LLVM 22.0.0git
DebugInfoMetadata.cpp
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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
14#include "LLVMContextImpl.h"
15#include "MetadataImpl.h"
16#include "llvm/ADT/SetVector.h"
20#include "llvm/IR/Function.h"
22#include "llvm/IR/Type.h"
23#include "llvm/IR/Value.h"
26
27#include <numeric>
28#include <optional>
29
30using namespace llvm;
31
32namespace llvm {
33// Use FS-AFDO discriminator.
35 "enable-fs-discriminator", cl::Hidden,
36 cl::desc("Enable adding flow sensitive discriminators"));
37
38// When true, preserves line and column number by picking one of the merged
39// location info in a deterministic manner to assist sample based PGO.
41 "pick-merged-source-locations", cl::init(false), cl::Hidden,
42 cl::desc("Preserve line and column number when merging locations."));
43} // namespace llvm
44
46 return (getTag() == dwarf::DW_TAG_LLVM_ptrauth_type ? 0 : SubclassData32);
47}
48
49const DIExpression::FragmentInfo DebugVariable::DefaultFragment = {
50 std::numeric_limits<uint64_t>::max(), std::numeric_limits<uint64_t>::min()};
51
53 : Variable(DVR->getVariable()),
54 Fragment(DVR->getExpression()->getFragmentInfo()),
55 InlinedAt(DVR->getDebugLoc().getInlinedAt()) {}
56
60
61DILocation::DILocation(LLVMContext &C, StorageType Storage, unsigned Line,
62 unsigned Column, uint64_t AtomGroup, uint8_t AtomRank,
63 ArrayRef<Metadata *> MDs, bool ImplicitCode)
64 : MDNode(C, DILocationKind, Storage, MDs), AtomGroup(AtomGroup),
65 AtomRank(AtomRank) {
66 assert(AtomRank <= 7 && "AtomRank number should fit in 3 bits");
67 if (AtomGroup)
68 C.updateDILocationAtomGroupWaterline(AtomGroup + 1);
69
70 assert((MDs.size() == 1 || MDs.size() == 2) &&
71 "Expected a scope and optional inlined-at");
72 // Set line and column.
73 assert(Column < (1u << 16) && "Expected 16-bit column");
74
75 SubclassData32 = Line;
76 SubclassData16 = Column;
77
78 setImplicitCode(ImplicitCode);
79}
80
81static void adjustColumn(unsigned &Column) {
82 // Set to unknown on overflow. We only have 16 bits to play with here.
83 if (Column >= (1u << 16))
84 Column = 0;
85}
86
87DILocation *DILocation::getImpl(LLVMContext &Context, unsigned Line,
88 unsigned Column, Metadata *Scope,
89 Metadata *InlinedAt, bool ImplicitCode,
90 uint64_t AtomGroup, uint8_t AtomRank,
91 StorageType Storage, bool ShouldCreate) {
92 // Fixup column.
94
95 if (Storage == Uniqued) {
96 if (auto *N = getUniqued(Context.pImpl->DILocations,
97 DILocationInfo::KeyTy(Line, Column, Scope,
99 AtomGroup, AtomRank)))
100 return N;
101 if (!ShouldCreate)
102 return nullptr;
103 } else {
104 assert(ShouldCreate && "Expected non-uniqued nodes to always be created");
105 }
106
108 Ops.push_back(Scope);
109 if (InlinedAt)
110 Ops.push_back(InlinedAt);
111 return storeImpl(new (Ops.size(), Storage)
112 DILocation(Context, Storage, Line, Column, AtomGroup,
113 AtomRank, Ops, ImplicitCode),
114 Storage, Context.pImpl->DILocations);
115}
116
118 if (Locs.empty())
119 return nullptr;
120 if (Locs.size() == 1)
121 return Locs[0];
122 auto *Merged = Locs[0];
123 for (DILocation *L : llvm::drop_begin(Locs)) {
124 Merged = getMergedLocation(Merged, L);
125 if (Merged == nullptr)
126 break;
127 }
128 return Merged;
129}
130
132 DIScope *NewParent) {
133 TempMDNode ClonedScope = LBB->clone();
134 cast<DILexicalBlockBase>(*ClonedScope).replaceScope(NewParent);
136 MDNode::replaceWithUniqued(std::move(ClonedScope)));
137}
138
139using LineColumn = std::pair<unsigned /* Line */, unsigned /* Column */>;
140
141/// Returns the location of DILocalScope, if present, or a default value.
143 assert(isa<DILocalScope>(S) && "Expected DILocalScope.");
144
146 return Default;
147 if (auto *LB = dyn_cast<DILexicalBlock>(S))
148 return {LB->getLine(), LB->getColumn()};
149 if (auto *SP = dyn_cast<DISubprogram>(S))
150 return {SP->getLine(), 0u};
151
152 llvm_unreachable("Unhandled type of DILocalScope.");
153}
154
155// Returns the nearest matching scope inside a subprogram.
156template <typename MatcherT>
157static std::pair<DIScope *, LineColumn>
159 MatcherT Matcher;
160
161 DIScope *S1 = L1->getScope();
162 DIScope *S2 = L2->getScope();
163
164 LineColumn Loc1(L1->getLine(), L1->getColumn());
165 for (; S1; S1 = S1->getScope()) {
166 Loc1 = getLocalScopeLocationOr(S1, Loc1);
167 Matcher.insert(S1, Loc1);
169 break;
170 }
171
172 LineColumn Loc2(L2->getLine(), L2->getColumn());
173 for (; S2; S2 = S2->getScope()) {
174 Loc2 = getLocalScopeLocationOr(S2, Loc2);
175
176 if (DIScope *S = Matcher.match(S2, Loc2))
177 return std::make_pair(S, Loc2);
178
179 if (isa<DISubprogram>(S2))
180 break;
181 }
182 return std::make_pair(nullptr, LineColumn(L2->getLine(), L2->getColumn()));
183}
184
185// Matches equal scopes.
188
189 void insert(DIScope *S, LineColumn Loc) { Scopes.insert(S); }
190
192 return Scopes.contains(S) ? S : nullptr;
193 }
194};
195
196// Matches scopes with the same location.
199 8>
201
203 Scopes[{S->getFile(), Loc}].insert(S);
204 }
205
207 auto ScopesAtLoc = Scopes.find({S->getFile(), Loc});
208 // No scope found with the given location.
209 if (ScopesAtLoc == Scopes.end())
210 return nullptr;
211
212 // Prefer S over other scopes with the same location.
213 if (ScopesAtLoc->second.contains(S))
214 return S;
215
216 if (!ScopesAtLoc->second.empty())
217 return *ScopesAtLoc->second.begin();
218
219 llvm_unreachable("Scopes must not have empty entries.");
220 }
221};
222
223DILocation *DILocation::getMergedLocation(DILocation *LocA, DILocation *LocB) {
224 if (LocA == LocB)
225 return LocA;
226
227 // For some use cases (SamplePGO), it is important to retain distinct source
228 // locations. When this flag is set, we choose arbitrarily between A and B,
229 // rather than computing a merged location using line 0, which is typically
230 // not useful for PGO. If one of them is null, then try to return one which is
231 // valid.
233 if (!LocA || !LocB)
234 return LocA ? LocA : LocB;
235
236 auto A = std::make_tuple(LocA->getLine(), LocA->getColumn(),
237 LocA->getDiscriminator(), LocA->getFilename(),
238 LocA->getDirectory());
239 auto B = std::make_tuple(LocB->getLine(), LocB->getColumn(),
240 LocB->getDiscriminator(), LocB->getFilename(),
241 LocB->getDirectory());
242 return A < B ? LocA : LocB;
243 }
244
245 if (!LocA || !LocB)
246 return nullptr;
247
248 LLVMContext &C = LocA->getContext();
249
250 using LocVec = SmallVector<const DILocation *>;
251 LocVec ALocs;
252 LocVec BLocs;
254 4>
255 ALookup;
256
257 // Walk through LocA and its inlined-at locations, populate them in ALocs and
258 // save the index for the subprogram and inlined-at pair, which we use to find
259 // a matching starting location in LocB's chain.
260 for (auto [L, I] = std::make_pair(LocA, 0U); L; L = L->getInlinedAt(), I++) {
261 ALocs.push_back(L);
262 auto Res = ALookup.try_emplace(
263 {L->getScope()->getSubprogram(), L->getInlinedAt()}, I);
264 assert(Res.second && "Multiple <SP, InlinedAt> pairs in a location chain?");
265 (void)Res;
266 }
267
268 LocVec::reverse_iterator ARIt = ALocs.rend();
269 LocVec::reverse_iterator BRIt = BLocs.rend();
270
271 // Populate BLocs and look for a matching starting location, the first
272 // location with the same subprogram and inlined-at location as in LocA's
273 // chain. Since the two locations have the same inlined-at location we do
274 // not need to look at those parts of the chains.
275 for (auto [L, I] = std::make_pair(LocB, 0U); L; L = L->getInlinedAt(), I++) {
276 BLocs.push_back(L);
277
278 if (ARIt != ALocs.rend())
279 // We have already found a matching starting location.
280 continue;
281
282 auto IT = ALookup.find({L->getScope()->getSubprogram(), L->getInlinedAt()});
283 if (IT == ALookup.end())
284 continue;
285
286 // The + 1 is to account for the &*rev_it = &(it - 1) relationship.
287 ARIt = LocVec::reverse_iterator(ALocs.begin() + IT->second + 1);
288 BRIt = LocVec::reverse_iterator(BLocs.begin() + I + 1);
289
290 // If we have found a matching starting location we do not need to add more
291 // locations to BLocs, since we will only look at location pairs preceding
292 // the matching starting location, and adding more elements to BLocs could
293 // invalidate the iterator that we initialized here.
294 break;
295 }
296
297 // Merge the two locations if possible, using the supplied
298 // inlined-at location for the created location.
299 auto *LocAIA = LocA->getInlinedAt();
300 auto *LocBIA = LocB->getInlinedAt();
301 auto MergeLocPair = [&C, LocAIA,
302 LocBIA](const DILocation *L1, const DILocation *L2,
303 DILocation *InlinedAt) -> DILocation * {
304 if (L1 == L2)
305 return DILocation::get(C, L1->getLine(), L1->getColumn(), L1->getScope(),
306 InlinedAt, L1->isImplicitCode(),
307 L1->getAtomGroup(), L1->getAtomRank());
308
309 // If the locations originate from different subprograms we can't produce
310 // a common location.
311 if (L1->getScope()->getSubprogram() != L2->getScope()->getSubprogram())
312 return nullptr;
313
314 // Find nearest common scope inside subprogram.
316 assert(Scope && "No common scope in the same subprogram?");
317
318 // Try using the nearest scope with common location if files are different.
319 if (Scope->getFile() != L1->getFile() || L1->getFile() != L2->getFile()) {
320 auto [CommonLocScope, CommonLoc] =
322
323 // If CommonLocScope is a DILexicalBlockBase, clone it and locate
324 // a new scope inside the nearest common scope to preserve
325 // lexical blocks structure.
326 if (auto *LBB = dyn_cast<DILexicalBlockBase>(CommonLocScope);
327 LBB && LBB != Scope)
328 CommonLocScope = cloneAndReplaceParentScope(LBB, Scope);
329
330 Scope = CommonLocScope;
331
332 // If files are still different, assume that L1 and L2 were "included"
333 // from CommonLoc. Use it as merged location.
334 if (Scope->getFile() != L1->getFile() || L1->getFile() != L2->getFile())
335 return DILocation::get(C, CommonLoc.first, CommonLoc.second,
336 CommonLocScope, InlinedAt);
337 }
338
339 bool SameLine = L1->getLine() == L2->getLine();
340 bool SameCol = L1->getColumn() == L2->getColumn();
341 unsigned Line = SameLine ? L1->getLine() : 0;
342 unsigned Col = SameLine && SameCol ? L1->getColumn() : 0;
343 bool IsImplicitCode = L1->isImplicitCode() && L2->isImplicitCode();
344
345 // Discard source location atom if the line becomes 0. And there's nothing
346 // further to do if neither location has an atom number.
347 if (!SameLine || !(L1->getAtomGroup() || L2->getAtomGroup()))
348 return DILocation::get(C, Line, Col, Scope, InlinedAt, IsImplicitCode,
349 /*AtomGroup*/ 0, /*AtomRank*/ 0);
350
351 uint64_t Group = 0;
352 uint64_t Rank = 0;
353 // If we're preserving the same matching inlined-at field we can
354 // preserve the atom.
355 if (LocBIA == LocAIA && InlinedAt == LocBIA) {
356 // Deterministically keep the lowest non-zero ranking atom group
357 // number.
358 // FIXME: It would be nice if we could track that an instruction
359 // belongs to two source atoms.
360 bool UseL1Atom = [L1, L2]() {
361 if (L1->getAtomRank() == L2->getAtomRank()) {
362 // Arbitrarily choose the lowest non-zero group number.
363 if (!L1->getAtomGroup() || !L2->getAtomGroup())
364 return !L2->getAtomGroup();
365 return L1->getAtomGroup() < L2->getAtomGroup();
366 }
367 // Choose the lowest non-zero rank.
368 if (!L1->getAtomRank() || !L2->getAtomRank())
369 return !L2->getAtomRank();
370 return L1->getAtomRank() < L2->getAtomRank();
371 }();
372 Group = UseL1Atom ? L1->getAtomGroup() : L2->getAtomGroup();
373 Rank = UseL1Atom ? L1->getAtomRank() : L2->getAtomRank();
374 } else {
375 // If either instruction is part of a source atom, reassign it a new
376 // atom group. This essentially regresses to non-key-instructions
377 // behaviour (now that it's the only instruction in its group it'll
378 // probably get is_stmt applied).
379 Group = C.incNextDILocationAtomGroup();
380 Rank = 1;
381 }
382 return DILocation::get(C, Line, Col, Scope, InlinedAt, IsImplicitCode,
383 Group, Rank);
384 };
385
386 DILocation *Result = ARIt != ALocs.rend() ? (*ARIt)->getInlinedAt() : nullptr;
387
388 // If we have found a common starting location, walk up the inlined-at chains
389 // and try to produce common locations.
390 for (; ARIt != ALocs.rend() && BRIt != BLocs.rend(); ++ARIt, ++BRIt) {
391 DILocation *Tmp = MergeLocPair(*ARIt, *BRIt, Result);
392
393 if (!Tmp)
394 // We have walked up to a point in the chains where the two locations
395 // are irreconsilable. At this point Result contains the nearest common
396 // location in the inlined-at chains of LocA and LocB, so we break here.
397 break;
398
399 Result = Tmp;
400 }
401
402 if (Result)
403 return Result;
404
405 // We ended up with LocA and LocB as irreconsilable locations. Produce a
406 // location at 0:0 with one of the locations' scope. The function has
407 // historically picked A's scope, and a nullptr inlined-at location, so that
408 // behavior is mimicked here but I am not sure if this is always the correct
409 // way to handle this.
410 // Key Instructions: it's fine to drop atom group and rank here, as line 0
411 // is a nonsensical is_stmt location.
412 return DILocation::get(C, 0, 0, LocA->getScope(), nullptr, false,
413 /*AtomGroup*/ 0, /*AtomRank*/ 0);
414}
415
416std::optional<unsigned>
417DILocation::encodeDiscriminator(unsigned BD, unsigned DF, unsigned CI) {
418 std::array<unsigned, 3> Components = {BD, DF, CI};
419 uint64_t RemainingWork = 0U;
420 // We use RemainingWork to figure out if we have no remaining components to
421 // encode. For example: if BD != 0 but DF == 0 && CI == 0, we don't need to
422 // encode anything for the latter 2.
423 // Since any of the input components is at most 32 bits, their sum will be
424 // less than 34 bits, and thus RemainingWork won't overflow.
425 RemainingWork =
426 std::accumulate(Components.begin(), Components.end(), RemainingWork);
427
428 int I = 0;
429 unsigned Ret = 0;
430 unsigned NextBitInsertionIndex = 0;
431 while (RemainingWork > 0) {
432 unsigned C = Components[I++];
433 RemainingWork -= C;
434 unsigned EC = encodeComponent(C);
435 Ret |= (EC << NextBitInsertionIndex);
436 NextBitInsertionIndex += encodingBits(C);
437 }
438
439 // Encoding may be unsuccessful because of overflow. We determine success by
440 // checking equivalence of components before & after encoding. Alternatively,
441 // we could determine Success during encoding, but the current alternative is
442 // simpler.
443 unsigned TBD, TDF, TCI = 0;
444 decodeDiscriminator(Ret, TBD, TDF, TCI);
445 if (TBD == BD && TDF == DF && TCI == CI)
446 return Ret;
447 return std::nullopt;
448}
449
458
460 return StringSwitch<DIFlags>(Flag)
461#define HANDLE_DI_FLAG(ID, NAME) .Case("DIFlag" #NAME, Flag##NAME)
462#include "llvm/IR/DebugInfoFlags.def"
463 .Default(DINode::FlagZero);
464}
465
467 switch (Flag) {
468#define HANDLE_DI_FLAG(ID, NAME) \
469 case Flag##NAME: \
470 return "DIFlag" #NAME;
471#include "llvm/IR/DebugInfoFlags.def"
472 }
473 return "";
474}
475
477 SmallVectorImpl<DIFlags> &SplitFlags) {
478 // Flags that are packed together need to be specially handled, so
479 // that, for example, we emit "DIFlagPublic" and not
480 // "DIFlagPrivate | DIFlagProtected".
