LLVM 24.0.0git
LoopUtils.cpp
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1//===-- LoopUtils.cpp - Loop Utility functions -------------------------===//
2//
3// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4// See https://llvm.org/LICENSE.txt for license information.
5// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6//
7//===----------------------------------------------------------------------===//
8//
9// This file defines common loop utility functions.
10//
11//===----------------------------------------------------------------------===//
12
14#include "llvm/ADT/DenseSet.h"
16#include "llvm/ADT/ScopeExit.h"
17#include "llvm/ADT/SetVector.h"
33#include "llvm/IR/DIBuilder.h"
34#include "llvm/IR/Dominators.h"
37#include "llvm/IR/MDBuilder.h"
38#include "llvm/IR/Module.h"
41#include "llvm/IR/ValueHandle.h"
43#include "llvm/Pass.h"
45#include "llvm/Support/Debug.h"
49
50using namespace llvm;
51using namespace llvm::PatternMatch;
52
53#define DEBUG_TYPE "loop-utils"
54
55static const char *LLVMLoopDisableNonforced = "llvm.loop.disable_nonforced";
56static const char *LLVMLoopDisableLICM = "llvm.licm.disable";
57namespace llvm {
59} // namespace llvm
60
62 MemorySSAUpdater *MSSAU,
63 bool PreserveLCSSA) {
64 bool Changed = false;
65
66 // We re-use a vector for the in-loop predecesosrs.
67 SmallVector<BasicBlock *, 4> InLoopPredecessors;
68
69 auto RewriteExit = [&](BasicBlock *BB) {
70 assert(InLoopPredecessors.empty() &&
71 "Must start with an empty predecessors list!");
72 llvm::scope_exit Cleanup([&] { InLoopPredecessors.clear(); });
73
74 // See if there are any non-loop predecessors of this exit block and
75 // keep track of the in-loop predecessors.
76 bool IsDedicatedExit = true;
77 for (auto *PredBB : predecessors(BB))
78 if (L->contains(PredBB)) {
79 if (isa<IndirectBrInst>(PredBB->getTerminator()))
80 // We cannot rewrite exiting edges from an indirectbr.
81 return false;
82
83 InLoopPredecessors.push_back(PredBB);
84 } else {
85 IsDedicatedExit = false;
86 }
87
88 assert(!InLoopPredecessors.empty() && "Must have *some* loop predecessor!");
89
90 // Nothing to do if this is already a dedicated exit.
91 if (IsDedicatedExit)
92 return false;
93
94 auto *NewExitBB = SplitBlockPredecessors(
95 BB, InLoopPredecessors, ".loopexit", DT, LI, MSSAU, PreserveLCSSA);
96
97 if (!NewExitBB)
99 dbgs() << "WARNING: Can't create a dedicated exit block for loop: "
100 << *L << "\n");
101 else
102 LLVM_DEBUG(dbgs() << "LoopSimplify: Creating dedicated exit block "
103 << NewExitBB->getName() << "\n");
104 return true;
105 };
106
107 // Walk the exit blocks directly rather than building up a data structure for
108 // them, but only visit each one once.
110 for (auto *BB : L->blocks())
111 for (auto *SuccBB : successors(BB)) {
112 // We're looking for exit blocks so skip in-loop successors.
113 if (L->contains(SuccBB))
114 continue;
115
116 // Visit each exit block exactly once.
117 if (!Visited.insert(SuccBB).second)
118 continue;
119
120 Changed |= RewriteExit(SuccBB);
121 }
122
123 return Changed;
124}
125
126/// Returns the instructions that use values defined in the loop.
129
130 for (auto *Block : L->getBlocks())
131 // FIXME: I believe that this could use copy_if if the Inst reference could
132 // be adapted into a pointer.
133 for (auto &Inst : *Block) {
134 auto Users = Inst.users();
135 if (any_of(Users, [&](User *U) {
136 auto *Use = cast<Instruction>(U);
137 return !L->contains(Use->getParent());
138 }))
139 UsedOutside.push_back(&Inst);
140 }
141
142 return UsedOutside;
143}
144
146 // By definition, all loop passes need the LoopInfo analysis and the
147 // Dominator tree it depends on. Because they all participate in the loop
148 // pass manager, they must also preserve these.
153
154 // We must also preserve LoopSimplify and LCSSA. We locally access their IDs
155 // here because users shouldn't directly get them from this header.
156 extern char &LoopSimplifyID;
157 extern char &LCSSAID;
162 // This is used in the LPPassManager to perform LCSSA verification on passes
163 // which preserve lcssa form
166
167 // Loop passes are designed to run inside of a loop pass manager which means
168 // that any function analyses they require must be required by the first loop
169 // pass in the manager (so that it is computed before the loop pass manager
170 // runs) and preserved by all loop pasess in the manager. To make this
171 // reasonably robust, the set needed for most loop passes is maintained here.
172 // If your loop pass requires an analysis not listed here, you will need to
173 // carefully audit the loop pass manager nesting structure that results.
181 // FIXME: When all loop passes preserve MemorySSA, it can be required and
182 // preserved here instead of the individual handling in each pass.
183}
184
185/// Manually defined generic "LoopPass" dependency initialization. This is used
186/// to initialize the exact set of passes from above in \c
187/// getLoopAnalysisUsage. It can be used within a loop pass's initialization
188/// with:
189///
190/// INITIALIZE_PASS_DEPENDENCY(LoopPass)
191///
192/// As-if "LoopPass" were a pass.
205
206/// Create MDNode for input string.
207static MDNode *createStringMetadata(Loop *TheLoop, StringRef Name, unsigned V) {
208 LLVMContext &Context = TheLoop->getHeader()->getContext();
209 Metadata *MDs[] = {
210 MDString::get(Context, Name),
211 ConstantAsMetadata::get(ConstantInt::get(Type::getInt32Ty(Context), V))};
212 return MDNode::get(Context, MDs);
213}
214
215/// Set input string into loop metadata by keeping other values intact.
216/// If the string is already in loop metadata update value if it is
217/// different.
218void llvm::addStringMetadataToLoop(Loop *TheLoop, const char *StringMD,
219 unsigned V) {
221 // If the loop already has metadata, retain it.
222 MDNode *LoopID = TheLoop->getLoopID();
223 if (LoopID) {
224 for (unsigned i = 1, ie = LoopID->getNumOperands(); i < ie; ++i) {
225 MDNode *Node = cast<MDNode>(LoopID->getOperand(i));
226 // If it is of form key = value, try to parse it.
227 if (Node->getNumOperands() == 2) {
228 MDString *S = dyn_cast<MDString>(Node->getOperand(0));
229 if (S && S->getString() == StringMD) {
230 ConstantInt *IntMD =
232 if (IntMD && IntMD->getSExtValue() == V)
233 // It is already in place. Do nothing.
234 return;
235 // We need to update the value, so just skip it here and it will
236 // be added after copying other existed nodes.
237 continue;
238 }
239 }
240 MDs.push_back(Node);
241 }
242 }
243 // Add new metadata.
244 MDs.push_back(createStringMetadata(TheLoop, StringMD, V));
245 // Replace current metadata node with new one.
246 LLVMContext &Context = TheLoop->getHeader()->getContext();
247 MDNode *NewLoopID = MDNode::get(Context, MDs);
248 // Set operand 0 to refer to the loop id itself.
249 NewLoopID->replaceOperandWith(0, NewLoopID);
250 TheLoop->setLoopID(NewLoopID);
251}
252
254 LLVMContext &Context = TheLoop->getHeader()->getContext();
256 // Retain existing metadata, skipping a name-only node with the same string.
257 if (MDNode *LoopID = TheLoop->getLoopID())
258 for (const MDOperand &Op : drop_begin(LoopID->operands())) {
260 if (Node->getNumOperands() == 1)
261 if (auto *S = dyn_cast<MDString>(Node->getOperand(0)))
262 if (S->getString() == StringMD)
263 return;
264 MDs.push_back(Node);
265 }
266 MDs.push_back(MDNode::get(Context, {MDString::get(Context, StringMD)}));
267 MDNode *NewLoopID = MDNode::get(Context, MDs);
268 // Set operand 0 to refer to the loop id itself.
269 NewLoopID->replaceOperandWith(0, NewLoopID);
270 TheLoop->setLoopID(NewLoopID);
271}
272
273std::optional<ElementCount>
275 std::optional<int> Width =
276 getOptionalIntLoopAttribute(TheLoop, "llvm.loop.vectorize.width");
277
278 if (Width) {
279 // Presence of the scalable.enable unit node means a scalable ElementCount;
280 // disable or absence both mean fixed-width.
281 bool IsScalable =
282 getBooleanLoopAttribute(TheLoop, "llvm.loop.vectorize.scalable.enable");
283 return ElementCount::get(*Width, IsScalable);
284 }
285
286 return std::nullopt;
287}
288
289std::optional<MDNode *> llvm::makeFollowupLoopID(
290 MDNode *OrigLoopID, ArrayRef<StringRef> FollowupOptions,
291 const char *InheritOptionsExceptPrefix, bool AlwaysNew) {
292 if (!OrigLoopID) {
293 if (AlwaysNew)
294 return nullptr;
295 return std::nullopt;
296 }
297
298 assert(OrigLoopID->getOperand(0) == OrigLoopID);
299
300 bool InheritAllAttrs = !InheritOptionsExceptPrefix;
301 bool InheritSomeAttrs =
302 InheritOptionsExceptPrefix && InheritOptionsExceptPrefix[0] != '\0';
304 MDs.push_back(nullptr);
305
306 bool Changed = false;
307 if (InheritAllAttrs || InheritSomeAttrs) {
308 for (const MDOperand &Existing : drop_begin(OrigLoopID->operands())) {
309 MDNode *Op = cast<MDNode>(Existing.get());
310
311 auto InheritThisAttribute = [InheritSomeAttrs,
312 InheritOptionsExceptPrefix](MDNode *Op) {
313 if (!InheritSomeAttrs)
314 return false;
315
316 // Skip malformatted attribute metadata nodes.
317 if (Op->getNumOperands() == 0)
318 return true;
319 Metadata *NameMD = Op->getOperand(0).get();
320 if (!isa<MDString>(NameMD))
321 return true;
322 StringRef AttrName = cast<MDString>(NameMD)->getString();
323
324 // Do not inherit excluded attributes.
325 return !AttrName.starts_with(InheritOptionsExceptPrefix);
326 };
327
328 if (InheritThisAttribute(Op))
329 MDs.push_back(Op);
330 else
331 Changed = true;
332 }
333 } else {
334 // Modified if we dropped at least one attribute.
335 Changed = OrigLoopID->getNumOperands() > 1;
336 }
337
338 bool HasAnyFollowup = false;
339 for (StringRef OptionName : FollowupOptions) {
340 MDNode *FollowupNode = findOptionMDForLoopID(OrigLoopID, OptionName);
341 if (!FollowupNode)
342 continue;
343
344 HasAnyFollowup = true;
345 for (const MDOperand &Option : drop_begin(FollowupNode->operands())) {
346 MDs.push_back(Option.get());
347 Changed = true;
348 }
349 }
350
351 // Attributes of the followup loop not specified explicity, so signal to the
352 // transformation pass to add suitable attributes.
353 if (!AlwaysNew && !HasAnyFollowup)
354 return std::nullopt;
355
356 // If no attributes were added or remove, the previous loop Id can be reused.
357 if (!AlwaysNew && !Changed)
358 return OrigLoopID;
359
360 // No attributes is equivalent to having no !llvm.loop metadata at all.
361 if (MDs.size() == 1)
362 return nullptr;
363
364 // Build the new loop ID.
365 MDTuple *FollowupLoopID = MDNode::get(OrigLoopID->getContext(), MDs);
366 FollowupLoopID->replaceOperandWith(0, FollowupLoopID);
367 return FollowupLoopID;
368}
369
373
377
379 bool IsVectorBody = getBooleanLoopAttribute(L, "llvm.loop.vectorize.body");
380 bool IsEpilogue = getBooleanLoopAttribute(L, "llvm.loop.vectorize.epilogue");
381 if (IsVectorBody && IsEpilogue)
382 return "vectorized epilogue ";
383 if (IsVectorBody)
384 return "vectorized ";
385 if (IsEpilogue)
386 return "epilogue ";
387 return "";
388}
389
391 if (getBooleanLoopAttribute(L, "llvm.loop.unroll.disable"))
392 return TM_SuppressedByUser;
393
394 std::optional<int> Count =
395 getOptionalIntLoopAttribute(L, "llvm.loop.unroll.count");
396 if (Count)
398
399 if (getBooleanLoopAttribute(L, "llvm.loop.unroll.enable"))
400 return TM_ForcedByUser;
401
402 if (getBooleanLoopAttribute(L, "llvm.loop.unroll.full"))
403 return TM_ForcedByUser;
404
406 return TM_Disable;
407
408 return TM_Unspecified;
409}
410
412 if (getBooleanLoopAttribute(L, "llvm.loop.unroll_and_jam.disable"))
413 return TM_SuppressedByUser;
414
415 std::optional<int> Count =
416 getOptionalIntLoopAttribute(L, "llvm.loop.unroll_and_jam.count");
417 if (Count)
419
420 if (getBooleanLoopAttribute(L, "llvm.loop.unroll_and_jam.enable"))
421 return TM_ForcedByUser;
422
424 return TM_Disable;
425
426 return TM_Unspecified;
427}
428
430 if (getBooleanLoopAttribute(L, "llvm.loop.vectorize.disable"))
431 return TM_SuppressedByUser;
432
433 bool Enable = getBooleanLoopAttribute(L, "llvm.loop.vectorize.enable");
434
435 std::optional<ElementCount> VectorizeWidth =
437 std::optional<int> InterleaveCount =
438 getOptionalIntLoopAttribute(L, "llvm.loop.interleave.count");
439
440 // 'Forcing' vector width and interleave count to one effectively disables
441 // this tranformation.
442 if (Enable && VectorizeWidth && VectorizeWidth->isScalar() &&
443 InterleaveCount == 1)
444 return TM_SuppressedByUser;
445
446 if (getBooleanLoopAttribute(L, "llvm.loop.isvectorized"))
447 return TM_Disable;
448
449 if (Enable)
450 return TM_ForcedByUser;
451
452 if ((VectorizeWidth && VectorizeWidth->isScalar()) && InterleaveCount == 1)
453 return TM_Disable;
454
455 if ((VectorizeWidth && VectorizeWidth->isVector()) || InterleaveCount > 1)
456 return TM_Enable;
457
459 return TM_Disable;
460
461 return TM_Unspecified;
462}
463
465 if (getBooleanLoopAttribute(L, "llvm.loop.distribute.disable"))
466 return TM_SuppressedByUser;
467
468 if (getBooleanLoopAttribute(L, "llvm.loop.distribute.enable"))
469 return TM_ForcedByUser;
470
472 return TM_Disable;
473
474 return TM_Unspecified;
475}
476
478 if (getBooleanLoopAttribute(L, "llvm.loop.licm_versioning.disable"))
479 return TM_SuppressedByUser;
480
482 return TM_Disable;
483
484 return TM_Unspecified;
485}
486
487/// Does a BFS from a given node to all of its children inside a given loop.
488/// The returned vector of basic blocks includes the starting point.
490 DomTreeNode *N,
491 const Loop *CurLoop) {
493 auto AddRegionToWorklist = [&](DomTreeNode *DTN) {
494 // Only include subregions in the top level loop.
495 BasicBlock *BB = DTN->getBlock();
496 if (CurLoop->contains(BB))
497 Worklist.push_back(DTN->getBlock());
498 };
499
500 AddRegionToWorklist(N);
501
502 for (size_t I = 0; I < Worklist.size(); I++) {
503 for (DomTreeNode *Child : DT->getNode(Worklist[I])->children())
504 AddRegionToWorklist(Child);
505 }
506
507 return Worklist;
508}
509
511 int LatchIdx = PN->getBasicBlockIndex(LatchBlock);
512 assert(LatchIdx != -1 && "LatchBlock is not a case in this PHINode");
513 Value *IncV = PN->getIncomingValue(LatchIdx);
514
515 for (User *U : PN->users())
516 if (U != Cond && U != IncV) return false;
517
518 for (User *U : IncV->users())
519 if (U != Cond && U != PN) return false;
520 return true;
521}
522
523
525 LoopInfo *LI, MemorySSA *MSSA) {
526 assert((!DT || L->isLCSSAForm(*DT)) && "Expected LCSSA!");
527 auto *Preheader = L->getLoopPreheader();
528 assert(Preheader && "Preheader should exist!");
529
530 std::unique_ptr<MemorySSAUpdater> MSSAU;
531 if (MSSA)
532 MSSAU = std::make_unique<MemorySSAUpdater>(MSSA);
533
534 // Now that we know the removal is safe, remove the loop by changing the
535 // branch from the preheader to go to the single exit block.
536 //
537 // Because we're deleting a large chunk of code at once, the sequence in which
538 // we remove things is very important to avoid invalidation issues.
539
540 // Tell ScalarEvolution that the loop is deleted. Do this before
541 // deleting the loop so that ScalarEvolution can look at the loop
542 // to determine what it needs to clean up.
543 if (SE) {
544 SE->forgetLoop(L);
546 }
547
548 Instruction *OldTerm = Preheader->getTerminator();
549 assert(!OldTerm->mayHaveSideEffects() &&
550 "Preheader must end with a side-effect-free terminator");
551 assert(OldTerm->getNumSuccessors() == 1 &&
552 "Preheader must have a single successor");
553 // Connect the preheader to the exit block. Keep the old edge to the header
554 // around to perform the dominator tree update in two separate steps
555 // -- #1 insertion of the edge preheader -> exit and #2 deletion of the edge
556 // preheader -> header.
557 //
558 //
559 // 0. Preheader 1. Preheader 2. Preheader
560 // | | | |
561 // V | V |
562 // Header <--\ | Header <--\ | Header <--\
563 // | | | | | | | | | | |
564 // | V | | | V | | | V |
565 // | Body --/ | | Body --/ | | Body --/
566 // V V V V V
567 // Exit Exit Exit
568 //
569 // By doing this is two separate steps we can perform the dominator tree
570 // update without using the batch update API.
