1 //===-- GDBRemoteCommunication.cpp ------------------------------*- C++ -*-===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 10 #include "GDBRemoteCommunication.h" 11 12 // C Includes 13 #include <limits.h> 14 #include <string.h> 15 #include <sys/stat.h> 16 17 // C++ Includes 18 // Other libraries and framework includes 19 #include "lldb/Core/Log.h" 20 #include "lldb/Core/RegularExpression.h" 21 #include "lldb/Core/StreamFile.h" 22 #include "lldb/Core/StreamString.h" 23 #include "lldb/Host/ConnectionFileDescriptor.h" 24 #include "lldb/Host/FileSpec.h" 25 #include "lldb/Host/Host.h" 26 #include "lldb/Host/HostInfo.h" 27 #include "lldb/Host/Pipe.h" 28 #include "lldb/Host/Socket.h" 29 #include "lldb/Host/StringConvert.h" 30 #include "lldb/Host/ThreadLauncher.h" 31 #include "lldb/Target/Platform.h" 32 #include "lldb/Target/Process.h" 33 #include "llvm/ADT/SmallString.h" 34 #include "llvm/Support/ScopedPrinter.h" 35 36 // Project includes 37 #include "ProcessGDBRemoteLog.h" 38 39 #if defined(__APPLE__) 40 #define DEBUGSERVER_BASENAME "debugserver" 41 #else 42 #define DEBUGSERVER_BASENAME "lldb-server" 43 #endif 44 45 #if defined(HAVE_LIBCOMPRESSION) 46 #include <compression.h> 47 #endif 48 49 #if defined(HAVE_LIBZ) 50 #include <zlib.h> 51 #endif 52 53 using namespace lldb; 54 using namespace lldb_private; 55 using namespace lldb_private::process_gdb_remote; 56 57 GDBRemoteCommunication::History::History(uint32_t size) 58 : m_packets(), m_curr_idx(0), m_total_packet_count(0), 59 m_dumped_to_log(false) { 60 m_packets.resize(size); 61 } 62 63 GDBRemoteCommunication::History::~History() {} 64 65 void GDBRemoteCommunication::History::AddPacket(char packet_char, 66 PacketType type, 67 uint32_t bytes_transmitted) { 68 const size_t size = m_packets.size(); 69 if (size > 0) { 70 const uint32_t idx = GetNextIndex(); 71 m_packets[idx].packet.assign(1, packet_char); 72 m_packets[idx].type = type; 73 m_packets[idx].bytes_transmitted = bytes_transmitted; 74 m_packets[idx].packet_idx = m_total_packet_count; 75 m_packets[idx].tid = Host::GetCurrentThreadID(); 76 } 77 } 78 79 void GDBRemoteCommunication::History::AddPacket(const std::string &src, 80 uint32_t src_len, 81 PacketType type, 82 uint32_t bytes_transmitted) { 83 const size_t size = m_packets.size(); 84 if (size > 0) { 85 const uint32_t idx = GetNextIndex(); 86 m_packets[idx].packet.assign(src, 0, src_len); 87 m_packets[idx].type = type; 88 m_packets[idx].bytes_transmitted = bytes_transmitted; 89 m_packets[idx].packet_idx = m_total_packet_count; 90 m_packets[idx].tid = Host::GetCurrentThreadID(); 91 } 92 } 93 94 void GDBRemoteCommunication::History::Dump(Stream &strm) const { 95 const uint32_t size = GetNumPacketsInHistory(); 96 const uint32_t first_idx = GetFirstSavedPacketIndex(); 97 const uint32_t stop_idx = m_curr_idx + size; 98 for (uint32_t i = first_idx; i < stop_idx; ++i) { 99 const uint32_t idx = NormalizeIndex(i); 100 const Entry &entry = m_packets[idx]; 101 if (entry.type == ePacketTypeInvalid || entry.packet.empty()) 102 break; 103 strm.Printf("history[%u] tid=0x%4.4" PRIx64 " <%4u> %s packet: %s\n", 104 entry.packet_idx, entry.tid, entry.bytes_transmitted, 105 (entry.type == ePacketTypeSend) ? "send" : "read", 106 entry.packet.c_str()); 107 } 108 } 109 110 void GDBRemoteCommunication::History::Dump(Log *log) const { 111 if (log && !m_dumped_to_log) { 112 m_dumped_to_log = true; 113 const uint32_t size = GetNumPacketsInHistory(); 114 const uint32_t first_idx = GetFirstSavedPacketIndex(); 115 const uint32_t stop_idx = m_curr_idx + size; 116 for (uint32_t i = first_idx; i < stop_idx; ++i) { 117 const uint32_t idx = NormalizeIndex(i); 118 const Entry &entry = m_packets[idx]; 119 if (entry.type == ePacketTypeInvalid || entry.packet.empty()) 120 break; 121 log->Printf("history[%u] tid=0x%4.4" PRIx64 " <%4u> %s packet: %s", 122 entry.packet_idx, entry.tid, entry.bytes_transmitted, 123 (entry.type == ePacketTypeSend) ? "send" : "read", 124 entry.packet.c_str()); 125 } 126 } 127 } 128 129 //---------------------------------------------------------------------- 130 // GDBRemoteCommunication constructor 131 //---------------------------------------------------------------------- 132 GDBRemoteCommunication::GDBRemoteCommunication(const char *comm_name, 133 const char *listener_name) 134 : Communication(comm_name), 135 #ifdef LLDB_CONFIGURATION_DEBUG 136 m_packet_timeout(1000), 137 #else 138 m_packet_timeout(1), 139 #endif 140 m_echo_number(0), m_supports_qEcho(eLazyBoolCalculate), m_history(512), 141 m_send_acks(true), m_compression_type(CompressionType::None), 142 m_listen_url() { 143 } 144 145 //---------------------------------------------------------------------- 146 // Destructor 147 //---------------------------------------------------------------------- 148 GDBRemoteCommunication::~GDBRemoteCommunication() { 149 if (IsConnected()) { 150 Disconnect(); 151 } 152 153 // Stop the communications read thread which is used to parse all 154 // incoming packets. This function will block until the read 155 // thread returns. 156 if (m_read_thread_enabled) 157 StopReadThread(); 158 } 159 160 char GDBRemoteCommunication::CalculcateChecksum(llvm::StringRef payload) { 161 int checksum = 0; 162 163 for (char c : payload) 164 checksum += c; 165 166 return checksum & 255; 167 } 168 169 size_t GDBRemoteCommunication::SendAck() { 170 Log *log(ProcessGDBRemoteLog::GetLogIfAllCategoriesSet(GDBR_LOG_PACKETS)); 171 ConnectionStatus status = eConnectionStatusSuccess; 172 char ch = '+'; 173 const size_t bytes_written = Write(&ch, 1, status, NULL); 174 if (log) 175 log->Printf("<%4" PRIu64 "> send packet: %c", (uint64_t)bytes_written, ch); 176 m_history.AddPacket(ch, History::ePacketTypeSend, bytes_written); 177 return bytes_written; 178 } 179 180 size_t GDBRemoteCommunication::SendNack() { 181 Log *log(ProcessGDBRemoteLog::GetLogIfAllCategoriesSet(GDBR_LOG_PACKETS)); 182 ConnectionStatus status = eConnectionStatusSuccess; 183 char ch = '-'; 184 const size_t bytes_written = Write(&ch, 1, status, NULL); 185 if (log) 186 log->Printf("<%4" PRIu64 "> send packet: %c", (uint64_t)bytes_written, ch); 187 m_history.AddPacket(ch, History::ePacketTypeSend, bytes_written); 188 return bytes_written; 189 } 190 191 GDBRemoteCommunication::PacketResult 192 GDBRemoteCommunication::SendPacketNoLock(llvm::StringRef payload) { 193 if (IsConnected()) { 194 StreamString packet(0, 4, eByteOrderBig); 195 196 packet.PutChar('$'); 197 packet.Write(payload.data(), payload.size()); 198 packet.PutChar('#'); 199 packet.PutHex8(CalculcateChecksum(payload)); 200 201 Log *log(ProcessGDBRemoteLog::GetLogIfAllCategoriesSet(GDBR_LOG_PACKETS)); 202 ConnectionStatus status = eConnectionStatusSuccess; 203 // TODO: Don't shimmy through a std::string, just use StringRef. 