1 //===- llvm/CodeGen/DwarfCompileUnit.cpp - Dwarf Compile Units ------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file contains support for constructing a dwarf compile unit. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "DwarfCompileUnit.h" 14 #include "AddressPool.h" 15 #include "DwarfDebug.h" 16 #include "DwarfExpression.h" 17 #include "DwarfUnit.h" 18 #include "llvm/ADT/None.h" 19 #include "llvm/ADT/STLExtras.h" 20 #include "llvm/ADT/SmallString.h" 21 #include "llvm/ADT/SmallVector.h" 22 #include "llvm/ADT/StringRef.h" 23 #include "llvm/BinaryFormat/Dwarf.h" 24 #include "llvm/CodeGen/AsmPrinter.h" 25 #include "llvm/CodeGen/DIE.h" 26 #include "llvm/CodeGen/LexicalScopes.h" 27 #include "llvm/CodeGen/MachineFunction.h" 28 #include "llvm/CodeGen/MachineInstr.h" 29 #include "llvm/CodeGen/MachineOperand.h" 30 #include "llvm/CodeGen/TargetFrameLowering.h" 31 #include "llvm/CodeGen/TargetRegisterInfo.h" 32 #include "llvm/CodeGen/TargetSubtargetInfo.h" 33 #include "llvm/IR/DataLayout.h" 34 #include "llvm/IR/DebugInfo.h" 35 #include "llvm/IR/DebugInfoMetadata.h" 36 #include "llvm/IR/GlobalVariable.h" 37 #include "llvm/MC/MCSection.h" 38 #include "llvm/MC/MCStreamer.h" 39 #include "llvm/MC/MCSymbol.h" 40 #include "llvm/MC/MachineLocation.h" 41 #include "llvm/Support/Casting.h" 42 #include "llvm/Target/TargetLoweringObjectFile.h" 43 #include "llvm/Target/TargetMachine.h" 44 #include "llvm/Target/TargetOptions.h" 45 #include <algorithm> 46 #include <cassert> 47 #include <cstdint> 48 #include <iterator> 49 #include <memory> 50 #include <string> 51 #include <utility> 52 53 using namespace llvm; 54 55 DwarfCompileUnit::DwarfCompileUnit(unsigned UID, const DICompileUnit *Node, 56 AsmPrinter *A, DwarfDebug *DW, 57 DwarfFile *DWU) 58 : DwarfUnit(dwarf::DW_TAG_compile_unit, Node, A, DW, DWU), UniqueID(UID) { 59 insertDIE(Node, &getUnitDie()); 60 MacroLabelBegin = Asm->createTempSymbol("cu_macro_begin"); 61 } 62 63 /// addLabelAddress - Add a dwarf label attribute data and value using 64 /// DW_FORM_addr or DW_FORM_GNU_addr_index. 65 void DwarfCompileUnit::addLabelAddress(DIE &Die, dwarf::Attribute Attribute, 66 const MCSymbol *Label) { 67 // Don't use the address pool in non-fission or in the skeleton unit itself. 68 // FIXME: Once GDB supports this, it's probably worthwhile using the address 69 // pool from the skeleton - maybe even in non-fission (possibly fewer 70 // relocations by sharing them in the pool, but we have other ideas about how 71 // to reduce the number of relocations as well/instead). 72 if ((!DD->useSplitDwarf() || !Skeleton) && DD->getDwarfVersion() < 5) 73 return addLocalLabelAddress(Die, Attribute, Label); 74 75 if (Label) 76 DD->addArangeLabel(SymbolCU(this, Label)); 77 78 unsigned idx = DD->getAddressPool().getIndex(Label); 79 Die.addValue(DIEValueAllocator, Attribute, 80 DD->getDwarfVersion() >= 5 ? dwarf::DW_FORM_addrx 81 : dwarf::DW_FORM_GNU_addr_index, 82 DIEInteger(idx)); 83 } 84 85 void DwarfCompileUnit::addLocalLabelAddress(DIE &Die, 86 dwarf::Attribute Attribute, 87 const MCSymbol *Label) { 88 if (Label) 89 DD->addArangeLabel(SymbolCU(this, Label)); 90 91 if (Label) 92 Die.addValue(DIEValueAllocator, Attribute, dwarf::DW_FORM_addr, 93 DIELabel(Label)); 94 else 95 Die.addValue(DIEValueAllocator, Attribute, dwarf::DW_FORM_addr, 96 DIEInteger(0)); 97 } 98 99 unsigned DwarfCompileUnit::getOrCreateSourceID(const DIFile *File) { 100 // If we print assembly, we can't separate .file entries according to 101 // compile units. Thus all files will belong to the default compile unit. 102 103 // FIXME: add a better feature test than hasRawTextSupport. Even better, 104 // extend .file to support this. 105 unsigned CUID = Asm->OutStreamer->hasRawTextSupport() ? 0 : getUniqueID(); 106 if (!File) 107 return Asm->OutStreamer->EmitDwarfFileDirective(0, "", "", None, None, CUID); 108 return Asm->OutStreamer->EmitDwarfFileDirective( 109 0, File->getDirectory(), File->getFilename(), getMD5AsBytes(File), 110 File->getSource(), CUID); 111 } 112 113 DIE *DwarfCompileUnit::getOrCreateGlobalVariableDIE( 114 const DIGlobalVariable *GV, ArrayRef<GlobalExpr> GlobalExprs) { 115 // Check for pre-existence. 116 if (DIE *Die = getDIE(GV)) 117 return Die; 118 119 assert(GV); 120 121 auto *GVContext = GV->getScope(); 122 const DIType *GTy = GV->getType(); 123 124 // Construct the context before querying for the existence of the DIE in 125 // case such construction creates the DIE. 126 auto *CB = GVContext ? dyn_cast<DICommonBlock>(GVContext) : nullptr; 127 DIE *ContextDIE = CB ? getOrCreateCommonBlock(CB, GlobalExprs) 128 : getOrCreateContextDIE(GVContext); 129 130 // Add to map. 131 DIE *VariableDIE = &createAndAddDIE(GV->getTag(), *ContextDIE, GV); 132 DIScope *DeclContext; 133 if (auto *SDMDecl = GV->getStaticDataMemberDeclaration()) { 134 DeclContext = SDMDecl->getScope(); 135 assert(SDMDecl->isStaticMember() && "Expected static member decl"); 136 assert(GV->isDefinition()); 137 // We need the declaration DIE that is in the static member's class. 138 DIE *VariableSpecDIE = getOrCreateStaticMemberDIE(SDMDecl); 139 addDIEEntry(*VariableDIE, dwarf::DW_AT_specification, *VariableSpecDIE); 140 // If the global variable's type is different from the one in the class 141 // member type, assume that it's more specific and also emit it. 142 if (GTy != SDMDecl->getBaseType()) 143 addType(*VariableDIE, GTy); 144 } else { 145 DeclContext = GV->getScope(); 146 // Add name and type. 147 addString(*VariableDIE, dwarf::DW_AT_name, GV->getDisplayName()); 148 addType(*VariableDIE, GTy); 149 150 // Add scoping info. 151 if (!GV->isLocalToUnit()) 152 addFlag(*VariableDIE, dwarf::DW_AT_external); 153 154 // Add line number info. 155 addSourceLine(*VariableDIE, GV); 156 } 157 158 if (!GV->isDefinition()) 159 addFlag(*VariableDIE, dwarf::DW_AT_declaration); 160 else 161 addGlobalName(GV->getName(), *VariableDIE, DeclContext); 162 163 if (uint32_t AlignInBytes = GV->getAlignInBytes()) 164 addUInt(*VariableDIE, dwarf::DW_AT_alignment, dwarf::DW_FORM_udata, 165 AlignInBytes); 166 167 if (MDTuple *TP = GV->getTemplateParams()) 168 addTemplateParams(*VariableDIE, DINodeArray(TP)); 169 170 // Add location. 