1 //===- DebugInfoMetadata.cpp - Implement debug info metadata --------------===// 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 implements the debug info Metadata classes. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "llvm/IR/DebugInfoMetadata.h" 14 #include "LLVMContextImpl.h" 15 #include "MetadataImpl.h" 16 #include "llvm/ADT/SmallSet.h" 17 #include "llvm/ADT/StringSwitch.h" 18 #include "llvm/IR/DIBuilder.h" 19 #include "llvm/IR/Function.h" 20 #include "llvm/IR/Instructions.h" 21 22 #include <numeric> 23 24 using namespace llvm; 25 26 const DIExpression::FragmentInfo DebugVariable::DefaultFragment = { 27 std::numeric_limits<uint64_t>::max(), std::numeric_limits<uint64_t>::min()}; 28 29 DILocation::DILocation(LLVMContext &C, StorageType Storage, unsigned Line, 30 unsigned Column, ArrayRef<Metadata *> MDs, 31 bool ImplicitCode) 32 : MDNode(C, DILocationKind, Storage, MDs) { 33 assert((MDs.size() == 1 || MDs.size() == 2) && 34 "Expected a scope and optional inlined-at"); 35 36 // Set line and column. 37 assert(Column < (1u << 16) && "Expected 16-bit column"); 38 39 SubclassData32 = Line; 40 SubclassData16 = Column; 41 42 setImplicitCode(ImplicitCode); 43 } 44 45 static void adjustColumn(unsigned &Column) { 46 // Set to unknown on overflow. We only have 16 bits to play with here. 47 if (Column >= (1u << 16)) 48 Column = 0; 49 } 50 51 DILocation *DILocation::getImpl(LLVMContext &Context, unsigned Line, 52 unsigned Column, Metadata *Scope, 53 Metadata *InlinedAt, bool ImplicitCode, 54 StorageType Storage, bool ShouldCreate) { 55 // Fixup column. 56 adjustColumn(Column); 57 58 if (Storage == Uniqued) { 59 if (auto *N = getUniqued(Context.pImpl->DILocations, 60 DILocationInfo::KeyTy(Line, Column, Scope, 61 InlinedAt, ImplicitCode))) 62 return N; 63 if (!ShouldCreate) 64 return nullptr; 65 } else { 66 assert(ShouldCreate && "Expected non-uniqued nodes to always be created"); 67 } 68 69 SmallVector<Metadata *, 2> Ops; 70 Ops.push_back(Scope); 71 if (InlinedAt) 72 Ops.push_back(InlinedAt); 73 return storeImpl(new (Ops.size()) DILocation(Context, Storage, Line, Column, 74 Ops, ImplicitCode), 75 Storage, Context.pImpl->DILocations); 76 } 77 78 const 79 DILocation *DILocation::getMergedLocations(ArrayRef<const DILocation *> Locs) { 80 if (Locs.empty()) 81 return nullptr; 82 if (Locs.size() == 1) 83 return Locs[0]; 84 auto *Merged = Locs[0]; 85 for (auto I = std::next(Locs.begin()), E = Locs.end(); I != E; ++I) { 86 Merged = getMergedLocation(Merged, *I); 87 if (Merged == nullptr) 88 break; 89 } 90 return Merged; 91 } 92 93 const DILocation *DILocation::getMergedLocation(const DILocation *LocA, 94 const DILocation *LocB) { 95 if (!LocA || !LocB) 96 return nullptr; 97 98 if (LocA == LocB) 99 return LocA; 100 101 SmallPtrSet<DILocation *, 5> InlinedLocationsA; 102 for (DILocation *L = LocA->getInlinedAt(); L; L = L->getInlinedAt()) 103 InlinedLocationsA.insert(L); 104 SmallSet<std::pair<DIScope *, DILocation *>, 5> Locations; 105 DIScope *S = LocA->getScope(); 106 DILocation *L = LocA->getInlinedAt(); 107 while (S) { 108 Locations.insert(std::make_pair(S, L)); 109 S = S->getScope(); 110 if (!S && L) { 111 S = L->getScope(); 112 L = L->getInlinedAt(); 113 } 114 } 115 const DILocation *Result = LocB; 116 S = LocB->getScope(); 117 L = LocB->getInlinedAt(); 118 while (S) { 119 if (Locations.count(std::make_pair(S, L))) 120 break; 121 S = S->getScope(); 122 if (!S && L) { 123 S = L->getScope(); 124 L = L->getInlinedAt(); 125 } 126 } 127 128 // If the two locations are irreconsilable, just pick one. This is misleading, 129 // but on the other hand, it's a "line 0" location. 130 if (!S || !isa<DILocalScope>(S)) 131 S = LocA->getScope(); 132 return DILocation::get(Result->getContext(), 0, 0, S, L); 133 } 134 135 Optional<unsigned> DILocation::encodeDiscriminator(unsigned BD, unsigned DF, unsigned CI) { 136 SmallVector<unsigned, 3> Components = {BD, DF, CI}; 137 uint64_t RemainingWork = 0U; 138 // We use RemainingWork to figure out if we have no remaining components to 139 // encode. For example: if BD != 0 but DF == 0 && CI == 0, we don't need to 140 // encode anything for the latter 2. 141 // Since any of the input components is at most 32 bits, their sum will be 142 // less than 34 bits, and thus RemainingWork won't overflow. 143 RemainingWork = std::accumulate(Components.begin(), Components.end(), RemainingWork); 144 145 int I = 0; 146 unsigned Ret = 0; 147 unsigned NextBitInsertionIndex = 0; 148 while (RemainingWork > 0) { 149 unsigned C = Components[I++]; 150 RemainingWork -= C; 151 unsigned EC = encodeComponent(C); 152 Ret |= (EC << NextBitInsertionIndex); 153 NextBitInsertionIndex += encodingBits(C); 154 } 155 156 // Encoding may be unsuccessful because of overflow. We determine success by 157 // checking equivalence of components before & after encoding. Alternatively, 158 // we could determine Success during encoding, but the current alternative is 159 // simpler. 160 unsigned TBD, TDF, TCI = 0; 161 decodeDiscriminator(Ret, TBD, TDF, TCI); 162 if (TBD == BD && TDF == DF && TCI == CI) 163 return Ret; 164 return None; 165 } 166 167 void DILocation::decodeDiscriminator(unsigned D, unsigned &BD, unsigned &DF, 168 unsigned &CI) { 169 BD = getUnsignedFromPrefixEncoding(D); 170 DF = getUnsignedFromPrefixEncoding(getNextComponentInDiscriminator(D)); 171 CI = getUnsignedFromPrefixEncoding( 172 getNextComponentInDiscriminator(getNextComponentInDiscriminator(D))); 173 } 174 175 176 DINode::DIFlags DINode::getFlag(StringRef Flag) { 177 return StringSwitch<DIFlags>(Flag) 178 #define HANDLE_DI_FLAG(ID, NAME) .Case("DIFlag" #NAME, Flag##NAME) 179 #include "llvm/IR/DebugInfoFlags.def" 180 .Default(DINode::FlagZero); 181 } 182 183 StringRef DINode::getFlagString(DIFlags Flag) { 184 switch (Flag) { 185 #define HANDLE_DI_FLAG(ID, NAME) \ 186 case Flag##NAME: \ 187 return "DIFlag" #NAME; 188 #include "llvm/IR/DebugInfoFlags.def" 189 } 190 return ""; 191 } 192 193 DINode::DIFlags DINode::splitFlags(DIFlags Flags, 194 SmallVectorImpl<DIFlags> &SplitFlags) { 195 // Flags that are packed together need to be specially handled, so 196 // that, for example, we emit "DIFlagPublic" and not 197 // "DIFlagPrivate | DIFlagProtected". 