1 //===- InstCombineCasts.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 cast operations.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "InstCombineInternal.h"
15 #include "llvm/Analysis/ConstantFolding.h"
16 #include "llvm/IR/DataLayout.h"
17 #include "llvm/IR/PatternMatch.h"
18 #include "llvm/Analysis/TargetLibraryInfo.h"
19 using namespace llvm;
20 using namespace PatternMatch;
21 
22 #define DEBUG_TYPE "instcombine"
23 
24 /// Analyze 'Val', seeing if it is a simple linear expression.
25 /// If so, decompose it, returning some value X, such that Val is
26 /// X*Scale+Offset.
27 ///
28 static Value *decomposeSimpleLinearExpr(Value *Val, unsigned &Scale,
29                                         uint64_t &Offset) {
30   if (ConstantInt *CI = dyn_cast<ConstantInt>(Val)) {
31     Offset = CI->getZExtValue();
32     Scale  = 0;
33     return ConstantInt::get(Val->getType(), 0);
34   }
35 
36   if (BinaryOperator *I = dyn_cast<BinaryOperator>(Val)) {
37     // Cannot look past anything that might overflow.
38     OverflowingBinaryOperator *OBI = dyn_cast<OverflowingBinaryOperator>(Val);
39     if (OBI && !OBI->hasNoUnsignedWrap() && !OBI->hasNoSignedWrap()) {
40       Scale = 1;
41       Offset = 0;
42       return Val;
43     }
44 
45     if (ConstantInt *RHS = dyn_cast<ConstantInt>(I->getOperand(1))) {
46       if (I->getOpcode() == Instruction::Shl) {
47         // This is a value scaled by '1 << the shift amt'.
48         Scale = UINT64_C(1) << RHS->getZExtValue();
49         Offset = 0;
50         return I->getOperand(0);
51       }
52 
53       if (I->getOpcode() == Instruction::Mul) {
54         // This value is scaled by 'RHS'.
55         Scale = RHS->getZExtValue();
56         Offset = 0;
57         return I->getOperand(0);
58       }
59 
60       if (I->getOpcode() == Instruction::Add) {
61         // We have X+C.  Check to see if we really have (X*C2)+C1,
62         // where C1 is divisible by C2.
63         unsigned SubScale;
64         Value *SubVal =
65           decomposeSimpleLinearExpr(I->getOperand(0), SubScale, Offset);
66         Offset += RHS->getZExtValue();
67         Scale = SubScale;
68         return SubVal;
69       }
70     }
71   }
72 
73   // Otherwise, we can't look past this.
74   Scale = 1;
75   Offset = 0;
76   return Val;
77 }
78 
79 /// If we find a cast of an allocation instruction, try to eliminate the cast by
80 /// moving the type information into the alloc.
81 Instruction *InstCombiner::PromoteCastOfAllocation(BitCastInst &CI,
82                                                    AllocaInst &AI) {
83   PointerType *PTy = cast<PointerType>(CI.getType());
84 
85   BuilderTy AllocaBuilder(*Builder);
86   AllocaBuilder.SetInsertPoint(&AI);
87 
88   // Get the type really allocated and the type casted to.
89   Type *AllocElTy = AI.getAllocatedType();
90   Type *CastElTy = PTy->getElementType();
91   if (!AllocElTy->isSized() || !CastElTy->isSized()) return nullptr;
92 
93   unsigned AllocElTyAlign = DL.getABITypeAlignment(AllocElTy);
94   unsigned CastElTyAlign = DL.getABITypeAlignment(CastElTy);
95   if (CastElTyAlign < AllocElTyAlign) return nullptr;
96 
97   // If the allocation has multiple uses, only promote it if we are strictly
98   // increasing the alignment of the resultant allocation.  If we keep it the
99   // same, we open the door to infinite loops of various kinds.
100   if (!AI.hasOneUse() && CastElTyAlign == AllocElTyAlign) return nullptr;
101 
102   uint64_t AllocElTySize = DL.getTypeAllocSize(AllocElTy);
103   uint64_t CastElTySize = DL.getTypeAllocSize(CastElTy);
104   if (CastElTySize == 0 || AllocElTySize == 0) return nullptr;
105 
106   // If the allocation has multiple uses, only promote it if we're not
107   // shrinking the amount of memory being allocated.
108   uint64_t AllocElTyStoreSize = DL.getTypeStoreSize(AllocElTy);
109   uint64_t CastElTyStoreSize = DL.getTypeStoreSize(CastElTy);
110   if (!AI.hasOneUse() && CastElTyStoreSize < AllocElTyStoreSize) return nullptr;
111 
112   // See if we can satisfy the modulus by pulling a scale out of the array
113   // size argument.
114   unsigned ArraySizeScale;
115   uint64_t ArrayOffset;
116   Value *NumElements = // See if the array size is a decomposable linear expr.
117     decomposeSimpleLinearExpr(AI.getOperand(0), ArraySizeScale, ArrayOffset);
118 
119   // If we can now satisfy the modulus, by using a non-1 scale, we really can
120   // do the xform.
121   if ((AllocElTySize*ArraySizeScale) % CastElTySize != 0 ||
122       (AllocElTySize*ArrayOffset   ) % CastElTySize != 0) return nullptr;
123 
124   unsigned Scale = (AllocElTySize*ArraySizeScale)/CastElTySize;
125   Value *Amt = nullptr;
126   if (Scale == 1) {
127     Amt = NumElements;
128   } else {
129     Amt = ConstantInt::get(AI.getArraySize()->getType(), Scale);
130     // Insert before the alloca, not before the cast.
131     Amt = AllocaBuilder.CreateMul(Amt, NumElements);
132   }
133 
134   if (uint64_t Offset = (AllocElTySize*ArrayOffset)/CastElTySize) {
135     Value *Off = ConstantInt::get(AI.getArraySize()->getType(),
136                                   Offset, true);
137     Amt = AllocaBuilder.CreateAdd(Amt, Off);
138   }
139 
140   AllocaInst *New = AllocaBuilder.CreateAlloca(CastElTy, Amt);
141   New->setAlignment(AI.getAlignment());
142   New->takeName(&AI);
143   New->setUsedWithInAlloca(AI.isUsedWithInAlloca());
144 
145   // If the allocation has multiple real uses, insert a cast and change all
146   // things that used it to use the new cast.  This will also hack on CI, but it
147   // will die soon.
148   if (!AI.hasOneUse()) {
149     // New is the allocation instruction, pointer typed. AI is the original
150     // allocation instruction, also pointer typed. Thus, cast to use is BitCast.
151     Value *NewCast = AllocaBuilder.CreateBitCast(New, AI.getType(), "tmpcast");
152     replaceInstUsesWith(AI, NewCast);
153   }
154   return replaceInstUsesWith(CI, New);
155 }
156 
157 /// Given an expression that CanEvaluateTruncated or CanEvaluateSExtd returns
158 /// true for, actually insert the code to evaluate the expression.
159 Value *InstCombiner::EvaluateInDifferentType(Value *V, Type *Ty,
160                                              bool isSigned) {
161   if (Constant *C = dyn_cast<Constant>(V)) {
162     C = ConstantExpr::getIntegerCast(C, Ty, isSigned /*Sext or ZExt*/);
163     // If we got a constantexpr back, try to simplify it with DL info.
164     if (Constant *FoldedC = ConstantFoldConstant(C, DL, TLI))
165       C = FoldedC;
166     return C;
167   }
168 
169   // Otherwise, it must be an instruction.
170   Instruction *I = cast<Instruction>(V);
171   Instruction *Res = nullptr;
172   unsigned Opc = I->getOpcode();
173   switch (Opc) {
174   case Instruction::Add:
175   case Instruction::Sub:
176   case Instruction::Mul:
177   case Instruction::And:
178   case Instruction::Or:
179   case Instruction::Xor:
180   case Instruction::AShr:
181   case Instruction::LShr:
182   case Instruction::Shl:
183   case Instruction::UDiv:
184   case Instruction::URem: {
185     Value *LHS = EvaluateInDifferentType(I->getOperand(0), Ty, isSigned);
186     Value *RHS = EvaluateInDifferentType(I->getOperand(1), Ty, isSigned);
187     Res = BinaryOperator::Create((Instruction::BinaryOps)Opc, LHS, RHS);
188     break;
189   }
190   case Instruction::Trunc:
191   case Instruction::ZExt:
192   case Instruction::SExt:
193     // If the source type of the cast is the type we're trying for then we can
194     // just return the source.  There's no need to insert it because it is not
195     // new.
196     if (I->getOperand(0)->getType() == Ty)
197       return I->getOperand(0);
198 
199     // Otherwise, must be the same type of cast, so just reinsert a new one.
200     // This also handles the case of zext(trunc(x)) -> zext(x).
201     Res = CastInst::CreateIntegerCast(I->getOperand(0), Ty,
202                                       Opc == Instruction::SExt);
203     break;
204   case Instruction::Select: {
205     Value *True = EvaluateInDifferentType(I->getOperand(1), Ty, isSigned);
206     Value *False = EvaluateInDifferentType(I->getOperand(2), Ty, isSigned);
207     Res = SelectInst::Create(I->getOperand(0), True, False);
208     break;
209   }
210   case Instruction::PHI: {
211     PHINode *OPN = cast<PHINode>(I);
212     PHINode *NPN = PHINode::Create(Ty, OPN->getNumIncomingValues());
213     for (unsigned i = 0, e = OPN->getNumIncomingValues(); i != e; ++i) {
214       Value *V =
215           EvaluateInDifferentType(OPN->getIncomingValue(i), Ty, isSigned);
216       NPN->addIncoming(V, OPN->getIncomingBlock(i));
217     }
218     Res = NPN;
219     break;
220   }
221   default:
222     // TODO: Can handle more cases here.
223     llvm_unreachable("Unreachable!");
224   }
225 
226   Res->takeName(I);
227   return InsertNewInstWith(Res, *I);
228 }
229 
230 Instruction::CastOps InstCombiner::isEliminableCastPair(const CastInst *CI1,
231                                                         const CastInst *CI2) {
232   Type *SrcTy = CI1->getSrcTy();
233   Type *MidTy = CI1->getDestTy();
234   Type *DstTy = CI2->getDestTy();
235 
236   Instruction::CastOps firstOp = Instruction::CastOps(CI1->getOpcode());
237   Instruction::CastOps secondOp = Instruction::CastOps(CI2->getOpcode());
238   Type *SrcIntPtrTy =
239       SrcTy->isPtrOrPtrVectorTy() ? DL.getIntPtrType(SrcTy) : nullptr;
240   Type *MidIntPtrTy =
241       MidTy->isPtrOrPtrVectorTy() ? DL.getIntPtrType(MidTy) : nullptr;
242   Type *DstIntPtrTy =
243       DstTy->isPtrOrPtrVectorTy() ? DL.getIntPtrType(DstTy) : nullptr;
244   unsigned Res = CastInst::isEliminableCastPair(firstOp, secondOp, SrcTy, MidTy,
245                                                 DstTy, SrcIntPtrTy, MidIntPtrTy,
246                                                 DstIntPtrTy);
247 
248   // We don't want to form an inttoptr or ptrtoint that converts to an integer
249   // type that differs from the pointer size.
250   if ((Res == Instruction::IntToPtr && SrcTy != DstIntPtrTy) ||
251       (Res == Instruction::PtrToInt && DstTy != SrcIntPtrTy))
252     Res = 0;
253 
254   return Instruction::CastOps(Res);
255 }
256 
257 /// @brief Implement the transforms common to all CastInst visitors.
258 Instruction *InstCombiner::commonCastTransforms(CastInst &CI) {
259   Value *Src = CI.getOperand(0);
260 
261   // Many cases of "cast of a cast" are eliminable. If it's eliminable we just
262   // eliminate it now.
