LLVM 23.0.0git
Local.cpp
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1//===- Local.cpp - Functions to perform local transformations -------------===//
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 family of functions perform various local transformations to the
10// program.
11//
12//===----------------------------------------------------------------------===//
13
15#include "llvm/ADT/APInt.h"
16#include "llvm/ADT/DenseMap.h"
18#include "llvm/ADT/DenseSet.h"
19#include "llvm/ADT/Hashing.h"
20#include "llvm/ADT/STLExtras.h"
21#include "llvm/ADT/SetVector.h"
24#include "llvm/ADT/Statistic.h"
35#include "llvm/IR/Argument.h"
36#include "llvm/IR/Attributes.h"
37#include "llvm/IR/BasicBlock.h"
38#include "llvm/IR/CFG.h"
39#include "llvm/IR/Constant.h"
41#include "llvm/IR/Constants.h"
42#include "llvm/IR/DIBuilder.h"
43#include "llvm/IR/DataLayout.h"
44#include "llvm/IR/DebugInfo.h"
46#include "llvm/IR/DebugLoc.h"
48#include "llvm/IR/Dominators.h"
50#include "llvm/IR/Function.h"
52#include "llvm/IR/IRBuilder.h"
53#include "llvm/IR/InstrTypes.h"
54#include "llvm/IR/Instruction.h"
57#include "llvm/IR/Intrinsics.h"
58#include "llvm/IR/IntrinsicsWebAssembly.h"
59#include "llvm/IR/LLVMContext.h"
60#include "llvm/IR/MDBuilder.h"
62#include "llvm/IR/Metadata.h"
63#include "llvm/IR/Module.h"
66#include "llvm/IR/Type.h"
67#include "llvm/IR/Use.h"
68#include "llvm/IR/User.h"
69#include "llvm/IR/Value.h"
70#include "llvm/IR/ValueHandle.h"
74#include "llvm/Support/Debug.h"
80#include <algorithm>
81#include <cassert>
82#include <cstdint>
83#include <iterator>
84#include <map>
85#include <optional>
86#include <utility>
87
88using namespace llvm;
89using namespace llvm::PatternMatch;
90
91#define DEBUG_TYPE "local"
92
93STATISTIC(NumRemoved, "Number of unreachable basic blocks removed");
94STATISTIC(NumPHICSEs, "Number of PHI's that got CSE'd");
95
97 "phicse-debug-hash",
98#ifdef EXPENSIVE_CHECKS
99 cl::init(true),
100#else
101 cl::init(false),
102#endif
104 cl::desc("Perform extra assertion checking to verify that PHINodes's hash "
105 "function is well-behaved w.r.t. its isEqual predicate"));
106
108 "phicse-num-phi-smallsize", cl::init(32), cl::Hidden,
109 cl::desc(
110 "When the basic block contains not more than this number of PHI nodes, "
111 "perform a (faster!) exhaustive search instead of set-driven one."));
112
114 "max-phi-entries-increase-after-removing-empty-block", cl::init(1000),
116 cl::desc("Stop removing an empty block if removing it will introduce more "
117 "than this number of phi entries in its successor"));
118
119// Max recursion depth for collectBitParts used when detecting bswap and
120// bitreverse idioms.
121static const unsigned BitPartRecursionMaxDepth = 48;
122
123//===----------------------------------------------------------------------===//
124// Local constant propagation.
125//
126
127/// ConstantFoldTerminator - If a terminator instruction is predicated on a
128/// constant value, convert it into an unconditional branch to the constant
129/// destination. This is a nontrivial operation because the successors of this
130/// basic block must have their PHI nodes updated.
131/// Also calls RecursivelyDeleteTriviallyDeadInstructions() on any branch/switch
132/// conditions and indirectbr addresses this might make dead if
133/// DeleteDeadConditions is true.
134bool llvm::ConstantFoldTerminator(BasicBlock *BB, bool DeleteDeadConditions,
135 const TargetLibraryInfo *TLI,
136 DomTreeUpdater *DTU) {
137 Instruction *T = BB->getTerminator();
138 IRBuilder<> Builder(T);
139
140 // Branch - See if we are conditional jumping on constant
141 if (auto *BI = dyn_cast<CondBrInst>(T)) {
142 BasicBlock *Dest1 = BI->getSuccessor(0);
143 BasicBlock *Dest2 = BI->getSuccessor(1);
144
145 if (Dest2 == Dest1) { // Conditional branch to same location?
146 // This branch matches something like this:
147 // br bool %cond, label %Dest, label %Dest
148 // and changes it into: br label %Dest
149
150 // Let the basic block know that we are letting go of one copy of it.
151 assert(BI->getParent() && "Terminator not inserted in block!");
152 Dest1->removePredecessor(BI->getParent());
153
154 // Replace the conditional branch with an unconditional one.
155 UncondBrInst *NewBI = Builder.CreateBr(Dest1);
156
157 // Transfer the metadata to the new branch instruction.
158 NewBI->copyMetadata(*BI, {LLVMContext::MD_loop, LLVMContext::MD_dbg,
159 LLVMContext::MD_annotation});
160
161 Value *Cond = BI->getCondition();
162 BI->eraseFromParent();
163 if (DeleteDeadConditions)
165 return true;
166 }
167
168 if (auto *Cond = dyn_cast<ConstantInt>(BI->getCondition())) {
169 // Are we branching on constant?
170 // YES. Change to unconditional branch...
171 BasicBlock *Destination = Cond->getZExtValue() ? Dest1 : Dest2;
172 BasicBlock *OldDest = Cond->getZExtValue() ? Dest2 : Dest1;
173
174 // Let the basic block know that we are letting go of it. Based on this,
175 // it will adjust it's PHI nodes.
176 OldDest->removePredecessor(BB);
177
178 // Replace the conditional branch with an unconditional one.
179 UncondBrInst *NewBI = Builder.CreateBr(Destination);
180
181 // Transfer the metadata to the new branch instruction.
182 NewBI->copyMetadata(*BI, {LLVMContext::MD_loop, LLVMContext::MD_dbg,
183 LLVMContext::MD_annotation});
184
185 BI->eraseFromParent();
186 if (DTU)
187 DTU->applyUpdates({{DominatorTree::Delete, BB, OldDest}});
188 return true;
189 }
190
191 return false;
192 }
193
194 if (auto *SI = dyn_cast<SwitchInst>(T)) {
195 // If we are switching on a constant, we can convert the switch to an
196 // unconditional branch.
197 auto *CI = dyn_cast<ConstantInt>(SI->getCondition());
198 BasicBlock *DefaultDest = SI->getDefaultDest();
199 BasicBlock *TheOnlyDest = DefaultDest;
200
201 // If the default is unreachable, ignore it when searching for TheOnlyDest.
202 if (SI->defaultDestUnreachable() && SI->getNumCases() > 0)
203 TheOnlyDest = SI->case_begin()->getCaseSuccessor();
204
205 bool Changed = false;
206
207 // Figure out which case it goes to.
208 for (auto It = SI->case_begin(), End = SI->case_end(); It != End;) {
209 // Found case matching a constant operand?
210 if (It->getCaseValue() == CI) {
211 TheOnlyDest = It->getCaseSuccessor();
212 break;
213 }
214
215 // Check to see if this branch is going to the same place as the default
216 // dest. If so, eliminate it as an explicit compare.
217 if (It->getCaseSuccessor() == DefaultDest) {
219 unsigned NCases = SI->getNumCases();
220 // Fold the case metadata into the default if there will be any branches
221 // left, unless the metadata doesn't match the switch.
222 if (NCases > 1 && MD) {
223 // Collect branch weights into a vector.
225 extractFromBranchWeightMD64(MD, Weights);
226
227 // Merge weight of this case to the default weight.
228 unsigned Idx = It->getCaseIndex();
229
230 // Check for and prevent uint64_t overflow by reducing branch weights.
231 if (Weights[0] > UINT64_MAX - Weights[Idx + 1])
232 fitWeights(Weights);
233
234 Weights[0] += Weights[Idx + 1];
235 // Remove weight for this case.
236 std::swap(Weights[Idx + 1], Weights.back());
237 Weights.pop_back();
239 }
240 // Remove this entry.
241 BasicBlock *ParentBB = SI->getParent();
242 DefaultDest->removePredecessor(ParentBB);
243 It = SI->removeCase(It);
244 End = SI->case_end();
245
246 // Removing this case may have made the condition constant. In that
247 // case, update CI and restart iteration through the cases.
248 if (auto *NewCI = dyn_cast<ConstantInt>(SI->getCondition())) {
249 CI = NewCI;
250 It = SI->case_begin();
251 }
252
253 Changed = true;
254 continue;
255 }
256
257 // Otherwise, check to see if the switch only branches to one destination.
258 // We do this by reseting "TheOnlyDest" to null when we find two non-equal
259 // destinations.
260 if (It->getCaseSuccessor() != TheOnlyDest)
261 TheOnlyDest = nullptr;
262
263 // Increment this iterator as we haven't removed the case.
264 ++It;
265 }
266
267 if (CI && !TheOnlyDest) {
268 // Branching on a constant, but not any of the cases, go to the default
269 // successor.
270 TheOnlyDest = SI->getDefaultDest();
271 }
272
273 // If we found a single destination that we can fold the switch into, do so
274 // now.
275 if (TheOnlyDest) {
276 // Insert the new branch.
277 Builder.CreateBr(TheOnlyDest);
278 BasicBlock *BB = SI->getParent();
279
280 SmallPtrSet<BasicBlock *, 8> RemovedSuccessors;
281
282 // Remove entries from PHI nodes which we no longer branch to...
283 BasicBlock *SuccToKeep = TheOnlyDest;
284 for (BasicBlock *Succ : successors(SI)) {
285 if (DTU && Succ != TheOnlyDest)
286 RemovedSuccessors.insert(Succ);
287 // Found case matching a constant operand?
288 if (Succ == SuccToKeep) {
289 SuccToKeep = nullptr; // Don't modify the first branch to TheOnlyDest
290 } else {
291 Succ->removePredecessor(BB);
292 }
293 }
294
295 // Delete the old switch.
296 Value *Cond = SI->getCondition();
297 SI->eraseFromParent();
298 if (DeleteDeadConditions)
300 if (DTU) {
301 std::vector<DominatorTree::UpdateType> Updates;
302 Updates.reserve(RemovedSuccessors.size());
303 for (auto *RemovedSuccessor : RemovedSuccessors)
304 Updates.push_back({DominatorTree::Delete, BB, RemovedSuccessor});
305 DTU->applyUpdates(Updates);
306 }
307 return true;
308 }
309
310 if (SI->getNumCases() == 1) {
311 // Otherwise, we can fold this switch into a conditional branch
312 // instruction if it has only one non-default destination.
313 auto FirstCase = *SI->case_begin();
314 Value *Cond = Builder.CreateICmpEQ(SI->getCondition(),
315 FirstCase.getCaseValue(), "cond");
316
317 // Insert the new branch.
318 CondBrInst *NewBr = Builder.CreateCondBr(
319 Cond, FirstCase.getCaseSuccessor(), SI->getDefaultDest());
320 SmallVector<uint32_t> Weights;
321 if (extractBranchWeights(*SI, Weights) && Weights.size() == 2) {
322 uint32_t DefWeight = Weights[0];
323 uint32_t CaseWeight = Weights[1];
324 // The TrueWeight should be the weight for the single case of SI.
325 NewBr->setMetadata(LLVMContext::MD_prof,
326 MDBuilder(BB->getContext())
327 .createBranchWeights(CaseWeight, DefWeight));
328 }
329
330 // Update make.implicit metadata to the newly-created conditional branch.
331 MDNode *MakeImplicitMD = SI->getMetadata(LLVMContext::MD_make_implicit);
332 if (MakeImplicitMD)
333 NewBr->setMetadata(LLVMContext::MD_make_implicit, MakeImplicitMD);
334
335 // Delete the old switch.
336 SI->eraseFromParent();
337 return true;
338 }
339 return Changed;
340 }
341
342 if (auto *IBI = dyn_cast<IndirectBrInst>(T)) {
343 // indirectbr blockaddress(@F, @BB) -> br label @BB
344 if (auto *BA =
345 dyn_cast<BlockAddress>(IBI->getAddress()->stripPointerCasts())) {
346 BasicBlock *TheOnlyDest = BA->getBasicBlock();
347 SmallPtrSet<BasicBlock *, 8> RemovedSuccessors;
348
349 // Insert the new branch.
350 Builder.CreateBr(TheOnlyDest);
351
352 BasicBlock *SuccToKeep = TheOnlyDest;
353 for (unsigned i = 0, e = IBI->getNumDestinations(); i != e; ++i) {
354 BasicBlock *DestBB = IBI->getDestination(i);
355 if (DTU && DestBB != TheOnlyDest)
356 RemovedSuccessors.insert(DestBB);
357 if (IBI->getDestination(i) == SuccToKeep) {
358 SuccToKeep = nullptr;
359 } else {
360 DestBB->removePredecessor(BB);
361 }
362 }
363 Value *Address = IBI->getAddress();
364 IBI->eraseFromParent();
365 if (DeleteDeadConditions)
366 // Delete pointer cast instructions.
368
369 // Also zap the blockaddress constant if there are no users remaining,
370 // otherwise the destination is still marked as having its address taken.
371 if (BA->use_empty())
372 BA->destroyConstant();
373
374 // If we didn't find our destination in the IBI successor list, then we
375 // have undefined behavior. Replace the unconditional branch with an
376 // 'unreachable' instruction.
377 if (SuccToKeep) {
379 new UnreachableInst(BB->getContext(), BB);
380 }
381
382 if (DTU) {
383 std::vector<DominatorTree::UpdateType> Updates;
384 Updates.reserve(RemovedSuccessors.size());
385 for (auto *RemovedSuccessor : RemovedSuccessors)
386 Updates.push_back({DominatorTree::Delete, BB, RemovedSuccessor});
387 DTU->applyUpdates(Updates);
388 }
389 return true;
390 }
391 }
392
393 return false;
394}
395
396//===----------------------------------------------------------------------===//
397// Local dead code elimination.
398//
399
400/// isInstructionTriviallyDead - Return true if the result produced by the
401/// instruction is not used, and the instruction has no side effects.
402///
404 const TargetLibraryInfo *TLI) {
405 if (!I->use_empty())
406 return false;
408}
409
411 Instruction *I, const TargetLibraryInfo *TLI) {
412 // Instructions that are "markers" and have implied meaning on code around
413 // them (without explicit uses), are not dead on unused paths.
415 if (II->getIntrinsicID() == Intrinsic::stacksave ||
416 II->getIntrinsicID() == Intrinsic::launder_invariant_group ||
417 II->isLifetimeStartOrEnd())
418 return false;
420}
421
423 const TargetLibraryInfo *TLI) {
424 if (I->isTerminator())
425 return false;
426
427 // We don't want the landingpad-like instructions removed by anything this
428 // general.
429 if (I->isEHPad())
430 return false;
431
432 if (const DbgLabelInst *DLI = dyn_cast<DbgLabelInst>(I)) {
433 if (DLI->getLabel())
434 return false;
435 return true;
436 }
437
438 if (auto *CB = dyn_cast<CallBase>(I))
439 if (isRemovableAlloc(CB, TLI))
440 return true;
441
442 if (!I->willReturn()) {
444 if (!II)
445 return false;
446
447 switch (II->getIntrinsicID()) {
448 case Intrinsic::experimental_guard: {
449 // Guards on true are operationally no-ops. In the future we can
450 // consider more sophisticated tradeoffs for guards considering potential
451 // for check widening, but for now we keep things simple.
452 auto *Cond = dyn_cast<ConstantInt>(II->getArgOperand(0));
453 return Cond && Cond->isOne();
454 }
455 // TODO: These intrinsics are not safe to remove, because this may remove
456 // a well-defined trap.
457 case Intrinsic::wasm_trunc_signed:
458 case Intrinsic::wasm_trunc_unsigned:
459 case Intrinsic::ptrauth_auth:
460 case Intrinsic::ptrauth_resign:
461 case Intrinsic::ptrauth_resign_load_relative:
462 return true;
463 default:
464 return false;
465 }
466 }
467
468 if (!I->mayHaveSideEffects())
469 return true;
470
471 // Special case intrinsics that "may have side effects" but can be deleted
472 // when dead.
474 // Safe to delete llvm.stacksave and launder.invariant.group if dead.
475 if (II->getIntrinsicID() == Intrinsic::stacksave ||
476 II->getIntrinsicID() == Intrinsic::launder_invariant_group)
477 return true;
478
479 // Intrinsics declare sideeffects to prevent them from moving, but they are
480 // nops without users.
481 if (II->getIntrinsicID() == Intrinsic::allow_runtime_check ||
482 II->getIntrinsicID() == Intrinsic::allow_ubsan_check)
483 return true;
484
485 if (II->isLifetimeStartOrEnd()) {
486 auto *Arg = II->getArgOperand(0);
487 if (isa<PoisonValue>(Arg))
488 return true;
489
490 // If the only uses of the alloca are lifetime intrinsics, then the
491 // intrinsics are dead.
492 return llvm::all_of(Arg->uses(), [](Use &Use) {
493 return isa<LifetimeIntrinsic>(Use.getUser());
494 });
495 }
496
497 // Assumptions are dead if their condition is trivially true.
498 if (II->getIntrinsicID() == Intrinsic::assume &&
500 if (ConstantInt *Cond = dyn_cast<ConstantInt>(II->getArgOperand(0)))
501 return !Cond->isZero();
502
503 return false;
504 }
505
506 if (auto *FPI = dyn_cast<ConstrainedFPIntrinsic>(I)) {
507 std::optional<fp::ExceptionBehavior> ExBehavior =
508 FPI->getExceptionBehavior();
509 return *ExBehavior != fp::ebStrict;
510 }
511 }
512
513 if (auto *Call = dyn_cast<CallBase>(I)) {
514 if (Value *FreedOp = getFreedOperand(Call, TLI))
515 if (Constant *C = dyn_cast<Constant>(FreedOp))
516 return C->isNullValue() || isa<UndefValue>(C);
517 if (isMathLibCallNoop(Call, TLI))
518 return true;
519 }
520
521 // Non-volatile atomic loads from constants can be removed.
522 if (auto *LI = dyn_cast<LoadInst>(I))
523 if (auto *GV = dyn_cast<GlobalVariable>(
524 LI->getPointerOperand()->stripPointerCasts()))
525 if (!LI->isVolatile() && GV->isConstant())
526 return true;
527
528 return false;
529}
530
531/// RecursivelyDeleteTriviallyDeadInstructions - If the specified value is a
532/// trivially dead instruction, delete it. If that makes any of its operands
533/// trivially dead, delete them too, recursively. Return true if any
534/// instructions were deleted.
536 Value *V, const TargetLibraryInfo *TLI, MemorySSAUpdater *MSSAU,
537 std::function<void(Value *)> AboutToDeleteCallback) {
539 if (!I || !isInstructionTriviallyDead(I, TLI))
540 return false;
541
543 DeadInsts.push_back(I);
544 RecursivelyDeleteTriviallyDeadInstructions(DeadInsts, TLI, MSSAU,
545 AboutToDeleteCallback);
546
547 return true;
548}
549
552 MemorySSAUpdater *MSSAU,
553 std::function<void(Value *)> AboutToDeleteCallback) {
554 unsigned S = 0, E = DeadInsts.size(), Alive = 0;
555 for (; S != E; ++S) {
556 auto *I = dyn_cast_or_null<Instruction>(DeadInsts[S]);
557 if (!I || !isInstructionTriviallyDead(I)) {
558 DeadInsts[S] = nullptr;
559 ++Alive;
560 }
561 }
562 if (Alive == E)
563 return false;
564 RecursivelyDeleteTriviallyDeadInstructions(DeadInsts, TLI, MSSAU,
565 AboutToDeleteCallback);
566 return true;
567}
568
571 MemorySSAUpdater *MSSAU,
572 std::function<void(Value *)> AboutToDeleteCallback) {
573 // Process the dead instruction list until empty.
574 while (!DeadInsts.empty()) {
575 Value *V = DeadInsts.pop_back_val();
577 if (!I)
578 continue;
580 "Live instruction found in dead worklist!");
581 assert(I->use_empty() && "Instructions with uses are not dead.");
582
583 // Don't lose the debug info while deleting the instructions.
585
586 if (AboutToDeleteCallback)
587 AboutToDeleteCallback(I);
588
589 // Null out all of the instruction's operands to see if any operand becomes
590 // dead as we go.
591 for (Use &OpU : I->operands()) {
592 Value *OpV = OpU.get();
593 OpU.set(nullptr);
594
595 if (!OpV->use_empty())
596 continue;
597
598 // If the operand is an instruction that became dead as we nulled out the
599 // operand, and if it is 'trivially' dead, delete it in a future loop
600 // iteration.
601 if (Instruction *OpI = dyn_cast<Instruction>(OpV))
602 if (isInstructionTriviallyDead(OpI, TLI))
603 DeadInsts.push_back(OpI);
604 }
605 if (MSSAU)
606 MSSAU->removeMemoryAccess(I);
607
608 I->eraseFromParent();
609 }
610}
611
614 findDbgUsers(I, DPUsers);
615 for (auto *DVR : DPUsers)
616 DVR->setKillLocation();
617 return !DPUsers.empty();
618}
619
620/// areAllUsesEqual - Check whether the uses of a value are all the same.
621/// This is similar to Instruction::hasOneUse() except this will also return
622/// true when there are no uses or multiple uses that all refer to the same
623/// value.
625 Value::user_iterator UI = I->user_begin();
626 Value::user_iterator UE = I->user_end();
627 if (UI == UE)
628 return true;
629
630 User *TheUse = *UI;
631 for (++UI; UI != UE; ++UI) {
632 if (*UI != TheUse)
633 return false;
634 }
635 return true;
636}
637
638/// RecursivelyDeleteDeadPHINode - If the specified value is an effectively
639/// dead PHI node, due to being a def-use chain of single-use nodes that
640/// either forms a cycle or is terminated by a trivially dead instruction,
641/// delete it. If that makes any of its operands trivially dead, delete them
642/// too, recursively. Return true if a change was made.
644 const TargetLibraryInfo *TLI,
645 llvm::MemorySSAUpdater *MSSAU) {
647 for (Instruction *I = PN; areAllUsesEqual(I) && !I->mayHaveSideEffects();
648 I = cast<Instruction>(*I->user_begin())) {
649 if (I->use_empty())
651
652 // If we find an instruction more than once, we're on a cycle that
653 // won't prove fruitful.
654 if (!Visited.insert(I).second) {
655 // Break the cycle and delete the instruction and its operands.
656 I->replaceAllUsesWith(PoisonValue::get(I->getType()));
658 return true;
659 }
660 }
661 return false;
662}
663
664static bool
667 const DataLayout &DL,
668 const TargetLibraryInfo *TLI) {
669 if (isInstructionTriviallyDead(I, TLI)) {
671
672 // Null out all of the instruction's operands to see if any operand becomes
673 // dead as we go.
674 for (unsigned i = 0, e = I->getNumOperands(); i != e; ++i) {
675 Value *OpV = I->getOperand(i);
676 I->setOperand(i, nullptr);
677
678 if (!OpV->use_empty() || I == OpV)
679 continue;
680
681 // If the operand is an instruction that became dead as we nulled out the
682 // operand, and if it is 'trivially' dead, delete it in a future loop
683 // iteration.
684 if (Instruction *OpI = dyn_cast<Instruction>(OpV))
685 if (isInstructionTriviallyDead(OpI, TLI))
686 WorkList.insert(OpI);
687 }
688
689 I->eraseFromParent();
690
691 return true;
692 }
693
694 if (Value *SimpleV = simplifyInstruction(I, DL)) {
695 // Add the users to the worklist. CAREFUL: an instruction can use itself,
696 // in the case of a phi node.
697 for (User *U : I->users()) {
698 if (U != I) {
699 WorkList.insert(cast<Instruction>(U));
700 }
701 }
702
703 // Replace the instruction with its simplified value.
704 bool Changed = false;
705 if (!I->use_empty()) {
706 I->replaceAllUsesWith(SimpleV);
707 Changed = true;
708 }
709 if (isInstructionTriviallyDead(I, TLI)) {
710 I->eraseFromParent();
711 Changed = true;
712 }
713 return Changed;
714 }
715 return false;
716}
717
718/// SimplifyInstructionsInBlock - Scan the specified basic block and try to
719/// simplify any instructions in it and recursively delete dead instructions.
720///
721/// This returns true if it changed the code, note that it can delete
722/// instructions in other blocks as well in this block.
724 const TargetLibraryInfo *TLI) {
725 bool MadeChange = false;
726 const DataLayout &DL = BB->getDataLayout();
727
728#ifndef NDEBUG
729 // In debug builds, ensure that the terminator of the block is never replaced
730 // or deleted by these simplifications. The idea of simplification is that it
731 // cannot introduce new instructions, and there is no way to replace the
732 // terminator of a block without introducing a new instruction.
733 AssertingVH<Instruction> TerminatorVH(&BB->back());
734#endif
735
737 // Iterate over the original function, only adding insts to the worklist
738 // if they actually need to be revisited. This avoids having to pre-init
739 // the worklist with the entire function's worth of instructions.
740 for (BasicBlock::iterator BI = BB->begin(), E = std::prev(BB->end());
741 BI != E;) {
742 assert(!BI->isTerminator());
743 Instruction *I = &*BI;
744 ++BI;
745
746 // We're visiting this instruction now, so make sure it's not in the
747 // worklist from an earlier visit.
748 if (!WorkList.count(I))
749 MadeChange |= simplifyAndDCEInstruction(I, WorkList, DL, TLI);
750 }
751
752 while (!WorkList.empty()) {
753 Instruction *I = WorkList.pop_back_val();
754 MadeChange |= simplifyAndDCEInstruction(I, WorkList, DL, TLI);
755 }
756 return MadeChange;
757}
758
759//===----------------------------------------------------------------------===//
760// Control Flow Graph Restructuring.
761//
762
764 DomTreeUpdater *DTU) {
765
766 // If BB has single-entry PHI nodes, fold them.
767 while (PHINode *PN = dyn_cast<PHINode>(DestBB->begin())) {
768 Value *NewVal = PN->getIncomingValue(0);
769 // Replace self referencing PHI with poison, it must be dead.
770 if (NewVal == PN) NewVal = PoisonValue::get(PN->getType());
771 PN->replaceAllUsesWith(NewVal);
772 PN->eraseFromParent();
773 }
774
775 BasicBlock *PredBB = DestBB->getSinglePredecessor();
776 assert(PredBB && "Block doesn't have a single predecessor!");
777
778 bool ReplaceEntryBB = PredBB->isEntryBlock();
779
780 // DTU updates: Collect all the edges that enter
781 // PredBB. These dominator edges will be redirected to DestBB.
783
784 if (DTU) {
785 // To avoid processing the same predecessor more than once.
787 Updates.reserve(Updates.size() + 2 * pred_size(PredBB) + 1);
788 for (BasicBlock *PredOfPredBB : predecessors(PredBB))
789 // This predecessor of PredBB may already have DestBB as a successor.
790 if (PredOfPredBB != PredBB)
791 if (SeenPreds.insert(PredOfPredBB).second)
792 Updates.push_back({DominatorTree::Insert, PredOfPredBB, DestBB});
793 SeenPreds.clear();
794 for (BasicBlock *PredOfPredBB : predecessors(PredBB))
795 if (SeenPreds.insert(PredOfPredBB).second)
796 Updates.push_back({DominatorTree::Delete, PredOfPredBB, PredBB});
797 Updates.push_back({DominatorTree::Delete, PredBB, DestBB});
798 }
799
800 // Zap anything that took the address of DestBB. Not doing this will give the
801 // address an invalid value.
802 if (DestBB->hasAddressTaken()) {
803 BlockAddress *BA = BlockAddress::get(DestBB);
804 Constant *Replacement =
805 ConstantInt::get(Type::getInt32Ty(BA->getContext()), 1);
807 BA->getType()));
808 BA->destroyConstant();
809 }
810
811 // Anything that branched to PredBB now branches to DestBB.
