DwarfDebug.cpp revision a53768e1e514ec9184b3e17c465b19f9334c1e5c
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#define DEBUG_TYPE "dwarfdebug" 14#include "DwarfDebug.h" 15#include "llvm/Module.h" 16#include "llvm/CodeGen/MachineFunction.h" 17#include "llvm/CodeGen/MachineModuleInfo.h" 18#include "llvm/MC/MCSection.h" 19#include "llvm/MC/MCStreamer.h" 20#include "llvm/MC/MCAsmInfo.h" 21#include "llvm/Target/TargetData.h" 22#include "llvm/Target/TargetFrameInfo.h" 23#include "llvm/Target/TargetLoweringObjectFile.h" 24#include "llvm/Target/TargetRegisterInfo.h" 25#include "llvm/ADT/StringExtras.h" 26#include "llvm/Support/Timer.h" 27#include "llvm/Support/Debug.h" 28#include "llvm/System/Path.h" 29using namespace llvm; 30 31static TimerGroup &getDwarfTimerGroup() { 32 static TimerGroup DwarfTimerGroup("Dwarf Debugging"); 33 return DwarfTimerGroup; 34} 35 36//===----------------------------------------------------------------------===// 37 38/// Configuration values for initial hash set sizes (log2). 39/// 40static const unsigned InitDiesSetSize = 9; // log2(512) 41static const unsigned InitAbbreviationsSetSize = 9; // log2(512) 42static const unsigned InitValuesSetSize = 9; // log2(512) 43 44namespace llvm { 45 46//===----------------------------------------------------------------------===// 47/// CompileUnit - This dwarf writer support class manages information associate 48/// with a source file. 49class VISIBILITY_HIDDEN CompileUnit { 50 /// ID - File identifier for source. 51 /// 52 unsigned ID; 53 54 /// Die - Compile unit debug information entry. 55 /// 56 DIE *Die; 57 58 /// GVToDieMap - Tracks the mapping of unit level debug informaton 59 /// variables to debug information entries. 60 /// FIXME : Rename GVToDieMap -> NodeToDieMap 61 std::map<MDNode *, DIE *> GVToDieMap; 62 63 /// GVToDIEEntryMap - Tracks the mapping of unit level debug informaton 64 /// descriptors to debug information entries using a DIEEntry proxy. 65 /// FIXME : Rename 66 std::map<MDNode *, DIEEntry *> GVToDIEEntryMap; 67 68 /// Globals - A map of globally visible named entities for this unit. 69 /// 70 StringMap<DIE*> Globals; 71 72 /// DiesSet - Used to uniquely define dies within the compile unit. 73 /// 74 FoldingSet<DIE> DiesSet; 75public: 76 CompileUnit(unsigned I, DIE *D) 77 : ID(I), Die(D), DiesSet(InitDiesSetSize) {} 78 ~CompileUnit() { delete Die; } 79 80 // Accessors. 81 unsigned getID() const { return ID; } 82 DIE* getDie() const { return Die; } 83 StringMap<DIE*> &getGlobals() { return Globals; } 84 85 /// hasContent - Return true if this compile unit has something to write out. 86 /// 87 bool hasContent() const { return !Die->getChildren().empty(); } 88 89 /// AddGlobal - Add a new global entity to the compile unit. 90 /// 91 void AddGlobal(const std::string &Name, DIE *Die) { Globals[Name] = Die; } 92 93 /// getDieMapSlotFor - Returns the debug information entry map slot for the 94 /// specified debug variable. 95 DIE *&getDieMapSlotFor(MDNode *N) { return GVToDieMap[N]; } 96 97 /// getDIEEntrySlotFor - Returns the debug information entry proxy slot for 98 /// the specified debug variable. 99 DIEEntry *&getDIEEntrySlotFor(MDNode *N) { 100 return GVToDIEEntryMap[N]; 101 } 102 103 /// AddDie - Adds or interns the DIE to the compile unit. 104 /// 105 DIE *AddDie(DIE &Buffer) { 106 FoldingSetNodeID ID; 107 Buffer.Profile(ID); 108 void *Where; 109 DIE *Die = DiesSet.FindNodeOrInsertPos(ID, Where); 110 111 if (!Die) { 112 Die = new DIE(Buffer); 113 DiesSet.InsertNode(Die, Where); 114 this->Die->AddChild(Die); 115 Buffer.Detach(); 116 } 117 118 return Die; 119 } 120}; 121 122//===----------------------------------------------------------------------===// 123/// DbgVariable - This class is used to track local variable information. 124/// 125class VISIBILITY_HIDDEN DbgVariable { 126 DIVariable Var; // Variable Descriptor. 127 unsigned FrameIndex; // Variable frame index. 128 bool InlinedFnVar; // Variable for an inlined function. 129public: 130 DbgVariable(DIVariable V, unsigned I, bool IFV) 131 : Var(V), FrameIndex(I), InlinedFnVar(IFV) {} 132 133 // Accessors. 134 DIVariable getVariable() const { return Var; } 135 unsigned getFrameIndex() const { return FrameIndex; } 136 bool isInlinedFnVar() const { return InlinedFnVar; } 137}; 138 139//===----------------------------------------------------------------------===// 140/// DbgScope - This class is used to track scope information. 141/// 142class DbgConcreteScope; 143class VISIBILITY_HIDDEN DbgScope { 144 DbgScope *Parent; // Parent to this scope. 145 DIDescriptor Desc; // Debug info descriptor for scope. 146 // Either subprogram or block. 147 unsigned StartLabelID; // Label ID of the beginning of scope. 148 unsigned EndLabelID; // Label ID of the end of scope. 149 SmallVector<DbgScope *, 4> Scopes; // Scopes defined in scope. 150 SmallVector<DbgVariable *, 8> Variables;// Variables declared in scope. 151 SmallVector<DbgConcreteScope *, 8> ConcreteInsts;// Concrete insts of funcs. 152 153 // Private state for dump() 154 mutable unsigned IndentLevel; 155public: 156 DbgScope(DbgScope *P, DIDescriptor D) 157 : Parent(P), Desc(D), StartLabelID(0), EndLabelID(0), IndentLevel(0) {} 158 virtual ~DbgScope(); 159 160 // Accessors. 161 DbgScope *getParent() const { return Parent; } 162 DIDescriptor getDesc() const { return Desc; } 163 unsigned getStartLabelID() const { return StartLabelID; } 164 unsigned getEndLabelID() const { return EndLabelID; } 165 SmallVector<DbgScope *, 4> &getScopes() { return Scopes; } 166 SmallVector<DbgVariable *, 8> &getVariables() { return Variables; } 167 SmallVector<DbgConcreteScope*,8> &getConcreteInsts() { return ConcreteInsts; } 168 void setStartLabelID(unsigned S) { StartLabelID = S; } 169 void setEndLabelID(unsigned E) { EndLabelID = E; } 170 171 /// AddScope - Add a scope to the scope. 172 /// 173 void AddScope(DbgScope *S) { Scopes.push_back(S); } 174 175 /// AddVariable - Add a variable to the scope. 176 /// 177 void AddVariable(DbgVariable *V) { Variables.push_back(V); } 178 179 /// AddConcreteInst - Add a concrete instance to the scope. 180 /// 181 void AddConcreteInst(DbgConcreteScope *C) { ConcreteInsts.push_back(C); } 182 183#ifndef NDEBUG 184 void dump() const; 185#endif 186}; 187 188#ifndef NDEBUG 189void DbgScope::dump() const { 190 raw_ostream &err = errs(); 191 err.indent(IndentLevel); 192 Desc.dump(); 193 err << " [" << StartLabelID << ", " << EndLabelID << "]\n"; 194 195 IndentLevel += 2; 196 197 for (unsigned i = 0, e = Scopes.size(); i != e; ++i) 198 if (Scopes[i] != this) 199 Scopes[i]->dump(); 200 201 IndentLevel -= 2; 202} 203#endif 204 205//===----------------------------------------------------------------------===// 206/// DbgConcreteScope - This class is used to track a scope that holds concrete 207/// instance information. 208/// 209class VISIBILITY_HIDDEN DbgConcreteScope : public DbgScope { 210 CompileUnit *Unit; 211 DIE *Die; // Debug info for this concrete scope. 212public: 213 DbgConcreteScope(DIDescriptor D) : DbgScope(NULL, D) {} 214 215 // Accessors. 216 DIE *getDie() const { return Die; } 217 void setDie(DIE *D) { Die = D; } 218}; 219 220DbgScope::~DbgScope() { 221 for (unsigned i = 0, N = Scopes.size(); i < N; ++i) 222 delete Scopes[i]; 223 for (unsigned j = 0, M = Variables.size(); j < M; ++j) 224 delete Variables[j]; 225 for (unsigned k = 0, O = ConcreteInsts.size(); k < O; ++k) 226 delete ConcreteInsts[k]; 227} 228 229} // end llvm namespace 230 231DwarfDebug::DwarfDebug(raw_ostream &OS, AsmPrinter *A, const MCAsmInfo *T) 232 : Dwarf(OS, A, T, "dbg"), ModuleCU(0), 233 AbbreviationsSet(InitAbbreviationsSetSize), Abbreviations(), 234 ValuesSet(InitValuesSetSize), Values(), StringPool(), 235 SectionSourceLines(), didInitial(false), shouldEmit(false), 236 FunctionDbgScope(0), DebugTimer(0) { 237 if (TimePassesIsEnabled) 238 DebugTimer = new Timer("Dwarf Debug Writer", 239 getDwarfTimerGroup()); 240} 241DwarfDebug::~DwarfDebug() { 242 for (unsigned j = 0, M = Values.size(); j < M; ++j) 243 delete Values[j]; 244 245 for (DenseMap<const MDNode *, DbgScope *>::iterator 246 I = AbstractInstanceRootMap.begin(), 247 E = AbstractInstanceRootMap.end(); I != E;++I) 248 delete I->second; 249 250 delete DebugTimer; 251} 252 253/// AssignAbbrevNumber - Define a unique number for the abbreviation. 254/// 255void DwarfDebug::AssignAbbrevNumber(DIEAbbrev &Abbrev) { 256 // Profile the node so that we can make it unique. 257 FoldingSetNodeID ID; 258 Abbrev.Profile(ID); 259 260 // Check the set for priors. 261 DIEAbbrev *InSet = AbbreviationsSet.GetOrInsertNode(&Abbrev); 262 263 // If it's newly added. 264 if (InSet == &Abbrev) { 265 // Add to abbreviation list. 266 Abbreviations.push_back(&Abbrev); 267 268 // Assign the vector position + 1 as its number. 269 Abbrev.setNumber(Abbreviations.size()); 270 } else { 271 // Assign existing abbreviation number. 272 Abbrev.setNumber(InSet->getNumber()); 273 } 274} 275 276/// CreateDIEEntry - Creates a new DIEEntry to be a proxy for a debug 277/// information entry. 278DIEEntry *DwarfDebug::CreateDIEEntry(DIE *Entry) { 279 DIEEntry *Value; 280 281 if (Entry) { 282 FoldingSetNodeID ID; 283 DIEEntry::Profile(ID, Entry); 284 void *Where; 285 Value = static_cast<DIEEntry *>(ValuesSet.FindNodeOrInsertPos(ID, Where)); 286 287 if (Value) return Value; 288 289 Value = new DIEEntry(Entry); 290 ValuesSet.InsertNode(Value, Where); 291 } else { 292 Value = new DIEEntry(Entry); 293 } 294 295 Values.push_back(Value); 296 return Value; 297} 298 299/// SetDIEEntry - Set a DIEEntry once the debug information entry is defined. 300/// 301void DwarfDebug::SetDIEEntry(DIEEntry *Value, DIE *Entry) { 302 Value->setEntry(Entry); 303 304 // Add to values set if not already there. If it is, we merely have a 305 // duplicate in the values list (no harm.) 306 ValuesSet.GetOrInsertNode(Value); 307} 308 309/// AddUInt - Add an unsigned integer attribute data and value. 310/// 311void DwarfDebug::AddUInt(DIE *Die, unsigned Attribute, 312 unsigned Form, uint64_t Integer) { 313 if (!Form) Form = DIEInteger::BestForm(false, Integer); 314 315 FoldingSetNodeID ID; 316 DIEInteger::Profile(ID, Integer); 317 void *Where; 318 DIEValue *Value = ValuesSet.FindNodeOrInsertPos(ID, Where); 319 320 if (!Value) { 321 Value = new DIEInteger(Integer); 322 ValuesSet.InsertNode(Value, Where); 323 Values.push_back(Value); 324 } 325 326 Die->AddValue(Attribute, Form, Value); 327} 328 329/// AddSInt - Add an signed integer attribute data and value. 330/// 331void DwarfDebug::AddSInt(DIE *Die, unsigned Attribute, 332 unsigned Form, int64_t Integer) { 333 if (!Form) Form = DIEInteger::BestForm(true, Integer); 334 335 FoldingSetNodeID ID; 336 DIEInteger::Profile(ID, (uint64_t)Integer); 337 void *Where; 338 DIEValue *Value = ValuesSet.FindNodeOrInsertPos(ID, Where); 339 340 if (!Value) { 341 Value = new DIEInteger(Integer); 342 ValuesSet.InsertNode(Value, Where); 343 Values.push_back(Value); 344 } 345 346 Die->AddValue(Attribute, Form, Value); 347} 348 349/// AddString - Add a string attribute data and value. 350/// 351void DwarfDebug::AddString(DIE *Die, unsigned Attribute, unsigned Form, 352 const std::string &String) { 353 FoldingSetNodeID ID; 354 DIEString::Profile(ID, String); 355 void *Where; 356 DIEValue *Value = ValuesSet.FindNodeOrInsertPos(ID, Where); 357 358 if (!Value) { 359 Value = new DIEString(String); 360 ValuesSet.InsertNode(Value, Where); 361 Values.push_back(Value); 362 } 363 364 Die->AddValue(Attribute, Form, Value); 365} 366 367/// AddLabel - Add a Dwarf label attribute data and value. 