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 #define DEBUG_TYPE "dwarfdebug" 15 #include "DwarfDebug.h" 16 #include "DIE.h" 17 #include "DIEHash.h" 18 #include "DwarfAccelTable.h" 19 #include "DwarfCompileUnit.h" 20 #include "llvm/ADT/STLExtras.h" 21 #include "llvm/ADT/Statistic.h" 22 #include "llvm/ADT/StringExtras.h" 23 #include "llvm/ADT/Triple.h" 24 #include "llvm/CodeGen/MachineFunction.h" 25 #include "llvm/CodeGen/MachineModuleInfo.h" 26 #include "llvm/DIBuilder.h" 27 #include "llvm/DebugInfo.h" 28 #include "llvm/IR/Constants.h" 29 #include "llvm/IR/DataLayout.h" 30 #include "llvm/IR/Instructions.h" 31 #include "llvm/IR/Module.h" 32 #include "llvm/MC/MCAsmInfo.h" 33 #include "llvm/MC/MCSection.h" 34 #include "llvm/MC/MCStreamer.h" 35 #include "llvm/MC/MCSymbol.h" 36 #include "llvm/Support/CommandLine.h" 37 #include "llvm/Support/Debug.h" 38 #include "llvm/Support/Dwarf.h" 39 #include "llvm/Support/ErrorHandling.h" 40 #include "llvm/Support/FormattedStream.h" 41 #include "llvm/Support/MD5.h" 42 #include "llvm/Support/Path.h" 43 #include "llvm/Support/Timer.h" 44 #include "llvm/Support/ValueHandle.h" 45 #include "llvm/Target/TargetFrameLowering.h" 46 #include "llvm/Target/TargetLoweringObjectFile.h" 47 #include "llvm/Target/TargetMachine.h" 48 #include "llvm/Target/TargetOptions.h" 49 #include "llvm/Target/TargetRegisterInfo.h" 50 using namespace llvm; 51 52 static cl::opt<bool> 53 DisableDebugInfoPrinting("disable-debug-info-print", cl::Hidden, 54 cl::desc("Disable debug info printing")); 55 56 static cl::opt<bool> UnknownLocations( 57 "use-unknown-locations", cl::Hidden, 58 cl::desc("Make an absence of debug location information explicit."), 59 cl::init(false)); 60 61 static cl::opt<bool> 62 GenerateODRHash("generate-odr-hash", cl::Hidden, 63 cl::desc("Add an ODR hash to external type DIEs."), 64 cl::init(false)); 65 66 static cl::opt<bool> GenerateCUHash("generate-cu-hash", cl::Hidden, 67 cl::desc("Add the CU hash as the dwo_id."), 68 cl::init(false)); 69 70 static cl::opt<bool> 71 GenerateGnuPubSections("generate-gnu-dwarf-pub-sections", cl::Hidden, 72 cl::desc("Generate GNU-style pubnames and pubtypes"), 73 cl::init(false)); 74 75 namespace { 76 enum DefaultOnOff { 77 Default, 78 Enable, 79 Disable 80 }; 81 } 82 83 static cl::opt<DefaultOnOff> 84 DwarfAccelTables("dwarf-accel-tables", cl::Hidden, 85 cl::desc("Output prototype dwarf accelerator tables."), 86 cl::values(clEnumVal(Default, "Default for platform"), 87 clEnumVal(Enable, "Enabled"), 88 clEnumVal(Disable, "Disabled"), clEnumValEnd), 89 cl::init(Default)); 90 91 static cl::opt<DefaultOnOff> 92 SplitDwarf("split-dwarf", cl::Hidden, 93 cl::desc("Output prototype dwarf split debug info."), 94 cl::values(clEnumVal(Default, "Default for platform"), 95 clEnumVal(Enable, "Enabled"), 96 clEnumVal(Disable, "Disabled"), clEnumValEnd), 97 cl::init(Default)); 98 99 static cl::opt<DefaultOnOff> 100 DwarfPubSections("generate-dwarf-pub-sections", cl::Hidden, 101 cl::desc("Generate DWARF pubnames and pubtypes sections"), 102 cl::values(clEnumVal(Default, "Default for platform"), 103 clEnumVal(Enable, "Enabled"), 104 clEnumVal(Disable, "Disabled"), clEnumValEnd), 105 cl::init(Default)); 106 107 static const char *const DWARFGroupName = "DWARF Emission"; 108 static const char *const DbgTimerName = "DWARF Debug Writer"; 109 110 //===----------------------------------------------------------------------===// 111 112 // Configuration values for initial hash set sizes (log2). 113 // 114 static const unsigned InitAbbreviationsSetSize = 9; // log2(512) 115 116 namespace llvm { 117 118 /// resolve - Look in the DwarfDebug map for the MDNode that 119 /// corresponds to the reference. 120 template <typename T> T DbgVariable::resolve(DIRef<T> Ref) const { 121 return DD->resolve(Ref); 122 } 123 124 DIType DbgVariable::getType() const { 125 DIType Ty = Var.getType(); 126 // FIXME: isBlockByrefVariable should be reformulated in terms of complex 127 // addresses instead. 128 if (Var.isBlockByrefVariable()) { 129 /* Byref variables, in Blocks, are declared by the programmer as 130 "SomeType VarName;", but the compiler creates a 131 __Block_byref_x_VarName struct, and gives the variable VarName 132 either the struct, or a pointer to the struct, as its type. This 133 is necessary for various behind-the-scenes things the compiler 134 needs to do with by-reference variables in blocks. 135 136 However, as far as the original *programmer* is concerned, the 137 variable should still have type 'SomeType', as originally declared. 138 139 The following function dives into the __Block_byref_x_VarName 140 struct to find the original type of the variable. This will be 141 passed back to the code generating the type for the Debug 142 Information Entry for the variable 'VarName'. 'VarName' will then 143 have the original type 'SomeType' in its debug information. 144 145 The original type 'SomeType' will be the type of the field named 146 'VarName' inside the __Block_byref_x_VarName struct. 147 148 NOTE: In order for this to not completely fail on the debugger 149 side, the Debug Information Entry for the variable VarName needs to 150 have a DW_AT_location that tells the debugger how to unwind through 151 the pointers and __Block_byref_x_VarName struct to find the actual 152 value of the variable. The function addBlockByrefType does this. */ 153 DIType subType = Ty; 154 uint16_t tag = Ty.getTag(); 155 156 if (tag == dwarf::DW_TAG_pointer_type) 157 subType = resolve(DIDerivedType(Ty).getTypeDerivedFrom()); 158 159 DIArray Elements = DICompositeType(subType).getTypeArray(); 160 for (unsigned i = 0, N = Elements.getNumElements(); i < N; ++i) { 161 DIDerivedType DT(Elements.getElement(i)); 162 if (getName() == DT.getName()) 163 return (resolve(DT.getTypeDerivedFrom())); 164 } 165 } 166 return Ty; 167 } 168 169 } // end llvm namespace 170 171 /// Return Dwarf Version by checking module flags. 172 static unsigned getDwarfVersionFromModule(const Module *M) { 173 Value *Val = M->getModuleFlag("Dwarf Version"); 174 if (!Val) 175 return dwarf::DWARF_VERSION; 176 return cast<ConstantInt>(Val)->getZExtValue(); 177 } 178 179 DwarfDebug::DwarfDebug(AsmPrinter *A, Module *M) 180 : Asm(A), MMI(Asm->MMI), FirstCU(0), 181 AbbreviationsSet(InitAbbreviationsSetSize), 182 SourceIdMap(DIEValueAllocator), PrevLabel(NULL), GlobalCUIndexCount(0), 183 InfoHolder(A, &AbbreviationsSet, Abbreviations, "info_string", 184 DIEValueAllocator), 185 SkeletonAbbrevSet(InitAbbreviationsSetSize), 186 SkeletonHolder(A, &SkeletonAbbrevSet, SkeletonAbbrevs, "skel_string", 187 DIEValueAllocator) { 188 189 DwarfInfoSectionSym = DwarfAbbrevSectionSym = 0; 190 DwarfStrSectionSym = TextSectionSym = 0; 191 DwarfDebugRangeSectionSym = DwarfDebugLocSectionSym = DwarfLineSectionSym = 0; 192 DwarfAddrSectionSym = 0; 193 DwarfAbbrevDWOSectionSym = DwarfStrDWOSectionSym = 0; 194 FunctionBeginSym = FunctionEndSym = 0; 195 196 // Turn on accelerator tables for Darwin by default, pubnames by 197 // default for non-Darwin, and handle split dwarf. 198 bool IsDarwin = Triple(A->getTargetTriple()).isOSDarwin(); 199 200 if (DwarfAccelTables == Default) 201 HasDwarfAccelTables = IsDarwin; 202 else 203 HasDwarfAccelTables = DwarfAccelTables == Enable; 204 205 if (SplitDwarf == Default) 206 HasSplitDwarf = false; 207 else 208 HasSplitDwarf = SplitDwarf == Enable; 209 210 if (DwarfPubSections == Default) 211 HasDwarfPubSections = !IsDarwin; 212 else 213 HasDwarfPubSections = DwarfPubSections == Enable; 214 215 DwarfVersion = getDwarfVersionFromModule(MMI->getModule()); 216 217 { 218 NamedRegionTimer T(DbgTimerName, DWARFGroupName, TimePassesIsEnabled); 219 beginModule(); 220 } 221 } 222 223 // Switch to the specified MCSection and emit an assembler 224 // temporary label to it if SymbolStem is specified. 225 static MCSymbol *emitSectionSym(AsmPrinter *Asm, const MCSection *Section, 226 const char *SymbolStem = 0) { 227 Asm->OutStreamer.SwitchSection(Section); 228 if (!SymbolStem) 229 return 0; 230 231 MCSymbol *TmpSym = Asm->GetTempSymbol(SymbolStem); 232 Asm->OutStreamer.EmitLabel(TmpSym); 233 return TmpSym; 234 } 235 236 MCSymbol *DwarfUnits::getStringPoolSym() { 237 return Asm->GetTempSymbol(StringPref); 238 } 239 240 MCSymbol *DwarfUnits::getStringPoolEntry(StringRef Str) { 241 std::pair<MCSymbol *, unsigned> &Entry = 242 StringPool.GetOrCreateValue(Str).getValue(); 243 if (Entry.first) 244 return Entry.first; 245 246 Entry.second = NextStringPoolNumber++; 247 return Entry.first = Asm->GetTempSymbol(StringPref, Entry.second); 248 } 249 250 unsigned DwarfUnits::getStringPoolIndex(StringRef Str) { 251 std::pair<MCSymbol *, unsigned> &Entry = 252 StringPool.GetOrCreateValue(Str).getValue(); 253 if (Entry.first) 254 return Entry.second; 255 256 Entry.second = NextStringPoolNumber++; 257 Entry.first = Asm->GetTempSymbol(StringPref, Entry.second); 258 return Entry.second; 259 } 260 261 unsigned DwarfUnits::getAddrPoolIndex(const MCSymbol *Sym) { 262 return getAddrPoolIndex(MCSymbolRefExpr::Create(Sym, Asm->OutContext)); 263 } 264 265 unsigned DwarfUnits::getAddrPoolIndex(const MCExpr *Sym) { 266 std::pair<DenseMap<const MCExpr *, unsigned>::iterator, bool> P = 267 AddressPool.insert(std::make_pair(Sym, NextAddrPoolNumber)); 268 if (P.second) 269 ++NextAddrPoolNumber; 270 return P.first->second; 271 } 272 273 // Define a unique number for the abbreviation. 274 // 275 void DwarfUnits::assignAbbrevNumber(DIEAbbrev &Abbrev) { 276 // Check the set for priors. 277 DIEAbbrev *InSet = AbbreviationsSet->GetOrInsertNode(&Abbrev); 278 279 // If it's newly added. 280 if (InSet == &Abbrev) { 281 // Add to abbreviation list. 282 Abbreviations.push_back(&Abbrev); 283 284 // Assign the vector position + 1 as its number. 285 Abbrev.setNumber(Abbreviations.size()); 286 } else { 287 // Assign existing abbreviation number. 288 Abbrev.setNumber(InSet->getNumber()); 289 } 290 } 291 292 static bool isObjCClass(StringRef Name) { 293 return Name.startswith("+") || Name.startswith("-"); 294 } 295 296 static bool hasObjCCategory(StringRef Name) { 297 if (!isObjCClass(Name)) 298 return false; 299 300 return Name.find(") ") != StringRef::npos; 301 } 302 303 static void getObjCClassCategory(StringRef In, StringRef &Class, 304 StringRef &Category) { 305 if (!hasObjCCategory(In)) { 306 Class = In.slice(In.find('[') + 1, In.find(' ')); 307 Category = ""; 308 return; 309 } 310 311 Class = In.slice(In.find('[') + 1, In.find('(')); 312 Category = In.slice(In.find('[') + 1, In.find(' ')); 313 return; 314 } 315 316 static StringRef getObjCMethodName(StringRef In) { 317 return In.slice(In.find(' ') + 1, In.find(']')); 318 } 319 320 // Helper for sorting sections into a stable output order. 321 static bool SectionSort(const MCSection *A, const MCSection *B) { 322 std::string LA = (A ? A->getLabelBeginName() : ""); 323 std::string LB = (B ? B->getLabelBeginName() : ""); 324 return LA < LB; 325 } 326 327 // Add the various names to the Dwarf accelerator table names. 328 // TODO: Determine whether or not we should add names for programs 329 // that do not have a DW_AT_name or DW_AT_linkage_name field - this 330 // is only slightly different than the lookup of non-standard ObjC names. 331 static void addSubprogramNames(CompileUnit *TheCU, DISubprogram SP, DIE *Die) { 332 if (!SP.isDefinition()) 333 return; 334 TheCU->addAccelName(SP.getName(), Die); 335 336 // If the linkage name is different than the name, go ahead and output 337 // that as well into the name table. 338 if (SP.getLinkageName() != "" && SP.getName() != SP.getLinkageName()) 339 TheCU->addAccelName(SP.getLinkageName(), Die); 340 341 // If this is an Objective-C selector name add it to the ObjC accelerator 342 // too. 343 if (isObjCClass(SP.getName())) { 344 StringRef Class, Category; 345 getObjCClassCategory(SP.getName(), Class, Category); 346 TheCU->addAccelObjC(Class, Die); 347 if (Category != "") 348 TheCU->addAccelObjC(Category, Die); 349 // Also add the base method name to the name table. 350 TheCU->addAccelName(getObjCMethodName(SP.getName()), Die); 351 } 352 } 353 354 /// isSubprogramContext - Return true if Context is either a subprogram 355 /// or another context nested inside a subprogram. 356 bool DwarfDebug::isSubprogramContext(const MDNode *Context) { 357 if (!Context) 358 return false; 359 DIDescriptor D(Context); 360 if (D.isSubprogram()) 361 return true; 362 if (D.isType()) 363 return isSubprogramContext(resolve(DIType(Context).getContext())); 364 return false; 365 } 366 367 // Find DIE for the given subprogram and attach appropriate DW_AT_low_pc 368 // and DW_AT_high_pc attributes. If there are global variables in this 369 // scope then create and insert DIEs for these variables. 370 DIE *DwarfDebug::updateSubprogramScopeDIE(CompileUnit *SPCU, DISubprogram SP) { 371 DIE *SPDie = SPCU->getDIE(SP); 372 373 assert(SPDie && "Unable to find subprogram DIE!"); 374 375 // If we're updating an abstract DIE, then we will be adding the children and 376 // object pointer later on. But what we don't want to do is process the 377 // concrete DIE twice. 378 if (DIE *AbsSPDIE = AbstractSPDies.lookup(SP)) { 379 // Pick up abstract subprogram DIE. 380 SPDie = SPCU->createAndAddDIE(dwarf::DW_TAG_subprogram, *SPCU->getCUDie()); 381 SPCU->addDIEEntry(SPDie, dwarf::DW_AT_abstract_origin, AbsSPDIE); 382 } else { 383 DISubprogram SPDecl = SP.getFunctionDeclaration(); 384 if (!SPDecl.isSubprogram()) { 385 // There is not any need to generate specification DIE for a function 386 // defined at compile unit level. If a function is defined inside another 387 // function then gdb prefers the definition at top level and but does not 388 // expect specification DIE in parent function. So avoid creating 389 // specification DIE for a function defined inside a function. 390 DIScope SPContext = resolve(SP.getContext()); 391 if (SP.isDefinition() && !SPContext.isCompileUnit() && 392 !SPContext.isFile() && !isSubprogramContext(SPContext)) { 393 SPCU->addFlag(SPDie, dwarf::DW_AT_declaration); 394 395 // Add arguments. 