1 //===- TGParser.cpp - Parser for TableGen Files ---------------------------===// 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 // Implement the Parser for TableGen. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "TGParser.h" 15 #include "llvm/ADT/SmallVector.h" 16 #include "llvm/ADT/StringExtras.h" 17 #include "llvm/Support/CommandLine.h" 18 #include "llvm/TableGen/Record.h" 19 #include <algorithm> 20 #include <sstream> 21 using namespace llvm; 22 23 //===----------------------------------------------------------------------===// 24 // Support Code for the Semantic Actions. 25 //===----------------------------------------------------------------------===// 26 27 namespace llvm { 28 struct SubClassReference { 29 SMRange RefRange; 30 Record *Rec; 31 std::vector<Init*> TemplateArgs; 32 SubClassReference() : Rec(0) {} 33 34 bool isInvalid() const { return Rec == 0; } 35 }; 36 37 struct SubMultiClassReference { 38 SMRange RefRange; 39 MultiClass *MC; 40 std::vector<Init*> TemplateArgs; 41 SubMultiClassReference() : MC(0) {} 42 43 bool isInvalid() const { return MC == 0; } 44 void dump() const; 45 }; 46 47 void SubMultiClassReference::dump() const { 48 errs() << "Multiclass:\n"; 49 50 MC->dump(); 51 52 errs() << "Template args:\n"; 53 for (std::vector<Init *>::const_iterator i = TemplateArgs.begin(), 54 iend = TemplateArgs.end(); 55 i != iend; 56 ++i) { 57 (*i)->dump(); 58 } 59 } 60 61 } // end namespace llvm 62 63 bool TGParser::AddValue(Record *CurRec, SMLoc Loc, const RecordVal &RV) { 64 if (CurRec == 0) 65 CurRec = &CurMultiClass->Rec; 66 67 if (RecordVal *ERV = CurRec->getValue(RV.getNameInit())) { 68 // The value already exists in the class, treat this as a set. 69 if (ERV->setValue(RV.getValue())) 70 return Error(Loc, "New definition of '" + RV.getName() + "' of type '" + 71 RV.getType()->getAsString() + "' is incompatible with " + 72 "previous definition of type '" + 73 ERV->getType()->getAsString() + "'"); 74 } else { 75 CurRec->addValue(RV); 76 } 77 return false; 78 } 79 80 /// SetValue - 81 /// Return true on error, false on success. 82 bool TGParser::SetValue(Record *CurRec, SMLoc Loc, Init *ValName, 83 const std::vector<unsigned> &BitList, Init *V) { 84 if (!V) return false; 85 86 if (CurRec == 0) CurRec = &CurMultiClass->Rec; 87 88 RecordVal *RV = CurRec->getValue(ValName); 89 if (RV == 0) 90 return Error(Loc, "Value '" + ValName->getAsUnquotedString() 91 + "' unknown!"); 92 93 // Do not allow assignments like 'X = X'. This will just cause infinite loops 94 // in the resolution machinery. 95 if (BitList.empty()) 96 if (VarInit *VI = dyn_cast<VarInit>(V)) 97 if (VI->getNameInit() == ValName) 98 return false; 99 100 // If we are assigning to a subset of the bits in the value... then we must be 101 // assigning to a field of BitsRecTy, which must have a BitsInit 102 // initializer. 103 // 104 if (!BitList.empty()) { 105 BitsInit *CurVal = dyn_cast<BitsInit>(RV->getValue()); 106 if (CurVal == 0) 107 return Error(Loc, "Value '" + ValName->getAsUnquotedString() 108 + "' is not a bits type"); 109 110 // Convert the incoming value to a bits type of the appropriate size... 111 Init *BI = V->convertInitializerTo(BitsRecTy::get(BitList.size())); 112 if (BI == 0) { 113 return Error(Loc, "Initializer is not compatible with bit range"); 114 } 115 116 // We should have a BitsInit type now. 117 BitsInit *BInit = dyn_cast<BitsInit>(BI); 118 assert(BInit != 0); 119 120 SmallVector<Init *, 16> NewBits(CurVal->getNumBits()); 121 122 // Loop over bits, assigning values as appropriate. 123 for (unsigned i = 0, e = BitList.size(); i != e; ++i) { 124 unsigned Bit = BitList[i]; 125 if (NewBits[Bit]) 126 return Error(Loc, "Cannot set bit #" + utostr(Bit) + " of value '" + 127 ValName->getAsUnquotedString() + "' more than once"); 128 NewBits[Bit] = BInit->getBit(i); 129 } 130 131 for (unsigned i = 0, e = CurVal->getNumBits(); i != e; ++i) 132 if (NewBits[i] == 0) 133 NewBits[i] = CurVal->getBit(i); 134 135 V = BitsInit::get(NewBits); 136 } 137 138 if (RV->setValue(V)) 139 return Error(Loc, "Value '" + ValName->getAsUnquotedString() + "' of type '" 140 + RV->getType()->getAsString() + 141 "' is incompatible with initializer '" + V->getAsString() 142 + "'"); 143 return false; 144 } 145 146 /// AddSubClass - Add SubClass as a subclass to CurRec, resolving its template 147 /// args as SubClass's template arguments. 148 bool TGParser::AddSubClass(Record *CurRec, SubClassReference &SubClass) { 149 Record *SC = SubClass.Rec; 150 // Add all of the values in the subclass into the current class. 151 const std::vector<RecordVal> &Vals = SC->getValues(); 152 for (unsigned i = 0, e = Vals.size(); i != e; ++i) 153 if (AddValue(CurRec, SubClass.RefRange.Start, Vals[i])) 154 return true; 155 156 const std::vector<Init *> &TArgs = SC->getTemplateArgs(); 157 158 // Ensure that an appropriate number of template arguments are specified. 159 if (TArgs.size() < SubClass.TemplateArgs.size()) 160 return Error(SubClass.RefRange.Start, 161 "More template args specified than expected"); 162 163 // Loop over all of the template arguments, setting them to the specified 164 // value or leaving them as the default if necessary. 165 for (unsigned i = 0, e = TArgs.size(); i != e; ++i) { 166 if (i < SubClass.TemplateArgs.size()) { 167 // If a value is specified for this template arg, set it now. 168 if (SetValue(CurRec, SubClass.RefRange.Start, TArgs[i], 169 std::vector<unsigned>(), SubClass.TemplateArgs[i])) 170 return true; 171 172 // Resolve it next. 173 CurRec->resolveReferencesTo(CurRec->getValue(TArgs[i])); 174 175 // Now remove it. 176 CurRec->removeValue(TArgs[i]); 177 178 } else if (!CurRec->getValue(TArgs[i])->getValue()->isComplete()) { 179 return Error(SubClass.RefRange.Start, 180 "Value not specified for template argument #" 181 + utostr(i) + " (" + TArgs[i]->getAsUnquotedString() 182 + ") of subclass '" + SC->getNameInitAsString() + "'!"); 183 } 184 } 185 186 // Since everything went well, we can now set the "superclass" list for the 187 // current record. 188 const std::vector<Record*> &SCs = SC->getSuperClasses(); 189 ArrayRef<SMRange> SCRanges = SC->getSuperClassRanges(); 190 for (unsigned i = 0, e = SCs.size(); i != e; ++i) { 191 if (CurRec->isSubClassOf(SCs[i])) 192 return Error(SubClass.RefRange.Start, 193 "Already subclass of '" + SCs[i]->getName() + "'!\n"); 194 CurRec->addSuperClass(SCs[i], SCRanges[i]); 195 } 196 197 if (CurRec->isSubClassOf(SC)) 198 return Error(SubClass.RefRange.Start, 199 "Already subclass of '" + SC->getName() + "'!\n"); 200 CurRec->addSuperClass(SC, SubClass.RefRange); 201 return false; 202 } 203 204 /// AddSubMultiClass - Add SubMultiClass as a subclass to 205 /// CurMC, resolving its template args as SubMultiClass's 206 /// template arguments. 207 bool TGParser::AddSubMultiClass(MultiClass *CurMC, 208 SubMultiClassReference &SubMultiClass) { 209 MultiClass *SMC = SubMultiClass.MC; 210 Record *CurRec = &CurMC->Rec; 211 212 const std::vector<RecordVal> &MCVals = CurRec->getValues(); 213 214 // Add all of the values in the subclass into the current class. 215 const std::vector<RecordVal> &SMCVals = SMC->Rec.getValues(); 216 for (unsigned i = 0, e = SMCVals.size(); i != e; ++i) 217 if (AddValue(CurRec, SubMultiClass.RefRange.Start, SMCVals[i])) 218 return true; 219 220 int newDefStart = CurMC->DefPrototypes.size(); 221 222 // Add all of the defs in the subclass into the current multiclass. 223 for (MultiClass::RecordVector::const_iterator i = SMC->DefPrototypes.begin(), 224 iend = SMC->DefPrototypes.end(); 225 i != iend; 226 ++i) { 227 // Clone the def and add it to the current multiclass 228 Record *NewDef = new Record(**i); 229 230 // Add all of the values in the superclass into the current def. 231 for (unsigned i = 0, e = MCVals.size(); i != e; ++i) 232 if (AddValue(NewDef, SubMultiClass.RefRange.Start, MCVals[i])) 233 return true; 234 235 CurMC->DefPrototypes.push_back(NewDef); 236 } 237 238 const std::vector<Init *> &SMCTArgs = SMC->Rec.getTemplateArgs(); 239 240 // Ensure that an appropriate number of template arguments are 241 // specified. 242 if (SMCTArgs.size() < SubMultiClass.TemplateArgs.size()) 243 return Error(SubMultiClass.RefRange.Start, 244 "More template args specified than expected"); 245 246 // Loop over all of the template arguments, setting them to the specified 247 // value or leaving them as the default if necessary. 248 for (unsigned i = 0, e = SMCTArgs.size(); i != e; ++i) { 249 if (i < SubMultiClass.TemplateArgs.size()) { 250 // If a value is specified for this template arg, set it in the 251 // superclass now. 252 if (SetValue(CurRec, SubMultiClass.RefRange.Start, SMCTArgs[i], 253 std::vector<unsigned>(), 254 SubMultiClass.TemplateArgs[i])) 255 return true; 256 257 // Resolve it next. 258 CurRec->resolveReferencesTo(CurRec->getValue(SMCTArgs[i])); 259 260 // Now remove it. 261 CurRec->removeValue(SMCTArgs[i]); 262 263 // If a value is specified for this template arg, set it in the 264 // new defs now. 265 for (MultiClass::RecordVector::iterator j = 266 CurMC->DefPrototypes.begin() + newDefStart, 267 jend = CurMC->DefPrototypes.end(); 268 j != jend; 269 ++j) { 270 Record *Def = *j; 271 272 if (SetValue(Def, SubMultiClass.RefRange.Start, SMCTArgs[i], 273 std::vector<unsigned>(), 274 SubMultiClass.TemplateArgs[i])) 275 return true; 276 277 // Resolve it next. 278 Def->resolveReferencesTo(Def->getValue(SMCTArgs[i])); 279 280 // Now remove it 281 Def->removeValue(SMCTArgs[i]); 282 } 283 } else if (!CurRec->getValue(SMCTArgs[i])->getValue()->isComplete()) { 284 return Error(SubMultiClass.RefRange.Start, 285 "Value not specified for template argument #" 286 + utostr(i) + " (" + SMCTArgs[i]->getAsUnquotedString() 287 + ") of subclass '" + SMC->Rec.getNameInitAsString() + "'!"); 288 } 289 } 290 291 return false; 292 } 293 294 /// ProcessForeachDefs - Given a record, apply all of the variable 295 /// values in all surrounding foreach loops, creating new records for 296 /// each combination of values. 297 bool TGParser::ProcessForeachDefs(Record *CurRec, SMLoc Loc) { 298 if (Loops.empty()) 299 return false; 300 301 // We want to instantiate a new copy of CurRec for each combination 302 // of nested loop iterator values. We don't want top instantiate 303 // any copies until we have values for each loop iterator. 