1 //===- Record.cpp - Record implementation ---------------------------------===// 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 tablegen record classes. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/TableGen/Record.h" 15 #include "llvm/ADT/DenseMap.h" 16 #include "llvm/ADT/FoldingSet.h" 17 #include "llvm/ADT/Hashing.h" 18 #include "llvm/ADT/STLExtras.h" 19 #include "llvm/ADT/SmallVector.h" 20 #include "llvm/ADT/StringExtras.h" 21 #include "llvm/ADT/StringMap.h" 22 #include "llvm/Support/DataTypes.h" 23 #include "llvm/Support/ErrorHandling.h" 24 #include "llvm/Support/Format.h" 25 #include "llvm/TableGen/Error.h" 26 27 using namespace llvm; 28 29 //===----------------------------------------------------------------------===// 30 // std::string wrapper for DenseMap purposes 31 //===----------------------------------------------------------------------===// 32 33 namespace llvm { 34 35 /// TableGenStringKey - This is a wrapper for std::string suitable for 36 /// using as a key to a DenseMap. Because there isn't a particularly 37 /// good way to indicate tombstone or empty keys for strings, we want 38 /// to wrap std::string to indicate that this is a "special" string 39 /// not expected to take on certain values (those of the tombstone and 40 /// empty keys). This makes things a little safer as it clarifies 41 /// that DenseMap is really not appropriate for general strings. 42 43 class TableGenStringKey { 44 public: 45 TableGenStringKey(const std::string &str) : data(str) {} 46 TableGenStringKey(const char *str) : data(str) {} 47 48 const std::string &str() const { return data; } 49 50 friend hash_code hash_value(const TableGenStringKey &Value) { 51 using llvm::hash_value; 52 return hash_value(Value.str()); 53 } 54 private: 55 std::string data; 56 }; 57 58 /// Specialize DenseMapInfo for TableGenStringKey. 59 template<> struct DenseMapInfo<TableGenStringKey> { 60 static inline TableGenStringKey getEmptyKey() { 61 TableGenStringKey Empty("<<<EMPTY KEY>>>"); 62 return Empty; 63 } 64 static inline TableGenStringKey getTombstoneKey() { 65 TableGenStringKey Tombstone("<<<TOMBSTONE KEY>>>"); 66 return Tombstone; 67 } 68 static unsigned getHashValue(const TableGenStringKey& Val) { 69 using llvm::hash_value; 70 return hash_value(Val); 71 } 72 static bool isEqual(const TableGenStringKey& LHS, 73 const TableGenStringKey& RHS) { 74 return LHS.str() == RHS.str(); 75 } 76 }; 77 78 } // namespace llvm 79 80 //===----------------------------------------------------------------------===// 81 // Type implementations 82 //===----------------------------------------------------------------------===// 83 84 BitRecTy BitRecTy::Shared; 85 IntRecTy IntRecTy::Shared; 86 StringRecTy StringRecTy::Shared; 87 DagRecTy DagRecTy::Shared; 88 89 void RecTy::anchor() { } 90 void RecTy::dump() const { print(errs()); } 91 92 ListRecTy *RecTy::getListTy() { 93 if (!ListTy) 94 ListTy = new ListRecTy(this); 95 return ListTy; 96 } 97 98 bool RecTy::baseClassOf(const RecTy *RHS) const{ 99 assert (RHS && "NULL pointer"); 100 return Kind == RHS->getRecTyKind(); 101 } 102 103 Init *BitRecTy::convertValue(BitsInit *BI) { 104 if (BI->getNumBits() != 1) return nullptr; // Only accept if just one bit! 105 return BI->getBit(0); 106 } 107 108 Init *BitRecTy::convertValue(IntInit *II) { 109 int64_t Val = II->getValue(); 110 if (Val != 0 && Val != 1) return nullptr; // Only accept 0 or 1 for a bit! 111 112 return BitInit::get(Val != 0); 113 } 114 115 