1 //===-- LLParser.cpp - Parser Class ---------------------------------------===// 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 defines the parser class for .ll files. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "LLParser.h" 15 #include "llvm/ADT/SmallPtrSet.h" 16 #include "llvm/AutoUpgrade.h" 17 #include "llvm/CallingConv.h" 18 #include "llvm/Constants.h" 19 #include "llvm/DerivedTypes.h" 20 #include "llvm/InlineAsm.h" 21 #include "llvm/Instructions.h" 22 #include "llvm/Module.h" 23 #include "llvm/Operator.h" 24 #include "llvm/Support/ErrorHandling.h" 25 #include "llvm/Support/raw_ostream.h" 26 #include "llvm/ValueSymbolTable.h" 27 using namespace llvm; 28 29 static std::string getTypeString(Type *T) { 30 std::string Result; 31 raw_string_ostream Tmp(Result); 32 Tmp << *T; 33 return Tmp.str(); 34 } 35 36 /// Run: module ::= toplevelentity* 37 bool LLParser::Run() { 38 // Prime the lexer. 39 Lex.Lex(); 40 41 return ParseTopLevelEntities() || 42 ValidateEndOfModule(); 43 } 44 45 /// ValidateEndOfModule - Do final validity and sanity checks at the end of the 46 /// module. 47 bool LLParser::ValidateEndOfModule() { 48 // Handle any instruction metadata forward references. 49 if (!ForwardRefInstMetadata.empty()) { 50 for (DenseMap<Instruction*, std::vector<MDRef> >::iterator 51 I = ForwardRefInstMetadata.begin(), E = ForwardRefInstMetadata.end(); 52 I != E; ++I) { 53 Instruction *Inst = I->first; 54 const std::vector<MDRef> &MDList = I->second; 55 56 for (unsigned i = 0, e = MDList.size(); i != e; ++i) { 57 unsigned SlotNo = MDList[i].MDSlot; 58 59 if (SlotNo >= NumberedMetadata.size() || NumberedMetadata[SlotNo] == 0) 60 return Error(MDList[i].Loc, "use of undefined metadata '!" + 61 Twine(SlotNo) + "'"); 62 Inst->setMetadata(MDList[i].MDKind, NumberedMetadata[SlotNo]); 63 } 64 } 65 ForwardRefInstMetadata.clear(); 66 } 67 68 69 // If there are entries in ForwardRefBlockAddresses at this point, they are 70 // references after the function was defined. Resolve those now. 71 while (!ForwardRefBlockAddresses.empty()) { 72 // Okay, we are referencing an already-parsed function, resolve them now. 73 Function *TheFn = 0; 74 const ValID &Fn = ForwardRefBlockAddresses.begin()->first; 75 if (Fn.Kind == ValID::t_GlobalName) 76 TheFn = M->getFunction(Fn.StrVal); 77 else if (Fn.UIntVal < NumberedVals.size()) 78 TheFn = dyn_cast<Function>(NumberedVals[Fn.UIntVal]); 79 80 if (TheFn == 0) 81 return Error(Fn.Loc, "unknown function referenced by blockaddress"); 82 83 // Resolve all these references. 84 if (ResolveForwardRefBlockAddresses(TheFn, 85 ForwardRefBlockAddresses.begin()->second, 86 0)) 87 return true; 88 89 ForwardRefBlockAddresses.erase(ForwardRefBlockAddresses.begin()); 90 } 91 92 for (unsigned i = 0, e = NumberedTypes.size(); i != e; ++i) 93 if (NumberedTypes[i].second.isValid()) 94 return Error(NumberedTypes[i].second, 95 "use of undefined type '%" + Twine(i) + "'"); 96 97 for (StringMap<std::pair<Type*, LocTy> >::iterator I = 98 NamedTypes.begin(), E = NamedTypes.end(); I != E; ++I) 99 if (I->second.second.isValid()) 100 return Error(I->second.second, 101 "use of undefined type named '" + I->getKey() + "'"); 102 103 if (!ForwardRefVals.empty()) 104 return Error(ForwardRefVals.begin()->second.second, 105 "use of undefined value '@" + ForwardRefVals.begin()->first + 106 "'"); 107 108 if (!ForwardRefValIDs.empty()) 109 return Error(ForwardRefValIDs.begin()->second.second, 110 "use of undefined value '@" + 111 Twine(ForwardRefValIDs.begin()->first) + "'"); 112 113 if (!ForwardRefMDNodes.empty()) 114 return Error(ForwardRefMDNodes.begin()->second.second, 115 "use of undefined metadata '!" + 116 Twine(ForwardRefMDNodes.begin()->first) + "'"); 117 118 119 // Look for intrinsic functions and CallInst that need to be upgraded 120 for (Module::iterator FI = M->begin(), FE = M->end(); FI != FE; ) 121 UpgradeCallsToIntrinsic(FI++); // must be post-increment, as we remove 122 123 return false; 124 } 125 126 bool LLParser::ResolveForwardRefBlockAddresses(Function *TheFn, 127 std::vector<std::pair<ValID, GlobalValue*> > &Refs, 128 PerFunctionState *PFS) { 129 // Loop over all the references, resolving them. 130 for (unsigned i = 0, e = Refs.size(); i != e; ++i) { 131 BasicBlock *Res; 132 if (PFS) { 133 if (Refs[i].first.Kind == ValID::t_LocalName) 134 Res = PFS->GetBB(Refs[i].first.StrVal, Refs[i].first.Loc); 135 else 136 Res = PFS->GetBB(Refs[i].first.UIntVal, Refs[i].first.Loc); 137 } else if (Refs[i].first.Kind == ValID::t_LocalID) { 138 return Error(Refs[i].first.Loc, 139 "cannot take address of numeric label after the function is defined"); 140 } else { 141 Res = dyn_cast_or_null<BasicBlock>( 142 TheFn->getValueSymbolTable().lookup(Refs[i].first.StrVal)); 143 } 144 145 if (Res == 0) 146 return Error(Refs[i].first.Loc, 147 "referenced value is not a basic block"); 148 149 // Get the BlockAddress for this and update references to use it. 150 BlockAddress *BA = BlockAddress::get(TheFn, Res); 151 Refs[i].second->replaceAllUsesWith(BA); 152 Refs[i].second->eraseFromParent(); 153 } 154 return false; 155 } 156 157 158 //===----------------------------------------------------------------------===// 159 // Top-Level Entities 160 //===----------------------------------------------------------------------===// 161 162 bool LLParser::ParseTopLevelEntities() { 163 while (1) { 164 switch (Lex.getKind()) { 165 default: return TokError("expected top-level entity"); 166 case lltok::Eof: return false; 167 case lltok::kw_declare: if (ParseDeclare()) return true; break; 168 case lltok::kw_define: if (ParseDefine()) return true; break; 169 case lltok::kw_module: if (ParseModuleAsm()) return true; break; 170 case lltok::kw_target: if (ParseTargetDefinition()) return true; break; 171 case lltok::kw_deplibs: if (ParseDepLibs()) return true; break; 172 case lltok::LocalVarID: if (ParseUnnamedType()) return true; break; 173 case lltok::LocalVar: if (ParseNamedType()) return true; break; 174 case lltok::GlobalID: if (ParseUnnamedGlobal()) return true; break; 175 case lltok::GlobalVar: if (ParseNamedGlobal()) return true; break; 176 case lltok::exclaim: if (ParseStandaloneMetadata()) return true; break; 177 case lltok::MetadataVar: if (ParseNamedMetadata()) return true; break; 178 179 // The Global variable production with no name can have many different 180 // optional leading prefixes, the production is: 181 // GlobalVar ::= OptionalLinkage OptionalVisibility OptionalThreadLocal 182 // OptionalAddrSpace OptionalUnNammedAddr 183 // ('constant'|'global') ... 184 case lltok::kw_private: // OptionalLinkage 185 case lltok::kw_linker_private: // OptionalLinkage 186 case lltok::kw_linker_private_weak: // OptionalLinkage 187 case lltok::kw_linker_private_weak_def_auto: // FIXME: backwards compat. 188 case lltok::kw_internal: // OptionalLinkage 189 case lltok::kw_weak: // OptionalLinkage 190 case lltok::kw_weak_odr: // OptionalLinkage 191 case lltok::kw_linkonce: // OptionalLinkage 192 case lltok::kw_linkonce_odr: // OptionalLinkage 193 case lltok::kw_linkonce_odr_auto_hide: // OptionalLinkage 194 case lltok::kw_appending: // OptionalLinkage 195 case lltok::kw_dllexport: // OptionalLinkage 196 case lltok::kw_common: // OptionalLinkage 197 case lltok::kw_dllimport: // OptionalLinkage 198 case lltok::kw_extern_weak: // OptionalLinkage 199 case lltok::kw_external: { // OptionalLinkage 200 unsigned Linkage, Visibility; 201 if (ParseOptionalLinkage(Linkage) || 202 ParseOptionalVisibility(Visibility) || 203 ParseGlobal("", SMLoc(), Linkage, true, Visibility)) 204 return true; 205 break; 206 } 207 case lltok::kw_default: // OptionalVisibility 208 case lltok::kw_hidden: // OptionalVisibility 209 case lltok::kw_protected: { // OptionalVisibility 210 unsigned Visibility; 211 if (ParseOptionalVisibility(Visibility) || 212 ParseGlobal("", SMLoc(), 0, false, Visibility)) 213 return true; 214 break; 215 } 216 217 case lltok::kw_thread_local: // OptionalThreadLocal 218 case lltok::kw_addrspace: // OptionalAddrSpace 219 case lltok::kw_constant: // GlobalType 220 case lltok::kw_global: // GlobalType 221 if (ParseGlobal("", SMLoc(), 0, false, 0)) return true; 222 break; 223 } 224 } 225 } 226 227 228 /// toplevelentity 229 /// ::= 'module' 'asm' STRINGCONSTANT 230 bool LLParser::ParseModuleAsm() { 231 assert(Lex.getKind() == lltok::kw_module); 232 Lex.Lex(); 233 234 std::string AsmStr; 235 if (ParseToken(lltok::kw_asm, "expected 'module asm'") || 236 ParseStringConstant(AsmStr)) return true; 237 238 M->appendModuleInlineAsm(AsmStr); 239 return false; 240 } 241 242 /// toplevelentity 243 /// ::= 'target' 'triple' '=' STRINGCONSTANT 244 /// ::= 'target' 'datalayout' '=' STRINGCONSTANT 245 bool LLParser::ParseTargetDefinition() { 246 assert(Lex.getKind() == lltok::kw_target); 247 std::string Str; 248 switch (Lex.Lex()) { 249 default: return TokError("unknown target property"); 250 case lltok::kw_triple: 251 Lex.Lex(); 252 if (ParseToken(lltok::equal, "expected '=' after target triple") || 253 ParseStringConstant(Str)) 254 return true; 255 M->setTargetTriple(Str); 256 return false; 257 case lltok::kw_datalayout: 258 Lex.Lex(); 259 if (ParseToken(lltok::equal, "expected '=' after target datalayout") || 260 ParseStringConstant(Str)) 261 return true; 262 M->setDataLayout(Str); 263 return false; 264 } 265 } 266 267 /// toplevelentity 268 /// ::= 'deplibs' '=' '[' ']' 269 /// ::= 'deplibs' '=' '[' STRINGCONSTANT (',' STRINGCONSTANT)* ']' 270 /// FIXME: Remove in 4.0. Currently parse, but ignore. 271 bool LLParser::ParseDepLibs() { 272 assert(Lex.getKind() == lltok::kw_deplibs); 273 Lex.Lex(); 274 if (ParseToken(lltok::equal, "expected '=' after deplibs") || 275 ParseToken(lltok::lsquare, "expected '=' after deplibs")) 276 return true; 277 278 if (EatIfPresent(lltok::rsquare)) 279 return false; 280 281 do { 282 std::string Str; 283 if (ParseStringConstant(Str)) return true; 284 } while (EatIfPresent(lltok::comma)); 285 286 return ParseToken(lltok::rsquare, "expected ']' at end of list"); 287 } 288 289 /// ParseUnnamedType: 290 /// ::= LocalVarID '=' 'type' type 291 bool LLParser::ParseUnnamedType() { 292 LocTy TypeLoc = Lex.getLoc(); 293 unsigned TypeID = Lex.getUIntVal(); 294 Lex.Lex(); // eat LocalVarID; 295 296 if (ParseToken(lltok::equal, "expected '=' after name") || 297 ParseToken(lltok::kw_type, "expected 'type' after '='")) 298 return true; 299 300 if (TypeID >= NumberedTypes.size()) 301 NumberedTypes.resize(TypeID+1); 302 303 Type *Result = 0; 304 if (ParseStructDefinition(TypeLoc, "", 305 NumberedTypes[TypeID], Result)) return true; 306 307 if (!isa<StructType>(Result)) { 308 std::pair<Type*, LocTy> &Entry = NumberedTypes[TypeID]; 309 if (Entry.first) 310 return Error(TypeLoc, "non-struct types may not be recursive"); 311 Entry.first = Result; 312 Entry.second = SMLoc(); 313 } 314 315 return false; 316 } 317 318 319 /// toplevelentity 320 /// ::= LocalVar '=' 'type' type 321 bool LLParser::ParseNamedType() { 322 std::string Name = Lex.getStrVal(); 323 LocTy NameLoc = Lex.getLoc(); 324 Lex.Lex(); // eat LocalVar. 325 326 if (ParseToken(lltok::equal, "expected '=' after name") || 327 ParseToken(lltok::kw_type, "expected 'type' after name")) 328 return true; 329 330 Type *Result = 0; 331 if (ParseStructDefinition(NameLoc, Name, 332 NamedTypes[Name], Result)) return true; 333 334 if (!isa<StructType>(Result)) { 335 std::pair<Type*, LocTy> &Entry = NamedTypes[Name]; 336 if (Entry.first) 337 return Error(NameLoc, "non-struct types may not be recursive"); 338 Entry.first = Result; 339 Entry.second = SMLoc(); 340 } 341 342 return false; 343 } 344 345 346 /// toplevelentity 347 /// ::= 'declare' FunctionHeader 348 bool LLParser::ParseDeclare() { 349 assert(Lex.getKind() == lltok::kw_declare); 350 Lex.Lex(); 351 352 Function *F; 353 return ParseFunctionHeader(F, false); 354 } 355 356 /// toplevelentity 357 /// ::= 'define' FunctionHeader '{' ... 358 bool LLParser::ParseDefine() { 359 assert(Lex.getKind() == lltok::kw_define); 360 Lex.Lex(); 361 362 Function *F; 363 return ParseFunctionHeader(F, true) || 364 ParseFunctionBody(*F); 365 } 366 367 /// ParseGlobalType 368 /// ::= 'constant' 369 /// ::= 'global' 370 bool LLParser::ParseGlobalType(bool &IsConstant) { 371 if (Lex.getKind() == lltok::kw_constant) 372 IsConstant = true; 373 else if (Lex.getKind() == lltok::kw_global) 374 IsConstant = false; 375 else { 376 IsConstant = false; 377 return TokError("expected 'global' or 'constant'"); 378 } 379 Lex.Lex(); 380 return false; 381 } 382 383 /// ParseUnnamedGlobal: 384 /// OptionalVisibility ALIAS ... 385 /// OptionalLinkage OptionalVisibility ... -> global variable 386 /// GlobalID '=' OptionalVisibility ALIAS ... 387 /// GlobalID '=' OptionalLinkage OptionalVisibility ... -> global variable 388 bool LLParser::ParseUnnamedGlobal() { 389 unsigned VarID = NumberedVals.size(); 390 std::string Name; 391 LocTy NameLoc = Lex.getLoc(); 392 393 // Handle the GlobalID form. 394 if (Lex.getKind() == lltok::GlobalID) { 395 if (Lex.getUIntVal() != VarID) 396 return Error(Lex.getLoc(), "variable expected to be numbered '%" + 397 Twine(VarID) + "'"); 398 Lex.Lex(); // eat GlobalID; 399 400 if (ParseToken(lltok::equal, "expected '=' after name")) 401 return true; 402 } 403 404 bool HasLinkage; 405 unsigned Linkage, Visibility; 406 if (ParseOptionalLinkage(Linkage, HasLinkage) || 407 ParseOptionalVisibility(Visibility)) 408 return true; 409 410 if (HasLinkage || Lex.getKind() != lltok::kw_alias) 411 return ParseGlobal(Name, NameLoc, Linkage, HasLinkage, Visibility); 412 return ParseAlias(Name, NameLoc, Visibility); 413 } 414 415 /// ParseNamedGlobal: 416 /// GlobalVar '=' OptionalVisibility ALIAS ... 417 /// GlobalVar '=' OptionalLinkage OptionalVisibility ... -> global variable 418 bool LLParser::ParseNamedGlobal() { 419 assert(Lex.getKind() == lltok::GlobalVar); 420 LocTy NameLoc = Lex.getLoc(); 421 std::string Name = Lex.getStrVal(); 422 Lex.Lex(); 423 424 bool HasLinkage; 425 unsigned Linkage, Visibility; 426 if (ParseToken(lltok::equal, "expected '=' in global variable") || 427 ParseOptionalLinkage(Linkage, HasLinkage) || 428 ParseOptionalVisibility(Visibility)) 429 return true; 430 431 if (HasLinkage || Lex.getKind() != lltok::kw_alias) 432 return ParseGlobal(Name, NameLoc, Linkage, HasLinkage, Visibility); 433 return ParseAlias(Name, NameLoc, Visibility); 434 } 435 436 // MDString: 437 // ::= '!' STRINGCONSTANT 438 bool LLParser::ParseMDString(MDString *&Result) { 439 std::string Str; 440 if (ParseStringConstant(Str)) return true; 441 Result = MDString::get(Context, Str); 442 return false; 443 } 444 445 // MDNode: 446 // ::= '!' MDNodeNumber 447 // 448 /// This version of ParseMDNodeID returns the slot number and null in the case 449 /// of a forward reference. 450 bool LLParser::ParseMDNodeID(MDNode *&Result, unsigned &SlotNo) { 451 // !{ ..., !42, ... } 452 if (ParseUInt32(SlotNo)) return true; 453 454 // Check existing MDNode. 455 if (SlotNo < NumberedMetadata.size() && NumberedMetadata[SlotNo] != 0) 456 Result = NumberedMetadata[SlotNo]; 457 else 458 Result = 0; 459 return false; 460 } 461 462 bool LLParser::ParseMDNodeID(MDNode *&Result) { 463 // !{ ..., !42, ... } 464 unsigned MID = 0; 465 if (ParseMDNodeID(Result, MID)) return true; 466 467 // If not a forward reference, just return it now. 468 if (Result) return false; 469 470 // Otherwise, create MDNode forward reference. 471 MDNode *FwdNode = MDNode::getTemporary(Context, ArrayRef<Value*>()); 472 ForwardRefMDNodes[MID] = std::make_pair(FwdNode, Lex.getLoc()); 473 474 if (NumberedMetadata.size() <= MID) 475 NumberedMetadata.resize(MID+1); 476 NumberedMetadata[MID] = FwdNode; 477 Result = FwdNode; 478 return false; 479 } 480 481 /// ParseNamedMetadata: 482 /// !foo = !{ !1, !2 } 483 bool LLParser::ParseNamedMetadata() { 484 assert(Lex.getKind() == lltok::MetadataVar); 485 std::string Name = Lex.getStrVal(); 486 Lex.Lex(); 487 488 if (ParseToken(lltok::equal, "expected '=' here") || 489 ParseToken(lltok::exclaim, "Expected '!' here") || 490 ParseToken(lltok::lbrace, "Expected '{' here")) 491 return true; 492 493 NamedMDNode *NMD = M->getOrInsertNamedMetadata(Name); 494 if (Lex.getKind() != lltok::rbrace) 495 do { 496 if (ParseToken(lltok::exclaim, "Expected '!' here")) 497 return true; 498 499 MDNode *N = 0; 500 if (ParseMDNodeID(N)) return true; 501 NMD->addOperand(N); 502 } while (EatIfPresent(lltok::comma)); 503 504 if (ParseToken(lltok::rbrace, "expected end of metadata node")) 505 return true; 506 507 return false; 508 } 509 510 /// ParseStandaloneMetadata: 511 /// !42 = !{...} 512 bool LLParser::ParseStandaloneMetadata() { 513 assert(Lex.getKind() == lltok::exclaim); 514 Lex.Lex(); 515 unsigned MetadataID = 0; 516 517 LocTy TyLoc; 518 Type *Ty = 0; 519 SmallVector<Value *, 16> Elts; 520 if (ParseUInt32(MetadataID) || 521 ParseToken(lltok::equal, "expected '=' here") || 522 ParseType(Ty, TyLoc) || 523 ParseToken(lltok::exclaim, "Expected '!' here") || 524 ParseToken(lltok::lbrace, "Expected '{' here") || 525 ParseMDNodeVector(Elts, NULL) || 526 ParseToken(lltok::rbrace, "expected end of metadata node")) 527 return true; 528 529 MDNode *Init = MDNode::get(Context, Elts); 530 531 // See if this was forward referenced, if so, handle it. 532 std::map<unsigned, std::pair<TrackingVH<MDNode>, LocTy> >::iterator 533 FI = ForwardRefMDNodes.find(MetadataID); 534 if (FI != ForwardRefMDNodes.end()) { 535 MDNode *Temp = FI->second.first; 536 Temp->replaceAllUsesWith(Init); 537 MDNode::deleteTemporary(Temp); 538 ForwardRefMDNodes.erase(FI); 539 540 assert(NumberedMetadata[MetadataID] == Init && "Tracking VH didn't work"); 541 } else { 542 if (MetadataID >= NumberedMetadata.size()) 543 NumberedMetadata.resize(MetadataID+1); 544 545 if (NumberedMetadata[MetadataID] != 0) 546 return TokError("Metadata id is already used"); 547 NumberedMetadata[MetadataID] = Init; 548 } 549 550 return false; 551 } 552 553 /// ParseAlias: 554 /// ::= GlobalVar '=' OptionalVisibility 'alias' OptionalLinkage Aliasee 555 /// Aliasee 556 /// ::= TypeAndValue 557 /// ::= 'bitcast' '(' TypeAndValue 'to' Type ')' 558 /// ::= 'getelementptr' 'inbounds'? '(' ... ')' 559 /// 560 /// Everything through visibility has already been parsed. 