1 //===- LoopIdiomRecognize.cpp - Loop idiom recognition --------------------===//
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 implements an idiom recognizer that transforms simple loops into a
10 // non-loop form.  In cases that this kicks in, it can be a significant
11 // performance win.
12 //
13 // If compiling for code size we avoid idiom recognition if the resulting
14 // code could be larger than the code for the original loop. One way this could
15 // happen is if the loop is not removable after idiom recognition due to the
16 // presence of non-idiom instructions. The initial implementation of the
17 // heuristics applies to idioms in multi-block loops.
18 //
19 //===----------------------------------------------------------------------===//
20 //
21 // TODO List:
22 //
23 // Future loop memory idioms to recognize:
24 //   memcmp, memmove, strlen, etc.
25 // Future floating point idioms to recognize in -ffast-math mode:
26 //   fpowi
27 // Future integer operation idioms to recognize:
28 //   ctpop
29 //
30 // Beware that isel's default lowering for ctpop is highly inefficient for
31 // i64 and larger types when i64 is legal and the value has few bits set.  It
32 // would be good to enhance isel to emit a loop for ctpop in this case.
33 //
34 // This could recognize common matrix multiplies and dot product idioms and
35 // replace them with calls to BLAS (if linked in??).
36 //
37 //===----------------------------------------------------------------------===//
38 
39 #include "llvm/Transforms/Scalar/LoopIdiomRecognize.h"
40 #include "llvm/ADT/APInt.h"
41 #include "llvm/ADT/ArrayRef.h"
42 #include "llvm/ADT/DenseMap.h"
43 #include "llvm/ADT/MapVector.h"
44 #include "llvm/ADT/SetVector.h"
45 #include "llvm/ADT/SmallPtrSet.h"
46 #include "llvm/ADT/SmallVector.h"
47 #include "llvm/ADT/Statistic.h"
48 #include "llvm/ADT/StringRef.h"
49 #include "llvm/Analysis/AliasAnalysis.h"
50 #include "llvm/Analysis/LoopAccessAnalysis.h"
51 #include "llvm/Analysis/LoopInfo.h"
52 #include "llvm/Analysis/LoopPass.h"
53 #include "llvm/Analysis/MemoryLocation.h"
54 #include "llvm/Analysis/OptimizationRemarkEmitter.h"
55 #include "llvm/Analysis/ScalarEvolution.h"
56 #include "llvm/Analysis/ScalarEvolutionExpander.h"
57 #include "llvm/Analysis/ScalarEvolutionExpressions.h"
58 #include "llvm/Analysis/TargetLibraryInfo.h"
59 #include "llvm/Analysis/TargetTransformInfo.h"
60 #include "llvm/Analysis/ValueTracking.h"
61 #include "llvm/IR/Attributes.h"
62 #include "llvm/IR/BasicBlock.h"
63 #include "llvm/IR/Constant.h"
64 #include "llvm/IR/Constants.h"
65 #include "llvm/IR/DataLayout.h"
66 #include "llvm/IR/DebugLoc.h"
67 #include "llvm/IR/DerivedTypes.h"
68 #include "llvm/IR/Dominators.h"
69 #include "llvm/IR/GlobalValue.h"
70 #include "llvm/IR/GlobalVariable.h"
71 #include "llvm/IR/IRBuilder.h"
72 #include "llvm/IR/InstrTypes.h"
73 #include "llvm/IR/Instruction.h"
74 #include "llvm/IR/Instructions.h"
75 #include "llvm/IR/IntrinsicInst.h"
76 #include "llvm/IR/Intrinsics.h"
77 #include "llvm/IR/LLVMContext.h"
78 #include "llvm/IR/Module.h"
79 #include "llvm/IR/PassManager.h"
80 #include "llvm/IR/Type.h"
81 #include "llvm/IR/User.h"
82 #include "llvm/IR/Value.h"
83 #include "llvm/IR/ValueHandle.h"
84 #include "llvm/InitializePasses.h"
85 #include "llvm/Pass.h"
86 #include "llvm/Support/Casting.h"
87 #include "llvm/Support/CommandLine.h"
88 #include "llvm/Support/Debug.h"
89 #include "llvm/Support/raw_ostream.h"
90 #include "llvm/Transforms/Scalar.h"
91 #include "llvm/Transforms/Utils/BuildLibCalls.h"
92 #include "llvm/Transforms/Utils/Local.h"
93 #include "llvm/Transforms/Utils/LoopUtils.h"
94 #include <algorithm>
95 #include <cassert>
96 #include <cstdint>
97 #include <utility>
98 #include <vector>
99 
100 using namespace llvm;
101 
102 #define DEBUG_TYPE "loop-idiom"
103 
104 STATISTIC(NumMemSet, "Number of memset's formed from loop stores");
105 STATISTIC(NumMemCpy, "Number of memcpy's formed from loop load+stores");
106 
107 static cl::opt<bool> UseLIRCodeSizeHeurs(
108     "use-lir-code-size-heurs",
109     cl::desc("Use loop idiom recognition code size heuristics when compiling"
110              "with -Os/-Oz"),
111     cl::init(true), cl::Hidden);
112 
113 namespace {
114 
115 class LoopIdiomRecognize {
116   Loop *CurLoop = nullptr;
117   AliasAnalysis *AA;
118   DominatorTree *DT;
119   LoopInfo *LI;
120   ScalarEvolution *SE;
121   TargetLibraryInfo *TLI;
122   const TargetTransformInfo *TTI;
123   const DataLayout *DL;
124   OptimizationRemarkEmitter &ORE;
125   bool ApplyCodeSizeHeuristics;
126 
127 public:
128   explicit LoopIdiomRecognize(AliasAnalysis *AA, DominatorTree *DT,
129                               LoopInfo *LI, ScalarEvolution *SE,
130                               TargetLibraryInfo *TLI,
131                               const TargetTransformInfo *TTI,
132                               const DataLayout *DL,
133                               OptimizationRemarkEmitter &ORE)
134       : AA(AA), DT(DT), LI(LI), SE(SE), TLI(TLI), TTI(TTI), DL(DL), ORE(ORE) {}
135 
136   bool runOnLoop(Loop *L);
137 
138 private:
139   using StoreList = SmallVector<StoreInst *, 8>;
140   using StoreListMap = MapVector<Value *, StoreList>;
141 
142   StoreListMap StoreRefsForMemset;
143   StoreListMap StoreRefsForMemsetPattern;
144   StoreList StoreRefsForMemcpy;
145   bool HasMemset;
146   bool HasMemsetPattern;
147   bool HasMemcpy;
148 
149   /// Return code for isLegalStore()
150   enum LegalStoreKind {
151     None = 0,
152     Memset,
153     MemsetPattern,
154     Memcpy,
155     UnorderedAtomicMemcpy,
156     DontUse // Dummy retval never to be used. Allows catching errors in retval
157             // handling.
158   };
159 
160   /// \name Countable Loop Idiom Handling
161   /// @{
162 
163   bool runOnCountableLoop();
164   bool runOnLoopBlock(BasicBlock *BB, const SCEV *BECount,
165                       SmallVectorImpl<BasicBlock *> &ExitBlocks);
166 
167   void collectStores(BasicBlock *BB);
168   LegalStoreKind isLegalStore(StoreInst *SI);
169   enum class ForMemset { No, Yes };
170   bool processLoopStores(SmallVectorImpl<StoreInst *> &SL, const SCEV *BECount,
171                          ForMemset For);
172   bool processLoopMemSet(MemSetInst *MSI, const SCEV *BECount);
173 
174   bool processLoopStridedStore(Value *DestPtr, unsigned StoreSize,
175                                unsigned StoreAlignment, Value *StoredVal,
176                                Instruction *TheStore,
177                                SmallPtrSetImpl<Instruction *> &Stores,
178                                const SCEVAddRecExpr *Ev, const SCEV *BECount,
179                                bool NegStride, bool IsLoopMemset = false);
180   bool processLoopStoreOfLoopLoad(StoreInst *SI, const SCEV *BECount);
181   bool avoidLIRForMultiBlockLoop(bool IsMemset = false,
182                                  bool IsLoopMemset = false);
183 
184   /// @}
185   /// \name Noncountable Loop Idiom Handling
186   /// @{
187 
188   bool runOnNoncountableLoop();
189 
190   bool recognizePopcount();
191   void transformLoopToPopcount(BasicBlock *PreCondBB, Instruction *CntInst,
192                                PHINode *CntPhi, Value *Var);
193   bool recognizeAndInsertFFS();  /// Find First Set: ctlz or cttz
194   void transformLoopToCountable(Intrinsic::ID IntrinID, BasicBlock *PreCondBB,
195                                 Instruction *CntInst, PHINode *CntPhi,
196                                 Value *Var, Instruction *DefX,
197                                 const DebugLoc &DL, bool ZeroCheck,
198                                 bool IsCntPhiUsedOutsideLoop);
199 
200   /// @}
201 };
202 
203 class LoopIdiomRecognizeLegacyPass : public LoopPass {
204 public:
205   static char ID;
206 
207   explicit LoopIdiomRecognizeLegacyPass() : LoopPass(ID) {
208     initializeLoopIdiomRecognizeLegacyPassPass(
209         *PassRegistry::getPassRegistry());
210   }
211 
212   bool runOnLoop(Loop *L, LPPassManager &LPM) override {
213     if (skipLoop(L))
214       return false;
215 
216     AliasAnalysis *AA = &getAnalysis<AAResultsWrapperPass>().getAAResults();
217     DominatorTree *DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree();
218     LoopInfo *LI = &getAnalysis<LoopInfoWrapperPass>().getLoopInfo();
219     ScalarEvolution *SE = &getAnalysis<ScalarEvolutionWrapperPass>().getSE();
220     TargetLibraryInfo *TLI =
221         &getAnalysis<TargetLibraryInfoWrapperPass>().getTLI(
222             *L->getHeader()->getParent());
223     const TargetTransformInfo *TTI =
224         &getAnalysis<TargetTransformInfoWrapperPass>().getTTI(
225             *L->getHeader()->getParent());
226     const DataLayout *DL = &L->getHeader()->getModule()->getDataLayout();
227 
228     // For the old PM, we can't use OptimizationRemarkEmitter as an analysis
229     // pass.  Function analyses need to be preserved across loop transformations
230     // but ORE cannot be preserved (see comment before the pass definition).
231     OptimizationRemarkEmitter ORE(L->getHeader()->getParent());
232 
233     LoopIdiomRecognize LIR(AA, DT, LI, SE, TLI, TTI, DL, ORE);
234     return LIR.runOnLoop(L);
235   }
236 
237   /// This transformation requires natural loop information & requires that
238   /// loop preheaders be inserted into the CFG.
