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Chris Lattner753a2b42010-01-05 07:32:13 +00001//===- InstCombineCalls.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 visitCall and visitInvoke functions.
11//
12//===----------------------------------------------------------------------===//
13
14#include "InstCombine.h"
15#include "llvm/IntrinsicInst.h"
16#include "llvm/Support/CallSite.h"
17#include "llvm/Target/TargetData.h"
18#include "llvm/Analysis/MemoryBuiltins.h"
Eric Christopher27ceaa12010-03-06 10:50:38 +000019#include "llvm/Transforms/Utils/BuildLibCalls.h"
Chris Lattner687140c2010-12-25 20:37:57 +000020#include "llvm/Transforms/Utils/Local.h"
Chris Lattner753a2b42010-01-05 07:32:13 +000021using namespace llvm;
22
23/// getPromotedType - Return the specified type promoted as it would be to pass
24/// though a va_arg area.
25static const Type *getPromotedType(const Type *Ty) {
26 if (const IntegerType* ITy = dyn_cast<IntegerType>(Ty)) {
27 if (ITy->getBitWidth() < 32)
28 return Type::getInt32Ty(Ty->getContext());
29 }
30 return Ty;
31}
32
Chris Lattner753a2b42010-01-05 07:32:13 +000033
34Instruction *InstCombiner::SimplifyMemTransfer(MemIntrinsic *MI) {
Chris Lattner687140c2010-12-25 20:37:57 +000035 unsigned DstAlign = getKnownAlignment(MI->getArgOperand(0), TD);
36 unsigned SrcAlign = getKnownAlignment(MI->getArgOperand(1), TD);
Chris Lattner753a2b42010-01-05 07:32:13 +000037 unsigned MinAlign = std::min(DstAlign, SrcAlign);
38 unsigned CopyAlign = MI->getAlignment();
39
40 if (CopyAlign < MinAlign) {
Eric Christopher0c6a8f92010-02-03 00:21:58 +000041 MI->setAlignment(ConstantInt::get(MI->getAlignmentType(),
Chris Lattner753a2b42010-01-05 07:32:13 +000042 MinAlign, false));
43 return MI;
44 }
Eric Christopher0c6a8f92010-02-03 00:21:58 +000045
Chris Lattner753a2b42010-01-05 07:32:13 +000046 // If MemCpyInst length is 1/2/4/8 bytes then replace memcpy with
47 // load/store.
Gabor Greifbcda85c2010-06-24 13:54:33 +000048 ConstantInt *MemOpLength = dyn_cast<ConstantInt>(MI->getArgOperand(2));
Chris Lattner753a2b42010-01-05 07:32:13 +000049 if (MemOpLength == 0) return 0;
Eric Christopher0c6a8f92010-02-03 00:21:58 +000050
Chris Lattner753a2b42010-01-05 07:32:13 +000051 // Source and destination pointer types are always "i8*" for intrinsic. See
52 // if the size is something we can handle with a single primitive load/store.
53 // A single load+store correctly handles overlapping memory in the memmove
54 // case.
55 unsigned Size = MemOpLength->getZExtValue();
56 if (Size == 0) return MI; // Delete this mem transfer.
Eric Christopher0c6a8f92010-02-03 00:21:58 +000057
Chris Lattner753a2b42010-01-05 07:32:13 +000058 if (Size > 8 || (Size&(Size-1)))
59 return 0; // If not 1/2/4/8 bytes, exit.
Eric Christopher0c6a8f92010-02-03 00:21:58 +000060
Chris Lattner753a2b42010-01-05 07:32:13 +000061 // Use an integer load+store unless we can find something better.
Mon P Wang20adc9d2010-04-04 03:10:48 +000062 unsigned SrcAddrSp =
Gabor Greifbcda85c2010-06-24 13:54:33 +000063 cast<PointerType>(MI->getArgOperand(1)->getType())->getAddressSpace();
Gabor Greif4ec22582010-04-16 15:33:14 +000064 unsigned DstAddrSp =
Gabor Greifbcda85c2010-06-24 13:54:33 +000065 cast<PointerType>(MI->getArgOperand(0)->getType())->getAddressSpace();
Mon P Wang20adc9d2010-04-04 03:10:48 +000066
67 const IntegerType* IntType = IntegerType::get(MI->getContext(), Size<<3);
68 Type *NewSrcPtrTy = PointerType::get(IntType, SrcAddrSp);
69 Type *NewDstPtrTy = PointerType::get(IntType, DstAddrSp);
Eric Christopher0c6a8f92010-02-03 00:21:58 +000070
Chris Lattner753a2b42010-01-05 07:32:13 +000071 // Memcpy forces the use of i8* for the source and destination. That means
72 // that if you're using memcpy to move one double around, you'll get a cast
73 // from double* to i8*. We'd much rather use a double load+store rather than
74 // an i64 load+store, here because this improves the odds that the source or
75 // dest address will be promotable. See if we can find a better type than the
76 // integer datatype.
Gabor Greifcea7ac72010-06-24 12:58:35 +000077 Value *StrippedDest = MI->getArgOperand(0)->stripPointerCasts();
78 if (StrippedDest != MI->getArgOperand(0)) {
Chris Lattner753a2b42010-01-05 07:32:13 +000079 const Type *SrcETy = cast<PointerType>(StrippedDest->getType())
80 ->getElementType();
81 if (TD && SrcETy->isSized() && TD->getTypeStoreSize(SrcETy) == Size) {
82 // The SrcETy might be something like {{{double}}} or [1 x double]. Rip
83 // down through these levels if so.
84 while (!SrcETy->isSingleValueType()) {
85 if (const StructType *STy = dyn_cast<StructType>(SrcETy)) {
86 if (STy->getNumElements() == 1)
87 SrcETy = STy->getElementType(0);
88 else
89 break;
90 } else if (const ArrayType *ATy = dyn_cast<ArrayType>(SrcETy)) {
91 if (ATy->getNumElements() == 1)
92 SrcETy = ATy->getElementType();
93 else
94 break;
95 } else
96 break;
97 }
Eric Christopher0c6a8f92010-02-03 00:21:58 +000098
Mon P Wang20adc9d2010-04-04 03:10:48 +000099 if (SrcETy->isSingleValueType()) {
100 NewSrcPtrTy = PointerType::get(SrcETy, SrcAddrSp);
101 NewDstPtrTy = PointerType::get(SrcETy, DstAddrSp);
102 }
Chris Lattner753a2b42010-01-05 07:32:13 +0000103 }
104 }
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000105
106
Chris Lattner753a2b42010-01-05 07:32:13 +0000107 // If the memcpy/memmove provides better alignment info than we can
108 // infer, use it.
109 SrcAlign = std::max(SrcAlign, CopyAlign);
110 DstAlign = std::max(DstAlign, CopyAlign);
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000111
Gabor Greif9c68a7b2010-06-25 07:57:14 +0000112 Value *Src = Builder->CreateBitCast(MI->getArgOperand(1), NewSrcPtrTy);
113 Value *Dest = Builder->CreateBitCast(MI->getArgOperand(0), NewDstPtrTy);
Mon P Wang20adc9d2010-04-04 03:10:48 +0000114 Instruction *L = new LoadInst(Src, "tmp", MI->isVolatile(), SrcAlign);
Chris Lattner753a2b42010-01-05 07:32:13 +0000115 InsertNewInstBefore(L, *MI);
Mon P Wang20adc9d2010-04-04 03:10:48 +0000116 InsertNewInstBefore(new StoreInst(L, Dest, MI->isVolatile(), DstAlign),
117 *MI);
Chris Lattner753a2b42010-01-05 07:32:13 +0000118
119 // Set the size of the copy to 0, it will be deleted on the next iteration.
Gabor Greifa90c5c72010-06-28 16:50:57 +0000120 MI->setArgOperand(2, Constant::getNullValue(MemOpLength->getType()));
Chris Lattner753a2b42010-01-05 07:32:13 +0000121 return MI;
122}
123
124Instruction *InstCombiner::SimplifyMemSet(MemSetInst *MI) {
Chris Lattnerae47be12010-12-25 20:52:04 +0000125 unsigned Alignment = getKnownAlignment(MI->getDest(), TD);
Chris Lattner753a2b42010-01-05 07:32:13 +0000126 if (MI->getAlignment() < Alignment) {
127 MI->setAlignment(ConstantInt::get(MI->getAlignmentType(),
128 Alignment, false));
129 return MI;
130 }
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000131
Chris Lattner753a2b42010-01-05 07:32:13 +0000132 // Extract the length and alignment and fill if they are constant.
133 ConstantInt *LenC = dyn_cast<ConstantInt>(MI->getLength());
134 ConstantInt *FillC = dyn_cast<ConstantInt>(MI->getValue());
Duncan Sandsb0bc6c32010-02-15 16:12:20 +0000135 if (!LenC || !FillC || !FillC->getType()->isIntegerTy(8))
Chris Lattner753a2b42010-01-05 07:32:13 +0000136 return 0;
137 uint64_t Len = LenC->getZExtValue();
138 Alignment = MI->getAlignment();
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000139
Chris Lattner753a2b42010-01-05 07:32:13 +0000140 // If the length is zero, this is a no-op
141 if (Len == 0) return MI; // memset(d,c,0,a) -> noop
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000142
Chris Lattner753a2b42010-01-05 07:32:13 +0000143 // memset(s,c,n) -> store s, c (for n=1,2,4,8)
144 if (Len <= 8 && isPowerOf2_32((uint32_t)Len)) {
145 const Type *ITy = IntegerType::get(MI->getContext(), Len*8); // n=1 -> i8.
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000146
Chris Lattner753a2b42010-01-05 07:32:13 +0000147 Value *Dest = MI->getDest();
Mon P Wang55fb9b02010-12-20 01:05:30 +0000148 unsigned DstAddrSp = cast<PointerType>(Dest->getType())->getAddressSpace();
149 Type *NewDstPtrTy = PointerType::get(ITy, DstAddrSp);
150 Dest = Builder->CreateBitCast(Dest, NewDstPtrTy);
Chris Lattner753a2b42010-01-05 07:32:13 +0000151
152 // Alignment 0 is identity for alignment 1 for memset, but not store.