561 /// 562 bool LLParser::ParseAlias(const std::string &Name, LocTy NameLoc, 563 unsigned Visibility) { 564 assert(Lex.getKind() == lltok::kw_alias); 565 Lex.Lex(); 566 unsigned Linkage; 567 LocTy LinkageLoc = Lex.getLoc(); 568 if (ParseOptionalLinkage(Linkage)) 569 return true; 570 571 if (Linkage != GlobalValue::ExternalLinkage && 572 Linkage != GlobalValue::WeakAnyLinkage && 573 Linkage != GlobalValue::WeakODRLinkage && 574 Linkage != GlobalValue::InternalLinkage && 575 Linkage != GlobalValue::PrivateLinkage && 576 Linkage != GlobalValue::LinkerPrivateLinkage && 577 Linkage != GlobalValue::LinkerPrivateWeakLinkage) 578 return Error(LinkageLoc, "invalid linkage type for alias"); 579 580 Constant *Aliasee; 581 LocTy AliaseeLoc = Lex.getLoc(); 582 if (Lex.getKind() != lltok::kw_bitcast && 583 Lex.getKind() != lltok::kw_getelementptr) { 584 if (ParseGlobalTypeAndValue(Aliasee)) return true; 585 } else { 586 // The bitcast dest type is not present, it is implied by the dest type. 587 ValID ID; 588 if (ParseValID(ID)) return true; 589 if (ID.Kind != ValID::t_Constant) 590 return Error(AliaseeLoc, "invalid aliasee"); 591 Aliasee = ID.ConstantVal; 592 } 593 594 if (!Aliasee->getType()->isPointerTy()) 595 return Error(AliaseeLoc, "alias must have pointer type"); 596 597 // Okay, create the alias but do not insert it into the module yet. 598 GlobalAlias* GA = new GlobalAlias(Aliasee->getType(), 599 (GlobalValue::LinkageTypes)Linkage, Name, 600 Aliasee); 601 GA->setVisibility((GlobalValue::VisibilityTypes)Visibility); 602 603 // See if this value already exists in the symbol table. If so, it is either 604 // a redefinition or a definition of a forward reference. 605 if (GlobalValue *Val = M->getNamedValue(Name)) { 606 // See if this was a redefinition. If so, there is no entry in 607 // ForwardRefVals. 608 std::map<std::string, std::pair<GlobalValue*, LocTy> >::iterator 609 I = ForwardRefVals.find(Name); 610 if (I == ForwardRefVals.end()) 611 return Error(NameLoc, "redefinition of global named '@" + Name + "'"); 612 613 // Otherwise, this was a definition of forward ref. Verify that types 614 // agree. 615 if (Val->getType() != GA->getType()) 616 return Error(NameLoc, 617 "forward reference and definition of alias have different types"); 618 619 // If they agree, just RAUW the old value with the alias and remove the 620 // forward ref info. 621 Val->replaceAllUsesWith(GA); 622 Val->eraseFromParent(); 623 ForwardRefVals.erase(I); 624 } 625 626 // Insert into the module, we know its name won't collide now. 627 M->getAliasList().push_back(GA); 628 assert(GA->getName() == Name && "Should not be a name conflict!"); 629 630 return false; 631 } 632 633 /// ParseGlobal 634 /// ::= GlobalVar '=' OptionalLinkage OptionalVisibility OptionalThreadLocal 635 /// OptionalAddrSpace OptionalUnNammedAddr GlobalType Type Const 636 /// ::= OptionalLinkage OptionalVisibility OptionalThreadLocal 637 /// OptionalAddrSpace OptionalUnNammedAddr GlobalType Type Const 638 /// 639 /// Everything through visibility has been parsed already. 640 /// 641 bool LLParser::ParseGlobal(const std::string &Name, LocTy NameLoc, 642 unsigned Linkage, bool HasLinkage, 643 unsigned Visibility) { 644 unsigned AddrSpace; 645 bool IsConstant, UnnamedAddr; 646 GlobalVariable::ThreadLocalMode TLM; 647 LocTy UnnamedAddrLoc; 648 LocTy TyLoc; 649 650 Type *Ty = 0; 651 if (ParseOptionalThreadLocal(TLM) || 652 ParseOptionalAddrSpace(AddrSpace) || 653 ParseOptionalToken(lltok::kw_unnamed_addr, UnnamedAddr, 654 &UnnamedAddrLoc) || 655 ParseGlobalType(IsConstant) || 656 ParseType(Ty, TyLoc)) 657 return true; 658 659 // If the linkage is specified and is external, then no initializer is 660 // present. 661 Constant *Init = 0; 662 if (!HasLinkage || (Linkage != GlobalValue::DLLImportLinkage && 663 Linkage != GlobalValue::ExternalWeakLinkage && 664 Linkage != GlobalValue::ExternalLinkage)) { 665 if (ParseGlobalValue(Ty, Init)) 666 return true; 667 } 668 669 if (Ty->isFunctionTy() || Ty->isLabelTy()) 670 return Error(TyLoc, "invalid type for global variable"); 671 672 GlobalVariable *GV = 0; 673 674 // See if the global was forward referenced, if so, use the global. 675 if (!Name.empty()) { 676 if (GlobalValue *GVal = M->getNamedValue(Name)) { 677 if (!ForwardRefVals.erase(Name) || !isa<GlobalValue>(GVal)) 678 return Error(NameLoc, "redefinition of global '@" + Name + "'"); 679 GV = cast<GlobalVariable>(GVal); 680 } 681 } else { 682 std::map<unsigned, std::pair<GlobalValue*, LocTy> >::iterator 683 I = ForwardRefValIDs.find(NumberedVals.size()); 684 if (I != ForwardRefValIDs.end()) { 685 GV = cast<GlobalVariable>(I->second.first); 686 ForwardRefValIDs.erase(I); 687 } 688 } 689 690 if (GV == 0) { 691 GV = new GlobalVariable(*M, Ty, false, GlobalValue::ExternalLinkage, 0, 692 Name, 0, GlobalVariable::NotThreadLocal, 693 AddrSpace); 694 } else { 695 if (GV->getType()->getElementType() != Ty) 696 return Error(TyLoc, 697 "forward reference and definition of global have different types"); 698 699 // Move the forward-reference to the correct spot in the module. 700 M->getGlobalList().splice(M->global_end(), M->getGlobalList(), GV); 701 } 702 703 if (Name.empty()) 704 NumberedVals.push_back(GV); 705 706 // Set the parsed properties on the global. 707 if (Init) 708 GV->setInitializer(Init); 709 GV->setConstant(IsConstant); 710 GV->setLinkage((GlobalValue::LinkageTypes)Linkage); 711 GV->setVisibility((GlobalValue::VisibilityTypes)Visibility); 712 GV->setThreadLocalMode(TLM); 713 GV->setUnnamedAddr(UnnamedAddr); 714 715 // Parse attributes on the global. 716 while (Lex.getKind() == lltok::comma) { 717 Lex.Lex(); 718 719 if (Lex.getKind() == lltok::kw_section) { 720 Lex.Lex(); 721 GV->setSection(Lex.getStrVal()); 722 if (ParseToken(lltok::StringConstant, "expected global section string")) 723 return true; 724 } else if (Lex.getKind() == lltok::kw_align) { 725 unsigned Alignment; 726 if (ParseOptionalAlignment(Alignment)) return true; 727 GV->setAlignment(Alignment); 728 } else { 729 TokError("unknown global variable property!"); 730 } 731 } 732 733 return false; 734 } 735 736 737 //===----------------------------------------------------------------------===// 738 // GlobalValue Reference/Resolution Routines. 739 //===----------------------------------------------------------------------===// 740 741 /// GetGlobalVal - Get a value with the specified name or ID, creating a 742 /// forward reference record if needed. This can return null if the value 743 /// exists but does not have the right type. 744 GlobalValue *LLParser::GetGlobalVal(const std::string &Name, Type *Ty, 745 LocTy Loc) { 746 PointerType *PTy = dyn_cast<PointerType>(Ty); 747 if (PTy == 0) { 748 Error(Loc, "global variable reference must have pointer type"); 749 return 0; 750 } 751 752 // Look this name up in the normal function symbol table. 753 GlobalValue *Val = 754 cast_or_null<GlobalValue>(M->getValueSymbolTable().lookup(Name)); 755 756 // If this is a forward reference for the value, see if we already created a 757 // forward ref record. 758 if (Val == 0) { 759 std::map<std::string, std::pair<GlobalValue*, LocTy> >::iterator 760 I = ForwardRefVals.find(Name); 761 if (I != ForwardRefVals.end()) 762 Val = I->second.first; 763 } 764 765 // If we have the value in the symbol table or fwd-ref table, return it. 766 if (Val) { 767 if (Val->getType() == Ty) return Val; 768 Error(Loc, "'@" + Name + "' defined with type '" + 769 getTypeString(Val->getType()) + "'"); 770 return 0; 771 } 772 773 // Otherwise, create a new forward reference for this value and remember it. 774 GlobalValue *FwdVal; 775 if (FunctionType *FT = dyn_cast<FunctionType>(PTy->getElementType())) 776 FwdVal = Function::Create(FT, GlobalValue::ExternalWeakLinkage, Name, M); 777 else 778 FwdVal = new GlobalVariable(*M, PTy->getElementType(), false, 779 GlobalValue::ExternalWeakLinkage, 0, Name, 780 0, GlobalVariable::NotThreadLocal, 781 PTy->getAddressSpace()); 782 783 ForwardRefVals[Name] = std::make_pair(FwdVal, Loc); 784 return FwdVal; 785 } 786 787 GlobalValue *LLParser::GetGlobalVal(unsigned ID, Type *Ty, LocTy Loc) { 788 PointerType *PTy = dyn_cast<PointerType>(Ty); 789 if (PTy == 0) { 790 Error(Loc, "global variable reference must have pointer type"); 791 return 0; 792 } 793 794 GlobalValue *Val = ID < NumberedVals.size() ? NumberedVals[ID] : 0; 795 796 // If this is a forward reference for the value, see if we already created a 797 // forward ref record. 798 if (Val == 0) { 799 std::map<unsigned, std::pair<GlobalValue*, LocTy> >::iterator 800 I = ForwardRefValIDs.find(ID); 801 if (I != ForwardRefValIDs.end()) 802 Val = I->second.first; 803 } 804 805 // If we have the value in the symbol table or fwd-ref table, return it. 806 if (Val) { 807 if (Val->getType() == Ty) return Val; 808 Error(Loc, "'@" + Twine(ID) + "' defined with type '" + 809 getTypeString(Val->getType()) + "'"); 810 return 0; 811 } 812 813 // Otherwise, create a new forward reference for this value and remember it. 814 GlobalValue *FwdVal; 815 if (FunctionType *FT = dyn_cast<FunctionType>(PTy->getElementType())) 816 FwdVal = Function::Create(FT, GlobalValue::ExternalWeakLinkage, "", M); 817 else 818 FwdVal = new GlobalVariable(*M, PTy->getElementType(), false, 819 GlobalValue::ExternalWeakLinkage, 0, ""); 820 821 ForwardRefValIDs[ID] = std::make_pair(FwdVal, Loc); 822 return FwdVal; 823 } 824 825 826 //===----------------------------------------------------------------------===// 827 // Helper Routines. 828 //===----------------------------------------------------------------------===// 829 830 /// ParseToken - If the current token has the specified kind, eat it and return 831 /// success. Otherwise, emit the specified error and return failure. 832 bool LLParser::ParseToken(lltok::Kind T, const char *ErrMsg) { 833 if (Lex.getKind() != T) 834 return TokError(ErrMsg); 835 Lex.Lex(); 836 return false; 837 } 838 839 /// ParseStringConstant 840 /// ::= StringConstant 841 bool LLParser::ParseStringConstant(std::string &Result) { 842 if (Lex.getKind() != lltok::StringConstant) 843 return TokError("expected string constant"); 844 Result = Lex.getStrVal(); 845 Lex.Lex(); 846 return false; 847 } 848 849 /// ParseUInt32 850 /// ::= uint32 851 bool LLParser::ParseUInt32(unsigned &Val) { 852 if (Lex.getKind() != lltok::APSInt || Lex.getAPSIntVal().isSigned()) 853 return TokError("expected integer"); 854 uint64_t Val64 = Lex.getAPSIntVal().getLimitedValue(0xFFFFFFFFULL+1); 855 if (Val64 != unsigned(Val64)) 856 return TokError("expected 32-bit integer (too large)"); 857 Val = Val64; 858 Lex.Lex(); 859 return false; 860 } 861 862 /// ParseTLSModel 863 /// := 'localdynamic' 864 /// := 'initialexec' 865 /// := 'localexec' 866 bool LLParser::ParseTLSModel(GlobalVariable::ThreadLocalMode &TLM) { 867 switch (Lex.getKind()) { 868 default: 869 return TokError("expected localdynamic, initialexec or localexec"); 870 case lltok::kw_localdynamic: 871 TLM = GlobalVariable::LocalDynamicTLSModel; 872 break; 873 case lltok::kw_initialexec: 874 TLM = GlobalVariable::InitialExecTLSModel; 875 break; 876 case lltok::kw_localexec: 877 TLM = GlobalVariable::LocalExecTLSModel; 878 break; 879 } 880 881 Lex.Lex(); 882 return false; 883 } 884 885 /// ParseOptionalThreadLocal 886 /// := /*empty*/ 887 /// := 'thread_local' 888 /// := 'thread_local' '(' tlsmodel ')' 889 bool LLParser::ParseOptionalThreadLocal(GlobalVariable::ThreadLocalMode &TLM) { 890 TLM = GlobalVariable::NotThreadLocal; 891 if (!EatIfPresent(lltok::kw_thread_local)) 892 return false; 893 894 TLM = GlobalVariable::GeneralDynamicTLSModel; 895 if (Lex.getKind() == lltok::lparen) { 896 Lex.Lex(); 897 return ParseTLSModel(TLM) || 898 ParseToken(lltok::rparen, "expected ')' after thread local model"); 899 } 900 return false; 901 } 902 903 /// ParseOptionalAddrSpace 904 /// := /*empty*/ 905 /// := 'addrspace' '(' uint32 ')' 906 bool LLParser::ParseOptionalAddrSpace(unsigned &AddrSpace) { 907 AddrSpace = 0; 908 if (!EatIfPresent(lltok::kw_addrspace)) 909 return false; 910 return ParseToken(lltok::lparen, "expected '(' in address space") || 911 ParseUInt32(AddrSpace) || 912 ParseToken(lltok::rparen, "expected ')' in address space"); 913 } 914 915 /// ParseOptionalFuncAttrs - Parse a potentially empty list of function attributes. 916 bool LLParser::ParseOptionalFuncAttrs(AttrBuilder &B) { 917 bool HaveError = false; 918 919 B.clear(); 920 921 while (1) { 922 lltok::Kind Token = Lex.getKind(); 923 switch (Token) { 924 default: // End of attributes. 925 return HaveError; 926 case lltok::kw_alignstack: { 927 unsigned Alignment; 928 if (ParseOptionalStackAlignment(Alignment)) 929 return true; 930 B.addStackAlignmentAttr(Alignment); 931 continue; 932 } 933 case lltok::kw_align: { 934 // As a hack, we allow "align 2" on functions as a synonym for "alignstack 935 // 2". 936 unsigned Alignment; 937 if (ParseOptionalAlignment(Alignment)) 938 return true; 939 B.addAlignmentAttr(Alignment); 940 continue; 941 } 942 case lltok::kw_address_safety: B.addAttribute(Attributes::AddressSafety); break; 943 case lltok::kw_alwaysinline: B.addAttribute(Attributes::AlwaysInline); break; 944 case lltok::kw_inlinehint: B.addAttribute(Attributes::InlineHint); break; 945 case lltok::kw_minsize: B.addAttribute(Attributes::MinSize); break; 946 case lltok::kw_naked: B.addAttribute(Attributes::Naked); break; 947 case lltok::kw_noinline: B.addAttribute(Attributes::NoInline); break; 948 case lltok::kw_nonlazybind: B.addAttribute(Attributes::NonLazyBind); break; 949 case lltok::kw_noredzone: B.addAttribute(Attributes::NoRedZone); break; 950 case lltok::kw_noimplicitfloat: B.addAttribute(Attributes::NoImplicitFloat); break; 951 case lltok::kw_noreturn: B.addAttribute(Attributes::NoReturn); break; 952 case lltok::kw_nounwind: B.addAttribute(Attributes::NoUnwind); break; 953 case lltok::kw_optsize: B.addAttribute(Attributes::OptimizeForSize); break; 954 case lltok::kw_readnone: B.addAttribute(Attributes::ReadNone); break; 955 case lltok::kw_readonly: B.addAttribute(Attributes::ReadOnly); break; 956 case lltok::kw_returns_twice: B.addAttribute(Attributes::ReturnsTwice); break; 957 case lltok::kw_ssp: B.addAttribute(Attributes::StackProtect); break; 958 case lltok::kw_sspreq: B.addAttribute(Attributes::StackProtectReq); break; 959 case lltok::kw_uwtable: B.addAttribute(Attributes::UWTable); break; 960 961 // Error handling. 962 case lltok::kw_zeroext: 963 case lltok::kw_signext: 964 case lltok::kw_inreg: 965 HaveError |= Error(Lex.getLoc(), "invalid use of attribute on a function"); 966 break; 967 case lltok::kw_sret: case lltok::kw_noalias: 968 case lltok::kw_nocapture: case lltok::kw_byval: 969 case lltok::kw_nest: 970 HaveError |= 971 Error(Lex.getLoc(), "invalid use of parameter-only attribute on a function"); 972 break; 973 } 974 975 Lex.Lex(); 976 } 977 } 978 979 /// ParseOptionalParamAttrs - Parse a potentially empty list of parameter attributes. 980 bool LLParser::ParseOptionalParamAttrs(AttrBuilder &B) { 981 bool HaveError = false; 982 983 B.clear(); 984 985 while (1) { 986 lltok::Kind Token = Lex.getKind(); 987 switch (Token) { 988 default: // End of attributes. 989 return HaveError; 990 case lltok::kw_align: { 991 unsigned Alignment; 992 if (ParseOptionalAlignment(Alignment)) 993 return true; 994 B.addAlignmentAttr(Alignment); 995 continue; 996 } 997 case lltok::kw_byval: B.addAttribute(Attributes::ByVal); break; 998 case lltok::kw_inreg: B.addAttribute(Attributes::InReg); break; 999 case lltok::kw_nest: B.addAttribute(Attributes::Nest); break; 1000 case lltok::kw_noalias: B.addAttribute(Attributes::NoAlias); break; 1001 case lltok::kw_nocapture: B.addAttribute(Attributes::NoCapture); break; 1002 case lltok::kw_signext: B.addAttribute(Attributes::SExt); break; 1003 case lltok::kw_sret: B.addAttribute(Attributes::StructRet); break; 1004 case lltok::kw_zeroext: B.addAttribute(Attributes::ZExt); break; 1005 1006 case lltok::kw_noreturn: case lltok::kw_nounwind: 1007 case lltok::kw_uwtable: case lltok::kw_returns_twice: 1008 case lltok::kw_noinline: case lltok::kw_readnone: 1009 case lltok::kw_readonly: case lltok::kw_inlinehint: 1010 case lltok::kw_alwaysinline: case lltok::kw_optsize: 1011 case lltok::kw_ssp: case lltok::kw_sspreq: 1012 case lltok::kw_noredzone: case lltok::kw_noimplicitfloat: 1013 case lltok::kw_naked: case lltok::kw_nonlazybind: 1014 case lltok::kw_address_safety: case lltok::kw_minsize: 1015 case lltok::kw_alignstack: 1016 HaveError |= Error(Lex.getLoc(), "invalid use of function-only attribute"); 1017 break; 1018 } 1019 1020 Lex.Lex(); 1021 } 1022 } 1023 1024 /// ParseOptionalReturnAttrs - Parse a potentially empty list of return attributes. 1025 bool LLParser::ParseOptionalReturnAttrs(AttrBuilder &B) { 1026 bool HaveError = false; 1027 1028 B.clear(); 1029 1030 while (1) { 1031 lltok::Kind Token = Lex.getKind(); 1032 switch (Token) { 1033 default: // End of attributes. 1034 return HaveError; 1035 case lltok::kw_inreg: B.addAttribute(Attributes::InReg); break; 1036 case lltok::kw_noalias: B.addAttribute(Attributes::NoAlias); break; 1037 case lltok::kw_signext: B.addAttribute(Attributes::SExt); break; 1038 case lltok::kw_zeroext: B.addAttribute(Attributes::ZExt); break; 1039 1040 // Error handling. 1041 case lltok::kw_sret: case lltok::kw_nocapture: 1042 case lltok::kw_byval: case lltok::kw_nest: 1043 HaveError |= Error(Lex.getLoc(), "invalid use of parameter-only attribute"); 1044 break; 1045 case lltok::kw_noreturn: case lltok::kw_nounwind: 1046 case lltok::kw_uwtable: case lltok::kw_returns_twice: 1047 case lltok::kw_noinline: case lltok::kw_readnone: 1048 case lltok::kw_readonly: case lltok::kw_inlinehint: 1049 case lltok::kw_alwaysinline: case lltok::kw_optsize: 1050 case lltok::kw_ssp: case lltok::kw_sspreq: 1051 case lltok::kw_noredzone: case lltok::kw_noimplicitfloat: 1052 case lltok::kw_naked: case lltok::kw_nonlazybind: 1053 case lltok::kw_address_safety: case lltok::kw_minsize: 1054 case lltok::kw_alignstack: case lltok::kw_align: 1055 HaveError |= Error(Lex.getLoc(), "invalid use of function-only attribute"); 1056 break; 1057 } 1058 1059 Lex.Lex(); 1060 } 1061 } 1062 1063 /// ParseOptionalLinkage 1064 /// ::= /*empty*/ 1065 /// ::= 'private' 1066 /// ::= 'linker_private' 1067 /// ::= 'linker_private_weak' 1068 /// ::= 'internal' 1069 /// ::= 'weak' 1070 /// ::= 'weak_odr' 1071 /// ::= 'linkonce' 1072 /// ::= 'linkonce_odr' 1073 /// ::= 'linkonce_odr_auto_hide' 1074 /// ::= 'available_externally' 1075 /// ::= 'appending' 1076 /// ::= 'dllexport' 1077 /// ::= 'common' 1078 /// ::= 'dllimport' 1079 /// ::= 'extern_weak' 1080 /// ::= 'external' 1081 bool LLParser::ParseOptionalLinkage(unsigned &Res, bool &HasLinkage) { 1082 HasLinkage = false; 1083 switch (Lex.getKind()) { 1084 default: Res=GlobalValue::ExternalLinkage; return false; 1085 case lltok::kw_private: Res = GlobalValue::PrivateLinkage; break; 1086 case lltok::kw_linker_private: Res = GlobalValue::LinkerPrivateLinkage; break; 1087 case lltok::kw_linker_private_weak: 1088 Res = GlobalValue::LinkerPrivateWeakLinkage; 1089 break; 1090 case lltok::kw_internal: Res = GlobalValue::InternalLinkage; break; 1091 case lltok::kw_weak: Res = GlobalValue::WeakAnyLinkage; break; 1092 case lltok::kw_weak_odr: Res = GlobalValue::WeakODRLinkage; break; 1093 case lltok::kw_linkonce: Res = GlobalValue::LinkOnceAnyLinkage; break; 1094 case lltok::kw_linkonce_odr: Res = GlobalValue::LinkOnceODRLinkage; break; 1095 case lltok::kw_linkonce_odr_auto_hide: 1096 case lltok::kw_linker_private_weak_def_auto: // FIXME: For backwards compat. 