396 DICompositeType SPTy = SP.getType(); 397 DIArray Args = SPTy.getTypeArray(); 398 uint16_t SPTag = SPTy.getTag(); 399 if (SPTag == dwarf::DW_TAG_subroutine_type) 400 for (unsigned i = 1, N = Args.getNumElements(); i < N; ++i) { 401 DIE *Arg = 402 SPCU->createAndAddDIE(dwarf::DW_TAG_formal_parameter, *SPDie); 403 DIType ATy(Args.getElement(i)); 404 SPCU->addType(Arg, ATy); 405 if (ATy.isArtificial()) 406 SPCU->addFlag(Arg, dwarf::DW_AT_artificial); 407 if (ATy.isObjectPointer()) 408 SPCU->addDIEEntry(SPDie, dwarf::DW_AT_object_pointer, Arg); 409 } 410 DIE *SPDeclDie = SPDie; 411 SPDie = 412 SPCU->createAndAddDIE(dwarf::DW_TAG_subprogram, *SPCU->getCUDie()); 413 SPCU->addDIEEntry(SPDie, dwarf::DW_AT_specification, SPDeclDie); 414 } 415 } 416 } 417 418 SPCU->addLabelAddress( 419 SPDie, dwarf::DW_AT_low_pc, 420 Asm->GetTempSymbol("func_begin", Asm->getFunctionNumber())); 421 SPCU->addLabelAddress( 422 SPDie, dwarf::DW_AT_high_pc, 423 Asm->GetTempSymbol("func_end", Asm->getFunctionNumber())); 424 const TargetRegisterInfo *RI = Asm->TM.getRegisterInfo(); 425 MachineLocation Location(RI->getFrameRegister(*Asm->MF)); 426 SPCU->addAddress(SPDie, dwarf::DW_AT_frame_base, Location); 427 428 // Add name to the name table, we do this here because we're guaranteed 429 // to have concrete versions of our DW_TAG_subprogram nodes. 430 addSubprogramNames(SPCU, SP, SPDie); 431 432 return SPDie; 433 } 434 435 /// Check whether we should create a DIE for the given Scope, return true 436 /// if we don't create a DIE (the corresponding DIE is null). 437 bool DwarfDebug::isLexicalScopeDIENull(LexicalScope *Scope) { 438 if (Scope->isAbstractScope()) 439 return false; 440 441 // We don't create a DIE if there is no Range. 442 const SmallVectorImpl<InsnRange> &Ranges = Scope->getRanges(); 443 if (Ranges.empty()) 444 return true; 445 446 if (Ranges.size() > 1) 447 return false; 448 449 // We don't create a DIE if we have a single Range and the end label 450 // is null. 451 SmallVectorImpl<InsnRange>::const_iterator RI = Ranges.begin(); 452 MCSymbol *End = getLabelAfterInsn(RI->second); 453 return !End; 454 } 455 456 // Construct new DW_TAG_lexical_block for this scope and attach 457 // DW_AT_low_pc/DW_AT_high_pc labels. 458 DIE *DwarfDebug::constructLexicalScopeDIE(CompileUnit *TheCU, 459 LexicalScope *Scope) { 460 if (isLexicalScopeDIENull(Scope)) 461 return 0; 462 463 DIE *ScopeDIE = new DIE(dwarf::DW_TAG_lexical_block); 464 if (Scope->isAbstractScope()) 465 return ScopeDIE; 466 467 const SmallVectorImpl<InsnRange> &Ranges = Scope->getRanges(); 468 // If we have multiple ranges, emit them into the range section. 469 if (Ranges.size() > 1) { 470 // .debug_range section has not been laid out yet. Emit offset in 471 // .debug_range as a uint, size 4, for now. emitDIE will handle 472 // DW_AT_ranges appropriately. 473 TheCU->addUInt(ScopeDIE, dwarf::DW_AT_ranges, dwarf::DW_FORM_data4, 474 DebugRangeSymbols.size() * 475 Asm->getDataLayout().getPointerSize()); 476 for (SmallVectorImpl<InsnRange>::const_iterator RI = Ranges.begin(), 477 RE = Ranges.end(); 478 RI != RE; ++RI) { 479 DebugRangeSymbols.push_back(getLabelBeforeInsn(RI->first)); 480 DebugRangeSymbols.push_back(getLabelAfterInsn(RI->second)); 481 } 482 483 // Terminate the range list. 484 DebugRangeSymbols.push_back(NULL); 485 DebugRangeSymbols.push_back(NULL); 486 return ScopeDIE; 487 } 488 489 // Construct the address range for this DIE. 490 SmallVectorImpl<InsnRange>::const_iterator RI = Ranges.begin(); 491 MCSymbol *Start = getLabelBeforeInsn(RI->first); 492 MCSymbol *End = getLabelAfterInsn(RI->second); 493 assert(End && "End label should not be null!"); 494 495 assert(Start->isDefined() && "Invalid starting label for an inlined scope!"); 496 assert(End->isDefined() && "Invalid end label for an inlined scope!"); 497 498 TheCU->addLabelAddress(ScopeDIE, dwarf::DW_AT_low_pc, Start); 499 TheCU->addLabelAddress(ScopeDIE, dwarf::DW_AT_high_pc, End); 500 501 return ScopeDIE; 502 } 503 504 // This scope represents inlined body of a function. Construct DIE to 505 // represent this concrete inlined copy of the function. 506 DIE *DwarfDebug::constructInlinedScopeDIE(CompileUnit *TheCU, 507 LexicalScope *Scope) { 508 const SmallVectorImpl<InsnRange> &Ranges = Scope->getRanges(); 509 assert(Ranges.empty() == false && 510 "LexicalScope does not have instruction markers!"); 511 512 if (!Scope->getScopeNode()) 513 return NULL; 514 DIScope DS(Scope->getScopeNode()); 515 DISubprogram InlinedSP = getDISubprogram(DS); 516 DIE *OriginDIE = TheCU->getDIE(InlinedSP); 517 if (!OriginDIE) { 518 DEBUG(dbgs() << "Unable to find original DIE for an inlined subprogram."); 519 return NULL; 520 } 521 522 DIE *ScopeDIE = new DIE(dwarf::DW_TAG_inlined_subroutine); 523 TheCU->addDIEEntry(ScopeDIE, dwarf::DW_AT_abstract_origin, OriginDIE); 524 525 if (Ranges.size() > 1) { 526 // .debug_range section has not been laid out yet. Emit offset in 527 // .debug_range as a uint, size 4, for now. emitDIE will handle 528 // DW_AT_ranges appropriately. 529 TheCU->addUInt(ScopeDIE, dwarf::DW_AT_ranges, dwarf::DW_FORM_data4, 530 DebugRangeSymbols.size() * 531 Asm->getDataLayout().getPointerSize()); 532 for (SmallVectorImpl<InsnRange>::const_iterator RI = Ranges.begin(), 533 RE = Ranges.end(); 534 RI != RE; ++RI) { 535 DebugRangeSymbols.push_back(getLabelBeforeInsn(RI->first)); 536 DebugRangeSymbols.push_back(getLabelAfterInsn(RI->second)); 537 } 538 DebugRangeSymbols.push_back(NULL); 539 DebugRangeSymbols.push_back(NULL); 540 } else { 541 SmallVectorImpl<InsnRange>::const_iterator RI = Ranges.begin(); 542 MCSymbol *StartLabel = getLabelBeforeInsn(RI->first); 543 MCSymbol *EndLabel = getLabelAfterInsn(RI->second); 544 545 if (StartLabel == 0 || EndLabel == 0) 546 llvm_unreachable("Unexpected Start and End labels for an inlined scope!"); 547 548 assert(StartLabel->isDefined() && 549 "Invalid starting label for an inlined scope!"); 550 assert(EndLabel->isDefined() && "Invalid end label for an inlined scope!"); 551 552 TheCU->addLabelAddress(ScopeDIE, dwarf::DW_AT_low_pc, StartLabel); 553 TheCU->addLabelAddress(ScopeDIE, dwarf::DW_AT_high_pc, EndLabel); 554 } 555 556 InlinedSubprogramDIEs.insert(OriginDIE); 557 558 // Add the call site information to the DIE. 559 DILocation DL(Scope->getInlinedAt()); 560 TheCU->addUInt(ScopeDIE, dwarf::DW_AT_call_file, None, 561 getOrCreateSourceID(DL.getFilename(), DL.getDirectory(), 562 TheCU->getUniqueID())); 563 TheCU->addUInt(ScopeDIE, dwarf::DW_AT_call_line, None, DL.getLineNumber()); 564 565 // Add name to the name table, we do this here because we're guaranteed 566 // to have concrete versions of our DW_TAG_inlined_subprogram nodes. 567 addSubprogramNames(TheCU, InlinedSP, ScopeDIE); 568 569 return ScopeDIE; 570 } 571 572 DIE *DwarfDebug::createScopeChildrenDIE(CompileUnit *TheCU, LexicalScope *Scope, 573 SmallVectorImpl<DIE *> &Children) { 574 DIE *ObjectPointer = NULL; 575 576 // Collect arguments for current function. 577 if (LScopes.isCurrentFunctionScope(Scope)) 578 for (unsigned i = 0, N = CurrentFnArguments.size(); i < N; ++i) 579 if (DbgVariable *ArgDV = CurrentFnArguments[i]) 580 if (DIE *Arg = 581 TheCU->constructVariableDIE(*ArgDV, Scope->isAbstractScope())) { 582 Children.push_back(Arg); 583 if (ArgDV->isObjectPointer()) 584 ObjectPointer = Arg; 585 } 586 587 // Collect lexical scope children first. 588 const SmallVectorImpl<DbgVariable *> &Variables = 589 ScopeVariables.lookup(Scope); 590 for (unsigned i = 0, N = Variables.size(); i < N; ++i) 591 if (DIE *Variable = TheCU->constructVariableDIE(*Variables[i], 592 Scope->isAbstractScope())) { 593 Children.push_back(Variable); 594 if (Variables[i]->isObjectPointer()) 595 ObjectPointer = Variable; 596 } 597 const SmallVectorImpl<LexicalScope *> &Scopes = Scope->getChildren(); 598 for (unsigned j = 0, M = Scopes.size(); j < M; ++j) 599 if (DIE *Nested = constructScopeDIE(TheCU, Scopes[j])) 600 Children.push_back(Nested); 601 return ObjectPointer; 602 } 603 604 // Construct a DIE for this scope. 605 DIE *DwarfDebug::constructScopeDIE(CompileUnit *TheCU, LexicalScope *Scope) { 606 if (!Scope || !Scope->getScopeNode()) 607 return NULL; 608 609 DIScope DS(Scope->getScopeNode()); 610 611 SmallVector<DIE *, 8> Children; 612 DIE *ObjectPointer = NULL; 613 bool ChildrenCreated = false; 614 615 // We try to create the scope DIE first, then the children DIEs. This will 616 // avoid creating un-used children then removing them later when we find out 617 // the scope DIE is null. 618 DIE *ScopeDIE = NULL; 619 if (Scope->getInlinedAt()) 620 ScopeDIE = constructInlinedScopeDIE(TheCU, Scope); 621 else if (DS.isSubprogram()) { 622 ProcessedSPNodes.insert(DS); 623 if (Scope->isAbstractScope()) { 624 ScopeDIE = TheCU->getDIE(DS); 625 // Note down abstract DIE. 626 if (ScopeDIE) 627 AbstractSPDies.insert(std::make_pair(DS, ScopeDIE)); 628 } else 629 ScopeDIE = updateSubprogramScopeDIE(TheCU, DISubprogram(DS)); 630 } else { 631 // Early exit when we know the scope DIE is going to be null. 632 if (isLexicalScopeDIENull(Scope)) 633 return NULL; 634 635 // We create children here when we know the scope DIE is not going to be 636 // null and the children will be added to the scope DIE. 637 ObjectPointer = createScopeChildrenDIE(TheCU, Scope, Children); 638 ChildrenCreated = true; 639 640 // There is no need to emit empty lexical block DIE. 641 std::pair<ImportedEntityMap::const_iterator, 642 ImportedEntityMap::const_iterator> Range = 643 std::equal_range( 644 ScopesWithImportedEntities.begin(), 645 ScopesWithImportedEntities.end(), 646 std::pair<const MDNode *, const MDNode *>(DS, (const MDNode *)0), 647 less_first()); 648 if (Children.empty() && Range.first == Range.second) 649 return NULL; 650 ScopeDIE = constructLexicalScopeDIE(TheCU, Scope); 651 assert(ScopeDIE && "Scope DIE should not be null."); 652 for (ImportedEntityMap::const_iterator i = Range.first; i != Range.second; 653 ++i) 654 constructImportedEntityDIE(TheCU, i->second, ScopeDIE); 655 } 656 657 if (!ScopeDIE) { 658 assert(Children.empty() && 659 "We create children only when the scope DIE is not null."); 660 return NULL; 661 } 662 if (!ChildrenCreated) 663 // We create children when the scope DIE is not null. 664 ObjectPointer = createScopeChildrenDIE(TheCU, Scope, Children); 665 666 // Add children 667 for (SmallVectorImpl<DIE *>::iterator I = Children.begin(), 668 E = Children.end(); 669 I != E; ++I) 670 ScopeDIE->addChild(*I); 671 672 if (DS.isSubprogram() && ObjectPointer != NULL) 673 TheCU->addDIEEntry(ScopeDIE, dwarf::DW_AT_object_pointer, ObjectPointer); 674 675 if (DS.isSubprogram()) 676 TheCU->addPubTypes(DISubprogram(DS)); 677 678 return ScopeDIE; 679 } 680 681 // Look up the source id with the given directory and source file names. 682 // If none currently exists, create a new id and insert it in the 683 // SourceIds map. This can update DirectoryNames and SourceFileNames maps 684 // as well. 685 unsigned DwarfDebug::getOrCreateSourceID(StringRef FileName, StringRef DirName, 686 unsigned CUID) { 687 // If we use .loc in assembly, we can't separate .file entries according to 688 // compile units. Thus all files will belong to the default compile unit. 689 690 // FIXME: add a better feature test than hasRawTextSupport. Even better, 691 // extend .file to support this. 692 if (Asm->TM.hasMCUseLoc() && Asm->OutStreamer.hasRawTextSupport()) 693 CUID = 0; 694 695 // If FE did not provide a file name, then assume stdin. 696 if (FileName.empty()) 697 return getOrCreateSourceID("<stdin>", StringRef(), CUID); 698 699 // TODO: this might not belong here. See if we can factor this better. 700 if (DirName == CompilationDir) 701 DirName = ""; 702 703 // FileIDCUMap stores the current ID for the given compile unit. 704 unsigned SrcId = FileIDCUMap[CUID] + 1; 705 706 // We look up the CUID/file/dir by concatenating them with a zero byte. 707 SmallString<128> NamePair; 708 NamePair += utostr(CUID); 709 NamePair += '\0'; 710 NamePair += DirName; 711 NamePair += '\0'; // Zero bytes are not allowed in paths. 712 NamePair += FileName; 713 714 StringMapEntry<unsigned> &Ent = SourceIdMap.GetOrCreateValue(NamePair, SrcId); 715 if (Ent.getValue() != SrcId) 716 return Ent.getValue(); 717 718 FileIDCUMap[CUID] = SrcId; 719 // Print out a .file directive to specify files for .loc directives. 720 Asm->OutStreamer.EmitDwarfFileDirective(SrcId, DirName, FileName, CUID); 721 722 return SrcId; 723 } 724 725 // Create new CompileUnit for the given metadata node with tag 726 // DW_TAG_compile_unit. 727 CompileUnit *DwarfDebug::constructCompileUnit(DICompileUnit DIUnit) { 728 StringRef FN = DIUnit.getFilename(); 729 CompilationDir = DIUnit.getDirectory(); 730 731 DIE *Die = new DIE(dwarf::DW_TAG_compile_unit); 732 CompileUnit *NewCU = new CompileUnit(GlobalCUIndexCount++, Die, DIUnit, Asm, 733 this, &InfoHolder); 734 735 FileIDCUMap[NewCU->getUniqueID()] = 0; 736 // Call this to emit a .file directive if it wasn't emitted for the source 737 // file this CU comes from yet. 738 getOrCreateSourceID(FN, CompilationDir, NewCU->getUniqueID()); 739 740 NewCU->addString(Die, dwarf::DW_AT_producer, DIUnit.getProducer()); 741 NewCU->addUInt(Die, dwarf::DW_AT_language, dwarf::DW_FORM_data2, 742 DIUnit.getLanguage()); 743 NewCU->addString(Die, dwarf::DW_AT_name, FN); 744 745 // 2.17.1 requires that we use DW_AT_low_pc for a single entry point 746 // into an entity. We're using 0 (or a NULL label) for this. For 747 // split dwarf it's in the skeleton CU so omit it here. 748 if (!useSplitDwarf()) 749 NewCU->addLabelAddress(Die, dwarf::DW_AT_low_pc, NULL); 750 751 // Define start line table label for each Compile Unit. 752 MCSymbol *LineTableStartSym = 753 Asm->GetTempSymbol("line_table_start", NewCU->getUniqueID()); 754 Asm->OutStreamer.getContext().setMCLineTableSymbol(LineTableStartSym, 755 NewCU->getUniqueID()); 756 757 // Use a single line table if we are using .loc and generating assembly. 758 bool UseTheFirstCU = 759 (Asm->TM.hasMCUseLoc() && Asm->OutStreamer.hasRawTextSupport()) || 760 (NewCU->getUniqueID() == 0); 761 762 if (!useSplitDwarf()) { 763 // DW_AT_stmt_list is a offset of line number information for this 764 // compile unit in debug_line section. For split dwarf this is 765 // left in the skeleton CU and so not included. 766 // The line table entries are not always emitted in assembly, so it 767 // is not okay to use line_table_start here. 768 if (Asm->MAI->doesDwarfUseRelocationsAcrossSections()) 769 NewCU->addLabel(Die, dwarf::DW_AT_stmt_list, dwarf::DW_FORM_sec_offset, 770 UseTheFirstCU ? Asm->GetTempSymbol("section_line") 771 : LineTableStartSym); 772 else if (UseTheFirstCU) 773 NewCU->addUInt(Die, dwarf::DW_AT_stmt_list, dwarf::DW_FORM_data4, 0); 774 else 775 NewCU->addDelta(Die, dwarf::DW_AT_stmt_list, dwarf::DW_FORM_data4, 776 LineTableStartSym, DwarfLineSectionSym); 777 778 // If we're using split dwarf the compilation dir is going to be in the 779 // skeleton CU and so we don't need to duplicate it here. 780 if (!CompilationDir.empty()) 781 NewCU->addString(Die, dwarf::DW_AT_comp_dir, CompilationDir); 782 783 // Flags to let the linker know we have emitted new style pubnames. Only 784 // emit it here if we don't have a skeleton CU for split dwarf. 