1 //===-- llvm/CodeGen/DwarfDebug.cpp - Dwarf Debug Framework ---------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file contains support for writing dwarf debug info into asm files. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "DwarfDebug.h" 15 16 #include "ByteStreamer.h" 17 #include "DwarfCompileUnit.h" 18 #include "DIE.h" 19 #include "DIEHash.h" 20 #include "DwarfUnit.h" 21 #include "llvm/ADT/STLExtras.h" 22 #include "llvm/ADT/Statistic.h" 23 #include "llvm/ADT/StringExtras.h" 24 #include "llvm/ADT/Triple.h" 25 #include "llvm/CodeGen/MachineFunction.h" 26 #include "llvm/CodeGen/MachineModuleInfo.h" 27 #include "llvm/IR/Constants.h" 28 #include "llvm/IR/DIBuilder.h" 29 #include "llvm/IR/DataLayout.h" 30 #include "llvm/IR/DebugInfo.h" 31 #include "llvm/IR/Instructions.h" 32 #include "llvm/IR/Module.h" 33 #include "llvm/IR/ValueHandle.h" 34 #include "llvm/MC/MCAsmInfo.h" 35 #include "llvm/MC/MCSection.h" 36 #include "llvm/MC/MCStreamer.h" 37 #include "llvm/MC/MCSymbol.h" 38 #include "llvm/Support/CommandLine.h" 39 #include "llvm/Support/Debug.h" 40 #include "llvm/Support/Dwarf.h" 41 #include "llvm/Support/Endian.h" 42 #include "llvm/Support/ErrorHandling.h" 43 #include "llvm/Support/FormattedStream.h" 44 #include "llvm/Support/LEB128.h" 45 #include "llvm/Support/MD5.h" 46 #include "llvm/Support/Path.h" 47 #include "llvm/Support/Timer.h" 48 #include "llvm/Target/TargetFrameLowering.h" 49 #include "llvm/Target/TargetLoweringObjectFile.h" 50 #include "llvm/Target/TargetMachine.h" 51 #include "llvm/Target/TargetOptions.h" 52 #include "llvm/Target/TargetRegisterInfo.h" 53 #include "llvm/Target/TargetSubtargetInfo.h" 54 using namespace llvm; 55 56 #define DEBUG_TYPE "dwarfdebug" 57 58 static cl::opt<bool> 59 DisableDebugInfoPrinting("disable-debug-info-print", cl::Hidden, 60 cl::desc("Disable debug info printing")); 61 62 static cl::opt<bool> UnknownLocations( 63 "use-unknown-locations", cl::Hidden, 64 cl::desc("Make an absence of debug location information explicit."), 65 cl::init(false)); 66 67 static cl::opt<bool> 68 GenerateGnuPubSections("generate-gnu-dwarf-pub-sections", cl::Hidden, 69 cl::desc("Generate GNU-style pubnames and pubtypes"), 70 cl::init(false)); 71 72 static cl::opt<bool> GenerateARangeSection("generate-arange-section", 73 cl::Hidden, 74 cl::desc("Generate dwarf aranges"), 75 cl::init(false)); 76 77 namespace { 78 enum DefaultOnOff { Default, Enable, Disable }; 79 } 80 81 static cl::opt<DefaultOnOff> 82 DwarfAccelTables("dwarf-accel-tables", cl::Hidden, 83 cl::desc("Output prototype dwarf accelerator tables."), 84 cl::values(clEnumVal(Default, "Default for platform"), 85 clEnumVal(Enable, "Enabled"), 86 clEnumVal(Disable, "Disabled"), clEnumValEnd), 87 cl::init(Default)); 88 89 static cl::opt<DefaultOnOff> 90 SplitDwarf("split-dwarf", cl::Hidden, 91 cl::desc("Output DWARF5 split debug info."), 92 cl::values(clEnumVal(Default, "Default for platform"), 93 clEnumVal(Enable, "Enabled"), 94 clEnumVal(Disable, "Disabled"), clEnumValEnd), 95 cl::init(Default)); 96 97 static cl::opt<DefaultOnOff> 98 DwarfPubSections("generate-dwarf-pub-sections", cl::Hidden, 99 cl::desc("Generate DWARF pubnames and pubtypes sections"), 100 cl::values(clEnumVal(Default, "Default for platform"), 101 clEnumVal(Enable, "Enabled"), 102 clEnumVal(Disable, "Disabled"), clEnumValEnd), 103 cl::init(Default)); 104 105 static const char *const DWARFGroupName = "DWARF Emission"; 106 static const char *const DbgTimerName = "DWARF Debug Writer"; 107 108 //===----------------------------------------------------------------------===// 109 110 /// resolve - Look in the DwarfDebug map for the MDNode that 111 /// corresponds to the reference. 112 template <typename T> T DbgVariable::resolve(DIRef<T> Ref) const { 113 return DD->resolve(Ref); 114 } 115 116 bool DbgVariable::isBlockByrefVariable() const { 117 assert(Var.isVariable() && "Invalid complex DbgVariable!"); 118 return Var.isBlockByrefVariable(DD->getTypeIdentifierMap()); 119 } 120 121 DIType DbgVariable::getType() const { 122 DIType Ty = Var.getType().resolve(DD->getTypeIdentifierMap()); 123 // FIXME: isBlockByrefVariable should be reformulated in terms of complex 124 // addresses instead. 125 if (Var.isBlockByrefVariable(DD->getTypeIdentifierMap())) { 126 /* Byref variables, in Blocks, are declared by the programmer as 127 "SomeType VarName;", but the compiler creates a 128 __Block_byref_x_VarName struct, and gives the variable VarName 129 either the struct, or a pointer to the struct, as its type. This 130 is necessary for various behind-the-scenes things the compiler 131 needs to do with by-reference variables in blocks. 132 133 However, as far as the original *programmer* is concerned, the 134 variable should still have type 'SomeType', as originally declared. 135 136 The following function dives into the __Block_byref_x_VarName 137 struct to find the original type of the variable. This will be 138 passed back to the code generating the type for the Debug 139 Information Entry for the variable 'VarName'. 'VarName' will then 140 have the original type 'SomeType' in its debug information. 141 142 The original type 'SomeType' will be the type of the field named 143 'VarName' inside the __Block_byref_x_VarName struct. 144 145 NOTE: In order for this to not completely fail on the debugger 146 side, the Debug Information Entry for the variable VarName needs to 147 have a DW_AT_location that tells the debugger how to unwind through 148 the pointers and __Block_byref_x_VarName struct to find the actual 149 value of the variable. The function addBlockByrefType does this. */ 150 DIType subType = Ty; 151 uint16_t tag = Ty.getTag(); 152 153 if (tag == dwarf::DW_TAG_pointer_type) 154 subType = resolve(DIDerivedType(Ty).getTypeDerivedFrom()); 155 156 DIArray Elements = DICompositeType(subType).getElements(); 157 for (unsigned i = 0, N = Elements.getNumElements(); i < N; ++i) { 158 DIDerivedType DT(Elements.getElement(i)); 159 if (getName() == DT.getName()) 160 return (resolve(DT.getTypeDerivedFrom())); 161 } 162 } 163 return Ty; 164 } 165 166 static LLVM_CONSTEXPR DwarfAccelTable::Atom TypeAtoms[] = { 167 DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, dwarf::DW_FORM_data4), 168 DwarfAccelTable::Atom(dwarf::DW_ATOM_die_tag, dwarf::DW_FORM_data2), 169 DwarfAccelTable::Atom(dwarf::DW_ATOM_type_flags, dwarf::DW_FORM_data1)}; 170 171 DwarfDebug::DwarfDebug(AsmPrinter *A, Module *M) 172 : Asm(A), MMI(Asm->MMI), PrevLabel(nullptr), GlobalRangeCount(0), 173 InfoHolder(A, *this, "info_string", DIEValueAllocator), 174 UsedNonDefaultText(false), 175 SkeletonHolder(A, *this, "skel_string", DIEValueAllocator), 176 IsDarwin(Triple(A->getTargetTriple()).isOSDarwin()), 177 AccelNames(DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, 178 dwarf::DW_FORM_data4)), 179 AccelObjC(DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, 180 dwarf::DW_FORM_data4)), 181 AccelNamespace(DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, 182 dwarf::DW_FORM_data4)), 183 AccelTypes(TypeAtoms) { 184 185 DwarfInfoSectionSym = DwarfAbbrevSectionSym = DwarfStrSectionSym = nullptr; 186 DwarfDebugRangeSectionSym = DwarfDebugLocSectionSym = nullptr; 187 DwarfLineSectionSym = nullptr; 188 DwarfAddrSectionSym = nullptr; 189 DwarfAbbrevDWOSectionSym = DwarfStrDWOSectionSym = nullptr; 190 FunctionBeginSym = FunctionEndSym = nullptr; 191 CurFn = nullptr; 192 CurMI = nullptr; 193 194 // Turn on accelerator tables for Darwin by default, pubnames by 195 // default for non-Darwin, and handle split dwarf. 196 if (DwarfAccelTables == Default) 197 HasDwarfAccelTables = IsDarwin; 198 else 199 HasDwarfAccelTables = DwarfAccelTables == Enable; 200 201 if (SplitDwarf == Default) 202 HasSplitDwarf = false; 203 else 204 HasSplitDwarf = SplitDwarf == Enable; 205 206 if (DwarfPubSections == Default) 207 HasDwarfPubSections = !IsDarwin; 208 else 209 HasDwarfPubSections = DwarfPubSections == Enable; 210 211 unsigned DwarfVersionNumber = Asm->TM.Options.MCOptions.DwarfVersion; 212 DwarfVersion = DwarfVersionNumber ? DwarfVersionNumber 213 : MMI->getModule()->getDwarfVersion(); 214 215 Asm->OutStreamer.getContext().setDwarfVersion(DwarfVersion); 216 217 { 218 NamedRegionTimer T(DbgTimerName, DWARFGroupName, TimePassesIsEnabled); 219 beginModule(); 220 } 221 } 222 223 // Define out of line so we don't have to include DwarfUnit.h in DwarfDebug.h. 224 DwarfDebug::~DwarfDebug() { } 225 226 // Switch to the specified MCSection and emit an assembler 227 // temporary label to it if SymbolStem is specified. 228 static MCSymbol *emitSectionSym(AsmPrinter *Asm, const MCSection *Section, 229 const char *SymbolStem = nullptr) { 230 Asm->OutStreamer.SwitchSection(Section); 231 if (!SymbolStem) 232 return nullptr; 233 234 MCSymbol *TmpSym = Asm->GetTempSymbol(SymbolStem); 235 Asm->OutStreamer.EmitLabel(TmpSym); 236 return TmpSym; 237 } 238 239 static bool isObjCClass(StringRef Name) { 240 return Name.startswith("+") || Name.startswith("-"); 241 } 242 243 static bool hasObjCCategory(StringRef Name) { 244 if (!isObjCClass(Name)) 245 return false; 246 247 return Name.find(") ") != StringRef::npos; 248 } 249 250 static void getObjCClassCategory(StringRef In, StringRef &Class, 251 StringRef &Category) { 252 if (!hasObjCCategory(In)) { 253 Class = In.slice(In.find('[') + 1, In.find(' ')); 254 Category = ""; 255 return; 256 } 257 258 Class = In.slice(In.find('[') + 1, In.find('(')); 259 Category = In.slice(In.find('[') + 1, In.find(' ')); 260 return; 261 } 262 263 static StringRef getObjCMethodName(StringRef In) { 264 return In.slice(In.find(' ') + 1, In.find(']')); 265 } 266 267 // Helper for sorting sections into a stable output order. 268 static bool SectionSort(const MCSection *A, const MCSection *B) { 269 std::string LA = (A ? A->getLabelBeginName() : ""); 270 std::string LB = (B ? B->getLabelBeginName() : ""); 271 return LA < LB; 272 } 273 274 // Add the various names to the Dwarf accelerator table names. 275 // TODO: Determine whether or not we should add names for programs 276 // that do not have a DW_AT_name or DW_AT_linkage_name field - this 277 // is only slightly different than the lookup of non-standard ObjC names. 278 void DwarfDebug::addSubprogramNames(DISubprogram SP, DIE &Die) { 279 if (!SP.isDefinition()) 280 return; 281 addAccelName(SP.getName(), Die); 282 283 // If the linkage name is different than the name, go ahead and output 284 // that as well into the name table. 