481 if (DIFlags A = Flags & FlagAccessibility) {
482 if (A == FlagPrivate)
483 SplitFlags.push_back(FlagPrivate);
484 else if (A == FlagProtected)
485 SplitFlags.push_back(FlagProtected);
486 else
487 SplitFlags.push_back(FlagPublic);
488 Flags &= ~A;
489 }
490 if (DIFlags R = Flags & FlagPtrToMemberRep) {
491 if (R == FlagSingleInheritance)
492 SplitFlags.push_back(FlagSingleInheritance);
493 else if (R == FlagMultipleInheritance)
494 SplitFlags.push_back(FlagMultipleInheritance);
495 else
496 SplitFlags.push_back(FlagVirtualInheritance);
497 Flags &= ~R;
498 }
499 if ((Flags & FlagIndirectVirtualBase) == FlagIndirectVirtualBase) {
500 Flags &= ~FlagIndirectVirtualBase;
501 SplitFlags.push_back(FlagIndirectVirtualBase);
502 }
503
504#define HANDLE_DI_FLAG(ID, NAME) \
505 if (DIFlags Bit = Flags & Flag##NAME) { \
506 SplitFlags.push_back(Bit); \
507 Flags &= ~Bit; \
508 }
509#include "llvm/IR/DebugInfoFlags.def"
510 return Flags;
511}
512
514 if (auto *T = dyn_cast<DIType>(this))
515 return T->getScope();
516
517 if (auto *SP = dyn_cast<DISubprogram>(this))
518 return SP->getScope();
519
520 if (auto *LB = dyn_cast<DILexicalBlockBase>(this))
521 return LB->getScope();
522
523 if (auto *NS = dyn_cast<DINamespace>(this))
524 return NS->getScope();
525
526 if (auto *CB = dyn_cast<DICommonBlock>(this))
527 return CB->getScope();
528
529 if (auto *M = dyn_cast<DIModule>(this))
530 return M->getScope();
531
532 assert((isa<DIFile>(this) || isa<DICompileUnit>(this)) &&
533 "Unhandled type of scope.");
534 return nullptr;
535}
536
538 if (auto *T = dyn_cast<DIType>(this))
539 return T->getName();
540 if (auto *SP = dyn_cast<DISubprogram>(this))
541 return SP->getName();
542 if (auto *NS = dyn_cast<DINamespace>(this))
543 return NS->getName();
544 if (auto *CB = dyn_cast<DICommonBlock>(this))
545 return CB->getName();
546 if (auto *M = dyn_cast<DIModule>(this))
547 return M->getName();
549 isa<DICompileUnit>(this)) &&
550 "Unhandled type of scope.");
551 return "";
552}
553
554#ifndef NDEBUG
555static bool isCanonical(const MDString *S) {
556 return !S || !S->getString().empty();
557}
558#endif
559
561GenericDINode *GenericDINode::getImpl(LLVMContext &Context, unsigned Tag,
562 MDString *Header,
563 ArrayRef<Metadata *> DwarfOps,
564 StorageType Storage, bool ShouldCreate) {
565 unsigned Hash = 0;
566 if (Storage == Uniqued) {
567 GenericDINodeInfo::KeyTy Key(Tag, Header, DwarfOps);
568 if (auto *N = getUniqued(Context.pImpl->GenericDINodes, Key))
569 return N;
570 if (!ShouldCreate)
571 return nullptr;
572 Hash = Key.getHash();
573 } else {
574 assert(ShouldCreate && "Expected non-uniqued nodes to always be created");
575 }
576
577 // Use a nullptr for empty headers.
578 assert(isCanonical(Header) && "Expected canonical MDString");
579 Metadata *PreOps[] = {Header};
580 return storeImpl(new (DwarfOps.size() + 1, Storage) GenericDINode(
581 Context, Storage, Hash, Tag, PreOps, DwarfOps),
582 Storage, Context.pImpl->GenericDINodes);
583}
584
585void GenericDINode::recalculateHash() {
586 setHash(GenericDINodeInfo::KeyTy::calculateHash(this));
587}
588
589#define UNWRAP_ARGS_IMPL(...) __VA_ARGS__
590#define UNWRAP_ARGS(ARGS) UNWRAP_ARGS_IMPL ARGS
591#define DEFINE_GETIMPL_LOOKUP(CLASS, ARGS) \
592 do { \
593 if (Storage == Uniqued) { \
594 if (auto *N = getUniqued(Context.pImpl->CLASS##s, \
595 CLASS##Info::KeyTy(UNWRAP_ARGS(ARGS)))) \
596 return N; \
597 if (!ShouldCreate) \
598 return nullptr; \
599 } else { \
600 assert(ShouldCreate && \
601 "Expected non-uniqued nodes to always be created"); \
602 } \
603 } while (false)
604#define DEFINE_GETIMPL_STORE(CLASS, ARGS, OPS) \
605 return storeImpl(new (std::size(OPS), Storage) \
606 CLASS(Context, Storage, UNWRAP_ARGS(ARGS), OPS), \
607 Storage, Context.pImpl->CLASS##s)
608#define DEFINE_GETIMPL_STORE_NO_OPS(CLASS, ARGS) \
609 return storeImpl(new (0u, Storage) \
610 CLASS(Context, Storage, UNWRAP_ARGS(ARGS)), \
611 Storage, Context.pImpl->CLASS##s)
612#define DEFINE_GETIMPL_STORE_NO_CONSTRUCTOR_ARGS(CLASS, OPS) \
613 return storeImpl(new (std::size(OPS), Storage) CLASS(Context, Storage, OPS), \
614 Storage, Context.pImpl->CLASS##s)
615#define DEFINE_GETIMPL_STORE_N(CLASS, ARGS, OPS, NUM_OPS) \
616 return storeImpl(new (NUM_OPS, Storage) \
617 CLASS(Context, Storage, UNWRAP_ARGS(ARGS), OPS), \
618 Storage, Context.pImpl->CLASS##s)
619
620DISubrange::DISubrange(LLVMContext &C, StorageType Storage,
622 : DINode(C, DISubrangeKind, Storage, dwarf::DW_TAG_subrange_type, Ops) {}
623DISubrange *DISubrange::getImpl(LLVMContext &Context, int64_t Count, int64_t Lo,
624 StorageType Storage, bool ShouldCreate) {
627 auto *LB = ConstantAsMetadata::get(
629 return getImpl(Context, CountNode, LB, nullptr, nullptr, Storage,
630 ShouldCreate);
631}
632
633DISubrange *DISubrange::getImpl(LLVMContext &Context, Metadata *CountNode,
634 int64_t Lo, StorageType Storage,
635 bool ShouldCreate) {
636 auto *LB = ConstantAsMetadata::get(
638 return getImpl(Context, CountNode, LB, nullptr, nullptr, Storage,
639 ShouldCreate);
640}
641
642DISubrange *DISubrange::getImpl(LLVMContext &Context, Metadata *CountNode,
643 Metadata *LB, Metadata *UB, Metadata *Stride,
644 StorageType Storage, bool ShouldCreate) {
645 DEFINE_GETIMPL_LOOKUP(DISubrange, (CountNode, LB, UB, Stride));
646 Metadata *Ops[] = {CountNode, LB, UB, Stride};
648}
649
650DISubrange::BoundType DISubrange::getCount() const {
651 Metadata *CB = getRawCountNode();
652 if (!CB)
653 return BoundType();
654
656 isa<DIExpression>(CB)) &&
657 "Count must be signed constant or DIVariable or DIExpression");
658
659 if (auto *MD = dyn_cast<ConstantAsMetadata>(CB))
660 return BoundType(cast<ConstantInt>(MD->getValue()));
661
662 if (auto *MD = dyn_cast<DIVariable>(CB))
663 return BoundType(MD);
664
665 if (auto *MD = dyn_cast<DIExpression>(CB))
666 return BoundType(MD);
667
668 return BoundType();
669}
670
671DISubrange::BoundType DISubrange::getLowerBound() const {
672 Metadata *LB = getRawLowerBound();
673 if (!LB)
674 return BoundType();
675
677 isa<DIExpression>(LB)) &&
678 "LowerBound must be signed constant or DIVariable or DIExpression");
679
680 if (auto *MD = dyn_cast<ConstantAsMetadata>(LB))
681 return BoundType(cast<ConstantInt>(MD->getValue()));
682
683 if (auto *MD = dyn_cast<DIVariable>(LB))
684 return BoundType(MD);
685
686 if (auto *MD = dyn_cast<DIExpression>(LB))
687 return BoundType(MD);
688
689 return BoundType();
690}
691
692DISubrange::BoundType DISubrange::getUpperBound() const {
693 Metadata *UB = getRawUpperBound();
694 if (!UB)
695 return BoundType();
696
698 isa<DIExpression>(UB)) &&
699 "UpperBound must be signed constant or DIVariable or DIExpression");
700
701 if (auto *MD = dyn_cast<ConstantAsMetadata>(UB))
702 return BoundType(cast<ConstantInt>(MD->getValue()));
703
704 if (auto *MD = dyn_cast<DIVariable>(UB))
705 return BoundType(MD);
706
707 if (auto *MD = dyn_cast<DIExpression>(UB))
708 return BoundType(MD);
709
710 return BoundType();
711}
712
713DISubrange::BoundType DISubrange::getStride() const {
714 Metadata *ST = getRawStride();
715 if (!ST)
716 return BoundType();
717
719 isa<DIExpression>(ST)) &&
720 "Stride must be signed constant or DIVariable or DIExpression");
721
722 if (auto *MD = dyn_cast<ConstantAsMetadata>(ST))
723 return BoundType(cast<ConstantInt>(MD->getValue()));
724
725 if (auto *MD = dyn_cast<DIVariable>(ST))
726 return BoundType(MD);
727
728 if (auto *MD = dyn_cast<DIExpression>(ST))
729 return BoundType(MD);
730
731 return BoundType();
732}
733DIGenericSubrange::DIGenericSubrange(LLVMContext &C, StorageType Storage,
735 : DINode(C, DIGenericSubrangeKind, Storage, dwarf::DW_TAG_generic_subrange,
736 Ops) {}
737
738DIGenericSubrange *DIGenericSubrange::getImpl(LLVMContext &Context,
739 Metadata *CountNode, Metadata *LB,
740 Metadata *UB, Metadata *Stride,
741 StorageType Storage,
742 bool ShouldCreate) {
743 DEFINE_GETIMPL_LOOKUP(DIGenericSubrange, (CountNode, LB, UB, Stride));
744 Metadata *Ops[] = {CountNode, LB, UB, Stride};
746}
747
750 if (!CB)
751 return BoundType();
752
754 "Count must be signed constant or DIVariable or DIExpression");
755
756 if (auto *MD = dyn_cast<DIVariable>(CB))
757 return BoundType(MD);
758
759 if (auto *MD = dyn_cast<DIExpression>(CB))
760 return BoundType(MD);
761
762 return BoundType();
763}
764
767 if (!LB)
768 return BoundType();
769
771 "LowerBound must be signed constant or DIVariable or DIExpression");
772
773 if (auto *MD = dyn_cast<DIVariable>(LB))
774 return BoundType(MD);
775
776 if (auto *MD = dyn_cast<DIExpression>(LB))
777 return BoundType(MD);
778
779 return BoundType();
780}
781
784 if (!UB)
785 return BoundType();
786
788 "UpperBound must be signed constant or DIVariable or DIExpression");
789
790 if (auto *MD = dyn_cast<DIVariable>(UB))
791 return BoundType(MD);
792
793 if (auto *MD = dyn_cast<DIExpression>(UB))
794 return BoundType(MD);
795
796 return BoundType();
797}
798
800 Metadata *ST = getRawStride();
801 if (!ST)
802 return BoundType();
803
805 "Stride must be signed constant or DIVariable or DIExpression");
806
807 if (auto *MD = dyn_cast<DIVariable>(ST))
808 return BoundType(MD);
809
810 if (auto *MD = dyn_cast<DIExpression>(ST))
811 return BoundType(MD);
812
813 return BoundType();
814}
815
816DISubrangeType::DISubrangeType(LLVMContext &C, StorageType Storage,
817 unsigned Line, uint32_t AlignInBits,
818 DIFlags Flags, ArrayRef<Metadata *> Ops)
819 : DIType(C, DISubrangeTypeKind, Storage, dwarf::DW_TAG_subrange_type, Line,
820 AlignInBits, 0, Flags, Ops) {}
821
822DISubrangeType *DISubrangeType::getImpl(
823 LLVMContext &Context, MDString *Name, Metadata *File, unsigned Line,
824 Metadata *Scope, Metadata *SizeInBits, uint32_t AlignInBits, DIFlags Flags,
825 Metadata *BaseType, Metadata *LowerBound, Metadata *UpperBound,
826 Metadata *Stride, Metadata *Bias, StorageType Storage, bool ShouldCreate) {
827 assert(isCanonical(Name) && "Expected canonical MDString");
829 AlignInBits, Flags, BaseType,
831 Metadata *Ops[] = {File, Scope, Name, SizeInBits, nullptr,
833 DEFINE_GETIMPL_STORE(DISubrangeType, (Line, AlignInBits, Flags), Ops);
834}
835
837DISubrangeType::convertRawToBound(Metadata *IN) const {
838 if (!IN)
839 return BoundType();
840
843
844 if (auto *MD = dyn_cast<ConstantAsMetadata>(IN))
845 return BoundType(cast<ConstantInt>(MD->getValue()));
846
847 if (auto *MD = dyn_cast<DIVariable>(IN))
848 return BoundType(MD);
849
850 if (auto *MD = dyn_cast<DIExpression>(IN))
851 return BoundType(MD);
852
853 if (auto *DT = dyn_cast<DIDerivedType>(IN))
854 return BoundType(DT);
855
856 return BoundType();
857}
858
859DIEnumerator::DIEnumerator(LLVMContext &C, StorageType Storage,
860 const APInt &Value, bool IsUnsigned,
862 : DINode(C, DIEnumeratorKind, Storage, dwarf::DW_TAG_enumerator, Ops),
863 Value(Value) {
864 SubclassData32 = IsUnsigned;
865}
866DIEnumerator *DIEnumerator::getImpl(LLVMContext &Context, const APInt &Value,
867 bool IsUnsigned, MDString *Name,
868 StorageType Storage, bool ShouldCreate) {
869 assert(isCanonical(Name) && "Expected canonical MDString");
870 DEFINE_GETIMPL_LOOKUP(DIEnumerator, (Value, IsUnsigned, Name));
871 Metadata *Ops[] = {Name};
872 DEFINE_GETIMPL_STORE(DIEnumerator, (Value, IsUnsigned), Ops);
873}
874
877 uint32_t AlignInBits, unsigned Encoding,
879 uint32_t DataSizeInBits, DIFlags Flags,
880 StorageType Storage, bool ShouldCreate) {
881 assert(isCanonical(Name) && "Expected canonical MDString");
883 (Tag, Name, SizeInBits, AlignInBits, Encoding,
884 NumExtraInhabitants, DataSizeInBits, Flags));
885 Metadata *Ops[] = {nullptr, nullptr, Name, SizeInBits, nullptr};
888 (Tag, AlignInBits, Encoding, NumExtraInhabitants, DataSizeInBits, Flags),
889 Ops);
890}
891
892std::optional<DIBasicType::Signedness> DIBasicType::getSignedness() const {
893 switch (getEncoding()) {
894 case dwarf::DW_ATE_signed:
895 case dwarf::DW_ATE_signed_char:
896 case dwarf::DW_ATE_signed_fixed:
897 return Signedness::Signed;
898 case dwarf::DW_ATE_unsigned:
899 case dwarf::DW_ATE_unsigned_char:
900 case dwarf::DW_ATE_unsigned_fixed:
902 default:
903 return std::nullopt;
904 }
905}
906
908DIFixedPointType::getImpl(LLVMContext &Context, unsigned Tag, MDString *Name,
909 Metadata *SizeInBits, uint32_t AlignInBits,
910 unsigned Encoding, DIFlags Flags, unsigned Kind,
911 int Factor, APInt Numerator, APInt Denominator,
912 StorageType Storage, bool ShouldCreate) {
915 Kind, Factor, Numerator, Denominator));
916 Metadata *Ops[] = {nullptr, nullptr, Name, SizeInBits, nullptr};
919 (Tag, AlignInBits, Encoding, Flags, Kind, Factor, Numerator, Denominator),
920 Ops);
921}
922
924 return getEncoding() == dwarf::DW_ATE_signed_fixed;
925}
926
927std::optional<DIFixedPointType::FixedPointKind>
930 .Case("Binary", FixedPointBinary)
931 .Case("Decimal", FixedPointDecimal)
932 .Case("Rational", FixedPointRational)
933 .Default(std::nullopt);
934}
935
937 switch (V) {
938 case FixedPointBinary:
939 return "Binary";
941 return "Decimal";
943 return "Rational";
944 }
945 return nullptr;
946}
947
948DIStringType *DIStringType::getImpl(LLVMContext &Context, unsigned Tag,
949 MDString *Name, Metadata *StringLength,
950 Metadata *StringLengthExp,
951 Metadata *StringLocationExp,
952 Metadata *SizeInBits, uint32_t AlignInBits,
953 unsigned Encoding, StorageType Storage,
954 bool ShouldCreate) {
955 assert(isCanonical(Name) && "Expected canonical MDString");
959 Metadata *Ops[] = {nullptr, nullptr, Name,
960 SizeInBits, nullptr, StringLength,
963}
965 assert(getTag() == dwarf::DW_TAG_ptr_to_member_type);
967}
968
969// Helper function to extract ConstantAsMetadata from ExtraData,
970// handling extra data MDTuple unwrapping if needed.