304 IterSet IterVals; 305 return ProcessForeachDefs(CurRec, Loc, IterVals); 306 } 307 308 /// ProcessForeachDefs - Given a record, a loop and a loop iterator, 309 /// apply each of the variable values in this loop and then process 310 /// subloops. 311 bool TGParser::ProcessForeachDefs(Record *CurRec, SMLoc Loc, IterSet &IterVals){ 312 // Recursively build a tuple of iterator values. 313 if (IterVals.size() != Loops.size()) { 314 assert(IterVals.size() < Loops.size()); 315 ForeachLoop &CurLoop = Loops[IterVals.size()]; 316 ListInit *List = dyn_cast<ListInit>(CurLoop.ListValue); 317 if (List == 0) { 318 Error(Loc, "Loop list is not a list"); 319 return true; 320 } 321 322 // Process each value. 323 for (int64_t i = 0; i < List->getSize(); ++i) { 324 Init *ItemVal = List->resolveListElementReference(*CurRec, 0, i); 325 IterVals.push_back(IterRecord(CurLoop.IterVar, ItemVal)); 326 if (ProcessForeachDefs(CurRec, Loc, IterVals)) 327 return true; 328 IterVals.pop_back(); 329 } 330 return false; 331 } 332 333 // This is the bottom of the recursion. We have all of the iterator values 334 // for this point in the iteration space. Instantiate a new record to 335 // reflect this combination of values. 336 Record *IterRec = new Record(*CurRec); 337 338 // Set the iterator values now. 339 for (unsigned i = 0, e = IterVals.size(); i != e; ++i) { 340 VarInit *IterVar = IterVals[i].IterVar; 341 TypedInit *IVal = dyn_cast<TypedInit>(IterVals[i].IterValue); 342 if (IVal == 0) { 343 Error(Loc, "foreach iterator value is untyped"); 344 return true; 345 } 346 347 IterRec->addValue(RecordVal(IterVar->getName(), IVal->getType(), false)); 348 349 if (SetValue(IterRec, Loc, IterVar->getName(), 350 std::vector<unsigned>(), IVal)) { 351 Error(Loc, "when instantiating this def"); 352 return true; 353 } 354 355 // Resolve it next. 356 IterRec->resolveReferencesTo(IterRec->getValue(IterVar->getName())); 357 358 // Remove it. 359 IterRec->removeValue(IterVar->getName()); 360 } 361 362 if (Records.getDef(IterRec->getNameInitAsString())) { 363 Error(Loc, "def already exists: " + IterRec->getNameInitAsString()); 364 return true; 365 } 366 367 Records.addDef(IterRec); 368 IterRec->resolveReferences(); 369 return false; 370 } 371 372 //===----------------------------------------------------------------------===// 373 // Parser Code 374 //===----------------------------------------------------------------------===// 375 376 /// isObjectStart - Return true if this is a valid first token for an Object. 377 static bool isObjectStart(tgtok::TokKind K) { 378 return K == tgtok::Class || K == tgtok::Def || 379 K == tgtok::Defm || K == tgtok::Let || 380 K == tgtok::MultiClass || K == tgtok::Foreach; 381 } 382 383 /// GetNewAnonymousName - Generate a unique anonymous name that can be used as 384 /// an identifier. 385 std::string TGParser::GetNewAnonymousName() { 386 unsigned Tmp = AnonCounter++; // MSVC2012 ICEs without this. 387 return "anonymous_" + utostr(Tmp); 388 } 389 390 /// ParseObjectName - If an object name is specified, return it. Otherwise, 391 /// return 0. 392 /// ObjectName ::= Value [ '#' Value ]* 393 /// ObjectName ::= /*empty*/ 394 /// 395 Init *TGParser::ParseObjectName(MultiClass *CurMultiClass) { 396 switch (Lex.getCode()) { 397 case tgtok::colon: 398 case tgtok::semi: 399 case tgtok::l_brace: 400 // These are all of the tokens that can begin an object body. 401 // Some of these can also begin values but we disallow those cases 402 // because they are unlikely to be useful. 403 return 0; 404 default: 405 break; 406 } 407 408 Record *CurRec = 0; 409 if (CurMultiClass) 410 CurRec = &CurMultiClass->Rec; 411 412 RecTy *Type = 0; 413 if (CurRec) { 414 const TypedInit *CurRecName = dyn_cast<TypedInit>(CurRec->getNameInit()); 415 if (!CurRecName) { 416 TokError("Record name is not typed!"); 417 return 0; 418 } 419 Type = CurRecName->getType(); 420 } 421 422 return ParseValue(CurRec, Type, ParseNameMode); 423 } 424 425 /// ParseClassID - Parse and resolve a reference to a class name. This returns 426 /// null on error. 427 /// 428 /// ClassID ::= ID 429 /// 430 Record *TGParser::ParseClassID() { 431 if (Lex.getCode() != tgtok::Id) { 432 TokError("expected name for ClassID"); 433 return 0; 434 } 435 436 Record *Result = Records.getClass(Lex.getCurStrVal()); 437 if (Result == 0) 438 TokError("Couldn't find class '" + Lex.getCurStrVal() + "'"); 439 440 Lex.Lex(); 441 return Result; 442 } 443 444 /// ParseMultiClassID - Parse and resolve a reference to a multiclass name. 445 /// This returns null on error. 446 /// 447 /// MultiClassID ::= ID 448 /// 449 MultiClass *TGParser::ParseMultiClassID() { 450 if (Lex.getCode() != tgtok::Id) { 451 TokError("expected name for MultiClassID"); 452 return 0; 453 } 454 455 MultiClass *Result = MultiClasses[Lex.getCurStrVal()]; 456 if (Result == 0) 457 TokError("Couldn't find multiclass '" + Lex.getCurStrVal() + "'"); 458 459 Lex.Lex(); 460 return Result; 461 } 462 463 /// ParseSubClassReference - Parse a reference to a subclass or to a templated 464 /// subclass. This returns a SubClassRefTy with a null Record* on error. 465 /// 466 /// SubClassRef ::= ClassID 467 /// SubClassRef ::= ClassID '<' ValueList '>' 468 /// 469 SubClassReference TGParser:: 470 ParseSubClassReference(Record *CurRec, bool isDefm) { 471 SubClassReference Result; 472 Result.RefRange.Start = Lex.getLoc(); 473 474 if (isDefm) { 475 if (MultiClass *MC = ParseMultiClassID()) 476 Result.Rec = &MC->Rec; 477 } else { 478 Result.Rec = ParseClassID(); 479 } 480 if (Result.Rec == 0) return Result; 481 482 // If there is no template arg list, we're done. 483 if (Lex.getCode() != tgtok::less) { 484 Result.RefRange.End = Lex.getLoc(); 485 return Result; 486 } 487 Lex.Lex(); // Eat the '<' 488 489 if (Lex.getCode() == tgtok::greater) { 490 TokError("subclass reference requires a non-empty list of template values"); 491 Result.Rec = 0; 492 return Result; 493 } 494 495 Result.TemplateArgs = ParseValueList(CurRec, Result.Rec); 496 if (Result.TemplateArgs.empty()) { 497 Result.Rec = 0; // Error parsing value list. 498 return Result; 499 } 500 501 if (Lex.getCode() != tgtok::greater) { 502 TokError("expected '>' in template value list"); 503 Result.Rec = 0; 504 return Result; 505 } 506 Lex.Lex(); 507 Result.RefRange.End = Lex.getLoc(); 508 509 return Result; 510 } 511 512 /// ParseSubMultiClassReference - Parse a reference to a subclass or to a 513 /// templated submulticlass. This returns a SubMultiClassRefTy with a null 514 /// Record* on error. 515 /// 516 /// SubMultiClassRef ::= MultiClassID 517 /// SubMultiClassRef ::= MultiClassID '<' ValueList '>' 518 /// 519 SubMultiClassReference TGParser:: 520 ParseSubMultiClassReference(MultiClass *CurMC) { 521 SubMultiClassReference Result; 522 Result.RefRange.Start = Lex.getLoc(); 523 524 Result.MC = ParseMultiClassID(); 525 if (Result.MC == 0) return Result; 526 527 // If there is no template arg list, we're done. 528 if (Lex.getCode() != tgtok::less) { 529 Result.RefRange.End = Lex.getLoc(); 530 return Result; 531 } 532 Lex.Lex(); // Eat the '<' 533 534 if (Lex.getCode() == tgtok::greater) { 535 TokError("subclass reference requires a non-empty list of template values"); 536 Result.MC = 0; 537 return Result; 538 } 539 540 Result.TemplateArgs = ParseValueList(&CurMC->Rec, &Result.MC->Rec); 541 if (Result.TemplateArgs.empty()) { 542 Result.MC = 0; // Error parsing value list. 543 return Result; 544 } 545 546 if (Lex.getCode() != tgtok::greater) { 547 TokError("expected '>' in template value list"); 548 Result.MC = 0; 549 return Result; 550 } 551 Lex.Lex(); 552 Result.RefRange.End = Lex.getLoc(); 553 554 return Result; 555 } 556 557 /// ParseRangePiece - Parse a bit/value range. 558 /// RangePiece ::= INTVAL 559 /// RangePiece ::= INTVAL '-' INTVAL 560 /// RangePiece ::= INTVAL INTVAL 561 bool TGParser::ParseRangePiece(std::vector<unsigned> &Ranges) { 562 if (Lex.getCode() != tgtok::IntVal) { 563 TokError("expected integer or bitrange"); 564 return true; 565 } 566 int64_t Start = Lex.getCurIntVal(); 567 int64_t End; 568 569 if (Start < 0) 570 return TokError("invalid range, cannot be negative"); 571 572 switch (Lex.Lex()) { // eat first character. 573 default: 574 Ranges.push_back(Start); 575 return false; 576 case tgtok::minus: 577 if (Lex.Lex() != tgtok::IntVal) { 578 TokError("expected integer value as end of range"); 579 return true; 580 } 581 End = Lex.getCurIntVal(); 582 break; 583 case tgtok::IntVal: 584 End = -Lex.getCurIntVal(); 585 break; 586 } 587 if (End < 0) 588 return TokError("invalid range, cannot be negative"); 589 Lex.Lex(); 590 591 // Add to the range. 592 if (Start < End) { 593 for (; Start <= End; ++Start) 594 Ranges.push_back(Start); 595 } else { 596 for (; Start >= End; --Start) 597 Ranges.push_back(Start); 598 } 599 return false; 600 } 601 602 /// ParseRangeList - Parse a list of scalars and ranges into scalar values. 603 /// 604 /// RangeList ::= RangePiece (',' RangePiece)* 605 /// 606 std::vector<unsigned> TGParser::ParseRangeList() { 607 std::vector<unsigned> Result; 608 609 // Parse the first piece. 610 if (ParseRangePiece(Result)) 611 return std::vector<unsigned>(); 612 while (Lex.getCode() == tgtok::comma) { 613 Lex.Lex(); // Eat the comma. 614 615 // Parse the next range piece. 616 if (ParseRangePiece(Result)) 617 return std::vector<unsigned>(); 618 } 619 return Result; 620 } 621 622 /// ParseOptionalRangeList - Parse either a range list in <>'s or nothing. 623 /// OptionalRangeList ::= '<' RangeList '>' 624 /// OptionalRangeList ::= /*empty*/ 625 bool TGParser::ParseOptionalRangeList(std::vector<unsigned> &Ranges) { 626 if (Lex.getCode() != tgtok::less) 627 return false; 628 629 SMLoc StartLoc = Lex.getLoc(); 630 Lex.Lex(); // eat the '<' 631 632 // Parse the range list. 633 Ranges = ParseRangeList(); 634 if (Ranges.empty()) return true; 635 636 if (Lex.getCode() != tgtok::greater) { 637 TokError("expected '>' at end of range list"); 638 return Error(StartLoc, "to match this '<'"); 639 } 640 Lex.Lex(); // eat the '>'. 641 return false; 642 } 643 644 /// ParseOptionalBitList - Parse either a bit list in {}'s or nothing. 