285 if (SP.getLinkageName() != "" && SP.getName() != SP.getLinkageName()) 286 addAccelName(SP.getLinkageName(), Die); 287 288 // If this is an Objective-C selector name add it to the ObjC accelerator 289 // too. 290 if (isObjCClass(SP.getName())) { 291 StringRef Class, Category; 292 getObjCClassCategory(SP.getName(), Class, Category); 293 addAccelObjC(Class, Die); 294 if (Category != "") 295 addAccelObjC(Category, Die); 296 // Also add the base method name to the name table. 297 addAccelName(getObjCMethodName(SP.getName()), Die); 298 } 299 } 300 301 /// isSubprogramContext - Return true if Context is either a subprogram 302 /// or another context nested inside a subprogram. 303 bool DwarfDebug::isSubprogramContext(const MDNode *Context) { 304 if (!Context) 305 return false; 306 DIDescriptor D(Context); 307 if (D.isSubprogram()) 308 return true; 309 if (D.isType()) 310 return isSubprogramContext(resolve(DIType(Context).getContext())); 311 return false; 312 } 313 314 /// Check whether we should create a DIE for the given Scope, return true 315 /// if we don't create a DIE (the corresponding DIE is null). 316 bool DwarfDebug::isLexicalScopeDIENull(LexicalScope *Scope) { 317 if (Scope->isAbstractScope()) 318 return false; 319 320 // We don't create a DIE if there is no Range. 321 const SmallVectorImpl<InsnRange> &Ranges = Scope->getRanges(); 322 if (Ranges.empty()) 323 return true; 324 325 if (Ranges.size() > 1) 326 return false; 327 328 // We don't create a DIE if we have a single Range and the end label 329 // is null. 330 return !getLabelAfterInsn(Ranges.front().second); 331 } 332 333 template <typename Func> void forBothCUs(DwarfCompileUnit &CU, Func F) { 334 F(CU); 335 if (auto *SkelCU = CU.getSkeleton()) 336 F(*SkelCU); 337 } 338 339 void DwarfDebug::constructAbstractSubprogramScopeDIE(LexicalScope *Scope) { 340 assert(Scope && Scope->getScopeNode()); 341 assert(Scope->isAbstractScope()); 342 assert(!Scope->getInlinedAt()); 343 344 const MDNode *SP = Scope->getScopeNode(); 345 346 ProcessedSPNodes.insert(SP); 347 348 // Find the subprogram's DwarfCompileUnit in the SPMap in case the subprogram 349 // was inlined from another compile unit. 350 auto &CU = SPMap[SP]; 351 forBothCUs(*CU, [&](DwarfCompileUnit &CU) { 352 CU.constructAbstractSubprogramScopeDIE(Scope); 353 }); 354 } 355 356 void DwarfDebug::addGnuPubAttributes(DwarfUnit &U, DIE &D) const { 357 if (!GenerateGnuPubSections) 358 return; 359 360 U.addFlag(D, dwarf::DW_AT_GNU_pubnames); 361 } 362 363 // Create new DwarfCompileUnit for the given metadata node with tag 364 // DW_TAG_compile_unit. 365 DwarfCompileUnit &DwarfDebug::constructDwarfCompileUnit(DICompileUnit DIUnit) { 366 StringRef FN = DIUnit.getFilename(); 367 CompilationDir = DIUnit.getDirectory(); 368 369 auto OwnedUnit = make_unique<DwarfCompileUnit>( 370 InfoHolder.getUnits().size(), DIUnit, Asm, this, &InfoHolder); 371 DwarfCompileUnit &NewCU = *OwnedUnit; 372 DIE &Die = NewCU.getUnitDie(); 373 InfoHolder.addUnit(std::move(OwnedUnit)); 374 if (useSplitDwarf()) 375 NewCU.setSkeleton(constructSkeletonCU(NewCU)); 376 377 // LTO with assembly output shares a single line table amongst multiple CUs. 378 // To avoid the compilation directory being ambiguous, let the line table 379 // explicitly describe the directory of all files, never relying on the 380 // compilation directory. 381 if (!Asm->OutStreamer.hasRawTextSupport() || SingleCU) 382 Asm->OutStreamer.getContext().setMCLineTableCompilationDir( 383 NewCU.getUniqueID(), CompilationDir); 384 385 NewCU.addString(Die, dwarf::DW_AT_producer, DIUnit.getProducer()); 386 NewCU.addUInt(Die, dwarf::DW_AT_language, dwarf::DW_FORM_data2, 387 DIUnit.getLanguage()); 388 NewCU.addString(Die, dwarf::DW_AT_name, FN); 389 390 if (!useSplitDwarf()) { 391 NewCU.initStmtList(DwarfLineSectionSym); 392 393 // If we're using split dwarf the compilation dir is going to be in the 394 // skeleton CU and so we don't need to duplicate it here. 395 if (!CompilationDir.empty()) 396 NewCU.addString(Die, dwarf::DW_AT_comp_dir, CompilationDir); 397 398 addGnuPubAttributes(NewCU, Die); 399 } 400 401 if (DIUnit.isOptimized()) 402 NewCU.addFlag(Die, dwarf::DW_AT_APPLE_optimized); 403 404 StringRef Flags = DIUnit.getFlags(); 405 if (!Flags.empty()) 406 NewCU.addString(Die, dwarf::DW_AT_APPLE_flags, Flags); 407 408 if (unsigned RVer = DIUnit.getRunTimeVersion()) 409 NewCU.addUInt(Die, dwarf::DW_AT_APPLE_major_runtime_vers, 410 dwarf::DW_FORM_data1, RVer); 411 412 if (useSplitDwarf()) 413 NewCU.initSection(Asm->getObjFileLowering().getDwarfInfoDWOSection(), 414 DwarfInfoDWOSectionSym); 415 else 416 NewCU.initSection(Asm->getObjFileLowering().getDwarfInfoSection(), 417 DwarfInfoSectionSym); 418 419 CUMap.insert(std::make_pair(DIUnit, &NewCU)); 420 CUDieMap.insert(std::make_pair(&Die, &NewCU)); 421 return NewCU; 422 } 423 424 void DwarfDebug::constructAndAddImportedEntityDIE(DwarfCompileUnit &TheCU, 425 const MDNode *N) { 426 DIImportedEntity Module(N); 427 assert(Module.Verify()); 428 if (DIE *D = TheCU.getOrCreateContextDIE(Module.getContext())) 429 D->addChild(TheCU.constructImportedEntityDIE(Module)); 430 } 431 432 // Emit all Dwarf sections that should come prior to the content. Create 433 // global DIEs and emit initial debug info sections. This is invoked by 434 // the target AsmPrinter. 435 void DwarfDebug::beginModule() { 436 if (DisableDebugInfoPrinting) 437 return; 438 439 const Module *M = MMI->getModule(); 440 441 FunctionDIs = makeSubprogramMap(*M); 442 443 NamedMDNode *CU_Nodes = M->getNamedMetadata("llvm.dbg.cu"); 444 if (!CU_Nodes) 445 return; 446 TypeIdentifierMap = generateDITypeIdentifierMap(CU_Nodes); 447 448 // Emit initial sections so we can reference labels later. 449 emitSectionLabels(); 450 451 SingleCU = CU_Nodes->getNumOperands() == 1; 452 453 for (MDNode *N : CU_Nodes->operands()) { 454 DICompileUnit CUNode(N); 455 DwarfCompileUnit &CU = constructDwarfCompileUnit(CUNode); 456 DIArray ImportedEntities = CUNode.getImportedEntities(); 457 for (unsigned i = 0, e = ImportedEntities.getNumElements(); i != e; ++i) 458 ScopesWithImportedEntities.push_back(std::make_pair( 459 DIImportedEntity(ImportedEntities.getElement(i)).getContext(), 460 ImportedEntities.getElement(i))); 461 std::sort(ScopesWithImportedEntities.begin(), 462 ScopesWithImportedEntities.end(), less_first()); 463 DIArray GVs = CUNode.getGlobalVariables(); 464 for (unsigned i = 0, e = GVs.getNumElements(); i != e; ++i) 465 CU.getOrCreateGlobalVariableDIE(DIGlobalVariable(GVs.getElement(i))); 466 DIArray SPs = CUNode.getSubprograms(); 467 for (unsigned i = 0, e = SPs.getNumElements(); i != e; ++i) 468 SPMap.insert(std::make_pair(SPs.getElement(i), &CU)); 469 DIArray EnumTypes = CUNode.getEnumTypes(); 470 for (unsigned i = 0, e = EnumTypes.getNumElements(); i != e; ++i) { 471 DIType Ty(EnumTypes.getElement(i)); 472 // The enum types array by design contains pointers to 473 // MDNodes rather than DIRefs. Unique them here. 474 DIType UniqueTy(resolve(Ty.getRef())); 475 CU.getOrCreateTypeDIE(UniqueTy); 476 } 477 DIArray RetainedTypes = CUNode.getRetainedTypes(); 478 for (unsigned i = 0, e = RetainedTypes.getNumElements(); i != e; ++i) { 479 DIType Ty(RetainedTypes.getElement(i)); 480 // The retained types array by design contains pointers to 481 // MDNodes rather than DIRefs. Unique them here. 482 DIType UniqueTy(resolve(Ty.getRef())); 483 CU.getOrCreateTypeDIE(UniqueTy); 484 } 485 // Emit imported_modules last so that the relevant context is already 486 // available. 487 for (unsigned i = 0, e = ImportedEntities.getNumElements(); i != e; ++i) 488 constructAndAddImportedEntityDIE(CU, ImportedEntities.getElement(i)); 489 } 490 491 // Tell MMI that we have debug info. 492 MMI->setDebugInfoAvailability(true); 493 494 // Prime section data. 495 SectionMap[Asm->getObjFileLowering().getTextSection()]; 496 } 497 498 void DwarfDebug::finishVariableDefinitions() { 499 for (const auto &Var : ConcreteVariables) { 500 DIE *VariableDie = Var->getDIE(); 501 assert(VariableDie); 502 // FIXME: Consider the time-space tradeoff of just storing the unit pointer 503 // in the ConcreteVariables list, rather than looking it up again here. 504 // DIE::getUnit isn't simple - it walks parent pointers, etc. 505 DwarfCompileUnit *Unit = lookupUnit(VariableDie->getUnit()); 506 assert(Unit); 507 DbgVariable *AbsVar = getExistingAbstractVariable(Var->getVariable()); 508 if (AbsVar && AbsVar->getDIE()) { 509 Unit->addDIEEntry(*VariableDie, dwarf::DW_AT_abstract_origin, 510 *AbsVar->getDIE()); 511 } else 512 Unit->applyVariableAttributes(*Var, *VariableDie); 513 } 514 } 515 516 void DwarfDebug::finishSubprogramDefinitions() { 517 for (const auto &P : SPMap) 518 forBothCUs(*P.second, [&](DwarfCompileUnit &CU) { 519 CU.finishSubprogramDefinition(DISubprogram(P.first)); 520 }); 521 } 522 523 524 // Collect info for variables that were optimized out. 525 void DwarfDebug::collectDeadVariables() { 526 const Module *M = MMI->getModule(); 527 528 if (NamedMDNode *CU_Nodes = M->getNamedMetadata("llvm.dbg.cu")) { 529 for (MDNode *N : CU_Nodes->operands()) { 530 DICompileUnit TheCU(N); 531 // Construct subprogram DIE and add variables DIEs. 532 DwarfCompileUnit *SPCU = 533 static_cast<DwarfCompileUnit *>(CUMap.lookup(TheCU)); 534 assert(SPCU && "Unable to find Compile Unit!"); 535 DIArray Subprograms = TheCU.getSubprograms(); 536 for (unsigned i = 0, e = Subprograms.getNumElements(); i != e; ++i) { 537 DISubprogram SP(Subprograms.getElement(i)); 538 if (ProcessedSPNodes.count(SP) != 0) 539 continue; 540 SPCU->collectDeadVariables(SP); 541 } 542 } 543 } 544 } 545 546 void DwarfDebug::finalizeModuleInfo() { 547 finishSubprogramDefinitions(); 548 549 finishVariableDefinitions(); 550 551 // Collect info for variables that were optimized out. 552 collectDeadVariables(); 553 554 // Handle anything that needs to be done on a per-unit basis after 555 // all other generation. 