1 //===- InstCombineAndOrXor.cpp --------------------------------------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file implements the visitAnd, visitOr, and visitXor functions.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "InstCombineInternal.h"
14 #include "llvm/Analysis/CmpInstAnalysis.h"
15 #include "llvm/Analysis/InstructionSimplify.h"
16 #include "llvm/IR/ConstantRange.h"
17 #include "llvm/IR/Intrinsics.h"
18 #include "llvm/IR/PatternMatch.h"
19 #include "llvm/Transforms/InstCombine/InstCombiner.h"
20 #include "llvm/Transforms/Utils/Local.h"
21 
22 using namespace llvm;
23 using namespace PatternMatch;
24 
25 #define DEBUG_TYPE "instcombine"
26 
27 /// This is the complement of getICmpCode, which turns an opcode and two
28 /// operands into either a constant true or false, or a brand new ICmp
29 /// instruction. The sign is passed in to determine which kind of predicate to
30 /// use in the new icmp instruction.
31 static Value *getNewICmpValue(unsigned Code, bool Sign, Value *LHS, Value *RHS,
32                               InstCombiner::BuilderTy &Builder) {
33   ICmpInst::Predicate NewPred;
34   if (Constant *TorF = getPredForICmpCode(Code, Sign, LHS->getType(), NewPred))
35     return TorF;
36   return Builder.CreateICmp(NewPred, LHS, RHS);
37 }
38 
39 /// This is the complement of getFCmpCode, which turns an opcode and two
40 /// operands into either a FCmp instruction, or a true/false constant.
41 static Value *getFCmpValue(unsigned Code, Value *LHS, Value *RHS,
42                            InstCombiner::BuilderTy &Builder) {
43   FCmpInst::Predicate NewPred;
44   if (Constant *TorF = getPredForFCmpCode(Code, LHS->getType(), NewPred))
45     return TorF;
46   return Builder.CreateFCmp(NewPred, LHS, RHS);
47 }
48 
49 /// Transform BITWISE_OP(BSWAP(A),BSWAP(B)) or
50 /// BITWISE_OP(BSWAP(A), Constant) to BSWAP(BITWISE_OP(A, B))
51 /// \param I Binary operator to transform.
52 /// \return Pointer to node that must replace the original binary operator, or
53 ///         null pointer if no transformation was made.
54 static Value *SimplifyBSwap(BinaryOperator &I,
55                             InstCombiner::BuilderTy &Builder) {
56   assert(I.isBitwiseLogicOp() && "Unexpected opcode for bswap simplifying");
57 
58   Value *OldLHS = I.getOperand(0);
59   Value *OldRHS = I.getOperand(1);
60 
61   Value *NewLHS;
62   if (!match(OldLHS, m_BSwap(m_Value(NewLHS))))
63     return nullptr;
64 
65   Value *NewRHS;
66   const APInt *C;
67 
68   if (match(OldRHS, m_BSwap(m_Value(NewRHS)))) {
69     // OP( BSWAP(x), BSWAP(y) ) -> BSWAP( OP(x, y) )
70     if (!OldLHS->hasOneUse() && !OldRHS->hasOneUse())
71       return nullptr;
72     // NewRHS initialized by the matcher.
73   } else if (match(OldRHS, m_APInt(C))) {
74     // OP( BSWAP(x), CONSTANT ) -> BSWAP( OP(x, BSWAP(CONSTANT) ) )
75     if (!OldLHS->hasOneUse())
76       return nullptr;
77     NewRHS = ConstantInt::get(I.getType(), C->byteSwap());
78   } else
79     return nullptr;
80 
81   Value *BinOp = Builder.CreateBinOp(I.getOpcode(), NewLHS, NewRHS);
82   Function *F = Intrinsic::getDeclaration(I.getModule(), Intrinsic::bswap,
83                                           I.getType());
84   return Builder.CreateCall(F, BinOp);
85 }
86 
87 /// Emit a computation of: (V >= Lo && V < Hi) if Inside is true, otherwise
88 /// (V < Lo || V >= Hi). This method expects that Lo < Hi. IsSigned indicates
89 /// whether to treat V, Lo, and Hi as signed or not.
90 Value *InstCombinerImpl::insertRangeTest(Value *V, const APInt &Lo,
91                                          const APInt &Hi, bool isSigned,
92                                          bool Inside) {
93   assert((isSigned ? Lo.slt(Hi) : Lo.ult(Hi)) &&
94          "Lo is not < Hi in range emission code!");
95 
96   Type *Ty = V->getType();
97 
98   // V >= Min && V <  Hi --> V <  Hi
99   // V <  Min || V >= Hi --> V >= Hi
100   ICmpInst::Predicate Pred = Inside ? ICmpInst::ICMP_ULT : ICmpInst::ICMP_UGE;
101   if (isSigned ? Lo.isMinSignedValue() : Lo.isMinValue()) {
102     Pred = isSigned ? ICmpInst::getSignedPredicate(Pred) : Pred;
103     return Builder.CreateICmp(Pred, V, ConstantInt::get(Ty, Hi));
104   }
105 
106   // V >= Lo && V <  Hi --> V - Lo u<  Hi - Lo
107   // V <  Lo || V >= Hi --> V - Lo u>= Hi - Lo
108   Value *VMinusLo =
109       Builder.CreateSub(V, ConstantInt::get(Ty, Lo), V->getName() + ".off");
110   Constant *HiMinusLo = ConstantInt::get(Ty, Hi - Lo);
111   return Builder.CreateICmp(Pred, VMinusLo, HiMinusLo);
112 }
113 
114 /// Classify (icmp eq (A & B), C) and (icmp ne (A & B), C) as matching patterns
115 /// that can be simplified.
116 /// One of A and B is considered the mask. The other is the value. This is
117 /// described as the "AMask" or "BMask" part of the enum. If the enum contains
118 /// only "Mask", then both A and B can be considered masks. If A is the mask,
119 /// then it was proven that (A & C) == C. This is trivial if C == A or C == 0.
120 /// If both A and C are constants, this proof is also easy.
121 /// For the following explanations, we assume that A is the mask.
122 ///
123 /// "AllOnes" declares that the comparison is true only if (A & B) == A or all
124 /// bits of A are set in B.
125 ///   Example: (icmp eq (A & 3), 3) -> AMask_AllOnes
126 ///
127 /// "AllZeros" declares that the comparison is true only if (A & B) == 0 or all
128 /// bits of A are cleared in B.
129 ///   Example: (icmp eq (A & 3), 0) -> Mask_AllZeroes
130 ///
131 /// "Mixed" declares that (A & B) == C and C might or might not contain any
132 /// number of one bits and zero bits.
133 ///   Example: (icmp eq (A & 3), 1) -> AMask_Mixed
134 ///
135 /// "Not" means that in above descriptions "==" should be replaced by "!=".
136 ///   Example: (icmp ne (A & 3), 3) -> AMask_NotAllOnes
137 ///
138 /// If the mask A contains a single bit, then the following is equivalent:
139 ///    (icmp eq (A & B), A) equals (icmp ne (A & B), 0)
140 ///    (icmp ne (A & B), A) equals (icmp eq (A & B), 0)
141 enum MaskedICmpType {
142   AMask_AllOnes           =     1,
143   AMask_NotAllOnes        =     2,
144   BMask_AllOnes           =     4,
145   BMask_NotAllOnes        =     8,
146   Mask_AllZeros           =    16,
147   Mask_NotAllZeros        =    32,
148   AMask_Mixed             =    64,
149   AMask_NotMixed          =   128,
150   BMask_Mixed             =   256,
151   BMask_NotMixed          =   512
152 };
153 
154 /// Return the set of patterns (from MaskedICmpType) that (icmp SCC (A & B), C)
155 /// satisfies.
156 static unsigned getMaskedICmpType(Value *A, Value *B, Value *C,
157                                   ICmpInst::Predicate Pred) {
158   const APInt *ConstA = nullptr, *ConstB = nullptr, *ConstC = nullptr;
159   match(A, m_APInt(ConstA));
160   match(B, m_APInt(ConstB));
161   match(C, m_APInt(ConstC));
162   bool IsEq = (Pred == ICmpInst::ICMP_EQ);
163   bool IsAPow2 = ConstA && ConstA->isPowerOf2();
164   bool IsBPow2 = ConstB && ConstB->isPowerOf2();
165   unsigned MaskVal = 0;
166   if (ConstC && ConstC->isZero()) {
167     // if C is zero, then both A and B qualify as mask
168     MaskVal |= (IsEq ? (Mask_AllZeros | AMask_Mixed | BMask_Mixed)
169                      : (Mask_NotAllZeros | AMask_NotMixed | BMask_NotMixed));
170     if (IsAPow2)
171       MaskVal |= (IsEq ? (AMask_NotAllOnes | AMask_NotMixed)
172                        : (AMask_AllOnes | AMask_Mixed));
173     if (IsBPow2)
174       MaskVal |= (IsEq ? (BMask_NotAllOnes | BMask_NotMixed)
175                        : (BMask_AllOnes | BMask_Mixed));
176     return MaskVal;
177   }
178 
179   if (A == C) {
180     MaskVal |= (IsEq ? (AMask_AllOnes | AMask_Mixed)
181                      : (AMask_NotAllOnes | AMask_NotMixed));
182     if (IsAPow2)
183       MaskVal |= (IsEq ? (Mask_NotAllZeros | AMask_NotMixed)
184                        : (Mask_AllZeros | AMask_Mixed));
185   } else if (ConstA && ConstC && ConstC->isSubsetOf(*ConstA)) {
186     MaskVal |= (IsEq ? AMask_Mixed : AMask_NotMixed);
187   }
188 
189   if (B == C) {
190     MaskVal |= (IsEq ? (BMask_AllOnes | BMask_Mixed)
191                      : (BMask_NotAllOnes | BMask_NotMixed));
192     if (IsBPow2)
193       MaskVal |= (IsEq ? (Mask_NotAllZeros | BMask_NotMixed)
194                        : (Mask_AllZeros | BMask_Mixed));
195   } else if (ConstB && ConstC && ConstC->isSubsetOf(*ConstB)) {
196     MaskVal |= (IsEq ? BMask_Mixed : BMask_NotMixed);
197   }
198 
199   return MaskVal;
200 }
201 
202 /// Convert an analysis of a masked ICmp into its equivalent if all boolean
203 /// operations had the opposite sense. Since each "NotXXX" flag (recording !=)
204 /// is adjacent to the corresponding normal flag (recording ==), this just
205 /// involves swapping those bits over.
206 static unsigned conjugateICmpMask(unsigned Mask) {
207   unsigned NewMask;
208   NewMask = (Mask & (AMask_AllOnes | BMask_AllOnes | Mask_AllZeros |
209                      AMask_Mixed | BMask_Mixed))
210             << 1;
211 
212   NewMask |= (Mask & (AMask_NotAllOnes | BMask_NotAllOnes | Mask_NotAllZeros |
213                       AMask_NotMixed | BMask_NotMixed))
214              >> 1;
215 
216   return NewMask;
217 }
218 
219 // Adapts the external decomposeBitTestICmp for local use.
220 static bool decomposeBitTestICmp(Value *LHS, Value *RHS, CmpInst::Predicate &Pred,
221                                  Value *&X, Value *&Y, Value *&Z) {
222   APInt Mask;
223   if (!llvm::decomposeBitTestICmp(LHS, RHS, Pred, X, Mask))
224     return false;
225 
226   Y = ConstantInt::get(X->getType(), Mask);
227   Z = ConstantInt::get(X->getType(), 0);
228   return true;
229 }
230 
231 /// Handle (icmp(A & B) ==/!= C) &/| (icmp(A & D) ==/!= E).
232 /// Return the pattern classes (from MaskedICmpType) for the left hand side and
233 /// the right hand side as a pair.
234 /// LHS and RHS are the left hand side and the right hand side ICmps and PredL
235 /// and PredR are their predicates, respectively.
236 static
237 Optional<std::pair<unsigned, unsigned>>
238 getMaskedTypeForICmpPair(Value *&A, Value *&B, Value *&C,
239                          Value *&D, Value *&E, ICmpInst *LHS,
240                          ICmpInst *RHS,
241                          ICmpInst::Predicate &PredL,
242                          ICmpInst::Predicate &PredR) {
243   // Don't allow pointers. Splat vectors are fine.
244   if (!LHS->getOperand(0)->getType()->isIntOrIntVectorTy() ||
245       !RHS->getOperand(0)->getType()->isIntOrIntVectorTy())
246     return None;
247 
248   // Here comes the tricky part:
249   // LHS might be of the form L11 & L12 == X, X == L21 & L22,
250   // and L11 & L12 == L21 & L22. The same goes for RHS.
251   // Now we must find those components L** and R**, that are equal, so
252   // that we can extract the parameters A, B, C, D, and E for the canonical
253   // above.
254   Value *L1 = LHS->getOperand(0);
255   Value *L2 = LHS->getOperand(1);
256   Value *L11, *L12, *L21, *L22;
257   // Check whether the icmp can be decomposed into a bit test.
258   if (decomposeBitTestICmp(L1, L2, PredL, L11, L12, L2)) {
259     L21 = L22 = L1 = nullptr;
260   } else {
261     // Look for ANDs in the LHS icmp.
262     if (!match(L1, m_And(m_Value(L11), m_Value(L12)))) {
263       // Any icmp can be viewed as being trivially masked; if it allows us to
264       // remove one, it's worth it.
265       L11 = L1;
266       L12 = Constant::getAllOnesValue(L1->getType());
267     }
268 
269     if (!match(L2, m_And(m_Value(L21), m_Value(L22)))) {
270       L21 = L2;
271       L22 = Constant::getAllOnesValue(L2->getType());
272     }
273   }
274 
275   // Bail if LHS was a icmp that can't be decomposed into an equality.
276   if (!ICmpInst::isEquality(PredL))
277     return None;
278 
279   Value *R1 = RHS->getOperand(0);
280   Value *R2 = RHS->getOperand(1);
281   Value *R11, *R12;
282   bool Ok = false;
283   if (decomposeBitTestICmp(R1, R2, PredR, R11, R12, R2)) {
284     if (R11 == L11 || R11 == L12 || R11 == L21 || R11 == L22) {
285       A = R11;
286       D = R12;
287     } else if (R12 == L11 || R12 == L12 || R12 == L21 || R12 == L22) {
288       A = R12;
289       D = R11;
290     } else {
291       return None;
292     }
293     E = R2;
294     R1 = nullptr;
295     Ok = true;
296   } else {
297     if (!match(R1, m_And(m_Value(R11), m_Value(R12)))) {
298       // As before, model no mask as a trivial mask if it'll let us do an
299       // optimization.
300       R11 = R1;
301       R12 = Constant::getAllOnesValue(R1->getType());
302     }
303 
304     if (R11 == L11 || R11 == L12 || R11 == L21 || R11 == L22) {
305       A = R11;
306       D = R12;
307       E = R2;
308       Ok = true;
309     } else if (R12 == L11 || R12 == L12 || R12 == L21 || R12 == L22) {
310       A = R12;
311       D = R11;
312       E = R2;
313       Ok = true;
314     }
315   }
316 
317   // Bail if RHS was a icmp that can't be decomposed into an equality.
318   if (!ICmpInst::isEquality(PredR))
319     return None;
320 
321   // Look for ANDs on the right side of the RHS icmp.
322   if (!Ok) {
323     if (!match(R2, m_And(m_Value(R11), m_Value(R12)))) {
324       R11 = R2;
325       R12 = Constant::getAllOnesValue(R2->getType());
326     }
327 
328     if (R11 == L11 || R11 == L12 || R11 == L21 || R11 == L22) {
329       A = R11;
330       D = R12;
331       E = R1;
332       Ok = true;
333     } else if (R12 == L11 || R12 == L12 || R12 == L21 || R12 == L22) {
334       A = R12;
335       D = R11;
336       E = R1;
337       Ok = true;
338     } else {
339       return None;
340     }
341 
342     assert(Ok && "Failed to find AND on the right side of the RHS icmp.");
343   }
344 
345   if (L11 == A) {
346     B = L12;
347     C = L2;
348   } else if (L12 == A) {
349     B = L11;
350     C = L2;
351   } else if (L21 == A) {
352     B = L22;
353     C = L1;
354   } else if (L22 == A) {
355     B = L21;
356     C = L1;
357   }
358 
359   unsigned LeftType = getMaskedICmpType(A, B, C, PredL);
360   unsigned RightType = getMaskedICmpType(A, D, E, PredR);
361   return Optional<std::pair<unsigned, unsigned>>(std::make_pair(LeftType, RightType));
362 }
363 
364 /// Try to fold (icmp(A & B) ==/!= C) &/| (icmp(A & D) ==/!= E) into a single
365 /// (icmp(A & X) ==/!= Y), where the left-hand side is of type Mask_NotAllZeros
366 /// and the right hand side is of type BMask_Mixed. For example,
367 /// (icmp (A & 12) != 0) & (icmp (A & 15) == 8) -> (icmp (A & 15) == 8).
368 static Value *foldLogOpOfMaskedICmps_NotAllZeros_BMask_Mixed(
369     ICmpInst *LHS, ICmpInst *RHS, bool IsAnd, Value *A, Value *B, Value *C,
370     Value *D, Value *E, ICmpInst::Predicate PredL, ICmpInst::Predicate PredR,
371     InstCombiner::BuilderTy &Builder) {
372   // We are given the canonical form:
373   //   (icmp ne (A & B), 0) & (icmp eq (A & D), E).
374   // where D & E == E.
375   //
376   // If IsAnd is false, we get it in negated form:
377   //   (icmp eq (A & B), 0) | (icmp ne (A & D), E) ->
378   //      !((icmp ne (A & B), 0) & (icmp eq (A & D), E)).
379   //
380   // We currently handle the case of B, C, D, E are constant.
381   //
382   ConstantInt *BCst, *CCst, *DCst, *ECst;
383   if (!match(B, m_ConstantInt(BCst)) || !match(C, m_ConstantInt(CCst)) ||
384       !match(D, m_ConstantInt(DCst)) || !match(E, m_ConstantInt(ECst)))
385     return nullptr;
386 
387   ICmpInst::Predicate NewCC = IsAnd ? ICmpInst::ICMP_EQ : ICmpInst::ICMP_NE;
388 
389   // Update E to the canonical form when D is a power of two and RHS is
390   // canonicalized as,
391   // (icmp ne (A & D), 0) -> (icmp eq (A & D), D) or
392   // (icmp ne (A & D), D) -> (icmp eq (A & D), 0).
393   if (PredR != NewCC)
394     ECst = cast<ConstantInt>(ConstantExpr::getXor(DCst, ECst));
395 
396   // If B or D is zero, skip because if LHS or RHS can be trivially folded by
397   // other folding rules and this pattern won't apply any more.
398   if (BCst->getValue() == 0 || DCst->getValue() == 0)
399     return nullptr;
400 
401   // If B and D don't intersect, ie. (B & D) == 0, no folding because we can't
402   // deduce anything from it.
403   // For example,
404   // (icmp ne (A & 12), 0) & (icmp eq (A & 3), 1) -> no folding.
405   if ((BCst->getValue() & DCst->getValue()) == 0)
406     return nullptr;
407 
408   // If the following two conditions are met:
409   //
410   // 1. mask B covers only a single bit that's not covered by mask D, that is,
411   // (B & (B ^ D)) is a power of 2 (in other words, B minus the intersection of
412   // B and D has only one bit set) and,
413   //
414   // 2. RHS (and E) indicates that the rest of B's bits are zero (in other
415   // words, the intersection of B and D is zero), that is, ((B & D) & E) == 0
416   //
417   // then that single bit in B must be one and thus the whole expression can be
418   // folded to
419   //   (A & (B | D)) == (B & (B ^ D)) | E.
420   //
421   // For example,
422   // (icmp ne (A & 12), 0) & (icmp eq (A & 7), 1) -> (icmp eq (A & 15), 9)
423   // (icmp ne (A & 15), 0) & (icmp eq (A & 7), 0) -> (icmp eq (A & 15), 8)
424   if ((((BCst->getValue() & DCst->getValue()) & ECst->getValue()) == 0) &&
425       (BCst->getValue() & (BCst->getValue() ^ DCst->getValue())).isPowerOf2()) {
426     APInt BorD = BCst->getValue() | DCst->getValue();
427     APInt BandBxorDorE = (BCst->getValue() & (BCst->getValue() ^ DCst->getValue())) |
428         ECst->getValue();
429     Value *NewMask = ConstantInt::get(BCst->getType(), BorD);
430     Value *NewMaskedValue = ConstantInt::get(BCst->getType(), BandBxorDorE);
431     Value *NewAnd = Builder.CreateAnd(A, NewMask);
432     return Builder.CreateICmp(NewCC, NewAnd, NewMaskedValue);
433   }
434 
435   auto IsSubSetOrEqual = [](ConstantInt *C1, ConstantInt *C2) {
436     return (C1->getValue() & C2->getValue()) == C1->getValue();
437   };
438   auto IsSuperSetOrEqual = [](ConstantInt *C1, ConstantInt *C2) {
439     return (C1->getValue() & C2->getValue()) == C2->getValue();
440   };
441 
442   // In the following, we consider only the cases where B is a superset of D, B
443   // is a subset of D, or B == D because otherwise there's at least one bit
444   // covered by B but not D, in which case we can't deduce much from it, so
445   // no folding (aside from the single must-be-one bit case right above.)
446   // For example,
447   // (icmp ne (A & 14), 0) & (icmp eq (A & 3), 1) -> no folding.
448   if (!IsSubSetOrEqual(BCst, DCst) && !IsSuperSetOrEqual(BCst, DCst))
449     return nullptr;
450 
451   // At this point, either B is a superset of D, B is a subset of D or B == D.
452 
453   // If E is zero, if B is a subset of (or equal to) D, LHS and RHS contradict
454   // and the whole expression becomes false (or true if negated), otherwise, no
455   // folding.
456   // For example,
457   // (icmp ne (A & 3), 0) & (icmp eq (A & 7), 0) -> false.
458   // (icmp ne (A & 15), 0) & (icmp eq (A & 3), 0) -> no folding.
459   if (ECst->isZero()) {
460     if (IsSubSetOrEqual(BCst, DCst))
461       return ConstantInt::get(LHS->getType(), !IsAnd);
462     return nullptr;
463   }
464 
465   // At this point, B, D, E aren't zero and (B & D) == B, (B & D) == D or B ==
466   // D. If B is a superset of (or equal to) D, since E is not zero, LHS is
467   // subsumed by RHS (RHS implies LHS.) So the whole expression becomes
468   // RHS. For example,
469   // (icmp ne (A & 255), 0) & (icmp eq (A & 15), 8) -> (icmp eq (A & 15), 8).
470   // (icmp ne (A & 15), 0) & (icmp eq (A & 15), 8) -> (icmp eq (A & 15), 8).
471   if (IsSuperSetOrEqual(BCst, DCst))
472     return RHS;
473   // Otherwise, B is a subset of D. If B and E have a common bit set,
474   // ie. (B & E) != 0, then LHS is subsumed by RHS. For example.
475   // (icmp ne (A & 12), 0) & (icmp eq (A & 15), 8) -> (icmp eq (A & 15), 8).
476   assert(IsSubSetOrEqual(BCst, DCst) && "Precondition due to above code");
477   if ((BCst->getValue() & ECst->getValue()) != 0)
478     return RHS;
479   // Otherwise, LHS and RHS contradict and the whole expression becomes false
480   // (or true if negated.) For example,
481   // (icmp ne (A & 7), 0) & (icmp eq (A & 15), 8) -> false.
482   // (icmp ne (A & 6), 0) & (icmp eq (A & 15), 8) -> false.
483   return ConstantInt::get(LHS->getType(), !IsAnd);
484 }
485 
486 /// Try to fold (icmp(A & B) ==/!= 0) &/| (icmp(A & D) ==/!= E) into a single
487 /// (icmp(A & X) ==/!= Y), where the left-hand side and the right hand side
488 /// aren't of the common mask pattern type.
489 static Value *foldLogOpOfMaskedICmpsAsymmetric(
490     ICmpInst *LHS, ICmpInst *RHS, bool IsAnd, Value *A, Value *B, Value *C,
491     Value *D, Value *E, ICmpInst::Predicate PredL, ICmpInst::Predicate PredR,
492     unsigned LHSMask, unsigned RHSMask, InstCombiner::BuilderTy &Builder) {
493   assert(ICmpInst::isEquality(PredL) && ICmpInst::isEquality(PredR) &&
494          "Expected equality predicates for masked type of icmps.");
495   // Handle Mask_NotAllZeros-BMask_Mixed cases.
496   // (icmp ne/eq (A & B), C) &/| (icmp eq/ne (A & D), E), or
497   // (icmp eq/ne (A & B), C) &/| (icmp ne/eq (A & D), E)
498   //    which gets swapped to
499   //    (icmp ne/eq (A & D), E) &/| (icmp eq/ne (A & B), C).
