1 //===-- Disassembler.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/Core/Disassembler.h" 10 11 #include "lldb/Core/AddressRange.h" 12 #include "lldb/Core/Debugger.h" 13 #include "lldb/Core/EmulateInstruction.h" 14 #include "lldb/Core/Mangled.h" 15 #include "lldb/Core/Module.h" 16 #include "lldb/Core/ModuleList.h" 17 #include "lldb/Core/PluginManager.h" 18 #include "lldb/Core/SourceManager.h" 19 #include "lldb/Host/FileSystem.h" 20 #include "lldb/Interpreter/OptionValue.h" 21 #include "lldb/Interpreter/OptionValueArray.h" 22 #include "lldb/Interpreter/OptionValueDictionary.h" 23 #include "lldb/Interpreter/OptionValueRegex.h" 24 #include "lldb/Interpreter/OptionValueString.h" 25 #include "lldb/Interpreter/OptionValueUInt64.h" 26 #include "lldb/Symbol/Function.h" 27 #include "lldb/Symbol/Symbol.h" 28 #include "lldb/Symbol/SymbolContext.h" 29 #include "lldb/Target/ExecutionContext.h" 30 #include "lldb/Target/SectionLoadList.h" 31 #include "lldb/Target/StackFrame.h" 32 #include "lldb/Target/Target.h" 33 #include "lldb/Target/Thread.h" 34 #include "lldb/Utility/DataBufferHeap.h" 35 #include "lldb/Utility/DataExtractor.h" 36 #include "lldb/Utility/RegularExpression.h" 37 #include "lldb/Utility/Status.h" 38 #include "lldb/Utility/Stream.h" 39 #include "lldb/Utility/StreamString.h" 40 #include "lldb/Utility/Timer.h" 41 #include "lldb/lldb-private-enumerations.h" 42 #include "lldb/lldb-private-interfaces.h" 43 #include "lldb/lldb-private-types.h" 44 #include "llvm/ADT/Triple.h" 45 #include "llvm/Support/Compiler.h" 46 47 #include <cstdint> 48 #include <cstring> 49 #include <utility> 50 51 #include <assert.h> 52 53 #define DEFAULT_DISASM_BYTE_SIZE 32 54 55 using namespace lldb; 56 using namespace lldb_private; 57 58 DisassemblerSP Disassembler::FindPlugin(const ArchSpec &arch, 59 const char *flavor, 60 const char *plugin_name) { 61 static Timer::Category func_cat(LLVM_PRETTY_FUNCTION); 62 Timer scoped_timer(func_cat, 63 "Disassembler::FindPlugin (arch = %s, plugin_name = %s)", 64 arch.GetArchitectureName(), plugin_name); 65 66 DisassemblerCreateInstance create_callback = nullptr; 67 68 if (plugin_name) { 69 ConstString const_plugin_name(plugin_name); 70 create_callback = PluginManager::GetDisassemblerCreateCallbackForPluginName( 71 const_plugin_name); 72 if (create_callback) { 73 DisassemblerSP disassembler_sp(create_callback(arch, flavor)); 74 75 if (disassembler_sp) 76 return disassembler_sp; 77 } 78 } else { 79 for (uint32_t idx = 0; 80 (create_callback = PluginManager::GetDisassemblerCreateCallbackAtIndex( 81 idx)) != nullptr; 82 ++idx) { 83 DisassemblerSP disassembler_sp(create_callback(arch, flavor)); 84 85 if (disassembler_sp) 86 return disassembler_sp; 87 } 88 } 89 return DisassemblerSP(); 90 } 91 92 DisassemblerSP Disassembler::FindPluginForTarget(const Target &target, 93 const ArchSpec &arch, 94 const char *flavor, 95 const char *plugin_name) { 96 if (flavor == nullptr) { 97 // FIXME - we don't have the mechanism in place to do per-architecture 98 // settings. But since we know that for now we only support flavors on x86 99 // & x86_64, 100 if (arch.GetTriple().getArch() == llvm::Triple::x86 || 101 arch.GetTriple().getArch() == llvm::Triple::x86_64) 102 flavor = target.GetDisassemblyFlavor(); 103 } 104 return FindPlugin(arch, flavor, plugin_name); 105 } 106 107 static Address ResolveAddress(Target &target, const Address &addr) { 108 if (!addr.IsSectionOffset()) { 109 Address resolved_addr; 110 // If we weren't passed in a section offset address range, try and resolve 111 // it to something 112 bool is_resolved = target.GetSectionLoadList().IsEmpty() 113 ? target.GetImages().ResolveFileAddress( 114 addr.GetOffset(), resolved_addr) 115 : target.GetSectionLoadList().ResolveLoadAddress( 116 addr.GetOffset(), resolved_addr); 117 118 // We weren't able to resolve the address, just treat it as a raw address 119 if (is_resolved && resolved_addr.IsValid()) 120 return resolved_addr; 121 } 122 return addr; 123 } 124 125 lldb::DisassemblerSP Disassembler::DisassembleRange( 126 const ArchSpec &arch, const char *plugin_name, const char *flavor, 127 Target &target, const AddressRange &range, bool prefer_file_cache) { 128 if (range.GetByteSize() <= 0) 129 return {}; 130 131 if (!range.GetBaseAddress().IsValid()) 132 return {}; 133 134 lldb::DisassemblerSP disasm_sp = 135 Disassembler::FindPluginForTarget(target, arch, flavor, plugin_name); 136 137 if (!disasm_sp) 138 return {}; 139 140 const size_t bytes_disassembled = 141 disasm_sp->ParseInstructions(target, range, nullptr, prefer_file_cache); 142 if (bytes_disassembled == 0) 143 return {}; 144 145 return disasm_sp; 146 } 147 148 lldb::DisassemblerSP 149 Disassembler::DisassembleBytes(const ArchSpec &arch, const char *plugin_name, 150 const char *flavor, const Address &start, 151 const void *src, size_t src_len, 152 uint32_t num_instructions, bool data_from_file) { 153 if (!src) 154 return {}; 155 156 lldb::DisassemblerSP disasm_sp = 157 Disassembler::FindPlugin(arch, flavor, plugin_name); 158 159 if (!disasm_sp) 160 return {}; 161 162 DataExtractor data(src, src_len, arch.GetByteOrder(), 163 arch.GetAddressByteSize()); 164 165 (void)disasm_sp->DecodeInstructions(start, data, 0, num_instructions, false, 166 data_from_file); 167 return disasm_sp; 168 } 169 170 bool Disassembler::Disassemble(Debugger &debugger, const ArchSpec &arch, 171 const char *plugin_name, const char *flavor, 172 const ExecutionContext &exe_ctx, 173 const AddressRange &range, 174 uint32_t num_instructions, 175 bool mixed_source_and_assembly, 176 uint32_t num_mixed_context_lines, 177 uint32_t options, Stream &strm) { 178 if (!range.GetByteSize() || !exe_ctx.GetTargetPtr()) 179 return false; 