153 if (Alignment == 0) Alignment = 1;
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000154
Chris Lattner753a2b42010-01-05 07:32:13 +0000155 // Extract the fill value and store.
156 uint64_t Fill = FillC->getZExtValue()*0x0101010101010101ULL;
157 InsertNewInstBefore(new StoreInst(ConstantInt::get(ITy, Fill),
158 Dest, false, Alignment), *MI);
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000159
Chris Lattner753a2b42010-01-05 07:32:13 +0000160 // Set the size of the copy to 0, it will be deleted on the next iteration.
161 MI->setLength(Constant::getNullValue(LenC->getType()));
162 return MI;
163 }
164
165 return 0;
166}
167
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000168/// visitCallInst - CallInst simplification. This mostly only handles folding
Chris Lattner753a2b42010-01-05 07:32:13 +0000169/// of intrinsic instructions. For normal calls, it allows visitCallSite to do
170/// the heavy lifting.
171///
172Instruction *InstCombiner::visitCallInst(CallInst &CI) {
173 if (isFreeCall(&CI))
174 return visitFree(CI);
Duncan Sands1d9b9732010-05-27 19:09:06 +0000175 if (isMalloc(&CI))
176 return visitMalloc(CI);
Chris Lattner753a2b42010-01-05 07:32:13 +0000177
178 // If the caller function is nounwind, mark the call as nounwind, even if the
179 // callee isn't.
180 if (CI.getParent()->getParent()->doesNotThrow() &&
181 !CI.doesNotThrow()) {
182 CI.setDoesNotThrow();
183 return &CI;
184 }
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000185
Chris Lattner753a2b42010-01-05 07:32:13 +0000186 IntrinsicInst *II = dyn_cast<IntrinsicInst>(&CI);
187 if (!II) return visitCallSite(&CI);
Gabor Greifcea7ac72010-06-24 12:58:35 +0000188
Chris Lattner753a2b42010-01-05 07:32:13 +0000189 // Intrinsics cannot occur in an invoke, so handle them here instead of in
190 // visitCallSite.
191 if (MemIntrinsic *MI = dyn_cast<MemIntrinsic>(II)) {
192 bool Changed = false;
193
194 // memmove/cpy/set of zero bytes is a noop.
195 if (Constant *NumBytes = dyn_cast<Constant>(MI->getLength())) {
Chris Lattner6eff7512010-10-01 05:51:02 +0000196 if (NumBytes->isNullValue())
197 return EraseInstFromFunction(CI);
Chris Lattner753a2b42010-01-05 07:32:13 +0000198
199 if (ConstantInt *CI = dyn_cast<ConstantInt>(NumBytes))
200 if (CI->getZExtValue() == 1) {
201 // Replace the instruction with just byte operations. We would
202 // transform other cases to loads/stores, but we don't know if
203 // alignment is sufficient.
204 }
205 }
Chris Lattner6eff7512010-10-01 05:51:02 +0000206
207 // No other transformations apply to volatile transfers.
208 if (MI->isVolatile())
209 return 0;
Chris Lattner753a2b42010-01-05 07:32:13 +0000210
211 // If we have a memmove and the source operation is a constant global,
212 // then the source and dest pointers can't alias, so we can change this
213 // into a call to memcpy.
214 if (MemMoveInst *MMI = dyn_cast<MemMoveInst>(MI)) {
215 if (GlobalVariable *GVSrc = dyn_cast<GlobalVariable>(MMI->getSource()))
216 if (GVSrc->isConstant()) {
Eric Christopher551754c2010-04-16 23:37:20 +0000217 Module *M = CI.getParent()->getParent()->getParent();
Chris Lattner753a2b42010-01-05 07:32:13 +0000218 Intrinsic::ID MemCpyID = Intrinsic::memcpy;
Gabor Greifc310fcc2010-06-24 13:42:49 +0000219 const Type *Tys[3] = { CI.getArgOperand(0)->getType(),
220 CI.getArgOperand(1)->getType(),
221 CI.getArgOperand(2)->getType() };
222 CI.setCalledFunction(Intrinsic::getDeclaration(M, MemCpyID, Tys, 3));
Chris Lattner753a2b42010-01-05 07:32:13 +0000223 Changed = true;
224 }
225 }
226
227 if (MemTransferInst *MTI = dyn_cast<MemTransferInst>(MI)) {
228 // memmove(x,x,size) -> noop.
229 if (MTI->getSource() == MTI->getDest())
230 return EraseInstFromFunction(CI);
Eric Christopher551754c2010-04-16 23:37:20 +0000231 }
Chris Lattner753a2b42010-01-05 07:32:13 +0000232
Eric Christopher551754c2010-04-16 23:37:20 +0000233 // If we can determine a pointer alignment that is bigger than currently
234 // set, update the alignment.
235 if (isa<MemTransferInst>(MI)) {
236 if (Instruction *I = SimplifyMemTransfer(MI))
Chris Lattner753a2b42010-01-05 07:32:13 +0000237 return I;
238 } else if (MemSetInst *MSI = dyn_cast<MemSetInst>(MI)) {
239 if (Instruction *I = SimplifyMemSet(MSI))
240 return I;
241 }
Gabor Greifc310fcc2010-06-24 13:42:49 +0000242
Chris Lattner753a2b42010-01-05 07:32:13 +0000243 if (Changed) return II;
244 }
Eric Christopher551754c2010-04-16 23:37:20 +0000245
Chris Lattner753a2b42010-01-05 07:32:13 +0000246 switch (II->getIntrinsicID()) {
247 default: break;
Eric Christopher415326b2010-02-09 21:24:27 +0000248 case Intrinsic::objectsize: {
Eric Christopher26d0e892010-02-11 01:48:54 +0000249 // We need target data for just about everything so depend on it.
Eric Christopher415326b2010-02-09 21:24:27 +0000250 if (!TD) break;
Eric Christopher26d0e892010-02-11 01:48:54 +0000251
Evan Chenga8623262010-03-05 20:47:23 +0000252 const Type *ReturnTy = CI.getType();
Benjamin Kramer783a5c22011-01-06 13:07:49 +0000253 uint64_t DontKnow = II->getArgOperand(1) == Builder->getTrue() ? 0 : -1ULL;
Evan Chenga8623262010-03-05 20:47:23 +0000254
Eric Christopher26d0e892010-02-11 01:48:54 +0000255 // Get to the real allocated thing and offset as fast as possible.
Gabor Greifcea7ac72010-06-24 12:58:35 +0000256 Value *Op1 = II->getArgOperand(0)->stripPointerCasts();
Benjamin Kramer783a5c22011-01-06 13:07:49 +0000257
258 uint64_t Offset = 0;
259 uint64_t Size = -1ULL;
260
261 // Try to look through constant GEPs.
262 if (GEPOperator *GEP = dyn_cast<GEPOperator>(Op1)) {
263 if (!GEP->hasAllConstantIndices()) break;
264
265 // Get the current byte offset into the thing. Use the original
266 // operand in case we're looking through a bitcast.
267 SmallVector<Value*, 8> Ops(GEP->idx_begin(), GEP->idx_end());
268 Offset = TD->getIndexedOffset(GEP->getPointerOperandType(),
269 Ops.data(), Ops.size());
270
271 Op1 = GEP->getPointerOperand()->stripPointerCasts();
272
273 // Make sure we're not a constant offset from an external
274 // global.
275 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(Op1))
276 if (!GV->hasDefinitiveInitializer()) break;
277 }
278
Eric Christopher26d0e892010-02-11 01:48:54 +0000279 // If we've stripped down to a single global variable that we
280 // can know the size of then just return that.
Eric Christopher415326b2010-02-09 21:24:27 +0000281 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(Op1)) {
282 if (GV->hasDefinitiveInitializer()) {
283 Constant *C = GV->getInitializer();
Benjamin Kramer783a5c22011-01-06 13:07:49 +0000284 Size = TD->getTypeAllocSize(C->getType());
Eric Christopher415326b2010-02-09 21:24:27 +0000285 } else {
Evan Chenga8623262010-03-05 20:47:23 +0000286 // Can't determine size of the GV.
Benjamin Kramer783a5c22011-01-06 13:07:49 +0000287 Constant *RetVal = ConstantInt::get(ReturnTy, DontKnow);
Eric Christopher415326b2010-02-09 21:24:27 +0000288 return ReplaceInstUsesWith(CI, RetVal);
289 }
Evan Chenga8623262010-03-05 20:47:23 +0000290 } else if (AllocaInst *AI = dyn_cast<AllocaInst>(Op1)) {
291 // Get alloca size.
292 if (AI->getAllocatedType()->isSized()) {
Benjamin Kramer783a5c22011-01-06 13:07:49 +0000293 Size = TD->getTypeAllocSize(AI->getAllocatedType());
Evan Chenga8623262010-03-05 20:47:23 +0000294 if (AI->isArrayAllocation()) {
295 const ConstantInt *C = dyn_cast<ConstantInt>(AI->getArraySize());
296 if (!C) break;
Benjamin Kramer783a5c22011-01-06 13:07:49 +0000297 Size *= C->getZExtValue();
Evan Chenga8623262010-03-05 20:47:23 +0000298 }
Evan Chenga8623262010-03-05 20:47:23 +0000299 }
Evan Cheng687fed32010-03-08 22:54:36 +0000300 } else if (CallInst *MI = extractMallocCall(Op1)) {
Benjamin Kramer240d42d2011-01-06 13:11:05 +0000301 // Get allocation size.