500   if (!IsAnd) {
501     LHSMask = conjugateICmpMask(LHSMask);
502     RHSMask = conjugateICmpMask(RHSMask);
503   }
504   if ((LHSMask & Mask_NotAllZeros) && (RHSMask & BMask_Mixed)) {
505     if (Value *V = foldLogOpOfMaskedICmps_NotAllZeros_BMask_Mixed(
506             LHS, RHS, IsAnd, A, B, C, D, E,
507             PredL, PredR, Builder)) {
508       return V;
509     }
510   } else if ((LHSMask & BMask_Mixed) && (RHSMask & Mask_NotAllZeros)) {
511     if (Value *V = foldLogOpOfMaskedICmps_NotAllZeros_BMask_Mixed(
512             RHS, LHS, IsAnd, A, D, E, B, C,
513             PredR, PredL, Builder)) {
514       return V;
515     }
516   }
517   return nullptr;
518 }
519 
520 /// Try to fold (icmp(A & B) ==/!= C) &/| (icmp(A & D) ==/!= E)
521 /// into a single (icmp(A & X) ==/!= Y).
522 static Value *foldLogOpOfMaskedICmps(ICmpInst *LHS, ICmpInst *RHS, bool IsAnd,
523                                      InstCombiner::BuilderTy &Builder) {
524   Value *A = nullptr, *B = nullptr, *C = nullptr, *D = nullptr, *E = nullptr;
525   ICmpInst::Predicate PredL = LHS->getPredicate(), PredR = RHS->getPredicate();
526   Optional<std::pair<unsigned, unsigned>> MaskPair =
527       getMaskedTypeForICmpPair(A, B, C, D, E, LHS, RHS, PredL, PredR);
528   if (!MaskPair)
529     return nullptr;
530   assert(ICmpInst::isEquality(PredL) && ICmpInst::isEquality(PredR) &&
531          "Expected equality predicates for masked type of icmps.");
532   unsigned LHSMask = MaskPair->first;
533   unsigned RHSMask = MaskPair->second;
534   unsigned Mask = LHSMask & RHSMask;
535   if (Mask == 0) {
536     // Even if the two sides don't share a common pattern, check if folding can
537     // still happen.
538     if (Value *V = foldLogOpOfMaskedICmpsAsymmetric(
539             LHS, RHS, IsAnd, A, B, C, D, E, PredL, PredR, LHSMask, RHSMask,
540             Builder))
541       return V;
542     return nullptr;
543   }
544 
545   // In full generality:
546   //     (icmp (A & B) Op C) | (icmp (A & D) Op E)
547   // ==  ![ (icmp (A & B) !Op C) & (icmp (A & D) !Op E) ]
548   //
549   // If the latter can be converted into (icmp (A & X) Op Y) then the former is
550   // equivalent to (icmp (A & X) !Op Y).
551   //
552   // Therefore, we can pretend for the rest of this function that we're dealing
553   // with the conjunction, provided we flip the sense of any comparisons (both
554   // input and output).
555 
556   // In most cases we're going to produce an EQ for the "&&" case.
557   ICmpInst::Predicate NewCC = IsAnd ? ICmpInst::ICMP_EQ : ICmpInst::ICMP_NE;
558   if (!IsAnd) {
559     // Convert the masking analysis into its equivalent with negated
560     // comparisons.
561     Mask = conjugateICmpMask(Mask);
562   }
563 
564   if (Mask & Mask_AllZeros) {
565     // (icmp eq (A & B), 0) & (icmp eq (A & D), 0)
566     // -> (icmp eq (A & (B|D)), 0)
567     Value *NewOr = Builder.CreateOr(B, D);
568     Value *NewAnd = Builder.CreateAnd(A, NewOr);
569     // We can't use C as zero because we might actually handle
570     //   (icmp ne (A & B), B) & (icmp ne (A & D), D)
571     // with B and D, having a single bit set.
572     Value *Zero = Constant::getNullValue(A->getType());
573     return Builder.CreateICmp(NewCC, NewAnd, Zero);
574   }
575   if (Mask & BMask_AllOnes) {
576     // (icmp eq (A & B), B) & (icmp eq (A & D), D)
577     // -> (icmp eq (A & (B|D)), (B|D))
578     Value *NewOr = Builder.CreateOr(B, D);
579     Value *NewAnd = Builder.CreateAnd(A, NewOr);
580     return Builder.CreateICmp(NewCC, NewAnd, NewOr);
581   }
582   if (Mask & AMask_AllOnes) {
583     // (icmp eq (A & B), A) & (icmp eq (A & D), A)
584     // -> (icmp eq (A & (B&D)), A)
585     Value *NewAnd1 = Builder.CreateAnd(B, D);
586     Value *NewAnd2 = Builder.CreateAnd(A, NewAnd1);
587     return Builder.CreateICmp(NewCC, NewAnd2, A);
588   }
589 
590   // Remaining cases assume at least that B and D are constant, and depend on
591   // their actual values. This isn't strictly necessary, just a "handle the
592   // easy cases for now" decision.
593   const APInt *ConstB, *ConstD;
594   if (!match(B, m_APInt(ConstB)) || !match(D, m_APInt(ConstD)))
595     return nullptr;
596 
597   if (Mask & (Mask_NotAllZeros | BMask_NotAllOnes)) {
598     // (icmp ne (A & B), 0) & (icmp ne (A & D), 0) and
599     // (icmp ne (A & B), B) & (icmp ne (A & D), D)
600     //     -> (icmp ne (A & B), 0) or (icmp ne (A & D), 0)
601     // Only valid if one of the masks is a superset of the other (check "B&D" is
602     // the same as either B or D).
603     APInt NewMask = *ConstB & *ConstD;
604     if (NewMask == *ConstB)
605       return LHS;
606     else if (NewMask == *ConstD)
607       return RHS;
608   }
609 
610   if (Mask & AMask_NotAllOnes) {
611     // (icmp ne (A & B), B) & (icmp ne (A & D), D)
612     //     -> (icmp ne (A & B), A) or (icmp ne (A & D), A)
613     // Only valid if one of the masks is a superset of the other (check "B|D" is
614     // the same as either B or D).
615     APInt NewMask = *ConstB | *ConstD;
616     if (NewMask == *ConstB)
617       return LHS;
618     else if (NewMask == *ConstD)
619       return RHS;
620   }
621 
622   if (Mask & BMask_Mixed) {
623     // (icmp eq (A & B), C) & (icmp eq (A & D), E)
624     // We already know that B & C == C && D & E == E.
625     // If we can prove that (B & D) & (C ^ E) == 0, that is, the bits of
626     // C and E, which are shared by both the mask B and the mask D, don't
627     // contradict, then we can transform to
628     // -> (icmp eq (A & (B|D)), (C|E))
629     // Currently, we only handle the case of B, C, D, and E being constant.
630     // We can't simply use C and E because we might actually handle
631     //   (icmp ne (A & B), B) & (icmp eq (A & D), D)
632     // with B and D, having a single bit set.
633     const APInt *OldConstC, *OldConstE;
634     if (!match(C, m_APInt(OldConstC)) || !match(E, m_APInt(OldConstE)))
635       return nullptr;
636 
637     const APInt ConstC = PredL != NewCC ? *ConstB ^ *OldConstC : *OldConstC;
638     const APInt ConstE = PredR != NewCC ? *ConstD ^ *OldConstE : *OldConstE;
639 
640     // If there is a conflict, we should actually return a false for the
641     // whole construct.
642     if (((*ConstB & *ConstD) & (ConstC ^ ConstE)).getBoolValue())
643       return ConstantInt::get(LHS->getType(), !IsAnd);
644 
645     Value *NewOr1 = Builder.CreateOr(B, D);
646     Value *NewAnd = Builder.CreateAnd(A, NewOr1);
647     Constant *NewOr2 = ConstantInt::get(A->getType(), ConstC | ConstE);
648     return Builder.CreateICmp(NewCC, NewAnd, NewOr2);
649   }
650 
651   return nullptr;
652 }
653 
654 /// Try to fold a signed range checked with lower bound 0 to an unsigned icmp.
655 /// Example: (icmp sge x, 0) & (icmp slt x, n) --> icmp ult x, n
656 /// If \p Inverted is true then the check is for the inverted range, e.g.
657 /// (icmp slt x, 0) | (icmp sgt x, n) --> icmp ugt x, n
658 Value *InstCombinerImpl::simplifyRangeCheck(ICmpInst *Cmp0, ICmpInst *Cmp1,
659                                             bool Inverted) {
660   // Check the lower range comparison, e.g. x >= 0
661   // InstCombine already ensured that if there is a constant it's on the RHS.
662   ConstantInt *RangeStart = dyn_cast<ConstantInt>(Cmp0->getOperand(1));
663   if (!RangeStart)
664     return nullptr;
665 
666   ICmpInst::Predicate Pred0 = (Inverted ? Cmp0->getInversePredicate() :
667                                Cmp0->getPredicate());
668 
669   // Accept x > -1 or x >= 0 (after potentially inverting the predicate).
670   if (!((Pred0 == ICmpInst::ICMP_SGT && RangeStart->isMinusOne()) ||
671         (Pred0 == ICmpInst::ICMP_SGE && RangeStart->isZero())))
672     return nullptr;
673 
674   ICmpInst::Predicate Pred1 = (Inverted ? Cmp1->getInversePredicate() :
675                                Cmp1->getPredicate());
676 
677   Value *Input = Cmp0->getOperand(0);
678   Value *RangeEnd;
679   if (Cmp1->getOperand(0) == Input) {
680     // For the upper range compare we have: icmp x, n
681     RangeEnd = Cmp1->getOperand(1);
682   } else if (Cmp1->getOperand(1) == Input) {
683     // For the upper range compare we have: icmp n, x
684     RangeEnd = Cmp1->getOperand(0);
685     Pred1 = ICmpInst::getSwappedPredicate(Pred1);
686   } else {
687     return nullptr;
688   }
689 
690   // Check the upper range comparison, e.g. x < n
691   ICmpInst::Predicate NewPred;
692   switch (Pred1) {
693     case ICmpInst::ICMP_SLT: NewPred = ICmpInst::ICMP_ULT; break;
694     case ICmpInst::ICMP_SLE: NewPred = ICmpInst::ICMP_ULE; break;
695     default: return nullptr;
696   }
697 
698   // This simplification is only valid if the upper range is not negative.
699   KnownBits Known = computeKnownBits(RangeEnd, /*Depth=*/0, Cmp1);
700   if (!Known.isNonNegative())
701     return nullptr;
702 
703   if (Inverted)
704     NewPred = ICmpInst::getInversePredicate(NewPred);
705 
706   return Builder.CreateICmp(NewPred, Input, RangeEnd);
707 }
708 
709 static Value *
710 foldAndOrOfEqualityCmpsWithConstants(ICmpInst *LHS, ICmpInst *RHS,
711                                      bool JoinedByAnd,
712                                      InstCombiner::BuilderTy &Builder) {
713   Value *X = LHS->getOperand(0);
714   if (X != RHS->getOperand(0))
715     return nullptr;
716 
717   const APInt *C1, *C2;
718   if (!match(LHS->getOperand(1), m_APInt(C1)) ||
719       !match(RHS->getOperand(1), m_APInt(C2)))
720     return nullptr;
721 
722   // We only handle (X != C1 && X != C2) and (X == C1 || X == C2).
723   ICmpInst::Predicate Pred = LHS->getPredicate();
724   if (Pred !=  RHS->getPredicate())
725     return nullptr;
726   if (JoinedByAnd && Pred != ICmpInst::ICMP_NE)
727     return nullptr;
728   if (!JoinedByAnd && Pred != ICmpInst::ICMP_EQ)
729     return nullptr;
730 
731   // The larger unsigned constant goes on the right.
732   if (C1->ugt(*C2))
733     std::swap(C1, C2);
734 
735   APInt Xor = *C1 ^ *C2;
736   if (Xor.isPowerOf2()) {
737     // If LHSC and RHSC differ by only one bit, then set that bit in X and
738     // compare against the larger constant:
739     // (X == C1 || X == C2) --> (X | (C1 ^ C2)) == C2
740     // (X != C1 && X != C2) --> (X | (C1 ^ C2)) != C2
741     // We choose an 'or' with a Pow2 constant rather than the inverse mask with
742     // 'and' because that may lead to smaller codegen from a smaller constant.
743     Value *Or = Builder.CreateOr(X, ConstantInt::get(X->getType(), Xor));
744     return Builder.CreateICmp(Pred, Or, ConstantInt::get(X->getType(), *C2));
745   }
746 
747   return nullptr;
748 }
749 
750 // Fold (iszero(A & K1) | iszero(A & K2)) -> (A & (K1 | K2)) != (K1 | K2)
751 // Fold (!iszero(A & K1) & !iszero(A & K2)) -> (A & (K1 | K2)) == (K1 | K2)
752 Value *InstCombinerImpl::foldAndOrOfICmpsOfAndWithPow2(ICmpInst *LHS,
753                                                        ICmpInst *RHS,
754                                                        Instruction *CxtI,
755                                                        bool IsAnd,
756                                                        bool IsLogical) {
757   CmpInst::Predicate Pred = IsAnd ? CmpInst::ICMP_NE : CmpInst::ICMP_EQ;
758   if (LHS->getPredicate() != Pred || RHS->getPredicate() != Pred)
759     return nullptr;
760 
761   if (!match(LHS->getOperand(1), m_Zero()) ||
762       !match(RHS->getOperand(1), m_Zero()))
763     return nullptr;
764 
765   Value *L1, *L2, *R1, *R2;
766   if (match(LHS->getOperand(0), m_And(m_Value(L1), m_Value(L2))) &&
767       match(RHS->getOperand(0), m_And(m_Value(R1), m_Value(R2)))) {
768     if (L1 == R2 || L2 == R2)
769       std::swap(R1, R2);
770     if (L2 == R1)
771       std::swap(L1, L2);
772 
773     if (L1 == R1 &&
774         isKnownToBeAPowerOfTwo(L2, false, 0, CxtI) &&
775         isKnownToBeAPowerOfTwo(R2, false, 0, CxtI)) {
776       // If this is a logical and/or, then we must prevent propagation of a
777       // poison value from the RHS by inserting freeze.
778       if (IsLogical)
779         R2 = Builder.CreateFreeze(R2);
780       Value *Mask = Builder.CreateOr(L2, R2);
781       Value *Masked = Builder.CreateAnd(L1, Mask);
782       auto NewPred = IsAnd ? CmpInst::ICMP_EQ : CmpInst::ICMP_NE;
783       return Builder.CreateICmp(NewPred, Masked, Mask);
784     }
785   }
786 
787   return nullptr;
788 }
789 
790 /// General pattern:
791 ///   X & Y
792 ///
793 /// Where Y is checking that all the high bits (covered by a mask 4294967168)
794 /// are uniform, i.e.  %arg & 4294967168  can be either  4294967168  or  0
795 /// Pattern can be one of:
796 ///   %t = add        i32 %arg,    128
797 ///   %r = icmp   ult i32 %t,      256
798 /// Or
799 ///   %t0 = shl       i32 %arg,    24
800 ///   %t1 = ashr      i32 %t0,     24
801 ///   %r  = icmp  eq  i32 %t1,     %arg
802 /// Or
803 ///   %t0 = trunc     i32 %arg  to i8
804 ///   %t1 = sext      i8  %t0   to i32
805 ///   %r  = icmp  eq  i32 %t1,     %arg
806 /// This pattern is a signed truncation check.
807 ///
808 /// And X is checking that some bit in that same mask is zero.
809 /// I.e. can be one of:
810 ///   %r = icmp sgt i32   %arg,    -1
811 /// Or
812 ///   %t = and      i32   %arg,    2147483648
813 ///   %r = icmp eq  i32   %t,      0
814 ///
815 /// Since we are checking that all the bits in that mask are the same,
816 /// and a particular bit is zero, what we are really checking is that all the
817 /// masked bits are zero.
818 /// So this should be transformed to:
819 ///   %r = icmp ult i32 %arg, 128
820 static Value *foldSignedTruncationCheck(ICmpInst *ICmp0, ICmpInst *ICmp1,
821                                         Instruction &CxtI,
822                                         InstCombiner::BuilderTy &Builder) {
823   assert(CxtI.getOpcode() == Instruction::And);
824 
825   // Match  icmp ult (add %arg, C01), C1   (C1 == C01 << 1; powers of two)
826   auto tryToMatchSignedTruncationCheck = [](ICmpInst *ICmp, Value *&X,
827                                             APInt &SignBitMask) -> bool {
828     CmpInst::Predicate Pred;
829     const APInt *I01, *I1; // powers of two; I1 == I01 << 1
830     if (!(match(ICmp,
831                 m_ICmp(Pred, m_Add(m_Value(X), m_Power2(I01)), m_Power2(I1))) &&
832           Pred == ICmpInst::ICMP_ULT && I1->ugt(*I01) && I01->shl(1) == *I1))
833       return false;
834     // Which bit is the new sign bit as per the 'signed truncation' pattern?
835     SignBitMask = *I01;
836     return true;
837   };
838 
839   // One icmp needs to be 'signed truncation check'.
840   // We need to match this first, else we will mismatch commutative cases.
841   Value *X1;
842   APInt HighestBit;
843   ICmpInst *OtherICmp;
844   if (tryToMatchSignedTruncationCheck(ICmp1, X1, HighestBit))
845     OtherICmp = ICmp0;
846   else if (tryToMatchSignedTruncationCheck(ICmp0, X1, HighestBit))
847     OtherICmp = ICmp1;
848   else
849     return nullptr;
850 
851   assert(HighestBit.isPowerOf2() && "expected to be power of two (non-zero)");
852 
853   // Try to match/decompose into:  icmp eq (X & Mask), 0
854   auto tryToDecompose = [](ICmpInst *ICmp, Value *&X,
855                            APInt &UnsetBitsMask) -> bool {
856     CmpInst::Predicate Pred = ICmp->getPredicate();
857     // Can it be decomposed into  icmp eq (X & Mask), 0  ?
858     if (llvm::decomposeBitTestICmp(ICmp->getOperand(0), ICmp->getOperand(1),
859                                    Pred, X, UnsetBitsMask,
860                                    /*LookThroughTrunc=*/false) &&
861         Pred == ICmpInst::ICMP_EQ)
862       return true;
863     // Is it  icmp eq (X & Mask), 0  already?
864     const APInt *Mask;
865     if (match(ICmp, m_ICmp(Pred, m_And(m_Value(X), m_APInt(Mask)), m_Zero())) &&
866         Pred == ICmpInst::ICMP_EQ) {
867       UnsetBitsMask = *Mask;
868       return true;
869     }
870     return false;
871   };
872 
873   // And the other icmp needs to be decomposable into a bit test.
874   Value *X0;
875   APInt UnsetBitsMask;
876   if (!tryToDecompose(OtherICmp, X0, UnsetBitsMask))
877     return nullptr;
878 
879   assert(!UnsetBitsMask.isZero() && "empty mask makes no sense.");
880 
881   // Are they working on the same value?
882   Value *X;
883   if (X1 == X0) {
884     // Ok as is.
885     X = X1;
886   } else if (match(X0, m_Trunc(m_Specific(X1)))) {
887     UnsetBitsMask = UnsetBitsMask.zext(X1->getType()->getScalarSizeInBits());
888     X = X1;
889   } else
890     return nullptr;
891 
892   // So which bits should be uniform as per the 'signed truncation check'?
893   // (all the bits starting with (i.e. including) HighestBit)
894   APInt SignBitsMask = ~(HighestBit - 1U);
895 
896   // UnsetBitsMask must have some common bits with SignBitsMask,
897   if (!UnsetBitsMask.intersects(SignBitsMask))
898     return nullptr;
899 
900   // Does UnsetBitsMask contain any bits outside of SignBitsMask?
901   if (!UnsetBitsMask.isSubsetOf(SignBitsMask)) {
902     APInt OtherHighestBit = (~UnsetBitsMask) + 1U;
903     if (!OtherHighestBit.isPowerOf2())
904       return nullptr;
905     HighestBit = APIntOps::umin(HighestBit, OtherHighestBit);
906   }
907   // Else, if it does not, then all is ok as-is.
908 
909   // %r = icmp ult %X, SignBit
910   return Builder.CreateICmpULT(X, ConstantInt::get(X->getType(), HighestBit),
911                                CxtI.getName() + ".simplified");
912 }
913 
914 /// Fold (icmp eq ctpop(X) 1) | (icmp eq X 0) into (icmp ult ctpop(X) 2) and
915 /// fold (icmp ne ctpop(X) 1) & (icmp ne X 0) into (icmp ugt ctpop(X) 1).
916 static Value *foldIsPowerOf2OrZero(ICmpInst *Cmp0, ICmpInst *Cmp1, bool IsAnd,
917                                    InstCombiner::BuilderTy &Builder) {
918   CmpInst::Predicate Pred0, Pred1;
919   Value *X;
920   if (!match(Cmp0, m_ICmp(Pred0, m_Intrinsic<Intrinsic::ctpop>(m_Value(X)),
921                           m_SpecificInt(1))) ||
922       !match(Cmp1, m_ICmp(Pred1, m_Specific(X), m_ZeroInt())))
923     return nullptr;
924 
925   Value *CtPop = Cmp0->getOperand(0);
926   if (IsAnd && Pred0 == ICmpInst::ICMP_NE && Pred1 == ICmpInst::ICMP_NE)
927     return Builder.CreateICmpUGT(CtPop, ConstantInt::get(CtPop->getType(), 1));
928   if (!IsAnd && Pred0 == ICmpInst::ICMP_EQ && Pred1 == ICmpInst::ICMP_EQ)
929     return Builder.CreateICmpULT(CtPop, ConstantInt::get(CtPop->getType(), 2));
930 
931   return nullptr;
932 }
933 
934 /// Reduce a pair of compares that check if a value has exactly 1 bit set.
935 static Value *foldIsPowerOf2(ICmpInst *Cmp0, ICmpInst *Cmp1, bool JoinedByAnd,
936                              InstCombiner::BuilderTy &Builder) {
937   // Handle 'and' / 'or' commutation: make the equality check the first operand.
938   if (JoinedByAnd && Cmp1->getPredicate() == ICmpInst::ICMP_NE)
939     std::swap(Cmp0, Cmp1);
940   else if (!JoinedByAnd && Cmp1->getPredicate() == ICmpInst::ICMP_EQ)
941     std::swap(Cmp0, Cmp1);
942 
943   // (X != 0) && (ctpop(X) u< 2) --> ctpop(X) == 1
944   CmpInst::Predicate Pred0, Pred1;
945   Value *X;
946   if (JoinedByAnd && match(Cmp0, m_ICmp(Pred0, m_Value(X), m_ZeroInt())) &&
947       match(Cmp1, m_ICmp(Pred1, m_Intrinsic<Intrinsic::ctpop>(m_Specific(X)),
948                          m_SpecificInt(2))) &&
949       Pred0 == ICmpInst::ICMP_NE && Pred1 == ICmpInst::ICMP_ULT) {
950     Value *CtPop = Cmp1->getOperand(0);
951     return Builder.CreateICmpEQ(CtPop, ConstantInt::get(CtPop->getType(), 1));
952   }
953   // (X == 0) || (ctpop(X) u> 1) --> ctpop(X) != 1
954   if (!JoinedByAnd && match(Cmp0, m_ICmp(Pred0, m_Value(X), m_ZeroInt())) &&
955       match(Cmp1, m_ICmp(Pred1, m_Intrinsic<Intrinsic::ctpop>(m_Specific(X)),
956                          m_SpecificInt(1))) &&
957       Pred0 == ICmpInst::ICMP_EQ && Pred1 == ICmpInst::ICMP_UGT) {
958     Value *CtPop = Cmp1->getOperand(0);
959     return Builder.CreateICmpNE(CtPop, ConstantInt::get(CtPop->getType(), 1));
960   }
961   return nullptr;
962 }
963 
964 /// Commuted variants are assumed to be handled by calling this function again
965 /// with the parameters swapped.
966 static Value *foldUnsignedUnderflowCheck(ICmpInst *ZeroICmp,
967                                          ICmpInst *UnsignedICmp, bool IsAnd,
968                                          const SimplifyQuery &Q,
969                                          InstCombiner::BuilderTy &Builder) {
970   Value *ZeroCmpOp;
971   ICmpInst::Predicate EqPred;
972   if (!match(ZeroICmp, m_ICmp(EqPred, m_Value(ZeroCmpOp), m_Zero())) ||
973       !ICmpInst::isEquality(EqPred))
974     return nullptr;
975 
976   auto IsKnownNonZero = [&](Value *V) {
977     return isKnownNonZero(V, Q.DL, /*Depth=*/0, Q.AC, Q.CxtI, Q.DT);
978   };
979 
980   ICmpInst::Predicate UnsignedPred;
981 
982   Value *A, *B;
983   if (match(UnsignedICmp,
984             m_c_ICmp(UnsignedPred, m_Specific(ZeroCmpOp), m_Value(A))) &&
985       match(ZeroCmpOp, m_c_Add(m_Specific(A), m_Value(B))) &&
986       (ZeroICmp->hasOneUse() || UnsignedICmp->hasOneUse())) {
987     auto GetKnownNonZeroAndOther = [&](Value *&NonZero, Value *&Other) {
988       if (!IsKnownNonZero(NonZero))
989         std::swap(NonZero, Other);
990       return IsKnownNonZero(NonZero);
991     };
992 
993     // Given  ZeroCmpOp = (A + B)
994     //   ZeroCmpOp <  A && ZeroCmpOp != 0  -->  (0-X) <  Y  iff
995     //   ZeroCmpOp >= A || ZeroCmpOp == 0  -->  (0-X) >= Y  iff
996     //     with X being the value (A/B) that is known to be non-zero,
997     //     and Y being remaining value.
