1 //===- InstructionSimplify.cpp - Fold instruction operands ----------------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file implements routines for folding instructions into simpler forms
11 // that do not require creating new instructions.  This does constant folding
12 // ("add i32 1, 1" -> "2") but can also handle non-constant operands, either
13 // returning a constant ("and i32 %x, 0" -> "0") or an already existing value
14 // ("and i32 %x, %x" -> "%x").  All operands are assumed to have already been
15 // simplified: This is usually true and assuming it simplifies the logic (if
16 // they have not been simplified then results are correct but maybe suboptimal).
17 //
18 //===----------------------------------------------------------------------===//
19 
20 #include "llvm/Analysis/InstructionSimplify.h"
21 #include "llvm/ADT/SetVector.h"
22 #include "llvm/ADT/Statistic.h"
23 #include "llvm/Analysis/AliasAnalysis.h"
24 #include "llvm/Analysis/AssumptionCache.h"
25 #include "llvm/Analysis/CaptureTracking.h"
26 #include "llvm/Analysis/CmpInstAnalysis.h"
27 #include "llvm/Analysis/ConstantFolding.h"
28 #include "llvm/Analysis/LoopAnalysisManager.h"
29 #include "llvm/Analysis/MemoryBuiltins.h"
30 #include "llvm/Analysis/ValueTracking.h"
31 #include "llvm/Analysis/VectorUtils.h"
32 #include "llvm/IR/ConstantRange.h"
33 #include "llvm/IR/DataLayout.h"
34 #include "llvm/IR/Dominators.h"
35 #include "llvm/IR/GetElementPtrTypeIterator.h"
36 #include "llvm/IR/GlobalAlias.h"
37 #include "llvm/IR/Operator.h"
38 #include "llvm/IR/PatternMatch.h"
39 #include "llvm/IR/ValueHandle.h"
40 #include "llvm/Support/KnownBits.h"
41 #include <algorithm>
42 using namespace llvm;
43 using namespace llvm::PatternMatch;
44 
45 #define DEBUG_TYPE "instsimplify"
46 
47 enum { RecursionLimit = 3 };
48 
49 STATISTIC(NumExpand,  "Number of expansions");
50 STATISTIC(NumReassoc, "Number of reassociations");
51 
52 static Value *SimplifyAndInst(Value *, Value *, const SimplifyQuery &, unsigned);
53 static Value *SimplifyBinOp(unsigned, Value *, Value *, const SimplifyQuery &,
54                             unsigned);
55 static Value *SimplifyFPBinOp(unsigned, Value *, Value *, const FastMathFlags &,
56                               const SimplifyQuery &, unsigned);
57 static Value *SimplifyCmpInst(unsigned, Value *, Value *, const SimplifyQuery &,
58                               unsigned);
59 static Value *SimplifyICmpInst(unsigned Predicate, Value *LHS, Value *RHS,
60                                const SimplifyQuery &Q, unsigned MaxRecurse);
61 static Value *SimplifyOrInst(Value *, Value *, const SimplifyQuery &, unsigned);
62 static Value *SimplifyXorInst(Value *, Value *, const SimplifyQuery &, unsigned);
63 static Value *SimplifyCastInst(unsigned, Value *, Type *,
64                                const SimplifyQuery &, unsigned);
65 static Value *SimplifyGEPInst(Type *, ArrayRef<Value *>, const SimplifyQuery &,
66                               unsigned);
67 
68 /// For a boolean type or a vector of boolean type, return false or a vector
69 /// with every element false.
70 static Constant *getFalse(Type *Ty) {
71   return ConstantInt::getFalse(Ty);
72 }
73 
74 /// For a boolean type or a vector of boolean type, return true or a vector
75 /// with every element true.
76 static Constant *getTrue(Type *Ty) {
77   return ConstantInt::getTrue(Ty);
78 }
79 
80 /// isSameCompare - Is V equivalent to the comparison "LHS Pred RHS"?
81 static bool isSameCompare(Value *V, CmpInst::Predicate Pred, Value *LHS,
82                           Value *RHS) {
83   CmpInst *Cmp = dyn_cast<CmpInst>(V);
84   if (!Cmp)
85     return false;
86   CmpInst::Predicate CPred = Cmp->getPredicate();
87   Value *CLHS = Cmp->getOperand(0), *CRHS = Cmp->getOperand(1);
88   if (CPred == Pred && CLHS == LHS && CRHS == RHS)
89     return true;
90   return CPred == CmpInst::getSwappedPredicate(Pred) && CLHS == RHS &&
91     CRHS == LHS;
92 }
93 
94 /// Does the given value dominate the specified phi node?
95 static bool valueDominatesPHI(Value *V, PHINode *P, const DominatorTree *DT) {
96   Instruction *I = dyn_cast<Instruction>(V);
97   if (!I)
98     // Arguments and constants dominate all instructions.
99     return true;
100 
101   // If we are processing instructions (and/or basic blocks) that have not been
102   // fully added to a function, the parent nodes may still be null. Simply
103   // return the conservative answer in these cases.
104   if (!I->getParent() || !P->getParent() || !I->getFunction())
105     return false;
106 
107   // If we have a DominatorTree then do a precise test.
108   if (DT)
109     return DT->dominates(I, P);
110 
111   // Otherwise, if the instruction is in the entry block and is not an invoke,
112   // then it obviously dominates all phi nodes.
113   if (I->getParent() == &I->getFunction()->getEntryBlock() &&
114       !isa<InvokeInst>(I))
115     return true;
116 
117   return false;
118 }
119 
120 /// Simplify "A op (B op' C)" by distributing op over op', turning it into
121 /// "(A op B) op' (A op C)".  Here "op" is given by Opcode and "op'" is
122 /// given by OpcodeToExpand, while "A" corresponds to LHS and "B op' C" to RHS.
123 /// Also performs the transform "(A op' B) op C" -> "(A op C) op' (B op C)".
124 /// Returns the simplified value, or null if no simplification was performed.
125 static Value *ExpandBinOp(Instruction::BinaryOps Opcode, Value *LHS, Value *RHS,
126                           Instruction::BinaryOps OpcodeToExpand,
127                           const SimplifyQuery &Q, unsigned MaxRecurse) {
128   // Recursion is always used, so bail out at once if we already hit the limit.
129   if (!MaxRecurse--)
130     return nullptr;
131 
132   // Check whether the expression has the form "(A op' B) op C".
133   if (BinaryOperator *Op0 = dyn_cast<BinaryOperator>(LHS))
134     if (Op0->getOpcode() == OpcodeToExpand) {
135       // It does!  Try turning it into "(A op C) op' (B op C)".
136       Value *A = Op0->getOperand(0), *B = Op0->getOperand(1), *C = RHS;
137       // Do "A op C" and "B op C" both simplify?
138       if (Value *L = SimplifyBinOp(Opcode, A, C, Q, MaxRecurse))
139         if (Value *R = SimplifyBinOp(Opcode, B, C, Q, MaxRecurse)) {
140           // They do! Return "L op' R" if it simplifies or is already available.
141           // If "L op' R" equals "A op' B" then "L op' R" is just the LHS.
142           if ((L == A && R == B) || (Instruction::isCommutative(OpcodeToExpand)
143                                      && L == B && R == A)) {
144             ++NumExpand;
145             return LHS;
146           }
147           // Otherwise return "L op' R" if it simplifies.
148           if (Value *V = SimplifyBinOp(OpcodeToExpand, L, R, Q, MaxRecurse)) {
149             ++NumExpand;
150             return V;
151           }
152         }
153     }
154 
155   // Check whether the expression has the form "A op (B op' C)".
156   if (BinaryOperator *Op1 = dyn_cast<BinaryOperator>(RHS))
157     if (Op1->getOpcode() == OpcodeToExpand) {
158       // It does!  Try turning it into "(A op B) op' (A op C)".
159       Value *A = LHS, *B = Op1->getOperand(0), *C = Op1->getOperand(1);
160       // Do "A op B" and "A op C" both simplify?
161       if (Value *L = SimplifyBinOp(Opcode, A, B, Q, MaxRecurse))
162         if (Value *R = SimplifyBinOp(Opcode, A, C, Q, MaxRecurse)) {
163           // They do! Return "L op' R" if it simplifies or is already available.
164           // If "L op' R" equals "B op' C" then "L op' R" is just the RHS.
165           if ((L == B && R == C) || (Instruction::isCommutative(OpcodeToExpand)
166                                      && L == C && R == B)) {
167             ++NumExpand;
168             return RHS;
169           }
170           // Otherwise return "L op' R" if it simplifies.
171           if (Value *V = SimplifyBinOp(OpcodeToExpand, L, R, Q, MaxRecurse)) {
172             ++NumExpand;
173             return V;
174           }
175         }
176     }
177 
178   return nullptr;
179 }
180 
181 /// Generic simplifications for associative binary operations.
182 /// Returns the simpler value, or null if none was found.
183 static Value *SimplifyAssociativeBinOp(Instruction::BinaryOps Opcode,
184                                        Value *LHS, Value *RHS,
185                                        const SimplifyQuery &Q,
186                                        unsigned MaxRecurse) {
187   assert(Instruction::isAssociative(Opcode) && "Not an associative operation!");
188 
189   // Recursion is always used, so bail out at once if we already hit the limit.
190   if (!MaxRecurse--)
191     return nullptr;
192 
193   BinaryOperator *Op0 = dyn_cast<BinaryOperator>(LHS);
194   BinaryOperator *Op1 = dyn_cast<BinaryOperator>(RHS);
195 
196   // Transform: "(A op B) op C" ==> "A op (B op C)" if it simplifies completely.
197   if (Op0 && Op0->getOpcode() == Opcode) {
198     Value *A = Op0->getOperand(0);
199     Value *B = Op0->getOperand(1);
200     Value *C = RHS;
201 
202     // Does "B op C" simplify?
203     if (Value *V = SimplifyBinOp(Opcode, B, C, Q, MaxRecurse)) {
204       // It does!  Return "A op V" if it simplifies or is already available.
205       // If V equals B then "A op V" is just the LHS.
206       if (V == B) return LHS;
207       // Otherwise return "A op V" if it simplifies.
208       if (Value *W = SimplifyBinOp(Opcode, A, V, Q, MaxRecurse)) {
209         ++NumReassoc;
210         return W;
211       }
212     }
213   }
214 
215   // Transform: "A op (B op C)" ==> "(A op B) op C" if it simplifies completely.
216   if (Op1 && Op1->getOpcode() == Opcode) {
217     Value *A = LHS;
218     Value *B = Op1->getOperand(0);
219     Value *C = Op1->getOperand(1);
220 
221     // Does "A op B" simplify?
222     if (Value *V = SimplifyBinOp(Opcode, A, B, Q, MaxRecurse)) {
223       // It does!  Return "V op C" if it simplifies or is already available.
224       // If V equals B then "V op C" is just the RHS.
225       if (V == B) return RHS;
226       // Otherwise return "V op C" if it simplifies.
227       if (Value *W = SimplifyBinOp(Opcode, V, C, Q, MaxRecurse)) {
228         ++NumReassoc;
229         return W;
230       }
231     }
232   }
233 
234   // The remaining transforms require commutativity as well as associativity.
235   if (!Instruction::isCommutative(Opcode))
236     return nullptr;
237 
238   // Transform: "(A op B) op C" ==> "(C op A) op B" if it simplifies completely.
239   if (Op0 && Op0->getOpcode() == Opcode) {
240     Value *A = Op0->getOperand(0);
241     Value *B = Op0->getOperand(1);
242     Value *C = RHS;
243 
244     // Does "C op A" simplify?
245     if (Value *V = SimplifyBinOp(Opcode, C, A, Q, MaxRecurse)) {
246       // It does!  Return "V op B" if it simplifies or is already available.
247       // If V equals A then "V op B" is just the LHS.
248       if (V == A) return LHS;
249       // Otherwise return "V op B" if it simplifies.
250       if (Value *W = SimplifyBinOp(Opcode, V, B, Q, MaxRecurse)) {
251         ++NumReassoc;
252         return W;
253       }
254     }
255   }
256 
257   // Transform: "A op (B op C)" ==> "B op (C op A)" if it simplifies completely.
258   if (Op1 && Op1->getOpcode() == Opcode) {
259     Value *A = LHS;
260     Value *B = Op1->getOperand(0);
261     Value *C = Op1->getOperand(1);
262 
263     // Does "C op A" simplify?
264     if (Value *V = SimplifyBinOp(Opcode, C, A, Q, MaxRecurse)) {
265       // It does!  Return "B op V" if it simplifies or is already available.
266       // If V equals C then "B op V" is just the RHS.
267       if (V == C) return RHS;
268       // Otherwise return "B op V" if it simplifies.
269       if (Value *W = SimplifyBinOp(Opcode, B, V, Q, MaxRecurse)) {
270         ++NumReassoc;
271         return W;
272       }
273     }
274   }
275 
276   return nullptr;
277 }
278 
279 /// In the case of a binary operation with a select instruction as an operand,
280 /// try to simplify the binop by seeing whether evaluating it on both branches
281 /// of the select results in the same value. Returns the common value if so,
282 /// otherwise returns null.
283 static Value *ThreadBinOpOverSelect(Instruction::BinaryOps Opcode, Value *LHS,
284                                     Value *RHS, const SimplifyQuery &Q,
285                                     unsigned MaxRecurse) {
286   // Recursion is always used, so bail out at once if we already hit the limit.
287   if (!MaxRecurse--)
288     return nullptr;
289 
290   SelectInst *SI;
291   if (isa<SelectInst>(LHS)) {
292     SI = cast<SelectInst>(LHS);
293   } else {
294     assert(isa<SelectInst>(RHS) && "No select instruction operand!");
295     SI = cast<SelectInst>(RHS);
296   }
297 
298   // Evaluate the BinOp on the true and false branches of the select.
299   Value *TV;
300   Value *FV;
301   if (SI == LHS) {
302     TV = SimplifyBinOp(Opcode, SI->getTrueValue(), RHS, Q, MaxRecurse);
303     FV = SimplifyBinOp(Opcode, SI->getFalseValue(), RHS, Q, MaxRecurse);
304   } else {
305     TV = SimplifyBinOp(Opcode, LHS, SI->getTrueValue(), Q, MaxRecurse);
306     FV = SimplifyBinOp(Opcode, LHS, SI->getFalseValue(), Q, MaxRecurse);
307   }
308 
309   // If they simplified to the same value, then return the common value.
310   // If they both failed to simplify then return null.
311   if (TV == FV)
312     return TV;
313 
314   // If one branch simplified to undef, return the other one.
315   if (TV && isa<UndefValue>(TV))
316     return FV;
317   if (FV && isa<UndefValue>(FV))
318     return TV;
319 
320   // If applying the operation did not change the true and false select values,
321   // then the result of the binop is the select itself.
322   if (TV == SI->getTrueValue() && FV == SI->getFalseValue())
323     return SI;
324 
325   // If one branch simplified and the other did not, and the simplified
326   // value is equal to the unsimplified one, return the simplified value.
327   // For example, select (cond, X, X & Z) & Z -> X & Z.
328   if ((FV && !TV) || (TV && !FV)) {
329     // Check that the simplified value has the form "X op Y" where "op" is the
330     // same as the original operation.
331     Instruction *Simplified = dyn_cast<Instruction>(FV ? FV : TV);
332     if (Simplified && Simplified->getOpcode() == unsigned(Opcode)) {
333       // The value that didn't simplify is "UnsimplifiedLHS op UnsimplifiedRHS".
334       // We already know that "op" is the same as for the simplified value.  See
335       // if the operands match too.  If so, return the simplified value.
336       Value *UnsimplifiedBranch = FV ? SI->getTrueValue() : SI->getFalseValue();
337       Value *UnsimplifiedLHS = SI == LHS ? UnsimplifiedBranch : LHS;
338       Value *UnsimplifiedRHS = SI == LHS ? RHS : UnsimplifiedBranch;
339       if (Simplified->getOperand(0) == UnsimplifiedLHS &&
340           Simplified->getOperand(1) == UnsimplifiedRHS)
341         return Simplified;
342       if (Simplified->isCommutative() &&
343           Simplified->getOperand(1) == UnsimplifiedLHS &&
344           Simplified->getOperand(0) == UnsimplifiedRHS)
345         return Simplified;
346     }
347   }
348 
349   return nullptr;
350 }
351 
352 /// In the case of a comparison with a select instruction, try to simplify the
353 /// comparison by seeing whether both branches of the select result in the same
354 /// value. Returns the common value if so, otherwise returns null.
355 static Value *ThreadCmpOverSelect(CmpInst::Predicate Pred, Value *LHS,
356                                   Value *RHS, const SimplifyQuery &Q,
357                                   unsigned MaxRecurse) {
358   // Recursion is always used, so bail out at once if we already hit the limit.
359   if (!MaxRecurse--)
360     return nullptr;
361 
362   // Make sure the select is on the LHS.
363   if (!isa<SelectInst>(LHS)) {
364     std::swap(LHS, RHS);
365     Pred = CmpInst::getSwappedPredicate(Pred);
366   }
367   assert(isa<SelectInst>(LHS) && "Not comparing with a select instruction!");
368   SelectInst *SI = cast<SelectInst>(LHS);
369   Value *Cond = SI->getCondition();
370   Value *TV = SI->getTrueValue();
371   Value *FV = SI->getFalseValue();
372 
373   // Now that we have "cmp select(Cond, TV, FV), RHS", analyse it.
374   // Does "cmp TV, RHS" simplify?
375   Value *TCmp = SimplifyCmpInst(Pred, TV, RHS, Q, MaxRecurse);
376   if (TCmp == Cond) {
377     // It not only simplified, it simplified to the select condition.  Replace
378     // it with 'true'.
379     TCmp = getTrue(Cond->getType());
380   } else if (!TCmp) {
381     // It didn't simplify.  However if "cmp TV, RHS" is equal to the select
382     // condition then we can replace it with 'true'.  Otherwise give up.
383     if (!isSameCompare(Cond, Pred, TV, RHS))
384       return nullptr;
385     TCmp = getTrue(Cond->getType());
386   }
387 
388   // Does "cmp FV, RHS" simplify?
389   Value *FCmp = SimplifyCmpInst(Pred, FV, RHS, Q, MaxRecurse);
390   if (FCmp == Cond) {
391     // It not only simplified, it simplified to the select condition.  Replace
392     // it with 'false'.
393     FCmp = getFalse(Cond->getType());
394   } else if (!FCmp) {
395     // It didn't simplify.  However if "cmp FV, RHS" is equal to the select
396     // condition then we can replace it with 'false'.  Otherwise give up.
397     if (!isSameCompare(Cond, Pred, FV, RHS))
398       return nullptr;
399     FCmp = getFalse(Cond->getType());
400   }
401 
402   // If both sides simplified to the same value, then use it as the result of
403   // the original comparison.
404   if (TCmp == FCmp)
405     return TCmp;
406 
407   // The remaining cases only make sense if the select condition has the same
408   // type as the result of the comparison, so bail out if this is not so.
409   if (Cond->getType()->isVectorTy() != RHS->getType()->isVectorTy())
410     return nullptr;
411   // If the false value simplified to false, then the result of the compare
412   // is equal to "Cond && TCmp".  This also catches the case when the false
413   // value simplified to false and the true value to true, returning "Cond".
414   if (match(FCmp, m_Zero()))
415     if (Value *V = SimplifyAndInst(Cond, TCmp, Q, MaxRecurse))
416       return V;
417   // If the true value simplified to true, then the result of the compare
418   // is equal to "Cond || FCmp".
419   if (match(TCmp, m_One()))
420     if (Value *V = SimplifyOrInst(Cond, FCmp, Q, MaxRecurse))
421       return V;
422   // Finally, if the false value simplified to true and the true value to
423   // false, then the result of the compare is equal to "!Cond".
424   if (match(FCmp, m_One()) && match(TCmp, m_Zero()))
425     if (Value *V =
426         SimplifyXorInst(Cond, Constant::getAllOnesValue(Cond->getType()),
427                         Q, MaxRecurse))
428       return V;
429 
430   return nullptr;
431 }
432 
433 /// In the case of a binary operation with an operand that is a PHI instruction,
434 /// try to simplify the binop by seeing whether evaluating it on the incoming
435 /// phi values yields the same result for every value. If so returns the common
436 /// value, otherwise returns null.
437 static Value *ThreadBinOpOverPHI(Instruction::BinaryOps Opcode, Value *LHS,
438                                  Value *RHS, const SimplifyQuery &Q,
439                                  unsigned MaxRecurse) {
440   // Recursion is always used, so bail out at once if we already hit the limit.
441   if (!MaxRecurse--)
442     return nullptr;
443 
444   PHINode *PI;
445   if (isa<PHINode>(LHS)) {
446     PI = cast<PHINode>(LHS);
447     // Bail out if RHS and the phi may be mutually interdependent due to a loop.
448     if (!valueDominatesPHI(RHS, PI, Q.DT))
449       return nullptr;
450   } else {
451     assert(isa<PHINode>(RHS) && "No PHI instruction operand!");
452     PI = cast<PHINode>(RHS);
453     // Bail out if LHS and the phi may be mutually interdependent due to a loop.
454     if (!valueDominatesPHI(LHS, PI, Q.DT))
455       return nullptr;
456   }
457 
458   // Evaluate the BinOp on the incoming phi values.
459   Value *CommonValue = nullptr;
460   for (Value *Incoming : PI->incoming_values()) {
461     // If the incoming value is the phi node itself, it can safely be skipped.
462     if (Incoming == PI) continue;
463     Value *V = PI == LHS ?
464       SimplifyBinOp(Opcode, Incoming, RHS, Q, MaxRecurse) :
465       SimplifyBinOp(Opcode, LHS, Incoming, Q, MaxRecurse);
466     // If the operation failed to simplify, or simplified to a different value
467     // to previously, then give up.
468     if (!V || (CommonValue && V != CommonValue))
469       return nullptr;
470     CommonValue = V;
471   }
472 
473   return CommonValue;
474 }
475 
476 /// In the case of a comparison with a PHI instruction, try to simplify the
477 /// comparison by seeing whether comparing with all of the incoming phi values
478 /// yields the same result every time. If so returns the common result,
479 /// otherwise returns null.
480 static Value *ThreadCmpOverPHI(CmpInst::Predicate Pred, Value *LHS, Value *RHS,
481                                const SimplifyQuery &Q, unsigned MaxRecurse) {
482   // Recursion is always used, so bail out at once if we already hit the limit.
483   if (!MaxRecurse--)
484     return nullptr;
485 
486   // Make sure the phi is on the LHS.
487   if (!isa<PHINode>(LHS)) {
488     std::swap(LHS, RHS);
489     Pred = CmpInst::getSwappedPredicate(Pred);
490   }
491   assert(isa<PHINode>(LHS) && "Not comparing with a phi instruction!");
492   PHINode *PI = cast<PHINode>(LHS);
493 
494   // Bail out if RHS and the phi may be mutually interdependent due to a loop.
495   if (!valueDominatesPHI(RHS, PI, Q.DT))
496     return nullptr;
497 
498   // Evaluate the BinOp on the incoming phi values.
499   Value *CommonValue = nullptr;
500   for (Value *Incoming : PI->incoming_values()) {
501     // If the incoming value is the phi node itself, it can safely be skipped.
502     if (Incoming == PI) continue;
503     Value *V = SimplifyCmpInst(Pred, Incoming, RHS, Q, MaxRecurse);
504     // If the operation failed to simplify, or simplified to a different value
505     // to previously, then give up.
506     if (!V || (CommonValue && V != CommonValue))
507       return nullptr;
508     CommonValue = V;
509   }
510 
511   return CommonValue;
512 }
513 
514 static Constant *foldOrCommuteConstant(Instruction::BinaryOps Opcode,
515                                        Value *&Op0, Value *&Op1,
516                                        const SimplifyQuery &Q) {
517   if (auto *CLHS = dyn_cast<Constant>(Op0)) {
518     if (auto *CRHS = dyn_cast<Constant>(Op1))
519       return ConstantFoldBinaryOpOperands(Opcode, CLHS, CRHS, Q.DL);
520 
521     // Canonicalize the constant to the RHS if this is a commutative operation.
522     if (Instruction::isCommutative(Opcode))
523       std::swap(Op0, Op1);
524   }
525   return nullptr;
526 }
527 
528 /// Given operands for an Add, see if we can fold the result.
529 /// If not, this returns null.
530 static Value *SimplifyAddInst(Value *Op0, Value *Op1, bool IsNSW, bool IsNUW,
531                               const SimplifyQuery &Q, unsigned MaxRecurse) {
532   if (Constant *C = foldOrCommuteConstant(Instruction::Add, Op0, Op1, Q))
533     return C;
534 
535   // X + undef -> undef
536   if (match(Op1, m_Undef()))
537     return Op1;
538 
539   // X + 0 -> X
540   if (match(Op1, m_Zero()))
541     return Op0;
542 
543   // If two operands are negative, return 0.
544   if (isKnownNegation(Op0, Op1))
545     return Constant::getNullValue(Op0->getType());
546 
547   // X + (Y - X) -> Y
548   // (Y - X) + X -> Y
549   // Eg: X + -X -> 0
550   Value *Y = nullptr;
551   if (match(Op1, m_Sub(m_Value(Y), m_Specific(Op0))) ||
552       match(Op0, m_Sub(m_Value(Y), m_Specific(Op1))))
553     return Y;
554 
555   // X + ~X -> -1   since   ~X = -X-1
556   Type *Ty = Op0->getType();
557   if (match(Op0, m_Not(m_Specific(Op1))) ||
558       match(Op1, m_Not(m_Specific(Op0))))
559     return Constant::getAllOnesValue(Ty);
560 
561   // add nsw/nuw (xor Y, signmask), signmask --> Y
562   // The no-wrapping add guarantees that the top bit will be set by the add.
563   // Therefore, the xor must be clearing the already set sign bit of Y.
564   if ((IsNSW || IsNUW) && match(Op1, m_SignMask()) &&
565       match(Op0, m_Xor(m_Value(Y), m_SignMask())))
566     return Y;
567 
568   // add nuw %x, -1  ->  -1, because %x can only be 0.
569   if (IsNUW && match(Op1, m_AllOnes()))
570     return Op1; // Which is -1.
571 
572   /// i1 add -> xor.
573   if (MaxRecurse && Op0->getType()->isIntOrIntVectorTy(1))
574     if (Value *V = SimplifyXorInst(Op0, Op1, Q, MaxRecurse-1))
575       return V;
576 
577   // Try some generic simplifications for associative operations.
578   if (Value *V = SimplifyAssociativeBinOp(Instruction::Add, Op0, Op1, Q,
579                                           MaxRecurse))
580     return V;
581 
582   // Threading Add over selects and phi nodes is pointless, so don't bother.
583   // Threading over the select in "A + select(cond, B, C)" means evaluating
584   // "A+B" and "A+C" and seeing if they are equal; but they are equal if and
585   // only if B and C are equal.  If B and C are equal then (since we assume
586   // that operands have already been simplified) "select(cond, B, C)" should
587   // have been simplified to the common value of B and C already.  Analysing
588   // "A+B" and "A+C" thus gains nothing, but costs compile time.  Similarly
589   // for threading over phi nodes.
590 
591   return nullptr;
592 }
593 
594 Value *llvm::SimplifyAddInst(Value *Op0, Value *Op1, bool IsNSW, bool IsNUW,
595                              const SimplifyQuery &Query) {
596   return ::SimplifyAddInst(Op0, Op1, IsNSW, IsNUW, Query, RecursionLimit);
597 }
598 
599 /// Compute the base pointer and cumulative constant offsets for V.
600 ///
601 /// This strips all constant offsets off of V, leaving it the base pointer, and
602 /// accumulates the total constant offset applied in the returned constant. It
603 /// returns 0 if V is not a pointer, and returns the constant '0' if there are
604 /// no constant offsets applied.
605 ///
606 /// This is very similar to GetPointerBaseWithConstantOffset except it doesn't
607 /// follow non-inbounds geps. This allows it to remain usable for icmp ult/etc.
608 /// folding.
609 static Constant *stripAndComputeConstantOffsets(const DataLayout &DL, Value *&V,
610                                                 bool AllowNonInbounds = false) {
611   assert(V->getType()->isPtrOrPtrVectorTy());
612 
613   Type *IntPtrTy = DL.getIntPtrType(V->getType())->getScalarType();
614   APInt Offset = APInt::getNullValue(IntPtrTy->getIntegerBitWidth());
615 
616   // Even though we don't look through PHI nodes, we could be called on an
617   // instruction in an unreachable block, which may be on a cycle.
618   SmallPtrSet<Value *, 4> Visited;
619   Visited.insert(V);
620   do {
621     if (GEPOperator *GEP = dyn_cast<GEPOperator>(V)) {
622       if ((!AllowNonInbounds && !GEP->isInBounds()) ||
623           !GEP->accumulateConstantOffset(DL, Offset))
624         break;
625       V = GEP->getPointerOperand();
626     } else if (Operator::getOpcode(V) == Instruction::BitCast) {
627       V = cast<Operator>(V)->getOperand(0);
628     } else if (GlobalAlias *GA = dyn_cast<GlobalAlias>(V)) {
629       if (GA->isInterposable())
630         break;
631       V = GA->getAliasee();
632     } else {
633       if (auto CS = CallSite(V))
634         if (Value *RV = CS.getReturnedArgOperand()) {
635           V = RV;
636           continue;
637         }
638       break;
639     }
640     assert(V->getType()->isPtrOrPtrVectorTy() && "Unexpected operand type!");
641   } while (Visited.insert(V).second);
642 
643   Constant *OffsetIntPtr = ConstantInt::get(IntPtrTy, Offset);
644   if (V->getType()->isVectorTy())
645     return ConstantVector::getSplat(V->getType()->getVectorNumElements(),
646                                     OffsetIntPtr);
647   return OffsetIntPtr;
648 }
649 
650 /// Compute the constant difference between two pointer values.
651 /// If the difference is not a constant, returns zero.
652 static Constant *computePointerDifference(const DataLayout &DL, Value *LHS,
653                                           Value *RHS) {
654   Constant *LHSOffset = stripAndComputeConstantOffsets(DL, LHS);
655   Constant *RHSOffset = stripAndComputeConstantOffsets(DL, RHS);
656 
657   // If LHS and RHS are not related via constant offsets to the same base
658   // value, there is nothing we can do here.
659   if (LHS != RHS)
660     return nullptr;
661 
662   // Otherwise, the difference of LHS - RHS can be computed as:
663   //    LHS - RHS
664   //  = (LHSOffset + Base) - (RHSOffset + Base)
665   //  = LHSOffset - RHSOffset
666   return ConstantExpr::getSub(LHSOffset, RHSOffset);
667 }
668 
669 /// Given operands for a Sub, see if we can fold the result.