Benjamin Kramer783a5c22011-01-06 13:07:49 +0000302 const Type* MallocType = getMallocAllocatedType(MI);
303 if (MallocType && MallocType->isSized())
304 if (Value *NElems = getMallocArraySize(MI, TD, true))
Evan Cheng687fed32010-03-08 22:54:36 +0000305 if (ConstantInt *NElements = dyn_cast<ConstantInt>(NElems))
Benjamin Kramer783a5c22011-01-06 13:07:49 +0000306 Size = NElements->getZExtValue() * TD->getTypeAllocSize(MallocType);
307 }
Evan Chenga8623262010-03-05 20:47:23 +0000308
309 // Do not return "I don't know" here. Later optimization passes could
310 // make it possible to evaluate objectsize to a constant.
Benjamin Kramer783a5c22011-01-06 13:07:49 +0000311 if (Size == -1ULL)
312 break;
313
314 if (Size < Offset) {
315 // Out of bound reference? Negative index normalized to large
316 // index? Just return "I don't know".
317 return ReplaceInstUsesWith(CI, ConstantInt::get(ReturnTy, DontKnow));
318 }
319 return ReplaceInstUsesWith(CI, ConstantInt::get(ReturnTy, Size-Offset));
Eric Christopher415326b2010-02-09 21:24:27 +0000320 }
Chris Lattner753a2b42010-01-05 07:32:13 +0000321 case Intrinsic::bswap:
322 // bswap(bswap(x)) -> x
Gabor Greifcea7ac72010-06-24 12:58:35 +0000323 if (IntrinsicInst *Operand = dyn_cast<IntrinsicInst>(II->getArgOperand(0)))
Chris Lattner753a2b42010-01-05 07:32:13 +0000324 if (Operand->getIntrinsicID() == Intrinsic::bswap)
Gabor Greifcea7ac72010-06-24 12:58:35 +0000325 return ReplaceInstUsesWith(CI, Operand->getArgOperand(0));
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000326
Chris Lattner753a2b42010-01-05 07:32:13 +0000327 // bswap(trunc(bswap(x))) -> trunc(lshr(x, c))
Gabor Greifcea7ac72010-06-24 12:58:35 +0000328 if (TruncInst *TI = dyn_cast<TruncInst>(II->getArgOperand(0))) {
Chris Lattner753a2b42010-01-05 07:32:13 +0000329 if (IntrinsicInst *Operand = dyn_cast<IntrinsicInst>(TI->getOperand(0)))
330 if (Operand->getIntrinsicID() == Intrinsic::bswap) {
331 unsigned C = Operand->getType()->getPrimitiveSizeInBits() -
332 TI->getType()->getPrimitiveSizeInBits();
333 Value *CV = ConstantInt::get(Operand->getType(), C);
Gabor Greifcea7ac72010-06-24 12:58:35 +0000334 Value *V = Builder->CreateLShr(Operand->getArgOperand(0), CV);
Chris Lattner753a2b42010-01-05 07:32:13 +0000335 return new TruncInst(V, TI->getType());
336 }
337 }
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000338
Chris Lattner753a2b42010-01-05 07:32:13 +0000339 break;
340 case Intrinsic::powi:
Gabor Greifcea7ac72010-06-24 12:58:35 +0000341 if (ConstantInt *Power = dyn_cast<ConstantInt>(II->getArgOperand(1))) {
Chris Lattner753a2b42010-01-05 07:32:13 +0000342 // powi(x, 0) -> 1.0
343 if (Power->isZero())
344 return ReplaceInstUsesWith(CI, ConstantFP::get(CI.getType(), 1.0));
345 // powi(x, 1) -> x
346 if (Power->isOne())
Gabor Greifcea7ac72010-06-24 12:58:35 +0000347 return ReplaceInstUsesWith(CI, II->getArgOperand(0));
Chris Lattner753a2b42010-01-05 07:32:13 +0000348 // powi(x, -1) -> 1/x
349 if (Power->isAllOnesValue())
350 return BinaryOperator::CreateFDiv(ConstantFP::get(CI.getType(), 1.0),
Gabor Greifcea7ac72010-06-24 12:58:35 +0000351 II->getArgOperand(0));
Chris Lattner753a2b42010-01-05 07:32:13 +0000352 }
353 break;
354 case Intrinsic::cttz: {
355 // If all bits below the first known one are known zero,
356 // this value is constant.
Gabor Greifcea7ac72010-06-24 12:58:35 +0000357 const IntegerType *IT = cast<IntegerType>(II->getArgOperand(0)->getType());
Chris Lattner753a2b42010-01-05 07:32:13 +0000358 uint32_t BitWidth = IT->getBitWidth();
359 APInt KnownZero(BitWidth, 0);
360 APInt KnownOne(BitWidth, 0);
Gabor Greifcea7ac72010-06-24 12:58:35 +0000361 ComputeMaskedBits(II->getArgOperand(0), APInt::getAllOnesValue(BitWidth),
Chris Lattner753a2b42010-01-05 07:32:13 +0000362 KnownZero, KnownOne);
363 unsigned TrailingZeros = KnownOne.countTrailingZeros();
364 APInt Mask(APInt::getLowBitsSet(BitWidth, TrailingZeros));
365 if ((Mask & KnownZero) == Mask)
366 return ReplaceInstUsesWith(CI, ConstantInt::get(IT,
367 APInt(BitWidth, TrailingZeros)));
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000368
Chris Lattner753a2b42010-01-05 07:32:13 +0000369 }
370 break;
371 case Intrinsic::ctlz: {
372 // If all bits above the first known one are known zero,
373 // this value is constant.
Gabor Greifcea7ac72010-06-24 12:58:35 +0000374 const IntegerType *IT = cast<IntegerType>(II->getArgOperand(0)->getType());
Chris Lattner753a2b42010-01-05 07:32:13 +0000375 uint32_t BitWidth = IT->getBitWidth();
376 APInt KnownZero(BitWidth, 0);
377 APInt KnownOne(BitWidth, 0);
Gabor Greifcea7ac72010-06-24 12:58:35 +0000378 ComputeMaskedBits(II->getArgOperand(0), APInt::getAllOnesValue(BitWidth),
Chris Lattner753a2b42010-01-05 07:32:13 +0000379 KnownZero, KnownOne);
380 unsigned LeadingZeros = KnownOne.countLeadingZeros();
381 APInt Mask(APInt::getHighBitsSet(BitWidth, LeadingZeros));
382 if ((Mask & KnownZero) == Mask)
383 return ReplaceInstUsesWith(CI, ConstantInt::get(IT,
384 APInt(BitWidth, LeadingZeros)));
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000385
Chris Lattner753a2b42010-01-05 07:32:13 +0000386 }
387 break;
388 case Intrinsic::uadd_with_overflow: {
Gabor Greifcea7ac72010-06-24 12:58:35 +0000389 Value *LHS = II->getArgOperand(0), *RHS = II->getArgOperand(1);
390 const IntegerType *IT = cast<IntegerType>(II->getArgOperand(0)->getType());
Chris Lattner753a2b42010-01-05 07:32:13 +0000391 uint32_t BitWidth = IT->getBitWidth();
392 APInt Mask = APInt::getSignBit(BitWidth);
393 APInt LHSKnownZero(BitWidth, 0);
394 APInt LHSKnownOne(BitWidth, 0);
395 ComputeMaskedBits(LHS, Mask, LHSKnownZero, LHSKnownOne);
396 bool LHSKnownNegative = LHSKnownOne[BitWidth - 1];
397 bool LHSKnownPositive = LHSKnownZero[BitWidth - 1];
398
399 if (LHSKnownNegative || LHSKnownPositive) {
400 APInt RHSKnownZero(BitWidth, 0);
401 APInt RHSKnownOne(BitWidth, 0);
402 ComputeMaskedBits(RHS, Mask, RHSKnownZero, RHSKnownOne);
403 bool RHSKnownNegative = RHSKnownOne[BitWidth - 1];
404 bool RHSKnownPositive = RHSKnownZero[BitWidth - 1];
405 if (LHSKnownNegative && RHSKnownNegative) {
406 // The sign bit is set in both cases: this MUST overflow.
407 // Create a simple add instruction, and insert it into the struct.
408 Instruction *Add = BinaryOperator::CreateAdd(LHS, RHS, "", &CI);
409 Worklist.Add(Add);
410 Constant *V[] = {
411 UndefValue::get(LHS->getType()),ConstantInt::getTrue(II->getContext())
412 };
413 Constant *Struct = ConstantStruct::get(II->getContext(), V, 2, false);
414 return InsertValueInst::Create(Struct, Add, 0);
415 }
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000416
Chris Lattner753a2b42010-01-05 07:32:13 +0000417 if (LHSKnownPositive && RHSKnownPositive) {
418 // The sign bit is clear in both cases: this CANNOT overflow.
419 // Create a simple add instruction, and insert it into the struct.
420 Instruction *Add = BinaryOperator::CreateNUWAdd(LHS, RHS, "", &CI);
421 Worklist.Add(Add);
422 Constant *V[] = {
423 UndefValue::get(LHS->getType()),
424 ConstantInt::getFalse(II->getContext())
425 };
426 Constant *Struct = ConstantStruct::get(II->getContext(), V, 2, false);
427 return InsertValueInst::Create(Struct, Add, 0);
428 }
429 }
430 }
431 // FALL THROUGH uadd into sadd
432 case Intrinsic::sadd_with_overflow:
433 // Canonicalize constants into the RHS.