198 if (DIFlags A = Flags & FlagAccessibility) { 199 if (A == FlagPrivate) 200 SplitFlags.push_back(FlagPrivate); 201 else if (A == FlagProtected) 202 SplitFlags.push_back(FlagProtected); 203 else 204 SplitFlags.push_back(FlagPublic); 205 Flags &= ~A; 206 } 207 if (DIFlags R = Flags & FlagPtrToMemberRep) { 208 if (R == FlagSingleInheritance) 209 SplitFlags.push_back(FlagSingleInheritance); 210 else if (R == FlagMultipleInheritance) 211 SplitFlags.push_back(FlagMultipleInheritance); 212 else 213 SplitFlags.push_back(FlagVirtualInheritance); 214 Flags &= ~R; 215 } 216 if ((Flags & FlagIndirectVirtualBase) == FlagIndirectVirtualBase) { 217 Flags &= ~FlagIndirectVirtualBase; 218 SplitFlags.push_back(FlagIndirectVirtualBase); 219 } 220 221 #define HANDLE_DI_FLAG(ID, NAME) \ 222 if (DIFlags Bit = Flags & Flag##NAME) { \ 223 SplitFlags.push_back(Bit); \ 224 Flags &= ~Bit; \ 225 } 226 #include "llvm/IR/DebugInfoFlags.def" 227 return Flags; 228 } 229 230 DIScope *DIScope::getScope() const { 231 if (auto *T = dyn_cast<DIType>(this)) 232 return T->getScope(); 233 234 if (auto *SP = dyn_cast<DISubprogram>(this)) 235 return SP->getScope(); 236 237 if (auto *LB = dyn_cast<DILexicalBlockBase>(this)) 238 return LB->getScope(); 239 240 if (auto *NS = dyn_cast<DINamespace>(this)) 241 return NS->getScope(); 242 243 if (auto *CB = dyn_cast<DICommonBlock>(this)) 244 return CB->getScope(); 245 246 if (auto *M = dyn_cast<DIModule>(this)) 247 return M->getScope(); 248 249 assert((isa<DIFile>(this) || isa<DICompileUnit>(this)) && 250 "Unhandled type of scope."); 251 return nullptr; 252 } 253 254 StringRef DIScope::getName() const { 255 if (auto *T = dyn_cast<DIType>(this)) 256 return T->getName(); 257 if (auto *SP = dyn_cast<DISubprogram>(this)) 258 return SP->getName(); 259 if (auto *NS = dyn_cast<DINamespace>(this)) 260 return NS->getName(); 261 if (auto *CB = dyn_cast<DICommonBlock>(this)) 262 return CB->getName(); 263 if (auto *M = dyn_cast<DIModule>(this)) 264 return M->getName(); 265 assert((isa<DILexicalBlockBase>(this) || isa<DIFile>(this) || 266 isa<DICompileUnit>(this)) && 267 "Unhandled type of scope."); 268 return ""; 269 } 270 271 #ifndef NDEBUG 272 static bool isCanonical(const MDString *S) { 273 return !S || !S->getString().empty(); 274 } 275 #endif 276 277 GenericDINode *GenericDINode::getImpl(LLVMContext &Context, unsigned Tag, 278 MDString *Header, 279 ArrayRef<Metadata *> DwarfOps, 280 StorageType Storage, bool ShouldCreate) { 281 unsigned Hash = 0; 282 if (Storage == Uniqued) { 283 GenericDINodeInfo::KeyTy Key(Tag, Header, DwarfOps); 284 if (auto *N = getUniqued(Context.pImpl->GenericDINodes, Key)) 285 return N; 286 if (!ShouldCreate) 287 return nullptr; 288 Hash = Key.getHash(); 289 } else { 290 assert(ShouldCreate && "Expected non-uniqued nodes to always be created"); 291 } 292 293 // Use a nullptr for empty headers. 294 assert(isCanonical(Header) && "Expected canonical MDString"); 295 Metadata *PreOps[] = {Header}; 296 return storeImpl(new (DwarfOps.size() + 1) GenericDINode( 297 Context, Storage, Hash, Tag, PreOps, DwarfOps), 298 Storage, Context.pImpl->GenericDINodes); 299 } 300 301 void GenericDINode::recalculateHash() { 302 setHash(GenericDINodeInfo::KeyTy::calculateHash(this)); 303 } 304 305 #define UNWRAP_ARGS_IMPL(...) __VA_ARGS__ 306 #define UNWRAP_ARGS(ARGS) UNWRAP_ARGS_IMPL ARGS 307 #define DEFINE_GETIMPL_LOOKUP(CLASS, ARGS) \ 308 do { \ 309 if (Storage == Uniqued) { \ 310 if (auto *N = getUniqued(Context.pImpl->CLASS##s, \ 311 CLASS##Info::KeyTy(UNWRAP_ARGS(ARGS)))) \ 312 return N; \ 313 if (!ShouldCreate) \ 314 return nullptr; \ 315 } else { \ 316 assert(ShouldCreate && \ 317 "Expected non-uniqued nodes to always be created"); \ 318 } \ 319 } while (false) 320 #define DEFINE_GETIMPL_STORE(CLASS, ARGS, OPS) \ 321 return storeImpl(new (array_lengthof(OPS)) \ 322 CLASS(Context, Storage, UNWRAP_ARGS(ARGS), OPS), \ 323 Storage, Context.pImpl->CLASS##s) 324 #define DEFINE_GETIMPL_STORE_NO_OPS(CLASS, ARGS) \ 325 return storeImpl(new (0u) CLASS(Context, Storage, UNWRAP_ARGS(ARGS)), \ 326 Storage, Context.pImpl->CLASS##s) 327 #define DEFINE_GETIMPL_STORE_NO_CONSTRUCTOR_ARGS(CLASS, OPS) \ 328 return storeImpl(new (array_lengthof(OPS)) CLASS(Context, Storage, OPS), \ 329 Storage, Context.pImpl->CLASS##s) 330 #define DEFINE_GETIMPL_STORE_N(CLASS, ARGS, OPS, NUM_OPS) \ 331 return storeImpl(new (NUM_OPS) \ 332 CLASS(Context, Storage, UNWRAP_ARGS(ARGS), OPS), \ 333 Storage, Context.pImpl->CLASS##s) 334 335 DISubrange *DISubrange::getImpl(LLVMContext &Context, int64_t Count, int64_t Lo, 336 StorageType Storage, bool ShouldCreate) { 337 auto *CountNode = ConstantAsMetadata::get( 338 ConstantInt::getSigned(Type::getInt64Ty(Context), Count)); 339 auto *LB = ConstantAsMetadata::get( 340 ConstantInt::getSigned(Type::getInt64Ty(Context), Lo)); 341 return getImpl(Context, CountNode, LB, nullptr, nullptr, Storage, 342 ShouldCreate); 343 } 344 345 DISubrange *DISubrange::getImpl(LLVMContext &Context, Metadata *CountNode, 346 int64_t Lo, StorageType Storage, 347 bool ShouldCreate) { 348 auto *LB = ConstantAsMetadata::get( 349 ConstantInt::getSigned(Type::getInt64Ty(Context), Lo)); 350 return getImpl(Context, CountNode, LB, nullptr, nullptr, Storage, 351 ShouldCreate); 352 } 353 354 DISubrange *DISubrange::getImpl(LLVMContext &Context, Metadata *CountNode, 355 Metadata *LB, Metadata *UB, Metadata *Stride, 356 StorageType Storage, bool ShouldCreate) { 357 DEFINE_GETIMPL_LOOKUP(DISubrange, (CountNode, LB, UB, Stride)); 358 Metadata *Ops[] = {CountNode, LB, UB, Stride}; 359 DEFINE_GETIMPL_STORE_NO_CONSTRUCTOR_ARGS(DISubrange, Ops); 360 } 361 362 DISubrange::CountType DISubrange::getCount() const { 363 if (!getRawCountNode()) 364 return CountType(); 365 366 if (auto *MD = dyn_cast<ConstantAsMetadata>(getRawCountNode())) 367 return CountType(cast<ConstantInt>(MD->getValue())); 368 369 if (auto *DV = dyn_cast<DIVariable>(getRawCountNode())) 370 return CountType(DV); 371 372 return CountType(); 373 } 374 375 DISubrange::BoundType DISubrange::getLowerBound() const { 376 Metadata *LB = getRawLowerBound(); 377 if (!LB) 378 return BoundType(); 379 380 assert((isa<ConstantAsMetadata>(LB) || isa<DIVariable>(LB) || 381 isa<DIExpression>(LB)) && 