180 181 lldb::DisassemblerSP disasm_sp(Disassembler::FindPluginForTarget( 182 exe_ctx.GetTargetRef(), arch, flavor, plugin_name)); 183 184 if (!disasm_sp) 185 return false; 186 187 const bool prefer_file_cache = false; 188 size_t bytes_disassembled = disasm_sp->ParseInstructions( 189 exe_ctx.GetTargetRef(), range, &strm, prefer_file_cache); 190 if (bytes_disassembled == 0) 191 return false; 192 193 disasm_sp->PrintInstructions(debugger, arch, exe_ctx, num_instructions, 194 mixed_source_and_assembly, 195 num_mixed_context_lines, options, strm); 196 return true; 197 } 198 199 bool Disassembler::Disassemble( 200 Debugger &debugger, const ArchSpec &arch, const char *plugin_name, 201 const char *flavor, const ExecutionContext &exe_ctx, const Address &address, 202 uint32_t num_instructions, bool mixed_source_and_assembly, 203 uint32_t num_mixed_context_lines, uint32_t options, Stream &strm) { 204 if (num_instructions == 0 || !exe_ctx.GetTargetPtr()) 205 return false; 206 207 lldb::DisassemblerSP disasm_sp(Disassembler::FindPluginForTarget( 208 exe_ctx.GetTargetRef(), arch, flavor, plugin_name)); 209 if (!disasm_sp) 210 return false; 211 212 const bool prefer_file_cache = false; 213 size_t bytes_disassembled = disasm_sp->ParseInstructions( 214 exe_ctx.GetTargetRef(), address, num_instructions, prefer_file_cache); 215 if (bytes_disassembled == 0) 216 return false; 217 218 disasm_sp->PrintInstructions(debugger, arch, exe_ctx, num_instructions, 219 mixed_source_and_assembly, 220 num_mixed_context_lines, options, strm); 221 return true; 222 } 223 224 Disassembler::SourceLine 225 Disassembler::GetFunctionDeclLineEntry(const SymbolContext &sc) { 226 if (!sc.function) 227 return {}; 228 229 if (!sc.line_entry.IsValid()) 230 return {}; 231 232 LineEntry prologue_end_line = sc.line_entry; 233 FileSpec func_decl_file; 234 uint32_t func_decl_line; 235 sc.function->GetStartLineSourceInfo(func_decl_file, func_decl_line); 236 237 if (func_decl_file != prologue_end_line.file && 238 func_decl_file != prologue_end_line.original_file) 239 return {}; 240 241 SourceLine decl_line; 242 decl_line.file = func_decl_file; 243 decl_line.line = func_decl_line; 244 // TODO: Do we care about column on these entries? If so, we need to plumb 245 // that through GetStartLineSourceInfo. 246 decl_line.column = 0; 247 return decl_line; 248 } 249 250 void Disassembler::AddLineToSourceLineTables( 251 SourceLine &line, 252 std::map<FileSpec, std::set<uint32_t>> &source_lines_seen) { 253 if (line.IsValid()) { 254 auto source_lines_seen_pos = source_lines_seen.find(line.file); 255 if (source_lines_seen_pos == source_lines_seen.end()) { 256 std::set<uint32_t> lines; 257 lines.insert(line.line); 258 source_lines_seen.emplace(line.file, lines); 259 } else { 260 source_lines_seen_pos->second.insert(line.line); 261 } 262 } 263 } 264 265 bool Disassembler::ElideMixedSourceAndDisassemblyLine( 266 const ExecutionContext &exe_ctx, const SymbolContext &sc, 267 SourceLine &line) { 268 269 // TODO: should we also check target.process.thread.step-avoid-libraries ? 270 271 const RegularExpression *avoid_regex = nullptr; 272 273 // Skip any line #0 entries - they are implementation details 274 if (line.line == 0) 275 return false; 276 277 ThreadSP thread_sp = exe_ctx.GetThreadSP(); 278 if (thread_sp) { 279 avoid_regex = thread_sp->GetSymbolsToAvoidRegexp(); 280 } else { 281 TargetSP target_sp = exe_ctx.GetTargetSP(); 282 if (target_sp) { 283 Status error; 284 OptionValueSP value_sp = target_sp->GetDebugger().GetPropertyValue( 285 &exe_ctx, "target.process.thread.step-avoid-regexp", false, error); 286 if (value_sp && value_sp->GetType() == OptionValue::eTypeRegex) { 287 OptionValueRegex *re = value_sp->GetAsRegex(); 288 if (re) { 289 avoid_regex = re->GetCurrentValue(); 290 } 291 } 292 } 293 } 294 if (avoid_regex && sc.symbol != nullptr) { 295 const char *function_name = 296 sc.GetFunctionName(Mangled::ePreferDemangledWithoutArguments) 297 .GetCString(); 298 if (function_name && avoid_regex->Execute(function_name)) { 299 // skip this source line 300 return true; 301 } 302 } 303 // don't skip this source line 304 return false; 305 } 306 307 void Disassembler::PrintInstructions(Debugger &debugger, const ArchSpec &arch, 308 const ExecutionContext &exe_ctx, 309 uint32_t num_instructions, 310 bool mixed_source_and_assembly, 311 uint32_t num_mixed_context_lines, 312 uint32_t options, Stream &strm) { 313 // We got some things disassembled... 314 size_t num_instructions_found = GetInstructionList().GetSize(); 315 316 if (num_instructions > 0 && num_instructions < num_instructions_found) 317 num_instructions_found = num_instructions; 318 319 const uint32_t max_opcode_byte_size = 320 GetInstructionList().GetMaxOpcocdeByteSize(); 321 SymbolContext sc; 322 SymbolContext prev_sc; 323 AddressRange current_source_line_range; 324 const Address *pc_addr_ptr = nullptr; 325 StackFrame *frame = exe_ctx.GetFramePtr(); 326 327 TargetSP target_sp(exe_ctx.GetTargetSP()); 328 SourceManager &source_manager = 329 target_sp ? target_sp->GetSourceManager() : debugger.GetSourceManager(); 330 331 if (frame) { 332 pc_addr_ptr = &frame->GetFrameCodeAddress(); 333 } 334 const uint32_t scope = 335 eSymbolContextLineEntry | eSymbolContextFunction | eSymbolContextSymbol; 336 const bool use_inline_block_range = false; 337 338 const FormatEntity::Entry *disassembly_format = nullptr; 339 FormatEntity::Entry format; 340 if (exe_ctx.HasTargetScope()) { 341 disassembly_format = 342 exe_ctx.GetTargetRef().GetDebugger().GetDisassemblyFormat(); 343 } else { 344 FormatEntity::Parse("${addr}: ", format); 345 disassembly_format = &format; 346 } 347 348 // First pass: step through the list of instructions, find how long the 349 // initial addresses strings are, insert padding in the second pass so the 350 // opcodes all line up nicely. 