785 if (GenerateGnuPubSections) { 786 if (Asm->MAI->doesDwarfUseRelocationsAcrossSections()) 787 NewCU->addLabel( 788 Die, dwarf::DW_AT_GNU_pubnames, dwarf::DW_FORM_sec_offset, 789 Asm->GetTempSymbol("gnu_pubnames", NewCU->getUniqueID())); 790 else 791 NewCU->addDelta( 792 Die, dwarf::DW_AT_GNU_pubnames, dwarf::DW_FORM_data4, 793 Asm->GetTempSymbol("gnu_pubnames", NewCU->getUniqueID()), 794 DwarfGnuPubNamesSectionSym); 795 796 if (Asm->MAI->doesDwarfUseRelocationsAcrossSections()) 797 NewCU->addLabel( 798 Die, dwarf::DW_AT_GNU_pubtypes, dwarf::DW_FORM_sec_offset, 799 Asm->GetTempSymbol("gnu_pubtypes", NewCU->getUniqueID())); 800 else 801 NewCU->addDelta( 802 Die, dwarf::DW_AT_GNU_pubtypes, dwarf::DW_FORM_data4, 803 Asm->GetTempSymbol("gnu_pubtypes", NewCU->getUniqueID()), 804 DwarfGnuPubTypesSectionSym); 805 } 806 } 807 808 if (DIUnit.isOptimized()) 809 NewCU->addFlag(Die, dwarf::DW_AT_APPLE_optimized); 810 811 StringRef Flags = DIUnit.getFlags(); 812 if (!Flags.empty()) 813 NewCU->addString(Die, dwarf::DW_AT_APPLE_flags, Flags); 814 815 if (unsigned RVer = DIUnit.getRunTimeVersion()) 816 NewCU->addUInt(Die, dwarf::DW_AT_APPLE_major_runtime_vers, 817 dwarf::DW_FORM_data1, RVer); 818 819 if (!FirstCU) 820 FirstCU = NewCU; 821 822 InfoHolder.addUnit(NewCU); 823 824 CUMap.insert(std::make_pair(DIUnit, NewCU)); 825 CUDieMap.insert(std::make_pair(Die, NewCU)); 826 return NewCU; 827 } 828 829 // Construct subprogram DIE. 830 void DwarfDebug::constructSubprogramDIE(CompileUnit *TheCU, const MDNode *N) { 831 // FIXME: We should only call this routine once, however, during LTO if a 832 // program is defined in multiple CUs we could end up calling it out of 833 // beginModule as we walk the CUs. 834 835 CompileUnit *&CURef = SPMap[N]; 836 if (CURef) 837 return; 838 CURef = TheCU; 839 840 DISubprogram SP(N); 841 if (!SP.isDefinition()) 842 // This is a method declaration which will be handled while constructing 843 // class type. 844 return; 845 846 DIE *SubprogramDie = TheCU->getOrCreateSubprogramDIE(SP); 847 848 // Expose as a global name. 849 TheCU->addGlobalName(SP.getName(), SubprogramDie, resolve(SP.getContext())); 850 } 851 852 void DwarfDebug::constructImportedEntityDIE(CompileUnit *TheCU, 853 const MDNode *N) { 854 DIImportedEntity Module(N); 855 if (!Module.Verify()) 856 return; 857 if (DIE *D = TheCU->getOrCreateContextDIE(Module.getContext())) 858 constructImportedEntityDIE(TheCU, Module, D); 859 } 860 861 void DwarfDebug::constructImportedEntityDIE(CompileUnit *TheCU, const MDNode *N, 862 DIE *Context) { 863 DIImportedEntity Module(N); 864 if (!Module.Verify()) 865 return; 866 return constructImportedEntityDIE(TheCU, Module, Context); 867 } 868 869 void DwarfDebug::constructImportedEntityDIE(CompileUnit *TheCU, 870 const DIImportedEntity &Module, 871 DIE *Context) { 872 assert(Module.Verify() && 873 "Use one of the MDNode * overloads to handle invalid metadata"); 874 assert(Context && "Should always have a context for an imported_module"); 875 DIE *IMDie = new DIE(Module.getTag()); 876 TheCU->insertDIE(Module, IMDie); 877 DIE *EntityDie; 878 DIDescriptor Entity = Module.getEntity(); 879 if (Entity.isNameSpace()) 880 EntityDie = TheCU->getOrCreateNameSpace(DINameSpace(Entity)); 881 else if (Entity.isSubprogram()) 882 EntityDie = TheCU->getOrCreateSubprogramDIE(DISubprogram(Entity)); 883 else if (Entity.isType()) 884 EntityDie = TheCU->getOrCreateTypeDIE(DIType(Entity)); 885 else 886 EntityDie = TheCU->getDIE(Entity); 887 unsigned FileID = getOrCreateSourceID(Module.getContext().getFilename(), 888 Module.getContext().getDirectory(), 889 TheCU->getUniqueID()); 890 TheCU->addUInt(IMDie, dwarf::DW_AT_decl_file, None, FileID); 891 TheCU->addUInt(IMDie, dwarf::DW_AT_decl_line, None, Module.getLineNumber()); 892 TheCU->addDIEEntry(IMDie, dwarf::DW_AT_import, EntityDie); 893 StringRef Name = Module.getName(); 894 if (!Name.empty()) 895 TheCU->addString(IMDie, dwarf::DW_AT_name, Name); 896 Context->addChild(IMDie); 897 } 898 899 // Emit all Dwarf sections that should come prior to the content. Create 900 // global DIEs and emit initial debug info sections. This is invoked by 901 // the target AsmPrinter. 902 void DwarfDebug::beginModule() { 903 if (DisableDebugInfoPrinting) 904 return; 905 906 const Module *M = MMI->getModule(); 907 908 // If module has named metadata anchors then use them, otherwise scan the 909 // module using debug info finder to collect debug info. 910 NamedMDNode *CU_Nodes = M->getNamedMetadata("llvm.dbg.cu"); 911 if (!CU_Nodes) 912 return; 913 TypeIdentifierMap = generateDITypeIdentifierMap(CU_Nodes); 914 915 // Emit initial sections so we can reference labels later. 916 emitSectionLabels(); 917 918 for (unsigned i = 0, e = CU_Nodes->getNumOperands(); i != e; ++i) { 919 DICompileUnit CUNode(CU_Nodes->getOperand(i)); 920 CompileUnit *CU = constructCompileUnit(CUNode); 921 DIArray ImportedEntities = CUNode.getImportedEntities(); 922 for (unsigned i = 0, e = ImportedEntities.getNumElements(); i != e; ++i) 923 ScopesWithImportedEntities.push_back(std::make_pair( 924 DIImportedEntity(ImportedEntities.getElement(i)).getContext(), 925 ImportedEntities.getElement(i))); 926 std::sort(ScopesWithImportedEntities.begin(), 927 ScopesWithImportedEntities.end(), less_first()); 928 DIArray GVs = CUNode.getGlobalVariables(); 929 for (unsigned i = 0, e = GVs.getNumElements(); i != e; ++i) 930 CU->createGlobalVariableDIE(DIGlobalVariable(GVs.getElement(i))); 931 DIArray SPs = CUNode.getSubprograms(); 932 for (unsigned i = 0, e = SPs.getNumElements(); i != e; ++i) 933 constructSubprogramDIE(CU, SPs.getElement(i)); 934 DIArray EnumTypes = CUNode.getEnumTypes(); 935 for (unsigned i = 0, e = EnumTypes.getNumElements(); i != e; ++i) 936 CU->getOrCreateTypeDIE(EnumTypes.getElement(i)); 937 DIArray RetainedTypes = CUNode.getRetainedTypes(); 938 for (unsigned i = 0, e = RetainedTypes.getNumElements(); i != e; ++i) 939 CU->getOrCreateTypeDIE(RetainedTypes.getElement(i)); 940 // Emit imported_modules last so that the relevant context is already 941 // available. 942 for (unsigned i = 0, e = ImportedEntities.getNumElements(); i != e; ++i) 943 constructImportedEntityDIE(CU, ImportedEntities.getElement(i)); 944 } 945 946 // Tell MMI that we have debug info. 947 MMI->setDebugInfoAvailability(true); 948 949 // Prime section data. 950 SectionMap[Asm->getObjFileLowering().getTextSection()]; 951 } 952 953 // Attach DW_AT_inline attribute with inlined subprogram DIEs. 954 void DwarfDebug::computeInlinedDIEs() { 955 // Attach DW_AT_inline attribute with inlined subprogram DIEs. 956 for (SmallPtrSet<DIE *, 4>::iterator AI = InlinedSubprogramDIEs.begin(), 957 AE = InlinedSubprogramDIEs.end(); 958 AI != AE; ++AI) { 959 DIE *ISP = *AI; 960 FirstCU->addUInt(ISP, dwarf::DW_AT_inline, None, dwarf::DW_INL_inlined); 961 } 962 for (DenseMap<const MDNode *, DIE *>::iterator AI = AbstractSPDies.begin(), 963 AE = AbstractSPDies.end(); 964 AI != AE; ++AI) { 965 DIE *ISP = AI->second; 966 if (InlinedSubprogramDIEs.count(ISP)) 967 continue; 968 FirstCU->addUInt(ISP, dwarf::DW_AT_inline, None, dwarf::DW_INL_inlined); 969 } 970 } 971 972 // Collect info for variables that were optimized out. 973 void DwarfDebug::collectDeadVariables() { 974 const Module *M = MMI->getModule(); 975 976 if (NamedMDNode *CU_Nodes = M->getNamedMetadata("llvm.dbg.cu")) { 977 for (unsigned i = 0, e = CU_Nodes->getNumOperands(); i != e; ++i) { 978 DICompileUnit TheCU(CU_Nodes->getOperand(i)); 979 DIArray Subprograms = TheCU.getSubprograms(); 980 for (unsigned i = 0, e = Subprograms.getNumElements(); i != e; ++i) { 981 DISubprogram SP(Subprograms.getElement(i)); 982 if (ProcessedSPNodes.count(SP) != 0) 983 continue; 984 if (!SP.isSubprogram()) 985 continue; 986 if (!SP.isDefinition()) 987 continue; 988 DIArray Variables = SP.getVariables(); 989 if (Variables.getNumElements() == 0) 990 continue; 991 992 // Construct subprogram DIE and add variables DIEs. 993 CompileUnit *SPCU = CUMap.lookup(TheCU); 994 assert(SPCU && "Unable to find Compile Unit!"); 995 // FIXME: See the comment in constructSubprogramDIE about duplicate 996 // subprogram DIEs. 997 constructSubprogramDIE(SPCU, SP); 998 DIE *SPDIE = SPCU->getDIE(SP); 999 for (unsigned vi = 0, ve = Variables.getNumElements(); vi != ve; ++vi) { 1000 DIVariable DV(Variables.getElement(vi)); 1001 if (!DV.isVariable()) 1002 continue; 1003 DbgVariable NewVar(DV, NULL, this); 1004 if (DIE *VariableDIE = SPCU->constructVariableDIE(NewVar, false)) 1005 SPDIE->addChild(VariableDIE); 1006 } 1007 } 1008 } 1009 } 1010 } 1011 1012 // Type Signature [7.27] and ODR Hash code. 1013 1014 /// \brief Grabs the string in whichever attribute is passed in and returns 1015 /// a reference to it. Returns "" if the attribute doesn't exist. 1016 static StringRef getDIEStringAttr(DIE *Die, unsigned Attr) { 1017 DIEValue *V = Die->findAttribute(Attr); 1018 1019 if (DIEString *S = dyn_cast_or_null<DIEString>(V)) 1020 return S->getString(); 1021 1022 return StringRef(""); 1023 } 1024 1025 /// Return true if the current DIE is contained within an anonymous namespace. 1026 static bool isContainedInAnonNamespace(DIE *Die) { 1027 DIE *Parent = Die->getParent(); 1028 1029 while (Parent) { 1030 if (Parent->getTag() == dwarf::DW_TAG_namespace && 1031 getDIEStringAttr(Parent, dwarf::DW_AT_name) == "") 1032 return true; 1033 Parent = Parent->getParent(); 1034 } 1035 1036 return false; 1037 } 1038 1039 /// Test if the current CU language is C++ and that we have 1040 /// a named type that is not contained in an anonymous namespace. 1041 static bool shouldAddODRHash(CompileUnit *CU, DIE *Die) { 1042 return CU->getLanguage() == dwarf::DW_LANG_C_plus_plus && 1043 getDIEStringAttr(Die, dwarf::DW_AT_name) != "" && 1044 !isContainedInAnonNamespace(Die); 1045 } 1046 1047 void DwarfDebug::finalizeModuleInfo() { 1048 // Collect info for variables that were optimized out. 1049 collectDeadVariables(); 1050 1051 // Attach DW_AT_inline attribute with inlined subprogram DIEs. 1052 computeInlinedDIEs(); 1053 1054 // Handle anything that needs to be done on a per-cu basis. 1055 for (DenseMap<const MDNode *, CompileUnit *>::iterator CUI = CUMap.begin(), 1056 CUE = CUMap.end(); 1057 CUI != CUE; ++CUI) { 1058 CompileUnit *TheCU = CUI->second; 1059 // Emit DW_AT_containing_type attribute to connect types with their 1060 // vtable holding type. 1061 TheCU->constructContainingTypeDIEs(); 1062 1063 // If we're splitting the dwarf out now that we've got the entire 1064 // CU then construct a skeleton CU based upon it. 1065 if (useSplitDwarf()) { 1066 uint64_t ID = 0; 1067 if (GenerateCUHash) { 1068 DIEHash CUHash; 1069 ID = CUHash.computeCUSignature(*TheCU->getCUDie()); 1070 } 1071 // This should be a unique identifier when we want to build .dwp files. 1072 TheCU->addUInt(TheCU->getCUDie(), dwarf::DW_AT_GNU_dwo_id, 1073 dwarf::DW_FORM_data8, ID); 1074 // Now construct the skeleton CU associated. 1075 CompileUnit *SkCU = constructSkeletonCU(TheCU); 1076 // This should be a unique identifier when we want to build .dwp files. 1077 SkCU->addUInt(SkCU->getCUDie(), dwarf::DW_AT_GNU_dwo_id, 1078 dwarf::DW_FORM_data8, ID); 1079 } 1080 } 1081 1082 // Compute DIE offsets and sizes. 1083 InfoHolder.computeSizeAndOffsets(); 1084 if (useSplitDwarf()) 1085 SkeletonHolder.computeSizeAndOffsets(); 1086 } 1087 1088 void DwarfDebug::endSections() { 1089 // Filter labels by section. 1090 for (size_t n = 0; n < ArangeLabels.size(); n++) { 1091 const SymbolCU &SCU = ArangeLabels[n]; 1092 if (SCU.Sym->isInSection()) { 1093 // Make a note of this symbol and it's section. 1094 const MCSection *Section = &SCU.Sym->getSection(); 1095 if (!Section->getKind().isMetadata()) 1096 SectionMap[Section].push_back(SCU); 1097 } else { 1098 // Some symbols (e.g. common/bss on mach-o) can have no section but still 1099 // appear in the output. This sucks as we rely on sections to build 1100 // arange spans. We can do it without, but it's icky. 1101 SectionMap[NULL].push_back(SCU); 1102 } 1103 } 1104 1105 // Build a list of sections used. 1106 std::vector<const MCSection *> Sections; 1107 for (SectionMapType::iterator it = SectionMap.begin(); it != SectionMap.end(); 1108 it++) { 1109 const MCSection *Section = it->first; 1110 Sections.push_back(Section); 1111 } 1112 1113 // Sort the sections into order. 1114 // This is only done to ensure consistent output order across different runs. 1115 std::sort(Sections.begin(), Sections.end(), SectionSort); 1116 1117 // Add terminating symbols for each section. 1118 for (unsigned ID = 0; ID < Sections.size(); ID++) { 1119 const MCSection *Section = Sections[ID]; 1120 MCSymbol *Sym = NULL; 1121 1122 if (Section) { 1123 // We can't call MCSection::getLabelEndName, as it's only safe to do so 1124 // if we know the section name up-front. For user-created sections, the 1125 // resulting 1126 // label may not be valid to use as a label. (section names can use a 1127 // greater 1128 // set of characters on some systems) 1129 Sym = Asm->GetTempSymbol("debug_end", ID); 1130 Asm->OutStreamer.SwitchSection(Section); 1131 Asm->OutStreamer.EmitLabel(Sym); 1132 } 1133 1134 // Insert a final terminator. 1135 SectionMap[Section].push_back(SymbolCU(NULL, Sym)); 1136 } 1137 } 1138 1139 // Emit all Dwarf sections that should come after the content. 1140 void DwarfDebug::endModule() { 1141 1142 if (!FirstCU) 1143 return; 1144 1145 // End any existing sections. 1146 // TODO: Does this need to happen? 1147 endSections(); 1148 1149 // Finalize the debug info for the module. 1150 finalizeModuleInfo(); 1151 1152 emitDebugStr(); 1153 1154 // Emit all the DIEs into a debug info section. 1155 emitDebugInfo(); 1156 1157 // Corresponding abbreviations into a abbrev section. 1158 emitAbbreviations(); 1159 1160 // Emit info into a debug loc section. 1161 emitDebugLoc(); 1162 1163 // Emit info into a debug aranges section. 1164 emitDebugARanges(); 1165 1166 // Emit info into a debug ranges section. 1167 emitDebugRanges(); 1168 1169 // Emit info into a debug macinfo section. 