1 //===-- SymbolFileDWARF.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 "SymbolFileDWARF.h" 10 11 #include "llvm/ADT/Optional.h" 12 #include "llvm/Support/Casting.h" 13 #include "llvm/Support/Threading.h" 14 15 #include "lldb/Core/Module.h" 16 #include "lldb/Core/ModuleList.h" 17 #include "lldb/Core/ModuleSpec.h" 18 #include "lldb/Core/PluginManager.h" 19 #include "lldb/Core/Section.h" 20 #include "lldb/Core/StreamFile.h" 21 #include "lldb/Core/Value.h" 22 #include "lldb/Utility/ArchSpec.h" 23 #include "lldb/Utility/RegularExpression.h" 24 #include "lldb/Utility/Scalar.h" 25 #include "lldb/Utility/StreamString.h" 26 #include "lldb/Utility/Timer.h" 27 28 #include "Plugins/ExpressionParser/Clang/ClangModulesDeclVendor.h" 29 #include "Plugins/Language/CPlusPlus/CPlusPlusLanguage.h" 30 31 #include "lldb/Host/FileSystem.h" 32 #include "lldb/Host/Host.h" 33 34 #include "lldb/Interpreter/OptionValueFileSpecList.h" 35 #include "lldb/Interpreter/OptionValueProperties.h" 36 37 #include "Plugins/ExpressionParser/Clang/ClangUtil.h" 38 #include "Plugins/TypeSystem/Clang/TypeSystemClang.h" 39 #include "lldb/Symbol/Block.h" 40 #include "lldb/Symbol/CompileUnit.h" 41 #include "lldb/Symbol/CompilerDecl.h" 42 #include "lldb/Symbol/CompilerDeclContext.h" 43 #include "lldb/Symbol/DebugMacros.h" 44 #include "lldb/Symbol/LineTable.h" 45 #include "lldb/Symbol/LocateSymbolFile.h" 46 #include "lldb/Symbol/ObjectFile.h" 47 #include "lldb/Symbol/SymbolFile.h" 48 #include "lldb/Symbol/TypeMap.h" 49 #include "lldb/Symbol/TypeSystem.h" 50 #include "lldb/Symbol/VariableList.h" 51 52 #include "lldb/Target/Language.h" 53 #include "lldb/Target/Target.h" 54 55 #include "AppleDWARFIndex.h" 56 #include "DWARFASTParser.h" 57 #include "DWARFASTParserClang.h" 58 #include "DWARFCompileUnit.h" 59 #include "DWARFDebugAbbrev.h" 60 #include "DWARFDebugAranges.h" 61 #include "DWARFDebugInfo.h" 62 #include "DWARFDebugMacro.h" 63 #include "DWARFDebugRanges.h" 64 #include "DWARFDeclContext.h" 65 #include "DWARFFormValue.h" 66 #include "DWARFTypeUnit.h" 67 #include "DWARFUnit.h" 68 #include "DebugNamesDWARFIndex.h" 69 #include "LogChannelDWARF.h" 70 #include "ManualDWARFIndex.h" 71 #include "SymbolFileDWARFDebugMap.h" 72 #include "SymbolFileDWARFDwo.h" 73 74 #include "llvm/DebugInfo/DWARF/DWARFContext.h" 75 #include "llvm/Support/FileSystem.h" 76 77 #include <algorithm> 78 #include <map> 79 #include <memory> 80 81 #include <ctype.h> 82 #include <string.h> 83 84 //#define ENABLE_DEBUG_PRINTF // COMMENT OUT THIS LINE PRIOR TO CHECKIN 85 86 #ifdef ENABLE_DEBUG_PRINTF 87 #include <stdio.h> 88 #define DEBUG_PRINTF(fmt, ...) printf(fmt, __VA_ARGS__) 89 #else 90 #define DEBUG_PRINTF(fmt, ...) 91 #endif 92 93 using namespace lldb; 94 using namespace lldb_private; 95 96 LLDB_PLUGIN_DEFINE(SymbolFileDWARF) 97 98 char SymbolFileDWARF::ID; 99 100 // static inline bool 101 // child_requires_parent_class_union_or_struct_to_be_completed (dw_tag_t tag) 102 //{ 103 // switch (tag) 104 // { 105 // default: 106 // break; 107 // case DW_TAG_subprogram: 108 // case DW_TAG_inlined_subroutine: 109 // case DW_TAG_class_type: 110 // case DW_TAG_structure_type: 111 // case DW_TAG_union_type: 112 // return true; 113 // } 114 // return false; 115 //} 116 // 117 118 namespace { 119 120 #define LLDB_PROPERTIES_symbolfiledwarf 121 #include "SymbolFileDWARFProperties.inc" 122 123 enum { 124 #define LLDB_PROPERTIES_symbolfiledwarf 125 #include "SymbolFileDWARFPropertiesEnum.inc" 126 }; 127 128 class PluginProperties : public Properties { 129 public: 130 static ConstString GetSettingName() { 131 return SymbolFileDWARF::GetPluginNameStatic(); 132 } 133 134 PluginProperties() { 135 m_collection_sp = std::make_shared<OptionValueProperties>(GetSettingName()); 136 m_collection_sp->Initialize(g_symbolfiledwarf_properties); 137 } 138 139 bool IgnoreFileIndexes() const { 140 return m_collection_sp->GetPropertyAtIndexAsBoolean( 141 nullptr, ePropertyIgnoreIndexes, false); 142 } 143 }; 144 145 typedef std::shared_ptr<PluginProperties> SymbolFileDWARFPropertiesSP; 146 147 static const SymbolFileDWARFPropertiesSP &GetGlobalPluginProperties() { 148 static const auto g_settings_sp(std::make_shared<PluginProperties>()); 149 return g_settings_sp; 150 } 151 152 } // namespace 153 154 static const llvm::DWARFDebugLine::LineTable * 155 ParseLLVMLineTable(lldb_private::DWARFContext &context, 156 llvm::DWARFDebugLine &line, dw_offset_t line_offset, 157 dw_offset_t unit_offset) { 158 Log *log = LogChannelDWARF::GetLogIfAll(DWARF_LOG_DEBUG_INFO); 159 160 llvm::DWARFDataExtractor data = context.getOrLoadLineData().GetAsLLVM(); 161 llvm::DWARFContext &ctx = context.GetAsLLVM(); 162 llvm::Expected<const llvm::DWARFDebugLine::LineTable *> line_table = 163 line.getOrParseLineTable( 164 data, line_offset, ctx, nullptr, [&](llvm::Error e) { 165 LLDB_LOG_ERROR(log, std::move(e), 166 "SymbolFileDWARF::ParseLineTable failed to parse"); 167 }); 168 169 if (!line_table) { 170 LLDB_LOG_ERROR(log, line_table.takeError(), 171 "SymbolFileDWARF::ParseLineTable failed to parse"); 172 return nullptr; 173 } 174 return *line_table; 175 } 176 177 static llvm::Optional<std::string> 178 GetFileByIndex(const llvm::DWARFDebugLine::Prologue &prologue, size_t idx, 179 llvm::StringRef compile_dir, FileSpec::Style style) { 180 // Try to get an absolute path first. 181 std::string abs_path; 182 auto absolute = llvm::DILineInfoSpecifier::FileLineInfoKind::AbsoluteFilePath; 183 if (prologue.getFileNameByIndex(idx, compile_dir, absolute, abs_path, style)) 184 return std::move(abs_path); 185 186 // Otherwise ask for a relative path. 187 std::string rel_path; 188 auto relative = llvm::DILineInfoSpecifier::FileLineInfoKind::RawValue; 189 if (!prologue.getFileNameByIndex(idx, compile_dir, relative, rel_path, style)) 190 return {}; 191 return std::move(rel_path); 192 } 193 194 static FileSpecList 195 ParseSupportFilesFromPrologue(const lldb::ModuleSP &module, 196 const llvm::DWARFDebugLine::Prologue &prologue, 197 FileSpec::Style style, 198 llvm::StringRef compile_dir = {}) { 199 FileSpecList support_files; 200 size_t first_file = 0; 201 if (prologue.getVersion() <= 4) { 202 // File index 0 is not valid before DWARF v5. Add a dummy entry to ensure 203 // support file list indices match those we get from the debug info and line 204 // tables. 205 support_files.Append(FileSpec()); 206 first_file = 1; 207 } 208 209 const size_t number_of_files = prologue.FileNames.size(); 210 for (size_t idx = first_file; idx <= number_of_files; ++idx) { 211 std::string remapped_file; 212 if (auto file_path = GetFileByIndex(prologue, idx, compile_dir, style)) 213 if (!module->RemapSourceFile(llvm::StringRef(*file_path), remapped_file)) 214 remapped_file = std::move(*file_path); 215 216 // Unconditionally add an entry, so the indices match up. 217 support_files.EmplaceBack(remapped_file, style); 218 } 219 220 return support_files; 221 } 222 223 void SymbolFileDWARF::Initialize() { 224 LogChannelDWARF::Initialize(); 225 PluginManager::RegisterPlugin(GetPluginNameStatic(), 226 GetPluginDescriptionStatic(), CreateInstance, 227 DebuggerInitialize); 228 SymbolFileDWARFDebugMap::Initialize(); 229 } 230 231 void SymbolFileDWARF::DebuggerInitialize(Debugger &debugger) { 232 if (!PluginManager::GetSettingForSymbolFilePlugin( 233 debugger, PluginProperties::GetSettingName())) { 234 const bool is_global_setting = true; 235 PluginManager::CreateSettingForSymbolFilePlugin( 236 debugger, GetGlobalPluginProperties()->GetValueProperties(), 237 ConstString("Properties for the dwarf symbol-file plug-in."), 238 is_global_setting); 239 } 240 } 241 242 void SymbolFileDWARF::Terminate() { 243 SymbolFileDWARFDebugMap::Terminate(); 244 PluginManager::UnregisterPlugin(CreateInstance); 245 LogChannelDWARF::Terminate(); 246 } 247 248 lldb_private::ConstString SymbolFileDWARF::GetPluginNameStatic() { 249 static ConstString g_name("dwarf"); 250 return g_name; 251 } 252 253 const char *SymbolFileDWARF::GetPluginDescriptionStatic() { 254 return "DWARF and DWARF3 debug symbol file reader."; 255 } 256 257 SymbolFile *SymbolFileDWARF::CreateInstance(ObjectFileSP objfile_sp) { 258 return new SymbolFileDWARF(std::move(objfile_sp), 259 /*dwo_section_list*/ nullptr); 260 } 261 262 TypeList &SymbolFileDWARF::GetTypeList() { 263 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 264 if (SymbolFileDWARFDebugMap *debug_map_symfile = GetDebugMapSymfile()) 265 return debug_map_symfile->GetTypeList(); 266 return SymbolFile::GetTypeList(); 267 } 268 void SymbolFileDWARF::GetTypes(const DWARFDIE &die, dw_offset_t min_die_offset, 269 dw_offset_t max_die_offset, uint32_t type_mask, 270 TypeSet &type_set) { 271 if (die) { 272 const dw_offset_t die_offset = die.GetOffset(); 273 274 if (die_offset >= max_die_offset) 275 return; 276 277 if (die_offset >= min_die_offset) { 278 const dw_tag_t tag = die.Tag(); 279 280 bool add_type = false; 281 282 switch (tag) { 283 case DW_TAG_array_type: 284 add_type = (type_mask & eTypeClassArray) != 0; 285 break; 286 case DW_TAG_unspecified_type: 287 case DW_TAG_base_type: 288 add_type = (type_mask & eTypeClassBuiltin) != 0; 289 break; 290 case DW_TAG_class_type: 291 add_type = (type_mask & eTypeClassClass) != 0; 292 break; 293 case DW_TAG_structure_type: 294 add_type = (type_mask & eTypeClassStruct) != 0; 295 break; 296 case DW_TAG_union_type: 297 add_type = (type_mask & eTypeClassUnion) != 0; 298 break; 299 case DW_TAG_enumeration_type: 300 add_type = (type_mask & eTypeClassEnumeration) != 0; 301 break; 302 case DW_TAG_subroutine_type: 303 case DW_TAG_subprogram: 304 case DW_TAG_inlined_subroutine: 305 add_type = (type_mask & eTypeClassFunction) != 0; 306 break; 307 case DW_TAG_pointer_type: 308 add_type = (type_mask & eTypeClassPointer) != 0; 309 break; 310 case DW_TAG_rvalue_reference_type: 311 case DW_TAG_reference_type: 312 add_type = (type_mask & eTypeClassReference) != 0; 313 break; 314 case DW_TAG_typedef: 315 add_type = (type_mask & eTypeClassTypedef) != 0; 316 break; 317 case DW_TAG_ptr_to_member_type: 318 add_type = (type_mask & eTypeClassMemberPointer) != 0; 319 break; 320 default: 321 break; 322 } 323 324 if (add_type) { 325 const bool assert_not_being_parsed = true; 326 Type *type = ResolveTypeUID(die, assert_not_being_parsed); 327 if (type) 328 type_set.insert(type); 329 } 330 } 331 332 for (DWARFDIE child_die = die.GetFirstChild(); child_die.IsValid(); 333 child_die = child_die.GetSibling()) { 334 GetTypes(child_die, min_die_offset, max_die_offset, type_mask, type_set); 335 } 336 } 337 } 338 339 void SymbolFileDWARF::GetTypes(SymbolContextScope *sc_scope, 340 TypeClass type_mask, TypeList &type_list) 341 342 { 343 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 344 TypeSet type_set; 345 346 CompileUnit *comp_unit = nullptr; 347 DWARFUnit *dwarf_cu = nullptr; 348 if (sc_scope) 349 comp_unit = sc_scope->CalculateSymbolContextCompileUnit(); 350 351 if (comp_unit) { 352 dwarf_cu = GetDWARFCompileUnit(comp_unit); 353 if (!dwarf_cu) 354 return; 355 GetTypes(dwarf_cu->DIE(), dwarf_cu->GetOffset(), 356 dwarf_cu->GetNextUnitOffset(), type_mask, type_set); 357 } else { 358 DWARFDebugInfo &info = DebugInfo(); 359 const size_t num_cus = info.GetNumUnits(); 360 for (size_t cu_idx = 0; cu_idx < num_cus; ++cu_idx) { 361 dwarf_cu = info.GetUnitAtIndex(cu_idx); 362 if (dwarf_cu) 363 GetTypes(dwarf_cu->DIE(), 0, UINT32_MAX, type_mask, type_set); 364 } 365 } 366 367 std::set<CompilerType> compiler_type_set; 368 for (Type *type : type_set) { 369 CompilerType compiler_type = type->GetForwardCompilerType(); 370 if (compiler_type_set.find(compiler_type) == compiler_type_set.end()) { 371 compiler_type_set.insert(compiler_type); 372 type_list.Insert(type->shared_from_this()); 373 } 374 } 375 } 376 377 // Gets the first parent that is a lexical block, function or inlined 378 // subroutine, or compile unit. 379 DWARFDIE 380 SymbolFileDWARF::GetParentSymbolContextDIE(const DWARFDIE &child_die) { 381 DWARFDIE die; 382 for (die = child_die.GetParent(); die; die = die.GetParent()) { 383 dw_tag_t tag = die.Tag(); 384 385 switch (tag) { 386 case DW_TAG_compile_unit: 387 case DW_TAG_partial_unit: 388 case DW_TAG_subprogram: 389 case DW_TAG_inlined_subroutine: 390 case DW_TAG_lexical_block: 391 return die; 392 default: 393 break; 394 } 395 } 396 return DWARFDIE(); 397 } 398 399 SymbolFileDWARF::SymbolFileDWARF(ObjectFileSP objfile_sp, 400 SectionList *dwo_section_list) 401 : SymbolFile(std::move(objfile_sp)), 402 UserID(0x7fffffff00000000), // Used by SymbolFileDWARFDebugMap to 403 // when this class parses .o files to 404 // contain the .o file index/ID 405 m_debug_map_module_wp(), m_debug_map_symfile(nullptr), 406 m_context(m_objfile_sp->GetModule()->GetSectionList(), dwo_section_list), 407 m_fetched_external_modules(false), 408 m_supports_DW_AT_APPLE_objc_complete_type(eLazyBoolCalculate) {} 409 410 SymbolFileDWARF::~SymbolFileDWARF() {} 411 412 static ConstString GetDWARFMachOSegmentName() { 413 static ConstString g_dwarf_section_name("__DWARF"); 414 return g_dwarf_section_name; 415 } 416 417 UniqueDWARFASTTypeMap &SymbolFileDWARF::GetUniqueDWARFASTTypeMap() { 418 SymbolFileDWARFDebugMap *debug_map_symfile = GetDebugMapSymfile(); 419 if (debug_map_symfile) 420 return debug_map_symfile->GetUniqueDWARFASTTypeMap(); 421 else 422 return m_unique_ast_type_map; 423 } 424 425 llvm::Expected<TypeSystem &> 426 SymbolFileDWARF::GetTypeSystemForLanguage(LanguageType language) { 427 if (SymbolFileDWARFDebugMap *debug_map_symfile = GetDebugMapSymfile()) 428 return debug_map_symfile->GetTypeSystemForLanguage(language); 429 430 auto type_system_or_err = 431 m_objfile_sp->GetModule()->GetTypeSystemForLanguage(language); 432 if (type_system_or_err) { 433 type_system_or_err->SetSymbolFile(this); 434 } 435 return type_system_or_err; 436 } 437 438 void SymbolFileDWARF::InitializeObject() { 439 Log *log = LogChannelDWARF::GetLogIfAll(DWARF_LOG_DEBUG_INFO); 440 441 if (!GetGlobalPluginProperties()->IgnoreFileIndexes()) { 442 DWARFDataExtractor apple_names, apple_namespaces, apple_types, apple_objc; 443 LoadSectionData(eSectionTypeDWARFAppleNames, apple_names); 444 LoadSectionData(eSectionTypeDWARFAppleNamespaces, apple_namespaces); 445 LoadSectionData(eSectionTypeDWARFAppleTypes, apple_types); 446 LoadSectionData(eSectionTypeDWARFAppleObjC, apple_objc); 447 448 m_index = AppleDWARFIndex::Create( 449 *GetObjectFile()->GetModule(), apple_names, apple_namespaces, 450 apple_types, apple_objc, m_context.getOrLoadStrData()); 451 452 if (m_index) 453 return; 454 455 DWARFDataExtractor debug_names; 456 LoadSectionData(eSectionTypeDWARFDebugNames, debug_names); 457 if (debug_names.GetByteSize() > 0) { 458 llvm::Expected<std::unique_ptr<DebugNamesDWARFIndex>> index_or = 459 DebugNamesDWARFIndex::Create(*GetObjectFile()->GetModule(), 460 debug_names, 461 m_context.getOrLoadStrData(), *this); 462 if (index_or) { 463 m_index = std::move(*index_or); 464 return; 465 } 466 LLDB_LOG_ERROR(log, index_or.takeError(), 467 "Unable to read .debug_names data: {0}"); 468 } 469 } 470 471 m_index = 472 std::make_unique<ManualDWARFIndex>(*GetObjectFile()->GetModule(), *this); 473 } 474 475 bool SymbolFileDWARF::SupportedVersion(uint16_t version) { 476 return version >= 2 && version <= 5; 477 } 478 479 uint32_t SymbolFileDWARF::CalculateAbilities() { 480 uint32_t abilities = 0; 481 if (m_objfile_sp != nullptr) { 482 const Section *section = nullptr; 483 const SectionList *section_list = m_objfile_sp->GetSectionList(); 484 if (section_list == nullptr) 485 return 0; 486 487 uint64_t debug_abbrev_file_size = 0; 488 uint64_t debug_info_file_size = 0; 489 uint64_t debug_line_file_size = 0; 490 491 section = section_list->FindSectionByName(GetDWARFMachOSegmentName()).get(); 492 493 if (section) 494 section_list = §ion->GetChildren(); 495 496 section = 497 section_list->FindSectionByType(eSectionTypeDWARFDebugInfo, true).get(); 498 if (section != nullptr) { 499 debug_info_file_size = section->GetFileSize(); 500 501 section = 502 section_list->FindSectionByType(eSectionTypeDWARFDebugAbbrev, true) 503 .get(); 504 if (section) 505 debug_abbrev_file_size = section->GetFileSize(); 506 507 DWARFDebugAbbrev *abbrev = DebugAbbrev(); 508 if (abbrev) { 509 std::set<dw_form_t> invalid_forms; 510 abbrev->GetUnsupportedForms(invalid_forms); 511 if (!invalid_forms.empty()) { 512 StreamString error; 513 error.Printf("unsupported DW_FORM value%s:", 514 invalid_forms.size() > 1 ? "s" : ""); 515 for (auto form : invalid_forms) 516 error.Printf(" %#x", form); 517 m_objfile_sp->GetModule()->ReportWarning( 518 "%s", error.GetString().str().c_str()); 519 return 0; 520 } 521 } 522 523 section = 524 section_list->FindSectionByType(eSectionTypeDWARFDebugLine, true) 525 .get(); 526 if (section) 527 debug_line_file_size = section->GetFileSize(); 528 } else { 529 const char *symfile_dir_cstr = 530 m_objfile_sp->GetFileSpec().GetDirectory().GetCString(); 531 if (symfile_dir_cstr) { 532 if (strcasestr(symfile_dir_cstr, ".dsym")) { 533 if (m_objfile_sp->GetType() == ObjectFile::eTypeDebugInfo) { 534 // We have a dSYM file that didn't have a any debug info. If the 535 // string table has a size of 1, then it was made from an 536 // executable with no debug info, or from an executable that was 537 // stripped. 