xref: /freebsd-src/contrib/llvm-project/llvm/lib/DebugInfo/DWARF/DWARFContext.cpp (revision 4824e7fd18a1223177218d4aec1b3c6c5c4a444e)
1 //===- DWARFContext.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 "llvm/DebugInfo/DWARF/DWARFContext.h"
10 #include "llvm/ADT/STLExtras.h"
11 #include "llvm/ADT/SmallString.h"
12 #include "llvm/ADT/SmallVector.h"
13 #include "llvm/ADT/StringRef.h"
14 #include "llvm/ADT/StringSwitch.h"
15 #include "llvm/BinaryFormat/Dwarf.h"
16 #include "llvm/DebugInfo/DWARF/DWARFAcceleratorTable.h"
17 #include "llvm/DebugInfo/DWARF/DWARFCompileUnit.h"
18 #include "llvm/DebugInfo/DWARF/DWARFDebugAbbrev.h"
19 #include "llvm/DebugInfo/DWARF/DWARFDebugAddr.h"
20 #include "llvm/DebugInfo/DWARF/DWARFDebugArangeSet.h"
21 #include "llvm/DebugInfo/DWARF/DWARFDebugAranges.h"
22 #include "llvm/DebugInfo/DWARF/DWARFDebugFrame.h"
23 #include "llvm/DebugInfo/DWARF/DWARFDebugLine.h"
24 #include "llvm/DebugInfo/DWARF/DWARFDebugLoc.h"
25 #include "llvm/DebugInfo/DWARF/DWARFDebugMacro.h"
26 #include "llvm/DebugInfo/DWARF/DWARFDebugPubTable.h"
27 #include "llvm/DebugInfo/DWARF/DWARFDebugRangeList.h"
28 #include "llvm/DebugInfo/DWARF/DWARFDebugRnglists.h"
29 #include "llvm/DebugInfo/DWARF/DWARFDie.h"
30 #include "llvm/DebugInfo/DWARF/DWARFFormValue.h"
31 #include "llvm/DebugInfo/DWARF/DWARFGdbIndex.h"
32 #include "llvm/DebugInfo/DWARF/DWARFSection.h"
33 #include "llvm/DebugInfo/DWARF/DWARFUnitIndex.h"
34 #include "llvm/DebugInfo/DWARF/DWARFVerifier.h"
35 #include "llvm/MC/MCRegisterInfo.h"
36 #include "llvm/MC/TargetRegistry.h"
37 #include "llvm/Object/Decompressor.h"
38 #include "llvm/Object/MachO.h"
39 #include "llvm/Object/ObjectFile.h"
40 #include "llvm/Object/RelocationResolver.h"
41 #include "llvm/Support/Casting.h"
42 #include "llvm/Support/DataExtractor.h"
43 #include "llvm/Support/Error.h"
44 #include "llvm/Support/Format.h"
45 #include "llvm/Support/LEB128.h"
46 #include "llvm/Support/MemoryBuffer.h"
47 #include "llvm/Support/Path.h"
48 #include "llvm/Support/raw_ostream.h"
49 #include <algorithm>
50 #include <cstdint>
51 #include <deque>
52 #include <map>
53 #include <string>
54 #include <utility>
55 #include <vector>
56 
57 using namespace llvm;
58 using namespace dwarf;
59 using namespace object;
60 
61 #define DEBUG_TYPE "dwarf"
62 
63 using DWARFLineTable = DWARFDebugLine::LineTable;
64 using FileLineInfoKind = DILineInfoSpecifier::FileLineInfoKind;
65 using FunctionNameKind = DILineInfoSpecifier::FunctionNameKind;
66 
67 DWARFContext::DWARFContext(std::unique_ptr<const DWARFObject> DObj,
68                            std::string DWPName,
69                            std::function<void(Error)> RecoverableErrorHandler,
70                            std::function<void(Error)> WarningHandler)
71     : DIContext(CK_DWARF), DWPName(std::move(DWPName)),
72       RecoverableErrorHandler(RecoverableErrorHandler),
73       WarningHandler(WarningHandler), DObj(std::move(DObj)) {}
74 
75 DWARFContext::~DWARFContext() = default;
76 
77 /// Dump the UUID load command.
78 static void dumpUUID(raw_ostream &OS, const ObjectFile &Obj) {
79   auto *MachO = dyn_cast<MachOObjectFile>(&Obj);
80   if (!MachO)
81     return;
82   for (auto LC : MachO->load_commands()) {
83     raw_ostream::uuid_t UUID;
84     if (LC.C.cmd == MachO::LC_UUID) {
85       if (LC.C.cmdsize < sizeof(UUID) + sizeof(LC.C)) {
86         OS << "error: UUID load command is too short.\n";
87         return;
88       }
89       OS << "UUID: ";
90       memcpy(&UUID, LC.Ptr+sizeof(LC.C), sizeof(UUID));
91       OS.write_uuid(UUID);
92       Triple T = MachO->getArchTriple();
93       OS << " (" << T.getArchName() << ')';
94       OS << ' ' << MachO->getFileName() << '\n';
95     }
96   }
97 }
98 
99 using ContributionCollection =
100     std::vector<Optional<StrOffsetsContributionDescriptor>>;
101 
102 // Collect all the contributions to the string offsets table from all units,
103 // sort them by their starting offsets and remove duplicates.
104 static ContributionCollection
105 collectContributionData(DWARFContext::unit_iterator_range Units) {
106   ContributionCollection Contributions;
107   for (const auto &U : Units)
108     if (const auto &C = U->getStringOffsetsTableContribution())
109       Contributions.push_back(C);
110   // Sort the contributions so that any invalid ones are placed at
111   // the start of the contributions vector. This way they are reported
112   // first.
113   llvm::sort(Contributions,
114              [](const Optional<StrOffsetsContributionDescriptor> &L,
115                 const Optional<StrOffsetsContributionDescriptor> &R) {
116                if (L && R)
117                  return L->Base < R->Base;
118                return R.hasValue();
119              });
120 
121   // Uniquify contributions, as it is possible that units (specifically
122   // type units in dwo or dwp files) share contributions. We don't want
123   // to report them more than once.
124   Contributions.erase(
125       std::unique(Contributions.begin(), Contributions.end(),
126                   [](const Optional<StrOffsetsContributionDescriptor> &L,
127                      const Optional<StrOffsetsContributionDescriptor> &R) {
128                     if (L && R)
129                       return L->Base == R->Base && L->Size == R->Size;
130                     return false;
131                   }),
132       Contributions.end());
133   return Contributions;
134 }
135 
136 // Dump a DWARF string offsets section. This may be a DWARF v5 formatted
137 // string offsets section, where each compile or type unit contributes a
138 // number of entries (string offsets), with each contribution preceded by
139 // a header containing size and version number. Alternatively, it may be a
140 // monolithic series of string offsets, as generated by the pre-DWARF v5
141 // implementation of split DWARF; however, in that case we still need to
142 // collect contributions of units because the size of the offsets (4 or 8
143 // bytes) depends on the format of the referencing unit (DWARF32 or DWARF64).
144 static void dumpStringOffsetsSection(raw_ostream &OS, DIDumpOptions DumpOpts,
145                                      StringRef SectionName,
146                                      const DWARFObject &Obj,
147                                      const DWARFSection &StringOffsetsSection,
148                                      StringRef StringSection,
149                                      DWARFContext::unit_iterator_range Units,
150                                      bool LittleEndian) {
151   auto Contributions = collectContributionData(Units);
152   DWARFDataExtractor StrOffsetExt(Obj, StringOffsetsSection, LittleEndian, 0);
153   DataExtractor StrData(StringSection, LittleEndian, 0);
154   uint64_t SectionSize = StringOffsetsSection.Data.size();
155   uint64_t Offset = 0;
156   for (auto &Contribution : Contributions) {
157     // Report an ill-formed contribution.
158     if (!Contribution) {
159       OS << "error: invalid contribution to string offsets table in section ."
160          << SectionName << ".\n";
161       return;
162     }
163 
164     dwarf::DwarfFormat Format = Contribution->getFormat();
165     int OffsetDumpWidth = 2 * dwarf::getDwarfOffsetByteSize(Format);
166     uint16_t Version = Contribution->getVersion();
167     uint64_t ContributionHeader = Contribution->Base;
168     // In DWARF v5 there is a contribution header that immediately precedes
169     // the string offsets base (the location we have previously retrieved from
170     // the CU DIE's DW_AT_str_offsets attribute). The header is located either
171     // 8 or 16 bytes before the base, depending on the contribution's format.
172     if (Version >= 5)
173       ContributionHeader -= Format == DWARF32 ? 8 : 16;
174 
175     // Detect overlapping contributions.
176     if (Offset > ContributionHeader) {
177       DumpOpts.RecoverableErrorHandler(createStringError(
178           errc::invalid_argument,
179           "overlapping contributions to string offsets table in section .%s.",
180           SectionName.data()));
181     }
182     // Report a gap in the table.
183     if (Offset < ContributionHeader) {
184       OS << format("0x%8.8" PRIx64 ": Gap, length = ", Offset);
185       OS << (ContributionHeader - Offset) << "\n";
186     }
187     OS << format("0x%8.8" PRIx64 ": ", ContributionHeader);
188     // In DWARF v5 the contribution size in the descriptor does not equal
189     // the originally encoded length (it does not contain the length of the
190     // version field and the padding, a total of 4 bytes). Add them back in
191     // for reporting.
192     OS << "Contribution size = " << (Contribution->Size + (Version < 5 ? 0 : 4))
193        << ", Format = " << dwarf::FormatString(Format)
194        << ", Version = " << Version << "\n";
195 
196     Offset = Contribution->Base;
197     unsigned EntrySize = Contribution->getDwarfOffsetByteSize();
198     while (Offset - Contribution->Base < Contribution->Size) {
199       OS << format("0x%8.8" PRIx64 ": ", Offset);
200       uint64_t StringOffset =
201           StrOffsetExt.getRelocatedValue(EntrySize, &Offset);
202       OS << format("%0*" PRIx64 " ", OffsetDumpWidth, StringOffset);
203       const char *S = StrData.getCStr(&StringOffset);
204       if (S)
205         OS << format("\"%s\"", S);
206       OS << "\n";
207     }
208   }
209   // Report a gap at the end of the table.
210   if (Offset < SectionSize) {
211     OS << format("0x%8.8" PRIx64 ": Gap, length = ", Offset);
212     OS << (SectionSize - Offset) << "\n";
213   }
214 }
215 
216 // Dump the .debug_addr section.
217 static void dumpAddrSection(raw_ostream &OS, DWARFDataExtractor &AddrData,
218                             DIDumpOptions DumpOpts, uint16_t Version,
219                             uint8_t AddrSize) {
220   uint64_t Offset = 0;
221   while (AddrData.isValidOffset(Offset)) {
222     DWARFDebugAddrTable AddrTable;
223     uint64_t TableOffset = Offset;
224     if (Error Err = AddrTable.extract(AddrData, &Offset, Version, AddrSize,
225                                       DumpOpts.WarningHandler)) {
226       DumpOpts.RecoverableErrorHandler(std::move(Err));
227       // Keep going after an error, if we can, assuming that the length field
228       // could be read. If it couldn't, stop reading the section.
229       if (auto TableLength = AddrTable.getFullLength()) {
230         Offset = TableOffset + *TableLength;
231         continue;
232       }
233       break;
234     }
235     AddrTable.dump(OS, DumpOpts);
236   }
237 }
238 
239 // Dump the .debug_rnglists or .debug_rnglists.dwo section (DWARF v5).
