1 //===-- Metadata.cpp - Implement Metadata classes -------------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements the Metadata classes. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/IR/Metadata.h" 15 #include "LLVMContextImpl.h" 16 #include "SymbolTableListTraitsImpl.h" 17 #include "llvm/ADT/DenseMap.h" 18 #include "llvm/ADT/STLExtras.h" 19 #include "llvm/ADT/SmallSet.h" 20 #include "llvm/ADT/SmallString.h" 21 #include "llvm/ADT/StringMap.h" 22 #include "llvm/IR/ConstantRange.h" 23 #include "llvm/IR/Instruction.h" 24 #include "llvm/IR/LLVMContext.h" 25 #include "llvm/IR/Module.h" 26 #include "llvm/IR/ValueHandle.h" 27 28 using namespace llvm; 29 30 MetadataAsValue::MetadataAsValue(Type *Ty, Metadata *MD) 31 : Value(Ty, MetadataAsValueVal), MD(MD) { 32 track(); 33 } 34 35 MetadataAsValue::~MetadataAsValue() { 36 getType()->getContext().pImpl->MetadataAsValues.erase(MD); 37 untrack(); 38 } 39 40 /// \brief Canonicalize metadata arguments to intrinsics. 41 /// 42 /// To support bitcode upgrades (and assembly semantic sugar) for \a 43 /// MetadataAsValue, we need to canonicalize certain metadata. 44 /// 45 /// - nullptr is replaced by an empty MDNode. 46 /// - An MDNode with a single null operand is replaced by an empty MDNode. 47 /// - An MDNode whose only operand is a \a ConstantAsMetadata gets skipped. 48 /// 49 /// This maintains readability of bitcode from when metadata was a type of 50 /// value, and these bridges were unnecessary. 51 static Metadata *canonicalizeMetadataForValue(LLVMContext &Context, 52 Metadata *MD) { 53 if (!MD) 54 // !{} 55 return MDNode::get(Context, None); 56 57 // Return early if this isn't a single-operand MDNode. 58 auto *N = dyn_cast<MDNode>(MD); 59 if (!N || N->getNumOperands() != 1) 60 return MD; 61 62 if (!N->getOperand(0)) 63 // !{} 64 return MDNode::get(Context, None); 65 66 if (auto *C = dyn_cast<ConstantAsMetadata>(N->getOperand(0))) 67 // Look through the MDNode. 68 return C; 69 70 return MD; 71 } 72 73 MetadataAsValue *MetadataAsValue::get(LLVMContext &Context, Metadata *MD) { 74 MD = canonicalizeMetadataForValue(Context, MD); 75 auto *&Entry = Context.pImpl->MetadataAsValues[MD]; 76 if (!Entry) 77 Entry = new MetadataAsValue(Type::getMetadataTy(Context), MD); 78 return Entry; 79 } 80 81 MetadataAsValue *MetadataAsValue::getIfExists(LLVMContext &Context, 82 Metadata *MD) { 83 MD = canonicalizeMetadataForValue(Context, MD); 84 auto &Store = Context.pImpl->MetadataAsValues; 85 auto I = Store.find(MD); 86 return I == Store.end() ? nullptr : I->second; 87 } 88 89 void MetadataAsValue::handleChangedMetadata(Metadata *MD) { 90 LLVMContext &Context = getContext(); 91 MD = canonicalizeMetadataForValue(Context, MD); 92 auto &Store = Context.pImpl->MetadataAsValues; 93 94 // Stop tracking the old metadata. 95 Store.erase(this->MD); 96 untrack(); 97 this->MD = nullptr; 98 99 // Start tracking MD, or RAUW if necessary. 100 auto *&Entry = Store[MD]; 101 if (Entry) { 102 replaceAllUsesWith(Entry); 103 delete this; 104 return; 105 } 106 107 this->MD = MD; 108 track(); 109 Entry = this; 110 } 111 112 void MetadataAsValue::track() { 113 if (MD) 114 MetadataTracking::track(&MD, *MD, *this); 115 } 116 117 void MetadataAsValue::untrack() { 118 if (MD) 119 MetadataTracking::untrack(MD); 120 } 121 122 void ReplaceableMetadataImpl::addRef(void *Ref, OwnerTy Owner) { 123 bool WasInserted = 124 UseMap.insert(std::make_pair(Ref, std::make_pair(Owner, NextIndex))) 125 .second; 126 (void)WasInserted; 127 assert(WasInserted && "Expected to add a reference"); 128 129 ++NextIndex; 130 assert(NextIndex != 0 && "Unexpected overflow"); 131 } 132 133 void ReplaceableMetadataImpl::dropRef(void *Ref) { 134 bool WasErased = UseMap.erase(Ref); 135 (void)WasErased; 136 assert(WasErased && "Expected to drop a reference"); 137 } 138 139 void ReplaceableMetadataImpl::moveRef(void *Ref, void *New, 140 const Metadata &MD) { 141 auto I = UseMap.find(Ref); 142 assert(I != UseMap.end() && "Expected to move a reference"); 143 auto OwnerAndIndex = I->second; 144 UseMap.erase(I); 145 bool WasInserted = UseMap.insert(std::make_pair(New, OwnerAndIndex)).second; 146 (void)WasInserted; 147 assert(WasInserted && "Expected to add a reference"); 148 149 // Check that the references are direct if there's no owner. 150 (void)MD; 151 assert((OwnerAndIndex.first || *static_cast<Metadata **>(Ref) == &MD) && 152 "Reference without owner must be direct"); 153 assert((OwnerAndIndex.first || *static_cast<Metadata **>(New) == &MD) && 154 "Reference without owner must be direct"); 155 } 156 157 void ReplaceableMetadataImpl::replaceAllUsesWith(Metadata *MD) { 158 assert(!(MD && isa<MDNode>(MD) && cast<MDNode>(MD)->isTemporary()) && 159 "Expected non-temp node"); 160 161 if (UseMap.empty()) 162 return; 163 164 // Copy out uses since UseMap will get touched below. 