538 section = 539 section_list->FindSectionByType(eSectionTypeDWARFDebugStr, true) 540 .get(); 541 if (section && section->GetFileSize() == 1) { 542 m_objfile_sp->GetModule()->ReportWarning( 543 "empty dSYM file detected, dSYM was created with an " 544 "executable with no debug info."); 545 } 546 } 547 } 548 } 549 } 550 551 if (debug_abbrev_file_size > 0 && debug_info_file_size > 0) 552 abilities |= CompileUnits | Functions | Blocks | GlobalVariables | 553 LocalVariables | VariableTypes; 554 555 if (debug_line_file_size > 0) 556 abilities |= LineTables; 557 } 558 return abilities; 559 } 560 561 void SymbolFileDWARF::LoadSectionData(lldb::SectionType sect_type, 562 DWARFDataExtractor &data) { 563 ModuleSP module_sp(m_objfile_sp->GetModule()); 564 const SectionList *section_list = module_sp->GetSectionList(); 565 if (!section_list) 566 return; 567 568 SectionSP section_sp(section_list->FindSectionByType(sect_type, true)); 569 if (!section_sp) 570 return; 571 572 data.Clear(); 573 m_objfile_sp->ReadSectionData(section_sp.get(), data); 574 } 575 576 DWARFDebugAbbrev *SymbolFileDWARF::DebugAbbrev() { 577 if (m_abbr) 578 return m_abbr.get(); 579 580 const DWARFDataExtractor &debug_abbrev_data = m_context.getOrLoadAbbrevData(); 581 if (debug_abbrev_data.GetByteSize() == 0) 582 return nullptr; 583 584 auto abbr = std::make_unique<DWARFDebugAbbrev>(); 585 llvm::Error error = abbr->parse(debug_abbrev_data); 586 if (error) { 587 Log *log = LogChannelDWARF::GetLogIfAll(DWARF_LOG_DEBUG_INFO); 588 LLDB_LOG_ERROR(log, std::move(error), 589 "Unable to read .debug_abbrev section: {0}"); 590 return nullptr; 591 } 592 593 m_abbr = std::move(abbr); 594 return m_abbr.get(); 595 } 596 597 DWARFDebugInfo &SymbolFileDWARF::DebugInfo() { 598 llvm::call_once(m_info_once_flag, [&] { 599 static Timer::Category func_cat(LLVM_PRETTY_FUNCTION); 600 Timer scoped_timer(func_cat, "%s this = %p", LLVM_PRETTY_FUNCTION, 601 static_cast<void *>(this)); 602 m_info = std::make_unique<DWARFDebugInfo>(*this, m_context); 603 }); 604 return *m_info; 605 } 606 607 DWARFUnit * 608 SymbolFileDWARF::GetDWARFCompileUnit(lldb_private::CompileUnit *comp_unit) { 609 if (!comp_unit) 610 return nullptr; 611 612 // The compile unit ID is the index of the DWARF unit. 613 DWARFUnit *dwarf_cu = DebugInfo().GetUnitAtIndex(comp_unit->GetID()); 614 if (dwarf_cu && dwarf_cu->GetUserData() == nullptr) 615 dwarf_cu->SetUserData(comp_unit); 616 return dwarf_cu; 617 } 618 619 DWARFDebugRanges *SymbolFileDWARF::GetDebugRanges() { 620 if (!m_ranges) { 621 static Timer::Category func_cat(LLVM_PRETTY_FUNCTION); 622 Timer scoped_timer(func_cat, "%s this = %p", LLVM_PRETTY_FUNCTION, 623 static_cast<void *>(this)); 624 625 if (m_context.getOrLoadRangesData().GetByteSize() > 0) 626 m_ranges.reset(new DWARFDebugRanges()); 627 628 if (m_ranges) 629 m_ranges->Extract(m_context); 630 } 631 return m_ranges.get(); 632 } 633 634 /// Make an absolute path out of \p file_spec and remap it using the 635 /// module's source remapping dictionary. 636 static void MakeAbsoluteAndRemap(FileSpec &file_spec, DWARFUnit &dwarf_cu, 637 const ModuleSP &module_sp) { 638 if (!file_spec) 639 return; 640 // If we have a full path to the compile unit, we don't need to 641 // resolve the file. This can be expensive e.g. when the source 642 // files are NFS mounted. 643 file_spec.MakeAbsolute(dwarf_cu.GetCompilationDirectory()); 644 645 std::string remapped_file; 646 if (module_sp->RemapSourceFile(file_spec.GetPath(), remapped_file)) 647 file_spec.SetFile(remapped_file, FileSpec::Style::native); 648 } 649 650 lldb::CompUnitSP SymbolFileDWARF::ParseCompileUnit(DWARFCompileUnit &dwarf_cu) { 651 CompUnitSP cu_sp; 652 CompileUnit *comp_unit = (CompileUnit *)dwarf_cu.GetUserData(); 653 if (comp_unit) { 654 // We already parsed this compile unit, had out a shared pointer to it 655 cu_sp = comp_unit->shared_from_this(); 656 } else { 657 if (dwarf_cu.GetOffset() == 0 && GetDebugMapSymfile()) { 658 // Let the debug map create the compile unit 659 cu_sp = m_debug_map_symfile->GetCompileUnit(this); 660 dwarf_cu.SetUserData(cu_sp.get()); 661 } else { 662 ModuleSP module_sp(m_objfile_sp->GetModule()); 663 if (module_sp) { 664 const DWARFBaseDIE cu_die = 665 dwarf_cu.GetNonSkeletonUnit().GetUnitDIEOnly(); 666 if (cu_die) { 667 if (const char *sdk = 668 cu_die.GetAttributeValueAsString(DW_AT_APPLE_sdk, nullptr)) { 669 const char *sysroot = 670 cu_die.GetAttributeValueAsString(DW_AT_LLVM_sysroot, ""); 671 module_sp->RegisterXcodeSDK(sdk, sysroot); 672 } 673 FileSpec cu_file_spec(cu_die.GetName(), dwarf_cu.GetPathStyle()); 674 MakeAbsoluteAndRemap(cu_file_spec, dwarf_cu, module_sp); 675 676 LanguageType cu_language = SymbolFileDWARF::LanguageTypeFromDWARF( 677 cu_die.GetAttributeValueAsUnsigned(DW_AT_language, 0)); 678 679 bool is_optimized = dwarf_cu.GetNonSkeletonUnit().GetIsOptimized(); 680 BuildCuTranslationTable(); 681 cu_sp = std::make_shared<CompileUnit>( 682 module_sp, &dwarf_cu, cu_file_spec, 683 *GetDWARFUnitIndex(dwarf_cu.GetID()), cu_language, 684 is_optimized ? eLazyBoolYes : eLazyBoolNo); 685 686 dwarf_cu.SetUserData(cu_sp.get()); 687 688 SetCompileUnitAtIndex(dwarf_cu.GetID(), cu_sp); 689 } 690 } 691 } 692 } 693 return cu_sp; 694 } 695 696 void SymbolFileDWARF::BuildCuTranslationTable() { 697 if (!m_lldb_cu_to_dwarf_unit.empty()) 698 return; 699 700 DWARFDebugInfo &info = DebugInfo(); 701 if (!info.ContainsTypeUnits()) { 702 // We can use a 1-to-1 mapping. No need to build a translation table. 703 return; 704 } 705 for (uint32_t i = 0, num = info.GetNumUnits(); i < num; ++i) { 706 if (auto *cu = llvm::dyn_cast<DWARFCompileUnit>(info.GetUnitAtIndex(i))) { 707 cu->SetID(m_lldb_cu_to_dwarf_unit.size()); 708 m_lldb_cu_to_dwarf_unit.push_back(i); 709 } 710 } 711 } 712 713 llvm::Optional<uint32_t> SymbolFileDWARF::GetDWARFUnitIndex(uint32_t cu_idx) { 714 BuildCuTranslationTable(); 715 if (m_lldb_cu_to_dwarf_unit.empty()) 716 return cu_idx; 717 if (cu_idx >= m_lldb_cu_to_dwarf_unit.size()) 718 return llvm::None; 719 return m_lldb_cu_to_dwarf_unit[cu_idx]; 720 } 721 722 uint32_t SymbolFileDWARF::CalculateNumCompileUnits() { 723 BuildCuTranslationTable(); 724 return m_lldb_cu_to_dwarf_unit.empty() ? DebugInfo().GetNumUnits() 725 : m_lldb_cu_to_dwarf_unit.size(); 726 } 727 728 CompUnitSP SymbolFileDWARF::ParseCompileUnitAtIndex(uint32_t cu_idx) { 729 ASSERT_MODULE_LOCK(this); 730 if (llvm::Optional<uint32_t> dwarf_idx = GetDWARFUnitIndex(cu_idx)) { 731 if (auto *dwarf_cu = llvm::cast_or_null<DWARFCompileUnit>( 732 DebugInfo().GetUnitAtIndex(*dwarf_idx))) 733 return ParseCompileUnit(*dwarf_cu); 734 } 735 return {}; 736 } 737 738 Function *SymbolFileDWARF::ParseFunction(CompileUnit &comp_unit, 739 const DWARFDIE &die) { 740 ASSERT_MODULE_LOCK(this); 741 if (!die.IsValid()) 742 return nullptr; 743 744 auto type_system_or_err = GetTypeSystemForLanguage(GetLanguage(*die.GetCU())); 745 if (auto err = type_system_or_err.takeError()) { 746 LLDB_LOG_ERROR(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_SYMBOLS), 747 std::move(err), "Unable to parse function"); 748 return nullptr; 749 } 750 DWARFASTParser *dwarf_ast = type_system_or_err->GetDWARFParser(); 751 if (!dwarf_ast) 752 return nullptr; 753 754 return dwarf_ast->ParseFunctionFromDWARF(comp_unit, die); 755 } 756 757 lldb::addr_t SymbolFileDWARF::FixupAddress(lldb::addr_t file_addr) { 758 SymbolFileDWARFDebugMap *debug_map_symfile = GetDebugMapSymfile(); 759 if (debug_map_symfile) 760 return debug_map_symfile->LinkOSOFileAddress(this, file_addr); 761 return file_addr; 762 } 763 764 bool SymbolFileDWARF::FixupAddress(Address &addr) { 765 SymbolFileDWARFDebugMap *debug_map_symfile = GetDebugMapSymfile(); 766 if (debug_map_symfile) { 767 return debug_map_symfile->LinkOSOAddress(addr); 768 } 769 // This is a normal DWARF file, no address fixups need to happen 770 return true; 771 } 772 lldb::LanguageType SymbolFileDWARF::ParseLanguage(CompileUnit &comp_unit) { 773 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 774 DWARFUnit *dwarf_cu = GetDWARFCompileUnit(&comp_unit); 775 if (dwarf_cu) 776 return GetLanguage(*dwarf_cu); 777 else 778 return eLanguageTypeUnknown; 779 } 780 781 size_t SymbolFileDWARF::ParseFunctions(CompileUnit &comp_unit) { 782 static Timer::Category func_cat(LLVM_PRETTY_FUNCTION); 783 Timer scoped_timer(func_cat, "SymbolFileDWARF::ParseFunctions"); 784 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 785 DWARFUnit *dwarf_cu = GetDWARFCompileUnit(&comp_unit); 786 if (!dwarf_cu) 787 return 0; 788 789 size_t functions_added = 0; 790 dwarf_cu = &dwarf_cu->GetNonSkeletonUnit(); 791 for (DWARFDebugInfoEntry &entry : dwarf_cu->dies()) { 792 if (entry.Tag() != DW_TAG_subprogram) 793 continue; 794 795 DWARFDIE die(dwarf_cu, &entry); 796 if (comp_unit.FindFunctionByUID(die.GetID())) 797 continue; 798 if (ParseFunction(comp_unit, die)) 799 ++functions_added; 800 } 801 // FixupTypes(); 802 return functions_added; 803 } 804 805 bool SymbolFileDWARF::ForEachExternalModule( 806 CompileUnit &comp_unit, 807 llvm::DenseSet<lldb_private::SymbolFile *> &visited_symbol_files, 808 llvm::function_ref<bool(Module &)> lambda) { 809 // Only visit each symbol file once. 810 if (!visited_symbol_files.insert(this).second) 811 return false; 812 813 UpdateExternalModuleListIfNeeded(); 814 for (auto &p : m_external_type_modules) { 815 ModuleSP module = p.second; 816 if (!module) 817 continue; 818 819 // Invoke the action and potentially early-exit. 820 if (lambda(*module)) 821 return true; 822 823 for (std::size_t i = 0; i < module->GetNumCompileUnits(); ++i) { 824 auto cu = module->GetCompileUnitAtIndex(i); 825 bool early_exit = cu->ForEachExternalModule(visited_symbol_files, lambda); 826 if (early_exit) 827 return true; 828 } 829 } 830 return false; 831 } 832 833 bool SymbolFileDWARF::ParseSupportFiles(CompileUnit &comp_unit, 834 FileSpecList &support_files) { 835 if (!comp_unit.GetLineTable()) 836 ParseLineTable(comp_unit); 837 return true; 838 } 839 840 FileSpec SymbolFileDWARF::GetFile(DWARFUnit &unit, size_t file_idx) { 841 if (auto *dwarf_cu = llvm::dyn_cast<DWARFCompileUnit>(&unit)) { 842 if (CompileUnit *lldb_cu = GetCompUnitForDWARFCompUnit(*dwarf_cu)) 843 return lldb_cu->GetSupportFiles().GetFileSpecAtIndex(file_idx); 844 return FileSpec(); 845 } 846 847 auto &tu = llvm::cast<DWARFTypeUnit>(unit); 848 return GetTypeUnitSupportFiles(tu).GetFileSpecAtIndex(file_idx); 849 } 850 851 const FileSpecList & 852 SymbolFileDWARF::GetTypeUnitSupportFiles(DWARFTypeUnit &tu) { 853 static FileSpecList empty_list; 854 855 dw_offset_t offset = tu.GetLineTableOffset(); 856 if (offset == DW_INVALID_OFFSET || 857 offset == llvm::DenseMapInfo<dw_offset_t>::getEmptyKey() || 858 offset == llvm::DenseMapInfo<dw_offset_t>::getTombstoneKey()) 859 return empty_list; 860 861 // Many type units can share a line table, so parse the support file list 862 // once, and cache it based on the offset field. 863 auto iter_bool = m_type_unit_support_files.try_emplace(offset); 864 FileSpecList &list = iter_bool.first->second; 865 if (iter_bool.second) { 866 uint64_t line_table_offset = offset; 867 llvm::DWARFDataExtractor data = m_context.getOrLoadLineData().GetAsLLVM(); 868 llvm::DWARFContext &ctx = m_context.GetAsLLVM(); 869 llvm::DWARFDebugLine::Prologue prologue; 870 auto report = [](llvm::Error error) { 871 Log *log = LogChannelDWARF::GetLogIfAll(DWARF_LOG_DEBUG_INFO); 872 LLDB_LOG_ERROR(log, std::move(error), 873 "SymbolFileDWARF::GetTypeUnitSupportFiles failed to parse " 874 "the line table prologue"); 875 }; 876 llvm::Error error = prologue.parse(data, &line_table_offset, report, ctx); 877 if (error) { 878 report(std::move(error)); 879 } else { 880 list = ParseSupportFilesFromPrologue(GetObjectFile()->GetModule(), 881 prologue, tu.GetPathStyle()); 882 } 883 } 884 return list; 885 } 886 887 bool SymbolFileDWARF::ParseIsOptimized(CompileUnit &comp_unit) { 888 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 889 DWARFUnit *dwarf_cu = GetDWARFCompileUnit(&comp_unit); 890 if (dwarf_cu) 891 return dwarf_cu->GetIsOptimized(); 892 return false; 893 } 894 895 bool SymbolFileDWARF::ParseImportedModules( 896 const lldb_private::SymbolContext &sc, 897 std::vector<SourceModule> &imported_modules) { 898 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 899 assert(sc.comp_unit); 900 DWARFUnit *dwarf_cu = GetDWARFCompileUnit(sc.comp_unit); 901 if (!dwarf_cu) 902 return false; 903 if (!ClangModulesDeclVendor::LanguageSupportsClangModules( 904 sc.comp_unit->GetLanguage())) 905 return false; 906 UpdateExternalModuleListIfNeeded(); 907 908 const DWARFDIE die = dwarf_cu->DIE(); 909 if (!die) 910 return false; 911 912 for (DWARFDIE child_die = die.GetFirstChild(); child_die; 913 child_die = child_die.GetSibling()) { 914 if (child_die.Tag() != DW_TAG_imported_declaration) 915 continue; 916 917 DWARFDIE module_die = child_die.GetReferencedDIE(DW_AT_import); 918 if (module_die.Tag() != DW_TAG_module) 919 continue; 920 921 if (const char *name = 922 module_die.GetAttributeValueAsString(DW_AT_name, nullptr)) { 923 SourceModule module; 924 module.path.push_back(ConstString(name)); 925 926 DWARFDIE parent_die = module_die; 927 while ((parent_die = parent_die.GetParent())) { 928 if (parent_die.Tag() != DW_TAG_module) 929 break; 930 if (const char *name = 931 parent_die.GetAttributeValueAsString(DW_AT_name, nullptr)) 932 module.path.push_back(ConstString(name)); 933 } 934 std::reverse(module.path.begin(), module.path.end()); 935 if (const char *include_path = module_die.GetAttributeValueAsString( 936 DW_AT_LLVM_include_path, nullptr)) { 937 FileSpec include_spec(include_path, dwarf_cu->GetPathStyle()); 938 MakeAbsoluteAndRemap(include_spec, *dwarf_cu, m_objfile_sp->GetModule()); 939 module.search_path = ConstString(include_spec.GetPath()); 940 } 941 if (const char *sysroot = dwarf_cu->DIE().GetAttributeValueAsString( 942 DW_AT_LLVM_sysroot, nullptr)) 943 module.sysroot = ConstString(sysroot); 944 imported_modules.push_back(module); 945 } 946 } 947 return true; 948 } 949 950 bool SymbolFileDWARF::ParseLineTable(CompileUnit &comp_unit) { 951 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 952 if (comp_unit.GetLineTable() != nullptr) 953 return true; 954 955 DWARFUnit *dwarf_cu = GetDWARFCompileUnit(&comp_unit); 956 if (!dwarf_cu) 957 return false; 958 959 const DWARFBaseDIE dwarf_cu_die = dwarf_cu->GetUnitDIEOnly(); 960 if (!dwarf_cu_die) 961 return false; 962 963 const dw_offset_t cu_line_offset = dwarf_cu_die.GetAttributeValueAsUnsigned( 964 DW_AT_stmt_list, DW_INVALID_OFFSET); 965 if (cu_line_offset == DW_INVALID_OFFSET) 966 return false; 967 968 llvm::DWARFDebugLine line; 969 const llvm::DWARFDebugLine::LineTable *line_table = ParseLLVMLineTable( 970 m_context, line, cu_line_offset, dwarf_cu->GetOffset()); 971 972 if (!line_table) 973 return false; 974 975 // FIXME: Rather than parsing the whole line table and then copying it over 976 // into LLDB, we should explore using a callback to populate the line table 977 // while we parse to reduce memory usage. 978 std::unique_ptr<LineSequence> sequence = 979 LineTable::CreateLineSequenceContainer(); 980 std::vector<std::unique_ptr<LineSequence>> sequences; 981 for (auto &row : line_table->Rows) { 982 LineTable::AppendLineEntryToSequence( 983 sequence.get(), row.Address.Address, row.Line, row.Column, row.File, 984 row.IsStmt, row.BasicBlock, row.PrologueEnd, row.EpilogueBegin, 985 row.EndSequence); 986 if (row.EndSequence) { 987 sequences.push_back(std::move(sequence)); 988 sequence = LineTable::CreateLineSequenceContainer(); 989 } 990 } 991 992 std::unique_ptr<LineTable> line_table_up = 993 std::make_unique<LineTable>(&comp_unit, std::move(sequences)); 994 995 if (SymbolFileDWARFDebugMap *debug_map_symfile = GetDebugMapSymfile()) { 996 // We have an object file that has a line table with addresses that are not 997 // linked. We need to link the line table and convert the addresses that 998 // are relative to the .o file into addresses for the main executable. 