556 for (const auto &P : CUMap) { 557 auto &TheCU = *P.second; 558 // Emit DW_AT_containing_type attribute to connect types with their 559 // vtable holding type. 560 TheCU.constructContainingTypeDIEs(); 561 562 // Add CU specific attributes if we need to add any. 563 // If we're splitting the dwarf out now that we've got the entire 564 // CU then add the dwo id to it. 565 auto *SkCU = TheCU.getSkeleton(); 566 if (useSplitDwarf()) { 567 // Emit a unique identifier for this CU. 568 uint64_t ID = DIEHash(Asm).computeCUSignature(TheCU.getUnitDie()); 569 TheCU.addUInt(TheCU.getUnitDie(), dwarf::DW_AT_GNU_dwo_id, 570 dwarf::DW_FORM_data8, ID); 571 SkCU->addUInt(SkCU->getUnitDie(), dwarf::DW_AT_GNU_dwo_id, 572 dwarf::DW_FORM_data8, ID); 573 574 // We don't keep track of which addresses are used in which CU so this 575 // is a bit pessimistic under LTO. 576 if (!AddrPool.isEmpty()) 577 SkCU->addSectionLabel(SkCU->getUnitDie(), dwarf::DW_AT_GNU_addr_base, 578 DwarfAddrSectionSym, DwarfAddrSectionSym); 579 if (!SkCU->getRangeLists().empty()) 580 SkCU->addSectionLabel(SkCU->getUnitDie(), dwarf::DW_AT_GNU_ranges_base, 581 DwarfDebugRangeSectionSym, 582 DwarfDebugRangeSectionSym); 583 } 584 585 // If we have code split among multiple sections or non-contiguous 586 // ranges of code then emit a DW_AT_ranges attribute on the unit that will 587 // remain in the .o file, otherwise add a DW_AT_low_pc. 588 // FIXME: We should use ranges allow reordering of code ala 589 // .subsections_via_symbols in mach-o. This would mean turning on 590 // ranges for all subprogram DIEs for mach-o. 591 DwarfCompileUnit &U = SkCU ? *SkCU : TheCU; 592 if (unsigned NumRanges = TheCU.getRanges().size()) { 593 if (NumRanges > 1) 594 // A DW_AT_low_pc attribute may also be specified in combination with 595 // DW_AT_ranges to specify the default base address for use in 596 // location lists (see Section 2.6.2) and range lists (see Section 597 // 2.17.3). 598 U.addUInt(U.getUnitDie(), dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, 0); 599 else 600 TheCU.setBaseAddress(TheCU.getRanges().front().getStart()); 601 U.attachRangesOrLowHighPC(U.getUnitDie(), TheCU.takeRanges()); 602 } 603 } 604 605 // Compute DIE offsets and sizes. 606 InfoHolder.computeSizeAndOffsets(); 607 if (useSplitDwarf()) 608 SkeletonHolder.computeSizeAndOffsets(); 609 } 610 611 void DwarfDebug::endSections() { 612 // Filter labels by section. 613 for (const SymbolCU &SCU : ArangeLabels) { 614 if (SCU.Sym->isInSection()) { 615 // Make a note of this symbol and it's section. 616 const MCSection *Section = &SCU.Sym->getSection(); 617 if (!Section->getKind().isMetadata()) 618 SectionMap[Section].push_back(SCU); 619 } else { 620 // Some symbols (e.g. common/bss on mach-o) can have no section but still 621 // appear in the output. This sucks as we rely on sections to build 622 // arange spans. We can do it without, but it's icky. 623 SectionMap[nullptr].push_back(SCU); 624 } 625 } 626 627 // Build a list of sections used. 628 std::vector<const MCSection *> Sections; 629 for (const auto &it : SectionMap) { 630 const MCSection *Section = it.first; 631 Sections.push_back(Section); 632 } 633 634 // Sort the sections into order. 635 // This is only done to ensure consistent output order across different runs. 636 std::sort(Sections.begin(), Sections.end(), SectionSort); 637 638 // Add terminating symbols for each section. 639 for (unsigned ID = 0, E = Sections.size(); ID != E; ID++) { 640 const MCSection *Section = Sections[ID]; 641 MCSymbol *Sym = nullptr; 642 643 if (Section) { 644 // We can't call MCSection::getLabelEndName, as it's only safe to do so 645 // if we know the section name up-front. For user-created sections, the 646 // resulting label may not be valid to use as a label. (section names can 647 // use a greater set of characters on some systems) 648 Sym = Asm->GetTempSymbol("debug_end", ID); 649 Asm->OutStreamer.SwitchSection(Section); 650 Asm->OutStreamer.EmitLabel(Sym); 651 } 652 653 // Insert a final terminator. 654 SectionMap[Section].push_back(SymbolCU(nullptr, Sym)); 655 } 656 } 657 658 // Emit all Dwarf sections that should come after the content. 659 void DwarfDebug::endModule() { 660 assert(CurFn == nullptr); 661 assert(CurMI == nullptr); 662 663 // If we aren't actually generating debug info (check beginModule - 664 // conditionalized on !DisableDebugInfoPrinting and the presence of the 665 // llvm.dbg.cu metadata node) 666 if (!DwarfInfoSectionSym) 667 return; 668 669 // End any existing sections. 670 // TODO: Does this need to happen? 671 endSections(); 672 673 // Finalize the debug info for the module. 674 finalizeModuleInfo(); 675 676 emitDebugStr(); 677 678 // Emit all the DIEs into a debug info section. 679 emitDebugInfo(); 680 681 // Corresponding abbreviations into a abbrev section. 682 emitAbbreviations(); 683 684 // Emit info into a debug aranges section. 685 if (GenerateARangeSection) 686 emitDebugARanges(); 687 688 // Emit info into a debug ranges section. 689 emitDebugRanges(); 690 691 if (useSplitDwarf()) { 692 emitDebugStrDWO(); 693 emitDebugInfoDWO(); 694 emitDebugAbbrevDWO(); 695 emitDebugLineDWO(); 696 emitDebugLocDWO(); 697 // Emit DWO addresses. 698 AddrPool.emit(*Asm, Asm->getObjFileLowering().getDwarfAddrSection()); 699 } else 700 // Emit info into a debug loc section. 701 emitDebugLoc(); 702 703 // Emit info into the dwarf accelerator table sections. 704 if (useDwarfAccelTables()) { 705 emitAccelNames(); 706 emitAccelObjC(); 707 emitAccelNamespaces(); 708 emitAccelTypes(); 709 } 710 711 // Emit the pubnames and pubtypes sections if requested. 712 if (HasDwarfPubSections) { 713 emitDebugPubNames(GenerateGnuPubSections); 714 emitDebugPubTypes(GenerateGnuPubSections); 715 } 716 717 // clean up. 718 SPMap.clear(); 719 AbstractVariables.clear(); 720 } 721 722 // Find abstract variable, if any, associated with Var. 723 DbgVariable *DwarfDebug::getExistingAbstractVariable(const DIVariable &DV, 724 DIVariable &Cleansed) { 725 LLVMContext &Ctx = DV->getContext(); 726 // More then one inlined variable corresponds to one abstract variable. 727 // FIXME: This duplication of variables when inlining should probably be 728 // removed. It's done to allow each DIVariable to describe its location 729 // because the DebugLoc on the dbg.value/declare isn't accurate. We should 730 // make it accurate then remove this duplication/cleansing stuff. 731 Cleansed = cleanseInlinedVariable(DV, Ctx); 732 auto I = AbstractVariables.find(Cleansed); 733 if (I != AbstractVariables.end()) 734 return I->second.get(); 735 return nullptr; 736 } 737 738 DbgVariable *DwarfDebug::getExistingAbstractVariable(const DIVariable &DV) { 739 DIVariable Cleansed; 740 return getExistingAbstractVariable(DV, Cleansed); 741 } 742 743 void DwarfDebug::createAbstractVariable(const DIVariable &Var, 744 LexicalScope *Scope) { 745 auto AbsDbgVariable = make_unique<DbgVariable>(Var, DIExpression(), this); 746 InfoHolder.addScopeVariable(Scope, AbsDbgVariable.get()); 747 AbstractVariables[Var] = std::move(AbsDbgVariable); 748 } 749 750 void DwarfDebug::ensureAbstractVariableIsCreated(const DIVariable &DV, 751 const MDNode *ScopeNode) { 752 DIVariable Cleansed = DV; 753 if (getExistingAbstractVariable(DV, Cleansed)) 754 return; 755 756 createAbstractVariable(Cleansed, LScopes.getOrCreateAbstractScope(ScopeNode)); 757 } 758 759 void 760 DwarfDebug::ensureAbstractVariableIsCreatedIfScoped(const DIVariable &DV, 761 const MDNode *ScopeNode) { 762 DIVariable Cleansed = DV; 763 if (getExistingAbstractVariable(DV, Cleansed)) 764 return; 765 766 if (LexicalScope *Scope = LScopes.findAbstractScope(ScopeNode)) 767 createAbstractVariable(Cleansed, Scope); 768 } 769 770 // Collect variable information from side table maintained by MMI. 771 void DwarfDebug::collectVariableInfoFromMMITable( 772 SmallPtrSetImpl<const MDNode *> &Processed) { 773 for (const auto &VI : MMI->getVariableDbgInfo()) { 774 if (!VI.Var) 775 continue; 776 Processed.insert(VI.Var); 777 LexicalScope *Scope = LScopes.findLexicalScope(VI.Loc); 778 779 // If variable scope is not found then skip this variable. 780 if (!Scope) 781 continue; 782 783 DIVariable DV(VI.Var); 784 DIExpression Expr(VI.Expr); 785 ensureAbstractVariableIsCreatedIfScoped(DV, Scope->getScopeNode()); 786 ConcreteVariables.push_back(make_unique<DbgVariable>(DV, Expr, this)); 787 DbgVariable *RegVar = ConcreteVariables.back().get(); 788 RegVar->setFrameIndex(VI.Slot); 789 InfoHolder.addScopeVariable(Scope, RegVar); 790 } 791 } 792 793 // Get .debug_loc entry for the instruction range starting at MI. 794 static DebugLocEntry::Value getDebugLocValue(const MachineInstr *MI) { 795 const MDNode *Expr = MI->getDebugExpression(); 796 const MDNode *Var = MI->getDebugVariable(); 797 798 assert(MI->getNumOperands() == 4); 799 if (MI->getOperand(0).isReg()) { 800 MachineLocation MLoc; 801 // If the second operand is an immediate, this is a 802 // register-indirect address. 803 if (!MI->getOperand(1).isImm()) 804 MLoc.set(MI->getOperand(0).getReg()); 805 else 806 MLoc.set(MI->getOperand(0).getReg(), MI->getOperand(1).getImm()); 807 return DebugLocEntry::Value(Var, Expr, MLoc); 808 } 809 if (MI->getOperand(0).isImm()) 810 return DebugLocEntry::Value(Var, Expr, MI->getOperand(0).getImm()); 811 if (MI->getOperand(0).isFPImm()) 812 return DebugLocEntry::Value(Var, Expr, MI->getOperand(0).getFPImm()); 813 if (MI->getOperand(0).isCImm()) 814 return DebugLocEntry::Value(Var, Expr, MI->getOperand(0).getCImm()); 815 816 llvm_unreachable("Unexpected 4-operand DBG_VALUE instruction!"); 817 } 818 819 /// Determine whether two variable pieces overlap. 820 static bool piecesOverlap(DIExpression P1, DIExpression P2) { 821 if (!P1.isVariablePiece() || !P2.isVariablePiece()) 822 return true; 823 unsigned l1 = P1.getPieceOffset(); 824 unsigned l2 = P2.getPieceOffset(); 825 unsigned r1 = l1 + P1.getPieceSize(); 826 unsigned r2 = l2 + P2.getPieceSize(); 827 // True where [l1,r1[ and [r1,r2[ overlap. 828 return (l1 < r2) && (l2 < r1); 829 } 830 831 /// Build the location list for all DBG_VALUEs in the function that 832 /// describe the same variable. If the ranges of several independent 833 /// pieces of the same variable overlap partially, split them up and 834 /// combine the ranges. The resulting DebugLocEntries are will have 835 /// strict monotonically increasing begin addresses and will never 836 /// overlap. 837 // 838 // Input: 839 // 840 // Ranges History [var, loc, piece ofs size] 841 // 0 | [x, (reg0, piece 0, 32)] 842 // 1 | | [x, (reg1, piece 32, 32)] <- IsPieceOfPrevEntry 843 // 2 | | ... 