DwarfDebug.cpp revision c8fcfc9cd9c0940e8afdaba8b815f8f489b457ba
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 "DwarfCompileUnit.h" 18#include "llvm/Constants.h" 19#include "llvm/Module.h" 20#include "llvm/Instructions.h" 21#include "llvm/CodeGen/MachineFunction.h" 22#include "llvm/CodeGen/MachineModuleInfo.h" 23#include "llvm/MC/MCAsmInfo.h" 24#include "llvm/MC/MCSection.h" 25#include "llvm/MC/MCStreamer.h" 26#include "llvm/MC/MCSymbol.h" 27#include "llvm/Target/Mangler.h" 28#include "llvm/Target/TargetData.h" 29#include "llvm/Target/TargetFrameLowering.h" 30#include "llvm/Target/TargetLoweringObjectFile.h" 31#include "llvm/Target/TargetMachine.h" 32#include "llvm/Target/TargetRegisterInfo.h" 33#include "llvm/Target/TargetOptions.h" 34#include "llvm/Analysis/DebugInfo.h" 35#include "llvm/Analysis/DIBuilder.h" 36#include "llvm/ADT/Statistic.h" 37#include "llvm/ADT/STLExtras.h" 38#include "llvm/ADT/StringExtras.h" 39#include "llvm/Support/CommandLine.h" 40#include "llvm/Support/Debug.h" 41#include "llvm/Support/ErrorHandling.h" 42#include "llvm/Support/ValueHandle.h" 43#include "llvm/Support/FormattedStream.h" 44#include "llvm/Support/Timer.h" 45#include "llvm/Support/Path.h" 46using namespace llvm; 47 48static cl::opt<bool> PrintDbgScope("print-dbgscope", cl::Hidden, 49 cl::desc("Print DbgScope information for each machine instruction")); 50 51static cl::opt<bool> DisableDebugInfoPrinting("disable-debug-info-print", 52 cl::Hidden, 53 cl::desc("Disable debug info printing")); 54 55static cl::opt<bool> UnknownLocations("use-unknown-locations", cl::Hidden, 56 cl::desc("Make an absence of debug location information explicit."), 57 cl::init(false)); 58 59namespace { 60 const char *DWARFGroupName = "DWARF Emission"; 61 const char *DbgTimerName = "DWARF Debug Writer"; 62} // end anonymous namespace 63 64//===----------------------------------------------------------------------===// 65 66/// Configuration values for initial hash set sizes (log2). 67/// 68static const unsigned InitAbbreviationsSetSize = 9; // log2(512) 69 70namespace llvm { 71 72DIType DbgVariable::getType() const { 73 DIType Ty = Var.getType(); 74 // FIXME: isBlockByrefVariable should be reformulated in terms of complex 75 // addresses instead. 76 if (Var.isBlockByrefVariable()) { 77 /* Byref variables, in Blocks, are declared by the programmer as 78 "SomeType VarName;", but the compiler creates a 79 __Block_byref_x_VarName struct, and gives the variable VarName 80 either the struct, or a pointer to the struct, as its type. This 81 is necessary for various behind-the-scenes things the compiler 82 needs to do with by-reference variables in blocks. 83 84 However, as far as the original *programmer* is concerned, the 85 variable should still have type 'SomeType', as originally declared. 86 87 The following function dives into the __Block_byref_x_VarName 88 struct to find the original type of the variable. This will be 89 passed back to the code generating the type for the Debug 90 Information Entry for the variable 'VarName'. 'VarName' will then 91 have the original type 'SomeType' in its debug information. 92 93 The original type 'SomeType' will be the type of the field named 94 'VarName' inside the __Block_byref_x_VarName struct. 95 96 NOTE: In order for this to not completely fail on the debugger 97 side, the Debug Information Entry for the variable VarName needs to 98 have a DW_AT_location that tells the debugger how to unwind through 99 the pointers and __Block_byref_x_VarName struct to find the actual 100 value of the variable. The function addBlockByrefType does this. */ 101 DIType subType = Ty; 102 unsigned tag = Ty.getTag(); 103 104 if (tag == dwarf::DW_TAG_pointer_type) { 105 DIDerivedType DTy = DIDerivedType(Ty); 106 subType = DTy.getTypeDerivedFrom(); 107 } 108 109 DICompositeType blockStruct = DICompositeType(subType); 110 DIArray Elements = blockStruct.getTypeArray(); 111 112 for (unsigned i = 0, N = Elements.getNumElements(); i < N; ++i) { 113 DIDescriptor Element = Elements.getElement(i); 114 DIDerivedType DT = DIDerivedType(Element); 115 if (getName() == DT.getName()) 116 return (DT.getTypeDerivedFrom()); 117 } 118 return Ty; 119 } 120 return Ty; 121} 122 123//===----------------------------------------------------------------------===// 124/// DbgRange - This is used to track range of instructions with identical 125/// debug info scope. 126/// 127typedef std::pair<const MachineInstr *, const MachineInstr *> DbgRange; 128 129//===----------------------------------------------------------------------===// 130/// DbgScope - This class is used to track scope information. 131/// 132class DbgScope { 133 DbgScope *Parent; // Parent to this scope. 134 DIDescriptor Desc; // Debug info descriptor for scope. 135 // Location at which this scope is inlined. 136 AssertingVH<const MDNode> InlinedAtLocation; 137 bool AbstractScope; // Abstract Scope 138 const MachineInstr *LastInsn; // Last instruction of this scope. 139 const MachineInstr *FirstInsn; // First instruction of this scope. 140 unsigned DFSIn, DFSOut; 141 // Scopes defined in scope. Contents not owned. 142 SmallVector<DbgScope *, 4> Scopes; 143 // Variables declared in scope. Contents owned. 144 SmallVector<DbgVariable *, 8> Variables; 145 SmallVector<DbgRange, 4> Ranges; 146 // Private state for dump() 147 mutable unsigned IndentLevel; 148public: 149 DbgScope(DbgScope *P, DIDescriptor D, const MDNode *I = 0) 150 : Parent(P), Desc(D), InlinedAtLocation(I), AbstractScope(false), 151 LastInsn(0), FirstInsn(0), 152 DFSIn(0), DFSOut(0), IndentLevel(0) {} 153 virtual ~DbgScope(); 154 155 // Accessors. 156 DbgScope *getParent() const { return Parent; } 157 void setParent(DbgScope *P) { Parent = P; } 158 DIDescriptor getDesc() const { return Desc; } 159 const MDNode *getInlinedAt() const { return InlinedAtLocation; } 160 const MDNode *getScopeNode() const { return Desc; } 161 const SmallVector<DbgScope *, 4> &getScopes() { return Scopes; } 162 const SmallVector<DbgVariable *, 8> &getDbgVariables() { return Variables; } 163 const SmallVector<DbgRange, 4> &getRanges() { return Ranges; } 164 165 /// openInsnRange - This scope covers instruction range starting from MI. 166 void openInsnRange(const MachineInstr *MI) { 167 if (!FirstInsn) 168 FirstInsn = MI; 169 170 if (Parent) 171 Parent->openInsnRange(MI); 172 } 173 174 /// extendInsnRange - Extend the current instruction range covered by 175 /// this scope. 176 void extendInsnRange(const MachineInstr *MI) { 177 assert (FirstInsn && "MI Range is not open!"); 178 LastInsn = MI; 179 if (Parent) 180 Parent->extendInsnRange(MI); 181 } 182 183 /// closeInsnRange - Create a range based on FirstInsn and LastInsn collected 184 /// until now. This is used when a new scope is encountered while walking 185 /// machine instructions. 186 void closeInsnRange(DbgScope *NewScope = NULL) { 187 assert (LastInsn && "Last insn missing!"); 188 Ranges.push_back(DbgRange(FirstInsn, LastInsn)); 189 FirstInsn = NULL; 190 LastInsn = NULL; 191 // If Parent dominates NewScope then do not close Parent's instruction 192 // range. 193 if (Parent && (!NewScope || !Parent->dominates(NewScope))) 194 Parent->closeInsnRange(NewScope); 195 } 196 197 void setAbstractScope() { AbstractScope = true; } 198 bool isAbstractScope() const { return AbstractScope; } 199 200 // Depth First Search support to walk and mainpluate DbgScope hierarchy. 201 unsigned getDFSOut() const { return DFSOut; } 202 void setDFSOut(unsigned O) { DFSOut = O; } 203 unsigned getDFSIn() const { return DFSIn; } 204 void setDFSIn(unsigned I) { DFSIn = I; } 205 bool dominates(const DbgScope *S) { 206 if (S == this) 207 return true; 208 if (DFSIn < S->getDFSIn() && DFSOut > S->getDFSOut()) 209 return true; 210 return false; 211 } 212 213 /// addScope - Add a scope to the scope. 214 /// 215 void addScope(DbgScope *S) { Scopes.push_back(S); } 216 217 /// addVariable - Add a variable to the scope. 218 /// 219 void addVariable(DbgVariable *V) { Variables.push_back(V); } 220 221#ifndef NDEBUG 222 void dump() const; 223#endif 224}; 225 226} // end llvm namespace 227 228#ifndef NDEBUG 229void DbgScope::dump() const { 230 raw_ostream &err = dbgs(); 231 err.indent(IndentLevel); 232 err << "DFSIn: " << DFSIn << " DFSOut: " << DFSOut << "\n"; 233 const MDNode *N = Desc; 234 N->dump(); 235 if (AbstractScope) 236 err << "Abstract Scope\n"; 237 238 IndentLevel += 2; 239 if (!Scopes.empty()) 240 err << "Children ...\n"; 241 for (unsigned i = 0, e = Scopes.size(); i != e; ++i) 242 if (Scopes[i] != this) 243 Scopes[i]->dump(); 244 245 IndentLevel -= 2; 246} 247#endif 248 249DbgScope::~DbgScope() { 250 for (unsigned j = 0, M = Variables.size(); j < M; ++j) 251 delete Variables[j]; 252} 253 254DwarfDebug::DwarfDebug(AsmPrinter *A, Module *M) 255 : Asm(A), MMI(Asm->MMI), FirstCU(0), 256 AbbreviationsSet(InitAbbreviationsSetSize), 257 CurrentFnDbgScope(0), PrevLabel(NULL) { 258 NextStringPoolNumber = 0; 259 260 DwarfInfoSectionSym = DwarfAbbrevSectionSym = 0; 261 DwarfStrSectionSym = TextSectionSym = 0; 262 DwarfDebugRangeSectionSym = DwarfDebugLocSectionSym = 0; 263 FunctionBeginSym = FunctionEndSym = 0; 264 { 265 NamedRegionTimer T(DbgTimerName, DWARFGroupName, TimePassesIsEnabled); 266 beginModule(M); 267 } 268} 269DwarfDebug::~DwarfDebug() { 270} 271 272MCSymbol *DwarfDebug::getStringPoolEntry(StringRef Str) { 273 std::pair<MCSymbol*, unsigned> &Entry = StringPool[Str]; 274 if (Entry.first) return Entry.first; 275 276 Entry.second = NextStringPoolNumber++; 277 return Entry.first = Asm->GetTempSymbol("string", Entry.second); 278} 279 280 281/// assignAbbrevNumber - Define a unique number for the abbreviation. 282/// 283void DwarfDebug::assignAbbrevNumber(DIEAbbrev &Abbrev) { 284 // Profile the node so that we can make it unique. 285 FoldingSetNodeID ID; 286 Abbrev.Profile(ID); 287 288 // Check the set for priors. 289 DIEAbbrev *InSet = AbbreviationsSet.GetOrInsertNode(&Abbrev); 290 291 // If it's newly added. 292 if (InSet == &Abbrev) { 293 // Add to abbreviation list. 294 Abbreviations.push_back(&Abbrev); 295 296 // Assign the vector position + 1 as its number. 297 Abbrev.setNumber(Abbreviations.size()); 298 } else { 299 // Assign existing abbreviation number. 300 Abbrev.setNumber(InSet->getNumber()); 301 } 302} 303 304/// getRealLinkageName - If special LLVM prefix that is used to inform the asm 305/// printer to not emit usual symbol prefix before the symbol name is used then 306/// return linkage name after skipping this special LLVM prefix. 307static StringRef getRealLinkageName(StringRef LinkageName) { 308 char One = '\1'; 309 if (LinkageName.startswith(StringRef(&One, 1))) 310 return LinkageName.substr(1); 311 return LinkageName; 312} 313 314/// createSubprogramDIE - Create new DIE using SP. 315DIE *DwarfDebug::createSubprogramDIE(DISubprogram SP) { 316 CompileUnit *SPCU = getCompileUnit(SP); 317 DIE *SPDie = SPCU->getDIE(SP); 318 if (SPDie) 319 return SPDie; 320 321 SPDie = new DIE(dwarf::DW_TAG_subprogram); 322 323 // DW_TAG_inlined_subroutine may refer to this DIE. 324 SPCU->insertDIE(SP, SPDie); 325 326 // Add to context owner. 327 SPCU->addToContextOwner(SPDie, SP.getContext()); 328 329 // Add function template parameters. 330 SPCU->addTemplateParams(*SPDie, SP.getTemplateParams()); 331 332 StringRef LinkageName = SP.getLinkageName(); 333 if (!LinkageName.empty()) 334 SPCU->addString(SPDie, dwarf::DW_AT_MIPS_linkage_name, dwarf::DW_FORM_string, 335 getRealLinkageName(LinkageName)); 336 337 // If this DIE is going to refer declaration info using AT_specification 338 // then there is no need to add other attributes. 339 if (SP.getFunctionDeclaration().isSubprogram()) 340 return SPDie; 341 342 // Constructors and operators for anonymous aggregates do not have names. 343 if (!SP.getName().empty()) 344 SPCU->addString(SPDie, dwarf::DW_AT_name, dwarf::DW_FORM_string, 345 SP.getName()); 346 347 SPCU->addSourceLine(SPDie, SP); 348 349 if (SP.isPrototyped()) 350 SPCU->addUInt(SPDie, dwarf::DW_AT_prototyped, dwarf::DW_FORM_flag, 1); 351 352 // Add Return Type. 353 DICompositeType SPTy = SP.getType(); 354 DIArray Args = SPTy.getTypeArray(); 355 unsigned SPTag = SPTy.getTag(); 356 357 if (Args.getNumElements() == 0 || SPTag != dwarf::DW_TAG_subroutine_type) 358 SPCU->addType(SPDie, SPTy); 359 else 360 SPCU->addType(SPDie, DIType(Args.getElement(0))); 361 362 unsigned VK = SP.getVirtuality(); 363 if (VK) { 364 SPCU->addUInt(SPDie, dwarf::DW_AT_virtuality, dwarf::DW_FORM_flag, VK); 365 DIEBlock *Block = SPCU->getDIEBlock(); 366 SPCU->addUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_constu); 367 SPCU->addUInt(Block, 0, dwarf::DW_FORM_udata, SP.getVirtualIndex()); 368 SPCU->addBlock(SPDie, dwarf::DW_AT_vtable_elem_location, 0, Block); 369 ContainingTypeMap.insert(std::make_pair(SPDie, 370 SP.getContainingType())); 371 } 372 373 if (!SP.isDefinition()) { 374 SPCU->addUInt(SPDie, dwarf::DW_AT_declaration, dwarf::DW_FORM_flag, 1); 375 376 // Add arguments. Do not add arguments for subprogram definition. They will 377 // be handled while processing variables. 