351 352 // Also build up the source line mapping if this is mixed source & assembly 353 // mode. Calculate the source line for each assembly instruction (eliding 354 // inlined functions which the user wants to skip). 355 356 std::map<FileSpec, std::set<uint32_t>> source_lines_seen; 357 Symbol *previous_symbol = nullptr; 358 359 size_t address_text_size = 0; 360 for (size_t i = 0; i < num_instructions_found; ++i) { 361 Instruction *inst = GetInstructionList().GetInstructionAtIndex(i).get(); 362 if (inst) { 363 const Address &addr = inst->GetAddress(); 364 ModuleSP module_sp(addr.GetModule()); 365 if (module_sp) { 366 const SymbolContextItem resolve_mask = eSymbolContextFunction | 367 eSymbolContextSymbol | 368 eSymbolContextLineEntry; 369 uint32_t resolved_mask = 370 module_sp->ResolveSymbolContextForAddress(addr, resolve_mask, sc); 371 if (resolved_mask) { 372 StreamString strmstr; 373 Debugger::FormatDisassemblerAddress(disassembly_format, &sc, nullptr, 374 &exe_ctx, &addr, strmstr); 375 size_t cur_line = strmstr.GetSizeOfLastLine(); 376 if (cur_line > address_text_size) 377 address_text_size = cur_line; 378 379 // Add entries to our "source_lines_seen" map+set which list which 380 // sources lines occur in this disassembly session. We will print 381 // lines of context around a source line, but we don't want to print 382 // a source line that has a line table entry of its own - we'll leave 383 // that source line to be printed when it actually occurs in the 384 // disassembly. 385 386 if (mixed_source_and_assembly && sc.line_entry.IsValid()) { 387 if (sc.symbol != previous_symbol) { 388 SourceLine decl_line = GetFunctionDeclLineEntry(sc); 389 if (!ElideMixedSourceAndDisassemblyLine(exe_ctx, sc, decl_line)) 390 AddLineToSourceLineTables(decl_line, source_lines_seen); 391 } 392 if (sc.line_entry.IsValid()) { 393 SourceLine this_line; 394 this_line.file = sc.line_entry.file; 395 this_line.line = sc.line_entry.line; 396 this_line.column = sc.line_entry.column; 397 if (!ElideMixedSourceAndDisassemblyLine(exe_ctx, sc, this_line)) 398 AddLineToSourceLineTables(this_line, source_lines_seen); 399 } 400 } 401 } 402 sc.Clear(false); 403 } 404 } 405 } 406 407 previous_symbol = nullptr; 408 SourceLine previous_line; 409 for (size_t i = 0; i < num_instructions_found; ++i) { 410 Instruction *inst = GetInstructionList().GetInstructionAtIndex(i).get(); 411 412 if (inst) { 413 const Address &addr = inst->GetAddress(); 414 const bool inst_is_at_pc = pc_addr_ptr && addr == *pc_addr_ptr; 415 SourceLinesToDisplay source_lines_to_display; 416 417 prev_sc = sc; 418 419 ModuleSP module_sp(addr.GetModule()); 420 if (module_sp) { 421 uint32_t resolved_mask = module_sp->ResolveSymbolContextForAddress( 422 addr, eSymbolContextEverything, sc); 423 if (resolved_mask) { 424 if (mixed_source_and_assembly) { 425 426 // If we've started a new function (non-inlined), print all of the 427 // source lines from the function declaration until the first line 428 // table entry - typically the opening curly brace of the function. 429 if (previous_symbol != sc.symbol) { 430 // The default disassembly format puts an extra blank line 431 // between functions - so when we're displaying the source 432 // context for a function, we don't want to add a blank line 433 // after the source context or we'll end up with two of them. 434 if (previous_symbol != nullptr) 435 source_lines_to_display.print_source_context_end_eol = false; 436 437 previous_symbol = sc.symbol; 438 if (sc.function && sc.line_entry.IsValid()) { 439 LineEntry prologue_end_line = sc.line_entry; 440 if (!ElideMixedSourceAndDisassemblyLine(exe_ctx, sc, 441 prologue_end_line)) { 442 FileSpec func_decl_file; 443 uint32_t func_decl_line; 444 sc.function->GetStartLineSourceInfo(func_decl_file, 445 func_decl_line); 446 if (func_decl_file == prologue_end_line.file || 447 func_decl_file == prologue_end_line.original_file) { 448 // Add all the lines between the function declaration and 449 // the first non-prologue source line to the list of lines 450 // to print. 451 for (uint32_t lineno = func_decl_line; 452 lineno <= prologue_end_line.line; lineno++) { 453 SourceLine this_line; 454 this_line.file = func_decl_file; 455 this_line.line = lineno; 456 source_lines_to_display.lines.push_back(this_line); 457 } 458 // Mark the last line as the "current" one. Usually this 459 // is the open curly brace. 460 if (source_lines_to_display.lines.size() > 0) 461 source_lines_to_display.current_source_line = 462 source_lines_to_display.lines.size() - 1; 463 } 464 } 465 } 466 sc.GetAddressRange(scope, 0, use_inline_block_range, 467 current_source_line_range); 468 } 469 470 // If we've left a previous source line's address range, print a 471 // new source line 472 if (!current_source_line_range.ContainsFileAddress(addr)) { 473 sc.GetAddressRange(scope, 0, use_inline_block_range, 474 current_source_line_range); 475 476 if (sc != prev_sc && sc.comp_unit && sc.line_entry.IsValid()) { 477 SourceLine this_line; 478 this_line.file = sc.line_entry.file; 479 this_line.line = sc.line_entry.line; 480 481 if (!ElideMixedSourceAndDisassemblyLine(exe_ctx, sc, 482 this_line)) { 483 // Only print this source line if it is different from the 484 // last source line we printed. There may have been inlined 485 // functions between these lines that we elided, resulting in 486 // the same line being printed twice in a row for a 487 // contiguous block of assembly instructions. 