844 // 3 | [clobber reg0] 845 // 4 [x, (mem, piece 0, 64)] <- overlapping with both previous pieces of x. 846 // 847 // Output: 848 // 849 // [0-1] [x, (reg0, piece 0, 32)] 850 // [1-3] [x, (reg0, piece 0, 32), (reg1, piece 32, 32)] 851 // [3-4] [x, (reg1, piece 32, 32)] 852 // [4- ] [x, (mem, piece 0, 64)] 853 void 854 DwarfDebug::buildLocationList(SmallVectorImpl<DebugLocEntry> &DebugLoc, 855 const DbgValueHistoryMap::InstrRanges &Ranges) { 856 SmallVector<DebugLocEntry::Value, 4> OpenRanges; 857 858 for (auto I = Ranges.begin(), E = Ranges.end(); I != E; ++I) { 859 const MachineInstr *Begin = I->first; 860 const MachineInstr *End = I->second; 861 assert(Begin->isDebugValue() && "Invalid History entry"); 862 863 // Check if a variable is inaccessible in this range. 864 if (Begin->getNumOperands() > 1 && 865 Begin->getOperand(0).isReg() && !Begin->getOperand(0).getReg()) { 866 OpenRanges.clear(); 867 continue; 868 } 869 870 // If this piece overlaps with any open ranges, truncate them. 871 DIExpression DIExpr = Begin->getDebugExpression(); 872 auto Last = std::remove_if(OpenRanges.begin(), OpenRanges.end(), 873 [&](DebugLocEntry::Value R) { 874 return piecesOverlap(DIExpr, R.getExpression()); 875 }); 876 OpenRanges.erase(Last, OpenRanges.end()); 877 878 const MCSymbol *StartLabel = getLabelBeforeInsn(Begin); 879 assert(StartLabel && "Forgot label before DBG_VALUE starting a range!"); 880 881 const MCSymbol *EndLabel; 882 if (End != nullptr) 883 EndLabel = getLabelAfterInsn(End); 884 else if (std::next(I) == Ranges.end()) 885 EndLabel = FunctionEndSym; 886 else 887 EndLabel = getLabelBeforeInsn(std::next(I)->first); 888 assert(EndLabel && "Forgot label after instruction ending a range!"); 889 890 DEBUG(dbgs() << "DotDebugLoc: " << *Begin << "\n"); 891 892 auto Value = getDebugLocValue(Begin); 893 DebugLocEntry Loc(StartLabel, EndLabel, Value); 894 bool couldMerge = false; 895 896 // If this is a piece, it may belong to the current DebugLocEntry. 897 if (DIExpr.isVariablePiece()) { 898 // Add this value to the list of open ranges. 899 OpenRanges.push_back(Value); 900 901 // Attempt to add the piece to the last entry. 902 if (!DebugLoc.empty()) 903 if (DebugLoc.back().MergeValues(Loc)) 904 couldMerge = true; 905 } 906 907 if (!couldMerge) { 908 // Need to add a new DebugLocEntry. Add all values from still 909 // valid non-overlapping pieces. 910 if (OpenRanges.size()) 911 Loc.addValues(OpenRanges); 912 913 DebugLoc.push_back(std::move(Loc)); 914 } 915 916 // Attempt to coalesce the ranges of two otherwise identical 917 // DebugLocEntries. 918 auto CurEntry = DebugLoc.rbegin(); 919 auto PrevEntry = std::next(CurEntry); 920 if (PrevEntry != DebugLoc.rend() && PrevEntry->MergeRanges(*CurEntry)) 921 DebugLoc.pop_back(); 922 923 DEBUG({ 924 dbgs() << CurEntry->getValues().size() << " Values:\n"; 925 for (auto Value : CurEntry->getValues()) { 926 Value.getVariable()->dump(); 927 Value.getExpression()->dump(); 928 } 929 dbgs() << "-----\n"; 930 }); 931 } 932 } 933 934 935 // Find variables for each lexical scope. 936 void 937 DwarfDebug::collectVariableInfo(DwarfCompileUnit &TheCU, DISubprogram SP, 938 SmallPtrSetImpl<const MDNode *> &Processed) { 939 // Grab the variable info that was squirreled away in the MMI side-table. 940 collectVariableInfoFromMMITable(Processed); 941 942 for (const auto &I : DbgValues) { 943 DIVariable DV(I.first); 944 if (Processed.count(DV)) 945 continue; 946 947 // Instruction ranges, specifying where DV is accessible. 948 const auto &Ranges = I.second; 949 if (Ranges.empty()) 950 continue; 951 952 LexicalScope *Scope = nullptr; 953 if (MDNode *IA = DV.getInlinedAt()) { 954 DebugLoc DL = DebugLoc::getFromDILocation(IA); 955 Scope = LScopes.findInlinedScope(DebugLoc::get( 956 DL.getLine(), DL.getCol(), DV.getContext(), IA)); 957 } else 958 Scope = LScopes.findLexicalScope(DV.getContext()); 959 // If variable scope is not found then skip this variable. 960 if (!Scope) 961 continue; 962 963 Processed.insert(DV); 964 const MachineInstr *MInsn = Ranges.front().first; 965 assert(MInsn->isDebugValue() && "History must begin with debug value"); 966 ensureAbstractVariableIsCreatedIfScoped(DV, Scope->getScopeNode()); 967 ConcreteVariables.push_back(make_unique<DbgVariable>(MInsn, this)); 968 DbgVariable *RegVar = ConcreteVariables.back().get(); 969 InfoHolder.addScopeVariable(Scope, RegVar); 970 971 // Check if the first DBG_VALUE is valid for the rest of the function. 972 if (Ranges.size() == 1 && Ranges.front().second == nullptr) 973 continue; 974 975 // Handle multiple DBG_VALUE instructions describing one variable. 976 RegVar->setDotDebugLocOffset(DotDebugLocEntries.size()); 977 978 DotDebugLocEntries.resize(DotDebugLocEntries.size() + 1); 979 DebugLocList &LocList = DotDebugLocEntries.back(); 980 LocList.CU = &TheCU; 981 LocList.Label = 982 Asm->GetTempSymbol("debug_loc", DotDebugLocEntries.size() - 1); 983 984 // Build the location list for this variable. 985 buildLocationList(LocList.List, Ranges); 986 } 987 988 // Collect info for variables that were optimized out. 989 DIArray Variables = SP.getVariables(); 990 for (unsigned i = 0, e = Variables.getNumElements(); i != e; ++i) { 991 DIVariable DV(Variables.getElement(i)); 992 assert(DV.isVariable()); 993 if (!Processed.insert(DV).second) 994 continue; 995 if (LexicalScope *Scope = LScopes.findLexicalScope(DV.getContext())) { 996 ensureAbstractVariableIsCreatedIfScoped(DV, Scope->getScopeNode()); 997 DIExpression NoExpr; 998 ConcreteVariables.push_back(make_unique<DbgVariable>(DV, NoExpr, this)); 999 InfoHolder.addScopeVariable(Scope, ConcreteVariables.back().get()); 1000 } 1001 } 1002 } 1003 1004 // Return Label preceding the instruction. 1005 MCSymbol *DwarfDebug::getLabelBeforeInsn(const MachineInstr *MI) { 1006 MCSymbol *Label = LabelsBeforeInsn.lookup(MI); 1007 assert(Label && "Didn't insert label before instruction"); 1008 return Label; 1009 } 1010 1011 // Return Label immediately following the instruction. 1012 MCSymbol *DwarfDebug::getLabelAfterInsn(const MachineInstr *MI) { 1013 return LabelsAfterInsn.lookup(MI); 1014 } 1015 1016 // Process beginning of an instruction. 1017 void DwarfDebug::beginInstruction(const MachineInstr *MI) { 1018 assert(CurMI == nullptr); 1019 CurMI = MI; 1020 // Check if source location changes, but ignore DBG_VALUE locations. 1021 if (!MI->isDebugValue()) { 1022 DebugLoc DL = MI->getDebugLoc(); 1023 if (DL != PrevInstLoc && (!DL.isUnknown() || UnknownLocations)) { 1024 unsigned Flags = 0; 1025 PrevInstLoc = DL; 1026 if (DL == PrologEndLoc) { 1027 Flags |= DWARF2_FLAG_PROLOGUE_END; 1028 PrologEndLoc = DebugLoc(); 1029 } 1030 if (PrologEndLoc.isUnknown()) 1031 Flags |= DWARF2_FLAG_IS_STMT; 1032 1033 if (!DL.isUnknown()) { 1034 const MDNode *Scope = DL.getScope(Asm->MF->getFunction()->getContext()); 1035 recordSourceLine(DL.getLine(), DL.getCol(), Scope, Flags); 1036 } else 1037 recordSourceLine(0, 0, nullptr, 0); 1038 } 1039 } 1040 1041 // Insert labels where requested. 1042 DenseMap<const MachineInstr *, MCSymbol *>::iterator I = 1043 LabelsBeforeInsn.find(MI); 1044 1045 // No label needed. 1046 if (I == LabelsBeforeInsn.end()) 1047 return; 1048 1049 // Label already assigned. 1050 if (I->second) 1051 return; 1052 1053 if (!PrevLabel) { 1054 PrevLabel = MMI->getContext().CreateTempSymbol(); 1055 Asm->OutStreamer.EmitLabel(PrevLabel); 1056 } 1057 I->second = PrevLabel; 1058 } 1059 1060 // Process end of an instruction. 1061 void DwarfDebug::endInstruction() { 1062 assert(CurMI != nullptr); 1063 // Don't create a new label after DBG_VALUE instructions. 1064 // They don't generate code. 1065 if (!CurMI->isDebugValue()) 1066 PrevLabel = nullptr; 1067 1068 DenseMap<const MachineInstr *, MCSymbol *>::iterator I = 1069 LabelsAfterInsn.find(CurMI); 1070 CurMI = nullptr; 1071 1072 // No label needed. 1073 if (I == LabelsAfterInsn.end()) 1074 return; 1075 1076 // Label already assigned. 1077 if (I->second) 1078 return; 1079 1080 // We need a label after this instruction. 1081 if (!PrevLabel) { 1082 PrevLabel = MMI->getContext().CreateTempSymbol(); 1083 Asm->OutStreamer.EmitLabel(PrevLabel); 1084 } 1085 I->second = PrevLabel; 1086 } 1087 1088 // Each LexicalScope has first instruction and last instruction to mark 1089 // beginning and end of a scope respectively. Create an inverse map that list 1090 // scopes starts (and ends) with an instruction. One instruction may start (or 1091 // end) multiple scopes. Ignore scopes that are not reachable. 1092 void DwarfDebug::identifyScopeMarkers() { 1093 SmallVector<LexicalScope *, 4> WorkList; 1094 WorkList.push_back(LScopes.getCurrentFunctionScope()); 1095 while (!WorkList.empty()) { 1096 LexicalScope *S = WorkList.pop_back_val(); 1097 1098 const SmallVectorImpl<LexicalScope *> &Children = S->getChildren(); 1099 if (!Children.empty()) 1100 WorkList.append(Children.begin(), Children.end()); 1101 1102 if (S->isAbstractScope()) 1103 continue; 1104 1105 for (const InsnRange &R : S->getRanges()) { 1106 assert(R.first && "InsnRange does not have first instruction!"); 1107 assert(R.second && "InsnRange does not have second instruction!"); 1108 requestLabelBeforeInsn(R.first); 1109 requestLabelAfterInsn(R.second); 1110 } 1111 } 1112 } 1113 1114 static DebugLoc findPrologueEndLoc(const MachineFunction *MF) { 1115 // First known non-DBG_VALUE and non-frame setup location marks 1116 // the beginning of the function body. 1117 for (const auto &MBB : *MF) 1118 for (const auto &MI : MBB) 1119 if (!MI.isDebugValue() && !MI.getFlag(MachineInstr::FrameSetup) && 1120 !MI.getDebugLoc().isUnknown()) { 1121 // Did the target forget to set the FrameSetup flag for CFI insns? 1122 assert(!MI.isCFIInstruction() && 1123 "First non-frame-setup instruction is a CFI instruction."); 1124 return MI.getDebugLoc(); 1125 } 1126 return DebugLoc(); 1127 } 1128 1129 // Gather pre-function debug information. Assumes being called immediately 1130 // after the function entry point has been emitted. 1131 void DwarfDebug::beginFunction(const MachineFunction *MF) { 1132 CurFn = MF; 1133 1134 // If there's no debug info for the function we're not going to do anything. 1135 if (!MMI->hasDebugInfo()) 1136 return; 1137 1138 auto DI = FunctionDIs.find(MF->getFunction()); 1139 if (DI == FunctionDIs.end()) 1140 return; 1141 1142 // Grab the lexical scopes for the function, if we don't have any of those 1143 // then we're not going to be able to do anything. 1144 LScopes.initialize(*MF); 1145 if (LScopes.empty()) 1146 return; 1147 1148 assert(DbgValues.empty() && "DbgValues map wasn't cleaned!"); 1149 1150 // Make sure that each lexical scope will have a begin/end label. 