1*0b57cec5SDimitry Andric //===- llvm/lib/CodeGen/AsmPrinter/CodeViewDebug.cpp ----------------------===// 2*0b57cec5SDimitry Andric // 3*0b57cec5SDimitry Andric // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4*0b57cec5SDimitry Andric // See https://llvm.org/LICENSE.txt for license information. 5*0b57cec5SDimitry Andric // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6*0b57cec5SDimitry Andric // 7*0b57cec5SDimitry Andric //===----------------------------------------------------------------------===// 8*0b57cec5SDimitry Andric // 9*0b57cec5SDimitry Andric // This file contains support for writing Microsoft CodeView debug info. 10*0b57cec5SDimitry Andric // 11*0b57cec5SDimitry Andric //===----------------------------------------------------------------------===// 12*0b57cec5SDimitry Andric 13*0b57cec5SDimitry Andric #include "CodeViewDebug.h" 14*0b57cec5SDimitry Andric #include "DwarfExpression.h" 15*0b57cec5SDimitry Andric #include "llvm/ADT/APSInt.h" 16*0b57cec5SDimitry Andric #include "llvm/ADT/None.h" 17*0b57cec5SDimitry Andric #include "llvm/ADT/Optional.h" 18*0b57cec5SDimitry Andric #include "llvm/ADT/STLExtras.h" 19*0b57cec5SDimitry Andric #include "llvm/ADT/SmallString.h" 20*0b57cec5SDimitry Andric #include "llvm/ADT/StringRef.h" 21*0b57cec5SDimitry Andric #include "llvm/ADT/TinyPtrVector.h" 22*0b57cec5SDimitry Andric #include "llvm/ADT/Triple.h" 23*0b57cec5SDimitry Andric #include "llvm/ADT/Twine.h" 24*0b57cec5SDimitry Andric #include "llvm/BinaryFormat/COFF.h" 25*0b57cec5SDimitry Andric #include "llvm/BinaryFormat/Dwarf.h" 26*0b57cec5SDimitry Andric #include "llvm/CodeGen/AsmPrinter.h" 27*0b57cec5SDimitry Andric #include "llvm/CodeGen/LexicalScopes.h" 28*0b57cec5SDimitry Andric #include "llvm/CodeGen/MachineFrameInfo.h" 29*0b57cec5SDimitry Andric #include "llvm/CodeGen/MachineFunction.h" 30*0b57cec5SDimitry Andric #include "llvm/CodeGen/MachineInstr.h" 31*0b57cec5SDimitry Andric #include "llvm/CodeGen/MachineModuleInfo.h" 32*0b57cec5SDimitry Andric #include "llvm/CodeGen/MachineOperand.h" 33*0b57cec5SDimitry Andric #include "llvm/CodeGen/TargetFrameLowering.h" 34*0b57cec5SDimitry Andric #include "llvm/CodeGen/TargetRegisterInfo.h" 35*0b57cec5SDimitry Andric #include "llvm/CodeGen/TargetSubtargetInfo.h" 36*0b57cec5SDimitry Andric #include "llvm/Config/llvm-config.h" 37*0b57cec5SDimitry Andric #include "llvm/DebugInfo/CodeView/CVTypeVisitor.h" 38*0b57cec5SDimitry Andric #include "llvm/DebugInfo/CodeView/CodeViewRecordIO.h" 39*0b57cec5SDimitry Andric #include "llvm/DebugInfo/CodeView/ContinuationRecordBuilder.h" 40*0b57cec5SDimitry Andric #include "llvm/DebugInfo/CodeView/DebugInlineeLinesSubsection.h" 41*0b57cec5SDimitry Andric #include "llvm/DebugInfo/CodeView/EnumTables.h" 42*0b57cec5SDimitry Andric #include "llvm/DebugInfo/CodeView/Line.h" 43*0b57cec5SDimitry Andric #include "llvm/DebugInfo/CodeView/SymbolRecord.h" 44*0b57cec5SDimitry Andric #include "llvm/DebugInfo/CodeView/TypeDumpVisitor.h" 45*0b57cec5SDimitry Andric #include "llvm/DebugInfo/CodeView/TypeRecord.h" 46*0b57cec5SDimitry Andric #include "llvm/DebugInfo/CodeView/TypeTableCollection.h" 47*0b57cec5SDimitry Andric #include "llvm/DebugInfo/CodeView/TypeVisitorCallbackPipeline.h" 48*0b57cec5SDimitry Andric #include "llvm/IR/Constants.h" 49*0b57cec5SDimitry Andric #include "llvm/IR/DataLayout.h" 50*0b57cec5SDimitry Andric #include "llvm/IR/DebugInfoMetadata.h" 51*0b57cec5SDimitry Andric #include "llvm/IR/Function.h" 52*0b57cec5SDimitry Andric #include "llvm/IR/GlobalValue.h" 53*0b57cec5SDimitry Andric #include "llvm/IR/GlobalVariable.h" 54*0b57cec5SDimitry Andric #include "llvm/IR/Metadata.h" 55*0b57cec5SDimitry Andric #include "llvm/IR/Module.h" 56*0b57cec5SDimitry Andric #include "llvm/MC/MCAsmInfo.h" 57*0b57cec5SDimitry Andric #include "llvm/MC/MCContext.h" 58*0b57cec5SDimitry Andric #include "llvm/MC/MCSectionCOFF.h" 59*0b57cec5SDimitry Andric #include "llvm/MC/MCStreamer.h" 60*0b57cec5SDimitry Andric #include "llvm/MC/MCSymbol.h" 61*0b57cec5SDimitry Andric #include "llvm/Support/BinaryByteStream.h" 62*0b57cec5SDimitry Andric #include "llvm/Support/BinaryStreamReader.h" 63*0b57cec5SDimitry Andric #include "llvm/Support/BinaryStreamWriter.h" 64*0b57cec5SDimitry Andric #include "llvm/Support/Casting.h" 65*0b57cec5SDimitry Andric #include "llvm/Support/CommandLine.h" 66*0b57cec5SDimitry Andric #include "llvm/Support/Endian.h" 67*0b57cec5SDimitry Andric #include "llvm/Support/Error.h" 68*0b57cec5SDimitry Andric #include "llvm/Support/ErrorHandling.h" 69*0b57cec5SDimitry Andric #include "llvm/Support/FormatVariadic.h" 70*0b57cec5SDimitry Andric #include "llvm/Support/Path.h" 71*0b57cec5SDimitry Andric #include "llvm/Support/SMLoc.h" 72*0b57cec5SDimitry Andric #include "llvm/Support/ScopedPrinter.h" 73*0b57cec5SDimitry Andric #include "llvm/Target/TargetLoweringObjectFile.h" 74*0b57cec5SDimitry Andric #include "llvm/Target/TargetMachine.h" 75*0b57cec5SDimitry Andric #include <algorithm> 76*0b57cec5SDimitry Andric #include <cassert> 77*0b57cec5SDimitry Andric #include <cctype> 78*0b57cec5SDimitry Andric #include <cstddef> 79*0b57cec5SDimitry Andric #include <iterator> 80*0b57cec5SDimitry Andric #include <limits> 81*0b57cec5SDimitry Andric 82*0b57cec5SDimitry Andric using namespace llvm; 83*0b57cec5SDimitry Andric using namespace llvm::codeview; 84*0b57cec5SDimitry Andric 85*0b57cec5SDimitry Andric namespace { 86*0b57cec5SDimitry Andric class CVMCAdapter : public CodeViewRecordStreamer { 87*0b57cec5SDimitry Andric public: 888bcb0991SDimitry Andric CVMCAdapter(MCStreamer &OS, TypeCollection &TypeTable) 898bcb0991SDimitry Andric : OS(&OS), TypeTable(TypeTable) {} 90*0b57cec5SDimitry Andric 915ffd83dbSDimitry Andric void emitBytes(StringRef Data) override { OS->emitBytes(Data); } 92*0b57cec5SDimitry Andric 935ffd83dbSDimitry Andric void emitIntValue(uint64_t Value, unsigned Size) override { 945ffd83dbSDimitry Andric OS->emitIntValueInHex(Value, Size); 95*0b57cec5SDimitry Andric } 96*0b57cec5SDimitry Andric 975ffd83dbSDimitry Andric void emitBinaryData(StringRef Data) override { OS->emitBinaryData(Data); } 98*0b57cec5SDimitry Andric 995ffd83dbSDimitry Andric void AddComment(const Twine &T) override { OS->AddComment(T); } 100*0b57cec5SDimitry Andric 1015ffd83dbSDimitry Andric void AddRawComment(const Twine &T) override { OS->emitRawComment(T); } 1028bcb0991SDimitry Andric 1035ffd83dbSDimitry Andric bool isVerboseAsm() override { return OS->isVerboseAsm(); } 1048bcb0991SDimitry Andric 1055ffd83dbSDimitry Andric std::string getTypeName(TypeIndex TI) override { 1068bcb0991SDimitry Andric std::string TypeName; 1078bcb0991SDimitry Andric if (!TI.isNoneType()) { 1088bcb0991SDimitry Andric if (TI.isSimple()) 1095ffd83dbSDimitry Andric TypeName = std::string(TypeIndex::simpleTypeName(TI)); 1108bcb0991SDimitry Andric else 1115ffd83dbSDimitry Andric TypeName = std::string(TypeTable.getTypeName(TI)); 1128bcb0991SDimitry Andric } 1138bcb0991SDimitry Andric return TypeName; 1148bcb0991SDimitry Andric } 1158bcb0991SDimitry Andric 116*0b57cec5SDimitry Andric private: 117*0b57cec5SDimitry Andric MCStreamer *OS = nullptr; 1188bcb0991SDimitry Andric TypeCollection &TypeTable; 119*0b57cec5SDimitry Andric }; 120*0b57cec5SDimitry Andric } // namespace 121*0b57cec5SDimitry Andric 122*0b57cec5SDimitry Andric static CPUType mapArchToCVCPUType(Triple::ArchType Type) { 123*0b57cec5SDimitry Andric switch (Type) { 124*0b57cec5SDimitry Andric case Triple::ArchType::x86: 125*0b57cec5SDimitry Andric return CPUType::Pentium3; 126*0b57cec5SDimitry Andric case Triple::ArchType::x86_64: 127*0b57cec5SDimitry Andric return CPUType::X64; 128*0b57cec5SDimitry Andric case Triple::ArchType::thumb: 129e8d8bef9SDimitry Andric // LLVM currently doesn't support Windows CE and so thumb 130e8d8bef9SDimitry Andric // here is indiscriminately mapped to ARMNT specifically. 131e8d8bef9SDimitry Andric return CPUType::ARMNT; 132*0b57cec5SDimitry Andric case Triple::ArchType::aarch64: 133*0b57cec5SDimitry Andric return CPUType::ARM64; 134*0b57cec5SDimitry Andric default: 135*0b57cec5SDimitry Andric report_fatal_error("target architecture doesn't map to a CodeView CPUType"); 136*0b57cec5SDimitry Andric } 137*0b57cec5SDimitry Andric } 138*0b57cec5SDimitry Andric 139*0b57cec5SDimitry Andric CodeViewDebug::CodeViewDebug(AsmPrinter *AP) 140e8d8bef9SDimitry Andric : DebugHandlerBase(AP), OS(*Asm->OutStreamer), TypeTable(Allocator) {} 141*0b57cec5SDimitry Andric 142*0b57cec5SDimitry Andric StringRef CodeViewDebug::getFullFilepath(const DIFile *File) { 143*0b57cec5SDimitry Andric std::string &Filepath = FileToFilepathMap[File]; 144*0b57cec5SDimitry Andric if (!Filepath.empty()) 145*0b57cec5SDimitry Andric return Filepath; 146*0b57cec5SDimitry Andric 147*0b57cec5SDimitry Andric StringRef Dir = File->getDirectory(), Filename = File->getFilename(); 148*0b57cec5SDimitry Andric 149*0b57cec5SDimitry Andric // If this is a Unix-style path, just use it as is. Don't try to canonicalize 150*0b57cec5SDimitry Andric // it textually because one of the path components could be a symlink. 151*0b57cec5SDimitry Andric if (Dir.startswith("/") || Filename.startswith("/")) { 152*0b57cec5SDimitry Andric if (llvm::sys::path::is_absolute(Filename, llvm::sys::path::Style::posix)) 153*0b57cec5SDimitry Andric return Filename; 1545ffd83dbSDimitry Andric Filepath = std::string(Dir); 155*0b57cec5SDimitry Andric if (Dir.back() != '/') 156*0b57cec5SDimitry Andric Filepath += '/'; 157*0b57cec5SDimitry Andric Filepath += Filename; 158*0b57cec5SDimitry Andric return Filepath; 159*0b57cec5SDimitry Andric } 160*0b57cec5SDimitry Andric 161*0b57cec5SDimitry Andric // Clang emits directory and relative filename info into the IR, but CodeView 162*0b57cec5SDimitry Andric // operates on full paths. We could change Clang to emit full paths too, but 163*0b57cec5SDimitry Andric // that would increase the IR size and probably not needed for other users. 164*0b57cec5SDimitry Andric // For now, just concatenate and canonicalize the path here. 165*0b57cec5SDimitry Andric if (Filename.find(':') == 1) 1665ffd83dbSDimitry Andric Filepath = std::string(Filename); 167*0b57cec5SDimitry Andric else 168*0b57cec5SDimitry Andric Filepath = (Dir + "\\" + Filename).str(); 169*0b57cec5SDimitry Andric 170*0b57cec5SDimitry Andric // Canonicalize the path. We have to do it textually because we may no longer 171*0b57cec5SDimitry Andric // have access the file in the filesystem. 172*0b57cec5SDimitry Andric // First, replace all slashes with backslashes. 173*0b57cec5SDimitry Andric std::replace(Filepath.begin(), Filepath.end(), '/', '\\'); 174*0b57cec5SDimitry Andric 175*0b57cec5SDimitry Andric // Remove all "\.\" with "\". 176*0b57cec5SDimitry Andric size_t Cursor = 0; 177*0b57cec5SDimitry Andric while ((Cursor = Filepath.find("\\.\\", Cursor)) != std::string::npos) 178*0b57cec5SDimitry Andric Filepath.erase(Cursor, 2); 179*0b57cec5SDimitry Andric 180*0b57cec5SDimitry Andric // Replace all "\XXX\..\" with "\". Don't try too hard though as the original 181*0b57cec5SDimitry Andric // path should be well-formatted, e.g. start with a drive letter, etc. 182*0b57cec5SDimitry Andric Cursor = 0; 183*0b57cec5SDimitry Andric while ((Cursor = Filepath.find("\\..\\", Cursor)) != std::string::npos) { 184*0b57cec5SDimitry Andric // Something's wrong if the path starts with "\..\", abort. 185*0b57cec5SDimitry Andric if (Cursor == 0) 186*0b57cec5SDimitry Andric break; 187*0b57cec5SDimitry Andric 188*0b57cec5SDimitry Andric size_t PrevSlash = Filepath.rfind('\\', Cursor - 1); 189*0b57cec5SDimitry Andric if (PrevSlash == std::string::npos) 190*0b57cec5SDimitry Andric // Something's wrong, abort. 191*0b57cec5SDimitry Andric break; 192*0b57cec5SDimitry Andric 193*0b57cec5SDimitry Andric Filepath.erase(PrevSlash, Cursor + 3 - PrevSlash); 194*0b57cec5SDimitry Andric // The next ".." might be following the one we've just erased. 195*0b57cec5SDimitry Andric Cursor = PrevSlash; 196*0b57cec5SDimitry Andric } 197*0b57cec5SDimitry Andric 198*0b57cec5SDimitry Andric // Remove all duplicate backslashes. 199*0b57cec5SDimitry Andric Cursor = 0; 200*0b57cec5SDimitry Andric while ((Cursor = Filepath.find("\\\\", Cursor)) != std::string::npos) 201*0b57cec5SDimitry Andric Filepath.erase(Cursor, 1); 202*0b57cec5SDimitry Andric 203*0b57cec5SDimitry Andric return Filepath; 204*0b57cec5SDimitry Andric } 205*0b57cec5SDimitry Andric 206*0b57cec5SDimitry Andric unsigned CodeViewDebug::maybeRecordFile(const DIFile *F) { 207*0b57cec5SDimitry Andric StringRef FullPath = getFullFilepath(F); 208*0b57cec5SDimitry Andric unsigned NextId = FileIdMap.size() + 1; 209*0b57cec5SDimitry Andric auto Insertion = FileIdMap.insert(std::make_pair(FullPath, NextId)); 210*0b57cec5SDimitry Andric if (Insertion.second) { 211*0b57cec5SDimitry Andric // We have to compute the full filepath and emit a .cv_file directive. 212*0b57cec5SDimitry Andric ArrayRef<uint8_t> ChecksumAsBytes; 213*0b57cec5SDimitry Andric FileChecksumKind CSKind = FileChecksumKind::None; 214*0b57cec5SDimitry Andric if (F->getChecksum()) { 215*0b57cec5SDimitry Andric std::string Checksum = fromHex(F->getChecksum()->Value); 216*0b57cec5SDimitry Andric void *CKMem = OS.getContext().allocate(Checksum.size(), 1); 217*0b57cec5SDimitry Andric memcpy(CKMem, Checksum.data(), Checksum.size()); 218*0b57cec5SDimitry Andric ChecksumAsBytes = ArrayRef<uint8_t>( 219*0b57cec5SDimitry Andric reinterpret_cast<const uint8_t *>(CKMem), Checksum.size()); 220*0b57cec5SDimitry Andric switch (F->getChecksum()->Kind) { 2215ffd83dbSDimitry Andric case DIFile::CSK_MD5: 2225ffd83dbSDimitry Andric CSKind = FileChecksumKind::MD5; 2235ffd83dbSDimitry Andric break; 2245ffd83dbSDimitry Andric case DIFile::CSK_SHA1: 2255ffd83dbSDimitry Andric CSKind = FileChecksumKind::SHA1; 2265ffd83dbSDimitry Andric break; 2275ffd83dbSDimitry Andric case DIFile::CSK_SHA256: 2285ffd83dbSDimitry Andric CSKind = FileChecksumKind::SHA256; 2295ffd83dbSDimitry Andric break; 230*0b57cec5SDimitry Andric } 231*0b57cec5SDimitry Andric } 232*0b57cec5SDimitry Andric bool Success = OS.EmitCVFileDirective(NextId, FullPath, ChecksumAsBytes, 233*0b57cec5SDimitry Andric static_cast<unsigned>(CSKind)); 234*0b57cec5SDimitry Andric (void)Success; 235*0b57cec5SDimitry Andric assert(Success && ".cv_file directive failed"); 236*0b57cec5SDimitry Andric } 237*0b57cec5SDimitry Andric return Insertion.first->second; 238*0b57cec5SDimitry Andric } 239*0b57cec5SDimitry Andric 240*0b57cec5SDimitry Andric CodeViewDebug::InlineSite & 241*0b57cec5SDimitry Andric CodeViewDebug::getInlineSite(const DILocation *InlinedAt, 242*0b57cec5SDimitry Andric const DISubprogram *Inlinee) { 243*0b57cec5SDimitry Andric auto SiteInsertion = CurFn->InlineSites.insert({InlinedAt, InlineSite()}); 244*0b57cec5SDimitry Andric InlineSite *Site = &SiteInsertion.first->second; 245*0b57cec5SDimitry Andric if (SiteInsertion.second) { 246*0b57cec5SDimitry Andric unsigned ParentFuncId = CurFn->FuncId; 247*0b57cec5SDimitry Andric if (const DILocation *OuterIA = InlinedAt->getInlinedAt()) 248*0b57cec5SDimitry Andric ParentFuncId = 249*0b57cec5SDimitry Andric getInlineSite(OuterIA, InlinedAt->getScope()->getSubprogram()) 250*0b57cec5SDimitry Andric .SiteFuncId; 251*0b57cec5SDimitry Andric 252*0b57cec5SDimitry Andric Site->SiteFuncId = NextFuncId++; 253*0b57cec5SDimitry Andric OS.EmitCVInlineSiteIdDirective( 254*0b57cec5SDimitry Andric Site->SiteFuncId, ParentFuncId, maybeRecordFile(InlinedAt->getFile()), 255*0b57cec5SDimitry Andric InlinedAt->getLine(), InlinedAt->getColumn(), SMLoc()); 256*0b57cec5SDimitry Andric Site->Inlinee = Inlinee; 257*0b57cec5SDimitry Andric InlinedSubprograms.insert(Inlinee); 258*0b57cec5SDimitry Andric getFuncIdForSubprogram(Inlinee); 259*0b57cec5SDimitry Andric } 260*0b57cec5SDimitry Andric return *Site; 261*0b57cec5SDimitry Andric } 262*0b57cec5SDimitry Andric 263*0b57cec5SDimitry Andric static StringRef getPrettyScopeName(const DIScope *Scope) { 264*0b57cec5SDimitry Andric StringRef ScopeName = Scope->getName(); 265*0b57cec5SDimitry Andric if (!ScopeName.empty()) 266*0b57cec5SDimitry Andric return ScopeName; 267*0b57cec5SDimitry Andric 268*0b57cec5SDimitry Andric switch (Scope->getTag()) { 269*0b57cec5SDimitry Andric case dwarf::DW_TAG_enumeration_type: 270*0b57cec5SDimitry Andric case dwarf::DW_TAG_class_type: 271*0b57cec5SDimitry Andric case dwarf::DW_TAG_structure_type: 272*0b57cec5SDimitry Andric case dwarf::DW_TAG_union_type: 273*0b57cec5SDimitry Andric return "<unnamed-tag>"; 274*0b57cec5SDimitry Andric case dwarf::DW_TAG_namespace: 275*0b57cec5SDimitry Andric return "`anonymous namespace'"; 276fe6060f1SDimitry Andric default: 277*0b57cec5SDimitry Andric return StringRef(); 278*0b57cec5SDimitry Andric } 279fe6060f1SDimitry Andric } 280*0b57cec5SDimitry Andric 2815ffd83dbSDimitry Andric const DISubprogram *CodeViewDebug::collectParentScopeNames( 282*0b57cec5SDimitry Andric const DIScope *Scope, SmallVectorImpl<StringRef> &QualifiedNameComponents) { 283*0b57cec5SDimitry Andric const DISubprogram *ClosestSubprogram = nullptr; 284*0b57cec5SDimitry Andric while (Scope != nullptr) { 285*0b57cec5SDimitry Andric if (ClosestSubprogram == nullptr) 286*0b57cec5SDimitry Andric ClosestSubprogram = dyn_cast<DISubprogram>(Scope); 2875ffd83dbSDimitry Andric 2885ffd83dbSDimitry Andric // If a type appears in a scope chain, make sure it gets emitted. The 2895ffd83dbSDimitry Andric // frontend will be responsible for deciding if this should be a forward 2905ffd83dbSDimitry Andric // declaration or a complete type. 2915ffd83dbSDimitry Andric if (const auto *Ty = dyn_cast<DICompositeType>(Scope)) 2925ffd83dbSDimitry Andric DeferredCompleteTypes.push_back(Ty); 2935ffd83dbSDimitry Andric 294*0b57cec5SDimitry Andric StringRef ScopeName = getPrettyScopeName(Scope); 295*0b57cec5SDimitry Andric if (!ScopeName.empty()) 296*0b57cec5SDimitry Andric QualifiedNameComponents.push_back(ScopeName); 297*0b57cec5SDimitry Andric Scope = Scope->getScope(); 298*0b57cec5SDimitry Andric } 299*0b57cec5SDimitry Andric return ClosestSubprogram; 300*0b57cec5SDimitry Andric } 301*0b57cec5SDimitry Andric 3025ffd83dbSDimitry Andric static std::string formatNestedName(ArrayRef<StringRef> QualifiedNameComponents, 303*0b57cec5SDimitry Andric StringRef TypeName) { 304*0b57cec5SDimitry Andric std::string FullyQualifiedName; 305*0b57cec5SDimitry Andric for (StringRef QualifiedNameComponent : 306*0b57cec5SDimitry Andric llvm::reverse(QualifiedNameComponents)) { 3075ffd83dbSDimitry Andric FullyQualifiedName.append(std::string(QualifiedNameComponent)); 308*0b57cec5SDimitry Andric FullyQualifiedName.append("::"); 309*0b57cec5SDimitry Andric } 3105ffd83dbSDimitry Andric FullyQualifiedName.append(std::string(TypeName)); 311*0b57cec5SDimitry Andric return FullyQualifiedName; 312*0b57cec5SDimitry Andric } 313*0b57cec5SDimitry Andric 314*0b57cec5SDimitry Andric struct CodeViewDebug::TypeLoweringScope { 315*0b57cec5SDimitry Andric TypeLoweringScope(CodeViewDebug &CVD) : CVD(CVD) { ++CVD.TypeEmissionLevel; } 316*0b57cec5SDimitry Andric ~TypeLoweringScope() { 317*0b57cec5SDimitry Andric // Don't decrement TypeEmissionLevel until after emitting deferred types, so 318*0b57cec5SDimitry Andric // inner TypeLoweringScopes don't attempt to emit deferred types. 319*0b57cec5SDimitry Andric if (CVD.TypeEmissionLevel == 1) 320*0b57cec5SDimitry Andric CVD.emitDeferredCompleteTypes(); 321*0b57cec5SDimitry Andric --CVD.TypeEmissionLevel; 322*0b57cec5SDimitry Andric } 323*0b57cec5SDimitry Andric CodeViewDebug &CVD; 324*0b57cec5SDimitry Andric }; 325*0b57cec5SDimitry Andric 3265ffd83dbSDimitry Andric std::string CodeViewDebug::getFullyQualifiedName(const DIScope *Scope, 3275ffd83dbSDimitry Andric StringRef Name) { 3285ffd83dbSDimitry Andric // Ensure types in the scope chain are emitted as soon as possible. 3295ffd83dbSDimitry Andric // This can create otherwise a situation where S_UDTs are emitted while 3305ffd83dbSDimitry Andric // looping in emitDebugInfoForUDTs. 3315ffd83dbSDimitry Andric TypeLoweringScope S(*this); 3325ffd83dbSDimitry Andric SmallVector<StringRef, 5> QualifiedNameComponents; 3335ffd83dbSDimitry Andric collectParentScopeNames(Scope, QualifiedNameComponents); 3345ffd83dbSDimitry Andric return formatNestedName(QualifiedNameComponents, Name); 3355ffd83dbSDimitry Andric } 3365ffd83dbSDimitry Andric 3375ffd83dbSDimitry Andric std::string CodeViewDebug::getFullyQualifiedName(const DIScope *Ty) { 338*0b57cec5SDimitry Andric const DIScope *Scope = Ty->getScope(); 339*0b57cec5SDimitry Andric return getFullyQualifiedName(Scope, getPrettyScopeName(Ty)); 340*0b57cec5SDimitry Andric } 341*0b57cec5SDimitry Andric 342*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::getScopeIndex(const DIScope *Scope) { 343*0b57cec5SDimitry Andric // No scope means global scope and that uses the zero index. 344349cc55cSDimitry Andric // 345349cc55cSDimitry Andric // We also use zero index when the scope is a DISubprogram 346349cc55cSDimitry Andric // to suppress the emission of LF_STRING_ID for the function, 347349cc55cSDimitry Andric // which can trigger a link-time error with the linker in 348349cc55cSDimitry Andric // VS2019 version 16.11.2 or newer. 349349cc55cSDimitry Andric // Note, however, skipping the debug info emission for the DISubprogram 350349cc55cSDimitry Andric // is a temporary fix. The root issue here is that we need to figure out 351349cc55cSDimitry Andric // the proper way to encode a function nested in another function 352349cc55cSDimitry Andric // (as introduced by the Fortran 'contains' keyword) in CodeView. 353349cc55cSDimitry Andric if (!Scope || isa<DIFile>(Scope) || isa<DISubprogram>(Scope)) 354*0b57cec5SDimitry Andric return TypeIndex(); 355*0b57cec5SDimitry Andric 356*0b57cec5SDimitry Andric assert(!isa<DIType>(Scope) && "shouldn't make a namespace scope for a type"); 357*0b57cec5SDimitry Andric 358*0b57cec5SDimitry Andric // Check if we've already translated this scope. 359*0b57cec5SDimitry Andric auto I = TypeIndices.find({Scope, nullptr}); 360*0b57cec5SDimitry Andric if (I != TypeIndices.end()) 361*0b57cec5SDimitry Andric return I->second; 362*0b57cec5SDimitry Andric 363*0b57cec5SDimitry Andric // Build the fully qualified name of the scope. 364*0b57cec5SDimitry Andric std::string ScopeName = getFullyQualifiedName(Scope); 365*0b57cec5SDimitry Andric StringIdRecord SID(TypeIndex(), ScopeName); 366*0b57cec5SDimitry Andric auto TI = TypeTable.writeLeafType(SID); 367*0b57cec5SDimitry Andric return recordTypeIndexForDINode(Scope, TI); 368*0b57cec5SDimitry Andric } 369*0b57cec5SDimitry Andric 370fe6060f1SDimitry Andric static StringRef removeTemplateArgs(StringRef Name) { 371fe6060f1SDimitry Andric // Remove template args from the display name. Assume that the template args 372fe6060f1SDimitry Andric // are the last thing in the name. 373fe6060f1SDimitry Andric if (Name.empty() || Name.back() != '>') 374fe6060f1SDimitry Andric return Name; 375fe6060f1SDimitry Andric 376fe6060f1SDimitry Andric int OpenBrackets = 0; 377fe6060f1SDimitry Andric for (int i = Name.size() - 1; i >= 0; --i) { 378fe6060f1SDimitry Andric if (Name[i] == '>') 379fe6060f1SDimitry Andric ++OpenBrackets; 380fe6060f1SDimitry Andric else if (Name[i] == '<') { 381fe6060f1SDimitry Andric --OpenBrackets; 382fe6060f1SDimitry Andric if (OpenBrackets == 0) 383fe6060f1SDimitry Andric return Name.substr(0, i); 384fe6060f1SDimitry Andric } 385fe6060f1SDimitry Andric } 386fe6060f1SDimitry Andric return Name; 387fe6060f1SDimitry Andric } 388fe6060f1SDimitry Andric 389*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::getFuncIdForSubprogram(const DISubprogram *SP) { 390*0b57cec5SDimitry Andric assert(SP); 391*0b57cec5SDimitry Andric 392*0b57cec5SDimitry Andric // Check if we've already translated this subprogram. 393*0b57cec5SDimitry Andric auto I = TypeIndices.find({SP, nullptr}); 394*0b57cec5SDimitry Andric if (I != TypeIndices.end()) 395*0b57cec5SDimitry Andric return I->second; 396*0b57cec5SDimitry Andric 397*0b57cec5SDimitry Andric // The display name includes function template arguments. Drop them to match 398fe6060f1SDimitry Andric // MSVC. We need to have the template arguments in the DISubprogram name 399fe6060f1SDimitry Andric // because they are used in other symbol records, such as S_GPROC32_IDs. 400fe6060f1SDimitry Andric StringRef DisplayName = removeTemplateArgs(SP->getName()); 401*0b57cec5SDimitry Andric 402*0b57cec5SDimitry Andric const DIScope *Scope = SP->getScope(); 403*0b57cec5SDimitry Andric TypeIndex TI; 404*0b57cec5SDimitry Andric if (const auto *Class = dyn_cast_or_null<DICompositeType>(Scope)) { 405*0b57cec5SDimitry Andric // If the scope is a DICompositeType, then this must be a method. Member 406*0b57cec5SDimitry Andric // function types take some special handling, and require access to the 407*0b57cec5SDimitry Andric // subprogram. 408*0b57cec5SDimitry Andric TypeIndex ClassType = getTypeIndex(Class); 409*0b57cec5SDimitry Andric MemberFuncIdRecord MFuncId(ClassType, getMemberFunctionType(SP, Class), 410*0b57cec5SDimitry Andric DisplayName); 411*0b57cec5SDimitry Andric TI = TypeTable.writeLeafType(MFuncId); 412*0b57cec5SDimitry Andric } else { 413*0b57cec5SDimitry Andric // Otherwise, this must be a free function. 