1 //===- InstructionCombining.cpp - Combine multiple instructions -----------===//
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 // InstructionCombining - Combine instructions to form fewer, simple
10 // instructions.  This pass does not modify the CFG.  This pass is where
11 // algebraic simplification happens.
12 //
13 // This pass combines things like:
14 //    %Y = add i32 %X, 1
15 //    %Z = add i32 %Y, 1
16 // into:
17 //    %Z = add i32 %X, 2
18 //
19 // This is a simple worklist driven algorithm.
20 //
21 // This pass guarantees that the following canonicalizations are performed on
22 // the program:
23 //    1. If a binary operator has a constant operand, it is moved to the RHS
24 //    2. Bitwise operators with constant operands are always grouped so that
25 //       shifts are performed first, then or's, then and's, then xor's.
26 //    3. Compare instructions are converted from <,>,<=,>= to ==,!= if possible
27 //    4. All cmp instructions on boolean values are replaced with logical ops
28 //    5. add X, X is represented as (X*2) => (X << 1)
29 //    6. Multiplies with a power-of-two constant argument are transformed into
30 //       shifts.
31 //   ... etc.
32 //
33 //===----------------------------------------------------------------------===//
34 
35 #include "InstCombineInternal.h"
36 #include "llvm-c/Initialization.h"
37 #include "llvm-c/Transforms/InstCombine.h"
38 #include "llvm/ADT/APInt.h"
39 #include "llvm/ADT/ArrayRef.h"
40 #include "llvm/ADT/DenseMap.h"
41 #include "llvm/ADT/None.h"
42 #include "llvm/ADT/SmallPtrSet.h"
43 #include "llvm/ADT/SmallVector.h"
44 #include "llvm/ADT/Statistic.h"
45 #include "llvm/Analysis/AliasAnalysis.h"
46 #include "llvm/Analysis/AssumptionCache.h"
47 #include "llvm/Analysis/BasicAliasAnalysis.h"
48 #include "llvm/Analysis/BlockFrequencyInfo.h"
49 #include "llvm/Analysis/CFG.h"
50 #include "llvm/Analysis/ConstantFolding.h"
51 #include "llvm/Analysis/EHPersonalities.h"
52 #include "llvm/Analysis/GlobalsModRef.h"
53 #include "llvm/Analysis/InstructionSimplify.h"
54 #include "llvm/Analysis/LazyBlockFrequencyInfo.h"
55 #include "llvm/Analysis/LoopInfo.h"
56 #include "llvm/Analysis/MemoryBuiltins.h"
57 #include "llvm/Analysis/OptimizationRemarkEmitter.h"
58 #include "llvm/Analysis/ProfileSummaryInfo.h"
59 #include "llvm/Analysis/TargetFolder.h"
60 #include "llvm/Analysis/TargetLibraryInfo.h"
61 #include "llvm/Analysis/TargetTransformInfo.h"
62 #include "llvm/Analysis/Utils/Local.h"
63 #include "llvm/Analysis/ValueTracking.h"
64 #include "llvm/Analysis/VectorUtils.h"
65 #include "llvm/IR/BasicBlock.h"
66 #include "llvm/IR/CFG.h"
67 #include "llvm/IR/Constant.h"
68 #include "llvm/IR/Constants.h"
69 #include "llvm/IR/DIBuilder.h"
70 #include "llvm/IR/DataLayout.h"
71 #include "llvm/IR/DebugInfo.h"
72 #include "llvm/IR/DerivedTypes.h"
73 #include "llvm/IR/Dominators.h"
74 #include "llvm/IR/Function.h"
75 #include "llvm/IR/GetElementPtrTypeIterator.h"
76 #include "llvm/IR/IRBuilder.h"
77 #include "llvm/IR/InstrTypes.h"
78 #include "llvm/IR/Instruction.h"
79 #include "llvm/IR/Instructions.h"
80 #include "llvm/IR/IntrinsicInst.h"
81 #include "llvm/IR/Intrinsics.h"
82 #include "llvm/IR/LegacyPassManager.h"
83 #include "llvm/IR/Metadata.h"
84 #include "llvm/IR/Operator.h"
85 #include "llvm/IR/PassManager.h"
86 #include "llvm/IR/PatternMatch.h"
87 #include "llvm/IR/Type.h"
88 #include "llvm/IR/Use.h"
89 #include "llvm/IR/User.h"
90 #include "llvm/IR/Value.h"
91 #include "llvm/IR/ValueHandle.h"
92 #include "llvm/InitializePasses.h"
93 #include "llvm/Support/Casting.h"
94 #include "llvm/Support/CommandLine.h"
95 #include "llvm/Support/Compiler.h"
96 #include "llvm/Support/Debug.h"
97 #include "llvm/Support/DebugCounter.h"
98 #include "llvm/Support/ErrorHandling.h"
99 #include "llvm/Support/KnownBits.h"
100 #include "llvm/Support/raw_ostream.h"
101 #include "llvm/Transforms/InstCombine/InstCombine.h"
102 #include "llvm/Transforms/Utils/Local.h"
103 #include <algorithm>
104 #include <cassert>
105 #include <cstdint>
106 #include <memory>
107 #include <string>
108 #include <utility>
109 
110 #define DEBUG_TYPE "instcombine"
111 #include "llvm/Transforms/Utils/InstructionWorklist.h"
112 
113 using namespace llvm;
114 using namespace llvm::PatternMatch;
115 
116 STATISTIC(NumWorklistIterations,
117           "Number of instruction combining iterations performed");
118 
119 STATISTIC(NumCombined , "Number of insts combined");
120 STATISTIC(NumConstProp, "Number of constant folds");
121 STATISTIC(NumDeadInst , "Number of dead inst eliminated");
122 STATISTIC(NumSunkInst , "Number of instructions sunk");
123 STATISTIC(NumExpand,    "Number of expansions");
124 STATISTIC(NumFactor   , "Number of factorizations");
125 STATISTIC(NumReassoc  , "Number of reassociations");
126 DEBUG_COUNTER(VisitCounter, "instcombine-visit",
127               "Controls which instructions are visited");
128 
129 // FIXME: these limits eventually should be as low as 2.
130 static constexpr unsigned InstCombineDefaultMaxIterations = 1000;
131 #ifndef NDEBUG
132 static constexpr unsigned InstCombineDefaultInfiniteLoopThreshold = 100;
133 #else
134 static constexpr unsigned InstCombineDefaultInfiniteLoopThreshold = 1000;
135 #endif
136 
137 static cl::opt<bool>
138 EnableCodeSinking("instcombine-code-sinking", cl::desc("Enable code sinking"),
139                                               cl::init(true));
140 
141 static cl::opt<unsigned> MaxSinkNumUsers(
142     "instcombine-max-sink-users", cl::init(32),
143     cl::desc("Maximum number of undroppable users for instruction sinking"));
144 
145 static cl::opt<unsigned> LimitMaxIterations(
146     "instcombine-max-iterations",
147     cl::desc("Limit the maximum number of instruction combining iterations"),
148     cl::init(InstCombineDefaultMaxIterations));
149 
150 static cl::opt<unsigned> InfiniteLoopDetectionThreshold(
151     "instcombine-infinite-loop-threshold",
152     cl::desc("Number of instruction combining iterations considered an "
153              "infinite loop"),
154     cl::init(InstCombineDefaultInfiniteLoopThreshold), cl::Hidden);
155 
156 static cl::opt<unsigned>
157 MaxArraySize("instcombine-maxarray-size", cl::init(1024),
158              cl::desc("Maximum array size considered when doing a combine"));
159 
160 // FIXME: Remove this flag when it is no longer necessary to convert
161 // llvm.dbg.declare to avoid inaccurate debug info. Setting this to false
162 // increases variable availability at the cost of accuracy. Variables that
163 // cannot be promoted by mem2reg or SROA will be described as living in memory
164 // for their entire lifetime. However, passes like DSE and instcombine can
165 // delete stores to the alloca, leading to misleading and inaccurate debug
166 // information. This flag can be removed when those passes are fixed.
167 static cl::opt<unsigned> ShouldLowerDbgDeclare("instcombine-lower-dbg-declare",
168                                                cl::Hidden, cl::init(true));
169 
170 Optional<Instruction *>
171 InstCombiner::targetInstCombineIntrinsic(IntrinsicInst &II) {
172   // Handle target specific intrinsics
173   if (II.getCalledFunction()->isTargetIntrinsic()) {
174     return TTI.instCombineIntrinsic(*this, II);
175   }
176   return None;
177 }
178 
179 Optional<Value *> InstCombiner::targetSimplifyDemandedUseBitsIntrinsic(
180     IntrinsicInst &II, APInt DemandedMask, KnownBits &Known,
181     bool &KnownBitsComputed) {
182   // Handle target specific intrinsics
183   if (II.getCalledFunction()->isTargetIntrinsic()) {
184     return TTI.simplifyDemandedUseBitsIntrinsic(*this, II, DemandedMask, Known,
185                                                 KnownBitsComputed);
186   }
187   return None;
188 }
189 
190 Optional<Value *> InstCombiner::targetSimplifyDemandedVectorEltsIntrinsic(
191     IntrinsicInst &II, APInt DemandedElts, APInt &UndefElts, APInt &UndefElts2,
192     APInt &UndefElts3,
193     std::function<void(Instruction *, unsigned, APInt, APInt &)>
194         SimplifyAndSetOp) {
195   // Handle target specific intrinsics
196   if (II.getCalledFunction()->isTargetIntrinsic()) {
197     return TTI.simplifyDemandedVectorEltsIntrinsic(
198         *this, II, DemandedElts, UndefElts, UndefElts2, UndefElts3,
199         SimplifyAndSetOp);
200   }
201   return None;
202 }
203 
204 Value *InstCombinerImpl::EmitGEPOffset(User *GEP) {
205   return llvm::EmitGEPOffset(&Builder, DL, GEP);
206 }
207 
208 /// Legal integers and common types are considered desirable. This is used to
209 /// avoid creating instructions with types that may not be supported well by the
210 /// the backend.
211 /// NOTE: This treats i8, i16 and i32 specially because they are common
212 ///       types in frontend languages.
213 bool InstCombinerImpl::isDesirableIntType(unsigned BitWidth) const {
214   switch (BitWidth) {
215   case 8:
216   case 16:
217   case 32:
218     return true;
219   default:
220     return DL.isLegalInteger(BitWidth);
221   }
222 }
223 
224 /// Return true if it is desirable to convert an integer computation from a
225 /// given bit width to a new bit width.
226 /// We don't want to convert from a legal to an illegal type or from a smaller
227 /// to a larger illegal type. A width of '1' is always treated as a desirable
228 /// type because i1 is a fundamental type in IR, and there are many specialized
229 /// optimizations for i1 types. Common/desirable widths are equally treated as
230 /// legal to convert to, in order to open up more combining opportunities.
231 bool InstCombinerImpl::shouldChangeType(unsigned FromWidth,
232                                         unsigned ToWidth) const {
233   bool FromLegal = FromWidth == 1 || DL.isLegalInteger(FromWidth);
234   bool ToLegal = ToWidth == 1 || DL.isLegalInteger(ToWidth);
235 
236   // Convert to desirable widths even if they are not legal types.
237   // Only shrink types, to prevent infinite loops.
238   if (ToWidth < FromWidth && isDesirableIntType(ToWidth))
239     return true;
240 
241   // If this is a legal integer from type, and the result would be an illegal
242   // type, don't do the transformation.
243   if (FromLegal && !ToLegal)
244     return false;
245 
246   // Otherwise, if both are illegal, do not increase the size of the result. We
247   // do allow things like i160 -> i64, but not i64 -> i160.
248   if (!FromLegal && !ToLegal && ToWidth > FromWidth)
249     return false;
250 
251   return true;
252 }
253 
254 /// Return true if it is desirable to convert a computation from 'From' to 'To'.
255 /// We don't want to convert from a legal to an illegal type or from a smaller
256 /// to a larger illegal type. i1 is always treated as a legal type because it is
257 /// a fundamental type in IR, and there are many specialized optimizations for
258 /// i1 types.
259 bool InstCombinerImpl::shouldChangeType(Type *From, Type *To) const {
260   // TODO: This could be extended to allow vectors. Datalayout changes might be
261   // needed to properly support that.
262   if (!From->isIntegerTy() || !To->isIntegerTy())
263     return false;
264 
265   unsigned FromWidth = From->getPrimitiveSizeInBits();
266   unsigned ToWidth = To->getPrimitiveSizeInBits();
267   return shouldChangeType(FromWidth, ToWidth);
268 }
269 
270 // Return true, if No Signed Wrap should be maintained for I.
271 // The No Signed Wrap flag can be kept if the operation "B (I.getOpcode) C",
272 // where both B and C should be ConstantInts, results in a constant that does
273 // not overflow. This function only handles the Add and Sub opcodes. For
274 // all other opcodes, the function conservatively returns false.
275 static bool maintainNoSignedWrap(BinaryOperator &I, Value *B, Value *C) {
276   auto *OBO = dyn_cast<OverflowingBinaryOperator>(&I);
277   if (!OBO || !OBO->hasNoSignedWrap())
278     return false;
279 
280   // We reason about Add and Sub Only.
281   Instruction::BinaryOps Opcode = I.getOpcode();
282   if (Opcode != Instruction::Add && Opcode != Instruction::Sub)
283     return false;
284 
285   const APInt *BVal, *CVal;
286   if (!match(B, m_APInt(BVal)) || !match(C, m_APInt(CVal)))
287     return false;
288 
289   bool Overflow = false;
290   if (Opcode == Instruction::Add)
291     (void)BVal->sadd_ov(*CVal, Overflow);
292   else
293     (void)BVal->ssub_ov(*CVal, Overflow);
294 
295   return !Overflow;
296 }
297 
298 static bool hasNoUnsignedWrap(BinaryOperator &I) {
299   auto *OBO = dyn_cast<OverflowingBinaryOperator>(&I);
300   return OBO && OBO->hasNoUnsignedWrap();
301 }
302 
303 static bool hasNoSignedWrap(BinaryOperator &I) {
304   auto *OBO = dyn_cast<OverflowingBinaryOperator>(&I);
305   return OBO && OBO->hasNoSignedWrap();
306 }
307 
308 /// Conservatively clears subclassOptionalData after a reassociation or
309 /// commutation. We preserve fast-math flags when applicable as they can be
310 /// preserved.
311 static void ClearSubclassDataAfterReassociation(BinaryOperator &I) {
312   FPMathOperator *FPMO = dyn_cast<FPMathOperator>(&I);
313   if (!FPMO) {
314     I.clearSubclassOptionalData();
315     return;
316   }
317 
318   FastMathFlags FMF = I.getFastMathFlags();
319   I.clearSubclassOptionalData();
320   I.setFastMathFlags(FMF);
321 }
322 
323 /// Combine constant operands of associative operations either before or after a
324 /// cast to eliminate one of the associative operations:
325 /// (op (cast (op X, C2)), C1) --> (cast (op X, op (C1, C2)))
326 /// (op (cast (op X, C2)), C1) --> (op (cast X), op (C1, C2))
327 static bool simplifyAssocCastAssoc(BinaryOperator *BinOp1,
328                                    InstCombinerImpl &IC) {
329   auto *Cast = dyn_cast<CastInst>(BinOp1->getOperand(0));
330   if (!Cast || !Cast->hasOneUse())
331     return false;
332 
333   // TODO: Enhance logic for other casts and remove this check.
334   auto CastOpcode = Cast->getOpcode();
335   if (CastOpcode != Instruction::ZExt)
336     return false;
337 
338   // TODO: Enhance logic for other BinOps and remove this check.
339   if (!BinOp1->isBitwiseLogicOp())
340     return false;
341 
342   auto AssocOpcode = BinOp1->getOpcode();
343   auto *BinOp2 = dyn_cast<BinaryOperator>(Cast->getOperand(0));
344   if (!BinOp2 || !BinOp2->hasOneUse() || BinOp2->getOpcode() != AssocOpcode)
345     return false;
346 
347   Constant *C1, *C2;
348   if (!match(BinOp1->getOperand(1), m_Constant(C1)) ||
349       !match(BinOp2->getOperand(1), m_Constant(C2)))
350     return false;
351 
352   // TODO: This assumes a zext cast.
353   // Eg, if it was a trunc, we'd cast C1 to the source type because casting C2
354   // to the destination type might lose bits.
355 
356   // Fold the constants together in the destination type:
357   // (op (cast (op X, C2)), C1) --> (op (cast X), FoldedC)
358   Type *DestTy = C1->getType();
359   Constant *CastC2 = ConstantExpr::getCast(CastOpcode, C2, DestTy);
360   Constant *FoldedC = ConstantExpr::get(AssocOpcode, C1, CastC2);
361   IC.replaceOperand(*Cast, 0, BinOp2->getOperand(0));
362   IC.replaceOperand(*BinOp1, 1, FoldedC);
363   return true;
364 }
365 
366 // Simplifies IntToPtr/PtrToInt RoundTrip Cast To BitCast.
367 // inttoptr ( ptrtoint (x) ) --> x
368 Value *InstCombinerImpl::simplifyIntToPtrRoundTripCast(Value *Val) {
369   auto *IntToPtr = dyn_cast<IntToPtrInst>(Val);
370   if (IntToPtr && DL.getPointerTypeSizeInBits(IntToPtr->getDestTy()) ==
371                       DL.getTypeSizeInBits(IntToPtr->getSrcTy())) {
372     auto *PtrToInt = dyn_cast<PtrToIntInst>(IntToPtr->getOperand(0));
373     Type *CastTy = IntToPtr->getDestTy();
374     if (PtrToInt &&
375         CastTy->getPointerAddressSpace() ==
376             PtrToInt->getSrcTy()->getPointerAddressSpace() &&
377         DL.getPointerTypeSizeInBits(PtrToInt->getSrcTy()) ==
378             DL.getTypeSizeInBits(PtrToInt->getDestTy())) {
379       return CastInst::CreateBitOrPointerCast(PtrToInt->getOperand(0), CastTy,
380                                               "", PtrToInt);
381     }
382   }
383   return nullptr;
384 }
385 
386 /// This performs a few simplifications for operators that are associative or
387 /// commutative:
388 ///
389 ///  Commutative operators:
390 ///
391 ///  1. Order operands such that they are listed from right (least complex) to
392 ///     left (most complex).  This puts constants before unary operators before
393 ///     binary operators.
394 ///
395 ///  Associative operators:
396 ///
397 ///  2. Transform: "(A op B) op C" ==> "A op (B op C)" if "B op C" simplifies.
398 ///  3. Transform: "A op (B op C)" ==> "(A op B) op C" if "A op B" simplifies.
399 ///
400 ///  Associative and commutative operators:
401 ///
402 ///  4. Transform: "(A op B) op C" ==> "(C op A) op B" if "C op A" simplifies.
403 ///  5. Transform: "A op (B op C)" ==> "B op (C op A)" if "C op A" simplifies.
404 ///  6. Transform: "(A op C1) op (B op C2)" ==> "(A op B) op (C1 op C2)"
405 ///     if C1 and C2 are constants.
406 bool InstCombinerImpl::SimplifyAssociativeOrCommutative(BinaryOperator &I) {
407   Instruction::BinaryOps Opcode = I.getOpcode();
408   bool Changed = false;
409 
410   do {
411     // Order operands such that they are listed from right (least complex) to
412     // left (most complex).  This puts constants before unary operators before
413     // binary operators.
414     if (I.isCommutative() && getComplexity(I.getOperand(0)) <
415         getComplexity(I.getOperand(1)))
416       Changed = !I.swapOperands();
417 
418     BinaryOperator *Op0 = dyn_cast<BinaryOperator>(I.getOperand(0));
419     BinaryOperator *Op1 = dyn_cast<BinaryOperator>(I.getOperand(1));
420 
421     if (I.isAssociative()) {
422       // Transform: "(A op B) op C" ==> "A op (B op C)" if "B op C" simplifies.
423       if (Op0 && Op0->getOpcode() == Opcode) {
424         Value *A = Op0->getOperand(0);
425         Value *B = Op0->getOperand(1);
426         Value *C = I.getOperand(1);
427 
428         // Does "B op C" simplify?
429         if (Value *V = SimplifyBinOp(Opcode, B, C, SQ.getWithInstruction(&I))) {
430           // It simplifies to V.  Form "A op V".
431           replaceOperand(I, 0, A);
432           replaceOperand(I, 1, V);
433           bool IsNUW = hasNoUnsignedWrap(I) && hasNoUnsignedWrap(*Op0);
434           bool IsNSW = maintainNoSignedWrap(I, B, C) && hasNoSignedWrap(*Op0);
435 
436           // Conservatively clear all optional flags since they may not be
437           // preserved by the reassociation. Reset nsw/nuw based on the above
438           // analysis.
439           ClearSubclassDataAfterReassociation(I);
440 
441           // Note: this is only valid because SimplifyBinOp doesn't look at
442           // the operands to Op0.
443           if (IsNUW)
444             I.setHasNoUnsignedWrap(true);
445 
446           if (IsNSW)
447             I.setHasNoSignedWrap(true);
448 
449           Changed = true;
450           ++NumReassoc;
451           continue;
452         }
453       }
454 
455       // Transform: "A op (B op C)" ==> "(A op B) op C" if "A op B" simplifies.
456       if (Op1 && Op1->getOpcode() == Opcode) {
457         Value *A = I.getOperand(0);
458         Value *B = Op1->getOperand(0);
459         Value *C = Op1->getOperand(1);
460 
461         // Does "A op B" simplify?
462         if (Value *V = SimplifyBinOp(Opcode, A, B, SQ.getWithInstruction(&I))) {
463           // It simplifies to V.  Form "V op C".
464           replaceOperand(I, 0, V);
465           replaceOperand(I, 1, C);
466           // Conservatively clear the optional flags, since they may not be
467           // preserved by the reassociation.
468           ClearSubclassDataAfterReassociation(I);
469           Changed = true;
470           ++NumReassoc;
471           continue;
472         }
473       }
474     }
475 
476     if (I.isAssociative() && I.isCommutative()) {
477       if (simplifyAssocCastAssoc(&I, *this)) {
478         Changed = true;
479         ++NumReassoc;
480         continue;
481       }
482 
483       // Transform: "(A op B) op C" ==> "(C op A) op B" if "C op A" simplifies.
484       if (Op0 && Op0->getOpcode() == Opcode) {
485         Value *A = Op0->getOperand(0);
486         Value *B = Op0->getOperand(1);
487         Value *C = I.getOperand(1);
488 
489         // Does "C op A" simplify?
490         if (Value *V = SimplifyBinOp(Opcode, C, A, SQ.getWithInstruction(&I))) {
491           // It simplifies to V.  Form "V op B".
492           replaceOperand(I, 0, V);
493           replaceOperand(I, 1, B);
494           // Conservatively clear the optional flags, since they may not be
495           // preserved by the reassociation.
496           ClearSubclassDataAfterReassociation(I);
497           Changed = true;
498           ++NumReassoc;
499           continue;
500         }
501       }
502 
503       // Transform: "A op (B op C)" ==> "B op (C op A)" if "C op A" simplifies.
504       if (Op1 && Op1->getOpcode() == Opcode) {
505         Value *A = I.getOperand(0);
506         Value *B = Op1->getOperand(0);
507         Value *C = Op1->getOperand(1);
508 
509         // Does "C op A" simplify?
510         if (Value *V = SimplifyBinOp(Opcode, C, A, SQ.getWithInstruction(&I))) {
511           // It simplifies to V.  Form "B op V".
512           replaceOperand(I, 0, B);
513           replaceOperand(I, 1, V);
514           // Conservatively clear the optional flags, since they may not be
515           // preserved by the reassociation.
516           ClearSubclassDataAfterReassociation(I);
517           Changed = true;
518           ++NumReassoc;
519           continue;
520         }
521       }
522 
523       // Transform: "(A op C1) op (B op C2)" ==> "(A op B) op (C1 op C2)"
524       // if C1 and C2 are constants.
525       Value *A, *B;
526       Constant *C1, *C2;
527       if (Op0 && Op1 &&
528           Op0->getOpcode() == Opcode && Op1->getOpcode() == Opcode &&
529           match(Op0, m_OneUse(m_BinOp(m_Value(A), m_Constant(C1)))) &&
530           match(Op1, m_OneUse(m_BinOp(m_Value(B), m_Constant(C2))))) {
531         bool IsNUW = hasNoUnsignedWrap(I) &&
532            hasNoUnsignedWrap(*Op0) &&
533            hasNoUnsignedWrap(*Op1);
534          BinaryOperator *NewBO = (IsNUW && Opcode == Instruction::Add) ?
535            BinaryOperator::CreateNUW(Opcode, A, B) :
536            BinaryOperator::Create(Opcode, A, B);
537 
538          if (isa<FPMathOperator>(NewBO)) {
539           FastMathFlags Flags = I.getFastMathFlags();
540           Flags &= Op0->getFastMathFlags();
541           Flags &= Op1->getFastMathFlags();
542           NewBO->setFastMathFlags(Flags);
543         }
544         InsertNewInstWith(NewBO, I);
545         NewBO->takeName(Op1);
546         replaceOperand(I, 0, NewBO);
547         replaceOperand(I, 1, ConstantExpr::get(Opcode, C1, C2));
548         // Conservatively clear the optional flags, since they may not be
549         // preserved by the reassociation.
550         ClearSubclassDataAfterReassociation(I);
551         if (IsNUW)
552           I.setHasNoUnsignedWrap(true);
553 
554         Changed = true;
555         continue;
556       }
557     }
558 
559     // No further simplifications.
560     return Changed;
561   } while (true);
562 }
563 
564 /// Return whether "X LOp (Y ROp Z)" is always equal to
565 /// "(X LOp Y) ROp (X LOp Z)".
566 static bool leftDistributesOverRight(Instruction::BinaryOps LOp,
567                                      Instruction::BinaryOps ROp) {
568   // X & (Y | Z) <--> (X & Y) | (X & Z)
569   // X & (Y ^ Z) <--> (X & Y) ^ (X & Z)
570   if (LOp == Instruction::And)
571     return ROp == Instruction::Or || ROp == Instruction::Xor;
572 
573   // X | (Y & Z) <--> (X | Y) & (X | Z)
574   if (LOp == Instruction::Or)
575     return ROp == Instruction::And;
576 
577   // X * (Y + Z) <--> (X * Y) + (X * Z)
578   // X * (Y - Z) <--> (X * Y) - (X * Z)
579   if (LOp == Instruction::Mul)
580     return ROp == Instruction::Add || ROp == Instruction::Sub;
581 
582   return false;
583 }
584 
585 /// Return whether "(X LOp Y) ROp Z" is always equal to
586 /// "(X ROp Z) LOp (Y ROp Z)".
587 static bool rightDistributesOverLeft(Instruction::BinaryOps LOp,
588                                      Instruction::BinaryOps ROp) {
589   if (Instruction::isCommutative(ROp))
590     return leftDistributesOverRight(ROp, LOp);
591 
592   // (X {&|^} Y) >> Z <--> (X >> Z) {&|^} (Y >> Z) for all shifts.
593   return Instruction::isBitwiseLogicOp(LOp) && Instruction::isShift(ROp);
594 
595   // TODO: It would be nice to handle division, aka "(X + Y)/Z = X/Z + Y/Z",
596   // but this requires knowing that the addition does not overflow and other
597   // such subtleties.
598 }
599 
600 /// This function returns identity value for given opcode, which can be used to
601 /// factor patterns like (X * 2) + X ==> (X * 2) + (X * 1) ==> X * (2 + 1).