204 std::string packet_str = packet.GetString(); 205 const char *packet_data = packet_str.c_str(); 206 const size_t packet_length = packet.GetSize(); 207 size_t bytes_written = Write(packet_data, packet_length, status, NULL); 208 if (log) { 209 size_t binary_start_offset = 0; 210 if (strncmp(packet_data, "$vFile:pwrite:", strlen("$vFile:pwrite:")) == 211 0) { 212 const char *first_comma = strchr(packet_data, ','); 213 if (first_comma) { 214 const char *second_comma = strchr(first_comma + 1, ','); 215 if (second_comma) 216 binary_start_offset = second_comma - packet_data + 1; 217 } 218 } 219 220 // If logging was just enabled and we have history, then dump out what 221 // we have to the log so we get the historical context. The Dump() call 222 // that 223 // logs all of the packet will set a boolean so that we don't dump this 224 // more 225 // than once 226 if (!m_history.DidDumpToLog()) 227 m_history.Dump(log); 228 229 if (binary_start_offset) { 230 StreamString strm; 231 // Print non binary data header 232 strm.Printf("<%4" PRIu64 "> send packet: %.*s", (uint64_t)bytes_written, 233 (int)binary_start_offset, packet_data); 234 const uint8_t *p; 235 // Print binary data exactly as sent 236 for (p = (const uint8_t *)packet_data + binary_start_offset; *p != '#'; 237 ++p) 238 strm.Printf("\\x%2.2x", *p); 239 // Print the checksum 240 strm.Printf("%*s", (int)3, p); 241 log->PutString(strm.GetString()); 242 } else 243 log->Printf("<%4" PRIu64 "> send packet: %.*s", (uint64_t)bytes_written, 244 (int)packet_length, packet_data); 245 } 246 247 m_history.AddPacket(packet.GetString(), packet_length, 248 History::ePacketTypeSend, bytes_written); 249 250 if (bytes_written == packet_length) { 251 if (GetSendAcks()) 252 return GetAck(); 253 else 254 return PacketResult::Success; 255 } else { 256 if (log) 257 log->Printf("error: failed to send packet: %.*s", (int)packet_length, 258 packet_data); 259 } 260 } 261 return PacketResult::ErrorSendFailed; 262 } 263 264 GDBRemoteCommunication::PacketResult GDBRemoteCommunication::GetAck() { 265 StringExtractorGDBRemote packet; 266 PacketResult result = ReadPacket(packet, GetPacketTimeout(), false); 267 if (result == PacketResult::Success) { 268 if (packet.GetResponseType() == 269 StringExtractorGDBRemote::ResponseType::eAck) 270 return PacketResult::Success; 271 else 272 return PacketResult::ErrorSendAck; 273 } 274 return result; 275 } 276 277 GDBRemoteCommunication::PacketResult 278 GDBRemoteCommunication::ReadPacket(StringExtractorGDBRemote &response, 279 Timeout<std::micro> timeout, 280 bool sync_on_timeout) { 281 if (m_read_thread_enabled) 282 return PopPacketFromQueue(response, timeout); 283 else 284 return WaitForPacketNoLock(response, timeout, sync_on_timeout); 285 } 286 287 // This function is called when a packet is requested. 288 // A whole packet is popped from the packet queue and returned to the caller. 289 // Packets are placed into this queue from the communication read thread. 290 // See GDBRemoteCommunication::AppendBytesToCache. 291 GDBRemoteCommunication::PacketResult 292 GDBRemoteCommunication::PopPacketFromQueue(StringExtractorGDBRemote &response, 293 Timeout<std::micro> timeout) { 294 auto pred = [&] { return !m_packet_queue.empty() && IsConnected(); }; 295 // lock down the packet queue 296 std::unique_lock<std::mutex> lock(m_packet_queue_mutex); 297 298 if (!timeout) 299 m_condition_queue_not_empty.wait(lock, pred); 300 else { 301 if (!m_condition_queue_not_empty.wait_for(lock, *timeout, pred)) 302 return PacketResult::ErrorReplyTimeout; 303 if (!IsConnected()) 304 return PacketResult::ErrorDisconnected; 305 } 306 307 // get the front element of the queue 308 response = m_packet_queue.front(); 309 310 // remove the front element 311 m_packet_queue.pop(); 312 313 // we got a packet 314 return PacketResult::Success; 315 } 316 317 GDBRemoteCommunication::PacketResult 318 GDBRemoteCommunication::WaitForPacketNoLock(StringExtractorGDBRemote &packet, 319 Timeout<std::micro> timeout, 320 bool sync_on_timeout) { 321 uint8_t buffer[8192]; 322 Error error; 323 324 Log *log(ProcessGDBRemoteLog::GetLogIfAllCategoriesSet(GDBR_LOG_PACKETS | 325 GDBR_LOG_VERBOSE)); 326 327 // Check for a packet from our cache first without trying any reading... 328 if (CheckForPacket(NULL, 0, packet) != PacketType::Invalid) 329 return PacketResult::Success; 330 331 bool timed_out = false; 332 bool disconnected = false; 333 while (IsConnected() && !timed_out) { 334 lldb::ConnectionStatus status = eConnectionStatusNoConnection; 335 size_t bytes_read = Read(buffer, sizeof(buffer), timeout, status, &error); 336 337 if (log) 338 log->Printf("%s: Read (buffer, (sizeof(buffer), timeout = %ld us, " 339 "status = %s, error = %s) => bytes_read = %" PRIu64, 340 LLVM_PRETTY_FUNCTION, long(timeout ? timeout->count() : -1), 341 Communication::ConnectionStatusAsCString(status), 342 error.AsCString(), (uint64_t)bytes_read); 343 344 if (bytes_read > 0) { 345 if (CheckForPacket(buffer, bytes_read, packet) != PacketType::Invalid) 346 return PacketResult::Success; 347 } else { 348 switch (status) { 349 case eConnectionStatusTimedOut: 350 case eConnectionStatusInterrupted: 351 if (sync_on_timeout) { 352 //------------------------------------------------------------------ 353 /// Sync the remote GDB server and make sure we get a response that 354 /// corresponds to what we send. 355 /// 356 /// Sends a "qEcho" packet and makes sure it gets the exact packet 357 /// echoed back. If the qEcho packet isn't supported, we send a qC 358 /// packet and make sure we get a valid thread ID back. We use the 359 /// "qC" packet since its response if very unique: is responds with 360 /// "QC%x" where %x is the thread ID of the current thread. This 361 /// makes the response unique enough from other packet responses to 362 /// ensure we are back on track. 