414*0b57cec5SDimitry Andric TypeIndex ParentScope = getScopeIndex(Scope); 415*0b57cec5SDimitry Andric FuncIdRecord FuncId(ParentScope, getTypeIndex(SP->getType()), DisplayName); 416*0b57cec5SDimitry Andric TI = TypeTable.writeLeafType(FuncId); 417*0b57cec5SDimitry Andric } 418*0b57cec5SDimitry Andric 419*0b57cec5SDimitry Andric return recordTypeIndexForDINode(SP, TI); 420*0b57cec5SDimitry Andric } 421*0b57cec5SDimitry Andric 422*0b57cec5SDimitry Andric static bool isNonTrivial(const DICompositeType *DCTy) { 423*0b57cec5SDimitry Andric return ((DCTy->getFlags() & DINode::FlagNonTrivial) == DINode::FlagNonTrivial); 424*0b57cec5SDimitry Andric } 425*0b57cec5SDimitry Andric 426*0b57cec5SDimitry Andric static FunctionOptions 427*0b57cec5SDimitry Andric getFunctionOptions(const DISubroutineType *Ty, 428*0b57cec5SDimitry Andric const DICompositeType *ClassTy = nullptr, 429*0b57cec5SDimitry Andric StringRef SPName = StringRef("")) { 430*0b57cec5SDimitry Andric FunctionOptions FO = FunctionOptions::None; 431*0b57cec5SDimitry Andric const DIType *ReturnTy = nullptr; 432*0b57cec5SDimitry Andric if (auto TypeArray = Ty->getTypeArray()) { 433*0b57cec5SDimitry Andric if (TypeArray.size()) 434*0b57cec5SDimitry Andric ReturnTy = TypeArray[0]; 435*0b57cec5SDimitry Andric } 436*0b57cec5SDimitry Andric 4375ffd83dbSDimitry Andric // Add CxxReturnUdt option to functions that return nontrivial record types 4385ffd83dbSDimitry Andric // or methods that return record types. 4395ffd83dbSDimitry Andric if (auto *ReturnDCTy = dyn_cast_or_null<DICompositeType>(ReturnTy)) 4405ffd83dbSDimitry Andric if (isNonTrivial(ReturnDCTy) || ClassTy) 441*0b57cec5SDimitry Andric FO |= FunctionOptions::CxxReturnUdt; 442*0b57cec5SDimitry Andric 443*0b57cec5SDimitry Andric // DISubroutineType is unnamed. Use DISubprogram's i.e. SPName in comparison. 444*0b57cec5SDimitry Andric if (ClassTy && isNonTrivial(ClassTy) && SPName == ClassTy->getName()) { 445*0b57cec5SDimitry Andric FO |= FunctionOptions::Constructor; 446*0b57cec5SDimitry Andric 447*0b57cec5SDimitry Andric // TODO: put the FunctionOptions::ConstructorWithVirtualBases flag. 448*0b57cec5SDimitry Andric 449*0b57cec5SDimitry Andric } 450*0b57cec5SDimitry Andric return FO; 451*0b57cec5SDimitry Andric } 452*0b57cec5SDimitry Andric 453*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::getMemberFunctionType(const DISubprogram *SP, 454*0b57cec5SDimitry Andric const DICompositeType *Class) { 455*0b57cec5SDimitry Andric // Always use the method declaration as the key for the function type. The 456*0b57cec5SDimitry Andric // method declaration contains the this adjustment. 457*0b57cec5SDimitry Andric if (SP->getDeclaration()) 458*0b57cec5SDimitry Andric SP = SP->getDeclaration(); 459*0b57cec5SDimitry Andric assert(!SP->getDeclaration() && "should use declaration as key"); 460*0b57cec5SDimitry Andric 461*0b57cec5SDimitry Andric // Key the MemberFunctionRecord into the map as {SP, Class}. It won't collide 462*0b57cec5SDimitry Andric // with the MemberFuncIdRecord, which is keyed in as {SP, nullptr}. 463*0b57cec5SDimitry Andric auto I = TypeIndices.find({SP, Class}); 464*0b57cec5SDimitry Andric if (I != TypeIndices.end()) 465*0b57cec5SDimitry Andric return I->second; 466*0b57cec5SDimitry Andric 467*0b57cec5SDimitry Andric // Make sure complete type info for the class is emitted *after* the member 468*0b57cec5SDimitry Andric // function type, as the complete class type is likely to reference this 469*0b57cec5SDimitry Andric // member function type. 470*0b57cec5SDimitry Andric TypeLoweringScope S(*this); 471*0b57cec5SDimitry Andric const bool IsStaticMethod = (SP->getFlags() & DINode::FlagStaticMember) != 0; 472*0b57cec5SDimitry Andric 473*0b57cec5SDimitry Andric FunctionOptions FO = getFunctionOptions(SP->getType(), Class, SP->getName()); 474*0b57cec5SDimitry Andric TypeIndex TI = lowerTypeMemberFunction( 475*0b57cec5SDimitry Andric SP->getType(), Class, SP->getThisAdjustment(), IsStaticMethod, FO); 476*0b57cec5SDimitry Andric return recordTypeIndexForDINode(SP, TI, Class); 477*0b57cec5SDimitry Andric } 478*0b57cec5SDimitry Andric 479*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::recordTypeIndexForDINode(const DINode *Node, 480*0b57cec5SDimitry Andric TypeIndex TI, 481*0b57cec5SDimitry Andric const DIType *ClassTy) { 482*0b57cec5SDimitry Andric auto InsertResult = TypeIndices.insert({{Node, ClassTy}, TI}); 483*0b57cec5SDimitry Andric (void)InsertResult; 484*0b57cec5SDimitry Andric assert(InsertResult.second && "DINode was already assigned a type index"); 485*0b57cec5SDimitry Andric return TI; 486*0b57cec5SDimitry Andric } 487*0b57cec5SDimitry Andric 488*0b57cec5SDimitry Andric unsigned CodeViewDebug::getPointerSizeInBytes() { 489*0b57cec5SDimitry Andric return MMI->getModule()->getDataLayout().getPointerSizeInBits() / 8; 490*0b57cec5SDimitry Andric } 491*0b57cec5SDimitry Andric 492*0b57cec5SDimitry Andric void CodeViewDebug::recordLocalVariable(LocalVariable &&Var, 493*0b57cec5SDimitry Andric const LexicalScope *LS) { 494*0b57cec5SDimitry Andric if (const DILocation *InlinedAt = LS->getInlinedAt()) { 495*0b57cec5SDimitry Andric // This variable was inlined. Associate it with the InlineSite. 496*0b57cec5SDimitry Andric const DISubprogram *Inlinee = Var.DIVar->getScope()->getSubprogram(); 497*0b57cec5SDimitry Andric InlineSite &Site = getInlineSite(InlinedAt, Inlinee); 498*0b57cec5SDimitry Andric Site.InlinedLocals.emplace_back(Var); 499*0b57cec5SDimitry Andric } else { 500*0b57cec5SDimitry Andric // This variable goes into the corresponding lexical scope. 501*0b57cec5SDimitry Andric ScopeVariables[LS].emplace_back(Var); 502*0b57cec5SDimitry Andric } 503*0b57cec5SDimitry Andric } 504*0b57cec5SDimitry Andric 505*0b57cec5SDimitry Andric static void addLocIfNotPresent(SmallVectorImpl<const DILocation *> &Locs, 506*0b57cec5SDimitry Andric const DILocation *Loc) { 507e8d8bef9SDimitry Andric if (!llvm::is_contained(Locs, Loc)) 508*0b57cec5SDimitry Andric Locs.push_back(Loc); 509*0b57cec5SDimitry Andric } 510*0b57cec5SDimitry Andric 511*0b57cec5SDimitry Andric void CodeViewDebug::maybeRecordLocation(const DebugLoc &DL, 512*0b57cec5SDimitry Andric const MachineFunction *MF) { 513*0b57cec5SDimitry Andric // Skip this instruction if it has the same location as the previous one. 514*0b57cec5SDimitry Andric if (!DL || DL == PrevInstLoc) 515*0b57cec5SDimitry Andric return; 516*0b57cec5SDimitry Andric 517*0b57cec5SDimitry Andric const DIScope *Scope = DL.get()->getScope(); 518*0b57cec5SDimitry Andric if (!Scope) 519*0b57cec5SDimitry Andric return; 520*0b57cec5SDimitry Andric 521*0b57cec5SDimitry Andric // Skip this line if it is longer than the maximum we can record. 522*0b57cec5SDimitry Andric LineInfo LI(DL.getLine(), DL.getLine(), /*IsStatement=*/true); 523*0b57cec5SDimitry Andric if (LI.getStartLine() != DL.getLine() || LI.isAlwaysStepInto() || 524*0b57cec5SDimitry Andric LI.isNeverStepInto()) 525*0b57cec5SDimitry Andric return; 526*0b57cec5SDimitry Andric 527*0b57cec5SDimitry Andric ColumnInfo CI(DL.getCol(), /*EndColumn=*/0); 528*0b57cec5SDimitry Andric if (CI.getStartColumn() != DL.getCol()) 529*0b57cec5SDimitry Andric return; 530*0b57cec5SDimitry Andric 531*0b57cec5SDimitry Andric if (!CurFn->HaveLineInfo) 532*0b57cec5SDimitry Andric CurFn->HaveLineInfo = true; 533*0b57cec5SDimitry Andric unsigned FileId = 0; 534*0b57cec5SDimitry Andric if (PrevInstLoc.get() && PrevInstLoc->getFile() == DL->getFile()) 535*0b57cec5SDimitry Andric FileId = CurFn->LastFileId; 536*0b57cec5SDimitry Andric else 537*0b57cec5SDimitry Andric FileId = CurFn->LastFileId = maybeRecordFile(DL->getFile()); 538*0b57cec5SDimitry Andric PrevInstLoc = DL; 539*0b57cec5SDimitry Andric 540*0b57cec5SDimitry Andric unsigned FuncId = CurFn->FuncId; 541*0b57cec5SDimitry Andric if (const DILocation *SiteLoc = DL->getInlinedAt()) { 542*0b57cec5SDimitry Andric const DILocation *Loc = DL.get(); 543*0b57cec5SDimitry Andric 544*0b57cec5SDimitry Andric // If this location was actually inlined from somewhere else, give it the ID 545*0b57cec5SDimitry Andric // of the inline call site. 546*0b57cec5SDimitry Andric FuncId = 547*0b57cec5SDimitry Andric getInlineSite(SiteLoc, Loc->getScope()->getSubprogram()).SiteFuncId; 548*0b57cec5SDimitry Andric 549*0b57cec5SDimitry Andric // Ensure we have links in the tree of inline call sites. 550*0b57cec5SDimitry Andric bool FirstLoc = true; 551*0b57cec5SDimitry Andric while ((SiteLoc = Loc->getInlinedAt())) { 552*0b57cec5SDimitry Andric InlineSite &Site = 553*0b57cec5SDimitry Andric getInlineSite(SiteLoc, Loc->getScope()->getSubprogram()); 554*0b57cec5SDimitry Andric if (!FirstLoc) 555*0b57cec5SDimitry Andric addLocIfNotPresent(Site.ChildSites, Loc); 556*0b57cec5SDimitry Andric FirstLoc = false; 557*0b57cec5SDimitry Andric Loc = SiteLoc; 558*0b57cec5SDimitry Andric } 559*0b57cec5SDimitry Andric addLocIfNotPresent(CurFn->ChildSites, Loc); 560*0b57cec5SDimitry Andric } 561*0b57cec5SDimitry Andric 5625ffd83dbSDimitry Andric OS.emitCVLocDirective(FuncId, FileId, DL.getLine(), DL.getCol(), 563*0b57cec5SDimitry Andric /*PrologueEnd=*/false, /*IsStmt=*/false, 564*0b57cec5SDimitry Andric DL->getFilename(), SMLoc()); 565*0b57cec5SDimitry Andric } 566*0b57cec5SDimitry Andric 567*0b57cec5SDimitry Andric void CodeViewDebug::emitCodeViewMagicVersion() { 5685ffd83dbSDimitry Andric OS.emitValueToAlignment(4); 569*0b57cec5SDimitry Andric OS.AddComment("Debug section magic"); 5705ffd83dbSDimitry Andric OS.emitInt32(COFF::DEBUG_SECTION_MAGIC); 571*0b57cec5SDimitry Andric } 572*0b57cec5SDimitry Andric 573349cc55cSDimitry Andric static SourceLanguage MapDWLangToCVLang(unsigned DWLang) { 574349cc55cSDimitry Andric switch (DWLang) { 575349cc55cSDimitry Andric case dwarf::DW_LANG_C: 576349cc55cSDimitry Andric case dwarf::DW_LANG_C89: 577349cc55cSDimitry Andric case dwarf::DW_LANG_C99: 578349cc55cSDimitry Andric case dwarf::DW_LANG_C11: 579349cc55cSDimitry Andric case dwarf::DW_LANG_ObjC: 580349cc55cSDimitry Andric return SourceLanguage::C; 581349cc55cSDimitry Andric case dwarf::DW_LANG_C_plus_plus: 582349cc55cSDimitry Andric case dwarf::DW_LANG_C_plus_plus_03: 583349cc55cSDimitry Andric case dwarf::DW_LANG_C_plus_plus_11: 584349cc55cSDimitry Andric case dwarf::DW_LANG_C_plus_plus_14: 585349cc55cSDimitry Andric return SourceLanguage::Cpp; 586349cc55cSDimitry Andric case dwarf::DW_LANG_Fortran77: 587349cc55cSDimitry Andric case dwarf::DW_LANG_Fortran90: 588349cc55cSDimitry Andric case dwarf::DW_LANG_Fortran95: 589349cc55cSDimitry Andric case dwarf::DW_LANG_Fortran03: 590349cc55cSDimitry Andric case dwarf::DW_LANG_Fortran08: 591349cc55cSDimitry Andric return SourceLanguage::Fortran; 592349cc55cSDimitry Andric case dwarf::DW_LANG_Pascal83: 593349cc55cSDimitry Andric return SourceLanguage::Pascal; 594349cc55cSDimitry Andric case dwarf::DW_LANG_Cobol74: 595349cc55cSDimitry Andric case dwarf::DW_LANG_Cobol85: 596349cc55cSDimitry Andric return SourceLanguage::Cobol; 597349cc55cSDimitry Andric case dwarf::DW_LANG_Java: 598349cc55cSDimitry Andric return SourceLanguage::Java; 599349cc55cSDimitry Andric case dwarf::DW_LANG_D: 600349cc55cSDimitry Andric return SourceLanguage::D; 601349cc55cSDimitry Andric case dwarf::DW_LANG_Swift: 602349cc55cSDimitry Andric return SourceLanguage::Swift; 603349cc55cSDimitry Andric default: 604349cc55cSDimitry Andric // There's no CodeView representation for this language, and CV doesn't 605349cc55cSDimitry Andric // have an "unknown" option for the language field, so we'll use MASM, 606349cc55cSDimitry Andric // as it's very low level. 607349cc55cSDimitry Andric return SourceLanguage::Masm; 608349cc55cSDimitry Andric } 609349cc55cSDimitry Andric } 610349cc55cSDimitry Andric 611e8d8bef9SDimitry Andric void CodeViewDebug::beginModule(Module *M) { 612e8d8bef9SDimitry Andric // If module doesn't have named metadata anchors or COFF debug section 613e8d8bef9SDimitry Andric // is not available, skip any debug info related stuff. 614e8d8bef9SDimitry Andric if (!M->getNamedMetadata("llvm.dbg.cu") || 615e8d8bef9SDimitry Andric !Asm->getObjFileLowering().getCOFFDebugSymbolsSection()) { 616e8d8bef9SDimitry Andric Asm = nullptr; 617e8d8bef9SDimitry Andric return; 618e8d8bef9SDimitry Andric } 619e8d8bef9SDimitry Andric // Tell MMI that we have and need debug info. 620e8d8bef9SDimitry Andric MMI->setDebugInfoAvailability(true); 621e8d8bef9SDimitry Andric 622e8d8bef9SDimitry Andric TheCPU = mapArchToCVCPUType(Triple(M->getTargetTriple()).getArch()); 623e8d8bef9SDimitry Andric 624349cc55cSDimitry Andric // Get the current source language. 625349cc55cSDimitry Andric NamedMDNode *CUs = MMI->getModule()->getNamedMetadata("llvm.dbg.cu"); 626349cc55cSDimitry Andric const MDNode *Node = *CUs->operands().begin(); 627349cc55cSDimitry Andric const auto *CU = cast<DICompileUnit>(Node); 628349cc55cSDimitry Andric 629349cc55cSDimitry Andric CurrentSourceLanguage = MapDWLangToCVLang(CU->getSourceLanguage()); 630349cc55cSDimitry Andric 631e8d8bef9SDimitry Andric collectGlobalVariableInfo(); 632e8d8bef9SDimitry Andric 633e8d8bef9SDimitry Andric // Check if we should emit type record hashes. 634e8d8bef9SDimitry Andric ConstantInt *GH = 635e8d8bef9SDimitry Andric mdconst::extract_or_null<ConstantInt>(M->getModuleFlag("CodeViewGHash")); 636e8d8bef9SDimitry Andric EmitDebugGlobalHashes = GH && !GH->isZero(); 637e8d8bef9SDimitry Andric } 638e8d8bef9SDimitry Andric 639*0b57cec5SDimitry Andric void CodeViewDebug::endModule() { 640*0b57cec5SDimitry Andric if (!Asm || !MMI->hasDebugInfo()) 641*0b57cec5SDimitry Andric return; 642*0b57cec5SDimitry Andric 643*0b57cec5SDimitry Andric // The COFF .debug$S section consists of several subsections, each starting 644*0b57cec5SDimitry Andric // with a 4-byte control code (e.g. 0xF1, 0xF2, etc) and then a 4-byte length 645*0b57cec5SDimitry Andric // of the payload followed by the payload itself. The subsections are 4-byte 646*0b57cec5SDimitry Andric // aligned. 647*0b57cec5SDimitry Andric 648*0b57cec5SDimitry Andric // Use the generic .debug$S section, and make a subsection for all the inlined 649*0b57cec5SDimitry Andric // subprograms. 650*0b57cec5SDimitry Andric switchToDebugSectionForSymbol(nullptr); 651*0b57cec5SDimitry Andric 652*0b57cec5SDimitry Andric MCSymbol *CompilerInfo = beginCVSubsection(DebugSubsectionKind::Symbols); 653*0b57cec5SDimitry Andric emitCompilerInformation(); 654*0b57cec5SDimitry Andric endCVSubsection(CompilerInfo); 655*0b57cec5SDimitry Andric 656*0b57cec5SDimitry Andric emitInlineeLinesSubsection(); 657*0b57cec5SDimitry Andric 658*0b57cec5SDimitry Andric // Emit per-function debug information. 659*0b57cec5SDimitry Andric for (auto &P : FnDebugInfo) 660*0b57cec5SDimitry Andric if (!P.first->isDeclarationForLinker()) 661*0b57cec5SDimitry Andric emitDebugInfoForFunction(P.first, *P.second); 662*0b57cec5SDimitry Andric 663e8d8bef9SDimitry Andric // Get types used by globals without emitting anything. 664e8d8bef9SDimitry Andric // This is meant to collect all static const data members so they can be 665e8d8bef9SDimitry Andric // emitted as globals. 666e8d8bef9SDimitry Andric collectDebugInfoForGlobals(); 667*0b57cec5SDimitry Andric 668*0b57cec5SDimitry Andric // Emit retained types. 669*0b57cec5SDimitry Andric emitDebugInfoForRetainedTypes(); 670*0b57cec5SDimitry Andric 671e8d8bef9SDimitry Andric // Emit global variable debug information. 672e8d8bef9SDimitry Andric setCurrentSubprogram(nullptr); 673e8d8bef9SDimitry Andric emitDebugInfoForGlobals(); 674e8d8bef9SDimitry Andric 675*0b57cec5SDimitry Andric // Switch back to the generic .debug$S section after potentially processing 676*0b57cec5SDimitry Andric // comdat symbol sections. 677*0b57cec5SDimitry Andric switchToDebugSectionForSymbol(nullptr); 678*0b57cec5SDimitry Andric 679*0b57cec5SDimitry Andric // Emit UDT records for any types used by global variables. 680*0b57cec5SDimitry Andric if (!GlobalUDTs.empty()) { 681*0b57cec5SDimitry Andric MCSymbol *SymbolsEnd = beginCVSubsection(DebugSubsectionKind::Symbols); 682*0b57cec5SDimitry Andric emitDebugInfoForUDTs(GlobalUDTs); 683*0b57cec5SDimitry Andric endCVSubsection(SymbolsEnd); 684*0b57cec5SDimitry Andric } 685*0b57cec5SDimitry Andric 686*0b57cec5SDimitry Andric // This subsection holds a file index to offset in string table table. 687*0b57cec5SDimitry Andric OS.AddComment("File index to string table offset subsection"); 6885ffd83dbSDimitry Andric OS.emitCVFileChecksumsDirective(); 689*0b57cec5SDimitry Andric 690*0b57cec5SDimitry Andric // This subsection holds the string table. 691*0b57cec5SDimitry Andric OS.AddComment("String table"); 6925ffd83dbSDimitry Andric OS.emitCVStringTableDirective(); 693*0b57cec5SDimitry Andric 694*0b57cec5SDimitry Andric // Emit S_BUILDINFO, which points to LF_BUILDINFO. Put this in its own symbol 695*0b57cec5SDimitry Andric // subsection in the generic .debug$S section at the end. There is no 696*0b57cec5SDimitry Andric // particular reason for this ordering other than to match MSVC. 697*0b57cec5SDimitry Andric emitBuildInfo(); 698*0b57cec5SDimitry Andric 699*0b57cec5SDimitry Andric // Emit type information and hashes last, so that any types we translate while 700*0b57cec5SDimitry Andric // emitting function info are included. 701*0b57cec5SDimitry Andric emitTypeInformation(); 702*0b57cec5SDimitry Andric 703*0b57cec5SDimitry Andric if (EmitDebugGlobalHashes) 704*0b57cec5SDimitry Andric emitTypeGlobalHashes(); 705*0b57cec5SDimitry Andric 706*0b57cec5SDimitry Andric clear(); 707*0b57cec5SDimitry Andric } 708*0b57cec5SDimitry Andric 709*0b57cec5SDimitry Andric static void 710*0b57cec5SDimitry Andric emitNullTerminatedSymbolName(MCStreamer &OS, StringRef S, 711*0b57cec5SDimitry Andric unsigned MaxFixedRecordLength = 0xF00) { 712*0b57cec5SDimitry Andric // The maximum CV record length is 0xFF00. Most of the strings we emit appear 713*0b57cec5SDimitry Andric // after a fixed length portion of the record. The fixed length portion should 714*0b57cec5SDimitry Andric // always be less than 0xF00 (3840) bytes, so truncate the string so that the 715*0b57cec5SDimitry Andric // overall record size is less than the maximum allowed. 716*0b57cec5SDimitry Andric SmallString<32> NullTerminatedString( 717*0b57cec5SDimitry Andric S.take_front(MaxRecordLength - MaxFixedRecordLength - 1)); 718*0b57cec5SDimitry Andric NullTerminatedString.push_back('\0'); 7195ffd83dbSDimitry Andric OS.emitBytes(NullTerminatedString); 720*0b57cec5SDimitry Andric } 721*0b57cec5SDimitry Andric 722*0b57cec5SDimitry Andric void CodeViewDebug::emitTypeInformation() { 723*0b57cec5SDimitry Andric if (TypeTable.empty()) 724*0b57cec5SDimitry Andric return; 725*0b57cec5SDimitry Andric 726*0b57cec5SDimitry Andric // Start the .debug$T or .debug$P section with 0x4. 727*0b57cec5SDimitry Andric OS.SwitchSection(Asm->getObjFileLowering().getCOFFDebugTypesSection()); 728*0b57cec5SDimitry Andric emitCodeViewMagicVersion(); 729*0b57cec5SDimitry Andric 730*0b57cec5SDimitry Andric TypeTableCollection Table(TypeTable.records()); 731*0b57cec5SDimitry Andric TypeVisitorCallbackPipeline Pipeline; 732*0b57cec5SDimitry Andric 733*0b57cec5SDimitry Andric // To emit type record using Codeview MCStreamer adapter 7348bcb0991SDimitry Andric CVMCAdapter CVMCOS(OS, Table); 735*0b57cec5SDimitry Andric TypeRecordMapping typeMapping(CVMCOS); 736*0b57cec5SDimitry Andric Pipeline.addCallbackToPipeline(typeMapping); 737*0b57cec5SDimitry Andric 738*0b57cec5SDimitry Andric Optional<TypeIndex> B = Table.getFirst(); 739*0b57cec5SDimitry Andric while (B) { 740*0b57cec5SDimitry Andric // This will fail if the record data is invalid. 741*0b57cec5SDimitry Andric CVType Record = Table.getType(*B); 742*0b57cec5SDimitry Andric 743*0b57cec5SDimitry Andric Error E = codeview::visitTypeRecord(Record, *B, Pipeline); 744*0b57cec5SDimitry Andric 745*0b57cec5SDimitry Andric if (E) { 746*0b57cec5SDimitry Andric logAllUnhandledErrors(std::move(E), errs(), "error: "); 747*0b57cec5SDimitry Andric llvm_unreachable("produced malformed type record"); 748*0b57cec5SDimitry Andric } 749*0b57cec5SDimitry Andric 750*0b57cec5SDimitry Andric B = Table.getNext(*B); 751*0b57cec5SDimitry Andric } 752*0b57cec5SDimitry Andric } 753*0b57cec5SDimitry Andric 754*0b57cec5SDimitry Andric void CodeViewDebug::emitTypeGlobalHashes() { 755*0b57cec5SDimitry Andric if (TypeTable.empty()) 756*0b57cec5SDimitry Andric return; 757*0b57cec5SDimitry Andric 758*0b57cec5SDimitry Andric // Start the .debug$H section with the version and hash algorithm, currently 759*0b57cec5SDimitry Andric // hardcoded to version 0, SHA1. 760*0b57cec5SDimitry Andric OS.SwitchSection(Asm->getObjFileLowering().getCOFFGlobalTypeHashesSection()); 761*0b57cec5SDimitry Andric 7625ffd83dbSDimitry Andric OS.emitValueToAlignment(4); 763*0b57cec5SDimitry Andric OS.AddComment("Magic"); 7645ffd83dbSDimitry Andric OS.emitInt32(COFF::DEBUG_HASHES_SECTION_MAGIC); 765*0b57cec5SDimitry Andric OS.AddComment("Section Version"); 7665ffd83dbSDimitry Andric OS.emitInt16(0); 767*0b57cec5SDimitry Andric OS.AddComment("Hash Algorithm"); 7685ffd83dbSDimitry Andric OS.emitInt16(uint16_t(GlobalTypeHashAlg::SHA1_8)); 769*0b57cec5SDimitry Andric 770*0b57cec5SDimitry Andric TypeIndex TI(TypeIndex::FirstNonSimpleIndex); 771*0b57cec5SDimitry Andric for (const auto &GHR : TypeTable.hashes()) { 772*0b57cec5SDimitry Andric if (OS.isVerboseAsm()) { 773*0b57cec5SDimitry Andric // Emit an EOL-comment describing which TypeIndex this hash corresponds 774*0b57cec5SDimitry Andric // to, as well as the stringified SHA1 hash. 775*0b57cec5SDimitry Andric SmallString<32> Comment; 776*0b57cec5SDimitry Andric raw_svector_ostream CommentOS(Comment); 777*0b57cec5SDimitry Andric CommentOS << formatv("{0:X+} [{1}]", TI.getIndex(), GHR); 778*0b57cec5SDimitry Andric OS.AddComment(Comment); 779*0b57cec5SDimitry Andric ++TI; 780*0b57cec5SDimitry Andric } 781*0b57cec5SDimitry Andric assert(GHR.Hash.size() == 8); 782*0b57cec5SDimitry Andric StringRef S(reinterpret_cast<const char *>(GHR.Hash.data()), 783*0b57cec5SDimitry Andric GHR.Hash.size()); 7845ffd83dbSDimitry Andric OS.emitBinaryData(S); 785*0b57cec5SDimitry Andric } 786*0b57cec5SDimitry Andric } 787*0b57cec5SDimitry Andric 788*0b57cec5SDimitry Andric namespace { 789*0b57cec5SDimitry Andric struct Version { 790*0b57cec5SDimitry Andric int Part[4]; 791*0b57cec5SDimitry Andric }; 792*0b57cec5SDimitry Andric } // end anonymous namespace 793*0b57cec5SDimitry Andric 794*0b57cec5SDimitry Andric // Takes a StringRef like "clang 4.0.0.0 (other nonsense 123)" and parses out 795*0b57cec5SDimitry Andric // the version number. 796*0b57cec5SDimitry Andric static Version parseVersion(StringRef Name) { 797*0b57cec5SDimitry Andric Version V = {{0}}; 798*0b57cec5SDimitry Andric int N = 0; 799*0b57cec5SDimitry Andric for (const char C : Name) { 800*0b57cec5SDimitry Andric if (isdigit(C)) { 801*0b57cec5SDimitry Andric V.Part[N] *= 10; 802*0b57cec5SDimitry Andric V.Part[N] += C - '0'; 803*0b57cec5SDimitry Andric } else if (C == '.') { 804*0b57cec5SDimitry Andric ++N; 805*0b57cec5SDimitry Andric if (N >= 4) 806*0b57cec5SDimitry Andric return V; 807*0b57cec5SDimitry Andric } else if (N > 0) 808*0b57cec5SDimitry Andric return V; 809*0b57cec5SDimitry Andric } 810*0b57cec5SDimitry Andric return V; 811*0b57cec5SDimitry Andric } 812*0b57cec5SDimitry Andric 813*0b57cec5SDimitry Andric void CodeViewDebug::emitCompilerInformation() { 814*0b57cec5SDimitry Andric MCSymbol *CompilerEnd = beginSymbolRecord(SymbolKind::S_COMPILE3); 815*0b57cec5SDimitry Andric uint32_t Flags = 0; 816*0b57cec5SDimitry Andric 817*0b57cec5SDimitry Andric // The low byte of the flags indicates the source language. 818349cc55cSDimitry Andric Flags = CurrentSourceLanguage; 819*0b57cec5SDimitry Andric // TODO: Figure out which other flags need to be set. 820fe6060f1SDimitry Andric if (MMI->getModule()->getProfileSummary(/*IsCS*/ false) != nullptr) { 821fe6060f1SDimitry Andric Flags |= static_cast<uint32_t>(CompileSym3Flags::PGO); 822fe6060f1SDimitry Andric } 823*0b57cec5SDimitry Andric 824*0b57cec5SDimitry Andric OS.AddComment("Flags and language"); 8255ffd83dbSDimitry Andric OS.emitInt32(Flags); 826*0b57cec5SDimitry Andric 827*0b57cec5SDimitry Andric OS.AddComment("CPUType"); 8285ffd83dbSDimitry Andric OS.emitInt16(static_cast<uint64_t>(TheCPU)); 829*0b57cec5SDimitry Andric 830349cc55cSDimitry Andric NamedMDNode *CUs = MMI->getModule()->getNamedMetadata("llvm.dbg.cu"); 831349cc55cSDimitry Andric const MDNode *Node = *CUs->operands().begin(); 832349cc55cSDimitry Andric const auto *CU = cast<DICompileUnit>(Node); 833349cc55cSDimitry Andric 834*0b57cec5SDimitry Andric StringRef CompilerVersion = CU->getProducer(); 835*0b57cec5SDimitry Andric Version FrontVer = parseVersion(CompilerVersion); 836*0b57cec5SDimitry Andric OS.AddComment("Frontend version"); 837fe6060f1SDimitry Andric for (int N : FrontVer.Part) 838fe6060f1SDimitry Andric OS.emitInt16(N); 839*0b57cec5SDimitry Andric 840*0b57cec5SDimitry Andric // Some Microsoft tools, like Binscope, expect a backend version number of at 841*0b57cec5SDimitry Andric // least 8.something, so we'll coerce the LLVM version into a form that 842*0b57cec5SDimitry Andric // guarantees it'll be big enough without really lying about the version. 843*0b57cec5SDimitry Andric int Major = 1000 * LLVM_VERSION_MAJOR + 844*0b57cec5SDimitry Andric 10 * LLVM_VERSION_MINOR + 845*0b57cec5SDimitry Andric LLVM_VERSION_PATCH; 846*0b57cec5SDimitry Andric // Clamp it for builds that use unusually large version numbers. 