999 comp_unit.SetLineTable( 1000 debug_map_symfile->LinkOSOLineTable(this, line_table_up.get())); 1001 } else { 1002 comp_unit.SetLineTable(line_table_up.release()); 1003 } 1004 1005 comp_unit.SetSupportFiles(ParseSupportFilesFromPrologue( 1006 comp_unit.GetModule(), line_table->Prologue, dwarf_cu->GetPathStyle(), 1007 dwarf_cu->GetCompilationDirectory().GetCString())); 1008 1009 return true; 1010 } 1011 1012 lldb_private::DebugMacrosSP 1013 SymbolFileDWARF::ParseDebugMacros(lldb::offset_t *offset) { 1014 auto iter = m_debug_macros_map.find(*offset); 1015 if (iter != m_debug_macros_map.end()) 1016 return iter->second; 1017 1018 const DWARFDataExtractor &debug_macro_data = m_context.getOrLoadMacroData(); 1019 if (debug_macro_data.GetByteSize() == 0) 1020 return DebugMacrosSP(); 1021 1022 lldb_private::DebugMacrosSP debug_macros_sp(new lldb_private::DebugMacros()); 1023 m_debug_macros_map[*offset] = debug_macros_sp; 1024 1025 const DWARFDebugMacroHeader &header = 1026 DWARFDebugMacroHeader::ParseHeader(debug_macro_data, offset); 1027 DWARFDebugMacroEntry::ReadMacroEntries( 1028 debug_macro_data, m_context.getOrLoadStrData(), header.OffsetIs64Bit(), 1029 offset, this, debug_macros_sp); 1030 1031 return debug_macros_sp; 1032 } 1033 1034 bool SymbolFileDWARF::ParseDebugMacros(CompileUnit &comp_unit) { 1035 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1036 1037 DWARFUnit *dwarf_cu = GetDWARFCompileUnit(&comp_unit); 1038 if (dwarf_cu == nullptr) 1039 return false; 1040 1041 const DWARFBaseDIE dwarf_cu_die = dwarf_cu->GetUnitDIEOnly(); 1042 if (!dwarf_cu_die) 1043 return false; 1044 1045 lldb::offset_t sect_offset = 1046 dwarf_cu_die.GetAttributeValueAsUnsigned(DW_AT_macros, DW_INVALID_OFFSET); 1047 if (sect_offset == DW_INVALID_OFFSET) 1048 sect_offset = dwarf_cu_die.GetAttributeValueAsUnsigned(DW_AT_GNU_macros, 1049 DW_INVALID_OFFSET); 1050 if (sect_offset == DW_INVALID_OFFSET) 1051 return false; 1052 1053 comp_unit.SetDebugMacros(ParseDebugMacros(§_offset)); 1054 1055 return true; 1056 } 1057 1058 size_t SymbolFileDWARF::ParseBlocksRecursive( 1059 lldb_private::CompileUnit &comp_unit, Block *parent_block, 1060 const DWARFDIE &orig_die, addr_t subprogram_low_pc, uint32_t depth) { 1061 size_t blocks_added = 0; 1062 DWARFDIE die = orig_die; 1063 while (die) { 1064 dw_tag_t tag = die.Tag(); 1065 1066 switch (tag) { 1067 case DW_TAG_inlined_subroutine: 1068 case DW_TAG_subprogram: 1069 case DW_TAG_lexical_block: { 1070 Block *block = nullptr; 1071 if (tag == DW_TAG_subprogram) { 1072 // Skip any DW_TAG_subprogram DIEs that are inside of a normal or 1073 // inlined functions. These will be parsed on their own as separate 1074 // entities. 1075 1076 if (depth > 0) 1077 break; 1078 1079 block = parent_block; 1080 } else { 1081 BlockSP block_sp(new Block(die.GetID())); 1082 parent_block->AddChild(block_sp); 1083 block = block_sp.get(); 1084 } 1085 DWARFRangeList ranges; 1086 const char *name = nullptr; 1087 const char *mangled_name = nullptr; 1088 1089 int decl_file = 0; 1090 int decl_line = 0; 1091 int decl_column = 0; 1092 int call_file = 0; 1093 int call_line = 0; 1094 int call_column = 0; 1095 if (die.GetDIENamesAndRanges(name, mangled_name, ranges, decl_file, 1096 decl_line, decl_column, call_file, call_line, 1097 call_column, nullptr)) { 1098 if (tag == DW_TAG_subprogram) { 1099 assert(subprogram_low_pc == LLDB_INVALID_ADDRESS); 1100 subprogram_low_pc = ranges.GetMinRangeBase(0); 1101 } else if (tag == DW_TAG_inlined_subroutine) { 1102 // We get called here for inlined subroutines in two ways. The first 1103 // time is when we are making the Function object for this inlined 1104 // concrete instance. Since we're creating a top level block at 1105 // here, the subprogram_low_pc will be LLDB_INVALID_ADDRESS. So we 1106 // need to adjust the containing address. The second time is when we 1107 // are parsing the blocks inside the function that contains the 1108 // inlined concrete instance. Since these will be blocks inside the 1109 // containing "real" function the offset will be for that function. 1110 if (subprogram_low_pc == LLDB_INVALID_ADDRESS) { 1111 subprogram_low_pc = ranges.GetMinRangeBase(0); 1112 } 1113 } 1114 1115 const size_t num_ranges = ranges.GetSize(); 1116 for (size_t i = 0; i < num_ranges; ++i) { 1117 const DWARFRangeList::Entry &range = ranges.GetEntryRef(i); 1118 const addr_t range_base = range.GetRangeBase(); 1119 if (range_base >= subprogram_low_pc) 1120 block->AddRange(Block::Range(range_base - subprogram_low_pc, 1121 range.GetByteSize())); 1122 else { 1123 GetObjectFile()->GetModule()->ReportError( 1124 "0x%8.8" PRIx64 ": adding range [0x%" PRIx64 "-0x%" PRIx64 1125 ") which has a base that is less than the function's low PC " 1126 "0x%" PRIx64 ". Please file a bug and attach the file at the " 1127 "start of this error message", 1128 block->GetID(), range_base, range.GetRangeEnd(), 1129 subprogram_low_pc); 1130 } 1131 } 1132 block->FinalizeRanges(); 1133 1134 if (tag != DW_TAG_subprogram && 1135 (name != nullptr || mangled_name != nullptr)) { 1136 std::unique_ptr<Declaration> decl_up; 1137 if (decl_file != 0 || decl_line != 0 || decl_column != 0) 1138 decl_up.reset(new Declaration( 1139 comp_unit.GetSupportFiles().GetFileSpecAtIndex(decl_file), 1140 decl_line, decl_column)); 1141 1142 std::unique_ptr<Declaration> call_up; 1143 if (call_file != 0 || call_line != 0 || call_column != 0) 1144 call_up.reset(new Declaration( 1145 comp_unit.GetSupportFiles().GetFileSpecAtIndex(call_file), 1146 call_line, call_column)); 1147 1148 block->SetInlinedFunctionInfo(name, mangled_name, decl_up.get(), 1149 call_up.get()); 1150 } 1151 1152 ++blocks_added; 1153 1154 if (die.HasChildren()) { 1155 blocks_added += 1156 ParseBlocksRecursive(comp_unit, block, die.GetFirstChild(), 1157 subprogram_low_pc, depth + 1); 1158 } 1159 } 1160 } break; 1161 default: 1162 break; 1163 } 1164 1165 // Only parse siblings of the block if we are not at depth zero. A depth of 1166 // zero indicates we are currently parsing the top level DW_TAG_subprogram 1167 // DIE 1168 1169 if (depth == 0) 1170 die.Clear(); 1171 else 1172 die = die.GetSibling(); 1173 } 1174 return blocks_added; 1175 } 1176 1177 bool SymbolFileDWARF::ClassOrStructIsVirtual(const DWARFDIE &parent_die) { 1178 if (parent_die) { 1179 for (DWARFDIE die = parent_die.GetFirstChild(); die; 1180 die = die.GetSibling()) { 1181 dw_tag_t tag = die.Tag(); 1182 bool check_virtuality = false; 1183 switch (tag) { 1184 case DW_TAG_inheritance: 1185 case DW_TAG_subprogram: 1186 check_virtuality = true; 1187 break; 1188 default: 1189 break; 1190 } 1191 if (check_virtuality) { 1192 if (die.GetAttributeValueAsUnsigned(DW_AT_virtuality, 0) != 0) 1193 return true; 1194 } 1195 } 1196 } 1197 return false; 1198 } 1199 1200 void SymbolFileDWARF::ParseDeclsForContext(CompilerDeclContext decl_ctx) { 1201 auto *type_system = decl_ctx.GetTypeSystem(); 1202 if (type_system != nullptr) 1203 type_system->GetDWARFParser()->EnsureAllDIEsInDeclContextHaveBeenParsed( 1204 decl_ctx); 1205 } 1206 1207 user_id_t SymbolFileDWARF::GetUID(DIERef ref) { 1208 if (GetDebugMapSymfile()) 1209 return GetID() | ref.die_offset(); 1210 1211 return user_id_t(GetDwoNum().getValueOr(0x7fffffff)) << 32 | 1212 ref.die_offset() | 1213 (lldb::user_id_t(ref.section() == DIERef::Section::DebugTypes) << 63); 1214 } 1215 1216 llvm::Optional<SymbolFileDWARF::DecodedUID> 1217 SymbolFileDWARF::DecodeUID(lldb::user_id_t uid) { 1218 // This method can be called without going through the symbol vendor so we 1219 // need to lock the module. 1220 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1221 // Anytime we get a "lldb::user_id_t" from an lldb_private::SymbolFile API we 1222 // must make sure we use the correct DWARF file when resolving things. On 1223 // MacOSX, when using SymbolFileDWARFDebugMap, we will use multiple 1224 // SymbolFileDWARF classes, one for each .o file. We can often end up with 1225 // references to other DWARF objects and we must be ready to receive a 1226 // "lldb::user_id_t" that specifies a DIE from another SymbolFileDWARF 1227 // instance. 1228 if (SymbolFileDWARFDebugMap *debug_map = GetDebugMapSymfile()) { 1229 SymbolFileDWARF *dwarf = debug_map->GetSymbolFileByOSOIndex( 1230 debug_map->GetOSOIndexFromUserID(uid)); 1231 return DecodedUID{ 1232 *dwarf, {llvm::None, DIERef::Section::DebugInfo, dw_offset_t(uid)}}; 1233 } 1234 dw_offset_t die_offset = uid; 1235 if (die_offset == DW_INVALID_OFFSET) 1236 return llvm::None; 1237 1238 DIERef::Section section = 1239 uid >> 63 ? DIERef::Section::DebugTypes : DIERef::Section::DebugInfo; 1240 1241 llvm::Optional<uint32_t> dwo_num = uid >> 32 & 0x7fffffff; 1242 if (*dwo_num == 0x7fffffff) 1243 dwo_num = llvm::None; 1244 1245 return DecodedUID{*this, {dwo_num, section, die_offset}}; 1246 } 1247 1248 DWARFDIE 1249 SymbolFileDWARF::GetDIE(lldb::user_id_t uid) { 1250 // This method can be called without going through the symbol vendor so we 1251 // need to lock the module. 1252 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1253 1254 llvm::Optional<DecodedUID> decoded = DecodeUID(uid); 1255 1256 if (decoded) 1257 return decoded->dwarf.GetDIE(decoded->ref); 1258 1259 return DWARFDIE(); 1260 } 1261 1262 CompilerDecl SymbolFileDWARF::GetDeclForUID(lldb::user_id_t type_uid) { 1263 // This method can be called without going through the symbol vendor so we 1264 // need to lock the module. 1265 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1266 // Anytime we have a lldb::user_id_t, we must get the DIE by calling 1267 // SymbolFileDWARF::GetDIE(). See comments inside the 1268 // SymbolFileDWARF::GetDIE() for details. 1269 if (DWARFDIE die = GetDIE(type_uid)) 1270 return GetDecl(die); 1271 return CompilerDecl(); 1272 } 1273 1274 CompilerDeclContext 1275 SymbolFileDWARF::GetDeclContextForUID(lldb::user_id_t type_uid) { 1276 // This method can be called without going through the symbol vendor so we 1277 // need to lock the module. 1278 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1279 // Anytime we have a lldb::user_id_t, we must get the DIE by calling 1280 // SymbolFileDWARF::GetDIE(). See comments inside the 1281 // SymbolFileDWARF::GetDIE() for details. 1282 if (DWARFDIE die = GetDIE(type_uid)) 1283 return GetDeclContext(die); 1284 return CompilerDeclContext(); 1285 } 1286 1287 CompilerDeclContext 1288 SymbolFileDWARF::GetDeclContextContainingUID(lldb::user_id_t type_uid) { 1289 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1290 // Anytime we have a lldb::user_id_t, we must get the DIE by calling 1291 // SymbolFileDWARF::GetDIE(). See comments inside the 1292 // SymbolFileDWARF::GetDIE() for details. 1293 if (DWARFDIE die = GetDIE(type_uid)) 1294 return GetContainingDeclContext(die); 1295 return CompilerDeclContext(); 1296 } 1297 1298 Type *SymbolFileDWARF::ResolveTypeUID(lldb::user_id_t type_uid) { 1299 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1300 // Anytime we have a lldb::user_id_t, we must get the DIE by calling 1301 // SymbolFileDWARF::GetDIE(). See comments inside the 1302 // SymbolFileDWARF::GetDIE() for details. 1303 if (DWARFDIE type_die = GetDIE(type_uid)) 1304 return type_die.ResolveType(); 1305 else 1306 return nullptr; 1307 } 1308 1309 llvm::Optional<SymbolFile::ArrayInfo> 1310 SymbolFileDWARF::GetDynamicArrayInfoForUID( 1311 lldb::user_id_t type_uid, const lldb_private::ExecutionContext *exe_ctx) { 1312 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1313 if (DWARFDIE type_die = GetDIE(type_uid)) 1314 return DWARFASTParser::ParseChildArrayInfo(type_die, exe_ctx); 1315 else 1316 return llvm::None; 1317 } 1318 1319 Type *SymbolFileDWARF::ResolveTypeUID(const DIERef &die_ref) { 1320 return ResolveType(GetDIE(die_ref), true); 1321 } 1322 1323 Type *SymbolFileDWARF::ResolveTypeUID(const DWARFDIE &die, 1324 bool assert_not_being_parsed) { 1325 if (die) { 1326 Log *log(LogChannelDWARF::GetLogIfAll(DWARF_LOG_DEBUG_INFO)); 1327 if (log) 1328 GetObjectFile()->GetModule()->LogMessage( 1329 log, "SymbolFileDWARF::ResolveTypeUID (die = 0x%8.8x) %s '%s'", 1330 die.GetOffset(), die.GetTagAsCString(), die.GetName()); 1331 1332 // We might be coming in in the middle of a type tree (a class within a 1333 // class, an enum within a class), so parse any needed parent DIEs before 1334 // we get to this one... 1335 DWARFDIE decl_ctx_die = GetDeclContextDIEContainingDIE(die); 1336 if (decl_ctx_die) { 1337 if (log) { 1338 switch (decl_ctx_die.Tag()) { 1339 case DW_TAG_structure_type: 1340 case DW_TAG_union_type: 1341 case DW_TAG_class_type: { 1342 // Get the type, which could be a forward declaration 1343 if (log) 1344 GetObjectFile()->GetModule()->LogMessage( 1345 log, 1346 "SymbolFileDWARF::ResolveTypeUID (die = 0x%8.8x) %s '%s' " 1347 "resolve parent forward type for 0x%8.8x", 1348 die.GetOffset(), die.GetTagAsCString(), die.GetName(), 1349 decl_ctx_die.GetOffset()); 1350 } break; 1351 1352 default: 1353 break; 1354 } 1355 } 1356 } 1357 return ResolveType(die); 1358 } 1359 return nullptr; 1360 } 1361 1362 // This function is used when SymbolFileDWARFDebugMap owns a bunch of 1363 // SymbolFileDWARF objects to detect if this DWARF file is the one that can 1364 // resolve a compiler_type. 1365 bool SymbolFileDWARF::HasForwardDeclForClangType( 1366 const CompilerType &compiler_type) { 1367 CompilerType compiler_type_no_qualifiers = 1368 ClangUtil::RemoveFastQualifiers(compiler_type); 1369 if (GetForwardDeclClangTypeToDie().count( 1370 compiler_type_no_qualifiers.GetOpaqueQualType())) { 1371 return true; 1372 } 1373 TypeSystem *type_system = compiler_type.GetTypeSystem(); 1374 1375 TypeSystemClang *clang_type_system = 1376 llvm::dyn_cast_or_null<TypeSystemClang>(type_system); 1377 if (!clang_type_system) 1378 return false; 1379 DWARFASTParserClang *ast_parser = 1380 static_cast<DWARFASTParserClang *>(clang_type_system->GetDWARFParser()); 1381 return ast_parser->GetClangASTImporter().CanImport(compiler_type); 1382 } 1383 1384 bool SymbolFileDWARF::CompleteType(CompilerType &compiler_type) { 1385 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1386 1387 TypeSystemClang *clang_type_system = 1388 llvm::dyn_cast_or_null<TypeSystemClang>(compiler_type.GetTypeSystem()); 1389 if (clang_type_system) { 1390 DWARFASTParserClang *ast_parser = 1391 static_cast<DWARFASTParserClang *>(clang_type_system->GetDWARFParser()); 1392 if (ast_parser && 1393 ast_parser->GetClangASTImporter().CanImport(compiler_type)) 1394 return ast_parser->GetClangASTImporter().CompleteType(compiler_type); 1395 } 1396 1397 // We have a struct/union/class/enum that needs to be fully resolved. 1398 CompilerType compiler_type_no_qualifiers = 1399 ClangUtil::RemoveFastQualifiers(compiler_type); 1400 auto die_it = GetForwardDeclClangTypeToDie().find( 1401 compiler_type_no_qualifiers.GetOpaqueQualType()); 1402 if (die_it == GetForwardDeclClangTypeToDie().end()) { 1403 // We have already resolved this type... 1404 return true; 1405 } 1406 1407 DWARFDIE dwarf_die = GetDIE(die_it->getSecond()); 1408 if (dwarf_die) { 1409 // Once we start resolving this type, remove it from the forward 1410 // declaration map in case anyone child members or other types require this 1411 // type to get resolved. The type will get resolved when all of the calls 1412 // to SymbolFileDWARF::ResolveClangOpaqueTypeDefinition are done. 1413 GetForwardDeclClangTypeToDie().erase(die_it); 1414 1415 Type *type = GetDIEToType().lookup(dwarf_die.GetDIE()); 1416 1417 Log *log(LogChannelDWARF::GetLogIfAny(DWARF_LOG_DEBUG_INFO | 1418 DWARF_LOG_TYPE_COMPLETION)); 1419 if (log) 1420 GetObjectFile()->GetModule()->LogMessageVerboseBacktrace( 1421 log, "0x%8.8" PRIx64 ": %s '%s' resolving forward declaration...", 1422 dwarf_die.GetID(), dwarf_die.GetTagAsCString(), 1423 type->GetName().AsCString()); 1424 assert(compiler_type); 1425 if (DWARFASTParser *dwarf_ast = GetDWARFParser(*dwarf_die.GetCU())) 1426 return dwarf_ast->CompleteTypeFromDWARF(dwarf_die, type, compiler_type); 1427 } 1428 return false; 1429 } 1430 1431 Type *SymbolFileDWARF::ResolveType(const DWARFDIE &die, 1432 bool assert_not_being_parsed, 1433 bool resolve_function_context) { 1434 if (die) { 1435 Type *type = GetTypeForDIE(die, resolve_function_context).get(); 1436 1437 if (assert_not_being_parsed) { 1438 if (type != DIE_IS_BEING_PARSED) 1439 return type; 1440 1441 GetObjectFile()->GetModule()->ReportError( 1442 "Parsing a die that is being parsed die: 0x%8.8x: %s %s", 1443 die.GetOffset(), die.GetTagAsCString(), die.GetName()); 1444 1445 } else 1446 return type; 1447 } 1448 return nullptr; 1449 } 1450 1451 CompileUnit * 1452 SymbolFileDWARF::GetCompUnitForDWARFCompUnit(DWARFCompileUnit &dwarf_cu) { 1453 if (dwarf_cu.IsDWOUnit()) { 1454 DWARFCompileUnit *non_dwo_cu = 1455 static_cast<DWARFCompileUnit *>(dwarf_cu.GetUserData()); 1456 assert(non_dwo_cu); 1457 return non_dwo_cu->GetSymbolFileDWARF().GetCompUnitForDWARFCompUnit( 1458 *non_dwo_cu); 1459 } 1460 // Check if the symbol vendor already knows about this compile unit? 1461 if (dwarf_cu.GetUserData() == nullptr) { 1462 // The symbol vendor doesn't know about this compile unit, we need to parse 1463 // and add it to the symbol vendor object. 