1 //===-- Instructions.cpp - Implement the LLVM instructions ----------------===// 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 all of the non-inline methods for the LLVM instruction 11 // classes. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "llvm/IR/Instructions.h" 16 #include "LLVMContextImpl.h" 17 #include "llvm/IR/Constants.h" 18 #include "llvm/IR/DataLayout.h" 19 #include "llvm/IR/DerivedTypes.h" 20 #include "llvm/IR/Function.h" 21 #include "llvm/IR/Module.h" 22 #include "llvm/IR/Operator.h" 23 #include "llvm/Support/CallSite.h" 24 #include "llvm/Support/ConstantRange.h" 25 #include "llvm/Support/ErrorHandling.h" 26 #include "llvm/Support/MathExtras.h" 27 using namespace llvm; 28 29 //===----------------------------------------------------------------------===// 30 // CallSite Class 31 //===----------------------------------------------------------------------===// 32 33 User::op_iterator CallSite::getCallee() const { 34 Instruction *II(getInstruction()); 35 return isCall() 36 ? cast<CallInst>(II)->op_end() - 1 // Skip Callee 37 : cast<InvokeInst>(II)->op_end() - 3; // Skip BB, BB, Callee 38 } 39 40 //===----------------------------------------------------------------------===// 41 // TerminatorInst Class 42 //===----------------------------------------------------------------------===// 43 44 // Out of line virtual method, so the vtable, etc has a home. 45 TerminatorInst::~TerminatorInst() { 46 } 47 48 //===----------------------------------------------------------------------===// 49 // UnaryInstruction Class 50 //===----------------------------------------------------------------------===// 51 52 // Out of line virtual method, so the vtable, etc has a home. 53 UnaryInstruction::~UnaryInstruction() { 54 } 55 56 //===----------------------------------------------------------------------===// 57 // SelectInst Class 58 //===----------------------------------------------------------------------===// 59 60 /// areInvalidOperands - Return a string if the specified operands are invalid 61 /// for a select operation, otherwise return null. 62 const char *SelectInst::areInvalidOperands(Value *Op0, Value *Op1, Value *Op2) { 63 if (Op1->getType() != Op2->getType()) 64 return "both values to select must have same type"; 65 66 if (VectorType *VT = dyn_cast<VectorType>(Op0->getType())) { 67 // Vector select. 68 if (VT->getElementType() != Type::getInt1Ty(Op0->getContext())) 69 return "vector select condition element type must be i1"; 70 VectorType *ET = dyn_cast<VectorType>(Op1->getType()); 71 if (ET == 0) 72 return "selected values for vector select must be vectors"; 73 if (ET->getNumElements() != VT->getNumElements()) 74 return "vector select requires selected vectors to have " 75 "the same vector length as select condition"; 76 } else if (Op0->getType() != Type::getInt1Ty(Op0->getContext())) { 77 return "select condition must be i1 or <n x i1>"; 78 } 79 return 0; 80 } 81 82 83 //===----------------------------------------------------------------------===// 84 // PHINode Class 85 //===----------------------------------------------------------------------===// 86 87 PHINode::PHINode(const PHINode &PN) 88 : Instruction(PN.getType(), Instruction::PHI, 89 allocHungoffUses(PN.getNumOperands()), PN.getNumOperands()), 90 ReservedSpace(PN.getNumOperands()) { 91 std::copy(PN.op_begin(), PN.op_end(), op_begin()); 92 std::copy(PN.block_begin(), PN.block_end(), block_begin()); 93 SubclassOptionalData = PN.SubclassOptionalData; 94 } 95 96 PHINode::~PHINode() { 97 dropHungoffUses(); 98 } 99 100 Use *PHINode::allocHungoffUses(unsigned N) const { 101 // Allocate the array of Uses of the incoming values, followed by a pointer 102 // (with bottom bit set) to the User, followed by the array of pointers to 103 // the incoming basic blocks. 104 size_t size = N * sizeof(Use) + sizeof(Use::UserRef) 105 + N * sizeof(BasicBlock*); 106 Use *Begin = static_cast<Use*>(::operator new(size)); 107 Use *End = Begin + N; 108 (void) new(End) Use::UserRef(const_cast<PHINode*>(this), 1); 109 return Use::initTags(Begin, End); 110 } 111 112 // removeIncomingValue - Remove an incoming value. This is useful if a 113 // predecessor basic block is deleted. 114 Value *PHINode::removeIncomingValue(unsigned Idx, bool DeletePHIIfEmpty) { 115 Value *Removed = getIncomingValue(Idx); 116 117 // Move everything after this operand down. 118 // 119 // FIXME: we could just swap with the end of the list, then erase. However, 120 // clients might not expect this to happen. The code as it is thrashes the 121 // use/def lists, which is kinda lame. 122 std::copy(op_begin() + Idx + 1, op_end(), op_begin() + Idx); 123 std::copy(block_begin() + Idx + 1, block_end(), block_begin() + Idx); 124 125 // Nuke the last value. 126 Op<-1>().set(0); 127 --NumOperands; 128 129 // If the PHI node is dead, because it has zero entries, nuke it now. 130 if (getNumOperands() == 0 && DeletePHIIfEmpty) { 131 // If anyone is using this PHI, make them use a dummy value instead... 132 replaceAllUsesWith(UndefValue::get(getType())); 133 eraseFromParent(); 134 } 135 return Removed; 136 } 137 138 /// growOperands - grow operands - This grows the operand list in response 139 /// to a push_back style of operation. This grows the number of ops by 1.5 140 /// times. 141 /// 142 void PHINode::growOperands() { 143 unsigned e = getNumOperands(); 144 unsigned NumOps = e + e / 2; 145 if (NumOps < 2) NumOps = 2; // 2 op PHI nodes are VERY common. 146 147 Use *OldOps = op_begin(); 148 BasicBlock **OldBlocks = block_begin(); 149 150 ReservedSpace = NumOps; 151 OperandList = allocHungoffUses(ReservedSpace); 152 153 std::copy(OldOps, OldOps + e, op_begin()); 154 std::copy(OldBlocks, OldBlocks + e, block_begin()); 155 156 Use::zap(OldOps, OldOps + e, true); 157 } 158 159 /// hasConstantValue - If the specified PHI node always merges together the same 160 /// value, return the value, otherwise return null. 161 Value *PHINode::hasConstantValue() const { 162 // Exploit the fact that phi nodes always have at least one entry. 163 Value *ConstantValue = getIncomingValue(0); 164 for (unsigned i = 1, e = getNumIncomingValues(); i != e; ++i) 165 if (getIncomingValue(i) != ConstantValue && getIncomingValue(i) != this) { 166 if (ConstantValue != this) 167 return 0; // Incoming values not all the same. 168 // The case where the first value is this PHI. 169 ConstantValue = getIncomingValue(i); 170 } 171 if (ConstantValue == this) 172 return UndefValue::get(getType()); 173 return ConstantValue; 174 } 175 176 //===----------------------------------------------------------------------===// 177 // LandingPadInst Implementation 178 //===----------------------------------------------------------------------===// 179 180 LandingPadInst::LandingPadInst(Type *RetTy, Value *PersonalityFn, 181 unsigned NumReservedValues, const Twine &NameStr, 182 Instruction *InsertBefore) 183 : Instruction(RetTy, Instruction::LandingPad, 0, 0, InsertBefore) { 184 init(PersonalityFn, 1 + NumReservedValues, NameStr); 185 } 186 187 LandingPadInst::LandingPadInst(Type *RetTy, Value *PersonalityFn, 188 unsigned NumReservedValues, const Twine &NameStr, 189 BasicBlock *InsertAtEnd) 190 : Instruction(RetTy, Instruction::LandingPad, 0, 0, InsertAtEnd) { 191 init(PersonalityFn, 1 + NumReservedValues, NameStr); 192 } 193 194 LandingPadInst::LandingPadInst(const LandingPadInst &LP) 195 : Instruction(LP.getType(), Instruction::LandingPad, 196 allocHungoffUses(LP.getNumOperands()), LP.getNumOperands()), 197 ReservedSpace(LP.getNumOperands()) { 198 Use *OL = OperandList, *InOL = LP.OperandList; 199 for (unsigned I = 0, E = ReservedSpace; I != E; ++I) 200 OL[I] = InOL[I]; 201 202 setCleanup(LP.isCleanup()); 203 } 204 205 LandingPadInst::~LandingPadInst() { 206 dropHungoffUses(); 207 } 208 209 LandingPadInst *LandingPadInst::Create(Type *RetTy, Value *PersonalityFn, 210 unsigned NumReservedClauses, 211 const Twine &NameStr, 212 Instruction *InsertBefore) { 213 return new LandingPadInst(RetTy, PersonalityFn, NumReservedClauses, NameStr, 214 InsertBefore); 215 } 216 217 LandingPadInst *LandingPadInst::Create(Type *RetTy, Value *PersonalityFn, 218 unsigned NumReservedClauses, 219 const Twine &NameStr, 220 BasicBlock *InsertAtEnd) { 221 return new LandingPadInst(RetTy, PersonalityFn, NumReservedClauses, NameStr, 222 InsertAtEnd); 223 } 224 225 void LandingPadInst::init(Value *PersFn, unsigned NumReservedValues, 226 const Twine &NameStr) { 227 ReservedSpace = NumReservedValues; 228 NumOperands = 1; 229 OperandList = allocHungoffUses(ReservedSpace); 230 OperandList[0] = PersFn; 231 setName(NameStr); 232 setCleanup(false); 233 } 234 235 /// growOperands - grow operands - This grows the operand list in response to a 236 /// push_back style of operation. This grows the number of ops by 2 times. 237 void LandingPadInst::growOperands(unsigned Size) { 238 unsigned e = getNumOperands(); 239 if (ReservedSpace >= e + Size) return; 240 ReservedSpace = (e + Size / 2) * 2; 241 242 Use *NewOps = allocHungoffUses(ReservedSpace); 243 Use *OldOps = OperandList; 244 for (unsigned i = 0; i != e; ++i) 245 NewOps[i] = OldOps[i]; 246 247 OperandList = NewOps; 248 Use::zap(OldOps, OldOps + e, true); 249 } 250 251 void LandingPadInst::addClause(Value *Val) { 252 unsigned OpNo = getNumOperands(); 253 growOperands(1); 254 assert(OpNo < ReservedSpace && "Growing didn't work!"); 255 ++NumOperands; 256 OperandList[OpNo] = Val; 257 } 258 259 //===----------------------------------------------------------------------===// 260 // CallInst Implementation 261 //===----------------------------------------------------------------------===// 262 263 CallInst::~CallInst() { 264 } 265 266 void CallInst::init(Value *Func, ArrayRef<Value *> Args, const Twine &NameStr) { 267 assert(NumOperands == Args.size() + 1 && "NumOperands not set up?"); 268 Op<-1>() = Func; 269 270 #ifndef NDEBUG 271 FunctionType *FTy = 272 cast<FunctionType>(cast<PointerType>(Func->getType())->getElementType()); 273 274 assert((Args.size() == FTy->getNumParams() || 275 (FTy->isVarArg() && Args.size() > FTy->getNumParams())) && 276 "Calling a function with bad signature!"); 277 278 for (unsigned i = 0; i != Args.size(); ++i) 279 assert((i >= FTy->getNumParams() || 280 FTy->getParamType(i) == Args[i]->getType()) && 281 "Calling a function with a bad signature!"); 282 #endif 283 284 std::copy(Args.begin(), Args.end(), op_begin()); 285 setName(NameStr); 286 } 287 288 void CallInst::init(Value *Func, const Twine &NameStr) { 289 assert(NumOperands == 1 && "NumOperands not set up?"); 290 Op<-1>() = Func; 291 292 #ifndef NDEBUG 293 FunctionType *FTy = 294 cast<FunctionType>(cast<PointerType>(Func->getType())->getElementType()); 295 296 assert(FTy->getNumParams() == 0 && "Calling a function with bad signature"); 297 #endif 298 299 setName(NameStr); 300 } 301 302 CallInst::CallInst(Value *Func, const Twine &Name, 303 Instruction *InsertBefore) 304 : Instruction(cast<FunctionType>(cast<PointerType>(Func->getType()) 305 ->getElementType())->getReturnType(), 306 Instruction::Call, 307 OperandTraits<CallInst>::op_end(this) - 1, 308 1, InsertBefore) { 309 init(Func, Name); 310 } 311 312 CallInst::CallInst(Value *Func, const Twine &Name, 313 BasicBlock *InsertAtEnd) 314 : Instruction(cast<FunctionType>(cast<PointerType>(Func->getType()) 315 ->getElementType())->getReturnType(), 316 Instruction::Call, 317 OperandTraits<CallInst>::op_end(this) - 1, 318 1, InsertAtEnd) { 319 init(Func, Name); 320 } 321 322 CallInst::CallInst(const CallInst &CI) 323 : Instruction(CI.getType(), Instruction::Call, 324 OperandTraits<CallInst>::op_end(this) - CI.getNumOperands(), 325 CI.getNumOperands()) { 326 setAttributes(CI.getAttributes()); 327 setTailCall(CI.isTailCall()); 328 setCallingConv(CI.getCallingConv()); 329 330 std::copy(CI.op_begin(), CI.op_end(), op_begin()); 331 SubclassOptionalData = CI.SubclassOptionalData; 332 } 333 334 void CallInst::addAttribute(unsigned i, Attribute::AttrKind attr) { 335 AttributeSet PAL = getAttributes(); 336 PAL = PAL.addAttribute(getContext(), i, attr); 337 setAttributes(PAL); 338 } 339 340 void CallInst::removeAttribute(unsigned i, Attribute attr) { 341 AttributeSet PAL = getAttributes(); 342 AttrBuilder B(attr); 343 LLVMContext &Context = getContext(); 344 PAL = PAL.removeAttributes(Context, i, 345 AttributeSet::get(Context, i, B)); 346 setAttributes(PAL); 347 } 348 349 bool CallInst::hasFnAttrImpl(Attribute::AttrKind A) const { 350 if (AttributeList.hasAttribute(AttributeSet::FunctionIndex, A)) 351 return true; 352 if (const Function *F = getCalledFunction()) 353 return F->getAttributes().hasAttribute(AttributeSet::FunctionIndex, A); 354 return false; 355 } 356 357 bool CallInst::paramHasAttr(unsigned i, Attribute::AttrKind A) const { 358 if (AttributeList.hasAttribute(i, A)) 359 return true; 360 if (const Function *F = getCalledFunction()) 361 return F->getAttributes().hasAttribute(i, A); 362 return false; 363 } 364 365 /// IsConstantOne - Return true only if val is constant int 1 366 static bool IsConstantOne(Value *val) { 367 assert(val && "IsConstantOne does not work with NULL val"); 368 return isa<ConstantInt>(val) && cast<ConstantInt>(val)->isOne(); 369 } 370 371 static Instruction *createMalloc(Instruction *InsertBefore, 372 BasicBlock *InsertAtEnd, Type *IntPtrTy, 373 Type *AllocTy, Value *AllocSize, 374 Value *ArraySize, Function *MallocF, 375 const Twine &Name) { 376 assert(((!InsertBefore && InsertAtEnd) || (InsertBefore && !InsertAtEnd)) && 377 "createMalloc needs either InsertBefore or InsertAtEnd"); 378 379 // malloc(type) becomes: 380 // bitcast (i8* malloc(typeSize)) to type* 381 // malloc(type, arraySize) becomes: 382 // bitcast (i8 *malloc(typeSize*arraySize)) to type* 383 if (!ArraySize) 384 ArraySize = ConstantInt::get(IntPtrTy, 1); 385 else if (ArraySize->getType() != IntPtrTy) { 386 if (InsertBefore) 387 ArraySize = CastInst::CreateIntegerCast(ArraySize, IntPtrTy, false, 388 "", InsertBefore); 389 else 390 ArraySize = CastInst::CreateIntegerCast(ArraySize, IntPtrTy, false, 391 "", InsertAtEnd); 392 } 393 394 if (!IsConstantOne(ArraySize)) { 395 if (IsConstantOne(AllocSize)) { 396 AllocSize = ArraySize; // Operand * 1 = Operand 397 } else if (Constant *CO = dyn_cast<Constant>(ArraySize)) { 398 Constant *Scale = ConstantExpr::getIntegerCast(CO, IntPtrTy, 399 false /*ZExt*/); 400 // Malloc arg is constant product of type size and array size 401 AllocSize = ConstantExpr::getMul(Scale, cast<Constant>(AllocSize)); 402 } else { 403 // Multiply type size by the array size... 404 if (InsertBefore) 405 AllocSize = BinaryOperator::CreateMul(ArraySize, AllocSize, 406 "mallocsize", InsertBefore); 407 else 408 AllocSize = BinaryOperator::CreateMul(ArraySize, AllocSize, 409 "mallocsize", InsertAtEnd); 410 } 411 } 412 413 assert(AllocSize->getType() == IntPtrTy && "malloc arg is wrong size"); 414 // Create the call to Malloc. 415 BasicBlock* BB = InsertBefore ? InsertBefore->getParent() : InsertAtEnd; 416 Module* M = BB->getParent()->getParent(); 417 Type *BPTy = Type::getInt8PtrTy(BB->getContext()); 418 Value *MallocFunc = MallocF; 419 if (!MallocFunc) 420 // prototype malloc as "void *malloc(size_t)" 421 MallocFunc = M->getOrInsertFunction("malloc", BPTy, IntPtrTy, NULL); 422 PointerType *AllocPtrType = PointerType::getUnqual(AllocTy); 423 CallInst *MCall = NULL; 424 Instruction *Result = NULL; 425 if (InsertBefore) { 426 MCall = CallInst::Create(MallocFunc, AllocSize, "malloccall", InsertBefore); 427 Result = MCall; 428 if (Result->getType() != AllocPtrType) 429 // Create a cast instruction to convert to the right type... 430 Result = new BitCastInst(MCall, AllocPtrType, Name, InsertBefore); 431 } else { 432 MCall = CallInst::Create(MallocFunc, AllocSize, "malloccall"); 433 Result = MCall; 434 if (Result->getType() != AllocPtrType) { 435 InsertAtEnd->getInstList().push_back(MCall); 436 // Create a cast instruction to convert to the right type... 437 Result = new BitCastInst(MCall, AllocPtrType, Name); 438 } 439 } 440 MCall->setTailCall(); 441 if (Function *F = dyn_cast<Function>(MallocFunc)) { 442 MCall->setCallingConv(F->getCallingConv()); 443 if (!F->doesNotAlias(0)) F->setDoesNotAlias(0); 444 } 445 assert(!MCall->getType()->isVoidTy() && "Malloc has void return type"); 446 447 return Result; 448 } 449 450 /// CreateMalloc - Generate the IR for a call to malloc: 451 /// 1. Compute the malloc call's argument as the specified type's size, 452 /// possibly multiplied by the array size if the array size is not 453 /// constant 1. 454 /// 2. Call malloc with that argument. 455 /// 3. Bitcast the result of the malloc call to the specified type. 456 Instruction *CallInst::CreateMalloc(Instruction *InsertBefore, 457 Type *IntPtrTy, Type *AllocTy, 458 Value *AllocSize, Value *ArraySize, 459 Function * MallocF, 460 const Twine &Name) { 461 return createMalloc(InsertBefore, NULL, IntPtrTy, AllocTy, AllocSize, 462 ArraySize, MallocF, Name); 463 } 464 465 /// CreateMalloc - Generate the IR for a call to malloc: 466 /// 1. Compute the malloc call's argument as the specified type's size, 467 /// possibly multiplied by the array size if the array size is not 468 /// constant 1. 469 /// 2. Call malloc with that argument. 