1 //===- InstCombineAddSub.cpp ------------------------------------*- C++ -*-===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file implements the visit functions for add, fadd, sub, and fsub.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "InstCombineInternal.h"
14 #include "llvm/ADT/APFloat.h"
15 #include "llvm/ADT/APInt.h"
16 #include "llvm/ADT/STLExtras.h"
17 #include "llvm/ADT/SmallVector.h"
18 #include "llvm/Analysis/InstructionSimplify.h"
19 #include "llvm/Analysis/ValueTracking.h"
20 #include "llvm/IR/Constant.h"
21 #include "llvm/IR/Constants.h"
22 #include "llvm/IR/InstrTypes.h"
23 #include "llvm/IR/Instruction.h"
24 #include "llvm/IR/Instructions.h"
25 #include "llvm/IR/Operator.h"
26 #include "llvm/IR/PatternMatch.h"
27 #include "llvm/IR/Type.h"
28 #include "llvm/IR/Value.h"
29 #include "llvm/Support/AlignOf.h"
30 #include "llvm/Support/Casting.h"
31 #include "llvm/Support/KnownBits.h"
32 #include <cassert>
33 #include <utility>
34 
35 using namespace llvm;
36 using namespace PatternMatch;
37 
38 #define DEBUG_TYPE "instcombine"
39 
40 namespace {
41 
42   /// Class representing coefficient of floating-point addend.
43   /// This class needs to be highly efficient, which is especially true for
44   /// the constructor. As of I write this comment, the cost of the default
45   /// constructor is merely 4-byte-store-zero (Assuming compiler is able to
46   /// perform write-merging).
47   ///
48   class FAddendCoef {
49   public:
50     // The constructor has to initialize a APFloat, which is unnecessary for
51     // most addends which have coefficient either 1 or -1. So, the constructor
52     // is expensive. In order to avoid the cost of the constructor, we should
53     // reuse some instances whenever possible. The pre-created instances
54     // FAddCombine::Add[0-5] embodies this idea.
55     FAddendCoef() = default;
56     ~FAddendCoef();
57 
58     // If possible, don't define operator+/operator- etc because these
59     // operators inevitably call FAddendCoef's constructor which is not cheap.
60     void operator=(const FAddendCoef &A);
61     void operator+=(const FAddendCoef &A);
62     void operator*=(const FAddendCoef &S);
63 
64     void set(short C) {
65       assert(!insaneIntVal(C) && "Insane coefficient");
66       IsFp = false; IntVal = C;
67     }
68 
69     void set(const APFloat& C);
70 
71     void negate();
72 
73     bool isZero() const { return isInt() ? !IntVal : getFpVal().isZero(); }
74     Value *getValue(Type *) const;
75 
76     bool isOne() const { return isInt() && IntVal == 1; }
77     bool isTwo() const { return isInt() && IntVal == 2; }
78     bool isMinusOne() const { return isInt() && IntVal == -1; }
79     bool isMinusTwo() const { return isInt() && IntVal == -2; }
80 
81   private:
82     bool insaneIntVal(int V) { return V > 4 || V < -4; }
83 
84     APFloat *getFpValPtr()
85       { return reinterpret_cast<APFloat *>(&FpValBuf.buffer[0]); }
86 
87     const APFloat *getFpValPtr() const
88       { return reinterpret_cast<const APFloat *>(&FpValBuf.buffer[0]); }
89 
90     const APFloat &getFpVal() const {
91       assert(IsFp && BufHasFpVal && "Incorret state");
92       return *getFpValPtr();
93     }
94 
95     APFloat &getFpVal() {
96       assert(IsFp && BufHasFpVal && "Incorret state");
97       return *getFpValPtr();
98     }
99 
100     bool isInt() const { return !IsFp; }
101 
102     // If the coefficient is represented by an integer, promote it to a
103     // floating point.
104     void convertToFpType(const fltSemantics &Sem);
105 
106     // Construct an APFloat from a signed integer.
107     // TODO: We should get rid of this function when APFloat can be constructed
108     //       from an *SIGNED* integer.
109     APFloat createAPFloatFromInt(const fltSemantics &Sem, int Val);
110 
111     bool IsFp = false;
112 
113     // True iff FpValBuf contains an instance of APFloat.
114     bool BufHasFpVal = false;
115 
116     // The integer coefficient of an individual addend is either 1 or -1,
117     // and we try to simplify at most 4 addends from neighboring at most
118     // two instructions. So the range of <IntVal> falls in [-4, 4]. APInt
119     // is overkill of this end.
120     short IntVal = 0;
121 
122     AlignedCharArrayUnion<APFloat> FpValBuf;
123   };
124 
125   /// FAddend is used to represent floating-point addend. An addend is
126   /// represented as <C, V>, where the V is a symbolic value, and C is a
127   /// constant coefficient. A constant addend is represented as <C, 0>.
128   class FAddend {
129   public:
130     FAddend() = default;
131 
132     void operator+=(const FAddend &T) {
133       assert((Val == T.Val) && "Symbolic-values disagree");
134       Coeff += T.Coeff;
135     }
136 
137     Value *getSymVal() const { return Val; }
138     const FAddendCoef &getCoef() const { return Coeff; }
139 
140     bool isConstant() const { return Val == nullptr; }
141     bool isZero() const { return Coeff.isZero(); }
142 
143     void set(short Coefficient, Value *V) {
144       Coeff.set(Coefficient);
145       Val = V;
146     }
147     void set(const APFloat &Coefficient, Value *V) {
148       Coeff.set(Coefficient);
149       Val = V;
150     }
151     void set(const ConstantFP *Coefficient, Value *V) {
152       Coeff.set(Coefficient->getValueAPF());
153       Val = V;
154     }
155 
156     void negate() { Coeff.negate(); }
157 
158     /// Drill down the U-D chain one step to find the definition of V, and
159     /// try to break the definition into one or two addends.
160     static unsigned drillValueDownOneStep(Value* V, FAddend &A0, FAddend &A1);
161 
162     /// Similar to FAddend::drillDownOneStep() except that the value being
163     /// splitted is the addend itself.
164     unsigned drillAddendDownOneStep(FAddend &Addend0, FAddend &Addend1) const;
165 
166   private:
167     void Scale(const FAddendCoef& ScaleAmt) { Coeff *= ScaleAmt; }
168 
169     // This addend has the value of "Coeff * Val".
170     Value *Val = nullptr;
171     FAddendCoef Coeff;
172   };
173 
174   /// FAddCombine is the class for optimizing an unsafe fadd/fsub along
175   /// with its neighboring at most two instructions.
176   ///
177   class FAddCombine {
178   public:
179     FAddCombine(InstCombiner::BuilderTy &B) : Builder(B) {}
180 
181     Value *simplify(Instruction *FAdd);
182 
183   private:
184     using AddendVect = SmallVector<const FAddend *, 4>;
185 
186     Value *simplifyFAdd(AddendVect& V, unsigned InstrQuota);
187 
188     /// Convert given addend to a Value
189     Value *createAddendVal(const FAddend &A, bool& NeedNeg);
190 
191     /// Return the number of instructions needed to emit the N-ary addition.
192     unsigned calcInstrNumber(const AddendVect& Vect);
193 
194     Value *createFSub(Value *Opnd0, Value *Opnd1);
195     Value *createFAdd(Value *Opnd0, Value *Opnd1);
196     Value *createFMul(Value *Opnd0, Value *Opnd1);
197     Value *createFNeg(Value *V);
198     Value *createNaryFAdd(const AddendVect& Opnds, unsigned InstrQuota);
199     void createInstPostProc(Instruction *NewInst, bool NoNumber = false);
200 
201      // Debugging stuff are clustered here.
202     #ifndef NDEBUG
203       unsigned CreateInstrNum;
204       void initCreateInstNum() { CreateInstrNum = 0; }
205       void incCreateInstNum() { CreateInstrNum++; }
206     #else
207       void initCreateInstNum() {}
208       void incCreateInstNum() {}
209     #endif
210 
211     InstCombiner::BuilderTy &Builder;
212     Instruction *Instr = nullptr;
213   };
214 
215 } // end anonymous namespace
216 
217 //===----------------------------------------------------------------------===//
218 //
219 // Implementation of
220 //    {FAddendCoef, FAddend, FAddition, FAddCombine}.
221 //
222 //===----------------------------------------------------------------------===//
223 FAddendCoef::~FAddendCoef() {
224   if (BufHasFpVal)
225     getFpValPtr()->~APFloat();
226 }
227 
228 void FAddendCoef::set(const APFloat& C) {
229   APFloat *P = getFpValPtr();
230 
231   if (isInt()) {
232     // As the buffer is meanless byte stream, we cannot call
233     // APFloat::operator=().
234     new(P) APFloat(C);
235   } else
236     *P = C;
237 
238   IsFp = BufHasFpVal = true;
239 }
240 
241 void FAddendCoef::convertToFpType(const fltSemantics &Sem) {
242   if (!isInt())
243     return;
244 
245   APFloat *P = getFpValPtr();
246   if (IntVal > 0)
247     new(P) APFloat(Sem, IntVal);
248   else {
249     new(P) APFloat(Sem, 0 - IntVal);
250     P->changeSign();
251   }
252   IsFp = BufHasFpVal = true;
253 }
254 
255 APFloat FAddendCoef::createAPFloatFromInt(const fltSemantics &Sem, int Val) {
256   if (Val >= 0)
257     return APFloat(Sem, Val);
258 
259   APFloat T(Sem, 0 - Val);
260   T.changeSign();
261 
262   return T;
263 }
264 
265 void FAddendCoef::operator=(const FAddendCoef &That) {
266   if (That.isInt())
267     set(That.IntVal);
268   else
269     set(That.getFpVal());
270 }
271 
272 void FAddendCoef::operator+=(const FAddendCoef &That) {
273   enum APFloat::roundingMode RndMode = APFloat::rmNearestTiesToEven;
274   if (isInt() == That.isInt()) {
275     if (isInt())
276       IntVal += That.IntVal;
277     else
278       getFpVal().add(That.getFpVal(), RndMode);
279     return;
280   }
281 
282   if (isInt()) {
283     const APFloat &T = That.getFpVal();
284     convertToFpType(T.getSemantics());
285     getFpVal().add(T, RndMode);
286     return;
287   }
288 
289   APFloat &T = getFpVal();
290   T.add(createAPFloatFromInt(T.getSemantics(), That.IntVal), RndMode);
291 }
292 
293 void FAddendCoef::operator*=(const FAddendCoef &That) {
294   if (That.isOne())
295     return;
296 
297   if (That.isMinusOne()) {
298     negate();
299     return;
300   }
301 
302   if (isInt() && That.isInt()) {
303     int Res = IntVal * (int)That.IntVal;
304     assert(!insaneIntVal(Res) && "Insane int value");
305     IntVal = Res;
306     return;
307   }
308 
309   const fltSemantics &Semantic =
310     isInt() ? That.getFpVal().getSemantics() : getFpVal().getSemantics();
311 
312   if (isInt())
313     convertToFpType(Semantic);
314   APFloat &F0 = getFpVal();
315 
316   if (That.isInt())
317     F0.multiply(createAPFloatFromInt(Semantic, That.IntVal),
318                 APFloat::rmNearestTiesToEven);
319   else
320     F0.multiply(That.getFpVal(), APFloat::rmNearestTiesToEven);
321 }
322 
323 void FAddendCoef::negate() {
324   if (isInt())
325     IntVal = 0 - IntVal;
326   else
327     getFpVal().changeSign();
328 }
329 
330 Value *FAddendCoef::getValue(Type *Ty) const {
331   return isInt() ?