Gabor Greifa90c5c72010-06-28 16:50:57 +0000434 if (isa<Constant>(II->getArgOperand(0)) &&
435 !isa<Constant>(II->getArgOperand(1))) {
436 Value *LHS = II->getArgOperand(0);
437 II->setArgOperand(0, II->getArgOperand(1));
438 II->setArgOperand(1, LHS);
Chris Lattner753a2b42010-01-05 07:32:13 +0000439 return II;
440 }
441
442 // X + undef -> undef
Gabor Greif9c68a7b2010-06-25 07:57:14 +0000443 if (isa<UndefValue>(II->getArgOperand(1)))
Chris Lattner753a2b42010-01-05 07:32:13 +0000444 return ReplaceInstUsesWith(CI, UndefValue::get(II->getType()));
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000445
Gabor Greif9c68a7b2010-06-25 07:57:14 +0000446 if (ConstantInt *RHS = dyn_cast<ConstantInt>(II->getArgOperand(1))) {
Chris Lattner753a2b42010-01-05 07:32:13 +0000447 // X + 0 -> {X, false}
448 if (RHS->isZero()) {
449 Constant *V[] = {
Eli Friedman4fffb342010-08-09 20:49:43 +0000450 UndefValue::get(II->getArgOperand(0)->getType()),
Chris Lattner753a2b42010-01-05 07:32:13 +0000451 ConstantInt::getFalse(II->getContext())
452 };
453 Constant *Struct = ConstantStruct::get(II->getContext(), V, 2, false);
Gabor Greifcea7ac72010-06-24 12:58:35 +0000454 return InsertValueInst::Create(Struct, II->getArgOperand(0), 0);
Chris Lattner753a2b42010-01-05 07:32:13 +0000455 }
456 }
457 break;
458 case Intrinsic::usub_with_overflow:
459 case Intrinsic::ssub_with_overflow:
460 // undef - X -> undef
461 // X - undef -> undef
Gabor Greif9c68a7b2010-06-25 07:57:14 +0000462 if (isa<UndefValue>(II->getArgOperand(0)) ||
463 isa<UndefValue>(II->getArgOperand(1)))
Chris Lattner753a2b42010-01-05 07:32:13 +0000464 return ReplaceInstUsesWith(CI, UndefValue::get(II->getType()));
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000465
Gabor Greif9c68a7b2010-06-25 07:57:14 +0000466 if (ConstantInt *RHS = dyn_cast<ConstantInt>(II->getArgOperand(1))) {
Chris Lattner753a2b42010-01-05 07:32:13 +0000467 // X - 0 -> {X, false}
468 if (RHS->isZero()) {
469 Constant *V[] = {
Gabor Greif9c68a7b2010-06-25 07:57:14 +0000470 UndefValue::get(II->getArgOperand(0)->getType()),
Chris Lattner753a2b42010-01-05 07:32:13 +0000471 ConstantInt::getFalse(II->getContext())
472 };
473 Constant *Struct = ConstantStruct::get(II->getContext(), V, 2, false);
Gabor Greif9c68a7b2010-06-25 07:57:14 +0000474 return InsertValueInst::Create(Struct, II->getArgOperand(0), 0);
Chris Lattner753a2b42010-01-05 07:32:13 +0000475 }
476 }
477 break;
Benjamin Kramer6b96fe72011-03-10 18:40:14 +0000478 case Intrinsic::umul_with_overflow: {
479 Value *LHS = II->getArgOperand(0), *RHS = II->getArgOperand(1);
480 unsigned BitWidth = cast<IntegerType>(LHS->getType())->getBitWidth();
481 APInt Mask = APInt::getAllOnesValue(BitWidth);
482
483 APInt LHSKnownZero(BitWidth, 0);
484 APInt LHSKnownOne(BitWidth, 0);
485 ComputeMaskedBits(LHS, Mask, LHSKnownZero, LHSKnownOne);
486 APInt RHSKnownZero(BitWidth, 0);
487 APInt RHSKnownOne(BitWidth, 0);
488 ComputeMaskedBits(RHS, Mask, RHSKnownZero, RHSKnownOne);
489
490 // Get the largest possible values for each operand, extended to be large
491 // enough so that every possible product of two BitWidth-sized ints fits.
492 APInt LHSMax = (~LHSKnownZero).zext(BitWidth*2);
493 APInt RHSMax = (~RHSKnownZero).zext(BitWidth*2);
494
495 // If multiplying the maximum values does not overflow then we can turn
496 // this into a plain NUW mul.
497 if ((LHSMax * RHSMax).getActiveBits() <= BitWidth) {
498 Value *Mul = Builder->CreateNUWMul(LHS, RHS, "umul_with_overflow");
499 Constant *V[] = {
500 UndefValue::get(LHS->getType()),
501 Builder->getFalse()
502 };
503 Constant *Struct = ConstantStruct::get(II->getContext(), V, 2, false);
504 return InsertValueInst::Create(Struct, Mul, 0);
505 }
506 } // FALL THROUGH
Chris Lattner753a2b42010-01-05 07:32:13 +0000507 case Intrinsic::smul_with_overflow:
508 // Canonicalize constants into the RHS.
Gabor Greifa90c5c72010-06-28 16:50:57 +0000509 if (isa<Constant>(II->getArgOperand(0)) &&
510 !isa<Constant>(II->getArgOperand(1))) {
511 Value *LHS = II->getArgOperand(0);
512 II->setArgOperand(0, II->getArgOperand(1));
513 II->setArgOperand(1, LHS);
Chris Lattner753a2b42010-01-05 07:32:13 +0000514 return II;
515 }
516
517 // X * undef -> undef
Gabor Greif9c68a7b2010-06-25 07:57:14 +0000518 if (isa<UndefValue>(II->getArgOperand(1)))
Chris Lattner753a2b42010-01-05 07:32:13 +0000519 return ReplaceInstUsesWith(CI, UndefValue::get(II->getType()));
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000520
Gabor Greif9c68a7b2010-06-25 07:57:14 +0000521 if (ConstantInt *RHSI = dyn_cast<ConstantInt>(II->getArgOperand(1))) {
Chris Lattner753a2b42010-01-05 07:32:13 +0000522 // X*0 -> {0, false}
523 if (RHSI->isZero())
524 return ReplaceInstUsesWith(CI, Constant::getNullValue(II->getType()));
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000525
Chris Lattner753a2b42010-01-05 07:32:13 +0000526 // X * 1 -> {X, false}
527 if (RHSI->equalsInt(1)) {
528 Constant *V[] = {
Gabor Greifcea7ac72010-06-24 12:58:35 +0000529 UndefValue::get(II->getArgOperand(0)->getType()),
Chris Lattner753a2b42010-01-05 07:32:13 +0000530 ConstantInt::getFalse(II->getContext())
531 };
532 Constant *Struct = ConstantStruct::get(II->getContext(), V, 2, false);
Gabor Greifcea7ac72010-06-24 12:58:35 +0000533 return InsertValueInst::Create(Struct, II->getArgOperand(0), 0);
Chris Lattner753a2b42010-01-05 07:32:13 +0000534 }
535 }
536 break;
537 case Intrinsic::ppc_altivec_lvx:
538 case Intrinsic::ppc_altivec_lvxl:
539 case Intrinsic::x86_sse_loadu_ps:
540 case Intrinsic::x86_sse2_loadu_pd:
541 case Intrinsic::x86_sse2_loadu_dq:
542 // Turn PPC lvx -> load if the pointer is known aligned.
543 // Turn X86 loadups -> load if the pointer is known aligned.
Chris Lattner687140c2010-12-25 20:37:57 +0000544 if (getOrEnforceKnownAlignment(II->getArgOperand(0), 16, TD) >= 16) {
Gabor Greifcea7ac72010-06-24 12:58:35 +0000545 Value *Ptr = Builder->CreateBitCast(II->getArgOperand(0),
Chris Lattner753a2b42010-01-05 07:32:13 +0000546 PointerType::getUnqual(II->getType()));
547 return new LoadInst(Ptr);
548 }
549 break;
550 case Intrinsic::ppc_altivec_stvx:
551 case Intrinsic::ppc_altivec_stvxl:
552 // Turn stvx -> store if the pointer is known aligned.
Chris Lattner687140c2010-12-25 20:37:57 +0000553 if (getOrEnforceKnownAlignment(II->getArgOperand(1), 16, TD) >= 16) {
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000554 const Type *OpPtrTy =
Gabor Greif2f1ab742010-06-24 15:51:11 +0000555 PointerType::getUnqual(II->getArgOperand(0)->getType());
556 Value *Ptr = Builder->CreateBitCast(II->getArgOperand(1), OpPtrTy);
557 return new StoreInst(II->getArgOperand(0), Ptr);
Chris Lattner753a2b42010-01-05 07:32:13 +0000558 }
559 break;
560 case Intrinsic::x86_sse_storeu_ps:
561 case Intrinsic::x86_sse2_storeu_pd:
562 case Intrinsic::x86_sse2_storeu_dq:
563 // Turn X86 storeu -> store if the pointer is known aligned.
Chris Lattner687140c2010-12-25 20:37:57 +0000564 if (getOrEnforceKnownAlignment(II->getArgOperand(0), 16, TD) >= 16) {
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000565 const Type *OpPtrTy =
Gabor Greif2f1ab742010-06-24 15:51:11 +0000566 PointerType::getUnqual(II->getArgOperand(1)->getType());
567 Value *Ptr = Builder->CreateBitCast(II->getArgOperand(0), OpPtrTy);
568 return new StoreInst(II->getArgOperand(1), Ptr);
Chris Lattner753a2b42010-01-05 07:32:13 +0000569 }
570 break;
Chandler Carruth9cc9f502011-01-10 07:19:37 +0000571
572 case Intrinsic::x86_sse_cvtss2si:
573 case Intrinsic::x86_sse_cvtss2si64:
574 case Intrinsic::x86_sse_cvttss2si:
575 case Intrinsic::x86_sse_cvttss2si64:
576 case Intrinsic::x86_sse2_cvtsd2si:
577 case Intrinsic::x86_sse2_cvtsd2si64:
578 case Intrinsic::x86_sse2_cvttsd2si:
579 case Intrinsic::x86_sse2_cvttsd2si64: {
580 // These intrinsics only demand the 0th element of their input vectors. If
Chris Lattner753a2b42010-01-05 07:32:13 +0000581 // we can simplify the input based on that, do so now.