847*0b57cec5SDimitry Andric Major = std::min<int>(Major, std::numeric_limits<uint16_t>::max()); 848*0b57cec5SDimitry Andric Version BackVer = {{ Major, 0, 0, 0 }}; 849*0b57cec5SDimitry Andric OS.AddComment("Backend version"); 850fe6060f1SDimitry Andric for (int N : BackVer.Part) 851fe6060f1SDimitry Andric OS.emitInt16(N); 852*0b57cec5SDimitry Andric 853*0b57cec5SDimitry Andric OS.AddComment("Null-terminated compiler version string"); 854*0b57cec5SDimitry Andric emitNullTerminatedSymbolName(OS, CompilerVersion); 855*0b57cec5SDimitry Andric 856*0b57cec5SDimitry Andric endSymbolRecord(CompilerEnd); 857*0b57cec5SDimitry Andric } 858*0b57cec5SDimitry Andric 859*0b57cec5SDimitry Andric static TypeIndex getStringIdTypeIdx(GlobalTypeTableBuilder &TypeTable, 860*0b57cec5SDimitry Andric StringRef S) { 861*0b57cec5SDimitry Andric StringIdRecord SIR(TypeIndex(0x0), S); 862*0b57cec5SDimitry Andric return TypeTable.writeLeafType(SIR); 863*0b57cec5SDimitry Andric } 864*0b57cec5SDimitry Andric 865*0b57cec5SDimitry Andric void CodeViewDebug::emitBuildInfo() { 866*0b57cec5SDimitry Andric // First, make LF_BUILDINFO. It's a sequence of strings with various bits of 867*0b57cec5SDimitry Andric // build info. The known prefix is: 868*0b57cec5SDimitry Andric // - Absolute path of current directory 869*0b57cec5SDimitry Andric // - Compiler path 870*0b57cec5SDimitry Andric // - Main source file path, relative to CWD or absolute 871*0b57cec5SDimitry Andric // - Type server PDB file 872*0b57cec5SDimitry Andric // - Canonical compiler command line 873*0b57cec5SDimitry Andric // If frontend and backend compilation are separated (think llc or LTO), it's 874*0b57cec5SDimitry Andric // not clear if the compiler path should refer to the executable for the 875*0b57cec5SDimitry Andric // frontend or the backend. Leave it blank for now. 876*0b57cec5SDimitry Andric TypeIndex BuildInfoArgs[BuildInfoRecord::MaxArgs] = {}; 877*0b57cec5SDimitry Andric NamedMDNode *CUs = MMI->getModule()->getNamedMetadata("llvm.dbg.cu"); 878*0b57cec5SDimitry Andric const MDNode *Node = *CUs->operands().begin(); // FIXME: Multiple CUs. 879*0b57cec5SDimitry Andric const auto *CU = cast<DICompileUnit>(Node); 880*0b57cec5SDimitry Andric const DIFile *MainSourceFile = CU->getFile(); 881*0b57cec5SDimitry Andric BuildInfoArgs[BuildInfoRecord::CurrentDirectory] = 882*0b57cec5SDimitry Andric getStringIdTypeIdx(TypeTable, MainSourceFile->getDirectory()); 883*0b57cec5SDimitry Andric BuildInfoArgs[BuildInfoRecord::SourceFile] = 884*0b57cec5SDimitry Andric getStringIdTypeIdx(TypeTable, MainSourceFile->getFilename()); 885*0b57cec5SDimitry Andric // FIXME: Path to compiler and command line. PDB is intentionally blank unless 886*0b57cec5SDimitry Andric // we implement /Zi type servers. 887*0b57cec5SDimitry Andric BuildInfoRecord BIR(BuildInfoArgs); 888*0b57cec5SDimitry Andric TypeIndex BuildInfoIndex = TypeTable.writeLeafType(BIR); 889*0b57cec5SDimitry Andric 890*0b57cec5SDimitry Andric // Make a new .debug$S subsection for the S_BUILDINFO record, which points 891*0b57cec5SDimitry Andric // from the module symbols into the type stream. 892*0b57cec5SDimitry Andric MCSymbol *BISubsecEnd = beginCVSubsection(DebugSubsectionKind::Symbols); 893*0b57cec5SDimitry Andric MCSymbol *BIEnd = beginSymbolRecord(SymbolKind::S_BUILDINFO); 894*0b57cec5SDimitry Andric OS.AddComment("LF_BUILDINFO index"); 8955ffd83dbSDimitry Andric OS.emitInt32(BuildInfoIndex.getIndex()); 896*0b57cec5SDimitry Andric endSymbolRecord(BIEnd); 897*0b57cec5SDimitry Andric endCVSubsection(BISubsecEnd); 898*0b57cec5SDimitry Andric } 899*0b57cec5SDimitry Andric 900*0b57cec5SDimitry Andric void CodeViewDebug::emitInlineeLinesSubsection() { 901*0b57cec5SDimitry Andric if (InlinedSubprograms.empty()) 902*0b57cec5SDimitry Andric return; 903*0b57cec5SDimitry Andric 904*0b57cec5SDimitry Andric OS.AddComment("Inlinee lines subsection"); 905*0b57cec5SDimitry Andric MCSymbol *InlineEnd = beginCVSubsection(DebugSubsectionKind::InlineeLines); 906*0b57cec5SDimitry Andric 907*0b57cec5SDimitry Andric // We emit the checksum info for files. This is used by debuggers to 908*0b57cec5SDimitry Andric // determine if a pdb matches the source before loading it. Visual Studio, 909*0b57cec5SDimitry Andric // for instance, will display a warning that the breakpoints are not valid if 910*0b57cec5SDimitry Andric // the pdb does not match the source. 911*0b57cec5SDimitry Andric OS.AddComment("Inlinee lines signature"); 9125ffd83dbSDimitry Andric OS.emitInt32(unsigned(InlineeLinesSignature::Normal)); 913*0b57cec5SDimitry Andric 914*0b57cec5SDimitry Andric for (const DISubprogram *SP : InlinedSubprograms) { 915*0b57cec5SDimitry Andric assert(TypeIndices.count({SP, nullptr})); 916*0b57cec5SDimitry Andric TypeIndex InlineeIdx = TypeIndices[{SP, nullptr}]; 917*0b57cec5SDimitry Andric 918*0b57cec5SDimitry Andric OS.AddBlankLine(); 919*0b57cec5SDimitry Andric unsigned FileId = maybeRecordFile(SP->getFile()); 920*0b57cec5SDimitry Andric OS.AddComment("Inlined function " + SP->getName() + " starts at " + 921*0b57cec5SDimitry Andric SP->getFilename() + Twine(':') + Twine(SP->getLine())); 922*0b57cec5SDimitry Andric OS.AddBlankLine(); 923*0b57cec5SDimitry Andric OS.AddComment("Type index of inlined function"); 9245ffd83dbSDimitry Andric OS.emitInt32(InlineeIdx.getIndex()); 925*0b57cec5SDimitry Andric OS.AddComment("Offset into filechecksum table"); 9265ffd83dbSDimitry Andric OS.emitCVFileChecksumOffsetDirective(FileId); 927*0b57cec5SDimitry Andric OS.AddComment("Starting line number"); 9285ffd83dbSDimitry Andric OS.emitInt32(SP->getLine()); 929*0b57cec5SDimitry Andric } 930*0b57cec5SDimitry Andric 931*0b57cec5SDimitry Andric endCVSubsection(InlineEnd); 932*0b57cec5SDimitry Andric } 933*0b57cec5SDimitry Andric 934*0b57cec5SDimitry Andric void CodeViewDebug::emitInlinedCallSite(const FunctionInfo &FI, 935*0b57cec5SDimitry Andric const DILocation *InlinedAt, 936*0b57cec5SDimitry Andric const InlineSite &Site) { 937*0b57cec5SDimitry Andric assert(TypeIndices.count({Site.Inlinee, nullptr})); 938*0b57cec5SDimitry Andric TypeIndex InlineeIdx = TypeIndices[{Site.Inlinee, nullptr}]; 939*0b57cec5SDimitry Andric 940*0b57cec5SDimitry Andric // SymbolRecord 941*0b57cec5SDimitry Andric MCSymbol *InlineEnd = beginSymbolRecord(SymbolKind::S_INLINESITE); 942*0b57cec5SDimitry Andric 943*0b57cec5SDimitry Andric OS.AddComment("PtrParent"); 9445ffd83dbSDimitry Andric OS.emitInt32(0); 945*0b57cec5SDimitry Andric OS.AddComment("PtrEnd"); 9465ffd83dbSDimitry Andric OS.emitInt32(0); 947*0b57cec5SDimitry Andric OS.AddComment("Inlinee type index"); 9485ffd83dbSDimitry Andric OS.emitInt32(InlineeIdx.getIndex()); 949*0b57cec5SDimitry Andric 950*0b57cec5SDimitry Andric unsigned FileId = maybeRecordFile(Site.Inlinee->getFile()); 951*0b57cec5SDimitry Andric unsigned StartLineNum = Site.Inlinee->getLine(); 952*0b57cec5SDimitry Andric 9535ffd83dbSDimitry Andric OS.emitCVInlineLinetableDirective(Site.SiteFuncId, FileId, StartLineNum, 954*0b57cec5SDimitry Andric FI.Begin, FI.End); 955*0b57cec5SDimitry Andric 956*0b57cec5SDimitry Andric endSymbolRecord(InlineEnd); 957*0b57cec5SDimitry Andric 958*0b57cec5SDimitry Andric emitLocalVariableList(FI, Site.InlinedLocals); 959*0b57cec5SDimitry Andric 960*0b57cec5SDimitry Andric // Recurse on child inlined call sites before closing the scope. 961*0b57cec5SDimitry Andric for (const DILocation *ChildSite : Site.ChildSites) { 962*0b57cec5SDimitry Andric auto I = FI.InlineSites.find(ChildSite); 963*0b57cec5SDimitry Andric assert(I != FI.InlineSites.end() && 964*0b57cec5SDimitry Andric "child site not in function inline site map"); 965*0b57cec5SDimitry Andric emitInlinedCallSite(FI, ChildSite, I->second); 966*0b57cec5SDimitry Andric } 967*0b57cec5SDimitry Andric 968*0b57cec5SDimitry Andric // Close the scope. 969*0b57cec5SDimitry Andric emitEndSymbolRecord(SymbolKind::S_INLINESITE_END); 970*0b57cec5SDimitry Andric } 971*0b57cec5SDimitry Andric 972*0b57cec5SDimitry Andric void CodeViewDebug::switchToDebugSectionForSymbol(const MCSymbol *GVSym) { 973*0b57cec5SDimitry Andric // If we have a symbol, it may be in a section that is COMDAT. If so, find the 974*0b57cec5SDimitry Andric // comdat key. A section may be comdat because of -ffunction-sections or 975*0b57cec5SDimitry Andric // because it is comdat in the IR. 976*0b57cec5SDimitry Andric MCSectionCOFF *GVSec = 977*0b57cec5SDimitry Andric GVSym ? dyn_cast<MCSectionCOFF>(&GVSym->getSection()) : nullptr; 978*0b57cec5SDimitry Andric const MCSymbol *KeySym = GVSec ? GVSec->getCOMDATSymbol() : nullptr; 979*0b57cec5SDimitry Andric 980*0b57cec5SDimitry Andric MCSectionCOFF *DebugSec = cast<MCSectionCOFF>( 981*0b57cec5SDimitry Andric Asm->getObjFileLowering().getCOFFDebugSymbolsSection()); 982*0b57cec5SDimitry Andric DebugSec = OS.getContext().getAssociativeCOFFSection(DebugSec, KeySym); 983*0b57cec5SDimitry Andric 984*0b57cec5SDimitry Andric OS.SwitchSection(DebugSec); 985*0b57cec5SDimitry Andric 986*0b57cec5SDimitry Andric // Emit the magic version number if this is the first time we've switched to 987*0b57cec5SDimitry Andric // this section. 988*0b57cec5SDimitry Andric if (ComdatDebugSections.insert(DebugSec).second) 989*0b57cec5SDimitry Andric emitCodeViewMagicVersion(); 990*0b57cec5SDimitry Andric } 991*0b57cec5SDimitry Andric 992*0b57cec5SDimitry Andric // Emit an S_THUNK32/S_END symbol pair for a thunk routine. 993*0b57cec5SDimitry Andric // The only supported thunk ordinal is currently the standard type. 994*0b57cec5SDimitry Andric void CodeViewDebug::emitDebugInfoForThunk(const Function *GV, 995*0b57cec5SDimitry Andric FunctionInfo &FI, 996*0b57cec5SDimitry Andric const MCSymbol *Fn) { 9975ffd83dbSDimitry Andric std::string FuncName = 9985ffd83dbSDimitry Andric std::string(GlobalValue::dropLLVMManglingEscape(GV->getName())); 999*0b57cec5SDimitry Andric const ThunkOrdinal ordinal = ThunkOrdinal::Standard; // Only supported kind. 1000*0b57cec5SDimitry Andric 1001*0b57cec5SDimitry Andric OS.AddComment("Symbol subsection for " + Twine(FuncName)); 1002*0b57cec5SDimitry Andric MCSymbol *SymbolsEnd = beginCVSubsection(DebugSubsectionKind::Symbols); 1003*0b57cec5SDimitry Andric 1004*0b57cec5SDimitry Andric // Emit S_THUNK32 1005*0b57cec5SDimitry Andric MCSymbol *ThunkRecordEnd = beginSymbolRecord(SymbolKind::S_THUNK32); 1006*0b57cec5SDimitry Andric OS.AddComment("PtrParent"); 10075ffd83dbSDimitry Andric OS.emitInt32(0); 1008*0b57cec5SDimitry Andric OS.AddComment("PtrEnd"); 10095ffd83dbSDimitry Andric OS.emitInt32(0); 1010*0b57cec5SDimitry Andric OS.AddComment("PtrNext"); 10115ffd83dbSDimitry Andric OS.emitInt32(0); 1012*0b57cec5SDimitry Andric OS.AddComment("Thunk section relative address"); 1013*0b57cec5SDimitry Andric OS.EmitCOFFSecRel32(Fn, /*Offset=*/0); 1014*0b57cec5SDimitry Andric OS.AddComment("Thunk section index"); 1015*0b57cec5SDimitry Andric OS.EmitCOFFSectionIndex(Fn); 1016*0b57cec5SDimitry Andric OS.AddComment("Code size"); 1017*0b57cec5SDimitry Andric OS.emitAbsoluteSymbolDiff(FI.End, Fn, 2); 1018*0b57cec5SDimitry Andric OS.AddComment("Ordinal"); 10195ffd83dbSDimitry Andric OS.emitInt8(unsigned(ordinal)); 1020*0b57cec5SDimitry Andric OS.AddComment("Function name"); 1021*0b57cec5SDimitry Andric emitNullTerminatedSymbolName(OS, FuncName); 1022*0b57cec5SDimitry Andric // Additional fields specific to the thunk ordinal would go here. 1023*0b57cec5SDimitry Andric endSymbolRecord(ThunkRecordEnd); 1024*0b57cec5SDimitry Andric 1025*0b57cec5SDimitry Andric // Local variables/inlined routines are purposely omitted here. The point of 1026*0b57cec5SDimitry Andric // marking this as a thunk is so Visual Studio will NOT stop in this routine. 1027*0b57cec5SDimitry Andric 1028*0b57cec5SDimitry Andric // Emit S_PROC_ID_END 1029*0b57cec5SDimitry Andric emitEndSymbolRecord(SymbolKind::S_PROC_ID_END); 1030*0b57cec5SDimitry Andric 1031*0b57cec5SDimitry Andric endCVSubsection(SymbolsEnd); 1032*0b57cec5SDimitry Andric } 1033*0b57cec5SDimitry Andric 1034*0b57cec5SDimitry Andric void CodeViewDebug::emitDebugInfoForFunction(const Function *GV, 1035*0b57cec5SDimitry Andric FunctionInfo &FI) { 1036*0b57cec5SDimitry Andric // For each function there is a separate subsection which holds the PC to 1037*0b57cec5SDimitry Andric // file:line table. 1038*0b57cec5SDimitry Andric const MCSymbol *Fn = Asm->getSymbol(GV); 1039*0b57cec5SDimitry Andric assert(Fn); 1040*0b57cec5SDimitry Andric 1041*0b57cec5SDimitry Andric // Switch to the to a comdat section, if appropriate. 1042*0b57cec5SDimitry Andric switchToDebugSectionForSymbol(Fn); 1043*0b57cec5SDimitry Andric 1044*0b57cec5SDimitry Andric std::string FuncName; 1045*0b57cec5SDimitry Andric auto *SP = GV->getSubprogram(); 1046*0b57cec5SDimitry Andric assert(SP); 1047*0b57cec5SDimitry Andric setCurrentSubprogram(SP); 1048*0b57cec5SDimitry Andric 1049*0b57cec5SDimitry Andric if (SP->isThunk()) { 1050*0b57cec5SDimitry Andric emitDebugInfoForThunk(GV, FI, Fn); 1051*0b57cec5SDimitry Andric return; 1052*0b57cec5SDimitry Andric } 1053*0b57cec5SDimitry Andric 1054*0b57cec5SDimitry Andric // If we have a display name, build the fully qualified name by walking the 1055*0b57cec5SDimitry Andric // chain of scopes. 1056*0b57cec5SDimitry Andric if (!SP->getName().empty()) 1057*0b57cec5SDimitry Andric FuncName = getFullyQualifiedName(SP->getScope(), SP->getName()); 1058*0b57cec5SDimitry Andric 1059*0b57cec5SDimitry Andric // If our DISubprogram name is empty, use the mangled name. 1060*0b57cec5SDimitry Andric if (FuncName.empty()) 10615ffd83dbSDimitry Andric FuncName = std::string(GlobalValue::dropLLVMManglingEscape(GV->getName())); 1062*0b57cec5SDimitry Andric 1063*0b57cec5SDimitry Andric // Emit FPO data, but only on 32-bit x86. No other platforms use it. 1064*0b57cec5SDimitry Andric if (Triple(MMI->getModule()->getTargetTriple()).getArch() == Triple::x86) 1065*0b57cec5SDimitry Andric OS.EmitCVFPOData(Fn); 1066*0b57cec5SDimitry Andric 1067*0b57cec5SDimitry Andric // Emit a symbol subsection, required by VS2012+ to find function boundaries. 1068*0b57cec5SDimitry Andric OS.AddComment("Symbol subsection for " + Twine(FuncName)); 1069*0b57cec5SDimitry Andric MCSymbol *SymbolsEnd = beginCVSubsection(DebugSubsectionKind::Symbols); 1070*0b57cec5SDimitry Andric { 1071*0b57cec5SDimitry Andric SymbolKind ProcKind = GV->hasLocalLinkage() ? SymbolKind::S_LPROC32_ID 1072*0b57cec5SDimitry Andric : SymbolKind::S_GPROC32_ID; 1073*0b57cec5SDimitry Andric MCSymbol *ProcRecordEnd = beginSymbolRecord(ProcKind); 1074*0b57cec5SDimitry Andric 1075*0b57cec5SDimitry Andric // These fields are filled in by tools like CVPACK which run after the fact. 1076*0b57cec5SDimitry Andric OS.AddComment("PtrParent"); 10775ffd83dbSDimitry Andric OS.emitInt32(0); 1078*0b57cec5SDimitry Andric OS.AddComment("PtrEnd"); 10795ffd83dbSDimitry Andric OS.emitInt32(0); 1080*0b57cec5SDimitry Andric OS.AddComment("PtrNext"); 10815ffd83dbSDimitry Andric OS.emitInt32(0); 1082*0b57cec5SDimitry Andric // This is the important bit that tells the debugger where the function 1083*0b57cec5SDimitry Andric // code is located and what's its size: 1084*0b57cec5SDimitry Andric OS.AddComment("Code size"); 1085*0b57cec5SDimitry Andric OS.emitAbsoluteSymbolDiff(FI.End, Fn, 4); 1086*0b57cec5SDimitry Andric OS.AddComment("Offset after prologue"); 10875ffd83dbSDimitry Andric OS.emitInt32(0); 1088*0b57cec5SDimitry Andric OS.AddComment("Offset before epilogue"); 10895ffd83dbSDimitry Andric OS.emitInt32(0); 1090*0b57cec5SDimitry Andric OS.AddComment("Function type index"); 10915ffd83dbSDimitry Andric OS.emitInt32(getFuncIdForSubprogram(GV->getSubprogram()).getIndex()); 1092*0b57cec5SDimitry Andric OS.AddComment("Function section relative address"); 1093*0b57cec5SDimitry Andric OS.EmitCOFFSecRel32(Fn, /*Offset=*/0); 1094*0b57cec5SDimitry Andric OS.AddComment("Function section index"); 1095*0b57cec5SDimitry Andric OS.EmitCOFFSectionIndex(Fn); 1096*0b57cec5SDimitry Andric OS.AddComment("Flags"); 10975ffd83dbSDimitry Andric OS.emitInt8(0); 1098*0b57cec5SDimitry Andric // Emit the function display name as a null-terminated string. 1099*0b57cec5SDimitry Andric OS.AddComment("Function name"); 1100*0b57cec5SDimitry Andric // Truncate the name so we won't overflow the record length field. 1101*0b57cec5SDimitry Andric emitNullTerminatedSymbolName(OS, FuncName); 1102*0b57cec5SDimitry Andric endSymbolRecord(ProcRecordEnd); 1103*0b57cec5SDimitry Andric 1104*0b57cec5SDimitry Andric MCSymbol *FrameProcEnd = beginSymbolRecord(SymbolKind::S_FRAMEPROC); 1105*0b57cec5SDimitry Andric // Subtract out the CSR size since MSVC excludes that and we include it. 1106*0b57cec5SDimitry Andric OS.AddComment("FrameSize"); 11075ffd83dbSDimitry Andric OS.emitInt32(FI.FrameSize - FI.CSRSize); 1108*0b57cec5SDimitry Andric OS.AddComment("Padding"); 11095ffd83dbSDimitry Andric OS.emitInt32(0); 1110*0b57cec5SDimitry Andric OS.AddComment("Offset of padding"); 11115ffd83dbSDimitry Andric OS.emitInt32(0); 1112*0b57cec5SDimitry Andric OS.AddComment("Bytes of callee saved registers"); 11135ffd83dbSDimitry Andric OS.emitInt32(FI.CSRSize); 1114*0b57cec5SDimitry Andric OS.AddComment("Exception handler offset"); 11155ffd83dbSDimitry Andric OS.emitInt32(0); 1116*0b57cec5SDimitry Andric OS.AddComment("Exception handler section"); 11175ffd83dbSDimitry Andric OS.emitInt16(0); 1118*0b57cec5SDimitry Andric OS.AddComment("Flags (defines frame register)"); 11195ffd83dbSDimitry Andric OS.emitInt32(uint32_t(FI.FrameProcOpts)); 1120*0b57cec5SDimitry Andric endSymbolRecord(FrameProcEnd); 1121*0b57cec5SDimitry Andric 1122*0b57cec5SDimitry Andric emitLocalVariableList(FI, FI.Locals); 1123*0b57cec5SDimitry Andric emitGlobalVariableList(FI.Globals); 1124*0b57cec5SDimitry Andric emitLexicalBlockList(FI.ChildBlocks, FI); 1125*0b57cec5SDimitry Andric 1126*0b57cec5SDimitry Andric // Emit inlined call site information. Only emit functions inlined directly 1127*0b57cec5SDimitry Andric // into the parent function. We'll emit the other sites recursively as part 1128*0b57cec5SDimitry Andric // of their parent inline site. 1129*0b57cec5SDimitry Andric for (const DILocation *InlinedAt : FI.ChildSites) { 1130*0b57cec5SDimitry Andric auto I = FI.InlineSites.find(InlinedAt); 1131*0b57cec5SDimitry Andric assert(I != FI.InlineSites.end() && 1132*0b57cec5SDimitry Andric "child site not in function inline site map"); 1133*0b57cec5SDimitry Andric emitInlinedCallSite(FI, InlinedAt, I->second); 1134*0b57cec5SDimitry Andric } 1135*0b57cec5SDimitry Andric 1136*0b57cec5SDimitry Andric for (auto Annot : FI.Annotations) { 1137*0b57cec5SDimitry Andric MCSymbol *Label = Annot.first; 1138*0b57cec5SDimitry Andric MDTuple *Strs = cast<MDTuple>(Annot.second); 1139*0b57cec5SDimitry Andric MCSymbol *AnnotEnd = beginSymbolRecord(SymbolKind::S_ANNOTATION); 1140*0b57cec5SDimitry Andric OS.EmitCOFFSecRel32(Label, /*Offset=*/0); 1141*0b57cec5SDimitry Andric // FIXME: Make sure we don't overflow the max record size. 1142*0b57cec5SDimitry Andric OS.EmitCOFFSectionIndex(Label); 11435ffd83dbSDimitry Andric OS.emitInt16(Strs->getNumOperands()); 1144*0b57cec5SDimitry Andric for (Metadata *MD : Strs->operands()) { 1145*0b57cec5SDimitry Andric // MDStrings are null terminated, so we can do EmitBytes and get the 1146*0b57cec5SDimitry Andric // nice .asciz directive. 1147*0b57cec5SDimitry Andric StringRef Str = cast<MDString>(MD)->getString(); 1148*0b57cec5SDimitry Andric assert(Str.data()[Str.size()] == '\0' && "non-nullterminated MDString"); 11495ffd83dbSDimitry Andric OS.emitBytes(StringRef(Str.data(), Str.size() + 1)); 1150*0b57cec5SDimitry Andric } 1151*0b57cec5SDimitry Andric endSymbolRecord(AnnotEnd); 1152*0b57cec5SDimitry Andric } 1153*0b57cec5SDimitry Andric 1154*0b57cec5SDimitry Andric for (auto HeapAllocSite : FI.HeapAllocSites) { 1155480093f4SDimitry Andric const MCSymbol *BeginLabel = std::get<0>(HeapAllocSite); 1156480093f4SDimitry Andric const MCSymbol *EndLabel = std::get<1>(HeapAllocSite); 1157c14a5a88SDimitry Andric const DIType *DITy = std::get<2>(HeapAllocSite); 1158*0b57cec5SDimitry Andric MCSymbol *HeapAllocEnd = beginSymbolRecord(SymbolKind::S_HEAPALLOCSITE); 1159*0b57cec5SDimitry Andric OS.AddComment("Call site offset"); 1160*0b57cec5SDimitry Andric OS.EmitCOFFSecRel32(BeginLabel, /*Offset=*/0); 1161*0b57cec5SDimitry Andric OS.AddComment("Call site section index"); 1162*0b57cec5SDimitry Andric OS.EmitCOFFSectionIndex(BeginLabel); 1163*0b57cec5SDimitry Andric OS.AddComment("Call instruction length"); 1164*0b57cec5SDimitry Andric OS.emitAbsoluteSymbolDiff(EndLabel, BeginLabel, 2); 1165*0b57cec5SDimitry Andric OS.AddComment("Type index"); 11665ffd83dbSDimitry Andric OS.emitInt32(getCompleteTypeIndex(DITy).getIndex()); 1167*0b57cec5SDimitry Andric endSymbolRecord(HeapAllocEnd); 1168*0b57cec5SDimitry Andric } 1169*0b57cec5SDimitry Andric 1170*0b57cec5SDimitry Andric if (SP != nullptr) 1171*0b57cec5SDimitry Andric emitDebugInfoForUDTs(LocalUDTs); 1172*0b57cec5SDimitry Andric 1173*0b57cec5SDimitry Andric // We're done with this function. 1174*0b57cec5SDimitry Andric emitEndSymbolRecord(SymbolKind::S_PROC_ID_END); 1175*0b57cec5SDimitry Andric } 1176*0b57cec5SDimitry Andric endCVSubsection(SymbolsEnd); 1177*0b57cec5SDimitry Andric 1178*0b57cec5SDimitry Andric // We have an assembler directive that takes care of the whole line table. 11795ffd83dbSDimitry Andric OS.emitCVLinetableDirective(FI.FuncId, Fn, FI.End); 1180*0b57cec5SDimitry Andric } 1181*0b57cec5SDimitry Andric 1182*0b57cec5SDimitry Andric CodeViewDebug::LocalVarDefRange 1183*0b57cec5SDimitry Andric CodeViewDebug::createDefRangeMem(uint16_t CVRegister, int Offset) { 1184*0b57cec5SDimitry Andric LocalVarDefRange DR; 1185*0b57cec5SDimitry Andric DR.InMemory = -1; 1186*0b57cec5SDimitry Andric DR.DataOffset = Offset; 1187*0b57cec5SDimitry Andric assert(DR.DataOffset == Offset && "truncation"); 1188*0b57cec5SDimitry Andric DR.IsSubfield = 0; 1189*0b57cec5SDimitry Andric DR.StructOffset = 0; 1190*0b57cec5SDimitry Andric DR.CVRegister = CVRegister; 1191*0b57cec5SDimitry Andric return DR; 1192*0b57cec5SDimitry Andric } 1193*0b57cec5SDimitry Andric 1194*0b57cec5SDimitry Andric void CodeViewDebug::collectVariableInfoFromMFTable( 1195*0b57cec5SDimitry Andric DenseSet<InlinedEntity> &Processed) { 1196*0b57cec5SDimitry Andric const MachineFunction &MF = *Asm->MF; 1197*0b57cec5SDimitry Andric const TargetSubtargetInfo &TSI = MF.getSubtarget(); 1198*0b57cec5SDimitry Andric const TargetFrameLowering *TFI = TSI.getFrameLowering(); 1199*0b57cec5SDimitry Andric const TargetRegisterInfo *TRI = TSI.getRegisterInfo(); 1200*0b57cec5SDimitry Andric 1201*0b57cec5SDimitry Andric for (const MachineFunction::VariableDbgInfo &VI : MF.getVariableDbgInfo()) { 1202*0b57cec5SDimitry Andric if (!VI.Var) 1203*0b57cec5SDimitry Andric continue; 1204*0b57cec5SDimitry Andric assert(VI.Var->isValidLocationForIntrinsic(VI.Loc) && 1205*0b57cec5SDimitry Andric "Expected inlined-at fields to agree"); 1206*0b57cec5SDimitry Andric 1207*0b57cec5SDimitry Andric Processed.insert(InlinedEntity(VI.Var, VI.Loc->getInlinedAt())); 1208*0b57cec5SDimitry Andric LexicalScope *Scope = LScopes.findLexicalScope(VI.Loc); 1209*0b57cec5SDimitry Andric 1210*0b57cec5SDimitry Andric // If variable scope is not found then skip this variable. 1211*0b57cec5SDimitry Andric if (!Scope) 1212*0b57cec5SDimitry Andric continue; 1213*0b57cec5SDimitry Andric 1214*0b57cec5SDimitry Andric // If the variable has an attached offset expression, extract it. 1215*0b57cec5SDimitry Andric // FIXME: Try to handle DW_OP_deref as well. 1216*0b57cec5SDimitry Andric int64_t ExprOffset = 0; 1217*0b57cec5SDimitry Andric bool Deref = false; 1218*0b57cec5SDimitry Andric if (VI.Expr) { 1219*0b57cec5SDimitry Andric // If there is one DW_OP_deref element, use offset of 0 and keep going. 1220*0b57cec5SDimitry Andric if (VI.Expr->getNumElements() == 1 && 1221*0b57cec5SDimitry Andric VI.Expr->getElement(0) == llvm::dwarf::DW_OP_deref) 1222*0b57cec5SDimitry Andric Deref = true; 1223*0b57cec5SDimitry Andric else if (!VI.Expr->extractIfOffset(ExprOffset)) 1224*0b57cec5SDimitry Andric continue; 1225*0b57cec5SDimitry Andric } 1226*0b57cec5SDimitry Andric 1227*0b57cec5SDimitry Andric // Get the frame register used and the offset. 12285ffd83dbSDimitry Andric Register FrameReg; 1229e8d8bef9SDimitry Andric StackOffset FrameOffset = TFI->getFrameIndexReference(*Asm->MF, VI.Slot, FrameReg); 1230*0b57cec5SDimitry Andric uint16_t CVReg = TRI->getCodeViewRegNum(FrameReg); 1231*0b57cec5SDimitry Andric 1232e8d8bef9SDimitry Andric assert(!FrameOffset.getScalable() && 1233e8d8bef9SDimitry Andric "Frame offsets with a scalable component are not supported"); 1234e8d8bef9SDimitry Andric 1235*0b57cec5SDimitry Andric // Calculate the label ranges. 1236*0b57cec5SDimitry Andric LocalVarDefRange DefRange = 1237e8d8bef9SDimitry Andric createDefRangeMem(CVReg, FrameOffset.getFixed() + ExprOffset); 1238*0b57cec5SDimitry Andric 1239*0b57cec5SDimitry Andric for (const InsnRange &Range : Scope->getRanges()) { 1240*0b57cec5SDimitry Andric const MCSymbol *Begin = getLabelBeforeInsn(Range.first); 1241*0b57cec5SDimitry Andric const MCSymbol *End = getLabelAfterInsn(Range.second); 1242*0b57cec5SDimitry Andric End = End ? End : Asm->getFunctionEnd(); 1243*0b57cec5SDimitry Andric DefRange.Ranges.emplace_back(Begin, End); 1244*0b57cec5SDimitry Andric } 1245*0b57cec5SDimitry Andric 1246*0b57cec5SDimitry Andric LocalVariable Var; 1247*0b57cec5SDimitry Andric Var.DIVar = VI.Var; 1248*0b57cec5SDimitry Andric Var.DefRanges.emplace_back(std::move(DefRange)); 1249*0b57cec5SDimitry Andric if (Deref) 1250*0b57cec5SDimitry Andric Var.UseReferenceType = true; 1251*0b57cec5SDimitry Andric 1252*0b57cec5SDimitry Andric recordLocalVariable(std::move(Var), Scope); 1253*0b57cec5SDimitry Andric } 1254*0b57cec5SDimitry Andric } 1255*0b57cec5SDimitry Andric 1256*0b57cec5SDimitry Andric static bool canUseReferenceType(const DbgVariableLocation &Loc) { 1257*0b57cec5SDimitry Andric return !Loc.LoadChain.empty() && Loc.LoadChain.back() == 0; 1258*0b57cec5SDimitry Andric } 1259*0b57cec5SDimitry Andric 1260*0b57cec5SDimitry Andric static bool needsReferenceType(const DbgVariableLocation &Loc) { 1261*0b57cec5SDimitry Andric return Loc.LoadChain.size() == 2 && Loc.LoadChain.back() == 0; 1262*0b57cec5SDimitry Andric } 1263*0b57cec5SDimitry Andric 1264*0b57cec5SDimitry Andric void CodeViewDebug::calculateRanges( 1265*0b57cec5SDimitry Andric LocalVariable &Var, const DbgValueHistoryMap::Entries &Entries) { 1266*0b57cec5SDimitry Andric const TargetRegisterInfo *TRI = Asm->MF->getSubtarget().getRegisterInfo(); 1267*0b57cec5SDimitry Andric 1268*0b57cec5SDimitry Andric // Calculate the definition ranges. 1269*0b57cec5SDimitry Andric for (auto I = Entries.begin(), E = Entries.end(); I != E; ++I) { 1270*0b57cec5SDimitry Andric const auto &Entry = *I; 1271*0b57cec5SDimitry Andric if (!Entry.isDbgValue()) 1272*0b57cec5SDimitry Andric continue; 1273*0b57cec5SDimitry Andric const MachineInstr *DVInst = Entry.getInstr(); 1274*0b57cec5SDimitry Andric assert(DVInst->isDebugValue() && "Invalid History entry"); 1275*0b57cec5SDimitry Andric // FIXME: Find a way to represent constant variables, since they are 1276*0b57cec5SDimitry Andric // relatively common. 