332     ConstantFP::get(Ty, float(IntVal)) :
333     ConstantFP::get(Ty->getContext(), getFpVal());
334 }
335 
336 // The definition of <Val>     Addends
337 // =========================================
338 //  A + B                     <1, A>, <1,B>
339 //  A - B                     <1, A>, <1,B>
340 //  0 - B                     <-1, B>
341 //  C * A,                    <C, A>
342 //  A + C                     <1, A> <C, NULL>
343 //  0 +/- 0                   <0, NULL> (corner case)
344 //
345 // Legend: A and B are not constant, C is constant
346 unsigned FAddend::drillValueDownOneStep
347   (Value *Val, FAddend &Addend0, FAddend &Addend1) {
348   Instruction *I = nullptr;
349   if (!Val || !(I = dyn_cast<Instruction>(Val)))
350     return 0;
351 
352   unsigned Opcode = I->getOpcode();
353 
354   if (Opcode == Instruction::FAdd || Opcode == Instruction::FSub) {
355     ConstantFP *C0, *C1;
356     Value *Opnd0 = I->getOperand(0);
357     Value *Opnd1 = I->getOperand(1);
358     if ((C0 = dyn_cast<ConstantFP>(Opnd0)) && C0->isZero())
359       Opnd0 = nullptr;
360 
361     if ((C1 = dyn_cast<ConstantFP>(Opnd1)) && C1->isZero())
362       Opnd1 = nullptr;
363 
364     if (Opnd0) {
365       if (!C0)
366         Addend0.set(1, Opnd0);
367       else
368         Addend0.set(C0, nullptr);
369     }
370 
371     if (Opnd1) {
372       FAddend &Addend = Opnd0 ? Addend1 : Addend0;
373       if (!C1)
374         Addend.set(1, Opnd1);
375       else
376         Addend.set(C1, nullptr);
377       if (Opcode == Instruction::FSub)
378         Addend.negate();
379     }
380 
381     if (Opnd0 || Opnd1)
382       return Opnd0 && Opnd1 ? 2 : 1;
383 
384     // Both operands are zero. Weird!
385     Addend0.set(APFloat(C0->getValueAPF().getSemantics()), nullptr);
386     return 1;
387   }
388 
389   if (I->getOpcode() == Instruction::FMul) {
390     Value *V0 = I->getOperand(0);
391     Value *V1 = I->getOperand(1);
392     if (ConstantFP *C = dyn_cast<ConstantFP>(V0)) {
393       Addend0.set(C, V1);
394       return 1;
395     }
396 
397     if (ConstantFP *C = dyn_cast<ConstantFP>(V1)) {
398       Addend0.set(C, V0);
399       return 1;
400     }
401   }
402 
403   return 0;
404 }
405 
406 // Try to break *this* addend into two addends. e.g. Suppose this addend is
407 // <2.3, V>, and V = X + Y, by calling this function, we obtain two addends,
408 // i.e. <2.3, X> and <2.3, Y>.
409 unsigned FAddend::drillAddendDownOneStep
410   (FAddend &Addend0, FAddend &Addend1) const {
411   if (isConstant())
412     return 0;
413 
414   unsigned BreakNum = FAddend::drillValueDownOneStep(Val, Addend0, Addend1);
415   if (!BreakNum || Coeff.isOne())
416     return BreakNum;
417 
418   Addend0.Scale(Coeff);
419 
420   if (BreakNum == 2)
421     Addend1.Scale(Coeff);
422 
423   return BreakNum;
424 }
425 
426 Value *FAddCombine::simplify(Instruction *I) {
427   assert(I->hasAllowReassoc() && I->hasNoSignedZeros() &&
428          "Expected 'reassoc'+'nsz' instruction");
429 
430   // Currently we are not able to handle vector type.
431   if (I->getType()->isVectorTy())
432     return nullptr;
433 
434   assert((I->getOpcode() == Instruction::FAdd ||
435           I->getOpcode() == Instruction::FSub) && "Expect add/sub");
436 
437   // Save the instruction before calling other member-functions.
438   Instr = I;
439 
440   FAddend Opnd0, Opnd1, Opnd0_0, Opnd0_1, Opnd1_0, Opnd1_1;
441 
442   unsigned OpndNum = FAddend::drillValueDownOneStep(I, Opnd0, Opnd1);
443 
444   // Step 1: Expand the 1st addend into Opnd0_0 and Opnd0_1.
445   unsigned Opnd0_ExpNum = 0;
446   unsigned Opnd1_ExpNum = 0;
447 
448   if (!Opnd0.isConstant())
449     Opnd0_ExpNum = Opnd0.drillAddendDownOneStep(Opnd0_0, Opnd0_1);
450 
451   // Step 2: Expand the 2nd addend into Opnd1_0 and Opnd1_1.
452   if (OpndNum == 2 && !Opnd1.isConstant())
453     Opnd1_ExpNum = Opnd1.drillAddendDownOneStep(Opnd1_0, Opnd1_1);
454 
455   // Step 3: Try to optimize Opnd0_0 + Opnd0_1 + Opnd1_0 + Opnd1_1
456   if (Opnd0_ExpNum && Opnd1_ExpNum) {
457     AddendVect AllOpnds;
458     AllOpnds.push_back(&Opnd0_0);
459     AllOpnds.push_back(&Opnd1_0);
460     if (Opnd0_ExpNum == 2)
461       AllOpnds.push_back(&Opnd0_1);
462     if (Opnd1_ExpNum == 2)
463       AllOpnds.push_back(&Opnd1_1);
464 
465     // Compute instruction quota. We should save at least one instruction.
466     unsigned InstQuota = 0;
467 
468     Value *V0 = I->getOperand(0);
469     Value *V1 = I->getOperand(1);
470     InstQuota = ((!isa<Constant>(V0) && V0->hasOneUse()) &&
471                  (!isa<Constant>(V1) && V1->hasOneUse())) ? 2 : 1;
472 
473     if (Value *R = simplifyFAdd(AllOpnds, InstQuota))
474       return R;
475   }
476 
477   if (OpndNum != 2) {
478     // The input instruction is : "I=0.0 +/- V". If the "V" were able to be
479     // splitted into two addends, say "V = X - Y", the instruction would have
480     // been optimized into "I = Y - X" in the previous steps.
481     //
482     const FAddendCoef &CE = Opnd0.getCoef();
483     return CE.isOne() ? Opnd0.getSymVal() : nullptr;
484   }
485 
486   // step 4: Try to optimize Opnd0 + Opnd1_0 [+ Opnd1_1]
487   if (Opnd1_ExpNum) {
488     AddendVect AllOpnds;
489     AllOpnds.push_back(&Opnd0);
490     AllOpnds.push_back(&Opnd1_0);
491     if (Opnd1_ExpNum == 2)
492       AllOpnds.push_back(&Opnd1_1);
493 
494     if (Value *R = simplifyFAdd(AllOpnds, 1))
495       return R;
496   }
497 
498   // step 5: Try to optimize Opnd1 + Opnd0_0 [+ Opnd0_1]
499   if (Opnd0_ExpNum) {
500     AddendVect AllOpnds;
501     AllOpnds.push_back(&Opnd1);
502     AllOpnds.push_back(&Opnd0_0);
503     if (Opnd0_ExpNum == 2)
504       AllOpnds.push_back(&Opnd0_1);
505 
506     if (Value *R = simplifyFAdd(AllOpnds, 1))
507       return R;
508   }
509 
510   return nullptr;
511 }
512 
513 Value *FAddCombine::simplifyFAdd(AddendVect& Addends, unsigned InstrQuota) {
514   unsigned AddendNum = Addends.size();
515   assert(AddendNum <= 4 && "Too many addends");
516 
517   // For saving intermediate results;
518   unsigned NextTmpIdx = 0;
519   FAddend TmpResult[3];
520 
521   // Points to the constant addend of the resulting simplified expression.
522   // If the resulting expr has constant-addend, this constant-addend is
523   // desirable to reside at the top of the resulting expression tree. Placing
524   // constant close to supper-expr(s) will potentially reveal some optimization
525   // opportunities in super-expr(s).
526   const FAddend *ConstAdd = nullptr;
527 
528   // Simplified addends are placed <SimpVect>.
529   AddendVect SimpVect;
530 
531   // The outer loop works on one symbolic-value at a time. Suppose the input
532   // addends are : <a1, x>, <b1, y>, <a2, x>, <c1, z>, <b2, y>, ...
533   // The symbolic-values will be processed in this order: x, y, z.
534   for (unsigned SymIdx = 0; SymIdx < AddendNum; SymIdx++) {
535 
536     const FAddend *ThisAddend = Addends[SymIdx];
537     if (!ThisAddend) {
538       // This addend was processed before.
539       continue;
540     }
541 
542     Value *Val = ThisAddend->getSymVal();
543     unsigned StartIdx = SimpVect.size();
544     SimpVect.push_back(ThisAddend);
545 
546     // The inner loop collects addends sharing same symbolic-value, and these
547     // addends will be later on folded into a single addend. Following above
548     // example, if the symbolic value "y" is being processed, the inner loop
549     // will collect two addends "<b1,y>" and "<b2,Y>". These two addends will
550     // be later on folded into "<b1+b2, y>".
551     for (unsigned SameSymIdx = SymIdx + 1;
552          SameSymIdx < AddendNum; SameSymIdx++) {
553       const FAddend *T = Addends[SameSymIdx];
554       if (T && T->getSymVal() == Val) {
555         // Set null such that next iteration of the outer loop will not process
556         // this addend again.
557         Addends[SameSymIdx] = nullptr;
558         SimpVect.push_back(T);
559       }
560     }
561 
562     // If multiple addends share same symbolic value, fold them together.
