LLVM 24.0.0git
LICM.cpp
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1//===-- LICM.cpp - Loop Invariant Code Motion Pass ------------------------===//
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 pass performs loop invariant code motion, attempting to remove as much
10// code from the body of a loop as possible. It does this by either hoisting
11// code into the preheader block, or by sinking code to the exit blocks if it is
12// safe. This pass also promotes must-aliased memory locations in the loop to
13// live in registers, thus hoisting and sinking "invariant" loads and stores.
14//
15// Hoisting operations out of loops is a canonicalization transform. It
16// enables and simplifies subsequent optimizations in the middle-end.
17// Rematerialization of hoisted instructions to reduce register pressure is the
18// responsibility of the back-end, which has more accurate information about
19// register pressure and also handles other optimizations than LICM that
20// increase live-ranges.
21//
22// This pass uses alias analysis for two purposes:
23//
24// 1. Moving loop invariant loads and calls out of loops. If we can determine
25// that a load or call inside of a loop never aliases anything stored to,
26// we can hoist it or sink it like any other instruction.
27// 2. Scalar Promotion of Memory - If there is a store instruction inside of
28// the loop, we try to move the store to happen AFTER the loop instead of
29// inside of the loop. This can only happen if a few conditions are true:
30// A. The pointer stored through is loop invariant
31// B. There are no stores or loads in the loop which _may_ alias the
32// pointer. There are no calls in the loop which mod/ref the pointer.
33// If these conditions are true, we can promote the loads and stores in the
34// loop of the pointer to use a temporary alloca'd variable. We then use
35// the SSAUpdater to construct the appropriate SSA form for the value.
36//
37//===----------------------------------------------------------------------===//
38
42#include "llvm/ADT/Statistic.h"
50#include "llvm/Analysis/Loads.h"
63#include "llvm/IR/CFG.h"
64#include "llvm/IR/Constants.h"
65#include "llvm/IR/DataLayout.h"
68#include "llvm/IR/Dominators.h"
69#include "llvm/IR/IRBuilder.h"
72#include "llvm/IR/LLVMContext.h"
73#include "llvm/IR/Metadata.h"
78#include "llvm/Support/Debug.h"
86#include <algorithm>
87#include <utility>
88using namespace llvm;
89
90namespace llvm {
91class LPMUpdater;
92} // namespace llvm
93
94#define DEBUG_TYPE "licm"
95
96STATISTIC(NumCreatedBlocks, "Number of blocks created");
97STATISTIC(NumClonedBranches, "Number of branches cloned");
98STATISTIC(NumSunk, "Number of instructions sunk out of loop");
99STATISTIC(NumHoisted, "Number of instructions hoisted out of loop");
100STATISTIC(NumMovedLoads, "Number of load insts hoisted or sunk");
101STATISTIC(NumMovedCalls, "Number of call insts hoisted or sunk");
102STATISTIC(NumPromotionCandidates, "Number of promotion candidates");
103STATISTIC(NumLoadPromoted, "Number of load-only promotions");
104STATISTIC(NumLoadStorePromoted, "Number of load and store promotions");
105STATISTIC(NumMinMaxHoisted,
106 "Number of min/max expressions hoisted out of the loop");
107STATISTIC(NumGEPsHoisted,
108 "Number of geps reassociated and hoisted out of the loop");
109STATISTIC(NumAddSubHoisted, "Number of add/subtract expressions reassociated "
110 "and hoisted out of the loop");
111STATISTIC(NumFPAssociationsHoisted, "Number of invariant FP expressions "
112 "reassociated and hoisted out of the loop");
113STATISTIC(NumIntAssociationsHoisted,
114 "Number of invariant int expressions "
115 "reassociated and hoisted out of the loop");
116STATISTIC(NumBOAssociationsHoisted, "Number of invariant BinaryOp expressions "
117 "reassociated and hoisted out of the loop");
118
119/// Memory promotion is enabled by default.
120static cl::opt<bool>
121 DisablePromotion("disable-licm-promotion", cl::Hidden, cl::init(false),
122 cl::desc("Disable memory promotion in LICM pass"));
123
125 "licm-control-flow-hoisting", cl::Hidden, cl::init(false),
126 cl::desc("Enable control flow (and PHI) hoisting in LICM"));
127
128static cl::opt<bool>
129 SingleThread("licm-force-thread-model-single", cl::Hidden, cl::init(false),
130 cl::desc("Force thread model single in LICM pass"));
131
133 "licm-max-num-uses-traversed", cl::Hidden, cl::init(8),
134 cl::desc("Max num uses visited for identifying load "
135 "invariance in loop using invariant start (default = 8)"));
136
138 "licm-max-num-fp-reassociations", cl::init(5U), cl::Hidden,
139 cl::desc(
140 "Set upper limit for the number of transformations performed "
141 "during a single round of hoisting the reassociated expressions."));
142
144 "licm-max-num-int-reassociations", cl::init(5U), cl::Hidden,
145 cl::desc(
146 "Set upper limit for the number of transformations performed "
147 "during a single round of hoisting the reassociated expressions."));
148
149// Experimental option to allow imprecision in LICM in pathological cases, in
150// exchange for faster compile. This is to be removed if MemorySSA starts to
151// address the same issue. LICM calls MemorySSAWalker's
152// getClobberingMemoryAccess, up to the value of the Cap, getting perfect
153// accuracy. Afterwards, LICM will call into MemorySSA's getDefiningAccess,
154// which may not be precise, since optimizeUses is capped. The result is
155// correct, but we may not get as "far up" as possible to get which access is
156// clobbering the one queried.
158 "licm-mssa-optimization-cap", cl::init(100), cl::Hidden,
159 cl::desc("Enable imprecision in LICM in pathological cases, in exchange "
160 "for faster compile. Caps the MemorySSA clobbering calls."));
161
162// Experimentally, memory promotion carries less importance than sinking and
163// hoisting. Limit when we do promotion when using MemorySSA, in order to save
164// compile time.
166 "licm-mssa-max-acc-promotion", cl::init(250), cl::Hidden,
167 cl::desc("[LICM & MemorySSA] When MSSA in LICM is disabled, this has no "
168 "effect. When MSSA in LICM is enabled, then this is the maximum "
169 "number of accesses allowed to be present in a loop in order to "
170 "enable memory promotion."));
171
172namespace llvm {
174} // end namespace llvm
175
176static bool inSubLoop(BasicBlock *BB, Loop *CurLoop, LoopInfo *LI);
177static bool isNotUsedOrFoldableInLoop(const Instruction &I, const Loop *CurLoop,
178 const LoopSafetyInfo *SafetyInfo,
180 bool &FoldableInLoop, bool LoopNestMode);
181static void hoist(Instruction &I, const DominatorTree *DT, const Loop *CurLoop,
182 BasicBlock *Dest, ICFLoopSafetyInfo *SafetyInfo,
185static bool sink(Instruction &I, LoopInfo *LI, DominatorTree *DT,
186 const Loop *CurLoop, ICFLoopSafetyInfo *SafetyInfo,
189 Instruction &Inst, const DominatorTree *DT, const TargetLibraryInfo *TLI,
190 const Loop *CurLoop, const LoopSafetyInfo *SafetyInfo,
191 OptimizationRemarkEmitter *ORE, const Instruction *CtxI,
192 AssumptionCache *AC, bool AllowSpeculation);
194 AAResults *AA, Loop *CurLoop,
195 SinkAndHoistLICMFlags &Flags);
196static bool pointerInvalidatedByLoop(MemorySSA *MSSA, MemoryUse *MU,
197 Loop *CurLoop, Instruction &I,
199 bool InvariantGroup);
200static bool pointerInvalidatedByBlock(BasicBlock &BB, MemorySSA &MSSA,
201 MemoryUse &MU);
202/// Aggregates various functions for hoisting computations out of loop.
203static bool hoistArithmetics(Instruction &I, Loop &L,
204 ICFLoopSafetyInfo &SafetyInfo,
206 DominatorTree *DT);
207static bool
209 BasicBlock *HoistDest, ICFLoopSafetyInfo *SafetyInfo,
212 SmallVectorImpl<Instruction *> &HoistedInstructions);
214 Instruction &I, BasicBlock &ExitBlock, PHINode &PN, const LoopInfo *LI,
215 const LoopSafetyInfo *SafetyInfo, MemorySSAUpdater &MSSAU);
216
217static void eraseInstruction(Instruction &I, ICFLoopSafetyInfo &SafetyInfo,
218 MemorySSAUpdater &MSSAU);
219
221 ICFLoopSafetyInfo &SafetyInfo,
223
224static void foreachMemoryAccess(MemorySSA *MSSA, Loop *L,
225 function_ref<void(Instruction *)> Fn);
227 std::pair<SmallSetVector<Value *, 8>, bool>;
230 DominatorTree *DT, ICFLoopSafetyInfo *SafetyInfo,
231 Loop *L);
232
233namespace {
234struct LoopInvariantCodeMotion {
235 bool runOnLoop(Loop *L, AAResults *AA, LoopInfo *LI, DominatorTree *DT,
238 OptimizationRemarkEmitter *ORE, bool LoopNestMode = false);
239
240 LoopInvariantCodeMotion(unsigned LicmMssaOptCap,
241 unsigned LicmMssaNoAccForPromotionCap,
242 bool LicmAllowSpeculation)
243 : LicmMssaOptCap(LicmMssaOptCap),
244 LicmMssaNoAccForPromotionCap(LicmMssaNoAccForPromotionCap),
245 LicmAllowSpeculation(LicmAllowSpeculation) {}
246
247private:
248 unsigned LicmMssaOptCap;
249 unsigned LicmMssaNoAccForPromotionCap;
250 bool LicmAllowSpeculation;
251};
252
253struct LegacyLICMPass : public LoopPass {
254 static char ID; // Pass identification, replacement for typeid
255 LegacyLICMPass(
256 unsigned LicmMssaOptCap = SetLicmMssaOptCap,
257 unsigned LicmMssaNoAccForPromotionCap = SetLicmMssaNoAccForPromotionCap,
258 bool LicmAllowSpeculation = true)
259 : LoopPass(ID), LICM(LicmMssaOptCap, LicmMssaNoAccForPromotionCap,
260 LicmAllowSpeculation) {
262 }
263
264 bool runOnLoop(Loop *L, LPPassManager &LPM) override {
265 if (skipLoop(L))
266 return false;
267
268 LLVM_DEBUG(dbgs() << "Perform LICM on Loop with header at block "
269 << L->getHeader()->getNameOrAsOperand() << "\n");
270
271 Function *F = L->getHeader()->getParent();
272
273 auto *SE = getAnalysisIfAvailable<ScalarEvolutionWrapperPass>();
274 MemorySSA *MSSA = &getAnalysis<MemorySSAWrapperPass>().getMSSA();
275 // For the old PM, we can't use OptimizationRemarkEmitter as an analysis
276 // pass. Function analyses need to be preserved across loop transformations
277 // but ORE cannot be preserved (see comment before the pass definition).
278 OptimizationRemarkEmitter ORE(L->getHeader()->getParent());
279 return LICM.runOnLoop(
280 L, &getAnalysis<AAResultsWrapperPass>().getAAResults(),
281 &getAnalysis<LoopInfoWrapperPass>().getLoopInfo(),
282 &getAnalysis<DominatorTreeWrapperPass>().getDomTree(),
283 &getAnalysis<AssumptionCacheTracker>().getAssumptionCache(*F),
284 &getAnalysis<TargetLibraryInfoWrapperPass>().getTLI(*F),
285 &getAnalysis<TargetTransformInfoWrapperPass>().getTTI(*F),
286 SE ? &SE->getSE() : nullptr, MSSA, &ORE);
287 }
288
289 /// This transformation requires natural loop information & requires that
290 /// loop preheaders be inserted into the CFG...
291 ///
292 void getAnalysisUsage(AnalysisUsage &AU) const override {
293 AU.addPreserved<DominatorTreeWrapperPass>();
294 AU.addPreserved<LoopInfoWrapperPass>();
295 AU.addRequired<TargetLibraryInfoWrapperPass>();
296 AU.addRequired<MemorySSAWrapperPass>();
297 AU.addPreserved<MemorySSAWrapperPass>();
298 AU.addRequired<TargetTransformInfoWrapperPass>();
299 AU.addRequired<AssumptionCacheTracker>();
302 AU.addPreserved<LazyBlockFrequencyInfoPass>();
303 AU.addPreserved<LazyBranchProbabilityInfoPass>();
304 }
305
306private:
307 LoopInvariantCodeMotion LICM;
308};
309} // namespace
310
313 if (!AR.MSSA)
314 reportFatalUsageError("LICM requires MemorySSA (loop-mssa)");
315
316 // For the new PM, we also can't use OptimizationRemarkEmitter as an analysis
317 // pass. Function analyses need to be preserved across loop transformations
318 // but ORE cannot be preserved (see comment before the pass definition).
319 OptimizationRemarkEmitter ORE(L.getHeader()->getParent());
320
321 LoopInvariantCodeMotion LICM(Opts.MssaOptCap, Opts.MssaNoAccForPromotionCap,
322 Opts.AllowSpeculation);
323 if (!LICM.runOnLoop(&L, &AR.AA, &AR.LI, &AR.DT, &AR.AC, &AR.TLI, &AR.TTI,
324 &AR.SE, AR.MSSA, &ORE))
325 return PreservedAnalyses::all();
326
328 PA.preserve<MemorySSAAnalysis>();
329
330 return PA;
331}
332
334 raw_ostream &OS, function_ref<StringRef(StringRef)> MapClassName2PassName) {
335 static_cast<PassInfoMixin<LICMPass> *>(this)->printPipeline(
336 OS, MapClassName2PassName);
337
338 OS << '<';
339 OS << (Opts.AllowSpeculation ? "" : "no-") << "allowspeculation";
340 OS << '>';
341}
342
345 LPMUpdater &) {
346 if (!AR.MSSA)
347 reportFatalUsageError("LNICM requires MemorySSA (loop-mssa)");
348
349 // For the new PM, we also can't use OptimizationRemarkEmitter as an analysis
350 // pass. Function analyses need to be preserved across loop transformations
351 // but ORE cannot be preserved (see comment before the pass definition).
353
354 LoopInvariantCodeMotion LICM(Opts.MssaOptCap, Opts.MssaNoAccForPromotionCap,
355 Opts.AllowSpeculation);
356
357 Loop &OutermostLoop = LN.getOutermostLoop();
358 bool Changed = LICM.runOnLoop(&OutermostLoop, &AR.AA, &AR.LI, &AR.DT, &AR.AC,
359 &AR.TLI, &AR.TTI, &AR.SE, AR.MSSA, &ORE, true);
360
361 if (!Changed)
362 return PreservedAnalyses::all();
363
365
366 PA.preserve<DominatorTreeAnalysis>();
367 PA.preserve<LoopAnalysis>();
368 PA.preserve<MemorySSAAnalysis>();
369
370 return PA;
371}
372
374 raw_ostream &OS, function_ref<StringRef(StringRef)> MapClassName2PassName) {
375 static_cast<PassInfoMixin<LNICMPass> *>(this)->printPipeline(
376 OS, MapClassName2PassName);
377
378 OS << '<';
379 OS << (Opts.AllowSpeculation ? "" : "no-") << "allowspeculation";
380 OS << '>';
381}
382
383char LegacyLICMPass::ID = 0;
384INITIALIZE_PASS_BEGIN(LegacyLICMPass, "licm", "Loop Invariant Code Motion",
385 false, false)
391INITIALIZE_PASS_END(LegacyLICMPass, "licm", "Loop Invariant Code Motion", false,
392 false)
393
394Pass *llvm::createLICMPass() { return new LegacyLICMPass(); }
395
400
402 unsigned LicmMssaOptCap, unsigned LicmMssaNoAccForPromotionCap, bool IsSink,
403 Loop &L, MemorySSA &MSSA)
406 IsSink(IsSink) {
407 unsigned AccessCapCount = 0;
408 for (auto *BB : L.getBlocks())
409 if (const auto *Accesses = MSSA.getBlockAccesses(BB))
410 for (const auto &MA : *Accesses) {
411 (void)MA;
412 ++AccessCapCount;
413 if (AccessCapCount > LicmMssaNoAccForPromotionCap) {
414 NoOfMemAccTooLarge = true;
415 return;
416 }
417 }
418}
419
420/// Hoist expressions out of the specified loop. Note, alias info for inner
421/// loop is not preserved so it is not a good idea to run LICM multiple
422/// times on one loop.
423bool LoopInvariantCodeMotion::runOnLoop(Loop *L, AAResults *AA, LoopInfo *LI,
427 ScalarEvolution *SE, MemorySSA *MSSA,
429 bool LoopNestMode) {
430 bool Changed = false;
431
432 assert(L->isLCSSAForm(*DT) && "Loop is not in LCSSA form.");
433
434 // If this loop has metadata indicating that LICM is not to be performed then
435 // just exit.
437 return false;
438 }
439
440 // Don't sink stores from loops with coroutine suspend instructions.
441 // LICM would sink instructions into the default destination of
442 // the coroutine switch. The default destination of the switch is to
443 // handle the case where the coroutine is suspended, by which point the
444 // coroutine frame may have been destroyed. No instruction can be sunk there.
445 // FIXME: This would unfortunately hurt the performance of coroutines, however
446 // there is currently no general solution for this. Similar issues could also
447 // potentially happen in other passes where instructions are being moved
448 // across that edge.
449 bool HasCoroSuspendInst = llvm::any_of(L->getBlocks(), [](BasicBlock *BB) {
450 using namespace PatternMatch;
451 return any_of(make_pointer_range(*BB),
452 match_fn(m_Intrinsic<Intrinsic::coro_suspend>()));
453 });
454
455 MemorySSAUpdater MSSAU(MSSA);
456 SinkAndHoistLICMFlags Flags(LicmMssaOptCap, LicmMssaNoAccForPromotionCap,
457 /*IsSink=*/true, *L, *MSSA);
458
459 // Get the preheader block to move instructions into...
460 BasicBlock *Preheader = L->getLoopPreheader();
461
462 // Compute loop safety information.
463 ICFLoopSafetyInfo SafetyInfo(L);
464
465 // We want to visit all of the instructions in this loop... that are not parts
466 // of our subloops (they have already had their invariants hoisted out of
467 // their loop, into this loop, so there is no need to process the BODIES of
468 // the subloops).
469 //
470 // Traverse the body of the loop in depth first order on the dominator tree so
471 // that we are guaranteed to see definitions before we see uses. This allows
472 // us to sink instructions in one pass, without iteration. After sinking
473 // instructions, we perform another pass to hoist them out of the loop.
474 if (L->hasDedicatedExits())
475 Changed |=
476 LoopNestMode
477 ? sinkRegionForLoopNest(DT->getNode(L->getHeader()), AA, LI, DT,
478 TLI, TTI, L, MSSAU, &SafetyInfo, Flags, ORE)
479 : sinkRegion(DT->getNode(L->getHeader()), AA, LI, DT, TLI, TTI, L,
480 MSSAU, &SafetyInfo, Flags, ORE);
481 Flags.setIsSink(false);
482 if (Preheader)
483 Changed |= hoistRegion(DT->getNode(L->getHeader()), AA, LI, DT, AC, TLI, L,
484 MSSAU, SE, &SafetyInfo, Flags, ORE, LoopNestMode,
485 LicmAllowSpeculation);
486
487 // Now that all loop invariants have been removed from the loop, promote any
488 // memory references to scalars that we can.
489 // Don't sink stores from loops without dedicated block exits. Exits
490 // containing indirect branches are not transformed by loop simplify,
491 // make sure we catch that. An additional load may be generated in the
492 // preheader for SSA updater, so also avoid sinking when no preheader
493 // is available.
494 if (!DisablePromotion && Preheader && L->hasDedicatedExits() &&
495 !Flags.tooManyMemoryAccesses() && !HasCoroSuspendInst) {
496 // Figure out the loop exits and their insertion points
497 SmallVector<BasicBlock *, 8> ExitBlocks;
498 L->getUniqueExitBlocks(ExitBlocks);
499
500 // We can't insert into a catchswitch.
501 bool HasCatchSwitch = llvm::any_of(ExitBlocks, [](BasicBlock *Exit) {
502 return isa<CatchSwitchInst>(Exit->getTerminator());
503 });
504
505 if (!HasCatchSwitch) {
507 SmallVector<MemoryAccess *, 8> MSSAInsertPts;
508 InsertPts.reserve(ExitBlocks.size());
509 MSSAInsertPts.reserve(ExitBlocks.size());
510 for (BasicBlock *ExitBlock : ExitBlocks) {
511 InsertPts.push_back(ExitBlock->getFirstInsertionPt());
512 MSSAInsertPts.push_back(nullptr);
513 }
514
516
517 // Promoting one set of accesses may make the pointers for another set
518 // loop invariant, so run this in a loop.
519 bool Promoted = false;
520 bool LocalPromoted;
521 do {
522 LocalPromoted = false;
523 for (auto [PointerMustAliases, HasReadsOutsideSet] :
524 collectPromotionCandidates(MSSA, AA, DT, &SafetyInfo, L)) {
525 LocalPromoted |= promoteLoopAccessesToScalars(
526 PointerMustAliases, ExitBlocks, InsertPts, MSSAInsertPts, PIC, LI,
527 DT, AC, TLI, TTI, L, MSSAU, &SafetyInfo, ORE,
528 LicmAllowSpeculation, HasReadsOutsideSet);
529 }
530 Promoted |= LocalPromoted;
531 } while (LocalPromoted);
532
533 // Once we have promoted values across the loop body we have to
534 // recursively reform LCSSA as any nested loop may now have values defined
535 // within the loop used in the outer loop.
536 // FIXME: This is really heavy handed. It would be a bit better to use an
537 // SSAUpdater strategy during promotion that was LCSSA aware and reformed
538 // it as it went.
539 if (Promoted)
540 formLCSSARecursively(*L, *DT, LI, SE);
541
542 Changed |= Promoted;
543 }
544 }
545
546 // Check that neither this loop nor its parent have had LCSSA broken. LICM is
547 // specifically moving instructions across the loop boundary and so it is
548 // especially in need of basic functional correctness checking here.
549 assert(L->isLCSSAForm(*DT) && "Loop not left in LCSSA form after LICM!");
550 assert((L->isOutermost() || L->getParentLoop()->isLCSSAForm(*DT)) &&
551 "Parent loop not left in LCSSA form after LICM!");
552
553 if (VerifyMemorySSA)
554 MSSA->verifyMemorySSA();
555
556 if (Changed && SE)
558 return Changed;
559}
560
561/// Walk the specified region of the CFG (defined by all blocks dominated by
562/// the specified block, and that are in the current loop) in reverse depth
563/// first order w.r.t the DominatorTree. This allows us to visit uses before
564/// definitions, allowing us to sink a loop body in one pass without iteration.
565///
568 TargetTransformInfo *TTI, Loop *CurLoop,
569 MemorySSAUpdater &MSSAU, ICFLoopSafetyInfo *SafetyInfo,
571 OptimizationRemarkEmitter *ORE, Loop *OutermostLoop) {
572
573 // Verify inputs.
574 assert(N != nullptr && AA != nullptr && LI != nullptr && DT != nullptr &&
575 CurLoop != nullptr && SafetyInfo != nullptr &&
576 "Unexpected input to sinkRegion.");
577
578 // We want to visit children before parents. We will enqueue all the parents
579 // before their children in the worklist and process the worklist in reverse
580 // order.
