33 AcceleratorRecords(&
GlobalData.getAllocator()) {
44 OrigUnit(&OrigUnit), getUnitFromOffset(UnitFromOffset),
46 AcceleratorRecords(&
GlobalData.getAllocator()) {
50 DWARFDie CUDie = OrigUnit.getUnitDIE();
54 if (std::optional<DWARFFormValue> Val = CUDie.
find(dwarf::DW_AT_language)) {
60 if (!
GlobalData.getOptions().NoODR && Language.has_value())
71 LineTablePtr = File.Dwarf->getLineTableForUnit(&
getOrigUnit());
84 for (
DIEInfo &Info : DieInfoArray)
85 Info.unsetFlagsWhichSetDuringLiveAnalysis();
91 Dependencies.reset(
nullptr);
98 AcceleratorRecords.erase();
102 DebugAddrIndexMap.clear();
118 OutDieOffsetArray.resize(
getOrigUnit().getNumDIEs(), 0);
125 bool IsODRUnavailableFunctionScope) {
132 bool ChildIsODRUnavailableFunctionScope = IsODRUnavailableFunctionScope;
134 if (DieInfo.getIsInMouduleScope())
135 ChildInfo.setIsInMouduleScope();
137 if (DieInfo.getIsInFunctionScope())
138 ChildInfo.setIsInFunctionScope();
140 if (DieInfo.getIsInAnonNamespaceScope())
141 ChildInfo.setIsInAnonNamespaceScope();
143 switch (CurChild->getTag()) {
144 case dwarf::DW_TAG_module:
145 ChildInfo.setIsInMouduleScope();
146 if (DieEntry->
getTag() == dwarf::DW_TAG_compile_unit &&
151 case dwarf::DW_TAG_subprogram:
152 ChildInfo.setIsInFunctionScope();
153 if (!ChildIsODRUnavailableFunctionScope &&
154 !ChildInfo.getIsInMouduleScope()) {
156 {dwarf::DW_AT_abstract_origin, dwarf::DW_AT_specification}))
157 ChildIsODRUnavailableFunctionScope =
true;
160 case dwarf::DW_TAG_namespace: {
163 if (
find(CurChild, dwarf::DW_AT_extension))
166 if (!NamespaceEntry.
CU->
find(NamespaceEntry.
DieEntry, dwarf::DW_AT_name))
167 ChildInfo.setIsInAnonNamespaceScope();
174 ChildInfo.setTrackLiveness();
176 if ((!ChildInfo.getIsInAnonNamespaceScope() &&
177 !ChildIsODRUnavailableFunctionScope && !NoODR))
178 ChildInfo.setODRAvailable();
180 if (CurChild->hasChildren())
181 analyzeDWARFStructureRec(CurChild, ChildIsODRUnavailableFunctionScope);
188 if (LineTablePtr->hasFileAtIndex(FileIdx)) {
192 if (It == ResolvedFullPaths.end()) {
193 std::string OrigFileName;
194 bool FoundFileName = LineTablePtr->getFileNameByIndex(
199 assert(FoundFileName &&
"Must get file name from line table");
209 ResolvedParentPaths.find(ParentPath);
210 if (ParentIt == ResolvedParentPaths.end()) {
215 .insert({ParentPath, GlobalStrings.
insert(RealPath).first})
223 It = ResolvedFullPaths
224 .insert(std::make_pair(
225 FileIdx, GlobalStrings.
insert(ResolvedPath).first))
238 ResolvedFullPaths.shrink_and_clear();
239 ResolvedParentPaths.clear();
244 Dependencies.reset(
nullptr);
251 if (!Language || Language != dwarf::DW_LANG_Swift)
254 if (!
GlobalData.getOptions().ParseableSwiftInterfaces)
259 if (!Path.ends_with(
".swiftinterface"))
271 if (!DeveloperDir.
empty() && Path.starts_with(DeveloperDir))
275 if (std::optional<DWARFFormValue> Val =
find(DieEntry, dwarf::DW_AT_name)) {
282 auto &Entry = (*
GlobalData.getOptions().ParseableSwiftInterfaces)[*
Name];
290 if (!Entry.empty() && Entry != ResolvedPath) {
292 warn(
Twine(
"conflicting parseable interfaces for Swift Module ") + *
Name +
293 ": " + Entry +
" and " + Path +
".",
296 Entry = std::string(ResolvedPath);
318 assert(ChildInfo.getODRAvailable());
321 ChildrenIndexAssigner.getChildIndex(*
this, CurChild)))
324 if (
Error Err = assignTypeNamesRec(CurChild, NameBuilder))
332 if (std::optional<SectionDescriptor *> DebugInfoSection =
339 Patch.
RefCU.getPointer()->getDieOutOffset(
344 ->ListDebugULEB128DieRefPatch.forEach(
348 Patch.
RefCU.getPointer()->getDieOutOffset(
353 if (std::optional<SectionDescriptor *> DebugLocSection =
356 ->ListDebugULEB128DieRefPatch.forEach(
360 Patch.
RefCU.getPointer()->getDieOutOffset(
365 if (std::optional<SectionDescriptor *> DebugLocListsSection =
367 (*DebugLocListsSection)
368 ->ListDebugULEB128DieRefPatch.forEach(
372 Patch.
RefCU.getPointer()->getDieOutOffset(
387 RefCU = getUnitFromOffset(*
Offset);
397 }
else if (RefCU && CanResolveInterCUReferences) {
402 if (ReferredCUStage < Stage::Loaded || ReferredCUStage >
Stage::Cloned)
405 if (std::optional<uint32_t> RefDieIdx =
417 if (std::optional<DWARFFormValue> AttrVal =
find(DieEntry, Attr))
425 std::lock_guard<std::mutex> Guard(RangesMutex);
427 Ranges.
insert({FuncLowPc, FuncHighPc}, PcOffset);
429 LowPc = std::min(*LowPc, FuncLowPc + PcOffset);
431 LowPc = FuncLowPc + PcOffset;
432 this->HighPc = std::max(HighPc, FuncHighPc + PcOffset);
436 std::lock_guard<std::mutex> Guard(LabelsMutex);
437 Labels.
insert({LabelLowPc, PcOffset});
457 if (!DebugInfoSection.ListDebugLocPatch.empty()) {
462 uint64_t OffsetAfterUnitLength = emitLocListHeader(OutLocationSection);
464 DebugInfoSection.ListDebugLocPatch.forEach([&](
DebugLocPatch &Patch) {
473 if (!OriginalLocations) {
478 LinkedLocationExpressionsVector LinkedLocationExpressions;
480 LinkedLocationExpressionsWithOffsetPatches LinkedExpression;
482 if (CurExpression.Range) {
484 LinkedExpression.Expression.Range = {
495 LinkedExpression.Expression.Expr,
497 LinkedExpression.Patches);
499 LinkedLocationExpressions.push_back({LinkedExpression});
504 OutLocationSection.
OS.
tell());
505 emitLocListFragment(LinkedLocationExpressions, OutLocationSection);
508 if (OffsetAfterUnitLength > 0) {
509 assert(OffsetAfterUnitLength -
511 OffsetAfterUnitLength);
512 OutLocationSection.
apply(
513 OffsetAfterUnitLength -
515 dwarf::DW_FORM_sec_offset,
516 OutLocationSection.
OS.
tell() - OffsetAfterUnitLength);
528 uint64_t OffsetAfterUnitLength = OutLocationSection.