470 /// 3. Bitcast the result of the malloc call to the specified type. 471 /// Note: This function does not add the bitcast to the basic block, that is the 472 /// responsibility of the caller. 473 Instruction *CallInst::CreateMalloc(BasicBlock *InsertAtEnd, 474 Type *IntPtrTy, Type *AllocTy, 475 Value *AllocSize, Value *ArraySize, 476 Function *MallocF, const Twine &Name) { 477 return createMalloc(NULL, InsertAtEnd, IntPtrTy, AllocTy, AllocSize, 478 ArraySize, MallocF, Name); 479 } 480 481 static Instruction* createFree(Value* Source, Instruction *InsertBefore, 482 BasicBlock *InsertAtEnd) { 483 assert(((!InsertBefore && InsertAtEnd) || (InsertBefore && !InsertAtEnd)) && 484 "createFree needs either InsertBefore or InsertAtEnd"); 485 assert(Source->getType()->isPointerTy() && 486 "Can not free something of nonpointer type!"); 487 488 BasicBlock* BB = InsertBefore ? InsertBefore->getParent() : InsertAtEnd; 489 Module* M = BB->getParent()->getParent(); 490 491 Type *VoidTy = Type::getVoidTy(M->getContext()); 492 Type *IntPtrTy = Type::getInt8PtrTy(M->getContext()); 493 // prototype free as "void free(void*)" 494 Value *FreeFunc = M->getOrInsertFunction("free", VoidTy, IntPtrTy, NULL); 495 CallInst* Result = NULL; 496 Value *PtrCast = Source; 497 if (InsertBefore) { 498 if (Source->getType() != IntPtrTy) 499 PtrCast = new BitCastInst(Source, IntPtrTy, "", InsertBefore); 500 Result = CallInst::Create(FreeFunc, PtrCast, "", InsertBefore); 501 } else { 502 if (Source->getType() != IntPtrTy) 503 PtrCast = new BitCastInst(Source, IntPtrTy, "", InsertAtEnd); 504 Result = CallInst::Create(FreeFunc, PtrCast, ""); 505 } 506 Result->setTailCall(); 507 if (Function *F = dyn_cast<Function>(FreeFunc)) 508 Result->setCallingConv(F->getCallingConv()); 509 510 return Result; 511 } 512 513 /// CreateFree - Generate the IR for a call to the builtin free function. 514 Instruction * CallInst::CreateFree(Value* Source, Instruction *InsertBefore) { 515 return createFree(Source, InsertBefore, NULL); 516 } 517 518 /// CreateFree - Generate the IR for a call to the builtin free function. 519 /// Note: This function does not add the call to the basic block, that is the 520 /// responsibility of the caller. 521 Instruction* CallInst::CreateFree(Value* Source, BasicBlock *InsertAtEnd) { 522 Instruction* FreeCall = createFree(Source, NULL, InsertAtEnd); 523 assert(FreeCall && "CreateFree did not create a CallInst"); 524 return FreeCall; 525 } 526 527 //===----------------------------------------------------------------------===// 528 // InvokeInst Implementation 529 //===----------------------------------------------------------------------===// 530 531 void InvokeInst::init(Value *Fn, BasicBlock *IfNormal, BasicBlock *IfException, 532 ArrayRef<Value *> Args, const Twine &NameStr) { 533 assert(NumOperands == 3 + Args.size() && "NumOperands not set up?"); 534 Op<-3>() = Fn; 535 Op<-2>() = IfNormal; 536 Op<-1>() = IfException; 537 538 #ifndef NDEBUG 539 FunctionType *FTy = 540 cast<FunctionType>(cast<PointerType>(Fn->getType())->getElementType()); 541 542 assert(((Args.size() == FTy->getNumParams()) || 543 (FTy->isVarArg() && Args.size() > FTy->getNumParams())) && 544 "Invoking a function with bad signature"); 545 546 for (unsigned i = 0, e = Args.size(); i != e; i++) 547 assert((i >= FTy->getNumParams() || 548 FTy->getParamType(i) == Args[i]->getType()) && 549 "Invoking a function with a bad signature!"); 550 #endif 551 552 std::copy(Args.begin(), Args.end(), op_begin()); 553 setName(NameStr); 554 } 555 556 InvokeInst::InvokeInst(const InvokeInst &II) 557 : TerminatorInst(II.getType(), Instruction::Invoke, 558 OperandTraits<InvokeInst>::op_end(this) 559 - II.getNumOperands(), 560 II.getNumOperands()) { 561 setAttributes(II.getAttributes()); 562 setCallingConv(II.getCallingConv()); 563 std::copy(II.op_begin(), II.op_end(), op_begin()); 564 SubclassOptionalData = II.SubclassOptionalData; 565 } 566 567 BasicBlock *InvokeInst::getSuccessorV(unsigned idx) const { 568 return getSuccessor(idx); 569 } 570 unsigned InvokeInst::getNumSuccessorsV() const { 571 return getNumSuccessors(); 572 } 573 void InvokeInst::setSuccessorV(unsigned idx, BasicBlock *B) { 574 return setSuccessor(idx, B); 575 } 576 577 bool InvokeInst::hasFnAttrImpl(Attribute::AttrKind A) const { 578 if (AttributeList.hasAttribute(AttributeSet::FunctionIndex, A)) 579 return true; 580 if (const Function *F = getCalledFunction()) 581 return F->getAttributes().hasAttribute(AttributeSet::FunctionIndex, A); 582 return false; 583 } 584 585 bool InvokeInst::paramHasAttr(unsigned i, Attribute::AttrKind A) const { 586 if (AttributeList.hasAttribute(i, A)) 587 return true; 588 if (const Function *F = getCalledFunction()) 589 return F->getAttributes().hasAttribute(i, A); 590 return false; 591 } 592 593 void InvokeInst::addAttribute(unsigned i, Attribute::AttrKind attr) { 594 AttributeSet PAL = getAttributes(); 595 PAL = PAL.addAttribute(getContext(), i, attr); 596 setAttributes(PAL); 597 } 598 599 void InvokeInst::removeAttribute(unsigned i, Attribute attr) { 600 AttributeSet PAL = getAttributes(); 601 AttrBuilder B(attr); 602 PAL = PAL.removeAttributes(getContext(), i, 603 AttributeSet::get(getContext(), i, B)); 604 setAttributes(PAL); 605 } 606 607 LandingPadInst *InvokeInst::getLandingPadInst() const { 608 return cast<LandingPadInst>(getUnwindDest()->getFirstNonPHI()); 609 } 610 611 //===----------------------------------------------------------------------===// 612 // ReturnInst Implementation 613 //===----------------------------------------------------------------------===// 614 615 ReturnInst::ReturnInst(const ReturnInst &RI) 616 : TerminatorInst(Type::getVoidTy(RI.getContext()), Instruction::Ret, 617 OperandTraits<ReturnInst>::op_end(this) - 618 RI.getNumOperands(), 619 RI.getNumOperands()) { 620 if (RI.getNumOperands()) 621 Op<0>() = RI.Op<0>(); 622 SubclassOptionalData = RI.SubclassOptionalData; 623 } 624 625 ReturnInst::ReturnInst(LLVMContext &C, Value *retVal, Instruction *InsertBefore) 626 : TerminatorInst(Type::getVoidTy(C), Instruction::Ret, 627 OperandTraits<ReturnInst>::op_end(this) - !!retVal, !!retVal, 628 InsertBefore) { 629 if (retVal) 630 Op<0>() = retVal; 631 } 632 ReturnInst::ReturnInst(LLVMContext &C, Value *retVal, BasicBlock *InsertAtEnd) 633 : TerminatorInst(Type::getVoidTy(C), Instruction::Ret, 634 OperandTraits<ReturnInst>::op_end(this) - !!retVal, !!retVal, 635 InsertAtEnd) { 636 if (retVal) 637 Op<0>() = retVal; 638 } 639 ReturnInst::ReturnInst(LLVMContext &Context, BasicBlock *InsertAtEnd) 640 : TerminatorInst(Type::getVoidTy(Context), Instruction::Ret, 641 OperandTraits<ReturnInst>::op_end(this), 0, InsertAtEnd) { 642 } 643 644 unsigned ReturnInst::getNumSuccessorsV() const { 645 return getNumSuccessors(); 646 } 647 648 /// Out-of-line ReturnInst method, put here so the C++ compiler can choose to 649 /// emit the vtable for the class in this translation unit. 650 void ReturnInst::setSuccessorV(unsigned idx, BasicBlock *NewSucc) { 651 llvm_unreachable("ReturnInst has no successors!"); 652 } 653 654 BasicBlock *ReturnInst::getSuccessorV(unsigned idx) const { 655 llvm_unreachable("ReturnInst has no successors!"); 656 } 657 658 ReturnInst::~ReturnInst() { 659 } 660 661 //===----------------------------------------------------------------------===// 662 // ResumeInst Implementation 663 //===----------------------------------------------------------------------===// 664 665 ResumeInst::ResumeInst(const ResumeInst &RI) 666 : TerminatorInst(Type::getVoidTy(RI.getContext()), Instruction::Resume, 667 OperandTraits<ResumeInst>::op_begin(this), 1) { 668 Op<0>() = RI.Op<0>(); 669 } 670 671 ResumeInst::ResumeInst(Value *Exn, Instruction *InsertBefore) 672 : TerminatorInst(Type::getVoidTy(Exn->getContext()), Instruction::Resume, 673 OperandTraits<ResumeInst>::op_begin(this), 1, InsertBefore) { 674 Op<0>() = Exn; 675 } 676 677 ResumeInst::ResumeInst(Value *Exn, BasicBlock *InsertAtEnd) 678 : TerminatorInst(Type::getVoidTy(Exn->getContext()), Instruction::Resume, 679 OperandTraits<ResumeInst>::op_begin(this), 1, InsertAtEnd) { 680 Op<0>() = Exn; 681 } 682 683 unsigned ResumeInst::getNumSuccessorsV() const { 684 return getNumSuccessors(); 685 } 686 687 void ResumeInst::setSuccessorV(unsigned idx, BasicBlock *NewSucc) { 688 llvm_unreachable("ResumeInst has no successors!"); 689 } 690 691 BasicBlock *ResumeInst::getSuccessorV(unsigned idx) const { 692 llvm_unreachable("ResumeInst has no successors!"); 693 } 694 695 //===----------------------------------------------------------------------===// 696 // UnreachableInst Implementation 697 //===----------------------------------------------------------------------===// 698 699 UnreachableInst::UnreachableInst(LLVMContext &Context, 700 Instruction *InsertBefore) 701 : TerminatorInst(Type::getVoidTy(Context), Instruction::Unreachable, 702 0, 0, InsertBefore) { 703 } 704 UnreachableInst::UnreachableInst(LLVMContext &Context, BasicBlock *InsertAtEnd) 705 : TerminatorInst(Type::getVoidTy(Context), Instruction::Unreachable, 706 0, 0, InsertAtEnd) { 707 } 708 709 unsigned UnreachableInst::getNumSuccessorsV() const { 710 return getNumSuccessors(); 711 } 712 713 void UnreachableInst::setSuccessorV(unsigned idx, BasicBlock *NewSucc) { 714 llvm_unreachable("UnreachableInst has no successors!"); 715 } 716 717 BasicBlock *UnreachableInst::getSuccessorV(unsigned idx) const { 718 llvm_unreachable("UnreachableInst has no successors!"); 719 } 720 721 //===----------------------------------------------------------------------===// 722 // BranchInst Implementation 723 //===----------------------------------------------------------------------===// 724 725 void BranchInst::AssertOK() { 726 if (isConditional()) 727 assert(getCondition()->getType()->isIntegerTy(1) && 728 "May only branch on boolean predicates!"); 729 } 730 731 BranchInst::BranchInst(BasicBlock *IfTrue, Instruction *InsertBefore) 732 : TerminatorInst(Type::getVoidTy(IfTrue->getContext()), Instruction::Br, 733 OperandTraits<BranchInst>::op_end(this) - 1, 734 1, InsertBefore) { 735 assert(IfTrue != 0 && "Branch destination may not be null!"); 736 Op<-1>() = IfTrue; 737 } 738 BranchInst::BranchInst(BasicBlock *IfTrue, BasicBlock *IfFalse, Value *Cond, 739 Instruction *InsertBefore) 740 : TerminatorInst(Type::getVoidTy(IfTrue->getContext()), Instruction::Br, 741 OperandTraits<BranchInst>::op_end(this) - 3, 742 3, InsertBefore) { 743 Op<-1>() = IfTrue; 744 Op<-2>() = IfFalse; 745 Op<-3>() = Cond; 746 #ifndef NDEBUG 747 AssertOK(); 748 #endif 749 } 750 751 BranchInst::BranchInst(BasicBlock *IfTrue, BasicBlock *InsertAtEnd) 752 : TerminatorInst(Type::getVoidTy(IfTrue->getContext()), Instruction::Br, 753 OperandTraits<BranchInst>::op_end(this) - 1, 754 1, InsertAtEnd) { 755 assert(IfTrue != 0 && "Branch destination may not be null!"); 756 Op<-1>() = IfTrue; 757 } 758 759 BranchInst::BranchInst(BasicBlock *IfTrue, BasicBlock *IfFalse, Value *Cond, 760 BasicBlock *InsertAtEnd) 761 : TerminatorInst(Type::getVoidTy(IfTrue->getContext()), Instruction::Br, 762 OperandTraits<BranchInst>::op_end(this) - 3, 763 3, InsertAtEnd) { 764 Op<-1>() = IfTrue; 765 Op<-2>() = IfFalse; 766 Op<-3>() = Cond; 767 #ifndef NDEBUG 768 AssertOK(); 769 #endif 770 } 771 772 773 BranchInst::BranchInst(const BranchInst &BI) : 774 TerminatorInst(Type::getVoidTy(BI.getContext()), Instruction::Br, 775 OperandTraits<BranchInst>::op_end(this) - BI.getNumOperands(), 776 BI.getNumOperands()) { 777 Op<-1>() = BI.Op<-1>(); 778 if (BI.getNumOperands() != 1) { 779 assert(BI.getNumOperands() == 3 && "BR can have 1 or 3 operands!"); 780 Op<-3>() = BI.Op<-3>(); 781 Op<-2>() = BI.Op<-2>(); 782 } 783 SubclassOptionalData = BI.SubclassOptionalData; 784 } 785 786 void BranchInst::swapSuccessors() { 787 assert(isConditional() && 788 "Cannot swap successors of an unconditional branch"); 789 Op<-1>().swap(Op<-2>()); 790 791 // Update profile metadata if present and it matches our structural 792 // expectations. 793 MDNode *ProfileData = getMetadata(LLVMContext::MD_prof); 794 if (!ProfileData || ProfileData->getNumOperands() != 3) 795 return; 796 797 // The first operand is the name. Fetch them backwards and build a new one. 798 Value *Ops[] = { 799 ProfileData->getOperand(0), 800 ProfileData->getOperand(2), 801 ProfileData->getOperand(1) 802 }; 803 setMetadata(LLVMContext::MD_prof, 804 MDNode::get(ProfileData->getContext(), Ops)); 805 } 806 807 BasicBlock *BranchInst::getSuccessorV(unsigned idx) const { 808 return getSuccessor(idx); 809 } 810 unsigned BranchInst::getNumSuccessorsV() const { 811 return getNumSuccessors(); 812 } 813 void BranchInst::setSuccessorV(unsigned idx, BasicBlock *B) { 814 setSuccessor(idx, B); 815 } 816 817 818 //===----------------------------------------------------------------------===// 819 // AllocaInst Implementation 820 //===----------------------------------------------------------------------===// 821 822 static Value *getAISize(LLVMContext &Context, Value *Amt) { 823 if (!Amt) 824 Amt = ConstantInt::get(Type::getInt32Ty(Context), 1); 825 else { 826 assert(!isa<BasicBlock>(Amt) && 827 "Passed basic block into allocation size parameter! Use other ctor"); 828 assert(Amt->getType()->isIntegerTy() && 829 "Allocation array size is not an integer!"); 830 } 831 return Amt; 832 } 833 834 AllocaInst::AllocaInst(Type *Ty, Value *ArraySize, 835 const Twine &Name, Instruction *InsertBefore) 836 : UnaryInstruction(PointerType::getUnqual(Ty), Alloca, 837 getAISize(Ty->getContext(), ArraySize), InsertBefore) { 838 setAlignment(0); 839 assert(!Ty->isVoidTy() && "Cannot allocate void!"); 840 setName(Name); 841 } 842 843 AllocaInst::AllocaInst(Type *Ty, Value *ArraySize, 844 const Twine &Name, BasicBlock *InsertAtEnd) 845 : UnaryInstruction(PointerType::getUnqual(Ty), Alloca, 846 getAISize(Ty->getContext(), ArraySize), InsertAtEnd) { 847 setAlignment(0); 848 assert(!Ty->isVoidTy() && "Cannot allocate void!"); 849 setName(Name); 850 } 851 852 AllocaInst::AllocaInst(Type *Ty, const Twine &Name, 853 Instruction *InsertBefore) 854 : UnaryInstruction(PointerType::getUnqual(Ty), Alloca, 855 getAISize(Ty->getContext(), 0), InsertBefore) { 856 setAlignment(0); 857 assert(!Ty->isVoidTy() && "Cannot allocate void!"); 858 setName(Name); 859 } 860 861 AllocaInst::AllocaInst(Type *Ty, const Twine &Name, 862 BasicBlock *InsertAtEnd) 863 : UnaryInstruction(PointerType::getUnqual(Ty), Alloca, 864 getAISize(Ty->getContext(), 0), InsertAtEnd) { 865 setAlignment(0); 866 assert(!Ty->isVoidTy() && "Cannot allocate void!"); 867 setName(Name); 868 } 869 870 AllocaInst::AllocaInst(Type *Ty, Value *ArraySize, unsigned Align, 871 const Twine &Name, Instruction *InsertBefore) 872 : UnaryInstruction(PointerType::getUnqual(Ty), Alloca, 873 getAISize(Ty->getContext(), ArraySize), InsertBefore) { 874 setAlignment(Align); 875 assert(!Ty->isVoidTy() && "Cannot allocate void!"); 876 setName(Name); 877 } 878 879 AllocaInst::AllocaInst(Type *Ty, Value *ArraySize, unsigned Align, 880 const Twine &Name, BasicBlock *InsertAtEnd) 881 : UnaryInstruction(PointerType::getUnqual(Ty), Alloca, 882 getAISize(Ty->getContext(), ArraySize), InsertAtEnd) { 883 setAlignment(Align); 884 assert(!Ty->isVoidTy() && "Cannot allocate void!"); 885 setName(Name); 886 } 887 888 // Out of line virtual method, so the vtable, etc has a home. 889 AllocaInst::~AllocaInst() { 890 } 891 892 void AllocaInst::setAlignment(unsigned Align) { 893 assert((Align & (Align-1)) == 0 && "Alignment is not a power of 2!"); 894 assert(Align <= MaximumAlignment && 895 "Alignment is greater than MaximumAlignment!"); 896 setInstructionSubclassData((getSubclassDataFromInstruction() & ~31) | 897 (Log2_32(Align) + 1)); 898 assert(getAlignment() == Align && "Alignment representation error!"); 899 } 900 901 bool AllocaInst::isArrayAllocation() const { 902 if (ConstantInt *CI = dyn_cast<ConstantInt>(getOperand(0))) 903 return !CI->isOne(); 904 return true; 905 } 906 907 Type *AllocaInst::getAllocatedType() const { 908 return getType()->getElementType(); 909 } 910 911 /// isStaticAlloca - Return true if this alloca is in the entry block of the 912 /// function and is a constant size. If so, the code generator will fold it 913 /// into the prolog/epilog code, so it is basically free. 914 bool AllocaInst::isStaticAlloca() const { 915 // Must be constant size. 916 if (!isa<ConstantInt>(getArraySize())) return false; 917 918 // Must be in the entry block. 919 const BasicBlock *Parent = getParent(); 920 return Parent == &Parent->getParent()->front() && !isUsedWithInAlloca(); 921 } 922 923 //===----------------------------------------------------------------------===// 924 // LoadInst Implementation 925 //===----------------------------------------------------------------------===// 926 927 void LoadInst::AssertOK() { 928 assert(getOperand(0)->getType()->isPointerTy() && 929 "Ptr must have pointer type."); 930 assert(!