571 //
572 // Even when the loop is never executed, we cannot remove the edge from the
573 // source block to the exit block. Consider the case where the unexecuted loop
574 // branches back to an outer loop. If we deleted the loop and removed the edge
575 // coming to this inner loop, this will break the outer loop structure (by
576 // deleting the backedge of the outer loop). If the outer loop is indeed a
577 // non-loop, it will be deleted in a future iteration of loop deletion pass.
578 IRBuilder<> Builder(OldTerm);
579
580 auto *ExitBlock = L->getUniqueExitBlock();
581 DomTreeUpdater DTU(DT, DomTreeUpdater::UpdateStrategy::Eager);
582 if (ExitBlock) {
583 assert(ExitBlock && "Should have a unique exit block!");
584 assert(L->hasDedicatedExits() && "Loop should have dedicated exits!");
585
586 Builder.CreateCondBr(Builder.getFalse(), L->getHeader(), ExitBlock);
587 // Remove the old branch. The conditional branch becomes a new terminator.
588 OldTerm->eraseFromParent();
589
590 // Rewrite phis in the exit block to get their inputs from the Preheader
591 // instead of the exiting block.
592 for (PHINode &P : ExitBlock->phis()) {
593 // Set the zero'th element of Phi to be from the preheader and remove all
594 // other incoming values. Given the loop has dedicated exits, all other
595 // incoming values must be from the exiting blocks.
596 int PredIndex = 0;
597 P.setIncomingBlock(PredIndex, Preheader);
598 // Removes all incoming values from all other exiting blocks (including
599 // duplicate values from an exiting block).
600 // Nuke all entries except the zero'th entry which is the preheader entry.
601 P.removeIncomingValueIf([](unsigned Idx) { return Idx != 0; },
602 /* DeletePHIIfEmpty */ false);
603
604 assert((P.getNumIncomingValues() == 1 &&
605 P.getIncomingBlock(PredIndex) == Preheader) &&
606 "Should have exactly one value and that's from the preheader!");
607 }
608
609 if (DT) {
610 DTU.applyUpdates({{DominatorTree::Insert, Preheader, ExitBlock}});
611 if (MSSA) {
612 MSSAU->applyUpdates({{DominatorTree::Insert, Preheader, ExitBlock}},
613 *DT);
614 if (VerifyMemorySSA)
615 MSSA->verifyMemorySSA();
616 }
617 }
618
619 // Disconnect the loop body by branching directly to its exit.
620 Builder.SetInsertPoint(Preheader->getTerminator());
621 Builder.CreateBr(ExitBlock);
622 // Remove the old branch.
623 Preheader->getTerminator()->eraseFromParent();
624 } else {
625 assert((!LI || LI->hasNoExitBlocks(*L)) &&
626 "Loop should have either zero or one exit blocks.");
627
628 Builder.SetInsertPoint(OldTerm);
629 Builder.CreateUnreachable();
630 Preheader->getTerminator()->eraseFromParent();
631 }
632
633 if (DT) {
634 DTU.applyUpdates({{DominatorTree::Delete, Preheader, L->getHeader()}});
635 if (MSSA) {
636 MSSAU->applyUpdates({{DominatorTree::Delete, Preheader, L->getHeader()}},
637 *DT);
638 SmallSetVector<BasicBlock *, 8> DeadBlockSet(L->block_begin(),
639 L->block_end());
640 MSSAU->removeBlocks(DeadBlockSet);
641 if (VerifyMemorySSA)
642 MSSA->verifyMemorySSA();
643 }
644 }
645
646 // Use a map to unique and a vector to guarantee deterministic ordering.
648 llvm::SmallVector<DbgVariableRecord *, 4> DeadDbgVariableRecords;
649
650 // Given LCSSA form is satisfied, we should not have users of instructions
651 // within the dead loop outside of the loop. However, LCSSA doesn't take
652 // unreachable uses into account. We handle them here.
653 // We could do it after drop all references (in this case all users in the
654 // loop will be already eliminated and we have less work to do but according
655 // to API doc of User::dropAllReferences only valid operation after dropping
656 // references, is deletion. So let's substitute all usages of
657 // instruction from the loop with poison value of corresponding type first.
658 for (auto *Block : L->blocks())
659 for (Instruction &I : *Block) {
660 auto *Poison = PoisonValue::get(I.getType());
661 for (Use &U : llvm::make_early_inc_range(I.uses())) {
662 if (auto *Usr = dyn_cast<Instruction>(U.getUser()))
663 if (L->contains(Usr->getParent()))
664 continue;
665 // If we have a DT then we can check that uses outside a loop only in
666 // unreachable block.
667 if (DT)
669 "Unexpected user in reachable block");
670 U.set(Poison);
671 }
672
673 if (ExitBlock) {
674 // For one of each variable encountered, preserve a debug record (set
675 // to Poison) and transfer it to the loop exit. This terminates any
676 // variable locations that were set during the loop.
677 for (DbgVariableRecord &DVR :
678 llvm::make_early_inc_range(filterDbgVars(I.getDbgRecordRange()))) {
679 DebugVariable Key(DVR.getVariable(), DVR.getExpression(),
680 DVR.getDebugLoc().get());
681 if (!DeadDebugSet.insert(Key).second)
682 continue;
683 // Unlinks the DVR from it's container, for later insertion.
684 DVR.removeFromParent();
685 DeadDbgVariableRecords.push_back(&DVR);
686 }
687 }
688 }
689
690 if (ExitBlock) {
691 // After the loop has been deleted all the values defined and modified
692 // inside the loop are going to be unavailable. Values computed in the
693 // loop will have been deleted, automatically causing their debug uses
694 // be be replaced with undef. Loop invariant values will still be available.
695 // Move dbg.values out the loop so that earlier location ranges are still
696 // terminated and loop invariant assignments are preserved.
697 DIBuilder DIB(*ExitBlock->getModule());
698 BasicBlock::iterator InsertDbgValueBefore =
699 ExitBlock->getFirstInsertionPt();
700 assert(InsertDbgValueBefore != ExitBlock->end() &&
701 "There should be a non-PHI instruction in exit block, else these "
702 "instructions will have no parent.");
703
704 // Due to the "head" bit in BasicBlock::iterator, we're going to insert
705 // each DbgVariableRecord right at the start of the block, wheras dbg.values
706 // would be repeatedly inserted before the first instruction. To replicate
707 // this behaviour, do it backwards.
708 for (DbgVariableRecord *DVR : llvm::reverse(DeadDbgVariableRecords))
709 ExitBlock->insertDbgRecordBefore(DVR, InsertDbgValueBefore);
710 }
711
712 // Remove the block from the reference counting scheme, so that we can
713 // delete it freely later.
714 for (auto *Block : L->blocks())
715 Block->dropAllReferences();
716
717 if (MSSA && VerifyMemorySSA)
718 MSSA->verifyMemorySSA();
719
720 if (LI) {
722
723 // Erase the instructions and the blocks without having to worry
724 // about ordering because we already dropped the references.
725 // Remove blocks from loopinfo before erasing them, otherwise the loopinfo
726 // cannot find the loop using block numbers.
727 for (BasicBlock *BB : Blocks) {
728 LI->removeBlock(BB);
729 BB->eraseFromParent();
730 }
731
732 // The last step is to update LoopInfo now that we've eliminated this loop.
733 // Note: LoopInfo::erase remove the given loop and relink its subloops with
734 // its parent. While removeLoop/removeChildLoop remove the given loop but
735 // not relink its subloops, which is what we want.
736 if (Loop *ParentLoop = L->getParentLoop()) {
737 Loop::iterator I = find(*ParentLoop, L);
738 assert(I != ParentLoop->end() && "Couldn't find loop");
739 ParentLoop->removeChildLoop(I);
740 } else {
741 Loop::iterator I = find(*LI, L);
742 assert(I != LI->end() && "Couldn't find loop");
743 LI->removeLoop(I);
744 }
745 LI->destroy(L);
746 }
747}
748
750 LoopInfo &LI, MemorySSA *MSSA) {
751 auto *Latch = L->getLoopLatch();
752 assert(Latch && "multiple latches not yet supported");
753 auto *Header = L->getHeader();
754 Loop *OutermostLoop = L->getOutermostLoop();
755
756 SE.forgetLoop(L);
758
759 std::unique_ptr<MemorySSAUpdater> MSSAU;
760 if (MSSA)
761 MSSAU = std::make_unique<MemorySSAUpdater>(MSSA);
762
763 // Update the CFG and domtree. We chose to special case a couple of
764 // of common cases for code quality and test readability reasons.
765 [&]() -> void {
766 if (auto *BI = dyn_cast<UncondBrInst>(Latch->getTerminator())) {
767 DomTreeUpdater DTU(&DT, DomTreeUpdater::UpdateStrategy::Eager);
768 (void)changeToUnreachable(BI, /*PreserveLCSSA*/ true, &DTU, MSSAU.get());
769 return;
770 }
771 if (auto *BI = dyn_cast<CondBrInst>(Latch->getTerminator())) {
772 // Conditional latch/exit - note that latch can be shared by inner
773 // and outer loop so the other target doesn't need to an exit
774 if (L->isLoopExiting(Latch)) {
775 // TODO: Generalize ConstantFoldTerminator so that it can be used
776 // here without invalidating LCSSA or MemorySSA. (Tricky case for
777 // LCSSA: header is an exit block of a preceeding sibling loop w/o
778 // dedicated exits.)
779 const unsigned ExitIdx = L->contains(BI->getSuccessor(0)) ? 1 : 0;
780 BasicBlock *ExitBB = BI->getSuccessor(ExitIdx);
781
782 DomTreeUpdater DTU(&DT, DomTreeUpdater::UpdateStrategy::Eager);
783 Header->removePredecessor(Latch, true);
784
785 IRBuilder<> Builder(BI);
786 auto *NewBI = Builder.CreateBr(ExitBB);
787 // Transfer the metadata to the new branch instruction (minus the
788 // loop info since this is no longer a loop)
789 NewBI->copyMetadata(*BI, {LLVMContext::MD_dbg,
790 LLVMContext::MD_annotation});
791
792 BI->eraseFromParent();
793 DTU.applyUpdates({{DominatorTree::Delete, Latch, Header}});
794 if (MSSA)
795 MSSAU->applyUpdates({{DominatorTree::Delete, Latch, Header}}, DT);
796 return;
797 }
798 }
799
800 // General case. By splitting the backedge, and then explicitly making it
801 // unreachable we gracefully handle corner cases such as switch and invoke
802 // termiantors.
803 auto *BackedgeBB = SplitEdge(Latch, Header, &DT, &LI, MSSAU.get());
804
805 DomTreeUpdater DTU(&DT, DomTreeUpdater::UpdateStrategy::Eager);
806 (void)changeToUnreachable(BackedgeBB->getTerminator(),
807 /*PreserveLCSSA*/ true, &DTU, MSSAU.get());
808 }();
809
810 // Erase (and destroy) this loop instance. Handles relinking sub-loops
811 // and blocks within the loop as needed.
812 LI.erase(L);
813
814 // If the loop we broke had a parent, then changeToUnreachable might have
815 // caused a block to be removed from the parent loop (see loop_nest_lcssa
816 // test case in zero-btc.ll for an example), thus changing the parent's
817 // exit blocks. If that happened, we need to rebuild LCSSA on the outermost
818 // loop which might have a had a block removed.
819 if (OutermostLoop != L)
820 formLCSSARecursively(*OutermostLoop, DT, &LI, &SE);
821}
822
823
824/// Checks if \p L has an exiting latch branch. There may also be other
825/// exiting blocks. Returns branch instruction terminating the loop
826/// latch if above check is successful, nullptr otherwise.
828 BasicBlock *Latch = L->getLoopLatch();
829 if (!Latch)
830 return nullptr;
831
832 CondBrInst *LatchBR = dyn_cast<CondBrInst>(Latch->getTerminator());
833 if (!LatchBR || !L->isLoopExiting(Latch))
834 return nullptr;
835
836 assert((LatchBR->getSuccessor(0) == L->getHeader() ||
837 LatchBR->getSuccessor(1) == L->getHeader()) &&
838 "At least one edge out of the latch must go to the header");
839
840 return LatchBR;
841}
842
843struct DbgLoop {
844 const Loop *L;
845 explicit DbgLoop(const Loop *L) : L(L) {}
846};
847
848#ifndef NDEBUG
850 OS << "function ";
851 D.L->getHeader()->getParent()->printAsOperand(OS, /*PrintType=*/false);
852 return OS << " " << *D.L;
853}
854#endif // NDEBUG
855
856static std::optional<unsigned> estimateLoopTripCount(Loop *L) {
857 // Currently we take the estimate exit count only from the loop latch,
858 // ignoring other exiting blocks. This can overestimate the trip count
859 // if we exit through another exit, but can never underestimate it.
860 // TODO: incorporate information from other exits
861 CondBrInst *ExitingBranch = getExpectedExitLoopLatchBranch(L);
862 if (!ExitingBranch) {
863 LLVM_DEBUG(dbgs() << "estimateLoopTripCount: Failed to find exiting "
864 << "latch branch of required form in " << DbgLoop(L)
865 << "\n");
866 return std::nullopt;
867 }
868
869 // To estimate the number of times the loop body was executed, we want to
870 // know the number of times the backedge was taken, vs. the number of times
871 // we exited the loop.
872 uint64_t LoopWeight, ExitWeight;
873 if (!extractBranchWeights(*ExitingBranch, LoopWeight, ExitWeight)) {
874 LLVM_DEBUG(dbgs() << "estimateLoopTripCount: Failed to extract branch "
875 << "weights for " << DbgLoop(L) << "\n");
876 return std::nullopt;
877 }
878
879 if (L->contains(ExitingBranch->getSuccessor(1)))
880 std::swap(LoopWeight, ExitWeight);
881
882 if (!ExitWeight) {
883 // Don't have a way to return predicated infinite
884 LLVM_DEBUG(dbgs() << "estimateLoopTripCount: Failed because of zero exit "
885 << "probability for " << DbgLoop(L) << "\n");
886 return std::nullopt;
887 }
888
889 // Estimated exit count is a ratio of the loop weight by the weight of the
890 // edge exiting the loop, rounded to nearest.
891 uint64_t ExitCount = llvm::divideNearest(LoopWeight, ExitWeight);
892
893 // When ExitCount + 1 would wrap in unsigned, saturate at UINT_MAX.
894 if (ExitCount >= std::numeric_limits<unsigned>::max())
895 return std::numeric_limits<unsigned>::max();
896
897 // Estimated trip count is one plus estimated exit count.
898 uint64_t TC = ExitCount + 1;
899 LLVM_DEBUG(dbgs() << "estimateLoopTripCount: Estimated trip count of " << TC
900 << " for " << DbgLoop(L) << "\n");
901 return TC;
902}
903
904std::optional<unsigned>
906 unsigned *EstimatedLoopInvocationWeight) {
907 // If EstimatedLoopInvocationWeight, we do not support this loop if
908 // getExpectedExitLoopLatchBranch returns nullptr.
909 //
910 // FIXME: Also, this is a stop-gap solution for nested loops. It avoids
911 // mistaking LLVMLoopEstimatedTripCount metadata to be for an outer loop when
912 // it was created for an inner loop. The problem is that loop metadata is
913 // attached to the branch instruction in the loop latch block, but that can be
914 // shared by the loops. A solution is to attach loop metadata to loop headers
915 // instead, but that would be a large change to LLVM.
916 //
917 // Until that happens, we work around the problem as follows.
918 // getExpectedExitLoopLatchBranch (which also guards
919 // setLoopEstimatedTripCount) returns nullptr for a loop unless the loop has
920 // one latch and that latch has exactly two successors one of which is an exit
921 // from the loop. If the latch is shared by nested loops, then that condition
922 // might hold for the inner loop but cannot hold for the outer loop:
923 // - Because the latch is shared, it must have at least two successors: the
924 // inner loop header and the outer loop header, which is also an exit for
925 // the inner loop. That satisifies the condition for the inner loop.
926 // - To satsify the condition for the outer loop, the latch must have a third
927 // successor that is an exit for the outer loop. But that violates the
928 // condition for both loops.
929 CondBrInst *ExitingBranch = getExpectedExitLoopLatchBranch(L);
930 if (!ExitingBranch)
931 return std::nullopt;
932
933 // If requested, either compute *EstimatedLoopInvocationWeight or return
934 // nullopt if cannot.
935 //
936 // TODO: Eventually, once all passes have migrated away from setting branch
937 // weights to indicate estimated trip counts, this function will drop the
938 // EstimatedLoopInvocationWeight parameter.
939 if (EstimatedLoopInvocationWeight) {
940 uint64_t LoopWeight = 0, ExitWeight = 0; // Inits expected to be unused.
941 if (!extractBranchWeights(*ExitingBranch, LoopWeight, ExitWeight))
942 return std::nullopt;
943 if (L->contains(ExitingBranch->getSuccessor(1)))
944 std::swap(LoopWeight, ExitWeight);
945 if (!ExitWeight)
946 return std::nullopt;
947 *EstimatedLoopInvocationWeight = ExitWeight;
948 }
949
950 // Return the estimated trip count from metadata unless the metadata is
951 // missing or has no value.
952 //
953 // Some passes set llvm.loop.estimated_trip_count to 0. For example, after
954 // peeling 10 or more iterations from a loop with an estimated trip count of
955 // 10, llvm.loop.estimated_trip_count becomes 0 on the remaining loop. It
956 // indicates that, each time execution reaches the peeled iterations,
957 // execution is estimated to exit them without reaching the remaining loop's
958 // header.
959 if (std::optional<unsigned> TC =
961 LLVM_DEBUG(dbgs() << "getLoopEstimatedTripCount: "
962 << LLVMLoopEstimatedTripCount << " metadata has trip "
963 << "count of " << *TC << " for " << DbgLoop(L) << "\n");
964 return TC;
965 }
966
967 // Estimate the trip count from latch branch weights.