171 addLocationAttribute(VariableDIE, GV, GlobalExprs); 172 173 return VariableDIE; 174 } 175 176 void DwarfCompileUnit::addLocationAttribute( 177 DIE *VariableDIE, const DIGlobalVariable *GV, ArrayRef<GlobalExpr> GlobalExprs) { 178 bool addToAccelTable = false; 179 DIELoc *Loc = nullptr; 180 Optional<unsigned> NVPTXAddressSpace; 181 std::unique_ptr<DIEDwarfExpression> DwarfExpr; 182 for (const auto &GE : GlobalExprs) { 183 const GlobalVariable *Global = GE.Var; 184 const DIExpression *Expr = GE.Expr; 185 186 // For compatibility with DWARF 3 and earlier, 187 // DW_AT_location(DW_OP_constu, X, DW_OP_stack_value) becomes 188 // DW_AT_const_value(X). 189 if (GlobalExprs.size() == 1 && Expr && Expr->isConstant()) { 190 addToAccelTable = true; 191 addConstantValue(*VariableDIE, /*Unsigned=*/true, Expr->getElement(1)); 192 break; 193 } 194 195 // We cannot describe the location of dllimport'd variables: the 196 // computation of their address requires loads from the IAT. 197 if (Global && Global->hasDLLImportStorageClass()) 198 continue; 199 200 // Nothing to describe without address or constant. 201 if (!Global && (!Expr || !Expr->isConstant())) 202 continue; 203 204 if (Global && Global->isThreadLocal() && 205 !Asm->getObjFileLowering().supportDebugThreadLocalLocation()) 206 continue; 207 208 if (!Loc) { 209 addToAccelTable = true; 210 Loc = new (DIEValueAllocator) DIELoc; 211 DwarfExpr = llvm::make_unique<DIEDwarfExpression>(*Asm, *this, *Loc); 212 } 213 214 if (Expr) { 215 // According to 216 // https://docs.nvidia.com/cuda/archive/10.0/ptx-writers-guide-to-interoperability/index.html#cuda-specific-dwarf 217 // cuda-gdb requires DW_AT_address_class for all variables to be able to 218 // correctly interpret address space of the variable address. 219 // Decode DW_OP_constu <DWARF Address Space> DW_OP_swap DW_OP_xderef 220 // sequence for the NVPTX + gdb target. 221 unsigned LocalNVPTXAddressSpace; 222 if (Asm->TM.getTargetTriple().isNVPTX() && DD->tuneForGDB()) { 223 const DIExpression *NewExpr = 224 DIExpression::extractAddressClass(Expr, LocalNVPTXAddressSpace); 225 if (NewExpr != Expr) { 226 Expr = NewExpr; 227 NVPTXAddressSpace = LocalNVPTXAddressSpace; 228 } 229 } 230 DwarfExpr->addFragmentOffset(Expr); 231 } 232 233 if (Global) { 234 const MCSymbol *Sym = Asm->getSymbol(Global); 235 if (Global->isThreadLocal()) { 236 if (Asm->TM.useEmulatedTLS()) { 237 // TODO: add debug info for emulated thread local mode. 238 } else { 239 // FIXME: Make this work with -gsplit-dwarf. 240 unsigned PointerSize = Asm->getDataLayout().getPointerSize(); 241 assert((PointerSize == 4 || PointerSize == 8) && 242 "Add support for other sizes if necessary"); 243 // Based on GCC's support for TLS: 244 if (!DD->useSplitDwarf()) { 245 // 1) Start with a constNu of the appropriate pointer size 246 addUInt(*Loc, dwarf::DW_FORM_data1, 247 PointerSize == 4 ? dwarf::DW_OP_const4u 248 : dwarf::DW_OP_const8u); 249 // 2) containing the (relocated) offset of the TLS variable 250 // within the module's TLS block. 251 addExpr(*Loc, dwarf::DW_FORM_udata, 252 Asm->getObjFileLowering().getDebugThreadLocalSymbol(Sym)); 253 } else { 254 addUInt(*Loc, dwarf::DW_FORM_data1, dwarf::DW_OP_GNU_const_index); 255 addUInt(*Loc, dwarf::DW_FORM_udata, 256 DD->getAddressPool().getIndex(Sym, /* TLS */ true)); 257 } 258 // 3) followed by an OP to make the debugger do a TLS lookup. 259 addUInt(*Loc, dwarf::DW_FORM_data1, 260 DD->useGNUTLSOpcode() ? dwarf::DW_OP_GNU_push_tls_address 261 : dwarf::DW_OP_form_tls_address); 262 } 263 } else { 264 DD->addArangeLabel(SymbolCU(this, Sym)); 265 addOpAddress(*Loc, Sym); 266 } 267 } 268 // Global variables attached to symbols are memory locations. 269 // It would be better if this were unconditional, but malformed input that 270 // mixes non-fragments and fragments for the same variable is too expensive 271 // to detect in the verifier. 272 if (DwarfExpr->isUnknownLocation()) 273 DwarfExpr->setMemoryLocationKind(); 274 DwarfExpr->addExpression(Expr); 275 } 276 if (Asm->TM.getTargetTriple().isNVPTX() && DD->tuneForGDB()) { 277 // According to 278 // https://docs.nvidia.com/cuda/archive/10.0/ptx-writers-guide-to-interoperability/index.html#cuda-specific-dwarf 279 // cuda-gdb requires DW_AT_address_class for all variables to be able to 280 // correctly interpret address space of the variable address. 281 const unsigned NVPTX_ADDR_global_space = 5; 282 addUInt(*VariableDIE, dwarf::DW_AT_address_class, dwarf::DW_FORM_data1, 283 NVPTXAddressSpace ? *NVPTXAddressSpace : NVPTX_ADDR_global_space); 284 } 285 if (Loc) 286 addBlock(*VariableDIE, dwarf::DW_AT_location, DwarfExpr->finalize()); 287 288 if (DD->useAllLinkageNames()) 289 addLinkageName(*VariableDIE, GV->getLinkageName()); 290 291 if (addToAccelTable) { 292 DD->addAccelName(*CUNode, GV->getName(), *VariableDIE); 293 294 // If the linkage name is different than the name, go ahead and output 295 // that as well into the name table. 296 if (GV->getLinkageName() != "" && GV->getName() != GV->getLinkageName() && 297 DD->useAllLinkageNames()) 298 DD->addAccelName(*CUNode, GV->getLinkageName(), *VariableDIE); 299 } 300 } 301 302 DIE *DwarfCompileUnit::getOrCreateCommonBlock( 303 const DICommonBlock *CB, ArrayRef<GlobalExpr> GlobalExprs) { 304 // Construct the context before querying for the existence of the DIE in case 305 // such construction creates the DIE. 306 DIE *ContextDIE = getOrCreateContextDIE(CB->getScope()); 307 308 if (DIE *NDie = getDIE(CB)) 309 return NDie; 310 DIE &NDie = createAndAddDIE(dwarf::DW_TAG_common_block, *ContextDIE, CB); 311 StringRef Name = CB->getName().empty() ? "_BLNK_" : CB->getName(); 312 addString(NDie, dwarf::DW_AT_name, Name); 313 addGlobalName(Name, NDie, CB->getScope()); 314 if (CB->getFile()) 315 addSourceLine(NDie, CB->getLineNo(), CB->getFile()); 316 if (DIGlobalVariable *V = CB->getDecl()) 317 getCU().addLocationAttribute(&NDie, V, GlobalExprs); 318 return &NDie; 319 } 320 321 void DwarfCompileUnit::addRange(RangeSpan Range) { 322 bool SameAsPrevCU = this == DD->getPrevCU(); 323 DD->setPrevCU(this); 324 // If we have no current ranges just add the range and return, otherwise, 325 // check the current section and CU against the previous section and CU we 326 // emitted into and the subprogram was contained within. If these are the 327 // same then extend our current range, otherwise add this as a new range. 