1277*0b57cec5SDimitry Andric Optional<DbgVariableLocation> Location = 1278*0b57cec5SDimitry Andric DbgVariableLocation::extractFromMachineInstruction(*DVInst); 1279*0b57cec5SDimitry Andric if (!Location) 1280*0b57cec5SDimitry Andric continue; 1281*0b57cec5SDimitry Andric 1282*0b57cec5SDimitry Andric // CodeView can only express variables in register and variables in memory 1283*0b57cec5SDimitry Andric // at a constant offset from a register. However, for variables passed 1284*0b57cec5SDimitry Andric // indirectly by pointer, it is common for that pointer to be spilled to a 1285*0b57cec5SDimitry Andric // stack location. For the special case of one offseted load followed by a 1286*0b57cec5SDimitry Andric // zero offset load (a pointer spilled to the stack), we change the type of 1287*0b57cec5SDimitry Andric // the local variable from a value type to a reference type. This tricks the 1288*0b57cec5SDimitry Andric // debugger into doing the load for us. 1289*0b57cec5SDimitry Andric if (Var.UseReferenceType) { 1290*0b57cec5SDimitry Andric // We're using a reference type. Drop the last zero offset load. 1291*0b57cec5SDimitry Andric if (canUseReferenceType(*Location)) 1292*0b57cec5SDimitry Andric Location->LoadChain.pop_back(); 1293*0b57cec5SDimitry Andric else 1294*0b57cec5SDimitry Andric continue; 1295*0b57cec5SDimitry Andric } else if (needsReferenceType(*Location)) { 1296*0b57cec5SDimitry Andric // This location can't be expressed without switching to a reference type. 1297*0b57cec5SDimitry Andric // Start over using that. 1298*0b57cec5SDimitry Andric Var.UseReferenceType = true; 1299*0b57cec5SDimitry Andric Var.DefRanges.clear(); 1300*0b57cec5SDimitry Andric calculateRanges(Var, Entries); 1301*0b57cec5SDimitry Andric return; 1302*0b57cec5SDimitry Andric } 1303*0b57cec5SDimitry Andric 1304*0b57cec5SDimitry Andric // We can only handle a register or an offseted load of a register. 1305*0b57cec5SDimitry Andric if (Location->Register == 0 || Location->LoadChain.size() > 1) 1306*0b57cec5SDimitry Andric continue; 1307*0b57cec5SDimitry Andric { 1308*0b57cec5SDimitry Andric LocalVarDefRange DR; 1309*0b57cec5SDimitry Andric DR.CVRegister = TRI->getCodeViewRegNum(Location->Register); 1310*0b57cec5SDimitry Andric DR.InMemory = !Location->LoadChain.empty(); 1311*0b57cec5SDimitry Andric DR.DataOffset = 1312*0b57cec5SDimitry Andric !Location->LoadChain.empty() ? Location->LoadChain.back() : 0; 1313*0b57cec5SDimitry Andric if (Location->FragmentInfo) { 1314*0b57cec5SDimitry Andric DR.IsSubfield = true; 1315*0b57cec5SDimitry Andric DR.StructOffset = Location->FragmentInfo->OffsetInBits / 8; 1316*0b57cec5SDimitry Andric } else { 1317*0b57cec5SDimitry Andric DR.IsSubfield = false; 1318*0b57cec5SDimitry Andric DR.StructOffset = 0; 1319*0b57cec5SDimitry Andric } 1320*0b57cec5SDimitry Andric 1321*0b57cec5SDimitry Andric if (Var.DefRanges.empty() || 1322*0b57cec5SDimitry Andric Var.DefRanges.back().isDifferentLocation(DR)) { 1323*0b57cec5SDimitry Andric Var.DefRanges.emplace_back(std::move(DR)); 1324*0b57cec5SDimitry Andric } 1325*0b57cec5SDimitry Andric } 1326*0b57cec5SDimitry Andric 1327*0b57cec5SDimitry Andric // Compute the label range. 1328*0b57cec5SDimitry Andric const MCSymbol *Begin = getLabelBeforeInsn(Entry.getInstr()); 1329*0b57cec5SDimitry Andric const MCSymbol *End; 1330*0b57cec5SDimitry Andric if (Entry.getEndIndex() != DbgValueHistoryMap::NoEntry) { 1331*0b57cec5SDimitry Andric auto &EndingEntry = Entries[Entry.getEndIndex()]; 1332*0b57cec5SDimitry Andric End = EndingEntry.isDbgValue() 1333*0b57cec5SDimitry Andric ? getLabelBeforeInsn(EndingEntry.getInstr()) 1334*0b57cec5SDimitry Andric : getLabelAfterInsn(EndingEntry.getInstr()); 1335*0b57cec5SDimitry Andric } else 1336*0b57cec5SDimitry Andric End = Asm->getFunctionEnd(); 1337*0b57cec5SDimitry Andric 1338*0b57cec5SDimitry Andric // If the last range end is our begin, just extend the last range. 1339*0b57cec5SDimitry Andric // Otherwise make a new range. 1340*0b57cec5SDimitry Andric SmallVectorImpl<std::pair<const MCSymbol *, const MCSymbol *>> &R = 1341*0b57cec5SDimitry Andric Var.DefRanges.back().Ranges; 1342*0b57cec5SDimitry Andric if (!R.empty() && R.back().second == Begin) 1343*0b57cec5SDimitry Andric R.back().second = End; 1344*0b57cec5SDimitry Andric else 1345*0b57cec5SDimitry Andric R.emplace_back(Begin, End); 1346*0b57cec5SDimitry Andric 1347*0b57cec5SDimitry Andric // FIXME: Do more range combining. 1348*0b57cec5SDimitry Andric } 1349*0b57cec5SDimitry Andric } 1350*0b57cec5SDimitry Andric 1351*0b57cec5SDimitry Andric void CodeViewDebug::collectVariableInfo(const DISubprogram *SP) { 1352*0b57cec5SDimitry Andric DenseSet<InlinedEntity> Processed; 1353*0b57cec5SDimitry Andric // Grab the variable info that was squirreled away in the MMI side-table. 1354*0b57cec5SDimitry Andric collectVariableInfoFromMFTable(Processed); 1355*0b57cec5SDimitry Andric 1356*0b57cec5SDimitry Andric for (const auto &I : DbgValues) { 1357*0b57cec5SDimitry Andric InlinedEntity IV = I.first; 1358*0b57cec5SDimitry Andric if (Processed.count(IV)) 1359*0b57cec5SDimitry Andric continue; 1360*0b57cec5SDimitry Andric const DILocalVariable *DIVar = cast<DILocalVariable>(IV.first); 1361*0b57cec5SDimitry Andric const DILocation *InlinedAt = IV.second; 1362*0b57cec5SDimitry Andric 1363*0b57cec5SDimitry Andric // Instruction ranges, specifying where IV is accessible. 1364*0b57cec5SDimitry Andric const auto &Entries = I.second; 1365*0b57cec5SDimitry Andric 1366*0b57cec5SDimitry Andric LexicalScope *Scope = nullptr; 1367*0b57cec5SDimitry Andric if (InlinedAt) 1368*0b57cec5SDimitry Andric Scope = LScopes.findInlinedScope(DIVar->getScope(), InlinedAt); 1369*0b57cec5SDimitry Andric else 1370*0b57cec5SDimitry Andric Scope = LScopes.findLexicalScope(DIVar->getScope()); 1371*0b57cec5SDimitry Andric // If variable scope is not found then skip this variable. 1372*0b57cec5SDimitry Andric if (!Scope) 1373*0b57cec5SDimitry Andric continue; 1374*0b57cec5SDimitry Andric 1375*0b57cec5SDimitry Andric LocalVariable Var; 1376*0b57cec5SDimitry Andric Var.DIVar = DIVar; 1377*0b57cec5SDimitry Andric 1378*0b57cec5SDimitry Andric calculateRanges(Var, Entries); 1379*0b57cec5SDimitry Andric recordLocalVariable(std::move(Var), Scope); 1380*0b57cec5SDimitry Andric } 1381*0b57cec5SDimitry Andric } 1382*0b57cec5SDimitry Andric 1383*0b57cec5SDimitry Andric void CodeViewDebug::beginFunctionImpl(const MachineFunction *MF) { 1384*0b57cec5SDimitry Andric const TargetSubtargetInfo &TSI = MF->getSubtarget(); 1385*0b57cec5SDimitry Andric const TargetRegisterInfo *TRI = TSI.getRegisterInfo(); 1386*0b57cec5SDimitry Andric const MachineFrameInfo &MFI = MF->getFrameInfo(); 1387*0b57cec5SDimitry Andric const Function &GV = MF->getFunction(); 13888bcb0991SDimitry Andric auto Insertion = FnDebugInfo.insert({&GV, std::make_unique<FunctionInfo>()}); 1389*0b57cec5SDimitry Andric assert(Insertion.second && "function already has info"); 1390*0b57cec5SDimitry Andric CurFn = Insertion.first->second.get(); 1391*0b57cec5SDimitry Andric CurFn->FuncId = NextFuncId++; 1392*0b57cec5SDimitry Andric CurFn->Begin = Asm->getFunctionBegin(); 1393*0b57cec5SDimitry Andric 1394*0b57cec5SDimitry Andric // The S_FRAMEPROC record reports the stack size, and how many bytes of 1395*0b57cec5SDimitry Andric // callee-saved registers were used. For targets that don't use a PUSH 1396*0b57cec5SDimitry Andric // instruction (AArch64), this will be zero. 1397*0b57cec5SDimitry Andric CurFn->CSRSize = MFI.getCVBytesOfCalleeSavedRegisters(); 1398*0b57cec5SDimitry Andric CurFn->FrameSize = MFI.getStackSize(); 1399*0b57cec5SDimitry Andric CurFn->OffsetAdjustment = MFI.getOffsetAdjustment(); 1400fe6060f1SDimitry Andric CurFn->HasStackRealignment = TRI->hasStackRealignment(*MF); 1401*0b57cec5SDimitry Andric 1402*0b57cec5SDimitry Andric // For this function S_FRAMEPROC record, figure out which codeview register 1403*0b57cec5SDimitry Andric // will be the frame pointer. 1404*0b57cec5SDimitry Andric CurFn->EncodedParamFramePtrReg = EncodedFramePtrReg::None; // None. 1405*0b57cec5SDimitry Andric CurFn->EncodedLocalFramePtrReg = EncodedFramePtrReg::None; // None. 1406*0b57cec5SDimitry Andric if (CurFn->FrameSize > 0) { 1407*0b57cec5SDimitry Andric if (!TSI.getFrameLowering()->hasFP(*MF)) { 1408*0b57cec5SDimitry Andric CurFn->EncodedLocalFramePtrReg = EncodedFramePtrReg::StackPtr; 1409*0b57cec5SDimitry Andric CurFn->EncodedParamFramePtrReg = EncodedFramePtrReg::StackPtr; 1410*0b57cec5SDimitry Andric } else { 1411*0b57cec5SDimitry Andric // If there is an FP, parameters are always relative to it. 1412*0b57cec5SDimitry Andric CurFn->EncodedParamFramePtrReg = EncodedFramePtrReg::FramePtr; 1413*0b57cec5SDimitry Andric if (CurFn->HasStackRealignment) { 1414*0b57cec5SDimitry Andric // If the stack needs realignment, locals are relative to SP or VFRAME. 1415*0b57cec5SDimitry Andric CurFn->EncodedLocalFramePtrReg = EncodedFramePtrReg::StackPtr; 1416*0b57cec5SDimitry Andric } else { 1417*0b57cec5SDimitry Andric // Otherwise, locals are relative to EBP, and we probably have VLAs or 1418*0b57cec5SDimitry Andric // other stack adjustments. 1419*0b57cec5SDimitry Andric CurFn->EncodedLocalFramePtrReg = EncodedFramePtrReg::FramePtr; 1420*0b57cec5SDimitry Andric } 1421*0b57cec5SDimitry Andric } 1422*0b57cec5SDimitry Andric } 1423*0b57cec5SDimitry Andric 1424*0b57cec5SDimitry Andric // Compute other frame procedure options. 1425*0b57cec5SDimitry Andric FrameProcedureOptions FPO = FrameProcedureOptions::None; 1426*0b57cec5SDimitry Andric if (MFI.hasVarSizedObjects()) 1427*0b57cec5SDimitry Andric FPO |= FrameProcedureOptions::HasAlloca; 1428*0b57cec5SDimitry Andric if (MF->exposesReturnsTwice()) 1429*0b57cec5SDimitry Andric FPO |= FrameProcedureOptions::HasSetJmp; 1430*0b57cec5SDimitry Andric // FIXME: Set HasLongJmp if we ever track that info. 1431*0b57cec5SDimitry Andric if (MF->hasInlineAsm()) 1432*0b57cec5SDimitry Andric FPO |= FrameProcedureOptions::HasInlineAssembly; 1433*0b57cec5SDimitry Andric if (GV.hasPersonalityFn()) { 1434*0b57cec5SDimitry Andric if (isAsynchronousEHPersonality( 1435*0b57cec5SDimitry Andric classifyEHPersonality(GV.getPersonalityFn()))) 1436*0b57cec5SDimitry Andric FPO |= FrameProcedureOptions::HasStructuredExceptionHandling; 1437*0b57cec5SDimitry Andric else 1438*0b57cec5SDimitry Andric FPO |= FrameProcedureOptions::HasExceptionHandling; 1439*0b57cec5SDimitry Andric } 1440*0b57cec5SDimitry Andric if (GV.hasFnAttribute(Attribute::InlineHint)) 1441*0b57cec5SDimitry Andric FPO |= FrameProcedureOptions::MarkedInline; 1442*0b57cec5SDimitry Andric if (GV.hasFnAttribute(Attribute::Naked)) 1443*0b57cec5SDimitry Andric FPO |= FrameProcedureOptions::Naked; 1444*0b57cec5SDimitry Andric if (MFI.hasStackProtectorIndex()) 1445*0b57cec5SDimitry Andric FPO |= FrameProcedureOptions::SecurityChecks; 1446*0b57cec5SDimitry Andric FPO |= FrameProcedureOptions(uint32_t(CurFn->EncodedLocalFramePtrReg) << 14U); 1447*0b57cec5SDimitry Andric FPO |= FrameProcedureOptions(uint32_t(CurFn->EncodedParamFramePtrReg) << 16U); 1448*0b57cec5SDimitry Andric if (Asm->TM.getOptLevel() != CodeGenOpt::None && 1449*0b57cec5SDimitry Andric !GV.hasOptSize() && !GV.hasOptNone()) 1450*0b57cec5SDimitry Andric FPO |= FrameProcedureOptions::OptimizedForSpeed; 1451fe6060f1SDimitry Andric if (GV.hasProfileData()) { 1452fe6060f1SDimitry Andric FPO |= FrameProcedureOptions::ValidProfileCounts; 1453fe6060f1SDimitry Andric FPO |= FrameProcedureOptions::ProfileGuidedOptimization; 1454fe6060f1SDimitry Andric } 1455*0b57cec5SDimitry Andric // FIXME: Set GuardCfg when it is implemented. 1456*0b57cec5SDimitry Andric CurFn->FrameProcOpts = FPO; 1457*0b57cec5SDimitry Andric 1458*0b57cec5SDimitry Andric OS.EmitCVFuncIdDirective(CurFn->FuncId); 1459*0b57cec5SDimitry Andric 1460*0b57cec5SDimitry Andric // Find the end of the function prolog. First known non-DBG_VALUE and 1461*0b57cec5SDimitry Andric // non-frame setup location marks the beginning of the function body. 1462*0b57cec5SDimitry Andric // FIXME: is there a simpler a way to do this? Can we just search 1463*0b57cec5SDimitry Andric // for the first instruction of the function, not the last of the prolog? 1464*0b57cec5SDimitry Andric DebugLoc PrologEndLoc; 1465*0b57cec5SDimitry Andric bool EmptyPrologue = true; 1466*0b57cec5SDimitry Andric for (const auto &MBB : *MF) { 1467*0b57cec5SDimitry Andric for (const auto &MI : MBB) { 1468*0b57cec5SDimitry Andric if (!MI.isMetaInstruction() && !MI.getFlag(MachineInstr::FrameSetup) && 1469*0b57cec5SDimitry Andric MI.getDebugLoc()) { 1470*0b57cec5SDimitry Andric PrologEndLoc = MI.getDebugLoc(); 1471*0b57cec5SDimitry Andric break; 1472*0b57cec5SDimitry Andric } else if (!MI.isMetaInstruction()) { 1473*0b57cec5SDimitry Andric EmptyPrologue = false; 1474*0b57cec5SDimitry Andric } 1475*0b57cec5SDimitry Andric } 1476*0b57cec5SDimitry Andric } 1477*0b57cec5SDimitry Andric 1478*0b57cec5SDimitry Andric // Record beginning of function if we have a non-empty prologue. 1479*0b57cec5SDimitry Andric if (PrologEndLoc && !EmptyPrologue) { 1480*0b57cec5SDimitry Andric DebugLoc FnStartDL = PrologEndLoc.getFnDebugLoc(); 1481*0b57cec5SDimitry Andric maybeRecordLocation(FnStartDL, MF); 1482*0b57cec5SDimitry Andric } 1483480093f4SDimitry Andric 1484480093f4SDimitry Andric // Find heap alloc sites and emit labels around them. 1485480093f4SDimitry Andric for (const auto &MBB : *MF) { 1486480093f4SDimitry Andric for (const auto &MI : MBB) { 1487480093f4SDimitry Andric if (MI.getHeapAllocMarker()) { 1488480093f4SDimitry Andric requestLabelBeforeInsn(&MI); 1489480093f4SDimitry Andric requestLabelAfterInsn(&MI); 1490480093f4SDimitry Andric } 1491480093f4SDimitry Andric } 1492480093f4SDimitry Andric } 1493*0b57cec5SDimitry Andric } 1494*0b57cec5SDimitry Andric 1495*0b57cec5SDimitry Andric static bool shouldEmitUdt(const DIType *T) { 1496*0b57cec5SDimitry Andric if (!T) 1497*0b57cec5SDimitry Andric return false; 1498*0b57cec5SDimitry Andric 1499*0b57cec5SDimitry Andric // MSVC does not emit UDTs for typedefs that are scoped to classes. 1500*0b57cec5SDimitry Andric if (T->getTag() == dwarf::DW_TAG_typedef) { 1501*0b57cec5SDimitry Andric if (DIScope *Scope = T->getScope()) { 1502*0b57cec5SDimitry Andric switch (Scope->getTag()) { 1503*0b57cec5SDimitry Andric case dwarf::DW_TAG_structure_type: 1504*0b57cec5SDimitry Andric case dwarf::DW_TAG_class_type: 1505*0b57cec5SDimitry Andric case dwarf::DW_TAG_union_type: 1506*0b57cec5SDimitry Andric return false; 1507fe6060f1SDimitry Andric default: 1508fe6060f1SDimitry Andric // do nothing. 1509fe6060f1SDimitry Andric ; 1510*0b57cec5SDimitry Andric } 1511*0b57cec5SDimitry Andric } 1512*0b57cec5SDimitry Andric } 1513*0b57cec5SDimitry Andric 1514*0b57cec5SDimitry Andric while (true) { 1515*0b57cec5SDimitry Andric if (!T || T->isForwardDecl()) 1516*0b57cec5SDimitry Andric return false; 1517*0b57cec5SDimitry Andric 1518*0b57cec5SDimitry Andric const DIDerivedType *DT = dyn_cast<DIDerivedType>(T); 1519*0b57cec5SDimitry Andric if (!DT) 1520*0b57cec5SDimitry Andric return true; 1521*0b57cec5SDimitry Andric T = DT->getBaseType(); 1522*0b57cec5SDimitry Andric } 1523*0b57cec5SDimitry Andric return true; 1524*0b57cec5SDimitry Andric } 1525*0b57cec5SDimitry Andric 1526*0b57cec5SDimitry Andric void CodeViewDebug::addToUDTs(const DIType *Ty) { 1527*0b57cec5SDimitry Andric // Don't record empty UDTs. 1528*0b57cec5SDimitry Andric if (Ty->getName().empty()) 1529*0b57cec5SDimitry Andric return; 1530*0b57cec5SDimitry Andric if (!shouldEmitUdt(Ty)) 1531*0b57cec5SDimitry Andric return; 1532*0b57cec5SDimitry Andric 15335ffd83dbSDimitry Andric SmallVector<StringRef, 5> ParentScopeNames; 1534*0b57cec5SDimitry Andric const DISubprogram *ClosestSubprogram = 15355ffd83dbSDimitry Andric collectParentScopeNames(Ty->getScope(), ParentScopeNames); 1536*0b57cec5SDimitry Andric 1537*0b57cec5SDimitry Andric std::string FullyQualifiedName = 15385ffd83dbSDimitry Andric formatNestedName(ParentScopeNames, getPrettyScopeName(Ty)); 1539*0b57cec5SDimitry Andric 1540*0b57cec5SDimitry Andric if (ClosestSubprogram == nullptr) { 1541*0b57cec5SDimitry Andric GlobalUDTs.emplace_back(std::move(FullyQualifiedName), Ty); 1542*0b57cec5SDimitry Andric } else if (ClosestSubprogram == CurrentSubprogram) { 1543*0b57cec5SDimitry Andric LocalUDTs.emplace_back(std::move(FullyQualifiedName), Ty); 1544*0b57cec5SDimitry Andric } 1545*0b57cec5SDimitry Andric 1546*0b57cec5SDimitry Andric // TODO: What if the ClosestSubprogram is neither null or the current 1547*0b57cec5SDimitry Andric // subprogram? Currently, the UDT just gets dropped on the floor. 1548*0b57cec5SDimitry Andric // 1549*0b57cec5SDimitry Andric // The current behavior is not desirable. To get maximal fidelity, we would 1550*0b57cec5SDimitry Andric // need to perform all type translation before beginning emission of .debug$S 1551*0b57cec5SDimitry Andric // and then make LocalUDTs a member of FunctionInfo 1552*0b57cec5SDimitry Andric } 1553*0b57cec5SDimitry Andric 1554*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerType(const DIType *Ty, const DIType *ClassTy) { 1555*0b57cec5SDimitry Andric // Generic dispatch for lowering an unknown type. 1556*0b57cec5SDimitry Andric switch (Ty->getTag()) { 1557*0b57cec5SDimitry Andric case dwarf::DW_TAG_array_type: 1558*0b57cec5SDimitry Andric return lowerTypeArray(cast<DICompositeType>(Ty)); 1559*0b57cec5SDimitry Andric case dwarf::DW_TAG_typedef: 1560*0b57cec5SDimitry Andric return lowerTypeAlias(cast<DIDerivedType>(Ty)); 1561*0b57cec5SDimitry Andric case dwarf::DW_TAG_base_type: 1562*0b57cec5SDimitry Andric return lowerTypeBasic(cast<DIBasicType>(Ty)); 1563*0b57cec5SDimitry Andric case dwarf::DW_TAG_pointer_type: 1564*0b57cec5SDimitry Andric if (cast<DIDerivedType>(Ty)->getName() == "__vtbl_ptr_type") 1565*0b57cec5SDimitry Andric return lowerTypeVFTableShape(cast<DIDerivedType>(Ty)); 1566*0b57cec5SDimitry Andric LLVM_FALLTHROUGH; 1567*0b57cec5SDimitry Andric case dwarf::DW_TAG_reference_type: 1568*0b57cec5SDimitry Andric case dwarf::DW_TAG_rvalue_reference_type: 1569*0b57cec5SDimitry Andric return lowerTypePointer(cast<DIDerivedType>(Ty)); 1570*0b57cec5SDimitry Andric case dwarf::DW_TAG_ptr_to_member_type: 1571*0b57cec5SDimitry Andric return lowerTypeMemberPointer(cast<DIDerivedType>(Ty)); 1572*0b57cec5SDimitry Andric case dwarf::DW_TAG_restrict_type: 1573*0b57cec5SDimitry Andric case dwarf::DW_TAG_const_type: 1574*0b57cec5SDimitry Andric case dwarf::DW_TAG_volatile_type: 1575*0b57cec5SDimitry Andric // TODO: add support for DW_TAG_atomic_type here 1576*0b57cec5SDimitry Andric return lowerTypeModifier(cast<DIDerivedType>(Ty)); 1577*0b57cec5SDimitry Andric case dwarf::DW_TAG_subroutine_type: 1578*0b57cec5SDimitry Andric if (ClassTy) { 1579*0b57cec5SDimitry Andric // The member function type of a member function pointer has no 1580*0b57cec5SDimitry Andric // ThisAdjustment. 1581*0b57cec5SDimitry Andric return lowerTypeMemberFunction(cast<DISubroutineType>(Ty), ClassTy, 1582*0b57cec5SDimitry Andric /*ThisAdjustment=*/0, 1583*0b57cec5SDimitry Andric /*IsStaticMethod=*/false); 1584*0b57cec5SDimitry Andric } 1585*0b57cec5SDimitry Andric return lowerTypeFunction(cast<DISubroutineType>(Ty)); 1586*0b57cec5SDimitry Andric case dwarf::DW_TAG_enumeration_type: 1587*0b57cec5SDimitry Andric return lowerTypeEnum(cast<DICompositeType>(Ty)); 1588*0b57cec5SDimitry Andric case dwarf::DW_TAG_class_type: 1589*0b57cec5SDimitry Andric case dwarf::DW_TAG_structure_type: 1590*0b57cec5SDimitry Andric return lowerTypeClass(cast<DICompositeType>(Ty)); 1591*0b57cec5SDimitry Andric case dwarf::DW_TAG_union_type: 1592*0b57cec5SDimitry Andric return lowerTypeUnion(cast<DICompositeType>(Ty)); 1593349cc55cSDimitry Andric case dwarf::DW_TAG_string_type: 1594349cc55cSDimitry Andric return lowerTypeString(cast<DIStringType>(Ty)); 1595*0b57cec5SDimitry Andric case dwarf::DW_TAG_unspecified_type: 1596*0b57cec5SDimitry Andric if (Ty->getName() == "decltype(nullptr)") 1597*0b57cec5SDimitry Andric return TypeIndex::NullptrT(); 1598*0b57cec5SDimitry Andric return TypeIndex::None(); 1599*0b57cec5SDimitry Andric default: 1600*0b57cec5SDimitry Andric // Use the null type index. 1601*0b57cec5SDimitry Andric return TypeIndex(); 1602*0b57cec5SDimitry Andric } 1603*0b57cec5SDimitry Andric } 1604*0b57cec5SDimitry Andric 1605*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypeAlias(const DIDerivedType *Ty) { 1606*0b57cec5SDimitry Andric TypeIndex UnderlyingTypeIndex = getTypeIndex(Ty->getBaseType()); 1607*0b57cec5SDimitry Andric StringRef TypeName = Ty->getName(); 1608*0b57cec5SDimitry Andric 1609*0b57cec5SDimitry Andric addToUDTs(Ty); 1610*0b57cec5SDimitry Andric 1611*0b57cec5SDimitry Andric if (UnderlyingTypeIndex == TypeIndex(SimpleTypeKind::Int32Long) && 1612*0b57cec5SDimitry Andric TypeName == "HRESULT") 1613*0b57cec5SDimitry Andric return TypeIndex(SimpleTypeKind::HResult); 1614*0b57cec5SDimitry Andric if (UnderlyingTypeIndex == TypeIndex(SimpleTypeKind::UInt16Short) && 1615*0b57cec5SDimitry Andric TypeName == "wchar_t") 1616*0b57cec5SDimitry Andric return TypeIndex(SimpleTypeKind::WideCharacter); 1617*0b57cec5SDimitry Andric 1618*0b57cec5SDimitry Andric return UnderlyingTypeIndex; 1619*0b57cec5SDimitry Andric } 1620*0b57cec5SDimitry Andric 1621*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypeArray(const DICompositeType *Ty) { 1622*0b57cec5SDimitry Andric const DIType *ElementType = Ty->getBaseType(); 1623*0b57cec5SDimitry Andric TypeIndex ElementTypeIndex = getTypeIndex(ElementType); 1624*0b57cec5SDimitry Andric // IndexType is size_t, which depends on the bitness of the target. 1625*0b57cec5SDimitry Andric TypeIndex IndexType = getPointerSizeInBytes() == 8 1626*0b57cec5SDimitry Andric ? TypeIndex(SimpleTypeKind::UInt64Quad) 1627*0b57cec5SDimitry Andric : TypeIndex(SimpleTypeKind::UInt32Long); 1628*0b57cec5SDimitry Andric 1629*0b57cec5SDimitry Andric uint64_t ElementSize = getBaseTypeSize(ElementType) / 8; 1630*0b57cec5SDimitry Andric 1631*0b57cec5SDimitry Andric // Add subranges to array type. 1632*0b57cec5SDimitry Andric DINodeArray Elements = Ty->getElements(); 1633*0b57cec5SDimitry Andric for (int i = Elements.size() - 1; i >= 0; --i) { 1634*0b57cec5SDimitry Andric const DINode *Element = Elements[i]; 1635*0b57cec5SDimitry Andric assert(Element->getTag() == dwarf::DW_TAG_subrange_type); 1636*0b57cec5SDimitry Andric 1637*0b57cec5SDimitry Andric const DISubrange *Subrange = cast<DISubrange>(Element); 1638*0b57cec5SDimitry Andric int64_t Count = -1; 1639349cc55cSDimitry Andric 1640349cc55cSDimitry Andric // If Subrange has a Count field, use it. 1641349cc55cSDimitry Andric // Otherwise, if it has an upperboud, use (upperbound - lowerbound + 1), 1642349cc55cSDimitry Andric // where lowerbound is from the LowerBound field of the Subrange, 1643349cc55cSDimitry Andric // or the language default lowerbound if that field is unspecified. 1644*0b57cec5SDimitry Andric if (auto *CI = Subrange->getCount().dyn_cast<ConstantInt *>()) 1645*0b57cec5SDimitry Andric Count = CI->getSExtValue(); 1646349cc55cSDimitry Andric else if (auto *UI = Subrange->getUpperBound().dyn_cast<ConstantInt *>()) { 1647349cc55cSDimitry Andric // Fortran uses 1 as the default lowerbound; other languages use 0. 1648349cc55cSDimitry Andric int64_t Lowerbound = (moduleIsInFortran()) ? 1 : 0; 1649349cc55cSDimitry Andric auto *LI = Subrange->getLowerBound().dyn_cast<ConstantInt *>(); 1650349cc55cSDimitry Andric Lowerbound = (LI) ? LI->getSExtValue() : Lowerbound; 1651349cc55cSDimitry Andric Count = UI->getSExtValue() - Lowerbound + 1; 165216d6b3b3SDimitry Andric } 1653*0b57cec5SDimitry Andric 1654*0b57cec5SDimitry Andric // Forward declarations of arrays without a size and VLAs use a count of -1. 1655*0b57cec5SDimitry Andric // Emit a count of zero in these cases to match what MSVC does for arrays 1656*0b57cec5SDimitry Andric // without a size. MSVC doesn't support VLAs, so it's not clear what we 1657*0b57cec5SDimitry Andric // should do for them even if we could distinguish them. 1658*0b57cec5SDimitry Andric if (Count == -1) 1659*0b57cec5SDimitry Andric Count = 0; 1660*0b57cec5SDimitry Andric 1661*0b57cec5SDimitry Andric // Update the element size and element type index for subsequent subranges. 1662*0b57cec5SDimitry Andric ElementSize *= Count; 1663*0b57cec5SDimitry Andric 1664*0b57cec5SDimitry Andric // If this is the outermost array, use the size from the array. It will be 1665*0b57cec5SDimitry Andric // more accurate if we had a VLA or an incomplete element type size. 1666*0b57cec5SDimitry Andric uint64_t ArraySize = 1667*0b57cec5SDimitry Andric (i == 0 && ElementSize == 0) ? Ty->getSizeInBits() / 8 : ElementSize; 1668*0b57cec5SDimitry Andric 1669*0b57cec5SDimitry Andric StringRef Name = (i == 0) ? Ty->getName() : ""; 1670*0b57cec5SDimitry Andric ArrayRecord AR(ElementTypeIndex, IndexType, ArraySize, Name); 1671*0b57cec5SDimitry Andric ElementTypeIndex = TypeTable.writeLeafType(AR); 1672*0b57cec5SDimitry Andric } 1673*0b57cec5SDimitry Andric 1674*0b57cec5SDimitry Andric return ElementTypeIndex; 1675*0b57cec5SDimitry Andric } 1676*0b57cec5SDimitry Andric 1677349cc55cSDimitry Andric // This function lowers a Fortran character type (DIStringType). 1678349cc55cSDimitry Andric // Note that it handles only the character*n variant (using SizeInBits 1679349cc55cSDimitry Andric // field in DIString to describe the type size) at the moment. 1680349cc55cSDimitry Andric // Other variants (leveraging the StringLength and StringLengthExp 1681349cc55cSDimitry Andric // fields in DIStringType) remain TBD. 1682349cc55cSDimitry Andric TypeIndex CodeViewDebug::lowerTypeString(const DIStringType *Ty) { 1683349cc55cSDimitry Andric TypeIndex CharType = TypeIndex(SimpleTypeKind::NarrowCharacter); 1684349cc55cSDimitry Andric uint64_t ArraySize = Ty->getSizeInBits() >> 3; 1685349cc55cSDimitry Andric StringRef Name = Ty->getName(); 1686349cc55cSDimitry Andric // IndexType is size_t, which depends on the bitness of the target. 