240 static void dumpRnglistsSection(
241     raw_ostream &OS, DWARFDataExtractor &rnglistData,
242     llvm::function_ref<Optional<object::SectionedAddress>(uint32_t)>
243         LookupPooledAddress,
244     DIDumpOptions DumpOpts) {
245   uint64_t Offset = 0;
246   while (rnglistData.isValidOffset(Offset)) {
247     llvm::DWARFDebugRnglistTable Rnglists;
248     uint64_t TableOffset = Offset;
249     if (Error Err = Rnglists.extract(rnglistData, &Offset)) {
250       DumpOpts.RecoverableErrorHandler(std::move(Err));
251       uint64_t Length = Rnglists.length();
252       // Keep going after an error, if we can, assuming that the length field
253       // could be read. If it couldn't, stop reading the section.
254       if (Length == 0)
255         break;
256       Offset = TableOffset + Length;
257     } else {
258       Rnglists.dump(rnglistData, OS, LookupPooledAddress, DumpOpts);
259     }
260   }
261 }
262 
263 std::unique_ptr<DWARFDebugMacro>
264 DWARFContext::parseMacroOrMacinfo(MacroSecType SectionType) {
265   auto Macro = std::make_unique<DWARFDebugMacro>();
266   auto ParseAndDump = [&](DWARFDataExtractor &Data, bool IsMacro) {
267     if (Error Err = IsMacro ? Macro->parseMacro(SectionType == MacroSection
268                                                     ? compile_units()
269                                                     : dwo_compile_units(),
270                                                 SectionType == MacroSection
271                                                     ? getStringExtractor()
272                                                     : getStringDWOExtractor(),
273                                                 Data)
274                             : Macro->parseMacinfo(Data)) {
275       RecoverableErrorHandler(std::move(Err));
276       Macro = nullptr;
277     }
278   };
279   switch (SectionType) {
280   case MacinfoSection: {
281     DWARFDataExtractor Data(DObj->getMacinfoSection(), isLittleEndian(), 0);
282     ParseAndDump(Data, /*IsMacro=*/false);
283     break;
284   }
285   case MacinfoDwoSection: {
286     DWARFDataExtractor Data(DObj->getMacinfoDWOSection(), isLittleEndian(), 0);
287     ParseAndDump(Data, /*IsMacro=*/false);
288     break;
289   }
290   case MacroSection: {
291     DWARFDataExtractor Data(*DObj, DObj->getMacroSection(), isLittleEndian(),
292                             0);
293     ParseAndDump(Data, /*IsMacro=*/true);
294     break;
295   }
296   case MacroDwoSection: {
297     DWARFDataExtractor Data(DObj->getMacroDWOSection(), isLittleEndian(), 0);
298     ParseAndDump(Data, /*IsMacro=*/true);
299     break;
300   }
301   }
302   return Macro;
303 }
304 
305 static void dumpLoclistsSection(raw_ostream &OS, DIDumpOptions DumpOpts,
306                                 DWARFDataExtractor Data,
307                                 const MCRegisterInfo *MRI,
308                                 const DWARFObject &Obj,
309                                 Optional<uint64_t> DumpOffset) {
310   uint64_t Offset = 0;
311 
312   while (Data.isValidOffset(Offset)) {
313     DWARFListTableHeader Header(".debug_loclists", "locations");
314     if (Error E = Header.extract(Data, &Offset)) {
315       DumpOpts.RecoverableErrorHandler(std::move(E));
316       return;
317     }
318 
319     Header.dump(Data, OS, DumpOpts);
320 
321     uint64_t EndOffset = Header.length() + Header.getHeaderOffset();
322     Data.setAddressSize(Header.getAddrSize());
323     DWARFDebugLoclists Loc(Data, Header.getVersion());
324     if (DumpOffset) {
325       if (DumpOffset >= Offset && DumpOffset < EndOffset) {
326         Offset = *DumpOffset;
327         Loc.dumpLocationList(&Offset, OS, /*BaseAddr=*/None, MRI, Obj, nullptr,
328                              DumpOpts, /*Indent=*/0);
329         OS << "\n";
330         return;
331       }
332     } else {
333       Loc.dumpRange(Offset, EndOffset - Offset, OS, MRI, Obj, DumpOpts);
334     }
335     Offset = EndOffset;
336   }
337 }
338 
339 static void dumpPubTableSection(raw_ostream &OS, DIDumpOptions DumpOpts,
340                                 DWARFDataExtractor Data, bool GnuStyle) {
341   DWARFDebugPubTable Table;
342   Table.extract(Data, GnuStyle, DumpOpts.RecoverableErrorHandler);
343   Table.dump(OS);
344 }
345 
346 void DWARFContext::dump(
347     raw_ostream &OS, DIDumpOptions DumpOpts,
348     std::array<Optional<uint64_t>, DIDT_ID_Count> DumpOffsets) {
349   uint64_t DumpType = DumpOpts.DumpType;
350 
351   StringRef Extension = sys::path::extension(DObj->getFileName());
352   bool IsDWO = (Extension == ".dwo") || (Extension == ".dwp");
353 
354   // Print UUID header.
355   const auto *ObjFile = DObj->getFile();
356   if (DumpType & DIDT_UUID)
357     dumpUUID(OS, *ObjFile);
358 
359   // Print a header for each explicitly-requested section.
360   // Otherwise just print one for non-empty sections.
361   // Only print empty .dwo section headers when dumping a .dwo file.
362   bool Explicit = DumpType != DIDT_All && !IsDWO;
363   bool ExplicitDWO = Explicit && IsDWO;
364   auto shouldDump = [&](bool Explicit, const char *Name, unsigned ID,
365                         StringRef Section) -> Optional<uint64_t> * {
366     unsigned Mask = 1U << ID;
367     bool Should = (DumpType & Mask) && (Explicit || !Section.empty());
368     if (!Should)
369       return nullptr;
370     OS << "\n" << Name << " contents:\n";
371     return &DumpOffsets[ID];
372   };
373 
374   // Dump individual sections.
375   if (shouldDump(Explicit, ".debug_abbrev", DIDT_ID_DebugAbbrev,
376                  DObj->getAbbrevSection()))
377     getDebugAbbrev()->dump(OS);
378   if (shouldDump(ExplicitDWO, ".debug_abbrev.dwo", DIDT_ID_DebugAbbrev,
379                  DObj->getAbbrevDWOSection()))
380     getDebugAbbrevDWO()->dump(OS);
381 
382   auto dumpDebugInfo = [&](const char *Name, unit_iterator_range Units) {
383     OS << '\n' << Name << " contents:\n";
384     if (auto DumpOffset = DumpOffsets[DIDT_ID_DebugInfo])
385       for (const auto &U : Units)
386         U->getDIEForOffset(DumpOffset.getValue())
387             .dump(OS, 0, DumpOpts.noImplicitRecursion());
388     else
389       for (const auto &U : Units)
390         U->dump(OS, DumpOpts);
391   };
392   if ((DumpType & DIDT_DebugInfo)) {
393     if (Explicit || getNumCompileUnits())
394       dumpDebugInfo(".debug_info", info_section_units());
395     if (ExplicitDWO || getNumDWOCompileUnits())
396       dumpDebugInfo(".debug_info.dwo", dwo_info_section_units());
397   }
398 
399   auto dumpDebugType = [&](const char *Name, unit_iterator_range Units) {
400     OS << '\n' << Name << " contents:\n";
401     for (const auto &U : Units)
402       if (auto DumpOffset = DumpOffsets[DIDT_ID_DebugTypes])
403         U->getDIEForOffset(*DumpOffset)
404             .dump(OS, 0, DumpOpts.noImplicitRecursion());
405       else
406         U->dump(OS, DumpOpts);
407   };
408   if ((DumpType & DIDT_DebugTypes)) {
409     if (Explicit || getNumTypeUnits())
410       dumpDebugType(".debug_types", types_section_units());
411     if (ExplicitDWO || getNumDWOTypeUnits())
412       dumpDebugType(".debug_types.dwo", dwo_types_section_units());
413   }
414 
415   DIDumpOptions LLDumpOpts = DumpOpts;
416   if (LLDumpOpts.Verbose)
417     LLDumpOpts.DisplayRawContents = true;
418 
419   if (const auto *Off = shouldDump(Explicit, ".debug_loc", DIDT_ID_DebugLoc,
420                                    DObj->getLocSection().Data)) {
421     getDebugLoc()->dump(OS, getRegisterInfo(), *DObj, LLDumpOpts, *Off);
422   }
423   if (const auto *Off =
424           shouldDump(Explicit, ".debug_loclists", DIDT_ID_DebugLoclists,
425                      DObj->getLoclistsSection().Data)) {
426     DWARFDataExtractor Data(*DObj, DObj->getLoclistsSection(), isLittleEndian(),
427                             0);
428     dumpLoclistsSection(OS, LLDumpOpts, Data, getRegisterInfo(), *DObj, *Off);
429   }
430   if (const auto *Off =
431           shouldDump(ExplicitDWO, ".debug_loclists.dwo", DIDT_ID_DebugLoclists,
432                      DObj->getLoclistsDWOSection().Data)) {
433     DWARFDataExtractor Data(*DObj, DObj->getLoclistsDWOSection(),
434                             isLittleEndian(), 0);
435     dumpLoclistsSection(OS, LLDumpOpts, Data, getRegisterInfo(), *DObj, *Off);
436   }
437 
438   if (const auto *Off =
439           shouldDump(ExplicitDWO, ".debug_loc.dwo", DIDT_ID_DebugLoc,
440                      DObj->getLocDWOSection().Data)) {
441     DWARFDataExtractor Data(*DObj, DObj->getLocDWOSection(), isLittleEndian(),
442                             4);
443     DWARFDebugLoclists Loc(Data, /*Version=*/4);
444     if (*Off) {
445       uint64_t Offset = **Off;
446       Loc.dumpLocationList(&Offset, OS,
447                            /*BaseAddr=*/None, getRegisterInfo(), *DObj, nullptr,
448                            LLDumpOpts, /*Indent=*/0);
449       OS << "\n";
450     } else {
451       Loc.dumpRange(0, Data.getData().size(), OS, getRegisterInfo(), *DObj,
452                     LLDumpOpts);
453     }
454   }
455 
456   if (const Optional<uint64_t> *Off =
457           shouldDump(Explicit, ".debug_frame", DIDT_ID_DebugFrame,
458                      DObj->getFrameSection().Data)) {
459     if (Expected<const DWARFDebugFrame *> DF = getDebugFrame())
460       (*DF)->dump(OS, DumpOpts, getRegisterInfo(), *Off);
461     else
462       RecoverableErrorHandler(DF.takeError());
463   }
464 
465   if (const Optional<uint64_t> *Off =
466           shouldDump(Explicit, ".eh_frame", DIDT_ID_DebugFrame,
467                      DObj->getEHFrameSection().Data)) {
468     if (Expected<const DWARFDebugFrame *> DF = getEHFrame())
469       (*DF)->dump(OS, DumpOpts, getRegisterInfo(), *Off);
470     else
471       RecoverableErrorHandler(DF.takeError());
472   }
473 
474   if (shouldDump(Explicit, ".debug_macro", DIDT_ID_DebugMacro,
475                  DObj->getMacroSection().Data)) {
476     if (auto Macro = getDebugMacro())
477       Macro->dump(OS);
478   }
479 
480   if (shouldDump(Explicit, ".debug_macro.dwo", DIDT_ID_DebugMacro,
481                  DObj->getMacroDWOSection())) {
482     if (auto MacroDWO = getDebugMacroDWO())
483       MacroDWO->dump(OS);
484   }
485 
486   if (shouldDump(Explicit, ".debug_macinfo", DIDT_ID_DebugMacro,
487                  DObj->getMacinfoSection())) {
488     if (auto Macinfo = getDebugMacinfo())