363 /// 364 /// This packet is needed after we time out sending a packet so we 365 /// can ensure that we are getting the response for the packet we 366 /// are sending. There are no sequence IDs in the GDB remote 367 /// protocol (there used to be, but they are not supported anymore) 368 /// so if you timeout sending packet "abc", you might then send 369 /// packet "cde" and get the response for the previous "abc" packet. 370 /// Many responses are "OK" or "" (unsupported) or "EXX" (error) so 371 /// many responses for packets can look like responses for other 372 /// packets. So if we timeout, we need to ensure that we can get 373 /// back on track. If we can't get back on track, we must 374 /// disconnect. 375 //------------------------------------------------------------------ 376 bool sync_success = false; 377 bool got_actual_response = false; 378 // We timed out, we need to sync back up with the 379 char echo_packet[32]; 380 int echo_packet_len = 0; 381 RegularExpression response_regex; 382 383 if (m_supports_qEcho == eLazyBoolYes) { 384 echo_packet_len = ::snprintf(echo_packet, sizeof(echo_packet), 385 "qEcho:%u", ++m_echo_number); 386 std::string regex_str = "^"; 387 regex_str += echo_packet; 388 regex_str += "$"; 389 response_regex.Compile(regex_str); 390 } else { 391 echo_packet_len = 392 ::snprintf(echo_packet, sizeof(echo_packet), "qC"); 393 response_regex.Compile(llvm::StringRef("^QC[0-9A-Fa-f]+$")); 394 } 395 396 PacketResult echo_packet_result = 397 SendPacketNoLock(llvm::StringRef(echo_packet, echo_packet_len)); 398 if (echo_packet_result == PacketResult::Success) { 399 const uint32_t max_retries = 3; 400 uint32_t successful_responses = 0; 401 for (uint32_t i = 0; i < max_retries; ++i) { 402 StringExtractorGDBRemote echo_response; 403 echo_packet_result = 404 WaitForPacketNoLock(echo_response, timeout, false); 405 if (echo_packet_result == PacketResult::Success) { 406 ++successful_responses; 407 if (response_regex.Execute(echo_response.GetStringRef())) { 408 sync_success = true; 409 break; 410 } else if (successful_responses == 1) { 411 // We got something else back as the first successful 412 // response, it probably is 413 // the response to the packet we actually wanted, so copy it 414 // over if this 415 // is the first success and continue to try to get the qEcho 416 // response 417 packet = echo_response; 418 got_actual_response = true; 419 } 420 } else if (echo_packet_result == PacketResult::ErrorReplyTimeout) 421 continue; // Packet timed out, continue waiting for a response 422 else 423 break; // Something else went wrong getting the packet back, we 424 // failed and are done trying 425 } 426 } 427 428 // We weren't able to sync back up with the server, we must abort 429 // otherwise 430 // all responses might not be from the right packets... 431 if (sync_success) { 432 // We timed out, but were able to recover 433 if (got_actual_response) { 434 // We initially timed out, but we did get a response that came in 435 // before the successful 436 // reply to our qEcho packet, so lets say everything is fine... 437 return PacketResult::Success; 438 } 439 } else { 440 disconnected = true; 441 Disconnect(); 442 } 443 } 444 timed_out = true; 445 break; 446 case eConnectionStatusSuccess: 447 // printf ("status = success but error = %s\n", 448 // error.AsCString("<invalid>")); 449 break; 450 451 case eConnectionStatusEndOfFile: 452 case eConnectionStatusNoConnection: 453 case eConnectionStatusLostConnection: 454 case eConnectionStatusError: 455 disconnected = true; 456 Disconnect(); 457 break; 458 } 459 } 460 } 461 packet.Clear(); 462 if (disconnected) 463 return PacketResult::ErrorDisconnected; 464 if (timed_out) 465 return PacketResult::ErrorReplyTimeout; 466 else 467 return PacketResult::ErrorReplyFailed; 468 } 469 470 bool GDBRemoteCommunication::DecompressPacket() { 471 Log *log(ProcessGDBRemoteLog::GetLogIfAllCategoriesSet(GDBR_LOG_PACKETS)); 472 473 if (!CompressionIsEnabled()) 474 return true; 475 476 size_t pkt_size = m_bytes.size(); 477 478 // Smallest possible compressed packet is $N#00 - an uncompressed empty reply, 479 // most commonly indicating 480 // an unsupported packet. Anything less than 5 characters, it's definitely 481 // not a compressed packet. 482 if (pkt_size < 5) 483 return true; 484 485 if (m_bytes[0] != '$' && m_bytes[0] != '%') 486 return true; 487 if (m_bytes[1] != 'C' && m_bytes[1] != 'N') 488 return true; 489 490 size_t hash_mark_idx = m_bytes.find('#'); 491 if (hash_mark_idx == std::string::npos) 492 return true; 493 if (hash_mark_idx + 2 >= m_bytes.size()) 494 return true; 495 496 if (!::isxdigit(m_bytes[hash_mark_idx + 1]) || 497 !::isxdigit(m_bytes[hash_mark_idx + 2])) 498 return true; 499 500 size_t content_length = 501 pkt_size - 502 5; // not counting '$', 'C' | 'N', '#', & the two hex checksum chars 503 size_t content_start = 2; // The first character of the 504 // compressed/not-compressed text of the packet 505 size_t checksum_idx = 506 hash_mark_idx + 507 1; // The first character of the two hex checksum characters 508 509 // Normally size_of_first_packet == m_bytes.size() but m_bytes may contain 510 // multiple packets. 