563     if (StartIdx + 1 != SimpVect.size()) {
564       FAddend &R = TmpResult[NextTmpIdx ++];
565       R = *SimpVect[StartIdx];
566       for (unsigned Idx = StartIdx + 1; Idx < SimpVect.size(); Idx++)
567         R += *SimpVect[Idx];
568 
569       // Pop all addends being folded and push the resulting folded addend.
570       SimpVect.resize(StartIdx);
571       if (Val) {
572         if (!R.isZero()) {
573           SimpVect.push_back(&R);
574         }
575       } else {
576         // Don't push constant addend at this time. It will be the last element
577         // of <SimpVect>.
578         ConstAdd = &R;
579       }
580     }
581   }
582 
583   assert((NextTmpIdx <= array_lengthof(TmpResult) + 1) &&
584          "out-of-bound access");
585 
586   if (ConstAdd)
587     SimpVect.push_back(ConstAdd);
588 
589   Value *Result;
590   if (!SimpVect.empty())
591     Result = createNaryFAdd(SimpVect, InstrQuota);
592   else {
593     // The addition is folded to 0.0.
594     Result = ConstantFP::get(Instr->getType(), 0.0);
595   }
596 
597   return Result;
598 }
599 
600 Value *FAddCombine::createNaryFAdd
601   (const AddendVect &Opnds, unsigned InstrQuota) {
602   assert(!Opnds.empty() && "Expect at least one addend");
603 
604   // Step 1: Check if the # of instructions needed exceeds the quota.
605 
606   unsigned InstrNeeded = calcInstrNumber(Opnds);
607   if (InstrNeeded > InstrQuota)
608     return nullptr;
609 
610   initCreateInstNum();
611 
612   // step 2: Emit the N-ary addition.
613   // Note that at most three instructions are involved in Fadd-InstCombine: the
614   // addition in question, and at most two neighboring instructions.
615   // The resulting optimized addition should have at least one less instruction
616   // than the original addition expression tree. This implies that the resulting
617   // N-ary addition has at most two instructions, and we don't need to worry
618   // about tree-height when constructing the N-ary addition.
619 
620   Value *LastVal = nullptr;
621   bool LastValNeedNeg = false;
622 
623   // Iterate the addends, creating fadd/fsub using adjacent two addends.
624   for (const FAddend *Opnd : Opnds) {
625     bool NeedNeg;
626     Value *V = createAddendVal(*Opnd, NeedNeg);
627     if (!LastVal) {
628       LastVal = V;
629       LastValNeedNeg = NeedNeg;
630       continue;
631     }
632 
633     if (LastValNeedNeg == NeedNeg) {
634       LastVal = createFAdd(LastVal, V);
635       continue;
636     }
637 
638     if (LastValNeedNeg)
639       LastVal = createFSub(V, LastVal);
640     else
641       LastVal = createFSub(LastVal, V);
642 
643     LastValNeedNeg = false;
644   }
645 
646   if (LastValNeedNeg) {
647     LastVal = createFNeg(LastVal);
648   }
649 
650 #ifndef NDEBUG
651   assert(CreateInstrNum == InstrNeeded &&
652          "Inconsistent in instruction numbers");
653 #endif
654 
655   return LastVal;
656 }
657 
658 Value *FAddCombine::createFSub(Value *Opnd0, Value *Opnd1) {
659   Value *V = Builder.CreateFSub(Opnd0, Opnd1);
660   if (Instruction *I = dyn_cast<Instruction>(V))
661     createInstPostProc(I);
662   return V;
663 }
664 
665 Value *FAddCombine::createFNeg(Value *V) {
666   Value *Zero = cast<Value>(ConstantFP::getZeroValueForNegation(V->getType()));
667   Value *NewV = createFSub(Zero, V);
668   if (Instruction *I = dyn_cast<Instruction>(NewV))
669     createInstPostProc(I, true); // fneg's don't receive instruction numbers.
670   return NewV;
671 }
672 
673 Value *FAddCombine::createFAdd(Value *Opnd0, Value *Opnd1) {
674   Value *V = Builder.CreateFAdd(Opnd0, Opnd1);
675   if (Instruction *I = dyn_cast<Instruction>(V))
676     createInstPostProc(I);
677   return V;
678 }
679 
680 Value *FAddCombine::createFMul(Value *Opnd0, Value *Opnd1) {
681   Value *V = Builder.CreateFMul(Opnd0, Opnd1);
682   if (Instruction *I = dyn_cast<Instruction>(V))
683     createInstPostProc(I);
684   return V;
685 }
686 
687 void FAddCombine::createInstPostProc(Instruction *NewInstr, bool NoNumber) {
688   NewInstr->setDebugLoc(Instr->getDebugLoc());
689 
690   // Keep track of the number of instruction created.
691   if (!NoNumber)
692     incCreateInstNum();
693 
694   // Propagate fast-math flags
695   NewInstr->setFastMathFlags(Instr->getFastMathFlags());
696 }
697 
698 // Return the number of instruction needed to emit the N-ary addition.
699 // NOTE: Keep this function in sync with createAddendVal().
700 unsigned FAddCombine::calcInstrNumber(const AddendVect &Opnds) {
701   unsigned OpndNum = Opnds.size();
702   unsigned InstrNeeded = OpndNum - 1;
703 
704   // The number of addends in the form of "(-1)*x".
705   unsigned NegOpndNum = 0;
706 
707   // Adjust the number of instructions needed to emit the N-ary add.
708   for (const FAddend *Opnd : Opnds) {
709     if (Opnd->isConstant())
710       continue;
711 
712     // The constant check above is really for a few special constant
713     // coefficients.
714     if (isa<UndefValue>(Opnd->getSymVal()))
715       continue;
716 
717     const FAddendCoef &CE = Opnd->getCoef();
718     if (CE.isMinusOne() || CE.isMinusTwo())
719       NegOpndNum++;
720 
721     // Let the addend be "c * x". If "c == +/-1", the value of the addend
722     // is immediately available; otherwise, it needs exactly one instruction
723     // to evaluate the value.
724     if (!CE.isMinusOne() && !CE.isOne())
725       InstrNeeded++;
726   }
727   if (NegOpndNum == OpndNum)
728     InstrNeeded++;
729   return InstrNeeded;
730 }
731 
732 // Input Addend        Value           NeedNeg(output)
733 // ================================================================
734 // Constant C          C               false
735 // <+/-1, V>           V               coefficient is -1
736 // <2/-2, V>          "fadd V, V"      coefficient is -2
737 // <C, V>             "fmul V, C"      false
738 //
739 // NOTE: Keep this function in sync with FAddCombine::calcInstrNumber.
740 Value *FAddCombine::createAddendVal(const FAddend &Opnd, bool &NeedNeg) {
741   const FAddendCoef &Coeff = Opnd.getCoef();
742 
743   if (Opnd.isConstant()) {
744     NeedNeg = false;
745     return Coeff.getValue(Instr->getType());
746   }
747 
748   Value *OpndVal = Opnd.getSymVal();
749 
750   if (Coeff.isMinusOne() || Coeff.isOne()) {
751     NeedNeg = Coeff.isMinusOne();
752     return OpndVal;
753   }
754 
755   if (Coeff.isTwo() || Coeff.isMinusTwo()) {
756     NeedNeg = Coeff.isMinusTwo();
757     return createFAdd(OpndVal, OpndVal);
758   }
759 
760   NeedNeg = false;
761   return createFMul(OpndVal, Coeff.getValue(Instr->getType()));
762 }
763 
764 // Checks if any operand is negative and we can convert add to sub.
765 // This function checks for following negative patterns
766 //   ADD(XOR(OR(Z, NOT(C)), C)), 1) == NEG(AND(Z, C))
767 //   ADD(XOR(AND(Z, C), C), 1) == NEG(OR(Z, ~C))
768 //   XOR(AND(Z, C), (C + 1)) == NEG(OR(Z, ~C)) if C is even
769 static Value *checkForNegativeOperand(BinaryOperator &I,
770                                       InstCombiner::BuilderTy &Builder) {
771   Value *LHS = I.getOperand(0), *RHS = I.getOperand(1);
772 
773   // This function creates 2 instructions to replace ADD, we need at least one
774   // of LHS or RHS to have one use to ensure benefit in transform.
775   if (!LHS->hasOneUse() && !RHS->hasOneUse())
776     return nullptr;
777 
778   Value *X = nullptr, *Y = nullptr, *Z = nullptr;
779   const APInt *C1 = nullptr, *C2 = nullptr;
780 
781   // if ONE is on other side, swap
782   if (match(RHS, m_Add(m_Value(X), m_One())))
783     std::swap(LHS, RHS);
784 
785   if (match(LHS, m_Add(m_Value(X), m_One()))) {
786     // if XOR on other side, swap
787     if (match(RHS, m_Xor(m_Value(Y), m_APInt(C1))))
788       std::swap(X, RHS);
789 
790     if (match(X, m_Xor(m_Value(Y), m_APInt(C1)))) {
791       // X = XOR(Y, C1), Y = OR(Z, C2), C2 = NOT(C1) ==> X == NOT(AND(Z, C1))
792       // ADD(ADD(X, 1), RHS) == ADD(X, ADD(RHS, 1)) == SUB(RHS, AND(Z, C1))
793       if (match(Y, m_Or(m_Value(Z), m_APInt(C2))) && (*C2 == ~(*C1))) {
794         Value *NewAnd = Builder.CreateAnd(Z, *C1);
795         return Builder.CreateSub(RHS, NewAnd, "sub");
796       } else if (match(Y, m_And(m_Value(Z), m_APInt(C2))) && (*C1 == *C2)) {
797         // X = XOR(Y, C1), Y = AND(Z, C2), C2 == C1 ==> X == NOT(OR(Z, ~C1))
798         // ADD(ADD(X, 1), RHS) == ADD(X, ADD(RHS, 1)) == SUB(RHS, OR(Z, ~C1))
799         Value *NewOr = Builder.CreateOr(Z, ~(*C1));
800         return Builder.CreateSub(RHS, NewOr, "sub");
801       }
802     }
803   }
804 
805   // Restore LHS and RHS
806   LHS = I.getOperand(0);
807   RHS = I.getOperand(1);
808 
809   // if XOR is on other side, swap
810   if (match(RHS, m_Xor(m_Value(Y), m_APInt(C1))))
811     std::swap(LHS, RHS);
812 
813   // C2 is ODD
814   // LHS = XOR(Y, C1), Y = AND(Z, C2), C1 == (C2 + 1) => LHS == NEG(OR(Z, ~C2))
815   // ADD(LHS, RHS) == SUB(RHS, OR(Z, ~C2))
816   if (match(LHS, m_Xor(m_Value(Y), m_APInt(C1))))
817     if (C1->countTrailingZeros() == 0)
818       if (match(Y, m_And(m_Value(Z), m_APInt(C2))) && *C1 == (*C2 + 1)) {
819         Value *NewOr = Builder.CreateOr(Z, ~(*C2));
820         return Builder.CreateSub(RHS, NewOr, "sub");
821       }
822   return nullptr;
823 }
824 
825 Instruction *InstCombiner::foldAddWithConstant(BinaryOperator &Add) {
826   Value *Op0 = Add.getOperand(0), *Op1 = Add.getOperand(1);
827   Constant *Op1C;
828   if (!match(Op1, m_Constant(Op1C)))
829     return nullptr;
830 
831   if (Instruction *NV = foldBinOpIntoSelectOrPhi(Add))
832     return NV;
833 
834   Value *X, *Y;
835 
836   // add (sub X, Y), -1 --> add (not Y), X
837   if (match(Op0, m_OneUse(m_Sub(m_Value(X), m_Value(Y)))) &&
838       match(Op1, m_AllOnes()))
839     return BinaryOperator::CreateAdd(Builder.CreateNot(Y), X);
840 
841   // zext(bool) + C -> bool ? C + 1 : C
842   if (match(Op0, m_ZExt(m_Value(X))) &&
843       X->getType()->getScalarSizeInBits() == 1)
844     return SelectInst::Create(X, AddOne(Op1C), Op1);
845 
846   // ~X + C --> (C-1) - X
847   if (match(Op0, m_Not(m_Value(X))))
848     return BinaryOperator::CreateSub(SubOne(Op1C), X);
849 
850   const APInt *C;
851   if (!match(Op1, m_APInt(C)))
852     return nullptr;
853 
854   if (C->isSignMask()) {
855     // If wrapping is not allowed, then the addition must set the sign bit:
856     // X + (signmask) --> X | signmask
857     if (Add.hasNoSignedWrap() || Add.hasNoUnsignedWrap())
858       return BinaryOperator::CreateOr(Op0, Op1);
859 
860     // If wrapping is allowed, then the addition flips the sign bit of LHS:
861     // X + (signmask) --> X ^ signmask
862     return BinaryOperator::CreateXor(Op0, Op1);
863   }
864 
865   // Is this add the last step in a convoluted sext?