812 PredBB->replaceAllUsesWith(DestBB);
813
814 // Splice all the instructions from PredBB to DestBB.
815 PredBB->getTerminator()->eraseFromParent();
816 DestBB->splice(DestBB->begin(), PredBB);
817 new UnreachableInst(PredBB->getContext(), PredBB);
818
819 // If the PredBB is the entry block of the function, move DestBB up to
820 // become the entry block after we erase PredBB.
821 if (ReplaceEntryBB)
822 DestBB->moveAfter(PredBB);
823
824 if (DTU) {
825 assert(PredBB->size() == 1 &&
827 "The successor list of PredBB isn't empty before "
828 "applying corresponding DTU updates.");
829 DTU->applyUpdatesPermissive(Updates);
830 DTU->deleteBB(PredBB);
831 // Recalculation of DomTree is needed when updating a forward DomTree and
832 // the Entry BB is replaced.
833 if (ReplaceEntryBB && DTU->hasDomTree()) {
834 // The entry block was removed and there is no external interface for
835 // the dominator tree to be notified of this change. In this corner-case
836 // we recalculate the entire tree.
837 DTU->recalculate(*(DestBB->getParent()));
838 }
839 }
840
841 else {
842 PredBB->eraseFromParent(); // Nuke BB if DTU is nullptr.
843 }
844}
845
846/// Return true if we can choose one of these values to use in place of the
847/// other. Note that we will always choose the non-undef value to keep.
848static bool CanMergeValues(Value *First, Value *Second) {
849 return First == Second || isa<UndefValue>(First) || isa<UndefValue>(Second);
850}
851
852/// Return true if we can fold BB, an almost-empty BB ending in an unconditional
853/// branch to Succ, into Succ.
854///
855/// Assumption: Succ is the single successor for BB.
856static bool
858 const SmallPtrSetImpl<BasicBlock *> &BBPreds) {
859 assert(*succ_begin(BB) == Succ && "Succ is not successor of BB!");
860
861 LLVM_DEBUG(dbgs() << "Looking to fold " << BB->getName() << " into "
862 << Succ->getName() << "\n");
863 // Shortcut, if there is only a single predecessor it must be BB and merging
864 // is always safe
865 if (Succ->getSinglePredecessor())
866 return true;
867
868 // Look at all the phi nodes in Succ, to see if they present a conflict when
869 // merging these blocks
870 for (BasicBlock::iterator I = Succ->begin(); isa<PHINode>(I); ++I) {
871 PHINode *PN = cast<PHINode>(I);
872
873 // If the incoming value from BB is again a PHINode in
874 // BB which has the same incoming value for *PI as PN does, we can
875 // merge the phi nodes and then the blocks can still be merged
877 if (BBPN && BBPN->getParent() == BB) {
878 for (unsigned PI = 0, PE = PN->getNumIncomingValues(); PI != PE; ++PI) {
879 BasicBlock *IBB = PN->getIncomingBlock(PI);
880 if (BBPreds.count(IBB) &&
882 PN->getIncomingValue(PI))) {
884 << "Can't fold, phi node " << PN->getName() << " in "
885 << Succ->getName() << " is conflicting with "
886 << BBPN->getName() << " with regard to common predecessor "
887 << IBB->getName() << "\n");
888 return false;
889 }
890 }
891 } else {
892 Value* Val = PN->getIncomingValueForBlock(BB);
893 for (unsigned PI = 0, PE = PN->getNumIncomingValues(); PI != PE; ++PI) {
894 // See if the incoming value for the common predecessor is equal to the
895 // one for BB, in which case this phi node will not prevent the merging
896 // of the block.
897 BasicBlock *IBB = PN->getIncomingBlock(PI);
898 if (BBPreds.count(IBB) &&
899 !CanMergeValues(Val, PN->getIncomingValue(PI))) {
900 LLVM_DEBUG(dbgs() << "Can't fold, phi node " << PN->getName()
901 << " in " << Succ->getName()
902 << " is conflicting with regard to common "
903 << "predecessor " << IBB->getName() << "\n");
904 return false;
905 }
906 }
907 }
908 }
909
910 return true;
911}
912
915
916/// Determines the value to use as the phi node input for a block.
917///
918/// Select between \p OldVal any value that we know flows from \p BB
919/// to a particular phi on the basis of which one (if either) is not
920/// undef. Update IncomingValues based on the selected value.
921///
922/// \param OldVal The value we are considering selecting.
923/// \param BB The block that the value flows in from.
924/// \param IncomingValues A map from block-to-value for other phi inputs
925/// that we have examined.
926///
927/// \returns the selected value.
929 IncomingValueMap &IncomingValues) {
930 IncomingValueMap::const_iterator It = IncomingValues.find(BB);
931 if (!isa<UndefValue>(OldVal)) {
932 assert((It != IncomingValues.end() &&
933 (!(It->second) || It->second == OldVal)) &&
934 "Expected OldVal to match incoming value from BB!");
935
936 IncomingValues.insert_or_assign(BB, OldVal);
937 return OldVal;
938 }
939
940 if (It != IncomingValues.end() && It->second)
941 return It->second;
942
943 return OldVal;
944}
945
946/// Create a map from block to value for the operands of a
947/// given phi.
948///
949/// This function initializes the map with UndefValue for all predecessors
950/// in BBPreds, and then updates the map with concrete non-undef values
951/// found in the PHI node.
952///
953/// \param PN The phi we are collecting the map for.
954/// \param BBPreds The list of all predecessor blocks to initialize with Undef.
955/// \param IncomingValues [out] The map from block to value for this phi.
957 const PredBlockVector &BBPreds,
958 IncomingValueMap &IncomingValues) {
959 for (BasicBlock *Pred : BBPreds)
960 IncomingValues[Pred] = nullptr;
961
962 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
963 Value *V = PN->getIncomingValue(i);
964 if (isa<UndefValue>(V))
965 continue;
966
967 BasicBlock *BB = PN->getIncomingBlock(i);
968 auto It = IncomingValues.find(BB);
969 if (It != IncomingValues.end())
970 It->second = V;
971 }
972}
973
974/// Replace the incoming undef values to a phi with the values
975/// from a block-to-value map.
976///
977/// \param PN The phi we are replacing the undefs in.
978/// \param IncomingValues A map from block to value.
980 const IncomingValueMap &IncomingValues) {
981 SmallVector<unsigned> TrueUndefOps;
982 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
983 Value *V = PN->getIncomingValue(i);
984
985 if (!isa<UndefValue>(V)) continue;
986
987 BasicBlock *BB = PN->getIncomingBlock(i);
988 IncomingValueMap::const_iterator It = IncomingValues.find(BB);
989 if (It == IncomingValues.end())
990 continue;
991
992 // Keep track of undef/poison incoming values. Those must match, so we fix
993 // them up below if needed.
994 // Note: this is conservatively correct, but we could try harder and group
995 // the undef values per incoming basic block.
996 if (!It->second) {
997 TrueUndefOps.push_back(i);
998 continue;
999 }
1000
1001 // There is a defined value for this incoming block, so map this undef
1002 // incoming value to the defined value.
1003 PN->setIncomingValue(i, It->second);
1004 }
1005
1006 // If there are both undef and poison values incoming, then convert those
1007 // values to undef. It is invalid to have different values for the same
1008 // incoming block.
1009 unsigned PoisonCount = count_if(TrueUndefOps, [&](unsigned i) {
1010 return isa<PoisonValue>(PN->getIncomingValue(i));
1011 });
1012 if (PoisonCount != 0 && PoisonCount != TrueUndefOps.size()) {
1013 for (unsigned i : TrueUndefOps)
1015 }
1016}
1017
1018// Only when they shares a single common predecessor, return true.
1019// Only handles cases when BB can't be merged while its predecessors can be
1020// redirected.
1021static bool
1023 const SmallPtrSetImpl<BasicBlock *> &BBPreds,
1024 BasicBlock *&CommonPred) {
1025
1026 // There must be phis in BB, otherwise BB will be merged into Succ directly
1027 if (BB->phis().empty() || Succ->phis().empty())
1028 return false;
1029
1030 // BB must have predecessors not shared that can be redirected to Succ
1031 if (!BB->hasNPredecessorsOrMore(2))
1032 return false;
1033
1034 if (any_of(BBPreds, [](const BasicBlock *Pred) {
1035 return isa<IndirectBrInst>(Pred->getTerminator());
1036 }))
1037 return false;
1038
1039 // Get the single common predecessor of both BB and Succ. Return false
1040 // when there are more than one common predecessors.
1041 for (BasicBlock *SuccPred : predecessors(Succ)) {
1042 if (BBPreds.count(SuccPred)) {
1043 if (CommonPred)
1044 return false;
1045 CommonPred = SuccPred;
1046 }
1047 }
1048
1049 return true;
1050}
1051
1052/// Check whether removing \p BB will make the phis in its \p Succ have too
1053/// many incoming entries. This function does not check whether \p BB is
1054/// foldable or not.
1056 // If BB only has one predecessor, then removing it will not introduce more
1057 // incoming edges for phis.
1058 if (BB->hasNPredecessors(1))
1059 return false;
1060 unsigned NumPreds = pred_size(BB);
1061 unsigned NumChangedPhi = 0;
1062 for (auto &Phi : Succ->phis()) {
1063 // If the incoming value is a phi and the phi is defined in BB,
1064 // then removing BB will not increase the total phi entries of the ir.
1065 if (auto *IncomingPhi = dyn_cast<PHINode>(Phi.getIncomingValueForBlock(BB)))
1066 if (IncomingPhi->getParent() == BB)
1067 continue;
1068 // Otherwise, we need to add entries to the phi
1069 NumChangedPhi++;
1070 }
1071 // For every phi that needs to be changed, (NumPreds - 1) new entries will be
1072 // added. If the total increase in phi entries exceeds
1073 // MaxPhiEntriesIncreaseAfterRemovingEmptyBlock, it will be considered as
1074 // introducing too many new phi entries.
1075 return (NumPreds - 1) * NumChangedPhi >
1077}
1078
1079/// Replace a value flowing from a block to a phi with
1080/// potentially multiple instances of that value flowing from the
1081/// block's predecessors to the phi.
1082///
1083/// \param BB The block with the value flowing into the phi.
1084/// \param BBPreds The predecessors of BB.
1085/// \param PN The phi that we are updating.
1086/// \param CommonPred The common predecessor of BB and PN's BasicBlock
1088 const PredBlockVector &BBPreds,
1089 PHINode *PN,
1090 BasicBlock *CommonPred) {
1091 Value *OldVal = PN->removeIncomingValue(BB, false);
1092 assert(OldVal && "No entry in PHI for Pred BB!");
1093
1094 // Map BBPreds to defined values or nullptr (representing undefined values).
1095 IncomingValueMap IncomingValues;
1096
1097 // We are merging two blocks - BB, and the block containing PN - and
1098 // as a result we need to redirect edges from the predecessors of BB
1099 // to go to the block containing PN, and update PN
1100 // accordingly. Since we allow merging blocks in the case where the
1101 // predecessor and successor blocks both share some predecessors,
1102 // and where some of those common predecessors might have undef
1103 // values flowing into PN, we want to rewrite those values to be
1104 // consistent with the non-undef values.
1105
1106 gatherIncomingValuesToPhi(PN, BBPreds, IncomingValues);
1107
1108 // If this incoming value is one of the PHI nodes in BB, the new entries
1109 // in the PHI node are the entries from the old PHI.
1110 if (isa<PHINode>(OldVal) && cast<PHINode>(OldVal)->getParent() == BB) {
1111 PHINode *OldValPN = cast<PHINode>(OldVal);
1112 for (unsigned i = 0, e = OldValPN->getNumIncomingValues(); i != e; ++i) {
1113 // Note that, since we are merging phi nodes and BB and Succ might
1114 // have common predecessors, we could end up with a phi node with
1115 // identical incoming branches. This will be cleaned up later (and
1116 // will trigger asserts if we try to clean it up now, without also
1117 // simplifying the corresponding conditional branch).
1118 BasicBlock *PredBB = OldValPN->getIncomingBlock(i);
1119
1120 if (PredBB == CommonPred)
1121 continue;
1122
1123 Value *PredVal = OldValPN->getIncomingValue(i);
1124 Value *Selected =
1125 selectIncomingValueForBlock(PredVal, PredBB, IncomingValues);
1126
1127 // And add a new incoming value for this predecessor for the
1128 // newly retargeted branch.
1129 PN->addIncoming(Selected, PredBB);
1130 }
1131 if (CommonPred)
1132 PN->addIncoming(OldValPN->getIncomingValueForBlock(CommonPred), BB);
1133
1134 } else {
1135 for (BasicBlock *PredBB : BBPreds) {
1136 // Update existing incoming values in PN for this
1137 // predecessor of BB.
1138 if (PredBB == CommonPred)
1139 continue;
1140
1141 Value *Selected =
1142 selectIncomingValueForBlock(OldVal, PredBB, IncomingValues);
1143
1144 // And add a new incoming value for this predecessor for the
1145 // newly retargeted branch.
1146 PN->addIncoming(Selected, PredBB);
1147 }
1148 if (CommonPred)
1149 PN->addIncoming(OldVal, BB);
1150 }
1151
1152 replaceUndefValuesInPhi(PN, IncomingValues);
1153}
1154
1156 DomTreeUpdater *DTU) {
1157 assert(BB != &BB->getParent()->getEntryBlock() &&
1158 "TryToSimplifyUncondBranchFromEmptyBlock called on entry block!");
1159
1160 // We can't simplify infinite loops.
1161 BasicBlock *Succ = cast<UncondBrInst>(BB->getTerminator())->getSuccessor(0);
1162 if (BB == Succ)
1163 return false;
1164
1166
1167 // The single common predecessor of BB and Succ when BB cannot be killed
1168 BasicBlock *CommonPred = nullptr;
1169
1170 bool BBKillable = CanPropagatePredecessorsForPHIs(BB, Succ, BBPreds);
1171
1172 // Even if we can not fold BB into Succ, we may be able to redirect the
1173 // predecessors of BB to Succ.
1174 bool BBPhisMergeable = BBKillable || CanRedirectPredsOfEmptyBBToSucc(
1175 BB, Succ, BBPreds, CommonPred);
1176
1177 if ((!BBKillable && !BBPhisMergeable) || introduceTooManyPhiEntries(BB, Succ))
1178 return false;
1179
1180 // Check to see if merging these blocks/phis would cause conflicts for any of
1181 // the phi nodes in BB or Succ. If not, we can safely merge.
1182
1183 // Check for cases where Succ has multiple predecessors and a PHI node in BB
1184 // has uses which will not disappear when the PHI nodes are merged. It is
1185 // possible to handle such cases, but difficult: it requires checking whether
1186 // BB dominates Succ, which is non-trivial to calculate in the case where
1187 // Succ has multiple predecessors. Also, it requires checking whether
1188 // constructing the necessary self-referential PHI node doesn't introduce any
1189 // conflicts; this isn't too difficult, but the previous code for doing this
1190 // was incorrect.
1191 //
1192 // Note that if this check finds a live use, BB dominates Succ, so BB is
1193 // something like a loop pre-header (or rarely, a part of an irreducible CFG);
1194 // folding the branch isn't profitable in that case anyway.
1195 if (!Succ->getSinglePredecessor()) {
1196 BasicBlock::iterator BBI = BB->begin();
1197 while (isa<PHINode>(*BBI)) {
1198 for (Use &U : BBI->uses()) {
1199 if (PHINode* PN = dyn_cast<PHINode>(U.getUser())) {
1200 if (PN->getIncomingBlock(U) != BB)
1201 return false;
1202 } else {
1203 return false;
1204 }
1205 }
1206 ++BBI;
1207 }
1208 }
1209
1210 if (BBPhisMergeable && CommonPred)
1211 LLVM_DEBUG(dbgs() << "Found Common Predecessor between: " << BB->getName()
1212 << " and " << Succ->getName() << " : "
1213 << CommonPred->getName() << "\n");
1214
1215 // 'BB' and 'BB->Pred' are loop latches, bail out to presrve inner loop
1216 // metadata.
1217 //
1218 // FIXME: This is a stop-gap solution to preserve inner-loop metadata given
1219 // current status (that loop metadata is implemented as metadata attached to
1220 // the branch instruction in the loop latch block). To quote from review
1221 // comments, "the current representation of loop metadata (using a loop latch
1222 // terminator attachment) is known to be fundamentally broken. Loop latches
1223 // are not uniquely associated with loops (both in that a latch can be part of
1224 // multiple loops and a loop may have multiple latches). Loop headers are. The
1225 // solution to this problem is also known: Add support for basic block
1226 // metadata, and attach loop metadata to the loop header."
1227 //
1228 // Why bail out:
1229 // In this case, we expect 'BB' is the latch for outer-loop and 'BB->Pred' is
1230 // the latch for inner-loop (see reason below), so bail out to prerserve
1231 // inner-loop metadata rather than eliminating 'BB' and attaching its metadata
1232 // to this inner-loop.
1233 // - The reason we believe 'BB' and 'BB->Pred' have different inner-most
1234 // loops: assuming 'BB' and 'BB->Pred' are from the same inner-most loop L,
1235 // then 'BB' is the header and latch of 'L' and thereby 'L' must consist of
1236 // one self-looping basic block, which is contradictory with the assumption.
1237 //
1238 // To illustrate how inner-loop metadata is dropped:
1239 //
1240 // CFG Before
1241 //
1242 // BB is while.cond.exit, attached with loop metdata md2.
1243 // BB->Pred is for.body, attached with loop metadata md1.
1244 //
1245 // entry
1246 // |
1247 // v
1248 // ---> while.cond -------------> while.end
1249 // | |
1250 // | v
1251 // | while.body
1252 // | |
1253 // | v
1254 // | for.body <---- (md1)
1255 // | | |______|
1256 // | v
1257 // | while.cond.exit (md2)
1258 // | |
1259 // |_______|
1260 //
1261 // CFG After
1262 //
1263 // while.cond1 is the merge of while.cond.exit and while.cond above.
1264 // for.body is attached with md2, and md1 is dropped.
1265 // If LoopSimplify runs later (as a part of loop pass), it could create
1266 // dedicated exits for inner-loop (essentially adding `while.cond.exit`
1267 // back), but won't it won't see 'md1' nor restore it for the inner-loop.
1268 //
1269 // entry
1270 // |
1271 // v
1272 // ---> while.cond1 -------------> while.end
1273 // | |
1274 // | v
1275 // | while.body
1276 // | |
1277 // | v
1278 // | for.body <---- (md2)
1279 // |_______| |______|
1280 if (Instruction *TI = BB->getTerminatorOrNull())
1281 if (TI->hasNonDebugLocLoopMetadata())
1282 for (BasicBlock *Pred : predecessors(BB))
1283 if (Instruction *PredTI = Pred->getTerminatorOrNull())
1284 if (PredTI->hasNonDebugLocLoopMetadata())
1285 return false;
1286
1287 if (BBKillable)
1288 LLVM_DEBUG(dbgs() << "Killing Trivial BB: \n" << *BB);
1289 else if (BBPhisMergeable)
1290 LLVM_DEBUG(dbgs() << "Merge Phis in Trivial BB: \n" << *BB);
1291
1293
1294 if (DTU) {
1295 // To avoid processing the same predecessor more than once.
1297 // All predecessors of BB (except the common predecessor) will be moved to
1298 // Succ.
1299 Updates.reserve(Updates.size() + 2 * pred_size(BB) + 1);
1301 predecessors(Succ));
1302 for (auto *PredOfBB : predecessors(BB)) {
1303 // Do not modify those common predecessors of BB and Succ
1304 if (!SuccPreds.contains(PredOfBB))
1305 if (SeenPreds.insert(PredOfBB).second)
1306 Updates.push_back({DominatorTree::Insert, PredOfBB, Succ});
1307 }
1308
1309 SeenPreds.clear();
1310
1311 for (auto *PredOfBB : predecessors(BB))
1312 // When BB cannot be killed, do not remove the edge between BB and
1313 // CommonPred.
1314 if (SeenPreds.insert(PredOfBB).second && PredOfBB != CommonPred)
1315 Updates.push_back({DominatorTree::Delete, PredOfBB, BB});
1316
1317 if (BBKillable)
1318 Updates.push_back({DominatorTree::Delete, BB, Succ});
1319 }
1320
1321 if (isa<PHINode>(Succ->begin())) {
1322 // If there is more than one pred of succ, and there are PHI nodes in
1323 // the successor, then we need to add incoming edges for the PHI nodes
1324 //
1325 const PredBlockVector BBPreds(predecessors(BB));
1326
1327 // Loop over all of the PHI nodes in the successor of BB.
1328 for (BasicBlock::iterator I = Succ->begin(); isa<PHINode>(I); ++I) {
1329 PHINode *PN = cast<PHINode>(I);
1330 redirectValuesFromPredecessorsToPhi(BB, BBPreds, PN, CommonPred);
1331 }
1332 }
1333
1334 if (Succ->getSinglePredecessor()) {
1335 // BB is the only predecessor of Succ, so Succ will end up with exactly
1336 // the same predecessors BB had.
1337 // Copy over any phi, debug or lifetime instruction.
1339 Succ->splice(Succ->getFirstNonPHIIt(), BB);
1340 } else {
1341 while (PHINode *PN = dyn_cast<PHINode>(&BB->front())) {
1342 // We explicitly check for such uses for merging phis.
1343 assert(PN->use_empty() && "There shouldn't be any uses here!");
1344 PN->eraseFromParent();
1345 }
1346 }
1347
1348 // If the unconditional branch we replaced contains non-debug llvm.loop
1349 // metadata, we add the metadata to the branch instructions in the
1350 // predecessors.
1351 if (Instruction *TI = BB->getTerminatorOrNull())
1352 if (TI->hasNonDebugLocLoopMetadata()) {
1353 MDNode *LoopMD = TI->getMetadata(LLVMContext::MD_loop);
1354 for (BasicBlock *Pred : predecessors(BB))
1355 Pred->getTerminator()->setMetadata(LLVMContext::MD_loop, LoopMD);
1356 }
1357
1358 if (BBKillable) {
1359 // Everything that jumped to BB now goes to Succ.
1360 BB->replaceAllUsesWith(Succ);
1361
1362 if (!Succ->hasName())
1363 Succ->takeName(BB);
1364
1365 // Clear the successor list of BB to match updates applying to DTU later.
1366 if (BB->hasTerminator())
1367 BB->back().eraseFromParent();
1368
1369 new UnreachableInst(BB->getContext(), BB);
1370 assert(succ_empty(BB) && "The successor list of BB isn't empty before "
1371 "applying corresponding DTU updates.");
1372 } else if (BBPhisMergeable) {
1373 // Everything except CommonPred that jumped to BB now goes to Succ.
1374 BB->replaceUsesWithIf(Succ, [BBPreds, CommonPred](Use &U) -> bool {
1375 if (Instruction *UseInst = dyn_cast<Instruction>(U.getUser()))
1376 return UseInst->getParent() != CommonPred &&
1377 BBPreds.contains(UseInst->getParent());
1378 return false;
1379 });
1380 }
1381
1382 if (DTU)
1383 DTU->applyUpdates(Updates);
1384
1385 if (BBKillable)
1386 DeleteDeadBlock(BB, DTU);
1387
1388 return true;
1389}
1390
1391static bool
1394 // This implementation doesn't currently consider undef operands
1395 // specially. Theoretically, two phis which are identical except for
1396 // one having an undef where the other doesn't could be collapsed.
1397
1398 bool Changed = false;
1399
1400 // Examine each PHI.
1401 // Note that increment of I must *NOT* be in the iteration_expression, since
1402 // we don't want to immediately advance when we restart from the beginning.
1403 for (auto I = BB->begin(); PHINode *PN = dyn_cast<PHINode>(I);) {
1404 ++I;
1405 // Is there an identical PHI node in this basic block?
1406 // Note that we only look in the upper square's triangle,
1407 // we already checked that the lower triangle PHI's aren't identical.
1408 for (auto J = I; PHINode *DuplicatePN = dyn_cast<PHINode>(J); ++J) {
1409 if (ToRemove.contains(DuplicatePN))
1410 continue;
1411 if (!DuplicatePN->isIdenticalToWhenDefined(PN))
1412 continue;
1413 // A duplicate. Replace this PHI with the base PHI.
1414 ++NumPHICSEs;
1415 DuplicatePN->replaceAllUsesWith(PN);
1416 ToRemove.insert(DuplicatePN);
1417 Changed = true;
1418
1419 // The RAUW can change PHIs that we already visited.
1420 I = BB->begin();
1421 break; // Start over from the beginning.
1422 }
1423 }
1424 return Changed;
1425}
1426
1427static bool
1430 // This implementation doesn't currently consider undef operands
1431 // specially. Theoretically, two phis which are identical except for
1432 // one having an undef where the other doesn't could be collapsed.
1433
1434 struct PHIDenseMapInfo {
1435 static PHINode *getEmptyKey() {
1437 }
1438
1439 static bool isSentinel(PHINode *PN) { return PN == getEmptyKey(); }
1440
1441 // WARNING: this logic must be kept in sync with
1442 // Instruction::isIdenticalToWhenDefined()!
1443 static unsigned getHashValueImpl(PHINode *PN) {
1444 // Compute a hash value on the operands. Instcombine will likely have
1445 // sorted them, which helps expose duplicates, but we have to check all
1446 // the operands to be safe in case instcombine hasn't run.
1447 return static_cast<unsigned>(
1449 hash_combine_range(PN->blocks())));
1450 }
1451
1452 static unsigned getHashValue(PHINode *PN) {
1453#ifndef NDEBUG
1454 // If -phicse-debug-hash was specified, return a constant -- this
1455 // will force all hashing to collide, so we'll exhaustively search
1456 // the table for a match, and the assertion in isEqual will fire if
1457 // there's a bug causing equal keys to hash differently.
1458 if (PHICSEDebugHash)
1459 return 0;
1460#endif
1461 return getHashValueImpl(PN);
1462 }
1463
1464 static bool isEqualImpl(PHINode *LHS, PHINode *RHS) {
1465 if (isSentinel(LHS) || isSentinel(RHS))
1466 return LHS == RHS;
1467 return LHS->isIdenticalTo(RHS);
1468 }
1469
1470 static bool isEqual(PHINode *LHS, PHINode *RHS) {
1471 // These comparisons are nontrivial, so assert that equality implies
1472 // hash equality (DenseMap demands this as an invariant).
1473 bool Result = isEqualImpl(LHS, RHS);
1474 assert(!Result || (isSentinel(LHS) && LHS == RHS) ||
1476 return Result;
1477 }
1478 };
1479
1480 // Set of unique PHINodes.
1482 PHISet.reserve(4 * PHICSENumPHISmallSize);
1483
1484 // Examine each PHI.
1485 bool Changed = false;
1486 for (auto I = BB->begin(); PHINode *PN = dyn_cast<PHINode>(I++);) {
1487 if (ToRemove.contains(PN))
1488 continue;
1489 auto Inserted = PHISet.insert(PN);
1490 if (!Inserted.second) {
1491 // A duplicate. Replace this PHI with its duplicate.
1492 ++NumPHICSEs;
1493 PN->replaceAllUsesWith(*Inserted.first);
1494 ToRemove.insert(PN);
1495 Changed = true;
1496
1497 // The RAUW can change PHIs that we already visited. Start over from the
1498 // beginning.
1499 PHISet.clear();
1500 I = BB->begin();
1501 }
1502 }
1503
1504 return Changed;
1505}
1506
1517
1521 for (PHINode *PN : ToRemove)
1522 PN->eraseFromParent();
1523 return Changed;
1524}
1525
1527 const DataLayout &DL) {
1528 V = V->stripPointerCasts();
1529
1530 if (AllocaInst *AI = dyn_cast<AllocaInst>(V)) {
1531 // TODO: Ideally, this function would not be called if PrefAlign is smaller
1532 // than the current alignment, as the known bits calculation should have
1533 // already taken it into account. However, this is not always the case,
1534 // as computeKnownBits() has a depth limit, while stripPointerCasts()
1535 // doesn't.