239   void getAnalysisUsage(AnalysisUsage &AU) const override {
240     AU.addRequired<TargetLibraryInfoWrapperPass>();
241     AU.addRequired<TargetTransformInfoWrapperPass>();
242     getLoopAnalysisUsage(AU);
243   }
244 };
245 
246 } // end anonymous namespace
247 
248 char LoopIdiomRecognizeLegacyPass::ID = 0;
249 
250 PreservedAnalyses LoopIdiomRecognizePass::run(Loop &L, LoopAnalysisManager &AM,
251                                               LoopStandardAnalysisResults &AR,
252                                               LPMUpdater &) {
253   const auto *DL = &L.getHeader()->getModule()->getDataLayout();
254 
255   const auto &FAM =
256       AM.getResult<FunctionAnalysisManagerLoopProxy>(L, AR).getManager();
257   Function *F = L.getHeader()->getParent();
258 
259   auto *ORE = FAM.getCachedResult<OptimizationRemarkEmitterAnalysis>(*F);
260   // FIXME: This should probably be optional rather than required.
261   if (!ORE)
262     report_fatal_error(
263         "LoopIdiomRecognizePass: OptimizationRemarkEmitterAnalysis not cached "
264         "at a higher level");
265 
266   LoopIdiomRecognize LIR(&AR.AA, &AR.DT, &AR.LI, &AR.SE, &AR.TLI, &AR.TTI, DL,
267                          *ORE);
268   if (!LIR.runOnLoop(&L))
269     return PreservedAnalyses::all();
270 
271   return getLoopPassPreservedAnalyses();
272 }
273 
274 INITIALIZE_PASS_BEGIN(LoopIdiomRecognizeLegacyPass, "loop-idiom",
275                       "Recognize loop idioms", false, false)
276 INITIALIZE_PASS_DEPENDENCY(LoopPass)
277 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass)
278 INITIALIZE_PASS_DEPENDENCY(TargetTransformInfoWrapperPass)
279 INITIALIZE_PASS_END(LoopIdiomRecognizeLegacyPass, "loop-idiom",
280                     "Recognize loop idioms", false, false)
281 
282 Pass *llvm::createLoopIdiomPass() { return new LoopIdiomRecognizeLegacyPass(); }
283 
284 static void deleteDeadInstruction(Instruction *I) {
285   I->replaceAllUsesWith(UndefValue::get(I->getType()));
286   I->eraseFromParent();
287 }
288 
289 //===----------------------------------------------------------------------===//
290 //
291 //          Implementation of LoopIdiomRecognize
292 //
293 //===----------------------------------------------------------------------===//
294 
295 bool LoopIdiomRecognize::runOnLoop(Loop *L) {
296   CurLoop = L;
297   // If the loop could not be converted to canonical form, it must have an
298   // indirectbr in it, just give up.
299   if (!L->getLoopPreheader())
300     return false;
301 
302   // Disable loop idiom recognition if the function's name is a common idiom.
303   StringRef Name = L->getHeader()->getParent()->getName();
304   if (Name == "memset" || Name == "memcpy")
305     return false;
306 
307   // Determine if code size heuristics need to be applied.
308   ApplyCodeSizeHeuristics =
309       L->getHeader()->getParent()->hasOptSize() && UseLIRCodeSizeHeurs;
310 
311   HasMemset = TLI->has(LibFunc_memset);
312   HasMemsetPattern = TLI->has(LibFunc_memset_pattern16);
313   HasMemcpy = TLI->has(LibFunc_memcpy);
314 
315   if (HasMemset || HasMemsetPattern || HasMemcpy)
316     if (SE->hasLoopInvariantBackedgeTakenCount(L))
317       return runOnCountableLoop();
318 
319   return runOnNoncountableLoop();
320 }
321 
322 bool LoopIdiomRecognize::runOnCountableLoop() {
323   const SCEV *BECount = SE->getBackedgeTakenCount(CurLoop);
324   assert(!isa<SCEVCouldNotCompute>(BECount) &&
325          "runOnCountableLoop() called on a loop without a predictable"
326          "backedge-taken count");
327 
328   // If this loop executes exactly one time, then it should be peeled, not
329   // optimized by this pass.
330   if (const SCEVConstant *BECst = dyn_cast<SCEVConstant>(BECount))
331     if (BECst->getAPInt() == 0)
332       return false;
333 
334   SmallVector<BasicBlock *, 8> ExitBlocks;
335   CurLoop->getUniqueExitBlocks(ExitBlocks);
336 
337   LLVM_DEBUG(dbgs() << DEBUG_TYPE " Scanning: F["
338                     << CurLoop->getHeader()->getParent()->getName()
339                     << "] Countable Loop %" << CurLoop->getHeader()->getName()
340                     << "\n");
341 
342   bool MadeChange = false;
343 
344   // The following transforms hoist stores/memsets into the loop pre-header.
345   // Give up if the loop has instructions may throw.
346   SimpleLoopSafetyInfo SafetyInfo;
347   SafetyInfo.computeLoopSafetyInfo(CurLoop);
348   if (SafetyInfo.anyBlockMayThrow())
349     return MadeChange;
350 
351   // Scan all the blocks in the loop that are not in subloops.
352   for (auto *BB : CurLoop->getBlocks()) {
353     // Ignore blocks in subloops.
354     if (LI->getLoopFor(BB) != CurLoop)
355       continue;
356 
357     MadeChange |= runOnLoopBlock(BB, BECount, ExitBlocks);
358   }
359   return MadeChange;
360 }
361 
362 static APInt getStoreStride(const SCEVAddRecExpr *StoreEv) {
363   const SCEVConstant *ConstStride = cast<SCEVConstant>(StoreEv->getOperand(1));
364   return ConstStride->getAPInt();
365 }
366 
367 /// getMemSetPatternValue - If a strided store of the specified value is safe to
368 /// turn into a memset_pattern16, return a ConstantArray of 16 bytes that should
369 /// be passed in.  Otherwise, return null.
370 ///
371 /// Note that we don't ever attempt to use memset_pattern8 or 4, because these
372 /// just replicate their input array and then pass on to memset_pattern16.
373 static Constant *getMemSetPatternValue(Value *V, const DataLayout *DL) {
374   // FIXME: This could check for UndefValue because it can be merged into any
375   // other valid pattern.
376 
377   // If the value isn't a constant, we can't promote it to being in a constant
378   // array.  We could theoretically do a store to an alloca or something, but
379   // that doesn't seem worthwhile.
380   Constant *C = dyn_cast<Constant>(V);
381   if (!C)
382     return nullptr;
383 
384   // Only handle simple values that are a power of two bytes in size.
385   uint64_t Size = DL->getTypeSizeInBits(V->getType());
386   if (Size == 0 || (Size & 7) || (Size & (Size - 1)))
387     return nullptr;
388 
389   // Don't care enough about darwin/ppc to implement this.
390   if (DL->isBigEndian())
391     return nullptr;
392 
393   // Convert to size in bytes.
394   Size /= 8;
395 
396   // TODO: If CI is larger than 16-bytes, we can try slicing it in half to see
397   // if the top and bottom are the same (e.g. for vectors and large integers).
398   if (Size > 16)
399     return nullptr;
400 
401   // If the constant is exactly 16 bytes, just use it.
402   if (Size == 16)
403     return C;
404 
405   // Otherwise, we'll use an array of the constants.
406   unsigned ArraySize = 16 / Size;
407   ArrayType *AT = ArrayType::get(V->getType(), ArraySize);
408   return ConstantArray::get(AT, std::vector<Constant *>(ArraySize, C));
409 }
410 
411 LoopIdiomRecognize::LegalStoreKind
412 LoopIdiomRecognize::isLegalStore(StoreInst *SI) {
413   // Don't touch volatile stores.
414   if (SI->isVolatile())
415     return LegalStoreKind::None;
416   // We only want simple or unordered-atomic stores.
417   if (!SI->isUnordered())
418     return LegalStoreKind::None;
419 
420   // Don't convert stores of non-integral pointer types to memsets (which stores
421   // integers).
422   if (DL->isNonIntegralPointerType(SI->getValueOperand()->getType()))
423     return LegalStoreKind::None;
424 
425   // Avoid merging nontemporal stores.
426   if (SI->getMetadata(LLVMContext::MD_nontemporal))
427     return LegalStoreKind::None;
428 
429   Value *StoredVal = SI->getValueOperand();
430   Value *StorePtr = SI->getPointerOperand();
431 
432   // Reject stores that are so large that they overflow an unsigned.
433   uint64_t SizeInBits = DL->getTypeSizeInBits(StoredVal->getType());
434   if ((SizeInBits & 7) || (SizeInBits >> 32) != 0)
435     return LegalStoreKind::None;
436 
437   // See if the pointer expression is an AddRec like {base,+,1} on the current
438   // loop, which indicates a strided store.  If we have something else, it's a
439   // random store we can't handle.
440   const SCEVAddRecExpr *StoreEv =
441       dyn_cast<SCEVAddRecExpr>(SE->getSCEV(StorePtr));
442   if (!StoreEv || StoreEv->getLoop() != CurLoop || !StoreEv->isAffine())
443     return LegalStoreKind::None;
444 
445   // Check to see if we have a constant stride.
446   if (!isa<SCEVConstant>(StoreEv->getOperand(1)))
447     return LegalStoreKind::None;
448 
449   // See if the store can be turned into a memset.
450 
451   // If the stored value is a byte-wise value (like i32 -1), then it may be
452   // turned into a memset of i8 -1, assuming that all the consecutive bytes
453   // are stored.  A store of i32 0x01020304 can never be turned into a memset,
454   // but it can be turned into memset_pattern if the target supports it.
455   Value *SplatValue = isBytewiseValue(StoredVal, *DL);
456   Constant *PatternValue = nullptr;
457 
458   // Note: memset and memset_pattern on unordered-atomic is yet not supported
459   bool UnorderedAtomic = SI->isUnordered() && !SI->isSimple();
460 
461   // If we're allowed to form a memset, and the stored value would be
462   // acceptable for memset, use it.
463   if (!UnorderedAtomic && HasMemset && SplatValue &&
464       // Verify that the stored value is loop invariant.  If not, we can't
465       // promote the memset.
466       CurLoop->isLoopInvariant(SplatValue)) {
467     // It looks like we can use SplatValue.
468     return LegalStoreKind::Memset;
469   } else if (!UnorderedAtomic && HasMemsetPattern &&
470              // Don't create memset_pattern16s with address spaces.
471              StorePtr->getType()->getPointerAddressSpace() == 0 &&
472              (PatternValue = getMemSetPatternValue(StoredVal, DL))) {
473     // It looks like we can use PatternValue!