972 Metadata *ED = ExtraData;
973 if (auto *Tuple = dyn_cast_or_null<MDTuple>(ED)) {
974 if (Tuple->getNumOperands() != 1)
975 return nullptr;
976 ED = Tuple->getOperand(0);
977 }
979}
980
982 assert(getTag() == dwarf::DW_TAG_inheritance);
983 if (auto *CM = extractConstantMetadata(getExtraData()))
984 if (auto *CI = dyn_cast_or_null<ConstantInt>(CM->getValue()))
985 return static_cast<uint32_t>(CI->getZExtValue());
986 return 0;
987}
989 assert(getTag() == dwarf::DW_TAG_member && isBitField());
991 return C->getValue();
992 return nullptr;
993}
994
996 assert((getTag() == dwarf::DW_TAG_member ||
997 getTag() == dwarf::DW_TAG_variable) &&
1000 return C->getValue();
1001 return nullptr;
1002}
1004 assert(getTag() == dwarf::DW_TAG_member && !isStaticMember());
1005 if (auto *C = extractConstantMetadata(getExtraData()))
1006 return C->getValue();
1007 return nullptr;
1008}
1009
1010DIDerivedType *DIDerivedType::getImpl(
1011 LLVMContext &Context, unsigned Tag, MDString *Name, Metadata *File,
1012 unsigned Line, Metadata *Scope, Metadata *BaseType, Metadata *SizeInBits,
1013 uint32_t AlignInBits, Metadata *OffsetInBits,
1014 std::optional<unsigned> DWARFAddressSpace,
1015 std::optional<PtrAuthData> PtrAuthData, DIFlags Flags, Metadata *ExtraData,
1016 Metadata *Annotations, StorageType Storage, bool ShouldCreate) {
1017 assert(isCanonical(Name) && "Expected canonical MDString");
1019 (Tag, Name, File, Line, Scope, BaseType, SizeInBits,
1021 PtrAuthData, Flags, ExtraData, Annotations));
1022 Metadata *Ops[] = {File, Scope, Name, SizeInBits,
1023 OffsetInBits, BaseType, ExtraData, Annotations};
1026 (Tag, Line, AlignInBits, DWARFAddressSpace, PtrAuthData, Flags), Ops);
1027}
1028
1029std::optional<DIDerivedType::PtrAuthData>
1030DIDerivedType::getPtrAuthData() const {
1031 return getTag() == dwarf::DW_TAG_LLVM_ptrauth_type
1032 ? std::make_optional<PtrAuthData>(SubclassData32)
1033 : std::nullopt;
1034}
1035
1036DICompositeType *DICompositeType::getImpl(
1037 LLVMContext &Context, unsigned Tag, MDString *Name, Metadata *File,
1038 unsigned Line, Metadata *Scope, Metadata *BaseType, Metadata *SizeInBits,
1039 uint32_t AlignInBits, Metadata *OffsetInBits, DIFlags Flags,
1040 Metadata *Elements, unsigned RuntimeLang, std::optional<uint32_t> EnumKind,
1041 Metadata *VTableHolder, Metadata *TemplateParams, MDString *Identifier,
1042 Metadata *Discriminator, Metadata *DataLocation, Metadata *Associated,
1043 Metadata *Allocated, Metadata *Rank, Metadata *Annotations,
1044 Metadata *Specification, uint32_t NumExtraInhabitants, Metadata *BitStride,
1045 StorageType Storage, bool ShouldCreate) {
1046 assert(isCanonical(Name) && "Expected canonical MDString");
1047
1048 // Keep this in sync with buildODRType.
1050 DICompositeType,
1060 DEFINE_GETIMPL_STORE(DICompositeType,
1061 (Tag, Line, RuntimeLang, AlignInBits,
1062 NumExtraInhabitants, EnumKind, Flags),
1063 Ops);
1064}
1065
1067 LLVMContext &Context, MDString &Identifier, unsigned Tag, MDString *Name,
1071 Metadata *Elements, unsigned RuntimeLang, std::optional<uint32_t> EnumKind,
1075 assert(!Identifier.getString().empty() && "Expected valid identifier");
1076 if (!Context.isODRUniquingDebugTypes())
1077 return nullptr;
1078 auto *&CT = (*Context.pImpl->DITypeMap)[&Identifier];
1079 if (!CT)
1080 return CT = DICompositeType::getDistinct(
1081 Context, Tag, Name, File, Line, Scope, BaseType, SizeInBits,
1082 AlignInBits, OffsetInBits, Flags, Elements, RuntimeLang,
1086 if (CT->getTag() != Tag)
1087 return nullptr;
1088
1089 // Only mutate CT if it's a forward declaration and the new operands aren't.
1090 assert(CT->getRawIdentifier() == &Identifier && "Wrong ODR identifier?");
1091 if (!CT->isForwardDecl() || (Flags & DINode::FlagFwdDecl))
1092 return CT;
1093
1094 // Mutate CT in place. Keep this in sync with getImpl.
1095 CT->mutate(Tag, Line, RuntimeLang, AlignInBits, NumExtraInhabitants, EnumKind,
1096 Flags);
1102 assert((std::end(Ops) - std::begin(Ops)) == (int)CT->getNumOperands() &&
1103 "Mismatched number of operands");
1104 for (unsigned I = 0, E = CT->getNumOperands(); I != E; ++I)
1105 if (Ops[I] != CT->getOperand(I))
1106 CT->setOperand(I, Ops[I]);
1107 return CT;
1108}
1109
1110DICompositeType *DICompositeType::getODRType(
1111 LLVMContext &Context, MDString &Identifier, unsigned Tag, MDString *Name,
1112 Metadata *File, unsigned Line, Metadata *Scope, Metadata *BaseType,
1113 Metadata *SizeInBits, uint32_t AlignInBits, Metadata *OffsetInBits,
1114 Metadata *Specification, uint32_t NumExtraInhabitants, DIFlags Flags,
1115 Metadata *Elements, unsigned RuntimeLang, std::optional<uint32_t> EnumKind,
1116 Metadata *VTableHolder, Metadata *TemplateParams, Metadata *Discriminator,
1117 Metadata *DataLocation, Metadata *Associated, Metadata *Allocated,
1118 Metadata *Rank, Metadata *Annotations, Metadata *BitStride) {
1119 assert(!Identifier.getString().empty() && "Expected valid identifier");
1120 if (!Context.isODRUniquingDebugTypes())
1121 return nullptr;
1122 auto *&CT = (*Context.pImpl->DITypeMap)[&Identifier];
1123 if (!CT) {
1125 Context, Tag, Name, File, Line, Scope, BaseType, SizeInBits,
1130 } else {
1131 if (CT->getTag() != Tag)
1132 return nullptr;
1133 }
1134 return CT;
1135}
1136
1139 assert(!Identifier.getString().empty() && "Expected valid identifier");
1140 if (!Context.isODRUniquingDebugTypes())
1141 return nullptr;
1142 return Context.pImpl->DITypeMap->lookup(&Identifier);
1143}
1144DISubroutineType::DISubroutineType(LLVMContext &C, StorageType Storage,
1145 DIFlags Flags, uint8_t CC,
1147 : DIType(C, DISubroutineTypeKind, Storage, dwarf::DW_TAG_subroutine_type, 0,
1148 0, 0, Flags, Ops),
1149 CC(CC) {}
1150
1151DISubroutineType *DISubroutineType::getImpl(LLVMContext &Context, DIFlags Flags,
1152 uint8_t CC, Metadata *TypeArray,
1153 StorageType Storage,
1154 bool ShouldCreate) {
1156 Metadata *Ops[] = {nullptr, nullptr, nullptr, nullptr, nullptr, TypeArray};
1157 DEFINE_GETIMPL_STORE(DISubroutineType, (Flags, CC), Ops);
1158}
1159
1160DIFile::DIFile(LLVMContext &C, StorageType Storage,
1161 std::optional<ChecksumInfo<MDString *>> CS, MDString *Src,
1163 : DIScope(C, DIFileKind, Storage, dwarf::DW_TAG_file_type, Ops),
1164 Checksum(CS), Source(Src) {}
1165
1166// FIXME: Implement this string-enum correspondence with a .def file and macros,
1167// so that the association is explicit rather than implied.
1168static const char *ChecksumKindName[DIFile::CSK_Last] = {
1169 "CSK_MD5",
1170 "CSK_SHA1",
1171 "CSK_SHA256",
1172};
1173
1174StringRef DIFile::getChecksumKindAsString(ChecksumKind CSKind) {
1175 assert(CSKind <= DIFile::CSK_Last && "Invalid checksum kind");
1176 // The first space was originally the CSK_None variant, which is now
1177 // obsolete, but the space is still reserved in ChecksumKind, so we account
1178 // for it here.
1179 return ChecksumKindName[CSKind - 1];
1180}
1181
1182std::optional<DIFile::ChecksumKind>
1185 .Case("CSK_MD5", DIFile::CSK_MD5)
1186 .Case("CSK_SHA1", DIFile::CSK_SHA1)
1187 .Case("CSK_SHA256", DIFile::CSK_SHA256)
1188 .Default(std::nullopt);
1189}
1190
1191DIFile *DIFile::getImpl(LLVMContext &Context, MDString *Filename,
1192 MDString *Directory,
1193 std::optional<DIFile::ChecksumInfo<MDString *>> CS,
1194 MDString *Source, StorageType Storage,
1195 bool ShouldCreate) {
1196 assert(isCanonical(Filename) && "Expected canonical MDString");
1197 assert(isCanonical(Directory) && "Expected canonical MDString");
1198 assert((!CS || isCanonical(CS->Value)) && "Expected canonical MDString");
1199 // We do *NOT* expect Source to be a canonical MDString because nullptr
1200 // means none, so we need something to represent the empty file.
1202 Metadata *Ops[] = {Filename, Directory, CS ? CS->Value : nullptr, Source};
1204}
1205DICompileUnit::DICompileUnit(LLVMContext &C, StorageType Storage,
1207 bool IsOptimized, unsigned RuntimeVersion,
1208 unsigned EmissionKind, uint64_t DWOId,
1209 bool SplitDebugInlining,
1210 bool DebugInfoForProfiling, unsigned NameTableKind,
1211 bool RangesBaseAddress, ArrayRef<Metadata *> Ops)
1212 : DIScope(C, DICompileUnitKind, Storage, dwarf::DW_TAG_compile_unit, Ops),
1213 SourceLanguage(SourceLanguage), RuntimeVersion(RuntimeVersion),
1215 IsOptimized(IsOptimized), SplitDebugInlining(SplitDebugInlining),
1216 DebugInfoForProfiling(DebugInfoForProfiling),
1217 RangesBaseAddress(RangesBaseAddress) {
1219}
1220
1221DICompileUnit *DICompileUnit::getImpl(
1223 MDString *Producer, bool IsOptimized, MDString *Flags,
1224 unsigned RuntimeVersion, MDString *SplitDebugFilename,
1225 unsigned EmissionKind, Metadata *EnumTypes, Metadata *RetainedTypes,
1226 Metadata *GlobalVariables, Metadata *ImportedEntities, Metadata *Macros,
1227 uint64_t DWOId, bool SplitDebugInlining, bool DebugInfoForProfiling,
1228 unsigned NameTableKind, bool RangesBaseAddress, MDString *SysRoot,
1229 MDString *SDK, StorageType Storage, bool ShouldCreate) {
1230 assert(Storage != Uniqued && "Cannot unique DICompileUnit");
1231 assert(isCanonical(Producer) && "Expected canonical MDString");
1232 assert(isCanonical(Flags) && "Expected canonical MDString");
1233 assert(isCanonical(SplitDebugFilename) && "Expected canonical MDString");
1234
1235 Metadata *Ops[] = {File,
1236 Producer,
1237 Flags,
1239 EnumTypes,
1243 Macros,
1244 SysRoot,
1245 SDK};
1246 return storeImpl(new (std::size(Ops), Storage) DICompileUnit(
1247 Context, Storage, SourceLanguage, IsOptimized,
1248 RuntimeVersion, EmissionKind, DWOId, SplitDebugInlining,
1249 DebugInfoForProfiling, NameTableKind, RangesBaseAddress,
1250 Ops),
1251 Storage);
1252}
1253
1254std::optional<DICompileUnit::DebugEmissionKind>
1257 .Case("NoDebug", NoDebug)
1258 .Case("FullDebug", FullDebug)
1259 .Case("LineTablesOnly", LineTablesOnly)
1260 .Case("DebugDirectivesOnly", DebugDirectivesOnly)
1261 .Default(std::nullopt);
1262}
1263
1264std::optional<DICompileUnit::DebugNameTableKind>
1273
1275 switch (EK) {
1276 case NoDebug:
1277 return "NoDebug";
1278 case FullDebug:
1279 return "FullDebug";
1280 case LineTablesOnly:
1281 return "LineTablesOnly";
1283 return "DebugDirectivesOnly";
1284 }
1285 return nullptr;
1286}
1287
1289 switch (NTK) {
1291 return nullptr;
1293 return "GNU";
1295 return "Apple";
1297 return "None";
1298 }
1299 return nullptr;
1300}
1301DISubprogram::DISubprogram(LLVMContext &C, StorageType Storage, unsigned Line,
1302 unsigned ScopeLine, unsigned VirtualIndex,
1303 int ThisAdjustment, DIFlags Flags, DISPFlags SPFlags,
1304 bool UsesKeyInstructions, ArrayRef<Metadata *> Ops)
1305 : DILocalScope(C, DISubprogramKind, Storage, dwarf::DW_TAG_subprogram, Ops),
1306 Line(Line), ScopeLine(ScopeLine), VirtualIndex(VirtualIndex),
1307 ThisAdjustment(ThisAdjustment), Flags(Flags), SPFlags(SPFlags) {
1308 static_assert(dwarf::DW_VIRTUALITY_max < 4, "Virtuality out of range");
1309 SubclassData1 = UsesKeyInstructions;
1310}
1312DISubprogram::toSPFlags(bool IsLocalToUnit, bool IsDefinition, bool IsOptimized,
1313 unsigned Virtuality, bool IsMainSubprogram) {
1314 // We're assuming virtuality is the low-order field.
1315 static_assert(int(SPFlagVirtual) == int(dwarf::DW_VIRTUALITY_virtual) &&
1316 int(SPFlagPureVirtual) ==
1317 int(dwarf::DW_VIRTUALITY_pure_virtual),
1318 "Virtuality constant mismatch");
1319 return static_cast<DISPFlags>(
1320 (Virtuality & SPFlagVirtuality) |
1321 (IsLocalToUnit ? SPFlagLocalToUnit : SPFlagZero) |
1322 (IsDefinition ? SPFlagDefinition : SPFlagZero) |
1323 (IsOptimized ? SPFlagOptimized : SPFlagZero) |
1324 (IsMainSubprogram ? SPFlagMainSubprogram : SPFlagZero));
1325}
1326
1328 if (auto *Block = dyn_cast<DILexicalBlockBase>(this))
1329 return Block->getScope()->getSubprogram();
1330 return const_cast<DISubprogram *>(cast<DISubprogram>(this));
1331}
1332
1334 if (auto *File = dyn_cast<DILexicalBlockFile>(this))
1335 return File->getScope()->getNonLexicalBlockFileScope();
1336 return const_cast<DILocalScope *>(this);
1337}
1338
1340 DILocalScope &RootScope, DISubprogram &NewSP, LLVMContext &Ctx,
1342 SmallVector<DIScope *> ScopeChain;
1343 DIScope *CachedResult = nullptr;
1344
1345 for (DIScope *Scope = &RootScope; !isa<DISubprogram>(Scope);
1346 Scope = Scope->getScope()) {
1347 if (auto It = Cache.find(Scope); It != Cache.end()) {
1348 CachedResult = cast<DIScope>(It->second);
1349 break;
1350 }
1351 ScopeChain.push_back(Scope);
1352 }
1353
1354 // Recreate the scope chain, bottom-up, starting at the new subprogram (or a
1355 // cached result).
1356 DIScope *UpdatedScope = CachedResult ? CachedResult : &NewSP;
1357 for (DIScope *ScopeToUpdate : reverse(ScopeChain)) {
1358 UpdatedScope = cloneAndReplaceParentScope(
1359 cast<DILexicalBlockBase>(ScopeToUpdate), UpdatedScope);
1360 Cache[ScopeToUpdate] = UpdatedScope;
1361 }
1362
1363 return cast<DILocalScope>(UpdatedScope);
1364}
1365
1367 return StringSwitch<DISPFlags>(Flag)
1368#define HANDLE_DISP_FLAG(ID, NAME) .Case("DISPFlag" #NAME, SPFlag##NAME)
1369#include "llvm/IR/DebugInfoFlags.def"
1370 .Default(SPFlagZero);
1371}
1372
1374 switch (Flag) {
1375 // Appease a warning.
1376 case SPFlagVirtuality:
1377 return "";
1378#define HANDLE_DISP_FLAG(ID, NAME) \
1379 case SPFlag##NAME: \
1380 return "DISPFlag" #NAME;
1381#include "llvm/IR/DebugInfoFlags.def"
1382 }
1383 return "";
1384}
1385
1388 SmallVectorImpl<DISPFlags> &SplitFlags) {
1389 // Multi-bit fields can require special handling. In our case, however, the
1390 // only multi-bit field is virtuality, and all its values happen to be
1391 // single-bit values, so the right behavior just falls out.
1392#define HANDLE_DISP_FLAG(ID, NAME) \
1393 if (DISPFlags Bit = Flags & SPFlag##NAME) { \
1394 SplitFlags.push_back(Bit); \
1395 Flags &= ~Bit; \
1396 }
1397#include "llvm/IR/DebugInfoFlags.def"
1398 return Flags;
1399}
1400
1401DISubprogram *DISubprogram::getImpl(
1402 LLVMContext &Context, Metadata *Scope, MDString *Name,
1403 MDString *LinkageName, Metadata *File, unsigned Line, Metadata *Type,
1404 unsigned ScopeLine, Metadata *ContainingType, unsigned VirtualIndex,
1405 int ThisAdjustment, DIFlags Flags, DISPFlags SPFlags, Metadata *Unit,
1406 Metadata *TemplateParams, Metadata *Declaration, Metadata *RetainedNodes,
1407 Metadata *ThrownTypes, Metadata *Annotations, MDString *TargetFuncName,
1408 bool UsesKeyInstructions, StorageType Storage, bool ShouldCreate) {
1409 assert(isCanonical(Name) && "Expected canonical MDString");
1410 assert(isCanonical(LinkageName) && "Expected canonical MDString");
1411 assert(isCanonical(TargetFuncName) && "Expected canonical MDString");
1413 (Scope, Name, LinkageName, File, Line, Type, ScopeLine,
1419 File, Scope, Name, LinkageName,
1423 if (!TargetFuncName) {
1424 Ops.pop_back();
1425 if (!Annotations) {
1426 Ops.pop_back();
1427 if (!ThrownTypes) {
1428 Ops.pop_back();
1429 if (!TemplateParams) {
1430 Ops.pop_back();
1431 if (!ContainingType)
1432 Ops.pop_back();
1433 }
1434 }
1435 }
1436 }
1437 DEFINE_GETIMPL_STORE_N(DISubprogram,
1438 (Line, ScopeLine, VirtualIndex, ThisAdjustment, Flags,
1439 SPFlags, UsesKeyInstructions),
1440 Ops, Ops.size());
1441}
1442
1444 assert(F && "Invalid function");
1445 return F->getSubprogram() == this;
1446}
1447
1449 return visitRetainedNode<DIScope *>(
1450 N, [](const DILocalVariable *LV) { return LV->getScope(); },
1451 [](const DILabel *L) { return L->getScope(); },
1452 [](const DIImportedEntity *IE) { return IE->getScope(); },
1453 [](const Metadata *N) { return nullptr; });
1454}
1455
1456const DILocalScope *DISubprogram::getRetainedNodeScope(const MDNode *N) {
1458}
1459
1464
1465DILexicalBlock *DILexicalBlock::getImpl(LLVMContext &Context, Metadata *Scope,
1466 Metadata *File, unsigned Line,
1467 unsigned Column, StorageType Storage,
1468 bool ShouldCreate) {
1469 // Fixup column.