165 typedef std::pair<void *, std::pair<OwnerTy, uint64_t>> UseTy; 166 SmallVector<UseTy, 8> Uses(UseMap.begin(), UseMap.end()); 167 std::sort(Uses.begin(), Uses.end(), [](const UseTy &L, const UseTy &R) { 168 return L.second.second < R.second.second; 169 }); 170 for (const auto &Pair : Uses) { 171 // Check that this Ref hasn't disappeared after RAUW (when updating a 172 // previous Ref). 173 if (!UseMap.count(Pair.first)) 174 continue; 175 176 OwnerTy Owner = Pair.second.first; 177 if (!Owner) { 178 // Update unowned tracking references directly. 179 Metadata *&Ref = *static_cast<Metadata **>(Pair.first); 180 Ref = MD; 181 if (MD) 182 MetadataTracking::track(Ref); 183 UseMap.erase(Pair.first); 184 continue; 185 } 186 187 // Check for MetadataAsValue. 188 if (Owner.is<MetadataAsValue *>()) { 189 Owner.get<MetadataAsValue *>()->handleChangedMetadata(MD); 190 continue; 191 } 192 193 // There's a Metadata owner -- dispatch. 194 Metadata *OwnerMD = Owner.get<Metadata *>(); 195 switch (OwnerMD->getMetadataID()) { 196 #define HANDLE_METADATA_LEAF(CLASS) \ 197 case Metadata::CLASS##Kind: \ 198 cast<CLASS>(OwnerMD)->handleChangedOperand(Pair.first, MD); \ 199 continue; 200 #include "llvm/IR/Metadata.def" 201 default: 202 llvm_unreachable("Invalid metadata subclass"); 203 } 204 } 205 assert(UseMap.empty() && "Expected all uses to be replaced"); 206 } 207 208 void ReplaceableMetadataImpl::resolveAllUses(bool ResolveUsers) { 209 if (UseMap.empty()) 210 return; 211 212 if (!ResolveUsers) { 213 UseMap.clear(); 214 return; 215 } 216 217 // Copy out uses since UseMap could get touched below. 218 typedef std::pair<void *, std::pair<OwnerTy, uint64_t>> UseTy; 219 SmallVector<UseTy, 8> Uses(UseMap.begin(), UseMap.end()); 220 std::sort(Uses.begin(), Uses.end(), [](const UseTy &L, const UseTy &R) { 221 return L.second.second < R.second.second; 222 }); 223 UseMap.clear(); 224 for (const auto &Pair : Uses) { 225 auto Owner = Pair.second.first; 226 if (!Owner) 227 continue; 228 if (Owner.is<MetadataAsValue *>()) 229 continue; 230 231 // Resolve MDNodes that point at this. 232 auto *OwnerMD = dyn_cast<MDNode>(Owner.get<Metadata *>()); 233 if (!OwnerMD) 234 continue; 235 if (OwnerMD->isResolved()) 236 continue; 237 OwnerMD->decrementUnresolvedOperandCount(); 238 } 239 } 240 241 static Function *getLocalFunction(Value *V) { 242 assert(V && "Expected value"); 243 if (auto *A = dyn_cast<Argument>(V)) 244 return A->getParent(); 245 if (BasicBlock *BB = cast<Instruction>(V)->getParent()) 246 return BB->getParent(); 247 return nullptr; 248 } 249 250 ValueAsMetadata *ValueAsMetadata::get(Value *V) { 251 assert(V && "Unexpected null Value"); 252 253 auto &Context = V->getContext(); 254 auto *&Entry = Context.pImpl->ValuesAsMetadata[V]; 255 if (!Entry) { 256 assert((isa<Constant>(V) || isa<Argument>(V) || isa<Instruction>(V)) && 257 "Expected constant or function-local value"); 258 assert(!V->NameAndIsUsedByMD.getInt() && 259 "Expected this to be the only metadata use"); 260 V->NameAndIsUsedByMD.setInt(true); 261 if (auto *C = dyn_cast<Constant>(V)) 262 Entry = new ConstantAsMetadata(C); 263 else 264 Entry = new LocalAsMetadata(V); 265 } 266 267 return Entry; 268 } 269 270 ValueAsMetadata *ValueAsMetadata::getIfExists(Value *V) { 271 assert(V && "Unexpected null Value"); 272 return V->getContext().pImpl->ValuesAsMetadata.lookup(V); 273 } 274 275 void ValueAsMetadata::handleDeletion(Value *V) { 276 assert(V && "Expected valid value"); 277 278 auto &Store = V->getType()->getContext().pImpl->ValuesAsMetadata; 279 auto I = Store.find(V); 280 if (I == Store.end()) 281 return; 282 283 // Remove old entry from the map. 284 ValueAsMetadata *MD = I->second; 285 assert(MD && "Expected valid metadata"); 286 assert(MD->getValue() == V && "Expected valid mapping"); 287 Store.erase(I); 288 289 // Delete the metadata. 290 MD->replaceAllUsesWith(nullptr); 291 delete MD; 292 } 293 294 void ValueAsMetadata::handleRAUW(Value *From, Value *To) { 295 assert(From && "Expected valid value"); 296 assert(To && "Expected valid value"); 297 assert(From != To && "Expected changed value"); 298 assert(From->getType() == To->getType() && "Unexpected type change"); 299 300 LLVMContext &Context = From->getType()->getContext(); 301 auto &Store = Context.pImpl->ValuesAsMetadata; 302 auto I = Store.find(From); 303 if (I == Store.end()) { 304 assert(!From->NameAndIsUsedByMD.getInt() && 305 "Expected From not to be used by metadata"); 306 return; 307 } 308 309 // Remove old entry from the map. 310 assert(From->NameAndIsUsedByMD.getInt() && 311 "Expected From to be used by metadata"); 312 From->NameAndIsUsedByMD.setInt(false); 313 ValueAsMetadata *MD = I->second; 314 assert(MD && "Expected valid metadata"); 315 assert(MD->getValue() == From && "Expected valid mapping"); 316 Store.erase(I); 317 318 if (isa<LocalAsMetadata>(MD)) { 319 if (auto *C = dyn_cast<Constant>(To)) { 320 // Local became a constant. 