602 static Value *getIdentityValue(Instruction::BinaryOps Opcode, Value *V) {
603   if (isa<Constant>(V))
604     return nullptr;
605 
606   return ConstantExpr::getBinOpIdentity(Opcode, V->getType());
607 }
608 
609 /// This function predicates factorization using distributive laws. By default,
610 /// it just returns the 'Op' inputs. But for special-cases like
611 /// 'add(shl(X, 5), ...)', this function will have TopOpcode == Instruction::Add
612 /// and Op = shl(X, 5). The 'shl' is treated as the more general 'mul X, 32' to
613 /// allow more factorization opportunities.
614 static Instruction::BinaryOps
615 getBinOpsForFactorization(Instruction::BinaryOps TopOpcode, BinaryOperator *Op,
616                           Value *&LHS, Value *&RHS) {
617   assert(Op && "Expected a binary operator");
618   LHS = Op->getOperand(0);
619   RHS = Op->getOperand(1);
620   if (TopOpcode == Instruction::Add || TopOpcode == Instruction::Sub) {
621     Constant *C;
622     if (match(Op, m_Shl(m_Value(), m_Constant(C)))) {
623       // X << C --> X * (1 << C)
624       RHS = ConstantExpr::getShl(ConstantInt::get(Op->getType(), 1), C);
625       return Instruction::Mul;
626     }
627     // TODO: We can add other conversions e.g. shr => div etc.
628   }
629   return Op->getOpcode();
630 }
631 
632 /// This tries to simplify binary operations by factorizing out common terms
633 /// (e. g. "(A*B)+(A*C)" -> "A*(B+C)").
634 Value *InstCombinerImpl::tryFactorization(BinaryOperator &I,
635                                           Instruction::BinaryOps InnerOpcode,
636                                           Value *A, Value *B, Value *C,
637                                           Value *D) {
638   assert(A && B && C && D && "All values must be provided");
639 
640   Value *V = nullptr;
641   Value *SimplifiedInst = nullptr;
642   Value *LHS = I.getOperand(0), *RHS = I.getOperand(1);
643   Instruction::BinaryOps TopLevelOpcode = I.getOpcode();
644 
645   // Does "X op' Y" always equal "Y op' X"?
646   bool InnerCommutative = Instruction::isCommutative(InnerOpcode);
647 
648   // Does "X op' (Y op Z)" always equal "(X op' Y) op (X op' Z)"?
649   if (leftDistributesOverRight(InnerOpcode, TopLevelOpcode))
650     // Does the instruction have the form "(A op' B) op (A op' D)" or, in the
651     // commutative case, "(A op' B) op (C op' A)"?
652     if (A == C || (InnerCommutative && A == D)) {
653       if (A != C)
654         std::swap(C, D);
655       // Consider forming "A op' (B op D)".
656       // If "B op D" simplifies then it can be formed with no cost.
657       V = SimplifyBinOp(TopLevelOpcode, B, D, SQ.getWithInstruction(&I));
658       // If "B op D" doesn't simplify then only go on if both of the existing
659       // operations "A op' B" and "C op' D" will be zapped as no longer used.
660       if (!V && LHS->hasOneUse() && RHS->hasOneUse())
661         V = Builder.CreateBinOp(TopLevelOpcode, B, D, RHS->getName());
662       if (V) {
663         SimplifiedInst = Builder.CreateBinOp(InnerOpcode, A, V);
664       }
665     }
666 
667   // Does "(X op Y) op' Z" always equal "(X op' Z) op (Y op' Z)"?
668   if (!SimplifiedInst && rightDistributesOverLeft(TopLevelOpcode, InnerOpcode))
669     // Does the instruction have the form "(A op' B) op (C op' B)" or, in the
670     // commutative case, "(A op' B) op (B op' D)"?
671     if (B == D || (InnerCommutative && B == C)) {
672       if (B != D)
673         std::swap(C, D);
674       // Consider forming "(A op C) op' B".
675       // If "A op C" simplifies then it can be formed with no cost.
676       V = SimplifyBinOp(TopLevelOpcode, A, C, SQ.getWithInstruction(&I));
677 
678       // If "A op C" doesn't simplify then only go on if both of the existing
679       // operations "A op' B" and "C op' D" will be zapped as no longer used.
680       if (!V && LHS->hasOneUse() && RHS->hasOneUse())
681         V = Builder.CreateBinOp(TopLevelOpcode, A, C, LHS->getName());
682       if (V) {
683         SimplifiedInst = Builder.CreateBinOp(InnerOpcode, V, B);
684       }
685     }
686 
687   if (SimplifiedInst) {
688     ++NumFactor;
689     SimplifiedInst->takeName(&I);
690 
691     // Check if we can add NSW/NUW flags to SimplifiedInst. If so, set them.
692     if (BinaryOperator *BO = dyn_cast<BinaryOperator>(SimplifiedInst)) {
693       if (isa<OverflowingBinaryOperator>(SimplifiedInst)) {
694         bool HasNSW = false;
695         bool HasNUW = false;
696         if (isa<OverflowingBinaryOperator>(&I)) {
697           HasNSW = I.hasNoSignedWrap();
698           HasNUW = I.hasNoUnsignedWrap();
699         }
700 
701         if (auto *LOBO = dyn_cast<OverflowingBinaryOperator>(LHS)) {
702           HasNSW &= LOBO->hasNoSignedWrap();
703           HasNUW &= LOBO->hasNoUnsignedWrap();
704         }
705 
706         if (auto *ROBO = dyn_cast<OverflowingBinaryOperator>(RHS)) {
707           HasNSW &= ROBO->hasNoSignedWrap();
708           HasNUW &= ROBO->hasNoUnsignedWrap();
709         }
710 
711         if (TopLevelOpcode == Instruction::Add &&
712             InnerOpcode == Instruction::Mul) {
713           // We can propagate 'nsw' if we know that
714           //  %Y = mul nsw i16 %X, C
715           //  %Z = add nsw i16 %Y, %X
716           // =>
717           //  %Z = mul nsw i16 %X, C+1
718           //
719           // iff C+1 isn't INT_MIN
720           const APInt *CInt;
721           if (match(V, m_APInt(CInt))) {
722             if (!CInt->isMinSignedValue())
723               BO->setHasNoSignedWrap(HasNSW);
724           }
725 
726           // nuw can be propagated with any constant or nuw value.
727           BO->setHasNoUnsignedWrap(HasNUW);
728         }
729       }
730     }
731   }
732   return SimplifiedInst;
733 }
734 
735 /// This tries to simplify binary operations which some other binary operation
736 /// distributes over either by factorizing out common terms
737 /// (eg "(A*B)+(A*C)" -> "A*(B+C)") or expanding out if this results in
738 /// simplifications (eg: "A & (B | C) -> (A&B) | (A&C)" if this is a win).
739 /// Returns the simplified value, or null if it didn't simplify.
740 Value *InstCombinerImpl::SimplifyUsingDistributiveLaws(BinaryOperator &I) {
741   Value *LHS = I.getOperand(0), *RHS = I.getOperand(1);
742   BinaryOperator *Op0 = dyn_cast<BinaryOperator>(LHS);
743   BinaryOperator *Op1 = dyn_cast<BinaryOperator>(RHS);
744   Instruction::BinaryOps TopLevelOpcode = I.getOpcode();
745 
746   {
747     // Factorization.
748     Value *A, *B, *C, *D;
749     Instruction::BinaryOps LHSOpcode, RHSOpcode;
750     if (Op0)
751       LHSOpcode = getBinOpsForFactorization(TopLevelOpcode, Op0, A, B);
752     if (Op1)
753       RHSOpcode = getBinOpsForFactorization(TopLevelOpcode, Op1, C, D);
754 
755     // The instruction has the form "(A op' B) op (C op' D)".  Try to factorize
756     // a common term.
757     if (Op0 && Op1 && LHSOpcode == RHSOpcode)
758       if (Value *V = tryFactorization(I, LHSOpcode, A, B, C, D))
759         return V;
760 
761     // The instruction has the form "(A op' B) op (C)".  Try to factorize common
762     // term.
763     if (Op0)
764       if (Value *Ident = getIdentityValue(LHSOpcode, RHS))
765         if (Value *V = tryFactorization(I, LHSOpcode, A, B, RHS, Ident))
766           return V;
767 
768     // The instruction has the form "(B) op (C op' D)".  Try to factorize common
769     // term.
770     if (Op1)
771       if (Value *Ident = getIdentityValue(RHSOpcode, LHS))
772         if (Value *V = tryFactorization(I, RHSOpcode, LHS, Ident, C, D))
773           return V;
774   }
775 
776   // Expansion.
777   if (Op0 && rightDistributesOverLeft(Op0->getOpcode(), TopLevelOpcode)) {
778     // The instruction has the form "(A op' B) op C".  See if expanding it out
779     // to "(A op C) op' (B op C)" results in simplifications.
780     Value *A = Op0->getOperand(0), *B = Op0->getOperand(1), *C = RHS;
781     Instruction::BinaryOps InnerOpcode = Op0->getOpcode(); // op'
782 
783     // Disable the use of undef because it's not safe to distribute undef.
784     auto SQDistributive = SQ.getWithInstruction(&I).getWithoutUndef();
785     Value *L = SimplifyBinOp(TopLevelOpcode, A, C, SQDistributive);
786     Value *R = SimplifyBinOp(TopLevelOpcode, B, C, SQDistributive);
787 
788     // Do "A op C" and "B op C" both simplify?
789     if (L && R) {
790       // They do! Return "L op' R".
791       ++NumExpand;
792       C = Builder.CreateBinOp(InnerOpcode, L, R);
793       C->takeName(&I);
794       return C;
795     }
796 
797     // Does "A op C" simplify to the identity value for the inner opcode?
798     if (L && L == ConstantExpr::getBinOpIdentity(InnerOpcode, L->getType())) {
799       // They do! Return "B op C".
800       ++NumExpand;
801       C = Builder.CreateBinOp(TopLevelOpcode, B, C);
802       C->takeName(&I);
803       return C;
804     }
805 
806     // Does "B op C" simplify to the identity value for the inner opcode?
807     if (R && R == ConstantExpr::getBinOpIdentity(InnerOpcode, R->getType())) {
808       // They do! Return "A op C".
809       ++NumExpand;
810       C = Builder.CreateBinOp(TopLevelOpcode, A, C);
811       C->takeName(&I);
812       return C;
813     }
814   }
815 
816   if (Op1 && leftDistributesOverRight(TopLevelOpcode, Op1->getOpcode())) {
817     // The instruction has the form "A op (B op' C)".  See if expanding it out
818     // to "(A op B) op' (A op C)" results in simplifications.
819     Value *A = LHS, *B = Op1->getOperand(0), *C = Op1->getOperand(1);
820     Instruction::BinaryOps InnerOpcode = Op1->getOpcode(); // op'
821 
822     // Disable the use of undef because it's not safe to distribute undef.
823     auto SQDistributive = SQ.getWithInstruction(&I).getWithoutUndef();
824     Value *L = SimplifyBinOp(TopLevelOpcode, A, B, SQDistributive);
825     Value *R = SimplifyBinOp(TopLevelOpcode, A, C, SQDistributive);
826 
827     // Do "A op B" and "A op C" both simplify?
828     if (L && R) {
829       // They do! Return "L op' R".
830       ++NumExpand;
831       A = Builder.CreateBinOp(InnerOpcode, L, R);
832       A->takeName(&I);
833       return A;
834     }
835 
836     // Does "A op B" simplify to the identity value for the inner opcode?
837     if (L && L == ConstantExpr::getBinOpIdentity(InnerOpcode, L->getType())) {
838       // They do! Return "A op C".
839       ++NumExpand;
840       A = Builder.CreateBinOp(TopLevelOpcode, A, C);
841       A->takeName(&I);
842       return A;
843     }
844 
845     // Does "A op C" simplify to the identity value for the inner opcode?
846     if (R && R == ConstantExpr::getBinOpIdentity(InnerOpcode, R->getType())) {
847       // They do! Return "A op B".
848       ++NumExpand;
849       A = Builder.CreateBinOp(TopLevelOpcode, A, B);
850       A->takeName(&I);
851       return A;
852     }
853   }
854 
855   return SimplifySelectsFeedingBinaryOp(I, LHS, RHS);
856 }
857 
858 Value *InstCombinerImpl::SimplifySelectsFeedingBinaryOp(BinaryOperator &I,
859                                                         Value *LHS,
860                                                         Value *RHS) {
861   Value *A, *B, *C, *D, *E, *F;
862   bool LHSIsSelect = match(LHS, m_Select(m_Value(A), m_Value(B), m_Value(C)));
863   bool RHSIsSelect = match(RHS, m_Select(m_Value(D), m_Value(E), m_Value(F)));
864   if (!LHSIsSelect && !RHSIsSelect)
865     return nullptr;
866 
867   FastMathFlags FMF;
868   BuilderTy::FastMathFlagGuard Guard(Builder);
869   if (isa<FPMathOperator>(&I)) {
870     FMF = I.getFastMathFlags();
871     Builder.setFastMathFlags(FMF);
872   }
873 
874   Instruction::BinaryOps Opcode = I.getOpcode();
875   SimplifyQuery Q = SQ.getWithInstruction(&I);
876 
877   Value *Cond, *True = nullptr, *False = nullptr;
878   if (LHSIsSelect && RHSIsSelect && A == D) {
879     // (A ? B : C) op (A ? E : F) -> A ? (B op E) : (C op F)
880     Cond = A;
881     True = SimplifyBinOp(Opcode, B, E, FMF, Q);
882     False = SimplifyBinOp(Opcode, C, F, FMF, Q);
883 
884     if (LHS->hasOneUse() && RHS->hasOneUse()) {
885       if (False && !True)
886         True = Builder.CreateBinOp(Opcode, B, E);
887       else if (True && !False)
888         False = Builder.CreateBinOp(Opcode, C, F);
889     }
890   } else if (LHSIsSelect && LHS->hasOneUse()) {
891     // (A ? B : C) op Y -> A ? (B op Y) : (C op Y)
892     Cond = A;
893     True = SimplifyBinOp(Opcode, B, RHS, FMF, Q);
894     False = SimplifyBinOp(Opcode, C, RHS, FMF, Q);
895   } else if (RHSIsSelect && RHS->hasOneUse()) {
896     // X op (D ? E : F) -> D ? (X op E) : (X op F)
897     Cond = D;
898     True = SimplifyBinOp(Opcode, LHS, E, FMF, Q);
899     False = SimplifyBinOp(Opcode, LHS, F, FMF, Q);
900   }
901 
902   if (!True || !False)
903     return nullptr;
904 
905   Value *SI = Builder.CreateSelect(Cond, True, False);
906   SI->takeName(&I);
907   return SI;
908 }
909 
910 /// Freely adapt every user of V as-if V was changed to !V.
911 /// WARNING: only if canFreelyInvertAllUsersOf() said this can be done.
912 void InstCombinerImpl::freelyInvertAllUsersOf(Value *I) {
913   for (User *U : I->users()) {
914     switch (cast<Instruction>(U)->getOpcode()) {
915     case Instruction::Select: {
916       auto *SI = cast<SelectInst>(U);
917       SI->swapValues();
918       SI->swapProfMetadata();
919       break;
920     }
921     case Instruction::Br:
922       cast<BranchInst>(U)->swapSuccessors(); // swaps prof metadata too
923       break;
924     case Instruction::Xor:
925       replaceInstUsesWith(cast<Instruction>(*U), I);
926       break;
927     default:
928       llvm_unreachable("Got unexpected user - out of sync with "
929                        "canFreelyInvertAllUsersOf() ?");
930     }
931   }
932 }
933 
934 /// Given a 'sub' instruction, return the RHS of the instruction if the LHS is a
935 /// constant zero (which is the 'negate' form).
936 Value *InstCombinerImpl::dyn_castNegVal(Value *V) const {
937   Value *NegV;
938   if (match(V, m_Neg(m_Value(NegV))))
939     return NegV;
940 
941   // Constants can be considered to be negated values if they can be folded.
942   if (ConstantInt *C = dyn_cast<ConstantInt>(V))
943     return ConstantExpr::getNeg(C);
944 
945   if (ConstantDataVector *C = dyn_cast<ConstantDataVector>(V))
946     if (C->getType()->getElementType()->isIntegerTy())
947       return ConstantExpr::getNeg(C);
948 
949   if (ConstantVector *CV = dyn_cast<ConstantVector>(V)) {
950     for (unsigned i = 0, e = CV->getNumOperands(); i != e; ++i) {
951       Constant *Elt = CV->getAggregateElement(i);
952       if (!Elt)
953         return nullptr;
954 
955       if (isa<UndefValue>(Elt))
956         continue;
957 
958       if (!isa<ConstantInt>(Elt))
959         return nullptr;
960     }
961     return ConstantExpr::getNeg(CV);
962   }
963 
964   // Negate integer vector splats.
965   if (auto *CV = dyn_cast<Constant>(V))
966     if (CV->getType()->isVectorTy() &&
967         CV->getType()->getScalarType()->isIntegerTy() && CV->getSplatValue())
968       return ConstantExpr::getNeg(CV);
969 
970   return nullptr;
971 }
972 
973 /// A binop with a constant operand and a sign-extended boolean operand may be
974 /// converted into a select of constants by applying the binary operation to
975 /// the constant with the two possible values of the extended boolean (0 or -1).
976 Instruction *InstCombinerImpl::foldBinopOfSextBoolToSelect(BinaryOperator &BO) {
977   // TODO: Handle non-commutative binop (constant is operand 0).
978   // TODO: Handle zext.
979   // TODO: Peek through 'not' of cast.
980   Value *BO0 = BO.getOperand(0);
981   Value *BO1 = BO.getOperand(1);
982   Value *X;
983   Constant *C;
984   if (!match(BO0, m_SExt(m_Value(X))) || !match(BO1, m_ImmConstant(C)) ||
985       !X->getType()->isIntOrIntVectorTy(1))
986     return nullptr;
987 
988   // bo (sext i1 X), C --> select X, (bo -1, C), (bo 0, C)
989   Constant *Ones = ConstantInt::getAllOnesValue(BO.getType());
990   Constant *Zero = ConstantInt::getNullValue(BO.getType());
991   Constant *TVal = ConstantExpr::get(BO.getOpcode(), Ones, C);
992   Constant *FVal = ConstantExpr::get(BO.getOpcode(), Zero, C);
993   return SelectInst::Create(X, TVal, FVal);
994 }
995 
996 static Value *foldOperationIntoSelectOperand(Instruction &I, Value *SO,
997                                              InstCombiner::BuilderTy &Builder) {
998   if (auto *Cast = dyn_cast<CastInst>(&I))
999     return Builder.CreateCast(Cast->getOpcode(), SO, I.getType());
1000 
1001   if (auto *II = dyn_cast<IntrinsicInst>(&I)) {
1002     assert(canConstantFoldCallTo(II, cast<Function>(II->getCalledOperand())) &&
1003            "Expected constant-foldable intrinsic");
1004     Intrinsic::ID IID = II->getIntrinsicID();
1005     if (II->arg_size() == 1)
1006       return Builder.CreateUnaryIntrinsic(IID, SO);
1007 
1008     // This works for real binary ops like min/max (where we always expect the
1009     // constant operand to be canonicalized as op1) and unary ops with a bonus
1010     // constant argument like ctlz/cttz.
1011     // TODO: Handle non-commutative binary intrinsics as below for binops.
1012     assert(II->arg_size() == 2 && "Expected binary intrinsic");
1013     assert(isa<Constant>(II->getArgOperand(1)) && "Expected constant operand");
1014     return Builder.CreateBinaryIntrinsic(IID, SO, II->getArgOperand(1));
1015   }
1016 
1017   assert(I.isBinaryOp() && "Unexpected opcode for select folding");
1018 
1019   // Figure out if the constant is the left or the right argument.
1020   bool ConstIsRHS = isa<Constant>(I.getOperand(1));
1021   Constant *ConstOperand = cast<Constant>(I.getOperand(ConstIsRHS));
1022 
1023   if (auto *SOC = dyn_cast<Constant>(SO)) {
1024     if (ConstIsRHS)
1025       return ConstantExpr::get(I.getOpcode(), SOC, ConstOperand);
1026     return ConstantExpr::get(I.getOpcode(), ConstOperand, SOC);
1027   }
1028 
1029   Value *Op0 = SO, *Op1 = ConstOperand;
1030   if (!ConstIsRHS)
1031     std::swap(Op0, Op1);
1032 
1033   Value *NewBO = Builder.CreateBinOp(cast<BinaryOperator>(&I)->getOpcode(), Op0,
1034                                      Op1, SO->getName() + ".op");
1035   if (auto *NewBOI = dyn_cast<Instruction>(NewBO))
1036     NewBOI->copyIRFlags(&I);
1037   return NewBO;
1038 }
1039 
1040 Instruction *InstCombinerImpl::FoldOpIntoSelect(Instruction &Op, SelectInst *SI,
1041                                                 bool FoldWithMultiUse) {
1042   // Don't modify shared select instructions unless set FoldWithMultiUse
1043   if (!SI->hasOneUse() && !FoldWithMultiUse)
1044     return nullptr;
1045 
1046   Value *TV = SI->getTrueValue();
1047   Value *FV = SI->getFalseValue();
1048   if (!(isa<Constant>(TV) || isa<Constant>(FV)))
1049     return nullptr;
1050 
1051   // Bool selects with constant operands can be folded to logical ops.
1052   if (SI->getType()->isIntOrIntVectorTy(1))
1053     return nullptr;
1054 
1055   // If it's a bitcast involving vectors, make sure it has the same number of
1056   // elements on both sides.
1057   if (auto *BC = dyn_cast<BitCastInst>(&Op)) {
1058     VectorType *DestTy = dyn_cast<VectorType>(BC->getDestTy());
1059     VectorType *SrcTy = dyn_cast<VectorType>(BC->getSrcTy());
1060 
1061     // Verify that either both or neither are vectors.
1062     if ((SrcTy == nullptr) != (DestTy == nullptr))
1063       return nullptr;
1064 
1065     // If vectors, verify that they have the same number of elements.
1066     if (SrcTy && SrcTy->getElementCount() != DestTy->getElementCount())
1067       return nullptr;
1068   }
1069 
1070   // Test if a CmpInst instruction is used exclusively by a select as
1071   // part of a minimum or maximum operation. If so, refrain from doing
1072   // any other folding. This helps out other analyses which understand
1073   // non-obfuscated minimum and maximum idioms, such as ScalarEvolution
1074   // and CodeGen. And in this case, at least one of the comparison
1075   // operands has at least one user besides the compare (the select),
1076   // which would often largely negate the benefit of folding anyway.
1077   if (auto *CI = dyn_cast<CmpInst>(SI->getCondition())) {
1078     if (CI->hasOneUse()) {
1079       Value *Op0 = CI->getOperand(0), *Op1 = CI->getOperand(1);
1080 
1081       // FIXME: This is a hack to avoid infinite looping with min/max patterns.
1082       //        We have to ensure that vector constants that only differ with
1083       //        undef elements are treated as equivalent.
1084       auto areLooselyEqual = [](Value *A, Value *B) {
1085         if (A == B)
1086           return true;
1087 
1088         // Test for vector constants.
1089         Constant *ConstA, *ConstB;
1090         if (!match(A, m_Constant(ConstA)) || !match(B, m_Constant(ConstB)))
1091           return false;
1092 
1093         // TODO: Deal with FP constants?
1094         if (!A->getType()->isIntOrIntVectorTy() || A->getType() != B->getType())
1095           return false;
1096 
1097         // Compare for equality including undefs as equal.
1098         auto *Cmp = ConstantExpr::getCompare(ICmpInst::ICMP_EQ, ConstA, ConstB);
1099         const APInt *C;
1100         return match(Cmp, m_APIntAllowUndef(C)) && C->isOne();
1101       };
1102 
1103       if ((areLooselyEqual(TV, Op0) && areLooselyEqual(FV, Op1)) ||
1104           (areLooselyEqual(FV, Op0) && areLooselyEqual(TV, Op1)))
1105         return nullptr;
1106     }
1107   }
1108 
1109   Value *NewTV = foldOperationIntoSelectOperand(Op, TV, Builder);
1110   Value *NewFV = foldOperationIntoSelectOperand(Op, FV, Builder);
1111   return SelectInst::Create(SI->getCondition(), NewTV, NewFV, "", nullptr, SI);
1112 }
1113 
1114 static Value *foldOperationIntoPhiValue(BinaryOperator *I, Value *InV,
1115                                         InstCombiner::BuilderTy &Builder) {
1116   bool ConstIsRHS = isa<Constant>(I->getOperand(1));
1117   Constant *C = cast<Constant>(I->getOperand(ConstIsRHS));
1118 
1119   if (auto *InC = dyn_cast<Constant>(InV)) {
1120     if (ConstIsRHS)
1121       return ConstantExpr::get(I->getOpcode(), InC, C);
1122     return ConstantExpr::get(I->getOpcode(), C, InC);
1123   }
1124 
1125   Value *Op0 = InV, *Op1 = C;
1126   if (!ConstIsRHS)
1127     std::swap(Op0, Op1);
1128 
1129   Value *RI = Builder.CreateBinOp(I->getOpcode(), Op0, Op1, "phi.bo");
1130   auto *FPInst = dyn_cast<Instruction>(RI);
1131   if (FPInst && isa<FPMathOperator>(FPInst))
1132     FPInst->copyFastMathFlags(I);
1133   return RI;
1134 }
1135 
1136 Instruction *InstCombinerImpl::foldOpIntoPhi(Instruction &I, PHINode *PN) {
1137   unsigned NumPHIValues = PN->getNumIncomingValues();
1138   if (NumPHIValues == 0)
1139     return nullptr;
1140 
1141   // We normally only transform phis with a single use.  However, if a PHI has
1142   // multiple uses and they are all the same operation, we can fold *all* of the
1143   // uses into the PHI.
1144   if (!PN->hasOneUse()) {
1145     // Walk the use list for the instruction, comparing them to I.
1146     for (User *U : PN->users()) {
1147       Instruction *UI = cast<Instruction>(U);
1148       if (UI != &I && !I.isIdenticalTo(UI))
1149         return nullptr;
1150     }
1151     // Otherwise, we can replace *all* users with the new PHI we form.
1152   }
1153 
1154   // Check to see if all of the operands of the PHI are simple constants
1155   // (constantint/constantfp/undef).  If there is one non-constant value,
1156   // remember the BB it is in.  If there is more than one or if *it* is a PHI,
1157   // bail out.  We don't do arbitrary constant expressions here because moving
1158   // their computation can be expensive without a cost model.
1159   BasicBlock *NonConstBB = nullptr;
1160   for (unsigned i = 0; i != NumPHIValues; ++i) {
1161     Value *InVal = PN->getIncomingValue(i);
1162     // For non-freeze, require constant operand
1163     // For freeze, require non-undef, non-poison operand
1164     if (!isa<FreezeInst>(I) && match(InVal, m_ImmConstant()))
1165       continue;
1166     if (isa<FreezeInst>(I) && isGuaranteedNotToBeUndefOrPoison(InVal))
1167       continue;
1168 
1169     if (isa<PHINode>(InVal)) return nullptr;  // Itself a phi.
1170     if (NonConstBB) return nullptr;  // More than one non-const value.
1171 
1172     NonConstBB = PN->getIncomingBlock(i);
1173 
1174     // If the InVal is an invoke at the end of the pred block, then we can't
1175     // insert a computation after it without breaking the edge.