488 if (this_line != previous_line) { 489 490 std::vector<uint32_t> previous_lines; 491 for (uint32_t i = 0; 492 i < num_mixed_context_lines && 493 (this_line.line - num_mixed_context_lines) > 0; 494 i++) { 495 uint32_t line = 496 this_line.line - num_mixed_context_lines + i; 497 auto pos = source_lines_seen.find(this_line.file); 498 if (pos != source_lines_seen.end()) { 499 if (pos->second.count(line) == 1) { 500 previous_lines.clear(); 501 } else { 502 previous_lines.push_back(line); 503 } 504 } 505 } 506 for (size_t i = 0; i < previous_lines.size(); i++) { 507 SourceLine previous_line; 508 previous_line.file = this_line.file; 509 previous_line.line = previous_lines[i]; 510 auto pos = source_lines_seen.find(previous_line.file); 511 if (pos != source_lines_seen.end()) { 512 pos->second.insert(previous_line.line); 513 } 514 source_lines_to_display.lines.push_back(previous_line); 515 } 516 517 source_lines_to_display.lines.push_back(this_line); 518 source_lines_to_display.current_source_line = 519 source_lines_to_display.lines.size() - 1; 520 521 for (uint32_t i = 0; i < num_mixed_context_lines; i++) { 522 SourceLine next_line; 523 next_line.file = this_line.file; 524 next_line.line = this_line.line + i + 1; 525 auto pos = source_lines_seen.find(next_line.file); 526 if (pos != source_lines_seen.end()) { 527 if (pos->second.count(next_line.line) == 1) 528 break; 529 pos->second.insert(next_line.line); 530 } 531 source_lines_to_display.lines.push_back(next_line); 532 } 533 } 534 previous_line = this_line; 535 } 536 } 537 } 538 } 539 } else { 540 sc.Clear(true); 541 } 542 } 543 544 if (source_lines_to_display.lines.size() > 0) { 545 strm.EOL(); 546 for (size_t idx = 0; idx < source_lines_to_display.lines.size(); 547 idx++) { 548 SourceLine ln = source_lines_to_display.lines[idx]; 549 const char *line_highlight = ""; 550 if (inst_is_at_pc && (options & eOptionMarkPCSourceLine)) { 551 line_highlight = "->"; 552 } else if (idx == source_lines_to_display.current_source_line) { 553 line_highlight = "**"; 554 } 555 source_manager.DisplaySourceLinesWithLineNumbers( 556 ln.file, ln.line, ln.column, 0, 0, line_highlight, &strm); 557 } 558 if (source_lines_to_display.print_source_context_end_eol) 559 strm.EOL(); 560 } 561 562 const bool show_bytes = (options & eOptionShowBytes) != 0; 563 inst->Dump(&strm, max_opcode_byte_size, true, show_bytes, &exe_ctx, &sc, 564 &prev_sc, nullptr, address_text_size); 565 strm.EOL(); 566 } else { 567 break; 568 } 569 } 570 } 571 572 bool Disassembler::Disassemble(Debugger &debugger, const ArchSpec &arch, 573 const char *plugin_name, const char *flavor, 574 const ExecutionContext &exe_ctx, 575 uint32_t num_instructions, 576 bool mixed_source_and_assembly, 577 uint32_t num_mixed_context_lines, 578 uint32_t options, Stream &strm) { 579 AddressRange range; 580 StackFrame *frame = exe_ctx.GetFramePtr(); 581 if (frame) { 582 SymbolContext sc( 583 frame->GetSymbolContext(eSymbolContextFunction | eSymbolContextSymbol)); 584 if (sc.function) { 585 range = sc.function->GetAddressRange(); 586 } else if (sc.symbol && sc.symbol->ValueIsAddress()) { 587 range.GetBaseAddress() = sc.symbol->GetAddressRef(); 588 range.SetByteSize(sc.symbol->GetByteSize()); 589 } else { 590 range.GetBaseAddress() = frame->GetFrameCodeAddress(); 591 } 592 593 if (range.GetBaseAddress().IsValid() && range.GetByteSize() == 0) 594 range.SetByteSize(DEFAULT_DISASM_BYTE_SIZE); 595 } 596 597 return Disassemble(debugger, arch, plugin_name, flavor, exe_ctx, range, 598 num_instructions, mixed_source_and_assembly, 599 num_mixed_context_lines, options, strm); 600 } 601 602 Instruction::Instruction(const Address &address, AddressClass addr_class) 603 : m_address(address), m_address_class(addr_class), m_opcode(), 604 m_calculated_strings(false) {} 605 606 Instruction::~Instruction() = default; 607 608 AddressClass Instruction::GetAddressClass() { 609 if (m_address_class == AddressClass::eInvalid) 610 m_address_class = m_address.GetAddressClass(); 611 return m_address_class; 612 } 613 614 void Instruction::Dump(lldb_private::Stream *s, uint32_t max_opcode_byte_size, 615 bool show_address, bool show_bytes, 616 const ExecutionContext *exe_ctx, 617 const SymbolContext *sym_ctx, 618 const SymbolContext *prev_sym_ctx, 619 const FormatEntity::Entry *disassembly_addr_format, 620 size_t max_address_text_size) { 621 size_t opcode_column_width = 7; 622 const size_t operand_column_width = 25; 623 624 CalculateMnemonicOperandsAndCommentIfNeeded(exe_ctx); 625 626 StreamString ss; 627 628 if (show_address) { 629 Debugger::FormatDisassemblerAddress(disassembly_addr_format, sym_ctx, 630 prev_sym_ctx, exe_ctx, &m_address, ss); 631 ss.FillLastLineToColumn(max_address_text_size, ' '); 632 } 633 634 if (show_bytes) { 635 if (m_opcode.GetType() == Opcode::eTypeBytes) { 636 // x86_64 and i386 are the only ones that use bytes right now so pad out 637 // the byte dump to be able to always show 15 bytes (3 chars each) plus a 638 // space 639 if (max_opcode_byte_size > 0) 640 m_opcode.Dump(&ss, max_opcode_byte_size * 3 + 1); 641 else 642 m_opcode.Dump(&ss, 15 * 3 + 1); 643 } else { 644 // Else, we have ARM or MIPS which can show up to a uint32_t 0x00000000 645 // (10 spaces) plus two for padding... 646 if (max_opcode_byte_size > 0) 647 m_opcode.Dump(&ss, max_opcode_byte_size * 3 + 1); 648 else 649 m_opcode.Dump(&ss, 12); 650 } 651 } 652 653 const size_t opcode_pos = ss.GetSizeOfLastLine(); 654 655 // The default opcode size of 7 characters is plenty for most architectures 656 // but some like arm can pull out the occasional vqrshrun.s16. We won't get 657 // consistent column spacing in these cases, unfortunately. 