474     return LegalStoreKind::MemsetPattern;
475   }
476 
477   // Otherwise, see if the store can be turned into a memcpy.
478   if (HasMemcpy) {
479     // Check to see if the stride matches the size of the store.  If so, then we
480     // know that every byte is touched in the loop.
481     APInt Stride = getStoreStride(StoreEv);
482     unsigned StoreSize = DL->getTypeStoreSize(SI->getValueOperand()->getType());
483     if (StoreSize != Stride && StoreSize != -Stride)
484       return LegalStoreKind::None;
485 
486     // The store must be feeding a non-volatile load.
487     LoadInst *LI = dyn_cast<LoadInst>(SI->getValueOperand());
488 
489     // Only allow non-volatile loads
490     if (!LI || LI->isVolatile())
491       return LegalStoreKind::None;
492     // Only allow simple or unordered-atomic loads
493     if (!LI->isUnordered())
494       return LegalStoreKind::None;
495 
496     // See if the pointer expression is an AddRec like {base,+,1} on the current
497     // loop, which indicates a strided load.  If we have something else, it's a
498     // random load we can't handle.
499     const SCEVAddRecExpr *LoadEv =
500         dyn_cast<SCEVAddRecExpr>(SE->getSCEV(LI->getPointerOperand()));
501     if (!LoadEv || LoadEv->getLoop() != CurLoop || !LoadEv->isAffine())
502       return LegalStoreKind::None;
503 
504     // The store and load must share the same stride.
505     if (StoreEv->getOperand(1) != LoadEv->getOperand(1))
506       return LegalStoreKind::None;
507 
508     // Success.  This store can be converted into a memcpy.
509     UnorderedAtomic = UnorderedAtomic || LI->isAtomic();
510     return UnorderedAtomic ? LegalStoreKind::UnorderedAtomicMemcpy
511                            : LegalStoreKind::Memcpy;
512   }
513   // This store can't be transformed into a memset/memcpy.
514   return LegalStoreKind::None;
515 }
516 
517 void LoopIdiomRecognize::collectStores(BasicBlock *BB) {
518   StoreRefsForMemset.clear();
519   StoreRefsForMemsetPattern.clear();
520   StoreRefsForMemcpy.clear();
521   for (Instruction &I : *BB) {
522     StoreInst *SI = dyn_cast<StoreInst>(&I);
523     if (!SI)
524       continue;
525 
526     // Make sure this is a strided store with a constant stride.
527     switch (isLegalStore(SI)) {
528     case LegalStoreKind::None:
529       // Nothing to do
530       break;
531     case LegalStoreKind::Memset: {
532       // Find the base pointer.
533       Value *Ptr = GetUnderlyingObject(SI->getPointerOperand(), *DL);
534       StoreRefsForMemset[Ptr].push_back(SI);
535     } break;
536     case LegalStoreKind::MemsetPattern: {
537       // Find the base pointer.
538       Value *Ptr = GetUnderlyingObject(SI->getPointerOperand(), *DL);
539       StoreRefsForMemsetPattern[Ptr].push_back(SI);
540     } break;
541     case LegalStoreKind::Memcpy:
542     case LegalStoreKind::UnorderedAtomicMemcpy:
543       StoreRefsForMemcpy.push_back(SI);
544       break;
545     default:
546       assert(false && "unhandled return value");
547       break;
548     }
549   }
550 }
551 
552 /// runOnLoopBlock - Process the specified block, which lives in a counted loop
553 /// with the specified backedge count.  This block is known to be in the current
554 /// loop and not in any subloops.
555 bool LoopIdiomRecognize::runOnLoopBlock(
556     BasicBlock *BB, const SCEV *BECount,
557     SmallVectorImpl<BasicBlock *> &ExitBlocks) {
558   // We can only promote stores in this block if they are unconditionally
559   // executed in the loop.  For a block to be unconditionally executed, it has
560   // to dominate all the exit blocks of the loop.  Verify this now.
561   for (unsigned i = 0, e = ExitBlocks.size(); i != e; ++i)
562     if (!DT->dominates(BB, ExitBlocks[i]))
563       return false;
564 
565   bool MadeChange = false;
566   // Look for store instructions, which may be optimized to memset/memcpy.
567   collectStores(BB);
568 
569   // Look for a single store or sets of stores with a common base, which can be
570   // optimized into a memset (memset_pattern).  The latter most commonly happens
571   // with structs and handunrolled loops.
572   for (auto &SL : StoreRefsForMemset)
573     MadeChange |= processLoopStores(SL.second, BECount, ForMemset::Yes);
574 
575   for (auto &SL : StoreRefsForMemsetPattern)
576     MadeChange |= processLoopStores(SL.second, BECount, ForMemset::No);
577 
578   // Optimize the store into a memcpy, if it feeds an similarly strided load.
579   for (auto &SI : StoreRefsForMemcpy)
580     MadeChange |= processLoopStoreOfLoopLoad(SI, BECount);
581 
582   for (BasicBlock::iterator I = BB->begin(), E = BB->end(); I != E;) {
583     Instruction *Inst = &*I++;
584     // Look for memset instructions, which may be optimized to a larger memset.
585     if (MemSetInst *MSI = dyn_cast<MemSetInst>(Inst)) {
586       WeakTrackingVH InstPtr(&*I);
587       if (!processLoopMemSet(MSI, BECount))
588         continue;
589       MadeChange = true;
590 
591       // If processing the memset invalidated our iterator, start over from the
592       // top of the block.
593       if (!InstPtr)
594         I = BB->begin();
595       continue;
596     }
597   }
598 
599   return MadeChange;
600 }
601 
602 /// See if this store(s) can be promoted to a memset.
603 bool LoopIdiomRecognize::processLoopStores(SmallVectorImpl<StoreInst *> &SL,
604                                            const SCEV *BECount, ForMemset For) {
605   // Try to find consecutive stores that can be transformed into memsets.
606   SetVector<StoreInst *> Heads, Tails;
607   SmallDenseMap<StoreInst *, StoreInst *> ConsecutiveChain;
608 
609   // Do a quadratic search on all of the given stores and find
610   // all of the pairs of stores that follow each other.
611   SmallVector<unsigned, 16> IndexQueue;
612   for (unsigned i = 0, e = SL.size(); i < e; ++i) {
613     assert(SL[i]->isSimple() && "Expected only non-volatile stores.");
614 
615     Value *FirstStoredVal = SL[i]->getValueOperand();
616     Value *FirstStorePtr = SL[i]->getPointerOperand();
617     const SCEVAddRecExpr *FirstStoreEv =
618         cast<SCEVAddRecExpr>(SE->getSCEV(FirstStorePtr));
619     APInt FirstStride = getStoreStride(FirstStoreEv);
620     unsigned FirstStoreSize = DL->getTypeStoreSize(SL[i]->getValueOperand()->getType());
621 
622     // See if we can optimize just this store in isolation.
623     if (FirstStride == FirstStoreSize || -FirstStride == FirstStoreSize) {
624       Heads.insert(SL[i]);
625       continue;
626     }
627 
628     Value *FirstSplatValue = nullptr;
629     Constant *FirstPatternValue = nullptr;
630 
631     if (For == ForMemset::Yes)
632       FirstSplatValue = isBytewiseValue(FirstStoredVal, *DL);
633     else
634       FirstPatternValue = getMemSetPatternValue(FirstStoredVal, DL);
635 
636     assert((FirstSplatValue || FirstPatternValue) &&
637            "Expected either splat value or pattern value.");
638 
639     IndexQueue.clear();
640     // If a store has multiple consecutive store candidates, search Stores
641     // array according to the sequence: from i+1 to e, then from i-1 to 0.
642     // This is because usually pairing with immediate succeeding or preceding
643     // candidate create the best chance to find memset opportunity.
644     unsigned j = 0;
645     for (j = i + 1; j < e; ++j)
646       IndexQueue.push_back(j);
647     for (j = i; j > 0; --j)
648       IndexQueue.push_back(j - 1);
649 
650     for (auto &k : IndexQueue) {
651       assert(SL[k]->isSimple() && "Expected only non-volatile stores.");
652       Value *SecondStorePtr = SL[k]->getPointerOperand();
653       const SCEVAddRecExpr *SecondStoreEv =
654           cast<SCEVAddRecExpr>(SE->getSCEV(SecondStorePtr));
655       APInt SecondStride = getStoreStride(SecondStoreEv);
656 
657       if (FirstStride != SecondStride)
658         continue;
659 
660       Value *SecondStoredVal = SL[k]->getValueOperand();
661       Value *SecondSplatValue = nullptr;
662       Constant *SecondPatternValue = nullptr;
663 
664       if (For == ForMemset::Yes)
665         SecondSplatValue = isBytewiseValue(SecondStoredVal, *DL);
666       else
667         SecondPatternValue = getMemSetPatternValue(SecondStoredVal, DL);
668 
669       assert((SecondSplatValue || SecondPatternValue) &&
670              "Expected either splat value or pattern value.");
671 
672       if (isConsecutiveAccess(SL[i], SL[k], *DL, *SE, false)) {
673         if (For == ForMemset::Yes) {
674           if (isa<UndefValue>(FirstSplatValue))
675             FirstSplatValue = SecondSplatValue;
676           if (FirstSplatValue != SecondSplatValue)
677             continue;
678         } else {
679           if (isa<UndefValue>(FirstPatternValue))
680             FirstPatternValue = SecondPatternValue;
681           if (FirstPatternValue != SecondPatternValue)
682             continue;
683         }
684         Tails.insert(SL[k]);
685         Heads.insert(SL[i]);
686         ConsecutiveChain[SL[i]] = SL[k];
687         break;
688       }
689     }
690   }
691 
692   // We may run into multiple chains that merge into a single chain. We mark the
693   // stores that we transformed so that we don't visit the same store twice.
694   SmallPtrSet<Value *, 16> TransformedStores;
695   bool Changed = false;
696 
697   // For stores that start but don't end a link in the chain:
698   for (SetVector<StoreInst *>::iterator it = Heads.begin(), e = Heads.end();
699        it != e; ++it) {
700     if (Tails.count(*it))
701       continue;
702 
703     // We found a store instr that starts a chain. Now follow the chain and try
704     // to transform it.
705     SmallPtrSet<Instruction *, 8> AdjacentStores;
706     StoreInst *I = *it;
707 
708     StoreInst *HeadStore = I;
709     unsigned StoreSize = 0;
710 
711     // Collect the chain into a list.
712     while (Tails.count(I) || Heads.count(I)) {
713       if (TransformedStores.count(I))
714         break;
715       AdjacentStores.insert(I);
716 
717       StoreSize += DL->getTypeStoreSize(I->getValueOperand()->getType());
718       // Move to the next value in the chain.