1151 identifyScopeMarkers(); 1152 1153 // Set DwarfDwarfCompileUnitID in MCContext to the Compile Unit this function 1154 // belongs to so that we add to the correct per-cu line table in the 1155 // non-asm case. 1156 LexicalScope *FnScope = LScopes.getCurrentFunctionScope(); 1157 // FnScope->getScopeNode() and DI->second should represent the same function, 1158 // though they may not be the same MDNode due to inline functions merged in 1159 // LTO where the debug info metadata still differs (either due to distinct 1160 // written differences - two versions of a linkonce_odr function 1161 // written/copied into two separate files, or some sub-optimal metadata that 1162 // isn't structurally identical (see: file path/name info from clang, which 1163 // includes the directory of the cpp file being built, even when the file name 1164 // is absolute (such as an <> lookup header))) 1165 DwarfCompileUnit *TheCU = SPMap.lookup(FnScope->getScopeNode()); 1166 assert(TheCU && "Unable to find compile unit!"); 1167 if (Asm->OutStreamer.hasRawTextSupport()) 1168 // Use a single line table if we are generating assembly. 1169 Asm->OutStreamer.getContext().setDwarfCompileUnitID(0); 1170 else 1171 Asm->OutStreamer.getContext().setDwarfCompileUnitID(TheCU->getUniqueID()); 1172 1173 // Emit a label for the function so that we have a beginning address. 1174 FunctionBeginSym = Asm->GetTempSymbol("func_begin", Asm->getFunctionNumber()); 1175 // Assumes in correct section after the entry point. 1176 Asm->OutStreamer.EmitLabel(FunctionBeginSym); 1177 1178 // Calculate history for local variables. 1179 calculateDbgValueHistory(MF, Asm->TM.getSubtargetImpl()->getRegisterInfo(), 1180 DbgValues); 1181 1182 // Request labels for the full history. 1183 for (const auto &I : DbgValues) { 1184 const auto &Ranges = I.second; 1185 if (Ranges.empty()) 1186 continue; 1187 1188 // The first mention of a function argument gets the FunctionBeginSym 1189 // label, so arguments are visible when breaking at function entry. 1190 DIVariable DIVar(Ranges.front().first->getDebugVariable()); 1191 if (DIVar.isVariable() && DIVar.getTag() == dwarf::DW_TAG_arg_variable && 1192 getDISubprogram(DIVar.getContext()).describes(MF->getFunction())) { 1193 LabelsBeforeInsn[Ranges.front().first] = FunctionBeginSym; 1194 if (Ranges.front().first->getDebugExpression().isVariablePiece()) { 1195 // Mark all non-overlapping initial pieces. 1196 for (auto I = Ranges.begin(); I != Ranges.end(); ++I) { 1197 DIExpression Piece = I->first->getDebugExpression(); 1198 if (std::all_of(Ranges.begin(), I, 1199 [&](DbgValueHistoryMap::InstrRange Pred) { 1200 return !piecesOverlap(Piece, Pred.first->getDebugExpression()); 1201 })) 1202 LabelsBeforeInsn[I->first] = FunctionBeginSym; 1203 else 1204 break; 1205 } 1206 } 1207 } 1208 1209 for (const auto &Range : Ranges) { 1210 requestLabelBeforeInsn(Range.first); 1211 if (Range.second) 1212 requestLabelAfterInsn(Range.second); 1213 } 1214 } 1215 1216 PrevInstLoc = DebugLoc(); 1217 PrevLabel = FunctionBeginSym; 1218 1219 // Record beginning of function. 1220 PrologEndLoc = findPrologueEndLoc(MF); 1221 if (!PrologEndLoc.isUnknown()) { 1222 DebugLoc FnStartDL = 1223 PrologEndLoc.getFnDebugLoc(MF->getFunction()->getContext()); 1224 recordSourceLine( 1225 FnStartDL.getLine(), FnStartDL.getCol(), 1226 FnStartDL.getScope(MF->getFunction()->getContext()), 1227 // We'd like to list the prologue as "not statements" but GDB behaves 1228 // poorly if we do that. Revisit this with caution/GDB (7.5+) testing. 1229 DWARF2_FLAG_IS_STMT); 1230 } 1231 } 1232 1233 // Gather and emit post-function debug information. 1234 void DwarfDebug::endFunction(const MachineFunction *MF) { 1235 assert(CurFn == MF && 1236 "endFunction should be called with the same function as beginFunction"); 1237 1238 if (!MMI->hasDebugInfo() || LScopes.empty() || 1239 !FunctionDIs.count(MF->getFunction())) { 1240 // If we don't have a lexical scope for this function then there will 1241 // be a hole in the range information. Keep note of this by setting the 1242 // previously used section to nullptr. 1243 PrevCU = nullptr; 1244 CurFn = nullptr; 1245 return; 1246 } 1247 1248 // Define end label for subprogram. 1249 FunctionEndSym = Asm->GetTempSymbol("func_end", Asm->getFunctionNumber()); 1250 // Assumes in correct section after the entry point. 1251 Asm->OutStreamer.EmitLabel(FunctionEndSym); 1252 1253 // Set DwarfDwarfCompileUnitID in MCContext to default value. 1254 Asm->OutStreamer.getContext().setDwarfCompileUnitID(0); 1255 1256 LexicalScope *FnScope = LScopes.getCurrentFunctionScope(); 1257 DISubprogram SP(FnScope->getScopeNode()); 1258 DwarfCompileUnit &TheCU = *SPMap.lookup(SP); 1259 1260 SmallPtrSet<const MDNode *, 16> ProcessedVars; 1261 collectVariableInfo(TheCU, SP, ProcessedVars); 1262 1263 // Add the range of this function to the list of ranges for the CU. 1264 TheCU.addRange(RangeSpan(FunctionBeginSym, FunctionEndSym)); 1265 1266 // Under -gmlt, skip building the subprogram if there are no inlined 1267 // subroutines inside it. 1268 if (TheCU.getCUNode().getEmissionKind() == DIBuilder::LineTablesOnly && 1269 LScopes.getAbstractScopesList().empty() && !IsDarwin) { 1270 assert(InfoHolder.getScopeVariables().empty()); 1271 assert(DbgValues.empty()); 1272 // FIXME: This wouldn't be true in LTO with a -g (with inlining) CU followed 1273 // by a -gmlt CU. Add a test and remove this assertion. 1274 assert(AbstractVariables.empty()); 1275 LabelsBeforeInsn.clear(); 1276 LabelsAfterInsn.clear(); 1277 PrevLabel = nullptr; 1278 CurFn = nullptr; 1279 return; 1280 } 1281 1282 #ifndef NDEBUG 1283 size_t NumAbstractScopes = LScopes.getAbstractScopesList().size(); 1284 #endif 1285 // Construct abstract scopes. 1286 for (LexicalScope *AScope : LScopes.getAbstractScopesList()) { 1287 DISubprogram SP(AScope->getScopeNode()); 1288 assert(SP.isSubprogram()); 1289 // Collect info for variables that were optimized out. 1290 DIArray Variables = SP.getVariables(); 1291 for (unsigned i = 0, e = Variables.getNumElements(); i != e; ++i) { 1292 DIVariable DV(Variables.getElement(i)); 1293 assert(DV && DV.isVariable()); 1294 if (!ProcessedVars.insert(DV).second) 1295 continue; 1296 ensureAbstractVariableIsCreated(DV, DV.getContext()); 1297 assert(LScopes.getAbstractScopesList().size() == NumAbstractScopes 1298 && "ensureAbstractVariableIsCreated inserted abstract scopes"); 1299 } 1300 constructAbstractSubprogramScopeDIE(AScope); 1301 } 1302 1303 TheCU.constructSubprogramScopeDIE(FnScope); 1304 if (auto *SkelCU = TheCU.getSkeleton()) 1305 if (!LScopes.getAbstractScopesList().empty()) 1306 SkelCU->constructSubprogramScopeDIE(FnScope); 1307 1308 // Clear debug info 1309 // Ownership of DbgVariables is a bit subtle - ScopeVariables owns all the 1310 // DbgVariables except those that are also in AbstractVariables (since they 1311 // can be used cross-function) 1312 InfoHolder.getScopeVariables().clear(); 1313 DbgValues.clear(); 1314 LabelsBeforeInsn.clear(); 1315 LabelsAfterInsn.clear(); 1316 PrevLabel = nullptr; 1317 CurFn = nullptr; 1318 } 1319 1320 // Register a source line with debug info. Returns the unique label that was 1321 // emitted and which provides correspondence to the source line list. 1322 void DwarfDebug::recordSourceLine(unsigned Line, unsigned Col, const MDNode *S, 1323 unsigned Flags) { 1324 StringRef Fn; 1325 StringRef Dir; 1326 unsigned Src = 1; 1327 unsigned Discriminator = 0; 1328 if (DIScope Scope = DIScope(S)) { 1329 assert(Scope.isScope()); 1330 Fn = Scope.getFilename(); 1331 Dir = Scope.getDirectory(); 1332 if (Scope.isLexicalBlockFile()) 1333 Discriminator = DILexicalBlockFile(S).getDiscriminator(); 1334 1335 unsigned CUID = Asm->OutStreamer.getContext().getDwarfCompileUnitID(); 1336 Src = static_cast<DwarfCompileUnit &>(*InfoHolder.getUnits()[CUID]) 1337 .getOrCreateSourceID(Fn, Dir); 1338 } 1339 Asm->OutStreamer.EmitDwarfLocDirective(Src, Line, Col, Flags, 0, 1340 Discriminator, Fn); 1341 } 1342 1343 //===----------------------------------------------------------------------===// 1344 // Emit Methods 1345 //===----------------------------------------------------------------------===// 1346 1347 // Emit initial Dwarf sections with a label at the start of each one. 1348 void DwarfDebug::emitSectionLabels() { 1349 const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering(); 1350 1351 // Dwarf sections base addresses. 1352 DwarfInfoSectionSym = 1353 emitSectionSym(Asm, TLOF.getDwarfInfoSection(), "section_info"); 1354 if (useSplitDwarf()) { 1355 DwarfInfoDWOSectionSym = 1356 emitSectionSym(Asm, TLOF.getDwarfInfoDWOSection(), "section_info_dwo"); 1357 DwarfTypesDWOSectionSym = 1358 emitSectionSym(Asm, TLOF.getDwarfTypesDWOSection(), "section_types_dwo"); 1359 } 1360 DwarfAbbrevSectionSym = 1361 emitSectionSym(Asm, TLOF.getDwarfAbbrevSection(), "section_abbrev"); 1362 if (useSplitDwarf()) 1363 DwarfAbbrevDWOSectionSym = emitSectionSym( 1364 Asm, TLOF.getDwarfAbbrevDWOSection(), "section_abbrev_dwo"); 1365 if (GenerateARangeSection) 1366 emitSectionSym(Asm, TLOF.getDwarfARangesSection()); 1367 1368 DwarfLineSectionSym = 1369 emitSectionSym(Asm, TLOF.getDwarfLineSection(), "section_line"); 1370 if (GenerateGnuPubSections) { 1371 DwarfGnuPubNamesSectionSym = 1372 emitSectionSym(Asm, TLOF.getDwarfGnuPubNamesSection()); 1373 DwarfGnuPubTypesSectionSym = 1374 emitSectionSym(Asm, TLOF.getDwarfGnuPubTypesSection()); 1375 } else if (HasDwarfPubSections) { 1376 emitSectionSym(Asm, TLOF.getDwarfPubNamesSection()); 1377 emitSectionSym(Asm, TLOF.getDwarfPubTypesSection()); 1378 } 1379 1380 DwarfStrSectionSym = 1381 emitSectionSym(Asm, TLOF.getDwarfStrSection(), "info_string"); 1382 if (useSplitDwarf()) { 1383 DwarfStrDWOSectionSym = 1384 emitSectionSym(Asm, TLOF.getDwarfStrDWOSection(), "skel_string"); 1385 DwarfAddrSectionSym = 1386 emitSectionSym(Asm, TLOF.getDwarfAddrSection(), "addr_sec"); 1387 DwarfDebugLocSectionSym = 1388 emitSectionSym(Asm, TLOF.getDwarfLocDWOSection(), "skel_loc"); 1389 } else 1390 DwarfDebugLocSectionSym = 1391 emitSectionSym(Asm, TLOF.getDwarfLocSection(), "section_debug_loc"); 1392 DwarfDebugRangeSectionSym = 1393 emitSectionSym(Asm, TLOF.getDwarfRangesSection(), "debug_range"); 1394 } 1395 1396 // Recursively emits a debug information entry. 1397 void DwarfDebug::emitDIE(DIE &Die) { 1398 // Get the abbreviation for this DIE. 1399 const DIEAbbrev &Abbrev = Die.getAbbrev(); 1400 1401 // Emit the code (index) for the abbreviation. 