OS.
tell();
542 return OffsetAfterUnitLength;
546uint64_t CompileUnit::emitLocListFragment(
547 const LinkedLocationExpressionsVector &LinkedLocationExpression,
549 uint64_t OffsetBeforeLocationExpression = 0;
552 uint64_t BaseAddress = 0;
553 if (std::optional<uint64_t> LowPC =
getLowPc())
554 BaseAddress = *LowPC;
556 for (
const LinkedLocationExpressionsWithOffsetPatches &LocExpression :
557 LinkedLocationExpression) {
558 if (LocExpression.Expression.Range) {
560 LocExpression.Expression.Range->LowPC - BaseAddress,
563 LocExpression.Expression.Range->HighPC - BaseAddress,
567 OutLocationSection.
emitIntVal(LocExpression.Expression.Expr.size(), 2);
568 OffsetBeforeLocationExpression = OutLocationSection.
OS.
tell();
569 for (uint64_t *OffsetPtr : LocExpression.Patches)
570 *OffsetPtr += OffsetBeforeLocationExpression;
572 OutLocationSection.
OS
573 << StringRef((
const char *)LocExpression.Expression.Expr.data(),
574 LocExpression.Expression.Expr.size());
582 return OffsetBeforeLocationExpression;
585 std::optional<uint64_t> BaseAddress;
586 for (
const LinkedLocationExpressionsWithOffsetPatches &LocExpression :
587 LinkedLocationExpression) {
588 if (LocExpression.Expression.Range) {
592 BaseAddress = LocExpression.Expression.Range->LowPC;
595 OutLocationSection.
emitIntVal(dwarf::DW_LLE_base_addressx, 1);
597 OutLocationSection.
OS);
601 OutLocationSection.
emitIntVal(dwarf::DW_LLE_offset_pair, 1);
604 encodeULEB128(LocExpression.Expression.Range->LowPC - *BaseAddress,
605 OutLocationSection.
OS);
608 encodeULEB128(LocExpression.Expression.Range->HighPC - *BaseAddress,
609 OutLocationSection.
OS);
612 OutLocationSection.
emitIntVal(dwarf::DW_LLE_default_location, 1);
614 encodeULEB128(LocExpression.Expression.Expr.size(), OutLocationSection.
OS);
615 OffsetBeforeLocationExpression = OutLocationSection.
OS.
tell();
616 for (uint64_t *OffsetPtr : LocExpression.Patches)
617 *OffsetPtr += OffsetBeforeLocationExpression;
619 OutLocationSection.
OS << StringRef(
620 (
const char *)LocExpression.Expression.Expr.data(),
621 LocExpression.Expression.Expr.size());
625 OutLocationSection.
emitIntVal(dwarf::DW_LLE_end_of_list, 1);
626 return OffsetBeforeLocationExpression;
629Error CompileUnit::emitDebugAddrSection() {
630 if (
GlobalData.getOptions().UpdateIndexTablesOnly)
636 if (DebugAddrIndexMap.empty())
639 SectionDescriptor &OutAddrSection =
646 uint64_t OffsetAfterSectionLength = OutAddrSection.
OS.
tell();
658 for (uint64_t AddrValue : DebugAddrIndexMap.getValues())
662 OutAddrSection.
apply(
663 OffsetAfterSectionLength -
665 dwarf::DW_FORM_sec_offset,
666 OutAddrSection.
OS.
tell() - OffsetAfterSectionLength);
678 LinkedFunctionRanges.
insert(
681 emitAranges(LinkedFunctionRanges);
699 if (!DebugInfoSection.ListDebugRangePatch.empty()) {
700 std::optional<AddressRangeValuePair> CachedRange;
701 uint64_t OffsetAfterUnitLength = emitRangeListHeader(OutRangeSection);
704 DebugInfoSection.ListDebugRangePatch.forEach([&](
DebugRangePatch &Patch) {
706 CompileUnitRangePtr = &Patch;
716 InputDebugRangesSectionOffset)) {
718 for (
const auto &
Range : *InputRanges) {
719 if (!CachedRange || !CachedRange->Range.contains(
Range.LowPC))
725 warn(
"inconsistent range data.");
730 LinkedRanges.
insert({
Range.LowPC + CachedRange->Value,
731 Range.HighPC + CachedRange->Value});
735 warn(
"invalid range list ignored.");
740 OutRangeSection.
OS.
tell());
741 emitRangeListFragment(LinkedRanges, OutRangeSection);
745 if (CompileUnitRangePtr !=
nullptr) {
749 dwarf::DW_FORM_sec_offset,
750 OutRangeSection.
OS.
tell());
751 emitRangeListFragment(LinkedFunctionRanges, OutRangeSection);
754 if (OffsetAfterUnitLength > 0) {
755 assert(OffsetAfterUnitLength -
757 OffsetAfterUnitLength);
758 OutRangeSection.
apply(
759 OffsetAfterUnitLength -
761 dwarf::DW_FORM_sec_offset,
762 OutRangeSection.
OS.
tell() - OffsetAfterUnitLength);
773 uint64_t OffsetAfterUnitLength = OutRangeSection.
OS.
tell();
787 return OffsetAfterUnitLength;
790void CompileUnit::emitRangeListFragment(
const AddressRanges &LinkedRanges,
794 uint64_t BaseAddress = 0;
795 if (std::optional<uint64_t> LowPC =
getLowPc())
796 BaseAddress = *LowPC;
798 for (
const AddressRange &
Range : LinkedRanges) {
811 std::optional<uint64_t> BaseAddress;
812 for (
const AddressRange &
Range : LinkedRanges) {
814 BaseAddress =
Range.start();
817 OutRangeSection.
emitIntVal(dwarf::DW_RLE_base_addressx, 1);
822 OutRangeSection.
emitIntVal(dwarf::DW_RLE_offset_pair, 1);
832 OutRangeSection.
emitIntVal(dwarf::DW_RLE_end_of_list, 1);
835void CompileUnit::emitAranges(AddressRanges &LinkedFunctionRanges) {
836 if (LinkedFunctionRanges.
empty())
839 SectionDescriptor &DebugInfoSection =
841 SectionDescriptor &OutArangesSection =
856 uint64_t OffsetAfterArangesLengthField = OutArangesSection.
OS.
tell();
859 OutArangesSection.notePatch(
860 DebugOffsetPatch{OutArangesSection.
OS.
tell(), &DebugInfoSection});
866 for (
size_t Idx = 0; Idx <
Padding; Idx++)
870 for (
const AddressRange &
Range : LinkedFunctionRanges) {
881 uint64_t OffsetAfterArangesEnd = OutArangesSection.