1097 Res = GlobalValue::LinkOnceODRAutoHideLinkage; 1098 break; 1099 case lltok::kw_available_externally: 1100 Res = GlobalValue::AvailableExternallyLinkage; 1101 break; 1102 case lltok::kw_appending: Res = GlobalValue::AppendingLinkage; break; 1103 case lltok::kw_dllexport: Res = GlobalValue::DLLExportLinkage; break; 1104 case lltok::kw_common: Res = GlobalValue::CommonLinkage; break; 1105 case lltok::kw_dllimport: Res = GlobalValue::DLLImportLinkage; break; 1106 case lltok::kw_extern_weak: Res = GlobalValue::ExternalWeakLinkage; break; 1107 case lltok::kw_external: Res = GlobalValue::ExternalLinkage; break; 1108 } 1109 Lex.Lex(); 1110 HasLinkage = true; 1111 return false; 1112 } 1113 1114 /// ParseOptionalVisibility 1115 /// ::= /*empty*/ 1116 /// ::= 'default' 1117 /// ::= 'hidden' 1118 /// ::= 'protected' 1119 /// 1120 bool LLParser::ParseOptionalVisibility(unsigned &Res) { 1121 switch (Lex.getKind()) { 1122 default: Res = GlobalValue::DefaultVisibility; return false; 1123 case lltok::kw_default: Res = GlobalValue::DefaultVisibility; break; 1124 case lltok::kw_hidden: Res = GlobalValue::HiddenVisibility; break; 1125 case lltok::kw_protected: Res = GlobalValue::ProtectedVisibility; break; 1126 } 1127 Lex.Lex(); 1128 return false; 1129 } 1130 1131 /// ParseOptionalCallingConv 1132 /// ::= /*empty*/ 1133 /// ::= 'ccc' 1134 /// ::= 'fastcc' 1135 /// ::= 'kw_intel_ocl_bicc' 1136 /// ::= 'coldcc' 1137 /// ::= 'x86_stdcallcc' 1138 /// ::= 'x86_fastcallcc' 1139 /// ::= 'x86_thiscallcc' 1140 /// ::= 'arm_apcscc' 1141 /// ::= 'arm_aapcscc' 1142 /// ::= 'arm_aapcs_vfpcc' 1143 /// ::= 'msp430_intrcc' 1144 /// ::= 'ptx_kernel' 1145 /// ::= 'ptx_device' 1146 /// ::= 'spir_func' 1147 /// ::= 'spir_kernel' 1148 /// ::= 'cc' UINT 1149 /// 1150 bool LLParser::ParseOptionalCallingConv(CallingConv::ID &CC) { 1151 switch (Lex.getKind()) { 1152 default: CC = CallingConv::C; return false; 1153 case lltok::kw_ccc: CC = CallingConv::C; break; 1154 case lltok::kw_fastcc: CC = CallingConv::Fast; break; 1155 case lltok::kw_coldcc: CC = CallingConv::Cold; break; 1156 case lltok::kw_x86_stdcallcc: CC = CallingConv::X86_StdCall; break; 1157 case lltok::kw_x86_fastcallcc: CC = CallingConv::X86_FastCall; break; 1158 case lltok::kw_x86_thiscallcc: CC = CallingConv::X86_ThisCall; break; 1159 case lltok::kw_arm_apcscc: CC = CallingConv::ARM_APCS; break; 1160 case lltok::kw_arm_aapcscc: CC = CallingConv::ARM_AAPCS; break; 1161 case lltok::kw_arm_aapcs_vfpcc:CC = CallingConv::ARM_AAPCS_VFP; break; 1162 case lltok::kw_msp430_intrcc: CC = CallingConv::MSP430_INTR; break; 1163 case lltok::kw_ptx_kernel: CC = CallingConv::PTX_Kernel; break; 1164 case lltok::kw_ptx_device: CC = CallingConv::PTX_Device; break; 1165 case lltok::kw_spir_kernel: CC = CallingConv::SPIR_KERNEL; break; 1166 case lltok::kw_spir_func: CC = CallingConv::SPIR_FUNC; break; 1167 case lltok::kw_intel_ocl_bicc: CC = CallingConv::Intel_OCL_BI; break; 1168 case lltok::kw_cc: { 1169 unsigned ArbitraryCC; 1170 Lex.Lex(); 1171 if (ParseUInt32(ArbitraryCC)) 1172 return true; 1173 CC = static_cast<CallingConv::ID>(ArbitraryCC); 1174 return false; 1175 } 1176 } 1177 1178 Lex.Lex(); 1179 return false; 1180 } 1181 1182 /// ParseInstructionMetadata 1183 /// ::= !dbg !42 (',' !dbg !57)* 1184 bool LLParser::ParseInstructionMetadata(Instruction *Inst, 1185 PerFunctionState *PFS) { 1186 do { 1187 if (Lex.getKind() != lltok::MetadataVar) 1188 return TokError("expected metadata after comma"); 1189 1190 std::string Name = Lex.getStrVal(); 1191 unsigned MDK = M->getMDKindID(Name); 1192 Lex.Lex(); 1193 1194 MDNode *Node; 1195 SMLoc Loc = Lex.getLoc(); 1196 1197 if (ParseToken(lltok::exclaim, "expected '!' here")) 1198 return true; 1199 1200 // This code is similar to that of ParseMetadataValue, however it needs to 1201 // have special-case code for a forward reference; see the comments on 1202 // ForwardRefInstMetadata for details. Also, MDStrings are not supported 1203 // at the top level here. 1204 if (Lex.getKind() == lltok::lbrace) { 1205 ValID ID; 1206 if (ParseMetadataListValue(ID, PFS)) 1207 return true; 1208 assert(ID.Kind == ValID::t_MDNode); 1209 Inst->setMetadata(MDK, ID.MDNodeVal); 1210 } else { 1211 unsigned NodeID = 0; 1212 if (ParseMDNodeID(Node, NodeID)) 1213 return true; 1214 if (Node) { 1215 // If we got the node, add it to the instruction. 1216 Inst->setMetadata(MDK, Node); 1217 } else { 1218 MDRef R = { Loc, MDK, NodeID }; 1219 // Otherwise, remember that this should be resolved later. 1220 ForwardRefInstMetadata[Inst].push_back(R); 1221 } 1222 } 1223 1224 // If this is the end of the list, we're done. 1225 } while (EatIfPresent(lltok::comma)); 1226 return false; 1227 } 1228 1229 /// ParseOptionalAlignment 1230 /// ::= /* empty */ 1231 /// ::= 'align' 4 1232 bool LLParser::ParseOptionalAlignment(unsigned &Alignment) { 1233 Alignment = 0; 1234 if (!EatIfPresent(lltok::kw_align)) 1235 return false; 1236 LocTy AlignLoc = Lex.getLoc(); 1237 if (ParseUInt32(Alignment)) return true; 1238 if (!isPowerOf2_32(Alignment)) 1239 return Error(AlignLoc, "alignment is not a power of two"); 1240 if (Alignment > Value::MaximumAlignment) 1241 return Error(AlignLoc, "huge alignments are not supported yet"); 1242 return false; 1243 } 1244 1245 /// ParseOptionalCommaAlign 1246 /// ::= 1247 /// ::= ',' align 4 1248 /// 1249 /// This returns with AteExtraComma set to true if it ate an excess comma at the 1250 /// end. 1251 bool LLParser::ParseOptionalCommaAlign(unsigned &Alignment, 1252 bool &AteExtraComma) { 1253 AteExtraComma = false; 1254 while (EatIfPresent(lltok::comma)) { 1255 // Metadata at the end is an early exit. 1256 if (Lex.getKind() == lltok::MetadataVar) { 1257 AteExtraComma = true; 1258 return false; 1259 } 1260 1261 if (Lex.getKind() != lltok::kw_align) 1262 return Error(Lex.getLoc(), "expected metadata or 'align'"); 1263 1264 if (ParseOptionalAlignment(Alignment)) return true; 1265 } 1266 1267 return false; 1268 } 1269 1270 /// ParseScopeAndOrdering 1271 /// if isAtomic: ::= 'singlethread'? AtomicOrdering 1272 /// else: ::= 1273 /// 1274 /// This sets Scope and Ordering to the parsed values. 1275 bool LLParser::ParseScopeAndOrdering(bool isAtomic, SynchronizationScope &Scope, 1276 AtomicOrdering &Ordering) { 1277 if (!isAtomic) 1278 return false; 1279 1280 Scope = CrossThread; 1281 if (EatIfPresent(lltok::kw_singlethread)) 1282 Scope = SingleThread; 1283 switch (Lex.getKind()) { 1284 default: return TokError("Expected ordering on atomic instruction"); 1285 case lltok::kw_unordered: Ordering = Unordered; break; 1286 case lltok::kw_monotonic: Ordering = Monotonic; break; 1287 case lltok::kw_acquire: Ordering = Acquire; break; 1288 case lltok::kw_release: Ordering = Release; break; 1289 case lltok::kw_acq_rel: Ordering = AcquireRelease; break; 1290 case lltok::kw_seq_cst: Ordering = SequentiallyConsistent; break; 1291 } 1292 Lex.Lex(); 1293 return false; 1294 } 1295 1296 /// ParseOptionalStackAlignment 1297 /// ::= /* empty */ 1298 /// ::= 'alignstack' '(' 4 ')' 1299 bool LLParser::ParseOptionalStackAlignment(unsigned &Alignment) { 1300 Alignment = 0; 1301 if (!EatIfPresent(lltok::kw_alignstack)) 1302 return false; 1303 LocTy ParenLoc = Lex.getLoc(); 1304 if (!EatIfPresent(lltok::lparen)) 1305 return Error(ParenLoc, "expected '('"); 1306 LocTy AlignLoc = Lex.getLoc(); 1307 if (ParseUInt32(Alignment)) return true; 1308 ParenLoc = Lex.getLoc(); 1309 if (!EatIfPresent(lltok::rparen)) 1310 return Error(ParenLoc, "expected ')'"); 1311 if (!isPowerOf2_32(Alignment)) 1312 return Error(AlignLoc, "stack alignment is not a power of two"); 1313 return false; 1314 } 1315 1316 /// ParseIndexList - This parses the index list for an insert/extractvalue 1317 /// instruction. This sets AteExtraComma in the case where we eat an extra 1318 /// comma at the end of the line and find that it is followed by metadata. 1319 /// Clients that don't allow metadata can call the version of this function that 1320 /// only takes one argument. 1321 /// 1322 /// ParseIndexList 1323 /// ::= (',' uint32)+ 1324 /// 1325 bool LLParser::ParseIndexList(SmallVectorImpl<unsigned> &Indices, 1326 bool &AteExtraComma) { 1327 AteExtraComma = false; 1328 1329 if (Lex.getKind() != lltok::comma) 1330 return TokError("expected ',' as start of index list"); 1331 1332 while (EatIfPresent(lltok::comma)) { 1333 if (Lex.getKind() == lltok::MetadataVar) { 1334 AteExtraComma = true; 1335 return false; 1336 } 1337 unsigned Idx = 0; 1338 if (ParseUInt32(Idx)) return true; 1339 Indices.push_back(Idx); 1340 } 1341 1342 return false; 1343 } 1344 1345 //===----------------------------------------------------------------------===// 1346 // Type Parsing. 1347 //===----------------------------------------------------------------------===// 1348 1349 /// ParseType - Parse a type. 1350 bool LLParser::ParseType(Type *&Result, bool AllowVoid) { 1351 SMLoc TypeLoc = Lex.getLoc(); 1352 switch (Lex.getKind()) { 1353 default: 1354 return TokError("expected type"); 1355 case lltok::Type: 1356 // Type ::= 'float' | 'void' (etc) 1357 Result = Lex.getTyVal(); 1358 Lex.Lex(); 1359 break; 1360 case lltok::lbrace: 1361 // Type ::= StructType 1362 if (ParseAnonStructType(Result, false)) 1363 return true; 1364 break; 1365 case lltok::lsquare: 1366 // Type ::= '[' ... ']' 1367 Lex.Lex(); // eat the lsquare. 1368 if (ParseArrayVectorType(Result, false)) 1369 return true; 1370 break; 1371 case lltok::less: // Either vector or packed struct. 1372 // Type ::= '<' ... '>' 1373 Lex.Lex(); 1374 if (Lex.getKind() == lltok::lbrace) { 1375 if (ParseAnonStructType(Result, true) || 1376 ParseToken(lltok::greater, "expected '>' at end of packed struct")) 1377 return true; 1378 } else if (ParseArrayVectorType(Result, true)) 1379 return true; 1380 break; 1381 case lltok::LocalVar: { 1382 // Type ::= %foo 1383 std::pair<Type*, LocTy> &Entry = NamedTypes[Lex.getStrVal()]; 1384 1385 // If the type hasn't been defined yet, create a forward definition and 1386 // remember where that forward def'n was seen (in case it never is defined). 1387 if (Entry.first == 0) { 1388 Entry.first = StructType::create(Context, Lex.getStrVal()); 1389 Entry.second = Lex.getLoc(); 1390 } 1391 Result = Entry.first; 1392 Lex.Lex(); 1393 break; 1394 } 1395 1396 case lltok::LocalVarID: { 1397 // Type ::= %4 1398 if (Lex.getUIntVal() >= NumberedTypes.size()) 1399 NumberedTypes.resize(Lex.getUIntVal()+1); 1400 std::pair<Type*, LocTy> &Entry = NumberedTypes[Lex.getUIntVal()]; 1401 1402 // If the type hasn't been defined yet, create a forward definition and 1403 // remember where that forward def'n was seen (in case it never is defined). 1404 if (Entry.first == 0) { 1405 Entry.first = StructType::create(Context); 1406 Entry.second = Lex.getLoc(); 1407 } 1408 Result = Entry.first; 1409 Lex.Lex(); 1410 break; 1411 } 1412 } 1413 1414 // Parse the type suffixes. 1415 while (1) { 1416 switch (Lex.getKind()) { 1417 // End of type. 1418 default: 1419 if (!AllowVoid && Result->isVoidTy()) 1420 return Error(TypeLoc, "void type only allowed for function results"); 1421 return false; 1422 1423 // Type ::= Type '*' 1424 case lltok::star: 1425 if (Result->isLabelTy()) 1426 return TokError("basic block pointers are invalid"); 1427 if (Result->isVoidTy()) 1428 return TokError("pointers to void are invalid - use i8* instead"); 1429 if (!PointerType::isValidElementType(Result)) 1430 return TokError("pointer to this type is invalid"); 1431 Result = PointerType::getUnqual(Result); 1432 Lex.Lex(); 1433 break; 1434 1435 // Type ::= Type 'addrspace' '(' uint32 ')' '*' 1436 case lltok::kw_addrspace: { 1437 if (Result->isLabelTy()) 1438 return TokError("basic block pointers are invalid"); 1439 if (Result->isVoidTy()) 1440 return TokError("pointers to void are invalid; use i8* instead"); 1441 if (!PointerType::isValidElementType(Result)) 1442 return TokError("pointer to this type is invalid"); 1443 unsigned AddrSpace; 1444 if (ParseOptionalAddrSpace(AddrSpace) || 1445 ParseToken(lltok::star, "expected '*' in address space")) 1446 return true; 1447 1448 Result = PointerType::get(Result, AddrSpace); 1449 break; 1450 } 1451 1452 /// Types '(' ArgTypeListI ')' OptFuncAttrs 1453 case lltok::lparen: 1454 if (ParseFunctionType(Result)) 1455 return true; 1456 break; 1457 } 1458 } 1459 } 1460 1461 /// ParseParameterList 1462 /// ::= '(' ')' 1463 /// ::= '(' Arg (',' Arg)* ')' 1464 /// Arg 1465 /// ::= Type OptionalAttributes Value OptionalAttributes 1466 bool LLParser::ParseParameterList(SmallVectorImpl<ParamInfo> &ArgList, 1467 PerFunctionState &PFS) { 1468 if (ParseToken(lltok::lparen, "expected '(' in call")) 1469 return true; 1470 1471 while (Lex.getKind() != lltok::rparen) { 1472 // If this isn't the first argument, we need a comma. 1473 if (!ArgList.empty() && 1474 ParseToken(lltok::comma, "expected ',' in argument list")) 1475 return true; 1476 1477 // Parse the argument. 1478 LocTy ArgLoc; 1479 Type *ArgTy = 0; 1480 AttrBuilder ArgAttrs; 1481 Value *V; 1482 if (ParseType(ArgTy, ArgLoc)) 1483 return true; 1484 1485 // Otherwise, handle normal operands. 1486 if (ParseOptionalParamAttrs(ArgAttrs) || ParseValue(ArgTy, V, PFS)) 1487 return true; 1488 ArgList.push_back(ParamInfo(ArgLoc, V, Attributes::get(V->getContext(), 1489 ArgAttrs))); 1490 } 1491 1492 Lex.Lex(); // Lex the ')'. 1493 return false; 1494 } 1495 1496 1497 1498 /// ParseArgumentList - Parse the argument list for a function type or function 1499 /// prototype. 1500 /// ::= '(' ArgTypeListI ')' 1501 /// ArgTypeListI 1502 /// ::= /*empty*/ 1503 /// ::= '...' 1504 /// ::= ArgTypeList ',' '...' 1505 /// ::= ArgType (',' ArgType)* 1506 /// 1507 bool LLParser::ParseArgumentList(SmallVectorImpl<ArgInfo> &ArgList, 1508 bool &isVarArg){ 1509 isVarArg = false; 1510 assert(Lex.getKind() == lltok::lparen); 1511 Lex.Lex(); // eat the (. 1512 1513 if (Lex.getKind() == lltok::rparen) { 1514 // empty 1515 } else if (Lex.getKind() == lltok::dotdotdot) { 1516 isVarArg = true; 1517 Lex.Lex(); 1518 } else { 1519 LocTy TypeLoc = Lex.getLoc(); 1520 Type *ArgTy = 0; 1521 AttrBuilder Attrs; 1522 std::string Name; 1523 1524 if (ParseType(ArgTy) || 1525 ParseOptionalParamAttrs(Attrs)) return true; 1526 1527 if (ArgTy->isVoidTy()) 1528 return Error(TypeLoc, "argument can not have void type"); 1529 1530 if (Lex.getKind() == lltok::LocalVar) { 1531 Name = Lex.getStrVal(); 1532 Lex.Lex(); 1533 } 1534 1535 if (!FunctionType::isValidArgumentType(ArgTy)) 1536 return Error(TypeLoc, "invalid type for function argument"); 1537 1538 ArgList.push_back(ArgInfo(TypeLoc, ArgTy, 1539 Attributes::get(ArgTy->getContext(), 1540 Attrs), Name)); 1541 1542 while (EatIfPresent(lltok::comma)) { 1543 // Handle ... at end of arg list. 1544 if (EatIfPresent(lltok::dotdotdot)) { 1545 isVarArg = true; 1546 break; 1547 } 1548 1549 // Otherwise must be an argument type. 1550 TypeLoc = Lex.getLoc(); 1551 if (ParseType(ArgTy) || ParseOptionalParamAttrs(Attrs)) return true; 1552 1553 if (ArgTy->isVoidTy()) 1554 return Error(TypeLoc, "argument can not have void type"); 1555 1556 if (Lex.getKind() == lltok::LocalVar) { 1557 Name = Lex.getStrVal(); 1558 Lex.Lex(); 1559 } else { 1560 Name = ""; 1561 } 1562 1563 if (!ArgTy->isFirstClassType()) 1564 return Error(TypeLoc, "invalid type for function argument"); 1565 1566 ArgList.push_back(ArgInfo(TypeLoc, ArgTy, 1567 Attributes::get(ArgTy->getContext(), Attrs), 1568 Name)); 1569 } 1570 } 1571 1572 return ParseToken(lltok::rparen, "expected ')' at end of argument list"); 1573 } 1574 1575 /// ParseFunctionType 1576 /// ::= Type ArgumentList OptionalAttrs 1577 bool LLParser::ParseFunctionType(Type *&Result) { 1578 assert(Lex.getKind() == lltok::lparen); 1579 1580 if (!FunctionType::isValidReturnType(Result)) 1581 return TokError("invalid function return type"); 1582 1583 SmallVector<ArgInfo, 8> ArgList; 1584 bool isVarArg; 1585 if (ParseArgumentList(ArgList, isVarArg)) 1586 return true; 1587 1588 // Reject names on the arguments lists. 1589 for (unsigned i = 0, e = ArgList.size(); i != e; ++i) { 1590 if (!ArgList[i].Name.empty()) 1591 return Error(ArgList[i].Loc, "argument name invalid in function type"); 1592 if (ArgList[i].Attrs.hasAttributes()) 1593 return Error(ArgList[i].Loc, 1594 "argument attributes invalid in function type"); 1595 } 1596 1597 SmallVector<Type*, 16> ArgListTy; 1598 for (unsigned i = 0, e = ArgList.size(); i != e; ++i) 1599 ArgListTy.push_back(ArgList[i].Ty); 1600 1601 Result = FunctionType::get(Result, ArgListTy, isVarArg); 1602 return false; 1603 } 1604 1605 /// ParseAnonStructType - Parse an anonymous struct type, which is inlined into 1606 /// other structs. 1607 bool LLParser::ParseAnonStructType(Type *&Result, bool Packed) { 1608 SmallVector<Type*, 8> Elts; 1609 if (ParseStructBody(Elts)) return true; 1610 1611 Result = StructType::get(Context, Elts, Packed); 1612 return false; 1613 } 1614 1615 /// ParseStructDefinition - Parse a struct in a 'type' definition. 1616 bool LLParser::ParseStructDefinition(SMLoc TypeLoc, StringRef Name, 1617 std::pair<Type*, LocTy> &Entry, 1618 Type *&ResultTy) { 1619 // If the type was already defined, diagnose the redefinition. 1620 if (Entry.first && !Entry.second.isValid()) 1621 return Error(TypeLoc, "redefinition of type"); 1622 1623 // If we have opaque, just return without filling in the definition for the 1624 // struct. This counts as a definition as far as the .ll file goes. 1625 if (EatIfPresent(lltok::kw_opaque)) { 1626 // This type is being defined, so clear the location to indicate this. 1627 Entry.second = SMLoc(); 1628 1629 // If this type number has never been uttered, create it. 1630 if (Entry.first == 0) 1631 Entry.first = StructType::create(Context, Name); 1632 ResultTy = Entry.first; 1633 return false; 1634 } 1635 1636 // If the type starts with '<', then it is either a packed struct or a vector. 