1 //===-- LICM.cpp - Loop Invariant Code Motion Pass ------------------------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This pass performs loop invariant code motion, attempting to remove as much
11 // code from the body of a loop as possible.  It does this by either hoisting
12 // code into the preheader block, or by sinking code to the exit blocks if it is
13 // safe.  This pass also promotes must-aliased memory locations in the loop to
14 // live in registers, thus hoisting and sinking "invariant" loads and stores.
15 //
16 // This pass uses alias analysis for two purposes:
17 //
18 //  1. Moving loop invariant loads and calls out of loops.  If we can determine
19 //     that a load or call inside of a loop never aliases anything stored to,
20 //     we can hoist it or sink it like any other instruction.
21 //  2. Scalar Promotion of Memory - If there is a store instruction inside of
22 //     the loop, we try to move the store to happen AFTER the loop instead of
23 //     inside of the loop.  This can only happen if a few conditions are true:
24 //       A. The pointer stored through is loop invariant
25 //       B. There are no stores or loads in the loop which _may_ alias the
26 //          pointer.  There are no calls in the loop which mod/ref the pointer.
27 //     If these conditions are true, we can promote the loads and stores in the
28 //     loop of the pointer to use a temporary alloca'd variable.  We then use
29 //     the SSAUpdater to construct the appropriate SSA form for the value.
30 //
31 //===----------------------------------------------------------------------===//
32 
33 #include "llvm/ADT/Statistic.h"
34 #include "llvm/Analysis/AliasAnalysis.h"
35 #include "llvm/Analysis/AliasSetTracker.h"
36 #include "llvm/Analysis/BasicAliasAnalysis.h"
37 #include "llvm/Analysis/CaptureTracking.h"
38 #include "llvm/Analysis/ConstantFolding.h"
39 #include "llvm/Analysis/GlobalsModRef.h"
40 #include "llvm/Analysis/Loads.h"
41 #include "llvm/Analysis/LoopInfo.h"
42 #include "llvm/Analysis/LoopPass.h"
43 #include "llvm/Analysis/MemoryBuiltins.h"
44 #include "llvm/Analysis/ScalarEvolution.h"
45 #include "llvm/Analysis/ScalarEvolutionAliasAnalysis.h"
46 #include "llvm/Analysis/TargetLibraryInfo.h"
47 #include "llvm/Analysis/ValueTracking.h"
48 #include "llvm/IR/CFG.h"
49 #include "llvm/IR/Constants.h"
50 #include "llvm/IR/DataLayout.h"
51 #include "llvm/IR/DerivedTypes.h"
52 #include "llvm/IR/Dominators.h"
53 #include "llvm/IR/Instructions.h"
54 #include "llvm/IR/IntrinsicInst.h"
55 #include "llvm/IR/LLVMContext.h"
56 #include "llvm/IR/Metadata.h"
57 #include "llvm/IR/PredIteratorCache.h"
58 #include "llvm/Support/CommandLine.h"
59 #include "llvm/Support/Debug.h"
60 #include "llvm/Support/raw_ostream.h"
61 #include "llvm/Transforms/Scalar.h"
62 #include "llvm/Transforms/Utils/Local.h"
63 #include "llvm/Transforms/Utils/LoopUtils.h"
64 #include "llvm/Transforms/Utils/SSAUpdater.h"
65 #include <algorithm>
66 #include <utility>
67 using namespace llvm;
68 
69 #define DEBUG_TYPE "licm"
70 
71 STATISTIC(NumSunk, "Number of instructions sunk out of loop");
72 STATISTIC(NumHoisted, "Number of instructions hoisted out of loop");
73 STATISTIC(NumMovedLoads, "Number of load insts hoisted or sunk");
74 STATISTIC(NumMovedCalls, "Number of call insts hoisted or sunk");
75 STATISTIC(NumPromoted, "Number of memory locations promoted to registers");
76 
77 static cl::opt<bool>
78     DisablePromotion("disable-licm-promotion", cl::Hidden,
79                      cl::desc("Disable memory promotion in LICM pass"));
80 
81 static bool inSubLoop(BasicBlock *BB, Loop *CurLoop, LoopInfo *LI);
82 static bool isNotUsedInLoop(const Instruction &I, const Loop *CurLoop,
83                             const LICMSafetyInfo *SafetyInfo);
84 static bool hoist(Instruction &I, const DominatorTree *DT, const Loop *CurLoop,
85                   const LICMSafetyInfo *SafetyInfo);
86 static bool sink(Instruction &I, const LoopInfo *LI, const DominatorTree *DT,
87                  const Loop *CurLoop, AliasSetTracker *CurAST,
88                  const LICMSafetyInfo *SafetyInfo);
89 static bool isGuaranteedToExecute(const Instruction &Inst,
90                                   const DominatorTree *DT, const Loop *CurLoop,
91                                   const LICMSafetyInfo *SafetyInfo);
92 static bool isSafeToExecuteUnconditionally(const Instruction &Inst,
93                                            const DominatorTree *DT,
94                                            const TargetLibraryInfo *TLI,
95                                            const Loop *CurLoop,
96                                            const LICMSafetyInfo *SafetyInfo,
97                                            const Instruction *CtxI = nullptr);
98 static bool pointerInvalidatedByLoop(Value *V, uint64_t Size,
99                                      const AAMDNodes &AAInfo,
100                                      AliasSetTracker *CurAST);
101 static Instruction *
102 CloneInstructionInExitBlock(Instruction &I, BasicBlock &ExitBlock, PHINode &PN,
103                             const LoopInfo *LI,
104                             const LICMSafetyInfo *SafetyInfo);
105 static bool canSinkOrHoistInst(Instruction &I, AliasAnalysis *AA,
106                                DominatorTree *DT, TargetLibraryInfo *TLI,
107                                Loop *CurLoop, AliasSetTracker *CurAST,
108                                LICMSafetyInfo *SafetyInfo);
109 
110 namespace {
111 struct LICM : public LoopPass {
112   static char ID; // Pass identification, replacement for typeid
113   LICM() : LoopPass(ID) {
114     initializeLICMPass(*PassRegistry::getPassRegistry());
115   }
116 
117   bool runOnLoop(Loop *L, LPPassManager &LPM) override;
118 
119   /// This transformation requires natural loop information & requires that
120   /// loop preheaders be inserted into the CFG...
121   ///
122   void getAnalysisUsage(AnalysisUsage &AU) const override {
123     AU.setPreservesCFG();
124     AU.addRequired<TargetLibraryInfoWrapperPass>();
125     getLoopAnalysisUsage(AU);
126   }
127 
128   using llvm::Pass::doFinalization;
129 
130   bool doFinalization() override {
131     assert(LoopToAliasSetMap.empty() && "Didn't free loop alias sets");
132     return false;
133   }
134 
135 private:
136   AliasAnalysis *AA; // Current AliasAnalysis information
137   LoopInfo *LI;      // Current LoopInfo
138   DominatorTree *DT; // Dominator Tree for the current Loop.
139 
140   TargetLibraryInfo *TLI; // TargetLibraryInfo for constant folding.
141 
142   // State that is updated as we process loops.