Init *BitRecTy::convertValue(TypedInit *VI) { 116 RecTy *Ty = VI->getType(); 117 if (isa<BitRecTy>(Ty) || isa<BitsRecTy>(Ty) || isa<IntRecTy>(Ty)) 118 return VI; // Accept variable if it is already of bit type! 119 return nullptr; 120 } 121 122 bool BitRecTy::baseClassOf(const RecTy *RHS) const{ 123 if(RecTy::baseClassOf(RHS) || getRecTyKind() == IntRecTyKind) 124 return true; 125 if(const BitsRecTy *BitsTy = dyn_cast<BitsRecTy>(RHS)) 126 return BitsTy->getNumBits() == 1; 127 return false; 128 } 129 130 BitsRecTy *BitsRecTy::get(unsigned Sz) { 131 static std::vector<BitsRecTy*> Shared; 132 if (Sz >= Shared.size()) 133 Shared.resize(Sz + 1); 134 BitsRecTy *&Ty = Shared[Sz]; 135 if (!Ty) 136 Ty = new BitsRecTy(Sz); 137 return Ty; 138 } 139 140 std::string BitsRecTy::getAsString() const { 141 return "bits<" + utostr(Size) + ">"; 142 } 143 144 Init *BitsRecTy::convertValue(UnsetInit *UI) { 145 SmallVector<Init *, 16> NewBits(Size); 146 147 for (unsigned i = 0; i != Size; ++i) 148 NewBits[i] = UnsetInit::get(); 149 150 return BitsInit::get(NewBits); 151 } 152 153 Init *BitsRecTy::convertValue(BitInit *UI) { 154 if (Size != 1) return nullptr; // Can only convert single bit. 155 return BitsInit::get(UI); 156 } 157 158 /// canFitInBitfield - Return true if the number of bits is large enough to hold 159 /// the integer value. 160 static bool canFitInBitfield(int64_t Value, unsigned NumBits) { 161 // For example, with NumBits == 4, we permit Values from [-7 .. 15]. 162 return (NumBits >= sizeof(Value) * 8) || 163 (Value >> NumBits == 0) || (Value >> (NumBits-1) == -1); 164 } 165 166 /// convertValue from Int initializer to bits type: Split the integer up into the 167 /// appropriate bits. 168 /// 169 Init *BitsRecTy::convertValue(IntInit *II) { 170 int64_t Value = II->getValue(); 171 // Make sure this bitfield is large enough to hold the integer value. 172 if (!canFitInBitfield(Value, Size)) 173 return nullptr; 174 175 SmallVector<Init *, 16> NewBits(Size); 176 177 for (unsigned i = 0; i != Size; ++i) 178 NewBits[i] = BitInit::get(Value & (1LL << i)); 179 180 return BitsInit::get(NewBits); 181 } 182 183 Init *BitsRecTy::convertValue(BitsInit *BI) { 184 // If the number of bits is right, return it. Otherwise we need to expand or 185 // truncate. 186 if (BI->getNumBits() == Size) return BI; 187 return nullptr; 188 } 189 190 Init *BitsRecTy::convertValue(TypedInit *VI) { 191 if (Size == 1 && isa<BitRecTy>(VI->getType())) 192 return BitsInit::get(VI); 193 194 if (VI->getType()->typeIsConvertibleTo(this)) { 195 SmallVector<Init *, 16> NewBits(Size); 196 197 for (unsigned i = 0; i != Size; ++i) 198 NewBits[i] = VarBitInit::get(VI, i); 199 return BitsInit::get(NewBits); 200 } 201 202 return nullptr; 203 } 204 205 bool BitsRecTy::baseClassOf(const RecTy *RHS) const{ 206 if (RecTy::baseClassOf(RHS)) //argument and the receiver are the same type 207 return cast<BitsRecTy>(RHS)->Size == Size; 208 RecTyKind kind = RHS->getRecTyKind(); 209 return (kind == BitRecTyKind && Size == 1) || (kind == IntRecTyKind); 210 } 211 212 Init *IntRecTy::convertValue(BitInit *BI) { 213 return IntInit::get(BI->getValue()); 214 } 215 216 Init *IntRecTy::convertValue(BitsInit *BI) { 217 int64_t Result = 0; 218 for (unsigned i = 0, e = BI->getNumBits(); i != e; ++i) 219 if (BitInit *Bit = dyn_cast<BitInit>(BI->getBit(i))) { 220 Result |= Bit->getValue() << i; 221 } else { 222 return nullptr; 223 } 224 return IntInit::get(Result); 225 } 226 227 Init *IntRecTy::convertValue(TypedInit *TI) { 228 if (TI->getType()->typeIsConvertibleTo(this)) 229 return TI; // Accept variable if already of the right type! 230 return nullptr; 231 } 232 233 bool IntRecTy::baseClassOf(const RecTy *RHS) const{ 234 RecTyKind kind = RHS->getRecTyKind(); 235 return kind==BitRecTyKind || kind==BitsRecTyKind || kind==IntRecTyKind; 236 } 237 238 Init *StringRecTy::convertValue(UnOpInit *BO) { 239 if (BO->getOpcode() == UnOpInit::CAST) { 240 Init *L = BO->getOperand()->convertInitializerTo(this); 241 if (!L) return nullptr; 242 if (L != BO->getOperand()) 243 return UnOpInit::get(UnOpInit::CAST, L, new StringRecTy); 244 return BO; 245 } 246 247 return convertValue((TypedInit*)BO); 248 } 249 250 Init *StringRecTy::convertValue(BinOpInit *BO) { 251 if (BO->getOpcode() == BinOpInit::STRCONCAT) { 252 Init *L = BO->getLHS()->convertInitializerTo(this); 253 Init *R = BO->getRHS()->convertInitializerTo(this); 254 if (!L || !R) return nullptr; 255 if (L != BO->getLHS() || R != BO->getRHS()) 256 return BinOpInit::get(BinOpInit::STRCONCAT, L, R, new StringRecTy); 257 return BO; 258 } 259 260 return convertValue((TypedInit*)BO); 261 } 262 263 264 Init *StringRecTy::convertValue(TypedInit *TI) { 265 if (isa<StringRecTy>(TI->getType())) 266 return TI; // Accept variable if already of the right type! 267 return nullptr; 268 } 269 270 std::string ListRecTy::getAsString() const { 271 return "list<" + Ty->getAsString() + ">"; 272 } 273 274 Init *ListRecTy::convertValue(ListInit *LI) { 275 std::vector<Init*> Elements; 276 277 // Verify that all of the elements of the list are subclasses of the 278 // appropriate class! 279 for (unsigned i = 0, e = LI->getSize(); i != e; ++i) 280 if (Init *CI = LI->getElement(i)->convertInitializerTo(Ty)) 281 Elements.push_back(CI); 282 else 283 return nullptr; 284 285 if (!isa<ListRecTy>(LI->getType())) 286 return nullptr; 287 288 return ListInit::get(Elements, this); 289 } 290 291 Init *ListRecTy::convertValue(TypedInit *TI) { 292 // Ensure that TI is compatible with our class. 293 if (ListRecTy *LRT = dyn_cast<ListRecTy>(TI->getType())) 294 if (LRT->getElementType()->typeIsConvertibleTo(getElementType())) 295 return TI; 296 return nullptr; 297 } 298 299 bool ListRecTy::baseClassOf(const RecTy *RHS) const{ 300 if(const ListRecTy* ListTy = dyn_cast<ListRecTy>(RHS)) 301 return ListTy->getElementType()->typeIsConvertibleTo(Ty); 302 return false; 303 } 304 305 Init *DagRecTy::convertValue(TypedInit *TI) { 306 if (TI->getType()->typeIsConvertibleTo(this)) 307 return TI; 308 return nullptr; 309 } 310 311 Init *DagRecTy::convertValue(UnOpInit *BO) { 312 if (BO->getOpcode() == UnOpInit::CAST) { 313 Init *L = BO->getOperand()->convertInitializerTo(this); 314 if (!L) return nullptr; 315 if (L != BO->getOperand()) 316 return UnOpInit::get(UnOpInit::CAST, L, new DagRecTy); 317 return BO; 318 } 319 return nullptr; 320 } 321 322 Init *DagRecTy::convertValue(BinOpInit *BO) { 323 if (BO->getOpcode() == BinOpInit::CONCAT) { 324 Init *L = BO->getLHS()->convertInitializerTo(this); 325 Init *R = BO->getRHS()->convertInitializerTo(this); 326 if (!L || !R) return nullptr; 327 if (L != BO->getLHS() || R != BO->getRHS()) 328 return BinOpInit::get(BinOpInit::CONCAT, L, R, new DagRecTy); 329 return BO; 330 } 331 return nullptr; 332 } 333 334 RecordRecTy *RecordRecTy::get(Record *R) { 335 return dyn_cast<RecordRecTy>(R->getDefInit()->getType()); 336 } 337 338 std::string RecordRecTy::getAsString() const { 339 