1 //===- BitcodeReader.cpp - Internal BitcodeReader implementation ----------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file was developed by Chris Lattner and is distributed under 6 // the University of Illinois Open Source License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This header defines the BitcodeReader class. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/Bitcode/ReaderWriter.h" 15 #include "BitcodeReader.h" 16 #include "llvm/Constants.h" 17 #include "llvm/DerivedTypes.h" 18 #include "llvm/Instructions.h" 19 #include "llvm/Module.h" 20 #include "llvm/ParameterAttributes.h" 21 #include "llvm/ADT/SmallString.h" 22 #include "llvm/Support/MathExtras.h" 23 #include "llvm/Support/MemoryBuffer.h" 24 using namespace llvm; 25 26 BitcodeReader::~BitcodeReader() { 27 delete Buffer; 28 } 29 30 //===----------------------------------------------------------------------===// 31 // Helper functions to implement forward reference resolution, etc. 32 //===----------------------------------------------------------------------===// 33 34 /// ConvertToString - Convert a string from a record into an std::string, return 35 /// true on failure. 36 template<typename StrTy> 37 static bool ConvertToString(SmallVector<uint64_t, 64> &Record, unsigned Idx, 38 StrTy &Result) { 39 if (Idx > Record.size()) 40 return true; 41 42 for (unsigned i = Idx, e = Record.size(); i != e; ++i) 43 Result += (char)Record[i]; 44 return false; 45 } 46 47 static GlobalValue::LinkageTypes GetDecodedLinkage(unsigned Val) { 48 switch (Val) { 49 default: // Map unknown/new linkages to external 50 case 0: return GlobalValue::ExternalLinkage; 51 case 1: return GlobalValue::WeakLinkage; 52 case 2: return GlobalValue::AppendingLinkage; 53 case 3: return GlobalValue::InternalLinkage; 54 case 4: return GlobalValue::LinkOnceLinkage; 55 case 5: return GlobalValue::DLLImportLinkage; 56 case 6: return GlobalValue::DLLExportLinkage; 57 case 7: return GlobalValue::ExternalWeakLinkage; 58 } 59 } 60 61 static GlobalValue::VisibilityTypes GetDecodedVisibility(unsigned Val) { 62 switch (Val) { 63 default: // Map unknown visibilities to default. 64 case 0: return GlobalValue::DefaultVisibility; 65 case 1: return GlobalValue::HiddenVisibility; 66 case 2: return GlobalValue::ProtectedVisibility; 67 } 68 } 69 70 static int GetDecodedCastOpcode(unsigned Val) { 71 switch (Val) { 72 default: return -1; 73 case bitc::CAST_TRUNC : return Instruction::Trunc; 74 case bitc::CAST_ZEXT : return Instruction::ZExt; 75 case bitc::CAST_SEXT : return Instruction::SExt; 76 case bitc::CAST_FPTOUI : return Instruction::FPToUI; 77 case bitc::CAST_FPTOSI : return Instruction::FPToSI; 78 case bitc::CAST_UITOFP : return Instruction::UIToFP; 79 case bitc::CAST_SITOFP : return Instruction::SIToFP; 80 case bitc::CAST_FPTRUNC : return Instruction::FPTrunc; 81 case bitc::CAST_FPEXT : return Instruction::FPExt; 82 case bitc::CAST_PTRTOINT: return Instruction::PtrToInt; 83 case bitc::CAST_INTTOPTR: return Instruction::IntToPtr; 84 case bitc::CAST_BITCAST : return Instruction::BitCast; 85 } 86 } 87 static int GetDecodedBinaryOpcode(unsigned Val, const Type *Ty) { 88 switch (Val) { 89 default: return -1; 90 case bitc::BINOP_ADD: return Instruction::Add; 91 case bitc::BINOP_SUB: return Instruction::Sub; 92 case bitc::BINOP_MUL: return Instruction::Mul; 93 case bitc::BINOP_UDIV: return Instruction::UDiv; 94 case bitc::BINOP_SDIV: 95 return Ty->isFPOrFPVector() ? Instruction::FDiv : Instruction::SDiv; 96 case bitc::BINOP_UREM: return Instruction::URem; 97 case bitc::BINOP_SREM: 98 return Ty->isFPOrFPVector() ? Instruction::FRem : Instruction::SRem; 99 case bitc::BINOP_SHL: return Instruction::Shl; 100 case bitc::BINOP_LSHR: return Instruction::LShr; 101 case bitc::BINOP_ASHR: return Instruction::AShr; 102 case bitc::BINOP_AND: return Instruction::And; 103 case bitc::BINOP_OR: return Instruction::Or; 104 case bitc::BINOP_XOR: return Instruction::Xor; 105 } 106 } 107 108 109 namespace { 110 /// @brief A class for maintaining the slot number definition 111 /// as a placeholder for the actual definition for forward constants defs. 112 class ConstantPlaceHolder : public ConstantExpr { 113 ConstantPlaceHolder(); // DO NOT IMPLEMENT 114 void operator=(const ConstantPlaceHolder &); // DO NOT IMPLEMENT 115 public: 116 Use Op; 117 ConstantPlaceHolder(const Type *Ty) 118 : ConstantExpr(Ty, Instruction::UserOp1, &Op, 1), 119 Op(UndefValue::get(Type::Int32Ty), this) { 120 } 121 }; 122 } 123 124 Constant *BitcodeReaderValueList::getConstantFwdRef(unsigned Idx, 125 const Type *Ty) { 126 if (Idx >= size()) { 127 // Insert a bunch of null values. 128 Uses.resize(Idx+1); 129 OperandList = &Uses[0]; 130 NumOperands = Idx+1; 131 } 132 133 if (Value *V = Uses[Idx]) { 134 assert(Ty == V->getType() && "Type mismatch in constant table!"); 135 return cast<Constant>(V); 136 } 137 138 // Create and return a placeholder, which will later be RAUW'd. 139 Constant *C = new ConstantPlaceHolder(Ty); 140 Uses[Idx].init(C, this); 141 return C; 142 } 143 144 Value *BitcodeReaderValueList::getValueFwdRef(unsigned Idx, const Type *Ty) { 145 if (Idx >= size()) { 146 // Insert a bunch of null values. 147 Uses.resize(Idx+1); 148 OperandList = &Uses[0]; 149 NumOperands = Idx+1; 150 } 151 152 if (Value *V = Uses[Idx]) { 153 assert((Ty == 0 || Ty == V->getType()) && "Type mismatch in value table!"); 154 return V; 155 } 156 157 // No type specified, must be invalid reference. 158 if (Ty == 0) return 0; 159 160 // Create and return a placeholder, which will later be RAUW'd. 161 Value *V = new Argument(Ty); 162 Uses[Idx].init(V, this); 163 return V; 164 } 165 166 167 const Type *BitcodeReader::getTypeByID(unsigned ID, bool isTypeTable) { 168 // If the TypeID is in range, return it. 169 if (ID < TypeList.size()) 170 return TypeList[ID].get(); 171 if (!isTypeTable) return 0; 172 173 // The type table allows forward references. Push as many Opaque types as 174 // needed to get up to ID. 175 while (TypeList.size() <= ID) 176 TypeList.push_back(OpaqueType::get()); 177 return TypeList.back().get(); 178 } 179 180 //===----------------------------------------------------------------------===// 181 // Functions for parsing blocks from the bitcode file 182 //===----------------------------------------------------------------------===// 183 184 bool BitcodeReader::ParseParamAttrBlock() { 185 if (Stream.EnterSubBlock(bitc::PARAMATTR_BLOCK_ID)) 186 return Error("Malformed block record"); 187 188 if (!ParamAttrs.empty()) 189 return Error("Multiple PARAMATTR blocks found!"); 190 191 SmallVector<uint64_t, 64> Record; 192 193 ParamAttrsVector Attrs; 194 195 // Read all the records. 