(isAtomic() && getAlignment() == 0) && 931 "Alignment required for atomic load"); 932 } 933 934 LoadInst::LoadInst(Value *Ptr, const Twine &Name, Instruction *InsertBef) 935 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 936 Load, Ptr, InsertBef) { 937 setVolatile(false); 938 setAlignment(0); 939 setAtomic(NotAtomic); 940 AssertOK(); 941 setName(Name); 942 } 943 944 LoadInst::LoadInst(Value *Ptr, const Twine &Name, BasicBlock *InsertAE) 945 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 946 Load, Ptr, InsertAE) { 947 setVolatile(false); 948 setAlignment(0); 949 setAtomic(NotAtomic); 950 AssertOK(); 951 setName(Name); 952 } 953 954 LoadInst::LoadInst(Value *Ptr, const Twine &Name, bool isVolatile, 955 Instruction *InsertBef) 956 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 957 Load, Ptr, InsertBef) { 958 setVolatile(isVolatile); 959 setAlignment(0); 960 setAtomic(NotAtomic); 961 AssertOK(); 962 setName(Name); 963 } 964 965 LoadInst::LoadInst(Value *Ptr, const Twine &Name, bool isVolatile, 966 BasicBlock *InsertAE) 967 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 968 Load, Ptr, InsertAE) { 969 setVolatile(isVolatile); 970 setAlignment(0); 971 setAtomic(NotAtomic); 972 AssertOK(); 973 setName(Name); 974 } 975 976 LoadInst::LoadInst(Value *Ptr, const Twine &Name, bool isVolatile, 977 unsigned Align, Instruction *InsertBef) 978 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 979 Load, Ptr, InsertBef) { 980 setVolatile(isVolatile); 981 setAlignment(Align); 982 setAtomic(NotAtomic); 983 AssertOK(); 984 setName(Name); 985 } 986 987 LoadInst::LoadInst(Value *Ptr, const Twine &Name, bool isVolatile, 988 unsigned Align, BasicBlock *InsertAE) 989 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 990 Load, Ptr, InsertAE) { 991 setVolatile(isVolatile); 992 setAlignment(Align); 993 setAtomic(NotAtomic); 994 AssertOK(); 995 setName(Name); 996 } 997 998 LoadInst::LoadInst(Value *Ptr, const Twine &Name, bool isVolatile, 999 unsigned Align, AtomicOrdering Order, 1000 SynchronizationScope SynchScope, 1001 Instruction *InsertBef) 1002 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 1003 Load, Ptr, InsertBef) { 1004 setVolatile(isVolatile); 1005 setAlignment(Align); 1006 setAtomic(Order, SynchScope); 1007 AssertOK(); 1008 setName(Name); 1009 } 1010 1011 LoadInst::LoadInst(Value *Ptr, const Twine &Name, bool isVolatile, 1012 unsigned Align, AtomicOrdering Order, 1013 SynchronizationScope SynchScope, 1014 BasicBlock *InsertAE) 1015 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 1016 Load, Ptr, InsertAE) { 1017 setVolatile(isVolatile); 1018 setAlignment(Align); 1019 setAtomic(Order, SynchScope); 1020 AssertOK(); 1021 setName(Name); 1022 } 1023 1024 LoadInst::LoadInst(Value *Ptr, const char *Name, Instruction *InsertBef) 1025 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 1026 Load, Ptr, InsertBef) { 1027 setVolatile(false); 1028 setAlignment(0); 1029 setAtomic(NotAtomic); 1030 AssertOK(); 1031 if (Name && Name[0]) setName(Name); 1032 } 1033 1034 LoadInst::LoadInst(Value *Ptr, const char *Name, BasicBlock *InsertAE) 1035 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 1036 Load, Ptr, InsertAE) { 1037 setVolatile(false); 1038 setAlignment(0); 1039 setAtomic(NotAtomic); 1040 AssertOK(); 1041 if (Name && Name[0]) setName(Name); 1042 } 1043 1044 LoadInst::LoadInst(Value *Ptr, const char *Name, bool isVolatile, 1045 Instruction *InsertBef) 1046 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 1047 Load, Ptr, InsertBef) { 1048 setVolatile(isVolatile); 1049 setAlignment(0); 1050 setAtomic(NotAtomic); 1051 AssertOK(); 1052 if (Name && Name[0]) setName(Name); 1053 } 1054 1055 LoadInst::LoadInst(Value *Ptr, const char *Name, bool isVolatile, 1056 BasicBlock *InsertAE) 1057 : UnaryInstruction(cast<PointerType>(Ptr->getType())->getElementType(), 1058 Load, Ptr, InsertAE) { 1059 setVolatile(isVolatile); 1060 setAlignment(0); 1061 setAtomic(NotAtomic); 1062 AssertOK(); 1063 if (Name && Name[0]) setName(Name); 1064 } 1065 1066 void LoadInst::setAlignment(unsigned Align) { 1067 assert((Align & (Align-1)) == 0 && "Alignment is not a power of 2!"); 1068 assert(Align <= MaximumAlignment && 1069 "Alignment is greater than MaximumAlignment!"); 1070 setInstructionSubclassData((getSubclassDataFromInstruction() & ~(31 << 1)) | 1071 ((Log2_32(Align)+1)<<1)); 1072 assert(getAlignment() == Align && "Alignment representation error!"); 1073 } 1074 1075 //===----------------------------------------------------------------------===// 1076 // StoreInst Implementation 1077 //===----------------------------------------------------------------------===// 1078 1079 void StoreInst::AssertOK() { 1080 assert(getOperand(0) && getOperand(1) && "Both operands must be non-null!"); 1081 assert(getOperand(1)->getType()->isPointerTy() && 1082 "Ptr must have pointer type!"); 1083 assert(getOperand(0)->getType() == 1084 cast<PointerType>(getOperand(1)->getType())->getElementType() 1085 && "Ptr must be a pointer to Val type!"); 1086 assert(!(isAtomic() && getAlignment() == 0) && 1087 "Alignment required for atomic store"); 1088 } 1089 1090 1091 StoreInst::StoreInst(Value *val, Value *addr, Instruction *InsertBefore) 1092 : Instruction(Type::getVoidTy(val->getContext()), Store, 1093 OperandTraits<StoreInst>::op_begin(this), 1094 OperandTraits<StoreInst>::operands(this), 1095 InsertBefore) { 1096 Op<0>() = val; 1097 Op<1>() = addr; 1098 setVolatile(false); 1099 setAlignment(0); 1100 setAtomic(NotAtomic); 1101 AssertOK(); 1102 } 1103 1104 StoreInst::StoreInst(Value *val, Value *addr, BasicBlock *InsertAtEnd) 1105 : Instruction(Type::getVoidTy(val->getContext()), Store, 1106 OperandTraits<StoreInst>::op_begin(this), 1107 OperandTraits<StoreInst>::operands(this), 1108 InsertAtEnd) { 1109 Op<0>() = val; 1110 Op<1>() = addr; 1111 setVolatile(false); 1112 setAlignment(0); 1113 setAtomic(NotAtomic); 1114 AssertOK(); 1115 } 1116 1117 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile, 1118 Instruction *InsertBefore) 1119 : Instruction(Type::getVoidTy(val->getContext()), Store, 1120 OperandTraits<StoreInst>::op_begin(this), 1121 OperandTraits<StoreInst>::operands(this), 1122 InsertBefore) { 1123 Op<0>() = val; 1124 Op<1>() = addr; 1125 setVolatile(isVolatile); 1126 setAlignment(0); 1127 setAtomic(NotAtomic); 1128 AssertOK(); 1129 } 1130 1131 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile, 1132 unsigned Align, Instruction *InsertBefore) 1133 : Instruction(Type::getVoidTy(val->getContext()), Store, 1134 OperandTraits<StoreInst>::op_begin(this), 1135 OperandTraits<StoreInst>::operands(this), 1136 InsertBefore) { 1137 Op<0>() = val; 1138 Op<1>() = addr; 1139 setVolatile(isVolatile); 1140 setAlignment(Align); 1141 setAtomic(NotAtomic); 1142 AssertOK(); 1143 } 1144 1145 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile, 1146 unsigned Align, AtomicOrdering Order, 1147 SynchronizationScope SynchScope, 1148 Instruction *InsertBefore) 1149 : Instruction(Type::getVoidTy(val->getContext()), Store, 1150 OperandTraits<StoreInst>::op_begin(this), 1151 OperandTraits<StoreInst>::operands(this), 1152 InsertBefore) { 1153 Op<0>() = val; 1154 Op<1>() = addr; 1155 setVolatile(isVolatile); 1156 setAlignment(Align); 1157 setAtomic(Order, SynchScope); 1158 AssertOK(); 1159 } 1160 1161 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile, 1162 BasicBlock *InsertAtEnd) 1163 : Instruction(Type::getVoidTy(val->getContext()), Store, 1164 OperandTraits<StoreInst>::op_begin(this), 1165 OperandTraits<StoreInst>::operands(this), 1166 InsertAtEnd) { 1167 Op<0>() = val; 1168 Op<1>() = addr; 1169 setVolatile(isVolatile); 1170 setAlignment(0); 1171 setAtomic(NotAtomic); 1172 AssertOK(); 1173 } 1174 1175 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile, 1176 unsigned Align, BasicBlock *InsertAtEnd) 1177 : Instruction(Type::getVoidTy(val->getContext()), Store, 1178 OperandTraits<StoreInst>::op_begin(this), 1179 OperandTraits<StoreInst>::operands(this), 1180 InsertAtEnd) { 1181 Op<0>() = val; 1182 Op<1>() = addr; 1183 setVolatile(isVolatile); 1184 setAlignment(Align); 1185 setAtomic(NotAtomic); 1186 AssertOK(); 1187 } 1188 1189 StoreInst::StoreInst(Value *val, Value *addr, bool isVolatile, 1190 unsigned Align, AtomicOrdering Order, 1191 SynchronizationScope SynchScope, 1192 BasicBlock *InsertAtEnd) 1193 : Instruction(Type::getVoidTy(val->getContext()), Store, 1194 OperandTraits<StoreInst>::op_begin(this), 1195 OperandTraits<StoreInst>::operands(this), 1196 InsertAtEnd) { 1197 Op<0>() = val; 1198 Op<1>() = addr; 1199 setVolatile(isVolatile); 1200 setAlignment(Align); 1201 setAtomic(Order, SynchScope); 1202 AssertOK(); 1203 } 1204 1205 void StoreInst::setAlignment(unsigned Align) { 1206 assert((Align & (Align-1)) == 0 && "Alignment is not a power of 2!"); 1207 assert(Align <= MaximumAlignment && 1208 "Alignment is greater than MaximumAlignment!"); 1209 setInstructionSubclassData((getSubclassDataFromInstruction() & ~(31 << 1)) | 1210 ((Log2_32(Align)+1) << 1)); 1211 assert(getAlignment() == Align && "Alignment representation error!"); 1212 } 1213 1214 //===----------------------------------------------------------------------===// 1215 // AtomicCmpXchgInst Implementation 1216 //===----------------------------------------------------------------------===// 1217 1218 void AtomicCmpXchgInst::Init(Value *Ptr, Value *Cmp, Value *NewVal, 1219 AtomicOrdering Ordering, 1220 SynchronizationScope SynchScope) { 1221 Op<0>() = Ptr; 1222 Op<1>() = Cmp; 1223 Op<2>() = NewVal; 1224 setOrdering(Ordering); 1225 setSynchScope(SynchScope); 1226 1227 assert(getOperand(0) && getOperand(1) && getOperand(2) && 1228 "All operands must be non-null!"); 1229 assert(getOperand(0)->getType()->isPointerTy() && 1230 "Ptr must have pointer type!"); 1231 assert(getOperand(1)->getType() == 1232 cast<PointerType>(getOperand(0)->getType())->getElementType() 1233 && "Ptr must be a pointer to Cmp type!"); 1234 assert(getOperand(2)->getType() == 1235 cast<PointerType>(getOperand(0)->getType())->getElementType() 1236 && "Ptr must be a pointer to NewVal type!"); 1237 assert(Ordering != NotAtomic && 1238 "AtomicCmpXchg instructions must be atomic!"); 1239 } 1240 1241 AtomicCmpXchgInst::AtomicCmpXchgInst(Value *Ptr, Value *Cmp, Value *NewVal, 1242 AtomicOrdering Ordering, 1243 SynchronizationScope SynchScope, 1244 Instruction *InsertBefore) 1245 : Instruction(Cmp->getType(), AtomicCmpXchg, 1246 OperandTraits<AtomicCmpXchgInst>::op_begin(this), 1247 OperandTraits<AtomicCmpXchgInst>::operands(this), 1248 InsertBefore) { 1249 Init(Ptr, Cmp, NewVal, Ordering, SynchScope); 1250 } 1251 1252 AtomicCmpXchgInst::AtomicCmpXchgInst(Value *Ptr, Value *Cmp, Value *NewVal, 1253 AtomicOrdering Ordering, 1254 SynchronizationScope SynchScope, 1255 BasicBlock *InsertAtEnd) 1256 : Instruction(Cmp->getType(), AtomicCmpXchg, 1257 OperandTraits<AtomicCmpXchgInst>::op_begin(this), 1258 OperandTraits<AtomicCmpXchgInst>::operands(this), 1259 InsertAtEnd) { 1260 Init(Ptr, Cmp, NewVal, Ordering, SynchScope); 1261 } 1262 1263 //===----------------------------------------------------------------------===// 1264 // AtomicRMWInst Implementation 1265 //===----------------------------------------------------------------------===// 1266 1267 void AtomicRMWInst::Init(BinOp Operation, Value *Ptr, Value *Val, 1268 AtomicOrdering Ordering, 1269 SynchronizationScope SynchScope) { 1270 Op<0>() = Ptr; 1271 Op<1>() = Val; 1272 setOperation(Operation); 1273 setOrdering(Ordering); 1274 setSynchScope(SynchScope); 1275 1276 assert(getOperand(0) && getOperand(1) && 1277 "All operands must be non-null!"); 1278 assert(getOperand(0)->getType()->isPointerTy() && 1279 "Ptr must have pointer type!"); 1280 assert(getOperand(1)->getType() == 1281 cast<PointerType>(getOperand(0)->getType())->getElementType() 1282 && "Ptr must be a pointer to Val type!"); 1283 assert(Ordering != NotAtomic && 1284 "AtomicRMW instructions must be atomic!"); 1285 } 1286 1287 AtomicRMWInst::AtomicRMWInst(BinOp Operation, Value *Ptr, Value *Val, 1288 AtomicOrdering Ordering, 1289 SynchronizationScope SynchScope, 1290 Instruction *InsertBefore) 1291 : Instruction(Val->getType(), AtomicRMW, 1292 OperandTraits<AtomicRMWInst>::op_begin(this), 1293 OperandTraits<AtomicRMWInst>::operands(this), 1294 InsertBefore) { 1295 Init(Operation, Ptr, Val, Ordering, SynchScope); 1296 } 1297 1298 AtomicRMWInst::AtomicRMWInst(BinOp Operation, Value *Ptr, Value *Val, 1299 AtomicOrdering Ordering, 1300 SynchronizationScope SynchScope, 1301 BasicBlock *InsertAtEnd) 1302 : Instruction(Val->getType(), AtomicRMW, 1303 OperandTraits<AtomicRMWInst>::op_begin(this), 1304 OperandTraits<AtomicRMWInst>::operands(this), 1305 InsertAtEnd) { 1306 Init(Operation, Ptr, Val, Ordering, SynchScope); 1307 } 1308 1309 //===----------------------------------------------------------------------===// 1310 // FenceInst Implementation 1311 //===----------------------------------------------------------------------===// 1312 1313 FenceInst::FenceInst(LLVMContext &C, AtomicOrdering Ordering, 1314 SynchronizationScope SynchScope, 1315 Instruction *InsertBefore) 1316 : Instruction(Type::getVoidTy(C), Fence, 0, 0, InsertBefore) { 1317 setOrdering(Ordering); 1318 setSynchScope(SynchScope); 1319 } 1320 1321 FenceInst::FenceInst(LLVMContext &C, AtomicOrdering Ordering, 1322 SynchronizationScope SynchScope, 1323 BasicBlock *InsertAtEnd) 1324 : Instruction(Type::getVoidTy(C), Fence, 0, 0, InsertAtEnd) { 1325 setOrdering(Ordering); 1326 setSynchScope(SynchScope); 1327 } 1328 1329 //===----------------------------------------------------------------------===// 1330 // GetElementPtrInst Implementation 1331 //===----------------------------------------------------------------------===// 1332 1333 void GetElementPtrInst::init(Value *Ptr, ArrayRef<Value *> IdxList, 1334 const Twine &Name) { 1335 assert(NumOperands == 1 + IdxList.size() && "NumOperands not initialized?"); 1336 OperandList[0] = Ptr; 1337 std::copy(IdxList.begin(), IdxList.end(), op_begin() + 1); 1338 setName(Name); 1339 } 1340 1341 GetElementPtrInst::GetElementPtrInst(const GetElementPtrInst &GEPI) 1342 : Instruction(GEPI.getType(), GetElementPtr, 1343 OperandTraits<GetElementPtrInst>::op_end(this) 1344 - GEPI.getNumOperands(), 1345 GEPI.getNumOperands()) { 1346 std::copy(GEPI.op_begin(), GEPI.op_end(), op_begin()); 1347 SubclassOptionalData = GEPI.SubclassOptionalData; 1348 } 1349 1350 /// getIndexedType - Returns the type of the element that would be accessed with 1351 /// a gep instruction with the specified parameters. 1352 /// 1353 /// The Idxs pointer should point to a continuous piece of memory containing the 1354 /// indices, either as Value* or uint64_t. 1355 /// 1356 /// A null type is returned if the indices are invalid for the specified 1357 /// pointer type. 1358 /// 1359 template <typename IndexTy> 1360 static Type *getIndexedTypeInternal(Type *Ptr, ArrayRef<IndexTy> IdxList) { 1361 PointerType *PTy = dyn_cast<PointerType>(Ptr->getScalarType()); 1362 if (!PTy) return 0; // Type isn't a pointer type! 1363 Type *Agg = PTy->getElementType(); 1364 1365 // Handle the special case of the empty set index set, which is always valid. 1366 if (IdxList.empty()) 1367 return Agg; 1368 1369 // If there is at least one index, the top level type must be sized, otherwise 1370 // it cannot be 'stepped over'. 1371 if (!Agg->isSized()) 1372 return 0; 1373 1374 unsigned CurIdx = 1; 1375 for (; CurIdx != IdxList.size(); ++CurIdx) { 1376 CompositeType *CT = dyn_cast<CompositeType>(Agg); 1377 if (!CT || CT->isPointerTy()) return 0; 1378 IndexTy Index = IdxList[CurIdx]; 1379 if (!CT->indexValid(Index)) return 0; 1380 Agg = CT->getTypeAtIndex(Index); 1381 } 1382 return CurIdx == IdxList.size() ? Agg : 0; 1383 } 1384 1385 Type *GetElementPtrInst::getIndexedType(Type *Ptr, ArrayRef<Value *> IdxList) { 1386 return getIndexedTypeInternal(Ptr, IdxList); 1387 } 1388 1389 Type *GetElementPtrInst::getIndexedType(Type *Ptr, 1390 ArrayRef<Constant *> IdxList) { 1391 return getIndexedTypeInternal(Ptr, IdxList); 1392 } 1393 1394 Type *GetElementPtrInst::getIndexedType(Type *Ptr, ArrayRef<uint64_t> IdxList) { 1395 return getIndexedTypeInternal(Ptr, IdxList); 1396 } 1397 1398 /// hasAllZeroIndices - Return true if all of the indices of this GEP are 1399 /// zeros. If so, the result pointer and the first operand have the same 1400 /// value, just potentially different types. 1401 bool GetElementPtrInst::hasAllZeroIndices() const { 1402 for (unsigned i = 1, e = getNumOperands(); i != e; ++i) { 1403 if (ConstantInt *CI = dyn_cast<ConstantInt>(getOperand(i))) { 1404 if (!CI->isZero()) return false; 1405 } else { 1406 return false; 1407 } 1408 } 1409 return true; 1410 } 1411 1412 /// hasAllConstantIndices - Return true if all of the indices of this GEP are 1413 /// constant integers. If so, the result pointer and the first operand have 1414 /// a constant offset between them. 1415 bool GetElementPtrInst::hasAllConstantIndices() const { 1416 for (unsigned i = 1, e = getNumOperands(); i != e; ++i) { 1417 if (!isa<ConstantInt>(getOperand(i))) 1418 return false; 1419 } 1420 return true; 1421 } 1422 1423 void GetElementPtrInst::setIsInBounds(bool B) { 1424 cast<GEPOperator>(this)->setIsInBounds(B); 1425 } 1426 1427 bool GetElementPtrInst::isInBounds() const { 1428 return cast<GEPOperator>(this)->isInBounds(); 1429 } 1430 1431 bool GetElementPtrInst::accumulateConstantOffset(const DataLayout &DL, 1432 APInt &Offset) const { 1433 // Delegate to the generic GEPOperator implementation. 