645 /// OptionalBitList ::= '{' RangeList '}' 646 /// OptionalBitList ::= /*empty*/ 647 bool TGParser::ParseOptionalBitList(std::vector<unsigned> &Ranges) { 648 if (Lex.getCode() != tgtok::l_brace) 649 return false; 650 651 SMLoc StartLoc = Lex.getLoc(); 652 Lex.Lex(); // eat the '{' 653 654 // Parse the range list. 655 Ranges = ParseRangeList(); 656 if (Ranges.empty()) return true; 657 658 if (Lex.getCode() != tgtok::r_brace) { 659 TokError("expected '}' at end of bit list"); 660 return Error(StartLoc, "to match this '{'"); 661 } 662 Lex.Lex(); // eat the '}'. 663 return false; 664 } 665 666 667 /// ParseType - Parse and return a tblgen type. This returns null on error. 668 /// 669 /// Type ::= STRING // string type 670 /// Type ::= CODE // code type 671 /// Type ::= BIT // bit type 672 /// Type ::= BITS '<' INTVAL '>' // bits<x> type 673 /// Type ::= INT // int type 674 /// Type ::= LIST '<' Type '>' // list<x> type 675 /// Type ::= DAG // dag type 676 /// Type ::= ClassID // Record Type 677 /// 678 RecTy *TGParser::ParseType() { 679 switch (Lex.getCode()) { 680 default: TokError("Unknown token when expecting a type"); return 0; 681 case tgtok::String: Lex.Lex(); return StringRecTy::get(); 682 case tgtok::Code: Lex.Lex(); return StringRecTy::get(); 683 case tgtok::Bit: Lex.Lex(); return BitRecTy::get(); 684 case tgtok::Int: Lex.Lex(); return IntRecTy::get(); 685 case tgtok::Dag: Lex.Lex(); return DagRecTy::get(); 686 case tgtok::Id: 687 if (Record *R = ParseClassID()) return RecordRecTy::get(R); 688 return 0; 689 case tgtok::Bits: { 690 if (Lex.Lex() != tgtok::less) { // Eat 'bits' 691 TokError("expected '<' after bits type"); 692 return 0; 693 } 694 if (Lex.Lex() != tgtok::IntVal) { // Eat '<' 695 TokError("expected integer in bits<n> type"); 696 return 0; 697 } 698 uint64_t Val = Lex.getCurIntVal(); 699 if (Lex.Lex() != tgtok::greater) { // Eat count. 700 TokError("expected '>' at end of bits<n> type"); 701 return 0; 702 } 703 Lex.Lex(); // Eat '>' 704 return BitsRecTy::get(Val); 705 } 706 case tgtok::List: { 707 if (Lex.Lex() != tgtok::less) { // Eat 'bits' 708 TokError("expected '<' after list type"); 709 return 0; 710 } 711 Lex.Lex(); // Eat '<' 712 RecTy *SubType = ParseType(); 713 if (SubType == 0) return 0; 714 715 if (Lex.getCode() != tgtok::greater) { 716 TokError("expected '>' at end of list<ty> type"); 717 return 0; 718 } 719 Lex.Lex(); // Eat '>' 720 return ListRecTy::get(SubType); 721 } 722 } 723 } 724 725 /// ParseIDValue - Parse an ID as a value and decode what it means. 726 /// 727 /// IDValue ::= ID [def local value] 728 /// IDValue ::= ID [def template arg] 729 /// IDValue ::= ID [multiclass local value] 730 /// IDValue ::= ID [multiclass template argument] 731 /// IDValue ::= ID [def name] 732 /// 733 Init *TGParser::ParseIDValue(Record *CurRec, IDParseMode Mode) { 734 assert(Lex.getCode() == tgtok::Id && "Expected ID in ParseIDValue"); 735 std::string Name = Lex.getCurStrVal(); 736 SMLoc Loc = Lex.getLoc(); 737 Lex.Lex(); 738 return ParseIDValue(CurRec, Name, Loc); 739 } 740 741 /// ParseIDValue - This is just like ParseIDValue above, but it assumes the ID 742 /// has already been read. 743 Init *TGParser::ParseIDValue(Record *CurRec, 744 const std::string &Name, SMLoc NameLoc, 745 IDParseMode Mode) { 746 if (CurRec) { 747 if (const RecordVal *RV = CurRec->getValue(Name)) 748 return VarInit::get(Name, RV->getType()); 749 750 Init *TemplateArgName = QualifyName(*CurRec, CurMultiClass, Name, ":"); 751 752 if (CurMultiClass) 753 TemplateArgName = QualifyName(CurMultiClass->Rec, CurMultiClass, Name, 754 "::"); 755 756 if (CurRec->isTemplateArg(TemplateArgName)) { 757 const RecordVal *RV = CurRec->getValue(TemplateArgName); 758 assert(RV && "Template arg doesn't exist??"); 759 return VarInit::get(TemplateArgName, RV->getType()); 760 } 761 } 762 763 if (CurMultiClass) { 764 Init *MCName = QualifyName(CurMultiClass->Rec, CurMultiClass, Name, 765 "::"); 766 767 if (CurMultiClass->Rec.isTemplateArg(MCName)) { 768 const RecordVal *RV = CurMultiClass->Rec.getValue(MCName); 769 assert(RV && "Template arg doesn't exist??"); 770 return VarInit::get(MCName, RV->getType()); 771 } 772 } 773 774 // If this is in a foreach loop, make sure it's not a loop iterator 775 for (LoopVector::iterator i = Loops.begin(), iend = Loops.end(); 776 i != iend; 777 ++i) { 778 VarInit *IterVar = dyn_cast<VarInit>(i->IterVar); 779 if (IterVar && IterVar->getName() == Name) 780 return IterVar; 781 } 782 783 if (Mode == ParseNameMode) 784 return StringInit::get(Name); 785 786 if (Record *D = Records.getDef(Name)) 787 return DefInit::get(D); 788 789 if (Mode == ParseValueMode) { 790 Error(NameLoc, "Variable not defined: '" + Name + "'"); 791 return 0; 792 } 793 794 return StringInit::get(Name); 795 } 796 797 /// ParseOperation - Parse an operator. This returns null on error. 798 /// 799 /// Operation ::= XOperator ['<' Type '>'] '(' Args ')' 800 /// 801 Init *TGParser::ParseOperation(Record *CurRec) { 802 switch (Lex.getCode()) { 803 default: 804 TokError("unknown operation"); 805 return 0; 806 case tgtok::XHead: 807 case tgtok::XTail: 808 case tgtok::XEmpty: 809 case tgtok::XCast: { // Value ::= !unop '(' Value ')' 810 UnOpInit::UnaryOp Code; 811 RecTy *Type = 0; 812 813 switch (Lex.getCode()) { 814 default: llvm_unreachable("Unhandled code!"); 815 case tgtok::XCast: 816 Lex.Lex(); // eat the operation 817 Code = UnOpInit::CAST; 818 819 Type = ParseOperatorType(); 820 821 if (Type == 0) { 822 TokError("did not get type for unary operator"); 823 return 0; 824 } 825 826 break; 827 case tgtok::XHead: 828 Lex.Lex(); // eat the operation 829 Code = UnOpInit::HEAD; 830 break; 831 case tgtok::XTail: 832 Lex.Lex(); // eat the operation 833 Code = UnOpInit::TAIL; 834 break; 835 case tgtok::XEmpty: 836 Lex.Lex(); // eat the operation 837 Code = UnOpInit::EMPTY; 838 Type = IntRecTy::get(); 839 break; 840 } 841 if (Lex.getCode() != tgtok::l_paren) { 842 TokError("expected '(' after unary operator"); 843 return 0; 844 } 845 Lex.Lex(); // eat the '(' 846 847 Init *LHS = ParseValue(CurRec); 848 if (LHS == 0) return 0; 849 850 if (Code == UnOpInit::HEAD 851 || Code == UnOpInit::TAIL 852 || Code == UnOpInit::EMPTY) { 853 ListInit *LHSl = dyn_cast<ListInit>(LHS); 854 StringInit *LHSs = dyn_cast<StringInit>(LHS); 855 TypedInit *LHSt = dyn_cast<TypedInit>(LHS); 856 if (LHSl == 0 && LHSs == 0 && LHSt == 0) { 857 TokError("expected list or string type argument in unary operator"); 858 return 0; 859 } 860 if (LHSt) { 861 ListRecTy *LType = dyn_cast<ListRecTy>(LHSt->getType()); 862 StringRecTy *SType = dyn_cast<StringRecTy>(LHSt->getType()); 863 if (LType == 0 && SType == 0) { 864 TokError("expected list or string type argumnet in unary operator"); 865 return 0; 866 } 867 } 868 869 if (Code == UnOpInit::HEAD 870 || Code == UnOpInit::TAIL) { 871 if (LHSl == 0 && LHSt == 0) { 872 TokError("expected list type argumnet in unary operator"); 873 return 0; 874 } 875 876 if (LHSl && LHSl->getSize() == 0) { 877 TokError("empty list argument in unary operator"); 878 return 0; 879 } 880 if (LHSl) { 881 Init *Item = LHSl->getElement(0); 882 TypedInit *Itemt = dyn_cast<TypedInit>(Item); 883 if (Itemt == 0) { 884 TokError("untyped list element in unary operator"); 885 return 0; 886 } 887 if (Code == UnOpInit::HEAD) { 888 Type = Itemt->getType(); 889 } else { 890 Type = ListRecTy::get(Itemt->getType()); 891 } 892 } else { 893 assert(LHSt && "expected list type argument in unary operator"); 894 ListRecTy *LType = dyn_cast<ListRecTy>(LHSt->getType()); 895 if (LType == 0) { 896 TokError("expected list type argumnet in unary operator"); 897 return 0; 898 } 899 if (Code == UnOpInit::HEAD) { 900 Type = LType->getElementType(); 901 } else { 902 Type = LType; 903 } 904 } 905 } 906 } 907 908 if (Lex.getCode() != tgtok::r_paren) { 909 TokError("expected ')' in unary operator"); 910 return 0; 911 } 912 Lex.Lex(); // eat the ')' 913 return (UnOpInit::get(Code, LHS, Type))->Fold(CurRec, CurMultiClass); 914 } 915 916 case tgtok::XConcat: 917 case tgtok::XADD: 918 case tgtok::XSRA: 919 case tgtok::XSRL: 920 case tgtok::XSHL: 921 case tgtok::XEq: 922 case tgtok::XStrConcat: { // Value ::= !binop '(' Value ',' Value ')' 923 tgtok::TokKind OpTok = Lex.getCode(); 924 SMLoc OpLoc = Lex.getLoc(); 925 Lex.Lex(); // eat the operation 926 927 BinOpInit::BinaryOp Code; 928 RecTy *Type = 0; 929 930 switch (OpTok) { 931 default: llvm_unreachable("Unhandled code!"); 932 case tgtok::XConcat: Code = BinOpInit::CONCAT;Type = DagRecTy::get(); break; 933 case tgtok::XADD: Code = BinOpInit::ADD; Type = IntRecTy::get(); break; 934 case tgtok::XSRA: Code = BinOpInit::SRA; Type = IntRecTy::get(); break; 935 case tgtok::XSRL: Code = BinOpInit::SRL; Type = IntRecTy::get(); break; 936 case tgtok::XSHL: Code = BinOpInit::SHL; Type = IntRecTy::get(); break; 937 case tgtok::XEq: Code = BinOpInit::EQ; Type = BitRecTy::get(); break; 938 case tgtok::XStrConcat: 939 Code = BinOpInit::STRCONCAT; 940 Type = StringRecTy::get(); 941 break; 942 } 943 944 if (Lex.getCode() != tgtok::l_paren) { 945 TokError("expected '(' after binary operator"); 946 return 0; 947 } 948 Lex.Lex(); // eat the '(' 949 950 SmallVector<Init*, 2> InitList; 951 952 InitList.push_back(ParseValue(CurRec)); 953 if (InitList.back() == 0) return 0; 954 955 while (Lex.getCode() == tgtok::comma) { 956 Lex.Lex(); // eat the ',' 957 958 InitList.push_back(ParseValue(CurRec)); 959 if (InitList.back() == 0) return 0; 960 } 961 962 if (Lex.getCode() != tgtok::r_paren) { 963 TokError("expected ')' in operator"); 964 return 0; 965 } 966 Lex.Lex(); // eat the ')' 967 968 // We allow multiple operands to associative operators like !strconcat as 969 // shorthand for nesting them. 970 if (Code == BinOpInit::STRCONCAT) { 971 while (InitList.size() > 2) { 972 Init *RHS = InitList.pop_back_val(); 973 RHS = (BinOpInit::get(Code, InitList.back(), RHS, Type)) 974 ->Fold(CurRec, CurMultiClass); 975 InitList.back() = RHS; 976 } 977 } 978 979 if (InitList.size() == 2) 980 return (BinOpInit::get(Code, InitList[0], InitList[1], Type)) 981 ->Fold(CurRec, CurMultiClass); 982 983 Error(OpLoc, "expected two operands to operator"); 984 return 0; 985 } 986 987 case tgtok::XIf: 988 case tgtok::XForEach: 989 case tgtok::XSubst: { // Value ::= !ternop '(' Value ',' Value ',' Value ')' 990 TernOpInit::TernaryOp Code; 991 RecTy *Type = 0; 992 993 tgtok::TokKind LexCode = Lex.getCode(); 994 Lex.Lex(); // eat the operation 995 switch (LexCode) { 996 default: llvm_unreachable("Unhandled code!"); 997 case tgtok::XIf: 998 Code = TernOpInit::IF; 999 break; 1000 case tgtok::XForEach: 1001 