196 while (1) { 197 unsigned Code = Stream.ReadCode(); 198 if (Code == bitc::END_BLOCK) { 199 if (Stream.ReadBlockEnd()) 200 return Error("Error at end of PARAMATTR block"); 201 return false; 202 } 203 204 if (Code == bitc::ENTER_SUBBLOCK) { 205 // No known subblocks, always skip them. 206 Stream.ReadSubBlockID(); 207 if (Stream.SkipBlock()) 208 return Error("Malformed block record"); 209 continue; 210 } 211 212 if (Code == bitc::DEFINE_ABBREV) { 213 Stream.ReadAbbrevRecord(); 214 continue; 215 } 216 217 // Read a record. 218 Record.clear(); 219 switch (Stream.ReadRecord(Code, Record)) { 220 default: // Default behavior: ignore. 221 break; 222 case bitc::PARAMATTR_CODE_ENTRY: { // ENTRY: [paramidx0, attr0, ...] 223 if (Record.size() & 1) 224 return Error("Invalid ENTRY record"); 225 226 ParamAttrsWithIndex PAWI; 227 for (unsigned i = 0, e = Record.size(); i != e; i += 2) { 228 PAWI.index = Record[i]; 229 PAWI.attrs = Record[i+1]; 230 Attrs.push_back(PAWI); 231 } 232 ParamAttrs.push_back(ParamAttrsList::get(Attrs)); 233 Attrs.clear(); 234 break; 235 } 236 } 237 } 238 } 239 240 241 bool BitcodeReader::ParseTypeTable() { 242 if (Stream.EnterSubBlock(bitc::TYPE_BLOCK_ID)) 243 return Error("Malformed block record"); 244 245 if (!TypeList.empty()) 246 return Error("Multiple TYPE_BLOCKs found!"); 247 248 SmallVector<uint64_t, 64> Record; 249 unsigned NumRecords = 0; 250 251 // Read all the records for this type table. 252 while (1) { 253 unsigned Code = Stream.ReadCode(); 254 if (Code == bitc::END_BLOCK) { 255 if (NumRecords != TypeList.size()) 256 return Error("Invalid type forward reference in TYPE_BLOCK"); 257 if (Stream.ReadBlockEnd()) 258 return Error("Error at end of type table block"); 259 return false; 260 } 261 262 if (Code == bitc::ENTER_SUBBLOCK) { 263 // No known subblocks, always skip them. 264 Stream.ReadSubBlockID(); 265 if (Stream.SkipBlock()) 266 return Error("Malformed block record"); 267 continue; 268 } 269 270 if (Code == bitc::DEFINE_ABBREV) { 271 Stream.ReadAbbrevRecord(); 272 continue; 273 } 274 275 // Read a record. 276 Record.clear(); 277 const Type *ResultTy = 0; 278 switch (Stream.ReadRecord(Code, Record)) { 279 default: // Default behavior: unknown type. 280 ResultTy = 0; 281 break; 282 case bitc::TYPE_CODE_NUMENTRY: // TYPE_CODE_NUMENTRY: [numentries] 283 // TYPE_CODE_NUMENTRY contains a count of the number of types in the 284 // type list. This allows us to reserve space. 285 if (Record.size() < 1) 286 return Error("Invalid TYPE_CODE_NUMENTRY record"); 287 TypeList.reserve(Record[0]); 288 continue; 289 case bitc::TYPE_CODE_VOID: // VOID 290 ResultTy = Type::VoidTy; 291 break; 292 case bitc::TYPE_CODE_FLOAT: // FLOAT 293 ResultTy = Type::FloatTy; 294 break; 295 case bitc::TYPE_CODE_DOUBLE: // DOUBLE 296 ResultTy = Type::DoubleTy; 297 break; 298 case bitc::TYPE_CODE_LABEL: // LABEL 299 ResultTy = Type::LabelTy; 300 break; 301 case bitc::TYPE_CODE_OPAQUE: // OPAQUE 302 ResultTy = 0; 303 break; 304 case bitc::TYPE_CODE_INTEGER: // INTEGER: [width] 305 if (Record.size() < 1) 306 return Error("Invalid Integer type record"); 307 308 ResultTy = IntegerType::get(Record[0]); 309 break; 310 case bitc::TYPE_CODE_POINTER: // POINTER: [pointee type] 311 if (Record.size() < 1) 312 return Error("Invalid POINTER type record"); 313 ResultTy = PointerType::get(getTypeByID(Record[0], true)); 314 break; 315 case bitc::TYPE_CODE_FUNCTION: { 316 // FUNCTION: [vararg, attrid, retty, paramty x N] 317 if (Record.size() < 3) 318 return Error("Invalid FUNCTION type record"); 319 std::vector<const Type*> ArgTys; 320 for (unsigned i = 3, e = Record.size(); i != e; ++i) 321 ArgTys.push_back(getTypeByID(Record[i], true)); 322 323 ResultTy = FunctionType::get(getTypeByID(Record[2], true), ArgTys, 324 Record[0], getParamAttrs(Record[1])); 325 break; 326 } 327 case bitc::TYPE_CODE_STRUCT: { // STRUCT: [ispacked, eltty x N] 328 if (Record.size() < 2) 329 return Error("Invalid STRUCT type record"); 330 std::vector<const Type*> EltTys; 331 for (unsigned i = 1, e = Record.size(); i != e; ++i) 332 EltTys.push_back(getTypeByID(Record[i], true)); 333 ResultTy = StructType::get(EltTys, Record[0]); 334 break; 335 } 336 case bitc::TYPE_CODE_ARRAY: // ARRAY: [numelts, eltty] 337 if (Record.size() < 2) 338 return Error("Invalid ARRAY type record"); 339 ResultTy = ArrayType::get(getTypeByID(Record[1], true), Record[0]); 340 break; 341 case bitc::TYPE_CODE_VECTOR: // VECTOR: [numelts, eltty] 342 if (Record.size() < 2) 343 return Error("Invalid VECTOR type record"); 344 ResultTy = VectorType::get(getTypeByID(Record[1], true), Record[0]); 345 break; 346 } 347 348 if (NumRecords == TypeList.size()) { 349 // If this is a new type slot, just append it. 350 TypeList.push_back(ResultTy ? ResultTy : OpaqueType::get()); 351 ++NumRecords; 352 } else if (ResultTy == 0) { 353 // Otherwise, this was forward referenced, so an opaque type was created, 354 // but the result type is actually just an opaque. Leave the one we 355 // created previously. 356 ++NumRecords; 357 } else { 358 // Otherwise, this was forward referenced, so an opaque type was created. 359 // Resolve the opaque type to the real type now. 360 assert(NumRecords < TypeList.size() && "Typelist imbalance"); 361 const OpaqueType *OldTy = cast<OpaqueType>(TypeList[NumRecords++].get()); 362 363 // Don't directly push the new type on the Tab. Instead we want to replace 364 // the opaque type we previously inserted with the new concrete value. The 365 // refinement from the abstract (opaque) type to the new type causes all 366 // uses of the abstract type to use the concrete type (NewTy). This will 367 // also cause the opaque type to be deleted. 368 const_cast<OpaqueType*>(OldTy)->refineAbstractTypeTo(ResultTy); 369 370 // This should have replaced the old opaque type with the new type in the 371 // value table... or with a preexisting type that was already in the 372 // system. Let's just make sure it did. 373 assert(TypeList[NumRecords-1].get() != OldTy && 374 "refineAbstractType didn't work!"); 375 } 376 } 377 } 378 379 380 bool BitcodeReader::ParseTypeSymbolTable() { 381 if (Stream.EnterSubBlock(bitc::TYPE_SYMTAB_BLOCK_ID)) 382 return Error("Malformed block record"); 383 384 SmallVector<uint64_t, 64> Record; 385 386 // Read all the records for this type table. 387 std::string TypeName; 388 while (1) { 389 unsigned Code = Stream.ReadCode(); 390 if (Code == bitc::END_BLOCK) { 391 if (Stream.ReadBlockEnd()) 392 return Error("Error at end of type symbol table block"); 393 return false; 394 } 395 396 if (Code == bitc::ENTER_SUBBLOCK) { 397 // No known subblocks, always skip them. 398 Stream.ReadSubBlockID(); 399 if (Stream.SkipBlock()) 400 return Error("Malformed block record"); 401 continue; 402 } 403 404 if (Code == bitc::DEFINE_ABBREV) { 405 Stream.ReadAbbrevRecord(); 406 continue; 407 } 408 409 // Read a record. 