1170 emitDebugMacInfo(); 1171 1172 if (useSplitDwarf()) { 1173 emitDebugStrDWO(); 1174 emitDebugInfoDWO(); 1175 emitDebugAbbrevDWO(); 1176 // Emit DWO addresses. 1177 InfoHolder.emitAddresses(Asm->getObjFileLowering().getDwarfAddrSection()); 1178 } 1179 1180 // Emit info into the dwarf accelerator table sections. 1181 if (useDwarfAccelTables()) { 1182 emitAccelNames(); 1183 emitAccelObjC(); 1184 emitAccelNamespaces(); 1185 emitAccelTypes(); 1186 } 1187 1188 // Emit the pubnames and pubtypes sections if requested. 1189 if (HasDwarfPubSections) { 1190 emitDebugPubNames(GenerateGnuPubSections); 1191 emitDebugPubTypes(GenerateGnuPubSections); 1192 } 1193 1194 // clean up. 1195 SPMap.clear(); 1196 for (DenseMap<const MDNode *, CompileUnit *>::iterator I = CUMap.begin(), 1197 E = CUMap.end(); 1198 I != E; ++I) 1199 delete I->second; 1200 1201 for (SmallVectorImpl<CompileUnit *>::iterator I = SkeletonCUs.begin(), 1202 E = SkeletonCUs.end(); 1203 I != E; ++I) 1204 delete *I; 1205 1206 // Reset these for the next Module if we have one. 1207 FirstCU = NULL; 1208 } 1209 1210 // Find abstract variable, if any, associated with Var. 1211 DbgVariable *DwarfDebug::findAbstractVariable(DIVariable &DV, 1212 DebugLoc ScopeLoc) { 1213 LLVMContext &Ctx = DV->getContext(); 1214 // More then one inlined variable corresponds to one abstract variable. 1215 DIVariable Var = cleanseInlinedVariable(DV, Ctx); 1216 DbgVariable *AbsDbgVariable = AbstractVariables.lookup(Var); 1217 if (AbsDbgVariable) 1218 return AbsDbgVariable; 1219 1220 LexicalScope *Scope = LScopes.findAbstractScope(ScopeLoc.getScope(Ctx)); 1221 if (!Scope) 1222 return NULL; 1223 1224 AbsDbgVariable = new DbgVariable(Var, NULL, this); 1225 addScopeVariable(Scope, AbsDbgVariable); 1226 AbstractVariables[Var] = AbsDbgVariable; 1227 return AbsDbgVariable; 1228 } 1229 1230 // If Var is a current function argument then add it to CurrentFnArguments list. 1231 bool DwarfDebug::addCurrentFnArgument(const MachineFunction *MF, 1232 DbgVariable *Var, LexicalScope *Scope) { 1233 if (!LScopes.isCurrentFunctionScope(Scope)) 1234 return false; 1235 DIVariable DV = Var->getVariable(); 1236 if (DV.getTag() != dwarf::DW_TAG_arg_variable) 1237 return false; 1238 unsigned ArgNo = DV.getArgNumber(); 1239 if (ArgNo == 0) 1240 return false; 1241 1242 size_t Size = CurrentFnArguments.size(); 1243 if (Size == 0) 1244 CurrentFnArguments.resize(MF->getFunction()->arg_size()); 1245 // llvm::Function argument size is not good indicator of how many 1246 // arguments does the function have at source level. 1247 if (ArgNo > Size) 1248 CurrentFnArguments.resize(ArgNo * 2); 1249 CurrentFnArguments[ArgNo - 1] = Var; 1250 return true; 1251 } 1252 1253 // Collect variable information from side table maintained by MMI. 1254 void DwarfDebug::collectVariableInfoFromMMITable( 1255 const MachineFunction *MF, SmallPtrSet<const MDNode *, 16> &Processed) { 1256 MachineModuleInfo::VariableDbgInfoMapTy &VMap = MMI->getVariableDbgInfo(); 1257 for (MachineModuleInfo::VariableDbgInfoMapTy::iterator VI = VMap.begin(), 1258 VE = VMap.end(); 1259 VI != VE; ++VI) { 1260 const MDNode *Var = VI->first; 1261 if (!Var) 1262 continue; 1263 Processed.insert(Var); 1264 DIVariable DV(Var); 1265 const std::pair<unsigned, DebugLoc> &VP = VI->second; 1266 1267 LexicalScope *Scope = LScopes.findLexicalScope(VP.second); 1268 1269 // If variable scope is not found then skip this variable. 1270 if (Scope == 0) 1271 continue; 1272 1273 DbgVariable *AbsDbgVariable = findAbstractVariable(DV, VP.second); 1274 DbgVariable *RegVar = new DbgVariable(DV, AbsDbgVariable, this); 1275 RegVar->setFrameIndex(VP.first); 1276 if (!addCurrentFnArgument(MF, RegVar, Scope)) 1277 addScopeVariable(Scope, RegVar); 1278 if (AbsDbgVariable) 1279 AbsDbgVariable->setFrameIndex(VP.first); 1280 } 1281 } 1282 1283 // Return true if debug value, encoded by DBG_VALUE instruction, is in a 1284 // defined reg. 1285 static bool isDbgValueInDefinedReg(const MachineInstr *MI) { 1286 assert(MI->isDebugValue() && "Invalid DBG_VALUE machine instruction!"); 1287 return MI->getNumOperands() == 3 && MI->getOperand(0).isReg() && 1288 MI->getOperand(0).getReg() && 1289 (MI->getOperand(1).isImm() || 1290 (MI->getOperand(1).isReg() && MI->getOperand(1).getReg() == 0U)); 1291 } 1292 1293 // Get .debug_loc entry for the instruction range starting at MI. 1294 static DotDebugLocEntry getDebugLocEntry(AsmPrinter *Asm, 1295 const MCSymbol *FLabel, 1296 const MCSymbol *SLabel, 1297 const MachineInstr *MI) { 1298 const MDNode *Var = MI->getOperand(MI->getNumOperands() - 1).getMetadata(); 1299 1300 assert(MI->getNumOperands() == 3); 1301 if (MI->getOperand(0).isReg()) { 1302 MachineLocation MLoc; 1303 // If the second operand is an immediate, this is a 1304 // register-indirect address. 1305 if (!MI->getOperand(1).isImm()) 1306 MLoc.set(MI->getOperand(0).getReg()); 1307 else 1308 MLoc.set(MI->getOperand(0).getReg(), MI->getOperand(1).getImm()); 1309 return DotDebugLocEntry(FLabel, SLabel, MLoc, Var); 1310 } 1311 if (MI->getOperand(0).isImm()) 1312 return DotDebugLocEntry(FLabel, SLabel, MI->getOperand(0).getImm()); 1313 if (MI->getOperand(0).isFPImm()) 1314 return DotDebugLocEntry(FLabel, SLabel, MI->getOperand(0).getFPImm()); 1315 if (MI->getOperand(0).isCImm()) 1316 return DotDebugLocEntry(FLabel, SLabel, MI->getOperand(0).getCImm()); 1317 1318 llvm_unreachable("Unexpected 3 operand DBG_VALUE instruction!"); 1319 } 1320 1321 // Find variables for each lexical scope. 1322 void 1323 DwarfDebug::collectVariableInfo(const MachineFunction *MF, 1324 SmallPtrSet<const MDNode *, 16> &Processed) { 1325 1326 // Grab the variable info that was squirreled away in the MMI side-table. 1327 collectVariableInfoFromMMITable(MF, Processed); 1328 1329 for (SmallVectorImpl<const MDNode *>::const_iterator 1330 UVI = UserVariables.begin(), 1331 UVE = UserVariables.end(); 1332 UVI != UVE; ++UVI) { 1333 const MDNode *Var = *UVI; 1334 if (Processed.count(Var)) 1335 continue; 1336 1337 // History contains relevant DBG_VALUE instructions for Var and instructions 1338 // clobbering it. 1339 SmallVectorImpl<const MachineInstr *> &History = DbgValues[Var]; 1340 if (History.empty()) 1341 continue; 1342 const MachineInstr *MInsn = History.front(); 1343 1344 DIVariable DV(Var); 1345 LexicalScope *Scope = NULL; 1346 if (DV.getTag() == dwarf::DW_TAG_arg_variable && 1347 DISubprogram(DV.getContext()).describes(MF->getFunction())) 1348 Scope = LScopes.getCurrentFunctionScope(); 1349 else if (MDNode *IA = DV.getInlinedAt()) 1350 Scope = LScopes.findInlinedScope(DebugLoc::getFromDILocation(IA)); 1351 else 1352 Scope = LScopes.findLexicalScope(cast<MDNode>(DV->getOperand(1))); 1353 // If variable scope is not found then skip this variable. 1354 if (!Scope) 1355 continue; 1356 1357 Processed.insert(DV); 1358 assert(MInsn->isDebugValue() && "History must begin with debug value"); 1359 DbgVariable *AbsVar = findAbstractVariable(DV, MInsn->getDebugLoc()); 1360 DbgVariable *RegVar = new DbgVariable(DV, AbsVar, this); 1361 if (!addCurrentFnArgument(MF, RegVar, Scope)) 1362 addScopeVariable(Scope, RegVar); 1363 if (AbsVar) 1364 AbsVar->setMInsn(MInsn); 1365 1366 // Simplify ranges that are fully coalesced. 1367 if (History.size() <= 1 || 1368 (History.size() == 2 && MInsn->isIdenticalTo(History.back()))) { 1369 RegVar->setMInsn(MInsn); 1370 continue; 1371 } 1372 1373 // Handle multiple DBG_VALUE instructions describing one variable. 1374 RegVar->setDotDebugLocOffset(DotDebugLocEntries.size()); 1375 1376 for (SmallVectorImpl<const MachineInstr *>::const_iterator 1377 HI = History.begin(), 1378 HE = History.end(); 1379 HI != HE; ++HI) { 1380 const MachineInstr *Begin = *HI; 1381 assert(Begin->isDebugValue() && "Invalid History entry"); 1382 1383 // Check if DBG_VALUE is truncating a range. 1384 if (Begin->getNumOperands() > 1 && Begin->getOperand(0).isReg() && 1385 !Begin->getOperand(0).getReg()) 1386 continue; 1387 1388 // Compute the range for a register location. 1389 const MCSymbol *FLabel = getLabelBeforeInsn(Begin); 1390 const MCSymbol *SLabel = 0; 1391 1392 if (HI + 1 == HE) 1393 // If Begin is the last instruction in History then its value is valid 1394 // until the end of the function. 1395 SLabel = FunctionEndSym; 1396 else { 1397 const MachineInstr *End = HI[1]; 1398 DEBUG(dbgs() << "DotDebugLoc Pair:\n" 1399 << "\t" << *Begin << "\t" << *End << "\n"); 1400 if (End->isDebugValue()) 1401 SLabel = getLabelBeforeInsn(End); 1402 else { 1403 // End is a normal instruction clobbering the range. 1404 SLabel = getLabelAfterInsn(End); 1405 assert(SLabel && "Forgot label after clobber instruction"); 1406 ++HI; 1407 } 1408 } 1409 1410 // The value is valid until the next DBG_VALUE or clobber. 1411 DotDebugLocEntries.push_back( 1412 getDebugLocEntry(Asm, FLabel, SLabel, Begin)); 1413 } 1414 DotDebugLocEntries.push_back(DotDebugLocEntry()); 1415 } 1416 1417 // Collect info for variables that were optimized out. 1418 LexicalScope *FnScope = LScopes.getCurrentFunctionScope(); 1419 DIArray Variables = DISubprogram(FnScope->getScopeNode()).getVariables(); 1420 for (unsigned i = 0, e = Variables.getNumElements(); i != e; ++i) { 1421 DIVariable DV(Variables.getElement(i)); 1422 if (!DV || !DV.isVariable() || !Processed.insert(DV)) 1423 continue; 1424 if (LexicalScope *Scope = LScopes.findLexicalScope(DV.getContext())) 1425 addScopeVariable(Scope, new DbgVariable(DV, NULL, this)); 1426 } 1427 } 1428 1429 // Return Label preceding the instruction. 1430 MCSymbol *DwarfDebug::getLabelBeforeInsn(const MachineInstr *MI) { 1431 MCSymbol *Label = LabelsBeforeInsn.lookup(MI); 1432 assert(Label && "Didn't insert label before instruction"); 1433 return Label; 1434 } 1435 1436 // Return Label immediately following the instruction. 1437 MCSymbol *DwarfDebug::getLabelAfterInsn(const MachineInstr *MI) { 1438 return LabelsAfterInsn.lookup(MI); 1439 } 1440 1441 // Process beginning of an instruction. 1442 void DwarfDebug::beginInstruction(const MachineInstr *MI) { 1443 // Check if source location changes, but ignore DBG_VALUE locations. 1444 if (!MI->isDebugValue()) { 1445 DebugLoc DL = MI->getDebugLoc(); 1446 if (DL != PrevInstLoc && (!DL.isUnknown() || UnknownLocations)) { 1447 unsigned Flags = 0; 1448 PrevInstLoc = DL; 1449 if (DL == PrologEndLoc) { 1450 Flags |= DWARF2_FLAG_PROLOGUE_END; 1451 PrologEndLoc = DebugLoc(); 1452 } 1453 if (PrologEndLoc.isUnknown()) 1454 Flags |= DWARF2_FLAG_IS_STMT; 1455 1456 if (!DL.isUnknown()) { 1457 const MDNode *Scope = DL.getScope(Asm->MF->getFunction()->getContext()); 1458 recordSourceLine(DL.getLine(), DL.getCol(), Scope, Flags); 1459 } else 1460 recordSourceLine(0, 0, 0, 0); 1461 } 1462 } 1463 1464 // Insert labels where requested. 1465 DenseMap<const MachineInstr *, MCSymbol *>::iterator I = 1466 LabelsBeforeInsn.find(MI); 1467 1468 // No label needed. 1469 if (I == LabelsBeforeInsn.end()) 1470 return; 1471 1472 // Label already assigned. 1473 if (I->second) 1474 return; 1475 1476 if (!PrevLabel) { 1477 PrevLabel = MMI->getContext().CreateTempSymbol(); 1478 Asm->OutStreamer.EmitLabel(PrevLabel); 1479 } 1480 I->second = PrevLabel; 1481 } 1482 1483 // Process end of an instruction. 1484 void DwarfDebug::endInstruction(const MachineInstr *MI) { 1485 // Don't create a new label after DBG_VALUE instructions. 1486 // They don't generate code. 1487 if (!MI->isDebugValue()) 1488 PrevLabel = 0; 1489 1490 DenseMap<const MachineInstr *, MCSymbol *>::iterator I = 1491 LabelsAfterInsn.find(MI); 1492 1493 // No label needed. 1494 if (I == LabelsAfterInsn.end()) 1495 return; 1496 1497 // Label already assigned. 1498 if (I->second) 1499 return; 1500 1501 // We need a label after this instruction. 1502 if (!PrevLabel) { 1503 PrevLabel = MMI->getContext().CreateTempSymbol(); 1504 Asm->OutStreamer.EmitLabel(PrevLabel); 1505 } 1506 I->second = PrevLabel; 1507 } 1508 1509 // Each LexicalScope has first instruction and last instruction to mark 1510 // beginning and end of a scope respectively. Create an inverse map that list 1511 // scopes starts (and ends) with an instruction. One instruction may start (or 1512 // end) multiple scopes. Ignore scopes that are not reachable. 1513 void DwarfDebug::identifyScopeMarkers() { 1514 SmallVector<LexicalScope *, 4> WorkList; 1515 WorkList.push_back(LScopes.getCurrentFunctionScope()); 1516 while (!WorkList.empty()) { 1517 LexicalScope *S = WorkList.pop_back_val(); 1518 1519 const SmallVectorImpl<LexicalScope *> &Children = S->getChildren(); 1520 if (!Children.empty()) 1521 for (SmallVectorImpl<LexicalScope *>::const_iterator 1522 SI = Children.begin(), 1523 SE = Children.end(); 1524 SI != SE; ++SI) 1525 WorkList.push_back(*SI); 1526 1527 if (S->isAbstractScope()) 1528 continue; 1529 1530 const SmallVectorImpl<InsnRange> &Ranges = S->getRanges(); 1531 if (Ranges.empty()) 1532 continue; 1533 for (SmallVectorImpl<InsnRange>::const_iterator RI = Ranges.begin(), 1534 RE = Ranges.end(); 1535 RI != RE; ++RI) { 1536 assert(RI->first && "InsnRange does not have first instruction!"); 1537 assert(RI->second && "InsnRange does not have second instruction!"); 1538 requestLabelBeforeInsn(RI->first); 1539 requestLabelAfterInsn(RI->second); 1540 } 1541 } 1542 } 1543 1544 // Get MDNode for DebugLoc's scope. 1545 static MDNode *getScopeNode(DebugLoc DL, const LLVMContext &Ctx) { 1546 if (MDNode *InlinedAt = DL.getInlinedAt(Ctx)) 1547 return getScopeNode(DebugLoc::getFromDILocation(InlinedAt), Ctx); 1548 return DL.getScope(Ctx); 1549 } 1550 1551 // Walk up the scope chain of given debug loc and find line number info 1552 // for the function. 1553 static DebugLoc getFnDebugLoc(DebugLoc DL, const LLVMContext &Ctx) { 1554 const MDNode *Scope = getScopeNode(DL, Ctx); 1555 DISubprogram SP = getDISubprogram(Scope); 1556 if (SP.isSubprogram()) { 1557 // Check for number of operands since the compatibility is 1558 // cheap here. 1559 if (SP->getNumOperands() > 19) 1560 return DebugLoc::get(SP.getScopeLineNumber(), 0, SP); 1561 else 1562 return DebugLoc::get(SP.getLineNumber(), 0, SP); 1563 } 1564 1565 return DebugLoc(); 1566 } 1567 1568 // Gather pre-function debug information. Assumes being called immediately 1569 // after the function entry point has been emitted. 1570 void DwarfDebug::beginFunction(const MachineFunction *MF) { 1571 1572 // If there's no debug info for the function we're not going to do anything. 