511 // size_of_first_packet is the size of the initial packet which we'll replace 512 // with the decompressed 513 // version of, leaving the rest of m_bytes unmodified. 514 size_t size_of_first_packet = hash_mark_idx + 3; 515 516 // Compressed packets ("$C") start with a base10 number which is the size of 517 // the uncompressed payload, 518 // then a : and then the compressed data. e.g. $C1024:<binary>#00 519 // Update content_start and content_length to only include the <binary> part 520 // of the packet. 521 522 uint64_t decompressed_bufsize = ULONG_MAX; 523 if (m_bytes[1] == 'C') { 524 size_t i = content_start; 525 while (i < hash_mark_idx && isdigit(m_bytes[i])) 526 i++; 527 if (i < hash_mark_idx && m_bytes[i] == ':') { 528 i++; 529 content_start = i; 530 content_length = hash_mark_idx - content_start; 531 std::string bufsize_str(m_bytes.data() + 2, i - 2 - 1); 532 errno = 0; 533 decompressed_bufsize = ::strtoul(bufsize_str.c_str(), NULL, 10); 534 if (errno != 0 || decompressed_bufsize == ULONG_MAX) { 535 m_bytes.erase(0, size_of_first_packet); 536 return false; 537 } 538 } 539 } 540 541 if (GetSendAcks()) { 542 char packet_checksum_cstr[3]; 543 packet_checksum_cstr[0] = m_bytes[checksum_idx]; 544 packet_checksum_cstr[1] = m_bytes[checksum_idx + 1]; 545 packet_checksum_cstr[2] = '\0'; 546 long packet_checksum = strtol(packet_checksum_cstr, NULL, 16); 547 548 long actual_checksum = CalculcateChecksum( 549 llvm::StringRef(m_bytes).substr(1, hash_mark_idx - 1)); 550 bool success = packet_checksum == actual_checksum; 551 if (!success) { 552 if (log) 553 log->Printf( 554 "error: checksum mismatch: %.*s expected 0x%2.2x, got 0x%2.2x", 555 (int)(pkt_size), m_bytes.c_str(), (uint8_t)packet_checksum, 556 (uint8_t)actual_checksum); 557 } 558 // Send the ack or nack if needed 559 if (!success) { 560 SendNack(); 561 m_bytes.erase(0, size_of_first_packet); 562 return false; 563 } else { 564 SendAck(); 565 } 566 } 567 568 if (m_bytes[1] == 'N') { 569 // This packet was not compressed -- delete the 'N' character at the 570 // start and the packet may be processed as-is. 571 m_bytes.erase(1, 1); 572 return true; 573 } 574 575 // Reverse the gdb-remote binary escaping that was done to the compressed text 576 // to 577 // guard characters like '$', '#', '}', etc. 578 std::vector<uint8_t> unescaped_content; 579 unescaped_content.reserve(content_length); 580 size_t i = content_start; 581 while (i < hash_mark_idx) { 582 if (m_bytes[i] == '}') { 583 i++; 584 unescaped_content.push_back(m_bytes[i] ^ 0x20); 585 } else { 586 unescaped_content.push_back(m_bytes[i]); 587 } 588 i++; 589 } 590 591 uint8_t *decompressed_buffer = nullptr; 592 size_t decompressed_bytes = 0; 593 594 if (decompressed_bufsize != ULONG_MAX) { 595 decompressed_buffer = (uint8_t *)malloc(decompressed_bufsize + 1); 596 if (decompressed_buffer == nullptr) { 597 m_bytes.erase(0, size_of_first_packet); 598 return false; 599 } 600 } 601 602 #if defined(HAVE_LIBCOMPRESSION) 603 // libcompression is weak linked so check that compression_decode_buffer() is 604 // available 605 if (compression_decode_buffer != NULL && 606 (m_compression_type == CompressionType::ZlibDeflate || 607 m_compression_type == CompressionType::LZFSE || 608 m_compression_type == CompressionType::LZ4)) { 609 compression_algorithm compression_type; 610 if (m_compression_type == CompressionType::LZFSE) 611 compression_type = COMPRESSION_LZFSE; 612 else if (m_compression_type == CompressionType::ZlibDeflate) 613 compression_type = COMPRESSION_ZLIB; 614 else if (m_compression_type == CompressionType::LZ4) 615 compression_type = COMPRESSION_LZ4_RAW; 616 else if (m_compression_type == CompressionType::LZMA) 617 compression_type = COMPRESSION_LZMA; 618 619 // If we have the expected size of the decompressed payload, we can allocate 620 // the right-sized buffer and do it. If we don't have that information, 621 // we'll 622 // need to try decoding into a big buffer and if the buffer wasn't big 623 // enough, 624 // increase it and try again. 625 626 if (decompressed_bufsize != ULONG_MAX && decompressed_buffer != nullptr) { 627 decompressed_bytes = compression_decode_buffer( 628 decompressed_buffer, decompressed_bufsize + 10, 629 (uint8_t *)unescaped_content.data(), unescaped_content.size(), NULL, 630 compression_type); 631 } 632 } 633 #endif 634 635 #if defined(HAVE_LIBZ) 636 if (decompressed_bytes == 0 && decompressed_bufsize != ULONG_MAX && 637 decompressed_buffer != nullptr && 638 m_compression_type == CompressionType::ZlibDeflate) { 639 z_stream stream; 640 memset(&stream, 0, sizeof(z_stream)); 641 stream.next_in = (Bytef *)unescaped_content.data(); 642 stream.avail_in = (uInt)unescaped_content.size(); 643 stream.total_in = 0; 644 stream.next_out = (Bytef *)decompressed_buffer; 645 stream.avail_out = decompressed_bufsize; 646 stream.total_out = 0; 647 stream.zalloc = Z_NULL; 648 stream.zfree = Z_NULL; 649 stream.opaque = Z_NULL; 650 651 if (inflateInit2(&stream, -15) == Z_OK) { 652 int status = inflate(&stream, Z_NO_FLUSH); 653 inflateEnd(&stream); 654 if (status == Z_STREAM_END) { 655 decompressed_bytes = stream.total_out; 656 } 657 } 658 } 659 #endif 660 661 if (decompressed_bytes == 0 || decompressed_buffer == nullptr) { 662 if (decompressed_buffer) 663 free(decompressed_buffer); 664 m_bytes.erase(0, size_of_first_packet); 665 return false; 666 } 667 668 std::string new_packet; 669 new_packet.reserve(decompressed_bytes + 6); 670 new_packet.push_back(m_bytes[0]); 671 new_packet.append((const char *)decompressed_buffer, decompressed_bytes); 672 new_packet.push_back('#'); 673 if (GetSendAcks()) { 674 uint8_t decompressed_checksum = CalculcateChecksum( 675 llvm::StringRef((const char *)decompressed_buffer, decompressed_bytes)); 676 char decompressed_checksum_str[3]; 677 snprintf(decompressed_checksum_str, 3, "%02x", decompressed_checksum); 678 new_packet.append(decompressed_checksum_str); 679 } else { 680 new_packet.push_back('0'); 681 new_packet.push_back('0'); 682 } 683 684 m_bytes.replace(0, size_of_first_packet, new_packet.data(), 685 new_packet.size()); 686 687 free(decompressed_buffer); 688 return true; 689 } 690 691 GDBRemoteCommunication::PacketType 692 GDBRemoteCommunication::CheckForPacket(const uint8_t *src, size_t src_len, 693 StringExtractorGDBRemote &packet) { 694 // Put the packet data into the buffer in a thread safe fashion 695 std::lock_guard<std::recursive_mutex> guard(m_bytes_mutex); 696 697 Log *log(ProcessGDBRemoteLog::GetLogIfAllCategoriesSet(GDBR_LOG_PACKETS)); 698 699 if (src && src_len > 0) { 700 if (log && log->GetVerbose()) { 701 StreamString s; 702 log->Printf("GDBRemoteCommunication::%s adding %u bytes: %.