968 return estimateLoopTripCount(L);
969}
970
972 Loop *L, unsigned EstimatedTripCount,
973 std::optional<unsigned> EstimatedloopInvocationWeight) {
974 // If EstimatedLoopInvocationWeight, we do not support this loop if
975 // getExpectedExitLoopLatchBranch returns nullptr.
976 //
977 // FIXME: See comments in getLoopEstimatedTripCount for why this is required
978 // here regardless of EstimatedLoopInvocationWeight.
980 if (!LatchBranch)
981 return false;
982
983 // Set the metadata.
985
986 // At the moment, we currently support changing the estimated trip count in
987 // the latch branch's branch weights only. We could extend this API to
988 // manipulate estimated trip counts for any exit.
989 //
990 // TODO: Eventually, once all passes have migrated away from setting branch
991 // weights to indicate estimated trip counts, we will not set branch weights
992 // here at all.
993 if (!EstimatedloopInvocationWeight)
994 return true;
995
996 // Calculate taken and exit weights.
997 unsigned LatchExitWeight = ProfcheckDisableMetadataFixes ? 0 : 1;
998 unsigned BackedgeTakenWeight = 0;
999
1000 if (EstimatedTripCount != 0) {
1001 LatchExitWeight = *EstimatedloopInvocationWeight;
1002 BackedgeTakenWeight = (EstimatedTripCount - 1) * LatchExitWeight;
1003 }
1004
1005 // Make a swap if back edge is taken when condition is "false".
1006 if (LatchBranch->getSuccessor(0) != L->getHeader())
1007 std::swap(BackedgeTakenWeight, LatchExitWeight);
1008
1009 // Set/Update profile metadata.
1010 setBranchWeights(*LatchBranch, {BackedgeTakenWeight, LatchExitWeight},
1011 /*IsExpected=*/false);
1012
1013 return true;
1014}
1015
1018 if (!LatchBranch)
1020 bool FirstTargetIsLoop = LatchBranch->getSuccessor(0) == L->getHeader();
1021 return getBranchProbability(LatchBranch, FirstTargetIsLoop);
1022}
1023
1026 if (!LatchBranch)
1027 return false;
1028 bool FirstTargetIsLoop = LatchBranch->getSuccessor(0) == L->getHeader();
1029 setBranchProbability(LatchBranch, P, FirstTargetIsLoop);
1030 return true;
1031}
1032
1034 bool ForFirstTarget) {
1035 uint64_t Weight0, Weight1;
1036 if (!extractBranchWeights(*B, Weight0, Weight1))
1038 uint64_t Denominator = Weight0 + Weight1;
1039 if (Denominator == 0)
1041 if (!ForFirstTarget)
1042 std::swap(Weight0, Weight1);
1043 return BranchProbability::getBranchProbability(Weight0, Denominator);
1044}
1045
1047 assert(Src != Dst && "Passed in same source as destination");
1048
1049 Instruction *TI = Src->getTerminator();
1050 if (!TI || TI->getNumSuccessors() == 0)
1052
1054
1055 if (!extractBranchWeights(*TI, Weights)) {
1056 // No metadata
1058 }
1059 assert(TI->getNumSuccessors() == Weights.size() &&
1060 "Missing weights in branch_weights");
1061
1062 uint64_t Total = 0;
1063 uint32_t Numerator = 0;
1064 for (auto [i, Weight] : llvm::enumerate(Weights)) {
1065 if (TI->getSuccessor(i) == Dst)
1066 Numerator += Weight;
1067 Total += Weight;
1068 }
1069
1070 // Total of edges might be 0 if the metadata is incorrect/set by hand
1071 // or missing. In such case return here to avoid division by 0 later on.
1072 // There might also be a case where the value of Total cannot fit into
1073 // uint32_t, in such case, just bail out.
1074 if (Total == 0 || Total > std::numeric_limits<uint32_t>::max())
1076
1077 return BranchProbability(Numerator, Total);
1078}
1079
1081 bool ForFirstTarget) {
1082 BranchProbability Prob0 = P;
1083 BranchProbability Prob1 = P.getCompl();
1084 if (!ForFirstTarget)
1085 std::swap(Prob0, Prob1);
1086 setBranchWeights(*B, {Prob0.getNumerator(), Prob1.getNumerator()},
1087 /*IsExpected=*/false);
1088}
1089
1091 ScalarEvolution &SE) {
1092 Loop *OuterL = InnerLoop->getParentLoop();
1093 if (!OuterL)
1094 return true;
1095
1096 // Get the backedge taken count for the inner loop
1097 BasicBlock *InnerLoopLatch = InnerLoop->getLoopLatch();
1098 const SCEV *InnerLoopBECountSC = SE.getExitCount(InnerLoop, InnerLoopLatch);
1099 if (isa<SCEVCouldNotCompute>(InnerLoopBECountSC) ||
1100 !InnerLoopBECountSC->getType()->isIntegerTy())
1101 return false;
1102
1103 // Get whether count is invariant to the outer loop
1105 SE.getLoopDisposition(InnerLoopBECountSC, OuterL);
1107 return false;
1108
1109 return true;
1110}
1111
1113 switch (RK) {
1114 default:
1115 llvm_unreachable("Unexpected recurrence kind");
1117 case RecurKind::Sub:
1118 case RecurKind::Add:
1119 return Intrinsic::vector_reduce_add;
1120 case RecurKind::Mul:
1121 return Intrinsic::vector_reduce_mul;
1122 case RecurKind::And:
1123 return Intrinsic::vector_reduce_and;
1124 case RecurKind::Or:
1125 return Intrinsic::vector_reduce_or;
1126 case RecurKind::Xor:
1127 return Intrinsic::vector_reduce_xor;
1128 case RecurKind::FMulAdd:
1130 case RecurKind::FSub:
1131 case RecurKind::FAdd:
1132 return Intrinsic::vector_reduce_fadd;
1133 case RecurKind::FMul:
1134 return Intrinsic::vector_reduce_fmul;
1135 case RecurKind::SMax:
1136 return Intrinsic::vector_reduce_smax;
1137 case RecurKind::SMin:
1138 return Intrinsic::vector_reduce_smin;
1139 case RecurKind::UMax:
1140 return Intrinsic::vector_reduce_umax;
1141 case RecurKind::UMin:
1142 return Intrinsic::vector_reduce_umin;
1143 case RecurKind::FMax:
1144 case RecurKind::FMaxNum:
1145 return Intrinsic::vector_reduce_fmax;
1146 case RecurKind::FMin:
1147 case RecurKind::FMinNum:
1148 return Intrinsic::vector_reduce_fmin;
1150 return Intrinsic::vector_reduce_fmaximum;
1152 return Intrinsic::vector_reduce_fminimum;
1154 return Intrinsic::vector_reduce_fmax;
1156 return Intrinsic::vector_reduce_fmin;
1157 }
1158}
1159
1161 switch (IID) {
1162 default:
1163 llvm_unreachable("Unexpected intrinsic id");
1164 case Intrinsic::umin:
1165 return Intrinsic::vector_reduce_umin;
1166 case Intrinsic::umax:
1167 return Intrinsic::vector_reduce_umax;
1168 case Intrinsic::smin:
1169 return Intrinsic::vector_reduce_smin;
1170 case Intrinsic::smax:
1171 return Intrinsic::vector_reduce_smax;
1172 }
1173}
1174
1175// This is the inverse to getReductionForBinop
1177 switch (RdxID) {
1178 case Intrinsic::vector_reduce_fadd:
1179 return Instruction::FAdd;
1180 case Intrinsic::vector_reduce_fmul:
1181 return Instruction::FMul;
1182 case Intrinsic::vector_reduce_add:
1183 return Instruction::Add;
1184 case Intrinsic::vector_reduce_mul:
1185 return Instruction::Mul;
1186 case Intrinsic::vector_reduce_and:
1187 return Instruction::And;
1188 case Intrinsic::vector_reduce_or:
1189 return Instruction::Or;
1190 case Intrinsic::vector_reduce_xor:
1191 return Instruction::Xor;
1192 case Intrinsic::vector_reduce_smax:
1193 case Intrinsic::vector_reduce_smin:
1194 case Intrinsic::vector_reduce_umax:
1195 case Intrinsic::vector_reduce_umin:
1196 return Instruction::ICmp;
1197 case Intrinsic::vector_reduce_fmax:
1198 case Intrinsic::vector_reduce_fmin:
1199 case Intrinsic::vector_reduce_fmaximum:
1200 case Intrinsic::vector_reduce_fminimum:
1201 case Intrinsic::vector_reduce_fmaximumnum:
1202 case Intrinsic::vector_reduce_fminimumnum:
1203 return Instruction::FCmp;
1204 default:
1205 llvm_unreachable("Unexpected ID");
1206 }
1207}
1208
1209// This is the inverse to getArithmeticReductionInstruction
1211 switch (Opc) {
1212 default:
1213 break;
1214 case Instruction::Add:
1215 return Intrinsic::vector_reduce_add;
1216 case Instruction::Mul:
1217 return Intrinsic::vector_reduce_mul;
1218 case Instruction::And:
1219 return Intrinsic::vector_reduce_and;
1220 case Instruction::Or:
1221 return Intrinsic::vector_reduce_or;
1222 case Instruction::Xor:
1223 return Intrinsic::vector_reduce_xor;
1224 case Instruction::FAdd:
1225 return Intrinsic::vector_reduce_fadd;
1226 case Instruction::FMul:
1227 return Intrinsic::vector_reduce_fmul;
1228 }
1230}
1231
1233 switch (RdxID) {
1234 default:
1235 llvm_unreachable("Unknown min/max recurrence kind");
1236 case Intrinsic::vector_reduce_umin:
1237 return Intrinsic::umin;
1238 case Intrinsic::vector_reduce_umax:
1239 return Intrinsic::umax;
1240 case Intrinsic::vector_reduce_smin:
1241 return Intrinsic::smin;
1242 case Intrinsic::vector_reduce_smax:
1243 return Intrinsic::smax;
1244 case Intrinsic::vector_reduce_fmin:
1245 return Intrinsic::minnum;
1246 case Intrinsic::vector_reduce_fmax:
1247 return Intrinsic::maxnum;
1248 case Intrinsic::vector_reduce_fminimum:
1249 return Intrinsic::minimum;
1250 case Intrinsic::vector_reduce_fmaximum:
1251 return Intrinsic::maximum;
1252 case Intrinsic::vector_reduce_fminimumnum:
1253 return Intrinsic::minimumnum;
1254 case Intrinsic::vector_reduce_fmaximumnum:
1255 return Intrinsic::maximumnum;
1256 }
1257}
1258
1260 switch (RK) {
1261 default:
1262 llvm_unreachable("Unknown min/max recurrence kind");
1263 case RecurKind::UMin:
1264 return Intrinsic::umin;
1265 case RecurKind::UMax:
1266 return Intrinsic::umax;
1267 case RecurKind::SMin:
1268 return Intrinsic::smin;
1269 case RecurKind::SMax:
1270 return Intrinsic::smax;
1271 case RecurKind::FMin:
1272 case RecurKind::FMinNum:
1273 return Intrinsic::minnum;
1274 case RecurKind::FMax:
1275 case RecurKind::FMaxNum:
1276 return Intrinsic::maxnum;
1278 return Intrinsic::minimum;
1280 return Intrinsic::maximum;
1282 return Intrinsic::minimumnum;
1284 return Intrinsic::maximumnum;
1285 }
1286}
1287
1289 switch (RdxID) {
1290 case Intrinsic::vector_reduce_smax:
1291 return RecurKind::SMax;
1292 case Intrinsic::vector_reduce_smin:
1293 return RecurKind::SMin;
1294 case Intrinsic::vector_reduce_umax:
1295 return RecurKind::UMax;
1296 case Intrinsic::vector_reduce_umin:
1297 return RecurKind::UMin;
1298 case Intrinsic::vector_reduce_fmax:
1299 return RecurKind::FMax;
1300 case Intrinsic::vector_reduce_fmin:
1301 return RecurKind::FMin;
1302 case Intrinsic::vector_reduce_fmaximum:
1303 return RecurKind::FMaximum;
1304 case Intrinsic::vector_reduce_fminimum:
1305 return RecurKind::FMinimum;
1306 case Intrinsic::vector_reduce_fmaximumnum:
1308 case Intrinsic::vector_reduce_fminimumnum:
1310 default:
1311 return RecurKind::None;
1312 }
1313}
1314
1316 switch (RK) {
1317 default:
1318 llvm_unreachable("Unknown min/max recurrence kind");
1319 case RecurKind::UMin:
1320 return CmpInst::ICMP_ULT;
1321 case RecurKind::UMax:
1322 return CmpInst::ICMP_UGT;
1323 case RecurKind::SMin:
1324 return CmpInst::ICMP_SLT;
1325 case RecurKind::SMax:
1326 return CmpInst::ICMP_SGT;
1327 case RecurKind::FMin:
1328 return CmpInst::FCMP_OLT;
1329 case RecurKind::FMax:
1330 return CmpInst::FCMP_OGT;
1331 // We do not add FMinimum/FMaximum recurrence kind here since there is no
1332 // equivalent predicate which compares signed zeroes according to the
1333 // semantics of the intrinsics (llvm.minimum/maximum).
1334 }
1335}
1336
1338 Value *Right) {
1339 Type *Ty = Left->getType();
1340 if (Ty->isIntOrIntVectorTy() ||
1341 (RK == RecurKind::FMinNum || RK == RecurKind::FMaxNum ||
1345 return Builder.CreateIntrinsic(Ty, Id, {Left, Right}, nullptr,
1346 "rdx.minmax");
1347 }
1349 Value *Cmp = Builder.CreateCmp(Pred, Left, Right, "rdx.minmax.cmp");
1350 Value *Select = Builder.CreateSelect(Cmp, Left, Right, "rdx.minmax.select");
1351 // This select is synthesized fresh, not lowered from an existing branch, so
1352 // it carries no real profile. Mark its weights as explicitly unknown.
1353 if (auto *SI = dyn_cast<SelectInst>(Select))
1355 return Select;
1356}
1357
1358// Helper to generate an ordered reduction.
1360 unsigned Op, RecurKind RdxKind) {
1361 unsigned VF = cast<FixedVectorType>(Src->getType())->getNumElements();
1362
1363 // Extract and apply reduction ops in ascending order:
1364 // e.g. ((((Acc + Scl[0]) + Scl[1]) + Scl[2]) + ) ... + Scl[VF-1]
1365 Value *Result = Acc;
1366 for (unsigned ExtractIdx = 0; ExtractIdx != VF; ++ExtractIdx) {
1367 Value *Ext =
1368 Builder.CreateExtractElement(Src, Builder.getInt32(ExtractIdx));
1369
1370 if (Op != Instruction::ICmp && Op != Instruction::FCmp) {
1371 Result = Builder.CreateBinOp((Instruction::BinaryOps)Op, Result, Ext,
1372 "bin.rdx");
1373 } else {
1375 "Invalid min/max");
1376 Result = createMinMaxOp(Builder, RdxKind, Result, Ext);
1377 }
1378 }
1379
1380 return Result;
1381}
1382
1384 unsigned RdxOpcode, Value *Acc,
1385 DominatorTree *DT, LoopInfo *LI) {
1386 auto *VTy = cast<VectorType>(Vec->getType());
1387 Type *EltTy = VTy->getElementType();
1388 Function *F = Builder.GetInsertBlock()->getParent();
1389
1390 const DataLayout &DL = F->getDataLayout();
1391 Type *IdxTy = DL.getIndexType(EltTy->getContext(), 0);
1392 unsigned MinElts = VTy->getElementCount().getKnownMinValue();
1393 Value *NumElts = Builder.CreateVScale(IdxTy);
1394 NumElts = Builder.CreateMul(NumElts, ConstantInt::get(IdxTy, MinElts));
1395
1396 BasicBlock *EntryBB = Builder.GetInsertBlock();
1397 BasicBlock *LoopBB = BasicBlock::Create(F->getContext(), "rdx.loop", F);
1398 BasicBlock *ExitBB = SplitBlock(EntryBB, Builder.GetInsertPoint(), DT, LI,
1399 nullptr, "rdx.exit");
1400
1401 EntryBB->getTerminator()->eraseFromParent();
1402 Builder.SetInsertPoint(EntryBB);
1403 Builder.CreateBr(LoopBB);
1404
1405 Builder.SetInsertPoint(LoopBB);
1406 PHINode *IV = Builder.CreatePHI(IdxTy, 2, "rdx.iv");
1407 PHINode *AccPhi = Builder.CreatePHI(EltTy, 2, "rdx.acc");
1408 IV->addIncoming(ConstantInt::get(IdxTy, 0), EntryBB);
1409 AccPhi->addIncoming(Acc, EntryBB);
1410
1411 Value *Elt = Builder.CreateExtractElement(Vec, IV);
1412 Value *Res = Builder.CreateBinOp((Instruction::BinaryOps)RdxOpcode, AccPhi,
1413 Elt, "rdx.op");
1414
1415 Value *NextIV =
1416 Builder.CreateNUWAdd(IV, ConstantInt::get(IdxTy, 1), "rdx.next");
1417 IV->addIncoming(NextIV, LoopBB);
1418 AccPhi->addIncoming(Res, LoopBB);
1419
1420 Value *Done = Builder.CreateICmpEQ(NextIV, NumElts, "rdx.done");
1421 Builder.CreateCondBr(Done, ExitBB, LoopBB);
1422
1423 // SplitBlock above updated DT/LI for EntryBB -> ExitBB. Now update
1424 // for replacing that edge with EntryBB -> LoopBB -> {ExitBB, LoopBB}.
1425 if (DT)
1426 DT->applyUpdates({{DominatorTree::Insert, EntryBB, LoopBB},
1427 {DominatorTree::Insert, LoopBB, LoopBB},
1428 {DominatorTree::Insert, LoopBB, ExitBB},
1429 {DominatorTree::Delete, EntryBB, ExitBB}});
1430
1431 if (LI) {
1432 Loop *NewLoop = LI->AllocateLoop();
1433 if (Loop *ParentLoop = LI->getLoopFor(EntryBB))
1434 ParentLoop->addChildLoop(NewLoop);
1435 else
1436 LI->addTopLevelLoop(NewLoop);
1437 NewLoop->addBasicBlockToLoop(LoopBB, *LI);
1438 }
1439
1440 Builder.SetInsertPoint(ExitBB, ExitBB->begin());
1441 return Res;
1442}
1443
1444// Helper to generate a log2 shuffle reduction.