368/// 369void DwarfDebug::AddLabel(DIE *Die, unsigned Attribute, unsigned Form, 370 const DWLabel &Label) { 371 FoldingSetNodeID ID; 372 DIEDwarfLabel::Profile(ID, Label); 373 void *Where; 374 DIEValue *Value = ValuesSet.FindNodeOrInsertPos(ID, Where); 375 376 if (!Value) { 377 Value = new DIEDwarfLabel(Label); 378 ValuesSet.InsertNode(Value, Where); 379 Values.push_back(Value); 380 } 381 382 Die->AddValue(Attribute, Form, Value); 383} 384 385/// AddObjectLabel - Add an non-Dwarf label attribute data and value. 386/// 387void DwarfDebug::AddObjectLabel(DIE *Die, unsigned Attribute, unsigned Form, 388 const std::string &Label) { 389 FoldingSetNodeID ID; 390 DIEObjectLabel::Profile(ID, Label); 391 void *Where; 392 DIEValue *Value = ValuesSet.FindNodeOrInsertPos(ID, Where); 393 394 if (!Value) { 395 Value = new DIEObjectLabel(Label); 396 ValuesSet.InsertNode(Value, Where); 397 Values.push_back(Value); 398 } 399 400 Die->AddValue(Attribute, Form, Value); 401} 402 403/// AddSectionOffset - Add a section offset label attribute data and value. 404/// 405void DwarfDebug::AddSectionOffset(DIE *Die, unsigned Attribute, unsigned Form, 406 const DWLabel &Label, const DWLabel &Section, 407 bool isEH, bool useSet) { 408 FoldingSetNodeID ID; 409 DIESectionOffset::Profile(ID, Label, Section); 410 void *Where; 411 DIEValue *Value = ValuesSet.FindNodeOrInsertPos(ID, Where); 412 413 if (!Value) { 414 Value = new DIESectionOffset(Label, Section, isEH, useSet); 415 ValuesSet.InsertNode(Value, Where); 416 Values.push_back(Value); 417 } 418 419 Die->AddValue(Attribute, Form, Value); 420} 421 422/// AddDelta - Add a label delta attribute data and value. 423/// 424void DwarfDebug::AddDelta(DIE *Die, unsigned Attribute, unsigned Form, 425 const DWLabel &Hi, const DWLabel &Lo) { 426 FoldingSetNodeID ID; 427 DIEDelta::Profile(ID, Hi, Lo); 428 void *Where; 429 DIEValue *Value = ValuesSet.FindNodeOrInsertPos(ID, Where); 430 431 if (!Value) { 432 Value = new DIEDelta(Hi, Lo); 433 ValuesSet.InsertNode(Value, Where); 434 Values.push_back(Value); 435 } 436 437 Die->AddValue(Attribute, Form, Value); 438} 439 440/// AddBlock - Add block data. 441/// 442void DwarfDebug::AddBlock(DIE *Die, unsigned Attribute, unsigned Form, 443 DIEBlock *Block) { 444 Block->ComputeSize(TD); 445 FoldingSetNodeID ID; 446 Block->Profile(ID); 447 void *Where; 448 DIEValue *Value = ValuesSet.FindNodeOrInsertPos(ID, Where); 449 450 if (!Value) { 451 Value = Block; 452 ValuesSet.InsertNode(Value, Where); 453 Values.push_back(Value); 454 } else { 455 // Already exists, reuse the previous one. 456 delete Block; 457 Block = cast<DIEBlock>(Value); 458 } 459 460 Die->AddValue(Attribute, Block->BestForm(), Value); 461} 462 463/// AddSourceLine - Add location information to specified debug information 464/// entry. 465void DwarfDebug::AddSourceLine(DIE *Die, const DIVariable *V) { 466 // If there is no compile unit specified, don't add a line #. 467 if (V->getCompileUnit().isNull()) 468 return; 469 470 unsigned Line = V->getLineNumber(); 471 unsigned FileID = FindCompileUnit(V->getCompileUnit()).getID(); 472 assert(FileID && "Invalid file id"); 473 AddUInt(Die, dwarf::DW_AT_decl_file, 0, FileID); 474 AddUInt(Die, dwarf::DW_AT_decl_line, 0, Line); 475} 476 477/// AddSourceLine - Add location information to specified debug information 478/// entry. 479void DwarfDebug::AddSourceLine(DIE *Die, const DIGlobal *G) { 480 // If there is no compile unit specified, don't add a line #. 481 if (G->getCompileUnit().isNull()) 482 return; 483 484 unsigned Line = G->getLineNumber(); 485 unsigned FileID = FindCompileUnit(G->getCompileUnit()).getID(); 486 assert(FileID && "Invalid file id"); 487 AddUInt(Die, dwarf::DW_AT_decl_file, 0, FileID); 488 AddUInt(Die, dwarf::DW_AT_decl_line, 0, Line); 489} 490void DwarfDebug::AddSourceLine(DIE *Die, const DIType *Ty) { 491 // If there is no compile unit specified, don't add a line #. 492 DICompileUnit CU = Ty->getCompileUnit(); 493 if (CU.isNull()) 494 return; 495 496 unsigned Line = Ty->getLineNumber(); 497 unsigned FileID = FindCompileUnit(CU).getID(); 498 assert(FileID && "Invalid file id"); 499 AddUInt(Die, dwarf::DW_AT_decl_file, 0, FileID); 500 AddUInt(Die, dwarf::DW_AT_decl_line, 0, Line); 501} 502 503/* Byref variables, in Blocks, are declared by the programmer as 504 "SomeType VarName;", but the compiler creates a 505 __Block_byref_x_VarName struct, and gives the variable VarName 506 either the struct, or a pointer to the struct, as its type. This 507 is necessary for various behind-the-scenes things the compiler 508 needs to do with by-reference variables in blocks. 509 510 However, as far as the original *programmer* is concerned, the 511 variable should still have type 'SomeType', as originally declared. 512 513 The following function dives into the __Block_byref_x_VarName 514 struct to find the original type of the variable. This will be 515 passed back to the code generating the type for the Debug 516 Information Entry for the variable 'VarName'. 'VarName' will then 517 have the original type 'SomeType' in its debug information. 518 519 The original type 'SomeType' will be the type of the field named 520 'VarName' inside the __Block_byref_x_VarName struct. 521 522 NOTE: In order for this to not completely fail on the debugger 523 side, the Debug Information Entry for the variable VarName needs to 524 have a DW_AT_location that tells the debugger how to unwind through 525 the pointers and __Block_byref_x_VarName struct to find the actual 526 value of the variable. The function AddBlockByrefType does this. */ 527 528/// Find the type the programmer originally declared the variable to be 529/// and return that type. 530/// 531DIType DwarfDebug::GetBlockByrefType(DIType Ty, std::string Name) { 532 533 DIType subType = Ty; 534 unsigned tag = Ty.getTag(); 535 536 if (tag == dwarf::DW_TAG_pointer_type) { 537 DIDerivedType DTy = DIDerivedType (Ty.getNode()); 538 subType = DTy.getTypeDerivedFrom(); 539 } 540 541 DICompositeType blockStruct = DICompositeType(subType.getNode()); 542 543 DIArray Elements = blockStruct.getTypeArray(); 544 545 if (Elements.isNull()) 546 return Ty; 547 548 for (unsigned i = 0, N = Elements.getNumElements(); i < N; ++i) { 549 DIDescriptor Element = Elements.getElement(i); 550 DIDerivedType DT = DIDerivedType(Element.getNode()); 551 std::string Name2; 552 DT.getName(Name2); 553 if (Name == Name2) 554 return (DT.getTypeDerivedFrom()); 555 } 556 557 return Ty; 558} 559 560/* Byref variables, in Blocks, are declared by the programmer as "SomeType 561 VarName;", but the compiler creates a __Block_byref_x_VarName struct, and 562 gives the variable VarName either the struct, or a pointer to the struct, as 563 its type. This is necessary for various behind-the-scenes things the 564 compiler needs to do with by-reference variables in Blocks. 565 566 However, as far as the original *programmer* is concerned, the variable 567 should still have type 'SomeType', as originally declared. 568 569 The function GetBlockByrefType dives into the __Block_byref_x_VarName 570 struct to find the original type of the variable, which is then assigned to 571 the variable's Debug Information Entry as its real type. So far, so good. 572 However now the debugger will expect the variable VarName to have the type 573 SomeType. So we need the location attribute for the variable to be an 574 expression that explains to the debugger how to navigate through the 575 pointers and struct to find the actual variable of type SomeType. 576 577 The following function does just that. We start by getting 578 the "normal" location for the variable. This will be the location 579 of either the struct __Block_byref_x_VarName or the pointer to the 580 struct __Block_byref_x_VarName. 581 582 The struct will look something like: 583 584 struct __Block_byref_x_VarName { 585 ... <various fields> 586 struct __Block_byref_x_VarName *forwarding; 587 ... <various other fields> 588 SomeType VarName; 589 ... <maybe more fields> 590 }; 591 592 If we are given the struct directly (as our starting point) we 593 need to tell the debugger to: 594 595 1). Add the offset of the forwarding field. 596 597 2). Follow that pointer to get the the real __Block_byref_x_VarName 598 struct to use (the real one may have been copied onto the heap). 599 600 3). Add the offset for the field VarName, to find the actual variable. 601 602 If we started with a pointer to the struct, then we need to 603 dereference that pointer first, before the other steps. 604 Translating this into DWARF ops, we will need to append the following 605 to the current location description for the variable: 606 607 DW_OP_deref -- optional, if we start with a pointer 608 DW_OP_plus_uconst <forward_fld_offset> 609 DW_OP_deref 610 DW_OP_plus_uconst <varName_fld_offset> 611 612 That is what this function does. */ 613 614/// AddBlockByrefAddress - Start with the address based on the location 615/// provided, and generate the DWARF information necessary to find the 616/// actual Block variable (navigating the Block struct) based on the 617/// starting location. Add the DWARF information to the die. For 618/// more information, read large comment just above here. 619/// 620void DwarfDebug::AddBlockByrefAddress(DbgVariable *&DV, DIE *Die, 621 unsigned Attribute, 622 const MachineLocation &Location) { 623 const DIVariable &VD = DV->getVariable(); 624 DIType Ty = VD.getType(); 625 DIType TmpTy = Ty; 626 unsigned Tag = Ty.getTag(); 627 bool isPointer = false; 628 629 std::string varName; 630 VD.getName(varName); 631 632 if (Tag == dwarf::DW_TAG_pointer_type) { 633 DIDerivedType DTy = DIDerivedType (Ty.getNode()); 634 TmpTy = DTy.getTypeDerivedFrom(); 635 isPointer = true; 636 } 637 638 DICompositeType blockStruct = DICompositeType(TmpTy.getNode()); 639 640 std::string typeName; 641 blockStruct.getName(typeName); 642 643 assert(typeName.find ("__Block_byref_") == 0 644 && "Attempting to get Block location of non-Block variable!"); 645 646 // Find the __forwarding field and the variable field in the __Block_byref 647 // struct. 648 649 DIArray Fields = blockStruct.getTypeArray(); 650 DIDescriptor varField = DIDescriptor(); 651 DIDescriptor forwardingField = DIDescriptor(); 652 653 654 for (unsigned i = 0, N = Fields.getNumElements(); i < N; ++i) { 655 DIDescriptor Element = Fields.getElement(i); 656 DIDerivedType DT = DIDerivedType(Element.getNode()); 657 std::string fieldName; 658 DT.getName(fieldName); 659 if (fieldName == "__forwarding") 660 forwardingField = Element; 661 else if (fieldName == varName) 662 varField = Element; 663 } 664 665 assert (!varField.isNull() && "Can't find byref variable in Block struct"); 666 assert (!forwardingField.isNull() 667 && "Can't find forwarding field in Block struct"); 668 669 // Get the offsets for the forwarding field and the variable field. 670 671 unsigned int forwardingFieldOffset = 672 DIDerivedType(forwardingField.getNode()).getOffsetInBits() >> 3; 673 unsigned int varFieldOffset = 674 DIDerivedType(varField.getNode()).getOffsetInBits() >> 3; 675 676 // Decode the original location, and use that as the start of the 677 // byref variable's location. 678 679 unsigned Reg = RI->getDwarfRegNum(Location.getReg(), false); 680 DIEBlock *Block = new DIEBlock(); 681 682 if (Location.isReg()) { 683 if (Reg < 32) 684 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_reg0 + Reg); 685 else { 686 Reg = Reg - dwarf::DW_OP_reg0; 687 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_breg0 + Reg); 688 AddUInt(Block, 0, dwarf::DW_FORM_udata, Reg); 689 } 690 } else { 691 if (Reg < 32) 692 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_breg0 + Reg); 693 else { 694 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_bregx); 695 AddUInt(Block, 0, dwarf::DW_FORM_udata, Reg); 696 } 697 698 AddUInt(Block, 0, dwarf::DW_FORM_sdata, Location.getOffset()); 699 } 700 701 // If we started with a pointer to the__Block_byref... struct, then 702 // the first thing we need to do is dereference the pointer (DW_OP_deref). 