1 //===-- NativeProcessProtocol.cpp -----------------------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 9 #include "lldb/Host/common/NativeProcessProtocol.h" 10 #include "lldb/Host/Host.h" 11 #include "lldb/Host/common/NativeBreakpointList.h" 12 #include "lldb/Host/common/NativeRegisterContext.h" 13 #include "lldb/Host/common/NativeThreadProtocol.h" 14 #include "lldb/Utility/LLDBAssert.h" 15 #include "lldb/Utility/LLDBLog.h" 16 #include "lldb/Utility/Log.h" 17 #include "lldb/Utility/State.h" 18 #include "lldb/lldb-enumerations.h" 19 20 #include "llvm/Support/Process.h" 21 22 using namespace lldb; 23 using namespace lldb_private; 24 25 // NativeProcessProtocol Members 26 27 NativeProcessProtocol::NativeProcessProtocol(lldb::pid_t pid, int terminal_fd, 28 NativeDelegate &delegate) 29 : m_pid(pid), m_delegate(delegate), m_terminal_fd(terminal_fd) { 30 delegate.InitializeDelegate(this); 31 } 32 33 lldb_private::Status NativeProcessProtocol::Interrupt() { 34 Status error; 35 #if !defined(SIGSTOP) 36 error.SetErrorString("local host does not support signaling"); 37 return error; 38 #else 39 return Signal(SIGSTOP); 40 #endif 41 } 42 43 Status NativeProcessProtocol::IgnoreSignals(llvm::ArrayRef<int> signals) { 44 m_signals_to_ignore.clear(); 45 m_signals_to_ignore.insert(signals.begin(), signals.end()); 46 return Status(); 47 } 48 49 lldb_private::Status 50 NativeProcessProtocol::GetMemoryRegionInfo(lldb::addr_t load_addr, 51 MemoryRegionInfo &range_info) { 52 // Default: not implemented. 53 return Status("not implemented"); 54 } 55 56 lldb_private::Status 57 NativeProcessProtocol::ReadMemoryTags(int32_t type, lldb::addr_t addr, 58 size_t len, std::vector<uint8_t> &tags) { 59 return Status("not implemented"); 60 } 61 62 lldb_private::Status 63 NativeProcessProtocol::WriteMemoryTags(int32_t type, lldb::addr_t addr, 64 size_t len, 65 const std::vector<uint8_t> &tags) { 66 return Status("not implemented"); 67 } 68 69 llvm::Optional<WaitStatus> NativeProcessProtocol::GetExitStatus() { 70 if (m_state == lldb::eStateExited) 71 return m_exit_status; 72 73 return llvm::None; 74 } 75 76 bool NativeProcessProtocol::SetExitStatus(WaitStatus status, 77 bool bNotifyStateChange) { 78 Log *log = GetLog(LLDBLog::Process); 79 LLDB_LOG(log, "status = {0}, notify = {1}", status, bNotifyStateChange); 80 81 // Exit status already set 82 if (m_state == lldb::eStateExited) { 83 if (m_exit_status) 84 LLDB_LOG(log, "exit status already set to {0}", *m_exit_status); 85 else 86 LLDB_LOG(log, "state is exited, but status not set"); 87 return false; 88 } 89 90 m_state = lldb::eStateExited; 91 m_exit_status = status; 92 93 if (bNotifyStateChange) 94 SynchronouslyNotifyProcessStateChanged(lldb::eStateExited); 95 96 return true; 97 } 98 99 NativeThreadProtocol *NativeProcessProtocol::GetThreadAtIndex(uint32_t idx) { 100 std::lock_guard<std::recursive_mutex> guard(m_threads_mutex); 101 if (idx < m_threads.size()) 102 return m_threads[idx].get(); 103 return nullptr; 104 } 105 106 NativeThreadProtocol * 107 NativeProcessProtocol::GetThreadByIDUnlocked(lldb::tid_t tid) { 108 for (const auto &thread : m_threads) { 109 if (thread->GetID() == tid) 110 return thread.get(); 111 } 112 return nullptr; 113 } 114 115 NativeThreadProtocol *NativeProcessProtocol::GetThreadByID(lldb::tid_t tid) { 116 std::lock_guard<std::recursive_mutex> guard(m_threads_mutex); 117 return GetThreadByIDUnlocked(tid); 118 } 119 120 bool NativeProcessProtocol::IsAlive() const { 121 return m_state != eStateDetached && m_state != eStateExited && 122 m_state != eStateInvalid && m_state != eStateUnloaded; 123 } 124 125 const NativeWatchpointList::WatchpointMap & 126 