*s", 703 __FUNCTION__, (uint32_t)src_len, (uint32_t)src_len, src); 704 } 705 m_bytes.append((const char *)src, src_len); 706 } 707 708 bool isNotifyPacket = false; 709 710 // Parse up the packets into gdb remote packets 711 if (!m_bytes.empty()) { 712 // end_idx must be one past the last valid packet byte. Start 713 // it off with an invalid value that is the same as the current 714 // index. 715 size_t content_start = 0; 716 size_t content_length = 0; 717 size_t total_length = 0; 718 size_t checksum_idx = std::string::npos; 719 720 // Size of packet before it is decompressed, for logging purposes 721 size_t original_packet_size = m_bytes.size(); 722 if (CompressionIsEnabled()) { 723 if (DecompressPacket() == false) { 724 packet.Clear(); 725 return GDBRemoteCommunication::PacketType::Standard; 726 } 727 } 728 729 switch (m_bytes[0]) { 730 case '+': // Look for ack 731 case '-': // Look for cancel 732 case '\x03': // ^C to halt target 733 content_length = total_length = 1; // The command is one byte long... 734 break; 735 736 case '%': // Async notify packet 737 isNotifyPacket = true; 738 LLVM_FALLTHROUGH; 739 740 case '$': 741 // Look for a standard gdb packet? 742 { 743 size_t hash_pos = m_bytes.find('#'); 744 if (hash_pos != std::string::npos) { 745 if (hash_pos + 2 < m_bytes.size()) { 746 checksum_idx = hash_pos + 1; 747 // Skip the dollar sign 748 content_start = 1; 749 // Don't include the # in the content or the $ in the content length 750 content_length = hash_pos - 1; 751 752 total_length = 753 hash_pos + 3; // Skip the # and the two hex checksum bytes 754 } else { 755 // Checksum bytes aren't all here yet 756 content_length = std::string::npos; 757 } 758 } 759 } 760 break; 761 762 default: { 763 // We have an unexpected byte and we need to flush all bad 764 // data that is in m_bytes, so we need to find the first 765 // byte that is a '+' (ACK), '-' (NACK), \x03 (CTRL+C interrupt), 766 // or '$' character (start of packet header) or of course, 767 // the end of the data in m_bytes... 768 const size_t bytes_len = m_bytes.size(); 769 bool done = false; 770 uint32_t idx; 771 for (idx = 1; !done && idx < bytes_len; ++idx) { 772 switch (m_bytes[idx]) { 773 case '+': 774 case '-': 775 case '\x03': 776 case '%': 777 case '$': 778 done = true; 779 break; 780 781 default: 782 break; 783 } 784 } 785 if (log) 786 log->Printf("GDBRemoteCommunication::%s tossing %u junk bytes: '%.*s'", 787 __FUNCTION__, idx - 1, idx - 1, m_bytes.c_str()); 788 m_bytes.erase(0, idx - 1); 789 } break; 790 } 791 792 if (content_length == std::string::npos) { 793 packet.Clear(); 794 return GDBRemoteCommunication::PacketType::Invalid; 795 } else if (total_length > 0) { 796 797 // We have a valid packet... 798 assert(content_length <= m_bytes.size()); 799 assert(total_length <= m_bytes.size()); 800 assert(content_length <= total_length); 801 size_t content_end = content_start + content_length; 802 803 bool success = true; 804 std::string &packet_str = packet.GetStringRef(); 805 if (log) { 806 // If logging was just enabled and we have history, then dump out what 807 // we have to the log so we get the historical context. The Dump() call 808 // that 809 // logs all of the packet will set a boolean so that we don't dump this 810 // more 811 // than once 812 if (!m_history.DidDumpToLog()) 813 m_history.Dump(log); 814 815 bool binary = false; 816 // Only detect binary for packets that start with a '$' and have a '#CC' 817 // checksum 818 if (m_bytes[0] == '$' && total_length > 4) { 819 for (size_t i = 0; !binary && i < total_length; ++i) { 820 if (isprint(m_bytes[i]) == 0 && isspace(m_bytes[i]) == 0) { 821 binary = true; 822 } 823 } 824 } 825 if (binary) { 826 StreamString strm; 827 // Packet header... 828 if (CompressionIsEnabled()) 829 strm.Printf("<%4" PRIu64 ":%" PRIu64 "> read packet: %c", 830 (uint64_t)original_packet_size, (uint64_t)total_length, 831 m_bytes[0]); 832 else 833 strm.Printf("<%4" PRIu64 "> read packet: %c", 834 (uint64_t)total_length, m_bytes[0]); 835 for (size_t i = content_start; i < content_end; ++i) { 836 // Remove binary escaped bytes when displaying the packet... 837 const char ch = m_bytes[i]; 838 if (ch == 0x7d) { 839 // 0x7d is the escape character. The next character is to 840 // be XOR'd with 0x20. 841 const char escapee = m_bytes[++i] ^ 0x20; 842 strm.Printf("%2.2x", escapee); 843 } else { 844 strm.Printf("%2.2x", (uint8_t)ch); 845 } 846 } 847 // Packet footer... 848 strm.Printf("%c%c%c", m_bytes[total_length - 3], 849 m_bytes[total_length - 2], m_bytes[total_length - 1]); 850 log->PutString(strm.GetString()); 851 } else { 852 if (CompressionIsEnabled()) 853 log->Printf("<%4" PRIu64 ":%" PRIu64 "> read packet: %.*s", 854 (uint64_t)original_packet_size, (uint64_t)total_length, 855 (int)(total_length), m_bytes.c_str()); 856 else 857 log->Printf("<%4" PRIu64 "> read packet: %.*s", 858 (uint64_t)total_length, (int)(total_length), 859 m_bytes.c_str()); 860 } 861 } 862 863 m_history.AddPacket(m_bytes, total_length, History::ePacketTypeRecv, 864 total_length); 865 866 // Clear packet_str in case there is some existing data in it. 867 packet_str.clear(); 868 // Copy the packet from m_bytes to packet_str expanding the 869 // run-length encoding in the process. 