410 Record.clear(); 411 switch (Stream.ReadRecord(Code, Record)) { 412 default: // Default behavior: unknown type. 413 break; 414 case bitc::TST_CODE_ENTRY: // TST_ENTRY: [typeid, namechar x N] 415 if (ConvertToString(Record, 1, TypeName)) 416 return Error("Invalid TST_ENTRY record"); 417 unsigned TypeID = Record[0]; 418 if (TypeID >= TypeList.size()) 419 return Error("Invalid Type ID in TST_ENTRY record"); 420 421 TheModule->addTypeName(TypeName, TypeList[TypeID].get()); 422 TypeName.clear(); 423 break; 424 } 425 } 426 } 427 428 bool BitcodeReader::ParseValueSymbolTable() { 429 if (Stream.EnterSubBlock(bitc::VALUE_SYMTAB_BLOCK_ID)) 430 return Error("Malformed block record"); 431 432 SmallVector<uint64_t, 64> Record; 433 434 // Read all the records for this value table. 435 SmallString<128> ValueName; 436 while (1) { 437 unsigned Code = Stream.ReadCode(); 438 if (Code == bitc::END_BLOCK) { 439 if (Stream.ReadBlockEnd()) 440 return Error("Error at end of value symbol table block"); 441 return false; 442 } 443 if (Code == bitc::ENTER_SUBBLOCK) { 444 // No known subblocks, always skip them. 445 Stream.ReadSubBlockID(); 446 if (Stream.SkipBlock()) 447 return Error("Malformed block record"); 448 continue; 449 } 450 451 if (Code == bitc::DEFINE_ABBREV) { 452 Stream.ReadAbbrevRecord(); 453 continue; 454 } 455 456 // Read a record. 457 Record.clear(); 458 switch (Stream.ReadRecord(Code, Record)) { 459 default: // Default behavior: unknown type. 460 break; 461 case bitc::VST_CODE_ENTRY: { // VST_ENTRY: [valueid, namechar x N] 462 if (ConvertToString(Record, 1, ValueName)) 463 return Error("Invalid TST_ENTRY record"); 464 unsigned ValueID = Record[0]; 465 if (ValueID >= ValueList.size()) 466 return Error("Invalid Value ID in VST_ENTRY record"); 467 Value *V = ValueList[ValueID]; 468 469 V->setName(&ValueName[0], ValueName.size()); 470 ValueName.clear(); 471 break; 472 } 473 case bitc::VST_CODE_BBENTRY: { 474 if (ConvertToString(Record, 1, ValueName)) 475 return Error("Invalid VST_BBENTRY record"); 476 BasicBlock *BB = getBasicBlock(Record[0]); 477 if (BB == 0) 478 return Error("Invalid BB ID in VST_BBENTRY record"); 479 480 BB->setName(&ValueName[0], ValueName.size()); 481 ValueName.clear(); 482 break; 483 } 484 } 485 } 486 } 487 488 /// DecodeSignRotatedValue - Decode a signed value stored with the sign bit in 489 /// the LSB for dense VBR encoding. 490 static uint64_t DecodeSignRotatedValue(uint64_t V) { 491 if ((V & 1) == 0) 492 return V >> 1; 493 if (V != 1) 494 return -(V >> 1); 495 // There is no such thing as -0 with integers. "-0" really means MININT. 496 return 1ULL << 63; 497 } 498 499 /// ResolveGlobalAndAliasInits - Resolve all of the initializers for global 500 /// values and aliases that we can. 501 bool BitcodeReader::ResolveGlobalAndAliasInits() { 502 std::vector<std::pair<GlobalVariable*, unsigned> > GlobalInitWorklist; 503 std::vector<std::pair<GlobalAlias*, unsigned> > AliasInitWorklist; 504 505 GlobalInitWorklist.swap(GlobalInits); 506 AliasInitWorklist.swap(AliasInits); 507 508 while (!GlobalInitWorklist.empty()) { 509 unsigned ValID = GlobalInitWorklist.back().second; 510 if (ValID >= ValueList.size()) { 511 // Not ready to resolve this yet, it requires something later in the file. 512 GlobalInits.push_back(GlobalInitWorklist.back()); 513 } else { 514 if (Constant *C = dyn_cast<Constant>(ValueList[ValID])) 515 GlobalInitWorklist.back().first->setInitializer(C); 516 else 517 return Error("Global variable initializer is not a constant!"); 518 } 519 GlobalInitWorklist.pop_back(); 520 } 521 522 while (!AliasInitWorklist.empty()) { 523 unsigned ValID = AliasInitWorklist.back().second; 524 if (ValID >= ValueList.size()) { 525 AliasInits.push_back(AliasInitWorklist.back()); 526 } else { 527 if (Constant *C = dyn_cast<Constant>(ValueList[ValID])) 528 AliasInitWorklist.back().first->setAliasee(C); 529 else 530 return Error("Alias initializer is not a constant!"); 531 } 532 AliasInitWorklist.pop_back(); 533 } 534 return false; 535 } 536 537 538 bool BitcodeReader::ParseConstants() { 539 if (Stream.EnterSubBlock(bitc::CONSTANTS_BLOCK_ID)) 540 return Error("Malformed block record"); 541 542 SmallVector<uint64_t, 64> Record; 543 544 // Read all the records for this value table. 545 const Type *CurTy = Type::Int32Ty; 546 unsigned NextCstNo = ValueList.size(); 547 while (1) { 548 unsigned Code = Stream.ReadCode(); 549 if (Code == bitc::END_BLOCK) { 550 if (NextCstNo != ValueList.size()) 551 return Error("Invalid constant reference!"); 552 553 if (Stream.ReadBlockEnd()) 554 return Error("Error at end of constants block"); 555 return false; 556 } 557 558 if (Code == bitc::ENTER_SUBBLOCK) { 559 // No known subblocks, always skip them. 560 Stream.ReadSubBlockID(); 561 if (Stream.SkipBlock()) 562 return Error("Malformed block record"); 563 continue; 564 } 565 566 if (Code == bitc::DEFINE_ABBREV) { 567 Stream.ReadAbbrevRecord(); 568 continue; 569 } 570 571 // Read a record. 572 Record.clear(); 573 Value *V = 0; 574 switch (Stream.ReadRecord(Code, Record)) { 575 default: // Default behavior: unknown constant 576 case bitc::CST_CODE_UNDEF: // UNDEF 577 V = UndefValue::get(CurTy); 578 break; 579 case bitc::CST_CODE_SETTYPE: // SETTYPE: [typeid] 580 if (Record.empty()) 581 return Error("Malformed CST_SETTYPE record"); 582 if (Record[0] >= TypeList.size()) 583 return Error("Invalid Type ID in CST_SETTYPE record"); 584 CurTy = TypeList[Record[0]]; 585 continue; // Skip the ValueList manipulation. 586 case bitc::CST_CODE_NULL: // NULL 587 V = Constant::getNullValue(CurTy); 588 break; 589 case bitc::CST_CODE_INTEGER: // INTEGER: [intval] 590 if (!isa<IntegerType>(CurTy) || Record.empty()) 591 return Error("Invalid CST_INTEGER record"); 592 V = ConstantInt::get(CurTy, DecodeSignRotatedValue(Record[0])); 593 break; 594 case bitc::CST_CODE_WIDE_INTEGER: {// WIDE_INTEGER: [n x intval] 595 if (!isa<IntegerType>(CurTy) || Record.empty()) 596 return Error("Invalid WIDE_INTEGER record"); 597 598 unsigned NumWords = Record.size(); 599 SmallVector<uint64_t, 8> Words; 600 Words.resize(NumWords); 601 for (unsigned i = 0; i != NumWords; ++i) 602 Words[i] = DecodeSignRotatedValue(Record[i]); 603 V = ConstantInt::get(APInt(cast<IntegerType>(CurTy)->getBitWidth(), 604 NumWords, &Words[0])); 605 break; 606 } 607 case bitc::CST_CODE_FLOAT: // FLOAT: [fpval] 608 if (Record.empty()) 609 return Error("Invalid FLOAT record"); 610 if (CurTy == Type::FloatTy) 611 V = ConstantFP::get(CurTy, BitsToFloat(Record[0])); 612 else if (CurTy == Type::DoubleTy) 613 V = ConstantFP::get(CurTy, BitsToDouble(Record[0])); 614 else 615 V = UndefValue::get(CurTy); 616 break; 617 618 case bitc::CST_CODE_AGGREGATE: {// AGGREGATE: [n x value number] 619 if (Record.empty()) 620 return Error("Invalid CST_AGGREGATE record"); 621 