658 if (m_opcode_name.length() >= opcode_column_width) { 659 opcode_column_width = m_opcode_name.length() + 1; 660 } 661 662 ss.PutCString(m_opcode_name); 663 ss.FillLastLineToColumn(opcode_pos + opcode_column_width, ' '); 664 ss.PutCString(m_mnemonics); 665 666 if (!m_comment.empty()) { 667 ss.FillLastLineToColumn( 668 opcode_pos + opcode_column_width + operand_column_width, ' '); 669 ss.PutCString(" ; "); 670 ss.PutCString(m_comment); 671 } 672 s->PutCString(ss.GetString()); 673 } 674 675 bool Instruction::DumpEmulation(const ArchSpec &arch) { 676 std::unique_ptr<EmulateInstruction> insn_emulator_up( 677 EmulateInstruction::FindPlugin(arch, eInstructionTypeAny, nullptr)); 678 if (insn_emulator_up) { 679 insn_emulator_up->SetInstruction(GetOpcode(), GetAddress(), nullptr); 680 return insn_emulator_up->EvaluateInstruction(0); 681 } 682 683 return false; 684 } 685 686 bool Instruction::CanSetBreakpoint () { 687 return !HasDelaySlot(); 688 } 689 690 bool Instruction::HasDelaySlot() { 691 // Default is false. 692 return false; 693 } 694 695 OptionValueSP Instruction::ReadArray(FILE *in_file, Stream *out_stream, 696 OptionValue::Type data_type) { 697 bool done = false; 698 char buffer[1024]; 699 700 auto option_value_sp = std::make_shared<OptionValueArray>(1u << data_type); 701 702 int idx = 0; 703 while (!done) { 704 if (!fgets(buffer, 1023, in_file)) { 705 out_stream->Printf( 706 "Instruction::ReadArray: Error reading file (fgets).\n"); 707 option_value_sp.reset(); 708 return option_value_sp; 709 } 710 711 std::string line(buffer); 712 713 size_t len = line.size(); 714 if (line[len - 1] == '\n') { 715 line[len - 1] = '\0'; 716 line.resize(len - 1); 717 } 718 719 if ((line.size() == 1) && line[0] == ']') { 720 done = true; 721 line.clear(); 722 } 723 724 if (!line.empty()) { 725 std::string value; 726 static RegularExpression g_reg_exp( 727 llvm::StringRef("^[ \t]*([^ \t]+)[ \t]*$")); 728 llvm::SmallVector<llvm::StringRef, 2> matches; 729 if (g_reg_exp.Execute(line, &matches)) 730 value = matches[1].str(); 731 else 732 value = line; 733 734 OptionValueSP data_value_sp; 735 switch (data_type) { 736 case OptionValue::eTypeUInt64: 737 data_value_sp = std::make_shared<OptionValueUInt64>(0, 0); 738 data_value_sp->SetValueFromString(value); 739 break; 740 // Other types can be added later as needed. 741 default: 742 data_value_sp = std::make_shared<OptionValueString>(value.c_str(), ""); 743 break; 744 } 745 746 option_value_sp->GetAsArray()->InsertValue(idx, data_value_sp); 747 ++idx; 748 } 749 } 750 751 return option_value_sp; 752 } 753 754 OptionValueSP Instruction::ReadDictionary(FILE *in_file, Stream *out_stream) { 755 bool done = false; 756 char buffer[1024]; 757 758 auto option_value_sp = std::make_shared<OptionValueDictionary>(); 759 static ConstString encoding_key("data_encoding"); 760 OptionValue::Type data_type = OptionValue::eTypeInvalid; 761 762 while (!done) { 763 // Read the next line in the file 764 if (!fgets(buffer, 1023, in_file)) { 765 out_stream->Printf( 766 "Instruction::ReadDictionary: Error reading file (fgets).\n"); 767 option_value_sp.reset(); 768 return option_value_sp; 769 } 770 771 // Check to see if the line contains the end-of-dictionary marker ("}") 772 std::string line(buffer); 773 774 size_t len = line.size(); 775 if (line[len - 1] == '\n') { 776 line[len - 1] = '\0'; 777 line.resize(len - 1); 778 } 779 780 if ((line.size() == 1) && (line[0] == '}')) { 781 done = true; 782 line.clear(); 783 } 784 785 // Try to find a key-value pair in the current line and add it to the 786 // dictionary. 787 if (!line.empty()) { 788 static RegularExpression g_reg_exp(llvm::StringRef( 789 "^[ \t]*([a-zA-Z_][a-zA-Z0-9_]*)[ \t]*=[ \t]*(.*)[ \t]*$")); 790 791 llvm::SmallVector<llvm::StringRef, 3> matches; 792 793 bool reg_exp_success = g_reg_exp.Execute(line, &matches); 794 std::string key; 795 std::string value; 796 if (reg_exp_success) { 797 key = matches[1].str(); 798 value = matches[2].str(); 799 } else { 800 out_stream->Printf("Instruction::ReadDictionary: Failure executing " 801 "regular expression.\n"); 802 option_value_sp.reset(); 803 return option_value_sp; 804 } 805 806 ConstString const_key(key.c_str()); 807 // Check value to see if it's the start of an array or dictionary. 808 809 lldb::OptionValueSP value_sp; 810 assert(value.empty() == false); 811 assert(key.empty() == false); 812 813 if (value[0] == '{') { 814 assert(value.size() == 1); 815 // value is a dictionary 816 value_sp = ReadDictionary(in_file, out_stream); 817 if (!value_sp) { 818 option_value_sp.reset(); 819 return option_value_sp; 820 } 821 } else if (value[0] == '[') { 822 assert(value.size() == 1); 823 // value is an array 824 value_sp = ReadArray(in_file, out_stream, data_type); 825 if (!value_sp) { 826 option_value_sp.reset(); 827 return option_value_sp; 828 } 829 // We've used the data_type to read an array; re-set the type to 830 // Invalid 831 data_type = OptionValue::eTypeInvalid; 832 } else if ((value[0] == '0') && (value[1] == 'x')) { 833 value_sp = std::make_shared<OptionValueUInt64>(0, 0); 834 value_sp->SetValueFromString(value); 835 } else { 836 size_t len = value.size(); 837 if ((value[0] == '"') && (value[len - 1] == '"')) 838 value = value.substr(1, len - 2); 839 value_sp = std::make_shared<OptionValueString>(value.c_str(), ""); 840 } 841 842 if (const_key == encoding_key) { 843 // A 'data_encoding=..." is NOT a normal key-value pair; it is meta-data 844 // indicating the 845 // data type of an upcoming array (usually the next bit of data to be 846 // read in). 