382 "LowerBound must be signed constant or DIVariable or DIExpression"); 383 384 if (auto *MD = dyn_cast<ConstantAsMetadata>(LB)) 385 return BoundType(cast<ConstantInt>(MD->getValue())); 386 387 if (auto *MD = dyn_cast<DIVariable>(LB)) 388 return BoundType(MD); 389 390 if (auto *MD = dyn_cast<DIExpression>(LB)) 391 return BoundType(MD); 392 393 return BoundType(); 394 } 395 396 DISubrange::BoundType DISubrange::getUpperBound() const { 397 Metadata *UB = getRawUpperBound(); 398 if (!UB) 399 return BoundType(); 400 401 assert((isa<ConstantAsMetadata>(UB) || isa<DIVariable>(UB) || 402 isa<DIExpression>(UB)) && 403 "UpperBound must be signed constant or DIVariable or DIExpression"); 404 405 if (auto *MD = dyn_cast<ConstantAsMetadata>(UB)) 406 return BoundType(cast<ConstantInt>(MD->getValue())); 407 408 if (auto *MD = dyn_cast<DIVariable>(UB)) 409 return BoundType(MD); 410 411 if (auto *MD = dyn_cast<DIExpression>(UB)) 412 return BoundType(MD); 413 414 return BoundType(); 415 } 416 417 DISubrange::BoundType DISubrange::getStride() const { 418 Metadata *ST = getRawStride(); 419 if (!ST) 420 return BoundType(); 421 422 assert((isa<ConstantAsMetadata>(ST) || isa<DIVariable>(ST) || 423 isa<DIExpression>(ST)) && 424 "Stride must be signed constant or DIVariable or DIExpression"); 425 426 if (auto *MD = dyn_cast<ConstantAsMetadata>(ST)) 427 return BoundType(cast<ConstantInt>(MD->getValue())); 428 429 if (auto *MD = dyn_cast<DIVariable>(ST)) 430 return BoundType(MD); 431 432 if (auto *MD = dyn_cast<DIExpression>(ST)) 433 return BoundType(MD); 434 435 return BoundType(); 436 } 437 438 DIEnumerator *DIEnumerator::getImpl(LLVMContext &Context, const APInt &Value, 439 bool IsUnsigned, MDString *Name, 440 StorageType Storage, bool ShouldCreate) { 441 assert(isCanonical(Name) && "Expected canonical MDString"); 442 DEFINE_GETIMPL_LOOKUP(DIEnumerator, (Value, IsUnsigned, Name)); 443 Metadata *Ops[] = {Name}; 444 DEFINE_GETIMPL_STORE(DIEnumerator, (Value, IsUnsigned), Ops); 445 } 446 447 DIBasicType *DIBasicType::getImpl(LLVMContext &Context, unsigned Tag, 448 MDString *Name, uint64_t SizeInBits, 449 uint32_t AlignInBits, unsigned Encoding, 450 DIFlags Flags, StorageType Storage, 451 bool ShouldCreate) { 452 assert(isCanonical(Name) && "Expected canonical MDString"); 453 DEFINE_GETIMPL_LOOKUP(DIBasicType, 454 (Tag, Name, SizeInBits, AlignInBits, Encoding, Flags)); 455 Metadata *Ops[] = {nullptr, nullptr, Name}; 456 DEFINE_GETIMPL_STORE(DIBasicType, (Tag, SizeInBits, AlignInBits, Encoding, 457 Flags), Ops); 458 } 459 460 Optional<DIBasicType::Signedness> DIBasicType::getSignedness() const { 461 switch (getEncoding()) { 462 case dwarf::DW_ATE_signed: 463 case dwarf::DW_ATE_signed_char: 464 return Signedness::Signed; 465 case dwarf::DW_ATE_unsigned: 466 case dwarf::DW_ATE_unsigned_char: 467 return Signedness::Unsigned; 468 default: 469 return None; 470 } 471 } 472 473 DIDerivedType *DIDerivedType::getImpl( 474 LLVMContext &Context, unsigned Tag, MDString *Name, Metadata *File, 475 unsigned Line, Metadata *Scope, Metadata *BaseType, uint64_t SizeInBits, 476 uint32_t AlignInBits, uint64_t OffsetInBits, 477 Optional<unsigned> DWARFAddressSpace, DIFlags Flags, Metadata *ExtraData, 478 StorageType Storage, bool ShouldCreate) { 479 assert(isCanonical(Name) && "Expected canonical MDString"); 480 DEFINE_GETIMPL_LOOKUP(DIDerivedType, 481 (Tag, Name, File, Line, Scope, BaseType, SizeInBits, 482 AlignInBits, OffsetInBits, DWARFAddressSpace, Flags, 483 ExtraData)); 484 Metadata *Ops[] = {File, Scope, Name, BaseType, ExtraData}; 485 DEFINE_GETIMPL_STORE( 486 DIDerivedType, (Tag, Line, SizeInBits, AlignInBits, OffsetInBits, 487 DWARFAddressSpace, Flags), Ops); 488 } 489 490 DICompositeType *DICompositeType::getImpl( 491 LLVMContext &Context, unsigned Tag, MDString *Name, Metadata *File, 492 unsigned Line, Metadata *Scope, Metadata *BaseType, uint64_t SizeInBits, 493 uint32_t AlignInBits, uint64_t OffsetInBits, DIFlags Flags, 494 Metadata *Elements, unsigned RuntimeLang, Metadata *VTableHolder, 495 Metadata *TemplateParams, MDString *Identifier, Metadata *Discriminator, 496 Metadata *DataLocation, Metadata *Associated, Metadata *Allocated, 497 StorageType Storage, bool ShouldCreate) { 498 assert(isCanonical(Name) && "Expected canonical MDString"); 499 500 // Keep this in sync with buildODRType. 501 DEFINE_GETIMPL_LOOKUP(DICompositeType, 502 (Tag, Name, File, Line, Scope, BaseType, SizeInBits, 503 AlignInBits, OffsetInBits, Flags, Elements, 504 RuntimeLang, VTableHolder, TemplateParams, Identifier, 505 Discriminator, DataLocation, Associated, Allocated)); 506 Metadata *Ops[] = {File, Scope, Name, BaseType, 507 Elements, VTableHolder, TemplateParams, Identifier, 508 Discriminator, DataLocation, Associated, Allocated}; 509 DEFINE_GETIMPL_STORE(DICompositeType, (Tag, Line, RuntimeLang, SizeInBits, 510 AlignInBits, OffsetInBits, Flags), 511 Ops); 512 } 513 514 DICompositeType *DICompositeType::buildODRType( 515 LLVMContext &Context, MDString &Identifier, unsigned Tag, MDString *Name, 516 Metadata *File, unsigned Line, Metadata *Scope, Metadata *BaseType, 517 uint64_t SizeInBits, uint32_t AlignInBits, uint64_t OffsetInBits, 518 DIFlags Flags, Metadata *Elements, unsigned RuntimeLang, 519 Metadata *VTableHolder, Metadata *TemplateParams, Metadata *Discriminator, 520 Metadata *DataLocation, Metadata *Associated, Metadata *Allocated) { 521 assert(!Identifier.getString().empty() && "Expected valid identifier"); 522 if (!Context.isODRUniquingDebugTypes()) 523 return nullptr; 524 auto *&CT = (*Context.pImpl->DITypeMap)[&Identifier]; 525 if (!CT) 526 return CT = DICompositeType::getDistinct( 527 Context, Tag, Name, File, Line, Scope, BaseType, SizeInBits, 528 AlignInBits, OffsetInBits, Flags, Elements, RuntimeLang, 529 VTableHolder, TemplateParams, &Identifier, Discriminator, 530 DataLocation, Associated, Allocated); 531 532 // Only mutate CT if it's a forward declaration and the new operands aren't. 533 assert(CT->getRawIdentifier() == &Identifier && "Wrong ODR identifier?"); 534 if (!CT->isForwardDecl() || (Flags & DINode::FlagFwdDecl)) 535 return CT; 536 537 // Mutate CT in place. Keep this in sync with getImpl. 