143   bool Changed;            // Set to true when we change anything.
144   BasicBlock *Preheader;   // The preheader block of the current loop...
145   Loop *CurLoop;           // The current loop we are working on...
146   AliasSetTracker *CurAST; // AliasSet information for the current loop...
147   DenseMap<Loop *, AliasSetTracker *> LoopToAliasSetMap;
148 
149   /// cloneBasicBlockAnalysis - Simple Analysis hook. Clone alias set info.
150   void cloneBasicBlockAnalysis(BasicBlock *From, BasicBlock *To,
151                                Loop *L) override;
152 
153   /// deleteAnalysisValue - Simple Analysis hook. Delete value V from alias
154   /// set.
155   void deleteAnalysisValue(Value *V, Loop *L) override;
156 
157   /// Simple Analysis hook. Delete loop L from alias set map.
158   void deleteAnalysisLoop(Loop *L) override;
159 
160   AliasSetTracker *collectAliasInfoForLoop(Loop *L);
161 };
162 }
163 
164 char LICM::ID = 0;
165 INITIALIZE_PASS_BEGIN(LICM, "licm", "Loop Invariant Code Motion", false, false)
166 INITIALIZE_PASS_DEPENDENCY(LoopPass)
167 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass)
168 INITIALIZE_PASS_END(LICM, "licm", "Loop Invariant Code Motion", false, false)
169 
170 Pass *llvm::createLICMPass() { return new LICM(); }
171 
172 /// Hoist expressions out of the specified loop. Note, alias info for inner
173 /// loop is not preserved so it is not a good idea to run LICM multiple
174 /// times on one loop.
175 ///
176 bool LICM::runOnLoop(Loop *L, LPPassManager &LPM) {
177   if (skipLoop(L))
178     return false;
179 
180   Changed = false;
181 
182   // Get our Loop and Alias Analysis information...
183   LI = &getAnalysis<LoopInfoWrapperPass>().getLoopInfo();
184   AA = &getAnalysis<AAResultsWrapperPass>().getAAResults();
185   DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree();
186 
187   TLI = &getAnalysis<TargetLibraryInfoWrapperPass>().getTLI();
188 
189   assert(L->isLCSSAForm(*DT) && "Loop is not in LCSSA form.");
190 
191   CurAST = collectAliasInfoForLoop(L);
192 
193   CurLoop = L;
194 
195   // Get the preheader block to move instructions into...
196   Preheader = L->getLoopPreheader();
197 
198   // Compute loop safety information.
199   LICMSafetyInfo SafetyInfo;
200   computeLICMSafetyInfo(&SafetyInfo, CurLoop);
201 
202   // We want to visit all of the instructions in this loop... that are not parts
203   // of our subloops (they have already had their invariants hoisted out of
204   // their loop, into this loop, so there is no need to process the BODIES of
205   // the subloops).
206   //
207   // Traverse the body of the loop in depth first order on the dominator tree so
208   // that we are guaranteed to see definitions before we see uses.  This allows
209   // us to sink instructions in one pass, without iteration.  After sinking
210   // instructions, we perform another pass to hoist them out of the loop.
211   //
212   if (L->hasDedicatedExits())
213     Changed |= sinkRegion(DT->getNode(L->getHeader()), AA, LI, DT, TLI, CurLoop,
214                           CurAST, &SafetyInfo);
215   if (Preheader)
216     Changed |= hoistRegion(DT->getNode(L->getHeader()), AA, LI, DT, TLI,
217                            CurLoop, CurAST, &SafetyInfo);
218 
219   // Now that all loop invariants have been removed from the loop, promote any
220   // memory references to scalars that we can.
221   if (!DisablePromotion && (Preheader || L->hasDedicatedExits())) {
222     SmallVector<BasicBlock *, 8> ExitBlocks;
223     SmallVector<Instruction *, 8> InsertPts;
224     PredIteratorCache PIC;
225 
226     // Loop over all of the alias sets in the tracker object.
227     for (AliasSet &AS : *CurAST)
228       Changed |=
229           promoteLoopAccessesToScalars(AS, ExitBlocks, InsertPts, PIC, LI, DT,
230                                        TLI, CurLoop, CurAST, &SafetyInfo);
231 
232     // Once we have promoted values across the loop body we have to recursively
233     // reform LCSSA as any nested loop may now have values defined within the
234     // loop used in the outer loop.
235     // FIXME: This is really heavy handed. It would be a bit better to use an
236     // SSAUpdater strategy during promotion that was LCSSA aware and reformed
237     // it as it went.
238     if (Changed) {
239       auto *SEWP = getAnalysisIfAvailable<ScalarEvolutionWrapperPass>();
240       formLCSSARecursively(*L, *DT, LI, SEWP ? &SEWP->getSE() : nullptr);
241     }
242   }
243 
244   // Check that neither this loop nor its parent have had LCSSA broken. LICM is
245   // specifically moving instructions across the loop boundary and so it is
246   // especially in need of sanity checking here.
247   assert(L->isLCSSAForm(*DT) && "Loop not left in LCSSA form after LICM!");
248   assert((!L->getParentLoop() || L->getParentLoop()->isLCSSAForm(*DT)) &&
249          "Parent loop not left in LCSSA form after LICM!");
250 
251   // Clear out loops state information for the next iteration
252   CurLoop = nullptr;
253   Preheader = nullptr;
254 
255   // If this loop is nested inside of another one, save the alias information
256   // for when we process the outer loop.
257   if (L->getParentLoop())
258     LoopToAliasSetMap[L] = CurAST;
259   else
260     delete CurAST;
261 
262   if (Changed)
263     if (auto *SEWP = getAnalysisIfAvailable<ScalarEvolutionWrapperPass>())
264       SEWP->getSE().forgetLoopDispositions(L);
265   return Changed;
266 }
267 
268 /// Walk the specified region of the CFG (defined by all blocks dominated by
269 /// the specified block, and that are in the current loop) in reverse depth
270 /// first order w.r.t the DominatorTree.  This allows us to visit uses before
271 /// definitions, allowing us to sink a loop body in one pass without iteration.
272 ///
273 bool llvm::sinkRegion(DomTreeNode *N, AliasAnalysis *AA, LoopInfo *LI,
274                       DominatorTree *DT, TargetLibraryInfo *TLI, Loop *CurLoop,
275                       AliasSetTracker *CurAST, LICMSafetyInfo *SafetyInfo) {
276 
277   // Verify inputs.