OS.
tell();
884 OutArangesSection.
apply(
885 OffsetAfterArangesLengthField -
887 dwarf::DW_FORM_sec_offset,
888 OffsetAfterArangesEnd - OffsetAfterArangesLengthField);
896 DWARFDie OrigUnitDie = OrigUnit.getUnitDIE();
899 if (std::optional<uint64_t> MacroAttr =
903 emitMacroTableImpl(Table, *MacroAttr,
true);
908 if (std::optional<uint64_t> MacroAttr =
912 emitMacroTableImpl(Table, *MacroAttr,
false);
921 bool hasDWARFv5Header) {
927 bool DefAttributeIsReported =
false;
928 bool UndefAttributeIsReported =
false;
929 bool ImportAttributeIsReported =
false;
931 for (
const DWARFDebugMacro::MacroList &
List : MacroTable->MacroLists) {
932 if (OffsetToMacroTable == List.Offset) {
934 if (hasDWARFv5Header) {
936 OutSection.emitIntVal(List.Header.Version, sizeof(List.Header.Version));
938 uint8_t Flags = List.Header.Flags;
942 DWARFDebugMacro::HeaderFlagMask::MACRO_OPCODE_OPERANDS_TABLE) {
944 ~DWARFDebugMacro::HeaderFlagMask::MACRO_OPCODE_OPERANDS_TABLE;
945 warn(
"opcode_operands_table is not supported yet.");
949 std::optional<uint64_t> StmtListOffset;
950 if (Flags & DWARFDebugMacro::HeaderFlagMask::MACRO_DEBUG_LINE_OFFSET) {
952 for (auto &V : getOutUnitDIE()->values()) {
953 if (V.getAttribute() == dwarf::DW_AT_stmt_list) {
954 StmtListOffset = V.getDIEInteger().getValue();
959 if (!StmtListOffset) {
960 Flags &= ~DWARFDebugMacro::HeaderFlagMask::MACRO_DEBUG_LINE_OFFSET;
961 warn(
"couldn`t find line table for macro table.");
966 OutSection.emitIntVal(Flags, sizeof(Flags));
969 if (StmtListOffset) {
970 OutSection.notePatch(DebugOffsetPatch{
971 OutSection.OS.tell(),
972 &getOrCreateSectionDescriptor(DebugSectionKind::DebugLine)});
975 OutSection.emitIntVal(0xBADDEF, List.Header.getOffsetByteSize());
980 for (const DWARFDebugMacro::Entry &MacroEntry : List.Macros) {
981 if (MacroEntry.Type == 0) {
982 encodeULEB128(MacroEntry.Type, OutSection.OS);
986 uint8_t MacroType = MacroEntry.Type;
989 bool HasVendorSpecificExtension =
990 (!hasDWARFv5Header &&
991 MacroType == dwarf::DW_MACINFO_vendor_ext) ||
992 (hasDWARFv5Header && (MacroType >= dwarf::DW_MACRO_lo_user &&
993 MacroType <= dwarf::DW_MACRO_hi_user));
995 if (HasVendorSpecificExtension) {
997 OutSection.emitIntVal(MacroType, 1);
1000 encodeULEB128(MacroEntry.ExtConstant, OutSection.OS);
1003 OutSection.emitString(dwarf::DW_FORM_string, MacroEntry.ExtStr);
1005 warn(
"unknown macro type. skip.");
1013 case dwarf::DW_MACRO_define:
1014 case dwarf::DW_MACRO_undef: {
1016 OutSection.emitIntVal(MacroType, 1);
1019 encodeULEB128(MacroEntry.Line, OutSection.OS);
1022 OutSection.emitString(dwarf::DW_FORM_string, MacroEntry.MacroStr);
1024 case dwarf::DW_MACRO_define_strp:
1025 case dwarf::DW_MACRO_undef_strp:
1026 case dwarf::DW_MACRO_define_strx:
1027 case dwarf::DW_MACRO_undef_strx: {
1030 switch (MacroType) {
1031 case dwarf::DW_MACRO_define_strx: {
1032 MacroType = dwarf::DW_MACRO_define_strp;
1033 if (!DefAttributeIsReported) {
1034 warn(
"DW_MACRO_define_strx unsupported yet. Convert to "
1035 "DW_MACRO_define_strp.");
1036 DefAttributeIsReported = true;
1039 case dwarf::DW_MACRO_undef_strx: {
1040 MacroType = dwarf::DW_MACRO_undef_strp;
1041 if (!UndefAttributeIsReported) {
1042 warn(
"DW_MACRO_undef_strx unsupported yet. Convert to "
1043 "DW_MACRO_undef_strp.");
1044 UndefAttributeIsReported = true;
1053 OutSection.emitIntVal(MacroType, 1);
1056 encodeULEB128(MacroEntry.Line, OutSection.OS);
1059 OutSection.emitString(dwarf::DW_FORM_strp, MacroEntry.MacroStr);
1062 case dwarf::DW_MACRO_start_file: {
1064 OutSection.emitIntVal(MacroType, 1);
1066 encodeULEB128(MacroEntry.Line, OutSection.OS);
1068 encodeULEB128(MacroEntry.File, OutSection.OS);
1070 case dwarf::DW_MACRO_end_file: {
1072 OutSection.emitIntVal(MacroType, 1);
1074 case dwarf::DW_MACRO_import:
1075 case dwarf::DW_MACRO_import_sup: {
1076 if (!ImportAttributeIsReported) {
1077 warn(
"DW_MACRO_import and DW_MACRO_import_sup are unsupported "
1079 ImportAttributeIsReported = true;
1093 std::optional<int64_t> VarAddressAdjustment,
1098 uint8_t OrigAddressByteSize = OrigUnit.getAddressByteSize();
1101 for (
auto &
Op : InputExpression) {
1102 auto Desc =
Op.getDescription();
1105 if ((
Desc.Op.size() == 2 &&
Desc.Op[0] == Encoding::BaseTypeRef) ||
1106 (
Desc.Op.size() == 2 &&
Desc.Op[1] == Encoding::BaseTypeRef &&
1107 Desc.Op[0] != Encoding::Size1))
1108 warn(
"unsupported DW_OP encoding.");
1110 if ((
Desc.Op.size() == 1 &&
Desc.Op[0] == Encoding::BaseTypeRef) ||
1111 (
Desc.Op.size() == 2 &&
Desc.Op[1] == Encoding::BaseTypeRef &&
1112 Desc.Op[0] == Encoding::Size1)) {
1114 assert(OpOffset <
Op.getEndOffset());
1115 uint32_t ULEBsize =
Op.getEndOffset() - OpOffset - 1;
1119 assert(!