321 MD->replaceAllUsesWith(ConstantAsMetadata::get(C)); 322 delete MD; 323 return; 324 } 325 if (getLocalFunction(From) && getLocalFunction(To) && 326 getLocalFunction(From) != getLocalFunction(To)) { 327 // Function changed. 328 MD->replaceAllUsesWith(nullptr); 329 delete MD; 330 return; 331 } 332 } else if (!isa<Constant>(To)) { 333 // Changed to function-local value. 334 MD->replaceAllUsesWith(nullptr); 335 delete MD; 336 return; 337 } 338 339 auto *&Entry = Store[To]; 340 if (Entry) { 341 // The target already exists. 342 MD->replaceAllUsesWith(Entry); 343 delete MD; 344 return; 345 } 346 347 // Update MD in place (and update the map entry). 348 assert(!To->NameAndIsUsedByMD.getInt() && 349 "Expected this to be the only metadata use"); 350 To->NameAndIsUsedByMD.setInt(true); 351 MD->V = To; 352 Entry = MD; 353 } 354 355 //===----------------------------------------------------------------------===// 356 // MDString implementation. 357 // 358 359 MDString *MDString::get(LLVMContext &Context, StringRef Str) { 360 auto &Store = Context.pImpl->MDStringCache; 361 auto I = Store.find(Str); 362 if (I != Store.end()) 363 return &I->second; 364 365 auto *Entry = 366 StringMapEntry<MDString>::Create(Str, Store.getAllocator(), MDString()); 367 bool WasInserted = Store.insert(Entry); 368 (void)WasInserted; 369 assert(WasInserted && "Expected entry to be inserted"); 370 Entry->second.Entry = Entry; 371 return &Entry->second; 372 } 373 374 StringRef MDString::getString() const { 375 assert(Entry && "Expected to find string map entry"); 376 return Entry->first(); 377 } 378 379 //===----------------------------------------------------------------------===// 380 // MDNode implementation. 381 // 382 383 void *MDNode::operator new(size_t Size, unsigned NumOps) { 384 void *Ptr = ::operator new(Size + NumOps * sizeof(MDOperand)); 385 MDOperand *O = static_cast<MDOperand *>(Ptr); 386 for (MDOperand *E = O + NumOps; O != E; ++O) 387 (void)new (O) MDOperand; 388 return O; 389 } 390 391 void MDNode::operator delete(void *Mem) { 392 MDNode *N = static_cast<MDNode *>(Mem); 393 MDOperand *O = static_cast<MDOperand *>(Mem); 394 for (MDOperand *E = O - N->NumOperands; O != E; --O) 395 (O - 1)->~MDOperand(); 396 ::operator delete(O); 397 } 398 399 MDNode::MDNode(LLVMContext &Context, unsigned ID, StorageType Storage, 400 ArrayRef<Metadata *> Ops1, ArrayRef<Metadata *> Ops2) 401 : Metadata(ID, Storage), NumOperands(Ops1.size() + Ops2.size()), 402 NumUnresolved(0), Context(Context) { 403 unsigned Op = 0; 404 for (Metadata *MD : Ops1) 405 setOperand(Op++, MD); 406 for (Metadata *MD : Ops2) 407 setOperand(Op++, MD); 408 409 if (isDistinct()) 410 return; 411 412 if (isUniqued()) 413 // Check whether any operands are unresolved, requiring re-uniquing. If 414 // not, don't support RAUW. 415 if (!countUnresolvedOperands()) 416 return; 417 418 this->Context.makeReplaceable(make_unique<ReplaceableMetadataImpl>(Context)); 419 } 420 421 TempMDNode MDNode::clone() const { 422 switch (getMetadataID()) { 423 default: 424 llvm_unreachable("Invalid MDNode subclass"); 425 #define HANDLE_MDNODE_LEAF(CLASS) \ 426 case CLASS##Kind: \ 427 return cast<CLASS>(this)->cloneImpl(); 428 #include "llvm/IR/Metadata.def" 429 } 430 } 431 432 static bool isOperandUnresolved(Metadata *Op) { 433 if (auto *N = dyn_cast_or_null<MDNode>(Op)) 434 return !N->isResolved(); 435 return false; 436 } 437 438 unsigned MDNode::countUnresolvedOperands() { 439 assert(NumUnresolved == 0 && "Expected unresolved ops to be uncounted"); 440 for (const auto &Op : operands()) 441 NumUnresolved += unsigned(isOperandUnresolved(Op)); 442 return NumUnresolved; 443 } 444 445 void MDNode::makeUniqued() { 446 assert(isTemporary() && "Expected this to be temporary"); 447 assert(!isResolved() && "Expected this to be unresolved"); 448 449 // Make this 'uniqued'. 450 Storage = Uniqued; 451 if (!countUnresolvedOperands()) 452 resolve(); 453 454 assert(isUniqued() && "Expected this to be uniqued"); 455 } 456 457 void MDNode::makeDistinct() { 458 assert(isTemporary() && "Expected this to be temporary"); 459 assert(!isResolved() && "Expected this to be unresolved"); 460 461 // Pretend to be uniqued, resolve the node, and then store in distinct table. 462 Storage = Uniqued; 463 resolve(); 464 storeDistinctInContext(); 465 466 assert(isDistinct() && "Expected this to be distinct"); 467 assert(isResolved() && "Expected this to be resolved"); 468 } 469 470 void MDNode::resolve() { 471 assert(isUniqued() && "Expected this to be uniqued"); 472 assert(!isResolved() && "Expected this to be unresolved"); 473 474 // Move the map, so that this immediately looks resolved. 