting role from the peer."; |
| 944 return; | 1047 return; |
| 945 } | 1048 } |
| 946 | 1049 |
| 947 // Incoming, validated stun request from remote peer. | 1050 // Incoming, validated stun request from remote peer. |
| 948 // This call will also set the connection readable. | 1051 // This call will also set the connection readable. |
| 949 port_->SendBindingResponse(msg.get(), addr); | 1052 port_->SendBindingResponse(msg.get(), addr); |
| 950 | 1053 |
| 951 // If timed out sending writability checks, start up again | 1054 // If timed out sending writability checks, start up again |
| 952 if (!pruned_ && (write_state_ == STATE_WRITE_TIMEOUT)) | 1055 if (!pruned_ && (write_state_ == STATE_WRITE_TIMEOUT)) |
| 953 set_write_state(STATE_WRITE_INIT); | 1056 set_write_state(STATE_WRITE_INIT); |
| 954 | 1057 |
| 955 if (port_->GetIceRole() == ICEROLE_CONTROLLED) { | 1058 if ((port_->IsStandardIce()) && |
| 1059 (port_->GetIceRole() == ICEROLE_CONTROLLED)) { |
| 956 const StunByteStringAttribute* use_candidate_attr = | 1060 const StunByteStringAttribute* use_candidate_attr = |
| 957 msg->GetByteString(STUN_ATTR_USE_CANDIDATE); | 1061 msg->GetByteString(STUN_ATTR_USE_CANDIDATE); |
| 958 if (use_candidate_attr) { | 1062 if (use_candidate_attr) { |
| 959 set_nominated(true); | 1063 set_nominated(true); |
| 960 SignalNominated(this); | 1064 SignalNominated(this); |
| 961 } | 1065 } |
| 962 } | 1066 } |
| 963 } else { | 1067 } else { |
| 964 // The packet had the right local username, but the remote username | 1068 // The packet had the right local username, but the remote username |
| 965 // was not the right one for the remote address. | 1069 // was not the right one for the remote address. |
| 966 LOG_J(LS_ERROR, this) | 1070 LOG_J(LS_ERROR, this) |
| 967 << "Received STUN request with bad remote username " | 1071 << "Received STUN request with bad remote username " |
| 968 << remote_ufrag; | 1072 << remote_ufrag; |
| 969 port_->SendBindingErrorResponse(msg.get(), addr, | 1073 port_->SendBindingErrorResponse(msg.get(), addr, |
| 970 STUN_ERROR_UNAUTHORIZED, | 1074 STUN_ERROR_UNAUTHORIZED, |
| 971 STUN_ERROR_REASON_UNAUTHORIZED); | 1075 STUN_ERROR_REASON_UNAUTHORIZED); |
| 972 | 1076 |
| 973 } | 1077 } |
| 974 break; | 1078 break; |
| 975 | 1079 |
| 976 // Response from remote peer. Does it match request sent? | 1080 // Response from remote peer. Does it match request sent? |
| 977 // This doesn't just check, it makes callbacks if transaction | 1081 // This doesn't just check, it makes callbacks if transaction |
| 978 // id's match. | 1082 // id's match. |
| 979 case STUN_BINDING_RESPONSE: | 1083 case STUN_BINDING_RESPONSE: |
| 980 case STUN_BINDING_ERROR_RESPONSE: | 1084 case STUN_BINDING_ERROR_RESPONSE: |
| 981 if (msg->ValidateMessageIntegrity( | 1085 if (port_->IsGoogleIce() || |
| 1086 msg->ValidateMessageIntegrity( |
| 982 data, size, remote_candidate().password())) { | 1087 data, size, remote_candidate().password())) { |
| 983 requests_.CheckResponse(msg.get()); | 1088 requests_.CheckResponse(msg.get()); |
| 984 } | 1089 } |
| 985 // Otherwise silently discard the response message. | 1090 // Otherwise silently discard the response message. |
| 986 break; | 1091 break; |
| 987 | 1092 |
| 988 // Remote end point sent an STUN indication instead of regular | 1093 // Remote end point sent an STUN indication instead of regular |
| 989 // binding request. In this case |last_ping_received_| will be updated. | 1094 // binding request. In this case |last_ping_received_| will be updated. |
| 990 // Otherwise we can mark connection to read timeout. No response will be | 1095 // Otherwise we can mark connection to read timeout. No response will be |