866   // add(zext(xor i16 X, -32768), -32768) --> sext X
867   Type *Ty = Add.getType();
868   const APInt *C2;
869   if (match(Op0, m_ZExt(m_Xor(m_Value(X), m_APInt(C2)))) &&
870       C2->isMinSignedValue() && C2->sext(Ty->getScalarSizeInBits()) == *C)
871     return CastInst::Create(Instruction::SExt, X, Ty);
872 
873   // (add (zext (add nuw X, C2)), C) --> (zext (add nuw X, C2 + C))
874   if (match(Op0, m_OneUse(m_ZExt(m_NUWAdd(m_Value(X), m_APInt(C2))))) &&
875       C->isNegative() && C->sge(-C2->sext(C->getBitWidth()))) {
876     Constant *NewC =
877         ConstantInt::get(X->getType(), *C2 + C->trunc(C2->getBitWidth()));
878     return new ZExtInst(Builder.CreateNUWAdd(X, NewC), Ty);
879   }
880 
881   if (C->isOneValue() && Op0->hasOneUse()) {
882     // add (sext i1 X), 1 --> zext (not X)
883     // TODO: The smallest IR representation is (select X, 0, 1), and that would
884     // not require the one-use check. But we need to remove a transform in
885     // visitSelect and make sure that IR value tracking for select is equal or
886     // better than for these ops.
887     if (match(Op0, m_SExt(m_Value(X))) &&
888         X->getType()->getScalarSizeInBits() == 1)
889       return new ZExtInst(Builder.CreateNot(X), Ty);
890 
891     // Shifts and add used to flip and mask off the low bit:
892     // add (ashr (shl i32 X, 31), 31), 1 --> and (not X), 1
893     const APInt *C3;
894     if (match(Op0, m_AShr(m_Shl(m_Value(X), m_APInt(C2)), m_APInt(C3))) &&
895         C2 == C3 && *C2 == Ty->getScalarSizeInBits() - 1) {
896       Value *NotX = Builder.CreateNot(X);
897       return BinaryOperator::CreateAnd(NotX, ConstantInt::get(Ty, 1));
898     }
899   }
900 
901   return nullptr;
902 }
903 
904 // Matches multiplication expression Op * C where C is a constant. Returns the
905 // constant value in C and the other operand in Op. Returns true if such a
906 // match is found.
907 static bool MatchMul(Value *E, Value *&Op, APInt &C) {
908   const APInt *AI;
909   if (match(E, m_Mul(m_Value(Op), m_APInt(AI)))) {
910     C = *AI;
911     return true;
912   }
913   if (match(E, m_Shl(m_Value(Op), m_APInt(AI)))) {
914     C = APInt(AI->getBitWidth(), 1);
915     C <<= *AI;
916     return true;
917   }
918   return false;
919 }
920 
921 // Matches remainder expression Op % C where C is a constant. Returns the
922 // constant value in C and the other operand in Op. Returns the signedness of
923 // the remainder operation in IsSigned. Returns true if such a match is
924 // found.
925 static bool MatchRem(Value *E, Value *&Op, APInt &C, bool &IsSigned) {
926   const APInt *AI;
927   IsSigned = false;
928   if (match(E, m_SRem(m_Value(Op), m_APInt(AI)))) {
929     IsSigned = true;
930     C = *AI;
931     return true;
932   }
933   if (match(E, m_URem(m_Value(Op), m_APInt(AI)))) {
934     C = *AI;
935     return true;
936   }
937   if (match(E, m_And(m_Value(Op), m_APInt(AI))) && (*AI + 1).isPowerOf2()) {
938     C = *AI + 1;
939     return true;
940   }
941   return false;
942 }
943 
944 // Matches division expression Op / C with the given signedness as indicated
945 // by IsSigned, where C is a constant. Returns the constant value in C and the
946 // other operand in Op. Returns true if such a match is found.
947 static bool MatchDiv(Value *E, Value *&Op, APInt &C, bool IsSigned) {
948   const APInt *AI;
949   if (IsSigned && match(E, m_SDiv(m_Value(Op), m_APInt(AI)))) {
950     C = *AI;
951     return true;
952   }
953   if (!IsSigned) {
954     if (match(E, m_UDiv(m_Value(Op), m_APInt(AI)))) {
955       C = *AI;
956       return true;
957     }
958     if (match(E, m_LShr(m_Value(Op), m_APInt(AI)))) {
959       C = APInt(AI->getBitWidth(), 1);
960       C <<= *AI;
961       return true;
962     }
963   }
964   return false;
965 }
966 
967 // Returns whether C0 * C1 with the given signedness overflows.
968 static bool MulWillOverflow(APInt &C0, APInt &C1, bool IsSigned) {
969   bool overflow;
970   if (IsSigned)
971     (void)C0.smul_ov(C1, overflow);
972   else
973     (void)C0.umul_ov(C1, overflow);
974   return overflow;
975 }
976 
977 // Simplifies X % C0 + (( X / C0 ) % C1) * C0 to X % (C0 * C1), where (C0 * C1)
978 // does not overflow.
979 Value *InstCombiner::SimplifyAddWithRemainder(BinaryOperator &I) {
980   Value *LHS = I.getOperand(0), *RHS = I.getOperand(1);
981   Value *X, *MulOpV;
982   APInt C0, MulOpC;
983   bool IsSigned;
984   // Match I = X % C0 + MulOpV * C0
985   if (((MatchRem(LHS, X, C0, IsSigned) && MatchMul(RHS, MulOpV, MulOpC)) ||
986        (MatchRem(RHS, X, C0, IsSigned) && MatchMul(LHS, MulOpV, MulOpC))) &&
987       C0 == MulOpC) {
988     Value *RemOpV;
989     APInt C1;
990     bool Rem2IsSigned;
991     // Match MulOpC = RemOpV % C1
992     if (MatchRem(MulOpV, RemOpV, C1, Rem2IsSigned) &&
993         IsSigned == Rem2IsSigned) {
994       Value *DivOpV;
995       APInt DivOpC;
996       // Match RemOpV = X / C0
997       if (MatchDiv(RemOpV, DivOpV, DivOpC, IsSigned) && X == DivOpV &&
998           C0 == DivOpC && !MulWillOverflow(C0, C1, IsSigned)) {
999         Value *NewDivisor =
1000             ConstantInt::get(X->getType()->getContext(), C0 * C1);
1001         return IsSigned ? Builder.CreateSRem(X, NewDivisor, "srem")
1002                         : Builder.CreateURem(X, NewDivisor, "urem");
1003       }
1004     }
1005   }
1006 
1007   return nullptr;
1008 }
1009 
1010 /// Fold
1011 ///   (1 << NBits) - 1
1012 /// Into:
1013 ///   ~(-(1 << NBits))
1014 /// Because a 'not' is better for bit-tracking analysis and other transforms
1015 /// than an 'add'. The new shl is always nsw, and is nuw if old `and` was.
1016 static Instruction *canonicalizeLowbitMask(BinaryOperator &I,
1017                                            InstCombiner::BuilderTy &Builder) {
1018   Value *NBits;
1019   if (!match(&I, m_Add(m_OneUse(m_Shl(m_One(), m_Value(NBits))), m_AllOnes())))
1020     return nullptr;
1021 
1022   Constant *MinusOne = Constant::getAllOnesValue(NBits->getType());
1023   Value *NotMask = Builder.CreateShl(MinusOne, NBits, "notmask");
1024   // Be wary of constant folding.
1025   if (auto *BOp = dyn_cast<BinaryOperator>(NotMask)) {
1026     // Always NSW. But NUW propagates from `add`.
1027     BOp->setHasNoSignedWrap();
1028     BOp->setHasNoUnsignedWrap(I.hasNoUnsignedWrap());
1029   }
1030 
1031   return BinaryOperator::CreateNot(NotMask, I.getName());
1032 }
1033 
1034 Instruction *InstCombiner::visitAdd(BinaryOperator &I) {
1035   if (Value *V = SimplifyAddInst(I.getOperand(0), I.getOperand(1),
1036                                  I.hasNoSignedWrap(), I.hasNoUnsignedWrap(),
1037                                  SQ.getWithInstruction(&I)))
1038     return replaceInstUsesWith(I, V);
1039 
1040   if (SimplifyAssociativeOrCommutative(I))
1041     return &I;
1042 
1043   if (Instruction *X = foldVectorBinop(I))
1044     return X;
1045 
1046   // (A*B)+(A*C) -> A*(B+C) etc
1047   if (Value *V = SimplifyUsingDistributiveLaws(I))
1048     return replaceInstUsesWith(I, V);
1049 
1050   if (Instruction *X = foldAddWithConstant(I))
1051     return X;
1052 
1053   // FIXME: This should be moved into the above helper function to allow these
1054   // transforms for general constant or constant splat vectors.