538 CT->mutate(Tag, Line, RuntimeLang, SizeInBits, AlignInBits, OffsetInBits, 539 Flags); 540 Metadata *Ops[] = {File, Scope, Name, BaseType, 541 Elements, VTableHolder, TemplateParams, &Identifier, 542 Discriminator, DataLocation, Associated, Allocated}; 543 assert((std::end(Ops) - std::begin(Ops)) == (int)CT->getNumOperands() && 544 "Mismatched number of operands"); 545 for (unsigned I = 0, E = CT->getNumOperands(); I != E; ++I) 546 if (Ops[I] != CT->getOperand(I)) 547 CT->setOperand(I, Ops[I]); 548 return CT; 549 } 550 551 DICompositeType *DICompositeType::getODRType( 552 LLVMContext &Context, MDString &Identifier, unsigned Tag, MDString *Name, 553 Metadata *File, unsigned Line, Metadata *Scope, Metadata *BaseType, 554 uint64_t SizeInBits, uint32_t AlignInBits, uint64_t OffsetInBits, 555 DIFlags Flags, Metadata *Elements, unsigned RuntimeLang, 556 Metadata *VTableHolder, Metadata *TemplateParams, Metadata *Discriminator, 557 Metadata *DataLocation, Metadata *Associated, Metadata *Allocated) { 558 assert(!Identifier.getString().empty() && "Expected valid identifier"); 559 if (!Context.isODRUniquingDebugTypes()) 560 return nullptr; 561 auto *&CT = (*Context.pImpl->DITypeMap)[&Identifier]; 562 if (!CT) 563 CT = DICompositeType::getDistinct( 564 Context, Tag, Name, File, Line, Scope, BaseType, SizeInBits, 565 AlignInBits, OffsetInBits, Flags, Elements, RuntimeLang, VTableHolder, 566 TemplateParams, &Identifier, Discriminator, DataLocation, Associated, 567 Allocated); 568 return CT; 569 } 570 571 DICompositeType *DICompositeType::getODRTypeIfExists(LLVMContext &Context, 572 MDString &Identifier) { 573 assert(!Identifier.getString().empty() && "Expected valid identifier"); 574 if (!Context.isODRUniquingDebugTypes()) 575 return nullptr; 576 return Context.pImpl->DITypeMap->lookup(&Identifier); 577 } 578 579 DISubroutineType *DISubroutineType::getImpl(LLVMContext &Context, DIFlags Flags, 580 uint8_t CC, Metadata *TypeArray, 581 StorageType Storage, 582 bool ShouldCreate) { 583 DEFINE_GETIMPL_LOOKUP(DISubroutineType, (Flags, CC, TypeArray)); 584 Metadata *Ops[] = {nullptr, nullptr, nullptr, TypeArray}; 585 DEFINE_GETIMPL_STORE(DISubroutineType, (Flags, CC), Ops); 586 } 587 588 // FIXME: Implement this string-enum correspondence with a .def file and macros, 589 // so that the association is explicit rather than implied. 590 static const char *ChecksumKindName[DIFile::CSK_Last] = { 591 "CSK_MD5", 592 "CSK_SHA1", 593 "CSK_SHA256", 594 }; 595 596 StringRef DIFile::getChecksumKindAsString(ChecksumKind CSKind) { 597 assert(CSKind <= DIFile::CSK_Last && "Invalid checksum kind"); 598 // The first space was originally the CSK_None variant, which is now 599 // obsolete, but the space is still reserved in ChecksumKind, so we account 600 // for it here. 601 return ChecksumKindName[CSKind - 1]; 602 } 603 604 Optional<DIFile::ChecksumKind> DIFile::getChecksumKind(StringRef CSKindStr) { 605 return StringSwitch<Optional<DIFile::ChecksumKind>>(CSKindStr) 606 .Case("CSK_MD5", DIFile::CSK_MD5) 607 .Case("CSK_SHA1", DIFile::CSK_SHA1) 608 .Case("CSK_SHA256", DIFile::CSK_SHA256) 609 .Default(None); 610 } 611 612 DIFile *DIFile::getImpl(LLVMContext &Context, MDString *Filename, 613 MDString *Directory, 614 Optional<DIFile::ChecksumInfo<MDString *>> CS, 615 Optional<MDString *> Source, StorageType Storage, 616 bool ShouldCreate) { 617 assert(isCanonical(Filename) && "Expected canonical MDString"); 618 assert(isCanonical(Directory) && "Expected canonical MDString"); 619 assert((!CS || isCanonical(CS->Value)) && "Expected canonical MDString"); 620 assert((!Source || isCanonical(*Source)) && "Expected canonical MDString"); 621 DEFINE_GETIMPL_LOOKUP(DIFile, (Filename, Directory, CS, Source)); 622 Metadata *Ops[] = {Filename, Directory, CS ? CS->Value : nullptr, 623 Source.getValueOr(nullptr)}; 624 DEFINE_GETIMPL_STORE(DIFile, (CS, Source), Ops); 625 } 626 627 DICompileUnit *DICompileUnit::getImpl( 628 LLVMContext &Context, unsigned SourceLanguage, Metadata *File, 629 MDString *Producer, bool IsOptimized, MDString *Flags, 630 unsigned RuntimeVersion, MDString *SplitDebugFilename, 631 unsigned EmissionKind, Metadata *EnumTypes, Metadata *RetainedTypes, 632 Metadata *GlobalVariables, Metadata *ImportedEntities, Metadata *Macros, 633 uint64_t DWOId, bool SplitDebugInlining, bool DebugInfoForProfiling, 634 unsigned NameTableKind, bool RangesBaseAddress, MDString *SysRoot, 635 MDString *SDK, StorageType Storage, bool ShouldCreate) { 636 assert(Storage != Uniqued && "Cannot unique DICompileUnit"); 637 assert(isCanonical(Producer) && "Expected canonical MDString"); 638 assert(isCanonical(Flags) && "Expected canonical MDString"); 639 assert(isCanonical(SplitDebugFilename) && "Expected canonical MDString"); 640 641 Metadata *Ops[] = {File, 642 Producer, 643 Flags, 644 SplitDebugFilename, 645 EnumTypes, 646 RetainedTypes, 647 GlobalVariables, 648 ImportedEntities, 649 Macros, 650 SysRoot, 651 SDK}; 652 return storeImpl(new (array_lengthof(Ops)) DICompileUnit( 653 Context, Storage, SourceLanguage, IsOptimized, 654 RuntimeVersion, EmissionKind, DWOId, SplitDebugInlining, 655 DebugInfoForProfiling, NameTableKind, RangesBaseAddress, 656 Ops), 657 Storage); 658 } 659 660 Optional<DICompileUnit::DebugEmissionKind> 661 DICompileUnit::getEmissionKind(StringRef Str) { 662 return StringSwitch<Optional<DebugEmissionKind>>(Str) 663 .Case("NoDebug", NoDebug) 664 .Case("FullDebug", FullDebug) 665 .Case("LineTablesOnly", LineTablesOnly) 666 .Case("DebugDirectivesOnly", DebugDirectivesOnly) 667 .Default(None); 668 } 669 670 Optional<DICompileUnit::DebugNameTableKind> 671 DICompileUnit::getNameTableKind(StringRef Str) { 672 return StringSwitch<Optional<DebugNameTableKind>>(Str) 673 .Case("Default", DebugNameTableKind::Default) 674 .Case("GNU", DebugNameTableKind::GNU) 675 .Case("None", DebugNameTableKind::None) 676 .Default(None); 677 } 678 679 const char *DICompileUnit::emissionKindString(DebugEmissionKind EK) { 680 switch (EK) { 681 case NoDebug: return "NoDebug"; 682 case FullDebug: return "FullDebug"; 683 case LineTablesOnly: return "LineTablesOnly"; 684 case DebugDirectivesOnly: return "DebugDirectivesOnly"; 685 } 686 return nullptr; 687 } 688 689 const char *DICompileUnit::nameTableKindString(DebugNameTableKind