263   if (CastInst *CSrc = dyn_cast<CastInst>(Src)) {   // A->B->C cast
264     if (Instruction::CastOps opc =
265             isEliminableCastPair(CSrc, &CI)) {
266       // The first cast (CSrc) is eliminable so we need to fix up or replace
267       // the second cast (CI). CSrc will then have a good chance of being dead.
268       return CastInst::Create(opc, CSrc->getOperand(0), CI.getType());
269     }
270   }
271 
272   // If we are casting a select then fold the cast into the select
273   if (SelectInst *SI = dyn_cast<SelectInst>(Src))
274     if (Instruction *NV = FoldOpIntoSelect(CI, SI))
275       return NV;
276 
277   // If we are casting a PHI then fold the cast into the PHI
278   if (isa<PHINode>(Src)) {
279     // We don't do this if this would create a PHI node with an illegal type if
280     // it is currently legal.
281     if (!Src->getType()->isIntegerTy() || !CI.getType()->isIntegerTy() ||
282         ShouldChangeType(CI.getType(), Src->getType()))
283       if (Instruction *NV = FoldOpIntoPhi(CI))
284         return NV;
285   }
286 
287   return nullptr;
288 }
289 
290 /// Return true if we can evaluate the specified expression tree as type Ty
291 /// instead of its larger type, and arrive with the same value.
292 /// This is used by code that tries to eliminate truncates.
293 ///
294 /// Ty will always be a type smaller than V.  We should return true if trunc(V)
295 /// can be computed by computing V in the smaller type.  If V is an instruction,
296 /// then trunc(inst(x,y)) can be computed as inst(trunc(x),trunc(y)), which only
297 /// makes sense if x and y can be efficiently truncated.
298 ///
299 /// This function works on both vectors and scalars.
300 ///
301 static bool canEvaluateTruncated(Value *V, Type *Ty, InstCombiner &IC,
302                                  Instruction *CxtI) {
303   // We can always evaluate constants in another type.
304   if (isa<Constant>(V))
305     return true;
306 
307   Instruction *I = dyn_cast<Instruction>(V);
308   if (!I) return false;
309 
310   Type *OrigTy = V->getType();
311 
312   // If this is an extension from the dest type, we can eliminate it, even if it
313   // has multiple uses.
314   if ((isa<ZExtInst>(I) || isa<SExtInst>(I)) &&
315       I->getOperand(0)->getType() == Ty)
316     return true;
317 
318   // We can't extend or shrink something that has multiple uses: doing so would
319   // require duplicating the instruction in general, which isn't profitable.
320   if (!I->hasOneUse()) return false;
321 
322   unsigned Opc = I->getOpcode();
323   switch (Opc) {
324   case Instruction::Add:
325   case Instruction::Sub:
326   case Instruction::Mul:
327   case Instruction::And:
328   case Instruction::Or:
329   case Instruction::Xor:
330     // These operators can all arbitrarily be extended or truncated.
331     return canEvaluateTruncated(I->getOperand(0), Ty, IC, CxtI) &&
332            canEvaluateTruncated(I->getOperand(1), Ty, IC, CxtI);
333 
334   case Instruction::UDiv:
335   case Instruction::URem: {
336     // UDiv and URem can be truncated if all the truncated bits are zero.
337     uint32_t OrigBitWidth = OrigTy->getScalarSizeInBits();
338     uint32_t BitWidth = Ty->getScalarSizeInBits();
339     if (BitWidth < OrigBitWidth) {
340       APInt Mask = APInt::getHighBitsSet(OrigBitWidth, OrigBitWidth-BitWidth);
341       if (IC.MaskedValueIsZero(I->getOperand(0), Mask, 0, CxtI) &&
342           IC.MaskedValueIsZero(I->getOperand(1), Mask, 0, CxtI)) {
343         return canEvaluateTruncated(I->getOperand(0), Ty, IC, CxtI) &&
344                canEvaluateTruncated(I->getOperand(1), Ty, IC, CxtI);
345       }
346     }
347     break;
348   }
349   case Instruction::Shl:
350     // If we are truncating the result of this SHL, and if it's a shift of a
351     // constant amount, we can always perform a SHL in a smaller type.
352     if (ConstantInt *CI = dyn_cast<ConstantInt>(I->getOperand(1))) {
353       uint32_t BitWidth = Ty->getScalarSizeInBits();
354       if (CI->getLimitedValue(BitWidth) < BitWidth)
355         return canEvaluateTruncated(I->getOperand(0), Ty, IC, CxtI);
356     }
357     break;
358   case Instruction::LShr:
359     // If this is a truncate of a logical shr, we can truncate it to a smaller
360     // lshr iff we know that the bits we would otherwise be shifting in are
361     // already zeros.
362     if (ConstantInt *CI = dyn_cast<ConstantInt>(I->getOperand(1))) {
363       uint32_t OrigBitWidth = OrigTy->getScalarSizeInBits();
364       uint32_t BitWidth = Ty->getScalarSizeInBits();
365       if (IC.MaskedValueIsZero(I->getOperand(0),
366             APInt::getHighBitsSet(OrigBitWidth, OrigBitWidth-BitWidth), 0, CxtI) &&
367           CI->getLimitedValue(BitWidth) < BitWidth) {
368         return canEvaluateTruncated(I->getOperand(0), Ty, IC, CxtI);
369       }
370     }
371     break;
372   case Instruction::Trunc:
373     // trunc(trunc(x)) -> trunc(x)
374     return true;
375   case Instruction::ZExt:
376   case Instruction::SExt:
377     // trunc(ext(x)) -> ext(x) if the source type is smaller than the new dest
378     // trunc(ext(x)) -> trunc(x) if the source type is larger than the new dest
379     return true;
380   case Instruction::Select: {
381     SelectInst *SI = cast<SelectInst>(I);
382     return canEvaluateTruncated(SI->getTrueValue(), Ty, IC, CxtI) &&
383            canEvaluateTruncated(SI->getFalseValue(), Ty, IC, CxtI);
384   }
385   case Instruction::PHI: {
386     // We can change a phi if we can change all operands.  Note that we never
387     // get into trouble with cyclic PHIs here because we only consider
388     // instructions with a single use.
389     PHINode *PN = cast<PHINode>(I);
390     for (Value *IncValue : PN->incoming_values())
391       if (!canEvaluateTruncated(IncValue, Ty, IC, CxtI))
392         return false;
393     return true;
394   }
395   default:
396     // TODO: Can handle more cases here.
397     break;
398   }
399 
400   return false;
401 }
402 
403 /// Given a vector that is bitcast to an integer, optionally logically
404 /// right-shifted, and truncated, convert it to an extractelement.
405 /// Example (big endian):
406 ///   trunc (lshr (bitcast <4 x i32> %X to i128), 32) to i32
407 ///   --->
408 ///   extractelement <4 x i32> %X, 1
409 static Instruction *foldVecTruncToExtElt(TruncInst &Trunc, InstCombiner &IC,
410                                          const DataLayout &DL) {
411   Value *TruncOp = Trunc.getOperand(0);
412   Type *DestType = Trunc.getType();
413   if (!TruncOp->hasOneUse() || !isa<IntegerType>(DestType))
414     return nullptr;
415 
416   Value *VecInput = nullptr;
417   ConstantInt *ShiftVal = nullptr;
418   if (!match(TruncOp, m_CombineOr(m_BitCast(m_Value(VecInput)),
419                                   m_LShr(m_BitCast(m_Value(VecInput)),
420                                          m_ConstantInt(ShiftVal)))) ||
421       !isa<VectorType>(VecInput->getType()))
422     return nullptr;
423 
424   VectorType *VecType = cast<VectorType>(VecInput->getType());
425   unsigned VecWidth = VecType->getPrimitiveSizeInBits();
426   unsigned DestWidth = DestType->getPrimitiveSizeInBits();
427   unsigned ShiftAmount = ShiftVal ? ShiftVal->getZExtValue() : 0;
428 
429   if ((VecWidth % DestWidth != 0) || (ShiftAmount % DestWidth != 0))
430     return nullptr;
431 
432   // If the element type of the vector doesn't match the result type,
433   // bitcast it to a vector type that we can extract from.
434   unsigned NumVecElts = VecWidth / DestWidth;
435   if (VecType->getElementType() != DestType) {
436     VecType = VectorType::get(DestType, NumVecElts);
437     VecInput = IC.Builder->CreateBitCast(VecInput, VecType, "bc");
438   }
439 
440   unsigned Elt = ShiftAmount / DestWidth;
441   if (DL.isBigEndian())
442     Elt = NumVecElts - 1 - Elt;
443 
444   return ExtractElementInst::Create(VecInput, IC.Builder->getInt32(Elt));
445 }
446 
447 Instruction *InstCombiner::visitTrunc(TruncInst &CI) {
448   if (Instruction *Result = commonCastTransforms(CI))
449     return Result;
450 
451   // Test if the trunc is the user of a select which is part of a
452   // minimum or maximum operation. If so, don't do any more simplification.
453   // Even simplifying demanded bits can break the canonical form of a
454   // min/max.
455   Value *LHS, *RHS;
456   if (SelectInst *SI = dyn_cast<SelectInst>(CI.getOperand(0)))
457     if (matchSelectPattern(SI, LHS, RHS).Flavor != SPF_UNKNOWN)
458       return nullptr;
459 
460   // See if we can simplify any instructions used by the input whose sole
461   // purpose is to compute bits we don't care about.
462   if (SimplifyDemandedInstructionBits(CI))
463     return &CI;
464 
465   Value *Src = CI.getOperand(0);
466   Type *DestTy = CI.getType(), *SrcTy = Src->getType();
467 
468   // Attempt to truncate the entire input expression tree to the destination
469   // type.   Only do this if the dest type is a simple type, don't convert the
470   // expression tree to something weird like i93 unless the source is also
471   // strange.
472   if ((DestTy->isVectorTy() || ShouldChangeType(SrcTy, DestTy)) &&
473       canEvaluateTruncated(Src, DestTy, *this, &CI)) {
474 
475     // If this cast is a truncate, evaluting in a different type always
476     // eliminates the cast, so it is always a win.
477     DEBUG(dbgs() << "ICE: EvaluateInDifferentType converting expression type"
478           " to avoid cast: " << CI << '\n');
479     Value *Res = EvaluateInDifferentType(Src, DestTy, false);
480     assert(Res->getType() == DestTy);
481     return replaceInstUsesWith(CI, Res);
482   }
483 
484   // Canonicalize trunc x to i1 -> (icmp ne (and x, 1), 0), likewise for vector.
485   if (DestTy->getScalarSizeInBits() == 1) {
486     Constant *One = ConstantInt::get(SrcTy, 1);
487     Src = Builder->CreateAnd(Src, One);
488     Value *Zero = Constant::getNullValue(Src->getType());
489     return new ICmpInst(ICmpInst::ICMP_NE, Src, Zero);
490   }
491 
492   // Transform trunc(lshr (zext A), Cst) to eliminate one type conversion.
493   Value *A = nullptr; ConstantInt *Cst = nullptr;
494   if (Src->hasOneUse() &&
495       match(Src, m_LShr(m_ZExt(m_Value(A)), m_ConstantInt(Cst)))) {
496     // We have three types to worry about here, the type of A, the source of
497     // the truncate (MidSize), and the destination of the truncate. We know that
498     // ASize < MidSize   and MidSize > ResultSize, but don't know the relation
499     // between ASize and ResultSize.
500     unsigned ASize = A->getType()->getPrimitiveSizeInBits();
501 
502     // If the shift amount is larger than the size of A, then the result is
503     // known to be zero because all the input bits got shifted out.
504     if (Cst->getZExtValue() >= ASize)
505       return replaceInstUsesWith(CI, Constant::getNullValue(DestTy));
506 
507     // Since we're doing an lshr and a zero extend, and know that the shift
508     // amount is smaller than ASize, it is always safe to do the shift in A's
509     // type, then zero extend or truncate to the result.