1464 return ParseCompileUnit(dwarf_cu).get(); 1465 } 1466 return static_cast<CompileUnit *>(dwarf_cu.GetUserData()); 1467 } 1468 1469 void SymbolFileDWARF::GetObjCMethods( 1470 ConstString class_name, llvm::function_ref<bool(DWARFDIE die)> callback) { 1471 m_index->GetObjCMethods(class_name, callback); 1472 } 1473 1474 bool SymbolFileDWARF::GetFunction(const DWARFDIE &die, SymbolContext &sc) { 1475 sc.Clear(false); 1476 1477 if (die && llvm::isa<DWARFCompileUnit>(die.GetCU())) { 1478 // Check if the symbol vendor already knows about this compile unit? 1479 sc.comp_unit = 1480 GetCompUnitForDWARFCompUnit(llvm::cast<DWARFCompileUnit>(*die.GetCU())); 1481 1482 sc.function = sc.comp_unit->FindFunctionByUID(die.GetID()).get(); 1483 if (sc.function == nullptr) 1484 sc.function = ParseFunction(*sc.comp_unit, die); 1485 1486 if (sc.function) { 1487 sc.module_sp = sc.function->CalculateSymbolContextModule(); 1488 return true; 1489 } 1490 } 1491 1492 return false; 1493 } 1494 1495 lldb::ModuleSP SymbolFileDWARF::GetExternalModule(ConstString name) { 1496 UpdateExternalModuleListIfNeeded(); 1497 const auto &pos = m_external_type_modules.find(name); 1498 if (pos != m_external_type_modules.end()) 1499 return pos->second; 1500 else 1501 return lldb::ModuleSP(); 1502 } 1503 1504 DWARFDIE 1505 SymbolFileDWARF::GetDIE(const DIERef &die_ref) { 1506 if (die_ref.dwo_num()) { 1507 SymbolFileDWARF *dwarf = *die_ref.dwo_num() == 0x3fffffff 1508 ? m_dwp_symfile.get() 1509 : this->DebugInfo() 1510 .GetUnitAtIndex(*die_ref.dwo_num()) 1511 ->GetDwoSymbolFile(); 1512 return dwarf->DebugInfo().GetDIE(die_ref); 1513 } 1514 1515 return DebugInfo().GetDIE(die_ref); 1516 } 1517 1518 /// Return the DW_AT_(GNU_)dwo_name. 1519 static const char *GetDWOName(DWARFCompileUnit &dwarf_cu, 1520 const DWARFDebugInfoEntry &cu_die) { 1521 const char *dwo_name = 1522 cu_die.GetAttributeValueAsString(&dwarf_cu, DW_AT_GNU_dwo_name, nullptr); 1523 if (!dwo_name) 1524 dwo_name = 1525 cu_die.GetAttributeValueAsString(&dwarf_cu, DW_AT_dwo_name, nullptr); 1526 return dwo_name; 1527 } 1528 1529 /// Return the DW_AT_(GNU_)dwo_id. 1530 /// FIXME: Technically 0 is a valid hash. 1531 static uint64_t GetDWOId(DWARFCompileUnit &dwarf_cu, 1532 const DWARFDebugInfoEntry &cu_die) { 1533 uint64_t dwo_id = 1534 cu_die.GetAttributeValueAsUnsigned(&dwarf_cu, DW_AT_GNU_dwo_id, 0); 1535 if (!dwo_id) 1536 dwo_id = cu_die.GetAttributeValueAsUnsigned(&dwarf_cu, DW_AT_dwo_id, 0); 1537 return dwo_id; 1538 } 1539 1540 llvm::Optional<uint64_t> SymbolFileDWARF::GetDWOId() { 1541 if (GetNumCompileUnits() == 1) { 1542 if (auto comp_unit = GetCompileUnitAtIndex(0)) 1543 if (DWARFCompileUnit *cu = llvm::dyn_cast_or_null<DWARFCompileUnit>( 1544 GetDWARFCompileUnit(comp_unit.get()))) 1545 if (DWARFDebugInfoEntry *cu_die = cu->DIE().GetDIE()) 1546 if (uint64_t dwo_id = ::GetDWOId(*cu, *cu_die)) 1547 return dwo_id; 1548 } 1549 return {}; 1550 } 1551 1552 std::shared_ptr<SymbolFileDWARFDwo> 1553 SymbolFileDWARF::GetDwoSymbolFileForCompileUnit( 1554 DWARFUnit &unit, const DWARFDebugInfoEntry &cu_die) { 1555 // If this is a Darwin-style debug map (non-.dSYM) symbol file, 1556 // never attempt to load ELF-style DWO files since the -gmodules 1557 // support uses the same DWO machanism to specify full debug info 1558 // files for modules. This is handled in 1559 // UpdateExternalModuleListIfNeeded(). 1560 if (GetDebugMapSymfile()) 1561 return nullptr; 1562 1563 DWARFCompileUnit *dwarf_cu = llvm::dyn_cast<DWARFCompileUnit>(&unit); 1564 // Only compile units can be split into two parts. 1565 if (!dwarf_cu) 1566 return nullptr; 1567 1568 const char *dwo_name = GetDWOName(*dwarf_cu, cu_die); 1569 if (!dwo_name) 1570 return nullptr; 1571 1572 if (std::shared_ptr<SymbolFileDWARFDwo> dwp_sp = GetDwpSymbolFile()) 1573 return dwp_sp; 1574 1575 FileSpec dwo_file(dwo_name); 1576 FileSystem::Instance().Resolve(dwo_file); 1577 if (dwo_file.IsRelative()) { 1578 const char *comp_dir = 1579 cu_die.GetAttributeValueAsString(dwarf_cu, DW_AT_comp_dir, nullptr); 1580 if (!comp_dir) 1581 return nullptr; 1582 1583 dwo_file.SetFile(comp_dir, FileSpec::Style::native); 1584 FileSystem::Instance().Resolve(dwo_file); 1585 dwo_file.AppendPathComponent(dwo_name); 1586 } 1587 1588 if (!FileSystem::Instance().Exists(dwo_file)) 1589 return nullptr; 1590 1591 const lldb::offset_t file_offset = 0; 1592 DataBufferSP dwo_file_data_sp; 1593 lldb::offset_t dwo_file_data_offset = 0; 1594 ObjectFileSP dwo_obj_file = ObjectFile::FindPlugin( 1595 GetObjectFile()->GetModule(), &dwo_file, file_offset, 1596 FileSystem::Instance().GetByteSize(dwo_file), dwo_file_data_sp, 1597 dwo_file_data_offset); 1598 if (dwo_obj_file == nullptr) 1599 return nullptr; 1600 1601 return std::make_shared<SymbolFileDWARFDwo>(*this, dwo_obj_file, 1602 dwarf_cu->GetID()); 1603 } 1604 1605 void SymbolFileDWARF::UpdateExternalModuleListIfNeeded() { 1606 if (m_fetched_external_modules) 1607 return; 1608 m_fetched_external_modules = true; 1609 DWARFDebugInfo &debug_info = DebugInfo(); 1610 1611 // Follow DWO skeleton unit breadcrumbs. 1612 const uint32_t num_compile_units = GetNumCompileUnits(); 1613 for (uint32_t cu_idx = 0; cu_idx < num_compile_units; ++cu_idx) { 1614 auto *dwarf_cu = 1615 llvm::dyn_cast<DWARFCompileUnit>(debug_info.GetUnitAtIndex(cu_idx)); 1616 if (!dwarf_cu) 1617 continue; 1618 1619 const DWARFBaseDIE die = dwarf_cu->GetUnitDIEOnly(); 1620 if (!die || die.HasChildren() || !die.GetDIE()) 1621 continue; 1622 1623 const char *name = die.GetAttributeValueAsString(DW_AT_name, nullptr); 1624 if (!name) 1625 continue; 1626 1627 ConstString const_name(name); 1628 ModuleSP &module_sp = m_external_type_modules[const_name]; 1629 if (module_sp) 1630 continue; 1631 1632 const char *dwo_path = GetDWOName(*dwarf_cu, *die.GetDIE()); 1633 if (!dwo_path) 1634 continue; 1635 1636 ModuleSpec dwo_module_spec; 1637 dwo_module_spec.GetFileSpec().SetFile(dwo_path, FileSpec::Style::native); 1638 if (dwo_module_spec.GetFileSpec().IsRelative()) { 1639 const char *comp_dir = 1640 die.GetAttributeValueAsString(DW_AT_comp_dir, nullptr); 1641 if (comp_dir) { 1642 dwo_module_spec.GetFileSpec().SetFile(comp_dir, 1643 FileSpec::Style::native); 1644 FileSystem::Instance().Resolve(dwo_module_spec.GetFileSpec()); 1645 dwo_module_spec.GetFileSpec().AppendPathComponent(dwo_path); 1646 } 1647 } 1648 dwo_module_spec.GetArchitecture() = 1649 m_objfile_sp->GetModule()->GetArchitecture(); 1650 1651 // When LLDB loads "external" modules it looks at the presence of 1652 // DW_AT_dwo_name. However, when the already created module 1653 // (corresponding to .dwo itself) is being processed, it will see 1654 // the presence of DW_AT_dwo_name (which contains the name of dwo 1655 // file) and will try to call ModuleList::GetSharedModule 1656 // again. In some cases (i.e., for empty files) Clang 4.0 1657 // generates a *.dwo file which has DW_AT_dwo_name, but no 1658 // DW_AT_comp_dir. In this case the method 1659 // ModuleList::GetSharedModule will fail and the warning will be 1660 // printed. However, as one can notice in this case we don't 1661 // actually need to try to load the already loaded module 1662 // (corresponding to .dwo) so we simply skip it. 1663 if (m_objfile_sp->GetFileSpec().GetFileNameExtension() == ".dwo" && 1664 llvm::StringRef(m_objfile_sp->GetFileSpec().GetPath()) 1665 .endswith(dwo_module_spec.GetFileSpec().GetPath())) { 1666 continue; 1667 } 1668 1669 Status error = ModuleList::GetSharedModule(dwo_module_spec, module_sp, 1670 nullptr, nullptr, nullptr); 1671 if (!module_sp) { 1672 GetObjectFile()->GetModule()->ReportWarning( 1673 "0x%8.8x: unable to locate module needed for external types: " 1674 "%s\nerror: %s\nDebugging will be degraded due to missing " 1675 "types. Rebuilding the project will regenerate the needed " 1676 "module files.", 1677 die.GetOffset(), dwo_module_spec.GetFileSpec().GetPath().c_str(), 1678 error.AsCString("unknown error")); 1679 continue; 1680 } 1681 1682 // Verify the DWO hash. 1683 // FIXME: Technically "0" is a valid hash. 1684 uint64_t dwo_id = ::GetDWOId(*dwarf_cu, *die.GetDIE()); 1685 if (!dwo_id) 1686 continue; 1687 1688 auto *dwo_symfile = 1689 llvm::dyn_cast_or_null<SymbolFileDWARF>(module_sp->GetSymbolFile()); 1690 if (!dwo_symfile) 1691 continue; 1692 llvm::Optional<uint64_t> dwo_dwo_id = dwo_symfile->GetDWOId(); 1693 if (!dwo_dwo_id) 1694 continue; 1695 1696 if (dwo_id != dwo_dwo_id) { 1697 GetObjectFile()->GetModule()->ReportWarning( 1698 "0x%8.8x: Module %s is out-of-date (hash mismatch). Type information " 1699 "from this module may be incomplete or inconsistent with the rest of " 1700 "the program. Rebuilding the project will regenerate the needed " 1701 "module files.", 1702 die.GetOffset(), dwo_module_spec.GetFileSpec().GetPath().c_str()); 1703 } 1704 } 1705 } 1706 1707 SymbolFileDWARF::GlobalVariableMap &SymbolFileDWARF::GetGlobalAranges() { 1708 if (!m_global_aranges_up) { 1709 m_global_aranges_up.reset(new GlobalVariableMap()); 1710 1711 ModuleSP module_sp = GetObjectFile()->GetModule(); 1712 if (module_sp) { 1713 const size_t num_cus = module_sp->GetNumCompileUnits(); 1714 for (size_t i = 0; i < num_cus; ++i) { 1715 CompUnitSP cu_sp = module_sp->GetCompileUnitAtIndex(i); 1716 if (cu_sp) { 1717 VariableListSP globals_sp = cu_sp->GetVariableList(true); 1718 if (globals_sp) { 1719 const size_t num_globals = globals_sp->GetSize(); 1720 for (size_t g = 0; g < num_globals; ++g) { 1721 VariableSP var_sp = globals_sp->GetVariableAtIndex(g); 1722 if (var_sp && !var_sp->GetLocationIsConstantValueData()) { 1723 const DWARFExpression &location = var_sp->LocationExpression(); 1724 Value location_result; 1725 Status error; 1726 if (location.Evaluate(nullptr, LLDB_INVALID_ADDRESS, nullptr, 1727 nullptr, location_result, &error)) { 1728 if (location_result.GetValueType() == 1729 Value::eValueTypeFileAddress) { 1730 lldb::addr_t file_addr = 1731 location_result.GetScalar().ULongLong(); 1732 lldb::addr_t byte_size = 1; 1733 if (var_sp->GetType()) 1734 byte_size = 1735 var_sp->GetType()->GetByteSize().getValueOr(0); 1736 m_global_aranges_up->Append(GlobalVariableMap::Entry( 1737 file_addr, byte_size, var_sp.get())); 1738 } 1739 } 1740 } 1741 } 1742 } 1743 } 1744 } 1745 } 1746 m_global_aranges_up->Sort(); 1747 } 1748 return *m_global_aranges_up; 1749 } 1750 1751 void SymbolFileDWARF::ResolveFunctionAndBlock(lldb::addr_t file_vm_addr, 1752 bool lookup_block, 1753 SymbolContext &sc) { 1754 assert(sc.comp_unit); 1755 DWARFUnit &cu = GetDWARFCompileUnit(sc.comp_unit)->GetNonSkeletonUnit(); 1756 DWARFDIE function_die = cu.LookupAddress(file_vm_addr); 1757 DWARFDIE block_die; 1758 if (function_die) { 1759 sc.function = sc.comp_unit->FindFunctionByUID(function_die.GetID()).get(); 1760 if (sc.function == nullptr) 1761 sc.function = ParseFunction(*sc.comp_unit, function_die); 1762 1763 if (sc.function && lookup_block) 1764 block_die = function_die.LookupDeepestBlock(file_vm_addr); 1765 } 1766 1767 if (!sc.function || ! lookup_block) 1768 return; 1769 1770 Block &block = sc.function->GetBlock(true); 1771 if (block_die) 1772 sc.block = block.FindBlockByID(block_die.GetID()); 1773 else 1774 sc.block = block.FindBlockByID(function_die.GetID()); 1775 } 1776 1777 uint32_t SymbolFileDWARF::ResolveSymbolContext(const Address &so_addr, 1778 SymbolContextItem resolve_scope, 1779 SymbolContext &sc) { 1780 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1781 static Timer::Category func_cat(LLVM_PRETTY_FUNCTION); 1782 Timer scoped_timer(func_cat, 1783 "SymbolFileDWARF::" 1784 "ResolveSymbolContext (so_addr = { " 1785 "section = %p, offset = 0x%" PRIx64 1786 " }, resolve_scope = 0x%8.8x)", 1787 static_cast<void *>(so_addr.GetSection().get()), 1788 so_addr.GetOffset(), resolve_scope); 1789 uint32_t resolved = 0; 1790 if (resolve_scope & 1791 (eSymbolContextCompUnit | eSymbolContextFunction | eSymbolContextBlock | 1792 eSymbolContextLineEntry | eSymbolContextVariable)) { 1793 lldb::addr_t file_vm_addr = so_addr.GetFileAddress(); 1794 1795 DWARFDebugInfo &debug_info = DebugInfo(); 1796 llvm::Expected<DWARFDebugAranges &> aranges = 1797 debug_info.GetCompileUnitAranges(); 1798 if (!aranges) { 1799 Log *log = LogChannelDWARF::GetLogIfAll(DWARF_LOG_DEBUG_INFO); 1800 LLDB_LOG_ERROR(log, aranges.takeError(), 1801 "SymbolFileDWARF::ResolveSymbolContext failed to get cu " 1802 "aranges. {0}"); 1803 return 0; 1804 } 1805 1806 const dw_offset_t cu_offset = aranges->FindAddress(file_vm_addr); 1807 if (cu_offset == DW_INVALID_OFFSET) { 1808 // Global variables are not in the compile unit address ranges. The only 1809 // way to currently find global variables is to iterate over the 1810 // .debug_pubnames or the __apple_names table and find all items in there 1811 // that point to DW_TAG_variable DIEs and then find the address that 1812 // matches. 1813 if (resolve_scope & eSymbolContextVariable) { 1814 GlobalVariableMap &map = GetGlobalAranges(); 1815 const GlobalVariableMap::Entry *entry = 1816 map.FindEntryThatContains(file_vm_addr); 1817 if (entry && entry->data) { 1818 Variable *variable = entry->data; 1819 SymbolContextScope *scc = variable->GetSymbolContextScope(); 1820 if (scc) { 1821 scc->CalculateSymbolContext(&sc); 1822 sc.variable = variable; 1823 } 1824 return sc.GetResolvedMask(); 1825 } 1826 } 1827 } else { 1828 uint32_t cu_idx = DW_INVALID_INDEX; 1829 if (auto *dwarf_cu = llvm::dyn_cast_or_null<DWARFCompileUnit>( 1830 debug_info.GetUnitAtOffset(DIERef::Section::DebugInfo, cu_offset, 1831 &cu_idx))) { 1832 sc.comp_unit = GetCompUnitForDWARFCompUnit(*dwarf_cu); 1833 if (sc.comp_unit) { 1834 resolved |= eSymbolContextCompUnit; 1835 1836 bool force_check_line_table = false; 1837 if (resolve_scope & (eSymbolContextFunction | eSymbolContextBlock)) { 1838 ResolveFunctionAndBlock(file_vm_addr, 1839 resolve_scope & eSymbolContextBlock, sc); 1840 if (sc.function) 1841 resolved |= eSymbolContextFunction; 1842 else { 1843 // We might have had a compile unit that had discontiguous address 1844 // ranges where the gaps are symbols that don't have any debug 1845 // info. Discontiguous compile unit address ranges should only 1846 // happen when there aren't other functions from other compile 1847 // units in these gaps. This helps keep the size of the aranges 1848 // down. 1849 force_check_line_table = true; 1850 } 1851 if (sc.block) 1852 resolved |= eSymbolContextBlock; 1853 } 1854 1855 if ((resolve_scope & eSymbolContextLineEntry) || 1856 force_check_line_table) { 1857 LineTable *line_table = sc.comp_unit->GetLineTable(); 1858 if (line_table != nullptr) { 1859 // And address that makes it into this function should be in terms 1860 // of this debug file if there is no debug map, or it will be an 1861 // address in the .o file which needs to be fixed up to be in 1862 // terms of the debug map executable. Either way, calling 1863 // FixupAddress() will work for us. 1864 Address exe_so_addr(so_addr); 1865 if (FixupAddress(exe_so_addr)) { 1866 if (line_table->FindLineEntryByAddress(exe_so_addr, 1867 sc.line_entry)) { 1868 resolved |= eSymbolContextLineEntry; 1869 } 1870 } 1871 } 1872 } 1873 1874 if (force_check_line_table && !(resolved & eSymbolContextLineEntry)) { 1875 // We might have had a compile unit that had discontiguous address 1876 // ranges where the gaps are symbols that don't have any debug info. 1877 // Discontiguous compile unit address ranges should only happen when 1878 // there aren't other functions from other compile units in these 1879 // gaps. This helps keep the size of the aranges down. 1880 sc.comp_unit = nullptr; 1881 resolved &= ~eSymbolContextCompUnit; 1882 } 1883 } else { 1884 GetObjectFile()->GetModule()->ReportWarning( 1885 "0x%8.8x: compile unit %u failed to create a valid " 1886 "lldb_private::CompileUnit class.", 1887 cu_offset, cu_idx); 1888 } 1889 } 1890 } 1891 } 1892 return resolved; 1893 } 1894 1895 uint32_t SymbolFileDWARF::ResolveSymbolContext(const FileSpec &file_spec, 1896 uint32_t line, 1897 bool check_inlines, 1898 SymbolContextItem resolve_scope, 1899 SymbolContextList &sc_list) { 1900 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1901 const uint32_t prev_size = sc_list.GetSize(); 1902 if (resolve_scope & eSymbolContextCompUnit) { 1903 for (uint32_t cu_idx = 0, num_cus = GetNumCompileUnits(); cu_idx < num_cus; 1904 ++cu_idx) { 1905 CompileUnit *dc_cu = ParseCompileUnitAtIndex(cu_idx).get(); 1906 if (!dc_cu) 1907 continue; 1908 1909 bool file_spec_matches_cu_file_spec = 1910 FileSpec::Match(file_spec, dc_cu->GetPrimaryFile()); 1911 if (check_inlines || file_spec_matches_cu_file_spec) { 1912 SymbolContext sc(m_objfile_sp->GetModule()); 1913 sc.comp_unit = dc_cu; 1914 uint32_t file_idx = UINT32_MAX; 1915 1916 // If we are looking for inline functions only and we don't find it 1917 // in the support files, we are done. 1918 if (check_inlines) { 1919 file_idx = 1920 sc.comp_unit->GetSupportFiles().FindFileIndex(1, file_spec, true); 1921 if (file_idx == UINT32_MAX) 1922 continue; 1923 } 1924 1925 if (line != 0) { 1926 LineTable *line_table = sc.comp_unit->GetLineTable(); 1927 1928 if (line_table != nullptr && line != 0) { 1929 // We will have already looked up the file index if we are 1930 // searching for inline entries. 