622 unsigned Size = Record.size(); 623 std::vector<Constant*> Elts; 624 625 if (const StructType *STy = dyn_cast<StructType>(CurTy)) { 626 for (unsigned i = 0; i != Size; ++i) 627 Elts.push_back(ValueList.getConstantFwdRef(Record[i], 628 STy->getElementType(i))); 629 V = ConstantStruct::get(STy, Elts); 630 } else if (const ArrayType *ATy = dyn_cast<ArrayType>(CurTy)) { 631 const Type *EltTy = ATy->getElementType(); 632 for (unsigned i = 0; i != Size; ++i) 633 Elts.push_back(ValueList.getConstantFwdRef(Record[i], EltTy)); 634 V = ConstantArray::get(ATy, Elts); 635 } else if (const VectorType *VTy = dyn_cast<VectorType>(CurTy)) { 636 const Type *EltTy = VTy->getElementType(); 637 for (unsigned i = 0; i != Size; ++i) 638 Elts.push_back(ValueList.getConstantFwdRef(Record[i], EltTy)); 639 V = ConstantVector::get(Elts); 640 } else { 641 V = UndefValue::get(CurTy); 642 } 643 break; 644 } 645 case bitc::CST_CODE_STRING: { // STRING: [values] 646 if (Record.empty()) 647 return Error("Invalid CST_AGGREGATE record"); 648 649 const ArrayType *ATy = cast<ArrayType>(CurTy); 650 const Type *EltTy = ATy->getElementType(); 651 652 unsigned Size = Record.size(); 653 std::vector<Constant*> Elts; 654 655 for (unsigned i = 0; i != Size; ++i) 656 Elts.push_back(ConstantInt::get(EltTy, Record[i])); 657 V = ConstantArray::get(ATy, Elts); 658 break; 659 } 660 case bitc::CST_CODE_CE_BINOP: { // CE_BINOP: [opcode, opval, opval] 661 if (Record.size() < 3) return Error("Invalid CE_BINOP record"); 662 int Opc = GetDecodedBinaryOpcode(Record[0], CurTy); 663 if (Opc < 0) { 664 V = UndefValue::get(CurTy); // Unknown binop. 665 } else { 666 Constant *LHS = ValueList.getConstantFwdRef(Record[1], CurTy); 667 Constant *RHS = ValueList.getConstantFwdRef(Record[2], CurTy); 668 V = ConstantExpr::get(Opc, LHS, RHS); 669 } 670 break; 671 } 672 case bitc::CST_CODE_CE_CAST: { // CE_CAST: [opcode, opty, opval] 673 if (Record.size() < 3) return Error("Invalid CE_CAST record"); 674 int Opc = GetDecodedCastOpcode(Record[0]); 675 if (Opc < 0) { 676 V = UndefValue::get(CurTy); // Unknown cast. 677 } else { 678 const Type *OpTy = getTypeByID(Record[1]); 679 Constant *Op = ValueList.getConstantFwdRef(Record[2], OpTy); 680 V = ConstantExpr::getCast(Opc, Op, CurTy); 681 } 682 break; 683 } 684 case bitc::CST_CODE_CE_GEP: { // CE_GEP: [n x operands] 685 if (Record.size() & 1) return Error("Invalid CE_GEP record"); 686 SmallVector<Constant*, 16> Elts; 687 for (unsigned i = 0, e = Record.size(); i != e; i += 2) { 688 const Type *ElTy = getTypeByID(Record[i]); 689 if (!ElTy) return Error("Invalid CE_GEP record"); 690 Elts.push_back(ValueList.getConstantFwdRef(Record[i+1], ElTy)); 691 } 692 V = ConstantExpr::getGetElementPtr(Elts[0], &Elts[1], Elts.size()-1); 693 break; 694 } 695 case bitc::CST_CODE_CE_SELECT: // CE_SELECT: [opval#, opval#, opval#] 696 if (Record.size() < 3) return Error("Invalid CE_SELECT record"); 697 V = ConstantExpr::getSelect(ValueList.getConstantFwdRef(Record[0], 698 Type::Int1Ty), 699 ValueList.getConstantFwdRef(Record[1],CurTy), 700 ValueList.getConstantFwdRef(Record[2],CurTy)); 701 break; 702 case bitc::CST_CODE_CE_EXTRACTELT: { // CE_EXTRACTELT: [opty, opval, opval] 703 if (Record.size() < 3) return Error("Invalid CE_EXTRACTELT record"); 704 const VectorType *OpTy = 705 dyn_cast_or_null<VectorType>(getTypeByID(Record[0])); 706 if (OpTy == 0) return Error("Invalid CE_EXTRACTELT record"); 707 Constant *Op0 = ValueList.getConstantFwdRef(Record[1], OpTy); 708 Constant *Op1 = ValueList.getConstantFwdRef(Record[2], 709 OpTy->getElementType()); 710 V = ConstantExpr::getExtractElement(Op0, Op1); 711 break; 712 } 713 case bitc::CST_CODE_CE_INSERTELT: { // CE_INSERTELT: [opval, opval, opval] 714 const VectorType *OpTy = dyn_cast<VectorType>(CurTy); 715 if (Record.size() < 3 || OpTy == 0) 716 return Error("Invalid CE_INSERTELT record"); 717 Constant *Op0 = ValueList.getConstantFwdRef(Record[0], OpTy); 718 Constant *Op1 = ValueList.getConstantFwdRef(Record[1], 719 OpTy->getElementType()); 720 Constant *Op2 = ValueList.getConstantFwdRef(Record[2], Type::Int32Ty); 721 V = ConstantExpr::getInsertElement(Op0, Op1, Op2); 722 break; 723 } 724 case bitc::CST_CODE_CE_SHUFFLEVEC: { // CE_SHUFFLEVEC: [opval, opval, opval] 725 const VectorType *OpTy = dyn_cast<VectorType>(CurTy); 726 if (Record.size() < 3 || OpTy == 0) 727 return Error("Invalid CE_INSERTELT record"); 728 Constant *Op0 = ValueList.getConstantFwdRef(Record[0], OpTy); 729 Constant *Op1 = ValueList.getConstantFwdRef(Record[1], OpTy); 730 const Type *ShufTy=VectorType::get(Type::Int32Ty, OpTy->getNumElements()); 731 Constant *Op2 = ValueList.getConstantFwdRef(Record[2], ShufTy); 732 V = ConstantExpr::getShuffleVector(Op0, Op1, Op2); 733 break; 734 } 735 case bitc::CST_CODE_CE_CMP: { // CE_CMP: [opty, opval, opval, pred] 736 if (Record.size() < 4) return Error("Invalid CE_CMP record"); 737 const Type *OpTy = getTypeByID(Record[0]); 738 if (OpTy == 0) return Error("Invalid CE_CMP record"); 739 Constant *Op0 = ValueList.getConstantFwdRef(Record[1], OpTy); 740 Constant *Op1 = ValueList.getConstantFwdRef(Record[2], OpTy); 741 742 if (OpTy->isFloatingPoint()) 743 V = ConstantExpr::getFCmp(Record[3], Op0, Op1); 744 else 745 V = ConstantExpr::getICmp(Record[3], Op0, Op1); 746 break; 747 } 748 } 749 750 ValueList.AssignValue(V, NextCstNo); 751 ++NextCstNo; 752 } 753 } 754 755 /// RememberAndSkipFunctionBody - When we see the block for a function body, 756 /// remember where it is and then skip it. This lets us lazily deserialize the 757 /// functions. 758 bool BitcodeReader::RememberAndSkipFunctionBody() { 759 // Get the function we are talking about. 760 if (FunctionsWithBodies.empty()) 761 return Error("Insufficient function protos"); 762 763 Function *Fn = FunctionsWithBodies.back(); 764 FunctionsWithBodies.pop_back(); 765 766 // Save the current stream state. 767 uint64_t CurBit = Stream.GetCurrentBitNo(); 768 DeferredFunctionInfo[Fn] = std::make_pair(CurBit, Fn->getLinkage()); 769 770 // Set the functions linkage to GhostLinkage so we know it is lazily 771 // deserialized. 772 Fn->setLinkage(GlobalValue::GhostLinkage); 773 774 // Skip over the function block for now. 775 if (Stream.SkipBlock()) 776 return Error("Malformed block record"); 777 return false; 778 } 779 780 bool BitcodeReader::ParseModule(const std::string &ModuleID) { 781 // Reject multiple MODULE_BLOCK's in a single bitstream. 782 if (TheModule) 783 return Error("Multiple MODULE_BLOCKs in same stream"); 784 785 if (Stream.EnterSubBlock(bitc::MODULE_BLOCK_ID)) 786 return Error("Malformed block record"); 787 788 // Otherwise, create the module. 789 TheModule = new Module(ModuleID); 790 791 SmallVector<uint64_t, 64> Record; 792 std::vector<std::string> SectionTable; 793 794 // Read all the records for this module. 