1434 return cast<GEPOperator>(this)->accumulateConstantOffset(DL, Offset); 1435 } 1436 1437 //===----------------------------------------------------------------------===// 1438 // ExtractElementInst Implementation 1439 //===----------------------------------------------------------------------===// 1440 1441 ExtractElementInst::ExtractElementInst(Value *Val, Value *Index, 1442 const Twine &Name, 1443 Instruction *InsertBef) 1444 : Instruction(cast<VectorType>(Val->getType())->getElementType(), 1445 ExtractElement, 1446 OperandTraits<ExtractElementInst>::op_begin(this), 1447 2, InsertBef) { 1448 assert(isValidOperands(Val, Index) && 1449 "Invalid extractelement instruction operands!"); 1450 Op<0>() = Val; 1451 Op<1>() = Index; 1452 setName(Name); 1453 } 1454 1455 ExtractElementInst::ExtractElementInst(Value *Val, Value *Index, 1456 const Twine &Name, 1457 BasicBlock *InsertAE) 1458 : Instruction(cast<VectorType>(Val->getType())->getElementType(), 1459 ExtractElement, 1460 OperandTraits<ExtractElementInst>::op_begin(this), 1461 2, InsertAE) { 1462 assert(isValidOperands(Val, Index) && 1463 "Invalid extractelement instruction operands!"); 1464 1465 Op<0>() = Val; 1466 Op<1>() = Index; 1467 setName(Name); 1468 } 1469 1470 1471 bool ExtractElementInst::isValidOperands(const Value *Val, const Value *Index) { 1472 if (!Val->getType()->isVectorTy() || !Index->getType()->isIntegerTy(32)) 1473 return false; 1474 return true; 1475 } 1476 1477 1478 //===----------------------------------------------------------------------===// 1479 // InsertElementInst Implementation 1480 //===----------------------------------------------------------------------===// 1481 1482 InsertElementInst::InsertElementInst(Value *Vec, Value *Elt, Value *Index, 1483 const Twine &Name, 1484 Instruction *InsertBef) 1485 : Instruction(Vec->getType(), InsertElement, 1486 OperandTraits<InsertElementInst>::op_begin(this), 1487 3, InsertBef) { 1488 assert(isValidOperands(Vec, Elt, Index) && 1489 "Invalid insertelement instruction operands!"); 1490 Op<0>() = Vec; 1491 Op<1>() = Elt; 1492 Op<2>() = Index; 1493 setName(Name); 1494 } 1495 1496 InsertElementInst::InsertElementInst(Value *Vec, Value *Elt, Value *Index, 1497 const Twine &Name, 1498 BasicBlock *InsertAE) 1499 : Instruction(Vec->getType(), InsertElement, 1500 OperandTraits<InsertElementInst>::op_begin(this), 1501 3, InsertAE) { 1502 assert(isValidOperands(Vec, Elt, Index) && 1503 "Invalid insertelement instruction operands!"); 1504 1505 Op<0>() = Vec; 1506 Op<1>() = Elt; 1507 Op<2>() = Index; 1508 setName(Name); 1509 } 1510 1511 bool InsertElementInst::isValidOperands(const Value *Vec, const Value *Elt, 1512 const Value *Index) { 1513 if (!Vec->getType()->isVectorTy()) 1514 return false; // First operand of insertelement must be vector type. 1515 1516 if (Elt->getType() != cast<VectorType>(Vec->getType())->getElementType()) 1517 return false;// Second operand of insertelement must be vector element type. 1518 1519 if (!Index->getType()->isIntegerTy(32)) 1520 return false; // Third operand of insertelement must be i32. 1521 return true; 1522 } 1523 1524 1525 //===----------------------------------------------------------------------===// 1526 // ShuffleVectorInst Implementation 1527 //===----------------------------------------------------------------------===// 1528 1529 ShuffleVectorInst::ShuffleVectorInst(Value *V1, Value *V2, Value *Mask, 1530 const Twine &Name, 1531 Instruction *InsertBefore) 1532 : Instruction(VectorType::get(cast<VectorType>(V1->getType())->getElementType(), 1533 cast<VectorType>(Mask->getType())->getNumElements()), 1534 ShuffleVector, 1535 OperandTraits<ShuffleVectorInst>::op_begin(this), 1536 OperandTraits<ShuffleVectorInst>::operands(this), 1537 InsertBefore) { 1538 assert(isValidOperands(V1, V2, Mask) && 1539 "Invalid shuffle vector instruction operands!"); 1540 Op<0>() = V1; 1541 Op<1>() = V2; 1542 Op<2>() = Mask; 1543 setName(Name); 1544 } 1545 1546 ShuffleVectorInst::ShuffleVectorInst(Value *V1, Value *V2, Value *Mask, 1547 const Twine &Name, 1548 BasicBlock *InsertAtEnd) 1549 : Instruction(VectorType::get(cast<VectorType>(V1->getType())->getElementType(), 1550 cast<VectorType>(Mask->getType())->getNumElements()), 1551 ShuffleVector, 1552 OperandTraits<ShuffleVectorInst>::op_begin(this), 1553 OperandTraits<ShuffleVectorInst>::operands(this), 1554 InsertAtEnd) { 1555 assert(isValidOperands(V1, V2, Mask) && 1556 "Invalid shuffle vector instruction operands!"); 1557 1558 Op<0>() = V1; 1559 Op<1>() = V2; 1560 Op<2>() = Mask; 1561 setName(Name); 1562 } 1563 1564 bool ShuffleVectorInst::isValidOperands(const Value *V1, const Value *V2, 1565 const Value *Mask) { 1566 // V1 and V2 must be vectors of the same type. 1567 if (!V1->getType()->isVectorTy() || V1->getType() != V2->getType()) 1568 return false; 1569 1570 // Mask must be vector of i32. 1571 VectorType *MaskTy = dyn_cast<VectorType>(Mask->getType()); 1572 if (MaskTy == 0 || !MaskTy->getElementType()->isIntegerTy(32)) 1573 return false; 1574 1575 // Check to see if Mask is valid. 1576 if (isa<UndefValue>(Mask) || isa<ConstantAggregateZero>(Mask)) 1577 return true; 1578 1579 if (const ConstantVector *MV = dyn_cast<ConstantVector>(Mask)) { 1580 unsigned V1Size = cast<VectorType>(V1->getType())->getNumElements(); 1581 for (unsigned i = 0, e = MV->getNumOperands(); i != e; ++i) { 1582 if (ConstantInt *CI = dyn_cast<ConstantInt>(MV->getOperand(i))) { 1583 if (CI->uge(V1Size*2)) 1584 return false; 1585 } else if (!isa<UndefValue>(MV->getOperand(i))) { 1586 return false; 1587 } 1588 } 1589 return true; 1590 } 1591 1592 if (const ConstantDataSequential *CDS = 1593 dyn_cast<ConstantDataSequential>(Mask)) { 1594 unsigned V1Size = cast<VectorType>(V1->getType())->getNumElements(); 1595 for (unsigned i = 0, e = MaskTy->getNumElements(); i != e; ++i) 1596 if (CDS->getElementAsInteger(i) >= V1Size*2) 1597 return false; 1598 return true; 1599 } 1600 1601 // The bitcode reader can create a place holder for a forward reference 1602 // used as the shuffle mask. When this occurs, the shuffle mask will 1603 // fall into this case and fail. To avoid this error, do this bit of 1604 // ugliness to allow such a mask pass. 1605 if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(Mask)) 1606 if (CE->getOpcode() == Instruction::UserOp1) 1607 return true; 1608 1609 return false; 1610 } 1611 1612 /// getMaskValue - Return the index from the shuffle mask for the specified 1613 /// output result. This is either -1 if the element is undef or a number less 1614 /// than 2*numelements. 1615 int ShuffleVectorInst::getMaskValue(Constant *Mask, unsigned i) { 1616 assert(i < Mask->getType()->getVectorNumElements() && "Index out of range"); 1617 if (ConstantDataSequential *CDS =dyn_cast<ConstantDataSequential>(Mask)) 1618 return CDS->getElementAsInteger(i); 1619 Constant *C = Mask->getAggregateElement(i); 1620 if (isa<UndefValue>(C)) 1621 return -1; 1622 return cast<ConstantInt>(C)->getZExtValue(); 1623 } 1624 1625 /// getShuffleMask - Return the full mask for this instruction, where each 1626 /// element is the element number and undef's are returned as -1. 1627 void ShuffleVectorInst::getShuffleMask(Constant *Mask, 1628 SmallVectorImpl<int> &Result) { 1629 unsigned NumElts = Mask->getType()->getVectorNumElements(); 1630 1631 if (ConstantDataSequential *CDS=dyn_cast<ConstantDataSequential>(Mask)) { 1632 for (unsigned i = 0; i != NumElts; ++i) 1633 Result.push_back(CDS->getElementAsInteger(i)); 1634 return; 1635 } 1636 for (unsigned i = 0; i != NumElts; ++i) { 1637 Constant *C = Mask->getAggregateElement(i); 1638 Result.push_back(isa<UndefValue>(C) ? -1 : 1639 cast<ConstantInt>(C)->getZExtValue()); 1640 } 1641 } 1642 1643 1644 //===----------------------------------------------------------------------===// 1645 // InsertValueInst Class 1646 //===----------------------------------------------------------------------===// 1647 1648 void InsertValueInst::init(Value *Agg, Value *Val, ArrayRef<unsigned> Idxs, 1649 const Twine &Name) { 1650 assert(NumOperands == 2 && "NumOperands not initialized?"); 1651 1652 // There's no fundamental reason why we require at least one index 1653 // (other than weirdness with &*IdxBegin being invalid; see 1654 // getelementptr's init routine for example). But there's no 1655 // present need to support it. 1656 assert(Idxs.size() > 0 && "InsertValueInst must have at least one index"); 1657 1658 assert(ExtractValueInst::getIndexedType(Agg->getType(), Idxs) == 1659 Val->getType() && "Inserted value must match indexed type!"); 1660 Op<0>() = Agg; 1661 Op<1>() = Val; 1662 1663 Indices.append(Idxs.begin(), Idxs.end()); 1664 setName(Name); 1665 } 1666 1667 InsertValueInst::InsertValueInst(const InsertValueInst &IVI) 1668 : Instruction(IVI.getType(), InsertValue, 1669 OperandTraits<InsertValueInst>::op_begin(this), 2), 1670 Indices(IVI.Indices) { 1671 Op<0>() = IVI.getOperand(0); 1672 Op<1>() = IVI.getOperand(1); 1673 SubclassOptionalData = IVI.SubclassOptionalData; 1674 } 1675 1676 //===----------------------------------------------------------------------===// 1677 // ExtractValueInst Class 1678 //===----------------------------------------------------------------------===// 1679 1680 void ExtractValueInst::init(ArrayRef<unsigned> Idxs, const Twine &Name) { 1681 assert(NumOperands == 1 && "NumOperands not initialized?"); 1682 1683 // There's no fundamental reason why we require at least one index. 1684 // But there's no present need to support it. 1685 assert(Idxs.size() > 0 && "ExtractValueInst must have at least one index"); 1686 1687 Indices.append(Idxs.begin(), Idxs.end()); 1688 setName(Name); 1689 } 1690 1691 ExtractValueInst::ExtractValueInst(const ExtractValueInst &EVI) 1692 : UnaryInstruction(EVI.getType(), ExtractValue, EVI.getOperand(0)), 1693 Indices(EVI.Indices) { 1694 SubclassOptionalData = EVI.SubclassOptionalData; 1695 } 1696 1697 // getIndexedType - Returns the type of the element that would be extracted 1698 // with an extractvalue instruction with the specified parameters. 1699 // 1700 // A null type is returned if the indices are invalid for the specified 1701 // pointer type. 1702 // 1703 Type *ExtractValueInst::getIndexedType(Type *Agg, 1704 ArrayRef<unsigned> Idxs) { 1705 for (unsigned CurIdx = 0; CurIdx != Idxs.size(); ++CurIdx) { 1706 unsigned Index = Idxs[CurIdx]; 1707 // We can't use CompositeType::indexValid(Index) here. 1708 // indexValid() always returns true for arrays because getelementptr allows 1709 // out-of-bounds indices. Since we don't allow those for extractvalue and 1710 // insertvalue we need to check array indexing manually. 1711 // Since the only other types we can index into are struct types it's just 1712 // as easy to check those manually as well. 1713 if (ArrayType *AT = dyn_cast<ArrayType>(Agg)) { 1714 if (Index >= AT->getNumElements()) 1715 return 0; 1716 } else if (StructType *ST = dyn_cast<StructType>(Agg)) { 1717 if (Index >= ST->getNumElements()) 1718 return 0; 1719 } else { 1720 // Not a valid type to index into. 1721 return 0; 1722 } 1723 1724 Agg = cast<CompositeType>(Agg)->getTypeAtIndex(Index); 1725 } 1726 return const_cast<Type*>(Agg); 1727 } 1728 1729 //===----------------------------------------------------------------------===// 1730 // BinaryOperator Class 1731 //===----------------------------------------------------------------------===// 1732 1733 BinaryOperator::BinaryOperator(BinaryOps iType, Value *S1, Value *S2, 1734 Type *Ty, const Twine &Name, 1735 Instruction *InsertBefore) 1736 : Instruction(Ty, iType, 1737 OperandTraits<BinaryOperator>::op_begin(this), 1738 OperandTraits<BinaryOperator>::operands(this), 1739 InsertBefore) { 1740 Op<0>() = S1; 1741 Op<1>() = S2; 1742 init(iType); 1743 setName(Name); 1744 } 1745 1746 BinaryOperator::BinaryOperator(BinaryOps iType, Value *S1, Value *S2, 1747 Type *Ty, const Twine &Name, 1748 BasicBlock *InsertAtEnd) 1749 : Instruction(Ty, iType, 1750 OperandTraits<BinaryOperator>::op_begin(this), 1751 OperandTraits<BinaryOperator>::operands(this), 1752 InsertAtEnd) { 1753 Op<0>() = S1; 1754 Op<1>() = S2; 1755 init(iType); 1756 setName(Name); 1757 } 1758 1759 1760 void BinaryOperator::init(BinaryOps iType) { 1761 Value *LHS = getOperand(0), *RHS = getOperand(1); 1762 (void)LHS; (void)RHS; // Silence warnings. 1763 assert(LHS->getType() == RHS->getType() && 1764 "Binary operator operand types must match!"); 1765 #ifndef NDEBUG 1766 switch (iType) { 1767 case Add: case Sub: 1768 case Mul: 1769 assert(getType() == LHS->getType() && 1770 "Arithmetic operation should return same type as operands!"); 1771 assert(getType()->isIntOrIntVectorTy() && 1772 "Tried to create an integer operation on a non-integer type!"); 1773 break; 1774 case FAdd: case FSub: 1775 case FMul: 1776 assert(getType() == LHS->getType() && 1777 "Arithmetic operation should return same type as operands!"); 1778 assert(getType()->isFPOrFPVectorTy() && 1779 "Tried to create a floating-point operation on a " 1780 "non-floating-point type!"); 1781 break; 1782 case UDiv: 1783 case SDiv: 1784 assert(getType() == LHS->getType() && 1785 "Arithmetic operation should return same type as operands!"); 1786 assert((getType()->isIntegerTy() || (getType()->isVectorTy() && 1787 cast<VectorType>(getType())->getElementType()->isIntegerTy())) && 1788 "Incorrect operand type (not integer) for S/UDIV"); 1789 break; 1790 case FDiv: 1791 assert(getType() == LHS->getType() && 1792 "Arithmetic operation should return same type as operands!"); 1793 assert(getType()->isFPOrFPVectorTy() && 1794 "Incorrect operand type (not floating point) for FDIV"); 1795 break; 1796 case URem: 1797 case SRem: 1798 assert(getType() == LHS->getType() && 1799 "Arithmetic operation should return same type as operands!"); 1800 assert((getType()->isIntegerTy() || (getType()->isVectorTy() && 1801 cast<VectorType>(getType())->getElementType()->isIntegerTy())) && 1802 "Incorrect operand type (not integer) for S/UREM"); 1803 break; 1804 case FRem: 1805 assert(getType() == LHS->getType() && 1806 "Arithmetic operation should return same type as operands!"); 1807 assert(getType()->isFPOrFPVectorTy() && 1808 "Incorrect operand type (not floating point) for FREM"); 1809 break; 1810 case Shl: 1811 case LShr: 1812 case AShr: 1813 assert(getType() == LHS->getType() && 1814 "Shift operation should return same type as operands!"); 1815 assert((getType()->isIntegerTy() || 1816 (getType()->isVectorTy() && 1817 cast<VectorType>(getType())->getElementType()->isIntegerTy())) && 1818 "Tried to create a shift operation on a non-integral type!"); 1819 break; 1820 case And: case Or: 1821 case Xor: 1822 assert(getType() == LHS->getType() && 1823 "Logical operation should return same type as operands!"); 1824 assert((getType()->isIntegerTy() || 1825 (getType()->isVectorTy() && 1826 cast<VectorType>(getType())->getElementType()->isIntegerTy())) && 1827 "Tried to create a logical operation on a non-integral type!"); 1828 break; 1829 default: 1830 break; 1831 } 1832 #endif 1833 } 1834 1835 BinaryOperator *BinaryOperator::Create(BinaryOps Op, Value *S1, Value *S2, 1836 const Twine &Name, 1837 Instruction *InsertBefore) { 1838 assert(S1->getType() == S2->getType() && 1839 "Cannot create binary operator with two operands of differing type!"); 1840 return new BinaryOperator(Op, S1, S2, S1->getType(), Name, InsertBefore); 1841 } 1842 1843 BinaryOperator *BinaryOperator::Create(BinaryOps Op, Value *S1, Value *S2, 1844 const Twine &Name, 1845 BasicBlock *InsertAtEnd) { 1846 BinaryOperator *Res = Create(Op, S1, S2, Name); 1847 InsertAtEnd->getInstList().push_back(Res); 1848 return Res; 1849 } 1850 1851 BinaryOperator *BinaryOperator::CreateNeg(Value *Op, const Twine &Name, 1852 Instruction *InsertBefore) { 1853 Value *zero = ConstantFP::getZeroValueForNegation(Op->getType()); 1854 return new BinaryOperator(Instruction::Sub, 1855 zero, Op, 1856 Op->getType(), Name, InsertBefore); 1857 } 1858 1859 BinaryOperator *BinaryOperator::CreateNeg(Value *Op, const Twine &Name, 1860 BasicBlock *InsertAtEnd) { 1861 Value *zero = ConstantFP::getZeroValueForNegation(Op->getType()); 1862 return new BinaryOperator(Instruction::Sub, 1863 zero, Op, 1864 Op->getType(), Name, InsertAtEnd); 1865 } 1866 1867 BinaryOperator *BinaryOperator::CreateNSWNeg(Value *Op, const Twine &Name, 1868 Instruction *InsertBefore) { 1869 Value *zero = ConstantFP::getZeroValueForNegation(Op->getType()); 1870 return BinaryOperator::CreateNSWSub(zero, Op, Name, InsertBefore); 1871 } 1872 1873 BinaryOperator *BinaryOperator::CreateNSWNeg(Value *Op, const Twine &Name, 1874 BasicBlock *InsertAtEnd) { 1875 Value *zero = ConstantFP::getZeroValueForNegation(Op->getType()); 1876 return BinaryOperator::CreateNSWSub(zero, Op, Name, InsertAtEnd); 1877 } 1878 1879 BinaryOperator *BinaryOperator::CreateNUWNeg(Value *Op, const Twine &Name, 1880 Instruction *InsertBefore) { 1881 Value *zero = ConstantFP::getZeroValueForNegation(Op->getType()); 1882 return BinaryOperator::CreateNUWSub(zero, Op, Name, InsertBefore); 1883 } 1884 1885 BinaryOperator *BinaryOperator::CreateNUWNeg(Value *Op, const Twine &Name, 1886 BasicBlock *InsertAtEnd) { 1887 