278   assert(N != nullptr && AA != nullptr && LI != nullptr && DT != nullptr &&
279          CurLoop != nullptr && CurAST != nullptr && SafetyInfo != nullptr &&
280          "Unexpected input to sinkRegion");
281 
282   BasicBlock *BB = N->getBlock();
283   // If this subregion is not in the top level loop at all, exit.
284   if (!CurLoop->contains(BB))
285     return false;
286 
287   // We are processing blocks in reverse dfo, so process children first.
288   bool Changed = false;
289   const std::vector<DomTreeNode *> &Children = N->getChildren();
290   for (DomTreeNode *Child : Children)
291     Changed |= sinkRegion(Child, AA, LI, DT, TLI, CurLoop, CurAST, SafetyInfo);
292 
293   // Only need to process the contents of this block if it is not part of a
294   // subloop (which would already have been processed).
295   if (inSubLoop(BB, CurLoop, LI))
296     return Changed;
297 
298   for (BasicBlock::iterator II = BB->end(); II != BB->begin();) {
299     Instruction &I = *--II;
300 
301     // If the instruction is dead, we would try to sink it because it isn't used
302     // in the loop, instead, just delete it.
303     if (isInstructionTriviallyDead(&I, TLI)) {
304       DEBUG(dbgs() << "LICM deleting dead inst: " << I << '\n');
305       ++II;
306       CurAST->deleteValue(&I);
307       I.eraseFromParent();
308       Changed = true;
309       continue;
310     }
311 
312     // Check to see if we can sink this instruction to the exit blocks
313     // of the loop.  We can do this if the all users of the instruction are
314     // outside of the loop.  In this case, it doesn't even matter if the
315     // operands of the instruction are loop invariant.
316     //
317     if (isNotUsedInLoop(I, CurLoop, SafetyInfo) &&
318         canSinkOrHoistInst(I, AA, DT, TLI, CurLoop, CurAST, SafetyInfo)) {
319       ++II;
320       Changed |= sink(I, LI, DT, CurLoop, CurAST, SafetyInfo);
321     }
322   }
323   return Changed;
324 }
325 
326 /// Walk the specified region of the CFG (defined by all blocks dominated by
327 /// the specified block, and that are in the current loop) in depth first
328 /// order w.r.t the DominatorTree.  This allows us to visit definitions before
329 /// uses, allowing us to hoist a loop body in one pass without iteration.
330 ///
331 bool llvm::hoistRegion(DomTreeNode *N, AliasAnalysis *AA, LoopInfo *LI,
332                        DominatorTree *DT, TargetLibraryInfo *TLI, Loop *CurLoop,
333                        AliasSetTracker *CurAST, LICMSafetyInfo *SafetyInfo) {
334   // Verify inputs.
335   assert(N != nullptr && AA != nullptr && LI != nullptr && DT != nullptr &&
336          CurLoop != nullptr && CurAST != nullptr && SafetyInfo != nullptr &&
337          "Unexpected input to hoistRegion");
338 
339   BasicBlock *BB = N->getBlock();
340 
341   // If this subregion is not in the top level loop at all, exit.
342   if (!CurLoop->contains(BB))
343     return false;
344 
345   // Only need to process the contents of this block if it is not part of a
346   // subloop (which would already have been processed).
347   bool Changed = false;
348   if (!inSubLoop(BB, CurLoop, LI))
349     for (BasicBlock::iterator II = BB->begin(), E = BB->end(); II != E;) {
350       Instruction &I = *II++;
351       // Try constant folding this instruction.  If all the operands are
352       // constants, it is technically hoistable, but it would be better to just
353       // fold it.
354       if (Constant *C = ConstantFoldInstruction(
355               &I, I.getModule()->getDataLayout(), TLI)) {
356         DEBUG(dbgs() << "LICM folding inst: " << I << "  --> " << *C << '\n');
357         CurAST->copyValue(&I, C);
358         CurAST->deleteValue(&I);
359         I.replaceAllUsesWith(C);
360         I.eraseFromParent();
361         continue;
362       }
363 
364       // Try hoisting the instruction out to the preheader.  We can only do this
365       // if all of the operands of the instruction are loop invariant and if it
366       // is safe to hoist the instruction.
367       //
368       if (CurLoop->hasLoopInvariantOperands(&I) &&
369           canSinkOrHoistInst(I, AA, DT, TLI, CurLoop, CurAST, SafetyInfo) &&
370           isSafeToExecuteUnconditionally(
371               I, DT, TLI, CurLoop, SafetyInfo,
372               CurLoop->getLoopPreheader()->getTerminator()))
373         Changed |= hoist(I, DT, CurLoop, SafetyInfo);
374     }
375 
376   const std::vector<DomTreeNode *> &Children = N->getChildren();
377   for (DomTreeNode *Child : Children)
378     Changed |= hoistRegion(Child, AA, LI, DT, TLI, CurLoop, CurAST, SafetyInfo);
379   return Changed;
380 }
381 
382 /// Computes loop safety information, checks loop body & header
383 /// for the possibility of may throw exception.
384 ///
385 void llvm::computeLICMSafetyInfo(LICMSafetyInfo *SafetyInfo, Loop *CurLoop) {
386   assert(CurLoop != nullptr && "CurLoop cant be null");
387   BasicBlock *Header = CurLoop->getHeader();
388   // Setting default safety values.
389   SafetyInfo->MayThrow = false;
390   SafetyInfo->HeaderMayThrow = false;
391   // Iterate over header and compute safety info.
392   for (BasicBlock::iterator I = Header->begin(), E = Header->end();
393        (I != E) && !SafetyInfo->HeaderMayThrow; ++I)
394     SafetyInfo->HeaderMayThrow |= I->mayThrow();
395 
396   SafetyInfo->MayThrow = SafetyInfo->HeaderMayThrow;
397   // Iterate over loop instructions and compute safety info.
398   for (Loop::block_iterator BB = CurLoop->block_begin(),
399                             BBE = CurLoop->block_end();
400        (BB != BBE) && !SafetyInfo->MayThrow; ++BB)
401     for (BasicBlock::iterator I = (*BB)->begin(), E = (*BB)->end();
402          (I != E) && !SafetyInfo->MayThrow; ++I)
403       SafetyInfo->MayThrow |= I->mayThrow();
404 
405   // Compute funclet colors if we might sink/hoist in a function with a funclet
406   // personality routine.
407   Function *Fn = CurLoop->getHeader()->getParent();
408   if (Fn->hasPersonalityFn())
409     if (Constant *PersonalityFn = Fn->getPersonalityFn())
410       if (isFuncletEHPersonality(classifyEHPersonality(PersonalityFn)))
411         SafetyInfo->BlockColors = colorEHFunclets(*Fn);
412 }
413 
414 /// canSinkOrHoistInst - Return true if the hoister and sinker can handle this
415 /// instruction.