1637 bool isPacked = EatIfPresent(lltok::less); 1638 1639 // If we don't have a struct, then we have a random type alias, which we 1640 // accept for compatibility with old files. These types are not allowed to be 1641 // forward referenced and not allowed to be recursive. 1642 if (Lex.getKind() != lltok::lbrace) { 1643 if (Entry.first) 1644 return Error(TypeLoc, "forward references to non-struct type"); 1645 1646 ResultTy = 0; 1647 if (isPacked) 1648 return ParseArrayVectorType(ResultTy, true); 1649 return ParseType(ResultTy); 1650 } 1651 1652 // This type is being defined, so clear the location to indicate this. 1653 Entry.second = SMLoc(); 1654 1655 // If this type number has never been uttered, create it. 1656 if (Entry.first == 0) 1657 Entry.first = StructType::create(Context, Name); 1658 1659 StructType *STy = cast<StructType>(Entry.first); 1660 1661 SmallVector<Type*, 8> Body; 1662 if (ParseStructBody(Body) || 1663 (isPacked && ParseToken(lltok::greater, "expected '>' in packed struct"))) 1664 return true; 1665 1666 STy->setBody(Body, isPacked); 1667 ResultTy = STy; 1668 return false; 1669 } 1670 1671 1672 /// ParseStructType: Handles packed and unpacked types. </> parsed elsewhere. 1673 /// StructType 1674 /// ::= '{' '}' 1675 /// ::= '{' Type (',' Type)* '}' 1676 /// ::= '<' '{' '}' '>' 1677 /// ::= '<' '{' Type (',' Type)* '}' '>' 1678 bool LLParser::ParseStructBody(SmallVectorImpl<Type*> &Body) { 1679 assert(Lex.getKind() == lltok::lbrace); 1680 Lex.Lex(); // Consume the '{' 1681 1682 // Handle the empty struct. 1683 if (EatIfPresent(lltok::rbrace)) 1684 return false; 1685 1686 LocTy EltTyLoc = Lex.getLoc(); 1687 Type *Ty = 0; 1688 if (ParseType(Ty)) return true; 1689 Body.push_back(Ty); 1690 1691 if (!StructType::isValidElementType(Ty)) 1692 return Error(EltTyLoc, "invalid element type for struct"); 1693 1694 while (EatIfPresent(lltok::comma)) { 1695 EltTyLoc = Lex.getLoc(); 1696 if (ParseType(Ty)) return true; 1697 1698 if (!StructType::isValidElementType(Ty)) 1699 return Error(EltTyLoc, "invalid element type for struct"); 1700 1701 Body.push_back(Ty); 1702 } 1703 1704 return ParseToken(lltok::rbrace, "expected '}' at end of struct"); 1705 } 1706 1707 /// ParseArrayVectorType - Parse an array or vector type, assuming the first 1708 /// token has already been consumed. 1709 /// Type 1710 /// ::= '[' APSINTVAL 'x' Types ']' 1711 /// ::= '<' APSINTVAL 'x' Types '>' 1712 bool LLParser::ParseArrayVectorType(Type *&Result, bool isVector) { 1713 if (Lex.getKind() != lltok::APSInt || Lex.getAPSIntVal().isSigned() || 1714 Lex.getAPSIntVal().getBitWidth() > 64) 1715 return TokError("expected number in address space"); 1716 1717 LocTy SizeLoc = Lex.getLoc(); 1718 uint64_t Size = Lex.getAPSIntVal().getZExtValue(); 1719 Lex.Lex(); 1720 1721 if (ParseToken(lltok::kw_x, "expected 'x' after element count")) 1722 return true; 1723 1724 LocTy TypeLoc = Lex.getLoc(); 1725 Type *EltTy = 0; 1726 if (ParseType(EltTy)) return true; 1727 1728 if (ParseToken(isVector ? lltok::greater : lltok::rsquare, 1729 "expected end of sequential type")) 1730 return true; 1731 1732 if (isVector) { 1733 if (Size == 0) 1734 return Error(SizeLoc, "zero element vector is illegal"); 1735 if ((unsigned)Size != Size) 1736 return Error(SizeLoc, "size too large for vector"); 1737 if (!VectorType::isValidElementType(EltTy)) 1738 return Error(TypeLoc, "invalid vector element type"); 1739 Result = VectorType::get(EltTy, unsigned(Size)); 1740 } else { 1741 if (!ArrayType::isValidElementType(EltTy)) 1742 return Error(TypeLoc, "invalid array element type"); 1743 Result = ArrayType::get(EltTy, Size); 1744 } 1745 return false; 1746 } 1747 1748 //===----------------------------------------------------------------------===// 1749 // Function Semantic Analysis. 1750 //===----------------------------------------------------------------------===// 1751 1752 LLParser::PerFunctionState::PerFunctionState(LLParser &p, Function &f, 1753 int functionNumber) 1754 : P(p), F(f), FunctionNumber(functionNumber) { 1755 1756 // Insert unnamed arguments into the NumberedVals list. 1757 for (Function::arg_iterator AI = F.arg_begin(), E = F.arg_end(); 1758 AI != E; ++AI) 1759 if (!AI->hasName()) 1760 NumberedVals.push_back(AI); 1761 } 1762 1763 LLParser::PerFunctionState::~PerFunctionState() { 1764 // If there were any forward referenced non-basicblock values, delete them. 1765 for (std::map<std::string, std::pair<Value*, LocTy> >::iterator 1766 I = ForwardRefVals.begin(), E = ForwardRefVals.end(); I != E; ++I) 1767 if (!isa<BasicBlock>(I->second.first)) { 1768 I->second.first->replaceAllUsesWith( 1769 UndefValue::get(I->second.first->getType())); 1770 delete I->second.first; 1771 I->second.first = 0; 1772 } 1773 1774 for (std::map<unsigned, std::pair<Value*, LocTy> >::iterator 1775 I = ForwardRefValIDs.begin(), E = ForwardRefValIDs.end(); I != E; ++I) 1776 if (!isa<BasicBlock>(I->second.first)) { 1777 I->second.first->replaceAllUsesWith( 1778 UndefValue::get(I->second.first->getType())); 1779 delete I->second.first; 1780 I->second.first = 0; 1781 } 1782 } 1783 1784 bool LLParser::PerFunctionState::FinishFunction() { 1785 // Check to see if someone took the address of labels in this block. 1786 if (!P.ForwardRefBlockAddresses.empty()) { 1787 ValID FunctionID; 1788 if (!F.getName().empty()) { 1789 FunctionID.Kind = ValID::t_GlobalName; 1790 FunctionID.StrVal = F.getName(); 1791 } else { 1792 FunctionID.Kind = ValID::t_GlobalID; 1793 FunctionID.UIntVal = FunctionNumber; 1794 } 1795 1796 std::map<ValID, std::vector<std::pair<ValID, GlobalValue*> > >::iterator 1797 FRBAI = P.ForwardRefBlockAddresses.find(FunctionID); 1798 if (FRBAI != P.ForwardRefBlockAddresses.end()) { 1799 // Resolve all these references. 1800 if (P.ResolveForwardRefBlockAddresses(&F, FRBAI->second, this)) 1801 return true; 1802 1803 P.ForwardRefBlockAddresses.erase(FRBAI); 1804 } 1805 } 1806 1807 if (!ForwardRefVals.empty()) 1808 return P.Error(ForwardRefVals.begin()->second.second, 1809 "use of undefined value '%" + ForwardRefVals.begin()->first + 1810 "'"); 1811 if (!ForwardRefValIDs.empty()) 1812 return P.Error(ForwardRefValIDs.begin()->second.second, 1813 "use of undefined value '%" + 1814 Twine(ForwardRefValIDs.begin()->first) + "'"); 1815 return false; 1816 } 1817 1818 1819 /// GetVal - Get a value with the specified name or ID, creating a 1820 /// forward reference record if needed. This can return null if the value 1821 /// exists but does not have the right type. 1822 Value *LLParser::PerFunctionState::GetVal(const std::string &Name, 1823 Type *Ty, LocTy Loc) { 1824 // Look this name up in the normal function symbol table. 1825 Value *Val = F.getValueSymbolTable().lookup(Name); 1826 1827 // If this is a forward reference for the value, see if we already created a 1828 // forward ref record. 1829 if (Val == 0) { 1830 std::map<std::string, std::pair<Value*, LocTy> >::iterator 1831 I = ForwardRefVals.find(Name); 1832 if (I != ForwardRefVals.end()) 1833 Val = I->second.first; 1834 } 1835 1836 // If we have the value in the symbol table or fwd-ref table, return it. 1837 if (Val) { 1838 if (Val->getType() == Ty) return Val; 1839 if (Ty->isLabelTy()) 1840 P.Error(Loc, "'%" + Name + "' is not a basic block"); 1841 else 1842 P.Error(Loc, "'%" + Name + "' defined with type '" + 1843 getTypeString(Val->getType()) + "'"); 1844 return 0; 1845 } 1846 1847 // Don't make placeholders with invalid type. 1848 if (!Ty->isFirstClassType() && !Ty->isLabelTy()) { 1849 P.Error(Loc, "invalid use of a non-first-class type"); 1850 return 0; 1851 } 1852 1853 // Otherwise, create a new forward reference for this value and remember it. 1854 Value *FwdVal; 1855 if (Ty->isLabelTy()) 1856 FwdVal = BasicBlock::Create(F.getContext(), Name, &F); 1857 else 1858 FwdVal = new Argument(Ty, Name); 1859 1860 ForwardRefVals[Name] = std::make_pair(FwdVal, Loc); 1861 return FwdVal; 1862 } 1863 1864 Value *LLParser::PerFunctionState::GetVal(unsigned ID, Type *Ty, 1865 LocTy Loc) { 1866 // Look this name up in the normal function symbol table. 1867 Value *Val = ID < NumberedVals.size() ? NumberedVals[ID] : 0; 1868 1869 // If this is a forward reference for the value, see if we already created a 1870 // forward ref record. 1871 if (Val == 0) { 1872 std::map<unsigned, std::pair<Value*, LocTy> >::iterator 1873 I = ForwardRefValIDs.find(ID); 1874 if (I != ForwardRefValIDs.end()) 1875 Val = I->second.first; 1876 } 1877 1878 // If we have the value in the symbol table or fwd-ref table, return it. 1879 if (Val) { 1880 if (Val->getType() == Ty) return Val; 1881 if (Ty->isLabelTy()) 1882 P.Error(Loc, "'%" + Twine(ID) + "' is not a basic block"); 1883 else 1884 P.Error(Loc, "'%" + Twine(ID) + "' defined with type '" + 1885 getTypeString(Val->getType()) + "'"); 1886 return 0; 1887 } 1888 1889 if (!Ty->isFirstClassType() && !Ty->isLabelTy()) { 1890 P.Error(Loc, "invalid use of a non-first-class type"); 1891 return 0; 1892 } 1893 1894 // Otherwise, create a new forward reference for this value and remember it. 1895 Value *FwdVal; 1896 if (Ty->isLabelTy()) 1897 FwdVal = BasicBlock::Create(F.getContext(), "", &F); 1898 else 1899 FwdVal = new Argument(Ty); 1900 1901 ForwardRefValIDs[ID] = std::make_pair(FwdVal, Loc); 1902 return FwdVal; 1903 } 1904 1905 /// SetInstName - After an instruction is parsed and inserted into its 1906 /// basic block, this installs its name. 1907 bool LLParser::PerFunctionState::SetInstName(int NameID, 1908 const std::string &NameStr, 1909 LocTy NameLoc, Instruction *Inst) { 1910 // If this instruction has void type, it cannot have a name or ID specified. 1911 if (Inst->getType()->isVoidTy()) { 1912 if (NameID != -1 || !NameStr.empty()) 1913 return P.Error(NameLoc, "instructions returning void cannot have a name"); 1914 return false; 1915 } 1916 1917 // If this was a numbered instruction, verify that the instruction is the 1918 // expected value and resolve any forward references. 1919 if (NameStr.empty()) { 1920 // If neither a name nor an ID was specified, just use the next ID. 1921 if (NameID == -1) 1922 NameID = NumberedVals.size(); 1923 1924 if (unsigned(NameID) != NumberedVals.size()) 1925 return P.Error(NameLoc, "instruction expected to be numbered '%" + 1926 Twine(NumberedVals.size()) + "'"); 1927 1928 std::map<unsigned, std::pair<Value*, LocTy> >::iterator FI = 1929 ForwardRefValIDs.find(NameID); 1930 if (FI != ForwardRefValIDs.end()) { 1931 if (FI->second.first->getType() != Inst->getType()) 1932 return P.Error(NameLoc, "instruction forward referenced with type '" + 1933 getTypeString(FI->second.first->getType()) + "'"); 1934 FI->second.first->replaceAllUsesWith(Inst); 1935 delete FI->second.first; 1936 ForwardRefValIDs.erase(FI); 1937 } 1938 1939 NumberedVals.push_back(Inst); 1940 return false; 1941 } 1942 1943 // Otherwise, the instruction had a name. Resolve forward refs and set it. 1944 std::map<std::string, std::pair<Value*, LocTy> >::iterator 1945 FI = ForwardRefVals.find(NameStr); 1946 if (FI != ForwardRefVals.end()) { 1947 if (FI->second.first->getType() != Inst->getType()) 1948 return P.Error(NameLoc, "instruction forward referenced with type '" + 1949 getTypeString(FI->second.first->getType()) + "'"); 1950 FI->second.first->replaceAllUsesWith(Inst); 1951 delete FI->second.first; 1952 ForwardRefVals.erase(FI); 1953 } 1954 1955 // Set the name on the instruction. 1956 Inst->setName(NameStr); 1957 1958 if (Inst->getName() != NameStr) 1959 return P.Error(NameLoc, "multiple definition of local value named '" + 1960 NameStr + "'"); 1961 return false; 1962 } 1963 1964 /// GetBB - Get a basic block with the specified name or ID, creating a 1965 /// forward reference record if needed. 1966 BasicBlock *LLParser::PerFunctionState::GetBB(const std::string &Name, 1967 LocTy Loc) { 1968 return cast_or_null<BasicBlock>(GetVal(Name, 1969 Type::getLabelTy(F.getContext()), Loc)); 1970 } 1971 1972 BasicBlock *LLParser::PerFunctionState::GetBB(unsigned ID, LocTy Loc) { 1973 return cast_or_null<BasicBlock>(GetVal(ID, 1974 Type::getLabelTy(F.getContext()), Loc)); 1975 } 1976 1977 /// DefineBB - Define the specified basic block, which is either named or 1978 /// unnamed. If there is an error, this returns null otherwise it returns 1979 /// the block being defined. 1980 BasicBlock *LLParser::PerFunctionState::DefineBB(const std::string &Name, 1981 LocTy Loc) { 1982 BasicBlock *BB; 1983 if (Name.empty()) 1984 BB = GetBB(NumberedVals.size(), Loc); 1985 else 1986 BB = GetBB(Name, Loc); 1987 if (BB == 0) return 0; // Already diagnosed error. 1988 1989 // Move the block to the end of the function. Forward ref'd blocks are 1990 // inserted wherever they happen to be referenced. 1991 F.getBasicBlockList().splice(F.end(), F.getBasicBlockList(), BB); 1992 1993 // Remove the block from forward ref sets. 1994 if (Name.empty()) { 1995 ForwardRefValIDs.erase(NumberedVals.size()); 1996 NumberedVals.push_back(BB); 1997 } else { 1998 // BB forward references are already in the function symbol table. 1999 ForwardRefVals.erase(Name); 2000 } 2001 2002 return BB; 2003 } 2004 2005 //===----------------------------------------------------------------------===// 2006 // Constants. 2007 //===----------------------------------------------------------------------===// 2008 2009 /// ParseValID - Parse an abstract value that doesn't necessarily have a 2010 /// type implied. For example, if we parse "4" we don't know what integer type 2011 /// it has. The value will later be combined with its type and checked for 2012 /// sanity. PFS is used to convert function-local operands of metadata (since 2013 /// metadata operands are not just parsed here but also converted to values). 2014 /// PFS can be null when we are not parsing metadata values inside a function. 2015 bool LLParser::ParseValID(ValID &ID, PerFunctionState *PFS) { 2016 ID.Loc = Lex.getLoc(); 2017 switch (Lex.getKind()) { 2018 default: return TokError("expected value token"); 2019 case lltok::GlobalID: // @42 2020 ID.UIntVal = Lex.getUIntVal(); 2021 ID.Kind = ValID::t_GlobalID; 2022 break; 2023 case lltok::GlobalVar: // @foo 2024 ID.StrVal = Lex.getStrVal(); 2025 ID.Kind = ValID::t_GlobalName; 2026 break; 2027 case lltok::LocalVarID: // %42 2028 ID.UIntVal = Lex.getUIntVal(); 2029 ID.Kind = ValID::t_LocalID; 2030 break; 2031 case lltok::LocalVar: // %foo 2032 ID.StrVal = Lex.getStrVal(); 2033 ID.Kind = ValID::t_LocalName; 2034 break; 2035 case lltok::exclaim: // !42, !{...}, or !"foo" 2036 return ParseMetadataValue(ID, PFS); 2037 case lltok::APSInt: 2038 ID.APSIntVal = Lex.getAPSIntVal(); 2039 ID.Kind = ValID::t_APSInt; 2040 break; 2041 case lltok::APFloat: 2042 ID.APFloatVal = Lex.getAPFloatVal(); 2043 ID.Kind = ValID::t_APFloat; 2044 break; 2045 case lltok::kw_true: 2046 ID.ConstantVal = ConstantInt::getTrue(Context); 2047 ID.Kind = ValID::t_Constant; 2048 break; 2049 case lltok::kw_false: 2050 ID.ConstantVal = ConstantInt::getFalse(Context); 2051 ID.Kind = ValID::t_Constant; 2052 break; 2053 case lltok::kw_null: ID.Kind = ValID::t_Null; break; 2054 case lltok::kw_undef: ID.Kind = ValID::t_Undef; break; 2055 case lltok::kw_zeroinitializer: ID.Kind = ValID::t_Zero; break; 2056 2057 case lltok::lbrace: { 2058 // ValID ::= '{' ConstVector '}' 2059 Lex.Lex(); 2060 SmallVector<Constant*, 16> Elts; 2061 if (ParseGlobalValueVector(Elts) || 2062 ParseToken(lltok::rbrace, "expected end of struct constant")) 2063 return true; 2064 2065 ID.ConstantStructElts = new Constant*[Elts.size()]; 2066 ID.UIntVal = Elts.size(); 2067 memcpy(ID.ConstantStructElts, Elts.data(), Elts.size()*sizeof(Elts[0])); 2068 ID.Kind = ValID::t_ConstantStruct; 2069 return false; 2070 } 2071 case lltok::less: { 2072 // ValID ::= '<' ConstVector '>' --> Vector. 2073 // ValID ::= '<' '{' ConstVector '}' '>' --> Packed Struct. 2074 Lex.Lex(); 2075 bool isPackedStruct = EatIfPresent(lltok::lbrace); 2076 2077 SmallVector<Constant*, 16> Elts; 2078 LocTy FirstEltLoc = Lex.getLoc(); 2079 if (ParseGlobalValueVector(Elts) || 2080 (isPackedStruct && 2081 ParseToken(lltok::rbrace, "expected end of packed struct")) || 2082 ParseToken(lltok::greater, "expected end of constant")) 2083 return true; 2084 2085 if (isPackedStruct) { 2086 ID.ConstantStructElts = new Constant*[Elts.size()]; 2087 memcpy(ID.ConstantStructElts, Elts.data(), Elts.size()*sizeof(Elts[0])); 2088 ID.UIntVal = Elts.size(); 2089 ID.Kind = ValID::t_PackedConstantStruct; 2090 return false; 2091 } 2092 2093 if (Elts.empty()) 2094 return Error(ID.Loc, "constant vector must not be empty"); 2095 2096 if (!Elts[0]->getType()->isIntegerTy() && 2097 !Elts[0]->getType()->isFloatingPointTy() && 2098 !Elts[0]->getType()->isPointerTy()) 2099 return Error(FirstEltLoc, 2100 "vector elements must have integer, pointer or floating point type"); 2101 2102 // Verify that all the vector elements have the same type. 2103 for (unsigned i = 1, e = Elts.size(); i != e; ++i) 2104 if (Elts[i]->getType() != Elts[0]->getType()) 2105 return Error(FirstEltLoc, 2106 "vector element #" + Twine(i) + 2107 " is not of type '" + getTypeString(Elts[0]->getType())); 2108 2109 ID.ConstantVal = ConstantVector::get(Elts); 2110 ID.Kind = ValID::t_Constant; 2111 return false; 2112 } 2113 case lltok::lsquare: { // Array Constant 2114 Lex.Lex(); 2115 SmallVector<Constant*, 16> Elts; 2116 LocTy FirstEltLoc = Lex.getLoc(); 2117 if (ParseGlobalValueVector(Elts) || 2118 ParseToken(lltok::rsquare, "expected end of array constant")) 2119 return true; 2120 2121 // Handle empty element. 2122 if (Elts.empty()) { 2123 // Use undef instead of an array because it's inconvenient to determine 2124 // the element type at this point, there being no elements to examine. 