1 //===- InstCombineMulDivRem.cpp -------------------------------------------===//
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 the visit functions for mul, fmul, sdiv, udiv, fdiv,
11 // srem, urem, frem.
12 //
13 //===----------------------------------------------------------------------===//
14 
15 #include "InstCombineInternal.h"
16 #include "llvm/Analysis/InstructionSimplify.h"
17 #include "llvm/IR/IntrinsicInst.h"
18 #include "llvm/IR/PatternMatch.h"
19 using namespace llvm;
20 using namespace PatternMatch;
21 
22 #define DEBUG_TYPE "instcombine"
23 
24 
25 /// The specific integer value is used in a context where it is known to be
26 /// non-zero.  If this allows us to simplify the computation, do so and return
27 /// the new operand, otherwise return null.
28 static Value *simplifyValueKnownNonZero(Value *V, InstCombiner &IC,
29                                         Instruction &CxtI) {
30   // If V has multiple uses, then we would have to do more analysis to determine
31   // if this is safe.  For example, the use could be in dynamically unreached
32   // code.
33   if (!V->hasOneUse()) return nullptr;
34 
35   bool MadeChange = false;
36 
37   // ((1 << A) >>u B) --> (1 << (A-B))
38   // Because V cannot be zero, we know that B is less than A.
39   Value *A = nullptr, *B = nullptr, *One = nullptr;
40   if (match(V, m_LShr(m_OneUse(m_Shl(m_Value(One), m_Value(A))), m_Value(B))) &&
41       match(One, m_One())) {
42     A = IC.Builder->CreateSub(A, B);
43     return IC.Builder->CreateShl(One, A);
44   }
45 
46   // (PowerOfTwo >>u B) --> isExact since shifting out the result would make it
47   // inexact.  Similarly for <<.
48   BinaryOperator *I = dyn_cast<BinaryOperator>(V);
49   if (I && I->isLogicalShift() &&
50       isKnownToBeAPowerOfTwo(I->getOperand(0), IC.getDataLayout(), false, 0,
51                              &IC.getAssumptionCache(), &CxtI,
52                              &IC.getDominatorTree())) {
53     // We know that this is an exact/nuw shift and that the input is a
54     // non-zero context as well.
55     if (Value *V2 = simplifyValueKnownNonZero(I->getOperand(0), IC, CxtI)) {
56       I->setOperand(0, V2);
57       MadeChange = true;
58     }
59 
60     if (I->getOpcode() == Instruction::LShr && !I->isExact()) {
61       I->setIsExact();
62       MadeChange = true;
63     }
64 
65     if (I->getOpcode() == Instruction::Shl && !I->hasNoUnsignedWrap()) {
66       I->setHasNoUnsignedWrap();
67       MadeChange = true;
68     }
69   }
70 
71   // TODO: Lots more we could do here:
72   //    If V is a phi node, we can call this on each of its operands.
73   //    "select cond, X, 0" can simplify to "X".
74 
75   return MadeChange ? V : nullptr;
76 }
77 
78 
79 /// True if the multiply can not be expressed in an int this size.
80 static bool MultiplyOverflows(const APInt &C1, const APInt &C2, APInt &Product,
81                               bool IsSigned) {
82   bool Overflow;
83   if (IsSigned)
84     Product = C1.smul_ov(C2, Overflow);
85   else
86     Product = C1.umul_ov(C2, Overflow);
87 
88   return Overflow;
89 }
90 
91 /// \brief True if C2 is a multiple of C1. Quotient contains C2/C1.
92 static bool IsMultiple(const APInt &C1, const APInt &C2, APInt &Quotient,
93                        bool IsSigned) {
94   assert(C1.getBitWidth() == C2.getBitWidth() &&
95          "Inconsistent width of constants!");
96 
97   // Bail if we will divide by zero.
98   if (C2.isMinValue())
99     return false;
100 
101   // Bail if we would divide INT_MIN by -1.
102   if (IsSigned && C1.isMinSignedValue() && C2.isAllOnesValue())
103     return false;
104 
105   APInt Remainder(C1.getBitWidth(), /*Val=*/0ULL, IsSigned);
106   if (IsSigned)
107     APInt::sdivrem(C1, C2, Quotient, Remainder);
108   else
109     APInt::udivrem(C1, C2, Quotient, Remainder);
110 
111   return Remainder.isMinValue();
112 }
113 
114 /// \brief A helper routine of InstCombiner::visitMul().
115 ///
116 /// If C is a vector of known powers of 2, then this function returns
117 /// a new vector obtained from C replacing each element with its logBase2.
118 /// Return a null pointer otherwise.
119 static Constant *getLogBase2Vector(ConstantDataVector *CV) {
120   const APInt *IVal;
121   SmallVector<Constant *, 4> Elts;
122 
123   for (unsigned I = 0, E = CV->getNumElements(); I != E; ++I) {
124     Constant *Elt = CV->getElementAsConstant(I);
125     if (!match(Elt, m_APInt(IVal)) || !IVal->isPowerOf2())
126       return nullptr;
127     Elts.push_back(ConstantInt::get(Elt->getType(), IVal->logBase2()));
128   }
129 
130   return ConstantVector::get(Elts);
131 }
132 
133 /// \brief Return true if we can prove that:
134 ///    (mul LHS, RHS)  === (mul nsw LHS, RHS)
135 bool InstCombiner::WillNotOverflowSignedMul(Value *LHS, Value *RHS,
136                                             Instruction &CxtI) {
137   // Multiplying n * m significant bits yields a result of n + m significant
138   // bits. If the total number of significant bits does not exceed the
139   // result bit width (minus 1), there is no overflow.
140   // This means if we have enough leading sign bits in the operands
141   // we can guarantee that the result does not overflow.
142   // Ref: "Hacker's Delight" by Henry Warren
143   unsigned BitWidth = LHS->getType()->getScalarSizeInBits();
144 
145   // Note that underestimating the number of sign bits gives a more
146   // conservative answer.
147   unsigned SignBits =
148       ComputeNumSignBits(LHS, 0, &CxtI) + ComputeNumSignBits(RHS, 0, &CxtI);
149 
150   // First handle the easy case: if we have enough sign bits there's
151   // definitely no overflow.
152   if (SignBits > BitWidth + 1)
153     return true;
154 
155   // There are two ambiguous cases where there can be no overflow:
156   //   SignBits == BitWidth + 1    and
157   //   SignBits == BitWidth
158   // The second case is difficult to check, therefore we only handle the
159   // first case.
160   if (SignBits == BitWidth + 1) {
161     // It overflows only when both arguments are negative and the true
162     // product is exactly the minimum negative number.
163     // E.g. mul i16 with 17 sign bits: 0xff00 * 0xff80 = 0x8000
164     // For simplicity we just check if at least one side is not negative.
165     bool LHSNonNegative, LHSNegative;
166     bool RHSNonNegative, RHSNegative;
167     ComputeSignBit(LHS, LHSNonNegative, LHSNegative, /*Depth=*/0, &CxtI);
168     ComputeSignBit(RHS, RHSNonNegative, RHSNegative, /*Depth=*/0, &CxtI);
169     if (LHSNonNegative || RHSNonNegative)
170       return true;
171   }
172   return false;
173 }
174 
175 Instruction *InstCombiner::visitMul(BinaryOperator &I) {
176   bool Changed = SimplifyAssociativeOrCommutative(I);
177   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
178 
179   if (Value *V = SimplifyVectorOp(I))
180     return replaceInstUsesWith(I, V);
181 
182   if (Value *V = SimplifyMulInst(Op0, Op1, DL, &TLI, &DT, &AC))
183     return replaceInstUsesWith(I, V);
184 
185   if (Value *V = SimplifyUsingDistributiveLaws(I))
186     return replaceInstUsesWith(I, V);
187 
188   // X * -1 == 0 - X
189   if (match(Op1, m_AllOnes())) {
190     BinaryOperator *BO = BinaryOperator::CreateNeg(Op0, I.getName());
191     if (I.hasNoSignedWrap())
192       BO->setHasNoSignedWrap();
193     return BO;
194   }
195 
196   // Also allow combining multiply instructions on vectors.
197   {
198     Value *NewOp;
199     Constant *C1, *C2;
200     const APInt *IVal;
201     if (match(&I, m_Mul(m_Shl(m_Value(NewOp), m_Constant(C2)),
202                         m_Constant(C1))) &&
203         match(C1, m_APInt(IVal))) {
204       // ((X << C2)*C1) == (X * (C1 << C2))
205       Constant *Shl = ConstantExpr::getShl(C1, C2);
206       BinaryOperator *Mul = cast<BinaryOperator>(I.getOperand(0));
207       BinaryOperator *BO = BinaryOperator::CreateMul(NewOp, Shl);
208       if (I.hasNoUnsignedWrap() && Mul->hasNoUnsignedWrap())
209         BO->setHasNoUnsignedWrap();
210       if (I.hasNoSignedWrap() && Mul->hasNoSignedWrap() &&
211           Shl->isNotMinSignedValue())
212         BO->setHasNoSignedWrap();
213       return BO;
214     }
215 
216     if (match(&I, m_Mul(m_Value(NewOp), m_Constant(C1)))) {
217       Constant *NewCst = nullptr;
218       if (match(C1, m_APInt(IVal)) && IVal->isPowerOf2())
219         // Replace X*(2^C) with X << C, where C is either a scalar or a splat.