510     Value *Shift = Builder->CreateLShr(A, Cst->getZExtValue());
511     Shift->takeName(Src);
512     return CastInst::CreateIntegerCast(Shift, DestTy, false);
513   }
514 
515   // Transform trunc(lshr (sext A), Cst) to ashr A, Cst to eliminate type
516   // conversion.
517   // It works because bits coming from sign extension have the same value as
518   // the sign bit of the original value; performing ashr instead of lshr
519   // generates bits of the same value as the sign bit.
520   if (Src->hasOneUse() &&
521       match(Src, m_LShr(m_SExt(m_Value(A)), m_ConstantInt(Cst))) &&
522       cast<Instruction>(Src)->getOperand(0)->hasOneUse()) {
523     const unsigned ASize = A->getType()->getPrimitiveSizeInBits();
524     // This optimization can be only performed when zero bits generated by
525     // the original lshr aren't pulled into the value after truncation, so we
526     // can only shift by values smaller than the size of destination type (in
527     // bits).
528     if (Cst->getValue().ult(ASize)) {
529       Value *Shift = Builder->CreateAShr(A, Cst->getZExtValue());
530       Shift->takeName(Src);
531       return CastInst::CreateIntegerCast(Shift, CI.getType(), true);
532     }
533   }
534 
535   // Transform "trunc (and X, cst)" -> "and (trunc X), cst" so long as the dest
536   // type isn't non-native.
537   if (Src->hasOneUse() && isa<IntegerType>(SrcTy) &&
538       ShouldChangeType(SrcTy, DestTy) &&
539       match(Src, m_And(m_Value(A), m_ConstantInt(Cst)))) {
540     Value *NewTrunc = Builder->CreateTrunc(A, DestTy, A->getName() + ".tr");
541     return BinaryOperator::CreateAnd(NewTrunc,
542                                      ConstantExpr::getTrunc(Cst, DestTy));
543   }
544 
545   if (Instruction *I = foldVecTruncToExtElt(CI, *this, DL))
546     return I;
547 
548   return nullptr;
549 }
550 
551 Instruction *InstCombiner::transformZExtICmp(ICmpInst *ICI, ZExtInst &CI,
552                                              bool DoTransform) {
553   // If we are just checking for a icmp eq of a single bit and zext'ing it
554   // to an integer, then shift the bit to the appropriate place and then
555   // cast to integer to avoid the comparison.
556   if (ConstantInt *Op1C = dyn_cast<ConstantInt>(ICI->getOperand(1))) {
557     const APInt &Op1CV = Op1C->getValue();
558 
559     // zext (x <s  0) to i32 --> x>>u31      true if signbit set.
560     // zext (x >s -1) to i32 --> (x>>u31)^1  true if signbit clear.
561     if ((ICI->getPredicate() == ICmpInst::ICMP_SLT && Op1CV == 0) ||
562         (ICI->getPredicate() == ICmpInst::ICMP_SGT && Op1CV.isAllOnesValue())) {
563       if (!DoTransform) return ICI;
564 
565       Value *In = ICI->getOperand(0);
566       Value *Sh = ConstantInt::get(In->getType(),
567                                    In->getType()->getScalarSizeInBits() - 1);
568       In = Builder->CreateLShr(In, Sh, In->getName() + ".lobit");
569       if (In->getType() != CI.getType())
570         In = Builder->CreateIntCast(In, CI.getType(), false/*ZExt*/);
571 
572       if (ICI->getPredicate() == ICmpInst::ICMP_SGT) {
573         Constant *One = ConstantInt::get(In->getType(), 1);
574         In = Builder->CreateXor(In, One, In->getName() + ".not");
575       }
576 
577       return replaceInstUsesWith(CI, In);
578     }
579 
580     // zext (X == 0) to i32 --> X^1      iff X has only the low bit set.
581     // zext (X == 0) to i32 --> (X>>1)^1 iff X has only the 2nd bit set.
582     // zext (X == 1) to i32 --> X        iff X has only the low bit set.
583     // zext (X == 2) to i32 --> X>>1     iff X has only the 2nd bit set.
584     // zext (X != 0) to i32 --> X        iff X has only the low bit set.
585     // zext (X != 0) to i32 --> X>>1     iff X has only the 2nd bit set.
586     // zext (X != 1) to i32 --> X^1      iff X has only the low bit set.
587     // zext (X != 2) to i32 --> (X>>1)^1 iff X has only the 2nd bit set.
588     if ((Op1CV == 0 || Op1CV.isPowerOf2()) &&
589         // This only works for EQ and NE
590         ICI->isEquality()) {
591       // If Op1C some other power of two, convert:
592       uint32_t BitWidth = Op1C->getType()->getBitWidth();
593       APInt KnownZero(BitWidth, 0), KnownOne(BitWidth, 0);
594       computeKnownBits(ICI->getOperand(0), KnownZero, KnownOne, 0, &CI);
595 
596       APInt KnownZeroMask(~KnownZero);
597       if (KnownZeroMask.isPowerOf2()) { // Exactly 1 possible 1?
598         if (!DoTransform) return ICI;
599 
600         bool isNE = ICI->getPredicate() == ICmpInst::ICMP_NE;
601         if (Op1CV != 0 && (Op1CV != KnownZeroMask)) {
602           // (X&4) == 2 --> false
603           // (X&4) != 2 --> true
604           Constant *Res = ConstantInt::get(Type::getInt1Ty(CI.getContext()),
605                                            isNE);
606           Res = ConstantExpr::getZExt(Res, CI.getType());
607           return replaceInstUsesWith(CI, Res);
608         }
609 
610         uint32_t ShAmt = KnownZeroMask.logBase2();
611         Value *In = ICI->getOperand(0);
612         if (ShAmt) {
613           // Perform a logical shr by shiftamt.
614           // Insert the shift to put the result in the low bit.
615           In = Builder->CreateLShr(In, ConstantInt::get(In->getType(), ShAmt),
616                                    In->getName() + ".lobit");
617         }
618 
619         if ((Op1CV != 0) == isNE) { // Toggle the low bit.
620           Constant *One = ConstantInt::get(In->getType(), 1);
621           In = Builder->CreateXor(In, One);
622         }
623 
624         if (CI.getType() == In->getType())
625           return replaceInstUsesWith(CI, In);
626 
627         Value *IntCast = Builder->CreateIntCast(In, CI.getType(), false);
628         return replaceInstUsesWith(CI, IntCast);
629       }
630     }
631   }
632 
633   // icmp ne A, B is equal to xor A, B when A and B only really have one bit.
634   // It is also profitable to transform icmp eq into not(xor(A, B)) because that
635   // may lead to additional simplifications.
636   if (ICI->isEquality() && CI.getType() == ICI->getOperand(0)->getType()) {
637     if (IntegerType *ITy = dyn_cast<IntegerType>(CI.getType())) {
638       uint32_t BitWidth = ITy->getBitWidth();
639       Value *LHS = ICI->getOperand(0);
640       Value *RHS = ICI->getOperand(1);
641 
642       APInt KnownZeroLHS(BitWidth, 0), KnownOneLHS(BitWidth, 0);
643       APInt KnownZeroRHS(BitWidth, 0), KnownOneRHS(BitWidth, 0);
644       computeKnownBits(LHS, KnownZeroLHS, KnownOneLHS, 0, &CI);
645       computeKnownBits(RHS, KnownZeroRHS, KnownOneRHS, 0, &CI);
646 
647       if (KnownZeroLHS == KnownZeroRHS && KnownOneLHS == KnownOneRHS) {
648         APInt KnownBits = KnownZeroLHS | KnownOneLHS;
649         APInt UnknownBit = ~KnownBits;
650         if (UnknownBit.countPopulation() == 1) {
651           if (!DoTransform) return ICI;
652 
653           Value *Result = Builder->CreateXor(LHS, RHS);
654 
655           // Mask off any bits that are set and won't be shifted away.
656           if (KnownOneLHS.uge(UnknownBit))
657             Result = Builder->CreateAnd(Result,
658                                         ConstantInt::get(ITy, UnknownBit));
659 
660           // Shift the bit we're testing down to the lsb.
661           Result = Builder->CreateLShr(
662                Result, ConstantInt::get(ITy, UnknownBit.countTrailingZeros()));
663 
664           if (ICI->getPredicate() == ICmpInst::ICMP_EQ)
665             Result = Builder->CreateXor(Result, ConstantInt::get(ITy, 1));
666           Result->takeName(ICI);
667           return replaceInstUsesWith(CI, Result);
668         }
669       }
670     }
671   }
672 
673   return nullptr;
674 }
675 
676 /// Determine if the specified value can be computed in the specified wider type
677 /// and produce the same low bits. If not, return false.
678 ///
679 /// If this function returns true, it can also return a non-zero number of bits
680 /// (in BitsToClear) which indicates that the value it computes is correct for
681 /// the zero extend, but that the additional BitsToClear bits need to be zero'd
682 /// out.  For example, to promote something like:
683 ///
684 ///   %B = trunc i64 %A to i32
685 ///   %C = lshr i32 %B, 8
686 ///   %E = zext i32 %C to i64
687 ///
688 /// CanEvaluateZExtd for the 'lshr' will return true, and BitsToClear will be
689 /// set to 8 to indicate that the promoted value needs to have bits 24-31
690 /// cleared in addition to bits 32-63.  Since an 'and' will be generated to
691 /// clear the top bits anyway, doing this has no extra cost.
692 ///
693 /// This function works on both vectors and scalars.
694 static bool canEvaluateZExtd(Value *V, Type *Ty, unsigned &BitsToClear,
695                              InstCombiner &IC, Instruction *CxtI) {
696   BitsToClear = 0;
697   if (isa<Constant>(V))
698     return true;
699 
700   Instruction *I = dyn_cast<Instruction>(V);
701   if (!I) return false;
702 
703   // If the input is a truncate from the destination type, we can trivially
704   // eliminate it.
705   if (isa<TruncInst>(I) && I->getOperand(0)->getType() == Ty)
706     return true;
707 
708   // We can't extend or shrink something that has multiple uses: doing so would
709   // require duplicating the instruction in general, which isn't profitable.
710   if (!I->hasOneUse()) return false;
711 
712   unsigned Opc = I->getOpcode(), Tmp;
713   switch (Opc) {
714   case Instruction::ZExt:  // zext(zext(x)) -> zext(x).
715   case Instruction::SExt:  // zext(sext(x)) -> sext(x).
716   case Instruction::Trunc: // zext(trunc(x)) -> trunc(x) or zext(x)
717     return true;
718   case Instruction::And:
719   case Instruction::Or:
720   case Instruction::Xor:
721   case Instruction::Add:
722   case Instruction::Sub:
723   case Instruction::Mul:
724     if (!canEvaluateZExtd(I->getOperand(0), Ty, BitsToClear, IC, CxtI) ||
725         !canEvaluateZExtd(I->getOperand(1), Ty, Tmp, IC, CxtI))
726       return false;
727     // These can all be promoted if neither operand has 'bits to clear'.
728     if (BitsToClear == 0 && Tmp == 0)
729       return true;
730 
731     // If the operation is an AND/OR/XOR and the bits to clear are zero in the
732     // other side, BitsToClear is ok.
733     if (Tmp == 0 &&
734         (Opc == Instruction::And || Opc == Instruction::Or ||
735          Opc == Instruction::Xor)) {
736       // We use MaskedValueIsZero here for generality, but the case we care
737       // about the most is constant RHS.
738       unsigned VSize = V->getType()->getScalarSizeInBits();
739       if (IC.MaskedValueIsZero(I->getOperand(1),
740                                APInt::getHighBitsSet(VSize, BitsToClear),
741                                0, CxtI))
742         return true;
743     }
744 
745     // Otherwise, we don't know how to analyze this BitsToClear case yet.