328 if (CURanges.empty() || !SameAsPrevCU || 329 (&CURanges.back().getEnd()->getSection() != 330 &Range.getEnd()->getSection())) { 331 CURanges.push_back(Range); 332 DD->addSectionLabel(Range.getStart()); 333 return; 334 } 335 336 CURanges.back().setEnd(Range.getEnd()); 337 } 338 339 void DwarfCompileUnit::initStmtList() { 340 if (CUNode->isDebugDirectivesOnly()) 341 return; 342 343 // Define start line table label for each Compile Unit. 344 MCSymbol *LineTableStartSym; 345 const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering(); 346 if (DD->useSectionsAsReferences()) { 347 LineTableStartSym = TLOF.getDwarfLineSection()->getBeginSymbol(); 348 } else { 349 LineTableStartSym = 350 Asm->OutStreamer->getDwarfLineTableSymbol(getUniqueID()); 351 } 352 353 // DW_AT_stmt_list is a offset of line number information for this 354 // compile unit in debug_line section. For split dwarf this is 355 // left in the skeleton CU and so not included. 356 // The line table entries are not always emitted in assembly, so it 357 // is not okay to use line_table_start here. 358 StmtListValue = 359 addSectionLabel(getUnitDie(), dwarf::DW_AT_stmt_list, LineTableStartSym, 360 TLOF.getDwarfLineSection()->getBeginSymbol()); 361 } 362 363 void DwarfCompileUnit::applyStmtList(DIE &D) { 364 D.addValue(DIEValueAllocator, *StmtListValue); 365 } 366 367 void DwarfCompileUnit::attachLowHighPC(DIE &D, const MCSymbol *Begin, 368 const MCSymbol *End) { 369 assert(Begin && "Begin label should not be null!"); 370 assert(End && "End label should not be null!"); 371 assert(Begin->isDefined() && "Invalid starting label"); 372 assert(End->isDefined() && "Invalid end label"); 373 374 addLabelAddress(D, dwarf::DW_AT_low_pc, Begin); 375 if (DD->getDwarfVersion() < 4) 376 addLabelAddress(D, dwarf::DW_AT_high_pc, End); 377 else 378 addLabelDelta(D, dwarf::DW_AT_high_pc, End, Begin); 379 } 380 381 // Find DIE for the given subprogram and attach appropriate DW_AT_low_pc 382 // and DW_AT_high_pc attributes. If there are global variables in this 383 // scope then create and insert DIEs for these variables. 384 DIE &DwarfCompileUnit::updateSubprogramScopeDIE(const DISubprogram *SP) { 385 DIE *SPDie = getOrCreateSubprogramDIE(SP, includeMinimalInlineScopes()); 386 387 attachLowHighPC(*SPDie, Asm->getFunctionBegin(), Asm->getFunctionEnd()); 388 if (DD->useAppleExtensionAttributes() && 389 !DD->getCurrentFunction()->getTarget().Options.DisableFramePointerElim( 390 *DD->getCurrentFunction())) 391 addFlag(*SPDie, dwarf::DW_AT_APPLE_omit_frame_ptr); 392 393 // Only include DW_AT_frame_base in full debug info 394 if (!includeMinimalInlineScopes()) { 395 if (Asm->MF->getTarget().getTargetTriple().isNVPTX()) { 396 DIELoc *Loc = new (DIEValueAllocator) DIELoc; 397 addUInt(*Loc, dwarf::DW_FORM_data1, dwarf::DW_OP_call_frame_cfa); 398 addBlock(*SPDie, dwarf::DW_AT_frame_base, Loc); 399 } else { 400 const TargetRegisterInfo *RI = Asm->MF->getSubtarget().getRegisterInfo(); 401 MachineLocation Location(RI->getFrameRegister(*Asm->MF)); 402 if (RI->isPhysicalRegister(Location.getReg())) 403 addAddress(*SPDie, dwarf::DW_AT_frame_base, Location); 404 } 405 } 406 407 // Add name to the name table, we do this here because we're guaranteed 408 // to have concrete versions of our DW_TAG_subprogram nodes. 409 DD->addSubprogramNames(*CUNode, SP, *SPDie); 410 411 return *SPDie; 412 } 413 414 // Construct a DIE for this scope. 415 void DwarfCompileUnit::constructScopeDIE( 416 LexicalScope *Scope, SmallVectorImpl<DIE *> &FinalChildren) { 417 if (!Scope || !Scope->getScopeNode()) 418 return; 419 420 auto *DS = Scope->getScopeNode(); 421 422 assert((Scope->getInlinedAt() || !isa<DISubprogram>(DS)) && 423 "Only handle inlined subprograms here, use " 424 "constructSubprogramScopeDIE for non-inlined " 425 "subprograms"); 426 427 SmallVector<DIE *, 8> Children; 428 429 // We try to create the scope DIE first, then the children DIEs. This will 430 // avoid creating un-used children then removing them later when we find out 431 // the scope DIE is null. 432 DIE *ScopeDIE; 433 if (Scope->getParent() && isa<DISubprogram>(DS)) { 434 ScopeDIE = constructInlinedScopeDIE(Scope); 435 if (!ScopeDIE) 436 return; 437 // We create children when the scope DIE is not null. 438 createScopeChildrenDIE(Scope, Children); 439 } else { 440 // Early exit when we know the scope DIE is going to be null. 441 if (DD->isLexicalScopeDIENull(Scope)) 442 return; 443 444 bool HasNonScopeChildren = false; 445 446 // We create children here when we know the scope DIE is not going to be 447 // null and the children will be added to the scope DIE. 448 createScopeChildrenDIE(Scope, Children, &HasNonScopeChildren); 449 450 // If there are only other scopes as children, put them directly in the 451 // parent instead, as this scope would serve no purpose. 452 if (!HasNonScopeChildren) { 453 FinalChildren.insert(FinalChildren.end(), 454 std::make_move_iterator(Children.begin()), 455 std::make_move_iterator(Children.end())); 456 return; 457 } 458 ScopeDIE = constructLexicalScopeDIE(Scope); 459 assert(ScopeDIE && "Scope DIE should not be null."); 460 } 461 462 // Add children 463 for (auto &I : Children) 464 ScopeDIE->addChild(std::move(I)); 465 466 FinalChildren.push_back(std::move(ScopeDIE)); 467 } 468 469 void DwarfCompileUnit::addScopeRangeList(DIE &ScopeDIE, 470 SmallVector<RangeSpan, 2> Range) { 471 const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering(); 472 473 // Emit the offset into .debug_ranges or .debug_rnglists as a relocatable 474 // label. emitDIE() will handle emitting it appropriately. 