1573 if (!MMI->hasDebugInfo()) 1574 return; 1575 1576 // Grab the lexical scopes for the function, if we don't have any of those 1577 // then we're not going to be able to do anything. 1578 LScopes.initialize(*MF); 1579 if (LScopes.empty()) 1580 return; 1581 1582 assert(UserVariables.empty() && DbgValues.empty() && "Maps weren't cleaned"); 1583 1584 // Make sure that each lexical scope will have a begin/end label. 1585 identifyScopeMarkers(); 1586 1587 // Set DwarfCompileUnitID in MCContext to the Compile Unit this function 1588 // belongs to so that we add to the correct per-cu line table in the 1589 // non-asm case. 1590 LexicalScope *FnScope = LScopes.getCurrentFunctionScope(); 1591 CompileUnit *TheCU = SPMap.lookup(FnScope->getScopeNode()); 1592 assert(TheCU && "Unable to find compile unit!"); 1593 if (Asm->TM.hasMCUseLoc() && Asm->OutStreamer.hasRawTextSupport()) 1594 // Use a single line table if we are using .loc and generating assembly. 1595 Asm->OutStreamer.getContext().setDwarfCompileUnitID(0); 1596 else 1597 Asm->OutStreamer.getContext().setDwarfCompileUnitID(TheCU->getUniqueID()); 1598 1599 // Emit a label for the function so that we have a beginning address. 1600 FunctionBeginSym = Asm->GetTempSymbol("func_begin", Asm->getFunctionNumber()); 1601 // Assumes in correct section after the entry point. 1602 Asm->OutStreamer.EmitLabel(FunctionBeginSym); 1603 1604 const TargetRegisterInfo *TRI = Asm->TM.getRegisterInfo(); 1605 // LiveUserVar - Map physreg numbers to the MDNode they contain. 1606 std::vector<const MDNode *> LiveUserVar(TRI->getNumRegs()); 1607 1608 for (MachineFunction::const_iterator I = MF->begin(), E = MF->end(); I != E; 1609 ++I) { 1610 bool AtBlockEntry = true; 1611 for (MachineBasicBlock::const_iterator II = I->begin(), IE = I->end(); 1612 II != IE; ++II) { 1613 const MachineInstr *MI = II; 1614 1615 if (MI->isDebugValue()) { 1616 assert(MI->getNumOperands() > 1 && "Invalid machine instruction!"); 1617 1618 // Keep track of user variables. 1619 const MDNode *Var = 1620 MI->getOperand(MI->getNumOperands() - 1).getMetadata(); 1621 1622 // Variable is in a register, we need to check for clobbers. 1623 if (isDbgValueInDefinedReg(MI)) 1624 LiveUserVar[MI->getOperand(0).getReg()] = Var; 1625 1626 // Check the history of this variable. 1627 SmallVectorImpl<const MachineInstr *> &History = DbgValues[Var]; 1628 if (History.empty()) { 1629 UserVariables.push_back(Var); 1630 // The first mention of a function argument gets the FunctionBeginSym 1631 // label, so arguments are visible when breaking at function entry. 1632 DIVariable DV(Var); 1633 if (DV.isVariable() && DV.getTag() == dwarf::DW_TAG_arg_variable && 1634 getDISubprogram(DV.getContext()).describes(MF->getFunction())) 1635 LabelsBeforeInsn[MI] = FunctionBeginSym; 1636 } else { 1637 // We have seen this variable before. Try to coalesce DBG_VALUEs. 1638 const MachineInstr *Prev = History.back(); 1639 if (Prev->isDebugValue()) { 1640 // Coalesce identical entries at the end of History. 1641 if (History.size() >= 2 && 1642 Prev->isIdenticalTo(History[History.size() - 2])) { 1643 DEBUG(dbgs() << "Coalescing identical DBG_VALUE entries:\n" 1644 << "\t" << *Prev << "\t" 1645 << *History[History.size() - 2] << "\n"); 1646 History.pop_back(); 1647 } 1648 1649 // Terminate old register assignments that don't reach MI; 1650 MachineFunction::const_iterator PrevMBB = Prev->getParent(); 1651 if (PrevMBB != I && (!AtBlockEntry || llvm::next(PrevMBB) != I) && 1652 isDbgValueInDefinedReg(Prev)) { 1653 // Previous register assignment needs to terminate at the end of 1654 // its basic block. 1655 MachineBasicBlock::const_iterator LastMI = 1656 PrevMBB->getLastNonDebugInstr(); 1657 if (LastMI == PrevMBB->end()) { 1658 // Drop DBG_VALUE for empty range. 1659 DEBUG(dbgs() << "Dropping DBG_VALUE for empty range:\n" 1660 << "\t" << *Prev << "\n"); 1661 History.pop_back(); 1662 } else if (llvm::next(PrevMBB) != PrevMBB->getParent()->end()) 1663 // Terminate after LastMI. 1664 History.push_back(LastMI); 1665 } 1666 } 1667 } 1668 History.push_back(MI); 1669 } else { 1670 // Not a DBG_VALUE instruction. 1671 if (!MI->isLabel()) 1672 AtBlockEntry = false; 1673 1674 // First known non-DBG_VALUE and non-frame setup location marks 1675 // the beginning of the function body. 1676 if (!MI->getFlag(MachineInstr::FrameSetup) && 1677 (PrologEndLoc.isUnknown() && !MI->getDebugLoc().isUnknown())) 1678 PrologEndLoc = MI->getDebugLoc(); 1679 1680 // Check if the instruction clobbers any registers with debug vars. 1681 for (MachineInstr::const_mop_iterator MOI = MI->operands_begin(), 1682 MOE = MI->operands_end(); 1683 MOI != MOE; ++MOI) { 1684 if (!MOI->isReg() || !MOI->isDef() || !MOI->getReg()) 1685 continue; 1686 for (MCRegAliasIterator AI(MOI->getReg(), TRI, true); AI.isValid(); 1687 ++AI) { 1688 unsigned Reg = *AI; 1689 const MDNode *Var = LiveUserVar[Reg]; 1690 if (!Var) 1691 continue; 1692 // Reg is now clobbered. 1693 LiveUserVar[Reg] = 0; 1694 1695 // Was MD last defined by a DBG_VALUE referring to Reg? 1696 DbgValueHistoryMap::iterator HistI = DbgValues.find(Var); 1697 if (HistI == DbgValues.end()) 1698 continue; 1699 SmallVectorImpl<const MachineInstr *> &History = HistI->second; 1700 if (History.empty()) 1701 continue; 1702 const MachineInstr *Prev = History.back(); 1703 // Sanity-check: Register assignments are terminated at the end of 1704 // their block. 1705 if (!Prev->isDebugValue() || Prev->getParent() != MI->getParent()) 1706 continue; 1707 // Is the variable still in Reg? 1708 if (!isDbgValueInDefinedReg(Prev) || 1709 Prev->getOperand(0).getReg() != Reg) 1710 continue; 1711 // Var is clobbered. Make sure the next instruction gets a label. 1712 History.push_back(MI); 1713 } 1714 } 1715 } 1716 } 1717 } 1718 1719 for (DbgValueHistoryMap::iterator I = DbgValues.begin(), E = DbgValues.end(); 1720 I != E; ++I) { 1721 SmallVectorImpl<const MachineInstr *> &History = I->second; 1722 if (History.empty()) 1723 continue; 1724 1725 // Make sure the final register assignments are terminated. 1726 const MachineInstr *Prev = History.back(); 1727 if (Prev->isDebugValue() && isDbgValueInDefinedReg(Prev)) { 1728 const MachineBasicBlock *PrevMBB = Prev->getParent(); 1729 MachineBasicBlock::const_iterator LastMI = 1730 PrevMBB->getLastNonDebugInstr(); 1731 if (LastMI == PrevMBB->end()) 1732 // Drop DBG_VALUE for empty range. 1733 History.pop_back(); 1734 else if (PrevMBB != &PrevMBB->getParent()->back()) { 1735 // Terminate after LastMI. 1736 History.push_back(LastMI); 1737 } 1738 } 1739 // Request labels for the full history. 1740 for (unsigned i = 0, e = History.size(); i != e; ++i) { 1741 const MachineInstr *MI = History[i]; 1742 if (MI->isDebugValue()) 1743 requestLabelBeforeInsn(MI); 1744 else 1745 requestLabelAfterInsn(MI); 1746 } 1747 } 1748 1749 PrevInstLoc = DebugLoc(); 1750 PrevLabel = FunctionBeginSym; 1751 1752 // Record beginning of function. 1753 if (!PrologEndLoc.isUnknown()) { 1754 DebugLoc FnStartDL = 1755 getFnDebugLoc(PrologEndLoc, MF->getFunction()->getContext()); 1756 recordSourceLine( 1757 FnStartDL.getLine(), FnStartDL.getCol(), 1758 FnStartDL.getScope(MF->getFunction()->getContext()), 1759 // We'd like to list the prologue as "not statements" but GDB behaves 1760 // poorly if we do that. Revisit this with caution/GDB (7.5+) testing. 1761 DWARF2_FLAG_IS_STMT); 1762 } 1763 } 1764 1765 void DwarfDebug::addScopeVariable(LexicalScope *LS, DbgVariable *Var) { 1766 SmallVectorImpl<DbgVariable *> &Vars = ScopeVariables[LS]; 1767 DIVariable DV = Var->getVariable(); 1768 // Variables with positive arg numbers are parameters. 1769 if (unsigned ArgNum = DV.getArgNumber()) { 1770 // Keep all parameters in order at the start of the variable list to ensure 1771 // function types are correct (no out-of-order parameters) 1772 // 1773 // This could be improved by only doing it for optimized builds (unoptimized 1774 // builds have the right order to begin with), searching from the back (this 1775 // would catch the unoptimized case quickly), or doing a binary search 1776 // rather than linear search. 1777 SmallVectorImpl<DbgVariable *>::iterator I = Vars.begin(); 1778 while (I != Vars.end()) { 1779 unsigned CurNum = (*I)->getVariable().getArgNumber(); 1780 // A local (non-parameter) variable has been found, insert immediately 1781 // before it. 1782 if (CurNum == 0) 1783 break; 1784 // A later indexed parameter has been found, insert immediately before it. 1785 if (CurNum > ArgNum) 1786 break; 1787 ++I; 1788 } 1789 Vars.insert(I, Var); 1790 return; 1791 } 1792 1793 Vars.push_back(Var); 1794 } 1795 1796 // Gather and emit post-function debug information. 1797 void DwarfDebug::endFunction(const MachineFunction *MF) { 1798 if (!MMI->hasDebugInfo() || LScopes.empty()) 1799 return; 1800 1801 // Define end label for subprogram. 1802 FunctionEndSym = Asm->GetTempSymbol("func_end", Asm->getFunctionNumber()); 1803 // Assumes in correct section after the entry point. 1804 Asm->OutStreamer.EmitLabel(FunctionEndSym); 1805 // Set DwarfCompileUnitID in MCContext to default value. 1806 Asm->OutStreamer.getContext().setDwarfCompileUnitID(0); 1807 1808 SmallPtrSet<const MDNode *, 16> ProcessedVars; 1809 collectVariableInfo(MF, ProcessedVars); 1810 1811 LexicalScope *FnScope = LScopes.getCurrentFunctionScope(); 1812 CompileUnit *TheCU = SPMap.lookup(FnScope->getScopeNode()); 1813 assert(TheCU && "Unable to find compile unit!"); 1814 1815 // Construct abstract scopes. 1816 ArrayRef<LexicalScope *> AList = LScopes.getAbstractScopesList(); 1817 for (unsigned i = 0, e = AList.size(); i != e; ++i) { 1818 LexicalScope *AScope = AList[i]; 1819 DISubprogram SP(AScope->getScopeNode()); 1820 if (SP.isSubprogram()) { 1821 // Collect info for variables that were optimized out. 1822 DIArray Variables = SP.getVariables(); 1823 for (unsigned i = 0, e = Variables.getNumElements(); i != e; ++i) { 1824 DIVariable DV(Variables.getElement(i)); 1825 if (!DV || !DV.isVariable() || !ProcessedVars.insert(DV)) 1826 continue; 1827 // Check that DbgVariable for DV wasn't created earlier, when 1828 // findAbstractVariable() was called for inlined instance of DV. 1829 LLVMContext &Ctx = DV->getContext(); 1830 DIVariable CleanDV = cleanseInlinedVariable(DV, Ctx); 1831 if (AbstractVariables.lookup(CleanDV)) 1832 continue; 1833 if (LexicalScope *Scope = LScopes.findAbstractScope(DV.getContext())) 1834 addScopeVariable(Scope, new DbgVariable(DV, NULL, this)); 1835 } 1836 } 1837 if (ProcessedSPNodes.count(AScope->getScopeNode()) == 0) 1838 constructScopeDIE(TheCU, AScope); 1839 } 1840 1841 DIE *CurFnDIE = constructScopeDIE(TheCU, FnScope); 1842 1843 if (!MF->getTarget().Options.DisableFramePointerElim(*MF)) 1844 TheCU->addFlag(CurFnDIE, dwarf::DW_AT_APPLE_omit_frame_ptr); 1845 1846 // Clear debug info 1847 for (ScopeVariablesMap::iterator I = ScopeVariables.begin(), 1848 E = ScopeVariables.end(); 1849 I != E; ++I) 1850 DeleteContainerPointers(I->second); 1851 ScopeVariables.clear(); 1852 DeleteContainerPointers(CurrentFnArguments); 1853 UserVariables.clear(); 1854 DbgValues.clear(); 1855 AbstractVariables.clear(); 1856 LabelsBeforeInsn.clear(); 1857 LabelsAfterInsn.clear(); 1858 PrevLabel = NULL; 1859 } 1860 1861 // Register a source line with debug info. Returns the unique label that was 1862 // emitted and which provides correspondence to the source line list. 1863 void DwarfDebug::recordSourceLine(unsigned Line, unsigned Col, const MDNode *S, 1864 unsigned Flags) { 1865 StringRef Fn; 1866 StringRef Dir; 1867 unsigned Src = 1; 1868 if (S) { 1869 DIDescriptor Scope(S); 1870 1871 if (Scope.isCompileUnit()) { 1872 DICompileUnit CU(S); 1873 Fn = CU.getFilename(); 1874 Dir = CU.getDirectory(); 1875 } else if (Scope.isFile()) { 1876 DIFile F(S); 1877 Fn = F.getFilename(); 1878 Dir = F.getDirectory(); 1879 } else if (Scope.isSubprogram()) { 1880 DISubprogram SP(S); 1881 Fn = SP.getFilename(); 1882 Dir = SP.getDirectory(); 1883 } else if (Scope.isLexicalBlockFile()) { 1884 DILexicalBlockFile DBF(S); 1885 Fn = DBF.getFilename(); 1886 Dir = DBF.getDirectory(); 1887 } else if (Scope.isLexicalBlock()) { 1888 DILexicalBlock DB(S); 1889 Fn = DB.getFilename(); 1890 Dir = DB.getDirectory(); 1891 } else 1892 llvm_unreachable("Unexpected scope info"); 1893 1894 Src = getOrCreateSourceID( 1895 Fn, Dir, Asm->OutStreamer.getContext().getDwarfCompileUnitID()); 1896 } 1897 Asm->OutStreamer.EmitDwarfLocDirective(Src, Line, Col, Flags, 0, 0, Fn); 1898 } 1899 1900 //===----------------------------------------------------------------------===// 1901 // Emit Methods 1902 //===----------------------------------------------------------------------===// 1903 1904 // Compute the size and offset of a DIE. The offset is relative to start of the 1905 // CU. It returns the offset after laying out the DIE. 1906 unsigned DwarfUnits::computeSizeAndOffset(DIE *Die, unsigned Offset) { 1907 // Get the children. 1908 const std::vector<DIE *> &Children = Die->getChildren(); 1909 1910 // Record the abbreviation. 1911 assignAbbrevNumber(Die->getAbbrev()); 1912 1913 // Get the abbreviation for this DIE. 1914 unsigned AbbrevNumber = Die->getAbbrevNumber(); 1915 const DIEAbbrev *Abbrev = Abbreviations[AbbrevNumber - 1]; 1916 1917 // Set DIE offset 1918 Die->setOffset(Offset); 1919 1920 // Start the size with the size of abbreviation code. 1921 Offset += MCAsmInfo::getULEB128Size(AbbrevNumber); 1922 1923 const SmallVectorImpl<DIEValue *> &Values = Die->getValues(); 1924 const SmallVectorImpl<DIEAbbrevData> &AbbrevData = Abbrev->getData(); 1925 1926 // Size the DIE attribute values. 1927 for (unsigned i = 0, N = Values.size(); i < N; ++i) 1928 // Size attribute value. 1929 Offset += Values[i]->SizeOf(Asm, AbbrevData[i].getForm()); 1930 1931 // Size the DIE children if any. 1932 if (!Children.empty()) { 1933 assert(Abbrev->getChildrenFlag() == dwarf::DW_CHILDREN_yes && 1934 "Children flag not set"); 1935 1936 for (unsigned j = 0, M = Children.size(); j < M; ++j) 1937 Offset = computeSizeAndOffset(Children[j], Offset); 1938 1939 // End of children marker. 1940 Offset += sizeof(int8_t); 1941 } 1942 1943 Die->setSize(Offset - Die->getOffset()); 1944 return Offset; 1945 } 1946 1947 // Compute the size and offset for each DIE. 1948 void DwarfUnits::computeSizeAndOffsets() { 1949 // Offset from the first CU in the debug info section is 0 initially. 1950 unsigned SecOffset = 0; 1951 1952 // Iterate over each compile unit and set the size and offsets for each 1953 // DIE within each compile unit. All offsets are CU relative. 