2125 ID.Kind = ValID::t_EmptyArray; 2126 return false; 2127 } 2128 2129 if (!Elts[0]->getType()->isFirstClassType()) 2130 return Error(FirstEltLoc, "invalid array element type: " + 2131 getTypeString(Elts[0]->getType())); 2132 2133 ArrayType *ATy = ArrayType::get(Elts[0]->getType(), Elts.size()); 2134 2135 // Verify all elements are correct type! 2136 for (unsigned i = 0, e = Elts.size(); i != e; ++i) { 2137 if (Elts[i]->getType() != Elts[0]->getType()) 2138 return Error(FirstEltLoc, 2139 "array element #" + Twine(i) + 2140 " is not of type '" + getTypeString(Elts[0]->getType())); 2141 } 2142 2143 ID.ConstantVal = ConstantArray::get(ATy, Elts); 2144 ID.Kind = ValID::t_Constant; 2145 return false; 2146 } 2147 case lltok::kw_c: // c "foo" 2148 Lex.Lex(); 2149 ID.ConstantVal = ConstantDataArray::getString(Context, Lex.getStrVal(), 2150 false); 2151 if (ParseToken(lltok::StringConstant, "expected string")) return true; 2152 ID.Kind = ValID::t_Constant; 2153 return false; 2154 2155 case lltok::kw_asm: { 2156 // ValID ::= 'asm' SideEffect? AlignStack? STRINGCONSTANT ',' STRINGCONSTANT 2157 bool HasSideEffect, AlignStack, AsmDialect; 2158 Lex.Lex(); 2159 if (ParseOptionalToken(lltok::kw_sideeffect, HasSideEffect) || 2160 ParseOptionalToken(lltok::kw_alignstack, AlignStack) || 2161 ParseOptionalToken(lltok::kw_inteldialect, AsmDialect) || 2162 ParseStringConstant(ID.StrVal) || 2163 ParseToken(lltok::comma, "expected comma in inline asm expression") || 2164 ParseToken(lltok::StringConstant, "expected constraint string")) 2165 return true; 2166 ID.StrVal2 = Lex.getStrVal(); 2167 ID.UIntVal = unsigned(HasSideEffect) | (unsigned(AlignStack)<<1) | 2168 (unsigned(AsmDialect)<<2); 2169 ID.Kind = ValID::t_InlineAsm; 2170 return false; 2171 } 2172 2173 case lltok::kw_blockaddress: { 2174 // ValID ::= 'blockaddress' '(' @foo ',' %bar ')' 2175 Lex.Lex(); 2176 2177 ValID Fn, Label; 2178 LocTy FnLoc, LabelLoc; 2179 2180 if (ParseToken(lltok::lparen, "expected '(' in block address expression") || 2181 ParseValID(Fn) || 2182 ParseToken(lltok::comma, "expected comma in block address expression")|| 2183 ParseValID(Label) || 2184 ParseToken(lltok::rparen, "expected ')' in block address expression")) 2185 return true; 2186 2187 if (Fn.Kind != ValID::t_GlobalID && Fn.Kind != ValID::t_GlobalName) 2188 return Error(Fn.Loc, "expected function name in blockaddress"); 2189 if (Label.Kind != ValID::t_LocalID && Label.Kind != ValID::t_LocalName) 2190 return Error(Label.Loc, "expected basic block name in blockaddress"); 2191 2192 // Make a global variable as a placeholder for this reference. 2193 GlobalVariable *FwdRef = new GlobalVariable(*M, Type::getInt8Ty(Context), 2194 false, GlobalValue::InternalLinkage, 2195 0, ""); 2196 ForwardRefBlockAddresses[Fn].push_back(std::make_pair(Label, FwdRef)); 2197 ID.ConstantVal = FwdRef; 2198 ID.Kind = ValID::t_Constant; 2199 return false; 2200 } 2201 2202 case lltok::kw_trunc: 2203 case lltok::kw_zext: 2204 case lltok::kw_sext: 2205 case lltok::kw_fptrunc: 2206 case lltok::kw_fpext: 2207 case lltok::kw_bitcast: 2208 case lltok::kw_uitofp: 2209 case lltok::kw_sitofp: 2210 case lltok::kw_fptoui: 2211 case lltok::kw_fptosi: 2212 case lltok::kw_inttoptr: 2213 case lltok::kw_ptrtoint: { 2214 unsigned Opc = Lex.getUIntVal(); 2215 Type *DestTy = 0; 2216 Constant *SrcVal; 2217 Lex.Lex(); 2218 if (ParseToken(lltok::lparen, "expected '(' after constantexpr cast") || 2219 ParseGlobalTypeAndValue(SrcVal) || 2220 ParseToken(lltok::kw_to, "expected 'to' in constantexpr cast") || 2221 ParseType(DestTy) || 2222 ParseToken(lltok::rparen, "expected ')' at end of constantexpr cast")) 2223 return true; 2224 if (!CastInst::castIsValid((Instruction::CastOps)Opc, SrcVal, DestTy)) 2225 return Error(ID.Loc, "invalid cast opcode for cast from '" + 2226 getTypeString(SrcVal->getType()) + "' to '" + 2227 getTypeString(DestTy) + "'"); 2228 ID.ConstantVal = ConstantExpr::getCast((Instruction::CastOps)Opc, 2229 SrcVal, DestTy); 2230 ID.Kind = ValID::t_Constant; 2231 return false; 2232 } 2233 case lltok::kw_extractvalue: { 2234 Lex.Lex(); 2235 Constant *Val; 2236 SmallVector<unsigned, 4> Indices; 2237 if (ParseToken(lltok::lparen, "expected '(' in extractvalue constantexpr")|| 2238 ParseGlobalTypeAndValue(Val) || 2239 ParseIndexList(Indices) || 2240 ParseToken(lltok::rparen, "expected ')' in extractvalue constantexpr")) 2241 return true; 2242 2243 if (!Val->getType()->isAggregateType()) 2244 return Error(ID.Loc, "extractvalue operand must be aggregate type"); 2245 if (!ExtractValueInst::getIndexedType(Val->getType(), Indices)) 2246 return Error(ID.Loc, "invalid indices for extractvalue"); 2247 ID.ConstantVal = ConstantExpr::getExtractValue(Val, Indices); 2248 ID.Kind = ValID::t_Constant; 2249 return false; 2250 } 2251 case lltok::kw_insertvalue: { 2252 Lex.Lex(); 2253 Constant *Val0, *Val1; 2254 SmallVector<unsigned, 4> Indices; 2255 if (ParseToken(lltok::lparen, "expected '(' in insertvalue constantexpr")|| 2256 ParseGlobalTypeAndValue(Val0) || 2257 ParseToken(lltok::comma, "expected comma in insertvalue constantexpr")|| 2258 ParseGlobalTypeAndValue(Val1) || 2259 ParseIndexList(Indices) || 2260 ParseToken(lltok::rparen, "expected ')' in insertvalue constantexpr")) 2261 return true; 2262 if (!Val0->getType()->isAggregateType()) 2263 return Error(ID.Loc, "insertvalue operand must be aggregate type"); 2264 if (!ExtractValueInst::getIndexedType(Val0->getType(), Indices)) 2265 return Error(ID.Loc, "invalid indices for insertvalue"); 2266 ID.ConstantVal = ConstantExpr::getInsertValue(Val0, Val1, Indices); 2267 ID.Kind = ValID::t_Constant; 2268 return false; 2269 } 2270 case lltok::kw_icmp: 2271 case lltok::kw_fcmp: { 2272 unsigned PredVal, Opc = Lex.getUIntVal(); 2273 Constant *Val0, *Val1; 2274 Lex.Lex(); 2275 if (ParseCmpPredicate(PredVal, Opc) || 2276 ParseToken(lltok::lparen, "expected '(' in compare constantexpr") || 2277 ParseGlobalTypeAndValue(Val0) || 2278 ParseToken(lltok::comma, "expected comma in compare constantexpr") || 2279 ParseGlobalTypeAndValue(Val1) || 2280 ParseToken(lltok::rparen, "expected ')' in compare constantexpr")) 2281 return true; 2282 2283 if (Val0->getType() != Val1->getType()) 2284 return Error(ID.Loc, "compare operands must have the same type"); 2285 2286 CmpInst::Predicate Pred = (CmpInst::Predicate)PredVal; 2287 2288 if (Opc == Instruction::FCmp) { 2289 if (!Val0->getType()->isFPOrFPVectorTy()) 2290 return Error(ID.Loc, "fcmp requires floating point operands"); 2291 ID.ConstantVal = ConstantExpr::getFCmp(Pred, Val0, Val1); 2292 } else { 2293 assert(Opc == Instruction::ICmp && "Unexpected opcode for CmpInst!"); 2294 if (!Val0->getType()->isIntOrIntVectorTy() && 2295 !Val0->getType()->getScalarType()->isPointerTy()) 2296 return Error(ID.Loc, "icmp requires pointer or integer operands"); 2297 ID.ConstantVal = ConstantExpr::getICmp(Pred, Val0, Val1); 2298 } 2299 ID.Kind = ValID::t_Constant; 2300 return false; 2301 } 2302 2303 // Binary Operators. 2304 case lltok::kw_add: 2305 case lltok::kw_fadd: 2306 case lltok::kw_sub: 2307 case lltok::kw_fsub: 2308 case lltok::kw_mul: 2309 case lltok::kw_fmul: 2310 case lltok::kw_udiv: 2311 case lltok::kw_sdiv: 2312 case lltok::kw_fdiv: 2313 case lltok::kw_urem: 2314 case lltok::kw_srem: 2315 case lltok::kw_frem: 2316 case lltok::kw_shl: 2317 case lltok::kw_lshr: 2318 case lltok::kw_ashr: { 2319 bool NUW = false; 2320 bool NSW = false; 2321 bool Exact = false; 2322 unsigned Opc = Lex.getUIntVal(); 2323 Constant *Val0, *Val1; 2324 Lex.Lex(); 2325 LocTy ModifierLoc = Lex.getLoc(); 2326 if (Opc == Instruction::Add || Opc == Instruction::Sub || 2327 Opc == Instruction::Mul || Opc == Instruction::Shl) { 2328 if (EatIfPresent(lltok::kw_nuw)) 2329 NUW = true; 2330 if (EatIfPresent(lltok::kw_nsw)) { 2331 NSW = true; 2332 if (EatIfPresent(lltok::kw_nuw)) 2333 NUW = true; 2334 } 2335 } else if (Opc == Instruction::SDiv || Opc == Instruction::UDiv || 2336 Opc == Instruction::LShr || Opc == Instruction::AShr) { 2337 if (EatIfPresent(lltok::kw_exact)) 2338 Exact = true; 2339 } 2340 if (ParseToken(lltok::lparen, "expected '(' in binary constantexpr") || 2341 ParseGlobalTypeAndValue(Val0) || 2342 ParseToken(lltok::comma, "expected comma in binary constantexpr") || 2343 ParseGlobalTypeAndValue(Val1) || 2344 ParseToken(lltok::rparen, "expected ')' in binary constantexpr")) 2345 return true; 2346 if (Val0->getType() != Val1->getType()) 2347 return Error(ID.Loc, "operands of constexpr must have same type"); 2348 if (!Val0->getType()->isIntOrIntVectorTy()) { 2349 if (NUW) 2350 return Error(ModifierLoc, "nuw only applies to integer operations"); 2351 if (NSW) 2352 return Error(ModifierLoc, "nsw only applies to integer operations"); 2353 } 2354 // Check that the type is valid for the operator. 2355 switch (Opc) { 2356 case Instruction::Add: 2357 case Instruction::Sub: 2358 case Instruction::Mul: 2359 case Instruction::UDiv: 2360 case Instruction::SDiv: 2361 case Instruction::URem: 2362 case Instruction::SRem: 2363 case Instruction::Shl: 2364 case Instruction::AShr: 2365 case Instruction::LShr: 2366 if (!Val0->getType()->isIntOrIntVectorTy()) 2367 return Error(ID.Loc, "constexpr requires integer operands"); 2368 break; 2369 case Instruction::FAdd: 2370 case Instruction::FSub: 2371 case Instruction::FMul: 2372 case Instruction::FDiv: 2373 case Instruction::FRem: 2374 if (!Val0->getType()->isFPOrFPVectorTy()) 2375 return Error(ID.Loc, "constexpr requires fp operands"); 2376 break; 2377 default: llvm_unreachable("Unknown binary operator!"); 2378 } 2379 unsigned Flags = 0; 2380 if (NUW) Flags |= OverflowingBinaryOperator::NoUnsignedWrap; 2381 if (NSW) Flags |= OverflowingBinaryOperator::NoSignedWrap; 2382 if (Exact) Flags |= PossiblyExactOperator::IsExact; 2383 Constant *C = ConstantExpr::get(Opc, Val0, Val1, Flags); 2384 ID.ConstantVal = C; 2385 ID.Kind = ValID::t_Constant; 2386 return false; 2387 } 2388 2389 // Logical Operations 2390 case lltok::kw_and: 2391 case lltok::kw_or: 2392 case lltok::kw_xor: { 2393 unsigned Opc = Lex.getUIntVal(); 2394 Constant *Val0, *Val1; 2395 Lex.Lex(); 2396 if (ParseToken(lltok::lparen, "expected '(' in logical constantexpr") || 2397 ParseGlobalTypeAndValue(Val0) || 2398 ParseToken(lltok::comma, "expected comma in logical constantexpr") || 2399 ParseGlobalTypeAndValue(Val1) || 2400 ParseToken(lltok::rparen, "expected ')' in logical constantexpr")) 2401 return true; 2402 if (Val0->getType() != Val1->getType()) 2403 return Error(ID.Loc, "operands of constexpr must have same type"); 2404 if (!Val0->getType()->isIntOrIntVectorTy()) 2405 return Error(ID.Loc, 2406 "constexpr requires integer or integer vector operands"); 2407 ID.ConstantVal = ConstantExpr::get(Opc, Val0, Val1); 2408 ID.Kind = ValID::t_Constant; 2409 return false; 2410 } 2411 2412 case lltok::kw_getelementptr: 2413 case lltok::kw_shufflevector: 2414 case lltok::kw_insertelement: 2415 case lltok::kw_extractelement: 2416 case lltok::kw_select: { 2417 unsigned Opc = Lex.getUIntVal(); 2418 SmallVector<Constant*, 16> Elts; 2419 bool InBounds = false; 2420 Lex.Lex(); 2421 if (Opc == Instruction::GetElementPtr) 2422 InBounds = EatIfPresent(lltok::kw_inbounds); 2423 if (ParseToken(lltok::lparen, "expected '(' in constantexpr") || 2424 ParseGlobalValueVector(Elts) || 2425 ParseToken(lltok::rparen, "expected ')' in constantexpr")) 2426 return true; 2427 2428 if (Opc == Instruction::GetElementPtr) { 2429 if (Elts.size() == 0 || 2430 !Elts[0]->getType()->getScalarType()->isPointerTy()) 2431 return Error(ID.Loc, "getelementptr requires pointer operand"); 2432 2433 ArrayRef<Constant *> Indices(Elts.begin() + 1, Elts.end()); 2434 if (!GetElementPtrInst::getIndexedType(Elts[0]->getType(), Indices)) 2435 return Error(ID.Loc, "invalid indices for getelementptr"); 2436 ID.ConstantVal = ConstantExpr::getGetElementPtr(Elts[0], Indices, 2437 InBounds); 2438 } else if (Opc == Instruction::Select) { 2439 if (Elts.size() != 3) 2440 return Error(ID.Loc, "expected three operands to select"); 2441 if (const char *Reason = SelectInst::areInvalidOperands(Elts[0], Elts[1], 2442 Elts[2])) 2443 return Error(ID.Loc, Reason); 2444 ID.ConstantVal = ConstantExpr::getSelect(Elts[0], Elts[1], Elts[2]); 2445 } else if (Opc == Instruction::ShuffleVector) { 2446 if (Elts.size() != 3) 2447 return Error(ID.Loc, "expected three operands to shufflevector"); 2448 if (!ShuffleVectorInst::isValidOperands(Elts[0], Elts[1], Elts[2])) 2449 return Error(ID.Loc, "invalid operands to shufflevector"); 2450 ID.ConstantVal = 2451 ConstantExpr::getShuffleVector(Elts[0], Elts[1],Elts[2]); 2452 } else if (Opc == Instruction::ExtractElement) { 2453 if (Elts.size() != 2) 2454 return Error(ID.Loc, "expected two operands to extractelement"); 2455 if (!ExtractElementInst::isValidOperands(Elts[0], Elts[1])) 2456 return Error(ID.Loc, "invalid extractelement operands"); 2457 ID.ConstantVal = ConstantExpr::getExtractElement(Elts[0], Elts[1]); 2458 } else { 2459 assert(Opc == Instruction::InsertElement && "Unknown opcode"); 2460 if (Elts.size() != 3) 2461 return Error(ID.Loc, "expected three operands to insertelement"); 2462 if (!InsertElementInst::isValidOperands(Elts[0], Elts[1], Elts[2])) 2463 return Error(ID.Loc, "invalid insertelement operands"); 2464 ID.ConstantVal = 2465 ConstantExpr::getInsertElement(Elts[0], Elts[1],Elts[2]); 2466 } 2467 2468 ID.Kind = ValID::t_Constant; 2469 return false; 2470 } 2471 } 2472 2473 Lex.Lex(); 2474 return false; 2475 } 2476 2477 /// ParseGlobalValue - Parse a global value with the specified type. 2478 bool LLParser::ParseGlobalValue(Type *Ty, Constant *&C) { 2479 C = 0; 2480 ValID ID; 2481 Value *V = NULL; 2482 bool Parsed = ParseValID(ID) || 2483 ConvertValIDToValue(Ty, ID, V, NULL); 2484 if (V && !(C = dyn_cast<Constant>(V))) 2485 return Error(ID.Loc, "global values must be constants"); 2486 return Parsed; 2487 } 2488 2489 bool LLParser::ParseGlobalTypeAndValue(Constant *&V) { 2490 Type *Ty = 0; 2491 return ParseType(Ty) || 2492 ParseGlobalValue(Ty, V); 2493 } 2494 2495 /// ParseGlobalValueVector 2496 /// ::= /*empty*/ 2497 /// ::= TypeAndValue (',' TypeAndValue)* 2498 bool LLParser::ParseGlobalValueVector(SmallVectorImpl<Constant*> &Elts) { 2499 // Empty list. 2500 if (Lex.getKind() == lltok::rbrace || 2501 Lex.getKind() == lltok::rsquare || 2502 Lex.getKind() == lltok::greater || 2503 Lex.getKind() == lltok::rparen) 2504 return false; 2505 2506 Constant *C; 2507 if (ParseGlobalTypeAndValue(C)) return true; 2508 Elts.push_back(C); 2509 2510 while (EatIfPresent(lltok::comma)) { 2511 if (ParseGlobalTypeAndValue(C)) return true; 2512 Elts.push_back(C); 2513 } 2514 2515 return false; 2516 } 2517 2518 bool LLParser::ParseMetadataListValue(ValID &ID, PerFunctionState *PFS) { 2519 assert(Lex.getKind() == lltok::lbrace); 2520 Lex.Lex(); 2521 2522 SmallVector<Value*, 16> Elts; 2523 if (ParseMDNodeVector(Elts, PFS) || 2524 ParseToken(lltok::rbrace, "expected end of metadata node")) 2525 return true; 2526 2527 ID.MDNodeVal = MDNode::get(Context, Elts); 2528 ID.Kind = ValID::t_MDNode; 2529 return false; 2530 } 2531 2532 /// ParseMetadataValue 2533 /// ::= !42 2534 /// ::= !{...} 2535 /// ::= !"string" 2536 bool LLParser::ParseMetadataValue(ValID &ID, PerFunctionState *PFS) { 2537 assert(Lex.getKind() == lltok::exclaim); 2538 Lex.Lex(); 2539 2540 // MDNode: 2541 // !{ ... } 2542 if (Lex.getKind() == lltok::lbrace) 2543 return ParseMetadataListValue(ID, PFS); 2544 2545 // Standalone metadata reference 2546 // !42 2547 if (Lex.getKind() == lltok::APSInt) { 2548 if (ParseMDNodeID(ID.MDNodeVal)) return true; 2549 ID.Kind = ValID::t_MDNode; 2550 return false; 2551 } 2552 2553 // MDString: 2554 // ::= '!' STRINGCONSTANT 2555 if (ParseMDString(ID.MDStringVal)) return true; 2556 ID.Kind = ValID::t_MDString; 2557 return false; 2558 } 2559 2560 2561 //===----------------------------------------------------------------------===// 2562 // Function Parsing. 2563 //===----------------------------------------------------------------------===// 2564 2565 bool LLParser::ConvertValIDToValue(Type *Ty, ValID &ID, Value *&V, 2566 PerFunctionState *PFS) { 2567 if (Ty->isFunctionTy()) 2568 return Error(ID.Loc, "functions are not values, refer to them as pointers"); 2569 2570 switch (ID.Kind) { 2571 case ValID::t_LocalID: 2572 if (!PFS) return Error(ID.Loc, "invalid use of function-local name"); 2573 V = PFS->GetVal(ID.UIntVal, Ty, ID.Loc); 2574 return (V == 0); 2575 case ValID::t_LocalName: 2576 if (!PFS) return Error(ID.Loc, "invalid use of function-local name"); 2577 V = PFS->GetVal(ID.StrVal, Ty, ID.Loc); 2578 return (V == 0); 2579 case ValID::t_InlineAsm: { 2580 PointerType *PTy = dyn_cast<PointerType>(Ty); 2581 FunctionType *FTy = 2582 PTy ? dyn_cast<FunctionType>(PTy->getElementType()) : 0; 2583 if (!FTy || !InlineAsm::Verify(FTy, ID.StrVal2)) 2584 return Error(ID.Loc, "invalid type for inline asm constraint string"); 2585 V = InlineAsm::get(FTy, ID.StrVal, ID.StrVal2, ID.UIntVal&1, 2586 (ID.UIntVal>>1)&1, (InlineAsm::AsmDialect(ID.UIntVal>>2))); 2587 return false; 2588 } 2589 case ValID::t_MDNode: 2590 if (!Ty->isMetadataTy()) 2591 return Error(ID.Loc, "metadata value must have metadata type"); 2592 V = ID.MDNodeVal; 2593 return false; 2594 case ValID::t_MDString: 2595 if (!Ty->isMetadataTy()) 2596 return Error(ID.Loc, "metadata value must have metadata type"); 2597 V = ID.MDStringVal; 2598 return false; 2599 case ValID::t_GlobalName: 2600 V = GetGlobalVal(ID.StrVal, Ty, ID.Loc); 2601 return V == 0; 2602 case ValID::t_GlobalID: 2603 V = GetGlobalVal(ID.UIntVal, Ty, ID.Loc); 2604 return V == 0; 2605 case ValID::t_APSInt: 2606 if (!Ty->isIntegerTy()) 2607 return Error(ID.Loc, "integer constant must have integer type"); 2608 ID.APSIntVal = ID.APSIntVal.extOrTrunc(Ty->getPrimitiveSizeInBits()); 2609 V = ConstantInt::get(Context, ID.APSIntVal); 2610 return false; 2611 case ValID::t_APFloat: 2612 if (!Ty->isFloatingPointTy() || 2613 !ConstantFP::isValueValidForType(Ty, ID.APFloatVal)) 2614 return Error(ID.Loc, "floating point constant invalid for type"); 2615 2616 // The lexer has no type info, so builds all half, float, and double FP 2617 // constants as double. Fix this here. Long double does not need this. 2618 if (&ID.APFloatVal.getSemantics() == &APFloat::IEEEdouble) { 2619 bool Ignored; 2620 if (Ty->isHalfTy()) 2621 ID.APFloatVal.convert(APFloat::IEEEhalf, APFloat::rmNearestTiesToEven, 2622 &Ignored); 2623 else if (Ty->isFloatTy()) 2624 ID.APFloatVal.convert(APFloat::IEEEsingle, APFloat::rmNearestTiesToEven, 2625 &Ignored); 2626 } 2627 V = ConstantFP::get(Context, ID.APFloatVal); 2628 2629 if (V->getType() != Ty) 2630 return Error(ID.Loc, "floating point constant does not have type '" + 2631 getTypeString(Ty) + "'"); 2632 2633 return false; 2634 case ValID::t_Null: 2635 if (!Ty->isPointerTy()) 2636 return Error(ID.Loc, "null must be a pointer type"); 2637 V = ConstantPointerNull::get(cast<PointerType>(Ty)); 2638 return false; 2639 case ValID::t_Undef: 2640 // FIXME: LabelTy should not be a first-class type. 2641 if (!Ty->isFirstClassType() || Ty->isLabelTy()) 2642 return Error(ID.Loc, "invalid type for undef constant"); 2643 V = UndefValue::get(Ty); 2644 return false; 2645 case ValID::t_EmptyArray: 2646 if (!Ty->isArrayTy() || cast<ArrayType>(Ty)->getNumElements() != 0) 2647 return Error(ID.Loc, "invalid empty array initializer"); 2648 V = UndefValue::get(Ty); 2649 return false; 2650 case ValID::t_Zero: 2651 // FIXME: LabelTy should not be a first-class type. 2652 if (!Ty->isFirstClassType() || Ty->isLabelTy()) 2653 return Error(ID.Loc, "invalid type for null constant"); 2654 V = Constant::getNullValue(Ty); 2655 return false; 2656 case ValID::t_Constant: 2657 if (ID.ConstantVal->getType() != Ty) 2658 return Error(ID.Loc, "constant expression type mismatch"); 2659 2660 V = ID.ConstantVal; 2661 return false; 2662 case ValID::t_ConstantStruct: 2663 case ValID::t_PackedConstantStruct: 2664 if (StructType *ST = dyn_cast<StructType>(Ty)) { 2665 if (ST->getNumElements() != ID.UIntVal) 2666 return Error(ID.Loc, 2667 "initializer with struct type has wrong # elements"); 2668 if (ST->isPacked() != (ID.Kind == ValID::t_PackedConstantStruct)) 2669 return Error(ID.Loc, "packed'ness of initializer and type don't match"); 2670 2671 // Verify that the elements are compatible with the structtype. 