378 DICompositeType SPTy = SP.getType(); 379 DIArray Args = SPTy.getTypeArray(); 380 unsigned SPTag = SPTy.getTag(); 381 382 if (SPTag == dwarf::DW_TAG_subroutine_type) 383 for (unsigned i = 1, N = Args.getNumElements(); i < N; ++i) { 384 DIE *Arg = new DIE(dwarf::DW_TAG_formal_parameter); 385 DIType ATy = DIType(DIType(Args.getElement(i))); 386 SPCU->addType(Arg, ATy); 387 if (ATy.isArtificial()) 388 SPCU->addUInt(Arg, dwarf::DW_AT_artificial, dwarf::DW_FORM_flag, 1); 389 SPDie->addChild(Arg); 390 } 391 } 392 393 if (SP.isArtificial()) 394 SPCU->addUInt(SPDie, dwarf::DW_AT_artificial, dwarf::DW_FORM_flag, 1); 395 396 if (!SP.isLocalToUnit()) 397 SPCU->addUInt(SPDie, dwarf::DW_AT_external, dwarf::DW_FORM_flag, 1); 398 399 if (SP.isOptimized()) 400 SPCU->addUInt(SPDie, dwarf::DW_AT_APPLE_optimized, dwarf::DW_FORM_flag, 1); 401 402 if (unsigned isa = Asm->getISAEncoding()) { 403 SPCU->addUInt(SPDie, dwarf::DW_AT_APPLE_isa, dwarf::DW_FORM_flag, isa); 404 } 405 406 return SPDie; 407} 408 409DbgScope *DwarfDebug::getOrCreateAbstractScope(const MDNode *N) { 410 assert(N && "Invalid Scope encoding!"); 411 412 DbgScope *AScope = AbstractScopes.lookup(N); 413 if (AScope) 414 return AScope; 415 416 DbgScope *Parent = NULL; 417 418 DIDescriptor Scope(N); 419 if (Scope.isLexicalBlock()) { 420 DILexicalBlock DB(N); 421 DIDescriptor ParentDesc = DB.getContext(); 422 Parent = getOrCreateAbstractScope(ParentDesc); 423 } 424 425 AScope = new DbgScope(Parent, DIDescriptor(N), NULL); 426 427 if (Parent) 428 Parent->addScope(AScope); 429 AScope->setAbstractScope(); 430 AbstractScopes[N] = AScope; 431 if (DIDescriptor(N).isSubprogram()) 432 AbstractScopesList.push_back(AScope); 433 return AScope; 434} 435 436/// isSubprogramContext - Return true if Context is either a subprogram 437/// or another context nested inside a subprogram. 438static bool isSubprogramContext(const MDNode *Context) { 439 if (!Context) 440 return false; 441 DIDescriptor D(Context); 442 if (D.isSubprogram()) 443 return true; 444 if (D.isType()) 445 return isSubprogramContext(DIType(Context).getContext()); 446 return false; 447} 448 449/// updateSubprogramScopeDIE - Find DIE for the given subprogram and 450/// attach appropriate DW_AT_low_pc and DW_AT_high_pc attributes. 451/// If there are global variables in this scope then create and insert 452/// DIEs for these variables. 453DIE *DwarfDebug::updateSubprogramScopeDIE(const MDNode *SPNode) { 454 CompileUnit *SPCU = getCompileUnit(SPNode); 455 DIE *SPDie = SPCU->getDIE(SPNode); 456 457 assert(SPDie && "Unable to find subprogram DIE!"); 458 DISubprogram SP(SPNode); 459 460 DISubprogram SPDecl = SP.getFunctionDeclaration(); 461 if (SPDecl.isSubprogram()) 462 // Refer function declaration directly. 463 SPCU->addDIEEntry(SPDie, dwarf::DW_AT_specification, dwarf::DW_FORM_ref4, 464 createSubprogramDIE(SPDecl)); 465 else { 466 // There is not any need to generate specification DIE for a function 467 // defined at compile unit level. If a function is defined inside another 468 // function then gdb prefers the definition at top level and but does not 469 // expect specification DIE in parent function. So avoid creating 470 // specification DIE for a function defined inside a function. 471 if (SP.isDefinition() && !SP.getContext().isCompileUnit() && 472 !SP.getContext().isFile() && 473 !isSubprogramContext(SP.getContext())) { 474 SPCU-> addUInt(SPDie, dwarf::DW_AT_declaration, dwarf::DW_FORM_flag, 1); 475 476 // Add arguments. 477 DICompositeType SPTy = SP.getType(); 478 DIArray Args = SPTy.getTypeArray(); 479 unsigned SPTag = SPTy.getTag(); 480 if (SPTag == dwarf::DW_TAG_subroutine_type) 481 for (unsigned i = 1, N = Args.getNumElements(); i < N; ++i) { 482 DIE *Arg = new DIE(dwarf::DW_TAG_formal_parameter); 483 DIType ATy = DIType(DIType(Args.getElement(i))); 484 SPCU->addType(Arg, ATy); 485 if (ATy.isArtificial()) 486 SPCU->addUInt(Arg, dwarf::DW_AT_artificial, dwarf::DW_FORM_flag, 1); 487 SPDie->addChild(Arg); 488 } 489 DIE *SPDeclDie = SPDie; 490 SPDie = new DIE(dwarf::DW_TAG_subprogram); 491 SPCU->addDIEEntry(SPDie, dwarf::DW_AT_specification, dwarf::DW_FORM_ref4, 492 SPDeclDie); 493 SPCU->addDie(SPDie); 494 } 495 } 496 // Pick up abstract subprogram DIE. 497 if (DIE *AbsSPDIE = AbstractSPDies.lookup(SPNode)) { 498 SPDie = new DIE(dwarf::DW_TAG_subprogram); 499 SPCU->addDIEEntry(SPDie, dwarf::DW_AT_abstract_origin, 500 dwarf::DW_FORM_ref4, AbsSPDIE); 501 SPCU->addDie(SPDie); 502 } 503 504 SPCU->addLabel(SPDie, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, 505 Asm->GetTempSymbol("func_begin", Asm->getFunctionNumber())); 506 SPCU->addLabel(SPDie, dwarf::DW_AT_high_pc, dwarf::DW_FORM_addr, 507 Asm->GetTempSymbol("func_end", Asm->getFunctionNumber())); 508 const TargetRegisterInfo *RI = Asm->TM.getRegisterInfo(); 509 MachineLocation Location(RI->getFrameRegister(*Asm->MF)); 510 SPCU->addAddress(SPDie, dwarf::DW_AT_frame_base, Location); 511 512 return SPDie; 513} 514 515/// constructLexicalScope - Construct new DW_TAG_lexical_block 516/// for this scope and attach DW_AT_low_pc/DW_AT_high_pc labels. 517DIE *DwarfDebug::constructLexicalScopeDIE(DbgScope *Scope) { 518 519 DIE *ScopeDIE = new DIE(dwarf::DW_TAG_lexical_block); 520 if (Scope->isAbstractScope()) 521 return ScopeDIE; 522 523 const SmallVector<DbgRange, 4> &Ranges = Scope->getRanges(); 524 if (Ranges.empty()) 525 return 0; 526 527 CompileUnit *TheCU = getCompileUnit(Scope->getScopeNode()); 528 SmallVector<DbgRange, 4>::const_iterator RI = Ranges.begin(); 529 if (Ranges.size() > 1) { 530 // .debug_range section has not been laid out yet. Emit offset in 531 // .debug_range as a uint, size 4, for now. emitDIE will handle 532 // DW_AT_ranges appropriately. 533 TheCU->addUInt(ScopeDIE, dwarf::DW_AT_ranges, dwarf::DW_FORM_data4, 534 DebugRangeSymbols.size() * Asm->getTargetData().getPointerSize()); 535 for (SmallVector<DbgRange, 4>::const_iterator RI = Ranges.begin(), 536 RE = Ranges.end(); RI != RE; ++RI) { 537 DebugRangeSymbols.push_back(getLabelBeforeInsn(RI->first)); 538 DebugRangeSymbols.push_back(getLabelAfterInsn(RI->second)); 539 } 540 DebugRangeSymbols.push_back(NULL); 541 DebugRangeSymbols.push_back(NULL); 542 return ScopeDIE; 543 } 544 545 const MCSymbol *Start = getLabelBeforeInsn(RI->first); 546 const MCSymbol *End = getLabelAfterInsn(RI->second); 547 548 if (End == 0) return 0; 549 550 assert(Start->isDefined() && "Invalid starting label for an inlined scope!"); 551 assert(End->isDefined() && "Invalid end label for an inlined scope!"); 552 553 TheCU->addLabel(ScopeDIE, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, Start); 554 TheCU->addLabel(ScopeDIE, dwarf::DW_AT_high_pc, dwarf::DW_FORM_addr, End); 555 556 return ScopeDIE; 557} 558 559/// constructInlinedScopeDIE - This scope represents inlined body of 560/// a function. Construct DIE to represent this concrete inlined copy 561/// of the function. 562DIE *DwarfDebug::constructInlinedScopeDIE(DbgScope *Scope) { 563 564 const SmallVector<DbgRange, 4> &Ranges = Scope->getRanges(); 565 assert (Ranges.empty() == false 566 && "DbgScope does not have instruction markers!"); 567 568 // FIXME : .debug_inlined section specification does not clearly state how 569 // to emit inlined scope that is split into multiple instruction ranges. 570 // For now, use first instruction range and emit low_pc/high_pc pair and 571 // corresponding .debug_inlined section entry for this pair. 572 SmallVector<DbgRange, 4>::const_iterator RI = Ranges.begin(); 573 const MCSymbol *StartLabel = getLabelBeforeInsn(RI->first); 574 const MCSymbol *EndLabel = getLabelAfterInsn(RI->second); 575 576 if (StartLabel == 0 || EndLabel == 0) { 577 assert (0 && "Unexpected Start and End labels for a inlined scope!"); 578 return 0; 579 } 580 assert(StartLabel->isDefined() && 581 "Invalid starting label for an inlined scope!"); 582 assert(EndLabel->isDefined() && 583 "Invalid end label for an inlined scope!"); 584 585 if (!Scope->getScopeNode()) 586 return NULL; 587 DIScope DS(Scope->getScopeNode()); 588 DISubprogram InlinedSP = getDISubprogram(DS); 589 CompileUnit *TheCU = getCompileUnit(InlinedSP); 590 DIE *OriginDIE = TheCU->getDIE(InlinedSP); 591 if (!OriginDIE) { 592 DEBUG(dbgs() << "Unable to find original DIE for inlined subprogram."); 593 return NULL; 594 } 595 DIE *ScopeDIE = new DIE(dwarf::DW_TAG_inlined_subroutine); 596 TheCU->addDIEEntry(ScopeDIE, dwarf::DW_AT_abstract_origin, 597 dwarf::DW_FORM_ref4, OriginDIE); 598 599 TheCU->addLabel(ScopeDIE, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, StartLabel); 600 TheCU->addLabel(ScopeDIE, dwarf::DW_AT_high_pc, dwarf::DW_FORM_addr, EndLabel); 601 602 InlinedSubprogramDIEs.insert(OriginDIE); 603 604 // Track the start label for this inlined function. 605 DenseMap<const MDNode *, SmallVector<InlineInfoLabels, 4> >::iterator 606 I = InlineInfo.find(InlinedSP); 607 608 if (I == InlineInfo.end()) { 609 InlineInfo[InlinedSP].push_back(std::make_pair(StartLabel, 610 ScopeDIE)); 611 InlinedSPNodes.push_back(InlinedSP); 612 } else 613 I->second.push_back(std::make_pair(StartLabel, ScopeDIE)); 614 615 DILocation DL(Scope->getInlinedAt()); 616 TheCU->addUInt(ScopeDIE, dwarf::DW_AT_call_file, 0, TheCU->getID()); 617 TheCU->addUInt(ScopeDIE, dwarf::DW_AT_call_line, 0, DL.getLineNumber()); 618 619 return ScopeDIE; 620} 621 622/// isUnsignedDIType - Return true if type encoding is unsigned. 623static bool isUnsignedDIType(DIType Ty) { 624 DIDerivedType DTy(Ty); 625 if (DTy.Verify()) 626 return isUnsignedDIType(DTy.getTypeDerivedFrom()); 627 628 DIBasicType BTy(Ty); 629 if (BTy.Verify()) { 630 unsigned Encoding = BTy.getEncoding(); 631 if (Encoding == dwarf::DW_ATE_unsigned || 632 Encoding == dwarf::DW_ATE_unsigned_char) 633 return true; 634 } 635 return false; 636} 637 638/// constructVariableDIE - Construct a DIE for the given DbgVariable. 639DIE *DwarfDebug::constructVariableDIE(DbgVariable *DV, DbgScope *Scope) { 640 StringRef Name = DV->getName(); 641 if (Name.empty()) 642 return NULL; 643 644 // Translate tag to proper Dwarf tag. The result variable is dropped for 645 // now. 646 unsigned Tag; 647 switch (DV->getTag()) { 648 case dwarf::DW_TAG_return_variable: 649 return NULL; 650 case dwarf::DW_TAG_arg_variable: 651 Tag = dwarf::DW_TAG_formal_parameter; 652 break; 653 case dwarf::DW_TAG_auto_variable: // fall thru 654 default: 655 Tag = dwarf::DW_TAG_variable; 656 break; 657 } 658 659 // Define variable debug information entry. 660 DIE *VariableDie = new DIE(Tag); 661 CompileUnit *VariableCU = getCompileUnit(DV->getVariable()); 662 DIE *AbsDIE = NULL; 663 DenseMap<const DbgVariable *, const DbgVariable *>::iterator 664 V2AVI = VarToAbstractVarMap.find(DV); 665 if (V2AVI != VarToAbstractVarMap.end()) 666 AbsDIE = V2AVI->second->getDIE(); 667 668 if (AbsDIE) 669 VariableCU->addDIEEntry(VariableDie, dwarf::DW_AT_abstract_origin, 670 dwarf::DW_FORM_ref4, AbsDIE); 671 else { 672 VariableCU->addString(VariableDie, dwarf::DW_AT_name, dwarf::DW_FORM_string, 673 Name); 674 VariableCU->addSourceLine(VariableDie, DV->getVariable()); 675 676 // Add variable type. 677 VariableCU->addType(VariableDie, DV->getType()); 678 } 679 680 if (Tag == dwarf::DW_TAG_formal_parameter && DV->getType().isArtificial()) 681 VariableCU->addUInt(VariableDie, dwarf::DW_AT_artificial, 682 dwarf::DW_FORM_flag, 1); 683 else if (DIVariable(DV->getVariable()).isArtificial()) 684 VariableCU->addUInt(VariableDie, dwarf::DW_AT_artificial, 685 dwarf::DW_FORM_flag, 1); 686 687 if (Scope->isAbstractScope()) { 688 DV->setDIE(VariableDie); 689 return VariableDie; 690 } 691 692 // Add variable address. 