703 704 if (isPointer) 705 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_deref); 706 707 // Next add the offset for the '__forwarding' field: 708 // DW_OP_plus_uconst ForwardingFieldOffset. Note there's no point in 709 // adding the offset if it's 0. 710 711 if (forwardingFieldOffset > 0) { 712 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_plus_uconst); 713 AddUInt(Block, 0, dwarf::DW_FORM_udata, forwardingFieldOffset); 714 } 715 716 // Now dereference the __forwarding field to get to the real __Block_byref 717 // struct: DW_OP_deref. 718 719 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_deref); 720 721 // Now that we've got the real __Block_byref... struct, add the offset 722 // for the variable's field to get to the location of the actual variable: 723 // DW_OP_plus_uconst varFieldOffset. Again, don't add if it's 0. 724 725 if (varFieldOffset > 0) { 726 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_plus_uconst); 727 AddUInt(Block, 0, dwarf::DW_FORM_udata, varFieldOffset); 728 } 729 730 // Now attach the location information to the DIE. 731 732 AddBlock(Die, Attribute, 0, Block); 733} 734 735/// AddAddress - Add an address attribute to a die based on the location 736/// provided. 737void DwarfDebug::AddAddress(DIE *Die, unsigned Attribute, 738 const MachineLocation &Location) { 739 unsigned Reg = RI->getDwarfRegNum(Location.getReg(), false); 740 DIEBlock *Block = new DIEBlock(); 741 742 if (Location.isReg()) { 743 if (Reg < 32) { 744 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_reg0 + Reg); 745 } else { 746 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_regx); 747 AddUInt(Block, 0, dwarf::DW_FORM_udata, Reg); 748 } 749 } else { 750 if (Reg < 32) { 751 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_breg0 + Reg); 752 } else { 753 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_bregx); 754 AddUInt(Block, 0, dwarf::DW_FORM_udata, Reg); 755 } 756 757 AddUInt(Block, 0, dwarf::DW_FORM_sdata, Location.getOffset()); 758 } 759 760 AddBlock(Die, Attribute, 0, Block); 761} 762 763/// AddType - Add a new type attribute to the specified entity. 764void DwarfDebug::AddType(CompileUnit *DW_Unit, DIE *Entity, DIType Ty) { 765 if (Ty.isNull()) 766 return; 767 768 // Check for pre-existence. 769 DIEEntry *&Slot = DW_Unit->getDIEEntrySlotFor(Ty.getNode()); 770 771 // If it exists then use the existing value. 772 if (Slot) { 773 Entity->AddValue(dwarf::DW_AT_type, dwarf::DW_FORM_ref4, Slot); 774 return; 775 } 776 777 // Set up proxy. 778 Slot = CreateDIEEntry(); 779 780 // Construct type. 781 DIE Buffer(dwarf::DW_TAG_base_type); 782 if (Ty.isBasicType()) 783 ConstructTypeDIE(DW_Unit, Buffer, DIBasicType(Ty.getNode())); 784 else if (Ty.isCompositeType()) 785 ConstructTypeDIE(DW_Unit, Buffer, DICompositeType(Ty.getNode())); 786 else { 787 assert(Ty.isDerivedType() && "Unknown kind of DIType"); 788 ConstructTypeDIE(DW_Unit, Buffer, DIDerivedType(Ty.getNode())); 789 790 } 791 792 // Add debug information entry to entity and appropriate context. 793 DIE *Die = NULL; 794 DIDescriptor Context = Ty.getContext(); 795 if (!Context.isNull()) 796 Die = DW_Unit->getDieMapSlotFor(Context.getNode()); 797 798 if (Die) { 799 DIE *Child = new DIE(Buffer); 800 Die->AddChild(Child); 801 Buffer.Detach(); 802 SetDIEEntry(Slot, Child); 803 } else { 804 Die = DW_Unit->AddDie(Buffer); 805 SetDIEEntry(Slot, Die); 806 } 807 808 Entity->AddValue(dwarf::DW_AT_type, dwarf::DW_FORM_ref4, Slot); 809} 810 811/// ConstructTypeDIE - Construct basic type die from DIBasicType. 812void DwarfDebug::ConstructTypeDIE(CompileUnit *DW_Unit, DIE &Buffer, 813 DIBasicType BTy) { 814 // Get core information. 815 std::string Name; 816 BTy.getName(Name); 817 Buffer.setTag(dwarf::DW_TAG_base_type); 818 AddUInt(&Buffer, dwarf::DW_AT_encoding, dwarf::DW_FORM_data1, 819 BTy.getEncoding()); 820 821 // Add name if not anonymous or intermediate type. 822 if (!Name.empty()) 823 AddString(&Buffer, dwarf::DW_AT_name, dwarf::DW_FORM_string, Name); 824 uint64_t Size = BTy.getSizeInBits() >> 3; 825 AddUInt(&Buffer, dwarf::DW_AT_byte_size, 0, Size); 826} 827 828/// ConstructTypeDIE - Construct derived type die from DIDerivedType. 829void DwarfDebug::ConstructTypeDIE(CompileUnit *DW_Unit, DIE &Buffer, 830 DIDerivedType DTy) { 831 // Get core information. 832 std::string Name; 833 DTy.getName(Name); 834 uint64_t Size = DTy.getSizeInBits() >> 3; 835 unsigned Tag = DTy.getTag(); 836 837 // FIXME - Workaround for templates. 838 if (Tag == dwarf::DW_TAG_inheritance) Tag = dwarf::DW_TAG_reference_type; 839 840 Buffer.setTag(Tag); 841 842 // Map to main type, void will not have a type. 843 DIType FromTy = DTy.getTypeDerivedFrom(); 844 AddType(DW_Unit, &Buffer, FromTy); 845 846 // Add name if not anonymous or intermediate type. 847 if (!Name.empty()) 848 AddString(&Buffer, dwarf::DW_AT_name, dwarf::DW_FORM_string, Name); 849 850 // Add size if non-zero (derived types might be zero-sized.) 851 if (Size) 852 AddUInt(&Buffer, dwarf::DW_AT_byte_size, 0, Size); 853 854 // Add source line info if available and TyDesc is not a forward declaration. 855 if (!DTy.isForwardDecl()) 856 AddSourceLine(&Buffer, &DTy); 857} 858 859/// ConstructTypeDIE - Construct type DIE from DICompositeType. 860void DwarfDebug::ConstructTypeDIE(CompileUnit *DW_Unit, DIE &Buffer, 861 DICompositeType CTy) { 862 // Get core information. 863 std::string Name; 864 CTy.getName(Name); 865 866 uint64_t Size = CTy.getSizeInBits() >> 3; 867 unsigned Tag = CTy.getTag(); 868 Buffer.setTag(Tag); 869 870 switch (Tag) { 871 case dwarf::DW_TAG_vector_type: 872 case dwarf::DW_TAG_array_type: 873 ConstructArrayTypeDIE(DW_Unit, Buffer, &CTy); 874 break; 875 case dwarf::DW_TAG_enumeration_type: { 876 DIArray Elements = CTy.getTypeArray(); 877 878 // Add enumerators to enumeration type. 879 for (unsigned i = 0, N = Elements.getNumElements(); i < N; ++i) { 880 DIE *ElemDie = NULL; 881 DIEnumerator Enum(Elements.getElement(i).getNode()); 882 ElemDie = ConstructEnumTypeDIE(DW_Unit, &Enum); 883 Buffer.AddChild(ElemDie); 884 } 885 } 886 break; 887 case dwarf::DW_TAG_subroutine_type: { 888 // Add return type. 889 DIArray Elements = CTy.getTypeArray(); 890 DIDescriptor RTy = Elements.getElement(0); 891 AddType(DW_Unit, &Buffer, DIType(RTy.getNode())); 892 893 // Add prototype flag. 894 AddUInt(&Buffer, dwarf::DW_AT_prototyped, dwarf::DW_FORM_flag, 1); 895 896 // Add arguments. 897 for (unsigned i = 1, N = Elements.getNumElements(); i < N; ++i) { 898 DIE *Arg = new DIE(dwarf::DW_TAG_formal_parameter); 899 DIDescriptor Ty = Elements.getElement(i); 900 AddType(DW_Unit, Arg, DIType(Ty.getNode())); 901 Buffer.AddChild(Arg); 902 } 903 } 904 break; 905 case dwarf::DW_TAG_structure_type: 906 case dwarf::DW_TAG_union_type: 907 case dwarf::DW_TAG_class_type: { 908 // Add elements to structure type. 909 DIArray Elements = CTy.getTypeArray(); 910 911 // A forward struct declared type may not have elements available. 912 if (Elements.isNull()) 913 break; 914 915 // Add elements to structure type. 916 for (unsigned i = 0, N = Elements.getNumElements(); i < N; ++i) { 917 DIDescriptor Element = Elements.getElement(i); 918 if (Element.isNull()) 919 continue; 920 DIE *ElemDie = NULL; 921 if (Element.getTag() == dwarf::DW_TAG_subprogram) 922 ElemDie = CreateSubprogramDIE(DW_Unit, 923 DISubprogram(Element.getNode())); 924 else 925 ElemDie = CreateMemberDIE(DW_Unit, 926 DIDerivedType(Element.getNode())); 927 Buffer.AddChild(ElemDie); 928 } 929 930 if (CTy.isAppleBlockExtension()) 931 AddUInt(&Buffer, dwarf::DW_AT_APPLE_block, dwarf::DW_FORM_flag, 1); 932 933 unsigned RLang = CTy.getRunTimeLang(); 934 if (RLang) 935 AddUInt(&Buffer, dwarf::DW_AT_APPLE_runtime_class, 936 dwarf::DW_FORM_data1, RLang); 937 break; 938 } 939 default: 940 break; 941 } 942 943 // Add name if not anonymous or intermediate type. 944 if (!Name.empty()) 945 AddString(&Buffer, dwarf::DW_AT_name, dwarf::DW_FORM_string, Name); 946 947 if (Tag == dwarf::DW_TAG_enumeration_type || 948 Tag == dwarf::DW_TAG_structure_type || Tag == dwarf::DW_TAG_union_type) { 949 // Add size if non-zero (derived types might be zero-sized.) 950 if (Size) 951 AddUInt(&Buffer, dwarf::DW_AT_byte_size, 0, Size); 952 else { 953 // Add zero size if it is not a forward declaration. 954 if (CTy.isForwardDecl()) 955 AddUInt(&Buffer, dwarf::DW_AT_declaration, dwarf::DW_FORM_flag, 1); 956 else 957 AddUInt(&Buffer, dwarf::DW_AT_byte_size, 0, 0); 958 } 959 960 // Add source line info if available. 961 if (!CTy.isForwardDecl()) 962 AddSourceLine(&Buffer, &CTy); 963 } 964} 965 966/// ConstructSubrangeDIE - Construct subrange DIE from DISubrange. 967void DwarfDebug::ConstructSubrangeDIE(DIE &Buffer, DISubrange SR, DIE *IndexTy){ 968 int64_t L = SR.getLo(); 969 int64_t H = SR.getHi(); 970 DIE *DW_Subrange = new DIE(dwarf::DW_TAG_subrange_type); 971 972 AddDIEEntry(DW_Subrange, dwarf::DW_AT_type, dwarf::DW_FORM_ref4, IndexTy); 973 if (L) 974 AddSInt(DW_Subrange, dwarf::DW_AT_lower_bound, 0, L); 975 if (H) 976 AddSInt(DW_Subrange, dwarf::DW_AT_upper_bound, 0, H); 977 978 Buffer.AddChild(DW_Subrange); 979} 980 981/// ConstructArrayTypeDIE - Construct array type DIE from DICompositeType. 982void DwarfDebug::ConstructArrayTypeDIE(CompileUnit *DW_Unit, DIE &Buffer, 983 DICompositeType *CTy) { 984 Buffer.setTag(dwarf::DW_TAG_array_type); 985 if (CTy->getTag() == dwarf::DW_TAG_vector_type) 986 AddUInt(&Buffer, dwarf::DW_AT_GNU_vector, dwarf::DW_FORM_flag, 1); 987 988 // Emit derived type. 989 AddType(DW_Unit, &Buffer, CTy->getTypeDerivedFrom()); 990 DIArray Elements = CTy->getTypeArray(); 991 992 // Construct an anonymous type for index type. 993 DIE IdxBuffer(dwarf::DW_TAG_base_type); 994 AddUInt(&IdxBuffer, dwarf::DW_AT_byte_size, 0, sizeof(int32_t)); 995 AddUInt(&IdxBuffer, dwarf::DW_AT_encoding, dwarf::DW_FORM_data1, 996 dwarf::DW_ATE_signed); 997 DIE *IndexTy = DW_Unit->AddDie(IdxBuffer); 998 999 // Add subranges to array type. 1000 for (unsigned i = 0, N = Elements.getNumElements(); i < N; ++i) { 1001 DIDescriptor Element = Elements.getElement(i); 1002 if (Element.getTag() == dwarf::DW_TAG_subrange_type) 1003 ConstructSubrangeDIE(Buffer, DISubrange(Element.getNode()), IndexTy); 1004 } 1005} 1006 1007/// ConstructEnumTypeDIE - Construct enum type DIE from DIEnumerator. 1008DIE *DwarfDebug::ConstructEnumTypeDIE(CompileUnit *DW_Unit, DIEnumerator *ETy) { 1009 DIE *Enumerator = new DIE(dwarf::DW_TAG_enumerator); 1010 std::string Name; 1011 ETy->getName(Name); 1012 AddString(Enumerator, dwarf::DW_AT_name, dwarf::DW_FORM_string, Name); 1013 int64_t Value = ETy->getEnumValue(); 1014 AddSInt(Enumerator, dwarf::DW_AT_const_value, dwarf::DW_FORM_sdata, Value); 1015 return Enumerator; 1016} 1017 1018/// CreateGlobalVariableDIE - Create new DIE using GV. 1019DIE *DwarfDebug::CreateGlobalVariableDIE(CompileUnit *DW_Unit, 1020 const DIGlobalVariable &GV) { 1021 DIE *GVDie = new DIE(dwarf::DW_TAG_variable); 1022 std::string Name; 1023 GV.getDisplayName(Name); 1024 AddString(GVDie, dwarf::DW_AT_name, dwarf::DW_FORM_string, Name); 1025 std::string LinkageName; 1026 GV.getLinkageName(LinkageName); 1027 if (!LinkageName.empty()) { 1028 // Skip special LLVM prefix that is used to inform the asm printer to not 1029 // emit usual symbol prefix before the symbol name. This happens for 1030 // Objective-C symbol names and symbol whose name is replaced using GCC's 1031 // __asm__ attribute. 