719       I = ConsecutiveChain[I];
720     }
721 
722     Value *StoredVal = HeadStore->getValueOperand();
723     Value *StorePtr = HeadStore->getPointerOperand();
724     const SCEVAddRecExpr *StoreEv = cast<SCEVAddRecExpr>(SE->getSCEV(StorePtr));
725     APInt Stride = getStoreStride(StoreEv);
726 
727     // Check to see if the stride matches the size of the stores.  If so, then
728     // we know that every byte is touched in the loop.
729     if (StoreSize != Stride && StoreSize != -Stride)
730       continue;
731 
732     bool NegStride = StoreSize == -Stride;
733 
734     if (processLoopStridedStore(StorePtr, StoreSize, HeadStore->getAlignment(),
735                                 StoredVal, HeadStore, AdjacentStores, StoreEv,
736                                 BECount, NegStride)) {
737       TransformedStores.insert(AdjacentStores.begin(), AdjacentStores.end());
738       Changed = true;
739     }
740   }
741 
742   return Changed;
743 }
744 
745 /// processLoopMemSet - See if this memset can be promoted to a large memset.
746 bool LoopIdiomRecognize::processLoopMemSet(MemSetInst *MSI,
747                                            const SCEV *BECount) {
748   // We can only handle non-volatile memsets with a constant size.
749   if (MSI->isVolatile() || !isa<ConstantInt>(MSI->getLength()))
750     return false;
751 
752   // If we're not allowed to hack on memset, we fail.
753   if (!HasMemset)
754     return false;
755 
756   Value *Pointer = MSI->getDest();
757 
758   // See if the pointer expression is an AddRec like {base,+,1} on the current
759   // loop, which indicates a strided store.  If we have something else, it's a
760   // random store we can't handle.
761   const SCEVAddRecExpr *Ev = dyn_cast<SCEVAddRecExpr>(SE->getSCEV(Pointer));
762   if (!Ev || Ev->getLoop() != CurLoop || !Ev->isAffine())
763     return false;
764 
765   // Reject memsets that are so large that they overflow an unsigned.
766   uint64_t SizeInBytes = cast<ConstantInt>(MSI->getLength())->getZExtValue();
767   if ((SizeInBytes >> 32) != 0)
768     return false;
769 
770   // Check to see if the stride matches the size of the memset.  If so, then we
771   // know that every byte is touched in the loop.
772   const SCEVConstant *ConstStride = dyn_cast<SCEVConstant>(Ev->getOperand(1));
773   if (!ConstStride)
774     return false;
775 
776   APInt Stride = ConstStride->getAPInt();
777   if (SizeInBytes != Stride && SizeInBytes != -Stride)
778     return false;
779 
780   // Verify that the memset value is loop invariant.  If not, we can't promote
781   // the memset.
782   Value *SplatValue = MSI->getValue();
783   if (!SplatValue || !CurLoop->isLoopInvariant(SplatValue))
784     return false;
785 
786   SmallPtrSet<Instruction *, 1> MSIs;
787   MSIs.insert(MSI);
788   bool NegStride = SizeInBytes == -Stride;
789   return processLoopStridedStore(Pointer, (unsigned)SizeInBytes,
790                                  MSI->getDestAlignment(), SplatValue, MSI, MSIs,
791                                  Ev, BECount, NegStride, /*IsLoopMemset=*/true);
792 }
793 
794 /// mayLoopAccessLocation - Return true if the specified loop might access the
795 /// specified pointer location, which is a loop-strided access.  The 'Access'
796 /// argument specifies what the verboten forms of access are (read or write).
797 static bool
798 mayLoopAccessLocation(Value *Ptr, ModRefInfo Access, Loop *L,
799                       const SCEV *BECount, unsigned StoreSize,
800                       AliasAnalysis &AA,
801                       SmallPtrSetImpl<Instruction *> &IgnoredStores) {
802   // Get the location that may be stored across the loop.  Since the access is
803   // strided positively through memory, we say that the modified location starts
804   // at the pointer and has infinite size.
805   LocationSize AccessSize = LocationSize::unknown();
806 
807   // If the loop iterates a fixed number of times, we can refine the access size
808   // to be exactly the size of the memset, which is (BECount+1)*StoreSize
809   if (const SCEVConstant *BECst = dyn_cast<SCEVConstant>(BECount))
810     AccessSize = LocationSize::precise((BECst->getValue()->getZExtValue() + 1) *
811                                        StoreSize);
812 
813   // TODO: For this to be really effective, we have to dive into the pointer
814   // operand in the store.  Store to &A[i] of 100 will always return may alias
815   // with store of &A[100], we need to StoreLoc to be "A" with size of 100,
816   // which will then no-alias a store to &A[100].
817   MemoryLocation StoreLoc(Ptr, AccessSize);
818 
819   for (Loop::block_iterator BI = L->block_begin(), E = L->block_end(); BI != E;
820        ++BI)
821     for (Instruction &I : **BI)
822       if (IgnoredStores.count(&I) == 0 &&
823           isModOrRefSet(
824               intersectModRef(AA.getModRefInfo(&I, StoreLoc), Access)))
825         return true;
826 
827   return false;
828 }
829 
830 // If we have a negative stride, Start refers to the end of the memory location
831 // we're trying to memset.  Therefore, we need to recompute the base pointer,
832 // which is just Start - BECount*Size.
833 static const SCEV *getStartForNegStride(const SCEV *Start, const SCEV *BECount,
834                                         Type *IntPtr, unsigned StoreSize,
835                                         ScalarEvolution *SE) {
836   const SCEV *Index = SE->getTruncateOrZeroExtend(BECount, IntPtr);
837   if (StoreSize != 1)
838     Index = SE->getMulExpr(Index, SE->getConstant(IntPtr, StoreSize),
839                            SCEV::FlagNUW);
840   return SE->getMinusSCEV(Start, Index);
841 }
842 
843 /// Compute the number of bytes as a SCEV from the backedge taken count.
844 ///
845 /// This also maps the SCEV into the provided type and tries to handle the
846 /// computation in a way that will fold cleanly.
847 static const SCEV *getNumBytes(const SCEV *BECount, Type *IntPtr,
848                                unsigned StoreSize, Loop *CurLoop,
849                                const DataLayout *DL, ScalarEvolution *SE) {
850   const SCEV *NumBytesS;
851   // The # stored bytes is (BECount+1)*Size.  Expand the trip count out to
852   // pointer size if it isn't already.
853   //
854   // If we're going to need to zero extend the BE count, check if we can add
855   // one to it prior to zero extending without overflow. Provided this is safe,
856   // it allows better simplification of the +1.
857   if (DL->getTypeSizeInBits(BECount->getType()) <
858           DL->getTypeSizeInBits(IntPtr) &&
859       SE->isLoopEntryGuardedByCond(
860           CurLoop, ICmpInst::ICMP_NE, BECount,
861           SE->getNegativeSCEV(SE->getOne(BECount->getType())))) {
862     NumBytesS = SE->getZeroExtendExpr(
863         SE->getAddExpr(BECount, SE->getOne(BECount->getType()), SCEV::FlagNUW),
864         IntPtr);
865   } else {
866     NumBytesS = SE->getAddExpr(SE->getTruncateOrZeroExtend(BECount, IntPtr),
867                                SE->getOne(IntPtr), SCEV::FlagNUW);
868   }
869 
870   // And scale it based on the store size.
871   if (StoreSize != 1) {
872     NumBytesS = SE->getMulExpr(NumBytesS, SE->getConstant(IntPtr, StoreSize),
873                                SCEV::FlagNUW);
874   }
875   return NumBytesS;
876 }
877 
878 /// processLoopStridedStore - We see a strided store of some value.  If we can
879 /// transform this into a memset or memset_pattern in the loop preheader, do so.
880 bool LoopIdiomRecognize::processLoopStridedStore(
881     Value *DestPtr, unsigned StoreSize, unsigned StoreAlignment,
882     Value *StoredVal, Instruction *TheStore,
883     SmallPtrSetImpl<Instruction *> &Stores, const SCEVAddRecExpr *Ev,
884     const SCEV *BECount, bool NegStride, bool IsLoopMemset) {
885   Value *SplatValue = isBytewiseValue(StoredVal, *DL);
886   Constant *PatternValue = nullptr;
887 
888   if (!SplatValue)
889     PatternValue = getMemSetPatternValue(StoredVal, DL);
890 
891   assert((SplatValue || PatternValue) &&
892          "Expected either splat value or pattern value.");
893 
894   // The trip count of the loop and the base pointer of the addrec SCEV is
895   // guaranteed to be loop invariant, which means that it should dominate the
896   // header.  This allows us to insert code for it in the preheader.
897   unsigned DestAS = DestPtr->getType()->getPointerAddressSpace();
898   BasicBlock *Preheader = CurLoop->getLoopPreheader();
899   IRBuilder<> Builder(Preheader->getTerminator());
900   SCEVExpander Expander(*SE, *DL, "loop-idiom");
901 
902   Type *DestInt8PtrTy = Builder.getInt8PtrTy(DestAS);
903   Type *IntPtr = Builder.getIntPtrTy(*DL, DestAS);
904 
905   const SCEV *Start = Ev->getStart();
906   // Handle negative strided loops.
907   if (NegStride)
908     Start = getStartForNegStride(Start, BECount, IntPtr, StoreSize, SE);
909 
910   // TODO: ideally we should still be able to generate memset if SCEV expander
911   // is taught to generate the dependencies at the latest point.
912   if (!isSafeToExpand(Start, *SE))
913     return false;
914 
915   // Okay, we have a strided store "p[i]" of a splattable value.  We can turn
916   // this into a memset in the loop preheader now if we want.  However, this
917   // would be unsafe to do if there is anything else in the loop that may read
918   // or write to the aliased location.  Check for any overlap by generating the
919   // base pointer and checking the region.
920   Value *BasePtr =
921       Expander.expandCodeFor(Start, DestInt8PtrTy, Preheader->getTerminator());
922   if (mayLoopAccessLocation(BasePtr, ModRefInfo::ModRef, CurLoop, BECount,
923                             StoreSize, *AA, Stores)) {
924     Expander.clear();
925     // If we generated new code for the base pointer, clean up.
926     RecursivelyDeleteTriviallyDeadInstructions(BasePtr, TLI);
927     return false;
928   }
929 
930   if (avoidLIRForMultiBlockLoop(/*IsMemset=*/true, IsLoopMemset))
931     return false;
932 
933   // Okay, everything looks good, insert the memset.
934 
935   const SCEV *NumBytesS =
936       getNumBytes(BECount, IntPtr, StoreSize, CurLoop, DL, SE);
937 
938   // TODO: ideally we should still be able to generate memset if SCEV expander
939   // is taught to generate the dependencies at the latest point.