489       Macinfo->dump(OS);
490   }
491 
492   if (shouldDump(Explicit, ".debug_macinfo.dwo", DIDT_ID_DebugMacro,
493                  DObj->getMacinfoDWOSection())) {
494     if (auto MacinfoDWO = getDebugMacinfoDWO())
495       MacinfoDWO->dump(OS);
496   }
497 
498   if (shouldDump(Explicit, ".debug_aranges", DIDT_ID_DebugAranges,
499                  DObj->getArangesSection())) {
500     uint64_t offset = 0;
501     DWARFDataExtractor arangesData(DObj->getArangesSection(), isLittleEndian(),
502                                    0);
503     DWARFDebugArangeSet set;
504     while (arangesData.isValidOffset(offset)) {
505       if (Error E =
506               set.extract(arangesData, &offset, DumpOpts.WarningHandler)) {
507         RecoverableErrorHandler(std::move(E));
508         break;
509       }
510       set.dump(OS);
511     }
512   }
513 
514   auto DumpLineSection = [&](DWARFDebugLine::SectionParser Parser,
515                              DIDumpOptions DumpOpts,
516                              Optional<uint64_t> DumpOffset) {
517     while (!Parser.done()) {
518       if (DumpOffset && Parser.getOffset() != *DumpOffset) {
519         Parser.skip(DumpOpts.WarningHandler, DumpOpts.WarningHandler);
520         continue;
521       }
522       OS << "debug_line[" << format("0x%8.8" PRIx64, Parser.getOffset())
523          << "]\n";
524       Parser.parseNext(DumpOpts.WarningHandler, DumpOpts.WarningHandler, &OS,
525                        DumpOpts.Verbose);
526     }
527   };
528 
529   auto DumpStrSection = [&](StringRef Section) {
530     DataExtractor StrData(Section, isLittleEndian(), 0);
531     uint64_t Offset = 0;
532     uint64_t StrOffset = 0;
533     while (StrData.isValidOffset(Offset)) {
534       Error Err = Error::success();
535       const char *CStr = StrData.getCStr(&Offset, &Err);
536       if (Err) {
537         DumpOpts.WarningHandler(std::move(Err));
538         return;
539       }
540       OS << format("0x%8.8" PRIx64 ": \"", StrOffset);
541       OS.write_escaped(CStr);
542       OS << "\"\n";
543       StrOffset = Offset;
544     }
545   };
546 
547   if (const auto *Off = shouldDump(Explicit, ".debug_line", DIDT_ID_DebugLine,
548                                    DObj->getLineSection().Data)) {
549     DWARFDataExtractor LineData(*DObj, DObj->getLineSection(), isLittleEndian(),
550                                 0);
551     DWARFDebugLine::SectionParser Parser(LineData, *this, normal_units());
552     DumpLineSection(Parser, DumpOpts, *Off);
553   }
554 
555   if (const auto *Off =
556           shouldDump(ExplicitDWO, ".debug_line.dwo", DIDT_ID_DebugLine,
557                      DObj->getLineDWOSection().Data)) {
558     DWARFDataExtractor LineData(*DObj, DObj->getLineDWOSection(),
559                                 isLittleEndian(), 0);
560     DWARFDebugLine::SectionParser Parser(LineData, *this, dwo_units());
561     DumpLineSection(Parser, DumpOpts, *Off);
562   }
563 
564   if (shouldDump(Explicit, ".debug_cu_index", DIDT_ID_DebugCUIndex,
565                  DObj->getCUIndexSection())) {
566     getCUIndex().dump(OS);
567   }
568 
569   if (shouldDump(Explicit, ".debug_tu_index", DIDT_ID_DebugTUIndex,
570                  DObj->getTUIndexSection())) {
571     getTUIndex().dump(OS);
572   }
573 
574   if (shouldDump(Explicit, ".debug_str", DIDT_ID_DebugStr,
575                  DObj->getStrSection()))
576     DumpStrSection(DObj->getStrSection());
577 
578   if (shouldDump(ExplicitDWO, ".debug_str.dwo", DIDT_ID_DebugStr,
579                  DObj->getStrDWOSection()))
580     DumpStrSection(DObj->getStrDWOSection());
581 
582   if (shouldDump(Explicit, ".debug_line_str", DIDT_ID_DebugLineStr,
583                  DObj->getLineStrSection()))
584     DumpStrSection(DObj->getLineStrSection());
585 
586   if (shouldDump(Explicit, ".debug_addr", DIDT_ID_DebugAddr,
587                  DObj->getAddrSection().Data)) {
588     DWARFDataExtractor AddrData(*DObj, DObj->getAddrSection(),
589                                    isLittleEndian(), 0);
590     dumpAddrSection(OS, AddrData, DumpOpts, getMaxVersion(), getCUAddrSize());
591   }
592 
593   if (shouldDump(Explicit, ".debug_ranges", DIDT_ID_DebugRanges,
594                  DObj->getRangesSection().Data)) {
595     uint8_t savedAddressByteSize = getCUAddrSize();
596     DWARFDataExtractor rangesData(*DObj, DObj->getRangesSection(),
597                                   isLittleEndian(), savedAddressByteSize);
598     uint64_t offset = 0;
599     DWARFDebugRangeList rangeList;
600     while (rangesData.isValidOffset(offset)) {
601       if (Error E = rangeList.extract(rangesData, &offset)) {
602         DumpOpts.RecoverableErrorHandler(std::move(E));
603         break;
604       }
605       rangeList.dump(OS);
606     }
607   }
608 
609   auto LookupPooledAddress = [&](uint32_t Index) -> Optional<SectionedAddress> {
610     const auto &CUs = compile_units();
611     auto I = CUs.begin();
612     if (I == CUs.end())
613       return None;
614     return (*I)->getAddrOffsetSectionItem(Index);
615   };
616 
617   if (shouldDump(Explicit, ".debug_rnglists", DIDT_ID_DebugRnglists,
618                  DObj->getRnglistsSection().Data)) {
619     DWARFDataExtractor RnglistData(*DObj, DObj->getRnglistsSection(),
620                                    isLittleEndian(), 0);
621     dumpRnglistsSection(OS, RnglistData, LookupPooledAddress, DumpOpts);
622   }
623 
624   if (shouldDump(ExplicitDWO, ".debug_rnglists.dwo", DIDT_ID_DebugRnglists,
625                  DObj->getRnglistsDWOSection().Data)) {
626     DWARFDataExtractor RnglistData(*DObj, DObj->getRnglistsDWOSection(),
627                                    isLittleEndian(), 0);
628     dumpRnglistsSection(OS, RnglistData, LookupPooledAddress, DumpOpts);
629   }
630 
631   if (shouldDump(Explicit, ".debug_pubnames", DIDT_ID_DebugPubnames,
632                  DObj->getPubnamesSection().Data)) {
633     DWARFDataExtractor PubTableData(*DObj, DObj->getPubnamesSection(),
634                                     isLittleEndian(), 0);
635     dumpPubTableSection(OS, DumpOpts, PubTableData, /*GnuStyle=*/false);
636   }
637 
638   if (shouldDump(Explicit, ".debug_pubtypes", DIDT_ID_DebugPubtypes,
639                  DObj->getPubtypesSection().Data)) {
640     DWARFDataExtractor PubTableData(*DObj, DObj->getPubtypesSection(),
641                                     isLittleEndian(), 0);
642     dumpPubTableSection(OS, DumpOpts, PubTableData, /*GnuStyle=*/false);
643   }
644 
645   if (shouldDump(Explicit, ".debug_gnu_pubnames", DIDT_ID_DebugGnuPubnames,
646                  DObj->getGnuPubnamesSection().Data)) {
647     DWARFDataExtractor PubTableData(*DObj, DObj->getGnuPubnamesSection(),
648                                     isLittleEndian(), 0);
649     dumpPubTableSection(OS, DumpOpts, PubTableData, /*GnuStyle=*/true);
650   }
651 
652   if (shouldDump(Explicit, ".debug_gnu_pubtypes", DIDT_ID_DebugGnuPubtypes,
653                  DObj->getGnuPubtypesSection().Data)) {
654     DWARFDataExtractor PubTableData(*DObj, DObj->getGnuPubtypesSection(),
655                                     isLittleEndian(), 0);
656     dumpPubTableSection(OS, DumpOpts, PubTableData, /*GnuStyle=*/true);
657   }
658 
659   if (shouldDump(Explicit, ".debug_str_offsets", DIDT_ID_DebugStrOffsets,
660                  DObj->getStrOffsetsSection().Data))
661     dumpStringOffsetsSection(
662         OS, DumpOpts, "debug_str_offsets", *DObj, DObj->getStrOffsetsSection(),
663         DObj->getStrSection(), normal_units(), isLittleEndian());
664   if (shouldDump(ExplicitDWO, ".debug_str_offsets.dwo", DIDT_ID_DebugStrOffsets,
665                  DObj->getStrOffsetsDWOSection().Data))
666     dumpStringOffsetsSection(OS, DumpOpts, "debug_str_offsets.dwo", *DObj,
667                              DObj->getStrOffsetsDWOSection(),
668                              DObj->getStrDWOSection(), dwo_units(),
669                              isLittleEndian());
670 
671   if (shouldDump(Explicit, ".gdb_index", DIDT_ID_GdbIndex,
672                  DObj->getGdbIndexSection())) {
673     getGdbIndex().dump(OS);
674   }
675 
676   if (shouldDump(Explicit, ".apple_names", DIDT_ID_AppleNames,
677                  DObj->getAppleNamesSection().Data))
678     getAppleNames().dump(OS);
679 
680   if (shouldDump(Explicit, ".apple_types", DIDT_ID_AppleTypes,
681                  DObj->getAppleTypesSection().Data))
682     getAppleTypes().dump(OS);
683 
684   if (shouldDump(Explicit, ".apple_namespaces", DIDT_ID_AppleNamespaces,
685                  DObj->getAppleNamespacesSection().Data))
686     getAppleNamespaces().dump(OS);
687 
688   if (shouldDump(Explicit, ".apple_objc", DIDT_ID_AppleObjC,
689                  DObj->getAppleObjCSection().Data))
690     getAppleObjC().dump(OS);
691   if (shouldDump(Explicit, ".debug_names", DIDT_ID_DebugNames,
692                  DObj->getNamesSection().Data))
693     getDebugNames().dump(OS);
694 }
695 
696 DWARFTypeUnit *DWARFContext::getTypeUnitForHash(uint16_t Version, uint64_t Hash,
697                                                 bool IsDWO) {
698   // FIXME: Check for/use the tu_index here, if there is one.
699   for (const auto &U : IsDWO ? dwo_units() : normal_units()) {
700     if (DWARFTypeUnit *TU = dyn_cast<DWARFTypeUnit>(U.get())) {
701       if (TU->getTypeHash() == Hash)
702         return TU;
703     }
704   }
705   return nullptr;
706 }
707 
708 DWARFCompileUnit *DWARFContext::getDWOCompileUnitForHash(uint64_t Hash) {
709   parseDWOUnits(LazyParse);
710 
711   if (const auto &CUI = getCUIndex()) {
712     if (const auto *R = CUI.getFromHash(Hash))
713       return dyn_cast_or_null<DWARFCompileUnit>(
714           DWOUnits.getUnitForIndexEntry(*R));
715     return nullptr;
716   }
717 
718   // If there's no index, just search through the CUs in the DWO - there's
719   // probably only one unless this is something like LTO - though an in-process
720   // built/cached lookup table could be used in that case to improve repeated
721   // lookups of different CUs in the DWO.
722   for (const auto &DWOCU : dwo_compile_units()) {
723     // Might not have parsed DWO ID yet.
724     if (!DWOCU->getDWOId()) {
725       if (Optional<uint64_t> DWOId =
726           toUnsigned(DWOCU->getUnitDIE().find(DW_AT_GNU_dwo_id)))
727         DWOCU->setDWOId(*DWOId);
728       else
729         // No DWO ID?