475 const MCSymbol *RangeSectionSym = 476 DD->getDwarfVersion() >= 5 477 ? TLOF.getDwarfRnglistsSection()->getBeginSymbol() 478 : TLOF.getDwarfRangesSection()->getBeginSymbol(); 479 480 HasRangeLists = true; 481 482 // Add the range list to the set of ranges to be emitted. 483 auto IndexAndList = 484 (DD->getDwarfVersion() < 5 && Skeleton ? Skeleton->DU : DU) 485 ->addRange(*(Skeleton ? Skeleton : this), std::move(Range)); 486 487 uint32_t Index = IndexAndList.first; 488 auto &List = *IndexAndList.second; 489 490 // Under fission, ranges are specified by constant offsets relative to the 491 // CU's DW_AT_GNU_ranges_base. 492 // FIXME: For DWARF v5, do not generate the DW_AT_ranges attribute under 493 // fission until we support the forms using the .debug_addr section 494 // (DW_RLE_startx_endx etc.). 495 if (DD->getDwarfVersion() >= 5) 496 addUInt(ScopeDIE, dwarf::DW_AT_ranges, dwarf::DW_FORM_rnglistx, Index); 497 else if (isDwoUnit()) 498 addSectionDelta(ScopeDIE, dwarf::DW_AT_ranges, List.getSym(), 499 RangeSectionSym); 500 else 501 addSectionLabel(ScopeDIE, dwarf::DW_AT_ranges, List.getSym(), 502 RangeSectionSym); 503 } 504 505 void DwarfCompileUnit::attachRangesOrLowHighPC( 506 DIE &Die, SmallVector<RangeSpan, 2> Ranges) { 507 if (Ranges.size() == 1 || !DD->useRangesSection()) { 508 const RangeSpan &Front = Ranges.front(); 509 const RangeSpan &Back = Ranges.back(); 510 attachLowHighPC(Die, Front.getStart(), Back.getEnd()); 511 } else 512 addScopeRangeList(Die, std::move(Ranges)); 513 } 514 515 void DwarfCompileUnit::attachRangesOrLowHighPC( 516 DIE &Die, const SmallVectorImpl<InsnRange> &Ranges) { 517 SmallVector<RangeSpan, 2> List; 518 List.reserve(Ranges.size()); 519 for (const InsnRange &R : Ranges) 520 List.push_back(RangeSpan(DD->getLabelBeforeInsn(R.first), 521 DD->getLabelAfterInsn(R.second))); 522 attachRangesOrLowHighPC(Die, std::move(List)); 523 } 524 525 // This scope represents inlined body of a function. Construct DIE to 526 // represent this concrete inlined copy of the function. 527 DIE *DwarfCompileUnit::constructInlinedScopeDIE(LexicalScope *Scope) { 528 assert(Scope->getScopeNode()); 529 auto *DS = Scope->getScopeNode(); 530 auto *InlinedSP = getDISubprogram(DS); 531 // Find the subprogram's DwarfCompileUnit in the SPMap in case the subprogram 532 // was inlined from another compile unit. 533 DIE *OriginDIE = getAbstractSPDies()[InlinedSP]; 534 assert(OriginDIE && "Unable to find original DIE for an inlined subprogram."); 535 536 auto ScopeDIE = DIE::get(DIEValueAllocator, dwarf::DW_TAG_inlined_subroutine); 537 addDIEEntry(*ScopeDIE, dwarf::DW_AT_abstract_origin, *OriginDIE); 538 539 attachRangesOrLowHighPC(*ScopeDIE, Scope->getRanges()); 540 541 // Add the call site information to the DIE. 542 const DILocation *IA = Scope->getInlinedAt(); 543 addUInt(*ScopeDIE, dwarf::DW_AT_call_file, None, 544 getOrCreateSourceID(IA->getFile())); 545 addUInt(*ScopeDIE, dwarf::DW_AT_call_line, None, IA->getLine()); 546 if (IA->getColumn()) 547 addUInt(*ScopeDIE, dwarf::DW_AT_call_column, None, IA->getColumn()); 548 if (IA->getDiscriminator() && DD->getDwarfVersion() >= 4) 549 addUInt(*ScopeDIE, dwarf::DW_AT_GNU_discriminator, None, 550 IA->getDiscriminator()); 551 552 // Add name to the name table, we do this here because we're guaranteed 553 // to have concrete versions of our DW_TAG_inlined_subprogram nodes. 554 DD->addSubprogramNames(*CUNode, InlinedSP, *ScopeDIE); 555 556 return ScopeDIE; 557 } 558 559 // Construct new DW_TAG_lexical_block for this scope and attach 560 // DW_AT_low_pc/DW_AT_high_pc labels. 561 DIE *DwarfCompileUnit::constructLexicalScopeDIE(LexicalScope *Scope) { 562 if (DD->isLexicalScopeDIENull(Scope)) 563 return nullptr; 564 565 auto ScopeDIE = DIE::get(DIEValueAllocator, dwarf::DW_TAG_lexical_block); 566 if (Scope->isAbstractScope()) 567 return ScopeDIE; 568 569 attachRangesOrLowHighPC(*ScopeDIE, Scope->getRanges()); 570 571 return ScopeDIE; 572 } 573 574 /// constructVariableDIE - Construct a DIE for the given DbgVariable. 575 DIE *DwarfCompileUnit::constructVariableDIE(DbgVariable &DV, bool Abstract) { 576 auto D = constructVariableDIEImpl(DV, Abstract); 577 DV.setDIE(*D); 578 return D; 579 } 580 581 DIE *DwarfCompileUnit::constructLabelDIE(DbgLabel &DL, 582 const LexicalScope &Scope) { 583 auto LabelDie = DIE::get(DIEValueAllocator, DL.getTag()); 584 insertDIE(DL.getLabel(), LabelDie); 585 DL.setDIE(*LabelDie); 586 587 if (Scope.isAbstractScope()) 588 applyLabelAttributes(DL, *LabelDie); 589 590 return LabelDie; 591 } 592 593 DIE *DwarfCompileUnit::constructVariableDIEImpl(const DbgVariable &DV, 594 bool Abstract) { 595 // Define variable debug information entry. 596 auto VariableDie = DIE::get(DIEValueAllocator, DV.getTag()); 597 insertDIE(DV.getVariable(), VariableDie); 598 599 if (Abstract) { 600 applyVariableAttributes(DV, *VariableDie); 601 return VariableDie; 602 } 603 604 // Add variable address. 605 606 unsigned Offset = DV.getDebugLocListIndex(); 607 if (Offset != ~0U) { 608 addLocationList(*VariableDie, dwarf::DW_AT_location, Offset); 609 return VariableDie; 610 } 611 612 // Check if variable has a single location description. 613 if (auto *DVal = DV.getValueLoc()) { 614 if (DVal->isLocation()) 615 addVariableAddress(DV, *VariableDie, DVal->getLoc()); 616 else if (DVal->isInt()) { 617 auto *Expr = DV.getSingleExpression(); 618 if (Expr && Expr->getNumElements()) { 619 DIELoc *Loc = new (DIEValueAllocator) DIELoc; 620 DIEDwarfExpression DwarfExpr(*Asm, *this, *Loc); 621 // If there is an expression, emit raw unsigned bytes. 622 DwarfExpr.addFragmentOffset(Expr); 623 DwarfExpr.addUnsignedConstant(DVal->getInt()); 624 DwarfExpr.addExpression(Expr); 625 addBlock(*VariableDie, dwarf::DW_AT_location, DwarfExpr.finalize()); 626 } else 627 addConstantValue(*VariableDie, DVal->getInt(), DV.getType()); 628 } else if (DVal->isConstantFP()) { 629 addConstantFPValue(*VariableDie, DVal->getConstantFP()); 630 } else if (DVal->isConstantInt()) { 631 addConstantValue(*VariableDie, DVal->getConstantInt(), DV.getType()); 632 } 633 return VariableDie; 634 } 635 636 // .. else use frame index. 