998     if (UnsignedPred == ICmpInst::ICMP_ULT && EqPred == ICmpInst::ICMP_NE &&
999         IsAnd && GetKnownNonZeroAndOther(B, A))
1000       return Builder.CreateICmpULT(Builder.CreateNeg(B), A);
1001     if (UnsignedPred == ICmpInst::ICMP_UGE && EqPred == ICmpInst::ICMP_EQ &&
1002         !IsAnd && GetKnownNonZeroAndOther(B, A))
1003       return Builder.CreateICmpUGE(Builder.CreateNeg(B), A);
1004   }
1005 
1006   Value *Base, *Offset;
1007   if (!match(ZeroCmpOp, m_Sub(m_Value(Base), m_Value(Offset))))
1008     return nullptr;
1009 
1010   if (!match(UnsignedICmp,
1011              m_c_ICmp(UnsignedPred, m_Specific(Base), m_Specific(Offset))) ||
1012       !ICmpInst::isUnsigned(UnsignedPred))
1013     return nullptr;
1014 
1015   // Base >=/> Offset && (Base - Offset) != 0  <-->  Base > Offset
1016   // (no overflow and not null)
1017   if ((UnsignedPred == ICmpInst::ICMP_UGE ||
1018        UnsignedPred == ICmpInst::ICMP_UGT) &&
1019       EqPred == ICmpInst::ICMP_NE && IsAnd)
1020     return Builder.CreateICmpUGT(Base, Offset);
1021 
1022   // Base <=/< Offset || (Base - Offset) == 0  <-->  Base <= Offset
1023   // (overflow or null)
1024   if ((UnsignedPred == ICmpInst::ICMP_ULE ||
1025        UnsignedPred == ICmpInst::ICMP_ULT) &&
1026       EqPred == ICmpInst::ICMP_EQ && !IsAnd)
1027     return Builder.CreateICmpULE(Base, Offset);
1028 
1029   // Base <= Offset && (Base - Offset) != 0  -->  Base < Offset
1030   if (UnsignedPred == ICmpInst::ICMP_ULE && EqPred == ICmpInst::ICMP_NE &&
1031       IsAnd)
1032     return Builder.CreateICmpULT(Base, Offset);
1033 
1034   // Base > Offset || (Base - Offset) == 0  -->  Base >= Offset
1035   if (UnsignedPred == ICmpInst::ICMP_UGT && EqPred == ICmpInst::ICMP_EQ &&
1036       !IsAnd)
1037     return Builder.CreateICmpUGE(Base, Offset);
1038 
1039   return nullptr;
1040 }
1041 
1042 struct IntPart {
1043   Value *From;
1044   unsigned StartBit;
1045   unsigned NumBits;
1046 };
1047 
1048 /// Match an extraction of bits from an integer.
1049 static Optional<IntPart> matchIntPart(Value *V) {
1050   Value *X;
1051   if (!match(V, m_OneUse(m_Trunc(m_Value(X)))))
1052     return None;
1053 
1054   unsigned NumOriginalBits = X->getType()->getScalarSizeInBits();
1055   unsigned NumExtractedBits = V->getType()->getScalarSizeInBits();
1056   Value *Y;
1057   const APInt *Shift;
1058   // For a trunc(lshr Y, Shift) pattern, make sure we're only extracting bits
1059   // from Y, not any shifted-in zeroes.
1060   if (match(X, m_OneUse(m_LShr(m_Value(Y), m_APInt(Shift)))) &&
1061       Shift->ule(NumOriginalBits - NumExtractedBits))
1062     return {{Y, (unsigned)Shift->getZExtValue(), NumExtractedBits}};
1063   return {{X, 0, NumExtractedBits}};
1064 }
1065 
1066 /// Materialize an extraction of bits from an integer in IR.
1067 static Value *extractIntPart(const IntPart &P, IRBuilderBase &Builder) {
1068   Value *V = P.From;
1069   if (P.StartBit)
1070     V = Builder.CreateLShr(V, P.StartBit);
1071   Type *TruncTy = V->getType()->getWithNewBitWidth(P.NumBits);
1072   if (TruncTy != V->getType())
1073     V = Builder.CreateTrunc(V, TruncTy);
1074   return V;
1075 }
1076 
1077 /// (icmp eq X0, Y0) & (icmp eq X1, Y1) -> icmp eq X01, Y01
1078 /// (icmp ne X0, Y0) | (icmp ne X1, Y1) -> icmp ne X01, Y01
1079 /// where X0, X1 and Y0, Y1 are adjacent parts extracted from an integer.
1080 Value *InstCombinerImpl::foldEqOfParts(ICmpInst *Cmp0, ICmpInst *Cmp1,
1081                                        bool IsAnd) {
1082   if (!Cmp0->hasOneUse() || !Cmp1->hasOneUse())
1083     return nullptr;
1084 
1085   CmpInst::Predicate Pred = IsAnd ? CmpInst::ICMP_EQ : CmpInst::ICMP_NE;
1086   if (Cmp0->getPredicate() != Pred || Cmp1->getPredicate() != Pred)
1087     return nullptr;
1088 
1089   Optional<IntPart> L0 = matchIntPart(Cmp0->getOperand(0));
1090   Optional<IntPart> R0 = matchIntPart(Cmp0->getOperand(1));
1091   Optional<IntPart> L1 = matchIntPart(Cmp1->getOperand(0));
1092   Optional<IntPart> R1 = matchIntPart(Cmp1->getOperand(1));
1093   if (!L0 || !R0 || !L1 || !R1)
1094     return nullptr;
1095 
1096   // Make sure the LHS/RHS compare a part of the same value, possibly after
1097   // an operand swap.
1098   if (L0->From != L1->From || R0->From != R1->From) {
1099     if (L0->From != R1->From || R0->From != L1->From)
1100       return nullptr;
1101     std::swap(L1, R1);
1102   }
1103 
1104   // Make sure the extracted parts are adjacent, canonicalizing to L0/R0 being
1105   // the low part and L1/R1 being the high part.
1106   if (L0->StartBit + L0->NumBits != L1->StartBit ||
1107       R0->StartBit + R0->NumBits != R1->StartBit) {
1108     if (L1->StartBit + L1->NumBits != L0->StartBit ||
1109         R1->StartBit + R1->NumBits != R0->StartBit)
1110       return nullptr;
1111     std::swap(L0, L1);
1112     std::swap(R0, R1);
1113   }
1114 
1115   // We can simplify to a comparison of these larger parts of the integers.
1116   IntPart L = {L0->From, L0->StartBit, L0->NumBits + L1->NumBits};
1117   IntPart R = {R0->From, R0->StartBit, R0->NumBits + R1->NumBits};
1118   Value *LValue = extractIntPart(L, Builder);
1119   Value *RValue = extractIntPart(R, Builder);
1120   return Builder.CreateICmp(Pred, LValue, RValue);
1121 }
1122 
1123 /// Reduce logic-of-compares with equality to a constant by substituting a
1124 /// common operand with the constant. Callers are expected to call this with
1125 /// Cmp0/Cmp1 switched to handle logic op commutativity.
1126 static Value *foldAndOrOfICmpsWithConstEq(ICmpInst *Cmp0, ICmpInst *Cmp1,
1127                                           BinaryOperator &Logic,
1128                                           InstCombiner::BuilderTy &Builder,
1129                                           const SimplifyQuery &Q) {
1130   bool IsAnd = Logic.getOpcode() == Instruction::And;
1131   assert((IsAnd || Logic.getOpcode() == Instruction::Or) && "Wrong logic op");
1132 
1133   // Match an equality compare with a non-poison constant as Cmp0.
1134   // Also, give up if the compare can be constant-folded to avoid looping.
1135   ICmpInst::Predicate Pred0;
1136   Value *X;
1137   Constant *C;
1138   if (!match(Cmp0, m_ICmp(Pred0, m_Value(X), m_Constant(C))) ||
1139       !isGuaranteedNotToBeUndefOrPoison(C) || isa<Constant>(X))
1140     return nullptr;
1141   if ((IsAnd && Pred0 != ICmpInst::ICMP_EQ) ||
1142       (!IsAnd && Pred0 != ICmpInst::ICMP_NE))
1143     return nullptr;
1144 
1145   // The other compare must include a common operand (X). Canonicalize the
1146   // common operand as operand 1 (Pred1 is swapped if the common operand was
1147   // operand 0).
1148   Value *Y;
1149   ICmpInst::Predicate Pred1;
1150   if (!match(Cmp1, m_c_ICmp(Pred1, m_Value(Y), m_Deferred(X))))
1151     return nullptr;
1152 
1153   // Replace variable with constant value equivalence to remove a variable use:
1154   // (X == C) && (Y Pred1 X) --> (X == C) && (Y Pred1 C)
1155   // (X != C) || (Y Pred1 X) --> (X != C) || (Y Pred1 C)
1156   // Can think of the 'or' substitution with the 'and' bool equivalent:
1157   // A || B --> A || (!A && B)
1158   Value *SubstituteCmp = SimplifyICmpInst(Pred1, Y, C, Q);
1159   if (!SubstituteCmp) {
1160     // If we need to create a new instruction, require that the old compare can
1161     // be removed.
1162     if (!Cmp1->hasOneUse())
1163       return nullptr;
1164     SubstituteCmp = Builder.CreateICmp(Pred1, Y, C);
1165   }
1166   return Builder.CreateBinOp(Logic.getOpcode(), Cmp0, SubstituteCmp);
1167 }
1168 
1169 /// Fold (icmp Pred1 V1, C1) & (icmp Pred2 V2, C2)
1170 /// or   (icmp Pred1 V1, C1) | (icmp Pred2 V2, C2)
1171 /// into a single comparison using range-based reasoning.
1172 static Value *foldAndOrOfICmpsUsingRanges(
1173     ICmpInst::Predicate Pred1, Value *V1, const APInt &C1,
1174     ICmpInst::Predicate Pred2, Value *V2, const APInt &C2,
1175     IRBuilderBase &Builder, bool IsAnd) {
1176   // Look through add of a constant offset on V1, V2, or both operands. This
1177   // allows us to interpret the V + C' < C'' range idiom into a proper range.
1178   const APInt *Offset1 = nullptr, *Offset2 = nullptr;
1179   if (V1 != V2) {
1180     Value *X;
1181     if (match(V1, m_Add(m_Value(X), m_APInt(Offset1))))
1182       V1 = X;
1183     if (match(V2, m_Add(m_Value(X), m_APInt(Offset2))))
1184       V2 = X;
1185   }
1186 
1187   if (V1 != V2)
1188     return nullptr;
1189 
1190   ConstantRange CR1 = ConstantRange::makeExactICmpRegion(Pred1, C1);
1191   if (Offset1)
1192     CR1 = CR1.subtract(*Offset1);
1193 
1194   ConstantRange CR2 = ConstantRange::makeExactICmpRegion(Pred2, C2);
1195   if (Offset2)
1196     CR2 = CR2.subtract(*Offset2);
1197 
1198   Optional<ConstantRange> CR =
1199       IsAnd ? CR1.exactIntersectWith(CR2) : CR1.exactUnionWith(CR2);
1200   if (!CR)
1201     return nullptr;
1202 
1203   CmpInst::Predicate NewPred;
1204   APInt NewC, Offset;
1205   CR->getEquivalentICmp(NewPred, NewC, Offset);
1206 
1207   Type *Ty = V1->getType();
1208   Value *NewV = V1;
1209   if (Offset != 0)
1210     NewV = Builder.CreateAdd(NewV, ConstantInt::get(Ty, Offset));
1211   return Builder.CreateICmp(NewPred, NewV, ConstantInt::get(Ty, NewC));
1212 }
1213 
1214 Value *InstCombinerImpl::foldLogicOfFCmps(FCmpInst *LHS, FCmpInst *RHS,
1215                                           bool IsAnd, bool IsLogicalSelect) {
1216   Value *LHS0 = LHS->getOperand(0), *LHS1 = LHS->getOperand(1);
1217   Value *RHS0 = RHS->getOperand(0), *RHS1 = RHS->getOperand(1);
1218   FCmpInst::Predicate PredL = LHS->getPredicate(), PredR = RHS->getPredicate();
1219 
1220   if (LHS0 == RHS1 && RHS0 == LHS1) {
1221     // Swap RHS operands to match LHS.
1222     PredR = FCmpInst::getSwappedPredicate(PredR);
1223     std::swap(RHS0, RHS1);
1224   }
1225 
1226   // Simplify (fcmp cc0 x, y) & (fcmp cc1 x, y).
1227   // Suppose the relation between x and y is R, where R is one of
1228   // U(1000), L(0100), G(0010) or E(0001), and CC0 and CC1 are the bitmasks for
1229   // testing the desired relations.
1230   //
1231   // Since (R & CC0) and (R & CC1) are either R or 0, we actually have this:
1232   //    bool(R & CC0) && bool(R & CC1)
1233   //  = bool((R & CC0) & (R & CC1))
1234   //  = bool(R & (CC0 & CC1)) <= by re-association, commutation, and idempotency
1235   //
1236   // Since (R & CC0) and (R & CC1) are either R or 0, we actually have this:
1237   //    bool(R & CC0) || bool(R & CC1)
1238   //  = bool((R & CC0) | (R & CC1))
1239   //  = bool(R & (CC0 | CC1)) <= by reversed distribution (contribution? ;)
1240   if (LHS0 == RHS0 && LHS1 == RHS1) {
1241     unsigned FCmpCodeL = getFCmpCode(PredL);
1242     unsigned FCmpCodeR = getFCmpCode(PredR);
1243     unsigned NewPred = IsAnd ? FCmpCodeL & FCmpCodeR : FCmpCodeL | FCmpCodeR;
1244 
1245     // Intersect the fast math flags.
1246     // TODO: We can union the fast math flags unless this is a logical select.
1247     IRBuilder<>::FastMathFlagGuard FMFG(Builder);
1248     FastMathFlags FMF = LHS->getFastMathFlags();
1249     FMF &= RHS->getFastMathFlags();
1250     Builder.setFastMathFlags(FMF);
1251 
1252     return getFCmpValue(NewPred, LHS0, LHS1, Builder);
1253   }
1254 
1255   // This transform is not valid for a logical select.
1256   if (!IsLogicalSelect &&
1257       ((PredL == FCmpInst::FCMP_ORD && PredR == FCmpInst::FCMP_ORD && IsAnd) ||
1258        (PredL == FCmpInst::FCMP_UNO && PredR == FCmpInst::FCMP_UNO &&
1259         !IsAnd))) {
1260     if (LHS0->getType() != RHS0->getType())
1261       return nullptr;
1262 
1263     // FCmp canonicalization ensures that (fcmp ord/uno X, X) and
1264     // (fcmp ord/uno X, C) will be transformed to (fcmp X, +0.0).
1265     if (match(LHS1, m_PosZeroFP()) && match(RHS1, m_PosZeroFP()))
1266       // Ignore the constants because they are obviously not NANs:
1267       // (fcmp ord x, 0.0) & (fcmp ord y, 0.0)  -> (fcmp ord x, y)
1268       // (fcmp uno x, 0.0) | (fcmp uno y, 0.0)  -> (fcmp uno x, y)
1269       return Builder.CreateFCmp(PredL, LHS0, RHS0);
1270   }
1271 
1272   return nullptr;
1273 }
1274 
1275 /// This a limited reassociation for a special case (see above) where we are
1276 /// checking if two values are either both NAN (unordered) or not-NAN (ordered).
1277 /// This could be handled more generally in '-reassociation', but it seems like
1278 /// an unlikely pattern for a large number of logic ops and fcmps.
1279 static Instruction *reassociateFCmps(BinaryOperator &BO,
1280                                      InstCombiner::BuilderTy &Builder) {
1281   Instruction::BinaryOps Opcode = BO.getOpcode();
1282   assert((Opcode == Instruction::And || Opcode == Instruction::Or) &&
1283          "Expecting and/or op for fcmp transform");
1284 
1285   // There are 4 commuted variants of the pattern. Canonicalize operands of this
1286   // logic op so an fcmp is operand 0 and a matching logic op is operand 1.
1287   Value *Op0 = BO.getOperand(0), *Op1 = BO.getOperand(1), *X;
1288   FCmpInst::Predicate Pred;
1289   if (match(Op1, m_FCmp(Pred, m_Value(), m_AnyZeroFP())))
1290     std::swap(Op0, Op1);
1291 
1292   // Match inner binop and the predicate for combining 2 NAN checks into 1.
1293   Value *BO10, *BO11;
1294   FCmpInst::Predicate NanPred = Opcode == Instruction::And ? FCmpInst::FCMP_ORD
1295                                                            : FCmpInst::FCMP_UNO;
1296   if (!match(Op0, m_FCmp(Pred, m_Value(X), m_AnyZeroFP())) || Pred != NanPred ||
1297       !match(Op1, m_BinOp(Opcode, m_Value(BO10), m_Value(BO11))))
1298     return nullptr;
1299 
1300   // The inner logic op must have a matching fcmp operand.
1301   Value *Y;
1302   if (!match(BO10, m_FCmp(Pred, m_Value(Y), m_AnyZeroFP())) ||
1303       Pred != NanPred || X->getType() != Y->getType())
1304     std::swap(BO10, BO11);
1305 
1306   if (!match(BO10, m_FCmp(Pred, m_Value(Y), m_AnyZeroFP())) ||
1307       Pred != NanPred || X->getType() != Y->getType())
1308     return nullptr;
1309 
1310   // and (fcmp ord X, 0), (and (fcmp ord Y, 0), Z) --> and (fcmp ord X, Y), Z
1311   // or  (fcmp uno X, 0), (or  (fcmp uno Y, 0), Z) --> or  (fcmp uno X, Y), Z
1312   Value *NewFCmp = Builder.CreateFCmp(Pred, X, Y);
1313   if (auto *NewFCmpInst = dyn_cast<FCmpInst>(NewFCmp)) {
1314     // Intersect FMF from the 2 source fcmps.
1315     NewFCmpInst->copyIRFlags(Op0);
1316     NewFCmpInst->andIRFlags(BO10);
1317   }
1318   return BinaryOperator::Create(Opcode, NewFCmp, BO11);
1319 }
1320 
1321 /// Match variations of De Morgan's Laws:
1322 /// (~A & ~B) == (~(A | B))
1323 /// (~A | ~B) == (~(A & B))
1324 static Instruction *matchDeMorgansLaws(BinaryOperator &I,
1325                                        InstCombiner::BuilderTy &Builder) {
1326   const Instruction::BinaryOps Opcode = I.getOpcode();
1327   assert((Opcode == Instruction::And || Opcode == Instruction::Or) &&
1328          "Trying to match De Morgan's Laws with something other than and/or");
1329 
1330   // Flip the logic operation.
1331   const Instruction::BinaryOps FlippedOpcode =
1332       (Opcode == Instruction::And) ? Instruction::Or : Instruction::And;
1333 
1334   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1335   Value *A, *B;
1336   if (match(Op0, m_OneUse(m_Not(m_Value(A)))) &&
1337       match(Op1, m_OneUse(m_Not(m_Value(B)))) &&
1338       !InstCombiner::isFreeToInvert(A, A->hasOneUse()) &&
1339       !InstCombiner::isFreeToInvert(B, B->hasOneUse())) {
1340     Value *AndOr =
1341         Builder.CreateBinOp(FlippedOpcode, A, B, I.getName() + ".demorgan");
1342     return BinaryOperator::CreateNot(AndOr);
1343   }
1344 
1345   // The 'not' ops may require reassociation.
1346   // (A & ~B) & ~C --> A & ~(B | C)
1347   // (~B & A) & ~C --> A & ~(B | C)
1348   // (A | ~B) | ~C --> A | ~(B & C)
1349   // (~B | A) | ~C --> A | ~(B & C)
1350   Value *C;
1351   if (match(Op0, m_OneUse(m_c_BinOp(Opcode, m_Value(A), m_Not(m_Value(B))))) &&
1352       match(Op1, m_Not(m_Value(C)))) {
1353     Value *FlippedBO = Builder.CreateBinOp(FlippedOpcode, B, C);
1354     return BinaryOperator::Create(Opcode, A, Builder.CreateNot(FlippedBO));
1355   }
1356 
1357   return nullptr;
1358 }
1359 
1360 bool InstCombinerImpl::shouldOptimizeCast(CastInst *CI) {
1361   Value *CastSrc = CI->getOperand(0);
1362 
1363   // Noop casts and casts of constants should be eliminated trivially.
1364   if (CI->getSrcTy() == CI->getDestTy() || isa<Constant>(CastSrc))
1365     return false;
1366 
1367   // If this cast is paired with another cast that can be eliminated, we prefer
1368   // to have it eliminated.
1369   if (const auto *PrecedingCI = dyn_cast<CastInst>(CastSrc))
1370     if (isEliminableCastPair(PrecedingCI, CI))
1371       return false;
1372 
1373   return true;
1374 }
1375 
1376 /// Fold {and,or,xor} (cast X), C.
1377 static Instruction *foldLogicCastConstant(BinaryOperator &Logic, CastInst *Cast,
1378                                           InstCombiner::BuilderTy &Builder) {
1379   Constant *C = dyn_cast<Constant>(Logic.getOperand(1));
1380   if (!C)
1381     return nullptr;
1382 
1383   auto LogicOpc = Logic.getOpcode();
1384   Type *DestTy = Logic.getType();
1385   Type *SrcTy = Cast->getSrcTy();
1386 
1387   // Move the logic operation ahead of a zext or sext if the constant is
1388   // unchanged in the smaller source type. Performing the logic in a smaller
1389   // type may provide more information to later folds, and the smaller logic
1390   // instruction may be cheaper (particularly in the case of vectors).
1391   Value *X;
1392   if (match(Cast, m_OneUse(m_ZExt(m_Value(X))))) {
1393     Constant *TruncC = ConstantExpr::getTrunc(C, SrcTy);
1394     Constant *ZextTruncC = ConstantExpr::getZExt(TruncC, DestTy);
1395     if (ZextTruncC == C) {
1396       // LogicOpc (zext X), C --> zext (LogicOpc X, C)
1397       Value *NewOp = Builder.CreateBinOp(LogicOpc, X, TruncC);
1398       return new ZExtInst(NewOp, DestTy);
1399     }
1400   }
1401 
1402   if (match(Cast, m_OneUse(m_SExt(m_Value(X))))) {
1403     Constant *TruncC = ConstantExpr::getTrunc(C, SrcTy);
1404     Constant *SextTruncC = ConstantExpr::getSExt(TruncC, DestTy);
1405     if (SextTruncC == C) {
1406       // LogicOpc (sext X), C --> sext (LogicOpc X, C)
1407       Value *NewOp = Builder.CreateBinOp(LogicOpc, X, TruncC);
1408       return new SExtInst(NewOp, DestTy);
1409     }
1410   }
1411 
1412   return nullptr;
1413 }
1414 
1415 /// Fold {and,or,xor} (cast X), Y.
1416 Instruction *InstCombinerImpl::foldCastedBitwiseLogic(BinaryOperator &I) {
1417   auto LogicOpc = I.getOpcode();
1418   assert(I.isBitwiseLogicOp() && "Unexpected opcode for bitwise logic folding");
1419 
1420   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1421   CastInst *Cast0 = dyn_cast<CastInst>(Op0);
1422   if (!Cast0)
1423     return nullptr;
1424 
1425   // This must be a cast from an integer or integer vector source type to allow
1426   // transformation of the logic operation to the source type.
1427   Type *DestTy = I.getType();
1428   Type *SrcTy = Cast0->getSrcTy();
1429   if (!SrcTy->isIntOrIntVectorTy())
1430     return nullptr;
1431 
1432   if (Instruction *Ret = foldLogicCastConstant(I, Cast0, Builder))
1433     return Ret;
1434 
1435   CastInst *Cast1 = dyn_cast<CastInst>(Op1);
1436   if (!Cast1)
1437     return nullptr;
1438 
1439   // Both operands of the logic operation are casts. The casts must be of the
1440   // same type for reduction.
1441   auto CastOpcode = Cast0->getOpcode();
1442   if (CastOpcode != Cast1->getOpcode() || SrcTy != Cast1->getSrcTy())
1443     return nullptr;
1444 
1445   Value *Cast0Src = Cast0->getOperand(0);
1446   Value *Cast1Src = Cast1->getOperand(0);
1447 
1448   // fold logic(cast(A), cast(B)) -> cast(logic(A, B))
1449   if (shouldOptimizeCast(Cast0) && shouldOptimizeCast(Cast1)) {
1450     Value *NewOp = Builder.CreateBinOp(LogicOpc, Cast0Src, Cast1Src,
1451                                         I.getName());
1452     return CastInst::Create(CastOpcode, NewOp, DestTy);
1453   }
1454 
1455   // For now, only 'and'/'or' have optimizations after this.
1456   if (LogicOpc == Instruction::Xor)
1457     return nullptr;
1458 
1459   // If this is logic(cast(icmp), cast(icmp)), try to fold this even if the
1460   // cast is otherwise not optimizable.  This happens for vector sexts.
1461   ICmpInst *ICmp0 = dyn_cast<ICmpInst>(Cast0Src);
1462   ICmpInst *ICmp1 = dyn_cast<ICmpInst>(Cast1Src);
1463   if (ICmp0 && ICmp1) {
1464     if (Value *Res =
1465             foldAndOrOfICmps(ICmp0, ICmp1, I, LogicOpc == Instruction::And))
1466       return CastInst::Create(CastOpcode, Res, DestTy);
1467     return nullptr;
1468   }
1469 
1470   // If this is logic(cast(fcmp), cast(fcmp)), try to fold this even if the
1471   // cast is otherwise not optimizable.  This happens for vector sexts.