1176     if (isa<InvokeInst>(InVal))
1177       if (cast<Instruction>(InVal)->getParent() == NonConstBB)
1178         return nullptr;
1179 
1180     // If the incoming non-constant value is in I's block, we will remove one
1181     // instruction, but insert another equivalent one, leading to infinite
1182     // instcombine.
1183     if (isPotentiallyReachable(I.getParent(), NonConstBB, nullptr, &DT, LI))
1184       return nullptr;
1185   }
1186 
1187   // If there is exactly one non-constant value, we can insert a copy of the
1188   // operation in that block.  However, if this is a critical edge, we would be
1189   // inserting the computation on some other paths (e.g. inside a loop).  Only
1190   // do this if the pred block is unconditionally branching into the phi block.
1191   // Also, make sure that the pred block is not dead code.
1192   if (NonConstBB != nullptr) {
1193     BranchInst *BI = dyn_cast<BranchInst>(NonConstBB->getTerminator());
1194     if (!BI || !BI->isUnconditional() || !DT.isReachableFromEntry(NonConstBB))
1195       return nullptr;
1196   }
1197 
1198   // Okay, we can do the transformation: create the new PHI node.
1199   PHINode *NewPN = PHINode::Create(I.getType(), PN->getNumIncomingValues());
1200   InsertNewInstBefore(NewPN, *PN);
1201   NewPN->takeName(PN);
1202 
1203   // If we are going to have to insert a new computation, do so right before the
1204   // predecessor's terminator.
1205   if (NonConstBB)
1206     Builder.SetInsertPoint(NonConstBB->getTerminator());
1207 
1208   // Next, add all of the operands to the PHI.
1209   if (SelectInst *SI = dyn_cast<SelectInst>(&I)) {
1210     // We only currently try to fold the condition of a select when it is a phi,
1211     // not the true/false values.
1212     Value *TrueV = SI->getTrueValue();
1213     Value *FalseV = SI->getFalseValue();
1214     BasicBlock *PhiTransBB = PN->getParent();
1215     for (unsigned i = 0; i != NumPHIValues; ++i) {
1216       BasicBlock *ThisBB = PN->getIncomingBlock(i);
1217       Value *TrueVInPred = TrueV->DoPHITranslation(PhiTransBB, ThisBB);
1218       Value *FalseVInPred = FalseV->DoPHITranslation(PhiTransBB, ThisBB);
1219       Value *InV = nullptr;
1220       // Beware of ConstantExpr:  it may eventually evaluate to getNullValue,
1221       // even if currently isNullValue gives false.
1222       Constant *InC = dyn_cast<Constant>(PN->getIncomingValue(i));
1223       // For vector constants, we cannot use isNullValue to fold into
1224       // FalseVInPred versus TrueVInPred. When we have individual nonzero
1225       // elements in the vector, we will incorrectly fold InC to
1226       // `TrueVInPred`.
1227       if (InC && isa<ConstantInt>(InC))
1228         InV = InC->isNullValue() ? FalseVInPred : TrueVInPred;
1229       else {
1230         // Generate the select in the same block as PN's current incoming block.
1231         // Note: ThisBB need not be the NonConstBB because vector constants
1232         // which are constants by definition are handled here.
1233         // FIXME: This can lead to an increase in IR generation because we might
1234         // generate selects for vector constant phi operand, that could not be
1235         // folded to TrueVInPred or FalseVInPred as done for ConstantInt. For
1236         // non-vector phis, this transformation was always profitable because
1237         // the select would be generated exactly once in the NonConstBB.
1238         Builder.SetInsertPoint(ThisBB->getTerminator());
1239         InV = Builder.CreateSelect(PN->getIncomingValue(i), TrueVInPred,
1240                                    FalseVInPred, "phi.sel");
1241       }
1242       NewPN->addIncoming(InV, ThisBB);
1243     }
1244   } else if (CmpInst *CI = dyn_cast<CmpInst>(&I)) {
1245     Constant *C = cast<Constant>(I.getOperand(1));
1246     for (unsigned i = 0; i != NumPHIValues; ++i) {
1247       Value *InV = nullptr;
1248       if (auto *InC = dyn_cast<Constant>(PN->getIncomingValue(i)))
1249         InV = ConstantExpr::getCompare(CI->getPredicate(), InC, C);
1250       else
1251         InV = Builder.CreateCmp(CI->getPredicate(), PN->getIncomingValue(i),
1252                                 C, "phi.cmp");
1253       NewPN->addIncoming(InV, PN->getIncomingBlock(i));
1254     }
1255   } else if (auto *BO = dyn_cast<BinaryOperator>(&I)) {
1256     for (unsigned i = 0; i != NumPHIValues; ++i) {
1257       Value *InV = foldOperationIntoPhiValue(BO, PN->getIncomingValue(i),
1258                                              Builder);
1259       NewPN->addIncoming(InV, PN->getIncomingBlock(i));
1260     }
1261   } else if (isa<FreezeInst>(&I)) {
1262     for (unsigned i = 0; i != NumPHIValues; ++i) {
1263       Value *InV;
1264       if (NonConstBB == PN->getIncomingBlock(i))
1265         InV = Builder.CreateFreeze(PN->getIncomingValue(i), "phi.fr");
1266       else
1267         InV = PN->getIncomingValue(i);
1268       NewPN->addIncoming(InV, PN->getIncomingBlock(i));
1269     }
1270   } else {
1271     CastInst *CI = cast<CastInst>(&I);
1272     Type *RetTy = CI->getType();
1273     for (unsigned i = 0; i != NumPHIValues; ++i) {
1274       Value *InV;
1275       if (Constant *InC = dyn_cast<Constant>(PN->getIncomingValue(i)))
1276         InV = ConstantExpr::getCast(CI->getOpcode(), InC, RetTy);
1277       else
1278         InV = Builder.CreateCast(CI->getOpcode(), PN->getIncomingValue(i),
1279                                  I.getType(), "phi.cast");
1280       NewPN->addIncoming(InV, PN->getIncomingBlock(i));
1281     }
1282   }
1283 
1284   for (User *U : make_early_inc_range(PN->users())) {
1285     Instruction *User = cast<Instruction>(U);
1286     if (User == &I) continue;
1287     replaceInstUsesWith(*User, NewPN);
1288     eraseInstFromFunction(*User);
1289   }
1290   return replaceInstUsesWith(I, NewPN);
1291 }
1292 
1293 Instruction *InstCombinerImpl::foldBinopWithPhiOperands(BinaryOperator &BO) {
1294   // TODO: This should be similar to the incoming values check in foldOpIntoPhi:
1295   //       we are guarding against replicating the binop in >1 predecessor.
1296   //       This could miss matching a phi with 2 constant incoming values.
1297   auto *Phi0 = dyn_cast<PHINode>(BO.getOperand(0));
1298   auto *Phi1 = dyn_cast<PHINode>(BO.getOperand(1));
1299   if (!Phi0 || !Phi1 || !Phi0->hasOneUse() || !Phi1->hasOneUse() ||
1300       Phi0->getNumOperands() != 2 || Phi1->getNumOperands() != 2)
1301     return nullptr;
1302 
1303   // TODO: Remove the restriction for binop being in the same block as the phis.
1304   if (BO.getParent() != Phi0->getParent() ||
1305       BO.getParent() != Phi1->getParent())
1306     return nullptr;
1307 
1308   // Match a pair of incoming constants for one of the predecessor blocks.
1309   BasicBlock *ConstBB, *OtherBB;
1310   Constant *C0, *C1;
1311   if (match(Phi0->getIncomingValue(0), m_ImmConstant(C0))) {
1312     ConstBB = Phi0->getIncomingBlock(0);
1313     OtherBB = Phi0->getIncomingBlock(1);
1314   } else if (match(Phi0->getIncomingValue(1), m_ImmConstant(C0))) {
1315     ConstBB = Phi0->getIncomingBlock(1);
1316     OtherBB = Phi0->getIncomingBlock(0);
1317   } else {
1318     return nullptr;
1319   }
1320   if (!match(Phi1->getIncomingValueForBlock(ConstBB), m_ImmConstant(C1)))
1321     return nullptr;
1322 
1323   // The block that we are hoisting to must reach here unconditionally.
1324   // Otherwise, we could be speculatively executing an expensive or
1325   // non-speculative op.
1326   auto *PredBlockBranch = dyn_cast<BranchInst>(OtherBB->getTerminator());
1327   if (!PredBlockBranch || PredBlockBranch->isConditional() ||
1328       !DT.isReachableFromEntry(OtherBB))
1329     return nullptr;
1330 
1331   // TODO: This check could be tightened to only apply to binops (div/rem) that
1332   //       are not safe to speculatively execute. But that could allow hoisting
1333   //       potentially expensive instructions (fdiv for example).
1334   for (auto BBIter = BO.getParent()->begin(); &*BBIter != &BO; ++BBIter)
1335     if (!isGuaranteedToTransferExecutionToSuccessor(&*BBIter))
1336       return nullptr;
1337 
1338   // Make a new binop in the predecessor block with the non-constant incoming
1339   // values.
1340   Builder.SetInsertPoint(PredBlockBranch);
1341   Value *NewBO = Builder.CreateBinOp(BO.getOpcode(),
1342                                      Phi0->getIncomingValueForBlock(OtherBB),
1343                                      Phi1->getIncomingValueForBlock(OtherBB));
1344   if (auto *NotFoldedNewBO = dyn_cast<BinaryOperator>(NewBO))
1345     NotFoldedNewBO->copyIRFlags(&BO);
1346 
1347   // Fold constants for the predecessor block with constant incoming values.
1348   Constant *NewC = ConstantExpr::get(BO.getOpcode(), C0, C1);
1349 
1350   // Replace the binop with a phi of the new values. The old phis are dead.
1351   PHINode *NewPhi = PHINode::Create(BO.getType(), 2);
1352   NewPhi->addIncoming(NewBO, OtherBB);
1353   NewPhi->addIncoming(NewC, ConstBB);
1354   return NewPhi;
1355 }
1356 
1357 Instruction *InstCombinerImpl::foldBinOpIntoSelectOrPhi(BinaryOperator &I) {
1358   if (!isa<Constant>(I.getOperand(1)))
1359     return nullptr;
1360 
1361   if (auto *Sel = dyn_cast<SelectInst>(I.getOperand(0))) {
1362     if (Instruction *NewSel = FoldOpIntoSelect(I, Sel))
1363       return NewSel;
1364   } else if (auto *PN = dyn_cast<PHINode>(I.getOperand(0))) {
1365     if (Instruction *NewPhi = foldOpIntoPhi(I, PN))
1366       return NewPhi;
1367   }
1368   return nullptr;
1369 }
1370 
1371 /// Given a pointer type and a constant offset, determine whether or not there
1372 /// is a sequence of GEP indices into the pointed type that will land us at the
1373 /// specified offset. If so, fill them into NewIndices and return the resultant
1374 /// element type, otherwise return null.
1375 static Type *findElementAtOffset(PointerType *PtrTy, int64_t IntOffset,
1376                                  SmallVectorImpl<Value *> &NewIndices,
1377                                  const DataLayout &DL) {
1378   // Only used by visitGEPOfBitcast(), which is skipped for opaque pointers.
1379   Type *Ty = PtrTy->getNonOpaquePointerElementType();
1380   if (!Ty->isSized())
1381     return nullptr;
1382 
1383   APInt Offset(DL.getIndexTypeSizeInBits(PtrTy), IntOffset);
1384   SmallVector<APInt> Indices = DL.getGEPIndicesForOffset(Ty, Offset);
1385   if (!Offset.isZero())
1386     return nullptr;
1387 
1388   for (const APInt &Index : Indices)
1389     NewIndices.push_back(ConstantInt::get(PtrTy->getContext(), Index));
1390   return Ty;
1391 }
1392 
1393 static bool shouldMergeGEPs(GEPOperator &GEP, GEPOperator &Src) {
1394   // If this GEP has only 0 indices, it is the same pointer as
1395   // Src. If Src is not a trivial GEP too, don't combine
1396   // the indices.
1397   if (GEP.hasAllZeroIndices() && !Src.hasAllZeroIndices() &&
1398       !Src.hasOneUse())
1399     return false;
1400   return true;
1401 }
1402 
1403 /// Return a value X such that Val = X * Scale, or null if none.
1404 /// If the multiplication is known not to overflow, then NoSignedWrap is set.
1405 Value *InstCombinerImpl::Descale(Value *Val, APInt Scale, bool &NoSignedWrap) {
1406   assert(isa<IntegerType>(Val->getType()) && "Can only descale integers!");
1407   assert(cast<IntegerType>(Val->getType())->getBitWidth() ==
1408          Scale.getBitWidth() && "Scale not compatible with value!");
1409 
1410   // If Val is zero or Scale is one then Val = Val * Scale.
1411   if (match(Val, m_Zero()) || Scale == 1) {
1412     NoSignedWrap = true;
1413     return Val;
1414   }
1415 
1416   // If Scale is zero then it does not divide Val.
1417   if (Scale.isMinValue())
1418     return nullptr;
1419 
1420   // Look through chains of multiplications, searching for a constant that is
1421   // divisible by Scale.  For example, descaling X*(Y*(Z*4)) by a factor of 4
1422   // will find the constant factor 4 and produce X*(Y*Z).  Descaling X*(Y*8) by
1423   // a factor of 4 will produce X*(Y*2).  The principle of operation is to bore
1424   // down from Val:
1425   //
1426   //     Val = M1 * X          ||   Analysis starts here and works down
1427   //      M1 = M2 * Y          ||   Doesn't descend into terms with more
1428   //      M2 =  Z * 4          \/   than one use
1429   //
1430   // Then to modify a term at the bottom:
1431   //
1432   //     Val = M1 * X
1433   //      M1 =  Z * Y          ||   Replaced M2 with Z
1434   //
1435   // Then to work back up correcting nsw flags.
1436 
1437   // Op - the term we are currently analyzing.  Starts at Val then drills down.
1438   // Replaced with its descaled value before exiting from the drill down loop.
1439   Value *Op = Val;
1440 
1441   // Parent - initially null, but after drilling down notes where Op came from.
1442   // In the example above, Parent is (Val, 0) when Op is M1, because M1 is the
1443   // 0'th operand of Val.
1444   std::pair<Instruction *, unsigned> Parent;
1445 
1446   // Set if the transform requires a descaling at deeper levels that doesn't
1447   // overflow.
1448   bool RequireNoSignedWrap = false;
1449 
1450   // Log base 2 of the scale. Negative if not a power of 2.
1451   int32_t logScale = Scale.exactLogBase2();
1452 
1453   for (;; Op = Parent.first->getOperand(Parent.second)) { // Drill down
1454     if (ConstantInt *CI = dyn_cast<ConstantInt>(Op)) {
1455       // If Op is a constant divisible by Scale then descale to the quotient.
1456       APInt Quotient(Scale), Remainder(Scale); // Init ensures right bitwidth.
1457       APInt::sdivrem(CI->getValue(), Scale, Quotient, Remainder);
1458       if (!Remainder.isMinValue())
1459         // Not divisible by Scale.
1460         return nullptr;
1461       // Replace with the quotient in the parent.
1462       Op = ConstantInt::get(CI->getType(), Quotient);
1463       NoSignedWrap = true;
1464       break;
1465     }
1466 
1467     if (BinaryOperator *BO = dyn_cast<BinaryOperator>(Op)) {
1468       if (BO->getOpcode() == Instruction::Mul) {
1469         // Multiplication.
1470         NoSignedWrap = BO->hasNoSignedWrap();
1471         if (RequireNoSignedWrap && !NoSignedWrap)
1472           return nullptr;
1473 
1474         // There are three cases for multiplication: multiplication by exactly
1475         // the scale, multiplication by a constant different to the scale, and
1476         // multiplication by something else.
1477         Value *LHS = BO->getOperand(0);
1478         Value *RHS = BO->getOperand(1);
1479 
1480         if (ConstantInt *CI = dyn_cast<ConstantInt>(RHS)) {
1481           // Multiplication by a constant.
1482           if (CI->getValue() == Scale) {
1483             // Multiplication by exactly the scale, replace the multiplication
1484             // by its left-hand side in the parent.
1485             Op = LHS;
1486             break;
1487           }
1488 
1489           // Otherwise drill down into the constant.
1490           if (!Op->hasOneUse())
1491             return nullptr;
1492 
1493           Parent = std::make_pair(BO, 1);
1494           continue;
1495         }
1496 
1497         // Multiplication by something else. Drill down into the left-hand side
1498         // since that's where the reassociate pass puts the good stuff.
1499         if (!Op->hasOneUse())
1500           return nullptr;
1501 
1502         Parent = std::make_pair(BO, 0);
1503         continue;
1504       }
1505 
1506       if (logScale > 0 && BO->getOpcode() == Instruction::Shl &&
1507           isa<ConstantInt>(BO->getOperand(1))) {
1508         // Multiplication by a power of 2.
1509         NoSignedWrap = BO->hasNoSignedWrap();
1510         if (RequireNoSignedWrap && !NoSignedWrap)
1511           return nullptr;
1512 
1513         Value *LHS = BO->getOperand(0);
1514         int32_t Amt = cast<ConstantInt>(BO->getOperand(1))->
1515           getLimitedValue(Scale.getBitWidth());
1516         // Op = LHS << Amt.
1517 
1518         if (Amt == logScale) {
1519           // Multiplication by exactly the scale, replace the multiplication
1520           // by its left-hand side in the parent.
1521           Op = LHS;
1522           break;
1523         }
1524         if (Amt < logScale || !Op->hasOneUse())
1525           return nullptr;
1526 
1527         // Multiplication by more than the scale.  Reduce the multiplying amount
1528         // by the scale in the parent.
1529         Parent = std::make_pair(BO, 1);
1530         Op = ConstantInt::get(BO->getType(), Amt - logScale);
1531         break;
1532       }
1533     }
1534 
1535     if (!Op->hasOneUse())
1536       return nullptr;
1537 
1538     if (CastInst *Cast = dyn_cast<CastInst>(Op)) {
1539       if (Cast->getOpcode() == Instruction::SExt) {
1540         // Op is sign-extended from a smaller type, descale in the smaller type.
1541         unsigned SmallSize = Cast->getSrcTy()->getPrimitiveSizeInBits();
1542         APInt SmallScale = Scale.trunc(SmallSize);
1543         // Suppose Op = sext X, and we descale X as Y * SmallScale.  We want to
1544         // descale Op as (sext Y) * Scale.  In order to have
1545         //   sext (Y * SmallScale) = (sext Y) * Scale
1546         // some conditions need to hold however: SmallScale must sign-extend to
1547         // Scale and the multiplication Y * SmallScale should not overflow.
1548         if (SmallScale.sext(Scale.getBitWidth()) != Scale)
1549           // SmallScale does not sign-extend to Scale.
1550           return nullptr;
1551         assert(SmallScale.exactLogBase2() == logScale);
1552         // Require that Y * SmallScale must not overflow.
1553         RequireNoSignedWrap = true;
1554 
1555         // Drill down through the cast.
1556         Parent = std::make_pair(Cast, 0);
1557         Scale = SmallScale;
1558         continue;
1559       }
1560 
1561       if (Cast->getOpcode() == Instruction::Trunc) {
1562         // Op is truncated from a larger type, descale in the larger type.
1563         // Suppose Op = trunc X, and we descale X as Y * sext Scale.  Then
1564         //   trunc (Y * sext Scale) = (trunc Y) * Scale
1565         // always holds.  However (trunc Y) * Scale may overflow even if
1566         // trunc (Y * sext Scale) does not, so nsw flags need to be cleared
1567         // from this point up in the expression (see later).
1568         if (RequireNoSignedWrap)
1569           return nullptr;
1570 
1571         // Drill down through the cast.
1572         unsigned LargeSize = Cast->getSrcTy()->getPrimitiveSizeInBits();
1573         Parent = std::make_pair(Cast, 0);
1574         Scale = Scale.sext(LargeSize);
1575         if (logScale + 1 == (int32_t)Cast->getType()->getPrimitiveSizeInBits())
1576           logScale = -1;
1577         assert(Scale.exactLogBase2() == logScale);
1578         continue;
1579       }
1580     }
1581 
1582     // Unsupported expression, bail out.
1583     return nullptr;
1584   }
1585 
1586   // If Op is zero then Val = Op * Scale.
1587   if (match(Op, m_Zero())) {
1588     NoSignedWrap = true;
1589     return Op;
1590   }
1591 
1592   // We know that we can successfully descale, so from here on we can safely
1593   // modify the IR.  Op holds the descaled version of the deepest term in the
1594   // expression.  NoSignedWrap is 'true' if multiplying Op by Scale is known
1595   // not to overflow.
1596 
1597   if (!Parent.first)
1598     // The expression only had one term.
1599     return Op;
1600 
1601   // Rewrite the parent using the descaled version of its operand.
1602   assert(Parent.first->hasOneUse() && "Drilled down when more than one use!");
1603   assert(Op != Parent.first->getOperand(Parent.second) &&
1604          "Descaling was a no-op?");
1605   replaceOperand(*Parent.first, Parent.second, Op);
1606   Worklist.push(Parent.first);
1607 
1608   // Now work back up the expression correcting nsw flags.  The logic is based
1609   // on the following observation: if X * Y is known not to overflow as a signed
1610   // multiplication, and Y is replaced by a value Z with smaller absolute value,
1611   // then X * Z will not overflow as a signed multiplication either.  As we work
1612   // our way up, having NoSignedWrap 'true' means that the descaled value at the
1613   // current level has strictly smaller absolute value than the original.
1614   Instruction *Ancestor = Parent.first;
1615   do {
1616     if (BinaryOperator *BO = dyn_cast<BinaryOperator>(Ancestor)) {
1617       // If the multiplication wasn't nsw then we can't say anything about the
1618       // value of the descaled multiplication, and we have to clear nsw flags
1619       // from this point on up.
1620       bool OpNoSignedWrap = BO->hasNoSignedWrap();
1621       NoSignedWrap &= OpNoSignedWrap;
1622       if (NoSignedWrap != OpNoSignedWrap) {
1623         BO->setHasNoSignedWrap(NoSignedWrap);
1624         Worklist.push(Ancestor);
1625       }
1626     } else if (Ancestor->getOpcode() == Instruction::Trunc) {
1627       // The fact that the descaled input to the trunc has smaller absolute
1628       // value than the original input doesn't tell us anything useful about
1629       // the absolute values of the truncations.
1630       NoSignedWrap = false;
1631     }
1632     assert((Ancestor->getOpcode() != Instruction::SExt || NoSignedWrap) &&
1633            "Failed to keep proper track of nsw flags while drilling down?");
1634 
1635     if (Ancestor == Val)
1636       // Got to the top, all done!
1637       return Val;
1638 
1639     // Move up one level in the expression.
1640     assert(Ancestor->hasOneUse() && "Drilled down when more than one use!");
1641     Ancestor = Ancestor->user_back();
1642   } while (true);
1643 }
1644 
1645 Instruction *InstCombinerImpl::foldVectorBinop(BinaryOperator &Inst) {
1646   if (!isa<VectorType>(Inst.getType()))
1647     return nullptr;
1648 
1649   BinaryOperator::BinaryOps Opcode = Inst.getOpcode();
1650   Value *LHS = Inst.getOperand(0), *RHS = Inst.getOperand(1);
1651   assert(cast<VectorType>(LHS->getType())->getElementCount() ==
1652          cast<VectorType>(Inst.getType())->getElementCount());
1653   assert(cast<VectorType>(RHS->getType())->getElementCount() ==
1654          cast<VectorType>(Inst.getType())->getElementCount());
1655 
1656   // If both operands of the binop are vector concatenations, then perform the
1657   // narrow binop on each pair of the source operands followed by concatenation
1658   // of the results.
1659   Value *L0, *L1, *R0, *R1;
1660   ArrayRef<int> Mask;
1661   if (match(LHS, m_Shuffle(m_Value(L0), m_Value(L1), m_Mask(Mask))) &&
1662       match(RHS, m_Shuffle(m_Value(R0), m_Value(R1), m_SpecificMask(Mask))) &&
1663       LHS->hasOneUse() && RHS->hasOneUse() &&
1664       cast<ShuffleVectorInst>(LHS)->isConcat() &&
1665       cast<ShuffleVectorInst>(RHS)->isConcat()) {
1666     // This transform does not have the speculative execution constraint as
1667     // below because the shuffle is a concatenation. The new binops are
1668     // operating on exactly the same elements as the existing binop.
1669     // TODO: We could ease the mask requirement to allow different undef lanes,
1670     //       but that requires an analysis of the binop-with-undef output value.
1671     Value *NewBO0 = Builder.CreateBinOp(Opcode, L0, R0);
1672     if (auto *BO = dyn_cast<BinaryOperator>(NewBO0))
1673       BO->copyIRFlags(&Inst);
1674     Value *NewBO1 = Builder.CreateBinOp(Opcode, L1, R1);
1675     if (auto *BO = dyn_cast<BinaryOperator>(NewBO1))
1676       BO->copyIRFlags(&Inst);
1677     return new ShuffleVectorInst(NewBO0, NewBO1, Mask);
1678   }
1679 
1680   // It may not be safe to reorder shuffles and things like div, urem, etc.
1681   // because we may trap when executing those ops on unknown vector elements.
1682   // See PR20059.
1683   if (!isSafeToSpeculativelyExecute(&Inst))
1684     return nullptr;
1685 
1686   auto createBinOpShuffle = [&](Value *X, Value *Y, ArrayRef<int> M) {
1687     Value *XY = Builder.CreateBinOp(Opcode, X, Y);
1688     if (auto *BO = dyn_cast<BinaryOperator>(XY))
1689       BO->copyIRFlags(&Inst);
1690     return new ShuffleVectorInst(XY, M);
1691   };
1692 
1693   // If both arguments of the binary operation are shuffles that use the same
1694   // mask and shuffle within a single vector, move the shuffle after the binop.
1695   Value *V1, *V2;
1696   if (match(LHS, m_Shuffle(m_Value(V1), m_Undef(), m_Mask(Mask))) &&
1697       match(RHS, m_Shuffle(m_Value(V2), m_Undef(), m_SpecificMask(Mask))) &&
1698       V1->getType() == V2->getType() &&
1699       (LHS->hasOneUse() || RHS->hasOneUse() || LHS == RHS)) {
1700     // Op(shuffle(V1, Mask), shuffle(V2, Mask)) -> shuffle(Op(V1, V2), Mask)
1701     return createBinOpShuffle(V1, V2, Mask);
1702   }
1703 
1704   // If both arguments of a commutative binop are select-shuffles that use the
1705   // same mask with commuted operands, the shuffles are unnecessary.
1706   if (Inst.isCommutative() &&
1707       match(LHS, m_Shuffle(m_Value(V1), m_Value(V2), m_Mask(Mask))) &&
1708       match(RHS,
1709             m_Shuffle(m_Specific(V2), m_Specific(V1), m_SpecificMask(Mask)))) {
1710     auto *LShuf = cast<ShuffleVectorInst>(LHS);
1711     auto *RShuf = cast<ShuffleVectorInst>(RHS);
1712     // TODO: Allow shuffles that contain undefs in the mask?
1713     //       That is legal, but it reduces undef knowledge.
1714     // TODO: Allow arbitrary shuffles by shuffling after binop?
1715     //       That might be legal, but we have to deal with poison.