582 collectChildrenInLoop(DT, N, CurLoop);
583
584 bool Changed = false;
585 for (BasicBlock *BB : reverse(Worklist)) {
586 // subloop (which would already have been processed).
587 if (inSubLoop(BB, CurLoop, LI))
588 continue;
589
590 for (BasicBlock::iterator II = BB->end(); II != BB->begin();) {
591 Instruction &I = *--II;
592
593 // The instruction is not used in the loop if it is dead. In this case,
594 // we just delete it instead of sinking it.
595 if (isInstructionTriviallyDead(&I, TLI)) {
596 LLVM_DEBUG(dbgs() << "LICM deleting dead inst: " << I << '\n');
599 ++II;
600 eraseInstruction(I, *SafetyInfo, MSSAU);
601 Changed = true;
602 continue;
603 }
604
605 // Check to see if we can sink this instruction to the exit blocks
606 // of the loop. We can do this if the all users of the instruction are
607 // outside of the loop. In this case, it doesn't even matter if the
608 // operands of the instruction are loop invariant.
609 //
610 bool FoldableInLoop = false;
611 bool LoopNestMode = OutermostLoop != nullptr;
612 if (!I.mayHaveSideEffects() &&
613 isNotUsedOrFoldableInLoop(I, LoopNestMode ? OutermostLoop : CurLoop,
614 SafetyInfo, TTI, FoldableInLoop,
615 LoopNestMode) &&
616 canSinkOrHoistInst(I, AA, DT, CurLoop, MSSAU, true, Flags, ORE)) {
617 if (sink(I, LI, DT, CurLoop, SafetyInfo, MSSAU, ORE)) {
618 if (!FoldableInLoop) {
619 ++II;
621 eraseInstruction(I, *SafetyInfo, MSSAU);
622 }
623 Changed = true;
624 }
625 }
626 }
627 }
628 if (VerifyMemorySSA)
629 MSSAU.getMemorySSA()->verifyMemorySSA();
630 return Changed;
631}
632
635 TargetTransformInfo *TTI, Loop *CurLoop,
636 MemorySSAUpdater &MSSAU,
637 ICFLoopSafetyInfo *SafetyInfo,
640
641 bool Changed = false;
643 Worklist.insert(CurLoop);
644 appendLoopsToWorklist(*CurLoop, Worklist);
645 while (!Worklist.empty()) {
646 Loop *L = Worklist.pop_back_val();
647 Changed |= sinkRegion(DT->getNode(L->getHeader()), AA, LI, DT, TLI, TTI, L,
648 MSSAU, SafetyInfo, Flags, ORE, CurLoop);
649 }
650 return Changed;
651}
652
653namespace {
654// This is a helper class for hoistRegion to make it able to hoist control flow
655// in order to be able to hoist phis. The way this works is that we initially
656// start hoisting to the loop preheader, and when we see a loop invariant branch
657// we make note of this. When we then come to hoist an instruction that's
658// conditional on such a branch we duplicate the branch and the relevant control
659// flow, then hoist the instruction into the block corresponding to its original
660// block in the duplicated control flow.
661class ControlFlowHoister {
662private:
663 // Information about the loop we are hoisting from
664 LoopInfo *LI;
665 DominatorTree *DT;
666 Loop *CurLoop;
667 MemorySSAUpdater &MSSAU;
668
669 // A map of blocks in the loop to the block their instructions will be hoisted
670 // to.
671 DenseMap<BasicBlock *, BasicBlock *> HoistDestinationMap;
672
673 // The branches that we can hoist, mapped to the block that marks a
674 // convergence point of their control flow.
675 DenseMap<CondBrInst *, BasicBlock *> HoistableBranches;
676
677public:
678 ControlFlowHoister(LoopInfo *LI, DominatorTree *DT, Loop *CurLoop,
679 MemorySSAUpdater &MSSAU)
680 : LI(LI), DT(DT), CurLoop(CurLoop), MSSAU(MSSAU) {}
681
682 void registerPossiblyHoistableBranch(CondBrInst *BI) {
683 // We can only hoist conditional branches with loop invariant operands.
684 if (!ControlFlowHoisting || !CurLoop->hasLoopInvariantOperands(BI))
685 return;
686
687 // The branch destinations need to be in the loop, and we don't gain
688 // anything by duplicating conditional branches with duplicate successors,
689 // as it's essentially the same as an unconditional branch.
690 BasicBlock *TrueDest = BI->getSuccessor(0);
691 BasicBlock *FalseDest = BI->getSuccessor(1);
692 if (!CurLoop->contains(TrueDest) || !CurLoop->contains(FalseDest) ||
693 TrueDest == FalseDest)
694 return;
695
696 // We can hoist BI if one branch destination is the successor of the other,
697 // or both have common successor which we check by seeing if the
698 // intersection of their successors is non-empty.
699 // TODO: This could be expanded to allowing branches where both ends
700 // eventually converge to a single block.
701 SmallPtrSet<BasicBlock *, 4> TrueDestSucc(llvm::from_range,
702 successors(TrueDest));
703 SmallPtrSet<BasicBlock *, 4> FalseDestSucc(llvm::from_range,
704 successors(FalseDest));
705 BasicBlock *CommonSucc = nullptr;
706 if (TrueDestSucc.count(FalseDest)) {
707 CommonSucc = FalseDest;
708 } else if (FalseDestSucc.count(TrueDest)) {
709 CommonSucc = TrueDest;
710 } else {
711 set_intersect(TrueDestSucc, FalseDestSucc);
712 // If there's one common successor use that.
713 if (TrueDestSucc.size() == 1)
714 CommonSucc = *TrueDestSucc.begin();
715 // If there's more than one pick whichever appears first in the block list
716 // (we can't use the value returned by TrueDestSucc.begin() as it's
717 // unpredicatable which element gets returned).
718 else if (!TrueDestSucc.empty()) {
719 Function *F = TrueDest->getParent();
720 auto IsSucc = [&](BasicBlock &BB) { return TrueDestSucc.count(&BB); };
721 auto It = llvm::find_if(*F, IsSucc);
722 assert(It != F->end() && "Could not find successor in function");
723 CommonSucc = &*It;
724 }
725 }
726 // The common successor has to be dominated by the branch, as otherwise
727 // there will be some other path to the successor that will not be
728 // controlled by this branch so any phi we hoist would be controlled by the
729 // wrong condition. This also takes care of avoiding hoisting of loop back
730 // edges.
731 // TODO: In some cases this could be relaxed if the successor is dominated
732 // by another block that's been hoisted and we can guarantee that the
733 // control flow has been replicated exactly.
734 if (CommonSucc && DT->dominates(BI, CommonSucc))
735 HoistableBranches[BI] = CommonSucc;
736 }
737
738 bool canHoistPHI(PHINode *PN) {
739 // The phi must have loop invariant operands.
740 if (!ControlFlowHoisting || !CurLoop->hasLoopInvariantOperands(PN))
741 return false;
742 // We can hoist phis if the block they are in is the target of hoistable
743 // branches which cover all of the predecessors of the block.
744 BasicBlock *BB = PN->getParent();
745 SmallPtrSet<BasicBlock *, 8> PredecessorBlocks(llvm::from_range,
746 predecessors(BB));
747 // If we have less predecessor blocks than predecessors then the phi will
748 // have more than one incoming value for the same block which we can't
749 // handle.
750 // TODO: This could be handled be erasing some of the duplicate incoming
751 // values.
752 if (PredecessorBlocks.size() != pred_size(BB))
753 return false;
754 for (auto &Pair : HoistableBranches) {
755 if (Pair.second == BB) {
756 // Which blocks are predecessors via this branch depends on if the
757 // branch is triangle-like or diamond-like.
758 if (Pair.first->getSuccessor(0) == BB) {
759 PredecessorBlocks.erase(Pair.first->getParent());
760 PredecessorBlocks.erase(Pair.first->getSuccessor(1));
761 } else if (Pair.first->getSuccessor(1) == BB) {
762 PredecessorBlocks.erase(Pair.first->getParent());
763 PredecessorBlocks.erase(Pair.first->getSuccessor(0));
764 } else {
765 PredecessorBlocks.erase(Pair.first->getSuccessor(0));
766 PredecessorBlocks.erase(Pair.first->getSuccessor(1));
767 }
768 }
769 }
770 // PredecessorBlocks will now be empty if for every predecessor of BB we
771 // found a hoistable branch source.
772 return PredecessorBlocks.empty();
773 }
774
775 BasicBlock *getOrCreateHoistedBlock(BasicBlock *BB) {
777 return CurLoop->getLoopPreheader();
778 // If BB has already been hoisted, return that
779 if (auto It = HoistDestinationMap.find(BB); It != HoistDestinationMap.end())
780 return It->second;
781
782 // Check if this block is conditional based on a pending branch
783 auto HasBBAsSuccessor =
784 [&](DenseMap<CondBrInst *, BasicBlock *>::value_type &Pair) {
785 return BB != Pair.second && (Pair.first->getSuccessor(0) == BB ||
786 Pair.first->getSuccessor(1) == BB);
787 };
788 auto It = llvm::find_if(HoistableBranches, HasBBAsSuccessor);
789
790 // If not involved in a pending branch, hoist to preheader
791 BasicBlock *InitialPreheader = CurLoop->getLoopPreheader();
792 if (It == HoistableBranches.end()) {
793 LLVM_DEBUG(dbgs() << "LICM using "
794 << InitialPreheader->getNameOrAsOperand()
795 << " as hoist destination for "
796 << BB->getNameOrAsOperand() << "\n");
797 HoistDestinationMap[BB] = InitialPreheader;
798 return InitialPreheader;
799 }
800 CondBrInst *BI = It->first;
801 assert(std::none_of(std::next(It), HoistableBranches.end(),
802 HasBBAsSuccessor) &&
803 "BB is expected to be the target of at most one branch");
804
805 LLVMContext &C = BB->getContext();
806 BasicBlock *TrueDest = BI->getSuccessor(0);
807 BasicBlock *FalseDest = BI->getSuccessor(1);
808 BasicBlock *CommonSucc = HoistableBranches[BI];
809 BasicBlock *HoistTarget = getOrCreateHoistedBlock(BI->getParent());
810
811 // Create hoisted versions of blocks that currently don't have them
812 auto CreateHoistedBlock = [&](BasicBlock *Orig) {
813 auto [It, Inserted] = HoistDestinationMap.try_emplace(Orig);
814 if (!Inserted)
815 return It->second;
816 BasicBlock *New =
817 BasicBlock::Create(C, Orig->getName() + ".licm", Orig->getParent());
818 It->second = New;
819 DT->addNewBlock(New, HoistTarget);
820 if (CurLoop->getParentLoop())
821 CurLoop->getParentLoop()->addBasicBlockToLoop(New, *LI);
822 ++NumCreatedBlocks;
823 LLVM_DEBUG(dbgs() << "LICM created " << New->getName()
824 << " as hoist destination for " << Orig->getName()
825 << "\n");
826 return New;
827 };
828 BasicBlock *HoistTrueDest = CreateHoistedBlock(TrueDest);
829 BasicBlock *HoistFalseDest = CreateHoistedBlock(FalseDest);
830 BasicBlock *HoistCommonSucc = CreateHoistedBlock(CommonSucc);
831
832 // Link up these blocks with branches.
833 if (!HoistCommonSucc->hasTerminator()) {
834 // The new common successor we've generated will branch to whatever that
835 // hoist target branched to.
836 BasicBlock *TargetSucc = HoistTarget->getSingleSuccessor();
837 assert(TargetSucc && "Expected hoist target to have a single successor");
838 HoistCommonSucc->moveBefore(TargetSucc);
839 UncondBrInst::Create(TargetSucc, HoistCommonSucc);
840 }
841 if (!HoistTrueDest->hasTerminator()) {
842 HoistTrueDest->moveBefore(HoistCommonSucc);
843 UncondBrInst::Create(HoistCommonSucc, HoistTrueDest);
844 }
845 if (!HoistFalseDest->hasTerminator()) {
846 HoistFalseDest->moveBefore(HoistCommonSucc);
847 UncondBrInst::Create(HoistCommonSucc, HoistFalseDest);
848 }
849
850 // If BI is being cloned to what was originally the preheader then
851 // HoistCommonSucc will now be the new preheader.
852 if (HoistTarget == InitialPreheader) {
853 // Phis in the loop header now need to use the new preheader.
854 InitialPreheader->replaceSuccessorsPhiUsesWith(HoistCommonSucc);
856 HoistTarget->getSingleSuccessor(), HoistCommonSucc, {HoistTarget});
857 // The new preheader dominates the loop header.
858 DomTreeNode *PreheaderNode = DT->getNode(HoistCommonSucc);
859 DomTreeNode *HeaderNode = DT->getNode(CurLoop->getHeader());
860 DT->changeImmediateDominator(HeaderNode, PreheaderNode);
861 // The preheader hoist destination is now the new preheader, with the
862 // exception of the hoist destination of this branch.
863 for (auto &Pair : HoistDestinationMap)
864 if (Pair.second == InitialPreheader && Pair.first != BI->getParent())
865 Pair.second = HoistCommonSucc;
866 }
867
868 // Now finally clone BI.
869 auto *NewBI =
870 CondBrInst::Create(BI->getCondition(), HoistTrueDest, HoistFalseDest,
871 HoistTarget->getTerminator()->getIterator());
872 HoistTarget->getTerminator()->eraseFromParent();
873 // md_prof should also come from the original branch - since the
874 // condition was hoisted, the branch probabilities shouldn't change.
876 NewBI->copyMetadata(*BI, {LLVMContext::MD_prof});
877 // FIXME: Issue #152767: debug info should also be the same as the
878 // original branch, **if** the user explicitly indicated that.
879 NewBI->setDebugLoc(HoistTarget->getTerminator()->getDebugLoc());
880
881 ++NumClonedBranches;
882
883 assert(CurLoop->getLoopPreheader() &&
884 "Hoisting blocks should not have destroyed preheader");
885 return HoistDestinationMap[BB];
886 }
887};
888} // namespace
889
890/// Walk the specified region of the CFG (defined by all blocks dominated by
891/// the specified block, and that are in the current loop) in depth first
892/// order w.r.t the DominatorTree. This allows us to visit definitions before
893/// uses, allowing us to hoist a loop body in one pass without iteration.
894///
897 TargetLibraryInfo *TLI, Loop *CurLoop,
899 ICFLoopSafetyInfo *SafetyInfo,
901 OptimizationRemarkEmitter *ORE, bool LoopNestMode,
902 bool AllowSpeculation) {
903 // Verify inputs.
904 assert(N != nullptr && AA != nullptr && LI != nullptr && DT != nullptr &&
905 CurLoop != nullptr && SafetyInfo != nullptr &&
906 "Unexpected input to hoistRegion.");
907
908 ControlFlowHoister CFH(LI, DT, CurLoop, MSSAU);
909
910 // Keep track of instructions that have been hoisted, as they may need to be
911 // re-hoisted if they end up not dominating all of their uses.
912 SmallVector<Instruction *, 16> HoistedInstructions;
913
914 // For PHI hoisting to work we need to hoist blocks before their successors.
915 // We can do this by iterating through the blocks in the loop in reverse
916 // post-order.
917 LoopBlocksRPO Worklist(CurLoop);
918 Worklist.perform(LI);
919 bool Changed = false;
920 BasicBlock *Preheader = CurLoop->getLoopPreheader();
921 for (BasicBlock *BB : Worklist) {
922 // Only need to process the contents of this block if it is not part of a
923 // subloop (which would already have been processed).
924 if (!LoopNestMode && inSubLoop(BB, CurLoop, LI))
925 continue;
926
928 // Try hoisting the instruction out to the preheader. We can only do
929 // this if all of the operands of the instruction are loop invariant and
930 // if it is safe to hoist the instruction.
931 // TODO: It may be safe to hoist if we are hoisting to a conditional block
932 // and we have accurately duplicated the control flow from the loop header
933 // to that block.
934 if (CurLoop->hasLoopInvariantOperands(&I) &&
935 canSinkOrHoistInst(I, AA, DT, CurLoop, MSSAU, true, Flags, ORE) &&
936 isSafeToExecuteUnconditionally(I, DT, TLI, CurLoop, SafetyInfo, ORE,
937 Preheader->getTerminator(), AC,
938 AllowSpeculation)) {
939 hoist(I, DT, CurLoop, CFH.getOrCreateHoistedBlock(BB), SafetyInfo,
940 MSSAU, SE, ORE);
941 HoistedInstructions.push_back(&I);
942 Changed = true;
943 continue;
944 }
945
946 if (auto *Ins = dyn_cast<InsertElementInst>(&I))
947 if (hoistInsertPastInsert(Ins, CurLoop, DT,
948 CFH.getOrCreateHoistedBlock(BB), SafetyInfo,
949 MSSAU, SE, ORE, HoistedInstructions)) {
950 Changed = true;
951 continue;
952 }
953
954 // Attempt to remove floating point division out of the loop by
955 // converting it to a reciprocal multiplication.
956 if (I.getOpcode() == Instruction::FDiv && I.hasAllowReciprocal() &&
957 CurLoop->isLoopInvariant(I.getOperand(1))) {
958 auto Divisor = I.getOperand(1);
959 auto One = llvm::ConstantFP::get(Divisor->getType(), 1.0);
960 auto ReciprocalDivisor = BinaryOperator::CreateFDiv(One, Divisor);
961 ReciprocalDivisor->setFastMathFlags(I.getFastMathFlags());
962 SafetyInfo->insertInstructionTo(ReciprocalDivisor, I.getParent());
963 ReciprocalDivisor->insertBefore(I.getIterator());
964 ReciprocalDivisor->setDebugLoc(I.getDebugLoc());
965
966 auto Product =
967 BinaryOperator::CreateFMul(I.getOperand(0), ReciprocalDivisor);
968 Product->setFastMathFlags(I.getFastMathFlags());
969 SafetyInfo->insertInstructionTo(Product, I.getParent());
970 Product->insertAfter(I.getIterator());
971 Product->setDebugLoc(I.getDebugLoc());
972 I.replaceAllUsesWith(Product);
973 eraseInstruction(I, *SafetyInfo, MSSAU);
974
975 hoist(*ReciprocalDivisor, DT, CurLoop, CFH.getOrCreateHoistedBlock(BB),
976 SafetyInfo, MSSAU, SE, ORE);
977 HoistedInstructions.push_back(ReciprocalDivisor);
978 Changed = true;
979 continue;
980 }
981
982 auto IsInvariantStart = [&](Instruction &I) {
983 using namespace PatternMatch;
984 return I.use_empty() &&
986 };
987 auto MustExecuteWithoutWritesBefore = [&](Instruction &I) {
988 return SafetyInfo->isGuaranteedToExecute(I, DT) &&
989 SafetyInfo->doesNotWriteMemoryBefore(I);
990 };
991 if ((IsInvariantStart(I) || isGuard(&I)) &&
992 CurLoop->hasLoopInvariantOperands(&I) &&
993 MustExecuteWithoutWritesBefore(I)) {
994 hoist(I, DT, CurLoop, CFH.getOrCreateHoistedBlock(BB), SafetyInfo,
995 MSSAU, SE, ORE);
996 HoistedInstructions.push_back(&I);
997 Changed = true;
998 continue;
999 }
1000
1001 if (PHINode *PN = dyn_cast<PHINode>(&I)) {
1002 if (CFH.canHoistPHI(PN)) {
1003 // Redirect incoming blocks first to ensure that we create hoisted
1004 // versions of those blocks before we hoist the phi.
1005 for (unsigned int i = 0; i < PN->getNumIncomingValues(); ++i)
1006 PN->setIncomingBlock(
1007 i, CFH.getOrCreateHoistedBlock(PN->getIncomingBlock(i)));
1008 hoist(*PN, DT, CurLoop, CFH.getOrCreateHoistedBlock(BB), SafetyInfo,
1009 MSSAU, SE, ORE);
1010 assert(DT->dominates(PN, BB) && "Conditional PHIs not expected");
1011 Changed = true;
1012 continue;
1013 }
1014 }
1015
1016 // Try to reassociate instructions so that part of computations can be
1017 // done out of loop.
1018 if (hoistArithmetics(I, *CurLoop, *SafetyInfo, MSSAU, AC, DT)) {
1019 Changed = true;
1020 continue;
1021 }
1022
1023 // Remember possibly hoistable branches so we can actually hoist them
1024 // later if needed.
1025 if (CondBrInst *BI = dyn_cast<CondBrInst>(&I))
1026 CFH.registerPossiblyHoistableBranch(BI);
1027 }
1028 }
1029
1030 // If we hoisted instructions to a conditional block they may not dominate
1031 // their uses that weren't hoisted (such as phis where some operands are not
1032 // loop invariant). If so make them unconditional by moving them to their
1033 // immediate dominator. We iterate through the instructions in reverse order
1034 // which ensures that when we rehoist an instruction we rehoist its operands,
1035 // and also keep track of where in the block we are rehoisting to make sure
1036 // that we rehoist instructions before the instructions that use them.
1037 Instruction *HoistPoint = nullptr;
1038 if (ControlFlowHoisting) {
1039 for (Instruction *I : reverse(HoistedInstructions)) {
1040 if (!llvm::all_of(I->uses(),
1041 [&](Use &U) { return DT->dominates(I, U); })) {
1042 BasicBlock *Dominator =
1043 DT->getNode(I->getParent())->getIDom()->getBlock();
1044 if (!HoistPoint || !DT->dominates(HoistPoint->getParent(), Dominator)) {
1045 if (HoistPoint)
1046 assert(DT->dominates(Dominator, HoistPoint->getParent()) &&
1047 "New hoist point expected to dominate old hoist point");
1048 HoistPoint = Dominator->getTerminator();
1049 }
1050 LLVM_DEBUG(dbgs() << "LICM rehoisting to "
1051 << HoistPoint->getParent()->getNameOrAsOperand()
1052 << ": " << *I << "\n");
1053 moveInstructionBefore(*I, HoistPoint->getIterator(), *SafetyInfo, MSSAU,
1054 SE);
1055 HoistPoint = I;
1056 Changed = true;
1057 }
1058 }
1059 }
1060 if (VerifyMemorySSA)
1061 MSSAU.getMemorySSA()->verifyMemorySSA();
1062
1063 // Now that we've finished hoisting make sure that LI and DT are still
1064 // valid.
1065#ifdef EXPENSIVE_CHECKS
1066 if (Changed) {
1067 assert(DT->verify(DominatorTree::VerificationLevel::Fast) &&
1068 "Dominator tree verification failed");
1069 LI->verify();
1070 }
1071#endif
1072
1073 return Changed;
1074}
1075
1076static std::optional<uint64_t>
1078 // Must have constant insertion lane.
1079 auto *InsertedIdxCI = dyn_cast<ConstantInt>(Ins->getOperand(2));
1080 if (!InsertedIdxCI)
1081 return std::nullopt;
1082 auto *VecTy = cast<VectorType>(Ins->getType());
1083
1084 // Avoid hoisting past out of bounds inserts.