1472   FCmpInst *FCmp0 = dyn_cast<FCmpInst>(Cast0Src);
1473   FCmpInst *FCmp1 = dyn_cast<FCmpInst>(Cast1Src);
1474   if (FCmp0 && FCmp1)
1475     if (Value *R = foldLogicOfFCmps(FCmp0, FCmp1, LogicOpc == Instruction::And))
1476       return CastInst::Create(CastOpcode, R, DestTy);
1477 
1478   return nullptr;
1479 }
1480 
1481 static Instruction *foldAndToXor(BinaryOperator &I,
1482                                  InstCombiner::BuilderTy &Builder) {
1483   assert(I.getOpcode() == Instruction::And);
1484   Value *Op0 = I.getOperand(0);
1485   Value *Op1 = I.getOperand(1);
1486   Value *A, *B;
1487 
1488   // Operand complexity canonicalization guarantees that the 'or' is Op0.
1489   // (A | B) & ~(A & B) --> A ^ B
1490   // (A | B) & ~(B & A) --> A ^ B
1491   if (match(&I, m_BinOp(m_Or(m_Value(A), m_Value(B)),
1492                         m_Not(m_c_And(m_Deferred(A), m_Deferred(B))))))
1493     return BinaryOperator::CreateXor(A, B);
1494 
1495   // (A | ~B) & (~A | B) --> ~(A ^ B)
1496   // (A | ~B) & (B | ~A) --> ~(A ^ B)
1497   // (~B | A) & (~A | B) --> ~(A ^ B)
1498   // (~B | A) & (B | ~A) --> ~(A ^ B)
1499   if (Op0->hasOneUse() || Op1->hasOneUse())
1500     if (match(&I, m_BinOp(m_c_Or(m_Value(A), m_Not(m_Value(B))),
1501                           m_c_Or(m_Not(m_Deferred(A)), m_Deferred(B)))))
1502       return BinaryOperator::CreateNot(Builder.CreateXor(A, B));
1503 
1504   return nullptr;
1505 }
1506 
1507 static Instruction *foldOrToXor(BinaryOperator &I,
1508                                 InstCombiner::BuilderTy &Builder) {
1509   assert(I.getOpcode() == Instruction::Or);
1510   Value *Op0 = I.getOperand(0);
1511   Value *Op1 = I.getOperand(1);
1512   Value *A, *B;
1513 
1514   // Operand complexity canonicalization guarantees that the 'and' is Op0.
1515   // (A & B) | ~(A | B) --> ~(A ^ B)
1516   // (A & B) | ~(B | A) --> ~(A ^ B)
1517   if (Op0->hasOneUse() || Op1->hasOneUse())
1518     if (match(Op0, m_And(m_Value(A), m_Value(B))) &&
1519         match(Op1, m_Not(m_c_Or(m_Specific(A), m_Specific(B)))))
1520       return BinaryOperator::CreateNot(Builder.CreateXor(A, B));
1521 
1522   // Operand complexity canonicalization guarantees that the 'xor' is Op0.
1523   // (A ^ B) | ~(A | B) --> ~(A & B)
1524   // (A ^ B) | ~(B | A) --> ~(A & B)
1525   if (Op0->hasOneUse() || Op1->hasOneUse())
1526     if (match(Op0, m_Xor(m_Value(A), m_Value(B))) &&
1527         match(Op1, m_Not(m_c_Or(m_Specific(A), m_Specific(B)))))
1528       return BinaryOperator::CreateNot(Builder.CreateAnd(A, B));
1529 
1530   // (A & ~B) | (~A & B) --> A ^ B
1531   // (A & ~B) | (B & ~A) --> A ^ B
1532   // (~B & A) | (~A & B) --> A ^ B
1533   // (~B & A) | (B & ~A) --> A ^ B
1534   if (match(Op0, m_c_And(m_Value(A), m_Not(m_Value(B)))) &&
1535       match(Op1, m_c_And(m_Not(m_Specific(A)), m_Specific(B))))
1536     return BinaryOperator::CreateXor(A, B);
1537 
1538   return nullptr;
1539 }
1540 
1541 /// Return true if a constant shift amount is always less than the specified
1542 /// bit-width. If not, the shift could create poison in the narrower type.
1543 static bool canNarrowShiftAmt(Constant *C, unsigned BitWidth) {
1544   APInt Threshold(C->getType()->getScalarSizeInBits(), BitWidth);
1545   return match(C, m_SpecificInt_ICMP(ICmpInst::ICMP_ULT, Threshold));
1546 }
1547 
1548 /// Try to use narrower ops (sink zext ops) for an 'and' with binop operand and
1549 /// a common zext operand: and (binop (zext X), C), (zext X).
1550 Instruction *InstCombinerImpl::narrowMaskedBinOp(BinaryOperator &And) {
1551   // This transform could also apply to {or, and, xor}, but there are better
1552   // folds for those cases, so we don't expect those patterns here. AShr is not
1553   // handled because it should always be transformed to LShr in this sequence.
1554   // The subtract transform is different because it has a constant on the left.
1555   // Add/mul commute the constant to RHS; sub with constant RHS becomes add.
1556   Value *Op0 = And.getOperand(0), *Op1 = And.getOperand(1);
1557   Constant *C;
1558   if (!match(Op0, m_OneUse(m_Add(m_Specific(Op1), m_Constant(C)))) &&
1559       !match(Op0, m_OneUse(m_Mul(m_Specific(Op1), m_Constant(C)))) &&
1560       !match(Op0, m_OneUse(m_LShr(m_Specific(Op1), m_Constant(C)))) &&
1561       !match(Op0, m_OneUse(m_Shl(m_Specific(Op1), m_Constant(C)))) &&
1562       !match(Op0, m_OneUse(m_Sub(m_Constant(C), m_Specific(Op1)))))
1563     return nullptr;
1564 
1565   Value *X;
1566   if (!match(Op1, m_ZExt(m_Value(X))) || Op1->hasNUsesOrMore(3))
1567     return nullptr;
1568 
1569   Type *Ty = And.getType();
1570   if (!isa<VectorType>(Ty) && !shouldChangeType(Ty, X->getType()))
1571     return nullptr;
1572 
1573   // If we're narrowing a shift, the shift amount must be safe (less than the
1574   // width) in the narrower type. If the shift amount is greater, instsimplify
1575   // usually handles that case, but we can't guarantee/assert it.
1576   Instruction::BinaryOps Opc = cast<BinaryOperator>(Op0)->getOpcode();
1577   if (Opc == Instruction::LShr || Opc == Instruction::Shl)
1578     if (!canNarrowShiftAmt(C, X->getType()->getScalarSizeInBits()))
1579       return nullptr;
1580 
1581   // and (sub C, (zext X)), (zext X) --> zext (and (sub C', X), X)
1582   // and (binop (zext X), C), (zext X) --> zext (and (binop X, C'), X)
1583   Value *NewC = ConstantExpr::getTrunc(C, X->getType());
1584   Value *NewBO = Opc == Instruction::Sub ? Builder.CreateBinOp(Opc, NewC, X)
1585                                          : Builder.CreateBinOp(Opc, X, NewC);
1586   return new ZExtInst(Builder.CreateAnd(NewBO, X), Ty);
1587 }
1588 
1589 /// Try folding relatively complex patterns for both And and Or operations
1590 /// with all And and Or swapped.
1591 static Instruction *foldComplexAndOrPatterns(BinaryOperator &I,
1592                                              InstCombiner::BuilderTy &Builder) {
1593   const Instruction::BinaryOps Opcode = I.getOpcode();
1594   assert(Opcode == Instruction::And || Opcode == Instruction::Or);
1595 
1596   // Flip the logic operation.
1597   const Instruction::BinaryOps FlippedOpcode =
1598       (Opcode == Instruction::And) ? Instruction::Or : Instruction::And;
1599 
1600   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1601   Value *A, *B, *C, *X, *Y, *Dummy;
1602 
1603   // Match following expressions:
1604   // (~(A | B) & C)
1605   // (~(A & B) | C)
1606   // Captures X = ~(A | B) or ~(A & B)
1607   const auto matchNotOrAnd =
1608       [Opcode, FlippedOpcode](Value *Op, auto m_A, auto m_B, auto m_C,
1609                               Value *&X, bool CountUses = false) -> bool {
1610     if (CountUses && !Op->hasOneUse())
1611       return false;
1612 
1613     if (match(Op, m_c_BinOp(FlippedOpcode,
1614                             m_CombineAnd(m_Value(X),
1615                                          m_Not(m_c_BinOp(Opcode, m_A, m_B))),
1616                             m_C)))
1617       return !CountUses || X->hasOneUse();
1618 
1619     return false;
1620   };
1621 
1622   // (~(A | B) & C) | ... --> ...
1623   // (~(A & B) | C) & ... --> ...
1624   // TODO: One use checks are conservative. We just need to check that a total
1625   //       number of multiple used values does not exceed reduction
1626   //       in operations.
1627   if (matchNotOrAnd(Op0, m_Value(A), m_Value(B), m_Value(C), X)) {
1628     // (~(A | B) & C) | (~(A | C) & B) --> (B ^ C) & ~A
1629     // (~(A & B) | C) & (~(A & C) | B) --> ~((B ^ C) & A)
1630     if (matchNotOrAnd(Op1, m_Specific(A), m_Specific(C), m_Specific(B), Dummy,
1631                       true)) {
1632       Value *Xor = Builder.CreateXor(B, C);
1633       return (Opcode == Instruction::Or)
1634                  ? BinaryOperator::CreateAnd(Xor, Builder.CreateNot(A))
1635                  : BinaryOperator::CreateNot(Builder.CreateAnd(Xor, A));
1636     }
1637 
1638     // (~(A | B) & C) | (~(B | C) & A) --> (A ^ C) & ~B
1639     // (~(A & B) | C) & (~(B & C) | A) --> ~((A ^ C) & B)
1640     if (matchNotOrAnd(Op1, m_Specific(B), m_Specific(C), m_Specific(A), Dummy,
1641                       true)) {
1642       Value *Xor = Builder.CreateXor(A, C);
1643       return (Opcode == Instruction::Or)
1644                  ? BinaryOperator::CreateAnd(Xor, Builder.CreateNot(B))
1645                  : BinaryOperator::CreateNot(Builder.CreateAnd(Xor, B));
1646     }
1647 
1648     // (~(A | B) & C) | ~(A | C) --> ~((B & C) | A)
1649     // (~(A & B) | C) & ~(A & C) --> ~((B | C) & A)
1650     if (match(Op1, m_OneUse(m_Not(m_OneUse(
1651                        m_c_BinOp(Opcode, m_Specific(A), m_Specific(C)))))))
1652       return BinaryOperator::CreateNot(Builder.CreateBinOp(
1653           Opcode, Builder.CreateBinOp(FlippedOpcode, B, C), A));
1654 
1655     // (~(A | B) & C) | ~(B | C) --> ~((A & C) | B)
1656     // (~(A & B) | C) & ~(B & C) --> ~((A | C) & B)
1657     if (match(Op1, m_OneUse(m_Not(m_OneUse(
1658                        m_c_BinOp(Opcode, m_Specific(B), m_Specific(C)))))))
1659       return BinaryOperator::CreateNot(Builder.CreateBinOp(
1660           Opcode, Builder.CreateBinOp(FlippedOpcode, A, C), B));
1661 
1662     // (~(A | B) & C) | ~(C | (A ^ B)) --> ~((A | B) & (C | (A ^ B)))
1663     // Note, the pattern with swapped and/or is not handled because the
1664     // result is more undefined than a source:
1665     // (~(A & B) | C) & ~(C & (A ^ B)) --> (A ^ B ^ C) | ~(A | C) is invalid.
1666     if (Opcode == Instruction::Or && Op0->hasOneUse() &&
1667         match(Op1, m_OneUse(m_Not(m_CombineAnd(
1668                        m_Value(Y),
1669                        m_c_BinOp(Opcode, m_Specific(C),
1670                                  m_c_Xor(m_Specific(A), m_Specific(B)))))))) {
1671       // X = ~(A | B)
1672       // Y = (C | (A ^ B)
1673       Value *Or = cast<BinaryOperator>(X)->getOperand(0);
1674       return BinaryOperator::CreateNot(Builder.CreateAnd(Or, Y));
1675     }
1676   }
1677 
1678   // (~A & B & C) | ... --> ...
1679   // (~A | B | C) | ... --> ...
1680   // TODO: One use checks are conservative. We just need to check that a total
1681   //       number of multiple used values does not exceed reduction
1682   //       in operations.
1683   if (match(Op0,
1684             m_OneUse(m_c_BinOp(FlippedOpcode,
1685                                m_BinOp(FlippedOpcode, m_Value(B), m_Value(C)),
1686                                m_CombineAnd(m_Value(X), m_Not(m_Value(A)))))) ||
1687       match(Op0, m_OneUse(m_c_BinOp(
1688                      FlippedOpcode,
1689                      m_c_BinOp(FlippedOpcode, m_Value(C),
1690                                m_CombineAnd(m_Value(X), m_Not(m_Value(A)))),
1691                      m_Value(B))))) {
1692     // X = ~A
1693     // (~A & B & C) | ~(A | B | C) --> ~(A | (B ^ C))
1694     // (~A | B | C) & ~(A & B & C) --> (~A | (B ^ C))
1695     if (match(Op1, m_OneUse(m_Not(m_c_BinOp(
1696                        Opcode, m_c_BinOp(Opcode, m_Specific(A), m_Specific(B)),
1697                        m_Specific(C))))) ||
1698         match(Op1, m_OneUse(m_Not(m_c_BinOp(
1699                        Opcode, m_c_BinOp(Opcode, m_Specific(B), m_Specific(C)),
1700                        m_Specific(A))))) ||
1701         match(Op1, m_OneUse(m_Not(m_c_BinOp(
1702                        Opcode, m_c_BinOp(Opcode, m_Specific(A), m_Specific(C)),
1703                        m_Specific(B)))))) {
1704       Value *Xor = Builder.CreateXor(B, C);
1705       return (Opcode == Instruction::Or)
1706                  ? BinaryOperator::CreateNot(Builder.CreateOr(Xor, A))
1707                  : BinaryOperator::CreateOr(Xor, X);
1708     }
1709 
1710     // (~A & B & C) | ~(A | B) --> (C | ~B) & ~A
1711     // (~A | B | C) & ~(A & B) --> (C & ~B) | ~A
1712     if (match(Op1, m_OneUse(m_Not(m_OneUse(
1713                        m_c_BinOp(Opcode, m_Specific(A), m_Specific(B)))))))
1714       return BinaryOperator::Create(
1715           FlippedOpcode, Builder.CreateBinOp(Opcode, C, Builder.CreateNot(B)),
1716           X);
1717 
1718     // (~A & B & C) | ~(A | C) --> (B | ~C) & ~A
1719     // (~A | B | C) & ~(A & C) --> (B & ~C) | ~A
1720     if (match(Op1, m_OneUse(m_Not(m_OneUse(
1721                        m_c_BinOp(Opcode, m_Specific(A), m_Specific(C)))))))
1722       return BinaryOperator::Create(
1723           FlippedOpcode, Builder.CreateBinOp(Opcode, B, Builder.CreateNot(C)),
1724           X);
1725   }
1726 
1727   return nullptr;
1728 }
1729 
1730 // FIXME: We use commutative matchers (m_c_*) for some, but not all, matches
1731 // here. We should standardize that construct where it is needed or choose some
1732 // other way to ensure that commutated variants of patterns are not missed.
1733 Instruction *InstCombinerImpl::visitAnd(BinaryOperator &I) {
1734   Type *Ty = I.getType();
1735 
1736   if (Value *V = SimplifyAndInst(I.getOperand(0), I.getOperand(1),
1737                                  SQ.getWithInstruction(&I)))
1738     return replaceInstUsesWith(I, V);
1739 
1740   if (SimplifyAssociativeOrCommutative(I))
1741     return &I;
1742 
1743   if (Instruction *X = foldVectorBinop(I))
1744     return X;
1745 
1746   if (Instruction *Phi = foldBinopWithPhiOperands(I))
1747     return Phi;
1748 
1749   // See if we can simplify any instructions used by the instruction whose sole
1750   // purpose is to compute bits we don't care about.
1751   if (SimplifyDemandedInstructionBits(I))
1752     return &I;
1753 
1754   // Do this before using distributive laws to catch simple and/or/not patterns.
1755   if (Instruction *Xor = foldAndToXor(I, Builder))
1756     return Xor;
1757 
1758   if (Instruction *X = foldComplexAndOrPatterns(I, Builder))
1759     return X;
1760 
1761   // (A|B)&(A|C) -> A|(B&C) etc
1762   if (Value *V = SimplifyUsingDistributiveLaws(I))
1763     return replaceInstUsesWith(I, V);
1764 
1765   if (Value *V = SimplifyBSwap(I, Builder))
1766     return replaceInstUsesWith(I, V);
1767 
1768   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1769 
1770   Value *X, *Y;
1771   if (match(Op0, m_OneUse(m_LogicalShift(m_One(), m_Value(X)))) &&
1772       match(Op1, m_One())) {
1773     // (1 << X) & 1 --> zext(X == 0)
1774     // (1 >> X) & 1 --> zext(X == 0)
1775     Value *IsZero = Builder.CreateICmpEQ(X, ConstantInt::get(Ty, 0));
1776     return new ZExtInst(IsZero, Ty);
1777   }
1778 
1779   const APInt *C;
1780   if (match(Op1, m_APInt(C))) {
1781     const APInt *XorC;
1782     if (match(Op0, m_OneUse(m_Xor(m_Value(X), m_APInt(XorC))))) {
1783       // (X ^ C1) & C2 --> (X & C2) ^ (C1&C2)
1784       Constant *NewC = ConstantInt::get(Ty, *C & *XorC);
1785       Value *And = Builder.CreateAnd(X, Op1);
1786       And->takeName(Op0);
1787       return BinaryOperator::CreateXor(And, NewC);
1788     }
1789 
1790     const APInt *OrC;
1791     if (match(Op0, m_OneUse(m_Or(m_Value(X), m_APInt(OrC))))) {
1792       // (X | C1) & C2 --> (X & C2^(C1&C2)) | (C1&C2)
1793       // NOTE: This reduces the number of bits set in the & mask, which
1794       // can expose opportunities for store narrowing for scalars.
1795       // NOTE: SimplifyDemandedBits should have already removed bits from C1
1796       // that aren't set in C2. Meaning we can replace (C1&C2) with C1 in
1797       // above, but this feels safer.
1798       APInt Together = *C & *OrC;
1799       Value *And = Builder.CreateAnd(X, ConstantInt::get(Ty, Together ^ *C));
1800       And->takeName(Op0);
1801       return BinaryOperator::CreateOr(And, ConstantInt::get(Ty, Together));
1802     }
1803 
1804     // If the mask is only needed on one incoming arm, push the 'and' op up.
1805     if (match(Op0, m_OneUse(m_Xor(m_Value(X), m_Value(Y)))) ||
1806         match(Op0, m_OneUse(m_Or(m_Value(X), m_Value(Y))))) {
1807       APInt NotAndMask(~(*C));
1808       BinaryOperator::BinaryOps BinOp = cast<BinaryOperator>(Op0)->getOpcode();
1809       if (MaskedValueIsZero(X, NotAndMask, 0, &I)) {
1810         // Not masking anything out for the LHS, move mask to RHS.
1811         // and ({x}or X, Y), C --> {x}or X, (and Y, C)
1812         Value *NewRHS = Builder.CreateAnd(Y, Op1, Y->getName() + ".masked");
1813         return BinaryOperator::Create(BinOp, X, NewRHS);
1814       }
1815       if (!isa<Constant>(Y) && MaskedValueIsZero(Y, NotAndMask, 0, &I)) {
1816         // Not masking anything out for the RHS, move mask to LHS.
1817         // and ({x}or X, Y), C --> {x}or (and X, C), Y
1818         Value *NewLHS = Builder.CreateAnd(X, Op1, X->getName() + ".masked");
1819         return BinaryOperator::Create(BinOp, NewLHS, Y);
1820       }
1821     }
1822 
1823     unsigned Width = Ty->getScalarSizeInBits();
1824     const APInt *ShiftC;
1825     if (match(Op0, m_OneUse(m_SExt(m_AShr(m_Value(X), m_APInt(ShiftC)))))) {
1826       if (*C == APInt::getLowBitsSet(Width, Width - ShiftC->getZExtValue())) {
1827         // We are clearing high bits that were potentially set by sext+ashr:
1828         // and (sext (ashr X, ShiftC)), C --> lshr (sext X), ShiftC
1829         Value *Sext = Builder.CreateSExt(X, Ty);
1830         Constant *ShAmtC = ConstantInt::get(Ty, ShiftC->zext(Width));
1831         return BinaryOperator::CreateLShr(Sext, ShAmtC);
1832       }
1833     }
1834 
1835     // If this 'and' clears the sign-bits added by ashr, replace with lshr:
1836     // and (ashr X, ShiftC), C --> lshr X, ShiftC
1837     if (match(Op0, m_AShr(m_Value(X), m_APInt(ShiftC))) && ShiftC->ult(Width) &&
1838         C->isMask(Width - ShiftC->getZExtValue()))
1839       return BinaryOperator::CreateLShr(X, ConstantInt::get(Ty, *ShiftC));
1840 
1841     const APInt *AddC;
1842     if (match(Op0, m_Add(m_Value(X), m_APInt(AddC)))) {
1843       // If we add zeros to every bit below a mask, the add has no effect:
1844       // (X + AddC) & LowMaskC --> X & LowMaskC
1845       unsigned Ctlz = C->countLeadingZeros();
1846       APInt LowMask(APInt::getLowBitsSet(Width, Width - Ctlz));
1847       if ((*AddC & LowMask).isZero())
1848         return BinaryOperator::CreateAnd(X, Op1);
1849 
1850       // If we are masking the result of the add down to exactly one bit and
1851       // the constant we are adding has no bits set below that bit, then the
1852       // add is flipping a single bit. Example:
1853       // (X + 4) & 4 --> (X & 4) ^ 4
1854       if (Op0->hasOneUse() && C->isPowerOf2() && (*AddC & (*C - 1)) == 0) {
1855         assert((*C & *AddC) != 0 && "Expected common bit");
1856         Value *NewAnd = Builder.CreateAnd(X, Op1);
1857         return BinaryOperator::CreateXor(NewAnd, Op1);
1858       }
1859     }
1860 
1861     // ((C1 OP zext(X)) & C2) -> zext((C1 OP X) & C2) if C2 fits in the
1862     // bitwidth of X and OP behaves well when given trunc(C1) and X.
1863     auto isSuitableBinOpcode = [](BinaryOperator *B) {
1864       switch (B->getOpcode()) {
1865       case Instruction::Xor:
1866       case Instruction::Or:
1867       case Instruction::Mul:
1868       case Instruction::Add:
1869       case Instruction::Sub:
1870         return true;
1871       default:
1872         return false;
1873       }
1874     };
1875     BinaryOperator *BO;
1876     if (match(Op0, m_OneUse(m_BinOp(BO))) && isSuitableBinOpcode(BO)) {
1877       Value *X;
1878       const APInt *C1;
1879       // TODO: The one-use restrictions could be relaxed a little if the AND
1880       // is going to be removed.
1881       if (match(BO, m_c_BinOp(m_OneUse(m_ZExt(m_Value(X))), m_APInt(C1))) &&
1882           C->isIntN(X->getType()->getScalarSizeInBits())) {
1883         unsigned XWidth = X->getType()->getScalarSizeInBits();
1884         Constant *TruncC1 = ConstantInt::get(X->getType(), C1->trunc(XWidth));
1885         Value *BinOp = isa<ZExtInst>(BO->getOperand(0))
1886                            ? Builder.CreateBinOp(BO->getOpcode(), X, TruncC1)
1887                            : Builder.CreateBinOp(BO->getOpcode(), TruncC1, X);
1888         Constant *TruncC = ConstantInt::get(X->getType(), C->trunc(XWidth));
1889         Value *And = Builder.CreateAnd(BinOp, TruncC);
1890         return new ZExtInst(And, Ty);
1891       }
1892     }
1893   }
1894 
1895   if (match(&I, m_And(m_OneUse(m_Shl(m_ZExt(m_Value(X)), m_Value(Y))),
1896                       m_SignMask())) &&
1897       match(Y, m_SpecificInt_ICMP(
1898                    ICmpInst::Predicate::ICMP_EQ,
1899                    APInt(Ty->getScalarSizeInBits(),
1900                          Ty->getScalarSizeInBits() -
1901                              X->getType()->getScalarSizeInBits())))) {
1902     auto *SExt = Builder.CreateSExt(X, Ty, X->getName() + ".signext");
1903     auto *SanitizedSignMask = cast<Constant>(Op1);
1904     // We must be careful with the undef elements of the sign bit mask, however:
1905     // the mask elt can be undef iff the shift amount for that lane was undef,
1906     // otherwise we need to sanitize undef masks to zero.