746     return false;
747 
748   case Instruction::Shl:
749     // We can promote shl(x, cst) if we can promote x.  Since shl overwrites the
750     // upper bits we can reduce BitsToClear by the shift amount.
751     if (ConstantInt *Amt = dyn_cast<ConstantInt>(I->getOperand(1))) {
752       if (!canEvaluateZExtd(I->getOperand(0), Ty, BitsToClear, IC, CxtI))
753         return false;
754       uint64_t ShiftAmt = Amt->getZExtValue();
755       BitsToClear = ShiftAmt < BitsToClear ? BitsToClear - ShiftAmt : 0;
756       return true;
757     }
758     return false;
759   case Instruction::LShr:
760     // We can promote lshr(x, cst) if we can promote x.  This requires the
761     // ultimate 'and' to clear out the high zero bits we're clearing out though.
762     if (ConstantInt *Amt = dyn_cast<ConstantInt>(I->getOperand(1))) {
763       if (!canEvaluateZExtd(I->getOperand(0), Ty, BitsToClear, IC, CxtI))
764         return false;
765       BitsToClear += Amt->getZExtValue();
766       if (BitsToClear > V->getType()->getScalarSizeInBits())
767         BitsToClear = V->getType()->getScalarSizeInBits();
768       return true;
769     }
770     // Cannot promote variable LSHR.
771     return false;
772   case Instruction::Select:
773     if (!canEvaluateZExtd(I->getOperand(1), Ty, Tmp, IC, CxtI) ||
774         !canEvaluateZExtd(I->getOperand(2), Ty, BitsToClear, IC, CxtI) ||
775         // TODO: If important, we could handle the case when the BitsToClear are
776         // known zero in the disagreeing side.
777         Tmp != BitsToClear)
778       return false;
779     return true;
780 
781   case Instruction::PHI: {
782     // We can change a phi if we can change all operands.  Note that we never
783     // get into trouble with cyclic PHIs here because we only consider
784     // instructions with a single use.
785     PHINode *PN = cast<PHINode>(I);
786     if (!canEvaluateZExtd(PN->getIncomingValue(0), Ty, BitsToClear, IC, CxtI))
787       return false;
788     for (unsigned i = 1, e = PN->getNumIncomingValues(); i != e; ++i)
789       if (!canEvaluateZExtd(PN->getIncomingValue(i), Ty, Tmp, IC, CxtI) ||
790           // TODO: If important, we could handle the case when the BitsToClear
791           // are known zero in the disagreeing input.
792           Tmp != BitsToClear)
793         return false;
794     return true;
795   }
796   default:
797     // TODO: Can handle more cases here.
798     return false;
799   }
800 }
801 
802 Instruction *InstCombiner::visitZExt(ZExtInst &CI) {
803   // If this zero extend is only used by a truncate, let the truncate be
804   // eliminated before we try to optimize this zext.
805   if (CI.hasOneUse() && isa<TruncInst>(CI.user_back()))
806     return nullptr;
807 
808   // If one of the common conversion will work, do it.
809   if (Instruction *Result = commonCastTransforms(CI))
810     return Result;
811 
812   // See if we can simplify any instructions used by the input whose sole
813   // purpose is to compute bits we don't care about.
814   if (SimplifyDemandedInstructionBits(CI))
815     return &CI;
816 
817   Value *Src = CI.getOperand(0);
818   Type *SrcTy = Src->getType(), *DestTy = CI.getType();
819 
820   // Attempt to extend the entire input expression tree to the destination
821   // type.   Only do this if the dest type is a simple type, don't convert the
822   // expression tree to something weird like i93 unless the source is also
823   // strange.
824   unsigned BitsToClear;
825   if ((DestTy->isVectorTy() || ShouldChangeType(SrcTy, DestTy)) &&
826       canEvaluateZExtd(Src, DestTy, BitsToClear, *this, &CI)) {
827     assert(BitsToClear < SrcTy->getScalarSizeInBits() &&
828            "Unreasonable BitsToClear");
829 
830     // Okay, we can transform this!  Insert the new expression now.
831     DEBUG(dbgs() << "ICE: EvaluateInDifferentType converting expression type"
832           " to avoid zero extend: " << CI << '\n');
833     Value *Res = EvaluateInDifferentType(Src, DestTy, false);
834     assert(Res->getType() == DestTy);
835 
836     uint32_t SrcBitsKept = SrcTy->getScalarSizeInBits()-BitsToClear;
837     uint32_t DestBitSize = DestTy->getScalarSizeInBits();
838 
839     // If the high bits are already filled with zeros, just replace this
840     // cast with the result.
841     if (MaskedValueIsZero(Res,
842                           APInt::getHighBitsSet(DestBitSize,
843                                                 DestBitSize-SrcBitsKept),
844                              0, &CI))
845       return replaceInstUsesWith(CI, Res);
846 
847     // We need to emit an AND to clear the high bits.
848     Constant *C = ConstantInt::get(Res->getType(),
849                                APInt::getLowBitsSet(DestBitSize, SrcBitsKept));
850     return BinaryOperator::CreateAnd(Res, C);
851   }
852 
853   // If this is a TRUNC followed by a ZEXT then we are dealing with integral
854   // types and if the sizes are just right we can convert this into a logical
855   // 'and' which will be much cheaper than the pair of casts.
856   if (TruncInst *CSrc = dyn_cast<TruncInst>(Src)) {   // A->B->C cast
857     // TODO: Subsume this into EvaluateInDifferentType.
858 
859     // Get the sizes of the types involved.  We know that the intermediate type
860     // will be smaller than A or C, but don't know the relation between A and C.
861     Value *A = CSrc->getOperand(0);
862     unsigned SrcSize = A->getType()->getScalarSizeInBits();
863     unsigned MidSize = CSrc->getType()->getScalarSizeInBits();
864     unsigned DstSize = CI.getType()->getScalarSizeInBits();
865     // If we're actually extending zero bits, then if
866     // SrcSize <  DstSize: zext(a & mask)
867     // SrcSize == DstSize: a & mask
868     // SrcSize  > DstSize: trunc(a) & mask
869     if (SrcSize < DstSize) {
870       APInt AndValue(APInt::getLowBitsSet(SrcSize, MidSize));
871       Constant *AndConst = ConstantInt::get(A->getType(), AndValue);
872       Value *And = Builder->CreateAnd(A, AndConst, CSrc->getName()+".mask");
873       return new ZExtInst(And, CI.getType());
874     }
875 
876     if (SrcSize == DstSize) {
877       APInt AndValue(APInt::getLowBitsSet(SrcSize, MidSize));
878       return BinaryOperator::CreateAnd(A, ConstantInt::get(A->getType(),
879                                                            AndValue));
880     }
881     if (SrcSize > DstSize) {
882       Value *Trunc = Builder->CreateTrunc(A, CI.getType());
883       APInt AndValue(APInt::getLowBitsSet(DstSize, MidSize));
884       return BinaryOperator::CreateAnd(Trunc,
885                                        ConstantInt::get(Trunc->getType(),
886                                                         AndValue));
887     }
888   }
889 
890   if (ICmpInst *ICI = dyn_cast<ICmpInst>(Src))
891     return transformZExtICmp(ICI, CI);
892 
893   BinaryOperator *SrcI = dyn_cast<BinaryOperator>(Src);
894   if (SrcI && SrcI->getOpcode() == Instruction::Or) {
895     // zext (or icmp, icmp) -> or (zext icmp), (zext icmp) if at least one
896     // of the (zext icmp) can be eliminated. If so, immediately perform the
897     // according elimination.
898     ICmpInst *LHS = dyn_cast<ICmpInst>(SrcI->getOperand(0));
899     ICmpInst *RHS = dyn_cast<ICmpInst>(SrcI->getOperand(1));
900     if (LHS && RHS && LHS->hasOneUse() && RHS->hasOneUse() &&
901         (transformZExtICmp(LHS, CI, false) ||
902          transformZExtICmp(RHS, CI, false))) {
903       // zext (or icmp, icmp) -> or (zext icmp), (zext icmp)
904       Value *LCast = Builder->CreateZExt(LHS, CI.getType(), LHS->getName());
905       Value *RCast = Builder->CreateZExt(RHS, CI.getType(), RHS->getName());
906       BinaryOperator *Or = BinaryOperator::Create(Instruction::Or, LCast, RCast);
907 
908       // Perform the elimination.
909       if (auto *LZExt = dyn_cast<ZExtInst>(LCast))
910         transformZExtICmp(LHS, *LZExt);
911       if (auto *RZExt = dyn_cast<ZExtInst>(RCast))
912         transformZExtICmp(RHS, *RZExt);
913 
914       return Or;
915     }
916   }
917 
918   // zext(trunc(X) & C) -> (X & zext(C)).
919   Constant *C;
920   Value *X;
921   if (SrcI &&
922       match(SrcI, m_OneUse(m_And(m_Trunc(m_Value(X)), m_Constant(C)))) &&
923       X->getType() == CI.getType())
924     return BinaryOperator::CreateAnd(X, ConstantExpr::getZExt(C, CI.getType()));
925 
926   // zext((trunc(X) & C) ^ C) -> ((X & zext(C)) ^ zext(C)).
927   Value *And;
928   if (SrcI && match(SrcI, m_OneUse(m_Xor(m_Value(And), m_Constant(C)))) &&
929       match(And, m_OneUse(m_And(m_Trunc(m_Value(X)), m_Specific(C)))) &&
930       X->getType() == CI.getType()) {
931     Constant *ZC = ConstantExpr::getZExt(C, CI.getType());
932     return BinaryOperator::CreateXor(Builder->CreateAnd(X, ZC), ZC);
933   }
934 
935   return nullptr;
936 }
937 
938 /// Transform (sext icmp) to bitwise / integer operations to eliminate the icmp.
939 Instruction *InstCombiner::transformSExtICmp(ICmpInst *ICI, Instruction &CI) {
940   Value *Op0 = ICI->getOperand(0), *Op1 = ICI->getOperand(1);
941   ICmpInst::Predicate Pred = ICI->getPredicate();
942 
943   // Don't bother if Op1 isn't of vector or integer type.
944   if (!Op1->getType()->isIntOrIntVectorTy())
945     return nullptr;
946 
947   if (Constant *Op1C = dyn_cast<Constant>(Op1)) {
948     // (x <s  0) ? -1 : 0 -> ashr x, 31        -> all ones if negative
949     // (x >s -1) ? -1 : 0 -> not (ashr x, 31)  -> all ones if positive
950     if ((Pred == ICmpInst::ICMP_SLT && Op1C->isNullValue()) ||
951         (Pred == ICmpInst::ICMP_SGT && Op1C->isAllOnesValue())) {
952 
953       Value *Sh = ConstantInt::get(Op0->getType(),
954                                    Op0->getType()->getScalarSizeInBits()-1);
955       Value *In = Builder->CreateAShr(Op0, Sh, Op0->getName()+".lobit");
956       if (In->getType() != CI.getType())
957         In = Builder->CreateIntCast(In, CI.getType(), true/*SExt*/);
958 
959       if (Pred == ICmpInst::ICMP_SGT)
960         In = Builder->CreateNot(In, In->getName()+".not");
961       return replaceInstUsesWith(CI, In);
962     }
963   }
964 
965   if (ConstantInt *Op1C = dyn_cast<ConstantInt>(Op1)) {
966     // If we know that only one bit of the LHS of the icmp can be set and we
967     // have an equality comparison with zero or a power of 2, we can transform
968     // the icmp and sext into bitwise/integer operations.
969     if (ICI->hasOneUse() &&
970         ICI->isEquality() && (Op1C->isZero() || Op1C->getValue().isPowerOf2())){
971       unsigned BitWidth = Op1C->getType()->getBitWidth();
972       APInt KnownZero(BitWidth, 0), KnownOne(BitWidth, 0);
973       computeKnownBits(Op0, KnownZero, KnownOne, 0, &CI);
974 
975       APInt KnownZeroMask(~KnownZero);
976       if (KnownZeroMask.isPowerOf2()) {
977         Value *In = ICI->getOperand(0);
978 
979         // If the icmp tests for a known zero bit we can constant fold it.