582 unsigned VWidth =
Gabor Greif9c68a7b2010-06-25 07:57:14 +0000583 cast<VectorType>(II->getArgOperand(0)->getType())->getNumElements();
Chris Lattner753a2b42010-01-05 07:32:13 +0000584 APInt DemandedElts(VWidth, 1);
585 APInt UndefElts(VWidth, 0);
Gabor Greifa3997812010-07-22 10:37:47 +0000586 if (Value *V = SimplifyDemandedVectorElts(II->getArgOperand(0),
587 DemandedElts, UndefElts)) {
Gabor Greifa90c5c72010-06-28 16:50:57 +0000588 II->setArgOperand(0, V);
Chris Lattner753a2b42010-01-05 07:32:13 +0000589 return II;
590 }
591 break;
592 }
Chandler Carruth9cc9f502011-01-10 07:19:37 +0000593
Chris Lattner753a2b42010-01-05 07:32:13 +0000594 case Intrinsic::ppc_altivec_vperm:
595 // Turn vperm(V1,V2,mask) -> shuffle(V1,V2,mask) if mask is a constant.
Gabor Greifcea7ac72010-06-24 12:58:35 +0000596 if (ConstantVector *Mask = dyn_cast<ConstantVector>(II->getArgOperand(2))) {
Chris Lattner753a2b42010-01-05 07:32:13 +0000597 assert(Mask->getNumOperands() == 16 && "Bad type for intrinsic!");
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000598
Chris Lattner753a2b42010-01-05 07:32:13 +0000599 // Check that all of the elements are integer constants or undefs.
600 bool AllEltsOk = true;
601 for (unsigned i = 0; i != 16; ++i) {
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000602 if (!isa<ConstantInt>(Mask->getOperand(i)) &&
Chris Lattner753a2b42010-01-05 07:32:13 +0000603 !isa<UndefValue>(Mask->getOperand(i))) {
604 AllEltsOk = false;
605 break;
606 }
607 }
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000608
Chris Lattner753a2b42010-01-05 07:32:13 +0000609 if (AllEltsOk) {
610 // Cast the input vectors to byte vectors.
Gabor Greifa3997812010-07-22 10:37:47 +0000611 Value *Op0 = Builder->CreateBitCast(II->getArgOperand(0),
612 Mask->getType());
613 Value *Op1 = Builder->CreateBitCast(II->getArgOperand(1),
614 Mask->getType());
Chris Lattner753a2b42010-01-05 07:32:13 +0000615 Value *Result = UndefValue::get(Op0->getType());
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000616
Chris Lattner753a2b42010-01-05 07:32:13 +0000617 // Only extract each element once.
618 Value *ExtractedElts[32];
619 memset(ExtractedElts, 0, sizeof(ExtractedElts));
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000620
Chris Lattner753a2b42010-01-05 07:32:13 +0000621 for (unsigned i = 0; i != 16; ++i) {
622 if (isa<UndefValue>(Mask->getOperand(i)))
623 continue;
624 unsigned Idx=cast<ConstantInt>(Mask->getOperand(i))->getZExtValue();
625 Idx &= 31; // Match the hardware behavior.
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000626
Chris Lattner753a2b42010-01-05 07:32:13 +0000627 if (ExtractedElts[Idx] == 0) {
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000628 ExtractedElts[Idx] =
629 Builder->CreateExtractElement(Idx < 16 ? Op0 : Op1,
Chris Lattner753a2b42010-01-05 07:32:13 +0000630 ConstantInt::get(Type::getInt32Ty(II->getContext()),
631 Idx&15, false), "tmp");
632 }
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000633
Chris Lattner753a2b42010-01-05 07:32:13 +0000634 // Insert this value into the result vector.
635 Result = Builder->CreateInsertElement(Result, ExtractedElts[Idx],
636 ConstantInt::get(Type::getInt32Ty(II->getContext()),
637 i, false), "tmp");
638 }
639 return CastInst::Create(Instruction::BitCast, Result, CI.getType());
640 }
641 }
642 break;
643
Bob Wilson364f17c2010-10-22 21:41:48 +0000644 case Intrinsic::arm_neon_vld1:
645 case Intrinsic::arm_neon_vld2:
646 case Intrinsic::arm_neon_vld3:
647 case Intrinsic::arm_neon_vld4:
648 case Intrinsic::arm_neon_vld2lane:
649 case Intrinsic::arm_neon_vld3lane:
650 case Intrinsic::arm_neon_vld4lane:
651 case Intrinsic::arm_neon_vst1:
652 case Intrinsic::arm_neon_vst2:
653 case Intrinsic::arm_neon_vst3:
654 case Intrinsic::arm_neon_vst4:
655 case Intrinsic::arm_neon_vst2lane:
656 case Intrinsic::arm_neon_vst3lane:
657 case Intrinsic::arm_neon_vst4lane: {
Chris Lattnerae47be12010-12-25 20:52:04 +0000658 unsigned MemAlign = getKnownAlignment(II->getArgOperand(0), TD);
Bob Wilson364f17c2010-10-22 21:41:48 +0000659 unsigned AlignArg = II->getNumArgOperands() - 1;
660 ConstantInt *IntrAlign = dyn_cast<ConstantInt>(II->getArgOperand(AlignArg));
661 if (IntrAlign && IntrAlign->getZExtValue() < MemAlign) {
662 II->setArgOperand(AlignArg,
663 ConstantInt::get(Type::getInt32Ty(II->getContext()),
664 MemAlign, false));
665 return II;
666 }
667 break;
668 }
669
Chris Lattner753a2b42010-01-05 07:32:13 +0000670 case Intrinsic::stackrestore: {
671 // If the save is right next to the restore, remove the restore. This can
672 // happen when variable allocas are DCE'd.
Gabor Greifcea7ac72010-06-24 12:58:35 +0000673 if (IntrinsicInst *SS = dyn_cast<IntrinsicInst>(II->getArgOperand(0))) {
Chris Lattner753a2b42010-01-05 07:32:13 +0000674 if (SS->getIntrinsicID() == Intrinsic::stacksave) {
675 BasicBlock::iterator BI = SS;
676 if (&*++BI == II)
677 return EraseInstFromFunction(CI);
678 }
679 }
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000680
Chris Lattner753a2b42010-01-05 07:32:13 +0000681 // Scan down this block to see if there is another stack restore in the
682 // same block without an intervening call/alloca.
683 BasicBlock::iterator BI = II;
684 TerminatorInst *TI = II->getParent()->getTerminator();
685 bool CannotRemove = false;
686 for (++BI; &*BI != TI; ++BI) {
687 if (isa<AllocaInst>(BI) || isMalloc(BI)) {
688 CannotRemove = true;
689 break;
690 }
691 if (CallInst *BCI = dyn_cast<CallInst>(BI)) {
692 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(BCI)) {
693 // If there is a stackrestore below this one, remove this one.
694 if (II->getIntrinsicID() == Intrinsic::stackrestore)
695 return EraseInstFromFunction(CI);
696 // Otherwise, ignore the intrinsic.
697 } else {
698 // If we found a non-intrinsic call, we can't remove the stack
699 // restore.
700 CannotRemove = true;
701 break;
702 }
703 }
704 }
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000705
Chris Lattner753a2b42010-01-05 07:32:13 +0000706 // If the stack restore is in a return/unwind block and if there are no
707 // allocas or calls between the restore and the return, nuke the restore.
708 if (!CannotRemove && (isa<ReturnInst>(TI) || isa<UnwindInst>(TI)))
709 return EraseInstFromFunction(CI);
710 break;
711 }
Chris Lattner753a2b42010-01-05 07:32:13 +0000712 }
713
714 return visitCallSite(II);
715}
716
717// InvokeInst simplification
718//
719Instruction *InstCombiner::visitInvokeInst(InvokeInst &II) {
720 return visitCallSite(&II);
721}
722
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000723/// isSafeToEliminateVarargsCast - If this cast does not affect the value
Chris Lattner753a2b42010-01-05 07:32:13 +0000724/// passed through the varargs area, we can eliminate the use of the cast.
725static bool isSafeToEliminateVarargsCast(const CallSite CS,
726 const CastInst * const CI,
727 const TargetData * const TD,
728 const int ix) {
729 if (!CI->isLosslessCast())
730 return false;
731
732 // The size of ByVal arguments is derived from the type, so we
733 // can't change to a type with a different size. If the size were
734 // passed explicitly we could avoid this check.
735 if (!CS.paramHasAttr(ix, Attribute::ByVal))
736 return true;
737
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000738 const Type* SrcTy =
Chris Lattner753a2b42010-01-05 07:32:13 +0000739 cast<PointerType>(CI->getOperand(0)->getType())->getElementType();
740 const Type* DstTy = cast<PointerType>(CI->getType())->getElementType();
741 if (!SrcTy->isSized() || !DstTy->isSized())
742 return false;
743 if (!TD || TD->getTypeAllocSize(SrcTy) != TD->getTypeAllocSize(DstTy))
744 return false;
745 return true;
746}
747
Benjamin Kramer0b6cb502010-03-12 09:27:41 +0000748namespace {
749class InstCombineFortifiedLibCalls : public SimplifyFortifiedLibCalls {
750 InstCombiner *IC;
751protected:
752 void replaceCall(Value *With) {
753 NewInstruction = IC->ReplaceInstUsesWith(*CI, With);
754 }
755 bool isFoldable(unsigned SizeCIOp, unsigned SizeArgOp, bool isString) const {
Benjamin Kramer8143a842011-01-06 14:22:52 +0000756 if (CI->getArgOperand(SizeCIOp) == CI->getArgOperand(SizeArgOp))
757 return true;
Gabor Greifa3997812010-07-22 10:37:47 +0000758 if (ConstantInt *SizeCI =
759 dyn_cast<ConstantInt>(CI->getArgOperand(SizeCIOp))) {
Benjamin Kramer0b6cb502010-03-12 09:27:41 +0000760 if (SizeCI->isAllOnesValue())
761 return true;
Eric Christopherb9b80c32011-03-15 00:25:41 +0000762 if (isString) {
763 uint64_t Len = GetStringLength(CI->getArgOperand(SizeArgOp));
764 // If the length is 0 we don't know how long it is and so we can't
765 // remove the check.