1716     if (LShuf->isSelect() &&
1717         !is_contained(LShuf->getShuffleMask(), UndefMaskElem) &&
1718         RShuf->isSelect() &&
1719         !is_contained(RShuf->getShuffleMask(), UndefMaskElem)) {
1720       // Example:
1721       // LHS = shuffle V1, V2, <0, 5, 6, 3>
1722       // RHS = shuffle V2, V1, <0, 5, 6, 3>
1723       // LHS + RHS --> (V10+V20, V21+V11, V22+V12, V13+V23) --> V1 + V2
1724       Instruction *NewBO = BinaryOperator::Create(Opcode, V1, V2);
1725       NewBO->copyIRFlags(&Inst);
1726       return NewBO;
1727     }
1728   }
1729 
1730   // If one argument is a shuffle within one vector and the other is a constant,
1731   // try moving the shuffle after the binary operation. This canonicalization
1732   // intends to move shuffles closer to other shuffles and binops closer to
1733   // other binops, so they can be folded. It may also enable demanded elements
1734   // transforms.
1735   Constant *C;
1736   auto *InstVTy = dyn_cast<FixedVectorType>(Inst.getType());
1737   if (InstVTy &&
1738       match(&Inst,
1739             m_c_BinOp(m_OneUse(m_Shuffle(m_Value(V1), m_Undef(), m_Mask(Mask))),
1740                       m_ImmConstant(C))) &&
1741       cast<FixedVectorType>(V1->getType())->getNumElements() <=
1742           InstVTy->getNumElements()) {
1743     assert(InstVTy->getScalarType() == V1->getType()->getScalarType() &&
1744            "Shuffle should not change scalar type");
1745 
1746     // Find constant NewC that has property:
1747     //   shuffle(NewC, ShMask) = C
1748     // If such constant does not exist (example: ShMask=<0,0> and C=<1,2>)
1749     // reorder is not possible. A 1-to-1 mapping is not required. Example:
1750     // ShMask = <1,1,2,2> and C = <5,5,6,6> --> NewC = <undef,5,6,undef>
1751     bool ConstOp1 = isa<Constant>(RHS);
1752     ArrayRef<int> ShMask = Mask;
1753     unsigned SrcVecNumElts =
1754         cast<FixedVectorType>(V1->getType())->getNumElements();
1755     UndefValue *UndefScalar = UndefValue::get(C->getType()->getScalarType());
1756     SmallVector<Constant *, 16> NewVecC(SrcVecNumElts, UndefScalar);
1757     bool MayChange = true;
1758     unsigned NumElts = InstVTy->getNumElements();
1759     for (unsigned I = 0; I < NumElts; ++I) {
1760       Constant *CElt = C->getAggregateElement(I);
1761       if (ShMask[I] >= 0) {
1762         assert(ShMask[I] < (int)NumElts && "Not expecting narrowing shuffle");
1763         Constant *NewCElt = NewVecC[ShMask[I]];
1764         // Bail out if:
1765         // 1. The constant vector contains a constant expression.
1766         // 2. The shuffle needs an element of the constant vector that can't
1767         //    be mapped to a new constant vector.
1768         // 3. This is a widening shuffle that copies elements of V1 into the
1769         //    extended elements (extending with undef is allowed).
1770         if (!CElt || (!isa<UndefValue>(NewCElt) && NewCElt != CElt) ||
1771             I >= SrcVecNumElts) {
1772           MayChange = false;
1773           break;
1774         }
1775         NewVecC[ShMask[I]] = CElt;
1776       }
1777       // If this is a widening shuffle, we must be able to extend with undef
1778       // elements. If the original binop does not produce an undef in the high
1779       // lanes, then this transform is not safe.
1780       // Similarly for undef lanes due to the shuffle mask, we can only
1781       // transform binops that preserve undef.
1782       // TODO: We could shuffle those non-undef constant values into the
1783       //       result by using a constant vector (rather than an undef vector)
1784       //       as operand 1 of the new binop, but that might be too aggressive
1785       //       for target-independent shuffle creation.
1786       if (I >= SrcVecNumElts || ShMask[I] < 0) {
1787         Constant *MaybeUndef =
1788             ConstOp1 ? ConstantExpr::get(Opcode, UndefScalar, CElt)
1789                      : ConstantExpr::get(Opcode, CElt, UndefScalar);
1790         if (!match(MaybeUndef, m_Undef())) {
1791           MayChange = false;
1792           break;
1793         }
1794       }
1795     }
1796     if (MayChange) {
1797       Constant *NewC = ConstantVector::get(NewVecC);
1798       // It may not be safe to execute a binop on a vector with undef elements
1799       // because the entire instruction can be folded to undef or create poison
1800       // that did not exist in the original code.
1801       if (Inst.isIntDivRem() || (Inst.isShift() && ConstOp1))
1802         NewC = getSafeVectorConstantForBinop(Opcode, NewC, ConstOp1);
1803 
1804       // Op(shuffle(V1, Mask), C) -> shuffle(Op(V1, NewC), Mask)
1805       // Op(C, shuffle(V1, Mask)) -> shuffle(Op(NewC, V1), Mask)
1806       Value *NewLHS = ConstOp1 ? V1 : NewC;
1807       Value *NewRHS = ConstOp1 ? NewC : V1;
1808       return createBinOpShuffle(NewLHS, NewRHS, Mask);
1809     }
1810   }
1811 
1812   // Try to reassociate to sink a splat shuffle after a binary operation.
1813   if (Inst.isAssociative() && Inst.isCommutative()) {
1814     // Canonicalize shuffle operand as LHS.
1815     if (isa<ShuffleVectorInst>(RHS))
1816       std::swap(LHS, RHS);
1817 
1818     Value *X;
1819     ArrayRef<int> MaskC;
1820     int SplatIndex;
1821     Value *Y, *OtherOp;
1822     if (!match(LHS,
1823                m_OneUse(m_Shuffle(m_Value(X), m_Undef(), m_Mask(MaskC)))) ||
1824         !match(MaskC, m_SplatOrUndefMask(SplatIndex)) ||
1825         X->getType() != Inst.getType() ||
1826         !match(RHS, m_OneUse(m_BinOp(Opcode, m_Value(Y), m_Value(OtherOp)))))
1827       return nullptr;
1828 
1829     // FIXME: This may not be safe if the analysis allows undef elements. By
1830     //        moving 'Y' before the splat shuffle, we are implicitly assuming
1831     //        that it is not undef/poison at the splat index.
1832     if (isSplatValue(OtherOp, SplatIndex)) {
1833       std::swap(Y, OtherOp);
1834     } else if (!isSplatValue(Y, SplatIndex)) {
1835       return nullptr;
1836     }
1837 
1838     // X and Y are splatted values, so perform the binary operation on those
1839     // values followed by a splat followed by the 2nd binary operation:
1840     // bo (splat X), (bo Y, OtherOp) --> bo (splat (bo X, Y)), OtherOp
1841     Value *NewBO = Builder.CreateBinOp(Opcode, X, Y);
1842     SmallVector<int, 8> NewMask(MaskC.size(), SplatIndex);
1843     Value *NewSplat = Builder.CreateShuffleVector(NewBO, NewMask);
1844     Instruction *R = BinaryOperator::Create(Opcode, NewSplat, OtherOp);
1845 
1846     // Intersect FMF on both new binops. Other (poison-generating) flags are
1847     // dropped to be safe.
1848     if (isa<FPMathOperator>(R)) {
1849       R->copyFastMathFlags(&Inst);
1850       R->andIRFlags(RHS);
1851     }
1852     if (auto *NewInstBO = dyn_cast<BinaryOperator>(NewBO))
1853       NewInstBO->copyIRFlags(R);
1854     return R;
1855   }
1856 
1857   return nullptr;
1858 }
1859 
1860 /// Try to narrow the width of a binop if at least 1 operand is an extend of
1861 /// of a value. This requires a potentially expensive known bits check to make
1862 /// sure the narrow op does not overflow.
1863 Instruction *InstCombinerImpl::narrowMathIfNoOverflow(BinaryOperator &BO) {
1864   // We need at least one extended operand.
1865   Value *Op0 = BO.getOperand(0), *Op1 = BO.getOperand(1);
1866 
1867   // If this is a sub, we swap the operands since we always want an extension
1868   // on the RHS. The LHS can be an extension or a constant.
1869   if (BO.getOpcode() == Instruction::Sub)
1870     std::swap(Op0, Op1);
1871 
1872   Value *X;
1873   bool IsSext = match(Op0, m_SExt(m_Value(X)));
1874   if (!IsSext && !match(Op0, m_ZExt(m_Value(X))))
1875     return nullptr;
1876 
1877   // If both operands are the same extension from the same source type and we
1878   // can eliminate at least one (hasOneUse), this might work.
1879   CastInst::CastOps CastOpc = IsSext ? Instruction::SExt : Instruction::ZExt;
1880   Value *Y;
1881   if (!(match(Op1, m_ZExtOrSExt(m_Value(Y))) && X->getType() == Y->getType() &&
1882         cast<Operator>(Op1)->getOpcode() == CastOpc &&
1883         (Op0->hasOneUse() || Op1->hasOneUse()))) {
1884     // If that did not match, see if we have a suitable constant operand.
1885     // Truncating and extending must produce the same constant.
1886     Constant *WideC;
1887     if (!Op0->hasOneUse() || !match(Op1, m_Constant(WideC)))
1888       return nullptr;
1889     Constant *NarrowC = ConstantExpr::getTrunc(WideC, X->getType());
1890     if (ConstantExpr::getCast(CastOpc, NarrowC, BO.getType()) != WideC)
1891       return nullptr;
1892     Y = NarrowC;
1893   }
1894 
1895   // Swap back now that we found our operands.
1896   if (BO.getOpcode() == Instruction::Sub)
1897     std::swap(X, Y);
1898 
1899   // Both operands have narrow versions. Last step: the math must not overflow
1900   // in the narrow width.
1901   if (!willNotOverflow(BO.getOpcode(), X, Y, BO, IsSext))
1902     return nullptr;
1903 
1904   // bo (ext X), (ext Y) --> ext (bo X, Y)
1905   // bo (ext X), C       --> ext (bo X, C')
1906   Value *NarrowBO = Builder.CreateBinOp(BO.getOpcode(), X, Y, "narrow");
1907   if (auto *NewBinOp = dyn_cast<BinaryOperator>(NarrowBO)) {
1908     if (IsSext)
1909       NewBinOp->setHasNoSignedWrap();
1910     else
1911       NewBinOp->setHasNoUnsignedWrap();
1912   }
1913   return CastInst::Create(CastOpc, NarrowBO, BO.getType());
1914 }
1915 
1916 static bool isMergedGEPInBounds(GEPOperator &GEP1, GEPOperator &GEP2) {
1917   // At least one GEP must be inbounds.
1918   if (!GEP1.isInBounds() && !GEP2.isInBounds())
1919     return false;
1920 
1921   return (GEP1.isInBounds() || GEP1.hasAllZeroIndices()) &&
1922          (GEP2.isInBounds() || GEP2.hasAllZeroIndices());
1923 }
1924 
1925 /// Thread a GEP operation with constant indices through the constant true/false
1926 /// arms of a select.
1927 static Instruction *foldSelectGEP(GetElementPtrInst &GEP,
1928                                   InstCombiner::BuilderTy &Builder) {
1929   if (!GEP.hasAllConstantIndices())
1930     return nullptr;
1931 
1932   Instruction *Sel;
1933   Value *Cond;
1934   Constant *TrueC, *FalseC;
1935   if (!match(GEP.getPointerOperand(), m_Instruction(Sel)) ||
1936       !match(Sel,
1937              m_Select(m_Value(Cond), m_Constant(TrueC), m_Constant(FalseC))))
1938     return nullptr;
1939 
1940   // gep (select Cond, TrueC, FalseC), IndexC --> select Cond, TrueC', FalseC'
1941   // Propagate 'inbounds' and metadata from existing instructions.
1942   // Note: using IRBuilder to create the constants for efficiency.
1943   SmallVector<Value *, 4> IndexC(GEP.indices());
1944   bool IsInBounds = GEP.isInBounds();
1945   Type *Ty = GEP.getSourceElementType();
1946   Value *NewTrueC = Builder.CreateGEP(Ty, TrueC, IndexC, "", IsInBounds);
1947   Value *NewFalseC = Builder.CreateGEP(Ty, FalseC, IndexC, "", IsInBounds);
1948   return SelectInst::Create(Cond, NewTrueC, NewFalseC, "", nullptr, Sel);
1949 }
1950 
1951 Instruction *InstCombinerImpl::visitGEPOfGEP(GetElementPtrInst &GEP,
1952                                              GEPOperator *Src) {
1953   // Combine Indices - If the source pointer to this getelementptr instruction
1954   // is a getelementptr instruction with matching element type, combine the
1955   // indices of the two getelementptr instructions into a single instruction.
1956   if (!shouldMergeGEPs(*cast<GEPOperator>(&GEP), *Src))
1957     return nullptr;
1958 
1959   if (Src->getResultElementType() == GEP.getSourceElementType() &&
1960       Src->getNumOperands() == 2 && GEP.getNumOperands() == 2 &&
1961       Src->hasOneUse()) {
1962     Value *GO1 = GEP.getOperand(1);
1963     Value *SO1 = Src->getOperand(1);
1964 
1965     if (LI) {
1966       // Try to reassociate loop invariant GEP chains to enable LICM.
1967       if (Loop *L = LI->getLoopFor(GEP.getParent())) {
1968         // Reassociate the two GEPs if SO1 is variant in the loop and GO1 is
1969         // invariant: this breaks the dependence between GEPs and allows LICM
1970         // to hoist the invariant part out of the loop.
1971         if (L->isLoopInvariant(GO1) && !L->isLoopInvariant(SO1)) {
1972           bool IsInBounds = Src->isInBounds() && GEP.isInBounds();
1973           // Put NewSrc at same location as %src.
1974           Builder.SetInsertPoint(cast<Instruction>(Src));
1975           Value *NewSrc = Builder.CreateGEP(GEP.getSourceElementType(),
1976                                             Src->getPointerOperand(), GO1,
1977                                             Src->getName(), IsInBounds);
1978           GetElementPtrInst *NewGEP = GetElementPtrInst::Create(
1979               GEP.getSourceElementType(), NewSrc, {SO1});
1980           NewGEP->setIsInBounds(IsInBounds);
1981           return NewGEP;
1982         }
1983       }
1984     }
1985   }
1986 
1987   // Note that if our source is a gep chain itself then we wait for that
1988   // chain to be resolved before we perform this transformation.  This
1989   // avoids us creating a TON of code in some cases.
1990   if (auto *SrcGEP = dyn_cast<GEPOperator>(Src->getOperand(0)))
1991     if (SrcGEP->getNumOperands() == 2 && shouldMergeGEPs(*Src, *SrcGEP))
1992       return nullptr;   // Wait until our source is folded to completion.
1993 
1994   // For constant GEPs, use a more general offset-based folding approach.
1995   // Only do this for opaque pointers, as the result element type may change.
1996   Type *PtrTy = Src->getType()->getScalarType();
1997   if (PtrTy->isOpaquePointerTy() && GEP.hasAllConstantIndices() &&
1998       (Src->hasOneUse() || Src->hasAllConstantIndices())) {
1999     // Split Src into a variable part and a constant suffix.
2000     gep_type_iterator GTI = gep_type_begin(*Src);
2001     Type *BaseType = GTI.getIndexedType();
2002     bool IsFirstType = true;
2003     unsigned NumVarIndices = 0;
2004     for (auto Pair : enumerate(Src->indices())) {
2005       if (!isa<ConstantInt>(Pair.value())) {
2006         BaseType = GTI.getIndexedType();
2007         IsFirstType = false;
2008         NumVarIndices = Pair.index() + 1;
2009       }
2010       ++GTI;
2011     }
2012 
2013     // Determine the offset for the constant suffix of Src.
2014     APInt Offset(DL.getIndexTypeSizeInBits(PtrTy), 0);
2015     if (NumVarIndices != Src->getNumIndices()) {
2016       // FIXME: getIndexedOffsetInType() does not handled scalable vectors.
2017       if (isa<ScalableVectorType>(BaseType))
2018         return nullptr;
2019 
2020       SmallVector<Value *> ConstantIndices;
2021       if (!IsFirstType)
2022         ConstantIndices.push_back(
2023             Constant::getNullValue(Type::getInt32Ty(GEP.getContext())));
2024       append_range(ConstantIndices, drop_begin(Src->indices(), NumVarIndices));
2025       Offset += DL.getIndexedOffsetInType(BaseType, ConstantIndices);
2026     }
2027 
2028     // Add the offset for GEP (which is fully constant).
2029     if (!GEP.accumulateConstantOffset(DL, Offset))
2030       return nullptr;
2031 
2032     // Convert the total offset back into indices.
2033     SmallVector<APInt> ConstIndices =
2034         DL.getGEPIndicesForOffset(BaseType, Offset);
2035     if (!Offset.isZero() || (!IsFirstType && !ConstIndices[0].isZero()))
2036       return nullptr;
2037 
2038     SmallVector<Value *> Indices;
2039     append_range(Indices, drop_end(Src->indices(),
2040                                    Src->getNumIndices() - NumVarIndices));
2041     for (const APInt &Idx : drop_begin(ConstIndices, !IsFirstType))
2042       Indices.push_back(ConstantInt::get(GEP.getContext(), Idx));
2043 
2044     return isMergedGEPInBounds(*Src, *cast<GEPOperator>(&GEP))
2045                ? GetElementPtrInst::CreateInBounds(Src->getSourceElementType(),
2046                                                    Src->getOperand(0), Indices,
2047                                                    GEP.getName())
2048                : GetElementPtrInst::Create(Src->getSourceElementType(),
2049                                            Src->getOperand(0), Indices,
2050                                            GEP.getName());
2051   }
2052 
2053   if (Src->getResultElementType() != GEP.getSourceElementType())
2054     return nullptr;
2055 
2056   SmallVector<Value*, 8> Indices;
2057 
2058   // Find out whether the last index in the source GEP is a sequential idx.
2059   bool EndsWithSequential = false;
2060   for (gep_type_iterator I = gep_type_begin(*Src), E = gep_type_end(*Src);
2061        I != E; ++I)
2062     EndsWithSequential = I.isSequential();
2063 
2064   // Can we combine the two pointer arithmetics offsets?
2065   if (EndsWithSequential) {
2066     // Replace: gep (gep %P, long B), long A, ...
2067     // With:    T = long A+B; gep %P, T, ...
2068     Value *SO1 = Src->getOperand(Src->getNumOperands()-1);
2069     Value *GO1 = GEP.getOperand(1);
2070 
2071     // If they aren't the same type, then the input hasn't been processed
2072     // by the loop above yet (which canonicalizes sequential index types to
2073     // intptr_t).  Just avoid transforming this until the input has been
2074     // normalized.
2075     if (SO1->getType() != GO1->getType())
2076       return nullptr;
2077 
2078     Value *Sum =
2079         SimplifyAddInst(GO1, SO1, false, false, SQ.getWithInstruction(&GEP));
2080     // Only do the combine when we are sure the cost after the
2081     // merge is never more than that before the merge.
2082     if (Sum == nullptr)
2083       return nullptr;
2084 
2085     // Update the GEP in place if possible.
2086     if (Src->getNumOperands() == 2) {
2087       GEP.setIsInBounds(isMergedGEPInBounds(*Src, *cast<GEPOperator>(&GEP)));
2088       replaceOperand(GEP, 0, Src->getOperand(0));
2089       replaceOperand(GEP, 1, Sum);
2090       return &GEP;
2091     }
2092     Indices.append(Src->op_begin()+1, Src->op_end()-1);
2093     Indices.push_back(Sum);
2094     Indices.append(GEP.op_begin()+2, GEP.op_end());
2095   } else if (isa<Constant>(*GEP.idx_begin()) &&
2096              cast<Constant>(*GEP.idx_begin())->isNullValue() &&
2097              Src->getNumOperands() != 1) {
2098     // Otherwise we can do the fold if the first index of the GEP is a zero
2099     Indices.append(Src->op_begin()+1, Src->op_end());
2100     Indices.append(GEP.idx_begin()+1, GEP.idx_end());
2101   }
2102 
2103   if (!Indices.empty())
2104     return isMergedGEPInBounds(*Src, *cast<GEPOperator>(&GEP))
2105                ? GetElementPtrInst::CreateInBounds(
2106                      Src->getSourceElementType(), Src->getOperand(0), Indices,
2107                      GEP.getName())
2108                : GetElementPtrInst::Create(Src->getSourceElementType(),
2109                                            Src->getOperand(0), Indices,
2110                                            GEP.getName());
2111 
2112   return nullptr;
2113 }
2114 
2115 // Note that we may have also stripped an address space cast in between.
2116 Instruction *InstCombinerImpl::visitGEPOfBitcast(BitCastInst *BCI,
2117                                                  GetElementPtrInst &GEP) {
2118   // With opaque pointers, there is no pointer element type we can use to
2119   // adjust the GEP type.
2120   PointerType *SrcType = cast<PointerType>(BCI->getSrcTy());
2121   if (SrcType->isOpaque())
2122     return nullptr;
2123 
2124   Type *GEPEltType = GEP.getSourceElementType();
2125   Type *SrcEltType = SrcType->getNonOpaquePointerElementType();
2126   Value *SrcOp = BCI->getOperand(0);
2127 
2128   // GEP directly using the source operand if this GEP is accessing an element
2129   // of a bitcasted pointer to vector or array of the same dimensions:
2130   // gep (bitcast <c x ty>* X to [c x ty]*), Y, Z --> gep X, Y, Z
2131   // gep (bitcast [c x ty]* X to <c x ty>*), Y, Z --> gep X, Y, Z
2132   auto areMatchingArrayAndVecTypes = [](Type *ArrTy, Type *VecTy,
2133                                         const DataLayout &DL) {
2134     auto *VecVTy = cast<FixedVectorType>(VecTy);
2135     return ArrTy->getArrayElementType() == VecVTy->getElementType() &&
2136            ArrTy->getArrayNumElements() == VecVTy->getNumElements() &&
2137            DL.getTypeAllocSize(ArrTy) == DL.getTypeAllocSize(VecTy);
2138   };
2139   if (GEP.getNumOperands() == 3 &&
2140       ((GEPEltType->isArrayTy() && isa<FixedVectorType>(SrcEltType) &&
2141         areMatchingArrayAndVecTypes(GEPEltType, SrcEltType, DL)) ||
2142        (isa<FixedVectorType>(GEPEltType) && SrcEltType->isArrayTy() &&
2143         areMatchingArrayAndVecTypes(SrcEltType, GEPEltType, DL)))) {
2144 
2145     // Create a new GEP here, as using `setOperand()` followed by
2146     // `setSourceElementType()` won't actually update the type of the
2147     // existing GEP Value. Causing issues if this Value is accessed when
2148     // constructing an AddrSpaceCastInst
2149     SmallVector<Value *, 8> Indices(GEP.indices());
2150     Value *NGEP =
2151         Builder.CreateGEP(SrcEltType, SrcOp, Indices, "", GEP.isInBounds());
2152     NGEP->takeName(&GEP);
2153 
2154     // Preserve GEP address space to satisfy users
2155     if (NGEP->getType()->getPointerAddressSpace() != GEP.getAddressSpace())
2156       return new AddrSpaceCastInst(NGEP, GEP.getType());
2157 
2158     return replaceInstUsesWith(GEP, NGEP);
2159   }
2160 
2161   // See if we can simplify:
2162   //   X = bitcast A* to B*
2163   //   Y = gep X, <...constant indices...>
2164   // into a gep of the original struct. This is important for SROA and alias
2165   // analysis of unions. If "A" is also a bitcast, wait for A/X to be merged.
2166   unsigned OffsetBits = DL.getIndexTypeSizeInBits(GEP.getType());
2167   APInt Offset(OffsetBits, 0);
2168 
2169   // If the bitcast argument is an allocation, The bitcast is for convertion
2170   // to actual type of allocation. Removing such bitcasts, results in having
2171   // GEPs with i8* base and pure byte offsets. That means GEP is not aware of
2172   // struct or array hierarchy.
2173   // By avoiding such GEPs, phi translation and MemoryDependencyAnalysis have
2174   // a better chance to succeed.
2175   if (!isa<BitCastInst>(SrcOp) && GEP.accumulateConstantOffset(DL, Offset) &&
2176       !isAllocationFn(SrcOp, &TLI)) {
2177     // If this GEP instruction doesn't move the pointer, just replace the GEP
2178     // with a bitcast of the real input to the dest type.
2179     if (!Offset) {
2180       // If the bitcast is of an allocation, and the allocation will be
2181       // converted to match the type of the cast, don't touch this.
2182       if (isa<AllocaInst>(SrcOp)) {
2183         // See if the bitcast simplifies, if so, don't nuke this GEP yet.
2184         if (Instruction *I = visitBitCast(*BCI)) {
2185           if (I != BCI) {
2186             I->takeName(BCI);
2187             BCI->getParent()->getInstList().insert(BCI->getIterator(), I);
2188             replaceInstUsesWith(*BCI, I);
2189           }
2190           return &GEP;
2191         }
2192       }
2193 
2194       if (SrcType->getPointerAddressSpace() != GEP.getAddressSpace())
2195         return new AddrSpaceCastInst(SrcOp, GEP.getType());
2196       return new BitCastInst(SrcOp, GEP.getType());
2197     }
2198 
2199     // Otherwise, if the offset is non-zero, we need to find out if there is a
2200     // field at Offset in 'A's type.  If so, we can pull the cast through the
2201     // GEP.
2202     SmallVector<Value *, 8> NewIndices;
2203     if (findElementAtOffset(SrcType, Offset.getSExtValue(), NewIndices, DL)) {
2204       Value *NGEP = Builder.CreateGEP(SrcEltType, SrcOp, NewIndices, "",
2205                                       GEP.isInBounds());
2206 
2207       if (NGEP->getType() == GEP.getType())
2208         return replaceInstUsesWith(GEP, NGEP);
2209       NGEP->takeName(&GEP);
2210 
2211       if (NGEP->getType()->getPointerAddressSpace() != GEP.getAddressSpace())
2212         return new AddrSpaceCastInst(NGEP, GEP.getType());
2213       return new BitCastInst(NGEP, GEP.getType());
2214     }
2215   }
2216 
2217   return nullptr;
2218 }
2219 
2220 Instruction *InstCombinerImpl::visitGetElementPtrInst(GetElementPtrInst &GEP) {
2221   Value *PtrOp = GEP.getOperand(0);
2222   SmallVector<Value *, 8> Indices(GEP.indices());
2223   Type *GEPType = GEP.getType();
2224   Type *GEPEltType = GEP.getSourceElementType();
2225   bool IsGEPSrcEleScalable = isa<ScalableVectorType>(GEPEltType);
2226   if (Value *V = SimplifyGEPInst(GEPEltType, PtrOp, Indices, GEP.isInBounds(),
2227                                  SQ.getWithInstruction(&GEP)))
2228     return replaceInstUsesWith(GEP, V);
2229 
2230   // For vector geps, use the generic demanded vector support.
2231   // Skip if GEP return type is scalable. The number of elements is unknown at
2232   // compile-time.
2233   if (auto *GEPFVTy = dyn_cast<FixedVectorType>(GEPType)) {
2234     auto VWidth = GEPFVTy->getNumElements();
2235     APInt UndefElts(VWidth, 0);
2236     APInt AllOnesEltMask(APInt::getAllOnes(VWidth));
2237     if (Value *V = SimplifyDemandedVectorElts(&GEP, AllOnesEltMask,
2238                                               UndefElts)) {
2239       if (V != &GEP)
2240         return replaceInstUsesWith(GEP, V);
2241       return &GEP;
2242     }
2243 
2244     // TODO: 1) Scalarize splat operands, 2) scalarize entire instruction if
2245     // possible (decide on canonical form for pointer broadcast), 3) exploit
2246     // undef elements to decrease demanded bits
2247   }
2248 
2249   // Eliminate unneeded casts for indices, and replace indices which displace
2250   // by multiples of a zero size type with zero.