1687349cc55cSDimitry Andric TypeIndex IndexType = getPointerSizeInBytes() == 8 1688349cc55cSDimitry Andric ? TypeIndex(SimpleTypeKind::UInt64Quad) 1689349cc55cSDimitry Andric : TypeIndex(SimpleTypeKind::UInt32Long); 1690349cc55cSDimitry Andric 1691349cc55cSDimitry Andric // Create a type of character array of ArraySize. 1692349cc55cSDimitry Andric ArrayRecord AR(CharType, IndexType, ArraySize, Name); 1693349cc55cSDimitry Andric 1694349cc55cSDimitry Andric return TypeTable.writeLeafType(AR); 1695349cc55cSDimitry Andric } 1696349cc55cSDimitry Andric 1697*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypeBasic(const DIBasicType *Ty) { 1698*0b57cec5SDimitry Andric TypeIndex Index; 1699*0b57cec5SDimitry Andric dwarf::TypeKind Kind; 1700*0b57cec5SDimitry Andric uint32_t ByteSize; 1701*0b57cec5SDimitry Andric 1702*0b57cec5SDimitry Andric Kind = static_cast<dwarf::TypeKind>(Ty->getEncoding()); 1703*0b57cec5SDimitry Andric ByteSize = Ty->getSizeInBits() / 8; 1704*0b57cec5SDimitry Andric 1705*0b57cec5SDimitry Andric SimpleTypeKind STK = SimpleTypeKind::None; 1706*0b57cec5SDimitry Andric switch (Kind) { 1707*0b57cec5SDimitry Andric case dwarf::DW_ATE_address: 1708*0b57cec5SDimitry Andric // FIXME: Translate 1709*0b57cec5SDimitry Andric break; 1710*0b57cec5SDimitry Andric case dwarf::DW_ATE_boolean: 1711*0b57cec5SDimitry Andric switch (ByteSize) { 1712*0b57cec5SDimitry Andric case 1: STK = SimpleTypeKind::Boolean8; break; 1713*0b57cec5SDimitry Andric case 2: STK = SimpleTypeKind::Boolean16; break; 1714*0b57cec5SDimitry Andric case 4: STK = SimpleTypeKind::Boolean32; break; 1715*0b57cec5SDimitry Andric case 8: STK = SimpleTypeKind::Boolean64; break; 1716*0b57cec5SDimitry Andric case 16: STK = SimpleTypeKind::Boolean128; break; 1717*0b57cec5SDimitry Andric } 1718*0b57cec5SDimitry Andric break; 1719*0b57cec5SDimitry Andric case dwarf::DW_ATE_complex_float: 1720*0b57cec5SDimitry Andric switch (ByteSize) { 1721*0b57cec5SDimitry Andric case 2: STK = SimpleTypeKind::Complex16; break; 1722*0b57cec5SDimitry Andric case 4: STK = SimpleTypeKind::Complex32; break; 1723*0b57cec5SDimitry Andric case 8: STK = SimpleTypeKind::Complex64; break; 1724*0b57cec5SDimitry Andric case 10: STK = SimpleTypeKind::Complex80; break; 1725*0b57cec5SDimitry Andric case 16: STK = SimpleTypeKind::Complex128; break; 1726*0b57cec5SDimitry Andric } 1727*0b57cec5SDimitry Andric break; 1728*0b57cec5SDimitry Andric case dwarf::DW_ATE_float: 1729*0b57cec5SDimitry Andric switch (ByteSize) { 1730*0b57cec5SDimitry Andric case 2: STK = SimpleTypeKind::Float16; break; 1731*0b57cec5SDimitry Andric case 4: STK = SimpleTypeKind::Float32; break; 1732*0b57cec5SDimitry Andric case 6: STK = SimpleTypeKind::Float48; break; 1733*0b57cec5SDimitry Andric case 8: STK = SimpleTypeKind::Float64; break; 1734*0b57cec5SDimitry Andric case 10: STK = SimpleTypeKind::Float80; break; 1735*0b57cec5SDimitry Andric case 16: STK = SimpleTypeKind::Float128; break; 1736*0b57cec5SDimitry Andric } 1737*0b57cec5SDimitry Andric break; 1738*0b57cec5SDimitry Andric case dwarf::DW_ATE_signed: 1739*0b57cec5SDimitry Andric switch (ByteSize) { 1740*0b57cec5SDimitry Andric case 1: STK = SimpleTypeKind::SignedCharacter; break; 1741*0b57cec5SDimitry Andric case 2: STK = SimpleTypeKind::Int16Short; break; 1742*0b57cec5SDimitry Andric case 4: STK = SimpleTypeKind::Int32; break; 1743*0b57cec5SDimitry Andric case 8: STK = SimpleTypeKind::Int64Quad; break; 1744*0b57cec5SDimitry Andric case 16: STK = SimpleTypeKind::Int128Oct; break; 1745*0b57cec5SDimitry Andric } 1746*0b57cec5SDimitry Andric break; 1747*0b57cec5SDimitry Andric case dwarf::DW_ATE_unsigned: 1748*0b57cec5SDimitry Andric switch (ByteSize) { 1749*0b57cec5SDimitry Andric case 1: STK = SimpleTypeKind::UnsignedCharacter; break; 1750*0b57cec5SDimitry Andric case 2: STK = SimpleTypeKind::UInt16Short; break; 1751*0b57cec5SDimitry Andric case 4: STK = SimpleTypeKind::UInt32; break; 1752*0b57cec5SDimitry Andric case 8: STK = SimpleTypeKind::UInt64Quad; break; 1753*0b57cec5SDimitry Andric case 16: STK = SimpleTypeKind::UInt128Oct; break; 1754*0b57cec5SDimitry Andric } 1755*0b57cec5SDimitry Andric break; 1756*0b57cec5SDimitry Andric case dwarf::DW_ATE_UTF: 1757*0b57cec5SDimitry Andric switch (ByteSize) { 1758*0b57cec5SDimitry Andric case 2: STK = SimpleTypeKind::Character16; break; 1759*0b57cec5SDimitry Andric case 4: STK = SimpleTypeKind::Character32; break; 1760*0b57cec5SDimitry Andric } 1761*0b57cec5SDimitry Andric break; 1762*0b57cec5SDimitry Andric case dwarf::DW_ATE_signed_char: 1763*0b57cec5SDimitry Andric if (ByteSize == 1) 1764*0b57cec5SDimitry Andric STK = SimpleTypeKind::SignedCharacter; 1765*0b57cec5SDimitry Andric break; 1766*0b57cec5SDimitry Andric case dwarf::DW_ATE_unsigned_char: 1767*0b57cec5SDimitry Andric if (ByteSize == 1) 1768*0b57cec5SDimitry Andric STK = SimpleTypeKind::UnsignedCharacter; 1769*0b57cec5SDimitry Andric break; 1770*0b57cec5SDimitry Andric default: 1771*0b57cec5SDimitry Andric break; 1772*0b57cec5SDimitry Andric } 1773*0b57cec5SDimitry Andric 1774*0b57cec5SDimitry Andric // Apply some fixups based on the source-level type name. 1775349cc55cSDimitry Andric // Include some amount of canonicalization from an old naming scheme Clang 1776349cc55cSDimitry Andric // used to use for integer types (in an outdated effort to be compatible with 1777349cc55cSDimitry Andric // GCC's debug info/GDB's behavior, which has since been addressed). 1778349cc55cSDimitry Andric if (STK == SimpleTypeKind::Int32 && 1779349cc55cSDimitry Andric (Ty->getName() == "long int" || Ty->getName() == "long")) 1780*0b57cec5SDimitry Andric STK = SimpleTypeKind::Int32Long; 1781349cc55cSDimitry Andric if (STK == SimpleTypeKind::UInt32 && (Ty->getName() == "long unsigned int" || 1782349cc55cSDimitry Andric Ty->getName() == "unsigned long")) 1783*0b57cec5SDimitry Andric STK = SimpleTypeKind::UInt32Long; 1784*0b57cec5SDimitry Andric if (STK == SimpleTypeKind::UInt16Short && 1785*0b57cec5SDimitry Andric (Ty->getName() == "wchar_t" || Ty->getName() == "__wchar_t")) 1786*0b57cec5SDimitry Andric STK = SimpleTypeKind::WideCharacter; 1787*0b57cec5SDimitry Andric if ((STK == SimpleTypeKind::SignedCharacter || 1788*0b57cec5SDimitry Andric STK == SimpleTypeKind::UnsignedCharacter) && 1789*0b57cec5SDimitry Andric Ty->getName() == "char") 1790*0b57cec5SDimitry Andric STK = SimpleTypeKind::NarrowCharacter; 1791*0b57cec5SDimitry Andric 1792*0b57cec5SDimitry Andric return TypeIndex(STK); 1793*0b57cec5SDimitry Andric } 1794*0b57cec5SDimitry Andric 1795*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypePointer(const DIDerivedType *Ty, 1796*0b57cec5SDimitry Andric PointerOptions PO) { 1797*0b57cec5SDimitry Andric TypeIndex PointeeTI = getTypeIndex(Ty->getBaseType()); 1798*0b57cec5SDimitry Andric 1799*0b57cec5SDimitry Andric // Pointers to simple types without any options can use SimpleTypeMode, rather 1800*0b57cec5SDimitry Andric // than having a dedicated pointer type record. 1801*0b57cec5SDimitry Andric if (PointeeTI.isSimple() && PO == PointerOptions::None && 1802*0b57cec5SDimitry Andric PointeeTI.getSimpleMode() == SimpleTypeMode::Direct && 1803*0b57cec5SDimitry Andric Ty->getTag() == dwarf::DW_TAG_pointer_type) { 1804*0b57cec5SDimitry Andric SimpleTypeMode Mode = Ty->getSizeInBits() == 64 1805*0b57cec5SDimitry Andric ? SimpleTypeMode::NearPointer64 1806*0b57cec5SDimitry Andric : SimpleTypeMode::NearPointer32; 1807*0b57cec5SDimitry Andric return TypeIndex(PointeeTI.getSimpleKind(), Mode); 1808*0b57cec5SDimitry Andric } 1809*0b57cec5SDimitry Andric 1810*0b57cec5SDimitry Andric PointerKind PK = 1811*0b57cec5SDimitry Andric Ty->getSizeInBits() == 64 ? PointerKind::Near64 : PointerKind::Near32; 1812*0b57cec5SDimitry Andric PointerMode PM = PointerMode::Pointer; 1813*0b57cec5SDimitry Andric switch (Ty->getTag()) { 1814*0b57cec5SDimitry Andric default: llvm_unreachable("not a pointer tag type"); 1815*0b57cec5SDimitry Andric case dwarf::DW_TAG_pointer_type: 1816*0b57cec5SDimitry Andric PM = PointerMode::Pointer; 1817*0b57cec5SDimitry Andric break; 1818*0b57cec5SDimitry Andric case dwarf::DW_TAG_reference_type: 1819*0b57cec5SDimitry Andric PM = PointerMode::LValueReference; 1820*0b57cec5SDimitry Andric break; 1821*0b57cec5SDimitry Andric case dwarf::DW_TAG_rvalue_reference_type: 1822*0b57cec5SDimitry Andric PM = PointerMode::RValueReference; 1823*0b57cec5SDimitry Andric break; 1824*0b57cec5SDimitry Andric } 1825*0b57cec5SDimitry Andric 1826*0b57cec5SDimitry Andric if (Ty->isObjectPointer()) 1827*0b57cec5SDimitry Andric PO |= PointerOptions::Const; 1828*0b57cec5SDimitry Andric 1829*0b57cec5SDimitry Andric PointerRecord PR(PointeeTI, PK, PM, PO, Ty->getSizeInBits() / 8); 1830*0b57cec5SDimitry Andric return TypeTable.writeLeafType(PR); 1831*0b57cec5SDimitry Andric } 1832*0b57cec5SDimitry Andric 1833*0b57cec5SDimitry Andric static PointerToMemberRepresentation 1834*0b57cec5SDimitry Andric translatePtrToMemberRep(unsigned SizeInBytes, bool IsPMF, unsigned Flags) { 1835*0b57cec5SDimitry Andric // SizeInBytes being zero generally implies that the member pointer type was 1836*0b57cec5SDimitry Andric // incomplete, which can happen if it is part of a function prototype. In this 1837*0b57cec5SDimitry Andric // case, use the unknown model instead of the general model. 1838*0b57cec5SDimitry Andric if (IsPMF) { 1839*0b57cec5SDimitry Andric switch (Flags & DINode::FlagPtrToMemberRep) { 1840*0b57cec5SDimitry Andric case 0: 1841*0b57cec5SDimitry Andric return SizeInBytes == 0 ? PointerToMemberRepresentation::Unknown 1842*0b57cec5SDimitry Andric : PointerToMemberRepresentation::GeneralFunction; 1843*0b57cec5SDimitry Andric case DINode::FlagSingleInheritance: 1844*0b57cec5SDimitry Andric return PointerToMemberRepresentation::SingleInheritanceFunction; 1845*0b57cec5SDimitry Andric case DINode::FlagMultipleInheritance: 1846*0b57cec5SDimitry Andric return PointerToMemberRepresentation::MultipleInheritanceFunction; 1847*0b57cec5SDimitry Andric case DINode::FlagVirtualInheritance: 1848*0b57cec5SDimitry Andric return PointerToMemberRepresentation::VirtualInheritanceFunction; 1849*0b57cec5SDimitry Andric } 1850*0b57cec5SDimitry Andric } else { 1851*0b57cec5SDimitry Andric switch (Flags & DINode::FlagPtrToMemberRep) { 1852*0b57cec5SDimitry Andric case 0: 1853*0b57cec5SDimitry Andric return SizeInBytes == 0 ? PointerToMemberRepresentation::Unknown 1854*0b57cec5SDimitry Andric : PointerToMemberRepresentation::GeneralData; 1855*0b57cec5SDimitry Andric case DINode::FlagSingleInheritance: 1856*0b57cec5SDimitry Andric return PointerToMemberRepresentation::SingleInheritanceData; 1857*0b57cec5SDimitry Andric case DINode::FlagMultipleInheritance: 1858*0b57cec5SDimitry Andric return PointerToMemberRepresentation::MultipleInheritanceData; 1859*0b57cec5SDimitry Andric case DINode::FlagVirtualInheritance: 1860*0b57cec5SDimitry Andric return PointerToMemberRepresentation::VirtualInheritanceData; 1861*0b57cec5SDimitry Andric } 1862*0b57cec5SDimitry Andric } 1863*0b57cec5SDimitry Andric llvm_unreachable("invalid ptr to member representation"); 1864*0b57cec5SDimitry Andric } 1865*0b57cec5SDimitry Andric 1866*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypeMemberPointer(const DIDerivedType *Ty, 1867*0b57cec5SDimitry Andric PointerOptions PO) { 1868*0b57cec5SDimitry Andric assert(Ty->getTag() == dwarf::DW_TAG_ptr_to_member_type); 18695ffd83dbSDimitry Andric bool IsPMF = isa<DISubroutineType>(Ty->getBaseType()); 1870*0b57cec5SDimitry Andric TypeIndex ClassTI = getTypeIndex(Ty->getClassType()); 18715ffd83dbSDimitry Andric TypeIndex PointeeTI = 18725ffd83dbSDimitry Andric getTypeIndex(Ty->getBaseType(), IsPMF ? Ty->getClassType() : nullptr); 1873*0b57cec5SDimitry Andric PointerKind PK = getPointerSizeInBytes() == 8 ? PointerKind::Near64 1874*0b57cec5SDimitry Andric : PointerKind::Near32; 1875*0b57cec5SDimitry Andric PointerMode PM = IsPMF ? PointerMode::PointerToMemberFunction 1876*0b57cec5SDimitry Andric : PointerMode::PointerToDataMember; 1877*0b57cec5SDimitry Andric 1878*0b57cec5SDimitry Andric assert(Ty->getSizeInBits() / 8 <= 0xff && "pointer size too big"); 1879*0b57cec5SDimitry Andric uint8_t SizeInBytes = Ty->getSizeInBits() / 8; 1880*0b57cec5SDimitry Andric MemberPointerInfo MPI( 1881*0b57cec5SDimitry Andric ClassTI, translatePtrToMemberRep(SizeInBytes, IsPMF, Ty->getFlags())); 1882*0b57cec5SDimitry Andric PointerRecord PR(PointeeTI, PK, PM, PO, SizeInBytes, MPI); 1883*0b57cec5SDimitry Andric return TypeTable.writeLeafType(PR); 1884*0b57cec5SDimitry Andric } 1885*0b57cec5SDimitry Andric 1886*0b57cec5SDimitry Andric /// Given a DWARF calling convention, get the CodeView equivalent. If we don't 1887*0b57cec5SDimitry Andric /// have a translation, use the NearC convention. 1888*0b57cec5SDimitry Andric static CallingConvention dwarfCCToCodeView(unsigned DwarfCC) { 1889*0b57cec5SDimitry Andric switch (DwarfCC) { 1890*0b57cec5SDimitry Andric case dwarf::DW_CC_normal: return CallingConvention::NearC; 1891*0b57cec5SDimitry Andric case dwarf::DW_CC_BORLAND_msfastcall: return CallingConvention::NearFast; 1892*0b57cec5SDimitry Andric case dwarf::DW_CC_BORLAND_thiscall: return CallingConvention::ThisCall; 1893*0b57cec5SDimitry Andric case dwarf::DW_CC_BORLAND_stdcall: return CallingConvention::NearStdCall; 1894*0b57cec5SDimitry Andric case dwarf::DW_CC_BORLAND_pascal: return CallingConvention::NearPascal; 1895*0b57cec5SDimitry Andric case dwarf::DW_CC_LLVM_vectorcall: return CallingConvention::NearVector; 1896*0b57cec5SDimitry Andric } 1897*0b57cec5SDimitry Andric return CallingConvention::NearC; 1898*0b57cec5SDimitry Andric } 1899*0b57cec5SDimitry Andric 1900*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypeModifier(const DIDerivedType *Ty) { 1901*0b57cec5SDimitry Andric ModifierOptions Mods = ModifierOptions::None; 1902*0b57cec5SDimitry Andric PointerOptions PO = PointerOptions::None; 1903*0b57cec5SDimitry Andric bool IsModifier = true; 1904*0b57cec5SDimitry Andric const DIType *BaseTy = Ty; 1905*0b57cec5SDimitry Andric while (IsModifier && BaseTy) { 1906*0b57cec5SDimitry Andric // FIXME: Need to add DWARF tags for __unaligned and _Atomic 1907*0b57cec5SDimitry Andric switch (BaseTy->getTag()) { 1908*0b57cec5SDimitry Andric case dwarf::DW_TAG_const_type: 1909*0b57cec5SDimitry Andric Mods |= ModifierOptions::Const; 1910*0b57cec5SDimitry Andric PO |= PointerOptions::Const; 1911*0b57cec5SDimitry Andric break; 1912*0b57cec5SDimitry Andric case dwarf::DW_TAG_volatile_type: 1913*0b57cec5SDimitry Andric Mods |= ModifierOptions::Volatile; 1914*0b57cec5SDimitry Andric PO |= PointerOptions::Volatile; 1915*0b57cec5SDimitry Andric break; 1916*0b57cec5SDimitry Andric case dwarf::DW_TAG_restrict_type: 1917*0b57cec5SDimitry Andric // Only pointer types be marked with __restrict. There is no known flag 1918*0b57cec5SDimitry Andric // for __restrict in LF_MODIFIER records. 1919*0b57cec5SDimitry Andric PO |= PointerOptions::Restrict; 1920*0b57cec5SDimitry Andric break; 1921*0b57cec5SDimitry Andric default: 1922*0b57cec5SDimitry Andric IsModifier = false; 1923*0b57cec5SDimitry Andric break; 1924*0b57cec5SDimitry Andric } 1925*0b57cec5SDimitry Andric if (IsModifier) 1926*0b57cec5SDimitry Andric BaseTy = cast<DIDerivedType>(BaseTy)->getBaseType(); 1927*0b57cec5SDimitry Andric } 1928*0b57cec5SDimitry Andric 1929*0b57cec5SDimitry Andric // Check if the inner type will use an LF_POINTER record. If so, the 1930*0b57cec5SDimitry Andric // qualifiers will go in the LF_POINTER record. This comes up for types like 1931*0b57cec5SDimitry Andric // 'int *const' and 'int *__restrict', not the more common cases like 'const 1932*0b57cec5SDimitry Andric // char *'. 1933*0b57cec5SDimitry Andric if (BaseTy) { 1934*0b57cec5SDimitry Andric switch (BaseTy->getTag()) { 1935*0b57cec5SDimitry Andric case dwarf::DW_TAG_pointer_type: 1936*0b57cec5SDimitry Andric case dwarf::DW_TAG_reference_type: 1937*0b57cec5SDimitry Andric case dwarf::DW_TAG_rvalue_reference_type: 1938*0b57cec5SDimitry Andric return lowerTypePointer(cast<DIDerivedType>(BaseTy), PO); 1939*0b57cec5SDimitry Andric case dwarf::DW_TAG_ptr_to_member_type: 1940*0b57cec5SDimitry Andric return lowerTypeMemberPointer(cast<DIDerivedType>(BaseTy), PO); 1941*0b57cec5SDimitry Andric default: 1942*0b57cec5SDimitry Andric break; 1943*0b57cec5SDimitry Andric } 1944*0b57cec5SDimitry Andric } 1945*0b57cec5SDimitry Andric 1946*0b57cec5SDimitry Andric TypeIndex ModifiedTI = getTypeIndex(BaseTy); 1947*0b57cec5SDimitry Andric 1948*0b57cec5SDimitry Andric // Return the base type index if there aren't any modifiers. For example, the 1949*0b57cec5SDimitry Andric // metadata could contain restrict wrappers around non-pointer types. 1950*0b57cec5SDimitry Andric if (Mods == ModifierOptions::None) 1951*0b57cec5SDimitry Andric return ModifiedTI; 1952*0b57cec5SDimitry Andric 1953*0b57cec5SDimitry Andric ModifierRecord MR(ModifiedTI, Mods); 1954*0b57cec5SDimitry Andric return TypeTable.writeLeafType(MR); 1955*0b57cec5SDimitry Andric } 1956*0b57cec5SDimitry Andric 1957*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypeFunction(const DISubroutineType *Ty) { 1958*0b57cec5SDimitry Andric SmallVector<TypeIndex, 8> ReturnAndArgTypeIndices; 1959*0b57cec5SDimitry Andric for (const DIType *ArgType : Ty->getTypeArray()) 1960*0b57cec5SDimitry Andric ReturnAndArgTypeIndices.push_back(getTypeIndex(ArgType)); 1961*0b57cec5SDimitry Andric 1962*0b57cec5SDimitry Andric // MSVC uses type none for variadic argument. 1963*0b57cec5SDimitry Andric if (ReturnAndArgTypeIndices.size() > 1 && 1964*0b57cec5SDimitry Andric ReturnAndArgTypeIndices.back() == TypeIndex::Void()) { 1965*0b57cec5SDimitry Andric ReturnAndArgTypeIndices.back() = TypeIndex::None(); 1966*0b57cec5SDimitry Andric } 1967*0b57cec5SDimitry Andric TypeIndex ReturnTypeIndex = TypeIndex::Void(); 1968*0b57cec5SDimitry Andric ArrayRef<TypeIndex> ArgTypeIndices = None; 1969*0b57cec5SDimitry Andric if (!ReturnAndArgTypeIndices.empty()) { 1970*0b57cec5SDimitry Andric auto ReturnAndArgTypesRef = makeArrayRef(ReturnAndArgTypeIndices); 1971*0b57cec5SDimitry Andric ReturnTypeIndex = ReturnAndArgTypesRef.front(); 1972*0b57cec5SDimitry Andric ArgTypeIndices = ReturnAndArgTypesRef.drop_front(); 1973*0b57cec5SDimitry Andric } 1974*0b57cec5SDimitry Andric 1975*0b57cec5SDimitry Andric ArgListRecord ArgListRec(TypeRecordKind::ArgList, ArgTypeIndices); 1976*0b57cec5SDimitry Andric TypeIndex ArgListIndex = TypeTable.writeLeafType(ArgListRec); 1977*0b57cec5SDimitry Andric 1978*0b57cec5SDimitry Andric CallingConvention CC = dwarfCCToCodeView(Ty->getCC()); 1979*0b57cec5SDimitry Andric 1980*0b57cec5SDimitry Andric FunctionOptions FO = getFunctionOptions(Ty); 1981*0b57cec5SDimitry Andric ProcedureRecord Procedure(ReturnTypeIndex, CC, FO, ArgTypeIndices.size(), 1982*0b57cec5SDimitry Andric ArgListIndex); 1983*0b57cec5SDimitry Andric return TypeTable.writeLeafType(Procedure); 1984*0b57cec5SDimitry Andric } 1985*0b57cec5SDimitry Andric 1986*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypeMemberFunction(const DISubroutineType *Ty, 1987*0b57cec5SDimitry Andric const DIType *ClassTy, 1988*0b57cec5SDimitry Andric int ThisAdjustment, 1989*0b57cec5SDimitry Andric bool IsStaticMethod, 1990*0b57cec5SDimitry Andric FunctionOptions FO) { 1991*0b57cec5SDimitry Andric // Lower the containing class type. 1992*0b57cec5SDimitry Andric TypeIndex ClassType = getTypeIndex(ClassTy); 1993*0b57cec5SDimitry Andric 1994*0b57cec5SDimitry Andric DITypeRefArray ReturnAndArgs = Ty->getTypeArray(); 1995*0b57cec5SDimitry Andric 1996*0b57cec5SDimitry Andric unsigned Index = 0; 1997*0b57cec5SDimitry Andric SmallVector<TypeIndex, 8> ArgTypeIndices; 1998*0b57cec5SDimitry Andric TypeIndex ReturnTypeIndex = TypeIndex::Void(); 1999*0b57cec5SDimitry Andric if (ReturnAndArgs.size() > Index) { 2000*0b57cec5SDimitry Andric ReturnTypeIndex = getTypeIndex(ReturnAndArgs[Index++]); 2001*0b57cec5SDimitry Andric } 2002*0b57cec5SDimitry Andric 2003*0b57cec5SDimitry Andric // If the first argument is a pointer type and this isn't a static method, 2004*0b57cec5SDimitry Andric // treat it as the special 'this' parameter, which is encoded separately from 2005*0b57cec5SDimitry Andric // the arguments. 2006*0b57cec5SDimitry Andric TypeIndex ThisTypeIndex; 2007*0b57cec5SDimitry Andric if (!IsStaticMethod && ReturnAndArgs.size() > Index) { 2008*0b57cec5SDimitry Andric if (const DIDerivedType *PtrTy = 2009*0b57cec5SDimitry Andric dyn_cast_or_null<DIDerivedType>(ReturnAndArgs[Index])) { 2010*0b57cec5SDimitry Andric if (PtrTy->getTag() == dwarf::DW_TAG_pointer_type) { 2011*0b57cec5SDimitry Andric ThisTypeIndex = getTypeIndexForThisPtr(PtrTy, Ty); 2012*0b57cec5SDimitry Andric Index++; 2013*0b57cec5SDimitry Andric } 2014*0b57cec5SDimitry Andric } 2015*0b57cec5SDimitry Andric } 2016*0b57cec5SDimitry Andric 2017*0b57cec5SDimitry Andric while (Index < ReturnAndArgs.size()) 2018*0b57cec5SDimitry Andric ArgTypeIndices.push_back(getTypeIndex(ReturnAndArgs[Index++])); 2019*0b57cec5SDimitry Andric 2020*0b57cec5SDimitry Andric // MSVC uses type none for variadic argument. 2021*0b57cec5SDimitry Andric if (!ArgTypeIndices.empty() && ArgTypeIndices.back() == TypeIndex::Void()) 2022*0b57cec5SDimitry Andric ArgTypeIndices.back() = TypeIndex::None(); 2023*0b57cec5SDimitry Andric 2024*0b57cec5SDimitry Andric ArgListRecord ArgListRec(TypeRecordKind::ArgList, ArgTypeIndices); 2025*0b57cec5SDimitry Andric TypeIndex ArgListIndex = TypeTable.writeLeafType(ArgListRec); 2026*0b57cec5SDimitry Andric 2027*0b57cec5SDimitry Andric CallingConvention CC = dwarfCCToCodeView(Ty->getCC()); 2028*0b57cec5SDimitry Andric 2029*0b57cec5SDimitry Andric MemberFunctionRecord MFR(ReturnTypeIndex, ClassType, ThisTypeIndex, CC, FO, 2030*0b57cec5SDimitry Andric ArgTypeIndices.size(), ArgListIndex, ThisAdjustment); 2031*0b57cec5SDimitry Andric return TypeTable.writeLeafType(MFR); 2032*0b57cec5SDimitry Andric } 2033*0b57cec5SDimitry Andric 2034*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypeVFTableShape(const DIDerivedType *Ty) { 2035*0b57cec5SDimitry Andric unsigned VSlotCount = 2036*0b57cec5SDimitry Andric Ty->getSizeInBits() / (8 * Asm->MAI->getCodePointerSize()); 2037*0b57cec5SDimitry Andric SmallVector<VFTableSlotKind, 4> Slots(VSlotCount, VFTableSlotKind::Near); 2038*0b57cec5SDimitry Andric 2039*0b57cec5SDimitry Andric VFTableShapeRecord VFTSR(Slots); 2040*0b57cec5SDimitry Andric return TypeTable.writeLeafType(VFTSR); 2041*0b57cec5SDimitry Andric } 2042*0b57cec5SDimitry Andric 2043*0b57cec5SDimitry Andric static MemberAccess translateAccessFlags(unsigned RecordTag, unsigned Flags) { 2044*0b57cec5SDimitry Andric switch (Flags & DINode::FlagAccessibility) { 2045*0b57cec5SDimitry Andric case DINode::FlagPrivate: return MemberAccess::Private; 2046*0b57cec5SDimitry Andric case DINode::FlagPublic: return MemberAccess::Public; 2047*0b57cec5SDimitry Andric case DINode::FlagProtected: return MemberAccess::Protected; 2048*0b57cec5SDimitry Andric case 0: 2049*0b57cec5SDimitry Andric // If there was no explicit access control, provide the default for the tag. 2050*0b57cec5SDimitry Andric return RecordTag == dwarf::DW_TAG_class_type ? MemberAccess::Private 2051*0b57cec5SDimitry Andric : MemberAccess::Public; 2052*0b57cec5SDimitry Andric } 2053*0b57cec5SDimitry Andric llvm_unreachable("access flags are exclusive"); 2054*0b57cec5SDimitry Andric } 2055*0b57cec5SDimitry Andric 2056*0b57cec5SDimitry Andric static MethodOptions translateMethodOptionFlags(const DISubprogram *SP) { 2057*0b57cec5SDimitry Andric if (SP->isArtificial()) 2058*0b57cec5SDimitry Andric return MethodOptions::CompilerGenerated; 2059*0b57cec5SDimitry Andric 2060*0b57cec5SDimitry Andric // FIXME: Handle other MethodOptions. 2061*0b57cec5SDimitry Andric 2062*0b57cec5SDimitry Andric return MethodOptions::None; 2063*0b57cec5SDimitry Andric } 2064*0b57cec5SDimitry Andric 2065*0b57cec5SDimitry Andric static MethodKind translateMethodKindFlags(const DISubprogram *SP, 2066*0b57cec5SDimitry Andric bool Introduced) { 2067*0b57cec5SDimitry Andric if (SP->getFlags() & DINode::FlagStaticMember) 2068*0b57cec5SDimitry Andric return MethodKind::Static; 2069*0b57cec5SDimitry Andric 2070*0b57cec5SDimitry Andric switch (SP->getVirtuality()) { 2071*0b57cec5SDimitry Andric case dwarf::DW_VIRTUALITY_none: 2072*0b57cec5SDimitry Andric break; 2073*0b57cec5SDimitry Andric case dwarf::DW_VIRTUALITY_virtual: 2074*0b57cec5SDimitry Andric return Introduced ? MethodKind::IntroducingVirtual : MethodKind::Virtual; 2075*0b57cec5SDimitry Andric case dwarf::DW_VIRTUALITY_pure_virtual: 2076*0b57cec5SDimitry Andric return Introduced ? MethodKind::PureIntroducingVirtual 2077*0b57cec5SDimitry Andric : MethodKind::PureVirtual; 2078*0b57cec5SDimitry Andric default: 2079*0b57cec5SDimitry Andric llvm_unreachable("unhandled virtuality case"); 2080*0b57cec5SDimitry Andric } 2081*0b57cec5SDimitry Andric 2082*0b57cec5SDimitry Andric return MethodKind::Vanilla; 2083*0b57cec5SDimitry Andric } 2084*0b57cec5SDimitry Andric 2085*0b57cec5SDimitry Andric static TypeRecordKind getRecordKind(const DICompositeType *Ty) { 2086*0b57cec5SDimitry Andric switch (Ty->getTag()) { 2087fe6060f1SDimitry Andric case dwarf::DW_TAG_class_type: 2088fe6060f1SDimitry Andric return TypeRecordKind::Class; 2089fe6060f1SDimitry Andric case dwarf::DW_TAG_structure_type: 2090fe6060f1SDimitry Andric return TypeRecordKind::Struct; 2091fe6060f1SDimitry Andric default: 2092*0b57cec5SDimitry Andric llvm_unreachable("unexpected tag"); 2093*0b57cec5SDimitry Andric } 2094fe6060f1SDimitry Andric } 2095*0b57cec5SDimitry Andric 2096*0b57cec5SDimitry Andric /// Return ClassOptions that should be present on both the forward declaration 2097*0b57cec5SDimitry Andric /// and the defintion of a tag type. 2098*0b57cec5SDimitry Andric static ClassOptions getCommonClassOptions(const DICompositeType *Ty) { 2099*0b57cec5SDimitry Andric ClassOptions CO = ClassOptions::None; 2100*0b57cec5SDimitry Andric 2101*0b57cec5SDimitry Andric // MSVC always sets this flag, even for local types. Clang doesn't always 2102*0b57cec5SDimitry Andric // appear to give every type a linkage name, which may be problematic for us. 2103*0b57cec5SDimitry Andric // FIXME: Investigate the consequences of not following them here. 2104*0b57cec5SDimitry Andric if (!Ty->getIdentifier().empty()) 2105*0b57cec5SDimitry Andric CO |= ClassOptions::HasUniqueName; 2106*0b57cec5SDimitry Andric 2107*0b57cec5SDimitry Andric // Put the Nested flag on a type if it appears immediately inside a tag type. 2108*0b57cec5SDimitry Andric // Do not walk the scope chain. Do not attempt to compute ContainsNestedClass 2109*0b57cec5SDimitry Andric // here. That flag is only set on definitions, and not forward declarations. 