1446 unsigned Op,
1448 RecurKind RdxKind) {
1449 unsigned VF = cast<FixedVectorType>(Src->getType())->getNumElements();
1450 // VF is a power of 2 so we can emit the reduction using log2(VF) shuffles
1451 // and vector ops, reducing the set of values being computed by half each
1452 // round.
1453 assert(isPowerOf2_32(VF) &&
1454 "Reduction emission only supported for pow2 vectors!");
1455 // Note: fast-math-flags flags are controlled by the builder configuration
1456 // and are assumed to apply to all generated arithmetic instructions. Other
1457 // poison generating flags (nsw/nuw/inbounds/inrange/exact) are not part
1458 // of the builder configuration, and since they're not passed explicitly,
1459 // will never be relevant here. Note that it would be generally unsound to
1460 // propagate these from an intrinsic call to the expansion anyways as we/
1461 // change the order of operations.
1462 auto BuildShuffledOp = [&Builder, &Op,
1463 &RdxKind](SmallVectorImpl<int> &ShuffleMask,
1464 Value *&TmpVec) -> void {
1465 Value *Shuf = Builder.CreateShuffleVector(TmpVec, ShuffleMask, "rdx.shuf");
1466 if (Op != Instruction::ICmp && Op != Instruction::FCmp) {
1467 TmpVec = Builder.CreateBinOp((Instruction::BinaryOps)Op, TmpVec, Shuf,
1468 "bin.rdx");
1469 } else {
1471 "Invalid min/max");
1472 TmpVec = createMinMaxOp(Builder, RdxKind, TmpVec, Shuf);
1473 }
1474 };
1475
1476 Value *TmpVec = Src;
1478 SmallVector<int, 32> ShuffleMask(VF);
1479 for (unsigned stride = 1; stride < VF; stride <<= 1) {
1480 // Initialise the mask with undef.
1481 llvm::fill(ShuffleMask, -1);
1482 for (unsigned j = 0; j < VF; j += stride << 1) {
1483 ShuffleMask[j] = j + stride;
1484 }
1485 BuildShuffledOp(ShuffleMask, TmpVec);
1486 }
1487 } else {
1488 SmallVector<int, 32> ShuffleMask(VF);
1489 for (unsigned i = VF; i != 1; i >>= 1) {
1490 // Move the upper half of the vector to the lower half.
1491 for (unsigned j = 0; j != i / 2; ++j)
1492 ShuffleMask[j] = i / 2 + j;
1493
1494 // Fill the rest of the mask with undef.
1495 std::fill(&ShuffleMask[i / 2], ShuffleMask.end(), -1);
1496 BuildShuffledOp(ShuffleMask, TmpVec);
1497 }
1498 }
1499 // The result is in the first element of the vector.
1500 return Builder.CreateExtractElement(TmpVec, Builder.getInt32(0));
1501}
1502
1504 Value *InitVal, PHINode *OrigPhi) {
1505 Value *NewVal = nullptr;
1506
1507 // First use the original phi to determine the new value we're trying to
1508 // select from in the loop.
1509 SelectInst *SI = nullptr;
1510 for (auto *U : OrigPhi->users()) {
1511 if ((SI = dyn_cast<SelectInst>(U)))
1512 break;
1513 }
1514 assert(SI && "One user of the original phi should be a select");
1515
1516 if (SI->getTrueValue() == OrigPhi)
1517 NewVal = SI->getFalseValue();
1518 else {
1519 assert(SI->getFalseValue() == OrigPhi &&
1520 "At least one input to the select should be the original Phi");
1521 NewVal = SI->getTrueValue();
1522 }
1523
1524 // If any predicate is true it means that we want to select the new value.
1525 Value *AnyOf =
1526 Src->getType()->isVectorTy() ? Builder.CreateOrReduce(Src) : Src;
1527 // The compares in the loop may yield poison, which propagates through the
1528 // bitwise ORs. Freeze it here before the condition is used.
1529 AnyOf = Builder.CreateFreeze(AnyOf);
1530 return Builder.CreateSelect(AnyOf, NewVal, InitVal, "rdx.select");
1531}
1532
1534 FastMathFlags Flags) {
1535 bool Negative = false;
1536 switch (RdxID) {
1537 default:
1538 llvm_unreachable("Expecting a reduction intrinsic");
1539 case Intrinsic::vector_reduce_add:
1540 case Intrinsic::vector_reduce_mul:
1541 case Intrinsic::vector_reduce_or:
1542 case Intrinsic::vector_reduce_xor:
1543 case Intrinsic::vector_reduce_and:
1544 case Intrinsic::vector_reduce_fadd:
1545 case Intrinsic::vector_reduce_fmul: {
1546 unsigned Opc = getArithmeticReductionInstruction(RdxID);
1547 return ConstantExpr::getBinOpIdentity(Opc, Ty, false,
1548 Flags.noSignedZeros());
1549 }
1550 case Intrinsic::vector_reduce_umax:
1551 case Intrinsic::vector_reduce_umin:
1552 case Intrinsic::vector_reduce_smin:
1553 case Intrinsic::vector_reduce_smax: {
1555 return ConstantExpr::getIntrinsicIdentity(ScalarID, Ty);
1556 }
1557 case Intrinsic::vector_reduce_fmax:
1558 case Intrinsic::vector_reduce_fmaximum:
1559 Negative = true;
1560 [[fallthrough]];
1561 case Intrinsic::vector_reduce_fmin:
1562 case Intrinsic::vector_reduce_fminimum: {
1563 bool PropagatesNaN = RdxID == Intrinsic::vector_reduce_fminimum ||
1564 RdxID == Intrinsic::vector_reduce_fmaximum;
1565 const fltSemantics &Semantics = Ty->getScalarType()->getFltSemantics();
1566 return (!Flags.noNaNs() && !PropagatesNaN)
1567 ? ConstantFP::getQNaN(Ty, Negative)
1568 : !Flags.noInfs()
1569 ? ConstantFP::getInfinity(Ty, Negative)
1570 : ConstantFP::get(Ty, APFloat::getLargest(Semantics, Negative));
1571 }
1572 }
1573}
1574
1576 assert((!(K == RecurKind::FMin || K == RecurKind::FMax) ||
1577 (FMF.noNaNs() && FMF.noSignedZeros())) &&
1578 "nnan, nsz is expected to be set for FP min/max reduction.");
1580 return getReductionIdentity(RdxID, Tp, FMF);
1581}
1582
1584 RecurKind RdxKind) {
1585 auto *SrcVecEltTy = cast<VectorType>(Src->getType())->getElementType();
1586 auto getIdentity = [&]() {
1587 return getRecurrenceIdentity(RdxKind, SrcVecEltTy,
1588 Builder.getFastMathFlags());
1589 };
1590 switch (RdxKind) {
1592 case RecurKind::Sub:
1593 case RecurKind::Add:
1594 case RecurKind::Mul:
1595 case RecurKind::And:
1596 case RecurKind::Or:
1597 case RecurKind::Xor:
1598 case RecurKind::SMax:
1599 case RecurKind::SMin:
1600 case RecurKind::UMax:
1601 case RecurKind::UMin:
1602 case RecurKind::FMax:
1603 case RecurKind::FMin:
1604 case RecurKind::FMinNum:
1605 case RecurKind::FMaxNum:
1610 return Builder.CreateUnaryIntrinsic(getReductionIntrinsicID(RdxKind), Src);
1611 case RecurKind::FMulAdd:
1613 case RecurKind::FSub:
1614 case RecurKind::FAdd:
1615 return Builder.CreateFAddReduce(getIdentity(), Src);
1616 case RecurKind::FMul:
1617 return Builder.CreateFMulReduce(getIdentity(), Src);
1618 default:
1619 llvm_unreachable("Unhandled opcode");
1620 }
1621}
1622
1624 switch (Id) {
1625 default:
1626 llvm_unreachable("Unexpected reduction intrinsic");
1627 case Intrinsic::vector_reduce_add:
1628 return Intrinsic::vp_reduce_add;
1629 case Intrinsic::vector_reduce_mul:
1630 return Intrinsic::vp_reduce_mul;
1631 case Intrinsic::vector_reduce_and:
1632 return Intrinsic::vp_reduce_and;
1633 case Intrinsic::vector_reduce_or:
1634 return Intrinsic::vp_reduce_or;
1635 case Intrinsic::vector_reduce_xor:
1636 return Intrinsic::vp_reduce_xor;
1637 case Intrinsic::vector_reduce_smax:
1638 return Intrinsic::vp_reduce_smax;
1639 case Intrinsic::vector_reduce_smin:
1640 return Intrinsic::vp_reduce_smin;
1641 case Intrinsic::vector_reduce_umax:
1642 return Intrinsic::vp_reduce_umax;
1643 case Intrinsic::vector_reduce_umin:
1644 return Intrinsic::vp_reduce_umin;
1645 case Intrinsic::vector_reduce_fmax:
1646 return Intrinsic::vp_reduce_fmax;
1647 case Intrinsic::vector_reduce_fmin:
1648 return Intrinsic::vp_reduce_fmin;
1649 case Intrinsic::vector_reduce_fmaximum:
1650 return Intrinsic::vp_reduce_fmaximum;
1651 case Intrinsic::vector_reduce_fminimum:
1652 return Intrinsic::vp_reduce_fminimum;
1653 case Intrinsic::vector_reduce_fadd:
1654 return Intrinsic::vp_reduce_fadd;
1655 case Intrinsic::vector_reduce_fmul:
1656 return Intrinsic::vp_reduce_fmul;
1657 }
1658}
1659
1661 RecurKind Kind, Value *Mask, Value *EVL) {
1664 "AnyOf and FindIV reductions are not supported.");
1667 auto *EltTy = cast<VectorType>(Src->getType())->getElementType();
1668 Value *Iden = getRecurrenceIdentity(Kind, EltTy, Builder.getFastMathFlags());
1669 Value *Ops[] = {Iden, Src, Mask, EVL};
1670 return Builder.CreateIntrinsic(EltTy, VPID, Ops);
1671}
1672
1674 Value *Src, Value *Start) {
1675 assert((Kind == RecurKind::FAdd || Kind == RecurKind::FMulAdd) &&
1676 "Unexpected reduction kind");
1677 assert(Src->getType()->isVectorTy() && "Expected a vector type");
1678 assert(!Start->getType()->isVectorTy() && "Expected a scalar type");
1679
1680 return B.CreateFAddReduce(Start, Src);
1681}
1682
1684 Value *Src, Value *Start, Value *Mask,
1685 Value *EVL) {
1686 assert((Kind == RecurKind::FAdd || Kind == RecurKind::FMulAdd) &&
1687 "Unexpected reduction kind");
1688 assert(Src->getType()->isVectorTy() && "Expected a vector type");
1689 assert(!Start->getType()->isVectorTy() && "Expected a scalar type");
1690
1693 auto *EltTy = cast<VectorType>(Src->getType())->getElementType();
1694 Value *Ops[] = {Start, Src, Mask, EVL};
1695 return Builder.CreateIntrinsic(EltTy, VPID, Ops);
1696}
1697
1699 bool IncludeWrapFlags) {
1700 auto *VecOp = dyn_cast<Instruction>(I);
1701 if (!VecOp)
1702 return;
1703 auto *Intersection = (OpValue == nullptr) ? dyn_cast<Instruction>(VL[0])
1704 : dyn_cast<Instruction>(OpValue);
1705 if (!Intersection)
1706 return;
1707 const unsigned Opcode = Intersection->getOpcode();
1708 VecOp->copyIRFlags(Intersection, IncludeWrapFlags);
1709 for (auto *V : VL) {
1710 auto *Instr = dyn_cast<Instruction>(V);
1711 if (!Instr)
1712 continue;
1713 if (OpValue == nullptr || Opcode == Instr->getOpcode())
1714 VecOp->andIRFlags(V);
1715 }
1716}
1717
1718bool llvm::isKnownNegativeInLoop(const SCEV *S, const Loop *L,
1719 ScalarEvolution &SE) {
1720 const SCEV *Zero = SE.getZero(S->getType());
1721 return SE.isAvailableAtLoopEntry(S, L) &&
1723}
1724
1726 ScalarEvolution &SE) {
1727 const SCEV *Zero = SE.getZero(S->getType());
1728 return SE.isAvailableAtLoopEntry(S, L) &&
1730}
1731
1732bool llvm::isKnownPositiveInLoop(const SCEV *S, const Loop *L,
1733 ScalarEvolution &SE) {
1734 const SCEV *Zero = SE.getZero(S->getType());
1735 return SE.isAvailableAtLoopEntry(S, L) &&
1737}
1738
1740 ScalarEvolution &SE) {
1741 const SCEV *Zero = SE.getZero(S->getType());
1742 return SE.isAvailableAtLoopEntry(S, L) &&
1744}
1745
1747 bool Signed) {
1748 unsigned BitWidth = cast<IntegerType>(S->getType())->getBitWidth();
1751 auto Predicate = Signed ? ICmpInst::ICMP_SGT : ICmpInst::ICMP_UGT;
1752 return SE.isAvailableAtLoopEntry(S, L) &&
1753 SE.isLoopEntryGuardedByCond(L, Predicate, S,
1754 SE.getConstant(Min));
1755}
1756
1758 bool Signed) {
1759 unsigned BitWidth = cast<IntegerType>(S->getType())->getBitWidth();
1762 auto Predicate = Signed ? ICmpInst::ICMP_SLT : ICmpInst::ICMP_ULT;
1763 return SE.isAvailableAtLoopEntry(S, L) &&
1764 SE.isLoopEntryGuardedByCond(L, Predicate, S,
1765 SE.getConstant(Max));
1766}
1767
1768//===----------------------------------------------------------------------===//
1769// rewriteLoopExitValues - Optimize IV users outside the loop.
1770// As a side effect, reduces the amount of IV processing within the loop.
1771//===----------------------------------------------------------------------===//
1772
1773static bool hasHardUserWithinLoop(const Loop *L, const Instruction *I) {
1776 Visited.insert(I);
1777 WorkList.push_back(I);
1778 while (!WorkList.empty()) {
1779 const Instruction *Curr = WorkList.pop_back_val();
1780 // This use is outside the loop, nothing to do.
1781 if (!L->contains(Curr))
1782 continue;
1783 // Do we assume it is a "hard" use which will not be eliminated easily?
1784 if (Curr->mayHaveSideEffects())
1785 return true;
1786 // Otherwise, add all its users to worklist.
1787 for (const auto *U : Curr->users()) {
1788 auto *UI = cast<Instruction>(U);
1789 if (Visited.insert(UI).second)
1790 WorkList.push_back(UI);
1791 }
1792 }
1793 return false;
1794}
1795
1796// Collect information about PHI nodes which can be transformed in
1797// rewriteLoopExitValues.
1799 PHINode *PN; // For which PHI node is this replacement?
1800 unsigned Ith; // For which incoming value?
1801 const SCEV *ExpansionSCEV; // The SCEV of the incoming value we are rewriting.
1802 Instruction *ExpansionPoint; // Where we'd like to expand that SCEV?
1803 bool HighCost; // Is this expansion a high-cost?
1804
1805 RewritePhi(PHINode *P, unsigned I, const SCEV *Val, Instruction *ExpansionPt,
1806 bool H)
1807 : PN(P), Ith(I), ExpansionSCEV(Val), ExpansionPoint(ExpansionPt),
1808 HighCost(H) {}
1809};
1810
1811// Check whether it is possible to delete the loop after rewriting exit
1812// value. If it is possible, ignore ReplaceExitValue and do rewriting
1813// aggressively.
1814static bool canLoopBeDeleted(Loop *L, SmallVector<RewritePhi, 8> &RewritePhiSet) {
1815 BasicBlock *Preheader = L->getLoopPreheader();
1816 // If there is no preheader, the loop will not be deleted.
1817 if (!Preheader)
1818 return false;
1819
1820 // In LoopDeletion pass Loop can be deleted when ExitingBlocks.size() > 1.
1821 // We obviate multiple ExitingBlocks case for simplicity.
1822 // TODO: If we see testcase with multiple ExitingBlocks can be deleted
1823 // after exit value rewriting, we can enhance the logic here.
1824 SmallVector<BasicBlock *, 4> ExitingBlocks;
1825 L->getExitingBlocks(ExitingBlocks);
1827 L->getUniqueExitBlocks(ExitBlocks);
1828 if (ExitBlocks.size() != 1 || ExitingBlocks.size() != 1)
1829 return false;
1830
1831 BasicBlock *ExitBlock = ExitBlocks[0];
1832 BasicBlock::iterator BI = ExitBlock->begin();
1833 while (PHINode *P = dyn_cast<PHINode>(BI)) {
1834 Value *Incoming = P->getIncomingValueForBlock(ExitingBlocks[0]);
1835
1836 // If the Incoming value of P is found in RewritePhiSet, we know it
1837 // could be rewritten to use a loop invariant value in transformation
1838 // phase later. Skip it in the loop invariant check below.
1839 bool found = false;
1840 for (const RewritePhi &Phi : RewritePhiSet) {
1841 unsigned i = Phi.Ith;
1842 if (Phi.PN == P && (Phi.PN)->getIncomingValue(i) == Incoming) {
1843 found = true;
1844 break;
1845 }
1846 }
1847
1848 Instruction *I;
1849 if (!found && (I = dyn_cast<Instruction>(Incoming)))
1850 if (!L->hasLoopInvariantOperands(I))
1851 return false;
1852
1853 ++BI;
1854 }
1855
1856 for (auto *BB : L->blocks())
1857 if (llvm::any_of(*BB, [](Instruction &I) {
1858 return I.mayHaveSideEffects();
1859 }))
1860 return false;
1861
1862 return true;
1863}
1864
1865/// Checks if it is safe to call InductionDescriptor::isInductionPHI for \p Phi,
1866/// and returns true if this Phi is an induction phi in the loop. When
1867/// isInductionPHI returns true, \p ID will be also be set by isInductionPHI.