670 /// If not, this returns null.
671 static Value *SimplifySubInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW,
672                               const SimplifyQuery &Q, unsigned MaxRecurse) {
673   if (Constant *C = foldOrCommuteConstant(Instruction::Sub, Op0, Op1, Q))
674     return C;
675 
676   // X - undef -> undef
677   // undef - X -> undef
678   if (match(Op0, m_Undef()) || match(Op1, m_Undef()))
679     return UndefValue::get(Op0->getType());
680 
681   // X - 0 -> X
682   if (match(Op1, m_Zero()))
683     return Op0;
684 
685   // X - X -> 0
686   if (Op0 == Op1)
687     return Constant::getNullValue(Op0->getType());
688 
689   // Is this a negation?
690   if (match(Op0, m_Zero())) {
691     // 0 - X -> 0 if the sub is NUW.
692     if (isNUW)
693       return Constant::getNullValue(Op0->getType());
694 
695     KnownBits Known = computeKnownBits(Op1, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
696     if (Known.Zero.isMaxSignedValue()) {
697       // Op1 is either 0 or the minimum signed value. If the sub is NSW, then
698       // Op1 must be 0 because negating the minimum signed value is undefined.
699       if (isNSW)
700         return Constant::getNullValue(Op0->getType());
701 
702       // 0 - X -> X if X is 0 or the minimum signed value.
703       return Op1;
704     }
705   }
706 
707   // (X + Y) - Z -> X + (Y - Z) or Y + (X - Z) if everything simplifies.
708   // For example, (X + Y) - Y -> X; (Y + X) - Y -> X
709   Value *X = nullptr, *Y = nullptr, *Z = Op1;
710   if (MaxRecurse && match(Op0, m_Add(m_Value(X), m_Value(Y)))) { // (X + Y) - Z
711     // See if "V === Y - Z" simplifies.
712     if (Value *V = SimplifyBinOp(Instruction::Sub, Y, Z, Q, MaxRecurse-1))
713       // It does!  Now see if "X + V" simplifies.
714       if (Value *W = SimplifyBinOp(Instruction::Add, X, V, Q, MaxRecurse-1)) {
715         // It does, we successfully reassociated!
716         ++NumReassoc;
717         return W;
718       }
719     // See if "V === X - Z" simplifies.
720     if (Value *V = SimplifyBinOp(Instruction::Sub, X, Z, Q, MaxRecurse-1))
721       // It does!  Now see if "Y + V" simplifies.
722       if (Value *W = SimplifyBinOp(Instruction::Add, Y, V, Q, MaxRecurse-1)) {
723         // It does, we successfully reassociated!
724         ++NumReassoc;
725         return W;
726       }
727   }
728 
729   // X - (Y + Z) -> (X - Y) - Z or (X - Z) - Y if everything simplifies.
730   // For example, X - (X + 1) -> -1
731   X = Op0;
732   if (MaxRecurse && match(Op1, m_Add(m_Value(Y), m_Value(Z)))) { // X - (Y + Z)
733     // See if "V === X - Y" simplifies.
734     if (Value *V = SimplifyBinOp(Instruction::Sub, X, Y, Q, MaxRecurse-1))
735       // It does!  Now see if "V - Z" simplifies.
736       if (Value *W = SimplifyBinOp(Instruction::Sub, V, Z, Q, MaxRecurse-1)) {
737         // It does, we successfully reassociated!
738         ++NumReassoc;
739         return W;
740       }
741     // See if "V === X - Z" simplifies.
742     if (Value *V = SimplifyBinOp(Instruction::Sub, X, Z, Q, MaxRecurse-1))
743       // It does!  Now see if "V - Y" simplifies.
744       if (Value *W = SimplifyBinOp(Instruction::Sub, V, Y, Q, MaxRecurse-1)) {
745         // It does, we successfully reassociated!
746         ++NumReassoc;
747         return W;
748       }
749   }
750 
751   // Z - (X - Y) -> (Z - X) + Y if everything simplifies.
752   // For example, X - (X - Y) -> Y.
753   Z = Op0;
754   if (MaxRecurse && match(Op1, m_Sub(m_Value(X), m_Value(Y)))) // Z - (X - Y)
755     // See if "V === Z - X" simplifies.
756     if (Value *V = SimplifyBinOp(Instruction::Sub, Z, X, Q, MaxRecurse-1))
757       // It does!  Now see if "V + Y" simplifies.
758       if (Value *W = SimplifyBinOp(Instruction::Add, V, Y, Q, MaxRecurse-1)) {
759         // It does, we successfully reassociated!
760         ++NumReassoc;
761         return W;
762       }
763 
764   // trunc(X) - trunc(Y) -> trunc(X - Y) if everything simplifies.
765   if (MaxRecurse && match(Op0, m_Trunc(m_Value(X))) &&
766       match(Op1, m_Trunc(m_Value(Y))))
767     if (X->getType() == Y->getType())
768       // See if "V === X - Y" simplifies.
769       if (Value *V = SimplifyBinOp(Instruction::Sub, X, Y, Q, MaxRecurse-1))
770         // It does!  Now see if "trunc V" simplifies.
771         if (Value *W = SimplifyCastInst(Instruction::Trunc, V, Op0->getType(),
772                                         Q, MaxRecurse - 1))
773           // It does, return the simplified "trunc V".
774           return W;
775 
776   // Variations on GEP(base, I, ...) - GEP(base, i, ...) -> GEP(null, I-i, ...).
777   if (match(Op0, m_PtrToInt(m_Value(X))) &&
778       match(Op1, m_PtrToInt(m_Value(Y))))
779     if (Constant *Result = computePointerDifference(Q.DL, X, Y))
780       return ConstantExpr::getIntegerCast(Result, Op0->getType(), true);
781 
782   // i1 sub -> xor.
783   if (MaxRecurse && Op0->getType()->isIntOrIntVectorTy(1))
784     if (Value *V = SimplifyXorInst(Op0, Op1, Q, MaxRecurse-1))
785       return V;
786 
787   // Threading Sub over selects and phi nodes is pointless, so don't bother.
788   // Threading over the select in "A - select(cond, B, C)" means evaluating
789   // "A-B" and "A-C" and seeing if they are equal; but they are equal if and
790   // only if B and C are equal.  If B and C are equal then (since we assume
791   // that operands have already been simplified) "select(cond, B, C)" should
792   // have been simplified to the common value of B and C already.  Analysing
793   // "A-B" and "A-C" thus gains nothing, but costs compile time.  Similarly
794   // for threading over phi nodes.
795 
796   return nullptr;
797 }
798 
799 Value *llvm::SimplifySubInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW,
800                              const SimplifyQuery &Q) {
801   return ::SimplifySubInst(Op0, Op1, isNSW, isNUW, Q, RecursionLimit);
802 }
803 
804 /// Given operands for a Mul, see if we can fold the result.
805 /// If not, this returns null.
806 static Value *SimplifyMulInst(Value *Op0, Value *Op1, const SimplifyQuery &Q,
807                               unsigned MaxRecurse) {
808   if (Constant *C = foldOrCommuteConstant(Instruction::Mul, Op0, Op1, Q))
809     return C;
810 
811   // X * undef -> 0
812   // X * 0 -> 0
813   if (match(Op1, m_CombineOr(m_Undef(), m_Zero())))
814     return Constant::getNullValue(Op0->getType());
815 
816   // X * 1 -> X
817   if (match(Op1, m_One()))
818     return Op0;
819 
820   // (X / Y) * Y -> X if the division is exact.
821   Value *X = nullptr;
822   if (match(Op0, m_Exact(m_IDiv(m_Value(X), m_Specific(Op1)))) || // (X / Y) * Y
823       match(Op1, m_Exact(m_IDiv(m_Value(X), m_Specific(Op0)))))   // Y * (X / Y)
824     return X;
825 
826   // i1 mul -> and.
827   if (MaxRecurse && Op0->getType()->isIntOrIntVectorTy(1))
828     if (Value *V = SimplifyAndInst(Op0, Op1, Q, MaxRecurse-1))
829       return V;
830 
831   // Try some generic simplifications for associative operations.
832   if (Value *V = SimplifyAssociativeBinOp(Instruction::Mul, Op0, Op1, Q,
833                                           MaxRecurse))
834     return V;
835 
836   // Mul distributes over Add. Try some generic simplifications based on this.
837   if (Value *V = ExpandBinOp(Instruction::Mul, Op0, Op1, Instruction::Add,
838                              Q, MaxRecurse))
839     return V;
840 
841   // If the operation is with the result of a select instruction, check whether
842   // operating on either branch of the select always yields the same value.
843   if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
844     if (Value *V = ThreadBinOpOverSelect(Instruction::Mul, Op0, Op1, Q,
845                                          MaxRecurse))
846       return V;
847 
848   // If the operation is with the result of a phi instruction, check whether
849   // operating on all incoming values of the phi always yields the same value.
850   if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
851     if (Value *V = ThreadBinOpOverPHI(Instruction::Mul, Op0, Op1, Q,
852                                       MaxRecurse))
853       return V;
854 
855   return nullptr;
856 }
857 
858 Value *llvm::SimplifyMulInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) {
859   return ::SimplifyMulInst(Op0, Op1, Q, RecursionLimit);
860 }
861 
862 /// Check for common or similar folds of integer division or integer remainder.
863 /// This applies to all 4 opcodes (sdiv/udiv/srem/urem).
864 static Value *simplifyDivRem(Value *Op0, Value *Op1, bool IsDiv) {
865   Type *Ty = Op0->getType();
866 
867   // X / undef -> undef
868   // X % undef -> undef
869   if (match(Op1, m_Undef()))
870     return Op1;
871 
872   // X / 0 -> undef
873   // X % 0 -> undef
874   // We don't need to preserve faults!
875   if (match(Op1, m_Zero()))
876     return UndefValue::get(Ty);
877 
878   // If any element of a constant divisor vector is zero or undef, the whole op
879   // is undef.
880   auto *Op1C = dyn_cast<Constant>(Op1);
881   if (Op1C && Ty->isVectorTy()) {
882     unsigned NumElts = Ty->getVectorNumElements();
883     for (unsigned i = 0; i != NumElts; ++i) {
884       Constant *Elt = Op1C->getAggregateElement(i);
885       if (Elt && (Elt->isNullValue() || isa<UndefValue>(Elt)))
886         return UndefValue::get(Ty);
887     }
888   }
889 
890   // undef / X -> 0
891   // undef % X -> 0
892   if (match(Op0, m_Undef()))
893     return Constant::getNullValue(Ty);
894 
895   // 0 / X -> 0
896   // 0 % X -> 0
897   if (match(Op0, m_Zero()))
898     return Constant::getNullValue(Op0->getType());
899 
900   // X / X -> 1
901   // X % X -> 0
902   if (Op0 == Op1)
903     return IsDiv ? ConstantInt::get(Ty, 1) : Constant::getNullValue(Ty);
904 
905   // X / 1 -> X
906   // X % 1 -> 0
907   // If this is a boolean op (single-bit element type), we can't have
908   // division-by-zero or remainder-by-zero, so assume the divisor is 1.
909   // Similarly, if we're zero-extending a boolean divisor, then assume it's a 1.
910   Value *X;
911   if (match(Op1, m_One()) || Ty->isIntOrIntVectorTy(1) ||
912       (match(Op1, m_ZExt(m_Value(X))) && X->getType()->isIntOrIntVectorTy(1)))
913     return IsDiv ? Op0 : Constant::getNullValue(Ty);
914 
915   return nullptr;
916 }
917 
918 /// Given a predicate and two operands, return true if the comparison is true.
919 /// This is a helper for div/rem simplification where we return some other value
920 /// when we can prove a relationship between the operands.
921 static bool isICmpTrue(ICmpInst::Predicate Pred, Value *LHS, Value *RHS,
922                        const SimplifyQuery &Q, unsigned MaxRecurse) {
923   Value *V = SimplifyICmpInst(Pred, LHS, RHS, Q, MaxRecurse);
924   Constant *C = dyn_cast_or_null<Constant>(V);
925   return (C && C->isAllOnesValue());
926 }
927 
928 /// Return true if we can simplify X / Y to 0. Remainder can adapt that answer
929 /// to simplify X % Y to X.
930 static bool isDivZero(Value *X, Value *Y, const SimplifyQuery &Q,
931                       unsigned MaxRecurse, bool IsSigned) {
932   // Recursion is always used, so bail out at once if we already hit the limit.
933   if (!MaxRecurse--)
934     return false;
935 
936   if (IsSigned) {
937     // |X| / |Y| --> 0
938     //
939     // We require that 1 operand is a simple constant. That could be extended to
940     // 2 variables if we computed the sign bit for each.
941     //
942     // Make sure that a constant is not the minimum signed value because taking
943     // the abs() of that is undefined.
944     Type *Ty = X->getType();
945     const APInt *C;
946     if (match(X, m_APInt(C)) && !C->isMinSignedValue()) {
947       // Is the variable divisor magnitude always greater than the constant
948       // dividend magnitude?
949       // |Y| > |C| --> Y < -abs(C) or Y > abs(C)
950       Constant *PosDividendC = ConstantInt::get(Ty, C->abs());
951       Constant *NegDividendC = ConstantInt::get(Ty, -C->abs());
952       if (isICmpTrue(CmpInst::ICMP_SLT, Y, NegDividendC, Q, MaxRecurse) ||
953           isICmpTrue(CmpInst::ICMP_SGT, Y, PosDividendC, Q, MaxRecurse))
954         return true;
955     }
956     if (match(Y, m_APInt(C))) {
957       // Special-case: we can't take the abs() of a minimum signed value. If
958       // that's the divisor, then all we have to do is prove that the dividend
959       // is also not the minimum signed value.
960       if (C->isMinSignedValue())
961         return isICmpTrue(CmpInst::ICMP_NE, X, Y, Q, MaxRecurse);
962 
963       // Is the variable dividend magnitude always less than the constant
964       // divisor magnitude?
965       // |X| < |C| --> X > -abs(C) and X < abs(C)
966       Constant *PosDivisorC = ConstantInt::get(Ty, C->abs());
967       Constant *NegDivisorC = ConstantInt::get(Ty, -C->abs());
968       if (isICmpTrue(CmpInst::ICMP_SGT, X, NegDivisorC, Q, MaxRecurse) &&
969           isICmpTrue(CmpInst::ICMP_SLT, X, PosDivisorC, Q, MaxRecurse))
970         return true;
971     }
972     return false;
973   }
974 
975   // IsSigned == false.
976   // Is the dividend unsigned less than the divisor?
977   return isICmpTrue(ICmpInst::ICMP_ULT, X, Y, Q, MaxRecurse);
978 }
979 
980 /// These are simplifications common to SDiv and UDiv.
981 static Value *simplifyDiv(Instruction::BinaryOps Opcode, Value *Op0, Value *Op1,
982                           const SimplifyQuery &Q, unsigned MaxRecurse) {
983   if (Constant *C = foldOrCommuteConstant(Opcode, Op0, Op1, Q))
984     return C;
985 
986   if (Value *V = simplifyDivRem(Op0, Op1, true))
987     return V;
988 
989   bool IsSigned = Opcode == Instruction::SDiv;
990 
991   // (X * Y) / Y -> X if the multiplication does not overflow.
992   Value *X;
993   if (match(Op0, m_c_Mul(m_Value(X), m_Specific(Op1)))) {
994     auto *Mul = cast<OverflowingBinaryOperator>(Op0);
995     // If the Mul does not overflow, then we are good to go.
996     if ((IsSigned && Mul->hasNoSignedWrap()) ||
997         (!IsSigned && Mul->hasNoUnsignedWrap()))
998       return X;
999     // If X has the form X = A / Y, then X * Y cannot overflow.
1000     if ((IsSigned && match(X, m_SDiv(m_Value(), m_Specific(Op1)))) ||
1001         (!IsSigned && match(X, m_UDiv(m_Value(), m_Specific(Op1)))))
1002       return X;
1003   }
1004 
1005   // (X rem Y) / Y -> 0
1006   if ((IsSigned && match(Op0, m_SRem(m_Value(), m_Specific(Op1)))) ||
1007       (!IsSigned && match(Op0, m_URem(m_Value(), m_Specific(Op1)))))
1008     return Constant::getNullValue(Op0->getType());
1009 
1010   // (X /u C1) /u C2 -> 0 if C1 * C2 overflow
1011   ConstantInt *C1, *C2;
1012   if (!IsSigned && match(Op0, m_UDiv(m_Value(X), m_ConstantInt(C1))) &&
1013       match(Op1, m_ConstantInt(C2))) {
1014     bool Overflow;
1015     (void)C1->getValue().umul_ov(C2->getValue(), Overflow);
1016     if (Overflow)
1017       return Constant::getNullValue(Op0->getType());
1018   }
1019 
1020   // If the operation is with the result of a select instruction, check whether
1021   // operating on either branch of the select always yields the same value.
1022   if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
1023     if (Value *V = ThreadBinOpOverSelect(Opcode, Op0, Op1, Q, MaxRecurse))
1024       return V;
1025 
1026   // If the operation is with the result of a phi instruction, check whether
1027   // operating on all incoming values of the phi always yields the same value.
1028   if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
1029     if (Value *V = ThreadBinOpOverPHI(Opcode, Op0, Op1, Q, MaxRecurse))
1030       return V;
1031 
1032   if (isDivZero(Op0, Op1, Q, MaxRecurse, IsSigned))
1033     return Constant::getNullValue(Op0->getType());
1034 
1035   return nullptr;
1036 }
1037 
1038 /// These are simplifications common to SRem and URem.
1039 static Value *simplifyRem(Instruction::BinaryOps Opcode, Value *Op0, Value *Op1,
1040                           const SimplifyQuery &Q, unsigned MaxRecurse) {
1041   if (Constant *C = foldOrCommuteConstant(Opcode, Op0, Op1, Q))
1042     return C;
1043 
1044   if (Value *V = simplifyDivRem(Op0, Op1, false))
1045     return V;
1046 
1047   // (X % Y) % Y -> X % Y
1048   if ((Opcode == Instruction::SRem &&
1049        match(Op0, m_SRem(m_Value(), m_Specific(Op1)))) ||
1050       (Opcode == Instruction::URem &&
1051        match(Op0, m_URem(m_Value(), m_Specific(Op1)))))
1052     return Op0;
1053 
1054   // (X << Y) % X -> 0
1055   if ((Opcode == Instruction::SRem &&
1056        match(Op0, m_NSWShl(m_Specific(Op1), m_Value()))) ||
1057       (Opcode == Instruction::URem &&
1058        match(Op0, m_NUWShl(m_Specific(Op1), m_Value()))))
1059     return Constant::getNullValue(Op0->getType());
1060 
1061   // If the operation is with the result of a select instruction, check whether
1062   // operating on either branch of the select always yields the same value.
1063   if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
1064     if (Value *V = ThreadBinOpOverSelect(Opcode, Op0, Op1, Q, MaxRecurse))
1065       return V;
1066 
1067   // If the operation is with the result of a phi instruction, check whether
1068   // operating on all incoming values of the phi always yields the same value.
1069   if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
1070     if (Value *V = ThreadBinOpOverPHI(Opcode, Op0, Op1, Q, MaxRecurse))
1071       return V;
1072 
1073   // If X / Y == 0, then X % Y == X.
1074   if (isDivZero(Op0, Op1, Q, MaxRecurse, Opcode == Instruction::SRem))
1075     return Op0;
1076 
1077   return nullptr;
1078 }
1079 
1080 /// Given operands for an SDiv, see if we can fold the result.
1081 /// If not, this returns null.
1082 static Value *SimplifySDivInst(Value *Op0, Value *Op1, const SimplifyQuery &Q,
1083                                unsigned MaxRecurse) {
1084   // If two operands are negated and no signed overflow, return -1.
1085   if (isKnownNegation(Op0, Op1, /*NeedNSW=*/true))
1086     return Constant::getAllOnesValue(Op0->getType());
1087 
1088   return simplifyDiv(Instruction::SDiv, Op0, Op1, Q, MaxRecurse);
1089 }
1090 
1091 Value *llvm::SimplifySDivInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) {
1092   return ::SimplifySDivInst(Op0, Op1, Q, RecursionLimit);
1093 }
1094 
1095 /// Given operands for a UDiv, see if we can fold the result.
1096 /// If not, this returns null.
1097 static Value *SimplifyUDivInst(Value *Op0, Value *Op1, const SimplifyQuery &Q,
1098                                unsigned MaxRecurse) {
1099   return simplifyDiv(Instruction::UDiv, Op0, Op1, Q, MaxRecurse);
1100 }
1101 
1102 Value *llvm::SimplifyUDivInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) {
1103   return ::SimplifyUDivInst(Op0, Op1, Q, RecursionLimit);
1104 }
1105 
1106 /// Given operands for an SRem, see if we can fold the result.
1107 /// If not, this returns null.
1108 static Value *SimplifySRemInst(Value *Op0, Value *Op1, const SimplifyQuery &Q,
1109                                unsigned MaxRecurse) {
1110   // If the divisor is 0, the result is undefined, so assume the divisor is -1.
1111   // srem Op0, (sext i1 X) --> srem Op0, -1 --> 0
1112   Value *X;
1113   if (match(Op1, m_SExt(m_Value(X))) && X->getType()->isIntOrIntVectorTy(1))
1114     return ConstantInt::getNullValue(Op0->getType());
1115 
1116   // If the two operands are negated, return 0.
1117   if (isKnownNegation(Op0, Op1))
1118     return ConstantInt::getNullValue(Op0->getType());
1119 
1120   return simplifyRem(Instruction::SRem, Op0, Op1, Q, MaxRecurse);
1121 }
1122 
1123 Value *llvm::SimplifySRemInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) {
1124   return ::SimplifySRemInst(Op0, Op1, Q, RecursionLimit);
1125 }
1126 
1127 /// Given operands for a URem, see if we can fold the result.
1128 /// If not, this returns null.
1129 static Value *SimplifyURemInst(Value *Op0, Value *Op1, const SimplifyQuery &Q,
1130                                unsigned MaxRecurse) {
1131   return simplifyRem(Instruction::URem, Op0, Op1, Q, MaxRecurse);
1132 }
1133 
1134 Value *llvm::SimplifyURemInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) {
1135   return ::SimplifyURemInst(Op0, Op1, Q, RecursionLimit);
1136 }
1137 
1138 /// Returns true if a shift by \c Amount always yields undef.
1139 static bool isUndefShift(Value *Amount) {
1140   Constant *C = dyn_cast<Constant>(Amount);
1141   if (!C)
1142     return false;
1143 
1144   // X shift by undef -> undef because it may shift by the bitwidth.
1145   if (isa<UndefValue>(C))
1146     return true;
1147 
1148   // Shifting by the bitwidth or more is undefined.
1149   if (ConstantInt *CI = dyn_cast<ConstantInt>(C))
1150     if (CI->getValue().getLimitedValue() >=
1151         CI->getType()->getScalarSizeInBits())
1152       return true;
1153 
1154   // If all lanes of a vector shift are undefined the whole shift is.
1155   if (isa<ConstantVector>(C) || isa<ConstantDataVector>(C)) {
1156     for (unsigned I = 0, E = C->getType()->getVectorNumElements(); I != E; ++I)
1157       if (!isUndefShift(C->getAggregateElement(I)))
1158         return false;
1159     return true;
1160   }
1161 
1162   return false;
1163 }
1164 
1165 /// Given operands for an Shl, LShr or AShr, see if we can fold the result.
1166 /// If not, this returns null.
1167 static Value *SimplifyShift(Instruction::BinaryOps Opcode, Value *Op0,
1168                             Value *Op1, const SimplifyQuery &Q, unsigned MaxRecurse) {
1169   if (Constant *C = foldOrCommuteConstant(Opcode, Op0, Op1, Q))
1170     return C;
1171 
1172   // 0 shift by X -> 0
1173   if (match(Op0, m_Zero()))
1174     return Constant::getNullValue(Op0->getType());
1175 
1176   // X shift by 0 -> X
1177   // Shift-by-sign-extended bool must be shift-by-0 because shift-by-all-ones
1178   // would be poison.
1179   Value *X;
1180   if (match(Op1, m_Zero()) ||
1181       (match(Op1, m_SExt(m_Value(X))) && X->getType()->isIntOrIntVectorTy(1)))
1182     return Op0;
1183 
1184   // Fold undefined shifts.
1185   if (isUndefShift(Op1))
1186     return UndefValue::get(Op0->getType());
1187 
1188   // If the operation is with the result of a select instruction, check whether
1189   // operating on either branch of the select always yields the same value.
1190   if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
1191     if (Value *V = ThreadBinOpOverSelect(Opcode, Op0, Op1, Q, MaxRecurse))
1192       return V;
1193 
1194   // If the operation is with the result of a phi instruction, check whether
1195   // operating on all incoming values of the phi always yields the same value.
1196   if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
1197     if (Value *V = ThreadBinOpOverPHI(Opcode, Op0, Op1, Q, MaxRecurse))
1198       return V;
1199 
1200   // If any bits in the shift amount make that value greater than or equal to
1201   // the number of bits in the type, the shift is undefined.
1202   KnownBits Known = computeKnownBits(Op1, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
1203   if (Known.One.getLimitedValue() >= Known.getBitWidth())
1204     return UndefValue::get(Op0->getType());
1205 
1206   // If all valid bits in the shift amount are known zero, the first operand is
1207   // unchanged.
1208   unsigned NumValidShiftBits = Log2_32_Ceil(Known.getBitWidth());
1209   if (Known.countMinTrailingZeros() >= NumValidShiftBits)
1210     return Op0;
1211 
1212   return nullptr;
1213 }
1214 
1215 /// Given operands for an Shl, LShr or AShr, see if we can
1216 /// fold the result.  If not, this returns null.
1217 static Value *SimplifyRightShift(Instruction::BinaryOps Opcode, Value *Op0,
1218                                  Value *Op1, bool isExact, const SimplifyQuery &Q,
1219                                  unsigned MaxRecurse) {
1220   if (Value *V = SimplifyShift(Opcode, Op0, Op1, Q, MaxRecurse))
1221     return V;
1222 
1223   // X >> X -> 0
1224   if (Op0 == Op1)
1225     return Constant::getNullValue(Op0->getType());
1226 
1227   // undef >> X -> 0
1228   // undef >> X -> undef (if it's exact)
1229   if (match(Op0, m_Undef()))
1230     return isExact ? Op0 : Constant::getNullValue(Op0->getType());
1231 
1232   // The low bit cannot be shifted out of an exact shift if it is set.
1233   if (isExact) {
1234     KnownBits Op0Known = computeKnownBits(Op0, Q.DL, /*Depth=*/0, Q.AC, Q.CxtI, Q.DT);
1235     if (Op0Known.One[0])
1236       return Op0;
1237   }
1238 
1239   return nullptr;
1240 }
1241 
1242 /// Given operands for an Shl, see if we can fold the result.
1243 /// If not, this returns null.
1244 static Value *SimplifyShlInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW,
1245                               const SimplifyQuery &Q, unsigned MaxRecurse) {
1246   if (Value *V = SimplifyShift(Instruction::Shl, Op0, Op1, Q, MaxRecurse))
1247     return V;
1248 
1249   // undef << X -> 0
1250   // undef << X -> undef if (if it's NSW/NUW)
1251   if (match(Op0, m_Undef()))
1252     return isNSW || isNUW ? Op0 : Constant::getNullValue(Op0->getType());
1253 
1254   // (X >> A) << A -> X
1255   Value *X;
1256   if (match(Op0, m_Exact(m_Shr(m_Value(X), m_Specific(Op1)))))
1257     return X;
1258 
1259   // shl nuw i8 C, %x  ->  C  iff C has sign bit set.
1260   if (isNUW && match(Op0, m_Negative()))
1261     return Op0;
1262   // NOTE: could use computeKnownBits() / LazyValueInfo,
1263   // but the cost-benefit analysis suggests it isn't worth it.
1264 
1265   return nullptr;
1266 }
1267 
1268 Value *llvm::SimplifyShlInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW,
1269                              const SimplifyQuery &Q) {
1270   return ::SimplifyShlInst(Op0, Op1, isNSW, isNUW, Q, RecursionLimit);
1271 }
1272 
1273 /// Given operands for an LShr, see if we can fold the result.
1274 /// If not, this returns null.
1275 static Value *SimplifyLShrInst(Value *Op0, Value *Op1, bool isExact,
1276                                const SimplifyQuery &Q, unsigned MaxRecurse) {
1277   if (Value *V = SimplifyRightShift(Instruction::LShr, Op0, Op1, isExact, Q,
1278                                     MaxRecurse))
1279       return V;
1280 
1281   // (X << A) >> A -> X
1282   Value *X;
1283   if (match(Op0, m_NUWShl(m_Value(X), m_Specific(Op1))))
1284     return X;
1285 
1286   return nullptr;
1287 }
1288 
1289 Value *llvm::SimplifyLShrInst(Value *Op0, Value *Op1, bool isExact,
1290                               const SimplifyQuery &Q) {
1291   return ::SimplifyLShrInst(Op0, Op1, isExact, Q, RecursionLimit);
1292 }
1293 
1294 /// Given operands for an AShr, see if we can fold the result.
1295 /// If not, this returns null.
1296 static Value *SimplifyAShrInst(Value *Op0, Value *Op1, bool isExact,
1297                                const SimplifyQuery &Q, unsigned MaxRecurse) {
1298   if (Value *V = SimplifyRightShift(Instruction::AShr, Op0, Op1, isExact, Q,
1299                                     MaxRecurse))
1300     return V;
1301 
1302   // all ones >>a X -> -1
1303   // Do not return Op0 because it may contain undef elements if it's a vector.
1304   if (match(Op0, m_AllOnes()))
1305     return Constant::getAllOnesValue(Op0->getType());
1306 
1307   // (X << A) >> A -> X
1308   Value *X;
1309   if (match(Op0, m_NSWShl(m_Value(X), m_Specific(Op1))))
1310     return X;
1311 
1312   // Arithmetic shifting an all-sign-bit value is a no-op.
1313   unsigned NumSignBits = ComputeNumSignBits(Op0, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
1314   if (NumSignBits == Op0->getType()->getScalarSizeInBits())
1315     return Op0;
1316 
1317   return nullptr;
1318 }
1319 
1320 Value *llvm::SimplifyAShrInst(Value *Op0, Value *Op1, bool isExact,
1321                               const SimplifyQuery &Q) {
1322   return ::SimplifyAShrInst(Op0, Op1, isExact, Q, RecursionLimit);
1323 }
1324 
1325 /// Commuted variants are assumed to be handled by calling this function again
1326 /// with the parameters swapped.