1085 if (InsertedIdxCI->isNegative() ||
1086 InsertedIdxCI->getValue().uge(
1087 VecTy->getElementCount().getKnownMinValue()))
1088 return std::nullopt;
1089 return InsertedIdxCI->getValue().getLimitedValue();
1090}
1091
1092static bool
1094 BasicBlock *HoistDest, ICFLoopSafetyInfo *SafetyInfo,
1097 SmallVectorImpl<Instruction *> &HoistedInstructions) {
1098 // Canonicalize:
1099 // %inner = insertelement %base, %variant, C1
1100 // %outer = insertelement %inner, %invariant, C2
1101 // into:
1102 // %outer = insertelement %base, %invariant, C2
1103 // %inner = insertelement %outer, %variant, C1
1104 // so we can hoist %outer
1105
1106 // The instruction we are hoisting must have invariant insertion data
1107 Value *InsertedElt = Ins->getOperand(1);
1108 if (!CurLoop->isLoopInvariant(InsertedElt))
1109 return false;
1110
1111 std::optional<uint64_t> HoistIdx = getConstantInsertionIndex(Ins);
1112 if (!HoistIdx)
1113 return false;
1114
1115 InsertElementInst *Inner = Ins;
1116 while (!CurLoop->isLoopInvariant(Inner->getOperand(0))) {
1117 // If the inner value isn't invariant, check to see if it is another insert
1118 // All instructions in the chain must be in the same basic block
1119 auto *InnerIns = dyn_cast<InsertElementInst>(Inner->getOperand(0));
1120 if (!InnerIns || InnerIns->getParent() != Ins->getParent())
1121 return false;
1122
1123 // Make sure not hoisting past insertions into the same lane
1124 std::optional<uint64_t> InsertIdx = getConstantInsertionIndex(InnerIns);
1125 if (!InsertIdx || *InsertIdx == *HoistIdx)
1126 return false;
1127
1128 // Instruction being hoisted past must only have one use
1129 if (!InnerIns->hasOneUse())
1130 return false;
1131
1132 Inner = InnerIns;
1133 }
1134
1135 // Base case of `insertelement <4 x i8> %invar0, i8 %invar1, i32 2` handled in
1136 // base LICM logic
1137 if (Inner == Ins)
1138 return false;
1139
1140 Ins->replaceAllUsesWith(Ins->getOperand(0));
1141 Ins->moveBefore(Inner->getIterator());
1142 Ins->setOperand(0, Inner->getOperand(0));
1143 Inner->setOperand(0, Ins);
1144 hoist(*Ins, DT, CurLoop, HoistDest, SafetyInfo, MSSAU, SE, ORE);
1145 HoistedInstructions.push_back(Ins);
1146 return true;
1147}
1148
1149// Return true if LI is invariant within scope of the loop. LI is invariant if
1150// CurLoop is dominated by an invariant.start representing the same memory
1151// location and size as the memory location LI loads from, and also the
1152// invariant.start has no uses.
1154 Loop *CurLoop) {
1155 Value *Addr = LI->getPointerOperand();
1156 const DataLayout &DL = LI->getDataLayout();
1157 const TypeSize LocSizeInBits = DL.getTypeSizeInBits(LI->getType());
1158
1159 // It is not currently possible for clang to generate an invariant.start
1160 // intrinsic with scalable vector types because we don't support thread local
1161 // sizeless types and we don't permit sizeless types in structs or classes.
1162 // Furthermore, even if support is added for this in future the intrinsic
1163 // itself is defined to have a size of -1 for variable sized objects. This
1164 // makes it impossible to verify if the intrinsic envelops our region of
1165 // interest. For example, both <vscale x 32 x i8> and <vscale x 16 x i8>
1166 // types would have a -1 parameter, but the former is clearly double the size
1167 // of the latter.
1168 if (LocSizeInBits.isScalable())
1169 return false;
1170
1171 // If we've ended up at a global/constant, bail. We shouldn't be looking at
1172 // uselists for non-local Values in a loop pass.
1173 if (isa<Constant>(Addr))
1174 return false;
1175
1176 unsigned UsesVisited = 0;
1177 // Traverse all uses of the load operand value, to see if invariant.start is
1178 // one of the uses, and whether it dominates the load instruction.
1179 for (auto *U : Addr->users()) {
1180 // Avoid traversing for Load operand with high number of users.
1181 if (++UsesVisited > MaxNumUsesTraversed)
1182 return false;
1184 // If there are escaping uses of invariant.start instruction, the load maybe
1185 // non-invariant.
1186 if (!II || II->getIntrinsicID() != Intrinsic::invariant_start ||
1187 !II->use_empty())
1188 continue;
1189 ConstantInt *InvariantSize = cast<ConstantInt>(II->getArgOperand(0));
1190 // The intrinsic supports having a -1 argument for variable sized objects
1191 // so we should check for that here.
1192 if (InvariantSize->isNegative())
1193 continue;
1194 uint64_t InvariantSizeInBits = InvariantSize->getSExtValue() * 8;
1195 // Confirm the invariant.start location size contains the load operand size
1196 // in bits. Also, the invariant.start should dominate the load, and we
1197 // should not hoist the load out of a loop that contains this dominating
1198 // invariant.start.
1199 if (LocSizeInBits.getFixedValue() <= InvariantSizeInBits &&
1200 DT->properlyDominates(II->getParent(), CurLoop->getHeader()))
1201 return true;
1202 }
1203
1204 return false;
1205}
1206
1207/// Return true if-and-only-if we know how to (mechanically) both hoist and
1208/// sink a given instruction out of a loop. Does not address legality
1209/// concerns such as aliasing or speculation safety.
1220
1221/// Return true if I is the only Instruction with a MemoryAccess in L.
1222static bool isOnlyMemoryAccess(const Instruction *I, const Loop *L,
1223 const MemorySSAUpdater &MSSAU) {
1224 for (auto *BB : L->getBlocks())
1225 if (auto *Accs = MSSAU.getMemorySSA()->getBlockAccesses(BB)) {
1226 int NotAPhi = 0;
1227 for (const auto &Acc : *Accs) {
1228 if (isa<MemoryPhi>(&Acc))
1229 continue;
1230 const auto *MUD = cast<MemoryUseOrDef>(&Acc);
1231 if (MUD->getMemoryInst() != I || NotAPhi++ == 1)
1232 return false;
1233 }
1234 }
1235 return true;
1236}
1237
1239 BatchAAResults &BAA,
1240 SinkAndHoistLICMFlags &Flags,
1241 MemoryUseOrDef *MA) {
1242 // See declaration of SetLicmMssaOptCap for usage details.
1243 if (Flags.tooManyClobberingCalls())
1244 return MA->getDefiningAccess();
1245
1246 MemoryAccess *Source =
1248 Flags.incrementClobberingCalls();
1249 return Source;
1250}
1251
1253 Loop *CurLoop, MemorySSA &MSSA,
1254 bool TargetExecutesOncePerLoop,
1255 SinkAndHoistLICMFlags &Flags,
1257 if (!LI.isUnordered())
1258 return false; // Don't sink/hoist volatile or ordered atomic loads!
1259
1260 // Loads from constant memory are always safe to move, even if they end up
1261 // in the same alias set as something that ends up being modified.
1262 if (!isModSet(AA->getModRefInfoMask(LI.getOperand(0))))
1263 return true;
1264 if (LI.hasMetadata(LLVMContext::MD_invariant_load))
1265 return true;
1266
1267 if (LI.isAtomic() && !TargetExecutesOncePerLoop)
1268 return false; // Don't risk duplicating unordered loads
1269
1270 // This checks for an invariant.start dominating the load.
1271 if (isLoadInvariantInLoop(&LI, DT, CurLoop))
1272 return true;
1273
1274 auto *MU = cast<MemoryUse>(MSSA.getMemoryAccess(&LI));
1275
1276 bool InvariantGroup = LI.hasMetadata(LLVMContext::MD_invariant_group);
1277
1278 bool Invalidated =
1279 pointerInvalidatedByLoop(&MSSA, MU, CurLoop, LI, Flags, InvariantGroup);
1280 // Check loop-invariant address because this may also be a sinkable load
1281 // whose address is not necessarily loop-invariant.
1282 if (ORE && Invalidated && CurLoop->isLoopInvariant(LI.getPointerOperand()))
1283 ORE->emit([&]() {
1285 DEBUG_TYPE, "LoadWithLoopInvariantAddressInvalidated", &LI)
1286 << "failed to move load with loop-invariant address "
1287 "because the loop may invalidate its value";
1288 });
1289
1290 return !Invalidated;
1291}
1292
1294 Loop *CurLoop, MemorySSAUpdater &MSSAU,
1295 bool TargetExecutesOncePerLoop,
1296 SinkAndHoistLICMFlags &Flags,
1298 // If we don't understand the instruction, bail early.
1300 return false;
1301
1302 MemorySSA *MSSA = MSSAU.getMemorySSA();
1303 // Loads have extra constraints we have to verify before we can hoist them.
1304 if (LoadInst *LI = dyn_cast<LoadInst>(&I)) {
1305 return canHoistLoad(*LI, AA, DT, CurLoop, *MSSA, TargetExecutesOncePerLoop,
1306 Flags, ORE);
1307 } else if (CallInst *CI = dyn_cast<CallInst>(&I)) {
1308 // Don't sink calls which can throw.
1309 if (CI->mayThrow())
1310 return false;
1311
1312 // Convergent attribute has been used on operations that involve
1313 // inter-thread communication which results are implicitly affected by the
1314 // enclosing control flows. It is not safe to hoist or sink such operations
1315 // across control flow.
1316 if (CI->isConvergent())
1317 return false;
1318
1319 // FIXME: Current LLVM IR semantics don't work well with coroutines and
1320 // thread local globals. We currently treat getting the address of a thread
1321 // local global as not accessing memory, even though it may not be a
1322 // constant throughout a function with coroutines. Remove this check after
1323 // we better model semantics of thread local globals.
1324 if (CI->getFunction()->isPresplitCoroutine())
1325 return false;
1326
1327 using namespace PatternMatch;
1329 // Assumes don't actually alias anything or throw
1330 return true;
1331
1332 // Handle simple cases by querying alias analysis.
1333 MemoryEffects Behavior = AA->getMemoryEffects(CI);
1334
1335 if (Behavior.doesNotAccessMemory())
1336 return true;
1337 if (Behavior.onlyReadsMemory()) {
1338 // Might have stale MemoryDef for call that was later inferred to be
1339 // read-only.
1340 auto *MU = dyn_cast<MemoryUse>(MSSA->getMemoryAccess(CI));
1341 if (!MU)
1342 return false;
1343
1344 // If we can prove there are no writes to the memory read by the call, we
1345 // can hoist or sink.
1347 MSSA, MU, CurLoop, I, Flags, /*InvariantGroup=*/false);
1348 }
1349
1350 if (Behavior.onlyWritesMemory()) {
1351 // can hoist or sink if there are no conflicting read/writes to the
1352 // memory location written to by the call.
1353 return noConflictingReadWrites(CI, MSSA, AA, CurLoop, Flags);
1354 }
1355
1356 return false;
1357 } else if (auto *FI = dyn_cast<FenceInst>(&I)) {
1358 // Fences alias (most) everything to provide ordering. For the moment,
1359 // just give up if there are any other memory operations in the loop.
1360 return isOnlyMemoryAccess(FI, CurLoop, MSSAU);
1361 } else if (auto *SI = dyn_cast<StoreInst>(&I)) {
1362 if (!SI->isUnordered())
1363 return false; // Don't sink/hoist volatile or ordered atomic store!
1364
1365 // We can only hoist a store that we can prove writes a value which is not
1366 // read or overwritten within the loop. For those cases, we fallback to
1367 // load store promotion instead. TODO: We can extend this to cases where
1368 // there is exactly one write to the location and that write dominates an
1369 // arbitrary number of reads in the loop.
1370 if (isOnlyMemoryAccess(SI, CurLoop, MSSAU))
1371 return true;
1372 return noConflictingReadWrites(SI, MSSA, AA, CurLoop, Flags);
1373 }
1374
1375 assert(!I.mayReadOrWriteMemory() && "unhandled aliasing");
1376
1377 // We've established mechanical ability and aliasing, it's up to the caller
1378 // to check fault safety
1379 return true;
1380}
1381
1382/// Returns true if a PHINode is a trivially replaceable with an
1383/// Instruction.
1384/// This is true when all incoming values are that instruction.
1385/// This pattern occurs most often with LCSSA PHI nodes.
1386///
1387static bool isTriviallyReplaceablePHI(const PHINode &PN, const Instruction &I) {
1388 for (const Value *IncValue : PN.incoming_values())
1389 if (IncValue != &I)
1390 return false;
1391
1392 return true;
1393}
1394
1395/// Return true if the instruction is foldable in the loop.
1396static bool isFoldableInLoop(const Instruction &I, const Loop *CurLoop,
1397 const TargetTransformInfo *TTI) {
1398 if (auto *GEP = dyn_cast<GetElementPtrInst>(&I)) {
1399 InstructionCost CostI =
1400 TTI->getInstructionCost(&I, TargetTransformInfo::TCK_SizeAndLatency);
1401 if (CostI != TargetTransformInfo::TCC_Free)
1402 return false;
1403 // For a GEP, we cannot simply use getInstructionCost because currently
1404 // it optimistically assumes that a GEP will fold into addressing mode
1405 // regardless of its users.
1406 const BasicBlock *BB = GEP->getParent();
1407 for (const User *U : GEP->users()) {
1408 const Instruction *UI = cast<Instruction>(U);
1409 if (CurLoop->contains(UI) &&
1410 (BB != UI->getParent() ||
1411 (!isa<StoreInst>(UI) && !isa<LoadInst>(UI))))
1412 return false;
1413 }
1414 return true;
1415 }
1416
1417 return false;
1418}
1419
1420/// Return true if the only users of this instruction are outside of
1421/// the loop. If this is true, we can sink the instruction to the exit
1422/// blocks of the loop.
1423///
1424/// We also return true if the instruction could be folded away in lowering.
1425/// (e.g., a GEP can be folded into a load as an addressing mode in the loop).
1426static bool isNotUsedOrFoldableInLoop(const Instruction &I, const Loop *CurLoop,
1427 const LoopSafetyInfo *SafetyInfo,
1429 bool &FoldableInLoop, bool LoopNestMode) {
1430 const auto &BlockColors = SafetyInfo->getBlockColors();
1431 bool IsFoldable = isFoldableInLoop(I, CurLoop, TTI);
1432 for (const User *U : I.users()) {
1433 const Instruction *UI = cast<Instruction>(U);
1434 if (const PHINode *PN = dyn_cast<PHINode>(UI)) {
1435 const BasicBlock *BB = PN->getParent();
1436 // We cannot sink uses in catchswitches.
1438 return false;
1439
1440 // We need to sink a callsite to a unique funclet. Avoid sinking if the
1441 // phi use is too muddled.
1442 if (isa<CallInst>(I))
1443 if (!BlockColors.empty() &&
1444 BlockColors.find(const_cast<BasicBlock *>(BB))->second.size() != 1)
1445 return false;
1446
1447 if (LoopNestMode) {
1448 while (isa<PHINode>(UI) && UI->hasOneUser() &&
1449 UI->getNumOperands() == 1) {
1450 if (!CurLoop->contains(UI))
1451 break;
1452 UI = cast<Instruction>(UI->user_back());
1453 }
1454 }
1455 }
1456
1457 if (CurLoop->contains(UI)) {
1458 if (IsFoldable) {
1459 FoldableInLoop = true;
1460 continue;
1461 }
1462 return false;
1463 }
1464 }
1465 return true;
1466}
1467
1469 Instruction &I, BasicBlock &ExitBlock, PHINode &PN, const LoopInfo *LI,
1470 const LoopSafetyInfo *SafetyInfo, MemorySSAUpdater &MSSAU) {
1471 Instruction *New;
1472 if (auto *CI = dyn_cast<CallInst>(&I)) {
1473 const auto &BlockColors = SafetyInfo->getBlockColors();
1474
1475 // Sinking call-sites need to be handled differently from other
1476 // instructions. The cloned call-site needs a funclet bundle operand
1477 // appropriate for its location in the CFG.
1479 for (unsigned BundleIdx = 0, BundleEnd = CI->getNumOperandBundles();
1480 BundleIdx != BundleEnd; ++BundleIdx) {
1481 OperandBundleUse Bundle = CI->getOperandBundleAt(BundleIdx);
1482 if (Bundle.getTagID() == LLVMContext::OB_funclet)
1483 continue;
1484
1485 OpBundles.emplace_back(Bundle);
1486 }
1487
1488 if (!BlockColors.empty()) {
1489 const ColorVector &CV = BlockColors.find(&ExitBlock)->second;
1490 assert(CV.size() == 1 && "non-unique color for exit block!");
1491 BasicBlock *BBColor = CV.front();
1492 BasicBlock::iterator EHPad = BBColor->getFirstNonPHIIt();
1493 if (EHPad->isEHPad())
1494 OpBundles.emplace_back("funclet", &*EHPad);
1495 }
1496
1497 New = CallInst::Create(CI, OpBundles);
1498 New->copyMetadata(*CI);
1499 } else {
1500 New = I.clone();
1501 }
1502
1503 New->insertInto(&ExitBlock, ExitBlock.getFirstInsertionPt());
1504 if (!I.getName().empty())
1505 New->setName(I.getName() + ".le");
1506
1507 if (MSSAU.getMemorySSA()->getMemoryAccess(&I)) {
1508 // Create a new MemoryAccess and let MemorySSA set its defining access.
1509 // After running some passes, MemorySSA might be outdated, and the
1510 // instruction `I` may have become a non-memory touching instruction.
1511 MemoryAccess *NewMemAcc = MSSAU.createMemoryAccessInBB(
1512 New, nullptr, New->getParent(), MemorySSA::Beginning,
1513 /*CreationMustSucceed=*/false);
1514 if (NewMemAcc) {
1515 if (auto *MemDef = dyn_cast<MemoryDef>(NewMemAcc))
1516 MSSAU.insertDef(MemDef, /*RenameUses=*/true);
1517 else {
1518 auto *MemUse = cast<MemoryUse>(NewMemAcc);
1519 MSSAU.insertUse(MemUse, /*RenameUses=*/true);
1520 }
1521 }
1522 }
1523
1524 // Build LCSSA PHI nodes for any in-loop operands (if legal). Note that
1525 // this is particularly cheap because we can rip off the PHI node that we're
1526 // replacing for the number and blocks of the predecessors.
1527 // OPT: If this shows up in a profile, we can instead finish sinking all
1528 // invariant instructions, and then walk their operands to re-establish
1529 // LCSSA. That will eliminate creating PHI nodes just to nuke them when
1530 // sinking bottom-up.
1531 for (Use &Op : New->operands())
1532 if (LI->wouldBeOutOfLoopUseRequiringLCSSA(Op.get(), PN.getParent())) {
1533 auto *OInst = cast<Instruction>(Op.get());
1534 PHINode *OpPN =
1535 PHINode::Create(OInst->getType(), PN.getNumIncomingValues(),
1536 OInst->getName() + ".lcssa");
1537 OpPN->insertBefore(ExitBlock.begin());
1538 for (unsigned i = 0, e = PN.getNumIncomingValues(); i != e; ++i)
1539 OpPN->addIncoming(OInst, PN.getIncomingBlock(i));
1540 Op = OpPN;
1541 }
1542 return New;
1543}
1544
1546 MemorySSAUpdater &MSSAU) {
1547 MSSAU.removeMemoryAccess(&I);
1548 SafetyInfo.removeInstruction(&I);
1549 I.eraseFromParent();
1550}
1551
1553 ICFLoopSafetyInfo &SafetyInfo,
1554 MemorySSAUpdater &MSSAU,
1555 ScalarEvolution *SE) {
1556 SafetyInfo.removeInstruction(&I);
1557 SafetyInfo.insertInstructionTo(&I, Dest->getParent());
1558 I.moveBefore(*Dest->getParent(), Dest);
1560 MSSAU.getMemorySSA()->getMemoryAccess(&I)))
1561 MSSAU.moveToPlace(OldMemAcc, Dest->getParent(),
1563 if (SE)
1565}
1566
1568 PHINode *TPN, Instruction *I, LoopInfo *LI,
1570 const LoopSafetyInfo *SafetyInfo, const Loop *CurLoop,
1571 MemorySSAUpdater &MSSAU) {
1573 "Expect only trivially replaceable PHI");
1574 BasicBlock *ExitBlock = TPN->getParent();
1575 auto [It, Inserted] = SunkCopies.try_emplace(ExitBlock);
1576 if (Inserted)
1577 It->second = cloneInstructionInExitBlock(*I, *ExitBlock, *TPN, LI,
1578 SafetyInfo, MSSAU);
1579 return It->second;
1580}
1581
1582static bool canSplitPredecessors(PHINode *PN, LoopSafetyInfo *SafetyInfo) {
1583 BasicBlock *BB = PN->getParent();
1584 if (!BB->canSplitPredecessors())
1585 return false;
1586 // It's not impossible to split EHPad blocks, but if BlockColors already exist
1587 // it require updating BlockColors for all offspring blocks accordingly. By
1588 // skipping such corner case, we can make updating BlockColors after splitting
1589 // predecessor fairly simple.
1590 if (!SafetyInfo->getBlockColors().empty() &&
1591 BB->getFirstNonPHIIt()->isEHPad())
1592 return false;
1593 for (BasicBlock *BBPred : predecessors(BB)) {
1594 if (isa<IndirectBrInst>(BBPred->getTerminator()))
1595 return false;
1596 }
1597 return true;
1598}
1599
1601 LoopInfo *LI, const Loop *CurLoop,
1602 LoopSafetyInfo *SafetyInfo,
1603 MemorySSAUpdater *MSSAU) {
1604#ifndef NDEBUG
1606 CurLoop->getUniqueExitBlocks(ExitBlocks);
1607 SmallPtrSet<BasicBlock *, 32> ExitBlockSet(llvm::from_range, ExitBlocks);
1608#endif
1609 BasicBlock *ExitBB = PN->getParent();
1610 assert(ExitBlockSet.count(ExitBB) && "Expect the PHI is in an exit block.");
1611
1612 // Split predecessors of the loop exit to make instructions in the loop are
1613 // exposed to exit blocks through trivially replaceable PHIs while keeping the
1614 // loop in the canonical form where each predecessor of each exit block should
1615 // be contained within the loop. For example, this will convert the loop below
1616 // from
1617 //
1618 // LB1:
1619 // %v1 =
1620 // br %LE, %LB2
1621 // LB2:
1622 // %v2 =
1623 // br %LE, %LB1
1624 // LE:
1625 // %p = phi [%v1, %LB1], [%v2, %LB2] <-- non-trivially replaceable
1626 //
1627 // to
1628 //
1629 // LB1:
1630 // %v1 =
1631 // br %LE.split, %LB2
1632 // LB2:
1633 // %v2 =
1634 // br %LE.split2, %LB1
1635 // LE.split:
1636 // %p1 = phi [%v1, %LB1] <-- trivially replaceable
1637 // br %LE
1638 // LE.split2:
1639 // %p2 = phi [%v2, %LB2] <-- trivially replaceable
1640 // br %LE
1641 // LE:
1642 // %p = phi [%p1, %LE.split], [%p2, %LE.split2]
1643 //
1644 const auto &BlockColors = SafetyInfo->getBlockColors();
1645 SmallSetVector<BasicBlock *, 8> PredBBs(pred_begin(ExitBB), pred_end(ExitBB));
1646 DomTreeUpdater DTU(DT, DomTreeUpdater::UpdateStrategy::Lazy);
1647 while (!PredBBs.empty()) {
1648 BasicBlock *PredBB = *PredBBs.begin();
1649 assert(CurLoop->contains(PredBB) &&
1650 "Expect all predecessors are in the loop");
1651 if (PN->getBasicBlockIndex(PredBB) >= 0) {
1653 ExitBB, PredBB, ".split.loop.exit", &DTU, LI, MSSAU, true);
1654 // Since we do not allow splitting EH-block with BlockColors in
1655 // canSplitPredecessors(), we can simply assign predecessor's color to
1656 // the new block.