NativeProcessProtocol::GetWatchpointMap() const { 127 return m_watchpoint_list.GetWatchpointMap(); 128 } 129 130 llvm::Optional<std::pair<uint32_t, uint32_t>> 131 NativeProcessProtocol::GetHardwareDebugSupportInfo() const { 132 Log *log = GetLog(LLDBLog::Process); 133 134 // get any thread 135 NativeThreadProtocol *thread( 136 const_cast<NativeProcessProtocol *>(this)->GetThreadAtIndex(0)); 137 if (!thread) { 138 LLDB_LOG(log, "failed to find a thread to grab a NativeRegisterContext!"); 139 return llvm::None; 140 } 141 142 NativeRegisterContext ®_ctx = thread->GetRegisterContext(); 143 return std::make_pair(reg_ctx.NumSupportedHardwareBreakpoints(), 144 reg_ctx.NumSupportedHardwareWatchpoints()); 145 } 146 147 Status NativeProcessProtocol::SetWatchpoint(lldb::addr_t addr, size_t size, 148 uint32_t watch_flags, 149 bool hardware) { 150 // This default implementation assumes setting the watchpoint for the process 151 // will require setting the watchpoint for each of the threads. Furthermore, 152 // it will track watchpoints set for the process and will add them to each 153 // thread that is attached to via the (FIXME implement) OnThreadAttached () 154 // method. 155 156 Log *log = GetLog(LLDBLog::Process); 157 158 // Update the thread list 159 UpdateThreads(); 160 161 // Keep track of the threads we successfully set the watchpoint for. If one 162 // of the thread watchpoint setting operations fails, back off and remove the 163 // watchpoint for all the threads that were successfully set so we get back 164 // to a consistent state. 165 std::vector<NativeThreadProtocol *> watchpoint_established_threads; 166 167 // Tell each thread to set a watchpoint. In the event that hardware 168 // watchpoints are requested but the SetWatchpoint fails, try to set a 169 // software watchpoint as a fallback. It's conceivable that if there are 170 // more threads than hardware watchpoints available, some of the threads will 171 // fail to set hardware watchpoints while software ones may be available. 172 std::lock_guard<std::recursive_mutex> guard(m_threads_mutex); 173 for (const auto &thread : m_threads) { 174 assert(thread && "thread list should not have a NULL thread!"); 175 176 Status thread_error = 177 thread->SetWatchpoint(addr, size, watch_flags, hardware); 178 if (thread_error.Fail() && hardware) { 179 // Try software watchpoints since we failed on hardware watchpoint 180 // setting and we may have just run out of hardware watchpoints. 181 thread_error = thread->SetWatchpoint(addr, size, watch_flags, false); 182 if (thread_error.Success()) 183 LLDB_LOG(log, 184 "hardware watchpoint requested but software watchpoint set"); 185 } 186 187 if (thread_error.Success()) { 188 // Remember that we set this watchpoint successfully in case we need to 189 // clear it later. 190 watchpoint_established_threads.push_back(thread.get()); 191 } else { 192 // Unset the watchpoint for each thread we successfully set so that we 193 // get back to a consistent state of "not set" for the watchpoint. 194 for (auto unwatch_thread_sp : watchpoint_established_threads) { 195 Status remove_error = unwatch_thread_sp->RemoveWatchpoint(addr); 196 if (remove_error.Fail()) 197 LLDB_LOG(log, "RemoveWatchpoint failed for pid={0}, tid={1}: {2}", 198 GetID(), unwatch_thread_sp->GetID(), remove_error); 199 } 200 201 return thread_error; 202 } 203 } 204 return m_watchpoint_list.Add(addr, size, watch_flags, hardware); 205 } 206 207 Status NativeProcessProtocol::RemoveWatchpoint(lldb::addr_t addr) { 208 // Update the thread list 209 UpdateThreads(); 210 211 Status overall_error; 212 213 std::lock_guard<std::recursive_mutex> guard(m_threads_mutex); 214 for (const auto &thread : m_threads) { 215 assert(thread && "thread list should not have a NULL thread!"); 216 217 const Status thread_error = thread->RemoveWatchpoint(addr); 218 if (thread_error.Fail()) { 219 // Keep track of the first thread error if any threads fail. We want to 220 // try to remove the watchpoint from every thread, though, even if one or 221 // more have errors. 