220         NewCst = ConstantInt::get(NewOp->getType(), IVal->logBase2());
221       else if (ConstantDataVector *CV = dyn_cast<ConstantDataVector>(C1))
222         // Replace X*(2^C) with X << C, where C is a vector of known
223         // constant powers of 2.
224         NewCst = getLogBase2Vector(CV);
225 
226       if (NewCst) {
227         unsigned Width = NewCst->getType()->getPrimitiveSizeInBits();
228         BinaryOperator *Shl = BinaryOperator::CreateShl(NewOp, NewCst);
229 
230         if (I.hasNoUnsignedWrap())
231           Shl->setHasNoUnsignedWrap();
232         if (I.hasNoSignedWrap()) {
233           uint64_t V;
234           if (match(NewCst, m_ConstantInt(V)) && V != Width - 1)
235             Shl->setHasNoSignedWrap();
236         }
237 
238         return Shl;
239       }
240     }
241   }
242 
243   if (ConstantInt *CI = dyn_cast<ConstantInt>(Op1)) {
244     // (Y - X) * (-(2**n)) -> (X - Y) * (2**n), for positive nonzero n
245     // (Y + const) * (-(2**n)) -> (-constY) * (2**n), for positive nonzero n
246     // The "* (2**n)" thus becomes a potential shifting opportunity.
247     {
248       const APInt &   Val = CI->getValue();
249       const APInt &PosVal = Val.abs();
250       if (Val.isNegative() && PosVal.isPowerOf2()) {
251         Value *X = nullptr, *Y = nullptr;
252         if (Op0->hasOneUse()) {
253           ConstantInt *C1;
254           Value *Sub = nullptr;
255           if (match(Op0, m_Sub(m_Value(Y), m_Value(X))))
256             Sub = Builder->CreateSub(X, Y, "suba");
257           else if (match(Op0, m_Add(m_Value(Y), m_ConstantInt(C1))))
258             Sub = Builder->CreateSub(Builder->CreateNeg(C1), Y, "subc");
259           if (Sub)
260             return
261               BinaryOperator::CreateMul(Sub,
262                                         ConstantInt::get(Y->getType(), PosVal));
263         }
264       }
265     }
266   }
267 
268   // Simplify mul instructions with a constant RHS.
269   if (isa<Constant>(Op1)) {
270     // Try to fold constant mul into select arguments.
271     if (SelectInst *SI = dyn_cast<SelectInst>(Op0))
272       if (Instruction *R = FoldOpIntoSelect(I, SI))
273         return R;
274 
275     if (isa<PHINode>(Op0))
276       if (Instruction *NV = FoldOpIntoPhi(I))
277         return NV;
278 
279     // Canonicalize (X+C1)*CI -> X*CI+C1*CI.
280     {
281       Value *X;
282       Constant *C1;
283       if (match(Op0, m_OneUse(m_Add(m_Value(X), m_Constant(C1))))) {
284         Value *Mul = Builder->CreateMul(C1, Op1);
285         // Only go forward with the transform if C1*CI simplifies to a tidier
286         // constant.
287         if (!match(Mul, m_Mul(m_Value(), m_Value())))
288           return BinaryOperator::CreateAdd(Builder->CreateMul(X, Op1), Mul);
289       }
290     }
291   }
292 
293   if (Value *Op0v = dyn_castNegVal(Op0)) {   // -X * -Y = X*Y
294     if (Value *Op1v = dyn_castNegVal(Op1)) {
295       BinaryOperator *BO = BinaryOperator::CreateMul(Op0v, Op1v);
296       if (I.hasNoSignedWrap() &&
297           match(Op0, m_NSWSub(m_Value(), m_Value())) &&
298           match(Op1, m_NSWSub(m_Value(), m_Value())))
299         BO->setHasNoSignedWrap();
300       return BO;
301     }
302   }
303 
304   // (X / Y) *  Y = X - (X % Y)
305   // (X / Y) * -Y = (X % Y) - X
306   {
307     Value *Op1C = Op1;
308     BinaryOperator *BO = dyn_cast<BinaryOperator>(Op0);
309     if (!BO ||
310         (BO->getOpcode() != Instruction::UDiv &&
311          BO->getOpcode() != Instruction::SDiv)) {
312       Op1C = Op0;
313       BO = dyn_cast<BinaryOperator>(Op1);
314     }
315     Value *Neg = dyn_castNegVal(Op1C);
316     if (BO && BO->hasOneUse() &&
317         (BO->getOperand(1) == Op1C || BO->getOperand(1) == Neg) &&
318         (BO->getOpcode() == Instruction::UDiv ||
319          BO->getOpcode() == Instruction::SDiv)) {
320       Value *Op0BO = BO->getOperand(0), *Op1BO = BO->getOperand(1);
321 
322       // If the division is exact, X % Y is zero, so we end up with X or -X.
323       if (PossiblyExactOperator *SDiv = dyn_cast<PossiblyExactOperator>(BO))
324         if (SDiv->isExact()) {
325           if (Op1BO == Op1C)
326             return replaceInstUsesWith(I, Op0BO);
327           return BinaryOperator::CreateNeg(Op0BO);
328         }
329 
330       Value *Rem;
331       if (BO->getOpcode() == Instruction::UDiv)
332         Rem = Builder->CreateURem(Op0BO, Op1BO);
333       else
334         Rem = Builder->CreateSRem(Op0BO, Op1BO);
335       Rem->takeName(BO);
336 
337       if (Op1BO == Op1C)
338         return BinaryOperator::CreateSub(Op0BO, Rem);
339       return BinaryOperator::CreateSub(Rem, Op0BO);
340     }
341   }
342 
343   /// i1 mul -> i1 and.
344   if (I.getType()->getScalarType()->isIntegerTy(1))
345     return BinaryOperator::CreateAnd(Op0, Op1);
346 
347   // X*(1 << Y) --> X << Y
348   // (1 << Y)*X --> X << Y
349   {
350     Value *Y;
351     BinaryOperator *BO = nullptr;
352     bool ShlNSW = false;
353     if (match(Op0, m_Shl(m_One(), m_Value(Y)))) {
354       BO = BinaryOperator::CreateShl(Op1, Y);
355       ShlNSW = cast<ShlOperator>(Op0)->hasNoSignedWrap();
356     } else if (match(Op1, m_Shl(m_One(), m_Value(Y)))) {
357       BO = BinaryOperator::CreateShl(Op0, Y);
358       ShlNSW = cast<ShlOperator>(Op1)->hasNoSignedWrap();
359     }
360     if (BO) {
361       if (I.hasNoUnsignedWrap())
362         BO->setHasNoUnsignedWrap();
363       if (I.hasNoSignedWrap() && ShlNSW)
364         BO->setHasNoSignedWrap();
365       return BO;
366     }
367   }
368 
369   // If one of the operands of the multiply is a cast from a boolean value, then
370   // we know the bool is either zero or one, so this is a 'masking' multiply.
371   //   X * Y (where Y is 0 or 1) -> X & (0-Y)
372   if (!I.getType()->isVectorTy()) {
373     // -2 is "-1 << 1" so it is all bits set except the low one.
374     APInt Negative2(I.getType()->getPrimitiveSizeInBits(), (uint64_t)-2, true);
375 
376     Value *BoolCast = nullptr, *OtherOp = nullptr;
377     if (MaskedValueIsZero(Op0, Negative2, 0, &I)) {
378       BoolCast = Op0;
379       OtherOp = Op1;
380     } else if (MaskedValueIsZero(Op1, Negative2, 0, &I)) {
381       BoolCast = Op1;
382       OtherOp = Op0;
383     }
384 
385     if (BoolCast) {
386       Value *V = Builder->CreateSub(Constant::getNullValue(I.getType()),
387                                     BoolCast);
388       return BinaryOperator::CreateAnd(V, OtherOp);
389     }
390   }
391 
392   if (!I.hasNoSignedWrap() && WillNotOverflowSignedMul(Op0, Op1, I)) {
393     Changed = true;
394     I.setHasNoSignedWrap(true);
395   }
396 
397   if (!I.hasNoUnsignedWrap() &&
398       computeOverflowForUnsignedMul(Op0, Op1, &I) ==
399           OverflowResult::NeverOverflows) {
400     Changed = true;
401     I.setHasNoUnsignedWrap(true);
402   }
403 
404   return Changed ? &I : nullptr;
405 }
406 
407 /// Detect pattern log2(Y * 0.5) with corresponding fast math flags.