1657 if (!BlockColors.empty())
1658 // Grab a reference to the ColorVector to be inserted before getting the
1659 // reference to the vector we are copying because inserting the new
1660 // element in BlockColors might cause the map to be reallocated.
1661 SafetyInfo->copyColors(NewPred, PredBB);
1662 }
1663 PredBBs.remove(PredBB);
1664 }
1665}
1666
1667/// When an instruction is found to only be used outside of the loop, this
1668/// function moves it to the exit blocks and patches up SSA form as needed.
1669/// This method is guaranteed to remove the original instruction from its
1670/// position, and may either delete it or move it to outside of the loop.
1671///
1672static bool sink(Instruction &I, LoopInfo *LI, DominatorTree *DT,
1673 const Loop *CurLoop, ICFLoopSafetyInfo *SafetyInfo,
1675 bool Changed = false;
1676 LLVM_DEBUG(dbgs() << "LICM sinking instruction: " << I << "\n");
1677
1678 // Iterate over users to be ready for actual sinking. Replace users via
1679 // unreachable blocks with undef and make all user PHIs trivially replaceable.
1680 SmallPtrSet<Instruction *, 8> VisitedUsers;
1681 for (Value::user_iterator UI = I.user_begin(), UE = I.user_end(); UI != UE;) {
1682 auto *User = cast<Instruction>(*UI);
1683 Use &U = UI.getUse();
1684 ++UI;
1685
1686 if (VisitedUsers.count(User) || CurLoop->contains(User))
1687 continue;
1688
1689 if (!DT->isReachableFromEntry(User->getParent())) {
1690 U = PoisonValue::get(I.getType());
1691 Changed = true;
1692 continue;
1693 }
1694
1695 // The user must be a PHI node.
1696 PHINode *PN = cast<PHINode>(User);
1697
1698 // Surprisingly, instructions can be used outside of loops without any
1699 // exits. This can only happen in PHI nodes if the incoming block is
1700 // unreachable.
1701 BasicBlock *BB = PN->getIncomingBlock(U);
1702 if (!DT->isReachableFromEntry(BB)) {
1703 U = PoisonValue::get(I.getType());
1704 Changed = true;
1705 continue;
1706 }
1707
1708 VisitedUsers.insert(PN);
1709 if (isTriviallyReplaceablePHI(*PN, I))
1710 continue;
1711
1712 if (!canSplitPredecessors(PN, SafetyInfo))
1713 return Changed;
1714
1715 // Split predecessors of the PHI so that we can make users trivially
1716 // replaceable.
1717 splitPredecessorsOfLoopExit(PN, DT, LI, CurLoop, SafetyInfo, &MSSAU);
1718
1719 // Should rebuild the iterators, as they may be invalidated by
1720 // splitPredecessorsOfLoopExit().
1721 UI = I.user_begin();
1722 UE = I.user_end();
1723 }
1724
1725 if (VisitedUsers.empty())
1726 return Changed;
1727
1728 ORE->emit([&]() {
1729 return OptimizationRemark(DEBUG_TYPE, "InstSunk", &I)
1730 << "sinking " << ore::NV("Inst", &I);
1731 });
1732 if (isa<LoadInst>(I))
1733 ++NumMovedLoads;
1734 else if (isa<CallInst>(I))
1735 ++NumMovedCalls;
1736 ++NumSunk;
1737
1738#ifndef NDEBUG
1740 CurLoop->getUniqueExitBlocks(ExitBlocks);
1741 SmallPtrSet<BasicBlock *, 32> ExitBlockSet(llvm::from_range, ExitBlocks);
1742#endif
1743
1744 // Clones of this instruction. Don't create more than one per exit block!
1746
1747 // If this instruction is only used outside of the loop, then all users are
1748 // PHI nodes in exit blocks due to LCSSA form. Just RAUW them with clones of
1749 // the instruction.
1750 // First check if I is worth sinking for all uses. Sink only when it is worth
1751 // across all uses.
1752 SmallSetVector<User*, 8> Users(I.user_begin(), I.user_end());
1753 for (auto *UI : Users) {
1754 auto *User = cast<Instruction>(UI);
1755
1756 if (CurLoop->contains(User))
1757 continue;
1758
1759 PHINode *PN = cast<PHINode>(User);
1760 assert(ExitBlockSet.count(PN->getParent()) &&
1761 "The LCSSA PHI is not in an exit block!");
1762
1763 // The PHI must be trivially replaceable.
1765 PN, &I, LI, SunkCopies, SafetyInfo, CurLoop, MSSAU);
1766 // As we sink the instruction out of the BB, drop its debug location.
1767 New->dropLocation();
1768 PN->replaceAllUsesWith(New);
1769 eraseInstruction(*PN, *SafetyInfo, MSSAU);
1770 Changed = true;
1771 }
1772 return Changed;
1773}
1774
1775/// When an instruction is found to only use loop invariant operands that
1776/// is safe to hoist, this instruction is called to do the dirty work.
1777///
1778static void hoist(Instruction &I, const DominatorTree *DT, const Loop *CurLoop,
1779 BasicBlock *Dest, ICFLoopSafetyInfo *SafetyInfo,
1782 LLVM_DEBUG(dbgs() << "LICM hoisting to " << Dest->getNameOrAsOperand() << ": "
1783 << I << "\n");
1784 ORE->emit([&]() {
1785 return OptimizationRemark(DEBUG_TYPE, "Hoisted", &I) << "hoisting "
1786 << ore::NV("Inst", &I);
1787 });
1788
1789 // Metadata can be dependent on conditions we are hoisting above.
1790 // Conservatively strip all metadata on the instruction unless we were
1791 // guaranteed to execute I if we entered the loop, in which case the metadata
1792 // is valid in the loop preheader.
1793 // Similarly, If I is a call and it is not guaranteed to execute in the loop,
1794 // then moving to the preheader means we should strip attributes on the call
1795 // that can cause UB since we may be hoisting above conditions that allowed
1796 // inferring those attributes. They may not be valid at the preheader.
1797 if ((I.hasMetadataOtherThanDebugLoc() || isa<CallInst>(I)) &&
1798 // The check on hasMetadataOtherThanDebugLoc is to prevent us from burning
1799 // time in isGuaranteedToExecute if we don't actually have anything to
1800 // drop. It is a compile time optimization, not required for correctness.
1801 !SafetyInfo->isGuaranteedToExecute(I, DT)) {
1802 I.dropUBImplyingAttrsAndMetadata();
1803 }
1804
1805 if (isa<PHINode>(I))
1806 // Move the new node to the end of the phi list in the destination block.
1807 moveInstructionBefore(I, Dest->getFirstNonPHIIt(), *SafetyInfo, MSSAU, SE);
1808 else
1809 // Move the new node to the destination block, before its terminator.
1810 moveInstructionBefore(I, Dest->getTerminator()->getIterator(), *SafetyInfo,
1811 MSSAU, SE);
1812
1813 I.updateLocationAfterHoist();
1814
1815 if (isa<LoadInst>(I))
1816 ++NumMovedLoads;
1817 else if (isa<CallInst>(I))
1818 ++NumMovedCalls;
1819 ++NumHoisted;
1820}
1821
1822/// Only sink or hoist an instruction if it is not a trapping instruction,
1823/// or if the instruction is known not to trap when moved to the preheader.
1824/// or if it is a trapping instruction and is guaranteed to execute.
1826 Instruction &Inst, const DominatorTree *DT, const TargetLibraryInfo *TLI,
1827 const Loop *CurLoop, const LoopSafetyInfo *SafetyInfo,
1828 OptimizationRemarkEmitter *ORE, const Instruction *CtxI,
1829 AssumptionCache *AC, bool AllowSpeculation) {
1830 if (AllowSpeculation &&
1831 isSafeToSpeculativelyExecute(&Inst, CtxI, AC, DT, TLI))
1832 return true;
1833
1834 bool GuaranteedToExecute = SafetyInfo->isGuaranteedToExecute(Inst, DT);
1835
1836 if (!GuaranteedToExecute) {
1837 auto *LI = dyn_cast<LoadInst>(&Inst);
1838 if (LI && CurLoop->isLoopInvariant(LI->getPointerOperand()))
1839 ORE->emit([&]() {
1841 DEBUG_TYPE, "LoadWithLoopInvariantAddressCondExecuted", LI)
1842 << "failed to hoist load with loop-invariant address "
1843 "because load is conditionally executed";
1844 });
1845 }
1846
1847 return GuaranteedToExecute;
1848}
1849
1850namespace {
1851class LoopPromoter : public LoadAndStorePromoter {
1852 Value *SomePtr; // Designated pointer to store to.
1853 SmallVectorImpl<BasicBlock *> &LoopExitBlocks;
1854 SmallVectorImpl<BasicBlock::iterator> &LoopInsertPts;
1855 SmallVectorImpl<MemoryAccess *> &MSSAInsertPts;
1856 PredIteratorCache &PredCache;
1857 MemorySSAUpdater &MSSAU;
1858 LoopInfo &LI;
1859 DebugLoc DL;
1861 bool UnorderedAtomic;
1862 AAMDNodes AATags;
1863 ICFLoopSafetyInfo &SafetyInfo;
1864 bool CanInsertStoresInExitBlocks;
1866
1867 // We're about to add a use of V in a loop exit block. Insert an LCSSA phi
1868 // (if legal) if doing so would add an out-of-loop use to an instruction
1869 // defined in-loop.
1870 Value *maybeInsertLCSSAPHI(Value *V, BasicBlock *BB) const {
1871 if (!LI.wouldBeOutOfLoopUseRequiringLCSSA(V, BB))
1872 return V;
1873
1875 // We need to create an LCSSA PHI node for the incoming value and
1876 // store that.
1877 PHINode *PN = PHINode::Create(I->getType(), PredCache.size(BB),
1878 I->getName() + ".lcssa");
1879 PN->insertBefore(BB->begin());
1880 for (BasicBlock *Pred : PredCache.get(BB))
1881 PN->addIncoming(I, Pred);
1882 return PN;
1883 }
1884
1885public:
1886 LoopPromoter(Value *SP, ArrayRef<const Instruction *> Insts, SSAUpdater &S,
1887 SmallVectorImpl<BasicBlock *> &LEB,
1888 SmallVectorImpl<BasicBlock::iterator> &LIP,
1889 SmallVectorImpl<MemoryAccess *> &MSSAIP, PredIteratorCache &PIC,
1890 MemorySSAUpdater &MSSAU, LoopInfo &li, DebugLoc dl,
1891 Align Alignment, bool UnorderedAtomic, const AAMDNodes &AATags,
1892 ICFLoopSafetyInfo &SafetyInfo, bool CanInsertStoresInExitBlocks)
1893 : LoadAndStorePromoter(Insts, S), SomePtr(SP), LoopExitBlocks(LEB),
1894 LoopInsertPts(LIP), MSSAInsertPts(MSSAIP), PredCache(PIC), MSSAU(MSSAU),
1895 LI(li), DL(std::move(dl)), Alignment(Alignment),
1896 UnorderedAtomic(UnorderedAtomic), AATags(AATags),
1897 SafetyInfo(SafetyInfo),
1898 CanInsertStoresInExitBlocks(CanInsertStoresInExitBlocks), Uses(Insts) {}
1899
1900 void insertStoresInLoopExitBlocks() {
1901 // Insert stores after in the loop exit blocks. Each exit block gets a
1902 // store of the live-out values that feed them. Since we've already told
1903 // the SSA updater about the defs in the loop and the preheader
1904 // definition, it is all set and we can start using it.
1905 DIAssignID *NewID = nullptr;
1906 for (unsigned i = 0, e = LoopExitBlocks.size(); i != e; ++i) {
1907 BasicBlock *ExitBlock = LoopExitBlocks[i];
1908 Value *LiveInValue = SSA.GetValueInMiddleOfBlock(ExitBlock);
1909 LiveInValue = maybeInsertLCSSAPHI(LiveInValue, ExitBlock);
1910 Value *Ptr = maybeInsertLCSSAPHI(SomePtr, ExitBlock);
1911 BasicBlock::iterator InsertPos = LoopInsertPts[i];
1912 StoreInst *NewSI = new StoreInst(LiveInValue, Ptr, InsertPos);
1913 if (UnorderedAtomic)
1914 NewSI->setOrdering(AtomicOrdering::Unordered);
1915 NewSI->setAlignment(Alignment);
1916 NewSI->setDebugLoc(DL);
1917 // Attach DIAssignID metadata to the new store, generating it on the
1918 // first loop iteration.
1919 if (i == 0) {
1920 // NewSI will have its DIAssignID set here if there are any stores in
1921 // Uses with a DIAssignID attachment. This merged ID will then be
1922 // attached to the other inserted stores (in the branch below).
1923 NewSI->mergeDIAssignID(Uses);
1925 NewSI->getMetadata(LLVMContext::MD_DIAssignID));
1926 } else {
1927 // Attach the DIAssignID (or nullptr) merged from Uses in the branch
1928 // above.
1929 NewSI->setMetadata(LLVMContext::MD_DIAssignID, NewID);
1930 }
1931
1932 if (AATags)
1933 NewSI->setAAMetadata(AATags);
1934
1935 MemoryAccess *MSSAInsertPoint = MSSAInsertPts[i];
1936 MemoryAccess *NewMemAcc;
1937 if (!MSSAInsertPoint) {
1938 NewMemAcc = MSSAU.createMemoryAccessInBB(
1939 NewSI, nullptr, NewSI->getParent(), MemorySSA::Beginning);
1940 } else {
1941 NewMemAcc =
1942 MSSAU.createMemoryAccessAfter(NewSI, nullptr, MSSAInsertPoint);
1943 }
1944 MSSAInsertPts[i] = NewMemAcc;
1945 MSSAU.insertDef(cast<MemoryDef>(NewMemAcc), true);
1946 // FIXME: true for safety, false may still be correct.
1947 }
1948 }
1949
1950 void doExtraRewritesBeforeFinalDeletion() override {
1951 if (CanInsertStoresInExitBlocks)
1952 insertStoresInLoopExitBlocks();
1953 }
1954
1955 void instructionDeleted(Instruction *I) const override {
1956 SafetyInfo.removeInstruction(I);
1957 MSSAU.removeMemoryAccess(I);
1958 }
1959
1960 bool shouldDelete(Instruction *I) const override {
1961 if (isa<StoreInst>(I))
1962 return CanInsertStoresInExitBlocks;
1963 return true;
1964 }
1965};
1966
1967bool isNotCapturedBeforeOrInLoop(const Value *V, const Loop *L,
1968 DominatorTree *DT) {
1969 // We can perform the captured-before check against any instruction in the
1970 // loop header, as the loop header is reachable from any instruction inside
1971 // the loop.
1972 // TODO: ReturnCaptures=true shouldn't be necessary here.
1974 V, /*ReturnCaptures=*/true, L->getHeader()->getTerminator(), DT,
1975 /*IncludeI=*/false, CaptureComponents::Provenance));
1976}
1977
1978/// Return true if we can prove that a caller cannot inspect the object if an
1979/// unwind occurs inside the loop.
1980bool isNotVisibleOnUnwindInLoop(const Value *Object, const Loop *L,
1981 DominatorTree *DT) {
1982 bool RequiresNoCaptureBeforeUnwind;
1983 if (!isNotVisibleOnUnwind(Object, RequiresNoCaptureBeforeUnwind))
1984 return false;
1985
1986 return !RequiresNoCaptureBeforeUnwind ||
1987 isNotCapturedBeforeOrInLoop(Object, L, DT);
1988}
1989
1990bool isThreadLocalObject(const Value *Object, const Loop *L, DominatorTree *DT,
1992 // The object must be function-local to start with, and then not captured
1993 // before/in the loop.
1994 return (isIdentifiedFunctionLocal(Object) &&
1995 isNotCapturedBeforeOrInLoop(Object, L, DT)) ||
1996 (TTI->isSingleThreaded() || SingleThread);
1997}
1998
1999} // namespace
2000
2001/// Try to promote memory values to scalars by sinking stores out of the
2002/// loop and moving loads to before the loop. We do this by looping over
2003/// the stores in the loop, looking for stores to Must pointers which are
2004/// loop invariant.
2005///
2007 const SmallSetVector<Value *, 8> &PointerMustAliases,
2012 const TargetLibraryInfo *TLI, TargetTransformInfo *TTI, Loop *CurLoop,
2013 MemorySSAUpdater &MSSAU, ICFLoopSafetyInfo *SafetyInfo,
2014 OptimizationRemarkEmitter *ORE, bool AllowSpeculation,
2015 bool HasReadsOutsideSet) {
2016 // Verify inputs.
2017 assert(LI != nullptr && DT != nullptr && CurLoop != nullptr &&
2018 SafetyInfo != nullptr &&
2019 "Unexpected Input to promoteLoopAccessesToScalars");
2020
2021 LLVM_DEBUG({
2022 dbgs() << "Trying to promote set of must-aliased pointers:\n";
2023 for (Value *Ptr : PointerMustAliases)
2024 dbgs() << " " << *Ptr << "\n";
2025 });
2026 ++NumPromotionCandidates;
2027
2028 Value *SomePtr = *PointerMustAliases.begin();
2029 BasicBlock *Preheader = CurLoop->getLoopPreheader();
2030
2031 // It is not safe to promote a load/store from the loop if the load/store is
2032 // conditional. For example, turning:
2033 //
2034 // for () { if (c) *P += 1; }
2035 //
2036 // into:
2037 //
2038 // tmp = *P; for () { if (c) tmp +=1; } *P = tmp;
2039 //
2040 // is not safe, because *P may only be valid to access if 'c' is true.
2041 //
2042 // The safety property divides into two parts:
2043 // p1) The memory may not be dereferenceable on entry to the loop. In this
2044 // case, we can't insert the required load in the preheader.
2045 // p2) The memory model does not allow us to insert a store along any dynamic
2046 // path which did not originally have one.
2047 //
2048 // If at least one store is guaranteed to execute, both properties are
2049 // satisfied, and promotion is legal.
2050 //
2051 // This, however, is not a necessary condition. Even if no store/load is
2052 // guaranteed to execute, we can still establish these properties.
2053 // We can establish (p1) by proving that hoisting the load into the preheader
2054 // is safe (i.e. proving dereferenceability on all paths through the loop). We
2055 // can use any access within the alias set to prove dereferenceability,
2056 // since they're all must alias.
2057 //
2058 // There are two ways establish (p2):
2059 // a) Prove the location is thread-local. In this case the memory model
2060 // requirement does not apply, and stores are safe to insert.
2061 // b) Prove a store dominates every exit block. In this case, if an exit
2062 // blocks is reached, the original dynamic path would have taken us through
2063 // the store, so inserting a store into the exit block is safe. Note that this
2064 // is different from the store being guaranteed to execute. For instance,
2065 // if an exception is thrown on the first iteration of the loop, the original
2066 // store is never executed, but the exit blocks are not executed either.
2067
2068 bool DereferenceableInPH = false;
2069 bool StoreIsGuaranteedToExecute = false;
2070 bool LoadIsGuaranteedToExecute = false;
2071 bool FoundLoadToPromote = false;
2072
2073 // Goes from Unknown to either Safe or Unsafe, but can't switch between them.
2074 enum {
2075 StoreSafe,
2076 StoreUnsafe,
2077 StoreSafetyUnknown,
2078 } StoreSafety = StoreSafetyUnknown;
2079
2081
2082 // We start with an alignment of one and try to find instructions that allow
2083 // us to prove better alignment.
2084 Align Alignment;
2085 // Keep track of which types of access we see
2086 bool SawUnorderedAtomic = false;
2087 bool SawNotAtomic = false;
2088 AAMDNodes AATags;
2089
2090 const DataLayout &MDL = Preheader->getDataLayout();
2091
2092 // If there are reads outside the promoted set, then promoting stores is
2093 // definitely not safe.
2094 if (HasReadsOutsideSet)
2095 StoreSafety = StoreUnsafe;
2096
2097 if (StoreSafety == StoreSafetyUnknown && SafetyInfo->anyBlockMayThrow()) {
2098 // If a loop can throw, we have to insert a store along each unwind edge.
2099 // That said, we can't actually make the unwind edge explicit. Therefore,
2100 // we have to prove that the store is dead along the unwind edge. We do
2101 // this by proving that the caller can't have a reference to the object
2102 // after return and thus can't possibly load from the object.
2103 Value *Object = getUnderlyingObject(SomePtr);
2104 if (!isNotVisibleOnUnwindInLoop(Object, CurLoop, DT))
2105 StoreSafety = StoreUnsafe;
2106 }
2107
2108 // Check that all accesses to pointers in the alias set use the same type.
2109 // We cannot (yet) promote a memory location that is loaded and stored in
2110 // different sizes. While we are at it, collect alignment and AA info.
2111 Type *AccessTy = nullptr;
2112 for (Value *ASIV : PointerMustAliases) {
2113 for (Use &U : ASIV->uses()) {
2114 // Ignore instructions that are outside the loop.
2115 Instruction *UI = dyn_cast<Instruction>(U.getUser());
2116 if (!UI || !CurLoop->contains(UI))
2117 continue;
2118
2119 // If there is an non-load/store instruction in the loop, we can't promote
2120 // it.
2121 if (LoadInst *Load = dyn_cast<LoadInst>(UI)) {
2122 if (!Load->isUnordered())
2123 return false;
2124
2125 SawUnorderedAtomic |= Load->isAtomic();
2126 SawNotAtomic |= !Load->isAtomic();
2127 FoundLoadToPromote = true;
2128
2129 Align InstAlignment = Load->getAlign();
2130
2131 if (!LoadIsGuaranteedToExecute)
2132 LoadIsGuaranteedToExecute =
2133 SafetyInfo->isGuaranteedToExecute(*UI, DT);
2134
2135 // Note that proving a load safe to speculate requires proving
2136 // sufficient alignment at the target location. Proving it guaranteed
2137 // to execute does as well. Thus we can increase our guaranteed
2138 // alignment as well.
2139 if (!DereferenceableInPH || (InstAlignment > Alignment))
2141 *Load, DT, TLI, CurLoop, SafetyInfo, ORE,
2142 Preheader->getTerminator(), AC, AllowSpeculation)) {
2143 DereferenceableInPH = true;
2144 Alignment = std::max(Alignment, InstAlignment);
2145 }
2146 } else if (const StoreInst *Store = dyn_cast<StoreInst>(UI)) {
2147 // Stores *of* the pointer are not interesting, only stores *to* the
2148 // pointer.
2149 if (U.getOperandNo() != StoreInst::getPointerOperandIndex())
2150 continue;
2151 if (!Store->isUnordered())
2152 return false;
2153
2154 SawUnorderedAtomic |= Store->isAtomic();
2155 SawNotAtomic |= !Store->isAtomic();
2156
2157 // If the store is guaranteed to execute, both properties are satisfied.
2158 // We may want to check if a store is guaranteed to execute even if we
2159 // already know that promotion is safe, since it may have higher
2160 // alignment than any other guaranteed stores, in which case we can
2161 // raise the alignment on the promoted store.
2162 Align InstAlignment = Store->getAlign();
2163 bool GuaranteedToExecute = SafetyInfo->isGuaranteedToExecute(*UI, DT);
2164 StoreIsGuaranteedToExecute |= GuaranteedToExecute;
2165 if (GuaranteedToExecute) {
2166 DereferenceableInPH = true;
2167 if (StoreSafety == StoreSafetyUnknown)
2168 StoreSafety = StoreSafe;
2169 Alignment = std::max(Alignment, InstAlignment);
2170 }
2171
2172 // If a store dominates all exit blocks, it is safe to sink.