1868static bool checkIsIndPhi(PHINode *Phi, Loop *L, ScalarEvolution *SE,
1869 InductionDescriptor &ID) {
1870 if (!Phi)
1871 return false;
1872 if (!L->getLoopPreheader())
1873 return false;
1874 if (Phi->getParent() != L->getHeader())
1875 return false;
1876 return InductionDescriptor::isInductionPHI(Phi, L, SE, ID);
1877}
1878
1880 ScalarEvolution *SE,
1881 const TargetTransformInfo *TTI,
1882 SCEVExpander &Rewriter, DominatorTree *DT,
1885 // Check a pre-condition.
1886 assert(L->isRecursivelyLCSSAForm(*DT, *LI) &&
1887 "Caller did not preserve LCSSA!");
1888
1889 SmallVector<BasicBlock*, 8> ExitBlocks;
1890 L->getUniqueExitBlocks(ExitBlocks);
1891
1892 SmallVector<RewritePhi, 8> RewritePhiSet;
1893 // Find all values that are computed inside the loop, but used outside of it.
1894 // Because of LCSSA, these values will only occur in LCSSA PHI Nodes. Scan
1895 // the exit blocks of the loop to find them.
1896 for (BasicBlock *ExitBB : ExitBlocks) {
1897 // If there are no PHI nodes in this exit block, then no values defined
1898 // inside the loop are used on this path, skip it.
1899 PHINode *PN = dyn_cast<PHINode>(ExitBB->begin());
1900 if (!PN) continue;
1901
1902 unsigned NumPreds = PN->getNumIncomingValues();
1903
1904 // Iterate over all of the PHI nodes.
1905 BasicBlock::iterator BBI = ExitBB->begin();
1906 while ((PN = dyn_cast<PHINode>(BBI++))) {
1907 if (PN->use_empty())
1908 continue; // dead use, don't replace it
1909
1910 if (!SE->isSCEVable(PN->getType()))
1911 continue;
1912
1913 // Iterate over all of the values in all the PHI nodes.
1914 for (unsigned i = 0; i != NumPreds; ++i) {
1915 // If the value being merged in is not integer or is not defined
1916 // in the loop, skip it.
1917 Value *InVal = PN->getIncomingValue(i);
1918 if (!isa<Instruction>(InVal))
1919 continue;
1920
1921 // If this pred is for a subloop, not L itself, skip it.
1922 if (LI->getLoopFor(PN->getIncomingBlock(i)) != L)
1923 continue; // The Block is in a subloop, skip it.
1924
1925 // Check that InVal is defined in the loop.
1926 Instruction *Inst = cast<Instruction>(InVal);
1927 if (!L->contains(Inst))
1928 continue;
1929
1930 // Find exit values which are induction variables in the loop, and are
1931 // unused in the loop, with the only use being the exit block PhiNode,
1932 // and the induction variable update binary operator.
1933 // The exit value can be replaced with the final value when it is cheap
1934 // to do so.
1937 PHINode *IndPhi = dyn_cast<PHINode>(Inst);
1938 if (IndPhi) {
1939 if (!checkIsIndPhi(IndPhi, L, SE, ID))
1940 continue;
1941 // This is an induction PHI. Check that the only users are PHI
1942 // nodes, and induction variable update binary operators.
1943 if (llvm::any_of(Inst->users(), [&](User *U) {
1944 if (!isa<PHINode>(U) && !isa<BinaryOperator>(U))
1945 return true;
1946 BinaryOperator *B = dyn_cast<BinaryOperator>(U);
1947 if (B && B != ID.getInductionBinOp())
1948 return true;
1949 return false;
1950 }))
1951 continue;
1952 } else {
1953 // If it is not an induction phi, it must be an induction update
1954 // binary operator with an induction phi user.
1956 if (!B)
1957 continue;
1958 if (llvm::any_of(Inst->users(), [&](User *U) {
1959 PHINode *Phi = dyn_cast<PHINode>(U);
1960 if (Phi != PN && !checkIsIndPhi(Phi, L, SE, ID))
1961 return true;
1962 return false;
1963 }))
1964 continue;
1965 if (B != ID.getInductionBinOp())
1966 continue;
1967 }
1968 }
1969
1970 // Okay, this instruction has a user outside of the current loop
1971 // and varies predictably *inside* the loop. Evaluate the value it
1972 // contains when the loop exits, if possible. We prefer to start with
1973 // expressions which are true for all exits (so as to maximize
1974 // expression reuse by the SCEVExpander), but resort to per-exit
1975 // evaluation if that fails.
1976 const SCEV *ExitValue = SE->getSCEVAtScope(Inst, L->getParentLoop());
1977 if (isa<SCEVCouldNotCompute>(ExitValue) ||
1978 !SE->isLoopInvariant(ExitValue, L) ||
1979 !Rewriter.isSafeToExpand(ExitValue)) {
1980 // TODO: This should probably be sunk into SCEV in some way; maybe a
1981 // getSCEVForExit(SCEV*, L, ExitingBB)? It can be generalized for
1982 // most SCEV expressions and other recurrence types (e.g. shift
1983 // recurrences). Is there existing code we can reuse?
1984 const SCEV *ExitCount = SE->getExitCount(L, PN->getIncomingBlock(i));
1985 if (isa<SCEVCouldNotCompute>(ExitCount))
1986 continue;
1987 if (auto *AddRec = dyn_cast<SCEVAddRecExpr>(SE->getSCEV(Inst)))
1988 if (AddRec->getLoop() == L)
1989 ExitValue = AddRec->evaluateAtIteration(ExitCount, *SE);
1990 if (isa<SCEVCouldNotCompute>(ExitValue) ||
1991 !SE->isLoopInvariant(ExitValue, L) ||
1992 !Rewriter.isSafeToExpand(ExitValue))
1993 continue;
1994 }
1995
1996 // Computing the value outside of the loop brings no benefit if it is
1997 // definitely used inside the loop in a way which can not be optimized
1998 // away. Avoid doing so unless we know we have a value which computes
1999 // the ExitValue already. TODO: This should be merged into SCEV
2000 // expander to leverage its knowledge of existing expressions.
2001 if (ReplaceExitValue != AlwaysRepl && !isa<SCEVConstant>(ExitValue) &&
2002 !isa<SCEVUnknown>(ExitValue) && hasHardUserWithinLoop(L, Inst))
2003 continue;
2004
2005 // Check if expansions of this SCEV would count as being high cost.
2006 bool HighCost = Rewriter.isHighCostExpansion(
2007 ExitValue, L, SCEVCheapExpansionBudget, TTI, Inst);
2008
2009 // Note that we must not perform expansions until after
2010 // we query *all* the costs, because if we perform temporary expansion
2011 // inbetween, one that we might not intend to keep, said expansion
2012 // *may* affect cost calculation of the next SCEV's we'll query,
2013 // and next SCEV may errneously get smaller cost.
2014
2015 // Collect all the candidate PHINodes to be rewritten.
2016 Instruction *InsertPt =
2017 (isa<PHINode>(Inst) || isa<LandingPadInst>(Inst)) ?
2018 &*Inst->getParent()->getFirstInsertionPt() : Inst;
2019 RewritePhiSet.emplace_back(PN, i, ExitValue, InsertPt, HighCost);
2020 }
2021 }
2022 }
2023
2024 // TODO: evaluate whether it is beneficial to change how we calculate
2025 // high-cost: if we have SCEV 'A' which we know we will expand, should we
2026 // calculate the cost of other SCEV's after expanding SCEV 'A', thus
2027 // potentially giving cost bonus to those other SCEV's?
2028
2029 bool LoopCanBeDel = canLoopBeDeleted(L, RewritePhiSet);
2030 int NumReplaced = 0;
2031
2032 // Transformation.
2033 for (const RewritePhi &Phi : RewritePhiSet) {
2034 PHINode *PN = Phi.PN;
2035
2036 // Only do the rewrite when the ExitValue can be expanded cheaply.
2037 // If LoopCanBeDel is true, rewrite exit value aggressively.
2040 !LoopCanBeDel && Phi.HighCost)
2041 continue;
2042
2043 Value *ExitVal = Rewriter.expandCodeFor(
2044 Phi.ExpansionSCEV, Phi.PN->getType(), Phi.ExpansionPoint);
2045
2046 LLVM_DEBUG(dbgs() << "rewriteLoopExitValues: AfterLoopVal = " << *ExitVal
2047 << '\n'
2048 << " LoopVal = " << *(Phi.ExpansionPoint) << "\n");
2049
2050#ifndef NDEBUG
2051 // If we reuse an instruction from a loop which is neither L nor one of
2052 // its containing loops, we end up breaking LCSSA form for this loop by
2053 // creating a new use of its instruction.
2054 if (auto *ExitInsn = dyn_cast<Instruction>(ExitVal))
2055 if (auto *EVL = LI->getLoopFor(ExitInsn->getParent()))
2056 if (EVL != L)
2057 assert(EVL->contains(L) && "LCSSA breach detected!");
2058#endif
2059
2060 NumReplaced++;
2061 Instruction *Inst = cast<Instruction>(PN->getIncomingValue(Phi.Ith));
2062 PN->setIncomingValue(Phi.Ith, ExitVal);
2063 // It's necessary to tell ScalarEvolution about this explicitly so that
2064 // it can walk the def-use list and forget all SCEVs, as it may not be
2065 // watching the PHI itself. Once the new exit value is in place, there
2066 // may not be a def-use connection between the loop and every instruction
2067 // which got a SCEVAddRecExpr for that loop.
2068 SE->forgetValue(PN);
2069
2070 // If this instruction is dead now, delete it. Don't do it now to avoid
2071 // invalidating iterators.
2072 if (isInstructionTriviallyDead(Inst, TLI))
2073 DeadInsts.push_back(Inst);
2074
2075 // Replace PN with ExitVal if that is legal and does not break LCSSA.
2076 if (PN->getNumIncomingValues() == 1 &&
2077 LI->replacementPreservesLCSSAForm(PN, ExitVal)) {
2078 PN->replaceAllUsesWith(ExitVal);
2079 PN->eraseFromParent();
2080 }
2081 }
2082
2083 // The insertion point instruction may have been deleted; clear it out
2084 // so that the rewriter doesn't trip over it later.
2085 Rewriter.clearInsertPoint();
2086 return NumReplaced;
2087}
2088
2089/// Utility that implements appending of loops onto a worklist.
2090/// Loops are added in preorder (analogous for reverse postorder for trees),
2091/// and the worklist is processed LIFO.
2092template <typename RangeT>
2094 RangeT &&Loops, SmallPriorityWorklist<Loop *, 4> &Worklist) {
2095 // We use an internal worklist to build up the preorder traversal without
2096 // recursion.
2097 SmallVector<Loop *, 4> PreOrderLoops, PreOrderWorklist;
2098
2099 // We walk the initial sequence of loops in reverse because we generally want
2100 // to visit defs before uses and the worklist is LIFO.
2101 for (Loop *RootL : Loops) {
2102 assert(PreOrderLoops.empty() && "Must start with an empty preorder walk.");
2103 assert(PreOrderWorklist.empty() &&
2104 "Must start with an empty preorder walk worklist.");
2105 PreOrderWorklist.push_back(RootL);
2106 do {
2107 Loop *L = PreOrderWorklist.pop_back_val();
2108 PreOrderWorklist.append(L->begin(), L->end());
2109 PreOrderLoops.push_back(L);
2110 } while (!PreOrderWorklist.empty());
2111
2112 Worklist.insert(std::move(PreOrderLoops));
2113 PreOrderLoops.clear();
2114 }
2115}
2116
2117template <typename RangeT>
2121}
2122
2123template LLVM_EXPORT_TEMPLATE void
2126
2127template LLVM_EXPORT_TEMPLATE void
2130
2135
2137 LoopInfo *LI, LPPassManager *LPM) {
2138 Loop &New = *LI->AllocateLoop();
2139 if (PL)
2140 PL->addChildLoop(&New);
2141 else
2142 LI->addTopLevelLoop(&New);
2143
2144 if (LPM)
2145 LPM->addLoop(New);
2146
2147 // Add all of the blocks in L to the new loop.
2148 for (BasicBlock *BB : L->blocks())
2149 if (LI->getLoopFor(BB) == L)
2150 New.addBasicBlockToLoop(cast<BasicBlock>(VM[BB]), *LI);
2151
2152 // Add all of the subloops to the new loop.
2153 for (Loop *I : *L)
2154 cloneLoop(I, &New, VM, LI, LPM);
2155
2156 return &New;
2157}
2158
2159/// IR Values for the lower and upper bounds of a pointer evolution. We
2160/// need to use value-handles because SCEV expansion can invalidate previously
2161/// expanded values. Thus expansion of a pointer can invalidate the bounds for
2162/// a previous one.
2168
2169/// Expand code for the lower and upper bound of the pointer group \p CG
2170/// in \p TheLoop. \return the values for the bounds.
2172 Loop *TheLoop, Instruction *Loc,
2173 SCEVExpander &Exp, bool HoistRuntimeChecks) {
2174 LLVMContext &Ctx = Loc->getContext();
2175 Type *PtrArithTy = PointerType::get(Ctx, CG->AddressSpace);
2176
2177 Value *Start = nullptr, *End = nullptr;
2178 LLVM_DEBUG(dbgs() << "LAA: Adding RT check for range:\n");
2179 const SCEV *Low = CG->Low, *High = CG->High, *Stride = nullptr;
2180
2181 // If the Low and High values are themselves loop-variant, then we may want
2182 // to expand the range to include those covered by the outer loop as well.
2183 // There is a trade-off here with the advantage being that creating checks
2184 // using the expanded range permits the runtime memory checks to be hoisted
2185 // out of the outer loop. This reduces the cost of entering the inner loop,
2186 // which can be significant for low trip counts. The disadvantage is that
2187 // there is a chance we may now never enter the vectorized inner loop,
2188 // whereas using a restricted range check could have allowed us to enter at
2189 // least once. This is why the behaviour is not currently the default and is
2190 // controlled by the parameter 'HoistRuntimeChecks'.
2191 if (HoistRuntimeChecks && TheLoop->getParentLoop() &&
2193 auto *HighAR = cast<SCEVAddRecExpr>(High);
2194 auto *LowAR = cast<SCEVAddRecExpr>(Low);
2195 const Loop *OuterLoop = TheLoop->getParentLoop();
2196 ScalarEvolution &SE = *Exp.getSE();
2197 const SCEV *Recur = LowAR->getStepRecurrence(SE);
2198 if (Recur == HighAR->getStepRecurrence(SE) &&
2199 HighAR->getLoop() == OuterLoop && LowAR->getLoop() == OuterLoop) {
2200 BasicBlock *OuterLoopLatch = OuterLoop->getLoopLatch();
2201 const SCEV *OuterExitCount = SE.getExitCount(OuterLoop, OuterLoopLatch);
2202 if (!isa<SCEVCouldNotCompute>(OuterExitCount) &&
2203 OuterExitCount->getType()->isIntegerTy()) {
2204 const SCEV *NewHigh =
2205 cast<SCEVAddRecExpr>(High)->evaluateAtIteration(OuterExitCount, SE);
2206 if (!isa<SCEVCouldNotCompute>(NewHigh)) {
2207 LLVM_DEBUG(dbgs() << "LAA: Expanded RT check for range to include "
2208 "outer loop in order to permit hoisting\n");
2209 High = NewHigh;
2210 Low = cast<SCEVAddRecExpr>(Low)->getStart();
2211 // If there is a possibility that the stride is negative then we have
2212 // to generate extra checks to ensure the stride is positive.
2213 if (!SE.isKnownNonNegative(
2214 SE.applyLoopGuards(Recur, HighAR->getLoop()))) {
2215 Stride = Recur;
2216 LLVM_DEBUG(dbgs() << "LAA: ... but need to check stride is "
2217 "positive: "
2218 << *Stride << '\n');
2219 }
2220 }
2221 }
2222 }
2223 }
2224
2225 Start = Exp.expandCodeFor(Low, PtrArithTy, Loc);
2226 End = Exp.expandCodeFor(High, PtrArithTy, Loc);
2227 if (CG->NeedsFreeze) {
2228 IRBuilder<> Builder(Loc);
2229 Start = Builder.CreateFreeze(Start, Start->getName() + ".fr");
2230 End = Builder.CreateFreeze(End, End->getName() + ".fr");
2231 }
2232 Value *StrideVal =
2233 Stride ? Exp.expandCodeFor(Stride, Stride->getType(), Loc) : nullptr;
2234 LLVM_DEBUG(dbgs() << "Start: " << *Low << " End: " << *High << "\n");
2235 return {Start, End, StrideVal};
2236}
2237
2238/// Turns a collection of checks into a collection of expanded upper and
2239/// lower bounds for both pointers in the check.
2244
2245 // Here we're relying on the SCEV Expander's cache to only emit code for the
2246 // same bounds once.
2247 transform(PointerChecks, std::back_inserter(ChecksWithBounds),
2248 [&](const RuntimePointerCheck &Check) {
2249 PointerBounds First = expandBounds(Check.first, L, Loc, Exp,
2251 Second = expandBounds(Check.second, L, Loc, Exp,
2253 return std::make_pair(First, Second);
2254 });
2255
2256 return ChecksWithBounds;
2257}
2258
2260 Instruction *Loc, Loop *TheLoop,
2261 const SmallVectorImpl<RuntimePointerCheck> &PointerChecks,
2262 SCEVExpander &Exp, bool HoistRuntimeChecks) {
2263 // TODO: Move noalias annotation code from LoopVersioning here and share with LV if possible.
2264 // TODO: Pass RtPtrChecking instead of PointerChecks and SE separately, if possible
2265 auto ExpandedChecks =
2266 expandBounds(PointerChecks, TheLoop, Loc, Exp, HoistRuntimeChecks);
2267
2268 LLVMContext &Ctx = Loc->getContext();
2269 IRBuilder ChkBuilder(Ctx, InstSimplifyFolder(Loc->getDataLayout()));
2270 ChkBuilder.SetInsertPoint(Loc);
2271 // Our instructions might fold to a constant.