795 while (!Stream.AtEndOfStream()) { 796 unsigned Code = Stream.ReadCode(); 797 if (Code == bitc::END_BLOCK) { 798 if (Stream.ReadBlockEnd()) 799 return Error("Error at end of module block"); 800 801 // Patch the initializers for globals and aliases up. 802 ResolveGlobalAndAliasInits(); 803 if (!GlobalInits.empty() || !AliasInits.empty()) 804 return Error("Malformed global initializer set"); 805 if (!FunctionsWithBodies.empty()) 806 return Error("Too few function bodies found"); 807 808 // Force deallocation of memory for these vectors to favor the client that 809 // want lazy deserialization. 810 std::vector<std::pair<GlobalVariable*, unsigned> >().swap(GlobalInits); 811 std::vector<std::pair<GlobalAlias*, unsigned> >().swap(AliasInits); 812 std::vector<Function*>().swap(FunctionsWithBodies); 813 return false; 814 } 815 816 if (Code == bitc::ENTER_SUBBLOCK) { 817 switch (Stream.ReadSubBlockID()) { 818 default: // Skip unknown content. 819 if (Stream.SkipBlock()) 820 return Error("Malformed block record"); 821 break; 822 case bitc::BLOCKINFO_BLOCK_ID: 823 if (Stream.ReadBlockInfoBlock()) 824 return Error("Malformed BlockInfoBlock"); 825 break; 826 case bitc::PARAMATTR_BLOCK_ID: 827 if (ParseParamAttrBlock()) 828 return true; 829 break; 830 case bitc::TYPE_BLOCK_ID: 831 if (ParseTypeTable()) 832 return true; 833 break; 834 case bitc::TYPE_SYMTAB_BLOCK_ID: 835 if (ParseTypeSymbolTable()) 836 return true; 837 break; 838 case bitc::VALUE_SYMTAB_BLOCK_ID: 839 if (ParseValueSymbolTable()) 840 return true; 841 break; 842 case bitc::CONSTANTS_BLOCK_ID: 843 if (ParseConstants() || ResolveGlobalAndAliasInits()) 844 return true; 845 break; 846 case bitc::FUNCTION_BLOCK_ID: 847 // If this is the first function body we've seen, reverse the 848 // FunctionsWithBodies list. 849 if (!HasReversedFunctionsWithBodies) { 850 std::reverse(FunctionsWithBodies.begin(), FunctionsWithBodies.end()); 851 HasReversedFunctionsWithBodies = true; 852 } 853 854 if (RememberAndSkipFunctionBody()) 855 return true; 856 break; 857 } 858 continue; 859 } 860 861 if (Code == bitc::DEFINE_ABBREV) { 862 Stream.ReadAbbrevRecord(); 863 continue; 864 } 865 866 // Read a record. 867 switch (Stream.ReadRecord(Code, Record)) { 868 default: break; // Default behavior, ignore unknown content. 869 case bitc::MODULE_CODE_VERSION: // VERSION: [version#] 870 if (Record.size() < 1) 871 return Error("Malformed MODULE_CODE_VERSION"); 872 // Only version #0 is supported so far. 873 if (Record[0] != 0) 874 return Error("Unknown bitstream version!"); 875 break; 876 case bitc::MODULE_CODE_TRIPLE: { // TRIPLE: [strchr x N] 877 std::string S; 878 if (ConvertToString(Record, 0, S)) 879 return Error("Invalid MODULE_CODE_TRIPLE record"); 880 TheModule->setTargetTriple(S); 881 break; 882 } 883 case bitc::MODULE_CODE_DATALAYOUT: { // DATALAYOUT: [strchr x N] 884 std::string S; 885 if (ConvertToString(Record, 0, S)) 886 return Error("Invalid MODULE_CODE_DATALAYOUT record"); 887 TheModule->setDataLayout(S); 888 break; 889 } 890 case bitc::MODULE_CODE_ASM: { // ASM: [strchr x N] 891 std::string S; 892 if (ConvertToString(Record, 0, S)) 893 return Error("Invalid MODULE_CODE_ASM record"); 894 TheModule->setModuleInlineAsm(S); 895 break; 896 } 897 case bitc::MODULE_CODE_DEPLIB: { // DEPLIB: [strchr x N] 898 std::string S; 899 if (ConvertToString(Record, 0, S)) 900 return Error("Invalid MODULE_CODE_DEPLIB record"); 901 TheModule->addLibrary(S); 902 break; 903 } 904 case bitc::MODULE_CODE_SECTIONNAME: { // SECTIONNAME: [strchr x N] 905 std::string S; 906 if (ConvertToString(Record, 0, S)) 907 return Error("Invalid MODULE_CODE_SECTIONNAME record"); 908 SectionTable.push_back(S); 909 break; 910 } 911 // GLOBALVAR: [type, isconst, initid, 912 // linkage, alignment, section, visibility, threadlocal] 913 case bitc::MODULE_CODE_GLOBALVAR: { 914 if (Record.size() < 6) 915 return Error("Invalid MODULE_CODE_GLOBALVAR record"); 916 const Type *Ty = getTypeByID(Record[0]); 917 if (!isa<PointerType>(Ty)) 918 return Error("Global not a pointer type!"); 919 Ty = cast<PointerType>(Ty)->getElementType(); 920 921 bool isConstant = Record[1]; 922 GlobalValue::LinkageTypes Linkage = GetDecodedLinkage(Record[3]); 923 unsigned Alignment = (1 << Record[4]) >> 1; 924 std::string Section; 925 if (Record[5]) { 926 if (Record[5]-1 >= SectionTable.size()) 927 return Error("Invalid section ID"); 928 Section = SectionTable[Record[5]-1]; 929 } 930 GlobalValue::VisibilityTypes Visibility = GlobalValue::DefaultVisibility; 931 if (Record.size() >= 6) Visibility = GetDecodedVisibility(Record[6]); 932 bool isThreadLocal = false; 933 if (Record.size() >= 7) isThreadLocal = Record[7]; 934 935 GlobalVariable *NewGV = 936 new GlobalVariable(Ty, isConstant, Linkage, 0, "", TheModule); 937 NewGV->setAlignment(Alignment); 938 if (!Section.empty()) 939 NewGV->setSection(Section); 940 NewGV->setVisibility(Visibility); 941 NewGV->setThreadLocal(isThreadLocal); 942 943 ValueList.push_back(NewGV); 944 945 // Remember which value to use for the global initializer. 946 if (unsigned InitID = Record[2]) 947 GlobalInits.push_back(std::make_pair(NewGV, InitID-1)); 948 break; 949 } 950 // FUNCTION: [type, callingconv, isproto, linkage, alignment, section, 951 // visibility] 952 case bitc::MODULE_CODE_FUNCTION: { 953 if (Record.size() < 7) 954 return Error("Invalid MODULE_CODE_FUNCTION record"); 955 const Type *Ty = getTypeByID(Record[0]); 956 if (!isa<PointerType>(Ty)) 957 return Error("Function not a pointer type!"); 958 const FunctionType *FTy = 959 dyn_cast<FunctionType>(cast<PointerType>(Ty)->getElementType()); 960 if (!FTy) 961 return Error("Function not a pointer to function type!"); 962 963 Function *Func = new Function(FTy, GlobalValue::ExternalLinkage, 964 "", TheModule); 965 966 Func->setCallingConv(Record[1]); 967 bool isProto = Record[2]; 968 Func->setLinkage(GetDecodedLinkage(Record[3])); 969 Func->setAlignment((1 << Record[4]) >> 1); 970 if (Record[5]) { 971 if (Record[5]-1 >= SectionTable.size()) 972 return Error("Invalid section ID"); 973 Func->setSection(SectionTable[Record[5]-1]); 974 } 975 Func->setVisibility(GetDecodedVisibility(Record[6])); 976 977 ValueList.push_back(Func); 978 979 // If this is a function with a body, remember the prototype we are 980 // creating now, so that we can match up the body with them later. 