2173 // As explained above, if an exit block was executed, a dominating
2174 // store must have been executed at least once, so we are not
2175 // introducing stores on paths that did not have them.
2176 // Note that this only looks at explicit exit blocks. If we ever
2177 // start sinking stores into unwind edges (see above), this will break.
2178 if (StoreSafety == StoreSafetyUnknown &&
2179 llvm::all_of(ExitBlocks, [&](BasicBlock *Exit) {
2180 return DT->dominates(Store->getParent(), Exit);
2181 }))
2182 StoreSafety = StoreSafe;
2183
2184 // If the store is not guaranteed to execute, we may still get
2185 // deref info through it.
2186 if (!DereferenceableInPH) {
2187 DereferenceableInPH = isDereferenceableAndAlignedPointer(
2188 Store->getPointerOperand(), Store->getValueOperand()->getType(),
2189 Store->getAlign(),
2190 SimplifyQuery(MDL, TLI, DT, AC, Preheader->getTerminator()));
2191 }
2192 } else
2193 continue; // Not a load or store.
2194
2195 if (!AccessTy)
2196 AccessTy = getLoadStoreType(UI);
2197 else if (AccessTy != getLoadStoreType(UI))
2198 return false;
2199
2200 // Merge the AA tags.
2201 if (LoopUses.empty()) {
2202 // On the first load/store, just take its AA tags.
2203 AATags = UI->getAAMetadata();
2204 } else if (AATags) {
2205 AATags = AATags.merge(UI->getAAMetadata());
2206 }
2207
2208 LoopUses.push_back(UI);
2209 }
2210 }
2211
2212 // If we found both an unordered atomic instruction and a non-atomic memory
2213 // access, bail. We can't blindly promote non-atomic to atomic since we
2214 // might not be able to lower the result. We can't downgrade since that
2215 // would violate memory model. Also, align 0 is an error for atomics.
2216 if (SawUnorderedAtomic && SawNotAtomic)
2217 return false;
2218
2219 // If we're inserting an atomic load in the preheader, we must be able to
2220 // lower it. We're only guaranteed to be able to lower naturally aligned
2221 // atomics.
2222 if (SawUnorderedAtomic && Alignment < MDL.getTypeStoreSize(AccessTy))
2223 return false;
2224
2225 // If we couldn't prove we can hoist the load, bail.
2226 if (!DereferenceableInPH) {
2227 LLVM_DEBUG(dbgs() << "Not promoting: Not dereferenceable in preheader\n");
2228 return false;
2229 }
2230
2231 // We know we can hoist the load, but don't have a guaranteed store.
2232 // Check whether the location is writable and thread-local. If it is, then we
2233 // can insert stores along paths which originally didn't have them without
2234 // violating the memory model.
2235 if (StoreSafety == StoreSafetyUnknown) {
2236 Value *Object = getUnderlyingObject(SomePtr);
2237 bool ExplicitlyDereferenceableOnly;
2238 // The dereferenceability query here is only required to satisfy the
2239 // writable contract, actual dereferenceability has already been proven
2240 // above. As such, we can ignore frees.
2241 if (isWritableObject(Object, ExplicitlyDereferenceableOnly) &&
2242 (!ExplicitlyDereferenceableOnly ||
2243 isDereferenceablePointer(SomePtr, AccessTy, MDL,
2244 /*IgnoreFree=*/true)) &&
2245 isThreadLocalObject(Object, CurLoop, DT, TTI))
2246 StoreSafety = StoreSafe;
2247 }
2248
2249 // If we've still failed to prove we can sink the store, hoist the load
2250 // only, if possible.
2251 if (StoreSafety != StoreSafe && !FoundLoadToPromote)
2252 // If we cannot hoist the load either, give up.
2253 return false;
2254
2255 // Lets do the promotion!
2256 if (StoreSafety == StoreSafe) {
2257 LLVM_DEBUG(dbgs() << "LICM: Promoting load/store of the value: " << *SomePtr
2258 << '\n');
2259 ++NumLoadStorePromoted;
2260 } else {
2261 LLVM_DEBUG(dbgs() << "LICM: Promoting load of the value: " << *SomePtr
2262 << '\n');
2263 ++NumLoadPromoted;
2264 }
2265
2266 ORE->emit([&]() {
2267 return OptimizationRemark(DEBUG_TYPE, "PromoteLoopAccessesToScalar",
2268 LoopUses[0])
2269 << "Moving accesses to memory location out of the loop";
2270 });
2271
2272 // Look at all the loop uses, and try to merge their locations.
2273 std::vector<DebugLoc> LoopUsesLocs;
2274 for (auto U : LoopUses)
2275 LoopUsesLocs.push_back(U->getDebugLoc());
2276 auto DL = DebugLoc::getMergedLocations(LoopUsesLocs);
2277
2278 // We use the SSAUpdater interface to insert phi nodes as required.
2280 SSAUpdater SSA(&NewPHIs);
2281 LoopPromoter Promoter(SomePtr, LoopUses, SSA, ExitBlocks, InsertPts,
2282 MSSAInsertPts, PIC, MSSAU, *LI, DL, Alignment,
2283 SawUnorderedAtomic,
2284 StoreIsGuaranteedToExecute ? AATags : AAMDNodes(),
2285 *SafetyInfo, StoreSafety == StoreSafe);
2286
2287 // Set up the preheader to have a definition of the value. It is the live-out
2288 // value from the preheader that uses in the loop will use.
2289 LoadInst *PreheaderLoad = nullptr;
2290 if (FoundLoadToPromote || !StoreIsGuaranteedToExecute) {
2291 PreheaderLoad =
2292 new LoadInst(AccessTy, SomePtr, SomePtr->getName() + ".promoted",
2293 Preheader->getTerminator()->getIterator());
2294 if (SawUnorderedAtomic)
2295 PreheaderLoad->setOrdering(AtomicOrdering::Unordered);
2296 PreheaderLoad->setAlignment(Alignment);
2297 PreheaderLoad->setDebugLoc(DebugLoc::getDropped());
2298 if (AATags && LoadIsGuaranteedToExecute)
2299 PreheaderLoad->setAAMetadata(AATags);
2300
2301 MemoryAccess *PreheaderLoadMemoryAccess = MSSAU.createMemoryAccessInBB(
2302 PreheaderLoad, nullptr, PreheaderLoad->getParent(), MemorySSA::End);
2303 MemoryUse *NewMemUse = cast<MemoryUse>(PreheaderLoadMemoryAccess);
2304 MSSAU.insertUse(NewMemUse, /*RenameUses=*/true);
2305 SSA.AddAvailableValue(Preheader, PreheaderLoad);
2306 } else {
2307 SSA.AddAvailableValue(Preheader, PoisonValue::get(AccessTy));
2308 }
2309
2310 if (VerifyMemorySSA)
2311 MSSAU.getMemorySSA()->verifyMemorySSA();
2312 // Rewrite all the loads in the loop and remember all the definitions from
2313 // stores in the loop.
2314 Promoter.run(LoopUses);
2315
2316 if (VerifyMemorySSA)
2317 MSSAU.getMemorySSA()->verifyMemorySSA();
2318 // If the SSAUpdater didn't use the load in the preheader, just zap it now.
2319 if (PreheaderLoad && PreheaderLoad->use_empty())
2320 eraseInstruction(*PreheaderLoad, *SafetyInfo, MSSAU);
2321
2322 return true;
2323}
2324
2325static void foreachMemoryAccess(MemorySSA *MSSA, Loop *L,
2326 function_ref<void(Instruction *)> Fn) {
2327 for (const BasicBlock *BB : L->blocks())
2328 if (const auto *Accesses = MSSA->getBlockAccesses(BB))
2329 for (const auto &Access : *Accesses)
2330 if (const auto *MUD = dyn_cast<MemoryUseOrDef>(&Access))
2331 Fn(MUD->getMemoryInst());
2332}
2333
2334// The bool indicates whether there might be reads outside the set, in which
2335// case only loads may be promoted.
2338 DominatorTree *DT, ICFLoopSafetyInfo *SafetyInfo,
2339 Loop *L) {
2340 BatchAAResults BatchAA(*AA);
2341 AliasSetTracker AST(BatchAA);
2342
2343 auto IsPotentiallyPromotable = [L](const Instruction *I) {
2344 if (const auto *SI = dyn_cast<StoreInst>(I)) {
2345 const Value *PtrOp = SI->getPointerOperand();
2346 if (isStrongerThanMonotonic(SI->getOrdering()))
2347 return false;
2348 return !isa<ConstantData>(PtrOp) && L->isLoopInvariant(PtrOp);
2349 }
2350 if (const auto *LI = dyn_cast<LoadInst>(I)) {
2351 const Value *PtrOp = LI->getPointerOperand();
2352 if (isStrongerThanMonotonic(LI->getOrdering()))
2353 return false;
2354 return !isa<ConstantData>(PtrOp) && L->isLoopInvariant(PtrOp);
2355 }
2356 return false;
2357 };
2358
2359 // Populate AST with potentially promotable accesses.
2360 SmallPtrSet<Value *, 16> AttemptingPromotion;
2361 foreachMemoryAccess(MSSA, L, [&](Instruction *I) {
2362 if (IsPotentiallyPromotable(I)) {
2363 AttemptingPromotion.insert(I);
2365 SI && !SafetyInfo->isGuaranteedToExecute(*SI, DT)) {
2366 // Promotion requires inserting a new store at the loop exits; we need
2367 // to prove that store doesn't alias anything, in addition to proving
2368 // aliasing for the stores we're removing. The new store is executed
2369 // unconditionally, so when we're proving aliasing for that store, we
2370 // can't rely on AA tags for stores which are conditionally executed.
2371 //
2372 // As a future improvement, we could avoid stripping AA tags in more
2373 // cases. isGuaranteedToExecute() is stronger than what we need.
2374 // We only need to prove that every exit from the loop is dominated
2375 // by a store to the same location with the same AA tag.
2376 AST.addWithoutAATags(SI);
2377 } else {
2378 AST.add(I);
2379 }
2380 }
2381 });
2382
2383 // We're only interested in must-alias sets that contain a mod.
2385 for (AliasSet &AS : AST)
2386 if (!AS.isForwardingAliasSet() && AS.isMod() && AS.isMustAlias())
2387 Sets.push_back({&AS, false});
2388
2389 if (Sets.empty())
2390 return {}; // Nothing to promote...
2391
2392 // Discard any sets for which there is an aliasing non-promotable access.
2393 foreachMemoryAccess(MSSA, L, [&](Instruction *I) {
2394 if (AttemptingPromotion.contains(I))
2395 return;
2396
2398 ModRefInfo MR = Pair.getPointer()->aliasesUnknownInst(I, BatchAA);
2399 // Cannot promote if there are writes outside the set.
2400 if (isModSet(MR))
2401 return true;
2402 if (isRefSet(MR)) {
2403 // Remember reads outside the set.
2404 Pair.setInt(true);
2405 // If this is a mod-only set and there are reads outside the set,
2406 // we will not be able to promote, so bail out early.
2407 return !Pair.getPointer()->isRef();
2408 }
2409 return false;
2410 });
2411 });
2412
2414 for (auto [Set, HasReadsOutsideSet] : Sets) {
2415 SmallSetVector<Value *, 8> PointerMustAliases;
2416 for (const auto &MemLoc : *Set)
2417 PointerMustAliases.insert(const_cast<Value *>(MemLoc.Ptr));
2418 Result.emplace_back(std::move(PointerMustAliases), HasReadsOutsideSet);
2419 }
2420
2421 return Result;
2422}
2423
2424// For a given store instruction or writeonly call instruction, this function
2425// checks that there are no read or writes that conflict with the memory
2426// access in the instruction
2428 AAResults *AA, Loop *CurLoop,
2429 SinkAndHoistLICMFlags &Flags) {
2431 // If there are more accesses than the Promotion cap, then give up as we're
2432 // not walking a list that long.
2433 if (Flags.tooManyMemoryAccesses())
2434 return false;
2435
2436 auto *IMD = MSSA->getMemoryAccess(I);
2437 BatchAAResults BAA(*AA);
2438 auto *Source = getClobberingMemoryAccess(*MSSA, BAA, Flags, IMD);
2439 // Make sure there are no clobbers inside the loop.
2440 if (!MSSA->isLiveOnEntryDef(Source) && CurLoop->contains(Source->getBlock()))
2441 return false;
2442
2443 // If there are interfering Uses don't move this store.
2444 // TODO: Cache set of Uses on the first walk in runOnLoop, update when
2445 // moving accesses. Can also extend to dominating uses.
2446 for (auto *BB : CurLoop->getBlocks()) {
2447 auto *Accesses = MSSA->getBlockAccesses(BB);
2448 if (!Accesses)
2449 continue;
2450 for (const auto &MA : *Accesses) {
2451 // Accesses are ordered. If we find one that I dominates we can stop.
2452 if (!Flags.getIsSink() && MSSA->dominates(IMD, &MA))
2453 break;
2454
2455 if (const auto *MemUseOrDef = dyn_cast<MemoryUseOrDef>(&MA)) {
2456 // Skip unrelated accesses.
2457 if (isNoModRef(BAA.getModRefInfo(MemUseOrDef->getMemoryInst(), I)))
2458 continue;
2459
2460 return false;
2461 }
2462 }
2463 }
2464 return true;
2465}
2466
2468 Loop *CurLoop, Instruction &I,
2469 SinkAndHoistLICMFlags &Flags,
2470 bool InvariantGroup) {
2471 // For hoisting, use the walker to determine safety
2472 if (!Flags.getIsSink()) {
2473 // If hoisting an invariant group, we only need to check that there
2474 // is no store to the loaded pointer between the start of the loop,
2475 // and the load (since all values must be the same).
2476
2477 // This can be checked in two conditions:
2478 // 1) if the memoryaccess is outside the loop
2479 // 2) the earliest access is at the loop header,
2480 // if the memory loaded is the phi node
2481
2482 BatchAAResults BAA(MSSA->getAA());
2483 MemoryAccess *Source = getClobberingMemoryAccess(*MSSA, BAA, Flags, MU);
2484 return !MSSA->isLiveOnEntryDef(Source) &&
2485 CurLoop->contains(Source->getBlock()) &&
2486 !(InvariantGroup && Source->getBlock() == CurLoop->getHeader() && isa<MemoryPhi>(Source));
2487 }
2488
2489 // For sinking, we'd need to check all Defs below this use. The getClobbering
2490 // call will look on the backedge of the loop, but will check aliasing with
2491 // the instructions on the previous iteration.
2492 // For example:
2493 // for (i ... )
2494 // load a[i] ( Use (LoE)
2495 // store a[i] ( 1 = Def (2), with 2 = Phi for the loop.
2496 // i++;
2497 // The load sees no clobbering inside the loop, as the backedge alias check
2498 // does phi translation, and will check aliasing against store a[i-1].
2499 // However sinking the load outside the loop, below the store is incorrect.
2500
2501 // For now, only sink if there are no Defs in the loop, and the existing ones
2502 // precede the use and are in the same block.
2503 // FIXME: Increase precision: Safe to sink if Use post dominates the Def;
2504 // needs PostDominatorTreeAnalysis.
2505 // FIXME: More precise: no Defs that alias this Use.
2506 if (Flags.tooManyMemoryAccesses())
2507 return true;
2508 for (auto *BB : CurLoop->getBlocks())
2509 if (pointerInvalidatedByBlock(*BB, *MSSA, *MU))
2510 return true;
2511 // When sinking, the source block may not be part of the loop so check it.
2512 if (!CurLoop->contains(&I))
2513 return pointerInvalidatedByBlock(*I.getParent(), *MSSA, *MU);
2514
2515 return false;
2516}
2517
2519 if (const auto *Accesses = MSSA.getBlockDefs(&BB))
2520 for (const auto &MA : *Accesses)
2521 if (const auto *MD = dyn_cast<MemoryDef>(&MA))
2522 if (MU.getBlock() != MD->getBlock() || !MSSA.locallyDominates(MD, &MU))
2523 return true;
2524 return false;
2525}
2526
2527/// Try to simplify things like (A < INV_1 AND icmp A < INV_2) into (A <
2528/// min(INV_1, INV_2)), if INV_1 and INV_2 are both loop invariants and their
2529/// minimun can be computed outside of loop, and X is not a loop-invariant.
2530static bool hoistMinMax(Instruction &I, Loop &L, ICFLoopSafetyInfo &SafetyInfo,
2531 MemorySSAUpdater &MSSAU) {
2532 bool Inverse = false;
2533 using namespace PatternMatch;
2534 Value *Cond1, *Cond2;
2535 if (match(&I, m_LogicalOr(m_Value(Cond1), m_Value(Cond2)))) {
2536 Inverse = true;
2537 } else if (match(&I, m_LogicalAnd(m_Value(Cond1), m_Value(Cond2)))) {
2538 // Do nothing
2539 } else
2540 return false;
2541
2542 auto MatchICmpAgainstInvariant = [&](Value *C, CmpPredicate &P, Value *&LHS,
2543 Value *&RHS) {
2544 if (!match(C, m_OneUse(m_ICmp(P, m_Value(LHS), m_Value(RHS)))))
2545 return false;
2546 if (!LHS->getType()->isIntegerTy())
2547 return false;
2549 return false;
2550 if (L.isLoopInvariant(LHS)) {
2551 std::swap(LHS, RHS);
2553 }
2554 if (L.isLoopInvariant(LHS) || !L.isLoopInvariant(RHS))
2555 return false;
2556 if (Inverse)
2558 return true;
2559 };
2560 CmpPredicate P1, P2;
2561 Value *LHS1, *LHS2, *RHS1, *RHS2;
2562 if (!MatchICmpAgainstInvariant(Cond1, P1, LHS1, RHS1) ||
2563 !MatchICmpAgainstInvariant(Cond2, P2, LHS2, RHS2))
2564 return false;
2565 auto MatchingPred = CmpPredicate::getMatching(P1, P2);
2566 if (!MatchingPred || LHS1 != LHS2)
2567 return false;
2568
2569 // Everything is fine, we can do the transform.
2570 bool UseMin = ICmpInst::isLT(*MatchingPred) || ICmpInst::isLE(*MatchingPred);
2571 assert(
2572 (UseMin || ICmpInst::isGT(*MatchingPred) ||
2573 ICmpInst::isGE(*MatchingPred)) &&
2574 "Relational predicate is either less (or equal) or greater (or equal)!");
2575 Intrinsic::ID id = ICmpInst::isSigned(*MatchingPred)
2576 ? (UseMin ? Intrinsic::smin : Intrinsic::smax)
2577 : (UseMin ? Intrinsic::umin : Intrinsic::umax);
2578 auto *Preheader = L.getLoopPreheader();
2579 assert(Preheader && "Loop is not in simplify form?");
2580 IRBuilder<> Builder(Preheader->getTerminator());
2581 // We are about to create a new guaranteed use for RHS2 which might not exist
2582 // before (if it was a non-taken input of logical and/or instruction). If it
2583 // was poison, we need to freeze it. Note that no new use for LHS and RHS1 are
2584 // introduced, so they don't need this.
2585 if (isa<SelectInst>(I))
2586 RHS2 = Builder.CreateFreeze(RHS2, RHS2->getName() + ".fr");
2587 Value *NewRHS = Builder.CreateBinaryIntrinsic(
2588 id, RHS1, RHS2, nullptr,
2589 StringRef("invariant.") +
2590 (ICmpInst::isSigned(*MatchingPred) ? "s" : "u") +
2591 (UseMin ? "min" : "max"));
2592 Builder.SetInsertPoint(&I);
2593 ICmpInst::Predicate P = *MatchingPred;
2594 if (Inverse)
2596 Value *NewCond = Builder.CreateICmp(P, LHS1, NewRHS);
2597 NewCond->takeName(&I);
2598 I.replaceAllUsesWith(NewCond);
2599 eraseInstruction(I, SafetyInfo, MSSAU);
2600 Instruction &CondI1 = *cast<Instruction>(Cond1);
2601 Instruction &CondI2 = *cast<Instruction>(Cond2);
2602 salvageDebugInfo(CondI1);
2603 salvageDebugInfo(CondI2);
2604 eraseInstruction(CondI1, SafetyInfo, MSSAU);
2605 eraseInstruction(CondI2, SafetyInfo, MSSAU);
2606 return true;
2607}
2608
2609/// Reassociate gep (gep ptr, idx1), idx2 to gep (gep ptr, idx2), idx1 if
2610/// this allows hoisting the inner GEP.
2611static bool hoistGEP(Instruction &I, Loop &L, ICFLoopSafetyInfo &SafetyInfo,
2613 DominatorTree *DT) {
2615 if (!GEP)
2616 return false;
2617
2618 // Do not try to hoist a constant GEP out of the loop via reassociation.
2619 // Constant GEPs can often be folded into addressing modes, and reassociating
2620 // them may inhibit CSE of a common base.
2621 if (GEP->hasAllConstantIndices())
2622 return false;
2623
2624 auto *Src = dyn_cast<GetElementPtrInst>(GEP->getPointerOperand());
2625 if (!Src || !Src->hasOneUse() || !L.contains(Src))
2626 return false;
2627
2628 Value *SrcPtr = Src->getPointerOperand();
2629 auto LoopInvariant = [&](Value *V) { return L.isLoopInvariant(V); };
2630 if (!L.isLoopInvariant(SrcPtr) || !all_of(GEP->indices(), LoopInvariant))
2631 return false;
2632
2633 // This can only happen if !AllowSpeculation, otherwise this would already be
2634 // handled.
2635 // FIXME: Should we respect AllowSpeculation in these reassociation folds?
2636 // The flag exists to prevent metadata dropping, which is not relevant here.
2637 if (all_of(Src->indices(), LoopInvariant))
2638 return false;
2639
2640 // The swapped GEPs are inbounds if both original GEPs are inbounds
2641 // and the sign of the offsets is the same. For simplicity, only
2642 // handle both offsets being non-negative.
2643 const DataLayout &DL = GEP->getDataLayout();
2644 auto NonNegative = [&](Value *V) {
2645 return isKnownNonNegative(V, SimplifyQuery(DL, DT, AC, GEP));
2646 };
2647 bool IsInBounds = Src->isInBounds() && GEP->isInBounds() &&
2648 all_of(Src->indices(), NonNegative) &&
2649 all_of(GEP->indices(), NonNegative);
2650
2651 BasicBlock *Preheader = L.getLoopPreheader();
2652 IRBuilder<> Builder(Preheader->getTerminator());
2653 Value *NewSrc = Builder.CreateGEP(GEP->getSourceElementType(), SrcPtr,
2654 SmallVector<Value *>(GEP->indices()),
2655 "invariant.gep", IsInBounds);
2656 Builder.SetInsertPoint(GEP);
2657 Value *NewGEP = Builder.CreateGEP(Src->getSourceElementType(), NewSrc,
2658 SmallVector<Value *>(Src->indices()), "gep",
2659 IsInBounds);
2660 GEP->replaceAllUsesWith(NewGEP);
2661 eraseInstruction(*GEP, SafetyInfo, MSSAU);
2662 salvageDebugInfo(*Src);
2663 eraseInstruction(*Src, SafetyInfo, MSSAU);
2664 return true;
2665}
2666
2667/// Try to turn things like "LV + C1 < C2" into "LV < C2 - C1". Here
2668/// C1 and C2 are loop invariants and LV is a loop-variant.