222 if (!overall_error.Fail()) 223 overall_error = thread_error; 224 } 225 } 226 const Status error = m_watchpoint_list.Remove(addr); 227 return overall_error.Fail() ? overall_error : error; 228 } 229 230 const HardwareBreakpointMap & 231 NativeProcessProtocol::GetHardwareBreakpointMap() const { 232 return m_hw_breakpoints_map; 233 } 234 235 Status NativeProcessProtocol::SetHardwareBreakpoint(lldb::addr_t addr, 236 size_t size) { 237 // This default implementation assumes setting a hardware breakpoint for this 238 // process will require setting same hardware breakpoint for each of its 239 // existing threads. New thread will do the same once created. 240 Log *log = GetLog(LLDBLog::Process); 241 242 // Update the thread list 243 UpdateThreads(); 244 245 // Exit here if target does not have required hardware breakpoint capability. 246 auto hw_debug_cap = GetHardwareDebugSupportInfo(); 247 248 if (hw_debug_cap == llvm::None || hw_debug_cap->first == 0 || 249 hw_debug_cap->first <= m_hw_breakpoints_map.size()) 250 return Status("Target does not have required no of hardware breakpoints"); 251 252 // Vector below stores all thread pointer for which we have we successfully 253 // set this hardware breakpoint. If any of the current process threads fails 254 // to set this hardware breakpoint then roll back and remove this breakpoint 255 // for all the threads that had already set it successfully. 256 std::vector<NativeThreadProtocol *> breakpoint_established_threads; 257 258 // Request to set a hardware breakpoint for each of current process threads. 259 std::lock_guard<std::recursive_mutex> guard(m_threads_mutex); 260 for (const auto &thread : m_threads) { 261 assert(thread && "thread list should not have a NULL thread!"); 262 263 Status thread_error = thread->SetHardwareBreakpoint(addr, size); 264 if (thread_error.Success()) { 265 // Remember that we set this breakpoint successfully in case we need to 266 // clear it later. 267 breakpoint_established_threads.push_back(thread.get()); 268 } else { 269 // Unset the breakpoint for each thread we successfully set so that we 270 // get back to a consistent state of "not set" for this hardware 271 // breakpoint. 272 for (auto rollback_thread_sp : breakpoint_established_threads) { 273 Status remove_error = 274 rollback_thread_sp->RemoveHardwareBreakpoint(addr); 275 if (remove_error.Fail()) 276 LLDB_LOG(log, 277 "RemoveHardwareBreakpoint failed for pid={0}, tid={1}: {2}", 278 GetID(), rollback_thread_sp->GetID(), remove_error); 279 } 280 281 return thread_error; 282 } 283 } 284 285 // Register new hardware breakpoint into hardware breakpoints map of current 286 // process. 287 m_hw_breakpoints_map[addr] = {addr, size}; 288 289 return Status(); 290 } 291 292 Status NativeProcessProtocol::RemoveHardwareBreakpoint(lldb::addr_t addr) { 293 // Update the thread list 294 UpdateThreads(); 295 296 Status error; 297 298 std::lock_guard<std::recursive_mutex> guard(m_threads_mutex); 299 for (const auto &thread : m_threads) { 300 assert(thread && "thread list should not have a NULL thread!"); 301 error = thread->RemoveHardwareBreakpoint(addr); 302 } 303 304 // Also remove from hardware breakpoint map of current process. 