1055   Value *LHS = I.getOperand(0), *RHS = I.getOperand(1);
1056   Type *Ty = I.getType();
1057   if (ConstantInt *CI = dyn_cast<ConstantInt>(RHS)) {
1058     Value *XorLHS = nullptr; ConstantInt *XorRHS = nullptr;
1059     if (match(LHS, m_Xor(m_Value(XorLHS), m_ConstantInt(XorRHS)))) {
1060       unsigned TySizeBits = Ty->getScalarSizeInBits();
1061       const APInt &RHSVal = CI->getValue();
1062       unsigned ExtendAmt = 0;
1063       // If we have ADD(XOR(AND(X, 0xFF), 0x80), 0xF..F80), it's a sext.
1064       // If we have ADD(XOR(AND(X, 0xFF), 0xF..F80), 0x80), it's a sext.
1065       if (XorRHS->getValue() == -RHSVal) {
1066         if (RHSVal.isPowerOf2())
1067           ExtendAmt = TySizeBits - RHSVal.logBase2() - 1;
1068         else if (XorRHS->getValue().isPowerOf2())
1069           ExtendAmt = TySizeBits - XorRHS->getValue().logBase2() - 1;
1070       }
1071 
1072       if (ExtendAmt) {
1073         APInt Mask = APInt::getHighBitsSet(TySizeBits, ExtendAmt);
1074         if (!MaskedValueIsZero(XorLHS, Mask, 0, &I))
1075           ExtendAmt = 0;
1076       }
1077 
1078       if (ExtendAmt) {
1079         Constant *ShAmt = ConstantInt::get(Ty, ExtendAmt);
1080         Value *NewShl = Builder.CreateShl(XorLHS, ShAmt, "sext");
1081         return BinaryOperator::CreateAShr(NewShl, ShAmt);
1082       }
1083 
1084       // If this is a xor that was canonicalized from a sub, turn it back into
1085       // a sub and fuse this add with it.
1086       if (LHS->hasOneUse() && (XorRHS->getValue()+1).isPowerOf2()) {
1087         KnownBits LHSKnown = computeKnownBits(XorLHS, 0, &I);
1088         if ((XorRHS->getValue() | LHSKnown.Zero).isAllOnesValue())
1089           return BinaryOperator::CreateSub(ConstantExpr::getAdd(XorRHS, CI),
1090                                            XorLHS);
1091       }
1092       // (X + signmask) + C could have gotten canonicalized to (X^signmask) + C,
1093       // transform them into (X + (signmask ^ C))
1094       if (XorRHS->getValue().isSignMask())
1095         return BinaryOperator::CreateAdd(XorLHS,
1096                                          ConstantExpr::getXor(XorRHS, CI));
1097     }
1098   }
1099 
1100   if (Ty->isIntOrIntVectorTy(1))
1101     return BinaryOperator::CreateXor(LHS, RHS);
1102 
1103   // X + X --> X << 1
1104   if (LHS == RHS) {
1105     auto *Shl = BinaryOperator::CreateShl(LHS, ConstantInt::get(Ty, 1));
1106     Shl->setHasNoSignedWrap(I.hasNoSignedWrap());
1107     Shl->setHasNoUnsignedWrap(I.hasNoUnsignedWrap());
1108     return Shl;
1109   }
1110 
1111   Value *A, *B;
1112   if (match(LHS, m_Neg(m_Value(A)))) {
1113     // -A + -B --> -(A + B)
1114     if (match(RHS, m_Neg(m_Value(B))))
1115       return BinaryOperator::CreateNeg(Builder.CreateAdd(A, B));
1116 
1117     // -A + B --> B - A
1118     return BinaryOperator::CreateSub(RHS, A);
1119   }
1120 
1121   // Canonicalize sext to zext for better value tracking potential.
1122   // add A, sext(B) --> sub A, zext(B)
1123   if (match(&I, m_c_Add(m_Value(A), m_OneUse(m_SExt(m_Value(B))))) &&
1124       B->getType()->isIntOrIntVectorTy(1))
1125     return BinaryOperator::CreateSub(A, Builder.CreateZExt(B, Ty));
1126 
1127   // A + -B  -->  A - B
1128   if (match(RHS, m_Neg(m_Value(B))))
1129     return BinaryOperator::CreateSub(LHS, B);
1130 
1131   if (Value *V = checkForNegativeOperand(I, Builder))
1132     return replaceInstUsesWith(I, V);
1133 
1134   // (A + 1) + ~B --> A - B
1135   // ~B + (A + 1) --> A - B
1136   if (match(&I, m_c_BinOp(m_Add(m_Value(A), m_One()), m_Not(m_Value(B)))))
1137     return BinaryOperator::CreateSub(A, B);
1138 
1139   // X % C0 + (( X / C0 ) % C1) * C0 => X % (C0 * C1)
1140   if (Value *V = SimplifyAddWithRemainder(I)) return replaceInstUsesWith(I, V);
1141 
1142   // A+B --> A|B iff A and B have no bits set in common.
1143   if (haveNoCommonBitsSet(LHS, RHS, DL, &AC, &I, &DT))
1144     return BinaryOperator::CreateOr(LHS, RHS);
1145 
1146   // FIXME: We already did a check for ConstantInt RHS above this.
1147   // FIXME: Is this pattern covered by another fold? No regression tests fail on
1148   // removal.
1149   if (ConstantInt *CRHS = dyn_cast<ConstantInt>(RHS)) {
1150     // (X & FF00) + xx00  -> (X+xx00) & FF00
1151     Value *X;
1152     ConstantInt *C2;
1153     if (LHS->hasOneUse() &&
1154         match(LHS, m_And(m_Value(X), m_ConstantInt(C2))) &&
1155         CRHS->getValue() == (CRHS->getValue() & C2->getValue())) {
1156       // See if all bits from the first bit set in the Add RHS up are included
1157       // in the mask.  First, get the rightmost bit.
1158       const APInt &AddRHSV = CRHS->getValue();
1159 
1160       // Form a mask of all bits from the lowest bit added through the top.
1161       APInt AddRHSHighBits(~((AddRHSV & -AddRHSV)-1));
1162 
1163       // See if the and mask includes all of these bits.
1164       APInt AddRHSHighBitsAnd(AddRHSHighBits & C2->getValue());
1165 
1166       if (AddRHSHighBits == AddRHSHighBitsAnd) {
1167         // Okay, the xform is safe.  Insert the new add pronto.
1168         Value *NewAdd = Builder.CreateAdd(X, CRHS, LHS->getName());
1169         return BinaryOperator::CreateAnd(NewAdd, C2);
1170       }
1171     }
1172   }
1173 
1174   // add (select X 0 (sub n A)) A  -->  select X A n
1175   {
1176     SelectInst *SI = dyn_cast<SelectInst>(LHS);
1177     Value *A = RHS;
1178     if (!SI) {
1179       SI = dyn_cast<SelectInst>(RHS);
1180       A = LHS;
1181     }
1182     if (SI && SI->hasOneUse()) {
1183       Value *TV = SI->getTrueValue();
1184       Value *FV = SI->getFalseValue();
1185       Value *N;
1186 
1187       // Can we fold the add into the argument of the select?
1188       // We check both true and false select arguments for a matching subtract.
1189       if (match(FV, m_Zero()) && match(TV, m_Sub(m_Value(N), m_Specific(A))))
1190         // Fold the add into the true select value.
1191         return SelectInst::Create(SI->getCondition(), N, A);
1192 
1193       if (match(TV, m_Zero()) && match(FV, m_Sub(m_Value(N), m_Specific(A))))
1194         // Fold the add into the false select value.
1195         return SelectInst::Create(SI->getCondition(), A, N);
1196     }
1197   }
1198 
1199   if (Instruction *Ext = narrowMathIfNoOverflow(I))
1200     return Ext;
1201 
1202   // (add (xor A, B) (and A, B)) --> (or A, B)
1203   // (add (and A, B) (xor A, B)) --> (or A, B)
1204   if (match(&I, m_c_BinOp(m_Xor(m_Value(A), m_Value(B)),
1205                           m_c_And(m_Deferred(A), m_Deferred(B)))))
1206     return BinaryOperator::CreateOr(A, B);
1207 
1208   // (add (or A, B) (and A, B)) --> (add A, B)
1209   // (add (and A, B) (or A, B)) --> (add A, B)
1210   if (match(&I, m_c_BinOp(m_Or(m_Value(A), m_Value(B)),
1211                           m_c_And(m_Deferred(A), m_Deferred(B))))) {
1212     I.setOperand(0, A);
1213     I.setOperand(1, B);
1214     return &I;
1215   }
1216 
1217   // TODO(jingyue): Consider willNotOverflowSignedAdd and
1218   // willNotOverflowUnsignedAdd to reduce the number of invocations of
1219   // computeKnownBits.
1220   bool Changed = false;
1221   if (!I.hasNoSignedWrap() && willNotOverflowSignedAdd(LHS, RHS, I)) {
1222     Changed = true;
1223     I.setHasNoSignedWrap(true);
1224   }
1225   if (!I.hasNoUnsignedWrap() && willNotOverflowUnsignedAdd(LHS, RHS, I)) {
1226     Changed = true;
1227     I.setHasNoUnsignedWrap(true);
1228   }
1229 
1230   if (Instruction *V = canonicalizeLowbitMask(I, Builder))
1231     return V;
1232 
1233   return Changed ? &I : nullptr;
1234 }
1235 
1236 /// Factor a common operand out of fadd/fsub of fmul/fdiv.
1237 static Instruction *factorizeFAddFSub(BinaryOperator &I,
1238                                       InstCombiner::BuilderTy &Builder) {
1239   assert((I.getOpcode() == Instruction::FAdd ||
1240           I.getOpcode() == Instruction::FSub) && "Expecting fadd/fsub");
1241   assert(I.hasAllowReassoc() && I.hasNoSignedZeros() &&
1242          "FP factorization requires FMF");
1243   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1244   Value *X, *Y, *Z;
1245   bool IsFMul;
1246   if ((match(Op0, m_OneUse(m_FMul(m_Value(X), m_Value(Z)))) &&
1247        match(Op1, m_OneUse(m_c_FMul(m_Value(Y), m_Specific(Z))))) ||
1248       (match(Op0, m_OneUse(m_FMul(m_Value(Z), m_Value(X)))) &&
1249        match(Op1, m_OneUse(m_c_FMul(m_Value(Y), m_Specific(Z))))))
1250     IsFMul = true;
1251   else if (match(Op0, m_OneUse(m_FDiv(m_Value(X), m_Value(Z)))) &&
1252            match(Op1, m_OneUse(m_FDiv(m_Value(Y), m_Specific(Z)))))
1253     IsFMul = false;
1254   else
1255     return nullptr;
1256 
1257   // (X * Z) + (Y * Z) --> (X + Y) * Z
1258   // (X * Z) - (Y * Z) --> (X - Y) * Z
1259   // (X / Z) + (Y / Z) --> (X + Y) / Z
1260   // (X / Z) - (Y / Z) --> (X - Y) / Z
1261   bool IsFAdd = I.getOpcode() == Instruction::FAdd;
1262   Value *XY = IsFAdd ? Builder.CreateFAddFMF(X, Y, &I)
1263                      : Builder.CreateFSubFMF(X, Y, &I);
1264 
1265   // Bail out if we just created a denormal constant.