475 auto Uses = Context.takeReplaceableUses(); 476 NumUnresolved = 0; 477 assert(isResolved() && "Expected this to be resolved"); 478 479 // Drop RAUW support. 480 Uses->resolveAllUses(); 481 } 482 483 void MDNode::resolveAfterOperandChange(Metadata *Old, Metadata *New) { 484 assert(NumUnresolved != 0 && "Expected unresolved operands"); 485 486 // Check if an operand was resolved. 487 if (!isOperandUnresolved(Old)) { 488 if (isOperandUnresolved(New)) 489 // An operand was un-resolved! 490 ++NumUnresolved; 491 } else if (!isOperandUnresolved(New)) 492 decrementUnresolvedOperandCount(); 493 } 494 495 void MDNode::decrementUnresolvedOperandCount() { 496 if (!--NumUnresolved) 497 // Last unresolved operand has just been resolved. 498 resolve(); 499 } 500 501 void MDNode::resolveCycles() { 502 if (isResolved()) 503 return; 504 505 // Resolve this node immediately. 506 resolve(); 507 508 // Resolve all operands. 509 for (const auto &Op : operands()) { 510 auto *N = dyn_cast_or_null<MDNode>(Op); 511 if (!N) 512 continue; 513 514 assert(!N->isTemporary() && 515 "Expected all forward declarations to be resolved"); 516 if (!N->isResolved()) 517 N->resolveCycles(); 518 } 519 } 520 521 MDNode *MDNode::replaceWithUniquedImpl() { 522 // Try to uniquify in place. 523 MDNode *UniquedNode = uniquify(); 524 if (UniquedNode == this) { 525 makeUniqued(); 526 return this; 527 } 528 529 // Collision, so RAUW instead. 530 replaceAllUsesWith(UniquedNode); 531 deleteAsSubclass(); 532 return UniquedNode; 533 } 534 535 MDNode *MDNode::replaceWithDistinctImpl() { 536 makeDistinct(); 537 return this; 538 } 539 540 void MDTuple::recalculateHash() { 541 setHash(MDTupleInfo::KeyTy::calculateHash(this)); 542 } 543 544 void GenericDwarfNode::recalculateHash() { 545 setHash(GenericDwarfNodeInfo::KeyTy::calculateHash(this)); 546 } 547 548 void MDNode::dropAllReferences() { 549 for (unsigned I = 0, E = NumOperands; I != E; ++I) 550 setOperand(I, nullptr); 551 if (!isResolved()) { 552 Context.getReplaceableUses()->resolveAllUses(/* ResolveUsers */ false); 553 (void)Context.takeReplaceableUses(); 554 } 555 } 556 557 void MDNode::handleChangedOperand(void *Ref, Metadata *New) { 558 unsigned Op = static_cast<MDOperand *>(Ref) - op_begin(); 559 assert(Op < getNumOperands() && "Expected valid operand"); 560 561 if (!isUniqued()) { 562 // This node is not uniqued. Just set the operand and be done with it. 563 setOperand(Op, New); 564 return; 565 } 566 567 // This node is uniqued. 568 eraseFromStore(); 569 570 Metadata *Old = getOperand(Op); 571 setOperand(Op, New); 572 573 // Drop uniquing for self-reference cycles. 574 if (New == this) { 575 if (!isResolved()) 576 resolve(); 577 storeDistinctInContext(); 578 return; 579 } 580 581 // Re-unique the node. 582 auto *Uniqued = uniquify(); 583 if (Uniqued == this) { 584 if (!isResolved()) 585 resolveAfterOperandChange(Old, New); 586 return; 587 } 588 589 // Collision. 590 if (!isResolved()) { 591 // Still unresolved, so RAUW. 592 // 593 // First, clear out all operands to prevent any recursion (similar to 594 // dropAllReferences(), but we still need the use-list). 595 for (unsigned O = 0, E = getNumOperands(); O != E; ++O) 596 setOperand(O, nullptr); 597 Context.getReplaceableUses()->replaceAllUsesWith(Uniqued); 598 deleteAsSubclass(); 599 return; 600 } 601 602 // Store in non-uniqued form if RAUW isn't possible. 603 storeDistinctInContext(); 604 } 605 606 void MDNode::deleteAsSubclass() { 607 switch (getMetadataID()) { 608 default: 609 llvm_unreachable("Invalid subclass of MDNode"); 610 #define HANDLE_MDNODE_LEAF(CLASS) \ 611 case CLASS##Kind: \ 612 delete cast<CLASS>(this); \ 613 break; 614 #include "llvm/IR/Metadata.def" 615 } 616 } 617 618 template <class T, class InfoT> 619 static T *getUniqued(DenseSet<T *, InfoT> &Store, 620 const typename InfoT::KeyTy &Key) { 621 auto I = Store.find_as(Key); 622 return I == Store.end() ? nullptr : *I; 623 } 624 625 template <class T, class InfoT> 626 static T *uniquifyImpl(T *N, DenseSet<T *, InfoT> &Store) { 627 if (T *U = getUniqued(Store, N)) 628 return U; 629 630 Store.insert(N); 631 return N; 632 } 633 634 template <class NodeTy> struct MDNode::HasCachedHash { 635 typedef char Yes[1]; 636 typedef char No[2]; 637 template <class U, U Val> struct SFINAE {}; 638 639 template <class U> 640 static Yes &check(SFINAE<void (U::*)(unsigned), &U::setHash> *); 641 template <class U> static No &check(...); 642 643 static const bool value = sizeof(check<NodeTy>(nullptr)) == sizeof(Yes); 644 }; 645 646 MDNode *MDNode::uniquify() { 647 // Try to insert into uniquing store. 