408 static void detectLog2OfHalf(Value *&Op, Value *&Y, IntrinsicInst *&Log2) {
409   if (!Op->hasOneUse())
410     return;
411 
412   IntrinsicInst *II = dyn_cast<IntrinsicInst>(Op);
413   if (!II)
414     return;
415   if (II->getIntrinsicID() != Intrinsic::log2 || !II->hasUnsafeAlgebra())
416     return;
417   Log2 = II;
418 
419   Value *OpLog2Of = II->getArgOperand(0);
420   if (!OpLog2Of->hasOneUse())
421     return;
422 
423   Instruction *I = dyn_cast<Instruction>(OpLog2Of);
424   if (!I)
425     return;
426   if (I->getOpcode() != Instruction::FMul || !I->hasUnsafeAlgebra())
427     return;
428 
429   if (match(I->getOperand(0), m_SpecificFP(0.5)))
430     Y = I->getOperand(1);
431   else if (match(I->getOperand(1), m_SpecificFP(0.5)))
432     Y = I->getOperand(0);
433 }
434 
435 static bool isFiniteNonZeroFp(Constant *C) {
436   if (C->getType()->isVectorTy()) {
437     for (unsigned I = 0, E = C->getType()->getVectorNumElements(); I != E;
438          ++I) {
439       ConstantFP *CFP = dyn_cast_or_null<ConstantFP>(C->getAggregateElement(I));
440       if (!CFP || !CFP->getValueAPF().isFiniteNonZero())
441         return false;
442     }
443     return true;
444   }
445 
446   return isa<ConstantFP>(C) &&
447          cast<ConstantFP>(C)->getValueAPF().isFiniteNonZero();
448 }
449 
450 static bool isNormalFp(Constant *C) {
451   if (C->getType()->isVectorTy()) {
452     for (unsigned I = 0, E = C->getType()->getVectorNumElements(); I != E;
453          ++I) {
454       ConstantFP *CFP = dyn_cast_or_null<ConstantFP>(C->getAggregateElement(I));
455       if (!CFP || !CFP->getValueAPF().isNormal())
456         return false;
457     }
458     return true;
459   }
460 
461   return isa<ConstantFP>(C) && cast<ConstantFP>(C)->getValueAPF().isNormal();
462 }
463 
464 /// Helper function of InstCombiner::visitFMul(BinaryOperator(). It returns
465 /// true iff the given value is FMul or FDiv with one and only one operand
466 /// being a normal constant (i.e. not Zero/NaN/Infinity).
467 static bool isFMulOrFDivWithConstant(Value *V) {
468   Instruction *I = dyn_cast<Instruction>(V);
469   if (!I || (I->getOpcode() != Instruction::FMul &&
470              I->getOpcode() != Instruction::FDiv))
471     return false;
472 
473   Constant *C0 = dyn_cast<Constant>(I->getOperand(0));
474   Constant *C1 = dyn_cast<Constant>(I->getOperand(1));
475 
476   if (C0 && C1)
477     return false;
478 
479   return (C0 && isFiniteNonZeroFp(C0)) || (C1 && isFiniteNonZeroFp(C1));
480 }
481 
482 /// foldFMulConst() is a helper routine of InstCombiner::visitFMul().
483 /// The input \p FMulOrDiv is a FMul/FDiv with one and only one operand
484 /// being a constant (i.e. isFMulOrFDivWithConstant(FMulOrDiv) == true).
485 /// This function is to simplify "FMulOrDiv * C" and returns the
486 /// resulting expression. Note that this function could return NULL in
487 /// case the constants cannot be folded into a normal floating-point.
488 ///
489 Value *InstCombiner::foldFMulConst(Instruction *FMulOrDiv, Constant *C,
490                                    Instruction *InsertBefore) {
491   assert(isFMulOrFDivWithConstant(FMulOrDiv) && "V is invalid");
492 
493   Value *Opnd0 = FMulOrDiv->getOperand(0);
494   Value *Opnd1 = FMulOrDiv->getOperand(1);
495 
496   Constant *C0 = dyn_cast<Constant>(Opnd0);
497   Constant *C1 = dyn_cast<Constant>(Opnd1);
498 
499   BinaryOperator *R = nullptr;
500 
501   // (X * C0) * C => X * (C0*C)
502   if (FMulOrDiv->getOpcode() == Instruction::FMul) {
503     Constant *F = ConstantExpr::getFMul(C1 ? C1 : C0, C);
504     if (isNormalFp(F))
505       R = BinaryOperator::CreateFMul(C1 ? Opnd0 : Opnd1, F);
506   } else {
507     if (C0) {
508       // (C0 / X) * C => (C0 * C) / X
509       if (FMulOrDiv->hasOneUse()) {
510         // It would otherwise introduce another div.
511         Constant *F = ConstantExpr::getFMul(C0, C);
512         if (isNormalFp(F))
513           R = BinaryOperator::CreateFDiv(F, Opnd1);
514       }
515     } else {
516       // (X / C1) * C => X * (C/C1) if C/C1 is not a denormal
517       Constant *F = ConstantExpr::getFDiv(C, C1);
518       if (isNormalFp(F)) {
519         R = BinaryOperator::CreateFMul(Opnd0, F);
520       } else {
521         // (X / C1) * C => X / (C1/C)
522         Constant *F = ConstantExpr::getFDiv(C1, C);
523         if (isNormalFp(F))
524           R = BinaryOperator::CreateFDiv(Opnd0, F);
525       }
526     }
527   }
528 
529   if (R) {
530     R->setHasUnsafeAlgebra(true);
531     InsertNewInstWith(R, *InsertBefore);
532   }
533 
534   return R;
535 }
536 
537 Instruction *InstCombiner::visitFMul(BinaryOperator &I) {
538   bool Changed = SimplifyAssociativeOrCommutative(I);
539   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
540 
541   if (Value *V = SimplifyVectorOp(I))
542     return replaceInstUsesWith(I, V);
543 
544   if (isa<Constant>(Op0))
545     std::swap(Op0, Op1);
546 
547   if (Value *V =
548           SimplifyFMulInst(Op0, Op1, I.getFastMathFlags(), DL, &TLI, &DT, &AC))
549     return replaceInstUsesWith(I, V);
550 
551   bool AllowReassociate = I.hasUnsafeAlgebra();
552 
553   // Simplify mul instructions with a constant RHS.
554   if (isa<Constant>(Op1)) {
555     // Try to fold constant mul into select arguments.
556     if (SelectInst *SI = dyn_cast<SelectInst>(Op0))
557       if (Instruction *R = FoldOpIntoSelect(I, SI))
558         return R;
559 
560     if (isa<PHINode>(Op0))
561       if (Instruction *NV = FoldOpIntoPhi(I))
562         return NV;
563 
564     // (fmul X, -1.0) --> (fsub -0.0, X)
565     if (match(Op1, m_SpecificFP(-1.0))) {
566       Constant *NegZero = ConstantFP::getNegativeZero(Op1->getType());
567       Instruction *RI = BinaryOperator::CreateFSub(NegZero, Op0);
568       RI->copyFastMathFlags(&I);
569       return RI;
570     }
571 
572     Constant *C = cast<Constant>(Op1);
573     if (AllowReassociate && isFiniteNonZeroFp(C)) {
574       // Let MDC denote an expression in one of these forms:
575       // X * C, C/X, X/C, where C is a constant.
576       //
577       // Try to simplify "MDC * Constant"
578       if (isFMulOrFDivWithConstant(Op0))
579         if (Value *V = foldFMulConst(cast<Instruction>(Op0), C, &I))
580           return replaceInstUsesWith(I, V);
581 
582       // (MDC +/- C1) * C => (MDC * C) +/- (C1 * C)
583       Instruction *FAddSub = dyn_cast<Instruction>(Op0);
584       if (FAddSub &&
585           (FAddSub->getOpcode() == Instruction::FAdd ||
586            FAddSub->getOpcode() == Instruction::FSub)) {
587         Value *Opnd0 = FAddSub->getOperand(0);
588         Value *Opnd1 = FAddSub->getOperand(1);
589         Constant *C0 = dyn_cast<Constant>(Opnd0);
590         Constant *C1 = dyn_cast<Constant>(Opnd1);
591         bool Swap = false;
592         if (C0) {
593           std::swap(C0, C1);
594           std::swap(Opnd0, Opnd1);
595           Swap = true;
596         }
597 
598         if (C1 && isFiniteNonZeroFp(C1) && isFMulOrFDivWithConstant(Opnd0)) {