1536 Align CurrentAlign = AI->getAlign();
1537 if (PrefAlign <= CurrentAlign)
1538 return CurrentAlign;
1539
1540 // If the preferred alignment is greater than the natural stack alignment
1541 // then don't round up. This avoids dynamic stack realignment.
1542 MaybeAlign StackAlign = DL.getStackAlignment();
1543 if (StackAlign && PrefAlign > *StackAlign)
1544 return CurrentAlign;
1545 AI->setAlignment(PrefAlign);
1546 return PrefAlign;
1547 }
1548
1549 if (auto *GV = dyn_cast<GlobalVariable>(V)) {
1550 // TODO: as above, this shouldn't be necessary.
1551 Align CurrentAlign = GV->getPointerAlignment(DL);
1552 if (PrefAlign <= CurrentAlign)
1553 return CurrentAlign;
1554
1555 // If there is a large requested alignment and we can, bump up the alignment
1556 // of the global. If the memory we set aside for the global may not be the
1557 // memory used by the final program then it is impossible for us to reliably
1558 // enforce the preferred alignment.
1559 if (!GV->canIncreaseAlignment())
1560 return CurrentAlign;
1561
1562 if (GV->isThreadLocal()) {
1563 unsigned MaxTLSAlign = GV->getParent()->getMaxTLSAlignment() / CHAR_BIT;
1564 if (MaxTLSAlign && PrefAlign > Align(MaxTLSAlign))
1565 PrefAlign = Align(MaxTLSAlign);
1566 }
1567
1568 GV->setAlignment(PrefAlign);
1569 return PrefAlign;
1570 }
1571
1572 return Align(1);
1573}
1574
1576 const DataLayout &DL,
1577 const Instruction *CxtI,
1578 AssumptionCache *AC,
1579 const DominatorTree *DT) {
1580 assert(V->getType()->isPointerTy() &&
1581 "getOrEnforceKnownAlignment expects a pointer!");
1582
1583 KnownBits Known = computeKnownBits(V, DL, AC, CxtI, DT);
1584 unsigned TrailZ = Known.countMinTrailingZeros();
1585
1586 // Avoid trouble with ridiculously large TrailZ values, such as
1587 // those computed from a null pointer.
1588 // LLVM doesn't support alignments larger than (1 << MaxAlignmentExponent).
1589 TrailZ = std::min(TrailZ, +Value::MaxAlignmentExponent);
1590
1591 Align Alignment = Align(1ull << std::min(Known.getBitWidth() - 1, TrailZ));
1592
1593 if (PrefAlign && *PrefAlign > Alignment)
1594 Alignment = std::max(Alignment, tryEnforceAlignment(V, *PrefAlign, DL));
1595
1596 // We don't need to make any adjustment.
1597 return Alignment;
1598}
1599
1600///===---------------------------------------------------------------------===//
1601/// Dbg Intrinsic utilities
1602///
1603
1604/// See if there is a dbg.value intrinsic for DIVar for the PHI node.
1606 DIExpression *DIExpr,
1607 PHINode *APN) {
1608 // Since we can't guarantee that the original dbg.declare intrinsic
1609 // is removed by LowerDbgDeclare(), we need to make sure that we are
1610 // not inserting the same dbg.value intrinsic over and over.
1611 SmallVector<DbgVariableRecord *, 1> DbgVariableRecords;
1612 findDbgValues(APN, DbgVariableRecords);
1613 for (DbgVariableRecord *DVR : DbgVariableRecords) {
1614 assert(is_contained(DVR->location_ops(), APN));
1615 if ((DVR->getVariable() == DIVar) && (DVR->getExpression() == DIExpr))
1616 return true;
1617 }
1618 return false;
1619}
1620
1621/// Check if the alloc size of \p ValTy is large enough to cover the variable
1622/// (or fragment of the variable) described by \p DII.
1623///
1624/// This is primarily intended as a helper for the different
1625/// ConvertDebugDeclareToDebugValue functions. The dbg.declare that is converted
1626/// describes an alloca'd variable, so we need to use the alloc size of the
1627/// value when doing the comparison. E.g. an i1 value will be identified as
1628/// covering an n-bit fragment, if the store size of i1 is at least n bits.
1630 const DataLayout &DL = DVR->getModule()->getDataLayout();
1631 TypeSize ValueSize = DL.getTypeAllocSizeInBits(ValTy);
1632 if (std::optional<uint64_t> FragmentSize =
1633 DVR->getExpression()->getActiveBits(DVR->getVariable()))
1634 return TypeSize::isKnownGE(ValueSize, TypeSize::getFixed(*FragmentSize));
1635
1636 // We can't always calculate the size of the DI variable (e.g. if it is a
1637 // VLA). Try to use the size of the alloca that the dbg intrinsic describes
1638 // instead.
1639 if (DVR->isAddressOfVariable()) {
1640 // DVR should have exactly 1 location when it is an address.
1641 assert(DVR->getNumVariableLocationOps() == 1 &&
1642 "address of variable must have exactly 1 location operand.");
1643 if (auto *AI =
1645 if (std::optional<TypeSize> FragmentSize = AI->getAllocationSizeInBits(DL)) {
1646 return TypeSize::isKnownGE(ValueSize, *FragmentSize);
1647 }
1648 }
1649 }
1650 // Could not determine size of variable. Conservatively return false.
1651 return false;
1652}
1653
1655 DILocalVariable *DIVar,
1656 DIExpression *DIExpr,
1657 const DebugLoc &NewLoc,
1658 BasicBlock::iterator Instr) {
1660 DbgVariableRecord *DVRec =
1661 new DbgVariableRecord(DVAM, DIVar, DIExpr, NewLoc.get());
1662 Instr->getParent()->insertDbgRecordBefore(DVRec, Instr);
1663}
1664
1666 int NumEltDropped = DIExpr->getElements()[0] == dwarf::DW_OP_LLVM_arg ? 3 : 1;
1667 return DIExpression::get(DIExpr->getContext(),
1668 DIExpr->getElements().drop_front(NumEltDropped));
1669}
1670
1672 StoreInst *SI, DIBuilder &Builder) {
1673 assert(DVR->isAddressOfVariable() || DVR->isDbgAssign());
1674 auto *DIVar = DVR->getVariable();
1675 assert(DIVar && "Missing variable");
1676 auto *DIExpr = DVR->getExpression();
1677 Value *DV = SI->getValueOperand();
1678
1679 DebugLoc NewLoc = getDebugValueLoc(DVR);
1680
1681 // If the alloca describes the variable itself, i.e. the expression in the
1682 // dbg.declare doesn't start with a dereference, we can perform the
1683 // conversion if the value covers the entire fragment of DII.
1684 // If the alloca describes the *address* of DIVar, i.e. DIExpr is
1685 // *just* a DW_OP_deref, we use DV as is for the dbg.value.
1686 // We conservatively ignore other dereferences, because the following two are
1687 // not equivalent:
1688 // dbg.declare(alloca, ..., !Expr(deref, plus_uconstant, 2))
1689 // dbg.value(DV, ..., !Expr(deref, plus_uconstant, 2))
1690 // The former is adding 2 to the address of the variable, whereas the latter
1691 // is adding 2 to the value of the variable. As such, we insist on just a
1692 // deref expression.
1693 bool CanConvert =
1694 DIExpr->isDeref() || (!DIExpr->startsWithDeref() &&
1696 if (CanConvert) {
1697 insertDbgValueOrDbgVariableRecord(Builder, DV, DIVar, DIExpr, NewLoc,
1698 SI->getIterator());
1699 return;
1700 }
1701
1702 // FIXME: If storing to a part of the variable described by the dbg.declare,
1703 // then we want to insert a dbg.value for the corresponding fragment.
1704 LLVM_DEBUG(dbgs() << "Failed to convert dbg.declare to dbg.value: " << *DVR
1705 << '\n');
1706
1707 // For now, when there is a store to parts of the variable (but we do not
1708 // know which part) we insert an dbg.value intrinsic to indicate that we
1709 // know nothing about the variable's content.
1710 DV = PoisonValue::get(DV->getType());
1712 DbgVariableRecord *NewDVR =
1713 new DbgVariableRecord(DVAM, DIVar, DIExpr, NewLoc.get());
1714 SI->getParent()->insertDbgRecordBefore(NewDVR, SI->getIterator());
1715}
1716
1718 DIBuilder &Builder) {
1719 auto *DIVar = DVR->getVariable();
1720 assert(DIVar && "Missing variable");
1721 auto *DIExpr = DVR->getExpression();
1722 DIExpr = dropInitialDeref(DIExpr);
1723 Value *DV = SI->getValueOperand();
1724
1725 DebugLoc NewLoc = getDebugValueLoc(DVR);
1726
1727 insertDbgValueOrDbgVariableRecord(Builder, DV, DIVar, DIExpr, NewLoc,
1728 SI->getIterator());
1729}
1730
1732 DIBuilder &Builder) {
1733 auto *DIVar = DVR->getVariable();
1734 auto *DIExpr = DVR->getExpression();
1735 assert(DIVar && "Missing variable");
1736
1737 if (!valueCoversEntireFragment(LI->getType(), DVR)) {
1738 // FIXME: If only referring to a part of the variable described by the
1739 // dbg.declare, then we want to insert a DbgVariableRecord for the
1740 // corresponding fragment.
1741 LLVM_DEBUG(dbgs() << "Failed to convert dbg.declare to DbgVariableRecord: "
1742 << *DVR << '\n');
1743 return;
1744 }
1745
1746 DebugLoc NewLoc = getDebugValueLoc(DVR);
1747
1748 // We are now tracking the loaded value instead of the address. In the
1749 // future if multi-location support is added to the IR, it might be
1750 // preferable to keep tracking both the loaded value and the original
1751 // address in case the alloca can not be elided.
1752
1753 // Create a DbgVariableRecord directly and insert.
1755 DbgVariableRecord *DV =
1756 new DbgVariableRecord(LIVAM, DIVar, DIExpr, NewLoc.get());
1757 LI->getParent()->insertDbgRecordAfter(DV, LI);
1758}
1759
1760/// Determine whether this debug variable is a not a basic type.
1761/// We strip through DIDerivedType modifiers (typedefs, const, etc.)
1762/// to find the underlying type to decide if it seems perhaps worthwhile to
1763/// do LowerDbgDeclare.
1765 DIType *Ty = DVR->getVariable()->getType();
1766 if (Ty == nullptr)
1767 return true;
1768 // Strip through modifier types to find the underlying type.
1769 while (auto *DTy = dyn_cast<DIDerivedType>(Ty)) {
1770 switch (DTy->getTag()) {
1771 case dwarf::DW_TAG_pointer_type:
1772 case dwarf::DW_TAG_reference_type:
1773 case dwarf::DW_TAG_rvalue_reference_type:
1774 case dwarf::DW_TAG_ptr_to_member_type:
1775 case dwarf::DW_TAG_LLVM_ptrauth_type:
1776 return false;
1777 case dwarf::DW_TAG_typedef:
1778 case dwarf::DW_TAG_const_type:
1779 case dwarf::DW_TAG_volatile_type:
1780 case dwarf::DW_TAG_restrict_type:
1781 case dwarf::DW_TAG_atomic_type:
1782 case dwarf::DW_TAG_immutable_type:
1783 Ty = DTy->getBaseType();
1784 continue;
1785 default:
1786 break;
1787 }
1788 break;
1789 }
1790 return !isa<DIBasicType>(Ty);
1791}
1792
1794 DIBuilder &Builder) {
1795 auto *DIVar = DVR->getVariable();
1796 auto *DIExpr = DVR->getExpression();
1797 assert(DIVar && "Missing variable");
1798
1799 if (PhiHasDebugValue(DIVar, DIExpr, APN))
1800 return;
1801
1802 if (!valueCoversEntireFragment(APN->getType(), DVR)) {
1803 // FIXME: If only referring to a part of the variable described by the
1804 // dbg.declare, then we want to insert a DbgVariableRecord for the
1805 // corresponding fragment.
1806 LLVM_DEBUG(dbgs() << "Failed to convert dbg.declare to DbgVariableRecord: "
1807 << *DVR << '\n');
1808 return;
1809 }
1810
1811 BasicBlock *BB = APN->getParent();
1812 auto InsertionPt = BB->getFirstInsertionPt();
1813
1814 DebugLoc NewLoc = getDebugValueLoc(DVR);
1815
1816 // The block may be a catchswitch block, which does not have a valid
1817 // insertion point.
1818 // FIXME: Insert DbgVariableRecord markers in the successors when appropriate.
1819 if (InsertionPt != BB->end()) {
1820 insertDbgValueOrDbgVariableRecord(Builder, APN, DIVar, DIExpr, NewLoc,
1821 InsertionPt);
1822 }
1823}
1824
1825/// LowerDbgDeclare - Lowers llvm.dbg.declare intrinsics into appropriate set
1826/// of llvm.dbg.value intrinsics.
1828 bool Changed = false;
1829 DIBuilder DIB(*F.getParent(), /*AllowUnresolved*/ false);
1832 for (auto &FI : F) {
1833 for (Instruction &BI : FI) {
1834 if (auto *DDI = dyn_cast<DbgDeclareInst>(&BI))
1835 Dbgs.push_back(DDI);
1836 for (DbgVariableRecord &DVR : filterDbgVars(BI.getDbgRecordRange())) {
1837 if (DVR.getType() == DbgVariableRecord::LocationType::Declare)
1838 DVRs.push_back(&DVR);
1839 }
1840 }
1841 }
1842
1843 if (Dbgs.empty() && DVRs.empty())
1844 return Changed;
1845
1846 auto LowerOne = [&](DbgVariableRecord *DDI) {
1847 AllocaInst *AI =
1848 dyn_cast_or_null<AllocaInst>(DDI->getVariableLocationOp(0));
1849 // If this is an alloca for a scalar variable, insert a dbg.value
1850 // at each load and store to the alloca and erase the dbg.declare.
1851 // The dbg.values allow tracking a variable even if it is not
1852 // stored on the stack, while the dbg.declare can only describe
1853 // the stack slot (and at a lexical-scope granularity). Later
1854 // passes will attempt to elide the stack slot.
1855 // Skip VLAs (dynamic allocas) and composite types (arrays/structs) since
1856 // they can't be represented as a single dbg.value.
1857 if (!AI || !isa<Constant>(AI->getArraySize()) || isCompositeType(DDI))
1858 return;
1859
1860 // A volatile load/store means that the alloca can't be elided anyway.
1861 // Just look at direct uses however, and ignore any other instructions.
1862 if (llvm::any_of(AI->users(), [](User *U) -> bool {
1863 if (LoadInst *LI = dyn_cast<LoadInst>(U))
1864 return LI->isVolatile();
1865 if (StoreInst *SI = dyn_cast<StoreInst>(U))
1866 return SI->isVolatile();
1867 return false;
1868 }))
1869 return;
1870
1872 WorkList.push_back(AI);
1873 while (!WorkList.empty()) {
1874 const Value *V = WorkList.pop_back_val();
1875 for (const auto &AIUse : V->uses()) {
1876 User *U = AIUse.getUser();
1877 if (StoreInst *SI = dyn_cast<StoreInst>(U)) {
1878 if (AIUse.getOperandNo() == 1)
1880 } else if (LoadInst *LI = dyn_cast<LoadInst>(U)) {
1881 ConvertDebugDeclareToDebugValue(DDI, LI, DIB);
1882 } else if (CallInst *CI = dyn_cast<CallInst>(U)) {
1883 // This is a call by-value or some other instruction that takes a
1884 // pointer to the variable. Insert a *value* intrinsic that describes
1885 // the variable by dereferencing the alloca.
1886 if (!CI->isLifetimeStartOrEnd()) {
1887 DebugLoc NewLoc = getDebugValueLoc(DDI);
1888 auto *DerefExpr =
1889 DIExpression::append(DDI->getExpression(), dwarf::DW_OP_deref);
1890 insertDbgValueOrDbgVariableRecord(DIB, AI, DDI->getVariable(),
1891 DerefExpr, NewLoc,
1892 CI->getIterator());
1893 }
1894 } else if (BitCastInst *BI = dyn_cast<BitCastInst>(U)) {
1895 if (BI->getType()->isPointerTy())
1896 WorkList.push_back(BI);
1897 }
1898 }
1899 }
1900 DDI->eraseFromParent();
1901 Changed = true;
1902 };
1903
1904 for_each(DVRs, LowerOne);
1905
1906 if (Changed)
1907 for (BasicBlock &BB : F)
1909
1910 return Changed;
1911}
1912
1913/// Propagate dbg.value records through the newly inserted PHIs.
1915 SmallVectorImpl<PHINode *> &InsertedPHIs) {
1916 assert(BB && "No BasicBlock to clone DbgVariableRecord(s) from.");
1917 if (InsertedPHIs.size() == 0)
1918 return;
1919
1920 // Map existing PHI nodes to their DbgVariableRecords.
1922 for (auto &I : *BB) {
1923 for (DbgVariableRecord &DVR : filterDbgVars(I.getDbgRecordRange())) {
1924 for (Value *V : DVR.location_ops())
1925 if (auto *Loc = dyn_cast_or_null<PHINode>(V))
1926 DbgValueMap.insert({Loc, &DVR});
1927 }
1928 }
1929 if (DbgValueMap.size() == 0)
1930 return;
1931
1932 // Map a pair of the destination BB and old DbgVariableRecord to the new
1933 // DbgVariableRecord, so that if a DbgVariableRecord is being rewritten to use
1934 // more than one of the inserted PHIs in the same destination BB, we can
1935 // update the same DbgVariableRecord with all the new PHIs instead of creating
1936 // one copy for each.
1938 NewDbgValueMap;
1939 // Then iterate through the new PHIs and look to see if they use one of the
1940 // previously mapped PHIs. If so, create a new DbgVariableRecord that will
1941 // propagate the info through the new PHI. If we use more than one new PHI in
1942 // a single destination BB with the same old dbg.value, merge the updates so
1943 // that we get a single new DbgVariableRecord with all the new PHIs.
1944 for (auto PHI : InsertedPHIs) {
1945 BasicBlock *Parent = PHI->getParent();
1946 // Avoid inserting a debug-info record into an EH block.
1947 if (Parent->getFirstNonPHIIt()->isEHPad())
1948 continue;
1949 for (auto VI : PHI->operand_values()) {
1950 auto V = DbgValueMap.find(VI);
1951 if (V != DbgValueMap.end()) {
1952 DbgVariableRecord *DbgII = cast<DbgVariableRecord>(V->second);
1953 auto NewDI = NewDbgValueMap.find({Parent, DbgII});
1954 if (NewDI == NewDbgValueMap.end()) {
1955 DbgVariableRecord *NewDbgII = DbgII->clone();
1956 NewDI = NewDbgValueMap.insert({{Parent, DbgII}, NewDbgII}).first;
1957 }
1958 DbgVariableRecord *NewDbgII = NewDI->second;
1959 // If PHI contains VI as an operand more than once, we may
1960 // replaced it in NewDbgII; confirm that it is present.
1961 if (is_contained(NewDbgII->location_ops(), VI))
1962 NewDbgII->replaceVariableLocationOp(VI, PHI);
1963 }
1964 }
1965 }
1966 // Insert the new DbgVariableRecords into their destination blocks.
1967 for (auto DI : NewDbgValueMap) {
1968 BasicBlock *Parent = DI.first.first;
1969 DbgVariableRecord *NewDbgII = DI.second;
1970 auto InsertionPt = Parent->getFirstInsertionPt();
1971 assert(InsertionPt != Parent->end() && "Ill-formed basic block");
1972
1973 Parent->insertDbgRecordBefore(NewDbgII, InsertionPt);
1974 }
1975}
1976
1978 DIBuilder &Builder, uint8_t DIExprFlags,
1979 int Offset) {
1981
1982 auto ReplaceOne = [&](DbgVariableRecord *DII) {
1983 assert(DII->getVariable() && "Missing variable");
1984 auto *DIExpr = DII->getExpression();
1985 DIExpr = DIExpression::prepend(DIExpr, DIExprFlags, Offset);
1986 DII->setExpression(DIExpr);
1987 DII->replaceVariableLocationOp(Address, NewAddress);
1988 };
1989
1990 for_each(DVRDeclares, ReplaceOne);
1991
1992 return !DVRDeclares.empty();
1993}
1994
1996 DILocalVariable *DIVar,
1997 DIExpression *DIExpr, Value *NewAddress,
1998 DbgVariableRecord *DVR,
1999 DIBuilder &Builder, int Offset) {
2000 assert(DIVar && "Missing variable");
2001
2002 // This is an alloca-based dbg.value/DbgVariableRecord. The first thing it
2003 // should do with the alloca pointer is dereference it. Otherwise we don't
2004 // know how to handle it and give up.
2005 if (!DIExpr || DIExpr->getNumElements() < 1 ||
2006 DIExpr->getElement(0) != dwarf::DW_OP_deref)
2007 return;
2008
2009 // Insert the offset before the first deref.
2010 if (Offset)
2011 DIExpr = DIExpression::prepend(DIExpr, 0, Offset);
2012
2013 DVR->setExpression(DIExpr);
2014 DVR->replaceVariableLocationOp(0u, NewAddress);
2015}
2016
2018 DIBuilder &Builder, int Offset) {
2020 findDbgValues(AI, DPUsers);
2021
2022 // Replace any DbgVariableRecords that use this alloca.
2023 for (DbgVariableRecord *DVR : DPUsers)
2024 updateOneDbgValueForAlloca(DVR->getDebugLoc(), DVR->getVariable(),
2025 DVR->getExpression(), NewAllocaAddress, DVR,
2026 Builder, Offset);
2027}
2028
2029/// Where possible to salvage debug information for \p I do so.
2030/// If not possible mark undef.
2036
2037template <typename T> static void salvageDbgAssignAddress(T *Assign) {
2038 Instruction *I = dyn_cast<Instruction>(Assign->getAddress());
2039 // Only instructions can be salvaged at the moment.
2040 if (!I)
2041 return;
2042
2043 assert(!Assign->getAddressExpression()->getFragmentInfo().has_value() &&
2044 "address-expression shouldn't have fragment info");
2045
2046 // The address component of a dbg.assign cannot be variadic.
2047 uint64_t CurrentLocOps = 0;
2048 SmallVector<Value *, 4> AdditionalValues;
2050 Value *NewV = salvageDebugInfoImpl(*I, CurrentLocOps, Ops, AdditionalValues);
2051
2052 // Check if the salvage failed.
2053 if (!NewV)
2054 return;
2055
2057 Assign->getAddressExpression(), Ops, 0, /*StackValue=*/false);
2058 assert(!SalvagedExpr->getFragmentInfo().has_value() &&
2059 "address-expression shouldn't have fragment info");
2060
2061 SalvagedExpr = SalvagedExpr->foldConstantMath();
2062
2063 // Salvage succeeds if no additional values are required.
2064 if (AdditionalValues.empty()) {
2065 Assign->setAddress(NewV);
2066 Assign->setAddressExpression(SalvagedExpr);
2067 } else {
2068 Assign->setKillAddress();
2069 }
2070}
2071
2074 // These are arbitrary chosen limits on the maximum number of values and the
2075 // maximum size of a debug expression we can salvage up to, used for
2076 // performance reasons.
2077 const unsigned MaxDebugArgs = 16;
2078 const unsigned MaxExpressionSize = 128;
2079 bool Salvaged = false;
2080
2081 for (auto *DVR : DPUsers) {
2082 if (DVR->isDbgAssign()) {
2083 if (DVR->getAddress() == &I) {
2085 Salvaged = true;
2086 }
2087 if (DVR->getValue() != &I)
2088 continue;
2089 }
2090
2091 // Do not add DW_OP_stack_value for DbgDeclare and DbgAddr, because they
2092 // are implicitly pointing out the value as a DWARF memory location
2093 // description.
2094 bool StackValue =
2096 auto DVRLocation = DVR->location_ops();
2097 assert(
2098 is_contained(DVRLocation, &I) &&
2099 "DbgVariableIntrinsic must use salvaged instruction as its location");
2100 SmallVector<Value *, 4> AdditionalValues;
2101 // 'I' may appear more than once in DVR's location ops, and each use of 'I'
2102 // must be updated in the DIExpression and potentially have additional
2103 // values added; thus we call salvageDebugInfoImpl for each 'I' instance in
2104 // DVRLocation.
2105 Value *Op0 = nullptr;
2106 DIExpression *SalvagedExpr = DVR->getExpression();
2107 auto LocItr = find(DVRLocation, &I);
2108 while (SalvagedExpr && LocItr != DVRLocation.end()) {
2110 unsigned LocNo = std::distance(DVRLocation.begin(), LocItr);
2111 uint64_t CurrentLocOps = SalvagedExpr->getNumLocationOperands();
2112 Op0 = salvageDebugInfoImpl(I, CurrentLocOps, Ops, AdditionalValues);
2113 if (!Op0)
2114 break;
2115 SalvagedExpr =
2116 DIExpression::appendOpsToArg(SalvagedExpr, Ops, LocNo, StackValue);
2117 LocItr = std::find(++LocItr, DVRLocation.end(), &I);
2118 }
2119 // salvageDebugInfoImpl should fail on examining the first element of
2120 // DbgUsers, or none of them.
2121 if (!Op0)
2122 break;
2123
2124 SalvagedExpr = SalvagedExpr->foldConstantMath();
2125 DVR->replaceVariableLocationOp(&I, Op0);
2126 bool IsValidSalvageExpr =
2127 SalvagedExpr->getNumElements() <= MaxExpressionSize;
2128 if (AdditionalValues.empty() && IsValidSalvageExpr) {
2129 DVR->setExpression(SalvagedExpr);
2130 } else if (DVR->getType() != DbgVariableRecord::LocationType::Declare &&
2131 IsValidSalvageExpr &&
2132 DVR->getNumVariableLocationOps() + AdditionalValues.size() <=
2133 MaxDebugArgs) {
2134 DVR->addVariableLocationOps(AdditionalValues, SalvagedExpr);
2135 } else {
2136 // Do not salvage using DIArgList for dbg.addr/dbg.declare, as it is
2137 // currently only valid for stack value expressions.
2138 // Also do not salvage if the resulting DIArgList would contain an
2139 // unreasonably large number of values.
2140 DVR->setKillLocation();
2141 }
2142 LLVM_DEBUG(dbgs() << "SALVAGE: " << DVR << '\n');
2143 Salvaged = true;
2144 }
2145
2146 if (Salvaged)
2147 return;
2148
2149 for (auto *DVR : DPUsers)
2150 DVR->setKillLocation();
2151}
2152
2154 uint64_t CurrentLocOps,
2156 SmallVectorImpl<Value *> &AdditionalValues) {
2157 unsigned BitWidth = DL.getIndexSizeInBits(GEP->getPointerAddressSpace());
2158 // Rewrite a GEP into a DIExpression.
2159 SmallMapVector<Value *, APInt, 4> VariableOffsets;
2160 APInt ConstantOffset(BitWidth, 0);
2161 if (!GEP->collectOffset(DL, BitWidth, VariableOffsets, ConstantOffset))
2162 return nullptr;
2163 if (!VariableOffsets.empty() && !CurrentLocOps) {
2164 Opcodes.insert(Opcodes.begin(), {dwarf::DW_OP_LLVM_arg, 0});
2165 CurrentLocOps = 1;
2166 }
2167 for (const auto &Offset : VariableOffsets) {
2168 AdditionalValues.push_back(Offset.first);
2169 assert(Offset.second.isStrictlyPositive() &&
2170 "Expected strictly positive multiplier for offset.");
2171 Opcodes.append({dwarf::DW_OP_LLVM_arg, CurrentLocOps++, dwarf::DW_OP_constu,
2172 Offset.second.getZExtValue(), dwarf::DW_OP_mul,
2173 dwarf::DW_OP_plus});
2174 }
2175 DIExpression::appendOffset(Opcodes, ConstantOffset.getSExtValue());
2176 return GEP->getOperand(0);
2177}
2178
2180 switch (Opcode) {
2181 case Instruction::Add:
2182 return dwarf::DW_OP_plus;
2183 case Instruction::Sub:
2184 return dwarf::DW_OP_minus;
2185 case Instruction::Mul:
2186 return dwarf::DW_OP_mul;
2187 case Instruction::SDiv:
2188 return dwarf::DW_OP_div;
2189 case Instruction::SRem:
2190 return dwarf::DW_OP_mod;
2191 case Instruction::Or:
2192 return dwarf::DW_OP_or;
2193 case Instruction::And:
2194 return dwarf::DW_OP_and;
2195 case Instruction::Xor:
2196 return dwarf::DW_OP_xor;
2197 case Instruction::Shl:
2198 return dwarf::DW_OP_shl;
2199 case Instruction::LShr:
2200 return dwarf::DW_OP_shr;
2201 case Instruction::AShr:
2202 return dwarf::DW_OP_shra;
2203 default:
2204 // TODO: Salvage from each kind of binop we know about.