693 694 unsigned Offset = DV->getDotDebugLocOffset(); 695 if (Offset != ~0U) { 696 VariableCU->addLabel(VariableDie, dwarf::DW_AT_location, dwarf::DW_FORM_data4, 697 Asm->GetTempSymbol("debug_loc", Offset)); 698 DV->setDIE(VariableDie); 699 UseDotDebugLocEntry.insert(VariableDie); 700 return VariableDie; 701 } 702 703 // Check if variable is described by a DBG_VALUE instruction. 704 DenseMap<const DbgVariable *, const MachineInstr *>::iterator DVI = 705 DbgVariableToDbgInstMap.find(DV); 706 if (DVI != DbgVariableToDbgInstMap.end()) { 707 const MachineInstr *DVInsn = DVI->second; 708 bool updated = false; 709 // FIXME : Handle getNumOperands != 3 710 if (DVInsn->getNumOperands() == 3) { 711 if (DVInsn->getOperand(0).isReg()) { 712 const MachineOperand RegOp = DVInsn->getOperand(0); 713 const TargetRegisterInfo *TRI = Asm->TM.getRegisterInfo(); 714 if (DVInsn->getOperand(1).isImm() && 715 TRI->getFrameRegister(*Asm->MF) == RegOp.getReg()) { 716 unsigned FrameReg = 0; 717 const TargetFrameLowering *TFI = Asm->TM.getFrameLowering(); 718 int Offset = 719 TFI->getFrameIndexReference(*Asm->MF, 720 DVInsn->getOperand(1).getImm(), 721 FrameReg); 722 MachineLocation Location(FrameReg, Offset); 723 VariableCU->addVariableAddress(DV, VariableDie, Location); 724 725 } else if (RegOp.getReg()) 726 VariableCU->addVariableAddress(DV, VariableDie, 727 MachineLocation(RegOp.getReg())); 728 updated = true; 729 } 730 else if (DVInsn->getOperand(0).isImm()) 731 updated = 732 VariableCU->addConstantValue(VariableDie, DVInsn->getOperand(0), 733 DV->getType()); 734 else if (DVInsn->getOperand(0).isFPImm()) 735 updated = 736 VariableCU->addConstantFPValue(VariableDie, DVInsn->getOperand(0)); 737 else if (DVInsn->getOperand(0).isCImm()) 738 updated = 739 VariableCU->addConstantValue(VariableDie, 740 DVInsn->getOperand(0).getCImm(), 741 isUnsignedDIType(DV->getType())); 742 } else { 743 VariableCU->addVariableAddress(DV, VariableDie, 744 Asm->getDebugValueLocation(DVInsn)); 745 updated = true; 746 } 747 if (!updated) { 748 // If variableDie is not updated then DBG_VALUE instruction does not 749 // have valid variable info. 750 delete VariableDie; 751 return NULL; 752 } 753 DV->setDIE(VariableDie); 754 return VariableDie; 755 } 756 757 // .. else use frame index, if available. 758 int FI = 0; 759 if (findVariableFrameIndex(DV, &FI)) { 760 unsigned FrameReg = 0; 761 const TargetFrameLowering *TFI = Asm->TM.getFrameLowering(); 762 int Offset = 763 TFI->getFrameIndexReference(*Asm->MF, FI, FrameReg); 764 MachineLocation Location(FrameReg, Offset); 765 VariableCU->addVariableAddress(DV, VariableDie, Location); 766 } 767 768 DV->setDIE(VariableDie); 769 return VariableDie; 770 771} 772 773/// constructScopeDIE - Construct a DIE for this scope. 774DIE *DwarfDebug::constructScopeDIE(DbgScope *Scope) { 775 if (!Scope || !Scope->getScopeNode()) 776 return NULL; 777 778 SmallVector <DIE *, 8> Children; 779 780 // Collect arguments for current function. 781 if (Scope == CurrentFnDbgScope) 782 for (unsigned i = 0, N = CurrentFnArguments.size(); i < N; ++i) 783 if (DbgVariable *ArgDV = CurrentFnArguments[i]) 784 if (DIE *Arg = constructVariableDIE(ArgDV, Scope)) 785 Children.push_back(Arg); 786 787 // Collect lexical scope childrens first. 788 const SmallVector<DbgVariable *, 8> &Variables = Scope->getDbgVariables(); 789 for (unsigned i = 0, N = Variables.size(); i < N; ++i) 790 if (DIE *Variable = constructVariableDIE(Variables[i], Scope)) 791 Children.push_back(Variable); 792 const SmallVector<DbgScope *, 4> &Scopes = Scope->getScopes(); 793 for (unsigned j = 0, M = Scopes.size(); j < M; ++j) 794 if (DIE *Nested = constructScopeDIE(Scopes[j])) 795 Children.push_back(Nested); 796 DIScope DS(Scope->getScopeNode()); 797 DIE *ScopeDIE = NULL; 798 if (Scope->getInlinedAt()) 799 ScopeDIE = constructInlinedScopeDIE(Scope); 800 else if (DS.isSubprogram()) { 801 ProcessedSPNodes.insert(DS); 802 if (Scope->isAbstractScope()) { 803 ScopeDIE = getCompileUnit(DS)->getDIE(DS); 804 // Note down abstract DIE. 805 if (ScopeDIE) 806 AbstractSPDies.insert(std::make_pair(DS, ScopeDIE)); 807 } 808 else 809 ScopeDIE = updateSubprogramScopeDIE(DS); 810 } 811 else { 812 // There is no need to emit empty lexical block DIE. 813 if (Children.empty()) 814 return NULL; 815 ScopeDIE = constructLexicalScopeDIE(Scope); 816 } 817 818 if (!ScopeDIE) return NULL; 819 820 // Add children 821 for (SmallVector<DIE *, 8>::iterator I = Children.begin(), 822 E = Children.end(); I != E; ++I) 823 ScopeDIE->addChild(*I); 824 825 if (DS.isSubprogram()) 826 getCompileUnit(DS)->addPubTypes(DISubprogram(DS)); 827 828 return ScopeDIE; 829} 830 831/// GetOrCreateSourceID - Look up the source id with the given directory and 832/// source file names. If none currently exists, create a new id and insert it 833/// in the SourceIds map. This can update DirectoryNames and SourceFileNames 834/// maps as well. 835 836unsigned DwarfDebug::GetOrCreateSourceID(StringRef FileName, 837 StringRef DirName) { 838 // If FE did not provide a file name, then assume stdin. 839 if (FileName.empty()) 840 return GetOrCreateSourceID("<stdin>", StringRef()); 841 842 // MCStream expects full path name as filename. 843 if (!DirName.empty() && !sys::path::is_absolute(FileName)) { 844 SmallString<128> FullPathName = DirName; 845 sys::path::append(FullPathName, FileName); 846 // Here FullPathName will be copied into StringMap by GetOrCreateSourceID. 847 return GetOrCreateSourceID(StringRef(FullPathName), StringRef()); 848 } 849 850 StringMapEntry<unsigned> &Entry = SourceIdMap.GetOrCreateValue(FileName); 851 if (Entry.getValue()) 852 return Entry.getValue(); 853 854 unsigned SrcId = SourceIdMap.size(); 855 Entry.setValue(SrcId); 856 857 // Print out a .file directive to specify files for .loc directives. 858 Asm->OutStreamer.EmitDwarfFileDirective(SrcId, Entry.getKey()); 859 860 return SrcId; 861} 862 863/// constructCompileUnit - Create new CompileUnit for the given 864/// metadata node with tag DW_TAG_compile_unit. 865void DwarfDebug::constructCompileUnit(const MDNode *N) { 866 DICompileUnit DIUnit(N); 867 StringRef FN = DIUnit.getFilename(); 868 StringRef Dir = DIUnit.getDirectory(); 869 unsigned ID = GetOrCreateSourceID(FN, Dir); 870 871 DIE *Die = new DIE(dwarf::DW_TAG_compile_unit); 872 CompileUnit *NewCU = new CompileUnit(ID, Die, Asm, this); 873 NewCU->addString(Die, dwarf::DW_AT_producer, dwarf::DW_FORM_string, 874 DIUnit.getProducer()); 875 NewCU->addUInt(Die, dwarf::DW_AT_language, dwarf::DW_FORM_data2, 876 DIUnit.getLanguage()); 877 NewCU->addString(Die, dwarf::DW_AT_name, dwarf::DW_FORM_string, FN); 878 // Use DW_AT_entry_pc instead of DW_AT_low_pc/DW_AT_high_pc pair. This 879 // simplifies debug range entries. 880 NewCU->addUInt(Die, dwarf::DW_AT_entry_pc, dwarf::DW_FORM_addr, 0); 881 // DW_AT_stmt_list is a offset of line number information for this 882 // compile unit in debug_line section. 883 if(Asm->MAI->doesDwarfRequireRelocationForSectionOffset()) 884 NewCU->addLabel(Die, dwarf::DW_AT_stmt_list, dwarf::DW_FORM_data4, 885 Asm->GetTempSymbol("section_line")); 886 else 887 NewCU->addUInt(Die, dwarf::DW_AT_stmt_list, dwarf::DW_FORM_data4, 0); 888 889 if (!Dir.empty()) 890 NewCU->addString(Die, dwarf::DW_AT_comp_dir, dwarf::DW_FORM_string, Dir); 891 if (DIUnit.isOptimized()) 892 NewCU->addUInt(Die, dwarf::DW_AT_APPLE_optimized, dwarf::DW_FORM_flag, 1); 893 894 StringRef Flags = DIUnit.getFlags(); 895 if (!Flags.empty()) 896 NewCU->addString(Die, dwarf::DW_AT_APPLE_flags, dwarf::DW_FORM_string, Flags); 897 898 unsigned RVer = DIUnit.getRunTimeVersion(); 899 if (RVer) 900 NewCU->addUInt(Die, dwarf::DW_AT_APPLE_major_runtime_vers, 901 dwarf::DW_FORM_data1, RVer); 902 903 if (!FirstCU) 904 FirstCU = NewCU; 905 CUMap.insert(std::make_pair(N, NewCU)); 906} 907 908/// getCompielUnit - Get CompileUnit DIE. 909CompileUnit *DwarfDebug::getCompileUnit(const MDNode *N) const { 910 assert (N && "Invalid DwarfDebug::getCompileUnit argument!"); 911 DIDescriptor D(N); 912 const MDNode *CUNode = NULL; 913 if (D.isCompileUnit()) 914 CUNode = N; 915 else if (D.isSubprogram()) 916 CUNode = DISubprogram(N).getCompileUnit(); 917 else if (D.isType()) 918 CUNode = DIType(N).getCompileUnit(); 919 else if (D.isGlobalVariable()) 920 CUNode = DIGlobalVariable(N).getCompileUnit(); 921 else if (D.isVariable()) 922 CUNode = DIVariable(N).getCompileUnit(); 923 else if (D.isNameSpace()) 924 CUNode = DINameSpace(N).getCompileUnit(); 925 else if (D.isFile()) 926 CUNode = DIFile(N).getCompileUnit(); 927 else 928 return FirstCU; 929 930 DenseMap<const MDNode *, CompileUnit *>::const_iterator I 931 = CUMap.find(CUNode); 932 if (I == CUMap.end()) 933 return FirstCU; 934 return I->second; 935} 936 937// Return const exprssion if value is a GEP to access merged global 938// constant. e.g. 939// i8* getelementptr ({ i8, i8, i8, i8 }* @_MergedGlobals, i32 0, i32 0) 940static const ConstantExpr *getMergedGlobalExpr(const Value *V) { 941 const ConstantExpr *CE = dyn_cast_or_null<ConstantExpr>(V); 942 if (!CE || CE->getNumOperands() != 3 || 943 CE->getOpcode() != Instruction::GetElementPtr) 944 return NULL; 945 946 // First operand points to a global value. 947 if (!isa<GlobalValue>(CE->getOperand(0))) 948 return NULL; 949 950 // Second operand is zero. 951 const ConstantInt *CI = 952 dyn_cast_or_null<ConstantInt>(CE->getOperand(1)); 953 if (!CI || !CI->isZero()) 954 return NULL; 955 956 // Third operand is offset. 957 if (!isa<ConstantInt>(CE->getOperand(2))) 958 return NULL; 959 960 return CE; 961} 962 963/// constructGlobalVariableDIE - Construct global variable DIE. 964void DwarfDebug::constructGlobalVariableDIE(const MDNode *N) { 965 DIGlobalVariable GV(N); 966 967 // If debug information is malformed then ignore it. 968 if (GV.Verify() == false) 969 return; 970 971 // Check for pre-existence. 972 CompileUnit *TheCU = getCompileUnit(N); 973 if (TheCU->getDIE(GV)) 974 return; 975 976 DIType GTy = GV.getType(); 977 DIE *VariableDIE = new DIE(GV.getTag()); 978 979 bool isGlobalVariable = GV.getGlobal() != NULL; 980 981 // Add name. 982 TheCU->addString(VariableDIE, dwarf::DW_AT_name, dwarf::DW_FORM_string, 983 GV.getDisplayName()); 984 StringRef LinkageName = GV.getLinkageName(); 985 if (!LinkageName.empty() && isGlobalVariable) 986 TheCU->addString(VariableDIE, dwarf::DW_AT_MIPS_linkage_name, 987 dwarf::DW_FORM_string, 988 getRealLinkageName(LinkageName)); 989 // Add type. 990 TheCU->addType(VariableDIE, GTy); 991 992 // Add scoping info. 993 if (!GV.isLocalToUnit()) { 994 TheCU->addUInt(VariableDIE, dwarf::DW_AT_external, dwarf::DW_FORM_flag, 1); 995 // Expose as global. 996 TheCU->addGlobal(GV.getName(), VariableDIE); 997 } 998 // Add line number info. 999 TheCU->addSourceLine(VariableDIE, GV); 1000 // Add to map. 1001 TheCU->insertDIE(N, VariableDIE); 1002 // Add to context owner. 1003 DIDescriptor GVContext = GV.getContext(); 1004 TheCU->addToContextOwner(VariableDIE, GVContext); 1005 // Add location. 1006 if (isGlobalVariable) { 1007 DIEBlock *Block = new (DIEValueAllocator) DIEBlock(); 1008 TheCU->addUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_addr); 1009 TheCU->addLabel(Block, 0, dwarf::DW_FORM_udata, 1010 Asm->Mang->getSymbol(GV.getGlobal())); 1011 // Do not create specification DIE if context is either compile unit 1012 // or a subprogram. 1013 if (GV.isDefinition() && !GVContext.isCompileUnit() && 1014 !GVContext.isFile() && !isSubprogramContext(GVContext)) { 1015 // Create specification DIE. 1016 DIE *VariableSpecDIE = new DIE(dwarf::DW_TAG_variable); 1017 TheCU->addDIEEntry(VariableSpecDIE, dwarf::DW_AT_specification, 1018 dwarf::DW_FORM_ref4, VariableDIE); 1019 TheCU->addBlock(VariableSpecDIE, dwarf::DW_AT_location, 0, Block); 1020 TheCU->addUInt(VariableDIE, dwarf::DW_AT_declaration, dwarf::DW_FORM_flag, 1); 1021 TheCU->addDie(VariableSpecDIE); 1022 } else { 1023 TheCU->addBlock(VariableDIE, dwarf::DW_AT_location, 0, Block); 1024 } 1025 } else if (const ConstantInt *CI = 1026 dyn_cast_or_null<ConstantInt>(GV.getConstant())) 1027 TheCU->addConstantValue(VariableDIE, CI, isUnsignedDIType(GTy)); 1028 else if (const ConstantExpr *CE = getMergedGlobalExpr(N->getOperand(11))) { 1029 // GV is a merged global. 