2672 for (unsigned i = 0, e = ID.UIntVal; i != e; ++i) 2673 if (ID.ConstantStructElts[i]->getType() != ST->getElementType(i)) 2674 return Error(ID.Loc, "element " + Twine(i) + 2675 " of struct initializer doesn't match struct element type"); 2676 2677 V = ConstantStruct::get(ST, makeArrayRef(ID.ConstantStructElts, 2678 ID.UIntVal)); 2679 } else 2680 return Error(ID.Loc, "constant expression type mismatch"); 2681 return false; 2682 } 2683 llvm_unreachable("Invalid ValID"); 2684 } 2685 2686 bool LLParser::ParseValue(Type *Ty, Value *&V, PerFunctionState *PFS) { 2687 V = 0; 2688 ValID ID; 2689 return ParseValID(ID, PFS) || 2690 ConvertValIDToValue(Ty, ID, V, PFS); 2691 } 2692 2693 bool LLParser::ParseTypeAndValue(Value *&V, PerFunctionState *PFS) { 2694 Type *Ty = 0; 2695 return ParseType(Ty) || 2696 ParseValue(Ty, V, PFS); 2697 } 2698 2699 bool LLParser::ParseTypeAndBasicBlock(BasicBlock *&BB, LocTy &Loc, 2700 PerFunctionState &PFS) { 2701 Value *V; 2702 Loc = Lex.getLoc(); 2703 if (ParseTypeAndValue(V, PFS)) return true; 2704 if (!isa<BasicBlock>(V)) 2705 return Error(Loc, "expected a basic block"); 2706 BB = cast<BasicBlock>(V); 2707 return false; 2708 } 2709 2710 2711 /// FunctionHeader 2712 /// ::= OptionalLinkage OptionalVisibility OptionalCallingConv OptRetAttrs 2713 /// OptUnnamedAddr Type GlobalName '(' ArgList ')' OptFuncAttrs OptSection 2714 /// OptionalAlign OptGC 2715 bool LLParser::ParseFunctionHeader(Function *&Fn, bool isDefine) { 2716 // Parse the linkage. 2717 LocTy LinkageLoc = Lex.getLoc(); 2718 unsigned Linkage; 2719 2720 unsigned Visibility; 2721 AttrBuilder RetAttrs; 2722 CallingConv::ID CC; 2723 Type *RetType = 0; 2724 LocTy RetTypeLoc = Lex.getLoc(); 2725 if (ParseOptionalLinkage(Linkage) || 2726 ParseOptionalVisibility(Visibility) || 2727 ParseOptionalCallingConv(CC) || 2728 ParseOptionalReturnAttrs(RetAttrs) || 2729 ParseType(RetType, RetTypeLoc, true /*void allowed*/)) 2730 return true; 2731 2732 // Verify that the linkage is ok. 2733 switch ((GlobalValue::LinkageTypes)Linkage) { 2734 case GlobalValue::ExternalLinkage: 2735 break; // always ok. 2736 case GlobalValue::DLLImportLinkage: 2737 case GlobalValue::ExternalWeakLinkage: 2738 if (isDefine) 2739 return Error(LinkageLoc, "invalid linkage for function definition"); 2740 break; 2741 case GlobalValue::PrivateLinkage: 2742 case GlobalValue::LinkerPrivateLinkage: 2743 case GlobalValue::LinkerPrivateWeakLinkage: 2744 case GlobalValue::InternalLinkage: 2745 case GlobalValue::AvailableExternallyLinkage: 2746 case GlobalValue::LinkOnceAnyLinkage: 2747 case GlobalValue::LinkOnceODRLinkage: 2748 case GlobalValue::LinkOnceODRAutoHideLinkage: 2749 case GlobalValue::WeakAnyLinkage: 2750 case GlobalValue::WeakODRLinkage: 2751 case GlobalValue::DLLExportLinkage: 2752 if (!isDefine) 2753 return Error(LinkageLoc, "invalid linkage for function declaration"); 2754 break; 2755 case GlobalValue::AppendingLinkage: 2756 case GlobalValue::CommonLinkage: 2757 return Error(LinkageLoc, "invalid function linkage type"); 2758 } 2759 2760 if (!FunctionType::isValidReturnType(RetType)) 2761 return Error(RetTypeLoc, "invalid function return type"); 2762 2763 LocTy NameLoc = Lex.getLoc(); 2764 2765 std::string FunctionName; 2766 if (Lex.getKind() == lltok::GlobalVar) { 2767 FunctionName = Lex.getStrVal(); 2768 } else if (Lex.getKind() == lltok::GlobalID) { // @42 is ok. 2769 unsigned NameID = Lex.getUIntVal(); 2770 2771 if (NameID != NumberedVals.size()) 2772 return TokError("function expected to be numbered '%" + 2773 Twine(NumberedVals.size()) + "'"); 2774 } else { 2775 return TokError("expected function name"); 2776 } 2777 2778 Lex.Lex(); 2779 2780 if (Lex.getKind() != lltok::lparen) 2781 return TokError("expected '(' in function argument list"); 2782 2783 SmallVector<ArgInfo, 8> ArgList; 2784 bool isVarArg; 2785 AttrBuilder FuncAttrs; 2786 std::string Section; 2787 unsigned Alignment; 2788 std::string GC; 2789 bool UnnamedAddr; 2790 LocTy UnnamedAddrLoc; 2791 2792 if (ParseArgumentList(ArgList, isVarArg) || 2793 ParseOptionalToken(lltok::kw_unnamed_addr, UnnamedAddr, 2794 &UnnamedAddrLoc) || 2795 ParseOptionalFuncAttrs(FuncAttrs) || 2796 (EatIfPresent(lltok::kw_section) && 2797 ParseStringConstant(Section)) || 2798 ParseOptionalAlignment(Alignment) || 2799 (EatIfPresent(lltok::kw_gc) && 2800 ParseStringConstant(GC))) 2801 return true; 2802 2803 // If the alignment was parsed as an attribute, move to the alignment field. 2804 if (FuncAttrs.hasAlignmentAttr()) { 2805 Alignment = FuncAttrs.getAlignment(); 2806 FuncAttrs.removeAttribute(Attributes::Alignment); 2807 } 2808 2809 // Okay, if we got here, the function is syntactically valid. Convert types 2810 // and do semantic checks. 2811 std::vector<Type*> ParamTypeList; 2812 SmallVector<AttributeWithIndex, 8> Attrs; 2813 2814 if (RetAttrs.hasAttributes()) 2815 Attrs.push_back( 2816 AttributeWithIndex::get(AttributeSet::ReturnIndex, 2817 Attributes::get(RetType->getContext(), 2818 RetAttrs))); 2819 2820 for (unsigned i = 0, e = ArgList.size(); i != e; ++i) { 2821 ParamTypeList.push_back(ArgList[i].Ty); 2822 if (ArgList[i].Attrs.hasAttributes()) 2823 Attrs.push_back(AttributeWithIndex::get(i+1, ArgList[i].Attrs)); 2824 } 2825 2826 if (FuncAttrs.hasAttributes()) 2827 Attrs.push_back( 2828 AttributeWithIndex::get(AttributeSet::FunctionIndex, 2829 Attributes::get(RetType->getContext(), 2830 FuncAttrs))); 2831 2832 AttributeSet PAL = AttributeSet::get(Context, Attrs); 2833 2834 if (PAL.getParamAttributes(1).hasAttribute(Attributes::StructRet) && 2835 !RetType->isVoidTy()) 2836 return Error(RetTypeLoc, "functions with 'sret' argument must return void"); 2837 2838 FunctionType *FT = 2839 FunctionType::get(RetType, ParamTypeList, isVarArg); 2840 PointerType *PFT = PointerType::getUnqual(FT); 2841 2842 Fn = 0; 2843 if (!FunctionName.empty()) { 2844 // If this was a definition of a forward reference, remove the definition 2845 // from the forward reference table and fill in the forward ref. 2846 std::map<std::string, std::pair<GlobalValue*, LocTy> >::iterator FRVI = 2847 ForwardRefVals.find(FunctionName); 2848 if (FRVI != ForwardRefVals.end()) { 2849 Fn = M->getFunction(FunctionName); 2850 if (!Fn) 2851 return Error(FRVI->second.second, "invalid forward reference to " 2852 "function as global value!"); 2853 if (Fn->getType() != PFT) 2854 return Error(FRVI->second.second, "invalid forward reference to " 2855 "function '" + FunctionName + "' with wrong type!"); 2856 2857 ForwardRefVals.erase(FRVI); 2858 } else if ((Fn = M->getFunction(FunctionName))) { 2859 // Reject redefinitions. 2860 return Error(NameLoc, "invalid redefinition of function '" + 2861 FunctionName + "'"); 2862 } else if (M->getNamedValue(FunctionName)) { 2863 return Error(NameLoc, "redefinition of function '@" + FunctionName + "'"); 2864 } 2865 2866 } else { 2867 // If this is a definition of a forward referenced function, make sure the 2868 // types agree. 2869 std::map<unsigned, std::pair<GlobalValue*, LocTy> >::iterator I 2870 = ForwardRefValIDs.find(NumberedVals.size()); 2871 if (I != ForwardRefValIDs.end()) { 2872 Fn = cast<Function>(I->second.first); 2873 if (Fn->getType() != PFT) 2874 return Error(NameLoc, "type of definition and forward reference of '@" + 2875 Twine(NumberedVals.size()) + "' disagree"); 2876 ForwardRefValIDs.erase(I); 2877 } 2878 } 2879 2880 if (Fn == 0) 2881 Fn = Function::Create(FT, GlobalValue::ExternalLinkage, FunctionName, M); 2882 else // Move the forward-reference to the correct spot in the module. 2883 M->getFunctionList().splice(M->end(), M->getFunctionList(), Fn); 2884 2885 if (FunctionName.empty()) 2886 NumberedVals.push_back(Fn); 2887 2888 Fn->setLinkage((GlobalValue::LinkageTypes)Linkage); 2889 Fn->setVisibility((GlobalValue::VisibilityTypes)Visibility); 2890 Fn->setCallingConv(CC); 2891 Fn->setAttributes(PAL); 2892 Fn->setUnnamedAddr(UnnamedAddr); 2893 Fn->setAlignment(Alignment); 2894 Fn->setSection(Section); 2895 if (!GC.empty()) Fn->setGC(GC.c_str()); 2896 2897 // Add all of the arguments we parsed to the function. 2898 Function::arg_iterator ArgIt = Fn->arg_begin(); 2899 for (unsigned i = 0, e = ArgList.size(); i != e; ++i, ++ArgIt) { 2900 // If the argument has a name, insert it into the argument symbol table. 2901 if (ArgList[i].Name.empty()) continue; 2902 2903 // Set the name, if it conflicted, it will be auto-renamed. 2904 ArgIt->setName(ArgList[i].Name); 2905 2906 if (ArgIt->getName() != ArgList[i].Name) 2907 return Error(ArgList[i].Loc, "redefinition of argument '%" + 2908 ArgList[i].Name + "'"); 2909 } 2910 2911 return false; 2912 } 2913 2914 2915 /// ParseFunctionBody 2916 /// ::= '{' BasicBlock+ '}' 2917 /// 2918 bool LLParser::ParseFunctionBody(Function &Fn) { 2919 if (Lex.getKind() != lltok::lbrace) 2920 return TokError("expected '{' in function body"); 2921 Lex.Lex(); // eat the {. 2922 2923 int FunctionNumber = -1; 2924 if (!Fn.hasName()) FunctionNumber = NumberedVals.size()-1; 2925 2926 PerFunctionState PFS(*this, Fn, FunctionNumber); 2927 2928 // We need at least one basic block. 2929 if (Lex.getKind() == lltok::rbrace) 2930 return TokError("function body requires at least one basic block"); 2931 2932 while (Lex.getKind() != lltok::rbrace) 2933 if (ParseBasicBlock(PFS)) return true; 2934 2935 // Eat the }. 2936 Lex.Lex(); 2937 2938 // Verify function is ok. 2939 return PFS.FinishFunction(); 2940 } 2941 2942 /// ParseBasicBlock 2943 /// ::= LabelStr? Instruction* 2944 bool LLParser::ParseBasicBlock(PerFunctionState &PFS) { 2945 // If this basic block starts out with a name, remember it. 2946 std::string Name; 2947 LocTy NameLoc = Lex.getLoc(); 2948 if (Lex.getKind() == lltok::LabelStr) { 2949 Name = Lex.getStrVal(); 2950 Lex.Lex(); 2951 } 2952 2953 BasicBlock *BB = PFS.DefineBB(Name, NameLoc); 2954 if (BB == 0) return true; 2955 2956 std::string NameStr; 2957 2958 // Parse the instructions in this block until we get a terminator. 2959 Instruction *Inst; 2960 SmallVector<std::pair<unsigned, MDNode *>, 4> MetadataOnInst; 2961 do { 2962 // This instruction may have three possibilities for a name: a) none 2963 // specified, b) name specified "%foo =", c) number specified: "%4 =". 2964 LocTy NameLoc = Lex.getLoc(); 2965 int NameID = -1; 2966 NameStr = ""; 2967 2968 if (Lex.getKind() == lltok::LocalVarID) { 2969 NameID = Lex.getUIntVal(); 2970 Lex.Lex(); 2971 if (ParseToken(lltok::equal, "expected '=' after instruction id")) 2972 return true; 2973 } else if (Lex.getKind() == lltok::LocalVar) { 2974 NameStr = Lex.getStrVal(); 2975 Lex.Lex(); 2976 if (ParseToken(lltok::equal, "expected '=' after instruction name")) 2977 return true; 2978 } 2979 2980 switch (ParseInstruction(Inst, BB, PFS)) { 2981 default: llvm_unreachable("Unknown ParseInstruction result!"); 2982 case InstError: return true; 2983 case InstNormal: 2984 BB->getInstList().push_back(Inst); 2985 2986 // With a normal result, we check to see if the instruction is followed by 2987 // a comma and metadata. 2988 if (EatIfPresent(lltok::comma)) 2989 if (ParseInstructionMetadata(Inst, &PFS)) 2990 return true; 2991 break; 2992 case InstExtraComma: 2993 BB->getInstList().push_back(Inst); 2994 2995 // If the instruction parser ate an extra comma at the end of it, it 2996 // *must* be followed by metadata. 2997 if (ParseInstructionMetadata(Inst, &PFS)) 2998 return true; 2999 break; 3000 } 3001 3002 // Set the name on the instruction. 3003 if (PFS.SetInstName(NameID, NameStr, NameLoc, Inst)) return true; 3004 } while (!isa<TerminatorInst>(Inst)); 3005 3006 return false; 3007 } 3008 3009 //===----------------------------------------------------------------------===// 3010 // Instruction Parsing. 3011 //===----------------------------------------------------------------------===// 3012 3013 /// ParseInstruction - Parse one of the many different instructions. 3014 /// 3015 int LLParser::ParseInstruction(Instruction *&Inst, BasicBlock *BB, 3016 PerFunctionState &PFS) { 3017 lltok::Kind Token = Lex.getKind(); 3018 if (Token == lltok::Eof) 3019 return TokError("found end of file when expecting more instructions"); 3020 LocTy Loc = Lex.getLoc(); 3021 unsigned KeywordVal = Lex.getUIntVal(); 3022 Lex.Lex(); // Eat the keyword. 3023 3024 switch (Token) { 3025 default: return Error(Loc, "expected instruction opcode"); 3026 // Terminator Instructions. 3027 case lltok::kw_unreachable: Inst = new UnreachableInst(Context); return false; 3028 case lltok::kw_ret: return ParseRet(Inst, BB, PFS); 3029 case lltok::kw_br: return ParseBr(Inst, PFS); 3030 case lltok::kw_switch: return ParseSwitch(Inst, PFS); 3031 case lltok::kw_indirectbr: return ParseIndirectBr(Inst, PFS); 3032 case lltok::kw_invoke: return ParseInvoke(Inst, PFS); 3033 case lltok::kw_resume: return ParseResume(Inst, PFS); 3034 // Binary Operators. 3035 case lltok::kw_add: 3036 case lltok::kw_sub: 3037 case lltok::kw_mul: 3038 case lltok::kw_shl: { 3039 bool NUW = EatIfPresent(lltok::kw_nuw); 3040 bool NSW = EatIfPresent(lltok::kw_nsw); 3041 if (!NUW) NUW = EatIfPresent(lltok::kw_nuw); 3042 3043 if (ParseArithmetic(Inst, PFS, KeywordVal, 1)) return true; 3044 3045 if (NUW) cast<BinaryOperator>(Inst)->setHasNoUnsignedWrap(true); 3046 if (NSW) cast<BinaryOperator>(Inst)->setHasNoSignedWrap(true); 3047 return false; 3048 } 3049 case lltok::kw_fadd: 3050 case lltok::kw_fsub: 3051 case lltok::kw_fmul: 3052 case lltok::kw_fdiv: 3053 case lltok::kw_frem: { 3054 FastMathFlags FMF = EatFastMathFlagsIfPresent(); 3055 int Res = ParseArithmetic(Inst, PFS, KeywordVal, 2); 3056 if (Res != 0) 3057 return Res; 3058 if (FMF.any()) 3059 Inst->setFastMathFlags(FMF); 3060 return 0; 3061 } 3062 3063 case lltok::kw_sdiv: 3064 case lltok::kw_udiv: 3065 case lltok::kw_lshr: 3066 case lltok::kw_ashr: { 3067 bool Exact = EatIfPresent(lltok::kw_exact); 3068 3069 if (ParseArithmetic(Inst, PFS, KeywordVal, 1)) return true; 3070 if (Exact) cast<BinaryOperator>(Inst)->setIsExact(true); 3071 return false; 3072 } 3073 3074 case lltok::kw_urem: 3075 case lltok::kw_srem: return ParseArithmetic(Inst, PFS, KeywordVal, 1); 3076 case lltok::kw_and: 3077 case lltok::kw_or: 3078 case lltok::kw_xor: return ParseLogical(Inst, PFS, KeywordVal); 3079 case lltok::kw_icmp: 3080 case lltok::kw_fcmp: return ParseCompare(Inst, PFS, KeywordVal); 3081 // Casts. 3082 case lltok::kw_trunc: 3083 case lltok::kw_zext: 3084 case lltok::kw_sext: 3085 case lltok::kw_fptrunc: 3086 case lltok::kw_fpext: 3087 case lltok::kw_bitcast: 3088 case lltok::kw_uitofp: 3089 case lltok::kw_sitofp: 3090 case lltok::kw_fptoui: 3091 case lltok::kw_fptosi: 3092 case lltok::kw_inttoptr: 3093 case lltok::kw_ptrtoint: return ParseCast(Inst, PFS, KeywordVal); 3094 // Other. 3095 case lltok::kw_select: return ParseSelect(Inst, PFS); 3096 case lltok::kw_va_arg: return ParseVA_Arg(Inst, PFS); 3097 case lltok::kw_extractelement: return ParseExtractElement(Inst, PFS); 3098 case lltok::kw_insertelement: return ParseInsertElement(Inst, PFS); 3099 case lltok::kw_shufflevector: return ParseShuffleVector(Inst, PFS); 3100 case lltok::kw_phi: return ParsePHI(Inst, PFS); 3101 case lltok::kw_landingpad: return ParseLandingPad(Inst, PFS); 3102 case lltok::kw_call: return ParseCall(Inst, PFS, false); 3103 case lltok::kw_tail: return ParseCall(Inst, PFS, true); 3104 // Memory. 3105 case lltok::kw_alloca: return ParseAlloc(Inst, PFS); 3106 case lltok::kw_load: return ParseLoad(Inst, PFS); 3107 case lltok::kw_store: return ParseStore(Inst, PFS); 3108 case lltok::kw_cmpxchg: return ParseCmpXchg(Inst, PFS); 3109 case lltok::kw_atomicrmw: return ParseAtomicRMW(Inst, PFS); 3110 case lltok::kw_fence: return ParseFence(Inst, PFS); 3111 case lltok::kw_getelementptr: return ParseGetElementPtr(Inst, PFS); 3112 case lltok::kw_extractvalue: return ParseExtractValue(Inst, PFS); 3113 case lltok::kw_insertvalue: return ParseInsertValue(Inst, PFS); 3114 } 3115 } 3116 3117 /// ParseCmpPredicate - Parse an integer or fp predicate, based on Kind. 3118 bool LLParser::ParseCmpPredicate(unsigned &P, unsigned Opc) { 3119 if (Opc == Instruction::FCmp) { 3120 switch (Lex.getKind()) { 3121 default: TokError("expected fcmp predicate (e.g. 'oeq')"); 3122 case lltok::kw_oeq: P = CmpInst::FCMP_OEQ; break; 3123 case lltok::kw_one: P = CmpInst::FCMP_ONE; break; 3124 case lltok::kw_olt: P = CmpInst::FCMP_OLT; break; 3125 case lltok::kw_ogt: P = CmpInst::FCMP_OGT; break; 3126 case lltok::kw_ole: P = CmpInst::FCMP_OLE; break; 3127 case lltok::kw_oge: P = CmpInst::FCMP_OGE; break; 3128 case lltok::kw_ord: P = CmpInst::FCMP_ORD; break; 3129 case lltok::kw_uno: P = CmpInst::FCMP_UNO; break; 3130 case lltok::kw_ueq: P = CmpInst::FCMP_UEQ; break; 3131 case lltok::kw_une: P = CmpInst::FCMP_UNE; break; 3132 case lltok::kw_ult: P = CmpInst::FCMP_ULT; break; 3133 case lltok::kw_ugt: P = CmpInst::FCMP_UGT; break; 3134 case lltok::kw_ule: P = CmpInst::FCMP_ULE; break; 3135 case lltok::kw_uge: P = CmpInst::FCMP_UGE; break; 3136 case lltok::kw_true: P = CmpInst::FCMP_TRUE; break; 3137 case lltok::kw_false: P = CmpInst::FCMP_FALSE; break; 3138 } 3139 } else { 3140 switch (Lex.getKind()) { 3141 default: TokError("expected icmp predicate (e.g. 