| 991 // sent in this scenario. | 1096 // sent in this scenario. |
| 992 case STUN_BINDING_INDICATION: | 1097 case STUN_BINDING_INDICATION: |
| 993 if (read_state_ == STATE_READABLE) { | 1098 if (port_->IsStandardIce() && read_state_ == STATE_READABLE) { |
| 994 ReceivedPing(); | 1099 ReceivedPing(); |
| 995 } else { | 1100 } else { |
| 996 LOG_J(LS_WARNING, this) << "Received STUN binding indication " | 1101 LOG_J(LS_WARNING, this) << "Received STUN binding indication " |
| 997 << "from an unreadable connection."; | 1102 << "from an unreadable connection."; |
| 998 } | 1103 } |
| 999 break; | 1104 break; |
| 1000 | 1105 |
| 1001 default: | 1106 default: |
| 1002 ASSERT(false); | 1107 ASSERT(false); |
| 1003 break; | 1108 break; |
| (...skipping 47 matching lines...) Expand 10 before | Expand all | Expand 10 after Loading... |
| 1051 PrintPingsSinceLastResponse(&pings, 5); | 1156 PrintPingsSinceLastResponse(&pings, 5); |
| 1052 LOG_J(LS_VERBOSE, this) << "UpdateState()" | 1157 LOG_J(LS_VERBOSE, this) << "UpdateState()" |
| 1053 << ", ms since last received response=" | 1158 << ", ms since last received response=" |
| 1054 << now - last_ping_response_received_ | 1159 << now - last_ping_response_received_ |
| 1055 << ", ms since last received data=" | 1160 << ", ms since last received data=" |
| 1056 << now - last_data_received_ | 1161 << now - last_data_received_ |
| 1057 << ", rtt=" << rtt | 1162 << ", rtt=" << rtt |
| 1058 << ", pings_since_last_response=" << pings; | 1163 << ", pings_since_last_response=" << pings; |
| 1059 } | 1164 } |
| 1060 | 1165 |
| 1166 // Check the readable state. |
| 1167 // |
| 1168 // Since we don't know how many pings the other side has attempted, the best |
| 1169 // test we can do is a simple window. |
| 1170 // If other side has not sent ping after connection has become readable, use |
| 1171 // |last_data_received_| as the indication. |
| 1172 // If remote endpoint is doing RFC 5245, it's not required to send ping |
| 1173 // after connection is established. If this connection is serving a data |
| 1174 // channel, it may not be in a position to send media continuously. Do not |
| 1175 // mark connection timeout if it's in RFC5245 mode. |
| 1176 // Below check will be performed with end point if it's doing google-ice. |
| 1177 if (port_->IsGoogleIce() && (read_state_ == STATE_READABLE) && |
| 1178 (last_ping_received_ + CONNECTION_READ_TIMEOUT <= now) && |
| 1179 (last_data_received_ + CONNECTION_READ_TIMEOUT <= now)) { |
| 1180 LOG_J(LS_INFO, this) << "Unreadable after " << now - last_ping_received_ |
| 1181 << " ms without a ping," |
| 1182 << " ms since last received response=" |
| 1183 << now - last_ping_response_received_ |
| 1184 << " ms since last received data=" |
| 1185 << now - last_data_received_ |
| 1186 << " rtt=" << rtt; |
| 1187 set_read_state(STATE_READ_TIMEOUT); |
| 1188 } |
| 1189 |
| 1061 // Check the writable state. (The order of these checks is important.) | 1190 // Check the writable state. (The order of these checks is important.) |
| 1062 // | 1191 // |
| 1063 // Before becoming unwritable, we allow for a fixed number of pings to fail | 1192 // Before becoming unwritable, we allow for a fixed number of pings to fail |
| 1064 // (i.e., receive no response). We also have to give the response time to | 1193 // (i.e., receive no response). We also have to give the response time to |
| 1065 // get back, so we include a conservative estimate of this. | 1194 // get back, so we include a conservative estimate of this. |
| 1066 // | 1195 // |