Code = TernOpInit::FOREACH; 1002 break; 1003 case tgtok::XSubst: 1004 Code = TernOpInit::SUBST; 1005 break; 1006 } 1007 if (Lex.getCode() != tgtok::l_paren) { 1008 TokError("expected '(' after ternary operator"); 1009 return 0; 1010 } 1011 Lex.Lex(); // eat the '(' 1012 1013 Init *LHS = ParseValue(CurRec); 1014 if (LHS == 0) return 0; 1015 1016 if (Lex.getCode() != tgtok::comma) { 1017 TokError("expected ',' in ternary operator"); 1018 return 0; 1019 } 1020 Lex.Lex(); // eat the ',' 1021 1022 Init *MHS = ParseValue(CurRec); 1023 if (MHS == 0) return 0; 1024 1025 if (Lex.getCode() != tgtok::comma) { 1026 TokError("expected ',' in ternary operator"); 1027 return 0; 1028 } 1029 Lex.Lex(); // eat the ',' 1030 1031 Init *RHS = ParseValue(CurRec); 1032 if (RHS == 0) return 0; 1033 1034 if (Lex.getCode() != tgtok::r_paren) { 1035 TokError("expected ')' in binary operator"); 1036 return 0; 1037 } 1038 Lex.Lex(); // eat the ')' 1039 1040 switch (LexCode) { 1041 default: llvm_unreachable("Unhandled code!"); 1042 case tgtok::XIf: { 1043 RecTy *MHSTy = 0; 1044 RecTy *RHSTy = 0; 1045 1046 if (TypedInit *MHSt = dyn_cast<TypedInit>(MHS)) 1047 MHSTy = MHSt->getType(); 1048 if (BitsInit *MHSbits = dyn_cast<BitsInit>(MHS)) 1049 MHSTy = BitsRecTy::get(MHSbits->getNumBits()); 1050 if (isa<BitInit>(MHS)) 1051 MHSTy = BitRecTy::get(); 1052 1053 if (TypedInit *RHSt = dyn_cast<TypedInit>(RHS)) 1054 RHSTy = RHSt->getType(); 1055 if (BitsInit *RHSbits = dyn_cast<BitsInit>(RHS)) 1056 RHSTy = BitsRecTy::get(RHSbits->getNumBits()); 1057 if (isa<BitInit>(RHS)) 1058 RHSTy = BitRecTy::get(); 1059 1060 // For UnsetInit, it's typed from the other hand. 1061 if (isa<UnsetInit>(MHS)) 1062 MHSTy = RHSTy; 1063 if (isa<UnsetInit>(RHS)) 1064 RHSTy = MHSTy; 1065 1066 if (!MHSTy || !RHSTy) { 1067 TokError("could not get type for !if"); 1068 return 0; 1069 } 1070 1071 if (MHSTy->typeIsConvertibleTo(RHSTy)) { 1072 Type = RHSTy; 1073 } else if (RHSTy->typeIsConvertibleTo(MHSTy)) { 1074 Type = MHSTy; 1075 } else { 1076 TokError("inconsistent types for !if"); 1077 return 0; 1078 } 1079 break; 1080 } 1081 case tgtok::XForEach: { 1082 TypedInit *MHSt = dyn_cast<TypedInit>(MHS); 1083 if (MHSt == 0) { 1084 TokError("could not get type for !foreach"); 1085 return 0; 1086 } 1087 Type = MHSt->getType(); 1088 break; 1089 } 1090 case tgtok::XSubst: { 1091 TypedInit *RHSt = dyn_cast<TypedInit>(RHS); 1092 if (RHSt == 0) { 1093 TokError("could not get type for !subst"); 1094 return 0; 1095 } 1096 Type = RHSt->getType(); 1097 break; 1098 } 1099 } 1100 return (TernOpInit::get(Code, LHS, MHS, RHS, Type))->Fold(CurRec, 1101 CurMultiClass); 1102 } 1103 } 1104 } 1105 1106 /// ParseOperatorType - Parse a type for an operator. This returns 1107 /// null on error. 1108 /// 1109 /// OperatorType ::= '<' Type '>' 1110 /// 1111 RecTy *TGParser::ParseOperatorType() { 1112 RecTy *Type = 0; 1113 1114 if (Lex.getCode() != tgtok::less) { 1115 TokError("expected type name for operator"); 1116 return 0; 1117 } 1118 Lex.Lex(); // eat the < 1119 1120 Type = ParseType(); 1121 1122 if (Type == 0) { 1123 TokError("expected type name for operator"); 1124 return 0; 1125 } 1126 1127 if (Lex.getCode() != tgtok::greater) { 1128 TokError("expected type name for operator"); 1129 return 0; 1130 } 1131 Lex.Lex(); // eat the > 1132 1133 return Type; 1134 } 1135 1136 1137 /// ParseSimpleValue - Parse a tblgen value. This returns null on error. 1138 /// 1139 /// SimpleValue ::= IDValue 1140 /// SimpleValue ::= INTVAL 1141 /// SimpleValue ::= STRVAL+ 1142 /// SimpleValue ::= CODEFRAGMENT 1143 /// SimpleValue ::= '?' 1144 /// SimpleValue ::= '{' ValueList '}' 1145 /// SimpleValue ::= ID '<' ValueListNE '>' 1146 /// SimpleValue ::= '[' ValueList ']' 1147 /// SimpleValue ::= '(' IDValue DagArgList ')' 1148 /// SimpleValue ::= CONCATTOK '(' Value ',' Value ')' 1149 /// SimpleValue ::= ADDTOK '(' Value ',' Value ')' 1150 /// SimpleValue ::= SHLTOK '(' Value ',' Value ')' 1151 /// SimpleValue ::= SRATOK '(' Value ',' Value ')' 1152 /// SimpleValue ::= SRLTOK '(' Value ',' Value ')' 1153 /// SimpleValue ::= STRCONCATTOK '(' Value ',' Value ')' 1154 /// 1155 Init *TGParser::ParseSimpleValue(Record *CurRec, RecTy *ItemType, 1156 IDParseMode Mode) { 1157 Init *R = 0; 1158 switch (Lex.getCode()) { 1159 default: TokError("Unknown token when parsing a value"); break; 1160 case tgtok::paste: 1161 // This is a leading paste operation. This is deprecated but 1162 // still exists in some .td files. Ignore it. 1163 Lex.Lex(); // Skip '#'. 1164 return ParseSimpleValue(CurRec, ItemType, Mode); 1165 case tgtok::IntVal: R = IntInit::get(Lex.getCurIntVal()); Lex.Lex(); break; 1166 case tgtok::StrVal: { 1167 std::string Val = Lex.getCurStrVal(); 1168 Lex.Lex(); 1169 1170 // Handle multiple consecutive concatenated strings. 1171 while (Lex.getCode() == tgtok::StrVal) { 1172 Val += Lex.getCurStrVal(); 1173 Lex.Lex(); 1174 } 1175 1176 R = StringInit::get(Val); 1177 break; 1178 } 1179 case tgtok::CodeFragment: 1180 R = StringInit::get(Lex.getCurStrVal()); 1181 Lex.Lex(); 1182 break; 1183 case tgtok::question: 1184 R = UnsetInit::get(); 1185 Lex.Lex(); 1186 break; 1187 case tgtok::Id: { 1188 SMLoc NameLoc = Lex.getLoc(); 1189 std::string Name = Lex.getCurStrVal(); 1190 if (Lex.Lex() != tgtok::less) // consume the Id. 1191 return ParseIDValue(CurRec, Name, NameLoc, Mode); // Value ::= IDValue 1192 1193 // Value ::= ID '<' ValueListNE '>' 1194 if (Lex.Lex() == tgtok::greater) { 1195 TokError("expected non-empty value list"); 1196 return 0; 1197 } 1198 1199 // This is a CLASS<initvalslist> expression. This is supposed to synthesize 1200 // a new anonymous definition, deriving from CLASS<initvalslist> with no 1201 // body. 1202 Record *Class = Records.getClass(Name); 1203 if (!Class) { 1204 Error(NameLoc, "Expected a class name, got '" + Name + "'"); 1205 return 0; 1206 } 1207 1208 std::vector<Init*> ValueList = ParseValueList(CurRec, Class); 1209 if (ValueList.empty()) return 0; 1210 1211 if (Lex.getCode() != tgtok::greater) { 1212 TokError("expected '>' at end of value list"); 1213 return 0; 1214 } 1215 Lex.Lex(); // eat the '>' 1216 SMLoc EndLoc = Lex.getLoc(); 1217 1218 // Create the new record, set it as CurRec temporarily. 1219 Record *NewRec = new Record(GetNewAnonymousName(), NameLoc, Records, 1220 /*IsAnonymous=*/true); 1221 SubClassReference SCRef; 1222 SCRef.RefRange = SMRange(NameLoc, EndLoc); 1223 SCRef.Rec = Class; 1224 SCRef.TemplateArgs = ValueList; 1225 // Add info about the subclass to NewRec. 1226 if (AddSubClass(NewRec, SCRef)) 1227 return 0; 1228 if (!CurMultiClass) { 1229 NewRec->resolveReferences(); 1230 Records.addDef(NewRec); 1231 } else { 1232 // Otherwise, we're inside a multiclass, add it to the multiclass. 1233 CurMultiClass->DefPrototypes.push_back(NewRec); 1234 1235 // Copy the template arguments for the multiclass into the def. 1236 const std::vector<Init *> &TArgs = 1237 CurMultiClass->Rec.getTemplateArgs(); 1238 1239 for (unsigned i = 0, e = TArgs.size(); i != e; ++i) { 1240 const RecordVal *RV = CurMultiClass->Rec.getValue(TArgs[i]); 1241 assert(RV && "Template arg doesn't exist?"); 1242 NewRec->addValue(*RV); 1243 } 1244 1245 // We can't return the prototype def here, instead return: 1246 // !cast<ItemType>(!strconcat(NAME, AnonName)). 1247 const RecordVal *MCNameRV = CurMultiClass->Rec.getValue("NAME"); 1248 assert(MCNameRV && "multiclass record must have a NAME"); 1249 1250 return UnOpInit::get(UnOpInit::CAST, 1251 BinOpInit::get(BinOpInit::STRCONCAT, 1252 VarInit::get(MCNameRV->getName(), 1253 MCNameRV->getType()), 1254 NewRec->getNameInit(), 1255 StringRecTy::get()), 1256 Class->getDefInit()->getType()); 1257 } 1258 1259 // The result of the expression is a reference to the new record. 1260 return DefInit::get(NewRec); 1261 } 1262 case tgtok::l_brace: { // Value ::= '{' ValueList '}' 1263 SMLoc BraceLoc = Lex.getLoc(); 1264 Lex.Lex(); // eat the '{' 1265 std::vector<Init*> Vals; 1266 1267 if (Lex.getCode() != tgtok::r_brace) { 1268 Vals = ParseValueList(CurRec); 1269 if (Vals.empty()) return 0; 1270 } 1271 if (Lex.getCode() != tgtok::r_brace) { 1272 TokError("expected '}' at end of bit list value"); 1273 return 0; 1274 } 1275 Lex.Lex(); // eat the '}' 1276 1277 SmallVector<Init *, 16> NewBits(Vals.size()); 1278 1279 for (unsigned i = 0, e = Vals.size(); i != e; ++i) { 1280 Init *Bit = Vals[i]->convertInitializerTo(BitRecTy::get()); 1281 if (Bit == 0) { 1282 Error(BraceLoc, "Element #" + utostr(i) + " (" + Vals[i]->getAsString()+ 1283 ") is not convertable to a bit"); 1284 return 0; 1285 } 1286 NewBits[Vals.size()-i-1] = Bit; 1287 } 1288 return BitsInit::get(NewBits); 1289 } 1290 case tgtok::l_square: { // Value ::= '[' ValueList ']' 1291 Lex.Lex(); // eat the '[' 1292 std::vector<Init*> Vals; 1293 1294 RecTy *DeducedEltTy = 0; 1295 ListRecTy *GivenListTy = 0; 1296 1297 if (ItemType != 0) { 1298 ListRecTy *ListType = dyn_cast<ListRecTy>(ItemType); 1299 if (ListType == 0) { 1300 std::string s; 1301 raw_string_ostream ss(s); 1302 ss << "Type mismatch for list, expected list type, got " 1303 << ItemType->getAsString(); 1304 TokError(ss.str()); 1305 return 0; 1306 } 1307 GivenListTy = ListType; 1308 } 1309 1310 if (Lex.getCode() != tgtok::r_square) { 1311 Vals = ParseValueList(CurRec, 0, 1312 GivenListTy ? GivenListTy->getElementType() : 0); 1313 if (Vals.empty()) return 0; 1314 } 1315 if (Lex.getCode() != tgtok::r_square) { 1316 TokError("expected ']' at end of list value"); 1317 return 0; 1318 } 1319 Lex.Lex(); // eat the ']' 1320 1321 RecTy *GivenEltTy = 0; 1322 if (Lex.getCode() == tgtok::less) { 1323 // Optional list element type 1324 Lex.Lex(); // eat the '<' 1325 1326 GivenEltTy = ParseType(); 1327 if (GivenEltTy == 0) { 1328 // Couldn't parse element type 1329 return 0; 1330 } 1331 1332 if (Lex.getCode() != tgtok::greater) { 1333 TokError("expected '>' at end of list element type"); 1334 return 0; 1335 } 1336 Lex.Lex(); // eat the '>' 1337 } 1338 1339 // Check elements 1340 RecTy *EltTy = 0; 1341 for (std::vector<Init *>::iterator i = Vals.begin(), ie = Vals.end(); 1342 i != ie; 1343 ++i) { 1344 TypedInit *TArg = dyn_cast<TypedInit>(*i); 1345 if (TArg == 0) { 1346 TokError("Untyped list element"); 1347 return 0; 1348 } 1349 if (EltTy != 0) { 1350 EltTy = resolveTypes(EltTy, TArg->getType()); 1351 if (EltTy == 0) { 1352 TokError("Incompatible types in list elements"); 1353 return 0; 1354 } 1355 } else { 1356 EltTy = TArg->getType(); 1357 } 1358 } 1359 1360 if (GivenEltTy != 0) { 1361 if (EltTy != 0) { 1362 // Verify consistency 1363 if (!EltTy->typeIsConvertibleTo(GivenEltTy)) { 1364 TokError("Incompatible types in list elements"); 1365 return 0; 1366 } 1367 } 1368 EltTy = GivenEltTy; 1369 } 1370 1371 if (EltTy == 0) { 1372 if (ItemType == 0) { 1373 TokError("No type for list"); 1374 return 0; 1375 } 1376 DeducedEltTy = GivenListTy->getElementType(); 1377 } else { 1378 // Make sure the deduced type is compatible with the given type 1379 if (GivenListTy) { 1380 if (!EltTy->typeIsConvertibleTo(GivenListTy->getElementType())) { 1381 TokError("Element type mismatch for list"); 1382 return 0; 1383 } 1384 } 1385 DeducedEltTy = EltTy; 1386 } 1387 1388 return ListInit::get(Vals, DeducedEltTy); 1389 } 1390 case tgtok::l_paren: { // Value ::= '(' IDValue DagArgList ')' 1391 Lex.Lex(); // eat the '(' 1392 if (Lex.getCode() != tgtok::Id && Lex.getCode() != tgtok::XCast) { 1393 TokError("expected identifier in dag init"); 1394 return 0; 1395 } 1396 1397 Init *Operator = ParseValue(CurRec); 1398 if (Operator == 0) return 0; 1399 1400 // If the operator name is present, parse it. 1401 std::string OperatorName; 1402 if (Lex.getCode() == tgtok::colon) { 1403 if (Lex.Lex() != tgtok::VarName) { // eat the ':' 1404 TokError("expected variable name in dag operator"); 1405 return 0; 1406 } 1407 OperatorName = Lex.getCurStrVal(); 1408 Lex.Lex(); // eat the VarName. 