599           Value *M1 = ConstantExpr::getFMul(C1, C);
600           Value *M0 = isNormalFp(cast<Constant>(M1)) ?
601                       foldFMulConst(cast<Instruction>(Opnd0), C, &I) :
602                       nullptr;
603           if (M0 && M1) {
604             if (Swap && FAddSub->getOpcode() == Instruction::FSub)
605               std::swap(M0, M1);
606 
607             Instruction *RI = (FAddSub->getOpcode() == Instruction::FAdd)
608                                   ? BinaryOperator::CreateFAdd(M0, M1)
609                                   : BinaryOperator::CreateFSub(M0, M1);
610             RI->copyFastMathFlags(&I);
611             return RI;
612           }
613         }
614       }
615     }
616   }
617 
618   if (Op0 == Op1) {
619     if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(Op0)) {
620       // sqrt(X) * sqrt(X) -> X
621       if (AllowReassociate && II->getIntrinsicID() == Intrinsic::sqrt)
622         return replaceInstUsesWith(I, II->getOperand(0));
623 
624       // fabs(X) * fabs(X) -> X * X
625       if (II->getIntrinsicID() == Intrinsic::fabs) {
626         Instruction *FMulVal = BinaryOperator::CreateFMul(II->getOperand(0),
627                                                           II->getOperand(0),
628                                                           I.getName());
629         FMulVal->copyFastMathFlags(&I);
630         return FMulVal;
631       }
632     }
633   }
634 
635   // Under unsafe algebra do:
636   // X * log2(0.5*Y) = X*log2(Y) - X
637   if (AllowReassociate) {
638     Value *OpX = nullptr;
639     Value *OpY = nullptr;
640     IntrinsicInst *Log2;
641     detectLog2OfHalf(Op0, OpY, Log2);
642     if (OpY) {
643       OpX = Op1;
644     } else {
645       detectLog2OfHalf(Op1, OpY, Log2);
646       if (OpY) {
647         OpX = Op0;
648       }
649     }
650     // if pattern detected emit alternate sequence
651     if (OpX && OpY) {
652       BuilderTy::FastMathFlagGuard Guard(*Builder);
653       Builder->setFastMathFlags(Log2->getFastMathFlags());
654       Log2->setArgOperand(0, OpY);
655       Value *FMulVal = Builder->CreateFMul(OpX, Log2);
656       Value *FSub = Builder->CreateFSub(FMulVal, OpX);
657       FSub->takeName(&I);
658       return replaceInstUsesWith(I, FSub);
659     }
660   }
661 
662   // Handle symmetric situation in a 2-iteration loop
663   Value *Opnd0 = Op0;
664   Value *Opnd1 = Op1;
665   for (int i = 0; i < 2; i++) {
666     bool IgnoreZeroSign = I.hasNoSignedZeros();
667     if (BinaryOperator::isFNeg(Opnd0, IgnoreZeroSign)) {
668       BuilderTy::FastMathFlagGuard Guard(*Builder);
669       Builder->setFastMathFlags(I.getFastMathFlags());
670 
671       Value *N0 = dyn_castFNegVal(Opnd0, IgnoreZeroSign);
672       Value *N1 = dyn_castFNegVal(Opnd1, IgnoreZeroSign);
673 
674       // -X * -Y => X*Y
675       if (N1) {
676         Value *FMul = Builder->CreateFMul(N0, N1);
677         FMul->takeName(&I);
678         return replaceInstUsesWith(I, FMul);
679       }
680 
681       if (Opnd0->hasOneUse()) {
682         // -X * Y => -(X*Y) (Promote negation as high as possible)
683         Value *T = Builder->CreateFMul(N0, Opnd1);
684         Value *Neg = Builder->CreateFNeg(T);
685         Neg->takeName(&I);
686         return replaceInstUsesWith(I, Neg);
687       }
688     }
689 
690     // (X*Y) * X => (X*X) * Y where Y != X
691     //  The purpose is two-fold:
692     //   1) to form a power expression (of X).
693     //   2) potentially shorten the critical path: After transformation, the
694     //  latency of the instruction Y is amortized by the expression of X*X,
695     //  and therefore Y is in a "less critical" position compared to what it
696     //  was before the transformation.
697     //
698     if (AllowReassociate) {
699       Value *Opnd0_0, *Opnd0_1;
700       if (Opnd0->hasOneUse() &&
701           match(Opnd0, m_FMul(m_Value(Opnd0_0), m_Value(Opnd0_1)))) {
702         Value *Y = nullptr;
703         if (Opnd0_0 == Opnd1 && Opnd0_1 != Opnd1)
704           Y = Opnd0_1;
705         else if (Opnd0_1 == Opnd1 && Opnd0_0 != Opnd1)
706           Y = Opnd0_0;
707 
708         if (Y) {
709           BuilderTy::FastMathFlagGuard Guard(*Builder);
710           Builder->setFastMathFlags(I.getFastMathFlags());
711           Value *T = Builder->CreateFMul(Opnd1, Opnd1);
712           Value *R = Builder->CreateFMul(T, Y);
713           R->takeName(&I);
714           return replaceInstUsesWith(I, R);
715         }
716       }
717     }
718 
719     if (!isa<Constant>(Op1))
720       std::swap(Opnd0, Opnd1);
721     else
722       break;
723   }
724 
725   return Changed ? &I : nullptr;
726 }
727 
728 /// Try to fold a divide or remainder of a select instruction.
729 bool InstCombiner::SimplifyDivRemOfSelect(BinaryOperator &I) {
730   SelectInst *SI = cast<SelectInst>(I.getOperand(1));
731 
732   // div/rem X, (Cond ? 0 : Y) -> div/rem X, Y
733   int NonNullOperand = -1;
734   if (Constant *ST = dyn_cast<Constant>(SI->getOperand(1)))
735     if (ST->isNullValue())
736       NonNullOperand = 2;
737   // div/rem X, (Cond ? Y : 0) -> div/rem X, Y
738   if (Constant *ST = dyn_cast<Constant>(SI->getOperand(2)))
739     if (ST->isNullValue())
740       NonNullOperand = 1;
741 
742   if (NonNullOperand == -1)
743     return false;
744 
745   Value *SelectCond = SI->getOperand(0);
746 
747   // Change the div/rem to use 'Y' instead of the select.
748   I.setOperand(1, SI->getOperand(NonNullOperand));
749 
750   // Okay, we know we replace the operand of the div/rem with 'Y' with no
751   // problem.  However, the select, or the condition of the select may have
752   // multiple uses.  Based on our knowledge that the operand must be non-zero,
753   // propagate the known value for the select into other uses of it, and
754   // propagate a known value of the condition into its other users.
755 
756   // If the select and condition only have a single use, don't bother with this,
757   // early exit.
758   if (SI->use_empty() && SelectCond->hasOneUse())
759     return true;
760 
761   // Scan the current block backward, looking for other uses of SI.
762   BasicBlock::iterator BBI = I.getIterator(), BBFront = I.getParent()->begin();
763 
764   while (BBI != BBFront) {
765     --BBI;
766     // If we found a call to a function, we can't assume it will return, so
767     // information from below it cannot be propagated above it.
768     if (isa<CallInst>(BBI) && !isa<IntrinsicInst>(BBI))
769       break;
770 
771     // Replace uses of the select or its condition with the known values.
772     for (Instruction::op_iterator I = BBI->op_begin(), E = BBI->op_end();
773          I != E; ++I) {
774       if (*I == SI) {
775         *I = SI->getOperand(NonNullOperand);
776         Worklist.Add(&*BBI);
777       } else if (*I == SelectCond) {
778         *I = Builder->getInt1(NonNullOperand == 1);
779         Worklist.Add(&*BBI);
780       }
781     }
782 
783     // If we past the instruction, quit looking for it.
784     if (&*BBI == SI)
785       SI = nullptr;
786     if (&*BBI == SelectCond)
787       SelectCond = nullptr;
788 
789     // If we ran out of things to eliminate, break out of the loop.
790     if (!SelectCond && !SI)
791       break;
792 
793   }
794   return true;
795 }
796 
797 
798 /// This function implements the transforms common to both integer division
799 /// instructions (udiv and sdiv). It is called by the visitors to those integer
800 /// division instructions.
801 /// @brief Common integer divide transforms
802 Instruction *InstCombiner::commonIDivTransforms(BinaryOperator &I) {
803   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
804 
805   // The RHS is known non-zero.
806   if (Value *V = simplifyValueKnownNonZero(I.getOperand(1), *this, I)) {
807     I.setOperand(1, V);
808     return &I;
809   }
810 
811   // Handle cases involving: [su]div X, (select Cond, Y, Z)
812   // This does not apply for fdiv.