1907     SanitizedSignMask = Constant::replaceUndefsWith(
1908         SanitizedSignMask, ConstantInt::getNullValue(Ty->getScalarType()));
1909     SanitizedSignMask =
1910         Constant::mergeUndefsWith(SanitizedSignMask, cast<Constant>(Y));
1911     return BinaryOperator::CreateAnd(SExt, SanitizedSignMask);
1912   }
1913 
1914   if (Instruction *Z = narrowMaskedBinOp(I))
1915     return Z;
1916 
1917   if (I.getType()->isIntOrIntVectorTy(1)) {
1918     if (auto *SI0 = dyn_cast<SelectInst>(Op0)) {
1919       if (auto *I =
1920               foldAndOrOfSelectUsingImpliedCond(Op1, *SI0, /* IsAnd */ true))
1921         return I;
1922     }
1923     if (auto *SI1 = dyn_cast<SelectInst>(Op1)) {
1924       if (auto *I =
1925               foldAndOrOfSelectUsingImpliedCond(Op0, *SI1, /* IsAnd */ true))
1926         return I;
1927     }
1928   }
1929 
1930   if (Instruction *FoldedLogic = foldBinOpIntoSelectOrPhi(I))
1931     return FoldedLogic;
1932 
1933   if (Instruction *DeMorgan = matchDeMorgansLaws(I, Builder))
1934     return DeMorgan;
1935 
1936   {
1937     Value *A, *B, *C;
1938     // A & (A ^ B) --> A & ~B
1939     if (match(Op1, m_OneUse(m_c_Xor(m_Specific(Op0), m_Value(B)))))
1940       return BinaryOperator::CreateAnd(Op0, Builder.CreateNot(B));
1941     // (A ^ B) & A --> A & ~B
1942     if (match(Op0, m_OneUse(m_c_Xor(m_Specific(Op1), m_Value(B)))))
1943       return BinaryOperator::CreateAnd(Op1, Builder.CreateNot(B));
1944 
1945     // A & ~(A ^ B) --> A & B
1946     if (match(Op1, m_Not(m_c_Xor(m_Specific(Op0), m_Value(B)))))
1947       return BinaryOperator::CreateAnd(Op0, B);
1948     // ~(A ^ B) & A --> A & B
1949     if (match(Op0, m_Not(m_c_Xor(m_Specific(Op1), m_Value(B)))))
1950       return BinaryOperator::CreateAnd(Op1, B);
1951 
1952     // (A ^ B) & ((B ^ C) ^ A) -> (A ^ B) & ~C
1953     if (match(Op0, m_Xor(m_Value(A), m_Value(B))))
1954       if (match(Op1, m_Xor(m_Xor(m_Specific(B), m_Value(C)), m_Specific(A))))
1955         if (Op1->hasOneUse() || isFreeToInvert(C, C->hasOneUse()))
1956           return BinaryOperator::CreateAnd(Op0, Builder.CreateNot(C));
1957 
1958     // ((A ^ C) ^ B) & (B ^ A) -> (B ^ A) & ~C
1959     if (match(Op0, m_Xor(m_Xor(m_Value(A), m_Value(C)), m_Value(B))))
1960       if (match(Op1, m_Xor(m_Specific(B), m_Specific(A))))
1961         if (Op0->hasOneUse() || isFreeToInvert(C, C->hasOneUse()))
1962           return BinaryOperator::CreateAnd(Op1, Builder.CreateNot(C));
1963 
1964     // (A | B) & (~A ^ B) -> A & B
1965     // (A | B) & (B ^ ~A) -> A & B
1966     // (B | A) & (~A ^ B) -> A & B
1967     // (B | A) & (B ^ ~A) -> A & B
1968     if (match(Op1, m_c_Xor(m_Not(m_Value(A)), m_Value(B))) &&
1969         match(Op0, m_c_Or(m_Specific(A), m_Specific(B))))
1970       return BinaryOperator::CreateAnd(A, B);
1971 
1972     // (~A ^ B) & (A | B) -> A & B
1973     // (~A ^ B) & (B | A) -> A & B
1974     // (B ^ ~A) & (A | B) -> A & B
1975     // (B ^ ~A) & (B | A) -> A & B
1976     if (match(Op0, m_c_Xor(m_Not(m_Value(A)), m_Value(B))) &&
1977         match(Op1, m_c_Or(m_Specific(A), m_Specific(B))))
1978       return BinaryOperator::CreateAnd(A, B);
1979 
1980     // (~A | B) & (A ^ B) -> ~A & B
1981     // (~A | B) & (B ^ A) -> ~A & B
1982     // (B | ~A) & (A ^ B) -> ~A & B
1983     // (B | ~A) & (B ^ A) -> ~A & B
1984     if (match(Op0, m_c_Or(m_Not(m_Value(A)), m_Value(B))) &&
1985         match(Op1, m_c_Xor(m_Specific(A), m_Specific(B))))
1986       return BinaryOperator::CreateAnd(Builder.CreateNot(A), B);
1987 
1988     // (A ^ B) & (~A | B) -> ~A & B
1989     // (B ^ A) & (~A | B) -> ~A & B
1990     // (A ^ B) & (B | ~A) -> ~A & B
1991     // (B ^ A) & (B | ~A) -> ~A & B
1992     if (match(Op1, m_c_Or(m_Not(m_Value(A)), m_Value(B))) &&
1993         match(Op0, m_c_Xor(m_Specific(A), m_Specific(B))))
1994       return BinaryOperator::CreateAnd(Builder.CreateNot(A), B);
1995   }
1996 
1997   {
1998     ICmpInst *LHS = dyn_cast<ICmpInst>(Op0);
1999     ICmpInst *RHS = dyn_cast<ICmpInst>(Op1);
2000     if (LHS && RHS)
2001       if (Value *Res = foldAndOrOfICmps(LHS, RHS, I, /* IsAnd */ true))
2002         return replaceInstUsesWith(I, Res);
2003 
2004     // TODO: Make this recursive; it's a little tricky because an arbitrary
2005     // number of 'and' instructions might have to be created.
2006     if (LHS && match(Op1, m_OneUse(m_And(m_Value(X), m_Value(Y))))) {
2007       if (auto *Cmp = dyn_cast<ICmpInst>(X))
2008         if (Value *Res = foldAndOrOfICmps(LHS, Cmp, I, /* IsAnd */ true))
2009           return replaceInstUsesWith(I, Builder.CreateAnd(Res, Y));
2010       if (auto *Cmp = dyn_cast<ICmpInst>(Y))
2011         if (Value *Res = foldAndOrOfICmps(LHS, Cmp, I, /* IsAnd */ true))
2012           return replaceInstUsesWith(I, Builder.CreateAnd(Res, X));
2013     }
2014     if (RHS && match(Op0, m_OneUse(m_And(m_Value(X), m_Value(Y))))) {
2015       if (auto *Cmp = dyn_cast<ICmpInst>(X))
2016         if (Value *Res = foldAndOrOfICmps(Cmp, RHS, I, /* IsAnd */ true))
2017           return replaceInstUsesWith(I, Builder.CreateAnd(Res, Y));
2018       if (auto *Cmp = dyn_cast<ICmpInst>(Y))
2019         if (Value *Res = foldAndOrOfICmps(Cmp, RHS, I, /* IsAnd */ true))
2020           return replaceInstUsesWith(I, Builder.CreateAnd(Res, X));
2021     }
2022   }
2023 
2024   if (FCmpInst *LHS = dyn_cast<FCmpInst>(I.getOperand(0)))
2025     if (FCmpInst *RHS = dyn_cast<FCmpInst>(I.getOperand(1)))
2026       if (Value *Res = foldLogicOfFCmps(LHS, RHS, /*IsAnd*/ true))
2027         return replaceInstUsesWith(I, Res);
2028 
2029   if (Instruction *FoldedFCmps = reassociateFCmps(I, Builder))
2030     return FoldedFCmps;
2031 
2032   if (Instruction *CastedAnd = foldCastedBitwiseLogic(I))
2033     return CastedAnd;
2034 
2035   if (Instruction *Sel = foldBinopOfSextBoolToSelect(I))
2036     return Sel;
2037 
2038   // and(sext(A), B) / and(B, sext(A)) --> A ? B : 0, where A is i1 or <N x i1>.
2039   // TODO: Move this into foldBinopOfSextBoolToSelect as a more generalized fold
2040   //       with binop identity constant. But creating a select with non-constant
2041   //       arm may not be reversible due to poison semantics. Is that a good
2042   //       canonicalization?
2043   Value *A;
2044   if (match(Op0, m_OneUse(m_SExt(m_Value(A)))) &&
2045       A->getType()->isIntOrIntVectorTy(1))
2046     return SelectInst::Create(A, Op1, Constant::getNullValue(Ty));
2047   if (match(Op1, m_OneUse(m_SExt(m_Value(A)))) &&
2048       A->getType()->isIntOrIntVectorTy(1))
2049     return SelectInst::Create(A, Op0, Constant::getNullValue(Ty));
2050 
2051   // (iN X s>> (N-1)) & Y --> (X s< 0) ? Y : 0
2052   unsigned FullShift = Ty->getScalarSizeInBits() - 1;
2053   if (match(&I, m_c_And(m_OneUse(m_AShr(m_Value(X), m_SpecificInt(FullShift))),
2054                         m_Value(Y)))) {
2055     Constant *Zero = ConstantInt::getNullValue(Ty);
2056     Value *Cmp = Builder.CreateICmpSLT(X, Zero, "isneg");
2057     return SelectInst::Create(Cmp, Y, Zero);
2058   }
2059   // If there's a 'not' of the shifted value, swap the select operands:
2060   // ~(iN X s>> (N-1)) & Y --> (X s< 0) ? 0 : Y
2061   if (match(&I, m_c_And(m_OneUse(m_Not(
2062                             m_AShr(m_Value(X), m_SpecificInt(FullShift)))),
2063                         m_Value(Y)))) {
2064     Constant *Zero = ConstantInt::getNullValue(Ty);
2065     Value *Cmp = Builder.CreateICmpSLT(X, Zero, "isneg");
2066     return SelectInst::Create(Cmp, Zero, Y);
2067   }
2068 
2069   // (~x) & y  -->  ~(x | (~y))  iff that gets rid of inversions
2070   if (sinkNotIntoOtherHandOfAndOrOr(I))
2071     return &I;
2072 
2073   // An and recurrence w/loop invariant step is equivelent to (and start, step)
2074   PHINode *PN = nullptr;
2075   Value *Start = nullptr, *Step = nullptr;
2076   if (matchSimpleRecurrence(&I, PN, Start, Step) && DT.dominates(Step, PN))
2077     return replaceInstUsesWith(I, Builder.CreateAnd(Start, Step));
2078 
2079   return nullptr;
2080 }
2081 
2082 Instruction *InstCombinerImpl::matchBSwapOrBitReverse(Instruction &I,
2083                                                       bool MatchBSwaps,
2084                                                       bool MatchBitReversals) {
2085   SmallVector<Instruction *, 4> Insts;
2086   if (!recognizeBSwapOrBitReverseIdiom(&I, MatchBSwaps, MatchBitReversals,
2087                                        Insts))
2088     return nullptr;
2089   Instruction *LastInst = Insts.pop_back_val();
2090   LastInst->removeFromParent();
2091 
2092   for (auto *Inst : Insts)
2093     Worklist.push(Inst);
2094   return LastInst;
2095 }
2096 
2097 /// Match UB-safe variants of the funnel shift intrinsic.
2098 static Instruction *matchFunnelShift(Instruction &Or, InstCombinerImpl &IC) {
2099   // TODO: Can we reduce the code duplication between this and the related
2100   // rotate matching code under visitSelect and visitTrunc?
2101   unsigned Width = Or.getType()->getScalarSizeInBits();
2102 
2103   // First, find an or'd pair of opposite shifts:
2104   // or (lshr ShVal0, ShAmt0), (shl ShVal1, ShAmt1)
2105   BinaryOperator *Or0, *Or1;
2106   if (!match(Or.getOperand(0), m_BinOp(Or0)) ||
2107       !match(Or.getOperand(1), m_BinOp(Or1)))
2108     return nullptr;
2109 
2110   Value *ShVal0, *ShVal1, *ShAmt0, *ShAmt1;
2111   if (!match(Or0, m_OneUse(m_LogicalShift(m_Value(ShVal0), m_Value(ShAmt0)))) ||
2112       !match(Or1, m_OneUse(m_LogicalShift(m_Value(ShVal1), m_Value(ShAmt1)))) ||
2113       Or0->getOpcode() == Or1->getOpcode())
2114     return nullptr;
2115 
2116   // Canonicalize to or(shl(ShVal0, ShAmt0), lshr(ShVal1, ShAmt1)).
2117   if (Or0->getOpcode() == BinaryOperator::LShr) {
2118     std::swap(Or0, Or1);
2119     std::swap(ShVal0, ShVal1);
2120     std::swap(ShAmt0, ShAmt1);
2121   }
2122   assert(Or0->getOpcode() == BinaryOperator::Shl &&
2123          Or1->getOpcode() == BinaryOperator::LShr &&
2124          "Illegal or(shift,shift) pair");
2125 
2126   // Match the shift amount operands for a funnel shift pattern. This always
2127   // matches a subtraction on the R operand.
2128   auto matchShiftAmount = [&](Value *L, Value *R, unsigned Width) -> Value * {
2129     // Check for constant shift amounts that sum to the bitwidth.
2130     const APInt *LI, *RI;
2131     if (match(L, m_APIntAllowUndef(LI)) && match(R, m_APIntAllowUndef(RI)))
2132       if (LI->ult(Width) && RI->ult(Width) && (*LI + *RI) == Width)
2133         return ConstantInt::get(L->getType(), *LI);
2134 
2135     Constant *LC, *RC;
2136     if (match(L, m_Constant(LC)) && match(R, m_Constant(RC)) &&
2137         match(L, m_SpecificInt_ICMP(ICmpInst::ICMP_ULT, APInt(Width, Width))) &&
2138         match(R, m_SpecificInt_ICMP(ICmpInst::ICMP_ULT, APInt(Width, Width))) &&
2139         match(ConstantExpr::getAdd(LC, RC), m_SpecificIntAllowUndef(Width)))
2140       return ConstantExpr::mergeUndefsWith(LC, RC);
2141 
2142     // (shl ShVal, X) | (lshr ShVal, (Width - x)) iff X < Width.
2143     // We limit this to X < Width in case the backend re-expands the intrinsic,
2144     // and has to reintroduce a shift modulo operation (InstCombine might remove
2145     // it after this fold). This still doesn't guarantee that the final codegen
2146     // will match this original pattern.
2147     if (match(R, m_OneUse(m_Sub(m_SpecificInt(Width), m_Specific(L))))) {
2148       KnownBits KnownL = IC.computeKnownBits(L, /*Depth*/ 0, &Or);
2149       return KnownL.getMaxValue().ult(Width) ? L : nullptr;
2150     }
2151 
2152     // For non-constant cases, the following patterns currently only work for
2153     // rotation patterns.
2154     // TODO: Add general funnel-shift compatible patterns.
2155     if (ShVal0 != ShVal1)
2156       return nullptr;
2157 
2158     // For non-constant cases we don't support non-pow2 shift masks.
2159     // TODO: Is it worth matching urem as well?
2160     if (!isPowerOf2_32(Width))
2161       return nullptr;
2162 
2163     // The shift amount may be masked with negation:
2164     // (shl ShVal, (X & (Width - 1))) | (lshr ShVal, ((-X) & (Width - 1)))
2165     Value *X;
2166     unsigned Mask = Width - 1;
2167     if (match(L, m_And(m_Value(X), m_SpecificInt(Mask))) &&
2168         match(R, m_And(m_Neg(m_Specific(X)), m_SpecificInt(Mask))))
2169       return X;
2170 
2171     // Similar to above, but the shift amount may be extended after masking,
2172     // so return the extended value as the parameter for the intrinsic.
2173     if (match(L, m_ZExt(m_And(m_Value(X), m_SpecificInt(Mask)))) &&
2174         match(R, m_And(m_Neg(m_ZExt(m_And(m_Specific(X), m_SpecificInt(Mask)))),
2175                        m_SpecificInt(Mask))))
2176       return L;
2177 
2178     if (match(L, m_ZExt(m_And(m_Value(X), m_SpecificInt(Mask)))) &&
2179         match(R, m_ZExt(m_And(m_Neg(m_Specific(X)), m_SpecificInt(Mask)))))
2180       return L;
2181 
2182     return nullptr;
2183   };
2184 
2185   Value *ShAmt = matchShiftAmount(ShAmt0, ShAmt1, Width);
2186   bool IsFshl = true; // Sub on LSHR.
2187   if (!ShAmt) {
2188     ShAmt = matchShiftAmount(ShAmt1, ShAmt0, Width);
2189     IsFshl = false; // Sub on SHL.
2190   }
2191   if (!ShAmt)
2192     return nullptr;
2193 
2194   Intrinsic::ID IID = IsFshl ? Intrinsic::fshl : Intrinsic::fshr;
2195   Function *F = Intrinsic::getDeclaration(Or.getModule(), IID, Or.getType());
2196   return CallInst::Create(F, {ShVal0, ShVal1, ShAmt});
2197 }
2198 
2199 /// Attempt to combine or(zext(x),shl(zext(y),bw/2) concat packing patterns.
2200 static Instruction *matchOrConcat(Instruction &Or,
2201                                   InstCombiner::BuilderTy &Builder) {
2202   assert(Or.getOpcode() == Instruction::Or && "bswap requires an 'or'");
2203   Value *Op0 = Or.getOperand(0), *Op1 = Or.getOperand(1);
2204   Type *Ty = Or.getType();
2205 
2206   unsigned Width = Ty->getScalarSizeInBits();
2207   if ((Width & 1) != 0)
2208     return nullptr;
2209   unsigned HalfWidth = Width / 2;
2210 
2211   // Canonicalize zext (lower half) to LHS.
2212   if (!isa<ZExtInst>(Op0))
2213     std::swap(Op0, Op1);
2214 
2215   // Find lower/upper half.
2216   Value *LowerSrc, *ShlVal, *UpperSrc;
2217   const APInt *C;
2218   if (!match(Op0, m_OneUse(m_ZExt(m_Value(LowerSrc)))) ||
2219       !match(Op1, m_OneUse(m_Shl(m_Value(ShlVal), m_APInt(C)))) ||
2220       !match(ShlVal, m_OneUse(m_ZExt(m_Value(UpperSrc)))))
2221     return nullptr;
2222   if (*C != HalfWidth || LowerSrc->getType() != UpperSrc->getType() ||
2223       LowerSrc->getType()->getScalarSizeInBits() != HalfWidth)
2224     return nullptr;
2225 
2226   auto ConcatIntrinsicCalls = [&](Intrinsic::ID id, Value *Lo, Value *Hi) {
2227     Value *NewLower = Builder.CreateZExt(Lo, Ty);
2228     Value *NewUpper = Builder.CreateZExt(Hi, Ty);
2229     NewUpper = Builder.CreateShl(NewUpper, HalfWidth);
2230     Value *BinOp = Builder.CreateOr(NewLower, NewUpper);
2231     Function *F = Intrinsic::getDeclaration(Or.getModule(), id, Ty);
2232     return Builder.CreateCall(F, BinOp);
2233   };
2234 
2235   // BSWAP: Push the concat down, swapping the lower/upper sources.
2236   // concat(bswap(x),bswap(y)) -> bswap(concat(x,y))
2237   Value *LowerBSwap, *UpperBSwap;
2238   if (match(LowerSrc, m_BSwap(m_Value(LowerBSwap))) &&
2239       match(UpperSrc, m_BSwap(m_Value(UpperBSwap))))
2240     return ConcatIntrinsicCalls(Intrinsic::bswap, UpperBSwap, LowerBSwap);
2241 
2242   // BITREVERSE: Push the concat down, swapping the lower/upper sources.
2243   // concat(bitreverse(x),bitreverse(y)) -> bitreverse(concat(x,y))
2244   Value *LowerBRev, *UpperBRev;
2245   if (match(LowerSrc, m_BitReverse(m_Value(LowerBRev))) &&
2246       match(UpperSrc, m_BitReverse(m_Value(UpperBRev))))
2247     return ConcatIntrinsicCalls(Intrinsic::bitreverse, UpperBRev, LowerBRev);
2248 
2249   return nullptr;
2250 }
2251 
2252 /// If all elements of two constant vectors are 0/-1 and inverses, return true.
2253 static bool areInverseVectorBitmasks(Constant *C1, Constant *C2) {
2254   unsigned NumElts = cast<FixedVectorType>(C1->getType())->getNumElements();
2255   for (unsigned i = 0; i != NumElts; ++i) {
2256     Constant *EltC1 = C1->getAggregateElement(i);
2257     Constant *EltC2 = C2->getAggregateElement(i);
2258     if (!EltC1 || !EltC2)
2259       return false;
2260 
2261     // One element must be all ones, and the other must be all zeros.
2262     if (!((match(EltC1, m_Zero()) && match(EltC2, m_AllOnes())) ||
2263           (match(EltC2, m_Zero()) && match(EltC1, m_AllOnes()))))
2264       return false;
2265   }
2266   return true;
2267 }
2268 
2269 /// We have an expression of the form (A & C) | (B & D). If A is a scalar or
2270 /// vector composed of all-zeros or all-ones values and is the bitwise 'not' of
2271 /// B, it can be used as the condition operand of a select instruction.
2272 Value *InstCombinerImpl::getSelectCondition(Value *A, Value *B) {
2273   // We may have peeked through bitcasts in the caller.
2274   // Exit immediately if we don't have (vector) integer types.
2275   Type *Ty = A->getType();
2276   if (!Ty->isIntOrIntVectorTy() || !B->getType()->isIntOrIntVectorTy())
2277     return nullptr;
2278 
2279   // If A is the 'not' operand of B and has enough signbits, we have our answer.
2280   if (match(B, m_Not(m_Specific(A)))) {
2281     // If these are scalars or vectors of i1, A can be used directly.
2282     if (Ty->isIntOrIntVectorTy(1))
2283       return A;
2284 
2285     // If we look through a vector bitcast, the caller will bitcast the operands
2286     // to match the condition's number of bits (N x i1).
2287     // To make this poison-safe, disallow bitcast from wide element to narrow
2288     // element. That could allow poison in lanes where it was not present in the
2289     // original code.
2290     A = peekThroughBitcast(A);
2291     if (A->getType()->isIntOrIntVectorTy()) {
2292       unsigned NumSignBits = ComputeNumSignBits(A);
2293       if (NumSignBits == A->getType()->getScalarSizeInBits() &&
2294           NumSignBits <= Ty->getScalarSizeInBits())
2295         return Builder.CreateTrunc(A, CmpInst::makeCmpResultType(A->getType()));
2296     }
2297     return nullptr;
2298   }
2299 
2300   // If both operands are constants, see if the constants are inverse bitmasks.
2301   Constant *AConst, *BConst;
2302   if (match(A, m_Constant(AConst)) && match(B, m_Constant(BConst)))
2303     if (AConst == ConstantExpr::getNot(BConst) &&
2304         ComputeNumSignBits(A) == Ty->getScalarSizeInBits())
2305       return Builder.CreateZExtOrTrunc(A, CmpInst::makeCmpResultType(Ty));
2306 
2307   // Look for more complex patterns. The 'not' op may be hidden behind various
2308   // casts. Look through sexts and bitcasts to find the booleans.
2309   Value *Cond;
2310   Value *NotB;
2311   if (match(A, m_SExt(m_Value(Cond))) &&
2312       Cond->getType()->isIntOrIntVectorTy(1)) {
2313     // A = sext i1 Cond; B = sext (not (i1 Cond))
2314     if (match(B, m_SExt(m_Not(m_Specific(Cond)))))
2315       return Cond;
2316 
2317     // A = sext i1 Cond; B = not ({bitcast} (sext (i1 Cond)))
2318     // TODO: The one-use checks are unnecessary or misplaced. If the caller
2319     //       checked for uses on logic ops/casts, that should be enough to
2320     //       make this transform worthwhile.
2321     if (match(B, m_OneUse(m_Not(m_Value(NotB))))) {
2322       NotB = peekThroughBitcast(NotB, true);
2323       if (match(NotB, m_SExt(m_Specific(Cond))))
2324         return Cond;
2325     }
2326   }
2327 
2328   // All scalar (and most vector) possibilities should be handled now.
2329   // Try more matches that only apply to non-splat constant vectors.
2330   if (!Ty->isVectorTy())
2331     return nullptr;
2332 
2333   // If both operands are xor'd with constants using the same sexted boolean
2334   // operand, see if the constants are inverse bitmasks.
2335   // TODO: Use ConstantExpr::getNot()?
2336   if (match(A, (m_Xor(m_SExt(m_Value(Cond)), m_Constant(AConst)))) &&
2337       match(B, (m_Xor(m_SExt(m_Specific(Cond)), m_Constant(BConst)))) &&
2338       Cond->getType()->isIntOrIntVectorTy(1) &&
2339       areInverseVectorBitmasks(AConst, BConst)) {
2340     AConst = ConstantExpr::getTrunc(AConst, CmpInst::makeCmpResultType(Ty));
2341     return Builder.CreateXor(Cond, AConst);
2342   }
2343   return nullptr;
2344 }
2345 
2346 /// We have an expression of the form (A & C) | (B & D). Try to simplify this
2347 /// to "A' ? C : D", where A' is a boolean or vector of booleans.
2348 Value *InstCombinerImpl::matchSelectFromAndOr(Value *A, Value *C, Value *B,
2349                                               Value *D) {
2350   // The potential condition of the select may be bitcasted. In that case, look
2351   // through its bitcast and the corresponding bitcast of the 'not' condition.