648 switch (getMetadataID()) { 649 default: 650 llvm_unreachable("Invalid subclass of MDNode"); 651 #define HANDLE_MDNODE_LEAF(CLASS) \ 652 case CLASS##Kind: { \ 653 CLASS *SubclassThis = cast<CLASS>(this); \ 654 std::integral_constant<bool, HasCachedHash<CLASS>::value> \ 655 ShouldRecalculateHash; \ 656 dispatchRecalculateHash(SubclassThis, ShouldRecalculateHash); \ 657 return uniquifyImpl(SubclassThis, getContext().pImpl->CLASS##s); \ 658 } 659 #include "llvm/IR/Metadata.def" 660 } 661 } 662 663 void MDNode::eraseFromStore() { 664 switch (getMetadataID()) { 665 default: 666 llvm_unreachable("Invalid subclass of MDNode"); 667 #define HANDLE_MDNODE_LEAF(CLASS) \ 668 case CLASS##Kind: \ 669 getContext().pImpl->CLASS##s.erase(cast<CLASS>(this)); \ 670 break; 671 #include "llvm/IR/Metadata.def" 672 } 673 } 674 675 template <class T, class StoreT> 676 T *MDNode::storeImpl(T *N, StorageType Storage, StoreT &Store) { 677 switch (Storage) { 678 case Uniqued: 679 Store.insert(N); 680 break; 681 case Distinct: 682 N->storeDistinctInContext(); 683 break; 684 case Temporary: 685 break; 686 } 687 return N; 688 } 689 690 MDTuple *MDTuple::getImpl(LLVMContext &Context, ArrayRef<Metadata *> MDs, 691 StorageType Storage, bool ShouldCreate) { 692 unsigned Hash = 0; 693 if (Storage == Uniqued) { 694 MDTupleInfo::KeyTy Key(MDs); 695 if (auto *N = getUniqued(Context.pImpl->MDTuples, Key)) 696 return N; 697 if (!ShouldCreate) 698 return nullptr; 699 Hash = Key.getHash(); 700 } else { 701 assert(ShouldCreate && "Expected non-uniqued nodes to always be created"); 702 } 703 704 return storeImpl(new (MDs.size()) MDTuple(Context, Storage, Hash, MDs), 705 Storage, Context.pImpl->MDTuples); 706 } 707 708 MDLocation::MDLocation(LLVMContext &C, StorageType Storage, unsigned Line, 709 unsigned Column, ArrayRef<Metadata *> MDs) 710 : MDNode(C, MDLocationKind, Storage, MDs) { 711 assert((MDs.size() == 1 || MDs.size() == 2) && 712 "Expected a scope and optional inlined-at"); 713 714 // Set line and column. 715 assert(Line < (1u << 24) && "Expected 24-bit line"); 716 assert(Column < (1u << 16) && "Expected 16-bit column"); 717 718 SubclassData32 = Line; 719 SubclassData16 = Column; 720 } 721 722 static void adjustLine(unsigned &Line) { 723 // Set to unknown on overflow. Still use 24 bits for now. 724 if (Line >= (1u << 24)) 725 Line = 0; 726 } 727 728 static void adjustColumn(unsigned &Column) { 729 // Set to unknown on overflow. We only have 16 bits to play with here. 730 if (Column >= (1u << 16)) 731 Column = 0; 732 } 733 734 MDLocation *MDLocation::getImpl(LLVMContext &Context, unsigned Line, 735 unsigned Column, Metadata *Scope, 736 Metadata *InlinedAt, StorageType Storage, 737 bool ShouldCreate) { 738 // Fixup line/column. 739 adjustLine(Line); 740 adjustColumn(Column); 741 742 if (Storage == Uniqued) { 743 if (auto *N = getUniqued( 744 Context.pImpl->MDLocations, 745 MDLocationInfo::KeyTy(Line, Column, Scope, InlinedAt))) 746 return N; 747 if (!ShouldCreate) 748 return nullptr; 749 } else { 750 assert(ShouldCreate && "Expected non-uniqued nodes to always be created"); 751 } 752 753 SmallVector<Metadata *, 2> Ops; 754 Ops.push_back(Scope); 755 if (InlinedAt) 756 Ops.push_back(InlinedAt); 757 return storeImpl(new (Ops.size()) 758 MDLocation(Context, Storage, Line, Column, Ops), 759 Storage, Context.pImpl->MDLocations); 760 } 761 762 GenericDwarfNode *GenericDwarfNode::getImpl(LLVMContext &Context, unsigned Tag, 763 MDString *Header, 764 ArrayRef<Metadata *> DwarfOps, 765 StorageType Storage, 766 bool ShouldCreate) { 767 // Canonicalize empty string to a nullptr. 768 if (Header && Header->getString().empty()) 769 Header = nullptr; 770 771 unsigned Hash = 0; 772 if (Storage == Uniqued) { 773 GenericDwarfNodeInfo::KeyTy Key(Tag, Header, DwarfOps); 774 if (auto *N = getUniqued(Context.pImpl->GenericDwarfNodes, Key)) 775 return N; 776 if (!ShouldCreate) 777 return nullptr; 778 Hash = Key.getHash(); 779 } else { 780 assert(ShouldCreate && "Expected non-uniqued nodes to always be created"); 781 } 782 783 Metadata *PreOps[] = {Header}; 784 return storeImpl(new (DwarfOps.size() + 1) GenericDwarfNode( 785 Context, Storage, Hash, Tag, PreOps, DwarfOps), 786 Storage, Context.pImpl->GenericDwarfNodes); 787 } 788 789 void MDNode::deleteTemporary(MDNode *N) { 790 assert(N->isTemporary() && "Expected temporary node"); 791 N->deleteAsSubclass(); 792 } 793 794 void MDNode::storeDistinctInContext() { 795 assert(isResolved() && "Expected resolved nodes"); 796 Storage = Distinct; 797 798 // Reset the hash. 799 switch (getMetadataID()) { 800 default: 801 llvm_unreachable("Invalid subclass of MDNode"); 802 #define HANDLE_MDNODE_LEAF(CLASS) \ 803 case CLASS##Kind: { \ 804 std::integral_constant<bool, HasCachedHash<CLASS>::value> ShouldResetHash; \ 805 dispatchResetHash(cast<CLASS>(this), ShouldResetHash); \ 806 break; \ 807 } 808 #include "llvm/IR/Metadata.def" 809 } 810 811 getContext().pImpl->DistinctMDNodes.insert(this); 812 } 813 814 void MDNode::replaceOperandWith(unsigned I, Metadata *New) { 815 if (getOperand(I) == New) 816 return; 817 818 if (!isUniqued()) { 819 setOperand(I, New); 820 return; 821 } 822 823 handleChangedOperand(mutable_begin() + I, New); 824 } 825 826 void MDNode::setOperand(unsigned I, Metadata *New) { 827 assert(I < NumOperands); 828 mutable_begin()[I].reset(New, isUniqued() ? this : nullptr); 829 } 830 831 /// \brief Get a node, or a self-reference that looks like it. 832 /// 833 /// Special handling for finding self-references, for use by \a 834 /// MDNode::concatenate() and \a MDNode::intersect() to maintain behaviour from 835 /// when self-referencing nodes were still uniqued. If the first operand has 836 /// the same operands as \c Ops, return the first operand instead. 