730         continue;
731     }
732     if (DWOCU->getDWOId() == Hash)
733       return dyn_cast<DWARFCompileUnit>(DWOCU.get());
734   }
735   return nullptr;
736 }
737 
738 DWARFDie DWARFContext::getDIEForOffset(uint64_t Offset) {
739   parseNormalUnits();
740   if (auto *CU = NormalUnits.getUnitForOffset(Offset))
741     return CU->getDIEForOffset(Offset);
742   return DWARFDie();
743 }
744 
745 bool DWARFContext::verify(raw_ostream &OS, DIDumpOptions DumpOpts) {
746   bool Success = true;
747   DWARFVerifier verifier(OS, *this, DumpOpts);
748 
749   Success &= verifier.handleDebugAbbrev();
750   if (DumpOpts.DumpType & DIDT_DebugInfo)
751     Success &= verifier.handleDebugInfo();
752   if (DumpOpts.DumpType & DIDT_DebugLine)
753     Success &= verifier.handleDebugLine();
754   Success &= verifier.handleAccelTables();
755   return Success;
756 }
757 
758 const DWARFUnitIndex &DWARFContext::getCUIndex() {
759   if (CUIndex)
760     return *CUIndex;
761 
762   DataExtractor CUIndexData(DObj->getCUIndexSection(), isLittleEndian(), 0);
763 
764   CUIndex = std::make_unique<DWARFUnitIndex>(DW_SECT_INFO);
765   CUIndex->parse(CUIndexData);
766   return *CUIndex;
767 }
768 
769 const DWARFUnitIndex &DWARFContext::getTUIndex() {
770   if (TUIndex)
771     return *TUIndex;
772 
773   DataExtractor TUIndexData(DObj->getTUIndexSection(), isLittleEndian(), 0);
774 
775   TUIndex = std::make_unique<DWARFUnitIndex>(DW_SECT_EXT_TYPES);
776   TUIndex->parse(TUIndexData);
777   return *TUIndex;
778 }
779 
780 DWARFGdbIndex &DWARFContext::getGdbIndex() {
781   if (GdbIndex)
782     return *GdbIndex;
783 
784   DataExtractor GdbIndexData(DObj->getGdbIndexSection(), true /*LE*/, 0);
785   GdbIndex = std::make_unique<DWARFGdbIndex>();
786   GdbIndex->parse(GdbIndexData);
787   return *GdbIndex;
788 }
789 
790 const DWARFDebugAbbrev *DWARFContext::getDebugAbbrev() {
791   if (Abbrev)
792     return Abbrev.get();
793 
794   DataExtractor abbrData(DObj->getAbbrevSection(), isLittleEndian(), 0);
795 
796   Abbrev.reset(new DWARFDebugAbbrev());
797   Abbrev->extract(abbrData);
798   return Abbrev.get();
799 }
800 
801 const DWARFDebugAbbrev *DWARFContext::getDebugAbbrevDWO() {
802   if (AbbrevDWO)
803     return AbbrevDWO.get();
804 
805   DataExtractor abbrData(DObj->getAbbrevDWOSection(), isLittleEndian(), 0);
806   AbbrevDWO.reset(new DWARFDebugAbbrev());
807   AbbrevDWO->extract(abbrData);
808   return AbbrevDWO.get();
809 }
810 
811 const DWARFDebugLoc *DWARFContext::getDebugLoc() {
812   if (Loc)
813     return Loc.get();
814 
815   // Assume all units have the same address byte size.
816   auto LocData =
817       getNumCompileUnits()
818           ? DWARFDataExtractor(*DObj, DObj->getLocSection(), isLittleEndian(),
819                                getUnitAtIndex(0)->getAddressByteSize())
820           : DWARFDataExtractor("", isLittleEndian(), 0);
821   Loc.reset(new DWARFDebugLoc(std::move(LocData)));
822   return Loc.get();
823 }
824 
825 const DWARFDebugAranges *DWARFContext::getDebugAranges() {
826   if (Aranges)
827     return Aranges.get();
828 
829   Aranges.reset(new DWARFDebugAranges());
830   Aranges->generate(this);
831   return Aranges.get();
832 }
833 
834 Expected<const DWARFDebugFrame *> DWARFContext::getDebugFrame() {
835   if (DebugFrame)
836     return DebugFrame.get();
837 
838   const DWARFSection &DS = DObj->getFrameSection();
839 
840   // There's a "bug" in the DWARFv3 standard with respect to the target address
841   // size within debug frame sections. While DWARF is supposed to be independent
842   // of its container, FDEs have fields with size being "target address size",
843   // which isn't specified in DWARF in general. It's only specified for CUs, but
844   // .eh_frame can appear without a .debug_info section. Follow the example of
845   // other tools (libdwarf) and extract this from the container (ObjectFile
846   // provides this information). This problem is fixed in DWARFv4
847   // See this dwarf-discuss discussion for more details:
848   // http://lists.dwarfstd.org/htdig.cgi/dwarf-discuss-dwarfstd.org/2011-December/001173.html
849   DWARFDataExtractor DebugFrameData(*DObj, DS, isLittleEndian(),
850                                     DObj->getAddressSize());
851   auto DF =
852       std::make_unique<DWARFDebugFrame>(getArch(), /*IsEH=*/false, DS.Address);
853   if (Error E = DF->parse(DebugFrameData))
854     return std::move(E);
855 
856   DebugFrame.swap(DF);
857   return DebugFrame.get();
858 }
859 
860 Expected<const DWARFDebugFrame *> DWARFContext::getEHFrame() {
861   if (EHFrame)
862     return EHFrame.get();
863 
864   const DWARFSection &DS = DObj->getEHFrameSection();
865   DWARFDataExtractor DebugFrameData(*DObj, DS, isLittleEndian(),
866                                     DObj->getAddressSize());
867 
868   auto DF =
869       std::make_unique<DWARFDebugFrame>(getArch(), /*IsEH=*/true, DS.Address);
870   if (Error E = DF->parse(DebugFrameData))
871     return std::move(E);
872   DebugFrame.swap(DF);
873   return DebugFrame.get();
874 }
875 
876 const DWARFDebugMacro *DWARFContext::getDebugMacro() {
877   if (!Macro)
878     Macro = parseMacroOrMacinfo(MacroSection);
879   return Macro.get();
880 }
881 
882 const DWARFDebugMacro *DWARFContext::getDebugMacroDWO() {
883   if (!MacroDWO)
884     MacroDWO = parseMacroOrMacinfo(MacroDwoSection);
885   return MacroDWO.get();
886 }
887 
888 const DWARFDebugMacro *DWARFContext::getDebugMacinfo() {
889   if (!Macinfo)
890     Macinfo = parseMacroOrMacinfo(MacinfoSection);
891   return Macinfo.get();
892 }
893 
894 const DWARFDebugMacro *DWARFContext::getDebugMacinfoDWO() {
895   if (!MacinfoDWO)
896     MacinfoDWO = parseMacroOrMacinfo(MacinfoDwoSection);
897   return MacinfoDWO.get();
898 }
899 
900 template <typename T>
901 static T &getAccelTable(std::unique_ptr<T> &Cache, const DWARFObject &Obj,
902                         const DWARFSection &Section, StringRef StringSection,
903                         bool IsLittleEndian) {
904   if (Cache)
905     return *Cache;
906   DWARFDataExtractor AccelSection(Obj, Section, IsLittleEndian, 0);
907   DataExtractor StrData(StringSection, IsLittleEndian, 0);
908   Cache.reset(new T(AccelSection, StrData));
909   if (Error E = Cache->extract())
910     llvm::consumeError(std::move(E));
911   return *Cache;
912 }
913 
914 const DWARFDebugNames &DWARFContext::getDebugNames() {
915   return getAccelTable(Names, *DObj, DObj->getNamesSection(),
916                        DObj->getStrSection(), isLittleEndian());
917 }
918 
919 const AppleAcceleratorTable &DWARFContext::getAppleNames() {
920   return getAccelTable(AppleNames, *DObj, DObj->getAppleNamesSection(),
921                        DObj->getStrSection(), isLittleEndian());
922 }
923 
924 const AppleAcceleratorTable &DWARFContext::getAppleTypes() {
925   return getAccelTable(AppleTypes, *DObj, DObj->getAppleTypesSection(),
926                        DObj->getStrSection(), isLittleEndian());
927 }
928 
929 const AppleAcceleratorTable &DWARFContext::getAppleNamespaces() {
930   return getAccelTable(AppleNamespaces, *DObj,
931                        DObj->getAppleNamespacesSection(),
932                        DObj->getStrSection(), isLittleEndian());
933 }
934 
935 const AppleAcceleratorTable &DWARFContext::getAppleObjC() {
936   return getAccelTable(AppleObjC, *DObj, DObj->getAppleObjCSection(),
937                        DObj->getStrSection(), isLittleEndian());
938 }
939 
940 const DWARFDebugLine::LineTable *
941 DWARFContext::getLineTableForUnit(DWARFUnit *U) {
942   Expected<const DWARFDebugLine::LineTable *> ExpectedLineTable =
943       getLineTableForUnit(U, WarningHandler);
944   if (!ExpectedLineTable) {
945     WarningHandler(ExpectedLineTable.takeError());
946     return nullptr;
947   }
948   return *ExpectedLineTable;
949 }
950 
951 Expected<const DWARFDebugLine::LineTable *> DWARFContext::getLineTableForUnit(
952     DWARFUnit *U, function_ref<void(Error)> RecoverableErrorHandler) {
953   if (!Line)
954     Line.reset(new DWARFDebugLine);
955 
956   auto UnitDIE = U->getUnitDIE();
957   if (!UnitDIE)
958     return nullptr;
959 
960   auto Offset = toSectionOffset(UnitDIE.find(DW_AT_stmt_list));
961   if (!Offset)
962     return nullptr; // No line table for this compile unit.
963 
964   uint64_t stmtOffset = *Offset + U->getLineTableOffset();
965   // See if the line table is cached.
966   if (const DWARFLineTable *lt = Line->getLineTable(stmtOffset))
967     return lt;
968 
969   // Make sure the offset is good before we try to parse.
970   if (stmtOffset >= U->getLineSection().Data.size())
971     return nullptr;
972 
973   // We have to parse it first.
974   DWARFDataExtractor lineData(*DObj, U->getLineSection(), isLittleEndian(),
975                               U->getAddressByteSize());
976   return Line->getOrParseLineTable(lineData, stmtOffset, *this, U,
977                                    RecoverableErrorHandler);
978 }
979 
980 void DWARFContext::parseNormalUnits() {
981   if (!NormalUnits.empty())
982     return;
983   DObj->forEachInfoSections([&](const DWARFSection &S) {
984     NormalUnits.addUnitsForSection(*this, S, DW_SECT_INFO);
985   });
986   NormalUnits.finishedInfoUnits();
987   DObj->forEachTypesSections([&](const DWARFSection &S) {
988     NormalUnits.addUnitsForSection(*this, S, DW_SECT_EXT_TYPES);
989   });
990 }
991 
992 void DWARFContext::parseDWOUnits(bool Lazy) {
993   if (!DWOUnits.empty())
994     return;
995   DObj->forEachInfoDWOSections([&](const DWARFSection &S) {
996     DWOUnits.addUnitsForDWOSection(*this, S, DW_SECT_INFO, Lazy);
997   });
998   DWOUnits.finishedInfoUnits();
999   DObj->forEachTypesDWOSections([&](const DWARFSection &S) {
1000     DWOUnits.addUnitsForDWOSection(*this, S, DW_SECT_EXT_TYPES, Lazy);
1001   });
1002 }
1003 
1004 DWARFCompileUnit *DWARFContext::getCompileUnitForOffset(uint64_t Offset) {
1005   parseNormalUnits();
1006   return dyn_cast_or_null<DWARFCompileUnit>(
1007       NormalUnits.getUnitForOffset(Offset));
1008 }
1009 
1010 DWARFCompileUnit *DWARFContext::getCompileUnitForAddress(uint64_t Address) {
1011   // First, get the offset of the compile unit.