1327 static Value *simplifyUnsignedRangeCheck(ICmpInst *ZeroICmp,
1328                                          ICmpInst *UnsignedICmp, bool IsAnd) {
1329   Value *X, *Y;
1330 
1331   ICmpInst::Predicate EqPred;
1332   if (!match(ZeroICmp, m_ICmp(EqPred, m_Value(Y), m_Zero())) ||
1333       !ICmpInst::isEquality(EqPred))
1334     return nullptr;
1335 
1336   ICmpInst::Predicate UnsignedPred;
1337   if (match(UnsignedICmp, m_ICmp(UnsignedPred, m_Value(X), m_Specific(Y))) &&
1338       ICmpInst::isUnsigned(UnsignedPred))
1339     ;
1340   else if (match(UnsignedICmp,
1341                  m_ICmp(UnsignedPred, m_Specific(Y), m_Value(X))) &&
1342            ICmpInst::isUnsigned(UnsignedPred))
1343     UnsignedPred = ICmpInst::getSwappedPredicate(UnsignedPred);
1344   else
1345     return nullptr;
1346 
1347   // X < Y && Y != 0  -->  X < Y
1348   // X < Y || Y != 0  -->  Y != 0
1349   if (UnsignedPred == ICmpInst::ICMP_ULT && EqPred == ICmpInst::ICMP_NE)
1350     return IsAnd ? UnsignedICmp : ZeroICmp;
1351 
1352   // X >= Y || Y != 0  -->  true
1353   // X >= Y || Y == 0  -->  X >= Y
1354   if (UnsignedPred == ICmpInst::ICMP_UGE && !IsAnd) {
1355     if (EqPred == ICmpInst::ICMP_NE)
1356       return getTrue(UnsignedICmp->getType());
1357     return UnsignedICmp;
1358   }
1359 
1360   // X < Y && Y == 0  -->  false
1361   if (UnsignedPred == ICmpInst::ICMP_ULT && EqPred == ICmpInst::ICMP_EQ &&
1362       IsAnd)
1363     return getFalse(UnsignedICmp->getType());
1364 
1365   return nullptr;
1366 }
1367 
1368 /// Commuted variants are assumed to be handled by calling this function again
1369 /// with the parameters swapped.
1370 static Value *simplifyAndOfICmpsWithSameOperands(ICmpInst *Op0, ICmpInst *Op1) {
1371   ICmpInst::Predicate Pred0, Pred1;
1372   Value *A ,*B;
1373   if (!match(Op0, m_ICmp(Pred0, m_Value(A), m_Value(B))) ||
1374       !match(Op1, m_ICmp(Pred1, m_Specific(A), m_Specific(B))))
1375     return nullptr;
1376 
1377   // We have (icmp Pred0, A, B) & (icmp Pred1, A, B).
1378   // If Op1 is always implied true by Op0, then Op0 is a subset of Op1, and we
1379   // can eliminate Op1 from this 'and'.
1380   if (ICmpInst::isImpliedTrueByMatchingCmp(Pred0, Pred1))
1381     return Op0;
1382 
1383   // Check for any combination of predicates that are guaranteed to be disjoint.
1384   if ((Pred0 == ICmpInst::getInversePredicate(Pred1)) ||
1385       (Pred0 == ICmpInst::ICMP_EQ && ICmpInst::isFalseWhenEqual(Pred1)) ||
1386       (Pred0 == ICmpInst::ICMP_SLT && Pred1 == ICmpInst::ICMP_SGT) ||
1387       (Pred0 == ICmpInst::ICMP_ULT && Pred1 == ICmpInst::ICMP_UGT))
1388     return getFalse(Op0->getType());
1389 
1390   return nullptr;
1391 }
1392 
1393 /// Commuted variants are assumed to be handled by calling this function again
1394 /// with the parameters swapped.
1395 static Value *simplifyOrOfICmpsWithSameOperands(ICmpInst *Op0, ICmpInst *Op1) {
1396   ICmpInst::Predicate Pred0, Pred1;
1397   Value *A ,*B;
1398   if (!match(Op0, m_ICmp(Pred0, m_Value(A), m_Value(B))) ||
1399       !match(Op1, m_ICmp(Pred1, m_Specific(A), m_Specific(B))))
1400     return nullptr;
1401 
1402   // We have (icmp Pred0, A, B) | (icmp Pred1, A, B).
1403   // If Op1 is always implied true by Op0, then Op0 is a subset of Op1, and we
1404   // can eliminate Op0 from this 'or'.
1405   if (ICmpInst::isImpliedTrueByMatchingCmp(Pred0, Pred1))
1406     return Op1;
1407 
1408   // Check for any combination of predicates that cover the entire range of
1409   // possibilities.
1410   if ((Pred0 == ICmpInst::getInversePredicate(Pred1)) ||
1411       (Pred0 == ICmpInst::ICMP_NE && ICmpInst::isTrueWhenEqual(Pred1)) ||
1412       (Pred0 == ICmpInst::ICMP_SLE && Pred1 == ICmpInst::ICMP_SGE) ||
1413       (Pred0 == ICmpInst::ICMP_ULE && Pred1 == ICmpInst::ICMP_UGE))
1414     return getTrue(Op0->getType());
1415 
1416   return nullptr;
1417 }
1418 
1419 /// Test if a pair of compares with a shared operand and 2 constants has an
1420 /// empty set intersection, full set union, or if one compare is a superset of
1421 /// the other.
1422 static Value *simplifyAndOrOfICmpsWithConstants(ICmpInst *Cmp0, ICmpInst *Cmp1,
1423                                                 bool IsAnd) {
1424   // Look for this pattern: {and/or} (icmp X, C0), (icmp X, C1)).
1425   if (Cmp0->getOperand(0) != Cmp1->getOperand(0))
1426     return nullptr;
1427 
1428   const APInt *C0, *C1;
1429   if (!match(Cmp0->getOperand(1), m_APInt(C0)) ||
1430       !match(Cmp1->getOperand(1), m_APInt(C1)))
1431     return nullptr;
1432 
1433   auto Range0 = ConstantRange::makeExactICmpRegion(Cmp0->getPredicate(), *C0);
1434   auto Range1 = ConstantRange::makeExactICmpRegion(Cmp1->getPredicate(), *C1);
1435 
1436   // For and-of-compares, check if the intersection is empty:
1437   // (icmp X, C0) && (icmp X, C1) --> empty set --> false
1438   if (IsAnd && Range0.intersectWith(Range1).isEmptySet())
1439     return getFalse(Cmp0->getType());
1440 
1441   // For or-of-compares, check if the union is full:
1442   // (icmp X, C0) || (icmp X, C1) --> full set --> true
1443   if (!IsAnd && Range0.unionWith(Range1).isFullSet())
1444     return getTrue(Cmp0->getType());
1445 
1446   // Is one range a superset of the other?
1447   // If this is and-of-compares, take the smaller set:
1448   // (icmp sgt X, 4) && (icmp sgt X, 42) --> icmp sgt X, 42
1449   // If this is or-of-compares, take the larger set:
1450   // (icmp sgt X, 4) || (icmp sgt X, 42) --> icmp sgt X, 4
1451   if (Range0.contains(Range1))
1452     return IsAnd ? Cmp1 : Cmp0;
1453   if (Range1.contains(Range0))
1454     return IsAnd ? Cmp0 : Cmp1;
1455 
1456   return nullptr;
1457 }
1458 
1459 static Value *simplifyAndOrOfICmpsWithZero(ICmpInst *Cmp0, ICmpInst *Cmp1,
1460                                            bool IsAnd) {
1461   ICmpInst::Predicate P0 = Cmp0->getPredicate(), P1 = Cmp1->getPredicate();
1462   if (!match(Cmp0->getOperand(1), m_Zero()) ||
1463       !match(Cmp1->getOperand(1), m_Zero()) || P0 != P1)
1464     return nullptr;
1465 
1466   if ((IsAnd && P0 != ICmpInst::ICMP_NE) || (!IsAnd && P1 != ICmpInst::ICMP_EQ))
1467     return nullptr;
1468 
1469   // We have either "(X == 0 || Y == 0)" or "(X != 0 && Y != 0)".
1470   Value *X = Cmp0->getOperand(0);
1471   Value *Y = Cmp1->getOperand(0);
1472 
1473   // If one of the compares is a masked version of a (not) null check, then
1474   // that compare implies the other, so we eliminate the other. Optionally, look
1475   // through a pointer-to-int cast to match a null check of a pointer type.
1476 
1477   // (X == 0) || (([ptrtoint] X & ?) == 0) --> ([ptrtoint] X & ?) == 0
1478   // (X == 0) || ((? & [ptrtoint] X) == 0) --> (? & [ptrtoint] X) == 0
1479   // (X != 0) && (([ptrtoint] X & ?) != 0) --> ([ptrtoint] X & ?) != 0
1480   // (X != 0) && ((? & [ptrtoint] X) != 0) --> (? & [ptrtoint] X) != 0
1481   if (match(Y, m_c_And(m_Specific(X), m_Value())) ||
1482       match(Y, m_c_And(m_PtrToInt(m_Specific(X)), m_Value())))
1483     return Cmp1;
1484 
1485   // (([ptrtoint] Y & ?) == 0) || (Y == 0) --> ([ptrtoint] Y & ?) == 0
1486   // ((? & [ptrtoint] Y) == 0) || (Y == 0) --> (? & [ptrtoint] Y) == 0
1487   // (([ptrtoint] Y & ?) != 0) && (Y != 0) --> ([ptrtoint] Y & ?) != 0
1488   // ((? & [ptrtoint] Y) != 0) && (Y != 0) --> (? & [ptrtoint] Y) != 0
1489   if (match(X, m_c_And(m_Specific(Y), m_Value())) ||
1490       match(X, m_c_And(m_PtrToInt(m_Specific(Y)), m_Value())))
1491     return Cmp0;
1492 
1493   return nullptr;
1494 }
1495 
1496 static Value *simplifyAndOfICmpsWithAdd(ICmpInst *Op0, ICmpInst *Op1) {
1497   // (icmp (add V, C0), C1) & (icmp V, C0)
1498   ICmpInst::Predicate Pred0, Pred1;
1499   const APInt *C0, *C1;
1500   Value *V;
1501   if (!match(Op0, m_ICmp(Pred0, m_Add(m_Value(V), m_APInt(C0)), m_APInt(C1))))
1502     return nullptr;
1503 
1504   if (!match(Op1, m_ICmp(Pred1, m_Specific(V), m_Value())))
1505     return nullptr;
1506 
1507   auto *AddInst = cast<BinaryOperator>(Op0->getOperand(0));
1508   if (AddInst->getOperand(1) != Op1->getOperand(1))
1509     return nullptr;
1510 
1511   Type *ITy = Op0->getType();
1512   bool isNSW = AddInst->hasNoSignedWrap();
1513   bool isNUW = AddInst->hasNoUnsignedWrap();
1514 
1515   const APInt Delta = *C1 - *C0;
1516   if (C0->isStrictlyPositive()) {
1517     if (Delta == 2) {
1518       if (Pred0 == ICmpInst::ICMP_ULT && Pred1 == ICmpInst::ICMP_SGT)
1519         return getFalse(ITy);
1520       if (Pred0 == ICmpInst::ICMP_SLT && Pred1 == ICmpInst::ICMP_SGT && isNSW)
1521         return getFalse(ITy);
1522     }
1523     if (Delta == 1) {
1524       if (Pred0 == ICmpInst::ICMP_ULE && Pred1 == ICmpInst::ICMP_SGT)
1525         return getFalse(ITy);
1526       if (Pred0 == ICmpInst::ICMP_SLE && Pred1 == ICmpInst::ICMP_SGT && isNSW)
1527         return getFalse(ITy);
1528     }
1529   }
1530   if (C0->getBoolValue() && isNUW) {
1531     if (Delta == 2)
1532       if (Pred0 == ICmpInst::ICMP_ULT && Pred1 == ICmpInst::ICMP_UGT)
1533         return getFalse(ITy);
1534     if (Delta == 1)
1535       if (Pred0 == ICmpInst::ICMP_ULE && Pred1 == ICmpInst::ICMP_UGT)
1536         return getFalse(ITy);
1537   }
1538 
1539   return nullptr;
1540 }
1541 
1542 static Value *simplifyAndOfICmps(ICmpInst *Op0, ICmpInst *Op1) {
1543   if (Value *X = simplifyUnsignedRangeCheck(Op0, Op1, /*IsAnd=*/true))
1544     return X;
1545   if (Value *X = simplifyUnsignedRangeCheck(Op1, Op0, /*IsAnd=*/true))
1546     return X;
1547 
1548   if (Value *X = simplifyAndOfICmpsWithSameOperands(Op0, Op1))
1549     return X;
1550   if (Value *X = simplifyAndOfICmpsWithSameOperands(Op1, Op0))
1551     return X;
1552 
1553   if (Value *X = simplifyAndOrOfICmpsWithConstants(Op0, Op1, true))
1554     return X;
1555 
1556   if (Value *X = simplifyAndOrOfICmpsWithZero(Op0, Op1, true))
1557     return X;
1558 
1559   if (Value *X = simplifyAndOfICmpsWithAdd(Op0, Op1))
1560     return X;
1561   if (Value *X = simplifyAndOfICmpsWithAdd(Op1, Op0))
1562     return X;
1563 
1564   return nullptr;
1565 }
1566 
1567 static Value *simplifyOrOfICmpsWithAdd(ICmpInst *Op0, ICmpInst *Op1) {
1568   // (icmp (add V, C0), C1) | (icmp V, C0)
1569   ICmpInst::Predicate Pred0, Pred1;
1570   const APInt *C0, *C1;
1571   Value *V;
1572   if (!match(Op0, m_ICmp(Pred0, m_Add(m_Value(V), m_APInt(C0)), m_APInt(C1))))
1573     return nullptr;
1574 
1575   if (!match(Op1, m_ICmp(Pred1, m_Specific(V), m_Value())))
1576     return nullptr;
1577 
1578   auto *AddInst = cast<BinaryOperator>(Op0->getOperand(0));
1579   if (AddInst->getOperand(1) != Op1->getOperand(1))
1580     return nullptr;
1581 
1582   Type *ITy = Op0->getType();
1583   bool isNSW = AddInst->hasNoSignedWrap();
1584   bool isNUW = AddInst->hasNoUnsignedWrap();
1585 
1586   const APInt Delta = *C1 - *C0;
1587   if (C0->isStrictlyPositive()) {
1588     if (Delta == 2) {
1589       if (Pred0 == ICmpInst::ICMP_UGE && Pred1 == ICmpInst::ICMP_SLE)
1590         return getTrue(ITy);
1591       if (Pred0 == ICmpInst::ICMP_SGE && Pred1 == ICmpInst::ICMP_SLE && isNSW)
1592         return getTrue(ITy);
1593     }
1594     if (Delta == 1) {
1595       if (Pred0 == ICmpInst::ICMP_UGT && Pred1 == ICmpInst::ICMP_SLE)
1596         return getTrue(ITy);
1597       if (Pred0 == ICmpInst::ICMP_SGT && Pred1 == ICmpInst::ICMP_SLE && isNSW)
1598         return getTrue(ITy);
1599     }
1600   }
1601   if (C0->getBoolValue() && isNUW) {
1602     if (Delta == 2)
1603       if (Pred0 == ICmpInst::ICMP_UGE && Pred1 == ICmpInst::ICMP_ULE)
1604         return getTrue(ITy);
1605     if (Delta == 1)
1606       if (Pred0 == ICmpInst::ICMP_UGT && Pred1 == ICmpInst::ICMP_ULE)
1607         return getTrue(ITy);
1608   }
1609 
1610   return nullptr;
1611 }
1612 
1613 static Value *simplifyOrOfICmps(ICmpInst *Op0, ICmpInst *Op1) {
1614   if (Value *X = simplifyUnsignedRangeCheck(Op0, Op1, /*IsAnd=*/false))
1615     return X;
1616   if (Value *X = simplifyUnsignedRangeCheck(Op1, Op0, /*IsAnd=*/false))
1617     return X;
1618 
1619   if (Value *X = simplifyOrOfICmpsWithSameOperands(Op0, Op1))
1620     return X;
1621   if (Value *X = simplifyOrOfICmpsWithSameOperands(Op1, Op0))
1622     return X;
1623 
1624   if (Value *X = simplifyAndOrOfICmpsWithConstants(Op0, Op1, false))
1625     return X;
1626 
1627   if (Value *X = simplifyAndOrOfICmpsWithZero(Op0, Op1, false))
1628     return X;
1629 
1630   if (Value *X = simplifyOrOfICmpsWithAdd(Op0, Op1))
1631     return X;
1632   if (Value *X = simplifyOrOfICmpsWithAdd(Op1, Op0))
1633     return X;
1634 
1635   return nullptr;
1636 }
1637 
1638 static Value *simplifyAndOrOfFCmps(FCmpInst *LHS, FCmpInst *RHS, bool IsAnd) {
1639   Value *LHS0 = LHS->getOperand(0), *LHS1 = LHS->getOperand(1);
1640   Value *RHS0 = RHS->getOperand(0), *RHS1 = RHS->getOperand(1);
1641   if (LHS0->getType() != RHS0->getType())
1642     return nullptr;
1643 
1644   FCmpInst::Predicate PredL = LHS->getPredicate(), PredR = RHS->getPredicate();
1645   if ((PredL == FCmpInst::FCMP_ORD && PredR == FCmpInst::FCMP_ORD && IsAnd) ||
1646       (PredL == FCmpInst::FCMP_UNO && PredR == FCmpInst::FCMP_UNO && !IsAnd)) {
1647     // (fcmp ord NNAN, X) & (fcmp ord X, Y) --> fcmp ord X, Y
1648     // (fcmp ord NNAN, X) & (fcmp ord Y, X) --> fcmp ord Y, X
1649     // (fcmp ord X, NNAN) & (fcmp ord X, Y) --> fcmp ord X, Y
1650     // (fcmp ord X, NNAN) & (fcmp ord Y, X) --> fcmp ord Y, X
1651     // (fcmp uno NNAN, X) | (fcmp uno X, Y) --> fcmp uno X, Y
1652     // (fcmp uno NNAN, X) | (fcmp uno Y, X) --> fcmp uno Y, X
1653     // (fcmp uno X, NNAN) | (fcmp uno X, Y) --> fcmp uno X, Y
1654     // (fcmp uno X, NNAN) | (fcmp uno Y, X) --> fcmp uno Y, X
1655     if ((isKnownNeverNaN(LHS0) && (LHS1 == RHS0 || LHS1 == RHS1)) ||
1656         (isKnownNeverNaN(LHS1) && (LHS0 == RHS0 || LHS0 == RHS1)))
1657       return RHS;
1658 
1659     // (fcmp ord X, Y) & (fcmp ord NNAN, X) --> fcmp ord X, Y
1660     // (fcmp ord Y, X) & (fcmp ord NNAN, X) --> fcmp ord Y, X
1661     // (fcmp ord X, Y) & (fcmp ord X, NNAN) --> fcmp ord X, Y
1662     // (fcmp ord Y, X) & (fcmp ord X, NNAN) --> fcmp ord Y, X
1663     // (fcmp uno X, Y) | (fcmp uno NNAN, X) --> fcmp uno X, Y
1664     // (fcmp uno Y, X) | (fcmp uno NNAN, X) --> fcmp uno Y, X
1665     // (fcmp uno X, Y) | (fcmp uno X, NNAN) --> fcmp uno X, Y
1666     // (fcmp uno Y, X) | (fcmp uno X, NNAN) --> fcmp uno Y, X
1667     if ((isKnownNeverNaN(RHS0) && (RHS1 == LHS0 || RHS1 == LHS1)) ||
1668         (isKnownNeverNaN(RHS1) && (RHS0 == LHS0 || RHS0 == LHS1)))
1669       return LHS;
1670   }
1671 
1672   return nullptr;
1673 }
1674 
1675 static Value *simplifyAndOrOfCmps(Value *Op0, Value *Op1, bool IsAnd) {
1676   // Look through casts of the 'and' operands to find compares.
1677   auto *Cast0 = dyn_cast<CastInst>(Op0);
1678   auto *Cast1 = dyn_cast<CastInst>(Op1);
1679   if (Cast0 && Cast1 && Cast0->getOpcode() == Cast1->getOpcode() &&
1680       Cast0->getSrcTy() == Cast1->getSrcTy()) {
1681     Op0 = Cast0->getOperand(0);
1682     Op1 = Cast1->getOperand(0);
1683   }
1684 
1685   Value *V = nullptr;
1686   auto *ICmp0 = dyn_cast<ICmpInst>(Op0);
1687   auto *ICmp1 = dyn_cast<ICmpInst>(Op1);
1688   if (ICmp0 && ICmp1)
1689     V = IsAnd ? simplifyAndOfICmps(ICmp0, ICmp1) :
1690                 simplifyOrOfICmps(ICmp0, ICmp1);
1691 
1692   auto *FCmp0 = dyn_cast<FCmpInst>(Op0);
1693   auto *FCmp1 = dyn_cast<FCmpInst>(Op1);
1694   if (FCmp0 && FCmp1)
1695     V = simplifyAndOrOfFCmps(FCmp0, FCmp1, IsAnd);
1696 
1697   if (!V)
1698     return nullptr;
1699   if (!Cast0)
1700     return V;
1701 
1702   // If we looked through casts, we can only handle a constant simplification
1703   // because we are not allowed to create a cast instruction here.
1704   if (auto *C = dyn_cast<Constant>(V))
1705     return ConstantExpr::getCast(Cast0->getOpcode(), C, Cast0->getType());
1706 
1707   return nullptr;
1708 }
1709 
1710 /// Given operands for an And, see if we can fold the result.
1711 /// If not, this returns null.
1712 static Value *SimplifyAndInst(Value *Op0, Value *Op1, const SimplifyQuery &Q,
1713                               unsigned MaxRecurse) {
1714   if (Constant *C = foldOrCommuteConstant(Instruction::And, Op0, Op1, Q))
1715     return C;
1716 
1717   // X & undef -> 0
1718   if (match(Op1, m_Undef()))
1719     return Constant::getNullValue(Op0->getType());
1720 
1721   // X & X = X
1722   if (Op0 == Op1)
1723     return Op0;
1724 
1725   // X & 0 = 0
1726   if (match(Op1, m_Zero()))
1727     return Constant::getNullValue(Op0->getType());
1728 
1729   // X & -1 = X
1730   if (match(Op1, m_AllOnes()))
1731     return Op0;
1732 
1733   // A & ~A  =  ~A & A  =  0
1734   if (match(Op0, m_Not(m_Specific(Op1))) ||
1735       match(Op1, m_Not(m_Specific(Op0))))
1736     return Constant::getNullValue(Op0->getType());
1737 
1738   // (A | ?) & A = A
1739   if (match(Op0, m_c_Or(m_Specific(Op1), m_Value())))
1740     return Op1;
1741 
1742   // A & (A | ?) = A
1743   if (match(Op1, m_c_Or(m_Specific(Op0), m_Value())))
1744     return Op0;
1745 
1746   // A mask that only clears known zeros of a shifted value is a no-op.
1747   Value *X;
1748   const APInt *Mask;
1749   const APInt *ShAmt;
1750   if (match(Op1, m_APInt(Mask))) {
1751     // If all bits in the inverted and shifted mask are clear:
1752     // and (shl X, ShAmt), Mask --> shl X, ShAmt
1753     if (match(Op0, m_Shl(m_Value(X), m_APInt(ShAmt))) &&
1754         (~(*Mask)).lshr(*ShAmt).isNullValue())
1755       return Op0;
1756 
1757     // If all bits in the inverted and shifted mask are clear:
1758     // and (lshr X, ShAmt), Mask --> lshr X, ShAmt
1759     if (match(Op0, m_LShr(m_Value(X), m_APInt(ShAmt))) &&
1760         (~(*Mask)).shl(*ShAmt).isNullValue())
1761       return Op0;
1762   }
1763 
1764   // A & (-A) = A if A is a power of two or zero.
1765   if (match(Op0, m_Neg(m_Specific(Op1))) ||
1766       match(Op1, m_Neg(m_Specific(Op0)))) {
1767     if (isKnownToBeAPowerOfTwo(Op0, Q.DL, /*OrZero*/ true, 0, Q.AC, Q.CxtI,
1768                                Q.DT))
1769       return Op0;
1770     if (isKnownToBeAPowerOfTwo(Op1, Q.DL, /*OrZero*/ true, 0, Q.AC, Q.CxtI,
1771                                Q.DT))
1772       return Op1;
1773   }
1774 
1775   if (Value *V = simplifyAndOrOfCmps(Op0, Op1, true))
1776     return V;
1777 
1778   // Try some generic simplifications for associative operations.
1779   if (Value *V = SimplifyAssociativeBinOp(Instruction::And, Op0, Op1, Q,
1780                                           MaxRecurse))
1781     return V;
1782 
1783   // And distributes over Or.  Try some generic simplifications based on this.
1784   if (Value *V = ExpandBinOp(Instruction::And, Op0, Op1, Instruction::Or,
1785                              Q, MaxRecurse))
1786     return V;
1787 
1788   // And distributes over Xor.  Try some generic simplifications based on this.
1789   if (Value *V = ExpandBinOp(Instruction::And, Op0, Op1, Instruction::Xor,
1790                              Q, MaxRecurse))
1791     return V;
1792 
1793   // If the operation is with the result of a select instruction, check whether
1794   // operating on either branch of the select always yields the same value.
1795   if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
1796     if (Value *V = ThreadBinOpOverSelect(Instruction::And, Op0, Op1, Q,
1797                                          MaxRecurse))
1798       return V;
1799 
1800   // If the operation is with the result of a phi instruction, check whether
1801   // operating on all incoming values of the phi always yields the same value.
1802   if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
1803     if (Value *V = ThreadBinOpOverPHI(Instruction::And, Op0, Op1, Q,
1804                                       MaxRecurse))
1805       return V;
1806 
1807   return nullptr;
1808 }
1809 
1810 Value *llvm::SimplifyAndInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) {
1811   return ::SimplifyAndInst(Op0, Op1, Q, RecursionLimit);
1812 }
1813 
1814 /// Given operands for an Or, see if we can fold the result.
1815 /// If not, this returns null.
1816 static Value *SimplifyOrInst(Value *Op0, Value *Op1, const SimplifyQuery &Q,
1817                              unsigned MaxRecurse) {
1818   if (Constant *C = foldOrCommuteConstant(Instruction::Or, Op0, Op1, Q))
1819     return C;
1820 
1821   // X | undef -> -1
1822   // X | -1 = -1
1823   // Do not return Op1 because it may contain undef elements if it's a vector.
1824   if (match(Op1, m_Undef()) || match(Op1, m_AllOnes()))
1825     return Constant::getAllOnesValue(Op0->getType());
1826 
1827   // X | X = X
1828   // X | 0 = X
1829   if (Op0 == Op1 || match(Op1, m_Zero()))
1830     return Op0;
1831 
1832   // A | ~A  =  ~A | A  =  -1
1833   if (match(Op0, m_Not(m_Specific(Op1))) ||
1834       match(Op1, m_Not(m_Specific(Op0))))
1835     return Constant::getAllOnesValue(Op0->getType());
1836 
1837   // (A & ?) | A = A
1838   if (match(Op0, m_c_And(m_Specific(Op1), m_Value())))
1839     return Op1;
1840 
1841   // A | (A & ?) = A
1842   if (match(Op1, m_c_And(m_Specific(Op0), m_Value())))
1843     return Op0;
1844 
1845   // ~(A & ?) | A = -1
1846   if (match(Op0, m_Not(m_c_And(m_Specific(Op1), m_Value()))))
1847     return Constant::getAllOnesValue(Op1->getType());
1848 
1849   // A | ~(A & ?) = -1
1850   if (match(Op1, m_Not(m_c_And(m_Specific(Op1), m_Value()))))
1851     return Constant::getAllOnesValue(Op0->getType());
1852 
1853   Value *A, *B;
1854   // (A & ~B) | (A ^ B) -> (A ^ B)
1855   // (~B & A) | (A ^ B) -> (A ^ B)
1856   // (A & ~B) | (B ^ A) -> (B ^ A)
1857   // (~B & A) | (B ^ A) -> (B ^ A)
1858   if (match(Op1, m_Xor(m_Value(A), m_Value(B))) &&
1859       (match(Op0, m_c_And(m_Specific(A), m_Not(m_Specific(B)))) ||
1860        match(Op0, m_c_And(m_Not(m_Specific(A)), m_Specific(B)))))
1861     return Op1;
1862 
1863   // Commute the 'or' operands.
1864   // (A ^ B) | (A & ~B) -> (A ^ B)
1865   // (A ^ B) | (~B & A) -> (A ^ B)
1866   // (B ^ A) | (A & ~B) -> (B ^ A)
1867   // (B ^ A) | (~B & A) -> (B ^ A)
1868   if (match(Op0, m_Xor(m_Value(A), m_Value(B))) &&
1869       (match(Op1, m_c_And(m_Specific(A), m_Not(m_Specific(B)))) ||
1870        match(Op1, m_c_And(m_Not(m_Specific(A)), m_Specific(B)))))
1871     return Op0;
1872 
1873   // (A & B) | (~A ^ B) -> (~A ^ B)
1874   // (B & A) | (~A ^ B) -> (~A ^ B)
1875   // (A & B) | (B ^ ~A) -> (B ^ ~A)
1876   // (B & A) | (B ^ ~A) -> (B ^ ~A)
1877   if (match(Op0, m_And(m_Value(A), m_Value(B))) &&
1878       (match(Op1, m_c_Xor(m_Specific(A), m_Not(m_Specific(B)))) ||
1879        match(Op1, m_c_Xor(m_Not(m_Specific(A)), m_Specific(B)))))
1880     return Op1;
1881 
1882   // (~A ^ B) | (A & B) -> (~A ^ B)
1883   // (~A ^ B) | (B & A) -> (~A ^ B)
1884   // (B ^ ~A) | (A & B) -> (B ^ ~A)
1885   // (B ^ ~A) | (B & A) -> (B ^ ~A)
1886   if (match(Op1, m_And(m_Value(A), m_Value(B))) &&
1887       (match(Op0, m_c_Xor(m_Specific(A), m_Not(m_Specific(B)))) ||
1888        match(Op0, m_c_Xor(m_Not(m_Specific(A)), m_Specific(B)))))
1889     return Op0;
1890 
1891   if (Value *V = simplifyAndOrOfCmps(Op0, Op1, false))
1892     return V;
1893 
1894   // Try some generic simplifications for associative operations.
1895   if (Value *V = SimplifyAssociativeBinOp(Instruction::Or, Op0, Op1, Q,
1896                                           MaxRecurse))
1897     return V;
1898 
1899   // Or distributes over And.  Try some generic simplifications based on this.