980         if (!Op1C->isZero() && Op1C->getValue() != KnownZeroMask) {
981           Value *V = Pred == ICmpInst::ICMP_NE ?
982                        ConstantInt::getAllOnesValue(CI.getType()) :
983                        ConstantInt::getNullValue(CI.getType());
984           return replaceInstUsesWith(CI, V);
985         }
986 
987         if (!Op1C->isZero() == (Pred == ICmpInst::ICMP_NE)) {
988           // sext ((x & 2^n) == 0)   -> (x >> n) - 1
989           // sext ((x & 2^n) != 2^n) -> (x >> n) - 1
990           unsigned ShiftAmt = KnownZeroMask.countTrailingZeros();
991           // Perform a right shift to place the desired bit in the LSB.
992           if (ShiftAmt)
993             In = Builder->CreateLShr(In,
994                                      ConstantInt::get(In->getType(), ShiftAmt));
995 
996           // At this point "In" is either 1 or 0. Subtract 1 to turn
997           // {1, 0} -> {0, -1}.
998           In = Builder->CreateAdd(In,
999                                   ConstantInt::getAllOnesValue(In->getType()),
1000                                   "sext");
1001         } else {
1002           // sext ((x & 2^n) != 0)   -> (x << bitwidth-n) a>> bitwidth-1
1003           // sext ((x & 2^n) == 2^n) -> (x << bitwidth-n) a>> bitwidth-1
1004           unsigned ShiftAmt = KnownZeroMask.countLeadingZeros();
1005           // Perform a left shift to place the desired bit in the MSB.
1006           if (ShiftAmt)
1007             In = Builder->CreateShl(In,
1008                                     ConstantInt::get(In->getType(), ShiftAmt));
1009 
1010           // Distribute the bit over the whole bit width.
1011           In = Builder->CreateAShr(In, ConstantInt::get(In->getType(),
1012                                                         BitWidth - 1), "sext");
1013         }
1014 
1015         if (CI.getType() == In->getType())
1016           return replaceInstUsesWith(CI, In);
1017         return CastInst::CreateIntegerCast(In, CI.getType(), true/*SExt*/);
1018       }
1019     }
1020   }
1021 
1022   return nullptr;
1023 }
1024 
1025 /// Return true if we can take the specified value and return it as type Ty
1026 /// without inserting any new casts and without changing the value of the common
1027 /// low bits.  This is used by code that tries to promote integer operations to
1028 /// a wider types will allow us to eliminate the extension.
1029 ///
1030 /// This function works on both vectors and scalars.
1031 ///
1032 static bool canEvaluateSExtd(Value *V, Type *Ty) {
1033   assert(V->getType()->getScalarSizeInBits() < Ty->getScalarSizeInBits() &&
1034          "Can't sign extend type to a smaller type");
1035   // If this is a constant, it can be trivially promoted.
1036   if (isa<Constant>(V))
1037     return true;
1038 
1039   Instruction *I = dyn_cast<Instruction>(V);
1040   if (!I) return false;
1041 
1042   // If this is a truncate from the dest type, we can trivially eliminate it.
1043   if (isa<TruncInst>(I) && I->getOperand(0)->getType() == Ty)
1044     return true;
1045 
1046   // We can't extend or shrink something that has multiple uses: doing so would
1047   // require duplicating the instruction in general, which isn't profitable.
1048   if (!I->hasOneUse()) return false;
1049 
1050   switch (I->getOpcode()) {
1051   case Instruction::SExt:  // sext(sext(x)) -> sext(x)
1052   case Instruction::ZExt:  // sext(zext(x)) -> zext(x)
1053   case Instruction::Trunc: // sext(trunc(x)) -> trunc(x) or sext(x)
1054     return true;
1055   case Instruction::And:
1056   case Instruction::Or:
1057   case Instruction::Xor:
1058   case Instruction::Add:
1059   case Instruction::Sub:
1060   case Instruction::Mul:
1061     // These operators can all arbitrarily be extended if their inputs can.
1062     return canEvaluateSExtd(I->getOperand(0), Ty) &&
1063            canEvaluateSExtd(I->getOperand(1), Ty);
1064 
1065   //case Instruction::Shl:   TODO
1066   //case Instruction::LShr:  TODO
1067 
1068   case Instruction::Select:
1069     return canEvaluateSExtd(I->getOperand(1), Ty) &&
1070            canEvaluateSExtd(I->getOperand(2), Ty);
1071 
1072   case Instruction::PHI: {
1073     // We can change a phi if we can change all operands.  Note that we never
1074     // get into trouble with cyclic PHIs here because we only consider
1075     // instructions with a single use.
1076     PHINode *PN = cast<PHINode>(I);
1077     for (Value *IncValue : PN->incoming_values())
1078       if (!canEvaluateSExtd(IncValue, Ty)) return false;
1079     return true;
1080   }
1081   default:
1082     // TODO: Can handle more cases here.
1083     break;
1084   }
1085 
1086   return false;
1087 }
1088 
1089 Instruction *InstCombiner::visitSExt(SExtInst &CI) {
1090   // If this sign extend is only used by a truncate, let the truncate be
1091   // eliminated before we try to optimize this sext.
1092   if (CI.hasOneUse() && isa<TruncInst>(CI.user_back()))
1093     return nullptr;
1094 
1095   if (Instruction *I = commonCastTransforms(CI))
1096     return I;
1097 
1098   // See if we can simplify any instructions used by the input whose sole
1099   // purpose is to compute bits we don't care about.
1100   if (SimplifyDemandedInstructionBits(CI))
1101     return &CI;
1102 
1103   Value *Src = CI.getOperand(0);
1104   Type *SrcTy = Src->getType(), *DestTy = CI.getType();
1105 
1106   // If we know that the value being extended is positive, we can use a zext
1107   // instead.
1108   bool KnownZero, KnownOne;
1109   ComputeSignBit(Src, KnownZero, KnownOne, 0, &CI);
1110   if (KnownZero) {
1111     Value *ZExt = Builder->CreateZExt(Src, DestTy);
1112     return replaceInstUsesWith(CI, ZExt);
1113   }
1114 
1115   // Attempt to extend the entire input expression tree to the destination
1116   // type.   Only do this if the dest type is a simple type, don't convert the
1117   // expression tree to something weird like i93 unless the source is also
1118   // strange.
1119   if ((DestTy->isVectorTy() || ShouldChangeType(SrcTy, DestTy)) &&
1120       canEvaluateSExtd(Src, DestTy)) {
1121     // Okay, we can transform this!  Insert the new expression now.
1122     DEBUG(dbgs() << "ICE: EvaluateInDifferentType converting expression type"
1123           " to avoid sign extend: " << CI << '\n');
1124     Value *Res = EvaluateInDifferentType(Src, DestTy, true);
1125     assert(Res->getType() == DestTy);
1126 
1127     uint32_t SrcBitSize = SrcTy->getScalarSizeInBits();
1128     uint32_t DestBitSize = DestTy->getScalarSizeInBits();
1129 
1130     // If the high bits are already filled with sign bit, just replace this
1131     // cast with the result.
1132     if (ComputeNumSignBits(Res, 0, &CI) > DestBitSize - SrcBitSize)
1133       return replaceInstUsesWith(CI, Res);
1134 
1135     // We need to emit a shl + ashr to do the sign extend.
1136     Value *ShAmt = ConstantInt::get(DestTy, DestBitSize-SrcBitSize);
1137     return BinaryOperator::CreateAShr(Builder->CreateShl(Res, ShAmt, "sext"),
1138                                       ShAmt);
1139   }
1140 
1141   // If this input is a trunc from our destination, then turn sext(trunc(x))
1142   // into shifts.
1143   if (TruncInst *TI = dyn_cast<TruncInst>(Src))
1144     if (TI->hasOneUse() && TI->getOperand(0)->getType() == DestTy) {
1145       uint32_t SrcBitSize = SrcTy->getScalarSizeInBits();
1146       uint32_t DestBitSize = DestTy->getScalarSizeInBits();
1147 
1148       // We need to emit a shl + ashr to do the sign extend.
1149       Value *ShAmt = ConstantInt::get(DestTy, DestBitSize-SrcBitSize);
1150       Value *Res = Builder->CreateShl(TI->getOperand(0), ShAmt, "sext");
1151       return BinaryOperator::CreateAShr(Res, ShAmt);
1152     }
1153 
1154   if (ICmpInst *ICI = dyn_cast<ICmpInst>(Src))
1155     return transformSExtICmp(ICI, CI);
1156 
1157   // If the input is a shl/ashr pair of a same constant, then this is a sign
1158   // extension from a smaller value.  If we could trust arbitrary bitwidth
1159   // integers, we could turn this into a truncate to the smaller bit and then
1160   // use a sext for the whole extension.  Since we don't, look deeper and check
1161   // for a truncate.  If the source and dest are the same type, eliminate the
1162   // trunc and extend and just do shifts.  For example, turn:
1163   //   %a = trunc i32 %i to i8
1164   //   %b = shl i8 %a, 6
1165   //   %c = ashr i8 %b, 6
1166   //   %d = sext i8 %c to i32
1167   // into:
1168   //   %a = shl i32 %i, 30
1169   //   %d = ashr i32 %a, 30
1170   Value *A = nullptr;
1171   // TODO: Eventually this could be subsumed by EvaluateInDifferentType.
1172   ConstantInt *BA = nullptr, *CA = nullptr;
1173   if (match(Src, m_AShr(m_Shl(m_Trunc(m_Value(A)), m_ConstantInt(BA)),
1174                         m_ConstantInt(CA))) &&
1175       BA == CA && A->getType() == CI.getType()) {
1176     unsigned MidSize = Src->getType()->getScalarSizeInBits();
1177     unsigned SrcDstSize = CI.getType()->getScalarSizeInBits();
1178     unsigned ShAmt = CA->getZExtValue()+SrcDstSize-MidSize;
1179     Constant *ShAmtV = ConstantInt::get(CI.getType(), ShAmt);
1180     A = Builder->CreateShl(A, ShAmtV, CI.getName());
1181     return BinaryOperator::CreateAShr(A, ShAmtV);
1182   }
1183 
1184   return nullptr;
1185 }
1186 
1187 
1188 /// Return a Constant* for the specified floating-point constant if it fits
1189 /// in the specified FP type without changing its value.
1190 static Constant *fitsInFPType(ConstantFP *CFP, const fltSemantics &Sem) {
1191   bool losesInfo;
1192   APFloat F = CFP->getValueAPF();
1193   (void)F.convert(Sem, APFloat::rmNearestTiesToEven, &losesInfo);
1194   if (!losesInfo)
1195     return ConstantFP::get(CFP->getContext(), F);
1196   return nullptr;
1197 }
1198 
1199 /// If this is a floating-point extension instruction, look
1200 /// through it until we get the source value.
1201 static Value *lookThroughFPExtensions(Value *V) {
1202   if (Instruction *I = dyn_cast<Instruction>(V))
1203     if (I->getOpcode() == Instruction::FPExt)
1204       return lookThroughFPExtensions(I->getOperand(0));
1205 
1206   // If this value is a constant, return the constant in the smallest FP type
1207   // that can accurately represent it.  This allows us to turn
1208   // (float)((double)X+2.0) into x+2.0f.
1209   if (ConstantFP *CFP = dyn_cast<ConstantFP>(V)) {
1210     if (CFP->getType() == Type::getPPC_FP128Ty(V->getContext()))
1211       return V;  // No constant folding of this.
1212     // See if the value can be truncated to half and then reextended.
1213     if (Value *V = fitsInFPType(CFP, APFloat::IEEEhalf))
1214       return V;
1215     // See if the value can be truncated to float and then reextended.