'eq')"); 3142 case lltok::kw_eq: P = CmpInst::ICMP_EQ; break; 3143 case lltok::kw_ne: P = CmpInst::ICMP_NE; break; 3144 case lltok::kw_slt: P = CmpInst::ICMP_SLT; break; 3145 case lltok::kw_sgt: P = CmpInst::ICMP_SGT; break; 3146 case lltok::kw_sle: P = CmpInst::ICMP_SLE; break; 3147 case lltok::kw_sge: P = CmpInst::ICMP_SGE; break; 3148 case lltok::kw_ult: P = CmpInst::ICMP_ULT; break; 3149 case lltok::kw_ugt: P = CmpInst::ICMP_UGT; break; 3150 case lltok::kw_ule: P = CmpInst::ICMP_ULE; break; 3151 case lltok::kw_uge: P = CmpInst::ICMP_UGE; break; 3152 } 3153 } 3154 Lex.Lex(); 3155 return false; 3156 } 3157 3158 //===----------------------------------------------------------------------===// 3159 // Terminator Instructions. 3160 //===----------------------------------------------------------------------===// 3161 3162 /// ParseRet - Parse a return instruction. 3163 /// ::= 'ret' void (',' !dbg, !1)* 3164 /// ::= 'ret' TypeAndValue (',' !dbg, !1)* 3165 bool LLParser::ParseRet(Instruction *&Inst, BasicBlock *BB, 3166 PerFunctionState &PFS) { 3167 SMLoc TypeLoc = Lex.getLoc(); 3168 Type *Ty = 0; 3169 if (ParseType(Ty, true /*void allowed*/)) return true; 3170 3171 Type *ResType = PFS.getFunction().getReturnType(); 3172 3173 if (Ty->isVoidTy()) { 3174 if (!ResType->isVoidTy()) 3175 return Error(TypeLoc, "value doesn't match function result type '" + 3176 getTypeString(ResType) + "'"); 3177 3178 Inst = ReturnInst::Create(Context); 3179 return false; 3180 } 3181 3182 Value *RV; 3183 if (ParseValue(Ty, RV, PFS)) return true; 3184 3185 if (ResType != RV->getType()) 3186 return Error(TypeLoc, "value doesn't match function result type '" + 3187 getTypeString(ResType) + "'"); 3188 3189 Inst = ReturnInst::Create(Context, RV); 3190 return false; 3191 } 3192 3193 3194 /// ParseBr 3195 /// ::= 'br' TypeAndValue 3196 /// ::= 'br' TypeAndValue ',' TypeAndValue ',' TypeAndValue 3197 bool LLParser::ParseBr(Instruction *&Inst, PerFunctionState &PFS) { 3198 LocTy Loc, Loc2; 3199 Value *Op0; 3200 BasicBlock *Op1, *Op2; 3201 if (ParseTypeAndValue(Op0, Loc, PFS)) return true; 3202 3203 if (BasicBlock *BB = dyn_cast<BasicBlock>(Op0)) { 3204 Inst = BranchInst::Create(BB); 3205 return false; 3206 } 3207 3208 if (Op0->getType() != Type::getInt1Ty(Context)) 3209 return Error(Loc, "branch condition must have 'i1' type"); 3210 3211 if (ParseToken(lltok::comma, "expected ',' after branch condition") || 3212 ParseTypeAndBasicBlock(Op1, Loc, PFS) || 3213 ParseToken(lltok::comma, "expected ',' after true destination") || 3214 ParseTypeAndBasicBlock(Op2, Loc2, PFS)) 3215 return true; 3216 3217 Inst = BranchInst::Create(Op1, Op2, Op0); 3218 return false; 3219 } 3220 3221 /// ParseSwitch 3222 /// Instruction 3223 /// ::= 'switch' TypeAndValue ',' TypeAndValue '[' JumpTable ']' 3224 /// JumpTable 3225 /// ::= (TypeAndValue ',' TypeAndValue)* 3226 bool LLParser::ParseSwitch(Instruction *&Inst, PerFunctionState &PFS) { 3227 LocTy CondLoc, BBLoc; 3228 Value *Cond; 3229 BasicBlock *DefaultBB; 3230 if (ParseTypeAndValue(Cond, CondLoc, PFS) || 3231 ParseToken(lltok::comma, "expected ',' after switch condition") || 3232 ParseTypeAndBasicBlock(DefaultBB, BBLoc, PFS) || 3233 ParseToken(lltok::lsquare, "expected '[' with switch table")) 3234 return true; 3235 3236 if (!Cond->getType()->isIntegerTy()) 3237 return Error(CondLoc, "switch condition must have integer type"); 3238 3239 // Parse the jump table pairs. 3240 SmallPtrSet<Value*, 32> SeenCases; 3241 SmallVector<std::pair<ConstantInt*, BasicBlock*>, 32> Table; 3242 while (Lex.getKind() != lltok::rsquare) { 3243 Value *Constant; 3244 BasicBlock *DestBB; 3245 3246 if (ParseTypeAndValue(Constant, CondLoc, PFS) || 3247 ParseToken(lltok::comma, "expected ',' after case value") || 3248 ParseTypeAndBasicBlock(DestBB, PFS)) 3249 return true; 3250 3251 if (!SeenCases.insert(Constant)) 3252 return Error(CondLoc, "duplicate case value in switch"); 3253 if (!isa<ConstantInt>(Constant)) 3254 return Error(CondLoc, "case value is not a constant integer"); 3255 3256 Table.push_back(std::make_pair(cast<ConstantInt>(Constant), DestBB)); 3257 } 3258 3259 Lex.Lex(); // Eat the ']'. 3260 3261 SwitchInst *SI = SwitchInst::Create(Cond, DefaultBB, Table.size()); 3262 for (unsigned i = 0, e = Table.size(); i != e; ++i) 3263 SI->addCase(Table[i].first, Table[i].second); 3264 Inst = SI; 3265 return false; 3266 } 3267 3268 /// ParseIndirectBr 3269 /// Instruction 3270 /// ::= 'indirectbr' TypeAndValue ',' '[' LabelList ']' 3271 bool LLParser::ParseIndirectBr(Instruction *&Inst, PerFunctionState &PFS) { 3272 LocTy AddrLoc; 3273 Value *Address; 3274 if (ParseTypeAndValue(Address, AddrLoc, PFS) || 3275 ParseToken(lltok::comma, "expected ',' after indirectbr address") || 3276 ParseToken(lltok::lsquare, "expected '[' with indirectbr")) 3277 return true; 3278 3279 if (!Address->getType()->isPointerTy()) 3280 return Error(AddrLoc, "indirectbr address must have pointer type"); 3281 3282 // Parse the destination list. 3283 SmallVector<BasicBlock*, 16> DestList; 3284 3285 if (Lex.getKind() != lltok::rsquare) { 3286 BasicBlock *DestBB; 3287 if (ParseTypeAndBasicBlock(DestBB, PFS)) 3288 return true; 3289 DestList.push_back(DestBB); 3290 3291 while (EatIfPresent(lltok::comma)) { 3292 if (ParseTypeAndBasicBlock(DestBB, PFS)) 3293 return true; 3294 DestList.push_back(DestBB); 3295 } 3296 } 3297 3298 if (ParseToken(lltok::rsquare, "expected ']' at end of block list")) 3299 return true; 3300 3301 IndirectBrInst *IBI = IndirectBrInst::Create(Address, DestList.size()); 3302 for (unsigned i = 0, e = DestList.size(); i != e; ++i) 3303 IBI->addDestination(DestList[i]); 3304 Inst = IBI; 3305 return false; 3306 } 3307 3308 3309 /// ParseInvoke 3310 /// ::= 'invoke' OptionalCallingConv OptionalAttrs Type Value ParamList 3311 /// OptionalAttrs 'to' TypeAndValue 'unwind' TypeAndValue 3312 bool LLParser::ParseInvoke(Instruction *&Inst, PerFunctionState &PFS) { 3313 LocTy CallLoc = Lex.getLoc(); 3314 AttrBuilder RetAttrs, FnAttrs; 3315 CallingConv::ID CC; 3316 Type *RetType = 0; 3317 LocTy RetTypeLoc; 3318 ValID CalleeID; 3319 SmallVector<ParamInfo, 16> ArgList; 3320 3321 BasicBlock *NormalBB, *UnwindBB; 3322 if (ParseOptionalCallingConv(CC) || 3323 ParseOptionalReturnAttrs(RetAttrs) || 3324 ParseType(RetType, RetTypeLoc, true /*void allowed*/) || 3325 ParseValID(CalleeID) || 3326 ParseParameterList(ArgList, PFS) || 3327 ParseOptionalFuncAttrs(FnAttrs) || 3328 ParseToken(lltok::kw_to, "expected 'to' in invoke") || 3329 ParseTypeAndBasicBlock(NormalBB, PFS) || 3330 ParseToken(lltok::kw_unwind, "expected 'unwind' in invoke") || 3331 ParseTypeAndBasicBlock(UnwindBB, PFS)) 3332 return true; 3333 3334 // If RetType is a non-function pointer type, then this is the short syntax 3335 // for the call, which means that RetType is just the return type. Infer the 3336 // rest of the function argument types from the arguments that are present. 3337 PointerType *PFTy = 0; 3338 FunctionType *Ty = 0; 3339 if (!(PFTy = dyn_cast<PointerType>(RetType)) || 3340 !(Ty = dyn_cast<FunctionType>(PFTy->getElementType()))) { 3341 // Pull out the types of all of the arguments... 3342 std::vector<Type*> ParamTypes; 3343 for (unsigned i = 0, e = ArgList.size(); i != e; ++i) 3344 ParamTypes.push_back(ArgList[i].V->getType()); 3345 3346 if (!FunctionType::isValidReturnType(RetType)) 3347 return Error(RetTypeLoc, "Invalid result type for LLVM function"); 3348 3349 Ty = FunctionType::get(RetType, ParamTypes, false); 3350 PFTy = PointerType::getUnqual(Ty); 3351 } 3352 3353 // Look up the callee. 3354 Value *Callee; 3355 if (ConvertValIDToValue(PFTy, CalleeID, Callee, &PFS)) return true; 3356 3357 // Set up the Attributes for the function. 3358 SmallVector<AttributeWithIndex, 8> Attrs; 3359 if (RetAttrs.hasAttributes()) 3360 Attrs.push_back( 3361 AttributeWithIndex::get(AttributeSet::ReturnIndex, 3362 Attributes::get(Callee->getContext(), 3363 RetAttrs))); 3364 3365 SmallVector<Value*, 8> Args; 3366 3367 // Loop through FunctionType's arguments and ensure they are specified 3368 // correctly. Also, gather any parameter attributes. 3369 FunctionType::param_iterator I = Ty->param_begin(); 3370 FunctionType::param_iterator E = Ty->param_end(); 3371 for (unsigned i = 0, e = ArgList.size(); i != e; ++i) { 3372 Type *ExpectedTy = 0; 3373 if (I != E) { 3374 ExpectedTy = *I++; 3375 } else if (!Ty->isVarArg()) { 3376 return Error(ArgList[i].Loc, "too many arguments specified"); 3377 } 3378 3379 if (ExpectedTy && ExpectedTy != ArgList[i].V->getType()) 3380 return Error(ArgList[i].Loc, "argument is not of expected type '" + 3381 getTypeString(ExpectedTy) + "'"); 3382 Args.push_back(ArgList[i].V); 3383 if (ArgList[i].Attrs.hasAttributes()) 3384 Attrs.push_back(AttributeWithIndex::get(i+1, ArgList[i].Attrs)); 3385 } 3386 3387 if (I != E) 3388 return Error(CallLoc, "not enough parameters specified for call"); 3389 3390 if (FnAttrs.hasAttributes()) 3391 Attrs.push_back( 3392 AttributeWithIndex::get(AttributeSet::FunctionIndex, 3393 Attributes::get(Callee->getContext(), 3394 FnAttrs))); 3395 3396 // Finish off the Attributes and check them 3397 AttributeSet PAL = AttributeSet::get(Context, Attrs); 3398 3399 InvokeInst *II = InvokeInst::Create(Callee, NormalBB, UnwindBB, Args); 3400 II->setCallingConv(CC); 3401 II->setAttributes(PAL); 3402 Inst = II; 3403 return false; 3404 } 3405 3406 /// ParseResume 3407 /// ::= 'resume' TypeAndValue 3408 bool LLParser::ParseResume(Instruction *&Inst, PerFunctionState &PFS) { 3409 Value *Exn; LocTy ExnLoc; 3410 if (ParseTypeAndValue(Exn, ExnLoc, PFS)) 3411 return true; 3412 3413 ResumeInst *RI = ResumeInst::Create(Exn); 3414 Inst = RI; 3415 return false; 3416 } 3417 3418 //===----------------------------------------------------------------------===// 3419 // Binary Operators. 3420 //===----------------------------------------------------------------------===// 3421 3422 /// ParseArithmetic 3423 /// ::= ArithmeticOps TypeAndValue ',' Value 3424 /// 3425 /// If OperandType is 0, then any FP or integer operand is allowed. If it is 1, 3426 /// then any integer operand is allowed, if it is 2, any fp operand is allowed. 3427 bool LLParser::ParseArithmetic(Instruction *&Inst, PerFunctionState &PFS, 3428 unsigned Opc, unsigned OperandType) { 3429 LocTy Loc; Value *LHS, *RHS; 3430 if (ParseTypeAndValue(LHS, Loc, PFS) || 3431 ParseToken(lltok::comma, "expected ',' in arithmetic operation") || 3432 ParseValue(LHS->getType(), RHS, PFS)) 3433 return true; 3434 3435 bool Valid; 3436 switch (OperandType) { 3437 default: llvm_unreachable("Unknown operand type!"); 3438 case 0: // int or FP. 3439 Valid = LHS->getType()->isIntOrIntVectorTy() || 3440 LHS->getType()->isFPOrFPVectorTy(); 3441 break; 3442 case 1: Valid = LHS->getType()->isIntOrIntVectorTy(); break; 3443 case 2: Valid = LHS->getType()->isFPOrFPVectorTy(); break; 3444 } 3445 3446 if (!Valid) 3447 return Error(Loc, "invalid operand type for instruction"); 3448 3449 Inst = BinaryOperator::Create((Instruction::BinaryOps)Opc, LHS, RHS); 3450 return false; 3451 } 3452 3453 /// ParseLogical 3454 /// ::= ArithmeticOps TypeAndValue ',' Value { 3455 bool LLParser::ParseLogical(Instruction *&Inst, PerFunctionState &PFS, 3456 unsigned Opc) { 3457 LocTy Loc; Value *LHS, *RHS; 3458 if (ParseTypeAndValue(LHS, Loc, PFS) || 3459 ParseToken(lltok::comma, "expected ',' in logical operation") || 3460 ParseValue(LHS->getType(), RHS, PFS)) 3461 return true; 3462 3463 if (!LHS->getType()->isIntOrIntVectorTy()) 3464 return Error(Loc,"instruction requires integer or integer vector operands"); 3465 3466 Inst = BinaryOperator::Create((Instruction::BinaryOps)Opc, LHS, RHS); 3467 return false; 3468 } 3469 3470 3471 /// ParseCompare 3472 /// ::= 'icmp' IPredicates TypeAndValue ',' Value 3473 /// ::= 'fcmp' FPredicates TypeAndValue ',' Value 3474 bool LLParser::ParseCompare(Instruction *&Inst, PerFunctionState &PFS, 3475 unsigned Opc) { 3476 // Parse the integer/fp comparison predicate. 3477 LocTy Loc; 3478 unsigned Pred; 3479 Value *LHS, *RHS; 3480 if (ParseCmpPredicate(Pred, Opc) || 3481 ParseTypeAndValue(LHS, Loc, PFS) || 3482 ParseToken(lltok::comma, "expected ',' after compare value") || 3483 ParseValue(LHS->getType(), RHS, PFS)) 3484 return true; 3485 3486 if (Opc == Instruction::FCmp) { 3487 if (!LHS->getType()->isFPOrFPVectorTy()) 3488 return Error(Loc, "fcmp requires floating point operands"); 3489 Inst = new FCmpInst(CmpInst::Predicate(Pred), LHS, RHS); 3490 } else { 3491 assert(Opc == Instruction::ICmp && "Unknown opcode for CmpInst!"); 3492 if (!LHS->getType()->isIntOrIntVectorTy() && 3493 !LHS->getType()->getScalarType()->isPointerTy()) 3494 return Error(Loc, "icmp requires integer operands"); 3495 Inst = new ICmpInst(CmpInst::Predicate(Pred), LHS, RHS); 3496 } 3497 return false; 3498 } 3499 3500 //===----------------------------------------------------------------------===// 3501 // Other Instructions. 3502 //===----------------------------------------------------------------------===// 3503 3504 3505 /// ParseCast 3506 /// ::= CastOpc TypeAndValue 'to' Type 3507 bool LLParser::ParseCast(Instruction *&Inst, PerFunctionState &PFS, 3508 unsigned Opc) { 3509 LocTy Loc; 3510 Value *Op; 3511 Type *DestTy = 0; 3512 if (ParseTypeAndValue(Op, Loc, PFS) || 3513 ParseToken(lltok::kw_to, "expected 'to' after cast value") || 3514 ParseType(DestTy)) 3515 return true; 3516 3517 if (!CastInst::castIsValid((Instruction::CastOps)Opc, Op, DestTy)) { 3518 CastInst::castIsValid((Instruction::CastOps)Opc, Op, DestTy); 3519 return Error(Loc, "invalid cast opcode for cast from '" + 3520 getTypeString(Op->getType()) + "' to '" + 3521 getTypeString(DestTy) + "'"); 3522 } 3523 Inst = CastInst::Create((Instruction::CastOps)Opc, Op, DestTy); 3524 return false; 3525 } 3526 3527 /// ParseSelect 3528 /// ::= 'select' TypeAndValue ',' TypeAndValue ',' TypeAndValue 3529 bool LLParser::ParseSelect(Instruction *&Inst, PerFunctionState &PFS) { 3530 LocTy Loc; 3531 Value *Op0, *Op1, *Op2; 3532 if (ParseTypeAndValue(Op0, Loc, PFS) || 3533 ParseToken(lltok::comma, "expected ',' after select condition") || 3534 ParseTypeAndValue(Op1, PFS) || 3535 ParseToken(lltok::comma, "expected ',' after select value") || 3536 ParseTypeAndValue(Op2, PFS)) 3537 return true; 3538 3539 if (const char *Reason = SelectInst::areInvalidOperands(Op0, Op1, Op2)) 3540 return Error(Loc, Reason); 3541 3542 Inst = SelectInst::Create(Op0, Op1, Op2); 3543 return false; 3544 } 3545 3546 /// ParseVA_Arg 3547 /// ::= 'va_arg' TypeAndValue ',' Type 3548 bool LLParser::ParseVA_Arg(Instruction *&Inst, PerFunctionState &PFS) { 3549 Value *Op; 3550 Type *EltTy = 0; 3551 LocTy TypeLoc; 3552 if (ParseTypeAndValue(Op, PFS) || 3553 ParseToken(lltok::comma, "expected ',' after vaarg operand") || 3554 ParseType(EltTy, TypeLoc)) 3555 return true; 3556 3557 if (!EltTy->isFirstClassType()) 3558 return Error(TypeLoc, "va_arg requires operand with first class type"); 3559 3560 Inst = new VAArgInst(Op, EltTy); 3561 return false; 3562 } 3563 3564 /// ParseExtractElement 3565 /// ::= 'extractelement' TypeAndValue ',' TypeAndValue 3566 bool LLParser::ParseExtractElement(Instruction *&Inst, PerFunctionState &PFS) { 3567 LocTy Loc; 3568 Value *Op0, *Op1; 3569 if (ParseTypeAndValue(Op0, Loc, PFS) || 3570 ParseToken(lltok::comma, "expected ',' after extract value") || 3571 ParseTypeAndValue(Op1, PFS)) 3572 return true; 3573 3574 if (!ExtractElementInst::isValidOperands(Op0, Op1)) 3575 return Error(Loc, "invalid extractelement operands"); 3576 3577 Inst = ExtractElementInst::Create(Op0, Op1); 3578 return false; 3579 } 3580 3581 /// ParseInsertElement 3582 /// ::= 'insertelement' TypeAndValue ',' TypeAndValue ',' TypeAndValue 3583 bool LLParser::ParseInsertElement(Instruction *&Inst, PerFunctionState &PFS) { 3584 LocTy Loc; 3585 Value *Op0, *Op1, *Op2; 3586 if (ParseTypeAndValue(Op0, Loc, PFS) || 3587 ParseToken(lltok::comma, "expected ',' after insertelement value") || 3588 ParseTypeAndValue(Op1, PFS) || 3589 ParseToken(lltok::comma, "expected ',' after insertelement value") || 3590 ParseTypeAndValue(Op2, PFS)) 3591 return true; 3592 3593 if (!InsertElementInst::isValidOperands(Op0, Op1, Op2)) 3594 return Error(Loc, "invalid insertelement operands"); 3595 3596 Inst = InsertElementInst::Create(Op0, Op1, Op2); 3597 return false; 3598 } 3599 3600 /// ParseShuffleVector 3601 /// ::= 'shufflevector' TypeAndValue ',' TypeAndValue ',' TypeAndValue 3602 bool LLParser::ParseShuffleVector(Instruction *&Inst, PerFunctionState &PFS) { 3603 LocTy Loc; 3604 Value *Op0, *Op1, *Op2; 3605 if (ParseTypeAndValue(Op0, Loc, PFS) || 3606 ParseToken(lltok::comma, "expected ',' after shuffle mask") || 3607 ParseTypeAndValue(Op1, PFS) || 3608 ParseToken(lltok::comma, "expected ',' after shuffle value") || 3609 ParseTypeAndValue(Op2, PFS)) 3610 return true; 3611 3612 if (!ShuffleVectorInst::isValidOperands(Op0, Op1, Op2)) 3613 return Error(Loc, "invalid shufflevector operands"); 3614 3615 Inst = new ShuffleVectorInst(Op0, Op1, Op2); 3616 return false; 3617 } 3618 3619 /// ParsePHI 3620 /// ::= 'phi' Type '[' Value ',' Value ']' (',' '[' Value ',' Value ']')* 3621 int LLParser::ParsePHI(Instruction *&Inst, PerFunctionState &PFS) { 3622 Type *Ty = 0; LocTy TypeLoc; 3623 Value *Op0, *Op1; 3624 3625 if (ParseType(Ty, TypeLoc) || 3626 ParseToken(lltok::lsquare, "expected '[' in phi value list") || 3627 ParseValue(Ty, Op0, PFS) || 3628 ParseToken(lltok::comma, "expected ',' after insertelement value") || 3629 ParseValue(Type::getLabelTy(Context), Op1, PFS) || 3630 ParseToken(lltok::rsquare, "expected ']' in phi value list")) 3631 return true; 3632 3633 bool AteExtraComma = false; 3634 SmallVector<std::pair<Value*, BasicBlock*>, 16> PHIVals; 3635 while (1) { 3636 PHIVals.push_back(std::make_pair(Op0, cast<BasicBlock>(Op1))); 3637 3638 if (!EatIfPresent(lltok::comma)) 3639 break; 3640 3641 if (Lex.getKind() == lltok::MetadataVar) { 3642 AteExtraComma = true; 3643 break; 3644 } 3645 3646 if (ParseToken(lltok::lsquare, "expected '[' in phi value list") || 3647 ParseValue(Ty, Op0, PFS) || 3648 ParseToken(lltok::comma, "expected ',' after insertelement value") || 3649 ParseValue(Type::getLabelTy(Context), Op1, PFS) || 3650 ParseToken(lltok::rsquare, "expected ']' in phi value list")) 3651 return true; 3652 } 3653 3654 if (!Ty->isFirstClassType()) 3655 return Error(TypeLoc, "phi node must have first class type"); 3656 3657 PHINode *PN = PHINode::Create(Ty, PHIVals.size()); 3658 for (unsigned i = 0, e = PHIVals.size(); i != e; ++i) 3659 PN->addIncoming(PHIVals[i].first, PHIVals[i].second); 3660 Inst = PN; 3661 return AteExtraComma ? InstExtraComma : InstNormal; 3662 } 3663 3664 /// ParseLandingPad 3665 /// ::= 'landingpad' Type 'personality' TypeAndValue 'cleanup'? Clause+ 3666 /// Clause 3667 /// ::= 'catch' TypeAndValue 3668 /// ::= 'filter' 3669 /// ::= 'filter' TypeAndValue ( ',' TypeAndValue )* 3670 bool LLParser::ParseLandingPad(Instruction *&Inst, PerFunctionState &PFS) { 3671 Type *Ty = 0; LocTy TyLoc; 3672 Value *PersFn; LocTy PersFnLoc; 3673 3674 if (ParseType(Ty, TyLoc) || 3675 ParseToken(lltok::kw_personality, "expected 'personality'") || 3676 ParseTypeAndValue(PersFn, PersFnLoc, PFS)) 3677 return true; 3678 3679 LandingPadInst *LP = LandingPadInst::Create(Ty, PersFn, 0); 3680 LP->setCleanup(EatIfPresent(lltok::kw_cleanup)); 3681 3682 while (Lex.getKind() == lltok::kw_catch || Lex.getKind() == lltok::kw_filter){ 3683 LandingPadInst::ClauseType CT; 3684 if (EatIfPresent(lltok::kw_catch)) 3685 CT = LandingPadInst::Catch; 3686 else if (EatIfPresent(lltok::kw_filter)) 3687 CT = LandingPadInst::Filter; 3688 else 3689 return TokError("expected 'catch' or 'filter' clause type"); 3690 3691 Value *V; LocTy VLoc; 3692 if (ParseTypeAndValue(V, VLoc, PFS)) { 3693 delete LP; 3694 return true; 3695 } 3696 3697 // A 'catch' type expects a non-array constant. A filter clause expects an 3698 // array constant. 