1032 if (LinkageName[0] == 1) 1033 LinkageName = &LinkageName[1]; 1034 AddString(GVDie, dwarf::DW_AT_MIPS_linkage_name, dwarf::DW_FORM_string, 1035 LinkageName); 1036 } 1037 AddType(DW_Unit, GVDie, GV.getType()); 1038 if (!GV.isLocalToUnit()) 1039 AddUInt(GVDie, dwarf::DW_AT_external, dwarf::DW_FORM_flag, 1); 1040 AddSourceLine(GVDie, &GV); 1041 return GVDie; 1042} 1043 1044/// CreateMemberDIE - Create new member DIE. 1045DIE *DwarfDebug::CreateMemberDIE(CompileUnit *DW_Unit, const DIDerivedType &DT){ 1046 DIE *MemberDie = new DIE(DT.getTag()); 1047 std::string Name; 1048 DT.getName(Name); 1049 if (!Name.empty()) 1050 AddString(MemberDie, dwarf::DW_AT_name, dwarf::DW_FORM_string, Name); 1051 1052 AddType(DW_Unit, MemberDie, DT.getTypeDerivedFrom()); 1053 1054 AddSourceLine(MemberDie, &DT); 1055 1056 uint64_t Size = DT.getSizeInBits(); 1057 uint64_t FieldSize = DT.getOriginalTypeSize(); 1058 1059 if (Size != FieldSize) { 1060 // Handle bitfield. 1061 AddUInt(MemberDie, dwarf::DW_AT_byte_size, 0, DT.getOriginalTypeSize()>>3); 1062 AddUInt(MemberDie, dwarf::DW_AT_bit_size, 0, DT.getSizeInBits()); 1063 1064 uint64_t Offset = DT.getOffsetInBits(); 1065 uint64_t FieldOffset = Offset; 1066 uint64_t AlignMask = ~(DT.getAlignInBits() - 1); 1067 uint64_t HiMark = (Offset + FieldSize) & AlignMask; 1068 FieldOffset = (HiMark - FieldSize); 1069 Offset -= FieldOffset; 1070 1071 // Maybe we need to work from the other end. 1072 if (TD->isLittleEndian()) Offset = FieldSize - (Offset + Size); 1073 AddUInt(MemberDie, dwarf::DW_AT_bit_offset, 0, Offset); 1074 } 1075 1076 DIEBlock *Block = new DIEBlock(); 1077 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_plus_uconst); 1078 AddUInt(Block, 0, dwarf::DW_FORM_udata, DT.getOffsetInBits() >> 3); 1079 AddBlock(MemberDie, dwarf::DW_AT_data_member_location, 0, Block); 1080 1081 if (DT.isProtected()) 1082 AddUInt(MemberDie, dwarf::DW_AT_accessibility, 0, 1083 dwarf::DW_ACCESS_protected); 1084 else if (DT.isPrivate()) 1085 AddUInt(MemberDie, dwarf::DW_AT_accessibility, 0, 1086 dwarf::DW_ACCESS_private); 1087 1088 return MemberDie; 1089} 1090 1091/// CreateSubprogramDIE - Create new DIE using SP. 1092DIE *DwarfDebug::CreateSubprogramDIE(CompileUnit *DW_Unit, 1093 const DISubprogram &SP, 1094 bool IsConstructor, 1095 bool IsInlined) { 1096 DIE *SPDie = new DIE(dwarf::DW_TAG_subprogram); 1097 1098 std::string Name; 1099 SP.getName(Name); 1100 AddString(SPDie, dwarf::DW_AT_name, dwarf::DW_FORM_string, Name); 1101 1102 std::string LinkageName; 1103 SP.getLinkageName(LinkageName); 1104 if (!LinkageName.empty()) { 1105 // Skip special LLVM prefix that is used to inform the asm printer to not emit 1106 // usual symbol prefix before the symbol name. This happens for Objective-C 1107 // symbol names and symbol whose name is replaced using GCC's __asm__ attribute. 1108 if (LinkageName[0] == 1) 1109 LinkageName = &LinkageName[1]; 1110 AddString(SPDie, dwarf::DW_AT_MIPS_linkage_name, dwarf::DW_FORM_string, 1111 LinkageName); 1112 } 1113 AddSourceLine(SPDie, &SP); 1114 1115 DICompositeType SPTy = SP.getType(); 1116 DIArray Args = SPTy.getTypeArray(); 1117 1118 // Add prototyped tag, if C or ObjC. 1119 unsigned Lang = SP.getCompileUnit().getLanguage(); 1120 if (Lang == dwarf::DW_LANG_C99 || Lang == dwarf::DW_LANG_C89 || 1121 Lang == dwarf::DW_LANG_ObjC) 1122 AddUInt(SPDie, dwarf::DW_AT_prototyped, dwarf::DW_FORM_flag, 1); 1123 1124 // Add Return Type. 1125 unsigned SPTag = SPTy.getTag(); 1126 if (!IsConstructor) { 1127 if (Args.isNull() || SPTag != dwarf::DW_TAG_subroutine_type) 1128 AddType(DW_Unit, SPDie, SPTy); 1129 else 1130 AddType(DW_Unit, SPDie, DIType(Args.getElement(0).getNode())); 1131 } 1132 1133 if (!SP.isDefinition()) { 1134 AddUInt(SPDie, dwarf::DW_AT_declaration, dwarf::DW_FORM_flag, 1); 1135 1136 // Add arguments. Do not add arguments for subprogram definition. They will 1137 // be handled through RecordVariable. 1138 if (SPTag == dwarf::DW_TAG_subroutine_type) 1139 for (unsigned i = 1, N = Args.getNumElements(); i < N; ++i) { 1140 DIE *Arg = new DIE(dwarf::DW_TAG_formal_parameter); 1141 AddType(DW_Unit, Arg, DIType(Args.getElement(i).getNode())); 1142 AddUInt(Arg, dwarf::DW_AT_artificial, dwarf::DW_FORM_flag, 1); // ?? 1143 SPDie->AddChild(Arg); 1144 } 1145 } 1146 1147 if (!SP.isLocalToUnit() && !IsInlined) 1148 AddUInt(SPDie, dwarf::DW_AT_external, dwarf::DW_FORM_flag, 1); 1149 1150 // DW_TAG_inlined_subroutine may refer to this DIE. 1151 DIE *&Slot = DW_Unit->getDieMapSlotFor(SP.getNode()); 1152 Slot = SPDie; 1153 return SPDie; 1154} 1155 1156/// FindCompileUnit - Get the compile unit for the given descriptor. 1157/// 1158CompileUnit &DwarfDebug::FindCompileUnit(DICompileUnit Unit) const { 1159 DenseMap<Value *, CompileUnit *>::const_iterator I = 1160 CompileUnitMap.find(Unit.getNode()); 1161 assert(I != CompileUnitMap.end() && "Missing compile unit."); 1162 return *I->second; 1163} 1164 1165/// CreateDbgScopeVariable - Create a new scope variable. 1166/// 1167DIE *DwarfDebug::CreateDbgScopeVariable(DbgVariable *DV, CompileUnit *Unit) { 1168 // Get the descriptor. 1169 const DIVariable &VD = DV->getVariable(); 1170 1171 // Translate tag to proper Dwarf tag. The result variable is dropped for 1172 // now. 1173 unsigned Tag; 1174 switch (VD.getTag()) { 1175 case dwarf::DW_TAG_return_variable: 1176 return NULL; 1177 case dwarf::DW_TAG_arg_variable: 1178 Tag = dwarf::DW_TAG_formal_parameter; 1179 break; 1180 case dwarf::DW_TAG_auto_variable: // fall thru 1181 default: 1182 Tag = dwarf::DW_TAG_variable; 1183 break; 1184 } 1185 1186 // Define variable debug information entry. 1187 DIE *VariableDie = new DIE(Tag); 1188 std::string Name; 1189 VD.getName(Name); 1190 AddString(VariableDie, dwarf::DW_AT_name, dwarf::DW_FORM_string, Name); 1191 1192 // Add source line info if available. 1193 AddSourceLine(VariableDie, &VD); 1194 1195 // Add variable type. 1196 if (VD.isBlockByrefVariable()) 1197 AddType(Unit, VariableDie, GetBlockByrefType(VD.getType(), Name)); 1198 else 1199 AddType(Unit, VariableDie, VD.getType()); 1200 1201 // Add variable address. 1202 if (!DV->isInlinedFnVar()) { 1203 // Variables for abstract instances of inlined functions don't get a 1204 // location. 1205 MachineLocation Location; 1206 Location.set(RI->getFrameRegister(*MF), 1207 RI->getFrameIndexOffset(*MF, DV->getFrameIndex())); 1208 1209 if (VD.isBlockByrefVariable()) 1210 AddBlockByrefAddress (DV, VariableDie, dwarf::DW_AT_location, Location); 1211 else 1212 AddAddress(VariableDie, dwarf::DW_AT_location, Location); 1213 } 1214 1215 return VariableDie; 1216} 1217 1218/// getOrCreateScope - Returns the scope associated with the given descriptor. 1219/// 1220DbgScope *DwarfDebug::getOrCreateScope(MDNode *N) { 1221 DbgScope *&Slot = DbgScopeMap[N]; 1222 if (Slot) return Slot; 1223 1224 DbgScope *Parent = NULL; 1225 DILexicalBlock Block(N); 1226 1227 // Don't create a new scope if we already created one for an inlined function. 1228 DenseMap<const MDNode *, DbgScope *>::iterator 1229 II = AbstractInstanceRootMap.find(N); 1230 if (II != AbstractInstanceRootMap.end()) 1231 return LexicalScopeStack.back(); 1232 1233 if (!Block.isNull()) { 1234 DIDescriptor ParentDesc = Block.getContext(); 1235 Parent = 1236 ParentDesc.isNull() ? NULL : getOrCreateScope(ParentDesc.getNode()); 1237 } 1238 1239 Slot = new DbgScope(Parent, DIDescriptor(N)); 1240 1241 if (Parent) 1242 Parent->AddScope(Slot); 1243 else 1244 // First function is top level function. 1245 FunctionDbgScope = Slot; 1246 1247 return Slot; 1248} 1249 1250/// ConstructDbgScope - Construct the components of a scope. 1251/// 1252void DwarfDebug::ConstructDbgScope(DbgScope *ParentScope, 1253 unsigned ParentStartID, 1254 unsigned ParentEndID, 1255 DIE *ParentDie, CompileUnit *Unit) { 1256 // Add variables to scope. 1257 SmallVector<DbgVariable *, 8> &Variables = ParentScope->getVariables(); 1258 for (unsigned i = 0, N = Variables.size(); i < N; ++i) { 1259 DIE *VariableDie = CreateDbgScopeVariable(Variables[i], Unit); 1260 if (VariableDie) ParentDie->AddChild(VariableDie); 1261 } 1262 1263 // Add concrete instances to scope. 1264 SmallVector<DbgConcreteScope *, 8> &ConcreteInsts = 1265 ParentScope->getConcreteInsts(); 1266 for (unsigned i = 0, N = ConcreteInsts.size(); i < N; ++i) { 1267 DbgConcreteScope *ConcreteInst = ConcreteInsts[i]; 1268 DIE *Die = ConcreteInst->getDie(); 1269 1270 unsigned StartID = ConcreteInst->getStartLabelID(); 1271 unsigned EndID = ConcreteInst->getEndLabelID(); 1272 1273 // Add the scope bounds. 1274 if (StartID) 1275 AddLabel(Die, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, 1276 DWLabel("label", StartID)); 1277 else 1278 AddLabel(Die, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, 1279 DWLabel("func_begin", SubprogramCount)); 1280 1281 if (EndID) 1282 AddLabel(Die, dwarf::DW_AT_high_pc, dwarf::DW_FORM_addr, 1283 DWLabel("label", EndID)); 1284 else 1285 AddLabel(Die, dwarf::DW_AT_high_pc, dwarf::DW_FORM_addr, 1286 DWLabel("func_end", SubprogramCount)); 1287 1288 ParentDie->AddChild(Die); 1289 } 1290 1291 // Add nested scopes. 1292 SmallVector<DbgScope *, 4> &Scopes = ParentScope->getScopes(); 1293 for (unsigned j = 0, M = Scopes.size(); j < M; ++j) { 1294 // Define the Scope debug information entry. 1295 DbgScope *Scope = Scopes[j]; 1296 1297 unsigned StartID = MMI->MappedLabel(Scope->getStartLabelID()); 1298 unsigned EndID = MMI->MappedLabel(Scope->getEndLabelID()); 1299 1300 // Ignore empty scopes. 1301 if (StartID == EndID && StartID != 0) continue; 1302 1303 // Do not ignore inlined scopes even if they don't have any variables or 1304 // scopes. 1305 if (Scope->getScopes().empty() && Scope->getVariables().empty() && 1306 Scope->getConcreteInsts().empty()) 1307 continue; 1308 1309 if (StartID == ParentStartID && EndID == ParentEndID) { 1310 // Just add stuff to the parent scope. 1311 ConstructDbgScope(Scope, ParentStartID, ParentEndID, ParentDie, Unit); 1312 } else { 1313 DIE *ScopeDie = new DIE(dwarf::DW_TAG_lexical_block); 1314 1315 // Add the scope bounds. 1316 if (StartID) 1317 AddLabel(ScopeDie, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, 1318 DWLabel("label", StartID)); 1319 else 1320 AddLabel(ScopeDie, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, 1321 DWLabel("func_begin", SubprogramCount)); 1322 1323 if (EndID) 1324 AddLabel(ScopeDie, dwarf::DW_AT_high_pc, dwarf::DW_FORM_addr, 1325 DWLabel("label", EndID)); 1326 else 1327 AddLabel(ScopeDie, dwarf::DW_AT_high_pc, dwarf::DW_FORM_addr, 1328 DWLabel("func_end", SubprogramCount)); 1329 1330 // Add the scope's contents. 1331 ConstructDbgScope(Scope, StartID, EndID, ScopeDie, Unit); 1332 ParentDie->AddChild(ScopeDie); 1333 } 1334 } 1335} 1336 1337/// ConstructFunctionDbgScope - Construct the scope for the subprogram. 1338/// 1339void DwarfDebug::ConstructFunctionDbgScope(DbgScope *RootScope, 1340 bool AbstractScope) { 1341 // Exit if there is no root scope. 1342 if (!RootScope) return; 1343 DIDescriptor Desc = RootScope->getDesc(); 1344 if (Desc.isNull()) 1345 return; 1346 1347 // Get the subprogram debug information entry. 1348 DISubprogram SPD(Desc.getNode()); 1349 1350 // Get the subprogram die. 1351 DIE *SPDie = ModuleCU->getDieMapSlotFor(SPD.getNode()); 1352 assert(SPDie && "Missing subprogram descriptor"); 1353 1354 if (!AbstractScope) { 1355 // Add the function bounds. 1356 AddLabel(SPDie, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, 1357 DWLabel("func_begin", SubprogramCount)); 1358 AddLabel(SPDie, dwarf::DW_AT_high_pc, dwarf::DW_FORM_addr, 1359 DWLabel("func_end", SubprogramCount)); 1360 MachineLocation Location(RI->getFrameRegister(*MF)); 1361 AddAddress(SPDie, dwarf::DW_AT_frame_base, Location); 1362 } 1363 1364 ConstructDbgScope(RootScope, 0, 0, SPDie, ModuleCU); 1365} 1366 1367/// ConstructDefaultDbgScope - Construct a default scope for the subprogram. 