2272 Value *MemoryRuntimeCheck = nullptr;
2273
2274 for (const auto &[A, B] : ExpandedChecks) {
2275 // Check if two pointers (A and B) conflict where conflict is computed as:
2276 // start(A) <= end(B) && start(B) <= end(A)
2277
2278 assert((A.Start->getType()->getPointerAddressSpace() ==
2279 B.End->getType()->getPointerAddressSpace()) &&
2280 (B.Start->getType()->getPointerAddressSpace() ==
2281 A.End->getType()->getPointerAddressSpace()) &&
2282 "Trying to bounds check pointers with different address spaces");
2283
2284 // [A|B].Start points to the first accessed byte under base [A|B].
2285 // [A|B].End points to the last accessed byte, plus one.
2286 // There is no conflict when the intervals are disjoint:
2287 // NoConflict = (B.Start >= A.End) || (A.Start >= B.End)
2288 //
2289 // bound0 = (B.Start < A.End)
2290 // bound1 = (A.Start < B.End)
2291 // IsConflict = bound0 & bound1
2292 Value *Cmp0 = ChkBuilder.CreateICmpULT(A.Start, B.End, "bound0");
2293 Value *Cmp1 = ChkBuilder.CreateICmpULT(B.Start, A.End, "bound1");
2294 Value *IsConflict = ChkBuilder.CreateAnd(Cmp0, Cmp1, "found.conflict");
2295 if (A.StrideToCheck) {
2296 Value *IsNegativeStride = ChkBuilder.CreateICmpSLT(
2297 A.StrideToCheck, ConstantInt::get(A.StrideToCheck->getType(), 0),
2298 "stride.check");
2299 IsConflict = ChkBuilder.CreateOr(IsConflict, IsNegativeStride);
2300 }
2301 if (B.StrideToCheck) {
2302 Value *IsNegativeStride = ChkBuilder.CreateICmpSLT(
2303 B.StrideToCheck, ConstantInt::get(B.StrideToCheck->getType(), 0),
2304 "stride.check");
2305 IsConflict = ChkBuilder.CreateOr(IsConflict, IsNegativeStride);
2306 }
2307 if (MemoryRuntimeCheck) {
2308 IsConflict =
2309 ChkBuilder.CreateOr(MemoryRuntimeCheck, IsConflict, "conflict.rdx");
2310 }
2311 MemoryRuntimeCheck = IsConflict;
2312 }
2313
2314 Exp.eraseDeadInstructions(MemoryRuntimeCheck);
2315 return MemoryRuntimeCheck;
2316}
2317
2320 SCEVExpander &Expander, ElementCount VF,
2321 unsigned IC) {
2322
2323 LLVMContext &Ctx = Loc->getContext();
2324 IRBuilder ChkBuilder(Ctx, InstSimplifyFolder(Loc->getDataLayout()));
2325 ChkBuilder.SetInsertPoint(Loc);
2326 // Our instructions might fold to a constant.
2327 Value *MemoryRuntimeCheck = nullptr;
2328
2329 auto &SE = *Expander.getSE();
2330 // Map to keep track of created compares, The key is the pair of operands for
2331 // the compare, to allow detecting and re-using redundant compares.
2333 for (const auto &[SrcStart, SinkStart, AccessSize, NeedsFreeze] : Checks) {
2334 assert(IC * AccessSize > 0 &&
2335 "Threshold must be non-zero to use diff-check");
2336 Type *Ty = SinkStart->getType();
2337 const SCEV *TotalAccessSize = SE.getElementCount(Ty, VF * IC * AccessSize);
2338 Value *ThresholdMinusOne = Expander.expandCodeFor(
2339 SE.getMinusSCEV(TotalAccessSize, SE.getConstant(Ty, 1)), Ty, Loc);
2340 Value *Diff =
2341 Expander.expandCodeFor(SE.getMinusSCEV(SinkStart, SrcStart), Ty, Loc);
2342
2343 // Check if the same compare has already been created earlier. In that case,
2344 // there is no need to check it again.
2345 Value *IsConflict = SeenCompares.lookup({Diff, ThresholdMinusOne});
2346 if (IsConflict)
2347 continue;
2348
2349 // Use (Diff - 1) <u (Threshold - 1), equivalent to 0 < Diff <u Threshold,
2350 // to exclude Diff == 0 (equal pointers are safe).
2351 IsConflict = ChkBuilder.CreateICmpULT(
2352 ChkBuilder.CreateSub(Diff, ConstantInt::get(Ty, 1)), ThresholdMinusOne,
2353 "diff.check");
2354 SeenCompares.insert({{Diff, ThresholdMinusOne}, IsConflict});
2355 if (NeedsFreeze)
2356 IsConflict =
2357 ChkBuilder.CreateFreeze(IsConflict, IsConflict->getName() + ".fr");
2358 if (MemoryRuntimeCheck) {
2359 IsConflict =
2360 ChkBuilder.CreateOr(MemoryRuntimeCheck, IsConflict, "conflict.rdx");
2361 }
2362 MemoryRuntimeCheck = IsConflict;
2363 }
2364
2365 Expander.eraseDeadInstructions(MemoryRuntimeCheck);
2366 return MemoryRuntimeCheck;
2367}
2368
2369std::optional<IVConditionInfo>
2371 const MemorySSA &MSSA, AAResults &AA) {
2372 auto *TI = dyn_cast<CondBrInst>(L.getHeader()->getTerminator());
2373 if (!TI)
2374 return {};
2375
2376 auto *CondI = dyn_cast<Instruction>(TI->getCondition());
2377 // The case with the condition outside the loop should already be handled
2378 // earlier.
2379 // Allow CmpInst and TruncInsts as they may be users of load instructions
2380 // and have potential for partial unswitching
2381 if (!CondI || !isa<CmpInst, TruncInst>(CondI) || !L.contains(CondI))
2382 return {};
2383
2384 SmallVector<Instruction *> InstToDuplicate;
2385 InstToDuplicate.push_back(CondI);
2386
2387 SmallVector<Value *, 4> WorkList;
2388 WorkList.append(CondI->op_begin(), CondI->op_end());
2389
2390 SmallVector<MemoryAccess *, 4> AccessesToCheck;
2391 SmallVector<MemoryLocation, 4> AccessedLocs;
2392 while (!WorkList.empty()) {
2394 if (!I || !L.contains(I))
2395 continue;
2396
2397 // TODO: support additional instructions.
2399 return {};
2400
2401 // Do not duplicate volatile and atomic loads.
2402 if (auto *LI = dyn_cast<LoadInst>(I))
2403 if (LI->isVolatile() || LI->isAtomic())
2404 return {};
2405
2406 InstToDuplicate.push_back(I);
2407 if (MemoryAccess *MA = MSSA.getMemoryAccess(I)) {
2408 if (auto *MemUse = dyn_cast_or_null<MemoryUse>(MA)) {
2409 // Queue the defining access to check for alias checks.
2410 AccessesToCheck.push_back(MemUse->getDefiningAccess());
2411 AccessedLocs.push_back(MemoryLocation::get(I));
2412 } else {
2413 // MemoryDefs may clobber the location or may be atomic memory
2414 // operations. Bail out.
2415 return {};
2416 }
2417 }
2418 WorkList.append(I->op_begin(), I->op_end());
2419 }
2420
2421 if (InstToDuplicate.empty())
2422 return {};
2423
2424 SmallVector<BasicBlock *, 4> ExitingBlocks;
2425 L.getExitingBlocks(ExitingBlocks);
2426 auto HasNoClobbersOnPath =
2427 [&L, &AA, &AccessedLocs, &ExitingBlocks, &InstToDuplicate,
2428 MSSAThreshold](BasicBlock *Succ, BasicBlock *Header,
2429 SmallVector<MemoryAccess *, 4> AccessesToCheck)
2430 -> std::optional<IVConditionInfo> {
2431 IVConditionInfo Info;
2432 // First, collect all blocks in the loop that are on a patch from Succ
2433 // to the header.
2435 WorkList.push_back(Succ);
2436 WorkList.push_back(Header);
2438 Seen.insert(Header);
2439 Info.PathIsNoop &=
2440 all_of(*Header, [](Instruction &I) { return !I.mayHaveSideEffects(); });
2441
2442 while (!WorkList.empty()) {
2443 BasicBlock *Current = WorkList.pop_back_val();
2444 if (!L.contains(Current))
2445 continue;
2446 const auto &SeenIns = Seen.insert(Current);
2447 if (!SeenIns.second)
2448 continue;
2449
2450 Info.PathIsNoop &= all_of(
2451 *Current, [](Instruction &I) { return !I.mayHaveSideEffects(); });
2452 WorkList.append(succ_begin(Current), succ_end(Current));
2453 }
2454
2455 // Require at least 2 blocks on a path through the loop. This skips
2456 // paths that directly exit the loop.
2457 if (Seen.size() < 2)
2458 return {};
2459
2460 // Next, check if there are any MemoryDefs that are on the path through
2461 // the loop (in the Seen set) and they may-alias any of the locations in
2462 // AccessedLocs. If that is the case, they may modify the condition and
2463 // partial unswitching is not possible.
2464 SmallPtrSet<MemoryAccess *, 4> SeenAccesses;
2465 while (!AccessesToCheck.empty()) {
2466 MemoryAccess *Current = AccessesToCheck.pop_back_val();
2467 auto SeenI = SeenAccesses.insert(Current);
2468 if (!SeenI.second || !Seen.contains(Current->getBlock()))
2469 continue;
2470
2471 // Bail out if exceeded the threshold.
2472 if (SeenAccesses.size() >= MSSAThreshold)
2473 return {};
2474
2475 // MemoryUse are read-only accesses.
2476 if (isa<MemoryUse>(Current))
2477 continue;
2478
2479 // For a MemoryDef, check if is aliases any of the location feeding
2480 // the original condition.
2481 if (auto *CurrentDef = dyn_cast<MemoryDef>(Current)) {
2482 if (any_of(AccessedLocs, [&AA, CurrentDef](MemoryLocation &Loc) {
2483 return isModSet(
2484 AA.getModRefInfo(CurrentDef->getMemoryInst(), Loc));
2485 }))
2486 return {};
2487 }
2488
2489 for (Use &U : Current->uses())
2490 AccessesToCheck.push_back(cast<MemoryAccess>(U.getUser()));
2491 }
2492
2493 // We could also allow loops with known trip counts without mustprogress,
2494 // but ScalarEvolution may not be available.
2495 Info.PathIsNoop &= isMustProgress(&L);
2496
2497 // If the path is considered a no-op so far, check if it reaches a
2498 // single exit block without any phis. This ensures no values from the
2499 // loop are used outside of the loop.
2500 if (Info.PathIsNoop) {
2501 for (auto *Exiting : ExitingBlocks) {
2502 if (!Seen.contains(Exiting))
2503 continue;
2504 for (auto *Succ : successors(Exiting)) {
2505 if (L.contains(Succ))
2506 continue;
2507
2508 Info.PathIsNoop &= Succ->phis().empty() &&
2509 (!Info.ExitForPath || Info.ExitForPath == Succ);
2510 if (!Info.PathIsNoop)
2511 break;
2512 assert((!Info.ExitForPath || Info.ExitForPath == Succ) &&
2513 "cannot have multiple exit blocks");
2514 Info.ExitForPath = Succ;
2515 }
2516 }
2517 }
2518 if (!Info.ExitForPath)
2519 Info.PathIsNoop = false;
2520
2521 Info.InstToDuplicate = std::move(InstToDuplicate);
2522 return Info;
2523 };
2524
2525 // If we branch to the same successor, partial unswitching will not be
2526 // beneficial.
2527 if (TI->getSuccessor(0) == TI->getSuccessor(1))
2528 return {};
2529
2530 if (auto Info = HasNoClobbersOnPath(TI->getSuccessor(0), L.getHeader(),
2531 AccessesToCheck)) {
2532 Info->KnownValue = ConstantInt::getTrue(TI->getContext());
2533 return Info;
2534 }
2535 if (auto Info = HasNoClobbersOnPath(TI->getSuccessor(1), L.getHeader(),
2536 AccessesToCheck)) {
2537 Info->KnownValue = ConstantInt::getFalse(TI->getContext());
2538 return Info;
2539 }
2540
2541 return {};
2542}
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
unsigned uint64_t
AMDGPU Register Bank Select
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
This is the interface for LLVM's primary stateless and local alias analysis.
static GCRegistry::Add< ErlangGC > A("erlang", "erlang-compatible garbage collector")
static GCRegistry::Add< StatepointGC > D("statepoint-example", "an example strategy for statepoint")
static GCRegistry::Add< OcamlGC > B("ocaml", "ocaml 3.10-compatible GC")
#define LLVM_EXPORT_TEMPLATE
Definition Compiler.h:217
This file defines the DenseSet and SmallDenseSet classes.
#define Check(C,...)
#define DEBUG_TYPE
This is the interface for a simple mod/ref and alias analysis over globals.
ManagedStatic< HTTPClientCleanup > Cleanup
Hexagon Hardware Loops
Module.h This file contains the declarations for the Module class.
iv Induction Variable Users
Definition IVUsers.cpp:48
static cl::opt< ReplaceExitVal > ReplaceExitValue("replexitval", cl::Hidden, cl::init(OnlyCheapRepl), cl::desc("Choose the strategy to replace exit value in IndVarSimplify"), cl::values(clEnumValN(NeverRepl, "never", "never replace exit value"), clEnumValN(OnlyCheapRepl, "cheap", "only replace exit value when the cost is cheap"), clEnumValN(UnusedIndVarInLoop, "unusedindvarinloop", "only replace exit value when it is an unused " "induction variable in the loop and has cheap replacement cost"), clEnumValN(NoHardUse, "noharduse", "only replace exit values when loop def likely dead"), clEnumValN(AlwaysRepl, "always", "always replace exit value whenever possible")))
const AbstractManglingParser< Derived, Alloc >::OperatorInfo AbstractManglingParser< Derived, Alloc >::Ops[]
static cl::opt< bool, true > HoistRuntimeChecks("hoist-runtime-checks", cl::Hidden, cl::desc("Hoist inner loop runtime memory checks to outer loop if possible"), cl::location(VectorizerParams::HoistRuntimeChecks), cl::init(true))
static bool hasHardUserWithinLoop(const Loop *L, const Instruction *I)
static CondBrInst * getExpectedExitLoopLatchBranch(Loop *L)
Checks if L has an exiting latch branch.
static const char * LLVMLoopDisableLICM
Definition LoopUtils.cpp:56
static PointerBounds expandBounds(const RuntimeCheckingPtrGroup *CG, Loop *TheLoop, Instruction *Loc, SCEVExpander &Exp, bool HoistRuntimeChecks)
Expand code for the lower and upper bound of the pointer group CG in TheLoop.
static bool canLoopBeDeleted(Loop *L, SmallVector< RewritePhi, 8 > &RewritePhiSet)
static const char * LLVMLoopDisableNonforced
Definition LoopUtils.cpp:55
static MDNode * createStringMetadata(Loop *TheLoop, StringRef Name, unsigned V)
Create MDNode for input string.
static std::optional< unsigned > estimateLoopTripCount(Loop *L)
static bool checkIsIndPhi(PHINode *Phi, Loop *L, ScalarEvolution *SE, InductionDescriptor &ID)
Checks if it is safe to call InductionDescriptor::isInductionPHI for Phi, and returns true if this Ph...
static Intrinsic::ID getVPReductionIntrinsicID(Intrinsic::ID Id)
#define F(x, y, z)
Definition MD5.cpp:54
#define I(x, y, z)
Definition MD5.cpp:57
#define H(x, y, z)
Definition MD5.cpp:56
This file exposes an interface to building/using memory SSA to walk memory instructions using a use/d...
uint64_t High
#define P(N)
#define INITIALIZE_PASS_DEPENDENCY(depName)
Definition PassSupport.h:42
This file provides a priority worklist.
This file contains the declarations for profiling metadata utility functions.
const SmallVectorImpl< MachineOperand > & Cond
This is the interface for a SCEV-based alias analysis.
This file defines the scope_exit class, which executes user-defined cleanup logic at scope exit.
This file implements a set that has insertion order iteration characteristics.
This file defines the SmallPtrSet class.
This file defines the SmallVector class.
#define LLVM_DEBUG(...)
Definition Debug.h:119
static const uint32_t IV[8]
Definition blake3_impl.h:83
A wrapper pass to provide the legacy pass manager access to a suitably prepared AAResults object.
static APFloat getLargest(const fltSemantics &Sem, bool Negative=false)
Returns the largest finite number in the given semantics.
Definition APFloat.h:1234
Class for arbitrary precision integers.
Definition APInt.h:78
static APInt getMaxValue(unsigned numBits)
Gets maximum unsigned value of APInt for specific bit width.
Definition APInt.h:203
static APInt getSignedMaxValue(unsigned numBits)
Gets maximum signed value of APInt for a specific bit width.
Definition APInt.h:206
static APInt getMinValue(unsigned numBits)
Gets minimum unsigned value of APInt for a specific bit width.
Definition APInt.h:213
static APInt getSignedMinValue(unsigned numBits)
Gets minimum signed value of APInt for a specific bit width.
Definition APInt.h:216
Represent the analysis usage information of a pass.
LLVM_ABI AnalysisUsage & addRequiredID(const void *ID)
Definition Pass.cpp:289
AnalysisUsage & addPreservedID(const void *ID)
AnalysisUsage & addRequired()
AnalysisUsage & addPreserved()
Add the specified Pass class to the set of analyses preserved by this pass.
Represent a constant reference to an array (0 or more elements consecutively in memory),...
Definition ArrayRef.h:40
Legacy wrapper pass to provide the BasicAAResult object.
LLVM Basic Block Representation.
Definition BasicBlock.h:62
iterator begin()
Instruction iterator methods.
Definition BasicBlock.h:446
static BasicBlock * Create(LLVMContext &Context, const Twine &Name="", Function *Parent=nullptr, BasicBlock *InsertBefore=nullptr)
Creates a new BasicBlock.