1402 if (Asm->isVerbose()) 1403 Asm->OutStreamer.AddComment("Abbrev [" + Twine(Abbrev.getNumber()) + 1404 "] 0x" + Twine::utohexstr(Die.getOffset()) + 1405 ":0x" + Twine::utohexstr(Die.getSize()) + " " + 1406 dwarf::TagString(Abbrev.getTag())); 1407 Asm->EmitULEB128(Abbrev.getNumber()); 1408 1409 const SmallVectorImpl<DIEValue *> &Values = Die.getValues(); 1410 const SmallVectorImpl<DIEAbbrevData> &AbbrevData = Abbrev.getData(); 1411 1412 // Emit the DIE attribute values. 1413 for (unsigned i = 0, N = Values.size(); i < N; ++i) { 1414 dwarf::Attribute Attr = AbbrevData[i].getAttribute(); 1415 dwarf::Form Form = AbbrevData[i].getForm(); 1416 assert(Form && "Too many attributes for DIE (check abbreviation)"); 1417 1418 if (Asm->isVerbose()) { 1419 Asm->OutStreamer.AddComment(dwarf::AttributeString(Attr)); 1420 if (Attr == dwarf::DW_AT_accessibility) 1421 Asm->OutStreamer.AddComment(dwarf::AccessibilityString( 1422 cast<DIEInteger>(Values[i])->getValue())); 1423 } 1424 1425 // Emit an attribute using the defined form. 1426 Values[i]->EmitValue(Asm, Form); 1427 } 1428 1429 // Emit the DIE children if any. 1430 if (Abbrev.hasChildren()) { 1431 for (auto &Child : Die.getChildren()) 1432 emitDIE(*Child); 1433 1434 Asm->OutStreamer.AddComment("End Of Children Mark"); 1435 Asm->EmitInt8(0); 1436 } 1437 } 1438 1439 // Emit the debug info section. 1440 void DwarfDebug::emitDebugInfo() { 1441 DwarfFile &Holder = useSplitDwarf() ? SkeletonHolder : InfoHolder; 1442 1443 Holder.emitUnits(DwarfAbbrevSectionSym); 1444 } 1445 1446 // Emit the abbreviation section. 1447 void DwarfDebug::emitAbbreviations() { 1448 DwarfFile &Holder = useSplitDwarf() ? SkeletonHolder : InfoHolder; 1449 1450 Holder.emitAbbrevs(Asm->getObjFileLowering().getDwarfAbbrevSection()); 1451 } 1452 1453 // Emit the last address of the section and the end of the line matrix. 1454 void DwarfDebug::emitEndOfLineMatrix(unsigned SectionEnd) { 1455 // Define last address of section. 1456 Asm->OutStreamer.AddComment("Extended Op"); 1457 Asm->EmitInt8(0); 1458 1459 Asm->OutStreamer.AddComment("Op size"); 1460 Asm->EmitInt8(Asm->getDataLayout().getPointerSize() + 1); 1461 Asm->OutStreamer.AddComment("DW_LNE_set_address"); 1462 Asm->EmitInt8(dwarf::DW_LNE_set_address); 1463 1464 Asm->OutStreamer.AddComment("Section end label"); 1465 1466 Asm->OutStreamer.EmitSymbolValue( 1467 Asm->GetTempSymbol("section_end", SectionEnd), 1468 Asm->getDataLayout().getPointerSize()); 1469 1470 // Mark end of matrix. 1471 Asm->OutStreamer.AddComment("DW_LNE_end_sequence"); 1472 Asm->EmitInt8(0); 1473 Asm->EmitInt8(1); 1474 Asm->EmitInt8(1); 1475 } 1476 1477 void DwarfDebug::emitAccel(DwarfAccelTable &Accel, const MCSection *Section, 1478 StringRef TableName, StringRef SymName) { 1479 Accel.FinalizeTable(Asm, TableName); 1480 Asm->OutStreamer.SwitchSection(Section); 1481 auto *SectionBegin = Asm->GetTempSymbol(SymName); 1482 Asm->OutStreamer.EmitLabel(SectionBegin); 1483 1484 // Emit the full data. 1485 Accel.Emit(Asm, SectionBegin, this, DwarfStrSectionSym); 1486 } 1487 1488 // Emit visible names into a hashed accelerator table section. 1489 void DwarfDebug::emitAccelNames() { 1490 emitAccel(AccelNames, Asm->getObjFileLowering().getDwarfAccelNamesSection(), 1491 "Names", "names_begin"); 1492 } 1493 1494 // Emit objective C classes and categories into a hashed accelerator table 1495 // section. 1496 void DwarfDebug::emitAccelObjC() { 1497 emitAccel(AccelObjC, Asm->getObjFileLowering().getDwarfAccelObjCSection(), 1498 "ObjC", "objc_begin"); 1499 } 1500 1501 // Emit namespace dies into a hashed accelerator table. 1502 void DwarfDebug::emitAccelNamespaces() { 1503 emitAccel(AccelNamespace, 1504 Asm->getObjFileLowering().getDwarfAccelNamespaceSection(), 1505 "namespac", "namespac_begin"); 1506 } 1507 1508 // Emit type dies into a hashed accelerator table. 1509 void DwarfDebug::emitAccelTypes() { 1510 emitAccel(AccelTypes, Asm->getObjFileLowering().getDwarfAccelTypesSection(), 1511 "types", "types_begin"); 1512 } 1513 1514 // Public name handling. 1515 // The format for the various pubnames: 1516 // 1517 // dwarf pubnames - offset/name pairs where the offset is the offset into the CU 1518 // for the DIE that is named. 1519 // 1520 // gnu pubnames - offset/index value/name tuples where the offset is the offset 1521 // into the CU and the index value is computed according to the type of value 1522 // for the DIE that is named. 1523 // 1524 // For type units the offset is the offset of the skeleton DIE. For split dwarf 1525 // it's the offset within the debug_info/debug_types dwo section, however, the 1526 // reference in the pubname header doesn't change. 1527 1528 /// computeIndexValue - Compute the gdb index value for the DIE and CU. 1529 static dwarf::PubIndexEntryDescriptor computeIndexValue(DwarfUnit *CU, 1530 const DIE *Die) { 1531 dwarf::GDBIndexEntryLinkage Linkage = dwarf::GIEL_STATIC; 1532 1533 // We could have a specification DIE that has our most of our knowledge, 1534 // look for that now. 1535 DIEValue *SpecVal = Die->findAttribute(dwarf::DW_AT_specification); 1536 if (SpecVal) { 1537 DIE &SpecDIE = cast<DIEEntry>(SpecVal)->getEntry(); 1538 if (SpecDIE.findAttribute(dwarf::DW_AT_external)) 1539 Linkage = dwarf::GIEL_EXTERNAL; 1540 } else if (Die->findAttribute(dwarf::DW_AT_external)) 1541 Linkage = dwarf::GIEL_EXTERNAL; 1542 1543 switch (Die->getTag()) { 1544 case dwarf::DW_TAG_class_type: 1545 case dwarf::DW_TAG_structure_type: 1546 case dwarf::DW_TAG_union_type: 1547 case dwarf::DW_TAG_enumeration_type: 1548 return dwarf::PubIndexEntryDescriptor( 1549 dwarf::GIEK_TYPE, CU->getLanguage() != dwarf::DW_LANG_C_plus_plus 1550 ? dwarf::GIEL_STATIC 1551 : dwarf::GIEL_EXTERNAL); 1552 case dwarf::DW_TAG_typedef: 1553 case dwarf::DW_TAG_base_type: 1554 case dwarf::DW_TAG_subrange_type: 1555 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_TYPE, dwarf::GIEL_STATIC); 1556 case dwarf::DW_TAG_namespace: 1557 return dwarf::GIEK_TYPE; 1558 case dwarf::DW_TAG_subprogram: 1559 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_FUNCTION, Linkage); 1560 case dwarf::DW_TAG_constant: 1561 case dwarf::DW_TAG_variable: 1562 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_VARIABLE, Linkage); 1563 case dwarf::DW_TAG_enumerator: 1564 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_VARIABLE, 1565 dwarf::GIEL_STATIC); 1566 default: 1567 return dwarf::GIEK_NONE; 1568 } 1569 } 1570 1571 /// emitDebugPubNames - Emit visible names into a debug pubnames section. 1572 /// 1573 void DwarfDebug::emitDebugPubNames(bool GnuStyle) { 1574 const MCSection *PSec = 1575 GnuStyle ? Asm->getObjFileLowering().getDwarfGnuPubNamesSection() 1576 : Asm->getObjFileLowering().getDwarfPubNamesSection(); 1577 1578 emitDebugPubSection(GnuStyle, PSec, "Names", 1579 &DwarfCompileUnit::getGlobalNames); 1580 } 1581 1582 void DwarfDebug::emitDebugPubSection( 1583 bool GnuStyle, const MCSection *PSec, StringRef Name, 1584 const StringMap<const DIE *> &(DwarfCompileUnit::*Accessor)() const) { 1585 for (const auto &NU : CUMap) { 1586 DwarfCompileUnit *TheU = NU.second; 1587 1588 const auto &Globals = (TheU->*Accessor)(); 1589 1590 if (Globals.empty()) 1591 continue; 1592 1593 if (auto *Skeleton = TheU->getSkeleton()) 1594 TheU = Skeleton; 1595 unsigned ID = TheU->getUniqueID(); 1596 1597 // Start the dwarf pubnames section. 1598 Asm->OutStreamer.SwitchSection(PSec); 1599 1600 // Emit the header. 1601 Asm->OutStreamer.AddComment("Length of Public " + Name + " Info"); 1602 MCSymbol *BeginLabel = Asm->GetTempSymbol("pub" + Name + "_begin", ID); 1603 MCSymbol *EndLabel = Asm->GetTempSymbol("pub" + Name + "_end", ID); 1604 Asm->EmitLabelDifference(EndLabel, BeginLabel, 4); 1605 1606 Asm->OutStreamer.EmitLabel(BeginLabel); 1607 1608 Asm->OutStreamer.AddComment("DWARF Version"); 1609 Asm->EmitInt16(dwarf::DW_PUBNAMES_VERSION); 1610 1611 Asm->OutStreamer.AddComment("Offset of Compilation Unit Info"); 1612 Asm->EmitSectionOffset(TheU->getLabelBegin(), TheU->getSectionSym()); 1613 1614 Asm->OutStreamer.AddComment("Compilation Unit Length"); 1615 Asm->EmitInt32(TheU->getLength()); 1616 1617 // Emit the pubnames for this compilation unit. 1618 for (const auto &GI : Globals) { 1619 const char *Name = GI.getKeyData(); 1620 const DIE *Entity = GI.second; 1621 1622 Asm->OutStreamer.AddComment("DIE offset"); 1623 Asm->EmitInt32(Entity->getOffset()); 1624 1625 if (GnuStyle) { 1626 dwarf::PubIndexEntryDescriptor Desc = computeIndexValue(TheU, Entity); 1627 Asm->OutStreamer.AddComment( 1628 Twine("Kind: ") + dwarf::GDBIndexEntryKindString(Desc.Kind) + ", " + 1629 dwarf::GDBIndexEntryLinkageString(Desc.Linkage)); 1630 Asm->EmitInt8(Desc.toBits()); 1631 } 1632 1633 Asm->OutStreamer.AddComment("External Name"); 1634 Asm->OutStreamer.EmitBytes(StringRef(Name, GI.getKeyLength() + 1)); 1635 } 1636 1637 Asm->OutStreamer.AddComment("End Mark"); 1638 Asm->EmitInt32(0); 1639 Asm->OutStreamer.EmitLabel(EndLabel); 1640 } 1641 } 1642 1643 void DwarfDebug::emitDebugPubTypes(bool GnuStyle) { 1644 const MCSection *PSec = 1645 GnuStyle ? Asm->getObjFileLowering().getDwarfGnuPubTypesSection() 1646 : Asm->getObjFileLowering().getDwarfPubTypesSection(); 1647 1648 emitDebugPubSection(GnuStyle, PSec, "Types", 1649 &DwarfCompileUnit::getGlobalTypes); 1650 } 1651 1652 // Emit visible names into a debug str section. 1653 void DwarfDebug::emitDebugStr() { 1654 DwarfFile &Holder = useSplitDwarf() ? SkeletonHolder : InfoHolder; 1655 Holder.emitStrings(Asm->getObjFileLowering().getDwarfStrSection()); 1656 } 1657 1658 /// Emits an optimal (=sorted) sequence of DW_OP_pieces. 