766 if (Len == 0) return false;
767 return SizeCI->getZExtValue() >= Len;
768 }
Gabor Greifa3997812010-07-22 10:37:47 +0000769 if (ConstantInt *Arg = dyn_cast<ConstantInt>(
770 CI->getArgOperand(SizeArgOp)))
Evan Cheng9d8f0022010-03-23 06:06:09 +0000771 return SizeCI->getZExtValue() >= Arg->getZExtValue();
Benjamin Kramer0b6cb502010-03-12 09:27:41 +0000772 }
773 return false;
774 }
775public:
776 InstCombineFortifiedLibCalls(InstCombiner *IC) : IC(IC), NewInstruction(0) { }
777 Instruction *NewInstruction;
778};
779} // end anonymous namespace
780
Eric Christopher27ceaa12010-03-06 10:50:38 +0000781// Try to fold some different type of calls here.
782// Currently we're only working with the checking functions, memcpy_chk,
783// mempcpy_chk, memmove_chk, memset_chk, strcpy_chk, stpcpy_chk, strncpy_chk,
784// strcat_chk and strncat_chk.
785Instruction *InstCombiner::tryOptimizeCall(CallInst *CI, const TargetData *TD) {
786 if (CI->getCalledFunction() == 0) return 0;
Eric Christopher27ceaa12010-03-06 10:50:38 +0000787
Benjamin Kramer0b6cb502010-03-12 09:27:41 +0000788 InstCombineFortifiedLibCalls Simplifier(this);
789 Simplifier.fold(CI, TD);
790 return Simplifier.NewInstruction;
Eric Christopher27ceaa12010-03-06 10:50:38 +0000791}
792
Chris Lattner753a2b42010-01-05 07:32:13 +0000793// visitCallSite - Improvements for call and invoke instructions.
794//
795Instruction *InstCombiner::visitCallSite(CallSite CS) {
796 bool Changed = false;
797
Chris Lattnerab215bc2010-12-20 08:25:06 +0000798 // If the callee is a pointer to a function, attempt to move any casts to the
799 // arguments of the call/invoke.
Chris Lattner753a2b42010-01-05 07:32:13 +0000800 Value *Callee = CS.getCalledValue();
Chris Lattnerab215bc2010-12-20 08:25:06 +0000801 if (!isa<Function>(Callee) && transformConstExprCastCall(CS))
802 return 0;
Chris Lattner753a2b42010-01-05 07:32:13 +0000803
804 if (Function *CalleeF = dyn_cast<Function>(Callee))
Chris Lattnerd5695612010-02-01 18:11:34 +0000805 // If the call and callee calling conventions don't match, this call must
806 // be unreachable, as the call is undefined.
807 if (CalleeF->getCallingConv() != CS.getCallingConv() &&
808 // Only do this for calls to a function with a body. A prototype may
809 // not actually end up matching the implementation's calling conv for a
810 // variety of reasons (e.g. it may be written in assembly).
811 !CalleeF->isDeclaration()) {
Chris Lattner753a2b42010-01-05 07:32:13 +0000812 Instruction *OldCall = CS.getInstruction();
Chris Lattner753a2b42010-01-05 07:32:13 +0000813 new StoreInst(ConstantInt::getTrue(Callee->getContext()),
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000814 UndefValue::get(Type::getInt1PtrTy(Callee->getContext())),
Chris Lattner753a2b42010-01-05 07:32:13 +0000815 OldCall);
816 // If OldCall dues not return void then replaceAllUsesWith undef.
817 // This allows ValueHandlers and custom metadata to adjust itself.
818 if (!OldCall->getType()->isVoidTy())
819 OldCall->replaceAllUsesWith(UndefValue::get(OldCall->getType()));
Chris Lattner830f3f22010-02-01 18:04:58 +0000820 if (isa<CallInst>(OldCall))
Chris Lattner753a2b42010-01-05 07:32:13 +0000821 return EraseInstFromFunction(*OldCall);
Eric Christopher0c6a8f92010-02-03 00:21:58 +0000822
Chris Lattner830f3f22010-02-01 18:04:58 +0000823 // We cannot remove an invoke, because it would change the CFG, just
824 // change the callee to a null pointer.
Gabor Greif654c06f2010-03-20 21:00:25 +0000825 cast<InvokeInst>(OldCall)->setCalledFunction(
Chris Lattner830f3f22010-02-01 18:04:58 +0000826 Constant::getNullValue(CalleeF->getType()));
Chris Lattner753a2b42010-01-05 07:32:13 +0000827 return 0;
828 }
829
830 if (isa<ConstantPointerNull>(Callee) || isa<UndefValue>(Callee)) {
831 // This instruction is not reachable, just remove it. We insert a store to
832 // undef so that we know that this code is not reachable, despite the fact
833 // that we can't modify the CFG here.
834 new StoreInst(ConstantInt::getTrue(Callee->getContext()),
835 UndefValue::get(Type::getInt1PtrTy(Callee->getContext())),
836 CS.getInstruction());
837
Gabor Greifcea7ac72010-06-24 12:58:35 +0000838 // If CS does not return void then replaceAllUsesWith undef.
Chris Lattner753a2b42010-01-05 07:32:13 +0000839 // This allows ValueHandlers and custom metadata to adjust itself.
840 if (!CS.getInstruction()->getType()->isVoidTy())
841 CS.getInstruction()->
842 replaceAllUsesWith(UndefValue::get(CS.getInstruction()->getType()));
843
844 if (InvokeInst *II = dyn_cast<InvokeInst>(CS.getInstruction())) {
845 // Don't break the CFG, insert a dummy cond branch.
846 BranchInst::Create(II->getNormalDest(), II->getUnwindDest(),
847 ConstantInt::getTrue(Callee->getContext()), II);
848 }
849 return EraseInstFromFunction(*CS.getInstruction());
850 }
851
852 if (BitCastInst *BC = dyn_cast<BitCastInst>(Callee))
853 if (IntrinsicInst *In = dyn_cast<IntrinsicInst>(BC->getOperand(0)))
854 if (In->getIntrinsicID() == Intrinsic::init_trampoline)
855 return transformCallThroughTrampoline(CS);
856
857 const PointerType *PTy = cast<PointerType>(Callee->getType());
858 const FunctionType *FTy = cast<FunctionType>(PTy->getElementType());
859 if (FTy->isVarArg()) {
860 int ix = FTy->getNumParams() + (isa<InvokeInst>(Callee) ? 3 : 1);
861 // See if we can optimize any arguments passed through the varargs area of
862 // the call.
863 for (CallSite::arg_iterator I = CS.arg_begin()+FTy->getNumParams(),
864 E = CS.arg_end(); I != E; ++I, ++ix) {
865 CastInst *CI = dyn_cast<CastInst>(*I);
866 if (CI && isSafeToEliminateVarargsCast(CS, CI, TD, ix)) {
867 *I = CI->getOperand(0);
868 Changed = true;
869 }
870 }
871 }
872
873 if (isa<InlineAsm>(Callee) && !CS.doesNotThrow()) {
874 // Inline asm calls cannot throw - mark them 'nounwind'.
875 CS.setDoesNotThrow();
876 Changed = true;
877 }
878
Eric Christopher27ceaa12010-03-06 10:50:38 +0000879 // Try to optimize the call if possible, we require TargetData for most of
880 // this. None of these calls are seen as possibly dead so go ahead and
881 // delete the instruction now.
882 if (CallInst *CI = dyn_cast<CallInst>(CS.getInstruction())) {
883 Instruction *I = tryOptimizeCall(CI, TD);
Eric Christopher7b323a32010-03-06 10:59:25 +0000884 // If we changed something return the result, etc. Otherwise let
885 // the fallthrough check.
886 if (I) return EraseInstFromFunction(*I);
Eric Christopher27ceaa12010-03-06 10:50:38 +0000887 }
888
Chris Lattner753a2b42010-01-05 07:32:13 +0000889 return Changed ? CS.getInstruction() : 0;
890}
891
892// transformConstExprCastCall - If the callee is a constexpr cast of a function,
893// attempt to move the cast to the arguments of the call/invoke.
894//
895bool InstCombiner::transformConstExprCastCall(CallSite CS) {
Chris Lattnerab215bc2010-12-20 08:25:06 +0000896 Function *Callee =
897 dyn_cast<Function>(CS.getCalledValue()->stripPointerCasts());
898 if (Callee == 0)
Chris Lattner753a2b42010-01-05 07:32:13 +0000899 return false;
Chris Lattner753a2b42010-01-05 07:32:13 +0000900 Instruction *Caller = CS.getInstruction();
901 const AttrListPtr &CallerPAL = CS.getAttributes();
902
903 // Okay, this is a cast from a function to a different type. Unless doing so
904 // would cause a type conversion of one of our arguments, change this call to
905 // be a direct call with arguments casted to the appropriate types.
906 //
907 const FunctionType *FT = Callee->getFunctionType();
908 const Type *OldRetTy = Caller->getType();
909 const Type *NewRetTy = FT->getReturnType();
910
Duncan Sands1df98592010-02-16 11:11:14 +0000911 if (NewRetTy->isStructTy())
Chris Lattner753a2b42010-01-05 07:32:13 +0000912 return false; // TODO: Handle multiple return values.
913
914 // Check to see if we are changing the return type...
915 if (OldRetTy != NewRetTy) {
916 if (Callee->isDeclaration() &&
917 // Conversion is ok if changing from one pointer type to another or from
918 // a pointer to an integer of the same size.