Definition BasicBlock.h:206
InstListType::iterator iterator
Instruction iterators...
Definition BasicBlock.h:170
LLVM_ABI LLVMContext & getContext() const
Get the context in which this basic block lives.
const Instruction * getTerminator() const LLVM_READONLY
Returns the terminator instruction; assumes that the block is well-formed.
Definition BasicBlock.h:237
static LLVM_ABI BranchProbability getBranchProbability(uint64_t Numerator, uint64_t Denominator)
static constexpr BranchProbability getUnknown()
static constexpr BranchProbability getZero()
uint32_t getNumerator() const
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
@ FCMP_OLT
0 1 0 0 True if ordered and less than
Definition InstrTypes.h:746
@ FCMP_OGT
0 0 1 0 True if ordered and greater than
Definition InstrTypes.h:744
@ 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_SGE
signed greater or equal
Definition InstrTypes.h:768
Conditional Branch instruction.
BasicBlock * getSuccessor(unsigned i) const
static ConstantAsMetadata * get(Constant *C)
Definition Metadata.h:537
static LLVM_ABI Constant * getIntrinsicIdentity(Intrinsic::ID, Type *Ty)
static LLVM_ABI Constant * getBinOpIdentity(unsigned Opcode, Type *Ty, bool AllowRHSConstant=false, bool NSZ=false)
Return the identity constant for a binary opcode.
static LLVM_ABI ConstantFP * getQNaN(Type *Ty, bool Negative=false, APInt *Payload=nullptr)
static LLVM_ABI ConstantFP * getInfinity(Type *Ty, bool Negative=false)
This is the shared class of boolean and integer constants.
Definition Constants.h:87
static LLVM_ABI ConstantInt * getTrue(LLVMContext &Context)
static LLVM_ABI ConstantInt * getFalse(LLVMContext &Context)
int64_t getSExtValue() const
Return the constant as a 64-bit integer value after it has been sign extended as appropriate for the ...
Definition Constants.h:174
A parsed version of the target data layout string in and methods for querying it.
Definition DataLayout.h:64
Record of a variable value-assignment, aka a non instruction representation of the dbg....
Identifies a unique instance of a variable.
ValueT lookup(const_arg_type_t< KeyT > Val) const
Return the entry for the specified key, or a default constructed value if no such entry exists.
Definition DenseMap.h:250
std::pair< iterator, bool > insert(const std::pair< KeyT, ValueT > &KV)
Definition DenseMap.h:284
iterator_range< iterator > children()
void applyUpdates(ArrayRef< UpdateType > Updates)
Inform the dominator tree about a sequence of CFG edge insertions and deletions and perform a batch u...
DomTreeNodeBase< NodeT > * getNode(const NodeT *BB) const
getNode - return the (Post)DominatorTree node for the specified basic block.
Legacy analysis pass which computes a DominatorTree.
Definition Dominators.h:277
Concrete subclass of DominatorTreeBase that is used to compute a normal dominator tree.
Definition Dominators.h:122
LLVM_ABI bool isReachableFromEntry(const Use &U) const
Provide an overload for a Use.
static constexpr ElementCount get(ScalarTy MinVal, bool Scalable)
Definition TypeSize.h:315
Convenience struct for specifying and reasoning about fast-math flags.
Definition FMF.h:23
bool noSignedZeros() const
Definition FMF.h:67
bool noNaNs() const
Definition FMF.h:65
void applyUpdates(ArrayRef< UpdateT > Updates)
Submit updates to all available trees.
Legacy wrapper pass to provide the GlobalsAAResult object.
Common base class shared among various IRBuilders.
Definition IRBuilder.h:114
Value * CreateICmpULT(Value *LHS, Value *RHS, const Twine &Name="")
Definition IRBuilder.h:2401
Value * CreateFreeze(Value *V, const Twine &Name="")
Definition IRBuilder.h:2738
Value * CreateSub(Value *LHS, Value *RHS, const Twine &Name="", bool HasNUW=false, bool HasNSW=false)
Definition IRBuilder.h:1449
Value * CreateAnd(Value *LHS, Value *RHS, const Twine &Name="")
Definition IRBuilder.h:1580
Value * CreateICmpSLT(Value *LHS, Value *RHS, const Twine &Name="")
Definition IRBuilder.h:2417
void SetInsertPoint(BasicBlock *TheBB)
This specifies that created instructions should be appended to the end of the specified block.
Definition IRBuilder.h:181
Value * CreateOr(Value *LHS, Value *RHS, const Twine &Name="", bool IsDisjoint=false)
Definition IRBuilder.h:1602
This provides a uniform API for creating instructions and inserting them into a basic block: either a...
Definition IRBuilder.h:2903
A struct for saving information about induction variables.
static LLVM_ABI bool isInductionPHI(PHINode *Phi, const Loop *L, ScalarEvolution *SE, InductionDescriptor &D, ArrayRef< const SCEVPredicate * > NoWrapPreds={}, const SCEV *Expr=nullptr, SmallVectorImpl< Instruction * > *CastsToIgnore=nullptr)
Returns true if Phi is an induction in the loop L.
InstSimplifyFolder - Use InstructionSimplify to fold operations to existing values.
LLVM_ABI unsigned getNumSuccessors() const LLVM_READONLY
Return the number of successors that this instruction has.
LLVM_ABI InstListType::iterator eraseFromParent()
This method unlinks 'this' from the containing basic block and deletes it.
LLVM_ABI BasicBlock * getSuccessor(unsigned Idx) const LLVM_READONLY
Return the specified successor. This instruction must be a terminator.
LLVM_ABI bool mayHaveSideEffects() const LLVM_READONLY
Return true if the instruction may have side effects.
This is an important class for using LLVM in a threaded context.
Definition LLVMContext.h:68
void addLoop(Loop &L)
Definition LoopPass.cpp:77
bool contains(const LoopT *L) const
Return true if the specified loop is contained within this loop.
typename std::vector< Loop * >::const_iterator iterator
BlockT * getLoopLatch() const
If there is a single latch block for this loop, return it.
BlockT * getHeader() const
void addBasicBlockToLoop(BlockT *NewBB, LoopInfoBase< BlockT, LoopT > &LI)
This method is used by other analyses to update loop information.
void addChildLoop(LoopT *NewChild)
Add the specified loop to be a child of this loop.
LoopT * getParentLoop() const
Return the parent loop if it exists or nullptr for top level loops.
void addTopLevelLoop(LoopT *New)
This adds the specified loop to the collection of top-level loops.
bool hasNoExitBlocks(const LoopT &L) const
Return true if L does not have any exit blocks.
iterator end() const
void removeBlock(BlockT *BB)
This method completely removes BB from all data structures, including all of the Loop objects it is n...
LoopT * removeLoop(iterator I)
This removes the specified top-level loop from this loop info object.
LoopT * getLoopFor(const BlockT *BB) const
Return the inner most loop that BB lives in.
void destroy(LoopT *L)
Destroy a loop that has been removed from the LoopInfo nest.
The legacy pass manager's analysis pass to compute loop information.
Definition LoopInfo.h:619
bool replacementPreservesLCSSAForm(Instruction *From, Value *To)
Returns true if replacing From with To everywhere is guaranteed to preserve LCSSA form.
Definition LoopInfo.h:466
LLVM_ABI void erase(Loop *L)
Update LoopInfo after removing the last backedge from a loop.
Definition LoopInfo.cpp:950
Represents a single loop in the control flow graph.
Definition LoopInfo.h:40
void setLoopID(MDNode *LoopID) const
Set the llvm.loop loop id metadata for this loop.
Definition LoopInfo.cpp:583
MDNode * getLoopID() const
Return the llvm.loop loop id metadata node for this loop if it is present.
Definition LoopInfo.cpp:559
Metadata node.
Definition Metadata.h:1069
LLVM_ABI void replaceOperandWith(unsigned I, Metadata *New)
Replace a specific operand.
const MDOperand & getOperand(unsigned I) const
Definition Metadata.h:1426
ArrayRef< MDOperand > operands() const
Definition Metadata.h:1424
static MDTuple * get(LLVMContext &Context, ArrayRef< Metadata * > MDs)
Definition Metadata.h:1567
unsigned getNumOperands() const
Return number of MDNode operands.
Definition Metadata.h:1432
LLVMContext & getContext() const
Definition Metadata.h:1233
Tracking metadata reference owned by Metadata.
Definition Metadata.h:891
A single uniqued string.
Definition Metadata.h:722
LLVM_ABI StringRef getString() const
Definition Metadata.cpp:633
static LLVM_ABI MDString * get(LLVMContext &Context, StringRef Str)
Definition Metadata.cpp:615
Tuple of metadata.
Definition Metadata.h:1484
BasicBlock * getBlock() const
Definition MemorySSA.h:162
Representation for a specific memory location.
static LLVM_ABI MemoryLocation get(const LoadInst *LI)
Return a location with information about the memory reference by the given instruction.
Legacy analysis pass which computes MemorySSA.
Definition MemorySSA.h:975
Encapsulates MemorySSA, including all data associated with memory accesses.
Definition MemorySSA.h:702
LLVM_ABI void verifyMemorySSA(VerificationLevel=VerificationLevel::Fast) const
Verify that MemorySSA is self consistent (IE definitions dominate all uses, uses appear in the right ...
MemoryUseOrDef * getMemoryAccess(const Instruction *I) const
Given a memory Mod/Ref'ing instruction, get the MemorySSA access associated with it.
Definition MemorySSA.h:720
Root of the metadata hierarchy.
Definition Metadata.h:64
void addIncoming(Value *V, BasicBlock *BB)
Add an incoming value to the end of the PHI list.
void setIncomingValue(unsigned i, Value *V)
BasicBlock * getIncomingBlock(unsigned i) const
Return incoming basic block number i.
Value * getIncomingValue(unsigned i) const
Return incoming value number x.
int getBasicBlockIndex(const BasicBlock *BB) const
Return the first index of the specified basic block in the value list for this PHI.
unsigned getNumIncomingValues() const
Return the number of incoming edges.
PassRegistry - This class manages the registration and intitialization of the pass subsystem as appli...
static LLVM_ABI PointerType * get(LLVMContext &C, unsigned AddressSpace)
This constructs an opaque pointer to an object in a numbered address space.
Definition Type.cpp:911
static LLVM_ABI PoisonValue * get(Type *T)
Static factory methods - Return an 'poison' object of the specified type.
bool insert(const T &X)
Insert a new element into the PriorityWorklist.
static bool isAnyOfRecurrenceKind(RecurKind Kind)
Returns true if the recurrence kind is of the form select(cmp(),x,y) where one of (x,...
static bool isFindRecurrenceKind(RecurKind Kind)
static bool isMinMaxRecurrenceKind(RecurKind Kind)
Returns true if the recurrence kind is any min/max kind.
A global registry used in conjunction with static constructors to make pluggable components (like tar...
Definition Registry.h:116
Legacy wrapper pass to provide the SCEVAAResult object.
This class uses information about analyze scalars to rewrite expressions in canonical form.
ScalarEvolution * getSE()
LLVM_ABI Value * expandCodeFor(SCEVUse SH, Type *Ty, BasicBlock::iterator I)
Insert code to directly compute the specified SCEV expression into the program.
LLVM_ABI void eraseDeadInstructions(Value *Root)
Remove inserted instructions that are dead, e.g.
This class represents an analyzed expression in the program.
Type * getType() const
Return the LLVM type of this SCEV expression.
The main scalar evolution driver.
LLVM_ABI bool isKnownNonNegative(const SCEV *S)
Test if the given expression is known to be non-negative.
LLVM_ABI bool isLoopEntryGuardedByCond(const Loop *L, CmpPredicate Pred, const SCEV *LHS, const SCEV *RHS)
Test whether entry to the loop is protected by a conditional between LHS and RHS.
LLVM_ABI const SCEV * getSCEVAtScope(const SCEV *S, const Loop *L)
Return a SCEV expression for the specified value at the specified scope in the program.
const SCEV * getZero(Type *Ty)
Return a SCEV for the constant 0 of a specific type.
LLVM_ABI const SCEV * getConstant(ConstantInt *V)
LLVM_ABI const SCEV * getSCEV(Value *V)
Return a SCEV expression for the full generality of the specified expression.
LLVM_ABI void forgetLoop(const Loop *L)
This method should be called by the client when it has changed a loop in a way that may effect Scalar...
LLVM_ABI bool isLoopInvariant(const SCEV *S, const Loop *L)
Return true if the value of the given SCEV is unchanging in the specified loop.
LLVM_ABI LoopDisposition getLoopDisposition(const SCEV *S, const Loop *L)
Return the "disposition" of the given SCEV with respect to the given loop.
LLVM_ABI bool isSCEVable(Type *Ty) const
Test if values of the given type are analyzable within the SCEV framework.
LLVM_ABI void forgetValue(Value *V)
This method should be called by the client when it has changed a value in a way that may effect its v...
LLVM_ABI void forgetBlockAndLoopDispositions(Value *V=nullptr)
Called when the client has changed the disposition of values in a loop or block.
LoopDisposition
An enum describing the relationship between a SCEV and a loop.
@ LoopInvariant
The SCEV is loop-invariant.
LLVM_ABI bool isAvailableAtLoopEntry(const SCEV *S, const Loop *L)
Determine if the SCEV can be evaluated at loop's entry.
LLVM_ABI const SCEV * getExitCount(const Loop *L, const BasicBlock *ExitingBlock, ExitCountKind Kind=Exact)
Return the number of times the backedge executes before the given exit would be taken; if not exactly...
LLVM_ABI const SCEV * applyLoopGuards(const SCEV *Expr, const Loop *L)
Try to apply information from loop guards for L to Expr.
This class represents the LLVM 'select' instruction.
Implements a dense probed hash-table based set with some number of buckets stored inline.
Definition DenseSet.h:293
A version of PriorityWorklist that selects small size optimized data structures for the vector and ma...
size_type size() const
Definition SmallPtrSet.h:99
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:345
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
reference emplace_back(ArgTypes &&... Args)
void append(ItTy in_start, ItTy in_end)
Add the specified range to the end of the SmallVector.
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
Represent a constant reference to a string, i.e.
Definition StringRef.h:56
bool starts_with(StringRef Prefix) const
Check if this string starts with the given Prefix.
Definition StringRef.h:258
Provides information about what library functions are available for the current target.
This pass provides access to the codegen interfaces that are needed for IR-level transformations.
Value handle that tracks a Value across RAUW.
The instances of the Type class are immutable: once they are created, they are never changed.
Definition Type.h:46
static LLVM_ABI IntegerType * getInt32Ty(LLVMContext &C)
Definition Type.cpp:309
LLVMContext & getContext() const
Return the LLVMContext in which this type was uniqued.
Definition Type.h:130
bool isIntegerTy() const
True if this is an instance of IntegerType.
Definition Type.h:257
A Use represents the edge between a Value definition and its users.
Definition Use.h:35
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:553
iterator_range< user_iterator > users()
Definition Value.h:426
bool use_empty() const
Definition Value.h:346
iterator_range< use_iterator > uses()
Definition Value.h:380
LLVM_ABI StringRef getName() const
Return a constant reference to the value's name.
Definition Value.cpp:319
std::pair< iterator, bool > insert(const ValueT &V)
Definition DenseSet.h:209
const ParentTy * getParent() const
Definition ilist_node.h:34
This class implements an extremely fast bulk output stream that can only output to a stream.
Definition raw_ostream.h:53
Changed
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
Abstract Attribute helper functions.
Definition Attributor.h:165
std::enable_if_t< detail::IsValidPointer< X, Y >::value, X * > extract_or_null(Y &&MD)
Extract a Value from Metadata, allowing null.
Definition Metadata.h:683
This is an optimization pass for GlobalISel generic memory operations.
auto drop_begin(T &&RangeOrContainer, size_t N=1)
Return a range covering RangeOrContainer with the first N elements excluded.
Definition STLExtras.h:315
LLVM_ABI Value * createSimpleReduction(IRBuilderBase &B, Value *Src, RecurKind RdxKind)
Create a reduction of the given vector.
LLVM_ABI std::optional< ElementCount > getOptionalElementCountLoopAttribute(const Loop *TheLoop)
Find a combination of metadata ("llvm.loop.vectorize.width" and "llvm.loop.vectorize....
LLVM_ABI BranchProbability getBranchProbability(CondBrInst *B, bool ForFirstTarget)
Based on branch weight metadata, return either:
@ Low
Lower the current thread's priority such that it does not affect foreground tasks significantly.
Definition Threading.h:280
LLVM_ABI Value * addRuntimeChecks(Instruction *Loc, Loop *TheLoop, const SmallVectorImpl< RuntimePointerCheck > &PointerChecks, SCEVExpander &Expander, bool HoistRuntimeChecks=false)
Add code that checks at runtime if the accessed arrays in PointerChecks overlap.
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:1765
void fill(R &&Range, T &&Value)
Provide wrappers to std::fill which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1759
LLVM_ABI cl::opt< bool > ProfcheckDisableMetadataFixes
Definition LoopInfo.cpp:60
LLVM_ABI std::optional< unsigned > getLoopEstimatedTripCount(Loop *L, unsigned *EstimatedLoopInvocationWeight=nullptr)
Return either:
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:1739
LLVM_ABI Intrinsic::ID getMinMaxReductionIntrinsicOp(Intrinsic::ID RdxID)
Returns the min/max intrinsic used when expanding a min/max reduction.
LLVM_ABI bool getBooleanLoopAttribute(const Loop *TheLoop, StringRef Name)
Returns true if Name is applied to TheLoop and enabled.
LLVM_ABI bool isKnownNonPositiveInLoop(const SCEV *S, const Loop *L, ScalarEvolution &SE)
Returns true if we can prove that S is defined and always non-positive in loop L.
auto enumerate(FirstRange &&First, RestRanges &&...Rest)
Given two or more input ranges, returns a new range whose values are tuples (A, B,...
Definition STLExtras.h:2554
LLVM_ABI void setExplicitlyUnknownBranchWeightsIfProfiled(Instruction &I, StringRef PassName, const Function *F=nullptr)
Like setExplicitlyUnknownBranchWeights(...), but only sets unknown branch weights in the new instruct...