1030 DIEBlock *Block = new (DIEValueAllocator) DIEBlock(); 1031 TheCU->addUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_addr); 1032 TheCU->addLabel(Block, 0, dwarf::DW_FORM_udata, 1033 Asm->Mang->getSymbol(cast<GlobalValue>(CE->getOperand(0)))); 1034 ConstantInt *CII = cast<ConstantInt>(CE->getOperand(2)); 1035 TheCU->addUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_constu); 1036 TheCU->addUInt(Block, 0, dwarf::DW_FORM_udata, CII->getZExtValue()); 1037 TheCU->addUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_plus); 1038 TheCU->addBlock(VariableDIE, dwarf::DW_AT_location, 0, Block); 1039 } 1040 1041 return; 1042} 1043 1044/// construct SubprogramDIE - Construct subprogram DIE. 1045void DwarfDebug::constructSubprogramDIE(const MDNode *N) { 1046 DISubprogram SP(N); 1047 1048 // Check for pre-existence. 1049 CompileUnit *TheCU = getCompileUnit(N); 1050 if (TheCU->getDIE(N)) 1051 return; 1052 1053 if (!SP.isDefinition()) 1054 // This is a method declaration which will be handled while constructing 1055 // class type. 1056 return; 1057 1058 DIE *SubprogramDie = createSubprogramDIE(SP); 1059 1060 // Add to map. 1061 TheCU->insertDIE(N, SubprogramDie); 1062 1063 // Add to context owner. 1064 TheCU->addToContextOwner(SubprogramDie, SP.getContext()); 1065 1066 // Expose as global. 1067 TheCU->addGlobal(SP.getName(), SubprogramDie); 1068 1069 return; 1070} 1071 1072/// beginModule - Emit all Dwarf sections that should come prior to the 1073/// content. Create global DIEs and emit initial debug info sections. 1074/// This is inovked by the target AsmPrinter. 1075void DwarfDebug::beginModule(Module *M) { 1076 if (DisableDebugInfoPrinting) 1077 return; 1078 1079 // If module has named metadata anchors then use them, otherwise scan the module 1080 // using debug info finder to collect debug info. 1081 NamedMDNode *CU_Nodes = M->getNamedMetadata("llvm.dbg.cu"); 1082 if (CU_Nodes) { 1083 1084 NamedMDNode *GV_Nodes = M->getNamedMetadata("llvm.dbg.gv"); 1085 NamedMDNode *SP_Nodes = M->getNamedMetadata("llvm.dbg.sp"); 1086 if (!GV_Nodes && !SP_Nodes) 1087 // If there are not any global variables or any functions then 1088 // there is not any debug info in this module. 1089 return; 1090 1091 for (unsigned i = 0, e = CU_Nodes->getNumOperands(); i != e; ++i) 1092 constructCompileUnit(CU_Nodes->getOperand(i)); 1093 1094 if (GV_Nodes) 1095 for (unsigned i = 0, e = GV_Nodes->getNumOperands(); i != e; ++i) 1096 constructGlobalVariableDIE(GV_Nodes->getOperand(i)); 1097 1098 if (SP_Nodes) 1099 for (unsigned i = 0, e = SP_Nodes->getNumOperands(); i != e; ++i) 1100 constructSubprogramDIE(SP_Nodes->getOperand(i)); 1101 1102 } else { 1103 1104 DebugInfoFinder DbgFinder; 1105 DbgFinder.processModule(*M); 1106 1107 bool HasDebugInfo = false; 1108 // Scan all the compile-units to see if there are any marked as the main unit. 1109 // if not, we do not generate debug info. 1110 for (DebugInfoFinder::iterator I = DbgFinder.compile_unit_begin(), 1111 E = DbgFinder.compile_unit_end(); I != E; ++I) { 1112 if (DICompileUnit(*I).isMain()) { 1113 HasDebugInfo = true; 1114 break; 1115 } 1116 } 1117 if (!HasDebugInfo) return; 1118 1119 // Create all the compile unit DIEs. 1120 for (DebugInfoFinder::iterator I = DbgFinder.compile_unit_begin(), 1121 E = DbgFinder.compile_unit_end(); I != E; ++I) 1122 constructCompileUnit(*I); 1123 1124 // Create DIEs for each global variable. 1125 for (DebugInfoFinder::iterator I = DbgFinder.global_variable_begin(), 1126 E = DbgFinder.global_variable_end(); I != E; ++I) 1127 constructGlobalVariableDIE(*I); 1128 1129 // Create DIEs for each subprogram. 1130 for (DebugInfoFinder::iterator I = DbgFinder.subprogram_begin(), 1131 E = DbgFinder.subprogram_end(); I != E; ++I) 1132 constructSubprogramDIE(*I); 1133 } 1134 1135 // Tell MMI that we have debug info. 1136 MMI->setDebugInfoAvailability(true); 1137 1138 // Emit initial sections. 1139 EmitSectionLabels(); 1140 1141 //getOrCreateTypeDIE 1142 if (NamedMDNode *NMD = M->getNamedMetadata("llvm.dbg.enum")) 1143 for (unsigned i = 0, e = NMD->getNumOperands(); i != e; ++i) { 1144 DIType Ty(NMD->getOperand(i)); 1145 getCompileUnit(Ty)->getOrCreateTypeDIE(Ty); 1146 } 1147 1148 if (NamedMDNode *NMD = M->getNamedMetadata("llvm.dbg.ty")) 1149 for (unsigned i = 0, e = NMD->getNumOperands(); i != e; ++i) { 1150 DIType Ty(NMD->getOperand(i)); 1151 getCompileUnit(Ty)->getOrCreateTypeDIE(Ty); 1152 } 1153 1154 // Prime section data. 1155 SectionMap.insert(Asm->getObjFileLowering().getTextSection()); 1156} 1157 1158/// endModule - Emit all Dwarf sections that should come after the content. 1159/// 1160void DwarfDebug::endModule() { 1161 if (!FirstCU) return; 1162 const Module *M = MMI->getModule(); 1163 DenseMap<const MDNode *, DbgScope *> DeadFnScopeMap; 1164 if (NamedMDNode *AllSPs = M->getNamedMetadata("llvm.dbg.sp")) { 1165 for (unsigned SI = 0, SE = AllSPs->getNumOperands(); SI != SE; ++SI) { 1166 if (ProcessedSPNodes.count(AllSPs->getOperand(SI)) != 0) continue; 1167 DISubprogram SP(AllSPs->getOperand(SI)); 1168 if (!SP.Verify()) continue; 1169 1170 // Collect info for variables that were optimized out. 1171 if (!SP.isDefinition()) continue; 1172 StringRef FName = SP.getLinkageName(); 1173 if (FName.empty()) 1174 FName = SP.getName(); 1175 NamedMDNode *NMD = getFnSpecificMDNode(*(MMI->getModule()), FName); 1176 if (!NMD) continue; 1177 unsigned E = NMD->getNumOperands(); 1178 if (!E) continue; 1179 DbgScope *Scope = new DbgScope(NULL, DIDescriptor(SP), NULL); 1180 DeadFnScopeMap[SP] = Scope; 1181 for (unsigned I = 0; I != E; ++I) { 1182 DIVariable DV(NMD->getOperand(I)); 1183 if (!DV.Verify()) continue; 1184 Scope->addVariable(new DbgVariable(DV)); 1185 } 1186 1187 // Construct subprogram DIE and add variables DIEs. 1188 constructSubprogramDIE(SP); 1189 DIE *ScopeDIE = getCompileUnit(SP)->getDIE(SP); 1190 const SmallVector<DbgVariable *, 8> &Variables = Scope->getDbgVariables(); 1191 for (unsigned i = 0, N = Variables.size(); i < N; ++i) { 1192 DIE *VariableDIE = constructVariableDIE(Variables[i], Scope); 1193 if (VariableDIE) 1194 ScopeDIE->addChild(VariableDIE); 1195 } 1196 } 1197 } 1198 1199 // Attach DW_AT_inline attribute with inlined subprogram DIEs. 1200 for (SmallPtrSet<DIE *, 4>::iterator AI = InlinedSubprogramDIEs.begin(), 1201 AE = InlinedSubprogramDIEs.end(); AI != AE; ++AI) { 1202 DIE *ISP = *AI; 1203 FirstCU->addUInt(ISP, dwarf::DW_AT_inline, 0, dwarf::DW_INL_inlined); 1204 } 1205 1206 for (DenseMap<DIE *, const MDNode *>::iterator CI = ContainingTypeMap.begin(), 1207 CE = ContainingTypeMap.end(); CI != CE; ++CI) { 1208 DIE *SPDie = CI->first; 1209 const MDNode *N = dyn_cast_or_null<MDNode>(CI->second); 1210 if (!N) continue; 1211 DIE *NDie = getCompileUnit(N)->getDIE(N); 1212 if (!NDie) continue; 1213 getCompileUnit(N)->addDIEEntry(SPDie, dwarf::DW_AT_containing_type, 1214 dwarf::DW_FORM_ref4, NDie); 1215 } 1216 1217 // Standard sections final addresses. 1218 Asm->OutStreamer.SwitchSection(Asm->getObjFileLowering().getTextSection()); 1219 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("text_end")); 1220 Asm->OutStreamer.SwitchSection(Asm->getObjFileLowering().getDataSection()); 1221 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("data_end")); 1222 1223 // End text sections. 1224 for (unsigned i = 1, N = SectionMap.size(); i <= N; ++i) { 1225 Asm->OutStreamer.SwitchSection(SectionMap[i]); 1226 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("section_end", i)); 1227 } 1228 1229 // Compute DIE offsets and sizes. 1230 computeSizeAndOffsets(); 1231 1232 // Emit all the DIEs into a debug info section 1233 emitDebugInfo(); 1234 1235 // Corresponding abbreviations into a abbrev section. 1236 emitAbbreviations(); 1237 1238 // Emit info into a debug pubnames section. 1239 emitDebugPubNames(); 1240 1241 // Emit info into a debug pubtypes section. 1242 emitDebugPubTypes(); 1243 1244 // Emit info into a debug loc section. 1245 emitDebugLoc(); 1246 1247 // Emit info into a debug aranges section. 1248 EmitDebugARanges(); 1249 1250 // Emit info into a debug ranges section. 1251 emitDebugRanges(); 1252 1253 // Emit info into a debug macinfo section. 1254 emitDebugMacInfo(); 1255 1256 // Emit inline info. 1257 emitDebugInlineInfo(); 1258 1259 // Emit info into a debug str section. 1260 emitDebugStr(); 1261 1262 // clean up. 1263 DeleteContainerSeconds(DeadFnScopeMap); 1264 for (DenseMap<const MDNode *, CompileUnit *>::iterator I = CUMap.begin(), 1265 E = CUMap.end(); I != E; ++I) 1266 delete I->second; 1267 FirstCU = NULL; // Reset for the next Module, if any. 1268} 1269 1270/// findAbstractVariable - Find abstract variable, if any, associated with Var. 1271DbgVariable *DwarfDebug::findAbstractVariable(DIVariable &DV, 1272 DebugLoc ScopeLoc) { 1273 LLVMContext &Ctx = DV->getContext(); 1274 1275 // More then one inlined variable corresponds to one abstract variable. 1276 DIVariable Var = cleanseInlinedVariable(DV, Ctx); 1277 1278 DbgVariable *AbsDbgVariable = AbstractVariables.lookup(Var); 1279 if (AbsDbgVariable) 1280 return AbsDbgVariable; 1281 1282 1283 DbgScope *Scope = AbstractScopes.lookup(ScopeLoc.getScope(Ctx)); 1284 if (!Scope) 1285 return NULL; 1286 1287 AbsDbgVariable = new DbgVariable(Var); 1288 Scope->addVariable(AbsDbgVariable); 1289 AbstractVariables[Var] = AbsDbgVariable; 1290 return AbsDbgVariable; 1291} 1292 1293/// addCurrentFnArgument - If Var is an current function argument that add 1294/// it in CurrentFnArguments list. 1295bool DwarfDebug::addCurrentFnArgument(const MachineFunction *MF, 1296 DbgVariable *Var, DbgScope *Scope) { 1297 if (Scope != CurrentFnDbgScope) 1298 return false; 1299 DIVariable DV = Var->getVariable(); 1300 if (DV.getTag() != dwarf::DW_TAG_arg_variable) 1301 return false; 1302 unsigned ArgNo = DV.getArgNumber(); 1303 if (ArgNo == 0) 1304 return false; 1305 1306 size_t Size = CurrentFnArguments.size(); 1307 if (Size == 0) 1308 CurrentFnArguments.resize(MF->getFunction()->arg_size()); 1309 // llvm::Function argument size is not good indicator of how many 1310 // arguments does the function have at source level. 1311 if (ArgNo > Size) 1312 CurrentFnArguments.resize(ArgNo * 2); 1313 CurrentFnArguments[ArgNo - 1] = Var; 1314 return true; 1315} 1316 1317/// collectVariableInfoFromMMITable - Collect variable information from 1318/// side table maintained by MMI. 1319void 1320DwarfDebug::collectVariableInfoFromMMITable(const MachineFunction * MF, 1321 SmallPtrSet<const MDNode *, 16> &Processed) { 1322 MachineModuleInfo::VariableDbgInfoMapTy &VMap = MMI->getVariableDbgInfo(); 1323 for (MachineModuleInfo::VariableDbgInfoMapTy::iterator VI = VMap.begin(), 1324 VE = VMap.end(); VI != VE; ++VI) { 1325 const MDNode *Var = VI->first; 1326 if (!Var) continue; 1327 Processed.insert(Var); 1328 DIVariable DV(Var); 1329 const std::pair<unsigned, DebugLoc> &VP = VI->second; 1330 1331 DbgScope *Scope = findDbgScope(VP.second); 1332 1333 // If variable scope is not found then skip this variable. 1334 if (Scope == 0) 1335 continue; 1336 1337 DbgVariable *AbsDbgVariable = findAbstractVariable(DV, VP.second); 1338 DbgVariable *RegVar = new DbgVariable(DV); 1339 recordVariableFrameIndex(RegVar, VP.first); 1340 if (!addCurrentFnArgument(MF, RegVar, Scope)) 1341 Scope->addVariable(RegVar); 1342 if (AbsDbgVariable) { 1343 recordVariableFrameIndex(AbsDbgVariable, VP.first); 1344 VarToAbstractVarMap[RegVar] = AbsDbgVariable; 1345 } 1346 } 1347} 1348 1349/// isDbgValueInDefinedReg - Return true if debug value, encoded by 1350/// DBG_VALUE instruction, is in a defined reg. 1351static bool isDbgValueInDefinedReg(const MachineInstr *MI) { 1352 assert (MI->isDebugValue() && "Invalid DBG_VALUE machine instruction!"); 1353 return MI->getNumOperands() == 3 && 1354 MI->getOperand(0).isReg() && MI->getOperand(0).getReg() && 1355 MI->getOperand(1).isImm() && MI->getOperand(1).getImm() == 0; 1356} 1357 1358/// getDebugLocEntry - Get .debug_loc entry for the instraction range starting 1359/// at MI. 1360static DotDebugLocEntry getDebugLocEntry(AsmPrinter *Asm, 1361 const MCSymbol *FLabel, 1362 const MCSymbol *SLabel, 1363 const MachineInstr *MI) { 1364 const MDNode *Var = MI->getOperand(MI->getNumOperands() - 1).getMetadata(); 1365 1366 if (MI->getNumOperands() != 3) { 1367 MachineLocation MLoc = Asm->getDebugValueLocation(MI); 1368 return DotDebugLocEntry(FLabel, SLabel, MLoc, Var); 1369 } 1370 if (MI->getOperand(0).isReg() && MI->getOperand(1).isImm()) { 1371 MachineLocation MLoc; 1372 MLoc.set(MI->getOperand(0).getReg(), MI->getOperand(1).getImm()); 1373 return DotDebugLocEntry(FLabel, SLabel, MLoc, Var); 1374 } 1375 if (MI->getOperand(0).isImm()) 1376 return DotDebugLocEntry(FLabel, SLabel, MI->getOperand(0).getImm()); 1377 if (MI->getOperand(0).isFPImm()) 1378 return DotDebugLocEntry(FLabel, SLabel, MI->getOperand(0).getFPImm()); 1379 if (MI->getOperand(0).isCImm()) 1380 return DotDebugLocEntry(FLabel, SLabel, MI->getOperand(0).getCImm()); 1381 1382 assert (0 && "Unexpected 3 operand DBG_VALUE instruction!"); 1383 return DotDebugLocEntry(); 1384} 1385 1386/// collectVariableInfo - Populate DbgScope entries with variables' info. 1387void 1388DwarfDebug::collectVariableInfo(const MachineFunction *MF, 1389 SmallPtrSet<const MDNode *, 16> &Processed) { 1390 1391 /// collection info from MMI table. 