Op.getSubCode() &&
"SubOps not yet supported");
1122 if (
Desc.Op.size() == 1) {
1123 RefOffset =
Op.getRawOperand(0);
1126 RefOffset =
Op.getRawOperand(1);
1130 unsigned RealSize = 0;
1134 if (RefOffset > 0 ||
Op.getCode() != dwarf::DW_OP_convert) {
1135 RefOffset += OrigUnit.getOffset();
1137 if (std::optional<uint32_t> Idx =
1138 OrigUnit.getDIEIndexForOffset(RefOffset))
1147 Section.notePatchWithOffsetUpdate(
1154 if (RealSize > ULEBsize) {
1157 warn(
"base type ref doesn't fit.");
1159 assert(RealSize == ULEBsize &&
"padding failed");
1162 }
else if (!
getGlobalData().getOptions().UpdateIndexTablesOnly &&
1163 Op.getCode() == dwarf::DW_OP_addrx) {
1164 if (std::optional<object::SectionedAddress> SA =
1165 OrigUnit.getAddrOffsetSectionItem(
Op.getRawOperand(0))) {
1170 OutputExpression.
push_back(dwarf::DW_OP_addr);
1171 uint64_t LinkedAddress = SA->Address + VarAddressAdjustment.value_or(0);
1175 reinterpret_cast<const uint8_t *
>(&LinkedAddress),
1176 OrigAddressByteSize);
1177 OutputExpression.
append(AddressBytes.
begin(), AddressBytes.
end());
1179 warn(
"cann't read DW_OP_addrx operand.");
1180 }
else if (!
getGlobalData().getOptions().UpdateIndexTablesOnly &&
1181 Op.getCode() == dwarf::DW_OP_constx) {
1182 if (std::optional<object::SectionedAddress> SA =
1183 OrigUnit.getAddrOffsetSectionItem(
Op.getRawOperand(0))) {
1188 std::optional<uint8_t> OutOperandKind;
1189 switch (OrigAddressByteSize) {
1191 OutOperandKind = dwarf::DW_OP_const2u;
1194 OutOperandKind = dwarf::DW_OP_const4u;
1197 OutOperandKind = dwarf::DW_OP_const8u;
1201 formatv((
"unsupported address size: {0}."), OrigAddressByteSize));
1205 if (OutOperandKind) {
1206 OutputExpression.
push_back(*OutOperandKind);
1208 SA->Address + VarAddressAdjustment.value_or(0);
1212 reinterpret_cast<const uint8_t *
>(&LinkedAddress),
1213 OrigAddressByteSize);
1214 OutputExpression.
append(AddressBytes.
begin(), AddressBytes.
end());
1217 warn(
"cann't read DW_OP_constx operand.");
1224 OpOffset =
Op.getEndOffset();
1229 std::optional<std::reference_wrapper<const Triple>> TargetTriple,
1238 if (ArtificialTypeUnit)
1242 std::pair<DIE *, TypeEntry *> OutCUDie =
cloneDIE(
1244 std::nullopt, std::nullopt, Allocator, ArtificialTypeUnit);
1247 if (!TargetTriple.has_value() || (OutCUDie.first ==
nullptr))
1270 if (
Error Err = emitDebugAddrSection())
1286 uint64_t OutOffset, std::optional<int64_t> FuncAddressAdjustment,
1292 bool NeedToClonePlainDIE = Info.needToKeepInPlainDwarf();
1293 bool NeedToCloneTypeDIE =
1294 (InputDieEntry->
getTag() != dwarf::DW_TAG_compile_unit) &&
1295 Info.needToPlaceInTypeTable();
1296 std::pair<DIE *, TypeEntry *> ClonedDIE;
1300 if (NeedToClonePlainDIE)
1303 ClonedDIE.first = createPlainDIEandCloneAttributes(
1304 InputDieEntry, PlainDIEGenerator, OutOffset, FuncAddressAdjustment,
1305 VarAddressAdjustment);
1306 if (NeedToCloneTypeDIE) {
1309 assert(ArtificialTypeUnit !=
nullptr);
1313 ClonedDIE.second = createTypeDIEandCloneAttributes(
1314 InputDieEntry, TypeDIEGenerator, ClonedParentTypeDIE,
1315 ArtificialTypeUnit);
1318 ClonedDIE.second ? ClonedDIE.second : ClonedParentTypeDIE;
1320 bool HasPlainChildrenToClone =
1321 (ClonedDIE.first && Info.getKeepPlainChildren());
1323 bool HasTypeChildrenToClone =
1324 ((ClonedDIE.second ||
1325 InputDieEntry->
getTag() == dwarf::DW_TAG_compile_unit) &&
1326 Info.getKeepTypeChildren());
1329 if (HasPlainChildrenToClone || HasTypeChildrenToClone) {
1334 std::pair<DIE *, TypeEntry *> ClonedChild =
cloneDIE(
1335 CurChild, TypeParentForChild, OutOffset, FuncAddressAdjustment,
1336 VarAddressAdjustment, Allocator, ArtificialTypeUnit);
1338 if (ClonedChild.first) {
1340 ClonedChild.first->getOffset() + ClonedChild.first->getSize();
1341 PlainDIEGenerator.
addChild(ClonedChild.first);
1344 assert(ClonedDIE.first ==
nullptr ||
1345 HasPlainChildrenToClone == ClonedDIE.first->hasChildren());
1348 if (HasPlainChildrenToClone)
1349 OutOffset +=
sizeof(int8_t);
1353 if (ClonedDIE.first !=
nullptr)
1354 ClonedDIE.first->setSize(OutOffset - ClonedDIE.first->getOffset());
1359DIE *CompileUnit::createPlainDIEandCloneAttributes(
1361 uint64_t &OutOffset, std::optional<int64_t> &FuncAddressAdjustment,
1362 std::optional<int64_t> &VarAddressAdjustment) {
1365 DIE *ClonedDIE =
nullptr;
1366 bool HasLocationExpressionAddress =
false;
1367 if (InputDieEntry->
getTag() == dwarf::DW_TAG_subprogram) {
1369 FuncAddressAdjustment =
1371 getDIE(InputDieEntry),
false);
1372 }
else if (InputDieEntry->
getTag() == dwarf::DW_TAG_label) {
1374 std::optional<uint64_t> lowPC =
1378 if (It != Labels.
end())
1379 FuncAddressAdjustment = It->second;
1381 }
else if (InputDieEntry->
getTag() == dwarf::DW_TAG_variable) {
1383 std::pair<bool, std::optional<int64_t>> LocExprAddrAndRelocAdjustment =
1385 getDIE(InputDieEntry),
false);
1387 HasLocationExpressionAddress = LocExprAddrAndRelocAdjustment.first;
1388 if (LocExprAddrAndRelocAdjustment.first &&
1389 LocExprAddrAndRelocAdjustment.second)
1390 VarAddressAdjustment = *LocExprAddrAndRelocAdjustment.second;
1393 ClonedDIE = PlainDIEGenerator.
createDIE(InputDieEntry->
getTag(), OutOffset);
1400 DIEAttributeCloner AttributesCloner(ClonedDIE, *
this,
this, InputDieEntry,
1401 PlainDIEGenerator, FuncAddressAdjustment,
1402 VarAddressAdjustment,
1403 HasLocationExpressionAddress);
1404 AttributesCloner.clone();
1407 AcceleratorRecordsSaver AccelRecordsSaver(
getGlobalData(), *
this,
this);
1408 AccelRecordsSaver.save(InputDieEntry, ClonedDIE, AttributesCloner.AttrInfo,
1412 AttributesCloner.finalizeAbbreviations(
Info.getKeepPlainChildren());
1418DIE *CompileUnit::allocateTypeDie(
TypeEntryBody *TypeDescriptor,
1421 bool IsParentDeclaration) {
1422 DIE *DefinitionDie = TypeDescriptor->
Die;