981 if (!isProto) 982 FunctionsWithBodies.push_back(Func); 983 break; 984 } 985 // ALIAS: [alias type, aliasee val#, linkage] 986 case bitc::MODULE_CODE_ALIAS: { 987 if (Record.size() < 3) 988 return Error("Invalid MODULE_ALIAS record"); 989 const Type *Ty = getTypeByID(Record[0]); 990 if (!isa<PointerType>(Ty)) 991 return Error("Function not a pointer type!"); 992 993 GlobalAlias *NewGA = new GlobalAlias(Ty, GetDecodedLinkage(Record[2]), 994 "", 0, TheModule); 995 ValueList.push_back(NewGA); 996 AliasInits.push_back(std::make_pair(NewGA, Record[1])); 997 break; 998 } 999 /// MODULE_CODE_PURGEVALS: [numvals] 1000 case bitc::MODULE_CODE_PURGEVALS: 1001 // Trim down the value list to the specified size. 1002 if (Record.size() < 1 || Record[0] > ValueList.size()) 1003 return Error("Invalid MODULE_PURGEVALS record"); 1004 ValueList.shrinkTo(Record[0]); 1005 break; 1006 } 1007 Record.clear(); 1008 } 1009 1010 return Error("Premature end of bitstream"); 1011 } 1012 1013 1014 bool BitcodeReader::ParseBitcode() { 1015 TheModule = 0; 1016 1017 if (Buffer->getBufferSize() & 3) 1018 return Error("Bitcode stream should be a multiple of 4 bytes in length"); 1019 1020 unsigned char *BufPtr = (unsigned char *)Buffer->getBufferStart(); 1021 Stream.init(BufPtr, BufPtr+Buffer->getBufferSize()); 1022 1023 // Sniff for the signature. 1024 if (Stream.Read(8) != 'B' || 1025 Stream.Read(8) != 'C' || 1026 Stream.Read(4) != 0x0 || 1027 Stream.Read(4) != 0xC || 1028 Stream.Read(4) != 0xE || 1029 Stream.Read(4) != 0xD) 1030 return Error("Invalid bitcode signature"); 1031 1032 // We expect a number of well-defined blocks, though we don't necessarily 1033 // need to understand them all. 1034 while (!Stream.AtEndOfStream()) { 1035 unsigned Code = Stream.ReadCode(); 1036 1037 if (Code != bitc::ENTER_SUBBLOCK) 1038 return Error("Invalid record at top-level"); 1039 1040 unsigned BlockID = Stream.ReadSubBlockID(); 1041 1042 // We only know the MODULE subblock ID. 1043 switch (BlockID) { 1044 case bitc::BLOCKINFO_BLOCK_ID: 1045 if (Stream.ReadBlockInfoBlock()) 1046 return Error("Malformed BlockInfoBlock"); 1047 break; 1048 case bitc::MODULE_BLOCK_ID: 1049 if (ParseModule(Buffer->getBufferIdentifier())) 1050 return true; 1051 break; 1052 default: 1053 if (Stream.SkipBlock()) 1054 return Error("Malformed block record"); 1055 break; 1056 } 1057 } 1058 1059 return false; 1060 } 1061 1062 1063 bool BitcodeReader::materializeFunction(Function *F, std::string *ErrInfo) { 1064 // If it already is material, ignore the request. 1065 if (!F->hasNotBeenReadFromBytecode()) return false; 1066 1067 DenseMap<Function*, std::pair<uint64_t, unsigned> >::iterator DFII = 1068 DeferredFunctionInfo.find(F); 1069 assert(DFII != DeferredFunctionInfo.end() && "Deferred function not found!"); 1070 1071 // Move the bit stream to the saved position of the deferred function body and 1072 // restore the real linkage type for the function. 1073 Stream.JumpToBit(DFII->second.first); 1074 F->setLinkage((GlobalValue::LinkageTypes)DFII->second.second); 1075 DeferredFunctionInfo.erase(DFII); 1076 1077 if (ParseFunctionBody(F)) { 1078 if (ErrInfo) *ErrInfo = ErrorString; 1079 return true; 1080 } 1081 1082 return false; 1083 } 1084 1085 Module *BitcodeReader::materializeModule(std::string *ErrInfo) { 1086 DenseMap<Function*, std::pair<uint64_t, unsigned> >::iterator I = 1087 DeferredFunctionInfo.begin(); 1088 while (!DeferredFunctionInfo.empty()) { 1089 Function *F = (*I++).first; 1090 assert(F->hasNotBeenReadFromBytecode() && 1091 "Deserialized function found in map!"); 1092 if (materializeFunction(F, ErrInfo)) 1093 return 0; 1094 } 1095 return TheModule; 1096 } 1097 1098 1099 /// ParseFunctionBody - Lazily parse the specified function body block. 1100 bool BitcodeReader::ParseFunctionBody(Function *F) { 1101 if (Stream.EnterSubBlock(bitc::FUNCTION_BLOCK_ID)) 1102 return Error("Malformed block record"); 1103 1104 unsigned ModuleValueListSize = ValueList.size(); 1105 1106 // Add all the function arguments to the value table. 1107 for(Function::arg_iterator I = F->arg_begin(), E = F->arg_end(); I != E; ++I) 1108 ValueList.push_back(I); 1109 1110 unsigned NextValueNo = ValueList.size(); 1111 BasicBlock *CurBB = 0; 1112 unsigned CurBBNo = 0; 1113 1114 // Read all the records. 1115 SmallVector<uint64_t, 64> Record; 1116 while (1) { 1117 unsigned Code = Stream.ReadCode(); 1118 if (Code == bitc::END_BLOCK) { 1119 if (Stream.ReadBlockEnd()) 1120 return Error("Error at end of function block"); 1121 break; 1122 } 1123 1124 if (Code == bitc::ENTER_SUBBLOCK) { 1125 switch (Stream.ReadSubBlockID()) { 1126 default: // Skip unknown content. 1127 if (Stream.SkipBlock()) 1128 return Error("Malformed block record"); 1129 break; 1130 case bitc::CONSTANTS_BLOCK_ID: 1131 if (ParseConstants()) return true; 1132 NextValueNo = ValueList.size(); 1133 break; 1134 case bitc::VALUE_SYMTAB_BLOCK_ID: 1135 if (ParseValueSymbolTable()) return true; 1136 break; 1137 } 1138 continue; 1139 } 1140 1141 if (Code == bitc::DEFINE_ABBREV) { 1142 Stream.ReadAbbrevRecord(); 1143 continue; 1144 } 1145 1146 // Read a record. 1147 Record.clear(); 1148 Instruction *I = 0; 1149 switch (Stream.ReadRecord(Code, Record)) { 1150 default: // Default behavior: reject 1151 return Error("Unknown instruction"); 1152 case bitc::FUNC_CODE_DECLAREBLOCKS: // DECLAREBLOCKS: [nblocks] 1153 if (Record.size() < 1 || Record[0] == 0) 1154 return Error("Invalid DECLAREBLOCKS record"); 1155 // Create all the basic blocks for the function. 1156 FunctionBBs.resize(Record[0]); 1157 for (unsigned i = 0, e = FunctionBBs.size(); i != e; ++i) 1158 FunctionBBs[i] = new BasicBlock("", F); 1159 CurBB = FunctionBBs[0]; 1160 continue; 1161 1162 case bitc::FUNC_CODE_INST_BINOP: { // BINOP: [opval, ty, opval, opcode] 1163 unsigned OpNum = 0; 1164 Value *LHS, *RHS; 1165 if (getValueTypePair(Record, OpNum, NextValueNo, LHS) || 1166 getValue(Record, OpNum, LHS->getType(), RHS) || 1167 OpNum+1 != Record.size()) 1168 return Error("Invalid BINOP record"); 1169 1170 int Opc = GetDecodedBinaryOpcode(Record[OpNum], LHS->getType()); 1171 if (Opc == -1) return Error("Invalid BINOP record"); 1172 I = BinaryOperator::create((Instruction::BinaryOps)Opc, LHS, RHS); 1173 break; 1174 } 1175 case bitc::FUNC_CODE_INST_CAST: { // CAST: [opval, opty, destty, castopc] 1176 unsigned OpNum = 0; 1177 Value *Op; 1178 if (getValueTypePair(Record, OpNum, NextValueNo, Op) || 1179 OpNum+2 != Record.size()) 1180 return Error("Invalid CAST record"); 1181 1182 const Type *ResTy = getTypeByID(Record[OpNum]); 1183 int Opc = GetDecodedCastOpcode(Record[OpNum+1]); 1184 if (Opc == -1 || ResTy == 0) 1185 return Error("Invalid CAST record"); 1186 I = CastInst::create((Instruction::CastOps)Opc, Op, ResTy); 1187 break; 1188 } 1189 case bitc::FUNC_CODE_INST_GEP: { // GEP: [n x operands] 1190 unsigned OpNum = 0; 1191 Value *BasePtr; 1192 if (getValueTypePair(Record, OpNum, NextValueNo, BasePtr)) 1193 return Error("Invalid GEP record"); 1194 1195 SmallVector<Value*, 16> GEPIdx; 1196 while (OpNum != Record.size()) { 1197 Value *Op; 1198 if (getValueTypePair(Record, OpNum, NextValueNo, Op)) 1199 return Error("Invalid GEP record"); 1200 GEPIdx.push_back(Op); 