1392 collectVariableInfoFromMMITable(MF, Processed); 1393 1394 for (SmallVectorImpl<const MDNode*>::const_iterator 1395 UVI = UserVariables.begin(), UVE = UserVariables.end(); UVI != UVE; 1396 ++UVI) { 1397 const MDNode *Var = *UVI; 1398 if (Processed.count(Var)) 1399 continue; 1400 1401 // History contains relevant DBG_VALUE instructions for Var and instructions 1402 // clobbering it. 1403 SmallVectorImpl<const MachineInstr*> &History = DbgValues[Var]; 1404 if (History.empty()) 1405 continue; 1406 const MachineInstr *MInsn = History.front(); 1407 1408 DIVariable DV(Var); 1409 DbgScope *Scope = NULL; 1410 if (DV.getTag() == dwarf::DW_TAG_arg_variable && 1411 DISubprogram(DV.getContext()).describes(MF->getFunction())) 1412 Scope = CurrentFnDbgScope; 1413 else 1414 Scope = findDbgScope(MInsn->getDebugLoc()); 1415 // If variable scope is not found then skip this variable. 1416 if (!Scope) 1417 continue; 1418 1419 Processed.insert(DV); 1420 assert(MInsn->isDebugValue() && "History must begin with debug value"); 1421 DbgVariable *RegVar = new DbgVariable(DV); 1422 if (!addCurrentFnArgument(MF, RegVar, Scope)) 1423 Scope->addVariable(RegVar); 1424 if (DbgVariable *AbsVar = findAbstractVariable(DV, MInsn->getDebugLoc())) { 1425 DbgVariableToDbgInstMap[AbsVar] = MInsn; 1426 VarToAbstractVarMap[RegVar] = AbsVar; 1427 } 1428 1429 // Simple ranges that are fully coalesced. 1430 if (History.size() <= 1 || (History.size() == 2 && 1431 MInsn->isIdenticalTo(History.back()))) { 1432 DbgVariableToDbgInstMap[RegVar] = MInsn; 1433 continue; 1434 } 1435 1436 // handle multiple DBG_VALUE instructions describing one variable. 1437 RegVar->setDotDebugLocOffset(DotDebugLocEntries.size()); 1438 1439 for (SmallVectorImpl<const MachineInstr*>::const_iterator 1440 HI = History.begin(), HE = History.end(); HI != HE; ++HI) { 1441 const MachineInstr *Begin = *HI; 1442 assert(Begin->isDebugValue() && "Invalid History entry"); 1443 1444 // Check if DBG_VALUE is truncating a range. 1445 if (Begin->getNumOperands() > 1 && Begin->getOperand(0).isReg() 1446 && !Begin->getOperand(0).getReg()) 1447 continue; 1448 1449 // Compute the range for a register location. 1450 const MCSymbol *FLabel = getLabelBeforeInsn(Begin); 1451 const MCSymbol *SLabel = 0; 1452 1453 if (HI + 1 == HE) 1454 // If Begin is the last instruction in History then its value is valid 1455 // until the end of the function. 1456 SLabel = FunctionEndSym; 1457 else { 1458 const MachineInstr *End = HI[1]; 1459 DEBUG(dbgs() << "DotDebugLoc Pair:\n" 1460 << "\t" << *Begin << "\t" << *End << "\n"); 1461 if (End->isDebugValue()) 1462 SLabel = getLabelBeforeInsn(End); 1463 else { 1464 // End is a normal instruction clobbering the range. 1465 SLabel = getLabelAfterInsn(End); 1466 assert(SLabel && "Forgot label after clobber instruction"); 1467 ++HI; 1468 } 1469 } 1470 1471 // The value is valid until the next DBG_VALUE or clobber. 1472 DotDebugLocEntries.push_back(getDebugLocEntry(Asm, FLabel, SLabel, Begin)); 1473 } 1474 DotDebugLocEntries.push_back(DotDebugLocEntry()); 1475 } 1476 1477 // Collect info for variables that were optimized out. 1478 const Function *F = MF->getFunction(); 1479 if (NamedMDNode *NMD = getFnSpecificMDNode(*(F->getParent()), F->getName())) { 1480 for (unsigned i = 0, e = NMD->getNumOperands(); i != e; ++i) { 1481 DIVariable DV(cast<MDNode>(NMD->getOperand(i))); 1482 if (!DV || !Processed.insert(DV)) 1483 continue; 1484 DbgScope *Scope = DbgScopeMap.lookup(DV.getContext()); 1485 if (Scope) 1486 Scope->addVariable(new DbgVariable(DV)); 1487 } 1488 } 1489} 1490 1491/// getLabelBeforeInsn - Return Label preceding the instruction. 1492const MCSymbol *DwarfDebug::getLabelBeforeInsn(const MachineInstr *MI) { 1493 MCSymbol *Label = LabelsBeforeInsn.lookup(MI); 1494 assert(Label && "Didn't insert label before instruction"); 1495 return Label; 1496} 1497 1498/// getLabelAfterInsn - Return Label immediately following the instruction. 1499const MCSymbol *DwarfDebug::getLabelAfterInsn(const MachineInstr *MI) { 1500 return LabelsAfterInsn.lookup(MI); 1501} 1502 1503/// beginInstruction - Process beginning of an instruction. 1504void DwarfDebug::beginInstruction(const MachineInstr *MI) { 1505 // Check if source location changes, but ignore DBG_VALUE locations. 1506 if (!MI->isDebugValue()) { 1507 DebugLoc DL = MI->getDebugLoc(); 1508 if (DL != PrevInstLoc && (!DL.isUnknown() || UnknownLocations)) { 1509 unsigned Flags = DWARF2_FLAG_IS_STMT; 1510 PrevInstLoc = DL; 1511 if (DL == PrologEndLoc) { 1512 Flags |= DWARF2_FLAG_PROLOGUE_END; 1513 PrologEndLoc = DebugLoc(); 1514 } 1515 if (!DL.isUnknown()) { 1516 const MDNode *Scope = DL.getScope(Asm->MF->getFunction()->getContext()); 1517 recordSourceLine(DL.getLine(), DL.getCol(), Scope, Flags); 1518 } else 1519 recordSourceLine(0, 0, 0, 0); 1520 } 1521 } 1522 1523 // Insert labels where requested. 1524 DenseMap<const MachineInstr*, MCSymbol*>::iterator I = 1525 LabelsBeforeInsn.find(MI); 1526 1527 // No label needed. 1528 if (I == LabelsBeforeInsn.end()) 1529 return; 1530 1531 // Label already assigned. 1532 if (I->second) 1533 return; 1534 1535 if (!PrevLabel) { 1536 PrevLabel = MMI->getContext().CreateTempSymbol(); 1537 Asm->OutStreamer.EmitLabel(PrevLabel); 1538 } 1539 I->second = PrevLabel; 1540} 1541 1542/// endInstruction - Process end of an instruction. 1543void DwarfDebug::endInstruction(const MachineInstr *MI) { 1544 // Don't create a new label after DBG_VALUE instructions. 1545 // They don't generate code. 1546 if (!MI->isDebugValue()) 1547 PrevLabel = 0; 1548 1549 DenseMap<const MachineInstr*, MCSymbol*>::iterator I = 1550 LabelsAfterInsn.find(MI); 1551 1552 // No label needed. 1553 if (I == LabelsAfterInsn.end()) 1554 return; 1555 1556 // Label already assigned. 1557 if (I->second) 1558 return; 1559 1560 // We need a label after this instruction. 1561 if (!PrevLabel) { 1562 PrevLabel = MMI->getContext().CreateTempSymbol(); 1563 Asm->OutStreamer.EmitLabel(PrevLabel); 1564 } 1565 I->second = PrevLabel; 1566} 1567 1568/// getOrCreateDbgScope - Create DbgScope for the scope. 1569DbgScope *DwarfDebug::getOrCreateDbgScope(DebugLoc DL) { 1570 LLVMContext &Ctx = Asm->MF->getFunction()->getContext(); 1571 MDNode *Scope = NULL; 1572 MDNode *InlinedAt = NULL; 1573 DL.getScopeAndInlinedAt(Scope, InlinedAt, Ctx); 1574 1575 if (!InlinedAt) { 1576 DbgScope *WScope = DbgScopeMap.lookup(Scope); 1577 if (WScope) 1578 return WScope; 1579 WScope = new DbgScope(NULL, DIDescriptor(Scope), NULL); 1580 DbgScopeMap.insert(std::make_pair(Scope, WScope)); 1581 if (DIDescriptor(Scope).isLexicalBlock()) { 1582 DbgScope *Parent = 1583 getOrCreateDbgScope(DebugLoc::getFromDILexicalBlock(Scope)); 1584 WScope->setParent(Parent); 1585 Parent->addScope(WScope); 1586 } else if (DIDescriptor(Scope).isSubprogram() 1587 && DISubprogram(Scope).describes(Asm->MF->getFunction())) 1588 CurrentFnDbgScope = WScope; 1589 1590 return WScope; 1591 } 1592 1593 getOrCreateAbstractScope(Scope); 1594 DbgScope *WScope = DbgScopeMap.lookup(InlinedAt); 1595 if (WScope) 1596 return WScope; 1597 1598 WScope = new DbgScope(NULL, DIDescriptor(Scope), InlinedAt); 1599 DbgScopeMap.insert(std::make_pair(InlinedAt, WScope)); 1600 InlinedDbgScopeMap[DebugLoc::getFromDILocation(InlinedAt)] = WScope; 1601 DbgScope *Parent = 1602 getOrCreateDbgScope(DebugLoc::getFromDILocation(InlinedAt)); 1603 WScope->setParent(Parent); 1604 Parent->addScope(WScope); 1605 return WScope; 1606} 1607 1608/// calculateDominanceGraph - Calculate dominance graph for DbgScope 1609/// hierarchy. 1610static void calculateDominanceGraph(DbgScope *Scope) { 1611 assert (Scope && "Unable to calculate scop edominance graph!"); 1612 SmallVector<DbgScope *, 4> WorkStack; 1613 WorkStack.push_back(Scope); 1614 unsigned Counter = 0; 1615 while (!WorkStack.empty()) { 1616 DbgScope *WS = WorkStack.back(); 1617 const SmallVector<DbgScope *, 4> &Children = WS->getScopes(); 1618 bool visitedChildren = false; 1619 for (SmallVector<DbgScope *, 4>::const_iterator SI = Children.begin(), 1620 SE = Children.end(); SI != SE; ++SI) { 1621 DbgScope *ChildScope = *SI; 1622 if (!ChildScope->getDFSOut()) { 1623 WorkStack.push_back(ChildScope); 1624 visitedChildren = true; 1625 ChildScope->setDFSIn(++Counter); 1626 break; 1627 } 1628 } 1629 if (!visitedChildren) { 1630 WorkStack.pop_back(); 1631 WS->setDFSOut(++Counter); 1632 } 1633 } 1634} 1635 1636/// printDbgScopeInfo - Print DbgScope info for each machine instruction. 1637static 1638void printDbgScopeInfo(const MachineFunction *MF, 1639 DenseMap<const MachineInstr *, DbgScope *> &MI2ScopeMap) 1640{ 1641#ifndef NDEBUG 1642 LLVMContext &Ctx = MF->getFunction()->getContext(); 1643 unsigned PrevDFSIn = 0; 1644 for (MachineFunction::const_iterator I = MF->begin(), E = MF->end(); 1645 I != E; ++I) { 1646 for (MachineBasicBlock::const_iterator II = I->begin(), IE = I->end(); 1647 II != IE; ++II) { 1648 const MachineInstr *MInsn = II; 1649 MDNode *Scope = NULL; 1650 MDNode *InlinedAt = NULL; 1651 1652 // Check if instruction has valid location information. 1653 DebugLoc MIDL = MInsn->getDebugLoc(); 1654 if (!MIDL.isUnknown()) { 1655 MIDL.getScopeAndInlinedAt(Scope, InlinedAt, Ctx); 1656 dbgs() << " [ "; 1657 if (InlinedAt) 1658 dbgs() << "*"; 1659 DenseMap<const MachineInstr *, DbgScope *>::iterator DI = 1660 MI2ScopeMap.find(MInsn); 1661 if (DI != MI2ScopeMap.end()) { 1662 DbgScope *S = DI->second; 1663 dbgs() << S->getDFSIn(); 1664 PrevDFSIn = S->getDFSIn(); 1665 } else 1666 dbgs() << PrevDFSIn; 1667 } else 1668 dbgs() << " [ x" << PrevDFSIn; 1669 dbgs() << " ]"; 1670 MInsn->dump(); 1671 } 1672 dbgs() << "\n"; 1673 } 1674#endif 1675} 1676/// extractScopeInformation - Scan machine instructions in this function 1677/// and collect DbgScopes. Return true, if at least one scope was found. 1678bool DwarfDebug::extractScopeInformation() { 1679 // If scope information was extracted using .dbg intrinsics then there is not 1680 // any need to extract these information by scanning each instruction. 1681 if (!DbgScopeMap.empty()) 1682 return false; 1683 1684 // Scan each instruction and create scopes. First build working set of scopes. 1685 SmallVector<DbgRange, 4> MIRanges; 1686 DenseMap<const MachineInstr *, DbgScope *> MI2ScopeMap; 1687 DebugLoc PrevDL; 1688 const MachineInstr *RangeBeginMI = NULL; 1689 const MachineInstr *PrevMI = NULL; 1690 for (MachineFunction::const_iterator I = Asm->MF->begin(), E = Asm->MF->end(); 1691 I != E; ++I) { 1692 for (MachineBasicBlock::const_iterator II = I->begin(), IE = I->end(); 1693 II != IE; ++II) { 1694 const MachineInstr *MInsn = II; 1695 1696 // Check if instruction has valid location information. 1697 const DebugLoc MIDL = MInsn->getDebugLoc(); 1698 if (MIDL.isUnknown()) { 1699 PrevMI = MInsn; 1700 continue; 1701 } 1702 1703 // If scope has not changed then skip this instruction. 1704 if (MIDL == PrevDL) { 1705 PrevMI = MInsn; 1706 continue; 1707 } 1708 1709 // Ignore DBG_VALUE. It does not contribute any instruction in output. 1710 if (MInsn->isDebugValue()) 1711 continue; 1712 1713 if (RangeBeginMI) { 1714 // If we have alread seen a beginning of a instruction range and 1715 // current instruction scope does not match scope of first instruction 1716 // in this range then create a new instruction range. 1717 DEBUG(dbgs() << "Creating new instruction range :\n"); 1718 DEBUG(dbgs() << "Begin Range at " << *RangeBeginMI); 1719 DEBUG(dbgs() << "End Range at " << *PrevMI); 1720 DEBUG(dbgs() << "Next Range starting at " << *MInsn); 1721 DEBUG(dbgs() << "------------------------\n"); 1722 DbgRange R(RangeBeginMI, PrevMI); 1723 MI2ScopeMap[RangeBeginMI] = getOrCreateDbgScope(PrevDL); 1724 MIRanges.push_back(R); 1725 } 1726 1727 // This is a beginning of a new instruction range. 1728 RangeBeginMI = MInsn; 1729 1730 // Reset previous markers. 1731 PrevMI = MInsn; 1732 PrevDL = MIDL; 1733 } 1734 } 1735 1736 // Create last instruction range. 