2110*0b57cec5SDimitry Andric const DIScope *ImmediateScope = Ty->getScope(); 2111*0b57cec5SDimitry Andric if (ImmediateScope && isa<DICompositeType>(ImmediateScope)) 2112*0b57cec5SDimitry Andric CO |= ClassOptions::Nested; 2113*0b57cec5SDimitry Andric 2114*0b57cec5SDimitry Andric // Put the Scoped flag on function-local types. MSVC puts this flag for enum 2115*0b57cec5SDimitry Andric // type only when it has an immediate function scope. Clang never puts enums 2116*0b57cec5SDimitry Andric // inside DILexicalBlock scopes. Enum types, as generated by clang, are 2117*0b57cec5SDimitry Andric // always in function, class, or file scopes. 2118*0b57cec5SDimitry Andric if (Ty->getTag() == dwarf::DW_TAG_enumeration_type) { 2119*0b57cec5SDimitry Andric if (ImmediateScope && isa<DISubprogram>(ImmediateScope)) 2120*0b57cec5SDimitry Andric CO |= ClassOptions::Scoped; 2121*0b57cec5SDimitry Andric } else { 2122*0b57cec5SDimitry Andric for (const DIScope *Scope = ImmediateScope; Scope != nullptr; 2123*0b57cec5SDimitry Andric Scope = Scope->getScope()) { 2124*0b57cec5SDimitry Andric if (isa<DISubprogram>(Scope)) { 2125*0b57cec5SDimitry Andric CO |= ClassOptions::Scoped; 2126*0b57cec5SDimitry Andric break; 2127*0b57cec5SDimitry Andric } 2128*0b57cec5SDimitry Andric } 2129*0b57cec5SDimitry Andric } 2130*0b57cec5SDimitry Andric 2131*0b57cec5SDimitry Andric return CO; 2132*0b57cec5SDimitry Andric } 2133*0b57cec5SDimitry Andric 2134*0b57cec5SDimitry Andric void CodeViewDebug::addUDTSrcLine(const DIType *Ty, TypeIndex TI) { 2135*0b57cec5SDimitry Andric switch (Ty->getTag()) { 2136*0b57cec5SDimitry Andric case dwarf::DW_TAG_class_type: 2137*0b57cec5SDimitry Andric case dwarf::DW_TAG_structure_type: 2138*0b57cec5SDimitry Andric case dwarf::DW_TAG_union_type: 2139*0b57cec5SDimitry Andric case dwarf::DW_TAG_enumeration_type: 2140*0b57cec5SDimitry Andric break; 2141*0b57cec5SDimitry Andric default: 2142*0b57cec5SDimitry Andric return; 2143*0b57cec5SDimitry Andric } 2144*0b57cec5SDimitry Andric 2145*0b57cec5SDimitry Andric if (const auto *File = Ty->getFile()) { 2146*0b57cec5SDimitry Andric StringIdRecord SIDR(TypeIndex(0x0), getFullFilepath(File)); 2147*0b57cec5SDimitry Andric TypeIndex SIDI = TypeTable.writeLeafType(SIDR); 2148*0b57cec5SDimitry Andric 2149*0b57cec5SDimitry Andric UdtSourceLineRecord USLR(TI, SIDI, Ty->getLine()); 2150*0b57cec5SDimitry Andric TypeTable.writeLeafType(USLR); 2151*0b57cec5SDimitry Andric } 2152*0b57cec5SDimitry Andric } 2153*0b57cec5SDimitry Andric 2154*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypeEnum(const DICompositeType *Ty) { 2155*0b57cec5SDimitry Andric ClassOptions CO = getCommonClassOptions(Ty); 2156*0b57cec5SDimitry Andric TypeIndex FTI; 2157*0b57cec5SDimitry Andric unsigned EnumeratorCount = 0; 2158*0b57cec5SDimitry Andric 2159*0b57cec5SDimitry Andric if (Ty->isForwardDecl()) { 2160*0b57cec5SDimitry Andric CO |= ClassOptions::ForwardReference; 2161*0b57cec5SDimitry Andric } else { 2162*0b57cec5SDimitry Andric ContinuationRecordBuilder ContinuationBuilder; 2163*0b57cec5SDimitry Andric ContinuationBuilder.begin(ContinuationRecordKind::FieldList); 2164*0b57cec5SDimitry Andric for (const DINode *Element : Ty->getElements()) { 2165*0b57cec5SDimitry Andric // We assume that the frontend provides all members in source declaration 2166*0b57cec5SDimitry Andric // order, which is what MSVC does. 2167*0b57cec5SDimitry Andric if (auto *Enumerator = dyn_cast_or_null<DIEnumerator>(Element)) { 2168fe6060f1SDimitry Andric // FIXME: Is it correct to always emit these as unsigned here? 2169*0b57cec5SDimitry Andric EnumeratorRecord ER(MemberAccess::Public, 21705ffd83dbSDimitry Andric APSInt(Enumerator->getValue(), true), 2171*0b57cec5SDimitry Andric Enumerator->getName()); 2172*0b57cec5SDimitry Andric ContinuationBuilder.writeMemberType(ER); 2173*0b57cec5SDimitry Andric EnumeratorCount++; 2174*0b57cec5SDimitry Andric } 2175*0b57cec5SDimitry Andric } 2176*0b57cec5SDimitry Andric FTI = TypeTable.insertRecord(ContinuationBuilder); 2177*0b57cec5SDimitry Andric } 2178*0b57cec5SDimitry Andric 2179*0b57cec5SDimitry Andric std::string FullName = getFullyQualifiedName(Ty); 2180*0b57cec5SDimitry Andric 2181*0b57cec5SDimitry Andric EnumRecord ER(EnumeratorCount, CO, FTI, FullName, Ty->getIdentifier(), 2182*0b57cec5SDimitry Andric getTypeIndex(Ty->getBaseType())); 2183*0b57cec5SDimitry Andric TypeIndex EnumTI = TypeTable.writeLeafType(ER); 2184*0b57cec5SDimitry Andric 2185*0b57cec5SDimitry Andric addUDTSrcLine(Ty, EnumTI); 2186*0b57cec5SDimitry Andric 2187*0b57cec5SDimitry Andric return EnumTI; 2188*0b57cec5SDimitry Andric } 2189*0b57cec5SDimitry Andric 2190*0b57cec5SDimitry Andric //===----------------------------------------------------------------------===// 2191*0b57cec5SDimitry Andric // ClassInfo 2192*0b57cec5SDimitry Andric //===----------------------------------------------------------------------===// 2193*0b57cec5SDimitry Andric 2194*0b57cec5SDimitry Andric struct llvm::ClassInfo { 2195*0b57cec5SDimitry Andric struct MemberInfo { 2196*0b57cec5SDimitry Andric const DIDerivedType *MemberTypeNode; 2197*0b57cec5SDimitry Andric uint64_t BaseOffset; 2198*0b57cec5SDimitry Andric }; 2199*0b57cec5SDimitry Andric // [MemberInfo] 2200*0b57cec5SDimitry Andric using MemberList = std::vector<MemberInfo>; 2201*0b57cec5SDimitry Andric 2202*0b57cec5SDimitry Andric using MethodsList = TinyPtrVector<const DISubprogram *>; 2203*0b57cec5SDimitry Andric // MethodName -> MethodsList 2204*0b57cec5SDimitry Andric using MethodsMap = MapVector<MDString *, MethodsList>; 2205*0b57cec5SDimitry Andric 2206*0b57cec5SDimitry Andric /// Base classes. 2207*0b57cec5SDimitry Andric std::vector<const DIDerivedType *> Inheritance; 2208*0b57cec5SDimitry Andric 2209*0b57cec5SDimitry Andric /// Direct members. 2210*0b57cec5SDimitry Andric MemberList Members; 2211*0b57cec5SDimitry Andric // Direct overloaded methods gathered by name. 2212*0b57cec5SDimitry Andric MethodsMap Methods; 2213*0b57cec5SDimitry Andric 2214*0b57cec5SDimitry Andric TypeIndex VShapeTI; 2215*0b57cec5SDimitry Andric 2216*0b57cec5SDimitry Andric std::vector<const DIType *> NestedTypes; 2217*0b57cec5SDimitry Andric }; 2218*0b57cec5SDimitry Andric 2219*0b57cec5SDimitry Andric void CodeViewDebug::clear() { 2220*0b57cec5SDimitry Andric assert(CurFn == nullptr); 2221*0b57cec5SDimitry Andric FileIdMap.clear(); 2222*0b57cec5SDimitry Andric FnDebugInfo.clear(); 2223*0b57cec5SDimitry Andric FileToFilepathMap.clear(); 2224*0b57cec5SDimitry Andric LocalUDTs.clear(); 2225*0b57cec5SDimitry Andric GlobalUDTs.clear(); 2226*0b57cec5SDimitry Andric TypeIndices.clear(); 2227*0b57cec5SDimitry Andric CompleteTypeIndices.clear(); 2228*0b57cec5SDimitry Andric ScopeGlobals.clear(); 2229349cc55cSDimitry Andric CVGlobalVariableOffsets.clear(); 2230*0b57cec5SDimitry Andric } 2231*0b57cec5SDimitry Andric 2232*0b57cec5SDimitry Andric void CodeViewDebug::collectMemberInfo(ClassInfo &Info, 2233*0b57cec5SDimitry Andric const DIDerivedType *DDTy) { 2234*0b57cec5SDimitry Andric if (!DDTy->getName().empty()) { 2235*0b57cec5SDimitry Andric Info.Members.push_back({DDTy, 0}); 2236e8d8bef9SDimitry Andric 2237e8d8bef9SDimitry Andric // Collect static const data members with values. 2238e8d8bef9SDimitry Andric if ((DDTy->getFlags() & DINode::FlagStaticMember) == 2239e8d8bef9SDimitry Andric DINode::FlagStaticMember) { 2240e8d8bef9SDimitry Andric if (DDTy->getConstant() && (isa<ConstantInt>(DDTy->getConstant()) || 2241e8d8bef9SDimitry Andric isa<ConstantFP>(DDTy->getConstant()))) 2242e8d8bef9SDimitry Andric StaticConstMembers.push_back(DDTy); 2243e8d8bef9SDimitry Andric } 2244e8d8bef9SDimitry Andric 2245*0b57cec5SDimitry Andric return; 2246*0b57cec5SDimitry Andric } 2247*0b57cec5SDimitry Andric 2248*0b57cec5SDimitry Andric // An unnamed member may represent a nested struct or union. Attempt to 2249*0b57cec5SDimitry Andric // interpret the unnamed member as a DICompositeType possibly wrapped in 2250*0b57cec5SDimitry Andric // qualifier types. Add all the indirect fields to the current record if that 2251*0b57cec5SDimitry Andric // succeeds, and drop the member if that fails. 2252*0b57cec5SDimitry Andric assert((DDTy->getOffsetInBits() % 8) == 0 && "Unnamed bitfield member!"); 2253*0b57cec5SDimitry Andric uint64_t Offset = DDTy->getOffsetInBits(); 2254*0b57cec5SDimitry Andric const DIType *Ty = DDTy->getBaseType(); 2255*0b57cec5SDimitry Andric bool FullyResolved = false; 2256*0b57cec5SDimitry Andric while (!FullyResolved) { 2257*0b57cec5SDimitry Andric switch (Ty->getTag()) { 2258*0b57cec5SDimitry Andric case dwarf::DW_TAG_const_type: 2259*0b57cec5SDimitry Andric case dwarf::DW_TAG_volatile_type: 2260*0b57cec5SDimitry Andric // FIXME: we should apply the qualifier types to the indirect fields 2261*0b57cec5SDimitry Andric // rather than dropping them. 2262*0b57cec5SDimitry Andric Ty = cast<DIDerivedType>(Ty)->getBaseType(); 2263*0b57cec5SDimitry Andric break; 2264*0b57cec5SDimitry Andric default: 2265*0b57cec5SDimitry Andric FullyResolved = true; 2266*0b57cec5SDimitry Andric break; 2267*0b57cec5SDimitry Andric } 2268*0b57cec5SDimitry Andric } 2269*0b57cec5SDimitry Andric 2270*0b57cec5SDimitry Andric const DICompositeType *DCTy = dyn_cast<DICompositeType>(Ty); 2271*0b57cec5SDimitry Andric if (!DCTy) 2272*0b57cec5SDimitry Andric return; 2273*0b57cec5SDimitry Andric 2274*0b57cec5SDimitry Andric ClassInfo NestedInfo = collectClassInfo(DCTy); 2275*0b57cec5SDimitry Andric for (const ClassInfo::MemberInfo &IndirectField : NestedInfo.Members) 2276*0b57cec5SDimitry Andric Info.Members.push_back( 2277*0b57cec5SDimitry Andric {IndirectField.MemberTypeNode, IndirectField.BaseOffset + Offset}); 2278*0b57cec5SDimitry Andric } 2279*0b57cec5SDimitry Andric 2280*0b57cec5SDimitry Andric ClassInfo CodeViewDebug::collectClassInfo(const DICompositeType *Ty) { 2281*0b57cec5SDimitry Andric ClassInfo Info; 2282*0b57cec5SDimitry Andric // Add elements to structure type. 2283*0b57cec5SDimitry Andric DINodeArray Elements = Ty->getElements(); 2284*0b57cec5SDimitry Andric for (auto *Element : Elements) { 2285*0b57cec5SDimitry Andric // We assume that the frontend provides all members in source declaration 2286*0b57cec5SDimitry Andric // order, which is what MSVC does. 2287*0b57cec5SDimitry Andric if (!Element) 2288*0b57cec5SDimitry Andric continue; 2289*0b57cec5SDimitry Andric if (auto *SP = dyn_cast<DISubprogram>(Element)) { 2290*0b57cec5SDimitry Andric Info.Methods[SP->getRawName()].push_back(SP); 2291*0b57cec5SDimitry Andric } else if (auto *DDTy = dyn_cast<DIDerivedType>(Element)) { 2292*0b57cec5SDimitry Andric if (DDTy->getTag() == dwarf::DW_TAG_member) { 2293*0b57cec5SDimitry Andric collectMemberInfo(Info, DDTy); 2294*0b57cec5SDimitry Andric } else if (DDTy->getTag() == dwarf::DW_TAG_inheritance) { 2295*0b57cec5SDimitry Andric Info.Inheritance.push_back(DDTy); 2296*0b57cec5SDimitry Andric } else if (DDTy->getTag() == dwarf::DW_TAG_pointer_type && 2297*0b57cec5SDimitry Andric DDTy->getName() == "__vtbl_ptr_type") { 2298*0b57cec5SDimitry Andric Info.VShapeTI = getTypeIndex(DDTy); 2299*0b57cec5SDimitry Andric } else if (DDTy->getTag() == dwarf::DW_TAG_typedef) { 2300*0b57cec5SDimitry Andric Info.NestedTypes.push_back(DDTy); 2301*0b57cec5SDimitry Andric } else if (DDTy->getTag() == dwarf::DW_TAG_friend) { 2302*0b57cec5SDimitry Andric // Ignore friend members. It appears that MSVC emitted info about 2303*0b57cec5SDimitry Andric // friends in the past, but modern versions do not. 2304*0b57cec5SDimitry Andric } 2305*0b57cec5SDimitry Andric } else if (auto *Composite = dyn_cast<DICompositeType>(Element)) { 2306*0b57cec5SDimitry Andric Info.NestedTypes.push_back(Composite); 2307*0b57cec5SDimitry Andric } 2308*0b57cec5SDimitry Andric // Skip other unrecognized kinds of elements. 2309*0b57cec5SDimitry Andric } 2310*0b57cec5SDimitry Andric return Info; 2311*0b57cec5SDimitry Andric } 2312*0b57cec5SDimitry Andric 2313*0b57cec5SDimitry Andric static bool shouldAlwaysEmitCompleteClassType(const DICompositeType *Ty) { 2314*0b57cec5SDimitry Andric // This routine is used by lowerTypeClass and lowerTypeUnion to determine 2315*0b57cec5SDimitry Andric // if a complete type should be emitted instead of a forward reference. 2316*0b57cec5SDimitry Andric return Ty->getName().empty() && Ty->getIdentifier().empty() && 2317*0b57cec5SDimitry Andric !Ty->isForwardDecl(); 2318*0b57cec5SDimitry Andric } 2319*0b57cec5SDimitry Andric 2320*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypeClass(const DICompositeType *Ty) { 2321*0b57cec5SDimitry Andric // Emit the complete type for unnamed structs. C++ classes with methods 2322*0b57cec5SDimitry Andric // which have a circular reference back to the class type are expected to 2323*0b57cec5SDimitry Andric // be named by the front-end and should not be "unnamed". C unnamed 2324*0b57cec5SDimitry Andric // structs should not have circular references. 2325*0b57cec5SDimitry Andric if (shouldAlwaysEmitCompleteClassType(Ty)) { 2326*0b57cec5SDimitry Andric // If this unnamed complete type is already in the process of being defined 2327*0b57cec5SDimitry Andric // then the description of the type is malformed and cannot be emitted 2328*0b57cec5SDimitry Andric // into CodeView correctly so report a fatal error. 2329*0b57cec5SDimitry Andric auto I = CompleteTypeIndices.find(Ty); 2330*0b57cec5SDimitry Andric if (I != CompleteTypeIndices.end() && I->second == TypeIndex()) 2331*0b57cec5SDimitry Andric report_fatal_error("cannot debug circular reference to unnamed type"); 2332*0b57cec5SDimitry Andric return getCompleteTypeIndex(Ty); 2333*0b57cec5SDimitry Andric } 2334*0b57cec5SDimitry Andric 2335*0b57cec5SDimitry Andric // First, construct the forward decl. Don't look into Ty to compute the 2336*0b57cec5SDimitry Andric // forward decl options, since it might not be available in all TUs. 2337*0b57cec5SDimitry Andric TypeRecordKind Kind = getRecordKind(Ty); 2338*0b57cec5SDimitry Andric ClassOptions CO = 2339*0b57cec5SDimitry Andric ClassOptions::ForwardReference | getCommonClassOptions(Ty); 2340*0b57cec5SDimitry Andric std::string FullName = getFullyQualifiedName(Ty); 2341*0b57cec5SDimitry Andric ClassRecord CR(Kind, 0, CO, TypeIndex(), TypeIndex(), TypeIndex(), 0, 2342*0b57cec5SDimitry Andric FullName, Ty->getIdentifier()); 2343*0b57cec5SDimitry Andric TypeIndex FwdDeclTI = TypeTable.writeLeafType(CR); 2344*0b57cec5SDimitry Andric if (!Ty->isForwardDecl()) 2345*0b57cec5SDimitry Andric DeferredCompleteTypes.push_back(Ty); 2346*0b57cec5SDimitry Andric return FwdDeclTI; 2347*0b57cec5SDimitry Andric } 2348*0b57cec5SDimitry Andric 2349*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerCompleteTypeClass(const DICompositeType *Ty) { 2350*0b57cec5SDimitry Andric // Construct the field list and complete type record. 2351*0b57cec5SDimitry Andric TypeRecordKind Kind = getRecordKind(Ty); 2352*0b57cec5SDimitry Andric ClassOptions CO = getCommonClassOptions(Ty); 2353*0b57cec5SDimitry Andric TypeIndex FieldTI; 2354*0b57cec5SDimitry Andric TypeIndex VShapeTI; 2355*0b57cec5SDimitry Andric unsigned FieldCount; 2356*0b57cec5SDimitry Andric bool ContainsNestedClass; 2357*0b57cec5SDimitry Andric std::tie(FieldTI, VShapeTI, FieldCount, ContainsNestedClass) = 2358*0b57cec5SDimitry Andric lowerRecordFieldList(Ty); 2359*0b57cec5SDimitry Andric 2360*0b57cec5SDimitry Andric if (ContainsNestedClass) 2361*0b57cec5SDimitry Andric CO |= ClassOptions::ContainsNestedClass; 2362*0b57cec5SDimitry Andric 2363*0b57cec5SDimitry Andric // MSVC appears to set this flag by searching any destructor or method with 2364*0b57cec5SDimitry Andric // FunctionOptions::Constructor among the emitted members. Clang AST has all 2365*0b57cec5SDimitry Andric // the members, however special member functions are not yet emitted into 2366*0b57cec5SDimitry Andric // debug information. For now checking a class's non-triviality seems enough. 2367*0b57cec5SDimitry Andric // FIXME: not true for a nested unnamed struct. 2368*0b57cec5SDimitry Andric if (isNonTrivial(Ty)) 2369*0b57cec5SDimitry Andric CO |= ClassOptions::HasConstructorOrDestructor; 2370*0b57cec5SDimitry Andric 2371*0b57cec5SDimitry Andric std::string FullName = getFullyQualifiedName(Ty); 2372*0b57cec5SDimitry Andric 2373*0b57cec5SDimitry Andric uint64_t SizeInBytes = Ty->getSizeInBits() / 8; 2374*0b57cec5SDimitry Andric 2375*0b57cec5SDimitry Andric ClassRecord CR(Kind, FieldCount, CO, FieldTI, TypeIndex(), VShapeTI, 2376*0b57cec5SDimitry Andric SizeInBytes, FullName, Ty->getIdentifier()); 2377*0b57cec5SDimitry Andric TypeIndex ClassTI = TypeTable.writeLeafType(CR); 2378*0b57cec5SDimitry Andric 2379*0b57cec5SDimitry Andric addUDTSrcLine(Ty, ClassTI); 2380*0b57cec5SDimitry Andric 2381*0b57cec5SDimitry Andric addToUDTs(Ty); 2382*0b57cec5SDimitry Andric 2383*0b57cec5SDimitry Andric return ClassTI; 2384*0b57cec5SDimitry Andric } 2385*0b57cec5SDimitry Andric 2386*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerTypeUnion(const DICompositeType *Ty) { 2387*0b57cec5SDimitry Andric // Emit the complete type for unnamed unions. 2388*0b57cec5SDimitry Andric if (shouldAlwaysEmitCompleteClassType(Ty)) 2389*0b57cec5SDimitry Andric return getCompleteTypeIndex(Ty); 2390*0b57cec5SDimitry Andric 2391*0b57cec5SDimitry Andric ClassOptions CO = 2392*0b57cec5SDimitry Andric ClassOptions::ForwardReference | getCommonClassOptions(Ty); 2393*0b57cec5SDimitry Andric std::string FullName = getFullyQualifiedName(Ty); 2394*0b57cec5SDimitry Andric UnionRecord UR(0, CO, TypeIndex(), 0, FullName, Ty->getIdentifier()); 2395*0b57cec5SDimitry Andric TypeIndex FwdDeclTI = TypeTable.writeLeafType(UR); 2396*0b57cec5SDimitry Andric if (!Ty->isForwardDecl()) 2397*0b57cec5SDimitry Andric DeferredCompleteTypes.push_back(Ty); 2398*0b57cec5SDimitry Andric return FwdDeclTI; 2399*0b57cec5SDimitry Andric } 2400*0b57cec5SDimitry Andric 2401*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::lowerCompleteTypeUnion(const DICompositeType *Ty) { 2402*0b57cec5SDimitry Andric ClassOptions CO = ClassOptions::Sealed | getCommonClassOptions(Ty); 2403*0b57cec5SDimitry Andric TypeIndex FieldTI; 2404*0b57cec5SDimitry Andric unsigned FieldCount; 2405*0b57cec5SDimitry Andric bool ContainsNestedClass; 2406*0b57cec5SDimitry Andric std::tie(FieldTI, std::ignore, FieldCount, ContainsNestedClass) = 2407*0b57cec5SDimitry Andric lowerRecordFieldList(Ty); 2408*0b57cec5SDimitry Andric 2409*0b57cec5SDimitry Andric if (ContainsNestedClass) 2410*0b57cec5SDimitry Andric CO |= ClassOptions::ContainsNestedClass; 2411*0b57cec5SDimitry Andric 2412*0b57cec5SDimitry Andric uint64_t SizeInBytes = Ty->getSizeInBits() / 8; 2413*0b57cec5SDimitry Andric std::string FullName = getFullyQualifiedName(Ty); 2414*0b57cec5SDimitry Andric 2415*0b57cec5SDimitry Andric UnionRecord UR(FieldCount, CO, FieldTI, SizeInBytes, FullName, 2416*0b57cec5SDimitry Andric Ty->getIdentifier()); 2417*0b57cec5SDimitry Andric TypeIndex UnionTI = TypeTable.writeLeafType(UR); 2418*0b57cec5SDimitry Andric 2419*0b57cec5SDimitry Andric addUDTSrcLine(Ty, UnionTI); 2420*0b57cec5SDimitry Andric 2421*0b57cec5SDimitry Andric addToUDTs(Ty); 2422*0b57cec5SDimitry Andric 2423*0b57cec5SDimitry Andric return UnionTI; 2424*0b57cec5SDimitry Andric } 2425*0b57cec5SDimitry Andric 2426*0b57cec5SDimitry Andric std::tuple<TypeIndex, TypeIndex, unsigned, bool> 2427*0b57cec5SDimitry Andric CodeViewDebug::lowerRecordFieldList(const DICompositeType *Ty) { 2428*0b57cec5SDimitry Andric // Manually count members. MSVC appears to count everything that generates a 2429*0b57cec5SDimitry Andric // field list record. Each individual overload in a method overload group 2430*0b57cec5SDimitry Andric // contributes to this count, even though the overload group is a single field 2431*0b57cec5SDimitry Andric // list record. 2432*0b57cec5SDimitry Andric unsigned MemberCount = 0; 2433*0b57cec5SDimitry Andric ClassInfo Info = collectClassInfo(Ty); 2434*0b57cec5SDimitry Andric ContinuationRecordBuilder ContinuationBuilder; 2435*0b57cec5SDimitry Andric ContinuationBuilder.begin(ContinuationRecordKind::FieldList); 2436*0b57cec5SDimitry Andric 2437*0b57cec5SDimitry Andric // Create base classes. 2438*0b57cec5SDimitry Andric for (const DIDerivedType *I : Info.Inheritance) { 2439*0b57cec5SDimitry Andric if (I->getFlags() & DINode::FlagVirtual) { 2440*0b57cec5SDimitry Andric // Virtual base. 2441*0b57cec5SDimitry Andric unsigned VBPtrOffset = I->getVBPtrOffset(); 2442*0b57cec5SDimitry Andric // FIXME: Despite the accessor name, the offset is really in bytes. 2443*0b57cec5SDimitry Andric unsigned VBTableIndex = I->getOffsetInBits() / 4; 2444*0b57cec5SDimitry Andric auto RecordKind = (I->getFlags() & DINode::FlagIndirectVirtualBase) == DINode::FlagIndirectVirtualBase 2445*0b57cec5SDimitry Andric ? TypeRecordKind::IndirectVirtualBaseClass 2446*0b57cec5SDimitry Andric : TypeRecordKind::VirtualBaseClass; 2447*0b57cec5SDimitry Andric VirtualBaseClassRecord VBCR( 2448*0b57cec5SDimitry Andric RecordKind, translateAccessFlags(Ty->getTag(), I->getFlags()), 2449*0b57cec5SDimitry Andric getTypeIndex(I->getBaseType()), getVBPTypeIndex(), VBPtrOffset, 2450*0b57cec5SDimitry Andric VBTableIndex); 2451*0b57cec5SDimitry Andric 2452*0b57cec5SDimitry Andric ContinuationBuilder.writeMemberType(VBCR); 2453*0b57cec5SDimitry Andric MemberCount++; 2454*0b57cec5SDimitry Andric } else { 2455*0b57cec5SDimitry Andric assert(I->getOffsetInBits() % 8 == 0 && 2456*0b57cec5SDimitry Andric "bases must be on byte boundaries"); 2457*0b57cec5SDimitry Andric BaseClassRecord BCR(translateAccessFlags(Ty->getTag(), I->getFlags()), 2458*0b57cec5SDimitry Andric getTypeIndex(I->getBaseType()), 2459*0b57cec5SDimitry Andric I->getOffsetInBits() / 8); 2460*0b57cec5SDimitry Andric ContinuationBuilder.writeMemberType(BCR); 2461*0b57cec5SDimitry Andric MemberCount++; 2462*0b57cec5SDimitry Andric } 2463*0b57cec5SDimitry Andric } 2464*0b57cec5SDimitry Andric 2465*0b57cec5SDimitry Andric // Create members. 2466*0b57cec5SDimitry Andric for (ClassInfo::MemberInfo &MemberInfo : Info.Members) { 2467*0b57cec5SDimitry Andric const DIDerivedType *Member = MemberInfo.MemberTypeNode; 2468*0b57cec5SDimitry Andric TypeIndex MemberBaseType = getTypeIndex(Member->getBaseType()); 2469*0b57cec5SDimitry Andric StringRef MemberName = Member->getName(); 2470*0b57cec5SDimitry Andric MemberAccess Access = 2471*0b57cec5SDimitry Andric translateAccessFlags(Ty->getTag(), Member->getFlags()); 2472*0b57cec5SDimitry Andric 2473*0b57cec5SDimitry Andric if (Member->isStaticMember()) { 2474*0b57cec5SDimitry Andric StaticDataMemberRecord SDMR(Access, MemberBaseType, MemberName); 2475*0b57cec5SDimitry Andric ContinuationBuilder.writeMemberType(SDMR); 2476*0b57cec5SDimitry Andric MemberCount++; 2477*0b57cec5SDimitry Andric continue; 2478*0b57cec5SDimitry Andric } 2479*0b57cec5SDimitry Andric 2480*0b57cec5SDimitry Andric // Virtual function pointer member. 2481*0b57cec5SDimitry Andric if ((Member->getFlags() & DINode::FlagArtificial) && 2482*0b57cec5SDimitry Andric Member->getName().startswith("_vptr$")) { 2483*0b57cec5SDimitry Andric VFPtrRecord VFPR(getTypeIndex(Member->getBaseType())); 2484*0b57cec5SDimitry Andric ContinuationBuilder.writeMemberType(VFPR); 2485*0b57cec5SDimitry Andric MemberCount++; 2486*0b57cec5SDimitry Andric continue; 2487*0b57cec5SDimitry Andric } 2488*0b57cec5SDimitry Andric 2489*0b57cec5SDimitry Andric // Data member. 2490*0b57cec5SDimitry Andric uint64_t MemberOffsetInBits = 2491*0b57cec5SDimitry Andric Member->getOffsetInBits() + MemberInfo.BaseOffset; 2492*0b57cec5SDimitry Andric if (Member->isBitField()) { 2493*0b57cec5SDimitry Andric uint64_t StartBitOffset = MemberOffsetInBits; 2494*0b57cec5SDimitry Andric if (const auto *CI = 2495*0b57cec5SDimitry Andric dyn_cast_or_null<ConstantInt>(Member->getStorageOffsetInBits())) { 2496*0b57cec5SDimitry Andric MemberOffsetInBits = CI->getZExtValue() + MemberInfo.BaseOffset; 2497*0b57cec5SDimitry Andric } 2498*0b57cec5SDimitry Andric StartBitOffset -= MemberOffsetInBits; 2499*0b57cec5SDimitry Andric BitFieldRecord BFR(MemberBaseType, Member->getSizeInBits(), 2500*0b57cec5SDimitry Andric StartBitOffset); 2501*0b57cec5SDimitry Andric MemberBaseType = TypeTable.writeLeafType(BFR); 2502*0b57cec5SDimitry Andric } 2503*0b57cec5SDimitry Andric uint64_t MemberOffsetInBytes = MemberOffsetInBits / 8; 2504*0b57cec5SDimitry Andric DataMemberRecord DMR(Access, MemberBaseType, MemberOffsetInBytes, 2505*0b57cec5SDimitry Andric MemberName); 2506*0b57cec5SDimitry Andric ContinuationBuilder.writeMemberType(DMR); 2507*0b57cec5SDimitry Andric MemberCount++; 2508*0b57cec5SDimitry Andric } 2509*0b57cec5SDimitry Andric 2510*0b57cec5SDimitry Andric // Create methods 2511*0b57cec5SDimitry Andric for (auto &MethodItr : Info.Methods) { 2512*0b57cec5SDimitry Andric StringRef Name = MethodItr.first->getString(); 2513*0b57cec5SDimitry Andric 2514*0b57cec5SDimitry Andric std::vector<OneMethodRecord> Methods; 2515*0b57cec5SDimitry Andric for (const DISubprogram *SP : MethodItr.second) { 2516*0b57cec5SDimitry Andric TypeIndex MethodType = getMemberFunctionType(SP, Ty); 2517*0b57cec5SDimitry Andric bool Introduced = SP->getFlags() & DINode::FlagIntroducedVirtual; 2518*0b57cec5SDimitry Andric 2519*0b57cec5SDimitry Andric unsigned VFTableOffset = -1; 2520*0b57cec5SDimitry Andric if (Introduced) 2521*0b57cec5SDimitry Andric VFTableOffset = SP->getVirtualIndex() * getPointerSizeInBytes(); 2522*0b57cec5SDimitry Andric 2523*0b57cec5SDimitry Andric Methods.push_back(OneMethodRecord( 2524*0b57cec5SDimitry Andric MethodType, translateAccessFlags(Ty->getTag(), SP->getFlags()), 2525*0b57cec5SDimitry Andric translateMethodKindFlags(SP, Introduced), 2526*0b57cec5SDimitry Andric translateMethodOptionFlags(SP), VFTableOffset, Name)); 2527*0b57cec5SDimitry Andric MemberCount++; 2528*0b57cec5SDimitry Andric } 2529*0b57cec5SDimitry Andric assert(!Methods.empty() && "Empty methods map entry"); 2530*0b57cec5SDimitry Andric if (Methods.size() == 1) 2531*0b57cec5SDimitry Andric ContinuationBuilder.writeMemberType(Methods[0]); 2532*0b57cec5SDimitry Andric else { 2533*0b57cec5SDimitry Andric // FIXME: Make this use its own ContinuationBuilder so that 2534*0b57cec5SDimitry Andric // MethodOverloadList can be split correctly. 