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 = &section->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(&sect_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 &regex,
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 &regex,
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 &param : 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