305 m_hw_breakpoints_map.erase(addr); 306 307 return error; 308 } 309 310 void NativeProcessProtocol::SynchronouslyNotifyProcessStateChanged( 311 lldb::StateType state) { 312 Log *log = GetLog(LLDBLog::Process); 313 314 m_delegate.ProcessStateChanged(this, state); 315 316 LLDB_LOG(log, "sent state notification [{0}] from process {1}", state, 317 GetID()); 318 } 319 320 void NativeProcessProtocol::NotifyDidExec() { 321 Log *log = GetLog(LLDBLog::Process); 322 LLDB_LOG(log, "process {0} exec()ed", GetID()); 323 324 m_delegate.DidExec(this); 325 } 326 327 Status NativeProcessProtocol::SetSoftwareBreakpoint(lldb::addr_t addr, 328 uint32_t size_hint) { 329 Log *log = GetLog(LLDBLog::Breakpoints); 330 LLDB_LOG(log, "addr = {0:x}, size_hint = {1}", addr, size_hint); 331 332 auto it = m_software_breakpoints.find(addr); 333 if (it != m_software_breakpoints.end()) { 334 ++it->second.ref_count; 335 return Status(); 336 } 337 auto expected_bkpt = EnableSoftwareBreakpoint(addr, size_hint); 338 if (!expected_bkpt) 339 return Status(expected_bkpt.takeError()); 340 341 m_software_breakpoints.emplace(addr, std::move(*expected_bkpt)); 342 return Status(); 343 } 344 345 Status NativeProcessProtocol::RemoveSoftwareBreakpoint(lldb::addr_t addr) { 346 Log *log = GetLog(LLDBLog::Breakpoints); 347 LLDB_LOG(log, "addr = {0:x}", addr); 348 auto it = m_software_breakpoints.find(addr); 349 if (it == m_software_breakpoints.end()) 350 return Status("Breakpoint not found."); 351 assert(it->second.ref_count > 0); 352 if (--it->second.ref_count > 0) 353 return Status(); 354 355 // This is the last reference. Let's remove the breakpoint. 356 Status error; 357 358 // Clear a software breakpoint instruction 359 llvm::SmallVector<uint8_t, 4> curr_break_op( 360 it->second.breakpoint_opcodes.size(), 0); 361 362 // Read the breakpoint opcode 363 size_t bytes_read = 0; 364 error = 365 ReadMemory(addr, curr_break_op.data(), curr_break_op.size(), bytes_read); 366 if (error.Fail() || bytes_read < curr_break_op.size()) { 367 return Status("addr=0x%" PRIx64 368 ": tried to read %zu bytes but only read %zu", 369 addr, curr_break_op.size(), bytes_read); 370 } 371 const auto &saved = it->second.saved_opcodes; 372 // Make sure the breakpoint opcode exists at this address 373 if (makeArrayRef(curr_break_op) != it->second.breakpoint_opcodes) { 374 if (curr_break_op != it->second.saved_opcodes) 375 return Status("Original breakpoint trap is no longer in memory."); 376 LLDB_LOG(log, 377 "Saved opcodes ({0:@[x]}) have already been restored at {1:x}.", 378 llvm::make_range(saved.begin(), saved.end()), addr); 379 } else { 380 // We found a valid breakpoint opcode at this address, now restore the 381 // saved opcode. 382 size_t bytes_written = 0; 383 error = WriteMemory(addr, saved.data(), saved.size(), bytes_written); 384 if (error.Fail() || bytes_written < saved.size()) { 385 return Status("addr=0x%" PRIx64 386 ": tried to write %zu bytes but only wrote %zu", 387 addr, saved.size(), bytes_written); 388 } 389 390 // Verify that our original opcode made it back to the inferior 391 llvm::SmallVector<uint8_t, 4> verify_opcode(saved.size(), 0); 392 size_t verify_bytes_read = 0; 393 error = ReadMemory(addr, verify_opcode.data(), verify_opcode.size(), 394 verify_bytes_read); 395 if (error.Fail() || verify_bytes_read < verify_opcode.size()) { 396 return Status("addr=0x%" PRIx64 397 ": tried to read %zu verification bytes but only read %zu", 398 addr, verify_opcode.size(), verify_bytes_read); 399 } 400 if (verify_opcode != saved) 401 LLDB_LOG(log, "Restoring bytes at {0:x}: {1:@[x]}", addr, 402 llvm::make_range(saved.begin(), saved.end())); 403 } 404 405 m_software_breakpoints.erase(it); 406 return Status(); 407 } 408 409 llvm::Expected<NativeProcessProtocol::SoftwareBreakpoint> 410 NativeProcessProtocol::EnableSoftwareBreakpoint(lldb::addr_t addr, 411 uint32_t size_hint) { 412 Log *log = GetLog(LLDBLog::Breakpoints); 413 414 auto expected_trap = GetSoftwareBreakpointTrapOpcode(size_hint); 415 if (!expected_trap) 416 return expected_trap.takeError(); 417 418 llvm::SmallVector<uint8_t, 4> saved_opcode_bytes(expected_trap->size(), 0); 419 // Save the original opcodes by reading them so we can restore later. 