2669static bool hoistAdd(ICmpInst::Predicate Pred, Value *VariantLHS,
2670 Value *InvariantRHS, ICmpInst &ICmp, Loop &L,
2671 ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU,
2672 AssumptionCache *AC, DominatorTree *DT) {
2673 assert(!L.isLoopInvariant(VariantLHS) && "Precondition.");
2674 assert(L.isLoopInvariant(InvariantRHS) && "Precondition.");
2675
2676 bool IsSigned = ICmpInst::isSigned(Pred);
2677
2678 // Try to represent VariantLHS as sum of invariant and variant operands.
2679 using namespace PatternMatch;
2680 Value *VariantOp, *InvariantOp;
2681 if (IsSigned && !match(VariantLHS, m_NSWAddLike(m_Value(VariantOp),
2682 m_Value(InvariantOp))))
2683 return false;
2684 if (!IsSigned && !match(VariantLHS, m_NUWAddLike(m_Value(VariantOp),
2685 m_Value(InvariantOp))))
2686 return false;
2687
2688 // LHS itself is a loop-variant, try to represent it in the form:
2689 // "VariantOp + InvariantOp". If it is possible, then we can reassociate.
2690 if (L.isLoopInvariant(VariantOp))
2691 std::swap(VariantOp, InvariantOp);
2692 if (L.isLoopInvariant(VariantOp) || !L.isLoopInvariant(InvariantOp))
2693 return false;
2694
2695 // In order to turn "LV + C1 < C2" into "LV < C2 - C1", we need to be able to
2696 // freely move values from left side of inequality to right side (just as in
2697 // normal linear arithmetics). Overflows make things much more complicated, so
2698 // we want to avoid this.
2699 auto &DL = L.getHeader()->getDataLayout();
2700 SimplifyQuery SQ(DL, DT, AC, &ICmp);
2701 if (IsSigned && computeOverflowForSignedSub(InvariantRHS, InvariantOp, SQ) !=
2703 return false;
2704 if (!IsSigned &&
2705 computeOverflowForUnsignedSub(InvariantRHS, InvariantOp, SQ) !=
2707 return false;
2708 auto *Preheader = L.getLoopPreheader();
2709 assert(Preheader && "Loop is not in simplify form?");
2710 IRBuilder<> Builder(Preheader->getTerminator());
2711 Value *NewCmpOp =
2712 Builder.CreateSub(InvariantRHS, InvariantOp, "invariant.op",
2713 /*HasNUW*/ !IsSigned, /*HasNSW*/ IsSigned);
2714 ICmp.setPredicate(Pred);
2715 ICmp.setOperand(0, VariantOp);
2716 ICmp.setOperand(1, NewCmpOp);
2717 // The new LHS is a different value, so a samesign (or any other
2718 // poison-generating) flag asserted about the old operands may no longer hold.
2720
2721 Instruction &DeadI = cast<Instruction>(*VariantLHS);
2722 salvageDebugInfo(DeadI);
2723 eraseInstruction(DeadI, SafetyInfo, MSSAU);
2724 return true;
2725}
2726
2727/// Try to reassociate and hoist the following two patterns:
2728/// LV - C1 < C2 --> LV < C1 + C2,
2729/// C1 - LV < C2 --> LV > C1 - C2.
2730static bool hoistSub(ICmpInst::Predicate Pred, Value *VariantLHS,
2731 Value *InvariantRHS, ICmpInst &ICmp, Loop &L,
2732 ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU,
2733 AssumptionCache *AC, DominatorTree *DT) {
2734 assert(!L.isLoopInvariant(VariantLHS) && "Precondition.");
2735 assert(L.isLoopInvariant(InvariantRHS) && "Precondition.");
2736
2737 bool IsSigned = ICmpInst::isSigned(Pred);
2738
2739 // Try to represent VariantLHS as sum of invariant and variant operands.
2740 using namespace PatternMatch;
2741 Value *VariantOp, *InvariantOp;
2742 if (IsSigned &&
2743 !match(VariantLHS, m_NSWSub(m_Value(VariantOp), m_Value(InvariantOp))))
2744 return false;
2745 if (!IsSigned &&
2746 !match(VariantLHS, m_NUWSub(m_Value(VariantOp), m_Value(InvariantOp))))
2747 return false;
2748
2749 bool VariantSubtracted = false;
2750 // LHS itself is a loop-variant, try to represent it in the form:
2751 // "VariantOp + InvariantOp". If it is possible, then we can reassociate. If
2752 // the variant operand goes with minus, we use a slightly different scheme.
2753 if (L.isLoopInvariant(VariantOp)) {
2754 std::swap(VariantOp, InvariantOp);
2755 VariantSubtracted = true;
2756 Pred = ICmpInst::getSwappedPredicate(Pred);
2757 }
2758 if (L.isLoopInvariant(VariantOp) || !L.isLoopInvariant(InvariantOp))
2759 return false;
2760
2761 // In order to turn "LV - C1 < C2" into "LV < C2 + C1", we need to be able to
2762 // freely move values from left side of inequality to right side (just as in
2763 // normal linear arithmetics). Overflows make things much more complicated, so
2764 // we want to avoid this. Likewise, for "C1 - LV < C2" we need to prove that
2765 // "C1 - C2" does not overflow.
2766 auto &DL = L.getHeader()->getDataLayout();
2767 SimplifyQuery SQ(DL, DT, AC, &ICmp);
2768 if (VariantSubtracted && IsSigned) {
2769 // C1 - LV < C2 --> LV > C1 - C2
2770 if (computeOverflowForSignedSub(InvariantOp, InvariantRHS, SQ) !=
2772 return false;
2773 } else if (VariantSubtracted && !IsSigned) {
2774 // C1 - LV < C2 --> LV > C1 - C2
2775 if (computeOverflowForUnsignedSub(InvariantOp, InvariantRHS, SQ) !=
2777 return false;
2778 } else if (!VariantSubtracted && IsSigned) {
2779 // LV - C1 < C2 --> LV < C1 + C2
2780 if (computeOverflowForSignedAdd(InvariantOp, InvariantRHS, SQ) !=
2782 return false;
2783 } else { // !VariantSubtracted && !IsSigned
2784 // LV - C1 < C2 --> LV < C1 + C2
2785 if (computeOverflowForUnsignedAdd(InvariantOp, InvariantRHS, SQ) !=
2787 return false;
2788 }
2789 auto *Preheader = L.getLoopPreheader();
2790 assert(Preheader && "Loop is not in simplify form?");
2791 IRBuilder<> Builder(Preheader->getTerminator());
2792 Value *NewCmpOp =
2793 VariantSubtracted
2794 ? Builder.CreateSub(InvariantOp, InvariantRHS, "invariant.op",
2795 /*HasNUW*/ !IsSigned, /*HasNSW*/ IsSigned)
2796 : Builder.CreateAdd(InvariantOp, InvariantRHS, "invariant.op",
2797 /*HasNUW*/ !IsSigned, /*HasNSW*/ IsSigned);
2798 ICmp.setPredicate(Pred);
2799 ICmp.setOperand(0, VariantOp);
2800 ICmp.setOperand(1, NewCmpOp);
2801 // The new LHS is a different value, so a samesign (or any other
2802 // poison-generating) flag asserted about the old operands may no longer hold.
2804
2805 Instruction &DeadI = cast<Instruction>(*VariantLHS);
2806 salvageDebugInfo(DeadI);
2807 eraseInstruction(DeadI, SafetyInfo, MSSAU);
2808 return true;
2809}
2810
2811/// Reassociate and hoist add/sub expressions.
2812static bool hoistAddSub(Instruction &I, Loop &L, ICFLoopSafetyInfo &SafetyInfo,
2814 DominatorTree *DT) {
2815 using namespace PatternMatch;
2816 CmpPredicate Pred;
2817 Value *LHS, *RHS;
2818 if (!match(&I, m_ICmp(Pred, m_Value(LHS), m_Value(RHS))))
2819 return false;
2820
2821 // Put variant operand to LHS position.
2822 if (L.isLoopInvariant(LHS)) {
2823 std::swap(LHS, RHS);
2824 Pred = ICmpInst::getSwappedPredicate(Pred);
2825 }
2826 // We want to delete the initial operation after reassociation, so only do it
2827 // if it has no other uses.
2828 if (L.isLoopInvariant(LHS) || !L.isLoopInvariant(RHS) || !LHS->hasOneUse())
2829 return false;
2830
2831 // TODO: We could go with smarter context, taking common dominator of all I's
2832 // users instead of I itself.
2833 if (hoistAdd(Pred, LHS, RHS, cast<ICmpInst>(I), L, SafetyInfo, MSSAU, AC, DT))
2834 return true;
2835
2836 if (hoistSub(Pred, LHS, RHS, cast<ICmpInst>(I), L, SafetyInfo, MSSAU, AC, DT))
2837 return true;
2838
2839 return false;
2840}
2841
2842static bool isReassociableOp(Instruction *I, unsigned IntOpcode,
2843 unsigned FPOpcode) {
2844 if (I->getOpcode() == IntOpcode)
2845 return true;
2846 if (I->getOpcode() == FPOpcode && I->hasAllowReassoc() &&
2847 I->hasNoSignedZeros())
2848 return true;
2849 return false;
2850}
2851
2852/// Try to reassociate expressions like ((A1 * B1) + (A2 * B2) + ...) * C where
2853/// A1, A2, ... and C are loop invariants into expressions like
2854/// ((A1 * C * B1) + (A2 * C * B2) + ...) and hoist the (A1 * C), (A2 * C), ...
2855/// invariant expressions. This functions returns true only if any hoisting has
2856/// actually occurred.
2858 ICFLoopSafetyInfo &SafetyInfo,
2860 DominatorTree *DT) {
2861 if (!isReassociableOp(&I, Instruction::Mul, Instruction::FMul))
2862 return false;
2863 Value *VariantOp = I.getOperand(0);
2864 Value *InvariantOp = I.getOperand(1);
2865 if (L.isLoopInvariant(VariantOp))
2866 std::swap(VariantOp, InvariantOp);
2867 if (L.isLoopInvariant(VariantOp) || !L.isLoopInvariant(InvariantOp))
2868 return false;
2869 Value *Factor = InvariantOp;
2870
2871 // First, we need to make sure we should do the transformation.
2872 SmallVector<Use *> Changes;
2875 if (BinaryOperator *VariantBinOp = dyn_cast<BinaryOperator>(VariantOp))
2876 Worklist.push_back(VariantBinOp);
2877 while (!Worklist.empty()) {
2878 BinaryOperator *BO = Worklist.pop_back_val();
2879 if (!BO->hasOneUse())
2880 return false;
2881 if (isReassociableOp(BO, Instruction::Add, Instruction::FAdd) &&
2884 Worklist.push_back(cast<BinaryOperator>(BO->getOperand(0)));
2885 Worklist.push_back(cast<BinaryOperator>(BO->getOperand(1)));
2886 Adds.push_back(BO);
2887 continue;
2888 }
2889 if (!isReassociableOp(BO, Instruction::Mul, Instruction::FMul) ||
2890 L.isLoopInvariant(BO))
2891 return false;
2892 Use &U0 = BO->getOperandUse(0);
2893 Use &U1 = BO->getOperandUse(1);
2894 if (L.isLoopInvariant(U0))
2895 Changes.push_back(&U0);
2896 else if (L.isLoopInvariant(U1))
2897 Changes.push_back(&U1);
2898 else
2899 return false;
2900 unsigned Limit = I.getType()->isIntOrIntVectorTy()
2903 if (Changes.size() > Limit)
2904 return false;
2905 }
2906 if (Changes.empty())
2907 return false;
2908
2909 // Drop the poison flags for any adds we looked through.
2910 if (I.getType()->isIntOrIntVectorTy()) {
2911 for (auto *Add : Adds)
2912 Add->dropPoisonGeneratingFlags();
2913 }
2914
2915 // We know we should do it so let's do the transformation.
2916 auto *Preheader = L.getLoopPreheader();
2917 assert(Preheader && "Loop is not in simplify form?");
2918 IRBuilder<> Builder(Preheader->getTerminator());
2919 for (auto *U : Changes) {
2920 assert(L.isLoopInvariant(U->get()));
2921 auto *Ins = cast<BinaryOperator>(U->getUser());
2922 Value *Mul;
2923 if (I.getType()->isIntOrIntVectorTy()) {
2924 Mul = Builder.CreateMul(U->get(), Factor, "factor.op.mul");
2925 // Drop the poison flags on the original multiply.
2926 Ins->dropPoisonGeneratingFlags();
2927 } else
2928 Mul = Builder.CreateFMulFMF(U->get(), Factor, Ins, "factor.op.fmul");
2929
2930 // Rewrite the reassociable instruction.
2931 unsigned OpIdx = U->getOperandNo();
2932 auto *LHS = OpIdx == 0 ? Mul : Ins->getOperand(0);
2933 auto *RHS = OpIdx == 1 ? Mul : Ins->getOperand(1);
2934 auto *NewBO =
2935 BinaryOperator::Create(Ins->getOpcode(), LHS, RHS,
2936 Ins->getName() + ".reass", Ins->getIterator());
2937 NewBO->setDebugLoc(DebugLoc::getDropped());
2938 NewBO->copyIRFlags(Ins);
2939 if (VariantOp == Ins)
2940 VariantOp = NewBO;
2941 Ins->replaceAllUsesWith(NewBO);
2942 eraseInstruction(*Ins, SafetyInfo, MSSAU);
2943 }
2944
2945 I.replaceAllUsesWith(VariantOp);
2946 eraseInstruction(I, SafetyInfo, MSSAU);
2947 return true;
2948}
2949
2950/// Reassociate associative binary expressions of the form
2951///
2952/// 1. "(LV op C1) op C2" ==> "LV op (C1 op C2)"
2953/// 2. "(C1 op LV) op C2" ==> "LV op (C1 op C2)"
2954/// 3. "C2 op (C1 op LV)" ==> "LV op (C1 op C2)"
2955/// 4. "C2 op (LV op C1)" ==> "LV op (C1 op C2)"
2956///
2957/// where op is an associative BinOp, LV is a loop variant, and C1 and C2 are
2958/// loop invariants that we want to hoist, noting that associativity implies
2959/// commutativity.
2961 ICFLoopSafetyInfo &SafetyInfo,
2963 DominatorTree *DT) {
2964 auto *BO = dyn_cast<BinaryOperator>(&I);
2965 if (!BO || !BO->isAssociative())
2966 return false;
2967
2968 Instruction::BinaryOps Opcode = BO->getOpcode();
2969 bool LVInRHS = L.isLoopInvariant(BO->getOperand(0));
2970 auto *BO0 = dyn_cast<BinaryOperator>(BO->getOperand(LVInRHS));
2971 if (!BO0 || BO0->getOpcode() != Opcode || !BO0->isAssociative() ||
2972 BO0->hasNUsesOrMore(BO0->getType()->isIntegerTy() ? 2 : 3))
2973 return false;
2974
2975 Value *LV = BO0->getOperand(0);
2976 Value *C1 = BO0->getOperand(1);
2977 Value *C2 = BO->getOperand(!LVInRHS);
2978
2979 assert(BO->isCommutative() && BO0->isCommutative() &&
2980 "Associativity implies commutativity");
2981 if (L.isLoopInvariant(LV) && !L.isLoopInvariant(C1))
2982 std::swap(LV, C1);
2983 if (L.isLoopInvariant(LV) || !L.isLoopInvariant(C1) || !L.isLoopInvariant(C2))
2984 return false;
2985
2986 auto *Preheader = L.getLoopPreheader();
2987 assert(Preheader && "Loop is not in simplify form?");
2988
2989 IRBuilder<> Builder(Preheader->getTerminator());
2990 auto *Inv = Builder.CreateBinOp(Opcode, C1, C2, "invariant.op");
2991
2992 auto *NewBO = BinaryOperator::Create(
2993 Opcode, LV, Inv, BO->getName() + ".reass", BO->getIterator());
2994 NewBO->setDebugLoc(DebugLoc::getDropped());
2995
2996 if (Opcode == Instruction::FAdd || Opcode == Instruction::FMul) {
2997 // Intersect FMF flags for FADD and FMUL.
2998 FastMathFlags Intersect = BO->getFastMathFlags() & BO0->getFastMathFlags();
2999 if (auto *I = dyn_cast<Instruction>(Inv))
3000 I->setFastMathFlags(Intersect);
3001 NewBO->setFastMathFlags(Intersect);
3002 } else {
3003 OverflowTracking Flags;
3004 Flags.AllKnownNonNegative = false;
3005 Flags.AllKnownNonZero = false;
3006 Flags.mergeFlags(*BO);
3007 Flags.mergeFlags(*BO0);
3008 // If `Inv` was not constant-folded, a new Instruction has been created.
3009 if (auto *I = dyn_cast<Instruction>(Inv))
3010 Flags.applyFlags(*I);
3011 Flags.applyFlags(*NewBO);
3012 }
3013
3014 BO->replaceAllUsesWith(NewBO);
3015 eraseInstruction(*BO, SafetyInfo, MSSAU);
3016
3017 // (LV op C1) might not be erased if it has more uses than the one we just
3018 // replaced.
3019 if (BO0->use_empty()) {
3020 salvageDebugInfo(*BO0);
3021 eraseInstruction(*BO0, SafetyInfo, MSSAU);
3022 }
3023
3024 return true;
3025}
3026
3027/// Reassociate add/sub expressions of the form:
3028///
3029/// 1. "(LV + C1) - C2" ==> "LV + (C1 - C2)"
3030/// 2. "(LV - C1) - C2" ==> "LV - (C1 + C2)"
3031/// 3. "(LV - C1) + C2" ==> "LV + (C2 - C1)"
3032///
3033/// where LV is a loop variant, and C1 and C2 are loop invariants.
3034/// Sub is not associative, but these algebraic identities allow hoisting
3035/// invariant computations out of the loop.
3037 ICFLoopSafetyInfo &SafetyInfo,
3039 DominatorTree *DT) {
3040 using namespace PatternMatch;
3041
3042 Instruction *BO;
3043 Value *LV, *C1, *C2;
3044 Instruction::BinaryOps InvOp, ResultOp;
3045
3046 // Try to match one of three reassociation patterns involving sub.
3047 //
3048 // 1. (LV + C1) - C2 ==> LV + (C1 - C2)
3049 // 2. (LV - C1) - C2 ==> LV - (C1 + C2)
3050 // 3. (LV - C1) + C2 ==> LV + (C2 - C1)
3051 // ^ ^
3052 // \ \___ InvOp
3053 // \
3054 // \____ ResultOp
3055 //
3056 if (match(&I,
3058 m_Value(C2)))) {
3059 // Case 1.
3060 //
3061 // Depending on which of the addition is invariant, we might need to swap
3062 // the arguments
3063 if (L.isLoopInvariant(LV) && !L.isLoopInvariant(C1))
3064 std::swap(LV, C1);
3065 InvOp = Instruction::Sub;
3066 ResultOp = Instruction::Add;
3067 } else if (match(&I, m_Sub(m_OneUse(m_Instruction(
3068 BO, m_Sub(m_Value(LV), m_Value(C1)))),
3069 m_Value(C2)))) {
3070 // Case 2.
3071 InvOp = Instruction::Add;
3072 ResultOp = Instruction::Sub;
3073 } else if (match(&I, m_c_Add(m_OneUse(m_Instruction(
3074 BO, m_Sub(m_Value(LV), m_Value(C1)))),
3075 m_Value(C2)))) {
3076 // Case 3.
3077 //
3078 // We use (C2 - C1) as the invariant as opposed to case 1, but instead of
3079 // adding a special case in invariant creation, we can just swap the
3080 // operands here.
3081 std::swap(C1, C2);
3082 InvOp = Instruction::Sub;
3083 ResultOp = Instruction::Add;
3084 } else {
3085 return false;
3086 }
3087
3088 if (L.isLoopInvariant(LV) || !L.isLoopInvariant(C1) || !L.isLoopInvariant(C2))
3089 return false;
3090
3091 auto *Preheader = L.getLoopPreheader();
3092 assert(Preheader && "Loop is not in simplify form?");
3093
3094 IRBuilder<> Builder(Preheader->getTerminator());
3095 auto *Inv = Builder.CreateBinOp(InvOp, C1, C2, "invariant.op");
3096
3097 auto *NewBO = BinaryOperator::Create(ResultOp, LV, Inv,
3098 I.getName() + ".reass", I.getIterator());
3099 NewBO->setDebugLoc(DebugLoc::getDropped());
3100
3101 // No overflow flags are set on the new instructions -- reassociation
3102 // involving sub does not preserve nsw/nuw in general.
3103
3104 I.replaceAllUsesWith(NewBO);
3105 eraseInstruction(I, SafetyInfo, MSSAU);
3106
3107 salvageDebugInfo(*BO);
3108 eraseInstruction(*BO, SafetyInfo, MSSAU);
3109
3110 return true;
3111}
3112
3114 ICFLoopSafetyInfo &SafetyInfo,
3116 DominatorTree *DT) {
3117 // Optimize complex patterns, such as (x < INV1 && x < INV2), turning them
3118 // into (x < min(INV1, INV2)), and hoisting the invariant part of this
3119 // expression out of the loop.
3120 if (hoistMinMax(I, L, SafetyInfo, MSSAU)) {
3121 ++NumHoisted;
3122 ++NumMinMaxHoisted;
3123 return true;
3124 }
3125
3126 // Try to hoist GEPs by reassociation.
3127 if (hoistGEP(I, L, SafetyInfo, MSSAU, AC, DT)) {
3128 ++NumHoisted;
3129 ++NumGEPsHoisted;
3130 return true;
3131 }
3132
3133 // Try to hoist add/sub's by reassociation.
3134 if (hoistAddSub(I, L, SafetyInfo, MSSAU, AC, DT)) {
3135 ++NumHoisted;
3136 ++NumAddSubHoisted;
3137 return true;
3138 }
3139
3140 bool IsInt = I.getType()->isIntOrIntVectorTy();
3141 if (hoistMulAddAssociation(I, L, SafetyInfo, MSSAU, AC, DT)) {
3142 ++NumHoisted;
3143 if (IsInt)
3144 ++NumIntAssociationsHoisted;
3145 else
3146 ++NumFPAssociationsHoisted;
3147 return true;
3148 }
3149
3150 if (hoistBOAssociation(I, L, SafetyInfo, MSSAU, AC, DT)) {
3151 ++NumHoisted;
3152 ++NumBOAssociationsHoisted;
3153 return true;
3154 }
3155
3156 if (hoistSubAddAssociation(I, L, SafetyInfo, MSSAU, AC, DT)) {
3157 ++NumHoisted;
3158 ++NumBOAssociationsHoisted;
3159 return true;
3160 }
3161
3162 return false;
3163}
3164
3165/// Little predicate that returns true if the specified basic block is in
3166/// a subloop of the current one, not the current one itself.
3167///
3168static bool inSubLoop(BasicBlock *BB, Loop *CurLoop, LoopInfo *LI) {
3169 assert(CurLoop->contains(BB) && "Only valid if BB is IN the loop");
3170 return LI->getLoopFor(BB) != CurLoop;
3171}
for(const MachineOperand &MO :llvm::drop_begin(OldMI.operands(), Desc.getNumOperands()))
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
static msgpack::DocNode getNode(msgpack::DocNode DN, msgpack::Type Type, MCValue Val)
unsigned uint64_t
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
static GCRegistry::Add< ShadowStackGC > C("shadow-stack", "Very portable GC for uncooperative code generators")
This file contains the declarations for the subclasses of Constant, which represent the different fla...