1409 } 1410 1411 std::vector<std::pair<llvm::Init*, std::string> > DagArgs; 1412 if (Lex.getCode() != tgtok::r_paren) { 1413 DagArgs = ParseDagArgList(CurRec); 1414 if (DagArgs.empty()) return 0; 1415 } 1416 1417 if (Lex.getCode() != tgtok::r_paren) { 1418 TokError("expected ')' in dag init"); 1419 return 0; 1420 } 1421 Lex.Lex(); // eat the ')' 1422 1423 return DagInit::get(Operator, OperatorName, DagArgs); 1424 } 1425 1426 case tgtok::XHead: 1427 case tgtok::XTail: 1428 case tgtok::XEmpty: 1429 case tgtok::XCast: // Value ::= !unop '(' Value ')' 1430 case tgtok::XConcat: 1431 case tgtok::XADD: 1432 case tgtok::XSRA: 1433 case tgtok::XSRL: 1434 case tgtok::XSHL: 1435 case tgtok::XEq: 1436 case tgtok::XStrConcat: // Value ::= !binop '(' Value ',' Value ')' 1437 case tgtok::XIf: 1438 case tgtok::XForEach: 1439 case tgtok::XSubst: { // Value ::= !ternop '(' Value ',' Value ',' Value ')' 1440 return ParseOperation(CurRec); 1441 } 1442 } 1443 1444 return R; 1445 } 1446 1447 /// ParseValue - Parse a tblgen value. This returns null on error. 1448 /// 1449 /// Value ::= SimpleValue ValueSuffix* 1450 /// ValueSuffix ::= '{' BitList '}' 1451 /// ValueSuffix ::= '[' BitList ']' 1452 /// ValueSuffix ::= '.' ID 1453 /// 1454 Init *TGParser::ParseValue(Record *CurRec, RecTy *ItemType, IDParseMode Mode) { 1455 Init *Result = ParseSimpleValue(CurRec, ItemType, Mode); 1456 if (Result == 0) return 0; 1457 1458 // Parse the suffixes now if present. 1459 while (1) { 1460 switch (Lex.getCode()) { 1461 default: return Result; 1462 case tgtok::l_brace: { 1463 if (Mode == ParseNameMode || Mode == ParseForeachMode) 1464 // This is the beginning of the object body. 1465 return Result; 1466 1467 SMLoc CurlyLoc = Lex.getLoc(); 1468 Lex.Lex(); // eat the '{' 1469 std::vector<unsigned> Ranges = ParseRangeList(); 1470 if (Ranges.empty()) return 0; 1471 1472 // Reverse the bitlist. 1473 std::reverse(Ranges.begin(), Ranges.end()); 1474 Result = Result->convertInitializerBitRange(Ranges); 1475 if (Result == 0) { 1476 Error(CurlyLoc, "Invalid bit range for value"); 1477 return 0; 1478 } 1479 1480 // Eat the '}'. 1481 if (Lex.getCode() != tgtok::r_brace) { 1482 TokError("expected '}' at end of bit range list"); 1483 return 0; 1484 } 1485 Lex.Lex(); 1486 break; 1487 } 1488 case tgtok::l_square: { 1489 SMLoc SquareLoc = Lex.getLoc(); 1490 Lex.Lex(); // eat the '[' 1491 std::vector<unsigned> Ranges = ParseRangeList(); 1492 if (Ranges.empty()) return 0; 1493 1494 Result = Result->convertInitListSlice(Ranges); 1495 if (Result == 0) { 1496 Error(SquareLoc, "Invalid range for list slice"); 1497 return 0; 1498 } 1499 1500 // Eat the ']'. 1501 if (Lex.getCode() != tgtok::r_square) { 1502 TokError("expected ']' at end of list slice"); 1503 return 0; 1504 } 1505 Lex.Lex(); 1506 break; 1507 } 1508 case tgtok::period: 1509 if (Lex.Lex() != tgtok::Id) { // eat the . 1510 TokError("expected field identifier after '.'"); 1511 return 0; 1512 } 1513 if (!Result->getFieldType(Lex.getCurStrVal())) { 1514 TokError("Cannot access field '" + Lex.getCurStrVal() + "' of value '" + 1515 Result->getAsString() + "'"); 1516 return 0; 1517 } 1518 Result = FieldInit::get(Result, Lex.getCurStrVal()); 1519 Lex.Lex(); // eat field name 1520 break; 1521 1522 case tgtok::paste: 1523 SMLoc PasteLoc = Lex.getLoc(); 1524 1525 // Create a !strconcat() operation, first casting each operand to 1526 // a string if necessary. 1527 1528 TypedInit *LHS = dyn_cast<TypedInit>(Result); 1529 if (!LHS) { 1530 Error(PasteLoc, "LHS of paste is not typed!"); 1531 return 0; 1532 } 1533 1534 if (LHS->getType() != StringRecTy::get()) { 1535 LHS = UnOpInit::get(UnOpInit::CAST, LHS, StringRecTy::get()); 1536 } 1537 1538 TypedInit *RHS = 0; 1539 1540 Lex.Lex(); // Eat the '#'. 1541 switch (Lex.getCode()) { 1542 case tgtok::colon: 1543 case tgtok::semi: 1544 case tgtok::l_brace: 1545 // These are all of the tokens that can begin an object body. 1546 // Some of these can also begin values but we disallow those cases 1547 // because they are unlikely to be useful. 1548 1549 // Trailing paste, concat with an empty string. 1550 RHS = StringInit::get(""); 1551 break; 1552 1553 default: 1554 Init *RHSResult = ParseValue(CurRec, ItemType, ParseNameMode); 1555 RHS = dyn_cast<TypedInit>(RHSResult); 1556 if (!RHS) { 1557 Error(PasteLoc, "RHS of paste is not typed!"); 1558 return 0; 1559 } 1560 1561 if (RHS->getType() != StringRecTy::get()) { 1562 RHS = UnOpInit::get(UnOpInit::CAST, RHS, StringRecTy::get()); 1563 } 1564 1565 break; 1566 } 1567 1568 Result = BinOpInit::get(BinOpInit::STRCONCAT, LHS, RHS, 1569 StringRecTy::get())->Fold(CurRec, CurMultiClass); 1570 break; 1571 } 1572 } 1573 } 1574 1575 /// ParseDagArgList - Parse the argument list for a dag literal expression. 1576 /// 1577 /// DagArg ::= Value (':' VARNAME)? 1578 /// DagArg ::= VARNAME 1579 /// DagArgList ::= DagArg 1580 /// DagArgList ::= DagArgList ',' DagArg 1581 std::vector<std::pair<llvm::Init*, std::string> > 1582 TGParser::ParseDagArgList(Record *CurRec) { 1583 std::vector<std::pair<llvm::Init*, std::string> > Result; 1584 1585 while (1) { 1586 // DagArg ::= VARNAME 1587 if (Lex.getCode() == tgtok::VarName) { 1588 // A missing value is treated like '?'. 1589 Result.push_back(std::make_pair(UnsetInit::get(), Lex.getCurStrVal())); 1590 Lex.Lex(); 1591 } else { 1592 // DagArg ::= Value (':' VARNAME)? 1593 Init *Val = ParseValue(CurRec); 1594 if (Val == 0) 1595 return std::vector<std::pair<llvm::Init*, std::string> >(); 1596 1597 // If the variable name is present, add it. 1598 std::string VarName; 1599 if (Lex.getCode() == tgtok::colon) { 1600 if (Lex.Lex() != tgtok::VarName) { // eat the ':' 1601 TokError("expected variable name in dag literal"); 1602 return std::vector<std::pair<llvm::Init*, std::string> >(); 1603 } 1604 VarName = Lex.getCurStrVal(); 1605 Lex.Lex(); // eat the VarName. 1606 } 1607 1608 Result.push_back(std::make_pair(Val, VarName)); 1609 } 1610 if (Lex.getCode() != tgtok::comma) break; 1611 Lex.Lex(); // eat the ',' 1612 } 1613 1614 return Result; 1615 } 1616 1617 1618 /// ParseValueList - Parse a comma separated list of values, returning them as a 1619 /// vector. Note that this always expects to be able to parse at least one 1620 /// value. It returns an empty list if this is not possible. 1621 /// 1622 /// ValueList ::= Value (',' Value) 1623 /// 1624 std::vector<Init*> TGParser::ParseValueList(Record *CurRec, Record *ArgsRec, 1625 RecTy *EltTy) { 1626 std::vector<Init*> Result; 1627 RecTy *ItemType = EltTy; 1628 unsigned int ArgN = 0; 1629 if (ArgsRec != 0 && EltTy == 0) { 1630 const std::vector<Init *> &TArgs = ArgsRec->getTemplateArgs(); 1631 if (!TArgs.size()) { 1632 TokError("template argument provided to non-template class"); 1633 return std::vector<Init*>(); 1634 } 1635 const RecordVal *RV = ArgsRec->getValue(TArgs[ArgN]); 1636 if (!RV) { 1637 errs() << "Cannot find template arg " << ArgN << " (" << TArgs[ArgN] 1638 << ")\n"; 1639 } 1640 assert(RV && "Template argument record not found??"); 1641 ItemType = RV->getType(); 1642 ++ArgN; 1643 } 1644 Result.push_back(ParseValue(CurRec, ItemType)); 1645 if (Result.back() == 0) return std::vector<Init*>(); 1646 1647 while (Lex.getCode() == tgtok::comma) { 1648 Lex.Lex(); // Eat the comma 1649 1650 if (ArgsRec != 0 && EltTy == 0) { 1651 const std::vector<Init *> &TArgs = ArgsRec->getTemplateArgs(); 1652 if (ArgN >= TArgs.size()) { 1653 TokError("too many template arguments"); 1654 return std::vector<Init*>(); 1655 } 1656 const RecordVal *RV = ArgsRec->getValue(TArgs[ArgN]); 1657 assert(RV && "Template argument record not found??"); 1658 ItemType = RV->getType(); 1659 ++ArgN; 1660 } 1661 Result.push_back(ParseValue(CurRec, ItemType)); 1662 if (Result.back() == 0) return std::vector<Init*>(); 1663 } 1664 1665 return Result; 1666 } 1667 1668 1669 /// ParseDeclaration - Read a declaration, returning the name of field ID, or an 1670 /// empty string on error. This can happen in a number of different context's, 1671 /// including within a def or in the template args for a def (which which case 1672 /// CurRec will be non-null) and within the template args for a multiclass (in 1673 /// which case CurRec will be null, but CurMultiClass will be set). This can 1674 /// also happen within a def that is within a multiclass, which will set both 1675 /// CurRec and CurMultiClass. 1676 /// 1677 /// Declaration ::= FIELD? Type ID ('=' Value)? 1678 /// 1679 Init *TGParser::ParseDeclaration(Record *CurRec, 1680 bool ParsingTemplateArgs) { 1681 // Read the field prefix if present. 