1266   // TODO: This is copied from a previous implementation. Is it necessary?
1267   const APFloat *C;
1268   if (match(XY, m_APFloat(C)) && !C->isNormal())
1269     return nullptr;
1270 
1271   return IsFMul ? BinaryOperator::CreateFMulFMF(XY, Z, &I)
1272                 : BinaryOperator::CreateFDivFMF(XY, Z, &I);
1273 }
1274 
1275 Instruction *InstCombiner::visitFAdd(BinaryOperator &I) {
1276   if (Value *V = SimplifyFAddInst(I.getOperand(0), I.getOperand(1),
1277                                   I.getFastMathFlags(),
1278                                   SQ.getWithInstruction(&I)))
1279     return replaceInstUsesWith(I, V);
1280 
1281   if (SimplifyAssociativeOrCommutative(I))
1282     return &I;
1283 
1284   if (Instruction *X = foldVectorBinop(I))
1285     return X;
1286 
1287   if (Instruction *FoldedFAdd = foldBinOpIntoSelectOrPhi(I))
1288     return FoldedFAdd;
1289 
1290   Value *LHS = I.getOperand(0), *RHS = I.getOperand(1);
1291   Value *X;
1292   // (-X) + Y --> Y - X
1293   if (match(LHS, m_FNeg(m_Value(X))))
1294     return BinaryOperator::CreateFSubFMF(RHS, X, &I);
1295   // Y + (-X) --> Y - X
1296   if (match(RHS, m_FNeg(m_Value(X))))
1297     return BinaryOperator::CreateFSubFMF(LHS, X, &I);
1298 
1299   // Check for (fadd double (sitofp x), y), see if we can merge this into an
1300   // integer add followed by a promotion.
1301   if (SIToFPInst *LHSConv = dyn_cast<SIToFPInst>(LHS)) {
1302     Value *LHSIntVal = LHSConv->getOperand(0);
1303     Type *FPType = LHSConv->getType();
1304 
1305     // TODO: This check is overly conservative. In many cases known bits
1306     // analysis can tell us that the result of the addition has less significant
1307     // bits than the integer type can hold.
1308     auto IsValidPromotion = [](Type *FTy, Type *ITy) {
1309       Type *FScalarTy = FTy->getScalarType();
1310       Type *IScalarTy = ITy->getScalarType();
1311 
1312       // Do we have enough bits in the significand to represent the result of
1313       // the integer addition?
1314       unsigned MaxRepresentableBits =
1315           APFloat::semanticsPrecision(FScalarTy->getFltSemantics());
1316       return IScalarTy->getIntegerBitWidth() <= MaxRepresentableBits;
1317     };
1318 
1319     // (fadd double (sitofp x), fpcst) --> (sitofp (add int x, intcst))
1320     // ... if the constant fits in the integer value.  This is useful for things
1321     // like (double)(x & 1234) + 4.0 -> (double)((X & 1234)+4) which no longer
1322     // requires a constant pool load, and generally allows the add to be better
1323     // instcombined.
1324     if (ConstantFP *CFP = dyn_cast<ConstantFP>(RHS))
1325       if (IsValidPromotion(FPType, LHSIntVal->getType())) {
1326         Constant *CI =
1327           ConstantExpr::getFPToSI(CFP, LHSIntVal->getType());
1328         if (LHSConv->hasOneUse() &&
1329             ConstantExpr::getSIToFP(CI, I.getType()) == CFP &&
1330             willNotOverflowSignedAdd(LHSIntVal, CI, I)) {
1331           // Insert the new integer add.
1332           Value *NewAdd = Builder.CreateNSWAdd(LHSIntVal, CI, "addconv");
1333           return new SIToFPInst(NewAdd, I.getType());
1334         }
1335       }
1336 
1337     // (fadd double (sitofp x), (sitofp y)) --> (sitofp (add int x, y))
1338     if (SIToFPInst *RHSConv = dyn_cast<SIToFPInst>(RHS)) {
1339       Value *RHSIntVal = RHSConv->getOperand(0);
1340       // It's enough to check LHS types only because we require int types to
1341       // be the same for this transform.
1342       if (IsValidPromotion(FPType, LHSIntVal->getType())) {
1343         // Only do this if x/y have the same type, if at least one of them has a
1344         // single use (so we don't increase the number of int->fp conversions),
1345         // and if the integer add will not overflow.
1346         if (LHSIntVal->getType() == RHSIntVal->getType() &&
1347             (LHSConv->hasOneUse() || RHSConv->hasOneUse()) &&
1348             willNotOverflowSignedAdd(LHSIntVal, RHSIntVal, I)) {
1349           // Insert the new integer add.
1350           Value *NewAdd = Builder.CreateNSWAdd(LHSIntVal, RHSIntVal, "addconv");
1351           return new SIToFPInst(NewAdd, I.getType());
1352         }
1353       }
1354     }
1355   }
1356 
1357   // Handle specials cases for FAdd with selects feeding the operation
1358   if (Value *V = SimplifySelectsFeedingBinaryOp(I, LHS, RHS))
1359     return replaceInstUsesWith(I, V);
1360 
1361   if (I.hasAllowReassoc() && I.hasNoSignedZeros()) {
1362     if (Instruction *F = factorizeFAddFSub(I, Builder))
1363       return F;
1364     if (Value *V = FAddCombine(Builder).simplify(&I))
1365       return replaceInstUsesWith(I, V);
1366   }
1367 
1368   return nullptr;
1369 }
1370 
1371 /// Optimize pointer differences into the same array into a size.  Consider:
1372 ///  &A[10] - &A[0]: we should compile this to "10".  LHS/RHS are the pointer
1373 /// operands to the ptrtoint instructions for the LHS/RHS of the subtract.
1374 Value *InstCombiner::OptimizePointerDifference(Value *LHS, Value *RHS,
1375                                                Type *Ty) {
1376   // If LHS is a gep based on RHS or RHS is a gep based on LHS, we can optimize
1377   // this.
1378   bool Swapped = false;
1379   GEPOperator *GEP1 = nullptr, *GEP2 = nullptr;
1380 
1381   // For now we require one side to be the base pointer "A" or a constant
1382   // GEP derived from it.
1383   if (GEPOperator *LHSGEP = dyn_cast<GEPOperator>(LHS)) {
1384     // (gep X, ...) - X
1385     if (LHSGEP->getOperand(0) == RHS) {
1386       GEP1 = LHSGEP;
1387       Swapped = false;
1388     } else if (GEPOperator *RHSGEP = dyn_cast<GEPOperator>(RHS)) {
1389       // (gep X, ...) - (gep X, ...)
1390       if (LHSGEP->getOperand(0)->stripPointerCasts() ==
1391             RHSGEP->getOperand(0)->stripPointerCasts()) {
1392         GEP2 = RHSGEP;
1393         GEP1 = LHSGEP;
1394         Swapped = false;
1395       }
1396     }
1397   }
1398 
1399   if (GEPOperator *RHSGEP = dyn_cast<GEPOperator>(RHS)) {
1400     // X - (gep X, ...)
1401     if (RHSGEP->getOperand(0) == LHS) {
1402       GEP1 = RHSGEP;
1403       Swapped = true;
1404     } else if (GEPOperator *LHSGEP = dyn_cast<GEPOperator>(LHS)) {
1405       // (gep X, ...) - (gep X, ...)
1406       if (RHSGEP->getOperand(0)->stripPointerCasts() ==
1407             LHSGEP->getOperand(0)->stripPointerCasts()) {
1408         GEP2 = LHSGEP;
1409         GEP1 = RHSGEP;
1410         Swapped = true;
1411       }
1412     }
1413   }
1414 
1415   if (!GEP1)
1416     // No GEP found.
1417     return nullptr;
1418 
1419   if (GEP2) {
1420     // (gep X, ...) - (gep X, ...)
1421     //
1422     // Avoid duplicating the arithmetic if there are more than one non-constant
1423     // indices between the two GEPs and either GEP has a non-constant index and
1424     // multiple users. If zero non-constant index, the result is a constant and
1425     // there is no duplication. If one non-constant index, the result is an add
1426     // or sub with a constant, which is no larger than the original code, and
1427     // there's no duplicated arithmetic, even if either GEP has multiple
1428     // users. If more than one non-constant indices combined, as long as the GEP
1429     // with at least one non-constant index doesn't have multiple users, there
1430     // is no duplication.
1431     unsigned NumNonConstantIndices1 = GEP1->countNonConstantIndices();
1432     unsigned NumNonConstantIndices2 = GEP2->countNonConstantIndices();
1433     if (NumNonConstantIndices1 + NumNonConstantIndices2 > 1 &&
1434         ((NumNonConstantIndices1 > 0 && !GEP1->hasOneUse()) ||
1435          (NumNonConstantIndices2 > 0 && !GEP2->hasOneUse()))) {
1436       return nullptr;
1437     }
1438   }
1439 
1440   // Emit the offset of the GEP and an intptr_t.
1441   Value *Result = EmitGEPOffset(GEP1);
1442 
1443   // If we had a constant expression GEP on the other side offsetting the
1444   // pointer, subtract it from the offset we have.
1445   if (GEP2) {
1446     Value *Offset = EmitGEPOffset(GEP2);
1447     Result = Builder.CreateSub(Result, Offset);
1448   }
1449 
1450   // If we have p - gep(p, ...)  then we have to negate the result.
1451   if (Swapped)
1452     Result = Builder.CreateNeg(Result, "diff.neg");
1453 
1454   return Builder.CreateIntCast(Result, Ty, true);
1455 }
1456 
1457 Instruction *InstCombiner::visitSub(BinaryOperator &I) {
1458   if (Value *V = SimplifySubInst(I.getOperand(0), I.getOperand(1),
1459                                  I.hasNoSignedWrap(), I.hasNoUnsignedWrap(),
1460                                  SQ.getWithInstruction(&I)))
1461     return replaceInstUsesWith(I, V);
1462 
1463   if (Instruction *X = foldVectorBinop(I))
1464     return X;
1465 
1466   // (A*B)-(A*C) -> A*(B-C) etc
1467   if (Value *V = SimplifyUsingDistributiveLaws(I))
1468     return replaceInstUsesWith(I, V);
1469 
1470   // If this is a 'B = x-(-A)', change to B = x+A.