Value *zero = ConstantFP::getZeroValueForNegation(Op->getType()); 1888 return BinaryOperator::CreateNUWSub(zero, Op, Name, InsertAtEnd); 1889 } 1890 1891 BinaryOperator *BinaryOperator::CreateFNeg(Value *Op, const Twine &Name, 1892 Instruction *InsertBefore) { 1893 Value *zero = ConstantFP::getZeroValueForNegation(Op->getType()); 1894 return new BinaryOperator(Instruction::FSub, zero, Op, 1895 Op->getType(), Name, InsertBefore); 1896 } 1897 1898 BinaryOperator *BinaryOperator::CreateFNeg(Value *Op, const Twine &Name, 1899 BasicBlock *InsertAtEnd) { 1900 Value *zero = ConstantFP::getZeroValueForNegation(Op->getType()); 1901 return new BinaryOperator(Instruction::FSub, zero, Op, 1902 Op->getType(), Name, InsertAtEnd); 1903 } 1904 1905 BinaryOperator *BinaryOperator::CreateNot(Value *Op, const Twine &Name, 1906 Instruction *InsertBefore) { 1907 Constant *C = Constant::getAllOnesValue(Op->getType()); 1908 return new BinaryOperator(Instruction::Xor, Op, C, 1909 Op->getType(), Name, InsertBefore); 1910 } 1911 1912 BinaryOperator *BinaryOperator::CreateNot(Value *Op, const Twine &Name, 1913 BasicBlock *InsertAtEnd) { 1914 Constant *AllOnes = Constant::getAllOnesValue(Op->getType()); 1915 return new BinaryOperator(Instruction::Xor, Op, AllOnes, 1916 Op->getType(), Name, InsertAtEnd); 1917 } 1918 1919 1920 // isConstantAllOnes - Helper function for several functions below 1921 static inline bool isConstantAllOnes(const Value *V) { 1922 if (const Constant *C = dyn_cast<Constant>(V)) 1923 return C->isAllOnesValue(); 1924 return false; 1925 } 1926 1927 bool BinaryOperator::isNeg(const Value *V) { 1928 if (const BinaryOperator *Bop = dyn_cast<BinaryOperator>(V)) 1929 if (Bop->getOpcode() == Instruction::Sub) 1930 if (Constant* C = dyn_cast<Constant>(Bop->getOperand(0))) 1931 return C->isNegativeZeroValue(); 1932 return false; 1933 } 1934 1935 bool BinaryOperator::isFNeg(const Value *V, bool IgnoreZeroSign) { 1936 if (const BinaryOperator *Bop = dyn_cast<BinaryOperator>(V)) 1937 if (Bop->getOpcode() == Instruction::FSub) 1938 if (Constant* C = dyn_cast<Constant>(Bop->getOperand(0))) { 1939 if (!IgnoreZeroSign) 1940 IgnoreZeroSign = cast<Instruction>(V)->hasNoSignedZeros(); 1941 return !IgnoreZeroSign ? C->isNegativeZeroValue() : C->isZeroValue(); 1942 } 1943 return false; 1944 } 1945 1946 bool BinaryOperator::isNot(const Value *V) { 1947 if (const BinaryOperator *Bop = dyn_cast<BinaryOperator>(V)) 1948 return (Bop->getOpcode() == Instruction::Xor && 1949 (isConstantAllOnes(Bop->getOperand(1)) || 1950 isConstantAllOnes(Bop->getOperand(0)))); 1951 return false; 1952 } 1953 1954 Value *BinaryOperator::getNegArgument(Value *BinOp) { 1955 return cast<BinaryOperator>(BinOp)->getOperand(1); 1956 } 1957 1958 const Value *BinaryOperator::getNegArgument(const Value *BinOp) { 1959 return getNegArgument(const_cast<Value*>(BinOp)); 1960 } 1961 1962 Value *BinaryOperator::getFNegArgument(Value *BinOp) { 1963 return cast<BinaryOperator>(BinOp)->getOperand(1); 1964 } 1965 1966 const Value *BinaryOperator::getFNegArgument(const Value *BinOp) { 1967 return getFNegArgument(const_cast<Value*>(BinOp)); 1968 } 1969 1970 Value *BinaryOperator::getNotArgument(Value *BinOp) { 1971 assert(isNot(BinOp) && "getNotArgument on non-'not' instruction!"); 1972 BinaryOperator *BO = cast<BinaryOperator>(BinOp); 1973 Value *Op0 = BO->getOperand(0); 1974 Value *Op1 = BO->getOperand(1); 1975 if (isConstantAllOnes(Op0)) return Op1; 1976 1977 assert(isConstantAllOnes(Op1)); 1978 return Op0; 1979 } 1980 1981 const Value *BinaryOperator::getNotArgument(const Value *BinOp) { 1982 return getNotArgument(const_cast<Value*>(BinOp)); 1983 } 1984 1985 1986 // swapOperands - Exchange the two operands to this instruction. This 1987 // instruction is safe to use on any binary instruction and does not 1988 // modify the semantics of the instruction. If the instruction is 1989 // order dependent (SetLT f.e.) the opcode is changed. 1990 // 1991 bool BinaryOperator::swapOperands() { 1992 if (!isCommutative()) 1993 return true; // Can't commute operands 1994 Op<0>().swap(Op<1>()); 1995 return false; 1996 } 1997 1998 void BinaryOperator::setHasNoUnsignedWrap(bool b) { 1999 cast<OverflowingBinaryOperator>(this)->setHasNoUnsignedWrap(b); 2000 } 2001 2002 void BinaryOperator::setHasNoSignedWrap(bool b) { 2003 cast<OverflowingBinaryOperator>(this)->setHasNoSignedWrap(b); 2004 } 2005 2006 void BinaryOperator::setIsExact(bool b) { 2007 cast<PossiblyExactOperator>(this)->setIsExact(b); 2008 } 2009 2010 bool BinaryOperator::hasNoUnsignedWrap() const { 2011 return cast<OverflowingBinaryOperator>(this)->hasNoUnsignedWrap(); 2012 } 2013 2014 bool BinaryOperator::hasNoSignedWrap() const { 2015 return cast<OverflowingBinaryOperator>(this)->hasNoSignedWrap(); 2016 } 2017 2018 bool BinaryOperator::isExact() const { 2019 return cast<PossiblyExactOperator>(this)->isExact(); 2020 } 2021 2022 //===----------------------------------------------------------------------===// 2023 // FPMathOperator Class 2024 //===----------------------------------------------------------------------===// 2025 2026 /// getFPAccuracy - Get the maximum error permitted by this operation in ULPs. 2027 /// An accuracy of 0.0 means that the operation should be performed with the 2028 /// default precision. 2029 float FPMathOperator::getFPAccuracy() const { 2030 const MDNode *MD = 2031 cast<Instruction>(this)->getMetadata(LLVMContext::MD_fpmath); 2032 if (!MD) 2033 return 0.0; 2034 ConstantFP *Accuracy = cast<ConstantFP>(MD->getOperand(0)); 2035 return Accuracy->getValueAPF().convertToFloat(); 2036 } 2037 2038 2039 //===----------------------------------------------------------------------===// 2040 // CastInst Class 2041 //===----------------------------------------------------------------------===// 2042 2043 void CastInst::anchor() {} 2044 2045 // Just determine if this cast only deals with integral->integral conversion. 2046 bool CastInst::isIntegerCast() const { 2047 switch (getOpcode()) { 2048 default: return false; 2049 case Instruction::ZExt: 2050 case Instruction::SExt: 2051 case Instruction::Trunc: 2052 return true; 2053 case Instruction::BitCast: 2054 return getOperand(0)->getType()->isIntegerTy() && 2055 getType()->isIntegerTy(); 2056 } 2057 } 2058 2059 bool CastInst::isLosslessCast() const { 2060 // Only BitCast can be lossless, exit fast if we're not BitCast 2061 if (getOpcode() != Instruction::BitCast) 2062 return false; 2063 2064 // Identity cast is always lossless 2065 Type* SrcTy = getOperand(0)->getType(); 2066 Type* DstTy = getType(); 2067 if (SrcTy == DstTy) 2068 return true; 2069 2070 // Pointer to pointer is always lossless. 2071 if (SrcTy->isPointerTy()) 2072 return DstTy->isPointerTy(); 2073 return false; // Other types have no identity values 2074 } 2075 2076 /// This function determines if the CastInst does not require any bits to be 2077 /// changed in order to effect the cast. Essentially, it identifies cases where 2078 /// no code gen is necessary for the cast, hence the name no-op cast. For 2079 /// example, the following are all no-op casts: 2080 /// # bitcast i32* %x to i8* 2081 /// # bitcast <2 x i32> %x to <4 x i16> 2082 /// # ptrtoint i32* %x to i32 ; on 32-bit plaforms only 2083 /// @brief Determine if the described cast is a no-op. 2084 bool CastInst::isNoopCast(Instruction::CastOps Opcode, 2085 Type *SrcTy, 2086 Type *DestTy, 2087 Type *IntPtrTy) { 2088 switch (Opcode) { 2089 default: llvm_unreachable("Invalid CastOp"); 2090 case Instruction::Trunc: 2091 case Instruction::ZExt: 2092 case Instruction::SExt: 2093 case Instruction::FPTrunc: 2094 case Instruction::FPExt: 2095 case Instruction::UIToFP: 2096 case Instruction::SIToFP: 2097 case Instruction::FPToUI: 2098 case Instruction::FPToSI: 2099 case Instruction::AddrSpaceCast: 2100 // TODO: Target informations may give a more accurate answer here. 2101 return false; 2102 case Instruction::BitCast: 2103 return true; // BitCast never modifies bits. 2104 case Instruction::PtrToInt: 2105 return IntPtrTy->getScalarSizeInBits() == 2106 DestTy->getScalarSizeInBits(); 2107 case Instruction::IntToPtr: 2108 return IntPtrTy->getScalarSizeInBits() == 2109 SrcTy->getScalarSizeInBits(); 2110 } 2111 } 2112 2113 /// @brief Determine if a cast is a no-op. 2114 bool CastInst::isNoopCast(Type *IntPtrTy) const { 2115 return isNoopCast(getOpcode(), getOperand(0)->getType(), getType(), IntPtrTy); 2116 } 2117 2118 /// This function determines if a pair of casts can be eliminated and what 2119 /// opcode should be used in the elimination. This assumes that there are two 2120 /// instructions like this: 2121 /// * %F = firstOpcode SrcTy %x to MidTy 2122 /// * %S = secondOpcode MidTy %F to DstTy 2123 /// The function returns a resultOpcode so these two casts can be replaced with: 2124 /// * %Replacement = resultOpcode %SrcTy %x to DstTy 2125 /// If no such cast is permited, the function returns 0. 2126 unsigned CastInst::isEliminableCastPair( 2127 Instruction::CastOps firstOp, Instruction::CastOps secondOp, 2128 Type *SrcTy, Type *MidTy, Type *DstTy, Type *SrcIntPtrTy, Type *MidIntPtrTy, 2129 Type *DstIntPtrTy) { 2130 // Define the 144 possibilities for these two cast instructions. The values 2131 // in this matrix determine what to do in a given situation and select the 2132 // case in the switch below. The rows correspond to firstOp, the columns 2133 // correspond to secondOp. In looking at the table below, keep in mind 2134 // the following cast properties: 2135 // 2136 // Size Compare Source Destination 2137 // Operator Src ? Size Type Sign Type Sign 2138 // -------- ------------ ------------------- --------------------- 2139 // TRUNC > Integer Any Integral Any 2140 // ZEXT < Integral Unsigned Integer Any 2141 // SEXT < Integral Signed Integer Any 2142 // FPTOUI n/a FloatPt n/a Integral Unsigned 2143 // FPTOSI n/a FloatPt n/a Integral Signed 2144 // UITOFP n/a Integral Unsigned FloatPt n/a 2145 // SITOFP n/a Integral Signed FloatPt n/a 2146 // FPTRUNC > FloatPt n/a FloatPt n/a 2147 // FPEXT < FloatPt n/a FloatPt n/a 2148 // PTRTOINT n/a Pointer n/a Integral Unsigned 2149 // INTTOPTR n/a Integral Unsigned Pointer n/a 2150 // BITCAST = FirstClass n/a FirstClass n/a 2151 // ADDRSPCST n/a Pointer n/a Pointer n/a 2152 // 2153 // NOTE: some transforms are safe, but we consider them to be non-profitable. 2154 // For example, we could merge "fptoui double to i32" + "zext i32 to i64", 2155 // into "fptoui double to i64", but this loses information about the range 2156 // of the produced value (we no longer know the top-part is all zeros). 2157 // Further this conversion is often much more expensive for typical hardware, 2158 // and causes issues when building libgcc. We disallow fptosi+sext for the 2159 // same reason. 2160 const unsigned numCastOps = 2161 Instruction::CastOpsEnd - Instruction::CastOpsBegin; 2162 static const uint8_t CastResults[numCastOps][numCastOps] = { 2163 // T F F U S F F P I B A -+ 2164 // R Z S P P I I T P 2 N T S | 2165 // U E E 2 2 2 2 R E I T C C +- secondOp 2166 // N X X U S F F N X N 2 V V | 2167 // C T T I I P P C T T P T T -+ 2168 { 1, 0, 0,99,99, 0, 0,99,99,99, 0, 3, 0}, // Trunc -+ 2169 { 8, 1, 9,99,99, 2, 0,99,99,99, 2, 3, 0}, // ZExt | 2170 { 8, 0, 1,99,99, 0, 2,99,99,99, 0, 3, 0}, // SExt | 2171 { 0, 0, 0,99,99, 0, 0,99,99,99, 0, 3, 0}, // FPToUI | 2172 { 0, 0, 0,99,99, 0, 0,99,99,99, 0, 3, 0}, // FPToSI | 2173 { 99,99,99, 0, 0,99,99, 0, 0,99,99, 4, 0}, // UIToFP +- firstOp 2174 { 99,99,99, 0, 0,99,99, 0, 0,99,99, 4, 0}, // SIToFP | 2175 { 99,99,99, 0, 0,99,99, 1, 0,99,99, 4, 0}, // FPTrunc | 2176 { 99,99,99, 2, 2,99,99,10, 2,99,99, 4, 0}, // FPExt | 2177 { 1, 0, 0,99,99, 0, 0,99,99,99, 7, 3, 0}, // PtrToInt | 2178 { 99,99,99,99,99,99,99,99,99,11,99,15, 0}, // IntToPtr | 2179 { 5, 5, 5, 6, 6, 5, 5, 6, 6,16, 5, 1,14}, // BitCast | 2180 { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,13,12}, // AddrSpaceCast -+ 2181 }; 2182 2183 // If either of the casts are a bitcast from scalar to vector, disallow the 2184 // merging. However, bitcast of A->B->A are allowed. 2185 bool isFirstBitcast = (firstOp == Instruction::BitCast); 2186 bool isSecondBitcast = (secondOp == Instruction::BitCast); 2187 bool chainedBitcast = (SrcTy == DstTy && isFirstBitcast && isSecondBitcast); 2188 2189 // Check if any of the bitcasts convert scalars<->vectors. 2190 if ((isFirstBitcast && isa<VectorType>(SrcTy) != isa<VectorType>(MidTy)) || 2191 (isSecondBitcast && isa<VectorType>(MidTy) != isa<VectorType>(DstTy))) 2192 // Unless we are bitcasing to the original type, disallow optimizations. 2193 if (!chainedBitcast) return 0; 2194 2195 int ElimCase = CastResults[firstOp-Instruction::CastOpsBegin] 2196 [secondOp-Instruction::CastOpsBegin]; 2197 switch (ElimCase) { 2198 case 0: 2199 // Categorically disallowed. 2200 return 0; 2201 case 1: 2202 // Allowed, use first cast's opcode. 2203 return firstOp; 2204 case 2: 2205 // Allowed, use second cast's opcode. 2206 return secondOp; 2207 case 3: 2208 // No-op cast in second op implies firstOp as long as the DestTy 2209 // is integer and we are not converting between a vector and a 2210 // non-vector type. 2211 if (!SrcTy->isVectorTy() && DstTy->isIntegerTy()) 2212 return firstOp; 2213 return 0; 2214 case 4: 2215 // No-op cast in second op implies firstOp as long as the DestTy 2216 // is floating point. 2217 if (DstTy->isFloatingPointTy()) 2218 return firstOp; 2219 return 0; 2220 case 5: 2221 // No-op cast in first op implies secondOp as long as the SrcTy 2222 // is an integer. 2223 if (SrcTy->isIntegerTy()) 2224 return secondOp; 2225 return 0; 2226 case 6: 2227 // No-op cast in first op implies secondOp as long as the SrcTy 2228 // is a floating point. 2229 if (SrcTy->isFloatingPointTy()) 2230 return secondOp; 2231 return 0; 2232 case 7: { 2233 // Cannot simplify if address spaces are different! 2234 if (SrcTy->getPointerAddressSpace() != DstTy->getPointerAddressSpace()) 2235 return 0; 2236 2237 unsigned MidSize = MidTy->getScalarSizeInBits(); 2238 // We can still fold this without knowing the actual sizes as long we 2239 // know that the intermediate pointer is the largest possible 2240 // pointer size. 2241 // FIXME: Is this always true? 2242 if (MidSize == 64) 2243 return Instruction::BitCast; 2244 2245 // ptrtoint, inttoptr -> bitcast (ptr -> ptr) if int size is >= ptr size. 2246 if (!SrcIntPtrTy || DstIntPtrTy != SrcIntPtrTy) 2247 return 0; 2248 unsigned PtrSize = SrcIntPtrTy->getScalarSizeInBits(); 2249 if (MidSize >= PtrSize) 2250 return Instruction::BitCast; 2251 return 0; 2252 } 2253 case 8: { 2254 // ext, trunc -> bitcast, if the SrcTy and DstTy are same size 2255 // ext, trunc -> ext, if sizeof(SrcTy) < sizeof(DstTy) 2256 // ext, trunc -> trunc, if sizeof(SrcTy) > sizeof(DstTy) 2257 unsigned SrcSize = SrcTy->getScalarSizeInBits(); 2258 unsigned DstSize = DstTy->getScalarSizeInBits(); 2259 if (SrcSize == DstSize) 2260 return Instruction::BitCast; 2261 else if (SrcSize < DstSize) 2262 return firstOp; 2263 return secondOp; 2264 } 2265 case 9: 2266 // zext, sext -> zext, because sext can't sign extend after zext 2267 return Instruction::ZExt; 2268 case 10: 2269 // fpext followed by ftrunc is allowed if the bit size returned to is 2270 // the same as the original, in which case its just a bitcast 2271 if (SrcTy == DstTy) 2272 return Instruction::BitCast; 2273 return 0; // If the types are not the same we can't eliminate it. 2274 case 11: { 2275 // inttoptr, ptrtoint -> bitcast if SrcSize<=PtrSize and SrcSize==DstSize 2276 if (!MidIntPtrTy) 2277 return 0; 2278 unsigned PtrSize = MidIntPtrTy->getScalarSizeInBits(); 2279 unsigned SrcSize = SrcTy->getScalarSizeInBits(); 2280 unsigned DstSize = DstTy->getScalarSizeInBits(); 2281 if (SrcSize <= PtrSize && SrcSize == DstSize) 2282 return Instruction::BitCast; 2283 return 0; 2284 } 2285 case 12: { 2286 // addrspacecast, addrspacecast -> bitcast, if SrcAS == DstAS 2287 // addrspacecast, addrspacecast -> addrspacecast, if SrcAS != DstAS 2288 if (SrcTy->getPointerAddressSpace() != DstTy->getPointerAddressSpace()) 2289 return Instruction::AddrSpaceCast; 2290 return Instruction::BitCast; 2291 } 2292 case 13: 2293 // FIXME: this state can be merged with (1), but the following assert 2294 // is useful to check the correcteness of the sequence due to semantic 2295 // change of bitcast. 2296 assert( 2297 SrcTy->isPtrOrPtrVectorTy() && 2298 MidTy->isPtrOrPtrVectorTy() && 2299 DstTy->isPtrOrPtrVectorTy() && 2300 SrcTy->getPointerAddressSpace() != MidTy->getPointerAddressSpace() && 2301 MidTy->getPointerAddressSpace() == DstTy->getPointerAddressSpace() && 2302 "Illegal addrspacecast, bitcast sequence!"); 2303 // Allowed, use first cast's opcode 2304 return firstOp; 2305 case 14: 2306 // FIXME: this state can be merged with (2), but the following assert 2307 // is useful to check the correcteness of the sequence due to semantic 2308 // change of bitcast. 2309 assert( 2310 SrcTy->isPtrOrPtrVectorTy() && 2311 MidTy->isPtrOrPtrVectorTy() && 2312 DstTy->isPtrOrPtrVectorTy() && 2313 SrcTy->getPointerAddressSpace() == MidTy->getPointerAddressSpace() && 2314 MidTy->getPointerAddressSpace() != DstTy->getPointerAddressSpace() && 2315 "Illegal bitcast, addrspacecast sequence!"); 2316 // Allowed, use second cast's opcode 2317 return secondOp; 2318 case 15: 2319 // FIXME: this state can be merged with (1), but the following assert 2320 // is useful to check the correcteness of the sequence due to semantic 2321 // change of bitcast. 