837 static MDNode *getOrSelfReference(LLVMContext &Context, 838 ArrayRef<Metadata *> Ops) { 839 if (!Ops.empty()) 840 if (MDNode *N = dyn_cast_or_null<MDNode>(Ops[0])) 841 if (N->getNumOperands() == Ops.size() && N == N->getOperand(0)) { 842 for (unsigned I = 1, E = Ops.size(); I != E; ++I) 843 if (Ops[I] != N->getOperand(I)) 844 return MDNode::get(Context, Ops); 845 return N; 846 } 847 848 return MDNode::get(Context, Ops); 849 } 850 851 MDNode *MDNode::concatenate(MDNode *A, MDNode *B) { 852 if (!A) 853 return B; 854 if (!B) 855 return A; 856 857 SmallVector<Metadata *, 4> MDs(A->getNumOperands() + B->getNumOperands()); 858 859 unsigned j = 0; 860 for (unsigned i = 0, ie = A->getNumOperands(); i != ie; ++i) 861 MDs[j++] = A->getOperand(i); 862 for (unsigned i = 0, ie = B->getNumOperands(); i != ie; ++i) 863 MDs[j++] = B->getOperand(i); 864 865 // FIXME: This preserves long-standing behaviour, but is it really the right 866 // behaviour? Or was that an unintended side-effect of node uniquing? 867 return getOrSelfReference(A->getContext(), MDs); 868 } 869 870 MDNode *MDNode::intersect(MDNode *A, MDNode *B) { 871 if (!A || !B) 872 return nullptr; 873 874 SmallVector<Metadata *, 4> MDs; 875 for (unsigned i = 0, ie = A->getNumOperands(); i != ie; ++i) { 876 Metadata *MD = A->getOperand(i); 877 for (unsigned j = 0, je = B->getNumOperands(); j != je; ++j) 878 if (MD == B->getOperand(j)) { 879 MDs.push_back(MD); 880 break; 881 } 882 } 883 884 // FIXME: This preserves long-standing behaviour, but is it really the right 885 // behaviour? Or was that an unintended side-effect of node uniquing? 886 return getOrSelfReference(A->getContext(), MDs); 887 } 888 889 MDNode *MDNode::getMostGenericFPMath(MDNode *A, MDNode *B) { 890 if (!A || !B) 891 return nullptr; 892 893 APFloat AVal = mdconst::extract<ConstantFP>(A->getOperand(0))->getValueAPF(); 894 APFloat BVal = mdconst::extract<ConstantFP>(B->getOperand(0))->getValueAPF(); 895 if (AVal.compare(BVal) == APFloat::cmpLessThan) 896 return A; 897 return B; 898 } 899 900 static bool isContiguous(const ConstantRange &A, const ConstantRange &B) { 901 return A.getUpper() == B.getLower() || A.getLower() == B.getUpper(); 902 } 903 904 static bool canBeMerged(const ConstantRange &A, const ConstantRange &B) { 905 return !A.intersectWith(B).isEmptySet() || isContiguous(A, B); 906 } 907 908 static bool tryMergeRange(SmallVectorImpl<ConstantInt *> &EndPoints, 909 ConstantInt *Low, ConstantInt *High) { 910 ConstantRange NewRange(Low->getValue(), High->getValue()); 911 unsigned Size = EndPoints.size(); 912 APInt LB = EndPoints[Size - 2]->getValue(); 913 APInt LE = EndPoints[Size - 1]->getValue(); 914 ConstantRange LastRange(LB, LE); 915 if (canBeMerged(NewRange, LastRange)) { 916 ConstantRange Union = LastRange.unionWith(NewRange); 917 Type *Ty = High->getType(); 918 EndPoints[Size - 2] = 919 cast<ConstantInt>(ConstantInt::get(Ty, Union.getLower())); 920 EndPoints[Size - 1] = 921 cast<ConstantInt>(ConstantInt::get(Ty, Union.getUpper())); 922 return true; 923 } 924 return false; 925 } 926 927 static void addRange(SmallVectorImpl<ConstantInt *> &EndPoints, 928 ConstantInt *Low, ConstantInt *High) { 929 if (!EndPoints.empty()) 930 if (tryMergeRange(EndPoints, Low, High)) 931 return; 932 933 EndPoints.push_back(Low); 934 EndPoints.push_back(High); 935 } 936 937 MDNode *MDNode::getMostGenericRange(MDNode *A, MDNode *B) { 938 // Given two ranges, we want to compute the union of the ranges. This 939 // is slightly complitade by having to combine the intervals and merge 940 // the ones that overlap. 941 942 if (!A || !B) 943 return nullptr; 944 945 if (A == B) 946 return A; 947 948 // First, walk both lists in older of the lower boundary of each interval. 949 // At each step, try to merge the new interval to the last one we adedd. 