2205 return 0;
2206 }
2207}
2208
2209static void handleSSAValueOperands(uint64_t CurrentLocOps,
2211 SmallVectorImpl<Value *> &AdditionalValues,
2212 Instruction *I) {
2213 if (!CurrentLocOps) {
2214 Opcodes.append({dwarf::DW_OP_LLVM_arg, 0});
2215 CurrentLocOps = 1;
2216 }
2217 Opcodes.append({dwarf::DW_OP_LLVM_arg, CurrentLocOps});
2218 AdditionalValues.push_back(I->getOperand(1));
2219}
2220
2223 SmallVectorImpl<Value *> &AdditionalValues) {
2224 // Handle binary operations with constant integer operands as a special case.
2225 auto *ConstInt = dyn_cast<ConstantInt>(BI->getOperand(1));
2226 // Values wider than 64 bits cannot be represented within a DIExpression.
2227 if (ConstInt && ConstInt->getBitWidth() > 64)
2228 return nullptr;
2229
2230 Instruction::BinaryOps BinOpcode = BI->getOpcode();
2231 // Push any Constant Int operand onto the expression stack.
2232 if (ConstInt) {
2233 uint64_t Val = ConstInt->getSExtValue();
2234 // Add or Sub Instructions with a constant operand can potentially be
2235 // simplified.
2236 if (BinOpcode == Instruction::Add || BinOpcode == Instruction::Sub) {
2237 uint64_t Offset = BinOpcode == Instruction::Add ? Val : -int64_t(Val);
2239 return BI->getOperand(0);
2240 }
2241 Opcodes.append({dwarf::DW_OP_constu, Val});
2242 } else {
2243 handleSSAValueOperands(CurrentLocOps, Opcodes, AdditionalValues, BI);
2244 }
2245
2246 // Add salvaged binary operator to expression stack, if it has a valid
2247 // representation in a DIExpression.
2248 uint64_t DwarfBinOp = getDwarfOpForBinOp(BinOpcode);
2249 if (!DwarfBinOp)
2250 return nullptr;
2251 Opcodes.push_back(DwarfBinOp);
2252 return BI->getOperand(0);
2253}
2254
2256 // The signedness of the operation is implicit in the typed stack, signed and
2257 // unsigned instructions map to the same DWARF opcode.
2258 switch (Pred) {
2259 case CmpInst::ICMP_EQ:
2260 return dwarf::DW_OP_eq;
2261 case CmpInst::ICMP_NE:
2262 return dwarf::DW_OP_ne;
2263 case CmpInst::ICMP_UGT:
2264 case CmpInst::ICMP_SGT:
2265 return dwarf::DW_OP_gt;
2266 case CmpInst::ICMP_UGE:
2267 case CmpInst::ICMP_SGE:
2268 return dwarf::DW_OP_ge;
2269 case CmpInst::ICMP_ULT:
2270 case CmpInst::ICMP_SLT:
2271 return dwarf::DW_OP_lt;
2272 case CmpInst::ICMP_ULE:
2273 case CmpInst::ICMP_SLE:
2274 return dwarf::DW_OP_le;
2275 default:
2276 return 0;
2277 }
2278}
2279
2282 SmallVectorImpl<Value *> &AdditionalValues) {
2283 // Handle icmp operations with constant integer operands as a special case.
2284 auto *ConstInt = dyn_cast<ConstantInt>(Icmp->getOperand(1));
2285 // Values wider than 64 bits cannot be represented within a DIExpression.
2286 if (ConstInt && ConstInt->getBitWidth() > 64)
2287 return nullptr;
2288 // Push any Constant Int operand onto the expression stack.
2289 if (ConstInt) {
2290 if (Icmp->isSigned())
2291 Opcodes.push_back(dwarf::DW_OP_consts);
2292 else
2293 Opcodes.push_back(dwarf::DW_OP_constu);
2294 uint64_t Val = ConstInt->getSExtValue();
2295 Opcodes.push_back(Val);
2296 } else {
2297 handleSSAValueOperands(CurrentLocOps, Opcodes, AdditionalValues, Icmp);
2298 }
2299
2300 // Add salvaged binary operator to expression stack, if it has a valid
2301 // representation in a DIExpression.
2302 uint64_t DwarfIcmpOp = getDwarfOpForIcmpPred(Icmp->getPredicate());
2303 if (!DwarfIcmpOp)
2304 return nullptr;
2305 Opcodes.push_back(DwarfIcmpOp);
2306 return Icmp->getOperand(0);
2307}
2308
2311 SmallVectorImpl<Value *> &AdditionalValues) {
2312 auto &M = *I.getModule();
2313 auto &DL = M.getDataLayout();
2314
2315 if (auto *CI = dyn_cast<CastInst>(&I)) {
2316 Value *FromValue = CI->getOperand(0);
2317 // No-op casts are irrelevant for debug info.
2318 if (CI->isNoopCast(DL)) {
2319 return FromValue;
2320 }
2321
2322 Type *Type = CI->getType();
2323 if (Type->isPointerTy())
2324 Type = DL.getIntPtrType(Type);
2325 // Casts other than Trunc, SExt, or ZExt to scalar types cannot be salvaged.
2326 if (Type->isVectorTy() ||
2329 return nullptr;
2330
2331 llvm::Type *FromType = FromValue->getType();
2332 if (FromType->isPointerTy())
2333 FromType = DL.getIntPtrType(FromType);
2334
2335 unsigned FromTypeBitSize = FromType->getScalarSizeInBits();
2336 unsigned ToTypeBitSize = Type->getScalarSizeInBits();
2337
2338 auto ExtOps = DIExpression::getExtOps(FromTypeBitSize, ToTypeBitSize,
2339 isa<SExtInst>(&I));
2340 Ops.append(ExtOps.begin(), ExtOps.end());
2341 return FromValue;
2342 }
2343
2344 if (auto *GEP = dyn_cast<GetElementPtrInst>(&I))
2345 return getSalvageOpsForGEP(GEP, DL, CurrentLocOps, Ops, AdditionalValues);
2346 if (auto *BI = dyn_cast<BinaryOperator>(&I))
2347 return getSalvageOpsForBinOp(BI, CurrentLocOps, Ops, AdditionalValues);
2348 if (auto *IC = dyn_cast<ICmpInst>(&I))
2349 return getSalvageOpsForIcmpOp(IC, CurrentLocOps, Ops, AdditionalValues);
2350
2351 // *Not* to do: we should not attempt to salvage load instructions,
2352 // because the validity and lifetime of a dbg.value containing
2353 // DW_OP_deref becomes difficult to analyze. See PR40628 for examples.
2354 return nullptr;
2355}
2356
2357/// A replacement for a dbg.value expression.
2358using DbgValReplacement = std::optional<DIExpression *>;
2359
2360/// Point debug users of \p From to \p To using exprs given by \p RewriteExpr,
2361/// possibly moving/undefing users to prevent use-before-def. Returns true if
2362/// changes are made.
2364 Instruction &From, Value &To, Instruction &DomPoint, DominatorTree &DT,
2365 function_ref<DbgValReplacement(DbgVariableRecord &DVR)> RewriteDVRExpr) {
2366 // Find debug users of From.
2368 findDbgUsers(&From, DPUsers);
2369 if (DPUsers.empty())
2370 return false;
2371
2372 // Prevent use-before-def of To.
2373 bool Changed = false;
2374
2375 SmallPtrSet<DbgVariableRecord *, 1> UndefOrSalvageDVR;
2376 if (isa<Instruction>(&To)) {
2377 bool DomPointAfterFrom = From.getNextNode() == &DomPoint;
2378
2379 // DbgVariableRecord implementation of the above.
2380 for (auto *DVR : DPUsers) {
2381 Instruction *MarkedInstr = DVR->getMarker()->MarkedInstr;
2382 Instruction *NextNonDebug = MarkedInstr;
2383
2384 // It's common to see a debug user between From and DomPoint. Move it
2385 // after DomPoint to preserve the variable update without any reordering.
2386 if (DomPointAfterFrom && NextNonDebug == &DomPoint) {
2387 LLVM_DEBUG(dbgs() << "MOVE: " << *DVR << '\n');
2388 DVR->removeFromParent();
2389 DomPoint.getParent()->insertDbgRecordAfter(DVR, &DomPoint);
2390 Changed = true;
2391
2392 // Users which otherwise aren't dominated by the replacement value must
2393 // be salvaged or deleted.
2394 } else if (!DT.dominates(&DomPoint, MarkedInstr)) {
2395 UndefOrSalvageDVR.insert(DVR);
2396 }
2397 }
2398 }
2399
2400 // Update debug users without use-before-def risk.
2401 for (auto *DVR : DPUsers) {
2402 if (UndefOrSalvageDVR.count(DVR))
2403 continue;
2404
2405 DbgValReplacement DVRepl = RewriteDVRExpr(*DVR);
2406 if (!DVRepl)
2407 continue;
2408
2409 DVR->replaceVariableLocationOp(&From, &To);
2410 DVR->setExpression(*DVRepl);
2411 LLVM_DEBUG(dbgs() << "REWRITE: " << DVR << '\n');
2412 Changed = true;
2413 }
2414
2415 if (!UndefOrSalvageDVR.empty()) {
2416 // Try to salvage the remaining debug users.
2417 salvageDebugInfo(From);
2418 Changed = true;
2419 }
2420
2421 return Changed;
2422}
2423
2424/// Check if a bitcast between a value of type \p FromTy to type \p ToTy would
2425/// losslessly preserve the bits and semantics of the value. This predicate is
2426/// symmetric, i.e swapping \p FromTy and \p ToTy should give the same result.
2427///
2428/// Note that Type::canLosslesslyBitCastTo is not suitable here because it
2429/// allows semantically unequivalent bitcasts, such as <2 x i64> -> <4 x i32>,
2430/// and also does not allow lossless pointer <-> integer conversions.
2432 Type *ToTy) {
2433 // Trivially compatible types.
2434 if (FromTy == ToTy)
2435 return true;
2436
2437 // Handle compatible pointer <-> integer conversions.
2438 if (FromTy->isIntOrPtrTy() && ToTy->isIntOrPtrTy()) {
2439 bool SameSize = DL.getTypeSizeInBits(FromTy) == DL.getTypeSizeInBits(ToTy);
2440 bool LosslessConversion = !DL.isNonIntegralPointerType(FromTy) &&
2441 !DL.isNonIntegralPointerType(ToTy);
2442 return SameSize && LosslessConversion;
2443 }
2444
2445 // TODO: This is not exhaustive.
2446 return false;
2447}
2448
2450 Instruction &DomPoint, DominatorTree &DT) {
2451 // Exit early if From has no debug users.
2452 if (!From.isUsedByMetadata())
2453 return false;
2454
2455 assert(&From != &To && "Can't replace something with itself");
2456
2457 Type *FromTy = From.getType();
2458 Type *ToTy = To.getType();
2459
2460 auto IdentityDVR = [&](DbgVariableRecord &DVR) -> DbgValReplacement {
2461 return DVR.getExpression();
2462 };
2463
2464 // Handle no-op conversions.
2465 Module &M = *From.getModule();
2466 const DataLayout &DL = M.getDataLayout();
2467 if (isBitCastSemanticsPreserving(DL, FromTy, ToTy))
2468 return rewriteDebugUsers(From, To, DomPoint, DT, IdentityDVR);
2469
2470 // Handle integer-to-integer widening and narrowing.
2471 // FIXME: Use DW_OP_convert when it's available everywhere.
2472 if (FromTy->isIntegerTy() && ToTy->isIntegerTy()) {
2473 uint64_t FromBits = FromTy->getIntegerBitWidth();
2474 uint64_t ToBits = ToTy->getIntegerBitWidth();
2475 assert(FromBits != ToBits && "Unexpected no-op conversion");
2476
2477 // When the width of the result grows, assume that a debugger will only
2478 // access the low `FromBits` bits when inspecting the source variable.
2479 if (FromBits < ToBits)
2480 return rewriteDebugUsers(From, To, DomPoint, DT, IdentityDVR);
2481
2482 // The width of the result has shrunk. Use sign/zero extension to describe
2483 // the source variable's high bits.
2484 auto SignOrZeroExtDVR = [&](DbgVariableRecord &DVR) -> DbgValReplacement {
2485 DILocalVariable *Var = DVR.getVariable();
2486
2487 // Without knowing signedness, sign/zero extension isn't possible.
2488 auto Signedness = Var->getSignedness();
2489 if (!Signedness)
2490 return std::nullopt;
2491
2492 bool Signed = *Signedness == DIBasicType::Signedness::Signed;
2493 return DIExpression::appendExt(DVR.getExpression(), ToBits, FromBits,
2494 Signed);
2495 };
2496 return rewriteDebugUsers(From, To, DomPoint, DT, SignOrZeroExtDVR);
2497 }
2498
2499 // TODO: Floating-point conversions, vectors.
2500 return false;
2501}
2502
2504 Instruction *I, SmallVectorImpl<Value *> &PoisonedValues) {
2505 bool Changed = false;
2506 // RemoveDIs: erase debug-info on this instruction manually.
2507 I->dropDbgRecords();
2508 for (Use &U : I->operands()) {
2509 Value *Op = U.get();
2510 if (isa<Instruction>(Op) && !Op->getType()->isTokenTy()) {
2511 U.set(PoisonValue::get(Op->getType()));
2512 PoisonedValues.push_back(Op);
2513 Changed = true;
2514 }
2515 }
2516
2517 return Changed;
2518}
2519
2521 unsigned NumDeadInst = 0;
2522 // Delete the instructions backwards, as it has a reduced likelihood of
2523 // having to update as many def-use and use-def chains.
2524 Instruction *EndInst = BB->getTerminator(); // Last not to be deleted.
2527
2528 while (EndInst != &BB->front()) {
2529 // Delete the next to last instruction.
2530 Instruction *Inst = &*--EndInst->getIterator();
2531 if (!Inst->use_empty() && !Inst->getType()->isTokenTy())
2533 if (Inst->isEHPad() || Inst->getType()->isTokenTy()) {
2534 // EHPads can't have DbgVariableRecords attached to them, but it might be
2535 // possible for things with token type.
2536 Inst->dropDbgRecords();
2537 EndInst = Inst;
2538 continue;
2539 }
2540 ++NumDeadInst;
2541 // RemoveDIs: erasing debug-info must be done manually.
2542 Inst->dropDbgRecords();
2543 Inst->eraseFromParent();
2544 }
2545 return NumDeadInst;
2546}
2547
2548unsigned llvm::changeToUnreachable(Instruction *I, bool PreserveLCSSA,
2549 DomTreeUpdater *DTU,
2550 MemorySSAUpdater *MSSAU) {
2551 BasicBlock *BB = I->getParent();
2552
2553 if (MSSAU)
2554 MSSAU->changeToUnreachable(I);
2555
2556 SmallPtrSet<BasicBlock *, 8> UniqueSuccessors;
2557
2558 // Loop over all of the successors, removing BB's entry from any PHI
2559 // nodes.
2560 for (BasicBlock *Successor : successors(BB)) {
2561 Successor->removePredecessor(BB, PreserveLCSSA);
2562 if (DTU)
2563 UniqueSuccessors.insert(Successor);
2564 }
2565 auto *UI = new UnreachableInst(I->getContext(), I->getIterator());
2566 UI->setDebugLoc(I->getDebugLoc());
2567
2568 // All instructions after this are dead.
2569 unsigned NumInstrsRemoved = 0;
2570 BasicBlock::iterator BBI = I->getIterator(), BBE = BB->end();
2571 while (BBI != BBE) {
2572 if (!BBI->use_empty())
2573 BBI->replaceAllUsesWith(PoisonValue::get(BBI->getType()));
2574 BBI++->eraseFromParent();
2575 ++NumInstrsRemoved;
2576 }
2577 if (DTU) {
2579 Updates.reserve(UniqueSuccessors.size());
2580 for (BasicBlock *UniqueSuccessor : UniqueSuccessors)
2581 Updates.push_back({DominatorTree::Delete, BB, UniqueSuccessor});
2582 DTU->applyUpdates(Updates);
2583 }
2585 return NumInstrsRemoved;
2586}
2587
2589 SmallVector<Value *, 8> Args(II->args());
2591 II->getOperandBundlesAsDefs(OpBundles);
2592 CallInst *NewCall = CallInst::Create(II->getFunctionType(),
2593 II->getCalledOperand(), Args, OpBundles);
2594 NewCall->setCallingConv(II->getCallingConv());
2595 NewCall->setAttributes(II->getAttributes());
2596 NewCall->setDebugLoc(II->getDebugLoc());
2597 NewCall->copyMetadata(*II);
2598
2599 // If the invoke had profile metadata, try converting them for CallInst.
2600 uint64_t TotalWeight;
2601 if (NewCall->extractProfTotalWeight(TotalWeight)) {
2602 // Set the total weight if it fits into i32, otherwise reset.
2603 MDBuilder MDB(NewCall->getContext());
2604 auto NewWeights = uint32_t(TotalWeight) != TotalWeight
2605 ? nullptr
2606 : MDB.createBranchWeights({uint32_t(TotalWeight)});
2607 NewCall->setMetadata(LLVMContext::MD_prof, NewWeights);
2608 }
2609
2610 return NewCall;
2611}
2612
2613// changeToCall - Convert the specified invoke into a normal call.
2616 NewCall->takeName(II);
2617 NewCall->insertBefore(II->getIterator());
2618 II->replaceAllUsesWith(NewCall);
2619
2620 // Follow the call by a branch to the normal destination.
2621 BasicBlock *NormalDestBB = II->getNormalDest();
2622 auto *BI = UncondBrInst::Create(NormalDestBB, II->getIterator());
2623 // Although it takes place after the call itself, the new branch is still
2624 // performing part of the control-flow functionality of the invoke, so we use
2625 // II's DebugLoc.
2626 BI->setDebugLoc(II->getDebugLoc());
2627
2628 // Update PHI nodes in the unwind destination
2629 BasicBlock *BB = II->getParent();
2630 BasicBlock *UnwindDestBB = II->getUnwindDest();
2631 UnwindDestBB->removePredecessor(BB);
2632 II->eraseFromParent();
2633 if (DTU)
2634 DTU->applyUpdates({{DominatorTree::Delete, BB, UnwindDestBB}});
2635 return NewCall;
2636}
2637
2639 BasicBlock *UnwindEdge,
2640 DomTreeUpdater *DTU) {
2641 BasicBlock *BB = CI->getParent();
2642
2643 // Convert this function call into an invoke instruction. First, split the
2644 // basic block.
2645 BasicBlock *Split = SplitBlock(BB, CI, DTU, /*LI=*/nullptr, /*MSSAU*/ nullptr,
2646 CI->getName() + ".noexc");
2647
2648 // Delete the unconditional branch inserted by SplitBlock
2649 BB->back().eraseFromParent();
2650
2651 // Create the new invoke instruction.
2652 SmallVector<Value *, 8> InvokeArgs(CI->args());
2654
2655 CI->getOperandBundlesAsDefs(OpBundles);
2656
2657 // Note: we're round tripping operand bundles through memory here, and that
2658 // can potentially be avoided with a cleverer API design that we do not have
2659 // as of this time.
2660
2661 InvokeInst *II =
2663 UnwindEdge, InvokeArgs, OpBundles, CI->getName(), BB);
2664 II->setDebugLoc(CI->getDebugLoc());
2665 II->setCallingConv(CI->getCallingConv());
2666 II->setAttributes(CI->getAttributes());
2667 II->setMetadata(LLVMContext::MD_prof, CI->getMetadata(LLVMContext::MD_prof));
2668
2669 if (DTU)
2670 DTU->applyUpdates({{DominatorTree::Insert, BB, UnwindEdge}});
2671
2672 // Make sure that anything using the call now uses the invoke! This also
2673 // updates the CallGraph if present, because it uses a WeakTrackingVH.
2675
2676 // Delete the original call
2677 Split->front().eraseFromParent();
2678 return Split;
2679}
2680
2682 DomTreeUpdater *DTU = nullptr) {
2684 BasicBlock *BB = &F.front();
2685 Worklist.push_back(BB);
2686 Reachable[BB->getNumber()] = true;
2687 bool Changed = false;
2688 do {
2689 BB = Worklist.pop_back_val();
2690
2691 // Do a quick scan of the basic block, turning any obviously unreachable
2692 // instructions into LLVM unreachable insts. The instruction combining pass
2693 // canonicalizes unreachable insts into stores to null or undef.
2694 for (Instruction &I : *BB) {
2695 if (auto *CI = dyn_cast<CallInst>(&I)) {
2696 Value *Callee = CI->getCalledOperand();
2697 // Handle intrinsic calls.
2698 if (Function *F = dyn_cast<Function>(Callee)) {
2699 auto IntrinsicID = F->getIntrinsicID();
2700 // Assumptions that are known to be false are equivalent to
2701 // unreachable. Also, if the condition is undefined, then we make the
2702 // choice most beneficial to the optimizer, and choose that to also be
2703 // unreachable.
2704 if (IntrinsicID == Intrinsic::assume) {
2705 if (match(CI->getArgOperand(0), m_CombineOr(m_Zero(), m_Undef()))) {
2706 // Don't insert a call to llvm.trap right before the unreachable.
2707 changeToUnreachable(CI, false, DTU);
2708 Changed = true;
2709 break;
2710 }
2711 } else if (IntrinsicID == Intrinsic::experimental_guard) {
2712 // A call to the guard intrinsic bails out of the current
2713 // compilation unit if the predicate passed to it is false. If the
2714 // predicate is a constant false, then we know the guard will bail
2715 // out of the current compile unconditionally, so all code following
2716 // it is dead.
2717 //
2718 // Note: unlike in llvm.assume, it is not "obviously profitable" for
2719 // guards to treat `undef` as `false` since a guard on `undef` can
2720 // still be useful for widening.
2721 if (match(CI->getArgOperand(0), m_Zero()))
2722 if (!isa<UnreachableInst>(CI->getNextNode())) {
2723 changeToUnreachable(CI->getNextNode(), false, DTU);
2724 Changed = true;
2725 break;
2726 }
2727 }
2728 } else if ((isa<ConstantPointerNull>(Callee) &&
2729 !NullPointerIsDefined(CI->getFunction(),
2730 cast<PointerType>(Callee->getType())
2731 ->getAddressSpace())) ||
2732 isa<UndefValue>(Callee)) {
2733 changeToUnreachable(CI, false, DTU);
2734 Changed = true;
2735 break;
2736 }
2737 if (CI->doesNotReturn() && !CI->isMustTailCall()) {
2738 // If we found a call to a no-return function, insert an unreachable
2739 // instruction after it. Make sure there isn't *already* one there
2740 // though.
2741 if (!isa<UnreachableInst>(CI->getNextNode())) {
2742 // Don't insert a call to llvm.trap right before the unreachable.
2743 changeToUnreachable(CI->getNextNode(), false, DTU);
2744 Changed = true;
2745 }
2746 break;
2747 }
2748 } else if (auto *SI = dyn_cast<StoreInst>(&I)) {
2749 // Store to undef and store to null are undefined and used to signal
2750 // that they should be changed to unreachable by passes that can't
2751 // modify the CFG.
2752
2753 // Don't touch volatile stores.
2754 if (SI->isVolatile()) continue;
2755
2756 Value *Ptr = SI->getOperand(1);
2757
2758 if (isa<UndefValue>(Ptr) ||
2760 !NullPointerIsDefined(SI->getFunction(),
2761 SI->getPointerAddressSpace()))) {
2762 changeToUnreachable(SI, false, DTU);
2763 Changed = true;
2764 break;
2765 }
2766 }
2767 }
2768
2769 Instruction *Terminator = BB->getTerminator();
2770 if (auto *II = dyn_cast<InvokeInst>(Terminator)) {
2771 // Turn invokes that call 'nounwind' functions into ordinary calls.
2772 Value *Callee = II->getCalledOperand();
2773 if ((isa<ConstantPointerNull>(Callee) &&
2774 !NullPointerIsDefined(BB->getParent())) ||
2775 isa<UndefValue>(Callee)) {
2776 changeToUnreachable(II, false, DTU);
2777 Changed = true;
2778 } else {
2779 if (II->doesNotReturn() &&
2780 !isa<UnreachableInst>(II->getNormalDest()->front())) {
2781 // If we found an invoke of a no-return function,
2782 // create a new empty basic block with an `unreachable` terminator,
2783 // and set it as the normal destination for the invoke,
2784 // unless that is already the case.
2785 // Note that the original normal destination could have other uses.
2786 BasicBlock *OrigNormalDest = II->getNormalDest();
2787 OrigNormalDest->removePredecessor(II->getParent());
2788 LLVMContext &Ctx = II->getContext();
2789 BasicBlock *UnreachableNormalDest = BasicBlock::Create(
2790 Ctx, OrigNormalDest->getName() + ".unreachable",
2791 II->getFunction(), OrigNormalDest);
2792 Reachable.resize(II->getFunction()->getMaxBlockNumber());
2793 auto *UI = new UnreachableInst(Ctx, UnreachableNormalDest);
2794 UI->setDebugLoc(DebugLoc::getTemporary());
2795 II->setNormalDest(UnreachableNormalDest);
2796 if (DTU)
2797 DTU->applyUpdates(
2798 {{DominatorTree::Delete, BB, OrigNormalDest},
2799 {DominatorTree::Insert, BB, UnreachableNormalDest}});
2800 Changed = true;
2801 }
2802 if (II->doesNotThrow() && canSimplifyInvokeNoUnwind(&F)) {
2803 if (II->use_empty() && !II->mayHaveSideEffects()) {
2804 // jump to the normal destination branch.
2805 BasicBlock *NormalDestBB = II->getNormalDest();
2806 BasicBlock *UnwindDestBB = II->getUnwindDest();
2807 UncondBrInst::Create(NormalDestBB, II->getIterator());
2808 UnwindDestBB->removePredecessor(II->getParent());
2809 II->eraseFromParent();
2810 if (DTU)
2811 DTU->applyUpdates({{DominatorTree::Delete, BB, UnwindDestBB}});
2812 } else
2813 changeToCall(II, DTU);
2814 Changed = true;
2815 }
2816 }
2817 } else if (auto *CatchSwitch = dyn_cast<CatchSwitchInst>(Terminator)) {
2818 // Remove catchpads which cannot be reached.
2819 struct CatchPadDenseMapInfo {
2820 static CatchPadInst *getEmptyKey() {
2822 }
2823
2824 static unsigned getHashValue(CatchPadInst *CatchPad) {
2825 return static_cast<unsigned>(hash_combine_range(
2826 CatchPad->value_op_begin(), CatchPad->value_op_end()));
2827 }
2828
2829 static bool isEqual(CatchPadInst *LHS, CatchPadInst *RHS) {
2830 if (LHS == getEmptyKey() || RHS == getEmptyKey())
2831 return LHS == RHS;
2832 return LHS->isIdenticalTo(RHS);
2833 }
2834 };
2835
2836 SmallDenseMap<BasicBlock *, int, 8> NumPerSuccessorCases;
2837 // Set of unique CatchPads.