416 ///
417 bool canSinkOrHoistInst(Instruction &I, AliasAnalysis *AA, DominatorTree *DT,
418                         TargetLibraryInfo *TLI, Loop *CurLoop,
419                         AliasSetTracker *CurAST, LICMSafetyInfo *SafetyInfo) {
420   // Loads have extra constraints we have to verify before we can hoist them.
421   if (LoadInst *LI = dyn_cast<LoadInst>(&I)) {
422     if (!LI->isUnordered())
423       return false; // Don't hoist volatile/atomic loads!
424 
425     // Loads from constant memory are always safe to move, even if they end up
426     // in the same alias set as something that ends up being modified.
427     if (AA->pointsToConstantMemory(LI->getOperand(0)))
428       return true;
429     if (LI->getMetadata(LLVMContext::MD_invariant_load))
430       return true;
431 
432     // Don't hoist loads which have may-aliased stores in loop.
433     uint64_t Size = 0;
434     if (LI->getType()->isSized())
435       Size = I.getModule()->getDataLayout().getTypeStoreSize(LI->getType());
436 
437     AAMDNodes AAInfo;
438     LI->getAAMetadata(AAInfo);
439 
440     return !pointerInvalidatedByLoop(LI->getOperand(0), Size, AAInfo, CurAST);
441   } else if (CallInst *CI = dyn_cast<CallInst>(&I)) {
442     // Don't sink or hoist dbg info; it's legal, but not useful.
443     if (isa<DbgInfoIntrinsic>(I))
444       return false;
445 
446     // Don't sink calls which can throw.
447     if (CI->mayThrow())
448       return false;
449 
450     // Handle simple cases by querying alias analysis.
451     FunctionModRefBehavior Behavior = AA->getModRefBehavior(CI);
452     if (Behavior == FMRB_DoesNotAccessMemory)
453       return true;
454     if (AliasAnalysis::onlyReadsMemory(Behavior)) {
455       // A readonly argmemonly function only reads from memory pointed to by
456       // it's arguments with arbitrary offsets.  If we can prove there are no
457       // writes to this memory in the loop, we can hoist or sink.
458       if (AliasAnalysis::onlyAccessesArgPointees(Behavior)) {
459         for (Value *Op : CI->arg_operands())
460           if (Op->getType()->isPointerTy() &&
461               pointerInvalidatedByLoop(Op, MemoryLocation::UnknownSize,
462                                        AAMDNodes(), CurAST))
463             return false;
464         return true;
465       }
466       // If this call only reads from memory and there are no writes to memory
467       // in the loop, we can hoist or sink the call as appropriate.
468       bool FoundMod = false;
469       for (AliasSet &AS : *CurAST) {
470         if (!AS.isForwardingAliasSet() && AS.isMod()) {
471           FoundMod = true;
472           break;
473         }
474       }
475       if (!FoundMod)
476         return true;
477     }
478 
479     // FIXME: This should use mod/ref information to see if we can hoist or
480     // sink the call.
481 
482     return false;
483   }
484 
485   // Only these instructions are hoistable/sinkable.
486   if (!isa<BinaryOperator>(I) && !isa<CastInst>(I) && !isa<SelectInst>(I) &&
487       !isa<GetElementPtrInst>(I) && !isa<CmpInst>(I) &&
488       !isa<InsertElementInst>(I) && !isa<ExtractElementInst>(I) &&
489       !isa<ShuffleVectorInst>(I) && !isa<ExtractValueInst>(I) &&
490       !isa<InsertValueInst>(I))
491     return false;
492 
493   // TODO: Plumb the context instruction through to make hoisting and sinking
494   // more powerful. Hoisting of loads already works due to the special casing
495   // above.
496   return isSafeToExecuteUnconditionally(I, DT, TLI, CurLoop, SafetyInfo,
497                                         nullptr);
498 }
499 
500 /// Returns true if a PHINode is a trivially replaceable with an
501 /// Instruction.
502 /// This is true when all incoming values are that instruction.
503 /// This pattern occurs most often with LCSSA PHI nodes.
504 ///
505 static bool isTriviallyReplacablePHI(const PHINode &PN, const Instruction &I) {
506   for (const Value *IncValue : PN.incoming_values())
507     if (IncValue != &I)
508       return false;
509 
510   return true;
511 }
512 
513 /// Return true if the only users of this instruction are outside of
514 /// the loop. If this is true, we can sink the instruction to the exit
515 /// blocks of the loop.
516 ///
517 static bool isNotUsedInLoop(const Instruction &I, const Loop *CurLoop,
518                             const LICMSafetyInfo *SafetyInfo) {
519   const auto &BlockColors = SafetyInfo->BlockColors;
520   for (const User *U : I.users()) {
521     const Instruction *UI = cast<Instruction>(U);
522     if (const PHINode *PN = dyn_cast<PHINode>(UI)) {
523       const BasicBlock *BB = PN->getParent();
524       // We cannot sink uses in catchswitches.
525       if (isa<CatchSwitchInst>(BB->getTerminator()))
526         return false;
527 
528       // We need to sink a callsite to a unique funclet.  Avoid sinking if the
529       // phi use is too muddled.
530       if (isa<CallInst>(I))
531         if (!BlockColors.empty() &&
532             BlockColors.find(const_cast<BasicBlock *>(BB))->second.size() != 1)
533           return false;
534 
535       // A PHI node where all of the incoming values are this instruction are
536       // special -- they can just be RAUW'ed with the instruction and thus
537       // don't require a use in the predecessor. This is a particular important
538       // special case because it is the pattern found in LCSSA form.
539       if (isTriviallyReplacablePHI(*PN, I)) {
540         if (CurLoop->contains(PN))
541           return false;
542         else
543           continue;
544       }
545 
546       // Otherwise, PHI node uses occur in predecessor blocks if the incoming
547       // values. Check for such a use being inside the loop.
548       for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i)
549         if (PN->getIncomingValue(i) == &I)
550           if (CurLoop->contains(PN->getIncomingBlock(i)))
551             return false;
552 
553       continue;
554     }
555 
556     if (CurLoop->contains(UI))
557       return false;
558   }
559   return true;
560 }
561 
562 static Instruction *
563 CloneInstructionInExitBlock(Instruction &I, BasicBlock &ExitBlock, PHINode &PN,
564                             const LoopInfo *LI,
565                             const LICMSafetyInfo *SafetyInfo) {
566   Instruction *New;
567   if (auto *CI = dyn_cast<CallInst>(&I)) {
568     const auto &BlockColors = SafetyInfo->BlockColors;
569 
570     // Sinking call-sites need to be handled differently from other
571     // instructions.  The cloned call-site needs a funclet bundle operand
572     // appropriate for it's location in the CFG.