1216     if (Value *V = fitsInFPType(CFP, APFloat::IEEEsingle))
1217       return V;
1218     if (CFP->getType()->isDoubleTy())
1219       return V;  // Won't shrink.
1220     if (Value *V = fitsInFPType(CFP, APFloat::IEEEdouble))
1221       return V;
1222     // Don't try to shrink to various long double types.
1223   }
1224 
1225   return V;
1226 }
1227 
1228 Instruction *InstCombiner::visitFPTrunc(FPTruncInst &CI) {
1229   if (Instruction *I = commonCastTransforms(CI))
1230     return I;
1231   // If we have fptrunc(OpI (fpextend x), (fpextend y)), we would like to
1232   // simplify this expression to avoid one or more of the trunc/extend
1233   // operations if we can do so without changing the numerical results.
1234   //
1235   // The exact manner in which the widths of the operands interact to limit
1236   // what we can and cannot do safely varies from operation to operation, and
1237   // is explained below in the various case statements.
1238   BinaryOperator *OpI = dyn_cast<BinaryOperator>(CI.getOperand(0));
1239   if (OpI && OpI->hasOneUse()) {
1240     Value *LHSOrig = lookThroughFPExtensions(OpI->getOperand(0));
1241     Value *RHSOrig = lookThroughFPExtensions(OpI->getOperand(1));
1242     unsigned OpWidth = OpI->getType()->getFPMantissaWidth();
1243     unsigned LHSWidth = LHSOrig->getType()->getFPMantissaWidth();
1244     unsigned RHSWidth = RHSOrig->getType()->getFPMantissaWidth();
1245     unsigned SrcWidth = std::max(LHSWidth, RHSWidth);
1246     unsigned DstWidth = CI.getType()->getFPMantissaWidth();
1247     switch (OpI->getOpcode()) {
1248       default: break;
1249       case Instruction::FAdd:
1250       case Instruction::FSub:
1251         // For addition and subtraction, the infinitely precise result can
1252         // essentially be arbitrarily wide; proving that double rounding
1253         // will not occur because the result of OpI is exact (as we will for
1254         // FMul, for example) is hopeless.  However, we *can* nonetheless
1255         // frequently know that double rounding cannot occur (or that it is
1256         // innocuous) by taking advantage of the specific structure of
1257         // infinitely-precise results that admit double rounding.
1258         //
1259         // Specifically, if OpWidth >= 2*DstWdith+1 and DstWidth is sufficient
1260         // to represent both sources, we can guarantee that the double
1261         // rounding is innocuous (See p50 of Figueroa's 2000 PhD thesis,
1262         // "A Rigorous Framework for Fully Supporting the IEEE Standard ..."
1263         // for proof of this fact).
1264         //
1265         // Note: Figueroa does not consider the case where DstFormat !=
1266         // SrcFormat.  It's possible (likely even!) that this analysis
1267         // could be tightened for those cases, but they are rare (the main
1268         // case of interest here is (float)((double)float + float)).
1269         if (OpWidth >= 2*DstWidth+1 && DstWidth >= SrcWidth) {
1270           if (LHSOrig->getType() != CI.getType())
1271             LHSOrig = Builder->CreateFPExt(LHSOrig, CI.getType());
1272           if (RHSOrig->getType() != CI.getType())
1273             RHSOrig = Builder->CreateFPExt(RHSOrig, CI.getType());
1274           Instruction *RI =
1275             BinaryOperator::Create(OpI->getOpcode(), LHSOrig, RHSOrig);
1276           RI->copyFastMathFlags(OpI);
1277           return RI;
1278         }
1279         break;
1280       case Instruction::FMul:
1281         // For multiplication, the infinitely precise result has at most
1282         // LHSWidth + RHSWidth significant bits; if OpWidth is sufficient
1283         // that such a value can be exactly represented, then no double
1284         // rounding can possibly occur; we can safely perform the operation
1285         // in the destination format if it can represent both sources.
1286         if (OpWidth >= LHSWidth + RHSWidth && DstWidth >= SrcWidth) {
1287           if (LHSOrig->getType() != CI.getType())
1288             LHSOrig = Builder->CreateFPExt(LHSOrig, CI.getType());
1289           if (RHSOrig->getType() != CI.getType())
1290             RHSOrig = Builder->CreateFPExt(RHSOrig, CI.getType());
1291           Instruction *RI =
1292             BinaryOperator::CreateFMul(LHSOrig, RHSOrig);
1293           RI->copyFastMathFlags(OpI);
1294           return RI;
1295         }
1296         break;
1297       case Instruction::FDiv:
1298         // For division, we use again use the bound from Figueroa's
1299         // dissertation.  I am entirely certain that this bound can be
1300         // tightened in the unbalanced operand case by an analysis based on
1301         // the diophantine rational approximation bound, but the well-known
1302         // condition used here is a good conservative first pass.
1303         // TODO: Tighten bound via rigorous analysis of the unbalanced case.
1304         if (OpWidth >= 2*DstWidth && DstWidth >= SrcWidth) {
1305           if (LHSOrig->getType() != CI.getType())
1306             LHSOrig = Builder->CreateFPExt(LHSOrig, CI.getType());
1307           if (RHSOrig->getType() != CI.getType())
1308             RHSOrig = Builder->CreateFPExt(RHSOrig, CI.getType());
1309           Instruction *RI =
1310             BinaryOperator::CreateFDiv(LHSOrig, RHSOrig);
1311           RI->copyFastMathFlags(OpI);
1312           return RI;
1313         }
1314         break;
1315       case Instruction::FRem:
1316         // Remainder is straightforward.  Remainder is always exact, so the
1317         // type of OpI doesn't enter into things at all.  We simply evaluate
1318         // in whichever source type is larger, then convert to the
1319         // destination type.
1320         if (SrcWidth == OpWidth)
1321           break;
1322         if (LHSWidth < SrcWidth)
1323           LHSOrig = Builder->CreateFPExt(LHSOrig, RHSOrig->getType());
1324         else if (RHSWidth <= SrcWidth)
1325           RHSOrig = Builder->CreateFPExt(RHSOrig, LHSOrig->getType());
1326         if (LHSOrig != OpI->getOperand(0) || RHSOrig != OpI->getOperand(1)) {
1327           Value *ExactResult = Builder->CreateFRem(LHSOrig, RHSOrig);
1328           if (Instruction *RI = dyn_cast<Instruction>(ExactResult))
1329             RI->copyFastMathFlags(OpI);
1330           return CastInst::CreateFPCast(ExactResult, CI.getType());
1331         }
1332     }
1333 
1334     // (fptrunc (fneg x)) -> (fneg (fptrunc x))
1335     if (BinaryOperator::isFNeg(OpI)) {
1336       Value *InnerTrunc = Builder->CreateFPTrunc(OpI->getOperand(1),
1337                                                  CI.getType());
1338       Instruction *RI = BinaryOperator::CreateFNeg(InnerTrunc);
1339       RI->copyFastMathFlags(OpI);
1340       return RI;
1341     }
1342   }
1343 
1344   // (fptrunc (select cond, R1, Cst)) -->
1345   // (select cond, (fptrunc R1), (fptrunc Cst))
1346   //
1347   //  - but only if this isn't part of a min/max operation, else we'll
1348   // ruin min/max canonical form which is to have the select and
1349   // compare's operands be of the same type with no casts to look through.
1350   Value *LHS, *RHS;
1351   SelectInst *SI = dyn_cast<SelectInst>(CI.getOperand(0));
1352   if (SI &&
1353       (isa<ConstantFP>(SI->getOperand(1)) ||
1354        isa<ConstantFP>(SI->getOperand(2))) &&
1355       matchSelectPattern(SI, LHS, RHS).Flavor == SPF_UNKNOWN) {
1356     Value *LHSTrunc = Builder->CreateFPTrunc(SI->getOperand(1),
1357                                              CI.getType());
1358     Value *RHSTrunc = Builder->CreateFPTrunc(SI->getOperand(2),
1359                                              CI.getType());
1360     return SelectInst::Create(SI->getOperand(0), LHSTrunc, RHSTrunc);
1361   }
1362 
1363   IntrinsicInst *II = dyn_cast<IntrinsicInst>(CI.getOperand(0));
1364   if (II) {
1365     switch (II->getIntrinsicID()) {
1366       default: break;
1367       case Intrinsic::fabs: {
1368         // (fptrunc (fabs x)) -> (fabs (fptrunc x))
1369         Value *InnerTrunc = Builder->CreateFPTrunc(II->getArgOperand(0),
1370                                                    CI.getType());
1371         Type *IntrinsicType[] = { CI.getType() };
1372         Function *Overload = Intrinsic::getDeclaration(
1373             CI.getModule(), II->getIntrinsicID(), IntrinsicType);
1374 
1375         SmallVector<OperandBundleDef, 1> OpBundles;
1376         II->getOperandBundlesAsDefs(OpBundles);
1377 
1378         Value *Args[] = { InnerTrunc };
1379         return CallInst::Create(Overload, Args, OpBundles, II->getName());
1380       }
1381     }
1382   }
1383 
1384   return nullptr;
1385 }
1386 
1387 Instruction *InstCombiner::visitFPExt(CastInst &CI) {
1388   return commonCastTransforms(CI);
1389 }
1390 
1391 // fpto{s/u}i({u/s}itofp(X)) --> X or zext(X) or sext(X) or trunc(X)
1392 // This is safe if the intermediate type has enough bits in its mantissa to
1393 // accurately represent all values of X.  For example, this won't work with
1394 // i64 -> float -> i64.
1395 Instruction *InstCombiner::FoldItoFPtoI(Instruction &FI) {
1396   if (!isa<UIToFPInst>(FI.getOperand(0)) && !isa<SIToFPInst>(FI.getOperand(0)))
1397     return nullptr;
1398   Instruction *OpI = cast<Instruction>(FI.getOperand(0));
1399 
1400   Value *SrcI = OpI->getOperand(0);
1401   Type *FITy = FI.getType();
1402   Type *OpITy = OpI->getType();
1403   Type *SrcTy = SrcI->getType();
1404   bool IsInputSigned = isa<SIToFPInst>(OpI);
1405   bool IsOutputSigned = isa<FPToSIInst>(FI);
1406 
1407   // We can safely assume the conversion won't overflow the output range,
1408   // because (for example) (uint8_t)18293.f is undefined behavior.
1409 
1410   // Since we can assume the conversion won't overflow, our decision as to
1411   // whether the input will fit in the float should depend on the minimum
1412   // of the input range and output range.
1413 
1414   // This means this is also safe for a signed input and unsigned output, since
1415   // a negative input would lead to undefined behavior.
1416   int InputSize = (int)SrcTy->getScalarSizeInBits() - IsInputSigned;
1417   int OutputSize = (int)FITy->getScalarSizeInBits() - IsOutputSigned;
1418   int ActualSize = std::min(InputSize, OutputSize);
1419 
1420   if (ActualSize <= OpITy->getFPMantissaWidth()) {
1421     if (FITy->getScalarSizeInBits() > SrcTy->getScalarSizeInBits()) {
1422       if (IsInputSigned && IsOutputSigned)
1423         return new SExtInst(SrcI, FITy);
1424       return new ZExtInst(SrcI, FITy);
1425     }
1426     if (FITy->getScalarSizeInBits() < SrcTy->getScalarSizeInBits())
1427       return new TruncInst(SrcI, FITy);
1428     if (SrcTy == FITy)
1429       return replaceInstUsesWith(FI, SrcI);
1430     return new BitCastInst(SrcI, FITy);
1431   }
1432   return nullptr;
1433 }
1434 
1435 Instruction *InstCombiner::visitFPToUI(FPToUIInst &FI) {
1436   Instruction *OpI = dyn_cast<Instruction>(FI.getOperand(0));
1437   if (!OpI)
1438     return commonCastTransforms(FI);
1439 
1440   if (Instruction *I = FoldItoFPtoI(FI))
1441     return I;
1442 
1443   return commonCastTransforms(FI);
1444 }
1445 
1446 Instruction *InstCombiner::visitFPToSI(FPToSIInst &FI) {
1447   Instruction *OpI = dyn_cast<Instruction>(FI.getOperand(0));
1448   if (!OpI)
1449     return commonCastTransforms(FI);
1450 
1451   if (Instruction *I = FoldItoFPtoI(FI))
1452     return I;
1453 
1454   return commonCastTransforms(FI);
1455 }
1456 
1457 Instruction *InstCombiner::visitUIToFP(CastInst &CI) {
1458   return commonCastTransforms(CI);
1459 }
1460 
1461 Instruction *InstCombiner::visitSIToFP(CastInst &CI) {
1462   return commonCastTransforms(CI);
1463 }
1464 
1465 Instruction *InstCombiner::visitIntToPtr(IntToPtrInst &CI) {
1466   // If the source integer type is not the intptr_t type for this target, do a
1467   // trunc or zext to the intptr_t type, then inttoptr of it.  This allows the
1468   // cast to be exposed to other transforms.