| 1067 // Before timing out writability, we give a fixed amount of time. This is to | 1196 // Before timing out writability, we give a fixed amount of time. This is to |
| 1068 // allow for changes in network conditions. | 1197 // allow for changes in network conditions. |
| 1069 | 1198 |
| 1070 if ((write_state_ == STATE_WRITABLE) && | 1199 if ((write_state_ == STATE_WRITABLE) && |
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| 1209 LOG_JV(sev, this) << "Received STUN ping response" | 1338 LOG_JV(sev, this) << "Received STUN ping response" |
| 1210 << ", id=" << rtc::hex_encode(request->id()) | 1339 << ", id=" << rtc::hex_encode(request->id()) |
| 1211 << ", code=0" // Makes logging easier to parse. | 1340 << ", code=0" // Makes logging easier to parse. |
| 1212 << ", rtt=" << rtt | 1341 << ", rtt=" << rtt |
| 1213 << ", use_candidate=" << use_candidate | 1342 << ", use_candidate=" << use_candidate |
| 1214 << ", pings_since_last_response=" << pings; | 1343 << ", pings_since_last_response=" << pings; |
| 1215 } | 1344 } |
| 1216 | 1345 |
| 1217 rtt_ = (RTT_RATIO * rtt_ + rtt) / (RTT_RATIO + 1); | 1346 rtt_ = (RTT_RATIO * rtt_ + rtt) / (RTT_RATIO + 1); |
| 1218 | 1347 |
| 1219 MaybeAddPrflxCandidate(request, response); | 1348 // Peer reflexive candidate is only for RFC 5245 ICE. |
| 1349 if (port_->IsStandardIce()) { |
| 1350 MaybeAddPrflxCandidate(request, response); |
| 1351 } |
| 1220 } | 1352 } |
| 1221 | 1353 |
| 1222 void Connection::OnConnectionRequestErrorResponse(ConnectionRequest* request, | 1354 void Connection::OnConnectionRequestErrorResponse(ConnectionRequest* request, |
| 1223 StunMessage* response) { | 1355 StunMessage* response) { |
| 1224 const StunErrorCodeAttribute* error_attr = response->GetErrorCode(); | 1356 const StunErrorCodeAttribute* error_attr = response->GetErrorCode(); |
| 1225 int error_code = STUN_ERROR_GLOBAL_FAILURE; | 1357 int error_code = STUN_ERROR_GLOBAL_FAILURE; |
| 1226 if (error_attr) { | 1358 if (error_attr) { |
| 1227 error_code = error_attr->code(); | 1359 if (port_->IsGoogleIce()) { |
| 1360 // When doing GICE, the error code is written out incorrectly, so we need |
| 1361 // to unmunge it here. |
| 1362 error_code = error_attr->eclass() * 256 + error_attr->number(); |
| 1363 } else { |
| 1364 error_code = error_attr->code(); |
| 1365 } |
| 1228 } | 1366 } |
| 1229 | 1367 |
| 1230 LOG_J(LS_INFO, this) << "Received STUN error response" | 1368 LOG_J(LS_INFO, this) << "Received STUN error response" |
| 1231 << " id=" << rtc::hex_encode(request->id()) | 1369 << " id=" << rtc::hex_encode(request->id()) |
| 1232 << " code=" << error_code | 1370 << " code=" << error_code |
| 1233 << " rtt=" << request->Elapsed(); | 1371 << " rtt=" << request->Elapsed(); |
| 1234 | 1372 |
| 1235 if (error_code == STUN_ERROR_UNKNOWN_ATTRIBUTE || | 1373 if (error_code == STUN_ERROR_UNKNOWN_ATTRIBUTE || |
| 1236 error_code == STUN_ERROR_SERVER_ERROR || | 1374 error_code == STUN_ERROR_SERVER_ERROR || |
| 1237 error_code == STUN_ERROR_UNAUTHORIZED) { | 1375 error_code == STUN_ERROR_UNAUTHORIZED) { |
| (...skipping 185 matching lines...) Expand 10 before | Expand all | Expand 10 after Loading... |
| 1423 ASSERT(sent < 0); | 1561 ASSERT(sent < 0); |
| 1424 error_ = port_->GetError(); | 1562 error_ = port_->GetError(); |
| 1425 sent_packets_discarded_++; | 1563 sent_packets_discarded_++; |
| 1426 } else { | 1564 } else { |
| 1427 send_rate_tracker_.Update(sent); | 1565 send_rate_tracker_.Update(sent); |
| 1428 } | 1566 } |
| 1429 return sent; | 1567 return sent; |
| 1430 } | 1568 } |
| 1431 | 1569 |
| 1432 } // namespace cricket | 1570 } // namespace cricket |
| OLD | NEW |