1900   if (Value *V = ExpandBinOp(Instruction::Or, Op0, Op1, Instruction::And, Q,
1901                              MaxRecurse))
1902     return V;
1903 
1904   // If the operation is with the result of a select instruction, check whether
1905   // operating on either branch of the select always yields the same value.
1906   if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
1907     if (Value *V = ThreadBinOpOverSelect(Instruction::Or, Op0, Op1, Q,
1908                                          MaxRecurse))
1909       return V;
1910 
1911   // (A & C1)|(B & C2)
1912   const APInt *C1, *C2;
1913   if (match(Op0, m_And(m_Value(A), m_APInt(C1))) &&
1914       match(Op1, m_And(m_Value(B), m_APInt(C2)))) {
1915     if (*C1 == ~*C2) {
1916       // (A & C1)|(B & C2)
1917       // If we have: ((V + N) & C1) | (V & C2)
1918       // .. and C2 = ~C1 and C2 is 0+1+ and (N & C2) == 0
1919       // replace with V+N.
1920       Value *N;
1921       if (C2->isMask() && // C2 == 0+1+
1922           match(A, m_c_Add(m_Specific(B), m_Value(N)))) {
1923         // Add commutes, try both ways.
1924         if (MaskedValueIsZero(N, *C2, Q.DL, 0, Q.AC, Q.CxtI, Q.DT))
1925           return A;
1926       }
1927       // Or commutes, try both ways.
1928       if (C1->isMask() &&
1929           match(B, m_c_Add(m_Specific(A), m_Value(N)))) {
1930         // Add commutes, try both ways.
1931         if (MaskedValueIsZero(N, *C1, Q.DL, 0, Q.AC, Q.CxtI, Q.DT))
1932           return B;
1933       }
1934     }
1935   }
1936 
1937   // If the operation is with the result of a phi instruction, check whether
1938   // operating on all incoming values of the phi always yields the same value.
1939   if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
1940     if (Value *V = ThreadBinOpOverPHI(Instruction::Or, Op0, Op1, Q, MaxRecurse))
1941       return V;
1942 
1943   return nullptr;
1944 }
1945 
1946 Value *llvm::SimplifyOrInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) {
1947   return ::SimplifyOrInst(Op0, Op1, Q, RecursionLimit);
1948 }
1949 
1950 /// Given operands for a Xor, see if we can fold the result.
1951 /// If not, this returns null.
1952 static Value *SimplifyXorInst(Value *Op0, Value *Op1, const SimplifyQuery &Q,
1953                               unsigned MaxRecurse) {
1954   if (Constant *C = foldOrCommuteConstant(Instruction::Xor, Op0, Op1, Q))
1955     return C;
1956 
1957   // A ^ undef -> undef
1958   if (match(Op1, m_Undef()))
1959     return Op1;
1960 
1961   // A ^ 0 = A
1962   if (match(Op1, m_Zero()))
1963     return Op0;
1964 
1965   // A ^ A = 0
1966   if (Op0 == Op1)
1967     return Constant::getNullValue(Op0->getType());
1968 
1969   // A ^ ~A  =  ~A ^ A  =  -1
1970   if (match(Op0, m_Not(m_Specific(Op1))) ||
1971       match(Op1, m_Not(m_Specific(Op0))))
1972     return Constant::getAllOnesValue(Op0->getType());
1973 
1974   // Try some generic simplifications for associative operations.
1975   if (Value *V = SimplifyAssociativeBinOp(Instruction::Xor, Op0, Op1, Q,
1976                                           MaxRecurse))
1977     return V;
1978 
1979   // Threading Xor over selects and phi nodes is pointless, so don't bother.
1980   // Threading over the select in "A ^ select(cond, B, C)" means evaluating
1981   // "A^B" and "A^C" and seeing if they are equal; but they are equal if and
1982   // only if B and C are equal.  If B and C are equal then (since we assume
1983   // that operands have already been simplified) "select(cond, B, C)" should
1984   // have been simplified to the common value of B and C already.  Analysing
1985   // "A^B" and "A^C" thus gains nothing, but costs compile time.  Similarly
1986   // for threading over phi nodes.
1987 
1988   return nullptr;
1989 }
1990 
1991 Value *llvm::SimplifyXorInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) {
1992   return ::SimplifyXorInst(Op0, Op1, Q, RecursionLimit);
1993 }
1994 
1995 
1996 static Type *GetCompareTy(Value *Op) {
1997   return CmpInst::makeCmpResultType(Op->getType());
1998 }
1999 
2000 /// Rummage around inside V looking for something equivalent to the comparison
2001 /// "LHS Pred RHS". Return such a value if found, otherwise return null.
2002 /// Helper function for analyzing max/min idioms.
2003 static Value *ExtractEquivalentCondition(Value *V, CmpInst::Predicate Pred,
2004                                          Value *LHS, Value *RHS) {
2005   SelectInst *SI = dyn_cast<SelectInst>(V);
2006   if (!SI)
2007     return nullptr;
2008   CmpInst *Cmp = dyn_cast<CmpInst>(SI->getCondition());
2009   if (!Cmp)
2010     return nullptr;
2011   Value *CmpLHS = Cmp->getOperand(0), *CmpRHS = Cmp->getOperand(1);
2012   if (Pred == Cmp->getPredicate() && LHS == CmpLHS && RHS == CmpRHS)
2013     return Cmp;
2014   if (Pred == CmpInst::getSwappedPredicate(Cmp->getPredicate()) &&
2015       LHS == CmpRHS && RHS == CmpLHS)
2016     return Cmp;
2017   return nullptr;
2018 }
2019 
2020 // A significant optimization not implemented here is assuming that alloca
2021 // addresses are not equal to incoming argument values. They don't *alias*,
2022 // as we say, but that doesn't mean they aren't equal, so we take a
2023 // conservative approach.
2024 //
2025 // This is inspired in part by C++11 5.10p1:
2026 //   "Two pointers of the same type compare equal if and only if they are both
2027 //    null, both point to the same function, or both represent the same
2028 //    address."
2029 //
2030 // This is pretty permissive.
2031 //
2032 // It's also partly due to C11 6.5.9p6:
2033 //   "Two pointers compare equal if and only if both are null pointers, both are
2034 //    pointers to the same object (including a pointer to an object and a
2035 //    subobject at its beginning) or function, both are pointers to one past the
2036 //    last element of the same array object, or one is a pointer to one past the
2037 //    end of one array object and the other is a pointer to the start of a
2038 //    different array object that happens to immediately follow the first array
2039 //    object in the address space.)
2040 //
2041 // C11's version is more restrictive, however there's no reason why an argument
2042 // couldn't be a one-past-the-end value for a stack object in the caller and be
2043 // equal to the beginning of a stack object in the callee.
2044 //
2045 // If the C and C++ standards are ever made sufficiently restrictive in this
2046 // area, it may be possible to update LLVM's semantics accordingly and reinstate
2047 // this optimization.
2048 static Constant *
2049 computePointerICmp(const DataLayout &DL, const TargetLibraryInfo *TLI,
2050                    const DominatorTree *DT, CmpInst::Predicate Pred,
2051                    AssumptionCache *AC, const Instruction *CxtI,
2052                    Value *LHS, Value *RHS) {
2053   // First, skip past any trivial no-ops.
2054   LHS = LHS->stripPointerCasts();
2055   RHS = RHS->stripPointerCasts();
2056 
2057   // A non-null pointer is not equal to a null pointer.
2058   if (llvm::isKnownNonZero(LHS, DL) && isa<ConstantPointerNull>(RHS) &&
2059       (Pred == CmpInst::ICMP_EQ || Pred == CmpInst::ICMP_NE))
2060     return ConstantInt::get(GetCompareTy(LHS),
2061                             !CmpInst::isTrueWhenEqual(Pred));
2062 
2063   // We can only fold certain predicates on pointer comparisons.
2064   switch (Pred) {
2065   default:
2066     return nullptr;
2067 
2068     // Equality comaprisons are easy to fold.
2069   case CmpInst::ICMP_EQ:
2070   case CmpInst::ICMP_NE:
2071     break;
2072 
2073     // We can only handle unsigned relational comparisons because 'inbounds' on
2074     // a GEP only protects against unsigned wrapping.
2075   case CmpInst::ICMP_UGT:
2076   case CmpInst::ICMP_UGE:
2077   case CmpInst::ICMP_ULT:
2078   case CmpInst::ICMP_ULE:
2079     // However, we have to switch them to their signed variants to handle
2080     // negative indices from the base pointer.
2081     Pred = ICmpInst::getSignedPredicate(Pred);
2082     break;
2083   }
2084 
2085   // Strip off any constant offsets so that we can reason about them.
2086   // It's tempting to use getUnderlyingObject or even just stripInBoundsOffsets
2087   // here and compare base addresses like AliasAnalysis does, however there are
2088   // numerous hazards. AliasAnalysis and its utilities rely on special rules
2089   // governing loads and stores which don't apply to icmps. Also, AliasAnalysis
2090   // doesn't need to guarantee pointer inequality when it says NoAlias.
2091   Constant *LHSOffset = stripAndComputeConstantOffsets(DL, LHS);
2092   Constant *RHSOffset = stripAndComputeConstantOffsets(DL, RHS);
2093 
2094   // If LHS and RHS are related via constant offsets to the same base
2095   // value, we can replace it with an icmp which just compares the offsets.
2096   if (LHS == RHS)
2097     return ConstantExpr::getICmp(Pred, LHSOffset, RHSOffset);
2098 
2099   // Various optimizations for (in)equality comparisons.
2100   if (Pred == CmpInst::ICMP_EQ || Pred == CmpInst::ICMP_NE) {
2101     // Different non-empty allocations that exist at the same time have
2102     // different addresses (if the program can tell). Global variables always
2103     // exist, so they always exist during the lifetime of each other and all
2104     // allocas. Two different allocas usually have different addresses...
2105     //
2106     // However, if there's an @llvm.stackrestore dynamically in between two
2107     // allocas, they may have the same address. It's tempting to reduce the
2108     // scope of the problem by only looking at *static* allocas here. That would
2109     // cover the majority of allocas while significantly reducing the likelihood
2110     // of having an @llvm.stackrestore pop up in the middle. However, it's not
2111     // actually impossible for an @llvm.stackrestore to pop up in the middle of
2112     // an entry block. Also, if we have a block that's not attached to a
2113     // function, we can't tell if it's "static" under the current definition.
2114     // Theoretically, this problem could be fixed by creating a new kind of
2115     // instruction kind specifically for static allocas. Such a new instruction
2116     // could be required to be at the top of the entry block, thus preventing it
2117     // from being subject to a @llvm.stackrestore. Instcombine could even
2118     // convert regular allocas into these special allocas. It'd be nifty.
2119     // However, until then, this problem remains open.
2120     //
2121     // So, we'll assume that two non-empty allocas have different addresses
2122     // for now.
2123     //
2124     // With all that, if the offsets are within the bounds of their allocations
2125     // (and not one-past-the-end! so we can't use inbounds!), and their
2126     // allocations aren't the same, the pointers are not equal.
2127     //
2128     // Note that it's not necessary to check for LHS being a global variable
2129     // address, due to canonicalization and constant folding.
2130     if (isa<AllocaInst>(LHS) &&
2131         (isa<AllocaInst>(RHS) || isa<GlobalVariable>(RHS))) {
2132       ConstantInt *LHSOffsetCI = dyn_cast<ConstantInt>(LHSOffset);
2133       ConstantInt *RHSOffsetCI = dyn_cast<ConstantInt>(RHSOffset);
2134       uint64_t LHSSize, RHSSize;
2135       ObjectSizeOpts Opts;
2136       Opts.NullIsUnknownSize =
2137           NullPointerIsDefined(cast<AllocaInst>(LHS)->getFunction());
2138       if (LHSOffsetCI && RHSOffsetCI &&
2139           getObjectSize(LHS, LHSSize, DL, TLI, Opts) &&
2140           getObjectSize(RHS, RHSSize, DL, TLI, Opts)) {
2141         const APInt &LHSOffsetValue = LHSOffsetCI->getValue();
2142         const APInt &RHSOffsetValue = RHSOffsetCI->getValue();
2143         if (!LHSOffsetValue.isNegative() &&
2144             !RHSOffsetValue.isNegative() &&
2145             LHSOffsetValue.ult(LHSSize) &&
2146             RHSOffsetValue.ult(RHSSize)) {
2147           return ConstantInt::get(GetCompareTy(LHS),
2148                                   !CmpInst::isTrueWhenEqual(Pred));
2149         }
2150       }
2151 
2152       // Repeat the above check but this time without depending on DataLayout
2153       // or being able to compute a precise size.
2154       if (!cast<PointerType>(LHS->getType())->isEmptyTy() &&
2155           !cast<PointerType>(RHS->getType())->isEmptyTy() &&
2156           LHSOffset->isNullValue() &&
2157           RHSOffset->isNullValue())
2158         return ConstantInt::get(GetCompareTy(LHS),
2159                                 !CmpInst::isTrueWhenEqual(Pred));
2160     }
2161 
2162     // Even if an non-inbounds GEP occurs along the path we can still optimize
2163     // equality comparisons concerning the result. We avoid walking the whole
2164     // chain again by starting where the last calls to
2165     // stripAndComputeConstantOffsets left off and accumulate the offsets.
2166     Constant *LHSNoBound = stripAndComputeConstantOffsets(DL, LHS, true);
2167     Constant *RHSNoBound = stripAndComputeConstantOffsets(DL, RHS, true);
2168     if (LHS == RHS)
2169       return ConstantExpr::getICmp(Pred,
2170                                    ConstantExpr::getAdd(LHSOffset, LHSNoBound),
2171                                    ConstantExpr::getAdd(RHSOffset, RHSNoBound));
2172 
2173     // If one side of the equality comparison must come from a noalias call
2174     // (meaning a system memory allocation function), and the other side must
2175     // come from a pointer that cannot overlap with dynamically-allocated
2176     // memory within the lifetime of the current function (allocas, byval
2177     // arguments, globals), then determine the comparison result here.
2178     SmallVector<Value *, 8> LHSUObjs, RHSUObjs;
2179     GetUnderlyingObjects(LHS, LHSUObjs, DL);
2180     GetUnderlyingObjects(RHS, RHSUObjs, DL);
2181 
2182     // Is the set of underlying objects all noalias calls?
2183     auto IsNAC = [](ArrayRef<Value *> Objects) {
2184       return all_of(Objects, isNoAliasCall);
2185     };
2186 
2187     // Is the set of underlying objects all things which must be disjoint from
2188     // noalias calls. For allocas, we consider only static ones (dynamic
2189     // allocas might be transformed into calls to malloc not simultaneously
2190     // live with the compared-to allocation). For globals, we exclude symbols
2191     // that might be resolve lazily to symbols in another dynamically-loaded
2192     // library (and, thus, could be malloc'ed by the implementation).
2193     auto IsAllocDisjoint = [](ArrayRef<Value *> Objects) {
2194       return all_of(Objects, [](Value *V) {
2195         if (const AllocaInst *AI = dyn_cast<AllocaInst>(V))
2196           return AI->getParent() && AI->getFunction() && AI->isStaticAlloca();
2197         if (const GlobalValue *GV = dyn_cast<GlobalValue>(V))
2198           return (GV->hasLocalLinkage() || GV->hasHiddenVisibility() ||
2199                   GV->hasProtectedVisibility() || GV->hasGlobalUnnamedAddr()) &&
2200                  !GV->isThreadLocal();
2201         if (const Argument *A = dyn_cast<Argument>(V))
2202           return A->hasByValAttr();
2203         return false;
2204       });
2205     };
2206 
2207     if ((IsNAC(LHSUObjs) && IsAllocDisjoint(RHSUObjs)) ||
2208         (IsNAC(RHSUObjs) && IsAllocDisjoint(LHSUObjs)))
2209         return ConstantInt::get(GetCompareTy(LHS),
2210                                 !CmpInst::isTrueWhenEqual(Pred));
2211 
2212     // Fold comparisons for non-escaping pointer even if the allocation call
2213     // cannot be elided. We cannot fold malloc comparison to null. Also, the
2214     // dynamic allocation call could be either of the operands.
2215     Value *MI = nullptr;
2216     if (isAllocLikeFn(LHS, TLI) &&
2217         llvm::isKnownNonZero(RHS, DL, 0, nullptr, CxtI, DT))
2218       MI = LHS;
2219     else if (isAllocLikeFn(RHS, TLI) &&
2220              llvm::isKnownNonZero(LHS, DL, 0, nullptr, CxtI, DT))
2221       MI = RHS;
2222     // FIXME: We should also fold the compare when the pointer escapes, but the
2223     // compare dominates the pointer escape
2224     if (MI && !PointerMayBeCaptured(MI, true, true))
2225       return ConstantInt::get(GetCompareTy(LHS),
2226                               CmpInst::isFalseWhenEqual(Pred));
2227   }
2228 
2229   // Otherwise, fail.
2230   return nullptr;
2231 }
2232 
2233 /// Fold an icmp when its operands have i1 scalar type.
2234 static Value *simplifyICmpOfBools(CmpInst::Predicate Pred, Value *LHS,
2235                                   Value *RHS, const SimplifyQuery &Q) {
2236   Type *ITy = GetCompareTy(LHS); // The return type.
2237   Type *OpTy = LHS->getType();   // The operand type.
2238   if (!OpTy->isIntOrIntVectorTy(1))
2239     return nullptr;
2240 
2241   // A boolean compared to true/false can be simplified in 14 out of the 20
2242   // (10 predicates * 2 constants) possible combinations. Cases not handled here
2243   // require a 'not' of the LHS, so those must be transformed in InstCombine.
2244   if (match(RHS, m_Zero())) {
2245     switch (Pred) {
2246     case CmpInst::ICMP_NE:  // X !=  0 -> X
2247     case CmpInst::ICMP_UGT: // X >u  0 -> X
2248     case CmpInst::ICMP_SLT: // X <s  0 -> X
2249       return LHS;
2250 
2251     case CmpInst::ICMP_ULT: // X <u  0 -> false
2252     case CmpInst::ICMP_SGT: // X >s  0 -> false
2253       return getFalse(ITy);
2254 
2255     case CmpInst::ICMP_UGE: // X >=u 0 -> true
2256     case CmpInst::ICMP_SLE: // X <=s 0 -> true
2257       return getTrue(ITy);
2258 
2259     default: break;
2260     }
2261   } else if (match(RHS, m_One())) {
2262     switch (Pred) {
2263     case CmpInst::ICMP_EQ:  // X ==   1 -> X
2264     case CmpInst::ICMP_UGE: // X >=u  1 -> X
2265     case CmpInst::ICMP_SLE: // X <=s -1 -> X
2266       return LHS;
2267 
2268     case CmpInst::ICMP_UGT: // X >u   1 -> false
2269     case CmpInst::ICMP_SLT: // X <s  -1 -> false
2270       return getFalse(ITy);
2271 
2272     case CmpInst::ICMP_ULE: // X <=u  1 -> true
2273     case CmpInst::ICMP_SGE: // X >=s -1 -> true
2274       return getTrue(ITy);
2275 
2276     default: break;
2277     }
2278   }
2279 
2280   switch (Pred) {
2281   default:
2282     break;
2283   case ICmpInst::ICMP_UGE:
2284     if (isImpliedCondition(RHS, LHS, Q.DL).getValueOr(false))
2285       return getTrue(ITy);
2286     break;
2287   case ICmpInst::ICMP_SGE:
2288     /// For signed comparison, the values for an i1 are 0 and -1
2289     /// respectively. This maps into a truth table of:
2290     /// LHS | RHS | LHS >=s RHS   | LHS implies RHS
2291     ///  0  |  0  |  1 (0 >= 0)   |  1
2292     ///  0  |  1  |  1 (0 >= -1)  |  1
2293     ///  1  |  0  |  0 (-1 >= 0)  |  0
2294     ///  1  |  1  |  1 (-1 >= -1) |  1
2295     if (isImpliedCondition(LHS, RHS, Q.DL).getValueOr(false))
2296       return getTrue(ITy);
2297     break;
2298   case ICmpInst::ICMP_ULE:
2299     if (isImpliedCondition(LHS, RHS, Q.DL).getValueOr(false))
2300       return getTrue(ITy);
2301     break;
2302   }
2303 
2304   return nullptr;
2305 }
2306 
2307 /// Try hard to fold icmp with zero RHS because this is a common case.
2308 static Value *simplifyICmpWithZero(CmpInst::Predicate Pred, Value *LHS,
2309                                    Value *RHS, const SimplifyQuery &Q) {
2310   if (!match(RHS, m_Zero()))
2311     return nullptr;
2312 
2313   Type *ITy = GetCompareTy(LHS); // The return type.
2314   switch (Pred) {
2315   default:
2316     llvm_unreachable("Unknown ICmp predicate!");
2317   case ICmpInst::ICMP_ULT:
2318     return getFalse(ITy);
2319   case ICmpInst::ICMP_UGE:
2320     return getTrue(ITy);
2321   case ICmpInst::ICMP_EQ:
2322   case ICmpInst::ICMP_ULE:
2323     if (isKnownNonZero(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT))
2324       return getFalse(ITy);
2325     break;
2326   case ICmpInst::ICMP_NE:
2327   case ICmpInst::ICMP_UGT:
2328     if (isKnownNonZero(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT))
2329       return getTrue(ITy);
2330     break;
2331   case ICmpInst::ICMP_SLT: {
2332     KnownBits LHSKnown = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2333     if (LHSKnown.isNegative())
2334       return getTrue(ITy);
2335     if (LHSKnown.isNonNegative())
2336       return getFalse(ITy);
2337     break;
2338   }
2339   case ICmpInst::ICMP_SLE: {
2340     KnownBits LHSKnown = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2341     if (LHSKnown.isNegative())
2342       return getTrue(ITy);
2343     if (LHSKnown.isNonNegative() &&
2344         isKnownNonZero(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT))
2345       return getFalse(ITy);
2346     break;
2347   }
2348   case ICmpInst::ICMP_SGE: {
2349     KnownBits LHSKnown = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2350     if (LHSKnown.isNegative())
2351       return getFalse(ITy);
2352     if (LHSKnown.isNonNegative())
2353       return getTrue(ITy);
2354     break;
2355   }
2356   case ICmpInst::ICMP_SGT: {
2357     KnownBits LHSKnown = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2358     if (LHSKnown.isNegative())
2359       return getFalse(ITy);
2360     if (LHSKnown.isNonNegative() &&
2361         isKnownNonZero(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT))
2362       return getTrue(ITy);
2363     break;
2364   }
2365   }
2366 
2367   return nullptr;
2368 }
2369 
2370 /// Many binary operators with a constant operand have an easy-to-compute
2371 /// range of outputs. This can be used to fold a comparison to always true or
2372 /// always false.
2373 static void setLimitsForBinOp(BinaryOperator &BO, APInt &Lower, APInt &Upper) {
2374   unsigned Width = Lower.getBitWidth();
2375   const APInt *C;
2376   switch (BO.getOpcode()) {
2377   case Instruction::Add:
2378     if (match(BO.getOperand(1), m_APInt(C)) && !C->isNullValue()) {
2379       // FIXME: If we have both nuw and nsw, we should reduce the range further.
2380       if (BO.hasNoUnsignedWrap()) {
2381         // 'add nuw x, C' produces [C, UINT_MAX].
2382         Lower = *C;
2383       } else if (BO.hasNoSignedWrap()) {
2384         if (C->isNegative()) {
2385           // 'add nsw x, -C' produces [SINT_MIN, SINT_MAX - C].
2386           Lower = APInt::getSignedMinValue(Width);
2387           Upper = APInt::getSignedMaxValue(Width) + *C + 1;
2388         } else {
2389           // 'add nsw x, +C' produces [SINT_MIN + C, SINT_MAX].
2390           Lower = APInt::getSignedMinValue(Width) + *C;
2391           Upper = APInt::getSignedMaxValue(Width) + 1;
2392         }
2393       }
2394     }
2395     break;
2396 
2397   case Instruction::And:
2398     if (match(BO.getOperand(1), m_APInt(C)))
2399       // 'and x, C' produces [0, C].
2400       Upper = *C + 1;
2401     break;
2402 
2403   case Instruction::Or:
2404     if (match(BO.getOperand(1), m_APInt(C)))
2405       // 'or x, C' produces [C, UINT_MAX].
2406       Lower = *C;
2407     break;
2408 
2409   case Instruction::AShr:
2410     if (match(BO.getOperand(1), m_APInt(C)) && C->ult(Width)) {
2411       // 'ashr x, C' produces [INT_MIN >> C, INT_MAX >> C].
2412       Lower = APInt::getSignedMinValue(Width).ashr(*C);
2413       Upper = APInt::getSignedMaxValue(Width).ashr(*C) + 1;
2414     } else if (match(BO.getOperand(0), m_APInt(C))) {
2415       unsigned ShiftAmount = Width - 1;
2416       if (!C->isNullValue() && BO.isExact())
2417         ShiftAmount = C->countTrailingZeros();
2418       if (C->isNegative()) {
2419         // 'ashr C, x' produces [C, C >> (Width-1)]
2420         Lower = *C;
2421         Upper = C->ashr(ShiftAmount) + 1;
2422       } else {
2423         // 'ashr C, x' produces [C >> (Width-1), C]
2424         Lower = C->ashr(ShiftAmount);
2425         Upper = *C + 1;
2426       }
2427     }
2428     break;
2429 
2430   case Instruction::LShr:
2431     if (match(BO.getOperand(1), m_APInt(C)) && C->ult(Width)) {
2432       // 'lshr x, C' produces [0, UINT_MAX >> C].
2433       Upper = APInt::getAllOnesValue(Width).lshr(*C) + 1;
2434     } else if (match(BO.getOperand(0), m_APInt(C))) {
2435       // 'lshr C, x' produces [C >> (Width-1), C].
2436       unsigned ShiftAmount = Width - 1;
2437       if (!C->isNullValue() && BO.isExact())
2438         ShiftAmount = C->countTrailingZeros();
2439       Lower = C->lshr(ShiftAmount);
2440       Upper = *C + 1;
2441     }
2442     break;
2443 
2444   case Instruction::Shl:
2445     if (match(BO.getOperand(0), m_APInt(C))) {
2446       if (BO.hasNoUnsignedWrap()) {
2447         // 'shl nuw C, x' produces [C, C << CLZ(C)]
2448         Lower = *C;
2449         Upper = Lower.shl(Lower.countLeadingZeros()) + 1;
2450       } else if (BO.hasNoSignedWrap()) { // TODO: What if both nuw+nsw?
2451         if (C->isNegative()) {
2452           // 'shl nsw C, x' produces [C << CLO(C)-1, C]
2453           unsigned ShiftAmount = C->countLeadingOnes() - 1;
2454           Lower = C->shl(ShiftAmount);
2455           Upper = *C + 1;
2456         } else {
2457           // 'shl nsw C, x' produces [C, C << CLZ(C)-1]
2458           unsigned ShiftAmount = C->countLeadingZeros() - 1;
2459           Lower = *C;
2460           Upper = C->shl(ShiftAmount) + 1;
2461         }
2462       }
2463     }
2464     break;
2465 
2466   case Instruction::SDiv:
2467     if (match(BO.getOperand(1), m_APInt(C))) {
2468       APInt IntMin = APInt::getSignedMinValue(Width);
2469       APInt IntMax = APInt::getSignedMaxValue(Width);
2470       if (C->isAllOnesValue()) {
2471         // 'sdiv x, -1' produces [INT_MIN + 1, INT_MAX]
2472         //    where C != -1 and C != 0 and C != 1
2473         Lower = IntMin + 1;
2474         Upper = IntMax + 1;
2475       } else if (C->countLeadingZeros() < Width - 1) {
2476         // 'sdiv x, C' produces [INT_MIN / C, INT_MAX / C]
2477         //    where C != -1 and C != 0 and C != 1
2478         Lower = IntMin.sdiv(*C);
2479         Upper = IntMax.sdiv(*C);
2480         if (Lower.sgt(Upper))
2481           std::swap(Lower, Upper);
2482         Upper = Upper + 1;
2483         assert(Upper != Lower && "Upper part of range has wrapped!");
2484       }
2485     } else if (match(BO.getOperand(0), m_APInt(C))) {
2486       if (C->isMinSignedValue()) {
2487         // 'sdiv INT_MIN, x' produces [INT_MIN, INT_MIN / -2].
2488         Lower = *C;
2489         Upper = Lower.lshr(1) + 1;
2490       } else {
2491         // 'sdiv C, x' produces [-|C|, |C|].
2492         Upper = C->abs() + 1;
2493         Lower = (-Upper) + 1;
2494       }
2495     }
2496     break;
2497 
2498   case Instruction::UDiv:
2499     if (match(BO.getOperand(1), m_APInt(C)) && !C->isNullValue()) {
2500       // 'udiv x, C' produces [0, UINT_MAX / C].
2501       Upper = APInt::getMaxValue(Width).udiv(*C) + 1;
2502     } else if (match(BO.getOperand(0), m_APInt(C))) {
2503       // 'udiv C, x' produces [0, C].
2504       Upper = *C + 1;
2505     }
2506     break;
2507 
2508   case Instruction::SRem:
2509     if (match(BO.getOperand(1), m_APInt(C))) {
2510       // 'srem x, C' produces (-|C|, |C|).
2511       Upper = C->abs();
2512       Lower = (-Upper) + 1;
2513     }
2514     break;
2515 
2516   case Instruction::URem:
2517     if (match(BO.getOperand(1), m_APInt(C)))
2518       // 'urem x, C' produces [0, C).
2519       Upper = *C;
2520     break;
2521 
2522   default:
2523     break;
2524   }
2525 }
2526 
2527 static Value *simplifyICmpWithConstant(CmpInst::Predicate Pred, Value *LHS,
2528                                        Value *RHS) {
2529   Type *ITy = GetCompareTy(RHS); // The return type.
2530 
2531   Value *X;
2532   // Sign-bit checks can be optimized to true/false after unsigned
2533   // floating-point casts:
2534   // icmp slt (bitcast (uitofp X)),  0 --> false
2535   // icmp sgt (bitcast (uitofp X)), -1 --> true
2536   if (match(LHS, m_BitCast(m_UIToFP(m_Value(X))))) {
2537     if (Pred == ICmpInst::ICMP_SLT && match(RHS, m_Zero()))
2538       return ConstantInt::getFalse(ITy);
2539     if (Pred == ICmpInst::ICMP_SGT && match(RHS, m_AllOnes()))
2540       return ConstantInt::getTrue(ITy);
2541   }
2542 
2543   const APInt *C;
2544   if (!match(RHS, m_APInt(C)))
2545     return nullptr;
2546 
2547   // Rule out tautological comparisons (eg., ult 0 or uge 0).