950 SmallVector<ConstantInt *, 4> EndPoints; 951 int AI = 0; 952 int BI = 0; 953 int AN = A->getNumOperands() / 2; 954 int BN = B->getNumOperands() / 2; 955 while (AI < AN && BI < BN) { 956 ConstantInt *ALow = mdconst::extract<ConstantInt>(A->getOperand(2 * AI)); 957 ConstantInt *BLow = mdconst::extract<ConstantInt>(B->getOperand(2 * BI)); 958 959 if (ALow->getValue().slt(BLow->getValue())) { 960 addRange(EndPoints, ALow, 961 mdconst::extract<ConstantInt>(A->getOperand(2 * AI + 1))); 962 ++AI; 963 } else { 964 addRange(EndPoints, BLow, 965 mdconst::extract<ConstantInt>(B->getOperand(2 * BI + 1))); 966 ++BI; 967 } 968 } 969 while (AI < AN) { 970 addRange(EndPoints, mdconst::extract<ConstantInt>(A->getOperand(2 * AI)), 971 mdconst::extract<ConstantInt>(A->getOperand(2 * AI + 1))); 972 ++AI; 973 } 974 while (BI < BN) { 975 addRange(EndPoints, mdconst::extract<ConstantInt>(B->getOperand(2 * BI)), 976 mdconst::extract<ConstantInt>(B->getOperand(2 * BI + 1))); 977 ++BI; 978 } 979 980 // If we have more than 2 ranges (4 endpoints) we have to try to merge 981 // the last and first ones. 982 unsigned Size = EndPoints.size(); 983 if (Size > 4) { 984 ConstantInt *FB = EndPoints[0]; 985 ConstantInt *FE = EndPoints[1]; 986 if (tryMergeRange(EndPoints, FB, FE)) { 987 for (unsigned i = 0; i < Size - 2; ++i) { 988 EndPoints[i] = EndPoints[i + 2]; 989 } 990 EndPoints.resize(Size - 2); 991 } 992 } 993 994 // If in the end we have a single range, it is possible that it is now the 995 // full range. Just drop the metadata in that case. 996 if (EndPoints.size() == 2) { 997 ConstantRange Range(EndPoints[0]->getValue(), EndPoints[1]->getValue()); 998 if (Range.isFullSet()) 999 return nullptr; 1000 } 1001 1002 SmallVector<Metadata *, 4> MDs; 1003 MDs.reserve(EndPoints.size()); 1004 for (auto *I : EndPoints) 1005 MDs.push_back(ConstantAsMetadata::get(I)); 1006 return MDNode::get(A->getContext(), MDs); 1007 } 1008 1009 //===----------------------------------------------------------------------===// 1010 // NamedMDNode implementation. 1011 // 1012 1013 static SmallVector<TrackingMDRef, 4> &getNMDOps(void *Operands) { 1014 return *(SmallVector<TrackingMDRef, 4> *)Operands; 1015 } 1016 1017 NamedMDNode::NamedMDNode(const Twine &N) 1018 : Name(N.str()), Parent(nullptr), 1019 Operands(new SmallVector<TrackingMDRef, 4>()) {} 1020 1021 NamedMDNode::~NamedMDNode() { 1022 dropAllReferences(); 1023 delete &getNMDOps(Operands); 1024 } 1025 1026 unsigned NamedMDNode::getNumOperands() const { 1027 return (unsigned)getNMDOps(Operands).size(); 1028 } 1029 1030 MDNode *NamedMDNode::getOperand(unsigned i) const { 1031 assert(i < getNumOperands() && "Invalid Operand number!"); 1032 auto *N = getNMDOps(Operands)[i].get(); 1033 return cast_or_null<MDNode>(N); 1034 } 1035 1036 void NamedMDNode::addOperand(MDNode *M) { getNMDOps(Operands).emplace_back(M); } 1037 1038 void NamedMDNode::setOperand(unsigned I, MDNode *New) { 1039 assert(I < getNumOperands() && "Invalid operand number"); 1040 getNMDOps(Operands)[I].reset(New); 1041 } 1042 1043 void NamedMDNode::eraseFromParent() { 1044 getParent()->eraseNamedMetadata(this); 1045 } 1046 1047 void NamedMDNode::dropAllReferences() { 1048 getNMDOps(Operands).clear(); 1049 } 1050 1051 StringRef NamedMDNode::getName() const { 1052 return StringRef(Name); 1053 } 1054 1055 //===----------------------------------------------------------------------===// 1056 // Instruction Metadata method implementations. 1057 // 1058 1059 void Instruction::setMetadata(StringRef Kind, MDNode *Node) { 1060 if (!Node && !hasMetadata()) 1061 return; 1062 setMetadata(getContext().getMDKindID(Kind), Node); 1063 } 1064 1065 MDNode *Instruction::getMetadataImpl(StringRef Kind) const { 1066 return getMetadataImpl(getContext().getMDKindID(Kind)); 1067 } 1068 1069 void Instruction::dropUnknownMetadata(ArrayRef<unsigned> KnownIDs) { 1070 SmallSet<unsigned, 5> KnownSet; 1071 KnownSet.insert(KnownIDs.begin(), KnownIDs.end()); 1072 1073 // Drop debug if needed 1074 if (KnownSet.erase(LLVMContext::MD_dbg)) 1075 DbgLoc = DebugLoc(); 1076 1077 if (!hasMetadataHashEntry()) 1078 return; // Nothing to remove! 1079 1080 DenseMap<const Instruction *, LLVMContextImpl::MDMapTy> &MetadataStore = 1081 getContext().pImpl->MetadataStore; 1082 1083 if (KnownSet.empty()) { 1084 // Just drop our entry at the store. 1085 MetadataStore.erase(this); 1086 setHasMetadataHashEntry(false); 1087 return; 1088 } 1089 1090 LLVMContextImpl::MDMapTy &Info = MetadataStore[this]; 1091 unsigned I; 1092 unsigned E; 1093 // Walk the array and drop any metadata we don't know. 1094 for (I = 0, E = Info.size(); I != E;) { 1095 if (KnownSet.count(Info[I].first)) { 1096 ++I; 1097 continue; 1098 } 1099 1100 Info[I] = std::move(Info.back()); 1101 Info.pop_back(); 1102 --E; 1103 } 1104 assert(E == Info.size()); 1105 1106 if (E == 0) { 1107 // Drop our entry at the store. 1108 MetadataStore.erase(this); 1109 setHasMetadataHashEntry(false); 1110 } 1111 } 1112 1113 /// setMetadata - Set the metadata of of the specified kind to the specified 1114 /// node. This updates/replaces metadata if already present, or removes it if 1115 /// Node is null. 1116 void Instruction::setMetadata(unsigned KindID, MDNode *Node) { 1117 if (!Node && !hasMetadata()) 1118 return; 1119 1120 // Handle 'dbg' as a special case since it is not stored in the hash table. 