420 size_t bytes_read = 0; 421 Status error = ReadMemory(addr, saved_opcode_bytes.data(), 422 saved_opcode_bytes.size(), bytes_read); 423 if (error.Fail()) 424 return error.ToError(); 425 426 // Ensure we read as many bytes as we expected. 427 if (bytes_read != saved_opcode_bytes.size()) { 428 return llvm::createStringError( 429 llvm::inconvertibleErrorCode(), 430 "Failed to read memory while attempting to set breakpoint: attempted " 431 "to read {0} bytes but only read {1}.", 432 saved_opcode_bytes.size(), bytes_read); 433 } 434 435 LLDB_LOG( 436 log, "Overwriting bytes at {0:x}: {1:@[x]}", addr, 437 llvm::make_range(saved_opcode_bytes.begin(), saved_opcode_bytes.end())); 438 439 // Write a software breakpoint in place of the original opcode. 440 size_t bytes_written = 0; 441 error = WriteMemory(addr, expected_trap->data(), expected_trap->size(), 442 bytes_written); 443 if (error.Fail()) 444 return error.ToError(); 445 446 // Ensure we wrote as many bytes as we expected. 447 if (bytes_written != expected_trap->size()) { 448 return llvm::createStringError( 449 llvm::inconvertibleErrorCode(), 450 "Failed write memory while attempting to set " 451 "breakpoint: attempted to write {0} bytes but only wrote {1}", 452 expected_trap->size(), bytes_written); 453 } 454 455 llvm::SmallVector<uint8_t, 4> verify_bp_opcode_bytes(expected_trap->size(), 456 0); 457 size_t verify_bytes_read = 0; 458 error = ReadMemory(addr, verify_bp_opcode_bytes.data(), 459 verify_bp_opcode_bytes.size(), verify_bytes_read); 460 if (error.Fail()) 461 return error.ToError(); 462 463 // Ensure we read as many verification bytes as we expected. 464 if (verify_bytes_read != verify_bp_opcode_bytes.size()) { 465 return llvm::createStringError( 466 llvm::inconvertibleErrorCode(), 467 "Failed to read memory while " 468 "attempting to verify breakpoint: attempted to read {0} bytes " 469 "but only read {1}", 470 verify_bp_opcode_bytes.size(), verify_bytes_read); 471 } 472 473 if (llvm::makeArrayRef(verify_bp_opcode_bytes.data(), verify_bytes_read) != 474 *expected_trap) { 475 return llvm::createStringError( 476 llvm::inconvertibleErrorCode(), 477 "Verification of software breakpoint " 478 "writing failed - trap opcodes not successfully read back " 479 "after writing when setting breakpoint at {0:x}", 480 addr); 481 } 482 483 LLDB_LOG(log, "addr = {0:x}: SUCCESS", addr); 484 return SoftwareBreakpoint{1, saved_opcode_bytes, *expected_trap}; 485 } 486 487 llvm::Expected<llvm::ArrayRef<uint8_t>> 488 NativeProcessProtocol::GetSoftwareBreakpointTrapOpcode(size_t size_hint) { 489 static const uint8_t g_aarch64_opcode[] = {0x00, 0x00, 0x20, 0xd4}; 490 static const uint8_t g_i386_opcode[] = {0xCC}; 491 static const uint8_t g_mips64_opcode[] = {0x00, 0x00, 0x00, 0x0d}; 492 static const uint8_t g_mips64el_opcode[] = {0x0d, 0x00, 0x00, 0x00}; 493 static const uint8_t g_s390x_opcode[] = {0x00, 0x01}; 494 static const uint8_t g_ppc_opcode[] = {0x7f, 0xe0, 0x00, 0x08}; // trap 495 static const uint8_t g_ppcle_opcode[] = {0x08, 0x00, 0xe0, 0x7f}; // trap 496 497 switch (GetArchitecture().GetMachine()) { 498 case llvm::Triple::aarch64: 499 case llvm::Triple::aarch64_32: 500 return