1368/// 1369void DwarfDebug::ConstructDefaultDbgScope(MachineFunction *MF) { 1370 StringMap<DIE*> &Globals = ModuleCU->getGlobals(); 1371 StringMap<DIE*>::iterator GI = Globals.find(MF->getFunction()->getName()); 1372 if (GI != Globals.end()) { 1373 DIE *SPDie = GI->second; 1374 1375 // Add the function bounds. 1376 AddLabel(SPDie, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr, 1377 DWLabel("func_begin", SubprogramCount)); 1378 AddLabel(SPDie, dwarf::DW_AT_high_pc, dwarf::DW_FORM_addr, 1379 DWLabel("func_end", SubprogramCount)); 1380 1381 MachineLocation Location(RI->getFrameRegister(*MF)); 1382 AddAddress(SPDie, dwarf::DW_AT_frame_base, Location); 1383 } 1384} 1385 1386/// GetOrCreateSourceID - Look up the source id with the given directory and 1387/// source file names. If none currently exists, create a new id and insert it 1388/// in the SourceIds map. This can update DirectoryNames and SourceFileNames 1389/// maps as well. 1390unsigned DwarfDebug::GetOrCreateSourceID(const std::string &DirName, 1391 const std::string &FileName) { 1392 unsigned DId; 1393 StringMap<unsigned>::iterator DI = DirectoryIdMap.find(DirName); 1394 if (DI != DirectoryIdMap.end()) { 1395 DId = DI->getValue(); 1396 } else { 1397 DId = DirectoryNames.size() + 1; 1398 DirectoryIdMap[DirName] = DId; 1399 DirectoryNames.push_back(DirName); 1400 } 1401 1402 unsigned FId; 1403 StringMap<unsigned>::iterator FI = SourceFileIdMap.find(FileName); 1404 if (FI != SourceFileIdMap.end()) { 1405 FId = FI->getValue(); 1406 } else { 1407 FId = SourceFileNames.size() + 1; 1408 SourceFileIdMap[FileName] = FId; 1409 SourceFileNames.push_back(FileName); 1410 } 1411 1412 DenseMap<std::pair<unsigned, unsigned>, unsigned>::iterator SI = 1413 SourceIdMap.find(std::make_pair(DId, FId)); 1414 if (SI != SourceIdMap.end()) 1415 return SI->second; 1416 1417 unsigned SrcId = SourceIds.size() + 1; // DW_AT_decl_file cannot be 0. 1418 SourceIdMap[std::make_pair(DId, FId)] = SrcId; 1419 SourceIds.push_back(std::make_pair(DId, FId)); 1420 1421 return SrcId; 1422} 1423 1424void DwarfDebug::ConstructCompileUnit(MDNode *N) { 1425 DICompileUnit DIUnit(N); 1426 std::string Dir, FN, Prod; 1427 unsigned ID = GetOrCreateSourceID(DIUnit.getDirectory(Dir), 1428 DIUnit.getFilename(FN)); 1429 1430 DIE *Die = new DIE(dwarf::DW_TAG_compile_unit); 1431 AddSectionOffset(Die, dwarf::DW_AT_stmt_list, dwarf::DW_FORM_data4, 1432 DWLabel("section_line", 0), DWLabel("section_line", 0), 1433 false); 1434 AddString(Die, dwarf::DW_AT_producer, dwarf::DW_FORM_string, 1435 DIUnit.getProducer(Prod)); 1436 AddUInt(Die, dwarf::DW_AT_language, dwarf::DW_FORM_data1, 1437 DIUnit.getLanguage()); 1438 AddString(Die, dwarf::DW_AT_name, dwarf::DW_FORM_string, FN); 1439 1440 if (!Dir.empty()) 1441 AddString(Die, dwarf::DW_AT_comp_dir, dwarf::DW_FORM_string, Dir); 1442 if (DIUnit.isOptimized()) 1443 AddUInt(Die, dwarf::DW_AT_APPLE_optimized, dwarf::DW_FORM_flag, 1); 1444 1445 std::string Flags; 1446 DIUnit.getFlags(Flags); 1447 if (!Flags.empty()) 1448 AddString(Die, dwarf::DW_AT_APPLE_flags, dwarf::DW_FORM_string, Flags); 1449 1450 unsigned RVer = DIUnit.getRunTimeVersion(); 1451 if (RVer) 1452 AddUInt(Die, dwarf::DW_AT_APPLE_major_runtime_vers, 1453 dwarf::DW_FORM_data1, RVer); 1454 1455 CompileUnit *Unit = new CompileUnit(ID, Die); 1456 if (!ModuleCU && DIUnit.isMain()) { 1457 // Use first compile unit marked as isMain as the compile unit 1458 // for this module. 1459 ModuleCU = Unit; 1460 } 1461 1462 CompileUnitMap[DIUnit.getNode()] = Unit; 1463 CompileUnits.push_back(Unit); 1464} 1465 1466void DwarfDebug::ConstructGlobalVariableDIE(MDNode *N) { 1467 DIGlobalVariable DI_GV(N); 1468 1469 // Check for pre-existence. 1470 DIE *&Slot = ModuleCU->getDieMapSlotFor(DI_GV.getNode()); 1471 if (Slot) 1472 return; 1473 1474 DIE *VariableDie = CreateGlobalVariableDIE(ModuleCU, DI_GV); 1475 1476 // Add address. 1477 DIEBlock *Block = new DIEBlock(); 1478 AddUInt(Block, 0, dwarf::DW_FORM_data1, dwarf::DW_OP_addr); 1479 std::string GLN; 1480 AddObjectLabel(Block, 0, dwarf::DW_FORM_udata, 1481 Asm->getGlobalLinkName(DI_GV.getGlobal(), GLN)); 1482 AddBlock(VariableDie, dwarf::DW_AT_location, 0, Block); 1483 1484 // Add to map. 1485 Slot = VariableDie; 1486 1487 // Add to context owner. 1488 ModuleCU->getDie()->AddChild(VariableDie); 1489 1490 // Expose as global. FIXME - need to check external flag. 1491 std::string Name; 1492 ModuleCU->AddGlobal(DI_GV.getName(Name), VariableDie); 1493 return; 1494} 1495 1496void DwarfDebug::ConstructSubprogram(MDNode *N) { 1497 DISubprogram SP(N); 1498 1499 // Check for pre-existence. 1500 DIE *&Slot = ModuleCU->getDieMapSlotFor(N); 1501 if (Slot) 1502 return; 1503 1504 if (!SP.isDefinition()) 1505 // This is a method declaration which will be handled while constructing 1506 // class type. 1507 return; 1508 1509 DIE *SubprogramDie = CreateSubprogramDIE(ModuleCU, SP); 1510 1511 // Add to map. 1512 Slot = SubprogramDie; 1513 1514 // Add to context owner. 1515 ModuleCU->getDie()->AddChild(SubprogramDie); 1516 1517 // Expose as global. 1518 std::string Name; 1519 ModuleCU->AddGlobal(SP.getName(Name), SubprogramDie); 1520 return; 1521} 1522 1523 /// BeginModule - Emit all Dwarf sections that should come prior to the 1524 /// content. Create global DIEs and emit initial debug info sections. 1525 /// This is inovked by the target AsmPrinter. 1526void DwarfDebug::BeginModule(Module *M, MachineModuleInfo *mmi) { 1527 this->M = M; 1528 1529 if (TimePassesIsEnabled) 1530 DebugTimer->startTimer(); 1531 1532 DebugInfoFinder DbgFinder; 1533 DbgFinder.processModule(*M); 1534 1535 // Create all the compile unit DIEs. 1536 for (DebugInfoFinder::iterator I = DbgFinder.compile_unit_begin(), 1537 E = DbgFinder.compile_unit_end(); I != E; ++I) 1538 ConstructCompileUnit(*I); 1539 1540 if (CompileUnits.empty()) { 1541 if (TimePassesIsEnabled) 1542 DebugTimer->stopTimer(); 1543 1544 return; 1545 } 1546 1547 // If main compile unit for this module is not seen than randomly 1548 // select first compile unit. 1549 if (!ModuleCU) 1550 ModuleCU = CompileUnits[0]; 1551 1552 // If there is not any debug info available for any global variables and any 1553 // subprograms then there is not any debug info to emit. 1554 if (DbgFinder.global_variable_count() == 0 1555 && DbgFinder.subprogram_count() == 0) { 1556 if (TimePassesIsEnabled) 1557 DebugTimer->stopTimer(); 1558 return; 1559 } 1560 1561 // Create DIEs for each of the externally visible global variables. 1562 for (DebugInfoFinder::iterator I = DbgFinder.global_variable_begin(), 1563 E = DbgFinder.global_variable_end(); I != E; ++I) 1564 ConstructGlobalVariableDIE(*I); 1565 1566 // Create DIEs for each of the externally visible subprograms. 1567 for (DebugInfoFinder::iterator I = DbgFinder.subprogram_begin(), 1568 E = DbgFinder.subprogram_end(); I != E; ++I) 1569 ConstructSubprogram(*I); 1570 1571 MMI = mmi; 1572 shouldEmit = true; 1573 MMI->setDebugInfoAvailability(true); 1574 1575 // Prime section data. 1576 SectionMap.insert(Asm->getObjFileLowering().getTextSection()); 1577 1578 // Print out .file directives to specify files for .loc directives. These are 1579 // printed out early so that they precede any .loc directives. 1580 if (MAI->hasDotLocAndDotFile()) { 1581 for (unsigned i = 1, e = getNumSourceIds()+1; i != e; ++i) { 1582 // Remember source id starts at 1. 1583 std::pair<unsigned, unsigned> Id = getSourceDirectoryAndFileIds(i); 1584 sys::Path FullPath(getSourceDirectoryName(Id.first)); 1585 bool AppendOk = 1586 FullPath.appendComponent(getSourceFileName(Id.second)); 1587 assert(AppendOk && "Could not append filename to directory!"); 1588 AppendOk = false; 1589 Asm->EmitFile(i, FullPath.str()); 1590 Asm->EOL(); 1591 } 1592 } 1593 1594 // Emit initial sections 1595 EmitInitial(); 1596 1597 if (TimePassesIsEnabled) 1598 DebugTimer->stopTimer(); 1599} 1600 1601/// EndModule - Emit all Dwarf sections that should come after the content. 1602/// 1603void DwarfDebug::EndModule() { 1604 if (!ShouldEmitDwarfDebug()) 1605 return; 1606 1607 if (TimePassesIsEnabled) 1608 DebugTimer->startTimer(); 1609 1610 // Standard sections final addresses. 1611 Asm->OutStreamer.SwitchSection(Asm->getObjFileLowering().getTextSection()); 1612 EmitLabel("text_end", 0); 1613 Asm->OutStreamer.SwitchSection(Asm->getObjFileLowering().getDataSection()); 1614 EmitLabel("data_end", 0); 1615 1616 // End text sections. 1617 for (unsigned i = 1, N = SectionMap.size(); i <= N; ++i) { 1618 Asm->OutStreamer.SwitchSection(SectionMap[i]); 1619 EmitLabel("section_end", i); 1620 } 1621 1622 // Emit common frame information. 1623 EmitCommonDebugFrame(); 1624 1625 // Emit function debug frame information 1626 for (std::vector<FunctionDebugFrameInfo>::iterator I = DebugFrames.begin(), 1627 E = DebugFrames.end(); I != E; ++I) 1628 EmitFunctionDebugFrame(*I); 1629 1630 // Compute DIE offsets and sizes. 1631 SizeAndOffsets(); 1632 1633 // Emit all the DIEs into a debug info section 1634 EmitDebugInfo(); 1635 1636 // Corresponding abbreviations into a abbrev section. 1637 EmitAbbreviations(); 1638 1639 // Emit source line correspondence into a debug line section. 1640 EmitDebugLines(); 1641 1642 // Emit info into a debug pubnames section. 1643 EmitDebugPubNames(); 1644 1645 // Emit info into a debug str section. 1646 EmitDebugStr(); 1647 1648 // Emit info into a debug loc section. 1649 EmitDebugLoc(); 1650 1651 // Emit info into a debug aranges section. 1652 EmitDebugARanges(); 1653 1654 // Emit info into a debug ranges section. 1655 EmitDebugRanges(); 1656 1657 // Emit info into a debug macinfo section. 1658 EmitDebugMacInfo(); 1659 1660 // Emit inline info. 1661 EmitDebugInlineInfo(); 1662 1663 if (TimePassesIsEnabled) 1664 DebugTimer->stopTimer(); 1665} 1666 1667/// BeginFunction - Gather pre-function debug information. Assumes being 1668/// emitted immediately after the function entry point. 1669void DwarfDebug::BeginFunction(MachineFunction *MF) { 1670 this->MF = MF; 1671 1672 if (!ShouldEmitDwarfDebug()) return; 1673 1674 if (TimePassesIsEnabled) 1675 DebugTimer->startTimer(); 1676 1677 // Begin accumulating function debug information. 1678 MMI->BeginFunction(MF); 1679 1680 // Assumes in correct section after the entry point. 1681 EmitLabel("func_begin", ++SubprogramCount); 1682 1683 // Emit label for the implicitly defined dbg.stoppoint at the start of the 1684 // function. 1685 DebugLoc FDL = MF->getDefaultDebugLoc(); 1686 if (!FDL.isUnknown()) { 1687 DebugLocTuple DLT = MF->getDebugLocTuple(FDL); 1688 unsigned LabelID = RecordSourceLine(DLT.Line, DLT.Col, 1689 DICompileUnit(DLT.CompileUnit)); 1690 Asm->printLabel(LabelID); 1691 } 1692 1693 if (TimePassesIsEnabled) 1694 DebugTimer->stopTimer(); 1695} 1696 1697/// EndFunction - Gather and emit post-function debug information. 1698/// 1699void DwarfDebug::EndFunction(MachineFunction *MF) { 1700 if (!ShouldEmitDwarfDebug()) return; 1701 1702 if (TimePassesIsEnabled) 1703 DebugTimer->startTimer(); 1704 1705 // Define end label for subprogram. 1706 EmitLabel("func_end", SubprogramCount); 1707 1708 // Get function line info. 1709 if (!Lines.empty()) { 1710 // Get section line info. 1711 unsigned ID = SectionMap.insert(Asm->getCurrentSection()); 1712 if (SectionSourceLines.size() < ID) SectionSourceLines.resize(ID); 1713 std::vector<SrcLineInfo> &SectionLineInfos = SectionSourceLines[ID-1]; 1714 // Append the function info to section info. 1715 SectionLineInfos.insert(SectionLineInfos.end(), 1716 Lines.begin(), Lines.end()); 1717 } 1718 1719 // Construct the DbgScope for abstract instances. 1720 for (SmallVector<DbgScope *, 32>::iterator 1721 I = AbstractInstanceRootList.begin(), 1722 E = AbstractInstanceRootList.end(); I != E; ++I) 1723 ConstructFunctionDbgScope(*I); 1724 1725 // Construct scopes for subprogram. 