940   if (!isSafeToExpand(NumBytesS, *SE))
941     return false;
942 
943   Value *NumBytes =
944       Expander.expandCodeFor(NumBytesS, IntPtr, Preheader->getTerminator());
945 
946   CallInst *NewCall;
947   if (SplatValue) {
948     NewCall =
949         Builder.CreateMemSet(BasePtr, SplatValue, NumBytes, StoreAlignment);
950   } else {
951     // Everything is emitted in default address space
952     Type *Int8PtrTy = DestInt8PtrTy;
953 
954     Module *M = TheStore->getModule();
955     StringRef FuncName = "memset_pattern16";
956     FunctionCallee MSP = M->getOrInsertFunction(FuncName, Builder.getVoidTy(),
957                                                 Int8PtrTy, Int8PtrTy, IntPtr);
958     inferLibFuncAttributes(M, FuncName, *TLI);
959 
960     // Otherwise we should form a memset_pattern16.  PatternValue is known to be
961     // an constant array of 16-bytes.  Plop the value into a mergable global.
962     GlobalVariable *GV = new GlobalVariable(*M, PatternValue->getType(), true,
963                                             GlobalValue::PrivateLinkage,
964                                             PatternValue, ".memset_pattern");
965     GV->setUnnamedAddr(GlobalValue::UnnamedAddr::Global); // Ok to merge these.
966     GV->setAlignment(Align(16));
967     Value *PatternPtr = ConstantExpr::getBitCast(GV, Int8PtrTy);
968     NewCall = Builder.CreateCall(MSP, {BasePtr, PatternPtr, NumBytes});
969   }
970 
971   LLVM_DEBUG(dbgs() << "  Formed memset: " << *NewCall << "\n"
972                     << "    from store to: " << *Ev << " at: " << *TheStore
973                     << "\n");
974   NewCall->setDebugLoc(TheStore->getDebugLoc());
975 
976   ORE.emit([&]() {
977     return OptimizationRemark(DEBUG_TYPE, "ProcessLoopStridedStore",
978                               NewCall->getDebugLoc(), Preheader)
979            << "Transformed loop-strided store into a call to "
980            << ore::NV("NewFunction", NewCall->getCalledFunction())
981            << "() function";
982   });
983 
984   // Okay, the memset has been formed.  Zap the original store and anything that
985   // feeds into it.
986   for (auto *I : Stores)
987     deleteDeadInstruction(I);
988   ++NumMemSet;
989   return true;
990 }
991 
992 /// If the stored value is a strided load in the same loop with the same stride
993 /// this may be transformable into a memcpy.  This kicks in for stuff like
994 /// for (i) A[i] = B[i];
995 bool LoopIdiomRecognize::processLoopStoreOfLoopLoad(StoreInst *SI,
996                                                     const SCEV *BECount) {
997   assert(SI->isUnordered() && "Expected only non-volatile non-ordered stores.");
998 
999   Value *StorePtr = SI->getPointerOperand();
1000   const SCEVAddRecExpr *StoreEv = cast<SCEVAddRecExpr>(SE->getSCEV(StorePtr));
1001   APInt Stride = getStoreStride(StoreEv);
1002   unsigned StoreSize = DL->getTypeStoreSize(SI->getValueOperand()->getType());
1003   bool NegStride = StoreSize == -Stride;
1004 
1005   // The store must be feeding a non-volatile load.
1006   LoadInst *LI = cast<LoadInst>(SI->getValueOperand());
1007   assert(LI->isUnordered() && "Expected only non-volatile non-ordered loads.");
1008 
1009   // See if the pointer expression is an AddRec like {base,+,1} on the current
1010   // loop, which indicates a strided load.  If we have something else, it's a
1011   // random load we can't handle.
1012   const SCEVAddRecExpr *LoadEv =
1013       cast<SCEVAddRecExpr>(SE->getSCEV(LI->getPointerOperand()));
1014 
1015   // The trip count of the loop and the base pointer of the addrec SCEV is
1016   // guaranteed to be loop invariant, which means that it should dominate the
1017   // header.  This allows us to insert code for it in the preheader.
1018   BasicBlock *Preheader = CurLoop->getLoopPreheader();
1019   IRBuilder<> Builder(Preheader->getTerminator());
1020   SCEVExpander Expander(*SE, *DL, "loop-idiom");
1021 
1022   const SCEV *StrStart = StoreEv->getStart();
1023   unsigned StrAS = SI->getPointerAddressSpace();
1024   Type *IntPtrTy = Builder.getIntPtrTy(*DL, StrAS);
1025 
1026   // Handle negative strided loops.
1027   if (NegStride)
1028     StrStart = getStartForNegStride(StrStart, BECount, IntPtrTy, StoreSize, SE);
1029 
1030   // Okay, we have a strided store "p[i]" of a loaded value.  We can turn
1031   // this into a memcpy in the loop preheader now if we want.  However, this
1032   // would be unsafe to do if there is anything else in the loop that may read
1033   // or write the memory region we're storing to.  This includes the load that
1034   // feeds the stores.  Check for an alias by generating the base address and
1035   // checking everything.
1036   Value *StoreBasePtr = Expander.expandCodeFor(
1037       StrStart, Builder.getInt8PtrTy(StrAS), Preheader->getTerminator());
1038 
1039   SmallPtrSet<Instruction *, 1> Stores;
1040   Stores.insert(SI);
1041   if (mayLoopAccessLocation(StoreBasePtr, ModRefInfo::ModRef, CurLoop, BECount,
1042                             StoreSize, *AA, Stores)) {
1043     Expander.clear();
1044     // If we generated new code for the base pointer, clean up.
1045     RecursivelyDeleteTriviallyDeadInstructions(StoreBasePtr, TLI);
1046     return false;
1047   }
1048 
1049   const SCEV *LdStart = LoadEv->getStart();
1050   unsigned LdAS = LI->getPointerAddressSpace();
1051 
1052   // Handle negative strided loops.
1053   if (NegStride)
1054     LdStart = getStartForNegStride(LdStart, BECount, IntPtrTy, StoreSize, SE);
1055 
1056   // For a memcpy, we have to make sure that the input array is not being
1057   // mutated by the loop.
1058   Value *LoadBasePtr = Expander.expandCodeFor(
1059       LdStart, Builder.getInt8PtrTy(LdAS), Preheader->getTerminator());
1060 
1061   if (mayLoopAccessLocation(LoadBasePtr, ModRefInfo::Mod, CurLoop, BECount,
1062                             StoreSize, *AA, Stores)) {
1063     Expander.clear();
1064     // If we generated new code for the base pointer, clean up.
1065     RecursivelyDeleteTriviallyDeadInstructions(LoadBasePtr, TLI);
1066     RecursivelyDeleteTriviallyDeadInstructions(StoreBasePtr, TLI);
1067     return false;
1068   }
1069 
1070   if (avoidLIRForMultiBlockLoop())
1071     return false;
1072 
1073   // Okay, everything is safe, we can transform this!
1074 
1075   const SCEV *NumBytesS =
1076       getNumBytes(BECount, IntPtrTy, StoreSize, CurLoop, DL, SE);
1077 
1078   Value *NumBytes =
1079       Expander.expandCodeFor(NumBytesS, IntPtrTy, Preheader->getTerminator());
1080 
1081   CallInst *NewCall = nullptr;
1082   // Check whether to generate an unordered atomic memcpy:
1083   //  If the load or store are atomic, then they must necessarily be unordered
1084   //  by previous checks.
1085   if (!SI->isAtomic() && !LI->isAtomic())
1086     NewCall = Builder.CreateMemCpy(StoreBasePtr, SI->getAlignment(),
1087                                    LoadBasePtr, LI->getAlignment(), NumBytes);
1088   else {
1089     // We cannot allow unaligned ops for unordered load/store, so reject
1090     // anything where the alignment isn't at least the element size.
1091     unsigned Align = std::min(SI->getAlignment(), LI->getAlignment());
1092     if (Align < StoreSize)
1093       return false;
1094 
1095     // If the element.atomic memcpy is not lowered into explicit
1096     // loads/stores later, then it will be lowered into an element-size
1097     // specific lib call. If the lib call doesn't exist for our store size, then
1098     // we shouldn't generate the memcpy.
1099     if (StoreSize > TTI->getAtomicMemIntrinsicMaxElementSize())
1100       return false;
1101 
1102     // Create the call.
1103     // Note that unordered atomic loads/stores are *required* by the spec to
1104     // have an alignment but non-atomic loads/stores may not.
1105     NewCall = Builder.CreateElementUnorderedAtomicMemCpy(
1106         StoreBasePtr, SI->getAlignment(), LoadBasePtr, LI->getAlignment(),
1107         NumBytes, StoreSize);
1108   }
1109   NewCall->setDebugLoc(SI->getDebugLoc());
1110 
1111   LLVM_DEBUG(dbgs() << "  Formed memcpy: " << *NewCall << "\n"
1112                     << "    from load ptr=" << *LoadEv << " at: " << *LI << "\n"
1113                     << "    from store ptr=" << *StoreEv << " at: " << *SI
1114                     << "\n");
1115 
1116   ORE.emit([&]() {
1117     return OptimizationRemark(DEBUG_TYPE, "ProcessLoopStoreOfLoopLoad",
1118                               NewCall->getDebugLoc(), Preheader)
1119            << "Formed a call to "
1120            << ore::NV("NewFunction", NewCall->getCalledFunction())
1121            << "() function";
1122   });
1123 
1124   // Okay, the memcpy has been formed.  Zap the original store and anything that
1125   // feeds into it.
1126   deleteDeadInstruction(SI);
1127   ++NumMemCpy;
1128   return true;
1129 }
1130 
1131 // When compiling for codesize we avoid idiom recognition for a multi-block loop
1132 // unless it is a loop_memset idiom or a memset/memcpy idiom in a nested loop.
1133 //
1134 bool LoopIdiomRecognize::avoidLIRForMultiBlockLoop(bool IsMemset,
1135                                                    bool IsLoopMemset) {
1136   if (ApplyCodeSizeHeuristics && CurLoop->getNumBlocks() > 1) {
1137     if (!CurLoop->getParentLoop() && (!IsMemset || !IsLoopMemset)) {
1138       LLVM_DEBUG(dbgs() << "  " << CurLoop->getHeader()->getParent()->getName()
1139                         << " : LIR " << (IsMemset ? "Memset" : "Memcpy")
1140                         << " avoided: multi-block top-level loop\n");
1141       return true;
1142     }
1143   }
1144 
1145   return false;
1146 }
1147 
1148 bool LoopIdiomRecognize::runOnNoncountableLoop() {
1149   LLVM_DEBUG(dbgs() << DEBUG_TYPE " Scanning: F["
1150                     << CurLoop->getHeader()->getParent()->getName()
1151                     << "] Noncountable Loop %"
1152                     << CurLoop->getHeader()->getName() << "\n");
1153 
1154   return recognizePopcount() || recognizeAndInsertFFS();
1155 }
1156 
1157 /// Check if the given conditional branch is based on the comparison between
1158 /// a variable and zero, and if the variable is non-zero or zero (JmpOnZero is
1159 /// true), the control yields to the loop entry. If the branch matches the
1160 /// behavior, the variable involved in the comparison is returned. This function
1161 /// will be called to see if the precondition and postcondition of the loop are
1162 /// in desirable form.