1931 if (!check_inlines) 1932 file_idx = sc.comp_unit->GetSupportFiles().FindFileIndex( 1933 1, file_spec, true); 1934 1935 if (file_idx != UINT32_MAX) { 1936 uint32_t found_line; 1937 uint32_t line_idx = line_table->FindLineEntryIndexByFileIndex( 1938 0, file_idx, line, false, &sc.line_entry); 1939 found_line = sc.line_entry.line; 1940 1941 while (line_idx != UINT32_MAX) { 1942 sc.function = nullptr; 1943 sc.block = nullptr; 1944 if (resolve_scope & 1945 (eSymbolContextFunction | eSymbolContextBlock)) { 1946 const lldb::addr_t file_vm_addr = 1947 sc.line_entry.range.GetBaseAddress().GetFileAddress(); 1948 if (file_vm_addr != LLDB_INVALID_ADDRESS) { 1949 ResolveFunctionAndBlock( 1950 file_vm_addr, resolve_scope & eSymbolContextBlock, sc); 1951 } 1952 } 1953 1954 sc_list.Append(sc); 1955 line_idx = line_table->FindLineEntryIndexByFileIndex( 1956 line_idx + 1, file_idx, found_line, true, &sc.line_entry); 1957 } 1958 } 1959 } else if (file_spec_matches_cu_file_spec && !check_inlines) { 1960 // only append the context if we aren't looking for inline call 1961 // sites by file and line and if the file spec matches that of 1962 // the compile unit 1963 sc_list.Append(sc); 1964 } 1965 } else if (file_spec_matches_cu_file_spec && !check_inlines) { 1966 // only append the context if we aren't looking for inline call 1967 // sites by file and line and if the file spec matches that of 1968 // the compile unit 1969 sc_list.Append(sc); 1970 } 1971 1972 if (!check_inlines) 1973 break; 1974 } 1975 } 1976 } 1977 return sc_list.GetSize() - prev_size; 1978 } 1979 1980 void SymbolFileDWARF::PreloadSymbols() { 1981 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 1982 m_index->Preload(); 1983 } 1984 1985 std::recursive_mutex &SymbolFileDWARF::GetModuleMutex() const { 1986 lldb::ModuleSP module_sp(m_debug_map_module_wp.lock()); 1987 if (module_sp) 1988 return module_sp->GetMutex(); 1989 return GetObjectFile()->GetModule()->GetMutex(); 1990 } 1991 1992 bool SymbolFileDWARF::DeclContextMatchesThisSymbolFile( 1993 const lldb_private::CompilerDeclContext &decl_ctx) { 1994 if (!decl_ctx.IsValid()) { 1995 // Invalid namespace decl which means we aren't matching only things in 1996 // this symbol file, so return true to indicate it matches this symbol 1997 // file. 1998 return true; 1999 } 2000 2001 TypeSystem *decl_ctx_type_system = decl_ctx.GetTypeSystem(); 2002 auto type_system_or_err = GetTypeSystemForLanguage( 2003 decl_ctx_type_system->GetMinimumLanguage(nullptr)); 2004 if (auto err = type_system_or_err.takeError()) { 2005 LLDB_LOG_ERROR(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_SYMBOLS), 2006 std::move(err), 2007 "Unable to match namespace decl using TypeSystem"); 2008 return false; 2009 } 2010 2011 if (decl_ctx_type_system == &type_system_or_err.get()) 2012 return true; // The type systems match, return true 2013 2014 // The namespace AST was valid, and it does not match... 2015 Log *log(LogChannelDWARF::GetLogIfAll(DWARF_LOG_LOOKUPS)); 2016 2017 if (log) 2018 GetObjectFile()->GetModule()->LogMessage( 2019 log, "Valid namespace does not match symbol file"); 2020 2021 return false; 2022 } 2023 2024 void SymbolFileDWARF::FindGlobalVariables( 2025 ConstString name, const CompilerDeclContext &parent_decl_ctx, 2026 uint32_t max_matches, VariableList &variables) { 2027 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 2028 Log *log(LogChannelDWARF::GetLogIfAll(DWARF_LOG_LOOKUPS)); 2029 2030 if (log) 2031 GetObjectFile()->GetModule()->LogMessage( 2032 log, 2033 "SymbolFileDWARF::FindGlobalVariables (name=\"%s\", " 2034 "parent_decl_ctx=%p, max_matches=%u, variables)", 2035 name.GetCString(), static_cast<const void *>(&parent_decl_ctx), 2036 max_matches); 2037 2038 if (!DeclContextMatchesThisSymbolFile(parent_decl_ctx)) 2039 return; 2040 2041 // Remember how many variables are in the list before we search. 2042 const uint32_t original_size = variables.GetSize(); 2043 2044 llvm::StringRef basename; 2045 llvm::StringRef context; 2046 bool name_is_mangled = (bool)Mangled(name); 2047 2048 if (!CPlusPlusLanguage::ExtractContextAndIdentifier(name.GetCString(), 2049 context, basename)) 2050 basename = name.GetStringRef(); 2051 2052 // Loop invariant: Variables up to this index have been checked for context 2053 // matches. 2054 uint32_t pruned_idx = original_size; 2055 2056 SymbolContext sc; 2057 m_index->GetGlobalVariables(ConstString(basename), [&](DWARFDIE die) { 2058 if (!sc.module_sp) 2059 sc.module_sp = m_objfile_sp->GetModule(); 2060 assert(sc.module_sp); 2061 2062 if (die.Tag() != DW_TAG_variable) 2063 return true; 2064 2065 auto *dwarf_cu = llvm::dyn_cast<DWARFCompileUnit>(die.GetCU()); 2066 if (!dwarf_cu) 2067 return true; 2068 sc.comp_unit = GetCompUnitForDWARFCompUnit(*dwarf_cu); 2069 2070 if (parent_decl_ctx) { 2071 if (DWARFASTParser *dwarf_ast = GetDWARFParser(*die.GetCU())) { 2072 CompilerDeclContext actual_parent_decl_ctx = 2073 dwarf_ast->GetDeclContextContainingUIDFromDWARF(die); 2074 if (!actual_parent_decl_ctx || 2075 actual_parent_decl_ctx != parent_decl_ctx) 2076 return true; 2077 } 2078 } 2079 2080 ParseVariables(sc, die, LLDB_INVALID_ADDRESS, false, false, &variables); 2081 while (pruned_idx < variables.GetSize()) { 2082 VariableSP var_sp = variables.GetVariableAtIndex(pruned_idx); 2083 if (name_is_mangled || 2084 var_sp->GetName().GetStringRef().contains(name.GetStringRef())) 2085 ++pruned_idx; 2086 else 2087 variables.RemoveVariableAtIndex(pruned_idx); 2088 } 2089 2090 return variables.GetSize() - original_size < max_matches; 2091 }); 2092 2093 // Return the number of variable that were appended to the list 2094 const uint32_t num_matches = variables.GetSize() - original_size; 2095 if (log && num_matches > 0) { 2096 GetObjectFile()->GetModule()->LogMessage( 2097 log, 2098 "SymbolFileDWARF::FindGlobalVariables (name=\"%s\", " 2099 "parent_decl_ctx=%p, max_matches=%u, variables) => %u", 2100 name.GetCString(), static_cast<const void *>(&parent_decl_ctx), 2101 max_matches, num_matches); 2102 } 2103 } 2104 2105 void SymbolFileDWARF::FindGlobalVariables(const RegularExpression ®ex, 2106 uint32_t max_matches, 2107 VariableList &variables) { 2108 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 2109 Log *log(LogChannelDWARF::GetLogIfAll(DWARF_LOG_LOOKUPS)); 2110 2111 if (log) { 2112 GetObjectFile()->GetModule()->LogMessage( 2113 log, 2114 "SymbolFileDWARF::FindGlobalVariables (regex=\"%s\", " 2115 "max_matches=%u, variables)", 2116 regex.GetText().str().c_str(), max_matches); 2117 } 2118 2119 // Remember how many variables are in the list before we search. 2120 const uint32_t original_size = variables.GetSize(); 2121 2122 SymbolContext sc; 2123 m_index->GetGlobalVariables(regex, [&](DWARFDIE die) { 2124 if (!sc.module_sp) 2125 sc.module_sp = m_objfile_sp->GetModule(); 2126 assert(sc.module_sp); 2127 2128 DWARFCompileUnit *dwarf_cu = llvm::dyn_cast<DWARFCompileUnit>(die.GetCU()); 2129 if (!dwarf_cu) 2130 return true; 2131 sc.comp_unit = GetCompUnitForDWARFCompUnit(*dwarf_cu); 2132 2133 ParseVariables(sc, die, LLDB_INVALID_ADDRESS, false, false, &variables); 2134 2135 return variables.GetSize() - original_size < max_matches; 2136 }); 2137 } 2138 2139 bool SymbolFileDWARF::ResolveFunction(const DWARFDIE &orig_die, 2140 bool include_inlines, 2141 SymbolContextList &sc_list) { 2142 SymbolContext sc; 2143 2144 if (!orig_die) 2145 return false; 2146 2147 // If we were passed a die that is not a function, just return false... 2148 if (!(orig_die.Tag() == DW_TAG_subprogram || 2149 (include_inlines && orig_die.Tag() == DW_TAG_inlined_subroutine))) 2150 return false; 2151 2152 DWARFDIE die = orig_die; 2153 DWARFDIE inlined_die; 2154 if (die.Tag() == DW_TAG_inlined_subroutine) { 2155 inlined_die = die; 2156 2157 while (true) { 2158 die = die.GetParent(); 2159 2160 if (die) { 2161 if (die.Tag() == DW_TAG_subprogram) 2162 break; 2163 } else 2164 break; 2165 } 2166 } 2167 assert(die && die.Tag() == DW_TAG_subprogram); 2168 if (GetFunction(die, sc)) { 2169 Address addr; 2170 // Parse all blocks if needed 2171 if (inlined_die) { 2172 Block &function_block = sc.function->GetBlock(true); 2173 sc.block = function_block.FindBlockByID(inlined_die.GetID()); 2174 if (sc.block == nullptr) 2175 sc.block = function_block.FindBlockByID(inlined_die.GetOffset()); 2176 if (sc.block == nullptr || !sc.block->GetStartAddress(addr)) 2177 addr.Clear(); 2178 } else { 2179 sc.block = nullptr; 2180 addr = sc.function->GetAddressRange().GetBaseAddress(); 2181 } 2182 2183 2184 if (auto section_sp = addr.GetSection()) { 2185 if (section_sp->GetPermissions() & ePermissionsExecutable) { 2186 sc_list.Append(sc); 2187 return true; 2188 } 2189 } 2190 } 2191 2192 return false; 2193 } 2194 2195 bool SymbolFileDWARF::DIEInDeclContext(const CompilerDeclContext &decl_ctx, 2196 const DWARFDIE &die) { 2197 // If we have no parent decl context to match this DIE matches, and if the 2198 // parent decl context isn't valid, we aren't trying to look for any 2199 // particular decl context so any die matches. 2200 if (!decl_ctx.IsValid()) 2201 return true; 2202 2203 if (die) { 2204 if (DWARFASTParser *dwarf_ast = GetDWARFParser(*die.GetCU())) { 2205 if (CompilerDeclContext actual_decl_ctx = 2206 dwarf_ast->GetDeclContextContainingUIDFromDWARF(die)) 2207 return decl_ctx.IsContainedInLookup(actual_decl_ctx); 2208 } 2209 } 2210 return false; 2211 } 2212 2213 void SymbolFileDWARF::FindFunctions(ConstString name, 2214 const CompilerDeclContext &parent_decl_ctx, 2215 FunctionNameType name_type_mask, 2216 bool include_inlines, 2217 SymbolContextList &sc_list) { 2218 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 2219 static Timer::Category func_cat(LLVM_PRETTY_FUNCTION); 2220 Timer scoped_timer(func_cat, "SymbolFileDWARF::FindFunctions (name = '%s')", 2221 name.AsCString()); 2222 2223 // eFunctionNameTypeAuto should be pre-resolved by a call to 2224 // Module::LookupInfo::LookupInfo() 2225 assert((name_type_mask & eFunctionNameTypeAuto) == 0); 2226 2227 Log *log(LogChannelDWARF::GetLogIfAll(DWARF_LOG_LOOKUPS)); 2228 2229 if (log) { 2230 GetObjectFile()->GetModule()->LogMessage( 2231 log, 2232 "SymbolFileDWARF::FindFunctions (name=\"%s\", name_type_mask=0x%x, sc_list)", 2233 name.GetCString(), name_type_mask); 2234 } 2235 2236 if (!DeclContextMatchesThisSymbolFile(parent_decl_ctx)) 2237 return; 2238 2239 // If name is empty then we won't find anything. 2240 if (name.IsEmpty()) 2241 return; 2242 2243 // Remember how many sc_list are in the list before we search in case we are 2244 // appending the results to a variable list. 2245 2246 const uint32_t original_size = sc_list.GetSize(); 2247 2248 llvm::DenseSet<const DWARFDebugInfoEntry *> resolved_dies; 2249 2250 m_index->GetFunctions(name, *this, parent_decl_ctx, name_type_mask, 2251 [&](DWARFDIE die) { 2252 if (resolved_dies.insert(die.GetDIE()).second) 2253 ResolveFunction(die, include_inlines, sc_list); 2254 return true; 2255 }); 2256 2257 // Return the number of variable that were appended to the list 2258 const uint32_t num_matches = sc_list.GetSize() - original_size; 2259 2260 if (log && num_matches > 0) { 2261 GetObjectFile()->GetModule()->LogMessage( 2262 log, 2263 "SymbolFileDWARF::FindFunctions (name=\"%s\", " 2264 "name_type_mask=0x%x, include_inlines=%d, sc_list) => %u", 2265 name.GetCString(), name_type_mask, include_inlines, 2266 num_matches); 2267 } 2268 } 2269 2270 void SymbolFileDWARF::FindFunctions(const RegularExpression ®ex, 2271 bool include_inlines, 2272 SymbolContextList &sc_list) { 2273 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 2274 static Timer::Category func_cat(LLVM_PRETTY_FUNCTION); 2275 Timer scoped_timer(func_cat, "SymbolFileDWARF::FindFunctions (regex = '%s')", 2276 regex.GetText().str().c_str()); 2277 2278 Log *log(LogChannelDWARF::GetLogIfAll(DWARF_LOG_LOOKUPS)); 2279 2280 if (log) { 2281 GetObjectFile()->GetModule()->LogMessage( 2282 log, "SymbolFileDWARF::FindFunctions (regex=\"%s\", sc_list)", 2283 regex.GetText().str().c_str()); 2284 } 2285 2286 llvm::DenseSet<const DWARFDebugInfoEntry *> resolved_dies; 2287 m_index->GetFunctions(regex, [&](DWARFDIE die) { 2288 if (resolved_dies.insert(die.GetDIE()).second) 2289 ResolveFunction(die, include_inlines, sc_list); 2290 return true; 2291 }); 2292 } 2293 2294 void SymbolFileDWARF::GetMangledNamesForFunction( 2295 const std::string &scope_qualified_name, 2296 std::vector<ConstString> &mangled_names) { 2297 DWARFDebugInfo &info = DebugInfo(); 2298 uint32_t num_comp_units = info.GetNumUnits(); 2299 for (uint32_t i = 0; i < num_comp_units; i++) { 2300 DWARFUnit *cu = info.GetUnitAtIndex(i); 2301 if (cu == nullptr) 2302 continue; 2303 2304 SymbolFileDWARFDwo *dwo = cu->GetDwoSymbolFile(); 2305 if (dwo) 2306 dwo->GetMangledNamesForFunction(scope_qualified_name, mangled_names); 2307 } 2308 2309 for (DIERef die_ref : 2310 m_function_scope_qualified_name_map.lookup(scope_qualified_name)) { 2311 DWARFDIE die = GetDIE(die_ref); 2312 mangled_names.push_back(ConstString(die.GetMangledName())); 2313 } 2314 } 2315 2316 void SymbolFileDWARF::FindTypes( 2317 ConstString name, const CompilerDeclContext &parent_decl_ctx, 2318 uint32_t max_matches, 2319 llvm::DenseSet<lldb_private::SymbolFile *> &searched_symbol_files, 2320 TypeMap &types) { 2321 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 2322 // Make sure we haven't already searched this SymbolFile before. 2323 if (!searched_symbol_files.insert(this).second) 2324 return; 2325 2326 Log *log(LogChannelDWARF::GetLogIfAll(DWARF_LOG_LOOKUPS)); 2327 2328 if (log) { 2329 if (parent_decl_ctx) 2330 GetObjectFile()->GetModule()->LogMessage( 2331 log, 2332 "SymbolFileDWARF::FindTypes (sc, name=\"%s\", parent_decl_ctx = " 2333 "%p (\"%s\"), max_matches=%u, type_list)", 2334 name.GetCString(), static_cast<const void *>(&parent_decl_ctx), 2335 parent_decl_ctx.GetName().AsCString("<NULL>"), max_matches); 2336 else 2337 GetObjectFile()->GetModule()->LogMessage( 2338 log, 2339 "SymbolFileDWARF::FindTypes (sc, name=\"%s\", parent_decl_ctx = " 2340 "NULL, max_matches=%u, type_list)", 2341 name.GetCString(), max_matches); 2342 } 2343 2344 if (!DeclContextMatchesThisSymbolFile(parent_decl_ctx)) 2345 return; 2346 2347 m_index->GetTypes(name, [&](DWARFDIE die) { 2348 if (!DIEInDeclContext(parent_decl_ctx, die)) 2349 return true; // The containing decl contexts don't match 2350 2351 Type *matching_type = ResolveType(die, true, true); 2352 if (!matching_type) 2353 return true; 2354 2355 // We found a type pointer, now find the shared pointer form our type 2356 // list 2357 types.InsertUnique(matching_type->shared_from_this()); 2358 return types.GetSize() < max_matches; 2359 }); 2360 2361 // Next search through the reachable Clang modules. This only applies for 2362 // DWARF objects compiled with -gmodules that haven't been processed by 2363 // dsymutil. 2364 if (types.GetSize() < max_matches) { 2365 UpdateExternalModuleListIfNeeded(); 2366 2367 for (const auto &pair : m_external_type_modules) 2368 if (ModuleSP external_module_sp = pair.second) 2369 if (SymbolFile *sym_file = external_module_sp->GetSymbolFile()) 2370 sym_file->FindTypes(name, parent_decl_ctx, max_matches, 2371 searched_symbol_files, types); 2372 } 2373 2374 if (log && types.GetSize()) { 2375 if (parent_decl_ctx) { 2376 GetObjectFile()->GetModule()->LogMessage( 2377 log, 2378 "SymbolFileDWARF::FindTypes (sc, name=\"%s\", parent_decl_ctx " 2379 "= %p (\"%s\"), max_matches=%u, type_list) => %u", 2380 name.GetCString(), static_cast<const void *>(&parent_decl_ctx), 2381 parent_decl_ctx.GetName().AsCString("<NULL>"), max_matches, 2382 types.GetSize()); 2383 } else { 2384 GetObjectFile()->GetModule()->LogMessage( 2385 log, 2386 "SymbolFileDWARF::FindTypes (sc, name=\"%s\", parent_decl_ctx " 2387 "= NULL, max_matches=%u, type_list) => %u", 2388 name.GetCString(), max_matches, types.GetSize()); 2389 } 2390 } 2391 } 2392 2393 void SymbolFileDWARF::FindTypes( 2394 llvm::ArrayRef<CompilerContext> pattern, LanguageSet languages, 2395 llvm::DenseSet<SymbolFile *> &searched_symbol_files, TypeMap &types) { 2396 // Make sure we haven't already searched this SymbolFile before. 2397 if (!searched_symbol_files.insert(this).second) 2398 return; 2399 2400 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 2401 if (pattern.empty()) 2402 return; 2403 2404 ConstString name = pattern.back().name; 2405 2406 if (!name) 2407 return; 2408 2409 m_index->GetTypes(name, [&](DWARFDIE die) { 2410 if (!languages[GetLanguage(*die.GetCU())]) 2411 return true; 2412 2413 llvm::SmallVector<CompilerContext, 4> die_context; 2414 die.GetDeclContext(die_context); 2415 if (!contextMatches(die_context, pattern)) 2416 return true; 2417 2418 if (Type *matching_type = ResolveType(die, true, true)) { 2419 // We found a type pointer, now find the shared pointer form our type 2420 // list. 2421 types.InsertUnique(matching_type->shared_from_this()); 2422 } 2423 return true; 2424 }); 2425 2426 // Next search through the reachable Clang modules. This only applies for 2427 // DWARF objects compiled with -gmodules that haven't been processed by 2428 // dsymutil. 