1726 if (FunctionDbgScope) 1727 ConstructFunctionDbgScope(FunctionDbgScope); 1728 else 1729 // FIXME: This is wrong. We are essentially getting past a problem with 1730 // debug information not being able to handle unreachable blocks that have 1731 // debug information in them. In particular, those unreachable blocks that 1732 // have "region end" info in them. That situation results in the "root 1733 // scope" not being created. If that's the case, then emit a "default" 1734 // scope, i.e., one that encompasses the whole function. This isn't 1735 // desirable. And a better way of handling this (and all of the debugging 1736 // information) needs to be explored. 1737 ConstructDefaultDbgScope(MF); 1738 1739 DebugFrames.push_back(FunctionDebugFrameInfo(SubprogramCount, 1740 MMI->getFrameMoves())); 1741 1742 // Clear debug info 1743 if (FunctionDbgScope) { 1744 delete FunctionDbgScope; 1745 DbgScopeMap.clear(); 1746 DbgAbstractScopeMap.clear(); 1747 DbgConcreteScopeMap.clear(); 1748 FunctionDbgScope = NULL; 1749 LexicalScopeStack.clear(); 1750 AbstractInstanceRootList.clear(); 1751 AbstractInstanceRootMap.clear(); 1752 } 1753 1754 Lines.clear(); 1755 1756 if (TimePassesIsEnabled) 1757 DebugTimer->stopTimer(); 1758} 1759 1760/// RecordSourceLine - Records location information and associates it with a 1761/// label. Returns a unique label ID used to generate a label and provide 1762/// correspondence to the source line list. 1763unsigned DwarfDebug::RecordSourceLine(Value *V, unsigned Line, unsigned Col) { 1764 if (TimePassesIsEnabled) 1765 DebugTimer->startTimer(); 1766 1767 CompileUnit *Unit = CompileUnitMap[V]; 1768 assert(Unit && "Unable to find CompileUnit"); 1769 unsigned ID = MMI->NextLabelID(); 1770 Lines.push_back(SrcLineInfo(Line, Col, Unit->getID(), ID)); 1771 1772 if (TimePassesIsEnabled) 1773 DebugTimer->stopTimer(); 1774 1775 return ID; 1776} 1777 1778/// RecordSourceLine - Records location information and associates it with a 1779/// label. Returns a unique label ID used to generate a label and provide 1780/// correspondence to the source line list. 1781unsigned DwarfDebug::RecordSourceLine(unsigned Line, unsigned Col, 1782 DICompileUnit CU) { 1783 if (!MMI) 1784 return 0; 1785 1786 if (TimePassesIsEnabled) 1787 DebugTimer->startTimer(); 1788 1789 std::string Dir, Fn; 1790 unsigned Src = GetOrCreateSourceID(CU.getDirectory(Dir), 1791 CU.getFilename(Fn)); 1792 unsigned ID = MMI->NextLabelID(); 1793 Lines.push_back(SrcLineInfo(Line, Col, Src, ID)); 1794 1795 if (TimePassesIsEnabled) 1796 DebugTimer->stopTimer(); 1797 1798 return ID; 1799} 1800 1801/// getOrCreateSourceID - Public version of GetOrCreateSourceID. This can be 1802/// timed. Look up the source id with the given directory and source file 1803/// names. If none currently exists, create a new id and insert it in the 1804/// SourceIds map. This can update DirectoryNames and SourceFileNames maps as 1805/// well. 1806unsigned DwarfDebug::getOrCreateSourceID(const std::string &DirName, 1807 const std::string &FileName) { 1808 if (TimePassesIsEnabled) 1809 DebugTimer->startTimer(); 1810 1811 unsigned SrcId = GetOrCreateSourceID(DirName, FileName); 1812 1813 if (TimePassesIsEnabled) 1814 DebugTimer->stopTimer(); 1815 1816 return SrcId; 1817} 1818 1819/// RecordRegionStart - Indicate the start of a region. 1820unsigned DwarfDebug::RecordRegionStart(MDNode *N) { 1821 if (TimePassesIsEnabled) 1822 DebugTimer->startTimer(); 1823 1824 DbgScope *Scope = getOrCreateScope(N); 1825 unsigned ID = MMI->NextLabelID(); 1826 if (!Scope->getStartLabelID()) Scope->setStartLabelID(ID); 1827 LexicalScopeStack.push_back(Scope); 1828 1829 if (TimePassesIsEnabled) 1830 DebugTimer->stopTimer(); 1831 1832 return ID; 1833} 1834 1835/// RecordRegionEnd - Indicate the end of a region. 1836unsigned DwarfDebug::RecordRegionEnd(MDNode *N) { 1837 if (TimePassesIsEnabled) 1838 DebugTimer->startTimer(); 1839 1840 DbgScope *Scope = getOrCreateScope(N); 1841 unsigned ID = MMI->NextLabelID(); 1842 Scope->setEndLabelID(ID); 1843 // FIXME : region.end() may not be in the last basic block. 1844 // For now, do not pop last lexical scope because next basic 1845 // block may start new inlined function's body. 1846 unsigned LSSize = LexicalScopeStack.size(); 1847 if (LSSize != 0 && LSSize != 1) 1848 LexicalScopeStack.pop_back(); 1849 1850 if (TimePassesIsEnabled) 1851 DebugTimer->stopTimer(); 1852 1853 return ID; 1854} 1855 1856/// RecordVariable - Indicate the declaration of a local variable. 1857void DwarfDebug::RecordVariable(MDNode *N, unsigned FrameIndex) { 1858 if (TimePassesIsEnabled) 1859 DebugTimer->startTimer(); 1860 1861 DIDescriptor Desc(N); 1862 DbgScope *Scope = NULL; 1863 bool InlinedFnVar = false; 1864 1865 if (Desc.getTag() == dwarf::DW_TAG_variable) 1866 Scope = getOrCreateScope(DIGlobalVariable(N).getContext().getNode()); 1867 else { 1868 bool InlinedVar = false; 1869 MDNode *Context = DIVariable(N).getContext().getNode(); 1870 DISubprogram SP(Context); 1871 if (!SP.isNull()) { 1872 // SP is inserted into DbgAbstractScopeMap when inlined function 1873 // start was recorded by RecordInlineFnStart. 1874 DenseMap<MDNode *, DbgScope *>::iterator 1875 I = DbgAbstractScopeMap.find(SP.getNode()); 1876 if (I != DbgAbstractScopeMap.end()) { 1877 InlinedVar = true; 1878 Scope = I->second; 1879 } 1880 } 1881 if (!InlinedVar) 1882 Scope = getOrCreateScope(Context); 1883 } 1884 1885 assert(Scope && "Unable to find the variable's scope"); 1886 DbgVariable *DV = new DbgVariable(DIVariable(N), FrameIndex, InlinedFnVar); 1887 Scope->AddVariable(DV); 1888 1889 if (TimePassesIsEnabled) 1890 DebugTimer->stopTimer(); 1891} 1892 1893//// RecordInlinedFnStart - Indicate the start of inlined subroutine. 1894unsigned DwarfDebug::RecordInlinedFnStart(DISubprogram &SP, DICompileUnit CU, 1895 unsigned Line, unsigned Col) { 1896 unsigned LabelID = MMI->NextLabelID(); 1897 1898 if (!MAI->doesDwarfUsesInlineInfoSection()) 1899 return LabelID; 1900 1901 if (TimePassesIsEnabled) 1902 DebugTimer->startTimer(); 1903 1904 MDNode *Node = SP.getNode(); 1905 DenseMap<const MDNode *, DbgScope *>::iterator 1906 II = AbstractInstanceRootMap.find(Node); 1907 1908 if (II == AbstractInstanceRootMap.end()) { 1909 // Create an abstract instance entry for this inlined function if it doesn't 1910 // already exist. 1911 DbgScope *Scope = new DbgScope(NULL, DIDescriptor(Node)); 1912 1913 // Get the compile unit context. 1914 DIE *SPDie = ModuleCU->getDieMapSlotFor(Node); 1915 if (!SPDie) 1916 SPDie = CreateSubprogramDIE(ModuleCU, SP, false, true); 1917 1918 // Mark as being inlined. This makes this subprogram entry an abstract 1919 // instance root. 1920 // FIXME: Our debugger doesn't care about the value of DW_AT_inline, only 1921 // that it's defined. That probably won't change in the future. However, 1922 // this could be more elegant. 1923 AddUInt(SPDie, dwarf::DW_AT_inline, 0, dwarf::DW_INL_declared_not_inlined); 1924 1925 // Keep track of the abstract scope for this function. 1926 DbgAbstractScopeMap[Node] = Scope; 1927 1928 AbstractInstanceRootMap[Node] = Scope; 1929 AbstractInstanceRootList.push_back(Scope); 1930 } 1931 1932 // Create a concrete inlined instance for this inlined function. 1933 DbgConcreteScope *ConcreteScope = new DbgConcreteScope(DIDescriptor(Node)); 1934 DIE *ScopeDie = new DIE(dwarf::DW_TAG_inlined_subroutine); 1935 ScopeDie->setAbstractCompileUnit(ModuleCU); 1936 1937 DIE *Origin = ModuleCU->getDieMapSlotFor(Node); 1938 AddDIEEntry(ScopeDie, dwarf::DW_AT_abstract_origin, 1939 dwarf::DW_FORM_ref4, Origin); 1940 AddUInt(ScopeDie, dwarf::DW_AT_call_file, 0, ModuleCU->getID()); 1941 AddUInt(ScopeDie, dwarf::DW_AT_call_line, 0, Line); 1942 AddUInt(ScopeDie, dwarf::DW_AT_call_column, 0, Col); 1943 1944 ConcreteScope->setDie(ScopeDie); 1945 ConcreteScope->setStartLabelID(LabelID); 1946 MMI->RecordUsedDbgLabel(LabelID); 1947 1948 LexicalScopeStack.back()->AddConcreteInst(ConcreteScope); 1949 1950 // Keep track of the concrete scope that's inlined into this function. 1951 DenseMap<MDNode *, SmallVector<DbgScope *, 8> >::iterator 1952 SI = DbgConcreteScopeMap.find(Node); 1953 1954 if (SI == DbgConcreteScopeMap.end()) 1955 DbgConcreteScopeMap[Node].push_back(ConcreteScope); 1956 else 1957 SI->second.push_back(ConcreteScope); 1958 1959 // Track the start label for this inlined function. 1960 DenseMap<MDNode *, SmallVector<unsigned, 4> >::iterator 1961 I = InlineInfo.find(Node); 1962 1963 if (I == InlineInfo.end()) 1964 InlineInfo[Node].push_back(LabelID); 1965 else 1966 I->second.push_back(LabelID); 1967 1968 if (TimePassesIsEnabled) 1969 DebugTimer->stopTimer(); 1970 1971 return LabelID; 1972} 1973 1974/// RecordInlinedFnEnd - Indicate the end of inlined subroutine. 1975unsigned DwarfDebug::RecordInlinedFnEnd(DISubprogram &SP) { 1976 if (!MAI->doesDwarfUsesInlineInfoSection()) 1977 return 0; 1978 1979 if (TimePassesIsEnabled) 1980 DebugTimer->startTimer(); 1981 1982 MDNode *Node = SP.getNode(); 1983 DenseMap<MDNode *, SmallVector<DbgScope *, 8> >::iterator 1984 I = DbgConcreteScopeMap.find(Node); 1985 1986 if (I == DbgConcreteScopeMap.end()) { 1987 // FIXME: Can this situation actually happen? And if so, should it? 1988 if (TimePassesIsEnabled) 1989 DebugTimer->stopTimer(); 1990 1991 return 0; 1992 } 1993 1994 SmallVector<DbgScope *, 8> &Scopes = I->second; 1995 if (Scopes.empty()) { 1996 // Returned ID is 0 if this is unbalanced "end of inlined 1997 // scope". This could happen if optimizer eats dbg intrinsics 1998 // or "beginning of inlined scope" is not recoginized due to 1999 // missing location info. In such cases, ignore this region.end. 2000 return 0; 2001 } 2002 2003 DbgScope *Scope = Scopes.back(); Scopes.pop_back(); 2004 unsigned ID = MMI->NextLabelID(); 2005 MMI->RecordUsedDbgLabel(ID); 2006 Scope->setEndLabelID(ID); 2007 2008 if (TimePassesIsEnabled) 2009 DebugTimer->stopTimer(); 2010 2011 return ID; 2012} 2013 2014//===----------------------------------------------------------------------===// 2015// Emit Methods 2016//===----------------------------------------------------------------------===// 2017 2018/// SizeAndOffsetDie - Compute the size and offset of a DIE. 2019/// 2020unsigned DwarfDebug::SizeAndOffsetDie(DIE *Die, unsigned Offset, bool Last) { 2021 // Get the children. 2022 const std::vector<DIE *> &Children = Die->getChildren(); 2023 2024 // If not last sibling and has children then add sibling offset attribute. 2025 if (!Last && !Children.empty()) Die->AddSiblingOffset(); 2026 2027 // Record the abbreviation. 2028 AssignAbbrevNumber(Die->getAbbrev()); 2029 2030 // Get the abbreviation for this DIE. 2031 unsigned AbbrevNumber = Die->getAbbrevNumber(); 2032 const DIEAbbrev *Abbrev = Abbreviations[AbbrevNumber - 1]; 2033 2034 // Set DIE offset 2035 Die->setOffset(Offset); 2036 2037 // Start the size with the size of abbreviation code. 2038 Offset += MCAsmInfo::getULEB128Size(AbbrevNumber); 2039 2040 const SmallVector<DIEValue*, 32> &Values = Die->getValues(); 2041 const SmallVector<DIEAbbrevData, 8> &AbbrevData = Abbrev->getData(); 2042 2043 // Size the DIE attribute values. 2044 for (unsigned i = 0, N = Values.size(); i < N; ++i) 2045 // Size attribute value. 2046 Offset += Values[i]->SizeOf(TD, AbbrevData[i].getForm()); 2047 2048 // Size the DIE children if any. 2049 if (!Children.empty()) { 2050 assert(Abbrev->getChildrenFlag() == dwarf::DW_CHILDREN_yes && 2051 "Children flag not set"); 2052 2053 for (unsigned j = 0, M = Children.size(); j < M; ++j) 2054 Offset = SizeAndOffsetDie(Children[j], Offset, (j + 1) == M); 2055 2056 // End of children marker. 