847 if (strcmp(value.c_str(), "uint32_t") == 0) 848 data_type = OptionValue::eTypeUInt64; 849 } else 850 option_value_sp->GetAsDictionary()->SetValueForKey(const_key, value_sp, 851 false); 852 } 853 } 854 855 return option_value_sp; 856 } 857 858 bool Instruction::TestEmulation(Stream *out_stream, const char *file_name) { 859 if (!out_stream) 860 return false; 861 862 if (!file_name) { 863 out_stream->Printf("Instruction::TestEmulation: Missing file_name."); 864 return false; 865 } 866 FILE *test_file = FileSystem::Instance().Fopen(file_name, "r"); 867 if (!test_file) { 868 out_stream->Printf( 869 "Instruction::TestEmulation: Attempt to open test file failed."); 870 return false; 871 } 872 873 char buffer[256]; 874 if (!fgets(buffer, 255, test_file)) { 875 out_stream->Printf( 876 "Instruction::TestEmulation: Error reading first line of test file.\n"); 877 fclose(test_file); 878 return false; 879 } 880 881 if (strncmp(buffer, "InstructionEmulationState={", 27) != 0) { 882 out_stream->Printf("Instructin::TestEmulation: Test file does not contain " 883 "emulation state dictionary\n"); 884 fclose(test_file); 885 return false; 886 } 887 888 // Read all the test information from the test file into an 889 // OptionValueDictionary. 890 891 OptionValueSP data_dictionary_sp(ReadDictionary(test_file, out_stream)); 892 if (!data_dictionary_sp) { 893 out_stream->Printf( 894 "Instruction::TestEmulation: Error reading Dictionary Object.\n"); 895 fclose(test_file); 896 return false; 897 } 898 899 fclose(test_file); 900 901 OptionValueDictionary *data_dictionary = 902 data_dictionary_sp->GetAsDictionary(); 903 static ConstString description_key("assembly_string"); 904 static ConstString triple_key("triple"); 905 906 OptionValueSP value_sp = data_dictionary->GetValueForKey(description_key); 907 908 if (!value_sp) { 909 out_stream->Printf("Instruction::TestEmulation: Test file does not " 910 "contain description string.\n"); 911 return false; 912 } 913 914 SetDescription(value_sp->GetStringValue()); 915 916 value_sp = data_dictionary->GetValueForKey(triple_key); 917 if (!value_sp) { 918 out_stream->Printf( 919 "Instruction::TestEmulation: Test file does not contain triple.\n"); 920 return false; 921 } 922 923 ArchSpec arch; 924 arch.SetTriple(llvm::Triple(value_sp->GetStringValue())); 925 926 bool success = false; 927 std::unique_ptr<EmulateInstruction> insn_emulator_up( 928 EmulateInstruction::FindPlugin(arch, eInstructionTypeAny, nullptr)); 929 if (insn_emulator_up) 930 success = 931 insn_emulator_up->TestEmulation(out_stream, arch, data_dictionary); 932 933 if (success) 934 out_stream->Printf("Emulation test succeeded."); 935 else 936 out_stream->Printf("Emulation test failed."); 937 938 return success; 939 } 940 941 bool Instruction::Emulate( 942 const ArchSpec &arch, uint32_t evaluate_options, void *baton, 943 EmulateInstruction::ReadMemoryCallback read_mem_callback, 944 EmulateInstruction::WriteMemoryCallback write_mem_callback, 945 EmulateInstruction::ReadRegisterCallback read_reg_callback, 946 EmulateInstruction::WriteRegisterCallback write_reg_callback) { 947 std::unique_ptr<EmulateInstruction> insn_emulator_up( 948 EmulateInstruction::FindPlugin(arch, eInstructionTypeAny, nullptr)); 949 if (insn_emulator_up) { 950 insn_emulator_up->SetBaton(baton); 951 insn_emulator_up->SetCallbacks(read_mem_callback, write_mem_callback, 952 read_reg_callback, write_reg_callback); 953 insn_emulator_up->SetInstruction(GetOpcode(), GetAddress(), nullptr); 954 return insn_emulator_up->EvaluateInstruction(evaluate_options); 955 } 956 957 return false; 958 } 959 960 uint32_t Instruction::GetData(DataExtractor &data) { 961 return m_opcode.GetData(data); 962 } 963 964 InstructionList::InstructionList() : m_instructions() {} 965 966 InstructionList::~InstructionList() = default; 967 968 size_t InstructionList::GetSize() const { return m_instructions.size(); } 969 970 uint32_t InstructionList::GetMaxOpcocdeByteSize() const { 971 uint32_t max_inst_size = 0; 972 collection::const_iterator pos, end; 973 for (pos = m_instructions.begin(), end = m_instructions.end(); pos != end; 974 ++pos) { 975 uint32_t inst_size = (*pos)->GetOpcode().GetByteSize(); 976 if (max_inst_size < inst_size) 977 max_inst_size = inst_size; 978 } 979 return max_inst_size; 980 } 981 982 InstructionSP InstructionList::GetInstructionAtIndex(size_t idx) const { 983 InstructionSP inst_sp; 984 if (idx < m_instructions.size()) 985 inst_sp = m_instructions[idx]; 986 return inst_sp; 987 } 988 989 void InstructionList::Dump(Stream *s, bool show_address, bool show_bytes, 990 const ExecutionContext *exe_ctx) { 991 const uint32_t max_opcode_byte_size = GetMaxOpcocdeByteSize(); 992 collection::const_iterator pos, begin, end; 993 994 const FormatEntity::Entry *disassembly_format = nullptr; 995 FormatEntity::Entry format; 996 if (exe_ctx && exe_ctx->HasTargetScope()) { 997 disassembly_format = 998 exe_ctx->GetTargetRef().GetDebugger().GetDisassemblyFormat(); 999 } else { 1000 FormatEntity::Parse("${addr}: ", format); 1001 disassembly_format = &format; 1002 } 1003 1004 for (begin = m_instructions.begin(), end = m_instructions.end(), pos = begin; 1005 pos != end; ++pos) { 1006 if (pos != begin) 1007 s->EOL(); 1008 (*pos)->Dump(s, max_opcode_byte_size, show_address, show_bytes, exe_ctx, 1009 nullptr, nullptr, disassembly_format, 0); 1010 } 1011 } 1012 1013 void InstructionList::Clear() { m_instructions.clear(); } 1014 1015 void InstructionList::Append(lldb::InstructionSP &inst_sp) { 1016 if (inst_sp) 1017 m_instructions.push_back(inst_sp); 1018 } 1019 1020 uint32_t 1021 InstructionList::GetIndexOfNextBranchInstruction(uint32_t start, 1022 Target &target, 1023 bool ignore_calls, 1024 bool *found_calls) const { 1025 size_t num_instructions = m_instructions.size(); 1026 1027 uint32_t next_branch = UINT32_MAX; 1028 size_t i; 1029 1030 if (found_calls) 1031 *found_calls = false; 1032 for (i = start; i < num_instructions; i++) { 1033 if (m_instructions[i]->DoesBranch()) { 1034 if (ignore_calls && m_instructions[i]->IsCall()) { 1035 if (found_calls) 1036 *found_calls = true; 1037 continue; 1038 } 1039 next_branch = i; 1040 break; 1041 } 1042 } 1043 1044 // Hexagon needs the first instruction of the packet with the branch. Go 1045 // backwards until we find an instruction marked end-of-packet, or until we 1046 // hit start. 