1471   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1472   if (Value *V = dyn_castNegVal(Op1)) {
1473     BinaryOperator *Res = BinaryOperator::CreateAdd(Op0, V);
1474 
1475     if (const auto *BO = dyn_cast<BinaryOperator>(Op1)) {
1476       assert(BO->getOpcode() == Instruction::Sub &&
1477              "Expected a subtraction operator!");
1478       if (BO->hasNoSignedWrap() && I.hasNoSignedWrap())
1479         Res->setHasNoSignedWrap(true);
1480     } else {
1481       if (cast<Constant>(Op1)->isNotMinSignedValue() && I.hasNoSignedWrap())
1482         Res->setHasNoSignedWrap(true);
1483     }
1484 
1485     return Res;
1486   }
1487 
1488   if (I.getType()->isIntOrIntVectorTy(1))
1489     return BinaryOperator::CreateXor(Op0, Op1);
1490 
1491   // Replace (-1 - A) with (~A).
1492   if (match(Op0, m_AllOnes()))
1493     return BinaryOperator::CreateNot(Op1);
1494 
1495   // (~X) - (~Y) --> Y - X
1496   Value *X, *Y;
1497   if (match(Op0, m_Not(m_Value(X))) && match(Op1, m_Not(m_Value(Y))))
1498     return BinaryOperator::CreateSub(Y, X);
1499 
1500   // (X + -1) - Y --> ~Y + X
1501   if (match(Op0, m_OneUse(m_Add(m_Value(X), m_AllOnes()))))
1502     return BinaryOperator::CreateAdd(Builder.CreateNot(Op1), X);
1503 
1504   // Y - (X + 1) --> ~X + Y
1505   if (match(Op1, m_OneUse(m_Add(m_Value(X), m_One()))))
1506     return BinaryOperator::CreateAdd(Builder.CreateNot(X), Op0);
1507 
1508   if (Constant *C = dyn_cast<Constant>(Op0)) {
1509     bool IsNegate = match(C, m_ZeroInt());
1510     Value *X;
1511     if (match(Op1, m_ZExt(m_Value(X))) && X->getType()->isIntOrIntVectorTy(1)) {
1512       // 0 - (zext bool) --> sext bool
1513       // C - (zext bool) --> bool ? C - 1 : C
1514       if (IsNegate)
1515         return CastInst::CreateSExtOrBitCast(X, I.getType());
1516       return SelectInst::Create(X, SubOne(C), C);
1517     }
1518     if (match(Op1, m_SExt(m_Value(X))) && X->getType()->isIntOrIntVectorTy(1)) {
1519       // 0 - (sext bool) --> zext bool
1520       // C - (sext bool) --> bool ? C + 1 : C
1521       if (IsNegate)
1522         return CastInst::CreateZExtOrBitCast(X, I.getType());
1523       return SelectInst::Create(X, AddOne(C), C);
1524     }
1525 
1526     // C - ~X == X + (1+C)
1527     if (match(Op1, m_Not(m_Value(X))))
1528       return BinaryOperator::CreateAdd(X, AddOne(C));
1529 
1530     // Try to fold constant sub into select arguments.
1531     if (SelectInst *SI = dyn_cast<SelectInst>(Op1))
1532       if (Instruction *R = FoldOpIntoSelect(I, SI))
1533         return R;
1534 
1535     // Try to fold constant sub into PHI values.
1536     if (PHINode *PN = dyn_cast<PHINode>(Op1))
1537       if (Instruction *R = foldOpIntoPhi(I, PN))
1538         return R;
1539 
1540     // C-(X+C2) --> (C-C2)-X
1541     Constant *C2;
1542     if (match(Op1, m_Add(m_Value(X), m_Constant(C2))))
1543       return BinaryOperator::CreateSub(ConstantExpr::getSub(C, C2), X);
1544   }
1545 
1546   const APInt *Op0C;
1547   if (match(Op0, m_APInt(Op0C))) {
1548     unsigned BitWidth = I.getType()->getScalarSizeInBits();
1549 
1550     // -(X >>u 31) -> (X >>s 31)
1551     // -(X >>s 31) -> (X >>u 31)
1552     if (Op0C->isNullValue()) {
1553       Value *X;
1554       const APInt *ShAmt;
1555       if (match(Op1, m_LShr(m_Value(X), m_APInt(ShAmt))) &&
1556           *ShAmt == BitWidth - 1) {
1557         Value *ShAmtOp = cast<Instruction>(Op1)->getOperand(1);
1558         return BinaryOperator::CreateAShr(X, ShAmtOp);
1559       }
1560       if (match(Op1, m_AShr(m_Value(X), m_APInt(ShAmt))) &&
1561           *ShAmt == BitWidth - 1) {
1562         Value *ShAmtOp = cast<Instruction>(Op1)->getOperand(1);
1563         return BinaryOperator::CreateLShr(X, ShAmtOp);
1564       }
1565 
1566       if (Op1->hasOneUse()) {
1567         Value *LHS, *RHS;
1568         SelectPatternFlavor SPF = matchSelectPattern(Op1, LHS, RHS).Flavor;
1569         if (SPF == SPF_ABS || SPF == SPF_NABS) {
1570           // This is a negate of an ABS/NABS pattern. Just swap the operands
1571           // of the select.
1572           SelectInst *SI = cast<SelectInst>(Op1);
1573           Value *TrueVal = SI->getTrueValue();
1574           Value *FalseVal = SI->getFalseValue();
1575           SI->setTrueValue(FalseVal);
1576           SI->setFalseValue(TrueVal);
1577           // Don't swap prof metadata, we didn't change the branch behavior.
1578           return replaceInstUsesWith(I, SI);
1579         }
1580       }
1581     }
1582 
1583     // Turn this into a xor if LHS is 2^n-1 and the remaining bits are known
1584     // zero.
1585     if (Op0C->isMask()) {
1586       KnownBits RHSKnown = computeKnownBits(Op1, 0, &I);
1587       if ((*Op0C | RHSKnown.Zero).isAllOnesValue())
1588         return BinaryOperator::CreateXor(Op1, Op0);
1589     }
1590   }
1591 
1592   {
1593     Value *Y;
1594     // X-(X+Y) == -Y    X-(Y+X) == -Y
1595     if (match(Op1, m_c_Add(m_Specific(Op0), m_Value(Y))))
1596       return BinaryOperator::CreateNeg(Y);
1597 
1598     // (X-Y)-X == -Y
1599     if (match(Op0, m_Sub(m_Specific(Op1), m_Value(Y))))
1600       return BinaryOperator::CreateNeg(Y);
1601   }
1602 
1603   // (sub (or A, B), (xor A, B)) --> (and A, B)
1604   {
1605     Value *A, *B;
1606     if (match(Op1, m_Xor(m_Value(A), m_Value(B))) &&
1607         match(Op0, m_c_Or(m_Specific(A), m_Specific(B))))
1608       return BinaryOperator::CreateAnd(A, B);
1609   }
1610 
1611   {
1612     Value *Y;
1613     // ((X | Y) - X) --> (~X & Y)
1614     if (match(Op0, m_OneUse(m_c_Or(m_Value(Y), m_Specific(Op1)))))
1615       return BinaryOperator::CreateAnd(
1616           Y, Builder.CreateNot(Op1, Op1->getName() + ".not"));
1617   }
1618 
1619   if (Op1->hasOneUse()) {
1620     Value *X = nullptr, *Y = nullptr, *Z = nullptr;
1621     Constant *C = nullptr;
1622 
1623     // (X - (Y - Z))  -->  (X + (Z - Y)).
1624     if (match(Op1, m_Sub(m_Value(Y), m_Value(Z))))
1625       return BinaryOperator::CreateAdd(Op0,
1626                                       Builder.CreateSub(Z, Y, Op1->getName()));
1627 
1628     // (X - (X & Y))   -->   (X & ~Y)
1629     if (match(Op1, m_c_And(m_Value(Y), m_Specific(Op0))))
1630       return BinaryOperator::CreateAnd(Op0,
1631                                   Builder.CreateNot(Y, Y->getName() + ".not"));
1632 
1633     // 0 - (X sdiv C)  -> (X sdiv -C)  provided the negation doesn't overflow.
1634     if (match(Op1, m_SDiv(m_Value(X), m_Constant(C))) && match(Op0, m_Zero()) &&
1635         C->isNotMinSignedValue() && !C->isOneValue())
1636       return BinaryOperator::CreateSDiv(X, ConstantExpr::getNeg(C));
1637 
1638     // 0 - (X << Y)  -> (-X << Y)   when X is freely negatable.
1639     if (match(Op1, m_Shl(m_Value(X), m_Value(Y))) && match(Op0, m_Zero()))
1640       if (Value *XNeg = dyn_castNegVal(X))
1641         return BinaryOperator::CreateShl(XNeg, Y);
1642 
1643     // Subtracting -1/0 is the same as adding 1/0:
1644     // sub [nsw] Op0, sext(bool Y) -> add [nsw] Op0, zext(bool Y)
1645     // 'nuw' is dropped in favor of the canonical form.
1646     if (match(Op1, m_SExt(m_Value(Y))) &&
1647         Y->getType()->getScalarSizeInBits() == 1) {
1648       Value *Zext = Builder.CreateZExt(Y, I.getType());
1649       BinaryOperator *Add = BinaryOperator::CreateAdd(Op0, Zext);
1650       Add->setHasNoSignedWrap(I.hasNoSignedWrap());
1651       return Add;
1652     }
1653 
1654     // X - A*-B -> X + A*B
1655     // X - -A*B -> X + A*B
1656     Value *A, *B;
1657     if (match(Op1, m_c_Mul(m_Value(A), m_Neg(m_Value(B)))))
1658       return BinaryOperator::CreateAdd(Op0, Builder.CreateMul(A, B));
1659 
1660     // X - A*C -> X + A*-C
1661     // No need to handle commuted multiply because multiply handling will
1662     // ensure constant will be move to the right hand side.
1663     if (match(Op1, m_Mul(m_Value(A), m_Constant(C))) && !isa<ConstantExpr>(C)) {
1664       Value *NewMul = Builder.CreateMul(A, ConstantExpr::getNeg(C));
1665       return BinaryOperator::CreateAdd(Op0, NewMul);
1666     }
1667   }
1668 
1669   {
1670     // ~A - Min/Max(~A, O) -> Max/Min(A, ~O) - A
1671     // ~A - Min/Max(O, ~A) -> Max/Min(A, ~O) - A
1672     // Min/Max(~A, O) - ~A -> A - Max/Min(A, ~O)
1673     // Min/Max(O, ~A) - ~A -> A - Max/Min(A, ~O)
1674     // So long as O here is freely invertible, this will be neutral or a win.