1163 static Value *matchCondition(BranchInst *BI, BasicBlock *LoopEntry,
1164                              bool JmpOnZero = false) {
1165   if (!BI || !BI->isConditional())
1166     return nullptr;
1167 
1168   ICmpInst *Cond = dyn_cast<ICmpInst>(BI->getCondition());
1169   if (!Cond)
1170     return nullptr;
1171 
1172   ConstantInt *CmpZero = dyn_cast<ConstantInt>(Cond->getOperand(1));
1173   if (!CmpZero || !CmpZero->isZero())
1174     return nullptr;
1175 
1176   BasicBlock *TrueSucc = BI->getSuccessor(0);
1177   BasicBlock *FalseSucc = BI->getSuccessor(1);
1178   if (JmpOnZero)
1179     std::swap(TrueSucc, FalseSucc);
1180 
1181   ICmpInst::Predicate Pred = Cond->getPredicate();
1182   if ((Pred == ICmpInst::ICMP_NE && TrueSucc == LoopEntry) ||
1183       (Pred == ICmpInst::ICMP_EQ && FalseSucc == LoopEntry))
1184     return Cond->getOperand(0);
1185 
1186   return nullptr;
1187 }
1188 
1189 // Check if the recurrence variable `VarX` is in the right form to create
1190 // the idiom. Returns the value coerced to a PHINode if so.
1191 static PHINode *getRecurrenceVar(Value *VarX, Instruction *DefX,
1192                                  BasicBlock *LoopEntry) {
1193   auto *PhiX = dyn_cast<PHINode>(VarX);
1194   if (PhiX && PhiX->getParent() == LoopEntry &&
1195       (PhiX->getOperand(0) == DefX || PhiX->getOperand(1) == DefX))
1196     return PhiX;
1197   return nullptr;
1198 }
1199 
1200 /// Return true iff the idiom is detected in the loop.
1201 ///
1202 /// Additionally:
1203 /// 1) \p CntInst is set to the instruction counting the population bit.
1204 /// 2) \p CntPhi is set to the corresponding phi node.
1205 /// 3) \p Var is set to the value whose population bits are being counted.
1206 ///
1207 /// The core idiom we are trying to detect is:
1208 /// \code
1209 ///    if (x0 != 0)
1210 ///      goto loop-exit // the precondition of the loop
1211 ///    cnt0 = init-val;
1212 ///    do {
1213 ///       x1 = phi (x0, x2);
1214 ///       cnt1 = phi(cnt0, cnt2);
1215 ///
1216 ///       cnt2 = cnt1 + 1;
1217 ///        ...
1218 ///       x2 = x1 & (x1 - 1);
1219 ///        ...
1220 ///    } while(x != 0);
1221 ///
1222 /// loop-exit:
1223 /// \endcode
1224 static bool detectPopcountIdiom(Loop *CurLoop, BasicBlock *PreCondBB,
1225                                 Instruction *&CntInst, PHINode *&CntPhi,
1226                                 Value *&Var) {
1227   // step 1: Check to see if the look-back branch match this pattern:
1228   //    "if (a!=0) goto loop-entry".
1229   BasicBlock *LoopEntry;
1230   Instruction *DefX2, *CountInst;
1231   Value *VarX1, *VarX0;
1232   PHINode *PhiX, *CountPhi;
1233 
1234   DefX2 = CountInst = nullptr;
1235   VarX1 = VarX0 = nullptr;
1236   PhiX = CountPhi = nullptr;
1237   LoopEntry = *(CurLoop->block_begin());
1238 
1239   // step 1: Check if the loop-back branch is in desirable form.
1240   {
1241     if (Value *T = matchCondition(
1242             dyn_cast<BranchInst>(LoopEntry->getTerminator()), LoopEntry))
1243       DefX2 = dyn_cast<Instruction>(T);
1244     else
1245       return false;
1246   }
1247 
1248   // step 2: detect instructions corresponding to "x2 = x1 & (x1 - 1)"
1249   {
1250     if (!DefX2 || DefX2->getOpcode() != Instruction::And)
1251       return false;
1252 
1253     BinaryOperator *SubOneOp;
1254 
1255     if ((SubOneOp = dyn_cast<BinaryOperator>(DefX2->getOperand(0))))
1256       VarX1 = DefX2->getOperand(1);
1257     else {
1258       VarX1 = DefX2->getOperand(0);
1259       SubOneOp = dyn_cast<BinaryOperator>(DefX2->getOperand(1));
1260     }
1261     if (!SubOneOp || SubOneOp->getOperand(0) != VarX1)
1262       return false;
1263 
1264     ConstantInt *Dec = dyn_cast<ConstantInt>(SubOneOp->getOperand(1));
1265     if (!Dec ||
1266         !((SubOneOp->getOpcode() == Instruction::Sub && Dec->isOne()) ||
1267           (SubOneOp->getOpcode() == Instruction::Add &&
1268            Dec->isMinusOne()))) {
1269       return false;
1270     }
1271   }
1272 
1273   // step 3: Check the recurrence of variable X
1274   PhiX = getRecurrenceVar(VarX1, DefX2, LoopEntry);
1275   if (!PhiX)
1276     return false;
1277 
1278   // step 4: Find the instruction which count the population: cnt2 = cnt1 + 1
1279   {
1280     CountInst = nullptr;
1281     for (BasicBlock::iterator Iter = LoopEntry->getFirstNonPHI()->getIterator(),
1282                               IterE = LoopEntry->end();
1283          Iter != IterE; Iter++) {
1284       Instruction *Inst = &*Iter;
1285       if (Inst->getOpcode() != Instruction::Add)
1286         continue;
1287 
1288       ConstantInt *Inc = dyn_cast<ConstantInt>(Inst->getOperand(1));
1289       if (!Inc || !Inc->isOne())
1290         continue;
1291 
1292       PHINode *Phi = getRecurrenceVar(Inst->getOperand(0), Inst, LoopEntry);
1293       if (!Phi)
1294         continue;
1295 
1296       // Check if the result of the instruction is live of the loop.
1297       bool LiveOutLoop = false;
1298       for (User *U : Inst->users()) {
1299         if ((cast<Instruction>(U))->getParent() != LoopEntry) {
1300           LiveOutLoop = true;
1301           break;
1302         }
1303       }
1304 
1305       if (LiveOutLoop) {
1306         CountInst = Inst;
1307         CountPhi = Phi;
1308         break;
1309       }
1310     }
1311 
1312     if (!CountInst)
1313       return false;
1314   }
1315 
1316   // step 5: check if the precondition is in this form:
1317   //   "if (x != 0) goto loop-head ; else goto somewhere-we-don't-care;"
1318   {
1319     auto *PreCondBr = dyn_cast<BranchInst>(PreCondBB->getTerminator());
1320     Value *T = matchCondition(PreCondBr, CurLoop->getLoopPreheader());
1321     if (T != PhiX->getOperand(0) && T != PhiX->getOperand(1))
1322       return false;
1323 
1324     CntInst = CountInst;
1325     CntPhi = CountPhi;
1326     Var = T;
1327   }
1328 
1329   return true;
1330 }
1331 
1332 /// Return true if the idiom is detected in the loop.
1333 ///
1334 /// Additionally:
1335 /// 1) \p CntInst is set to the instruction Counting Leading Zeros (CTLZ)
1336 ///       or nullptr if there is no such.
1337 /// 2) \p CntPhi is set to the corresponding phi node
1338 ///       or nullptr if there is no such.
1339 /// 3) \p Var is set to the value whose CTLZ could be used.
1340 /// 4) \p DefX is set to the instruction calculating Loop exit condition.
1341 ///
1342 /// The core idiom we are trying to detect is:
1343 /// \code
1344 ///    if (x0 == 0)
1345 ///      goto loop-exit // the precondition of the loop
1346 ///    cnt0 = init-val;
1347 ///    do {
1348 ///       x = phi (x0, x.next);   //PhiX
1349 ///       cnt = phi(cnt0, cnt.next);
1350 ///
1351 ///       cnt.next = cnt + 1;
1352 ///        ...
1353 ///       x.next = x >> 1;   // DefX
1354 ///        ...
1355 ///    } while(x.next != 0);
1356 ///
1357 /// loop-exit:
1358 /// \endcode
1359 static bool detectShiftUntilZeroIdiom(Loop *CurLoop, const DataLayout &DL,
1360                                       Intrinsic::ID &IntrinID, Value *&InitX,
1361                                       Instruction *&CntInst, PHINode *&CntPhi,
1362                                       Instruction *&DefX) {
1363   BasicBlock *LoopEntry;
1364   Value *VarX = nullptr;
1365 
1366   DefX = nullptr;
1367   CntInst = nullptr;
1368   CntPhi = nullptr;
1369   LoopEntry = *(CurLoop->block_begin());
1370 
1371   // step 1: Check if the loop-back branch is in desirable form.
1372   if (Value *T = matchCondition(
1373           dyn_cast<BranchInst>(LoopEntry->getTerminator()), LoopEntry))
1374     DefX = dyn_cast<Instruction>(T);
1375   else
1376     return false;
1377 
1378   // step 2: detect instructions corresponding to "x.next = x >> 1 or x << 1"
1379   if (!DefX || !DefX->isShift())
1380     return false;
1381   IntrinID = DefX->getOpcode() == Instruction::Shl ? Intrinsic::cttz :
1382                                                      Intrinsic::ctlz;
1383   ConstantInt *Shft = dyn_cast<ConstantInt>(DefX->getOperand(1));
1384   if (!Shft || !Shft->isOne())
1385     return false;
1386   VarX = DefX->getOperand(0);
1387 
1388   // step 3: Check the recurrence of variable X
1389   PHINode *PhiX = getRecurrenceVar(VarX, DefX, LoopEntry);
1390   if (!PhiX)
1391     return false;
1392 
1393   InitX = PhiX->getIncomingValueForBlock(CurLoop->getLoopPreheader());
1394 
1395   // Make sure the initial value can't be negative otherwise the ashr in the
1396   // loop might never reach zero which would make the loop infinite.