1012   uint64_t CUOffset = getDebugAranges()->findAddress(Address);
1013   // Retrieve the compile unit.
1014   return getCompileUnitForOffset(CUOffset);
1015 }
1016 
1017 DWARFContext::DIEsForAddress DWARFContext::getDIEsForAddress(uint64_t Address) {
1018   DIEsForAddress Result;
1019 
1020   DWARFCompileUnit *CU = getCompileUnitForAddress(Address);
1021   if (!CU)
1022     return Result;
1023 
1024   Result.CompileUnit = CU;
1025   Result.FunctionDIE = CU->getSubroutineForAddress(Address);
1026 
1027   std::vector<DWARFDie> Worklist;
1028   Worklist.push_back(Result.FunctionDIE);
1029   while (!Worklist.empty()) {
1030     DWARFDie DIE = Worklist.back();
1031     Worklist.pop_back();
1032 
1033     if (!DIE.isValid())
1034       continue;
1035 
1036     if (DIE.getTag() == DW_TAG_lexical_block &&
1037         DIE.addressRangeContainsAddress(Address)) {
1038       Result.BlockDIE = DIE;
1039       break;
1040     }
1041 
1042     append_range(Worklist, DIE);
1043   }
1044 
1045   return Result;
1046 }
1047 
1048 /// TODO: change input parameter from "uint64_t Address"
1049 ///       into "SectionedAddress Address"
1050 static bool getFunctionNameAndStartLineForAddress(
1051     DWARFCompileUnit *CU, uint64_t Address, FunctionNameKind Kind,
1052     DILineInfoSpecifier::FileLineInfoKind FileNameKind,
1053     std::string &FunctionName, std::string &StartFile, uint32_t &StartLine,
1054     Optional<uint64_t> &StartAddress) {
1055   // The address may correspond to instruction in some inlined function,
1056   // so we have to build the chain of inlined functions and take the
1057   // name of the topmost function in it.
1058   SmallVector<DWARFDie, 4> InlinedChain;
1059   CU->getInlinedChainForAddress(Address, InlinedChain);
1060   if (InlinedChain.empty())
1061     return false;
1062 
1063   const DWARFDie &DIE = InlinedChain[0];
1064   bool FoundResult = false;
1065   const char *Name = nullptr;
1066   if (Kind != FunctionNameKind::None && (Name = DIE.getSubroutineName(Kind))) {
1067     FunctionName = Name;
1068     FoundResult = true;
1069   }
1070   std::string DeclFile = DIE.getDeclFile(FileNameKind);
1071   if (!DeclFile.empty()) {
1072     StartFile = DeclFile;
1073     FoundResult = true;
1074   }
1075   if (auto DeclLineResult = DIE.getDeclLine()) {
1076     StartLine = DeclLineResult;
1077     FoundResult = true;
1078   }
1079   if (auto LowPcAddr = toSectionedAddress(DIE.find(DW_AT_low_pc)))
1080     StartAddress = LowPcAddr->Address;
1081   return FoundResult;
1082 }
1083 
1084 static Optional<uint64_t> getTypeSize(DWARFDie Type, uint64_t PointerSize) {
1085   if (auto SizeAttr = Type.find(DW_AT_byte_size))
1086     if (Optional<uint64_t> Size = SizeAttr->getAsUnsignedConstant())
1087       return Size;
1088 
1089   switch (Type.getTag()) {
1090   case DW_TAG_pointer_type:
1091   case DW_TAG_reference_type:
1092   case DW_TAG_rvalue_reference_type:
1093     return PointerSize;
1094   case DW_TAG_ptr_to_member_type: {
1095     if (DWARFDie BaseType = Type.getAttributeValueAsReferencedDie(DW_AT_type))
1096       if (BaseType.getTag() == DW_TAG_subroutine_type)
1097         return 2 * PointerSize;
1098     return PointerSize;
1099   }
1100   case DW_TAG_const_type:
1101   case DW_TAG_volatile_type:
1102   case DW_TAG_restrict_type:
1103   case DW_TAG_typedef: {
1104     if (DWARFDie BaseType = Type.getAttributeValueAsReferencedDie(DW_AT_type))
1105       return getTypeSize(BaseType, PointerSize);
1106     break;
1107   }
1108   case DW_TAG_array_type: {
1109     DWARFDie BaseType = Type.getAttributeValueAsReferencedDie(DW_AT_type);
1110     if (!BaseType)
1111       return Optional<uint64_t>();
1112     Optional<uint64_t> BaseSize = getTypeSize(BaseType, PointerSize);
1113     if (!BaseSize)
1114       return Optional<uint64_t>();
1115     uint64_t Size = *BaseSize;
1116     for (DWARFDie Child : Type) {
1117       if (Child.getTag() != DW_TAG_subrange_type)
1118         continue;
1119 
1120       if (auto ElemCountAttr = Child.find(DW_AT_count))
1121         if (Optional<uint64_t> ElemCount =
1122                 ElemCountAttr->getAsUnsignedConstant())
1123           Size *= *ElemCount;
1124       if (auto UpperBoundAttr = Child.find(DW_AT_upper_bound))
1125         if (Optional<int64_t> UpperBound =
1126                 UpperBoundAttr->getAsSignedConstant()) {
1127           int64_t LowerBound = 0;
1128           if (auto LowerBoundAttr = Child.find(DW_AT_lower_bound))
1129             LowerBound = LowerBoundAttr->getAsSignedConstant().getValueOr(0);
1130           Size *= *UpperBound - LowerBound + 1;
1131         }
1132     }
1133     return Size;
1134   }
1135   default:
1136     break;
1137   }
1138   return Optional<uint64_t>();
1139 }
1140 
1141 static Optional<int64_t>
1142 getExpressionFrameOffset(ArrayRef<uint8_t> Expr,
1143                          Optional<unsigned> FrameBaseReg) {
1144   if (!Expr.empty() &&
1145       (Expr[0] == DW_OP_fbreg ||
1146        (FrameBaseReg && Expr[0] == DW_OP_breg0 + *FrameBaseReg))) {
1147     unsigned Count;
1148     int64_t Offset = decodeSLEB128(Expr.data() + 1, &Count, Expr.end());
1149     // A single DW_OP_fbreg or DW_OP_breg.
1150     if (Expr.size() == Count + 1)
1151       return Offset;
1152     // Same + DW_OP_deref (Fortran arrays look like this).
1153     if (Expr.size() == Count + 2 && Expr[Count + 1] == DW_OP_deref)
1154       return Offset;
1155     // Fallthrough. Do not accept ex. (DW_OP_breg W29, DW_OP_stack_value)
1156   }
1157   return None;
1158 }
1159 
1160 void DWARFContext::addLocalsForDie(DWARFCompileUnit *CU, DWARFDie Subprogram,
1161                                    DWARFDie Die, std::vector<DILocal> &Result) {
1162   if (Die.getTag() == DW_TAG_variable ||
1163       Die.getTag() == DW_TAG_formal_parameter) {
1164     DILocal Local;
1165     if (const char *Name = Subprogram.getSubroutineName(DINameKind::ShortName))
1166       Local.FunctionName = Name;
1167 
1168     Optional<unsigned> FrameBaseReg;
1169     if (auto FrameBase = Subprogram.find(DW_AT_frame_base))
1170       if (Optional<ArrayRef<uint8_t>> Expr = FrameBase->getAsBlock())
1171         if (!Expr->empty() && (*Expr)[0] >= DW_OP_reg0 &&
1172             (*Expr)[0] <= DW_OP_reg31) {
1173           FrameBaseReg = (*Expr)[0] - DW_OP_reg0;
1174         }
1175 
1176     if (Expected<std::vector<DWARFLocationExpression>> Loc =
1177             Die.getLocations(DW_AT_location)) {
1178       for (const auto &Entry : *Loc) {
1179         if (Optional<int64_t> FrameOffset =
1180                 getExpressionFrameOffset(Entry.Expr, FrameBaseReg)) {
1181           Local.FrameOffset = *FrameOffset;
1182           break;
1183         }
1184       }
1185     } else {
1186       // FIXME: missing DW_AT_location is OK here, but other errors should be
1187       // reported to the user.
1188       consumeError(Loc.takeError());
1189     }
1190 
1191     if (auto TagOffsetAttr = Die.find(DW_AT_LLVM_tag_offset))
1192       Local.TagOffset = TagOffsetAttr->getAsUnsignedConstant();
1193 
1194     if (auto Origin =
1195             Die.getAttributeValueAsReferencedDie(DW_AT_abstract_origin))
1196       Die = Origin;
1197     if (auto NameAttr = Die.find(DW_AT_name))
1198       if (Optional<const char *> Name = NameAttr->getAsCString())
1199         Local.Name = *Name;
1200     if (auto Type = Die.getAttributeValueAsReferencedDie(DW_AT_type))
1201       Local.Size = getTypeSize(Type, getCUAddrSize());
1202     if (auto DeclFileAttr = Die.find(DW_AT_decl_file)) {
1203       if (const auto *LT = CU->getContext().getLineTableForUnit(CU))
1204         LT->getFileNameByIndex(
1205             DeclFileAttr->getAsUnsignedConstant().getValue(),
1206             CU->getCompilationDir(),
1207             DILineInfoSpecifier::FileLineInfoKind::AbsoluteFilePath,
1208             Local.DeclFile);
1209     }
1210     if (auto DeclLineAttr = Die.find(DW_AT_decl_line))
1211       Local.DeclLine = DeclLineAttr->getAsUnsignedConstant().getValue();
1212 
1213     Result.push_back(Local);
1214     return;
1215   }
1216 
1217   if (Die.getTag() == DW_TAG_inlined_subroutine)
1218     if (auto Origin =
1219             Die.getAttributeValueAsReferencedDie(DW_AT_abstract_origin))
1220       Subprogram = Origin;
1221 
1222   for (auto Child : Die)
1223     addLocalsForDie(CU, Subprogram, Child, Result);
1224 }
1225 
1226 std::vector<DILocal>
1227 DWARFContext::getLocalsForAddress(object::SectionedAddress Address) {
1228   std::vector<DILocal> Result;
1229   DWARFCompileUnit *CU = getCompileUnitForAddress(Address.Address);
1230   if (!CU)
1231     return Result;
1232 
1233   DWARFDie Subprogram = CU->getSubroutineForAddress(Address.Address);
1234   if (Subprogram.isValid())
1235     addLocalsForDie(CU, Subprogram, Subprogram, Result);
1236   return Result;
1237 }
1238 
1239 DILineInfo DWARFContext::getLineInfoForAddress(object::SectionedAddress Address,
1240                                                DILineInfoSpecifier Spec) {
1241   DILineInfo Result;
1242 
1243   DWARFCompileUnit *CU = getCompileUnitForAddress(Address.Address);
1244   if (!CU)
1245     return Result;
1246 
1247   getFunctionNameAndStartLineForAddress(
1248       CU, Address.Address, Spec.FNKind, Spec.FLIKind, Result.FunctionName,
1249       Result.StartFileName, Result.StartLine, Result.StartAddress);
1250   if (Spec.FLIKind != FileLineInfoKind::None) {
1251     if (const DWARFLineTable *LineTable = getLineTableForUnit(CU)) {
1252       LineTable->getFileLineInfoForAddress(
1253           {Address.Address, Address.SectionIndex}, CU->getCompilationDir(),
1254           Spec.FLIKind, Result);
1255     }
1256   }
1257   return Result;
1258 }
1259 
1260 DILineInfoTable DWARFContext::getLineInfoForAddressRange(
1261     object::SectionedAddress Address, uint64_t Size, DILineInfoSpecifier Spec) {
1262   DILineInfoTable Lines;
1263   DWARFCompileUnit *CU = getCompileUnitForAddress(Address.Address);
1264   if (!CU)
1265     return Lines;
1266 
1267   uint32_t StartLine = 0;
1268   std::string StartFileName;
1269   std::string FunctionName(DILineInfo::BadString);
1270   Optional<uint64_t> StartAddress;
1271   getFunctionNameAndStartLineForAddress(CU, Address.Address, Spec.FNKind,
1272                                         Spec.FLIKind, FunctionName,
1273                                         StartFileName, StartLine, StartAddress);
1274 
1275   // If the Specifier says we don't need FileLineInfo, just
1276   // return the top-most function at the starting address.