2548   ConstantRange RHS_CR = ConstantRange::makeExactICmpRegion(Pred, *C);
2549   if (RHS_CR.isEmptySet())
2550     return ConstantInt::getFalse(ITy);
2551   if (RHS_CR.isFullSet())
2552     return ConstantInt::getTrue(ITy);
2553 
2554   // Find the range of possible values for binary operators.
2555   unsigned Width = C->getBitWidth();
2556   APInt Lower = APInt(Width, 0);
2557   APInt Upper = APInt(Width, 0);
2558   if (auto *BO = dyn_cast<BinaryOperator>(LHS))
2559     setLimitsForBinOp(*BO, Lower, Upper);
2560 
2561   ConstantRange LHS_CR =
2562       Lower != Upper ? ConstantRange(Lower, Upper) : ConstantRange(Width, true);
2563 
2564   if (auto *I = dyn_cast<Instruction>(LHS))
2565     if (auto *Ranges = I->getMetadata(LLVMContext::MD_range))
2566       LHS_CR = LHS_CR.intersectWith(getConstantRangeFromMetadata(*Ranges));
2567 
2568   if (!LHS_CR.isFullSet()) {
2569     if (RHS_CR.contains(LHS_CR))
2570       return ConstantInt::getTrue(ITy);
2571     if (RHS_CR.inverse().contains(LHS_CR))
2572       return ConstantInt::getFalse(ITy);
2573   }
2574 
2575   return nullptr;
2576 }
2577 
2578 /// TODO: A large part of this logic is duplicated in InstCombine's
2579 /// foldICmpBinOp(). We should be able to share that and avoid the code
2580 /// duplication.
2581 static Value *simplifyICmpWithBinOp(CmpInst::Predicate Pred, Value *LHS,
2582                                     Value *RHS, const SimplifyQuery &Q,
2583                                     unsigned MaxRecurse) {
2584   Type *ITy = GetCompareTy(LHS); // The return type.
2585 
2586   BinaryOperator *LBO = dyn_cast<BinaryOperator>(LHS);
2587   BinaryOperator *RBO = dyn_cast<BinaryOperator>(RHS);
2588   if (MaxRecurse && (LBO || RBO)) {
2589     // Analyze the case when either LHS or RHS is an add instruction.
2590     Value *A = nullptr, *B = nullptr, *C = nullptr, *D = nullptr;
2591     // LHS = A + B (or A and B are null); RHS = C + D (or C and D are null).
2592     bool NoLHSWrapProblem = false, NoRHSWrapProblem = false;
2593     if (LBO && LBO->getOpcode() == Instruction::Add) {
2594       A = LBO->getOperand(0);
2595       B = LBO->getOperand(1);
2596       NoLHSWrapProblem =
2597           ICmpInst::isEquality(Pred) ||
2598           (CmpInst::isUnsigned(Pred) && LBO->hasNoUnsignedWrap()) ||
2599           (CmpInst::isSigned(Pred) && LBO->hasNoSignedWrap());
2600     }
2601     if (RBO && RBO->getOpcode() == Instruction::Add) {
2602       C = RBO->getOperand(0);
2603       D = RBO->getOperand(1);
2604       NoRHSWrapProblem =
2605           ICmpInst::isEquality(Pred) ||
2606           (CmpInst::isUnsigned(Pred) && RBO->hasNoUnsignedWrap()) ||
2607           (CmpInst::isSigned(Pred) && RBO->hasNoSignedWrap());
2608     }
2609 
2610     // icmp (X+Y), X -> icmp Y, 0 for equalities or if there is no overflow.
2611     if ((A == RHS || B == RHS) && NoLHSWrapProblem)
2612       if (Value *V = SimplifyICmpInst(Pred, A == RHS ? B : A,
2613                                       Constant::getNullValue(RHS->getType()), Q,
2614                                       MaxRecurse - 1))
2615         return V;
2616 
2617     // icmp X, (X+Y) -> icmp 0, Y for equalities or if there is no overflow.
2618     if ((C == LHS || D == LHS) && NoRHSWrapProblem)
2619       if (Value *V =
2620               SimplifyICmpInst(Pred, Constant::getNullValue(LHS->getType()),
2621                                C == LHS ? D : C, Q, MaxRecurse - 1))
2622         return V;
2623 
2624     // icmp (X+Y), (X+Z) -> icmp Y,Z for equalities or if there is no overflow.
2625     if (A && C && (A == C || A == D || B == C || B == D) && NoLHSWrapProblem &&
2626         NoRHSWrapProblem) {
2627       // Determine Y and Z in the form icmp (X+Y), (X+Z).
2628       Value *Y, *Z;
2629       if (A == C) {
2630         // C + B == C + D  ->  B == D
2631         Y = B;
2632         Z = D;
2633       } else if (A == D) {
2634         // D + B == C + D  ->  B == C
2635         Y = B;
2636         Z = C;
2637       } else if (B == C) {
2638         // A + C == C + D  ->  A == D
2639         Y = A;
2640         Z = D;
2641       } else {
2642         assert(B == D);
2643         // A + D == C + D  ->  A == C
2644         Y = A;
2645         Z = C;
2646       }
2647       if (Value *V = SimplifyICmpInst(Pred, Y, Z, Q, MaxRecurse - 1))
2648         return V;
2649     }
2650   }
2651 
2652   {
2653     Value *Y = nullptr;
2654     // icmp pred (or X, Y), X
2655     if (LBO && match(LBO, m_c_Or(m_Value(Y), m_Specific(RHS)))) {
2656       if (Pred == ICmpInst::ICMP_ULT)
2657         return getFalse(ITy);
2658       if (Pred == ICmpInst::ICMP_UGE)
2659         return getTrue(ITy);
2660 
2661       if (Pred == ICmpInst::ICMP_SLT || Pred == ICmpInst::ICMP_SGE) {
2662         KnownBits RHSKnown = computeKnownBits(RHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2663         KnownBits YKnown = computeKnownBits(Y, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2664         if (RHSKnown.isNonNegative() && YKnown.isNegative())
2665           return Pred == ICmpInst::ICMP_SLT ? getTrue(ITy) : getFalse(ITy);
2666         if (RHSKnown.isNegative() || YKnown.isNonNegative())
2667           return Pred == ICmpInst::ICMP_SLT ? getFalse(ITy) : getTrue(ITy);
2668       }
2669     }
2670     // icmp pred X, (or X, Y)
2671     if (RBO && match(RBO, m_c_Or(m_Value(Y), m_Specific(LHS)))) {
2672       if (Pred == ICmpInst::ICMP_ULE)
2673         return getTrue(ITy);
2674       if (Pred == ICmpInst::ICMP_UGT)
2675         return getFalse(ITy);
2676 
2677       if (Pred == ICmpInst::ICMP_SGT || Pred == ICmpInst::ICMP_SLE) {
2678         KnownBits LHSKnown = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2679         KnownBits YKnown = computeKnownBits(Y, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2680         if (LHSKnown.isNonNegative() && YKnown.isNegative())
2681           return Pred == ICmpInst::ICMP_SGT ? getTrue(ITy) : getFalse(ITy);
2682         if (LHSKnown.isNegative() || YKnown.isNonNegative())
2683           return Pred == ICmpInst::ICMP_SGT ? getFalse(ITy) : getTrue(ITy);
2684       }
2685     }
2686   }
2687 
2688   // icmp pred (and X, Y), X
2689   if (LBO && match(LBO, m_c_And(m_Value(), m_Specific(RHS)))) {
2690     if (Pred == ICmpInst::ICMP_UGT)
2691       return getFalse(ITy);
2692     if (Pred == ICmpInst::ICMP_ULE)
2693       return getTrue(ITy);
2694   }
2695   // icmp pred X, (and X, Y)
2696   if (RBO && match(RBO, m_c_And(m_Value(), m_Specific(LHS)))) {
2697     if (Pred == ICmpInst::ICMP_UGE)
2698       return getTrue(ITy);
2699     if (Pred == ICmpInst::ICMP_ULT)
2700       return getFalse(ITy);
2701   }
2702 
2703   // 0 - (zext X) pred C
2704   if (!CmpInst::isUnsigned(Pred) && match(LHS, m_Neg(m_ZExt(m_Value())))) {
2705     if (ConstantInt *RHSC = dyn_cast<ConstantInt>(RHS)) {
2706       if (RHSC->getValue().isStrictlyPositive()) {
2707         if (Pred == ICmpInst::ICMP_SLT)
2708           return ConstantInt::getTrue(RHSC->getContext());
2709         if (Pred == ICmpInst::ICMP_SGE)
2710           return ConstantInt::getFalse(RHSC->getContext());
2711         if (Pred == ICmpInst::ICMP_EQ)
2712           return ConstantInt::getFalse(RHSC->getContext());
2713         if (Pred == ICmpInst::ICMP_NE)
2714           return ConstantInt::getTrue(RHSC->getContext());
2715       }
2716       if (RHSC->getValue().isNonNegative()) {
2717         if (Pred == ICmpInst::ICMP_SLE)
2718           return ConstantInt::getTrue(RHSC->getContext());
2719         if (Pred == ICmpInst::ICMP_SGT)
2720           return ConstantInt::getFalse(RHSC->getContext());
2721       }
2722     }
2723   }
2724 
2725   // icmp pred (urem X, Y), Y
2726   if (LBO && match(LBO, m_URem(m_Value(), m_Specific(RHS)))) {
2727     switch (Pred) {
2728     default:
2729       break;
2730     case ICmpInst::ICMP_SGT:
2731     case ICmpInst::ICMP_SGE: {
2732       KnownBits Known = computeKnownBits(RHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2733       if (!Known.isNonNegative())
2734         break;
2735       LLVM_FALLTHROUGH;
2736     }
2737     case ICmpInst::ICMP_EQ:
2738     case ICmpInst::ICMP_UGT:
2739     case ICmpInst::ICMP_UGE:
2740       return getFalse(ITy);
2741     case ICmpInst::ICMP_SLT:
2742     case ICmpInst::ICMP_SLE: {
2743       KnownBits Known = computeKnownBits(RHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2744       if (!Known.isNonNegative())
2745         break;
2746       LLVM_FALLTHROUGH;
2747     }
2748     case ICmpInst::ICMP_NE:
2749     case ICmpInst::ICMP_ULT:
2750     case ICmpInst::ICMP_ULE:
2751       return getTrue(ITy);
2752     }
2753   }
2754 
2755   // icmp pred X, (urem Y, X)
2756   if (RBO && match(RBO, m_URem(m_Value(), m_Specific(LHS)))) {
2757     switch (Pred) {
2758     default:
2759       break;
2760     case ICmpInst::ICMP_SGT:
2761     case ICmpInst::ICMP_SGE: {
2762       KnownBits Known = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2763       if (!Known.isNonNegative())
2764         break;
2765       LLVM_FALLTHROUGH;
2766     }
2767     case ICmpInst::ICMP_NE:
2768     case ICmpInst::ICMP_UGT:
2769     case ICmpInst::ICMP_UGE:
2770       return getTrue(ITy);
2771     case ICmpInst::ICMP_SLT:
2772     case ICmpInst::ICMP_SLE: {
2773       KnownBits Known = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT);
2774       if (!Known.isNonNegative())
2775         break;
2776       LLVM_FALLTHROUGH;
2777     }
2778     case ICmpInst::ICMP_EQ:
2779     case ICmpInst::ICMP_ULT:
2780     case ICmpInst::ICMP_ULE:
2781       return getFalse(ITy);
2782     }
2783   }
2784 
2785   // x >> y <=u x
2786   // x udiv y <=u x.
2787   if (LBO && (match(LBO, m_LShr(m_Specific(RHS), m_Value())) ||
2788               match(LBO, m_UDiv(m_Specific(RHS), m_Value())))) {
2789     // icmp pred (X op Y), X
2790     if (Pred == ICmpInst::ICMP_UGT)
2791       return getFalse(ITy);
2792     if (Pred == ICmpInst::ICMP_ULE)
2793       return getTrue(ITy);
2794   }
2795 
2796   // x >=u x >> y
2797   // x >=u x udiv y.
2798   if (RBO && (match(RBO, m_LShr(m_Specific(LHS), m_Value())) ||
2799               match(RBO, m_UDiv(m_Specific(LHS), m_Value())))) {
2800     // icmp pred X, (X op Y)
2801     if (Pred == ICmpInst::ICMP_ULT)
2802       return getFalse(ITy);
2803     if (Pred == ICmpInst::ICMP_UGE)
2804       return getTrue(ITy);
2805   }
2806 
2807   // handle:
2808   //   CI2 << X == CI
2809   //   CI2 << X != CI
2810   //
2811   //   where CI2 is a power of 2 and CI isn't
2812   if (auto *CI = dyn_cast<ConstantInt>(RHS)) {
2813     const APInt *CI2Val, *CIVal = &CI->getValue();
2814     if (LBO && match(LBO, m_Shl(m_APInt(CI2Val), m_Value())) &&
2815         CI2Val->isPowerOf2()) {
2816       if (!CIVal->isPowerOf2()) {
2817         // CI2 << X can equal zero in some circumstances,
2818         // this simplification is unsafe if CI is zero.
2819         //
2820         // We know it is safe if:
2821         // - The shift is nsw, we can't shift out the one bit.
2822         // - The shift is nuw, we can't shift out the one bit.
2823         // - CI2 is one
2824         // - CI isn't zero
2825         if (LBO->hasNoSignedWrap() || LBO->hasNoUnsignedWrap() ||
2826             CI2Val->isOneValue() || !CI->isZero()) {
2827           if (Pred == ICmpInst::ICMP_EQ)
2828             return ConstantInt::getFalse(RHS->getContext());
2829           if (Pred == ICmpInst::ICMP_NE)
2830             return ConstantInt::getTrue(RHS->getContext());
2831         }
2832       }
2833       if (CIVal->isSignMask() && CI2Val->isOneValue()) {
2834         if (Pred == ICmpInst::ICMP_UGT)
2835           return ConstantInt::getFalse(RHS->getContext());
2836         if (Pred == ICmpInst::ICMP_ULE)
2837           return ConstantInt::getTrue(RHS->getContext());
2838       }
2839     }
2840   }
2841 
2842   if (MaxRecurse && LBO && RBO && LBO->getOpcode() == RBO->getOpcode() &&
2843       LBO->getOperand(1) == RBO->getOperand(1)) {
2844     switch (LBO->getOpcode()) {
2845     default:
2846       break;
2847     case Instruction::UDiv:
2848     case Instruction::LShr:
2849       if (ICmpInst::isSigned(Pred) || !LBO->isExact() || !RBO->isExact())
2850         break;
2851       if (Value *V = SimplifyICmpInst(Pred, LBO->getOperand(0),
2852                                       RBO->getOperand(0), Q, MaxRecurse - 1))
2853           return V;
2854       break;
2855     case Instruction::SDiv:
2856       if (!ICmpInst::isEquality(Pred) || !LBO->isExact() || !RBO->isExact())
2857         break;
2858       if (Value *V = SimplifyICmpInst(Pred, LBO->getOperand(0),
2859                                       RBO->getOperand(0), Q, MaxRecurse - 1))
2860         return V;
2861       break;
2862     case Instruction::AShr:
2863       if (!LBO->isExact() || !RBO->isExact())
2864         break;
2865       if (Value *V = SimplifyICmpInst(Pred, LBO->getOperand(0),
2866                                       RBO->getOperand(0), Q, MaxRecurse - 1))
2867         return V;
2868       break;
2869     case Instruction::Shl: {
2870       bool NUW = LBO->hasNoUnsignedWrap() && RBO->hasNoUnsignedWrap();
2871       bool NSW = LBO->hasNoSignedWrap() && RBO->hasNoSignedWrap();
2872       if (!NUW && !NSW)
2873         break;
2874       if (!NSW && ICmpInst::isSigned(Pred))
2875         break;
2876       if (Value *V = SimplifyICmpInst(Pred, LBO->getOperand(0),
2877                                       RBO->getOperand(0), Q, MaxRecurse - 1))
2878         return V;
2879       break;
2880     }
2881     }
2882   }
2883   return nullptr;
2884 }
2885 
2886 /// Simplify integer comparisons where at least one operand of the compare
2887 /// matches an integer min/max idiom.
2888 static Value *simplifyICmpWithMinMax(CmpInst::Predicate Pred, Value *LHS,
2889                                      Value *RHS, const SimplifyQuery &Q,
2890                                      unsigned MaxRecurse) {
2891   Type *ITy = GetCompareTy(LHS); // The return type.
2892   Value *A, *B;
2893   CmpInst::Predicate P = CmpInst::BAD_ICMP_PREDICATE;
2894   CmpInst::Predicate EqP; // Chosen so that "A == max/min(A,B)" iff "A EqP B".
2895 
2896   // Signed variants on "max(a,b)>=a -> true".
2897   if (match(LHS, m_SMax(m_Value(A), m_Value(B))) && (A == RHS || B == RHS)) {
2898     if (A != RHS)
2899       std::swap(A, B);       // smax(A, B) pred A.
2900     EqP = CmpInst::ICMP_SGE; // "A == smax(A, B)" iff "A sge B".
2901     // We analyze this as smax(A, B) pred A.
2902     P = Pred;
2903   } else if (match(RHS, m_SMax(m_Value(A), m_Value(B))) &&
2904              (A == LHS || B == LHS)) {
2905     if (A != LHS)
2906       std::swap(A, B);       // A pred smax(A, B).
2907     EqP = CmpInst::ICMP_SGE; // "A == smax(A, B)" iff "A sge B".
2908     // We analyze this as smax(A, B) swapped-pred A.
2909     P = CmpInst::getSwappedPredicate(Pred);
2910   } else if (match(LHS, m_SMin(m_Value(A), m_Value(B))) &&
2911              (A == RHS || B == RHS)) {
2912     if (A != RHS)
2913       std::swap(A, B);       // smin(A, B) pred A.
2914     EqP = CmpInst::ICMP_SLE; // "A == smin(A, B)" iff "A sle B".
2915     // We analyze this as smax(-A, -B) swapped-pred -A.
2916     // Note that we do not need to actually form -A or -B thanks to EqP.
2917     P = CmpInst::getSwappedPredicate(Pred);
2918   } else if (match(RHS, m_SMin(m_Value(A), m_Value(B))) &&
2919              (A == LHS || B == LHS)) {
2920     if (A != LHS)
2921       std::swap(A, B);       // A pred smin(A, B).
2922     EqP = CmpInst::ICMP_SLE; // "A == smin(A, B)" iff "A sle B".
2923     // We analyze this as smax(-A, -B) pred -A.
2924     // Note that we do not need to actually form -A or -B thanks to EqP.
2925     P = Pred;
2926   }
2927   if (P != CmpInst::BAD_ICMP_PREDICATE) {
2928     // Cases correspond to "max(A, B) p A".
2929     switch (P) {
2930     default:
2931       break;
2932     case CmpInst::ICMP_EQ:
2933     case CmpInst::ICMP_SLE:
2934       // Equivalent to "A EqP B".  This may be the same as the condition tested
2935       // in the max/min; if so, we can just return that.
2936       if (Value *V = ExtractEquivalentCondition(LHS, EqP, A, B))
2937         return V;
2938       if (Value *V = ExtractEquivalentCondition(RHS, EqP, A, B))
2939         return V;
2940       // Otherwise, see if "A EqP B" simplifies.
2941       if (MaxRecurse)
2942         if (Value *V = SimplifyICmpInst(EqP, A, B, Q, MaxRecurse - 1))
2943           return V;
2944       break;
2945     case CmpInst::ICMP_NE:
2946     case CmpInst::ICMP_SGT: {
2947       CmpInst::Predicate InvEqP = CmpInst::getInversePredicate(EqP);
2948       // Equivalent to "A InvEqP B".  This may be the same as the condition
2949       // tested in the max/min; if so, we can just return that.
2950       if (Value *V = ExtractEquivalentCondition(LHS, InvEqP, A, B))
2951         return V;
2952       if (Value *V = ExtractEquivalentCondition(RHS, InvEqP, A, B))
2953         return V;
2954       // Otherwise, see if "A InvEqP B" simplifies.
2955       if (MaxRecurse)
2956         if (Value *V = SimplifyICmpInst(InvEqP, A, B, Q, MaxRecurse - 1))
2957           return V;
2958       break;
2959     }
2960     case CmpInst::ICMP_SGE:
2961       // Always true.
2962       return getTrue(ITy);
2963     case CmpInst::ICMP_SLT:
2964       // Always false.
2965       return getFalse(ITy);
2966     }
2967   }
2968 
2969   // Unsigned variants on "max(a,b)>=a -> true".
2970   P = CmpInst::BAD_ICMP_PREDICATE;
2971   if (match(LHS, m_UMax(m_Value(A), m_Value(B))) && (A == RHS || B == RHS)) {
2972     if (A != RHS)
2973       std::swap(A, B);       // umax(A, B) pred A.
2974     EqP = CmpInst::ICMP_UGE; // "A == umax(A, B)" iff "A uge B".
2975     // We analyze this as umax(A, B) pred A.
2976     P = Pred;
2977   } else if (match(RHS, m_UMax(m_Value(A), m_Value(B))) &&
2978              (A == LHS || B == LHS)) {
2979     if (A != LHS)
2980       std::swap(A, B);       // A pred umax(A, B).
2981     EqP = CmpInst::ICMP_UGE; // "A == umax(A, B)" iff "A uge B".
2982     // We analyze this as umax(A, B) swapped-pred A.
2983     P = CmpInst::getSwappedPredicate(Pred);
2984   } else if (match(LHS, m_UMin(m_Value(A), m_Value(B))) &&
2985              (A == RHS || B == RHS)) {
2986     if (A != RHS)
2987       std::swap(A, B);       // umin(A, B) pred A.
2988     EqP = CmpInst::ICMP_ULE; // "A == umin(A, B)" iff "A ule B".
2989     // We analyze this as umax(-A, -B) swapped-pred -A.
2990     // Note that we do not need to actually form -A or -B thanks to EqP.
2991     P = CmpInst::getSwappedPredicate(Pred);
2992   } else if (match(RHS, m_UMin(m_Value(A), m_Value(B))) &&
2993              (A == LHS || B == LHS)) {
2994     if (A != LHS)
2995       std::swap(A, B);       // A pred umin(A, B).
2996     EqP = CmpInst::ICMP_ULE; // "A == umin(A, B)" iff "A ule B".
2997     // We analyze this as umax(-A, -B) pred -A.
2998     // Note that we do not need to actually form -A or -B thanks to EqP.
2999     P = Pred;
3000   }
3001   if (P != CmpInst::BAD_ICMP_PREDICATE) {
3002     // Cases correspond to "max(A, B) p A".
3003     switch (P) {
3004     default:
3005       break;
3006     case CmpInst::ICMP_EQ:
3007     case CmpInst::ICMP_ULE:
3008       // Equivalent to "A EqP B".  This may be the same as the condition tested
3009       // in the max/min; if so, we can just return that.
3010       if (Value *V = ExtractEquivalentCondition(LHS, EqP, A, B))
3011         return V;
3012       if (Value *V = ExtractEquivalentCondition(RHS, EqP, A, B))
3013         return V;
3014       // Otherwise, see if "A EqP B" simplifies.
3015       if (MaxRecurse)
3016         if (Value *V = SimplifyICmpInst(EqP, A, B, Q, MaxRecurse - 1))
3017           return V;
3018       break;
3019     case CmpInst::ICMP_NE:
3020     case CmpInst::ICMP_UGT: {
3021       CmpInst::Predicate InvEqP = CmpInst::getInversePredicate(EqP);
3022       // Equivalent to "A InvEqP B".  This may be the same as the condition
3023       // tested in the max/min; if so, we can just return that.
3024       if (Value *V = ExtractEquivalentCondition(LHS, InvEqP, A, B))
3025         return V;
3026       if (Value *V = ExtractEquivalentCondition(RHS, InvEqP, A, B))
3027         return V;
3028       // Otherwise, see if "A InvEqP B" simplifies.
3029       if (MaxRecurse)
3030         if (Value *V = SimplifyICmpInst(InvEqP, A, B, Q, MaxRecurse - 1))
3031           return V;
3032       break;
3033     }
3034     case CmpInst::ICMP_UGE:
3035       // Always true.
3036       return getTrue(ITy);
3037     case CmpInst::ICMP_ULT:
3038       // Always false.
3039       return getFalse(ITy);
3040     }
3041   }
3042 
3043   // Variants on "max(x,y) >= min(x,z)".
3044   Value *C, *D;
3045   if (match(LHS, m_SMax(m_Value(A), m_Value(B))) &&
3046       match(RHS, m_SMin(m_Value(C), m_Value(D))) &&
3047       (A == C || A == D || B == C || B == D)) {
3048     // max(x, ?) pred min(x, ?).
3049     if (Pred == CmpInst::ICMP_SGE)
3050       // Always true.
3051       return getTrue(ITy);
3052     if (Pred == CmpInst::ICMP_SLT)
3053       // Always false.
3054       return getFalse(ITy);
3055   } else if (match(LHS, m_SMin(m_Value(A), m_Value(B))) &&
3056              match(RHS, m_SMax(m_Value(C), m_Value(D))) &&
3057              (A == C || A == D || B == C || B == D)) {
3058     // min(x, ?) pred max(x, ?).
3059     if (Pred == CmpInst::ICMP_SLE)
3060       // Always true.
3061       return getTrue(ITy);
3062     if (Pred == CmpInst::ICMP_SGT)
3063       // Always false.
3064       return getFalse(ITy);
3065   } else if (match(LHS, m_UMax(m_Value(A), m_Value(B))) &&
3066              match(RHS, m_UMin(m_Value(C), m_Value(D))) &&
3067              (A == C || A == D || B == C || B == D)) {
3068     // max(x, ?) pred min(x, ?).
3069     if (Pred == CmpInst::ICMP_UGE)
3070       // Always true.
3071       return getTrue(ITy);
3072     if (Pred == CmpInst::ICMP_ULT)
3073       // Always false.
3074       return getFalse(ITy);
3075   } else if (match(LHS, m_UMin(m_Value(A), m_Value(B))) &&
3076              match(RHS, m_UMax(m_Value(C), m_Value(D))) &&
3077              (A == C || A == D || B == C || B == D)) {
3078     // min(x, ?) pred max(x, ?).
3079     if (Pred == CmpInst::ICMP_ULE)
3080       // Always true.
3081       return getTrue(ITy);
3082     if (Pred == CmpInst::ICMP_UGT)
3083       // Always false.
3084       return getFalse(ITy);
3085   }
3086 
3087   return nullptr;
3088 }
3089 
3090 /// Given operands for an ICmpInst, see if we can fold the result.
3091 /// If not, this returns null.
3092 static Value *SimplifyICmpInst(unsigned Predicate, Value *LHS, Value *RHS,
3093                                const SimplifyQuery &Q, unsigned MaxRecurse) {
3094   CmpInst::Predicate Pred = (CmpInst::Predicate)Predicate;
3095   assert(CmpInst::isIntPredicate(Pred) && "Not an integer compare!");
3096 
3097   if (Constant *CLHS = dyn_cast<Constant>(LHS)) {
3098     if (Constant *CRHS = dyn_cast<Constant>(RHS))
3099       return ConstantFoldCompareInstOperands(Pred, CLHS, CRHS, Q.DL, Q.TLI);
3100 
3101     // If we have a constant, make sure it is on the RHS.
3102     std::swap(LHS, RHS);
3103     Pred = CmpInst::getSwappedPredicate(Pred);
3104   }
3105 
3106   Type *ITy = GetCompareTy(LHS); // The return type.
3107 
3108   // icmp X, X -> true/false
3109   // icmp X, undef -> true/false because undef could be X.
3110   if (LHS == RHS || isa<UndefValue>(RHS))
3111     return ConstantInt::get(ITy, CmpInst::isTrueWhenEqual(Pred));
3112 
3113   if (Value *V = simplifyICmpOfBools(Pred, LHS, RHS, Q))
3114     return V;
3115 
3116   if (Value *V = simplifyICmpWithZero(Pred, LHS, RHS, Q))
3117     return V;
3118 
3119   if (Value *V = simplifyICmpWithConstant(Pred, LHS, RHS))
3120     return V;
3121 
3122   // If both operands have range metadata, use the metadata
3123   // to simplify the comparison.
3124   if (isa<Instruction>(RHS) && isa<Instruction>(LHS)) {
3125     auto RHS_Instr = cast<Instruction>(RHS);
3126     auto LHS_Instr = cast<Instruction>(LHS);
3127 
3128     if (RHS_Instr->getMetadata(LLVMContext::MD_range) &&
3129         LHS_Instr->getMetadata(LLVMContext::MD_range)) {
3130       auto RHS_CR = getConstantRangeFromMetadata(
3131           *RHS_Instr->getMetadata(LLVMContext::MD_range));
3132       auto LHS_CR = getConstantRangeFromMetadata(
3133           *LHS_Instr->getMetadata(LLVMContext::MD_range));
3134 
3135       auto Satisfied_CR = ConstantRange::makeSatisfyingICmpRegion(Pred, RHS_CR);
3136       if (Satisfied_CR.contains(LHS_CR))
3137         return ConstantInt::getTrue(RHS->getContext());
3138 
3139       auto InversedSatisfied_CR = ConstantRange::makeSatisfyingICmpRegion(
3140                 CmpInst::getInversePredicate(Pred), RHS_CR);
3141       if (InversedSatisfied_CR.contains(LHS_CR))
3142         return ConstantInt::getFalse(RHS->getContext());
3143     }
3144   }
3145 
3146   // Compare of cast, for example (zext X) != 0 -> X != 0
3147   if (isa<CastInst>(LHS) && (isa<Constant>(RHS) || isa<CastInst>(RHS))) {
3148     Instruction *LI = cast<CastInst>(LHS);
3149     Value *SrcOp = LI->getOperand(0);
3150     Type *SrcTy = SrcOp->getType();
3151     Type *DstTy = LI->getType();
3152 
3153     // Turn icmp (ptrtoint x), (ptrtoint/constant) into a compare of the input
3154     // if the integer type is the same size as the pointer type.
3155     if (MaxRecurse && isa<PtrToIntInst>(LI) &&
3156         Q.DL.getTypeSizeInBits(SrcTy) == DstTy->getPrimitiveSizeInBits()) {
3157       if (Constant *RHSC = dyn_cast<Constant>(RHS)) {
3158         // Transfer the cast to the constant.
3159         if (Value *V = SimplifyICmpInst(Pred, SrcOp,
3160                                         ConstantExpr::getIntToPtr(RHSC, SrcTy),
3161                                         Q, MaxRecurse-1))
3162           return V;
3163       } else if (PtrToIntInst *RI = dyn_cast<PtrToIntInst>(RHS)) {
3164         if (RI->getOperand(0)->getType() == SrcTy)
3165           // Compare without the cast.