1397   if (DefX->getOpcode() == Instruction::AShr && !isKnownNonNegative(InitX, DL))
1398     return false;
1399 
1400   // step 4: Find the instruction which count the CTLZ: cnt.next = cnt + 1
1401   // TODO: We can skip the step. If loop trip count is known (CTLZ),
1402   //       then all uses of "cnt.next" could be optimized to the trip count
1403   //       plus "cnt0". Currently it is not optimized.
1404   //       This step could be used to detect POPCNT instruction:
1405   //       cnt.next = cnt + (x.next & 1)
1406   for (BasicBlock::iterator Iter = LoopEntry->getFirstNonPHI()->getIterator(),
1407                             IterE = LoopEntry->end();
1408        Iter != IterE; Iter++) {
1409     Instruction *Inst = &*Iter;
1410     if (Inst->getOpcode() != Instruction::Add)
1411       continue;
1412 
1413     ConstantInt *Inc = dyn_cast<ConstantInt>(Inst->getOperand(1));
1414     if (!Inc || !Inc->isOne())
1415       continue;
1416 
1417     PHINode *Phi = getRecurrenceVar(Inst->getOperand(0), Inst, LoopEntry);
1418     if (!Phi)
1419       continue;
1420 
1421     CntInst = Inst;
1422     CntPhi = Phi;
1423     break;
1424   }
1425   if (!CntInst)
1426     return false;
1427 
1428   return true;
1429 }
1430 
1431 /// Recognize CTLZ or CTTZ idiom in a non-countable loop and convert the loop
1432 /// to countable (with CTLZ / CTTZ trip count). If CTLZ / CTTZ inserted as a new
1433 /// trip count returns true; otherwise, returns false.
1434 bool LoopIdiomRecognize::recognizeAndInsertFFS() {
1435   // Give up if the loop has multiple blocks or multiple backedges.
1436   if (CurLoop->getNumBackEdges() != 1 || CurLoop->getNumBlocks() != 1)
1437     return false;
1438 
1439   Intrinsic::ID IntrinID;
1440   Value *InitX;
1441   Instruction *DefX = nullptr;
1442   PHINode *CntPhi = nullptr;
1443   Instruction *CntInst = nullptr;
1444   // Help decide if transformation is profitable. For ShiftUntilZero idiom,
1445   // this is always 6.
1446   size_t IdiomCanonicalSize = 6;
1447 
1448   if (!detectShiftUntilZeroIdiom(CurLoop, *DL, IntrinID, InitX,
1449                                  CntInst, CntPhi, DefX))
1450     return false;
1451 
1452   bool IsCntPhiUsedOutsideLoop = false;
1453   for (User *U : CntPhi->users())
1454     if (!CurLoop->contains(cast<Instruction>(U))) {
1455       IsCntPhiUsedOutsideLoop = true;
1456       break;
1457     }
1458   bool IsCntInstUsedOutsideLoop = false;
1459   for (User *U : CntInst->users())
1460     if (!CurLoop->contains(cast<Instruction>(U))) {
1461       IsCntInstUsedOutsideLoop = true;
1462       break;
1463     }
1464   // If both CntInst and CntPhi are used outside the loop the profitability
1465   // is questionable.
1466   if (IsCntInstUsedOutsideLoop && IsCntPhiUsedOutsideLoop)
1467     return false;
1468 
1469   // For some CPUs result of CTLZ(X) intrinsic is undefined
1470   // when X is 0. If we can not guarantee X != 0, we need to check this
1471   // when expand.
1472   bool ZeroCheck = false;
1473   // It is safe to assume Preheader exist as it was checked in
1474   // parent function RunOnLoop.
1475   BasicBlock *PH = CurLoop->getLoopPreheader();
1476 
1477   // If we are using the count instruction outside the loop, make sure we
1478   // have a zero check as a precondition. Without the check the loop would run
1479   // one iteration for before any check of the input value. This means 0 and 1
1480   // would have identical behavior in the original loop and thus
1481   if (!IsCntPhiUsedOutsideLoop) {
1482     auto *PreCondBB = PH->getSinglePredecessor();
1483     if (!PreCondBB)
1484       return false;
1485     auto *PreCondBI = dyn_cast<BranchInst>(PreCondBB->getTerminator());
1486     if (!PreCondBI)
1487       return false;
1488     if (matchCondition(PreCondBI, PH) != InitX)
1489       return false;
1490     ZeroCheck = true;
1491   }
1492 
1493   // Check if CTLZ / CTTZ intrinsic is profitable. Assume it is always
1494   // profitable if we delete the loop.
1495 
1496   // the loop has only 6 instructions:
1497   //  %n.addr.0 = phi [ %n, %entry ], [ %shr, %while.cond ]
1498   //  %i.0 = phi [ %i0, %entry ], [ %inc, %while.cond ]
1499   //  %shr = ashr %n.addr.0, 1
1500   //  %tobool = icmp eq %shr, 0
1501   //  %inc = add nsw %i.0, 1
1502   //  br i1 %tobool
1503 
1504   const Value *Args[] =
1505       {InitX, ZeroCheck ? ConstantInt::getTrue(InitX->getContext())
1506                         : ConstantInt::getFalse(InitX->getContext())};
1507 
1508   // @llvm.dbg doesn't count as they have no semantic effect.
1509   auto InstWithoutDebugIt = CurLoop->getHeader()->instructionsWithoutDebug();
1510   uint32_t HeaderSize =
1511       std::distance(InstWithoutDebugIt.begin(), InstWithoutDebugIt.end());
1512 
1513   if (HeaderSize != IdiomCanonicalSize &&
1514       TTI->getIntrinsicCost(IntrinID, InitX->getType(), Args) >
1515           TargetTransformInfo::TCC_Basic)
1516     return false;
1517 
1518   transformLoopToCountable(IntrinID, PH, CntInst, CntPhi, InitX, DefX,
1519                            DefX->getDebugLoc(), ZeroCheck,
1520                            IsCntPhiUsedOutsideLoop);
1521   return true;
1522 }
1523 
1524 /// Recognizes a population count idiom in a non-countable loop.
1525 ///
1526 /// If detected, transforms the relevant code to issue the popcount intrinsic
1527 /// function call, and returns true; otherwise, returns false.
1528 bool LoopIdiomRecognize::recognizePopcount() {
1529   if (TTI->getPopcntSupport(32) != TargetTransformInfo::PSK_FastHardware)
1530     return false;
1531 
1532   // Counting population are usually conducted by few arithmetic instructions.
1533   // Such instructions can be easily "absorbed" by vacant slots in a
1534   // non-compact loop. Therefore, recognizing popcount idiom only makes sense
1535   // in a compact loop.
1536 
1537   // Give up if the loop has multiple blocks or multiple backedges.
1538   if (CurLoop->getNumBackEdges() != 1 || CurLoop->getNumBlocks() != 1)
1539     return false;
1540 
1541   BasicBlock *LoopBody = *(CurLoop->block_begin());
1542   if (LoopBody->size() >= 20) {
1543     // The loop is too big, bail out.
1544     return false;
1545   }
1546 
1547   // It should have a preheader containing nothing but an unconditional branch.
1548   BasicBlock *PH = CurLoop->getLoopPreheader();
1549   if (!PH || &PH->front() != PH->getTerminator())
1550     return false;
1551   auto *EntryBI = dyn_cast<BranchInst>(PH->getTerminator());
1552   if (!EntryBI || EntryBI->isConditional())
1553     return false;
1554 
1555   // It should have a precondition block where the generated popcount intrinsic
1556   // function can be inserted.
1557   auto *PreCondBB = PH->getSinglePredecessor();
1558   if (!PreCondBB)
1559     return false;
1560   auto *PreCondBI = dyn_cast<BranchInst>(PreCondBB->getTerminator());
1561   if (!PreCondBI || PreCondBI->isUnconditional())
1562     return false;
1563 
1564   Instruction *CntInst;
1565   PHINode *CntPhi;
1566   Value *Val;
1567   if (!detectPopcountIdiom(CurLoop, PreCondBB, CntInst, CntPhi, Val))
1568     return false;
1569 
1570   transformLoopToPopcount(PreCondBB, CntInst, CntPhi, Val);
1571   return true;
1572 }
1573 
1574 static CallInst *createPopcntIntrinsic(IRBuilder<> &IRBuilder, Value *Val,
1575                                        const DebugLoc &DL) {
1576   Value *Ops[] = {Val};
1577   Type *Tys[] = {Val->getType()};
1578 
1579   Module *M = IRBuilder.GetInsertBlock()->getParent()->getParent();
1580   Function *Func = Intrinsic::getDeclaration(M, Intrinsic::ctpop, Tys);
1581   CallInst *CI = IRBuilder.CreateCall(Func, Ops);
1582   CI->setDebugLoc(DL);
1583 
1584   return CI;
1585 }
1586 
1587 static CallInst *createFFSIntrinsic(IRBuilder<> &IRBuilder, Value *Val,
1588                                     const DebugLoc &DL, bool ZeroCheck,
1589                                     Intrinsic::ID IID) {
1590   Value *Ops[] = {Val, ZeroCheck ? IRBuilder.getTrue() : IRBuilder.getFalse()};
1591   Type *Tys[] = {Val->getType()};
1592 
1593   Module *M = IRBuilder.GetInsertBlock()->getParent()->getParent();
1594   Function *Func = Intrinsic::getDeclaration(M, IID, Tys);
1595   CallInst *CI = IRBuilder.CreateCall(Func, Ops);
1596   CI->setDebugLoc(DL);
1597 
1598   return CI;
1599 }
1600 
1601 /// Transform the following loop (Using CTLZ, CTTZ is similar):
1602 /// loop:
1603 ///   CntPhi = PHI [Cnt0, CntInst]
1604 ///   PhiX = PHI [InitX, DefX]
1605 ///   CntInst = CntPhi + 1
1606 ///   DefX = PhiX >> 1
1607 ///   LOOP_BODY
1608 ///   Br: loop if (DefX != 0)
1609 /// Use(CntPhi) or Use(CntInst)
1610 ///
1611 /// Into:
1612 /// If CntPhi used outside the loop:
1613 ///   CountPrev = BitWidth(InitX) - CTLZ(InitX >> 1)
1614 ///   Count = CountPrev + 1
1615 /// else
1616 ///   Count = BitWidth(InitX) - CTLZ(InitX)
1617 /// loop:
1618 ///   CntPhi = PHI [Cnt0, CntInst]
1619 ///   PhiX = PHI [InitX, DefX]
1620 ///   PhiCount = PHI [Count, Dec]
1621 ///   CntInst = CntPhi + 1
1622 ///   DefX = PhiX >> 1
1623 ///   Dec = PhiCount - 1
1624 ///   LOOP_BODY
1625 ///   Br: loop if (Dec != 0)
1626 /// Use(CountPrev + Cnt0) // Use(CntPhi)
1627 /// or
1628 /// Use(Count + Cnt0) // Use(CntInst)
1629 ///
1630 /// If LOOP_BODY is empty the loop will be deleted.