3699 if (CT == LandingPadInst::Catch) { 3700 if (isa<ArrayType>(V->getType())) 3701 Error(VLoc, "'catch' clause has an invalid type"); 3702 } else { 3703 if (!isa<ArrayType>(V->getType())) 3704 Error(VLoc, "'filter' clause has an invalid type"); 3705 } 3706 3707 LP->addClause(V); 3708 } 3709 3710 Inst = LP; 3711 return false; 3712 } 3713 3714 /// ParseCall 3715 /// ::= 'tail'? 'call' OptionalCallingConv OptionalAttrs Type Value 3716 /// ParameterList OptionalAttrs 3717 bool LLParser::ParseCall(Instruction *&Inst, PerFunctionState &PFS, 3718 bool isTail) { 3719 AttrBuilder RetAttrs, FnAttrs; 3720 CallingConv::ID CC; 3721 Type *RetType = 0; 3722 LocTy RetTypeLoc; 3723 ValID CalleeID; 3724 SmallVector<ParamInfo, 16> ArgList; 3725 LocTy CallLoc = Lex.getLoc(); 3726 3727 if ((isTail && ParseToken(lltok::kw_call, "expected 'tail call'")) || 3728 ParseOptionalCallingConv(CC) || 3729 ParseOptionalReturnAttrs(RetAttrs) || 3730 ParseType(RetType, RetTypeLoc, true /*void allowed*/) || 3731 ParseValID(CalleeID) || 3732 ParseParameterList(ArgList, PFS) || 3733 ParseOptionalFuncAttrs(FnAttrs)) 3734 return true; 3735 3736 // If RetType is a non-function pointer type, then this is the short syntax 3737 // for the call, which means that RetType is just the return type. Infer the 3738 // rest of the function argument types from the arguments that are present. 3739 PointerType *PFTy = 0; 3740 FunctionType *Ty = 0; 3741 if (!(PFTy = dyn_cast<PointerType>(RetType)) || 3742 !(Ty = dyn_cast<FunctionType>(PFTy->getElementType()))) { 3743 // Pull out the types of all of the arguments... 3744 std::vector<Type*> ParamTypes; 3745 for (unsigned i = 0, e = ArgList.size(); i != e; ++i) 3746 ParamTypes.push_back(ArgList[i].V->getType()); 3747 3748 if (!FunctionType::isValidReturnType(RetType)) 3749 return Error(RetTypeLoc, "Invalid result type for LLVM function"); 3750 3751 Ty = FunctionType::get(RetType, ParamTypes, false); 3752 PFTy = PointerType::getUnqual(Ty); 3753 } 3754 3755 // Look up the callee. 3756 Value *Callee; 3757 if (ConvertValIDToValue(PFTy, CalleeID, Callee, &PFS)) return true; 3758 3759 // Set up the Attributes for the function. 3760 SmallVector<AttributeWithIndex, 8> Attrs; 3761 if (RetAttrs.hasAttributes()) 3762 Attrs.push_back( 3763 AttributeWithIndex::get(AttributeSet::ReturnIndex, 3764 Attributes::get(Callee->getContext(), 3765 RetAttrs))); 3766 3767 SmallVector<Value*, 8> Args; 3768 3769 // Loop through FunctionType's arguments and ensure they are specified 3770 // correctly. Also, gather any parameter attributes. 3771 FunctionType::param_iterator I = Ty->param_begin(); 3772 FunctionType::param_iterator E = Ty->param_end(); 3773 for (unsigned i = 0, e = ArgList.size(); i != e; ++i) { 3774 Type *ExpectedTy = 0; 3775 if (I != E) { 3776 ExpectedTy = *I++; 3777 } else if (!Ty->isVarArg()) { 3778 return Error(ArgList[i].Loc, "too many arguments specified"); 3779 } 3780 3781 if (ExpectedTy && ExpectedTy != ArgList[i].V->getType()) 3782 return Error(ArgList[i].Loc, "argument is not of expected type '" + 3783 getTypeString(ExpectedTy) + "'"); 3784 Args.push_back(ArgList[i].V); 3785 if (ArgList[i].Attrs.hasAttributes()) 3786 Attrs.push_back(AttributeWithIndex::get(i+1, ArgList[i].Attrs)); 3787 } 3788 3789 if (I != E) 3790 return Error(CallLoc, "not enough parameters specified for call"); 3791 3792 if (FnAttrs.hasAttributes()) 3793 Attrs.push_back( 3794 AttributeWithIndex::get(AttributeSet::FunctionIndex, 3795 Attributes::get(Callee->getContext(), 3796 FnAttrs))); 3797 3798 // Finish off the Attributes and check them 3799 AttributeSet PAL = AttributeSet::get(Context, Attrs); 3800 3801 CallInst *CI = CallInst::Create(Callee, Args); 3802 CI->setTailCall(isTail); 3803 CI->setCallingConv(CC); 3804 CI->setAttributes(PAL); 3805 Inst = CI; 3806 return false; 3807 } 3808 3809 //===----------------------------------------------------------------------===// 3810 // Memory Instructions. 3811 //===----------------------------------------------------------------------===// 3812 3813 /// ParseAlloc 3814 /// ::= 'alloca' Type (',' TypeAndValue)? (',' OptionalInfo)? 3815 int LLParser::ParseAlloc(Instruction *&Inst, PerFunctionState &PFS) { 3816 Value *Size = 0; 3817 LocTy SizeLoc; 3818 unsigned Alignment = 0; 3819 Type *Ty = 0; 3820 if (ParseType(Ty)) return true; 3821 3822 bool AteExtraComma = false; 3823 if (EatIfPresent(lltok::comma)) { 3824 if (Lex.getKind() == lltok::kw_align) { 3825 if (ParseOptionalAlignment(Alignment)) return true; 3826 } else if (Lex.getKind() == lltok::MetadataVar) { 3827 AteExtraComma = true; 3828 } else { 3829 if (ParseTypeAndValue(Size, SizeLoc, PFS) || 3830 ParseOptionalCommaAlign(Alignment, AteExtraComma)) 3831 return true; 3832 } 3833 } 3834 3835 if (Size && !Size->getType()->isIntegerTy()) 3836 return Error(SizeLoc, "element count must have integer type"); 3837 3838 Inst = new AllocaInst(Ty, Size, Alignment); 3839 return AteExtraComma ? InstExtraComma : InstNormal; 3840 } 3841 3842 /// ParseLoad 3843 /// ::= 'load' 'volatile'? TypeAndValue (',' 'align' i32)? 3844 /// ::= 'load' 'atomic' 'volatile'? TypeAndValue 3845 /// 'singlethread'? AtomicOrdering (',' 'align' i32)? 3846 int LLParser::ParseLoad(Instruction *&Inst, PerFunctionState &PFS) { 3847 Value *Val; LocTy Loc; 3848 unsigned Alignment = 0; 3849 bool AteExtraComma = false; 3850 bool isAtomic = false; 3851 AtomicOrdering Ordering = NotAtomic; 3852 SynchronizationScope Scope = CrossThread; 3853 3854 if (Lex.getKind() == lltok::kw_atomic) { 3855 isAtomic = true; 3856 Lex.Lex(); 3857 } 3858 3859 bool isVolatile = false; 3860 if (Lex.getKind() == lltok::kw_volatile) { 3861 isVolatile = true; 3862 Lex.Lex(); 3863 } 3864 3865 if (ParseTypeAndValue(Val, Loc, PFS) || 3866 ParseScopeAndOrdering(isAtomic, Scope, Ordering) || 3867 ParseOptionalCommaAlign(Alignment, AteExtraComma)) 3868 return true; 3869 3870 if (!Val->getType()->isPointerTy() || 3871 !cast<PointerType>(Val->getType())->getElementType()->isFirstClassType()) 3872 return Error(Loc, "load operand must be a pointer to a first class type"); 3873 if (isAtomic && !Alignment) 3874 return Error(Loc, "atomic load must have explicit non-zero alignment"); 3875 if (Ordering == Release || Ordering == AcquireRelease) 3876 return Error(Loc, "atomic load cannot use Release ordering"); 3877 3878 Inst = new LoadInst(Val, "", isVolatile, Alignment, Ordering, Scope); 3879 return AteExtraComma ? InstExtraComma : InstNormal; 3880 } 3881 3882 /// ParseStore 3883 3884 /// ::= 'store' 'volatile'? TypeAndValue ',' TypeAndValue (',' 'align' i32)? 3885 /// ::= 'store' 'atomic' 'volatile'? TypeAndValue ',' TypeAndValue 3886 /// 'singlethread'? AtomicOrdering (',' 'align' i32)? 3887 int LLParser::ParseStore(Instruction *&Inst, PerFunctionState &PFS) { 3888 Value *Val, *Ptr; LocTy Loc, PtrLoc; 3889 unsigned Alignment = 0; 3890 bool AteExtraComma = false; 3891 bool isAtomic = false; 3892 AtomicOrdering Ordering = NotAtomic; 3893 SynchronizationScope Scope = CrossThread; 3894 3895 if (Lex.getKind() == lltok::kw_atomic) { 3896 isAtomic = true; 3897 Lex.Lex(); 3898 } 3899 3900 bool isVolatile = false; 3901 if (Lex.getKind() == lltok::kw_volatile) { 3902 isVolatile = true; 3903 Lex.Lex(); 3904 } 3905 3906 if (ParseTypeAndValue(Val, Loc, PFS) || 3907 ParseToken(lltok::comma, "expected ',' after store operand") || 3908 ParseTypeAndValue(Ptr, PtrLoc, PFS) || 3909 ParseScopeAndOrdering(isAtomic, Scope, Ordering) || 3910 ParseOptionalCommaAlign(Alignment, AteExtraComma)) 3911 return true; 3912 3913 if (!Ptr->getType()->isPointerTy()) 3914 return Error(PtrLoc, "store operand must be a pointer"); 3915 if (!Val->getType()->isFirstClassType()) 3916 return Error(Loc, "store operand must be a first class value"); 3917 if (cast<PointerType>(Ptr->getType())->getElementType() != Val->getType()) 3918 return Error(Loc, "stored value and pointer type do not match"); 3919 if (isAtomic && !Alignment) 3920 return Error(Loc, "atomic store must have explicit non-zero alignment"); 3921 if (Ordering == Acquire || Ordering == AcquireRelease) 3922 return Error(Loc, "atomic store cannot use Acquire ordering"); 3923 3924 Inst = new StoreInst(Val, Ptr, isVolatile, Alignment, Ordering, Scope); 3925 return AteExtraComma ? InstExtraComma : InstNormal; 3926 } 3927 3928 /// ParseCmpXchg 3929 /// ::= 'cmpxchg' 'volatile'? TypeAndValue ',' TypeAndValue ',' TypeAndValue 3930 /// 'singlethread'? AtomicOrdering 3931 int LLParser::ParseCmpXchg(Instruction *&Inst, PerFunctionState &PFS) { 3932 Value *Ptr, *Cmp, *New; LocTy PtrLoc, CmpLoc, NewLoc; 3933 bool AteExtraComma = false; 3934 AtomicOrdering Ordering = NotAtomic; 3935 SynchronizationScope Scope = CrossThread; 3936 bool isVolatile = false; 3937 3938 if (EatIfPresent(lltok::kw_volatile)) 3939 isVolatile = true; 3940 3941 if (ParseTypeAndValue(Ptr, PtrLoc, PFS) || 3942 ParseToken(lltok::comma, "expected ',' after cmpxchg address") || 3943 ParseTypeAndValue(Cmp, CmpLoc, PFS) || 3944 ParseToken(lltok::comma, "expected ',' after cmpxchg cmp operand") || 3945 ParseTypeAndValue(New, NewLoc, PFS) || 3946 ParseScopeAndOrdering(true /*Always atomic*/, Scope, Ordering)) 3947 return true; 3948 3949 if (Ordering == Unordered) 3950 return TokError("cmpxchg cannot be unordered"); 3951 if (!Ptr->getType()->isPointerTy()) 3952 return Error(PtrLoc, "cmpxchg operand must be a pointer"); 3953 if (cast<PointerType>(Ptr->getType())->getElementType() != Cmp->getType()) 3954 return Error(CmpLoc, "compare value and pointer type do not match"); 3955 if (cast<PointerType>(Ptr->getType())->getElementType() != New->getType()) 3956 return Error(NewLoc, "new value and pointer type do not match"); 3957 if (!New->getType()->isIntegerTy()) 3958 return Error(NewLoc, "cmpxchg operand must be an integer"); 3959 unsigned Size = New->getType()->getPrimitiveSizeInBits(); 3960 if (Size < 8 || (Size & (Size - 1))) 3961 return Error(NewLoc, "cmpxchg operand must be power-of-two byte-sized" 3962 " integer"); 3963 3964 AtomicCmpXchgInst *CXI = 3965 new AtomicCmpXchgInst(Ptr, Cmp, New, Ordering, Scope); 3966 CXI->setVolatile(isVolatile); 3967 Inst = CXI; 3968 return AteExtraComma ? InstExtraComma : InstNormal; 3969 } 3970 3971 /// ParseAtomicRMW 3972 /// ::= 'atomicrmw' 'volatile'? BinOp TypeAndValue ',' TypeAndValue 3973 /// 'singlethread'? AtomicOrdering 3974 int LLParser::ParseAtomicRMW(Instruction *&Inst, PerFunctionState &PFS) { 3975 Value *Ptr, *Val; LocTy PtrLoc, ValLoc; 3976 bool AteExtraComma = false; 3977 AtomicOrdering Ordering = NotAtomic; 3978 SynchronizationScope Scope = CrossThread; 3979 bool isVolatile = false; 3980 AtomicRMWInst::BinOp Operation; 3981 3982 if (EatIfPresent(lltok::kw_volatile)) 3983 isVolatile = true; 3984 3985 switch (Lex.getKind()) { 3986 default: return TokError("expected binary operation in atomicrmw"); 3987 case lltok::kw_xchg: Operation = AtomicRMWInst::Xchg; break; 3988 case lltok::kw_add: Operation = AtomicRMWInst::Add; break; 3989 case lltok::kw_sub: Operation = AtomicRMWInst::Sub; break; 3990 case lltok::kw_and: Operation = AtomicRMWInst::And; break; 3991 case lltok::kw_nand: Operation = AtomicRMWInst::Nand; break; 3992 case lltok::kw_or: Operation = AtomicRMWInst::Or; break; 3993 case lltok::kw_xor: Operation = AtomicRMWInst::Xor; break; 3994 case lltok::kw_max: Operation = AtomicRMWInst::Max; break; 3995 case lltok::kw_min: Operation = AtomicRMWInst::Min; break; 3996 case lltok::kw_umax: Operation = AtomicRMWInst::UMax; break; 3997 case lltok::kw_umin: Operation = AtomicRMWInst::UMin; break; 3998 } 3999 Lex.Lex(); // Eat the operation. 4000 4001 if (ParseTypeAndValue(Ptr, PtrLoc, PFS) || 4002 ParseToken(lltok::comma, "expected ',' after atomicrmw address") || 4003 ParseTypeAndValue(Val, ValLoc, PFS) || 4004 ParseScopeAndOrdering(true /*Always atomic*/, Scope, Ordering)) 4005 return true; 4006 4007 if (Ordering == Unordered) 4008 return TokError("atomicrmw cannot be unordered"); 4009 if (!Ptr->getType()->isPointerTy()) 4010 return Error(PtrLoc, "atomicrmw operand must be a pointer"); 4011 if (cast<PointerType>(Ptr->getType())->getElementType() != Val->getType()) 4012 return Error(ValLoc, "atomicrmw value and pointer type do not match"); 4013 if (!Val->getType()->isIntegerTy()) 4014 return Error(ValLoc, "atomicrmw operand must be an integer"); 4015 unsigned Size = Val->getType()->getPrimitiveSizeInBits(); 4016 if (Size < 8 || (Size & (Size - 1))) 4017 return Error(ValLoc, "atomicrmw operand must be power-of-two byte-sized" 4018 " integer"); 4019 4020 AtomicRMWInst *RMWI = 4021 new AtomicRMWInst(Operation, Ptr, Val, Ordering, Scope); 4022 RMWI->setVolatile(isVolatile); 4023 Inst = RMWI; 4024 return AteExtraComma ? InstExtraComma : InstNormal; 4025 } 4026 4027 /// ParseFence 4028 /// ::= 'fence' 'singlethread'? AtomicOrdering 4029 int LLParser::ParseFence(Instruction *&Inst, PerFunctionState &PFS) { 4030 AtomicOrdering Ordering = NotAtomic; 4031 SynchronizationScope Scope = CrossThread; 4032 if (ParseScopeAndOrdering(true /*Always atomic*/, Scope, Ordering)) 4033 return true; 4034 4035 if (Ordering == Unordered) 4036 return TokError("fence cannot be unordered"); 4037 if (Ordering == Monotonic) 4038 return TokError("fence cannot be monotonic"); 4039 4040 Inst = new FenceInst(Context, Ordering, Scope); 4041 return InstNormal; 4042 } 4043 4044 /// ParseGetElementPtr 4045 /// ::= 'getelementptr' 'inbounds'? TypeAndValue (',' TypeAndValue)* 4046 int LLParser::ParseGetElementPtr(Instruction *&Inst, PerFunctionState &PFS) { 4047 Value *Ptr = 0; 4048 Value *Val = 0; 4049 LocTy Loc, EltLoc; 4050 4051 bool InBounds = EatIfPresent(lltok::kw_inbounds); 4052 4053 if (ParseTypeAndValue(Ptr, Loc, PFS)) return true; 4054 4055 if (!Ptr->getType()->getScalarType()->isPointerTy()) 4056 return Error(Loc, "base of getelementptr must be a pointer"); 4057 4058 SmallVector<Value*, 16> Indices; 4059 bool AteExtraComma = false; 4060 while (EatIfPresent(lltok::comma)) { 4061 if (Lex.getKind() == lltok::MetadataVar) { 4062 AteExtraComma = true; 4063 break; 4064 } 4065 if (ParseTypeAndValue(Val, EltLoc, PFS)) return true; 4066 if (!Val->getType()->getScalarType()->isIntegerTy()) 4067 return Error(EltLoc, "getelementptr index must be an integer"); 4068 if (Val->getType()->isVectorTy() != Ptr->getType()->isVectorTy()) 4069 return Error(EltLoc, "getelementptr index type missmatch"); 4070 if (Val->getType()->isVectorTy()) { 4071 unsigned ValNumEl = cast<VectorType>(Val->getType())->getNumElements(); 4072 unsigned PtrNumEl = cast<VectorType>(Ptr->getType())->getNumElements(); 4073 if (ValNumEl != PtrNumEl) 4074 return Error(EltLoc, 4075 "getelementptr vector index has a wrong number of elements"); 4076 } 4077 Indices.push_back(Val); 4078 } 4079 4080 if (!GetElementPtrInst::getIndexedType(Ptr->getType(), Indices)) 4081 return Error(Loc, "invalid getelementptr indices"); 4082 Inst = GetElementPtrInst::Create(Ptr, Indices); 4083 if (InBounds) 4084 cast<GetElementPtrInst>(Inst)->setIsInBounds(true); 4085 return AteExtraComma ? InstExtraComma : InstNormal; 4086 } 4087 4088 /// ParseExtractValue 4089 /// ::= 'extractvalue' TypeAndValue (',' uint32)+ 4090 int LLParser::ParseExtractValue(Instruction *&Inst, PerFunctionState &PFS) { 4091 Value *Val; LocTy Loc; 4092 SmallVector<unsigned, 4> Indices; 4093 bool AteExtraComma; 4094 if (ParseTypeAndValue(Val, Loc, PFS) || 4095 ParseIndexList(Indices, AteExtraComma)) 4096 return true; 4097 4098 if (!Val->getType()->isAggregateType()) 4099 return Error(Loc, "extractvalue operand must be aggregate type"); 4100 4101 if (!ExtractValueInst::getIndexedType(Val->getType(), Indices)) 4102 return Error(Loc, "invalid indices for extractvalue"); 4103 Inst = ExtractValueInst::Create(Val, Indices); 4104 return AteExtraComma ? InstExtraComma : InstNormal; 4105 } 4106 4107 /// ParseInsertValue 4108 /// ::= 'insertvalue' TypeAndValue ',' TypeAndValue (',' uint32)+ 4109 int LLParser::ParseInsertValue(Instruction *&Inst, PerFunctionState &PFS) { 4110 Value *Val0, *Val1; LocTy Loc0, Loc1; 4111 SmallVector<unsigned, 4> Indices; 4112 bool AteExtraComma; 4113 if (ParseTypeAndValue(Val0, Loc0, PFS) || 4114 ParseToken(lltok::comma, "expected comma after insertvalue operand") || 4115 ParseTypeAndValue(Val1, Loc1, PFS) || 4116 ParseIndexList(Indices, AteExtraComma)) 4117 return true; 4118 4119 if (!Val0->getType()->isAggregateType()) 4120 return Error(Loc0, "insertvalue operand must be aggregate type"); 4121 4122 if (!ExtractValueInst::getIndexedType(Val0->getType(), Indices)) 4123 return Error(Loc0, "invalid indices for insertvalue"); 4124 Inst = InsertValueInst::Create(Val0, Val1, Indices); 4125 return AteExtraComma ? InstExtraComma : InstNormal; 4126 } 4127 4128 //===----------------------------------------------------------------------===// 4129 // Embedded metadata. 4130 //===----------------------------------------------------------------------===// 4131 4132 /// ParseMDNodeVector 4133 /// ::= Element (',' Element)* 4134 /// Element 4135 /// ::= 'null' | TypeAndValue 4136 bool LLParser::ParseMDNodeVector(SmallVectorImpl<Value*> &Elts, 4137 PerFunctionState *PFS) { 4138 // Check for an empty list. 4139 if (Lex.getKind() == lltok::rbrace) 4140 return false; 4141 4142 do { 4143 // Null is a special case since it is typeless. 4144 if (EatIfPresent(lltok::kw_null)) { 4145 Elts.push_back(0); 4146 continue; 4147 } 4148 4149 Value *V = 0; 4150 if (ParseTypeAndValue(V, PFS)) return true; 4151 Elts.push_back(V); 4152 } while (EatIfPresent(lltok::comma)); 4153 4154 return false; 4155 } 4156