1430 if (IsDeclaration && !DeclarationDie) {
1432 DIE *NewDie = TypeDIEGenerator.
createDIE(DieTag, 0);
1433 if (TypeDescriptor->
DeclarationDie.compare_exchange_strong(DeclarationDie,
1436 }
else if (IsDeclaration && !IsParentDeclaration && OldParentIsDeclaration) {
1440 OldParentIsDeclaration,
false)) {
1441 DIE *NewDie = TypeDIEGenerator.
createDIE(DieTag, 0);
1445 }
else if (!IsDeclaration && IsParentDeclaration && !DeclarationDie) {
1448 DIE *NewDie = TypeDIEGenerator.
createDIE(DieTag, 0);
1449 if (TypeDescriptor->
DeclarationDie.compare_exchange_strong(DeclarationDie,
1452 }
else if (!IsDeclaration && !IsParentDeclaration) {
1454 DIE *NewDie = TypeDIEGenerator.
createDIE(DieTag, 0);
1455 if (TypeDescriptor->
Die.compare_exchange_strong(DefinitionDie, NewDie)) {
1464TypeEntry *CompileUnit::createTypeDIEandCloneAttributes(
1465 const DWARFDebugInfoEntry *InputDieEntry,
DIEGenerator &TypeDIEGenerator,
1467 assert(ArtificialTypeUnit !=
nullptr);
1468 uint32_t InputDieIdx =
getDIEIndex(InputDieEntry);
1471 assert(Entry !=
nullptr);
1472 assert(ClonedParentTypeDIE !=
nullptr);
1473 TypeEntryBody *EntryBody =
1475 Entry, ClonedParentTypeDIE);
1478 bool IsDeclaration =
1481 bool ParentIsDeclaration =
false;
1482 if (std::optional<uint32_t> ParentIdx = InputDieEntry->
getParentIdx())
1483 ParentIsDeclaration =
1487 allocateTypeDie(EntryBody, TypeDIEGenerator, InputDieEntry->
getTag(),
1488 IsDeclaration, ParentIsDeclaration);
1490 if (OutDIE !=
nullptr) {
1491 assert(ArtificialTypeUnit !=
nullptr);
1494 DIEAttributeCloner AttributesCloner(OutDIE, *
this, ArtificialTypeUnit,
1495 InputDieEntry, TypeDIEGenerator,
1496 std::nullopt, std::nullopt,
false);
1497 AttributesCloner.clone();
1500 AcceleratorRecordsSaver AccelRecordsSaver(
getGlobalData(), *
this,
1501 ArtificialTypeUnit);
1502 AccelRecordsSaver.save(InputDieEntry, OutDIE, AttributesCloner.AttrInfo,
1507 OutDIE->
setSize(AttributesCloner.getOutOffset() + 1);
1516 if (InputLineTable ==
nullptr) {
1518 warn(
"cann't load line table.");
1530 OutLineTable.
Rows = InputLineTable->
Rows;
1533 if (OutLineTable.
Rows.size() == 1 && OutLineTable.
Rows[0].EndSequence)
1534 OutLineTable.
Rows.clear();
1539 std::vector<DWARFDebugLine::Row> NewRows;
1540 NewRows.reserve(InputLineTable->
Rows.size());
1544 std::vector<DWARFDebugLine::Row> Seq;
1547 std::optional<AddressRangeValuePair> CurrRange;
1566 if (!CurrRange || !CurrRange->Range.contains(Row.Address.Address)) {
1570 CurrRange ? CurrRange->Range.end() + CurrRange->Value : -1ULL;
1571 CurrRange = FunctionRanges.getRangeThatContains(Row.Address.Address);
1572 if (StopAddress != -1ULL && !Seq.empty()) {
1575 auto NextLine = Seq.back();
1576 NextLine.Address.Address = StopAddress;
1577 NextLine.EndSequence = 1;
1578 NextLine.PrologueEnd = 0;
1579 NextLine.BasicBlock = 0;
1580 NextLine.EpilogueBegin = 0;
1581 Seq.push_back(NextLine);
1582 insertLineSequence(Seq, NewRows);
1590 if (Row.EndSequence && Seq.empty())
1594 Row.Address.Address += CurrRange->Value;
1595 Seq.emplace_back(Row);
1597 if (Row.EndSequence)
1598 insertLineSequence(Seq, NewRows);
1601 OutLineTable.
Rows = std::move(NewRows);
1607void CompileUnit::insertLineSequence(std::vector<DWARFDebugLine::Row> &Seq,
1608 std::vector<DWARFDebugLine::Row> &Rows) {
1612 if (!Rows.empty() && Rows.back().Address < Seq.front().Address) {
1626 if (InsertPoint != Rows.end() && InsertPoint->Address == Front &&
1627 InsertPoint->EndSequence) {
1628 *InsertPoint = Seq.front();
1629 Rows.insert(InsertPoint + 1, Seq.begin() + 1, Seq.end());
1631 Rows.insert(InsertPoint, Seq.begin(), Seq.end());
1637#if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
1657 llvm::errs() <<
" KeepPlainChildren: " << getKeepPlainChildren();
1658 llvm::errs() <<
" KeepTypeChildren: " << getKeepTypeChildren();
1659 llvm::errs() <<
" IsInMouduleScope: " << getIsInMouduleScope();
1660 llvm::errs() <<
" IsInFunctionScope: " << getIsInFunctionScope();
1661 llvm::errs() <<
" IsInAnonNamespaceScope: " << getIsInAnonNamespaceScope();
1662 llvm::errs() <<
" ODRAvailable: " << getODRAvailable();
1663 llvm::errs() <<
" TrackLiveness: " << getTrackLiveness();
1668std::optional<std::pair<StringRef, StringRef>>
1679 return std::nullopt;
1684std::optional<std::pair<StringRef, StringRef>>
1686 FileNamesCache::iterator FileData =
FileNames.find(FileIdx);
1688 return std::make_pair(
StringRef(FileData->second.first),
1693 if (LineTable->hasFileAtIndex(FileIdx)) {
1696 LineTable->Prologue.getFileNameEntry(FileIdx);
1701 return std::nullopt;
1704 std::string FileName = *
Name;
1706 FileNamesCache::iterator FileData =
1708 .insert(std::make_pair(
1710 std::make_pair(std::string(
""), std::move(FileName))))
1712 return std::make_pair(
StringRef(FileData->second.first),
1722 if ((Entry.DirIdx != 0) &&
1723 Entry.DirIdx < LineTable->Prologue.IncludeDirectories.size()) {
1725 LineTable->Prologue.IncludeDirectories[Entry.DirIdx]
1728 IncludeDir = *DirName;
1731 return std::nullopt;
1735 if (0 < Entry.DirIdx &&
1736 Entry.DirIdx <= LineTable->Prologue.IncludeDirectories.size()) {
1738 LineTable->Prologue.IncludeDirectories[Entry.DirIdx - 1]
1741 IncludeDir = *DirName;
1744 return std::nullopt;
1757 FileNamesCache::iterator FileData =
1760 std::make_pair(FileIdx, std::make_pair(std::string(FilePath),
1761 std::move(FileName))))
1763 return std::make_pair(
StringRef(FileData->second.first),
1768 return std::nullopt;
1771#define MAX_REFERENCIES_DEPTH 1000
1774 std::optional<UnitEntryPairTy> RefDiePair;