1277   if (Spec.FLIKind == FileLineInfoKind::None) {
1278     DILineInfo Result;
1279     Result.FunctionName = FunctionName;
1280     Result.StartFileName = StartFileName;
1281     Result.StartLine = StartLine;
1282     Result.StartAddress = StartAddress;
1283     Lines.push_back(std::make_pair(Address.Address, Result));
1284     return Lines;
1285   }
1286 
1287   const DWARFLineTable *LineTable = getLineTableForUnit(CU);
1288 
1289   // Get the index of row we're looking for in the line table.
1290   std::vector<uint32_t> RowVector;
1291   if (!LineTable->lookupAddressRange({Address.Address, Address.SectionIndex},
1292                                      Size, RowVector)) {
1293     return Lines;
1294   }
1295 
1296   for (uint32_t RowIndex : RowVector) {
1297     // Take file number and line/column from the row.
1298     const DWARFDebugLine::Row &Row = LineTable->Rows[RowIndex];
1299     DILineInfo Result;
1300     LineTable->getFileNameByIndex(Row.File, CU->getCompilationDir(),
1301                                   Spec.FLIKind, Result.FileName);
1302     Result.FunctionName = FunctionName;
1303     Result.Line = Row.Line;
1304     Result.Column = Row.Column;
1305     Result.StartFileName = StartFileName;
1306     Result.StartLine = StartLine;
1307     Result.StartAddress = StartAddress;
1308     Lines.push_back(std::make_pair(Row.Address.Address, Result));
1309   }
1310 
1311   return Lines;
1312 }
1313 
1314 DIInliningInfo
1315 DWARFContext::getInliningInfoForAddress(object::SectionedAddress Address,
1316                                         DILineInfoSpecifier Spec) {
1317   DIInliningInfo InliningInfo;
1318 
1319   DWARFCompileUnit *CU = getCompileUnitForAddress(Address.Address);
1320   if (!CU)
1321     return InliningInfo;
1322 
1323   const DWARFLineTable *LineTable = nullptr;
1324   SmallVector<DWARFDie, 4> InlinedChain;
1325   CU->getInlinedChainForAddress(Address.Address, InlinedChain);
1326   if (InlinedChain.size() == 0) {
1327     // If there is no DIE for address (e.g. it is in unavailable .dwo file),
1328     // try to at least get file/line info from symbol table.
1329     if (Spec.FLIKind != FileLineInfoKind::None) {
1330       DILineInfo Frame;
1331       LineTable = getLineTableForUnit(CU);
1332       if (LineTable && LineTable->getFileLineInfoForAddress(
1333                            {Address.Address, Address.SectionIndex},
1334                            CU->getCompilationDir(), Spec.FLIKind, Frame))
1335         InliningInfo.addFrame(Frame);
1336     }
1337     return InliningInfo;
1338   }
1339 
1340   uint32_t CallFile = 0, CallLine = 0, CallColumn = 0, CallDiscriminator = 0;
1341   for (uint32_t i = 0, n = InlinedChain.size(); i != n; i++) {
1342     DWARFDie &FunctionDIE = InlinedChain[i];
1343     DILineInfo Frame;
1344     // Get function name if necessary.
1345     if (const char *Name = FunctionDIE.getSubroutineName(Spec.FNKind))
1346       Frame.FunctionName = Name;
1347     if (auto DeclLineResult = FunctionDIE.getDeclLine())
1348       Frame.StartLine = DeclLineResult;
1349     Frame.StartFileName = FunctionDIE.getDeclFile(Spec.FLIKind);
1350     if (auto LowPcAddr = toSectionedAddress(FunctionDIE.find(DW_AT_low_pc)))
1351       Frame.StartAddress = LowPcAddr->Address;
1352     if (Spec.FLIKind != FileLineInfoKind::None) {
1353       if (i == 0) {
1354         // For the topmost frame, initialize the line table of this
1355         // compile unit and fetch file/line info from it.
1356         LineTable = getLineTableForUnit(CU);
1357         // For the topmost routine, get file/line info from line table.
1358         if (LineTable)
1359           LineTable->getFileLineInfoForAddress(
1360               {Address.Address, Address.SectionIndex}, CU->getCompilationDir(),
1361               Spec.FLIKind, Frame);
1362       } else {
1363         // Otherwise, use call file, call line and call column from
1364         // previous DIE in inlined chain.
1365         if (LineTable)
1366           LineTable->getFileNameByIndex(CallFile, CU->getCompilationDir(),
1367                                         Spec.FLIKind, Frame.FileName);
1368         Frame.Line = CallLine;
1369         Frame.Column = CallColumn;
1370         Frame.Discriminator = CallDiscriminator;
1371       }
1372       // Get call file/line/column of a current DIE.
1373       if (i + 1 < n) {
1374         FunctionDIE.getCallerFrame(CallFile, CallLine, CallColumn,
1375                                    CallDiscriminator);
1376       }
1377     }
1378     InliningInfo.addFrame(Frame);
1379   }
1380   return InliningInfo;
1381 }
1382 
1383 std::shared_ptr<DWARFContext>
1384 DWARFContext::getDWOContext(StringRef AbsolutePath) {
1385   if (auto S = DWP.lock()) {
1386     DWARFContext *Ctxt = S->Context.get();
1387     return std::shared_ptr<DWARFContext>(std::move(S), Ctxt);
1388   }
1389 
1390   std::weak_ptr<DWOFile> *Entry = &DWOFiles[AbsolutePath];
1391 
1392   if (auto S = Entry->lock()) {
1393     DWARFContext *Ctxt = S->Context.get();
1394     return std::shared_ptr<DWARFContext>(std::move(S), Ctxt);
1395   }
1396 
1397   Expected<OwningBinary<ObjectFile>> Obj = [&] {
1398     if (!CheckedForDWP) {
1399       SmallString<128> DWPName;
1400       auto Obj = object::ObjectFile::createObjectFile(
1401           this->DWPName.empty()
1402               ? (DObj->getFileName() + ".dwp").toStringRef(DWPName)
1403               : StringRef(this->DWPName));
1404       if (Obj) {
1405         Entry = &DWP;
1406         return Obj;
1407       } else {
1408         CheckedForDWP = true;
1409         // TODO: Should this error be handled (maybe in a high verbosity mode)
1410         // before falling back to .dwo files?
1411         consumeError(Obj.takeError());
1412       }
1413     }
1414 
1415     return object::ObjectFile::createObjectFile(AbsolutePath);
1416   }();
1417 
1418   if (!Obj) {
1419     // TODO: Actually report errors helpfully.
1420     consumeError(Obj.takeError());
1421     return nullptr;
1422   }
1423 
1424   auto S = std::make_shared<DWOFile>();
1425   S->File = std::move(Obj.get());
1426   S->Context = DWARFContext::create(*S->File.getBinary(),
1427                                     ProcessDebugRelocations::Ignore);
1428   *Entry = S;
1429   auto *Ctxt = S->Context.get();
1430   return std::shared_ptr<DWARFContext>(std::move(S), Ctxt);
1431 }
1432 
1433 static Error createError(const Twine &Reason, llvm::Error E) {
1434   return make_error<StringError>(Reason + toString(std::move(E)),
1435                                  inconvertibleErrorCode());
1436 }
1437 
1438 /// SymInfo contains information about symbol: it's address
1439 /// and section index which is -1LL for absolute symbols.
1440 struct SymInfo {
1441   uint64_t Address;
1442   uint64_t SectionIndex;
1443 };
1444 
1445 /// Returns the address of symbol relocation used against and a section index.
1446 /// Used for futher relocations computation. Symbol's section load address is
1447 static Expected<SymInfo> getSymbolInfo(const object::ObjectFile &Obj,
1448                                        const RelocationRef &Reloc,
1449                                        const LoadedObjectInfo *L,
1450                                        std::map<SymbolRef, SymInfo> &Cache) {
1451   SymInfo Ret = {0, (uint64_t)-1LL};
1452   object::section_iterator RSec = Obj.section_end();
1453   object::symbol_iterator Sym = Reloc.getSymbol();
1454 
1455   std::map<SymbolRef, SymInfo>::iterator CacheIt = Cache.end();
1456   // First calculate the address of the symbol or section as it appears
1457   // in the object file
1458   if (Sym != Obj.symbol_end()) {
1459     bool New;
1460     std::tie(CacheIt, New) = Cache.insert({*Sym, {0, 0}});
1461     if (!New)
1462       return CacheIt->second;
1463 
1464     Expected<uint64_t> SymAddrOrErr = Sym->getAddress();
1465     if (!SymAddrOrErr)
1466       return createError("failed to compute symbol address: ",
1467                          SymAddrOrErr.takeError());
1468 
1469     // Also remember what section this symbol is in for later
1470     auto SectOrErr = Sym->getSection();
1471     if (!SectOrErr)
1472       return createError("failed to get symbol section: ",
1473                          SectOrErr.takeError());
1474 
1475     RSec = *SectOrErr;
1476     Ret.Address = *SymAddrOrErr;
1477   } else if (auto *MObj = dyn_cast<MachOObjectFile>(&Obj)) {
1478     RSec = MObj->getRelocationSection(Reloc.getRawDataRefImpl());
1479     Ret.Address = RSec->getAddress();
1480   }
1481 
1482   if (RSec != Obj.section_end())
1483     Ret.SectionIndex = RSec->getIndex();
1484 
1485   // If we are given load addresses for the sections, we need to adjust:
1486   // SymAddr = (Address of Symbol Or Section in File) -
1487   //           (Address of Section in File) +
1488   //           (Load Address of Section)
1489   // RSec is now either the section being targeted or the section
1490   // containing the symbol being targeted. In either case,
1491   // we need to perform the same computation.
1492   if (L && RSec != Obj.section_end())
1493     if (uint64_t SectionLoadAddress = L->getSectionLoadAddress(*RSec))
1494       Ret.Address += SectionLoadAddress - RSec->getAddress();
1495 
1496   if (CacheIt != Cache.end())
1497     CacheIt->second = Ret;
1498 
1499   return Ret;
1500 }
1501 
1502 static bool isRelocScattered(const object::ObjectFile &Obj,
1503                              const RelocationRef &Reloc) {
1504   const MachOObjectFile *MachObj = dyn_cast<MachOObjectFile>(&Obj);
1505   if (!MachObj)
1506     return false;
1507   // MachO also has relocations that point to sections and
1508   // scattered relocations.