637 if (!DV.hasFrameIndexExprs()) 638 return VariableDie; 639 640 Optional<unsigned> NVPTXAddressSpace; 641 DIELoc *Loc = new (DIEValueAllocator) DIELoc; 642 DIEDwarfExpression DwarfExpr(*Asm, *this, *Loc); 643 for (auto &Fragment : DV.getFrameIndexExprs()) { 644 unsigned FrameReg = 0; 645 const DIExpression *Expr = Fragment.Expr; 646 const TargetFrameLowering *TFI = Asm->MF->getSubtarget().getFrameLowering(); 647 int Offset = TFI->getFrameIndexReference(*Asm->MF, Fragment.FI, FrameReg); 648 DwarfExpr.addFragmentOffset(Expr); 649 SmallVector<uint64_t, 8> Ops; 650 Ops.push_back(dwarf::DW_OP_plus_uconst); 651 Ops.push_back(Offset); 652 // According to 653 // https://docs.nvidia.com/cuda/archive/10.0/ptx-writers-guide-to-interoperability/index.html#cuda-specific-dwarf 654 // cuda-gdb requires DW_AT_address_class for all variables to be able to 655 // correctly interpret address space of the variable address. 656 // Decode DW_OP_constu <DWARF Address Space> DW_OP_swap DW_OP_xderef 657 // sequence for the NVPTX + gdb target. 658 unsigned LocalNVPTXAddressSpace; 659 if (Asm->TM.getTargetTriple().isNVPTX() && DD->tuneForGDB()) { 660 const DIExpression *NewExpr = 661 DIExpression::extractAddressClass(Expr, LocalNVPTXAddressSpace); 662 if (NewExpr != Expr) { 663 Expr = NewExpr; 664 NVPTXAddressSpace = LocalNVPTXAddressSpace; 665 } 666 } 667 if (Expr) 668 Ops.append(Expr->elements_begin(), Expr->elements_end()); 669 DIExpressionCursor Cursor(Ops); 670 DwarfExpr.setMemoryLocationKind(); 671 if (const MCSymbol *FrameSymbol = Asm->getFunctionFrameSymbol()) 672 addOpAddress(*Loc, FrameSymbol); 673 else 674 DwarfExpr.addMachineRegExpression( 675 *Asm->MF->getSubtarget().getRegisterInfo(), Cursor, FrameReg); 676 DwarfExpr.addExpression(std::move(Cursor)); 677 } 678 if (Asm->TM.getTargetTriple().isNVPTX() && DD->tuneForGDB()) { 679 // According to 680 // https://docs.nvidia.com/cuda/archive/10.0/ptx-writers-guide-to-interoperability/index.html#cuda-specific-dwarf 681 // cuda-gdb requires DW_AT_address_class for all variables to be able to 682 // correctly interpret address space of the variable address. 683 const unsigned NVPTX_ADDR_local_space = 6; 684 addUInt(*VariableDie, dwarf::DW_AT_address_class, dwarf::DW_FORM_data1, 685 NVPTXAddressSpace ? *NVPTXAddressSpace : NVPTX_ADDR_local_space); 686 } 687 addBlock(*VariableDie, dwarf::DW_AT_location, DwarfExpr.finalize()); 688 if (DwarfExpr.TagOffset) 689 addUInt(*VariableDie, dwarf::DW_AT_LLVM_tag_offset, dwarf::DW_FORM_data1, 690 *DwarfExpr.TagOffset); 691 692 return VariableDie; 693 } 694 695 DIE *DwarfCompileUnit::constructVariableDIE(DbgVariable &DV, 696 const LexicalScope &Scope, 697 DIE *&ObjectPointer) { 698 auto Var = constructVariableDIE(DV, Scope.isAbstractScope()); 699 if (DV.isObjectPointer()) 700 ObjectPointer = Var; 701 return Var; 702 } 703 704 /// Return all DIVariables that appear in count: expressions. 705 static SmallVector<const DIVariable *, 2> dependencies(DbgVariable *Var) { 706 SmallVector<const DIVariable *, 2> Result; 707 auto *Array = dyn_cast<DICompositeType>(Var->getType()); 708 if (!Array || Array->getTag() != dwarf::DW_TAG_array_type) 709 return Result; 710 for (auto *El : Array->getElements()) { 711 if (auto *Subrange = dyn_cast<DISubrange>(El)) { 712 auto Count = Subrange->getCount(); 713 if (auto *Dependency = Count.dyn_cast<DIVariable *>()) 714 Result.push_back(Dependency); 715 } 716 } 717 return Result; 718 } 719 720 /// Sort local variables so that variables appearing inside of helper 721 /// expressions come first. 722 static SmallVector<DbgVariable *, 8> 723 sortLocalVars(SmallVectorImpl<DbgVariable *> &Input) { 724 SmallVector<DbgVariable *, 8> Result; 725 SmallVector<PointerIntPair<DbgVariable *, 1>, 8> WorkList; 726 // Map back from a DIVariable to its containing DbgVariable. 727 SmallDenseMap<const DILocalVariable *, DbgVariable *> DbgVar; 728 // Set of DbgVariables in Result. 729 SmallDenseSet<DbgVariable *, 8> Visited; 730 // For cycle detection. 731 SmallDenseSet<DbgVariable *, 8> Visiting; 732 733 // Initialize the worklist and the DIVariable lookup table. 734 for (auto Var : reverse(Input)) { 735 DbgVar.insert({Var->getVariable(), Var}); 736 WorkList.push_back({Var, 0}); 737 } 738 739 // Perform a stable topological sort by doing a DFS. 740 while (!WorkList.empty()) { 741 auto Item = WorkList.back(); 742 DbgVariable *Var = Item.getPointer(); 743 bool visitedAllDependencies = Item.getInt(); 744 WorkList.pop_back(); 745 746 // Dependency is in a different lexical scope or a global. 747 if (!Var) 748 continue; 749 750 // Already handled. 751 if (Visited.count(Var)) 752 continue; 753 754 // Add to Result if all dependencies are visited. 755 if (visitedAllDependencies) { 756 Visited.insert(Var); 757 Result.push_back(Var); 758 continue; 759 } 760 761 // Detect cycles. 762 auto Res = Visiting.insert(Var); 763 if (!Res.second) { 764 assert(false && "dependency cycle in local variables"); 765 return Result; 766 } 767 768 // Push dependencies and this node onto the worklist, so that this node is 769 // visited again after all of its dependencies are handled. 770 WorkList.push_back({Var, 1}); 771 for (auto *Dependency : dependencies(Var)) { 772 auto Dep = dyn_cast_or_null<const DILocalVariable>(Dependency); 773 WorkList.push_back({DbgVar[Dep], 0}); 774 } 775 } 776 return Result; 777 } 778 779 DIE *DwarfCompileUnit::createScopeChildrenDIE(LexicalScope *Scope, 780 SmallVectorImpl<DIE *> &Children, 781 bool *HasNonScopeChildren) { 782 assert(Children.empty()); 783 DIE *ObjectPointer = nullptr; 784 785 // Emit function arguments (order is significant). 786 auto Vars = DU->getScopeVariables().lookup(Scope); 787 for (auto &DV : Vars.Args) 788 Children.push_back(constructVariableDIE(*DV.second, *Scope, ObjectPointer)); 789 790 // Emit local variables. 