1471
1472 assert(Scope && "Expected scope");
1474 Metadata *Ops[] = {File, Scope};
1476}
1477
1478DILexicalBlockFile *DILexicalBlockFile::getImpl(LLVMContext &Context,
1479 Metadata *Scope, Metadata *File,
1480 unsigned Discriminator,
1481 StorageType Storage,
1482 bool ShouldCreate) {
1483 assert(Scope && "Expected scope");
1484 DEFINE_GETIMPL_LOOKUP(DILexicalBlockFile, (Scope, File, Discriminator));
1485 Metadata *Ops[] = {File, Scope};
1486 DEFINE_GETIMPL_STORE(DILexicalBlockFile, (Discriminator), Ops);
1487}
1488
1489DINamespace::DINamespace(LLVMContext &Context, StorageType Storage,
1490 bool ExportSymbols, ArrayRef<Metadata *> Ops)
1491 : DIScope(Context, DINamespaceKind, Storage, dwarf::DW_TAG_namespace, Ops) {
1492 SubclassData1 = ExportSymbols;
1493}
1494DINamespace *DINamespace::getImpl(LLVMContext &Context, Metadata *Scope,
1495 MDString *Name, bool ExportSymbols,
1496 StorageType Storage, bool ShouldCreate) {
1497 assert(isCanonical(Name) && "Expected canonical MDString");
1499 // The nullptr is for DIScope's File operand. This should be refactored.
1500 Metadata *Ops[] = {nullptr, Scope, Name};
1501 DEFINE_GETIMPL_STORE(DINamespace, (ExportSymbols), Ops);
1502}
1503
1504DICommonBlock::DICommonBlock(LLVMContext &Context, StorageType Storage,
1505 unsigned LineNo, ArrayRef<Metadata *> Ops)
1506 : DIScope(Context, DICommonBlockKind, Storage, dwarf::DW_TAG_common_block,
1507 Ops) {
1508 SubclassData32 = LineNo;
1509}
1510DICommonBlock *DICommonBlock::getImpl(LLVMContext &Context, Metadata *Scope,
1511 Metadata *Decl, MDString *Name,
1512 Metadata *File, unsigned LineNo,
1513 StorageType Storage, bool ShouldCreate) {
1514 assert(isCanonical(Name) && "Expected canonical MDString");
1515 DEFINE_GETIMPL_LOOKUP(DICommonBlock, (Scope, Decl, Name, File, LineNo));
1516 // The nullptr is for DIScope's File operand. This should be refactored.
1517 Metadata *Ops[] = {Scope, Decl, Name, File};
1518 DEFINE_GETIMPL_STORE(DICommonBlock, (LineNo), Ops);
1519}
1520
1521DIModule::DIModule(LLVMContext &Context, StorageType Storage, unsigned LineNo,
1522 bool IsDecl, ArrayRef<Metadata *> Ops)
1523 : DIScope(Context, DIModuleKind, Storage, dwarf::DW_TAG_module, Ops) {
1524 SubclassData1 = IsDecl;
1525 SubclassData32 = LineNo;
1526}
1527DIModule *DIModule::getImpl(LLVMContext &Context, Metadata *File,
1528 Metadata *Scope, MDString *Name,
1529 MDString *ConfigurationMacros,
1530 MDString *IncludePath, MDString *APINotesFile,
1531 unsigned LineNo, bool IsDecl, StorageType Storage,
1532 bool ShouldCreate) {
1533 assert(isCanonical(Name) && "Expected canonical MDString");
1535 IncludePath, APINotesFile, LineNo, IsDecl));
1538 DEFINE_GETIMPL_STORE(DIModule, (LineNo, IsDecl), Ops);
1539}
1540DITemplateTypeParameter::DITemplateTypeParameter(LLVMContext &Context,
1541 StorageType Storage,
1542 bool IsDefault,
1544 : DITemplateParameter(Context, DITemplateTypeParameterKind, Storage,
1545 dwarf::DW_TAG_template_type_parameter, IsDefault,
1546 Ops) {}
1547
1549DITemplateTypeParameter::getImpl(LLVMContext &Context, MDString *Name,
1550 Metadata *Type, bool isDefault,
1551 StorageType Storage, bool ShouldCreate) {
1552 assert(isCanonical(Name) && "Expected canonical MDString");
1553 DEFINE_GETIMPL_LOOKUP(DITemplateTypeParameter, (Name, Type, isDefault));
1554 Metadata *Ops[] = {Name, Type};
1555 DEFINE_GETIMPL_STORE(DITemplateTypeParameter, (isDefault), Ops);
1556}
1557
1558DITemplateValueParameter *DITemplateValueParameter::getImpl(
1559 LLVMContext &Context, unsigned Tag, MDString *Name, Metadata *Type,
1560 bool isDefault, Metadata *Value, StorageType Storage, bool ShouldCreate) {
1561 assert(isCanonical(Name) && "Expected canonical MDString");
1562 DEFINE_GETIMPL_LOOKUP(DITemplateValueParameter,
1563 (Tag, Name, Type, isDefault, Value));
1564 Metadata *Ops[] = {Name, Type, Value};
1565 DEFINE_GETIMPL_STORE(DITemplateValueParameter, (Tag, isDefault), Ops);
1566}
1567
1569DIGlobalVariable::getImpl(LLVMContext &Context, Metadata *Scope, MDString *Name,
1570 MDString *LinkageName, Metadata *File, unsigned Line,
1571 Metadata *Type, bool IsLocalToUnit, bool IsDefinition,
1572 Metadata *StaticDataMemberDeclaration,
1573 Metadata *TemplateParams, uint32_t AlignInBits,
1574 Metadata *Annotations, StorageType Storage,
1575 bool ShouldCreate) {
1576 assert(isCanonical(Name) && "Expected canonical MDString");
1577 assert(isCanonical(LinkageName) && "Expected canonical MDString");
1579 DIGlobalVariable,
1580 (Scope, Name, LinkageName, File, Line, Type, IsLocalToUnit, IsDefinition,
1582 Metadata *Ops[] = {Scope,
1583 Name,
1584 File,
1585 Type,
1586 Name,
1590 Annotations};
1591 DEFINE_GETIMPL_STORE(DIGlobalVariable,
1592 (Line, IsLocalToUnit, IsDefinition, AlignInBits), Ops);
1593}
1594
1596DILocalVariable::getImpl(LLVMContext &Context, Metadata *Scope, MDString *Name,
1597 Metadata *File, unsigned Line, Metadata *Type,
1598 unsigned Arg, DIFlags Flags, uint32_t AlignInBits,
1599 Metadata *Annotations, StorageType Storage,
1600 bool ShouldCreate) {
1601 // 64K ought to be enough for any frontend.
1602 assert(Arg <= UINT16_MAX && "Expected argument number to fit in 16-bits");
1603
1604 assert(Scope && "Expected scope");
1605 assert(isCanonical(Name) && "Expected canonical MDString");
1606 DEFINE_GETIMPL_LOOKUP(DILocalVariable, (Scope, Name, File, Line, Type, Arg,
1607 Flags, AlignInBits, Annotations));
1609 DEFINE_GETIMPL_STORE(DILocalVariable, (Line, Arg, Flags, AlignInBits), Ops);
1610}
1611
1613 signed Line, ArrayRef<Metadata *> Ops,
1614 uint32_t AlignInBits)
1615 : DINode(C, ID, Storage, dwarf::DW_TAG_variable, Ops), Line(Line) {
1616 SubclassData32 = AlignInBits;
1617}
1618std::optional<uint64_t> DIVariable::getSizeInBits() const {
1619 // This is used by the Verifier so be mindful of broken types.
1620 const Metadata *RawType = getRawType();
1621 while (RawType) {
1622 // Try to get the size directly.
1623 if (auto *T = dyn_cast<DIType>(RawType))
1624 if (uint64_t Size = T->getSizeInBits())
1625 return Size;
1626
1627 if (auto *DT = dyn_cast<DIDerivedType>(RawType)) {
1628 // Look at the base type.
1629 RawType = DT->getRawBaseType();
1630 continue;
1631 }
1632
1633 // Missing type or size.
1634 break;
1635 }
1636
1637 // Fail gracefully.
1638 return std::nullopt;
1639}
1640
1641DILabel::DILabel(LLVMContext &C, StorageType Storage, unsigned Line,
1642 unsigned Column, bool IsArtificial,
1643 std::optional<unsigned> CoroSuspendIdx,
1645 : DINode(C, DILabelKind, Storage, dwarf::DW_TAG_label, Ops) {
1646 this->SubclassData32 = Line;
1647 this->Column = Column;
1648 this->IsArtificial = IsArtificial;
1649 this->CoroSuspendIdx = CoroSuspendIdx;
1650}
1651DILabel *DILabel::getImpl(LLVMContext &Context, Metadata *Scope, MDString *Name,
1652 Metadata *File, unsigned Line, unsigned Column,
1653 bool IsArtificial,
1654 std::optional<unsigned> CoroSuspendIdx,
1655 StorageType Storage, bool ShouldCreate) {
1656 assert(Scope && "Expected scope");
1657 assert(isCanonical(Name) && "Expected canonical MDString");
1659 DILabel, (Scope, Name, File, Line, Column, IsArtificial, CoroSuspendIdx));
1660 Metadata *Ops[] = {Scope, Name, File};
1661 DEFINE_GETIMPL_STORE(DILabel, (Line, Column, IsArtificial, CoroSuspendIdx),
1662 Ops);
1663}
1664
1665DIExpression *DIExpression::getImpl(LLVMContext &Context,
1666 ArrayRef<uint64_t> Elements,
1667 StorageType Storage, bool ShouldCreate) {
1668 DEFINE_GETIMPL_LOOKUP(DIExpression, (Elements));
1669 DEFINE_GETIMPL_STORE_NO_OPS(DIExpression, (Elements));
1670}
1672 if (auto singleLocElts = getSingleLocationExpressionElements()) {
1673 return singleLocElts->size() > 0 &&
1674 (*singleLocElts)[0] == dwarf::DW_OP_LLVM_entry_value;
1675 }
1676 return false;
1677}
1679 if (auto singleLocElts = getSingleLocationExpressionElements())
1680 return singleLocElts->size() > 0 &&
1681 (*singleLocElts)[0] == dwarf::DW_OP_deref;
1682 return false;
1683}
1685 if (auto singleLocElts = getSingleLocationExpressionElements())
1686 return singleLocElts->size() == 1 &&
1687 (*singleLocElts)[0] == dwarf::DW_OP_deref;
1688 return false;
1689}
1690
1691DIAssignID *DIAssignID::getImpl(LLVMContext &Context, StorageType Storage,
1692 bool ShouldCreate) {
1693 // Uniqued DIAssignID are not supported as the instance address *is* the ID.
1694 assert(Storage != StorageType::Uniqued && "uniqued DIAssignID unsupported");
1695 return storeImpl(new (0u, Storage) DIAssignID(Context, Storage), Storage);
1696}
1697
1699 uint64_t Op = getOp();
1700
1701 if (Op >= dwarf::DW_OP_breg0 && Op <= dwarf::DW_OP_breg31)
1702 return 2;
1703
1704 switch (Op) {
1709 case dwarf::DW_OP_bregx:
1710 return 3;
1711 case dwarf::DW_OP_constu:
1712 case dwarf::DW_OP_consts:
1713 case dwarf::DW_OP_deref_size:
1714 case dwarf::DW_OP_plus_uconst:
1718 case dwarf::DW_OP_regx:
1719 return 2;
1720 default:
1721 return 1;
1722 }
1723}
1724
1726 for (auto I = expr_op_begin(), E = expr_op_end(); I != E; ++I) {
1727 // Check that there's space for the operand.
1728 if (I->get() + I->getSize() > E->get())
1729 return false;
1730
1731 uint64_t Op = I->getOp();
1732 if ((Op >= dwarf::DW_OP_reg0 && Op <= dwarf::DW_OP_reg31) ||
1733 (Op >= dwarf::DW_OP_breg0 && Op <= dwarf::DW_OP_breg31))
1734 return true;
1735
1736 // Check that the operand is valid.
1737 switch (Op) {
1738 default:
1739 return false;
1741 // A fragment operator must appear at the end.
1742 return I->get() + I->getSize() == E->get();
1743 case dwarf::DW_OP_stack_value: {
1744 // Must be the last one or followed by a DW_OP_LLVM_fragment.
1745 if (I->get() + I->getSize() == E->get())
1746 break;
1747 auto J = I;
1748 if ((++J)->getOp() != dwarf::DW_OP_LLVM_fragment)
1749 return false;
1750 break;
1751 }
1752 case dwarf::DW_OP_swap: {
1753 // Must be more than one implicit element on the stack.
1754
1755 // FIXME: A better way to implement this would be to add a local variable
1756 // that keeps track of the stack depth and introduce something like a
1757 // DW_LLVM_OP_implicit_location as a placeholder for the location this
1758 // DIExpression is attached to, or else pass the number of implicit stack
1759 // elements into isValid.
1760 if (getNumElements() == 1)
1761 return false;
1762 break;
1763 }
1765 // An entry value operator must appear at the beginning or immediately
1766 // following `DW_OP_LLVM_arg 0`, and the number of operations it cover can
1767 // currently only be 1, because we support only entry values of a simple
1768 // register location. One reason for this is that we currently can't
1769 // calculate the size of the resulting DWARF block for other expressions.
1770 auto FirstOp = expr_op_begin();
1771 if (FirstOp->getOp() == dwarf::DW_OP_LLVM_arg && FirstOp->getArg(0) == 0)
1772 ++FirstOp;
1773 return I->get() == FirstOp->get() && I->getArg(0) == 1;
1774 }
1781 case dwarf::DW_OP_constu:
1782 case dwarf::DW_OP_plus_uconst:
1783 case dwarf::DW_OP_plus:
1784 case dwarf::DW_OP_minus:
1785 case dwarf::DW_OP_mul:
1786 case dwarf::DW_OP_div:
1787 case dwarf::DW_OP_mod:
1788 case dwarf::DW_OP_or:
1789 case dwarf::DW_OP_and:
1790 case dwarf::DW_OP_xor:
1791 case dwarf::DW_OP_shl:
1792 case dwarf::DW_OP_shr:
1793 case dwarf::DW_OP_shra:
1794 case dwarf::DW_OP_deref:
1795 case dwarf::DW_OP_deref_size:
1796 case dwarf::DW_OP_xderef:
1797 case dwarf::DW_OP_lit0:
1798 case dwarf::DW_OP_not:
1799 case dwarf::DW_OP_dup:
1800 case dwarf::DW_OP_regx:
1801 case dwarf::DW_OP_bregx:
1802 case dwarf::DW_OP_push_object_address:
1803 case dwarf::DW_OP_over:
1804 case dwarf::DW_OP_rot:
1805 case dwarf::DW_OP_consts:
1806 case dwarf::DW_OP_eq:
1807 case dwarf::DW_OP_ne:
1808 case dwarf::DW_OP_gt:
1809 case dwarf::DW_OP_ge:
1810 case dwarf::DW_OP_lt:
1811 case dwarf::DW_OP_le:
1812 case dwarf::DW_OP_neg:
1813 case dwarf::DW_OP_abs:
1814 break;
1815 }
1816 }
1817 return true;
1818}
1819
1821 if (!isValid())
1822 return false;
1823
1824 if (getNumElements() == 0)
1825 return false;
1826
1827 for (const auto &It : expr_ops()) {
1828 switch (It.getOp()) {
1829 default:
1830 break;
1831 case dwarf::DW_OP_stack_value:
1832 return true;
1833 }
1834 }
1835
1836 return false;
1837}
1838
1840 if (!isValid())
1841 return false;
1842
1843 if (getNumElements() == 0)
1844 return false;
1845
1846 // If there are any elements other than fragment or tag_offset, then some
1847 // kind of complex computation occurs.
1848 for (const auto &It : expr_ops()) {
1849 switch (It.getOp()) {
1853 continue;
1854 default:
1855 return true;
1856 }
1857 }
1858
1859 return false;
1860}
1861
1863 if (!isValid())
1864 return false;
1865
1866 if (getNumElements() == 0)
1867 return true;
1868
1869 auto ExprOpBegin = expr_ops().begin();
1870 auto ExprOpEnd = expr_ops().end();
1871 if (ExprOpBegin->getOp() == dwarf::DW_OP_LLVM_arg) {
1872 if (ExprOpBegin->getArg(0) != 0)
1873 return false;
1874 ++ExprOpBegin;
1875 }
1876
1877 return !std::any_of(ExprOpBegin, ExprOpEnd, [](auto Op) {
1878 return Op.getOp() == dwarf::DW_OP_LLVM_arg;
1879 });
1880}
1881
1882std::optional<ArrayRef<uint64_t>>
1884 // Check for `isValid` covered by `isSingleLocationExpression`.
1886 return std::nullopt;
1887
1888 // An empty expression is already non-variadic.