1047 if (target.GetArchitecture().GetTriple().getArch() == llvm::Triple::hexagon) { 1048 // If we didn't find a branch, find the last packet start. 1049 if (next_branch == UINT32_MAX) { 1050 i = num_instructions - 1; 1051 } 1052 1053 while (i > start) { 1054 --i; 1055 1056 Status error; 1057 uint32_t inst_bytes; 1058 bool prefer_file_cache = false; // Read from process if process is running 1059 lldb::addr_t load_addr = LLDB_INVALID_ADDRESS; 1060 target.ReadMemory(m_instructions[i]->GetAddress(), prefer_file_cache, 1061 &inst_bytes, sizeof(inst_bytes), error, &load_addr); 1062 // If we have an error reading memory, return start 1063 if (!error.Success()) 1064 return start; 1065 // check if this is the last instruction in a packet bits 15:14 will be 1066 // 11b or 00b for a duplex 1067 if (((inst_bytes & 0xC000) == 0xC000) || 1068 ((inst_bytes & 0xC000) == 0x0000)) { 1069 // instruction after this should be the start of next packet 1070 next_branch = i + 1; 1071 break; 1072 } 1073 } 1074 1075 if (next_branch == UINT32_MAX) { 1076 // We couldn't find the previous packet, so return start 1077 next_branch = start; 1078 } 1079 } 1080 return next_branch; 1081 } 1082 1083 uint32_t 1084 InstructionList::GetIndexOfInstructionAtAddress(const Address &address) { 1085 size_t num_instructions = m_instructions.size(); 1086 uint32_t index = UINT32_MAX; 1087 for (size_t i = 0; i < num_instructions; i++) { 1088 if (m_instructions[i]->GetAddress() == address) { 1089 index = i; 1090 break; 1091 } 1092 } 1093 return index; 1094 } 1095 1096 uint32_t 1097 InstructionList::GetIndexOfInstructionAtLoadAddress(lldb::addr_t load_addr, 1098 Target &target) { 1099 Address address; 1100 address.SetLoadAddress(load_addr, &target); 1101 return GetIndexOfInstructionAtAddress(address); 1102 } 1103 1104 size_t Disassembler::ParseInstructions(Target &target, AddressRange range, 1105 Stream *error_strm_ptr, 1106 bool prefer_file_cache) { 1107 const addr_t byte_size = range.GetByteSize(); 1108 if (byte_size == 0 || !range.GetBaseAddress().IsValid()) 1109 return 0; 1110 1111 range.GetBaseAddress() = ResolveAddress(target, range.GetBaseAddress()); 1112 1113 auto data_sp = std::make_shared<DataBufferHeap>(byte_size, '\0'); 1114 1115 Status error; 1116 lldb::addr_t load_addr = LLDB_INVALID_ADDRESS; 1117 const size_t bytes_read = target.ReadMemory( 1118 range.GetBaseAddress(), prefer_file_cache, data_sp->GetBytes(), 1119 data_sp->GetByteSize(), error, &load_addr); 1120 1121 if (bytes_read > 0) { 1122 if (bytes_read != data_sp->GetByteSize()) 1123 data_sp->SetByteSize(bytes_read); 1124 DataExtractor data(data_sp, m_arch.GetByteOrder(), 1125 m_arch.GetAddressByteSize()); 1126 const bool data_from_file = load_addr == LLDB_INVALID_ADDRESS; 1127 return DecodeInstructions(range.GetBaseAddress(), data, 0, UINT32_MAX, 1128 false, data_from_file); 1129 } else if (error_strm_ptr) { 1130 const char *error_cstr = error.AsCString(); 1131 if (error_cstr) { 1132 error_strm_ptr->Printf("error: %s\n", error_cstr); 1133 } 1134 } 1135 return 0; 1136 } 1137 1138 size_t Disassembler::ParseInstructions(Target &target, Address start, 1139 uint32_t num_instructions, 1140 bool prefer_file_cache) { 1141 m_instruction_list.Clear(); 1142 1143 if (num_instructions == 0 || !start.IsValid()) 1144 return 0; 1145 1146 start = ResolveAddress(target, start); 1147 1148 // Calculate the max buffer size we will need in order to disassemble 1149 const addr_t byte_size = num_instructions * m_arch.GetMaximumOpcodeByteSize(); 1150 1151 if (byte_size == 0) 1152 return 0; 1153 1154 DataBufferHeap *heap_buffer = new DataBufferHeap(byte_size, '\0'); 1155 DataBufferSP data_sp(heap_buffer); 1156 1157 Status error; 1158 lldb::addr_t load_addr = LLDB_INVALID_ADDRESS; 1159 const size_t bytes_read = 1160 target.ReadMemory(start, prefer_file_cache, heap_buffer->GetBytes(), 1161 byte_size, error, &load_addr); 1162 1163 const bool data_from_file = load_addr == LLDB_INVALID_ADDRESS; 1164 1165 if (bytes_read == 0) 1166 return 0; 1167 DataExtractor data(data_sp, m_arch.GetByteOrder(), 1168 m_arch.GetAddressByteSize()); 1169 1170 const bool append_instructions = true; 1171 DecodeInstructions(start, data, 0, num_instructions, append_instructions, 1172 data_from_file); 1173 1174 return m_instruction_list.GetSize(); 1175 } 1176 1177 // Disassembler copy constructor 1178 Disassembler::Disassembler(const ArchSpec &arch, const char *flavor) 1179 : m_arch(arch), m_instruction_list(), m_base_addr(LLDB_INVALID_ADDRESS), 1180 m_flavor() { 1181 if (flavor == nullptr) 1182 m_flavor.assign("default"); 1183 else 1184 m_flavor.assign(flavor); 1185 1186 // If this is an arm variant that can only include thumb (T16, T32) 1187 // instructions, force the arch triple to be "thumbv.." instead of "armv..." 1188 if (arch.IsAlwaysThumbInstructions()) { 1189 std::string thumb_arch_name(arch.GetTriple().getArchName().str()); 1190 // Replace "arm" with "thumb" so we get all thumb variants correct 1191 if (thumb_arch_name.size() > 3) { 1192 thumb_arch_name.erase(0, 3); 1193 thumb_arch_name.insert(0, "thumb"); 1194 } 1195 m_arch.SetTriple(thumb_arch_name.c_str()); 1196 } 1197 } 1198 1199 Disassembler::~Disassembler() = default; 1200 1201 InstructionList &Disassembler::GetInstructionList() { 1202 return m_instruction_list; 1203 } 1204 1205 const InstructionList &Disassembler::GetInstructionList() const { 1206 return m_instruction_list; 1207 } 1208 1209 // Class PseudoInstruction 1210 1211 PseudoInstruction::PseudoInstruction() 1212 : Instruction(Address(), AddressClass::eUnknown), m_description() {} 1213 1214 PseudoInstruction::~PseudoInstruction() = default; 1215 1216 bool PseudoInstruction::DoesBranch() { 1217 // This is NOT a valid question for a pseudo instruction. 