2352   Type *OrigType = A->getType();
2353   A = peekThroughBitcast(A, true);
2354   B = peekThroughBitcast(B, true);
2355   if (Value *Cond = getSelectCondition(A, B)) {
2356     // ((bc Cond) & C) | ((bc ~Cond) & D) --> bc (select Cond, (bc C), (bc D))
2357     // If this is a vector, we may need to cast to match the condition's length.
2358     // The bitcasts will either all exist or all not exist. The builder will
2359     // not create unnecessary casts if the types already match.
2360     Type *SelTy = A->getType();
2361     if (auto *VecTy = dyn_cast<VectorType>(Cond->getType())) {
2362       unsigned Elts = VecTy->getElementCount().getKnownMinValue();
2363       Type *EltTy = Builder.getIntNTy(SelTy->getPrimitiveSizeInBits() / Elts);
2364       SelTy = VectorType::get(EltTy, VecTy->getElementCount());
2365     }
2366     Value *BitcastC = Builder.CreateBitCast(C, SelTy);
2367     Value *BitcastD = Builder.CreateBitCast(D, SelTy);
2368     Value *Select = Builder.CreateSelect(Cond, BitcastC, BitcastD);
2369     return Builder.CreateBitCast(Select, OrigType);
2370   }
2371 
2372   return nullptr;
2373 }
2374 
2375 // (icmp eq X, 0) | (icmp ult Other, X) -> (icmp ule Other, X-1)
2376 // (icmp ne X, 0) & (icmp uge Other, X) -> (icmp ugt Other, X-1)
2377 Value *foldAndOrOfICmpEqZeroAndICmp(ICmpInst *LHS, ICmpInst *RHS, bool IsAnd,
2378                                     IRBuilderBase &Builder) {
2379   ICmpInst::Predicate LPred =
2380       IsAnd ? LHS->getInversePredicate() : LHS->getPredicate();
2381   ICmpInst::Predicate RPred =
2382       IsAnd ? RHS->getInversePredicate() : RHS->getPredicate();
2383   Value *LHS0 = LHS->getOperand(0);
2384   if (LPred != ICmpInst::ICMP_EQ || !match(LHS->getOperand(1), m_Zero()) ||
2385       !LHS0->getType()->isIntOrIntVectorTy() ||
2386       !(LHS->hasOneUse() || RHS->hasOneUse()))
2387     return nullptr;
2388 
2389   Value *Other;
2390   if (RPred == ICmpInst::ICMP_ULT && RHS->getOperand(1) == LHS0)
2391     Other = RHS->getOperand(0);
2392   else if (RPred == ICmpInst::ICMP_UGT && RHS->getOperand(0) == LHS0)
2393     Other = RHS->getOperand(1);
2394   else
2395     return nullptr;
2396 
2397   return Builder.CreateICmp(
2398       IsAnd ? ICmpInst::ICMP_ULT : ICmpInst::ICMP_UGE,
2399       Builder.CreateAdd(LHS0, Constant::getAllOnesValue(LHS0->getType())),
2400       Other);
2401 }
2402 
2403 /// Fold (icmp)&(icmp) or (icmp)|(icmp) if possible.
2404 Value *InstCombinerImpl::foldAndOrOfICmps(ICmpInst *LHS, ICmpInst *RHS,
2405                                           BinaryOperator &BO, bool IsAnd) {
2406   const SimplifyQuery Q = SQ.getWithInstruction(&BO);
2407 
2408   // Fold (iszero(A & K1) | iszero(A & K2)) ->  (A & (K1 | K2)) != (K1 | K2)
2409   // Fold (!iszero(A & K1) & !iszero(A & K2)) ->  (A & (K1 | K2)) == (K1 | K2)
2410   // if K1 and K2 are a one-bit mask.
2411   if (Value *V = foldAndOrOfICmpsOfAndWithPow2(LHS, RHS, &BO, IsAnd))
2412     return V;
2413 
2414   ICmpInst::Predicate PredL = LHS->getPredicate(), PredR = RHS->getPredicate();
2415   Value *LHS0 = LHS->getOperand(0), *RHS0 = RHS->getOperand(0);
2416   Value *LHS1 = LHS->getOperand(1), *RHS1 = RHS->getOperand(1);
2417   const APInt *LHSC = nullptr, *RHSC = nullptr;
2418   match(LHS1, m_APInt(LHSC));
2419   match(RHS1, m_APInt(RHSC));
2420 
2421   // Fold (icmp ult/ule (A + C1), C3) | (icmp ult/ule (A + C2), C3)
2422   //                   -->  (icmp ult/ule ((A & ~(C1 ^ C2)) + max(C1, C2)), C3)
2423   // The original condition actually refers to the following two ranges:
2424   // [MAX_UINT-C1+1, MAX_UINT-C1+1+C3] and [MAX_UINT-C2+1, MAX_UINT-C2+1+C3]
2425   // We can fold these two ranges if:
2426   // 1) C1 and C2 is unsigned greater than C3.
2427   // 2) The two ranges are separated.
2428   // 3) C1 ^ C2 is one-bit mask.
2429   // 4) LowRange1 ^ LowRange2 and HighRange1 ^ HighRange2 are one-bit mask.
2430   // This implies all values in the two ranges differ by exactly one bit.
2431   if (!IsAnd && (PredL == ICmpInst::ICMP_ULT || PredL == ICmpInst::ICMP_ULE) &&
2432       PredL == PredR && LHSC && RHSC && LHS->hasOneUse() && RHS->hasOneUse() &&
2433       LHSC->getBitWidth() == RHSC->getBitWidth() && *LHSC == *RHSC) {
2434 
2435     Value *AddOpnd;
2436     const APInt *LAddC, *RAddC;
2437     if (match(LHS0, m_Add(m_Value(AddOpnd), m_APInt(LAddC))) &&
2438         match(RHS0, m_Add(m_Specific(AddOpnd), m_APInt(RAddC))) &&
2439         LAddC->ugt(*LHSC) && RAddC->ugt(*LHSC)) {
2440 
2441       APInt DiffC = *LAddC ^ *RAddC;
2442       if (DiffC.isPowerOf2()) {
2443         const APInt *MaxAddC = nullptr;
2444         if (LAddC->ult(*RAddC))
2445           MaxAddC = RAddC;
2446         else
2447           MaxAddC = LAddC;
2448 
2449         APInt RRangeLow = -*RAddC;
2450         APInt RRangeHigh = RRangeLow + *LHSC;
2451         APInt LRangeLow = -*LAddC;
2452         APInt LRangeHigh = LRangeLow + *LHSC;
2453         APInt LowRangeDiff = RRangeLow ^ LRangeLow;
2454         APInt HighRangeDiff = RRangeHigh ^ LRangeHigh;
2455         APInt RangeDiff = LRangeLow.sgt(RRangeLow) ? LRangeLow - RRangeLow
2456                                                    : RRangeLow - LRangeLow;
2457 
2458         if (LowRangeDiff.isPowerOf2() && LowRangeDiff == HighRangeDiff &&
2459             RangeDiff.ugt(*LHSC)) {
2460           Type *Ty = AddOpnd->getType();
2461           Value *MaskC = ConstantInt::get(Ty, ~DiffC);
2462 
2463           Value *NewAnd = Builder.CreateAnd(AddOpnd, MaskC);
2464           Value *NewAdd = Builder.CreateAdd(NewAnd,
2465                                             ConstantInt::get(Ty, *MaxAddC));
2466           return Builder.CreateICmp(LHS->getPredicate(), NewAdd,
2467                                     ConstantInt::get(Ty, *LHSC));
2468         }
2469       }
2470     }
2471   }
2472 
2473   // (icmp1 A, B) | (icmp2 A, B) --> (icmp3 A, B)
2474   // (icmp1 A, B) & (icmp2 A, B) --> (icmp3 A, B)
2475   if (predicatesFoldable(PredL, PredR)) {
2476     if (LHS0 == RHS1 && LHS1 == RHS0) {
2477       PredL = ICmpInst::getSwappedPredicate(PredL);
2478       std::swap(LHS0, LHS1);
2479     }
2480     if (LHS0 == RHS0 && LHS1 == RHS1) {
2481       unsigned Code = IsAnd ? getICmpCode(PredL) & getICmpCode(PredR)
2482                             : getICmpCode(PredL) | getICmpCode(PredR);
2483       bool IsSigned = LHS->isSigned() || RHS->isSigned();
2484       return getNewICmpValue(Code, IsSigned, LHS0, LHS1, Builder);
2485     }
2486   }
2487 
2488   // handle (roughly):
2489   // (icmp ne (A & B), C) | (icmp ne (A & D), E)
2490   // (icmp eq (A & B), C) & (icmp eq (A & D), E)
2491   if (Value *V = foldLogOpOfMaskedICmps(LHS, RHS, IsAnd, Builder))
2492     return V;
2493 
2494   if (Value *V = foldAndOrOfICmpEqZeroAndICmp(LHS, RHS, IsAnd, Builder))
2495     return V;
2496   if (Value *V = foldAndOrOfICmpEqZeroAndICmp(RHS, LHS, IsAnd, Builder))
2497     return V;
2498 
2499   if (Value *V = foldAndOrOfICmpsWithConstEq(LHS, RHS, BO, Builder, Q))
2500     return V;
2501   if (Value *V = foldAndOrOfICmpsWithConstEq(RHS, LHS, BO, Builder, Q))
2502     return V;
2503 
2504   if (Value *V = foldIsPowerOf2OrZero(LHS, RHS, IsAnd, Builder))
2505     return V;
2506   if (Value *V = foldIsPowerOf2OrZero(RHS, LHS, IsAnd, Builder))
2507     return V;
2508 
2509   // E.g. (icmp slt x, 0) | (icmp sgt x, n) --> icmp ugt x, n
2510   // E.g. (icmp sge x, 0) & (icmp slt x, n) --> icmp ult x, n
2511   if (Value *V = simplifyRangeCheck(LHS, RHS, /*Inverted=*/!IsAnd))
2512     return V;
2513 
2514   // E.g. (icmp sgt x, n) | (icmp slt x, 0) --> icmp ugt x, n
2515   // E.g. (icmp slt x, n) & (icmp sge x, 0) --> icmp ult x, n
2516   if (Value *V = simplifyRangeCheck(RHS, LHS, /*Inverted=*/!IsAnd))
2517     return V;
2518 
2519   if (Value *V = foldAndOrOfEqualityCmpsWithConstants(LHS, RHS, IsAnd, Builder))
2520     return V;
2521 
2522   if (IsAnd)
2523     if (Value *V = foldSignedTruncationCheck(LHS, RHS, BO, Builder))
2524       return V;
2525 
2526   if (Value *V = foldIsPowerOf2(LHS, RHS, IsAnd, Builder))
2527     return V;
2528 
2529   if (Value *X = foldUnsignedUnderflowCheck(LHS, RHS, IsAnd, Q, Builder))
2530     return X;
2531   if (Value *X = foldUnsignedUnderflowCheck(RHS, LHS, IsAnd, Q, Builder))
2532     return X;
2533 
2534   if (Value *X = foldEqOfParts(LHS, RHS, IsAnd))
2535     return X;
2536 
2537   // (icmp ne A, 0) | (icmp ne B, 0) --> (icmp ne (A|B), 0)
2538   // (icmp eq A, 0) & (icmp eq B, 0) --> (icmp eq (A|B), 0)
2539   // TODO: Remove this when foldLogOpOfMaskedICmps can handle undefs.
2540   if (PredL == (IsAnd ? ICmpInst::ICMP_EQ : ICmpInst::ICMP_NE) &&
2541       PredL == PredR && match(LHS1, m_ZeroInt()) && match(RHS1, m_ZeroInt()) &&
2542       LHS0->getType() == RHS0->getType()) {
2543     Value *NewOr = Builder.CreateOr(LHS0, RHS0);
2544     return Builder.CreateICmp(PredL, NewOr,
2545                               Constant::getNullValue(NewOr->getType()));
2546   }
2547 
2548   // This only handles icmp of constants: (icmp1 A, C1) | (icmp2 B, C2).
2549   if (!LHSC || !RHSC)
2550     return nullptr;
2551 
2552   // (trunc x) == C1 & (and x, CA) == C2 -> (and x, CA|CMAX) == C1|C2
2553   // where CMAX is the all ones value for the truncated type,
2554   // iff the lower bits of C2 and CA are zero.
2555   if (IsAnd && PredL == ICmpInst::ICMP_EQ && PredL == PredR &&
2556       LHS->hasOneUse() && RHS->hasOneUse()) {
2557     Value *V;
2558     const APInt *AndC, *SmallC = nullptr, *BigC = nullptr;
2559 
2560     // (trunc x) == C1 & (and x, CA) == C2
2561     // (and x, CA) == C2 & (trunc x) == C1
2562     if (match(RHS0, m_Trunc(m_Value(V))) &&
2563         match(LHS0, m_And(m_Specific(V), m_APInt(AndC)))) {
2564       SmallC = RHSC;
2565       BigC = LHSC;
2566     } else if (match(LHS0, m_Trunc(m_Value(V))) &&
2567                match(RHS0, m_And(m_Specific(V), m_APInt(AndC)))) {
2568       SmallC = LHSC;
2569       BigC = RHSC;
2570     }
2571 
2572     if (SmallC && BigC) {
2573       unsigned BigBitSize = BigC->getBitWidth();
2574       unsigned SmallBitSize = SmallC->getBitWidth();
2575 
2576       // Check that the low bits are zero.
2577       APInt Low = APInt::getLowBitsSet(BigBitSize, SmallBitSize);
2578       if ((Low & *AndC).isZero() && (Low & *BigC).isZero()) {
2579         Value *NewAnd = Builder.CreateAnd(V, Low | *AndC);
2580         APInt N = SmallC->zext(BigBitSize) | *BigC;
2581         Value *NewVal = ConstantInt::get(NewAnd->getType(), N);
2582         return Builder.CreateICmp(PredL, NewAnd, NewVal);
2583       }
2584     }
2585   }
2586 
2587   return foldAndOrOfICmpsUsingRanges(PredL, LHS0, *LHSC, PredR, RHS0, *RHSC,
2588                                      Builder, IsAnd);
2589 }
2590 
2591 // FIXME: We use commutative matchers (m_c_*) for some, but not all, matches
2592 // here. We should standardize that construct where it is needed or choose some
2593 // other way to ensure that commutated variants of patterns are not missed.
2594 Instruction *InstCombinerImpl::visitOr(BinaryOperator &I) {
2595   if (Value *V = SimplifyOrInst(I.getOperand(0), I.getOperand(1),
2596                                 SQ.getWithInstruction(&I)))
2597     return replaceInstUsesWith(I, V);
2598 
2599   if (SimplifyAssociativeOrCommutative(I))
2600     return &I;
2601 
2602   if (Instruction *X = foldVectorBinop(I))
2603     return X;
2604 
2605   if (Instruction *Phi = foldBinopWithPhiOperands(I))
2606     return Phi;
2607 
2608   // See if we can simplify any instructions used by the instruction whose sole
2609   // purpose is to compute bits we don't care about.
2610   if (SimplifyDemandedInstructionBits(I))
2611     return &I;
2612 
2613   // Do this before using distributive laws to catch simple and/or/not patterns.
2614   if (Instruction *Xor = foldOrToXor(I, Builder))
2615     return Xor;
2616 
2617   if (Instruction *X = foldComplexAndOrPatterns(I, Builder))
2618     return X;
2619 
2620   // (A&B)|(A&C) -> A&(B|C) etc
2621   if (Value *V = SimplifyUsingDistributiveLaws(I))
2622     return replaceInstUsesWith(I, V);
2623 
2624   if (Value *V = SimplifyBSwap(I, Builder))
2625     return replaceInstUsesWith(I, V);
2626 
2627   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
2628   Type *Ty = I.getType();
2629   if (Ty->isIntOrIntVectorTy(1)) {
2630     if (auto *SI0 = dyn_cast<SelectInst>(Op0)) {
2631       if (auto *I =
2632               foldAndOrOfSelectUsingImpliedCond(Op1, *SI0, /* IsAnd */ false))
2633         return I;
2634     }
2635     if (auto *SI1 = dyn_cast<SelectInst>(Op1)) {
2636       if (auto *I =
2637               foldAndOrOfSelectUsingImpliedCond(Op0, *SI1, /* IsAnd */ false))
2638         return I;
2639     }
2640   }
2641 
2642   if (Instruction *FoldedLogic = foldBinOpIntoSelectOrPhi(I))
2643     return FoldedLogic;
2644 
2645   if (Instruction *BitOp = matchBSwapOrBitReverse(I, /*MatchBSwaps*/ true,
2646                                                   /*MatchBitReversals*/ true))
2647     return BitOp;
2648 
2649   if (Instruction *Funnel = matchFunnelShift(I, *this))
2650     return Funnel;
2651 
2652   if (Instruction *Concat = matchOrConcat(I, Builder))
2653     return replaceInstUsesWith(I, Concat);
2654 
2655   Value *X, *Y;
2656   const APInt *CV;
2657   if (match(&I, m_c_Or(m_OneUse(m_Xor(m_Value(X), m_APInt(CV))), m_Value(Y))) &&
2658       !CV->isAllOnes() && MaskedValueIsZero(Y, *CV, 0, &I)) {
2659     // (X ^ C) | Y -> (X | Y) ^ C iff Y & C == 0
2660     // The check for a 'not' op is for efficiency (if Y is known zero --> ~X).
2661     Value *Or = Builder.CreateOr(X, Y);
2662     return BinaryOperator::CreateXor(Or, ConstantInt::get(Ty, *CV));
2663   }
2664 
2665   // If the operands have no common bits set:
2666   // or (mul X, Y), X --> add (mul X, Y), X --> mul X, (Y + 1)
2667   if (match(&I,
2668             m_c_Or(m_OneUse(m_Mul(m_Value(X), m_Value(Y))), m_Deferred(X))) &&
2669       haveNoCommonBitsSet(Op0, Op1, DL)) {
2670     Value *IncrementY = Builder.CreateAdd(Y, ConstantInt::get(Ty, 1));
2671     return BinaryOperator::CreateMul(X, IncrementY);
2672   }
2673 
2674   // (A & C) | (B & D)
2675   Value *A, *B, *C, *D;
2676   if (match(Op0, m_And(m_Value(A), m_Value(C))) &&
2677       match(Op1, m_And(m_Value(B), m_Value(D)))) {
2678 
2679     // (A & C0) | (B & C1)
2680     const APInt *C0, *C1;
2681     if (match(C, m_APInt(C0)) && match(D, m_APInt(C1))) {
2682       Value *X;
2683       if (*C0 == ~*C1) {
2684         // ((X | B) & MaskC) | (B & ~MaskC) -> (X & MaskC) | B
2685         if (match(A, m_c_Or(m_Value(X), m_Specific(B))))
2686           return BinaryOperator::CreateOr(Builder.CreateAnd(X, *C0), B);
2687         // (A & MaskC) | ((X | A) & ~MaskC) -> (X & ~MaskC) | A
2688         if (match(B, m_c_Or(m_Specific(A), m_Value(X))))
2689           return BinaryOperator::CreateOr(Builder.CreateAnd(X, *C1), A);
2690 
2691         // ((X ^ B) & MaskC) | (B & ~MaskC) -> (X & MaskC) ^ B
2692         if (match(A, m_c_Xor(m_Value(X), m_Specific(B))))
2693           return BinaryOperator::CreateXor(Builder.CreateAnd(X, *C0), B);
2694         // (A & MaskC) | ((X ^ A) & ~MaskC) -> (X & ~MaskC) ^ A
2695         if (match(B, m_c_Xor(m_Specific(A), m_Value(X))))
2696           return BinaryOperator::CreateXor(Builder.CreateAnd(X, *C1), A);
2697       }
2698 
2699       if ((*C0 & *C1).isZero()) {
2700         // ((X | B) & C0) | (B & C1) --> (X | B) & (C0 | C1)
2701         // iff (C0 & C1) == 0 and (X & ~C0) == 0
2702         if (match(A, m_c_Or(m_Value(X), m_Specific(B))) &&
2703             MaskedValueIsZero(X, ~*C0, 0, &I)) {
2704           Constant *C01 = ConstantInt::get(Ty, *C0 | *C1);
2705           return BinaryOperator::CreateAnd(A, C01);
2706         }
2707         // (A & C0) | ((X | A) & C1) --> (X | A) & (C0 | C1)
2708         // iff (C0 & C1) == 0 and (X & ~C1) == 0
2709         if (match(B, m_c_Or(m_Value(X), m_Specific(A))) &&
2710             MaskedValueIsZero(X, ~*C1, 0, &I)) {
2711           Constant *C01 = ConstantInt::get(Ty, *C0 | *C1);
2712           return BinaryOperator::CreateAnd(B, C01);
2713         }
2714         // ((X | C2) & C0) | ((X | C3) & C1) --> (X | C2 | C3) & (C0 | C1)
2715         // iff (C0 & C1) == 0 and (C2 & ~C0) == 0 and (C3 & ~C1) == 0.
2716         const APInt *C2, *C3;
2717         if (match(A, m_Or(m_Value(X), m_APInt(C2))) &&
2718             match(B, m_Or(m_Specific(X), m_APInt(C3))) &&
2719             (*C2 & ~*C0).isZero() && (*C3 & ~*C1).isZero()) {
2720           Value *Or = Builder.CreateOr(X, *C2 | *C3, "bitfield");
2721           Constant *C01 = ConstantInt::get(Ty, *C0 | *C1);
2722           return BinaryOperator::CreateAnd(Or, C01);
2723         }
2724       }
2725     }
2726 
2727     // Don't try to form a select if it's unlikely that we'll get rid of at
2728     // least one of the operands. A select is generally more expensive than the
2729     // 'or' that it is replacing.
2730     if (Op0->hasOneUse() || Op1->hasOneUse()) {
2731       // (Cond & C) | (~Cond & D) -> Cond ? C : D, and commuted variants.
2732       if (Value *V = matchSelectFromAndOr(A, C, B, D))
2733         return replaceInstUsesWith(I, V);
2734       if (Value *V = matchSelectFromAndOr(A, C, D, B))
2735         return replaceInstUsesWith(I, V);
2736       if (Value *V = matchSelectFromAndOr(C, A, B, D))
2737         return replaceInstUsesWith(I, V);
2738       if (Value *V = matchSelectFromAndOr(C, A, D, B))
2739         return replaceInstUsesWith(I, V);
2740       if (Value *V = matchSelectFromAndOr(B, D, A, C))
2741         return replaceInstUsesWith(I, V);
2742       if (Value *V = matchSelectFromAndOr(B, D, C, A))
2743         return replaceInstUsesWith(I, V);
2744       if (Value *V = matchSelectFromAndOr(D, B, A, C))
2745         return replaceInstUsesWith(I, V);
2746       if (Value *V = matchSelectFromAndOr(D, B, C, A))
2747         return replaceInstUsesWith(I, V);
2748     }
2749   }
2750 
2751   // (A ^ B) | ((B ^ C) ^ A) -> (A ^ B) | C
2752   if (match(Op0, m_Xor(m_Value(A), m_Value(B))))
2753     if (match(Op1, m_Xor(m_Xor(m_Specific(B), m_Value(C)), m_Specific(A))))
2754       return BinaryOperator::CreateOr(Op0, C);
2755 
2756   // ((A ^ C) ^ B) | (B ^ A) -> (B ^ A) | C
2757   if (match(Op0, m_Xor(m_Xor(m_Value(A), m_Value(C)), m_Value(B))))
2758     if (match(Op1, m_Xor(m_Specific(B), m_Specific(A))))
2759       return BinaryOperator::CreateOr(Op1, C);
2760 
2761   // ((B | C) & A) | B -> B | (A & C)
2762   if (match(Op0, m_And(m_Or(m_Specific(Op1), m_Value(C)), m_Value(A))))
2763     return BinaryOperator::CreateOr(Op1, Builder.CreateAnd(A, C));
2764 
2765   if (Instruction *DeMorgan = matchDeMorgansLaws(I, Builder))
2766     return DeMorgan;
2767 
2768   // Canonicalize xor to the RHS.
2769   bool SwappedForXor = false;
2770   if (match(Op0, m_Xor(m_Value(), m_Value()))) {
2771     std::swap(Op0, Op1);
2772     SwappedForXor = true;
2773   }
2774 
2775   // A | ( A ^ B) -> A |  B
2776   // A | (~A ^ B) -> A | ~B
2777   // (A & B) | (A ^ B)
2778   // ~A | (A ^ B) -> ~(A & B)
2779   // The swap above should always make Op0 the 'not' for the last case.