1954 for (SmallVectorImpl<CompileUnit *>::iterator I = CUs.begin(), E = CUs.end(); 1955 I != E; ++I) { 1956 (*I)->setDebugInfoOffset(SecOffset); 1957 1958 // CU-relative offset is reset to 0 here. 1959 unsigned Offset = sizeof(int32_t) + // Length of Unit Info 1960 (*I)->getHeaderSize(); // Unit-specific headers 1961 1962 // EndOffset here is CU-relative, after laying out 1963 // all of the CU DIE. 1964 unsigned EndOffset = computeSizeAndOffset((*I)->getCUDie(), Offset); 1965 SecOffset += EndOffset; 1966 } 1967 } 1968 1969 // Emit initial Dwarf sections with a label at the start of each one. 1970 void DwarfDebug::emitSectionLabels() { 1971 const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering(); 1972 1973 // Dwarf sections base addresses. 1974 DwarfInfoSectionSym = 1975 emitSectionSym(Asm, TLOF.getDwarfInfoSection(), "section_info"); 1976 DwarfAbbrevSectionSym = 1977 emitSectionSym(Asm, TLOF.getDwarfAbbrevSection(), "section_abbrev"); 1978 if (useSplitDwarf()) 1979 DwarfAbbrevDWOSectionSym = emitSectionSym( 1980 Asm, TLOF.getDwarfAbbrevDWOSection(), "section_abbrev_dwo"); 1981 emitSectionSym(Asm, TLOF.getDwarfARangesSection()); 1982 1983 if (const MCSection *MacroInfo = TLOF.getDwarfMacroInfoSection()) 1984 emitSectionSym(Asm, MacroInfo); 1985 1986 DwarfLineSectionSym = 1987 emitSectionSym(Asm, TLOF.getDwarfLineSection(), "section_line"); 1988 emitSectionSym(Asm, TLOF.getDwarfLocSection()); 1989 if (GenerateGnuPubSections) { 1990 DwarfGnuPubNamesSectionSym = 1991 emitSectionSym(Asm, TLOF.getDwarfGnuPubNamesSection()); 1992 DwarfGnuPubTypesSectionSym = 1993 emitSectionSym(Asm, TLOF.getDwarfGnuPubTypesSection()); 1994 } else if (HasDwarfPubSections) { 1995 emitSectionSym(Asm, TLOF.getDwarfPubNamesSection()); 1996 emitSectionSym(Asm, TLOF.getDwarfPubTypesSection()); 1997 } 1998 1999 DwarfStrSectionSym = 2000 emitSectionSym(Asm, TLOF.getDwarfStrSection(), "info_string"); 2001 if (useSplitDwarf()) { 2002 DwarfStrDWOSectionSym = 2003 emitSectionSym(Asm, TLOF.getDwarfStrDWOSection(), "skel_string"); 2004 DwarfAddrSectionSym = 2005 emitSectionSym(Asm, TLOF.getDwarfAddrSection(), "addr_sec"); 2006 } 2007 DwarfDebugRangeSectionSym = 2008 emitSectionSym(Asm, TLOF.getDwarfRangesSection(), "debug_range"); 2009 2010 DwarfDebugLocSectionSym = 2011 emitSectionSym(Asm, TLOF.getDwarfLocSection(), "section_debug_loc"); 2012 2013 TextSectionSym = emitSectionSym(Asm, TLOF.getTextSection(), "text_begin"); 2014 emitSectionSym(Asm, TLOF.getDataSection()); 2015 } 2016 2017 // Recursively emits a debug information entry. 2018 void DwarfDebug::emitDIE(DIE *Die, ArrayRef<DIEAbbrev *> Abbrevs) { 2019 // Get the abbreviation for this DIE. 2020 unsigned AbbrevNumber = Die->getAbbrevNumber(); 2021 const DIEAbbrev *Abbrev = Abbrevs[AbbrevNumber - 1]; 2022 2023 // Emit the code (index) for the abbreviation. 2024 if (Asm->isVerbose()) 2025 Asm->OutStreamer.AddComment("Abbrev [" + Twine(AbbrevNumber) + "] 0x" + 2026 Twine::utohexstr(Die->getOffset()) + ":0x" + 2027 Twine::utohexstr(Die->getSize()) + " " + 2028 dwarf::TagString(Abbrev->getTag())); 2029 Asm->EmitULEB128(AbbrevNumber); 2030 2031 const SmallVectorImpl<DIEValue *> &Values = Die->getValues(); 2032 const SmallVectorImpl<DIEAbbrevData> &AbbrevData = Abbrev->getData(); 2033 2034 // Emit the DIE attribute values. 2035 for (unsigned i = 0, N = Values.size(); i < N; ++i) { 2036 dwarf::Attribute Attr = AbbrevData[i].getAttribute(); 2037 dwarf::Form Form = AbbrevData[i].getForm(); 2038 assert(Form && "Too many attributes for DIE (check abbreviation)"); 2039 2040 if (Asm->isVerbose()) 2041 Asm->OutStreamer.AddComment(dwarf::AttributeString(Attr)); 2042 2043 switch (Attr) { 2044 case dwarf::DW_AT_abstract_origin: 2045 case dwarf::DW_AT_type: 2046 case dwarf::DW_AT_friend: 2047 case dwarf::DW_AT_specification: 2048 case dwarf::DW_AT_import: 2049 case dwarf::DW_AT_containing_type: { 2050 DIEEntry *E = cast<DIEEntry>(Values[i]); 2051 DIE *Origin = E->getEntry(); 2052 unsigned Addr = Origin->getOffset(); 2053 if (Form == dwarf::DW_FORM_ref_addr) { 2054 assert(!useSplitDwarf() && "TODO: dwo files can't have relocations."); 2055 // For DW_FORM_ref_addr, output the offset from beginning of debug info 2056 // section. Origin->getOffset() returns the offset from start of the 2057 // compile unit. 2058 CompileUnit *CU = CUDieMap.lookup(Origin->getUnit()); 2059 assert(CU && "CUDie should belong to a CU."); 2060 Addr += CU->getDebugInfoOffset(); 2061 if (Asm->MAI->doesDwarfUseRelocationsAcrossSections()) 2062 Asm->EmitLabelPlusOffset(DwarfInfoSectionSym, Addr, 2063 DIEEntry::getRefAddrSize(Asm)); 2064 else 2065 Asm->EmitLabelOffsetDifference(DwarfInfoSectionSym, Addr, 2066 DwarfInfoSectionSym, 2067 DIEEntry::getRefAddrSize(Asm)); 2068 } else { 2069 // Make sure Origin belong to the same CU. 2070 assert(Die->getUnit() == Origin->getUnit() && 2071 "The referenced DIE should belong to the same CU in ref4"); 2072 Asm->EmitInt32(Addr); 2073 } 2074 break; 2075 } 2076 case dwarf::DW_AT_ranges: { 2077 // DW_AT_range Value encodes offset in debug_range section. 2078 DIEInteger *V = cast<DIEInteger>(Values[i]); 2079 2080 if (Asm->MAI->doesDwarfUseRelocationsAcrossSections()) { 2081 Asm->EmitLabelPlusOffset(DwarfDebugRangeSectionSym, V->getValue(), 4); 2082 } else { 2083 Asm->EmitLabelOffsetDifference(DwarfDebugRangeSectionSym, V->getValue(), 2084 DwarfDebugRangeSectionSym, 4); 2085 } 2086 break; 2087 } 2088 case dwarf::DW_AT_location: { 2089 if (DIELabel *L = dyn_cast<DIELabel>(Values[i])) { 2090 if (Asm->MAI->doesDwarfUseRelocationsAcrossSections()) 2091 Asm->EmitSectionOffset(L->getValue(), DwarfDebugLocSectionSym); 2092 else 2093 Asm->EmitLabelDifference(L->getValue(), DwarfDebugLocSectionSym, 4); 2094 } else { 2095 Values[i]->EmitValue(Asm, Form); 2096 } 2097 break; 2098 } 2099 case dwarf::DW_AT_accessibility: { 2100 if (Asm->isVerbose()) { 2101 DIEInteger *V = cast<DIEInteger>(Values[i]); 2102 Asm->OutStreamer.AddComment(dwarf::AccessibilityString(V->getValue())); 2103 } 2104 Values[i]->EmitValue(Asm, Form); 2105 break; 2106 } 2107 default: 2108 // Emit an attribute using the defined form. 2109 Values[i]->EmitValue(Asm, Form); 2110 break; 2111 } 2112 } 2113 2114 // Emit the DIE children if any. 2115 if (Abbrev->getChildrenFlag() == dwarf::DW_CHILDREN_yes) { 2116 const std::vector<DIE *> &Children = Die->getChildren(); 2117 2118 for (unsigned j = 0, M = Children.size(); j < M; ++j) 2119 emitDIE(Children[j], Abbrevs); 2120 2121 if (Asm->isVerbose()) 2122 Asm->OutStreamer.AddComment("End Of Children Mark"); 2123 Asm->EmitInt8(0); 2124 } 2125 } 2126 2127 // Emit the various dwarf units to the unit section USection with 2128 // the abbreviations going into ASection. 2129 void DwarfUnits::emitUnits(DwarfDebug *DD, const MCSection *USection, 2130 const MCSection *ASection, 2131 const MCSymbol *ASectionSym) { 2132 Asm->OutStreamer.SwitchSection(USection); 2133 for (SmallVectorImpl<CompileUnit *>::iterator I = CUs.begin(), E = CUs.end(); 2134 I != E; ++I) { 2135 CompileUnit *TheCU = *I; 2136 DIE *Die = TheCU->getCUDie(); 2137 2138 // Emit the compile units header. 2139 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol(USection->getLabelBeginName(), 2140 TheCU->getUniqueID())); 2141 2142 // Emit size of content not including length itself 2143 Asm->OutStreamer.AddComment("Length of Unit"); 2144 Asm->EmitInt32(TheCU->getHeaderSize() + Die->getSize()); 2145 2146 TheCU->emitHeader(ASection, ASectionSym); 2147 2148 DD->emitDIE(Die, Abbreviations); 2149 Asm->OutStreamer.EmitLabel( 2150 Asm->GetTempSymbol(USection->getLabelEndName(), TheCU->getUniqueID())); 2151 } 2152 } 2153 2154 // Emit the debug info section. 2155 void DwarfDebug::emitDebugInfo() { 2156 DwarfUnits &Holder = useSplitDwarf() ? SkeletonHolder : InfoHolder; 2157 2158 Holder.emitUnits(this, Asm->getObjFileLowering().getDwarfInfoSection(), 2159 Asm->getObjFileLowering().getDwarfAbbrevSection(), 2160 DwarfAbbrevSectionSym); 2161 } 2162 2163 // Emit the abbreviation section. 2164 void DwarfDebug::emitAbbreviations() { 2165 if (!useSplitDwarf()) 2166 emitAbbrevs(Asm->getObjFileLowering().getDwarfAbbrevSection(), 2167 &Abbreviations); 2168 else 2169 emitSkeletonAbbrevs(Asm->getObjFileLowering().getDwarfAbbrevSection()); 2170 } 2171 2172 void DwarfDebug::emitAbbrevs(const MCSection *Section, 2173 std::vector<DIEAbbrev *> *Abbrevs) { 2174 // Check to see if it is worth the effort. 2175 if (!Abbrevs->empty()) { 2176 // Start the debug abbrev section. 2177 Asm->OutStreamer.SwitchSection(Section); 2178 2179 MCSymbol *Begin = Asm->GetTempSymbol(Section->getLabelBeginName()); 2180 Asm->OutStreamer.EmitLabel(Begin); 2181 2182 // For each abbrevation. 2183 for (unsigned i = 0, N = Abbrevs->size(); i < N; ++i) { 2184 // Get abbreviation data 2185 const DIEAbbrev *Abbrev = Abbrevs->at(i); 2186 2187 // Emit the abbrevations code (base 1 index.) 2188 Asm->EmitULEB128(Abbrev->getNumber(), "Abbreviation Code"); 2189 2190 // Emit the abbreviations data. 2191 Abbrev->Emit(Asm); 2192 } 2193 2194 // Mark end of abbreviations. 2195 Asm->EmitULEB128(0, "EOM(3)"); 2196 2197 MCSymbol *End = Asm->GetTempSymbol(Section->getLabelEndName()); 2198 Asm->OutStreamer.EmitLabel(End); 2199 } 2200 } 2201 2202 // Emit the last address of the section and the end of the line matrix. 2203 void DwarfDebug::emitEndOfLineMatrix(unsigned SectionEnd) { 2204 // Define last address of section. 2205 Asm->OutStreamer.AddComment("Extended Op"); 2206 Asm->EmitInt8(0); 2207 2208 Asm->OutStreamer.AddComment("Op size"); 2209 Asm->EmitInt8(Asm->getDataLayout().getPointerSize() + 1); 2210 Asm->OutStreamer.AddComment("DW_LNE_set_address"); 2211 Asm->EmitInt8(dwarf::DW_LNE_set_address); 2212 2213 Asm->OutStreamer.AddComment("Section end label"); 2214 2215 Asm->OutStreamer.EmitSymbolValue( 2216 Asm->GetTempSymbol("section_end", SectionEnd), 2217 Asm->getDataLayout().getPointerSize()); 2218 2219 // Mark end of matrix. 2220 Asm->OutStreamer.AddComment("DW_LNE_end_sequence"); 2221 Asm->EmitInt8(0); 2222 Asm->EmitInt8(1); 2223 Asm->EmitInt8(1); 2224 } 2225 2226 // Emit visible names into a hashed accelerator table section. 2227 void DwarfDebug::emitAccelNames() { 2228 DwarfAccelTable AT( 2229 DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, dwarf::DW_FORM_data4)); 2230 for (DenseMap<const MDNode *, CompileUnit *>::iterator I = CUMap.begin(), 2231 E = CUMap.end(); 2232 I != E; ++I) { 2233 CompileUnit *TheCU = I->second; 2234 const StringMap<std::vector<const DIE *> > &Names = TheCU->getAccelNames(); 2235 for (StringMap<std::vector<const DIE *> >::const_iterator 2236 GI = Names.begin(), 2237 GE = Names.end(); 2238 GI != GE; ++GI) { 2239 StringRef Name = GI->getKey(); 2240 const std::vector<const DIE *> &Entities = GI->second; 2241 for (std::vector<const DIE *>::const_iterator DI = Entities.begin(), 2242 DE = Entities.end(); 2243 DI != DE; ++DI) 2244 AT.AddName(Name, *DI); 2245 } 2246 } 2247 2248 AT.FinalizeTable(Asm, "Names"); 2249 Asm->OutStreamer.SwitchSection( 2250 Asm->getObjFileLowering().getDwarfAccelNamesSection()); 2251 MCSymbol *SectionBegin = Asm->GetTempSymbol("names_begin"); 2252 Asm->OutStreamer.EmitLabel(SectionBegin); 2253 2254 // Emit the full data. 2255 AT.Emit(Asm, SectionBegin, &InfoHolder); 2256 } 2257 2258 // Emit objective C classes and categories into a hashed accelerator table 2259 // section. 2260 void DwarfDebug::emitAccelObjC() { 2261 DwarfAccelTable AT( 2262 DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, dwarf::DW_FORM_data4)); 2263 for (DenseMap<const MDNode *, CompileUnit *>::iterator I = CUMap.begin(), 2264 E = CUMap.end(); 2265 I != E; ++I) { 2266 CompileUnit *TheCU = I->second; 2267 const StringMap<std::vector<const DIE *> > &Names = TheCU->getAccelObjC(); 2268 for (StringMap<std::vector<const DIE *> >::const_iterator 2269 GI = Names.begin(), 2270 GE = Names.end(); 2271 GI != GE; ++GI) { 2272 StringRef Name = GI->getKey(); 2273 const std::vector<const DIE *> &Entities = GI->second; 2274 for (std::vector<const DIE *>::const_iterator DI = Entities.begin(), 2275 DE = Entities.end(); 2276 DI != DE; ++DI) 2277 AT.AddName(Name, *DI); 2278 } 2279 } 2280 2281 AT.FinalizeTable(Asm, "ObjC"); 2282 Asm->OutStreamer.SwitchSection( 2283 Asm->getObjFileLowering().getDwarfAccelObjCSection()); 2284 MCSymbol *SectionBegin = Asm->GetTempSymbol("objc_begin"); 2285 Asm->OutStreamer.EmitLabel(SectionBegin); 2286 2287 // Emit the full data. 2288 AT.Emit(Asm, SectionBegin, &InfoHolder); 2289 } 2290 2291 // Emit namespace dies into a hashed accelerator table. 2292 void DwarfDebug::emitAccelNamespaces() { 2293 DwarfAccelTable AT( 2294 DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, dwarf::DW_FORM_data4)); 2295 for (DenseMap<const MDNode *, CompileUnit *>::iterator I = CUMap.begin(), 2296 E = CUMap.end(); 2297 I != E; ++I) { 2298 CompileUnit *TheCU = I->second; 2299 const StringMap<std::vector<const DIE *> > &Names = 2300 TheCU->getAccelNamespace(); 2301 for (StringMap<std::vector<const DIE *> >::const_iterator 2302 GI = Names.begin(), 2303 GE = Names.end(); 2304 GI != GE; ++GI) { 2305 StringRef Name = GI->getKey(); 2306 const std::vector<const DIE *> &Entities = GI->second; 2307 for (std::vector<const DIE *>::const_iterator DI = Entities.begin(), 2308 DE = Entities.end(); 2309 DI != DE; ++DI) 2310 AT.AddName(Name, *DI); 2311 } 2312 } 2313 2314 AT.FinalizeTable(Asm, "namespac"); 2315 Asm->OutStreamer.SwitchSection( 2316 Asm->getObjFileLowering().getDwarfAccelNamespaceSection()); 2317 MCSymbol *SectionBegin = Asm->GetTempSymbol("namespac_begin"); 2318 Asm->OutStreamer.EmitLabel(SectionBegin); 2319 2320 // Emit the full data. 2321 AT.Emit(Asm, SectionBegin, &InfoHolder); 2322 } 2323 2324 // Emit type dies into a hashed accelerator table. 