813   if (isa<SelectInst>(Op1) && SimplifyDivRemOfSelect(I))
814     return &I;
815 
816   if (Instruction *LHS = dyn_cast<Instruction>(Op0)) {
817     const APInt *C2;
818     if (match(Op1, m_APInt(C2))) {
819       Value *X;
820       const APInt *C1;
821       bool IsSigned = I.getOpcode() == Instruction::SDiv;
822 
823       // (X / C1) / C2  -> X / (C1*C2)
824       if ((IsSigned && match(LHS, m_SDiv(m_Value(X), m_APInt(C1)))) ||
825           (!IsSigned && match(LHS, m_UDiv(m_Value(X), m_APInt(C1))))) {
826         APInt Product(C1->getBitWidth(), /*Val=*/0ULL, IsSigned);
827         if (!MultiplyOverflows(*C1, *C2, Product, IsSigned))
828           return BinaryOperator::Create(I.getOpcode(), X,
829                                         ConstantInt::get(I.getType(), Product));
830       }
831 
832       if ((IsSigned && match(LHS, m_NSWMul(m_Value(X), m_APInt(C1)))) ||
833           (!IsSigned && match(LHS, m_NUWMul(m_Value(X), m_APInt(C1))))) {
834         APInt Quotient(C1->getBitWidth(), /*Val=*/0ULL, IsSigned);
835 
836         // (X * C1) / C2 -> X / (C2 / C1) if C2 is a multiple of C1.
837         if (IsMultiple(*C2, *C1, Quotient, IsSigned)) {
838           BinaryOperator *BO = BinaryOperator::Create(
839               I.getOpcode(), X, ConstantInt::get(X->getType(), Quotient));
840           BO->setIsExact(I.isExact());
841           return BO;
842         }
843 
844         // (X * C1) / C2 -> X * (C1 / C2) if C1 is a multiple of C2.
845         if (IsMultiple(*C1, *C2, Quotient, IsSigned)) {
846           BinaryOperator *BO = BinaryOperator::Create(
847               Instruction::Mul, X, ConstantInt::get(X->getType(), Quotient));
848           BO->setHasNoUnsignedWrap(
849               !IsSigned &&
850               cast<OverflowingBinaryOperator>(LHS)->hasNoUnsignedWrap());
851           BO->setHasNoSignedWrap(
852               cast<OverflowingBinaryOperator>(LHS)->hasNoSignedWrap());
853           return BO;
854         }
855       }
856 
857       if ((IsSigned && match(LHS, m_NSWShl(m_Value(X), m_APInt(C1))) &&
858            *C1 != C1->getBitWidth() - 1) ||
859           (!IsSigned && match(LHS, m_NUWShl(m_Value(X), m_APInt(C1))))) {
860         APInt Quotient(C1->getBitWidth(), /*Val=*/0ULL, IsSigned);
861         APInt C1Shifted = APInt::getOneBitSet(
862             C1->getBitWidth(), static_cast<unsigned>(C1->getLimitedValue()));
863 
864         // (X << C1) / C2 -> X / (C2 >> C1) if C2 is a multiple of C1.
865         if (IsMultiple(*C2, C1Shifted, Quotient, IsSigned)) {
866           BinaryOperator *BO = BinaryOperator::Create(
867               I.getOpcode(), X, ConstantInt::get(X->getType(), Quotient));
868           BO->setIsExact(I.isExact());
869           return BO;
870         }
871 
872         // (X << C1) / C2 -> X * (C2 >> C1) if C1 is a multiple of C2.
873         if (IsMultiple(C1Shifted, *C2, Quotient, IsSigned)) {
874           BinaryOperator *BO = BinaryOperator::Create(
875               Instruction::Mul, X, ConstantInt::get(X->getType(), Quotient));
876           BO->setHasNoUnsignedWrap(
877               !IsSigned &&
878               cast<OverflowingBinaryOperator>(LHS)->hasNoUnsignedWrap());
879           BO->setHasNoSignedWrap(
880               cast<OverflowingBinaryOperator>(LHS)->hasNoSignedWrap());
881           return BO;
882         }
883       }
884 
885       if (*C2 != 0) { // avoid X udiv 0
886         if (SelectInst *SI = dyn_cast<SelectInst>(Op0))
887           if (Instruction *R = FoldOpIntoSelect(I, SI))
888             return R;
889         if (isa<PHINode>(Op0))
890           if (Instruction *NV = FoldOpIntoPhi(I))
891             return NV;
892       }
893     }
894   }
895 
896   if (ConstantInt *One = dyn_cast<ConstantInt>(Op0)) {
897     if (One->isOne() && !I.getType()->isIntegerTy(1)) {
898       bool isSigned = I.getOpcode() == Instruction::SDiv;
899       if (isSigned) {
900         // If Op1 is 0 then it's undefined behaviour, if Op1 is 1 then the
901         // result is one, if Op1 is -1 then the result is minus one, otherwise
902         // it's zero.
903         Value *Inc = Builder->CreateAdd(Op1, One);
904         Value *Cmp = Builder->CreateICmpULT(
905                          Inc, ConstantInt::get(I.getType(), 3));
906         return SelectInst::Create(Cmp, Op1, ConstantInt::get(I.getType(), 0));
907       } else {
908         // If Op1 is 0 then it's undefined behaviour. If Op1 is 1 then the
909         // result is one, otherwise it's zero.
910         return new ZExtInst(Builder->CreateICmpEQ(Op1, One), I.getType());
911       }
912     }
913   }
914 
915   // See if we can fold away this div instruction.
916   if (SimplifyDemandedInstructionBits(I))
917     return &I;
918 
919   // (X - (X rem Y)) / Y -> X / Y; usually originates as ((X / Y) * Y) / Y
920   Value *X = nullptr, *Z = nullptr;
921   if (match(Op0, m_Sub(m_Value(X), m_Value(Z)))) { // (X - Z) / Y; Y = Op1
922     bool isSigned = I.getOpcode() == Instruction::SDiv;
923     if ((isSigned && match(Z, m_SRem(m_Specific(X), m_Specific(Op1)))) ||
924         (!isSigned && match(Z, m_URem(m_Specific(X), m_Specific(Op1)))))
925       return BinaryOperator::Create(I.getOpcode(), X, Op1);
926   }
927 
928   return nullptr;
929 }
930 
931 /// dyn_castZExtVal - Checks if V is a zext or constant that can
932 /// be truncated to Ty without losing bits.
933 static Value *dyn_castZExtVal(Value *V, Type *Ty) {
934   if (ZExtInst *Z = dyn_cast<ZExtInst>(V)) {
935     if (Z->getSrcTy() == Ty)
936       return Z->getOperand(0);
937   } else if (ConstantInt *C = dyn_cast<ConstantInt>(V)) {
938     if (C->getValue().getActiveBits() <= cast<IntegerType>(Ty)->getBitWidth())
939       return ConstantExpr::getTrunc(C, Ty);
940   }
941   return nullptr;
942 }
943 
944 namespace {
945 const unsigned MaxDepth = 6;
946 typedef Instruction *(*FoldUDivOperandCb)(Value *Op0, Value *Op1,
947                                           const BinaryOperator &I,
948                                           InstCombiner &IC);
949 
950 /// \brief Used to maintain state for visitUDivOperand().
951 struct UDivFoldAction {
952   FoldUDivOperandCb FoldAction; ///< Informs visitUDiv() how to fold this
953                                 ///< operand.  This can be zero if this action
954                                 ///< joins two actions together.
955 
956   Value *OperandToFold;         ///< Which operand to fold.
957   union {
958     Instruction *FoldResult;    ///< The instruction returned when FoldAction is
959                                 ///< invoked.
960 
961     size_t SelectLHSIdx;        ///< Stores the LHS action index if this action
962                                 ///< joins two actions together.