1682 bool HasField = Lex.getCode() == tgtok::Field; 1683 if (HasField) Lex.Lex(); 1684 1685 RecTy *Type = ParseType(); 1686 if (Type == 0) return 0; 1687 1688 if (Lex.getCode() != tgtok::Id) { 1689 TokError("Expected identifier in declaration"); 1690 return 0; 1691 } 1692 1693 SMLoc IdLoc = Lex.getLoc(); 1694 Init *DeclName = StringInit::get(Lex.getCurStrVal()); 1695 Lex.Lex(); 1696 1697 if (ParsingTemplateArgs) { 1698 if (CurRec) { 1699 DeclName = QualifyName(*CurRec, CurMultiClass, DeclName, ":"); 1700 } else { 1701 assert(CurMultiClass); 1702 } 1703 if (CurMultiClass) 1704 DeclName = QualifyName(CurMultiClass->Rec, CurMultiClass, DeclName, 1705 "::"); 1706 } 1707 1708 // Add the value. 1709 if (AddValue(CurRec, IdLoc, RecordVal(DeclName, Type, HasField))) 1710 return 0; 1711 1712 // If a value is present, parse it. 1713 if (Lex.getCode() == tgtok::equal) { 1714 Lex.Lex(); 1715 SMLoc ValLoc = Lex.getLoc(); 1716 Init *Val = ParseValue(CurRec, Type); 1717 if (Val == 0 || 1718 SetValue(CurRec, ValLoc, DeclName, std::vector<unsigned>(), Val)) 1719 return 0; 1720 } 1721 1722 return DeclName; 1723 } 1724 1725 /// ParseForeachDeclaration - Read a foreach declaration, returning 1726 /// the name of the declared object or a NULL Init on error. Return 1727 /// the name of the parsed initializer list through ForeachListName. 1728 /// 1729 /// ForeachDeclaration ::= ID '=' '[' ValueList ']' 1730 /// ForeachDeclaration ::= ID '=' '{' RangeList '}' 1731 /// ForeachDeclaration ::= ID '=' RangePiece 1732 /// 1733 VarInit *TGParser::ParseForeachDeclaration(ListInit *&ForeachListValue) { 1734 if (Lex.getCode() != tgtok::Id) { 1735 TokError("Expected identifier in foreach declaration"); 1736 return 0; 1737 } 1738 1739 Init *DeclName = StringInit::get(Lex.getCurStrVal()); 1740 Lex.Lex(); 1741 1742 // If a value is present, parse it. 1743 if (Lex.getCode() != tgtok::equal) { 1744 TokError("Expected '=' in foreach declaration"); 1745 return 0; 1746 } 1747 Lex.Lex(); // Eat the '=' 1748 1749 RecTy *IterType = 0; 1750 std::vector<unsigned> Ranges; 1751 1752 switch (Lex.getCode()) { 1753 default: TokError("Unknown token when expecting a range list"); return 0; 1754 case tgtok::l_square: { // '[' ValueList ']' 1755 Init *List = ParseSimpleValue(0, 0, ParseForeachMode); 1756 ForeachListValue = dyn_cast<ListInit>(List); 1757 if (ForeachListValue == 0) { 1758 TokError("Expected a Value list"); 1759 return 0; 1760 } 1761 RecTy *ValueType = ForeachListValue->getType(); 1762 ListRecTy *ListType = dyn_cast<ListRecTy>(ValueType); 1763 if (ListType == 0) { 1764 TokError("Value list is not of list type"); 1765 return 0; 1766 } 1767 IterType = ListType->getElementType(); 1768 break; 1769 } 1770 1771 case tgtok::IntVal: { // RangePiece. 1772 if (ParseRangePiece(Ranges)) 1773 return 0; 1774 break; 1775 } 1776 1777 case tgtok::l_brace: { // '{' RangeList '}' 1778 Lex.Lex(); // eat the '{' 1779 Ranges = ParseRangeList(); 1780 if (Lex.getCode() != tgtok::r_brace) { 1781 TokError("expected '}' at end of bit range list"); 1782 return 0; 1783 } 1784 Lex.Lex(); 1785 break; 1786 } 1787 } 1788 1789 if (!Ranges.empty()) { 1790 assert(!IterType && "Type already initialized?"); 1791 IterType = IntRecTy::get(); 1792 std::vector<Init*> Values; 1793 for (unsigned i = 0, e = Ranges.size(); i != e; ++i) 1794 Values.push_back(IntInit::get(Ranges[i])); 1795 ForeachListValue = ListInit::get(Values, IterType); 1796 } 1797 1798 if (!IterType) 1799 return 0; 1800 1801 return VarInit::get(DeclName, IterType); 1802 } 1803 1804 /// ParseTemplateArgList - Read a template argument list, which is a non-empty 1805 /// sequence of template-declarations in <>'s. If CurRec is non-null, these are 1806 /// template args for a def, which may or may not be in a multiclass. If null, 1807 /// these are the template args for a multiclass. 1808 /// 1809 /// TemplateArgList ::= '<' Declaration (',' Declaration)* '>' 1810 /// 1811 bool TGParser::ParseTemplateArgList(Record *CurRec) { 1812 assert(Lex.getCode() == tgtok::less && "Not a template arg list!"); 1813 Lex.Lex(); // eat the '<' 1814 1815 Record *TheRecToAddTo = CurRec ? CurRec : &CurMultiClass->Rec; 1816 1817 // Read the first declaration. 1818 Init *TemplArg = ParseDeclaration(CurRec, true/*templateargs*/); 1819 if (TemplArg == 0) 1820 return true; 1821 1822 TheRecToAddTo->addTemplateArg(TemplArg); 1823 1824 while (Lex.getCode() == tgtok::comma) { 1825 Lex.Lex(); // eat the ',' 1826 1827 // Read the following declarations. 1828 TemplArg = ParseDeclaration(CurRec, true/*templateargs*/); 1829 if (TemplArg == 0) 1830 return true; 1831 TheRecToAddTo->addTemplateArg(TemplArg); 1832 } 1833 1834 if (Lex.getCode() != tgtok::greater) 1835 return TokError("expected '>' at end of template argument list"); 1836 Lex.Lex(); // eat the '>'. 1837 return false; 1838 } 1839 1840 1841 /// ParseBodyItem - Parse a single item at within the body of a def or class. 1842 /// 1843 /// BodyItem ::= Declaration ';' 1844 /// BodyItem ::= LET ID OptionalBitList '=' Value ';' 1845 bool TGParser::ParseBodyItem(Record *CurRec) { 1846 if (Lex.getCode() != tgtok::Let) { 1847 if (ParseDeclaration(CurRec, false) == 0) 1848 return true; 1849 1850 if (Lex.getCode() != tgtok::semi) 1851 return TokError("expected ';' after declaration"); 1852 Lex.Lex(); 1853 return false; 1854 } 1855 1856 // LET ID OptionalRangeList '=' Value ';' 1857 if (Lex.Lex() != tgtok::Id) 1858 return TokError("expected field identifier after let"); 1859 1860 SMLoc IdLoc = Lex.getLoc(); 1861 std::string FieldName = Lex.getCurStrVal(); 1862 Lex.Lex(); // eat the field name. 1863 1864 std::vector<unsigned> BitList; 1865 if (ParseOptionalBitList(BitList)) 1866 return true; 1867 std::reverse(BitList.begin(), BitList.end()); 1868 1869 if (Lex.getCode() != tgtok::equal) 1870 return TokError("expected '=' in let expression"); 1871 Lex.Lex(); // eat the '='. 1872 1873 RecordVal *Field = CurRec->getValue(FieldName); 1874 if (Field == 0) 1875 return TokError("Value '" + FieldName + "' unknown!"); 1876 1877 RecTy *Type = Field->getType(); 1878 1879 Init *Val = ParseValue(CurRec, Type); 1880 if (Val == 0) return true; 1881 1882 if (Lex.getCode() != tgtok::semi) 1883 return TokError("expected ';' after let expression"); 1884 Lex.Lex(); 1885 1886 return SetValue(CurRec, IdLoc, FieldName, BitList, Val); 1887 } 1888 1889 /// ParseBody - Read the body of a class or def. Return true on error, false on 1890 /// success. 1891 /// 1892 /// Body ::= ';' 1893 /// Body ::= '{' BodyList '}' 1894 /// BodyList BodyItem* 1895 /// 1896 bool TGParser::ParseBody(Record *CurRec) { 1897 // If this is a null definition, just eat the semi and return. 1898 if (Lex.getCode() == tgtok::semi) { 1899 Lex.Lex(); 1900 return false; 1901 } 1902 1903 if (Lex.getCode() != tgtok::l_brace) 1904 return TokError("Expected ';' or '{' to start body"); 1905 // Eat the '{'. 1906 Lex.Lex(); 1907 1908 while (Lex.getCode() != tgtok::r_brace) 1909 if (ParseBodyItem(CurRec)) 1910 return true; 1911 1912 // Eat the '}'. 1913 Lex.Lex(); 1914 return false; 1915 } 1916 1917 /// \brief Apply the current let bindings to \a CurRec. 1918 /// \returns true on error, false otherwise. 1919 bool TGParser::ApplyLetStack(Record *CurRec) { 1920 for (unsigned i = 0, e = LetStack.size(); i != e; ++i) 1921 for (unsigned j = 0, e = LetStack[i].size(); j != e; ++j) 1922 if (SetValue(CurRec, LetStack[i][j].Loc, LetStack[i][j].Name, 1923 LetStack[i][j].Bits, LetStack[i][j].Value)) 1924 return true; 1925 return false; 1926 } 1927 1928 /// ParseObjectBody - Parse the body of a def or class. This consists of an 1929 /// optional ClassList followed by a Body. CurRec is the current def or class 1930 /// that is being parsed. 1931 /// 1932 /// ObjectBody ::= BaseClassList Body 1933 /// BaseClassList ::= /*empty*/ 1934 /// BaseClassList ::= ':' BaseClassListNE 1935 /// BaseClassListNE ::= SubClassRef (',' SubClassRef)* 1936 /// 1937 bool TGParser::ParseObjectBody(Record *CurRec) { 1938 // If there is a baseclass list, read it. 1939 if (Lex.getCode() == tgtok::colon) { 1940 Lex.Lex(); 1941 1942 // Read all of the subclasses. 1943 SubClassReference SubClass = ParseSubClassReference(CurRec, false); 1944 while (1) { 1945 // Check for error. 1946 if (SubClass.Rec == 0) return true; 1947 1948 // Add it. 1949 if (AddSubClass(CurRec, SubClass)) 1950 return true; 1951 1952 if (Lex.getCode() != tgtok::comma) break; 1953 Lex.Lex(); // eat ','. 1954 SubClass = ParseSubClassReference(CurRec, false); 1955 } 1956 } 1957 1958 if (ApplyLetStack(CurRec)) 1959 return true; 1960 1961 return ParseBody(CurRec); 1962 } 1963 1964 /// ParseDef - Parse and return a top level or multiclass def, return the record 1965 /// corresponding to it. This returns null on error. 1966 /// 1967 /// DefInst ::= DEF ObjectName ObjectBody 1968 /// 1969 bool TGParser::ParseDef(MultiClass *CurMultiClass) { 1970 SMLoc DefLoc = Lex.getLoc(); 1971 assert(Lex.getCode() == tgtok::Def && "Unknown tok"); 1972 Lex.Lex(); // Eat the 'def' token. 1973 1974 // Parse ObjectName and make a record for it. 1975 Record *CurRec; 1976 Init *Name = ParseObjectName(CurMultiClass); 1977 if (Name) 1978 CurRec = new Record(Name, DefLoc, Records); 1979 else 1980 CurRec = new Record(GetNewAnonymousName(), DefLoc, Records, 1981 /*IsAnonymous=*/true); 1982 1983 if (!CurMultiClass && Loops.empty()) { 1984 // Top-level def definition. 1985 1986 // Ensure redefinition doesn't happen. 1987 if (Records.getDef(CurRec->getNameInitAsString())) { 1988 Error(DefLoc, "def '" + CurRec->getNameInitAsString() 1989 + "' already defined"); 1990 return true; 1991 } 1992 Records.addDef(CurRec); 1993 1994 if (ParseObjectBody(CurRec)) 1995 return true; 1996 } else if (CurMultiClass) { 1997 // Parse the body before adding this prototype to the DefPrototypes vector. 1998 // That way implicit definitions will be added to the DefPrototypes vector 1999 // before this object, instantiated prior to defs derived from this object, 2000 // and this available for indirect name resolution when defs derived from 2001 // this object are instantiated. 2002 if (ParseObjectBody(CurRec)) 2003 return true; 2004 2005 // Otherwise, a def inside a multiclass, add it to the multiclass. 2006 for (unsigned i = 0, e = CurMultiClass->DefPrototypes.size(); i != e; ++i) 2007 if (CurMultiClass->DefPrototypes[i]->getNameInit() 2008 == CurRec->getNameInit()) { 2009 Error(DefLoc, "def '" + CurRec->getNameInitAsString() + 2010 "' already defined in this multiclass!"); 2011 return true; 2012 } 2013 CurMultiClass->DefPrototypes.push_back(CurRec); 2014 } else if (ParseObjectBody(CurRec)) 2015 return true; 2016 2017 if (CurMultiClass == 0) // Def's in multiclasses aren't really defs. 2018 // See Record::setName(). This resolve step will see any new name 2019 // for the def that might have been created when resolving 2020 // inheritance, values and arguments above. 