2325 void DwarfDebug::emitAccelTypes() { 2326 std::vector<DwarfAccelTable::Atom> Atoms; 2327 Atoms.push_back( 2328 DwarfAccelTable::Atom(dwarf::DW_ATOM_die_offset, dwarf::DW_FORM_data4)); 2329 Atoms.push_back( 2330 DwarfAccelTable::Atom(dwarf::DW_ATOM_die_tag, dwarf::DW_FORM_data2)); 2331 Atoms.push_back( 2332 DwarfAccelTable::Atom(dwarf::DW_ATOM_type_flags, dwarf::DW_FORM_data1)); 2333 DwarfAccelTable AT(Atoms); 2334 for (DenseMap<const MDNode *, CompileUnit *>::iterator I = CUMap.begin(), 2335 E = CUMap.end(); 2336 I != E; ++I) { 2337 CompileUnit *TheCU = I->second; 2338 const StringMap<std::vector<std::pair<const DIE *, unsigned> > > &Names = 2339 TheCU->getAccelTypes(); 2340 for (StringMap< 2341 std::vector<std::pair<const DIE *, unsigned> > >::const_iterator 2342 GI = Names.begin(), 2343 GE = Names.end(); 2344 GI != GE; ++GI) { 2345 StringRef Name = GI->getKey(); 2346 const std::vector<std::pair<const DIE *, unsigned> > &Entities = 2347 GI->second; 2348 for (std::vector<std::pair<const DIE *, unsigned> >::const_iterator 2349 DI = Entities.begin(), 2350 DE = Entities.end(); 2351 DI != DE; ++DI) 2352 AT.AddName(Name, DI->first, DI->second); 2353 } 2354 } 2355 2356 AT.FinalizeTable(Asm, "types"); 2357 Asm->OutStreamer.SwitchSection( 2358 Asm->getObjFileLowering().getDwarfAccelTypesSection()); 2359 MCSymbol *SectionBegin = Asm->GetTempSymbol("types_begin"); 2360 Asm->OutStreamer.EmitLabel(SectionBegin); 2361 2362 // Emit the full data. 2363 AT.Emit(Asm, SectionBegin, &InfoHolder); 2364 } 2365 2366 // Public name handling. 2367 // The format for the various pubnames: 2368 // 2369 // dwarf pubnames - offset/name pairs where the offset is the offset into the CU 2370 // for the DIE that is named. 2371 // 2372 // gnu pubnames - offset/index value/name tuples where the offset is the offset 2373 // into the CU and the index value is computed according to the type of value 2374 // for the DIE that is named. 2375 // 2376 // For type units the offset is the offset of the skeleton DIE. For split dwarf 2377 // it's the offset within the debug_info/debug_types dwo section, however, the 2378 // reference in the pubname header doesn't change. 2379 2380 /// computeIndexValue - Compute the gdb index value for the DIE and CU. 2381 static dwarf::PubIndexEntryDescriptor computeIndexValue(CompileUnit *CU, 2382 DIE *Die) { 2383 dwarf::GDBIndexEntryLinkage Linkage = dwarf::GIEL_STATIC; 2384 2385 // We could have a specification DIE that has our most of our knowledge, 2386 // look for that now. 2387 DIEValue *SpecVal = Die->findAttribute(dwarf::DW_AT_specification); 2388 if (SpecVal) { 2389 DIE *SpecDIE = cast<DIEEntry>(SpecVal)->getEntry(); 2390 if (SpecDIE->findAttribute(dwarf::DW_AT_external)) 2391 Linkage = dwarf::GIEL_EXTERNAL; 2392 } else if (Die->findAttribute(dwarf::DW_AT_external)) 2393 Linkage = dwarf::GIEL_EXTERNAL; 2394 2395 switch (Die->getTag()) { 2396 case dwarf::DW_TAG_class_type: 2397 case dwarf::DW_TAG_structure_type: 2398 case dwarf::DW_TAG_union_type: 2399 case dwarf::DW_TAG_enumeration_type: 2400 return dwarf::PubIndexEntryDescriptor( 2401 dwarf::GIEK_TYPE, CU->getLanguage() != dwarf::DW_LANG_C_plus_plus 2402 ? dwarf::GIEL_STATIC 2403 : dwarf::GIEL_EXTERNAL); 2404 case dwarf::DW_TAG_typedef: 2405 case dwarf::DW_TAG_base_type: 2406 case dwarf::DW_TAG_subrange_type: 2407 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_TYPE, dwarf::GIEL_STATIC); 2408 case dwarf::DW_TAG_namespace: 2409 return dwarf::GIEK_TYPE; 2410 case dwarf::DW_TAG_subprogram: 2411 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_FUNCTION, Linkage); 2412 case dwarf::DW_TAG_constant: 2413 case dwarf::DW_TAG_variable: 2414 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_VARIABLE, Linkage); 2415 case dwarf::DW_TAG_enumerator: 2416 return dwarf::PubIndexEntryDescriptor(dwarf::GIEK_VARIABLE, 2417 dwarf::GIEL_STATIC); 2418 default: 2419 return dwarf::GIEK_NONE; 2420 } 2421 } 2422 2423 /// emitDebugPubNames - Emit visible names into a debug pubnames section. 2424 /// 2425 void DwarfDebug::emitDebugPubNames(bool GnuStyle) { 2426 const MCSection *ISec = Asm->getObjFileLowering().getDwarfInfoSection(); 2427 const MCSection *PSec = 2428 GnuStyle ? Asm->getObjFileLowering().getDwarfGnuPubNamesSection() 2429 : Asm->getObjFileLowering().getDwarfPubNamesSection(); 2430 2431 typedef DenseMap<const MDNode *, CompileUnit *> CUMapType; 2432 for (CUMapType::iterator I = CUMap.begin(), E = CUMap.end(); I != E; ++I) { 2433 CompileUnit *TheCU = I->second; 2434 unsigned ID = TheCU->getUniqueID(); 2435 2436 // Start the dwarf pubnames section. 2437 Asm->OutStreamer.SwitchSection(PSec); 2438 2439 // Emit a label so we can reference the beginning of this pubname section. 2440 if (GnuStyle) 2441 Asm->OutStreamer.EmitLabel( 2442 Asm->GetTempSymbol("gnu_pubnames", TheCU->getUniqueID())); 2443 2444 // Emit the header. 2445 Asm->OutStreamer.AddComment("Length of Public Names Info"); 2446 Asm->EmitLabelDifference(Asm->GetTempSymbol("pubnames_end", ID), 2447 Asm->GetTempSymbol("pubnames_begin", ID), 4); 2448 2449 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("pubnames_begin", ID)); 2450 2451 Asm->OutStreamer.AddComment("DWARF Version"); 2452 Asm->EmitInt16(dwarf::DW_PUBNAMES_VERSION); 2453 2454 Asm->OutStreamer.AddComment("Offset of Compilation Unit Info"); 2455 Asm->EmitSectionOffset(Asm->GetTempSymbol(ISec->getLabelBeginName(), ID), 2456 DwarfInfoSectionSym); 2457 2458 Asm->OutStreamer.AddComment("Compilation Unit Length"); 2459 Asm->EmitLabelDifference(Asm->GetTempSymbol(ISec->getLabelEndName(), ID), 2460 Asm->GetTempSymbol(ISec->getLabelBeginName(), ID), 2461 4); 2462 2463 // Emit the pubnames for this compilation unit. 2464 const StringMap<DIE *> &Globals = TheCU->getGlobalNames(); 2465 for (StringMap<DIE *>::const_iterator GI = Globals.begin(), 2466 GE = Globals.end(); 2467 GI != GE; ++GI) { 2468 const char *Name = GI->getKeyData(); 2469 DIE *Entity = GI->second; 2470 2471 Asm->OutStreamer.AddComment("DIE offset"); 2472 Asm->EmitInt32(Entity->getOffset()); 2473 2474 if (GnuStyle) { 2475 dwarf::PubIndexEntryDescriptor Desc = computeIndexValue(TheCU, Entity); 2476 Asm->OutStreamer.AddComment( 2477 Twine("Kind: ") + dwarf::GDBIndexEntryKindString(Desc.Kind) + ", " + 2478 dwarf::GDBIndexEntryLinkageString(Desc.Linkage)); 2479 Asm->EmitInt8(Desc.toBits()); 2480 } 2481 2482 if (Asm->isVerbose()) 2483 Asm->OutStreamer.AddComment("External Name"); 2484 Asm->OutStreamer.EmitBytes(StringRef(Name, GI->getKeyLength() + 1)); 2485 } 2486 2487 Asm->OutStreamer.AddComment("End Mark"); 2488 Asm->EmitInt32(0); 2489 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("pubnames_end", ID)); 2490 } 2491 } 2492 2493 void DwarfDebug::emitDebugPubTypes(bool GnuStyle) { 2494 const MCSection *ISec = Asm->getObjFileLowering().getDwarfInfoSection(); 2495 const MCSection *PSec = 2496 GnuStyle ? Asm->getObjFileLowering().getDwarfGnuPubTypesSection() 2497 : Asm->getObjFileLowering().getDwarfPubTypesSection(); 2498 2499 for (DenseMap<const MDNode *, CompileUnit *>::iterator I = CUMap.begin(), 2500 E = CUMap.end(); 2501 I != E; ++I) { 2502 CompileUnit *TheCU = I->second; 2503 // Start the dwarf pubtypes section. 2504 Asm->OutStreamer.SwitchSection(PSec); 2505 2506 // Emit a label so we can reference the beginning of this pubtype section. 2507 if (GnuStyle) 2508 Asm->OutStreamer.EmitLabel( 2509 Asm->GetTempSymbol("gnu_pubtypes", TheCU->getUniqueID())); 2510 2511 // Emit the header. 2512 Asm->OutStreamer.AddComment("Length of Public Types Info"); 2513 Asm->EmitLabelDifference( 2514 Asm->GetTempSymbol("pubtypes_end", TheCU->getUniqueID()), 2515 Asm->GetTempSymbol("pubtypes_begin", TheCU->getUniqueID()), 4); 2516 2517 Asm->OutStreamer.EmitLabel( 2518 Asm->GetTempSymbol("pubtypes_begin", TheCU->getUniqueID())); 2519 2520 if (Asm->isVerbose()) 2521 Asm->OutStreamer.AddComment("DWARF Version"); 2522 Asm->EmitInt16(dwarf::DW_PUBTYPES_VERSION); 2523 2524 Asm->OutStreamer.AddComment("Offset of Compilation Unit Info"); 2525 Asm->EmitSectionOffset( 2526 Asm->GetTempSymbol(ISec->getLabelBeginName(), TheCU->getUniqueID()), 2527 DwarfInfoSectionSym); 2528 2529 Asm->OutStreamer.AddComment("Compilation Unit Length"); 2530 Asm->EmitLabelDifference( 2531 Asm->GetTempSymbol(ISec->getLabelEndName(), TheCU->getUniqueID()), 2532 Asm->GetTempSymbol(ISec->getLabelBeginName(), TheCU->getUniqueID()), 4); 2533 2534 // Emit the pubtypes. 2535 const StringMap<DIE *> &Globals = TheCU->getGlobalTypes(); 2536 for (StringMap<DIE *>::const_iterator GI = Globals.begin(), 2537 GE = Globals.end(); 2538 GI != GE; ++GI) { 2539 const char *Name = GI->getKeyData(); 2540 DIE *Entity = GI->second; 2541 2542 if (Asm->isVerbose()) 2543 Asm->OutStreamer.AddComment("DIE offset"); 2544 Asm->EmitInt32(Entity->getOffset()); 2545 2546 if (GnuStyle) { 2547 dwarf::PubIndexEntryDescriptor Desc = computeIndexValue(TheCU, Entity); 2548 Asm->OutStreamer.AddComment( 2549 Twine("Kind: ") + dwarf::GDBIndexEntryKindString(Desc.Kind) + ", " + 2550 dwarf::GDBIndexEntryLinkageString(Desc.Linkage)); 2551 Asm->EmitInt8(Desc.toBits()); 2552 } 2553 2554 if (Asm->isVerbose()) 2555 Asm->OutStreamer.AddComment("External Name"); 2556 2557 // Emit the name with a terminating null byte. 2558 Asm->OutStreamer.EmitBytes(StringRef(Name, GI->getKeyLength() + 1)); 2559 } 2560 2561 Asm->OutStreamer.AddComment("End Mark"); 2562 Asm->EmitInt32(0); 2563 Asm->OutStreamer.EmitLabel( 2564 Asm->GetTempSymbol("pubtypes_end", TheCU->getUniqueID())); 2565 } 2566 } 2567 2568 // Emit strings into a string section. 2569 void DwarfUnits::emitStrings(const MCSection *StrSection, 2570 const MCSection *OffsetSection = NULL, 2571 const MCSymbol *StrSecSym = NULL) { 2572 2573 if (StringPool.empty()) 2574 return; 2575 2576 // Start the dwarf str section. 2577 Asm->OutStreamer.SwitchSection(StrSection); 2578 2579 // Get all of the string pool entries and put them in an array by their ID so 2580 // we can sort them. 2581 SmallVector< 2582 std::pair<unsigned, StringMapEntry<std::pair<MCSymbol *, unsigned> > *>, 2583 64> Entries; 2584 2585 for (StringMap<std::pair<MCSymbol *, unsigned> >::iterator 2586 I = StringPool.begin(), 2587 E = StringPool.end(); 2588 I != E; ++I) 2589 Entries.push_back(std::make_pair(I->second.second, &*I)); 2590 2591 array_pod_sort(Entries.begin(), Entries.end()); 2592 2593 for (unsigned i = 0, e = Entries.size(); i != e; ++i) { 2594 // Emit a label for reference from debug information entries. 2595 Asm->OutStreamer.EmitLabel(Entries[i].second->getValue().first); 2596 2597 // Emit the string itself with a terminating null byte. 2598 Asm->OutStreamer.EmitBytes( 2599 StringRef(Entries[i].second->getKeyData(), 2600 Entries[i].second->getKeyLength() + 1)); 2601 } 2602 2603 // If we've got an offset section go ahead and emit that now as well. 2604 if (OffsetSection) { 2605 Asm->OutStreamer.SwitchSection(OffsetSection); 2606 unsigned offset = 0; 2607 unsigned size = 4; // FIXME: DWARF64 is 8. 2608 for (unsigned i = 0, e = Entries.size(); i != e; ++i) { 2609 Asm->OutStreamer.EmitIntValue(offset, size); 2610 offset += Entries[i].second->getKeyLength() + 1; 2611 } 2612 } 2613 } 2614 2615 2616 // Emit addresses into the section given. 2617 void DwarfUnits::emitAddresses(const MCSection *AddrSection) { 2618 2619 if (AddressPool.empty()) 2620 return; 2621 2622 // Start the dwarf addr section. 2623 Asm->OutStreamer.SwitchSection(AddrSection); 2624 2625 // Order the address pool entries by ID 2626 SmallVector<const MCExpr *, 64> Entries(AddressPool.size()); 2627 2628 for (DenseMap<const MCExpr *, unsigned>::iterator I = AddressPool.begin(), 2629 E = AddressPool.end(); 2630 I != E; ++I) 2631 Entries[I->second] = I->first; 2632 2633 for (unsigned i = 0, e = Entries.size(); i != e; ++i) { 2634 // Emit an expression for reference from debug information entries. 2635 if (const MCExpr *Expr = Entries[i]) 2636 Asm->OutStreamer.EmitValue(Expr, Asm->getDataLayout().getPointerSize()); 2637 else 2638 Asm->OutStreamer.EmitIntValue(0, Asm->getDataLayout().getPointerSize()); 2639 } 2640 } 2641 2642 // Emit visible names into a debug str section. 2643 void DwarfDebug::emitDebugStr() { 2644 DwarfUnits &Holder = useSplitDwarf() ? SkeletonHolder : InfoHolder; 2645 Holder.emitStrings(Asm->getObjFileLowering().getDwarfStrSection()); 2646 } 2647 2648 // Emit locations into the debug loc section. 2649 void DwarfDebug::emitDebugLoc() { 2650 if (DotDebugLocEntries.empty()) 2651 return; 2652 2653 for (SmallVectorImpl<DotDebugLocEntry>::iterator 2654 I = DotDebugLocEntries.begin(), 2655 E = DotDebugLocEntries.end(); 2656 I != E; ++I) { 2657 DotDebugLocEntry &Entry = *I; 2658 if (I + 1 != DotDebugLocEntries.end()) 2659 Entry.Merge(I + 1); 2660 } 2661 2662 // Start the dwarf loc section. 2663 Asm->OutStreamer.SwitchSection( 2664 Asm->getObjFileLowering().getDwarfLocSection()); 2665 unsigned char Size = Asm->getDataLayout().getPointerSize(); 2666 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("debug_loc", 0)); 2667 unsigned index = 1; 2668 for (SmallVectorImpl<DotDebugLocEntry>::iterator 2669 I = DotDebugLocEntries.begin(), 2670 E = DotDebugLocEntries.end(); 2671 I != E; ++I, ++index) { 2672 DotDebugLocEntry &Entry = *I; 2673 if (Entry.isMerged()) 2674 continue; 2675 if (Entry.isEmpty()) { 2676 Asm->OutStreamer.EmitIntValue(0, Size); 2677 Asm->OutStreamer.EmitIntValue(0, Size); 2678 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("debug_loc", index)); 2679 } else { 2680 Asm->OutStreamer.EmitSymbolValue(Entry.getBeginSym(), Size); 2681 Asm->OutStreamer.EmitSymbolValue(Entry.getEndSym(), Size); 2682 DIVariable DV(Entry.getVariable()); 2683 Asm->OutStreamer.AddComment("Loc expr size"); 2684 MCSymbol *begin = Asm->OutStreamer.getContext().CreateTempSymbol(); 2685 MCSymbol *end = Asm->OutStreamer.getContext().CreateTempSymbol(); 2686 Asm->EmitLabelDifference(end, begin, 2); 2687 Asm->OutStreamer.EmitLabel(begin); 2688 if (Entry.isInt()) { 2689 DIBasicType BTy(DV.getType()); 2690 if (BTy.Verify() && (BTy.getEncoding() == dwarf::DW_ATE_signed || 2691 BTy.getEncoding() == dwarf::DW_ATE_signed_char)) { 2692 Asm->OutStreamer.AddComment("DW_OP_consts"); 2693 Asm->EmitInt8(dwarf::DW_OP_consts); 2694 Asm->EmitSLEB128(Entry.getInt()); 2695 } else { 2696 Asm->OutStreamer.AddComment("DW_OP_constu"); 2697 Asm->EmitInt8(dwarf::DW_OP_constu); 2698 Asm->EmitULEB128(Entry.getInt()); 2699 } 2700 } else if (Entry.isLocation()) { 2701 MachineLocation Loc = Entry.getLoc(); 2702 if (!DV.hasComplexAddress()) 2703 // Regular entry. 2704 Asm->EmitDwarfRegOp(Loc, DV.isIndirect()); 2705 else { 2706 // Complex address entry. 2707 unsigned N = DV.getNumAddrElements(); 2708 unsigned i = 0; 2709 if (N >= 2 && DV.getAddrElement(0) == DIBuilder::OpPlus) { 2710 if (Loc.getOffset()) { 2711 i = 2; 2712 Asm->EmitDwarfRegOp(Loc, DV.isIndirect()); 2713 Asm->OutStreamer.AddComment("DW_OP_deref"); 2714 Asm->EmitInt8(dwarf::DW_OP_deref); 2715 Asm->OutStreamer.AddComment("DW_OP_plus_uconst"); 2716 Asm->EmitInt8(dwarf::DW_OP_plus_uconst); 2717 Asm->EmitSLEB128(DV.getAddrElement(1)); 2718 } else { 2719 // If first address element is OpPlus then emit 2720 // DW_OP_breg + Offset instead of DW_OP_reg + Offset. 