Duncan Sands1df98592010-02-16 11:11:14 +0000919 !((OldRetTy->isPointerTy() || !TD ||
Chris Lattner753a2b42010-01-05 07:32:13 +0000920 OldRetTy == TD->getIntPtrType(Caller->getContext())) &&
Duncan Sands1df98592010-02-16 11:11:14 +0000921 (NewRetTy->isPointerTy() || !TD ||
Chris Lattner753a2b42010-01-05 07:32:13 +0000922 NewRetTy == TD->getIntPtrType(Caller->getContext()))))
923 return false; // Cannot transform this return value.
924
925 if (!Caller->use_empty() &&
926 // void -> non-void is handled specially
927 !NewRetTy->isVoidTy() && !CastInst::isCastable(NewRetTy, OldRetTy))
928 return false; // Cannot transform this return value.
929
930 if (!CallerPAL.isEmpty() && !Caller->use_empty()) {
931 Attributes RAttrs = CallerPAL.getRetAttributes();
932 if (RAttrs & Attribute::typeIncompatible(NewRetTy))
933 return false; // Attribute not compatible with transformed value.
934 }
935
936 // If the callsite is an invoke instruction, and the return value is used by
937 // a PHI node in a successor, we cannot change the return type of the call
938 // because there is no place to put the cast instruction (without breaking
939 // the critical edge). Bail out in this case.
940 if (!Caller->use_empty())
941 if (InvokeInst *II = dyn_cast<InvokeInst>(Caller))
942 for (Value::use_iterator UI = II->use_begin(), E = II->use_end();
943 UI != E; ++UI)
944 if (PHINode *PN = dyn_cast<PHINode>(*UI))
945 if (PN->getParent() == II->getNormalDest() ||
946 PN->getParent() == II->getUnwindDest())
947 return false;
948 }
949
950 unsigned NumActualArgs = unsigned(CS.arg_end()-CS.arg_begin());
951 unsigned NumCommonArgs = std::min(FT->getNumParams(), NumActualArgs);
952
953 CallSite::arg_iterator AI = CS.arg_begin();
954 for (unsigned i = 0, e = NumCommonArgs; i != e; ++i, ++AI) {
955 const Type *ParamTy = FT->getParamType(i);
956 const Type *ActTy = (*AI)->getType();
957
958 if (!CastInst::isCastable(ActTy, ParamTy))
959 return false; // Cannot transform this parameter value.
960
Chris Lattner2b9375e2010-12-20 08:36:38 +0000961 unsigned Attrs = CallerPAL.getParamAttributes(i + 1);
962 if (Attrs & Attribute::typeIncompatible(ParamTy))
Chris Lattner753a2b42010-01-05 07:32:13 +0000963 return false; // Attribute not compatible with transformed value.
Chris Lattner2b9375e2010-12-20 08:36:38 +0000964
965 // If the parameter is passed as a byval argument, then we have to have a
966 // sized type and the sized type has to have the same size as the old type.
967 if (ParamTy != ActTy && (Attrs & Attribute::ByVal)) {
968 const PointerType *ParamPTy = dyn_cast<PointerType>(ParamTy);
969 if (ParamPTy == 0 || !ParamPTy->getElementType()->isSized() || TD == 0)
970 return false;
971
972 const Type *CurElTy = cast<PointerType>(ActTy)->getElementType();
973 if (TD->getTypeAllocSize(CurElTy) !=
974 TD->getTypeAllocSize(ParamPTy->getElementType()))
975 return false;
976 }
Chris Lattner753a2b42010-01-05 07:32:13 +0000977
978 // Converting from one pointer type to another or between a pointer and an
979 // integer of the same size is safe even if we do not have a body.
980 bool isConvertible = ActTy == ParamTy ||
Duncan Sands1df98592010-02-16 11:11:14 +0000981 (TD && ((ParamTy->isPointerTy() ||
Chris Lattner753a2b42010-01-05 07:32:13 +0000982 ParamTy == TD->getIntPtrType(Caller->getContext())) &&
Duncan Sands1df98592010-02-16 11:11:14 +0000983 (ActTy->isPointerTy() ||
Chris Lattner753a2b42010-01-05 07:32:13 +0000984 ActTy == TD->getIntPtrType(Caller->getContext()))));
985 if (Callee->isDeclaration() && !isConvertible) return false;
986 }
987
Chris Lattner091b1e32011-02-24 05:10:56 +0000988 if (Callee->isDeclaration()) {
989 // Do not delete arguments unless we have a function body.
990 if (FT->getNumParams() < NumActualArgs && !FT->isVarArg())
991 return false;
Chris Lattner753a2b42010-01-05 07:32:13 +0000992
Chris Lattner091b1e32011-02-24 05:10:56 +0000993 // If the callee is just a declaration, don't change the varargsness of the
994 // call. We don't want to introduce a varargs call where one doesn't
995 // already exist.
996 const PointerType *APTy = cast<PointerType>(CS.getCalledValue()->getType());
997 if (FT->isVarArg()!=cast<FunctionType>(APTy->getElementType())->isVarArg())
998 return false;
999 }
1000
Chris Lattner753a2b42010-01-05 07:32:13 +00001001 if (FT->getNumParams() < NumActualArgs && FT->isVarArg() &&
1002 !CallerPAL.isEmpty())
1003 // In this case we have more arguments than the new function type, but we
1004 // won't be dropping them. Check that these extra arguments have attributes
1005 // that are compatible with being a vararg call argument.
1006 for (unsigned i = CallerPAL.getNumSlots(); i; --i) {
1007 if (CallerPAL.getSlot(i - 1).Index <= FT->getNumParams())
1008 break;
1009 Attributes PAttrs = CallerPAL.getSlot(i - 1).Attrs;
1010 if (PAttrs & Attribute::VarArgsIncompatible)
1011 return false;
1012 }
1013
Chris Lattner091b1e32011-02-24 05:10:56 +00001014
Chris Lattner753a2b42010-01-05 07:32:13 +00001015 // Okay, we decided that this is a safe thing to do: go ahead and start
Chris Lattner091b1e32011-02-24 05:10:56 +00001016 // inserting cast instructions as necessary.
Chris Lattner753a2b42010-01-05 07:32:13 +00001017 std::vector<Value*> Args;
1018 Args.reserve(NumActualArgs);
1019 SmallVector<AttributeWithIndex, 8> attrVec;
1020 attrVec.reserve(NumCommonArgs);
1021
1022 // Get any return attributes.
1023 Attributes RAttrs = CallerPAL.getRetAttributes();
1024
1025 // If the return value is not being used, the type may not be compatible
1026 // with the existing attributes. Wipe out any problematic attributes.
1027 RAttrs &= ~Attribute::typeIncompatible(NewRetTy);
1028
1029 // Add the new return attributes.
1030 if (RAttrs)
1031 attrVec.push_back(AttributeWithIndex::get(0, RAttrs));
1032
1033 AI = CS.arg_begin();
1034 for (unsigned i = 0; i != NumCommonArgs; ++i, ++AI) {
1035 const Type *ParamTy = FT->getParamType(i);
1036 if ((*AI)->getType() == ParamTy) {
1037 Args.push_back(*AI);
1038 } else {
1039 Instruction::CastOps opcode = CastInst::getCastOpcode(*AI,
1040 false, ParamTy, false);
1041 Args.push_back(Builder->CreateCast(opcode, *AI, ParamTy, "tmp"));
1042 }
1043
1044 // Add any parameter attributes.
1045 if (Attributes PAttrs = CallerPAL.getParamAttributes(i + 1))
1046 attrVec.push_back(AttributeWithIndex::get(i + 1, PAttrs));
1047 }
1048
1049 // If the function takes more arguments than the call was taking, add them
1050 // now.
1051 for (unsigned i = NumCommonArgs; i != FT->getNumParams(); ++i)
1052 Args.push_back(Constant::getNullValue(FT->getParamType(i)));
1053
1054 // If we are removing arguments to the function, emit an obnoxious warning.
1055 if (FT->getNumParams() < NumActualArgs) {
1056 if (!FT->isVarArg()) {
1057 errs() << "WARNING: While resolving call to function '"
1058 << Callee->getName() << "' arguments were dropped!\n";
1059 } else {
1060 // Add all of the arguments in their promoted form to the arg list.
1061 for (unsigned i = FT->getNumParams(); i != NumActualArgs; ++i, ++AI) {
1062 const Type *PTy = getPromotedType((*AI)->getType());
1063 if (PTy != (*AI)->getType()) {
1064 // Must promote to pass through va_arg area!
1065 Instruction::CastOps opcode =
1066 CastInst::getCastOpcode(*AI, false, PTy, false);
1067 Args.push_back(Builder->CreateCast(opcode, *AI, PTy, "tmp"));
1068 } else {
1069 Args.push_back(*AI);
1070 }
1071
1072 // Add any parameter attributes.
1073 if (Attributes PAttrs = CallerPAL.getParamAttributes(i + 1))
1074 attrVec.push_back(AttributeWithIndex::get(i + 1, PAttrs));
1075 }
1076 }
1077 }
1078
1079 if (Attributes FnAttrs = CallerPAL.getFnAttributes())
1080 attrVec.push_back(AttributeWithIndex::get(~0, FnAttrs));
1081
1082 if (NewRetTy->isVoidTy())
1083 Caller->setName(""); // Void type should not have a name.
1084
1085 const AttrListPtr &NewCallerPAL = AttrListPtr::get(attrVec.begin(),
1086 attrVec.end());
1087
1088 Instruction *NC;
1089 if (InvokeInst *II = dyn_cast<InvokeInst>(Caller)) {
1090 NC = InvokeInst::Create(Callee, II->getNormalDest(), II->getUnwindDest(),
1091 Args.begin(), Args.end(),
1092 Caller->getName(), Caller);
1093 cast<InvokeInst>(NC)->setCallingConv(II->getCallingConv());
1094 cast<InvokeInst>(NC)->setAttributes(NewCallerPAL);
1095 } else {
1096 NC = CallInst::Create(Callee, Args.begin(), Args.end(),
1097 Caller->getName(), Caller);
1098 CallInst *CI = cast<CallInst>(Caller);
1099 if (CI->isTailCall())
1100 cast<CallInst>(NC)->setTailCall();
1101 cast<CallInst>(NC)->setCallingConv(CI->getCallingConv());
1102 cast<CallInst>(NC)->setAttributes(NewCallerPAL);
1103 }
1104
1105 // Insert a cast of the return type as necessary.