NTK) { 690 switch (NTK) { 691 case DebugNameTableKind::Default: 692 return nullptr; 693 case DebugNameTableKind::GNU: 694 return "GNU"; 695 case DebugNameTableKind::None: 696 return "None"; 697 } 698 return nullptr; 699 } 700 701 DISubprogram *DILocalScope::getSubprogram() const { 702 if (auto *Block = dyn_cast<DILexicalBlockBase>(this)) 703 return Block->getScope()->getSubprogram(); 704 return const_cast<DISubprogram *>(cast<DISubprogram>(this)); 705 } 706 707 DILocalScope *DILocalScope::getNonLexicalBlockFileScope() const { 708 if (auto *File = dyn_cast<DILexicalBlockFile>(this)) 709 return File->getScope()->getNonLexicalBlockFileScope(); 710 return const_cast<DILocalScope *>(this); 711 } 712 713 DISubprogram::DISPFlags DISubprogram::getFlag(StringRef Flag) { 714 return StringSwitch<DISPFlags>(Flag) 715 #define HANDLE_DISP_FLAG(ID, NAME) .Case("DISPFlag" #NAME, SPFlag##NAME) 716 #include "llvm/IR/DebugInfoFlags.def" 717 .Default(SPFlagZero); 718 } 719 720 StringRef DISubprogram::getFlagString(DISPFlags Flag) { 721 switch (Flag) { 722 // Appease a warning. 723 case SPFlagVirtuality: 724 return ""; 725 #define HANDLE_DISP_FLAG(ID, NAME) \ 726 case SPFlag##NAME: \ 727 return "DISPFlag" #NAME; 728 #include "llvm/IR/DebugInfoFlags.def" 729 } 730 return ""; 731 } 732 733 DISubprogram::DISPFlags 734 DISubprogram::splitFlags(DISPFlags Flags, 735 SmallVectorImpl<DISPFlags> &SplitFlags) { 736 // Multi-bit fields can require special handling. In our case, however, the 737 // only multi-bit field is virtuality, and all its values happen to be 738 // single-bit values, so the right behavior just falls out. 739 #define HANDLE_DISP_FLAG(ID, NAME) \ 740 if (DISPFlags Bit = Flags & SPFlag##NAME) { \ 741 SplitFlags.push_back(Bit); \ 742 Flags &= ~Bit; \ 743 } 744 #include "llvm/IR/DebugInfoFlags.def" 745 return Flags; 746 } 747 748 DISubprogram *DISubprogram::getImpl( 749 LLVMContext &Context, Metadata *Scope, MDString *Name, 750 MDString *LinkageName, Metadata *File, unsigned Line, Metadata *Type, 751 unsigned ScopeLine, Metadata *ContainingType, unsigned VirtualIndex, 752 int ThisAdjustment, DIFlags Flags, DISPFlags SPFlags, Metadata *Unit, 753 Metadata *TemplateParams, Metadata *Declaration, Metadata *RetainedNodes, 754 Metadata *ThrownTypes, StorageType Storage, bool ShouldCreate) { 755 assert(isCanonical(Name) && "Expected canonical MDString"); 756 assert(isCanonical(LinkageName) && "Expected canonical MDString"); 757 DEFINE_GETIMPL_LOOKUP(DISubprogram, 758 (Scope, Name, LinkageName, File, Line, Type, ScopeLine, 759 ContainingType, VirtualIndex, ThisAdjustment, Flags, 760 SPFlags, Unit, TemplateParams, Declaration, 761 RetainedNodes, ThrownTypes)); 762 SmallVector<Metadata *, 11> Ops = { 763 File, Scope, Name, LinkageName, Type, Unit, 764 Declaration, RetainedNodes, ContainingType, TemplateParams, ThrownTypes}; 765 if (!ThrownTypes) { 766 Ops.pop_back(); 767 if (!TemplateParams) { 768 Ops.pop_back(); 769 if (!ContainingType) 770 Ops.pop_back(); 771 } 772 } 773 DEFINE_GETIMPL_STORE_N( 774 DISubprogram, 775 (Line, ScopeLine, VirtualIndex, ThisAdjustment, Flags, SPFlags), Ops, 776 Ops.size()); 777 } 778 779 bool DISubprogram::describes(const Function *F) const { 780 assert(F && "Invalid function"); 781 return F->getSubprogram() == this; 782 } 783 784 DILexicalBlock *DILexicalBlock::getImpl(LLVMContext &Context, Metadata *Scope, 785 Metadata *File, unsigned Line, 786 unsigned Column, StorageType Storage, 787 bool ShouldCreate) { 788 // Fixup column. 789 adjustColumn(Column); 790 791 assert(Scope && "Expected scope"); 792 DEFINE_GETIMPL_LOOKUP(DILexicalBlock, (Scope, File, Line, Column)); 793 Metadata *Ops[] = {File, Scope}; 794 DEFINE_GETIMPL_STORE(DILexicalBlock, (Line, Column), Ops); 795 } 796 797 DILexicalBlockFile *DILexicalBlockFile::getImpl(LLVMContext &Context, 798 Metadata *Scope, Metadata *File, 799 unsigned Discriminator, 800 StorageType Storage, 801 bool ShouldCreate) { 802 assert(Scope && "Expected scope"); 803 DEFINE_GETIMPL_LOOKUP(DILexicalBlockFile, (Scope, File, Discriminator)); 804 Metadata *Ops[] = {File, Scope}; 805 DEFINE_GETIMPL_STORE(DILexicalBlockFile, (Discriminator), Ops); 806 } 807 808 DINamespace *DINamespace::getImpl(LLVMContext &Context, Metadata *Scope, 809 MDString *Name, bool ExportSymbols, 810 StorageType Storage, bool ShouldCreate) { 811 assert(isCanonical(Name) && "Expected canonical MDString"); 812 DEFINE_GETIMPL_LOOKUP(DINamespace, (Scope, Name, ExportSymbols)); 813 // The nullptr is for DIScope's File operand. This should be refactored. 814 Metadata *Ops[] = {nullptr, Scope, Name}; 815 DEFINE_GETIMPL_STORE(DINamespace, (ExportSymbols), Ops); 816 } 817 818 DICommonBlock *DICommonBlock::getImpl(LLVMContext &Context, Metadata *Scope, 819 Metadata *Decl, MDString *Name, 820 Metadata *File, unsigned LineNo, 821 StorageType Storage, bool ShouldCreate) { 822 assert(isCanonical(Name) && "Expected canonical MDString"); 823 DEFINE_GETIMPL_LOOKUP(DICommonBlock, (Scope, Decl, Name, File, LineNo)); 824 // The nullptr is for DIScope's File operand. This should be refactored. 825 Metadata *Ops[] = {Scope, Decl, Name, File}; 826 DEFINE_GETIMPL_STORE(DICommonBlock, (LineNo), Ops); 827 } 828 829 DIModule *DIModule::getImpl(LLVMContext &Context, Metadata *File, 830 Metadata *Scope, MDString *Name, 831 MDString *ConfigurationMacros, 832 MDString *IncludePath, MDString *APINotesFile, 833 unsigned LineNo, StorageType Storage, 834 bool ShouldCreate) { 835 assert(isCanonical(Name) && "Expected canonical MDString"); 836 DEFINE_GETIMPL_LOOKUP(DIModule, (File, Scope, Name, ConfigurationMacros, 837 IncludePath, APINotesFile, LineNo)); 838 Metadata *Ops[] = {File, Scope, Name, ConfigurationMacros, 839 IncludePath, APINotesFile}; 840 DEFINE_GETIMPL_STORE(DIModule, (LineNo), Ops); 841 } 842 843 DITemplateTypeParameter * 844 DITemplateTypeParameter::getImpl(LLVMContext &Context, MDString *Name, 845 Metadata *Type, bool isDefault, 846 StorageType Storage, bool ShouldCreate) { 847 assert(isCanonical(Name) && "Expected canonical MDString"); 848 DEFINE_GETIMPL_LOOKUP(DITemplateTypeParameter, (Name, Type, isDefault)); 849 Metadata *Ops[] = {Name, Type}; 850 DEFINE_GETIMPL_STORE(DITemplateTypeParameter, (isDefault), Ops); 