2251   bool MadeChange = false;
2252 
2253   // Index width may not be the same width as pointer width.
2254   // Data layout chooses the right type based on supported integer types.
2255   Type *NewScalarIndexTy =
2256       DL.getIndexType(GEP.getPointerOperandType()->getScalarType());
2257 
2258   gep_type_iterator GTI = gep_type_begin(GEP);
2259   for (User::op_iterator I = GEP.op_begin() + 1, E = GEP.op_end(); I != E;
2260        ++I, ++GTI) {
2261     // Skip indices into struct types.
2262     if (GTI.isStruct())
2263       continue;
2264 
2265     Type *IndexTy = (*I)->getType();
2266     Type *NewIndexType =
2267         IndexTy->isVectorTy()
2268             ? VectorType::get(NewScalarIndexTy,
2269                               cast<VectorType>(IndexTy)->getElementCount())
2270             : NewScalarIndexTy;
2271 
2272     // If the element type has zero size then any index over it is equivalent
2273     // to an index of zero, so replace it with zero if it is not zero already.
2274     Type *EltTy = GTI.getIndexedType();
2275     if (EltTy->isSized() && DL.getTypeAllocSize(EltTy).isZero())
2276       if (!isa<Constant>(*I) || !match(I->get(), m_Zero())) {
2277         *I = Constant::getNullValue(NewIndexType);
2278         MadeChange = true;
2279       }
2280 
2281     if (IndexTy != NewIndexType) {
2282       // If we are using a wider index than needed for this platform, shrink
2283       // it to what we need.  If narrower, sign-extend it to what we need.
2284       // This explicit cast can make subsequent optimizations more obvious.
2285       *I = Builder.CreateIntCast(*I, NewIndexType, true);
2286       MadeChange = true;
2287     }
2288   }
2289   if (MadeChange)
2290     return &GEP;
2291 
2292   // Check to see if the inputs to the PHI node are getelementptr instructions.
2293   if (auto *PN = dyn_cast<PHINode>(PtrOp)) {
2294     auto *Op1 = dyn_cast<GetElementPtrInst>(PN->getOperand(0));
2295     if (!Op1)
2296       return nullptr;
2297 
2298     // Don't fold a GEP into itself through a PHI node. This can only happen
2299     // through the back-edge of a loop. Folding a GEP into itself means that
2300     // the value of the previous iteration needs to be stored in the meantime,
2301     // thus requiring an additional register variable to be live, but not
2302     // actually achieving anything (the GEP still needs to be executed once per
2303     // loop iteration).
2304     if (Op1 == &GEP)
2305       return nullptr;
2306 
2307     int DI = -1;
2308 
2309     for (auto I = PN->op_begin()+1, E = PN->op_end(); I !=E; ++I) {
2310       auto *Op2 = dyn_cast<GetElementPtrInst>(*I);
2311       if (!Op2 || Op1->getNumOperands() != Op2->getNumOperands() ||
2312           Op1->getSourceElementType() != Op2->getSourceElementType())
2313         return nullptr;
2314 
2315       // As for Op1 above, don't try to fold a GEP into itself.
2316       if (Op2 == &GEP)
2317         return nullptr;
2318 
2319       // Keep track of the type as we walk the GEP.
2320       Type *CurTy = nullptr;
2321 
2322       for (unsigned J = 0, F = Op1->getNumOperands(); J != F; ++J) {
2323         if (Op1->getOperand(J)->getType() != Op2->getOperand(J)->getType())
2324           return nullptr;
2325 
2326         if (Op1->getOperand(J) != Op2->getOperand(J)) {
2327           if (DI == -1) {
2328             // We have not seen any differences yet in the GEPs feeding the
2329             // PHI yet, so we record this one if it is allowed to be a
2330             // variable.
2331 
2332             // The first two arguments can vary for any GEP, the rest have to be
2333             // static for struct slots
2334             if (J > 1) {
2335               assert(CurTy && "No current type?");
2336               if (CurTy->isStructTy())
2337                 return nullptr;
2338             }
2339 
2340             DI = J;
2341           } else {
2342             // The GEP is different by more than one input. While this could be
2343             // extended to support GEPs that vary by more than one variable it
2344             // doesn't make sense since it greatly increases the complexity and
2345             // would result in an R+R+R addressing mode which no backend
2346             // directly supports and would need to be broken into several
2347             // simpler instructions anyway.
2348             return nullptr;
2349           }
2350         }
2351 
2352         // Sink down a layer of the type for the next iteration.
2353         if (J > 0) {
2354           if (J == 1) {
2355             CurTy = Op1->getSourceElementType();
2356           } else {
2357             CurTy =
2358                 GetElementPtrInst::getTypeAtIndex(CurTy, Op1->getOperand(J));
2359           }
2360         }
2361       }
2362     }
2363 
2364     // If not all GEPs are identical we'll have to create a new PHI node.
2365     // Check that the old PHI node has only one use so that it will get
2366     // removed.
2367     if (DI != -1 && !PN->hasOneUse())
2368       return nullptr;
2369 
2370     auto *NewGEP = cast<GetElementPtrInst>(Op1->clone());
2371     if (DI == -1) {
2372       // All the GEPs feeding the PHI are identical. Clone one down into our
2373       // BB so that it can be merged with the current GEP.
2374     } else {
2375       // All the GEPs feeding the PHI differ at a single offset. Clone a GEP
2376       // into the current block so it can be merged, and create a new PHI to
2377       // set that index.
2378       PHINode *NewPN;
2379       {
2380         IRBuilderBase::InsertPointGuard Guard(Builder);
2381         Builder.SetInsertPoint(PN);
2382         NewPN = Builder.CreatePHI(Op1->getOperand(DI)->getType(),
2383                                   PN->getNumOperands());
2384       }
2385 
2386       for (auto &I : PN->operands())
2387         NewPN->addIncoming(cast<GEPOperator>(I)->getOperand(DI),
2388                            PN->getIncomingBlock(I));
2389 
2390       NewGEP->setOperand(DI, NewPN);
2391     }
2392 
2393     GEP.getParent()->getInstList().insert(
2394         GEP.getParent()->getFirstInsertionPt(), NewGEP);
2395     replaceOperand(GEP, 0, NewGEP);
2396     PtrOp = NewGEP;
2397   }
2398 
2399   if (auto *Src = dyn_cast<GEPOperator>(PtrOp))
2400     if (Instruction *I = visitGEPOfGEP(GEP, Src))
2401       return I;
2402 
2403   // Skip if GEP source element type is scalable. The type alloc size is unknown
2404   // at compile-time.
2405   if (GEP.getNumIndices() == 1 && !IsGEPSrcEleScalable) {
2406     unsigned AS = GEP.getPointerAddressSpace();
2407     if (GEP.getOperand(1)->getType()->getScalarSizeInBits() ==
2408         DL.getIndexSizeInBits(AS)) {
2409       uint64_t TyAllocSize = DL.getTypeAllocSize(GEPEltType).getFixedSize();
2410 
2411       bool Matched = false;
2412       uint64_t C;
2413       Value *V = nullptr;
2414       if (TyAllocSize == 1) {
2415         V = GEP.getOperand(1);
2416         Matched = true;
2417       } else if (match(GEP.getOperand(1),
2418                        m_AShr(m_Value(V), m_ConstantInt(C)))) {
2419         if (TyAllocSize == 1ULL << C)
2420           Matched = true;
2421       } else if (match(GEP.getOperand(1),
2422                        m_SDiv(m_Value(V), m_ConstantInt(C)))) {
2423         if (TyAllocSize == C)
2424           Matched = true;
2425       }
2426 
2427       // Canonicalize (gep i8* X, (ptrtoint Y)-(ptrtoint X)) to (bitcast Y), but
2428       // only if both point to the same underlying object (otherwise provenance
2429       // is not necessarily retained).
2430       Value *Y;
2431       Value *X = GEP.getOperand(0);
2432       if (Matched &&
2433           match(V, m_Sub(m_PtrToInt(m_Value(Y)), m_PtrToInt(m_Specific(X)))) &&
2434           getUnderlyingObject(X) == getUnderlyingObject(Y))
2435         return CastInst::CreatePointerBitCastOrAddrSpaceCast(Y, GEPType);
2436     }
2437   }
2438 
2439   // We do not handle pointer-vector geps here.
2440   if (GEPType->isVectorTy())
2441     return nullptr;
2442 
2443   // Handle gep(bitcast x) and gep(gep x, 0, 0, 0).
2444   Value *StrippedPtr = PtrOp->stripPointerCasts();
2445   PointerType *StrippedPtrTy = cast<PointerType>(StrippedPtr->getType());
2446 
2447   // TODO: The basic approach of these folds is not compatible with opaque
2448   // pointers, because we can't use bitcasts as a hint for a desirable GEP
2449   // type. Instead, we should perform canonicalization directly on the GEP
2450   // type. For now, skip these.
2451   if (StrippedPtr != PtrOp && !StrippedPtrTy->isOpaque()) {
2452     bool HasZeroPointerIndex = false;
2453     Type *StrippedPtrEltTy = StrippedPtrTy->getNonOpaquePointerElementType();
2454 
2455     if (auto *C = dyn_cast<ConstantInt>(GEP.getOperand(1)))
2456       HasZeroPointerIndex = C->isZero();
2457 
2458     // Transform: GEP (bitcast [10 x i8]* X to [0 x i8]*), i32 0, ...
2459     // into     : GEP [10 x i8]* X, i32 0, ...
2460     //
2461     // Likewise, transform: GEP (bitcast i8* X to [0 x i8]*), i32 0, ...
2462     //           into     : GEP i8* X, ...
2463     //
2464     // This occurs when the program declares an array extern like "int X[];"
2465     if (HasZeroPointerIndex) {
2466       if (auto *CATy = dyn_cast<ArrayType>(GEPEltType)) {
2467         // GEP (bitcast i8* X to [0 x i8]*), i32 0, ... ?
2468         if (CATy->getElementType() == StrippedPtrEltTy) {
2469           // -> GEP i8* X, ...
2470           SmallVector<Value *, 8> Idx(drop_begin(GEP.indices()));
2471           GetElementPtrInst *Res = GetElementPtrInst::Create(
2472               StrippedPtrEltTy, StrippedPtr, Idx, GEP.getName());
2473           Res->setIsInBounds(GEP.isInBounds());
2474           if (StrippedPtrTy->getAddressSpace() == GEP.getAddressSpace())
2475             return Res;
2476           // Insert Res, and create an addrspacecast.
2477           // e.g.,
2478           // GEP (addrspacecast i8 addrspace(1)* X to [0 x i8]*), i32 0, ...
2479           // ->
2480           // %0 = GEP i8 addrspace(1)* X, ...
2481           // addrspacecast i8 addrspace(1)* %0 to i8*
2482           return new AddrSpaceCastInst(Builder.Insert(Res), GEPType);
2483         }
2484 
2485         if (auto *XATy = dyn_cast<ArrayType>(StrippedPtrEltTy)) {
2486           // GEP (bitcast [10 x i8]* X to [0 x i8]*), i32 0, ... ?
2487           if (CATy->getElementType() == XATy->getElementType()) {
2488             // -> GEP [10 x i8]* X, i32 0, ...
2489             // At this point, we know that the cast source type is a pointer
2490             // to an array of the same type as the destination pointer
2491             // array.  Because the array type is never stepped over (there
2492             // is a leading zero) we can fold the cast into this GEP.
2493             if (StrippedPtrTy->getAddressSpace() == GEP.getAddressSpace()) {
2494               GEP.setSourceElementType(XATy);
2495               return replaceOperand(GEP, 0, StrippedPtr);
2496             }
2497             // Cannot replace the base pointer directly because StrippedPtr's
2498             // address space is different. Instead, create a new GEP followed by
2499             // an addrspacecast.
2500             // e.g.,
2501             // GEP (addrspacecast [10 x i8] addrspace(1)* X to [0 x i8]*),
2502             //   i32 0, ...
2503             // ->
2504             // %0 = GEP [10 x i8] addrspace(1)* X, ...
2505             // addrspacecast i8 addrspace(1)* %0 to i8*
2506             SmallVector<Value *, 8> Idx(GEP.indices());
2507             Value *NewGEP =
2508                 Builder.CreateGEP(StrippedPtrEltTy, StrippedPtr, Idx,
2509                                   GEP.getName(), GEP.isInBounds());
2510             return new AddrSpaceCastInst(NewGEP, GEPType);
2511           }
2512         }
2513       }
2514     } else if (GEP.getNumOperands() == 2 && !IsGEPSrcEleScalable) {
2515       // Skip if GEP source element type is scalable. The type alloc size is
2516       // unknown at compile-time.
2517       // Transform things like: %t = getelementptr i32*
2518       // bitcast ([2 x i32]* %str to i32*), i32 %V into:  %t1 = getelementptr [2
2519       // x i32]* %str, i32 0, i32 %V; bitcast
2520       if (StrippedPtrEltTy->isArrayTy() &&
2521           DL.getTypeAllocSize(StrippedPtrEltTy->getArrayElementType()) ==
2522               DL.getTypeAllocSize(GEPEltType)) {
2523         Type *IdxType = DL.getIndexType(GEPType);
2524         Value *Idx[2] = {Constant::getNullValue(IdxType), GEP.getOperand(1)};
2525         Value *NewGEP = Builder.CreateGEP(StrippedPtrEltTy, StrippedPtr, Idx,
2526                                           GEP.getName(), GEP.isInBounds());
2527 
2528         // V and GEP are both pointer types --> BitCast
2529         return CastInst::CreatePointerBitCastOrAddrSpaceCast(NewGEP, GEPType);
2530       }
2531 
2532       // Transform things like:
2533       // %V = mul i64 %N, 4
2534       // %t = getelementptr i8* bitcast (i32* %arr to i8*), i32 %V
2535       // into:  %t1 = getelementptr i32* %arr, i32 %N; bitcast
2536       if (GEPEltType->isSized() && StrippedPtrEltTy->isSized()) {
2537         // Check that changing the type amounts to dividing the index by a scale
2538         // factor.
2539         uint64_t ResSize = DL.getTypeAllocSize(GEPEltType).getFixedSize();
2540         uint64_t SrcSize = DL.getTypeAllocSize(StrippedPtrEltTy).getFixedSize();
2541         if (ResSize && SrcSize % ResSize == 0) {
2542           Value *Idx = GEP.getOperand(1);
2543           unsigned BitWidth = Idx->getType()->getPrimitiveSizeInBits();
2544           uint64_t Scale = SrcSize / ResSize;
2545 
2546           // Earlier transforms ensure that the index has the right type
2547           // according to Data Layout, which considerably simplifies the
2548           // logic by eliminating implicit casts.
2549           assert(Idx->getType() == DL.getIndexType(GEPType) &&
2550                  "Index type does not match the Data Layout preferences");
2551 
2552           bool NSW;
2553           if (Value *NewIdx = Descale(Idx, APInt(BitWidth, Scale), NSW)) {
2554             // Successfully decomposed Idx as NewIdx * Scale, form a new GEP.
2555             // If the multiplication NewIdx * Scale may overflow then the new
2556             // GEP may not be "inbounds".
2557             Value *NewGEP =
2558                 Builder.CreateGEP(StrippedPtrEltTy, StrippedPtr, NewIdx,
2559                                   GEP.getName(), GEP.isInBounds() && NSW);
2560 
2561             // The NewGEP must be pointer typed, so must the old one -> BitCast
2562             return CastInst::CreatePointerBitCastOrAddrSpaceCast(NewGEP,
2563                                                                  GEPType);
2564           }
2565         }
2566       }
2567 
2568       // Similarly, transform things like:
2569       // getelementptr i8* bitcast ([100 x double]* X to i8*), i32 %tmp
2570       //   (where tmp = 8*tmp2) into:
2571       // getelementptr [100 x double]* %arr, i32 0, i32 %tmp2; bitcast
2572       if (GEPEltType->isSized() && StrippedPtrEltTy->isSized() &&
2573           StrippedPtrEltTy->isArrayTy()) {
2574         // Check that changing to the array element type amounts to dividing the
2575         // index by a scale factor.
2576         uint64_t ResSize = DL.getTypeAllocSize(GEPEltType).getFixedSize();
2577         uint64_t ArrayEltSize =
2578             DL.getTypeAllocSize(StrippedPtrEltTy->getArrayElementType())
2579                 .getFixedSize();
2580         if (ResSize && ArrayEltSize % ResSize == 0) {
2581           Value *Idx = GEP.getOperand(1);
2582           unsigned BitWidth = Idx->getType()->getPrimitiveSizeInBits();
2583           uint64_t Scale = ArrayEltSize / ResSize;
2584 
2585           // Earlier transforms ensure that the index has the right type
2586           // according to the Data Layout, which considerably simplifies
2587           // the logic by eliminating implicit casts.
2588           assert(Idx->getType() == DL.getIndexType(GEPType) &&
2589                  "Index type does not match the Data Layout preferences");
2590 
2591           bool NSW;
2592           if (Value *NewIdx = Descale(Idx, APInt(BitWidth, Scale), NSW)) {
2593             // Successfully decomposed Idx as NewIdx * Scale, form a new GEP.
2594             // If the multiplication NewIdx * Scale may overflow then the new
2595             // GEP may not be "inbounds".
2596             Type *IndTy = DL.getIndexType(GEPType);
2597             Value *Off[2] = {Constant::getNullValue(IndTy), NewIdx};
2598 
2599             Value *NewGEP =
2600                 Builder.CreateGEP(StrippedPtrEltTy, StrippedPtr, Off,
2601                                   GEP.getName(), GEP.isInBounds() && NSW);
2602             // The NewGEP must be pointer typed, so must the old one -> BitCast
2603             return CastInst::CreatePointerBitCastOrAddrSpaceCast(NewGEP,
2604                                                                  GEPType);
2605           }
2606         }
2607       }
2608     }
2609   }
2610 
2611   // addrspacecast between types is canonicalized as a bitcast, then an
2612   // addrspacecast. To take advantage of the below bitcast + struct GEP, look
2613   // through the addrspacecast.
2614   Value *ASCStrippedPtrOp = PtrOp;
2615   if (auto *ASC = dyn_cast<AddrSpaceCastInst>(PtrOp)) {
2616     //   X = bitcast A addrspace(1)* to B addrspace(1)*
2617     //   Y = addrspacecast A addrspace(1)* to B addrspace(2)*
2618     //   Z = gep Y, <...constant indices...>
2619     // Into an addrspacecasted GEP of the struct.
2620     if (auto *BC = dyn_cast<BitCastInst>(ASC->getOperand(0)))
2621       ASCStrippedPtrOp = BC;
2622   }
2623 
2624   if (auto *BCI = dyn_cast<BitCastInst>(ASCStrippedPtrOp))
2625     if (Instruction *I = visitGEPOfBitcast(BCI, GEP))
2626       return I;
2627 
2628   if (!GEP.isInBounds()) {
2629     unsigned IdxWidth =
2630         DL.getIndexSizeInBits(PtrOp->getType()->getPointerAddressSpace());
2631     APInt BasePtrOffset(IdxWidth, 0);
2632     Value *UnderlyingPtrOp =
2633             PtrOp->stripAndAccumulateInBoundsConstantOffsets(DL,
2634                                                              BasePtrOffset);
2635     if (auto *AI = dyn_cast<AllocaInst>(UnderlyingPtrOp)) {
2636       if (GEP.accumulateConstantOffset(DL, BasePtrOffset) &&
2637           BasePtrOffset.isNonNegative()) {
2638         APInt AllocSize(
2639             IdxWidth,
2640             DL.getTypeAllocSize(AI->getAllocatedType()).getKnownMinSize());
2641         if (BasePtrOffset.ule(AllocSize)) {
2642           return GetElementPtrInst::CreateInBounds(
2643               GEP.getSourceElementType(), PtrOp, Indices, GEP.getName());
2644         }
2645       }
2646     }
2647   }
2648 
2649   if (Instruction *R = foldSelectGEP(GEP, Builder))
2650     return R;
2651 
2652   return nullptr;
2653 }
2654 
2655 static bool isNeverEqualToUnescapedAlloc(Value *V, const TargetLibraryInfo &TLI,
2656                                          Instruction *AI) {
2657   if (isa<ConstantPointerNull>(V))
2658     return true;
2659   if (auto *LI = dyn_cast<LoadInst>(V))
2660     return isa<GlobalVariable>(LI->getPointerOperand());
2661   // Two distinct allocations will never be equal.
2662   return isAllocLikeFn(V, &TLI) && V != AI;
2663 }
2664 
2665 /// Given a call CB which uses an address UsedV, return true if we can prove the
2666 /// call's only possible effect is storing to V.
2667 static bool isRemovableWrite(CallBase &CB, Value *UsedV,
2668                              const TargetLibraryInfo &TLI) {
2669   if (!CB.use_empty())
2670     // TODO: add recursion if returned attribute is present
2671     return false;
2672 
2673   if (CB.isTerminator())
2674     // TODO: remove implementation restriction
2675     return false;
2676 
2677   if (!CB.willReturn() || !CB.doesNotThrow())
2678     return false;
2679 
2680   // If the only possible side effect of the call is writing to the alloca,
2681   // and the result isn't used, we can safely remove any reads implied by the
2682   // call including those which might read the alloca itself.
2683   Optional<MemoryLocation> Dest = MemoryLocation::getForDest(&CB, TLI);
2684   return Dest && Dest->Ptr == UsedV;
2685 }
2686 
2687 static bool isAllocSiteRemovable(Instruction *AI,
2688                                  SmallVectorImpl<WeakTrackingVH> &Users,
2689                                  const TargetLibraryInfo &TLI) {
2690   SmallVector<Instruction*, 4> Worklist;
2691   const Optional<StringRef> Family = getAllocationFamily(AI, &TLI);
2692   Worklist.push_back(AI);
2693 
2694   do {
2695     Instruction *PI = Worklist.pop_back_val();
2696     for (User *U : PI->users()) {
2697       Instruction *I = cast<Instruction>(U);
2698       switch (I->getOpcode()) {
2699       default:
2700         // Give up the moment we see something we can't handle.
2701         return false;
2702 
2703       case Instruction::AddrSpaceCast:
2704       case Instruction::BitCast:
2705       case Instruction::GetElementPtr:
2706         Users.emplace_back(I);
2707         Worklist.push_back(I);
2708         continue;
2709 
2710       case Instruction::ICmp: {
2711         ICmpInst *ICI = cast<ICmpInst>(I);
2712         // We can fold eq/ne comparisons with null to false/true, respectively.
2713         // We also fold comparisons in some conditions provided the alloc has
2714         // not escaped (see isNeverEqualToUnescapedAlloc).
2715         if (!ICI->isEquality())
2716           return false;
2717         unsigned OtherIndex = (ICI->getOperand(0) == PI) ? 1 : 0;
2718         if (!isNeverEqualToUnescapedAlloc(ICI->getOperand(OtherIndex), TLI, AI))
2719           return false;
2720         Users.emplace_back(I);
2721         continue;
2722       }
2723 
2724       case Instruction::Call:
2725         // Ignore no-op and store intrinsics.
2726         if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) {
2727           switch (II->getIntrinsicID()) {
2728           default:
2729             return false;
2730 
2731           case Intrinsic::memmove:
2732           case Intrinsic::memcpy:
2733           case Intrinsic::memset: {
2734             MemIntrinsic *MI = cast<MemIntrinsic>(II);
2735             if (MI->isVolatile() || MI->getRawDest() != PI)
2736               return false;
2737             LLVM_FALLTHROUGH;
2738           }
2739           case Intrinsic::assume:
2740           case Intrinsic::invariant_start:
2741           case Intrinsic::invariant_end:
2742           case Intrinsic::lifetime_start:
2743           case Intrinsic::lifetime_end:
2744           case Intrinsic::objectsize:
2745             Users.emplace_back(I);
2746             continue;
2747           case Intrinsic::launder_invariant_group:
2748           case Intrinsic::strip_invariant_group:
2749             Users.emplace_back(I);
2750             Worklist.push_back(I);
2751             continue;
2752           }
2753         }
2754 
2755         if (isRemovableWrite(*cast<CallBase>(I), PI, TLI)) {
2756           Users.emplace_back(I);
2757           continue;
2758         }
2759 
2760         if (isFreeCall(I, &TLI) && getAllocationFamily(I, &TLI) == Family) {
2761           assert(Family);
2762           Users.emplace_back(I);
2763           continue;
2764         }
2765 
2766         if (isReallocLikeFn(I, &TLI) &&
2767             getAllocationFamily(I, &TLI) == Family) {
2768           assert(Family);
2769           Users.emplace_back(I);
2770           Worklist.push_back(I);
2771           continue;
2772         }
2773 
2774         return false;
2775 
2776       case Instruction::Store: {
2777         StoreInst *SI = cast<StoreInst>(I);
2778         if (SI->isVolatile() || SI->getPointerOperand() != PI)
2779           return false;
2780         Users.emplace_back(I);
2781         continue;
2782       }
2783       }
2784       llvm_unreachable("missing a return?");
2785     }
2786   } while (!Worklist.empty());
2787   return true;
2788 }
2789 
2790 Instruction *InstCombinerImpl::visitAllocSite(Instruction &MI) {
2791   assert(isa<AllocaInst>(MI) || isAllocRemovable(&cast<CallBase>(MI), &TLI));
2792 
2793   // If we have a malloc call which is only used in any amount of comparisons to
2794   // null and free calls, delete the calls and replace the comparisons with true
2795   // or false as appropriate.
2796 
2797   // This is based on the principle that we can substitute our own allocation
2798   // function (which will never return null) rather than knowledge of the
2799   // specific function being called. In some sense this can change the permitted
2800   // outputs of a program (when we convert a malloc to an alloca, the fact that
2801   // the allocation is now on the stack is potentially visible, for example),
2802   // but we believe in a permissible manner.
2803   SmallVector<WeakTrackingVH, 64> Users;
2804 
2805   // If we are removing an alloca with a dbg.declare, insert dbg.value calls
2806   // before each store.
2807   SmallVector<DbgVariableIntrinsic *, 8> DVIs;
2808   std::unique_ptr<DIBuilder> DIB;
2809   if (isa<AllocaInst>(MI)) {
2810     findDbgUsers(DVIs, &MI);
2811     DIB.reset(new DIBuilder(*MI.getModule(), /*AllowUnresolved=*/false));
2812   }
2813 
2814   if (isAllocSiteRemovable(&MI, Users, TLI)) {
2815     for (unsigned i = 0, e = Users.size(); i != e; ++i) {
2816       // Lowering all @llvm.objectsize calls first because they may
2817       // use a bitcast/GEP of the alloca we are removing.
2818       if (!Users[i])
2819        continue;
2820 
2821       Instruction *I = cast<Instruction>(&*Users[i]);
2822 
2823       if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) {
2824         if (II->getIntrinsicID() == Intrinsic::objectsize) {
2825           Value *Result =
2826               lowerObjectSizeCall(II, DL, &TLI, AA, /*MustSucceed=*/true);
2827           replaceInstUsesWith(*I, Result);
2828           eraseInstFromFunction(*I);
2829           Users[i] = nullptr; // Skip examining in the next loop.
2830         }
2831       }
2832     }
2833     for (unsigned i = 0, e = Users.size(); i != e; ++i) {
2834       if (!Users[i])
2835         continue;
2836 
2837       Instruction *I = cast<Instruction>(&*Users[i]);
2838 
2839       if (ICmpInst *C = dyn_cast<ICmpInst>(I)) {
2840         replaceInstUsesWith(*C,
2841                             ConstantInt::get(Type::getInt1Ty(C->getContext()),
2842                                              C->isFalseWhenEqual()));
2843       } else if (auto *SI = dyn_cast<StoreInst>(I)) {
2844         for (auto *DVI : DVIs)
2845           if (DVI->isAddressOfVariable())
2846             ConvertDebugDeclareToDebugValue(DVI, SI, *DIB);
2847       } else {
2848         // Casts, GEP, or anything else: we're about to delete this instruction,
2849         // so it can not have any valid uses.