2429 UpdateExternalModuleListIfNeeded(); 2430 2431 for (const auto &pair : m_external_type_modules) 2432 if (ModuleSP external_module_sp = pair.second) 2433 external_module_sp->FindTypes(pattern, languages, searched_symbol_files, 2434 types); 2435 } 2436 2437 CompilerDeclContext 2438 SymbolFileDWARF::FindNamespace(ConstString name, 2439 const CompilerDeclContext &parent_decl_ctx) { 2440 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 2441 Log *log(LogChannelDWARF::GetLogIfAll(DWARF_LOG_LOOKUPS)); 2442 2443 if (log) { 2444 GetObjectFile()->GetModule()->LogMessage( 2445 log, "SymbolFileDWARF::FindNamespace (sc, name=\"%s\")", 2446 name.GetCString()); 2447 } 2448 2449 CompilerDeclContext namespace_decl_ctx; 2450 2451 if (!DeclContextMatchesThisSymbolFile(parent_decl_ctx)) 2452 return namespace_decl_ctx; 2453 2454 m_index->GetNamespaces(name, [&](DWARFDIE die) { 2455 if (!DIEInDeclContext(parent_decl_ctx, die)) 2456 return true; // The containing decl contexts don't match 2457 2458 DWARFASTParser *dwarf_ast = GetDWARFParser(*die.GetCU()); 2459 if (!dwarf_ast) 2460 return true; 2461 2462 namespace_decl_ctx = dwarf_ast->GetDeclContextForUIDFromDWARF(die); 2463 return !namespace_decl_ctx.IsValid(); 2464 }); 2465 2466 if (log && namespace_decl_ctx) { 2467 GetObjectFile()->GetModule()->LogMessage( 2468 log, 2469 "SymbolFileDWARF::FindNamespace (sc, name=\"%s\") => " 2470 "CompilerDeclContext(%p/%p) \"%s\"", 2471 name.GetCString(), 2472 static_cast<const void *>(namespace_decl_ctx.GetTypeSystem()), 2473 static_cast<const void *>(namespace_decl_ctx.GetOpaqueDeclContext()), 2474 namespace_decl_ctx.GetName().AsCString("<NULL>")); 2475 } 2476 2477 return namespace_decl_ctx; 2478 } 2479 2480 TypeSP SymbolFileDWARF::GetTypeForDIE(const DWARFDIE &die, 2481 bool resolve_function_context) { 2482 TypeSP type_sp; 2483 if (die) { 2484 Type *type_ptr = GetDIEToType().lookup(die.GetDIE()); 2485 if (type_ptr == nullptr) { 2486 SymbolContextScope *scope; 2487 if (auto *dwarf_cu = llvm::dyn_cast<DWARFCompileUnit>(die.GetCU())) 2488 scope = GetCompUnitForDWARFCompUnit(*dwarf_cu); 2489 else 2490 scope = GetObjectFile()->GetModule().get(); 2491 assert(scope); 2492 SymbolContext sc(scope); 2493 const DWARFDebugInfoEntry *parent_die = die.GetParent().GetDIE(); 2494 while (parent_die != nullptr) { 2495 if (parent_die->Tag() == DW_TAG_subprogram) 2496 break; 2497 parent_die = parent_die->GetParent(); 2498 } 2499 SymbolContext sc_backup = sc; 2500 if (resolve_function_context && parent_die != nullptr && 2501 !GetFunction(DWARFDIE(die.GetCU(), parent_die), sc)) 2502 sc = sc_backup; 2503 2504 type_sp = ParseType(sc, die, nullptr); 2505 } else if (type_ptr != DIE_IS_BEING_PARSED) { 2506 // Grab the existing type from the master types lists 2507 type_sp = type_ptr->shared_from_this(); 2508 } 2509 } 2510 return type_sp; 2511 } 2512 2513 DWARFDIE 2514 SymbolFileDWARF::GetDeclContextDIEContainingDIE(const DWARFDIE &orig_die) { 2515 if (orig_die) { 2516 DWARFDIE die = orig_die; 2517 2518 while (die) { 2519 // If this is the original DIE that we are searching for a declaration 2520 // for, then don't look in the cache as we don't want our own decl 2521 // context to be our decl context... 2522 if (orig_die != die) { 2523 switch (die.Tag()) { 2524 case DW_TAG_compile_unit: 2525 case DW_TAG_partial_unit: 2526 case DW_TAG_namespace: 2527 case DW_TAG_structure_type: 2528 case DW_TAG_union_type: 2529 case DW_TAG_class_type: 2530 case DW_TAG_lexical_block: 2531 case DW_TAG_subprogram: 2532 return die; 2533 case DW_TAG_inlined_subroutine: { 2534 DWARFDIE abs_die = die.GetReferencedDIE(DW_AT_abstract_origin); 2535 if (abs_die) { 2536 return abs_die; 2537 } 2538 break; 2539 } 2540 default: 2541 break; 2542 } 2543 } 2544 2545 DWARFDIE spec_die = die.GetReferencedDIE(DW_AT_specification); 2546 if (spec_die) { 2547 DWARFDIE decl_ctx_die = GetDeclContextDIEContainingDIE(spec_die); 2548 if (decl_ctx_die) 2549 return decl_ctx_die; 2550 } 2551 2552 DWARFDIE abs_die = die.GetReferencedDIE(DW_AT_abstract_origin); 2553 if (abs_die) { 2554 DWARFDIE decl_ctx_die = GetDeclContextDIEContainingDIE(abs_die); 2555 if (decl_ctx_die) 2556 return decl_ctx_die; 2557 } 2558 2559 die = die.GetParent(); 2560 } 2561 } 2562 return DWARFDIE(); 2563 } 2564 2565 Symbol *SymbolFileDWARF::GetObjCClassSymbol(ConstString objc_class_name) { 2566 Symbol *objc_class_symbol = nullptr; 2567 if (m_objfile_sp) { 2568 Symtab *symtab = m_objfile_sp->GetSymtab(); 2569 if (symtab) { 2570 objc_class_symbol = symtab->FindFirstSymbolWithNameAndType( 2571 objc_class_name, eSymbolTypeObjCClass, Symtab::eDebugNo, 2572 Symtab::eVisibilityAny); 2573 } 2574 } 2575 return objc_class_symbol; 2576 } 2577 2578 // Some compilers don't emit the DW_AT_APPLE_objc_complete_type attribute. If 2579 // they don't then we can end up looking through all class types for a complete 2580 // type and never find the full definition. We need to know if this attribute 2581 // is supported, so we determine this here and cache th result. We also need to 2582 // worry about the debug map 2583 // DWARF file 2584 // if we are doing darwin DWARF in .o file debugging. 2585 bool SymbolFileDWARF::Supports_DW_AT_APPLE_objc_complete_type(DWARFUnit *cu) { 2586 if (m_supports_DW_AT_APPLE_objc_complete_type == eLazyBoolCalculate) { 2587 m_supports_DW_AT_APPLE_objc_complete_type = eLazyBoolNo; 2588 if (cu && cu->Supports_DW_AT_APPLE_objc_complete_type()) 2589 m_supports_DW_AT_APPLE_objc_complete_type = eLazyBoolYes; 2590 else { 2591 DWARFDebugInfo &debug_info = DebugInfo(); 2592 const uint32_t num_compile_units = GetNumCompileUnits(); 2593 for (uint32_t cu_idx = 0; cu_idx < num_compile_units; ++cu_idx) { 2594 DWARFUnit *dwarf_cu = debug_info.GetUnitAtIndex(cu_idx); 2595 if (dwarf_cu != cu && 2596 dwarf_cu->Supports_DW_AT_APPLE_objc_complete_type()) { 2597 m_supports_DW_AT_APPLE_objc_complete_type = eLazyBoolYes; 2598 break; 2599 } 2600 } 2601 } 2602 if (m_supports_DW_AT_APPLE_objc_complete_type == eLazyBoolNo && 2603 GetDebugMapSymfile()) 2604 return m_debug_map_symfile->Supports_DW_AT_APPLE_objc_complete_type(this); 2605 } 2606 return m_supports_DW_AT_APPLE_objc_complete_type == eLazyBoolYes; 2607 } 2608 2609 // This function can be used when a DIE is found that is a forward declaration 2610 // DIE and we want to try and find a type that has the complete definition. 2611 TypeSP SymbolFileDWARF::FindCompleteObjCDefinitionTypeForDIE( 2612 const DWARFDIE &die, ConstString type_name, bool must_be_implementation) { 2613 2614 TypeSP type_sp; 2615 2616 if (!type_name || (must_be_implementation && !GetObjCClassSymbol(type_name))) 2617 return type_sp; 2618 2619 m_index->GetCompleteObjCClass( 2620 type_name, must_be_implementation, [&](DWARFDIE type_die) { 2621 bool try_resolving_type = false; 2622 2623 // Don't try and resolve the DIE we are looking for with the DIE 2624 // itself! 2625 if (type_die != die) { 2626 switch (type_die.Tag()) { 2627 case DW_TAG_class_type: 2628 case DW_TAG_structure_type: 2629 try_resolving_type = true; 2630 break; 2631 default: 2632 break; 2633 } 2634 } 2635 if (!try_resolving_type) 2636 return true; 2637 2638 if (must_be_implementation && 2639 type_die.Supports_DW_AT_APPLE_objc_complete_type()) 2640 try_resolving_type = type_die.GetAttributeValueAsUnsigned( 2641 DW_AT_APPLE_objc_complete_type, 0); 2642 if (!try_resolving_type) 2643 return true; 2644 2645 Type *resolved_type = ResolveType(type_die, false, true); 2646 if (!resolved_type || resolved_type == DIE_IS_BEING_PARSED) 2647 return true; 2648 2649 DEBUG_PRINTF( 2650 "resolved 0x%8.8" PRIx64 " from %s to 0x%8.8" PRIx64 2651 " (cu 0x%8.8" PRIx64 ")\n", 2652 die.GetID(), 2653 m_objfile_sp->GetFileSpec().GetFilename().AsCString("<Unknown>"), 2654 type_die.GetID(), type_cu->GetID()); 2655 2656 if (die) 2657 GetDIEToType()[die.GetDIE()] = resolved_type; 2658 type_sp = resolved_type->shared_from_this(); 2659 return false; 2660 }); 2661 return type_sp; 2662 } 2663 2664 // This function helps to ensure that the declaration contexts match for two 2665 // different DIEs. Often times debug information will refer to a forward 2666 // declaration of a type (the equivalent of "struct my_struct;". There will 2667 // often be a declaration of that type elsewhere that has the full definition. 2668 // When we go looking for the full type "my_struct", we will find one or more 2669 // matches in the accelerator tables and we will then need to make sure the 2670 // type was in the same declaration context as the original DIE. This function 2671 // can efficiently compare two DIEs and will return true when the declaration 2672 // context matches, and false when they don't. 2673 bool SymbolFileDWARF::DIEDeclContextsMatch(const DWARFDIE &die1, 2674 const DWARFDIE &die2) { 2675 if (die1 == die2) 2676 return true; 2677 2678 std::vector<DWARFDIE> decl_ctx_1; 2679 std::vector<DWARFDIE> decl_ctx_2; 2680 // The declaration DIE stack is a stack of the declaration context DIEs all 2681 // the way back to the compile unit. If a type "T" is declared inside a class 2682 // "B", and class "B" is declared inside a class "A" and class "A" is in a 2683 // namespace "lldb", and the namespace is in a compile unit, there will be a 2684 // stack of DIEs: 2685 // 2686 // [0] DW_TAG_class_type for "B" 2687 // [1] DW_TAG_class_type for "A" 2688 // [2] DW_TAG_namespace for "lldb" 2689 // [3] DW_TAG_compile_unit or DW_TAG_partial_unit for the source file. 2690 // 2691 // We grab both contexts and make sure that everything matches all the way 2692 // back to the compiler unit. 2693 2694 // First lets grab the decl contexts for both DIEs 2695 decl_ctx_1 = die1.GetDeclContextDIEs(); 2696 decl_ctx_2 = die2.GetDeclContextDIEs(); 2697 // Make sure the context arrays have the same size, otherwise we are done 2698 const size_t count1 = decl_ctx_1.size(); 2699 const size_t count2 = decl_ctx_2.size(); 2700 if (count1 != count2) 2701 return false; 2702 2703 // Make sure the DW_TAG values match all the way back up the compile unit. If 2704 // they don't, then we are done. 2705 DWARFDIE decl_ctx_die1; 2706 DWARFDIE decl_ctx_die2; 2707 size_t i; 2708 for (i = 0; i < count1; i++) { 2709 decl_ctx_die1 = decl_ctx_1[i]; 2710 decl_ctx_die2 = decl_ctx_2[i]; 2711 if (decl_ctx_die1.Tag() != decl_ctx_die2.Tag()) 2712 return false; 2713 } 2714 #ifndef NDEBUG 2715 2716 // Make sure the top item in the decl context die array is always 2717 // DW_TAG_compile_unit or DW_TAG_partial_unit. If it isn't then 2718 // something went wrong in the DWARFDIE::GetDeclContextDIEs() 2719 // function. 2720 dw_tag_t cu_tag = decl_ctx_1[count1 - 1].Tag(); 2721 UNUSED_IF_ASSERT_DISABLED(cu_tag); 2722 assert(cu_tag == DW_TAG_compile_unit || cu_tag == DW_TAG_partial_unit); 2723 2724 #endif 2725 // Always skip the compile unit when comparing by only iterating up to "count 2726 // - 1". Here we compare the names as we go. 2727 for (i = 0; i < count1 - 1; i++) { 2728 decl_ctx_die1 = decl_ctx_1[i]; 2729 decl_ctx_die2 = decl_ctx_2[i]; 2730 const char *name1 = decl_ctx_die1.GetName(); 2731 const char *name2 = decl_ctx_die2.GetName(); 2732 // If the string was from a DW_FORM_strp, then the pointer will often be 2733 // the same! 2734 if (name1 == name2) 2735 continue; 2736 2737 // Name pointers are not equal, so only compare the strings if both are not 2738 // NULL. 2739 if (name1 && name2) { 2740 // If the strings don't compare, we are done... 2741 if (strcmp(name1, name2) != 0) 2742 return false; 2743 } else { 2744 // One name was NULL while the other wasn't 2745 return false; 2746 } 2747 } 2748 // We made it through all of the checks and the declaration contexts are 2749 // equal. 2750 return true; 2751 } 2752 2753 TypeSP SymbolFileDWARF::FindDefinitionTypeForDWARFDeclContext( 2754 const DWARFDeclContext &dwarf_decl_ctx) { 2755 TypeSP type_sp; 2756 2757 const uint32_t dwarf_decl_ctx_count = dwarf_decl_ctx.GetSize(); 2758 if (dwarf_decl_ctx_count > 0) { 2759 const ConstString type_name(dwarf_decl_ctx[0].name); 2760 const dw_tag_t tag = dwarf_decl_ctx[0].tag; 2761 2762 if (type_name) { 2763 Log *log(LogChannelDWARF::GetLogIfAny(DWARF_LOG_TYPE_COMPLETION | 2764 DWARF_LOG_LOOKUPS)); 2765 if (log) { 2766 GetObjectFile()->GetModule()->LogMessage( 2767 log, 2768 "SymbolFileDWARF::FindDefinitionTypeForDWARFDeclContext(tag=%" 2769 "s, qualified-name='%s')", 2770 DW_TAG_value_to_name(dwarf_decl_ctx[0].tag), 2771 dwarf_decl_ctx.GetQualifiedName()); 2772 } 2773 2774 // Get the type system that we are looking to find a type for. We will 2775 // use this to ensure any matches we find are in a language that this 2776 // type system supports 2777 const LanguageType language = dwarf_decl_ctx.GetLanguage(); 2778 TypeSystem *type_system = nullptr; 2779 if (language != eLanguageTypeUnknown) { 2780 auto type_system_or_err = GetTypeSystemForLanguage(language); 2781 if (auto err = type_system_or_err.takeError()) { 2782 LLDB_LOG_ERROR( 2783 lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_SYMBOLS), 2784 std::move(err), "Cannot get TypeSystem for language {}", 2785 Language::GetNameForLanguageType(language)); 2786 } else { 2787 type_system = &type_system_or_err.get(); 2788 } 2789 } 2790 2791 m_index->GetTypes(dwarf_decl_ctx, [&](DWARFDIE type_die) { 2792 // Make sure type_die's langauge matches the type system we are 2793 // looking for. We don't want to find a "Foo" type from Java if we 2794 // are looking for a "Foo" type for C, C++, ObjC, or ObjC++. 2795 if (type_system && 2796 !type_system->SupportsLanguage(GetLanguage(*type_die.GetCU()))) 2797 return true; 2798 bool try_resolving_type = false; 2799 2800 // Don't try and resolve the DIE we are looking for with the DIE 2801 // itself! 2802 const dw_tag_t type_tag = type_die.Tag(); 2803 // Make sure the tags match 2804 if (type_tag == tag) { 2805 // The tags match, lets try resolving this type 2806 try_resolving_type = true; 2807 } else { 2808 // The tags don't match, but we need to watch our for a forward 2809 // declaration for a struct and ("struct foo") ends up being a 2810 // class ("class foo { ... };") or vice versa. 2811 switch (type_tag) { 2812 case DW_TAG_class_type: 2813 // We had a "class foo", see if we ended up with a "struct foo 2814 // { ... };" 2815 try_resolving_type = (tag == DW_TAG_structure_type); 2816 break; 2817 case DW_TAG_structure_type: 2818 // We had a "struct foo", see if we ended up with a "class foo 2819 // { ... };" 2820 try_resolving_type = (tag == DW_TAG_class_type); 2821 break; 2822 default: 2823 // Tags don't match, don't event try to resolve using this type 2824 // whose name matches.... 2825 break; 2826 } 2827 } 2828 2829 if (!try_resolving_type) { 2830 if (log) { 2831 std::string qualified_name; 2832 type_die.GetQualifiedName(qualified_name); 2833 GetObjectFile()->GetModule()->LogMessage( 2834 log, 2835 "SymbolFileDWARF::" 2836 "FindDefinitionTypeForDWARFDeclContext(tag=%s, " 2837 "qualified-name='%s') ignoring die=0x%8.8x (%s)", 2838 DW_TAG_value_to_name(dwarf_decl_ctx[0].tag), 2839 dwarf_decl_ctx.GetQualifiedName(), type_die.GetOffset(), 2840 qualified_name.c_str()); 2841 } 2842 return true; 2843 } 2844 2845 DWARFDeclContext type_dwarf_decl_ctx = GetDWARFDeclContext(type_die); 2846 2847 if (log) { 2848 GetObjectFile()->GetModule()->LogMessage( 2849 log, 2850 "SymbolFileDWARF::" 2851 "FindDefinitionTypeForDWARFDeclContext(tag=%s, " 2852 "qualified-name='%s') trying die=0x%8.8x (%s)", 2853 DW_TAG_value_to_name(dwarf_decl_ctx[0].tag), 2854 dwarf_decl_ctx.GetQualifiedName(), type_die.GetOffset(), 2855 type_dwarf_decl_ctx.GetQualifiedName()); 2856 } 2857 2858 // Make sure the decl contexts match all the way up 2859 if (dwarf_decl_ctx != type_dwarf_decl_ctx) 2860 return true; 2861 2862 Type *resolved_type = ResolveType(type_die, false); 2863 if (!resolved_type || resolved_type == DIE_IS_BEING_PARSED) 2864 return true; 2865 2866 type_sp = resolved_type->shared_from_this(); 2867 return false; 2868 }); 2869 } 2870 } 2871 return type_sp; 2872 } 2873 2874 TypeSP SymbolFileDWARF::ParseType(const SymbolContext &sc, const DWARFDIE &die, 2875 bool *type_is_new_ptr) { 2876 if (!die) 2877 return {}; 2878 2879 auto type_system_or_err = GetTypeSystemForLanguage(GetLanguage(*die.GetCU())); 2880 if (auto err = type_system_or_err.takeError()) { 2881 LLDB_LOG_ERROR(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_SYMBOLS), 2882 std::move(err), "Unable to parse type"); 2883 return {}; 2884 } 2885 2886 DWARFASTParser *dwarf_ast = type_system_or_err->GetDWARFParser(); 2887 if (!dwarf_ast) 2888 return {}; 2889 2890 TypeSP type_sp = dwarf_ast->ParseTypeFromDWARF(sc, die, type_is_new_ptr); 2891 if (type_sp) { 2892 GetTypeList().Insert(type_sp); 2893 2894 if (die.Tag() == DW_TAG_subprogram) { 2895 std::string scope_qualified_name(GetDeclContextForUID(die.GetID()) 2896 .GetScopeQualifiedName() 2897 .AsCString("")); 2898 if (scope_qualified_name.size()) { 2899 m_function_scope_qualified_name_map[scope_qualified_name].insert( 2900 *die.GetDIERef()); 2901 } 2902 } 2903 } 2904 2905 return type_sp; 2906 } 2907 2908 size_t SymbolFileDWARF::ParseTypes(const SymbolContext &sc, 2909 const DWARFDIE &orig_die, 2910 bool parse_siblings, bool parse_children) { 2911 size_t types_added = 0; 2912 DWARFDIE die = orig_die; 2913 2914 while (die) { 2915 const dw_tag_t tag = die.Tag(); 2916 bool type_is_new = false; 2917 2918 Tag dwarf_tag = static_cast<Tag>(tag); 2919 2920 // TODO: Currently ParseTypeFromDWARF(...) which is called by ParseType(...) 