870 // Reserve enough byte for the most common case (no RLE used) 871 packet_str.reserve(m_bytes.length()); 872 for (std::string::const_iterator c = m_bytes.begin() + content_start; 873 c != m_bytes.begin() + content_end; ++c) { 874 if (*c == '*') { 875 // '*' indicates RLE. Next character will give us the 876 // repeat count and previous character is what is to be 877 // repeated. 878 char char_to_repeat = packet_str.back(); 879 // Number of time the previous character is repeated 880 int repeat_count = *++c + 3 - ' '; 881 // We have the char_to_repeat and repeat_count. Now push 882 // it in the packet. 883 for (int i = 0; i < repeat_count; ++i) 884 packet_str.push_back(char_to_repeat); 885 } else if (*c == 0x7d) { 886 // 0x7d is the escape character. The next character is to 887 // be XOR'd with 0x20. 888 char escapee = *++c ^ 0x20; 889 packet_str.push_back(escapee); 890 } else { 891 packet_str.push_back(*c); 892 } 893 } 894 895 if (m_bytes[0] == '$' || m_bytes[0] == '%') { 896 assert(checksum_idx < m_bytes.size()); 897 if (::isxdigit(m_bytes[checksum_idx + 0]) || 898 ::isxdigit(m_bytes[checksum_idx + 1])) { 899 if (GetSendAcks()) { 900 const char *packet_checksum_cstr = &m_bytes[checksum_idx]; 901 char packet_checksum = strtol(packet_checksum_cstr, NULL, 16); 902 char actual_checksum = CalculcateChecksum(packet_str); 903 success = packet_checksum == actual_checksum; 904 if (!success) { 905 if (log) 906 log->Printf("error: checksum mismatch: %.*s expected 0x%2.2x, " 907 "got 0x%2.2x", 908 (int)(total_length), m_bytes.c_str(), 909 (uint8_t)packet_checksum, (uint8_t)actual_checksum); 910 } 911 // Send the ack or nack if needed 912 if (!success) 913 SendNack(); 914 else 915 SendAck(); 916 } 917 } else { 918 success = false; 919 if (log) 920 log->Printf("error: invalid checksum in packet: '%s'\n", 921 m_bytes.c_str()); 922 } 923 } 924 925 m_bytes.erase(0, total_length); 926 packet.SetFilePos(0); 927 928 if (isNotifyPacket) 929 return GDBRemoteCommunication::PacketType::Notify; 930 else 931 return GDBRemoteCommunication::PacketType::Standard; 932 } 933 } 934 packet.Clear(); 935 return GDBRemoteCommunication::PacketType::Invalid; 936 } 937 938 Error GDBRemoteCommunication::StartListenThread(const char *hostname, 939 uint16_t port) { 940 Error error; 941 if (m_listen_thread.IsJoinable()) { 942 error.SetErrorString("listen thread already running"); 943 } else { 944 char listen_url[512]; 945 if (hostname && hostname[0]) 946 snprintf(listen_url, sizeof(listen_url), "listen://%s:%i", hostname, 947 port); 948 else 949 snprintf(listen_url, sizeof(listen_url), "listen://%i", port); 950 m_listen_url = listen_url; 951 SetConnection(new ConnectionFileDescriptor()); 952 m_listen_thread = ThreadLauncher::LaunchThread( 953 listen_url, GDBRemoteCommunication::ListenThread, this, &error); 954 } 955 return error; 956 } 957 958 bool GDBRemoteCommunication::JoinListenThread() { 959 if (m_listen_thread.IsJoinable()) 960 m_listen_thread.Join(nullptr); 961 return true; 962 } 963 964 lldb::thread_result_t 965 GDBRemoteCommunication::ListenThread(lldb::thread_arg_t arg) { 966 GDBRemoteCommunication *comm = (GDBRemoteCommunication *)arg; 967 Error error; 968 ConnectionFileDescriptor *connection = 969 (ConnectionFileDescriptor *)comm->GetConnection(); 970 971 if (connection) { 972 // Do the listen on another thread so we can continue on... 973 if (connection->Connect(comm->m_listen_url.c_str(), &error) != 974 eConnectionStatusSuccess) 975 comm->SetConnection(NULL); 976 } 977 return NULL; 978 } 979 980 Error GDBRemoteCommunication::StartDebugserverProcess( 981 const char *url, Platform *platform, ProcessLaunchInfo &launch_info, 982 uint16_t *port, const Args *inferior_args, int pass_comm_fd) { 983 Log *log(ProcessGDBRemoteLog::GetLogIfAllCategoriesSet(GDBR_LOG_PROCESS)); 984 if (log) 985 log->Printf("GDBRemoteCommunication::%s(url=%s, port=%" PRIu16 ")", 986 __FUNCTION__, url ? url : "<empty>", 987 port ? *port : uint16_t(0)); 988 989 Error error; 990 // If we locate debugserver, keep that located version around 991 static FileSpec g_debugserver_file_spec; 992 993 char debugserver_path[PATH_MAX]; 994 FileSpec &debugserver_file_spec = launch_info.GetExecutableFile(); 995 996 // Always check to see if we have an environment override for the path 997 // to the debugserver to use and use it if we do. 998 const char *env_debugserver_path = getenv("LLDB_DEBUGSERVER_PATH"); 999 if (env_debugserver_path) { 1000 debugserver_file_spec.SetFile(env_debugserver_path, false); 1001 if (log) 1002 log->Printf("GDBRemoteCommunication::%s() gdb-remote stub exe path set " 1003 "from environment variable: %s", 1004 __FUNCTION__, env_debugserver_path); 1005 } else 1006 debugserver_file_spec = g_debugserver_file_spec; 1007 bool debugserver_exists = debugserver_file_spec.Exists(); 1008 if (!debugserver_exists) { 1009 // The debugserver binary is in the LLDB.framework/Resources 1010 // directory. 1011 if (HostInfo::GetLLDBPath(ePathTypeSupportExecutableDir, 1012 debugserver_file_spec)) { 1013 debugserver_file_spec.AppendPathComponent(DEBUGSERVER_BASENAME); 1014 debugserver_exists = debugserver_file_spec.Exists(); 1015 if (debugserver_exists) { 1016 if (log) 1017 log->Printf( 1018 "GDBRemoteCommunication::%s() found gdb-remote stub exe '%s'", 1019 __FUNCTION__, debugserver_file_spec.GetPath().c_str()); 1020 1021 g_debugserver_file_spec = debugserver_file_spec; 1022 } else { 1023 debugserver_file_spec = 1024 platform->LocateExecutable(DEBUGSERVER_BASENAME); 1025 if (debugserver_file_spec) { 1026 // Platform::LocateExecutable() wouldn't return a path if it doesn't 1027 // exist 1028 debugserver_exists = true; 1029 } else { 1030 if (log) 1031 log->Printf("GDBRemoteCommunication::%s() could not find " 1032 "gdb-remote stub exe '%s'", 1033 __FUNCTION__, debugserver_file_spec.GetPath().c_str()); 1034 } 1035 // Don't cache the platform specific GDB server