1659 void DwarfDebug::emitLocPieces(ByteStreamer &Streamer, 1660 const DITypeIdentifierMap &Map, 1661 ArrayRef<DebugLocEntry::Value> Values) { 1662 assert(std::all_of(Values.begin(), Values.end(), [](DebugLocEntry::Value P) { 1663 return P.isVariablePiece(); 1664 }) && "all values are expected to be pieces"); 1665 assert(std::is_sorted(Values.begin(), Values.end()) && 1666 "pieces are expected to be sorted"); 1667 1668 unsigned Offset = 0; 1669 for (auto Piece : Values) { 1670 DIExpression Expr = Piece.getExpression(); 1671 unsigned PieceOffset = Expr.getPieceOffset(); 1672 unsigned PieceSize = Expr.getPieceSize(); 1673 assert(Offset <= PieceOffset && "overlapping or duplicate pieces"); 1674 if (Offset < PieceOffset) { 1675 // The DWARF spec seriously mandates pieces with no locations for gaps. 1676 Asm->EmitDwarfOpPiece(Streamer, (PieceOffset-Offset)*8); 1677 Offset += PieceOffset-Offset; 1678 } 1679 1680 Offset += PieceSize; 1681 1682 const unsigned SizeOfByte = 8; 1683 #ifndef NDEBUG 1684 DIVariable Var = Piece.getVariable(); 1685 assert(!Var.isIndirect() && "indirect address for piece"); 1686 unsigned VarSize = Var.getSizeInBits(Map); 1687 assert(PieceSize+PieceOffset <= VarSize/SizeOfByte 1688 && "piece is larger than or outside of variable"); 1689 assert(PieceSize*SizeOfByte != VarSize 1690 && "piece covers entire variable"); 1691 #endif 1692 if (Piece.isLocation() && Piece.getLoc().isReg()) 1693 Asm->EmitDwarfRegOpPiece(Streamer, 1694 Piece.getLoc(), 1695 PieceSize*SizeOfByte); 1696 else { 1697 emitDebugLocValue(Streamer, Piece); 1698 Asm->EmitDwarfOpPiece(Streamer, PieceSize*SizeOfByte); 1699 } 1700 } 1701 } 1702 1703 1704 void DwarfDebug::emitDebugLocEntry(ByteStreamer &Streamer, 1705 const DebugLocEntry &Entry) { 1706 const DebugLocEntry::Value Value = Entry.getValues()[0]; 1707 if (Value.isVariablePiece()) 1708 // Emit all pieces that belong to the same variable and range. 1709 return emitLocPieces(Streamer, TypeIdentifierMap, Entry.getValues()); 1710 1711 assert(Entry.getValues().size() == 1 && "only pieces may have >1 value"); 1712 emitDebugLocValue(Streamer, Value); 1713 } 1714 1715 void DwarfDebug::emitDebugLocValue(ByteStreamer &Streamer, 1716 const DebugLocEntry::Value &Value) { 1717 DIVariable DV = Value.getVariable(); 1718 // Regular entry. 1719 if (Value.isInt()) { 1720 DIBasicType BTy(resolve(DV.getType())); 1721 if (BTy.Verify() && (BTy.getEncoding() == dwarf::DW_ATE_signed || 1722 BTy.getEncoding() == dwarf::DW_ATE_signed_char)) { 1723 Streamer.EmitInt8(dwarf::DW_OP_consts, "DW_OP_consts"); 1724 Streamer.EmitSLEB128(Value.getInt()); 1725 } else { 1726 Streamer.EmitInt8(dwarf::DW_OP_constu, "DW_OP_constu"); 1727 Streamer.EmitULEB128(Value.getInt()); 1728 } 1729 // The proper way to describe a constant value is 1730 // DW_OP_constu <const>, DW_OP_stack_value. 1731 // Unfortunately, DW_OP_stack_value was not available until DWARF-4, 1732 // so we will continue to generate DW_OP_constu <const> for DWARF-2 1733 // and DWARF-3. Technically, this is incorrect since DW_OP_const <const> 1734 // actually describes a value at a constant addess, not a constant value. 1735 // However, in the past there was no better way to describe a constant 1736 // value, so the producers and consumers started to rely on heuristics 1737 // to disambiguate the value vs. location status of the expression. 1738 // See PR21176 for more details. 1739 if (getDwarfVersion() >= 4) 1740 Streamer.EmitInt8(dwarf::DW_OP_stack_value, "DW_OP_stack_value"); 1741 } else if (Value.isLocation()) { 1742 MachineLocation Loc = Value.getLoc(); 1743 DIExpression Expr = Value.getExpression(); 1744 if (!Expr) 1745 // Regular entry. 1746 Asm->EmitDwarfRegOp(Streamer, Loc, DV.isIndirect()); 1747 else { 1748 // Complex address entry. 1749 unsigned N = Expr.getNumElements(); 1750 unsigned i = 0; 1751 if (N >= 2 && Expr.getElement(0) == dwarf::DW_OP_plus) { 1752 if (Loc.getOffset()) { 1753 i = 2; 1754 Asm->EmitDwarfRegOp(Streamer, Loc, DV.isIndirect()); 1755 Streamer.EmitInt8(dwarf::DW_OP_deref, "DW_OP_deref"); 1756 Streamer.EmitInt8(dwarf::DW_OP_plus_uconst, "DW_OP_plus_uconst"); 1757 Streamer.EmitSLEB128(Expr.getElement(1)); 1758 } else { 1759 // If first address element is OpPlus then emit 1760 // DW_OP_breg + Offset instead of DW_OP_reg + Offset. 1761 MachineLocation TLoc(Loc.getReg(), Expr.getElement(1)); 1762 Asm->EmitDwarfRegOp(Streamer, TLoc, DV.isIndirect()); 1763 i = 2; 1764 } 1765 } else { 1766 Asm->EmitDwarfRegOp(Streamer, Loc, DV.isIndirect()); 1767 } 1768 1769 // Emit remaining complex address elements. 1770 for (; i < N; ++i) { 1771 uint64_t Element = Expr.getElement(i); 1772 if (Element == dwarf::DW_OP_plus) { 1773 Streamer.EmitInt8(dwarf::DW_OP_plus_uconst, "DW_OP_plus_uconst"); 1774 Streamer.EmitULEB128(Expr.getElement(++i)); 1775 } else if (Element == dwarf::DW_OP_deref) { 1776 if (!Loc.isReg()) 1777 Streamer.EmitInt8(dwarf::DW_OP_deref, "DW_OP_deref"); 1778 } else if (Element == dwarf::DW_OP_piece) { 1779 i += 3; 1780 // handled in emitDebugLocEntry. 1781 } else 1782 llvm_unreachable("unknown Opcode found in complex address"); 1783 } 1784 } 1785 } 1786 // else ... ignore constant fp. There is not any good way to 1787 // to represent them here in dwarf. 1788 // FIXME: ^ 1789 } 1790 1791 void DwarfDebug::emitDebugLocEntryLocation(const DebugLocEntry &Entry) { 1792 Asm->OutStreamer.AddComment("Loc expr size"); 1793 MCSymbol *begin = Asm->OutStreamer.getContext().CreateTempSymbol(); 1794 MCSymbol *end = Asm->OutStreamer.getContext().CreateTempSymbol(); 1795 Asm->EmitLabelDifference(end, begin, 2); 1796 Asm->OutStreamer.EmitLabel(begin); 1797 // Emit the entry. 1798 APByteStreamer Streamer(*Asm); 1799 emitDebugLocEntry(Streamer, Entry); 1800 // Close the range. 1801 Asm->OutStreamer.EmitLabel(end); 1802 } 1803 1804 // Emit locations into the debug loc section. 1805 void DwarfDebug::emitDebugLoc() { 1806 // Start the dwarf loc section. 1807 Asm->OutStreamer.SwitchSection( 1808 Asm->getObjFileLowering().getDwarfLocSection()); 1809 unsigned char Size = Asm->getDataLayout().getPointerSize(); 1810 for (const auto &DebugLoc : DotDebugLocEntries) { 1811 Asm->OutStreamer.EmitLabel(DebugLoc.Label); 1812 const DwarfCompileUnit *CU = DebugLoc.CU; 1813 for (const auto &Entry : DebugLoc.List) { 1814 // Set up the range. This range is relative to the entry point of the 1815 // compile unit. This is a hard coded 0 for low_pc when we're emitting 1816 // ranges, or the DW_AT_low_pc on the compile unit otherwise. 1817 if (auto *Base = CU->getBaseAddress()) { 1818 Asm->EmitLabelDifference(Entry.getBeginSym(), Base, Size); 1819 Asm->EmitLabelDifference(Entry.getEndSym(), Base, Size); 1820 } else { 1821 Asm->OutStreamer.EmitSymbolValue(Entry.getBeginSym(), Size); 1822 Asm->OutStreamer.EmitSymbolValue(Entry.getEndSym(), Size); 1823 } 1824 1825 emitDebugLocEntryLocation(Entry); 1826 } 1827 Asm->OutStreamer.EmitIntValue(0, Size); 1828 Asm->OutStreamer.EmitIntValue(0, Size); 1829 } 1830 } 1831 1832 void DwarfDebug::emitDebugLocDWO() { 1833 Asm->OutStreamer.SwitchSection( 1834 Asm->getObjFileLowering().getDwarfLocDWOSection()); 1835 for (const auto &DebugLoc : DotDebugLocEntries) { 1836 Asm->OutStreamer.EmitLabel(DebugLoc.Label); 1837 for (const auto &Entry : DebugLoc.List) { 1838 // Just always use start_length for now - at least that's one address 1839 // rather than two. We could get fancier and try to, say, reuse an 1840 // address we know we've emitted elsewhere (the start of the function? 1841 // The start of the CU or CU subrange that encloses this range?) 1842 Asm->EmitInt8(dwarf::DW_LLE_start_length_entry); 1843 unsigned idx = AddrPool.getIndex(Entry.getBeginSym()); 1844 Asm->EmitULEB128(idx); 1845 Asm->EmitLabelDifference(Entry.getEndSym(), Entry.getBeginSym(), 4); 1846 1847 emitDebugLocEntryLocation(Entry); 1848 } 1849 Asm->EmitInt8(dwarf::DW_LLE_end_of_list_entry); 1850 } 1851 } 1852 1853 struct ArangeSpan { 1854 const MCSymbol *Start, *End; 1855 }; 1856 1857 // Emit a debug aranges section, containing a CU lookup for any 1858 // address we can tie back to a CU. 1859 void DwarfDebug::emitDebugARanges() { 1860 // Start the dwarf aranges section. 1861 Asm->OutStreamer.SwitchSection( 1862 Asm->getObjFileLowering().getDwarfARangesSection()); 1863 1864 typedef DenseMap<DwarfCompileUnit *, std::vector<ArangeSpan>> SpansType; 1865 1866 SpansType Spans; 1867 1868 // Build a list of sections used. 1869 std::vector<const MCSection *> Sections; 1870 for (const auto &it : SectionMap) { 1871 const MCSection *Section = it.first; 1872 Sections.push_back(Section); 1873 } 1874 1875 // Sort the sections into order. 1876 // This is only done to ensure consistent output order across different runs. 1877 std::sort(Sections.begin(), Sections.end(), SectionSort); 1878 1879 // Build a set of address spans, sorted by CU. 1880 for (const MCSection *Section : Sections) { 1881 SmallVector<SymbolCU, 8> &List = SectionMap[Section]; 1882 if (List.size() < 2) 1883 continue; 1884 1885 // Sort the symbols by offset within the section. 1886 std::sort(List.begin(), List.end(), 1887 [&](const SymbolCU &A, const SymbolCU &B) { 1888 unsigned IA = A.Sym ? Asm->OutStreamer.GetSymbolOrder(A.Sym) : 0; 1889 unsigned IB = B.Sym ? Asm->OutStreamer.GetSymbolOrder(B.Sym) : 0; 1890 1891 // Symbols with no order assigned should be placed at the end. 1892 // (e.g. section end labels) 1893 if (IA == 0) 1894 return false; 1895 if (IB == 0) 1896 return true; 1897 return IA < IB; 1898 }); 1899 1900 // If we have no section (e.g. common), just write out 1901 // individual spans for each symbol. 1902 if (!Section) { 1903 for (const SymbolCU &Cur : List) { 1904 ArangeSpan Span; 1905 Span.Start = Cur.Sym; 1906 Span.End = nullptr; 1907 if (Cur.CU) 1908 Spans[Cur.CU].push_back(Span); 1909 } 1910 } else { 1911 // Build spans between each label. 1912 const MCSymbol *StartSym = List[0].Sym; 1913 for (size_t n = 1, e = List.size(); n < e; n++) { 1914 const SymbolCU &Prev = List[n - 1]; 1915 const SymbolCU &Cur = List[n]; 1916 1917 // Try and build the longest span we can within the same CU. 1918 if (Cur.CU != Prev.CU) { 1919 ArangeSpan Span; 1920 Span.Start = StartSym; 1921 Span.End = Cur.Sym; 1922 Spans[Prev.CU].push_back(Span); 1923 StartSym = Cur.Sym; 1924 } 1925 } 1926 } 1927 } 1928 1929 unsigned PtrSize = Asm->getDataLayout().getPointerSize(); 1930 1931 // Build a list of CUs used. 1932 std::vector<DwarfCompileUnit *> CUs; 1933 for (const auto &it : Spans) { 1934 DwarfCompileUnit *CU = it.first; 1935 CUs.push_back(CU); 1936 } 1937 1938 // Sort the CU list (again, to ensure consistent output order). 1939 std::sort(CUs.begin(), CUs.end(), [](const DwarfUnit *A, const DwarfUnit *B) { 1940 return A->getUniqueID() < B->getUniqueID(); 1941 }); 1942 1943 // Emit an arange table for each CU we used. 1944 for (DwarfCompileUnit *CU : CUs) { 1945 std::vector<ArangeSpan> &List = Spans[CU]; 1946 1947 // Describe the skeleton CU's offset and length, not the dwo file's. 1948 if (auto *Skel = CU->getSkeleton()) 1949 CU = Skel; 1950 1951 // Emit size of content not including length itself. 1952 unsigned ContentSize = 1953 sizeof(int16_t) + // DWARF ARange version number 1954 sizeof(int32_t) + // Offset of CU in the .debug_info section 1955 sizeof(int8_t) + // Pointer Size (in bytes) 1956 sizeof(int8_t); // Segment Size (in bytes) 1957 1958 unsigned TupleSize = PtrSize * 2; 1959 1960 // 7.20 in the Dwarf specs requires the table to be aligned to a tuple. 