1778 CUDiePair.
DieEntry, dwarf::DW_AT_extension,
1780 if (!RefDiePair || !RefDiePair->DieEntry)
1783 CUDiePair = *RefDiePair;
1790 if (std::optional<uint32_t> ParentIdx =
DieEntry->getParentIdx())
1793 return std::nullopt;
1829 bool InterCUProcessingStarted, std::atomic<bool> &HasNewInterconnectedCUs) {
1833 return Dependencies->resolveDependenciesAndMarkLiveness(
1834 InterCUProcessingStarted, HasNewInterconnectedCUs);
1838 assert(Dependencies.get());
1840 return Dependencies->updateDependenciesCompleteness();
1844 assert(Dependencies.get());
1846 Dependencies->verifyKeepChain();
1851 dwarf::DW_AT_type, dwarf::DW_AT_specification,
1852 dwarf::DW_AT_abstract_origin, dwarf::DW_AT_import};
1854 return ODRAttributes;
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
Analysis containing CSE Info
#define LLVM_DUMP_METHOD
Mark debug helper function definitions like dump() that should not be stripped from debug builds.
ConstantRange Range(APInt(BitWidth, Low), APInt(BitWidth, High))
#define MAX_REFERENCIES_DEPTH
static bool isValid(const char C)
Returns true if C is a valid mangled character: <0-9a-zA-Z_>.
std::optional< T > getRangeThatContains(uint64_t Addr) const
void insert(AddressRange Range, int64_t Value)
The AddressRanges class helps normalize address range collections.
Collection::const_iterator insert(AddressRange Range)
ArrayRef - Represent a constant reference to an array (0 or more elements consecutively in memory),...
std::pair< KeyDataTy *, bool > insert(const KeyTy &NewValue)
Insert new value NewValue or return already existing entry.
A structured debug information entry.
DWARFDebugInfoEntry - A DIE with only the minimum required data.
dwarf::Tag getTag() const
std::optional< uint32_t > getParentIdx() const
Returns index of the parent die.
const DWARFAbbreviationDeclaration * getAbbreviationDeclarationPtr() const
Utility class that carries the DWARF compile/type unit and the debug info entry in an object.
LLVM_ABI std::optional< DWARFFormValue > find(dwarf::Attribute Attr) const
Extract the specified attribute from this DIE.
const DWARFDebugInfoEntry * getDebugInfoEntry() const
LLVM_ABI const char * getName(DINameKind Kind) const
Return the DIE name resolving DW_AT_specification or DW_AT_abstract_origin references if necessary.
Encoding
Size and signedness of expression operations' operands.
StringRef getData() const
const dwarf::FormParams & getFormParams() const
DWARFDie getUnitDIE(bool ExtractUnitDIEOnly=true)
uint8_t getAddressByteSize() const
const char * getCompilationDir()
Expected< DWARFLocationExpressionsVector > findLoclistFromOffset(uint64_t Offset)
bool isLittleEndian() const
uint64_t getOffset() const
iterator find(const_arg_type_t< KeyT > Val)
DenseMapIterator< KeyT, ValueT, KeyInfoT, BucketT > iterator
DenseMapIterator< KeyT, ValueT, KeyInfoT, BucketT, true > const_iterator
std::pair< iterator, bool > insert(const std::pair< KeyT, ValueT > &KV)
Lightweight error class with error context and mandatory checking.
static ErrorSuccess success()
Create a success value.
Tagged union holding either a T or a Error.
Error takeError()
Take ownership of the stored error.
SmallString - A SmallString is just a SmallVector with methods and accessors that make it work better...
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
void append(ItTy in_start, ItTy in_end)
Add the specified range to the end of the SmallVector.
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
StringMapIterBase< ValueTy, false > iterator
StringRef - Represent a constant reference to a string, i.e.
std::string str() const
str - Get the contents as an std::string.
constexpr bool empty() const
empty - Check if the string is empty.
StringRef slice(size_t Start, size_t End) const
Return a reference to the substring from [Start, End).
Triple - Helper class for working with autoconf configuration names.
Twine - A lightweight data structure for efficiently representing the concatenation of temporary valu...
This class represents DWARF information for source file and it's address map.
std::unique_ptr< AddressesMap > Addresses
Helpful address information(list of valid address ranges, relocations).
std::unique_ptr< DWARFContext > Dwarf
Source DWARF information.
@ Pub
.debug_pubnames, .debug_pubtypes
CompileUnit(DWARFUnit &OrigUnit, unsigned ID, bool CanUseODR, StringRef ClangModuleName)
TypeUnit * getAsTypeUnit()
Returns TypeUnit if applicable.
DwarfUnit * operator->()
Accessor for common functionality.
PointerUnion< CompileUnit *, TypeUnit * > Ptr
CompileUnit * getAsCompileUnit()
Returns CompileUnit if applicable.
OutputUnitVariantPtr(CompileUnit *U)
void addLabelLowPc(uint64_t LabelLowPc, int64_t PcOffset)
Add the low_pc of a label that is relocated by applying offset PCOffset.
Error cloneAndEmitDebugLocations()
Clone and emit debug locations(.debug_loc/.debug_loclists).
void cloneDieAttrExpression(const DWARFExpression &InputExpression, SmallVectorImpl< uint8_t > &OutputExpression, SectionDescriptor &Section, std::optional< int64_t > VarAddressAdjustment, OffsetsPtrVector &PatchesOffsets)
Clone attribute location axpression.
void maybeResetToLoadedStage()
Reset compile units data(results of liveness analysis, clonning) if current stage greater than Stage:...
void addFunctionRange(uint64_t LowPC, uint64_t HighPC, int64_t PCOffset)
Add a function range [LowPC, HighPC) that is relocated by applying offset PCOffset.
void analyzeImportedModule(const DWARFDebugInfoEntry *DieEntry)
Collect references to parseable Swift interfaces in imported DW_TAG_module blocks.
std::pair< DIE *, TypeEntry * > cloneDIE(const DWARFDebugInfoEntry *InputDieEntry, TypeEntry *ClonedParentTypeDIE, uint64_t OutOffset, std::optional< int64_t > FuncAddressAdjustment, std::optional< int64_t > VarAddressAdjustment, BumpPtrAllocator &Allocator, TypeUnit *ArtificialTypeUnit)
void cleanupDataAfterClonning()
Cleanup unneeded resources after compile unit is cloned.
Error assignTypeNames(TypePool &TypePoolRef)
Search for type entries and assign names.
@ TypeTable
Corresponding DIE goes to the type table only.