binary as it could 1036 // change 1037 // from platform to platform 1038 g_debugserver_file_spec.Clear(); 1039 } 1040 } 1041 } 1042 1043 if (debugserver_exists) { 1044 debugserver_file_spec.GetPath(debugserver_path, sizeof(debugserver_path)); 1045 1046 Args &debugserver_args = launch_info.GetArguments(); 1047 debugserver_args.Clear(); 1048 char arg_cstr[PATH_MAX]; 1049 1050 // Start args with "debugserver /file/path -r --" 1051 debugserver_args.AppendArgument(llvm::StringRef(debugserver_path)); 1052 1053 #if !defined(__APPLE__) 1054 // First argument to lldb-server must be mode in which to run. 1055 debugserver_args.AppendArgument(llvm::StringRef("gdbserver")); 1056 #endif 1057 1058 // If a url is supplied then use it 1059 if (url) 1060 debugserver_args.AppendArgument(llvm::StringRef(url)); 1061 1062 if (pass_comm_fd >= 0) { 1063 StreamString fd_arg; 1064 fd_arg.Printf("--fd=%i", pass_comm_fd); 1065 debugserver_args.AppendArgument(fd_arg.GetString()); 1066 // Send "pass_comm_fd" down to the inferior so it can use it to 1067 // communicate back with this process 1068 launch_info.AppendDuplicateFileAction(pass_comm_fd, pass_comm_fd); 1069 } 1070 1071 // use native registers, not the GDB registers 1072 debugserver_args.AppendArgument(llvm::StringRef("--native-regs")); 1073 1074 if (launch_info.GetLaunchInSeparateProcessGroup()) { 1075 debugserver_args.AppendArgument(llvm::StringRef("--setsid")); 1076 } 1077 1078 llvm::SmallString<PATH_MAX> named_pipe_path; 1079 // socket_pipe is used by debug server to communicate back either 1080 // TCP port or domain socket name which it listens on. 1081 // The second purpose of the pipe to serve as a synchronization point - 1082 // once data is written to the pipe, debug server is up and running. 1083 Pipe socket_pipe; 1084 1085 // port is null when debug server should listen on domain socket - 1086 // we're not interested in port value but rather waiting for debug server 1087 // to become available. 1088 if (pass_comm_fd == -1 && 1089 ((port != nullptr && *port == 0) || port == nullptr)) { 1090 if (url) { 1091 // Create a temporary file to get the stdout/stderr and redirect the 1092 // output of the command into this file. We will later read this file 1093 // if all goes well and fill the data into "command_output_ptr" 1094 #if defined(__APPLE__) 1095 // Binding to port zero, we need to figure out what port it ends up 1096 // using using a named pipe... 1097 error = socket_pipe.CreateWithUniqueName("debugserver-named-pipe", 1098 false, named_pipe_path); 1099 if (error.Fail()) { 1100 if (log) 1101 log->Printf("GDBRemoteCommunication::%s() " 1102 "named pipe creation failed: %s", 1103 __FUNCTION__, error.AsCString()); 1104 return error; 1105 } 1106 debugserver_args.AppendArgument(llvm::StringRef("--named-pipe")); 1107 debugserver_args.AppendArgument(named_pipe_path); 1108 #else 1109 // Binding to port zero, we need to figure out what port it ends up 1110 // using using an unnamed pipe... 1111 error = socket_pipe.CreateNew(true); 1112 if (error.Fail()) { 1113 if (log) 1114 log->Printf("GDBRemoteCommunication::%s() " 1115 "unnamed pipe creation failed: %s", 1116 __FUNCTION__, error.AsCString()); 1117 return error; 1118 } 1119 int write_fd = socket_pipe.GetWriteFileDescriptor(); 1120 debugserver_args.AppendArgument(llvm::StringRef("--pipe")); 1121 debugserver_args.AppendArgument(llvm::to_string(write_fd)); 1122 launch_info.AppendCloseFileAction(socket_pipe.GetReadFileDescriptor()); 1123 #endif 1124 } else { 1125 // No host and port given, so lets listen on our end and make the 1126 // debugserver 1127 // connect to us.. 1128 error = StartListenThread("127.0.0.1", 0); 1129 if (error.Fail()) { 1130 if (log) 1131 log->Printf("GDBRemoteCommunication::%s() unable to start listen " 1132 "thread: %s", 1133 __FUNCTION__, error.AsCString()); 1134 return error; 1135 } 1136 1137 ConnectionFileDescriptor *connection = 1138 (ConnectionFileDescriptor *)GetConnection(); 1139 // Wait for 10 seconds to resolve the bound port 1140 uint16_t port_ = connection->GetListeningPort(10); 1141 if (port_ > 0) { 1142 char port_cstr[32]; 1143 snprintf(port_cstr, sizeof(port_cstr), "127.0.0.1:%i", port_); 1144 // Send the host and port down that debugserver and specify an option 1145 // so that it connects back to the port we are listening to in this 1146 // process 1147 debugserver_args.AppendArgument(llvm::StringRef("--reverse-connect")); 1148 debugserver_args.AppendArgument(llvm::StringRef(port_cstr)); 1149 if (port) 1150 *port = port_; 1151 } else { 1152 error.SetErrorString("failed to bind to port 0 on 127.0.0.1"); 1153 if (log) 1154 log->Printf("GDBRemoteCommunication::%s() failed: %s", __FUNCTION__, 1155 error.AsCString()); 1156 return error; 1157 } 1158 } 1159 } 1160 1161 const char *env_debugserver_log_file = getenv("LLDB_DEBUGSERVER_LOG_FILE"); 1162 if (env_debugserver_log_file) { 1163 ::snprintf(arg_cstr, sizeof(arg_cstr), "--log-file=%s", 1164 env_debugserver_log_file); 1165 debugserver_args.AppendArgument(llvm::StringRef(arg_cstr)); 1166 } 1167 1168 #if defined(__APPLE__) 1169 const char *env_debugserver_log_flags = 1170 getenv("LLDB_DEBUGSERVER_LOG_FLAGS"); 1171 if (env_debugserver_log_flags) { 1172 ::snprintf(arg_cstr, sizeof(arg_cstr), "--log-flags=%s", 1173 env_debugserver_log_flags); 1174 debugserver_args.AppendArgument(llvm::StringRef(arg_cstr)); 1175 } 1176 #else 1177 const char *env_debugserver_log_channels = 1178 getenv("LLDB_SERVER_LOG_CHANNELS"); 1179 if (env_debugserver_log_channels) { 1180 ::snprintf(arg_cstr, sizeof(arg_cstr), "--log-channels=%s", 1181 env_debugserver_log_channels); 1182 debugserver_args.AppendArgument(llvm::StringRef(arg_cstr)); 1183 } 1184 #endif 1185 1186 // Add additional args, starting with LLDB_DEBUGSERVER_EXTRA_ARG_1 until an 1187 // env var doesn't come back. 1188 uint32_t env_var_index = 1; 1189 bool has_env_var; 1190 do { 1191 char env_var_name[64]; 1192 