2921 // does not handle DW_TAG_subrange_type. It is not clear if this is a bug or 2922 // not. 2923 if (isType(dwarf_tag) && tag != DW_TAG_subrange_type) 2924 ParseType(sc, die, &type_is_new); 2925 2926 if (type_is_new) 2927 ++types_added; 2928 2929 if (parse_children && die.HasChildren()) { 2930 if (die.Tag() == DW_TAG_subprogram) { 2931 SymbolContext child_sc(sc); 2932 child_sc.function = sc.comp_unit->FindFunctionByUID(die.GetID()).get(); 2933 types_added += ParseTypes(child_sc, die.GetFirstChild(), true, true); 2934 } else 2935 types_added += ParseTypes(sc, die.GetFirstChild(), true, true); 2936 } 2937 2938 if (parse_siblings) 2939 die = die.GetSibling(); 2940 else 2941 die.Clear(); 2942 } 2943 return types_added; 2944 } 2945 2946 size_t SymbolFileDWARF::ParseBlocksRecursive(Function &func) { 2947 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 2948 CompileUnit *comp_unit = func.GetCompileUnit(); 2949 lldbassert(comp_unit); 2950 2951 DWARFUnit *dwarf_cu = GetDWARFCompileUnit(comp_unit); 2952 if (!dwarf_cu) 2953 return 0; 2954 2955 size_t functions_added = 0; 2956 const dw_offset_t function_die_offset = func.GetID(); 2957 DWARFDIE function_die = 2958 dwarf_cu->GetNonSkeletonUnit().GetDIE(function_die_offset); 2959 if (function_die) { 2960 ParseBlocksRecursive(*comp_unit, &func.GetBlock(false), function_die, 2961 LLDB_INVALID_ADDRESS, 0); 2962 } 2963 2964 return functions_added; 2965 } 2966 2967 size_t SymbolFileDWARF::ParseTypes(CompileUnit &comp_unit) { 2968 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 2969 size_t types_added = 0; 2970 DWARFUnit *dwarf_cu = GetDWARFCompileUnit(&comp_unit); 2971 if (dwarf_cu) { 2972 DWARFDIE dwarf_cu_die = dwarf_cu->DIE(); 2973 if (dwarf_cu_die && dwarf_cu_die.HasChildren()) { 2974 SymbolContext sc; 2975 sc.comp_unit = &comp_unit; 2976 types_added = ParseTypes(sc, dwarf_cu_die.GetFirstChild(), true, true); 2977 } 2978 } 2979 2980 return types_added; 2981 } 2982 2983 size_t SymbolFileDWARF::ParseVariablesForContext(const SymbolContext &sc) { 2984 std::lock_guard<std::recursive_mutex> guard(GetModuleMutex()); 2985 if (sc.comp_unit != nullptr) { 2986 if (sc.function) { 2987 DWARFDIE function_die = GetDIE(sc.function->GetID()); 2988 2989 const dw_addr_t func_lo_pc = function_die.GetAttributeValueAsAddress( 2990 DW_AT_low_pc, LLDB_INVALID_ADDRESS); 2991 if (func_lo_pc != LLDB_INVALID_ADDRESS) { 2992 const size_t num_variables = ParseVariables( 2993 sc, function_die.GetFirstChild(), func_lo_pc, true, true); 2994 2995 // Let all blocks know they have parse all their variables 2996 sc.function->GetBlock(false).SetDidParseVariables(true, true); 2997 return num_variables; 2998 } 2999 } else if (sc.comp_unit) { 3000 DWARFUnit *dwarf_cu = DebugInfo().GetUnitAtIndex(sc.comp_unit->GetID()); 3001 3002 if (dwarf_cu == nullptr) 3003 return 0; 3004 3005 uint32_t vars_added = 0; 3006 VariableListSP variables(sc.comp_unit->GetVariableList(false)); 3007 3008 if (variables.get() == nullptr) { 3009 variables = std::make_shared<VariableList>(); 3010 sc.comp_unit->SetVariableList(variables); 3011 3012 m_index->GetGlobalVariables( 3013 dwarf_cu->GetNonSkeletonUnit(), [&](DWARFDIE die) { 3014 VariableSP var_sp( 3015 ParseVariableDIE(sc, die, LLDB_INVALID_ADDRESS)); 3016 if (var_sp) { 3017 variables->AddVariableIfUnique(var_sp); 3018 ++vars_added; 3019 } 3020 return true; 3021 }); 3022 } 3023 return vars_added; 3024 } 3025 } 3026 return 0; 3027 } 3028 3029 VariableSP SymbolFileDWARF::ParseVariableDIE(const SymbolContext &sc, 3030 const DWARFDIE &die, 3031 const lldb::addr_t func_low_pc) { 3032 if (die.GetDWARF() != this) 3033 return die.GetDWARF()->ParseVariableDIE(sc, die, func_low_pc); 3034 3035 VariableSP var_sp; 3036 if (!die) 3037 return var_sp; 3038 3039 var_sp = GetDIEToVariable()[die.GetDIE()]; 3040 if (var_sp) 3041 return var_sp; // Already been parsed! 3042 3043 const dw_tag_t tag = die.Tag(); 3044 ModuleSP module = GetObjectFile()->GetModule(); 3045 3046 if ((tag == DW_TAG_variable) || (tag == DW_TAG_constant) || 3047 (tag == DW_TAG_formal_parameter && sc.function)) { 3048 DWARFAttributes attributes; 3049 const size_t num_attributes = die.GetAttributes(attributes); 3050 DWARFDIE spec_die; 3051 if (num_attributes > 0) { 3052 const char *name = nullptr; 3053 const char *mangled = nullptr; 3054 Declaration decl; 3055 uint32_t i; 3056 DWARFFormValue type_die_form; 3057 DWARFExpression location; 3058 bool is_external = false; 3059 bool is_artificial = false; 3060 bool location_is_const_value_data = false; 3061 bool has_explicit_location = false; 3062 DWARFFormValue const_value; 3063 Variable::RangeList scope_ranges; 3064 // AccessType accessibility = eAccessNone; 3065 3066 for (i = 0; i < num_attributes; ++i) { 3067 dw_attr_t attr = attributes.AttributeAtIndex(i); 3068 DWARFFormValue form_value; 3069 3070 if (attributes.ExtractFormValueAtIndex(i, form_value)) { 3071 switch (attr) { 3072 case DW_AT_decl_file: 3073 decl.SetFile(sc.comp_unit->GetSupportFiles().GetFileSpecAtIndex( 3074 form_value.Unsigned())); 3075 break; 3076 case DW_AT_decl_line: 3077 decl.SetLine(form_value.Unsigned()); 3078 break; 3079 case DW_AT_decl_column: 3080 decl.SetColumn(form_value.Unsigned()); 3081 break; 3082 case DW_AT_name: 3083 name = form_value.AsCString(); 3084 break; 3085 case DW_AT_linkage_name: 3086 case DW_AT_MIPS_linkage_name: 3087 mangled = form_value.AsCString(); 3088 break; 3089 case DW_AT_type: 3090 type_die_form = form_value; 3091 break; 3092 case DW_AT_external: 3093 is_external = form_value.Boolean(); 3094 break; 3095 case DW_AT_const_value: 3096 // If we have already found a DW_AT_location attribute, ignore this 3097 // attribute. 3098 if (!has_explicit_location) { 3099 location_is_const_value_data = true; 3100 // The constant value will be either a block, a data value or a 3101 // string. 3102 auto debug_info_data = die.GetData(); 3103 if (DWARFFormValue::IsBlockForm(form_value.Form())) { 3104 // Retrieve the value as a block expression. 3105 uint32_t block_offset = 3106 form_value.BlockData() - debug_info_data.GetDataStart(); 3107 uint32_t block_length = form_value.Unsigned(); 3108 location = DWARFExpression( 3109 module, 3110 DataExtractor(debug_info_data, block_offset, block_length), 3111 die.GetCU()); 3112 } else if (DWARFFormValue::IsDataForm(form_value.Form())) { 3113 // Retrieve the value as a data expression. 3114 uint32_t data_offset = attributes.DIEOffsetAtIndex(i); 3115 if (auto data_length = form_value.GetFixedSize()) 3116 location = DWARFExpression( 3117 module, 3118 DataExtractor(debug_info_data, data_offset, *data_length), 3119 die.GetCU()); 3120 else { 3121 const uint8_t *data_pointer = form_value.BlockData(); 3122 if (data_pointer) { 3123 form_value.Unsigned(); 3124 } else if (DWARFFormValue::IsDataForm(form_value.Form())) { 3125 // we need to get the byte size of the type later after we 3126 // create the variable 3127 const_value = form_value; 3128 } 3129 } 3130 } else { 3131 // Retrieve the value as a string expression. 3132 if (form_value.Form() == DW_FORM_strp) { 3133 uint32_t data_offset = attributes.DIEOffsetAtIndex(i); 3134 if (auto data_length = form_value.GetFixedSize()) 3135 location = DWARFExpression(module, 3136 DataExtractor(debug_info_data, 3137 data_offset, 3138 *data_length), 3139 die.GetCU()); 3140 } else { 3141 const char *str = form_value.AsCString(); 3142 uint32_t string_offset = 3143 str - (const char *)debug_info_data.GetDataStart(); 3144 uint32_t string_length = strlen(str) + 1; 3145 location = DWARFExpression(module, 3146 DataExtractor(debug_info_data, 3147 string_offset, 3148 string_length), 3149 die.GetCU()); 3150 } 3151 } 3152 } 3153 break; 3154 case DW_AT_location: { 3155 location_is_const_value_data = false; 3156 has_explicit_location = true; 3157 if (DWARFFormValue::IsBlockForm(form_value.Form())) { 3158 auto data = die.GetData(); 3159 3160 uint32_t block_offset = 3161 form_value.BlockData() - data.GetDataStart(); 3162 uint32_t block_length = form_value.Unsigned(); 3163 location = DWARFExpression( 3164 module, DataExtractor(data, block_offset, block_length), 3165 die.GetCU()); 3166 } else { 3167 DataExtractor data = die.GetCU()->GetLocationData(); 3168 dw_offset_t offset = form_value.Unsigned(); 3169 if (form_value.Form() == DW_FORM_loclistx) 3170 offset = die.GetCU()->GetLoclistOffset(offset).getValueOr(-1); 3171 if (data.ValidOffset(offset)) { 3172 data = DataExtractor(data, offset, data.GetByteSize() - offset); 3173 location = DWARFExpression(module, data, die.GetCU()); 3174 assert(func_low_pc != LLDB_INVALID_ADDRESS); 3175 location.SetLocationListAddresses( 3176 attributes.CompileUnitAtIndex(i)->GetBaseAddress(), 3177 func_low_pc); 3178 } 3179 } 3180 } break; 3181 case DW_AT_specification: 3182 spec_die = form_value.Reference(); 3183 break; 3184 case DW_AT_start_scope: 3185 // TODO: Implement this. 3186 break; 3187 case DW_AT_artificial: 3188 is_artificial = form_value.Boolean(); 3189 break; 3190 case DW_AT_accessibility: 3191 break; // accessibility = 3192 // DW_ACCESS_to_AccessType(form_value.Unsigned()); break; 3193 case DW_AT_declaration: 3194 case DW_AT_description: 3195 case DW_AT_endianity: 3196 case DW_AT_segment: 3197 case DW_AT_visibility: 3198 default: 3199 case DW_AT_abstract_origin: 3200 case DW_AT_sibling: 3201 break; 3202 } 3203 } 3204 } 3205 3206 const DWARFDIE parent_context_die = GetDeclContextDIEContainingDIE(die); 3207 const dw_tag_t parent_tag = die.GetParent().Tag(); 3208 bool is_static_member = 3209 (parent_tag == DW_TAG_compile_unit || 3210 parent_tag == DW_TAG_partial_unit) && 3211 (parent_context_die.Tag() == DW_TAG_class_type || 3212 parent_context_die.Tag() == DW_TAG_structure_type); 3213 3214 ValueType scope = eValueTypeInvalid; 3215 3216 const DWARFDIE sc_parent_die = GetParentSymbolContextDIE(die); 3217 SymbolContextScope *symbol_context_scope = nullptr; 3218 3219 bool has_explicit_mangled = mangled != nullptr; 3220 if (!mangled) { 3221 // LLDB relies on the mangled name (DW_TAG_linkage_name or 3222 // DW_AT_MIPS_linkage_name) to generate fully qualified names 3223 // of global variables with commands like "frame var j". For 3224 // example, if j were an int variable holding a value 4 and 3225 // declared in a namespace B which in turn is contained in a 3226 // namespace A, the command "frame var j" returns 3227 // "(int) A::B::j = 4". 3228 // If the compiler does not emit a linkage name, we should be 3229 // able to generate a fully qualified name from the 3230 // declaration context. 3231 if ((parent_tag == DW_TAG_compile_unit || 3232 parent_tag == DW_TAG_partial_unit) && 3233 Language::LanguageIsCPlusPlus(GetLanguage(*die.GetCU()))) 3234 mangled = GetDWARFDeclContext(die) 3235 .GetQualifiedNameAsConstString() 3236 .GetCString(); 3237 } 3238 3239 if (tag == DW_TAG_formal_parameter) 3240 scope = eValueTypeVariableArgument; 3241 else { 3242 // DWARF doesn't specify if a DW_TAG_variable is a local, global 3243 // or static variable, so we have to do a little digging: 3244 // 1) DW_AT_linkage_name implies static lifetime (but may be missing) 3245 // 2) An empty DW_AT_location is an (optimized-out) static lifetime var. 3246 // 3) DW_AT_location containing a DW_OP_addr implies static lifetime. 3247 // Clang likes to combine small global variables into the same symbol 3248 // with locations like: DW_OP_addr(0x1000), DW_OP_constu(2), DW_OP_plus 3249 // so we need to look through the whole expression. 3250 bool is_static_lifetime = 3251 has_explicit_mangled || 3252 (has_explicit_location && !location.IsValid()); 3253 // Check if the location has a DW_OP_addr with any address value... 3254 lldb::addr_t location_DW_OP_addr = LLDB_INVALID_ADDRESS; 3255 if (!location_is_const_value_data) { 3256 bool op_error = false; 3257 location_DW_OP_addr = location.GetLocation_DW_OP_addr(0, op_error); 3258 if (op_error) { 3259 StreamString strm; 3260 location.DumpLocationForAddress(&strm, eDescriptionLevelFull, 0, 0, 3261 nullptr); 3262 GetObjectFile()->GetModule()->ReportError( 3263 "0x%8.8x: %s has an invalid location: %s", die.GetOffset(), 3264 die.GetTagAsCString(), strm.GetData()); 3265 } 3266 if (location_DW_OP_addr != LLDB_INVALID_ADDRESS) 3267 is_static_lifetime = true; 3268 } 3269 SymbolFileDWARFDebugMap *debug_map_symfile = GetDebugMapSymfile(); 3270 if (debug_map_symfile) 3271 // Set the module of the expression to the linked module 3272 // instead of the oject file so the relocated address can be 3273 // found there. 3274 location.SetModule(debug_map_symfile->GetObjectFile()->GetModule()); 3275 3276 if (is_static_lifetime) { 3277 if (is_external) 3278 scope = eValueTypeVariableGlobal; 3279 else 3280 scope = eValueTypeVariableStatic; 3281 3282 if (debug_map_symfile) { 3283 // When leaving the DWARF in the .o files on darwin, when we have a 3284 // global variable that wasn't initialized, the .o file might not 3285 // have allocated a virtual address for the global variable. In 3286 // this case it will have created a symbol for the global variable 3287 // that is undefined/data and external and the value will be the 3288 // byte size of the variable. When we do the address map in 3289 // SymbolFileDWARFDebugMap we rely on having an address, we need to 3290 // do some magic here so we can get the correct address for our 3291 // global variable. The address for all of these entries will be 3292 // zero, and there will be an undefined symbol in this object file, 3293 // and the executable will have a matching symbol with a good 3294 // address. So here we dig up the correct address and replace it in 3295 // the location for the variable, and set the variable's symbol 3296 // context scope to be that of the main executable so the file 3297 // address will resolve correctly. 3298 bool linked_oso_file_addr = false; 3299 if (is_external && location_DW_OP_addr == 0) { 3300 // we have a possible uninitialized extern global 3301 ConstString const_name(mangled ? mangled : name); 3302 ObjectFile *debug_map_objfile = 3303 debug_map_symfile->GetObjectFile(); 3304 if (debug_map_objfile) { 3305 Symtab *debug_map_symtab = debug_map_objfile->GetSymtab(); 3306 if (debug_map_symtab) { 3307 Symbol *exe_symbol = 3308 debug_map_symtab->FindFirstSymbolWithNameAndType( 3309 const_name, eSymbolTypeData, Symtab::eDebugYes, 3310 Symtab::eVisibilityExtern); 3311 if (exe_symbol) { 3312 if (exe_symbol->ValueIsAddress()) { 3313 const addr_t exe_file_addr = 3314 exe_symbol->GetAddressRef().GetFileAddress(); 3315 if (exe_file_addr != LLDB_INVALID_ADDRESS) { 3316 if (location.Update_DW_OP_addr(exe_file_addr)) { 3317 linked_oso_file_addr = true; 3318 symbol_context_scope = exe_symbol; 3319 } 3320 } 3321 } 3322 } 3323 } 3324 } 3325 } 3326 3327 if (!linked_oso_file_addr) { 3328 // The DW_OP_addr is not zero, but it contains a .o file address 3329 // which needs to be linked up correctly. 3330 const lldb::addr_t exe_file_addr = 3331 debug_map_symfile->LinkOSOFileAddress(this, 3332 location_DW_OP_addr); 3333 if (exe_file_addr != LLDB_INVALID_ADDRESS) { 3334 // Update the file address for this variable 3335 location.Update_DW_OP_addr(exe_file_addr); 3336 } else { 3337 // Variable didn't make it into the final executable 3338 return var_sp; 3339 } 3340 } 3341 } 3342 } else { 3343 if (location_is_const_value_data && 3344 die.GetDIE()->IsGlobalOrStaticScopeVariable()) 3345 scope = eValueTypeVariableStatic; 3346 else { 3347 scope = eValueTypeVariableLocal; 3348 if (debug_map_symfile) { 3349 // We need to check for TLS addresses that we need to fixup 3350 if (location.ContainsThreadLocalStorage()) { 3351 location.LinkThreadLocalStorage( 3352 debug_map_symfile->GetObjectFile()->GetModule(), 3353 [this, debug_map_symfile]( 3354 lldb::addr_t unlinked_file_addr) -> lldb::addr_t { 3355 return debug_map_symfile->LinkOSOFileAddress( 3356 this, unlinked_file_addr); 3357 }); 3358 scope = eValueTypeVariableThreadLocal; 3359 } 3360 } 3361 } 3362 } 3363 } 3364 3365 if (symbol_context_scope == nullptr) { 3366 switch (parent_tag) { 3367 case DW_TAG_subprogram: 3368 case DW_TAG_inlined_subroutine: 3369 case DW_TAG_lexical_block: 3370 if (sc.function) { 3371 symbol_context_scope = sc.function->GetBlock(true).FindBlockByID( 3372 sc_parent_die.GetID()); 3373 if (symbol_context_scope == nullptr) 3374 symbol_context_scope = sc.function; 3375 } 3376 break; 3377 3378 default: 3379 symbol_context_scope = sc.comp_unit; 3380 break; 3381 } 3382 } 3383 3384 if (symbol_context_scope) { 3385 SymbolFileTypeSP type_sp( 3386 new SymbolFileType(*this, GetUID(type_die_form.Reference()))); 3387 3388 if (const_value.Form() && type_sp && type_sp->GetType()) 3389 location.UpdateValue(const_value.Unsigned(), 3390 type_sp->GetType()->GetByteSize().getValueOr(0), 3391 die.GetCU()->GetAddressByteSize()); 3392 3393 var_sp = std::make_shared<Variable>( 3394 die.GetID(), name, mangled, type_sp, scope, symbol_context_scope, 3395 scope_ranges, &decl, location, is_external, is_artificial, 3396 is_static_member); 3397 3398 var_sp->SetLocationIsConstantValueData(location_is_const_value_data); 3399 } else { 3400 // Not ready to parse this variable yet. It might be a global or static 3401 // variable that is in a function scope and the function in the symbol 3402 // context wasn't filled in yet 3403 return var_sp; 3404 } 3405 } 3406 // Cache var_sp even if NULL (the variable was just a specification or was 3407 // missing vital information to be able to be displayed in the debugger 3408 // (missing location due to optimization, etc)) so we don't re-parse this 3409 // DIE over and over later... 