1509   auto RelocInfo = MachObj->getRelocation(Reloc.getRawDataRefImpl());
1510   return MachObj->isRelocationScattered(RelocInfo);
1511 }
1512 
1513 namespace {
1514 struct DWARFSectionMap final : public DWARFSection {
1515   RelocAddrMap Relocs;
1516 };
1517 
1518 class DWARFObjInMemory final : public DWARFObject {
1519   bool IsLittleEndian;
1520   uint8_t AddressSize;
1521   StringRef FileName;
1522   const object::ObjectFile *Obj = nullptr;
1523   std::vector<SectionName> SectionNames;
1524 
1525   using InfoSectionMap = MapVector<object::SectionRef, DWARFSectionMap,
1526                                    std::map<object::SectionRef, unsigned>>;
1527 
1528   InfoSectionMap InfoSections;
1529   InfoSectionMap TypesSections;
1530   InfoSectionMap InfoDWOSections;
1531   InfoSectionMap TypesDWOSections;
1532 
1533   DWARFSectionMap LocSection;
1534   DWARFSectionMap LoclistsSection;
1535   DWARFSectionMap LoclistsDWOSection;
1536   DWARFSectionMap LineSection;
1537   DWARFSectionMap RangesSection;
1538   DWARFSectionMap RnglistsSection;
1539   DWARFSectionMap StrOffsetsSection;
1540   DWARFSectionMap LineDWOSection;
1541   DWARFSectionMap FrameSection;
1542   DWARFSectionMap EHFrameSection;
1543   DWARFSectionMap LocDWOSection;
1544   DWARFSectionMap StrOffsetsDWOSection;
1545   DWARFSectionMap RangesDWOSection;
1546   DWARFSectionMap RnglistsDWOSection;
1547   DWARFSectionMap AddrSection;
1548   DWARFSectionMap AppleNamesSection;
1549   DWARFSectionMap AppleTypesSection;
1550   DWARFSectionMap AppleNamespacesSection;
1551   DWARFSectionMap AppleObjCSection;
1552   DWARFSectionMap NamesSection;
1553   DWARFSectionMap PubnamesSection;
1554   DWARFSectionMap PubtypesSection;
1555   DWARFSectionMap GnuPubnamesSection;
1556   DWARFSectionMap GnuPubtypesSection;
1557   DWARFSectionMap MacroSection;
1558 
1559   DWARFSectionMap *mapNameToDWARFSection(StringRef Name) {
1560     return StringSwitch<DWARFSectionMap *>(Name)
1561         .Case("debug_loc", &LocSection)
1562         .Case("debug_loclists", &LoclistsSection)
1563         .Case("debug_loclists.dwo", &LoclistsDWOSection)
1564         .Case("debug_line", &LineSection)
1565         .Case("debug_frame", &FrameSection)
1566         .Case("eh_frame", &EHFrameSection)
1567         .Case("debug_str_offsets", &StrOffsetsSection)
1568         .Case("debug_ranges", &RangesSection)
1569         .Case("debug_rnglists", &RnglistsSection)
1570         .Case("debug_loc.dwo", &LocDWOSection)
1571         .Case("debug_line.dwo", &LineDWOSection)
1572         .Case("debug_names", &NamesSection)
1573         .Case("debug_rnglists.dwo", &RnglistsDWOSection)
1574         .Case("debug_str_offsets.dwo", &StrOffsetsDWOSection)
1575         .Case("debug_addr", &AddrSection)
1576         .Case("apple_names", &AppleNamesSection)
1577         .Case("debug_pubnames", &PubnamesSection)
1578         .Case("debug_pubtypes", &PubtypesSection)
1579         .Case("debug_gnu_pubnames", &GnuPubnamesSection)
1580         .Case("debug_gnu_pubtypes", &GnuPubtypesSection)
1581         .Case("apple_types", &AppleTypesSection)
1582         .Case("apple_namespaces", &AppleNamespacesSection)
1583         .Case("apple_namespac", &AppleNamespacesSection)
1584         .Case("apple_objc", &AppleObjCSection)
1585         .Case("debug_macro", &MacroSection)
1586         .Default(nullptr);
1587   }
1588 
1589   StringRef AbbrevSection;
1590   StringRef ArangesSection;
1591   StringRef StrSection;
1592   StringRef MacinfoSection;
1593   StringRef MacinfoDWOSection;
1594   StringRef MacroDWOSection;
1595   StringRef AbbrevDWOSection;
1596   StringRef StrDWOSection;
1597   StringRef CUIndexSection;
1598   StringRef GdbIndexSection;
1599   StringRef TUIndexSection;
1600   StringRef LineStrSection;
1601 
1602   // A deque holding section data whose iterators are not invalidated when
1603   // new decompressed sections are inserted at the end.
1604   std::deque<SmallString<0>> UncompressedSections;
1605 
1606   StringRef *mapSectionToMember(StringRef Name) {
1607     if (DWARFSection *Sec = mapNameToDWARFSection(Name))
1608       return &Sec->Data;
1609     return StringSwitch<StringRef *>(Name)
1610         .Case("debug_abbrev", &AbbrevSection)
1611         .Case("debug_aranges", &ArangesSection)
1612         .Case("debug_str", &StrSection)
1613         .Case("debug_macinfo", &MacinfoSection)
1614         .Case("debug_macinfo.dwo", &MacinfoDWOSection)
1615         .Case("debug_macro.dwo", &MacroDWOSection)
1616         .Case("debug_abbrev.dwo", &AbbrevDWOSection)
1617         .Case("debug_str.dwo", &StrDWOSection)
1618         .Case("debug_cu_index", &CUIndexSection)
1619         .Case("debug_tu_index", &TUIndexSection)
1620         .Case("gdb_index", &GdbIndexSection)
1621         .Case("debug_line_str", &LineStrSection)
1622         // Any more debug info sections go here.
1623         .Default(nullptr);
1624   }
1625 
1626   /// If Sec is compressed section, decompresses and updates its contents
1627   /// provided by Data. Otherwise leaves it unchanged.
1628   Error maybeDecompress(const object::SectionRef &Sec, StringRef Name,
1629                         StringRef &Data) {
1630     if (!Decompressor::isCompressed(Sec))
1631       return Error::success();
1632 
1633     Expected<Decompressor> Decompressor =
1634         Decompressor::create(Name, Data, IsLittleEndian, AddressSize == 8);
1635     if (!Decompressor)
1636       return Decompressor.takeError();
1637 
1638     SmallString<0> Out;
1639     if (auto Err = Decompressor->resizeAndDecompress(Out))
1640       return Err;
1641 
1642     UncompressedSections.push_back(std::move(Out));
1643     Data = UncompressedSections.back();
1644 
1645     return Error::success();
1646   }
1647 
1648 public:
1649   DWARFObjInMemory(const StringMap<std::unique_ptr<MemoryBuffer>> &Sections,
1650                    uint8_t AddrSize, bool IsLittleEndian)
1651       : IsLittleEndian(IsLittleEndian) {
1652     for (const auto &SecIt : Sections) {
1653       if (StringRef *SectionData = mapSectionToMember(SecIt.first()))
1654         *SectionData = SecIt.second->getBuffer();
1655       else if (SecIt.first() == "debug_info")
1656         // Find debug_info and debug_types data by section rather than name as
1657         // there are multiple, comdat grouped, of these sections.
1658         InfoSections[SectionRef()].Data = SecIt.second->getBuffer();
1659       else if (SecIt.first() == "debug_info.dwo")
1660         InfoDWOSections[SectionRef()].Data = SecIt.second->getBuffer();
1661       else if (SecIt.first() == "debug_types")
1662         TypesSections[SectionRef()].Data = SecIt.second->getBuffer();
1663       else if (SecIt.first() == "debug_types.dwo")
1664         TypesDWOSections[SectionRef()].Data = SecIt.second->getBuffer();
1665     }
1666   }
1667   DWARFObjInMemory(const object::ObjectFile &Obj, const LoadedObjectInfo *L,
1668                    function_ref<void(Error)> HandleError,
1669                    function_ref<void(Error)> HandleWarning,
1670                    DWARFContext::ProcessDebugRelocations RelocAction)
1671       : IsLittleEndian(Obj.isLittleEndian()),
1672         AddressSize(Obj.getBytesInAddress()), FileName(Obj.getFileName()),
1673         Obj(&Obj) {
1674 
1675     StringMap<unsigned> SectionAmountMap;
1676     for (const SectionRef &Section : Obj.sections()) {
1677       StringRef Name;
1678       if (auto NameOrErr = Section.getName())
1679         Name = *NameOrErr;
1680       else
1681         consumeError(NameOrErr.takeError());
1682 
1683       ++SectionAmountMap[Name];
1684       SectionNames.push_back({ Name, true });
1685 
1686       // Skip BSS and Virtual sections, they aren't interesting.
1687       if (Section.isBSS() || Section.isVirtual())
1688         continue;
1689 
1690       // Skip sections stripped by dsymutil.
1691       if (Section.isStripped())
1692         continue;
1693 
1694       StringRef Data;
1695       Expected<section_iterator> SecOrErr = Section.getRelocatedSection();
1696       if (!SecOrErr) {
1697         HandleError(createError("failed to get relocated section: ",
1698                                 SecOrErr.takeError()));
1699         continue;
1700       }
1701 
1702       // Try to obtain an already relocated version of this section.
1703       // Else use the unrelocated section from the object file. We'll have to
1704       // apply relocations ourselves later.
1705       section_iterator RelocatedSection =
1706           Obj.isRelocatableObject() ? *SecOrErr : Obj.section_end();
1707       if (!L || !L->getLoadedSectionContents(*RelocatedSection, Data)) {
1708         Expected<StringRef> E = Section.getContents();
1709         if (E)
1710           Data = *E;
1711         else
1712           // maybeDecompress below will error.
1713           consumeError(E.takeError());
1714       }
1715 
1716       if (auto Err = maybeDecompress(Section, Name, Data)) {
1717         HandleError(createError("failed to decompress '" + Name + "', ",
1718                                 std::move(Err)));
1719         continue;
1720       }
1721 
1722       // Compressed sections names in GNU style starts from ".z",
1723       // at this point section is decompressed and we drop compression prefix.
1724       Name = Name.substr(
1725           Name.find_first_not_of("._z")); // Skip ".", "z" and "_" prefixes.
1726 
1727       // Map platform specific debug section names to DWARF standard section
1728       // names.
1729       Name = Obj.mapDebugSectionName(Name);
1730 
1731       if (StringRef *SectionData = mapSectionToMember(Name)) {
1732         *SectionData = Data;
1733         if (Name == "debug_ranges") {
1734           // FIXME: Use the other dwo range section when we emit it.
1735           RangesDWOSection.Data = Data;
1736         } else if (Name == "debug_frame" || Name == "eh_frame") {
1737           if (DWARFSection *S = mapNameToDWARFSection(Name))
1738             S->Address = Section.getAddress();
1739         }
1740       } else if (InfoSectionMap *Sections =
1741                      StringSwitch<InfoSectionMap *>(Name)
1742                          .Case("debug_info", &InfoSections)
1743                          .Case("debug_info.dwo", &InfoDWOSections)
1744                          .Case("debug_types", &TypesSections)
1745                          .Case("debug_types.dwo", &TypesDWOSections)
1746                          .Default(nullptr)) {
1747         // Find debug_info and debug_types data by section rather than name as
1748         // there are multiple, comdat grouped, of these sections.
1749         DWARFSectionMap &S = (*Sections)[Section];
1750         S.Data = Data;
1751       }
1752 
1753       if (RelocatedSection != Obj.section_end() && Name.contains(".dwo"))
1754         HandleWarning(
1755             createError("Unexpected relocations for dwo section " + Name));
1756 
1757       if (RelocatedSection == Obj.section_end() ||
1758           (RelocAction == DWARFContext::ProcessDebugRelocations::Ignore))
1759         continue;
1760 
1761       StringRef RelSecName;
1762       if (auto NameOrErr = RelocatedSection->getName())
1763         RelSecName = *NameOrErr;
1764       else
1765         consumeError(NameOrErr.takeError());
1766 
1767       // If the section we're relocating was relocated already by the JIT,
1768       // then we used the relocated version above, so we do not need to process
1769       // relocations for it now.