@ PlainDwarf
Corresponding DIE goes to the plain dwarf only.
Error cloneAndEmitLineTable(const Triple &TargetTriple)
Error cloneAndEmitRanges()
Clone and emit ranges.
void updateDieRefPatchesWithClonedOffsets()
After cloning stage the output DIEs offsets are deallocated.
uint64_t getDebugAddrIndex(uint64_t Addr)
Returns index(inside .debug_addr) of an address.
const DWARFFile & getContaingFile() const
Returns DWARFFile containing this compile unit.
bool resolveDependenciesAndMarkLiveness(bool InterCUProcessingStarted, std::atomic< bool > &HasNewInterconnectedCUs)
Search for subprograms and variables referencing live code and discover dependend DIEs.
bool updateDependenciesCompleteness()
Check dependend DIEs for incompatible placement.
bool loadInputDIEs()
Load DIEs of input compilation unit.
const RangesTy & getFunctionRanges() const
Returns function ranges of this unit.
Error cloneAndEmitDebugMacro()
Clone and emit debug macros(.debug_macinfo/.debug_macro).
Error cloneAndEmit(std::optional< std::reference_wrapper< const Triple > > TargetTriple, TypeUnit *ArtificialTypeUnit)
Clone and emit this compilation unit.
void setStage(Stage Stage)
Set stage of overall processing.
Stage getStage() const
Returns stage of overall processing.
CompileUnit(LinkingGlobalData &GlobalData, unsigned ID, StringRef ClangModuleName, DWARFFile &File, OffsetToUnitTy UnitFromOffset, dwarf::FormParams Format, llvm::endianness Endianess)
void verifyDependencies()
Check DIEs to have a consistent marking(keep marking, placement marking).
Stage
The stages of new compile unit processing.
@ Cloned
Output DWARF is generated.
@ CreatedNotLoaded
Created, linked with input DWARF file.
@ Loaded
Input DWARF is loaded.
std::optional< uint64_t > getLowPc() const
Returns value of DW_AT_low_pc attribute.
std::optional< std::pair< StringRef, StringRef > > getDirAndFilenameFromLineTable(const DWARFFormValue &FileIdxValue)
Returns directory and file from the line table by index.
std::optional< UnitEntryPairTy > resolveDIEReference(const DWARFFormValue &RefValue, ResolveInterCUReferencesMode CanResolveInterCUReferences)
Resolve the DIE attribute reference that has been extracted in RefValue.
void loadLineTable()
Loads unit line table.
StringEntry * getFileName(unsigned FileIdx, StringPool &GlobalStrings)
Returns name of the file for the FileIdx from the unit`s line table.
This class is a helper to create output DIE tree.
void addChild(DIE *Child)
Adds a specified Child to the current DIE.
DIE * createDIE(dwarf::Tag DieTag, uint32_t OutOffset)
Creates a DIE of specified tag DieTag and OutOffset.
This class discovers DIEs dependencies: marks "live" DIEs, marks DIE locations (whether DIE should be...
std::string UnitName
The name of this unit.
LinkingGlobalData & getGlobalData()
Return global data.
std::vector< std::unique_ptr< DIEAbbrev > > Abbreviations
Storage for the unique Abbreviations.
DIE * OutUnitDIE
Output unit DIE.
std::string SysRoot
The DW_AT_LLVM_sysroot of this unit.
bool isClangModule() const
Return true if this compile unit is from Clang module.
unsigned ID
Unique ID for the unit.
const std::string & getClangModuleName() const
Return Clang module name;.
void setOutUnitDIE(DIE *UnitDie)
Set output unit DIE.
DwarfUnit(LinkingGlobalData &GlobalData, unsigned ID, StringRef ClangModuleName)
std::string ClangModuleName
If this is a Clang module, this holds the module's name.
FoldingSet< DIEAbbrev > AbbreviationsSet
FoldingSet that uniques the abbreviations.
StringRef getSysRoot()
Return the DW_AT_LLVM_sysroot of the compile unit or an empty StringRef.
DIE * getOutUnitDIE()
Returns output unit DIE.
This class keeps data and services common for the whole linking process.
This class helps to assign indexes for DIE children.
LinkingGlobalData & GlobalData
dwarf::FormParams Format
Format for sections.
const dwarf::FormParams & getFormParams() const
Return size of address.
void eraseSections()
Erases data of all sections.
std::optional< const SectionDescriptor * > tryGetSectionDescriptor(DebugSectionKind SectionKind) const
Returns descriptor for the specified section of SectionKind.
void setOutputFormat(dwarf::FormParams Format, llvm::endianness Endianness)
Sets output format for all keeping sections.
uint16_t getVersion() const
Return DWARF version.
uint16_t getDebugInfoHeaderSize() const
Return size of header of debug_info table.
llvm::endianness getEndianness() const
Endiannes for the sections.
SectionDescriptor & getOrCreateSectionDescriptor(DebugSectionKind SectionKind)
Returns descriptor for the specified section of SectionKind.
const SectionDescriptor & getSectionDescriptor(DebugSectionKind SectionKind) const
Returns descriptor for the specified section of SectionKind.
The helper class to build type name based on DIE properties.
Error assignName(UnitEntryPairTy InputUnitEntryPair, std::optional< std::pair< size_t, size_t > > ChildIndex)
Create synthetic name for the specified DIE InputUnitEntryPair and assign created name to the DIE typ...
Keeps cloned data for the type DIE.
std::atomic< bool > ParentIsDeclaration
std::atomic< DIE * > DeclarationDie
std::atomic< DIE * > Die
TypeEntryBody keeps partially cloned DIEs corresponding to this type.
TypePool keeps type descriptors which contain partially cloned DIE correspinding to each type.
BumpPtrAllocator & getThreadLocalAllocator()
Return thread local allocator used by pool.
TypeEntryBody * getOrCreateTypeEntryBody(TypeEntry *Entry, TypeEntry *ParentEntry)
Create or return existing type entry body for the specified Entry.
TypeEntry * getRoot() const
Return root for all type entries.
Type Unit is used to represent an artificial compilation unit which keeps all type information.
TypePool & getTypePool()
Returns global type pool.
uint64_t tell() const
tell - Return the current offset with the file.
void rememberDieOutOffset(uint32_t Idx, uint64_t Offset)
Idx index of the DIE.
TypeEntry * getDieTypeEntry(uint32_t Idx)
Idx index of the DIE.
DIEInfo & getDIEInfo(unsigned Idx)
Idx index of the DIE.
const DWARFDebugInfoEntry * getSiblingEntry(const DWARFDebugInfoEntry *Die) const
const DWARFDebugInfoEntry * getFirstChildEntry(const DWARFDebugInfoEntry *Die) const
std::optional< uint32_t > getDIEIndexForOffset(uint64_t Offset)
DWARFDie getDIE(const DWARFDebugInfoEntry *Die)
const DWARFDebugInfoEntry * getDebugInfoEntry(unsigned Index) const
DWARFUnit & getOrigUnit() const
Returns paired compile unit from input DWARF.