2850         replaceInstUsesWith(*I, PoisonValue::get(I->getType()));
2851       }
2852       eraseInstFromFunction(*I);
2853     }
2854 
2855     if (InvokeInst *II = dyn_cast<InvokeInst>(&MI)) {
2856       // Replace invoke with a NOP intrinsic to maintain the original CFG
2857       Module *M = II->getModule();
2858       Function *F = Intrinsic::getDeclaration(M, Intrinsic::donothing);
2859       InvokeInst::Create(F, II->getNormalDest(), II->getUnwindDest(),
2860                          None, "", II->getParent());
2861     }
2862 
2863     // Remove debug intrinsics which describe the value contained within the
2864     // alloca. In addition to removing dbg.{declare,addr} which simply point to
2865     // the alloca, remove dbg.value(<alloca>, ..., DW_OP_deref)'s as well, e.g.:
2866     //
2867     // ```
2868     //   define void @foo(i32 %0) {
2869     //     %a = alloca i32                              ; Deleted.
2870     //     store i32 %0, i32* %a
2871     //     dbg.value(i32 %0, "arg0")                    ; Not deleted.
2872     //     dbg.value(i32* %a, "arg0", DW_OP_deref)      ; Deleted.
2873     //     call void @trivially_inlinable_no_op(i32* %a)
2874     //     ret void
2875     //  }
2876     // ```
2877     //
2878     // This may not be required if we stop describing the contents of allocas
2879     // using dbg.value(<alloca>, ..., DW_OP_deref), but we currently do this in
2880     // the LowerDbgDeclare utility.
2881     //
2882     // If there is a dead store to `%a` in @trivially_inlinable_no_op, the
2883     // "arg0" dbg.value may be stale after the call. However, failing to remove
2884     // the DW_OP_deref dbg.value causes large gaps in location coverage.
2885     for (auto *DVI : DVIs)
2886       if (DVI->isAddressOfVariable() || DVI->getExpression()->startsWithDeref())
2887         DVI->eraseFromParent();
2888 
2889     return eraseInstFromFunction(MI);
2890   }
2891   return nullptr;
2892 }
2893 
2894 /// Move the call to free before a NULL test.
2895 ///
2896 /// Check if this free is accessed after its argument has been test
2897 /// against NULL (property 0).
2898 /// If yes, it is legal to move this call in its predecessor block.
2899 ///
2900 /// The move is performed only if the block containing the call to free
2901 /// will be removed, i.e.:
2902 /// 1. it has only one predecessor P, and P has two successors
2903 /// 2. it contains the call, noops, and an unconditional branch
2904 /// 3. its successor is the same as its predecessor's successor
2905 ///
2906 /// The profitability is out-of concern here and this function should
2907 /// be called only if the caller knows this transformation would be
2908 /// profitable (e.g., for code size).
2909 static Instruction *tryToMoveFreeBeforeNullTest(CallInst &FI,
2910                                                 const DataLayout &DL) {
2911   Value *Op = FI.getArgOperand(0);
2912   BasicBlock *FreeInstrBB = FI.getParent();
2913   BasicBlock *PredBB = FreeInstrBB->getSinglePredecessor();
2914 
2915   // Validate part of constraint #1: Only one predecessor
2916   // FIXME: We can extend the number of predecessor, but in that case, we
2917   //        would duplicate the call to free in each predecessor and it may
2918   //        not be profitable even for code size.
2919   if (!PredBB)
2920     return nullptr;
2921 
2922   // Validate constraint #2: Does this block contains only the call to
2923   //                         free, noops, and an unconditional branch?
2924   BasicBlock *SuccBB;
2925   Instruction *FreeInstrBBTerminator = FreeInstrBB->getTerminator();
2926   if (!match(FreeInstrBBTerminator, m_UnconditionalBr(SuccBB)))
2927     return nullptr;
2928 
2929   // If there are only 2 instructions in the block, at this point,
2930   // this is the call to free and unconditional.
2931   // If there are more than 2 instructions, check that they are noops
2932   // i.e., they won't hurt the performance of the generated code.
2933   if (FreeInstrBB->size() != 2) {
2934     for (const Instruction &Inst : FreeInstrBB->instructionsWithoutDebug()) {
2935       if (&Inst == &FI || &Inst == FreeInstrBBTerminator)
2936         continue;
2937       auto *Cast = dyn_cast<CastInst>(&Inst);
2938       if (!Cast || !Cast->isNoopCast(DL))
2939         return nullptr;
2940     }
2941   }
2942   // Validate the rest of constraint #1 by matching on the pred branch.
2943   Instruction *TI = PredBB->getTerminator();
2944   BasicBlock *TrueBB, *FalseBB;
2945   ICmpInst::Predicate Pred;
2946   if (!match(TI, m_Br(m_ICmp(Pred,
2947                              m_CombineOr(m_Specific(Op),
2948                                          m_Specific(Op->stripPointerCasts())),
2949                              m_Zero()),
2950                       TrueBB, FalseBB)))
2951     return nullptr;
2952   if (Pred != ICmpInst::ICMP_EQ && Pred != ICmpInst::ICMP_NE)
2953     return nullptr;
2954 
2955   // Validate constraint #3: Ensure the null case just falls through.
2956   if (SuccBB != (Pred == ICmpInst::ICMP_EQ ? TrueBB : FalseBB))
2957     return nullptr;
2958   assert(FreeInstrBB == (Pred == ICmpInst::ICMP_EQ ? FalseBB : TrueBB) &&
2959          "Broken CFG: missing edge from predecessor to successor");
2960 
2961   // At this point, we know that everything in FreeInstrBB can be moved
2962   // before TI.
2963   for (Instruction &Instr : llvm::make_early_inc_range(*FreeInstrBB)) {
2964     if (&Instr == FreeInstrBBTerminator)
2965       break;
2966     Instr.moveBefore(TI);
2967   }
2968   assert(FreeInstrBB->size() == 1 &&
2969          "Only the branch instruction should remain");
2970 
2971   // Now that we've moved the call to free before the NULL check, we have to
2972   // remove any attributes on its parameter that imply it's non-null, because
2973   // those attributes might have only been valid because of the NULL check, and
2974   // we can get miscompiles if we keep them. This is conservative if non-null is
2975   // also implied by something other than the NULL check, but it's guaranteed to
2976   // be correct, and the conservativeness won't matter in practice, since the
2977   // attributes are irrelevant for the call to free itself and the pointer
2978   // shouldn't be used after the call.
2979   AttributeList Attrs = FI.getAttributes();
2980   Attrs = Attrs.removeParamAttribute(FI.getContext(), 0, Attribute::NonNull);
2981   Attribute Dereferenceable = Attrs.getParamAttr(0, Attribute::Dereferenceable);
2982   if (Dereferenceable.isValid()) {
2983     uint64_t Bytes = Dereferenceable.getDereferenceableBytes();
2984     Attrs = Attrs.removeParamAttribute(FI.getContext(), 0,
2985                                        Attribute::Dereferenceable);
2986     Attrs = Attrs.addDereferenceableOrNullParamAttr(FI.getContext(), 0, Bytes);
2987   }
2988   FI.setAttributes(Attrs);
2989 
2990   return &FI;
2991 }
2992 
2993 Instruction *InstCombinerImpl::visitFree(CallInst &FI) {
2994   Value *Op = FI.getArgOperand(0);
2995 
2996   // free undef -> unreachable.
2997   if (isa<UndefValue>(Op)) {
2998     // Leave a marker since we can't modify the CFG here.
2999     CreateNonTerminatorUnreachable(&FI);
3000     return eraseInstFromFunction(FI);
3001   }
3002 
3003   // If we have 'free null' delete the instruction.  This can happen in stl code
3004   // when lots of inlining happens.
3005   if (isa<ConstantPointerNull>(Op))
3006     return eraseInstFromFunction(FI);
3007 
3008   // If we had free(realloc(...)) with no intervening uses, then eliminate the
3009   // realloc() entirely.
3010   if (CallInst *CI = dyn_cast<CallInst>(Op)) {
3011     if (CI->hasOneUse() && isReallocLikeFn(CI, &TLI)) {
3012       return eraseInstFromFunction(
3013           *replaceInstUsesWith(*CI, CI->getOperand(0)));
3014     }
3015   }
3016 
3017   // If we optimize for code size, try to move the call to free before the null
3018   // test so that simplify cfg can remove the empty block and dead code
3019   // elimination the branch. I.e., helps to turn something like:
3020   // if (foo) free(foo);
3021   // into
3022   // free(foo);
3023   //
3024   // Note that we can only do this for 'free' and not for any flavor of
3025   // 'operator delete'; there is no 'operator delete' symbol for which we are
3026   // permitted to invent a call, even if we're passing in a null pointer.
3027   if (MinimizeSize) {
3028     LibFunc Func;
3029     if (TLI.getLibFunc(FI, Func) && TLI.has(Func) && Func == LibFunc_free)
3030       if (Instruction *I = tryToMoveFreeBeforeNullTest(FI, DL))
3031         return I;
3032   }
3033 
3034   return nullptr;
3035 }
3036 
3037 static bool isMustTailCall(Value *V) {
3038   if (auto *CI = dyn_cast<CallInst>(V))
3039     return CI->isMustTailCall();
3040   return false;
3041 }
3042 
3043 Instruction *InstCombinerImpl::visitReturnInst(ReturnInst &RI) {
3044   if (RI.getNumOperands() == 0) // ret void
3045     return nullptr;
3046 
3047   Value *ResultOp = RI.getOperand(0);
3048   Type *VTy = ResultOp->getType();
3049   if (!VTy->isIntegerTy() || isa<Constant>(ResultOp))
3050     return nullptr;
3051 
3052   // Don't replace result of musttail calls.
3053   if (isMustTailCall(ResultOp))
3054     return nullptr;
3055 
3056   // There might be assume intrinsics dominating this return that completely
3057   // determine the value. If so, constant fold it.
3058   KnownBits Known = computeKnownBits(ResultOp, 0, &RI);
3059   if (Known.isConstant())
3060     return replaceOperand(RI, 0,
3061         Constant::getIntegerValue(VTy, Known.getConstant()));
3062 
3063   return nullptr;
3064 }
3065 
3066 // WARNING: keep in sync with SimplifyCFGOpt::simplifyUnreachable()!
3067 Instruction *InstCombinerImpl::visitUnreachableInst(UnreachableInst &I) {
3068   // Try to remove the previous instruction if it must lead to unreachable.
3069   // This includes instructions like stores and "llvm.assume" that may not get
3070   // removed by simple dead code elimination.
3071   while (Instruction *Prev = I.getPrevNonDebugInstruction()) {
3072     // While we theoretically can erase EH, that would result in a block that
3073     // used to start with an EH no longer starting with EH, which is invalid.
3074     // To make it valid, we'd need to fixup predecessors to no longer refer to
3075     // this block, but that changes CFG, which is not allowed in InstCombine.
3076     if (Prev->isEHPad())
3077       return nullptr; // Can not drop any more instructions. We're done here.
3078 
3079     if (!isGuaranteedToTransferExecutionToSuccessor(Prev))
3080       return nullptr; // Can not drop any more instructions. We're done here.
3081     // Otherwise, this instruction can be freely erased,
3082     // even if it is not side-effect free.
3083 
3084     // A value may still have uses before we process it here (for example, in
3085     // another unreachable block), so convert those to poison.
3086     replaceInstUsesWith(*Prev, PoisonValue::get(Prev->getType()));
3087     eraseInstFromFunction(*Prev);
3088   }
3089   assert(I.getParent()->sizeWithoutDebug() == 1 && "The block is now empty.");
3090   // FIXME: recurse into unconditional predecessors?
3091   return nullptr;
3092 }
3093 
3094 Instruction *InstCombinerImpl::visitUnconditionalBranchInst(BranchInst &BI) {
3095   assert(BI.isUnconditional() && "Only for unconditional branches.");
3096 
3097   // If this store is the second-to-last instruction in the basic block
3098   // (excluding debug info and bitcasts of pointers) and if the block ends with
3099   // an unconditional branch, try to move the store to the successor block.
3100 
3101   auto GetLastSinkableStore = [](BasicBlock::iterator BBI) {
3102     auto IsNoopInstrForStoreMerging = [](BasicBlock::iterator BBI) {
3103       return BBI->isDebugOrPseudoInst() ||
3104              (isa<BitCastInst>(BBI) && BBI->getType()->isPointerTy());
3105     };
3106 
3107     BasicBlock::iterator FirstInstr = BBI->getParent()->begin();
3108     do {
3109       if (BBI != FirstInstr)
3110         --BBI;
3111     } while (BBI != FirstInstr && IsNoopInstrForStoreMerging(BBI));
3112 
3113     return dyn_cast<StoreInst>(BBI);
3114   };
3115 
3116   if (StoreInst *SI = GetLastSinkableStore(BasicBlock::iterator(BI)))
3117     if (mergeStoreIntoSuccessor(*SI))
3118       return &BI;
3119 
3120   return nullptr;
3121 }
3122 
3123 Instruction *InstCombinerImpl::visitBranchInst(BranchInst &BI) {
3124   if (BI.isUnconditional())
3125     return visitUnconditionalBranchInst(BI);
3126 
3127   // Change br (not X), label True, label False to: br X, label False, True
3128   Value *X = nullptr;
3129   if (match(&BI, m_Br(m_Not(m_Value(X)), m_BasicBlock(), m_BasicBlock())) &&
3130       !isa<Constant>(X)) {
3131     // Swap Destinations and condition...
3132     BI.swapSuccessors();
3133     return replaceOperand(BI, 0, X);
3134   }
3135 
3136   // If the condition is irrelevant, remove the use so that other
3137   // transforms on the condition become more effective.
3138   if (!isa<ConstantInt>(BI.getCondition()) &&
3139       BI.getSuccessor(0) == BI.getSuccessor(1))
3140     return replaceOperand(
3141         BI, 0, ConstantInt::getFalse(BI.getCondition()->getType()));
3142 
3143   // Canonicalize, for example, fcmp_one -> fcmp_oeq.
3144   CmpInst::Predicate Pred;
3145   if (match(&BI, m_Br(m_OneUse(m_FCmp(Pred, m_Value(), m_Value())),
3146                       m_BasicBlock(), m_BasicBlock())) &&
3147       !isCanonicalPredicate(Pred)) {
3148     // Swap destinations and condition.
3149     CmpInst *Cond = cast<CmpInst>(BI.getCondition());
3150     Cond->setPredicate(CmpInst::getInversePredicate(Pred));
3151     BI.swapSuccessors();
3152     Worklist.push(Cond);
3153     return &BI;
3154   }
3155 
3156   return nullptr;
3157 }
3158 
3159 Instruction *InstCombinerImpl::visitSwitchInst(SwitchInst &SI) {
3160   Value *Cond = SI.getCondition();
3161   Value *Op0;
3162   ConstantInt *AddRHS;
3163   if (match(Cond, m_Add(m_Value(Op0), m_ConstantInt(AddRHS)))) {
3164     // Change 'switch (X+4) case 1:' into 'switch (X) case -3'.
3165     for (auto Case : SI.cases()) {
3166       Constant *NewCase = ConstantExpr::getSub(Case.getCaseValue(), AddRHS);
3167       assert(isa<ConstantInt>(NewCase) &&
3168              "Result of expression should be constant");
3169       Case.setValue(cast<ConstantInt>(NewCase));
3170     }
3171     return replaceOperand(SI, 0, Op0);
3172   }
3173 
3174   KnownBits Known = computeKnownBits(Cond, 0, &SI);
3175   unsigned LeadingKnownZeros = Known.countMinLeadingZeros();
3176   unsigned LeadingKnownOnes = Known.countMinLeadingOnes();
3177 
3178   // Compute the number of leading bits we can ignore.
3179   // TODO: A better way to determine this would use ComputeNumSignBits().
3180   for (auto &C : SI.cases()) {
3181     LeadingKnownZeros = std::min(
3182         LeadingKnownZeros, C.getCaseValue()->getValue().countLeadingZeros());
3183     LeadingKnownOnes = std::min(
3184         LeadingKnownOnes, C.getCaseValue()->getValue().countLeadingOnes());
3185   }
3186 
3187   unsigned NewWidth = Known.getBitWidth() - std::max(LeadingKnownZeros, LeadingKnownOnes);
3188 
3189   // Shrink the condition operand if the new type is smaller than the old type.
3190   // But do not shrink to a non-standard type, because backend can't generate
3191   // good code for that yet.
3192   // TODO: We can make it aggressive again after fixing PR39569.
3193   if (NewWidth > 0 && NewWidth < Known.getBitWidth() &&
3194       shouldChangeType(Known.getBitWidth(), NewWidth)) {
3195     IntegerType *Ty = IntegerType::get(SI.getContext(), NewWidth);
3196     Builder.SetInsertPoint(&SI);
3197     Value *NewCond = Builder.CreateTrunc(Cond, Ty, "trunc");
3198 
3199     for (auto Case : SI.cases()) {
3200       APInt TruncatedCase = Case.getCaseValue()->getValue().trunc(NewWidth);
3201       Case.setValue(ConstantInt::get(SI.getContext(), TruncatedCase));
3202     }
3203     return replaceOperand(SI, 0, NewCond);
3204   }
3205 
3206   return nullptr;
3207 }
3208 
3209 Instruction *InstCombinerImpl::visitExtractValueInst(ExtractValueInst &EV) {
3210   Value *Agg = EV.getAggregateOperand();
3211 
3212   if (!EV.hasIndices())
3213     return replaceInstUsesWith(EV, Agg);
3214 
3215   if (Value *V = SimplifyExtractValueInst(Agg, EV.getIndices(),
3216                                           SQ.getWithInstruction(&EV)))
3217     return replaceInstUsesWith(EV, V);
3218 
3219   if (InsertValueInst *IV = dyn_cast<InsertValueInst>(Agg)) {
3220     // We're extracting from an insertvalue instruction, compare the indices
3221     const unsigned *exti, *exte, *insi, *inse;
3222     for (exti = EV.idx_begin(), insi = IV->idx_begin(),
3223          exte = EV.idx_end(), inse = IV->idx_end();
3224          exti != exte && insi != inse;
3225          ++exti, ++insi) {
3226       if (*insi != *exti)
3227         // The insert and extract both reference distinctly different elements.
3228         // This means the extract is not influenced by the insert, and we can
3229         // replace the aggregate operand of the extract with the aggregate
3230         // operand of the insert. i.e., replace
3231         // %I = insertvalue { i32, { i32 } } %A, { i32 } { i32 42 }, 1
3232         // %E = extractvalue { i32, { i32 } } %I, 0
3233         // with
3234         // %E = extractvalue { i32, { i32 } } %A, 0
3235         return ExtractValueInst::Create(IV->getAggregateOperand(),
3236                                         EV.getIndices());
3237     }
3238     if (exti == exte && insi == inse)
3239       // Both iterators are at the end: Index lists are identical. Replace
3240       // %B = insertvalue { i32, { i32 } } %A, i32 42, 1, 0
3241       // %C = extractvalue { i32, { i32 } } %B, 1, 0
3242       // with "i32 42"
3243       return replaceInstUsesWith(EV, IV->getInsertedValueOperand());
3244     if (exti == exte) {
3245       // The extract list is a prefix of the insert list. i.e. replace
3246       // %I = insertvalue { i32, { i32 } } %A, i32 42, 1, 0
3247       // %E = extractvalue { i32, { i32 } } %I, 1
3248       // with
3249       // %X = extractvalue { i32, { i32 } } %A, 1
3250       // %E = insertvalue { i32 } %X, i32 42, 0
3251       // by switching the order of the insert and extract (though the
3252       // insertvalue should be left in, since it may have other uses).
3253       Value *NewEV = Builder.CreateExtractValue(IV->getAggregateOperand(),
3254                                                 EV.getIndices());
3255       return InsertValueInst::Create(NewEV, IV->getInsertedValueOperand(),
3256                                      makeArrayRef(insi, inse));
3257     }
3258     if (insi == inse)
3259       // The insert list is a prefix of the extract list
3260       // We can simply remove the common indices from the extract and make it
3261       // operate on the inserted value instead of the insertvalue result.
3262       // i.e., replace
3263       // %I = insertvalue { i32, { i32 } } %A, { i32 } { i32 42 }, 1
3264       // %E = extractvalue { i32, { i32 } } %I, 1, 0
3265       // with
3266       // %E extractvalue { i32 } { i32 42 }, 0
3267       return ExtractValueInst::Create(IV->getInsertedValueOperand(),
3268                                       makeArrayRef(exti, exte));
3269   }
3270   if (WithOverflowInst *WO = dyn_cast<WithOverflowInst>(Agg)) {
3271     // extractvalue (any_mul_with_overflow X, -1), 0 --> -X
3272     Intrinsic::ID OvID = WO->getIntrinsicID();
3273     if (*EV.idx_begin() == 0 &&
3274         (OvID == Intrinsic::smul_with_overflow ||
3275          OvID == Intrinsic::umul_with_overflow) &&
3276         match(WO->getArgOperand(1), m_AllOnes())) {
3277       return BinaryOperator::CreateNeg(WO->getArgOperand(0));
3278     }
3279 
3280     // We're extracting from an overflow intrinsic, see if we're the only user,
3281     // which allows us to simplify multiple result intrinsics to simpler
3282     // things that just get one value.
3283     if (WO->hasOneUse()) {
3284       // Check if we're grabbing only the result of a 'with overflow' intrinsic
3285       // and replace it with a traditional binary instruction.
3286       if (*EV.idx_begin() == 0) {
3287         Instruction::BinaryOps BinOp = WO->getBinaryOp();
3288         Value *LHS = WO->getLHS(), *RHS = WO->getRHS();
3289         // Replace the old instruction's uses with poison.
3290         replaceInstUsesWith(*WO, PoisonValue::get(WO->getType()));
3291         eraseInstFromFunction(*WO);
3292         return BinaryOperator::Create(BinOp, LHS, RHS);
3293       }
3294 
3295       assert(*EV.idx_begin() == 1 &&
3296              "unexpected extract index for overflow inst");
3297 
3298       // If only the overflow result is used, and the right hand side is a
3299       // constant (or constant splat), we can remove the intrinsic by directly
3300       // checking for overflow.
3301       const APInt *C;
3302       if (match(WO->getRHS(), m_APInt(C))) {
3303         // Compute the no-wrap range for LHS given RHS=C, then construct an
3304         // equivalent icmp, potentially using an offset.
3305         ConstantRange NWR =
3306           ConstantRange::makeExactNoWrapRegion(WO->getBinaryOp(), *C,
3307                                                WO->getNoWrapKind());
3308 
3309         CmpInst::Predicate Pred;
3310         APInt NewRHSC, Offset;
3311         NWR.getEquivalentICmp(Pred, NewRHSC, Offset);
3312         auto *OpTy = WO->getRHS()->getType();
3313         auto *NewLHS = WO->getLHS();
3314         if (Offset != 0)
3315           NewLHS = Builder.CreateAdd(NewLHS, ConstantInt::get(OpTy, Offset));
3316         return new ICmpInst(ICmpInst::getInversePredicate(Pred), NewLHS,
3317                             ConstantInt::get(OpTy, NewRHSC));
3318       }
3319     }
3320   }
3321   if (LoadInst *L = dyn_cast<LoadInst>(Agg))
3322     // If the (non-volatile) load only has one use, we can rewrite this to a
3323     // load from a GEP. This reduces the size of the load. If a load is used
3324     // only by extractvalue instructions then this either must have been
3325     // optimized before, or it is a struct with padding, in which case we
3326     // don't want to do the transformation as it loses padding knowledge.
3327     if (L->isSimple() && L->hasOneUse()) {
3328       // extractvalue has integer indices, getelementptr has Value*s. Convert.
3329       SmallVector<Value*, 4> Indices;
3330       // Prefix an i32 0 since we need the first element.
3331       Indices.push_back(Builder.getInt32(0));
3332       for (unsigned Idx : EV.indices())
3333         Indices.push_back(Builder.getInt32(Idx));
3334 
3335       // We need to insert these at the location of the old load, not at that of
3336       // the extractvalue.
3337       Builder.SetInsertPoint(L);
3338       Value *GEP = Builder.CreateInBoundsGEP(L->getType(),
3339                                              L->getPointerOperand(), Indices);
3340       Instruction *NL = Builder.CreateLoad(EV.getType(), GEP);
3341       // Whatever aliasing information we had for the orignal load must also
3342       // hold for the smaller load, so propagate the annotations.
3343       NL->setAAMetadata(L->getAAMetadata());
3344       // Returning the load directly will cause the main loop to insert it in
3345       // the wrong spot, so use replaceInstUsesWith().
3346       return replaceInstUsesWith(EV, NL);
3347     }
3348   // We could simplify extracts from other values. Note that nested extracts may
3349   // already be simplified implicitly by the above: extract (extract (insert) )
3350   // will be translated into extract ( insert ( extract ) ) first and then just
3351   // the value inserted, if appropriate. Similarly for extracts from single-use
3352   // loads: extract (extract (load)) will be translated to extract (load (gep))
3353   // and if again single-use then via load (gep (gep)) to load (gep).
3354   // However, double extracts from e.g. function arguments or return values
3355   // aren't handled yet.
3356   return nullptr;
3357 }
3358 
3359 /// Return 'true' if the given typeinfo will match anything.
3360 static bool isCatchAll(EHPersonality Personality, Constant *TypeInfo) {
3361   switch (Personality) {
3362   case EHPersonality::GNU_C:
3363   case EHPersonality::GNU_C_SjLj:
3364   case EHPersonality::Rust:
3365     // The GCC C EH and Rust personality only exists to support cleanups, so
3366     // it's not clear what the semantics of catch clauses are.
3367     return false;
3368   case EHPersonality::Unknown:
3369     return false;
3370   case EHPersonality::GNU_Ada:
3371     // While __gnat_all_others_value will match any Ada exception, it doesn't
3372     // match foreign exceptions (or didn't, before gcc-4.7).
3373     return false;
3374   case EHPersonality::GNU_CXX:
3375   case EHPersonality::GNU_CXX_SjLj:
3376   case EHPersonality::GNU_ObjC:
3377   case EHPersonality::MSVC_X86SEH:
3378   case EHPersonality::MSVC_TableSEH:
3379   case EHPersonality::MSVC_CXX:
3380   case EHPersonality::CoreCLR:
3381   case EHPersonality::Wasm_CXX:
3382   case EHPersonality::XL_CXX:
3383     return TypeInfo->isNullValue();
3384   }
3385   llvm_unreachable("invalid enum");
3386 }
3387 
3388 static bool shorter_filter(const Value *LHS, const Value *RHS) {
3389   return
3390     cast<ArrayType>(LHS->getType())->getNumElements()
3391   <
3392     cast<ArrayType>(RHS->getType())->getNumElements();
3393 }
3394 
3395 Instruction *InstCombinerImpl::visitLandingPadInst(LandingPadInst &LI) {
3396   // The logic here should be correct for any real-world personality function.