2322 assert( 2323 SrcTy->isIntOrIntVectorTy() && 2324 MidTy->isPtrOrPtrVectorTy() && 2325 DstTy->isPtrOrPtrVectorTy() && 2326 MidTy->getPointerAddressSpace() == DstTy->getPointerAddressSpace() && 2327 "Illegal inttoptr, bitcast sequence!"); 2328 // Allowed, use first cast's opcode 2329 return firstOp; 2330 case 16: 2331 // FIXME: this state can be merged with (2), but the following assert 2332 // is useful to check the correcteness of the sequence due to semantic 2333 // change of bitcast. 2334 assert( 2335 SrcTy->isPtrOrPtrVectorTy() && 2336 MidTy->isPtrOrPtrVectorTy() && 2337 DstTy->isIntOrIntVectorTy() && 2338 SrcTy->getPointerAddressSpace() == MidTy->getPointerAddressSpace() && 2339 "Illegal bitcast, ptrtoint sequence!"); 2340 // Allowed, use second cast's opcode 2341 return secondOp; 2342 case 99: 2343 // Cast combination can't happen (error in input). This is for all cases 2344 // where the MidTy is not the same for the two cast instructions. 2345 llvm_unreachable("Invalid Cast Combination"); 2346 default: 2347 llvm_unreachable("Error in CastResults table!!!"); 2348 } 2349 } 2350 2351 CastInst *CastInst::Create(Instruction::CastOps op, Value *S, Type *Ty, 2352 const Twine &Name, Instruction *InsertBefore) { 2353 assert(castIsValid(op, S, Ty) && "Invalid cast!"); 2354 // Construct and return the appropriate CastInst subclass 2355 switch (op) { 2356 case Trunc: return new TruncInst (S, Ty, Name, InsertBefore); 2357 case ZExt: return new ZExtInst (S, Ty, Name, InsertBefore); 2358 case SExt: return new SExtInst (S, Ty, Name, InsertBefore); 2359 case FPTrunc: return new FPTruncInst (S, Ty, Name, InsertBefore); 2360 case FPExt: return new FPExtInst (S, Ty, Name, InsertBefore); 2361 case UIToFP: return new UIToFPInst (S, Ty, Name, InsertBefore); 2362 case SIToFP: return new SIToFPInst (S, Ty, Name, InsertBefore); 2363 case FPToUI: return new FPToUIInst (S, Ty, Name, InsertBefore); 2364 case FPToSI: return new FPToSIInst (S, Ty, Name, InsertBefore); 2365 case PtrToInt: return new PtrToIntInst (S, Ty, Name, InsertBefore); 2366 case IntToPtr: return new IntToPtrInst (S, Ty, Name, InsertBefore); 2367 case BitCast: return new BitCastInst (S, Ty, Name, InsertBefore); 2368 case AddrSpaceCast: return new AddrSpaceCastInst (S, Ty, Name, InsertBefore); 2369 default: llvm_unreachable("Invalid opcode provided"); 2370 } 2371 } 2372 2373 CastInst *CastInst::Create(Instruction::CastOps op, Value *S, Type *Ty, 2374 const Twine &Name, BasicBlock *InsertAtEnd) { 2375 assert(castIsValid(op, S, Ty) && "Invalid cast!"); 2376 // Construct and return the appropriate CastInst subclass 2377 switch (op) { 2378 case Trunc: return new TruncInst (S, Ty, Name, InsertAtEnd); 2379 case ZExt: return new ZExtInst (S, Ty, Name, InsertAtEnd); 2380 case SExt: return new SExtInst (S, Ty, Name, InsertAtEnd); 2381 case FPTrunc: return new FPTruncInst (S, Ty, Name, InsertAtEnd); 2382 case FPExt: return new FPExtInst (S, Ty, Name, InsertAtEnd); 2383 case UIToFP: return new UIToFPInst (S, Ty, Name, InsertAtEnd); 2384 case SIToFP: return new SIToFPInst (S, Ty, Name, InsertAtEnd); 2385 case FPToUI: return new FPToUIInst (S, Ty, Name, InsertAtEnd); 2386 case FPToSI: return new FPToSIInst (S, Ty, Name, InsertAtEnd); 2387 case PtrToInt: return new PtrToIntInst (S, Ty, Name, InsertAtEnd); 2388 case IntToPtr: return new IntToPtrInst (S, Ty, Name, InsertAtEnd); 2389 case BitCast: return new BitCastInst (S, Ty, Name, InsertAtEnd); 2390 case AddrSpaceCast: return new AddrSpaceCastInst (S, Ty, Name, InsertAtEnd); 2391 default: llvm_unreachable("Invalid opcode provided"); 2392 } 2393 } 2394 2395 CastInst *CastInst::CreateZExtOrBitCast(Value *S, Type *Ty, 2396 const Twine &Name, 2397 Instruction *InsertBefore) { 2398 if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits()) 2399 return Create(Instruction::BitCast, S, Ty, Name, InsertBefore); 2400 return Create(Instruction::ZExt, S, Ty, Name, InsertBefore); 2401 } 2402 2403 CastInst *CastInst::CreateZExtOrBitCast(Value *S, Type *Ty, 2404 const Twine &Name, 2405 BasicBlock *InsertAtEnd) { 2406 if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits()) 2407 return Create(Instruction::BitCast, S, Ty, Name, InsertAtEnd); 2408 return Create(Instruction::ZExt, S, Ty, Name, InsertAtEnd); 2409 } 2410 2411 CastInst *CastInst::CreateSExtOrBitCast(Value *S, Type *Ty, 2412 const Twine &Name, 2413 Instruction *InsertBefore) { 2414 if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits()) 2415 return Create(Instruction::BitCast, S, Ty, Name, InsertBefore); 2416 return Create(Instruction::SExt, S, Ty, Name, InsertBefore); 2417 } 2418 2419 CastInst *CastInst::CreateSExtOrBitCast(Value *S, Type *Ty, 2420 const Twine &Name, 2421 BasicBlock *InsertAtEnd) { 2422 if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits()) 2423 return Create(Instruction::BitCast, S, Ty, Name, InsertAtEnd); 2424 return Create(Instruction::SExt, S, Ty, Name, InsertAtEnd); 2425 } 2426 2427 CastInst *CastInst::CreateTruncOrBitCast(Value *S, Type *Ty, 2428 const Twine &Name, 2429 Instruction *InsertBefore) { 2430 if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits()) 2431 return Create(Instruction::BitCast, S, Ty, Name, InsertBefore); 2432 return Create(Instruction::Trunc, S, Ty, Name, InsertBefore); 2433 } 2434 2435 CastInst *CastInst::CreateTruncOrBitCast(Value *S, Type *Ty, 2436 const Twine &Name, 2437 BasicBlock *InsertAtEnd) { 2438 if (S->getType()->getScalarSizeInBits() == Ty->getScalarSizeInBits()) 2439 return Create(Instruction::BitCast, S, Ty, Name, InsertAtEnd); 2440 return Create(Instruction::Trunc, S, Ty, Name, InsertAtEnd); 2441 } 2442 2443 CastInst *CastInst::CreatePointerCast(Value *S, Type *Ty, 2444 const Twine &Name, 2445 BasicBlock *InsertAtEnd) { 2446 assert(S->getType()->isPtrOrPtrVectorTy() && "Invalid cast"); 2447 assert((Ty->isIntOrIntVectorTy() || Ty->isPtrOrPtrVectorTy()) && 2448 "Invalid cast"); 2449 assert(Ty->isVectorTy() == S->getType()->isVectorTy() && "Invalid cast"); 2450 assert((!Ty->isVectorTy() || 2451 Ty->getVectorNumElements() == S->getType()->getVectorNumElements()) && 2452 "Invalid cast"); 2453 2454 if (Ty->isIntOrIntVectorTy()) 2455 return Create(Instruction::PtrToInt, S, Ty, Name, InsertAtEnd); 2456 2457 Type *STy = S->getType(); 2458 if (STy->getPointerAddressSpace() != Ty->getPointerAddressSpace()) 2459 return Create(Instruction::AddrSpaceCast, S, Ty, Name, InsertAtEnd); 2460 2461 return Create(Instruction::BitCast, S, Ty, Name, InsertAtEnd); 2462 } 2463 2464 /// @brief Create a BitCast or a PtrToInt cast instruction 2465 CastInst *CastInst::CreatePointerCast(Value *S, Type *Ty, 2466 const Twine &Name, 2467 Instruction *InsertBefore) { 2468 assert(S->getType()->isPtrOrPtrVectorTy() && "Invalid cast"); 2469 assert((Ty->isIntOrIntVectorTy() || Ty->isPtrOrPtrVectorTy()) && 2470 "Invalid cast"); 2471 assert(Ty->isVectorTy() == S->getType()->isVectorTy() && "Invalid cast"); 2472 assert((!Ty->isVectorTy() || 2473 Ty->getVectorNumElements() == S->getType()->getVectorNumElements()) && 2474 "Invalid cast"); 2475 2476 if (Ty->isIntOrIntVectorTy()) 2477 return Create(Instruction::PtrToInt, S, Ty, Name, InsertBefore); 2478 2479 Type *STy = S->getType(); 2480 if (STy->getPointerAddressSpace() != Ty->getPointerAddressSpace()) 2481 return Create(Instruction::AddrSpaceCast, S, Ty, Name, InsertBefore); 2482 2483 return Create(Instruction::BitCast, S, Ty, Name, InsertBefore); 2484 } 2485 2486 CastInst *CastInst::CreateIntegerCast(Value *C, Type *Ty, 2487 bool isSigned, const Twine &Name, 2488 Instruction *InsertBefore) { 2489 assert(C->getType()->isIntOrIntVectorTy() && Ty->isIntOrIntVectorTy() && 2490 "Invalid integer cast"); 2491 unsigned SrcBits = C->getType()->getScalarSizeInBits(); 2492 unsigned DstBits = Ty->getScalarSizeInBits(); 2493 Instruction::CastOps opcode = 2494 (SrcBits == DstBits ? Instruction::BitCast : 2495 (SrcBits > DstBits ? Instruction::Trunc : 2496 (isSigned ? Instruction::SExt : Instruction::ZExt))); 2497 return Create(opcode, C, Ty, Name, InsertBefore); 2498 } 2499 2500 CastInst *CastInst::CreateIntegerCast(Value *C, Type *Ty, 2501 bool isSigned, const Twine &Name, 2502 BasicBlock *InsertAtEnd) { 2503 assert(C->getType()->isIntOrIntVectorTy() && Ty->isIntOrIntVectorTy() && 2504 "Invalid cast"); 2505 unsigned SrcBits = C->getType()->getScalarSizeInBits(); 2506 unsigned DstBits = Ty->getScalarSizeInBits(); 2507 Instruction::CastOps opcode = 2508 (SrcBits == DstBits ? Instruction::BitCast : 2509 (SrcBits > DstBits ? Instruction::Trunc : 2510 (isSigned ? Instruction::SExt : Instruction::ZExt))); 2511 return Create(opcode, C, Ty, Name, InsertAtEnd); 2512 } 2513 2514 CastInst *CastInst::CreateFPCast(Value *C, Type *Ty, 2515 const Twine &Name, 2516 Instruction *InsertBefore) { 2517 assert(C->getType()->isFPOrFPVectorTy() && Ty->isFPOrFPVectorTy() && 2518 "Invalid cast"); 2519 unsigned SrcBits = C->getType()->getScalarSizeInBits(); 2520 unsigned DstBits = Ty->getScalarSizeInBits(); 2521 Instruction::CastOps opcode = 2522 (SrcBits == DstBits ? Instruction::BitCast : 2523 (SrcBits > DstBits ? Instruction::FPTrunc : Instruction::FPExt)); 2524 return Create(opcode, C, Ty, Name, InsertBefore); 2525 } 2526 2527 CastInst *CastInst::CreateFPCast(Value *C, Type *Ty, 2528 const Twine &Name, 2529 BasicBlock *InsertAtEnd) { 2530 assert(C->getType()->isFPOrFPVectorTy() && Ty->isFPOrFPVectorTy() && 2531 "Invalid cast"); 2532 unsigned SrcBits = C->getType()->getScalarSizeInBits(); 2533 unsigned DstBits = Ty->getScalarSizeInBits(); 2534 Instruction::CastOps opcode = 2535 (SrcBits == DstBits ? Instruction::BitCast : 2536 (SrcBits > DstBits ? Instruction::FPTrunc : Instruction::FPExt)); 2537 return Create(opcode, C, Ty, Name, InsertAtEnd); 2538 } 2539 2540 // Check whether it is valid to call getCastOpcode for these types. 2541 // This routine must be kept in sync with getCastOpcode. 2542 bool CastInst::isCastable(Type *SrcTy, Type *DestTy) { 2543 if (!SrcTy->isFirstClassType() || !DestTy->isFirstClassType()) 2544 return false; 2545 2546 if (SrcTy == DestTy) 2547 return true; 2548 2549 if (VectorType *SrcVecTy = dyn_cast<VectorType>(SrcTy)) 2550 if (VectorType *DestVecTy = dyn_cast<VectorType>(DestTy)) 2551 if (SrcVecTy->getNumElements() == DestVecTy->getNumElements()) { 2552 // An element by element cast. Valid if casting the elements is valid. 2553 SrcTy = SrcVecTy->getElementType(); 2554 DestTy = DestVecTy->getElementType(); 2555 } 2556 2557 // Get the bit sizes, we'll need these 2558 unsigned SrcBits = SrcTy->getPrimitiveSizeInBits(); // 0 for ptr 2559 unsigned DestBits = DestTy->getPrimitiveSizeInBits(); // 0 for ptr 2560 2561 // Run through the possibilities ... 2562 if (DestTy->isIntegerTy()) { // Casting to integral 2563 if (SrcTy->isIntegerTy()) { // Casting from integral 2564 return true; 2565 } else if (SrcTy->isFloatingPointTy()) { // Casting from floating pt 2566 return true; 2567 } else if (SrcTy->isVectorTy()) { // Casting from vector 2568 return DestBits == SrcBits; 2569 } else { // Casting from something else 2570 return SrcTy->isPointerTy(); 2571 } 2572 } else if (DestTy->isFloatingPointTy()) { // Casting to floating pt 2573 if (SrcTy->isIntegerTy()) { // Casting from integral 2574 return true; 2575 } else if (SrcTy->isFloatingPointTy()) { // Casting from floating pt 2576 return true; 2577 } else if (SrcTy->isVectorTy()) { // Casting from vector 2578 return DestBits == SrcBits; 2579 } else { // Casting from something else 2580 return false; 2581 } 2582 } else if (DestTy->isVectorTy()) { // Casting to vector 2583 return DestBits == SrcBits; 2584 } else if (DestTy->isPointerTy()) { // Casting to pointer 2585 if (SrcTy->isPointerTy()) { // Casting from pointer 2586 return true; 2587 } else if (SrcTy->isIntegerTy()) { // Casting from integral 2588 return true; 2589 } else { // Casting from something else 2590 return false; 2591 } 2592 } else if (DestTy->isX86_MMXTy()) { 2593 if (SrcTy->isVectorTy()) { 2594 return DestBits == SrcBits; // 64-bit vector to MMX 2595 } else { 2596 return false; 2597 } 2598 } else { // Casting to something else 2599 return false; 2600 } 2601 } 2602 2603 bool CastInst::isBitCastable(Type *SrcTy, Type *DestTy) { 2604 if (!SrcTy->isFirstClassType() || !DestTy->isFirstClassType()) 2605 return false; 2606 2607 if (SrcTy == DestTy) 2608 return true; 2609 2610 if (VectorType *SrcVecTy = dyn_cast<VectorType>(SrcTy)) { 2611 if (VectorType *DestVecTy = dyn_cast<VectorType>(DestTy)) { 2612 if (SrcVecTy->getNumElements() == DestVecTy->getNumElements()) { 2613 // An element by element cast. Valid if casting the elements is valid. 2614 SrcTy = SrcVecTy->getElementType(); 2615 DestTy = DestVecTy->getElementType(); 2616 } 2617 } 2618 } 2619 2620 if (PointerType *DestPtrTy = dyn_cast<PointerType>(DestTy)) { 2621 if (PointerType *SrcPtrTy = dyn_cast<PointerType>(SrcTy)) { 2622 return SrcPtrTy->getAddressSpace() == DestPtrTy->getAddressSpace(); 2623 } 2624 } 2625 2626 unsigned SrcBits = SrcTy->getPrimitiveSizeInBits(); // 0 for ptr 2627 unsigned DestBits = DestTy->getPrimitiveSizeInBits(); // 0 for ptr 2628 2629 // Could still have vectors of pointers if the number of elements doesn't 2630 // match 2631 if (SrcBits == 0 || DestBits == 0) 2632 return false; 2633 2634 if (SrcBits != DestBits) 2635 return false; 2636 2637 if (DestTy->isX86_MMXTy() || SrcTy->isX86_MMXTy()) 2638 return false; 2639 2640 return true; 2641 } 2642 2643 // Provide a way to get a "cast" where the cast opcode is inferred from the 2644 // types and size of the operand. This, basically, is a parallel of the 2645 // logic in the castIsValid function below. This axiom should hold: 2646 // castIsValid( getCastOpcode(Val, Ty), Val, Ty) 2647 // should not assert in castIsValid. In other words, this produces a "correct" 2648 // casting opcode for the arguments passed to it. 2649 // This routine must be kept in sync with isCastable. 2650 Instruction::CastOps 2651 CastInst::getCastOpcode( 2652 const Value *Src, bool SrcIsSigned, Type *DestTy, bool DestIsSigned) { 2653 Type *SrcTy = Src->getType(); 2654 2655 assert(SrcTy->isFirstClassType() && DestTy->isFirstClassType() && 2656 "Only first class types are castable!"); 2657 2658 if (SrcTy == DestTy) 2659 return BitCast; 2660 2661 // FIXME: Check address space sizes here 2662 if (VectorType *SrcVecTy = dyn_cast<VectorType>(SrcTy)) 2663 if (VectorType *DestVecTy = dyn_cast<VectorType>(DestTy)) 2664 if (SrcVecTy->getNumElements() == DestVecTy->getNumElements()) { 2665 // An element by element cast. Find the appropriate opcode based on the 2666 // element types. 2667 SrcTy = SrcVecTy->getElementType(); 2668 DestTy = DestVecTy->getElementType(); 2669 } 2670 2671 // Get the bit sizes, we'll need these 2672 unsigned SrcBits = SrcTy->getPrimitiveSizeInBits(); // 0 for ptr 2673 unsigned DestBits = DestTy->getPrimitiveSizeInBits(); // 0 for ptr 2674 2675 // Run through the possibilities ... 2676 if (DestTy->isIntegerTy()) { // Casting to integral 2677 if (SrcTy->isIntegerTy()) { // Casting from integral 2678 if (DestBits < SrcBits) 2679 return Trunc; // int -> smaller int 2680 else if (DestBits > SrcBits) { // its an extension 2681 if (SrcIsSigned) 2682 return SExt; // signed -> SEXT 2683 else 2684 return ZExt; // unsigned -> ZEXT 2685 } else { 2686 return BitCast; // Same size, No-op cast 2687 } 2688 } else if (SrcTy->isFloatingPointTy()) { // Casting from floating pt 2689 if (DestIsSigned) 2690 return FPToSI; // FP -> sint 2691 else 2692 return FPToUI; // FP -> uint 2693 } else if (SrcTy->isVectorTy()) { 2694 assert(DestBits == SrcBits && 2695 "Casting vector to integer of different width"); 2696 return BitCast; // Same size, no-op cast 2697 } else { 2698 assert(SrcTy->isPointerTy() && 2699 "Casting from a value that is not first-class type"); 2700 return PtrToInt; // ptr -> int 2701 } 2702 } else if (DestTy->isFloatingPointTy()) { // Casting to floating pt 2703 if (SrcTy->isIntegerTy()) { // Casting from integral 2704 if (SrcIsSigned) 2705 return SIToFP; // sint -> FP 2706 else 2707 return UIToFP; // uint -> FP 2708 } else if (SrcTy->isFloatingPointTy()) { // Casting from floating pt 2709 if (DestBits < SrcBits) { 2710 return FPTrunc; // FP -> smaller FP 2711 } else if (DestBits > SrcBits) { 2712 return FPExt; // FP -> larger FP 2713 } else { 2714 return BitCast; // same size, no-op cast 2715 } 2716 } else if (SrcTy->isVectorTy()) { 2717 assert(DestBits == SrcBits && 2718 "Casting vector to floating point of different width"); 2719 return BitCast; // same size, no-op cast 2720 } 2721 llvm_unreachable("Casting pointer or non-first class to float"); 2722 } else if (DestTy->isVectorTy()) { 2723 assert(DestBits == SrcBits && 2724 "Illegal cast to vector (wrong type or size)"); 2725 return BitCast; 2726 } else if (DestTy->isPointerTy()) { 2727 if (SrcTy->isPointerTy()) { 2728 if (DestTy->getPointerAddressSpace() != SrcTy->getPointerAddressSpace()) 2729 return AddrSpaceCast; 2730 return BitCast; // ptr -> ptr 2731 } else if (SrcTy->isIntegerTy()) { 2732 return IntToPtr; // int -> ptr 2733 } 2734 llvm_unreachable("Casting pointer to other than pointer or int"); 2735 } else if (DestTy->isX86_MMXTy()) { 2736 if (SrcTy->isVectorTy()) { 2737 assert(DestBits == SrcBits && "Casting vector of wrong width to X86_MMX"); 2738 return BitCast; // 64-bit vector to MMX 2739 } 2740 llvm_unreachable("Illegal cast to X86_MMX"); 2741 } 2742 llvm_unreachable("Casting to type that is not first-class"); 2743 } 2744 2745 //===----------------------------------------------------------------------===// 2746 // CastInst SubClass Constructors 2747 //===----------------------------------------------------------------------===// 2748 2749 /// Check that the construction parameters for a CastInst are correct. This 2750 /// could be broken out into the separate constructors but it is useful to have 2751 /// it in one place and to eliminate the redundant code for getting the sizes 2752 /// of the types involved. 