1889 if (!getNumElements())
1890 return ArrayRef<uint64_t>();
1891
1892 // If Expr does not have a leading DW_OP_LLVM_arg then we don't need to do
1893 // anything.
1895 return getElements().drop_front(2);
1896 return getElements();
1897}
1898
1899const DIExpression *
1901 SmallVector<uint64_t, 3> UndefOps;
1902 if (auto FragmentInfo = Expr->getFragmentInfo()) {
1903 UndefOps.append({dwarf::DW_OP_LLVM_fragment, FragmentInfo->OffsetInBits,
1904 FragmentInfo->SizeInBits});
1905 }
1906 return DIExpression::get(Expr->getContext(), UndefOps);
1907}
1908
1909const DIExpression *
1911 if (any_of(Expr->expr_ops(), [](auto ExprOp) {
1912 return ExprOp.getOp() == dwarf::DW_OP_LLVM_arg;
1913 }))
1914 return Expr;
1915 SmallVector<uint64_t> NewOps;
1916 NewOps.reserve(Expr->getNumElements() + 2);
1917 NewOps.append({dwarf::DW_OP_LLVM_arg, 0});
1918 NewOps.append(Expr->elements_begin(), Expr->elements_end());
1919 return DIExpression::get(Expr->getContext(), NewOps);
1920}
1921
1922std::optional<const DIExpression *>
1924 if (!Expr)
1925 return std::nullopt;
1926
1927 if (auto Elts = Expr->getSingleLocationExpressionElements())
1928 return DIExpression::get(Expr->getContext(), *Elts);
1929
1930 return std::nullopt;
1931}
1932
1934 const DIExpression *Expr,
1935 bool IsIndirect) {
1936 // If Expr is not already variadic, insert the implied `DW_OP_LLVM_arg 0`
1937 // to the existing expression ops.
1938 if (none_of(Expr->expr_ops(), [](auto ExprOp) {
1939 return ExprOp.getOp() == dwarf::DW_OP_LLVM_arg;
1940 }))
1941 Ops.append({dwarf::DW_OP_LLVM_arg, 0});
1942 // If Expr is not indirect, we only need to insert the expression elements and
1943 // we're done.
1944 if (!IsIndirect) {
1945 Ops.append(Expr->elements_begin(), Expr->elements_end());
1946 return;
1947 }
1948 // If Expr is indirect, insert the implied DW_OP_deref at the end of the
1949 // expression but before DW_OP_{stack_value, LLVM_fragment} if they are
1950 // present.
1951 for (auto Op : Expr->expr_ops()) {
1952 if (Op.getOp() == dwarf::DW_OP_stack_value ||
1953 Op.getOp() == dwarf::DW_OP_LLVM_fragment) {
1954 Ops.push_back(dwarf::DW_OP_deref);
1955 IsIndirect = false;
1956 }
1957 Op.appendToVector(Ops);
1958 }
1959 if (IsIndirect)
1960 Ops.push_back(dwarf::DW_OP_deref);
1961}
1962
1963bool DIExpression::isEqualExpression(const DIExpression *FirstExpr,
1964 bool FirstIndirect,
1965 const DIExpression *SecondExpr,
1966 bool SecondIndirect) {
1967 SmallVector<uint64_t> FirstOps;
1968 DIExpression::canonicalizeExpressionOps(FirstOps, FirstExpr, FirstIndirect);
1969 SmallVector<uint64_t> SecondOps;
1970 DIExpression::canonicalizeExpressionOps(SecondOps, SecondExpr,
1971 SecondIndirect);
1972 return FirstOps == SecondOps;
1973}
1974
1975std::optional<DIExpression::FragmentInfo>
1977 for (auto I = Start; I != End; ++I)
1978 if (I->getOp() == dwarf::DW_OP_LLVM_fragment) {
1979 DIExpression::FragmentInfo Info = {I->getArg(1), I->getArg(0)};
1980 return Info;
1981 }
1982 return std::nullopt;
1983}
1984
1985std::optional<uint64_t> DIExpression::getActiveBits(DIVariable *Var) {
1986 std::optional<uint64_t> InitialActiveBits = Var->getSizeInBits();
1987 std::optional<uint64_t> ActiveBits = InitialActiveBits;
1988 for (auto Op : expr_ops()) {
1989 switch (Op.getOp()) {
1990 default:
1991 // We assume the worst case for anything we don't currently handle and
1992 // revert to the initial active bits.
1993 ActiveBits = InitialActiveBits;
1994 break;
1997 // We can't handle an extract whose sign doesn't match that of the
1998 // variable.
1999 std::optional<DIBasicType::Signedness> VarSign = Var->getSignedness();
2000 bool VarSigned = (VarSign == DIBasicType::Signedness::Signed);
2001 bool OpSigned = (Op.getOp() == dwarf::DW_OP_LLVM_extract_bits_sext);
2002 if (!VarSign || VarSigned != OpSigned) {
2003 ActiveBits = InitialActiveBits;
2004 break;
2005 }
2006 [[fallthrough]];
2007 }
2009 // Extract or fragment narrows the active bits
2010 if (ActiveBits)
2011 ActiveBits = std::min(*ActiveBits, Op.getArg(1));
2012 else
2013 ActiveBits = Op.getArg(1);
2014 break;
2015 }
2016 }
2017 return ActiveBits;
2018}
2019
2021 int64_t Offset) {
2022 if (Offset > 0) {
2023 Ops.push_back(dwarf::DW_OP_plus_uconst);
2024 Ops.push_back(Offset);
2025 } else if (Offset < 0) {
2026 Ops.push_back(dwarf::DW_OP_constu);
2027 // Avoid UB when encountering LLONG_MIN, because in 2's complement
2028 // abs(LLONG_MIN) is LLONG_MAX+1.
2029 uint64_t AbsMinusOne = -(Offset+1);
2030 Ops.push_back(AbsMinusOne + 1);
2031 Ops.push_back(dwarf::DW_OP_minus);
2032 }
2033}
2034
2036 auto SingleLocEltsOpt = getSingleLocationExpressionElements();
2037 if (!SingleLocEltsOpt)
2038 return false;
2039 auto SingleLocElts = *SingleLocEltsOpt;
2040
2041 if (SingleLocElts.size() == 0) {
2042 Offset = 0;
2043 return true;
2044 }
2045
2046 if (SingleLocElts.size() == 2 &&
2047 SingleLocElts[0] == dwarf::DW_OP_plus_uconst) {
2048 Offset = SingleLocElts[1];
2049 return true;
2050 }
2051
2052 if (SingleLocElts.size() == 3 && SingleLocElts[0] == dwarf::DW_OP_constu) {
2053 if (SingleLocElts[2] == dwarf::DW_OP_plus) {
2054 Offset = SingleLocElts[1];
2055 return true;
2056 }
2057 if (SingleLocElts[2] == dwarf::DW_OP_minus) {
2058 Offset = -SingleLocElts[1];
2059 return true;
2060 }
2061 }
2062
2063 return false;
2064}
2065
2067 int64_t &OffsetInBytes, SmallVectorImpl<uint64_t> &RemainingOps) const {
2068 OffsetInBytes = 0;
2069 RemainingOps.clear();
2070
2071 auto SingleLocEltsOpt = getSingleLocationExpressionElements();
2072 if (!SingleLocEltsOpt)
2073 return false;
2074
2075 auto ExprOpEnd = expr_op_iterator(SingleLocEltsOpt->end());
2076 auto ExprOpIt = expr_op_iterator(SingleLocEltsOpt->begin());
2077 while (ExprOpIt != ExprOpEnd) {
2078 uint64_t Op = ExprOpIt->getOp();
2079 if (Op == dwarf::DW_OP_deref || Op == dwarf::DW_OP_deref_size ||
2080 Op == dwarf::DW_OP_deref_type || Op == dwarf::DW_OP_LLVM_fragment ||
2083 break;
2084 } else if (Op == dwarf::DW_OP_plus_uconst) {
2085 OffsetInBytes += ExprOpIt->getArg(0);
2086 } else if (Op == dwarf::DW_OP_constu) {
2087 uint64_t Value = ExprOpIt->getArg(0);
2088 ++ExprOpIt;
2089 if (ExprOpIt->getOp() == dwarf::DW_OP_plus)
2090 OffsetInBytes += Value;
2091 else if (ExprOpIt->getOp() == dwarf::DW_OP_minus)
2092 OffsetInBytes -= Value;
2093 else
2094 return false;
2095 } else {
2096 // Not a const plus/minus operation or deref.
2097 return false;
2098 }
2099 ++ExprOpIt;
2100 }
2101 RemainingOps.append(ExprOpIt.getBase(), ExprOpEnd.getBase());
2102 return true;
2103}
2104
2107 for (auto ExprOp : expr_ops())
2108 if (ExprOp.getOp() == dwarf::DW_OP_LLVM_arg)
2109 SeenOps.insert(ExprOp.getArg(0));
2110 for (uint64_t Idx = 0; Idx < N; ++Idx)
2111 if (!SeenOps.contains(Idx))
2112 return false;
2113 return true;
2114}
2115
2116const DIExpression *DIExpression::extractAddressClass(const DIExpression *Expr,
2117 unsigned &AddrClass) {
2118 // FIXME: This seems fragile. Nothing that verifies that these elements
2119 // actually map to ops and not operands.
2120 auto SingleLocEltsOpt = Expr->getSingleLocationExpressionElements();
2121 if (!SingleLocEltsOpt)
2122 return nullptr;
2123 auto SingleLocElts = *SingleLocEltsOpt;
2124
2125 const unsigned PatternSize = 4;
2126 if (SingleLocElts.size() >= PatternSize &&
2127 SingleLocElts[PatternSize - 4] == dwarf::DW_OP_constu &&
2128 SingleLocElts[PatternSize - 2] == dwarf::DW_OP_swap &&
2129 SingleLocElts[PatternSize - 1] == dwarf::DW_OP_xderef) {
2130 AddrClass = SingleLocElts[PatternSize - 3];
2131
2132 if (SingleLocElts.size() == PatternSize)
2133 return nullptr;
2134 return DIExpression::get(
2135 Expr->getContext(),
2136 ArrayRef(&*SingleLocElts.begin(), SingleLocElts.size() - PatternSize));
2137 }
2138 return Expr;
2139}
2140
2141DIExpression *DIExpression::prepend(const DIExpression *Expr, uint8_t Flags,
2142 int64_t Offset) {
2144 if (Flags & DIExpression::DerefBefore)
2145 Ops.push_back(dwarf::DW_OP_deref);
2146
2148 if (Flags & DIExpression::DerefAfter)
2149 Ops.push_back(dwarf::DW_OP_deref);
2150
2151 bool StackValue = Flags & DIExpression::StackValue;
2152 bool EntryValue = Flags & DIExpression::EntryValue;
2153
2154 return prependOpcodes(Expr, Ops, StackValue, EntryValue);
2155}
2156
2157DIExpression *DIExpression::appendOpsToArg(const DIExpression *Expr,
2159 unsigned ArgNo, bool StackValue) {
2160 assert(Expr && "Can't add ops to this expression");
2161
2162 // Handle non-variadic intrinsics by prepending the opcodes.
2163 if (!any_of(Expr->expr_ops(),
2164 [](auto Op) { return Op.getOp() == dwarf::DW_OP_LLVM_arg; })) {
2165 assert(ArgNo == 0 &&
2166 "Location Index must be 0 for a non-variadic expression.");
2168 return DIExpression::prependOpcodes(Expr, NewOps, StackValue);
2169 }
2170
2172 for (auto Op : Expr->expr_ops()) {
2173 // A DW_OP_stack_value comes at the end, but before a DW_OP_LLVM_fragment.
2174 if (StackValue) {
2175 if (Op.getOp() == dwarf::DW_OP_stack_value)
2176 StackValue = false;
2177 else if (Op.getOp() == dwarf::DW_OP_LLVM_fragment) {
2178 NewOps.push_back(dwarf::DW_OP_stack_value);
2179 StackValue = false;
2180 }
2181 }
2182 Op.appendToVector(NewOps);
2183 if (Op.getOp() == dwarf::DW_OP_LLVM_arg && Op.getArg(0) == ArgNo)
2184 llvm::append_range(NewOps, Ops);
2185 }
2186 if (StackValue)
2187 NewOps.push_back(dwarf::DW_OP_stack_value);
2188
2189 return DIExpression::get(Expr->getContext(), NewOps);
2190}
2191
2192DIExpression *DIExpression::replaceArg(const DIExpression *Expr,
2193 uint64_t OldArg, uint64_t NewArg) {
2194 assert(Expr && "Can't replace args in this expression");
2195
2197
2198 for (auto Op : Expr->expr_ops()) {
2199 if (Op.getOp() != dwarf::DW_OP_LLVM_arg || Op.getArg(0) < OldArg) {
2200 Op.appendToVector(NewOps);
2201 continue;
2202 }
2204 uint64_t Arg = Op.getArg(0) == OldArg ? NewArg : Op.getArg(0);
2205 // OldArg has been deleted from the Op list, so decrement all indices
2206 // greater than it.
2207 if (Arg > OldArg)
2208 --Arg;
2209 NewOps.push_back(Arg);
2210 }
2211 return DIExpression::get(Expr->getContext(), NewOps);
2212}
2213
2214DIExpression *DIExpression::prependOpcodes(const DIExpression *Expr,
2216 bool StackValue, bool EntryValue) {
2217 assert(Expr && "Can't prepend ops to this expression");
2218
2219 if (EntryValue) {
2221 // Use a block size of 1 for the target register operand. The
2222 // DWARF backend currently cannot emit entry values with a block
2223 // size > 1.
2224 Ops.push_back(1);
2225 }
2226
2227 // If there are no ops to prepend, do not even add the DW_OP_stack_value.
2228 if (Ops.empty())
2229 StackValue = false;
2230 for (auto Op : Expr->expr_ops()) {
2231 // A DW_OP_stack_value comes at the end, but before a DW_OP_LLVM_fragment.
2232 if (StackValue) {
2233 if (Op.getOp() == dwarf::DW_OP_stack_value)
2234 StackValue = false;
2235 else if (Op.getOp() == dwarf::DW_OP_LLVM_fragment) {
2236 Ops.push_back(dwarf::DW_OP_stack_value);
2237 StackValue = false;
2238 }
2239 }
2240 Op.appendToVector(Ops);
2241 }
2242 if (StackValue)
2243 Ops.push_back(dwarf::DW_OP_stack_value);
2244 return DIExpression::get(Expr->getContext(), Ops);
2245}
2246
2247DIExpression *DIExpression::append(const DIExpression *Expr,
2249 assert(Expr && !Ops.empty() && "Can't append ops to this expression");
2250
2251 // Copy Expr's current op list.
2253 for (auto Op : Expr->expr_ops()) {
2254 // Append new opcodes before DW_OP_{stack_value, LLVM_fragment}.
2255 if (Op.getOp() == dwarf::DW_OP_stack_value ||
2256 Op.getOp() == dwarf::DW_OP_LLVM_fragment) {
2257 NewOps.append(Ops.begin(), Ops.end());
2258
2259 // Ensure that the new opcodes are only appended once.
2260 Ops = {};
2261 }
2262 Op.appendToVector(NewOps);
2263 }
2264 NewOps.append(Ops.begin(), Ops.end());
2265 auto *result =
2266 DIExpression::get(Expr->getContext(), NewOps)->foldConstantMath();
2267 assert(result->isValid() && "concatenated expression is not valid");
2268 return result;
2269}
2270
2271DIExpression *DIExpression::appendToStack(const DIExpression *Expr,
2273 assert(Expr && !Ops.empty() && "Can't append ops to this expression");
2274 assert(std::none_of(expr_op_iterator(Ops.begin()),
2275 expr_op_iterator(Ops.end()),
2276 [](auto Op) {
2277 return Op.getOp() == dwarf::DW_OP_stack_value ||
2278 Op.getOp() == dwarf::DW_OP_LLVM_fragment;
2279 }) &&
2280 "Can't append this op");
2281
2282 // Append a DW_OP_deref after Expr's current op list if it's non-empty and
2283 // has no DW_OP_stack_value.
2284 //
2285 // Match .* DW_OP_stack_value (DW_OP_LLVM_fragment A B)?.
2286 std::optional<FragmentInfo> FI = Expr->getFragmentInfo();
2287 unsigned DropUntilStackValue = FI ? 3 : 0;
2288 ArrayRef<uint64_t> ExprOpsBeforeFragment =
2289 Expr->getElements().drop_back(DropUntilStackValue);
2290 bool NeedsDeref = (Expr->getNumElements() > DropUntilStackValue) &&
2291 (ExprOpsBeforeFragment.back() != dwarf::DW_OP_stack_value);
2292 bool NeedsStackValue = NeedsDeref || ExprOpsBeforeFragment.empty();
2293
2294 // Append a DW_OP_deref after Expr's current op list if needed, then append
2295 // the new ops, and finally ensure that a single DW_OP_stack_value is present.
2297 if (NeedsDeref)
2298 NewOps.push_back(dwarf::DW_OP_deref);
2299 NewOps.append(Ops.begin(), Ops.end());
2300 if (NeedsStackValue)
2301 NewOps.push_back(dwarf::DW_OP_stack_value);
2302 return DIExpression::append(Expr, NewOps);
2303}
2304
2305std::optional<DIExpression *> DIExpression::createFragmentExpression(
2306 const DIExpression *Expr, unsigned OffsetInBits, unsigned SizeInBits) {
2308 // Track whether it's safe to split the value at the top of the DWARF stack,
2309 // assuming that it'll be used as an implicit location value.
2310 bool CanSplitValue = true;
2311 // Track whether we need to add a fragment expression to the end of Expr.
2312 bool EmitFragment = true;
2313 // Copy over the expression, but leave off any trailing DW_OP_LLVM_fragment.
2314 if (Expr) {
2315 for (auto Op : Expr->expr_ops()) {
2316 switch (Op.getOp()) {
2317 default:
2318 break;
2319 case dwarf::DW_OP_shr:
2320 case dwarf::DW_OP_shra:
2321 case dwarf::DW_OP_shl:
2322 case dwarf::DW_OP_plus:
2323 case dwarf::DW_OP_plus_uconst:
2324 case dwarf::DW_OP_minus:
2325 // We can't safely split arithmetic or shift operations into multiple
2326 // fragments because we can't express carry-over between fragments.