851 } 852 853 DITemplateValueParameter *DITemplateValueParameter::getImpl( 854 LLVMContext &Context, unsigned Tag, MDString *Name, Metadata *Type, 855 bool isDefault, Metadata *Value, StorageType Storage, bool ShouldCreate) { 856 assert(isCanonical(Name) && "Expected canonical MDString"); 857 DEFINE_GETIMPL_LOOKUP(DITemplateValueParameter, 858 (Tag, Name, Type, isDefault, Value)); 859 Metadata *Ops[] = {Name, Type, Value}; 860 DEFINE_GETIMPL_STORE(DITemplateValueParameter, (Tag, isDefault), Ops); 861 } 862 863 DIGlobalVariable * 864 DIGlobalVariable::getImpl(LLVMContext &Context, Metadata *Scope, MDString *Name, 865 MDString *LinkageName, Metadata *File, unsigned Line, 866 Metadata *Type, bool IsLocalToUnit, bool IsDefinition, 867 Metadata *StaticDataMemberDeclaration, 868 Metadata *TemplateParams, uint32_t AlignInBits, 869 StorageType Storage, bool ShouldCreate) { 870 assert(isCanonical(Name) && "Expected canonical MDString"); 871 assert(isCanonical(LinkageName) && "Expected canonical MDString"); 872 DEFINE_GETIMPL_LOOKUP(DIGlobalVariable, (Scope, Name, LinkageName, File, Line, 873 Type, IsLocalToUnit, IsDefinition, 874 StaticDataMemberDeclaration, 875 TemplateParams, AlignInBits)); 876 Metadata *Ops[] = {Scope, 877 Name, 878 File, 879 Type, 880 Name, 881 LinkageName, 882 StaticDataMemberDeclaration, 883 TemplateParams}; 884 DEFINE_GETIMPL_STORE(DIGlobalVariable, 885 (Line, IsLocalToUnit, IsDefinition, AlignInBits), Ops); 886 } 887 888 DILocalVariable *DILocalVariable::getImpl(LLVMContext &Context, Metadata *Scope, 889 MDString *Name, Metadata *File, 890 unsigned Line, Metadata *Type, 891 unsigned Arg, DIFlags Flags, 892 uint32_t AlignInBits, 893 StorageType Storage, 894 bool ShouldCreate) { 895 // 64K ought to be enough for any frontend. 896 assert(Arg <= UINT16_MAX && "Expected argument number to fit in 16-bits"); 897 898 assert(Scope && "Expected scope"); 899 assert(isCanonical(Name) && "Expected canonical MDString"); 900 DEFINE_GETIMPL_LOOKUP(DILocalVariable, 901 (Scope, Name, File, Line, Type, Arg, Flags, 902 AlignInBits)); 903 Metadata *Ops[] = {Scope, Name, File, Type}; 904 DEFINE_GETIMPL_STORE(DILocalVariable, (Line, Arg, Flags, AlignInBits), Ops); 905 } 906 907 Optional<uint64_t> DIVariable::getSizeInBits() const { 908 // This is used by the Verifier so be mindful of broken types. 909 const Metadata *RawType = getRawType(); 910 while (RawType) { 911 // Try to get the size directly. 912 if (auto *T = dyn_cast<DIType>(RawType)) 913 if (uint64_t Size = T->getSizeInBits()) 914 return Size; 915 916 if (auto *DT = dyn_cast<DIDerivedType>(RawType)) { 917 // Look at the base type. 918 RawType = DT->getRawBaseType(); 919 continue; 920 } 921 922 // Missing type or size. 923 break; 924 } 925 926 // Fail gracefully. 927 return None; 928 } 929 930 DILabel *DILabel::getImpl(LLVMContext &Context, Metadata *Scope, 931 MDString *Name, Metadata *File, unsigned Line, 932 StorageType Storage, 933 bool ShouldCreate) { 934 assert(Scope && "Expected scope"); 935 assert(isCanonical(Name) && "Expected canonical MDString"); 936 DEFINE_GETIMPL_LOOKUP(DILabel, 937 (Scope, Name, File, Line)); 938 Metadata *Ops[] = {Scope, Name, File}; 939 DEFINE_GETIMPL_STORE(DILabel, (Line), Ops); 940 } 941 942 DIExpression *DIExpression::getImpl(LLVMContext &Context, 943 ArrayRef<uint64_t> Elements, 944 StorageType Storage, bool ShouldCreate) { 945 DEFINE_GETIMPL_LOOKUP(DIExpression, (Elements)); 946 DEFINE_GETIMPL_STORE_NO_OPS(DIExpression, (Elements)); 947 } 948 949 unsigned DIExpression::ExprOperand::getSize() const { 950 uint64_t Op = getOp(); 951 952 if (Op >= dwarf::DW_OP_breg0 && Op <= dwarf::DW_OP_breg31) 953 return 2; 954 955 switch (Op) { 956 case dwarf::DW_OP_LLVM_convert: 957 case dwarf::DW_OP_LLVM_fragment: 958 case dwarf::DW_OP_bregx: 959 return 3; 960 case dwarf::DW_OP_constu: 961 case dwarf::DW_OP_consts: 962 case dwarf::DW_OP_deref_size: 963 case dwarf::DW_OP_plus_uconst: 964 case dwarf::DW_OP_LLVM_tag_offset: 965 case dwarf::DW_OP_LLVM_entry_value: 966 case dwarf::DW_OP_regx: 967 return 2; 968 default: 969 return 1; 970 } 971 } 972 973 bool DIExpression::isValid() const { 974 for (auto I = expr_op_begin(), E = expr_op_end(); I != E; ++I) { 975 // Check that there's space for the operand. 976 if (I->get() + I->getSize() > E->get()) 977 return false; 978 979 uint64_t Op = I->getOp(); 980 if ((Op >= dwarf::DW_OP_reg0 && Op <= dwarf::DW_OP_reg31) || 981 (Op >= dwarf::DW_OP_breg0 && Op <= dwarf::DW_OP_breg31)) 982 return true; 983 984 // Check that the operand is valid. 985 switch (Op) { 986 default: 987 return false; 988 case dwarf::DW_OP_LLVM_fragment: 989 // A fragment operator must appear at the end. 990 return I->get() + I->getSize() == E->get(); 991 case dwarf::DW_OP_stack_value: { 992 // Must be the last one or followed by a DW_OP_LLVM_fragment. 993 if (I->get() + I->getSize() == E->get()) 994 break; 995 auto J = I; 996 if ((++J)->getOp() != dwarf::DW_OP_LLVM_fragment) 997 return false; 998 break; 999 } 1000 case dwarf::DW_OP_swap: { 1001 // Must be more than one implicit element on the stack. 1002 1003 // FIXME: A better way to implement this would be to add a local variable 1004 // that keeps track of the stack depth and introduce something like a 1005 // DW_LLVM_OP_implicit_location as a placeholder for the location this 1006 // DIExpression is attached to, or else pass the number of implicit stack 1007 // elements into isValid. 1008 if (getNumElements() == 1) 1009 return false; 1010 break; 1011 } 1012 case dwarf::DW_OP_LLVM_entry_value: { 1013 // An entry value operator must appear at the beginning and the number of 1014 // operations it cover can currently only be 1, because we support only 1015 // entry values of a simple register location. One reason for this is that 1016 // we currently can't calculate the size of the resulting DWARF block for 1017 // other expressions. 