791 auto Locals = sortLocalVars(Vars.Locals); 792 for (DbgVariable *DV : Locals) 793 Children.push_back(constructVariableDIE(*DV, *Scope, ObjectPointer)); 794 795 // Skip imported directives in gmlt-like data. 796 if (!includeMinimalInlineScopes()) { 797 // There is no need to emit empty lexical block DIE. 798 for (const auto *IE : ImportedEntities[Scope->getScopeNode()]) 799 Children.push_back( 800 constructImportedEntityDIE(cast<DIImportedEntity>(IE))); 801 } 802 803 if (HasNonScopeChildren) 804 *HasNonScopeChildren = !Children.empty(); 805 806 for (DbgLabel *DL : DU->getScopeLabels().lookup(Scope)) 807 Children.push_back(constructLabelDIE(*DL, *Scope)); 808 809 for (LexicalScope *LS : Scope->getChildren()) 810 constructScopeDIE(LS, Children); 811 812 return ObjectPointer; 813 } 814 815 DIE &DwarfCompileUnit::constructSubprogramScopeDIE(const DISubprogram *Sub, 816 LexicalScope *Scope) { 817 DIE &ScopeDIE = updateSubprogramScopeDIE(Sub); 818 819 if (Scope) { 820 assert(!Scope->getInlinedAt()); 821 assert(!Scope->isAbstractScope()); 822 // Collect lexical scope children first. 823 // ObjectPointer might be a local (non-argument) local variable if it's a 824 // block's synthetic this pointer. 825 if (DIE *ObjectPointer = createAndAddScopeChildren(Scope, ScopeDIE)) 826 addDIEEntry(ScopeDIE, dwarf::DW_AT_object_pointer, *ObjectPointer); 827 } 828 829 // If this is a variadic function, add an unspecified parameter. 830 DITypeRefArray FnArgs = Sub->getType()->getTypeArray(); 831 832 // If we have a single element of null, it is a function that returns void. 833 // If we have more than one elements and the last one is null, it is a 834 // variadic function. 835 if (FnArgs.size() > 1 && !FnArgs[FnArgs.size() - 1] && 836 !includeMinimalInlineScopes()) 837 ScopeDIE.addChild( 838 DIE::get(DIEValueAllocator, dwarf::DW_TAG_unspecified_parameters)); 839 840 return ScopeDIE; 841 } 842 843 DIE *DwarfCompileUnit::createAndAddScopeChildren(LexicalScope *Scope, 844 DIE &ScopeDIE) { 845 // We create children when the scope DIE is not null. 846 SmallVector<DIE *, 8> Children; 847 DIE *ObjectPointer = createScopeChildrenDIE(Scope, Children); 848 849 // Add children 850 for (auto &I : Children) 851 ScopeDIE.addChild(std::move(I)); 852 853 return ObjectPointer; 854 } 855 856 void DwarfCompileUnit::constructAbstractSubprogramScopeDIE( 857 LexicalScope *Scope) { 858 DIE *&AbsDef = getAbstractSPDies()[Scope->getScopeNode()]; 859 if (AbsDef) 860 return; 861 862 auto *SP = cast<DISubprogram>(Scope->getScopeNode()); 863 864 DIE *ContextDIE; 865 DwarfCompileUnit *ContextCU = this; 866 867 if (includeMinimalInlineScopes()) 868 ContextDIE = &getUnitDie(); 869 // Some of this is duplicated from DwarfUnit::getOrCreateSubprogramDIE, with 870 // the important distinction that the debug node is not associated with the 871 // DIE (since the debug node will be associated with the concrete DIE, if 872 // any). It could be refactored to some common utility function. 873 else if (auto *SPDecl = SP->getDeclaration()) { 874 ContextDIE = &getUnitDie(); 875 getOrCreateSubprogramDIE(SPDecl); 876 } else { 877 ContextDIE = getOrCreateContextDIE(SP->getScope()); 878 // The scope may be shared with a subprogram that has already been 879 // constructed in another CU, in which case we need to construct this 880 // subprogram in the same CU. 881 ContextCU = DD->lookupCU(ContextDIE->getUnitDie()); 882 } 883 884 // Passing null as the associated node because the abstract definition 885 // shouldn't be found by lookup. 886 AbsDef = &ContextCU->createAndAddDIE(dwarf::DW_TAG_subprogram, *ContextDIE, nullptr); 887 ContextCU->applySubprogramAttributesToDefinition(SP, *AbsDef); 888 889 if (!ContextCU->includeMinimalInlineScopes()) 890 ContextCU->addUInt(*AbsDef, dwarf::DW_AT_inline, None, dwarf::DW_INL_inlined); 891 if (DIE *ObjectPointer = ContextCU->createAndAddScopeChildren(Scope, *AbsDef)) 892 ContextCU->addDIEEntry(*AbsDef, dwarf::DW_AT_object_pointer, *ObjectPointer); 893 } 894 895 DIE &DwarfCompileUnit::constructCallSiteEntryDIE(DIE &ScopeDIE, 896 const DISubprogram &CalleeSP, 897 bool IsTail, 898 const MCExpr *PCOffset) { 899 // Insert a call site entry DIE within ScopeDIE. 900 DIE &CallSiteDIE = 901 createAndAddDIE(dwarf::DW_TAG_call_site, ScopeDIE, nullptr); 902 903 // For the purposes of showing tail call frames in backtraces, a key piece of 904 // information is DW_AT_call_origin, a pointer to the callee DIE. 905 DIE *CalleeDIE = getOrCreateSubprogramDIE(&CalleeSP); 906 assert(CalleeDIE && "Could not create DIE for call site entry origin"); 907 addDIEEntry(CallSiteDIE, dwarf::DW_AT_call_origin, *CalleeDIE); 908 909 if (IsTail) { 910 // Attach DW_AT_call_tail_call to tail calls for standards compliance. 911 addFlag(CallSiteDIE, dwarf::DW_AT_call_tail_call); 912 } else { 913 // Attach the return PC to allow the debugger to disambiguate call paths 914 // from one function to another. 915 assert(PCOffset && "Missing return PC information for a call"); 916 addAddressExpr(CallSiteDIE, dwarf::DW_AT_call_return_pc, PCOffset); 917 } 918 return CallSiteDIE; 919 } 920 921 DIE *DwarfCompileUnit::constructImportedEntityDIE( 922 const DIImportedEntity *Module) { 923 DIE *IMDie = DIE::get(DIEValueAllocator, (dwarf::Tag)Module->getTag()); 924 insertDIE(Module, IMDie); 925 DIE *EntityDie; 926 auto *Entity = Module->getEntity(); 927 if (auto *NS = dyn_cast<DINamespace>(Entity)) 928 EntityDie = getOrCreateNameSpace(NS); 929 else if (auto *M = dyn_cast<DIModule>(Entity)) 930 EntityDie = getOrCreateModule(M); 931 else if (auto *SP = dyn_cast<DISubprogram>(Entity)) 932 EntityDie = getOrCreateSubprogramDIE(SP); 933 else if (auto *T = dyn_cast<DIType>(Entity)) 934 EntityDie = getOrCreateTypeDIE(T); 935 else if (auto *GV = dyn_cast<DIGlobalVariable>(Entity)) 936 EntityDie = getOrCreateGlobalVariableDIE(GV, {}); 937 else 938 EntityDie = getDIE(Entity); 939 assert(EntityDie); 940 addSourceLine(*IMDie, Module->getLine(), Module->getFile()); 941 addDIEEntry(*IMDie, dwarf::DW_AT_import, *EntityDie); 942 StringRef Name = Module->getName(); 943 if (!Name.empty()) 944 addString(*IMDie, dwarf::DW_AT_name, Name); 945 946 return IMDie; 947 } 948 949 void DwarfCompileUnit::finishSubprogramDefinition(const DISubprogram *SP) { 950 DIE *D = getDIE(SP); 951 if (DIE *AbsSPDIE = getAbstractSPDies().lookup(SP)) { 952 if (D) 953 // If this subprogram has an abstract definition, reference that 954 addDIEEntry(*D, dwarf::DW_AT_abstract_origin, *AbsSPDIE); 955 } else { 956 assert(D || includeMinimalInlineScopes()); 957 if (D) 958 // And attach the attributes 959 applySubprogramAttributesToDefinition(SP, *D); 960 } 961 } 962 963 void DwarfCompileUnit::finishEntityDefinition(const DbgEntity *Entity) { 964 DbgEntity *AbsEntity = getExistingAbstractEntity(Entity->getEntity()); 965 966 auto *Die = Entity->getDIE(); 967 /// Label may be used to generate DW_AT_low_pc, so put it outside 968 /// if/else block. 