2327 //
2328 // FIXME: We *could* preserve the lowest fragment of a constant offset
2329 // operation if the offset fits into SizeInBits.
2330 CanSplitValue = false;
2331 break;
2332 case dwarf::DW_OP_deref:
2333 case dwarf::DW_OP_deref_size:
2334 case dwarf::DW_OP_deref_type:
2335 case dwarf::DW_OP_xderef:
2336 case dwarf::DW_OP_xderef_size:
2337 case dwarf::DW_OP_xderef_type:
2338 // Preceeding arithmetic operations have been applied to compute an
2339 // address. It's okay to split the value loaded from that address.
2340 CanSplitValue = true;
2341 break;
2342 case dwarf::DW_OP_stack_value:
2343 // Bail if this expression computes a value that cannot be split.
2344 if (!CanSplitValue)
2345 return std::nullopt;
2346 break;
2348 // If we've decided we don't need a fragment then give up if we see that
2349 // there's already a fragment expression.
2350 // FIXME: We could probably do better here
2351 if (!EmitFragment)
2352 return std::nullopt;
2353 // Make the new offset point into the existing fragment.
2354 uint64_t FragmentOffsetInBits = Op.getArg(0);
2355 uint64_t FragmentSizeInBits = Op.getArg(1);
2356 (void)FragmentSizeInBits;
2357 assert((OffsetInBits + SizeInBits <= FragmentSizeInBits) &&
2358 "new fragment outside of original fragment");
2359 OffsetInBits += FragmentOffsetInBits;
2360 continue;
2361 }
2364 // If we're extracting bits from inside of the fragment that we're
2365 // creating then we don't have a fragment after all, and just need to
2366 // adjust the offset that we're extracting from.
2367 uint64_t ExtractOffsetInBits = Op.getArg(0);
2368 uint64_t ExtractSizeInBits = Op.getArg(1);
2369 if (ExtractOffsetInBits >= OffsetInBits &&
2370 ExtractOffsetInBits + ExtractSizeInBits <=
2371 OffsetInBits + SizeInBits) {
2372 Ops.push_back(Op.getOp());
2373 Ops.push_back(ExtractOffsetInBits - OffsetInBits);
2374 Ops.push_back(ExtractSizeInBits);
2375 EmitFragment = false;
2376 continue;
2377 }
2378 // If the extracted bits aren't fully contained within the fragment then
2379 // give up.
2380 // FIXME: We could probably do better here
2381 return std::nullopt;
2382 }
2383 }
2384 Op.appendToVector(Ops);
2385 }
2386 }
2387 assert((!Expr->isImplicit() || CanSplitValue) && "Expr can't be split");
2388 assert(Expr && "Unknown DIExpression");
2389 if (EmitFragment) {
2391 Ops.push_back(OffsetInBits);
2392 Ops.push_back(SizeInBits);
2393 }
2394 return DIExpression::get(Expr->getContext(), Ops);
2395}
2396
2397/// See declaration for more info.
2399 const DataLayout &DL, const Value *SliceStart, uint64_t SliceOffsetInBits,
2400 uint64_t SliceSizeInBits, const Value *DbgPtr, int64_t DbgPtrOffsetInBits,
2401 int64_t DbgExtractOffsetInBits, DIExpression::FragmentInfo VarFrag,
2402 std::optional<DIExpression::FragmentInfo> &Result,
2403 int64_t &OffsetFromLocationInBits) {
2404
2405 if (VarFrag.SizeInBits == 0)
2406 return false; // Variable size is unknown.
2407
2408 // Difference between mem slice start and the dbg location start.
2409 // 0 4 8 12 16 ...
2410 // | |
2411 // dbg location start
2412 // |
2413 // mem slice start
2414 // Here MemStartRelToDbgStartInBits is 8. Note this can be negative.
2415 int64_t MemStartRelToDbgStartInBits;
2416 {
2417 auto MemOffsetFromDbgInBytes = SliceStart->getPointerOffsetFrom(DbgPtr, DL);
2418 if (!MemOffsetFromDbgInBytes)
2419 return false; // Can't calculate difference in addresses.
2420 // Difference between the pointers.
2421 MemStartRelToDbgStartInBits = *MemOffsetFromDbgInBytes * 8;
2422 // Add the difference of the offsets.
2423 MemStartRelToDbgStartInBits +=
2424 SliceOffsetInBits - (DbgPtrOffsetInBits + DbgExtractOffsetInBits);
2425 }
2426
2427 // Out-param. Invert offset to get offset from debug location.
2428 OffsetFromLocationInBits = -MemStartRelToDbgStartInBits;
2429
2430 // Check if the variable fragment sits outside (before) this memory slice.
2431 int64_t MemEndRelToDbgStart = MemStartRelToDbgStartInBits + SliceSizeInBits;
2432 if (MemEndRelToDbgStart < 0) {
2433 Result = {0, 0}; // Out-param.
2434 return true;
2435 }
2436
2437 // Work towards creating SliceOfVariable which is the bits of the variable
2438 // that the memory region covers.
2439 // 0 4 8 12 16 ...
2440 // | |
2441 // dbg location start with VarFrag offset=32
2442 // |
2443 // mem slice start: SliceOfVariable offset=40
2444 int64_t MemStartRelToVarInBits =
2445 MemStartRelToDbgStartInBits + VarFrag.OffsetInBits;
2446 int64_t MemEndRelToVarInBits = MemStartRelToVarInBits + SliceSizeInBits;
2447 // If the memory region starts before the debug location the fragment
2448 // offset would be negative, which we can't encode. Limit those to 0. This
2449 // is fine because those bits necessarily don't overlap with the existing
2450 // variable fragment.
2451 int64_t MemFragStart = std::max<int64_t>(0, MemStartRelToVarInBits);
2452 int64_t MemFragSize =
2453 std::max<int64_t>(0, MemEndRelToVarInBits - MemFragStart);
2454 DIExpression::FragmentInfo SliceOfVariable(MemFragSize, MemFragStart);
2455
2456 // Intersect the memory region fragment with the variable location fragment.
2457 DIExpression::FragmentInfo TrimmedSliceOfVariable =
2458 DIExpression::FragmentInfo::intersect(SliceOfVariable, VarFrag);
2459 if (TrimmedSliceOfVariable == VarFrag)
2460 Result = std::nullopt; // Out-param.
2461 else
2462 Result = TrimmedSliceOfVariable; // Out-param.
2463 return true;
2464}
2465
2466std::pair<DIExpression *, const ConstantInt *>
2468 // Copy the APInt so we can modify it.
2469 APInt NewInt = CI->getValue();
2471
2472 // Fold operators only at the beginning of the expression.
2473 bool First = true;
2474 bool Changed = false;
2475 for (auto Op : expr_ops()) {
2476 switch (Op.getOp()) {
2477 default:
2478 // We fold only the leading part of the expression; if we get to a part
2479 // that we're going to copy unchanged, and haven't done any folding,
2480 // then the entire expression is unchanged and we can return early.
2481 if (!Changed)
2482 return {this, CI};
2483 First = false;
2484 break;
2486 if (!First)
2487 break;
2488 Changed = true;
2489 if (Op.getArg(1) == dwarf::DW_ATE_signed)
2490 NewInt = NewInt.sextOrTrunc(Op.getArg(0));
2491 else {
2492 assert(Op.getArg(1) == dwarf::DW_ATE_unsigned && "Unexpected operand");
2493 NewInt = NewInt.zextOrTrunc(Op.getArg(0));
2494 }
2495 continue;
2496 }
2497 Op.appendToVector(Ops);
2498 }
2499 if (!Changed)
2500 return {this, CI};
2501 return {DIExpression::get(getContext(), Ops),
2502 ConstantInt::get(getContext(), NewInt)};
2503}
2504
2506 uint64_t Result = 0;
2507 for (auto ExprOp : expr_ops())
2508 if (ExprOp.getOp() == dwarf::DW_OP_LLVM_arg)
2509 Result = std::max(Result, ExprOp.getArg(0) + 1);
2510 assert(hasAllLocationOps(Result) &&
2511 "Expression is missing one or more location operands.");
2512 return Result;
2513}
2514
2515std::optional<DIExpression::SignedOrUnsignedConstant>
2517
2518 // Recognize signed and unsigned constants.
2519 // An signed constants can be represented as DW_OP_consts C DW_OP_stack_value
2520 // (DW_OP_LLVM_fragment of Len).
2521 // An unsigned constant can be represented as
2522 // DW_OP_constu C DW_OP_stack_value (DW_OP_LLVM_fragment of Len).
2523
2524 if ((getNumElements() != 2 && getNumElements() != 3 &&
2525 getNumElements() != 6) ||
2526 (getElement(0) != dwarf::DW_OP_consts &&
2527 getElement(0) != dwarf::DW_OP_constu))
2528 return std::nullopt;
2529
2530 if (getNumElements() == 2 && getElement(0) == dwarf::DW_OP_consts)
2532
2533 if ((getNumElements() == 3 && getElement(2) != dwarf::DW_OP_stack_value) ||
2534 (getNumElements() == 6 && (getElement(2) != dwarf::DW_OP_stack_value ||
2536 return std::nullopt;
2537 return getElement(0) == dwarf::DW_OP_constu
2540}
2541
2542DIExpression::ExtOps DIExpression::getExtOps(unsigned FromSize, unsigned ToSize,
2543 bool Signed) {
2544 dwarf::TypeKind TK = Signed ? dwarf::DW_ATE_signed : dwarf::DW_ATE_unsigned;
2546 dwarf::DW_OP_LLVM_convert, ToSize, TK}};
2547 return Ops;
2548}
2549
2550DIExpression *DIExpression::appendExt(const DIExpression *Expr,
2551 unsigned FromSize, unsigned ToSize,
2552 bool Signed) {
2553 return appendToStack(Expr, getExtOps(FromSize, ToSize, Signed));
2554}
2555
2557DIGlobalVariableExpression::getImpl(LLVMContext &Context, Metadata *Variable,
2559 bool ShouldCreate) {
2561 Metadata *Ops[] = {Variable, Expression};
2563}
2564DIObjCProperty::DIObjCProperty(LLVMContext &C, StorageType Storage,
2565 unsigned Line, unsigned Attributes,
2567 : DINode(C, DIObjCPropertyKind, Storage, dwarf::DW_TAG_APPLE_property, Ops),
2569
2570DIObjCProperty *DIObjCProperty::getImpl(
2571 LLVMContext &Context, MDString *Name, Metadata *File, unsigned Line,
2572 MDString *GetterName, MDString *SetterName, unsigned Attributes,
2573 Metadata *Type, StorageType Storage, bool ShouldCreate) {
2574 assert(isCanonical(Name) && "Expected canonical MDString");
2575 assert(isCanonical(GetterName) && "Expected canonical MDString");
2576 assert(isCanonical(SetterName) && "Expected canonical MDString");
2577 DEFINE_GETIMPL_LOOKUP(DIObjCProperty, (Name, File, Line, GetterName,
2578 SetterName, Attributes, Type));
2580 DEFINE_GETIMPL_STORE(DIObjCProperty, (Line, Attributes), Ops);
2581}
2582
2583DIImportedEntity *DIImportedEntity::getImpl(LLVMContext &Context, unsigned Tag,
2584 Metadata *Scope, Metadata *Entity,
2585 Metadata *File, unsigned Line,
2586 MDString *Name, Metadata *Elements,
2587 StorageType Storage,
2588 bool ShouldCreate) {
2589 assert(isCanonical(Name) && "Expected canonical MDString");
2590 DEFINE_GETIMPL_LOOKUP(DIImportedEntity,
2591 (Tag, Scope, Entity, File, Line, Name, Elements));
2593 DEFINE_GETIMPL_STORE(DIImportedEntity, (Tag, Line), Ops);
2594}
2595
2596DIMacro *DIMacro::getImpl(LLVMContext &Context, unsigned MIType, unsigned Line,
2597 MDString *Name, MDString *Value, StorageType Storage,
2598 bool ShouldCreate) {
2599 assert(isCanonical(Name) && "Expected canonical MDString");
2601 Metadata *Ops[] = {Name, Value};
2602 DEFINE_GETIMPL_STORE(DIMacro, (MIType, Line), Ops);
2603}
2604
2605DIMacroFile *DIMacroFile::getImpl(LLVMContext &Context, unsigned MIType,
2606 unsigned Line, Metadata *File,
2607 Metadata *Elements, StorageType Storage,
2608 bool ShouldCreate) {
2609 DEFINE_GETIMPL_LOOKUP(DIMacroFile, (MIType, Line, File, Elements));
2610 Metadata *Ops[] = {File, Elements};
2611 DEFINE_GETIMPL_STORE(DIMacroFile, (MIType, Line), Ops);
2612}
2613
2614DIArgList *DIArgList::get(LLVMContext &Context,
2616 auto ExistingIt = Context.pImpl->DIArgLists.find_as(DIArgListKeyInfo(Args));
2617 if (ExistingIt != Context.pImpl->DIArgLists.end())
2618 return *ExistingIt;
2619 DIArgList *NewArgList = new DIArgList(Context, Args);
2620 Context.pImpl->DIArgLists.insert(NewArgList);
2621 return NewArgList;
2622}
2623
2625 ValueAsMetadata **OldVMPtr = static_cast<ValueAsMetadata **>(Ref);
2626 assert((!New || isa<ValueAsMetadata>(New)) &&
2627 "DIArgList must be passed a ValueAsMetadata");
2628 untrack();
2629 // We need to update the set storage once the Args are updated since they
2630 // form the key to the DIArgLists store.
2631 getContext().pImpl->DIArgLists.erase(this);
2633 for (ValueAsMetadata *&VM : Args) {
2634 if (&VM == OldVMPtr) {
2635 if (NewVM)
2636 VM = NewVM;
2637 else
2638 VM = ValueAsMetadata::get(PoisonValue::get(VM->getValue()->getType()));
2639 }
2640 }
2641 // We've changed the contents of this DIArgList, and the set storage may
2642 // already contain a DIArgList with our new set of args; if it does, then we
2643 // must RAUW this with the existing DIArgList, otherwise we simply insert this
2644 // back into the set storage.
2645 DIArgList *ExistingArgList = getUniqued(getContext().pImpl->DIArgLists, this);
2646 if (ExistingArgList) {
2647 replaceAllUsesWith(ExistingArgList);
2648 // Clear this here so we don't try to untrack in the destructor.
2649 Args.clear();
2650 delete this;
2651 return;
2652 }
2653 getContext().pImpl->DIArgLists.insert(this);
2654 track();
2655}
2656void DIArgList::track() {
2657 for (ValueAsMetadata *&VAM : Args)
2658 if (VAM)
2659 MetadataTracking::track(&VAM, *VAM, *this);
2660}
2661void DIArgList::untrack() {
2662 for (ValueAsMetadata *&VAM : Args)
2663 if (VAM)
2664 MetadataTracking::untrack(&VAM, *VAM);
2665}
2666void DIArgList::dropAllReferences(bool Untrack) {
2667 if (Untrack)
2668 untrack();
2669 Args.clear();
2670 ReplaceableMetadataImpl::resolveAllUses(/* ResolveUsers */ false);
2671}
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
constexpr LLT S1
AMDGPU Kernel Attributes
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
static cl::opt< ITMode > IT(cl::desc("IT block support"), cl::Hidden, cl::init(DefaultIT), cl::values(clEnumValN(DefaultIT, "arm-default-it", "Generate any type of IT block"), clEnumValN(RestrictedIT, "arm-restrict-it", "Disallow complex IT blocks")))
static GCRegistry::Add< ErlangGC > A("erlang", "erlang-compatible garbage collector")
static GCRegistry::Add< StatepointGC > D("statepoint-example", "an example strategy for statepoint")
static GCRegistry::Add< OcamlGC > B("ocaml", "ocaml 3.10-compatible GC")
#define LLVM_ABI
Definition Compiler.h:213
static ConstantAsMetadata * extractConstantMetadata(Metadata *ExtraData)
static const char * ChecksumKindName[DIFile::CSK_Last]
#define DEFINE_GETIMPL_STORE_NO_CONSTRUCTOR_ARGS(CLASS, OPS)
static void adjustColumn(unsigned &Column)
#define DEFINE_GETIMPL_STORE_N(CLASS, ARGS, OPS, NUM_OPS)
static std::pair< DIScope *, LineColumn > getNearestMatchingScope(const DILocation *L1, const DILocation *L2)
static LineColumn getLocalScopeLocationOr(DIScope *S, LineColumn Default)
Returns the location of DILocalScope, if present, or a default value.
std::pair< unsigned, unsigned > LineColumn
static bool isCanonical(const MDString *S)
#define DEFINE_GETIMPL_STORE(CLASS, ARGS, OPS)
#define DEFINE_GETIMPL_LOOKUP(CLASS, ARGS)
#define DEFINE_GETIMPL_STORE_NO_OPS(CLASS, ARGS)
static DILexicalBlockBase * cloneAndReplaceParentScope(DILexicalBlockBase *LBB, DIScope *NewParent)
static RegisterPass< DebugifyFunctionPass > DF("debugify-function", "Attach debug info to a function")
static unsigned encodingBits(unsigned C)
static unsigned encodeComponent(unsigned C)
static unsigned getNextComponentInDiscriminator(unsigned D)
Returns the next component stored in discriminator.
static unsigned getUnsignedFromPrefixEncoding(unsigned U)
Reverse transformation as getPrefixEncodingFromUnsigned.
@ Default
This file contains constants used for implementing Dwarf debug support.
const AbstractManglingParser< Derived, Alloc >::OperatorInfo AbstractManglingParser< Derived, Alloc >::Ops[]
#define F(x, y, z)
Definition MD5.cpp:54
#define I(x, y, z)
Definition MD5.cpp:57
static DebugLoc getDebugLoc(MachineBasicBlock::instr_iterator FirstMI, MachineBasicBlock::instr_iterator LastMI)
Return the first DebugLoc that has line number information, given a range of instructions.