DXIL Forward Handle Accesses
DXIL Resource Access
early cse Early CSE w MemorySSA
#define DEBUG_TYPE
Hexagon Common GEP
This file provides various utilities for inspecting and working with the control flow graph in LLVM I...
iv Induction Variable Users
Definition IVUsers.cpp:48
static bool isReassociableOp(Instruction *I, unsigned IntOpcode, unsigned FPOpcode)
Definition LICM.cpp:2842
static bool isNotUsedOrFoldableInLoop(const Instruction &I, const Loop *CurLoop, const LoopSafetyInfo *SafetyInfo, TargetTransformInfo *TTI, bool &FoldableInLoop, bool LoopNestMode)
Return true if the only users of this instruction are outside of the loop.
Definition LICM.cpp:1426
static bool hoistGEP(Instruction &I, Loop &L, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU, AssumptionCache *AC, DominatorTree *DT)
Reassociate gep (gep ptr, idx1), idx2 to gep (gep ptr, idx2), idx1 if this allows hoisting the inner ...
Definition LICM.cpp:2611
static cl::opt< bool > SingleThread("licm-force-thread-model-single", cl::Hidden, cl::init(false), cl::desc("Force thread model single in LICM pass"))
static void splitPredecessorsOfLoopExit(PHINode *PN, DominatorTree *DT, LoopInfo *LI, const Loop *CurLoop, LoopSafetyInfo *SafetyInfo, MemorySSAUpdater *MSSAU)
Definition LICM.cpp:1600
static bool hoistInsertPastInsert(InsertElementInst *Ins, Loop *CurLoop, DominatorTree *DT, BasicBlock *HoistDest, ICFLoopSafetyInfo *SafetyInfo, MemorySSAUpdater &MSSAU, ScalarEvolution *SE, OptimizationRemarkEmitter *ORE, SmallVectorImpl< Instruction * > &HoistedInstructions)
Definition LICM.cpp:1093
static cl::opt< unsigned > FPAssociationUpperLimit("licm-max-num-fp-reassociations", cl::init(5U), cl::Hidden, cl::desc("Set upper limit for the number of transformations performed " "during a single round of hoisting the reassociated expressions."))
static bool isFoldableInLoop(const Instruction &I, const Loop *CurLoop, const TargetTransformInfo *TTI)
Return true if the instruction is foldable in the loop.
Definition LICM.cpp:1396
static bool hoistMinMax(Instruction &I, Loop &L, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU)
Try to simplify things like (A < INV_1 AND icmp A < INV_2) into (A < min(INV_1, INV_2)),...
Definition LICM.cpp:2530
static void moveInstructionBefore(Instruction &I, BasicBlock::iterator Dest, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU, ScalarEvolution *SE)
Definition LICM.cpp:1552
static Instruction * cloneInstructionInExitBlock(Instruction &I, BasicBlock &ExitBlock, PHINode &PN, const LoopInfo *LI, const LoopSafetyInfo *SafetyInfo, MemorySSAUpdater &MSSAU)
Definition LICM.cpp:1468
static cl::opt< bool > ControlFlowHoisting("licm-control-flow-hoisting", cl::Hidden, cl::init(false), cl::desc("Enable control flow (and PHI) hoisting in LICM"))
static bool pointerInvalidatedByLoop(MemorySSA *MSSA, MemoryUse *MU, Loop *CurLoop, Instruction &I, SinkAndHoistLICMFlags &Flags, bool InvariantGroup)
Definition LICM.cpp:2467
static bool hoistSubAddAssociation(Instruction &I, Loop &L, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU, AssumptionCache *AC, DominatorTree *DT)
Reassociate add/sub expressions of the form:
Definition LICM.cpp:3036
static SmallVector< PointersAndHasReadsOutsideSet, 0 > collectPromotionCandidates(MemorySSA *MSSA, AliasAnalysis *AA, DominatorTree *DT, ICFLoopSafetyInfo *SafetyInfo, Loop *L)
Definition LICM.cpp:2337
static bool hoistAdd(ICmpInst::Predicate Pred, Value *VariantLHS, Value *InvariantRHS, ICmpInst &ICmp, Loop &L, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU, AssumptionCache *AC, DominatorTree *DT)
Try to turn things like "LV + C1 < C2" into "LV < C2 - C1".
Definition LICM.cpp:2669
static MemoryAccess * getClobberingMemoryAccess(MemorySSA &MSSA, BatchAAResults &BAA, SinkAndHoistLICMFlags &Flags, MemoryUseOrDef *MA)
Definition LICM.cpp:1238
static void hoist(Instruction &I, const DominatorTree *DT, const Loop *CurLoop, BasicBlock *Dest, ICFLoopSafetyInfo *SafetyInfo, MemorySSAUpdater &MSSAU, ScalarEvolution *SE, OptimizationRemarkEmitter *ORE)
When an instruction is found to only use loop invariant operands that is safe to hoist,...
Definition LICM.cpp:1778
static bool canSplitPredecessors(PHINode *PN, LoopSafetyInfo *SafetyInfo)
Definition LICM.cpp:1582
static bool sink(Instruction &I, LoopInfo *LI, DominatorTree *DT, const Loop *CurLoop, ICFLoopSafetyInfo *SafetyInfo, MemorySSAUpdater &MSSAU, OptimizationRemarkEmitter *ORE)
When an instruction is found to only be used outside of the loop, this function moves it to the exit ...
Definition LICM.cpp:1672
static bool hoistAddSub(Instruction &I, Loop &L, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU, AssumptionCache *AC, DominatorTree *DT)
Reassociate and hoist add/sub expressions.
Definition LICM.cpp:2812
static bool hoistMulAddAssociation(Instruction &I, Loop &L, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU, AssumptionCache *AC, DominatorTree *DT)
Try to reassociate expressions like ((A1 * B1) + (A2 * B2) + ...) * C where A1, A2,...
Definition LICM.cpp:2857
static cl::opt< uint32_t > MaxNumUsesTraversed("licm-max-num-uses-traversed", cl::Hidden, cl::init(8), cl::desc("Max num uses visited for identifying load " "invariance in loop using invariant start (default = 8)"))
static bool isOnlyMemoryAccess(const Instruction *I, const Loop *L, const MemorySSAUpdater &MSSAU)
Return true if I is the only Instruction with a MemoryAccess in L.
Definition LICM.cpp:1222
static cl::opt< unsigned > IntAssociationUpperLimit("licm-max-num-int-reassociations", cl::init(5U), cl::Hidden, cl::desc("Set upper limit for the number of transformations performed " "during a single round of hoisting the reassociated expressions."))
static void foreachMemoryAccess(MemorySSA *MSSA, Loop *L, function_ref< void(Instruction *)> Fn)
Definition LICM.cpp:2325
static bool isLoadInvariantInLoop(LoadInst *LI, DominatorTree *DT, Loop *CurLoop)
Definition LICM.cpp:1153
static bool isHoistableAndSinkableInst(Instruction &I)
Return true if-and-only-if we know how to (mechanically) both hoist and sink a given instruction out ...
Definition LICM.cpp:1210
static Instruction * sinkThroughTriviallyReplaceablePHI(PHINode *TPN, Instruction *I, LoopInfo *LI, SmallDenseMap< BasicBlock *, Instruction *, 32 > &SunkCopies, const LoopSafetyInfo *SafetyInfo, const Loop *CurLoop, MemorySSAUpdater &MSSAU)
Definition LICM.cpp:1567
static bool inSubLoop(BasicBlock *BB, Loop *CurLoop, LoopInfo *LI)
Little predicate that returns true if the specified basic block is in a subloop of the current one,...
Definition LICM.cpp:3168
static bool hoistSub(ICmpInst::Predicate Pred, Value *VariantLHS, Value *InvariantRHS, ICmpInst &ICmp, Loop &L, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU, AssumptionCache *AC, DominatorTree *DT)
Try to reassociate and hoist the following two patterns: LV - C1 < C2 --> LV < C1 + C2,...
Definition LICM.cpp:2730
static void eraseInstruction(Instruction &I, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU)
Definition LICM.cpp:1545
static bool isSafeToExecuteUnconditionally(Instruction &Inst, const DominatorTree *DT, const TargetLibraryInfo *TLI, const Loop *CurLoop, const LoopSafetyInfo *SafetyInfo, OptimizationRemarkEmitter *ORE, const Instruction *CtxI, AssumptionCache *AC, bool AllowSpeculation)
Only sink or hoist an instruction if it is not a trapping instruction, or if the instruction is known...
Definition LICM.cpp:1825
static bool hoistArithmetics(Instruction &I, Loop &L, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU, AssumptionCache *AC, DominatorTree *DT)
Aggregates various functions for hoisting computations out of loop.
Definition LICM.cpp:3113
static bool noConflictingReadWrites(Instruction *I, MemorySSA *MSSA, AAResults *AA, Loop *CurLoop, SinkAndHoistLICMFlags &Flags)
Definition LICM.cpp:2427
static bool isTriviallyReplaceablePHI(const PHINode &PN, const Instruction &I)
Returns true if a PHINode is a trivially replaceable with an Instruction.
Definition LICM.cpp:1387
std::pair< SmallSetVector< Value *, 8 >, bool > PointersAndHasReadsOutsideSet
Definition LICM.cpp:226
static cl::opt< bool > DisablePromotion("disable-licm-promotion", cl::Hidden, cl::init(false), cl::desc("Disable memory promotion in LICM pass"))
Memory promotion is enabled by default.
static std::optional< uint64_t > getConstantInsertionIndex(InsertElementInst *Ins)
Definition LICM.cpp:1077
static bool hoistBOAssociation(Instruction &I, Loop &L, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU, AssumptionCache *AC, DominatorTree *DT)
Reassociate associative binary expressions of the form.
Definition LICM.cpp:2960
static bool pointerInvalidatedByBlock(BasicBlock &BB, MemorySSA &MSSA, MemoryUse &MU)
Definition LICM.cpp:2518
This file defines the interface for the loop nest analysis.
#define F(x, y, z)
Definition MD5.cpp:54
#define I(x, y, z)
Definition MD5.cpp:57
Memory SSA
Definition MemorySSA.cpp:73
This file exposes an interface to building/using memory SSA to walk memory instructions using a use/d...
This file contains the declarations for metadata subclasses.
Contains a collection of routines for determining if a given instruction is guaranteed to execute if ...
uint64_t IntrinsicInst * II
#define P(N)
if(PassOpts->AAPipeline)
PassInstrumentationCallbacks PIC
#define INITIALIZE_PASS_DEPENDENCY(depName)
Definition PassSupport.h:42
#define INITIALIZE_PASS_END(passName, arg, name, cfg, analysis)
Definition PassSupport.h:44
#define INITIALIZE_PASS_BEGIN(passName, arg, name, cfg, analysis)
Definition PassSupport.h:39
This file provides a priority worklist.
static DominatorTree getDomTree(Function &F)
Remove Loads Into Fake Uses
This file defines generic set operations that may be used on set's of different types,...
This file defines the 'Statistic' class, which is designed to be an easy way to expose various metric...
#define STATISTIC(VARNAME, DESC)
Definition Statistic.h:171
#define LLVM_DEBUG(...)
Definition Debug.h:119
This pass exposes codegen information to IR-level passes.
static cl::opt< bool > DisablePromotion("disable-type-promotion", cl::Hidden, cl::init(false), cl::desc("Disable type promotion pass"))
Value * RHS
Value * LHS
BinaryOperator * Mul
LLVM_ABI void addWithoutAATags(StoreInst *SI)
LLVM_ABI void add(const MemoryLocation &Loc)
These methods are used to add different types of instructions to the alias sets.
AnalysisUsage & addRequired()
AnalysisUsage & addPreserved()
Add the specified Pass class to the set of analyses preserved by this pass.
A cache of @llvm.assume calls within a function.
LLVM Basic Block Representation.
Definition BasicBlock.h:62
LLVM_ABI void replaceSuccessorsPhiUsesWith(BasicBlock *Old, BasicBlock *New)
Update all phi nodes in this basic block's successors to refer to basic block New instead of basic bl...
iterator begin()
Instruction iterator methods.
Definition BasicBlock.h:446
LLVM_ABI const_iterator getFirstInsertionPt() const
Returns an iterator to the first instruction in this block that is suitable for inserting a non-PHI i...
const Function * getParent() const
Return the enclosing method, or null if none.
Definition BasicBlock.h:213
bool hasTerminator() const LLVM_READONLY
Returns whether the block has a terminator.
Definition BasicBlock.h:232
LLVM_ABI InstListType::const_iterator getFirstNonPHIIt() const
Returns an iterator to the first instruction in this block that is not a PHINode instruction.
static BasicBlock * Create(LLVMContext &Context, const Twine &Name="", Function *Parent=nullptr, BasicBlock *InsertBefore=nullptr)
Creates a new BasicBlock.
Definition BasicBlock.h:206
LLVM_ABI const BasicBlock * getSingleSuccessor() const
Return the successor of this block if it has a single successor.
LLVM_ABI const DataLayout & getDataLayout() const
Get the data layout of the module this basic block belongs to.
InstListType::iterator iterator
Instruction iterators...
Definition BasicBlock.h:170
LLVM_ABI LLVMContext & getContext() const
Get the context in which this basic block lives.
void moveBefore(BasicBlock *MovePos)
Unlink this basic block from its current function and insert it into the function that MovePos lives ...
Definition BasicBlock.h:373
LLVM_ABI bool canSplitPredecessors() const
const Instruction * getTerminator() const LLVM_READONLY
Returns the terminator instruction; assumes that the block is well-formed.
Definition BasicBlock.h:237
This class is a wrapper over an AAResults, and it is intended to be used only when there are no IR ch...
ModRefInfo getModRefInfo(const Instruction *I, const std::optional< MemoryLocation > &OptLoc)
static LLVM_ABI BinaryOperator * Create(BinaryOps Op, Value *S1, Value *S2, const Twine &Name=Twine(), InsertPosition InsertBefore=nullptr)
Construct a binary instruction, given the opcode and the two operands.
This class represents a function call, abstracting a target machine's calling convention.
static CallInst * Create(FunctionType *Ty, Value *F, const Twine &NameStr="", InsertPosition InsertBefore=nullptr)
void setPredicate(Predicate P)
Set the predicate for this instruction to the specified value.
Definition InstrTypes.h:831
Predicate
This enumeration lists the possible predicates for CmpInst subclasses.
Definition InstrTypes.h:740
bool isSigned() const
Definition InstrTypes.h:993
Predicate getSwappedPredicate() const
For example, EQ->EQ, SLE->SGE, ULT->UGT, OEQ->OEQ, ULE->UGE, OLT->OGT, etc.
Definition InstrTypes.h:890
Predicate getInversePredicate() const
For example, EQ -> NE, UGT -> ULE, SLT -> SGE, OEQ -> UNE, UGT -> OLE, OLT -> UGE,...
Definition InstrTypes.h:852
An abstraction over a floating-point predicate, and a pack of an integer predicate with samesign info...
static LLVM_ABI std::optional< CmpPredicate > getMatching(CmpPredicate A, CmpPredicate B)
Compares two CmpPredicates taking samesign into account and returns the canonicalized CmpPredicate if...
Conditional Branch instruction.
static CondBrInst * Create(Value *Cond, BasicBlock *IfTrue, BasicBlock *IfFalse, InsertPosition InsertBefore=nullptr)
Value * getCondition() const
BasicBlock * getSuccessor(unsigned i) const
This is the shared class of boolean and integer constants.
Definition Constants.h:87
bool isNegative() const
Definition Constants.h:214
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
TypeSize getTypeStoreSize(Type *Ty) const
Returns the maximum number of bytes that may be overwritten by storing the specified type.
Definition DataLayout.h:579
static LLVM_ABI DebugLoc getMergedLocations(ArrayRef< DebugLoc > Locs)
Try to combine the vector of locations passed as input in a single one.
Definition DebugLoc.cpp:160
static DebugLoc getDropped()
Definition DebugLoc.h:155
iterator find(const_arg_type_t< KeyT > Val)
Definition DenseMap.h:223
std::pair< iterator, bool > try_emplace(KeyT &&Key, Ts &&...Args)
Definition DenseMap.h:299
iterator end()
Definition DenseMap.h:141
DomTreeNodeBase * getIDom() const
NodeT * getBlock() const
Analysis pass which computes a DominatorTree.
Definition Dominators.h:241
bool verify(VerificationLevel VL=VerificationLevel::Full) const
verify - checks if the tree is correct.
void changeImmediateDominator(DomTreeNodeBase< NodeT > *N, DomTreeNodeBase< NodeT > *NewIDom)
changeImmediateDominator - This method is used to update the dominator tree information when a node's...
DomTreeNodeBase< NodeT > * addNewBlock(NodeT *BB, NodeT *DomBB)
Add a new node to the dominator tree information.
DomTreeNodeBase< NodeT > * getNode(const NodeT *BB) const
getNode - return the (Post)DominatorTree node for the specified basic block.
bool properlyDominates(const DomTreeNodeBase< NodeT > *A, const DomTreeNodeBase< NodeT > *B) const
properlyDominates - Returns true iff A dominates B and A != B.
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.
LLVM_ABI bool dominates(const BasicBlock *BB, const Use &U) const
Return true if the (end of the) basic block BB dominates the use U.
Convenience struct for specifying and reasoning about fast-math flags.
Definition FMF.h:23
This implementation of LoopSafetyInfo use ImplicitControlFlowTracking to give precise answers on "may...
bool doesNotWriteMemoryBefore(const BasicBlock *BB) const
Returns true if we could not execute a memory-modifying instruction before we enter BB under assumpti...
bool isGuaranteedToExecute(const Instruction &Inst, const DominatorTree *DT) const override
Returns true if the instruction in a loop is guaranteed to execute at least once (under the assumptio...
void removeInstruction(const Instruction *Inst)
Inform safety info that we are planning to remove the instruction Inst from its block.
bool anyBlockMayThrow() const override
Returns true iff any block of the loop for which this info is contains an instruction that may throw ...
void insertInstructionTo(const Instruction *Inst, const BasicBlock *BB)
Inform the safety info that we are planning to insert a new instruction Inst into the basic block BB.
This instruction compares its operands according to the predicate given to the constructor.
static bool isGE(Predicate P)
Return true if the predicate is SGE or UGE.
static bool isLT(Predicate P)
Return true if the predicate is SLT or ULT.
static bool isGT(Predicate P)
Return true if the predicate is SGT or UGT.
bool isRelational() const
Return true if the predicate is relational (not EQ or NE).
static bool isLE(Predicate P)
Return true if the predicate is SLE or ULE.
This provides a uniform API for creating instructions and inserting them into a basic block: either a...
Definition IRBuilder.h:2910
This instruction inserts a single (scalar) element into a VectorType value.
VectorType * getType() const
Overload to return most specific vector type.
LLVM_ABI void mergeDIAssignID(ArrayRef< const Instruction * > SourceInstructions)
Merge the DIAssignID metadata from this instruction and those attached to instructions in SourceInstr...
const DebugLoc & getDebugLoc() const
Return the debug location for this node as a DebugLoc.
LLVM_ABI void setAAMetadata(const AAMDNodes &N)
Sets the AA metadata on this instruction from the AAMDNodes structure.
bool hasMetadata() const
Return true if this instruction has any metadata attached to it.
LLVM_ABI void moveBefore(InstListType::iterator InsertPos)
Unlink this instruction from its current basic block and insert it into the basic block that MovePos ...
LLVM_ABI bool isAtomic() const LLVM_READONLY
Return true if this instruction has an AtomicOrdering of unordered or higher.
LLVM_ABI void insertBefore(InstListType::iterator InsertPos)
Insert an unlinked instruction into a basic block immediately before the specified position.
LLVM_ABI InstListType::iterator eraseFromParent()
This method unlinks 'this' from the containing basic block and deletes it.
Instruction * user_back()
Specialize the methods defined in Value, as we know that an instruction can only be used by other ins...
MDNode * getMetadata(unsigned KindID) const
Get the metadata of given kind attached to this Instruction.
LLVM_ABI void setMetadata(unsigned KindID, MDNode *Node)
Set the metadata of the specified kind to the specified node.
LLVM_ABI AAMDNodes getAAMetadata() const
Returns the AA metadata for this instruction.
LLVM_ABI void dropPoisonGeneratingFlags()
Drops flags that may cause this instruction to evaluate to poison despite having non-poison inputs.
void setDebugLoc(DebugLoc Loc)
Set the debug location information for this instruction.
LLVM_ABI const DataLayout & getDataLayout() const
Get the data layout of the module this instruction belongs to.
A wrapper class for inspecting calls to intrinsic functions.
LLVM_ABI void printPipeline(raw_ostream &OS, function_ref< StringRef(StringRef)> MapClassName2PassName)
Definition LICM.cpp:333
LLVM_ABI PreservedAnalyses run(Loop &L, LoopAnalysisManager &AM, LoopStandardAnalysisResults &AR, LPMUpdater &U)
Definition LICM.cpp:311
LLVM_ABI PreservedAnalyses run(LoopNest &L, LoopAnalysisManager &AM, LoopStandardAnalysisResults &AR, LPMUpdater &U)
Definition LICM.cpp:343
LLVM_ABI void printPipeline(raw_ostream &OS, function_ref< StringRef(StringRef)> MapClassName2PassName)
Definition LICM.cpp:373
This class provides an interface for updating the loop pass manager based on mutations to the loop ne...
static void getLazyBFIAnalysisUsage(AnalysisUsage &AU)
Helper for client passes to set up the analysis usage on behalf of this pass.
Helper class for promoting a collection of loads and stores into SSA Form using the SSAUpdater.
Definition SSAUpdater.h:149
An instruction for reading from memory.
void setAlignment(Align Align)
Value * getPointerOperand()
void setOrdering(AtomicOrdering Ordering)
Sets the ordering constraint of this load instruction.
bool isUnordered() const
Analysis pass that exposes the LoopInfo for a function.
Definition LoopInfo.h:594
bool contains(const LoopT *L) const
Return true if the specified loop is contained within this loop.
BlockT * getHeader() const
void addBasicBlockToLoop(BlockT *NewBB, LoopInfoBase< BlockT, LoopT > &LI)
This method is used by other analyses to update loop information.
BlockT * getLoopPreheader() const
If there is a preheader for this loop, return it.
ArrayRef< BlockT * > getBlocks() const
Get a list of the basic blocks which make up this loop.
void getUniqueExitBlocks(SmallVectorImpl< BlockT * > &ExitBlocks) const
Return all unique successor blocks of this loop.
LoopT * getParentLoop() const
Return the parent loop if it exists or nullptr for top level loops.
Wrapper class to LoopBlocksDFS that provides a standard begin()/end() interface for the DFS reverse p...
void perform(const LoopInfo *LI)
Traverse the loop blocks and store the DFS result.
LoopT * getLoopFor(const BlockT *BB) const
Return the inner most loop that BB lives in.
LLVM_ABI bool wouldBeOutOfLoopUseRequiringLCSSA(const Value *V, const BasicBlock *ExitBB) const
This class represents a loop nest and can be used to query its properties.
Function * getParent() const
Return the function to which the loop-nest belongs.
Loop & getOutermostLoop() const
Return the outermost loop in the loop nest.
Captures loop safety information.
Definition MustExecute.h:55
LLVM_ABI void copyColors(BasicBlock *New, BasicBlock *Old)
Copy colors of block Old into the block New.
LLVM_ABI const DenseMap< BasicBlock *, ColorVector > & getBlockColors() const
Returns block colors map that is used to update funclet operand bundles.
virtual bool isGuaranteedToExecute(const Instruction &Inst, const DominatorTree *DT) const =0
Returns true if the instruction in a loop is guaranteed to execute at least once (under the assumptio...