969 const DbgLabel *Label = nullptr; 970 if (AbsEntity && AbsEntity->getDIE()) { 971 addDIEEntry(*Die, dwarf::DW_AT_abstract_origin, *AbsEntity->getDIE()); 972 Label = dyn_cast<const DbgLabel>(Entity); 973 } else { 974 if (const DbgVariable *Var = dyn_cast<const DbgVariable>(Entity)) 975 applyVariableAttributes(*Var, *Die); 976 else if ((Label = dyn_cast<const DbgLabel>(Entity))) 977 applyLabelAttributes(*Label, *Die); 978 else 979 llvm_unreachable("DbgEntity must be DbgVariable or DbgLabel."); 980 } 981 982 if (Label) 983 if (const auto *Sym = Label->getSymbol()) 984 addLabelAddress(*Die, dwarf::DW_AT_low_pc, Sym); 985 } 986 987 DbgEntity *DwarfCompileUnit::getExistingAbstractEntity(const DINode *Node) { 988 auto &AbstractEntities = getAbstractEntities(); 989 auto I = AbstractEntities.find(Node); 990 if (I != AbstractEntities.end()) 991 return I->second.get(); 992 return nullptr; 993 } 994 995 void DwarfCompileUnit::createAbstractEntity(const DINode *Node, 996 LexicalScope *Scope) { 997 assert(Scope && Scope->isAbstractScope()); 998 auto &Entity = getAbstractEntities()[Node]; 999 if (isa<const DILocalVariable>(Node)) { 1000 Entity = llvm::make_unique<DbgVariable>( 1001 cast<const DILocalVariable>(Node), nullptr /* IA */);; 1002 DU->addScopeVariable(Scope, cast<DbgVariable>(Entity.get())); 1003 } else if (isa<const DILabel>(Node)) { 1004 Entity = llvm::make_unique<DbgLabel>( 1005 cast<const DILabel>(Node), nullptr /* IA */); 1006 DU->addScopeLabel(Scope, cast<DbgLabel>(Entity.get())); 1007 } 1008 } 1009 1010 void DwarfCompileUnit::emitHeader(bool UseOffsets) { 1011 // Don't bother labeling the .dwo unit, as its offset isn't used. 1012 if (!Skeleton && !DD->useSectionsAsReferences()) { 1013 LabelBegin = Asm->createTempSymbol("cu_begin"); 1014 Asm->OutStreamer->EmitLabel(LabelBegin); 1015 } 1016 1017 dwarf::UnitType UT = Skeleton ? dwarf::DW_UT_split_compile 1018 : DD->useSplitDwarf() ? dwarf::DW_UT_skeleton 1019 : dwarf::DW_UT_compile; 1020 DwarfUnit::emitCommonHeader(UseOffsets, UT); 1021 if (DD->getDwarfVersion() >= 5 && UT != dwarf::DW_UT_compile) 1022 Asm->emitInt64(getDWOId()); 1023 } 1024 1025 bool DwarfCompileUnit::hasDwarfPubSections() const { 1026 switch (CUNode->getNameTableKind()) { 1027 case DICompileUnit::DebugNameTableKind::None: 1028 return false; 1029 // Opting in to GNU Pubnames/types overrides the default to ensure these are 1030 // generated for things like Gold's gdb_index generation. 1031 case DICompileUnit::DebugNameTableKind::GNU: 1032 return true; 1033 case DICompileUnit::DebugNameTableKind::Default: 1034 return DD->tuneForGDB() && !includeMinimalInlineScopes() && 1035 !CUNode->isDebugDirectivesOnly() && 1036 DD->getAccelTableKind() != AccelTableKind::Apple && 1037 DD->getDwarfVersion() < 5; 1038 } 1039 llvm_unreachable("Unhandled DICompileUnit::DebugNameTableKind enum"); 1040 } 1041 1042 /// addGlobalName - Add a new global name to the compile unit. 1043 void DwarfCompileUnit::addGlobalName(StringRef Name, const DIE &Die, 1044 const DIScope *Context) { 1045 if (!hasDwarfPubSections()) 1046 return; 1047 std::string FullName = getParentContextString(Context) + Name.str(); 1048 GlobalNames[FullName] = &Die; 1049 } 1050 1051 void DwarfCompileUnit::addGlobalNameForTypeUnit(StringRef Name, 1052 const DIScope *Context) { 1053 if (!hasDwarfPubSections()) 1054 return; 1055 std::string FullName = getParentContextString(Context) + Name.str(); 1056 // Insert, allowing the entry to remain as-is if it's already present 1057 // This way the CU-level type DIE is preferred over the "can't describe this 1058 // type as a unit offset because it's not really in the CU at all, it's only 1059 // in a type unit" 1060 GlobalNames.insert(std::make_pair(std::move(FullName), &getUnitDie())); 1061 } 1062 1063 /// Add a new global type to the unit. 1064 void DwarfCompileUnit::addGlobalType(const DIType *Ty, const DIE &Die, 1065 const DIScope *Context) { 1066 if (!hasDwarfPubSections()) 1067 return; 1068 std::string FullName = getParentContextString(Context) + Ty->getName().str(); 1069 GlobalTypes[FullName] = &Die; 1070 } 1071 1072 void DwarfCompileUnit::addGlobalTypeUnitType(const DIType *Ty, 1073 const DIScope *Context) { 1074 if (!hasDwarfPubSections()) 1075 return; 1076 std::string FullName = getParentContextString(Context) + Ty->getName().str(); 1077 // Insert, allowing the entry to remain as-is if it's already present 1078 // This way the CU-level type DIE is preferred over the "can't describe this 1079 // type as a unit offset because it's not really in the CU at all, it's only 1080 // in a type unit" 1081 GlobalTypes.insert(std::make_pair(std::move(FullName), &getUnitDie())); 1082 } 1083 1084 /// addVariableAddress - Add DW_AT_location attribute for a 1085 /// DbgVariable based on provided MachineLocation. 1086 void DwarfCompileUnit::addVariableAddress(const DbgVariable &DV, DIE &Die, 1087 MachineLocation Location) { 1088 // addBlockByrefAddress is obsolete and will be removed soon. 1089 // The clang frontend always generates block byref variables with a 1090 // complex expression that encodes exactly what addBlockByrefAddress 1091 // would do. 1092 assert((!DV.isBlockByrefVariable() || DV.hasComplexAddress()) && 1093 "block byref variable without a complex expression"); 1094 if (DV.hasComplexAddress()) 1095 addComplexAddress(DV, Die, dwarf::DW_AT_location, Location); 1096 else 1097 addAddress(Die, dwarf::DW_AT_location, Location); 1098 } 1099 1100 /// Add an address attribute to a die based on the location provided. 