1737 if (RangeBeginMI && PrevMI && !PrevDL.isUnknown()) { 1738 DbgRange R(RangeBeginMI, PrevMI); 1739 MIRanges.push_back(R); 1740 MI2ScopeMap[RangeBeginMI] = getOrCreateDbgScope(PrevDL); 1741 } 1742 1743 if (!CurrentFnDbgScope) 1744 return false; 1745 1746 calculateDominanceGraph(CurrentFnDbgScope); 1747 if (PrintDbgScope) 1748 printDbgScopeInfo(Asm->MF, MI2ScopeMap); 1749 1750 // Find ranges of instructions covered by each DbgScope; 1751 DbgScope *PrevDbgScope = NULL; 1752 for (SmallVector<DbgRange, 4>::const_iterator RI = MIRanges.begin(), 1753 RE = MIRanges.end(); RI != RE; ++RI) { 1754 const DbgRange &R = *RI; 1755 DbgScope *S = MI2ScopeMap.lookup(R.first); 1756 assert (S && "Lost DbgScope for a machine instruction!"); 1757 if (PrevDbgScope && !PrevDbgScope->dominates(S)) 1758 PrevDbgScope->closeInsnRange(S); 1759 S->openInsnRange(R.first); 1760 S->extendInsnRange(R.second); 1761 PrevDbgScope = S; 1762 } 1763 1764 if (PrevDbgScope) 1765 PrevDbgScope->closeInsnRange(); 1766 1767 identifyScopeMarkers(); 1768 1769 return !DbgScopeMap.empty(); 1770} 1771 1772/// identifyScopeMarkers() - 1773/// Each DbgScope has first instruction and last instruction to mark beginning 1774/// and end of a scope respectively. Create an inverse map that list scopes 1775/// starts (and ends) with an instruction. One instruction may start (or end) 1776/// multiple scopes. Ignore scopes that are not reachable. 1777void DwarfDebug::identifyScopeMarkers() { 1778 SmallVector<DbgScope *, 4> WorkList; 1779 WorkList.push_back(CurrentFnDbgScope); 1780 while (!WorkList.empty()) { 1781 DbgScope *S = WorkList.pop_back_val(); 1782 1783 const SmallVector<DbgScope *, 4> &Children = S->getScopes(); 1784 if (!Children.empty()) 1785 for (SmallVector<DbgScope *, 4>::const_iterator SI = Children.begin(), 1786 SE = Children.end(); SI != SE; ++SI) 1787 WorkList.push_back(*SI); 1788 1789 if (S->isAbstractScope()) 1790 continue; 1791 1792 const SmallVector<DbgRange, 4> &Ranges = S->getRanges(); 1793 if (Ranges.empty()) 1794 continue; 1795 for (SmallVector<DbgRange, 4>::const_iterator RI = Ranges.begin(), 1796 RE = Ranges.end(); RI != RE; ++RI) { 1797 assert(RI->first && "DbgRange does not have first instruction!"); 1798 assert(RI->second && "DbgRange does not have second instruction!"); 1799 requestLabelBeforeInsn(RI->first); 1800 requestLabelAfterInsn(RI->second); 1801 } 1802 } 1803} 1804 1805/// getScopeNode - Get MDNode for DebugLoc's scope. 1806static MDNode *getScopeNode(DebugLoc DL, const LLVMContext &Ctx) { 1807 if (MDNode *InlinedAt = DL.getInlinedAt(Ctx)) 1808 return getScopeNode(DebugLoc::getFromDILocation(InlinedAt), Ctx); 1809 return DL.getScope(Ctx); 1810} 1811 1812/// getFnDebugLoc - Walk up the scope chain of given debug loc and find 1813/// line number info for the function. 1814static DebugLoc getFnDebugLoc(DebugLoc DL, const LLVMContext &Ctx) { 1815 const MDNode *Scope = getScopeNode(DL, Ctx); 1816 DISubprogram SP = getDISubprogram(Scope); 1817 if (SP.Verify()) 1818 return DebugLoc::get(SP.getLineNumber(), 0, SP); 1819 return DebugLoc(); 1820} 1821 1822/// beginFunction - Gather pre-function debug information. Assumes being 1823/// emitted immediately after the function entry point. 1824void DwarfDebug::beginFunction(const MachineFunction *MF) { 1825 if (!MMI->hasDebugInfo()) return; 1826 if (!extractScopeInformation()) return; 1827 1828 FunctionBeginSym = Asm->GetTempSymbol("func_begin", 1829 Asm->getFunctionNumber()); 1830 // Assumes in correct section after the entry point. 1831 Asm->OutStreamer.EmitLabel(FunctionBeginSym); 1832 1833 assert(UserVariables.empty() && DbgValues.empty() && "Maps weren't cleaned"); 1834 1835 const TargetRegisterInfo *TRI = Asm->TM.getRegisterInfo(); 1836 /// LiveUserVar - Map physreg numbers to the MDNode they contain. 1837 std::vector<const MDNode*> LiveUserVar(TRI->getNumRegs()); 1838 1839 for (MachineFunction::const_iterator I = MF->begin(), E = MF->end(); 1840 I != E; ++I) { 1841 bool AtBlockEntry = true; 1842 for (MachineBasicBlock::const_iterator II = I->begin(), IE = I->end(); 1843 II != IE; ++II) { 1844 const MachineInstr *MI = II; 1845 1846 if (MI->isDebugValue()) { 1847 assert (MI->getNumOperands() > 1 && "Invalid machine instruction!"); 1848 1849 // Keep track of user variables. 1850 const MDNode *Var = 1851 MI->getOperand(MI->getNumOperands() - 1).getMetadata(); 1852 1853 // Variable is in a register, we need to check for clobbers. 1854 if (isDbgValueInDefinedReg(MI)) 1855 LiveUserVar[MI->getOperand(0).getReg()] = Var; 1856 1857 // Check the history of this variable. 1858 SmallVectorImpl<const MachineInstr*> &History = DbgValues[Var]; 1859 if (History.empty()) { 1860 UserVariables.push_back(Var); 1861 // The first mention of a function argument gets the FunctionBeginSym 1862 // label, so arguments are visible when breaking at function entry. 1863 DIVariable DV(Var); 1864 if (DV.Verify() && DV.getTag() == dwarf::DW_TAG_arg_variable && 1865 DISubprogram(getDISubprogram(DV.getContext())) 1866 .describes(MF->getFunction())) 1867 LabelsBeforeInsn[MI] = FunctionBeginSym; 1868 } else { 1869 // We have seen this variable before. Try to coalesce DBG_VALUEs. 1870 const MachineInstr *Prev = History.back(); 1871 if (Prev->isDebugValue()) { 1872 // Coalesce identical entries at the end of History. 1873 if (History.size() >= 2 && 1874 Prev->isIdenticalTo(History[History.size() - 2])) { 1875 DEBUG(dbgs() << "Coalesce identical DBG_VALUE entries:\n" 1876 << "\t" << *Prev 1877 << "\t" << *History[History.size() - 2] << "\n"); 1878 History.pop_back(); 1879 } 1880 1881 // Terminate old register assignments that don't reach MI; 1882 MachineFunction::const_iterator PrevMBB = Prev->getParent(); 1883 if (PrevMBB != I && (!AtBlockEntry || llvm::next(PrevMBB) != I) && 1884 isDbgValueInDefinedReg(Prev)) { 1885 // Previous register assignment needs to terminate at the end of 1886 // its basic block. 1887 MachineBasicBlock::const_iterator LastMI = 1888 PrevMBB->getLastNonDebugInstr(); 1889 if (LastMI == PrevMBB->end()) { 1890 // Drop DBG_VALUE for empty range. 1891 DEBUG(dbgs() << "Drop DBG_VALUE for empty range:\n" 1892 << "\t" << *Prev << "\n"); 1893 History.pop_back(); 1894 } 1895 else { 1896 // Terminate after LastMI. 1897 History.push_back(LastMI); 1898 } 1899 } 1900 } 1901 } 1902 History.push_back(MI); 1903 } else { 1904 // Not a DBG_VALUE instruction. 1905 if (!MI->isLabel()) 1906 AtBlockEntry = false; 1907 1908 // First known non DBG_VALUE location marks beginning of function 1909 // body. 1910 if (PrologEndLoc.isUnknown() && !MI->getDebugLoc().isUnknown()) 1911 PrologEndLoc = MI->getDebugLoc(); 1912 1913 // Check if the instruction clobbers any registers with debug vars. 1914 for (MachineInstr::const_mop_iterator MOI = MI->operands_begin(), 1915 MOE = MI->operands_end(); MOI != MOE; ++MOI) { 1916 if (!MOI->isReg() || !MOI->isDef() || !MOI->getReg()) 1917 continue; 1918 for (const unsigned *AI = TRI->getOverlaps(MOI->getReg()); 1919 unsigned Reg = *AI; ++AI) { 1920 const MDNode *Var = LiveUserVar[Reg]; 1921 if (!Var) 1922 continue; 1923 // Reg is now clobbered. 1924 LiveUserVar[Reg] = 0; 1925 1926 // Was MD last defined by a DBG_VALUE referring to Reg? 1927 DbgValueHistoryMap::iterator HistI = DbgValues.find(Var); 1928 if (HistI == DbgValues.end()) 1929 continue; 1930 SmallVectorImpl<const MachineInstr*> &History = HistI->second; 1931 if (History.empty()) 1932 continue; 1933 const MachineInstr *Prev = History.back(); 1934 // Sanity-check: Register assignments are terminated at the end of 1935 // their block. 1936 if (!Prev->isDebugValue() || Prev->getParent() != MI->getParent()) 1937 continue; 1938 // Is the variable still in Reg? 1939 if (!isDbgValueInDefinedReg(Prev) || 1940 Prev->getOperand(0).getReg() != Reg) 1941 continue; 1942 // Var is clobbered. Make sure the next instruction gets a label. 1943 History.push_back(MI); 1944 } 1945 } 1946 } 1947 } 1948 } 1949 1950 for (DbgValueHistoryMap::iterator I = DbgValues.begin(), E = DbgValues.end(); 1951 I != E; ++I) { 1952 SmallVectorImpl<const MachineInstr*> &History = I->second; 1953 if (History.empty()) 1954 continue; 1955 1956 // Make sure the final register assignments are terminated. 1957 const MachineInstr *Prev = History.back(); 1958 if (Prev->isDebugValue() && isDbgValueInDefinedReg(Prev)) { 1959 const MachineBasicBlock *PrevMBB = Prev->getParent(); 1960 MachineBasicBlock::const_iterator LastMI = PrevMBB->getLastNonDebugInstr(); 1961 if (LastMI == PrevMBB->end()) 1962 // Drop DBG_VALUE for empty range. 1963 History.pop_back(); 1964 else { 1965 // Terminate after LastMI. 1966 History.push_back(LastMI); 1967 } 1968 } 1969 // Request labels for the full history. 1970 for (unsigned i = 0, e = History.size(); i != e; ++i) { 1971 const MachineInstr *MI = History[i]; 1972 if (MI->isDebugValue()) 1973 requestLabelBeforeInsn(MI); 1974 else 1975 requestLabelAfterInsn(MI); 1976 } 1977 } 1978 1979 PrevInstLoc = DebugLoc(); 1980 PrevLabel = FunctionBeginSym; 1981 1982 // Record beginning of function. 1983 if (!PrologEndLoc.isUnknown()) { 1984 DebugLoc FnStartDL = getFnDebugLoc(PrologEndLoc, 1985 MF->getFunction()->getContext()); 1986 recordSourceLine(FnStartDL.getLine(), FnStartDL.getCol(), 1987 FnStartDL.getScope(MF->getFunction()->getContext()), 1988 DWARF2_FLAG_IS_STMT); 1989 } 1990} 1991 1992/// endFunction - Gather and emit post-function debug information. 1993/// 1994void DwarfDebug::endFunction(const MachineFunction *MF) { 1995 if (!MMI->hasDebugInfo() || DbgScopeMap.empty()) return; 1996 1997 if (CurrentFnDbgScope) { 1998 1999 // Define end label for subprogram. 2000 FunctionEndSym = Asm->GetTempSymbol("func_end", 2001 Asm->getFunctionNumber()); 2002 // Assumes in correct section after the entry point. 2003 Asm->OutStreamer.EmitLabel(FunctionEndSym); 2004 2005 SmallPtrSet<const MDNode *, 16> ProcessedVars; 2006 collectVariableInfo(MF, ProcessedVars); 2007 2008 // Construct abstract scopes. 2009 for (SmallVector<DbgScope *, 4>::iterator AI = AbstractScopesList.begin(), 2010 AE = AbstractScopesList.end(); AI != AE; ++AI) { 2011 DISubprogram SP((*AI)->getScopeNode()); 2012 if (SP.Verify()) { 2013 // Collect info for variables that were optimized out. 2014 StringRef FName = SP.getLinkageName(); 2015 if (FName.empty()) 2016 FName = SP.getName(); 2017 if (NamedMDNode *NMD = 2018 getFnSpecificMDNode(*(MF->getFunction()->getParent()), FName)) { 2019 for (unsigned i = 0, e = NMD->getNumOperands(); i != e; ++i) { 2020 DIVariable DV(cast<MDNode>(NMD->getOperand(i))); 2021 if (!DV || !ProcessedVars.insert(DV)) 2022 continue; 2023 DbgScope *Scope = AbstractScopes.lookup(DV.getContext()); 2024 if (Scope) 2025 Scope->addVariable(new DbgVariable(DV)); 2026 } 2027 } 2028 } 2029 if (ProcessedSPNodes.count((*AI)->getScopeNode()) == 0) 2030 constructScopeDIE(*AI); 2031 } 2032 2033 DIE *CurFnDIE = constructScopeDIE(CurrentFnDbgScope); 2034 2035 if (!DisableFramePointerElim(*MF)) 2036 getCompileUnit(CurrentFnDbgScope->getScopeNode())->addUInt(CurFnDIE, 2037 dwarf::DW_AT_APPLE_omit_frame_ptr, 2038 dwarf::DW_FORM_flag, 1); 2039 2040 2041 DebugFrames.push_back(FunctionDebugFrameInfo(Asm->getFunctionNumber(), 2042 MMI->getFrameMoves())); 2043 } 2044 2045 // Clear debug info 2046 CurrentFnDbgScope = NULL; 2047 DeleteContainerPointers(CurrentFnArguments); 2048 DbgVariableToFrameIndexMap.clear(); 2049 VarToAbstractVarMap.clear(); 2050 DbgVariableToDbgInstMap.clear(); 2051 InlinedDbgScopeMap.clear(); 2052 DeleteContainerSeconds(DbgScopeMap); 2053 UserVariables.clear(); 2054 DbgValues.clear(); 2055 DeleteContainerSeconds(AbstractScopes); 2056 AbstractScopesList.clear(); 2057 AbstractVariables.clear(); 2058 LabelsBeforeInsn.clear(); 2059 LabelsAfterInsn.clear(); 2060 PrevLabel = NULL; 2061} 2062 2063/// recordVariableFrameIndex - Record a variable's index. 2064void DwarfDebug::recordVariableFrameIndex(const DbgVariable *V, int Index) { 2065 assert (V && "Invalid DbgVariable!"); 2066 DbgVariableToFrameIndexMap[V] = Index; 2067} 2068 2069/// findVariableFrameIndex - Return true if frame index for the variable 2070/// is found. Update FI to hold value of the index. 