1469   unsigned AS = CI.getAddressSpace();
1470   if (CI.getOperand(0)->getType()->getScalarSizeInBits() !=
1471       DL.getPointerSizeInBits(AS)) {
1472     Type *Ty = DL.getIntPtrType(CI.getContext(), AS);
1473     if (CI.getType()->isVectorTy()) // Handle vectors of pointers.
1474       Ty = VectorType::get(Ty, CI.getType()->getVectorNumElements());
1475 
1476     Value *P = Builder->CreateZExtOrTrunc(CI.getOperand(0), Ty);
1477     return new IntToPtrInst(P, CI.getType());
1478   }
1479 
1480   if (Instruction *I = commonCastTransforms(CI))
1481     return I;
1482 
1483   return nullptr;
1484 }
1485 
1486 /// @brief Implement the transforms for cast of pointer (bitcast/ptrtoint)
1487 Instruction *InstCombiner::commonPointerCastTransforms(CastInst &CI) {
1488   Value *Src = CI.getOperand(0);
1489 
1490   if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(Src)) {
1491     // If casting the result of a getelementptr instruction with no offset, turn
1492     // this into a cast of the original pointer!
1493     if (GEP->hasAllZeroIndices() &&
1494         // If CI is an addrspacecast and GEP changes the poiner type, merging
1495         // GEP into CI would undo canonicalizing addrspacecast with different
1496         // pointer types, causing infinite loops.
1497         (!isa<AddrSpaceCastInst>(CI) ||
1498           GEP->getType() == GEP->getPointerOperand()->getType())) {
1499       // Changing the cast operand is usually not a good idea but it is safe
1500       // here because the pointer operand is being replaced with another
1501       // pointer operand so the opcode doesn't need to change.
1502       Worklist.Add(GEP);
1503       CI.setOperand(0, GEP->getOperand(0));
1504       return &CI;
1505     }
1506   }
1507 
1508   return commonCastTransforms(CI);
1509 }
1510 
1511 Instruction *InstCombiner::visitPtrToInt(PtrToIntInst &CI) {
1512   // If the destination integer type is not the intptr_t type for this target,
1513   // do a ptrtoint to intptr_t then do a trunc or zext.  This allows the cast
1514   // to be exposed to other transforms.
1515 
1516   Type *Ty = CI.getType();
1517   unsigned AS = CI.getPointerAddressSpace();
1518 
1519   if (Ty->getScalarSizeInBits() == DL.getPointerSizeInBits(AS))
1520     return commonPointerCastTransforms(CI);
1521 
1522   Type *PtrTy = DL.getIntPtrType(CI.getContext(), AS);
1523   if (Ty->isVectorTy()) // Handle vectors of pointers.
1524     PtrTy = VectorType::get(PtrTy, Ty->getVectorNumElements());
1525 
1526   Value *P = Builder->CreatePtrToInt(CI.getOperand(0), PtrTy);
1527   return CastInst::CreateIntegerCast(P, Ty, /*isSigned=*/false);
1528 }
1529 
1530 /// This input value (which is known to have vector type) is being zero extended
1531 /// or truncated to the specified vector type.
1532 /// Try to replace it with a shuffle (and vector/vector bitcast) if possible.
1533 ///
1534 /// The source and destination vector types may have different element types.
1535 static Instruction *optimizeVectorResize(Value *InVal, VectorType *DestTy,
1536                                          InstCombiner &IC) {
1537   // We can only do this optimization if the output is a multiple of the input
1538   // element size, or the input is a multiple of the output element size.
1539   // Convert the input type to have the same element type as the output.
1540   VectorType *SrcTy = cast<VectorType>(InVal->getType());
1541 
1542   if (SrcTy->getElementType() != DestTy->getElementType()) {
1543     // The input types don't need to be identical, but for now they must be the
1544     // same size.  There is no specific reason we couldn't handle things like
1545     // <4 x i16> -> <4 x i32> by bitcasting to <2 x i32> but haven't gotten
1546     // there yet.
1547     if (SrcTy->getElementType()->getPrimitiveSizeInBits() !=
1548         DestTy->getElementType()->getPrimitiveSizeInBits())
1549       return nullptr;
1550 
1551     SrcTy = VectorType::get(DestTy->getElementType(), SrcTy->getNumElements());
1552     InVal = IC.Builder->CreateBitCast(InVal, SrcTy);
1553   }
1554 
1555   // Now that the element types match, get the shuffle mask and RHS of the
1556   // shuffle to use, which depends on whether we're increasing or decreasing the
1557   // size of the input.
1558   SmallVector<uint32_t, 16> ShuffleMask;
1559   Value *V2;
1560 
1561   if (SrcTy->getNumElements() > DestTy->getNumElements()) {
1562     // If we're shrinking the number of elements, just shuffle in the low
1563     // elements from the input and use undef as the second shuffle input.
1564     V2 = UndefValue::get(SrcTy);
1565     for (unsigned i = 0, e = DestTy->getNumElements(); i != e; ++i)
1566       ShuffleMask.push_back(i);
1567 
1568   } else {
1569     // If we're increasing the number of elements, shuffle in all of the
1570     // elements from InVal and fill the rest of the result elements with zeros
1571     // from a constant zero.
1572     V2 = Constant::getNullValue(SrcTy);
1573     unsigned SrcElts = SrcTy->getNumElements();
1574     for (unsigned i = 0, e = SrcElts; i != e; ++i)
1575       ShuffleMask.push_back(i);
1576 
1577     // The excess elements reference the first element of the zero input.
1578     for (unsigned i = 0, e = DestTy->getNumElements()-SrcElts; i != e; ++i)
1579       ShuffleMask.push_back(SrcElts);
1580   }
1581 
1582   return new ShuffleVectorInst(InVal, V2,
1583                                ConstantDataVector::get(V2->getContext(),
1584                                                        ShuffleMask));
1585 }
1586 
1587 static bool isMultipleOfTypeSize(unsigned Value, Type *Ty) {
1588   return Value % Ty->getPrimitiveSizeInBits() == 0;
1589 }
1590 
1591 static unsigned getTypeSizeIndex(unsigned Value, Type *Ty) {
1592   return Value / Ty->getPrimitiveSizeInBits();
1593 }
1594 
1595 /// V is a value which is inserted into a vector of VecEltTy.
1596 /// Look through the value to see if we can decompose it into
1597 /// insertions into the vector.  See the example in the comment for
1598 /// OptimizeIntegerToVectorInsertions for the pattern this handles.
1599 /// The type of V is always a non-zero multiple of VecEltTy's size.
1600 /// Shift is the number of bits between the lsb of V and the lsb of
1601 /// the vector.
1602 ///
1603 /// This returns false if the pattern can't be matched or true if it can,
1604 /// filling in Elements with the elements found here.
1605 static bool collectInsertionElements(Value *V, unsigned Shift,
1606                                      SmallVectorImpl<Value *> &Elements,
1607                                      Type *VecEltTy, bool isBigEndian) {
1608   assert(isMultipleOfTypeSize(Shift, VecEltTy) &&
1609          "Shift should be a multiple of the element type size");
1610 
1611   // Undef values never contribute useful bits to the result.
1612   if (isa<UndefValue>(V)) return true;
1613 
1614   // If we got down to a value of the right type, we win, try inserting into the
1615   // right element.
1616   if (V->getType() == VecEltTy) {
1617     // Inserting null doesn't actually insert any elements.
1618     if (Constant *C = dyn_cast<Constant>(V))
1619       if (C->isNullValue())
1620         return true;
1621 
1622     unsigned ElementIndex = getTypeSizeIndex(Shift, VecEltTy);
1623     if (isBigEndian)
1624       ElementIndex = Elements.size() - ElementIndex - 1;
1625 
1626     // Fail if multiple elements are inserted into this slot.
1627     if (Elements[ElementIndex])
1628       return false;
1629 
1630     Elements[ElementIndex] = V;
1631     return true;
1632   }
1633 
1634   if (Constant *C = dyn_cast<Constant>(V)) {
1635     // Figure out the # elements this provides, and bitcast it or slice it up
1636     // as required.
1637     unsigned NumElts = getTypeSizeIndex(C->getType()->getPrimitiveSizeInBits(),
1638                                         VecEltTy);
1639     // If the constant is the size of a vector element, we just need to bitcast
1640     // it to the right type so it gets properly inserted.
1641     if (NumElts == 1)
1642       return collectInsertionElements(ConstantExpr::getBitCast(C, VecEltTy),
1643                                       Shift, Elements, VecEltTy, isBigEndian);
1644 
1645     // Okay, this is a constant that covers multiple elements.  Slice it up into
1646     // pieces and insert each element-sized piece into the vector.
1647     if (!isa<IntegerType>(C->getType()))
1648       C = ConstantExpr::getBitCast(C, IntegerType::get(V->getContext(),
1649                                        C->getType()->getPrimitiveSizeInBits()));
1650     unsigned ElementSize = VecEltTy->getPrimitiveSizeInBits();
1651     Type *ElementIntTy = IntegerType::get(C->getContext(), ElementSize);
1652 
1653     for (unsigned i = 0; i != NumElts; ++i) {
1654       unsigned ShiftI = Shift+i*ElementSize;
1655       Constant *Piece = ConstantExpr::getLShr(C, ConstantInt::get(C->getType(),
1656                                                                   ShiftI));
1657       Piece = ConstantExpr::getTrunc(Piece, ElementIntTy);
1658       if (!collectInsertionElements(Piece, ShiftI, Elements, VecEltTy,
1659                                     isBigEndian))
1660         return false;
1661     }
1662     return true;
1663   }
1664 
1665   if (!V->hasOneUse()) return false;
1666 
1667   Instruction *I = dyn_cast<Instruction>(V);
1668   if (!I) return false;
1669   switch (I->getOpcode()) {
1670   default: return false; // Unhandled case.
1671   case Instruction::BitCast:
1672     return collectInsertionElements(I->getOperand(0), Shift, Elements, VecEltTy,
1673                                     isBigEndian);
1674   case Instruction::ZExt:
1675     if (!isMultipleOfTypeSize(
1676                           I->getOperand(0)->getType()->getPrimitiveSizeInBits(),
1677                               VecEltTy))
1678       return false;
1679     return collectInsertionElements(I->getOperand(0), Shift, Elements, VecEltTy,
1680                                     isBigEndian);
1681   case Instruction::Or:
1682     return collectInsertionElements(I->getOperand(0), Shift, Elements, VecEltTy,
1683                                     isBigEndian) &&
1684            collectInsertionElements(I->getOperand(1), Shift, Elements, VecEltTy,
1685                                     isBigEndian);
1686   case Instruction::Shl: {
1687     // Must be shifting by a constant that is a multiple of the element size.