1106 Value *NV = NC;
1107 if (OldRetTy != NV->getType() && !Caller->use_empty()) {
1108 if (!NV->getType()->isVoidTy()) {
Chris Lattnerab215bc2010-12-20 08:25:06 +00001109 Instruction::CastOps opcode =
1110 CastInst::getCastOpcode(NC, false, OldRetTy, false);
Chris Lattner753a2b42010-01-05 07:32:13 +00001111 NV = NC = CastInst::Create(opcode, NC, OldRetTy, "tmp");
1112
1113 // If this is an invoke instruction, we should insert it after the first
1114 // non-phi, instruction in the normal successor block.
1115 if (InvokeInst *II = dyn_cast<InvokeInst>(Caller)) {
1116 BasicBlock::iterator I = II->getNormalDest()->getFirstNonPHI();
1117 InsertNewInstBefore(NC, *I);
1118 } else {
Chris Lattnerab215bc2010-12-20 08:25:06 +00001119 // Otherwise, it's a call, just insert cast right after the call.
Chris Lattner753a2b42010-01-05 07:32:13 +00001120 InsertNewInstBefore(NC, *Caller);
1121 }
1122 Worklist.AddUsersToWorkList(*Caller);
1123 } else {
1124 NV = UndefValue::get(Caller->getType());
1125 }
1126 }
1127
Chris Lattner753a2b42010-01-05 07:32:13 +00001128 if (!Caller->use_empty())
1129 Caller->replaceAllUsesWith(NV);
Eric Christopher0c6a8f92010-02-03 00:21:58 +00001130
Chris Lattner753a2b42010-01-05 07:32:13 +00001131 EraseInstFromFunction(*Caller);
1132 return true;
1133}
1134
1135// transformCallThroughTrampoline - Turn a call to a function created by the
1136// init_trampoline intrinsic into a direct call to the underlying function.
1137//
1138Instruction *InstCombiner::transformCallThroughTrampoline(CallSite CS) {
1139 Value *Callee = CS.getCalledValue();
1140 const PointerType *PTy = cast<PointerType>(Callee->getType());
1141 const FunctionType *FTy = cast<FunctionType>(PTy->getElementType());
1142 const AttrListPtr &Attrs = CS.getAttributes();
1143
1144 // If the call already has the 'nest' attribute somewhere then give up -
1145 // otherwise 'nest' would occur twice after splicing in the chain.
1146 if (Attrs.hasAttrSomewhere(Attribute::Nest))
1147 return 0;
1148
1149 IntrinsicInst *Tramp =
1150 cast<IntrinsicInst>(cast<BitCastInst>(Callee)->getOperand(0));
1151
Gabor Greifa3997812010-07-22 10:37:47 +00001152 Function *NestF =cast<Function>(Tramp->getArgOperand(1)->stripPointerCasts());
Chris Lattner753a2b42010-01-05 07:32:13 +00001153 const PointerType *NestFPTy = cast<PointerType>(NestF->getType());
1154 const FunctionType *NestFTy = cast<FunctionType>(NestFPTy->getElementType());
1155
1156 const AttrListPtr &NestAttrs = NestF->getAttributes();
1157 if (!NestAttrs.isEmpty()) {
1158 unsigned NestIdx = 1;
1159 const Type *NestTy = 0;
1160 Attributes NestAttr = Attribute::None;
1161
1162 // Look for a parameter marked with the 'nest' attribute.
1163 for (FunctionType::param_iterator I = NestFTy->param_begin(),
1164 E = NestFTy->param_end(); I != E; ++NestIdx, ++I)
1165 if (NestAttrs.paramHasAttr(NestIdx, Attribute::Nest)) {
1166 // Record the parameter type and any other attributes.
1167 NestTy = *I;
1168 NestAttr = NestAttrs.getParamAttributes(NestIdx);
1169 break;
1170 }
1171
1172 if (NestTy) {
1173 Instruction *Caller = CS.getInstruction();
1174 std::vector<Value*> NewArgs;
1175 NewArgs.reserve(unsigned(CS.arg_end()-CS.arg_begin())+1);
1176
1177 SmallVector<AttributeWithIndex, 8> NewAttrs;
1178 NewAttrs.reserve(Attrs.getNumSlots() + 1);
1179
1180 // Insert the nest argument into the call argument list, which may
1181 // mean appending it. Likewise for attributes.
1182
1183 // Add any result attributes.
1184 if (Attributes Attr = Attrs.getRetAttributes())
1185 NewAttrs.push_back(AttributeWithIndex::get(0, Attr));
1186
1187 {
1188 unsigned Idx = 1;
1189 CallSite::arg_iterator I = CS.arg_begin(), E = CS.arg_end();
1190 do {
1191 if (Idx == NestIdx) {
1192 // Add the chain argument and attributes.
Gabor Greifcea7ac72010-06-24 12:58:35 +00001193 Value *NestVal = Tramp->getArgOperand(2);
Chris Lattner753a2b42010-01-05 07:32:13 +00001194 if (NestVal->getType() != NestTy)
1195 NestVal = new BitCastInst(NestVal, NestTy, "nest", Caller);
1196 NewArgs.push_back(NestVal);
1197 NewAttrs.push_back(AttributeWithIndex::get(NestIdx, NestAttr));
1198 }
1199
1200 if (I == E)
1201 break;
1202
1203 // Add the original argument and attributes.
1204 NewArgs.push_back(*I);
1205 if (Attributes Attr = Attrs.getParamAttributes(Idx))
1206 NewAttrs.push_back
1207 (AttributeWithIndex::get(Idx + (Idx >= NestIdx), Attr));
1208
1209 ++Idx, ++I;
1210 } while (1);
1211 }
1212
1213 // Add any function attributes.
1214 if (Attributes Attr = Attrs.getFnAttributes())
1215 NewAttrs.push_back(AttributeWithIndex::get(~0, Attr));
1216
1217 // The trampoline may have been bitcast to a bogus type (FTy).
1218 // Handle this by synthesizing a new function type, equal to FTy
1219 // with the chain parameter inserted.
1220
1221 std::vector<const Type*> NewTypes;
1222 NewTypes.reserve(FTy->getNumParams()+1);
1223
1224 // Insert the chain's type into the list of parameter types, which may
1225 // mean appending it.
1226 {
1227 unsigned Idx = 1;
1228 FunctionType::param_iterator I = FTy->param_begin(),
1229 E = FTy->param_end();
1230
1231 do {
1232 if (Idx == NestIdx)
1233 // Add the chain's type.
1234 NewTypes.push_back(NestTy);
1235
1236 if (I == E)
1237 break;
1238
1239 // Add the original type.
1240 NewTypes.push_back(*I);
1241
1242 ++Idx, ++I;
1243 } while (1);
1244 }
1245
1246 // Replace the trampoline call with a direct call. Let the generic
1247 // code sort out any function type mismatches.
Eric Christopher0c6a8f92010-02-03 00:21:58 +00001248 FunctionType *NewFTy = FunctionType::get(FTy->getReturnType(), NewTypes,
Chris Lattner753a2b42010-01-05 07:32:13 +00001249 FTy->isVarArg());
1250 Constant *NewCallee =
1251 NestF->getType() == PointerType::getUnqual(NewFTy) ?
Eric Christopher0c6a8f92010-02-03 00:21:58 +00001252 NestF : ConstantExpr::getBitCast(NestF,
Chris Lattner753a2b42010-01-05 07:32:13 +00001253 PointerType::getUnqual(NewFTy));
1254 const AttrListPtr &NewPAL = AttrListPtr::get(NewAttrs.begin(),
1255 NewAttrs.end());
1256
1257 Instruction *NewCaller;
1258 if (InvokeInst *II = dyn_cast<InvokeInst>(Caller)) {
1259 NewCaller = InvokeInst::Create(NewCallee,
1260 II->getNormalDest(), II->getUnwindDest(),
1261 NewArgs.begin(), NewArgs.end(),
1262 Caller->getName(), Caller);
1263 cast<InvokeInst>(NewCaller)->setCallingConv(II->getCallingConv());
1264 cast<InvokeInst>(NewCaller)->setAttributes(NewPAL);
1265 } else {
1266 NewCaller = CallInst::Create(NewCallee, NewArgs.begin(), NewArgs.end(),
1267 Caller->getName(), Caller);
1268 if (cast<CallInst>(Caller)->isTailCall())
1269 cast<CallInst>(NewCaller)->setTailCall();
1270 cast<CallInst>(NewCaller)->
1271 setCallingConv(cast<CallInst>(Caller)->getCallingConv());
1272 cast<CallInst>(NewCaller)->setAttributes(NewPAL);
1273 }
1274 if (!Caller->getType()->isVoidTy())
1275 Caller->replaceAllUsesWith(NewCaller);
1276 Caller->eraseFromParent();
1277 Worklist.Remove(Caller);
1278 return 0;
1279 }
1280 }
1281
1282 // Replace the trampoline call with a direct call. Since there is no 'nest'
1283 // parameter, there is no need to adjust the argument list. Let the generic
1284 // code sort out any function type mismatches.
1285 Constant *NewCallee =
Eric Christopher0c6a8f92010-02-03 00:21:58 +00001286 NestF->getType() == PTy ? NestF :
Chris Lattner753a2b42010-01-05 07:32:13 +00001287 ConstantExpr::getBitCast(NestF, PTy);
1288 CS.setCalledFunction(NewCallee);
1289 return CS.getInstruction();
1290}
Eric Christopher0c6a8f92010-02-03 00:21:58 +00001291