2021 CurRec->resolveReferences(); 2022 2023 // If ObjectBody has template arguments, it's an error. 2024 assert(CurRec->getTemplateArgs().empty() && "How'd this get template args?"); 2025 2026 if (CurMultiClass) { 2027 // Copy the template arguments for the multiclass into the def. 2028 const std::vector<Init *> &TArgs = 2029 CurMultiClass->Rec.getTemplateArgs(); 2030 2031 for (unsigned i = 0, e = TArgs.size(); i != e; ++i) { 2032 const RecordVal *RV = CurMultiClass->Rec.getValue(TArgs[i]); 2033 assert(RV && "Template arg doesn't exist?"); 2034 CurRec->addValue(*RV); 2035 } 2036 } 2037 2038 if (ProcessForeachDefs(CurRec, DefLoc)) { 2039 Error(DefLoc, 2040 "Could not process loops for def" + CurRec->getNameInitAsString()); 2041 return true; 2042 } 2043 2044 return false; 2045 } 2046 2047 /// ParseForeach - Parse a for statement. Return the record corresponding 2048 /// to it. This returns true on error. 2049 /// 2050 /// Foreach ::= FOREACH Declaration IN '{ ObjectList '}' 2051 /// Foreach ::= FOREACH Declaration IN Object 2052 /// 2053 bool TGParser::ParseForeach(MultiClass *CurMultiClass) { 2054 assert(Lex.getCode() == tgtok::Foreach && "Unknown tok"); 2055 Lex.Lex(); // Eat the 'for' token. 2056 2057 // Make a temporary object to record items associated with the for 2058 // loop. 2059 ListInit *ListValue = 0; 2060 VarInit *IterName = ParseForeachDeclaration(ListValue); 2061 if (IterName == 0) 2062 return TokError("expected declaration in for"); 2063 2064 if (Lex.getCode() != tgtok::In) 2065 return TokError("Unknown tok"); 2066 Lex.Lex(); // Eat the in 2067 2068 // Create a loop object and remember it. 2069 Loops.push_back(ForeachLoop(IterName, ListValue)); 2070 2071 if (Lex.getCode() != tgtok::l_brace) { 2072 // FOREACH Declaration IN Object 2073 if (ParseObject(CurMultiClass)) 2074 return true; 2075 } 2076 else { 2077 SMLoc BraceLoc = Lex.getLoc(); 2078 // Otherwise, this is a group foreach. 2079 Lex.Lex(); // eat the '{'. 2080 2081 // Parse the object list. 2082 if (ParseObjectList(CurMultiClass)) 2083 return true; 2084 2085 if (Lex.getCode() != tgtok::r_brace) { 2086 TokError("expected '}' at end of foreach command"); 2087 return Error(BraceLoc, "to match this '{'"); 2088 } 2089 Lex.Lex(); // Eat the } 2090 } 2091 2092 // We've processed everything in this loop. 2093 Loops.pop_back(); 2094 2095 return false; 2096 } 2097 2098 /// ParseClass - Parse a tblgen class definition. 2099 /// 2100 /// ClassInst ::= CLASS ID TemplateArgList? ObjectBody 2101 /// 2102 bool TGParser::ParseClass() { 2103 assert(Lex.getCode() == tgtok::Class && "Unexpected token!"); 2104 Lex.Lex(); 2105 2106 if (Lex.getCode() != tgtok::Id) 2107 return TokError("expected class name after 'class' keyword"); 2108 2109 Record *CurRec = Records.getClass(Lex.getCurStrVal()); 2110 if (CurRec) { 2111 // If the body was previously defined, this is an error. 2112 if (CurRec->getValues().size() > 1 || // Account for NAME. 2113 !CurRec->getSuperClasses().empty() || 2114 !CurRec->getTemplateArgs().empty()) 2115 return TokError("Class '" + CurRec->getNameInitAsString() 2116 + "' already defined"); 2117 } else { 2118 // If this is the first reference to this class, create and add it. 2119 CurRec = new Record(Lex.getCurStrVal(), Lex.getLoc(), Records); 2120 Records.addClass(CurRec); 2121 } 2122 Lex.Lex(); // eat the name. 2123 2124 // If there are template args, parse them. 2125 if (Lex.getCode() == tgtok::less) 2126 if (ParseTemplateArgList(CurRec)) 2127 return true; 2128 2129 // Finally, parse the object body. 2130 return ParseObjectBody(CurRec); 2131 } 2132 2133 /// ParseLetList - Parse a non-empty list of assignment expressions into a list 2134 /// of LetRecords. 2135 /// 2136 /// LetList ::= LetItem (',' LetItem)* 2137 /// LetItem ::= ID OptionalRangeList '=' Value 2138 /// 2139 std::vector<LetRecord> TGParser::ParseLetList() { 2140 std::vector<LetRecord> Result; 2141 2142 while (1) { 2143 if (Lex.getCode() != tgtok::Id) { 2144 TokError("expected identifier in let definition"); 2145 return std::vector<LetRecord>(); 2146 } 2147 std::string Name = Lex.getCurStrVal(); 2148 SMLoc NameLoc = Lex.getLoc(); 2149 Lex.Lex(); // Eat the identifier. 2150 2151 // Check for an optional RangeList. 2152 std::vector<unsigned> Bits; 2153 if (ParseOptionalRangeList(Bits)) 2154 return std::vector<LetRecord>(); 2155 std::reverse(Bits.begin(), Bits.end()); 2156 2157 if (Lex.getCode() != tgtok::equal) { 2158 TokError("expected '=' in let expression"); 2159 return std::vector<LetRecord>(); 2160 } 2161 Lex.Lex(); // eat the '='. 2162 2163 Init *Val = ParseValue(0); 2164 if (Val == 0) return std::vector<LetRecord>(); 2165 2166 // Now that we have everything, add the record. 2167 Result.push_back(LetRecord(Name, Bits, Val, NameLoc)); 2168 2169 if (Lex.getCode() != tgtok::comma) 2170 return Result; 2171 Lex.Lex(); // eat the comma. 2172 } 2173 } 2174 2175 /// ParseTopLevelLet - Parse a 'let' at top level. This can be a couple of 2176 /// different related productions. This works inside multiclasses too. 2177 /// 2178 /// Object ::= LET LetList IN '{' ObjectList '}' 2179 /// Object ::= LET LetList IN Object 2180 /// 2181 bool TGParser::ParseTopLevelLet(MultiClass *CurMultiClass) { 2182 assert(Lex.getCode() == tgtok::Let && "Unexpected token"); 2183 Lex.Lex(); 2184 2185 // Add this entry to the let stack. 2186 std::vector<LetRecord> LetInfo = ParseLetList(); 2187 if (LetInfo.empty()) return true; 2188 LetStack.push_back(LetInfo); 2189 2190 if (Lex.getCode() != tgtok::In) 2191 return TokError("expected 'in' at end of top-level 'let'"); 2192 Lex.Lex(); 2193 2194 // If this is a scalar let, just handle it now 2195 if (Lex.getCode() != tgtok::l_brace) { 2196 // LET LetList IN Object 2197 if (ParseObject(CurMultiClass)) 2198 return true; 2199 } else { // Object ::= LETCommand '{' ObjectList '}' 2200 SMLoc BraceLoc = Lex.getLoc(); 2201 // Otherwise, this is a group let. 2202 Lex.Lex(); // eat the '{'. 2203 2204 // Parse the object list. 2205 if (ParseObjectList(CurMultiClass)) 2206 return true; 2207 2208 if (Lex.getCode() != tgtok::r_brace) { 2209 TokError("expected '}' at end of top level let command"); 2210 return Error(BraceLoc, "to match this '{'"); 2211 } 2212 Lex.Lex(); 2213 } 2214 2215 // Outside this let scope, this let block is not active. 2216 LetStack.pop_back(); 2217 return false; 2218 } 2219 2220 /// ParseMultiClass - Parse a multiclass definition. 2221 /// 2222 /// MultiClassInst ::= MULTICLASS ID TemplateArgList? 2223 /// ':' BaseMultiClassList '{' MultiClassObject+ '}' 2224 /// MultiClassObject ::= DefInst 2225 /// MultiClassObject ::= MultiClassInst 2226 /// MultiClassObject ::= DefMInst 2227 /// MultiClassObject ::= LETCommand '{' ObjectList '}' 2228 /// MultiClassObject ::= LETCommand Object 2229 /// 2230 bool TGParser::ParseMultiClass() { 2231 assert(Lex.getCode() == tgtok::MultiClass && "Unexpected token"); 2232 Lex.Lex(); // Eat the multiclass token. 2233 2234 if (Lex.getCode() != tgtok::Id) 2235 return TokError("expected identifier after multiclass for name"); 2236 std::string Name = Lex.getCurStrVal(); 2237 2238 if (MultiClasses.count(Name)) 2239 return TokError("multiclass '" + Name + "' already defined"); 2240 2241 CurMultiClass = MultiClasses[Name] = new MultiClass(Name, 2242 Lex.getLoc(), Records); 2243 Lex.Lex(); // Eat the identifier. 2244 2245 // If there are template args, parse them. 2246 if (Lex.getCode() == tgtok::less) 2247 if (ParseTemplateArgList(0)) 2248 return true; 2249 2250 bool inherits = false; 2251 2252 // If there are submulticlasses, parse them. 2253 if (Lex.getCode() == tgtok::colon) { 2254 inherits = true; 2255 2256 Lex.Lex(); 2257 2258 // Read all of the submulticlasses. 2259 SubMultiClassReference SubMultiClass = 2260 ParseSubMultiClassReference(CurMultiClass); 2261 while (1) { 2262 // Check for error. 2263 if (SubMultiClass.MC == 0) return true; 2264 2265 // Add it. 2266 if (AddSubMultiClass(CurMultiClass, SubMultiClass)) 2267 return true; 2268 2269 if (Lex.getCode() != tgtok::comma) break; 2270 Lex.Lex(); // eat ','. 2271 SubMultiClass = ParseSubMultiClassReference(CurMultiClass); 2272 } 2273 } 2274 2275 if (Lex.getCode() != tgtok::l_brace) { 2276 if (!inherits) 2277 return TokError("expected '{' in multiclass definition"); 2278 else if (Lex.getCode() != tgtok::semi) 2279 return TokError("expected ';' in multiclass definition"); 2280 else 2281 Lex.Lex(); // eat the ';'. 2282 } else { 2283 if (Lex.Lex() == tgtok::r_brace) // eat the '{'. 2284 return TokError("multiclass must contain at least one def"); 2285 2286 while (Lex.getCode() != tgtok::r_brace) { 2287 switch (Lex.getCode()) { 2288 default: 2289 return TokError("expected 'let', 'def' or 'defm' in multiclass body"); 2290 case tgtok::Let: 2291 case tgtok::Def: 2292 case tgtok::Defm: 2293 case tgtok::Foreach: 2294 if (ParseObject(CurMultiClass)) 2295 return true; 2296 break; 2297 } 2298 } 2299 Lex.Lex(); // eat the '}'. 2300 } 2301 2302 CurMultiClass = 0; 2303 return false; 2304 } 2305 2306 Record *TGParser:: 2307 InstantiateMulticlassDef(MultiClass &MC, 2308 Record *DefProto, 2309 Init *&DefmPrefix, 2310 SMRange DefmPrefixRange) { 2311 // We need to preserve DefProto so it can be reused for later 2312 // instantiations, so create a new Record to inherit from it. 2313 2314 // Add in the defm name. If the defm prefix is empty, give each 2315 // instantiated def a unique name. Otherwise, if "#NAME#" exists in the 2316 // name, substitute the prefix for #NAME#. Otherwise, use the defm name 2317 // as a prefix. 2318 2319 bool IsAnonymous = false; 2320 if (DefmPrefix == 0) { 2321 DefmPrefix = StringInit::get(GetNewAnonymousName()); 2322 IsAnonymous = true; 2323 } 2324 2325 Init *DefName = DefProto->getNameInit(); 2326 2327 StringInit *DefNameString = dyn_cast<StringInit>(DefName); 2328 2329 if (DefNameString != 0) { 2330 // We have a fully expanded string so there are no operators to 2331 // resolve. We should concatenate the given prefix and name. 2332 DefName = 2333 BinOpInit::get(BinOpInit::STRCONCAT, 2334 UnOpInit::get(UnOpInit::CAST, DefmPrefix, 2335 StringRecTy::get())->Fold(DefProto, &MC), 2336 DefName, StringRecTy::get())->Fold(DefProto, &MC); 2337 } 2338 2339 // Make a trail of SMLocs from the multiclass instantiations. 