1018 return I->get() == expr_op_begin()->get() && I->getArg(0) == 1 && 1019 getNumElements() == 2; 1020 } 1021 case dwarf::DW_OP_LLVM_convert: 1022 case dwarf::DW_OP_LLVM_tag_offset: 1023 case dwarf::DW_OP_constu: 1024 case dwarf::DW_OP_plus_uconst: 1025 case dwarf::DW_OP_plus: 1026 case dwarf::DW_OP_minus: 1027 case dwarf::DW_OP_mul: 1028 case dwarf::DW_OP_div: 1029 case dwarf::DW_OP_mod: 1030 case dwarf::DW_OP_or: 1031 case dwarf::DW_OP_and: 1032 case dwarf::DW_OP_xor: 1033 case dwarf::DW_OP_shl: 1034 case dwarf::DW_OP_shr: 1035 case dwarf::DW_OP_shra: 1036 case dwarf::DW_OP_deref: 1037 case dwarf::DW_OP_deref_size: 1038 case dwarf::DW_OP_xderef: 1039 case dwarf::DW_OP_lit0: 1040 case dwarf::DW_OP_not: 1041 case dwarf::DW_OP_dup: 1042 case dwarf::DW_OP_regx: 1043 case dwarf::DW_OP_bregx: 1044 case dwarf::DW_OP_push_object_address: 1045 break; 1046 } 1047 } 1048 return true; 1049 } 1050 1051 bool DIExpression::isImplicit() const { 1052 if (!isValid()) 1053 return false; 1054 1055 if (getNumElements() == 0) 1056 return false; 1057 1058 for (const auto &It : expr_ops()) { 1059 switch (It.getOp()) { 1060 default: 1061 break; 1062 case dwarf::DW_OP_stack_value: 1063 case dwarf::DW_OP_LLVM_tag_offset: 1064 return true; 1065 } 1066 } 1067 1068 return false; 1069 } 1070 1071 bool DIExpression::isComplex() const { 1072 if (!isValid()) 1073 return false; 1074 1075 if (getNumElements() == 0) 1076 return false; 1077 1078 // If there are any elements other than fragment or tag_offset, then some 1079 // kind of complex computation occurs. 1080 for (const auto &It : expr_ops()) { 1081 switch (It.getOp()) { 1082 case dwarf::DW_OP_LLVM_tag_offset: 1083 case dwarf::DW_OP_LLVM_fragment: 1084 continue; 1085 default: return true; 1086 } 1087 } 1088 1089 return false; 1090 } 1091 1092 Optional<DIExpression::FragmentInfo> 1093 DIExpression::getFragmentInfo(expr_op_iterator Start, expr_op_iterator End) { 1094 for (auto I = Start; I != End; ++I) 1095 if (I->getOp() == dwarf::DW_OP_LLVM_fragment) { 1096 DIExpression::FragmentInfo Info = {I->getArg(1), I->getArg(0)}; 1097 return Info; 1098 } 1099 return None; 1100 } 1101 1102 void DIExpression::appendOffset(SmallVectorImpl<uint64_t> &Ops, 1103 int64_t Offset) { 1104 if (Offset > 0) { 1105 Ops.push_back(dwarf::DW_OP_plus_uconst); 1106 Ops.push_back(Offset); 1107 } else if (Offset < 0) { 1108 Ops.push_back(dwarf::DW_OP_constu); 1109 Ops.push_back(-Offset); 1110 Ops.push_back(dwarf::DW_OP_minus); 1111 } 1112 } 1113 1114 bool DIExpression::extractIfOffset(int64_t &Offset) const { 1115 if (getNumElements() == 0) { 1116 Offset = 0; 1117 return true; 1118 } 1119 1120 if (getNumElements() == 2 && Elements[0] == dwarf::DW_OP_plus_uconst) { 1121 Offset = Elements[1]; 1122 return true; 1123 } 1124 1125 if (getNumElements() == 3 && Elements[0] == dwarf::DW_OP_constu) { 1126 if (Elements[2] == dwarf::DW_OP_plus) { 1127 Offset = Elements[1]; 1128 return true; 1129 } 1130 if (Elements[2] == dwarf::DW_OP_minus) { 1131 Offset = -Elements[1]; 1132 return true; 1133 } 1134 } 1135 1136 return false; 1137 } 1138 1139 const DIExpression *DIExpression::extractAddressClass(const DIExpression *Expr, 1140 unsigned &AddrClass) { 1141 // FIXME: This seems fragile. Nothing that verifies that these elements 1142 // actually map to ops and not operands. 1143 const unsigned PatternSize = 4; 1144 if (Expr->Elements.size() >= PatternSize && 1145 Expr->Elements[PatternSize - 4] == dwarf::DW_OP_constu && 1146 Expr->Elements[PatternSize - 2] == dwarf::DW_OP_swap && 1147 Expr->Elements[PatternSize - 1] == dwarf::DW_OP_xderef) { 1148 AddrClass = Expr->Elements[PatternSize - 3]; 1149 1150 if (Expr->Elements.size() == PatternSize) 1151 return nullptr; 1152 return DIExpression::get(Expr->getContext(), 1153 makeArrayRef(&*Expr->Elements.begin(), 1154 Expr->Elements.size() - PatternSize)); 1155 } 1156 return Expr; 1157 } 1158 1159 DIExpression *DIExpression::prepend(const DIExpression *Expr, uint8_t Flags, 1160 int64_t Offset) { 1161 SmallVector<uint64_t, 8> Ops; 1162 if (Flags & DIExpression::DerefBefore) 1163 Ops.push_back(dwarf::DW_OP_deref); 1164 1165 appendOffset(Ops, Offset); 1166 if (Flags & DIExpression::DerefAfter) 1167 Ops.push_back(dwarf::DW_OP_deref); 1168 1169 bool StackValue = Flags & DIExpression::StackValue; 1170 bool EntryValue = Flags & DIExpression::EntryValue; 1171 1172 return prependOpcodes(Expr, Ops, StackValue, EntryValue); 1173 } 1174 1175 DIExpression *DIExpression::prependOpcodes(const DIExpression *Expr, 1176 SmallVectorImpl<uint64_t> &Ops, 1177 bool StackValue, 1178 bool EntryValue) { 1179 assert(Expr && "Can't prepend ops to this expression"); 1180 1181 if (EntryValue) { 1182 Ops.push_back(dwarf::DW_OP_LLVM_entry_value); 1183 // Add size info needed for entry value expression. 1184 // Add plus one for target register operand. 1185 Ops.push_back(Expr->getNumElements() + 1); 1186 } 1187 1188 // If there are no ops to prepend, do not even add the DW_OP_stack_value. 1189 if (Ops.empty()) 1190 StackValue = false; 1191 for (auto Op : Expr->expr_ops()) { 1192 // A DW_OP_stack_value comes at the end, but before a DW_OP_LLVM_fragment. 1193 if (StackValue) { 1194 if (Op.getOp() == dwarf::DW_OP_stack_value) 1195 StackValue = false; 1196 else if (Op.getOp() == dwarf::DW_OP_LLVM_fragment) { 1197 Ops.push_back(dwarf::DW_OP_stack_value); 1198 StackValue = false; 1199 } 1200 } 1201 Op.appendToVector(Ops); 1202 } 1203 if (StackValue) 1204 Ops.push_back(dwarf::DW_OP_stack_value); 1205 return DIExpression::get(Expr->getContext(), Ops); 1206 } 1207 1208 DIExpression *DIExpression::append(const DIExpression *Expr, 1209 ArrayRef<uint64_t> Ops) { 1210 assert(Expr && !Ops.empty() && "Can't append ops to this expression"); 1211 1212 // Copy Expr's current op list. 1213 SmallVector<uint64_t, 16> NewOps; 1214 for (auto Op : Expr->expr_ops()) { 1215 // Append new opcodes before DW_OP_{stack_value, LLVM_fragment}. 1216 if (Op.getOp() == dwarf::DW_OP_stack_value || 1217 Op.getOp() == dwarf::DW_OP_LLVM_fragment) { 1218 NewOps.append(Ops.begin(), Ops.end()); 1219 1220 // Ensure that the new opcodes are only appended once. 1221 Ops = None; 1222 } 1223 Op.appendToVector(NewOps); 1224 } 1225 1226 NewOps.append(Ops.begin(), Ops.end()); 1227 auto *result = DIExpression::get(Expr->getContext(), NewOps); 1228 assert(result->isValid() && "concatenated expression is not valid"); 1229 return result; 1230 } 1231 1232 DIExpression *DIExpression::appendToStack(const DIExpression *Expr, 1233 ArrayRef<uint64_t> Ops) { 1234 assert(Expr && !Ops.empty() && "Can't append ops to this expression"); 1235 assert(none_of(Ops, 1236 [](uint64_t Op) { 1237 return Op == dwarf::DW_OP_stack_value || 1238 Op == dwarf::DW_OP_LLVM_fragment; 1239 }) && 1240 "Can't append this op"); 1241 1242 // Append a DW_OP_deref after Expr's current op list if it's non-empty and 1243 // has no DW_OP_stack_value. 