1961 unsigned Padding = 1962 OffsetToAlignment(sizeof(int32_t) + ContentSize, TupleSize); 1963 1964 ContentSize += Padding; 1965 ContentSize += (List.size() + 1) * TupleSize; 1966 1967 // For each compile unit, write the list of spans it covers. 1968 Asm->OutStreamer.AddComment("Length of ARange Set"); 1969 Asm->EmitInt32(ContentSize); 1970 Asm->OutStreamer.AddComment("DWARF Arange version number"); 1971 Asm->EmitInt16(dwarf::DW_ARANGES_VERSION); 1972 Asm->OutStreamer.AddComment("Offset Into Debug Info Section"); 1973 Asm->EmitSectionOffset(CU->getLabelBegin(), CU->getSectionSym()); 1974 Asm->OutStreamer.AddComment("Address Size (in bytes)"); 1975 Asm->EmitInt8(PtrSize); 1976 Asm->OutStreamer.AddComment("Segment Size (in bytes)"); 1977 Asm->EmitInt8(0); 1978 1979 Asm->OutStreamer.EmitFill(Padding, 0xff); 1980 1981 for (const ArangeSpan &Span : List) { 1982 Asm->EmitLabelReference(Span.Start, PtrSize); 1983 1984 // Calculate the size as being from the span start to it's end. 1985 if (Span.End) { 1986 Asm->EmitLabelDifference(Span.End, Span.Start, PtrSize); 1987 } else { 1988 // For symbols without an end marker (e.g. common), we 1989 // write a single arange entry containing just that one symbol. 1990 uint64_t Size = SymSize[Span.Start]; 1991 if (Size == 0) 1992 Size = 1; 1993 1994 Asm->OutStreamer.EmitIntValue(Size, PtrSize); 1995 } 1996 } 1997 1998 Asm->OutStreamer.AddComment("ARange terminator"); 1999 Asm->OutStreamer.EmitIntValue(0, PtrSize); 2000 Asm->OutStreamer.EmitIntValue(0, PtrSize); 2001 } 2002 } 2003 2004 // Emit visible names into a debug ranges section. 2005 void DwarfDebug::emitDebugRanges() { 2006 // Start the dwarf ranges section. 2007 Asm->OutStreamer.SwitchSection( 2008 Asm->getObjFileLowering().getDwarfRangesSection()); 2009 2010 // Size for our labels. 2011 unsigned char Size = Asm->getDataLayout().getPointerSize(); 2012 2013 // Grab the specific ranges for the compile units in the module. 2014 for (const auto &I : CUMap) { 2015 DwarfCompileUnit *TheCU = I.second; 2016 2017 if (auto *Skel = TheCU->getSkeleton()) 2018 TheCU = Skel; 2019 2020 // Iterate over the misc ranges for the compile units in the module. 2021 for (const RangeSpanList &List : TheCU->getRangeLists()) { 2022 // Emit our symbol so we can find the beginning of the range. 2023 Asm->OutStreamer.EmitLabel(List.getSym()); 2024 2025 for (const RangeSpan &Range : List.getRanges()) { 2026 const MCSymbol *Begin = Range.getStart(); 2027 const MCSymbol *End = Range.getEnd(); 2028 assert(Begin && "Range without a begin symbol?"); 2029 assert(End && "Range without an end symbol?"); 2030 if (auto *Base = TheCU->getBaseAddress()) { 2031 Asm->EmitLabelDifference(Begin, Base, Size); 2032 Asm->EmitLabelDifference(End, Base, Size); 2033 } else { 2034 Asm->OutStreamer.EmitSymbolValue(Begin, Size); 2035 Asm->OutStreamer.EmitSymbolValue(End, Size); 2036 } 2037 } 2038 2039 // And terminate the list with two 0 values. 2040 Asm->OutStreamer.EmitIntValue(0, Size); 2041 Asm->OutStreamer.EmitIntValue(0, Size); 2042 } 2043 } 2044 } 2045 2046 // DWARF5 Experimental Separate Dwarf emitters. 2047 2048 void DwarfDebug::initSkeletonUnit(const DwarfUnit &U, DIE &Die, 2049 std::unique_ptr<DwarfUnit> NewU) { 2050 NewU->addString(Die, dwarf::DW_AT_GNU_dwo_name, 2051 U.getCUNode().getSplitDebugFilename()); 2052 2053 if (!CompilationDir.empty()) 2054 NewU->addString(Die, dwarf::DW_AT_comp_dir, CompilationDir); 2055 2056 addGnuPubAttributes(*NewU, Die); 2057 2058 SkeletonHolder.addUnit(std::move(NewU)); 2059 } 2060 2061 // This DIE has the following attributes: DW_AT_comp_dir, DW_AT_stmt_list, 2062 // DW_AT_low_pc, DW_AT_high_pc, DW_AT_ranges, DW_AT_dwo_name, DW_AT_dwo_id, 2063 // DW_AT_addr_base, DW_AT_ranges_base. 2064 DwarfCompileUnit &DwarfDebug::constructSkeletonCU(const DwarfCompileUnit &CU) { 2065 2066 auto OwnedUnit = make_unique<DwarfCompileUnit>( 2067 CU.getUniqueID(), CU.getCUNode(), Asm, this, &SkeletonHolder); 2068 DwarfCompileUnit &NewCU = *OwnedUnit; 2069 NewCU.initSection(Asm->getObjFileLowering().getDwarfInfoSection(), 2070 DwarfInfoSectionSym); 2071 2072 NewCU.initStmtList(DwarfLineSectionSym); 2073 2074 initSkeletonUnit(CU, NewCU.getUnitDie(), std::move(OwnedUnit)); 2075 2076 return NewCU; 2077 } 2078 2079 // Emit the .debug_info.dwo section for separated dwarf. This contains the 2080 // compile units that would normally be in debug_info. 2081 void DwarfDebug::emitDebugInfoDWO() { 2082 assert(useSplitDwarf() && "No split dwarf debug info?"); 2083 // Don't pass an abbrev symbol, using a constant zero instead so as not to 2084 // emit relocations into the dwo file. 2085 InfoHolder.emitUnits(/* AbbrevSymbol */ nullptr); 2086 } 2087 2088 // Emit the .debug_abbrev.dwo section for separated dwarf. This contains the 2089 // abbreviations for the .debug_info.dwo section. 2090 void DwarfDebug::emitDebugAbbrevDWO() { 2091 assert(useSplitDwarf() && "No split dwarf?"); 2092 InfoHolder.emitAbbrevs(Asm->getObjFileLowering().getDwarfAbbrevDWOSection()); 2093 } 2094 2095 void DwarfDebug::emitDebugLineDWO() { 2096 assert(useSplitDwarf() && "No split dwarf?"); 2097 Asm->OutStreamer.SwitchSection( 2098 Asm->getObjFileLowering().getDwarfLineDWOSection()); 2099 SplitTypeUnitFileTable.Emit(Asm->OutStreamer); 2100 } 2101 2102 // Emit the .debug_str.dwo section for separated dwarf. This contains the 2103 // string section and is identical in format to traditional .debug_str 2104 // sections. 2105 void DwarfDebug::emitDebugStrDWO() { 2106 assert(useSplitDwarf() && "No split dwarf?"); 2107 const MCSection *OffSec = 2108 Asm->getObjFileLowering().getDwarfStrOffDWOSection(); 2109 InfoHolder.emitStrings(Asm->getObjFileLowering().getDwarfStrDWOSection(), 2110 OffSec); 2111 } 2112 2113 MCDwarfDwoLineTable *DwarfDebug::getDwoLineTable(const DwarfCompileUnit &CU) { 2114 if (!useSplitDwarf()) 2115 return nullptr; 2116 if (SingleCU) 2117 SplitTypeUnitFileTable.setCompilationDir(CU.getCUNode().getDirectory()); 2118 return &SplitTypeUnitFileTable; 2119 } 2120 2121 static uint64_t makeTypeSignature(StringRef Identifier) { 2122 MD5 Hash; 2123 Hash.update(Identifier); 2124 // ... take the least significant 8 bytes and return those. Our MD5 2125 // implementation always returns its results in little endian, swap bytes 2126 // appropriately. 2127 MD5::MD5Result Result; 2128 Hash.final(Result); 2129 return *reinterpret_cast<support::ulittle64_t *>(Result + 8); 2130 } 2131 2132 void DwarfDebug::addDwarfTypeUnitType(DwarfCompileUnit &CU, 2133 StringRef Identifier, DIE &RefDie, 2134 DICompositeType CTy) { 2135 // Fast path if we're building some type units and one has already used the 2136 // address pool we know we're going to throw away all this work anyway, so 2137 // don't bother building dependent types. 2138 if (!TypeUnitsUnderConstruction.empty() && AddrPool.hasBeenUsed()) 2139 return; 2140 2141 const DwarfTypeUnit *&TU = DwarfTypeUnits[CTy]; 2142 if (TU) { 2143 CU.addDIETypeSignature(RefDie, *TU); 2144 return; 2145 } 2146 2147 bool TopLevelType = TypeUnitsUnderConstruction.empty(); 2148 AddrPool.resetUsedFlag(); 2149 2150 auto OwnedUnit = make_unique<DwarfTypeUnit>( 2151 InfoHolder.getUnits().size() + TypeUnitsUnderConstruction.size(), CU, Asm, 2152 this, &InfoHolder, getDwoLineTable(CU)); 2153 DwarfTypeUnit &NewTU = *OwnedUnit; 2154 DIE &UnitDie = NewTU.getUnitDie(); 2155 TU = &NewTU; 2156 TypeUnitsUnderConstruction.push_back( 2157 std::make_pair(std::move(OwnedUnit), CTy)); 2158 2159 NewTU.addUInt(UnitDie, dwarf::DW_AT_language, dwarf::DW_FORM_data2, 2160 CU.getLanguage()); 2161 2162 uint64_t Signature = makeTypeSignature(Identifier); 2163 NewTU.setTypeSignature(Signature); 2164 2165 if (useSplitDwarf()) 2166 NewTU.initSection(Asm->getObjFileLowering().getDwarfTypesDWOSection()); 2167 else { 2168 CU.applyStmtList(UnitDie); 2169 NewTU.initSection( 2170 Asm->getObjFileLowering().getDwarfTypesSection(Signature)); 2171 } 2172 2173 NewTU.setType(NewTU.createTypeDIE(CTy)); 2174 2175 if (TopLevelType) { 2176 auto TypeUnitsToAdd = std::move(TypeUnitsUnderConstruction); 2177 TypeUnitsUnderConstruction.clear(); 2178 2179 // Types referencing entries in the address table cannot be placed in type 2180 // units. 2181 if (AddrPool.hasBeenUsed()) { 2182 2183 // Remove all the types built while building this type. 2184 // This is pessimistic as some of these types might not be dependent on 2185 // the type that used an address. 2186 for (const auto &TU : TypeUnitsToAdd) 2187 DwarfTypeUnits.erase(TU.second); 2188 2189 // Construct this type in the CU directly. 2190 // This is inefficient because all the dependent types will be rebuilt 2191 // from scratch, including building them in type units, discovering that 2192 // they depend on addresses, throwing them out and rebuilding them. 2193 CU.constructTypeDIE(RefDie, CTy); 2194 return; 2195 } 2196 2197 // If the type wasn't dependent on fission addresses, finish adding the type 2198 // and all its dependent types. 2199 for (auto &TU : TypeUnitsToAdd) 2200 InfoHolder.addUnit(std::move(TU.first)); 2201 } 2202 CU.addDIETypeSignature(RefDie, NewTU); 2203 } 2204 2205 // Accelerator table mutators - add each name along with its companion 2206 // DIE to the proper table while ensuring that the name that we're going 2207 // to reference is in the string table. We do this since the names we 2208 // add may not only be identical to the names in the DIE. 2209 void DwarfDebug::addAccelName(StringRef Name, const DIE &Die) { 2210 if (!useDwarfAccelTables()) 2211 return; 2212 AccelNames.AddName(Name, InfoHolder.getStringPool().getSymbol(*Asm, Name), 2213 &Die); 2214 } 2215 2216 void DwarfDebug::addAccelObjC(StringRef Name, const DIE &Die) { 2217 if (!useDwarfAccelTables()) 2218 return; 2219 AccelObjC.AddName(Name, InfoHolder.getStringPool().getSymbol(*Asm, Name), 2220 &Die); 2221 } 2222 2223 void DwarfDebug::addAccelNamespace(StringRef Name, const DIE &Die) { 2224 if (!useDwarfAccelTables()) 2225 return; 2226 AccelNamespace.AddName(Name, InfoHolder.getStringPool().getSymbol(*Asm, Name), 2227 &Die); 2228 } 2229 2230 void DwarfDebug::addAccelType(StringRef Name, const DIE &Die, char Flags) { 2231 if (!useDwarfAccelTables()) 2232 return; 2233 AccelTypes.AddName(Name, InfoHolder.getStringPool().getSymbol(*Asm, Name), 2234 &Die); 2235 } 2236