1218 return false; 1219 } 1220 1221 bool PseudoInstruction::HasDelaySlot() { 1222 // This is NOT a valid question for a pseudo instruction. 1223 return false; 1224 } 1225 1226 size_t PseudoInstruction::Decode(const lldb_private::Disassembler &disassembler, 1227 const lldb_private::DataExtractor &data, 1228 lldb::offset_t data_offset) { 1229 return m_opcode.GetByteSize(); 1230 } 1231 1232 void PseudoInstruction::SetOpcode(size_t opcode_size, void *opcode_data) { 1233 if (!opcode_data) 1234 return; 1235 1236 switch (opcode_size) { 1237 case 8: { 1238 uint8_t value8 = *((uint8_t *)opcode_data); 1239 m_opcode.SetOpcode8(value8, eByteOrderInvalid); 1240 break; 1241 } 1242 case 16: { 1243 uint16_t value16 = *((uint16_t *)opcode_data); 1244 m_opcode.SetOpcode16(value16, eByteOrderInvalid); 1245 break; 1246 } 1247 case 32: { 1248 uint32_t value32 = *((uint32_t *)opcode_data); 1249 m_opcode.SetOpcode32(value32, eByteOrderInvalid); 1250 break; 1251 } 1252 case 64: { 1253 uint64_t value64 = *((uint64_t *)opcode_data); 1254 m_opcode.SetOpcode64(value64, eByteOrderInvalid); 1255 break; 1256 } 1257 default: 1258 break; 1259 } 1260 } 1261 1262 void PseudoInstruction::SetDescription(llvm::StringRef description) { 1263 m_description = std::string(description); 1264 } 1265 1266 Instruction::Operand Instruction::Operand::BuildRegister(ConstString &r) { 1267 Operand ret; 1268 ret.m_type = Type::Register; 1269 ret.m_register = r; 1270 return ret; 1271 } 1272 1273 Instruction::Operand Instruction::Operand::BuildImmediate(lldb::addr_t imm, 1274 bool neg) { 1275 Operand ret; 1276 ret.m_type = Type::Immediate; 1277 ret.m_immediate = imm; 1278 ret.m_negative = neg; 1279 return ret; 1280 } 1281 1282 Instruction::Operand Instruction::Operand::BuildImmediate(int64_t imm) { 1283 Operand ret; 1284 ret.m_type = Type::Immediate; 1285 if (imm < 0) { 1286 ret.m_immediate = -imm; 1287 ret.m_negative = true; 1288 } else { 1289 ret.m_immediate = imm; 1290 ret.m_negative = false; 1291 } 1292 return ret; 1293 } 1294 1295 Instruction::Operand 1296 Instruction::Operand::BuildDereference(const Operand &ref) { 1297 Operand ret; 1298 ret.m_type = Type::Dereference; 1299 ret.m_children = {ref}; 1300 return ret; 1301 } 1302 1303 Instruction::Operand Instruction::Operand::BuildSum(const Operand &lhs, 1304 const Operand &rhs) { 1305 Operand ret; 1306 ret.m_type = Type::Sum; 1307 ret.m_children = {lhs, rhs}; 1308 return ret; 1309 } 1310 1311 Instruction::Operand Instruction::Operand::BuildProduct(const Operand &lhs, 1312 const Operand &rhs) { 1313 Operand ret; 1314 ret.m_type = Type::Product; 1315 ret.m_children = {lhs, rhs}; 1316 return ret; 1317 } 1318 1319 std::function<bool(const Instruction::Operand &)> 1320 lldb_private::OperandMatchers::MatchBinaryOp( 1321 std::function<bool(const Instruction::Operand &)> base, 1322 std::function<bool(const Instruction::Operand &)> left, 1323 std::function<bool(const Instruction::Operand &)> right) { 1324 return [base, left, right](const Instruction::Operand &op) -> bool { 1325 return (base(op) && op.m_children.size() == 2 && 1326 ((left(op.m_children[0]) && right(op.m_children[1])) || 1327 (left(op.m_children[1]) && right(op.m_children[0])))); 1328 }; 1329 } 1330 1331 std::function<bool(const Instruction::Operand &)> 1332 lldb_private::OperandMatchers::MatchUnaryOp( 1333 std::function<bool(const Instruction::Operand &)> base, 1334 std::function<bool(const Instruction::Operand &)> child) { 1335 return [base, child](const Instruction::Operand &op) -> bool { 1336 return (base(op) && op.m_children.size() == 1 && child(op.m_children[0])); 1337 }; 1338 } 1339 1340 std::function<bool(const Instruction::Operand &)> 1341 lldb_private::OperandMatchers::MatchRegOp(const RegisterInfo &info) { 1342 return [&info](const Instruction::Operand &op) { 1343 return (op.m_type == Instruction::Operand::Type::Register && 1344 (op.m_register == ConstString(info.name) || 1345 op.m_register == ConstString(info.alt_name))); 1346 }; 1347 } 1348 1349 std::function<bool(const Instruction::Operand &)> 1350 lldb_private::OperandMatchers::FetchRegOp(ConstString ®) { 1351 return [®](const Instruction::Operand &op) { 1352 if (op.m_type != Instruction::Operand::Type::Register) { 1353 return false; 1354 } 1355 reg = op.m_register; 1356 return true; 1357 }; 1358 } 1359 1360 std::function<bool(const Instruction::Operand &)> 1361 lldb_private::OperandMatchers::MatchImmOp(int64_t imm) { 1362 return [imm](const Instruction::Operand &op) { 1363 return (op.m_type == Instruction::Operand::Type::Immediate && 1364 ((op.m_negative && op.m_immediate == (uint64_t)-imm) || 1365 (!op.m_negative && op.m_immediate == (uint64_t)imm))); 1366 }; 1367 } 1368 1369 std::function<bool(const Instruction::Operand &)> 1370 lldb_private::OperandMatchers::FetchImmOp(int64_t &imm) { 1371 return [&imm](const Instruction::Operand &op) { 1372 if (op.m_type != Instruction::Operand::Type::Immediate) { 1373 return false; 1374 } 1375 if (op.m_negative) { 1376 imm = -((int64_t)op.m_immediate); 1377 } else { 1378 imm = ((int64_t)op.m_immediate); 1379 } 1380 return true; 1381 }; 1382 } 1383 1384 std::function<bool(const Instruction::Operand &)> 1385 lldb_private::OperandMatchers::MatchOpType(Instruction::Operand::Type type) { 1386 return [type](const Instruction::Operand &op) { return op.m_type == type; }; 1387 } 1388