2057 Offset += sizeof(int8_t); 2058 } 2059 2060 Die->setSize(Offset - Die->getOffset()); 2061 return Offset; 2062} 2063 2064/// SizeAndOffsets - Compute the size and offset of all the DIEs. 2065/// 2066void DwarfDebug::SizeAndOffsets() { 2067 // Compute size of compile unit header. 2068 static unsigned Offset = 2069 sizeof(int32_t) + // Length of Compilation Unit Info 2070 sizeof(int16_t) + // DWARF version number 2071 sizeof(int32_t) + // Offset Into Abbrev. Section 2072 sizeof(int8_t); // Pointer Size (in bytes) 2073 2074 SizeAndOffsetDie(ModuleCU->getDie(), Offset, true); 2075 CompileUnitOffsets[ModuleCU] = 0; 2076} 2077 2078/// EmitInitial - Emit initial Dwarf declarations. This is necessary for cc 2079/// tools to recognize the object file contains Dwarf information. 2080void DwarfDebug::EmitInitial() { 2081 // Check to see if we already emitted intial headers. 2082 if (didInitial) return; 2083 didInitial = true; 2084 2085 const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering(); 2086 2087 // Dwarf sections base addresses. 2088 if (MAI->doesDwarfRequireFrameSection()) { 2089 Asm->OutStreamer.SwitchSection(TLOF.getDwarfFrameSection()); 2090 EmitLabel("section_debug_frame", 0); 2091 } 2092 2093 Asm->OutStreamer.SwitchSection(TLOF.getDwarfInfoSection()); 2094 EmitLabel("section_info", 0); 2095 Asm->OutStreamer.SwitchSection(TLOF.getDwarfAbbrevSection()); 2096 EmitLabel("section_abbrev", 0); 2097 Asm->OutStreamer.SwitchSection(TLOF.getDwarfARangesSection()); 2098 EmitLabel("section_aranges", 0); 2099 2100 if (const MCSection *LineInfoDirective = TLOF.getDwarfMacroInfoSection()) { 2101 Asm->OutStreamer.SwitchSection(LineInfoDirective); 2102 EmitLabel("section_macinfo", 0); 2103 } 2104 2105 Asm->OutStreamer.SwitchSection(TLOF.getDwarfLineSection()); 2106 EmitLabel("section_line", 0); 2107 Asm->OutStreamer.SwitchSection(TLOF.getDwarfLocSection()); 2108 EmitLabel("section_loc", 0); 2109 Asm->OutStreamer.SwitchSection(TLOF.getDwarfPubNamesSection()); 2110 EmitLabel("section_pubnames", 0); 2111 Asm->OutStreamer.SwitchSection(TLOF.getDwarfStrSection()); 2112 EmitLabel("section_str", 0); 2113 Asm->OutStreamer.SwitchSection(TLOF.getDwarfRangesSection()); 2114 EmitLabel("section_ranges", 0); 2115 2116 Asm->OutStreamer.SwitchSection(TLOF.getTextSection()); 2117 EmitLabel("text_begin", 0); 2118 Asm->OutStreamer.SwitchSection(TLOF.getDataSection()); 2119 EmitLabel("data_begin", 0); 2120} 2121 2122/// EmitDIE - Recusively Emits a debug information entry. 2123/// 2124void DwarfDebug::EmitDIE(DIE *Die) { 2125 // Get the abbreviation for this DIE. 2126 unsigned AbbrevNumber = Die->getAbbrevNumber(); 2127 const DIEAbbrev *Abbrev = Abbreviations[AbbrevNumber - 1]; 2128 2129 Asm->EOL(); 2130 2131 // Emit the code (index) for the abbreviation. 2132 Asm->EmitULEB128Bytes(AbbrevNumber); 2133 2134 if (Asm->isVerbose()) 2135 Asm->EOL(std::string("Abbrev [" + 2136 utostr(AbbrevNumber) + 2137 "] 0x" + utohexstr(Die->getOffset()) + 2138 ":0x" + utohexstr(Die->getSize()) + " " + 2139 dwarf::TagString(Abbrev->getTag()))); 2140 else 2141 Asm->EOL(); 2142 2143 SmallVector<DIEValue*, 32> &Values = Die->getValues(); 2144 const SmallVector<DIEAbbrevData, 8> &AbbrevData = Abbrev->getData(); 2145 2146 // Emit the DIE attribute values. 2147 for (unsigned i = 0, N = Values.size(); i < N; ++i) { 2148 unsigned Attr = AbbrevData[i].getAttribute(); 2149 unsigned Form = AbbrevData[i].getForm(); 2150 assert(Form && "Too many attributes for DIE (check abbreviation)"); 2151 2152 switch (Attr) { 2153 case dwarf::DW_AT_sibling: 2154 Asm->EmitInt32(Die->SiblingOffset()); 2155 break; 2156 case dwarf::DW_AT_abstract_origin: { 2157 DIEEntry *E = cast<DIEEntry>(Values[i]); 2158 DIE *Origin = E->getEntry(); 2159 unsigned Addr = 2160 CompileUnitOffsets[Die->getAbstractCompileUnit()] + 2161 Origin->getOffset(); 2162 2163 Asm->EmitInt32(Addr); 2164 break; 2165 } 2166 default: 2167 // Emit an attribute using the defined form. 2168 Values[i]->EmitValue(this, Form); 2169 break; 2170 } 2171 2172 Asm->EOL(dwarf::AttributeString(Attr)); 2173 } 2174 2175 // Emit the DIE children if any. 2176 if (Abbrev->getChildrenFlag() == dwarf::DW_CHILDREN_yes) { 2177 const std::vector<DIE *> &Children = Die->getChildren(); 2178 2179 for (unsigned j = 0, M = Children.size(); j < M; ++j) 2180 EmitDIE(Children[j]); 2181 2182 Asm->EmitInt8(0); Asm->EOL("End Of Children Mark"); 2183 } 2184} 2185 2186/// EmitDebugInfo / EmitDebugInfoPerCU - Emit the debug info section. 2187/// 2188void DwarfDebug::EmitDebugInfoPerCU(CompileUnit *Unit) { 2189 DIE *Die = Unit->getDie(); 2190 2191 // Emit the compile units header. 2192 EmitLabel("info_begin", Unit->getID()); 2193 2194 // Emit size of content not including length itself 2195 unsigned ContentSize = Die->getSize() + 2196 sizeof(int16_t) + // DWARF version number 2197 sizeof(int32_t) + // Offset Into Abbrev. Section 2198 sizeof(int8_t) + // Pointer Size (in bytes) 2199 sizeof(int32_t); // FIXME - extra pad for gdb bug. 2200 2201 Asm->EmitInt32(ContentSize); Asm->EOL("Length of Compilation Unit Info"); 2202 Asm->EmitInt16(dwarf::DWARF_VERSION); Asm->EOL("DWARF version number"); 2203 EmitSectionOffset("abbrev_begin", "section_abbrev", 0, 0, true, false); 2204 Asm->EOL("Offset Into Abbrev. Section"); 2205 Asm->EmitInt8(TD->getPointerSize()); Asm->EOL("Address Size (in bytes)"); 2206 2207 EmitDIE(Die); 2208 // FIXME - extra padding for gdb bug. 2209 Asm->EmitInt8(0); Asm->EOL("Extra Pad For GDB"); 2210 Asm->EmitInt8(0); Asm->EOL("Extra Pad For GDB"); 2211 Asm->EmitInt8(0); Asm->EOL("Extra Pad For GDB"); 2212 Asm->EmitInt8(0); Asm->EOL("Extra Pad For GDB"); 2213 EmitLabel("info_end", Unit->getID()); 2214 2215 Asm->EOL(); 2216} 2217 2218void DwarfDebug::EmitDebugInfo() { 2219 // Start debug info section. 2220 Asm->OutStreamer.SwitchSection( 2221 Asm->getObjFileLowering().getDwarfInfoSection()); 2222 2223 EmitDebugInfoPerCU(ModuleCU); 2224} 2225 2226/// EmitAbbreviations - Emit the abbreviation section. 2227/// 2228void DwarfDebug::EmitAbbreviations() const { 2229 // Check to see if it is worth the effort. 2230 if (!Abbreviations.empty()) { 2231 // Start the debug abbrev section. 2232 Asm->OutStreamer.SwitchSection( 2233 Asm->getObjFileLowering().getDwarfAbbrevSection()); 2234 2235 EmitLabel("abbrev_begin", 0); 2236 2237 // For each abbrevation. 2238 for (unsigned i = 0, N = Abbreviations.size(); i < N; ++i) { 2239 // Get abbreviation data 2240 const DIEAbbrev *Abbrev = Abbreviations[i]; 2241 2242 // Emit the abbrevations code (base 1 index.) 2243 Asm->EmitULEB128Bytes(Abbrev->getNumber()); 2244 Asm->EOL("Abbreviation Code"); 2245 2246 // Emit the abbreviations data. 2247 Abbrev->Emit(Asm); 2248 2249 Asm->EOL(); 2250 } 2251 2252 // Mark end of abbreviations. 2253 Asm->EmitULEB128Bytes(0); Asm->EOL("EOM(3)"); 2254 2255 EmitLabel("abbrev_end", 0); 2256 Asm->EOL(); 2257 } 2258} 2259 2260/// EmitEndOfLineMatrix - Emit the last address of the section and the end of 2261/// the line matrix. 2262/// 2263void DwarfDebug::EmitEndOfLineMatrix(unsigned SectionEnd) { 2264 // Define last address of section. 2265 Asm->EmitInt8(0); Asm->EOL("Extended Op"); 2266 Asm->EmitInt8(TD->getPointerSize() + 1); Asm->EOL("Op size"); 2267 Asm->EmitInt8(dwarf::DW_LNE_set_address); Asm->EOL("DW_LNE_set_address"); 2268 EmitReference("section_end", SectionEnd); Asm->EOL("Section end label"); 2269 2270 // Mark end of matrix. 2271 Asm->EmitInt8(0); Asm->EOL("DW_LNE_end_sequence"); 2272 Asm->EmitULEB128Bytes(1); Asm->EOL(); 2273 Asm->EmitInt8(1); Asm->EOL(); 2274} 2275 2276/// EmitDebugLines - Emit source line information. 2277/// 2278void DwarfDebug::EmitDebugLines() { 2279 // If the target is using .loc/.file, the assembler will be emitting the 2280 // .debug_line table automatically. 2281 if (MAI->hasDotLocAndDotFile()) 2282 return; 2283 2284 // Minimum line delta, thus ranging from -10..(255-10). 2285 const int MinLineDelta = -(dwarf::DW_LNS_fixed_advance_pc + 1); 2286 // Maximum line delta, thus ranging from -10..(255-10). 2287 const int MaxLineDelta = 255 + MinLineDelta; 2288 2289 // Start the dwarf line section. 2290 Asm->OutStreamer.SwitchSection( 2291 Asm->getObjFileLowering().getDwarfLineSection()); 2292 2293 // Construct the section header. 2294 EmitDifference("line_end", 0, "line_begin", 0, true); 2295 Asm->EOL("Length of Source Line Info"); 2296 EmitLabel("line_begin", 0); 2297 2298 Asm->EmitInt16(dwarf::DWARF_VERSION); Asm->EOL("DWARF version number"); 2299 2300 EmitDifference("line_prolog_end", 0, "line_prolog_begin", 0, true); 2301 Asm->EOL("Prolog Length"); 2302 EmitLabel("line_prolog_begin", 0); 2303 2304 Asm->EmitInt8(1); Asm->EOL("Minimum Instruction Length"); 2305 2306 Asm->EmitInt8(1); Asm->EOL("Default is_stmt_start flag"); 2307 2308 Asm->EmitInt8(MinLineDelta); Asm->EOL("Line Base Value (Special Opcodes)"); 2309 2310 Asm->EmitInt8(MaxLineDelta); Asm->EOL("Line Range Value (Special Opcodes)"); 2311 2312 Asm->EmitInt8(-MinLineDelta); Asm->EOL("Special Opcode Base"); 2313 2314 // Line number standard opcode encodings argument count 2315 Asm->EmitInt8(0); Asm->EOL("DW_LNS_copy arg count"); 2316 Asm->EmitInt8(1); Asm->EOL("DW_LNS_advance_pc arg count"); 2317 Asm->EmitInt8(1); Asm->EOL("DW_LNS_advance_line arg count"); 2318 Asm->EmitInt8(1); Asm->EOL("DW_LNS_set_file arg count"); 2319 Asm->EmitInt8(1); Asm->EOL("DW_LNS_set_column arg count"); 2320 Asm->EmitInt8(0); Asm->EOL("DW_LNS_negate_stmt arg count"); 2321 Asm->EmitInt8(0); Asm->EOL("DW_LNS_set_basic_block arg count"); 2322 Asm->EmitInt8(0); Asm->EOL("DW_LNS_const_add_pc arg count"); 2323 Asm->EmitInt8(1); Asm->EOL("DW_LNS_fixed_advance_pc arg count"); 2324 2325 // Emit directories. 2326 for (unsigned DI = 1, DE = getNumSourceDirectories()+1; DI != DE; ++DI) { 2327 Asm->EmitString(getSourceDirectoryName(DI)); 2328 Asm->EOL("Directory"); 2329 } 2330 2331 Asm->EmitInt8(0); Asm->EOL("End of directories"); 2332 2333 // Emit files. 2334 for (unsigned SI = 1, SE = getNumSourceIds()+1; SI != SE; ++SI) { 2335 // Remember source id starts at 1. 2336 std::pair<unsigned, unsigned> Id = getSourceDirectoryAndFileIds(SI); 2337 Asm->EmitString(getSourceFileName(Id.second)); 2338 Asm->EOL("Source"); 2339 Asm->EmitULEB128Bytes(Id.first); 2340 Asm->EOL("Directory #"); 2341 Asm->EmitULEB128Bytes(0); 2342 Asm->EOL("Mod date"); 2343 Asm->EmitULEB128Bytes(0); 2344 Asm->EOL("File size"); 2345 } 2346 2347 Asm->EmitInt8(0); Asm->EOL("End of files"); 2348 2349 EmitLabel("line_prolog_end", 0); 2350 2351 // A sequence for each text section. 2352 unsigned SecSrcLinesSize = SectionSourceLines.size(); 2353 2354 for (unsigned j = 0; j < SecSrcLinesSize; ++j) { 2355 // Isolate current sections line info. 2356 const std::vector<SrcLineInfo> &LineInfos = SectionSourceLines[j]; 2357 2358 /*if (Asm->isVerbose()) { 2359 const MCSection *S = SectionMap[j + 1]; 2360 O << '\t' << MAI->getCommentString() << " Section" 2361 << S->getName() << '\n'; 2362 }*/ 2363 Asm->EOL(); 2364 2365 // Dwarf assumes we start with first line of first source file. 2366 unsigned Source = 1; 2367 unsigned Line = 1; 2368 2369 // Construct rows of the address, source, line, column matrix. 2370 for (unsigned i = 0, N = LineInfos.size(); i < N; ++i) { 2371 const SrcLineInfo &LineInfo = LineInfos[i]; 2372 unsigned LabelID = MMI->MappedLabel(LineInfo.getLabelID()); 2373 if (!LabelID) continue; 2374 2375 if (!Asm->isVerbose()) 2376 Asm->EOL(); 2377 else { 2378 std::pair<unsigned, unsigned> SourceID = 2379 getSourceDirectoryAndFileIds(LineInfo.getSourceID()); 2380 O << '\t' << MAI->getCommentString() << ' ' 2381 << getSourceDirectoryName(SourceID.first) << ' ' 2382 << getSourceFileName(SourceID.second) 2383 <<" :" << utostr_32(LineInfo.getLine()) << '\n'; 2384 } 2385 2386 // Define the line address. 