2535*0b57cec5SDimitry Andric MethodOverloadListRecord MOLR(Methods); 2536*0b57cec5SDimitry Andric TypeIndex MethodList = TypeTable.writeLeafType(MOLR); 2537*0b57cec5SDimitry Andric 2538*0b57cec5SDimitry Andric OverloadedMethodRecord OMR(Methods.size(), MethodList, Name); 2539*0b57cec5SDimitry Andric ContinuationBuilder.writeMemberType(OMR); 2540*0b57cec5SDimitry Andric } 2541*0b57cec5SDimitry Andric } 2542*0b57cec5SDimitry Andric 2543*0b57cec5SDimitry Andric // Create nested classes. 2544*0b57cec5SDimitry Andric for (const DIType *Nested : Info.NestedTypes) { 2545*0b57cec5SDimitry Andric NestedTypeRecord R(getTypeIndex(Nested), Nested->getName()); 2546*0b57cec5SDimitry Andric ContinuationBuilder.writeMemberType(R); 2547*0b57cec5SDimitry Andric MemberCount++; 2548*0b57cec5SDimitry Andric } 2549*0b57cec5SDimitry Andric 2550*0b57cec5SDimitry Andric TypeIndex FieldTI = TypeTable.insertRecord(ContinuationBuilder); 2551*0b57cec5SDimitry Andric return std::make_tuple(FieldTI, Info.VShapeTI, MemberCount, 2552*0b57cec5SDimitry Andric !Info.NestedTypes.empty()); 2553*0b57cec5SDimitry Andric } 2554*0b57cec5SDimitry Andric 2555*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::getVBPTypeIndex() { 2556*0b57cec5SDimitry Andric if (!VBPType.getIndex()) { 2557*0b57cec5SDimitry Andric // Make a 'const int *' type. 2558*0b57cec5SDimitry Andric ModifierRecord MR(TypeIndex::Int32(), ModifierOptions::Const); 2559*0b57cec5SDimitry Andric TypeIndex ModifiedTI = TypeTable.writeLeafType(MR); 2560*0b57cec5SDimitry Andric 2561*0b57cec5SDimitry Andric PointerKind PK = getPointerSizeInBytes() == 8 ? PointerKind::Near64 2562*0b57cec5SDimitry Andric : PointerKind::Near32; 2563*0b57cec5SDimitry Andric PointerMode PM = PointerMode::Pointer; 2564*0b57cec5SDimitry Andric PointerOptions PO = PointerOptions::None; 2565*0b57cec5SDimitry Andric PointerRecord PR(ModifiedTI, PK, PM, PO, getPointerSizeInBytes()); 2566*0b57cec5SDimitry Andric VBPType = TypeTable.writeLeafType(PR); 2567*0b57cec5SDimitry Andric } 2568*0b57cec5SDimitry Andric 2569*0b57cec5SDimitry Andric return VBPType; 2570*0b57cec5SDimitry Andric } 2571*0b57cec5SDimitry Andric 2572*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::getTypeIndex(const DIType *Ty, const DIType *ClassTy) { 2573*0b57cec5SDimitry Andric // The null DIType is the void type. Don't try to hash it. 2574*0b57cec5SDimitry Andric if (!Ty) 2575*0b57cec5SDimitry Andric return TypeIndex::Void(); 2576*0b57cec5SDimitry Andric 2577*0b57cec5SDimitry Andric // Check if we've already translated this type. Don't try to do a 2578*0b57cec5SDimitry Andric // get-or-create style insertion that caches the hash lookup across the 2579*0b57cec5SDimitry Andric // lowerType call. It will update the TypeIndices map. 2580*0b57cec5SDimitry Andric auto I = TypeIndices.find({Ty, ClassTy}); 2581*0b57cec5SDimitry Andric if (I != TypeIndices.end()) 2582*0b57cec5SDimitry Andric return I->second; 2583*0b57cec5SDimitry Andric 2584*0b57cec5SDimitry Andric TypeLoweringScope S(*this); 2585*0b57cec5SDimitry Andric TypeIndex TI = lowerType(Ty, ClassTy); 2586*0b57cec5SDimitry Andric return recordTypeIndexForDINode(Ty, TI, ClassTy); 2587*0b57cec5SDimitry Andric } 2588*0b57cec5SDimitry Andric 2589*0b57cec5SDimitry Andric codeview::TypeIndex 2590*0b57cec5SDimitry Andric CodeViewDebug::getTypeIndexForThisPtr(const DIDerivedType *PtrTy, 2591*0b57cec5SDimitry Andric const DISubroutineType *SubroutineTy) { 2592*0b57cec5SDimitry Andric assert(PtrTy->getTag() == dwarf::DW_TAG_pointer_type && 2593*0b57cec5SDimitry Andric "this type must be a pointer type"); 2594*0b57cec5SDimitry Andric 2595*0b57cec5SDimitry Andric PointerOptions Options = PointerOptions::None; 2596*0b57cec5SDimitry Andric if (SubroutineTy->getFlags() & DINode::DIFlags::FlagLValueReference) 2597*0b57cec5SDimitry Andric Options = PointerOptions::LValueRefThisPointer; 2598*0b57cec5SDimitry Andric else if (SubroutineTy->getFlags() & DINode::DIFlags::FlagRValueReference) 2599*0b57cec5SDimitry Andric Options = PointerOptions::RValueRefThisPointer; 2600*0b57cec5SDimitry Andric 2601*0b57cec5SDimitry Andric // Check if we've already translated this type. If there is no ref qualifier 2602*0b57cec5SDimitry Andric // on the function then we look up this pointer type with no associated class 2603*0b57cec5SDimitry Andric // so that the TypeIndex for the this pointer can be shared with the type 2604*0b57cec5SDimitry Andric // index for other pointers to this class type. If there is a ref qualifier 2605*0b57cec5SDimitry Andric // then we lookup the pointer using the subroutine as the parent type. 2606*0b57cec5SDimitry Andric auto I = TypeIndices.find({PtrTy, SubroutineTy}); 2607*0b57cec5SDimitry Andric if (I != TypeIndices.end()) 2608*0b57cec5SDimitry Andric return I->second; 2609*0b57cec5SDimitry Andric 2610*0b57cec5SDimitry Andric TypeLoweringScope S(*this); 2611*0b57cec5SDimitry Andric TypeIndex TI = lowerTypePointer(PtrTy, Options); 2612*0b57cec5SDimitry Andric return recordTypeIndexForDINode(PtrTy, TI, SubroutineTy); 2613*0b57cec5SDimitry Andric } 2614*0b57cec5SDimitry Andric 2615*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::getTypeIndexForReferenceTo(const DIType *Ty) { 2616*0b57cec5SDimitry Andric PointerRecord PR(getTypeIndex(Ty), 2617*0b57cec5SDimitry Andric getPointerSizeInBytes() == 8 ? PointerKind::Near64 2618*0b57cec5SDimitry Andric : PointerKind::Near32, 2619*0b57cec5SDimitry Andric PointerMode::LValueReference, PointerOptions::None, 2620*0b57cec5SDimitry Andric Ty->getSizeInBits() / 8); 2621*0b57cec5SDimitry Andric return TypeTable.writeLeafType(PR); 2622*0b57cec5SDimitry Andric } 2623*0b57cec5SDimitry Andric 2624*0b57cec5SDimitry Andric TypeIndex CodeViewDebug::getCompleteTypeIndex(const DIType *Ty) { 2625*0b57cec5SDimitry Andric // The null DIType is the void type. Don't try to hash it. 2626*0b57cec5SDimitry Andric if (!Ty) 2627*0b57cec5SDimitry Andric return TypeIndex::Void(); 2628*0b57cec5SDimitry Andric 2629*0b57cec5SDimitry Andric // Look through typedefs when getting the complete type index. Call 2630*0b57cec5SDimitry Andric // getTypeIndex on the typdef to ensure that any UDTs are accumulated and are 2631*0b57cec5SDimitry Andric // emitted only once. 2632*0b57cec5SDimitry Andric if (Ty->getTag() == dwarf::DW_TAG_typedef) 2633*0b57cec5SDimitry Andric (void)getTypeIndex(Ty); 2634*0b57cec5SDimitry Andric while (Ty->getTag() == dwarf::DW_TAG_typedef) 2635*0b57cec5SDimitry Andric Ty = cast<DIDerivedType>(Ty)->getBaseType(); 2636*0b57cec5SDimitry Andric 2637*0b57cec5SDimitry Andric // If this is a non-record type, the complete type index is the same as the 2638*0b57cec5SDimitry Andric // normal type index. Just call getTypeIndex. 2639*0b57cec5SDimitry Andric switch (Ty->getTag()) { 2640*0b57cec5SDimitry Andric case dwarf::DW_TAG_class_type: 2641*0b57cec5SDimitry Andric case dwarf::DW_TAG_structure_type: 2642*0b57cec5SDimitry Andric case dwarf::DW_TAG_union_type: 2643*0b57cec5SDimitry Andric break; 2644*0b57cec5SDimitry Andric default: 2645*0b57cec5SDimitry Andric return getTypeIndex(Ty); 2646*0b57cec5SDimitry Andric } 2647*0b57cec5SDimitry Andric 2648*0b57cec5SDimitry Andric const auto *CTy = cast<DICompositeType>(Ty); 2649*0b57cec5SDimitry Andric 2650*0b57cec5SDimitry Andric TypeLoweringScope S(*this); 2651*0b57cec5SDimitry Andric 2652*0b57cec5SDimitry Andric // Make sure the forward declaration is emitted first. It's unclear if this 2653*0b57cec5SDimitry Andric // is necessary, but MSVC does it, and we should follow suit until we can show 2654*0b57cec5SDimitry Andric // otherwise. 2655*0b57cec5SDimitry Andric // We only emit a forward declaration for named types. 2656*0b57cec5SDimitry Andric if (!CTy->getName().empty() || !CTy->getIdentifier().empty()) { 2657*0b57cec5SDimitry Andric TypeIndex FwdDeclTI = getTypeIndex(CTy); 2658*0b57cec5SDimitry Andric 2659*0b57cec5SDimitry Andric // Just use the forward decl if we don't have complete type info. This 2660*0b57cec5SDimitry Andric // might happen if the frontend is using modules and expects the complete 2661*0b57cec5SDimitry Andric // definition to be emitted elsewhere. 2662*0b57cec5SDimitry Andric if (CTy->isForwardDecl()) 2663*0b57cec5SDimitry Andric return FwdDeclTI; 2664*0b57cec5SDimitry Andric } 2665*0b57cec5SDimitry Andric 2666*0b57cec5SDimitry Andric // Check if we've already translated the complete record type. 2667*0b57cec5SDimitry Andric // Insert the type with a null TypeIndex to signify that the type is currently 2668*0b57cec5SDimitry Andric // being lowered. 2669*0b57cec5SDimitry Andric auto InsertResult = CompleteTypeIndices.insert({CTy, TypeIndex()}); 2670*0b57cec5SDimitry Andric if (!InsertResult.second) 2671*0b57cec5SDimitry Andric return InsertResult.first->second; 2672*0b57cec5SDimitry Andric 2673*0b57cec5SDimitry Andric TypeIndex TI; 2674*0b57cec5SDimitry Andric switch (CTy->getTag()) { 2675*0b57cec5SDimitry Andric case dwarf::DW_TAG_class_type: 2676*0b57cec5SDimitry Andric case dwarf::DW_TAG_structure_type: 2677*0b57cec5SDimitry Andric TI = lowerCompleteTypeClass(CTy); 2678*0b57cec5SDimitry Andric break; 2679*0b57cec5SDimitry Andric case dwarf::DW_TAG_union_type: 2680*0b57cec5SDimitry Andric TI = lowerCompleteTypeUnion(CTy); 2681*0b57cec5SDimitry Andric break; 2682*0b57cec5SDimitry Andric default: 2683*0b57cec5SDimitry Andric llvm_unreachable("not a record"); 2684*0b57cec5SDimitry Andric } 2685*0b57cec5SDimitry Andric 2686*0b57cec5SDimitry Andric // Update the type index associated with this CompositeType. This cannot 2687*0b57cec5SDimitry Andric // use the 'InsertResult' iterator above because it is potentially 2688*0b57cec5SDimitry Andric // invalidated by map insertions which can occur while lowering the class 2689*0b57cec5SDimitry Andric // type above. 2690*0b57cec5SDimitry Andric CompleteTypeIndices[CTy] = TI; 2691*0b57cec5SDimitry Andric return TI; 2692*0b57cec5SDimitry Andric } 2693*0b57cec5SDimitry Andric 2694*0b57cec5SDimitry Andric /// Emit all the deferred complete record types. Try to do this in FIFO order, 2695*0b57cec5SDimitry Andric /// and do this until fixpoint, as each complete record type typically 2696*0b57cec5SDimitry Andric /// references 2697*0b57cec5SDimitry Andric /// many other record types. 2698*0b57cec5SDimitry Andric void CodeViewDebug::emitDeferredCompleteTypes() { 2699*0b57cec5SDimitry Andric SmallVector<const DICompositeType *, 4> TypesToEmit; 2700*0b57cec5SDimitry Andric while (!DeferredCompleteTypes.empty()) { 2701*0b57cec5SDimitry Andric std::swap(DeferredCompleteTypes, TypesToEmit); 2702*0b57cec5SDimitry Andric for (const DICompositeType *RecordTy : TypesToEmit) 2703*0b57cec5SDimitry Andric getCompleteTypeIndex(RecordTy); 2704*0b57cec5SDimitry Andric TypesToEmit.clear(); 2705*0b57cec5SDimitry Andric } 2706*0b57cec5SDimitry Andric } 2707*0b57cec5SDimitry Andric 2708*0b57cec5SDimitry Andric void CodeViewDebug::emitLocalVariableList(const FunctionInfo &FI, 2709*0b57cec5SDimitry Andric ArrayRef<LocalVariable> Locals) { 2710*0b57cec5SDimitry Andric // Get the sorted list of parameters and emit them first. 2711*0b57cec5SDimitry Andric SmallVector<const LocalVariable *, 6> Params; 2712*0b57cec5SDimitry Andric for (const LocalVariable &L : Locals) 2713*0b57cec5SDimitry Andric if (L.DIVar->isParameter()) 2714*0b57cec5SDimitry Andric Params.push_back(&L); 2715*0b57cec5SDimitry Andric llvm::sort(Params, [](const LocalVariable *L, const LocalVariable *R) { 2716*0b57cec5SDimitry Andric return L->DIVar->getArg() < R->DIVar->getArg(); 2717*0b57cec5SDimitry Andric }); 2718*0b57cec5SDimitry Andric for (const LocalVariable *L : Params) 2719*0b57cec5SDimitry Andric emitLocalVariable(FI, *L); 2720*0b57cec5SDimitry Andric 2721*0b57cec5SDimitry Andric // Next emit all non-parameters in the order that we found them. 2722*0b57cec5SDimitry Andric for (const LocalVariable &L : Locals) 2723*0b57cec5SDimitry Andric if (!L.DIVar->isParameter()) 2724*0b57cec5SDimitry Andric emitLocalVariable(FI, L); 2725*0b57cec5SDimitry Andric } 2726*0b57cec5SDimitry Andric 2727*0b57cec5SDimitry Andric void CodeViewDebug::emitLocalVariable(const FunctionInfo &FI, 2728*0b57cec5SDimitry Andric const LocalVariable &Var) { 2729*0b57cec5SDimitry Andric // LocalSym record, see SymbolRecord.h for more info. 2730*0b57cec5SDimitry Andric MCSymbol *LocalEnd = beginSymbolRecord(SymbolKind::S_LOCAL); 2731*0b57cec5SDimitry Andric 2732*0b57cec5SDimitry Andric LocalSymFlags Flags = LocalSymFlags::None; 2733*0b57cec5SDimitry Andric if (Var.DIVar->isParameter()) 2734*0b57cec5SDimitry Andric Flags |= LocalSymFlags::IsParameter; 2735*0b57cec5SDimitry Andric if (Var.DefRanges.empty()) 2736*0b57cec5SDimitry Andric Flags |= LocalSymFlags::IsOptimizedOut; 2737*0b57cec5SDimitry Andric 2738*0b57cec5SDimitry Andric OS.AddComment("TypeIndex"); 2739*0b57cec5SDimitry Andric TypeIndex TI = Var.UseReferenceType 2740*0b57cec5SDimitry Andric ? getTypeIndexForReferenceTo(Var.DIVar->getType()) 2741*0b57cec5SDimitry Andric : getCompleteTypeIndex(Var.DIVar->getType()); 27425ffd83dbSDimitry Andric OS.emitInt32(TI.getIndex()); 2743*0b57cec5SDimitry Andric OS.AddComment("Flags"); 27445ffd83dbSDimitry Andric OS.emitInt16(static_cast<uint16_t>(Flags)); 2745*0b57cec5SDimitry Andric // Truncate the name so we won't overflow the record length field. 2746*0b57cec5SDimitry Andric emitNullTerminatedSymbolName(OS, Var.DIVar->getName()); 2747*0b57cec5SDimitry Andric endSymbolRecord(LocalEnd); 2748*0b57cec5SDimitry Andric 2749*0b57cec5SDimitry Andric // Calculate the on disk prefix of the appropriate def range record. The 2750*0b57cec5SDimitry Andric // records and on disk formats are described in SymbolRecords.h. BytePrefix 2751*0b57cec5SDimitry Andric // should be big enough to hold all forms without memory allocation. 2752*0b57cec5SDimitry Andric SmallString<20> BytePrefix; 2753*0b57cec5SDimitry Andric for (const LocalVarDefRange &DefRange : Var.DefRanges) { 2754*0b57cec5SDimitry Andric BytePrefix.clear(); 2755*0b57cec5SDimitry Andric if (DefRange.InMemory) { 2756*0b57cec5SDimitry Andric int Offset = DefRange.DataOffset; 2757*0b57cec5SDimitry Andric unsigned Reg = DefRange.CVRegister; 2758*0b57cec5SDimitry Andric 2759*0b57cec5SDimitry Andric // 32-bit x86 call sequences often use PUSH instructions, which disrupt 2760*0b57cec5SDimitry Andric // ESP-relative offsets. Use the virtual frame pointer, VFRAME or $T0, 2761*0b57cec5SDimitry Andric // instead. In frames without stack realignment, $T0 will be the CFA. 2762*0b57cec5SDimitry Andric if (RegisterId(Reg) == RegisterId::ESP) { 2763*0b57cec5SDimitry Andric Reg = unsigned(RegisterId::VFRAME); 2764*0b57cec5SDimitry Andric Offset += FI.OffsetAdjustment; 2765*0b57cec5SDimitry Andric } 2766*0b57cec5SDimitry Andric 2767*0b57cec5SDimitry Andric // If we can use the chosen frame pointer for the frame and this isn't a 2768*0b57cec5SDimitry Andric // sliced aggregate, use the smaller S_DEFRANGE_FRAMEPOINTER_REL record. 2769*0b57cec5SDimitry Andric // Otherwise, use S_DEFRANGE_REGISTER_REL. 2770*0b57cec5SDimitry Andric EncodedFramePtrReg EncFP = encodeFramePtrReg(RegisterId(Reg), TheCPU); 2771*0b57cec5SDimitry Andric if (!DefRange.IsSubfield && EncFP != EncodedFramePtrReg::None && 2772*0b57cec5SDimitry Andric (bool(Flags & LocalSymFlags::IsParameter) 2773*0b57cec5SDimitry Andric ? (EncFP == FI.EncodedParamFramePtrReg) 2774*0b57cec5SDimitry Andric : (EncFP == FI.EncodedLocalFramePtrReg))) { 27758bcb0991SDimitry Andric DefRangeFramePointerRelHeader DRHdr; 27768bcb0991SDimitry Andric DRHdr.Offset = Offset; 27775ffd83dbSDimitry Andric OS.emitCVDefRangeDirective(DefRange.Ranges, DRHdr); 2778*0b57cec5SDimitry Andric } else { 2779*0b57cec5SDimitry Andric uint16_t RegRelFlags = 0; 2780*0b57cec5SDimitry Andric if (DefRange.IsSubfield) { 2781*0b57cec5SDimitry Andric RegRelFlags = DefRangeRegisterRelSym::IsSubfieldFlag | 2782*0b57cec5SDimitry Andric (DefRange.StructOffset 2783*0b57cec5SDimitry Andric << DefRangeRegisterRelSym::OffsetInParentShift); 2784*0b57cec5SDimitry Andric } 27858bcb0991SDimitry Andric DefRangeRegisterRelHeader DRHdr; 2786*0b57cec5SDimitry Andric DRHdr.Register = Reg; 2787*0b57cec5SDimitry Andric DRHdr.Flags = RegRelFlags; 2788*0b57cec5SDimitry Andric DRHdr.BasePointerOffset = Offset; 27895ffd83dbSDimitry Andric OS.emitCVDefRangeDirective(DefRange.Ranges, DRHdr); 2790*0b57cec5SDimitry Andric } 2791*0b57cec5SDimitry Andric } else { 2792*0b57cec5SDimitry Andric assert(DefRange.DataOffset == 0 && "unexpected offset into register"); 2793*0b57cec5SDimitry Andric if (DefRange.IsSubfield) { 27948bcb0991SDimitry Andric DefRangeSubfieldRegisterHeader DRHdr; 2795*0b57cec5SDimitry Andric DRHdr.Register = DefRange.CVRegister; 2796*0b57cec5SDimitry Andric DRHdr.MayHaveNoName = 0; 2797*0b57cec5SDimitry Andric DRHdr.OffsetInParent = DefRange.StructOffset; 27985ffd83dbSDimitry Andric OS.emitCVDefRangeDirective(DefRange.Ranges, DRHdr); 2799*0b57cec5SDimitry Andric } else { 28008bcb0991SDimitry Andric DefRangeRegisterHeader DRHdr; 2801*0b57cec5SDimitry Andric DRHdr.Register = DefRange.CVRegister; 2802*0b57cec5SDimitry Andric DRHdr.MayHaveNoName = 0; 28035ffd83dbSDimitry Andric OS.emitCVDefRangeDirective(DefRange.Ranges, DRHdr); 2804*0b57cec5SDimitry Andric } 2805*0b57cec5SDimitry Andric } 2806*0b57cec5SDimitry Andric } 2807*0b57cec5SDimitry Andric } 2808*0b57cec5SDimitry Andric 2809*0b57cec5SDimitry Andric void CodeViewDebug::emitLexicalBlockList(ArrayRef<LexicalBlock *> Blocks, 2810*0b57cec5SDimitry Andric const FunctionInfo& FI) { 2811*0b57cec5SDimitry Andric for (LexicalBlock *Block : Blocks) 2812*0b57cec5SDimitry Andric emitLexicalBlock(*Block, FI); 2813*0b57cec5SDimitry Andric } 2814*0b57cec5SDimitry Andric 2815*0b57cec5SDimitry Andric /// Emit an S_BLOCK32 and S_END record pair delimiting the contents of a 2816*0b57cec5SDimitry Andric /// lexical block scope. 2817*0b57cec5SDimitry Andric void CodeViewDebug::emitLexicalBlock(const LexicalBlock &Block, 2818*0b57cec5SDimitry Andric const FunctionInfo& FI) { 2819*0b57cec5SDimitry Andric MCSymbol *RecordEnd = beginSymbolRecord(SymbolKind::S_BLOCK32); 2820*0b57cec5SDimitry Andric OS.AddComment("PtrParent"); 28215ffd83dbSDimitry Andric OS.emitInt32(0); // PtrParent 2822*0b57cec5SDimitry Andric OS.AddComment("PtrEnd"); 28235ffd83dbSDimitry Andric OS.emitInt32(0); // PtrEnd 2824*0b57cec5SDimitry Andric OS.AddComment("Code size"); 2825*0b57cec5SDimitry Andric OS.emitAbsoluteSymbolDiff(Block.End, Block.Begin, 4); // Code Size 2826*0b57cec5SDimitry Andric OS.AddComment("Function section relative address"); 2827*0b57cec5SDimitry Andric OS.EmitCOFFSecRel32(Block.Begin, /*Offset=*/0); // Func Offset 2828*0b57cec5SDimitry Andric OS.AddComment("Function section index"); 2829*0b57cec5SDimitry Andric OS.EmitCOFFSectionIndex(FI.Begin); // Func Symbol 2830*0b57cec5SDimitry Andric OS.AddComment("Lexical block name"); 2831*0b57cec5SDimitry Andric emitNullTerminatedSymbolName(OS, Block.Name); // Name 2832*0b57cec5SDimitry Andric endSymbolRecord(RecordEnd); 2833*0b57cec5SDimitry Andric 2834*0b57cec5SDimitry Andric // Emit variables local to this lexical block. 2835*0b57cec5SDimitry Andric emitLocalVariableList(FI, Block.Locals); 2836*0b57cec5SDimitry Andric emitGlobalVariableList(Block.Globals); 2837*0b57cec5SDimitry Andric 2838*0b57cec5SDimitry Andric // Emit lexical blocks contained within this block. 2839*0b57cec5SDimitry Andric emitLexicalBlockList(Block.Children, FI); 2840*0b57cec5SDimitry Andric 2841*0b57cec5SDimitry Andric // Close the lexical block scope. 2842*0b57cec5SDimitry Andric emitEndSymbolRecord(SymbolKind::S_END); 2843*0b57cec5SDimitry Andric } 2844*0b57cec5SDimitry Andric 2845*0b57cec5SDimitry Andric /// Convenience routine for collecting lexical block information for a list 2846*0b57cec5SDimitry Andric /// of lexical scopes. 2847*0b57cec5SDimitry Andric void CodeViewDebug::collectLexicalBlockInfo( 2848*0b57cec5SDimitry Andric SmallVectorImpl<LexicalScope *> &Scopes, 2849*0b57cec5SDimitry Andric SmallVectorImpl<LexicalBlock *> &Blocks, 2850*0b57cec5SDimitry Andric SmallVectorImpl<LocalVariable> &Locals, 2851*0b57cec5SDimitry Andric SmallVectorImpl<CVGlobalVariable> &Globals) { 2852*0b57cec5SDimitry Andric for (LexicalScope *Scope : Scopes) 2853*0b57cec5SDimitry Andric collectLexicalBlockInfo(*Scope, Blocks, Locals, Globals); 2854*0b57cec5SDimitry Andric } 2855*0b57cec5SDimitry Andric 2856*0b57cec5SDimitry Andric /// Populate the lexical blocks and local variable lists of the parent with 2857*0b57cec5SDimitry Andric /// information about the specified lexical scope. 2858*0b57cec5SDimitry Andric void CodeViewDebug::collectLexicalBlockInfo( 2859*0b57cec5SDimitry Andric LexicalScope &Scope, 2860*0b57cec5SDimitry Andric SmallVectorImpl<LexicalBlock *> &ParentBlocks, 2861*0b57cec5SDimitry Andric SmallVectorImpl<LocalVariable> &ParentLocals, 2862*0b57cec5SDimitry Andric SmallVectorImpl<CVGlobalVariable> &ParentGlobals) { 2863*0b57cec5SDimitry Andric if (Scope.isAbstractScope()) 2864*0b57cec5SDimitry Andric return; 2865*0b57cec5SDimitry Andric 2866*0b57cec5SDimitry Andric // Gather information about the lexical scope including local variables, 2867*0b57cec5SDimitry Andric // global variables, and address ranges. 2868*0b57cec5SDimitry Andric bool IgnoreScope = false; 2869*0b57cec5SDimitry Andric auto LI = ScopeVariables.find(&Scope); 2870*0b57cec5SDimitry Andric SmallVectorImpl<LocalVariable> *Locals = 2871*0b57cec5SDimitry Andric LI != ScopeVariables.end() ? &LI->second : nullptr; 2872*0b57cec5SDimitry Andric auto GI = ScopeGlobals.find(Scope.getScopeNode()); 2873*0b57cec5SDimitry Andric SmallVectorImpl<CVGlobalVariable> *Globals = 2874*0b57cec5SDimitry Andric GI != ScopeGlobals.end() ? GI->second.get() : nullptr; 2875*0b57cec5SDimitry Andric const DILexicalBlock *DILB = dyn_cast<DILexicalBlock>(Scope.getScopeNode()); 2876*0b57cec5SDimitry Andric const SmallVectorImpl<InsnRange> &Ranges = Scope.getRanges(); 2877*0b57cec5SDimitry Andric 2878*0b57cec5SDimitry Andric // Ignore lexical scopes which do not contain variables. 2879*0b57cec5SDimitry Andric if (!Locals && !Globals) 2880*0b57cec5SDimitry Andric IgnoreScope = true; 2881*0b57cec5SDimitry Andric 2882*0b57cec5SDimitry Andric // Ignore lexical scopes which are not lexical blocks. 2883*0b57cec5SDimitry Andric if (!DILB) 2884*0b57cec5SDimitry Andric IgnoreScope = true; 2885*0b57cec5SDimitry Andric 2886*0b57cec5SDimitry Andric // Ignore scopes which have too many address ranges to represent in the 2887*0b57cec5SDimitry Andric // current CodeView format or do not have a valid address range. 2888*0b57cec5SDimitry Andric // 2889*0b57cec5SDimitry Andric // For lexical scopes with multiple address ranges you may be tempted to 2890*0b57cec5SDimitry Andric // construct a single range covering every instruction where the block is 2891*0b57cec5SDimitry Andric // live and everything in between. Unfortunately, Visual Studio only 2892*0b57cec5SDimitry Andric // displays variables from the first matching lexical block scope. If the 2893*0b57cec5SDimitry Andric // first lexical block contains exception handling code or cold code which 2894*0b57cec5SDimitry Andric // is moved to the bottom of the routine creating a single range covering 2895*0b57cec5SDimitry Andric // nearly the entire routine, then it will hide all other lexical blocks 2896*0b57cec5SDimitry Andric // and the variables they contain. 2897*0b57cec5SDimitry Andric if (Ranges.size() != 1 || !getLabelAfterInsn(Ranges.front().second)) 2898*0b57cec5SDimitry Andric IgnoreScope = true; 2899*0b57cec5SDimitry Andric 2900*0b57cec5SDimitry Andric if (IgnoreScope) { 2901*0b57cec5SDimitry Andric // This scope can be safely ignored and eliminating it will reduce the 2902*0b57cec5SDimitry Andric // size of the debug information. Be sure to collect any variable and scope 2903*0b57cec5SDimitry Andric // information from the this scope or any of its children and collapse them 2904*0b57cec5SDimitry Andric // into the parent scope. 2905*0b57cec5SDimitry Andric if (Locals) 2906*0b57cec5SDimitry Andric ParentLocals.append(Locals->begin(), Locals->end()); 2907*0b57cec5SDimitry Andric if (Globals) 2908*0b57cec5SDimitry Andric ParentGlobals.append(Globals->begin(), Globals->end()); 2909*0b57cec5SDimitry Andric collectLexicalBlockInfo(Scope.getChildren(), 2910*0b57cec5SDimitry Andric ParentBlocks, 2911*0b57cec5SDimitry Andric ParentLocals, 2912*0b57cec5SDimitry Andric ParentGlobals); 2913*0b57cec5SDimitry Andric return; 2914*0b57cec5SDimitry Andric } 2915*0b57cec5SDimitry Andric 2916*0b57cec5SDimitry Andric // Create a new CodeView lexical block for this lexical scope. If we've 2917*0b57cec5SDimitry Andric // seen this DILexicalBlock before then the scope tree is malformed and 2918*0b57cec5SDimitry Andric // we can handle this gracefully by not processing it a second time. 2919*0b57cec5SDimitry Andric auto BlockInsertion = CurFn->LexicalBlocks.insert({DILB, LexicalBlock()}); 2920*0b57cec5SDimitry Andric if (!BlockInsertion.second) 2921*0b57cec5SDimitry Andric return; 2922*0b57cec5SDimitry Andric 2923*0b57cec5SDimitry Andric // Create a lexical block containing the variables and collect the the 2924*0b57cec5SDimitry Andric // lexical block information for the children. 