573     SmallVector<OperandBundleDef, 1> OpBundles;
574     for (unsigned BundleIdx = 0, BundleEnd = CI->getNumOperandBundles();
575          BundleIdx != BundleEnd; ++BundleIdx) {
576       OperandBundleUse Bundle = CI->getOperandBundleAt(BundleIdx);
577       if (Bundle.getTagID() == LLVMContext::OB_funclet)
578         continue;
579 
580       OpBundles.emplace_back(Bundle);
581     }
582 
583     if (!BlockColors.empty()) {
584       const ColorVector &CV = BlockColors.find(&ExitBlock)->second;
585       assert(CV.size() == 1 && "non-unique color for exit block!");
586       BasicBlock *BBColor = CV.front();
587       Instruction *EHPad = BBColor->getFirstNonPHI();
588       if (EHPad->isEHPad())
589         OpBundles.emplace_back("funclet", EHPad);
590     }
591 
592     New = CallInst::Create(CI, OpBundles);
593   } else {
594     New = I.clone();
595   }
596 
597   ExitBlock.getInstList().insert(ExitBlock.getFirstInsertionPt(), New);
598   if (!I.getName().empty())
599     New->setName(I.getName() + ".le");
600 
601   // Build LCSSA PHI nodes for any in-loop operands. Note that this is
602   // particularly cheap because we can rip off the PHI node that we're
603   // replacing for the number and blocks of the predecessors.
604   // OPT: If this shows up in a profile, we can instead finish sinking all
605   // invariant instructions, and then walk their operands to re-establish
606   // LCSSA. That will eliminate creating PHI nodes just to nuke them when
607   // sinking bottom-up.
608   for (User::op_iterator OI = New->op_begin(), OE = New->op_end(); OI != OE;
609        ++OI)
610     if (Instruction *OInst = dyn_cast<Instruction>(*OI))
611       if (Loop *OLoop = LI->getLoopFor(OInst->getParent()))
612         if (!OLoop->contains(&PN)) {
613           PHINode *OpPN =
614               PHINode::Create(OInst->getType(), PN.getNumIncomingValues(),
615                               OInst->getName() + ".lcssa", &ExitBlock.front());
616           for (unsigned i = 0, e = PN.getNumIncomingValues(); i != e; ++i)
617             OpPN->addIncoming(OInst, PN.getIncomingBlock(i));
618           *OI = OpPN;
619         }
620   return New;
621 }
622 
623 /// When an instruction is found to only be used outside of the loop, this
624 /// function moves it to the exit blocks and patches up SSA form as needed.
625 /// This method is guaranteed to remove the original instruction from its
626 /// position, and may either delete it or move it to outside of the loop.
627 ///
628 static bool sink(Instruction &I, const LoopInfo *LI, const DominatorTree *DT,
629                  const Loop *CurLoop, AliasSetTracker *CurAST,
630                  const LICMSafetyInfo *SafetyInfo) {
631   DEBUG(dbgs() << "LICM sinking instruction: " << I << "\n");
632   bool Changed = false;
633   if (isa<LoadInst>(I))
634     ++NumMovedLoads;
635   else if (isa<CallInst>(I))
636     ++NumMovedCalls;
637   ++NumSunk;
638   Changed = true;
639 
640 #ifndef NDEBUG
641   SmallVector<BasicBlock *, 32> ExitBlocks;
642   CurLoop->getUniqueExitBlocks(ExitBlocks);
643   SmallPtrSet<BasicBlock *, 32> ExitBlockSet(ExitBlocks.begin(),
644                                              ExitBlocks.end());
645 #endif
646 
647   // Clones of this instruction. Don't create more than one per exit block!
648   SmallDenseMap<BasicBlock *, Instruction *, 32> SunkCopies;
649 
650   // If this instruction is only used outside of the loop, then all users are
651   // PHI nodes in exit blocks due to LCSSA form. Just RAUW them with clones of
652   // the instruction.
653   while (!I.use_empty()) {
654     Value::user_iterator UI = I.user_begin();
655     auto *User = cast<Instruction>(*UI);
656     if (!DT->isReachableFromEntry(User->getParent())) {
657       User->replaceUsesOfWith(&I, UndefValue::get(I.getType()));
658       continue;
659     }
660     // The user must be a PHI node.
661     PHINode *PN = cast<PHINode>(User);
662 
663     // Surprisingly, instructions can be used outside of loops without any
664     // exits.  This can only happen in PHI nodes if the incoming block is
665     // unreachable.
666     Use &U = UI.getUse();
667     BasicBlock *BB = PN->getIncomingBlock(U);
668     if (!DT->isReachableFromEntry(BB)) {
669       U = UndefValue::get(I.getType());
670       continue;
671     }
672 
673     BasicBlock *ExitBlock = PN->getParent();
674     assert(ExitBlockSet.count(ExitBlock) &&
675            "The LCSSA PHI is not in an exit block!");
676 
677     Instruction *New;
678     auto It = SunkCopies.find(ExitBlock);
679     if (It != SunkCopies.end())
680       New = It->second;
681     else
682       New = SunkCopies[ExitBlock] =
683           CloneInstructionInExitBlock(I, *ExitBlock, *PN, LI, SafetyInfo);
684 
685     PN->replaceAllUsesWith(New);
686     PN->eraseFromParent();
687   }
688 
689   CurAST->deleteValue(&I);
690   I.eraseFromParent();
691   return Changed;
692 }
693 
694 /// When an instruction is found to only use loop invariant operands that
695 /// is safe to hoist, this instruction is called to do the dirty work.
696 ///
697 static bool hoist(Instruction &I, const DominatorTree *DT, const Loop *CurLoop,
698                   const LICMSafetyInfo *SafetyInfo) {
699   auto *Preheader = CurLoop->getLoopPreheader();
700   DEBUG(dbgs() << "LICM hoisting to " << Preheader->getName() << ": " << I
701                << "\n");
702 
703   // Metadata can be dependent on conditions we are hoisting above.
704   // Conservatively strip all metadata on the instruction unless we were
705   // guaranteed to execute I if we entered the loop, in which case the metadata
706   // is valid in the loop preheader.
707   if (I.hasMetadataOtherThanDebugLoc() &&
708       // The check on hasMetadataOtherThanDebugLoc is to prevent us from burning
709       // time in isGuaranteedToExecute if we don't actually have anything to
710       // drop.  It is a compile time optimization, not required for correctness.
711       !isGuaranteedToExecute(I, DT, CurLoop, SafetyInfo))
712     I.dropUnknownNonDebugMetadata();
713 
714   // Move the new node to the Preheader, before its terminator.
715   I.moveBefore(Preheader->getTerminator());
716 
717   if (isa<LoadInst>(I))
718     ++NumMovedLoads;
719   else if (isa<CallInst>(I))
720     ++NumMovedCalls;
721   ++NumHoisted;
722   return true;
723 }
724 
725 /// Only sink or hoist an instruction if it is not a trapping instruction,
726 /// or if the instruction is known not to trap when moved to the preheader.