2387 Asm->EmitInt8(0); Asm->EOL("Extended Op"); 2388 Asm->EmitInt8(TD->getPointerSize() + 1); Asm->EOL("Op size"); 2389 Asm->EmitInt8(dwarf::DW_LNE_set_address); Asm->EOL("DW_LNE_set_address"); 2390 EmitReference("label", LabelID); Asm->EOL("Location label"); 2391 2392 // If change of source, then switch to the new source. 2393 if (Source != LineInfo.getSourceID()) { 2394 Source = LineInfo.getSourceID(); 2395 Asm->EmitInt8(dwarf::DW_LNS_set_file); Asm->EOL("DW_LNS_set_file"); 2396 Asm->EmitULEB128Bytes(Source); Asm->EOL("New Source"); 2397 } 2398 2399 // If change of line. 2400 if (Line != LineInfo.getLine()) { 2401 // Determine offset. 2402 int Offset = LineInfo.getLine() - Line; 2403 int Delta = Offset - MinLineDelta; 2404 2405 // Update line. 2406 Line = LineInfo.getLine(); 2407 2408 // If delta is small enough and in range... 2409 if (Delta >= 0 && Delta < (MaxLineDelta - 1)) { 2410 // ... then use fast opcode. 2411 Asm->EmitInt8(Delta - MinLineDelta); Asm->EOL("Line Delta"); 2412 } else { 2413 // ... otherwise use long hand. 2414 Asm->EmitInt8(dwarf::DW_LNS_advance_line); 2415 Asm->EOL("DW_LNS_advance_line"); 2416 Asm->EmitSLEB128Bytes(Offset); Asm->EOL("Line Offset"); 2417 Asm->EmitInt8(dwarf::DW_LNS_copy); Asm->EOL("DW_LNS_copy"); 2418 } 2419 } else { 2420 // Copy the previous row (different address or source) 2421 Asm->EmitInt8(dwarf::DW_LNS_copy); Asm->EOL("DW_LNS_copy"); 2422 } 2423 } 2424 2425 EmitEndOfLineMatrix(j + 1); 2426 } 2427 2428 if (SecSrcLinesSize == 0) 2429 // Because we're emitting a debug_line section, we still need a line 2430 // table. The linker and friends expect it to exist. If there's nothing to 2431 // put into it, emit an empty table. 2432 EmitEndOfLineMatrix(1); 2433 2434 EmitLabel("line_end", 0); 2435 Asm->EOL(); 2436} 2437 2438/// EmitCommonDebugFrame - Emit common frame info into a debug frame section. 2439/// 2440void DwarfDebug::EmitCommonDebugFrame() { 2441 if (!MAI->doesDwarfRequireFrameSection()) 2442 return; 2443 2444 int stackGrowth = 2445 Asm->TM.getFrameInfo()->getStackGrowthDirection() == 2446 TargetFrameInfo::StackGrowsUp ? 2447 TD->getPointerSize() : -TD->getPointerSize(); 2448 2449 // Start the dwarf frame section. 2450 Asm->OutStreamer.SwitchSection( 2451 Asm->getObjFileLowering().getDwarfFrameSection()); 2452 2453 EmitLabel("debug_frame_common", 0); 2454 EmitDifference("debug_frame_common_end", 0, 2455 "debug_frame_common_begin", 0, true); 2456 Asm->EOL("Length of Common Information Entry"); 2457 2458 EmitLabel("debug_frame_common_begin", 0); 2459 Asm->EmitInt32((int)dwarf::DW_CIE_ID); 2460 Asm->EOL("CIE Identifier Tag"); 2461 Asm->EmitInt8(dwarf::DW_CIE_VERSION); 2462 Asm->EOL("CIE Version"); 2463 Asm->EmitString(""); 2464 Asm->EOL("CIE Augmentation"); 2465 Asm->EmitULEB128Bytes(1); 2466 Asm->EOL("CIE Code Alignment Factor"); 2467 Asm->EmitSLEB128Bytes(stackGrowth); 2468 Asm->EOL("CIE Data Alignment Factor"); 2469 Asm->EmitInt8(RI->getDwarfRegNum(RI->getRARegister(), false)); 2470 Asm->EOL("CIE RA Column"); 2471 2472 std::vector<MachineMove> Moves; 2473 RI->getInitialFrameState(Moves); 2474 2475 EmitFrameMoves(NULL, 0, Moves, false); 2476 2477 Asm->EmitAlignment(2, 0, 0, false); 2478 EmitLabel("debug_frame_common_end", 0); 2479 2480 Asm->EOL(); 2481} 2482 2483/// EmitFunctionDebugFrame - Emit per function frame info into a debug frame 2484/// section. 2485void 2486DwarfDebug::EmitFunctionDebugFrame(const FunctionDebugFrameInfo&DebugFrameInfo){ 2487 if (!MAI->doesDwarfRequireFrameSection()) 2488 return; 2489 2490 // Start the dwarf frame section. 2491 Asm->OutStreamer.SwitchSection( 2492 Asm->getObjFileLowering().getDwarfFrameSection()); 2493 2494 EmitDifference("debug_frame_end", DebugFrameInfo.Number, 2495 "debug_frame_begin", DebugFrameInfo.Number, true); 2496 Asm->EOL("Length of Frame Information Entry"); 2497 2498 EmitLabel("debug_frame_begin", DebugFrameInfo.Number); 2499 2500 EmitSectionOffset("debug_frame_common", "section_debug_frame", 2501 0, 0, true, false); 2502 Asm->EOL("FDE CIE offset"); 2503 2504 EmitReference("func_begin", DebugFrameInfo.Number); 2505 Asm->EOL("FDE initial location"); 2506 EmitDifference("func_end", DebugFrameInfo.Number, 2507 "func_begin", DebugFrameInfo.Number); 2508 Asm->EOL("FDE address range"); 2509 2510 EmitFrameMoves("func_begin", DebugFrameInfo.Number, DebugFrameInfo.Moves, 2511 false); 2512 2513 Asm->EmitAlignment(2, 0, 0, false); 2514 EmitLabel("debug_frame_end", DebugFrameInfo.Number); 2515 2516 Asm->EOL(); 2517} 2518 2519void DwarfDebug::EmitDebugPubNamesPerCU(CompileUnit *Unit) { 2520 EmitDifference("pubnames_end", Unit->getID(), 2521 "pubnames_begin", Unit->getID(), true); 2522 Asm->EOL("Length of Public Names Info"); 2523 2524 EmitLabel("pubnames_begin", Unit->getID()); 2525 2526 Asm->EmitInt16(dwarf::DWARF_VERSION); Asm->EOL("DWARF Version"); 2527 2528 EmitSectionOffset("info_begin", "section_info", 2529 Unit->getID(), 0, true, false); 2530 Asm->EOL("Offset of Compilation Unit Info"); 2531 2532 EmitDifference("info_end", Unit->getID(), "info_begin", Unit->getID(), 2533 true); 2534 Asm->EOL("Compilation Unit Length"); 2535 2536 StringMap<DIE*> &Globals = Unit->getGlobals(); 2537 for (StringMap<DIE*>::const_iterator 2538 GI = Globals.begin(), GE = Globals.end(); GI != GE; ++GI) { 2539 const char *Name = GI->getKeyData(); 2540 DIE * Entity = GI->second; 2541 2542 Asm->EmitInt32(Entity->getOffset()); Asm->EOL("DIE offset"); 2543 Asm->EmitString(Name, strlen(Name)); Asm->EOL("External Name"); 2544 } 2545 2546 Asm->EmitInt32(0); Asm->EOL("End Mark"); 2547 EmitLabel("pubnames_end", Unit->getID()); 2548 2549 Asm->EOL(); 2550} 2551 2552/// EmitDebugPubNames - Emit visible names into a debug pubnames section. 2553/// 2554void DwarfDebug::EmitDebugPubNames() { 2555 // Start the dwarf pubnames section. 2556 Asm->OutStreamer.SwitchSection( 2557 Asm->getObjFileLowering().getDwarfPubNamesSection()); 2558 2559 EmitDebugPubNamesPerCU(ModuleCU); 2560} 2561 2562/// EmitDebugStr - Emit visible names into a debug str section. 2563/// 2564void DwarfDebug::EmitDebugStr() { 2565 // Check to see if it is worth the effort. 2566 if (!StringPool.empty()) { 2567 // Start the dwarf str section. 2568 Asm->OutStreamer.SwitchSection( 2569 Asm->getObjFileLowering().getDwarfStrSection()); 2570 2571 // For each of strings in the string pool. 2572 for (unsigned StringID = 1, N = StringPool.size(); 2573 StringID <= N; ++StringID) { 2574 // Emit a label for reference from debug information entries. 2575 EmitLabel("string", StringID); 2576 2577 // Emit the string itself. 2578 const std::string &String = StringPool[StringID]; 2579 Asm->EmitString(String); Asm->EOL(); 2580 } 2581 2582 Asm->EOL(); 2583 } 2584} 2585 2586/// EmitDebugLoc - Emit visible names into a debug loc section. 2587/// 2588void DwarfDebug::EmitDebugLoc() { 2589 // Start the dwarf loc section. 2590 Asm->OutStreamer.SwitchSection( 2591 Asm->getObjFileLowering().getDwarfLocSection()); 2592 Asm->EOL(); 2593} 2594 2595/// EmitDebugARanges - Emit visible names into a debug aranges section. 2596/// 2597void DwarfDebug::EmitDebugARanges() { 2598 // Start the dwarf aranges section. 2599 Asm->OutStreamer.SwitchSection( 2600 Asm->getObjFileLowering().getDwarfARangesSection()); 2601 2602 // FIXME - Mock up 2603#if 0 2604 CompileUnit *Unit = GetBaseCompileUnit(); 2605 2606 // Don't include size of length 2607 Asm->EmitInt32(0x1c); Asm->EOL("Length of Address Ranges Info"); 2608 2609 Asm->EmitInt16(dwarf::DWARF_VERSION); Asm->EOL("Dwarf Version"); 2610 2611 EmitReference("info_begin", Unit->getID()); 2612 Asm->EOL("Offset of Compilation Unit Info"); 2613 2614 Asm->EmitInt8(TD->getPointerSize()); Asm->EOL("Size of Address"); 2615 2616 Asm->EmitInt8(0); Asm->EOL("Size of Segment Descriptor"); 2617 2618 Asm->EmitInt16(0); Asm->EOL("Pad (1)"); 2619 Asm->EmitInt16(0); Asm->EOL("Pad (2)"); 2620 2621 // Range 1 2622 EmitReference("text_begin", 0); Asm->EOL("Address"); 2623 EmitDifference("text_end", 0, "text_begin", 0, true); Asm->EOL("Length"); 2624 2625 Asm->EmitInt32(0); Asm->EOL("EOM (1)"); 2626 Asm->EmitInt32(0); Asm->EOL("EOM (2)"); 2627#endif 2628 2629 Asm->EOL(); 2630} 2631 2632/// EmitDebugRanges - Emit visible names into a debug ranges section. 2633/// 2634void DwarfDebug::EmitDebugRanges() { 2635 // Start the dwarf ranges section. 2636 Asm->OutStreamer.SwitchSection( 2637 Asm->getObjFileLowering().getDwarfRangesSection()); 2638 Asm->EOL(); 2639} 2640 2641/// EmitDebugMacInfo - Emit visible names into a debug macinfo section. 2642/// 2643void DwarfDebug::EmitDebugMacInfo() { 2644 if (const MCSection *LineInfo = 2645 Asm->getObjFileLowering().getDwarfMacroInfoSection()) { 2646 // Start the dwarf macinfo section. 2647 Asm->OutStreamer.SwitchSection(LineInfo); 2648 Asm->EOL(); 2649 } 2650} 2651 2652/// EmitDebugInlineInfo - Emit inline info using following format. 2653/// Section Header: 2654/// 1. length of section 2655/// 2. Dwarf version number 2656/// 3. address size. 2657/// 2658/// Entries (one "entry" for each function that was inlined): 2659/// 2660/// 1. offset into __debug_str section for MIPS linkage name, if exists; 2661/// otherwise offset into __debug_str for regular function name. 2662/// 2. offset into __debug_str section for regular function name. 2663/// 3. an unsigned LEB128 number indicating the number of distinct inlining 2664/// instances for the function. 2665/// 2666/// The rest of the entry consists of a {die_offset, low_pc} pair for each 2667/// inlined instance; the die_offset points to the inlined_subroutine die in the 2668/// __debug_info section, and the low_pc is the starting address for the 2669/// inlining instance. 2670void DwarfDebug::EmitDebugInlineInfo() { 2671 if (!MAI->doesDwarfUsesInlineInfoSection()) 2672 return; 2673 2674 if (!ModuleCU) 2675 return; 2676 2677 Asm->OutStreamer.SwitchSection( 2678 Asm->getObjFileLowering().getDwarfDebugInlineSection()); 2679 Asm->EOL(); 2680 EmitDifference("debug_inlined_end", 1, 2681 "debug_inlined_begin", 1, true); 2682 Asm->EOL("Length of Debug Inlined Information Entry"); 2683 2684 EmitLabel("debug_inlined_begin", 1); 2685 2686 Asm->EmitInt16(dwarf::DWARF_VERSION); Asm->EOL("Dwarf Version"); 2687 Asm->EmitInt8(TD->getPointerSize()); Asm->EOL("Address Size (in bytes)"); 2688 2689 for (DenseMap<MDNode *, SmallVector<unsigned, 4> >::iterator 2690 I = InlineInfo.begin(), E = InlineInfo.end(); I != E; ++I) { 2691 MDNode *Node = I->first; 2692 SmallVector<unsigned, 4> &Labels = I->second; 2693 DISubprogram SP(Node); 2694 std::string Name; 2695 std::string LName; 2696 2697 SP.getLinkageName(LName); 2698 SP.getName(Name); 2699 2700 if (LName.empty()) 2701 Asm->EmitString(Name); 2702 else { 2703 // Skip special LLVM prefix that is used to inform the asm printer to not 2704 // emit usual symbol prefix before the symbol name. This happens for 2705 // Objective-C symbol names and symbol whose name is replaced using GCC's 2706 // __asm__ attribute. 2707 if (LName[0] == 1) 2708 LName = &LName[1]; 2709 Asm->EmitString(LName); 2710 } 2711 Asm->EOL("MIPS linkage name"); 2712 2713 Asm->EmitString(Name); Asm->EOL("Function name"); 2714 2715 Asm->EmitULEB128Bytes(Labels.size()); Asm->EOL("Inline count"); 2716 2717 for (SmallVector<unsigned, 4>::iterator LI = Labels.begin(), 2718 LE = Labels.end(); LI != LE; ++LI) { 2719 DIE *SP = ModuleCU->getDieMapSlotFor(Node); 2720 Asm->EmitInt32(SP->getOffset()); Asm->EOL("DIE offset"); 2721 2722 if (TD->getPointerSize() == sizeof(int32_t)) 2723 O << MAI->getData32bitsDirective(); 2724 else 2725 O << MAI->getData64bitsDirective(); 2726 2727 PrintLabelName("label", *LI); Asm->EOL("low_pc"); 2728 } 2729 } 2730 2731 EmitLabel("debug_inlined_end", 1); 2732 Asm->EOL(); 2733} 2734