2780   if (match(Op1, m_Xor(m_Value(A), m_Value(B)))) {
2781     if (Op0 == A || Op0 == B)
2782       return BinaryOperator::CreateOr(A, B);
2783 
2784     if (match(Op0, m_And(m_Specific(A), m_Specific(B))) ||
2785         match(Op0, m_And(m_Specific(B), m_Specific(A))))
2786       return BinaryOperator::CreateOr(A, B);
2787 
2788     if ((Op0->hasOneUse() || Op1->hasOneUse()) &&
2789         (match(Op0, m_Not(m_Specific(A))) || match(Op0, m_Not(m_Specific(B)))))
2790       return BinaryOperator::CreateNot(Builder.CreateAnd(A, B));
2791 
2792     if (Op1->hasOneUse() && match(A, m_Not(m_Specific(Op0)))) {
2793       Value *Not = Builder.CreateNot(B, B->getName() + ".not");
2794       return BinaryOperator::CreateOr(Not, Op0);
2795     }
2796     if (Op1->hasOneUse() && match(B, m_Not(m_Specific(Op0)))) {
2797       Value *Not = Builder.CreateNot(A, A->getName() + ".not");
2798       return BinaryOperator::CreateOr(Not, Op0);
2799     }
2800   }
2801 
2802   // A | ~(A | B) -> A | ~B
2803   // A | ~(A ^ B) -> A | ~B
2804   if (match(Op1, m_Not(m_Value(A))))
2805     if (BinaryOperator *B = dyn_cast<BinaryOperator>(A))
2806       if ((Op0 == B->getOperand(0) || Op0 == B->getOperand(1)) &&
2807           Op1->hasOneUse() && (B->getOpcode() == Instruction::Or ||
2808                                B->getOpcode() == Instruction::Xor)) {
2809         Value *NotOp = Op0 == B->getOperand(0) ? B->getOperand(1) :
2810                                                  B->getOperand(0);
2811         Value *Not = Builder.CreateNot(NotOp, NotOp->getName() + ".not");
2812         return BinaryOperator::CreateOr(Not, Op0);
2813       }
2814 
2815   if (SwappedForXor)
2816     std::swap(Op0, Op1);
2817 
2818   {
2819     ICmpInst *LHS = dyn_cast<ICmpInst>(Op0);
2820     ICmpInst *RHS = dyn_cast<ICmpInst>(Op1);
2821     if (LHS && RHS)
2822       if (Value *Res = foldAndOrOfICmps(LHS, RHS, I, /* IsAnd */ false))
2823         return replaceInstUsesWith(I, Res);
2824 
2825     // TODO: Make this recursive; it's a little tricky because an arbitrary
2826     // number of 'or' instructions might have to be created.
2827     Value *X, *Y;
2828     if (LHS && match(Op1, m_OneUse(m_Or(m_Value(X), m_Value(Y))))) {
2829       if (auto *Cmp = dyn_cast<ICmpInst>(X))
2830         if (Value *Res = foldAndOrOfICmps(LHS, Cmp, I, /* IsAnd */ false))
2831           return replaceInstUsesWith(I, Builder.CreateOr(Res, Y));
2832       if (auto *Cmp = dyn_cast<ICmpInst>(Y))
2833         if (Value *Res = foldAndOrOfICmps(LHS, Cmp, I, /* IsAnd */ false))
2834           return replaceInstUsesWith(I, Builder.CreateOr(Res, X));
2835     }
2836     if (RHS && match(Op0, m_OneUse(m_Or(m_Value(X), m_Value(Y))))) {
2837       if (auto *Cmp = dyn_cast<ICmpInst>(X))
2838         if (Value *Res = foldAndOrOfICmps(Cmp, RHS, I, /* IsAnd */ false))
2839           return replaceInstUsesWith(I, Builder.CreateOr(Res, Y));
2840       if (auto *Cmp = dyn_cast<ICmpInst>(Y))
2841         if (Value *Res = foldAndOrOfICmps(Cmp, RHS, I, /* IsAnd */ false))
2842           return replaceInstUsesWith(I, Builder.CreateOr(Res, X));
2843     }
2844   }
2845 
2846   if (FCmpInst *LHS = dyn_cast<FCmpInst>(I.getOperand(0)))
2847     if (FCmpInst *RHS = dyn_cast<FCmpInst>(I.getOperand(1)))
2848       if (Value *Res = foldLogicOfFCmps(LHS, RHS, /*IsAnd*/ false))
2849         return replaceInstUsesWith(I, Res);
2850 
2851   if (Instruction *FoldedFCmps = reassociateFCmps(I, Builder))
2852     return FoldedFCmps;
2853 
2854   if (Instruction *CastedOr = foldCastedBitwiseLogic(I))
2855     return CastedOr;
2856 
2857   if (Instruction *Sel = foldBinopOfSextBoolToSelect(I))
2858     return Sel;
2859 
2860   // or(sext(A), B) / or(B, sext(A)) --> A ? -1 : B, where A is i1 or <N x i1>.
2861   // TODO: Move this into foldBinopOfSextBoolToSelect as a more generalized fold
2862   //       with binop identity constant. But creating a select with non-constant
2863   //       arm may not be reversible due to poison semantics. Is that a good
2864   //       canonicalization?
2865   if (match(Op0, m_OneUse(m_SExt(m_Value(A)))) &&
2866       A->getType()->isIntOrIntVectorTy(1))
2867     return SelectInst::Create(A, ConstantInt::getAllOnesValue(Ty), Op1);
2868   if (match(Op1, m_OneUse(m_SExt(m_Value(A)))) &&
2869       A->getType()->isIntOrIntVectorTy(1))
2870     return SelectInst::Create(A, ConstantInt::getAllOnesValue(Ty), Op0);
2871 
2872   // Note: If we've gotten to the point of visiting the outer OR, then the
2873   // inner one couldn't be simplified.  If it was a constant, then it won't
2874   // be simplified by a later pass either, so we try swapping the inner/outer
2875   // ORs in the hopes that we'll be able to simplify it this way.
2876   // (X|C) | V --> (X|V) | C
2877   ConstantInt *CI;
2878   if (Op0->hasOneUse() && !match(Op1, m_ConstantInt()) &&
2879       match(Op0, m_Or(m_Value(A), m_ConstantInt(CI)))) {
2880     Value *Inner = Builder.CreateOr(A, Op1);
2881     Inner->takeName(Op0);
2882     return BinaryOperator::CreateOr(Inner, CI);
2883   }
2884 
2885   // Change (or (bool?A:B),(bool?C:D)) --> (bool?(or A,C):(or B,D))
2886   // Since this OR statement hasn't been optimized further yet, we hope
2887   // that this transformation will allow the new ORs to be optimized.
2888   {
2889     Value *X = nullptr, *Y = nullptr;
2890     if (Op0->hasOneUse() && Op1->hasOneUse() &&
2891         match(Op0, m_Select(m_Value(X), m_Value(A), m_Value(B))) &&
2892         match(Op1, m_Select(m_Value(Y), m_Value(C), m_Value(D))) && X == Y) {
2893       Value *orTrue = Builder.CreateOr(A, C);
2894       Value *orFalse = Builder.CreateOr(B, D);
2895       return SelectInst::Create(X, orTrue, orFalse);
2896     }
2897   }
2898 
2899   // or(ashr(subNSW(Y, X), ScalarSizeInBits(Y) - 1), X)  --> X s> Y ? -1 : X.
2900   {
2901     Value *X, *Y;
2902     if (match(&I, m_c_Or(m_OneUse(m_AShr(
2903                              m_NSWSub(m_Value(Y), m_Value(X)),
2904                              m_SpecificInt(Ty->getScalarSizeInBits() - 1))),
2905                          m_Deferred(X)))) {
2906       Value *NewICmpInst = Builder.CreateICmpSGT(X, Y);
2907       Value *AllOnes = ConstantInt::getAllOnesValue(Ty);
2908       return SelectInst::Create(NewICmpInst, AllOnes, X);
2909     }
2910   }
2911 
2912   if (Instruction *V =
2913           canonicalizeCondSignextOfHighBitExtractToSignextHighBitExtract(I))
2914     return V;
2915 
2916   CmpInst::Predicate Pred;
2917   Value *Mul, *Ov, *MulIsNotZero, *UMulWithOv;
2918   // Check if the OR weakens the overflow condition for umul.with.overflow by
2919   // treating any non-zero result as overflow. In that case, we overflow if both
2920   // umul.with.overflow operands are != 0, as in that case the result can only
2921   // be 0, iff the multiplication overflows.
2922   if (match(&I,
2923             m_c_Or(m_CombineAnd(m_ExtractValue<1>(m_Value(UMulWithOv)),
2924                                 m_Value(Ov)),
2925                    m_CombineAnd(m_ICmp(Pred,
2926                                        m_CombineAnd(m_ExtractValue<0>(
2927                                                         m_Deferred(UMulWithOv)),
2928                                                     m_Value(Mul)),
2929                                        m_ZeroInt()),
2930                                 m_Value(MulIsNotZero)))) &&
2931       (Ov->hasOneUse() || (MulIsNotZero->hasOneUse() && Mul->hasOneUse())) &&
2932       Pred == CmpInst::ICMP_NE) {
2933     Value *A, *B;
2934     if (match(UMulWithOv, m_Intrinsic<Intrinsic::umul_with_overflow>(
2935                               m_Value(A), m_Value(B)))) {
2936       Value *NotNullA = Builder.CreateIsNotNull(A);
2937       Value *NotNullB = Builder.CreateIsNotNull(B);
2938       return BinaryOperator::CreateAnd(NotNullA, NotNullB);
2939     }
2940   }
2941 
2942   // (~x) | y  -->  ~(x & (~y))  iff that gets rid of inversions
2943   if (sinkNotIntoOtherHandOfAndOrOr(I))
2944     return &I;
2945 
2946   // Improve "get low bit mask up to and including bit X" pattern:
2947   //   (1 << X) | ((1 << X) + -1)  -->  -1 l>> (bitwidth(x) - 1 - X)
2948   if (match(&I, m_c_Or(m_Add(m_Shl(m_One(), m_Value(X)), m_AllOnes()),
2949                        m_Shl(m_One(), m_Deferred(X)))) &&
2950       match(&I, m_c_Or(m_OneUse(m_Value()), m_Value()))) {
2951     Value *Sub = Builder.CreateSub(
2952         ConstantInt::get(Ty, Ty->getScalarSizeInBits() - 1), X);
2953     return BinaryOperator::CreateLShr(Constant::getAllOnesValue(Ty), Sub);
2954   }
2955 
2956   // An or recurrence w/loop invariant step is equivelent to (or start, step)
2957   PHINode *PN = nullptr;
2958   Value *Start = nullptr, *Step = nullptr;
2959   if (matchSimpleRecurrence(&I, PN, Start, Step) && DT.dominates(Step, PN))
2960     return replaceInstUsesWith(I, Builder.CreateOr(Start, Step));
2961 
2962   return nullptr;
2963 }
2964 
2965 /// A ^ B can be specified using other logic ops in a variety of patterns. We
2966 /// can fold these early and efficiently by morphing an existing instruction.
2967 static Instruction *foldXorToXor(BinaryOperator &I,
2968                                  InstCombiner::BuilderTy &Builder) {
2969   assert(I.getOpcode() == Instruction::Xor);
2970   Value *Op0 = I.getOperand(0);
2971   Value *Op1 = I.getOperand(1);
2972   Value *A, *B;
2973 
2974   // There are 4 commuted variants for each of the basic patterns.
2975 
2976   // (A & B) ^ (A | B) -> A ^ B
2977   // (A & B) ^ (B | A) -> A ^ B
2978   // (A | B) ^ (A & B) -> A ^ B
2979   // (A | B) ^ (B & A) -> A ^ B
2980   if (match(&I, m_c_Xor(m_And(m_Value(A), m_Value(B)),
2981                         m_c_Or(m_Deferred(A), m_Deferred(B)))))
2982     return BinaryOperator::CreateXor(A, B);
2983 
2984   // (A | ~B) ^ (~A | B) -> A ^ B
2985   // (~B | A) ^ (~A | B) -> A ^ B
2986   // (~A | B) ^ (A | ~B) -> A ^ B
2987   // (B | ~A) ^ (A | ~B) -> A ^ B
2988   if (match(&I, m_Xor(m_c_Or(m_Value(A), m_Not(m_Value(B))),
2989                       m_c_Or(m_Not(m_Deferred(A)), m_Deferred(B)))))
2990     return BinaryOperator::CreateXor(A, B);
2991 
2992   // (A & ~B) ^ (~A & B) -> A ^ B
2993   // (~B & A) ^ (~A & B) -> A ^ B
2994   // (~A & B) ^ (A & ~B) -> A ^ B
2995   // (B & ~A) ^ (A & ~B) -> A ^ B
2996   if (match(&I, m_Xor(m_c_And(m_Value(A), m_Not(m_Value(B))),
2997                       m_c_And(m_Not(m_Deferred(A)), m_Deferred(B)))))
2998     return BinaryOperator::CreateXor(A, B);
2999 
3000   // For the remaining cases we need to get rid of one of the operands.
3001   if (!Op0->hasOneUse() && !Op1->hasOneUse())
3002     return nullptr;
3003 
3004   // (A | B) ^ ~(A & B) -> ~(A ^ B)
3005   // (A | B) ^ ~(B & A) -> ~(A ^ B)
3006   // (A & B) ^ ~(A | B) -> ~(A ^ B)
3007   // (A & B) ^ ~(B | A) -> ~(A ^ B)
3008   // Complexity sorting ensures the not will be on the right side.
3009   if ((match(Op0, m_Or(m_Value(A), m_Value(B))) &&
3010        match(Op1, m_Not(m_c_And(m_Specific(A), m_Specific(B))))) ||
3011       (match(Op0, m_And(m_Value(A), m_Value(B))) &&
3012        match(Op1, m_Not(m_c_Or(m_Specific(A), m_Specific(B))))))
3013     return BinaryOperator::CreateNot(Builder.CreateXor(A, B));
3014 
3015   return nullptr;
3016 }
3017 
3018 Value *InstCombinerImpl::foldXorOfICmps(ICmpInst *LHS, ICmpInst *RHS,
3019                                         BinaryOperator &I) {
3020   assert(I.getOpcode() == Instruction::Xor && I.getOperand(0) == LHS &&
3021          I.getOperand(1) == RHS && "Should be 'xor' with these operands");
3022 
3023   if (predicatesFoldable(LHS->getPredicate(), RHS->getPredicate())) {
3024     if (LHS->getOperand(0) == RHS->getOperand(1) &&
3025         LHS->getOperand(1) == RHS->getOperand(0))
3026       LHS->swapOperands();
3027     if (LHS->getOperand(0) == RHS->getOperand(0) &&
3028         LHS->getOperand(1) == RHS->getOperand(1)) {
3029       // (icmp1 A, B) ^ (icmp2 A, B) --> (icmp3 A, B)
3030       Value *Op0 = LHS->getOperand(0), *Op1 = LHS->getOperand(1);
3031       unsigned Code =
3032           getICmpCode(LHS->getPredicate()) ^ getICmpCode(RHS->getPredicate());
3033       bool IsSigned = LHS->isSigned() || RHS->isSigned();
3034       return getNewICmpValue(Code, IsSigned, Op0, Op1, Builder);
3035     }
3036   }
3037 
3038   // TODO: This can be generalized to compares of non-signbits using
3039   // decomposeBitTestICmp(). It could be enhanced more by using (something like)
3040   // foldLogOpOfMaskedICmps().
3041   ICmpInst::Predicate PredL = LHS->getPredicate(), PredR = RHS->getPredicate();
3042   Value *LHS0 = LHS->getOperand(0), *LHS1 = LHS->getOperand(1);
3043   Value *RHS0 = RHS->getOperand(0), *RHS1 = RHS->getOperand(1);
3044   if ((LHS->hasOneUse() || RHS->hasOneUse()) &&
3045       LHS0->getType() == RHS0->getType() &&
3046       LHS0->getType()->isIntOrIntVectorTy()) {
3047     // (X > -1) ^ (Y > -1) --> (X ^ Y) < 0
3048     // (X <  0) ^ (Y <  0) --> (X ^ Y) < 0
3049     if ((PredL == CmpInst::ICMP_SGT && match(LHS1, m_AllOnes()) &&
3050          PredR == CmpInst::ICMP_SGT && match(RHS1, m_AllOnes())) ||
3051         (PredL == CmpInst::ICMP_SLT && match(LHS1, m_Zero()) &&
3052          PredR == CmpInst::ICMP_SLT && match(RHS1, m_Zero()))) {
3053       Value *Zero = ConstantInt::getNullValue(LHS0->getType());
3054       return Builder.CreateICmpSLT(Builder.CreateXor(LHS0, RHS0), Zero);
3055     }
3056     // (X > -1) ^ (Y <  0) --> (X ^ Y) > -1
3057     // (X <  0) ^ (Y > -1) --> (X ^ Y) > -1
3058     if ((PredL == CmpInst::ICMP_SGT && match(LHS1, m_AllOnes()) &&
3059          PredR == CmpInst::ICMP_SLT && match(RHS1, m_Zero())) ||
3060         (PredL == CmpInst::ICMP_SLT && match(LHS1, m_Zero()) &&
3061          PredR == CmpInst::ICMP_SGT && match(RHS1, m_AllOnes()))) {
3062       Value *MinusOne = ConstantInt::getAllOnesValue(LHS0->getType());
3063       return Builder.CreateICmpSGT(Builder.CreateXor(LHS0, RHS0), MinusOne);
3064     }
3065   }
3066 
3067   // Instead of trying to imitate the folds for and/or, decompose this 'xor'
3068   // into those logic ops. That is, try to turn this into an and-of-icmps
3069   // because we have many folds for that pattern.
3070   //
3071   // This is based on a truth table definition of xor:
3072   // X ^ Y --> (X | Y) & !(X & Y)
3073   if (Value *OrICmp = SimplifyBinOp(Instruction::Or, LHS, RHS, SQ)) {
3074     // TODO: If OrICmp is true, then the definition of xor simplifies to !(X&Y).
3075     // TODO: If OrICmp is false, the whole thing is false (InstSimplify?).
3076     if (Value *AndICmp = SimplifyBinOp(Instruction::And, LHS, RHS, SQ)) {
3077       // TODO: Independently handle cases where the 'and' side is a constant.
3078       ICmpInst *X = nullptr, *Y = nullptr;
3079       if (OrICmp == LHS && AndICmp == RHS) {
3080         // (LHS | RHS) & !(LHS & RHS) --> LHS & !RHS  --> X & !Y
3081         X = LHS;
3082         Y = RHS;
3083       }
3084       if (OrICmp == RHS && AndICmp == LHS) {
3085         // !(LHS & RHS) & (LHS | RHS) --> !LHS & RHS  --> !Y & X
3086         X = RHS;
3087         Y = LHS;
3088       }
3089       if (X && Y && (Y->hasOneUse() || canFreelyInvertAllUsersOf(Y, &I))) {
3090         // Invert the predicate of 'Y', thus inverting its output.
3091         Y->setPredicate(Y->getInversePredicate());
3092         // So, are there other uses of Y?
3093         if (!Y->hasOneUse()) {
3094           // We need to adapt other uses of Y though. Get a value that matches
3095           // the original value of Y before inversion. While this increases
3096           // immediate instruction count, we have just ensured that all the
3097           // users are freely-invertible, so that 'not' *will* get folded away.
3098           BuilderTy::InsertPointGuard Guard(Builder);
3099           // Set insertion point to right after the Y.
3100           Builder.SetInsertPoint(Y->getParent(), ++(Y->getIterator()));
3101           Value *NotY = Builder.CreateNot(Y, Y->getName() + ".not");
3102           // Replace all uses of Y (excluding the one in NotY!) with NotY.
3103           Worklist.pushUsersToWorkList(*Y);
3104           Y->replaceUsesWithIf(NotY,
3105                                [NotY](Use &U) { return U.getUser() != NotY; });
3106         }
3107         // All done.
3108         return Builder.CreateAnd(LHS, RHS);
3109       }
3110     }
3111   }
3112 
3113   return nullptr;
3114 }
3115 
3116 /// If we have a masked merge, in the canonical form of:
3117 /// (assuming that A only has one use.)
3118 ///   |        A  |  |B|
3119 ///   ((x ^ y) & M) ^ y
3120 ///    |  D  |
3121 /// * If M is inverted:
3122 ///      |  D  |
3123 ///     ((x ^ y) & ~M) ^ y
3124 ///   We can canonicalize by swapping the final xor operand
3125 ///   to eliminate the 'not' of the mask.
3126 ///     ((x ^ y) & M) ^ x
3127 /// * If M is a constant, and D has one use, we transform to 'and' / 'or' ops
3128 ///   because that shortens the dependency chain and improves analysis:
3129 ///     (x & M) | (y & ~M)
3130 static Instruction *visitMaskedMerge(BinaryOperator &I,
3131                                      InstCombiner::BuilderTy &Builder) {
3132   Value *B, *X, *D;
3133   Value *M;
3134   if (!match(&I, m_c_Xor(m_Value(B),
3135                          m_OneUse(m_c_And(
3136                              m_CombineAnd(m_c_Xor(m_Deferred(B), m_Value(X)),
3137                                           m_Value(D)),
3138                              m_Value(M))))))
3139     return nullptr;
3140 
3141   Value *NotM;
3142   if (match(M, m_Not(m_Value(NotM)))) {
3143     // De-invert the mask and swap the value in B part.
3144     Value *NewA = Builder.CreateAnd(D, NotM);
3145     return BinaryOperator::CreateXor(NewA, X);
3146   }
3147 
3148   Constant *C;
3149   if (D->hasOneUse() && match(M, m_Constant(C))) {
3150     // Propagating undef is unsafe. Clamp undef elements to -1.
3151     Type *EltTy = C->getType()->getScalarType();
3152     C = Constant::replaceUndefsWith(C, ConstantInt::getAllOnesValue(EltTy));
3153     // Unfold.
3154     Value *LHS = Builder.CreateAnd(X, C);
3155     Value *NotC = Builder.CreateNot(C);
3156     Value *RHS = Builder.CreateAnd(B, NotC);
3157     return BinaryOperator::CreateOr(LHS, RHS);
3158   }
3159 
3160   return nullptr;
3161 }
3162 
3163 // Transform
3164 //   ~(x ^ y)
3165 // into:
3166 //   (~x) ^ y
3167 // or into
3168 //   x ^ (~y)
3169 static Instruction *sinkNotIntoXor(BinaryOperator &I,
3170                                    InstCombiner::BuilderTy &Builder) {
3171   Value *X, *Y;
3172   // FIXME: one-use check is not needed in general, but currently we are unable
3173   // to fold 'not' into 'icmp', if that 'icmp' has multiple uses. (D35182)
3174   if (!match(&I, m_Not(m_OneUse(m_Xor(m_Value(X), m_Value(Y))))))
3175     return nullptr;
3176 
3177   // We only want to do the transform if it is free to do.
3178   if (InstCombiner::isFreeToInvert(X, X->hasOneUse())) {
3179     // Ok, good.
3180   } else if (InstCombiner::isFreeToInvert(Y, Y->hasOneUse())) {
3181     std::swap(X, Y);
3182   } else
3183     return nullptr;
3184 
3185   Value *NotX = Builder.CreateNot(X, X->getName() + ".not");
3186   return BinaryOperator::CreateXor(NotX, Y, I.getName() + ".demorgan");
3187 }
3188 
3189 /// Canonicalize a shifty way to code absolute value to the more common pattern
3190 /// that uses negation and select.
3191 static Instruction *canonicalizeAbs(BinaryOperator &Xor,
3192                                     InstCombiner::BuilderTy &Builder) {
3193   assert(Xor.getOpcode() == Instruction::Xor && "Expected an xor instruction.");
3194 
3195   // There are 4 potential commuted variants. Move the 'ashr' candidate to Op1.
3196   // We're relying on the fact that we only do this transform when the shift has
3197   // exactly 2 uses and the add has exactly 1 use (otherwise, we might increase
3198   // instructions).
3199   Value *Op0 = Xor.getOperand(0), *Op1 = Xor.getOperand(1);
3200   if (Op0->hasNUses(2))
3201     std::swap(Op0, Op1);
3202 
3203   Type *Ty = Xor.getType();
3204   Value *A;
3205   const APInt *ShAmt;
3206   if (match(Op1, m_AShr(m_Value(A), m_APInt(ShAmt))) &&
3207       Op1->hasNUses(2) && *ShAmt == Ty->getScalarSizeInBits() - 1 &&
3208       match(Op0, m_OneUse(m_c_Add(m_Specific(A), m_Specific(Op1))))) {
3209     // Op1 = ashr i32 A, 31   ; smear the sign bit
3210     // xor (add A, Op1), Op1  ; add -1 and flip bits if negative
3211     // --> (A < 0) ? -A : A
3212     Value *Cmp = Builder.CreateICmpSLT(A, ConstantInt::getNullValue(Ty));
3213     // Copy the nuw/nsw flags from the add to the negate.
3214     auto *Add = cast<BinaryOperator>(Op0);
3215     Value *Neg = Builder.CreateNeg(A, "", Add->hasNoUnsignedWrap(),
3216                                    Add->hasNoSignedWrap());
3217     return SelectInst::Create(Cmp, Neg, A);
3218   }
3219   return nullptr;
3220 }
3221 
3222 // Transform
3223 //   z = (~x) &/| y
3224 // into:
3225 //   z = ~(x |/& (~y))
3226 // iff y is free to invert and all uses of z can be freely updated.
3227 bool InstCombinerImpl::sinkNotIntoOtherHandOfAndOrOr(BinaryOperator &I) {
3228   Instruction::BinaryOps NewOpc;
3229   switch (I.getOpcode()) {
3230   case Instruction::And:
3231     NewOpc = Instruction::Or;
3232     break;
3233   case Instruction::Or:
3234     NewOpc = Instruction::And;
3235     break;
3236   default:
3237     return false;
3238   };
3239 
3240   Value *X, *Y;
3241   if (!match(&I, m_c_BinOp(m_Not(m_Value(X)), m_Value(Y))))
3242     return false;
3243 
3244   // Will we be able to fold the `not` into Y eventually?
3245   if (!InstCombiner::isFreeToInvert(Y, Y->hasOneUse()))
3246     return false;
3247 
3248   // And can our users be adapted?