2839 CatchPadDenseMapInfo, detail::DenseSetPair<CatchPadInst *>>
2840 HandlerSet;
2842 for (CatchSwitchInst::handler_iterator I = CatchSwitch->handler_begin(),
2843 E = CatchSwitch->handler_end();
2844 I != E; ++I) {
2845 BasicBlock *HandlerBB = *I;
2846 if (DTU)
2847 ++NumPerSuccessorCases[HandlerBB];
2848 auto *CatchPad = cast<CatchPadInst>(HandlerBB->getFirstNonPHIIt());
2849 if (!HandlerSet.insert({CatchPad, Empty}).second) {
2850 if (DTU)
2851 --NumPerSuccessorCases[HandlerBB];
2852 CatchSwitch->removeHandler(I);
2853 --I;
2854 --E;
2855 Changed = true;
2856 }
2857 }
2858 if (DTU) {
2859 std::vector<DominatorTree::UpdateType> Updates;
2860 for (const std::pair<BasicBlock *, int> &I : NumPerSuccessorCases)
2861 if (I.second == 0)
2862 Updates.push_back({DominatorTree::Delete, BB, I.first});
2863 DTU->applyUpdates(Updates);
2864 }
2865 }
2866
2867 Changed |= ConstantFoldTerminator(BB, true, nullptr, DTU);
2868 for (BasicBlock *Successor : successors(BB)) {
2869 if (!Reachable[Successor->getNumber()]) {
2870 Worklist.push_back(Successor);
2871 Reachable[Successor->getNumber()] = true;
2872 }
2873 }
2874 } while (!Worklist.empty());
2875 return Changed;
2876}
2877
2879 Instruction *TI = BB->getTerminator();
2880
2881 if (auto *II = dyn_cast<InvokeInst>(TI))
2882 return changeToCall(II, DTU);
2883
2884 Instruction *NewTI;
2885 BasicBlock *UnwindDest;
2886
2887 if (auto *CRI = dyn_cast<CleanupReturnInst>(TI)) {
2888 NewTI = CleanupReturnInst::Create(CRI->getCleanupPad(), nullptr, CRI->getIterator());
2889 UnwindDest = CRI->getUnwindDest();
2890 } else if (auto *CatchSwitch = dyn_cast<CatchSwitchInst>(TI)) {
2891 auto *NewCatchSwitch = CatchSwitchInst::Create(
2892 CatchSwitch->getParentPad(), nullptr, CatchSwitch->getNumHandlers(),
2893 CatchSwitch->getName(), CatchSwitch->getIterator());
2894 for (BasicBlock *PadBB : CatchSwitch->handlers())
2895 NewCatchSwitch->addHandler(PadBB);
2896
2897 NewTI = NewCatchSwitch;
2898 UnwindDest = CatchSwitch->getUnwindDest();
2899 } else {
2900 llvm_unreachable("Could not find unwind successor");
2901 }
2902
2903 NewTI->takeName(TI);
2904 NewTI->setDebugLoc(TI->getDebugLoc());
2905 UnwindDest->removePredecessor(BB);
2906 TI->replaceAllUsesWith(NewTI);
2907 TI->eraseFromParent();
2908 if (DTU)
2909 DTU->applyUpdates({{DominatorTree::Delete, BB, UnwindDest}});
2910 return NewTI;
2911}
2912
2913/// removeUnreachableBlocks - Remove blocks that are not reachable, even
2914/// if they are in a dead cycle. Return true if a change was made, false
2915/// otherwise.
2917 MemorySSAUpdater *MSSAU) {
2918 SmallVector<bool, 16> Reachable(F.getMaxBlockNumber());
2919 bool Changed = markAliveBlocks(F, Reachable, DTU);
2920
2921 // Are there any blocks left to actually delete?
2922 SmallSetVector<BasicBlock *, 8> BlocksToRemove;
2923 for (BasicBlock &BB : F) {
2924 // Skip reachable basic blocks
2925 if (Reachable[BB.getNumber()])
2926 continue;
2927 // Skip already-deleted blocks
2928 if (DTU && DTU->isBBPendingDeletion(&BB))
2929 continue;
2930 BlocksToRemove.insert(&BB);
2931 }
2932
2933 if (BlocksToRemove.empty())
2934 return Changed;
2935
2936 Changed = true;
2937 NumRemoved += BlocksToRemove.size();
2938
2939 if (MSSAU)
2940 MSSAU->removeBlocks(BlocksToRemove);
2941
2942 DeleteDeadBlocks(BlocksToRemove.takeVector(), DTU);
2943
2944 return Changed;
2945}
2946
2947/// If AAOnly is set, only intersect alias analysis metadata and preserve other
2948/// known metadata. Unknown metadata is always dropped.
2949static void combineMetadata(Instruction *K, const Instruction *J,
2950 bool DoesKMove, bool AAOnly = false) {
2952 K->getAllMetadataOtherThanDebugLoc(Metadata);
2953 for (const auto &MD : Metadata) {
2954 unsigned Kind = MD.first;
2955 MDNode *JMD = J->getMetadata(Kind);
2956 MDNode *KMD = MD.second;
2957
2958 // TODO: Assert that this switch is exhaustive for fixed MD kinds.
2959 switch (Kind) {
2960 default:
2961 K->setMetadata(Kind, nullptr); // Remove unknown metadata
2962 break;
2963 case LLVMContext::MD_dbg:
2964 llvm_unreachable("getAllMetadataOtherThanDebugLoc returned a MD_dbg");
2965 case LLVMContext::MD_DIAssignID:
2966 if (!AAOnly)
2967 K->mergeDIAssignID(J);
2968 break;
2969 case LLVMContext::MD_tbaa:
2970 if (DoesKMove)
2971 K->setMetadata(Kind, MDNode::getMostGenericTBAA(JMD, KMD));
2972 break;
2973 case LLVMContext::MD_alias_scope:
2974 if (DoesKMove)
2975 K->setMetadata(Kind, MDNode::getMostGenericAliasScope(JMD, KMD));
2976 break;
2977 case LLVMContext::MD_noalias:
2978 case LLVMContext::MD_mem_parallel_loop_access:
2979 if (DoesKMove)
2980 K->setMetadata(Kind, MDNode::intersect(JMD, KMD));
2981 break;
2982 case LLVMContext::MD_access_group:
2983 if (DoesKMove)
2984 K->setMetadata(LLVMContext::MD_access_group,
2985 intersectAccessGroups(K, J));
2986 break;
2987 case LLVMContext::MD_range:
2988 if (!AAOnly && (DoesKMove || !K->hasMetadata(LLVMContext::MD_noundef)))
2989 K->setMetadata(Kind, MDNode::getMostGenericRange(JMD, KMD));
2990 break;
2991 case LLVMContext::MD_nofpclass:
2992 if (!AAOnly && (DoesKMove || !K->hasMetadata(LLVMContext::MD_noundef)))
2993 K->setMetadata(Kind, MDNode::getMostGenericNoFPClass(JMD, KMD));
2994 break;
2995 case LLVMContext::MD_fpmath:
2996 if (!AAOnly)
2997 K->setMetadata(Kind, MDNode::getMostGenericFPMath(JMD, KMD));
2998 break;
2999 case LLVMContext::MD_invariant_load:
3000 case LLVMContext::MD_invariant_group:
3001 // If K moves, only keep the invariant metadata if it is present on
3002 // both instructions; otherwise the invariant would be asserted on a
3003 // path (J's) that never promised it. If K does not move, K stays on
3004 // its original path, so its existing metadata remains valid.
3005 if (DoesKMove)
3006 K->setMetadata(Kind, JMD);
3007 break;
3008 case LLVMContext::MD_nonnull:
3009 if (!AAOnly && (DoesKMove || !K->hasMetadata(LLVMContext::MD_noundef)))
3010 K->setMetadata(Kind, JMD);
3011 break;
3012 // Keep empty cases for prof, mmra, memprof, and callsite to prevent them
3013 // from being removed as unknown metadata. The actual merging is handled
3014 // separately below.
3015 case LLVMContext::MD_prof:
3016 case LLVMContext::MD_mmra:
3017 case LLVMContext::MD_memprof:
3018 case LLVMContext::MD_callsite:
3019 break;
3020 case LLVMContext::MD_callee_type:
3021 if (!AAOnly) {
3022 K->setMetadata(LLVMContext::MD_callee_type,
3024 }
3025 break;
3026 case LLVMContext::MD_align:
3027 if (!AAOnly && (DoesKMove || !K->hasMetadata(LLVMContext::MD_noundef)))
3028 K->setMetadata(
3030 break;
3031 case LLVMContext::MD_dereferenceable:
3032 case LLVMContext::MD_dereferenceable_or_null:
3033 if (!AAOnly && DoesKMove)
3034 K->setMetadata(Kind,
3036 break;
3037 case LLVMContext::MD_preserve_access_index:
3038 // Preserve !preserve.access.index in K.
3039 break;
3040 case LLVMContext::MD_noundef:
3041 // If K does move, keep noundef if it is present in both instructions.
3042 if (!AAOnly && DoesKMove)
3043 K->setMetadata(Kind, JMD);
3044 break;
3045 case LLVMContext::MD_nontemporal:
3046 // Preserve !nontemporal if it is present on both instructions.
3047 if (!AAOnly)
3048 K->setMetadata(Kind, JMD);
3049 break;
3050 case LLVMContext::MD_mem_cache_hint:
3051 // Preserve !mem.cache_hint only if it is present and equivalent on both
3052 // instructions.
3053 if (!AAOnly && KMD != JMD)
3054 K->setMetadata(Kind, nullptr);
3055 break;
3056 case LLVMContext::MD_noalias_addrspace:
3057 if (DoesKMove)
3058 K->setMetadata(Kind,
3060 break;
3061 case LLVMContext::MD_nosanitize:
3062 // Preserve !nosanitize if both K and J have it.
3063 K->setMetadata(Kind, JMD);
3064 break;
3065 case LLVMContext::MD_captures:
3066 K->setMetadata(
3068 K->getContext(), MDNode::toCaptureComponents(JMD) |
3070 break;
3071 case LLVMContext::MD_alloc_token:
3072 // Preserve !alloc_token if both K and J have it, and they are equal.
3073 if (KMD != JMD)
3074 K->setMetadata(Kind, nullptr);
3075 break;
3076 }
3077 }
3078
3079 // Merge MMRAs.
3080 // This is handled separately because we also want to handle cases where K
3081 // doesn't have tags but J does.
3082 auto JMMRA = J->getMetadata(LLVMContext::MD_mmra);
3083 auto KMMRA = K->getMetadata(LLVMContext::MD_mmra);
3084 if (JMMRA || KMMRA) {
3085 K->setMetadata(LLVMContext::MD_mmra,
3086 MMRAMetadata::combine(K->getContext(), JMMRA, KMMRA));
3087 }
3088
3089 // Merge memprof metadata.
3090 // Handle separately to support cases where only one instruction has the
3091 // metadata.
3092 auto *JMemProf = J->getMetadata(LLVMContext::MD_memprof);
3093 auto *KMemProf = K->getMetadata(LLVMContext::MD_memprof);
3094 if (!AAOnly && (JMemProf || KMemProf)) {
3095 K->setMetadata(LLVMContext::MD_memprof,
3096 MDNode::getMergedMemProfMetadata(KMemProf, JMemProf));
3097 }
3098
3099 // Merge callsite metadata.
3100 // Handle separately to support cases where only one instruction has the
3101 // metadata.
3102 auto *JCallSite = J->getMetadata(LLVMContext::MD_callsite);
3103 auto *KCallSite = K->getMetadata(LLVMContext::MD_callsite);
3104 if (!AAOnly && (JCallSite || KCallSite)) {
3105 K->setMetadata(LLVMContext::MD_callsite,
3106 MDNode::getMergedCallsiteMetadata(KCallSite, JCallSite));
3107 }
3108
3109 // Merge prof metadata.
3110 // Handle separately to support cases where only one instruction has the
3111 // metadata.
3112 auto *JProf = J->getMetadata(LLVMContext::MD_prof);
3113 auto *KProf = K->getMetadata(LLVMContext::MD_prof);
3114 if (!AAOnly && (JProf || KProf)) {
3115 K->setMetadata(LLVMContext::MD_prof,
3116 MDNode::getMergedProfMetadata(KProf, JProf, K, J));
3117 }
3118}
3119
3121 bool DoesKMove) {
3122 combineMetadata(K, J, DoesKMove);
3123}
3124
3126 combineMetadata(K, J, /*DoesKMove=*/true, /*AAOnly=*/true);
3127}
3128
3129void llvm::copyMetadataForLoad(LoadInst &Dest, const LoadInst &Source) {
3131 Source.getAllMetadata(MD);
3132 MDBuilder MDB(Dest.getContext());
3133 Type *NewType = Dest.getType();
3134 const DataLayout &DL = Source.getDataLayout();
3135 for (const auto &MDPair : MD) {
3136 unsigned ID = MDPair.first;
3137 MDNode *N = MDPair.second;
3138 // Note, essentially every kind of metadata should be preserved here! This
3139 // routine is supposed to clone a load instruction changing *only its type*.
3140 // The only metadata it makes sense to drop is metadata which is invalidated
3141 // when the pointer type changes. This should essentially never be the case
3142 // in LLVM, but we explicitly switch over only known metadata to be
3143 // conservatively correct. If you are adding metadata to LLVM which pertains
3144 // to loads, you almost certainly want to add it here.
3145 switch (ID) {
3146 case LLVMContext::MD_dbg:
3147 case LLVMContext::MD_tbaa:
3148 case LLVMContext::MD_prof:
3149 case LLVMContext::MD_fpmath:
3150 case LLVMContext::MD_tbaa_struct:
3151 case LLVMContext::MD_invariant_load:
3152 case LLVMContext::MD_alias_scope:
3153 case LLVMContext::MD_noalias:
3154 case LLVMContext::MD_nontemporal:
3155 case LLVMContext::MD_mem_cache_hint:
3156 case LLVMContext::MD_mem_parallel_loop_access:
3157 case LLVMContext::MD_access_group:
3158 case LLVMContext::MD_noundef:
3159 case LLVMContext::MD_noalias_addrspace:
3160 case LLVMContext::MD_invariant_group:
3161 // All of these directly apply.
3162 Dest.setMetadata(ID, N);
3163 break;
3164
3165 case LLVMContext::MD_nonnull:
3166 copyNonnullMetadata(Source, N, Dest);
3167 break;
3168
3169 case LLVMContext::MD_align:
3170 case LLVMContext::MD_dereferenceable:
3171 case LLVMContext::MD_dereferenceable_or_null:
3172 // These only directly apply if the new type is also a pointer.
3173 if (NewType->isPointerTy())
3174 Dest.setMetadata(ID, N);
3175 break;
3176
3177 case LLVMContext::MD_range:
3178 copyRangeMetadata(DL, Source, N, Dest);
3179 break;
3180
3181 case LLVMContext::MD_nofpclass:
3182 // This only applies if the floating-point type interpretation. This
3183 // should handle degenerate cases like casting between a scalar and single
3184 // element vector.
3185 if (NewType->getScalarType() == Source.getType()->getScalarType())
3186 Dest.setMetadata(ID, N);
3187 break;
3188 }
3189 }
3190}
3191
3193 auto *ReplInst = dyn_cast<Instruction>(Repl);
3194 if (!ReplInst)
3195 return;
3196
3197 // Patch the replacement so that it is not more restrictive than the value
3198 // being replaced.
3199 WithOverflowInst *UnusedWO;
3200 // When replacing the result of a llvm.*.with.overflow intrinsic with a
3201 // overflowing binary operator, nuw/nsw flags may no longer hold.
3202 if (isa<OverflowingBinaryOperator>(ReplInst) &&
3204 ReplInst->dropPoisonGeneratingFlags();
3205 // Note that if 'I' is a load being replaced by some operation,
3206 // for example, by an arithmetic operation, then andIRFlags()
3207 // would just erase all math flags from the original arithmetic
3208 // operation, which is clearly not wanted and not needed.
3209 else if (!isa<LoadInst>(I))
3210 ReplInst->andIRFlags(I);
3211
3212 // Handle attributes.
3213 if (auto *CB1 = dyn_cast<CallBase>(ReplInst)) {
3214 if (auto *CB2 = dyn_cast<CallBase>(I)) {
3215 bool Success = CB1->tryIntersectAttributes(CB2);
3216 assert(Success && "We should not be trying to sink callbases "
3217 "with non-intersectable attributes");
3218 // For NDEBUG Compile.
3219 (void)Success;
3220 }
3221 }
3222
3223 // FIXME: If both the original and replacement value are part of the
3224 // same control-flow region (meaning that the execution of one
3225 // guarantees the execution of the other), then we can combine the
3226 // noalias scopes here and do better than the general conservative
3227 // answer used in combineMetadata().
3228
3229 // In general, GVN unifies expressions over different control-flow
3230 // regions, and so we need a conservative combination of the noalias
3231 // scopes.
3232 combineMetadataForCSE(ReplInst, I, false);
3233}
3234
3235template <typename ShouldReplaceFn>
3236static unsigned replaceDominatedUsesWith(Value *From, Value *To,
3237 const ShouldReplaceFn &ShouldReplace) {
3238 assert(From->getType() == To->getType());
3239
3240 unsigned Count = 0;
3241 for (Use &U : llvm::make_early_inc_range(From->uses())) {
3242 auto *II = dyn_cast<IntrinsicInst>(U.getUser());
3243 if (II && II->getIntrinsicID() == Intrinsic::fake_use)
3244 continue;
3245 if (!ShouldReplace(U))
3246 continue;
3247 LLVM_DEBUG(dbgs() << "Replace dominated use of '";
3248 From->printAsOperand(dbgs());
3249 dbgs() << "' with " << *To << " in " << *U.getUser() << "\n");
3250 U.set(To);
3251 ++Count;
3252 }
3253 return Count;
3254}
3255
3257 assert(From->getType() == To->getType());
3258 auto *BB = From->getParent();
3259 unsigned Count = 0;
3260
3261 for (Use &U : llvm::make_early_inc_range(From->uses())) {
3262 auto *I = cast<Instruction>(U.getUser());
3263 if (I->getParent() == BB)
3264 continue;
3265 U.set(To);
3266 ++Count;
3267 }
3268 return Count;
3269}
3270
3272 DominatorTree &DT,
3273 const BasicBlockEdge &Root) {
3274 auto Dominates = [&](const Use &U) { return DT.dominates(Root, U); };
3275 return ::replaceDominatedUsesWith(From, To, Dominates);
3276}
3277
3279 DominatorTree &DT,
3280 const BasicBlock *BB) {
3281 auto Dominates = [&](const Use &U) { return DT.dominates(BB, U); };
3282 return ::replaceDominatedUsesWith(From, To, Dominates);
3283}
3284
3286 DominatorTree &DT,
3287 const Instruction *I) {
3288 auto Dominates = [&](const Use &U) { return DT.dominates(I, U); };
3289 return ::replaceDominatedUsesWith(From, To, Dominates);
3290}
3291
3293 Value *From, Value *To, DominatorTree &DT, const BasicBlockEdge &Root,
3294 function_ref<bool(const Use &U, const Value *To)> ShouldReplace) {
3295 auto DominatesAndShouldReplace = [&](const Use &U) {
3296 return DT.dominates(Root, U) && ShouldReplace(U, To);
3297 };
3298 return ::replaceDominatedUsesWith(From, To, DominatesAndShouldReplace);
3299}
3300
3302 Value *From, Value *To, DominatorTree &DT, const BasicBlock *BB,
3303 function_ref<bool(const Use &U, const Value *To)> ShouldReplace) {
3304 auto DominatesAndShouldReplace = [&](const Use &U) {
3305 return DT.dominates(BB, U) && ShouldReplace(U, To);
3306 };
3307 return ::replaceDominatedUsesWith(From, To, DominatesAndShouldReplace);
3308}
3309
3311 Value *From, Value *To, DominatorTree &DT, const Instruction *I,
3312 function_ref<bool(const Use &U, const Value *To)> ShouldReplace) {
3313 auto DominatesAndShouldReplace = [&](const Use &U) {
3314 return DT.dominates(I, U) && ShouldReplace(U, To);
3315 };
3316 return ::replaceDominatedUsesWith(From, To, DominatesAndShouldReplace);
3317}
3318
3320 const TargetLibraryInfo &TLI) {
3321 // Check if the function is specifically marked as a gc leaf function.
3322 if (Call->hasFnAttr("gc-leaf-function"))
3323 return true;
3324 if (const Function *F = Call->getCalledFunction()) {
3325 if (F->hasFnAttribute("gc-leaf-function"))
3326 return true;
3327
3328 if (auto IID = F->getIntrinsicID()) {
3329 // Most LLVM intrinsics do not take safepoints.
3330 return IID != Intrinsic::experimental_gc_statepoint &&
3331 IID != Intrinsic::experimental_deoptimize &&
3332 IID != Intrinsic::memcpy_element_unordered_atomic &&
3333 IID != Intrinsic::memmove_element_unordered_atomic;
3334 }
3335 }
3336
3337 // Lib calls can be materialized by some passes, and won't be
3338 // marked as 'gc-leaf-function.' All available Libcalls are
3339 // GC-leaf.
3340 LibFunc LF;
3341 if (TLI.getLibFunc(*Call, LF)) {
3342 return TLI.has(LF);
3343 }
3344
3345 return false;
3346}
3347
3349 LoadInst &NewLI) {
3350 auto *NewTy = NewLI.getType();
3351
3352 // This only directly applies if the new type is also a pointer.
3353 if (NewTy->isPointerTy()) {
3354 NewLI.setMetadata(LLVMContext::MD_nonnull, N);
3355 return;
3356 }
3357
3358 // The only other translation we can do is to integral loads with !range
3359 // metadata.
3360 if (!NewTy->isIntegerTy())
3361 return;
3362
3363 MDBuilder MDB(NewLI.getContext());
3364 const Value *Ptr = OldLI.getPointerOperand();
3365 auto *ITy = cast<IntegerType>(NewTy);
3366 auto *NullInt = ConstantExpr::getPtrToInt(
3368 auto *NonNullInt = ConstantExpr::getAdd(NullInt, ConstantInt::get(ITy, 1));
3369 NewLI.setMetadata(LLVMContext::MD_range,
3370 MDB.createRange(NonNullInt, NullInt));
3371}
3372
3374 MDNode *N, LoadInst &NewLI) {
3375 auto *NewTy = NewLI.getType();
3376 // Simply copy the metadata if the type did not change.
3377 if (NewTy == OldLI.getType()) {
3378 NewLI.setMetadata(LLVMContext::MD_range, N);
3379 return;
3380 }
3381
3382 // Give up unless it is converted to a pointer where there is a single very
3383 // valuable mapping we can do reliably.
3384 // FIXME: It would be nice to propagate this in more ways, but the type
3385 // conversions make it hard.
3386 if (!NewTy->isPointerTy())
3387 return;
3388
3389 unsigned BitWidth = DL.getPointerTypeSizeInBits(NewTy);
3390 if (BitWidth == OldLI.getType()->getScalarSizeInBits() &&
3391 !getConstantRangeFromMetadata(*N).contains(APInt(BitWidth, 0))) {
3392 MDNode *NN = MDNode::get(OldLI.getContext(), {});
3393 NewLI.setMetadata(LLVMContext::MD_nonnull, NN);
3394 }
3395}
3396
3399 findDbgUsers(&I, DPUsers);
3400 for (auto *DVR : DPUsers)
3401 DVR->eraseFromParent();
3402}
3403
3405 BasicBlock *BB) {
3406 // Since we are moving the instructions out of its basic block, we do not
3407 // retain their original debug locations (DILocations) and debug intrinsic
3408 // instructions.
3409 //
3410 // Doing so would degrade the debugging experience.
3411 //
3412 // FIXME: Issue #152767: debug info should also be the same as the
3413 // original branch, **if** the user explicitly indicated that (for sampling
3414 // PGO)
3415 //
3416 // Currently, when hoisting the instructions, we take the following actions:
3417 // - Remove their debug intrinsic instructions.
3418 // - Set their debug locations to the values from the insertion point.
3419 //
3420 // As per PR39141 (comment #8), the more fundamental reason why the dbg.values
3421 // need to be deleted, is because there will not be any instructions with a
3422 // DILocation in either branch left after performing the transformation. We
3423 // can only insert a dbg.value after the two branches are joined again.
3424 //
3425 // See PR38762, PR39243 for more details.
3426 //
3427 // TODO: Extend llvm.dbg.value to take more than one SSA Value (PR39141) to
3428 // encode predicated DIExpressions that yield different results on different
3429 // code paths.
3430
3431 for (BasicBlock::iterator II = BB->begin(), IE = BB->end(); II != IE;) {
3432 Instruction *I = &*II;
3433 I->dropUBImplyingAttrsAndMetadata();
3434 if (I->isUsedByMetadata())
3435 dropDebugUsers(*I);
3436 // RemoveDIs: drop debug-info too as the following code does.
3437 I->dropDbgRecords();
3438 if (I->isDebugOrPseudoInst()) {
3439 // Remove DbgInfo and pseudo probe Intrinsics.
3440 II = I->eraseFromParent();
3441 continue;
3442 }
3443 I->setDebugLoc(InsertPt->getDebugLoc());
3444 ++II;
3445 }
3446 DomBlock->splice(InsertPt->getIterator(), BB, BB->begin(),
3447 BB->getTerminator()->getIterator());
3448}
3449
3451 Type &Ty) {
3452 // Create integer constant expression.
3453 auto createIntegerExpression = [&DIB](const Constant &CV) -> DIExpression * {
3454 const APInt &API = cast<ConstantInt>(&CV)->getValue();
3455 std::optional<int64_t> InitIntOpt;
3456 if (API.getBitWidth() == 1)
3457 InitIntOpt = API.tryZExtValue();
3458 else
3459 InitIntOpt = API.trySExtValue();
3460 return InitIntOpt ? DIB.createConstantValueExpression(
3461 static_cast<uint64_t>(*InitIntOpt))
3462 : nullptr;
3463 };
3464
3465 if (isa<ConstantInt>(C))
3466 return createIntegerExpression(C);
3467
3468 auto *FP = dyn_cast<ConstantFP>(&C);
3469 if (FP && Ty.isFloatingPointTy() && Ty.getScalarSizeInBits() <= 64) {
3470 const APFloat &APF = FP->getValueAPF();
3471 APInt const &API = APF.bitcastToAPInt();
3472 if (uint64_t Temp = API.getZExtValue())
3473 return DIB.createConstantValueExpression(Temp);
3474 return DIB.createConstantValueExpression(*API.getRawData());
3475 }
3476
3477 if (!Ty.isPointerTy())
3478 return nullptr;
3479
3481 return DIB.createConstantValueExpression(0);
3482
3483 if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(&C))
3484 if (CE->getOpcode() == Instruction::IntToPtr) {
3485 const Value *V = CE->getOperand(0);
3486 if (auto CI = dyn_cast_or_null<ConstantInt>(V))
3487 return createIntegerExpression(*CI);
3488 }
3489 return nullptr;
3490}
3491
3493 auto RemapDebugOperands = [&Mapping](auto *DV, auto Set) {
3494 for (auto *Op : Set) {
3495 auto I = Mapping.find(Op);
3496 if (I != Mapping.end())
3497 DV->replaceVariableLocationOp(Op, I->second, /*AllowEmpty=*/true);
3498 }
3499 };
3500 auto RemapAssignAddress = [&Mapping](auto *DA) {
3501 auto I = Mapping.find(DA->getAddress());
3502 if (I != Mapping.end())
3503 DA->setAddress(I->second);
3504 };
3505 for (DbgVariableRecord &DVR : filterDbgVars(Inst->getDbgRecordRange())) {
3506 RemapDebugOperands(&DVR, DVR.location_ops());
3507 if (DVR.isDbgAssign())
3508 RemapAssignAddress(&DVR);
3509 }
3510}
3511
3512namespace {
3513
3514/// A potential constituent of a bitreverse or bswap expression. See
3515/// collectBitParts for a fuller explanation.
3516struct BitPart {
3517 BitPart(Value *P, unsigned BW) : Provider(P) {
3518 Provenance.resize(BW);
3519 }
3520
3521 /// The Value that this is a bitreverse/bswap of.