3410 GetDIEToVariable()[die.GetDIE()] = var_sp; 3411 if (spec_die) 3412 GetDIEToVariable()[spec_die.GetDIE()] = var_sp; 3413 } 3414 return var_sp; 3415 } 3416 3417 DWARFDIE 3418 SymbolFileDWARF::FindBlockContainingSpecification( 3419 const DIERef &func_die_ref, dw_offset_t spec_block_die_offset) { 3420 // Give the concrete function die specified by "func_die_offset", find the 3421 // concrete block whose DW_AT_specification or DW_AT_abstract_origin points 3422 // to "spec_block_die_offset" 3423 return FindBlockContainingSpecification(DebugInfo().GetDIE(func_die_ref), 3424 spec_block_die_offset); 3425 } 3426 3427 DWARFDIE 3428 SymbolFileDWARF::FindBlockContainingSpecification( 3429 const DWARFDIE &die, dw_offset_t spec_block_die_offset) { 3430 if (die) { 3431 switch (die.Tag()) { 3432 case DW_TAG_subprogram: 3433 case DW_TAG_inlined_subroutine: 3434 case DW_TAG_lexical_block: { 3435 if (die.GetReferencedDIE(DW_AT_specification).GetOffset() == 3436 spec_block_die_offset) 3437 return die; 3438 3439 if (die.GetReferencedDIE(DW_AT_abstract_origin).GetOffset() == 3440 spec_block_die_offset) 3441 return die; 3442 } break; 3443 default: 3444 break; 3445 } 3446 3447 // Give the concrete function die specified by "func_die_offset", find the 3448 // concrete block whose DW_AT_specification or DW_AT_abstract_origin points 3449 // to "spec_block_die_offset" 3450 for (DWARFDIE child_die = die.GetFirstChild(); child_die; 3451 child_die = child_die.GetSibling()) { 3452 DWARFDIE result_die = 3453 FindBlockContainingSpecification(child_die, spec_block_die_offset); 3454 if (result_die) 3455 return result_die; 3456 } 3457 } 3458 3459 return DWARFDIE(); 3460 } 3461 3462 size_t SymbolFileDWARF::ParseVariables(const SymbolContext &sc, 3463 const DWARFDIE &orig_die, 3464 const lldb::addr_t func_low_pc, 3465 bool parse_siblings, bool parse_children, 3466 VariableList *cc_variable_list) { 3467 if (!orig_die) 3468 return 0; 3469 3470 VariableListSP variable_list_sp; 3471 3472 size_t vars_added = 0; 3473 DWARFDIE die = orig_die; 3474 while (die) { 3475 dw_tag_t tag = die.Tag(); 3476 3477 // Check to see if we have already parsed this variable or constant? 3478 VariableSP var_sp = GetDIEToVariable()[die.GetDIE()]; 3479 if (var_sp) { 3480 if (cc_variable_list) 3481 cc_variable_list->AddVariableIfUnique(var_sp); 3482 } else { 3483 // We haven't already parsed it, lets do that now. 3484 if ((tag == DW_TAG_variable) || (tag == DW_TAG_constant) || 3485 (tag == DW_TAG_formal_parameter && sc.function)) { 3486 if (variable_list_sp.get() == nullptr) { 3487 DWARFDIE sc_parent_die = GetParentSymbolContextDIE(orig_die); 3488 dw_tag_t parent_tag = sc_parent_die.Tag(); 3489 switch (parent_tag) { 3490 case DW_TAG_compile_unit: 3491 case DW_TAG_partial_unit: 3492 if (sc.comp_unit != nullptr) { 3493 variable_list_sp = sc.comp_unit->GetVariableList(false); 3494 if (variable_list_sp.get() == nullptr) { 3495 variable_list_sp = std::make_shared<VariableList>(); 3496 } 3497 } else { 3498 GetObjectFile()->GetModule()->ReportError( 3499 "parent 0x%8.8" PRIx64 " %s with no valid compile unit in " 3500 "symbol context for 0x%8.8" PRIx64 " %s.\n", 3501 sc_parent_die.GetID(), sc_parent_die.GetTagAsCString(), 3502 orig_die.GetID(), orig_die.GetTagAsCString()); 3503 } 3504 break; 3505 3506 case DW_TAG_subprogram: 3507 case DW_TAG_inlined_subroutine: 3508 case DW_TAG_lexical_block: 3509 if (sc.function != nullptr) { 3510 // Check to see if we already have parsed the variables for the 3511 // given scope 3512 3513 Block *block = sc.function->GetBlock(true).FindBlockByID( 3514 sc_parent_die.GetID()); 3515 if (block == nullptr) { 3516 // This must be a specification or abstract origin with a 3517 // concrete block counterpart in the current function. We need 3518 // to find the concrete block so we can correctly add the 3519 // variable to it 3520 const DWARFDIE concrete_block_die = 3521 FindBlockContainingSpecification( 3522 GetDIE(sc.function->GetID()), 3523 sc_parent_die.GetOffset()); 3524 if (concrete_block_die) 3525 block = sc.function->GetBlock(true).FindBlockByID( 3526 concrete_block_die.GetID()); 3527 } 3528 3529 if (block != nullptr) { 3530 const bool can_create = false; 3531 variable_list_sp = block->GetBlockVariableList(can_create); 3532 if (variable_list_sp.get() == nullptr) { 3533 variable_list_sp = std::make_shared<VariableList>(); 3534 block->SetVariableList(variable_list_sp); 3535 } 3536 } 3537 } 3538 break; 3539 3540 default: 3541 GetObjectFile()->GetModule()->ReportError( 3542 "didn't find appropriate parent DIE for variable list for " 3543 "0x%8.8" PRIx64 " %s.\n", 3544 orig_die.GetID(), orig_die.GetTagAsCString()); 3545 break; 3546 } 3547 } 3548 3549 if (variable_list_sp) { 3550 VariableSP var_sp(ParseVariableDIE(sc, die, func_low_pc)); 3551 if (var_sp) { 3552 variable_list_sp->AddVariableIfUnique(var_sp); 3553 if (cc_variable_list) 3554 cc_variable_list->AddVariableIfUnique(var_sp); 3555 ++vars_added; 3556 } 3557 } 3558 } 3559 } 3560 3561 bool skip_children = (sc.function == nullptr && tag == DW_TAG_subprogram); 3562 3563 if (!skip_children && parse_children && die.HasChildren()) { 3564 vars_added += ParseVariables(sc, die.GetFirstChild(), func_low_pc, true, 3565 true, cc_variable_list); 3566 } 3567 3568 if (parse_siblings) 3569 die = die.GetSibling(); 3570 else 3571 die.Clear(); 3572 } 3573 return vars_added; 3574 } 3575 3576 /// Collect call site parameters in a DW_TAG_call_site DIE. 3577 static CallSiteParameterArray 3578 CollectCallSiteParameters(ModuleSP module, DWARFDIE call_site_die) { 3579 CallSiteParameterArray parameters; 3580 for (DWARFDIE child = call_site_die.GetFirstChild(); child.IsValid(); 3581 child = child.GetSibling()) { 3582 if (child.Tag() != DW_TAG_call_site_parameter) 3583 continue; 3584 3585 llvm::Optional<DWARFExpression> LocationInCallee; 3586 llvm::Optional<DWARFExpression> LocationInCaller; 3587 3588 DWARFAttributes attributes; 3589 const size_t num_attributes = child.GetAttributes(attributes); 3590 3591 // Parse the location at index \p attr_index within this call site parameter 3592 // DIE, or return None on failure. 3593 auto parse_simple_location = 3594 [&](int attr_index) -> llvm::Optional<DWARFExpression> { 3595 DWARFFormValue form_value; 3596 if (!attributes.ExtractFormValueAtIndex(attr_index, form_value)) 3597 return {}; 3598 if (!DWARFFormValue::IsBlockForm(form_value.Form())) 3599 return {}; 3600 auto data = child.GetData(); 3601 uint32_t block_offset = form_value.BlockData() - data.GetDataStart(); 3602 uint32_t block_length = form_value.Unsigned(); 3603 return DWARFExpression(module, 3604 DataExtractor(data, block_offset, block_length), 3605 child.GetCU()); 3606 }; 3607 3608 for (size_t i = 0; i < num_attributes; ++i) { 3609 dw_attr_t attr = attributes.AttributeAtIndex(i); 3610 if (attr == DW_AT_location) 3611 LocationInCallee = parse_simple_location(i); 3612 if (attr == DW_AT_call_value) 3613 LocationInCaller = parse_simple_location(i); 3614 } 3615 3616 if (LocationInCallee && LocationInCaller) { 3617 CallSiteParameter param = {*LocationInCallee, *LocationInCaller}; 3618 parameters.push_back(param); 3619 } 3620 } 3621 return parameters; 3622 } 3623 3624 /// Collect call graph edges present in a function DIE. 3625 std::vector<std::unique_ptr<lldb_private::CallEdge>> 3626 SymbolFileDWARF::CollectCallEdges(ModuleSP module, DWARFDIE function_die) { 3627 // Check if the function has a supported call site-related attribute. 3628 // TODO: In the future it may be worthwhile to support call_all_source_calls. 3629 uint64_t has_call_edges = 3630 function_die.GetAttributeValueAsUnsigned(DW_AT_call_all_calls, 0); 3631 if (!has_call_edges) 3632 return {}; 3633 3634 Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_STEP)); 3635 LLDB_LOG(log, "CollectCallEdges: Found call site info in {0}", 3636 function_die.GetPubname()); 3637 3638 // Scan the DIE for TAG_call_site entries. 3639 // TODO: A recursive scan of all blocks in the subprogram is needed in order 3640 // to be DWARF5-compliant. This may need to be done lazily to be performant. 3641 // For now, assume that all entries are nested directly under the subprogram 3642 // (this is the kind of DWARF LLVM produces) and parse them eagerly. 3643 std::vector<std::unique_ptr<CallEdge>> call_edges; 3644 for (DWARFDIE child = function_die.GetFirstChild(); child.IsValid(); 3645 child = child.GetSibling()) { 3646 if (child.Tag() != DW_TAG_call_site) 3647 continue; 3648 3649 llvm::Optional<DWARFDIE> call_origin; 3650 llvm::Optional<DWARFExpression> call_target; 3651 addr_t return_pc = LLDB_INVALID_ADDRESS; 3652 addr_t call_inst_pc = LLDB_INVALID_ADDRESS; 3653 3654 DWARFAttributes attributes; 3655 const size_t num_attributes = child.GetAttributes(attributes); 3656 for (size_t i = 0; i < num_attributes; ++i) { 3657 DWARFFormValue form_value; 3658 if (!attributes.ExtractFormValueAtIndex(i, form_value)) { 3659 LLDB_LOG(log, "CollectCallEdges: Could not extract TAG_call_site form"); 3660 break; 3661 } 3662 3663 dw_attr_t attr = attributes.AttributeAtIndex(i); 3664 3665 // Extract DW_AT_call_origin (the call target's DIE). 3666 if (attr == DW_AT_call_origin) { 3667 call_origin = form_value.Reference(); 3668 if (!call_origin->IsValid()) { 3669 LLDB_LOG(log, "CollectCallEdges: Invalid call origin in {0}", 3670 function_die.GetPubname()); 3671 break; 3672 } 3673 } 3674 3675 // Extract DW_AT_call_return_pc (the PC the call returns to) if it's 3676 // available. It should only ever be unavailable for tail call edges, in 3677 // which case use LLDB_INVALID_ADDRESS. 3678 if (attr == DW_AT_call_return_pc) 3679 return_pc = form_value.Address(); 3680 3681 // Extract DW_AT_call_pc (the PC at the call/branch instruction). It 3682 // should only ever be unavailable for non-tail calls, in which case use 3683 // LLDB_INVALID_ADDRESS. 3684 if (attr == DW_AT_call_pc) 3685 call_inst_pc = form_value.Address(); 3686 3687 // Extract DW_AT_call_target (the location of the address of the indirect 3688 // call). 3689 if (attr == DW_AT_call_target) { 3690 if (!DWARFFormValue::IsBlockForm(form_value.Form())) { 3691 LLDB_LOG(log, 3692 "CollectCallEdges: AT_call_target does not have block form"); 3693 break; 3694 } 3695 3696 auto data = child.GetData(); 3697 uint32_t block_offset = form_value.BlockData() - data.GetDataStart(); 3698 uint32_t block_length = form_value.Unsigned(); 3699 call_target = DWARFExpression( 3700 module, DataExtractor(data, block_offset, block_length), 3701 child.GetCU()); 3702 } 3703 } 3704 if (!call_origin && !call_target) { 3705 LLDB_LOG(log, "CollectCallEdges: call site without any call target"); 3706 continue; 3707 } 3708 3709 // Adjust any PC forms. It needs to be fixed up if the main executable 3710 // contains a debug map (i.e. pointers to object files), because we need a 3711 // file address relative to the executable's text section. 3712 return_pc = FixupAddress(return_pc); 3713 call_inst_pc = FixupAddress(call_inst_pc); 3714 3715 // Extract call site parameters. 3716 CallSiteParameterArray parameters = 3717 CollectCallSiteParameters(module, child); 3718 3719 std::unique_ptr<CallEdge> edge; 3720 if (call_origin) { 3721 LLDB_LOG(log, 3722 "CollectCallEdges: Found call origin: {0} (retn-PC: {1:x}) " 3723 "(call-PC: {2:x})", 3724 call_origin->GetPubname(), return_pc, call_inst_pc); 3725 edge = std::make_unique<DirectCallEdge>(call_origin->GetMangledName(), 3726 return_pc, call_inst_pc, 3727 std::move(parameters)); 3728 } else { 3729 if (log) { 3730 StreamString call_target_desc; 3731 call_target->GetDescription(&call_target_desc, eDescriptionLevelBrief, 3732 LLDB_INVALID_ADDRESS, nullptr); 3733 LLDB_LOG(log, "CollectCallEdges: Found indirect call target: {0}", 3734 call_target_desc.GetString()); 3735 } 3736 edge = std::make_unique<IndirectCallEdge>( 3737 *call_target, return_pc, call_inst_pc, std::move(parameters)); 3738 } 3739 3740 if (log && parameters.size()) { 3741 for (const CallSiteParameter ¶m : parameters) { 3742 StreamString callee_loc_desc, caller_loc_desc; 3743 param.LocationInCallee.GetDescription(&callee_loc_desc, 3744 eDescriptionLevelBrief, 3745 LLDB_INVALID_ADDRESS, nullptr); 3746 param.LocationInCaller.GetDescription(&caller_loc_desc, 3747 eDescriptionLevelBrief, 3748 LLDB_INVALID_ADDRESS, nullptr); 3749 LLDB_LOG(log, "CollectCallEdges: \tparam: {0} => {1}", 3750 callee_loc_desc.GetString(), caller_loc_desc.GetString()); 3751 } 3752 } 3753 3754 call_edges.push_back(std::move(edge)); 3755 } 3756 return call_edges; 3757 } 3758 3759 std::vector<std::unique_ptr<lldb_private::CallEdge>> 3760 SymbolFileDWARF::ParseCallEdgesInFunction(UserID func_id) { 3761 DWARFDIE func_die = GetDIE(func_id.GetID()); 3762 if (func_die.IsValid()) 3763 return CollectCallEdges(GetObjectFile()->GetModule(), func_die); 3764 return {}; 3765 } 3766 3767 // PluginInterface protocol 3768 ConstString SymbolFileDWARF::GetPluginName() { return GetPluginNameStatic(); } 3769 3770 uint32_t SymbolFileDWARF::GetPluginVersion() { return 1; } 3771 3772 void SymbolFileDWARF::Dump(lldb_private::Stream &s) { 3773 SymbolFile::Dump(s); 3774 m_index->Dump(s); 3775 } 3776 3777 void SymbolFileDWARF::DumpClangAST(Stream &s) { 3778 auto ts_or_err = GetTypeSystemForLanguage(eLanguageTypeC_plus_plus); 3779 if (!ts_or_err) 3780 return; 3781 TypeSystemClang *clang = 3782 llvm::dyn_cast_or_null<TypeSystemClang>(&ts_or_err.get()); 3783 if (!clang) 3784 return; 3785 clang->Dump(s); 3786 } 3787 3788 SymbolFileDWARFDebugMap *SymbolFileDWARF::GetDebugMapSymfile() { 3789 if (m_debug_map_symfile == nullptr && !m_debug_map_module_wp.expired()) { 3790 lldb::ModuleSP module_sp(m_debug_map_module_wp.lock()); 3791 if (module_sp) { 3792 m_debug_map_symfile = 3793 static_cast<SymbolFileDWARFDebugMap *>(module_sp->GetSymbolFile()); 3794 } 3795 } 3796 return m_debug_map_symfile; 3797 } 3798 3799 const std::shared_ptr<SymbolFileDWARFDwo> &SymbolFileDWARF::GetDwpSymbolFile() { 3800 llvm::call_once(m_dwp_symfile_once_flag, [this]() { 3801 ModuleSpec module_spec; 3802 module_spec.GetFileSpec() = m_objfile_sp->GetFileSpec(); 3803 module_spec.GetSymbolFileSpec() = 3804 FileSpec(m_objfile_sp->GetModule()->GetFileSpec().GetPath() + ".dwp"); 3805 3806 FileSpecList search_paths = Target::GetDefaultDebugFileSearchPaths(); 3807 FileSpec dwp_filespec = 3808 Symbols::LocateExecutableSymbolFile(module_spec, search_paths); 3809 if (FileSystem::Instance().Exists(dwp_filespec)) { 3810 DataBufferSP dwp_file_data_sp; 3811 lldb::offset_t dwp_file_data_offset = 0; 3812 ObjectFileSP dwp_obj_file = ObjectFile::FindPlugin( 3813 GetObjectFile()->GetModule(), &dwp_filespec, 0, 3814 FileSystem::Instance().GetByteSize(dwp_filespec), dwp_file_data_sp, 3815 dwp_file_data_offset); 3816 if (!dwp_obj_file) 3817 return; 3818 m_dwp_symfile = 3819 std::make_shared<SymbolFileDWARFDwo>(*this, dwp_obj_file, 0x3fffffff); 3820 } 3821 }); 3822 return m_dwp_symfile; 3823 } 3824 3825 llvm::Expected<TypeSystem &> SymbolFileDWARF::GetTypeSystem(DWARFUnit &unit) { 3826 return unit.GetSymbolFileDWARF().GetTypeSystemForLanguage(GetLanguage(unit)); 3827 } 3828 3829 DWARFASTParser *SymbolFileDWARF::GetDWARFParser(DWARFUnit &unit) { 3830 auto type_system_or_err = GetTypeSystem(unit); 3831 if (auto err = type_system_or_err.takeError()) { 3832 LLDB_LOG_ERROR(lldb_private::GetLogIfAnyCategoriesSet(LIBLLDB_LOG_SYMBOLS), 3833 std::move(err), "Unable to get DWARFASTParser"); 3834 return nullptr; 3835 } 3836 return type_system_or_err->GetDWARFParser(); 3837 } 3838 3839 CompilerDecl SymbolFileDWARF::GetDecl(const DWARFDIE &die) { 3840 if (DWARFASTParser *dwarf_ast = GetDWARFParser(*die.GetCU())) 3841 return dwarf_ast->GetDeclForUIDFromDWARF(die); 3842 return CompilerDecl(); 3843 } 3844 3845 CompilerDeclContext SymbolFileDWARF::GetDeclContext(const DWARFDIE &die) { 3846 if (DWARFASTParser *dwarf_ast = GetDWARFParser(*die.GetCU())) 3847 return dwarf_ast->GetDeclContextForUIDFromDWARF(die); 3848 return CompilerDeclContext(); 3849 } 3850 3851 CompilerDeclContext 3852 SymbolFileDWARF::GetContainingDeclContext(const DWARFDIE &die) { 3853 if (DWARFASTParser *dwarf_ast = GetDWARFParser(*die.GetCU())) 3854 return dwarf_ast->GetDeclContextContainingUIDFromDWARF(die); 3855 return CompilerDeclContext(); 3856 } 3857 3858 DWARFDeclContext SymbolFileDWARF::GetDWARFDeclContext(const DWARFDIE &die) { 3859 if (!die.IsValid()) 3860 return {}; 3861 DWARFDeclContext dwarf_decl_ctx = 3862 die.GetDIE()->GetDWARFDeclContext(die.GetCU()); 3863 dwarf_decl_ctx.SetLanguage(GetLanguage(*die.GetCU())); 3864 return dwarf_decl_ctx; 3865 } 3866 3867 LanguageType SymbolFileDWARF::LanguageTypeFromDWARF(uint64_t val) { 3868 // Note: user languages between lo_user and hi_user must be handled 3869 // explicitly here. 3870 switch (val) { 3871 case DW_LANG_Mips_Assembler: 3872 return eLanguageTypeMipsAssembler; 3873 case DW_LANG_GOOGLE_RenderScript: 3874 return eLanguageTypeExtRenderScript; 3875 default: 3876 return static_cast<LanguageType>(val); 3877 } 3878 } 3879 3880 LanguageType SymbolFileDWARF::GetLanguage(DWARFUnit &unit) { 3881 return LanguageTypeFromDWARF(unit.GetDWARFLanguageType()); 3882 } 3883