2071bool DwarfDebug::findVariableFrameIndex(const DbgVariable *V, int *FI) { 2072 assert (V && "Invalid DbgVariable!"); 2073 DenseMap<const DbgVariable *, int>::iterator I = 2074 DbgVariableToFrameIndexMap.find(V); 2075 if (I == DbgVariableToFrameIndexMap.end()) 2076 return false; 2077 *FI = I->second; 2078 return true; 2079} 2080 2081/// findDbgScope - Find DbgScope for the debug loc. 2082DbgScope *DwarfDebug::findDbgScope(DebugLoc DL) { 2083 if (DL.isUnknown()) 2084 return NULL; 2085 2086 DbgScope *Scope = NULL; 2087 LLVMContext &Ctx = Asm->MF->getFunction()->getContext(); 2088 if (MDNode *IA = DL.getInlinedAt(Ctx)) 2089 Scope = InlinedDbgScopeMap.lookup(DebugLoc::getFromDILocation(IA)); 2090 else 2091 Scope = DbgScopeMap.lookup(DL.getScope(Ctx)); 2092 return Scope; 2093} 2094 2095 2096/// recordSourceLine - Register a source line with debug info. Returns the 2097/// unique label that was emitted and which provides correspondence to 2098/// the source line list. 2099void DwarfDebug::recordSourceLine(unsigned Line, unsigned Col, const MDNode *S, 2100 unsigned Flags) { 2101 StringRef Fn; 2102 StringRef Dir; 2103 unsigned Src = 1; 2104 if (S) { 2105 DIDescriptor Scope(S); 2106 2107 if (Scope.isCompileUnit()) { 2108 DICompileUnit CU(S); 2109 Fn = CU.getFilename(); 2110 Dir = CU.getDirectory(); 2111 } else if (Scope.isFile()) { 2112 DIFile F(S); 2113 Fn = F.getFilename(); 2114 Dir = F.getDirectory(); 2115 } else if (Scope.isSubprogram()) { 2116 DISubprogram SP(S); 2117 Fn = SP.getFilename(); 2118 Dir = SP.getDirectory(); 2119 } else if (Scope.isLexicalBlock()) { 2120 DILexicalBlock DB(S); 2121 Fn = DB.getFilename(); 2122 Dir = DB.getDirectory(); 2123 } else 2124 assert(0 && "Unexpected scope info"); 2125 2126 Src = GetOrCreateSourceID(Fn, Dir); 2127 } 2128 Asm->OutStreamer.EmitDwarfLocDirective(Src, Line, Col, Flags, 2129 0, 0, Fn); 2130} 2131 2132//===----------------------------------------------------------------------===// 2133// Emit Methods 2134//===----------------------------------------------------------------------===// 2135 2136/// computeSizeAndOffset - Compute the size and offset of a DIE. 2137/// 2138unsigned 2139DwarfDebug::computeSizeAndOffset(DIE *Die, unsigned Offset, bool Last) { 2140 // Get the children. 2141 const std::vector<DIE *> &Children = Die->getChildren(); 2142 2143 // If not last sibling and has children then add sibling offset attribute. 2144 if (!Last && !Children.empty()) 2145 Die->addSiblingOffset(DIEValueAllocator); 2146 2147 // Record the abbreviation. 2148 assignAbbrevNumber(Die->getAbbrev()); 2149 2150 // Get the abbreviation for this DIE. 2151 unsigned AbbrevNumber = Die->getAbbrevNumber(); 2152 const DIEAbbrev *Abbrev = Abbreviations[AbbrevNumber - 1]; 2153 2154 // Set DIE offset 2155 Die->setOffset(Offset); 2156 2157 // Start the size with the size of abbreviation code. 2158 Offset += MCAsmInfo::getULEB128Size(AbbrevNumber); 2159 2160 const SmallVector<DIEValue*, 32> &Values = Die->getValues(); 2161 const SmallVector<DIEAbbrevData, 8> &AbbrevData = Abbrev->getData(); 2162 2163 // Size the DIE attribute values. 2164 for (unsigned i = 0, N = Values.size(); i < N; ++i) 2165 // Size attribute value. 2166 Offset += Values[i]->SizeOf(Asm, AbbrevData[i].getForm()); 2167 2168 // Size the DIE children if any. 2169 if (!Children.empty()) { 2170 assert(Abbrev->getChildrenFlag() == dwarf::DW_CHILDREN_yes && 2171 "Children flag not set"); 2172 2173 for (unsigned j = 0, M = Children.size(); j < M; ++j) 2174 Offset = computeSizeAndOffset(Children[j], Offset, (j + 1) == M); 2175 2176 // End of children marker. 2177 Offset += sizeof(int8_t); 2178 } 2179 2180 Die->setSize(Offset - Die->getOffset()); 2181 return Offset; 2182} 2183 2184/// computeSizeAndOffsets - Compute the size and offset of all the DIEs. 2185/// 2186void DwarfDebug::computeSizeAndOffsets() { 2187 for (DenseMap<const MDNode *, CompileUnit *>::iterator I = CUMap.begin(), 2188 E = CUMap.end(); I != E; ++I) { 2189 // Compute size of compile unit header. 2190 unsigned Offset = 2191 sizeof(int32_t) + // Length of Compilation Unit Info 2192 sizeof(int16_t) + // DWARF version number 2193 sizeof(int32_t) + // Offset Into Abbrev. Section 2194 sizeof(int8_t); // Pointer Size (in bytes) 2195 computeSizeAndOffset(I->second->getCUDie(), Offset, true); 2196 } 2197} 2198 2199/// EmitSectionSym - Switch to the specified MCSection and emit an assembler 2200/// temporary label to it if SymbolStem is specified. 2201static MCSymbol *EmitSectionSym(AsmPrinter *Asm, const MCSection *Section, 2202 const char *SymbolStem = 0) { 2203 Asm->OutStreamer.SwitchSection(Section); 2204 if (!SymbolStem) return 0; 2205 2206 MCSymbol *TmpSym = Asm->GetTempSymbol(SymbolStem); 2207 Asm->OutStreamer.EmitLabel(TmpSym); 2208 return TmpSym; 2209} 2210 2211/// EmitSectionLabels - Emit initial Dwarf sections with a label at 2212/// the start of each one. 2213void DwarfDebug::EmitSectionLabels() { 2214 const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering(); 2215 2216 // Dwarf sections base addresses. 2217 DwarfInfoSectionSym = 2218 EmitSectionSym(Asm, TLOF.getDwarfInfoSection(), "section_info"); 2219 DwarfAbbrevSectionSym = 2220 EmitSectionSym(Asm, TLOF.getDwarfAbbrevSection(), "section_abbrev"); 2221 EmitSectionSym(Asm, TLOF.getDwarfARangesSection()); 2222 2223 if (const MCSection *MacroInfo = TLOF.getDwarfMacroInfoSection()) 2224 EmitSectionSym(Asm, MacroInfo); 2225 2226 EmitSectionSym(Asm, TLOF.getDwarfLineSection(), "section_line"); 2227 EmitSectionSym(Asm, TLOF.getDwarfLocSection()); 2228 EmitSectionSym(Asm, TLOF.getDwarfPubNamesSection()); 2229 EmitSectionSym(Asm, TLOF.getDwarfPubTypesSection()); 2230 DwarfStrSectionSym = 2231 EmitSectionSym(Asm, TLOF.getDwarfStrSection(), "section_str"); 2232 DwarfDebugRangeSectionSym = EmitSectionSym(Asm, TLOF.getDwarfRangesSection(), 2233 "debug_range"); 2234 2235 DwarfDebugLocSectionSym = EmitSectionSym(Asm, TLOF.getDwarfLocSection(), 2236 "section_debug_loc"); 2237 2238 TextSectionSym = EmitSectionSym(Asm, TLOF.getTextSection(), "text_begin"); 2239 EmitSectionSym(Asm, TLOF.getDataSection()); 2240} 2241 2242/// emitDIE - Recusively Emits a debug information entry. 2243/// 2244void DwarfDebug::emitDIE(DIE *Die) { 2245 // Get the abbreviation for this DIE. 2246 unsigned AbbrevNumber = Die->getAbbrevNumber(); 2247 const DIEAbbrev *Abbrev = Abbreviations[AbbrevNumber - 1]; 2248 2249 // Emit the code (index) for the abbreviation. 2250 if (Asm->isVerbose()) 2251 Asm->OutStreamer.AddComment("Abbrev [" + Twine(AbbrevNumber) + "] 0x" + 2252 Twine::utohexstr(Die->getOffset()) + ":0x" + 2253 Twine::utohexstr(Die->getSize()) + " " + 2254 dwarf::TagString(Abbrev->getTag())); 2255 Asm->EmitULEB128(AbbrevNumber); 2256 2257 const SmallVector<DIEValue*, 32> &Values = Die->getValues(); 2258 const SmallVector<DIEAbbrevData, 8> &AbbrevData = Abbrev->getData(); 2259 2260 // Emit the DIE attribute values. 2261 for (unsigned i = 0, N = Values.size(); i < N; ++i) { 2262 unsigned Attr = AbbrevData[i].getAttribute(); 2263 unsigned Form = AbbrevData[i].getForm(); 2264 assert(Form && "Too many attributes for DIE (check abbreviation)"); 2265 2266 if (Asm->isVerbose()) 2267 Asm->OutStreamer.AddComment(dwarf::AttributeString(Attr)); 2268 2269 switch (Attr) { 2270 case dwarf::DW_AT_sibling: 2271 Asm->EmitInt32(Die->getSiblingOffset()); 2272 break; 2273 case dwarf::DW_AT_abstract_origin: { 2274 DIEEntry *E = cast<DIEEntry>(Values[i]); 2275 DIE *Origin = E->getEntry(); 2276 unsigned Addr = Origin->getOffset(); 2277 Asm->EmitInt32(Addr); 2278 break; 2279 } 2280 case dwarf::DW_AT_ranges: { 2281 // DW_AT_range Value encodes offset in debug_range section. 2282 DIEInteger *V = cast<DIEInteger>(Values[i]); 2283 2284 if (Asm->MAI->doesDwarfUsesLabelOffsetForRanges()) { 2285 Asm->EmitLabelPlusOffset(DwarfDebugRangeSectionSym, 2286 V->getValue(), 2287 4); 2288 } else { 2289 Asm->EmitLabelOffsetDifference(DwarfDebugRangeSectionSym, 2290 V->getValue(), 2291 DwarfDebugRangeSectionSym, 2292 4); 2293 } 2294 break; 2295 } 2296 case dwarf::DW_AT_location: { 2297 if (UseDotDebugLocEntry.count(Die) != 0) { 2298 DIELabel *L = cast<DIELabel>(Values[i]); 2299 Asm->EmitLabelDifference(L->getValue(), DwarfDebugLocSectionSym, 4); 2300 } else 2301 Values[i]->EmitValue(Asm, Form); 2302 break; 2303 } 2304 case dwarf::DW_AT_accessibility: { 2305 if (Asm->isVerbose()) { 2306 DIEInteger *V = cast<DIEInteger>(Values[i]); 2307 Asm->OutStreamer.AddComment(dwarf::AccessibilityString(V->getValue())); 2308 } 2309 Values[i]->EmitValue(Asm, Form); 2310 break; 2311 } 2312 default: 2313 // Emit an attribute using the defined form. 2314 Values[i]->EmitValue(Asm, Form); 2315 break; 2316 } 2317 } 2318 2319 // Emit the DIE children if any. 2320 if (Abbrev->getChildrenFlag() == dwarf::DW_CHILDREN_yes) { 2321 const std::vector<DIE *> &Children = Die->getChildren(); 2322 2323 for (unsigned j = 0, M = Children.size(); j < M; ++j) 2324 emitDIE(Children[j]); 2325 2326 if (Asm->isVerbose()) 2327 Asm->OutStreamer.AddComment("End Of Children Mark"); 2328 Asm->EmitInt8(0); 2329 } 2330} 2331 2332/// emitDebugInfo - Emit the debug info section. 2333/// 2334void DwarfDebug::emitDebugInfo() { 2335 // Start debug info section. 2336 Asm->OutStreamer.SwitchSection( 2337 Asm->getObjFileLowering().getDwarfInfoSection()); 2338 for (DenseMap<const MDNode *, CompileUnit *>::iterator I = CUMap.begin(), 2339 E = CUMap.end(); I != E; ++I) { 2340 CompileUnit *TheCU = I->second; 2341 DIE *Die = TheCU->getCUDie(); 2342 2343 // Emit the compile units header. 2344 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("info_begin", 2345 TheCU->getID())); 2346 2347 // Emit size of content not including length itself 2348 unsigned ContentSize = Die->getSize() + 2349 sizeof(int16_t) + // DWARF version number 2350 sizeof(int32_t) + // Offset Into Abbrev. Section 2351 sizeof(int8_t); // Pointer Size (in bytes) 2352 2353 Asm->OutStreamer.AddComment("Length of Compilation Unit Info"); 2354 Asm->EmitInt32(ContentSize); 2355 Asm->OutStreamer.AddComment("DWARF version number"); 2356 Asm->EmitInt16(dwarf::DWARF_VERSION); 2357 Asm->OutStreamer.AddComment("Offset Into Abbrev. Section"); 2358 Asm->EmitSectionOffset(Asm->GetTempSymbol("abbrev_begin"), 2359 DwarfAbbrevSectionSym); 2360 Asm->OutStreamer.AddComment("Address Size (in bytes)"); 2361 Asm->EmitInt8(Asm->getTargetData().getPointerSize()); 2362 2363 emitDIE(Die); 2364 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("info_end", TheCU->getID())); 2365 } 2366} 2367 2368/// emitAbbreviations - Emit the abbreviation section. 2369/// 2370void DwarfDebug::emitAbbreviations() const { 2371 // Check to see if it is worth the effort. 2372 if (!Abbreviations.empty()) { 2373 // Start the debug abbrev section. 2374 Asm->OutStreamer.SwitchSection( 2375 Asm->getObjFileLowering().getDwarfAbbrevSection()); 2376 2377 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("abbrev_begin")); 2378 2379 // For each abbrevation. 2380 for (unsigned i = 0, N = Abbreviations.size(); i < N; ++i) { 2381 // Get abbreviation data 2382 const DIEAbbrev *Abbrev = Abbreviations[i]; 2383 2384 // Emit the abbrevations code (base 1 index.) 2385 Asm->EmitULEB128(Abbrev->getNumber(), "Abbreviation Code"); 2386 2387 // Emit the abbreviations data. 2388 Abbrev->Emit(Asm); 2389 } 2390 2391 // Mark end of abbreviations. 2392 Asm->EmitULEB128(0, "EOM(3)"); 2393 2394 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("abbrev_end")); 2395 } 2396} 2397 2398/// emitEndOfLineMatrix - Emit the last address of the section and the end of 2399/// the line matrix. 2400/// 2401void DwarfDebug::emitEndOfLineMatrix(unsigned SectionEnd) { 2402 // Define last address of section. 2403 Asm->OutStreamer.AddComment("Extended Op"); 2404 Asm->EmitInt8(0); 2405 2406 Asm->OutStreamer.AddComment("Op size"); 2407 Asm->EmitInt8(Asm->getTargetData().getPointerSize() + 1); 2408 Asm->OutStreamer.AddComment("DW_LNE_set_address"); 2409 Asm->EmitInt8(dwarf::DW_LNE_set_address); 2410 2411 Asm->OutStreamer.AddComment("Section end label"); 2412 2413 Asm->OutStreamer.EmitSymbolValue(Asm->GetTempSymbol("section_end",SectionEnd), 2414 Asm->getTargetData().getPointerSize(), 2415 0/*AddrSpace*/); 2416 2417 // Mark end of matrix. 2418 Asm->OutStreamer.AddComment("DW_LNE_end_sequence"); 2419 Asm->EmitInt8(0); 2420 Asm->EmitInt8(1); 2421 Asm->EmitInt8(1); 2422} 2423 2424/// emitDebugPubNames - Emit visible names into a debug pubnames section. 2425/// 2426void DwarfDebug::emitDebugPubNames() { 2427 for (DenseMap<const MDNode *, CompileUnit *>::iterator I = CUMap.begin(), 2428 E = CUMap.end(); I != E; ++I) { 2429 CompileUnit *TheCU = I->second; 2430 // Start the dwarf pubnames section. 