1675     Value *LHS, *RHS, *A;
1676     Value *NotA = Op0, *MinMax = Op1;
1677     SelectPatternFlavor SPF = matchSelectPattern(MinMax, LHS, RHS).Flavor;
1678     if (!SelectPatternResult::isMinOrMax(SPF)) {
1679       NotA = Op1;
1680       MinMax = Op0;
1681       SPF = matchSelectPattern(MinMax, LHS, RHS).Flavor;
1682     }
1683     if (SelectPatternResult::isMinOrMax(SPF) &&
1684         match(NotA, m_Not(m_Value(A))) && (NotA == LHS || NotA == RHS)) {
1685       if (NotA == LHS)
1686         std::swap(LHS, RHS);
1687       // LHS is now O above and expected to have at least 2 uses (the min/max)
1688       // NotA is epected to have 2 uses from the min/max and 1 from the sub.
1689       if (IsFreeToInvert(LHS, !LHS->hasNUsesOrMore(3)) &&
1690           !NotA->hasNUsesOrMore(4)) {
1691         // Note: We don't generate the inverse max/min, just create the not of
1692         // it and let other folds do the rest.
1693         Value *Not = Builder.CreateNot(MinMax);
1694         if (NotA == Op0)
1695           return BinaryOperator::CreateSub(Not, A);
1696         else
1697           return BinaryOperator::CreateSub(A, Not);
1698       }
1699     }
1700   }
1701 
1702   // Optimize pointer differences into the same array into a size.  Consider:
1703   //  &A[10] - &A[0]: we should compile this to "10".
1704   Value *LHSOp, *RHSOp;
1705   if (match(Op0, m_PtrToInt(m_Value(LHSOp))) &&
1706       match(Op1, m_PtrToInt(m_Value(RHSOp))))
1707     if (Value *Res = OptimizePointerDifference(LHSOp, RHSOp, I.getType()))
1708       return replaceInstUsesWith(I, Res);
1709 
1710   // trunc(p)-trunc(q) -> trunc(p-q)
1711   if (match(Op0, m_Trunc(m_PtrToInt(m_Value(LHSOp)))) &&
1712       match(Op1, m_Trunc(m_PtrToInt(m_Value(RHSOp)))))
1713     if (Value *Res = OptimizePointerDifference(LHSOp, RHSOp, I.getType()))
1714       return replaceInstUsesWith(I, Res);
1715 
1716   // Canonicalize a shifty way to code absolute value to the common pattern.
1717   // There are 2 potential commuted variants.
1718   // We're relying on the fact that we only do this transform when the shift has
1719   // exactly 2 uses and the xor has exactly 1 use (otherwise, we might increase
1720   // instructions).
1721   Value *A;
1722   const APInt *ShAmt;
1723   Type *Ty = I.getType();
1724   if (match(Op1, m_AShr(m_Value(A), m_APInt(ShAmt))) &&
1725       Op1->hasNUses(2) && *ShAmt == Ty->getScalarSizeInBits() - 1 &&
1726       match(Op0, m_OneUse(m_c_Xor(m_Specific(A), m_Specific(Op1))))) {
1727     // B = ashr i32 A, 31 ; smear the sign bit
1728     // sub (xor A, B), B  ; flip bits if negative and subtract -1 (add 1)
1729     // --> (A < 0) ? -A : A
1730     Value *Cmp = Builder.CreateICmpSLT(A, ConstantInt::getNullValue(Ty));
1731     // Copy the nuw/nsw flags from the sub to the negate.
1732     Value *Neg = Builder.CreateNeg(A, "", I.hasNoUnsignedWrap(),
1733                                    I.hasNoSignedWrap());
1734     return SelectInst::Create(Cmp, Neg, A);
1735   }
1736 
1737   if (Instruction *Ext = narrowMathIfNoOverflow(I))
1738     return Ext;
1739 
1740   bool Changed = false;
1741   if (!I.hasNoSignedWrap() && willNotOverflowSignedSub(Op0, Op1, I)) {
1742     Changed = true;
1743     I.setHasNoSignedWrap(true);
1744   }
1745   if (!I.hasNoUnsignedWrap() && willNotOverflowUnsignedSub(Op0, Op1, I)) {
1746     Changed = true;
1747     I.setHasNoUnsignedWrap(true);
1748   }
1749 
1750   return Changed ? &I : nullptr;
1751 }
1752 
1753 Instruction *InstCombiner::visitFSub(BinaryOperator &I) {
1754   if (Value *V = SimplifyFSubInst(I.getOperand(0), I.getOperand(1),
1755                                   I.getFastMathFlags(),
1756                                   SQ.getWithInstruction(&I)))
1757     return replaceInstUsesWith(I, V);
1758 
1759   if (Instruction *X = foldVectorBinop(I))
1760     return X;
1761 
1762   // Subtraction from -0.0 is the canonical form of fneg.
1763   // fsub nsz 0, X ==> fsub nsz -0.0, X
1764   Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1);
1765   if (I.hasNoSignedZeros() && match(Op0, m_PosZeroFP()))
1766     return BinaryOperator::CreateFNegFMF(Op1, &I);
1767 
1768   Value *X, *Y;
1769   Constant *C;
1770 
1771   // Fold negation into constant operand. This is limited with one-use because
1772   // fneg is assumed better for analysis and cheaper in codegen than fmul/fdiv.
1773   // -(X * C) --> X * (-C)
1774   if (match(&I, m_FNeg(m_OneUse(m_FMul(m_Value(X), m_Constant(C))))))
1775     return BinaryOperator::CreateFMulFMF(X, ConstantExpr::getFNeg(C), &I);
1776   // -(X / C) --> X / (-C)
1777   if (match(&I, m_FNeg(m_OneUse(m_FDiv(m_Value(X), m_Constant(C))))))
1778     return BinaryOperator::CreateFDivFMF(X, ConstantExpr::getFNeg(C), &I);
1779   // -(C / X) --> (-C) / X
1780   if (match(&I, m_FNeg(m_OneUse(m_FDiv(m_Constant(C), m_Value(X))))))
1781     return BinaryOperator::CreateFDivFMF(ConstantExpr::getFNeg(C), X, &I);
1782 
1783   // If Op0 is not -0.0 or we can ignore -0.0: Z - (X - Y) --> Z + (Y - X)
1784   // Canonicalize to fadd to make analysis easier.
1785   // This can also help codegen because fadd is commutative.
1786   // Note that if this fsub was really an fneg, the fadd with -0.0 will get
1787   // killed later. We still limit that particular transform with 'hasOneUse'
1788   // because an fneg is assumed better/cheaper than a generic fsub.
1789   if (I.hasNoSignedZeros() || CannotBeNegativeZero(Op0, SQ.TLI)) {
1790     if (match(Op1, m_OneUse(m_FSub(m_Value(X), m_Value(Y))))) {
1791       Value *NewSub = Builder.CreateFSubFMF(Y, X, &I);
1792       return BinaryOperator::CreateFAddFMF(Op0, NewSub, &I);
1793     }
1794   }
1795 
1796   if (isa<Constant>(Op0))
1797     if (SelectInst *SI = dyn_cast<SelectInst>(Op1))
1798       if (Instruction *NV = FoldOpIntoSelect(I, SI))
1799         return NV;
1800 
1801   // X - C --> X + (-C)
1802   // But don't transform constant expressions because there's an inverse fold
1803   // for X + (-Y) --> X - Y.
1804   if (match(Op1, m_Constant(C)) && !isa<ConstantExpr>(Op1))
1805     return BinaryOperator::CreateFAddFMF(Op0, ConstantExpr::getFNeg(C), &I);
1806 
1807   // X - (-Y) --> X + Y
1808   if (match(Op1, m_FNeg(m_Value(Y))))
1809     return BinaryOperator::CreateFAddFMF(Op0, Y, &I);
1810 
1811   // Similar to above, but look through a cast of the negated value:
1812   // X - (fptrunc(-Y)) --> X + fptrunc(Y)
1813   Type *Ty = I.getType();
1814   if (match(Op1, m_OneUse(m_FPTrunc(m_FNeg(m_Value(Y))))))
1815     return BinaryOperator::CreateFAddFMF(Op0, Builder.CreateFPTrunc(Y, Ty), &I);
1816 
1817   // X - (fpext(-Y)) --> X + fpext(Y)
1818   if (match(Op1, m_OneUse(m_FPExt(m_FNeg(m_Value(Y))))))
1819     return BinaryOperator::CreateFAddFMF(Op0, Builder.CreateFPExt(Y, Ty), &I);
1820 
1821   // Handle special cases for FSub with selects feeding the operation
1822   if (Value *V = SimplifySelectsFeedingBinaryOp(I, Op0, Op1))
1823     return replaceInstUsesWith(I, V);
1824 
1825   if (I.hasAllowReassoc() && I.hasNoSignedZeros()) {
1826     // (Y - X) - Y --> -X
1827     if (match(Op0, m_FSub(m_Specific(Op1), m_Value(X))))
1828       return BinaryOperator::CreateFNegFMF(X, &I);
1829 
1830     // Y - (X + Y) --> -X
1831     // Y - (Y + X) --> -X
1832     if (match(Op1, m_c_FAdd(m_Specific(Op0), m_Value(X))))
1833       return BinaryOperator::CreateFNegFMF(X, &I);
1834 
1835     // (X * C) - X --> X * (C - 1.0)
1836     if (match(Op0, m_FMul(m_Specific(Op1), m_Constant(C)))) {
1837       Constant *CSubOne = ConstantExpr::getFSub(C, ConstantFP::get(Ty, 1.0));
1838       return BinaryOperator::CreateFMulFMF(Op1, CSubOne, &I);
1839     }
1840     // X - (X * C) --> X * (1.0 - C)
1841     if (match(Op1, m_FMul(m_Specific(Op0), m_Constant(C)))) {
1842       Constant *OneSubC = ConstantExpr::getFSub(ConstantFP::get(Ty, 1.0), C);
1843       return BinaryOperator::CreateFMulFMF(Op0, OneSubC, &I);
1844     }
1845 
1846     if (Instruction *F = factorizeFAddFSub(I, Builder))
1847       return F;
1848 
1849     // TODO: This performs reassociative folds for FP ops. Some fraction of the
1850     // functionality has been subsumed by simple pattern matching here and in
1851     // InstSimplify. We should let a dedicated reassociation pass handle more
1852     // complex pattern matching and remove this from InstCombine.
1853     if (Value *V = FAddCombine(Builder).simplify(&I))
1854       return replaceInstUsesWith(I, V);
1855   }
1856 
1857   return nullptr;
1858 }
1859