llvm::makeArrayRef(g_aarch64_opcode); 501 502 case llvm::Triple::x86: 503 case llvm::Triple::x86_64: 504 return llvm::makeArrayRef(g_i386_opcode); 505 506 case llvm::Triple::mips: 507 case llvm::Triple::mips64: 508 return llvm::makeArrayRef(g_mips64_opcode); 509 510 case llvm::Triple::mipsel: 511 case llvm::Triple::mips64el: 512 return llvm::makeArrayRef(g_mips64el_opcode); 513 514 case llvm::Triple::systemz: 515 return llvm::makeArrayRef(g_s390x_opcode); 516 517 case llvm::Triple::ppc: 518 case llvm::Triple::ppc64: 519 return llvm::makeArrayRef(g_ppc_opcode); 520 521 case llvm::Triple::ppc64le: 522 return llvm::makeArrayRef(g_ppcle_opcode); 523 524 default: 525 return llvm::createStringError(llvm::inconvertibleErrorCode(), 526 "CPU type not supported!"); 527 } 528 } 529 530 size_t NativeProcessProtocol::GetSoftwareBreakpointPCOffset() { 531 switch (GetArchitecture().GetMachine()) { 532 case llvm::Triple::x86: 533 case llvm::Triple::x86_64: 534 case llvm::Triple::systemz: 535 // These architectures report increment the PC after breakpoint is hit. 536 return cantFail(GetSoftwareBreakpointTrapOpcode(0)).size(); 537 538 case llvm::Triple::arm: 539 case llvm::Triple::aarch64: 540 case llvm::Triple::aarch64_32: 541 case llvm::Triple::mips64: 542 case llvm::Triple::mips64el: 543 case llvm::Triple::mips: 544 case llvm::Triple::mipsel: 545 case llvm::Triple::ppc: 546 case llvm::Triple::ppc64: 547 case llvm::Triple::ppc64le: 548 // On these architectures the PC doesn't get updated for breakpoint hits. 549 return 0; 550 551 default: 552 llvm_unreachable("CPU type not supported!"); 553 } 554 } 555 556 void NativeProcessProtocol::FixupBreakpointPCAsNeeded( 557 NativeThreadProtocol &thread) { 558 Log *log = GetLog(LLDBLog::Breakpoints); 559 560 Status error; 561 562 // Find out the size of a breakpoint (might depend on where we are in the 563 // code). 564 NativeRegisterContext &context = thread.GetRegisterContext(); 565 566 uint32_t breakpoint_size = GetSoftwareBreakpointPCOffset(); 567 LLDB_LOG(log, "breakpoint size: {0}", breakpoint_size); 568 if (breakpoint_size == 0) 569 return; 570 571 // First try probing for a breakpoint at a software breakpoint location: PC - 572 // breakpoint size. 573 const lldb::addr_t initial_pc_addr = context.GetPCfromBreakpointLocation(); 574 lldb::addr_t breakpoint_addr = initial_pc_addr; 575 // Do not allow breakpoint probe to wrap around. 576 if (breakpoint_addr >= breakpoint_size) 577 breakpoint_addr -= breakpoint_size; 578 579 if (m_software_breakpoints.count(breakpoint_addr) == 0) { 580 // We didn't find one at a software probe location. Nothing to do. 581 LLDB_LOG(log, 582 "pid {0} no lldb software breakpoint found at current pc with " 583 "adjustment: {1}", 584 GetID(), breakpoint_addr); 585 return; 586 } 587 588 // 589 // We have a software breakpoint and need to adjust the PC. 590 // 591 592 // Change the program counter. 593 LLDB_LOG(log, "pid {0} tid {1}: changing PC from {2:x} to {3:x}", GetID(), 594 thread.GetID(), initial_pc_addr, breakpoint_addr); 595 596 error = context.SetPC(breakpoint_addr); 597 if (error.Fail()) { 598 // This can happen in case the process was killed between the time we read 599 // the PC and when we are updating it. There's nothing better to do than to 600 // swallow the error. 