#define T
BaseType
A given derived pointer can have multiple base pointers through phi/selects.
This file implements a set that has insertion order iteration characteristics.
This file implements the StringSwitch template, which mimics a switch() statement whose cases are str...
Class for arbitrary precision integers.
Definition APInt.h:78
LLVM_ABI APInt zextOrTrunc(unsigned width) const
Zero extend or truncate to width.
Definition APInt.cpp:1033
LLVM_ABI APInt sextOrTrunc(unsigned width) const
Sign extend or truncate to width.
Definition APInt.cpp:1041
Annotations lets you mark points and ranges inside source code, for tests:
Definition Annotations.h:53
ArrayRef - Represent a constant reference to an array (0 or more elements consecutively in memory),...
Definition ArrayRef.h:40
const T & back() const
back - Get the last element.
Definition ArrayRef.h:151
ArrayRef< T > drop_front(size_t N=1) const
Drop the first N elements of the array.
Definition ArrayRef.h:195
size_t size() const
size - Get the array size.
Definition ArrayRef.h:142
ArrayRef< T > drop_back(size_t N=1) const
Drop the last N elements of the array.
Definition ArrayRef.h:201
bool empty() const
empty - Check if the array is empty.
Definition ArrayRef.h:137
static ConstantAsMetadata * get(Constant *C)
Definition Metadata.h:536
This is the shared class of boolean and integer constants.
Definition Constants.h:87
static ConstantInt * getSigned(IntegerType *Ty, int64_t V)
Return a ConstantInt with the specified value for the specified type.
Definition Constants.h:136
const APInt & getValue() const
Return the constant as an APInt value reference.
Definition Constants.h:159
This is an important base class in LLVM.
Definition Constant.h:43
LLVM_ABI void handleChangedOperand(void *Ref, Metadata *New)
static LLVM_ABI DIArgList * get(LLVMContext &Context, ArrayRef< ValueAsMetadata * > Args)
static DIBasicType * getImpl(LLVMContext &Context, unsigned Tag, StringRef Name, uint64_t SizeInBits, uint32_t AlignInBits, unsigned Encoding, uint32_t NumExtraInhabitants, uint32_t DataSizeInBits, DIFlags Flags, StorageType Storage, bool ShouldCreate=true)
unsigned StringRef uint64_t FlagZero unsigned StringRef uint64_t uint32_t unsigned DIFlags Flags
DIBasicType(LLVMContext &C, StorageType Storage, unsigned Tag, uint32_t AlignInBits, unsigned Encoding, uint32_t NumExtraInhabitants, uint32_t DataSizeInBits, DIFlags Flags, ArrayRef< Metadata * > Ops)
unsigned StringRef uint64_t SizeInBits
LLVM_ABI std::optional< Signedness > getSignedness() const
Return the signedness of this type, or std::nullopt if this type is neither signed nor unsigned.
unsigned getEncoding() const
unsigned StringRef uint64_t FlagZero unsigned StringRef uint64_t uint32_t unsigned DIFlags Flags unsigned StringRef uint64_t uint32_t unsigned uint32_t NumExtraInhabitants
unsigned StringRef Name
unsigned StringRef uint64_t FlagZero unsigned StringRef uint64_t uint32_t AlignInBits
Debug common block.
Metadata Metadata * Decl
Metadata Metadata MDString Metadata unsigned LineNo
Metadata Metadata MDString * Name
Metadata Metadata MDString Metadata * File
static LLVM_ABI const char * nameTableKindString(DebugNameTableKind PK)
static LLVM_ABI const char * emissionKindString(DebugEmissionKind EK)
DISourceLanguageName Metadata MDString bool MDString unsigned MDString unsigned Metadata Metadata Metadata Metadata Metadata uint64_t bool bool unsigned bool MDString * SysRoot
DISourceLanguageName Metadata MDString bool MDString * Flags
DISourceLanguageName Metadata MDString bool MDString unsigned MDString unsigned Metadata Metadata Metadata Metadata Metadata uint64_t bool bool unsigned bool MDString MDString * SDK
DISourceLanguageName Metadata MDString bool MDString unsigned MDString unsigned Metadata Metadata Metadata * GlobalVariables
DebugEmissionKind getEmissionKind() const
DISourceLanguageName Metadata MDString bool MDString unsigned MDString unsigned Metadata * EnumTypes
DISourceLanguageName Metadata MDString * Producer
DISourceLanguageName Metadata MDString bool MDString unsigned MDString unsigned Metadata Metadata * RetainedTypes
DISourceLanguageName Metadata MDString bool MDString unsigned MDString * SplitDebugFilename
DISourceLanguageName Metadata MDString bool MDString unsigned MDString unsigned Metadata Metadata Metadata Metadata * ImportedEntities
DISourceLanguageName Metadata MDString bool MDString unsigned MDString unsigned Metadata Metadata Metadata Metadata Metadata * Macros
DebugNameTableKind getNameTableKind() const
DISourceLanguageName Metadata * File
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t AlignInBits
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > EnumKind
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata Metadata MDString Metadata Metadata * DataLocation
static LLVM_ABI DICompositeType * buildODRType(LLVMContext &Context, MDString &Identifier, unsigned Tag, MDString *Name, Metadata *File, unsigned Line, Metadata *Scope, Metadata *BaseType, Metadata *SizeInBits, uint32_t AlignInBits, Metadata *OffsetInBits, Metadata *Specification, uint32_t NumExtraInhabitants, DIFlags Flags, Metadata *Elements, unsigned RuntimeLang, std::optional< uint32_t > EnumKind, Metadata *VTableHolder, Metadata *TemplateParams, Metadata *Discriminator, Metadata *DataLocation, Metadata *Associated, Metadata *Allocated, Metadata *Rank, Metadata *Annotations, Metadata *BitStride)
Build a DICompositeType with the given ODR identifier.
unsigned MDString Metadata unsigned Line
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata * Elements
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned RuntimeLang
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata Metadata MDString Metadata Metadata Metadata Metadata Metadata Metadata * Annotations
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata Metadata MDString * Identifier
static LLVM_ABI DICompositeType * getODRTypeIfExists(LLVMContext &Context, MDString &Identifier)
unsigned MDString * Name
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata Metadata MDString Metadata * Discriminator
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata Metadata * TemplateParams
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t OffsetInBits
unsigned MDString Metadata unsigned Metadata * Scope
unsigned MDString Metadata * File
unsigned MDString Metadata unsigned Metadata Metadata * BaseType
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Flags
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata Metadata MDString Metadata Metadata Metadata Metadata * Allocated
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata Metadata MDString Metadata Metadata Metadata Metadata Metadata Metadata Metadata * Specification
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata * VTableHolder
unsigned MDString Metadata unsigned Metadata Metadata uint64_t SizeInBits
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata Metadata MDString Metadata Metadata Metadata * Associated
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata Metadata MDString Metadata Metadata Metadata Metadata Metadata Metadata Metadata uint32_t NumExtraInhabitants
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata Metadata MDString Metadata Metadata Metadata Metadata Metadata * Rank
unsigned MDString Metadata unsigned Metadata Metadata uint64_t uint32_t uint64_t DIFlags Metadata unsigned std::optional< uint32_t > Metadata Metadata MDString Metadata Metadata Metadata Metadata Metadata Metadata Metadata uint32_t Metadata * BitStride
unsigned StringRef DIFile unsigned DIScope DIType Metadata uint32_t Metadata * OffsetInBits
unsigned StringRef DIFile unsigned DIScope DIType Metadata uint32_t AlignInBits
unsigned StringRef DIFile unsigned DIScope DIType Metadata uint32_t Metadata std::optional< unsigned > std::optional< PtrAuthData > PtrAuthData
Metadata * getExtraData() const
Get extra data associated with this derived type.
unsigned StringRef DIFile * File
unsigned StringRef DIFile unsigned DIScope DIType Metadata uint32_t Metadata std::optional< unsigned > DWARFAddressSpace
LLVM_ABI DIType * getClassType() const
Get casted version of extra data.
LLVM_ABI Constant * getConstant() const
unsigned StringRef DIFile unsigned DIScope DIType Metadata * SizeInBits
LLVM_ABI Constant * getStorageOffsetInBits() const
LLVM_ABI Constant * getDiscriminantValue() const
unsigned StringRef Name
LLVM_ABI uint32_t getVBPtrOffset() const
Enumeration value.
int64_t bool MDString * Name
LLVM_ABI unsigned getSize() const
Return the size of the operand.
uint64_t getOp() const
Get the operand code.
An iterator for expression operands.
DWARF expression.
element_iterator elements_end() const
LLVM_ABI bool isEntryValue() const
Check if the expression consists of exactly one entry value operand.
iterator_range< expr_op_iterator > expr_ops() const
static LLVM_ABI DIExpression * append(const DIExpression *Expr, ArrayRef< uint64_t > Ops)
Append the opcodes Ops to DIExpr.
std::array< uint64_t, 6 > ExtOps
unsigned getNumElements() const
static LLVM_ABI ExtOps getExtOps(unsigned FromSize, unsigned ToSize, bool Signed)
Returns the ops for a zero- or sign-extension in a DIExpression.
expr_op_iterator expr_op_begin() const
Visit the elements via ExprOperand wrappers.
LLVM_ABI bool extractIfOffset(int64_t &Offset) const
If this is a constant offset, extract it.
static LLVM_ABI void appendOffset(SmallVectorImpl< uint64_t > &Ops, int64_t Offset)
Append Ops with operations to apply the Offset.
DbgVariableFragmentInfo FragmentInfo
LLVM_ABI bool startsWithDeref() const
Return whether the first element a DW_OP_deref.
static LLVM_ABI bool isEqualExpression(const DIExpression *FirstExpr, bool FirstIndirect, const DIExpression *SecondExpr, bool SecondIndirect)
Determines whether two debug values should produce equivalent DWARF expressions, using their DIExpres...
expr_op_iterator expr_op_end() const
LLVM_ABI bool isImplicit() const
Return whether this is an implicit location description.
static LLVM_ABI bool calculateFragmentIntersect(const DataLayout &DL, const Value *SliceStart, uint64_t SliceOffsetInBits, uint64_t SliceSizeInBits, const Value *DbgPtr, int64_t DbgPtrOffsetInBits, int64_t DbgExtractOffsetInBits, DIExpression::FragmentInfo VarFrag, std::optional< DIExpression::FragmentInfo > &Result, int64_t &OffsetFromLocationInBits)
Computes a fragment, bit-extract operation if needed, and new constant offset to describe a part of a...
element_iterator elements_begin() const
LLVM_ABI bool hasAllLocationOps(unsigned N) const
Returns true iff this DIExpression contains at least one instance of DW_OP_LLVM_arg,...
std::optional< FragmentInfo > getFragmentInfo() const
Retrieve the details of this fragment expression.
static LLVM_ABI DIExpression * appendOpsToArg(const DIExpression *Expr, ArrayRef< uint64_t > Ops, unsigned ArgNo, bool StackValue=false)
Create a copy of Expr by appending the given list of Ops to each instance of the operand DW_OP_LLVM_a...
LLVM_ABI bool isComplex() const
Return whether the location is computed on the expression stack, meaning it cannot be a simple regist...
static LLVM_ABI std::optional< FragmentInfo > getFragmentInfo(expr_op_iterator Start, expr_op_iterator End)
Retrieve the details of this fragment expression.
static LLVM_ABI std::optional< const DIExpression * > convertToNonVariadicExpression(const DIExpression *Expr)
If Expr is a valid single-location expression, i.e.
LLVM_ABI std::pair< DIExpression *, const ConstantInt * > constantFold(const ConstantInt *CI)
Try to shorten an expression with an initial constant operand.
LLVM_ABI bool isDeref() const
Return whether there is exactly one operator and it is a DW_OP_deref;.
static LLVM_ABI const DIExpression * convertToVariadicExpression(const DIExpression *Expr)
If Expr is a non-variadic expression (i.e.
LLVM_ABI uint64_t getNumLocationOperands() const
Return the number of unique location operands referred to (via DW_OP_LLVM_arg) in this expression; th...
ArrayRef< uint64_t > getElements() const
static LLVM_ABI DIExpression * replaceArg(const DIExpression *Expr, uint64_t OldArg, uint64_t NewArg)
Create a copy of Expr with each instance of DW_OP_LLVM_arg, \p OldArg replaced with DW_OP_LLVM_arg,...
LLVM_ABI std::optional< uint64_t > getActiveBits(DIVariable *Var)
Return the number of bits that have an active value, i.e.
static LLVM_ABI void canonicalizeExpressionOps(SmallVectorImpl< uint64_t > &Ops, const DIExpression *Expr, bool IsIndirect)
Inserts the elements of Expr into Ops modified to a canonical form, which uses DW_OP_LLVM_arg (i....
uint64_t getElement(unsigned I) const
static LLVM_ABI std::optional< DIExpression * > createFragmentExpression(const DIExpression *Expr, unsigned OffsetInBits, unsigned SizeInBits)
Create a DIExpression to describe one part of an aggregate variable that is fragmented across multipl...
static LLVM_ABI const DIExpression * convertToUndefExpression(const DIExpression *Expr)
Removes all elements from Expr that do not apply to an undef debug value, which includes every operat...
static LLVM_ABI DIExpression * prepend(const DIExpression *Expr, uint8_t Flags, int64_t Offset=0)
Prepend DIExpr with a deref and offset operation and optionally turn it into a stack value or/and an ...
static LLVM_ABI DIExpression * appendToStack(const DIExpression *Expr, ArrayRef< uint64_t > Ops)
Convert DIExpr into a stack value if it isn't one already by appending DW_OP_deref if needed,...
static LLVM_ABI DIExpression * appendExt(const DIExpression *Expr, unsigned FromSize, unsigned ToSize, bool Signed)
Append a zero- or sign-extension to Expr.
LLVM_ABI std::optional< ArrayRef< uint64_t > > getSingleLocationExpressionElements() const
Returns a reference to the elements contained in this expression, skipping past the leading DW_OP_LLV...
LLVM_ABI bool isSingleLocationExpression() const
Return whether the evaluated expression makes use of a single location at the start of the expression...
LLVM_ABI bool extractLeadingOffset(int64_t &OffsetInBytes, SmallVectorImpl< uint64_t > &RemainingOps) const
Assuming that the expression operates on an address, extract a constant offset and the successive ops...
LLVM_ABI std::optional< SignedOrUnsignedConstant > isConstant() const
Determine whether this represents a constant value, if so.
LLVM_ABI bool isValid() const
static LLVM_ABI const DIExpression * extractAddressClass(const DIExpression *Expr, unsigned &AddrClass)
Checks if the last 4 elements of the expression are DW_OP_constu <DWARFAddress Space> DW_OP_swap DW_O...
static LLVM_ABI DIExpression * prependOpcodes(const DIExpression *Expr, SmallVectorImpl< uint64_t > &Ops, bool StackValue=false, bool EntryValue=false)
Prepend DIExpr with the given opcodes and optionally turn it into a stack value.
MDString MDString * Directory
MDString MDString std::optional< ChecksumInfo< MDString * > > MDString * Source
MDString * Filename
static LLVM_ABI std::optional< ChecksumKind > getChecksumKind(StringRef CSKindStr)
MDString MDString std::optional< ChecksumInfo< MDString * > > CS
unsigned StringRef uint64_t uint32_t unsigned DIFlags unsigned int Factor
static LLVM_ABI std::optional< FixedPointKind > getFixedPointKind(StringRef Str)
static LLVM_ABI const char * fixedPointKindString(FixedPointKind)
unsigned StringRef uint64_t uint32_t unsigned Encoding
unsigned StringRef uint64_t uint32_t AlignInBits
LLVM_ABI bool isSigned() const
@ FixedPointBinary
Scale factor 2^Factor.
@ FixedPointDecimal
Scale factor 10^Factor.
@ FixedPointRational
Arbitrary rational scale factor.
unsigned StringRef uint64_t uint32_t unsigned DIFlags unsigned int APInt Numerator
unsigned StringRef uint64_t uint32_t unsigned DIFlags unsigned int APInt APInt Denominator
unsigned StringRef uint64_t SizeInBits
Metadata * getRawLowerBound() const
Metadata * getRawCountNode() const
Metadata * getRawStride() const
LLVM_ABI BoundType getLowerBound() const
Metadata * getRawUpperBound() const
LLVM_ABI BoundType getCount() const
LLVM_ABI BoundType getUpperBound() const
PointerUnion< DIVariable *, DIExpression * > BoundType
LLVM_ABI BoundType getStride() const
A pair of DIGlobalVariable and DIExpression.
Metadata MDString MDString Metadata unsigned Metadata bool bool Metadata Metadata * TemplateParams
Metadata MDString MDString Metadata unsigned Line
Metadata MDString MDString Metadata unsigned Metadata * Type
Metadata MDString MDString Metadata unsigned Metadata bool bool Metadata Metadata uint32_t Metadata * Annotations
Metadata MDString * Name
Metadata MDString MDString Metadata unsigned Metadata bool bool Metadata * StaticDataMemberDeclaration
Metadata MDString MDString * LinkageName
Metadata MDString MDString Metadata * File
Metadata MDString MDString Metadata unsigned Metadata bool bool Metadata Metadata uint32_t AlignInBits
An imported module (C++ using directive or similar).
unsigned Metadata Metadata * Entity
unsigned Metadata Metadata Metadata unsigned Line
unsigned Metadata Metadata Metadata unsigned MDString * Name
unsigned Metadata Metadata Metadata * File
unsigned Metadata * Scope
Metadata MDString Metadata unsigned unsigned bool std::optional< unsigned > CoroSuspendIdx
Metadata MDString Metadata unsigned unsigned Column
Metadata MDString Metadata unsigned unsigned bool IsArtificial
Metadata MDString Metadata unsigned Line
Metadata MDString * Name
Metadata MDString Metadata * File
LLVM_ABI DILexicalBlockBase(LLVMContext &C, unsigned ID, StorageType Storage, ArrayRef< Metadata * > Ops)
Metadata Metadata unsigned Discriminator
Debug lexical block.