1101 void DwarfCompileUnit::addAddress(DIE &Die, dwarf::Attribute Attribute, 1102 const MachineLocation &Location) { 1103 DIELoc *Loc = new (DIEValueAllocator) DIELoc; 1104 DIEDwarfExpression DwarfExpr(*Asm, *this, *Loc); 1105 if (Location.isIndirect()) 1106 DwarfExpr.setMemoryLocationKind(); 1107 1108 DIExpressionCursor Cursor({}); 1109 const TargetRegisterInfo &TRI = *Asm->MF->getSubtarget().getRegisterInfo(); 1110 if (!DwarfExpr.addMachineRegExpression(TRI, Cursor, Location.getReg())) 1111 return; 1112 DwarfExpr.addExpression(std::move(Cursor)); 1113 1114 // Now attach the location information to the DIE. 1115 addBlock(Die, Attribute, DwarfExpr.finalize()); 1116 } 1117 1118 /// Start with the address based on the location provided, and generate the 1119 /// DWARF information necessary to find the actual variable given the extra 1120 /// address information encoded in the DbgVariable, starting from the starting 1121 /// location. Add the DWARF information to the die. 1122 void DwarfCompileUnit::addComplexAddress(const DbgVariable &DV, DIE &Die, 1123 dwarf::Attribute Attribute, 1124 const MachineLocation &Location) { 1125 DIELoc *Loc = new (DIEValueAllocator) DIELoc; 1126 DIEDwarfExpression DwarfExpr(*Asm, *this, *Loc); 1127 const DIExpression *DIExpr = DV.getSingleExpression(); 1128 DwarfExpr.addFragmentOffset(DIExpr); 1129 if (Location.isIndirect()) 1130 DwarfExpr.setMemoryLocationKind(); 1131 1132 DIExpressionCursor Cursor(DIExpr); 1133 1134 if (DIExpr->isEntryValue()) { 1135 DwarfExpr.setEntryValueFlag(); 1136 DwarfExpr.addEntryValueExpression(Cursor); 1137 } 1138 1139 const TargetRegisterInfo &TRI = *Asm->MF->getSubtarget().getRegisterInfo(); 1140 if (!DwarfExpr.addMachineRegExpression(TRI, Cursor, Location.getReg())) 1141 return; 1142 DwarfExpr.addExpression(std::move(Cursor)); 1143 1144 // Now attach the location information to the DIE. 1145 addBlock(Die, Attribute, DwarfExpr.finalize()); 1146 } 1147 1148 /// Add a Dwarf loclistptr attribute data and value. 1149 void DwarfCompileUnit::addLocationList(DIE &Die, dwarf::Attribute Attribute, 1150 unsigned Index) { 1151 dwarf::Form Form = DD->getDwarfVersion() >= 4 ? dwarf::DW_FORM_sec_offset 1152 : dwarf::DW_FORM_data4; 1153 Die.addValue(DIEValueAllocator, Attribute, Form, DIELocList(Index)); 1154 } 1155 1156 void DwarfCompileUnit::applyVariableAttributes(const DbgVariable &Var, 1157 DIE &VariableDie) { 1158 StringRef Name = Var.getName(); 1159 if (!Name.empty()) 1160 addString(VariableDie, dwarf::DW_AT_name, Name); 1161 const auto *DIVar = Var.getVariable(); 1162 if (DIVar) 1163 if (uint32_t AlignInBytes = DIVar->getAlignInBytes()) 1164 addUInt(VariableDie, dwarf::DW_AT_alignment, dwarf::DW_FORM_udata, 1165 AlignInBytes); 1166 1167 addSourceLine(VariableDie, DIVar); 1168 addType(VariableDie, Var.getType()); 1169 if (Var.isArtificial()) 1170 addFlag(VariableDie, dwarf::DW_AT_artificial); 1171 } 1172 1173 void DwarfCompileUnit::applyLabelAttributes(const DbgLabel &Label, 1174 DIE &LabelDie) { 1175 StringRef Name = Label.getName(); 1176 if (!Name.empty()) 1177 addString(LabelDie, dwarf::DW_AT_name, Name); 1178 const auto *DILabel = Label.getLabel(); 1179 addSourceLine(LabelDie, DILabel); 1180 } 1181 1182 /// Add a Dwarf expression attribute data and value. 1183 void DwarfCompileUnit::addExpr(DIELoc &Die, dwarf::Form Form, 1184 const MCExpr *Expr) { 1185 Die.addValue(DIEValueAllocator, (dwarf::Attribute)0, Form, DIEExpr(Expr)); 1186 } 1187 1188 void DwarfCompileUnit::addAddressExpr(DIE &Die, dwarf::Attribute Attribute, 1189 const MCExpr *Expr) { 1190 Die.addValue(DIEValueAllocator, Attribute, dwarf::DW_FORM_addr, 1191 DIEExpr(Expr)); 1192 } 1193 1194 void DwarfCompileUnit::applySubprogramAttributesToDefinition( 1195 const DISubprogram *SP, DIE &SPDie) { 1196 auto *SPDecl = SP->getDeclaration(); 1197 auto *Context = SPDecl ? SPDecl->getScope() : SP->getScope(); 1198 applySubprogramAttributes(SP, SPDie, includeMinimalInlineScopes()); 1199 addGlobalName(SP->getName(), SPDie, Context); 1200 } 1201 1202 bool DwarfCompileUnit::isDwoUnit() const { 1203 return DD->useSplitDwarf() && Skeleton; 1204 } 1205 1206 void DwarfCompileUnit::finishNonUnitTypeDIE(DIE& D, const DICompositeType *CTy) { 1207 constructTypeDIE(D, CTy); 1208 } 1209 1210 bool DwarfCompileUnit::includeMinimalInlineScopes() const { 1211 return getCUNode()->getEmissionKind() == DICompileUnit::LineTablesOnly || 1212 (DD->useSplitDwarf() && !Skeleton); 1213 } 1214 1215 void DwarfCompileUnit::addAddrTableBase() { 1216 const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering(); 1217 MCSymbol *Label = DD->getAddressPool().getLabel(); 1218 addSectionLabel(getUnitDie(), 1219 getDwarfVersion() >= 5 ? dwarf::DW_AT_addr_base 1220 : dwarf::DW_AT_GNU_addr_base, 1221 Label, TLOF.getDwarfAddrSection()->getBeginSymbol()); 1222 } 1223 1224 void DwarfCompileUnit::addBaseTypeRef(DIEValueList &Die, int64_t Idx) { 1225 Die.addValue(DIEValueAllocator, (dwarf::Attribute)0, dwarf::DW_FORM_udata, 1226 new (DIEValueAllocator) DIEBaseTypeRef(this, Idx)); 1227 } 1228 1229 void DwarfCompileUnit::createBaseTypeDIEs() { 1230 // Insert the base_type DIEs directly after the CU so that their offsets will 1231 // fit in the fixed size ULEB128 used inside the location expressions. 1232 // Maintain order by iterating backwards and inserting to the front of CU 1233 // child list. 1234 for (auto &Btr : reverse(ExprRefedBaseTypes)) { 1235 DIE &Die = getUnitDie().addChildFront( 1236 DIE::get(DIEValueAllocator, dwarf::DW_TAG_base_type)); 1237 SmallString<32> Str; 1238 addString(Die, dwarf::DW_AT_name, 1239 Twine(dwarf::AttributeEncodingString(Btr.Encoding) + 1240 "_" + Twine(Btr.BitSize)).toStringRef(Str)); 1241 addUInt(Die, dwarf::DW_AT_encoding, dwarf::DW_FORM_data1, Btr.Encoding); 1242 addUInt(Die, dwarf::DW_AT_byte_size, None, Btr.BitSize / 8); 1243 1244 Btr.Die = &Die; 1245 } 1246 } 1247