1631 /// If CntInst and DefX are not used in LOOP_BODY they will be removed.
1632 void LoopIdiomRecognize::transformLoopToCountable(
1633     Intrinsic::ID IntrinID, BasicBlock *Preheader, Instruction *CntInst,
1634     PHINode *CntPhi, Value *InitX, Instruction *DefX, const DebugLoc &DL,
1635     bool ZeroCheck, bool IsCntPhiUsedOutsideLoop) {
1636   BranchInst *PreheaderBr = cast<BranchInst>(Preheader->getTerminator());
1637 
1638   // Step 1: Insert the CTLZ/CTTZ instruction at the end of the preheader block
1639   IRBuilder<> Builder(PreheaderBr);
1640   Builder.SetCurrentDebugLocation(DL);
1641   Value *FFS, *Count, *CountPrev, *NewCount, *InitXNext;
1642 
1643   //   Count = BitWidth - CTLZ(InitX);
1644   // If there are uses of CntPhi create:
1645   //   CountPrev = BitWidth - CTLZ(InitX >> 1);
1646   if (IsCntPhiUsedOutsideLoop) {
1647     if (DefX->getOpcode() == Instruction::AShr)
1648       InitXNext =
1649           Builder.CreateAShr(InitX, ConstantInt::get(InitX->getType(), 1));
1650     else if (DefX->getOpcode() == Instruction::LShr)
1651       InitXNext =
1652           Builder.CreateLShr(InitX, ConstantInt::get(InitX->getType(), 1));
1653     else if (DefX->getOpcode() == Instruction::Shl) // cttz
1654       InitXNext =
1655           Builder.CreateShl(InitX, ConstantInt::get(InitX->getType(), 1));
1656     else
1657       llvm_unreachable("Unexpected opcode!");
1658   } else
1659     InitXNext = InitX;
1660   FFS = createFFSIntrinsic(Builder, InitXNext, DL, ZeroCheck, IntrinID);
1661   Count = Builder.CreateSub(
1662       ConstantInt::get(FFS->getType(),
1663                        FFS->getType()->getIntegerBitWidth()),
1664       FFS);
1665   if (IsCntPhiUsedOutsideLoop) {
1666     CountPrev = Count;
1667     Count = Builder.CreateAdd(
1668         CountPrev,
1669         ConstantInt::get(CountPrev->getType(), 1));
1670   }
1671 
1672   NewCount = Builder.CreateZExtOrTrunc(
1673                       IsCntPhiUsedOutsideLoop ? CountPrev : Count,
1674                       cast<IntegerType>(CntInst->getType()));
1675 
1676   // If the counter's initial value is not zero, insert Add Inst.
1677   Value *CntInitVal = CntPhi->getIncomingValueForBlock(Preheader);
1678   ConstantInt *InitConst = dyn_cast<ConstantInt>(CntInitVal);
1679   if (!InitConst || !InitConst->isZero())
1680     NewCount = Builder.CreateAdd(NewCount, CntInitVal);
1681 
1682   // Step 2: Insert new IV and loop condition:
1683   // loop:
1684   //   ...
1685   //   PhiCount = PHI [Count, Dec]
1686   //   ...
1687   //   Dec = PhiCount - 1
1688   //   ...
1689   //   Br: loop if (Dec != 0)
1690   BasicBlock *Body = *(CurLoop->block_begin());
1691   auto *LbBr = cast<BranchInst>(Body->getTerminator());
1692   ICmpInst *LbCond = cast<ICmpInst>(LbBr->getCondition());
1693   Type *Ty = Count->getType();
1694 
1695   PHINode *TcPhi = PHINode::Create(Ty, 2, "tcphi", &Body->front());
1696 
1697   Builder.SetInsertPoint(LbCond);
1698   Instruction *TcDec = cast<Instruction>(
1699       Builder.CreateSub(TcPhi, ConstantInt::get(Ty, 1),
1700                         "tcdec", false, true));
1701 
1702   TcPhi->addIncoming(Count, Preheader);
1703   TcPhi->addIncoming(TcDec, Body);
1704 
1705   CmpInst::Predicate Pred =
1706       (LbBr->getSuccessor(0) == Body) ? CmpInst::ICMP_NE : CmpInst::ICMP_EQ;
1707   LbCond->setPredicate(Pred);
1708   LbCond->setOperand(0, TcDec);
1709   LbCond->setOperand(1, ConstantInt::get(Ty, 0));
1710 
1711   // Step 3: All the references to the original counter outside
1712   //  the loop are replaced with the NewCount
1713   if (IsCntPhiUsedOutsideLoop)
1714     CntPhi->replaceUsesOutsideBlock(NewCount, Body);
1715   else
1716     CntInst->replaceUsesOutsideBlock(NewCount, Body);
1717 
1718   // step 4: Forget the "non-computable" trip-count SCEV associated with the
1719   //   loop. The loop would otherwise not be deleted even if it becomes empty.
1720   SE->forgetLoop(CurLoop);
1721 }
1722 
1723 void LoopIdiomRecognize::transformLoopToPopcount(BasicBlock *PreCondBB,
1724                                                  Instruction *CntInst,
1725                                                  PHINode *CntPhi, Value *Var) {
1726   BasicBlock *PreHead = CurLoop->getLoopPreheader();
1727   auto *PreCondBr = cast<BranchInst>(PreCondBB->getTerminator());
1728   const DebugLoc &DL = CntInst->getDebugLoc();
1729 
1730   // Assuming before transformation, the loop is following:
1731   //  if (x) // the precondition
1732   //     do { cnt++; x &= x - 1; } while(x);
1733 
1734   // Step 1: Insert the ctpop instruction at the end of the precondition block
1735   IRBuilder<> Builder(PreCondBr);
1736   Value *PopCnt, *PopCntZext, *NewCount, *TripCnt;
1737   {
1738     PopCnt = createPopcntIntrinsic(Builder, Var, DL);
1739     NewCount = PopCntZext =
1740         Builder.CreateZExtOrTrunc(PopCnt, cast<IntegerType>(CntPhi->getType()));
1741 
1742     if (NewCount != PopCnt)
1743       (cast<Instruction>(NewCount))->setDebugLoc(DL);
1744 
1745     // TripCnt is exactly the number of iterations the loop has
1746     TripCnt = NewCount;
1747 
1748     // If the population counter's initial value is not zero, insert Add Inst.
1749     Value *CntInitVal = CntPhi->getIncomingValueForBlock(PreHead);
1750     ConstantInt *InitConst = dyn_cast<ConstantInt>(CntInitVal);
1751     if (!InitConst || !InitConst->isZero()) {
1752       NewCount = Builder.CreateAdd(NewCount, CntInitVal);
1753       (cast<Instruction>(NewCount))->setDebugLoc(DL);
1754     }
1755   }
1756 
1757   // Step 2: Replace the precondition from "if (x == 0) goto loop-exit" to
1758   //   "if (NewCount == 0) loop-exit". Without this change, the intrinsic
1759   //   function would be partial dead code, and downstream passes will drag
1760   //   it back from the precondition block to the preheader.
1761   {
1762     ICmpInst *PreCond = cast<ICmpInst>(PreCondBr->getCondition());
1763 
1764     Value *Opnd0 = PopCntZext;
1765     Value *Opnd1 = ConstantInt::get(PopCntZext->getType(), 0);
1766     if (PreCond->getOperand(0) != Var)
1767       std::swap(Opnd0, Opnd1);
1768 
1769     ICmpInst *NewPreCond = cast<ICmpInst>(
1770         Builder.CreateICmp(PreCond->getPredicate(), Opnd0, Opnd1));
1771     PreCondBr->setCondition(NewPreCond);
1772 
1773     RecursivelyDeleteTriviallyDeadInstructions(PreCond, TLI);
1774   }
1775 
1776   // Step 3: Note that the population count is exactly the trip count of the
1777   // loop in question, which enable us to convert the loop from noncountable
1778   // loop into a countable one. The benefit is twofold:
1779   //
1780   //  - If the loop only counts population, the entire loop becomes dead after
1781   //    the transformation. It is a lot easier to prove a countable loop dead
1782   //    than to prove a noncountable one. (In some C dialects, an infinite loop
1783   //    isn't dead even if it computes nothing useful. In general, DCE needs
1784   //    to prove a noncountable loop finite before safely delete it.)
1785   //
1786   //  - If the loop also performs something else, it remains alive.
1787   //    Since it is transformed to countable form, it can be aggressively
1788   //    optimized by some optimizations which are in general not applicable
1789   //    to a noncountable loop.
1790   //
1791   // After this step, this loop (conceptually) would look like following:
1792   //   newcnt = __builtin_ctpop(x);
1793   //   t = newcnt;
1794   //   if (x)
1795   //     do { cnt++; x &= x-1; t--) } while (t > 0);
1796   BasicBlock *Body = *(CurLoop->block_begin());
1797   {
1798     auto *LbBr = cast<BranchInst>(Body->getTerminator());
1799     ICmpInst *LbCond = cast<ICmpInst>(LbBr->getCondition());
1800     Type *Ty = TripCnt->getType();
1801 
1802     PHINode *TcPhi = PHINode::Create(Ty, 2, "tcphi", &Body->front());
1803 
1804     Builder.SetInsertPoint(LbCond);
1805     Instruction *TcDec = cast<Instruction>(
1806         Builder.CreateSub(TcPhi, ConstantInt::get(Ty, 1),
1807                           "tcdec", false, true));
1808 
1809     TcPhi->addIncoming(TripCnt, PreHead);
1810     TcPhi->addIncoming(TcDec, Body);
1811 
1812     CmpInst::Predicate Pred =
1813         (LbBr->getSuccessor(0) == Body) ? CmpInst::ICMP_UGT : CmpInst::ICMP_SLE;
1814     LbCond->setPredicate(Pred);
1815     LbCond->setOperand(0, TcDec);
1816     LbCond->setOperand(1, ConstantInt::get(Ty, 0));
1817   }
1818 
1819   // Step 4: All the references to the original population counter outside
1820   //  the loop are replaced with the NewCount -- the value returned from
1821   //  __builtin_ctpop().
1822   CntInst->replaceUsesOutsideBlock(NewCount, Body);
1823 
1824   // step 5: Forget the "non-computable" trip-count SCEV associated with the
1825   //   loop. The loop would otherwise not be deleted even if it becomes empty.
1826   SE->forgetLoop(CurLoop);
1827 }
1828