2925*0b57cec5SDimitry Andric const InsnRange &Range = Ranges.front(); 2926*0b57cec5SDimitry Andric assert(Range.first && Range.second); 2927*0b57cec5SDimitry Andric LexicalBlock &Block = BlockInsertion.first->second; 2928*0b57cec5SDimitry Andric Block.Begin = getLabelBeforeInsn(Range.first); 2929*0b57cec5SDimitry Andric Block.End = getLabelAfterInsn(Range.second); 2930*0b57cec5SDimitry Andric assert(Block.Begin && "missing label for scope begin"); 2931*0b57cec5SDimitry Andric assert(Block.End && "missing label for scope end"); 2932*0b57cec5SDimitry Andric Block.Name = DILB->getName(); 2933*0b57cec5SDimitry Andric if (Locals) 2934*0b57cec5SDimitry Andric Block.Locals = std::move(*Locals); 2935*0b57cec5SDimitry Andric if (Globals) 2936*0b57cec5SDimitry Andric Block.Globals = std::move(*Globals); 2937*0b57cec5SDimitry Andric ParentBlocks.push_back(&Block); 2938*0b57cec5SDimitry Andric collectLexicalBlockInfo(Scope.getChildren(), 2939*0b57cec5SDimitry Andric Block.Children, 2940*0b57cec5SDimitry Andric Block.Locals, 2941*0b57cec5SDimitry Andric Block.Globals); 2942*0b57cec5SDimitry Andric } 2943*0b57cec5SDimitry Andric 2944*0b57cec5SDimitry Andric void CodeViewDebug::endFunctionImpl(const MachineFunction *MF) { 2945*0b57cec5SDimitry Andric const Function &GV = MF->getFunction(); 2946*0b57cec5SDimitry Andric assert(FnDebugInfo.count(&GV)); 2947*0b57cec5SDimitry Andric assert(CurFn == FnDebugInfo[&GV].get()); 2948*0b57cec5SDimitry Andric 2949*0b57cec5SDimitry Andric collectVariableInfo(GV.getSubprogram()); 2950*0b57cec5SDimitry Andric 2951*0b57cec5SDimitry Andric // Build the lexical block structure to emit for this routine. 2952*0b57cec5SDimitry Andric if (LexicalScope *CFS = LScopes.getCurrentFunctionScope()) 2953*0b57cec5SDimitry Andric collectLexicalBlockInfo(*CFS, 2954*0b57cec5SDimitry Andric CurFn->ChildBlocks, 2955*0b57cec5SDimitry Andric CurFn->Locals, 2956*0b57cec5SDimitry Andric CurFn->Globals); 2957*0b57cec5SDimitry Andric 2958*0b57cec5SDimitry Andric // Clear the scope and variable information from the map which will not be 2959*0b57cec5SDimitry Andric // valid after we have finished processing this routine. This also prepares 2960*0b57cec5SDimitry Andric // the map for the subsequent routine. 2961*0b57cec5SDimitry Andric ScopeVariables.clear(); 2962*0b57cec5SDimitry Andric 2963*0b57cec5SDimitry Andric // Don't emit anything if we don't have any line tables. 2964*0b57cec5SDimitry Andric // Thunks are compiler-generated and probably won't have source correlation. 2965*0b57cec5SDimitry Andric if (!CurFn->HaveLineInfo && !GV.getSubprogram()->isThunk()) { 2966*0b57cec5SDimitry Andric FnDebugInfo.erase(&GV); 2967*0b57cec5SDimitry Andric CurFn = nullptr; 2968*0b57cec5SDimitry Andric return; 2969*0b57cec5SDimitry Andric } 2970*0b57cec5SDimitry Andric 2971480093f4SDimitry Andric // Find heap alloc sites and add to list. 2972480093f4SDimitry Andric for (const auto &MBB : *MF) { 2973480093f4SDimitry Andric for (const auto &MI : MBB) { 2974480093f4SDimitry Andric if (MDNode *MD = MI.getHeapAllocMarker()) { 2975480093f4SDimitry Andric CurFn->HeapAllocSites.push_back(std::make_tuple(getLabelBeforeInsn(&MI), 2976480093f4SDimitry Andric getLabelAfterInsn(&MI), 2977480093f4SDimitry Andric dyn_cast<DIType>(MD))); 2978480093f4SDimitry Andric } 2979480093f4SDimitry Andric } 2980480093f4SDimitry Andric } 2981480093f4SDimitry Andric 2982*0b57cec5SDimitry Andric CurFn->Annotations = MF->getCodeViewAnnotations(); 2983*0b57cec5SDimitry Andric 2984*0b57cec5SDimitry Andric CurFn->End = Asm->getFunctionEnd(); 2985*0b57cec5SDimitry Andric 2986*0b57cec5SDimitry Andric CurFn = nullptr; 2987*0b57cec5SDimitry Andric } 2988*0b57cec5SDimitry Andric 29898bcb0991SDimitry Andric // Usable locations are valid with non-zero line numbers. A line number of zero 29908bcb0991SDimitry Andric // corresponds to optimized code that doesn't have a distinct source location. 29918bcb0991SDimitry Andric // In this case, we try to use the previous or next source location depending on 29928bcb0991SDimitry Andric // the context. 29938bcb0991SDimitry Andric static bool isUsableDebugLoc(DebugLoc DL) { 29948bcb0991SDimitry Andric return DL && DL.getLine() != 0; 29958bcb0991SDimitry Andric } 29968bcb0991SDimitry Andric 2997*0b57cec5SDimitry Andric void CodeViewDebug::beginInstruction(const MachineInstr *MI) { 2998*0b57cec5SDimitry Andric DebugHandlerBase::beginInstruction(MI); 2999*0b57cec5SDimitry Andric 3000*0b57cec5SDimitry Andric // Ignore DBG_VALUE and DBG_LABEL locations and function prologue. 3001*0b57cec5SDimitry Andric if (!Asm || !CurFn || MI->isDebugInstr() || 3002*0b57cec5SDimitry Andric MI->getFlag(MachineInstr::FrameSetup)) 3003*0b57cec5SDimitry Andric return; 3004*0b57cec5SDimitry Andric 3005*0b57cec5SDimitry Andric // If the first instruction of a new MBB has no location, find the first 3006*0b57cec5SDimitry Andric // instruction with a location and use that. 3007*0b57cec5SDimitry Andric DebugLoc DL = MI->getDebugLoc(); 30088bcb0991SDimitry Andric if (!isUsableDebugLoc(DL) && MI->getParent() != PrevInstBB) { 3009*0b57cec5SDimitry Andric for (const auto &NextMI : *MI->getParent()) { 3010*0b57cec5SDimitry Andric if (NextMI.isDebugInstr()) 3011*0b57cec5SDimitry Andric continue; 3012*0b57cec5SDimitry Andric DL = NextMI.getDebugLoc(); 30138bcb0991SDimitry Andric if (isUsableDebugLoc(DL)) 3014*0b57cec5SDimitry Andric break; 3015*0b57cec5SDimitry Andric } 30168bcb0991SDimitry Andric // FIXME: Handle the case where the BB has no valid locations. This would 30178bcb0991SDimitry Andric // probably require doing a real dataflow analysis. 3018*0b57cec5SDimitry Andric } 3019*0b57cec5SDimitry Andric PrevInstBB = MI->getParent(); 3020*0b57cec5SDimitry Andric 3021*0b57cec5SDimitry Andric // If we still don't have a debug location, don't record a location. 30228bcb0991SDimitry Andric if (!isUsableDebugLoc(DL)) 3023*0b57cec5SDimitry Andric return; 3024*0b57cec5SDimitry Andric 3025*0b57cec5SDimitry Andric maybeRecordLocation(DL, Asm->MF); 3026*0b57cec5SDimitry Andric } 3027*0b57cec5SDimitry Andric 3028*0b57cec5SDimitry Andric MCSymbol *CodeViewDebug::beginCVSubsection(DebugSubsectionKind Kind) { 3029*0b57cec5SDimitry Andric MCSymbol *BeginLabel = MMI->getContext().createTempSymbol(), 3030*0b57cec5SDimitry Andric *EndLabel = MMI->getContext().createTempSymbol(); 30315ffd83dbSDimitry Andric OS.emitInt32(unsigned(Kind)); 3032*0b57cec5SDimitry Andric OS.AddComment("Subsection size"); 3033*0b57cec5SDimitry Andric OS.emitAbsoluteSymbolDiff(EndLabel, BeginLabel, 4); 30345ffd83dbSDimitry Andric OS.emitLabel(BeginLabel); 3035*0b57cec5SDimitry Andric return EndLabel; 3036*0b57cec5SDimitry Andric } 3037*0b57cec5SDimitry Andric 3038*0b57cec5SDimitry Andric void CodeViewDebug::endCVSubsection(MCSymbol *EndLabel) { 30395ffd83dbSDimitry Andric OS.emitLabel(EndLabel); 3040*0b57cec5SDimitry Andric // Every subsection must be aligned to a 4-byte boundary. 30415ffd83dbSDimitry Andric OS.emitValueToAlignment(4); 3042*0b57cec5SDimitry Andric } 3043*0b57cec5SDimitry Andric 3044*0b57cec5SDimitry Andric static StringRef getSymbolName(SymbolKind SymKind) { 3045*0b57cec5SDimitry Andric for (const EnumEntry<SymbolKind> &EE : getSymbolTypeNames()) 3046*0b57cec5SDimitry Andric if (EE.Value == SymKind) 3047*0b57cec5SDimitry Andric return EE.Name; 3048*0b57cec5SDimitry Andric return ""; 3049*0b57cec5SDimitry Andric } 3050*0b57cec5SDimitry Andric 3051*0b57cec5SDimitry Andric MCSymbol *CodeViewDebug::beginSymbolRecord(SymbolKind SymKind) { 3052*0b57cec5SDimitry Andric MCSymbol *BeginLabel = MMI->getContext().createTempSymbol(), 3053*0b57cec5SDimitry Andric *EndLabel = MMI->getContext().createTempSymbol(); 3054*0b57cec5SDimitry Andric OS.AddComment("Record length"); 3055*0b57cec5SDimitry Andric OS.emitAbsoluteSymbolDiff(EndLabel, BeginLabel, 2); 30565ffd83dbSDimitry Andric OS.emitLabel(BeginLabel); 3057*0b57cec5SDimitry Andric if (OS.isVerboseAsm()) 3058*0b57cec5SDimitry Andric OS.AddComment("Record kind: " + getSymbolName(SymKind)); 30595ffd83dbSDimitry Andric OS.emitInt16(unsigned(SymKind)); 3060*0b57cec5SDimitry Andric return EndLabel; 3061*0b57cec5SDimitry Andric } 3062*0b57cec5SDimitry Andric 3063*0b57cec5SDimitry Andric void CodeViewDebug::endSymbolRecord(MCSymbol *SymEnd) { 3064*0b57cec5SDimitry Andric // MSVC does not pad out symbol records to four bytes, but LLVM does to avoid 3065*0b57cec5SDimitry Andric // an extra copy of every symbol record in LLD. This increases object file 3066*0b57cec5SDimitry Andric // size by less than 1% in the clang build, and is compatible with the Visual 3067*0b57cec5SDimitry Andric // C++ linker. 30685ffd83dbSDimitry Andric OS.emitValueToAlignment(4); 30695ffd83dbSDimitry Andric OS.emitLabel(SymEnd); 3070*0b57cec5SDimitry Andric } 3071*0b57cec5SDimitry Andric 3072*0b57cec5SDimitry Andric void CodeViewDebug::emitEndSymbolRecord(SymbolKind EndKind) { 3073*0b57cec5SDimitry Andric OS.AddComment("Record length"); 30745ffd83dbSDimitry Andric OS.emitInt16(2); 3075*0b57cec5SDimitry Andric if (OS.isVerboseAsm()) 3076*0b57cec5SDimitry Andric OS.AddComment("Record kind: " + getSymbolName(EndKind)); 30775ffd83dbSDimitry Andric OS.emitInt16(uint16_t(EndKind)); // Record Kind 3078*0b57cec5SDimitry Andric } 3079*0b57cec5SDimitry Andric 3080*0b57cec5SDimitry Andric void CodeViewDebug::emitDebugInfoForUDTs( 30815ffd83dbSDimitry Andric const std::vector<std::pair<std::string, const DIType *>> &UDTs) { 30825ffd83dbSDimitry Andric #ifndef NDEBUG 30835ffd83dbSDimitry Andric size_t OriginalSize = UDTs.size(); 30845ffd83dbSDimitry Andric #endif 3085*0b57cec5SDimitry Andric for (const auto &UDT : UDTs) { 3086*0b57cec5SDimitry Andric const DIType *T = UDT.second; 3087*0b57cec5SDimitry Andric assert(shouldEmitUdt(T)); 3088*0b57cec5SDimitry Andric MCSymbol *UDTRecordEnd = beginSymbolRecord(SymbolKind::S_UDT); 3089*0b57cec5SDimitry Andric OS.AddComment("Type"); 30905ffd83dbSDimitry Andric OS.emitInt32(getCompleteTypeIndex(T).getIndex()); 30915ffd83dbSDimitry Andric assert(OriginalSize == UDTs.size() && 30925ffd83dbSDimitry Andric "getCompleteTypeIndex found new UDTs!"); 3093*0b57cec5SDimitry Andric emitNullTerminatedSymbolName(OS, UDT.first); 3094*0b57cec5SDimitry Andric endSymbolRecord(UDTRecordEnd); 3095*0b57cec5SDimitry Andric } 3096*0b57cec5SDimitry Andric } 3097*0b57cec5SDimitry Andric 3098*0b57cec5SDimitry Andric void CodeViewDebug::collectGlobalVariableInfo() { 3099*0b57cec5SDimitry Andric DenseMap<const DIGlobalVariableExpression *, const GlobalVariable *> 3100*0b57cec5SDimitry Andric GlobalMap; 3101*0b57cec5SDimitry Andric for (const GlobalVariable &GV : MMI->getModule()->globals()) { 3102*0b57cec5SDimitry Andric SmallVector<DIGlobalVariableExpression *, 1> GVEs; 3103*0b57cec5SDimitry Andric GV.getDebugInfo(GVEs); 3104*0b57cec5SDimitry Andric for (const auto *GVE : GVEs) 3105*0b57cec5SDimitry Andric GlobalMap[GVE] = &GV; 3106*0b57cec5SDimitry Andric } 3107*0b57cec5SDimitry Andric 3108*0b57cec5SDimitry Andric NamedMDNode *CUs = MMI->getModule()->getNamedMetadata("llvm.dbg.cu"); 3109*0b57cec5SDimitry Andric for (const MDNode *Node : CUs->operands()) { 3110*0b57cec5SDimitry Andric const auto *CU = cast<DICompileUnit>(Node); 3111*0b57cec5SDimitry Andric for (const auto *GVE : CU->getGlobalVariables()) { 3112*0b57cec5SDimitry Andric const DIGlobalVariable *DIGV = GVE->getVariable(); 3113*0b57cec5SDimitry Andric const DIExpression *DIE = GVE->getExpression(); 3114*0b57cec5SDimitry Andric 3115349cc55cSDimitry Andric if ((DIE->getNumElements() == 2) && 3116349cc55cSDimitry Andric (DIE->getElement(0) == dwarf::DW_OP_plus_uconst)) 3117349cc55cSDimitry Andric // Record the constant offset for the variable. 3118349cc55cSDimitry Andric // 3119349cc55cSDimitry Andric // A Fortran common block uses this idiom to encode the offset 3120349cc55cSDimitry Andric // of a variable from the common block's starting address. 3121349cc55cSDimitry Andric CVGlobalVariableOffsets.insert( 3122349cc55cSDimitry Andric std::make_pair(DIGV, DIE->getElement(1))); 3123349cc55cSDimitry Andric 3124*0b57cec5SDimitry Andric // Emit constant global variables in a global symbol section. 3125*0b57cec5SDimitry Andric if (GlobalMap.count(GVE) == 0 && DIE->isConstant()) { 3126*0b57cec5SDimitry Andric CVGlobalVariable CVGV = {DIGV, DIE}; 3127*0b57cec5SDimitry Andric GlobalVariables.emplace_back(std::move(CVGV)); 3128*0b57cec5SDimitry Andric } 3129*0b57cec5SDimitry Andric 3130*0b57cec5SDimitry Andric const auto *GV = GlobalMap.lookup(GVE); 3131*0b57cec5SDimitry Andric if (!GV || GV->isDeclarationForLinker()) 3132*0b57cec5SDimitry Andric continue; 3133*0b57cec5SDimitry Andric 3134*0b57cec5SDimitry Andric DIScope *Scope = DIGV->getScope(); 3135*0b57cec5SDimitry Andric SmallVector<CVGlobalVariable, 1> *VariableList; 3136*0b57cec5SDimitry Andric if (Scope && isa<DILocalScope>(Scope)) { 3137*0b57cec5SDimitry Andric // Locate a global variable list for this scope, creating one if 3138*0b57cec5SDimitry Andric // necessary. 3139*0b57cec5SDimitry Andric auto Insertion = ScopeGlobals.insert( 3140*0b57cec5SDimitry Andric {Scope, std::unique_ptr<GlobalVariableList>()}); 3141*0b57cec5SDimitry Andric if (Insertion.second) 31428bcb0991SDimitry Andric Insertion.first->second = std::make_unique<GlobalVariableList>(); 3143*0b57cec5SDimitry Andric VariableList = Insertion.first->second.get(); 3144*0b57cec5SDimitry Andric } else if (GV->hasComdat()) 3145*0b57cec5SDimitry Andric // Emit this global variable into a COMDAT section. 3146*0b57cec5SDimitry Andric VariableList = &ComdatVariables; 3147*0b57cec5SDimitry Andric else 3148*0b57cec5SDimitry Andric // Emit this global variable in a single global symbol section. 3149*0b57cec5SDimitry Andric VariableList = &GlobalVariables; 3150*0b57cec5SDimitry Andric CVGlobalVariable CVGV = {DIGV, GV}; 3151*0b57cec5SDimitry Andric VariableList->emplace_back(std::move(CVGV)); 3152*0b57cec5SDimitry Andric } 3153*0b57cec5SDimitry Andric } 3154*0b57cec5SDimitry Andric } 3155*0b57cec5SDimitry Andric 3156e8d8bef9SDimitry Andric void CodeViewDebug::collectDebugInfoForGlobals() { 3157e8d8bef9SDimitry Andric for (const CVGlobalVariable &CVGV : GlobalVariables) { 3158e8d8bef9SDimitry Andric const DIGlobalVariable *DIGV = CVGV.DIGV; 3159e8d8bef9SDimitry Andric const DIScope *Scope = DIGV->getScope(); 3160e8d8bef9SDimitry Andric getCompleteTypeIndex(DIGV->getType()); 3161e8d8bef9SDimitry Andric getFullyQualifiedName(Scope, DIGV->getName()); 3162e8d8bef9SDimitry Andric } 3163e8d8bef9SDimitry Andric 3164e8d8bef9SDimitry Andric for (const CVGlobalVariable &CVGV : ComdatVariables) { 3165e8d8bef9SDimitry Andric const DIGlobalVariable *DIGV = CVGV.DIGV; 3166e8d8bef9SDimitry Andric const DIScope *Scope = DIGV->getScope(); 3167e8d8bef9SDimitry Andric getCompleteTypeIndex(DIGV->getType()); 3168e8d8bef9SDimitry Andric getFullyQualifiedName(Scope, DIGV->getName()); 3169e8d8bef9SDimitry Andric } 3170e8d8bef9SDimitry Andric } 3171e8d8bef9SDimitry Andric 3172*0b57cec5SDimitry Andric void CodeViewDebug::emitDebugInfoForGlobals() { 3173*0b57cec5SDimitry Andric // First, emit all globals that are not in a comdat in a single symbol 3174*0b57cec5SDimitry Andric // substream. MSVC doesn't like it if the substream is empty, so only open 3175*0b57cec5SDimitry Andric // it if we have at least one global to emit. 3176*0b57cec5SDimitry Andric switchToDebugSectionForSymbol(nullptr); 3177e8d8bef9SDimitry Andric if (!GlobalVariables.empty() || !StaticConstMembers.empty()) { 3178*0b57cec5SDimitry Andric OS.AddComment("Symbol subsection for globals"); 3179*0b57cec5SDimitry Andric MCSymbol *EndLabel = beginCVSubsection(DebugSubsectionKind::Symbols); 3180*0b57cec5SDimitry Andric emitGlobalVariableList(GlobalVariables); 3181e8d8bef9SDimitry Andric emitStaticConstMemberList(); 3182*0b57cec5SDimitry Andric endCVSubsection(EndLabel); 3183*0b57cec5SDimitry Andric } 3184*0b57cec5SDimitry Andric 3185*0b57cec5SDimitry Andric // Second, emit each global that is in a comdat into its own .debug$S 3186*0b57cec5SDimitry Andric // section along with its own symbol substream. 3187*0b57cec5SDimitry Andric for (const CVGlobalVariable &CVGV : ComdatVariables) { 3188*0b57cec5SDimitry Andric const GlobalVariable *GV = CVGV.GVInfo.get<const GlobalVariable *>(); 3189*0b57cec5SDimitry Andric MCSymbol *GVSym = Asm->getSymbol(GV); 3190*0b57cec5SDimitry Andric OS.AddComment("Symbol subsection for " + 3191*0b57cec5SDimitry Andric Twine(GlobalValue::dropLLVMManglingEscape(GV->getName()))); 3192*0b57cec5SDimitry Andric switchToDebugSectionForSymbol(GVSym); 3193*0b57cec5SDimitry Andric MCSymbol *EndLabel = beginCVSubsection(DebugSubsectionKind::Symbols); 3194*0b57cec5SDimitry Andric // FIXME: emitDebugInfoForGlobal() doesn't handle DIExpressions. 3195*0b57cec5SDimitry Andric emitDebugInfoForGlobal(CVGV); 3196*0b57cec5SDimitry Andric endCVSubsection(EndLabel); 3197*0b57cec5SDimitry Andric } 3198*0b57cec5SDimitry Andric } 3199*0b57cec5SDimitry Andric 3200*0b57cec5SDimitry Andric void CodeViewDebug::emitDebugInfoForRetainedTypes() { 3201*0b57cec5SDimitry Andric NamedMDNode *CUs = MMI->getModule()->getNamedMetadata("llvm.dbg.cu"); 3202*0b57cec5SDimitry Andric for (const MDNode *Node : CUs->operands()) { 3203*0b57cec5SDimitry Andric for (auto *Ty : cast<DICompileUnit>(Node)->getRetainedTypes()) { 3204*0b57cec5SDimitry Andric if (DIType *RT = dyn_cast<DIType>(Ty)) { 3205*0b57cec5SDimitry Andric getTypeIndex(RT); 3206*0b57cec5SDimitry Andric // FIXME: Add to global/local DTU list. 3207*0b57cec5SDimitry Andric } 3208*0b57cec5SDimitry Andric } 3209*0b57cec5SDimitry Andric } 3210*0b57cec5SDimitry Andric } 3211*0b57cec5SDimitry Andric 3212*0b57cec5SDimitry Andric // Emit each global variable in the specified array. 3213*0b57cec5SDimitry Andric void CodeViewDebug::emitGlobalVariableList(ArrayRef<CVGlobalVariable> Globals) { 3214*0b57cec5SDimitry Andric for (const CVGlobalVariable &CVGV : Globals) { 3215*0b57cec5SDimitry Andric // FIXME: emitDebugInfoForGlobal() doesn't handle DIExpressions. 3216*0b57cec5SDimitry Andric emitDebugInfoForGlobal(CVGV); 3217*0b57cec5SDimitry Andric } 3218*0b57cec5SDimitry Andric } 3219*0b57cec5SDimitry Andric 3220fe6060f1SDimitry Andric void CodeViewDebug::emitConstantSymbolRecord(const DIType *DTy, APSInt &Value, 3221fe6060f1SDimitry Andric const std::string &QualifiedName) { 3222fe6060f1SDimitry Andric MCSymbol *SConstantEnd = beginSymbolRecord(SymbolKind::S_CONSTANT); 3223fe6060f1SDimitry Andric OS.AddComment("Type"); 3224fe6060f1SDimitry Andric OS.emitInt32(getTypeIndex(DTy).getIndex()); 3225fe6060f1SDimitry Andric 3226fe6060f1SDimitry Andric OS.AddComment("Value"); 3227fe6060f1SDimitry Andric 3228fe6060f1SDimitry Andric // Encoded integers shouldn't need more than 10 bytes. 3229fe6060f1SDimitry Andric uint8_t Data[10]; 3230fe6060f1SDimitry Andric BinaryStreamWriter Writer(Data, llvm::support::endianness::little); 3231fe6060f1SDimitry Andric CodeViewRecordIO IO(Writer); 3232fe6060f1SDimitry Andric cantFail(IO.mapEncodedInteger(Value)); 3233fe6060f1SDimitry Andric StringRef SRef((char *)Data, Writer.getOffset()); 3234fe6060f1SDimitry Andric OS.emitBinaryData(SRef); 3235fe6060f1SDimitry Andric 3236fe6060f1SDimitry Andric OS.AddComment("Name"); 3237fe6060f1SDimitry Andric emitNullTerminatedSymbolName(OS, QualifiedName); 3238fe6060f1SDimitry Andric endSymbolRecord(SConstantEnd); 3239fe6060f1SDimitry Andric } 3240fe6060f1SDimitry Andric 3241e8d8bef9SDimitry Andric void CodeViewDebug::emitStaticConstMemberList() { 3242e8d8bef9SDimitry Andric for (const DIDerivedType *DTy : StaticConstMembers) { 3243e8d8bef9SDimitry Andric const DIScope *Scope = DTy->getScope(); 3244e8d8bef9SDimitry Andric 3245e8d8bef9SDimitry Andric APSInt Value; 3246e8d8bef9SDimitry Andric if (const ConstantInt *CI = 3247e8d8bef9SDimitry Andric dyn_cast_or_null<ConstantInt>(DTy->getConstant())) 3248e8d8bef9SDimitry Andric Value = APSInt(CI->getValue(), 3249e8d8bef9SDimitry Andric DebugHandlerBase::isUnsignedDIType(DTy->getBaseType())); 3250e8d8bef9SDimitry Andric else if (const ConstantFP *CFP = 3251e8d8bef9SDimitry Andric dyn_cast_or_null<ConstantFP>(DTy->getConstant())) 3252e8d8bef9SDimitry Andric Value = APSInt(CFP->getValueAPF().bitcastToAPInt(), true); 3253e8d8bef9SDimitry Andric else 3254e8d8bef9SDimitry Andric llvm_unreachable("cannot emit a constant without a value"); 3255e8d8bef9SDimitry Andric 3256fe6060f1SDimitry Andric emitConstantSymbolRecord(DTy->getBaseType(), Value, 3257fe6060f1SDimitry Andric getFullyQualifiedName(Scope, DTy->getName())); 3258e8d8bef9SDimitry Andric } 3259e8d8bef9SDimitry Andric } 3260e8d8bef9SDimitry Andric 3261e8d8bef9SDimitry Andric static bool isFloatDIType(const DIType *Ty) { 3262e8d8bef9SDimitry Andric if (isa<DICompositeType>(Ty)) 3263e8d8bef9SDimitry Andric return false; 3264e8d8bef9SDimitry Andric 3265e8d8bef9SDimitry Andric if (auto *DTy = dyn_cast<DIDerivedType>(Ty)) { 3266e8d8bef9SDimitry Andric dwarf::Tag T = (dwarf::Tag)Ty->getTag(); 3267e8d8bef9SDimitry Andric if (T == dwarf::DW_TAG_pointer_type || 3268e8d8bef9SDimitry Andric T == dwarf::DW_TAG_ptr_to_member_type || 3269e8d8bef9SDimitry Andric T == dwarf::DW_TAG_reference_type || 3270e8d8bef9SDimitry Andric T == dwarf::DW_TAG_rvalue_reference_type) 3271e8d8bef9SDimitry Andric return false; 3272e8d8bef9SDimitry Andric assert(DTy->getBaseType() && "Expected valid base type"); 3273e8d8bef9SDimitry Andric return isFloatDIType(DTy->getBaseType()); 3274e8d8bef9SDimitry Andric } 3275e8d8bef9SDimitry Andric 3276e8d8bef9SDimitry Andric auto *BTy = cast<DIBasicType>(Ty); 3277e8d8bef9SDimitry Andric return (BTy->getEncoding() == dwarf::DW_ATE_float); 3278e8d8bef9SDimitry Andric } 3279e8d8bef9SDimitry Andric 3280*0b57cec5SDimitry Andric void CodeViewDebug::emitDebugInfoForGlobal(const CVGlobalVariable &CVGV) { 3281*0b57cec5SDimitry Andric const DIGlobalVariable *DIGV = CVGV.DIGV; 32825ffd83dbSDimitry Andric 32835ffd83dbSDimitry Andric const DIScope *Scope = DIGV->getScope(); 32845ffd83dbSDimitry Andric // For static data members, get the scope from the declaration. 32855ffd83dbSDimitry Andric if (const auto *MemberDecl = dyn_cast_or_null<DIDerivedType>( 32865ffd83dbSDimitry Andric DIGV->getRawStaticDataMemberDeclaration())) 32875ffd83dbSDimitry Andric Scope = MemberDecl->getScope(); 3288349cc55cSDimitry Andric // For Fortran, the scoping portion is elided in its name so that we can 3289349cc55cSDimitry Andric // reference the variable in the command line of the VS debugger. 3290349cc55cSDimitry Andric std::string QualifiedName = 3291349cc55cSDimitry Andric (moduleIsInFortran()) ? std::string(DIGV->getName()) 3292349cc55cSDimitry Andric : getFullyQualifiedName(Scope, DIGV->getName()); 32935ffd83dbSDimitry Andric 3294*0b57cec5SDimitry Andric if (const GlobalVariable *GV = 3295*0b57cec5SDimitry Andric CVGV.GVInfo.dyn_cast<const GlobalVariable *>()) { 3296*0b57cec5SDimitry Andric // DataSym record, see SymbolRecord.h for more info. Thread local data 3297*0b57cec5SDimitry Andric // happens to have the same format as global data. 3298*0b57cec5SDimitry Andric MCSymbol *GVSym = Asm->getSymbol(GV); 3299*0b57cec5SDimitry Andric SymbolKind DataSym = GV->isThreadLocal() 3300*0b57cec5SDimitry Andric ? (DIGV->isLocalToUnit() ? SymbolKind::S_LTHREAD32 3301*0b57cec5SDimitry Andric : SymbolKind::S_GTHREAD32) 3302*0b57cec5SDimitry Andric : (DIGV->isLocalToUnit() ? SymbolKind::S_LDATA32 3303*0b57cec5SDimitry Andric : SymbolKind::S_GDATA32); 3304*0b57cec5SDimitry Andric MCSymbol *DataEnd = beginSymbolRecord(DataSym); 3305*0b57cec5SDimitry Andric OS.AddComment("Type"); 33065ffd83dbSDimitry Andric OS.emitInt32(getCompleteTypeIndex(DIGV->getType()).getIndex()); 3307*0b57cec5SDimitry Andric OS.AddComment("DataOffset"); 3308349cc55cSDimitry Andric 3309349cc55cSDimitry Andric uint64_t Offset = 0; 3310349cc55cSDimitry Andric if (CVGlobalVariableOffsets.find(DIGV) != CVGlobalVariableOffsets.end()) 3311349cc55cSDimitry Andric // Use the offset seen while collecting info on globals. 3312349cc55cSDimitry Andric Offset = CVGlobalVariableOffsets[DIGV]; 3313349cc55cSDimitry Andric OS.EmitCOFFSecRel32(GVSym, Offset); 3314349cc55cSDimitry Andric 3315*0b57cec5SDimitry Andric OS.AddComment("Segment"); 3316*0b57cec5SDimitry Andric OS.EmitCOFFSectionIndex(GVSym); 3317*0b57cec5SDimitry Andric OS.AddComment("Name"); 3318*0b57cec5SDimitry Andric const unsigned LengthOfDataRecord = 12; 33195ffd83dbSDimitry Andric emitNullTerminatedSymbolName(OS, QualifiedName, LengthOfDataRecord); 3320*0b57cec5SDimitry Andric endSymbolRecord(DataEnd); 3321*0b57cec5SDimitry Andric } else { 3322*0b57cec5SDimitry Andric const DIExpression *DIE = CVGV.GVInfo.get<const DIExpression *>(); 3323*0b57cec5SDimitry Andric assert(DIE->isConstant() && 3324*0b57cec5SDimitry Andric "Global constant variables must contain a constant expression."); 3325e8d8bef9SDimitry Andric 3326e8d8bef9SDimitry Andric // Use unsigned for floats. 3327e8d8bef9SDimitry Andric bool isUnsigned = isFloatDIType(DIGV->getType()) 3328e8d8bef9SDimitry Andric ? true 3329e8d8bef9SDimitry Andric : DebugHandlerBase::isUnsignedDIType(DIGV->getType()); 3330e8d8bef9SDimitry Andric APSInt Value(APInt(/*BitWidth=*/64, DIE->getElement(1)), isUnsigned); 3331fe6060f1SDimitry Andric emitConstantSymbolRecord(DIGV->getType(), Value, QualifiedName); 3332*0b57cec5SDimitry Andric } 3333*0b57cec5SDimitry Andric } 3334