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:643
@ Done
Definition Threading.h:60
void appendReversedLoopsToWorklist(RangeT &&, SmallPriorityWorklist< Loop *, 4 > &)
Utility that implements appending of loops onto a worklist given a range.
auto successors(const MachineBasicBlock *BB)
LLVM_ABI void initializeLoopPassPass(PassRegistry &)
Manually defined generic "LoopPass" dependency initialization.
constexpr from_range_t from_range
LLVM_ABI bool formLCSSARecursively(Loop &L, const DominatorTree &DT, const LoopInfo *LI, ScalarEvolution *SE)
Put a loop nest into LCSSA form.
Definition LCSSA.cpp:469
LLVM_ABI Value * getReductionIdentity(Intrinsic::ID RdxID, Type *Ty, FastMathFlags FMF)
Given information about an @llvm.vector.reduce.
LLVM_ABI std::optional< MDNode * > makeFollowupLoopID(MDNode *OrigLoopID, ArrayRef< StringRef > FollowupAttrs, const char *InheritOptionsAttrsPrefix="", bool AlwaysNew=false)
Create a new loop identifier for a loop created from a loop transformation.
LLVM_ABI unsigned getArithmeticReductionInstruction(Intrinsic::ID RdxID)
Returns the arithmetic instruction opcode used when expanding a reduction.
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
LLVM_ABI char & LCSSAID
Definition LCSSA.cpp:545
std::pair< const RuntimeCheckingPtrGroup *, const RuntimeCheckingPtrGroup * > RuntimePointerCheck
A memcheck which made up of a pair of grouped pointers.
LLVM_ABI char & LoopSimplifyID
LLVM_ABI Value * createMinMaxOp(IRBuilderBase &Builder, RecurKind RK, Value *Left, Value *Right)
Returns a Min/Max operation corresponding to MinMaxRecurrenceKind.
LLVM_ABI SmallVector< BasicBlock *, 16 > collectChildrenInLoop(DominatorTree *DT, DomTreeNode *N, const Loop *CurLoop)
Does a BFS from a given node to all of its children inside a given loop.
LLVM_ABI void addStringMetadataToLoop(Loop *TheLoop, const char *MDString, unsigned V=0)
Set input string into loop metadata by keeping other values intact.
LLVM_ABI bool cannotBeMaxInLoop(const SCEV *S, const Loop *L, ScalarEvolution &SE, bool Signed)
Returns true if S is defined and never is equal to signed/unsigned max.
LLVM_ABI void setBranchWeights(Instruction &I, ArrayRef< uint32_t > Weights, bool IsExpected, bool ElideAllZero=false)
Create a new branch_weights metadata node and add or overwrite a prof metadata reference to instructi...
DomTreeNodeBase< BasicBlock > DomTreeNode
Definition Dominators.h:65
constexpr T divideNearest(U Numerator, V Denominator)
Returns (Numerator / Denominator) rounded by round-half-up.
Definition MathExtras.h:453
LLVM_ABI TransformationMode hasVectorizeTransformation(const Loop *L)
auto dyn_cast_or_null(const Y &Val)
Definition Casting.h:753
OutputIt transform(R &&Range, OutputIt d_first, UnaryFunction F)
Wrapper function around std::transform to apply a function to a range and store the result elsewhere.
Definition STLExtras.h:2026
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:1746
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 SmallVector< Instruction *, 8 > findDefsUsedOutsideOfLoop(Loop *L)
Returns the instructions that use values defined in the loop.
auto reverse(ContainerTy &&C)
Definition STLExtras.h:407
LLVM_ABI constexpr Intrinsic::ID getReductionIntrinsicID(RecurKind RK)
Returns the llvm.vector.reduce intrinsic that corresponds to the recurrence kind.
LLVM_ABI bool isMustProgress(const Loop *L)
Return true if this loop can be assumed to make progress.
constexpr bool isPowerOf2_32(uint32_t Value)
Return true if the argument is a power of two > 0.
Definition MathExtras.h:280
LLVM_ABI void setBranchProbability(CondBrInst *B, BranchProbability P, bool ForFirstTarget)
Set branch weight metadata for B to indicate that P and 1 - P are the probabilities of control flowin...
bool isModSet(const ModRefInfo MRI)
Definition ModRef.h:49
LLVM_ABI TransformationMode hasUnrollAndJamTransformation(const Loop *L)
LLVM_ABI void deleteDeadLoop(Loop *L, DominatorTree *DT, ScalarEvolution *SE, LoopInfo *LI, MemorySSA *MSSA=nullptr)
This function deletes dead loops.
LLVM_ABI raw_ostream & dbgs()
dbgs() - This returns a reference to a raw_ostream for debugging messages.
Definition Debug.cpp:209
LLVM_ABI bool hasDisableAllTransformsHint(const Loop *L)
Look for the loop attribute that disables all transformation heuristic.
LLVM_TEMPLATE_ABI void appendLoopsToWorklist(RangeT &&, SmallPriorityWorklist< Loop *, 4 > &)
Utility that implements appending of loops onto a worklist given a range.
LLVM_ABI cl::opt< unsigned > SCEVCheapExpansionBudget
LLVM_ABI Value * getShuffleReduction(IRBuilderBase &Builder, Value *Src, unsigned Op, TargetTransformInfo::ReductionShuffle RS, RecurKind MinMaxKind=RecurKind::None)
Generates a vector reduction using shufflevectors to reduce the value.
LLVM_ABI TransformationMode hasUnrollTransformation(const Loop *L)
LLVM_ABI BranchProbability getLoopProbability(Loop *L)
Based on branch weight metadata, return either:
LLVM_ABI TransformationMode hasDistributeTransformation(const Loop *L)
LLVM_ABI void breakLoopBackedge(Loop *L, DominatorTree &DT, ScalarEvolution &SE, LoopInfo &LI, MemorySSA *MSSA)
Remove the backedge of the specified loop.
bool isa(const From &Val)
isa<X> - Return true if the parameter to the template is an instance of one of the template type argu...
Definition Casting.h:547
LLVM_ABI void getLoopAnalysisUsage(AnalysisUsage &AU)
Helper to consistently add the set of standard passes to a loop pass's AnalysisUsage.
LLVM_ABI void propagateIRFlags(Value *I, ArrayRef< Value * > VL, Value *OpValue=nullptr, bool IncludeWrapFlags=true)
Get the intersection (logical and) of all of the potential IR flags of each scalar operation (VL) tha...
LLVM_ABI bool isKnownPositiveInLoop(const SCEV *S, const Loop *L, ScalarEvolution &SE)
Returns true if we can prove that S is defined and always positive in loop L.
LLVM_ATTRIBUTE_VISIBILITY_DEFAULT AnalysisKey InnerAnalysisManagerProxy< AnalysisManagerT, IRUnitT, ExtraArgTs... >::Key
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:2544
RNSuccIterator< NodeRef, BlockT, RegionT > succ_begin(NodeRef Node)
LLVM_ABI std::optional< int > getOptionalIntLoopAttribute(const Loop *TheLoop, StringRef Name)
Find named metadata for a loop with an integer value.
LLVM_ABI bool setLoopProbability(Loop *L, BranchProbability P)
Set branch weight metadata for the latch of L to indicate that, at the end of any iteration,...
LLVM_ABI BasicBlock * SplitBlockPredecessors(BasicBlock *BB, ArrayRef< BasicBlock * > Preds, const char *Suffix, DominatorTree *DT, LoopInfo *LI=nullptr, MemorySSAUpdater *MSSAU=nullptr, bool PreserveLCSSA=false)
This method introduces at least one new basic block into the function and moves some of the predecess...
@ First
Helpers to iterate all locations in the MemoryEffectsBase class.
Definition ModRef.h:74
TargetTransformInfo TTI
LLVM_ABI CmpInst::Predicate getMinMaxReductionPredicate(RecurKind RK)
Returns the comparison predicate used when expanding a min/max reduction.
LLVM_ABI TransformationMode hasLICMVersioningTransformation(const Loop *L)
LLVM_ABI bool VerifyMemorySSA
Enables verification of MemorySSA.
Definition MemorySSA.cpp:85
TransformationMode
The mode sets how eager a transformation should be applied.
Definition LoopUtils.h:285
@ TM_Unspecified
The pass can use heuristics to determine whether a transformation should be applied.
Definition LoopUtils.h:288
@ TM_SuppressedByUser
The transformation must not be applied.
Definition LoopUtils.h:308
@ TM_ForcedByUser
The transformation was directed by the user, e.g.
Definition LoopUtils.h:302
@ TM_Disable
The transformation should not be applied.
Definition LoopUtils.h:294
@ TM_Enable
The transformation should be applied without considering a cost model.
Definition LoopUtils.h:291
RNSuccIterator< NodeRef, BlockT, RegionT > succ_end(NodeRef Node)
LLVM_ABI bool hasDisableLICMTransformsHint(const Loop *L)
Look for the loop attribute that disables the LICM transformation heuristics.
template LLVM_TEMPLATE_ABI void appendLoopsToWorklist< Loop & >(Loop &L, SmallPriorityWorklist< Loop *, 4 > &Worklist)
LLVM_ABI Intrinsic::ID getReductionForBinop(Instruction::BinaryOps Opc)
Returns the reduction intrinsic id corresponding to the binary operation.
RecurKind
These are the kinds of recurrences that we support.
@ UMin
Unsigned integer min implemented in terms of select(cmp()).
@ FMinimumNum
FP min with llvm.minimumnum semantics.
@ Or
Bitwise or logical OR of integers.
@ FMinimum
FP min with llvm.minimum semantics.
@ FMaxNum
FP max with llvm.maxnum semantics including NaNs.
@ Mul
Product of integers.
@ FSub
Subtraction of floats.
@ FAddChainWithSubs
A chain of fadds and fsubs.
@ None
Not a recurrence.
@ AnyOf
AnyOf reduction with select(cmp(),x,y) where one of (x,y) is loop invariant, and both x and y are int...
@ Xor
Bitwise or logical XOR of integers.
@ FMax
FP max implemented in terms of select(cmp()).
@ FMaximum
FP max with llvm.maximum semantics.
@ FMulAdd
Sum of float products with llvm.fmuladd(a * b + sum).
@ FMul
Product of floats.
@ SMax
Signed integer max implemented in terms of select(cmp()).
@ And
Bitwise or logical AND of integers.
@ SMin
Signed integer min implemented in terms of select(cmp()).
@ FMin
FP min implemented in terms of select(cmp()).
@ FMinNum
FP min with llvm.minnum semantics including NaNs.
@ Sub
Subtraction of integers.
@ Add
Sum of integers.
@ AddChainWithSubs
A chain of adds and subs.
@ FAdd
Sum of floats.
@ FMaximumNum
FP max with llvm.maximumnum semantics.
@ UMax
Unsigned integer max implemented in terms of select(cmp()).
LLVM_ABI Value * getRecurrenceIdentity(RecurKind K, Type *Tp, FastMathFlags FMF)
Given information about an recurrence kind, return the identity for the @llvm.vector....
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.
RelativeUniformCounterPtr ValuesPtrExpr VTableAddr Count
Definition InstrProf.h:145
LLVM_ABI bool formDedicatedExitBlocks(Loop *L, DominatorTree *DT, LoopInfo *LI, MemorySSAUpdater *MSSAU, bool PreserveLCSSA)
Ensure that all exit blocks of the loop are dedicated exits.
Definition LoopUtils.cpp:61
DWARFExpression::Operation Op
raw_ostream & operator<<(raw_ostream &OS, const APFixedPoint &FX)
LLVM_ABI bool isKnownNegativeInLoop(const SCEV *S, const Loop *L, ScalarEvolution &SE)
Returns true if we can prove that S is defined and always negative in loop L.
LLVM_ABI StringRef getLoopVectorizeKindPrefix(const Loop *L)
Return a short prefix describing the loop's vectorizer origin based on the llvm.loop....
constexpr unsigned BitWidth
ValueMap< const Value *, WeakTrackingVH > ValueToValueMapTy
LLVM_ABI Value * expandReductionViaLoop(IRBuilderBase &Builder, Value *Vec, unsigned RdxOpcode, Value *Acc, DominatorTree *DT=nullptr, LoopInfo *LI=nullptr)
Expand a scalable vector reduction into a runtime loop that applies RdxOpcode element by element,...
LLVM_ABI bool setLoopEstimatedTripCount(Loop *L, unsigned EstimatedTripCount, std::optional< unsigned > EstimatedLoopInvocationWeight=std::nullopt)
Set llvm.loop.estimated_trip_count with the value EstimatedTripCount in the loop metadata of L.
LLVM_ABI bool extractBranchWeights(const MDNode *ProfileData, SmallVectorImpl< uint32_t > &Weights)
Extract branch weights from MD_prof metadata.
LLVM_ABI const char * LLVMLoopEstimatedTripCount
Profile-based loop metadata that should be accessed only by using llvm::getLoopEstimatedTripCount and...
LLVM_ABI bool hasIterationCountInvariantInParent(Loop *L, ScalarEvolution &SE)
Check inner loop (L) backedge count is known to be invariant on all iterations of its outer loop.
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:559
static cl::opt< unsigned > MSSAThreshold("simple-loop-unswitch-memoryssa-threshold", cl::desc("Max number of memory uses to explore during " "partial unswitching analysis"), cl::init(100), cl::Hidden)
LLVM_ABI bool isAlmostDeadIV(PHINode *IV, BasicBlock *LatchBlock, Value *Cond)
Return true if the induction variable IV in a Loop whose latch is LatchBlock would become dead if the...
auto predecessors(const MachineBasicBlock *BB)
LLVM_ABI int rewriteLoopExitValues(Loop *L, LoopInfo *LI, TargetLibraryInfo *TLI, ScalarEvolution *SE, const TargetTransformInfo *TTI, SCEVExpander &Rewriter, DominatorTree *DT, ReplaceExitVal ReplaceExitValue, SmallVector< WeakTrackingVH, 16 > &DeadInsts)
If the final value of any expressions that are recurrent in the loop can be computed,...
LLVM_ABI Value * createOrderedReduction(IRBuilderBase &B, RecurKind RdxKind, Value *Src, Value *Start)
Create an ordered reduction intrinsic using the given recurrence kind RdxKind.
LLVM_ABI RecurKind getMinMaxReductionRecurKind(Intrinsic::ID RdxID)
Returns the recurence kind used when expanding a min/max reduction.
ReplaceExitVal
Definition LoopUtils.h:605
@ UnusedIndVarInLoop
Definition LoopUtils.h:609
@ OnlyCheapRepl
Definition LoopUtils.h:607
@ AlwaysRepl
Definition LoopUtils.h:610
LLVM_ABI BasicBlock * SplitEdge(BasicBlock *From, BasicBlock *To, DominatorTree *DT=nullptr, LoopInfo *LI=nullptr, MemorySSAUpdater *MSSAU=nullptr, const Twine &BBName="")
Split the edge connecting the specified blocks, and return the newly created basic block between From...
LLVM_ABI std::optional< IVConditionInfo > hasPartialIVCondition(const Loop &L, unsigned MSSAThreshold, const MemorySSA &MSSA, AAResults &AA)
Check if the loop header has a conditional branch that is not loop-invariant, because it involves loa...
static auto filterDbgVars(iterator_range< simple_ilist< DbgRecord >::iterator > R)
Filter the DbgRecord range to DbgVariableRecord types only and downcast.
LLVM_ABI Value * createAnyOfReduction(IRBuilderBase &B, Value *Src, Value *InitVal, PHINode *OrigPhi)
Create a reduction of the given vector Src for a reduction of kind RecurKind::AnyOf.
LLVM_ABI bool cannotBeMinInLoop(const SCEV *S, const Loop *L, ScalarEvolution &SE, bool Signed)
Returns true if S is defined and never is equal to signed/unsigned min.
LLVM_ABI bool isKnownNonNegativeInLoop(const SCEV *S, const Loop *L, ScalarEvolution &SE)
Returns true if we can prove that S is defined and always non-negative in loop L.
LLVM_ABI Value * addDiffRuntimeChecks(Instruction *Loc, ArrayRef< PointerDiffInfo > Checks, SCEVExpander &Expander, ElementCount VF, unsigned IC)
LLVM_ABI Value * getOrderedReduction(IRBuilderBase &Builder, Value *Acc, Value *Src, unsigned Op, RecurKind MinMaxKind=RecurKind::None)
Generates an ordered vector reduction using extracts to reduce the value.
LLVM_ABI MDNode * findOptionMDForLoopID(MDNode *LoopID, StringRef Name)
Find and return the loop attribute node for the attribute Name in LoopID.
LLVM_ABI Intrinsic::ID getMinMaxReductionIntrinsicID(Intrinsic::ID IID)
Returns the llvm.vector.reduce min/max intrinsic that corresponds to the intrinsic op.
@ Enable
Enable colors.
Definition WithColor.h:47
LLVM_ABI Loop * cloneLoop(Loop *L, Loop *PL, ValueToValueMapTy &VM, LoopInfo *LI, LPPassManager *LPM)
Recursively clone the specified loop and all of its children, mapping the blocks with the specified m...
void swap(llvm::BitVector &LHS, llvm::BitVector &RHS)
Implement std::swap in terms of BitVector swap.
Definition BitVector.h:880
#define N
DbgLoop(const Loop *L)
const Loop * L
IR Values for the lower and upper bounds of a pointer evolution.
TrackingVH< Value > Start
TrackingVH< Value > End
Value * StrideToCheck
unsigned Ith
RewritePhi(PHINode *P, unsigned I, const SCEV *Val, Instruction *ExpansionPt, bool H)
const SCEV * ExpansionSCEV
PHINode * PN
Instruction * ExpansionPoint
Struct to hold information about a partially invariant condition.
Definition LoopUtils.h:678
unsigned AddressSpace
Address space of the involved pointers.
bool NeedsFreeze
Whether the pointer needs to be frozen after expansion, e.g.
const SCEV * High
The SCEV expression which represents the upper bound of all the pointers in this group.
const SCEV * Low
The SCEV expression which represents the lower bound of all the pointers in this group.