3166           if (Value *V = SimplifyICmpInst(Pred, SrcOp, RI->getOperand(0),
3167                                           Q, MaxRecurse-1))
3168             return V;
3169       }
3170     }
3171 
3172     if (isa<ZExtInst>(LHS)) {
3173       // Turn icmp (zext X), (zext Y) into a compare of X and Y if they have the
3174       // same type.
3175       if (ZExtInst *RI = dyn_cast<ZExtInst>(RHS)) {
3176         if (MaxRecurse && SrcTy == RI->getOperand(0)->getType())
3177           // Compare X and Y.  Note that signed predicates become unsigned.
3178           if (Value *V = SimplifyICmpInst(ICmpInst::getUnsignedPredicate(Pred),
3179                                           SrcOp, RI->getOperand(0), Q,
3180                                           MaxRecurse-1))
3181             return V;
3182       }
3183       // Turn icmp (zext X), Cst into a compare of X and Cst if Cst is extended
3184       // too.  If not, then try to deduce the result of the comparison.
3185       else if (ConstantInt *CI = dyn_cast<ConstantInt>(RHS)) {
3186         // Compute the constant that would happen if we truncated to SrcTy then
3187         // reextended to DstTy.
3188         Constant *Trunc = ConstantExpr::getTrunc(CI, SrcTy);
3189         Constant *RExt = ConstantExpr::getCast(CastInst::ZExt, Trunc, DstTy);
3190 
3191         // If the re-extended constant didn't change then this is effectively
3192         // also a case of comparing two zero-extended values.
3193         if (RExt == CI && MaxRecurse)
3194           if (Value *V = SimplifyICmpInst(ICmpInst::getUnsignedPredicate(Pred),
3195                                         SrcOp, Trunc, Q, MaxRecurse-1))
3196             return V;
3197 
3198         // Otherwise the upper bits of LHS are zero while RHS has a non-zero bit
3199         // there.  Use this to work out the result of the comparison.
3200         if (RExt != CI) {
3201           switch (Pred) {
3202           default: llvm_unreachable("Unknown ICmp predicate!");
3203           // LHS <u RHS.
3204           case ICmpInst::ICMP_EQ:
3205           case ICmpInst::ICMP_UGT:
3206           case ICmpInst::ICMP_UGE:
3207             return ConstantInt::getFalse(CI->getContext());
3208 
3209           case ICmpInst::ICMP_NE:
3210           case ICmpInst::ICMP_ULT:
3211           case ICmpInst::ICMP_ULE:
3212             return ConstantInt::getTrue(CI->getContext());
3213 
3214           // LHS is non-negative.  If RHS is negative then LHS >s LHS.  If RHS
3215           // is non-negative then LHS <s RHS.
3216           case ICmpInst::ICMP_SGT:
3217           case ICmpInst::ICMP_SGE:
3218             return CI->getValue().isNegative() ?
3219               ConstantInt::getTrue(CI->getContext()) :
3220               ConstantInt::getFalse(CI->getContext());
3221 
3222           case ICmpInst::ICMP_SLT:
3223           case ICmpInst::ICMP_SLE:
3224             return CI->getValue().isNegative() ?
3225               ConstantInt::getFalse(CI->getContext()) :
3226               ConstantInt::getTrue(CI->getContext());
3227           }
3228         }
3229       }
3230     }
3231 
3232     if (isa<SExtInst>(LHS)) {
3233       // Turn icmp (sext X), (sext Y) into a compare of X and Y if they have the
3234       // same type.
3235       if (SExtInst *RI = dyn_cast<SExtInst>(RHS)) {
3236         if (MaxRecurse && SrcTy == RI->getOperand(0)->getType())
3237           // Compare X and Y.  Note that the predicate does not change.
3238           if (Value *V = SimplifyICmpInst(Pred, SrcOp, RI->getOperand(0),
3239                                           Q, MaxRecurse-1))
3240             return V;
3241       }
3242       // Turn icmp (sext X), Cst into a compare of X and Cst if Cst is extended
3243       // too.  If not, then try to deduce the result of the comparison.
3244       else if (ConstantInt *CI = dyn_cast<ConstantInt>(RHS)) {
3245         // Compute the constant that would happen if we truncated to SrcTy then
3246         // reextended to DstTy.
3247         Constant *Trunc = ConstantExpr::getTrunc(CI, SrcTy);
3248         Constant *RExt = ConstantExpr::getCast(CastInst::SExt, Trunc, DstTy);
3249 
3250         // If the re-extended constant didn't change then this is effectively
3251         // also a case of comparing two sign-extended values.
3252         if (RExt == CI && MaxRecurse)
3253           if (Value *V = SimplifyICmpInst(Pred, SrcOp, Trunc, Q, MaxRecurse-1))
3254             return V;
3255 
3256         // Otherwise the upper bits of LHS are all equal, while RHS has varying
3257         // bits there.  Use this to work out the result of the comparison.
3258         if (RExt != CI) {
3259           switch (Pred) {
3260           default: llvm_unreachable("Unknown ICmp predicate!");
3261           case ICmpInst::ICMP_EQ:
3262             return ConstantInt::getFalse(CI->getContext());
3263           case ICmpInst::ICMP_NE:
3264             return ConstantInt::getTrue(CI->getContext());
3265 
3266           // If RHS is non-negative then LHS <s RHS.  If RHS is negative then
3267           // LHS >s RHS.
3268           case ICmpInst::ICMP_SGT:
3269           case ICmpInst::ICMP_SGE:
3270             return CI->getValue().isNegative() ?
3271               ConstantInt::getTrue(CI->getContext()) :
3272               ConstantInt::getFalse(CI->getContext());
3273           case ICmpInst::ICMP_SLT:
3274           case ICmpInst::ICMP_SLE:
3275             return CI->getValue().isNegative() ?
3276               ConstantInt::getFalse(CI->getContext()) :
3277               ConstantInt::getTrue(CI->getContext());
3278 
3279           // If LHS is non-negative then LHS <u RHS.  If LHS is negative then
3280           // LHS >u RHS.
3281           case ICmpInst::ICMP_UGT:
3282           case ICmpInst::ICMP_UGE:
3283             // Comparison is true iff the LHS <s 0.
3284             if (MaxRecurse)
3285               if (Value *V = SimplifyICmpInst(ICmpInst::ICMP_SLT, SrcOp,
3286                                               Constant::getNullValue(SrcTy),
3287                                               Q, MaxRecurse-1))
3288                 return V;
3289             break;
3290           case ICmpInst::ICMP_ULT:
3291           case ICmpInst::ICMP_ULE:
3292             // Comparison is true iff the LHS >=s 0.
3293             if (MaxRecurse)
3294               if (Value *V = SimplifyICmpInst(ICmpInst::ICMP_SGE, SrcOp,
3295                                               Constant::getNullValue(SrcTy),
3296                                               Q, MaxRecurse-1))
3297                 return V;
3298             break;
3299           }
3300         }
3301       }
3302     }
3303   }
3304 
3305   // icmp eq|ne X, Y -> false|true if X != Y
3306   if (ICmpInst::isEquality(Pred) &&
3307       isKnownNonEqual(LHS, RHS, Q.DL, Q.AC, Q.CxtI, Q.DT)) {
3308     return Pred == ICmpInst::ICMP_NE ? getTrue(ITy) : getFalse(ITy);
3309   }
3310 
3311   if (Value *V = simplifyICmpWithBinOp(Pred, LHS, RHS, Q, MaxRecurse))
3312     return V;
3313 
3314   if (Value *V = simplifyICmpWithMinMax(Pred, LHS, RHS, Q, MaxRecurse))
3315     return V;
3316 
3317   // Simplify comparisons of related pointers using a powerful, recursive
3318   // GEP-walk when we have target data available..
3319   if (LHS->getType()->isPointerTy())
3320     if (auto *C = computePointerICmp(Q.DL, Q.TLI, Q.DT, Pred, Q.AC, Q.CxtI, LHS,
3321                                      RHS))
3322       return C;
3323   if (auto *CLHS = dyn_cast<PtrToIntOperator>(LHS))
3324     if (auto *CRHS = dyn_cast<PtrToIntOperator>(RHS))
3325       if (Q.DL.getTypeSizeInBits(CLHS->getPointerOperandType()) ==
3326               Q.DL.getTypeSizeInBits(CLHS->getType()) &&
3327           Q.DL.getTypeSizeInBits(CRHS->getPointerOperandType()) ==
3328               Q.DL.getTypeSizeInBits(CRHS->getType()))
3329         if (auto *C = computePointerICmp(Q.DL, Q.TLI, Q.DT, Pred, Q.AC, Q.CxtI,
3330                                          CLHS->getPointerOperand(),
3331                                          CRHS->getPointerOperand()))
3332           return C;
3333 
3334   if (GetElementPtrInst *GLHS = dyn_cast<GetElementPtrInst>(LHS)) {
3335     if (GEPOperator *GRHS = dyn_cast<GEPOperator>(RHS)) {
3336       if (GLHS->getPointerOperand() == GRHS->getPointerOperand() &&
3337           GLHS->hasAllConstantIndices() && GRHS->hasAllConstantIndices() &&
3338           (ICmpInst::isEquality(Pred) ||
3339            (GLHS->isInBounds() && GRHS->isInBounds() &&
3340             Pred == ICmpInst::getSignedPredicate(Pred)))) {
3341         // The bases are equal and the indices are constant.  Build a constant
3342         // expression GEP with the same indices and a null base pointer to see
3343         // what constant folding can make out of it.
3344         Constant *Null = Constant::getNullValue(GLHS->getPointerOperandType());
3345         SmallVector<Value *, 4> IndicesLHS(GLHS->idx_begin(), GLHS->idx_end());
3346         Constant *NewLHS = ConstantExpr::getGetElementPtr(
3347             GLHS->getSourceElementType(), Null, IndicesLHS);
3348 
3349         SmallVector<Value *, 4> IndicesRHS(GRHS->idx_begin(), GRHS->idx_end());
3350         Constant *NewRHS = ConstantExpr::getGetElementPtr(
3351             GLHS->getSourceElementType(), Null, IndicesRHS);
3352         return ConstantExpr::getICmp(Pred, NewLHS, NewRHS);
3353       }
3354     }
3355   }
3356 
3357   // If the comparison is with the result of a select instruction, check whether
3358   // comparing with either branch of the select always yields the same value.
3359   if (isa<SelectInst>(LHS) || isa<SelectInst>(RHS))
3360     if (Value *V = ThreadCmpOverSelect(Pred, LHS, RHS, Q, MaxRecurse))
3361       return V;
3362 
3363   // If the comparison is with the result of a phi instruction, check whether
3364   // doing the compare with each incoming phi value yields a common result.
3365   if (isa<PHINode>(LHS) || isa<PHINode>(RHS))
3366     if (Value *V = ThreadCmpOverPHI(Pred, LHS, RHS, Q, MaxRecurse))
3367       return V;
3368 
3369   return nullptr;
3370 }
3371 
3372 Value *llvm::SimplifyICmpInst(unsigned Predicate, Value *LHS, Value *RHS,
3373                               const SimplifyQuery &Q) {
3374   return ::SimplifyICmpInst(Predicate, LHS, RHS, Q, RecursionLimit);
3375 }
3376 
3377 /// Given operands for an FCmpInst, see if we can fold the result.
3378 /// If not, this returns null.
3379 static Value *SimplifyFCmpInst(unsigned Predicate, Value *LHS, Value *RHS,
3380                                FastMathFlags FMF, const SimplifyQuery &Q,
3381                                unsigned MaxRecurse) {
3382   CmpInst::Predicate Pred = (CmpInst::Predicate)Predicate;
3383   assert(CmpInst::isFPPredicate(Pred) && "Not an FP compare!");
3384 
3385   if (Constant *CLHS = dyn_cast<Constant>(LHS)) {
3386     if (Constant *CRHS = dyn_cast<Constant>(RHS))
3387       return ConstantFoldCompareInstOperands(Pred, CLHS, CRHS, Q.DL, Q.TLI);
3388 
3389     // If we have a constant, make sure it is on the RHS.
3390     std::swap(LHS, RHS);
3391     Pred = CmpInst::getSwappedPredicate(Pred);
3392   }
3393 
3394   // Fold trivial predicates.
3395   Type *RetTy = GetCompareTy(LHS);
3396   if (Pred == FCmpInst::FCMP_FALSE)
3397     return getFalse(RetTy);
3398   if (Pred == FCmpInst::FCMP_TRUE)
3399     return getTrue(RetTy);
3400 
3401   // UNO/ORD predicates can be trivially folded if NaNs are ignored.
3402   if (FMF.noNaNs()) {
3403     if (Pred == FCmpInst::FCMP_UNO)
3404       return getFalse(RetTy);
3405     if (Pred == FCmpInst::FCMP_ORD)
3406       return getTrue(RetTy);
3407   }
3408 
3409   // NaN is unordered; NaN is not ordered.
3410   assert((FCmpInst::isOrdered(Pred) || FCmpInst::isUnordered(Pred)) &&
3411          "Comparison must be either ordered or unordered");
3412   if (match(RHS, m_NaN()))
3413     return ConstantInt::get(RetTy, CmpInst::isUnordered(Pred));
3414 
3415   // fcmp pred x, undef  and  fcmp pred undef, x
3416   // fold to true if unordered, false if ordered
3417   if (isa<UndefValue>(LHS) || isa<UndefValue>(RHS)) {
3418     // Choosing NaN for the undef will always make unordered comparison succeed
3419     // and ordered comparison fail.
3420     return ConstantInt::get(RetTy, CmpInst::isUnordered(Pred));
3421   }
3422 
3423   // fcmp x,x -> true/false.  Not all compares are foldable.
3424   if (LHS == RHS) {
3425     if (CmpInst::isTrueWhenEqual(Pred))
3426       return getTrue(RetTy);
3427     if (CmpInst::isFalseWhenEqual(Pred))
3428       return getFalse(RetTy);
3429   }
3430 
3431   // Handle fcmp with constant RHS.
3432   const APFloat *C;
3433   if (match(RHS, m_APFloat(C))) {
3434     // Check whether the constant is an infinity.
3435     if (C->isInfinity()) {
3436       if (C->isNegative()) {
3437         switch (Pred) {
3438         case FCmpInst::FCMP_OLT:
3439           // No value is ordered and less than negative infinity.
3440           return getFalse(RetTy);
3441         case FCmpInst::FCMP_UGE:
3442           // All values are unordered with or at least negative infinity.
3443           return getTrue(RetTy);
3444         default:
3445           break;
3446         }
3447       } else {
3448         switch (Pred) {
3449         case FCmpInst::FCMP_OGT:
3450           // No value is ordered and greater than infinity.
3451           return getFalse(RetTy);
3452         case FCmpInst::FCMP_ULE:
3453           // All values are unordered with and at most infinity.
3454           return getTrue(RetTy);
3455         default:
3456           break;
3457         }
3458       }
3459     }
3460     if (C->isZero()) {
3461       switch (Pred) {
3462       case FCmpInst::FCMP_UGE:
3463         if (CannotBeOrderedLessThanZero(LHS, Q.TLI))
3464           return getTrue(RetTy);
3465         break;
3466       case FCmpInst::FCMP_OLT:
3467         // X < 0
3468         if (CannotBeOrderedLessThanZero(LHS, Q.TLI))
3469           return getFalse(RetTy);
3470         break;
3471       default:
3472         break;
3473       }
3474     } else if (C->isNegative()) {
3475       assert(!C->isNaN() && "Unexpected NaN constant!");
3476       // TODO: We can catch more cases by using a range check rather than
3477       //       relying on CannotBeOrderedLessThanZero.
3478       switch (Pred) {
3479       case FCmpInst::FCMP_UGE:
3480       case FCmpInst::FCMP_UGT:
3481       case FCmpInst::FCMP_UNE:
3482         // (X >= 0) implies (X > C) when (C < 0)
3483         if (CannotBeOrderedLessThanZero(LHS, Q.TLI))
3484           return getTrue(RetTy);
3485         break;
3486       case FCmpInst::FCMP_OEQ:
3487       case FCmpInst::FCMP_OLE:
3488       case FCmpInst::FCMP_OLT:
3489         // (X >= 0) implies !(X < C) when (C < 0)
3490         if (CannotBeOrderedLessThanZero(LHS, Q.TLI))
3491           return getFalse(RetTy);
3492         break;
3493       default:
3494         break;
3495       }
3496     }
3497   }
3498 
3499   // If the comparison is with the result of a select instruction, check whether
3500   // comparing with either branch of the select always yields the same value.
3501   if (isa<SelectInst>(LHS) || isa<SelectInst>(RHS))
3502     if (Value *V = ThreadCmpOverSelect(Pred, LHS, RHS, Q, MaxRecurse))
3503       return V;
3504 
3505   // If the comparison is with the result of a phi instruction, check whether
3506   // doing the compare with each incoming phi value yields a common result.
3507   if (isa<PHINode>(LHS) || isa<PHINode>(RHS))
3508     if (Value *V = ThreadCmpOverPHI(Pred, LHS, RHS, Q, MaxRecurse))
3509       return V;
3510 
3511   return nullptr;
3512 }
3513 
3514 Value *llvm::SimplifyFCmpInst(unsigned Predicate, Value *LHS, Value *RHS,
3515                               FastMathFlags FMF, const SimplifyQuery &Q) {
3516   return ::SimplifyFCmpInst(Predicate, LHS, RHS, FMF, Q, RecursionLimit);
3517 }
3518 
3519 /// See if V simplifies when its operand Op is replaced with RepOp.
3520 static const Value *SimplifyWithOpReplaced(Value *V, Value *Op, Value *RepOp,
3521                                            const SimplifyQuery &Q,
3522                                            unsigned MaxRecurse) {
3523   // Trivial replacement.
3524   if (V == Op)
3525     return RepOp;
3526 
3527   // We cannot replace a constant, and shouldn't even try.
3528   if (isa<Constant>(Op))
3529     return nullptr;
3530 
3531   auto *I = dyn_cast<Instruction>(V);
3532   if (!I)
3533     return nullptr;
3534 
3535   // If this is a binary operator, try to simplify it with the replaced op.
3536   if (auto *B = dyn_cast<BinaryOperator>(I)) {
3537     // Consider:
3538     //   %cmp = icmp eq i32 %x, 2147483647
3539     //   %add = add nsw i32 %x, 1
3540     //   %sel = select i1 %cmp, i32 -2147483648, i32 %add
3541     //
3542     // We can't replace %sel with %add unless we strip away the flags.
3543     if (isa<OverflowingBinaryOperator>(B))
3544       if (B->hasNoSignedWrap() || B->hasNoUnsignedWrap())
3545         return nullptr;
3546     if (isa<PossiblyExactOperator>(B))
3547       if (B->isExact())
3548         return nullptr;
3549 
3550     if (MaxRecurse) {
3551       if (B->getOperand(0) == Op)
3552         return SimplifyBinOp(B->getOpcode(), RepOp, B->getOperand(1), Q,
3553                              MaxRecurse - 1);
3554       if (B->getOperand(1) == Op)
3555         return SimplifyBinOp(B->getOpcode(), B->getOperand(0), RepOp, Q,
3556                              MaxRecurse - 1);
3557     }
3558   }
3559 
3560   // Same for CmpInsts.
3561   if (CmpInst *C = dyn_cast<CmpInst>(I)) {
3562     if (MaxRecurse) {
3563       if (C->getOperand(0) == Op)
3564         return SimplifyCmpInst(C->getPredicate(), RepOp, C->getOperand(1), Q,
3565                                MaxRecurse - 1);
3566       if (C->getOperand(1) == Op)
3567         return SimplifyCmpInst(C->getPredicate(), C->getOperand(0), RepOp, Q,
3568                                MaxRecurse - 1);
3569     }
3570   }
3571 
3572   // Same for GEPs.
3573   if (auto *GEP = dyn_cast<GetElementPtrInst>(I)) {
3574     if (MaxRecurse) {
3575       SmallVector<Value *, 8> NewOps(GEP->getNumOperands());
3576       transform(GEP->operands(), NewOps.begin(),
3577                 [&](Value *V) { return V == Op ? RepOp : V; });
3578       return SimplifyGEPInst(GEP->getSourceElementType(), NewOps, Q,
3579                              MaxRecurse - 1);
3580     }
3581   }
3582 
3583   // TODO: We could hand off more cases to instsimplify here.
3584 
3585   // If all operands are constant after substituting Op for RepOp then we can
3586   // constant fold the instruction.
3587   if (Constant *CRepOp = dyn_cast<Constant>(RepOp)) {
3588     // Build a list of all constant operands.
3589     SmallVector<Constant *, 8> ConstOps;
3590     for (unsigned i = 0, e = I->getNumOperands(); i != e; ++i) {
3591       if (I->getOperand(i) == Op)
3592         ConstOps.push_back(CRepOp);
3593       else if (Constant *COp = dyn_cast<Constant>(I->getOperand(i)))
3594         ConstOps.push_back(COp);
3595       else
3596         break;
3597     }
3598 
3599     // All operands were constants, fold it.
3600     if (ConstOps.size() == I->getNumOperands()) {
3601       if (CmpInst *C = dyn_cast<CmpInst>(I))
3602         return ConstantFoldCompareInstOperands(C->getPredicate(), ConstOps[0],
3603                                                ConstOps[1], Q.DL, Q.TLI);
3604 
3605       if (LoadInst *LI = dyn_cast<LoadInst>(I))
3606         if (!LI->isVolatile())
3607           return ConstantFoldLoadFromConstPtr(ConstOps[0], LI->getType(), Q.DL);
3608 
3609       return ConstantFoldInstOperands(I, ConstOps, Q.DL, Q.TLI);
3610     }
3611   }
3612 
3613   return nullptr;
3614 }
3615 
3616 /// Try to simplify a select instruction when its condition operand is an
3617 /// integer comparison where one operand of the compare is a constant.
3618 static Value *simplifySelectBitTest(Value *TrueVal, Value *FalseVal, Value *X,
3619                                     const APInt *Y, bool TrueWhenUnset) {
3620   const APInt *C;
3621 
3622   // (X & Y) == 0 ? X & ~Y : X  --> X
3623   // (X & Y) != 0 ? X & ~Y : X  --> X & ~Y
3624   if (FalseVal == X && match(TrueVal, m_And(m_Specific(X), m_APInt(C))) &&
3625       *Y == ~*C)
3626     return TrueWhenUnset ? FalseVal : TrueVal;
3627 
3628   // (X & Y) == 0 ? X : X & ~Y  --> X & ~Y
3629   // (X & Y) != 0 ? X : X & ~Y  --> X
3630   if (TrueVal == X && match(FalseVal, m_And(m_Specific(X), m_APInt(C))) &&
3631       *Y == ~*C)
3632     return TrueWhenUnset ? FalseVal : TrueVal;
3633 
3634   if (Y->isPowerOf2()) {
3635     // (X & Y) == 0 ? X | Y : X  --> X | Y
3636     // (X & Y) != 0 ? X | Y : X  --> X
3637     if (FalseVal == X && match(TrueVal, m_Or(m_Specific(X), m_APInt(C))) &&
3638         *Y == *C)
3639       return TrueWhenUnset ? TrueVal : FalseVal;
3640 
3641     // (X & Y) == 0 ? X : X | Y  --> X
3642     // (X & Y) != 0 ? X : X | Y  --> X | Y
3643     if (TrueVal == X && match(FalseVal, m_Or(m_Specific(X), m_APInt(C))) &&
3644         *Y == *C)
3645       return TrueWhenUnset ? TrueVal : FalseVal;
3646   }
3647 
3648   return nullptr;
3649 }
3650 
3651 /// An alternative way to test if a bit is set or not uses sgt/slt instead of
3652 /// eq/ne.
3653 static Value *simplifySelectWithFakeICmpEq(Value *CmpLHS, Value *CmpRHS,
3654                                            ICmpInst::Predicate Pred,
3655                                            Value *TrueVal, Value *FalseVal) {
3656   Value *X;
3657   APInt Mask;
3658   if (!decomposeBitTestICmp(CmpLHS, CmpRHS, Pred, X, Mask))
3659     return nullptr;
3660 
3661   return simplifySelectBitTest(TrueVal, FalseVal, X, &Mask,
3662                                Pred == ICmpInst::ICMP_EQ);
3663 }
3664 
3665 /// Try to simplify a select instruction when its condition operand is an
3666 /// integer comparison.
3667 static Value *simplifySelectWithICmpCond(Value *CondVal, Value *TrueVal,
3668                                          Value *FalseVal, const SimplifyQuery &Q,
3669                                          unsigned MaxRecurse) {
3670   ICmpInst::Predicate Pred;
3671   Value *CmpLHS, *CmpRHS;
3672   if (!match(CondVal, m_ICmp(Pred, m_Value(CmpLHS), m_Value(CmpRHS))))
3673     return nullptr;
3674 
3675   if (ICmpInst::isEquality(Pred) && match(CmpRHS, m_Zero())) {
3676     Value *X;
3677     const APInt *Y;
3678     if (match(CmpLHS, m_And(m_Value(X), m_APInt(Y))))
3679       if (Value *V = simplifySelectBitTest(TrueVal, FalseVal, X, Y,
3680                                            Pred == ICmpInst::ICMP_EQ))
3681         return V;
3682   }
3683 
3684   // Check for other compares that behave like bit test.
3685   if (Value *V = simplifySelectWithFakeICmpEq(CmpLHS, CmpRHS, Pred,
3686                                               TrueVal, FalseVal))
3687     return V;
3688 
3689   // If we have an equality comparison, then we know the value in one of the
3690   // arms of the select. See if substituting this value into the arm and
3691   // simplifying the result yields the same value as the other arm.
3692   if (Pred == ICmpInst::ICMP_EQ) {
3693     if (SimplifyWithOpReplaced(FalseVal, CmpLHS, CmpRHS, Q, MaxRecurse) ==
3694             TrueVal ||
3695         SimplifyWithOpReplaced(FalseVal, CmpRHS, CmpLHS, Q, MaxRecurse) ==
3696             TrueVal)
3697       return FalseVal;
3698     if (SimplifyWithOpReplaced(TrueVal, CmpLHS, CmpRHS, Q, MaxRecurse) ==
3699             FalseVal ||
3700         SimplifyWithOpReplaced(TrueVal, CmpRHS, CmpLHS, Q, MaxRecurse) ==
3701             FalseVal)
3702       return FalseVal;
3703   } else if (Pred == ICmpInst::ICMP_NE) {
3704     if (SimplifyWithOpReplaced(TrueVal, CmpLHS, CmpRHS, Q, MaxRecurse) ==
3705             FalseVal ||
3706         SimplifyWithOpReplaced(TrueVal, CmpRHS, CmpLHS, Q, MaxRecurse) ==
3707             FalseVal)
3708       return TrueVal;
3709     if (SimplifyWithOpReplaced(FalseVal, CmpLHS, CmpRHS, Q, MaxRecurse) ==
3710             TrueVal ||
3711         SimplifyWithOpReplaced(FalseVal, CmpRHS, CmpLHS, Q, MaxRecurse) ==
3712             TrueVal)
3713       return TrueVal;
3714   }
3715 
3716   return nullptr;
3717 }
3718 
3719 /// Given operands for a SelectInst, see if we can fold the result.
3720 /// If not, this returns null.
3721 static Value *SimplifySelectInst(Value *Cond, Value *TrueVal, Value *FalseVal,
3722                                  const SimplifyQuery &Q, unsigned MaxRecurse) {
3723   if (auto *CondC = dyn_cast<Constant>(Cond)) {
3724     if (auto *TrueC = dyn_cast<Constant>(TrueVal))
3725       if (auto *FalseC = dyn_cast<Constant>(FalseVal))
3726         return ConstantFoldSelectInstruction(CondC, TrueC, FalseC);
3727 
3728     // select undef, X, Y -> X or Y
3729     if (isa<UndefValue>(CondC))
3730       return isa<Constant>(FalseVal) ? FalseVal : TrueVal;
3731 
3732     // TODO: Vector constants with undef elements don't simplify.
3733 
3734     // select true, X, Y  -> X
3735     if (CondC->isAllOnesValue())
3736       return TrueVal;
3737     // select false, X, Y -> Y
3738     if (CondC->isNullValue())
3739       return FalseVal;
3740   }
3741 
3742   // select ?, X, X -> X
3743   if (TrueVal == FalseVal)
3744     return TrueVal;
3745 
3746   if (isa<UndefValue>(TrueVal))   // select ?, undef, X -> X
3747     return FalseVal;
3748   if (isa<UndefValue>(FalseVal))   // select ?, X, undef -> X
3749     return TrueVal;
3750 
3751   if (Value *V =
3752           simplifySelectWithICmpCond(Cond, TrueVal, FalseVal, Q, MaxRecurse))
3753     return V;
3754 
3755   return nullptr;
3756 }
3757 
3758 Value *llvm::SimplifySelectInst(Value *Cond, Value *TrueVal, Value *FalseVal,
3759                                 const SimplifyQuery &Q) {
3760   return ::SimplifySelectInst(Cond, TrueVal, FalseVal, Q, RecursionLimit);
3761 }
3762 
3763 /// Given operands for an GetElementPtrInst, see if we can fold the result.
3764 /// If not, this returns null.
3765 static Value *SimplifyGEPInst(Type *SrcTy, ArrayRef<Value *> Ops,
3766                               const SimplifyQuery &Q, unsigned) {
3767   // The type of the GEP pointer operand.
3768   unsigned AS =
3769       cast<PointerType>(Ops[0]->getType()->getScalarType())->getAddressSpace();
3770 
3771   // getelementptr P -> P.
3772   if (Ops.size() == 1)
3773     return Ops[0];
3774 
3775   // Compute the (pointer) type returned by the GEP instruction.
3776   Type *LastType = GetElementPtrInst::getIndexedType(SrcTy, Ops.slice(1));
3777   Type *GEPTy = PointerType::get(LastType, AS);
3778   if (VectorType *VT = dyn_cast<VectorType>(Ops[0]->getType()))
3779     GEPTy = VectorType::get(GEPTy, VT->getNumElements());
3780   else if (VectorType *VT = dyn_cast<VectorType>(Ops[1]->getType()))
3781     GEPTy = VectorType::get(GEPTy, VT->getNumElements());
3782 
3783   if (isa<UndefValue>(Ops[0]))
3784     return UndefValue::get(GEPTy);
3785 
3786   if (Ops.size() == 2) {
3787     // getelementptr P, 0 -> P.
3788     if (match(Ops[1], m_Zero()) && Ops[0]->getType() == GEPTy)
3789       return Ops[0];
3790 
3791     Type *Ty = SrcTy;
3792     if (Ty->isSized()) {
3793       Value *P;
3794       uint64_t C;
3795       uint64_t TyAllocSize = Q.DL.getTypeAllocSize(Ty);
3796       // getelementptr P, N -> P if P points to a type of zero size.