963   };
964 
965   UDivFoldAction(FoldUDivOperandCb FA, Value *InputOperand)
966       : FoldAction(FA), OperandToFold(InputOperand), FoldResult(nullptr) {}
967   UDivFoldAction(FoldUDivOperandCb FA, Value *InputOperand, size_t SLHS)
968       : FoldAction(FA), OperandToFold(InputOperand), SelectLHSIdx(SLHS) {}
969 };
970 }
971 
972 // X udiv 2^C -> X >> C
973 static Instruction *foldUDivPow2Cst(Value *Op0, Value *Op1,
974                                     const BinaryOperator &I, InstCombiner &IC) {
975   const APInt &C = cast<Constant>(Op1)->getUniqueInteger();
976   BinaryOperator *LShr = BinaryOperator::CreateLShr(
977       Op0, ConstantInt::get(Op0->getType(), C.logBase2()));
978   if (I.isExact())
979     LShr->setIsExact();
980   return LShr;
981 }
982 
983 // X udiv C, where C >= signbit
984 static Instruction *foldUDivNegCst(Value *Op0, Value *Op1,
985                                    const BinaryOperator &I, InstCombiner &IC) {
986   Value *ICI = IC.Builder->CreateICmpULT(Op0, cast<ConstantInt>(Op1));
987 
988   return SelectInst::Create(ICI, Constant::getNullValue(I.getType()),
989                             ConstantInt::get(I.getType(), 1));
990 }
991 
992 // X udiv (C1 << N), where C1 is "1<<C2"  -->  X >> (N+C2)
993 // X udiv (zext (C1 << N)), where C1 is "1<<C2"  -->  X >> (N+C2)
994 static Instruction *foldUDivShl(Value *Op0, Value *Op1, const BinaryOperator &I,
995                                 InstCombiner &IC) {
996   Value *ShiftLeft;
997   if (!match(Op1, m_ZExt(m_Value(ShiftLeft))))
998     ShiftLeft = Op1;
999 
1000   const APInt *CI;
1001   Value *N;
1002   if (!match(ShiftLeft, m_Shl(m_APInt(CI), m_Value(N))))
1003     llvm_unreachable("match should never fail here!");
1004   if (*CI != 1)
1005     N = IC.Builder->CreateAdd(N,
1006                               ConstantInt::get(N->getType(), CI->logBase2()));
1007   if (Op1 != ShiftLeft)
1008     N = IC.Builder->CreateZExt(N, Op1->getType());
1009   BinaryOperator *LShr = BinaryOperator::CreateLShr(Op0, N);
1010   if (I.isExact())
1011     LShr->setIsExact();
1012   return LShr;
1013 }
1014 
1015 // \brief Recursively visits the possible right hand operands of a udiv
1016 // instruction, seeing through select instructions, to determine if we can
1017 // replace the udiv with something simpler.  If we find that an operand is not
1018 // able to simplify the udiv, we abort the entire transformation.
1019 static size_t visitUDivOperand(Value *Op0, Value *Op1, const BinaryOperator &I,
1020                                SmallVectorImpl<UDivFoldAction> &Actions,
1021                                unsigned Depth = 0) {
1022   // Check to see if this is an unsigned division with an exact power of 2,
1023   // if so, convert to a right shift.
1024   if (match(Op1, m_Power2())) {
1025     Actions.push_back(UDivFoldAction(foldUDivPow2Cst, Op1));
1026     return Actions.size();
1027   }
1028 
1029   if (ConstantInt *C = dyn_cast<ConstantInt>(Op1))
1030     // X udiv C, where C >= signbit
1031     if (C->getValue().isNegative()) {
1032       Actions.push_back(UDivFoldAction(foldUDivNegCst, C));
1033       return Actions.size();
1034     }
1035 
1036   // X udiv (C1 << N), where C1 is "1<<C2"  -->  X >> (N+C2)
1037   if (match(Op1, m_Shl(m_Power2(), m_Value())) ||
1038       match(Op1, m_ZExt(m_Shl(m_Power2(), m_Value())))) {
1039     Actions.push_back(UDivFoldAction(foldUDivShl, Op1));
1040     return Actions.size();
1041   }
1042 
1043   // The remaining tests are all recursive, so bail out if we hit the limit.
1044   if (Depth++ == MaxDepth)
1045     return 0;
1046 
1047   if (SelectInst *SI = dyn_cast<SelectInst>(Op1))
1048     if (size_t LHSIdx =
1049             visitUDivOperand(Op0, SI->getOperand(1), I, Actions, Depth))
1050       if (visitUDivOperand(Op0, SI->getOperand(2), I, Actions, Depth)) {
1051         Actions.push_back(UDivFoldAction(nullptr, Op1, LHSIdx - 1));
1052         return Actions.size();
1053       }
1054 
1055   return 0;
1056 }
1057 
1058 Instruction *InstCombiner::visitUDiv(BinaryOperator &I) {
1059   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1060 
1061   if (Value *V = SimplifyVectorOp(I))
1062     return replaceInstUsesWith(I, V);
1063 
1064   if (Value *V = SimplifyUDivInst(Op0, Op1, DL, &TLI, &DT, &AC))
1065     return replaceInstUsesWith(I, V);
1066 
1067   // Handle the integer div common cases
1068   if (Instruction *Common = commonIDivTransforms(I))
1069     return Common;
1070 
1071   // (x lshr C1) udiv C2 --> x udiv (C2 << C1)
1072   {
1073     Value *X;
1074     const APInt *C1, *C2;
1075     if (match(Op0, m_LShr(m_Value(X), m_APInt(C1))) &&
1076         match(Op1, m_APInt(C2))) {
1077       bool Overflow;
1078       APInt C2ShlC1 = C2->ushl_ov(*C1, Overflow);
1079       if (!Overflow) {
1080         bool IsExact = I.isExact() && match(Op0, m_Exact(m_Value()));
1081         BinaryOperator *BO = BinaryOperator::CreateUDiv(
1082             X, ConstantInt::get(X->getType(), C2ShlC1));
1083         if (IsExact)
1084           BO->setIsExact();
1085         return BO;
1086       }
1087     }
1088   }
1089 
1090   // (zext A) udiv (zext B) --> zext (A udiv B)
1091   if (ZExtInst *ZOp0 = dyn_cast<ZExtInst>(Op0))
1092     if (Value *ZOp1 = dyn_castZExtVal(Op1, ZOp0->getSrcTy()))
1093       return new ZExtInst(
1094           Builder->CreateUDiv(ZOp0->getOperand(0), ZOp1, "div", I.isExact()),
1095           I.getType());
1096 
1097   // (LHS udiv (select (select (...)))) -> (LHS >> (select (select (...))))
1098   SmallVector<UDivFoldAction, 6> UDivActions;
1099   if (visitUDivOperand(Op0, Op1, I, UDivActions))
1100     for (unsigned i = 0, e = UDivActions.size(); i != e; ++i) {
1101       FoldUDivOperandCb Action = UDivActions[i].FoldAction;
1102       Value *ActionOp1 = UDivActions[i].OperandToFold;
1103       Instruction *Inst;
1104       if (Action)
1105         Inst = Action(Op0, ActionOp1, I, *this);
1106       else {
1107         // This action joins two actions together.  The RHS of this action is
1108         // simply the last action we processed, we saved the LHS action index in
1109         // the joining action.
1110         size_t SelectRHSIdx = i - 1;
1111         Value *SelectRHS = UDivActions[SelectRHSIdx].FoldResult;
1112         size_t SelectLHSIdx = UDivActions[i].SelectLHSIdx;
1113         Value *SelectLHS = UDivActions[SelectLHSIdx].FoldResult;
1114         Inst = SelectInst::Create(cast<SelectInst>(ActionOp1)->getCondition(),
1115                                   SelectLHS, SelectRHS);
1116       }
1117 
1118       // If this is the last action to process, return it to the InstCombiner.
1119       // Otherwise, we insert it before the UDiv and record it so that we may
1120       // use it as part of a joining action (i.e., a SelectInst).
1121       if (e - i != 1) {
1122         Inst->insertBefore(&I);
1123         UDivActions[i].FoldResult = Inst;
1124       } else
1125         return Inst;
1126     }
1127 
1128   return nullptr;
1129 }
1130 
1131 Instruction *InstCombiner::visitSDiv(BinaryOperator &I) {
1132   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1133 
1134   if (Value *V = SimplifyVectorOp(I))
1135     return replaceInstUsesWith(I, V);
1136 
1137   if (Value *V = SimplifySDivInst(Op0, Op1, DL, &TLI, &DT, &AC))
1138     return replaceInstUsesWith(I, V);
1139 
1140   // Handle the integer div common cases
1141   if (Instruction *Common = commonIDivTransforms(I))
1142     return Common;
1143 
1144   const APInt *Op1C;
1145   if (match(Op1, m_APInt(Op1C))) {
1146     // sdiv X, -1 == -X
1147     if (Op1C->isAllOnesValue())
1148       return BinaryOperator::CreateNeg(Op0);
1149 
1150     // sdiv exact X, C  -->  ashr exact X, log2(C)
1151     if (I.isExact() && Op1C->isNonNegative() && Op1C->isPowerOf2()) {
1152       Value *ShAmt = ConstantInt::get(Op1->getType(), Op1C->exactLogBase2());
1153       return BinaryOperator::CreateExactAShr(Op0, ShAmt, I.getName());
1154     }
1155 
1156     // If the dividend is sign-extended and the constant divisor is small enough
1157     // to fit in the source type, shrink the division to the narrower type:
1158     // (sext X) sdiv C --> sext (X sdiv C)
1159     Value *Op0Src;
1160     if (match(Op0, m_OneUse(m_SExt(m_Value(Op0Src)))) &&
1161         Op0Src->getType()->getScalarSizeInBits() >= Op1C->getMinSignedBits()) {
1162 
1163       // In the general case, we need to make sure that the dividend is not the
1164       // minimum signed value because dividing that by -1 is UB. But here, we
1165       // know that the -1 divisor case is already handled above.