3397   // However if that turns out not to be true, the offending logic can always
3398   // be conditioned on the personality function, like the catch-all logic is.
3399   EHPersonality Personality =
3400       classifyEHPersonality(LI.getParent()->getParent()->getPersonalityFn());
3401 
3402   // Simplify the list of clauses, eg by removing repeated catch clauses
3403   // (these are often created by inlining).
3404   bool MakeNewInstruction = false; // If true, recreate using the following:
3405   SmallVector<Constant *, 16> NewClauses; // - Clauses for the new instruction;
3406   bool CleanupFlag = LI.isCleanup();   // - The new instruction is a cleanup.
3407 
3408   SmallPtrSet<Value *, 16> AlreadyCaught; // Typeinfos known caught already.
3409   for (unsigned i = 0, e = LI.getNumClauses(); i != e; ++i) {
3410     bool isLastClause = i + 1 == e;
3411     if (LI.isCatch(i)) {
3412       // A catch clause.
3413       Constant *CatchClause = LI.getClause(i);
3414       Constant *TypeInfo = CatchClause->stripPointerCasts();
3415 
3416       // If we already saw this clause, there is no point in having a second
3417       // copy of it.
3418       if (AlreadyCaught.insert(TypeInfo).second) {
3419         // This catch clause was not already seen.
3420         NewClauses.push_back(CatchClause);
3421       } else {
3422         // Repeated catch clause - drop the redundant copy.
3423         MakeNewInstruction = true;
3424       }
3425 
3426       // If this is a catch-all then there is no point in keeping any following
3427       // clauses or marking the landingpad as having a cleanup.
3428       if (isCatchAll(Personality, TypeInfo)) {
3429         if (!isLastClause)
3430           MakeNewInstruction = true;
3431         CleanupFlag = false;
3432         break;
3433       }
3434     } else {
3435       // A filter clause.  If any of the filter elements were already caught
3436       // then they can be dropped from the filter.  It is tempting to try to
3437       // exploit the filter further by saying that any typeinfo that does not
3438       // occur in the filter can't be caught later (and thus can be dropped).
3439       // However this would be wrong, since typeinfos can match without being
3440       // equal (for example if one represents a C++ class, and the other some
3441       // class derived from it).
3442       assert(LI.isFilter(i) && "Unsupported landingpad clause!");
3443       Constant *FilterClause = LI.getClause(i);
3444       ArrayType *FilterType = cast<ArrayType>(FilterClause->getType());
3445       unsigned NumTypeInfos = FilterType->getNumElements();
3446 
3447       // An empty filter catches everything, so there is no point in keeping any
3448       // following clauses or marking the landingpad as having a cleanup.  By
3449       // dealing with this case here the following code is made a bit simpler.
3450       if (!NumTypeInfos) {
3451         NewClauses.push_back(FilterClause);
3452         if (!isLastClause)
3453           MakeNewInstruction = true;
3454         CleanupFlag = false;
3455         break;
3456       }
3457 
3458       bool MakeNewFilter = false; // If true, make a new filter.
3459       SmallVector<Constant *, 16> NewFilterElts; // New elements.
3460       if (isa<ConstantAggregateZero>(FilterClause)) {
3461         // Not an empty filter - it contains at least one null typeinfo.
3462         assert(NumTypeInfos > 0 && "Should have handled empty filter already!");
3463         Constant *TypeInfo =
3464           Constant::getNullValue(FilterType->getElementType());
3465         // If this typeinfo is a catch-all then the filter can never match.
3466         if (isCatchAll(Personality, TypeInfo)) {
3467           // Throw the filter away.
3468           MakeNewInstruction = true;
3469           continue;
3470         }
3471 
3472         // There is no point in having multiple copies of this typeinfo, so
3473         // discard all but the first copy if there is more than one.
3474         NewFilterElts.push_back(TypeInfo);
3475         if (NumTypeInfos > 1)
3476           MakeNewFilter = true;
3477       } else {
3478         ConstantArray *Filter = cast<ConstantArray>(FilterClause);
3479         SmallPtrSet<Value *, 16> SeenInFilter; // For uniquing the elements.
3480         NewFilterElts.reserve(NumTypeInfos);
3481 
3482         // Remove any filter elements that were already caught or that already
3483         // occurred in the filter.  While there, see if any of the elements are
3484         // catch-alls.  If so, the filter can be discarded.
3485         bool SawCatchAll = false;
3486         for (unsigned j = 0; j != NumTypeInfos; ++j) {
3487           Constant *Elt = Filter->getOperand(j);
3488           Constant *TypeInfo = Elt->stripPointerCasts();
3489           if (isCatchAll(Personality, TypeInfo)) {
3490             // This element is a catch-all.  Bail out, noting this fact.
3491             SawCatchAll = true;
3492             break;
3493           }
3494 
3495           // Even if we've seen a type in a catch clause, we don't want to
3496           // remove it from the filter.  An unexpected type handler may be
3497           // set up for a call site which throws an exception of the same
3498           // type caught.  In order for the exception thrown by the unexpected
3499           // handler to propagate correctly, the filter must be correctly
3500           // described for the call site.
3501           //
3502           // Example:
3503           //
3504           // void unexpected() { throw 1;}
3505           // void foo() throw (int) {
3506           //   std::set_unexpected(unexpected);
3507           //   try {
3508           //     throw 2.0;
3509           //   } catch (int i) {}
3510           // }
3511 
3512           // There is no point in having multiple copies of the same typeinfo in
3513           // a filter, so only add it if we didn't already.
3514           if (SeenInFilter.insert(TypeInfo).second)
3515             NewFilterElts.push_back(cast<Constant>(Elt));
3516         }
3517         // A filter containing a catch-all cannot match anything by definition.
3518         if (SawCatchAll) {
3519           // Throw the filter away.
3520           MakeNewInstruction = true;
3521           continue;
3522         }
3523 
3524         // If we dropped something from the filter, make a new one.
3525         if (NewFilterElts.size() < NumTypeInfos)
3526           MakeNewFilter = true;
3527       }
3528       if (MakeNewFilter) {
3529         FilterType = ArrayType::get(FilterType->getElementType(),
3530                                     NewFilterElts.size());
3531         FilterClause = ConstantArray::get(FilterType, NewFilterElts);
3532         MakeNewInstruction = true;
3533       }
3534 
3535       NewClauses.push_back(FilterClause);
3536 
3537       // If the new filter is empty then it will catch everything so there is
3538       // no point in keeping any following clauses or marking the landingpad
3539       // as having a cleanup.  The case of the original filter being empty was
3540       // already handled above.
3541       if (MakeNewFilter && !NewFilterElts.size()) {
3542         assert(MakeNewInstruction && "New filter but not a new instruction!");
3543         CleanupFlag = false;
3544         break;
3545       }
3546     }
3547   }
3548 
3549   // If several filters occur in a row then reorder them so that the shortest
3550   // filters come first (those with the smallest number of elements).  This is
3551   // advantageous because shorter filters are more likely to match, speeding up
3552   // unwinding, but mostly because it increases the effectiveness of the other
3553   // filter optimizations below.
3554   for (unsigned i = 0, e = NewClauses.size(); i + 1 < e; ) {
3555     unsigned j;
3556     // Find the maximal 'j' s.t. the range [i, j) consists entirely of filters.
3557     for (j = i; j != e; ++j)
3558       if (!isa<ArrayType>(NewClauses[j]->getType()))
3559         break;
3560 
3561     // Check whether the filters are already sorted by length.  We need to know
3562     // if sorting them is actually going to do anything so that we only make a
3563     // new landingpad instruction if it does.
3564     for (unsigned k = i; k + 1 < j; ++k)
3565       if (shorter_filter(NewClauses[k+1], NewClauses[k])) {
3566         // Not sorted, so sort the filters now.  Doing an unstable sort would be
3567         // correct too but reordering filters pointlessly might confuse users.
3568         std::stable_sort(NewClauses.begin() + i, NewClauses.begin() + j,
3569                          shorter_filter);
3570         MakeNewInstruction = true;
3571         break;
3572       }
3573 
3574     // Look for the next batch of filters.
3575     i = j + 1;
3576   }
3577 
3578   // If typeinfos matched if and only if equal, then the elements of a filter L
3579   // that occurs later than a filter F could be replaced by the intersection of
3580   // the elements of F and L.  In reality two typeinfos can match without being
3581   // equal (for example if one represents a C++ class, and the other some class
3582   // derived from it) so it would be wrong to perform this transform in general.
3583   // However the transform is correct and useful if F is a subset of L.  In that
3584   // case L can be replaced by F, and thus removed altogether since repeating a
3585   // filter is pointless.  So here we look at all pairs of filters F and L where
3586   // L follows F in the list of clauses, and remove L if every element of F is
3587   // an element of L.  This can occur when inlining C++ functions with exception
3588   // specifications.
3589   for (unsigned i = 0; i + 1 < NewClauses.size(); ++i) {
3590     // Examine each filter in turn.
3591     Value *Filter = NewClauses[i];
3592     ArrayType *FTy = dyn_cast<ArrayType>(Filter->getType());
3593     if (!FTy)
3594       // Not a filter - skip it.
3595       continue;
3596     unsigned FElts = FTy->getNumElements();
3597     // Examine each filter following this one.  Doing this backwards means that
3598     // we don't have to worry about filters disappearing under us when removed.
3599     for (unsigned j = NewClauses.size() - 1; j != i; --j) {
3600       Value *LFilter = NewClauses[j];
3601       ArrayType *LTy = dyn_cast<ArrayType>(LFilter->getType());
3602       if (!LTy)
3603         // Not a filter - skip it.
3604         continue;
3605       // If Filter is a subset of LFilter, i.e. every element of Filter is also
3606       // an element of LFilter, then discard LFilter.
3607       SmallVectorImpl<Constant *>::iterator J = NewClauses.begin() + j;
3608       // If Filter is empty then it is a subset of LFilter.
3609       if (!FElts) {
3610         // Discard LFilter.
3611         NewClauses.erase(J);
3612         MakeNewInstruction = true;
3613         // Move on to the next filter.
3614         continue;
3615       }
3616       unsigned LElts = LTy->getNumElements();
3617       // If Filter is longer than LFilter then it cannot be a subset of it.
3618       if (FElts > LElts)
3619         // Move on to the next filter.
3620         continue;
3621       // At this point we know that LFilter has at least one element.
3622       if (isa<ConstantAggregateZero>(LFilter)) { // LFilter only contains zeros.
3623         // Filter is a subset of LFilter iff Filter contains only zeros (as we
3624         // already know that Filter is not longer than LFilter).
3625         if (isa<ConstantAggregateZero>(Filter)) {
3626           assert(FElts <= LElts && "Should have handled this case earlier!");
3627           // Discard LFilter.
3628           NewClauses.erase(J);
3629           MakeNewInstruction = true;
3630         }
3631         // Move on to the next filter.
3632         continue;
3633       }
3634       ConstantArray *LArray = cast<ConstantArray>(LFilter);
3635       if (isa<ConstantAggregateZero>(Filter)) { // Filter only contains zeros.
3636         // Since Filter is non-empty and contains only zeros, it is a subset of
3637         // LFilter iff LFilter contains a zero.
3638         assert(FElts > 0 && "Should have eliminated the empty filter earlier!");
3639         for (unsigned l = 0; l != LElts; ++l)
3640           if (LArray->getOperand(l)->isNullValue()) {
3641             // LFilter contains a zero - discard it.
3642             NewClauses.erase(J);
3643             MakeNewInstruction = true;
3644             break;
3645           }
3646         // Move on to the next filter.
3647         continue;
3648       }
3649       // At this point we know that both filters are ConstantArrays.  Loop over
3650       // operands to see whether every element of Filter is also an element of
3651       // LFilter.  Since filters tend to be short this is probably faster than
3652       // using a method that scales nicely.
3653       ConstantArray *FArray = cast<ConstantArray>(Filter);
3654       bool AllFound = true;
3655       for (unsigned f = 0; f != FElts; ++f) {
3656         Value *FTypeInfo = FArray->getOperand(f)->stripPointerCasts();
3657         AllFound = false;
3658         for (unsigned l = 0; l != LElts; ++l) {
3659           Value *LTypeInfo = LArray->getOperand(l)->stripPointerCasts();
3660           if (LTypeInfo == FTypeInfo) {
3661             AllFound = true;
3662             break;
3663           }
3664         }
3665         if (!AllFound)
3666           break;
3667       }
3668       if (AllFound) {
3669         // Discard LFilter.
3670         NewClauses.erase(J);
3671         MakeNewInstruction = true;
3672       }
3673       // Move on to the next filter.
3674     }
3675   }
3676 
3677   // If we changed any of the clauses, replace the old landingpad instruction
3678   // with a new one.
3679   if (MakeNewInstruction) {
3680     LandingPadInst *NLI = LandingPadInst::Create(LI.getType(),
3681                                                  NewClauses.size());
3682     for (unsigned i = 0, e = NewClauses.size(); i != e; ++i)
3683       NLI->addClause(NewClauses[i]);
3684     // A landing pad with no clauses must have the cleanup flag set.  It is
3685     // theoretically possible, though highly unlikely, that we eliminated all
3686     // clauses.  If so, force the cleanup flag to true.
3687     if (NewClauses.empty())
3688       CleanupFlag = true;
3689     NLI->setCleanup(CleanupFlag);
3690     return NLI;
3691   }
3692 
3693   // Even if none of the clauses changed, we may nonetheless have understood
3694   // that the cleanup flag is pointless.  Clear it if so.
3695   if (LI.isCleanup() != CleanupFlag) {
3696     assert(!CleanupFlag && "Adding a cleanup, not removing one?!");
3697     LI.setCleanup(CleanupFlag);
3698     return &LI;
3699   }
3700 
3701   return nullptr;
3702 }
3703 
3704 Value *
3705 InstCombinerImpl::pushFreezeToPreventPoisonFromPropagating(FreezeInst &OrigFI) {
3706   // Try to push freeze through instructions that propagate but don't produce
3707   // poison as far as possible.  If an operand of freeze follows three
3708   // conditions 1) one-use, 2) does not produce poison, and 3) has all but one
3709   // guaranteed-non-poison operands then push the freeze through to the one
3710   // operand that is not guaranteed non-poison.  The actual transform is as
3711   // follows.
3712   //   Op1 = ...                        ; Op1 can be posion
3713   //   Op0 = Inst(Op1, NonPoisonOps...) ; Op0 has only one use and only have
3714   //                                    ; single guaranteed-non-poison operands
3715   //   ... = Freeze(Op0)
3716   // =>
3717   //   Op1 = ...
3718   //   Op1.fr = Freeze(Op1)
3719   //   ... = Inst(Op1.fr, NonPoisonOps...)
3720   auto *OrigOp = OrigFI.getOperand(0);
3721   auto *OrigOpInst = dyn_cast<Instruction>(OrigOp);
3722 
3723   // While we could change the other users of OrigOp to use freeze(OrigOp), that
3724   // potentially reduces their optimization potential, so let's only do this iff
3725   // the OrigOp is only used by the freeze.
3726   if (!OrigOpInst || !OrigOpInst->hasOneUse() || isa<PHINode>(OrigOp))
3727     return nullptr;
3728 
3729   // We can't push the freeze through an instruction which can itself create
3730   // poison.  If the only source of new poison is flags, we can simply
3731   // strip them (since we know the only use is the freeze and nothing can
3732   // benefit from them.)
3733   if (canCreateUndefOrPoison(cast<Operator>(OrigOp), /*ConsiderFlags*/ false))
3734     return nullptr;
3735 
3736   // If operand is guaranteed not to be poison, there is no need to add freeze
3737   // to the operand. So we first find the operand that is not guaranteed to be
3738   // poison.
3739   Use *MaybePoisonOperand = nullptr;
3740   for (Use &U : OrigOpInst->operands()) {
3741     if (isGuaranteedNotToBeUndefOrPoison(U.get()))
3742       continue;
3743     if (!MaybePoisonOperand)
3744       MaybePoisonOperand = &U;
3745     else
3746       return nullptr;
3747   }
3748 
3749   OrigOpInst->dropPoisonGeneratingFlags();
3750 
3751   // If all operands are guaranteed to be non-poison, we can drop freeze.
3752   if (!MaybePoisonOperand)
3753     return OrigOp;
3754 
3755   Builder.SetInsertPoint(OrigOpInst);
3756   auto *FrozenMaybePoisonOperand = Builder.CreateFreeze(
3757       MaybePoisonOperand->get(), MaybePoisonOperand->get()->getName() + ".fr");
3758 
3759   replaceUse(*MaybePoisonOperand, FrozenMaybePoisonOperand);
3760   return OrigOp;
3761 }
3762 
3763 bool InstCombinerImpl::freezeOtherUses(FreezeInst &FI) {
3764   Value *Op = FI.getOperand(0);
3765 
3766   if (isa<Constant>(Op) || Op->hasOneUse())
3767     return false;
3768 
3769   // Move the freeze directly after the definition of its operand, so that
3770   // it dominates the maximum number of uses. Note that it may not dominate
3771   // *all* uses if the operand is an invoke/callbr and the use is in a phi on
3772   // the normal/default destination. This is why the domination check in the
3773   // replacement below is still necessary.
3774   Instruction *MoveBefore = nullptr;
3775   if (isa<Argument>(Op)) {
3776     MoveBefore = &FI.getFunction()->getEntryBlock().front();
3777     while (isa<AllocaInst>(MoveBefore))
3778       MoveBefore = MoveBefore->getNextNode();
3779   } else if (auto *PN = dyn_cast<PHINode>(Op)) {
3780     MoveBefore = PN->getParent()->getFirstNonPHI();
3781   } else if (auto *II = dyn_cast<InvokeInst>(Op)) {
3782     MoveBefore = II->getNormalDest()->getFirstNonPHI();
3783   } else if (auto *CB = dyn_cast<CallBrInst>(Op)) {
3784     MoveBefore = CB->getDefaultDest()->getFirstNonPHI();
3785   } else {
3786     auto *I = cast<Instruction>(Op);
3787     assert(!I->isTerminator() && "Cannot be a terminator");
3788     MoveBefore = I->getNextNode();
3789   }
3790 
3791   bool Changed = false;
3792   if (&FI != MoveBefore) {
3793     FI.moveBefore(MoveBefore);
3794     Changed = true;
3795   }
3796 
3797   Op->replaceUsesWithIf(&FI, [&](Use &U) -> bool {
3798     bool Dominates = DT.dominates(&FI, U);
3799     Changed |= Dominates;
3800     return Dominates;
3801   });
3802 
3803   return Changed;
3804 }
3805 
3806 Instruction *InstCombinerImpl::visitFreeze(FreezeInst &I) {
3807   Value *Op0 = I.getOperand(0);
3808 
3809   if (Value *V = SimplifyFreezeInst(Op0, SQ.getWithInstruction(&I)))
3810     return replaceInstUsesWith(I, V);
3811 
3812   // freeze (phi const, x) --> phi const, (freeze x)
3813   if (auto *PN = dyn_cast<PHINode>(Op0)) {
3814     if (Instruction *NV = foldOpIntoPhi(I, PN))
3815       return NV;
3816   }
3817 
3818   if (Value *NI = pushFreezeToPreventPoisonFromPropagating(I))
3819     return replaceInstUsesWith(I, NI);
3820 
3821   // If I is freeze(undef), check its uses and fold it to a fixed constant.
3822   // - or: pick -1
3823   // - select's condition: if the true value is constant, choose it by making
3824   //                       the condition true.
3825   // - default: pick 0
3826   //
3827   // Note that this transform is intentionally done here rather than
3828   // via an analysis in InstSimplify or at individual user sites. That is
3829   // because we must produce the same value for all uses of the freeze -
3830   // it's the reason "freeze" exists!
3831   //
3832   // TODO: This could use getBinopAbsorber() / getBinopIdentity() to avoid
3833   //       duplicating logic for binops at least.
3834   auto getUndefReplacement = [&I](Type *Ty) {
3835     Constant *BestValue = nullptr;
3836     Constant *NullValue = Constant::getNullValue(Ty);
3837     for (const auto *U : I.users()) {
3838       Constant *C = NullValue;
3839       if (match(U, m_Or(m_Value(), m_Value())))
3840         C = ConstantInt::getAllOnesValue(Ty);
3841       else if (match(U, m_Select(m_Specific(&I), m_Constant(), m_Value())))
3842         C = ConstantInt::getTrue(Ty);
3843 
3844       if (!BestValue)
3845         BestValue = C;
3846       else if (BestValue != C)
3847         BestValue = NullValue;
3848     }
3849     assert(BestValue && "Must have at least one use");
3850     return BestValue;
3851   };
3852 
3853   if (match(Op0, m_Undef()))
3854     return replaceInstUsesWith(I, getUndefReplacement(I.getType()));
3855 
3856   Constant *C;
3857   if (match(Op0, m_Constant(C)) && C->containsUndefOrPoisonElement()) {
3858     Constant *ReplaceC = getUndefReplacement(I.getType()->getScalarType());
3859     return replaceInstUsesWith(I, Constant::replaceUndefsWith(C, ReplaceC));
3860   }
3861 
3862   // Replace uses of Op with freeze(Op).
3863   if (freezeOtherUses(I))
3864     return &I;
3865 
3866   return nullptr;
3867 }
3868 
3869 /// Check for case where the call writes to an otherwise dead alloca.  This
3870 /// shows up for unused out-params in idiomatic C/C++ code.   Note that this
3871 /// helper *only* analyzes the write; doesn't check any other legality aspect.
3872 static bool SoleWriteToDeadLocal(Instruction *I, TargetLibraryInfo &TLI) {
3873   auto *CB = dyn_cast<CallBase>(I);
3874   if (!CB)
3875     // TODO: handle e.g. store to alloca here - only worth doing if we extend
3876     // to allow reload along used path as described below.  Otherwise, this
3877     // is simply a store to a dead allocation which will be removed.
3878     return false;
3879   Optional<MemoryLocation> Dest = MemoryLocation::getForDest(CB, TLI);
3880   if (!Dest)
3881     return false;
3882   auto *AI = dyn_cast<AllocaInst>(getUnderlyingObject(Dest->Ptr));
3883   if (!AI)
3884     // TODO: allow malloc?
3885     return false;
3886   // TODO: allow memory access dominated by move point?  Note that since AI
3887   // could have a reference to itself captured by the call, we would need to
3888   // account for cycles in doing so.
3889   SmallVector<const User *> AllocaUsers;
3890   SmallPtrSet<const User *, 4> Visited;
3891   auto pushUsers = [&](const Instruction &I) {
3892     for (const User *U : I.users()) {
3893       if (Visited.insert(U).second)
3894         AllocaUsers.push_back(U);
3895     }
3896   };
3897   pushUsers(*AI);
3898   while (!AllocaUsers.empty()) {
3899     auto *UserI = cast<Instruction>(AllocaUsers.pop_back_val());
3900     if (isa<BitCastInst>(UserI) || isa<GetElementPtrInst>(UserI) ||
3901         isa<AddrSpaceCastInst>(UserI)) {
3902       pushUsers(*UserI);
3903       continue;
3904     }
3905     if (UserI == CB)
3906       continue;
3907     // TODO: support lifetime.start/end here
3908     return false;
3909   }
3910   return true;
3911 }
3912 
3913 /// Try to move the specified instruction from its current block into the
3914 /// beginning of DestBlock, which can only happen if it's safe to move the
3915 /// instruction past all of the instructions between it and the end of its
3916 /// block.
3917 static bool TryToSinkInstruction(Instruction *I, BasicBlock *DestBlock,
3918                                  TargetLibraryInfo &TLI) {
3919   BasicBlock *SrcBlock = I->getParent();
3920 
3921   // Cannot move control-flow-involving, volatile loads, vaarg, etc.
3922   if (isa<PHINode>(I) || I->isEHPad() || I->mayThrow() || !I->willReturn() ||
3923       I->isTerminator())
3924     return false;
3925 
3926   // Do not sink static or dynamic alloca instructions. Static allocas must
3927   // remain in the entry block, and dynamic allocas must not be sunk in between
3928   // a stacksave / stackrestore pair, which would incorrectly shorten its
3929   // lifetime.
3930   if (isa<AllocaInst>(I))
3931     return false;
3932 
3933   // Do not sink into catchswitch blocks.
3934   if (isa<CatchSwitchInst>(DestBlock->getTerminator()))
3935     return false;
3936 
3937   // Do not sink convergent call instructions.
3938   if (auto *CI = dyn_cast<CallInst>(I)) {
3939     if (CI->isConvergent())
3940       return false;
3941   }
3942 
3943   // Unless we can prove that the memory write isn't visibile except on the
3944   // path we're sinking to, we must bail.
3945   if (I->mayWriteToMemory()) {
3946     if (!SoleWriteToDeadLocal(I, TLI))
3947       return false;
3948   }
3949 
3950   // We can only sink load instructions if there is nothing between the load and
3951   // the end of block that could change the value.
3952   if (I->mayReadFromMemory()) {
3953     // We don't want to do any sophisticated alias analysis, so we only check
3954     // the instructions after I in I's parent block if we try to sink to its
3955     // successor block.
3956     if (DestBlock->getUniquePredecessor() != I->getParent())
3957       return false;
3958     for (BasicBlock::iterator Scan = std::next(I->getIterator()),
3959                               E = I->getParent()->end();
3960          Scan != E; ++Scan)
3961       if (Scan->mayWriteToMemory())
3962         return false;
3963   }
3964 
3965   I->dropDroppableUses([DestBlock](const Use *U) {
3966     if (auto *I = dyn_cast<Instruction>(U->getUser()))
3967       return I->getParent() != DestBlock;
3968     return true;
3969   });
3970   /// FIXME: We could remove droppable uses that are not dominated by
3971   /// the new position.
3972 
3973   BasicBlock::iterator InsertPos = DestBlock->getFirstInsertionPt();
3974   I->moveBefore(&*InsertPos);
3975   ++NumSunkInst;
3976 
3977   // Also sink all related debug uses from the source basic block. Otherwise we
3978   // get debug use before the def. Attempt to salvage debug uses first, to
3979   // maximise the range variables have location for. If we cannot salvage, then
3980   // mark the location undef: we know it was supposed to receive a new location
3981   // here, but that computation has been sunk.
3982   SmallVector<DbgVariableIntrinsic *, 2> DbgUsers;
3983   findDbgUsers(DbgUsers, I);
3984   // Process the sinking DbgUsers in reverse order, as we only want to clone the
3985   // last appearing debug intrinsic for each given variable.
3986   SmallVector<DbgVariableIntrinsic *, 2> DbgUsersToSink;
3987   for (DbgVariableIntrinsic *DVI : DbgUsers)
3988     if (DVI->getParent() == SrcBlock)
3989       DbgUsersToSink.push_back(DVI);
3990   llvm::sort(DbgUsersToSink,
3991              [](auto *A, auto *B) { return B->comesBefore(A); });
3992 
3993   SmallVector<DbgVariableIntrinsic *, 2> DIIClones;
3994   SmallSet<DebugVariable, 4> SunkVariables;
3995   for (auto User : DbgUsersToSink) {
3996     // A dbg.declare instruction should not be cloned, since there can only be
3997     // one per variable fragment. It should be left in the original place
3998     // because the sunk instruction is not an alloca (otherwise we could not be
3999     // here).