601 LLDB_LOG(log, "pid {0} tid {1}: failed to set PC: {2}", GetID(), 602 thread.GetID(), error); 603 } 604 } 605 606 Status NativeProcessProtocol::RemoveBreakpoint(lldb::addr_t addr, 607 bool hardware) { 608 if (hardware) 609 return RemoveHardwareBreakpoint(addr); 610 else 611 return RemoveSoftwareBreakpoint(addr); 612 } 613 614 Status NativeProcessProtocol::ReadMemoryWithoutTrap(lldb::addr_t addr, 615 void *buf, size_t size, 616 size_t &bytes_read) { 617 Status error = ReadMemory(addr, buf, size, bytes_read); 618 if (error.Fail()) 619 return error; 620 621 auto data = 622 llvm::makeMutableArrayRef(static_cast<uint8_t *>(buf), bytes_read); 623 for (const auto &pair : m_software_breakpoints) { 624 lldb::addr_t bp_addr = pair.first; 625 auto saved_opcodes = makeArrayRef(pair.second.saved_opcodes); 626 627 if (bp_addr + saved_opcodes.size() < addr || addr + bytes_read <= bp_addr) 628 continue; // Breakpoint not in range, ignore 629 630 if (bp_addr < addr) { 631 saved_opcodes = saved_opcodes.drop_front(addr - bp_addr); 632 bp_addr = addr; 633 } 634 auto bp_data = data.drop_front(bp_addr - addr); 635 std::copy_n(saved_opcodes.begin(), 636 std::min(saved_opcodes.size(), bp_data.size()), 637 bp_data.begin()); 638 } 639 return Status(); 640 } 641 642 llvm::Expected<llvm::StringRef> 643 NativeProcessProtocol::ReadCStringFromMemory(lldb::addr_t addr, char *buffer, 644 size_t max_size, 645 size_t &total_bytes_read) { 646 static const size_t cache_line_size = 647 llvm::sys::Process::getPageSizeEstimate(); 648 size_t bytes_read = 0; 649 size_t bytes_left = max_size; 650 addr_t curr_addr = addr; 651 size_t string_size; 652 char *curr_buffer = buffer; 653 total_bytes_read = 0; 654 Status status; 655 656 while (bytes_left > 0 && status.Success()) { 657 addr_t cache_line_bytes_left = 658 cache_line_size - (curr_addr % cache_line_size); 659 addr_t bytes_to_read = std::min<addr_t>(bytes_left, cache_line_bytes_left); 660 status = ReadMemory(curr_addr, static_cast<void *>(curr_buffer), 661 bytes_to_read, bytes_read); 662 663 if (bytes_read == 0) 664 break; 665 666 void *str_end = std::memchr(curr_buffer, '\0', bytes_read); 667 if (str_end != nullptr) { 668 total_bytes_read = 669 static_cast<size_t>((static_cast<char *>(str_end) - buffer + 1)); 670 status.Clear(); 671 break; 672 } 673 674 total_bytes_read += bytes_read; 675 curr_buffer += bytes_read; 676 curr_addr += bytes_read; 677 bytes_left -= bytes_read; 678 } 679 680 string_size = total_bytes_read - 1; 681 682 // Make sure we return a null terminated string. 683 if (bytes_left == 0 && max_size > 0 && buffer[max_size - 1] != '\0') { 684 buffer[max_size - 1] = '\0'; 685 total_bytes_read--; 686 } 687 688 if (!status.Success()) 689 return status.ToError(); 690 691 return llvm::StringRef(buffer, string_size); 692 } 693 694 lldb::StateType NativeProcessProtocol::GetState() const { 695 std::lock_guard<std::recursive_mutex> guard(m_state_mutex); 696 return m_state; 697 } 698 699 void NativeProcessProtocol::SetState(lldb::StateType state, 700 bool notify_delegates) { 701 std::lock_guard<std::recursive_mutex> guard(m_state_mutex); 702 703 if (state == m_state) 704 return; 705 706 m_state = state; 707 708 if (StateIsStoppedState(state, false)) { 709 ++m_stop_id; 710 711 // Give process a chance to do any stop id bump processing, such as 712 // clearing cached data that is invalidated each time the process runs. 713 // Note if/when we support some threads running, we'll end up needing to 714 // manage this per thread and per process. 715 DoStopIDBumped(m_stop_id); 716 } 717 718 // Optionally notify delegates of the state change. 719 if (notify_delegates) 720 SynchronouslyNotifyProcessStateChanged(state); 721 } 722 723 uint32_t NativeProcessProtocol::GetStopID() const { 724 std::lock_guard<std::recursive_mutex> guard(m_state_mutex); 725 return m_stop_id; 726 } 727 728 void NativeProcessProtocol::DoStopIDBumped(uint32_t /* newBumpId */) { 729 // Default implementation does nothing. 730 } 731 732 NativeProcessProtocol::Factory::~Factory() = default; 733