2753 bool 2754 CastInst::castIsValid(Instruction::CastOps op, Value *S, Type *DstTy) { 2755 2756 // Check for type sanity on the arguments 2757 Type *SrcTy = S->getType(); 2758 2759 // If this is a cast to the same type then it's trivially true. 2760 if (SrcTy == DstTy) 2761 return true; 2762 2763 if (!SrcTy->isFirstClassType() || !DstTy->isFirstClassType() || 2764 SrcTy->isAggregateType() || DstTy->isAggregateType()) 2765 return false; 2766 2767 // Get the size of the types in bits, we'll need this later 2768 unsigned SrcBitSize = SrcTy->getScalarSizeInBits(); 2769 unsigned DstBitSize = DstTy->getScalarSizeInBits(); 2770 2771 // If these are vector types, get the lengths of the vectors (using zero for 2772 // scalar types means that checking that vector lengths match also checks that 2773 // scalars are not being converted to vectors or vectors to scalars). 2774 unsigned SrcLength = SrcTy->isVectorTy() ? 2775 cast<VectorType>(SrcTy)->getNumElements() : 0; 2776 unsigned DstLength = DstTy->isVectorTy() ? 2777 cast<VectorType>(DstTy)->getNumElements() : 0; 2778 2779 // Switch on the opcode provided 2780 switch (op) { 2781 default: return false; // This is an input error 2782 case Instruction::Trunc: 2783 return SrcTy->isIntOrIntVectorTy() && DstTy->isIntOrIntVectorTy() && 2784 SrcLength == DstLength && SrcBitSize > DstBitSize; 2785 case Instruction::ZExt: 2786 return SrcTy->isIntOrIntVectorTy() && DstTy->isIntOrIntVectorTy() && 2787 SrcLength == DstLength && SrcBitSize < DstBitSize; 2788 case Instruction::SExt: 2789 return SrcTy->isIntOrIntVectorTy() && DstTy->isIntOrIntVectorTy() && 2790 SrcLength == DstLength && SrcBitSize < DstBitSize; 2791 case Instruction::FPTrunc: 2792 return SrcTy->isFPOrFPVectorTy() && DstTy->isFPOrFPVectorTy() && 2793 SrcLength == DstLength && SrcBitSize > DstBitSize; 2794 case Instruction::FPExt: 2795 return SrcTy->isFPOrFPVectorTy() && DstTy->isFPOrFPVectorTy() && 2796 SrcLength == DstLength && SrcBitSize < DstBitSize; 2797 case Instruction::UIToFP: 2798 case Instruction::SIToFP: 2799 return SrcTy->isIntOrIntVectorTy() && DstTy->isFPOrFPVectorTy() && 2800 SrcLength == DstLength; 2801 case Instruction::FPToUI: 2802 case Instruction::FPToSI: 2803 return SrcTy->isFPOrFPVectorTy() && DstTy->isIntOrIntVectorTy() && 2804 SrcLength == DstLength; 2805 case Instruction::PtrToInt: 2806 if (isa<VectorType>(SrcTy) != isa<VectorType>(DstTy)) 2807 return false; 2808 if (VectorType *VT = dyn_cast<VectorType>(SrcTy)) 2809 if (VT->getNumElements() != cast<VectorType>(DstTy)->getNumElements()) 2810 return false; 2811 return SrcTy->getScalarType()->isPointerTy() && 2812 DstTy->getScalarType()->isIntegerTy(); 2813 case Instruction::IntToPtr: 2814 if (isa<VectorType>(SrcTy) != isa<VectorType>(DstTy)) 2815 return false; 2816 if (VectorType *VT = dyn_cast<VectorType>(SrcTy)) 2817 if (VT->getNumElements() != cast<VectorType>(DstTy)->getNumElements()) 2818 return false; 2819 return SrcTy->getScalarType()->isIntegerTy() && 2820 DstTy->getScalarType()->isPointerTy(); 2821 case Instruction::BitCast: { 2822 PointerType *SrcPtrTy = dyn_cast<PointerType>(SrcTy->getScalarType()); 2823 PointerType *DstPtrTy = dyn_cast<PointerType>(DstTy->getScalarType()); 2824 2825 // BitCast implies a no-op cast of type only. No bits change. 2826 // However, you can't cast pointers to anything but pointers. 2827 if (!SrcPtrTy != !DstPtrTy) 2828 return false; 2829 2830 // For non-pointer cases, the cast is okay if the source and destination bit 2831 // widths are identical. 2832 if (!SrcPtrTy) 2833 return SrcTy->getPrimitiveSizeInBits() == DstTy->getPrimitiveSizeInBits(); 2834 2835 // If both are pointers then the address spaces must match. 2836 if (SrcPtrTy->getAddressSpace() != DstPtrTy->getAddressSpace()) 2837 return false; 2838 2839 // A vector of pointers must have the same number of elements. 2840 if (VectorType *SrcVecTy = dyn_cast<VectorType>(SrcTy)) { 2841 if (VectorType *DstVecTy = dyn_cast<VectorType>(DstTy)) 2842 return (SrcVecTy->getNumElements() == DstVecTy->getNumElements()); 2843 2844 return false; 2845 } 2846 2847 return true; 2848 } 2849 case Instruction::AddrSpaceCast: { 2850 PointerType *SrcPtrTy = dyn_cast<PointerType>(SrcTy->getScalarType()); 2851 if (!SrcPtrTy) 2852 return false; 2853 2854 PointerType *DstPtrTy = dyn_cast<PointerType>(DstTy->getScalarType()); 2855 if (!DstPtrTy) 2856 return false; 2857 2858 if (SrcPtrTy->getAddressSpace() == DstPtrTy->getAddressSpace()) 2859 return false; 2860 2861 if (VectorType *SrcVecTy = dyn_cast<VectorType>(SrcTy)) { 2862 if (VectorType *DstVecTy = dyn_cast<VectorType>(DstTy)) 2863 return (SrcVecTy->getNumElements() == DstVecTy->getNumElements()); 2864 2865 return false; 2866 } 2867 2868 return true; 2869 } 2870 } 2871 } 2872 2873 TruncInst::TruncInst( 2874 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 2875 ) : CastInst(Ty, Trunc, S, Name, InsertBefore) { 2876 assert(castIsValid(getOpcode(), S, Ty) && "Illegal Trunc"); 2877 } 2878 2879 TruncInst::TruncInst( 2880 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 2881 ) : CastInst(Ty, Trunc, S, Name, InsertAtEnd) { 2882 assert(castIsValid(getOpcode(), S, Ty) && "Illegal Trunc"); 2883 } 2884 2885 ZExtInst::ZExtInst( 2886 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 2887 ) : CastInst(Ty, ZExt, S, Name, InsertBefore) { 2888 assert(castIsValid(getOpcode(), S, Ty) && "Illegal ZExt"); 2889 } 2890 2891 ZExtInst::ZExtInst( 2892 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 2893 ) : CastInst(Ty, ZExt, S, Name, InsertAtEnd) { 2894 assert(castIsValid(getOpcode(), S, Ty) && "Illegal ZExt"); 2895 } 2896 SExtInst::SExtInst( 2897 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 2898 ) : CastInst(Ty, SExt, S, Name, InsertBefore) { 2899 assert(castIsValid(getOpcode(), S, Ty) && "Illegal SExt"); 2900 } 2901 2902 SExtInst::SExtInst( 2903 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 2904 ) : CastInst(Ty, SExt, S, Name, InsertAtEnd) { 2905 assert(castIsValid(getOpcode(), S, Ty) && "Illegal SExt"); 2906 } 2907 2908 FPTruncInst::FPTruncInst( 2909 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 2910 ) : CastInst(Ty, FPTrunc, S, Name, InsertBefore) { 2911 assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPTrunc"); 2912 } 2913 2914 FPTruncInst::FPTruncInst( 2915 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 2916 ) : CastInst(Ty, FPTrunc, S, Name, InsertAtEnd) { 2917 assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPTrunc"); 2918 } 2919 2920 FPExtInst::FPExtInst( 2921 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 2922 ) : CastInst(Ty, FPExt, S, Name, InsertBefore) { 2923 assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPExt"); 2924 } 2925 2926 FPExtInst::FPExtInst( 2927 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 2928 ) : CastInst(Ty, FPExt, S, Name, InsertAtEnd) { 2929 assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPExt"); 2930 } 2931 2932 UIToFPInst::UIToFPInst( 2933 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 2934 ) : CastInst(Ty, UIToFP, S, Name, InsertBefore) { 2935 assert(castIsValid(getOpcode(), S, Ty) && "Illegal UIToFP"); 2936 } 2937 2938 UIToFPInst::UIToFPInst( 2939 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 2940 ) : CastInst(Ty, UIToFP, S, Name, InsertAtEnd) { 2941 assert(castIsValid(getOpcode(), S, Ty) && "Illegal UIToFP"); 2942 } 2943 2944 SIToFPInst::SIToFPInst( 2945 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 2946 ) : CastInst(Ty, SIToFP, S, Name, InsertBefore) { 2947 assert(castIsValid(getOpcode(), S, Ty) && "Illegal SIToFP"); 2948 } 2949 2950 SIToFPInst::SIToFPInst( 2951 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 2952 ) : CastInst(Ty, SIToFP, S, Name, InsertAtEnd) { 2953 assert(castIsValid(getOpcode(), S, Ty) && "Illegal SIToFP"); 2954 } 2955 2956 FPToUIInst::FPToUIInst( 2957 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 2958 ) : CastInst(Ty, FPToUI, S, Name, InsertBefore) { 2959 assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPToUI"); 2960 } 2961 2962 FPToUIInst::FPToUIInst( 2963 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 2964 ) : CastInst(Ty, FPToUI, S, Name, InsertAtEnd) { 2965 assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPToUI"); 2966 } 2967 2968 FPToSIInst::FPToSIInst( 2969 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 2970 ) : CastInst(Ty, FPToSI, S, Name, InsertBefore) { 2971 assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPToSI"); 2972 } 2973 2974 FPToSIInst::FPToSIInst( 2975 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 2976 ) : CastInst(Ty, FPToSI, S, Name, InsertAtEnd) { 2977 assert(castIsValid(getOpcode(), S, Ty) && "Illegal FPToSI"); 2978 } 2979 2980 PtrToIntInst::PtrToIntInst( 2981 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 2982 ) : CastInst(Ty, PtrToInt, S, Name, InsertBefore) { 2983 assert(castIsValid(getOpcode(), S, Ty) && "Illegal PtrToInt"); 2984 } 2985 2986 PtrToIntInst::PtrToIntInst( 2987 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 2988 ) : CastInst(Ty, PtrToInt, S, Name, InsertAtEnd) { 2989 assert(castIsValid(getOpcode(), S, Ty) && "Illegal PtrToInt"); 2990 } 2991 2992 IntToPtrInst::IntToPtrInst( 2993 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 2994 ) : CastInst(Ty, IntToPtr, S, Name, InsertBefore) { 2995 assert(castIsValid(getOpcode(), S, Ty) && "Illegal IntToPtr"); 2996 } 2997 2998 IntToPtrInst::IntToPtrInst( 2999 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 3000 ) : CastInst(Ty, IntToPtr, S, Name, InsertAtEnd) { 3001 assert(castIsValid(getOpcode(), S, Ty) && "Illegal IntToPtr"); 3002 } 3003 3004 BitCastInst::BitCastInst( 3005 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 3006 ) : CastInst(Ty, BitCast, S, Name, InsertBefore) { 3007 assert(castIsValid(getOpcode(), S, Ty) && "Illegal BitCast"); 3008 } 3009 3010 BitCastInst::BitCastInst( 3011 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 3012 ) : CastInst(Ty, BitCast, S, Name, InsertAtEnd) { 3013 assert(castIsValid(getOpcode(), S, Ty) && "Illegal BitCast"); 3014 } 3015 3016 AddrSpaceCastInst::AddrSpaceCastInst( 3017 Value *S, Type *Ty, const Twine &Name, Instruction *InsertBefore 3018 ) : CastInst(Ty, AddrSpaceCast, S, Name, InsertBefore) { 3019 assert(castIsValid(getOpcode(), S, Ty) && "Illegal AddrSpaceCast"); 3020 } 3021 3022 AddrSpaceCastInst::AddrSpaceCastInst( 3023 Value *S, Type *Ty, const Twine &Name, BasicBlock *InsertAtEnd 3024 ) : CastInst(Ty, AddrSpaceCast, S, Name, InsertAtEnd) { 3025 assert(castIsValid(getOpcode(), S, Ty) && "Illegal AddrSpaceCast"); 3026 } 3027 3028 //===----------------------------------------------------------------------===// 3029 // CmpInst Classes 3030 //===----------------------------------------------------------------------===// 3031 3032 void CmpInst::anchor() {} 3033 3034 CmpInst::CmpInst(Type *ty, OtherOps op, unsigned short predicate, 3035 Value *LHS, Value *RHS, const Twine &Name, 3036 Instruction *InsertBefore) 3037 : Instruction(ty, op, 3038 OperandTraits<CmpInst>::op_begin(this), 3039 OperandTraits<CmpInst>::operands(this), 3040 InsertBefore) { 3041 Op<0>() = LHS; 3042 Op<1>() = RHS; 3043 setPredicate((Predicate)predicate); 3044 setName(Name); 3045 } 3046 3047 CmpInst::CmpInst(Type *ty, OtherOps op, unsigned short predicate, 3048 Value *LHS, Value *RHS, const Twine &Name, 3049 BasicBlock *InsertAtEnd) 3050 : Instruction(ty, op, 3051 OperandTraits<CmpInst>::op_begin(this), 3052 OperandTraits<CmpInst>::operands(this), 3053 InsertAtEnd) { 3054 Op<0>() = LHS; 3055 Op<1>() = RHS; 3056 setPredicate((Predicate)predicate); 3057 setName(Name); 3058 } 3059 3060 CmpInst * 3061 CmpInst::Create(OtherOps Op, unsigned short predicate, 3062 Value *S1, Value *S2, 3063 const Twine &Name, Instruction *InsertBefore) { 3064 if (Op == Instruction::ICmp) { 3065 if (InsertBefore) 3066 return new ICmpInst(InsertBefore, CmpInst::Predicate(predicate), 3067 S1, S2, Name); 3068 else 3069 return new ICmpInst(CmpInst::Predicate(predicate), 3070 S1, S2, Name); 3071 } 3072 3073 if (InsertBefore) 3074 return new FCmpInst(InsertBefore, CmpInst::Predicate(predicate), 3075 S1, S2, Name); 3076 else 3077 return new FCmpInst(CmpInst::Predicate(predicate), 3078 S1, S2, Name); 3079 } 3080 3081 CmpInst * 3082 CmpInst::Create(OtherOps Op, unsigned short predicate, Value *S1, Value *S2, 3083 const Twine &Name, BasicBlock *InsertAtEnd) { 3084 if (Op == Instruction::ICmp) { 3085 return new ICmpInst(*InsertAtEnd, CmpInst::Predicate(predicate), 3086 S1, S2, Name); 3087 } 3088 return new FCmpInst(*InsertAtEnd, CmpInst::Predicate(predicate), 3089 S1, S2, Name); 3090 } 3091 3092 void CmpInst::swapOperands() { 3093 if (ICmpInst *IC = dyn_cast<ICmpInst>(this)) 3094 IC->swapOperands(); 3095 else 3096 cast<FCmpInst>(this)->swapOperands(); 3097 } 3098 3099 bool CmpInst::isCommutative() const { 3100 if (const ICmpInst *IC = dyn_cast<ICmpInst>(this)) 3101 return IC->isCommutative(); 3102 return cast<FCmpInst>(this)->isCommutative(); 3103 } 3104 3105 bool CmpInst::isEquality() const { 3106 if (const ICmpInst *IC = dyn_cast<ICmpInst>(this)) 3107 return IC->isEquality(); 3108 return cast<FCmpInst>(this)->isEquality(); 3109 } 3110 3111 3112 CmpInst::Predicate CmpInst::getInversePredicate(Predicate pred) { 3113 switch (pred) { 3114 default: llvm_unreachable("Unknown cmp predicate!"); 3115 case ICMP_EQ: return ICMP_NE; 3116 case ICMP_NE: return ICMP_EQ; 3117 case ICMP_UGT: return ICMP_ULE; 3118 case ICMP_ULT: return ICMP_UGE; 3119 case ICMP_UGE: return ICMP_ULT; 3120 case ICMP_ULE: return ICMP_UGT; 3121 case ICMP_SGT: return ICMP_SLE; 3122 case ICMP_SLT: return ICMP_SGE; 3123 case ICMP_SGE: return ICMP_SLT; 3124 case ICMP_SLE: return ICMP_SGT; 3125 3126 case FCMP_OEQ: return FCMP_UNE; 3127 case FCMP_ONE: return FCMP_UEQ; 3128 case FCMP_OGT: return FCMP_ULE; 3129 case FCMP_OLT: return FCMP_UGE; 3130 case FCMP_OGE: return FCMP_ULT; 3131 case FCMP_OLE: return FCMP_UGT; 3132 case FCMP_UEQ: return FCMP_ONE; 3133 case FCMP_UNE: return FCMP_OEQ; 3134 case FCMP_UGT: return FCMP_OLE; 3135 case FCMP_ULT: return FCMP_OGE; 3136 case FCMP_UGE: return FCMP_OLT; 3137 case FCMP_ULE: return FCMP_OGT; 3138 case FCMP_ORD: return FCMP_UNO; 3139 case FCMP_UNO: return FCMP_ORD; 3140 case FCMP_TRUE: return FCMP_FALSE; 3141 case FCMP_FALSE: return FCMP_TRUE; 3142 } 3143 } 3144 3145 ICmpInst::Predicate ICmpInst::getSignedPredicate(Predicate pred) { 3146 switch (pred) { 3147 default: llvm_unreachable("Unknown icmp predicate!"); 3148 case ICMP_EQ: case ICMP_NE: 3149 case ICMP_SGT: case ICMP_SLT: case ICMP_SGE: case ICMP_SLE: 3150 return pred; 3151 case ICMP_UGT: return ICMP_SGT; 3152 case ICMP_ULT: return ICMP_SLT; 3153 case ICMP_UGE: return ICMP_SGE; 3154 case ICMP_ULE: return ICMP_SLE; 3155 } 3156 } 3157 3158 ICmpInst::Predicate ICmpInst::getUnsignedPredicate(Predicate pred) { 3159 switch (pred) { 3160 default: llvm_unreachable("Unknown icmp predicate!"); 3161 case ICMP_EQ: case ICMP_NE: 3162 case ICMP_UGT: case ICMP_ULT: case ICMP_UGE: case ICMP_ULE: 3163 return pred; 3164 case ICMP_SGT: return ICMP_UGT; 3165 case ICMP_SLT: return ICMP_ULT; 3166 case ICMP_SGE: return ICMP_UGE; 3167 case ICMP_SLE: return ICMP_ULE; 3168 } 3169 } 3170 3171 /// Initialize a set of values that all satisfy the condition with C. 3172 /// 3173 ConstantRange 3174 ICmpInst::makeConstantRange(Predicate pred, const APInt &C) { 3175 APInt Lower(C); 3176 APInt Upper(C); 3177 uint32_t BitWidth = C.getBitWidth(); 3178 switch (pred) { 3179 default: llvm_unreachable("Invalid ICmp opcode to ConstantRange ctor!"); 3180 case ICmpInst::ICMP_EQ: ++Upper; break; 3181 case ICmpInst::ICMP_NE: ++Lower; break; 3182 case ICmpInst::ICMP_ULT: 3183 Lower = APInt::getMinValue(BitWidth); 3184 // Check for an empty-set condition. 3185 if (Lower == Upper) 3186 return ConstantRange(BitWidth, /*isFullSet=*/false); 3187 break; 3188 case ICmpInst::ICMP_SLT: 3189 Lower = APInt::getSignedMinValue(BitWidth); 3190 // Check for an empty-set condition. 3191 if (Lower == Upper) 3192 return ConstantRange(BitWidth, /*isFullSet=*/false); 3193 break; 3194 case ICmpInst::ICMP_UGT: 3195 ++Lower; Upper = APInt::getMinValue(BitWidth); // Min = Next(Max) 3196 // Check for an empty-set condition. 