727 /// or if it is a trapping instruction and is guaranteed to execute.
728 static bool isSafeToExecuteUnconditionally(const Instruction &Inst,
729                                            const DominatorTree *DT,
730                                            const TargetLibraryInfo *TLI,
731                                            const Loop *CurLoop,
732                                            const LICMSafetyInfo *SafetyInfo,
733                                            const Instruction *CtxI) {
734   if (isSafeToSpeculativelyExecute(&Inst, CtxI, DT, TLI))
735     return true;
736 
737   return isGuaranteedToExecute(Inst, DT, CurLoop, SafetyInfo);
738 }
739 
740 static bool isGuaranteedToExecute(const Instruction &Inst,
741                                   const DominatorTree *DT, const Loop *CurLoop,
742                                   const LICMSafetyInfo *SafetyInfo) {
743 
744   // We have to check to make sure that the instruction dominates all
745   // of the exit blocks.  If it doesn't, then there is a path out of the loop
746   // which does not execute this instruction, so we can't hoist it.
747 
748   // If the instruction is in the header block for the loop (which is very
749   // common), it is always guaranteed to dominate the exit blocks.  Since this
750   // is a common case, and can save some work, check it now.
751   if (Inst.getParent() == CurLoop->getHeader())
752     // If there's a throw in the header block, we can't guarantee we'll reach
753     // Inst.
754     return !SafetyInfo->HeaderMayThrow;
755 
756   // Somewhere in this loop there is an instruction which may throw and make us
757   // exit the loop.
758   if (SafetyInfo->MayThrow)
759     return false;
760 
761   // Get the exit blocks for the current loop.
762   SmallVector<BasicBlock *, 8> ExitBlocks;
763   CurLoop->getExitBlocks(ExitBlocks);
764 
765   // Verify that the block dominates each of the exit blocks of the loop.
766   for (BasicBlock *ExitBlock : ExitBlocks)
767     if (!DT->dominates(Inst.getParent(), ExitBlock))
768       return false;
769 
770   // As a degenerate case, if the loop is statically infinite then we haven't
771   // proven anything since there are no exit blocks.
772   if (ExitBlocks.empty())
773     return false;
774 
775   return true;
776 }
777 
778 namespace {
779 class LoopPromoter : public LoadAndStorePromoter {
780   Value *SomePtr; // Designated pointer to store to.
781   SmallPtrSetImpl<Value *> &PointerMustAliases;
782   SmallVectorImpl<BasicBlock *> &LoopExitBlocks;
783   SmallVectorImpl<Instruction *> &LoopInsertPts;
784   PredIteratorCache &PredCache;
785   AliasSetTracker &AST;
786   LoopInfo &LI;
787   DebugLoc DL;
788   int Alignment;
789   AAMDNodes AATags;
790 
791   Value *maybeInsertLCSSAPHI(Value *V, BasicBlock *BB) const {
792     if (Instruction *I = dyn_cast<Instruction>(V))
793       if (Loop *L = LI.getLoopFor(I->getParent()))
794         if (!L->contains(BB)) {
795           // We need to create an LCSSA PHI node for the incoming value and
796           // store that.
797           PHINode *PN = PHINode::Create(I->getType(), PredCache.size(BB),
798                                         I->getName() + ".lcssa", &BB->front());
799           for (BasicBlock *Pred : PredCache.get(BB))
800             PN->addIncoming(I, Pred);
801           return PN;
802         }
803     return V;
804   }
805 
806 public:
807   LoopPromoter(Value *SP, ArrayRef<const Instruction *> Insts, SSAUpdater &S,
808                SmallPtrSetImpl<Value *> &PMA,
809                SmallVectorImpl<BasicBlock *> &LEB,
810                SmallVectorImpl<Instruction *> &LIP, PredIteratorCache &PIC,
811                AliasSetTracker &ast, LoopInfo &li, DebugLoc dl, int alignment,
812                const AAMDNodes &AATags)
813       : LoadAndStorePromoter(Insts, S), SomePtr(SP), PointerMustAliases(PMA),
814         LoopExitBlocks(LEB), LoopInsertPts(LIP), PredCache(PIC), AST(ast),
815         LI(li), DL(std::move(dl)), Alignment(alignment), AATags(AATags) {}
816 
817   bool isInstInList(Instruction *I,
818                     const SmallVectorImpl<Instruction *> &) const override {
819     Value *Ptr;
820     if (LoadInst *LI = dyn_cast<LoadInst>(I))
821       Ptr = LI->getOperand(0);
822     else
823       Ptr = cast<StoreInst>(I)->getPointerOperand();
824     return PointerMustAliases.count(Ptr);
825   }
826 
827   void doExtraRewritesBeforeFinalDeletion() const override {
828     // Insert stores after in the loop exit blocks.  Each exit block gets a
829     // store of the live-out values that feed them.  Since we've already told
830     // the SSA updater about the defs in the loop and the preheader
831     // definition, it is all set and we can start using it.
832     for (unsigned i = 0, e = LoopExitBlocks.size(); i != e; ++i) {
833       BasicBlock *ExitBlock = LoopExitBlocks[i];
834       Value *LiveInValue = SSA.GetValueInMiddleOfBlock(ExitBlock);
835       LiveInValue = maybeInsertLCSSAPHI(LiveInValue, ExitBlock);
836       Value *Ptr = maybeInsertLCSSAPHI(SomePtr, ExitBlock);
837       Instruction *InsertPos = LoopInsertPts[i];
838       StoreInst *NewSI = new StoreInst(LiveInValue, Ptr, InsertPos);
839       NewSI->setAlignment(Alignment);
840       NewSI->setDebugLoc(DL);
841       if (AATags)
842         NewSI->setAAMetadata(AATags);
843     }
844   }
845 
846   void replaceLoadWithValue(LoadInst *LI, Value *V) const override {
847     // Update alias analysis.
848     AST.copyValue(LI, V);
849   }
850   void instructionDeleted(Instruction *I) const override { AST.deleteValue(I); }
851 };
852 } // end anon namespace
853 
854 /// Try to promote memory values to scalars by sinking stores out of the
855 /// loop and moving loads to before the loop.  We do this by looping over
856 /// the stores in the loop, looking for stores to Must pointers which are
857 /// loop invariant.
858 ///
859 bool llvm::promoteLoopAccessesToScalars(
860     AliasSet &AS, SmallVectorImpl<BasicBlock *> &ExitBlocks,
861     SmallVectorImpl<Instruction *> &InsertPts, PredIteratorCache &PIC,
862     LoopInfo *LI, DominatorTree *DT, const TargetLibraryInfo *TLI,
863     Loop *CurLoop, AliasSetTracker *CurAST, LICMSafetyInfo *SafetyInfo) {
864   // Verify inputs.