3797       if (TyAllocSize == 0 && Ops[0]->getType() == GEPTy)
3798         return Ops[0];
3799 
3800       // The following transforms are only safe if the ptrtoint cast
3801       // doesn't truncate the pointers.
3802       if (Ops[1]->getType()->getScalarSizeInBits() ==
3803           Q.DL.getIndexSizeInBits(AS)) {
3804         auto PtrToIntOrZero = [GEPTy](Value *P) -> Value * {
3805           if (match(P, m_Zero()))
3806             return Constant::getNullValue(GEPTy);
3807           Value *Temp;
3808           if (match(P, m_PtrToInt(m_Value(Temp))))
3809             if (Temp->getType() == GEPTy)
3810               return Temp;
3811           return nullptr;
3812         };
3813 
3814         // getelementptr V, (sub P, V) -> P if P points to a type of size 1.
3815         if (TyAllocSize == 1 &&
3816             match(Ops[1], m_Sub(m_Value(P), m_PtrToInt(m_Specific(Ops[0])))))
3817           if (Value *R = PtrToIntOrZero(P))
3818             return R;
3819 
3820         // getelementptr V, (ashr (sub P, V), C) -> Q
3821         // if P points to a type of size 1 << C.
3822         if (match(Ops[1],
3823                   m_AShr(m_Sub(m_Value(P), m_PtrToInt(m_Specific(Ops[0]))),
3824                          m_ConstantInt(C))) &&
3825             TyAllocSize == 1ULL << C)
3826           if (Value *R = PtrToIntOrZero(P))
3827             return R;
3828 
3829         // getelementptr V, (sdiv (sub P, V), C) -> Q
3830         // if P points to a type of size C.
3831         if (match(Ops[1],
3832                   m_SDiv(m_Sub(m_Value(P), m_PtrToInt(m_Specific(Ops[0]))),
3833                          m_SpecificInt(TyAllocSize))))
3834           if (Value *R = PtrToIntOrZero(P))
3835             return R;
3836       }
3837     }
3838   }
3839 
3840   if (Q.DL.getTypeAllocSize(LastType) == 1 &&
3841       all_of(Ops.slice(1).drop_back(1),
3842              [](Value *Idx) { return match(Idx, m_Zero()); })) {
3843     unsigned IdxWidth =
3844         Q.DL.getIndexSizeInBits(Ops[0]->getType()->getPointerAddressSpace());
3845     if (Q.DL.getTypeSizeInBits(Ops.back()->getType()) == IdxWidth) {
3846       APInt BasePtrOffset(IdxWidth, 0);
3847       Value *StrippedBasePtr =
3848           Ops[0]->stripAndAccumulateInBoundsConstantOffsets(Q.DL,
3849                                                             BasePtrOffset);
3850 
3851       // gep (gep V, C), (sub 0, V) -> C
3852       if (match(Ops.back(),
3853                 m_Sub(m_Zero(), m_PtrToInt(m_Specific(StrippedBasePtr))))) {
3854         auto *CI = ConstantInt::get(GEPTy->getContext(), BasePtrOffset);
3855         return ConstantExpr::getIntToPtr(CI, GEPTy);
3856       }
3857       // gep (gep V, C), (xor V, -1) -> C-1
3858       if (match(Ops.back(),
3859                 m_Xor(m_PtrToInt(m_Specific(StrippedBasePtr)), m_AllOnes()))) {
3860         auto *CI = ConstantInt::get(GEPTy->getContext(), BasePtrOffset - 1);
3861         return ConstantExpr::getIntToPtr(CI, GEPTy);
3862       }
3863     }
3864   }
3865 
3866   // Check to see if this is constant foldable.
3867   if (!all_of(Ops, [](Value *V) { return isa<Constant>(V); }))
3868     return nullptr;
3869 
3870   auto *CE = ConstantExpr::getGetElementPtr(SrcTy, cast<Constant>(Ops[0]),
3871                                             Ops.slice(1));
3872   if (auto *CEFolded = ConstantFoldConstant(CE, Q.DL))
3873     return CEFolded;
3874   return CE;
3875 }
3876 
3877 Value *llvm::SimplifyGEPInst(Type *SrcTy, ArrayRef<Value *> Ops,
3878                              const SimplifyQuery &Q) {
3879   return ::SimplifyGEPInst(SrcTy, Ops, Q, RecursionLimit);
3880 }
3881 
3882 /// Given operands for an InsertValueInst, see if we can fold the result.
3883 /// If not, this returns null.
3884 static Value *SimplifyInsertValueInst(Value *Agg, Value *Val,
3885                                       ArrayRef<unsigned> Idxs, const SimplifyQuery &Q,
3886                                       unsigned) {
3887   if (Constant *CAgg = dyn_cast<Constant>(Agg))
3888     if (Constant *CVal = dyn_cast<Constant>(Val))
3889       return ConstantFoldInsertValueInstruction(CAgg, CVal, Idxs);
3890 
3891   // insertvalue x, undef, n -> x
3892   if (match(Val, m_Undef()))
3893     return Agg;
3894 
3895   // insertvalue x, (extractvalue y, n), n
3896   if (ExtractValueInst *EV = dyn_cast<ExtractValueInst>(Val))
3897     if (EV->getAggregateOperand()->getType() == Agg->getType() &&
3898         EV->getIndices() == Idxs) {
3899       // insertvalue undef, (extractvalue y, n), n -> y
3900       if (match(Agg, m_Undef()))
3901         return EV->getAggregateOperand();
3902 
3903       // insertvalue y, (extractvalue y, n), n -> y
3904       if (Agg == EV->getAggregateOperand())
3905         return Agg;
3906     }
3907 
3908   return nullptr;
3909 }
3910 
3911 Value *llvm::SimplifyInsertValueInst(Value *Agg, Value *Val,
3912                                      ArrayRef<unsigned> Idxs,
3913                                      const SimplifyQuery &Q) {
3914   return ::SimplifyInsertValueInst(Agg, Val, Idxs, Q, RecursionLimit);
3915 }
3916 
3917 Value *llvm::SimplifyInsertElementInst(Value *Vec, Value *Val, Value *Idx,
3918                                        const SimplifyQuery &Q) {
3919   // Try to constant fold.
3920   auto *VecC = dyn_cast<Constant>(Vec);
3921   auto *ValC = dyn_cast<Constant>(Val);
3922   auto *IdxC = dyn_cast<Constant>(Idx);
3923   if (VecC && ValC && IdxC)
3924     return ConstantFoldInsertElementInstruction(VecC, ValC, IdxC);
3925 
3926   // Fold into undef if index is out of bounds.
3927   if (auto *CI = dyn_cast<ConstantInt>(Idx)) {
3928     uint64_t NumElements = cast<VectorType>(Vec->getType())->getNumElements();
3929     if (CI->uge(NumElements))
3930       return UndefValue::get(Vec->getType());
3931   }
3932 
3933   // If index is undef, it might be out of bounds (see above case)
3934   if (isa<UndefValue>(Idx))
3935     return UndefValue::get(Vec->getType());
3936 
3937   return nullptr;
3938 }
3939 
3940 /// Given operands for an ExtractValueInst, see if we can fold the result.
3941 /// If not, this returns null.
3942 static Value *SimplifyExtractValueInst(Value *Agg, ArrayRef<unsigned> Idxs,
3943                                        const SimplifyQuery &, unsigned) {
3944   if (auto *CAgg = dyn_cast<Constant>(Agg))
3945     return ConstantFoldExtractValueInstruction(CAgg, Idxs);
3946 
3947   // extractvalue x, (insertvalue y, elt, n), n -> elt
3948   unsigned NumIdxs = Idxs.size();
3949   for (auto *IVI = dyn_cast<InsertValueInst>(Agg); IVI != nullptr;
3950        IVI = dyn_cast<InsertValueInst>(IVI->getAggregateOperand())) {
3951     ArrayRef<unsigned> InsertValueIdxs = IVI->getIndices();
3952     unsigned NumInsertValueIdxs = InsertValueIdxs.size();
3953     unsigned NumCommonIdxs = std::min(NumInsertValueIdxs, NumIdxs);
3954     if (InsertValueIdxs.slice(0, NumCommonIdxs) ==
3955         Idxs.slice(0, NumCommonIdxs)) {
3956       if (NumIdxs == NumInsertValueIdxs)
3957         return IVI->getInsertedValueOperand();
3958       break;
3959     }
3960   }
3961 
3962   return nullptr;
3963 }
3964 
3965 Value *llvm::SimplifyExtractValueInst(Value *Agg, ArrayRef<unsigned> Idxs,
3966                                       const SimplifyQuery &Q) {
3967   return ::SimplifyExtractValueInst(Agg, Idxs, Q, RecursionLimit);
3968 }
3969 
3970 /// Given operands for an ExtractElementInst, see if we can fold the result.
3971 /// If not, this returns null.
3972 static Value *SimplifyExtractElementInst(Value *Vec, Value *Idx, const SimplifyQuery &,
3973                                          unsigned) {
3974   if (auto *CVec = dyn_cast<Constant>(Vec)) {
3975     if (auto *CIdx = dyn_cast<Constant>(Idx))
3976       return ConstantFoldExtractElementInstruction(CVec, CIdx);
3977 
3978     // The index is not relevant if our vector is a splat.
3979     if (auto *Splat = CVec->getSplatValue())
3980       return Splat;
3981 
3982     if (isa<UndefValue>(Vec))
3983       return UndefValue::get(Vec->getType()->getVectorElementType());
3984   }
3985 
3986   // If extracting a specified index from the vector, see if we can recursively
3987   // find a previously computed scalar that was inserted into the vector.
3988   if (auto *IdxC = dyn_cast<ConstantInt>(Idx)) {
3989     if (IdxC->getValue().uge(Vec->getType()->getVectorNumElements()))
3990       // definitely out of bounds, thus undefined result
3991       return UndefValue::get(Vec->getType()->getVectorElementType());
3992     if (Value *Elt = findScalarElement(Vec, IdxC->getZExtValue()))
3993       return Elt;
3994   }
3995 
3996   // An undef extract index can be arbitrarily chosen to be an out-of-range
3997   // index value, which would result in the instruction being undef.
3998   if (isa<UndefValue>(Idx))
3999     return UndefValue::get(Vec->getType()->getVectorElementType());
4000 
4001   return nullptr;
4002 }
4003 
4004 Value *llvm::SimplifyExtractElementInst(Value *Vec, Value *Idx,
4005                                         const SimplifyQuery &Q) {
4006   return ::SimplifyExtractElementInst(Vec, Idx, Q, RecursionLimit);
4007 }
4008 
4009 /// See if we can fold the given phi. If not, returns null.
4010 static Value *SimplifyPHINode(PHINode *PN, const SimplifyQuery &Q) {
4011   // If all of the PHI's incoming values are the same then replace the PHI node
4012   // with the common value.
4013   Value *CommonValue = nullptr;
4014   bool HasUndefInput = false;
4015   for (Value *Incoming : PN->incoming_values()) {
4016     // If the incoming value is the phi node itself, it can safely be skipped.
4017     if (Incoming == PN) continue;
4018     if (isa<UndefValue>(Incoming)) {
4019       // Remember that we saw an undef value, but otherwise ignore them.
4020       HasUndefInput = true;
4021       continue;
4022     }
4023     if (CommonValue && Incoming != CommonValue)
4024       return nullptr;  // Not the same, bail out.
4025     CommonValue = Incoming;
4026   }
4027 
4028   // If CommonValue is null then all of the incoming values were either undef or
4029   // equal to the phi node itself.
4030   if (!CommonValue)
4031     return UndefValue::get(PN->getType());
4032 
4033   // If we have a PHI node like phi(X, undef, X), where X is defined by some
4034   // instruction, we cannot return X as the result of the PHI node unless it
4035   // dominates the PHI block.
4036   if (HasUndefInput)
4037     return valueDominatesPHI(CommonValue, PN, Q.DT) ? CommonValue : nullptr;
4038 
4039   return CommonValue;
4040 }
4041 
4042 static Value *SimplifyCastInst(unsigned CastOpc, Value *Op,
4043                                Type *Ty, const SimplifyQuery &Q, unsigned MaxRecurse) {
4044   if (auto *C = dyn_cast<Constant>(Op))
4045     return ConstantFoldCastOperand(CastOpc, C, Ty, Q.DL);
4046 
4047   if (auto *CI = dyn_cast<CastInst>(Op)) {
4048     auto *Src = CI->getOperand(0);
4049     Type *SrcTy = Src->getType();
4050     Type *MidTy = CI->getType();
4051     Type *DstTy = Ty;
4052     if (Src->getType() == Ty) {
4053       auto FirstOp = static_cast<Instruction::CastOps>(CI->getOpcode());
4054       auto SecondOp = static_cast<Instruction::CastOps>(CastOpc);
4055       Type *SrcIntPtrTy =
4056           SrcTy->isPtrOrPtrVectorTy() ? Q.DL.getIntPtrType(SrcTy) : nullptr;
4057       Type *MidIntPtrTy =
4058           MidTy->isPtrOrPtrVectorTy() ? Q.DL.getIntPtrType(MidTy) : nullptr;
4059       Type *DstIntPtrTy =
4060           DstTy->isPtrOrPtrVectorTy() ? Q.DL.getIntPtrType(DstTy) : nullptr;
4061       if (CastInst::isEliminableCastPair(FirstOp, SecondOp, SrcTy, MidTy, DstTy,
4062                                          SrcIntPtrTy, MidIntPtrTy,
4063                                          DstIntPtrTy) == Instruction::BitCast)
4064         return Src;
4065     }
4066   }
4067 
4068   // bitcast x -> x
4069   if (CastOpc == Instruction::BitCast)
4070     if (Op->getType() == Ty)
4071       return Op;
4072 
4073   return nullptr;
4074 }
4075 
4076 Value *llvm::SimplifyCastInst(unsigned CastOpc, Value *Op, Type *Ty,
4077                               const SimplifyQuery &Q) {
4078   return ::SimplifyCastInst(CastOpc, Op, Ty, Q, RecursionLimit);
4079 }
4080 
4081 /// For the given destination element of a shuffle, peek through shuffles to
4082 /// match a root vector source operand that contains that element in the same
4083 /// vector lane (ie, the same mask index), so we can eliminate the shuffle(s).
4084 static Value *foldIdentityShuffles(int DestElt, Value *Op0, Value *Op1,
4085                                    int MaskVal, Value *RootVec,
4086                                    unsigned MaxRecurse) {
4087   if (!MaxRecurse--)
4088     return nullptr;
4089 
4090   // Bail out if any mask value is undefined. That kind of shuffle may be
4091   // simplified further based on demanded bits or other folds.
4092   if (MaskVal == -1)
4093     return nullptr;
4094 
4095   // The mask value chooses which source operand we need to look at next.
4096   int InVecNumElts = Op0->getType()->getVectorNumElements();
4097   int RootElt = MaskVal;
4098   Value *SourceOp = Op0;
4099   if (MaskVal >= InVecNumElts) {
4100     RootElt = MaskVal - InVecNumElts;
4101     SourceOp = Op1;
4102   }
4103 
4104   // If the source operand is a shuffle itself, look through it to find the
4105   // matching root vector.
4106   if (auto *SourceShuf = dyn_cast<ShuffleVectorInst>(SourceOp)) {
4107     return foldIdentityShuffles(
4108         DestElt, SourceShuf->getOperand(0), SourceShuf->getOperand(1),
4109         SourceShuf->getMaskValue(RootElt), RootVec, MaxRecurse);
4110   }
4111 
4112   // TODO: Look through bitcasts? What if the bitcast changes the vector element
4113   // size?
4114 
4115   // The source operand is not a shuffle. Initialize the root vector value for
4116   // this shuffle if that has not been done yet.
4117   if (!RootVec)
4118     RootVec = SourceOp;
4119 
4120   // Give up as soon as a source operand does not match the existing root value.
4121   if (RootVec != SourceOp)
4122     return nullptr;
4123 
4124   // The element must be coming from the same lane in the source vector
4125   // (although it may have crossed lanes in intermediate shuffles).
4126   if (RootElt != DestElt)
4127     return nullptr;
4128 
4129   return RootVec;
4130 }
4131 
4132 static Value *SimplifyShuffleVectorInst(Value *Op0, Value *Op1, Constant *Mask,
4133                                         Type *RetTy, const SimplifyQuery &Q,
4134                                         unsigned MaxRecurse) {
4135   if (isa<UndefValue>(Mask))
4136     return UndefValue::get(RetTy);
4137 
4138   Type *InVecTy = Op0->getType();
4139   unsigned MaskNumElts = Mask->getType()->getVectorNumElements();
4140   unsigned InVecNumElts = InVecTy->getVectorNumElements();
4141 
4142   SmallVector<int, 32> Indices;
4143   ShuffleVectorInst::getShuffleMask(Mask, Indices);
4144   assert(MaskNumElts == Indices.size() &&
4145          "Size of Indices not same as number of mask elements?");
4146 
4147   // Canonicalization: If mask does not select elements from an input vector,
4148   // replace that input vector with undef.
4149   bool MaskSelects0 = false, MaskSelects1 = false;
4150   for (unsigned i = 0; i != MaskNumElts; ++i) {
4151     if (Indices[i] == -1)
4152       continue;
4153     if ((unsigned)Indices[i] < InVecNumElts)
4154       MaskSelects0 = true;
4155     else
4156       MaskSelects1 = true;
4157   }
4158   if (!MaskSelects0)
4159     Op0 = UndefValue::get(InVecTy);
4160   if (!MaskSelects1)
4161     Op1 = UndefValue::get(InVecTy);
4162 
4163   auto *Op0Const = dyn_cast<Constant>(Op0);
4164   auto *Op1Const = dyn_cast<Constant>(Op1);
4165 
4166   // If all operands are constant, constant fold the shuffle.
4167   if (Op0Const && Op1Const)
4168     return ConstantFoldShuffleVectorInstruction(Op0Const, Op1Const, Mask);
4169 
4170   // Canonicalization: if only one input vector is constant, it shall be the
4171   // second one.
4172   if (Op0Const && !Op1Const) {
4173     std::swap(Op0, Op1);
4174     ShuffleVectorInst::commuteShuffleMask(Indices, InVecNumElts);
4175   }
4176 
4177   // A shuffle of a splat is always the splat itself. Legal if the shuffle's
4178   // value type is same as the input vectors' type.
4179   if (auto *OpShuf = dyn_cast<ShuffleVectorInst>(Op0))
4180     if (isa<UndefValue>(Op1) && RetTy == InVecTy &&
4181         OpShuf->getMask()->getSplatValue())
4182       return Op0;
4183 
4184   // Don't fold a shuffle with undef mask elements. This may get folded in a
4185   // better way using demanded bits or other analysis.
4186   // TODO: Should we allow this?
4187   if (find(Indices, -1) != Indices.end())
4188     return nullptr;
4189 
4190   // Check if every element of this shuffle can be mapped back to the
4191   // corresponding element of a single root vector. If so, we don't need this
4192   // shuffle. This handles simple identity shuffles as well as chains of
4193   // shuffles that may widen/narrow and/or move elements across lanes and back.
4194   Value *RootVec = nullptr;
4195   for (unsigned i = 0; i != MaskNumElts; ++i) {
4196     // Note that recursion is limited for each vector element, so if any element
4197     // exceeds the limit, this will fail to simplify.
4198     RootVec =
4199         foldIdentityShuffles(i, Op0, Op1, Indices[i], RootVec, MaxRecurse);
4200 
4201     // We can't replace a widening/narrowing shuffle with one of its operands.
4202     if (!RootVec || RootVec->getType() != RetTy)
4203       return nullptr;
4204   }
4205   return RootVec;
4206 }
4207 
4208 /// Given operands for a ShuffleVectorInst, fold the result or return null.
4209 Value *llvm::SimplifyShuffleVectorInst(Value *Op0, Value *Op1, Constant *Mask,
4210                                        Type *RetTy, const SimplifyQuery &Q) {
4211   return ::SimplifyShuffleVectorInst(Op0, Op1, Mask, RetTy, Q, RecursionLimit);
4212 }
4213 
4214 static Constant *propagateNaN(Constant *In) {
4215   // If the input is a vector with undef elements, just return a default NaN.
4216   if (!In->isNaN())
4217     return ConstantFP::getNaN(In->getType());
4218 
4219   // Propagate the existing NaN constant when possible.
4220   // TODO: Should we quiet a signaling NaN?
4221   return In;
4222 }
4223 
4224 static Constant *simplifyFPBinop(Value *Op0, Value *Op1) {
4225   if (isa<UndefValue>(Op0) || isa<UndefValue>(Op1))
4226     return ConstantFP::getNaN(Op0->getType());
4227 
4228   if (match(Op0, m_NaN()))
4229     return propagateNaN(cast<Constant>(Op0));
4230   if (match(Op1, m_NaN()))
4231     return propagateNaN(cast<Constant>(Op1));
4232 
4233   return nullptr;
4234 }
4235 
4236 /// Given operands for an FAdd, see if we can fold the result.  If not, this
4237 /// returns null.
4238 static Value *SimplifyFAddInst(Value *Op0, Value *Op1, FastMathFlags FMF,
4239                                const SimplifyQuery &Q, unsigned MaxRecurse) {
4240   if (Constant *C = foldOrCommuteConstant(Instruction::FAdd, Op0, Op1, Q))
4241     return C;
4242 
4243   if (Constant *C = simplifyFPBinop(Op0, Op1))
4244     return C;
4245 
4246   // fadd X, -0 ==> X
4247   if (match(Op1, m_NegZeroFP()))
4248     return Op0;
4249 
4250   // fadd X, 0 ==> X, when we know X is not -0
4251   if (match(Op1, m_PosZeroFP()) &&
4252       (FMF.noSignedZeros() || CannotBeNegativeZero(Op0, Q.TLI)))
4253     return Op0;
4254 
4255   // With nnan: (+/-0.0 - X) + X --> 0.0 (and commuted variant)
4256   // We don't have to explicitly exclude infinities (ninf): INF + -INF == NaN.
4257   // Negative zeros are allowed because we always end up with positive zero:
4258   // X = -0.0: (-0.0 - (-0.0)) + (-0.0) == ( 0.0) + (-0.0) == 0.0
4259   // X = -0.0: ( 0.0 - (-0.0)) + (-0.0) == ( 0.0) + (-0.0) == 0.0
4260   // X =  0.0: (-0.0 - ( 0.0)) + ( 0.0) == (-0.0) + ( 0.0) == 0.0
4261   // X =  0.0: ( 0.0 - ( 0.0)) + ( 0.0) == ( 0.0) + ( 0.0) == 0.0
4262   if (FMF.noNaNs() && (match(Op0, m_FSub(m_AnyZeroFP(), m_Specific(Op1))) ||
4263                        match(Op1, m_FSub(m_AnyZeroFP(), m_Specific(Op0)))))
4264     return ConstantFP::getNullValue(Op0->getType());
4265 
4266   return nullptr;
4267 }
4268 
4269 /// Given operands for an FSub, see if we can fold the result.  If not, this
4270 /// returns null.
4271 static Value *SimplifyFSubInst(Value *Op0, Value *Op1, FastMathFlags FMF,
4272                                const SimplifyQuery &Q, unsigned MaxRecurse) {
4273   if (Constant *C = foldOrCommuteConstant(Instruction::FSub, Op0, Op1, Q))
4274     return C;
4275 
4276   if (Constant *C = simplifyFPBinop(Op0, Op1))
4277     return C;
4278 
4279   // fsub X, +0 ==> X
4280   if (match(Op1, m_PosZeroFP()))
4281     return Op0;
4282 
4283   // fsub X, -0 ==> X, when we know X is not -0
4284   if (match(Op1, m_NegZeroFP()) &&
4285       (FMF.noSignedZeros() || CannotBeNegativeZero(Op0, Q.TLI)))
4286     return Op0;
4287 
4288   // fsub -0.0, (fsub -0.0, X) ==> X
4289   Value *X;
4290   if (match(Op0, m_NegZeroFP()) &&
4291       match(Op1, m_FSub(m_NegZeroFP(), m_Value(X))))
4292     return X;
4293 
4294   // fsub 0.0, (fsub 0.0, X) ==> X if signed zeros are ignored.
4295   if (FMF.noSignedZeros() && match(Op0, m_AnyZeroFP()) &&
4296       match(Op1, m_FSub(m_AnyZeroFP(), m_Value(X))))
4297     return X;
4298 
4299   // fsub nnan x, x ==> 0.0
4300   if (FMF.noNaNs() && Op0 == Op1)
4301     return Constant::getNullValue(Op0->getType());
4302 
4303   return nullptr;
4304 }
4305 
4306 /// Given the operands for an FMul, see if we can fold the result
4307 static Value *SimplifyFMulInst(Value *Op0, Value *Op1, FastMathFlags FMF,
4308                                const SimplifyQuery &Q, unsigned MaxRecurse) {
4309   if (Constant *C = foldOrCommuteConstant(Instruction::FMul, Op0, Op1, Q))
4310     return C;
4311 
4312   if (Constant *C = simplifyFPBinop(Op0, Op1))
4313     return C;
4314 
4315   // fmul X, 1.0 ==> X
4316   if (match(Op1, m_FPOne()))
4317     return Op0;
4318 
4319   // fmul nnan nsz X, 0 ==> 0
4320   if (FMF.noNaNs() && FMF.noSignedZeros() && match(Op1, m_AnyZeroFP()))
4321     return ConstantFP::getNullValue(Op0->getType());
4322 
4323   // sqrt(X) * sqrt(X) --> X, if we can:
4324   // 1. Remove the intermediate rounding (reassociate).
4325   // 2. Ignore non-zero negative numbers because sqrt would produce NAN.
4326   // 3. Ignore -0.0 because sqrt(-0.0) == -0.0, but -0.0 * -0.0 == 0.0.
4327   Value *X;
4328   if (Op0 == Op1 && match(Op0, m_Intrinsic<Intrinsic::sqrt>(m_Value(X))) &&
4329       FMF.allowReassoc() && FMF.noNaNs() && FMF.noSignedZeros())
4330     return X;
4331 
4332   return nullptr;
4333 }
4334 
4335 Value *llvm::SimplifyFAddInst(Value *Op0, Value *Op1, FastMathFlags FMF,
4336                               const SimplifyQuery &Q) {
4337   return ::SimplifyFAddInst(Op0, Op1, FMF, Q, RecursionLimit);
4338 }
4339 
4340 
4341 Value *llvm::SimplifyFSubInst(Value *Op0, Value *Op1, FastMathFlags FMF,
4342                               const SimplifyQuery &Q) {
4343   return ::SimplifyFSubInst(Op0, Op1, FMF, Q, RecursionLimit);
4344 }
4345 
4346 Value *llvm::SimplifyFMulInst(Value *Op0, Value *Op1, FastMathFlags FMF,
4347                               const SimplifyQuery &Q) {
4348   return ::SimplifyFMulInst(Op0, Op1, FMF, Q, RecursionLimit);
4349 }
4350 
4351 static Value *SimplifyFDivInst(Value *Op0, Value *Op1, FastMathFlags FMF,
4352                                const SimplifyQuery &Q, unsigned) {
4353   if (Constant *C = foldOrCommuteConstant(Instruction::FDiv, Op0, Op1, Q))
4354     return C;
4355 
4356   if (Constant *C = simplifyFPBinop(Op0, Op1))
4357     return C;
4358 
4359   // X / 1.0 -> X
4360   if (match(Op1, m_FPOne()))
4361     return Op0;
4362 
4363   // 0 / X -> 0
4364   // Requires that NaNs are off (X could be zero) and signed zeroes are
4365   // ignored (X could be positive or negative, so the output sign is unknown).
4366   if (FMF.noNaNs() && FMF.noSignedZeros() && match(Op0, m_AnyZeroFP()))
4367     return ConstantFP::getNullValue(Op0->getType());
4368 
4369   if (FMF.noNaNs()) {
4370     // X / X -> 1.0 is legal when NaNs are ignored.
4371     // We can ignore infinities because INF/INF is NaN.
4372     if (Op0 == Op1)
4373       return ConstantFP::get(Op0->getType(), 1.0);
4374 
4375     // (X * Y) / Y --> X if we can reassociate to the above form.
4376     Value *X;
4377     if (FMF.allowReassoc() && match(Op0, m_c_FMul(m_Value(X), m_Specific(Op1))))
4378       return X;
4379 
4380     // -X /  X -> -1.0 and
4381     //  X / -X -> -1.0 are legal when NaNs are ignored.
4382     // We can ignore signed zeros because +-0.0/+-0.0 is NaN and ignored.
4383     if ((BinaryOperator::isFNeg(Op0, /*IgnoreZeroSign=*/true) &&
4384          BinaryOperator::getFNegArgument(Op0) == Op1) ||
4385         (BinaryOperator::isFNeg(Op1, /*IgnoreZeroSign=*/true) &&
4386          BinaryOperator::getFNegArgument(Op1) == Op0))
4387       return ConstantFP::get(Op0->getType(), -1.0);
4388   }
4389 
4390   return nullptr;
4391 }
4392 
4393 Value *llvm::SimplifyFDivInst(Value *Op0, Value *Op1, FastMathFlags FMF,
4394                               const SimplifyQuery &Q) {
4395   return ::SimplifyFDivInst(Op0, Op1, FMF, Q, RecursionLimit);
4396 }
4397 
4398 static Value *SimplifyFRemInst(Value *Op0, Value *Op1, FastMathFlags FMF,
4399                                const SimplifyQuery &Q, unsigned) {
4400   if (Constant *C = foldOrCommuteConstant(Instruction::FRem, Op0, Op1, Q))
4401     return C;
4402 
4403   if (Constant *C = simplifyFPBinop(Op0, Op1))
4404     return C;
4405 
4406   // Unlike fdiv, the result of frem always matches the sign of the dividend.
4407   // The constant match may include undef elements in a vector, so return a full
4408   // zero constant as the result.
4409   if (FMF.noNaNs()) {
4410     // +0 % X -> 0
4411     if (match(Op0, m_PosZeroFP()))
4412       return ConstantFP::getNullValue(Op0->getType());
4413     // -0 % X -> -0
4414     if (match(Op0, m_NegZeroFP()))
4415       return ConstantFP::getNegativeZero(Op0->getType());
4416   }
4417 
4418   return nullptr;
4419 }
4420 
4421 Value *llvm::SimplifyFRemInst(Value *Op0, Value *Op1, FastMathFlags FMF,
4422                               const SimplifyQuery &Q) {
4423   return ::SimplifyFRemInst(Op0, Op1, FMF, Q, RecursionLimit);
4424 }
4425 
4426 //=== Helper functions for higher up the class hierarchy.
4427 
4428 /// Given operands for a BinaryOperator, see if we can fold the result.
4429 /// If not, this returns null.