3522 Value *Provider;
3523
3524 /// The "provenance" of each bit. Provenance[A] = B means that bit A
3525 /// in Provider becomes bit B in the result of this expression.
3526 SmallVector<int8_t, 32> Provenance; // int8_t means max size is i128.
3527
3528 enum { Unset = -1 };
3529};
3530
3531} // end anonymous namespace
3532
3533/// Analyze the specified subexpression and see if it is capable of providing
3534/// pieces of a bswap or bitreverse. The subexpression provides a potential
3535/// piece of a bswap or bitreverse if it can be proved that each non-zero bit in
3536/// the output of the expression came from a corresponding bit in some other
3537/// value. This function is recursive, and the end result is a mapping of
3538/// bitnumber to bitnumber. It is the caller's responsibility to validate that
3539/// the bitnumber to bitnumber mapping is correct for a bswap or bitreverse.
3540///
3541/// For example, if the current subexpression if "(shl i32 %X, 24)" then we know
3542/// that the expression deposits the low byte of %X into the high byte of the
3543/// result and that all other bits are zero. This expression is accepted and a
3544/// BitPart is returned with Provider set to %X and Provenance[24-31] set to
3545/// [0-7].
3546///
3547/// For vector types, all analysis is performed at the per-element level. No
3548/// cross-element analysis is supported (shuffle/insertion/reduction), and all
3549/// constant masks must be splatted across all elements.
3550///
3551/// To avoid revisiting values, the BitPart results are memoized into the
3552/// provided map. To avoid unnecessary copying of BitParts, BitParts are
3553/// constructed in-place in the \c BPS map. Because of this \c BPS needs to
3554/// store BitParts objects, not pointers. As we need the concept of a nullptr
3555/// BitParts (Value has been analyzed and the analysis failed), we an Optional
3556/// type instead to provide the same functionality.
3557///
3558/// Because we pass around references into \c BPS, we must use a container that
3559/// does not invalidate internal references (std::map instead of DenseMap).
3560static const std::optional<BitPart> &
3561collectBitParts(Value *V, bool MatchBSwaps, bool MatchBitReversals,
3562 std::map<Value *, std::optional<BitPart>> &BPS, int Depth,
3563 bool &FoundRoot) {
3564 auto [I, Inserted] = BPS.try_emplace(V);
3565 if (!Inserted)
3566 return I->second;
3567
3568 auto &Result = I->second;
3569 auto BitWidth = V->getType()->getScalarSizeInBits();
3570
3571 // Can't do integer/elements > 128 bits.
3572 if (BitWidth > 128)
3573 return Result;
3574
3575 // Prevent stack overflow by limiting the recursion depth
3577 LLVM_DEBUG(dbgs() << "collectBitParts max recursion depth reached.\n");
3578 return Result;
3579 }
3580
3581 if (auto *I = dyn_cast<Instruction>(V)) {
3582 Value *X, *Y;
3583 const APInt *C;
3584
3585 // If this is an or instruction, it may be an inner node of the bswap.
3586 if (match(V, m_Or(m_Value(X), m_Value(Y)))) {
3587 // Check we have both sources and they are from the same provider.
3588 const auto &A = collectBitParts(X, MatchBSwaps, MatchBitReversals, BPS,
3589 Depth + 1, FoundRoot);
3590 if (!A || !A->Provider)
3591 return Result;
3592
3593 const auto &B = collectBitParts(Y, MatchBSwaps, MatchBitReversals, BPS,
3594 Depth + 1, FoundRoot);
3595 if (!B || A->Provider != B->Provider)
3596 return Result;
3597
3598 // Try and merge the two together.
3599 Result = BitPart(A->Provider, BitWidth);
3600 for (unsigned BitIdx = 0; BitIdx < BitWidth; ++BitIdx) {
3601 if (A->Provenance[BitIdx] != BitPart::Unset &&
3602 B->Provenance[BitIdx] != BitPart::Unset &&
3603 A->Provenance[BitIdx] != B->Provenance[BitIdx])
3604 return Result = std::nullopt;
3605
3606 if (A->Provenance[BitIdx] == BitPart::Unset)
3607 Result->Provenance[BitIdx] = B->Provenance[BitIdx];
3608 else
3609 Result->Provenance[BitIdx] = A->Provenance[BitIdx];
3610 }
3611
3612 return Result;
3613 }
3614
3615 // If this is a logical shift by a constant, recurse then shift the result.
3616 if (match(V, m_LogicalShift(m_Value(X), m_APInt(C)))) {
3617 const APInt &BitShift = *C;
3618
3619 // Ensure the shift amount is defined.
3620 if (BitShift.uge(BitWidth))
3621 return Result;
3622
3623 // For bswap-only, limit shift amounts to whole bytes, for an early exit.
3624 if (!MatchBitReversals && (BitShift.getZExtValue() % 8) != 0)
3625 return Result;
3626
3627 const auto &Res = collectBitParts(X, MatchBSwaps, MatchBitReversals, BPS,
3628 Depth + 1, FoundRoot);
3629 if (!Res)
3630 return Result;
3631 Result = Res;
3632
3633 // Perform the "shift" on BitProvenance.
3634 auto &P = Result->Provenance;
3635 if (I->getOpcode() == Instruction::Shl) {
3636 P.erase(std::prev(P.end(), BitShift.getZExtValue()), P.end());
3637 P.insert(P.begin(), BitShift.getZExtValue(), BitPart::Unset);
3638 } else {
3639 P.erase(P.begin(), std::next(P.begin(), BitShift.getZExtValue()));
3640 P.insert(P.end(), BitShift.getZExtValue(), BitPart::Unset);
3641 }
3642
3643 return Result;
3644 }
3645
3646 // If this is a logical 'and' with a mask that clears bits, recurse then
3647 // unset the appropriate bits.
3648 if (match(V, m_And(m_Value(X), m_APInt(C)))) {
3649 const APInt &AndMask = *C;
3650
3651 // Check that the mask allows a multiple of 8 bits for a bswap, for an
3652 // early exit.
3653 unsigned NumMaskedBits = AndMask.popcount();
3654 if (!MatchBitReversals && (NumMaskedBits % 8) != 0)
3655 return Result;
3656
3657 const auto &Res = collectBitParts(X, MatchBSwaps, MatchBitReversals, BPS,
3658 Depth + 1, FoundRoot);
3659 if (!Res)
3660 return Result;
3661 Result = Res;
3662
3663 for (unsigned BitIdx = 0; BitIdx < BitWidth; ++BitIdx)
3664 // If the AndMask is zero for this bit, clear the bit.
3665 if (AndMask[BitIdx] == 0)
3666 Result->Provenance[BitIdx] = BitPart::Unset;
3667 return Result;
3668 }
3669
3670 // If this is a zext instruction zero extend the result.
3671 if (match(V, m_ZExt(m_Value(X)))) {
3672 const auto &Res = collectBitParts(X, MatchBSwaps, MatchBitReversals, BPS,
3673 Depth + 1, FoundRoot);
3674 if (!Res)
3675 return Result;
3676
3677 Result = BitPart(Res->Provider, BitWidth);
3678 auto NarrowBitWidth = X->getType()->getScalarSizeInBits();
3679 for (unsigned BitIdx = 0; BitIdx < NarrowBitWidth; ++BitIdx)
3680 Result->Provenance[BitIdx] = Res->Provenance[BitIdx];
3681 for (unsigned BitIdx = NarrowBitWidth; BitIdx < BitWidth; ++BitIdx)
3682 Result->Provenance[BitIdx] = BitPart::Unset;
3683 return Result;
3684 }
3685
3686 // If this is a truncate instruction, extract the lower bits.
3687 if (match(V, m_Trunc(m_Value(X)))) {
3688 const auto &Res = collectBitParts(X, MatchBSwaps, MatchBitReversals, BPS,
3689 Depth + 1, FoundRoot);
3690 if (!Res)
3691 return Result;
3692
3693 Result = BitPart(Res->Provider, BitWidth);
3694 for (unsigned BitIdx = 0; BitIdx < BitWidth; ++BitIdx)
3695 Result->Provenance[BitIdx] = Res->Provenance[BitIdx];
3696 return Result;
3697 }
3698
3699 // BITREVERSE - most likely due to us previous matching a partial
3700 // bitreverse.
3701 if (match(V, m_BitReverse(m_Value(X)))) {
3702 const auto &Res = collectBitParts(X, MatchBSwaps, MatchBitReversals, BPS,
3703 Depth + 1, FoundRoot);
3704 if (!Res)
3705 return Result;
3706
3707 Result = BitPart(Res->Provider, BitWidth);
3708 for (unsigned BitIdx = 0; BitIdx < BitWidth; ++BitIdx)
3709 Result->Provenance[(BitWidth - 1) - BitIdx] = Res->Provenance[BitIdx];
3710 return Result;
3711 }
3712
3713 // BSWAP - most likely due to us previous matching a partial bswap.
3714 if (match(V, m_BSwap(m_Value(X)))) {
3715 const auto &Res = collectBitParts(X, MatchBSwaps, MatchBitReversals, BPS,
3716 Depth + 1, FoundRoot);
3717 if (!Res)
3718 return Result;
3719
3720 unsigned ByteWidth = BitWidth / 8;
3721 Result = BitPart(Res->Provider, BitWidth);
3722 for (unsigned ByteIdx = 0; ByteIdx < ByteWidth; ++ByteIdx) {
3723 unsigned ByteBitOfs = ByteIdx * 8;
3724 for (unsigned BitIdx = 0; BitIdx < 8; ++BitIdx)
3725 Result->Provenance[(BitWidth - 8 - ByteBitOfs) + BitIdx] =
3726 Res->Provenance[ByteBitOfs + BitIdx];
3727 }
3728 return Result;
3729 }
3730
3731 // Funnel 'double' shifts take 3 operands, 2 inputs and the shift
3732 // amount (modulo).
3733 // fshl(X,Y,Z): (X << (Z % BW)) | (Y >> (BW - (Z % BW)))
3734 // fshr(X,Y,Z): (X << (BW - (Z % BW))) | (Y >> (Z % BW))
3735 if (match(V, m_FShl(m_Value(X), m_Value(Y), m_APInt(C))) ||
3736 match(V, m_FShr(m_Value(X), m_Value(Y), m_APInt(C)))) {
3737 // We can treat fshr as a fshl by flipping the modulo amount.
3738 unsigned ModAmt = C->urem(BitWidth);
3739 if (cast<IntrinsicInst>(I)->getIntrinsicID() == Intrinsic::fshr)
3740 ModAmt = BitWidth - ModAmt;
3741
3742 // For bswap-only, limit shift amounts to whole bytes, for an early exit.
3743 if (!MatchBitReversals && (ModAmt % 8) != 0)
3744 return Result;
3745
3746 // Check we have both sources and they are from the same provider.
3747 const auto &LHS = collectBitParts(X, MatchBSwaps, MatchBitReversals, BPS,
3748 Depth + 1, FoundRoot);
3749 if (!LHS || !LHS->Provider)
3750 return Result;
3751
3752 const auto &RHS = collectBitParts(Y, MatchBSwaps, MatchBitReversals, BPS,
3753 Depth + 1, FoundRoot);
3754 if (!RHS || LHS->Provider != RHS->Provider)
3755 return Result;
3756
3757 unsigned StartBitRHS = BitWidth - ModAmt;
3758 Result = BitPart(LHS->Provider, BitWidth);
3759 for (unsigned BitIdx = 0; BitIdx < StartBitRHS; ++BitIdx)
3760 Result->Provenance[BitIdx + ModAmt] = LHS->Provenance[BitIdx];
3761 for (unsigned BitIdx = 0; BitIdx < ModAmt; ++BitIdx)
3762 Result->Provenance[BitIdx] = RHS->Provenance[BitIdx + StartBitRHS];
3763 return Result;
3764 }
3765 }
3766
3767 // If we've already found a root input value then we're never going to merge
3768 // these back together.
3769 if (FoundRoot)
3770 return Result;
3771
3772 // Okay, we got to something that isn't a shift, 'or', 'and', etc. This must
3773 // be the root input value to the bswap/bitreverse.
3774 FoundRoot = true;
3775 Result = BitPart(V, BitWidth);
3776 for (unsigned BitIdx = 0; BitIdx < BitWidth; ++BitIdx)
3777 Result->Provenance[BitIdx] = BitIdx;
3778 return Result;
3779}
3780
3781static bool bitTransformIsCorrectForBSwap(unsigned From, unsigned To,
3782 unsigned BitWidth) {
3783 if (From % 8 != To % 8)
3784 return false;
3785 // Convert from bit indices to byte indices and check for a byte reversal.
3786 From >>= 3;
3787 To >>= 3;
3788 BitWidth >>= 3;
3789 return From == BitWidth - To - 1;
3790}
3791
3792static bool bitTransformIsCorrectForBitReverse(unsigned From, unsigned To,
3793 unsigned BitWidth) {
3794 return From == BitWidth - To - 1;
3795}
3796
3798 Instruction *I, bool MatchBSwaps, bool MatchBitReversals,
3799 SmallVectorImpl<Instruction *> &InsertedInsts) {
3800 if (!match(I, m_Or(m_Value(), m_Value())) &&
3801 !match(I, m_FShl(m_Value(), m_Value(), m_Value())) &&
3802 !match(I, m_FShr(m_Value(), m_Value(), m_Value())) &&
3803 !match(I, m_BSwap(m_Value())))
3804 return false;
3805 if (!MatchBSwaps && !MatchBitReversals)
3806 return false;
3807 Type *ITy = I->getType();
3808 if (!ITy->isIntOrIntVectorTy() || ITy->getScalarSizeInBits() == 1 ||
3809 ITy->getScalarSizeInBits() > 128)
3810 return false; // Can't do integer/elements > 128 bits.
3811
3812 // Try to find all the pieces corresponding to the bswap.
3813 bool FoundRoot = false;
3814 std::map<Value *, std::optional<BitPart>> BPS;
3815 const auto &Res =
3816 collectBitParts(I, MatchBSwaps, MatchBitReversals, BPS, 0, FoundRoot);
3817 if (!Res)
3818 return false;
3819 ArrayRef<int8_t> BitProvenance = Res->Provenance;
3820 assert(all_of(BitProvenance,
3821 [](int8_t I) { return I == BitPart::Unset || 0 <= I; }) &&
3822 "Illegal bit provenance index");
3823
3824 // If the upper bits are zero, then attempt to perform as a truncated op.
3825 Type *DemandedTy = ITy;
3826 if (BitProvenance.back() == BitPart::Unset) {
3827 while (!BitProvenance.empty() && BitProvenance.back() == BitPart::Unset)
3828 BitProvenance = BitProvenance.drop_back();
3829 if (BitProvenance.empty())
3830 return false; // TODO - handle null value?
3831 DemandedTy = Type::getIntNTy(I->getContext(), BitProvenance.size());
3832 if (auto *IVecTy = dyn_cast<VectorType>(ITy))
3833 DemandedTy = VectorType::get(DemandedTy, IVecTy);
3834 }
3835
3836 // Check BitProvenance hasn't found a source larger than the result type.
3837 unsigned DemandedBW = DemandedTy->getScalarSizeInBits();
3838 if (DemandedBW > ITy->getScalarSizeInBits())
3839 return false;
3840
3841 // Now, is the bit permutation correct for a bswap or a bitreverse? We can
3842 // only byteswap values with an even number of bytes.
3843 APInt DemandedMask = APInt::getAllOnes(DemandedBW);
3844 bool OKForBSwap = MatchBSwaps && (DemandedBW % 16) == 0;
3845 bool OKForBitReverse = MatchBitReversals;
3846 for (unsigned BitIdx = 0;
3847 (BitIdx < DemandedBW) && (OKForBSwap || OKForBitReverse); ++BitIdx) {
3848 if (BitProvenance[BitIdx] == BitPart::Unset) {
3849 DemandedMask.clearBit(BitIdx);
3850 continue;
3851 }
3852 OKForBSwap &= bitTransformIsCorrectForBSwap(BitProvenance[BitIdx], BitIdx,
3853 DemandedBW);
3854 OKForBitReverse &= bitTransformIsCorrectForBitReverse(BitProvenance[BitIdx],
3855 BitIdx, DemandedBW);
3856 }
3857
3858 Intrinsic::ID Intrin;
3859 if (OKForBSwap)
3860 Intrin = Intrinsic::bswap;
3861 else if (OKForBitReverse)
3862 Intrin = Intrinsic::bitreverse;
3863 else
3864 return false;
3865
3866 Function *F =
3867 Intrinsic::getOrInsertDeclaration(I->getModule(), Intrin, DemandedTy);
3868 Value *Provider = Res->Provider;
3869
3870 // We may need to truncate the provider.
3871 if (DemandedTy != Provider->getType()) {
3872 auto *Trunc =
3873 CastInst::CreateIntegerCast(Provider, DemandedTy, false, "trunc", I->getIterator());
3874 InsertedInsts.push_back(Trunc);
3875 Provider = Trunc;
3876 }
3877
3878 Instruction *Result = CallInst::Create(F, Provider, "rev", I->getIterator());
3879 InsertedInsts.push_back(Result);
3880
3881 if (!DemandedMask.isAllOnes()) {
3882 auto *Mask = ConstantInt::get(DemandedTy, DemandedMask);
3883 Result = BinaryOperator::Create(Instruction::And, Result, Mask, "mask", I->getIterator());
3884 InsertedInsts.push_back(Result);
3885 }
3886
3887 // We may need to zeroextend back to the result type.
3888 if (ITy != Result->getType()) {
3889 auto *ExtInst = CastInst::CreateIntegerCast(Result, ITy, false, "zext", I->getIterator());
3890 InsertedInsts.push_back(ExtInst);
3891 }
3892
3893 return true;
3894}
3895
3896// CodeGen has special handling for some string functions that may replace
3897// them with target-specific intrinsics. Since that'd skip our interceptors
3898// in ASan/MSan/TSan/DFSan, and thus make us miss some memory accesses,
3899// we mark affected calls as NoBuiltin, which will disable optimization
3900// in CodeGen.
3902 CallInst *CI, const TargetLibraryInfo *TLI) {
3903 Function *F = CI->getCalledFunction();
3904 LibFunc Func;
3905 if (F && !F->hasLocalLinkage() && F->hasName() &&
3906 TLI->getLibFunc(F->getName(), Func) && TLI->hasOptimizedCodeGen(Func) &&
3907 !F->doesNotAccessMemory())
3908 CI->addFnAttr(Attribute::NoBuiltin);
3909}
3910
3912 const auto *Op = I->getOperand(OpIdx);
3913 // We can't have a PHI with a metadata or token type.
3914 if (Op->getType()->isMetadataTy() || Op->getType()->isTokenLikeTy())
3915 return false;
3916
3917 // swifterror pointers can only be used by a load, store, or as a swifterror
3918 // argument; swifterror pointers are not allowed to be used in select or phi
3919 // instructions.
3920 if (Op->isSwiftError())
3921 return false;
3922
3923 // Cannot replace alloca argument with phi/select.
3924 if (I->isLifetimeStartOrEnd())
3925 return false;
3926
3927 // Early exit.
3929 return true;
3930
3931 switch (I->getOpcode()) {
3932 default:
3933 return true;
3934 case Instruction::Call:
3935 case Instruction::Invoke: {
3936 const auto &CB = cast<CallBase>(*I);
3937
3938 // Can't handle inline asm. Skip it.
3939 if (CB.isInlineAsm())
3940 return false;
3941
3942 // Constant bundle operands may need to retain their constant-ness for
3943 // correctness.
3944 if (CB.isBundleOperand(OpIdx))
3945 return false;
3946
3947 if (OpIdx < CB.arg_size()) {
3948 // Some variadic intrinsics require constants in the variadic arguments,
3949 // which currently aren't markable as immarg.
3950 if (isa<IntrinsicInst>(CB) &&
3951 OpIdx >= CB.getFunctionType()->getNumParams()) {
3952 // This is known to be OK for stackmap.
3953 return CB.getIntrinsicID() == Intrinsic::experimental_stackmap;
3954 }
3955
3956 // gcroot is a special case, since it requires a constant argument which
3957 // isn't also required to be a simple ConstantInt.
3958 if (CB.getIntrinsicID() == Intrinsic::gcroot)
3959 return false;
3960
3961 // Some intrinsic operands are required to be immediates.
3962 return !CB.paramHasAttr(OpIdx, Attribute::ImmArg);
3963 }
3964
3965 // It is never allowed to replace the call argument to an intrinsic, but it
3966 // may be possible for a call.
3967 return !isa<IntrinsicInst>(CB);
3968 }
3969 case Instruction::ShuffleVector:
3970 // Shufflevector masks are constant.
3971 return OpIdx != 2;
3972 case Instruction::Switch:
3973 case Instruction::ExtractValue:
3974 // All operands apart from the first are constant.
3975 return OpIdx == 0;
3976 case Instruction::InsertValue:
3977 // All operands apart from the first and the second are constant.
3978 return OpIdx < 2;
3979 case Instruction::Alloca:
3980 // Static allocas (constant size in the entry block) are handled by
3981 // prologue/epilogue insertion so they're free anyway. We definitely don't
3982 // want to make them non-constant.
3983 return !cast<AllocaInst>(I)->isStaticAlloca();
3984 case Instruction::GetElementPtr:
3985 if (OpIdx == 0)
3986 return true;
3988 for (auto E = std::next(It, OpIdx); It != E; ++It)
3989 if (It.isStruct())
3990 return false;
3991 return true;
3992 }
3993}
3994
3996 // First: Check if it's a constant
3997 if (Constant *C = dyn_cast<Constant>(Condition))
3998 return ConstantExpr::getNot(C);
3999
4000 // Second: If the condition is already inverted, return the original value
4001 Value *NotCondition;
4002 if (match(Condition, m_Not(m_Value(NotCondition))))
4003 return NotCondition;
4004
4005 BasicBlock *Parent = nullptr;
4006 Instruction *Inst = dyn_cast<Instruction>(Condition);
4007 if (Inst)
4008 Parent = Inst->getParent();
4009 else if (Argument *Arg = dyn_cast<Argument>(Condition))
4010 Parent = &Arg->getParent()->getEntryBlock();
4011 assert(Parent && "Unsupported condition to invert");
4012
4013 // Third: Check all the users for an invert
4014 for (User *U : Condition->users())
4016 if (I->getParent() == Parent && match(I, m_Not(m_Specific(Condition))))
4017 return I;
4018
4019 // Last option: Create a new instruction
4020 auto *Inverted =
4021 BinaryOperator::CreateNot(Condition, Condition->getName() + ".inv");
4022 if (Inst && !isa<PHINode>(Inst))
4023 Inverted->insertAfter(Inst->getIterator());
4024 else
4025 Inverted->insertBefore(Parent->getFirstInsertionPt());
4026 return Inverted;
4027}
4028
4030 // Note: We explicitly check for attributes rather than using cover functions
4031 // because some of the cover functions include the logic being implemented.
4032
4033 bool Changed = false;
4034 // readnone + not convergent implies nosync
4035 if (!F.hasFnAttribute(Attribute::NoSync) &&
4036 F.doesNotAccessMemory() && !F.isConvergent()) {
4037 F.setNoSync();
4038 Changed = true;
4039 }
4040
4041 // readonly implies nofree
4042 if (!F.hasFnAttribute(Attribute::NoFree) && F.onlyReadsMemory()) {
4043 F.setDoesNotFreeMemory();
4044 Changed = true;
4045 }
4046
4047 // willreturn implies mustprogress
4048 if (!F.hasFnAttribute(Attribute::MustProgress) && F.willReturn()) {
4049 F.setMustProgress();
4050 Changed = true;
4051 }
4052
4053 // TODO: There are a bunch of cases of restrictive memory effects we
4054 // can infer by inspecting arguments of argmemonly-ish functions.
4055
4056 return Changed;
4057}
4058
4060#ifndef NDEBUG
4061 if (Opcode)
4062 assert(Opcode == I.getOpcode() &&
4063 "can only use mergeFlags on instructions with matching opcodes");
4064 else
4065 Opcode = I.getOpcode();
4066#endif
4068 HasNUW &= I.hasNoUnsignedWrap();
4069 HasNSW &= I.hasNoSignedWrap();
4070 }
4071 if (auto *DisjointOp = dyn_cast<PossiblyDisjointInst>(&I))
4072 IsDisjoint &= DisjointOp->isDisjoint();
4073}
4074
4076 I.dropPoisonGeneratingFlags();
4077 if (I.getOpcode() == Instruction::Add ||
4078 (I.getOpcode() == Instruction::Mul && AllKnownNonZero)) {
4079 if (HasNUW)
4080 I.setHasNoUnsignedWrap();
4081 if (HasNSW && (AllKnownNonNegative || HasNUW))
4082 I.setHasNoSignedWrap();
4083 }
4084 if (auto *DisjointOp = dyn_cast<PossiblyDisjointInst>(&I))
4085 DisjointOp->setIsDisjoint(IsDisjoint);
4086}
static unsigned getIntrinsicID(const SDNode *N)
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
Rewrite undef for PHI
This file implements a class to represent arbitrary precision integral constant values and operations...
ReachingDefInfo InstSet & ToRemove
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
static bool isEqual(const Function &Caller, const Function &Callee)
This file contains the simple types necessary to represent the attributes associated with functions a...
static const Function * getParent(const Value *V)
#define X(NUM, ENUM, NAME)
Definition ELF.h:853
static GCRegistry::Add< ErlangGC > A("erlang", "erlang-compatible garbage collector")
static GCRegistry::Add< CoreCLRGC > E("coreclr", "CoreCLR-compatible GC")
static GCRegistry::Add< OcamlGC > B("ocaml", "ocaml 3.10-compatible GC")
This file contains the declarations for the subclasses of Constant, which represent the different fla...
static bool isSentinel(const DWARFDebugNames::AttributeEncoding &AE)
This file defines DenseMapInfo traits for DenseMap.
This file defines the DenseMap class.
This file defines the DenseSet and SmallDenseSet classes.
This file contains constants used for implementing Dwarf debug support.
static unsigned getHashValueImpl(SimpleValue Val)
Definition EarlyCSE.cpp:224
static bool isEqualImpl(SimpleValue LHS, SimpleValue RHS)
Definition EarlyCSE.cpp:345
Hexagon Common GEP
This file provides various utilities for inspecting and working with the control flow graph in LLVM I...
Module.h This file contains the declarations for the Module class.
This defines the Use class.
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
This file provides utility for Memory Model Relaxation Annotations (MMRAs).
This file contains the declarations for metadata subclasses.
#define T
MachineInstr unsigned OpIdx
uint64_t IntrinsicInst * II
#define P(N)
This file contains the declarations for profiling metadata utility functions.
const SmallVectorImpl< MachineOperand > & Cond
Remove Loads Into Fake Uses
This file contains some templates that are useful if you are working with the STL at all.
This file implements a set that has insertion order iteration characteristics.
This file defines the SmallPtrSet class.
This file defines the SmallVector class.
This file defines the 'Statistic' class, which is designed to be an easy way to expose various metric...
#define STATISTIC(VARNAME, DESC)
Definition Statistic.h:171
#define LLVM_DEBUG(...)
Definition Debug.h:119
static TableGen::Emitter::Opt Y("gen-skeleton-entry", EmitSkeleton, "Generate example skeleton entry")
SmallDenseMap< BasicBlock *, Value *, 16 > IncomingValueMap
Definition Local.cpp:914
static bool valueCoversEntireFragment(Type *ValTy, DbgVariableRecord *DVR)
Check if the alloc size of ValTy is large enough to cover the variable (or fragment of the variable) ...
Definition Local.cpp:1629
static bool isBitCastSemanticsPreserving(const DataLayout &DL, Type *FromTy, Type *ToTy)
Check if a bitcast between a value of type FromTy to type ToTy would losslessly preserve the bits and...