1166 
1167       Constant *NarrowDivisor =
1168           ConstantExpr::getTrunc(cast<Constant>(Op1), Op0Src->getType());
1169       Value *NarrowOp = Builder->CreateSDiv(Op0Src, NarrowDivisor);
1170       return new SExtInst(NarrowOp, Op0->getType());
1171     }
1172   }
1173 
1174   if (Constant *RHS = dyn_cast<Constant>(Op1)) {
1175     // X/INT_MIN -> X == INT_MIN
1176     if (RHS->isMinSignedValue())
1177       return new ZExtInst(Builder->CreateICmpEQ(Op0, Op1), I.getType());
1178 
1179     // -X/C  -->  X/-C  provided the negation doesn't overflow.
1180     Value *X;
1181     if (match(Op0, m_NSWSub(m_Zero(), m_Value(X)))) {
1182       auto *BO = BinaryOperator::CreateSDiv(X, ConstantExpr::getNeg(RHS));
1183       BO->setIsExact(I.isExact());
1184       return BO;
1185     }
1186   }
1187 
1188   // If the sign bits of both operands are zero (i.e. we can prove they are
1189   // unsigned inputs), turn this into a udiv.
1190   if (I.getType()->isIntegerTy()) {
1191     APInt Mask(APInt::getSignBit(I.getType()->getPrimitiveSizeInBits()));
1192     if (MaskedValueIsZero(Op0, Mask, 0, &I)) {
1193       if (MaskedValueIsZero(Op1, Mask, 0, &I)) {
1194         // X sdiv Y -> X udiv Y, iff X and Y don't have sign bit set
1195         auto *BO = BinaryOperator::CreateUDiv(Op0, Op1, I.getName());
1196         BO->setIsExact(I.isExact());
1197         return BO;
1198       }
1199 
1200       if (isKnownToBeAPowerOfTwo(Op1, DL, /*OrZero*/ true, 0, &AC, &I, &DT)) {
1201         // X sdiv (1 << Y) -> X udiv (1 << Y) ( -> X u>> Y)
1202         // Safe because the only negative value (1 << Y) can take on is
1203         // INT_MIN, and X sdiv INT_MIN == X udiv INT_MIN == 0 if X doesn't have
1204         // the sign bit set.
1205         auto *BO = BinaryOperator::CreateUDiv(Op0, Op1, I.getName());
1206         BO->setIsExact(I.isExact());
1207         return BO;
1208       }
1209     }
1210   }
1211 
1212   return nullptr;
1213 }
1214 
1215 /// CvtFDivConstToReciprocal tries to convert X/C into X*1/C if C not a special
1216 /// FP value and:
1217 ///    1) 1/C is exact, or
1218 ///    2) reciprocal is allowed.
1219 /// If the conversion was successful, the simplified expression "X * 1/C" is
1220 /// returned; otherwise, NULL is returned.
1221 ///
1222 static Instruction *CvtFDivConstToReciprocal(Value *Dividend, Constant *Divisor,
1223                                              bool AllowReciprocal) {
1224   if (!isa<ConstantFP>(Divisor)) // TODO: handle vectors.
1225     return nullptr;
1226 
1227   const APFloat &FpVal = cast<ConstantFP>(Divisor)->getValueAPF();
1228   APFloat Reciprocal(FpVal.getSemantics());
1229   bool Cvt = FpVal.getExactInverse(&Reciprocal);
1230 
1231   if (!Cvt && AllowReciprocal && FpVal.isFiniteNonZero()) {
1232     Reciprocal = APFloat(FpVal.getSemantics(), 1.0f);
1233     (void)Reciprocal.divide(FpVal, APFloat::rmNearestTiesToEven);
1234     Cvt = !Reciprocal.isDenormal();
1235   }
1236 
1237   if (!Cvt)
1238     return nullptr;
1239 
1240   ConstantFP *R;
1241   R = ConstantFP::get(Dividend->getType()->getContext(), Reciprocal);
1242   return BinaryOperator::CreateFMul(Dividend, R);
1243 }
1244 
1245 Instruction *InstCombiner::visitFDiv(BinaryOperator &I) {
1246   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1247 
1248   if (Value *V = SimplifyVectorOp(I))
1249     return replaceInstUsesWith(I, V);
1250 
1251   if (Value *V = SimplifyFDivInst(Op0, Op1, I.getFastMathFlags(),
1252                                   DL, &TLI, &DT, &AC))
1253     return replaceInstUsesWith(I, V);
1254 
1255   if (isa<Constant>(Op0))
1256     if (SelectInst *SI = dyn_cast<SelectInst>(Op1))
1257       if (Instruction *R = FoldOpIntoSelect(I, SI))
1258         return R;
1259 
1260   bool AllowReassociate = I.hasUnsafeAlgebra();
1261   bool AllowReciprocal = I.hasAllowReciprocal();
1262 
1263   if (Constant *Op1C = dyn_cast<Constant>(Op1)) {
1264     if (SelectInst *SI = dyn_cast<SelectInst>(Op0))
1265       if (Instruction *R = FoldOpIntoSelect(I, SI))
1266         return R;
1267 
1268     if (AllowReassociate) {
1269       Constant *C1 = nullptr;
1270       Constant *C2 = Op1C;
1271       Value *X;
1272       Instruction *Res = nullptr;
1273 
1274       if (match(Op0, m_FMul(m_Value(X), m_Constant(C1)))) {
1275         // (X*C1)/C2 => X * (C1/C2)
1276         //
1277         Constant *C = ConstantExpr::getFDiv(C1, C2);
1278         if (isNormalFp(C))
1279           Res = BinaryOperator::CreateFMul(X, C);
1280       } else if (match(Op0, m_FDiv(m_Value(X), m_Constant(C1)))) {
1281         // (X/C1)/C2 => X /(C2*C1) [=> X * 1/(C2*C1) if reciprocal is allowed]
1282         //
1283         Constant *C = ConstantExpr::getFMul(C1, C2);
1284         if (isNormalFp(C)) {
1285           Res = CvtFDivConstToReciprocal(X, C, AllowReciprocal);
1286           if (!Res)
1287             Res = BinaryOperator::CreateFDiv(X, C);
1288         }
1289       }
1290 
1291       if (Res) {
1292         Res->setFastMathFlags(I.getFastMathFlags());
1293         return Res;
1294       }
1295     }
1296 
1297     // X / C => X * 1/C
1298     if (Instruction *T = CvtFDivConstToReciprocal(Op0, Op1C, AllowReciprocal)) {
1299       T->copyFastMathFlags(&I);
1300       return T;
1301     }
1302 
1303     return nullptr;
1304   }
1305 
1306   if (AllowReassociate && isa<Constant>(Op0)) {
1307     Constant *C1 = cast<Constant>(Op0), *C2;
1308     Constant *Fold = nullptr;
1309     Value *X;
1310     bool CreateDiv = true;
1311 
1312     // C1 / (X*C2) => (C1/C2) / X
1313     if (match(Op1, m_FMul(m_Value(X), m_Constant(C2))))
1314       Fold = ConstantExpr::getFDiv(C1, C2);
1315     else if (match(Op1, m_FDiv(m_Value(X), m_Constant(C2)))) {
1316       // C1 / (X/C2) => (C1*C2) / X
1317       Fold = ConstantExpr::getFMul(C1, C2);
1318     } else if (match(Op1, m_FDiv(m_Constant(C2), m_Value(X)))) {
1319       // C1 / (C2/X) => (C1/C2) * X
1320       Fold = ConstantExpr::getFDiv(C1, C2);
1321       CreateDiv = false;
1322     }
1323 
1324     if (Fold && isNormalFp(Fold)) {
1325       Instruction *R = CreateDiv ? BinaryOperator::CreateFDiv(Fold, X)
1326                                  : BinaryOperator::CreateFMul(X, Fold);
1327       R->setFastMathFlags(I.getFastMathFlags());
1328       return R;
1329     }
1330     return nullptr;
1331   }
1332 
1333   if (AllowReassociate) {
1334     Value *X, *Y;
1335     Value *NewInst = nullptr;
1336     Instruction *SimpR = nullptr;
1337 
1338     if (Op0->hasOneUse() && match(Op0, m_FDiv(m_Value(X), m_Value(Y)))) {
1339       // (X/Y) / Z => X / (Y*Z)
1340       //
1341       if (!isa<Constant>(Y) || !isa<Constant>(Op1)) {
1342         NewInst = Builder->CreateFMul(Y, Op1);
1343         if (Instruction *RI = dyn_cast<Instruction>(NewInst)) {
1344           FastMathFlags Flags = I.getFastMathFlags();
1345           Flags &= cast<Instruction>(Op0)->getFastMathFlags();
1346           RI->setFastMathFlags(Flags);
1347         }
1348         SimpR = BinaryOperator::CreateFDiv(X, NewInst);
1349       }
1350     } else if (Op1->hasOneUse() && match(Op1, m_FDiv(m_Value(X), m_Value(Y)))) {
1351       // Z / (X/Y) => Z*Y / X
1352       //
1353       if (!isa<Constant>(Y) || !isa<Constant>(Op0)) {
1354         NewInst = Builder->CreateFMul(Op0, Y);
1355         if (Instruction *RI = dyn_cast<Instruction>(NewInst)) {
1356           FastMathFlags Flags = I.getFastMathFlags();
1357           Flags &= cast<Instruction>(Op1)->getFastMathFlags();
1358           RI->setFastMathFlags(Flags);
1359         }
1360         SimpR = BinaryOperator::CreateFDiv(NewInst, X);
1361       }
1362     }
1363 
1364     if (NewInst) {
1365       if (Instruction *T = dyn_cast<Instruction>(NewInst))
1366         T->setDebugLoc(I.getDebugLoc());
1367       SimpR->setFastMathFlags(I.getFastMathFlags());
1368       return SimpR;
1369     }
1370   }
1371 
1372   return nullptr;
1373 }
1374 
1375 /// This function implements the transforms common to both integer remainder
1376 /// instructions (urem and srem). It is called by the visitors to those integer
1377 /// remainder instructions.