1121 if (KindID == LLVMContext::MD_dbg) { 1122 DbgLoc = DebugLoc::getFromDILocation(Node); 1123 return; 1124 } 1125 1126 // Handle the case when we're adding/updating metadata on an instruction. 1127 if (Node) { 1128 LLVMContextImpl::MDMapTy &Info = getContext().pImpl->MetadataStore[this]; 1129 assert(!Info.empty() == hasMetadataHashEntry() && 1130 "HasMetadata bit is wonked"); 1131 if (Info.empty()) { 1132 setHasMetadataHashEntry(true); 1133 } else { 1134 // Handle replacement of an existing value. 1135 for (auto &P : Info) 1136 if (P.first == KindID) { 1137 P.second.reset(Node); 1138 return; 1139 } 1140 } 1141 1142 // No replacement, just add it to the list. 1143 Info.emplace_back(std::piecewise_construct, std::make_tuple(KindID), 1144 std::make_tuple(Node)); 1145 return; 1146 } 1147 1148 // Otherwise, we're removing metadata from an instruction. 1149 assert((hasMetadataHashEntry() == 1150 (getContext().pImpl->MetadataStore.count(this) > 0)) && 1151 "HasMetadata bit out of date!"); 1152 if (!hasMetadataHashEntry()) 1153 return; // Nothing to remove! 1154 LLVMContextImpl::MDMapTy &Info = getContext().pImpl->MetadataStore[this]; 1155 1156 // Common case is removing the only entry. 1157 if (Info.size() == 1 && Info[0].first == KindID) { 1158 getContext().pImpl->MetadataStore.erase(this); 1159 setHasMetadataHashEntry(false); 1160 return; 1161 } 1162 1163 // Handle removal of an existing value. 1164 for (unsigned i = 0, e = Info.size(); i != e; ++i) 1165 if (Info[i].first == KindID) { 1166 Info[i] = std::move(Info.back()); 1167 Info.pop_back(); 1168 assert(!Info.empty() && "Removing last entry should be handled above"); 1169 return; 1170 } 1171 // Otherwise, removing an entry that doesn't exist on the instruction. 1172 } 1173 1174 void Instruction::setAAMetadata(const AAMDNodes &N) { 1175 setMetadata(LLVMContext::MD_tbaa, N.TBAA); 1176 setMetadata(LLVMContext::MD_alias_scope, N.Scope); 1177 setMetadata(LLVMContext::MD_noalias, N.NoAlias); 1178 } 1179 1180 MDNode *Instruction::getMetadataImpl(unsigned KindID) const { 1181 // Handle 'dbg' as a special case since it is not stored in the hash table. 1182 if (KindID == LLVMContext::MD_dbg) 1183 return DbgLoc.getAsMDNode(); 1184 1185 if (!hasMetadataHashEntry()) return nullptr; 1186 1187 LLVMContextImpl::MDMapTy &Info = getContext().pImpl->MetadataStore[this]; 1188 assert(!Info.empty() && "bit out of sync with hash table"); 1189 1190 for (const auto &I : Info) 1191 if (I.first == KindID) 1192 return I.second; 1193 return nullptr; 1194 } 1195 1196 void Instruction::getAllMetadataImpl( 1197 SmallVectorImpl<std::pair<unsigned, MDNode *>> &Result) const { 1198 Result.clear(); 1199 1200 // Handle 'dbg' as a special case since it is not stored in the hash table. 1201 if (!DbgLoc.isUnknown()) { 1202 Result.push_back( 1203 std::make_pair((unsigned)LLVMContext::MD_dbg, DbgLoc.getAsMDNode())); 1204 if (!hasMetadataHashEntry()) return; 1205 } 1206 1207 assert(hasMetadataHashEntry() && 1208 getContext().pImpl->MetadataStore.count(this) && 1209 "Shouldn't have called this"); 1210 const LLVMContextImpl::MDMapTy &Info = 1211 getContext().pImpl->MetadataStore.find(this)->second; 1212 assert(!Info.empty() && "Shouldn't have called this"); 1213 1214 Result.reserve(Result.size() + Info.size()); 1215 for (auto &I : Info) 1216 Result.push_back(std::make_pair(I.first, cast<MDNode>(I.second.get()))); 1217 1218 // Sort the resulting array so it is stable. 1219 if (Result.size() > 1) 1220 array_pod_sort(Result.begin(), Result.end()); 1221 } 1222 1223 void Instruction::getAllMetadataOtherThanDebugLocImpl( 1224 SmallVectorImpl<std::pair<unsigned, MDNode *>> &Result) const { 1225 Result.clear(); 1226 assert(hasMetadataHashEntry() && 1227 getContext().pImpl->MetadataStore.count(this) && 1228 "Shouldn't have called this"); 1229 const LLVMContextImpl::MDMapTy &Info = 1230 getContext().pImpl->MetadataStore.find(this)->second; 1231 assert(!Info.empty() && "Shouldn't have called this"); 1232 Result.reserve(Result.size() + Info.size()); 1233 for (auto &I : Info) 1234 Result.push_back(std::make_pair(I.first, cast<MDNode>(I.second.get()))); 1235 1236 // Sort the resulting array so it is stable. 1237 if (Result.size() > 1) 1238 array_pod_sort(Result.begin(), Result.end()); 1239 } 1240 1241 /// clearMetadataHashEntries - Clear all hashtable-based metadata from 1242 /// this instruction. 1243 void Instruction::clearMetadataHashEntries() { 1244 assert(hasMetadataHashEntry() && "Caller should check"); 1245 getContext().pImpl->MetadataStore.erase(this); 1246 setHasMetadataHashEntry(false); 1247 } 1248