4430 static Value *SimplifyBinOp(unsigned Opcode, Value *LHS, Value *RHS,
4431                             const SimplifyQuery &Q, unsigned MaxRecurse) {
4432   switch (Opcode) {
4433   case Instruction::Add:
4434     return SimplifyAddInst(LHS, RHS, false, false, Q, MaxRecurse);
4435   case Instruction::Sub:
4436     return SimplifySubInst(LHS, RHS, false, false, Q, MaxRecurse);
4437   case Instruction::Mul:
4438     return SimplifyMulInst(LHS, RHS, Q, MaxRecurse);
4439   case Instruction::SDiv:
4440     return SimplifySDivInst(LHS, RHS, Q, MaxRecurse);
4441   case Instruction::UDiv:
4442     return SimplifyUDivInst(LHS, RHS, Q, MaxRecurse);
4443   case Instruction::SRem:
4444     return SimplifySRemInst(LHS, RHS, Q, MaxRecurse);
4445   case Instruction::URem:
4446     return SimplifyURemInst(LHS, RHS, Q, MaxRecurse);
4447   case Instruction::Shl:
4448     return SimplifyShlInst(LHS, RHS, false, false, Q, MaxRecurse);
4449   case Instruction::LShr:
4450     return SimplifyLShrInst(LHS, RHS, false, Q, MaxRecurse);
4451   case Instruction::AShr:
4452     return SimplifyAShrInst(LHS, RHS, false, Q, MaxRecurse);
4453   case Instruction::And:
4454     return SimplifyAndInst(LHS, RHS, Q, MaxRecurse);
4455   case Instruction::Or:
4456     return SimplifyOrInst(LHS, RHS, Q, MaxRecurse);
4457   case Instruction::Xor:
4458     return SimplifyXorInst(LHS, RHS, Q, MaxRecurse);
4459   case Instruction::FAdd:
4460     return SimplifyFAddInst(LHS, RHS, FastMathFlags(), Q, MaxRecurse);
4461   case Instruction::FSub:
4462     return SimplifyFSubInst(LHS, RHS, FastMathFlags(), Q, MaxRecurse);
4463   case Instruction::FMul:
4464     return SimplifyFMulInst(LHS, RHS, FastMathFlags(), Q, MaxRecurse);
4465   case Instruction::FDiv:
4466     return SimplifyFDivInst(LHS, RHS, FastMathFlags(), Q, MaxRecurse);
4467   case Instruction::FRem:
4468     return SimplifyFRemInst(LHS, RHS, FastMathFlags(), Q, MaxRecurse);
4469   default:
4470     llvm_unreachable("Unexpected opcode");
4471   }
4472 }
4473 
4474 /// Given operands for a BinaryOperator, see if we can fold the result.
4475 /// If not, this returns null.
4476 /// In contrast to SimplifyBinOp, try to use FastMathFlag when folding the
4477 /// result. In case we don't need FastMathFlags, simply fall to SimplifyBinOp.
4478 static Value *SimplifyFPBinOp(unsigned Opcode, Value *LHS, Value *RHS,
4479                               const FastMathFlags &FMF, const SimplifyQuery &Q,
4480                               unsigned MaxRecurse) {
4481   switch (Opcode) {
4482   case Instruction::FAdd:
4483     return SimplifyFAddInst(LHS, RHS, FMF, Q, MaxRecurse);
4484   case Instruction::FSub:
4485     return SimplifyFSubInst(LHS, RHS, FMF, Q, MaxRecurse);
4486   case Instruction::FMul:
4487     return SimplifyFMulInst(LHS, RHS, FMF, Q, MaxRecurse);
4488   case Instruction::FDiv:
4489     return SimplifyFDivInst(LHS, RHS, FMF, Q, MaxRecurse);
4490   default:
4491     return SimplifyBinOp(Opcode, LHS, RHS, Q, MaxRecurse);
4492   }
4493 }
4494 
4495 Value *llvm::SimplifyBinOp(unsigned Opcode, Value *LHS, Value *RHS,
4496                            const SimplifyQuery &Q) {
4497   return ::SimplifyBinOp(Opcode, LHS, RHS, Q, RecursionLimit);
4498 }
4499 
4500 Value *llvm::SimplifyFPBinOp(unsigned Opcode, Value *LHS, Value *RHS,
4501                              FastMathFlags FMF, const SimplifyQuery &Q) {
4502   return ::SimplifyFPBinOp(Opcode, LHS, RHS, FMF, Q, RecursionLimit);
4503 }
4504 
4505 /// Given operands for a CmpInst, see if we can fold the result.
4506 static Value *SimplifyCmpInst(unsigned Predicate, Value *LHS, Value *RHS,
4507                               const SimplifyQuery &Q, unsigned MaxRecurse) {
4508   if (CmpInst::isIntPredicate((CmpInst::Predicate)Predicate))
4509     return SimplifyICmpInst(Predicate, LHS, RHS, Q, MaxRecurse);
4510   return SimplifyFCmpInst(Predicate, LHS, RHS, FastMathFlags(), Q, MaxRecurse);
4511 }
4512 
4513 Value *llvm::SimplifyCmpInst(unsigned Predicate, Value *LHS, Value *RHS,
4514                              const SimplifyQuery &Q) {
4515   return ::SimplifyCmpInst(Predicate, LHS, RHS, Q, RecursionLimit);
4516 }
4517 
4518 static bool IsIdempotent(Intrinsic::ID ID) {
4519   switch (ID) {
4520   default: return false;
4521 
4522   // Unary idempotent: f(f(x)) = f(x)
4523   case Intrinsic::fabs:
4524   case Intrinsic::floor:
4525   case Intrinsic::ceil:
4526   case Intrinsic::trunc:
4527   case Intrinsic::rint:
4528   case Intrinsic::nearbyint:
4529   case Intrinsic::round:
4530   case Intrinsic::canonicalize:
4531     return true;
4532   }
4533 }
4534 
4535 static Value *SimplifyRelativeLoad(Constant *Ptr, Constant *Offset,
4536                                    const DataLayout &DL) {
4537   GlobalValue *PtrSym;
4538   APInt PtrOffset;
4539   if (!IsConstantOffsetFromGlobal(Ptr, PtrSym, PtrOffset, DL))
4540     return nullptr;
4541 
4542   Type *Int8PtrTy = Type::getInt8PtrTy(Ptr->getContext());
4543   Type *Int32Ty = Type::getInt32Ty(Ptr->getContext());
4544   Type *Int32PtrTy = Int32Ty->getPointerTo();
4545   Type *Int64Ty = Type::getInt64Ty(Ptr->getContext());
4546 
4547   auto *OffsetConstInt = dyn_cast<ConstantInt>(Offset);
4548   if (!OffsetConstInt || OffsetConstInt->getType()->getBitWidth() > 64)
4549     return nullptr;
4550 
4551   uint64_t OffsetInt = OffsetConstInt->getSExtValue();
4552   if (OffsetInt % 4 != 0)
4553     return nullptr;
4554 
4555   Constant *C = ConstantExpr::getGetElementPtr(
4556       Int32Ty, ConstantExpr::getBitCast(Ptr, Int32PtrTy),
4557       ConstantInt::get(Int64Ty, OffsetInt / 4));
4558   Constant *Loaded = ConstantFoldLoadFromConstPtr(C, Int32Ty, DL);
4559   if (!Loaded)
4560     return nullptr;
4561 
4562   auto *LoadedCE = dyn_cast<ConstantExpr>(Loaded);
4563   if (!LoadedCE)
4564     return nullptr;
4565 
4566   if (LoadedCE->getOpcode() == Instruction::Trunc) {
4567     LoadedCE = dyn_cast<ConstantExpr>(LoadedCE->getOperand(0));
4568     if (!LoadedCE)
4569       return nullptr;
4570   }
4571 
4572   if (LoadedCE->getOpcode() != Instruction::Sub)
4573     return nullptr;
4574 
4575   auto *LoadedLHS = dyn_cast<ConstantExpr>(LoadedCE->getOperand(0));
4576   if (!LoadedLHS || LoadedLHS->getOpcode() != Instruction::PtrToInt)
4577     return nullptr;
4578   auto *LoadedLHSPtr = LoadedLHS->getOperand(0);
4579 
4580   Constant *LoadedRHS = LoadedCE->getOperand(1);
4581   GlobalValue *LoadedRHSSym;
4582   APInt LoadedRHSOffset;
4583   if (!IsConstantOffsetFromGlobal(LoadedRHS, LoadedRHSSym, LoadedRHSOffset,
4584                                   DL) ||
4585       PtrSym != LoadedRHSSym || PtrOffset != LoadedRHSOffset)
4586     return nullptr;
4587 
4588   return ConstantExpr::getBitCast(LoadedLHSPtr, Int8PtrTy);
4589 }
4590 
4591 static bool maskIsAllZeroOrUndef(Value *Mask) {
4592   auto *ConstMask = dyn_cast<Constant>(Mask);
4593   if (!ConstMask)
4594     return false;
4595   if (ConstMask->isNullValue() || isa<UndefValue>(ConstMask))
4596     return true;
4597   for (unsigned I = 0, E = ConstMask->getType()->getVectorNumElements(); I != E;
4598        ++I) {
4599     if (auto *MaskElt = ConstMask->getAggregateElement(I))
4600       if (MaskElt->isNullValue() || isa<UndefValue>(MaskElt))
4601         continue;
4602     return false;
4603   }
4604   return true;
4605 }
4606 
4607 template <typename IterTy>
4608 static Value *SimplifyIntrinsic(Function *F, IterTy ArgBegin, IterTy ArgEnd,
4609                                 const SimplifyQuery &Q, unsigned MaxRecurse) {
4610   Intrinsic::ID IID = F->getIntrinsicID();
4611   unsigned NumOperands = std::distance(ArgBegin, ArgEnd);
4612 
4613   // Unary Ops
4614   if (NumOperands == 1) {
4615     // Perform idempotent optimizations
4616     if (IsIdempotent(IID)) {
4617       if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(*ArgBegin)) {
4618         if (II->getIntrinsicID() == IID)
4619           return II;
4620       }
4621     }
4622 
4623     Value *IIOperand = *ArgBegin;
4624     Value *X;
4625     switch (IID) {
4626     case Intrinsic::fabs: {
4627       if (SignBitMustBeZero(IIOperand, Q.TLI))
4628         return IIOperand;
4629       return nullptr;
4630     }
4631     case Intrinsic::bswap: {
4632       // bswap(bswap(x)) -> x
4633       if (match(IIOperand, m_BSwap(m_Value(X))))
4634         return X;
4635       return nullptr;
4636     }
4637     case Intrinsic::bitreverse: {
4638       // bitreverse(bitreverse(x)) -> x
4639       if (match(IIOperand, m_BitReverse(m_Value(X))))
4640         return X;
4641       return nullptr;
4642     }
4643     case Intrinsic::exp: {
4644       // exp(log(x)) -> x
4645       if (Q.CxtI->hasAllowReassoc() &&
4646           match(IIOperand, m_Intrinsic<Intrinsic::log>(m_Value(X))))
4647         return X;
4648       return nullptr;
4649     }
4650     case Intrinsic::exp2: {
4651       // exp2(log2(x)) -> x
4652       if (Q.CxtI->hasAllowReassoc() &&
4653           match(IIOperand, m_Intrinsic<Intrinsic::log2>(m_Value(X))))
4654         return X;
4655       return nullptr;
4656     }
4657     case Intrinsic::log: {
4658       // log(exp(x)) -> x
4659       if (Q.CxtI->hasAllowReassoc() &&
4660           match(IIOperand, m_Intrinsic<Intrinsic::exp>(m_Value(X))))
4661         return X;
4662       return nullptr;
4663     }
4664     case Intrinsic::log2: {
4665       // log2(exp2(x)) -> x
4666       if (Q.CxtI->hasAllowReassoc() &&
4667           match(IIOperand, m_Intrinsic<Intrinsic::exp2>(m_Value(X)))) {
4668         return X;
4669       }
4670       return nullptr;
4671     }
4672     default:
4673       return nullptr;
4674     }
4675   }
4676 
4677   // Binary Ops
4678   if (NumOperands == 2) {
4679     Value *LHS = *ArgBegin;
4680     Value *RHS = *(ArgBegin + 1);
4681     Type *ReturnType = F->getReturnType();
4682 
4683     switch (IID) {
4684     case Intrinsic::usub_with_overflow:
4685     case Intrinsic::ssub_with_overflow: {
4686       // X - X -> { 0, false }
4687       if (LHS == RHS)
4688         return Constant::getNullValue(ReturnType);
4689 
4690       // X - undef -> undef
4691       // undef - X -> undef
4692       if (isa<UndefValue>(LHS) || isa<UndefValue>(RHS))
4693         return UndefValue::get(ReturnType);
4694 
4695       return nullptr;
4696     }
4697     case Intrinsic::uadd_with_overflow:
4698     case Intrinsic::sadd_with_overflow: {
4699       // X + undef -> undef
4700       if (isa<UndefValue>(LHS) || isa<UndefValue>(RHS))
4701         return UndefValue::get(ReturnType);
4702 
4703       return nullptr;
4704     }
4705     case Intrinsic::umul_with_overflow:
4706     case Intrinsic::smul_with_overflow: {
4707       // 0 * X -> { 0, false }
4708       // X * 0 -> { 0, false }
4709       if (match(LHS, m_Zero()) || match(RHS, m_Zero()))
4710         return Constant::getNullValue(ReturnType);
4711 
4712       // undef * X -> { 0, false }
4713       // X * undef -> { 0, false }
4714       if (match(LHS, m_Undef()) || match(RHS, m_Undef()))
4715         return Constant::getNullValue(ReturnType);
4716 
4717       return nullptr;
4718     }
4719     case Intrinsic::load_relative: {
4720       Constant *C0 = dyn_cast<Constant>(LHS);
4721       Constant *C1 = dyn_cast<Constant>(RHS);
4722       if (C0 && C1)
4723         return SimplifyRelativeLoad(C0, C1, Q.DL);
4724       return nullptr;
4725     }
4726     case Intrinsic::powi:
4727       if (ConstantInt *Power = dyn_cast<ConstantInt>(RHS)) {
4728         // powi(x, 0) -> 1.0
4729         if (Power->isZero())
4730           return ConstantFP::get(LHS->getType(), 1.0);
4731         // powi(x, 1) -> x
4732         if (Power->isOne())
4733           return LHS;
4734       }
4735       return nullptr;
4736     case Intrinsic::maxnum:
4737     case Intrinsic::minnum:
4738       // If one argument is NaN, return the other argument.
4739       if (match(LHS, m_NaN()))
4740         return RHS;
4741       if (match(RHS, m_NaN()))
4742         return LHS;
4743       return nullptr;
4744     default:
4745       return nullptr;
4746     }
4747   }
4748 
4749   // Simplify calls to llvm.masked.load.*
4750   switch (IID) {
4751   case Intrinsic::masked_load: {
4752     Value *MaskArg = ArgBegin[2];
4753     Value *PassthruArg = ArgBegin[3];
4754     // If the mask is all zeros or undef, the "passthru" argument is the result.
4755     if (maskIsAllZeroOrUndef(MaskArg))
4756       return PassthruArg;
4757     return nullptr;
4758   }
4759   default:
4760     return nullptr;
4761   }
4762 }
4763 
4764 template <typename IterTy>
4765 static Value *SimplifyCall(ImmutableCallSite CS, Value *V, IterTy ArgBegin,
4766                            IterTy ArgEnd, const SimplifyQuery &Q,
4767                            unsigned MaxRecurse) {
4768   Type *Ty = V->getType();
4769   if (PointerType *PTy = dyn_cast<PointerType>(Ty))
4770     Ty = PTy->getElementType();
4771   FunctionType *FTy = cast<FunctionType>(Ty);
4772 
4773   // call undef -> undef
4774   // call null -> undef
4775   if (isa<UndefValue>(V) || isa<ConstantPointerNull>(V))
4776     return UndefValue::get(FTy->getReturnType());
4777 
4778   Function *F = dyn_cast<Function>(V);
4779   if (!F)
4780     return nullptr;
4781 
4782   if (F->isIntrinsic())
4783     if (Value *Ret = SimplifyIntrinsic(F, ArgBegin, ArgEnd, Q, MaxRecurse))
4784       return Ret;
4785 
4786   if (!canConstantFoldCallTo(CS, F))
4787     return nullptr;
4788 
4789   SmallVector<Constant *, 4> ConstantArgs;
4790   ConstantArgs.reserve(ArgEnd - ArgBegin);
4791   for (IterTy I = ArgBegin, E = ArgEnd; I != E; ++I) {
4792     Constant *C = dyn_cast<Constant>(*I);
4793     if (!C)
4794       return nullptr;
4795     ConstantArgs.push_back(C);
4796   }
4797 
4798   return ConstantFoldCall(CS, F, ConstantArgs, Q.TLI);
4799 }
4800 
4801 Value *llvm::SimplifyCall(ImmutableCallSite CS, Value *V,
4802                           User::op_iterator ArgBegin, User::op_iterator ArgEnd,
4803                           const SimplifyQuery &Q) {
4804   return ::SimplifyCall(CS, V, ArgBegin, ArgEnd, Q, RecursionLimit);
4805 }
4806 
4807 Value *llvm::SimplifyCall(ImmutableCallSite CS, Value *V,
4808                           ArrayRef<Value *> Args, const SimplifyQuery &Q) {
4809   return ::SimplifyCall(CS, V, Args.begin(), Args.end(), Q, RecursionLimit);
4810 }
4811 
4812 Value *llvm::SimplifyCall(ImmutableCallSite ICS, const SimplifyQuery &Q) {
4813   CallSite CS(const_cast<Instruction*>(ICS.getInstruction()));
4814   return ::SimplifyCall(CS, CS.getCalledValue(), CS.arg_begin(), CS.arg_end(),
4815                         Q, RecursionLimit);
4816 }
4817 
4818 /// See if we can compute a simplified version of this instruction.
4819 /// If not, this returns null.
4820 
4821 Value *llvm::SimplifyInstruction(Instruction *I, const SimplifyQuery &SQ,
4822                                  OptimizationRemarkEmitter *ORE) {
4823   const SimplifyQuery Q = SQ.CxtI ? SQ : SQ.getWithInstruction(I);
4824   Value *Result;
4825 
4826   switch (I->getOpcode()) {
4827   default:
4828     Result = ConstantFoldInstruction(I, Q.DL, Q.TLI);
4829     break;
4830   case Instruction::FAdd:
4831     Result = SimplifyFAddInst(I->getOperand(0), I->getOperand(1),
4832                               I->getFastMathFlags(), Q);
4833     break;
4834   case Instruction::Add:
4835     Result = SimplifyAddInst(I->getOperand(0), I->getOperand(1),
4836                              cast<BinaryOperator>(I)->hasNoSignedWrap(),
4837                              cast<BinaryOperator>(I)->hasNoUnsignedWrap(), Q);
4838     break;
4839   case Instruction::FSub:
4840     Result = SimplifyFSubInst(I->getOperand(0), I->getOperand(1),
4841                               I->getFastMathFlags(), Q);
4842     break;
4843   case Instruction::Sub:
4844     Result = SimplifySubInst(I->getOperand(0), I->getOperand(1),
4845                              cast<BinaryOperator>(I)->hasNoSignedWrap(),
4846                              cast<BinaryOperator>(I)->hasNoUnsignedWrap(), Q);
4847     break;
4848   case Instruction::FMul:
4849     Result = SimplifyFMulInst(I->getOperand(0), I->getOperand(1),
4850                               I->getFastMathFlags(), Q);
4851     break;
4852   case Instruction::Mul:
4853     Result = SimplifyMulInst(I->getOperand(0), I->getOperand(1), Q);
4854     break;
4855   case Instruction::SDiv:
4856     Result = SimplifySDivInst(I->getOperand(0), I->getOperand(1), Q);
4857     break;
4858   case Instruction::UDiv:
4859     Result = SimplifyUDivInst(I->getOperand(0), I->getOperand(1), Q);
4860     break;
4861   case Instruction::FDiv:
4862     Result = SimplifyFDivInst(I->getOperand(0), I->getOperand(1),
4863                               I->getFastMathFlags(), Q);
4864     break;
4865   case Instruction::SRem:
4866     Result = SimplifySRemInst(I->getOperand(0), I->getOperand(1), Q);
4867     break;
4868   case Instruction::URem:
4869     Result = SimplifyURemInst(I->getOperand(0), I->getOperand(1), Q);
4870     break;
4871   case Instruction::FRem:
4872     Result = SimplifyFRemInst(I->getOperand(0), I->getOperand(1),
4873                               I->getFastMathFlags(), Q);
4874     break;
4875   case Instruction::Shl:
4876     Result = SimplifyShlInst(I->getOperand(0), I->getOperand(1),
4877                              cast<BinaryOperator>(I)->hasNoSignedWrap(),
4878                              cast<BinaryOperator>(I)->hasNoUnsignedWrap(), Q);
4879     break;
4880   case Instruction::LShr:
4881     Result = SimplifyLShrInst(I->getOperand(0), I->getOperand(1),
4882                               cast<BinaryOperator>(I)->isExact(), Q);
4883     break;
4884   case Instruction::AShr:
4885     Result = SimplifyAShrInst(I->getOperand(0), I->getOperand(1),
4886                               cast<BinaryOperator>(I)->isExact(), Q);
4887     break;
4888   case Instruction::And:
4889     Result = SimplifyAndInst(I->getOperand(0), I->getOperand(1), Q);
4890     break;
4891   case Instruction::Or:
4892     Result = SimplifyOrInst(I->getOperand(0), I->getOperand(1), Q);
4893     break;
4894   case Instruction::Xor:
4895     Result = SimplifyXorInst(I->getOperand(0), I->getOperand(1), Q);
4896     break;
4897   case Instruction::ICmp:
4898     Result = SimplifyICmpInst(cast<ICmpInst>(I)->getPredicate(),
4899                               I->getOperand(0), I->getOperand(1), Q);
4900     break;
4901   case Instruction::FCmp:
4902     Result =
4903         SimplifyFCmpInst(cast<FCmpInst>(I)->getPredicate(), I->getOperand(0),
4904                          I->getOperand(1), I->getFastMathFlags(), Q);
4905     break;
4906   case Instruction::Select:
4907     Result = SimplifySelectInst(I->getOperand(0), I->getOperand(1),
4908                                 I->getOperand(2), Q);
4909     break;
4910   case Instruction::GetElementPtr: {
4911     SmallVector<Value *, 8> Ops(I->op_begin(), I->op_end());
4912     Result = SimplifyGEPInst(cast<GetElementPtrInst>(I)->getSourceElementType(),
4913                              Ops, Q);
4914     break;
4915   }
4916   case Instruction::InsertValue: {
4917     InsertValueInst *IV = cast<InsertValueInst>(I);
4918     Result = SimplifyInsertValueInst(IV->getAggregateOperand(),
4919                                      IV->getInsertedValueOperand(),
4920                                      IV->getIndices(), Q);
4921     break;
4922   }
4923   case Instruction::InsertElement: {
4924     auto *IE = cast<InsertElementInst>(I);
4925     Result = SimplifyInsertElementInst(IE->getOperand(0), IE->getOperand(1),
4926                                        IE->getOperand(2), Q);
4927     break;
4928   }
4929   case Instruction::ExtractValue: {
4930     auto *EVI = cast<ExtractValueInst>(I);
4931     Result = SimplifyExtractValueInst(EVI->getAggregateOperand(),
4932                                       EVI->getIndices(), Q);
4933     break;
4934   }
4935   case Instruction::ExtractElement: {
4936     auto *EEI = cast<ExtractElementInst>(I);
4937     Result = SimplifyExtractElementInst(EEI->getVectorOperand(),
4938                                         EEI->getIndexOperand(), Q);
4939     break;
4940   }
4941   case Instruction::ShuffleVector: {
4942     auto *SVI = cast<ShuffleVectorInst>(I);
4943     Result = SimplifyShuffleVectorInst(SVI->getOperand(0), SVI->getOperand(1),
4944                                        SVI->getMask(), SVI->getType(), Q);
4945     break;
4946   }
4947   case Instruction::PHI:
4948     Result = SimplifyPHINode(cast<PHINode>(I), Q);
4949     break;
4950   case Instruction::Call: {
4951     CallSite CS(cast<CallInst>(I));
4952     Result = SimplifyCall(CS, Q);
4953     break;
4954   }
4955 #define HANDLE_CAST_INST(num, opc, clas) case Instruction::opc:
4956 #include "llvm/IR/Instruction.def"
4957 #undef HANDLE_CAST_INST
4958     Result =
4959         SimplifyCastInst(I->getOpcode(), I->getOperand(0), I->getType(), Q);
4960     break;
4961   case Instruction::Alloca:
4962     // No simplifications for Alloca and it can't be constant folded.
4963     Result = nullptr;
4964     break;
4965   }
4966 
4967   // In general, it is possible for computeKnownBits to determine all bits in a
4968   // value even when the operands are not all constants.
4969   if (!Result && I->getType()->isIntOrIntVectorTy()) {
4970     KnownBits Known = computeKnownBits(I, Q.DL, /*Depth*/ 0, Q.AC, I, Q.DT, ORE);
4971     if (Known.isConstant())
4972       Result = ConstantInt::get(I->getType(), Known.getConstant());
4973   }
4974 
4975   /// If called on unreachable code, the above logic may report that the
4976   /// instruction simplified to itself.  Make life easier for users by
4977   /// detecting that case here, returning a safe value instead.
4978   return Result == I ? UndefValue::get(I->getType()) : Result;
4979 }
4980 
4981 /// Implementation of recursive simplification through an instruction's
4982 /// uses.
4983 ///
4984 /// This is the common implementation of the recursive simplification routines.
4985 /// If we have a pre-simplified value in 'SimpleV', that is forcibly used to
4986 /// replace the instruction 'I'. Otherwise, we simply add 'I' to the list of
4987 /// instructions to process and attempt to simplify it using
4988 /// InstructionSimplify.
4989 ///
4990 /// This routine returns 'true' only when *it* simplifies something. The passed
4991 /// in simplified value does not count toward this.
4992 static bool replaceAndRecursivelySimplifyImpl(Instruction *I, Value *SimpleV,
4993                                               const TargetLibraryInfo *TLI,
4994                                               const DominatorTree *DT,
4995                                               AssumptionCache *AC) {
4996   bool Simplified = false;
4997   SmallSetVector<Instruction *, 8> Worklist;
4998   const DataLayout &DL = I->getModule()->getDataLayout();
4999 
5000   // If we have an explicit value to collapse to, do that round of the
5001   // simplification loop by hand initially.
5002   if (SimpleV) {
5003     for (User *U : I->users())
5004       if (U != I)
5005         Worklist.insert(cast<Instruction>(U));
5006 
5007     // Replace the instruction with its simplified value.
5008     I->replaceAllUsesWith(SimpleV);
5009 
5010     // Gracefully handle edge cases where the instruction is not wired into any
5011     // parent block.
5012     if (I->getParent() && !I->isEHPad() && !isa<TerminatorInst>(I) &&
5013         !I->mayHaveSideEffects())
5014       I->eraseFromParent();
5015   } else {
5016     Worklist.insert(I);
5017   }
5018 
5019   // Note that we must test the size on each iteration, the worklist can grow.
5020   for (unsigned Idx = 0; Idx != Worklist.size(); ++Idx) {
5021     I = Worklist[Idx];
5022 
5023     // See if this instruction simplifies.
5024     SimpleV = SimplifyInstruction(I, {DL, TLI, DT, AC});
5025     if (!SimpleV)
5026       continue;
5027 
5028     Simplified = true;
5029 
5030     // Stash away all the uses of the old instruction so we can check them for
5031     // recursive simplifications after a RAUW. This is cheaper than checking all
5032     // uses of To on the recursive step in most cases.
5033     for (User *U : I->users())
5034       Worklist.insert(cast<Instruction>(U));
5035 
5036     // Replace the instruction with its simplified value.
5037     I->replaceAllUsesWith(SimpleV);
5038 
5039     // Gracefully handle edge cases where the instruction is not wired into any
5040     // parent block.
5041     if (I->getParent() && !I->isEHPad() && !isa<TerminatorInst>(I) &&
5042         !I->mayHaveSideEffects())
5043       I->eraseFromParent();
5044   }
5045   return Simplified;
5046 }
5047 
5048 bool llvm::recursivelySimplifyInstruction(Instruction *I,
5049                                           const TargetLibraryInfo *TLI,
5050                                           const DominatorTree *DT,
5051                                           AssumptionCache *AC) {
5052   return replaceAndRecursivelySimplifyImpl(I, nullptr, TLI, DT, AC);
5053 }
5054 
5055 bool llvm::replaceAndRecursivelySimplify(Instruction *I, Value *SimpleV,
5056                                          const TargetLibraryInfo *TLI,
5057                                          const DominatorTree *DT,
5058                                          AssumptionCache *AC) {
5059   assert(I != SimpleV && "replaceAndRecursivelySimplify(X,X) is not valid!");
5060   assert(SimpleV && "Must provide a simplified value.");
5061   return replaceAndRecursivelySimplifyImpl(I, SimpleV, TLI, DT, AC);
5062 }
5063 
5064 namespace llvm {
5065 const SimplifyQuery getBestSimplifyQuery(Pass &P, Function &F) {
5066   auto *DTWP = P.getAnalysisIfAvailable<DominatorTreeWrapperPass>();
5067   auto *DT = DTWP ? &DTWP->getDomTree() : nullptr;
5068   auto *TLIWP = P.getAnalysisIfAvailable<TargetLibraryInfoWrapperPass>();
5069   auto *TLI = TLIWP ? &TLIWP->getTLI() : nullptr;
5070   auto *ACWP = P.getAnalysisIfAvailable<AssumptionCacheTracker>();
5071   auto *AC = ACWP ? &ACWP->getAssumptionCache(F) : nullptr;
5072   return {F.getParent()->getDataLayout(), TLI, DT, AC};
5073 }
5074 
5075 const SimplifyQuery getBestSimplifyQuery(LoopStandardAnalysisResults &AR,
5076                                          const DataLayout &DL) {
5077   return {DL, &AR.TLI, &AR.DT, &AR.AC};
5078 }
5079 
5080 template <class T, class... TArgs>
5081 const SimplifyQuery getBestSimplifyQuery(AnalysisManager<T, TArgs...> &AM,
5082                                          Function &F) {
5083   auto *DT = AM.template getCachedResult<DominatorTreeAnalysis>(F);
5084   auto *TLI = AM.template getCachedResult<TargetLibraryAnalysis>(F);
5085   auto *AC = AM.template getCachedResult<AssumptionAnalysis>(F);
5086   return {F.getParent()->getDataLayout(), TLI, DT, AC};
5087 }
5088 template const SimplifyQuery getBestSimplifyQuery(AnalysisManager<Function> &,
5089                                                   Function &);
5090 }
5091