1378 /// @brief Common integer remainder transforms
1379 Instruction *InstCombiner::commonIRemTransforms(BinaryOperator &I) {
1380   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1381 
1382   // The RHS is known non-zero.
1383   if (Value *V = simplifyValueKnownNonZero(I.getOperand(1), *this, I)) {
1384     I.setOperand(1, V);
1385     return &I;
1386   }
1387 
1388   // Handle cases involving: rem X, (select Cond, Y, Z)
1389   if (isa<SelectInst>(Op1) && SimplifyDivRemOfSelect(I))
1390     return &I;
1391 
1392   if (isa<Constant>(Op1)) {
1393     if (Instruction *Op0I = dyn_cast<Instruction>(Op0)) {
1394       if (SelectInst *SI = dyn_cast<SelectInst>(Op0I)) {
1395         if (Instruction *R = FoldOpIntoSelect(I, SI))
1396           return R;
1397       } else if (isa<PHINode>(Op0I)) {
1398         using namespace llvm::PatternMatch;
1399         const APInt *Op1Int;
1400         if (match(Op1, m_APInt(Op1Int)) && !Op1Int->isMinValue() &&
1401             (I.getOpcode() == Instruction::URem ||
1402              !Op1Int->isMinSignedValue())) {
1403           // FoldOpIntoPhi will speculate instructions to the end of the PHI's
1404           // predecessor blocks, so do this only if we know the srem or urem
1405           // will not fault.
1406           if (Instruction *NV = FoldOpIntoPhi(I))
1407             return NV;
1408         }
1409       }
1410 
1411       // See if we can fold away this rem instruction.
1412       if (SimplifyDemandedInstructionBits(I))
1413         return &I;
1414     }
1415   }
1416 
1417   return nullptr;
1418 }
1419 
1420 Instruction *InstCombiner::visitURem(BinaryOperator &I) {
1421   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1422 
1423   if (Value *V = SimplifyVectorOp(I))
1424     return replaceInstUsesWith(I, V);
1425 
1426   if (Value *V = SimplifyURemInst(Op0, Op1, DL, &TLI, &DT, &AC))
1427     return replaceInstUsesWith(I, V);
1428 
1429   if (Instruction *common = commonIRemTransforms(I))
1430     return common;
1431 
1432   // (zext A) urem (zext B) --> zext (A urem B)
1433   if (ZExtInst *ZOp0 = dyn_cast<ZExtInst>(Op0))
1434     if (Value *ZOp1 = dyn_castZExtVal(Op1, ZOp0->getSrcTy()))
1435       return new ZExtInst(Builder->CreateURem(ZOp0->getOperand(0), ZOp1),
1436                           I.getType());
1437 
1438   // X urem Y -> X and Y-1, where Y is a power of 2,
1439   if (isKnownToBeAPowerOfTwo(Op1, DL, /*OrZero*/ true, 0, &AC, &I, &DT)) {
1440     Constant *N1 = Constant::getAllOnesValue(I.getType());
1441     Value *Add = Builder->CreateAdd(Op1, N1);
1442     return BinaryOperator::CreateAnd(Op0, Add);
1443   }
1444 
1445   // 1 urem X -> zext(X != 1)
1446   if (match(Op0, m_One())) {
1447     Value *Cmp = Builder->CreateICmpNE(Op1, Op0);
1448     Value *Ext = Builder->CreateZExt(Cmp, I.getType());
1449     return replaceInstUsesWith(I, Ext);
1450   }
1451 
1452   // X urem C -> X < C ? X : X - C, where C >= signbit.
1453   const APInt *DivisorC;
1454   if (match(Op1, m_APInt(DivisorC)) && DivisorC->isNegative()) {
1455     Value *Cmp = Builder->CreateICmpULT(Op0, Op1);
1456     Value *Sub = Builder->CreateSub(Op0, Op1);
1457     return SelectInst::Create(Cmp, Op0, Sub);
1458   }
1459 
1460   return nullptr;
1461 }
1462 
1463 Instruction *InstCombiner::visitSRem(BinaryOperator &I) {
1464   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1465 
1466   if (Value *V = SimplifyVectorOp(I))
1467     return replaceInstUsesWith(I, V);
1468 
1469   if (Value *V = SimplifySRemInst(Op0, Op1, DL, &TLI, &DT, &AC))
1470     return replaceInstUsesWith(I, V);
1471 
1472   // Handle the integer rem common cases
1473   if (Instruction *Common = commonIRemTransforms(I))
1474     return Common;
1475 
1476   {
1477     const APInt *Y;
1478     // X % -Y -> X % Y
1479     if (match(Op1, m_APInt(Y)) && Y->isNegative() && !Y->isMinSignedValue()) {
1480       Worklist.AddValue(I.getOperand(1));
1481       I.setOperand(1, ConstantInt::get(I.getType(), -*Y));
1482       return &I;
1483     }
1484   }
1485 
1486   // If the sign bits of both operands are zero (i.e. we can prove they are
1487   // unsigned inputs), turn this into a urem.
1488   if (I.getType()->isIntegerTy()) {
1489     APInt Mask(APInt::getSignBit(I.getType()->getPrimitiveSizeInBits()));
1490     if (MaskedValueIsZero(Op1, Mask, 0, &I) &&
1491         MaskedValueIsZero(Op0, Mask, 0, &I)) {
1492       // X srem Y -> X urem Y, iff X and Y don't have sign bit set
1493       return BinaryOperator::CreateURem(Op0, Op1, I.getName());
1494     }
1495   }
1496 
1497   // If it's a constant vector, flip any negative values positive.
1498   if (isa<ConstantVector>(Op1) || isa<ConstantDataVector>(Op1)) {
1499     Constant *C = cast<Constant>(Op1);
1500     unsigned VWidth = C->getType()->getVectorNumElements();
1501 
1502     bool hasNegative = false;
1503     bool hasMissing = false;
1504     for (unsigned i = 0; i != VWidth; ++i) {
1505       Constant *Elt = C->getAggregateElement(i);
1506       if (!Elt) {
1507         hasMissing = true;
1508         break;
1509       }
1510 
1511       if (ConstantInt *RHS = dyn_cast<ConstantInt>(Elt))
1512         if (RHS->isNegative())
1513           hasNegative = true;
1514     }
1515 
1516     if (hasNegative && !hasMissing) {
1517       SmallVector<Constant *, 16> Elts(VWidth);
1518       for (unsigned i = 0; i != VWidth; ++i) {
1519         Elts[i] = C->getAggregateElement(i);  // Handle undef, etc.
1520         if (ConstantInt *RHS = dyn_cast<ConstantInt>(Elts[i])) {
1521           if (RHS->isNegative())
1522             Elts[i] = cast<ConstantInt>(ConstantExpr::getNeg(RHS));
1523         }
1524       }
1525 
1526       Constant *NewRHSV = ConstantVector::get(Elts);
1527       if (NewRHSV != C) {  // Don't loop on -MININT
1528         Worklist.AddValue(I.getOperand(1));
1529         I.setOperand(1, NewRHSV);
1530         return &I;
1531       }
1532     }
1533   }
1534 
1535   return nullptr;
1536 }
1537 
1538 Instruction *InstCombiner::visitFRem(BinaryOperator &I) {
1539   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1540 
1541   if (Value *V = SimplifyVectorOp(I))
1542     return replaceInstUsesWith(I, V);
1543 
1544   if (Value *V = SimplifyFRemInst(Op0, Op1, I.getFastMathFlags(),
1545                                   DL, &TLI, &DT, &AC))
1546     return replaceInstUsesWith(I, V);
1547 
1548   // Handle cases involving: rem X, (select Cond, Y, Z)
1549   if (isa<SelectInst>(Op1) && SimplifyDivRemOfSelect(I))
1550     return &I;
1551 
1552   return nullptr;
1553 }
1554