4000     if (isa<DbgDeclareInst>(User))
4001       continue;
4002 
4003     DebugVariable DbgUserVariable =
4004         DebugVariable(User->getVariable(), User->getExpression(),
4005                       User->getDebugLoc()->getInlinedAt());
4006 
4007     if (!SunkVariables.insert(DbgUserVariable).second)
4008       continue;
4009 
4010     DIIClones.emplace_back(cast<DbgVariableIntrinsic>(User->clone()));
4011     if (isa<DbgDeclareInst>(User) && isa<CastInst>(I))
4012       DIIClones.back()->replaceVariableLocationOp(I, I->getOperand(0));
4013     LLVM_DEBUG(dbgs() << "CLONE: " << *DIIClones.back() << '\n');
4014   }
4015 
4016   // Perform salvaging without the clones, then sink the clones.
4017   if (!DIIClones.empty()) {
4018     salvageDebugInfoForDbgValues(*I, DbgUsers);
4019     // The clones are in reverse order of original appearance, reverse again to
4020     // maintain the original order.
4021     for (auto &DIIClone : llvm::reverse(DIIClones)) {
4022       DIIClone->insertBefore(&*InsertPos);
4023       LLVM_DEBUG(dbgs() << "SINK: " << *DIIClone << '\n');
4024     }
4025   }
4026 
4027   return true;
4028 }
4029 
4030 bool InstCombinerImpl::run() {
4031   while (!Worklist.isEmpty()) {
4032     // Walk deferred instructions in reverse order, and push them to the
4033     // worklist, which means they'll end up popped from the worklist in-order.
4034     while (Instruction *I = Worklist.popDeferred()) {
4035       // Check to see if we can DCE the instruction. We do this already here to
4036       // reduce the number of uses and thus allow other folds to trigger.
4037       // Note that eraseInstFromFunction() may push additional instructions on
4038       // the deferred worklist, so this will DCE whole instruction chains.
4039       if (isInstructionTriviallyDead(I, &TLI)) {
4040         eraseInstFromFunction(*I);
4041         ++NumDeadInst;
4042         continue;
4043       }
4044 
4045       Worklist.push(I);
4046     }
4047 
4048     Instruction *I = Worklist.removeOne();
4049     if (I == nullptr) continue;  // skip null values.
4050 
4051     // Check to see if we can DCE the instruction.
4052     if (isInstructionTriviallyDead(I, &TLI)) {
4053       eraseInstFromFunction(*I);
4054       ++NumDeadInst;
4055       continue;
4056     }
4057 
4058     if (!DebugCounter::shouldExecute(VisitCounter))
4059       continue;
4060 
4061     // Instruction isn't dead, see if we can constant propagate it.
4062     if (!I->use_empty() &&
4063         (I->getNumOperands() == 0 || isa<Constant>(I->getOperand(0)))) {
4064       if (Constant *C = ConstantFoldInstruction(I, DL, &TLI)) {
4065         LLVM_DEBUG(dbgs() << "IC: ConstFold to: " << *C << " from: " << *I
4066                           << '\n');
4067 
4068         // Add operands to the worklist.
4069         replaceInstUsesWith(*I, C);
4070         ++NumConstProp;
4071         if (isInstructionTriviallyDead(I, &TLI))
4072           eraseInstFromFunction(*I);
4073         MadeIRChange = true;
4074         continue;
4075       }
4076     }
4077 
4078     // See if we can trivially sink this instruction to its user if we can
4079     // prove that the successor is not executed more frequently than our block.
4080     // Return the UserBlock if successful.
4081     auto getOptionalSinkBlockForInst =
4082         [this](Instruction *I) -> Optional<BasicBlock *> {
4083       if (!EnableCodeSinking)
4084         return None;
4085 
4086       BasicBlock *BB = I->getParent();
4087       BasicBlock *UserParent = nullptr;
4088       unsigned NumUsers = 0;
4089 
4090       for (auto *U : I->users()) {
4091         if (U->isDroppable())
4092           continue;
4093         if (NumUsers > MaxSinkNumUsers)
4094           return None;
4095 
4096         Instruction *UserInst = cast<Instruction>(U);
4097         // Special handling for Phi nodes - get the block the use occurs in.
4098         if (PHINode *PN = dyn_cast<PHINode>(UserInst)) {
4099           for (unsigned i = 0; i < PN->getNumIncomingValues(); i++) {
4100             if (PN->getIncomingValue(i) == I) {
4101               // Bail out if we have uses in different blocks. We don't do any
4102               // sophisticated analysis (i.e finding NearestCommonDominator of
4103               // these use blocks).
4104               if (UserParent && UserParent != PN->getIncomingBlock(i))
4105                 return None;
4106               UserParent = PN->getIncomingBlock(i);
4107             }
4108           }
4109           assert(UserParent && "expected to find user block!");
4110         } else {
4111           if (UserParent && UserParent != UserInst->getParent())
4112             return None;
4113           UserParent = UserInst->getParent();
4114         }
4115 
4116         // Make sure these checks are done only once, naturally we do the checks
4117         // the first time we get the userparent, this will save compile time.
4118         if (NumUsers == 0) {
4119           // Try sinking to another block. If that block is unreachable, then do
4120           // not bother. SimplifyCFG should handle it.
4121           if (UserParent == BB || !DT.isReachableFromEntry(UserParent))
4122             return None;
4123 
4124           auto *Term = UserParent->getTerminator();
4125           // See if the user is one of our successors that has only one
4126           // predecessor, so that we don't have to split the critical edge.
4127           // Another option where we can sink is a block that ends with a
4128           // terminator that does not pass control to other block (such as
4129           // return or unreachable or resume). In this case:
4130           //   - I dominates the User (by SSA form);
4131           //   - the User will be executed at most once.
4132           // So sinking I down to User is always profitable or neutral.
4133           if (UserParent->getUniquePredecessor() != BB && !succ_empty(Term))
4134             return None;
4135 
4136           assert(DT.dominates(BB, UserParent) && "Dominance relation broken?");
4137         }
4138 
4139         NumUsers++;
4140       }
4141 
4142       // No user or only has droppable users.
4143       if (!UserParent)
4144         return None;
4145 
4146       return UserParent;
4147     };
4148 
4149     auto OptBB = getOptionalSinkBlockForInst(I);
4150     if (OptBB) {
4151       auto *UserParent = *OptBB;
4152       // Okay, the CFG is simple enough, try to sink this instruction.
4153       if (TryToSinkInstruction(I, UserParent, TLI)) {
4154         LLVM_DEBUG(dbgs() << "IC: Sink: " << *I << '\n');
4155         MadeIRChange = true;
4156         // We'll add uses of the sunk instruction below, but since
4157         // sinking can expose opportunities for it's *operands* add
4158         // them to the worklist
4159         for (Use &U : I->operands())
4160           if (Instruction *OpI = dyn_cast<Instruction>(U.get()))
4161             Worklist.push(OpI);
4162       }
4163     }
4164 
4165     // Now that we have an instruction, try combining it to simplify it.
4166     Builder.SetInsertPoint(I);
4167     Builder.CollectMetadataToCopy(
4168         I, {LLVMContext::MD_dbg, LLVMContext::MD_annotation});
4169 
4170 #ifndef NDEBUG
4171     std::string OrigI;
4172 #endif
4173     LLVM_DEBUG(raw_string_ostream SS(OrigI); I->print(SS); OrigI = SS.str(););
4174     LLVM_DEBUG(dbgs() << "IC: Visiting: " << OrigI << '\n');
4175 
4176     if (Instruction *Result = visit(*I)) {
4177       ++NumCombined;
4178       // Should we replace the old instruction with a new one?
4179       if (Result != I) {
4180         LLVM_DEBUG(dbgs() << "IC: Old = " << *I << '\n'
4181                           << "    New = " << *Result << '\n');
4182 
4183         Result->copyMetadata(*I,
4184                              {LLVMContext::MD_dbg, LLVMContext::MD_annotation});
4185         // Everything uses the new instruction now.
4186         I->replaceAllUsesWith(Result);
4187 
4188         // Move the name to the new instruction first.
4189         Result->takeName(I);
4190 
4191         // Insert the new instruction into the basic block...
4192         BasicBlock *InstParent = I->getParent();
4193         BasicBlock::iterator InsertPos = I->getIterator();
4194 
4195         // Are we replace a PHI with something that isn't a PHI, or vice versa?
4196         if (isa<PHINode>(Result) != isa<PHINode>(I)) {
4197           // We need to fix up the insertion point.
4198           if (isa<PHINode>(I)) // PHI -> Non-PHI
4199             InsertPos = InstParent->getFirstInsertionPt();
4200           else // Non-PHI -> PHI
4201             InsertPos = InstParent->getFirstNonPHI()->getIterator();
4202         }
4203 
4204         InstParent->getInstList().insert(InsertPos, Result);
4205 
4206         // Push the new instruction and any users onto the worklist.
4207         Worklist.pushUsersToWorkList(*Result);
4208         Worklist.push(Result);
4209 
4210         eraseInstFromFunction(*I);
4211       } else {
4212         LLVM_DEBUG(dbgs() << "IC: Mod = " << OrigI << '\n'
4213                           << "    New = " << *I << '\n');
4214 
4215         // If the instruction was modified, it's possible that it is now dead.
4216         // if so, remove it.
4217         if (isInstructionTriviallyDead(I, &TLI)) {
4218           eraseInstFromFunction(*I);
4219         } else {
4220           Worklist.pushUsersToWorkList(*I);
4221           Worklist.push(I);
4222         }
4223       }
4224       MadeIRChange = true;
4225     }
4226   }
4227 
4228   Worklist.zap();
4229   return MadeIRChange;
4230 }
4231 
4232 // Track the scopes used by !alias.scope and !noalias. In a function, a
4233 // @llvm.experimental.noalias.scope.decl is only useful if that scope is used
4234 // by both sets. If not, the declaration of the scope can be safely omitted.
4235 // The MDNode of the scope can be omitted as well for the instructions that are
4236 // part of this function. We do not do that at this point, as this might become
4237 // too time consuming to do.
4238 class AliasScopeTracker {
4239   SmallPtrSet<const MDNode *, 8> UsedAliasScopesAndLists;
4240   SmallPtrSet<const MDNode *, 8> UsedNoAliasScopesAndLists;
4241 
4242 public:
4243   void analyse(Instruction *I) {
4244     // This seems to be faster than checking 'mayReadOrWriteMemory()'.
4245     if (!I->hasMetadataOtherThanDebugLoc())
4246       return;
4247 
4248     auto Track = [](Metadata *ScopeList, auto &Container) {
4249       const auto *MDScopeList = dyn_cast_or_null<MDNode>(ScopeList);
4250       if (!MDScopeList || !Container.insert(MDScopeList).second)
4251         return;
4252       for (auto &MDOperand : MDScopeList->operands())
4253         if (auto *MDScope = dyn_cast<MDNode>(MDOperand))
4254           Container.insert(MDScope);
4255     };
4256 
4257     Track(I->getMetadata(LLVMContext::MD_alias_scope), UsedAliasScopesAndLists);
4258     Track(I->getMetadata(LLVMContext::MD_noalias), UsedNoAliasScopesAndLists);
4259   }
4260 
4261   bool isNoAliasScopeDeclDead(Instruction *Inst) {
4262     NoAliasScopeDeclInst *Decl = dyn_cast<NoAliasScopeDeclInst>(Inst);
4263     if (!Decl)
4264       return false;
4265 
4266     assert(Decl->use_empty() &&
4267            "llvm.experimental.noalias.scope.decl in use ?");
4268     const MDNode *MDSL = Decl->getScopeList();
4269     assert(MDSL->getNumOperands() == 1 &&
4270            "llvm.experimental.noalias.scope should refer to a single scope");
4271     auto &MDOperand = MDSL->getOperand(0);
4272     if (auto *MD = dyn_cast<MDNode>(MDOperand))
4273       return !UsedAliasScopesAndLists.contains(MD) ||
4274              !UsedNoAliasScopesAndLists.contains(MD);
4275 
4276     // Not an MDNode ? throw away.
4277     return true;
4278   }
4279 };
4280 
4281 /// Populate the IC worklist from a function, by walking it in depth-first
4282 /// order and adding all reachable code to the worklist.
4283 ///
4284 /// This has a couple of tricks to make the code faster and more powerful.  In
4285 /// particular, we constant fold and DCE instructions as we go, to avoid adding
4286 /// them to the worklist (this significantly speeds up instcombine on code where
4287 /// many instructions are dead or constant).  Additionally, if we find a branch
4288 /// whose condition is a known constant, we only visit the reachable successors.
4289 static bool prepareICWorklistFromFunction(Function &F, const DataLayout &DL,
4290                                           const TargetLibraryInfo *TLI,
4291                                           InstructionWorklist &ICWorklist) {
4292   bool MadeIRChange = false;
4293   SmallPtrSet<BasicBlock *, 32> Visited;
4294   SmallVector<BasicBlock*, 256> Worklist;
4295   Worklist.push_back(&F.front());
4296 
4297   SmallVector<Instruction *, 128> InstrsForInstructionWorklist;
4298   DenseMap<Constant *, Constant *> FoldedConstants;
4299   AliasScopeTracker SeenAliasScopes;
4300 
4301   do {
4302     BasicBlock *BB = Worklist.pop_back_val();
4303 
4304     // We have now visited this block!  If we've already been here, ignore it.
4305     if (!Visited.insert(BB).second)
4306       continue;
4307 
4308     for (Instruction &Inst : llvm::make_early_inc_range(*BB)) {
4309       // ConstantProp instruction if trivially constant.
4310       if (!Inst.use_empty() &&
4311           (Inst.getNumOperands() == 0 || isa<Constant>(Inst.getOperand(0))))
4312         if (Constant *C = ConstantFoldInstruction(&Inst, DL, TLI)) {
4313           LLVM_DEBUG(dbgs() << "IC: ConstFold to: " << *C << " from: " << Inst
4314                             << '\n');
4315           Inst.replaceAllUsesWith(C);
4316           ++NumConstProp;
4317           if (isInstructionTriviallyDead(&Inst, TLI))
4318             Inst.eraseFromParent();
4319           MadeIRChange = true;
4320           continue;
4321         }
4322 
4323       // See if we can constant fold its operands.
4324       for (Use &U : Inst.operands()) {
4325         if (!isa<ConstantVector>(U) && !isa<ConstantExpr>(U))
4326           continue;
4327 
4328         auto *C = cast<Constant>(U);
4329         Constant *&FoldRes = FoldedConstants[C];
4330         if (!FoldRes)
4331           FoldRes = ConstantFoldConstant(C, DL, TLI);
4332 
4333         if (FoldRes != C) {
4334           LLVM_DEBUG(dbgs() << "IC: ConstFold operand of: " << Inst
4335                             << "\n    Old = " << *C
4336                             << "\n    New = " << *FoldRes << '\n');
4337           U = FoldRes;
4338           MadeIRChange = true;
4339         }
4340       }
4341 
4342       // Skip processing debug and pseudo intrinsics in InstCombine. Processing
4343       // these call instructions consumes non-trivial amount of time and
4344       // provides no value for the optimization.
4345       if (!Inst.isDebugOrPseudoInst()) {
4346         InstrsForInstructionWorklist.push_back(&Inst);
4347         SeenAliasScopes.analyse(&Inst);
4348       }
4349     }
4350 
4351     // Recursively visit successors.  If this is a branch or switch on a
4352     // constant, only visit the reachable successor.
4353     Instruction *TI = BB->getTerminator();
4354     if (BranchInst *BI = dyn_cast<BranchInst>(TI)) {
4355       if (BI->isConditional() && isa<ConstantInt>(BI->getCondition())) {
4356         bool CondVal = cast<ConstantInt>(BI->getCondition())->getZExtValue();
4357         BasicBlock *ReachableBB = BI->getSuccessor(!CondVal);
4358         Worklist.push_back(ReachableBB);
4359         continue;
4360       }
4361     } else if (SwitchInst *SI = dyn_cast<SwitchInst>(TI)) {
4362       if (ConstantInt *Cond = dyn_cast<ConstantInt>(SI->getCondition())) {
4363         Worklist.push_back(SI->findCaseValue(Cond)->getCaseSuccessor());
4364         continue;
4365       }
4366     }
4367 
4368     append_range(Worklist, successors(TI));
4369   } while (!Worklist.empty());
4370 
4371   // Remove instructions inside unreachable blocks. This prevents the
4372   // instcombine code from having to deal with some bad special cases, and
4373   // reduces use counts of instructions.
4374   for (BasicBlock &BB : F) {
4375     if (Visited.count(&BB))
4376       continue;
4377 
4378     unsigned NumDeadInstInBB;
4379     unsigned NumDeadDbgInstInBB;
4380     std::tie(NumDeadInstInBB, NumDeadDbgInstInBB) =
4381         removeAllNonTerminatorAndEHPadInstructions(&BB);
4382 
4383     MadeIRChange |= NumDeadInstInBB + NumDeadDbgInstInBB > 0;
4384     NumDeadInst += NumDeadInstInBB;
4385   }
4386 
4387   // Once we've found all of the instructions to add to instcombine's worklist,
4388   // add them in reverse order.  This way instcombine will visit from the top
4389   // of the function down.  This jives well with the way that it adds all uses
4390   // of instructions to the worklist after doing a transformation, thus avoiding
4391   // some N^2 behavior in pathological cases.
4392   ICWorklist.reserve(InstrsForInstructionWorklist.size());
4393   for (Instruction *Inst : reverse(InstrsForInstructionWorklist)) {
4394     // DCE instruction if trivially dead. As we iterate in reverse program
4395     // order here, we will clean up whole chains of dead instructions.
4396     if (isInstructionTriviallyDead(Inst, TLI) ||
4397         SeenAliasScopes.isNoAliasScopeDeclDead(Inst)) {
4398       ++NumDeadInst;
4399       LLVM_DEBUG(dbgs() << "IC: DCE: " << *Inst << '\n');
4400       salvageDebugInfo(*Inst);
4401       Inst->eraseFromParent();
4402       MadeIRChange = true;
4403       continue;
4404     }
4405 
4406     ICWorklist.push(Inst);
4407   }
4408 
4409   return MadeIRChange;
4410 }
4411 
4412 static bool combineInstructionsOverFunction(
4413     Function &F, InstructionWorklist &Worklist, AliasAnalysis *AA,
4414     AssumptionCache &AC, TargetLibraryInfo &TLI, TargetTransformInfo &TTI,
4415     DominatorTree &DT, OptimizationRemarkEmitter &ORE, BlockFrequencyInfo *BFI,
4416     ProfileSummaryInfo *PSI, unsigned MaxIterations, LoopInfo *LI) {
4417   auto &DL = F.getParent()->getDataLayout();
4418   MaxIterations = std::min(MaxIterations, LimitMaxIterations.getValue());
4419 
4420   /// Builder - This is an IRBuilder that automatically inserts new
4421   /// instructions into the worklist when they are created.
4422   IRBuilder<TargetFolder, IRBuilderCallbackInserter> Builder(
4423       F.getContext(), TargetFolder(DL),
4424       IRBuilderCallbackInserter([&Worklist, &AC](Instruction *I) {
4425         Worklist.add(I);
4426         if (auto *Assume = dyn_cast<AssumeInst>(I))
4427           AC.registerAssumption(Assume);
4428       }));
4429 
4430   // Lower dbg.declare intrinsics otherwise their value may be clobbered
4431   // by instcombiner.
4432   bool MadeIRChange = false;
4433   if (ShouldLowerDbgDeclare)
4434     MadeIRChange = LowerDbgDeclare(F);
4435 
4436   // Iterate while there is work to do.
4437   unsigned Iteration = 0;
4438   while (true) {
4439     ++NumWorklistIterations;
4440     ++Iteration;
4441 
4442     if (Iteration > InfiniteLoopDetectionThreshold) {
4443       report_fatal_error(
4444           "Instruction Combining seems stuck in an infinite loop after " +
4445           Twine(InfiniteLoopDetectionThreshold) + " iterations.");
4446     }
4447 
4448     if (Iteration > MaxIterations) {
4449       LLVM_DEBUG(dbgs() << "\n\n[IC] Iteration limit #" << MaxIterations
4450                         << " on " << F.getName()
4451                         << " reached; stopping before reaching a fixpoint\n");
4452       break;
4453     }
4454 
4455     LLVM_DEBUG(dbgs() << "\n\nINSTCOMBINE ITERATION #" << Iteration << " on "
4456                       << F.getName() << "\n");
4457 
4458     MadeIRChange |= prepareICWorklistFromFunction(F, DL, &TLI, Worklist);
4459 
4460     InstCombinerImpl IC(Worklist, Builder, F.hasMinSize(), AA, AC, TLI, TTI, DT,
4461                         ORE, BFI, PSI, DL, LI);
4462     IC.MaxArraySizeForCombine = MaxArraySize;
4463 
4464     if (!IC.run())
4465       break;
4466 
4467     MadeIRChange = true;
4468   }
4469 
4470   return MadeIRChange;
4471 }
4472 
4473 InstCombinePass::InstCombinePass() : MaxIterations(LimitMaxIterations) {}
4474 
4475 InstCombinePass::InstCombinePass(unsigned MaxIterations)
4476     : MaxIterations(MaxIterations) {}
4477 
4478 PreservedAnalyses InstCombinePass::run(Function &F,
4479                                        FunctionAnalysisManager &AM) {
4480   auto &AC = AM.getResult<AssumptionAnalysis>(F);
4481   auto &DT = AM.getResult<DominatorTreeAnalysis>(F);
4482   auto &TLI = AM.getResult<TargetLibraryAnalysis>(F);
4483   auto &ORE = AM.getResult<OptimizationRemarkEmitterAnalysis>(F);
4484   auto &TTI = AM.getResult<TargetIRAnalysis>(F);
4485 
4486   auto *LI = AM.getCachedResult<LoopAnalysis>(F);
4487 
4488   auto *AA = &AM.getResult<AAManager>(F);
4489   auto &MAMProxy = AM.getResult<ModuleAnalysisManagerFunctionProxy>(F);
4490   ProfileSummaryInfo *PSI =
4491       MAMProxy.getCachedResult<ProfileSummaryAnalysis>(*F.getParent());
4492   auto *BFI = (PSI && PSI->hasProfileSummary()) ?
4493       &AM.getResult<BlockFrequencyAnalysis>(F) : nullptr;
4494 
4495   if (!combineInstructionsOverFunction(F, Worklist, AA, AC, TLI, TTI, DT, ORE,
4496                                        BFI, PSI, MaxIterations, LI))
4497     // No changes, all analyses are preserved.
4498     return PreservedAnalyses::all();
4499 
4500   // Mark all the analyses that instcombine updates as preserved.
4501   PreservedAnalyses PA;
4502   PA.preserveSet<CFGAnalyses>();
4503   return PA;
4504 }
4505 
4506 void InstructionCombiningPass::getAnalysisUsage(AnalysisUsage &AU) const {
4507   AU.setPreservesCFG();
4508   AU.addRequired<AAResultsWrapperPass>();
4509   AU.addRequired<AssumptionCacheTracker>();
4510   AU.addRequired<TargetLibraryInfoWrapperPass>();
4511   AU.addRequired<TargetTransformInfoWrapperPass>();
4512   AU.addRequired<DominatorTreeWrapperPass>();
4513   AU.addRequired<OptimizationRemarkEmitterWrapperPass>();
4514   AU.addPreserved<DominatorTreeWrapperPass>();
4515   AU.addPreserved<AAResultsWrapperPass>();
4516   AU.addPreserved<BasicAAWrapperPass>();
4517   AU.addPreserved<GlobalsAAWrapperPass>();
4518   AU.addRequired<ProfileSummaryInfoWrapperPass>();
4519   LazyBlockFrequencyInfoPass::getLazyBFIAnalysisUsage(AU);
4520 }
4521 
4522 bool InstructionCombiningPass::runOnFunction(Function &F) {
4523   if (skipFunction(F))
4524     return false;
4525 
4526   // Required analyses.
4527   auto AA = &getAnalysis<AAResultsWrapperPass>().getAAResults();
4528   auto &AC = getAnalysis<AssumptionCacheTracker>().getAssumptionCache(F);
4529   auto &TLI = getAnalysis<TargetLibraryInfoWrapperPass>().getTLI(F);
4530   auto &TTI = getAnalysis<TargetTransformInfoWrapperPass>().getTTI(F);
4531   auto &DT = getAnalysis<DominatorTreeWrapperPass>().getDomTree();
4532   auto &ORE = getAnalysis<OptimizationRemarkEmitterWrapperPass>().getORE();
4533 
4534   // Optional analyses.
4535   auto *LIWP = getAnalysisIfAvailable<LoopInfoWrapperPass>();
4536   auto *LI = LIWP ? &LIWP->getLoopInfo() : nullptr;
4537   ProfileSummaryInfo *PSI =
4538       &getAnalysis<ProfileSummaryInfoWrapperPass>().getPSI();
4539   BlockFrequencyInfo *BFI =
4540       (PSI && PSI->hasProfileSummary()) ?
4541       &getAnalysis<LazyBlockFrequencyInfoPass>().getBFI() :
4542       nullptr;
4543 
4544   return combineInstructionsOverFunction(F, Worklist, AA, AC, TLI, TTI, DT, ORE,
4545                                          BFI, PSI, MaxIterations, LI);
4546 }
4547 
4548 char InstructionCombiningPass::ID = 0;
4549 
4550 InstructionCombiningPass::InstructionCombiningPass()
4551     : FunctionPass(ID), MaxIterations(InstCombineDefaultMaxIterations) {
4552   initializeInstructionCombiningPassPass(*PassRegistry::getPassRegistry());
4553 }
4554 
4555 InstructionCombiningPass::InstructionCombiningPass(unsigned MaxIterations)
4556     : FunctionPass(ID), MaxIterations(MaxIterations) {
4557   initializeInstructionCombiningPassPass(*PassRegistry::getPassRegistry());
4558 }
4559 
4560 INITIALIZE_PASS_BEGIN(InstructionCombiningPass, "instcombine",
4561                       "Combine redundant instructions", false, false)
4562 INITIALIZE_PASS_DEPENDENCY(AssumptionCacheTracker)
4563 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass)
4564 INITIALIZE_PASS_DEPENDENCY(TargetTransformInfoWrapperPass)
4565 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
4566 INITIALIZE_PASS_DEPENDENCY(AAResultsWrapperPass)
4567 INITIALIZE_PASS_DEPENDENCY(GlobalsAAWrapperPass)
4568 INITIALIZE_PASS_DEPENDENCY(OptimizationRemarkEmitterWrapperPass)
4569 INITIALIZE_PASS_DEPENDENCY(LazyBlockFrequencyInfoPass)
4570 INITIALIZE_PASS_DEPENDENCY(ProfileSummaryInfoWrapperPass)
4571 INITIALIZE_PASS_END(InstructionCombiningPass, "instcombine",
4572                     "Combine redundant instructions", false, false)
4573 
4574 // Initialization Routines
4575 void llvm::initializeInstCombine(PassRegistry &Registry) {
4576   initializeInstructionCombiningPassPass(Registry);
4577 }
4578 
4579 void LLVMInitializeInstCombine(LLVMPassRegistryRef R) {
4580   initializeInstructionCombiningPassPass(*unwrap(R));
4581 }
4582 
4583 FunctionPass *llvm::createInstructionCombiningPass() {
4584   return new InstructionCombiningPass();
4585 }
4586 
4587 FunctionPass *llvm::createInstructionCombiningPass(unsigned MaxIterations) {
4588   return new InstructionCombiningPass(MaxIterations);
4589 }
4590 
4591 void LLVMAddInstructionCombiningPass(LLVMPassManagerRef PM) {
4592   unwrap(PM)->add(createInstructionCombiningPass());
4593 }
4594