2721 MachineLocation TLoc(Loc.getReg(), DV.getAddrElement(1)); 2722 Asm->EmitDwarfRegOp(TLoc, DV.isIndirect()); 2723 i = 2; 2724 } 2725 } else { 2726 Asm->EmitDwarfRegOp(Loc, DV.isIndirect()); 2727 } 2728 2729 // Emit remaining complex address elements. 2730 for (; i < N; ++i) { 2731 uint64_t Element = DV.getAddrElement(i); 2732 if (Element == DIBuilder::OpPlus) { 2733 Asm->EmitInt8(dwarf::DW_OP_plus_uconst); 2734 Asm->EmitULEB128(DV.getAddrElement(++i)); 2735 } else if (Element == DIBuilder::OpDeref) { 2736 if (!Loc.isReg()) 2737 Asm->EmitInt8(dwarf::DW_OP_deref); 2738 } else 2739 llvm_unreachable("unknown Opcode found in complex address"); 2740 } 2741 } 2742 } 2743 // else ... ignore constant fp. There is not any good way to 2744 // to represent them here in dwarf. 2745 Asm->OutStreamer.EmitLabel(end); 2746 } 2747 } 2748 } 2749 2750 struct SymbolCUSorter { 2751 SymbolCUSorter(const MCStreamer &s) : Streamer(s) {} 2752 const MCStreamer &Streamer; 2753 2754 bool operator()(const SymbolCU &A, const SymbolCU &B) { 2755 unsigned IA = A.Sym ? Streamer.GetSymbolOrder(A.Sym) : 0; 2756 unsigned IB = B.Sym ? Streamer.GetSymbolOrder(B.Sym) : 0; 2757 2758 // Symbols with no order assigned should be placed at the end. 2759 // (e.g. section end labels) 2760 if (IA == 0) 2761 IA = (unsigned)(-1); 2762 if (IB == 0) 2763 IB = (unsigned)(-1); 2764 return IA < IB; 2765 } 2766 }; 2767 2768 static bool CUSort(const CompileUnit *A, const CompileUnit *B) { 2769 return (A->getUniqueID() < B->getUniqueID()); 2770 } 2771 2772 struct ArangeSpan { 2773 const MCSymbol *Start, *End; 2774 }; 2775 2776 // Emit a debug aranges section, containing a CU lookup for any 2777 // address we can tie back to a CU. 2778 void DwarfDebug::emitDebugARanges() { 2779 // Start the dwarf aranges section. 2780 Asm->OutStreamer.SwitchSection( 2781 Asm->getObjFileLowering().getDwarfARangesSection()); 2782 2783 typedef DenseMap<CompileUnit *, std::vector<ArangeSpan> > SpansType; 2784 2785 SpansType Spans; 2786 2787 // Build a list of sections used. 2788 std::vector<const MCSection *> Sections; 2789 for (SectionMapType::iterator it = SectionMap.begin(); it != SectionMap.end(); 2790 it++) { 2791 const MCSection *Section = it->first; 2792 Sections.push_back(Section); 2793 } 2794 2795 // Sort the sections into order. 2796 // This is only done to ensure consistent output order across different runs. 2797 std::sort(Sections.begin(), Sections.end(), SectionSort); 2798 2799 // Build a set of address spans, sorted by CU. 2800 for (size_t SecIdx = 0; SecIdx < Sections.size(); SecIdx++) { 2801 const MCSection *Section = Sections[SecIdx]; 2802 SmallVector<SymbolCU, 8> &List = SectionMap[Section]; 2803 if (List.size() < 2) 2804 continue; 2805 2806 // Sort the symbols by offset within the section. 2807 SymbolCUSorter sorter(Asm->OutStreamer); 2808 std::sort(List.begin(), List.end(), sorter); 2809 2810 // If we have no section (e.g. common), just write out 2811 // individual spans for each symbol. 2812 if (Section == NULL) { 2813 for (size_t n = 0; n < List.size(); n++) { 2814 const SymbolCU &Cur = List[n]; 2815 2816 ArangeSpan Span; 2817 Span.Start = Cur.Sym; 2818 Span.End = NULL; 2819 if (Cur.CU) 2820 Spans[Cur.CU].push_back(Span); 2821 } 2822 } else { 2823 // Build spans between each label. 2824 const MCSymbol *StartSym = List[0].Sym; 2825 for (size_t n = 1; n < List.size(); n++) { 2826 const SymbolCU &Prev = List[n - 1]; 2827 const SymbolCU &Cur = List[n]; 2828 2829 // Try and build the longest span we can within the same CU. 2830 if (Cur.CU != Prev.CU) { 2831 ArangeSpan Span; 2832 Span.Start = StartSym; 2833 Span.End = Cur.Sym; 2834 Spans[Prev.CU].push_back(Span); 2835 StartSym = Cur.Sym; 2836 } 2837 } 2838 } 2839 } 2840 2841 const MCSection *ISec = Asm->getObjFileLowering().getDwarfInfoSection(); 2842 unsigned PtrSize = Asm->getDataLayout().getPointerSize(); 2843 2844 // Build a list of CUs used. 2845 std::vector<CompileUnit *> CUs; 2846 for (SpansType::iterator it = Spans.begin(); it != Spans.end(); it++) { 2847 CompileUnit *CU = it->first; 2848 CUs.push_back(CU); 2849 } 2850 2851 // Sort the CU list (again, to ensure consistent output order). 2852 std::sort(CUs.begin(), CUs.end(), CUSort); 2853 2854 // Emit an arange table for each CU we used. 2855 for (size_t CUIdx = 0; CUIdx < CUs.size(); CUIdx++) { 2856 CompileUnit *CU = CUs[CUIdx]; 2857 std::vector<ArangeSpan> &List = Spans[CU]; 2858 2859 // Emit size of content not including length itself. 2860 unsigned ContentSize = 2861 sizeof(int16_t) + // DWARF ARange version number 2862 sizeof(int32_t) + // Offset of CU in the .debug_info section 2863 sizeof(int8_t) + // Pointer Size (in bytes) 2864 sizeof(int8_t); // Segment Size (in bytes) 2865 2866 unsigned TupleSize = PtrSize * 2; 2867 2868 // 7.20 in the Dwarf specs requires the table to be aligned to a tuple. 2869 unsigned Padding = 0; 2870 while (((sizeof(int32_t) + ContentSize + Padding) % TupleSize) != 0) 2871 Padding++; 2872 2873 ContentSize += Padding; 2874 ContentSize += (List.size() + 1) * TupleSize; 2875 2876 // For each compile unit, write the list of spans it covers. 2877 Asm->OutStreamer.AddComment("Length of ARange Set"); 2878 Asm->EmitInt32(ContentSize); 2879 Asm->OutStreamer.AddComment("DWARF Arange version number"); 2880 Asm->EmitInt16(dwarf::DW_ARANGES_VERSION); 2881 Asm->OutStreamer.AddComment("Offset Into Debug Info Section"); 2882 Asm->EmitSectionOffset( 2883 Asm->GetTempSymbol(ISec->getLabelBeginName(), CU->getUniqueID()), 2884 DwarfInfoSectionSym); 2885 Asm->OutStreamer.AddComment("Address Size (in bytes)"); 2886 Asm->EmitInt8(PtrSize); 2887 Asm->OutStreamer.AddComment("Segment Size (in bytes)"); 2888 Asm->EmitInt8(0); 2889 2890 for (unsigned n = 0; n < Padding; n++) 2891 Asm->EmitInt8(0xff); 2892 2893 for (unsigned n = 0; n < List.size(); n++) { 2894 const ArangeSpan &Span = List[n]; 2895 Asm->EmitLabelReference(Span.Start, PtrSize); 2896 2897 // Calculate the size as being from the span start to it's end. 2898 if (Span.End) { 2899 Asm->EmitLabelDifference(Span.End, Span.Start, PtrSize); 2900 } else { 2901 // For symbols without an end marker (e.g. common), we 2902 // write a single arange entry containing just that one symbol. 2903 uint64_t Size = SymSize[Span.Start]; 2904 if (Size == 0) 2905 Size = 1; 2906 2907 Asm->OutStreamer.EmitIntValue(Size, PtrSize); 2908 } 2909 } 2910 2911 Asm->OutStreamer.AddComment("ARange terminator"); 2912 Asm->OutStreamer.EmitIntValue(0, PtrSize); 2913 Asm->OutStreamer.EmitIntValue(0, PtrSize); 2914 } 2915 } 2916 2917 // Emit visible names into a debug ranges section. 2918 void DwarfDebug::emitDebugRanges() { 2919 // Start the dwarf ranges section. 2920 Asm->OutStreamer.SwitchSection( 2921 Asm->getObjFileLowering().getDwarfRangesSection()); 2922 unsigned char Size = Asm->getDataLayout().getPointerSize(); 2923 for (SmallVectorImpl<const MCSymbol *>::iterator 2924 I = DebugRangeSymbols.begin(), 2925 E = DebugRangeSymbols.end(); 2926 I != E; ++I) { 2927 if (*I) 2928 Asm->OutStreamer.EmitSymbolValue(const_cast<MCSymbol *>(*I), Size); 2929 else 2930 Asm->OutStreamer.EmitIntValue(0, Size); 2931 } 2932 } 2933 2934 // Emit visible names into a debug macinfo section. 2935 void DwarfDebug::emitDebugMacInfo() { 2936 if (const MCSection *LineInfo = 2937 Asm->getObjFileLowering().getDwarfMacroInfoSection()) { 2938 // Start the dwarf macinfo section. 2939 Asm->OutStreamer.SwitchSection(LineInfo); 2940 } 2941 } 2942 2943 // DWARF5 Experimental Separate Dwarf emitters. 2944 2945 // This DIE has the following attributes: DW_AT_comp_dir, DW_AT_stmt_list, 2946 // DW_AT_low_pc, DW_AT_high_pc, DW_AT_ranges, DW_AT_dwo_name, DW_AT_dwo_id, 2947 // DW_AT_ranges_base, DW_AT_addr_base. 2948 CompileUnit *DwarfDebug::constructSkeletonCU(const CompileUnit *CU) { 2949 2950 DIE *Die = new DIE(dwarf::DW_TAG_compile_unit); 2951 CompileUnit *NewCU = new CompileUnit(CU->getUniqueID(), Die, CU->getNode(), 2952 Asm, this, &SkeletonHolder); 2953 2954 NewCU->addLocalString(Die, dwarf::DW_AT_GNU_dwo_name, 2955 CU->getNode().getSplitDebugFilename()); 2956 2957 // Relocate to the beginning of the addr_base section, else 0 for the 2958 // beginning of the one for this compile unit. 2959 if (Asm->MAI->doesDwarfUseRelocationsAcrossSections()) 2960 NewCU->addLabel(Die, dwarf::DW_AT_GNU_addr_base, dwarf::DW_FORM_sec_offset, 2961 DwarfAddrSectionSym); 2962 else 2963 NewCU->addUInt(Die, dwarf::DW_AT_GNU_addr_base, dwarf::DW_FORM_sec_offset, 2964 0); 2965 2966 // 2.17.1 requires that we use DW_AT_low_pc for a single entry point 2967 // into an entity. We're using 0, or a NULL label for this. 2968 NewCU->addUInt(Die, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, 0); 2969 2970 // DW_AT_stmt_list is a offset of line number information for this 2971 // compile unit in debug_line section. 2972 // FIXME: Should handle multiple compile units. 2973 if (Asm->MAI->doesDwarfUseRelocationsAcrossSections()) 2974 NewCU->addLabel(Die, dwarf::DW_AT_stmt_list, dwarf::DW_FORM_sec_offset, 2975 DwarfLineSectionSym); 2976 else 2977 NewCU->addUInt(Die, dwarf::DW_AT_stmt_list, dwarf::DW_FORM_sec_offset, 0); 2978 2979 if (!CompilationDir.empty()) 2980 NewCU->addLocalString(Die, dwarf::DW_AT_comp_dir, CompilationDir); 2981 2982 // Flags to let the linker know we have emitted new style pubnames. 2983 if (GenerateGnuPubSections) { 2984 if (Asm->MAI->doesDwarfUseRelocationsAcrossSections()) 2985 NewCU->addLabel(Die, dwarf::DW_AT_GNU_pubnames, dwarf::DW_FORM_sec_offset, 2986 Asm->GetTempSymbol("gnu_pubnames", NewCU->getUniqueID())); 2987 else 2988 NewCU->addDelta(Die, dwarf::DW_AT_GNU_pubnames, dwarf::DW_FORM_data4, 2989 Asm->GetTempSymbol("gnu_pubnames", NewCU->getUniqueID()), 2990 DwarfGnuPubNamesSectionSym); 2991 2992 if (Asm->MAI->doesDwarfUseRelocationsAcrossSections()) 2993 NewCU->addLabel(Die, dwarf::DW_AT_GNU_pubtypes, dwarf::DW_FORM_sec_offset, 2994 Asm->GetTempSymbol("gnu_pubtypes", NewCU->getUniqueID())); 2995 else 2996 NewCU->addDelta(Die, dwarf::DW_AT_GNU_pubtypes, dwarf::DW_FORM_data4, 2997 Asm->GetTempSymbol("gnu_pubtypes", NewCU->getUniqueID()), 2998 DwarfGnuPubTypesSectionSym); 2999 } 3000 3001 // Flag if we've emitted any ranges and their location for the compile unit. 3002 if (DebugRangeSymbols.size()) { 3003 if (Asm->MAI->doesDwarfUseRelocationsAcrossSections()) 3004 NewCU->addLabel(Die, dwarf::DW_AT_GNU_ranges_base, 3005 dwarf::DW_FORM_sec_offset, DwarfDebugRangeSectionSym); 3006 else 3007 NewCU->addUInt(Die, dwarf::DW_AT_GNU_ranges_base, dwarf::DW_FORM_data4, 3008 0); 3009 } 3010 3011 SkeletonHolder.addUnit(NewCU); 3012 SkeletonCUs.push_back(NewCU); 3013 3014 return NewCU; 3015 } 3016 3017 void DwarfDebug::emitSkeletonAbbrevs(const MCSection *Section) { 3018 assert(useSplitDwarf() && "No split dwarf debug info?"); 3019 emitAbbrevs(Section, &SkeletonAbbrevs); 3020 } 3021 3022 // Emit the .debug_info.dwo section for separated dwarf. This contains the 3023 // compile units that would normally be in debug_info. 3024 void DwarfDebug::emitDebugInfoDWO() { 3025 assert(useSplitDwarf() && "No split dwarf debug info?"); 3026 InfoHolder.emitUnits(this, Asm->getObjFileLowering().getDwarfInfoDWOSection(), 3027 Asm->getObjFileLowering().getDwarfAbbrevDWOSection(), 3028 DwarfAbbrevDWOSectionSym); 3029 } 3030 3031 // Emit the .debug_abbrev.dwo section for separated dwarf. This contains the 3032 // abbreviations for the .debug_info.dwo section. 3033 void DwarfDebug::emitDebugAbbrevDWO() { 3034 assert(useSplitDwarf() && "No split dwarf?"); 3035 emitAbbrevs(Asm->getObjFileLowering().getDwarfAbbrevDWOSection(), 3036 &Abbreviations); 3037 } 3038 3039 // Emit the .debug_str.dwo section for separated dwarf. This contains the 3040 // string section and is identical in format to traditional .debug_str 3041 // sections. 3042 void DwarfDebug::emitDebugStrDWO() { 3043 assert(useSplitDwarf() && "No split dwarf?"); 3044 const MCSection *OffSec = 3045 Asm->getObjFileLowering().getDwarfStrOffDWOSection(); 3046 const MCSymbol *StrSym = DwarfStrSectionSym; 3047 InfoHolder.emitStrings(Asm->getObjFileLowering().getDwarfStrDWOSection(), 3048 OffSec, StrSym); 3049 } 3050 3051 void DwarfDebug::addTypeUnitType(DIE *RefDie, DICompositeType CTy) { 3052 DenseMap<const MDNode*, std::pair<uint64_t, SmallVectorImpl<DIE*>* > >::iterator I = TypeUnits.find(CTy); 3053 SmallVector<DIE *, 8> References; 3054 References.push_back(RefDie); 3055 if (I != TypeUnits.end()) { 3056 if (I->second.second) { 3057 I->second.second->push_back(RefDie); 3058 return; 3059 } 3060 } else { 3061 DIE *UnitDie = new DIE(dwarf::DW_TAG_type_unit); 3062 CompileUnit *NewCU = 3063 new CompileUnit(GlobalCUIndexCount++, UnitDie, 3064 dwarf::DW_LANG_C_plus_plus, Asm, this, &InfoHolder); 3065 CUDieMap.insert(std::make_pair(UnitDie, NewCU)); 3066 NewCU->addUInt(UnitDie, dwarf::DW_AT_language, dwarf::DW_FORM_data2, 3067 dwarf::DW_LANG_C_plus_plus); 3068 3069 // Register the type in the TypeUnits map with a vector of references to be 3070 // populated whenever a reference is required. 3071 I = TypeUnits.insert(std::make_pair(CTy, std::make_pair(0, &References))) 3072 .first; 3073 3074 // Construct the type, this may, recursively, require more type units that 3075 // may in turn require this type again - in which case they will add DIEs to 3076 // the References vector. 3077 DIE *Die = NewCU->createTypeDIE(CTy); 3078 3079 if (GenerateODRHash && shouldAddODRHash(NewCU, Die)) 3080 NewCU->addUInt(UnitDie, dwarf::DW_AT_GNU_odr_signature, 3081 dwarf::DW_FORM_data8, 3082 DIEHash().computeDIEODRSignature(*Die)); 3083 // FIXME: This won't handle circularly referential structures, as the DIE 3084 // may have references to other DIEs still under construction and missing 3085 // their signature. Hashing should walk through the signatures to their 3086 // referenced type, or possibly walk the precomputed hashes of related types 3087 // at the end. 3088 uint64_t Signature = DIEHash().computeTypeSignature(*Die); 3089 3090 // Remove the References vector and add the type hash. 3091 I->second.first = Signature; 3092 I->second.second = NULL; 3093 3094 3095 InfoHolder.addUnit(NewCU); 3096 } 3097 3098 // Populate all the signatures. 3099 for (unsigned i = 0, e = References.size(); i != e; ++i) { 3100 CUMap.begin()->second->addUInt(References[i], dwarf::DW_AT_signature, 3101 dwarf::DW_FORM_ref_sig8, I->second.first); 3102 } 3103 } 3104