1201 } 1202 1203 I = new GetElementPtrInst(BasePtr, &GEPIdx[0], GEPIdx.size()); 1204 break; 1205 } 1206 1207 case bitc::FUNC_CODE_INST_SELECT: { // SELECT: [opval, ty, opval, opval] 1208 unsigned OpNum = 0; 1209 Value *TrueVal, *FalseVal, *Cond; 1210 if (getValueTypePair(Record, OpNum, NextValueNo, TrueVal) || 1211 getValue(Record, OpNum, TrueVal->getType(), FalseVal) || 1212 getValue(Record, OpNum, Type::Int1Ty, Cond)) 1213 return Error("Invalid SELECT record"); 1214 1215 I = new SelectInst(Cond, TrueVal, FalseVal); 1216 break; 1217 } 1218 1219 case bitc::FUNC_CODE_INST_EXTRACTELT: { // EXTRACTELT: [opty, opval, opval] 1220 unsigned OpNum = 0; 1221 Value *Vec, *Idx; 1222 if (getValueTypePair(Record, OpNum, NextValueNo, Vec) || 1223 getValue(Record, OpNum, Type::Int32Ty, Idx)) 1224 return Error("Invalid EXTRACTELT record"); 1225 I = new ExtractElementInst(Vec, Idx); 1226 break; 1227 } 1228 1229 case bitc::FUNC_CODE_INST_INSERTELT: { // INSERTELT: [ty, opval,opval,opval] 1230 unsigned OpNum = 0; 1231 Value *Vec, *Elt, *Idx; 1232 if (getValueTypePair(Record, OpNum, NextValueNo, Vec) || 1233 getValue(Record, OpNum, 1234 cast<VectorType>(Vec->getType())->getElementType(), Elt) || 1235 getValue(Record, OpNum, Type::Int32Ty, Idx)) 1236 return Error("Invalid INSERTELT record"); 1237 I = new InsertElementInst(Vec, Elt, Idx); 1238 break; 1239 } 1240 1241 case bitc::FUNC_CODE_INST_SHUFFLEVEC: {// SHUFFLEVEC: [opval,ty,opval,opval] 1242 unsigned OpNum = 0; 1243 Value *Vec1, *Vec2, *Mask; 1244 if (getValueTypePair(Record, OpNum, NextValueNo, Vec1) || 1245 getValue(Record, OpNum, Vec1->getType(), Vec2)) 1246 return Error("Invalid SHUFFLEVEC record"); 1247 1248 const Type *MaskTy = 1249 VectorType::get(Type::Int32Ty, 1250 cast<VectorType>(Vec1->getType())->getNumElements()); 1251 1252 if (getValue(Record, OpNum, MaskTy, Mask)) 1253 return Error("Invalid SHUFFLEVEC record"); 1254 I = new ShuffleVectorInst(Vec1, Vec2, Mask); 1255 break; 1256 } 1257 1258 case bitc::FUNC_CODE_INST_CMP: { // CMP: [opty, opval, opval, pred] 1259 unsigned OpNum = 0; 1260 Value *LHS, *RHS; 1261 if (getValueTypePair(Record, OpNum, NextValueNo, LHS) || 1262 getValue(Record, OpNum, LHS->getType(), RHS) || 1263 OpNum+1 != Record.size()) 1264 return Error("Invalid CMP record"); 1265 1266 if (LHS->getType()->isFPOrFPVector()) 1267 I = new FCmpInst((FCmpInst::Predicate)Record[OpNum], LHS, RHS); 1268 else 1269 I = new ICmpInst((ICmpInst::Predicate)Record[OpNum], LHS, RHS); 1270 break; 1271 } 1272 1273 case bitc::FUNC_CODE_INST_RET: // RET: [opty,opval<optional>] 1274 if (Record.size() == 0) { 1275 I = new ReturnInst(); 1276 break; 1277 } else { 1278 unsigned OpNum = 0; 1279 Value *Op; 1280 if (getValueTypePair(Record, OpNum, NextValueNo, Op) || 1281 OpNum != Record.size()) 1282 return Error("Invalid RET record"); 1283 I = new ReturnInst(Op); 1284 break; 1285 } 1286 case bitc::FUNC_CODE_INST_BR: { // BR: [bb#, bb#, opval] or [bb#] 1287 if (Record.size() != 1 && Record.size() != 3) 1288 return Error("Invalid BR record"); 1289 BasicBlock *TrueDest = getBasicBlock(Record[0]); 1290 if (TrueDest == 0) 1291 return Error("Invalid BR record"); 1292 1293 if (Record.size() == 1) 1294 I = new BranchInst(TrueDest); 1295 else { 1296 BasicBlock *FalseDest = getBasicBlock(Record[1]); 1297 Value *Cond = getFnValueByID(Record[2], Type::Int1Ty); 1298 if (FalseDest == 0 || Cond == 0) 1299 return Error("Invalid BR record"); 1300 I = new BranchInst(TrueDest, FalseDest, Cond); 1301 } 1302 break; 1303 } 1304 case bitc::FUNC_CODE_INST_SWITCH: { // SWITCH: [opty, opval, n, n x ops] 1305 if (Record.size() < 3 || (Record.size() & 1) == 0) 1306 return Error("Invalid SWITCH record"); 1307 const Type *OpTy = getTypeByID(Record[0]); 1308 Value *Cond = getFnValueByID(Record[1], OpTy); 1309 BasicBlock *Default = getBasicBlock(Record[2]); 1310 if (OpTy == 0 || Cond == 0 || Default == 0) 1311 return Error("Invalid SWITCH record"); 1312 unsigned NumCases = (Record.size()-3)/2; 1313 SwitchInst *SI = new SwitchInst(Cond, Default, NumCases); 1314 for (unsigned i = 0, e = NumCases; i != e; ++i) { 1315 ConstantInt *CaseVal = 1316 dyn_cast_or_null<ConstantInt>(getFnValueByID(Record[3+i*2], OpTy)); 1317 BasicBlock *DestBB = getBasicBlock(Record[1+3+i*2]); 1318 if (CaseVal == 0 || DestBB == 0) { 1319 delete SI; 1320 return Error("Invalid SWITCH record!"); 1321 } 1322 SI->addCase(CaseVal, DestBB); 1323 } 1324 I = SI; 1325 break; 1326 } 1327 1328 case bitc::FUNC_CODE_INST_INVOKE: { // INVOKE: [cc,fnty, op0,op1,op2, ...] 1329 if (Record.size() < 3) return Error("Invalid INVOKE record"); 1330 unsigned CCInfo = Record[0]; 1331 BasicBlock *NormalBB = getBasicBlock(Record[1]); 1332 BasicBlock *UnwindBB = getBasicBlock(Record[2]); 1333 1334 unsigned OpNum = 3; 1335 Value *Callee; 1336 if (getValueTypePair(Record, OpNum, NextValueNo, Callee)) 1337 return Error("Invalid INVOKE record"); 1338 1339 const PointerType *CalleeTy = dyn_cast<PointerType>(Callee->getType()); 1340 const FunctionType *FTy = !CalleeTy ? 0 : 1341 dyn_cast<FunctionType>(CalleeTy->getElementType()); 1342 1343 // Check that the right number of fixed parameters are here. 1344 if (FTy == 0 || NormalBB == 0 || UnwindBB == 0 || 1345 Record.size() < OpNum+FTy->getNumParams()) 1346 return Error("Invalid INVOKE record"); 1347 1348 SmallVector<Value*, 16> Ops; 1349 for (unsigned i = 0, e = FTy->getNumParams(); i != e; ++i, ++OpNum) { 1350 Ops.push_back(getFnValueByID(Record[OpNum], FTy->getParamType(i))); 1351 if (Ops.back() == 0) return Error("Invalid INVOKE record"); 1352 } 1353 1354 if (!FTy->isVarArg()) { 1355 if (Record.size() != OpNum) 1356 return Error("Invalid INVOKE record"); 1357 } else { 1358 // Read type/value pairs for varargs params. 1359 while (OpNum != Record.size()) { 1360 Value *Op; 1361 if (getValueTypePair(Record, OpNum, NextValueNo, Op)) 1362 return Error("Invalid INVOKE record"); 1363 Ops.push_back(Op); 1364 } 1365 } 1366 1367 I = new InvokeInst(Callee, NormalBB, UnwindBB, &Ops[0], Ops.size()); 1368 cast<InvokeInst>(I)->setCallingConv(CCInfo); 1369 break; 1370 } 1371 case bitc::FUNC_CODE_INST_UNWIND: // UNWIND 1372 I = new UnwindInst(); 1373 break; 1374 case bitc::FUNC_CODE_INST_UNREACHABLE: // UNREACHABLE 1375 I = new UnreachableInst(); 1376 break; 1377 case bitc::FUNC_CODE_INST_PHI: { // PHI: [ty, val0,bb0, ...] 