1770       StringRef RelSecData;
1771       if (L && L->getLoadedSectionContents(*RelocatedSection, RelSecData))
1772         continue;
1773 
1774       // In Mach-o files, the relocations do not need to be applied if
1775       // there is no load offset to apply. The value read at the
1776       // relocation point already factors in the section address
1777       // (actually applying the relocations will produce wrong results
1778       // as the section address will be added twice).
1779       if (!L && isa<MachOObjectFile>(&Obj))
1780         continue;
1781 
1782       RelSecName = RelSecName.substr(
1783           RelSecName.find_first_not_of("._z")); // Skip . and _ prefixes.
1784 
1785       // TODO: Add support for relocations in other sections as needed.
1786       // Record relocations for the debug_info and debug_line sections.
1787       DWARFSectionMap *Sec = mapNameToDWARFSection(RelSecName);
1788       RelocAddrMap *Map = Sec ? &Sec->Relocs : nullptr;
1789       if (!Map) {
1790         // Find debug_info and debug_types relocs by section rather than name
1791         // as there are multiple, comdat grouped, of these sections.
1792         if (RelSecName == "debug_info")
1793           Map = &static_cast<DWARFSectionMap &>(InfoSections[*RelocatedSection])
1794                      .Relocs;
1795         else if (RelSecName == "debug_types")
1796           Map =
1797               &static_cast<DWARFSectionMap &>(TypesSections[*RelocatedSection])
1798                    .Relocs;
1799         else
1800           continue;
1801       }
1802 
1803       if (Section.relocation_begin() == Section.relocation_end())
1804         continue;
1805 
1806       // Symbol to [address, section index] cache mapping.
1807       std::map<SymbolRef, SymInfo> AddrCache;
1808       SupportsRelocation Supports;
1809       RelocationResolver Resolver;
1810       std::tie(Supports, Resolver) = getRelocationResolver(Obj);
1811       for (const RelocationRef &Reloc : Section.relocations()) {
1812         // FIXME: it's not clear how to correctly handle scattered
1813         // relocations.
1814         if (isRelocScattered(Obj, Reloc))
1815           continue;
1816 
1817         Expected<SymInfo> SymInfoOrErr =
1818             getSymbolInfo(Obj, Reloc, L, AddrCache);
1819         if (!SymInfoOrErr) {
1820           HandleError(SymInfoOrErr.takeError());
1821           continue;
1822         }
1823 
1824         // Check if Resolver can handle this relocation type early so as not to
1825         // handle invalid cases in DWARFDataExtractor.
1826         //
1827         // TODO Don't store Resolver in every RelocAddrEntry.
1828         if (Supports && Supports(Reloc.getType())) {
1829           auto I = Map->try_emplace(
1830               Reloc.getOffset(),
1831               RelocAddrEntry{SymInfoOrErr->SectionIndex, Reloc,
1832                              SymInfoOrErr->Address,
1833                              Optional<object::RelocationRef>(), 0, Resolver});
1834           // If we didn't successfully insert that's because we already had a
1835           // relocation for that offset. Store it as a second relocation in the
1836           // same RelocAddrEntry instead.
1837           if (!I.second) {
1838             RelocAddrEntry &entry = I.first->getSecond();
1839             if (entry.Reloc2) {
1840               HandleError(createError(
1841                   "At most two relocations per offset are supported"));
1842             }
1843             entry.Reloc2 = Reloc;
1844             entry.SymbolValue2 = SymInfoOrErr->Address;
1845           }
1846         } else {
1847           SmallString<32> Type;
1848           Reloc.getTypeName(Type);
1849           // FIXME: Support more relocations & change this to an error
1850           HandleWarning(
1851               createError("failed to compute relocation: " + Type + ", ",
1852                           errorCodeToError(object_error::parse_failed)));
1853         }
1854       }
1855     }
1856 
1857     for (SectionName &S : SectionNames)
1858       if (SectionAmountMap[S.Name] > 1)
1859         S.IsNameUnique = false;
1860   }
1861 
1862   Optional<RelocAddrEntry> find(const DWARFSection &S,
1863                                 uint64_t Pos) const override {
1864     auto &Sec = static_cast<const DWARFSectionMap &>(S);
1865     RelocAddrMap::const_iterator AI = Sec.Relocs.find(Pos);
1866     if (AI == Sec.Relocs.end())
1867       return None;
1868     return AI->second;
1869   }
1870 
1871   const object::ObjectFile *getFile() const override { return Obj; }
1872 
1873   ArrayRef<SectionName> getSectionNames() const override {
1874     return SectionNames;
1875   }
1876 
1877   bool isLittleEndian() const override { return IsLittleEndian; }
1878   StringRef getAbbrevDWOSection() const override { return AbbrevDWOSection; }
1879   const DWARFSection &getLineDWOSection() const override {
1880     return LineDWOSection;
1881   }
1882   const DWARFSection &getLocDWOSection() const override {
1883     return LocDWOSection;
1884   }
1885   StringRef getStrDWOSection() const override { return StrDWOSection; }
1886   const DWARFSection &getStrOffsetsDWOSection() const override {
1887     return StrOffsetsDWOSection;
1888   }
1889   const DWARFSection &getRangesDWOSection() const override {
1890     return RangesDWOSection;
1891   }
1892   const DWARFSection &getRnglistsDWOSection() const override {
1893     return RnglistsDWOSection;
1894   }
1895   const DWARFSection &getLoclistsDWOSection() const override {
1896     return LoclistsDWOSection;
1897   }
1898   const DWARFSection &getAddrSection() const override { return AddrSection; }
1899   StringRef getCUIndexSection() const override { return CUIndexSection; }
1900   StringRef getGdbIndexSection() const override { return GdbIndexSection; }
1901   StringRef getTUIndexSection() const override { return TUIndexSection; }
1902 
1903   // DWARF v5
1904   const DWARFSection &getStrOffsetsSection() const override {
1905     return StrOffsetsSection;
1906   }
1907   StringRef getLineStrSection() const override { return LineStrSection; }
1908 
1909   // Sections for DWARF5 split dwarf proposal.
1910   void forEachInfoDWOSections(
1911       function_ref<void(const DWARFSection &)> F) const override {
1912     for (auto &P : InfoDWOSections)
1913       F(P.second);
1914   }
1915   void forEachTypesDWOSections(
1916       function_ref<void(const DWARFSection &)> F) const override {
1917     for (auto &P : TypesDWOSections)
1918       F(P.second);
1919   }
1920 
1921   StringRef getAbbrevSection() const override { return AbbrevSection; }
1922   const DWARFSection &getLocSection() const override { return LocSection; }
1923   const DWARFSection &getLoclistsSection() const override { return LoclistsSection; }
1924   StringRef getArangesSection() const override { return ArangesSection; }
1925   const DWARFSection &getFrameSection() const override {
1926     return FrameSection;
1927   }
1928   const DWARFSection &getEHFrameSection() const override {
1929     return EHFrameSection;
1930   }
1931   const DWARFSection &getLineSection() const override { return LineSection; }
1932   StringRef getStrSection() const override { return StrSection; }
1933   const DWARFSection &getRangesSection() const override { return RangesSection; }
1934   const DWARFSection &getRnglistsSection() const override {
1935     return RnglistsSection;
1936   }
1937   const DWARFSection &getMacroSection() const override { return MacroSection; }
1938   StringRef getMacroDWOSection() const override { return MacroDWOSection; }
1939   StringRef getMacinfoSection() const override { return MacinfoSection; }
1940   StringRef getMacinfoDWOSection() const override { return MacinfoDWOSection; }
1941   const DWARFSection &getPubnamesSection() const override { return PubnamesSection; }
1942   const DWARFSection &getPubtypesSection() const override { return PubtypesSection; }
1943   const DWARFSection &getGnuPubnamesSection() const override {
1944     return GnuPubnamesSection;
1945   }
1946   const DWARFSection &getGnuPubtypesSection() const override {
1947     return GnuPubtypesSection;
1948   }
1949   const DWARFSection &getAppleNamesSection() const override {
1950     return AppleNamesSection;
1951   }
1952   const DWARFSection &getAppleTypesSection() const override {
1953     return AppleTypesSection;
1954   }
1955   const DWARFSection &getAppleNamespacesSection() const override {
1956     return AppleNamespacesSection;
1957   }
1958   const DWARFSection &getAppleObjCSection() const override {
1959     return AppleObjCSection;
1960   }
1961   const DWARFSection &getNamesSection() const override {
1962     return NamesSection;
1963   }
1964 
1965   StringRef getFileName() const override { return FileName; }
1966   uint8_t getAddressSize() const override { return AddressSize; }
1967   void forEachInfoSections(
1968       function_ref<void(const DWARFSection &)> F) const override {
1969     for (auto &P : InfoSections)
1970       F(P.second);
1971   }
1972   void forEachTypesSections(
1973       function_ref<void(const DWARFSection &)> F) const override {
1974     for (auto &P : TypesSections)
1975       F(P.second);
1976   }
1977 };
1978 } // namespace
1979 
1980 std::unique_ptr<DWARFContext>
1981 DWARFContext::create(const object::ObjectFile &Obj,
1982                      ProcessDebugRelocations RelocAction,
1983                      const LoadedObjectInfo *L, std::string DWPName,
1984                      std::function<void(Error)> RecoverableErrorHandler,
1985                      std::function<void(Error)> WarningHandler) {
1986   auto DObj = std::make_unique<DWARFObjInMemory>(
1987       Obj, L, RecoverableErrorHandler, WarningHandler, RelocAction);
1988   return std::make_unique<DWARFContext>(std::move(DObj), std::move(DWPName),
1989                                         RecoverableErrorHandler,
1990                                         WarningHandler);
1991 }
1992 
1993 std::unique_ptr<DWARFContext>
1994 DWARFContext::create(const StringMap<std::unique_ptr<MemoryBuffer>> &Sections,
1995                      uint8_t AddrSize, bool isLittleEndian,
1996                      std::function<void(Error)> RecoverableErrorHandler,
1997                      std::function<void(Error)> WarningHandler) {
1998   auto DObj =
1999       std::make_unique<DWARFObjInMemory>(Sections, AddrSize, isLittleEndian);
2000   return std::make_unique<DWARFContext>(
2001       std::move(DObj), "", RecoverableErrorHandler, WarningHandler);
2002 }
2003 
2004 Error DWARFContext::loadRegisterInfo(const object::ObjectFile &Obj) {
2005   // Detect the architecture from the object file. We usually don't need OS
2006   // info to lookup a target and create register info.
2007   Triple TT;
2008   TT.setArch(Triple::ArchType(Obj.getArch()));
2009   TT.setVendor(Triple::UnknownVendor);
2010   TT.setOS(Triple::UnknownOS);
2011   std::string TargetLookupError;
2012   const Target *TheTarget =
2013       TargetRegistry::lookupTarget(TT.str(), TargetLookupError);
2014   if (!TargetLookupError.empty())
2015     return createStringError(errc::invalid_argument,
2016                              TargetLookupError.c_str());
2017   RegInfo.reset(TheTarget->createMCRegInfo(TT.str()));
2018   return Error::success();
2019 }
2020 
2021 uint8_t DWARFContext::getCUAddrSize() {
2022   // In theory, different compile units may have different address byte
2023   // sizes, but for simplicity we just use the address byte size of the
2024   // first compile unit. In practice the address size field is repeated across
2025   // various DWARF headers (at least in version 5) to make it easier to dump
2026   // them independently, not to enable varying the address size.
2027   auto CUs = compile_units();
2028   return CUs.empty() ? 0 : (*CUs.begin())->getAddressByteSize();
2029 }
2030