2340 SmallVector<SMLoc, 4> Locs(1, DefmPrefixRange.Start); 2341 Locs.append(DefProto->getLoc().begin(), DefProto->getLoc().end()); 2342 Record *CurRec = new Record(DefName, Locs, Records, IsAnonymous); 2343 2344 SubClassReference Ref; 2345 Ref.RefRange = DefmPrefixRange; 2346 Ref.Rec = DefProto; 2347 AddSubClass(CurRec, Ref); 2348 2349 // Set the value for NAME. We don't resolve references to it 'til later, 2350 // though, so that uses in nested multiclass names don't get 2351 // confused. 2352 if (SetValue(CurRec, Ref.RefRange.Start, "NAME", std::vector<unsigned>(), 2353 DefmPrefix)) { 2354 Error(DefmPrefixRange.Start, "Could not resolve " 2355 + CurRec->getNameInitAsString() + ":NAME to '" 2356 + DefmPrefix->getAsUnquotedString() + "'"); 2357 return 0; 2358 } 2359 2360 // If the DefNameString didn't resolve, we probably have a reference to 2361 // NAME and need to replace it. We need to do at least this much greedily, 2362 // otherwise nested multiclasses will end up with incorrect NAME expansions. 2363 if (DefNameString == 0) { 2364 RecordVal *DefNameRV = CurRec->getValue("NAME"); 2365 CurRec->resolveReferencesTo(DefNameRV); 2366 } 2367 2368 if (!CurMultiClass) { 2369 // Now that we're at the top level, resolve all NAME references 2370 // in the resultant defs that weren't in the def names themselves. 2371 RecordVal *DefNameRV = CurRec->getValue("NAME"); 2372 CurRec->resolveReferencesTo(DefNameRV); 2373 2374 // Now that NAME references are resolved and we're at the top level of 2375 // any multiclass expansions, add the record to the RecordKeeper. If we are 2376 // currently in a multiclass, it means this defm appears inside a 2377 // multiclass and its name won't be fully resolvable until we see 2378 // the top-level defm. Therefore, we don't add this to the 2379 // RecordKeeper at this point. If we did we could get duplicate 2380 // defs as more than one probably refers to NAME or some other 2381 // common internal placeholder. 2382 2383 // Ensure redefinition doesn't happen. 2384 if (Records.getDef(CurRec->getNameInitAsString())) { 2385 Error(DefmPrefixRange.Start, "def '" + CurRec->getNameInitAsString() + 2386 "' already defined, instantiating defm with subdef '" + 2387 DefProto->getNameInitAsString() + "'"); 2388 return 0; 2389 } 2390 2391 Records.addDef(CurRec); 2392 } 2393 2394 return CurRec; 2395 } 2396 2397 bool TGParser::ResolveMulticlassDefArgs(MultiClass &MC, 2398 Record *CurRec, 2399 SMLoc DefmPrefixLoc, 2400 SMLoc SubClassLoc, 2401 const std::vector<Init *> &TArgs, 2402 std::vector<Init *> &TemplateVals, 2403 bool DeleteArgs) { 2404 // Loop over all of the template arguments, setting them to the specified 2405 // value or leaving them as the default if necessary. 2406 for (unsigned i = 0, e = TArgs.size(); i != e; ++i) { 2407 // Check if a value is specified for this temp-arg. 2408 if (i < TemplateVals.size()) { 2409 // Set it now. 2410 if (SetValue(CurRec, DefmPrefixLoc, TArgs[i], std::vector<unsigned>(), 2411 TemplateVals[i])) 2412 return true; 2413 2414 // Resolve it next. 2415 CurRec->resolveReferencesTo(CurRec->getValue(TArgs[i])); 2416 2417 if (DeleteArgs) 2418 // Now remove it. 2419 CurRec->removeValue(TArgs[i]); 2420 2421 } else if (!CurRec->getValue(TArgs[i])->getValue()->isComplete()) { 2422 return Error(SubClassLoc, "value not specified for template argument #"+ 2423 utostr(i) + " (" + TArgs[i]->getAsUnquotedString() 2424 + ") of multiclassclass '" + MC.Rec.getNameInitAsString() 2425 + "'"); 2426 } 2427 } 2428 return false; 2429 } 2430 2431 bool TGParser::ResolveMulticlassDef(MultiClass &MC, 2432 Record *CurRec, 2433 Record *DefProto, 2434 SMLoc DefmPrefixLoc) { 2435 // If the mdef is inside a 'let' expression, add to each def. 2436 if (ApplyLetStack(CurRec)) 2437 return Error(DefmPrefixLoc, "when instantiating this defm"); 2438 2439 // Don't create a top level definition for defm inside multiclasses, 2440 // instead, only update the prototypes and bind the template args 2441 // with the new created definition. 2442 if (!CurMultiClass) 2443 return false; 2444 for (unsigned i = 0, e = CurMultiClass->DefPrototypes.size(); 2445 i != e; ++i) 2446 if (CurMultiClass->DefPrototypes[i]->getNameInit() 2447 == CurRec->getNameInit()) 2448 return Error(DefmPrefixLoc, "defm '" + CurRec->getNameInitAsString() + 2449 "' already defined in this multiclass!"); 2450 CurMultiClass->DefPrototypes.push_back(CurRec); 2451 2452 // Copy the template arguments for the multiclass into the new def. 2453 const std::vector<Init *> &TA = 2454 CurMultiClass->Rec.getTemplateArgs(); 2455 2456 for (unsigned i = 0, e = TA.size(); i != e; ++i) { 2457 const RecordVal *RV = CurMultiClass->Rec.getValue(TA[i]); 2458 assert(RV && "Template arg doesn't exist?"); 2459 CurRec->addValue(*RV); 2460 } 2461 2462 return false; 2463 } 2464 2465 /// ParseDefm - Parse the instantiation of a multiclass. 2466 /// 2467 /// DefMInst ::= DEFM ID ':' DefmSubClassRef ';' 2468 /// 2469 bool TGParser::ParseDefm(MultiClass *CurMultiClass) { 2470 assert(Lex.getCode() == tgtok::Defm && "Unexpected token!"); 2471 SMLoc DefmLoc = Lex.getLoc(); 2472 Init *DefmPrefix = 0; 2473 2474 if (Lex.Lex() == tgtok::Id) { // eat the defm. 2475 DefmPrefix = ParseObjectName(CurMultiClass); 2476 } 2477 2478 SMLoc DefmPrefixEndLoc = Lex.getLoc(); 2479 if (Lex.getCode() != tgtok::colon) 2480 return TokError("expected ':' after defm identifier"); 2481 2482 // Keep track of the new generated record definitions. 2483 std::vector<Record*> NewRecDefs; 2484 2485 // This record also inherits from a regular class (non-multiclass)? 2486 bool InheritFromClass = false; 2487 2488 // eat the colon. 2489 Lex.Lex(); 2490 2491 SMLoc SubClassLoc = Lex.getLoc(); 2492 SubClassReference Ref = ParseSubClassReference(0, true); 2493 2494 while (1) { 2495 if (Ref.Rec == 0) return true; 2496 2497 // To instantiate a multiclass, we need to first get the multiclass, then 2498 // instantiate each def contained in the multiclass with the SubClassRef 2499 // template parameters. 2500 MultiClass *MC = MultiClasses[Ref.Rec->getName()]; 2501 assert(MC && "Didn't lookup multiclass correctly?"); 2502 std::vector<Init*> &TemplateVals = Ref.TemplateArgs; 2503 2504 // Verify that the correct number of template arguments were specified. 2505 const std::vector<Init *> &TArgs = MC->Rec.getTemplateArgs(); 2506 if (TArgs.size() < TemplateVals.size()) 2507 return Error(SubClassLoc, 2508 "more template args specified than multiclass expects"); 2509 2510 // Loop over all the def's in the multiclass, instantiating each one. 2511 for (unsigned i = 0, e = MC->DefPrototypes.size(); i != e; ++i) { 2512 Record *DefProto = MC->DefPrototypes[i]; 2513 2514 Record *CurRec = InstantiateMulticlassDef(*MC, DefProto, DefmPrefix, 2515 SMRange(DefmLoc, 2516 DefmPrefixEndLoc)); 2517 if (!CurRec) 2518 return true; 2519 2520 if (ResolveMulticlassDefArgs(*MC, CurRec, DefmLoc, SubClassLoc, 2521 TArgs, TemplateVals, true/*Delete args*/)) 2522 return Error(SubClassLoc, "could not instantiate def"); 2523 2524 if (ResolveMulticlassDef(*MC, CurRec, DefProto, DefmLoc)) 2525 return Error(SubClassLoc, "could not instantiate def"); 2526 2527 NewRecDefs.push_back(CurRec); 2528 } 2529 2530 2531 if (Lex.getCode() != tgtok::comma) break; 2532 Lex.Lex(); // eat ','. 2533 2534 if (Lex.getCode() != tgtok::Id) 2535 return TokError("expected identifier"); 2536 2537 SubClassLoc = Lex.getLoc(); 2538 2539 // A defm can inherit from regular classes (non-multiclass) as 2540 // long as they come in the end of the inheritance list. 2541 InheritFromClass = (Records.getClass(Lex.getCurStrVal()) != 0); 2542 2543 if (InheritFromClass) 2544 break; 2545 2546 Ref = ParseSubClassReference(0, true); 2547 } 2548 2549 if (InheritFromClass) { 2550 // Process all the classes to inherit as if they were part of a 2551 // regular 'def' and inherit all record values. 2552 SubClassReference SubClass = ParseSubClassReference(0, false); 2553 while (1) { 2554 // Check for error. 2555 if (SubClass.Rec == 0) return true; 2556 2557 // Get the expanded definition prototypes and teach them about 2558 // the record values the current class to inherit has 2559 for (unsigned i = 0, e = NewRecDefs.size(); i != e; ++i) { 2560 Record *CurRec = NewRecDefs[i]; 2561 2562 // Add it. 2563 if (AddSubClass(CurRec, SubClass)) 2564 return true; 2565 2566 if (ApplyLetStack(CurRec)) 2567 return true; 2568 } 2569 2570 if (Lex.getCode() != tgtok::comma) break; 2571 Lex.Lex(); // eat ','. 2572 SubClass = ParseSubClassReference(0, false); 2573 } 2574 } 2575 2576 if (!CurMultiClass) 2577 for (unsigned i = 0, e = NewRecDefs.size(); i != e; ++i) 2578 // See Record::setName(). This resolve step will see any new 2579 // name for the def that might have been created when resolving 2580 // inheritance, values and arguments above. 2581 NewRecDefs[i]->resolveReferences(); 2582 2583 if (Lex.getCode() != tgtok::semi) 2584 return TokError("expected ';' at end of defm"); 2585 Lex.Lex(); 2586 2587 return false; 2588 } 2589 2590 /// ParseObject 2591 /// Object ::= ClassInst 2592 /// Object ::= DefInst 2593 /// Object ::= MultiClassInst 2594 /// Object ::= DefMInst 2595 /// Object ::= LETCommand '{' ObjectList '}' 2596 /// Object ::= LETCommand Object 2597 bool TGParser::ParseObject(MultiClass *MC) { 2598 switch (Lex.getCode()) { 2599 default: 2600 return TokError("Expected class, def, defm, multiclass or let definition"); 2601 case tgtok::Let: return ParseTopLevelLet(MC); 2602 case tgtok::Def: return ParseDef(MC); 2603 case tgtok::Foreach: return ParseForeach(MC); 2604 case tgtok::Defm: return ParseDefm(MC); 2605 case tgtok::Class: return ParseClass(); 2606 case tgtok::MultiClass: return ParseMultiClass(); 2607 } 2608 } 2609 2610 /// ParseObjectList 2611 /// ObjectList :== Object* 2612 bool TGParser::ParseObjectList(MultiClass *MC) { 2613 while (isObjectStart(Lex.getCode())) { 2614 if (ParseObject(MC)) 2615 return true; 2616 } 2617 return false; 2618 } 2619 2620 bool TGParser::ParseFile() { 2621 Lex.Lex(); // Prime the lexer. 2622 if (ParseObjectList()) return true; 2623 2624 // If we have unread input at the end of the file, report it. 2625 if (Lex.getCode() == tgtok::Eof) 2626 return false; 2627 2628 return TokError("Unexpected input at top level"); 2629 } 2630 2631