Definition Local.cpp:2431
uint64_t getDwarfOpForBinOp(Instruction::BinaryOps Opcode)
Definition Local.cpp:2179
static bool PhiHasDebugValue(DILocalVariable *DIVar, DIExpression *DIExpr, PHINode *APN)
===------------------------------------------------------------------—===// Dbg Intrinsic utilities
Definition Local.cpp:1605
static void combineMetadata(Instruction *K, const Instruction *J, bool DoesKMove, bool AAOnly=false)
If AAOnly is set, only intersect alias analysis metadata and preserve other known metadata.
Definition Local.cpp:2949
static void handleSSAValueOperands(uint64_t CurrentLocOps, SmallVectorImpl< uint64_t > &Opcodes, SmallVectorImpl< Value * > &AdditionalValues, Instruction *I)
Definition Local.cpp:2209
std::optional< DIExpression * > DbgValReplacement
A replacement for a dbg.value expression.
Definition Local.cpp:2358
static bool rewriteDebugUsers(Instruction &From, Value &To, Instruction &DomPoint, DominatorTree &DT, function_ref< DbgValReplacement(DbgVariableRecord &DVR)> RewriteDVRExpr)
Point debug users of From to To using exprs given by RewriteExpr, possibly moving/undefing users to p...
Definition Local.cpp:2363
Value * getSalvageOpsForBinOp(BinaryOperator *BI, uint64_t CurrentLocOps, SmallVectorImpl< uint64_t > &Opcodes, SmallVectorImpl< Value * > &AdditionalValues)
Definition Local.cpp:2221
static DIExpression * dropInitialDeref(const DIExpression *DIExpr)
Definition Local.cpp:1665
static void replaceUndefValuesInPhi(PHINode *PN, const IncomingValueMap &IncomingValues)
Replace the incoming undef values to a phi with the values from a block-to-value map.
Definition Local.cpp:979
Value * getSalvageOpsForGEP(GetElementPtrInst *GEP, const DataLayout &DL, uint64_t CurrentLocOps, SmallVectorImpl< uint64_t > &Opcodes, SmallVectorImpl< Value * > &AdditionalValues)
Definition Local.cpp:2153
static bool CanRedirectPredsOfEmptyBBToSucc(BasicBlock *BB, BasicBlock *Succ, const SmallPtrSetImpl< BasicBlock * > &BBPreds, BasicBlock *&CommonPred)
Definition Local.cpp:1022
Value * getSalvageOpsForIcmpOp(ICmpInst *Icmp, uint64_t CurrentLocOps, SmallVectorImpl< uint64_t > &Opcodes, SmallVectorImpl< Value * > &AdditionalValues)
Definition Local.cpp:2280
static bool CanMergeValues(Value *First, Value *Second)
Return true if we can choose one of these values to use in place of the other.
Definition Local.cpp:848
static bool simplifyAndDCEInstruction(Instruction *I, SmallSetVector< Instruction *, 16 > &WorkList, const DataLayout &DL, const TargetLibraryInfo *TLI)
Definition Local.cpp:665
static bool areAllUsesEqual(Instruction *I)
areAllUsesEqual - Check whether the uses of a value are all the same.
Definition Local.cpp:624
static cl::opt< bool > PHICSEDebugHash("phicse-debug-hash", cl::init(false), cl::Hidden, cl::desc("Perform extra assertion checking to verify that PHINodes's hash " "function is well-behaved w.r.t. its isEqual predicate"))
static void gatherIncomingValuesToPhi(PHINode *PN, const PredBlockVector &BBPreds, IncomingValueMap &IncomingValues)
Create a map from block to value for the operands of a given phi.
Definition Local.cpp:956
static bool markAliveBlocks(Function &F, SmallVectorImpl< bool > &Reachable, DomTreeUpdater *DTU=nullptr)
Definition Local.cpp:2681
uint64_t getDwarfOpForIcmpPred(CmpInst::Predicate Pred)
Definition Local.cpp:2255
static bool bitTransformIsCorrectForBSwap(unsigned From, unsigned To, unsigned BitWidth)
Definition Local.cpp:3781
static const std::optional< BitPart > & collectBitParts(Value *V, bool MatchBSwaps, bool MatchBitReversals, std::map< Value *, std::optional< BitPart > > &BPS, int Depth, bool &FoundRoot)
Analyze the specified subexpression and see if it is capable of providing pieces of a bswap or bitrev...
Definition Local.cpp:3561
static bool EliminateDuplicatePHINodesNaiveImpl(BasicBlock *BB, SmallPtrSetImpl< PHINode * > &ToRemove)
Definition Local.cpp:1392
static bool CanPropagatePredecessorsForPHIs(BasicBlock *BB, BasicBlock *Succ, const SmallPtrSetImpl< BasicBlock * > &BBPreds)
Return true if we can fold BB, an almost-empty BB ending in an unconditional branch to Succ,...
Definition Local.cpp:857
static cl::opt< unsigned > PHICSENumPHISmallSize("phicse-num-phi-smallsize", cl::init(32), cl::Hidden, cl::desc("When the basic block contains not more than this number of PHI nodes, " "perform a (faster!) exhaustive search instead of set-driven one."))
static void updateOneDbgValueForAlloca(const DebugLoc &Loc, DILocalVariable *DIVar, DIExpression *DIExpr, Value *NewAddress, DbgVariableRecord *DVR, DIBuilder &Builder, int Offset)
Definition Local.cpp:1995
static bool EliminateDuplicatePHINodesSetBasedImpl(BasicBlock *BB, SmallPtrSetImpl< PHINode * > &ToRemove)
Definition Local.cpp:1428
SmallVector< BasicBlock *, 16 > PredBlockVector
Definition Local.cpp:913
static void insertDbgValueOrDbgVariableRecord(DIBuilder &Builder, Value *DV, DILocalVariable *DIVar, DIExpression *DIExpr, const DebugLoc &NewLoc, BasicBlock::iterator Instr)
Definition Local.cpp:1654
static bool introduceTooManyPhiEntries(BasicBlock *BB, BasicBlock *Succ)
Check whether removing BB will make the phis in its Succ have too many incoming entries.
Definition Local.cpp:1055
static Value * selectIncomingValueForBlock(Value *OldVal, BasicBlock *BB, IncomingValueMap &IncomingValues)
Determines the value to use as the phi node input for a block.
Definition Local.cpp:928
static const unsigned BitPartRecursionMaxDepth
Definition Local.cpp:121
static void redirectValuesFromPredecessorsToPhi(BasicBlock *BB, const PredBlockVector &BBPreds, PHINode *PN, BasicBlock *CommonPred)
Replace a value flowing from a block to a phi with potentially multiple instances of that value flowi...
Definition Local.cpp:1087
static cl::opt< unsigned > MaxPhiEntriesIncreaseAfterRemovingEmptyBlock("max-phi-entries-increase-after-removing-empty-block", cl::init(1000), cl::Hidden, cl::desc("Stop removing an empty block if removing it will introduce more " "than this number of phi entries in its successor"))
static bool isCompositeType(DbgVariableRecord *DVR)
Determine whether this debug variable is a not a basic type.
Definition Local.cpp:1764
static bool bitTransformIsCorrectForBitReverse(unsigned From, unsigned To, unsigned BitWidth)
Definition Local.cpp:3792
static void salvageDbgAssignAddress(T *Assign)
Definition Local.cpp:2037
LocallyHashedType DenseMapInfo< LocallyHashedType >::Empty
Value * RHS
Value * LHS
APInt bitcastToAPInt() const
Definition APFloat.h:1430
Class for arbitrary precision integers.
Definition APInt.h:78
std::optional< uint64_t > tryZExtValue() const
Get zero extended value if possible.
Definition APInt.h:1575
static APInt getAllOnes(unsigned numBits)
Return an APInt of a specified width with all bits set.
Definition APInt.h:235
void clearBit(unsigned BitPosition)
Set a given bit to 0.
Definition APInt.h:1429
uint64_t getZExtValue() const
Get zero extended value.
Definition APInt.h:1563
unsigned popcount() const
Count the number of bits set.
Definition APInt.h:1693
bool isAllOnes() const
Determine if all bits are set. This is true for zero-width values.
Definition APInt.h:372
unsigned getBitWidth() const
Return the number of bits in the APInt.
Definition APInt.h:1511
const uint64_t * getRawData() const
This function returns a pointer to the internal storage of the APInt.
Definition APInt.h:576
std::optional< int64_t > trySExtValue() const
Get sign extended value if possible.
Definition APInt.h:1597
int64_t getSExtValue() const
Get sign extended value.
Definition APInt.h:1585
bool uge(const APInt &RHS) const
Unsigned greater or equal comparison.
Definition APInt.h:1228
an instruction to allocate memory on the stack
const Value * getArraySize() const
Get the number of elements allocated.
This class represents an incoming formal argument to a Function.
Definition Argument.h:32
Represent a constant reference to an array (0 or more elements consecutively in memory),...
Definition ArrayRef.h:40
const T & back() const
Get the last element.
Definition ArrayRef.h:150
ArrayRef< T > drop_front(size_t N=1) const
Drop the first N elements of the array.
Definition ArrayRef.h:194
size_t size() const
Get the array size.
Definition ArrayRef.h:141
ArrayRef< T > drop_back(size_t N=1) const
Drop the last N elements of the array.
Definition ArrayRef.h:200
bool empty() const
Check if the array is empty.
Definition ArrayRef.h:136
Value handle that asserts if the Value is deleted.
A cache of @llvm.assume calls within a function.
LLVM Basic Block Representation.
Definition BasicBlock.h:62
iterator end()
Definition BasicBlock.h:474
unsigned getNumber() const
Definition BasicBlock.h:95
iterator begin()
Instruction iterator methods.
Definition BasicBlock.h:461
iterator_range< const_phi_iterator > phis() const
Returns a range that iterates over the phis in the basic block.
Definition BasicBlock.h:530
LLVM_ABI const_iterator getFirstInsertionPt() const
Returns an iterator to the first instruction in this block that is suitable for inserting a non-PHI i...
const Function * getParent() const
Return the enclosing method, or null if none.
Definition BasicBlock.h:213
bool hasTerminator() const LLVM_READONLY
Returns whether the block has a terminator.
Definition BasicBlock.h:232
const Instruction & back() const
Definition BasicBlock.h:486
bool hasAddressTaken() const
Returns true if there are any uses of this basic block other than direct branches,...
Definition BasicBlock.h:687
LLVM_ABI InstListType::const_iterator getFirstNonPHIIt() const
Returns an iterator to the first instruction in this block that is not a PHINode instruction.
LLVM_ABI void insertDbgRecordBefore(DbgRecord *DR, InstListType::iterator Here)
Insert a DbgRecord into a block at the position given by Here.
static BasicBlock * Create(LLVMContext &Context, const Twine &Name="", Function *Parent=nullptr, BasicBlock *InsertBefore=nullptr)
Creates a new BasicBlock.
Definition BasicBlock.h:206
LLVM_ABI bool isEntryBlock() const
Return true if this is the entry block of the containing function.
LLVM_ABI void moveAfter(BasicBlock *MovePos)
Unlink this basic block from its current function and insert it right after MovePos in the function M...
LLVM_ABI bool hasNPredecessors(unsigned N) const
Return true if this block has exactly N predecessors.
LLVM_ABI const BasicBlock * getSinglePredecessor() const
Return the predecessor of this block if it has a single predecessor block.
const Instruction & front() const
Definition BasicBlock.h:484
const Instruction * getTerminatorOrNull() const LLVM_READONLY
Returns the terminator instruction if the block is well formed or null if the block is not well forme...
Definition BasicBlock.h:248
LLVM_ABI void flushTerminatorDbgRecords()
Eject any debug-info trailing at the end of a block.
LLVM_ABI const DataLayout & getDataLayout() const
Get the data layout of the module this basic block belongs to.
LLVM_ABI SymbolTableList< BasicBlock >::iterator eraseFromParent()
Unlink 'this' from the containing function and delete it.
InstListType::iterator iterator
Instruction iterators...
Definition BasicBlock.h:170
LLVM_ABI LLVMContext & getContext() const
Get the context in which this basic block lives.
size_t size() const
Definition BasicBlock.h:482
LLVM_ABI bool hasNPredecessorsOrMore(unsigned N) const
Return true if this block has N predecessors or more.
const Instruction * getTerminator() const LLVM_READONLY
Returns the terminator instruction; assumes that the block is well-formed.
Definition BasicBlock.h:237
void splice(BasicBlock::iterator ToIt, BasicBlock *FromBB)
Transfer all instructions from FromBB to this basic block at ToIt.
Definition BasicBlock.h:659
LLVM_ABI void removePredecessor(BasicBlock *Pred, bool KeepOneInputPHIs=false)
Update PHI nodes in this BasicBlock before removal of predecessor Pred.
BinaryOps getOpcode() const
Definition InstrTypes.h:409
static LLVM_ABI BinaryOperator * CreateNot(Value *Op, const Twine &Name="", InsertPosition InsertBefore=nullptr)
static LLVM_ABI BinaryOperator * Create(BinaryOps Op, Value *S1, Value *S2, const Twine &Name=Twine(), InsertPosition InsertBefore=nullptr)
Construct a binary instruction, given the opcode and the two operands.
This class represents a no-op cast from one type to another.
The address of a basic block.
Definition Constants.h:1082
static LLVM_ABI BlockAddress * get(Function *F, BasicBlock *BB)
Return a BlockAddress for the specified function and basic block.
Base class for all callable instructions (InvokeInst and CallInst) Holds everything related to callin...
void setCallingConv(CallingConv::ID CC)
void addFnAttr(Attribute::AttrKind Kind)
Adds the attribute to the function.
LLVM_ABI void getOperandBundlesAsDefs(SmallVectorImpl< OperandBundleDef > &Defs) const
Return the list of operand bundles attached to this instruction as a vector of OperandBundleDefs.
Function * getCalledFunction() const
Returns the function called, or null if this is an indirect function invocation or the function signa...
CallingConv::ID getCallingConv() const
Value * getCalledOperand() const
void setAttributes(AttributeList A)
Set the attributes for this call.
FunctionType * getFunctionType() const
iterator_range< User::op_iterator > args()
Iteration adapter for range-for loops.
AttributeList getAttributes() const
Return the attributes for this call.
This class represents a function call, abstracting a target machine's calling convention.
static CallInst * Create(FunctionType *Ty, Value *F, const Twine &NameStr="", InsertPosition InsertBefore=nullptr)
static LLVM_ABI CastInst * CreateIntegerCast(Value *S, Type *Ty, bool isSigned, const Twine &Name="", InsertPosition InsertBefore=nullptr)
Create a ZExt, BitCast, or Trunc for int -> int casts.
mapped_iterator< op_iterator, DerefFnTy > handler_iterator
static CatchSwitchInst * Create(Value *ParentPad, BasicBlock *UnwindDest, unsigned NumHandlers, const Twine &NameStr="", InsertPosition InsertBefore=nullptr)
static CleanupReturnInst * Create(Value *CleanupPad, BasicBlock *UnwindBB=nullptr, InsertPosition InsertBefore=nullptr)
Predicate
This enumeration lists the possible predicates for CmpInst subclasses.
Definition InstrTypes.h:740
@ ICMP_SLT
signed less than
Definition InstrTypes.h:769
@ ICMP_SLE
signed less or equal
Definition InstrTypes.h:770
@ ICMP_UGE
unsigned greater or equal
Definition InstrTypes.h:764
@ ICMP_UGT
unsigned greater than
Definition InstrTypes.h:763
@ ICMP_SGT
signed greater than
Definition InstrTypes.h:767
@ ICMP_ULT
unsigned less than
Definition InstrTypes.h:765
@ ICMP_NE
not equal
Definition InstrTypes.h:762
@ ICMP_SGE
signed greater or equal
Definition InstrTypes.h:768
@ ICMP_ULE
unsigned less or equal
Definition InstrTypes.h:766
bool isSigned() const
Definition InstrTypes.h:993
Predicate getPredicate() const
Return the predicate for this instruction.
Definition InstrTypes.h:828
Conditional Branch instruction.
A constant value that is initialized with an expression using other constant values.
Definition Constants.h:1310
static LLVM_ABI Constant * getIntToPtr(Constant *C, Type *Ty, bool OnlyIfReduced=false)
static LLVM_ABI Constant * getNot(Constant *C)
static LLVM_ABI Constant * getPtrToInt(Constant *C, Type *Ty, bool OnlyIfReduced=false)
static LLVM_ABI Constant * getAdd(Constant *C1, Constant *C2, bool HasNUW=false, bool HasNSW=false)
This is the shared class of boolean and integer constants.
Definition Constants.h:87
static LLVM_ABI ConstantPointerNull * get(PointerType *T)
Static factory methods - Return objects of the specified value.
This is an important base class in LLVM.
Definition Constant.h:43
LLVM_ABI void destroyConstant()
Called if some element of this constant is no longer valid.
DIExpression * createConstantValueExpression(uint64_t Val)
Create an expression for a variable that does not have an address, but does have a constant value.
Definition DIBuilder.h:983
DWARF expression.
static LLVM_ABI DIExpression * append(const DIExpression *Expr, ArrayRef< uint64_t > Ops)
Append the opcodes Ops to DIExpr.
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.
static LLVM_ABI void appendOffset(SmallVectorImpl< uint64_t > &Ops, int64_t Offset)
Append Ops with operations to apply the Offset.
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...
static LLVM_ABI std::optional< FragmentInfo > getFragmentInfo(expr_op_iterator Start, expr_op_iterator End)
Retrieve the details of this fragment expression.
LLVM_ABI DIExpression * foldConstantMath()
Try to shorten an expression with constant math operations that can be evaluated at compile time.
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
LLVM_ABI std::optional< uint64_t > getActiveBits(DIVariable *Var)
Return the number of bits that have an active value, i.e.
uint64_t getElement(unsigned I) const
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 * appendExt(const DIExpression *Expr, unsigned FromSize, unsigned ToSize, bool Signed)
Append a zero- or sign-extension to Expr.
Base class for types.
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...
DIType * getType() const
A parsed version of the target data layout string in and methods for querying it.
Definition DataLayout.h:64
This represents the llvm.dbg.label instruction.
Instruction * MarkedInstr
Link back to the Instruction that owns this marker.
LLVM_ABI void removeFromParent()
LLVM_ABI Module * getModule()
Record of a variable value-assignment, aka a non instruction representation of the dbg....
LLVM_ABI void replaceVariableLocationOp(Value *OldValue, Value *NewValue, bool AllowEmpty=false)
LLVM_ABI Value * getVariableLocationOp(unsigned OpIdx) const
LLVM_ABI unsigned getNumVariableLocationOps() const
bool isAddressOfVariable() const
Does this describe the address of a local variable.
LLVM_ABI DbgVariableRecord * clone() const
void setExpression(DIExpression *NewExpr)
DIExpression * getExpression() const
DILocalVariable * getVariable() const
LLVM_ABI iterator_range< location_op_iterator > location_ops() const
Get the locations corresponding to the variable referenced by the debug info intrinsic.
A debug info location.
Definition DebugLoc.h:124
DILocation * get() const
Get the underlying DILocation.
Definition DebugLoc.h:218
static DebugLoc getTemporary()
Definition DebugLoc.h:150
iterator find(const_arg_type_t< KeyT > Val)
Definition DenseMap.h:225
unsigned size() const
Definition DenseMap.h:174
DenseMapIterator< KeyT, ValueT, KeyInfoT, BucketT, true > const_iterator
Definition DenseMap.h:136
iterator end()
Definition DenseMap.h:143
std::pair< iterator, bool > insert(const std::pair< KeyT, ValueT > &KV)
Definition DenseMap.h:286
std::pair< iterator, bool > insert_or_assign(const KeyT &Key, V &&Val)
Definition DenseMap.h:344
Implements a dense probed hash-table based set.
Definition DenseSet.h:289
LLVM_ABI void deleteBB(BasicBlock *DelBB)
Delete DelBB.
Concrete subclass of DominatorTreeBase that is used to compute a normal dominator tree.
Definition Dominators.h:155
LLVM_ABI bool dominates(const BasicBlock *BB, const Use &U) const
Return true if the (end of the) basic block BB dominates the use U.
const BasicBlock & getEntryBlock() const
Definition Function.h:809
void applyUpdatesPermissive(ArrayRef< UpdateT > Updates)
Submit updates to all available trees.
void applyUpdates(ArrayRef< UpdateT > Updates)
Submit updates to all available trees.
bool hasDomTree() const
Returns true if it holds a DomTreeT.
void recalculate(FuncT &F)
Notify DTU that the entry block was replaced.
bool isBBPendingDeletion(BasicBlockT *DelBB) const
Returns true if DelBB is awaiting deletion.
an instruction for type-safe pointer arithmetic to access elements of arrays and structs
This instruction compares its operands according to the predicate given to the constructor.
This provides a uniform API for creating instructions and inserting them into a basic block: either a...
Definition IRBuilder.h:2868
iterator_range< simple_ilist< DbgRecord >::iterator > getDbgRecordRange() const
Return a range over the DbgRecords attached to this instruction.
const DebugLoc & getDebugLoc() const
Return the debug location for this node as a DebugLoc.
LLVM_ABI const Module * getModule() const
Return the module owning the function this instruction belongs to or nullptr it the function does not...
LLVM_ABI bool extractProfTotalWeight(uint64_t &TotalVal) const
Retrieve total raw weight values of a branch.
LLVM_ABI void insertBefore(InstListType::iterator InsertPos)
Insert an unlinked instruction into a basic block immediately before the specified position.
bool isEHPad() const
Return true if the instruction is a variety of EH-block.
LLVM_ABI InstListType::iterator eraseFromParent()
This method unlinks 'this' from the containing basic block and deletes it.
LLVM_ABI bool isIdenticalToWhenDefined(const Instruction *I, bool IntersectAttrs=false) const LLVM_READONLY
This is like isIdenticalTo, except that it ignores the SubclassOptionalData flags,...
MDNode * getMetadata(unsigned KindID) const
Get the metadata of given kind attached to this Instruction.
LLVM_ABI void setMetadata(unsigned KindID, MDNode *Node)
Set the metadata of the specified kind to the specified node.
LLVM_ABI void dropPoisonGeneratingFlags()
Drops flags that may cause this instruction to evaluate to poison despite having non-poison inputs.
void setDebugLoc(DebugLoc Loc)
Set the debug location information for this instruction.
LLVM_ABI void copyMetadata(const Instruction &SrcInst, ArrayRef< unsigned > WL=ArrayRef< unsigned >())
Copy metadata from SrcInst to this instruction.
LLVM_ABI void dropDbgRecords()
Erase any DbgRecords attached to this instruction.
A wrapper class for inspecting calls to intrinsic functions.
Invoke instruction.
static InvokeInst * Create(FunctionType *Ty, Value *Func, BasicBlock *IfNormal, BasicBlock *IfException, ArrayRef< Value * > Args, const Twine &NameStr, InsertPosition InsertBefore=nullptr)
This is an important class for using LLVM in a threaded context.
Definition LLVMContext.h:68
An instruction for reading from memory.
Value * getPointerOperand()
LLVM_ABI MDNode * createBranchWeights(uint32_t TrueWeight, uint32_t FalseWeight, bool IsExpected=false)
Return metadata containing two branch weights.
Definition MDBuilder.cpp:38
LLVM_ABI MDNode * createRange(const APInt &Lo, const APInt &Hi)
Return metadata describing the range [Lo, Hi).
Definition MDBuilder.cpp:96
Metadata node.
Definition Metadata.h:1075
static LLVM_ABI MDNode * getMostGenericAliasScope(MDNode *A, MDNode *B)
static LLVM_ABI MDNode * getMergedCallsiteMetadata(MDNode *A, MDNode *B)
static LLVM_ABI CaptureComponents toCaptureComponents(const MDNode *MD)
Convert !captures metadata to CaptureComponents. MD may be nullptr.
static LLVM_ABI MDNode * getMergedCalleeTypeMetadata(const MDNode *A, const MDNode *B)
static LLVM_ABI MDNode * getMostGenericTBAA(MDNode *A, MDNode *B)
static LLVM_ABI MDNode * getMostGenericNoaliasAddrspace(MDNode *A, MDNode *B)
static MDTuple * get(LLVMContext &Context, ArrayRef< Metadata * > MDs)
Definition Metadata.h:1567
static LLVM_ABI MDNode * getMergedProfMetadata(MDNode *A, MDNode *B, const Instruction *AInstr, const Instruction *BInstr)
Merge !prof metadata from two instructions.
static LLVM_ABI MDNode * getMostGenericFPMath(MDNode *A, MDNode *B)
static LLVM_ABI MDNode * getMostGenericRange(MDNode *A, MDNode *B)
static LLVM_ABI MDNode * getMergedMemProfMetadata(MDNode *A, MDNode *B)
static LLVM_ABI MDNode * intersect(MDNode *A, MDNode *B)
static LLVM_ABI MDNode * getMostGenericNoFPClass(MDNode *A, MDNode *B)
LLVMContext & getContext() const
Definition Metadata.h:1239
static LLVM_ABI MDNode * fromCaptureComponents(LLVMContext &Ctx, CaptureComponents CC)
Convert CaptureComponents to !captures metadata.
static LLVM_ABI MDNode * getMostGenericAlignmentOrDereferenceable(MDNode *A, MDNode *B)
static LLVM_ABI MDNode * combine(LLVMContext &Ctx, const MMRAMetadata &A, const MMRAMetadata &B)
Combines A and B according to MMRA semantics.
This class implements a map that also provides access to all stored values in a deterministic order.
Definition MapVector.h:38
iterator find(const KeyT &Key)
Definition MapVector.h:156
iterator end()
Definition MapVector.h:69
bool empty() const
Definition MapVector.h:79
std::pair< iterator, bool > insert(const std::pair< KeyT, ValueT > &KV)
Definition MapVector.h:126
LLVM_ABI void changeToUnreachable(const Instruction *I)
Instruction I will be changed to an unreachable.
LLVM_ABI void removeBlocks(const SmallSetVector< BasicBlock *, 8 > &DeadBlocks)
Remove all MemoryAcceses in a set of BasicBlocks about to be deleted.
LLVM_ABI void removeMemoryAccess(MemoryAccess *, bool OptimizePhis=false)
Remove a MemoryAccess from MemorySSA, including updating all definitions and uses.
Root of the metadata hierarchy.
Definition Metadata.h:64
A Module instance is used to store all the information related to an LLVM module.
Definition Module.h:67
const DataLayout & getDataLayout() const
Get the data layout for the module's target platform.
Definition Module.h:280
void addIncoming(Value *V, BasicBlock *BB)
Add an incoming value to the end of the PHI list.
iterator_range< const_block_iterator > blocks() const
LLVM_ABI Value * removeIncomingValue(unsigned Idx, bool DeletePHIIfEmpty=true)
Remove an incoming value.
void setIncomingValue(unsigned i, Value *V)
Value * getIncomingValueForBlock(const BasicBlock *BB) const
BasicBlock * getIncomingBlock(unsigned i) const
Return incoming basic block number i.
Value * getIncomingValue(unsigned i) const
Return incoming value number x.
unsigned getNumIncomingValues() const
Return the number of incoming edges.
static LLVM_ABI PoisonValue * get(Type *T)
Static factory methods - Return an 'poison' object of the specified type.
size_type size() const
Determine the number of elements in the SetVector.
Definition SetVector.h:103
size_type count(const_arg_type key) const
Count the number of elements of a given key in the SetVector.
Definition SetVector.h:262
Vector takeVector()
Clear the SetVector and return the underlying vector.
Definition SetVector.h:94
bool empty() const
Determine if the SetVector is empty or not.
Definition SetVector.h:100
bool insert(const value_type &X)
Insert a new element into the SetVector.
Definition SetVector.h:151
value_type pop_back_val()
Definition SetVector.h:279
size_type size() const
Definition SmallPtrSet.h:99
A templated base class for SmallPtrSet which provides the typesafe interface that is common across al...
size_type count(ConstPtrType Ptr) const
count - Return 1 if the specified pointer is in the set, 0 otherwise.
std::pair< iterator, bool > insert(PtrType Ptr)
Inserts Ptr if and only if there is no element in the container equal to Ptr.
bool contains(ConstPtrType Ptr) const
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.
iterator insert(iterator I, T &&Elt)
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
An instruction for storing to memory.