1378 if (Record.size() < 1 || ((Record.size()-1)&1)) 1379 return Error("Invalid PHI record"); 1380 const Type *Ty = getTypeByID(Record[0]); 1381 if (!Ty) return Error("Invalid PHI record"); 1382 1383 PHINode *PN = new PHINode(Ty); 1384 PN->reserveOperandSpace(Record.size()-1); 1385 1386 for (unsigned i = 0, e = Record.size()-1; i != e; i += 2) { 1387 Value *V = getFnValueByID(Record[1+i], Ty); 1388 BasicBlock *BB = getBasicBlock(Record[2+i]); 1389 if (!V || !BB) return Error("Invalid PHI record"); 1390 PN->addIncoming(V, BB); 1391 } 1392 I = PN; 1393 break; 1394 } 1395 1396 case bitc::FUNC_CODE_INST_MALLOC: { // MALLOC: [instty, op, align] 1397 if (Record.size() < 3) 1398 return Error("Invalid MALLOC record"); 1399 const PointerType *Ty = 1400 dyn_cast_or_null<PointerType>(getTypeByID(Record[0])); 1401 Value *Size = getFnValueByID(Record[1], Type::Int32Ty); 1402 unsigned Align = Record[2]; 1403 if (!Ty || !Size) return Error("Invalid MALLOC record"); 1404 I = new MallocInst(Ty->getElementType(), Size, (1 << Align) >> 1); 1405 break; 1406 } 1407 case bitc::FUNC_CODE_INST_FREE: { // FREE: [op, opty] 1408 unsigned OpNum = 0; 1409 Value *Op; 1410 if (getValueTypePair(Record, OpNum, NextValueNo, Op) || 1411 OpNum != Record.size()) 1412 return Error("Invalid FREE record"); 1413 I = new FreeInst(Op); 1414 break; 1415 } 1416 case bitc::FUNC_CODE_INST_ALLOCA: { // ALLOCA: [instty, op, align] 1417 if (Record.size() < 3) 1418 return Error("Invalid ALLOCA record"); 1419 const PointerType *Ty = 1420 dyn_cast_or_null<PointerType>(getTypeByID(Record[0])); 1421 Value *Size = getFnValueByID(Record[1], Type::Int32Ty); 1422 unsigned Align = Record[2]; 1423 if (!Ty || !Size) return Error("Invalid ALLOCA record"); 1424 I = new AllocaInst(Ty->getElementType(), Size, (1 << Align) >> 1); 1425 break; 1426 } 1427 case bitc::FUNC_CODE_INST_LOAD: { // LOAD: [opty, op, align, vol] 1428 unsigned OpNum = 0; 1429 Value *Op; 1430 if (getValueTypePair(Record, OpNum, NextValueNo, Op) || 1431 OpNum+2 != Record.size()) 1432 return Error("Invalid LOAD record"); 1433 1434 I = new LoadInst(Op, "", Record[OpNum+1], (1 << Record[OpNum]) >> 1); 1435 break; 1436 } 1437 case bitc::FUNC_CODE_INST_STORE: { // STORE:[val, valty, ptr, align, vol] 1438 unsigned OpNum = 0; 1439 Value *Val, *Ptr; 1440 if (getValueTypePair(Record, OpNum, NextValueNo, Val) || 1441 getValue(Record, OpNum, PointerType::get(Val->getType()), Ptr) || 1442 OpNum+2 != Record.size()) 1443 return Error("Invalid STORE record"); 1444 1445 I = new StoreInst(Val, Ptr, Record[OpNum+1], (1 << Record[OpNum]) >> 1); 1446 break; 1447 } 1448 case bitc::FUNC_CODE_INST_CALL: { // CALL: [cc, fnty, fnid, arg0, arg1...] 1449 if (Record.size() < 1) 1450 return Error("Invalid CALL record"); 1451 unsigned CCInfo = Record[0]; 1452 1453 unsigned OpNum = 1; 1454 Value *Callee; 1455 if (getValueTypePair(Record, OpNum, NextValueNo, Callee)) 1456 return Error("Invalid CALL record"); 1457 1458 const PointerType *OpTy = dyn_cast<PointerType>(Callee->getType()); 1459 const FunctionType *FTy = 0; 1460 if (OpTy) FTy = dyn_cast<FunctionType>(OpTy->getElementType()); 1461 if (!FTy || Record.size() < FTy->getNumParams()+OpNum) 1462 return Error("Invalid CALL record"); 1463 1464 SmallVector<Value*, 16> Args; 1465 // Read the fixed params. 1466 for (unsigned i = 0, e = FTy->getNumParams(); i != e; ++i, ++OpNum) { 1467 Args.push_back(getFnValueByID(Record[OpNum], FTy->getParamType(i))); 1468 if (Args.back() == 0) return Error("Invalid CALL record"); 1469 } 1470 1471 // Read type/value pairs for varargs params. 1472 if (!FTy->isVarArg()) { 1473 if (OpNum != Record.size()) 1474 return Error("Invalid CALL record"); 1475 } else { 1476 while (OpNum != Record.size()) { 1477 Value *Op; 1478 if (getValueTypePair(Record, OpNum, NextValueNo, Op)) 1479 return Error("Invalid CALL record"); 1480 Args.push_back(Op); 1481 } 1482 } 1483 1484 I = new CallInst(Callee, &Args[0], Args.size()); 1485 cast<CallInst>(I)->setCallingConv(CCInfo>>1); 1486 cast<CallInst>(I)->setTailCall(CCInfo & 1); 1487 break; 1488 } 1489 case bitc::FUNC_CODE_INST_VAARG: { // VAARG: [valistty, valist, instty] 1490 if (Record.size() < 3) 1491 return Error("Invalid VAARG record"); 1492 const Type *OpTy = getTypeByID(Record[0]); 1493 Value *Op = getFnValueByID(Record[1], OpTy); 1494 const Type *ResTy = getTypeByID(Record[2]); 1495 if (!OpTy || !Op || !ResTy) 1496 return Error("Invalid VAARG record"); 1497 I = new VAArgInst(Op, ResTy); 1498 break; 1499 } 1500 } 1501 1502 // Add instruction to end of current BB. If there is no current BB, reject 1503 // this file. 1504 if (CurBB == 0) { 1505 delete I; 1506 return Error("Invalid instruction with no BB"); 1507 } 1508 CurBB->getInstList().push_back(I); 1509 1510 // If this was a terminator instruction, move to the next block. 1511 if (isa<TerminatorInst>(I)) { 1512 ++CurBBNo; 1513 CurBB = CurBBNo < FunctionBBs.size() ? FunctionBBs[CurBBNo] : 0; 1514 } 1515 1516 // Non-void values get registered in the value table for future use. 1517 if (I && I->getType() != Type::VoidTy) 1518 ValueList.AssignValue(I, NextValueNo++); 1519 } 1520 1521 // Check the function list for unresolved values. 1522 if (Argument *A = dyn_cast<Argument>(ValueList.back())) { 1523 if (A->getParent() == 0) { 1524 // We found at least one unresolved value. Nuke them all to avoid leaks. 1525 for (unsigned i = ModuleValueListSize, e = ValueList.size(); i != e; ++i){ 1526 if ((A = dyn_cast<Argument>(ValueList.back())) && A->getParent() == 0) { 1527 A->replaceAllUsesWith(UndefValue::get(A->getType())); 1528 delete A; 1529 } 1530 } 1531 return Error("Never resolved value found in function!"); 1532 } 1533 } 1534 1535 // Trim the value list down to the size it was before we parsed this function. 1536 ValueList.shrinkTo(ModuleValueListSize); 1537 std::vector<BasicBlock*>().swap(FunctionBBs); 1538 1539 return false; 1540 } 1541 1542 1543 //===----------------------------------------------------------------------===// 1544 // External interface 1545 //===----------------------------------------------------------------------===// 1546 1547 /// getBitcodeModuleProvider - lazy function-at-a-time loading from a file. 1548 /// 1549 ModuleProvider *llvm::getBitcodeModuleProvider(MemoryBuffer *Buffer, 1550 std::string *ErrMsg) { 1551 BitcodeReader *R = new BitcodeReader(Buffer); 1552 if (R->ParseBitcode()) { 1553 if (ErrMsg) 1554 *ErrMsg = R->getErrorString(); 1555 1556 // Don't let the BitcodeReader dtor delete 'Buffer'. 1557 R->releaseMemoryBuffer(); 1558 delete R; 1559 return 0; 1560 } 1561 return R; 1562 } 1563 1564 /// ParseBitcodeFile - Read the specified bitcode file, returning the module. 1565 /// If an error occurs, return null and fill in *ErrMsg if non-null. 1566 Module *llvm::ParseBitcodeFile(MemoryBuffer *Buffer, std::string *ErrMsg){ 1567 BitcodeReader *R; 1568 R = static_cast<BitcodeReader*>(getBitcodeModuleProvider(Buffer, ErrMsg)); 1569 if (!R) return 0; 1570 1571 // Read the whole module, get a pointer to it, tell ModuleProvider not to 1572 // delete it when its dtor is run. 1573 Module *M = R->releaseModule(ErrMsg); 1574 1575 // Don't let the BitcodeReader dtor delete 'Buffer'. 1576 R->releaseMemoryBuffer(); 1577 delete R; 1578 return M; 1579 } 1580