DWARFDie getUnitDIE(bool ExtractUnitDIEOnly=true)
uint32_t getDIEIndex(const DWARFDebugInfoEntry *Die) const
std::optional< DWARFFormValue > find(uint32_t DieIdx, ArrayRef< dwarf::Attribute > Attrs) const
Error emitDebugInfo(const Triple &TargetTriple)
Emit .debug_info section for unit DIEs.
Error emitDebugStringOffsetSection()
Emit the .debug_str_offsets section for current unit.
void emitPubAccelerators()
Emit .debug_pubnames and .debug_pubtypes for Unit.
void warn(const Twine &Warning, const DWARFDie *DIE=nullptr)
Error emitAbbreviations()
Error emitDebugLine(const Triple &TargetTriple, const DWARFDebugLine::LineTable &OutLineTable)
Emit .debug_line section.
constexpr char Align[]
Key for Kernel::Arg::Metadata::mAlign.
bool isODRLanguage(uint16_t Language)
function_ref< CompileUnit *(uint64_t Offset)> OffsetToUnitTy
SmallVector< uint64_t * > OffsetsPtrVector
Type for list of pointers to patches offsets.
StringMapEntry< std::atomic< TypeEntryBody * > > TypeEntry
ArrayRef< dwarf::Attribute > getODRAttributes()
ResolveInterCUReferencesMode
StringMapEntry< std::nullopt_t > StringEntry
StringEntry keeps data of the string: the length, external offset and a string body which is placed r...
StringRef guessDeveloperDir(StringRef SysRoot)
Make a best effort to guess the Xcode.app/Contents/Developer path from an SDK path.
DebugSectionKind
List of tracked debug tables.
bool isInToolchainDir(StringRef Path)
Make a best effort to determine whether Path is inside a toolchain.
bool isPathAbsoluteOnWindowsOrPosix(const Twine &Path)
std::optional< uint64_t > toAddress(const std::optional< DWARFFormValue > &V)
Take an optional DWARFFormValue and try to extract an address.
std::optional< const char * > toString(const std::optional< DWARFFormValue > &V)
Take an optional DWARFFormValue and try to extract a string value from it.
std::optional< uint64_t > toSectionOffset(const std::optional< DWARFFormValue > &V)
Take an optional DWARFFormValue and try to extract an section offset.
StringRef toStringRef(const std::optional< DWARFFormValue > &V, StringRef Default={})
Take an optional DWARFFormValue and try to extract a string value from it.
std::optional< uint64_t > toUnsigned(const std::optional< DWARFFormValue > &V)
Take an optional DWARFFormValue and try to extract an unsigned constant.
@ DW_ARANGES_VERSION
Section version number for .debug_aranges.
LLVM_ABI std::error_code real_path(const Twine &path, SmallVectorImpl< char > &output, bool expand_tilde=false)
Collapse all .
LLVM_ABI StringRef parent_path(StringRef path LLVM_LIFETIME_BOUND, Style style=Style::native)
Get parent path.
LLVM_ABI bool is_relative(const Twine &path, Style style=Style::native)
Is path relative?
LLVM_ABI StringRef filename(StringRef path LLVM_LIFETIME_BOUND, Style style=Style::native)
Get filename.
LLVM_ABI void append(SmallVectorImpl< char > &path, const Twine &a, const Twine &b="", const Twine &c="", const Twine &d="")
Append to path.
void swapByteOrder(T &Value)
This is an optimization pass for GlobalISel generic memory operations.
auto find(R &&Range, const T &Val)
Provide wrappers to std::find which take ranges instead of having to pass begin/end explicitly.
void fill(R &&Range, T &&Value)
Provide wrappers to std::fill which take ranges instead of having to pass begin/end explicitly.
auto partition_point(R &&Range, Predicate P)
Binary search for the first iterator in a range where a predicate is false.
void append_range(Container &C, Range &&R)
Wrapper function to append range R to container C.
auto formatv(bool Validate, const char *Fmt, Ts &&...Vals)
@ Dwarf
DWARF v5 .debug_names.
BumpPtrAllocatorImpl BumpPtrAllocator
The standard BumpPtrAllocator which just uses the default template parameters.
class LLVM_GSL_OWNER SmallVector
Forward declaration of SmallVector so that calculateSmallVectorDefaultInlinedElements can reference s...
bool isa(const From &Val)
isa<X> - Return true if the parameter to the template is an instance of one of the template type argu...
uint64_t offsetToAlignment(uint64_t Value, Align Alignment)
Returns the offset to the next integer (mod 2**64) that is greater than or equal to Value and is a mu...
LLVM_ABI raw_fd_ostream & errs()
This returns a reference to a raw_ostream for standard error.
FunctionAddr VTableAddr uintptr_t uintptr_t Data
DWARFExpression::Operation Op
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
bool is_contained(R &&Range, const E &Element)
Returns true if Element is found in Range.
unsigned encodeULEB128(uint64_t Value, raw_ostream &OS, unsigned PadTo=0)
Utility function to encode a ULEB128 value to an output stream.
bool isCompileUnit(const std::unique_ptr< DWARFUnit > &U)
void consumeError(Error Err)
Consume a Error without doing anything.
dwarf::FormParams FormParams
Version, address size (starting in v5), and DWARF32/64 format; these parameters affect interpretation...
Standard .debug_line state machine structure.
Represents a single DWARF expression, whose value is location-dependent.
Information gathered about source DIEs.
LLVM_DUMP_METHOD void dump()
bool needToPlaceInTypeTable() const
DieOutputPlacement getPlacement() const
This structure is used to update reference to the DIE.
uint64_t RefDieIdxOrClonedOffset
PointerIntPair< CompileUnit *, 1 > RefCU
This structure is used to update location list offset into .debug_loc/.debug_loclists.
int64_t AddrAdjustmentValue
This structure is used to update range list offset into .debug_ranges/.debug_rnglists.
bool IsCompileUnitRanges
Indicates patch which points to immediate compile unit's attribute.
This structure is used to update reference to the DIE of ULEB128 form.
uint64_t RefDieIdxOrClonedOffset
PointerIntPair< CompileUnit *, 1 > RefCU
dwarf::FormParams getFormParams() const
Returns FormParams used by section.
This structure is used to keep data of the concrete section.
raw_svector_ostream OS
Stream which stores data to the Contents.
void emitUnitLength(uint64_t Length)
Emit unit length into the current section contents.
void emitOffset(uint64_t Val)
Emit specified offset value into the current section contents.
void emitIntVal(uint64_t Val, unsigned Size)
Emit specified integer value into the current section contents.
void apply(uint64_t PatchOffset, dwarf::Form AttrForm, uint64_t Val)
Write specified Value of AttrForm to the PatchOffset.
uint64_t getIntVal(uint64_t PatchOffset, unsigned Size)
Returns integer value of Size located by specified PatchOffset.
This is a helper structure which keeps a debug info entry with it's containing compilation unit.
UnitEntryPairTy()=default
std::optional< UnitEntryPairTy > getParent()
UnitEntryPairTy getNamespaceOrigin()
const DWARFDebugInfoEntry * DieEntry