865   assert(LI != nullptr && DT != nullptr && CurLoop != nullptr &&
866          CurAST != nullptr && SafetyInfo != nullptr &&
867          "Unexpected Input to promoteLoopAccessesToScalars");
868 
869   // We can promote this alias set if it has a store, if it is a "Must" alias
870   // set, if the pointer is loop invariant, and if we are not eliminating any
871   // volatile loads or stores.
872   if (AS.isForwardingAliasSet() || !AS.isMod() || !AS.isMustAlias() ||
873       AS.isVolatile() || !CurLoop->isLoopInvariant(AS.begin()->getValue()))
874     return false;
875 
876   assert(!AS.empty() &&
877          "Must alias set should have at least one pointer element in it!");
878 
879   Value *SomePtr = AS.begin()->getValue();
880   BasicBlock *Preheader = CurLoop->getLoopPreheader();
881 
882   // It isn't safe to promote a load/store from the loop if the load/store is
883   // conditional.  For example, turning:
884   //
885   //    for () { if (c) *P += 1; }
886   //
887   // into:
888   //
889   //    tmp = *P;  for () { if (c) tmp +=1; } *P = tmp;
890   //
891   // is not safe, because *P may only be valid to access if 'c' is true.
892   //
893   // The safety property divides into two parts:
894   // 1) The memory may not be dereferenceable on entry to the loop.  In this
895   //    case, we can't insert the required load in the preheader.
896   // 2) The memory model does not allow us to insert a store along any dynamic
897   //    path which did not originally have one.
898   //
899   // It is safe to promote P if all uses are direct load/stores and if at
900   // least one is guaranteed to be executed.
901   bool GuaranteedToExecute = false;
902 
903   // It is also safe to promote P if we can prove that speculating a load into
904   // the preheader is safe (i.e. proving dereferenceability on all
905   // paths through the loop), and that the memory can be proven thread local
906   // (so that the memory model requirement doesn't apply.)  We first establish
907   // the former, and then run a capture analysis below to establish the later.
908   // We can use any access within the alias set to prove dereferenceability
909   // since they're all must alias.
910   bool CanSpeculateLoad = false;
911 
912   SmallVector<Instruction *, 64> LoopUses;
913   SmallPtrSet<Value *, 4> PointerMustAliases;
914 
915   // We start with an alignment of one and try to find instructions that allow
916   // us to prove better alignment.
917   unsigned Alignment = 1;
918   AAMDNodes AATags;
919   bool HasDedicatedExits = CurLoop->hasDedicatedExits();
920 
921   // Don't sink stores from loops without dedicated block exits. Exits
922   // containing indirect branches are not transformed by loop simplify,
923   // make sure we catch that. An additional load may be generated in the
924   // preheader for SSA updater, so also avoid sinking when no preheader
925   // is available.
926   if (!HasDedicatedExits || !Preheader)
927     return false;
928 
929   const DataLayout &MDL = Preheader->getModule()->getDataLayout();
930 
931   // Check that all of the pointers in the alias set have the same type.  We
932   // cannot (yet) promote a memory location that is loaded and stored in
933   // different sizes.  While we are at it, collect alignment and AA info.
934   bool Changed = false;
935   for (AliasSet::iterator ASI = AS.begin(), E = AS.end(); ASI != E; ++ASI) {
936     Value *ASIV = ASI->getValue();
937     PointerMustAliases.insert(ASIV);
938 
939     // Check that all of the pointers in the alias set have the same type.  We
940     // cannot (yet) promote a memory location that is loaded and stored in
941     // different sizes.
942     if (SomePtr->getType() != ASIV->getType())
943       return Changed;
944 
945     for (User *U : ASIV->users()) {
946       // Ignore instructions that are outside the loop.
947       Instruction *UI = dyn_cast<Instruction>(U);
948       if (!UI || !CurLoop->contains(UI))
949         continue;
950 
951       // If there is an non-load/store instruction in the loop, we can't promote
952       // it.
953       if (const LoadInst *Load = dyn_cast<LoadInst>(UI)) {
954         assert(!Load->isVolatile() && "AST broken");
955         if (!Load->isSimple())
956           return Changed;
957 
958         if (!GuaranteedToExecute && !CanSpeculateLoad)
959           CanSpeculateLoad = isSafeToExecuteUnconditionally(
960               *Load, DT, TLI, CurLoop, SafetyInfo, Preheader->getTerminator());
961       } else if (const StoreInst *Store = dyn_cast<StoreInst>(UI)) {
962         // Stores *of* the pointer are not interesting, only stores *to* the
963         // pointer.
964         if (UI->getOperand(1) != ASIV)
965           continue;
966         assert(!Store->isVolatile() && "AST broken");
967         if (!Store->isSimple())
968           return Changed;
969 
970         // Note that we only check GuaranteedToExecute inside the store case
971         // so that we do not introduce stores where they did not exist before
972         // (which would break the LLVM concurrency model).
973 
974         // If the alignment of this instruction allows us to specify a more
975         // restrictive (and performant) alignment and if we are sure this
976         // instruction will be executed, update the alignment.
977         // Larger is better, with the exception of 0 being the best alignment.
978         unsigned InstAlignment = Store->getAlignment();
979         if ((InstAlignment > Alignment || InstAlignment == 0) && Alignment != 0)
980           if (isGuaranteedToExecute(*UI, DT, CurLoop, SafetyInfo)) {
981             GuaranteedToExecute = true;
982             Alignment = InstAlignment;
983           }
984 
985         if (!GuaranteedToExecute)
986           GuaranteedToExecute =
987               isGuaranteedToExecute(*UI, DT, CurLoop, SafetyInfo);
988 
989         if (!GuaranteedToExecute && !CanSpeculateLoad) {
990           CanSpeculateLoad = isDereferenceableAndAlignedPointer(
991               Store->getPointerOperand(), Store->getAlignment(), MDL,
992               Preheader->getTerminator(), DT, TLI);
993         }
994       } else
995         return Changed; // Not a load or store.
996 
997       // Merge the AA tags.
998       if (LoopUses.empty()) {
999         // On the first load/store, just take its AA tags.
1000         UI->getAAMetadata(AATags);
1001       } else if (AATags) {
1002         UI->getAAMetadata(AATags, /* Merge = */ true);
1003       }
1004 
1005       LoopUses.push_back(UI);
1006     }
1007   }
1008 
1009   // Check legality per comment above. Otherwise, we can't promote.
1010   bool PromotionIsLegal = GuaranteedToExecute;
1011   if (!PromotionIsLegal && CanSpeculateLoad) {
1012     // If this is a thread local location, then we can insert stores along
1013     // paths which originally didn't have them without violating the memory
1014     // model.
1015     Value *Object = GetUnderlyingObject(SomePtr, MDL);
1016     PromotionIsLegal =
1017         isAllocLikeFn(Object, TLI) && !PointerMayBeCaptured(Object, true, true);
1018   }
1019   if (!PromotionIsLegal)
1020     return Changed;
1021 
1022   // Figure out the loop exits and their insertion points, if this is the
1023   // first promotion.