1688     ConstantInt *CI = dyn_cast<ConstantInt>(I->getOperand(1));
1689     if (!CI) return false;
1690     Shift += CI->getZExtValue();
1691     if (!isMultipleOfTypeSize(Shift, VecEltTy)) return false;
1692     return collectInsertionElements(I->getOperand(0), Shift, Elements, VecEltTy,
1693                                     isBigEndian);
1694   }
1695 
1696   }
1697 }
1698 
1699 
1700 /// If the input is an 'or' instruction, we may be doing shifts and ors to
1701 /// assemble the elements of the vector manually.
1702 /// Try to rip the code out and replace it with insertelements.  This is to
1703 /// optimize code like this:
1704 ///
1705 ///    %tmp37 = bitcast float %inc to i32
1706 ///    %tmp38 = zext i32 %tmp37 to i64
1707 ///    %tmp31 = bitcast float %inc5 to i32
1708 ///    %tmp32 = zext i32 %tmp31 to i64
1709 ///    %tmp33 = shl i64 %tmp32, 32
1710 ///    %ins35 = or i64 %tmp33, %tmp38
1711 ///    %tmp43 = bitcast i64 %ins35 to <2 x float>
1712 ///
1713 /// Into two insertelements that do "buildvector{%inc, %inc5}".
1714 static Value *optimizeIntegerToVectorInsertions(BitCastInst &CI,
1715                                                 InstCombiner &IC) {
1716   VectorType *DestVecTy = cast<VectorType>(CI.getType());
1717   Value *IntInput = CI.getOperand(0);
1718 
1719   SmallVector<Value*, 8> Elements(DestVecTy->getNumElements());
1720   if (!collectInsertionElements(IntInput, 0, Elements,
1721                                 DestVecTy->getElementType(),
1722                                 IC.getDataLayout().isBigEndian()))
1723     return nullptr;
1724 
1725   // If we succeeded, we know that all of the element are specified by Elements
1726   // or are zero if Elements has a null entry.  Recast this as a set of
1727   // insertions.
1728   Value *Result = Constant::getNullValue(CI.getType());
1729   for (unsigned i = 0, e = Elements.size(); i != e; ++i) {
1730     if (!Elements[i]) continue;  // Unset element.
1731 
1732     Result = IC.Builder->CreateInsertElement(Result, Elements[i],
1733                                              IC.Builder->getInt32(i));
1734   }
1735 
1736   return Result;
1737 }
1738 
1739 /// Canonicalize scalar bitcasts of extracted elements into a bitcast of the
1740 /// vector followed by extract element. The backend tends to handle bitcasts of
1741 /// vectors better than bitcasts of scalars because vector registers are
1742 /// usually not type-specific like scalar integer or scalar floating-point.
1743 static Instruction *canonicalizeBitCastExtElt(BitCastInst &BitCast,
1744                                               InstCombiner &IC,
1745                                               const DataLayout &DL) {
1746   // TODO: Create and use a pattern matcher for ExtractElementInst.
1747   auto *ExtElt = dyn_cast<ExtractElementInst>(BitCast.getOperand(0));
1748   if (!ExtElt || !ExtElt->hasOneUse())
1749     return nullptr;
1750 
1751   // The bitcast must be to a vectorizable type, otherwise we can't make a new
1752   // type to extract from.
1753   Type *DestType = BitCast.getType();
1754   if (!VectorType::isValidElementType(DestType))
1755     return nullptr;
1756 
1757   unsigned NumElts = ExtElt->getVectorOperandType()->getNumElements();
1758   auto *NewVecType = VectorType::get(DestType, NumElts);
1759   auto *NewBC = IC.Builder->CreateBitCast(ExtElt->getVectorOperand(),
1760                                           NewVecType, "bc");
1761   return ExtractElementInst::Create(NewBC, ExtElt->getIndexOperand());
1762 }
1763 
1764 Instruction *InstCombiner::visitBitCast(BitCastInst &CI) {
1765   // If the operands are integer typed then apply the integer transforms,
1766   // otherwise just apply the common ones.
1767   Value *Src = CI.getOperand(0);
1768   Type *SrcTy = Src->getType();
1769   Type *DestTy = CI.getType();
1770 
1771   // Get rid of casts from one type to the same type. These are useless and can
1772   // be replaced by the operand.
1773   if (DestTy == Src->getType())
1774     return replaceInstUsesWith(CI, Src);
1775 
1776   if (PointerType *DstPTy = dyn_cast<PointerType>(DestTy)) {
1777     PointerType *SrcPTy = cast<PointerType>(SrcTy);
1778     Type *DstElTy = DstPTy->getElementType();
1779     Type *SrcElTy = SrcPTy->getElementType();
1780 
1781     // If we are casting a alloca to a pointer to a type of the same
1782     // size, rewrite the allocation instruction to allocate the "right" type.
1783     // There is no need to modify malloc calls because it is their bitcast that
1784     // needs to be cleaned up.
1785     if (AllocaInst *AI = dyn_cast<AllocaInst>(Src))
1786       if (Instruction *V = PromoteCastOfAllocation(CI, *AI))
1787         return V;
1788 
1789     // When the type pointed to is not sized the cast cannot be
1790     // turned into a gep.
1791     Type *PointeeType =
1792         cast<PointerType>(Src->getType()->getScalarType())->getElementType();
1793     if (!PointeeType->isSized())
1794       return nullptr;
1795 
1796     // If the source and destination are pointers, and this cast is equivalent
1797     // to a getelementptr X, 0, 0, 0...  turn it into the appropriate gep.
1798     // This can enhance SROA and other transforms that want type-safe pointers.
1799     unsigned NumZeros = 0;
1800     while (SrcElTy != DstElTy &&
1801            isa<CompositeType>(SrcElTy) && !SrcElTy->isPointerTy() &&
1802            SrcElTy->getNumContainedTypes() /* not "{}" */) {
1803       SrcElTy = cast<CompositeType>(SrcElTy)->getTypeAtIndex(0U);
1804       ++NumZeros;
1805     }
1806 
1807     // If we found a path from the src to dest, create the getelementptr now.
1808     if (SrcElTy == DstElTy) {
1809       SmallVector<Value *, 8> Idxs(NumZeros + 1, Builder->getInt32(0));
1810       return GetElementPtrInst::CreateInBounds(Src, Idxs);
1811     }
1812   }
1813 
1814   if (VectorType *DestVTy = dyn_cast<VectorType>(DestTy)) {
1815     if (DestVTy->getNumElements() == 1 && !SrcTy->isVectorTy()) {
1816       Value *Elem = Builder->CreateBitCast(Src, DestVTy->getElementType());
1817       return InsertElementInst::Create(UndefValue::get(DestTy), Elem,
1818                      Constant::getNullValue(Type::getInt32Ty(CI.getContext())));
1819       // FIXME: Canonicalize bitcast(insertelement) -> insertelement(bitcast)
1820     }
1821 
1822     if (isa<IntegerType>(SrcTy)) {
1823       // If this is a cast from an integer to vector, check to see if the input
1824       // is a trunc or zext of a bitcast from vector.  If so, we can replace all
1825       // the casts with a shuffle and (potentially) a bitcast.
1826       if (isa<TruncInst>(Src) || isa<ZExtInst>(Src)) {
1827         CastInst *SrcCast = cast<CastInst>(Src);
1828         if (BitCastInst *BCIn = dyn_cast<BitCastInst>(SrcCast->getOperand(0)))
1829           if (isa<VectorType>(BCIn->getOperand(0)->getType()))
1830             if (Instruction *I = optimizeVectorResize(BCIn->getOperand(0),
1831                                                cast<VectorType>(DestTy), *this))
1832               return I;
1833       }
1834 
1835       // If the input is an 'or' instruction, we may be doing shifts and ors to
1836       // assemble the elements of the vector manually.  Try to rip the code out
1837       // and replace it with insertelements.
1838       if (Value *V = optimizeIntegerToVectorInsertions(CI, *this))
1839         return replaceInstUsesWith(CI, V);
1840     }
1841   }
1842 
1843   if (VectorType *SrcVTy = dyn_cast<VectorType>(SrcTy)) {
1844     if (SrcVTy->getNumElements() == 1) {
1845       // If our destination is not a vector, then make this a straight
1846       // scalar-scalar cast.
1847       if (!DestTy->isVectorTy()) {
1848         Value *Elem =
1849           Builder->CreateExtractElement(Src,
1850                      Constant::getNullValue(Type::getInt32Ty(CI.getContext())));
1851         return CastInst::Create(Instruction::BitCast, Elem, DestTy);
1852       }
1853 
1854       // Otherwise, see if our source is an insert. If so, then use the scalar
1855       // component directly.
1856       if (InsertElementInst *IEI =
1857             dyn_cast<InsertElementInst>(CI.getOperand(0)))
1858         return CastInst::Create(Instruction::BitCast, IEI->getOperand(1),
1859                                 DestTy);
1860     }
1861   }
1862 
1863   if (ShuffleVectorInst *SVI = dyn_cast<ShuffleVectorInst>(Src)) {
1864     // Okay, we have (bitcast (shuffle ..)).  Check to see if this is
1865     // a bitcast to a vector with the same # elts.
1866     if (SVI->hasOneUse() && DestTy->isVectorTy() &&
1867         DestTy->getVectorNumElements() == SVI->getType()->getNumElements() &&
1868         SVI->getType()->getNumElements() ==
1869         SVI->getOperand(0)->getType()->getVectorNumElements()) {
1870       BitCastInst *Tmp;
1871       // If either of the operands is a cast from CI.getType(), then
1872       // evaluating the shuffle in the casted destination's type will allow
1873       // us to eliminate at least one cast.
1874       if (((Tmp = dyn_cast<BitCastInst>(SVI->getOperand(0))) &&
1875            Tmp->getOperand(0)->getType() == DestTy) ||
1876           ((Tmp = dyn_cast<BitCastInst>(SVI->getOperand(1))) &&
1877            Tmp->getOperand(0)->getType() == DestTy)) {
1878         Value *LHS = Builder->CreateBitCast(SVI->getOperand(0), DestTy);
1879         Value *RHS = Builder->CreateBitCast(SVI->getOperand(1), DestTy);
1880         // Return a new shuffle vector.  Use the same element ID's, as we
1881         // know the vector types match #elts.
1882         return new ShuffleVectorInst(LHS, RHS, SVI->getOperand(2));
1883       }
1884     }
1885   }
1886 
1887   if (Instruction *I = canonicalizeBitCastExtElt(CI, *this, DL))
1888     return I;
1889 
1890   if (SrcTy->isPointerTy())
1891     return commonPointerCastTransforms(CI);
1892   return commonCastTransforms(CI);
1893 }
1894 
1895 Instruction *InstCombiner::visitAddrSpaceCast(AddrSpaceCastInst &CI) {
1896   // If the destination pointer element type is not the same as the source's
1897   // first do a bitcast to the destination type, and then the addrspacecast.
1898   // This allows the cast to be exposed to other transforms.
1899   Value *Src = CI.getOperand(0);
1900   PointerType *SrcTy = cast<PointerType>(Src->getType()->getScalarType());
1901   PointerType *DestTy = cast<PointerType>(CI.getType()->getScalarType());
1902 
1903   Type *DestElemTy = DestTy->getElementType();
1904   if (SrcTy->getElementType() != DestElemTy) {
1905     Type *MidTy = PointerType::get(DestElemTy, SrcTy->getAddressSpace());
1906     if (VectorType *VT = dyn_cast<VectorType>(CI.getType())) {
1907       // Handle vectors of pointers.
1908       MidTy = VectorType::get(MidTy, VT->getNumElements());
1909     }
1910 
1911     Value *NewBitCast = Builder->CreateBitCast(Src, MidTy);
1912     return new AddrSpaceCastInst(NewBitCast, CI.getType());
1913   }
1914 
1915   return commonPointerCastTransforms(CI);
1916 }
1917