snprintf(env_var_name, sizeof(env_var_name), 1193 "LLDB_DEBUGSERVER_EXTRA_ARG_%" PRIu32, env_var_index++); 1194 const char *extra_arg = getenv(env_var_name); 1195 has_env_var = extra_arg != nullptr; 1196 1197 if (has_env_var) { 1198 debugserver_args.AppendArgument(llvm::StringRef(extra_arg)); 1199 if (log) 1200 log->Printf("GDBRemoteCommunication::%s adding env var %s contents " 1201 "to stub command line (%s)", 1202 __FUNCTION__, env_var_name, extra_arg); 1203 } 1204 } while (has_env_var); 1205 1206 if (inferior_args && inferior_args->GetArgumentCount() > 0) { 1207 debugserver_args.AppendArgument(llvm::StringRef("--")); 1208 debugserver_args.AppendArguments(*inferior_args); 1209 } 1210 1211 // Copy the current environment to the gdbserver/debugserver instance 1212 StringList env; 1213 if (Host::GetEnvironment(env)) { 1214 for (size_t i = 0; i < env.GetSize(); ++i) 1215 launch_info.GetEnvironmentEntries().AppendArgument(env[i]); 1216 } 1217 1218 // Close STDIN, STDOUT and STDERR. 1219 launch_info.AppendCloseFileAction(STDIN_FILENO); 1220 launch_info.AppendCloseFileAction(STDOUT_FILENO); 1221 launch_info.AppendCloseFileAction(STDERR_FILENO); 1222 1223 // Redirect STDIN, STDOUT and STDERR to "/dev/null". 1224 launch_info.AppendSuppressFileAction(STDIN_FILENO, true, false); 1225 launch_info.AppendSuppressFileAction(STDOUT_FILENO, false, true); 1226 launch_info.AppendSuppressFileAction(STDERR_FILENO, false, true); 1227 1228 if (log) { 1229 StreamString string_stream; 1230 Platform *const platform = nullptr; 1231 launch_info.Dump(string_stream, platform); 1232 log->Printf("launch info for gdb-remote stub:\n%s", 1233 string_stream.GetData()); 1234 } 1235 error = Host::LaunchProcess(launch_info); 1236 1237 if (error.Success() && 1238 (launch_info.GetProcessID() != LLDB_INVALID_PROCESS_ID) && 1239 pass_comm_fd == -1) { 1240 if (named_pipe_path.size() > 0) { 1241 error = socket_pipe.OpenAsReader(named_pipe_path, false); 1242 if (error.Fail()) 1243 if (log) 1244 log->Printf("GDBRemoteCommunication::%s() " 1245 "failed to open named pipe %s for reading: %s", 1246 __FUNCTION__, named_pipe_path.c_str(), 1247 error.AsCString()); 1248 } 1249 1250 if (socket_pipe.CanWrite()) 1251 socket_pipe.CloseWriteFileDescriptor(); 1252 if (socket_pipe.CanRead()) { 1253 char port_cstr[PATH_MAX] = {0}; 1254 port_cstr[0] = '\0'; 1255 size_t num_bytes = sizeof(port_cstr); 1256 // Read port from pipe with 10 second timeout. 1257 error = socket_pipe.ReadWithTimeout( 1258 port_cstr, num_bytes, std::chrono::seconds{10}, num_bytes); 1259 if (error.Success() && (port != nullptr)) { 1260 assert(num_bytes > 0 && port_cstr[num_bytes - 1] == '\0'); 1261 *port = StringConvert::ToUInt32(port_cstr, 0); 1262 if (log) 1263 log->Printf("GDBRemoteCommunication::%s() " 1264 "debugserver listens %u port", 1265 __FUNCTION__, *port); 1266 } else { 1267 if (log) 1268 log->Printf("GDBRemoteCommunication::%s() " 1269 "failed to read a port value from pipe %s: %s", 1270 __FUNCTION__, named_pipe_path.c_str(), 1271 error.AsCString()); 1272 } 1273 socket_pipe.Close(); 1274 } 1275 1276 if (named_pipe_path.size() > 0) { 1277 const auto err = socket_pipe.Delete(named_pipe_path); 1278 if (err.Fail()) { 1279 if (log) 1280 log->Printf( 1281 "GDBRemoteCommunication::%s failed to delete pipe %s: %s", 1282 __FUNCTION__, named_pipe_path.c_str(), err.AsCString()); 1283 } 1284 } 1285 1286 // Make sure we actually connect with the debugserver... 1287 JoinListenThread(); 1288 } 1289 } else { 1290 error.SetErrorStringWithFormat("unable to locate " DEBUGSERVER_BASENAME); 1291 } 1292 1293 if (error.Fail()) { 1294 if (log) 1295 log->Printf("GDBRemoteCommunication::%s() failed: %s", __FUNCTION__, 1296 error.AsCString()); 1297 } 1298 1299 return error; 1300 } 1301 1302 void GDBRemoteCommunication::DumpHistory(Stream &strm) { m_history.Dump(strm); } 1303 1304 GDBRemoteCommunication::ScopedTimeout::ScopedTimeout( 1305 GDBRemoteCommunication &gdb_comm, std::chrono::seconds timeout) 1306 : m_gdb_comm(gdb_comm) { 1307 m_saved_timeout = m_gdb_comm.SetPacketTimeout(timeout); 1308 } 1309 1310 GDBRemoteCommunication::ScopedTimeout::~ScopedTimeout() { 1311 m_gdb_comm.SetPacketTimeout(m_saved_timeout); 1312 } 1313 1314 // This function is called via the Communications class read thread when bytes 1315 // become available 1316 // for this connection. This function will consume all incoming bytes and try to 1317 // parse whole 1318 // packets as they become available. Full packets are placed in a queue, so that 1319 // all packet 1320 // requests can simply pop from this queue. Async notification packets will be 1321 // dispatched 1322 // immediately to the ProcessGDBRemote Async thread via an event. 1323 void GDBRemoteCommunication::AppendBytesToCache(const uint8_t *bytes, 1324 size_t len, bool broadcast, 1325 lldb::ConnectionStatus status) { 1326 StringExtractorGDBRemote packet; 1327 1328 while (true) { 1329 PacketType type = CheckForPacket(bytes, len, packet); 1330 1331 // scrub the data so we do not pass it back to CheckForPacket 1332 // on future passes of the loop 1333 bytes = nullptr; 1334 len = 0; 1335 1336 // we may have received no packet so lets bail out 1337 if (type == PacketType::Invalid) 1338 break; 1339 1340 if (type == PacketType::Standard) { 1341 // scope for the mutex 1342 { 1343 // lock down the packet queue 1344 std::lock_guard<std::mutex> guard(m_packet_queue_mutex); 1345 // push a new packet into the queue 1346 m_packet_queue.push(packet); 1347 // Signal condition variable that we have a packet 1348 m_condition_queue_not_empty.notify_one(); 1349 } 1350 } 1351 1352 if (type == PacketType::Notify) { 1353 // put this packet into an event 1354 const char *pdata = packet.GetStringRef().c_str(); 1355 1356 // as the communication class, we are a broadcaster and the 1357 // async thread is tuned to listen to us 1358 BroadcastEvent(eBroadcastBitGdbReadThreadGotNotify, 1359 new EventDataBytes(pdata)); 1360 } 1361 } 1362 } 1363