1024   if (ExitBlocks.empty()) {
1025     CurLoop->getUniqueExitBlocks(ExitBlocks);
1026     InsertPts.clear();
1027     InsertPts.reserve(ExitBlocks.size());
1028     for (BasicBlock *ExitBlock : ExitBlocks)
1029       InsertPts.push_back(&*ExitBlock->getFirstInsertionPt());
1030   }
1031 
1032   // Can't insert into a catchswitch.
1033   for (BasicBlock *ExitBlock : ExitBlocks)
1034     if (isa<CatchSwitchInst>(ExitBlock->getTerminator()))
1035       return Changed;
1036 
1037   // Otherwise, this is safe to promote, lets do it!
1038   DEBUG(dbgs() << "LICM: Promoting value stored to in loop: " << *SomePtr
1039                << '\n');
1040   Changed = true;
1041   ++NumPromoted;
1042 
1043   // Grab a debug location for the inserted loads/stores; given that the
1044   // inserted loads/stores have little relation to the original loads/stores,
1045   // this code just arbitrarily picks a location from one, since any debug
1046   // location is better than none.
1047   DebugLoc DL = LoopUses[0]->getDebugLoc();
1048 
1049   // We use the SSAUpdater interface to insert phi nodes as required.
1050   SmallVector<PHINode *, 16> NewPHIs;
1051   SSAUpdater SSA(&NewPHIs);
1052   LoopPromoter Promoter(SomePtr, LoopUses, SSA, PointerMustAliases, ExitBlocks,
1053                         InsertPts, PIC, *CurAST, *LI, DL, Alignment, AATags);
1054 
1055   // Set up the preheader to have a definition of the value.  It is the live-out
1056   // value from the preheader that uses in the loop will use.
1057   LoadInst *PreheaderLoad = new LoadInst(
1058       SomePtr, SomePtr->getName() + ".promoted", Preheader->getTerminator());
1059   PreheaderLoad->setAlignment(Alignment);
1060   PreheaderLoad->setDebugLoc(DL);
1061   if (AATags)
1062     PreheaderLoad->setAAMetadata(AATags);
1063   SSA.AddAvailableValue(Preheader, PreheaderLoad);
1064 
1065   // Rewrite all the loads in the loop and remember all the definitions from
1066   // stores in the loop.
1067   Promoter.run(LoopUses);
1068 
1069   // If the SSAUpdater didn't use the load in the preheader, just zap it now.
1070   if (PreheaderLoad->use_empty())
1071     PreheaderLoad->eraseFromParent();
1072 
1073   return Changed;
1074 }
1075 
1076 /// Returns an owning pointer to an alias set which incorporates aliasing info
1077 /// from L and all subloops of L.
1078 AliasSetTracker *LICM::collectAliasInfoForLoop(Loop *L) {
1079   AliasSetTracker *CurAST = nullptr;
1080   SmallVector<Loop *, 4> RecomputeLoops;
1081   for (Loop *InnerL : L->getSubLoops()) {
1082     auto MapI = LoopToAliasSetMap.find(InnerL);
1083     // If the AST for this inner loop is missing it may have been merged into
1084     // some other loop's AST and then that loop unrolled, and so we need to
1085     // recompute it.
1086     if (MapI == LoopToAliasSetMap.end()) {
1087       RecomputeLoops.push_back(InnerL);
1088       continue;
1089     }
1090     AliasSetTracker *InnerAST = MapI->second;
1091 
1092     if (CurAST != nullptr) {
1093       // What if InnerLoop was modified by other passes ?
1094       CurAST->add(*InnerAST);
1095 
1096       // Once we've incorporated the inner loop's AST into ours, we don't need
1097       // the subloop's anymore.
1098       delete InnerAST;
1099     } else {
1100       CurAST = InnerAST;
1101     }
1102     LoopToAliasSetMap.erase(MapI);
1103   }
1104   if (CurAST == nullptr)
1105     CurAST = new AliasSetTracker(*AA);
1106 
1107   auto mergeLoop = [&](Loop *L) {
1108     // Loop over the body of this loop, looking for calls, invokes, and stores.
1109     // Because subloops have already been incorporated into AST, we skip blocks
1110     // in subloops.
1111     for (BasicBlock *BB : L->blocks())
1112       if (LI->getLoopFor(BB) == L) // Ignore blocks in subloops.
1113         CurAST->add(*BB);          // Incorporate the specified basic block
1114   };
1115 
1116   // Add everything from the sub loops that are no longer directly available.
1117   for (Loop *InnerL : RecomputeLoops)
1118     mergeLoop(InnerL);
1119 
1120   // And merge in this loop.
1121   mergeLoop(L);
1122 
1123   return CurAST;
1124 }
1125 
1126 /// Simple analysis hook. Clone alias set info.
1127 ///
1128 void LICM::cloneBasicBlockAnalysis(BasicBlock *From, BasicBlock *To, Loop *L) {
1129   AliasSetTracker *AST = LoopToAliasSetMap.lookup(L);
1130   if (!AST)
1131     return;
1132 
1133   AST->copyValue(From, To);
1134 }
1135 
1136 /// Simple Analysis hook. Delete value V from alias set
1137 ///
1138 void LICM::deleteAnalysisValue(Value *V, Loop *L) {
1139   AliasSetTracker *AST = LoopToAliasSetMap.lookup(L);
1140   if (!AST)
1141     return;
1142 
1143   AST->deleteValue(V);
1144 }
1145 
1146 /// Simple Analysis hook. Delete value L from alias set map.
1147 ///
1148 void LICM::deleteAnalysisLoop(Loop *L) {
1149   AliasSetTracker *AST = LoopToAliasSetMap.lookup(L);
1150   if (!AST)
1151     return;
1152 
1153   delete AST;
1154   LoopToAliasSetMap.erase(L);
1155 }
1156 
1157 /// Return true if the body of this loop may store into the memory
1158 /// location pointed to by V.
1159 ///
1160 static bool pointerInvalidatedByLoop(Value *V, uint64_t Size,
1161                                      const AAMDNodes &AAInfo,
1162                                      AliasSetTracker *CurAST) {
1163   // Check to see if any of the basic blocks in CurLoop invalidate *V.
1164   return CurAST->getAliasSetForPointer(V, Size, AAInfo).isMod();
1165 }
1166 
1167 /// Little predicate that returns true if the specified basic block is in
1168 /// a subloop of the current one, not the current one itself.
1169 ///
1170 static bool inSubLoop(BasicBlock *BB, Loop *CurLoop, LoopInfo *LI) {
1171   assert(CurLoop->contains(BB) && "Only valid if BB is IN the loop");
1172   return LI->getLoopFor(BB) != CurLoop;
1173 }
1174