3249   if (!InstCombiner::canFreelyInvertAllUsersOf(&I, /*IgnoredUser=*/nullptr))
3250     return false;
3251 
3252   Value *NotY = Builder.CreateNot(Y, Y->getName() + ".not");
3253   Value *NewBinOp =
3254       BinaryOperator::Create(NewOpc, X, NotY, I.getName() + ".not");
3255   Builder.Insert(NewBinOp);
3256   replaceInstUsesWith(I, NewBinOp);
3257   // We can not just create an outer `not`, it will most likely be immediately
3258   // folded back, reconstructing our initial pattern, and causing an
3259   // infinite combine loop, so immediately manually fold it away.
3260   freelyInvertAllUsersOf(NewBinOp);
3261   return true;
3262 }
3263 
3264 Instruction *InstCombinerImpl::foldNot(BinaryOperator &I) {
3265   Value *NotOp;
3266   if (!match(&I, m_Not(m_Value(NotOp))))
3267     return nullptr;
3268 
3269   // Apply DeMorgan's Law for 'nand' / 'nor' logic with an inverted operand.
3270   // We must eliminate the and/or (one-use) for these transforms to not increase
3271   // the instruction count.
3272   //
3273   // ~(~X & Y) --> (X | ~Y)
3274   // ~(Y & ~X) --> (X | ~Y)
3275   //
3276   // Note: The logical matches do not check for the commuted patterns because
3277   //       those are handled via SimplifySelectsFeedingBinaryOp().
3278   Type *Ty = I.getType();
3279   Value *X, *Y;
3280   if (match(NotOp, m_OneUse(m_c_And(m_Not(m_Value(X)), m_Value(Y))))) {
3281     Value *NotY = Builder.CreateNot(Y, Y->getName() + ".not");
3282     return BinaryOperator::CreateOr(X, NotY);
3283   }
3284   if (match(NotOp, m_OneUse(m_LogicalAnd(m_Not(m_Value(X)), m_Value(Y))))) {
3285     Value *NotY = Builder.CreateNot(Y, Y->getName() + ".not");
3286     return SelectInst::Create(X, ConstantInt::getTrue(Ty), NotY);
3287   }
3288 
3289   // ~(~X | Y) --> (X & ~Y)
3290   // ~(Y | ~X) --> (X & ~Y)
3291   if (match(NotOp, m_OneUse(m_c_Or(m_Not(m_Value(X)), m_Value(Y))))) {
3292     Value *NotY = Builder.CreateNot(Y, Y->getName() + ".not");
3293     return BinaryOperator::CreateAnd(X, NotY);
3294   }
3295   if (match(NotOp, m_OneUse(m_LogicalOr(m_Not(m_Value(X)), m_Value(Y))))) {
3296     Value *NotY = Builder.CreateNot(Y, Y->getName() + ".not");
3297     return SelectInst::Create(X, NotY, ConstantInt::getFalse(Ty));
3298   }
3299 
3300   // Is this a 'not' (~) fed by a binary operator?
3301   BinaryOperator *NotVal;
3302   if (match(NotOp, m_BinOp(NotVal))) {
3303     if (NotVal->getOpcode() == Instruction::And ||
3304         NotVal->getOpcode() == Instruction::Or) {
3305       // Apply DeMorgan's Law when inverts are free:
3306       // ~(X & Y) --> (~X | ~Y)
3307       // ~(X | Y) --> (~X & ~Y)
3308       if (isFreeToInvert(NotVal->getOperand(0),
3309                          NotVal->getOperand(0)->hasOneUse()) &&
3310           isFreeToInvert(NotVal->getOperand(1),
3311                          NotVal->getOperand(1)->hasOneUse())) {
3312         Value *NotX = Builder.CreateNot(NotVal->getOperand(0), "notlhs");
3313         Value *NotY = Builder.CreateNot(NotVal->getOperand(1), "notrhs");
3314         if (NotVal->getOpcode() == Instruction::And)
3315           return BinaryOperator::CreateOr(NotX, NotY);
3316         return BinaryOperator::CreateAnd(NotX, NotY);
3317       }
3318     }
3319 
3320     // ~((-X) | Y) --> (X - 1) & (~Y)
3321     if (match(NotVal,
3322               m_OneUse(m_c_Or(m_OneUse(m_Neg(m_Value(X))), m_Value(Y))))) {
3323       Value *DecX = Builder.CreateAdd(X, ConstantInt::getAllOnesValue(Ty));
3324       Value *NotY = Builder.CreateNot(Y);
3325       return BinaryOperator::CreateAnd(DecX, NotY);
3326     }
3327 
3328     // ~(~X >>s Y) --> (X >>s Y)
3329     if (match(NotVal, m_AShr(m_Not(m_Value(X)), m_Value(Y))))
3330       return BinaryOperator::CreateAShr(X, Y);
3331 
3332     // If we are inverting a right-shifted constant, we may be able to eliminate
3333     // the 'not' by inverting the constant and using the opposite shift type.
3334     // Canonicalization rules ensure that only a negative constant uses 'ashr',
3335     // but we must check that in case that transform has not fired yet.
3336 
3337     // ~(C >>s Y) --> ~C >>u Y (when inverting the replicated sign bits)
3338     Constant *C;
3339     if (match(NotVal, m_AShr(m_Constant(C), m_Value(Y))) &&
3340         match(C, m_Negative())) {
3341       // We matched a negative constant, so propagating undef is unsafe.
3342       // Clamp undef elements to -1.
3343       Type *EltTy = Ty->getScalarType();
3344       C = Constant::replaceUndefsWith(C, ConstantInt::getAllOnesValue(EltTy));
3345       return BinaryOperator::CreateLShr(ConstantExpr::getNot(C), Y);
3346     }
3347 
3348     // ~(C >>u Y) --> ~C >>s Y (when inverting the replicated sign bits)
3349     if (match(NotVal, m_LShr(m_Constant(C), m_Value(Y))) &&
3350         match(C, m_NonNegative())) {
3351       // We matched a non-negative constant, so propagating undef is unsafe.
3352       // Clamp undef elements to 0.
3353       Type *EltTy = Ty->getScalarType();
3354       C = Constant::replaceUndefsWith(C, ConstantInt::getNullValue(EltTy));
3355       return BinaryOperator::CreateAShr(ConstantExpr::getNot(C), Y);
3356     }
3357 
3358     // ~(X + C) --> ~C - X
3359     if (match(NotVal, m_c_Add(m_Value(X), m_ImmConstant(C))))
3360       return BinaryOperator::CreateSub(ConstantExpr::getNot(C), X);
3361 
3362     // ~(X - Y) --> ~X + Y
3363     // FIXME: is it really beneficial to sink the `not` here?
3364     if (match(NotVal, m_Sub(m_Value(X), m_Value(Y))))
3365       if (isa<Constant>(X) || NotVal->hasOneUse())
3366         return BinaryOperator::CreateAdd(Builder.CreateNot(X), Y);
3367 
3368     // ~(~X + Y) --> X - Y
3369     if (match(NotVal, m_c_Add(m_Not(m_Value(X)), m_Value(Y))))
3370       return BinaryOperator::CreateWithCopiedFlags(Instruction::Sub, X, Y,
3371                                                    NotVal);
3372   }
3373 
3374   // not (cmp A, B) = !cmp A, B
3375   CmpInst::Predicate Pred;
3376   if (match(NotOp, m_OneUse(m_Cmp(Pred, m_Value(), m_Value())))) {
3377     cast<CmpInst>(NotOp)->setPredicate(CmpInst::getInversePredicate(Pred));
3378     return replaceInstUsesWith(I, NotOp);
3379   }
3380 
3381   // Eliminate a bitwise 'not' op of 'not' min/max by inverting the min/max:
3382   // ~min(~X, ~Y) --> max(X, Y)
3383   // ~max(~X, Y) --> min(X, ~Y)
3384   auto *II = dyn_cast<IntrinsicInst>(NotOp);
3385   if (II && II->hasOneUse()) {
3386     if (match(NotOp, m_MaxOrMin(m_Value(X), m_Value(Y))) &&
3387         isFreeToInvert(X, X->hasOneUse()) &&
3388         isFreeToInvert(Y, Y->hasOneUse())) {
3389       Intrinsic::ID InvID = getInverseMinMaxIntrinsic(II->getIntrinsicID());
3390       Value *NotX = Builder.CreateNot(X);
3391       Value *NotY = Builder.CreateNot(Y);
3392       Value *InvMaxMin = Builder.CreateBinaryIntrinsic(InvID, NotX, NotY);
3393       return replaceInstUsesWith(I, InvMaxMin);
3394     }
3395     if (match(NotOp, m_c_MaxOrMin(m_Not(m_Value(X)), m_Value(Y)))) {
3396       Intrinsic::ID InvID = getInverseMinMaxIntrinsic(II->getIntrinsicID());
3397       Value *NotY = Builder.CreateNot(Y);
3398       Value *InvMaxMin = Builder.CreateBinaryIntrinsic(InvID, X, NotY);
3399       return replaceInstUsesWith(I, InvMaxMin);
3400     }
3401   }
3402 
3403   if (NotOp->hasOneUse()) {
3404     // Pull 'not' into operands of select if both operands are one-use compares
3405     // or one is one-use compare and the other one is a constant.
3406     // Inverting the predicates eliminates the 'not' operation.
3407     // Example:
3408     //   not (select ?, (cmp TPred, ?, ?), (cmp FPred, ?, ?) -->
3409     //     select ?, (cmp InvTPred, ?, ?), (cmp InvFPred, ?, ?)
3410     //   not (select ?, (cmp TPred, ?, ?), true -->
3411     //     select ?, (cmp InvTPred, ?, ?), false
3412     if (auto *Sel = dyn_cast<SelectInst>(NotOp)) {
3413       Value *TV = Sel->getTrueValue();
3414       Value *FV = Sel->getFalseValue();
3415       auto *CmpT = dyn_cast<CmpInst>(TV);
3416       auto *CmpF = dyn_cast<CmpInst>(FV);
3417       bool InvertibleT = (CmpT && CmpT->hasOneUse()) || isa<Constant>(TV);
3418       bool InvertibleF = (CmpF && CmpF->hasOneUse()) || isa<Constant>(FV);
3419       if (InvertibleT && InvertibleF) {
3420         if (CmpT)
3421           CmpT->setPredicate(CmpT->getInversePredicate());
3422         else
3423           Sel->setTrueValue(ConstantExpr::getNot(cast<Constant>(TV)));
3424         if (CmpF)
3425           CmpF->setPredicate(CmpF->getInversePredicate());
3426         else
3427           Sel->setFalseValue(ConstantExpr::getNot(cast<Constant>(FV)));
3428         return replaceInstUsesWith(I, Sel);
3429       }
3430     }
3431   }
3432 
3433   if (Instruction *NewXor = sinkNotIntoXor(I, Builder))
3434     return NewXor;
3435 
3436   return nullptr;
3437 }
3438 
3439 // FIXME: We use commutative matchers (m_c_*) for some, but not all, matches
3440 // here. We should standardize that construct where it is needed or choose some
3441 // other way to ensure that commutated variants of patterns are not missed.
3442 Instruction *InstCombinerImpl::visitXor(BinaryOperator &I) {
3443   if (Value *V = SimplifyXorInst(I.getOperand(0), I.getOperand(1),
3444                                  SQ.getWithInstruction(&I)))
3445     return replaceInstUsesWith(I, V);
3446 
3447   if (SimplifyAssociativeOrCommutative(I))
3448     return &I;
3449 
3450   if (Instruction *X = foldVectorBinop(I))
3451     return X;
3452 
3453   if (Instruction *Phi = foldBinopWithPhiOperands(I))
3454     return Phi;
3455 
3456   if (Instruction *NewXor = foldXorToXor(I, Builder))
3457     return NewXor;
3458 
3459   // (A&B)^(A&C) -> A&(B^C) etc
3460   if (Value *V = SimplifyUsingDistributiveLaws(I))
3461     return replaceInstUsesWith(I, V);
3462 
3463   // See if we can simplify any instructions used by the instruction whose sole
3464   // purpose is to compute bits we don't care about.
3465   if (SimplifyDemandedInstructionBits(I))
3466     return &I;
3467 
3468   if (Value *V = SimplifyBSwap(I, Builder))
3469     return replaceInstUsesWith(I, V);
3470 
3471   if (Instruction *R = foldNot(I))
3472     return R;
3473 
3474   // Fold (X & M) ^ (Y & ~M) -> (X & M) | (Y & ~M)
3475   // This it a special case in haveNoCommonBitsSet, but the computeKnownBits
3476   // calls in there are unnecessary as SimplifyDemandedInstructionBits should
3477   // have already taken care of those cases.
3478   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
3479   Value *M;
3480   if (match(&I, m_c_Xor(m_c_And(m_Not(m_Value(M)), m_Value()),
3481                         m_c_And(m_Deferred(M), m_Value()))))
3482     return BinaryOperator::CreateOr(Op0, Op1);
3483 
3484   if (Instruction *Xor = visitMaskedMerge(I, Builder))
3485     return Xor;
3486 
3487   Value *X, *Y;
3488   Constant *C1;
3489   if (match(Op1, m_Constant(C1))) {
3490     Constant *C2;
3491 
3492     if (match(Op0, m_OneUse(m_Or(m_Value(X), m_ImmConstant(C2)))) &&
3493         match(C1, m_ImmConstant())) {
3494       // (X | C2) ^ C1 --> (X & ~C2) ^ (C1^C2)
3495       C2 = Constant::replaceUndefsWith(
3496           C2, Constant::getAllOnesValue(C2->getType()->getScalarType()));
3497       Value *And = Builder.CreateAnd(
3498           X, Constant::mergeUndefsWith(ConstantExpr::getNot(C2), C1));
3499       return BinaryOperator::CreateXor(
3500           And, Constant::mergeUndefsWith(ConstantExpr::getXor(C1, C2), C1));
3501     }
3502 
3503     // Use DeMorgan and reassociation to eliminate a 'not' op.
3504     if (match(Op0, m_OneUse(m_Or(m_Not(m_Value(X)), m_Constant(C2))))) {
3505       // (~X | C2) ^ C1 --> ((X & ~C2) ^ -1) ^ C1 --> (X & ~C2) ^ ~C1
3506       Value *And = Builder.CreateAnd(X, ConstantExpr::getNot(C2));
3507       return BinaryOperator::CreateXor(And, ConstantExpr::getNot(C1));
3508     }
3509     if (match(Op0, m_OneUse(m_And(m_Not(m_Value(X)), m_Constant(C2))))) {
3510       // (~X & C2) ^ C1 --> ((X | ~C2) ^ -1) ^ C1 --> (X | ~C2) ^ ~C1
3511       Value *Or = Builder.CreateOr(X, ConstantExpr::getNot(C2));
3512       return BinaryOperator::CreateXor(Or, ConstantExpr::getNot(C1));
3513     }
3514 
3515     // Convert xor ([trunc] (ashr X, BW-1)), C =>
3516     //   select(X >s -1, C, ~C)
3517     // The ashr creates "AllZeroOrAllOne's", which then optionally inverses the
3518     // constant depending on whether this input is less than 0.
3519     const APInt *CA;
3520     if (match(Op0, m_OneUse(m_TruncOrSelf(
3521                        m_AShr(m_Value(X), m_APIntAllowUndef(CA))))) &&
3522         *CA == X->getType()->getScalarSizeInBits() - 1 &&
3523         !match(C1, m_AllOnes())) {
3524       assert(!C1->isZeroValue() && "Unexpected xor with 0");
3525       Value *ICmp =
3526           Builder.CreateICmpSGT(X, Constant::getAllOnesValue(X->getType()));
3527       return SelectInst::Create(ICmp, Op1, Builder.CreateNot(Op1));
3528     }
3529   }
3530 
3531   Type *Ty = I.getType();
3532   {
3533     const APInt *RHSC;
3534     if (match(Op1, m_APInt(RHSC))) {
3535       Value *X;
3536       const APInt *C;
3537       // (C - X) ^ signmaskC --> (C + signmaskC) - X
3538       if (RHSC->isSignMask() && match(Op0, m_Sub(m_APInt(C), m_Value(X))))
3539         return BinaryOperator::CreateSub(ConstantInt::get(Ty, *C + *RHSC), X);
3540 
3541       // (X + C) ^ signmaskC --> X + (C + signmaskC)
3542       if (RHSC->isSignMask() && match(Op0, m_Add(m_Value(X), m_APInt(C))))
3543         return BinaryOperator::CreateAdd(X, ConstantInt::get(Ty, *C + *RHSC));
3544 
3545       // (X | C) ^ RHSC --> X ^ (C ^ RHSC) iff X & C == 0
3546       if (match(Op0, m_Or(m_Value(X), m_APInt(C))) &&
3547           MaskedValueIsZero(X, *C, 0, &I))
3548         return BinaryOperator::CreateXor(X, ConstantInt::get(Ty, *C ^ *RHSC));
3549 
3550       // If RHSC is inverting the remaining bits of shifted X,
3551       // canonicalize to a 'not' before the shift to help SCEV and codegen:
3552       // (X << C) ^ RHSC --> ~X << C
3553       if (match(Op0, m_OneUse(m_Shl(m_Value(X), m_APInt(C)))) &&
3554           *RHSC == APInt::getAllOnes(Ty->getScalarSizeInBits()).shl(*C)) {
3555         Value *NotX = Builder.CreateNot(X);
3556         return BinaryOperator::CreateShl(NotX, ConstantInt::get(Ty, *C));
3557       }
3558       // (X >>u C) ^ RHSC --> ~X >>u C
3559       if (match(Op0, m_OneUse(m_LShr(m_Value(X), m_APInt(C)))) &&
3560           *RHSC == APInt::getAllOnes(Ty->getScalarSizeInBits()).lshr(*C)) {
3561         Value *NotX = Builder.CreateNot(X);
3562         return BinaryOperator::CreateLShr(NotX, ConstantInt::get(Ty, *C));
3563       }
3564       // TODO: We could handle 'ashr' here as well. That would be matching
3565       //       a 'not' op and moving it before the shift. Doing that requires
3566       //       preventing the inverse fold in canShiftBinOpWithConstantRHS().
3567     }
3568   }
3569 
3570   // FIXME: This should not be limited to scalar (pull into APInt match above).
3571   {
3572     Value *X;
3573     ConstantInt *C1, *C2, *C3;
3574     // ((X^C1) >> C2) ^ C3 -> (X>>C2) ^ ((C1>>C2)^C3)
3575     if (match(Op1, m_ConstantInt(C3)) &&
3576         match(Op0, m_LShr(m_Xor(m_Value(X), m_ConstantInt(C1)),
3577                           m_ConstantInt(C2))) &&
3578         Op0->hasOneUse()) {
3579       // fold (C1 >> C2) ^ C3
3580       APInt FoldConst = C1->getValue().lshr(C2->getValue());
3581       FoldConst ^= C3->getValue();
3582       // Prepare the two operands.
3583       auto *Opnd0 = Builder.CreateLShr(X, C2);
3584       Opnd0->takeName(Op0);
3585       return BinaryOperator::CreateXor(Opnd0, ConstantInt::get(Ty, FoldConst));
3586     }
3587   }
3588 
3589   if (Instruction *FoldedLogic = foldBinOpIntoSelectOrPhi(I))
3590     return FoldedLogic;
3591 
3592   // Y ^ (X | Y) --> X & ~Y
3593   // Y ^ (Y | X) --> X & ~Y
3594   if (match(Op1, m_OneUse(m_c_Or(m_Value(X), m_Specific(Op0)))))
3595     return BinaryOperator::CreateAnd(X, Builder.CreateNot(Op0));
3596   // (X | Y) ^ Y --> X & ~Y
3597   // (Y | X) ^ Y --> X & ~Y
3598   if (match(Op0, m_OneUse(m_c_Or(m_Value(X), m_Specific(Op1)))))
3599     return BinaryOperator::CreateAnd(X, Builder.CreateNot(Op1));
3600 
3601   // Y ^ (X & Y) --> ~X & Y
3602   // Y ^ (Y & X) --> ~X & Y
3603   if (match(Op1, m_OneUse(m_c_And(m_Value(X), m_Specific(Op0)))))
3604     return BinaryOperator::CreateAnd(Op0, Builder.CreateNot(X));
3605   // (X & Y) ^ Y --> ~X & Y
3606   // (Y & X) ^ Y --> ~X & Y
3607   // Canonical form is (X & C) ^ C; don't touch that.
3608   // TODO: A 'not' op is better for analysis and codegen, but demanded bits must
3609   //       be fixed to prefer that (otherwise we get infinite looping).
3610   if (!match(Op1, m_Constant()) &&
3611       match(Op0, m_OneUse(m_c_And(m_Value(X), m_Specific(Op1)))))
3612     return BinaryOperator::CreateAnd(Op1, Builder.CreateNot(X));
3613 
3614   Value *A, *B, *C;
3615   // (A ^ B) ^ (A | C) --> (~A & C) ^ B -- There are 4 commuted variants.
3616   if (match(&I, m_c_Xor(m_OneUse(m_Xor(m_Value(A), m_Value(B))),
3617                         m_OneUse(m_c_Or(m_Deferred(A), m_Value(C))))))
3618       return BinaryOperator::CreateXor(
3619           Builder.CreateAnd(Builder.CreateNot(A), C), B);
3620 
3621   // (A ^ B) ^ (B | C) --> (~B & C) ^ A -- There are 4 commuted variants.
3622   if (match(&I, m_c_Xor(m_OneUse(m_Xor(m_Value(A), m_Value(B))),
3623                         m_OneUse(m_c_Or(m_Deferred(B), m_Value(C))))))
3624       return BinaryOperator::CreateXor(
3625           Builder.CreateAnd(Builder.CreateNot(B), C), A);
3626 
3627   // (A & B) ^ (A ^ B) -> (A | B)
3628   if (match(Op0, m_And(m_Value(A), m_Value(B))) &&
3629       match(Op1, m_c_Xor(m_Specific(A), m_Specific(B))))
3630     return BinaryOperator::CreateOr(A, B);
3631   // (A ^ B) ^ (A & B) -> (A | B)
3632   if (match(Op0, m_Xor(m_Value(A), m_Value(B))) &&
3633       match(Op1, m_c_And(m_Specific(A), m_Specific(B))))
3634     return BinaryOperator::CreateOr(A, B);
3635 
3636   // (A & ~B) ^ ~A -> ~(A & B)
3637   // (~B & A) ^ ~A -> ~(A & B)
3638   if (match(Op0, m_c_And(m_Value(A), m_Not(m_Value(B)))) &&
3639       match(Op1, m_Not(m_Specific(A))))
3640     return BinaryOperator::CreateNot(Builder.CreateAnd(A, B));
3641 
3642   // (~A & B) ^ A --> A | B -- There are 4 commuted variants.
3643   if (match(&I, m_c_Xor(m_c_And(m_Not(m_Value(A)), m_Value(B)), m_Deferred(A))))
3644     return BinaryOperator::CreateOr(A, B);
3645 
3646   // (~A | B) ^ A --> ~(A & B)
3647   if (match(Op0, m_OneUse(m_c_Or(m_Not(m_Specific(Op1)), m_Value(B)))))
3648     return BinaryOperator::CreateNot(Builder.CreateAnd(Op1, B));
3649 
3650   // A ^ (~A | B) --> ~(A & B)
3651   if (match(Op1, m_OneUse(m_c_Or(m_Not(m_Specific(Op0)), m_Value(B)))))
3652     return BinaryOperator::CreateNot(Builder.CreateAnd(Op0, B));
3653 
3654   // (A | B) ^ (A | C) --> (B ^ C) & ~A -- There are 4 commuted variants.
3655   // TODO: Loosen one-use restriction if common operand is a constant.
3656   Value *D;
3657   if (match(Op0, m_OneUse(m_Or(m_Value(A), m_Value(B)))) &&
3658       match(Op1, m_OneUse(m_Or(m_Value(C), m_Value(D))))) {
3659     if (B == C || B == D)
3660       std::swap(A, B);
3661     if (A == C)
3662       std::swap(C, D);
3663     if (A == D) {
3664       Value *NotA = Builder.CreateNot(A);
3665       return BinaryOperator::CreateAnd(Builder.CreateXor(B, C), NotA);
3666     }
3667   }
3668 
3669   if (auto *LHS = dyn_cast<ICmpInst>(I.getOperand(0)))
3670     if (auto *RHS = dyn_cast<ICmpInst>(I.getOperand(1)))
3671       if (Value *V = foldXorOfICmps(LHS, RHS, I))
3672         return replaceInstUsesWith(I, V);
3673 
3674   if (Instruction *CastedXor = foldCastedBitwiseLogic(I))
3675     return CastedXor;
3676 
3677   if (Instruction *Abs = canonicalizeAbs(I, Builder))
3678     return Abs;
3679 
3680   // Otherwise, if all else failed, try to hoist the xor-by-constant:
3681   //   (X ^ C) ^ Y --> (X ^ Y) ^ C
3682   // Just like we do in other places, we completely avoid the fold
3683   // for constantexprs, at least to avoid endless combine loop.
3684   if (match(&I, m_c_Xor(m_OneUse(m_Xor(m_CombineAnd(m_Value(X),
3685                                                     m_Unless(m_ConstantExpr())),
3686                                        m_ImmConstant(C1))),
3687                         m_Value(Y))))
3688     return BinaryOperator::CreateXor(Builder.CreateXor(X, Y), C1);
3689 
3690   return nullptr;
3691 }
3692