3197 if (Lower == Upper) 3198 return ConstantRange(BitWidth, /*isFullSet=*/false); 3199 break; 3200 case ICmpInst::ICMP_SGT: 3201 ++Lower; Upper = APInt::getSignedMinValue(BitWidth); // Min = Next(Max) 3202 // Check for an empty-set condition. 3203 if (Lower == Upper) 3204 return ConstantRange(BitWidth, /*isFullSet=*/false); 3205 break; 3206 case ICmpInst::ICMP_ULE: 3207 Lower = APInt::getMinValue(BitWidth); ++Upper; 3208 // Check for a full-set condition. 3209 if (Lower == Upper) 3210 return ConstantRange(BitWidth, /*isFullSet=*/true); 3211 break; 3212 case ICmpInst::ICMP_SLE: 3213 Lower = APInt::getSignedMinValue(BitWidth); ++Upper; 3214 // Check for a full-set condition. 3215 if (Lower == Upper) 3216 return ConstantRange(BitWidth, /*isFullSet=*/true); 3217 break; 3218 case ICmpInst::ICMP_UGE: 3219 Upper = APInt::getMinValue(BitWidth); // Min = Next(Max) 3220 // Check for a full-set condition. 3221 if (Lower == Upper) 3222 return ConstantRange(BitWidth, /*isFullSet=*/true); 3223 break; 3224 case ICmpInst::ICMP_SGE: 3225 Upper = APInt::getSignedMinValue(BitWidth); // Min = Next(Max) 3226 // Check for a full-set condition. 3227 if (Lower == Upper) 3228 return ConstantRange(BitWidth, /*isFullSet=*/true); 3229 break; 3230 } 3231 return ConstantRange(Lower, Upper); 3232 } 3233 3234 CmpInst::Predicate CmpInst::getSwappedPredicate(Predicate pred) { 3235 switch (pred) { 3236 default: llvm_unreachable("Unknown cmp predicate!"); 3237 case ICMP_EQ: case ICMP_NE: 3238 return pred; 3239 case ICMP_SGT: return ICMP_SLT; 3240 case ICMP_SLT: return ICMP_SGT; 3241 case ICMP_SGE: return ICMP_SLE; 3242 case ICMP_SLE: return ICMP_SGE; 3243 case ICMP_UGT: return ICMP_ULT; 3244 case ICMP_ULT: return ICMP_UGT; 3245 case ICMP_UGE: return ICMP_ULE; 3246 case ICMP_ULE: return ICMP_UGE; 3247 3248 case FCMP_FALSE: case FCMP_TRUE: 3249 case FCMP_OEQ: case FCMP_ONE: 3250 case FCMP_UEQ: case FCMP_UNE: 3251 case FCMP_ORD: case FCMP_UNO: 3252 return pred; 3253 case FCMP_OGT: return FCMP_OLT; 3254 case FCMP_OLT: return FCMP_OGT; 3255 case FCMP_OGE: return FCMP_OLE; 3256 case FCMP_OLE: return FCMP_OGE; 3257 case FCMP_UGT: return FCMP_ULT; 3258 case FCMP_ULT: return FCMP_UGT; 3259 case FCMP_UGE: return FCMP_ULE; 3260 case FCMP_ULE: return FCMP_UGE; 3261 } 3262 } 3263 3264 bool CmpInst::isUnsigned(unsigned short predicate) { 3265 switch (predicate) { 3266 default: return false; 3267 case ICmpInst::ICMP_ULT: case ICmpInst::ICMP_ULE: case ICmpInst::ICMP_UGT: 3268 case ICmpInst::ICMP_UGE: return true; 3269 } 3270 } 3271 3272 bool CmpInst::isSigned(unsigned short predicate) { 3273 switch (predicate) { 3274 default: return false; 3275 case ICmpInst::ICMP_SLT: case ICmpInst::ICMP_SLE: case ICmpInst::ICMP_SGT: 3276 case ICmpInst::ICMP_SGE: return true; 3277 } 3278 } 3279 3280 bool CmpInst::isOrdered(unsigned short predicate) { 3281 switch (predicate) { 3282 default: return false; 3283 case FCmpInst::FCMP_OEQ: case FCmpInst::FCMP_ONE: case FCmpInst::FCMP_OGT: 3284 case FCmpInst::FCMP_OLT: case FCmpInst::FCMP_OGE: case FCmpInst::FCMP_OLE: 3285 case FCmpInst::FCMP_ORD: return true; 3286 } 3287 } 3288 3289 bool CmpInst::isUnordered(unsigned short predicate) { 3290 switch (predicate) { 3291 default: return false; 3292 case FCmpInst::FCMP_UEQ: case FCmpInst::FCMP_UNE: case FCmpInst::FCMP_UGT: 3293 case FCmpInst::FCMP_ULT: case FCmpInst::FCMP_UGE: case FCmpInst::FCMP_ULE: 3294 case FCmpInst::FCMP_UNO: return true; 3295 } 3296 } 3297 3298 bool CmpInst::isTrueWhenEqual(unsigned short predicate) { 3299 switch(predicate) { 3300 default: return false; 3301 case ICMP_EQ: case ICMP_UGE: case ICMP_ULE: case ICMP_SGE: case ICMP_SLE: 3302 case FCMP_TRUE: case FCMP_UEQ: case FCMP_UGE: case FCMP_ULE: return true; 3303 } 3304 } 3305 3306 bool CmpInst::isFalseWhenEqual(unsigned short predicate) { 3307 switch(predicate) { 3308 case ICMP_NE: case ICMP_UGT: case ICMP_ULT: case ICMP_SGT: case ICMP_SLT: 3309 case FCMP_FALSE: case FCMP_ONE: case FCMP_OGT: case FCMP_OLT: return true; 3310 default: return false; 3311 } 3312 } 3313 3314 3315 //===----------------------------------------------------------------------===// 3316 // SwitchInst Implementation 3317 //===----------------------------------------------------------------------===// 3318 3319 void SwitchInst::init(Value *Value, BasicBlock *Default, unsigned NumReserved) { 3320 assert(Value && Default && NumReserved); 3321 ReservedSpace = NumReserved; 3322 NumOperands = 2; 3323 OperandList = allocHungoffUses(ReservedSpace); 3324 3325 OperandList[0] = Value; 3326 OperandList[1] = Default; 3327 } 3328 3329 /// SwitchInst ctor - Create a new switch instruction, specifying a value to 3330 /// switch on and a default destination. The number of additional cases can 3331 /// be specified here to make memory allocation more efficient. This 3332 /// constructor can also autoinsert before another instruction. 3333 SwitchInst::SwitchInst(Value *Value, BasicBlock *Default, unsigned NumCases, 3334 Instruction *InsertBefore) 3335 : TerminatorInst(Type::getVoidTy(Value->getContext()), Instruction::Switch, 3336 0, 0, InsertBefore) { 3337 init(Value, Default, 2+NumCases*2); 3338 } 3339 3340 /// SwitchInst ctor - Create a new switch instruction, specifying a value to 3341 /// switch on and a default destination. The number of additional cases can 3342 /// be specified here to make memory allocation more efficient. This 3343 /// constructor also autoinserts at the end of the specified BasicBlock. 3344 SwitchInst::SwitchInst(Value *Value, BasicBlock *Default, unsigned NumCases, 3345 BasicBlock *InsertAtEnd) 3346 : TerminatorInst(Type::getVoidTy(Value->getContext()), Instruction::Switch, 3347 0, 0, InsertAtEnd) { 3348 init(Value, Default, 2+NumCases*2); 3349 } 3350 3351 SwitchInst::SwitchInst(const SwitchInst &SI) 3352 : TerminatorInst(SI.getType(), Instruction::Switch, 0, 0) { 3353 init(SI.getCondition(), SI.getDefaultDest(), SI.getNumOperands()); 3354 NumOperands = SI.getNumOperands(); 3355 Use *OL = OperandList, *InOL = SI.OperandList; 3356 for (unsigned i = 2, E = SI.getNumOperands(); i != E; i += 2) { 3357 OL[i] = InOL[i]; 3358 OL[i+1] = InOL[i+1]; 3359 } 3360 SubclassOptionalData = SI.SubclassOptionalData; 3361 } 3362 3363 SwitchInst::~SwitchInst() { 3364 dropHungoffUses(); 3365 } 3366 3367 3368 /// addCase - Add an entry to the switch instruction... 3369 /// 3370 void SwitchInst::addCase(ConstantInt *OnVal, BasicBlock *Dest) { 3371 unsigned NewCaseIdx = getNumCases(); 3372 unsigned OpNo = NumOperands; 3373 if (OpNo+2 > ReservedSpace) 3374 growOperands(); // Get more space! 3375 // Initialize some new operands. 3376 assert(OpNo+1 < ReservedSpace && "Growing didn't work!"); 3377 NumOperands = OpNo+2; 3378 CaseIt Case(this, NewCaseIdx); 3379 Case.setValue(OnVal); 3380 Case.setSuccessor(Dest); 3381 } 3382 3383 /// removeCase - This method removes the specified case and its successor 3384 /// from the switch instruction. 3385 void SwitchInst::removeCase(CaseIt i) { 3386 unsigned idx = i.getCaseIndex(); 3387 3388 assert(2 + idx*2 < getNumOperands() && "Case index out of range!!!"); 3389 3390 unsigned NumOps = getNumOperands(); 3391 Use *OL = OperandList; 3392 3393 // Overwrite this case with the end of the list. 3394 if (2 + (idx + 1) * 2 != NumOps) { 3395 OL[2 + idx * 2] = OL[NumOps - 2]; 3396 OL[2 + idx * 2 + 1] = OL[NumOps - 1]; 3397 } 3398 3399 // Nuke the last value. 3400 OL[NumOps-2].set(0); 3401 OL[NumOps-2+1].set(0); 3402 NumOperands = NumOps-2; 3403 } 3404 3405 /// growOperands - grow operands - This grows the operand list in response 3406 /// to a push_back style of operation. This grows the number of ops by 3 times. 3407 /// 3408 void SwitchInst::growOperands() { 3409 unsigned e = getNumOperands(); 3410 unsigned NumOps = e*3; 3411 3412 ReservedSpace = NumOps; 3413 Use *NewOps = allocHungoffUses(NumOps); 3414 Use *OldOps = OperandList; 3415 for (unsigned i = 0; i != e; ++i) { 3416 NewOps[i] = OldOps[i]; 3417 } 3418 OperandList = NewOps; 3419 Use::zap(OldOps, OldOps + e, true); 3420 } 3421 3422 3423 BasicBlock *SwitchInst::getSuccessorV(unsigned idx) const { 3424 return getSuccessor(idx); 3425 } 3426 unsigned SwitchInst::getNumSuccessorsV() const { 3427 return getNumSuccessors(); 3428 } 3429 void SwitchInst::setSuccessorV(unsigned idx, BasicBlock *B) { 3430 setSuccessor(idx, B); 3431 } 3432 3433 //===----------------------------------------------------------------------===// 3434 // IndirectBrInst Implementation 3435 //===----------------------------------------------------------------------===// 3436 3437 void IndirectBrInst::init(Value *Address, unsigned NumDests) { 3438 assert(Address && Address->getType()->isPointerTy() && 3439 "Address of indirectbr must be a pointer"); 3440 ReservedSpace = 1+NumDests; 3441 NumOperands = 1; 3442 OperandList = allocHungoffUses(ReservedSpace); 3443 3444 OperandList[0] = Address; 3445 } 3446 3447 3448 /// growOperands - grow operands - This grows the operand list in response 3449 /// to a push_back style of operation. This grows the number of ops by 2 times. 3450 /// 3451 void IndirectBrInst::growOperands() { 3452 unsigned e = getNumOperands(); 3453 unsigned NumOps = e*2; 3454 3455 ReservedSpace = NumOps; 3456 Use *NewOps = allocHungoffUses(NumOps); 3457 Use *OldOps = OperandList; 3458 for (unsigned i = 0; i != e; ++i) 3459 NewOps[i] = OldOps[i]; 3460 OperandList = NewOps; 3461 Use::zap(OldOps, OldOps + e, true); 3462 } 3463 3464 IndirectBrInst::IndirectBrInst(Value *Address, unsigned NumCases, 3465 Instruction *InsertBefore) 3466 : TerminatorInst(Type::getVoidTy(Address->getContext()),Instruction::IndirectBr, 3467 0, 0, InsertBefore) { 3468 init(Address, NumCases); 3469 } 3470 3471 IndirectBrInst::IndirectBrInst(Value *Address, unsigned NumCases, 3472 BasicBlock *InsertAtEnd) 3473 : TerminatorInst(Type::getVoidTy(Address->getContext()),Instruction::IndirectBr, 3474 0, 0, InsertAtEnd) { 3475 init(Address, NumCases); 3476 } 3477 3478 IndirectBrInst::IndirectBrInst(const IndirectBrInst &IBI) 3479 : TerminatorInst(Type::getVoidTy(IBI.getContext()), Instruction::IndirectBr, 3480 allocHungoffUses(IBI.getNumOperands()), 3481 IBI.getNumOperands()) { 3482 Use *OL = OperandList, *InOL = IBI.OperandList; 3483 for (unsigned i = 0, E = IBI.getNumOperands(); i != E; ++i) 3484 OL[i] = InOL[i]; 3485 SubclassOptionalData = IBI.SubclassOptionalData; 3486 } 3487 3488 IndirectBrInst::~IndirectBrInst() { 3489 dropHungoffUses(); 3490 } 3491 3492 /// addDestination - Add a destination. 3493 /// 3494 void IndirectBrInst::addDestination(BasicBlock *DestBB) { 3495 unsigned OpNo = NumOperands; 3496 if (OpNo+1 > ReservedSpace) 3497 growOperands(); // Get more space! 3498 // Initialize some new operands. 3499 assert(OpNo < ReservedSpace && "Growing didn't work!"); 3500 NumOperands = OpNo+1; 3501 OperandList[OpNo] = DestBB; 3502 } 3503 3504 /// removeDestination - This method removes the specified successor from the 3505 /// indirectbr instruction. 3506 void IndirectBrInst::removeDestination(unsigned idx) { 3507 assert(idx < getNumOperands()-1 && "Successor index out of range!"); 3508 3509 unsigned NumOps = getNumOperands(); 3510 Use *OL = OperandList; 3511 3512 // Replace this value with the last one. 3513 OL[idx+1] = OL[NumOps-1]; 3514 3515 // Nuke the last value. 3516 OL[NumOps-1].set(0); 3517 NumOperands = NumOps-1; 3518 } 3519 3520 BasicBlock *IndirectBrInst::getSuccessorV(unsigned idx) const { 3521 return getSuccessor(idx); 3522 } 3523 unsigned IndirectBrInst::getNumSuccessorsV() const { 3524 return getNumSuccessors(); 3525 } 3526 void IndirectBrInst::setSuccessorV(unsigned idx, BasicBlock *B) { 3527 setSuccessor(idx, B); 3528 } 3529 3530 //===----------------------------------------------------------------------===// 3531 // clone_impl() implementations 3532 //===----------------------------------------------------------------------===// 3533 3534 // Define these methods here so vtables don't get emitted into every translation 3535 // unit that uses these classes. 3536 3537 GetElementPtrInst *GetElementPtrInst::clone_impl() const { 3538 return new (getNumOperands()) GetElementPtrInst(*this); 3539 } 3540 3541 BinaryOperator *BinaryOperator::clone_impl() const { 3542 return Create(getOpcode(), Op<0>(), Op<1>()); 3543 } 3544 3545 FCmpInst* FCmpInst::clone_impl() const { 3546 return new FCmpInst(getPredicate(), Op<0>(), Op<1>()); 3547 } 3548 3549 ICmpInst* ICmpInst::clone_impl() const { 3550 return new ICmpInst(getPredicate(), Op<0>(), Op<1>()); 3551 } 3552 3553 ExtractValueInst *ExtractValueInst::clone_impl() const { 3554 return new ExtractValueInst(*this); 3555 } 3556 3557 InsertValueInst *InsertValueInst::clone_impl() const { 3558 return new InsertValueInst(*this); 3559 } 3560 3561 AllocaInst *AllocaInst::clone_impl() const { 3562 return new AllocaInst(getAllocatedType(), 3563 (Value*)getOperand(0), 3564 getAlignment()); 3565 } 3566 3567 LoadInst *LoadInst::clone_impl() const { 3568 return new LoadInst(getOperand(0), Twine(), isVolatile(), 3569 getAlignment(), getOrdering(), getSynchScope()); 3570 } 3571 3572 StoreInst *StoreInst::clone_impl() const { 3573 return new StoreInst(getOperand(0), getOperand(1), isVolatile(), 3574 getAlignment(), getOrdering(), getSynchScope()); 3575 3576 } 3577 3578 AtomicCmpXchgInst *AtomicCmpXchgInst::clone_impl() const { 3579 AtomicCmpXchgInst *Result = 3580 new AtomicCmpXchgInst(getOperand(0), getOperand(1), getOperand(2), 3581 getOrdering(), getSynchScope()); 3582 Result->setVolatile(isVolatile()); 3583 return Result; 3584 } 3585 3586 AtomicRMWInst *AtomicRMWInst::clone_impl() const { 3587 AtomicRMWInst *Result = 3588 new AtomicRMWInst(getOperation(),getOperand(0), getOperand(1), 3589 getOrdering(), getSynchScope()); 3590 Result->setVolatile(isVolatile()); 3591 return Result; 3592 } 3593 3594 FenceInst *FenceInst::clone_impl() const { 3595 return new FenceInst(getContext(), getOrdering(), getSynchScope()); 3596 } 3597 3598 TruncInst *TruncInst::clone_impl() const { 3599 return new TruncInst(getOperand(0), getType()); 3600 } 3601 3602 ZExtInst *ZExtInst::clone_impl() const { 3603 return new ZExtInst(getOperand(0), getType()); 3604 } 3605 3606 SExtInst *SExtInst::clone_impl() const { 3607 return new SExtInst(getOperand(0), getType()); 3608 } 3609 3610 FPTruncInst *FPTruncInst::clone_impl() const { 3611 return new FPTruncInst(getOperand(0), getType()); 3612 } 3613 3614 FPExtInst *FPExtInst::clone_impl() const { 3615 return new FPExtInst(getOperand(0), getType()); 3616 } 3617 3618 UIToFPInst *UIToFPInst::clone_impl() const { 3619 return new UIToFPInst(getOperand(0), getType()); 3620 } 3621 3622 SIToFPInst *SIToFPInst::clone_impl() const { 3623 return new SIToFPInst(getOperand(0), getType()); 3624 } 3625 3626 FPToUIInst *FPToUIInst::clone_impl() const { 3627 return new FPToUIInst(getOperand(0), getType()); 3628 } 3629 3630 FPToSIInst *FPToSIInst::clone_impl() const { 3631 return new FPToSIInst(getOperand(0), getType()); 3632 } 3633 3634 PtrToIntInst *PtrToIntInst::clone_impl() const { 3635 return new PtrToIntInst(getOperand(0), getType()); 3636 } 3637 3638 IntToPtrInst *IntToPtrInst::clone_impl() const { 3639 return new IntToPtrInst(getOperand(0), getType()); 3640 } 3641 3642 BitCastInst *BitCastInst::clone_impl() const { 3643 return new BitCastInst(getOperand(0), getType()); 3644 } 3645 3646 AddrSpaceCastInst *AddrSpaceCastInst::clone_impl() const { 3647 return new AddrSpaceCastInst(getOperand(0), getType()); 3648 } 3649 3650 CallInst *CallInst::clone_impl() const { 3651 return new(getNumOperands()) CallInst(*this); 3652 } 3653 3654 SelectInst *SelectInst::clone_impl() const { 3655 return SelectInst::Create(getOperand(0), getOperand(1), getOperand(2)); 3656 } 3657 3658 VAArgInst *VAArgInst::clone_impl() const { 3659 return new VAArgInst(getOperand(0), getType()); 3660 } 3661 3662 ExtractElementInst *ExtractElementInst::clone_impl() const { 3663 return ExtractElementInst::Create(getOperand(0), getOperand(1)); 3664 } 3665 3666 InsertElementInst *InsertElementInst::clone_impl() const { 3667 return InsertElementInst::Create(getOperand(0), getOperand(1), getOperand(2)); 3668 } 3669 3670 ShuffleVectorInst *ShuffleVectorInst::clone_impl() const { 3671 return new ShuffleVectorInst(getOperand(0), getOperand(1), getOperand(2)); 3672 } 3673 3674 PHINode *PHINode::clone_impl() const { 3675 return new PHINode(*this); 3676 } 3677 3678 LandingPadInst *LandingPadInst::clone_impl() const { 3679 return new LandingPadInst(*this); 3680 } 3681 3682 ReturnInst *ReturnInst::clone_impl() const { 3683 return new(getNumOperands()) ReturnInst(*this); 3684 } 3685 3686 BranchInst *BranchInst::clone_impl() const { 3687 return new(getNumOperands()) BranchInst(*this); 3688 } 3689 3690 SwitchInst *SwitchInst::clone_impl() const { 3691 return new SwitchInst(*this); 3692 } 3693 3694 IndirectBrInst *IndirectBrInst::clone_impl() const { 3695 return new IndirectBrInst(*this); 3696 } 3697 3698 3699 InvokeInst *InvokeInst::clone_impl() const { 3700 return new(getNumOperands()) InvokeInst(*this); 3701 } 3702 3703 ResumeInst *ResumeInst::clone_impl() const { 3704 return new(1) ResumeInst(*this); 3705 } 3706 3707 UnreachableInst *UnreachableInst::clone_impl() const { 3708 LLVMContext &Context = getContext(); 3709 return new UnreachableInst(Context); 3710 } 3711