Metadata Metadata unsigned unsigned Column
Metadata Metadata * File
A scope for locals.
LLVM_ABI DISubprogram * getSubprogram() const
Get the subprogram for this scope.
LLVM_ABI DILocalScope * getNonLexicalBlockFileScope() const
Get the first non DILexicalBlockFile scope of this scope.
DILocalScope(LLVMContext &C, unsigned ID, StorageType Storage, unsigned Tag, ArrayRef< Metadata * > Ops)
static LLVM_ABI DILocalScope * cloneScopeForSubprogram(DILocalScope &RootScope, DISubprogram &NewSP, LLVMContext &Ctx, DenseMap< const MDNode *, MDNode * > &Cache)
Traverses the scope chain rooted at RootScope until it hits a Subprogram, recreating the chain with "...
Metadata MDString Metadata unsigned Metadata * Type
Metadata MDString Metadata * File
DILocalScope * getScope() const
Get the local scope for this variable.
Metadata MDString * Name
Metadata MDString Metadata unsigned Line
Metadata MDString Metadata unsigned Metadata unsigned DIFlags uint32_t Metadata * Annotations
Metadata MDString Metadata unsigned Metadata unsigned DIFlags uint32_t AlignInBits
unsigned unsigned DILocalScope * Scope
static LLVM_ABI DILocation * getMergedLocations(ArrayRef< DILocation * > Locs)
Try to combine the vector of locations passed as input in a single one.
static LLVM_ABI std::optional< unsigned > encodeDiscriminator(unsigned BD, unsigned DF, unsigned CI)
Raw encoding of the discriminator.
unsigned unsigned DILocalScope DILocation bool ImplicitCode
static LLVM_ABI void decodeDiscriminator(unsigned D, unsigned &BD, unsigned &DF, unsigned &CI)
Raw decoder for values in an encoded discriminator D.
static LLVM_ABI DILocation * getMergedLocation(DILocation *LocA, DILocation *LocB)
Attempts to merge LocA and LocB into a single location; see DebugLoc::getMergedLocation for more deta...
unsigned unsigned Column
unsigned unsigned DILocalScope DILocation * InlinedAt
unsigned unsigned Metadata * File
unsigned unsigned Line
unsigned unsigned Metadata Metadata * Elements
unsigned unsigned MDString MDString * Value
unsigned unsigned MDString * Name
unsigned unsigned Line
Represents a module in the programming language, for example, a Clang module, or a Fortran module.
Metadata Metadata * Scope
Metadata Metadata MDString * Name
Metadata Metadata MDString MDString MDString MDString * APINotesFile
Metadata Metadata MDString MDString MDString * IncludePath
Metadata Metadata MDString MDString * ConfigurationMacros
Metadata Metadata MDString MDString MDString MDString unsigned LineNo
Debug lexical block.
Metadata MDString bool ExportSymbols
Metadata MDString * Name
Tagged DWARF-like metadata node.
LLVM_ABI dwarf::Tag getTag() const
static LLVM_ABI DIFlags getFlag(StringRef Flag)
static LLVM_ABI DIFlags splitFlags(DIFlags Flags, SmallVectorImpl< DIFlags > &SplitFlags)
Split up a flags bitfield.
DINode(LLVMContext &C, unsigned ID, StorageType Storage, unsigned Tag, ArrayRef< Metadata * > Ops1, ArrayRef< Metadata * > Ops2={})
static LLVM_ABI StringRef getFlagString(DIFlags Flag)
DIFlags
Debug info flags.
MDString Metadata * File
MDString Metadata unsigned MDString MDString unsigned Metadata * Type
MDString Metadata unsigned MDString * GetterName
MDString Metadata unsigned MDString MDString * SetterName
Base class for scope-like contexts.
LLVM_ABI StringRef getName() const
DIFile * getFile() const
LLVM_ABI DIScope * getScope() const
DIScope(LLVMContext &C, unsigned ID, StorageType Storage, unsigned Tag, ArrayRef< Metadata * > Ops)
Wrapper structure that holds a language name and its version.
String type, Fortran CHARACTER(n)
unsigned MDString * Name
unsigned MDString Metadata Metadata Metadata uint64_t SizeInBits
unsigned MDString Metadata Metadata Metadata uint64_t uint32_t AlignInBits
unsigned MDString Metadata Metadata Metadata * StringLocationExp
unsigned MDString Metadata Metadata * StringLengthExp
unsigned MDString Metadata Metadata Metadata uint64_t uint32_t unsigned Encoding
unsigned MDString Metadata * StringLength
Subprogram description. Uses SubclassData1.
Metadata MDString MDString Metadata unsigned Metadata unsigned Metadata unsigned int DIFlags DISPFlags Metadata Metadata Metadata Metadata Metadata Metadata MDString bool UsesKeyInstructions
Metadata MDString MDString Metadata unsigned Metadata unsigned ScopeLine
Metadata MDString MDString Metadata unsigned Metadata unsigned Metadata unsigned int DIFlags DISPFlags SPFlags
Metadata MDString MDString Metadata unsigned Metadata unsigned Metadata * ContainingType
Metadata MDString MDString Metadata unsigned Metadata unsigned Metadata unsigned int DIFlags DISPFlags Metadata Metadata * TemplateParams
Metadata MDString MDString Metadata unsigned Metadata unsigned Metadata unsigned int DIFlags DISPFlags Metadata Metadata Metadata * Declaration
Metadata MDString MDString Metadata unsigned Metadata unsigned Metadata unsigned int DIFlags DISPFlags Metadata Metadata Metadata Metadata Metadata Metadata MDString * TargetFuncName
static LLVM_ABI DISPFlags toSPFlags(bool IsLocalToUnit, bool IsDefinition, bool IsOptimized, unsigned Virtuality=SPFlagNonvirtual, bool IsMainSubprogram=false)
static const DIScope * getRawRetainedNodeScope(const MDNode *N)
Metadata MDString * Name
Metadata MDString MDString Metadata unsigned Metadata unsigned Metadata unsigned int DIFlags DISPFlags Metadata Metadata Metadata Metadata Metadata * ThrownTypes
static LLVM_ABI DISPFlags getFlag(StringRef Flag)
Metadata MDString MDString Metadata * File
Metadata MDString MDString Metadata unsigned Metadata unsigned Metadata unsigned VirtualIndex
static LLVM_ABI DISPFlags splitFlags(DISPFlags Flags, SmallVectorImpl< DISPFlags > &SplitFlags)
Split up a flags bitfield for easier printing.
static LLVM_ABI StringRef getFlagString(DISPFlags Flag)
Metadata MDString MDString Metadata unsigned Metadata unsigned Metadata unsigned int DIFlags DISPFlags Metadata Metadata Metadata Metadata * RetainedNodes
DISPFlags
Debug info subprogram flags.
Metadata MDString MDString Metadata unsigned Metadata unsigned Metadata unsigned int ThisAdjustment
LLVM_ABI bool describes(const Function *F) const
Check if this subprogram describes the given function.
StringRef DIFile unsigned Line
StringRef DIFile unsigned DIScope uint64_t uint32_t DIFlags DIType Metadata Metadata * UpperBound
StringRef DIFile unsigned DIScope uint64_t uint32_t DIFlags DIType Metadata Metadata Metadata Metadata * Bias
StringRef DIFile unsigned DIScope uint64_t uint32_t DIFlags DIType Metadata Metadata Metadata * Stride
StringRef DIFile unsigned DIScope uint64_t SizeInBits
StringRef DIFile * File
PointerUnion< ConstantInt *, DIVariable *, DIExpression *, DIDerivedType * > BoundType
StringRef DIFile unsigned DIScope uint64_t uint32_t AlignInBits
StringRef DIFile unsigned DIScope uint64_t uint32_t DIFlags DIType Metadata * LowerBound
StringRef DIFile unsigned DIScope uint64_t uint32_t DIFlags Flags
Array subrange.
LLVM_ABI BoundType getUpperBound() const
LLVM_ABI BoundType getStride() const
LLVM_ABI BoundType getLowerBound() const
LLVM_ABI BoundType getCount() const
Type array for a subprogram.
DIFlags uint8_t Metadata * TypeArray
Base class for template parameters.
unsigned MDString Metadata * Type
unsigned MDString Metadata bool Metadata * Value
Base class for types.
bool isBitField() const
bool isStaticMember() const
DIType(LLVMContext &C, unsigned ID, StorageType Storage, unsigned Tag, unsigned Line, uint32_t AlignInBits, uint32_t NumExtraInhabitants, DIFlags Flags, ArrayRef< Metadata * > Ops)
LLVM_ABI uint32_t getAlignInBits() const
Base class for variables.
std::optional< DIBasicType::Signedness > getSignedness() const
Return the signedness of this variable's type, or std::nullopt if this type is neither signed nor uns...
LLVM_ABI std::optional< uint64_t > getSizeInBits() const
Determines the size of the variable's type.
Metadata * getRawType() const
LLVM_ABI DIVariable(LLVMContext &C, unsigned ID, StorageType Storage, signed Line, ArrayRef< Metadata * > Ops, uint32_t AlignInBits=0)
A parsed version of the target data layout string in and methods for querying it.
Definition DataLayout.h:63
Record of a variable value-assignment, aka a non instruction representation of the dbg....
LLVM_ABI DebugVariableAggregate(const DbgVariableRecord *DVR)
const DILocation * getInlinedAt() const
const DILocalVariable * getVariable() const
LLVM_ABI DebugVariable(const DbgVariableRecord *DVR)
iterator find(const_arg_type_t< KeyT > Val)
Definition DenseMap.h:178
std::pair< iterator, bool > try_emplace(KeyT &&Key, Ts &&...Args)
Definition DenseMap.h:256
iterator end()
Definition DenseMap.h:81
Class representing an expression and its matching format.
Generic tagged DWARF-like metadata node.
LLVM_ABI dwarf::Tag getTag() const
unsigned MDString * Header
unsigned MDString ArrayRef< Metadata * > DwarfOps
DenseSet< DIArgList *, DIArgListInfo > DIArgLists
This is an important class for using LLVM in a threaded context.
Definition LLVMContext.h:68
LLVMContextImpl *const pImpl
Definition LLVMContext.h:70
Metadata node.
Definition Metadata.h:1078
friend class DIAssignID
Definition Metadata.h:1081
static MDTuple * getDistinct(LLVMContext &Context, ArrayRef< Metadata * > MDs)
Definition Metadata.h:1577
static MDTuple * get(LLVMContext &Context, ArrayRef< Metadata * > MDs)
Definition Metadata.h:1569
LLVM_ABI TempMDNode clone() const
Create a (temporary) clone of this.
Definition Metadata.cpp:669
static T * storeImpl(T *N, StorageType Storage, StoreT &Store)
LLVMContext & getContext() const
Definition Metadata.h:1242
static std::enable_if_t< std::is_base_of< MDNode, T >::value, T * > replaceWithUniqued(std::unique_ptr< T, TempMDNodeDeleter > N)
Replace a temporary node with a uniqued one.
Definition Metadata.h:1317
A single uniqued string.
Definition Metadata.h:721
LLVM_ABI StringRef getString() const
Definition Metadata.cpp:618
static void untrack(Metadata *&MD)
Stop tracking a reference to metadata.
Definition Metadata.h:357
static bool track(Metadata *&MD)
Track the reference to metadata.
Definition Metadata.h:323
Root of the metadata hierarchy.
Definition Metadata.h:64
StorageType
Active type of storage.
Definition Metadata.h:72
unsigned short SubclassData16
Definition Metadata.h:78
unsigned SubclassData32
Definition Metadata.h:79
unsigned char Storage
Storage flag for non-uniqued, otherwise unowned, metadata.
Definition Metadata.h:75
unsigned char SubclassData1
Definition Metadata.h:77
Metadata(unsigned ID, StorageType Storage)
Definition Metadata.h:88
static LLVM_ABI PoisonValue * get(Type *T)
Static factory methods - Return an 'poison' object of the specified type.
LLVM_ABI void replaceAllUsesWith(Metadata *MD)
Replace all uses of this with MD.
Definition Metadata.cpp:369
LLVMContext & getContext() const
Definition Metadata.h:408
LLVM_ABI void resolveAllUses(bool ResolveUsers=true)
Resolve all uses of this.
Definition Metadata.cpp:422
Implements a dense probed hash-table based set with some number of buckets stored inline.
Definition DenseSet.h:291
SmallPtrSet - This class implements a set which is optimized for holding SmallSize or less elements.
A SetVector that performs no allocations if smaller than a certain size.
Definition SetVector.h:339
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
void reserve(size_type N)
void append(ItTy in_start, ItTy in_end)
Add the specified range to the end of the SmallVector.
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
StringRef - Represent a constant reference to a string, i.e.
Definition StringRef.h:55
constexpr bool empty() const
empty - Check if the string is empty.
Definition StringRef.h:143
A switch()-like statement whose cases are string literals.
StringSwitch & Case(StringLiteral S, T Value)
The instances of the Type class are immutable: once they are created, they are never changed.
Definition Type.h:45
static LLVM_ABI IntegerType * getInt64Ty(LLVMContext &C)
Definition Type.cpp:297
Value wrapper in the Metadata hierarchy.
Definition Metadata.h:458
static LLVM_ABI ValueAsMetadata * get(Value *V)
Definition Metadata.cpp:503
LLVM Value Representation.
Definition Value.h:75
LLVM_ABI std::optional< int64_t > getPointerOffsetFrom(const Value *Other, const DataLayout &DL) const
If this ptr is provably equal to Other plus a constant offset, return that offset in bytes.
Definition Value.cpp:1052
std::pair< iterator, bool > insert(const ValueT &V)
Definition DenseSet.h:202
bool contains(const_arg_type_t< ValueT > V) const
Check if the set contains the given element.
Definition DenseSet.h:175
Changed
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
unsigned ID
LLVM IR allows to use arbitrary numbers as calling convention identifiers.
Definition CallingConv.h:24
@ C
The default llvm calling convention, compatible with C.
Definition CallingConv.h:34
initializer< Ty > init(const Ty &Val)
Calculates the starting offsets for various sections within the .debug_names section.
Definition Dwarf.h:35
@ DW_OP_LLVM_entry_value
Only used in LLVM metadata.
Definition Dwarf.h:147
@ DW_OP_LLVM_implicit_pointer
Only used in LLVM metadata.
Definition Dwarf.h:148
@ DW_OP_LLVM_extract_bits_zext
Only used in LLVM metadata.
Definition Dwarf.h:151
@ DW_OP_LLVM_tag_offset
Only used in LLVM metadata.
Definition Dwarf.h:146
@ DW_OP_LLVM_fragment
Only used in LLVM metadata.
Definition Dwarf.h:144
@ DW_OP_LLVM_arg
Only used in LLVM metadata.
Definition Dwarf.h:149
@ DW_OP_LLVM_convert
Only used in LLVM metadata.
Definition Dwarf.h:145
@ DW_OP_LLVM_extract_bits_sext
Only used in LLVM metadata.
Definition Dwarf.h:150
@ DW_VIRTUALITY_max
Definition Dwarf.h:200
@ NameTableKind
Definition LLToken.h:506
This is an optimization pass for GlobalISel generic memory operations.
auto drop_begin(T &&RangeOrContainer, size_t N=1)
Return a range covering RangeOrContainer with the first N elements excluded.
Definition STLExtras.h:316
@ Offset
Definition DWP.cpp:532
static T * getUniqued(DenseSet< T *, InfoT > &Store, const typename InfoT::KeyTy &Key)
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:643
LLVM_ABI cl::opt< bool > EnableFSDiscriminator
void append_range(Container &C, Range &&R)
Wrapper function to append range R to container C.
Definition STLExtras.h:2148
auto cast_or_null(const Y &Val)
Definition Casting.h:714
auto dyn_cast_or_null(const Y &Val)
Definition Casting.h:753
bool any_of(R &&range, UnaryPredicate P)
Provide wrappers to std::any_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1744
auto reverse(ContainerTy &&C)
Definition STLExtras.h:406
bool none_of(R &&Range, UnaryPredicate P)
Provide wrappers to std::none_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1751
FunctionAddr VTableAddr Count
Definition InstrProf.h:139
class LLVM_GSL_OWNER SmallVector
Forward declaration of SmallVector so that calculateSmallVectorDefaultInlinedElements can reference s...
bool isa(const From &Val)
isa<X> - Return true if the parameter to the template is an instance of one of the template type argu...
Definition Casting.h:547
LLVM_ATTRIBUTE_VISIBILITY_DEFAULT AnalysisKey InnerAnalysisManagerProxy< AnalysisManagerT, IRUnitT, ExtraArgTs... >::Key
@ Ref
The access may reference the value stored in memory.
Definition ModRef.h:32
@ First
Helpers to iterate all locations in the MemoryEffectsBase class.
Definition ModRef.h:74
DWARFExpression::Operation Op
ArrayRef(const T &OneElt) -> ArrayRef< T >
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:559
LLVM_ABI cl::opt< bool > PickMergedSourceLocations("pick-merged-source-locations", cl::init(false), cl::Hidden, cl::desc("Preserve line and column number when merging locations."))
Implement std::hash so that hash_code can be used in STL containers.
Definition BitVector.h:867
#define N
SmallPtrSet< DIScope *, 8 > Scopes
void insert(DIScope *S, LineColumn Loc)
DIScope * match(DIScope *S, LineColumn Loc)
void insert(DIScope *S, LineColumn Loc)
DIScope * match(DIScope *S, LineColumn Loc)
SmallMapVector< std::pair< DIFile *, LineColumn >, SmallSetVector< DIScope *, 8 >, 8 > Scopes
A single checksum, represented by a Kind and a Value (a string).
static DbgVariableFragmentInfo intersect(DbgVariableFragmentInfo A, DbgVariableFragmentInfo B)
Returns a zero-sized fragment if A and B don't intersect.
A MapVector that performs no allocations if smaller than a certain size.
Definition MapVector.h:276