2431 Asm->OutStreamer.SwitchSection( 2432 Asm->getObjFileLowering().getDwarfPubNamesSection()); 2433 2434 Asm->OutStreamer.AddComment("Length of Public Names Info"); 2435 Asm->EmitLabelDifference( 2436 Asm->GetTempSymbol("pubnames_end", TheCU->getID()), 2437 Asm->GetTempSymbol("pubnames_begin", TheCU->getID()), 4); 2438 2439 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("pubnames_begin", 2440 TheCU->getID())); 2441 2442 Asm->OutStreamer.AddComment("DWARF Version"); 2443 Asm->EmitInt16(dwarf::DWARF_VERSION); 2444 2445 Asm->OutStreamer.AddComment("Offset of Compilation Unit Info"); 2446 Asm->EmitSectionOffset(Asm->GetTempSymbol("info_begin", TheCU->getID()), 2447 DwarfInfoSectionSym); 2448 2449 Asm->OutStreamer.AddComment("Compilation Unit Length"); 2450 Asm->EmitLabelDifference(Asm->GetTempSymbol("info_end", TheCU->getID()), 2451 Asm->GetTempSymbol("info_begin", TheCU->getID()), 2452 4); 2453 2454 const StringMap<DIE*> &Globals = TheCU->getGlobals(); 2455 for (StringMap<DIE*>::const_iterator 2456 GI = Globals.begin(), GE = Globals.end(); GI != GE; ++GI) { 2457 const char *Name = GI->getKeyData(); 2458 DIE *Entity = GI->second; 2459 2460 Asm->OutStreamer.AddComment("DIE offset"); 2461 Asm->EmitInt32(Entity->getOffset()); 2462 2463 if (Asm->isVerbose()) 2464 Asm->OutStreamer.AddComment("External Name"); 2465 Asm->OutStreamer.EmitBytes(StringRef(Name, strlen(Name)+1), 0); 2466 } 2467 2468 Asm->OutStreamer.AddComment("End Mark"); 2469 Asm->EmitInt32(0); 2470 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("pubnames_end", 2471 TheCU->getID())); 2472 } 2473} 2474 2475void DwarfDebug::emitDebugPubTypes() { 2476 for (DenseMap<const MDNode *, CompileUnit *>::iterator I = CUMap.begin(), 2477 E = CUMap.end(); I != E; ++I) { 2478 CompileUnit *TheCU = I->second; 2479 // Start the dwarf pubnames section. 2480 Asm->OutStreamer.SwitchSection( 2481 Asm->getObjFileLowering().getDwarfPubTypesSection()); 2482 Asm->OutStreamer.AddComment("Length of Public Types Info"); 2483 Asm->EmitLabelDifference( 2484 Asm->GetTempSymbol("pubtypes_end", TheCU->getID()), 2485 Asm->GetTempSymbol("pubtypes_begin", TheCU->getID()), 4); 2486 2487 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("pubtypes_begin", 2488 TheCU->getID())); 2489 2490 if (Asm->isVerbose()) Asm->OutStreamer.AddComment("DWARF Version"); 2491 Asm->EmitInt16(dwarf::DWARF_VERSION); 2492 2493 Asm->OutStreamer.AddComment("Offset of Compilation Unit Info"); 2494 Asm->EmitSectionOffset(Asm->GetTempSymbol("info_begin", TheCU->getID()), 2495 DwarfInfoSectionSym); 2496 2497 Asm->OutStreamer.AddComment("Compilation Unit Length"); 2498 Asm->EmitLabelDifference(Asm->GetTempSymbol("info_end", TheCU->getID()), 2499 Asm->GetTempSymbol("info_begin", TheCU->getID()), 2500 4); 2501 2502 const StringMap<DIE*> &Globals = TheCU->getGlobalTypes(); 2503 for (StringMap<DIE*>::const_iterator 2504 GI = Globals.begin(), GE = Globals.end(); GI != GE; ++GI) { 2505 const char *Name = GI->getKeyData(); 2506 DIE * Entity = GI->second; 2507 2508 if (Asm->isVerbose()) Asm->OutStreamer.AddComment("DIE offset"); 2509 Asm->EmitInt32(Entity->getOffset()); 2510 2511 if (Asm->isVerbose()) Asm->OutStreamer.AddComment("External Name"); 2512 Asm->OutStreamer.EmitBytes(StringRef(Name, GI->getKeyLength()+1), 0); 2513 } 2514 2515 Asm->OutStreamer.AddComment("End Mark"); 2516 Asm->EmitInt32(0); 2517 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("pubtypes_end", 2518 TheCU->getID())); 2519 } 2520} 2521 2522/// emitDebugStr - Emit visible names into a debug str section. 2523/// 2524void DwarfDebug::emitDebugStr() { 2525 // Check to see if it is worth the effort. 2526 if (StringPool.empty()) return; 2527 2528 // Start the dwarf str section. 2529 Asm->OutStreamer.SwitchSection( 2530 Asm->getObjFileLowering().getDwarfStrSection()); 2531 2532 // Get all of the string pool entries and put them in an array by their ID so 2533 // we can sort them. 2534 SmallVector<std::pair<unsigned, 2535 StringMapEntry<std::pair<MCSymbol*, unsigned> >*>, 64> Entries; 2536 2537 for (StringMap<std::pair<MCSymbol*, unsigned> >::iterator 2538 I = StringPool.begin(), E = StringPool.end(); I != E; ++I) 2539 Entries.push_back(std::make_pair(I->second.second, &*I)); 2540 2541 array_pod_sort(Entries.begin(), Entries.end()); 2542 2543 for (unsigned i = 0, e = Entries.size(); i != e; ++i) { 2544 // Emit a label for reference from debug information entries. 2545 Asm->OutStreamer.EmitLabel(Entries[i].second->getValue().first); 2546 2547 // Emit the string itself. 2548 Asm->OutStreamer.EmitBytes(Entries[i].second->getKey(), 0/*addrspace*/); 2549 } 2550} 2551 2552/// emitDebugLoc - Emit visible names into a debug loc section. 2553/// 2554void DwarfDebug::emitDebugLoc() { 2555 if (DotDebugLocEntries.empty()) 2556 return; 2557 2558 for (SmallVector<DotDebugLocEntry, 4>::iterator 2559 I = DotDebugLocEntries.begin(), E = DotDebugLocEntries.end(); 2560 I != E; ++I) { 2561 DotDebugLocEntry &Entry = *I; 2562 if (I + 1 != DotDebugLocEntries.end()) 2563 Entry.Merge(I+1); 2564 } 2565 2566 // Start the dwarf loc section. 2567 Asm->OutStreamer.SwitchSection( 2568 Asm->getObjFileLowering().getDwarfLocSection()); 2569 unsigned char Size = Asm->getTargetData().getPointerSize(); 2570 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("debug_loc", 0)); 2571 unsigned index = 1; 2572 for (SmallVector<DotDebugLocEntry, 4>::iterator 2573 I = DotDebugLocEntries.begin(), E = DotDebugLocEntries.end(); 2574 I != E; ++I, ++index) { 2575 DotDebugLocEntry &Entry = *I; 2576 if (Entry.isMerged()) continue; 2577 if (Entry.isEmpty()) { 2578 Asm->OutStreamer.EmitIntValue(0, Size, /*addrspace*/0); 2579 Asm->OutStreamer.EmitIntValue(0, Size, /*addrspace*/0); 2580 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("debug_loc", index)); 2581 } else { 2582 Asm->OutStreamer.EmitSymbolValue(Entry.Begin, Size, 0); 2583 Asm->OutStreamer.EmitSymbolValue(Entry.End, Size, 0); 2584 DIVariable DV(Entry.Variable); 2585 Asm->OutStreamer.AddComment("Loc expr size"); 2586 MCSymbol *begin = Asm->OutStreamer.getContext().CreateTempSymbol(); 2587 MCSymbol *end = Asm->OutStreamer.getContext().CreateTempSymbol(); 2588 Asm->EmitLabelDifference(end, begin, 2); 2589 Asm->OutStreamer.EmitLabel(begin); 2590 if (Entry.isInt()) { 2591 DIBasicType BTy(DV.getType()); 2592 if (BTy.Verify() && 2593 (BTy.getEncoding() == dwarf::DW_ATE_signed 2594 || BTy.getEncoding() == dwarf::DW_ATE_signed_char)) { 2595 Asm->OutStreamer.AddComment("DW_OP_consts"); 2596 Asm->EmitInt8(dwarf::DW_OP_consts); 2597 Asm->EmitSLEB128(Entry.getInt()); 2598 } else { 2599 Asm->OutStreamer.AddComment("DW_OP_constu"); 2600 Asm->EmitInt8(dwarf::DW_OP_constu); 2601 Asm->EmitULEB128(Entry.getInt()); 2602 } 2603 } else if (Entry.isLocation()) { 2604 if (!DV.hasComplexAddress()) 2605 // Regular entry. 2606 Asm->EmitDwarfRegOp(Entry.Loc); 2607 else { 2608 // Complex address entry. 2609 unsigned N = DV.getNumAddrElements(); 2610 unsigned i = 0; 2611 if (N >= 2 && DV.getAddrElement(0) == DIBuilder::OpPlus) { 2612 if (Entry.Loc.getOffset()) { 2613 i = 2; 2614 Asm->EmitDwarfRegOp(Entry.Loc); 2615 Asm->OutStreamer.AddComment("DW_OP_deref"); 2616 Asm->EmitInt8(dwarf::DW_OP_deref); 2617 Asm->OutStreamer.AddComment("DW_OP_plus_uconst"); 2618 Asm->EmitInt8(dwarf::DW_OP_plus_uconst); 2619 Asm->EmitSLEB128(DV.getAddrElement(1)); 2620 } else { 2621 // If first address element is OpPlus then emit 2622 // DW_OP_breg + Offset instead of DW_OP_reg + Offset. 2623 MachineLocation Loc(Entry.Loc.getReg(), DV.getAddrElement(1)); 2624 Asm->EmitDwarfRegOp(Loc); 2625 i = 2; 2626 } 2627 } else { 2628 Asm->EmitDwarfRegOp(Entry.Loc); 2629 } 2630 2631 // Emit remaining complex address elements. 2632 for (; i < N; ++i) { 2633 uint64_t Element = DV.getAddrElement(i); 2634 if (Element == DIBuilder::OpPlus) { 2635 Asm->EmitInt8(dwarf::DW_OP_plus_uconst); 2636 Asm->EmitULEB128(DV.getAddrElement(++i)); 2637 } else if (Element == DIBuilder::OpDeref) 2638 Asm->EmitInt8(dwarf::DW_OP_deref); 2639 else llvm_unreachable("unknown Opcode found in complex address"); 2640 } 2641 } 2642 } 2643 // else ... ignore constant fp. There is not any good way to 2644 // to represent them here in dwarf. 2645 Asm->OutStreamer.EmitLabel(end); 2646 } 2647 } 2648} 2649 2650/// EmitDebugARanges - Emit visible names into a debug aranges section. 2651/// 2652void DwarfDebug::EmitDebugARanges() { 2653 // Start the dwarf aranges section. 2654 Asm->OutStreamer.SwitchSection( 2655 Asm->getObjFileLowering().getDwarfARangesSection()); 2656} 2657 2658/// emitDebugRanges - Emit visible names into a debug ranges section. 2659/// 2660void DwarfDebug::emitDebugRanges() { 2661 // Start the dwarf ranges section. 2662 Asm->OutStreamer.SwitchSection( 2663 Asm->getObjFileLowering().getDwarfRangesSection()); 2664 unsigned char Size = Asm->getTargetData().getPointerSize(); 2665 for (SmallVector<const MCSymbol *, 8>::iterator 2666 I = DebugRangeSymbols.begin(), E = DebugRangeSymbols.end(); 2667 I != E; ++I) { 2668 if (*I) 2669 Asm->OutStreamer.EmitSymbolValue(const_cast<MCSymbol*>(*I), Size, 0); 2670 else 2671 Asm->OutStreamer.EmitIntValue(0, Size, /*addrspace*/0); 2672 } 2673} 2674 2675/// emitDebugMacInfo - Emit visible names into a debug macinfo section. 2676/// 2677void DwarfDebug::emitDebugMacInfo() { 2678 if (const MCSection *LineInfo = 2679 Asm->getObjFileLowering().getDwarfMacroInfoSection()) { 2680 // Start the dwarf macinfo section. 2681 Asm->OutStreamer.SwitchSection(LineInfo); 2682 } 2683} 2684 2685/// emitDebugInlineInfo - Emit inline info using following format. 2686/// Section Header: 2687/// 1. length of section 2688/// 2. Dwarf version number 2689/// 3. address size. 2690/// 2691/// Entries (one "entry" for each function that was inlined): 2692/// 2693/// 1. offset into __debug_str section for MIPS linkage name, if exists; 2694/// otherwise offset into __debug_str for regular function name. 2695/// 2. offset into __debug_str section for regular function name. 2696/// 3. an unsigned LEB128 number indicating the number of distinct inlining 2697/// instances for the function. 2698/// 2699/// The rest of the entry consists of a {die_offset, low_pc} pair for each 2700/// inlined instance; the die_offset points to the inlined_subroutine die in the 2701/// __debug_info section, and the low_pc is the starting address for the 2702/// inlining instance. 2703void DwarfDebug::emitDebugInlineInfo() { 2704 if (!Asm->MAI->doesDwarfUsesInlineInfoSection()) 2705 return; 2706 2707 if (!FirstCU) 2708 return; 2709 2710 Asm->OutStreamer.SwitchSection( 2711 Asm->getObjFileLowering().getDwarfDebugInlineSection()); 2712 2713 Asm->OutStreamer.AddComment("Length of Debug Inlined Information Entry"); 2714 Asm->EmitLabelDifference(Asm->GetTempSymbol("debug_inlined_end", 1), 2715 Asm->GetTempSymbol("debug_inlined_begin", 1), 4); 2716 2717 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("debug_inlined_begin", 1)); 2718 2719 Asm->OutStreamer.AddComment("Dwarf Version"); 2720 Asm->EmitInt16(dwarf::DWARF_VERSION); 2721 Asm->OutStreamer.AddComment("Address Size (in bytes)"); 2722 Asm->EmitInt8(Asm->getTargetData().getPointerSize()); 2723 2724 for (SmallVector<const MDNode *, 4>::iterator I = InlinedSPNodes.begin(), 2725 E = InlinedSPNodes.end(); I != E; ++I) { 2726 2727 const MDNode *Node = *I; 2728 DenseMap<const MDNode *, SmallVector<InlineInfoLabels, 4> >::iterator II 2729 = InlineInfo.find(Node); 2730 SmallVector<InlineInfoLabels, 4> &Labels = II->second; 2731 DISubprogram SP(Node); 2732 StringRef LName = SP.getLinkageName(); 2733 StringRef Name = SP.getName(); 2734 2735 Asm->OutStreamer.AddComment("MIPS linkage name"); 2736 if (LName.empty()) { 2737 Asm->OutStreamer.EmitBytes(Name, 0); 2738 Asm->OutStreamer.EmitIntValue(0, 1, 0); // nul terminator. 2739 } else 2740 Asm->EmitSectionOffset(getStringPoolEntry(getRealLinkageName(LName)), 2741 DwarfStrSectionSym); 2742 2743 Asm->OutStreamer.AddComment("Function name"); 2744 Asm->EmitSectionOffset(getStringPoolEntry(Name), DwarfStrSectionSym); 2745 Asm->EmitULEB128(Labels.size(), "Inline count"); 2746 2747 for (SmallVector<InlineInfoLabels, 4>::iterator LI = Labels.begin(), 2748 LE = Labels.end(); LI != LE; ++LI) { 2749 if (Asm->isVerbose()) Asm->OutStreamer.AddComment("DIE offset"); 2750 Asm->EmitInt32(LI->second->getOffset()); 2751 2752 if (Asm->isVerbose()) Asm->OutStreamer.AddComment("low_pc"); 2753 Asm->OutStreamer.EmitSymbolValue(LI->first, 2754 Asm->getTargetData().getPointerSize(),0); 2755 } 2756 } 2757 2758 Asm->OutStreamer.EmitLabel(Asm->GetTempSymbol("debug_inlined_end", 1)); 2759} 2760