1244 // 1245 // Match .* DW_OP_stack_value (DW_OP_LLVM_fragment A B)?. 1246 Optional<FragmentInfo> FI = Expr->getFragmentInfo(); 1247 unsigned DropUntilStackValue = FI.hasValue() ? 3 : 0; 1248 ArrayRef<uint64_t> ExprOpsBeforeFragment = 1249 Expr->getElements().drop_back(DropUntilStackValue); 1250 bool NeedsDeref = (Expr->getNumElements() > DropUntilStackValue) && 1251 (ExprOpsBeforeFragment.back() != dwarf::DW_OP_stack_value); 1252 bool NeedsStackValue = NeedsDeref || ExprOpsBeforeFragment.empty(); 1253 1254 // Append a DW_OP_deref after Expr's current op list if needed, then append 1255 // the new ops, and finally ensure that a single DW_OP_stack_value is present. 1256 SmallVector<uint64_t, 16> NewOps; 1257 if (NeedsDeref) 1258 NewOps.push_back(dwarf::DW_OP_deref); 1259 NewOps.append(Ops.begin(), Ops.end()); 1260 if (NeedsStackValue) 1261 NewOps.push_back(dwarf::DW_OP_stack_value); 1262 return DIExpression::append(Expr, NewOps); 1263 } 1264 1265 Optional<DIExpression *> DIExpression::createFragmentExpression( 1266 const DIExpression *Expr, unsigned OffsetInBits, unsigned SizeInBits) { 1267 SmallVector<uint64_t, 8> Ops; 1268 // Copy over the expression, but leave off any trailing DW_OP_LLVM_fragment. 1269 if (Expr) { 1270 for (auto Op : Expr->expr_ops()) { 1271 switch (Op.getOp()) { 1272 default: break; 1273 case dwarf::DW_OP_shr: 1274 case dwarf::DW_OP_shra: 1275 case dwarf::DW_OP_shl: 1276 case dwarf::DW_OP_plus: 1277 case dwarf::DW_OP_plus_uconst: 1278 case dwarf::DW_OP_minus: 1279 // We can't safely split arithmetic or shift operations into multiple 1280 // fragments because we can't express carry-over between fragments. 1281 // 1282 // FIXME: We *could* preserve the lowest fragment of a constant offset 1283 // operation if the offset fits into SizeInBits. 1284 return None; 1285 case dwarf::DW_OP_LLVM_fragment: { 1286 // Make the new offset point into the existing fragment. 1287 uint64_t FragmentOffsetInBits = Op.getArg(0); 1288 uint64_t FragmentSizeInBits = Op.getArg(1); 1289 (void)FragmentSizeInBits; 1290 assert((OffsetInBits + SizeInBits <= FragmentSizeInBits) && 1291 "new fragment outside of original fragment"); 1292 OffsetInBits += FragmentOffsetInBits; 1293 continue; 1294 } 1295 } 1296 Op.appendToVector(Ops); 1297 } 1298 } 1299 assert(Expr && "Unknown DIExpression"); 1300 Ops.push_back(dwarf::DW_OP_LLVM_fragment); 1301 Ops.push_back(OffsetInBits); 1302 Ops.push_back(SizeInBits); 1303 return DIExpression::get(Expr->getContext(), Ops); 1304 } 1305 1306 bool DIExpression::isConstant() const { 1307 // Recognize DW_OP_constu C DW_OP_stack_value (DW_OP_LLVM_fragment Len Ofs)?. 1308 if (getNumElements() != 3 && getNumElements() != 6) 1309 return false; 1310 if (getElement(0) != dwarf::DW_OP_constu || 1311 getElement(2) != dwarf::DW_OP_stack_value) 1312 return false; 1313 if (getNumElements() == 6 && getElement(3) != dwarf::DW_OP_LLVM_fragment) 1314 return false; 1315 return true; 1316 } 1317 1318 DIExpression::ExtOps DIExpression::getExtOps(unsigned FromSize, unsigned ToSize, 1319 bool Signed) { 1320 dwarf::TypeKind TK = Signed ? dwarf::DW_ATE_signed : dwarf::DW_ATE_unsigned; 1321 DIExpression::ExtOps Ops{{dwarf::DW_OP_LLVM_convert, FromSize, TK, 1322 dwarf::DW_OP_LLVM_convert, ToSize, TK}}; 1323 return Ops; 1324 } 1325 1326 DIExpression *DIExpression::appendExt(const DIExpression *Expr, 1327 unsigned FromSize, unsigned ToSize, 1328 bool Signed) { 1329 return appendToStack(Expr, getExtOps(FromSize, ToSize, Signed)); 1330 } 1331 1332 DIGlobalVariableExpression * 1333 DIGlobalVariableExpression::getImpl(LLVMContext &Context, Metadata *Variable, 1334 Metadata *Expression, StorageType Storage, 1335 bool ShouldCreate) { 1336 DEFINE_GETIMPL_LOOKUP(DIGlobalVariableExpression, (Variable, Expression)); 1337 Metadata *Ops[] = {Variable, Expression}; 1338 DEFINE_GETIMPL_STORE_NO_CONSTRUCTOR_ARGS(DIGlobalVariableExpression, Ops); 1339 } 1340 1341 DIObjCProperty *DIObjCProperty::getImpl( 1342 LLVMContext &Context, MDString *Name, Metadata *File, unsigned Line, 1343 MDString *GetterName, MDString *SetterName, unsigned Attributes, 1344 Metadata *Type, StorageType Storage, bool ShouldCreate) { 1345 assert(isCanonical(Name) && "Expected canonical MDString"); 1346 assert(isCanonical(GetterName) && "Expected canonical MDString"); 1347 assert(isCanonical(SetterName) && "Expected canonical MDString"); 1348 DEFINE_GETIMPL_LOOKUP(DIObjCProperty, (Name, File, Line, GetterName, 1349 SetterName, Attributes, Type)); 1350 Metadata *Ops[] = {Name, File, GetterName, SetterName, Type}; 1351 DEFINE_GETIMPL_STORE(DIObjCProperty, (Line, Attributes), Ops); 1352 } 1353 1354 DIImportedEntity *DIImportedEntity::getImpl(LLVMContext &Context, unsigned Tag, 1355 Metadata *Scope, Metadata *Entity, 1356 Metadata *File, unsigned Line, 1357 MDString *Name, StorageType Storage, 1358 bool ShouldCreate) { 1359 assert(isCanonical(Name) && "Expected canonical MDString"); 1360 DEFINE_GETIMPL_LOOKUP(DIImportedEntity, 1361 (Tag, Scope, Entity, File, Line, Name)); 1362 Metadata *Ops[] = {Scope, Entity, Name, File}; 1363 DEFINE_GETIMPL_STORE(DIImportedEntity, (Tag, Line), Ops); 1364 } 1365 1366 DIMacro *DIMacro::getImpl(LLVMContext &Context, unsigned MIType, 1367 unsigned Line, MDString *Name, MDString *Value, 1368 StorageType Storage, bool ShouldCreate) { 1369 assert(isCanonical(Name) && "Expected canonical MDString"); 1370 DEFINE_GETIMPL_LOOKUP(DIMacro, (MIType, Line, Name, Value)); 1371 Metadata *Ops[] = { Name, Value }; 1372 DEFINE_GETIMPL_STORE(DIMacro, (MIType, Line), Ops); 1373 } 1374 1375 DIMacroFile *DIMacroFile::getImpl(LLVMContext &Context, unsigned MIType, 1376 unsigned Line, Metadata *File, 1377 Metadata *Elements, StorageType Storage, 1378 bool ShouldCreate) { 1379 DEFINE_GETIMPL_LOOKUP(DIMacroFile, 1380 (MIType, Line, File, Elements)); 1381 Metadata *Ops[] = { File, Elements }; 1382 DEFINE_GETIMPL_STORE(DIMacroFile, (MIType, Line), Ops); 1383 } 1384