Provides information about what library functions are available for the current target.
bool hasOptimizedCodeGen(LibFunc F) const
Tests if the function is both available and a candidate for optimized code generation.
bool has(LibFunc F) const
Tests whether a library function is available.
bool getLibFunc(StringRef funcName, LibFunc &F) const
Searches for a particular function name.
TinyPtrVector - This class is specialized for cases where there are normally 0 or 1 element in a vect...
static constexpr TypeSize getFixed(ScalarTy ExactSize)
Definition TypeSize.h:343
The instances of the Type class are immutable: once they are created, they are never changed.
Definition Type.h:46
LLVM_ABI unsigned getIntegerBitWidth() const
bool isVectorTy() const
True if this is an instance of VectorType.
Definition Type.h:288
static LLVM_ABI IntegerType * getInt32Ty(LLVMContext &C)
Definition Type.cpp:309
bool isIntOrIntVectorTy() const
Return true if this is an integer type or a vector of integer types.
Definition Type.h:263
bool isPointerTy() const
True if this is an instance of PointerType.
Definition Type.h:282
Type * getScalarType() const
If this is a vector type, return the element type, otherwise return 'this'.
Definition Type.h:368
LLVM_ABI unsigned getScalarSizeInBits() const LLVM_READONLY
If this is a vector type, return the getPrimitiveSizeInBits value for the element type.
Definition Type.cpp:232
bool isIntOrPtrTy() const
Return true if this is an integer type or a pointer type.
Definition Type.h:270
bool isIntegerTy() const
True if this is an instance of IntegerType.
Definition Type.h:257
bool isTokenTy() const
Return true if this is 'token'.
Definition Type.h:236
static LLVM_ABI IntegerType * getIntNTy(LLVMContext &C, unsigned N)
Definition Type.cpp:313
Unconditional Branch instruction.
static UncondBrInst * Create(BasicBlock *Target, InsertPosition InsertBefore=nullptr)
static LLVM_ABI UndefValue * get(Type *T)
Static factory methods - Return an 'undef' object of the specified type.
This function has undefined behavior.
A Use represents the edge between a Value definition and its users.
Definition Use.h:35
value_op_iterator value_op_end()
Definition User.h:288
Value * getOperand(unsigned i) const
Definition User.h:207
value_op_iterator value_op_begin()
Definition User.h:285
iterator_range< value_op_iterator > operand_values()
Definition User.h:291
Value wrapper in the Metadata hierarchy.
Definition Metadata.h:459
static LLVM_ABI ValueAsMetadata * get(Value *V)
Definition Metadata.cpp:509
iterator find(const KeyT &Val)
Definition ValueMap.h:160
iterator end()
Definition ValueMap.h:139
LLVM Value Representation.
Definition Value.h:75
Type * getType() const
All values are typed, get the type of this value.
Definition Value.h:255
LLVM_ABI void replaceAllUsesWith(Value *V)
Change all uses of this to point to a new Value.
Definition Value.cpp:552
LLVMContext & getContext() const
All values hold a context through their type.
Definition Value.h:258
iterator_range< user_iterator > users()
Definition Value.h:426
LLVM_ABI void printAsOperand(raw_ostream &O, bool PrintType=true, const Module *M=nullptr) const
Print the name of this Value out to the specified raw_ostream.
bool isUsedByMetadata() const
Return true if there is metadata referencing this value.
Definition Value.h:558
bool use_empty() const
Definition Value.h:346
static constexpr unsigned MaxAlignmentExponent
The maximum alignment for instructions.
Definition Value.h:797
LLVM_ABI bool replaceUsesWithIf(Value *New, llvm::function_ref< bool(Use &U)> ShouldReplace)
Go through the uses list for this definition and make each use point to "V" if the callback ShouldRep...
Definition Value.cpp:560
iterator_range< use_iterator > uses()
Definition Value.h:380
user_iterator_impl< User > user_iterator
Definition Value.h:391
bool hasName() const
Definition Value.h:261
LLVM_ABI StringRef getName() const
Return a constant reference to the value's name.
Definition Value.cpp:318
LLVM_ABI void takeName(Value *V)
Transfer the name from V to this value.
Definition Value.cpp:399
static LLVM_ABI VectorType * get(Type *ElementType, ElementCount EC)
This static method is the primary way to construct an VectorType.
Represents an op.with.overflow intrinsic.
std::pair< iterator, bool > insert(const ValueT &V)
Definition DenseSet.h:212
void reserve(size_t Size)
Grow the DenseSet so that it can contain at least NumEntries items before resizing again.
Definition DenseSet.h:96
static constexpr bool isKnownGE(const FixedOrScalableQuantity &LHS, const FixedOrScalableQuantity &RHS)
Definition TypeSize.h:237
An efficient, type-erasing, non-owning reference to a callable.
const ParentTy * getParent() const
Definition ilist_node.h:34
self_iterator getIterator()
Definition ilist_node.h:123
NodeTy * getNextNode()
Get the next node, or nullptr for the list tail.
Definition ilist_node.h:348
CallInst * Call
Changed
#define UINT64_MAX
Definition DataTypes.h:77
#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
LLVM_ABI Function * getOrInsertDeclaration(Module *M, ID id, ArrayRef< Type * > OverloadTys={})
Look up the Function declaration of the intrinsic id in the Module M.
BinaryOp_match< SrcTy, SpecificConstantMatch, TargetOpcode::G_XOR, true > m_Not(const SrcTy &&Src)
Matches a register not-ed by a G_XOR.
match_combine_or< Ty... > m_CombineOr(const Ty &...Ps)
Combine pattern matchers matching any of Ps patterns.
BinaryOp_match< LHS, RHS, Instruction::And > m_And(const LHS &L, const RHS &R)
m_Intrinsic_Ty< Opnd0 >::Ty m_BitReverse(const Opnd0 &Op0)
ap_match< APInt > m_APInt(const APInt *&Res)
Match a ConstantInt or splatted ConstantVector, binding the specified pointer to the contained APInt.
CastInst_match< OpTy, TruncInst > m_Trunc(const OpTy &Op)
Matches Trunc.
bool match(Val *V, const Pattern &P)
specificval_ty m_Specific(const Value *V)
Match if we have a specific specified value.
ExtractValue_match< Ind, Val_t > m_ExtractValue(const Val_t &V)
Match a single index ExtractValue instruction.
BinOpPred_match< LHS, RHS, is_logical_shift_op > m_LogicalShift(const LHS &L, const RHS &R)
Matches logical shift operations.
auto m_Value()
Match an arbitrary value and ignore it.
match_bind< WithOverflowInst > m_WithOverflowInst(WithOverflowInst *&I)
Match a with overflow intrinsic, capturing it if we match.
CastInst_match< OpTy, ZExtInst > m_ZExt(const OpTy &Op)
Matches ZExt.
m_Intrinsic_Ty< Opnd0, Opnd1, Opnd2 >::Ty m_FShl(const Opnd0 &Op0, const Opnd1 &Op1, const Opnd2 &Op2)
m_Intrinsic_Ty< Opnd0, Opnd1, Opnd2 >::Ty m_FShr(const Opnd0 &Op0, const Opnd1 &Op1, const Opnd2 &Op2)
auto m_Undef()
Match an arbitrary undef constant.
BinaryOp_match< LHS, RHS, Instruction::Or > m_Or(const LHS &L, const RHS &R)
m_Intrinsic_Ty< Opnd0 >::Ty m_BSwap(const Opnd0 &Op0)
is_zero m_Zero()
Match any null constant or a vector with all elements equal to 0.
initializer< Ty > init(const Ty &Val)
@ DW_OP_LLVM_arg
Only used in LLVM metadata.
Definition Dwarf.h:149
@ ebStrict
This corresponds to "fpexcept.strict".
Definition FPEnv.h:42
This is an optimization pass for GlobalISel generic memory operations.
@ Offset
Definition DWP.cpp:558
FunctionAddr VTableAddr Value
Definition InstrProf.h:137
auto find(R &&Range, const T &Val)
Provide wrappers to std::find which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1764
LLVM_ABI bool RemoveRedundantDbgInstrs(BasicBlock *BB)
Try to remove redundant dbg.value instructions from given basic block.
UnaryFunction for_each(R &&Range, UnaryFunction F)
Provide wrappers to std::for_each which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1731
LLVM_ABI unsigned removeAllNonTerminatorAndEHPadInstructions(BasicBlock *BB)
Remove all instructions from a basic block other than its terminator and any present EH pad instructi...
Definition Local.cpp:2520
bool all_of(R &&range, UnaryPredicate P)
Provide wrappers to std::all_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1738
LLVM_ABI bool RecursivelyDeleteTriviallyDeadInstructions(Value *V, const TargetLibraryInfo *TLI=nullptr, MemorySSAUpdater *MSSAU=nullptr, std::function< void(Value *)> AboutToDeleteCallback=std::function< void(Value *)>())
If the specified value is a trivially dead instruction, delete it.
Definition Local.cpp:535
bool succ_empty(const Instruction *I)
Definition CFG.h:141
LLVM_ABI BasicBlock * changeToInvokeAndSplitBasicBlock(CallInst *CI, BasicBlock *UnwindEdge, DomTreeUpdater *DTU=nullptr)
Convert the CallInst to InvokeInst with the specified unwind edge basic block.
Definition Local.cpp:2638
LLVM_ABI bool ConstantFoldTerminator(BasicBlock *BB, bool DeleteDeadConditions=false, const TargetLibraryInfo *TLI=nullptr, DomTreeUpdater *DTU=nullptr)
If a terminator instruction is predicated on a constant value, convert it into an unconditional branc...
Definition Local.cpp:134
LLVM_ABI unsigned replaceDominatedUsesWithIf(Value *From, Value *To, DominatorTree &DT, const BasicBlockEdge &Edge, function_ref< bool(const Use &U, const Value *To)> ShouldReplace)
Replace each use of 'From' with 'To' if that use is dominated by the given edge and the callback Shou...
Definition Local.cpp:3292
LLVM_ABI void findDbgValues(Value *V, SmallVectorImpl< DbgVariableRecord * > &DbgVariableRecords)
Finds the dbg.values describing a value.
LLVM_ABI unsigned replaceNonLocalUsesWith(Instruction *From, Value *To)
Definition Local.cpp:3256
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 void salvageDebugInfo(const MachineRegisterInfo &MRI, MachineInstr &MI)
Assuming the instruction MI is going to be deleted, attempt to salvage debug users of MI by writing t...
Definition Utils.cpp:1687
auto successors(const MachineBasicBlock *BB)
LLVM_ABI bool isRemovableAlloc(const CallBase *V, const TargetLibraryInfo *TLI)
Return true if this is a call to an allocation function that does not have side effects that we are r...
LLVM_ABI CallInst * changeToCall(InvokeInst *II, DomTreeUpdater *DTU=nullptr)
This function converts the specified invoke into a normal call.
Definition Local.cpp:2614
LLVM_ABI bool isMathLibCallNoop(const CallBase *Call, const TargetLibraryInfo *TLI)
Check whether the given call has no side-effects.
LLVM_ABI void copyMetadataForLoad(LoadInst &Dest, const LoadInst &Source)
Copy the metadata from the source instruction to the destination (the replacement for the source inst...
Definition Local.cpp:3129
LLVM_ABI void InsertDebugValueAtStoreLoc(DbgVariableRecord *DVR, StoreInst *SI, DIBuilder &Builder)
===------------------------------------------------------------------—===// Dbg Intrinsic utilities
Definition Local.cpp:1717
constexpr from_range_t from_range
bool hasNItemsOrLess(IterTy &&Begin, IterTy &&End, unsigned N, Pred &&ShouldBeCounted=[](const decltype(*std::declval< IterTy >()) &) { return true;})
Returns true if the sequence [Begin, End) has N or less items.
Definition STLExtras.h:2658
LLVM_ABI void remapDebugVariable(ValueToValueMapTy &Mapping, Instruction *Inst)
Remap the operands of the debug records attached to Inst, and the operands of Inst itself if it's a d...
Definition Local.cpp:3492
iterator_range< early_inc_iterator_impl< detail::IterOfRange< RangeT > > > make_early_inc_range(RangeT &&Range)
Make a range that does early increment to allow mutation of the underlying range without disrupting i...
Definition STLExtras.h:633
auto cast_or_null(const Y &Val)
Definition Casting.h:714
auto pred_size(const MachineBasicBlock *BB)
LLVM_ABI bool SimplifyInstructionsInBlock(BasicBlock *BB, const TargetLibraryInfo *TLI=nullptr)
Scan the specified basic block and try to simplify any instructions in it and recursively delete dead...
Definition Local.cpp:723
LLVM_ABI bool isAssumeWithEmptyBundle(const AssumeInst &Assume)
Return true iff the operand bundles of the provided llvm.assume doesn't contain any valuable informat...
LLVM_ABI void DeleteDeadBlock(BasicBlock *BB, DomTreeUpdater *DTU=nullptr, bool KeepOneInputPHIs=false)
Delete the specified block, which must have no predecessors.
LLVM_ABI bool hasBranchWeightOrigin(const Instruction &I)
Check if Branch Weight Metadata has an "expected" field from an llvm.expect* intrinsic.
LLVM_ABI void insertDebugValuesForPHIs(BasicBlock *BB, SmallVectorImpl< PHINode * > &InsertedPHIs)
Propagate dbg.value intrinsics through the newly inserted PHIs.
Definition Local.cpp:1914
LLVM_ABI ConstantRange getConstantRangeFromMetadata(const MDNode &RangeMD)
Parse out a conservative ConstantRange from !range metadata.
LLVM_ABI MDNode * intersectAccessGroups(const Instruction *Inst1, const Instruction *Inst2)
Compute the access-group list of access groups that Inst1 and Inst2 are both in.
LLVM_ABI bool handleUnreachableTerminator(Instruction *I, SmallVectorImpl< Value * > &PoisonedValues)
If a terminator in an unreachable basic block has an operand of type Instruction, transform it into p...
Definition Local.cpp:2503
LLVM_ABI bool canSimplifyInvokeNoUnwind(const Function *F)
LLVM_ABI Value * simplifyInstruction(Instruction *I, const SimplifyQuery &Q)
See if we can compute a simplified version of this instruction.
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:1745
LLVM_ABI bool isInstructionTriviallyDead(Instruction *I, const TargetLibraryInfo *TLI=nullptr)
Return true if the result produced by the instruction is not used, and the instruction will return.
Definition Local.cpp:403
LLVM_ABI bool TryToSimplifyUncondBranchFromEmptyBlock(BasicBlock *BB, DomTreeUpdater *DTU=nullptr)
BB is known to contain an unconditional branch, and contains no instructions other than PHI nodes,...
Definition Local.cpp:1155
LLVM_ABI SmallVector< uint32_t > fitWeights(ArrayRef< uint64_t > Weights)
Push the weights right to fit in uint32_t.
LLVM_ABI bool recognizeBSwapOrBitReverseIdiom(Instruction *I, bool MatchBSwaps, bool MatchBitReversals, SmallVectorImpl< Instruction * > &InsertedInsts)
Try to match a bswap or bitreverse idiom.
Definition Local.cpp:3797
LLVM_ABI MDNode * getValidBranchWeightMDNode(const Instruction &I)
Get the valid branch weights metadata node.
LLVM_ABI Align getOrEnforceKnownAlignment(Value *V, MaybeAlign PrefAlign, const DataLayout &DL, const Instruction *CxtI=nullptr, AssumptionCache *AC=nullptr, const DominatorTree *DT=nullptr)
Try to ensure that the alignment of V is at least PrefAlign bytes.
Definition Local.cpp:1575
LLVM_ABI bool wouldInstructionBeTriviallyDeadOnUnusedPaths(Instruction *I, const TargetLibraryInfo *TLI=nullptr)
Return true if the result produced by the instruction has no side effects on any paths other than whe...
Definition Local.cpp:410
LLVM_ABI void computeKnownBits(const Value *V, KnownBits &Known, const DataLayout &DL, AssumptionCache *AC=nullptr, const Instruction *CxtI=nullptr, const DominatorTree *DT=nullptr, bool UseInstrInfo=true, unsigned Depth=0)
Determine which bits of V are known to be either zero or one and return them in the KnownZero/KnownOn...
LLVM_ABI bool LowerDbgDeclare(Function &F)
Lowers dbg.declare records into appropriate set of dbg.value records.
Definition Local.cpp:1827
LLVM_ABI bool NullPointerIsDefined(const Function *F, unsigned AS=0)
Check whether null pointer dereferencing is considered undefined behavior for a given function or an ...
LLVM_ABI DIExpression * getExpressionForConstant(DIBuilder &DIB, const Constant &C, Type &Ty)
Given a constant, create a debug information expression.
Definition Local.cpp:3450
LLVM_ABI CallInst * createCallMatchingInvoke(InvokeInst *II)
Create a call that matches the invoke II in terms of arguments, attributes, debug information,...
Definition Local.cpp:2588
LLVM_ABI raw_ostream & dbgs()
dbgs() - This returns a reference to a raw_ostream for debugging messages.
Definition Debug.cpp:209
generic_gep_type_iterator<> gep_type_iterator
LLVM_ABI void ConvertDebugDeclareToDebugValue(DbgVariableRecord *DVR, StoreInst *SI, DIBuilder &Builder)
Inserts a dbg.value record before a store to an alloca'd value that has an associated dbg....
Definition Local.cpp:1671
LLVM_ABI Instruction * removeUnwindEdge(BasicBlock *BB, DomTreeUpdater *DTU=nullptr)
Replace 'BB's terminator with one that does not have an unwind successor block.
Definition Local.cpp:2878
LLVM_ABI bool wouldInstructionBeTriviallyDead(const Instruction *I, const TargetLibraryInfo *TLI=nullptr)
Return true if the result produced by the instruction would have no side effects if it was not used.
Definition Local.cpp:422
FunctionAddr VTableAddr Count
Definition InstrProf.h:139
LLVM_ABI void patchReplacementInstruction(Instruction *I, Value *Repl)
Patch the replacement so that it is not more restrictive than the value being replaced.
Definition Local.cpp:3192
LLVM_ABI void salvageDebugInfoForDbgValues(Instruction &I, ArrayRef< DbgVariableRecord * > DPInsns)
Implementation of salvageDebugInfo, applying only to instructions in Insns, rather than all debug use...
Definition Local.cpp:2072
LLVM_ABI unsigned replaceDominatedUsesWith(Value *From, Value *To, DominatorTree &DT, const BasicBlockEdge &Edge)
Replace each use of 'From' with 'To' if that use is dominated by the given edge.
Definition Local.cpp:3271
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
@ Success
The lock was released successfully.
LLVM_ABI unsigned changeToUnreachable(Instruction *I, bool PreserveLCSSA=false, DomTreeUpdater *DTU=nullptr, MemorySSAUpdater *MSSAU=nullptr)
Insert an unreachable instruction before the specified instruction, making it and the rest of the cod...
Definition Local.cpp:2548
LLVM_ABI bool replaceAllDbgUsesWith(Instruction &From, Value &To, Instruction &DomPoint, DominatorTree &DT)
Point debug users of From to To or salvage them.
Definition Local.cpp:2449
LLVM_ABI Value * salvageDebugInfoImpl(Instruction &I, uint64_t CurrentLocOps, SmallVectorImpl< uint64_t > &Ops, SmallVectorImpl< Value * > &AdditionalValues)
Definition Local.cpp:2309
RNSuccIterator< NodeRef, BlockT, RegionT > succ_begin(NodeRef Node)
LLVM_ABI void combineMetadataForCSE(Instruction *K, const Instruction *J, bool DoesKMove)
Combine the metadata of two instructions so that K can replace J.
Definition Local.cpp:3120
LLVM_ABI void dropDebugUsers(Instruction &I)
Remove the debug intrinsic instructions for the given instruction.
Definition Local.cpp:3397
@ First
Helpers to iterate all locations in the MemoryEffectsBase class.
Definition ModRef.h:74
LLVM_ABI void MergeBasicBlockIntoOnlyPred(BasicBlock *BB, DomTreeUpdater *DTU=nullptr)
BB is a block with one predecessor and its predecessor is known to have one successor (BB!...
Definition Local.cpp:763
LLVM_ABI bool replaceDbgUsesWithUndef(Instruction *I)
Replace all the uses of an SSA value in @llvm.dbg intrinsics with undef.
Definition Local.cpp:612
LLVM_ABI void hoistAllInstructionsInto(BasicBlock *DomBlock, Instruction *InsertPt, BasicBlock *BB)
Hoist all of the instructions in the IfBlock to the dominant block DomBlock, by moving its instructio...
Definition Local.cpp:3404
LLVM_ABI void copyRangeMetadata(const DataLayout &DL, const LoadInst &OldLI, MDNode *N, LoadInst &NewLI)
Copy a range metadata node to a new load instruction.
Definition Local.cpp:3373
LLVM_ABI BasicBlock * SplitBlock(BasicBlock *Old, BasicBlock::iterator SplitPt, DominatorTree *DT, LoopInfo *LI=nullptr, MemorySSAUpdater *MSSAU=nullptr, const Twine &BBName="")
Split the specified block at the specified instruction.
LLVM_ABI DebugLoc getDebugValueLoc(DbgVariableRecord *DVR)
Produce a DebugLoc to use for each dbg.declare that is promoted to a dbg.value.
LLVM_ABI void copyNonnullMetadata(const LoadInst &OldLI, MDNode *N, LoadInst &NewLI)
Copy a nonnull metadata node to a new load instruction.
Definition Local.cpp:3348
LLVM_ABI bool canReplaceOperandWithVariable(const Instruction *I, unsigned OpIdx)
Given an instruction, is it legal to set operand OpIdx to a non-constant value?
Definition Local.cpp:3911
DWARFExpression::Operation Op
LLVM_ABI void replaceDbgValueForAlloca(AllocaInst *AI, Value *NewAllocaAddress, DIBuilder &Builder, int Offset=0)
Replaces multiple dbg.value records when the alloca it describes is replaced with a new value.
Definition Local.cpp:2017
LLVM_ABI Align tryEnforceAlignment(Value *V, Align PrefAlign, const DataLayout &DL)
If the specified pointer points to an object that we control, try to modify the object's alignment to...
Definition Local.cpp:1526
LLVM_ABI Value * getFreedOperand(const CallBase *CB, const TargetLibraryInfo *TLI)
If this if a call to a free function, return the freed operand.
LLVM_ABI bool RecursivelyDeleteTriviallyDeadInstructionsPermissive(SmallVectorImpl< WeakTrackingVH > &DeadInsts, const TargetLibraryInfo *TLI=nullptr, MemorySSAUpdater *MSSAU=nullptr, std::function< void(Value *)> AboutToDeleteCallback=std::function< void(Value *)>())
Same functionality as RecursivelyDeleteTriviallyDeadInstructions, but allow instructions that are not...
Definition Local.cpp:550
constexpr unsigned BitWidth
ValueMap< const Value *, WeakTrackingVH > ValueToValueMapTy
LLVM_ABI bool extractBranchWeights(const MDNode *ProfileData, SmallVectorImpl< uint32_t > &Weights)
Extract branch weights from MD_prof metadata.
auto count_if(R &&Range, UnaryPredicate P)
Wrapper function around std::count_if to count the number of times an element satisfying a given pred...
Definition STLExtras.h:2018
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:559
gep_type_iterator gep_type_begin(const User *GEP)
LLVM_ABI TinyPtrVector< DbgVariableRecord * > findDVRDeclares(Value *V)
Finds dbg.declare records declaring local variables as living in the memory that 'V' points to.
Definition DebugInfo.cpp:48
auto predecessors(const MachineBasicBlock *BB)
bool is_contained(R &&Range, const E &Element)
Returns true if Element is found in Range.
Definition STLExtras.h:1946
LLVM_ABI void combineAAMetadata(Instruction *K, const Instruction *J)
Combine metadata of two instructions, where instruction J is a memory access that has been merged int...
Definition Local.cpp:3125
LLVM_ABI bool RecursivelyDeleteDeadPHINode(PHINode *PN, const TargetLibraryInfo *TLI=nullptr, MemorySSAUpdater *MSSAU=nullptr)
If the specified value is an effectively dead PHI node, due to being a def-use chain of single-use no...
Definition Local.cpp:643
LLVM_ABI bool inferAttributesFromOthers(Function &F)
If we can infer one attribute from another on the declaration of a function, explicitly materialize t...
Definition Local.cpp:4029
LLVM_ABI Value * invertCondition(Value *Condition)
Invert the given true/false value, possibly reusing an existing copy.
Definition Local.cpp:3995
hash_code hash_combine(const Ts &...args)
Combine values into a single hash_code.
Definition Hashing.h:325
LLVM_ABI void DeleteDeadBlocks(ArrayRef< BasicBlock * > BBs, DomTreeUpdater *DTU=nullptr, bool KeepOneInputPHIs=false)
Delete the specified blocks from BB.
LLVM_ABI void setFittedBranchWeights(Instruction &I, ArrayRef< uint64_t > Weights, bool IsExpected, bool ElideAllZero=false)
Variant of setBranchWeights where the Weights will be fit first to uint32_t by shifting right.
LLVM_ABI void maybeMarkSanitizerLibraryCallNoBuiltin(CallInst *CI, const TargetLibraryInfo *TLI)
Given a CallInst, check if it calls a string function known to CodeGen, and mark it with NoBuiltin if...
Definition Local.cpp:3901
static auto filterDbgVars(iterator_range< simple_ilist< DbgRecord >::iterator > R)
Filter the DbgRecord range to DbgVariableRecord types only and downcast.
LLVM_ABI bool removeUnreachableBlocks(Function &F, DomTreeUpdater *DTU=nullptr, MemorySSAUpdater *MSSAU=nullptr)
Remove all blocks that can not be reached from the function's entry.
Definition Local.cpp:2916
LLVM_ABI bool EliminateDuplicatePHINodes(BasicBlock *BB)
Check for and eliminate duplicate PHI nodes in this block.
Definition Local.cpp:1518
LLVM_ABI void findDbgUsers(Value *V, SmallVectorImpl< DbgVariableRecord * > &DbgVariableRecords)
Finds the debug info records describing a value.
LLVM_ABI bool callsGCLeafFunction(const CallBase *Call, const TargetLibraryInfo &TLI)
Return true if this call calls a gc leaf function.
Definition Local.cpp:3319
hash_code hash_combine_range(InputIteratorT first, InputIteratorT last)
Compute a hash_code for a sequence of values.
Definition Hashing.h:305
LLVM_ABI bool replaceDbgDeclare(Value *Address, Value *NewAddress, DIBuilder &Builder, uint8_t DIExprFlags, int Offset)
Replaces dbg.declare record when the address it describes is replaced with a new value.
Definition Local.cpp:1977
LLVM_ABI void extractFromBranchWeightMD64(const MDNode *ProfileData, SmallVectorImpl< uint64_t > &Weights)
Faster version of extractBranchWeights() that skips checks and must only be called with "branch_weigh...
void swap(llvm::BitVector &LHS, llvm::BitVector &RHS)
Implement std::swap in terms of BitVector swap.
Definition BitVector.h:863
#define N
#define NDEBUG
Definition regutils.h:48
This struct is a compact representation of a valid (non-zero power of two) alignment.
Definition Alignment.h:39
An information struct used to provide DenseMap with the various necessary components for a given valu...
unsigned countMinTrailingZeros() const
Returns the minimum number of trailing zero bits.
Definition KnownBits.h:256
unsigned getBitWidth() const
Get the bit width of this value.
Definition KnownBits.h:44
This struct is a compact representation of a valid (power of two) or undefined (0) alignment.
Definition Alignment.h:106
std::optional< unsigned > Opcode
Opcode of merged instructions.
Definition Local.h:591
LLVM_ABI void mergeFlags(Instruction &I)
Merge in the no-wrap flags from I.
Definition Local.cpp:4059
LLVM_ABI void applyFlags(Instruction &I)
Apply the no-wrap flags to I if applicable.
Definition Local.cpp:4075
A MapVector that performs no allocations if smaller than a certain size.
Definition MapVector.h:334