Represents a single loop in the control flow graph.
Definition LoopInfo.h:40
bool hasLoopInvariantOperands(const Instruction *I) const
Return true if all the operands of the specified instruction are loop invariant.
Definition LoopInfo.cpp:73
bool isLoopInvariant(const Value *V) const
Return true if the specified value is loop invariant.
Definition LoopInfo.cpp:67
BasicBlock * getBlock() const
Definition MemorySSA.h:162
bool onlyWritesMemory() const
Whether this function only (at most) writes memory.
Definition ModRef.h:252
bool doesNotAccessMemory() const
Whether this function accesses no memory.
Definition ModRef.h:246
bool onlyReadsMemory() const
Whether this function only (at most) reads memory.
Definition ModRef.h:249
An analysis that produces MemorySSA for a function.
Definition MemorySSA.h:922
MemorySSA * getMemorySSA() const
Get handle on MemorySSA.
LLVM_ABI void insertDef(MemoryDef *Def, bool RenameUses=false)
Insert a definition into the MemorySSA IR.
LLVM_ABI void insertUse(MemoryUse *Use, bool RenameUses=false)
LLVM_ABI MemoryAccess * createMemoryAccessInBB(Instruction *I, MemoryAccess *Definition, const BasicBlock *BB, MemorySSA::InsertionPlace Point, bool CreationMustSucceed=true)
Create a MemoryAccess in MemorySSA at a specified point in a block.
LLVM_ABI void removeMemoryAccess(MemoryAccess *, bool OptimizePhis=false)
Remove a MemoryAccess from MemorySSA, including updating all definitions and uses.
LLVM_ABI MemoryUseOrDef * createMemoryAccessAfter(Instruction *I, MemoryAccess *Definition, MemoryAccess *InsertPt)
Create a MemoryAccess in MemorySSA after an existing MemoryAccess.
LLVM_ABI void moveToPlace(MemoryUseOrDef *What, BasicBlock *BB, MemorySSA::InsertionPlace Where)
LLVM_ABI void wireOldPredecessorsToNewImmediatePredecessor(BasicBlock *Old, BasicBlock *New, ArrayRef< BasicBlock * > Preds, bool IdenticalEdgesWereMerged=true)
A new empty BasicBlock (New) now branches directly to Old.
MemoryAccess * getClobberingMemoryAccess(const Instruction *I, BatchAAResults &AA)
Given a memory Mod/Ref/ModRef'ing instruction, calling this will give you the nearest dominating Memo...
Definition MemorySSA.h:1035
Legacy analysis pass which computes MemorySSA.
Definition MemorySSA.h:975
Encapsulates MemorySSA, including all data associated with memory accesses.
Definition MemorySSA.h:702
AliasAnalysis & getAA()
Definition MemorySSA.h:800
DefsList * getBlockDefs(const BasicBlock *BB) const
Return the list of MemoryDef's and MemoryPhi's for a given basic block.
Definition MemorySSA.h:765
LLVM_ABI MemorySSAWalker * getSkipSelfWalker()
AccessList * getBlockAccesses(const BasicBlock *BB) const
Return the list of MemoryAccess's for a given basic block.
Definition MemorySSA.h:758
LLVM_ABI bool dominates(const MemoryAccess *A, const MemoryAccess *B) const
Given two memory accesses in potentially different blocks, determine whether MemoryAccess A dominates...
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
LLVM_ABI bool locallyDominates(const MemoryAccess *A, const MemoryAccess *B) const
Given two memory accesses in the same basic block, determine whether MemoryAccess A dominates MemoryA...
bool isLiveOnEntryDef(const MemoryAccess *MA) const
Return true if MA represents the live on entry value.
Definition MemorySSA.h:740
Class that has the common methods + fields of memory uses/defs.
Definition MemorySSA.h:250
MemoryAccess * getDefiningAccess() const
Get the access that produces the memory state used by this Use.
Definition MemorySSA.h:260
Represents read-only accesses to memory.
Definition MemorySSA.h:310
The optimization diagnostic interface.
LLVM_ABI void emit(DiagnosticInfoOptimizationBase &OptDiag)
Output the remark via the diagnostic handler and to the optimization record file.
Diagnostic information for missed-optimization remarks.
Diagnostic information for applied optimization remarks.
void addIncoming(Value *V, BasicBlock *BB)
Add an incoming value to the end of the PHI list.
op_range incoming_values()
void setIncomingBlock(unsigned i, BasicBlock *BB)
BasicBlock * getIncomingBlock(unsigned i) const
Return incoming basic block number i.
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.
static PHINode * Create(Type *Ty, unsigned NumReservedValues, const Twine &NameStr="", InsertPosition InsertBefore=nullptr)
Constructors - NumReservedValues is a hint for the number of incoming edges that this phi node will h...
static LLVM_ABI PassRegistry * getPassRegistry()
getPassRegistry - Access the global registry object, which is automatically initialized at applicatio...
Pass interface - Implemented by all 'passes'.
Definition Pass.h:99
PointerIntPair - This class implements a pair of a pointer and small integer.
void setInt(IntType IntVal) &
PointerTy getPointer() const
static LLVM_ABI PoisonValue * get(Type *T)
Static factory methods - Return an 'poison' object of the specified type.
PredIteratorCache - This class is an extremely trivial cache for predecessor iterator queries.
size_t size(BasicBlock *BB)
ArrayRef< BasicBlock * > get(BasicBlock *BB)
A set of analyses that are preserved following a run of a transformation pass.
Definition Analysis.h:112
static PreservedAnalyses all()
Construct a special preserved set that preserves all passes.
Definition Analysis.h:118
bool empty() const
Determine if the PriorityWorklist is empty or not.
bool insert(const T &X)
Insert a new element into the PriorityWorklist.
Helper class for SSA formation on a set of values defined in multiple blocks.
Definition SSAUpdater.h:39
The main scalar evolution driver.
LLVM_ABI void forgetBlockAndLoopDispositions(Value *V=nullptr)
Called when the client has changed the disposition of values in a loop or block.
LLVM_ABI void forgetLoopDispositions()
Called when the client has changed the disposition of values in this loop.
bool remove(const value_type &X)
Remove an item from the set vector.
Definition SetVector.h:187
bool empty() const
Determine if the SetVector is empty or not.
Definition SetVector.h:100
iterator begin()
Get an iterator to the beginning of the SetVector.
Definition SetVector.h:112
bool insert(const value_type &X)
Insert a new element into the SetVector.
Definition SetVector.h:157
Flags controlling how much is checked when sinking or hoisting instructions.
Definition LoopUtils.h:123
LLVM_ABI SinkAndHoistLICMFlags(unsigned LicmMssaOptCap, unsigned LicmMssaNoAccForPromotionCap, bool IsSink, Loop &L, MemorySSA &MSSA)
Definition LICM.cpp:401
unsigned LicmMssaNoAccForPromotionCap
Definition LoopUtils.h:142
A version of PriorityWorklist that selects small size optimized data structures for the vector and ma...
size_type count(ConstPtrType Ptr) const
count - Return 1 if the specified pointer is in the set, 0 otherwise.
std::pair< iterator, bool > insert(PtrType Ptr)
Inserts Ptr if and only if there is no element in the container equal to Ptr.
bool contains(ConstPtrType Ptr) const
SmallPtrSet - This class implements a set which is optimized for holding SmallSize or less elements.
A SetVector that performs no allocations if smaller than a certain size.
Definition SetVector.h:345
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
reference emplace_back(ArgTypes &&... Args)
void reserve(size_type N)
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
An instruction for storing to memory.
void setAlignment(Align Align)
void setOrdering(AtomicOrdering Ordering)
Sets the ordering constraint of this store instruction.
static unsigned getPointerOperandIndex()
Represent a constant reference to a string, i.e.
Definition StringRef.h:56
Provides information about what library functions are available for the current target.
Wrapper pass for TargetTransformInfo.
This pass provides access to the codegen interfaces that are needed for IR-level transformations.
@ TCK_SizeAndLatency
The weighted sum of size and latency.
@ TCC_Free
Expected to fold away in lowering.
EltTy front() const
unsigned size() const
The instances of the Type class are immutable: once they are created, they are never changed.
Definition Type.h:46
static UncondBrInst * Create(BasicBlock *Target, InsertPosition InsertBefore=nullptr)
A Use represents the edge between a Value definition and its users.
Definition Use.h:35
const Use & getOperandUse(unsigned i) const
Definition User.h:220
void setOperand(unsigned i, Value *Val)
Definition User.h:212
Value * getOperand(unsigned i) const
Definition User.h:207
unsigned getNumOperands() const
Definition User.h:229
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 bool hasOneUser() const
Return true if there is exactly one user of this value.
Definition Value.cpp:163
LLVM_ABI std::string getNameOrAsOperand() const
Definition Value.cpp:461
bool hasOneUse() const
Return true if there is exactly one use of this value.
Definition Value.h:439
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
user_iterator_impl< User > user_iterator
Definition Value.h:391
LLVM_ABI StringRef getName() const
Return a constant reference to the value's name.
Definition Value.cpp:319
LLVM_ABI void takeName(Value *V)
Transfer the name from V to this value.
Definition Value.cpp:400
constexpr ScalarTy getFixedValue() const
Definition TypeSize.h:200
constexpr bool isScalable() const
Returns whether the quantity is scaled by a runtime quantity (vscale).
Definition TypeSize.h:168
An efficient, type-erasing, non-owning reference to a callable.
const ParentTy * getParent() const
Definition ilist_node.h:34
self_iterator getIterator()
Definition ilist_node.h:123
This class implements an extremely fast bulk output stream that can only output to a stream.
Definition raw_ostream.h:53
Changed
Abstract Attribute helper functions.
Definition Attributor.h:165
constexpr char Align[]
Key for Kernel::Arg::Metadata::mAlign.
@ BasicBlock
Various leaf nodes.
Definition ISDOpcodes.h:81
OneUse_match< SubPat > m_OneUse(const SubPat &SP)
BinaryOp_match< LHS, RHS, Instruction::Add > m_Add(const LHS &L, const RHS &R)
OverflowingBinaryOp_match< LHS, RHS, Instruction::Sub, OverflowingBinaryOperator::NoSignedWrap > m_NSWSub(const LHS &L, const RHS &R)
bool match(Val *V, const Pattern &P)
match_bind< Instruction > m_Instruction(Instruction *&I)
Match an instruction, capturing it if we match.
auto m_Value()
Match an arbitrary value and ignore it.
auto m_LogicalOr()
Matches L || R where L and R are arbitrary values.
BinaryOp_match< LHS, RHS, Instruction::Add, true > m_c_Add(const LHS &L, const RHS &R)
Matches a Add with LHS and RHS in either order.
auto m_Intrinsic(const Ts &...Ops)
Match intrinsic calls like this: m_Intrinsic<Intrinsic::fabs>(m_Value(X))
OverflowingBinaryOp_match< LHS, RHS, Instruction::Sub, OverflowingBinaryOperator::NoUnsignedWrap > m_NUWSub(const LHS &L, const RHS &R)
match_combine_or< OverflowingBinaryOp_match< LHS, RHS, Instruction::Add, OverflowingBinaryOperator::NoSignedWrap >, DisjointOr_match< LHS, RHS > > m_NSWAddLike(const LHS &L, const RHS &R)
Match either "add nsw" or "or disjoint".
CmpClass_match< LHS, RHS, ICmpInst > m_ICmp(CmpPredicate &Pred, const LHS &L, const RHS &R)
auto m_LogicalAnd()
Matches L && R where L and R are arbitrary values.
match_combine_or< OverflowingBinaryOp_match< LHS, RHS, Instruction::Add, OverflowingBinaryOperator::NoUnsignedWrap >, DisjointOr_match< LHS, RHS > > m_NUWAddLike(const LHS &L, const RHS &R)
Match either "add nuw" or "or disjoint".
BinaryOp_match< LHS, RHS, Instruction::Sub > m_Sub(const LHS &L, const RHS &R)
initializer< Ty > init(const Ty &Val)
DiagnosticInfoOptimizationBase::Argument NV
friend class Instruction
Iterator for Instructions in a `BasicBlock.
Definition BasicBlock.h:73
This is an optimization pass for GlobalISel generic memory operations.
@ NeverOverflows
Never overflows.
LLVM_ABI cl::opt< bool > ProfcheckDisableMetadataFixes
Definition LoopInfo.cpp:60
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 bool canSinkOrHoistInst(Instruction &I, AAResults *AA, DominatorTree *DT, Loop *CurLoop, MemorySSAUpdater &MSSAU, bool TargetExecutesOncePerLoop, SinkAndHoistLICMFlags &LICMFlags, OptimizationRemarkEmitter *ORE=nullptr)
Returns true if is legal to hoist or sink this instruction disregarding the possible introduction of ...
Definition LICM.cpp:1293
auto pred_end(const MachineBasicBlock *BB)
void set_intersect(S1Ty &S1, const S2Ty &S2)
set_intersect(A, B) - Compute A := A ^ B Identical to set_intersection, except that it works on set<>...
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:643
bool isStrongerThanMonotonic(AtomicOrdering AO)
LLVM_ABI void salvageDebugInfo(const MachineRegisterInfo &MRI, MachineInstr &MI)
Assuming the instruction MI is going to be deleted, attempt to salvage debug users of MI by writing t...
Definition Utils.cpp:1675
auto successors(const MachineBasicBlock *BB)
@ Load
The value being inserted comes from a load (InsertElement only).
@ Store
The extracted value is stored (ExtractElement only).
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
iterator_range< early_inc_iterator_impl< detail::IterOfRange< RangeT > > > make_early_inc_range(RangeT &&Range)
Make a range that does early increment to allow mutation of the underlying range without disrupting i...
Definition STLExtras.h:633
auto cast_or_null(const Y &Val)
Definition Casting.h:714
auto pred_size(const MachineBasicBlock *BB)
MemoryEffectsBase< IRMemLocation > MemoryEffects
Summary of how a function affects memory in the program.
Definition ModRef.h:356
LLVM_ABI bool isSafeToSpeculativelyExecute(const Instruction *I, const Instruction *CtxI=nullptr, AssumptionCache *AC=nullptr, const DominatorTree *DT=nullptr, const TargetLibraryInfo *TLI=nullptr, bool UseVariableInfo=true, bool IgnoreUBImplyingAttrs=true)
Return true if the instruction does not have any effects besides calculating the result and does not ...
LLVM_ABI bool PointerMayBeCapturedBefore(const Value *V, bool ReturnCaptures, const Instruction *I, const DominatorTree *DT, bool IncludeI=false, unsigned MaxUsesToExplore=0, const LoopInfo *LI=nullptr)
PointerMayBeCapturedBefore - Return true if this pointer value may be captured by the enclosing funct...
LLVM_ABI Pass * createLICMPass()
Definition LICM.cpp:394
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.
RelativeUniformCounterPtr ValuesPtrExpr VTableAddr Value
Definition InstrProf.h:143
DomTreeNodeBase< BasicBlock > DomTreeNode
Definition Dominators.h:65
AnalysisManager< Loop, LoopStandardAnalysisResults & > LoopAnalysisManager
The loop analysis manager.
LLVM_ABI bool hoistRegion(DomTreeNode *, AAResults *, LoopInfo *, DominatorTree *, AssumptionCache *, TargetLibraryInfo *, Loop *, MemorySSAUpdater &, ScalarEvolution *, ICFLoopSafetyInfo *, SinkAndHoistLICMFlags &, OptimizationRemarkEmitter *, bool, bool AllowSpeculation)
Walk the specified region of the CFG (defined by all blocks dominated by the specified block,...
Definition LICM.cpp:895
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:402
LLVM_ABI bool isGuard(const User *U)
Returns true iff U has semantics of a guard expressed in a form of call of llvm.experimental....
auto reverse(ContainerTy &&C)
Definition STLExtras.h:407
LLVM_ABI OverflowResult computeOverflowForSignedSub(const Value *LHS, const Value *RHS, const SimplifyQuery &SQ)
LLVM_ABI void initializeLegacyLICMPassPass(PassRegistry &)
bool isModSet(const ModRefInfo MRI)
Definition ModRef.h:49
LLVM_ABI raw_ostream & dbgs()
dbgs() - This returns a reference to a raw_ostream for debugging messages.
Definition Debug.cpp:209
LLVM_TEMPLATE_ABI void appendLoopsToWorklist(RangeT &&, SmallPriorityWorklist< Loop *, 4 > &)
Utility that implements appending of loops onto a worklist given a range.
LLVM_ABI bool isNotVisibleOnUnwind(const Value *Object, bool &RequiresNoCaptureBeforeUnwind)
Return true if Object memory is not visible after an unwind, in the sense that program semantics cann...
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 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...
ModRefInfo
Flags indicating whether a memory access modifies or references memory.
Definition ModRef.h:28
TargetTransformInfo TTI
LLVM_ABI bool VerifyMemorySSA
Enables verification of MemorySSA.
Definition MemorySSA.cpp:85
LLVM_ABI bool salvageKnowledge(Instruction *I, AssumptionCache *AC=nullptr, DominatorTree *DT=nullptr)
Calls BuildAssumeFromInst and if the resulting llvm.assume is valid insert if before I.
LLVM_ABI bool hasDisableLICMTransformsHint(const Loop *L)
Look for the loop attribute that disables the LICM transformation heuristics.
LLVM_ABI OverflowResult computeOverflowForSignedAdd(const WithCache< const Value * > &LHS, const WithCache< const Value * > &RHS, const SimplifyQuery &SQ)
@ Add
Sum of integers.
DWARFExpression::Operation Op
LLVM_ABI bool isDereferenceableAndAlignedPointer(const Value *V, Type *Ty, Align Alignment, const SimplifyQuery &Q, bool IgnoreFree=false)
Returns true if V is always a dereferenceable pointer with alignment greater or equal than requested.
Definition Loads.cpp:244
ArrayRef(const T &OneElt) -> ArrayRef< T >
LLVM_ABI bool isIdentifiedFunctionLocal(const Value *V)
Return true if V is umabigously identified at the function-level.
OutputIt move(R &&Range, OutputIt Out)
Provide wrappers to std::move which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1917
LLVM_ABI OverflowResult computeOverflowForUnsignedSub(const Value *LHS, const Value *RHS, const SimplifyQuery &SQ)
TinyPtrVector< BasicBlock * > ColorVector
auto pred_begin(const MachineBasicBlock *BB)
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:559
LLVM_ABI PreservedAnalyses getLoopPassPreservedAnalyses()
Returns the minimum set of Analyses that all loop passes must preserve.
auto find_if(R &&Range, UnaryPredicate P)
Provide wrappers to std::find_if which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1772
void erase_if(Container &C, UnaryPredicate P)
Provide a container algorithm similar to C++ Library Fundamentals v2's erase_if which is equivalent t...
Definition STLExtras.h:2192
auto predecessors(const MachineBasicBlock *BB)
Type * getLoadStoreType(const Value *I)
A helper function that returns the type of a load or store instruction.
LLVM_ABI bool sinkRegion(DomTreeNode *, AAResults *, LoopInfo *, DominatorTree *, TargetLibraryInfo *, TargetTransformInfo *, Loop *CurLoop, MemorySSAUpdater &, ICFLoopSafetyInfo *, SinkAndHoistLICMFlags &, OptimizationRemarkEmitter *, Loop *OutermostLoop=nullptr)
Walk the specified region of the CFG (defined by all blocks dominated by the specified block,...
Definition LICM.cpp:566
LLVM_ABI OverflowResult computeOverflowForUnsignedAdd(const WithCache< const Value * > &LHS, const WithCache< const Value * > &RHS, const SimplifyQuery &SQ)
LLVM_ABI cl::opt< unsigned > SetLicmMssaNoAccForPromotionCap
LLVM_ABI bool canHoistLoad(LoadInst &LI, AAResults *AA, DominatorTree *DT, Loop *CurLoop, MemorySSA &MSSA, bool TargetExecutesOncePerLoop, SinkAndHoistLICMFlags &LICMFlags, OptimizationRemarkEmitter *ORE=nullptr)
Returns true if it is legal to hoist LI out of CurLoop.
Definition LICM.cpp:1252
LLVM_ABI bool isDereferenceablePointer(const Value *V, Type *Ty, const SimplifyQuery &Q, bool IgnoreFree=false)
Equivalent to isDereferenceableAndAlignedPointer with an alignment of 1.
Definition Loads.cpp:264
LLVM_ABI const Value * getUnderlyingObject(const Value *V, unsigned MaxLookup=MaxLookupSearchDepth)
This method strips off any GEP address adjustments, pointer casts or llvm.threadlocal....
AAResults AliasAnalysis
Temporary typedef for legacy code that uses a generic AliasAnalysis pointer or reference.
bool capturesNothing(CaptureComponents CC)
Definition ModRef.h:375
LLVM_ABI bool isKnownNonNegative(const Value *V, const SimplifyQuery &SQ, unsigned Depth=0)
Returns true if the give value is known to be non-negative.
LLVM_ABI bool promoteLoopAccessesToScalars(const SmallSetVector< Value *, 8 > &, SmallVectorImpl< BasicBlock * > &, SmallVectorImpl< BasicBlock::iterator > &, SmallVectorImpl< MemoryAccess * > &, PredIteratorCache &, LoopInfo *, DominatorTree *, AssumptionCache *AC, const TargetLibraryInfo *, TargetTransformInfo *, Loop *, MemorySSAUpdater &, ICFLoopSafetyInfo *, OptimizationRemarkEmitter *, bool AllowSpeculation, bool HasReadsOutsideSet)
Try to promote memory values to scalars by sinking stores out of the loop and moving loads to before ...
Definition LICM.cpp:2006
bool isNoModRef(const ModRefInfo MRI)
Definition ModRef.h:40
LLVM_ABI cl::opt< unsigned > SetLicmMssaOptCap
LLVM_ABI bool sinkRegionForLoopNest(DomTreeNode *, AAResults *, LoopInfo *, DominatorTree *, TargetLibraryInfo *, TargetTransformInfo *, Loop *, MemorySSAUpdater &, ICFLoopSafetyInfo *, SinkAndHoistLICMFlags &, OptimizationRemarkEmitter *)
Call sinkRegion on loops contained within the specified loop in order from innermost to outermost.
Definition LICM.cpp:633
bool isRefSet(const ModRefInfo MRI)
Definition ModRef.h:52
LLVM_ABI bool isWritableObject(const Value *Object, bool &ExplicitlyDereferenceableOnly)
Return true if the Object is writable, in the sense that any location based on this pointer that can ...
LLVM_ABI void reportFatalUsageError(Error Err)
Report a fatal error that does not indicate a bug in LLVM.
Definition Error.cpp:177
void swap(llvm::BitVector &LHS, llvm::BitVector &RHS)
Implement std::swap in terms of BitVector swap.
Definition BitVector.h:880
#define N
A collection of metadata nodes that might be associated with a memory access used by the alias-analys...
Definition Metadata.h:763
LLVM_ABI AAMDNodes merge(const AAMDNodes &Other) const
Given two sets of AAMDNodes applying to potentially different locations, determine the best AAMDNodes...
This struct is a compact representation of a valid (non-zero power of two) alignment.
Definition Alignment.h:39
The adaptor from a function pass to a loop pass computes these analyses and makes them available to t...
A lightweight accessor for an operand bundle meant to be passed around by value.
uint32_t getTagID() const
Return the tag of this operand bundle as an integer.