return Rec->getName(); 340 } 341 342 Init *RecordRecTy::convertValue(DefInit *DI) { 343 // Ensure that DI is a subclass of Rec. 344 if (!DI->getDef()->isSubClassOf(Rec)) 345 return nullptr; 346 return DI; 347 } 348 349 Init *RecordRecTy::convertValue(TypedInit *TI) { 350 // Ensure that TI is compatible with Rec. 351 if (RecordRecTy *RRT = dyn_cast<RecordRecTy>(TI->getType())) 352 if (RRT->getRecord()->isSubClassOf(getRecord()) || 353 RRT->getRecord() == getRecord()) 354 return TI; 355 return nullptr; 356 } 357 358 bool RecordRecTy::baseClassOf(const RecTy *RHS) const{ 359 const RecordRecTy *RTy = dyn_cast<RecordRecTy>(RHS); 360 if (!RTy) 361 return false; 362 363 if (Rec == RTy->getRecord() || RTy->getRecord()->isSubClassOf(Rec)) 364 return true; 365 366 const std::vector<Record*> &SC = Rec->getSuperClasses(); 367 for (unsigned i = 0, e = SC.size(); i != e; ++i) 368 if (RTy->getRecord()->isSubClassOf(SC[i])) 369 return true; 370 371 return false; 372 } 373 374 /// resolveTypes - Find a common type that T1 and T2 convert to. 375 /// Return 0 if no such type exists. 376 /// 377 RecTy *llvm::resolveTypes(RecTy *T1, RecTy *T2) { 378 if (T1->typeIsConvertibleTo(T2)) 379 return T2; 380 if (T2->typeIsConvertibleTo(T1)) 381 return T1; 382 383 // If one is a Record type, check superclasses 384 if (RecordRecTy *RecTy1 = dyn_cast<RecordRecTy>(T1)) { 385 // See if T2 inherits from a type T1 also inherits from 386 const std::vector<Record *> &T1SuperClasses = 387 RecTy1->getRecord()->getSuperClasses(); 388 for(std::vector<Record *>::const_iterator i = T1SuperClasses.begin(), 389 iend = T1SuperClasses.end(); 390 i != iend; 391 ++i) { 392 RecordRecTy *SuperRecTy1 = RecordRecTy::get(*i); 393 RecTy *NewType1 = resolveTypes(SuperRecTy1, T2); 394 if (NewType1) { 395 if (NewType1 != SuperRecTy1) { 396 delete SuperRecTy1; 397 } 398 return NewType1; 399 } 400 } 401 } 402 if (RecordRecTy *RecTy2 = dyn_cast<RecordRecTy>(T2)) { 403 // See if T1 inherits from a type T2 also inherits from 404 const std::vector<Record *> &T2SuperClasses = 405 RecTy2->getRecord()->getSuperClasses(); 406 for (std::vector<Record *>::const_iterator i = T2SuperClasses.begin(), 407 iend = T2SuperClasses.end(); 408 i != iend; 409 ++i) { 410 RecordRecTy *SuperRecTy2 = RecordRecTy::get(*i); 411 RecTy *NewType2 = resolveTypes(T1, SuperRecTy2); 412 if (NewType2) { 413 if (NewType2 != SuperRecTy2) { 414 delete SuperRecTy2; 415 } 416 return NewType2; 417 } 418 } 419 } 420 return nullptr; 421 } 422 423 424 //===----------------------------------------------------------------------===// 425 // Initializer implementations 426 //===----------------------------------------------------------------------===// 427 428 void Init::anchor() { } 429 void Init::dump() const { return print(errs()); } 430 431 void UnsetInit::anchor() { } 432 433 UnsetInit *UnsetInit::get() { 434 static UnsetInit TheInit; 435 return &TheInit; 436 } 437 438 void BitInit::anchor() { } 439 440 BitInit *BitInit::get(bool V) { 441 static BitInit True(true); 442 static BitInit False(false); 443 444 return V ? &True : &False; 445 } 446 447 static void 448 ProfileBitsInit(FoldingSetNodeID &ID, ArrayRef<Init *> Range) { 449 ID.AddInteger(Range.size()); 450 451 for (ArrayRef<Init *>::iterator i = Range.begin(), 452 iend = Range.end(); 453 i != iend; 454 ++i) 455 ID.AddPointer(*i); 456 } 457 458 BitsInit *BitsInit::get(ArrayRef<Init *> Range) { 459 typedef FoldingSet<BitsInit> Pool; 460 static Pool ThePool; 461 462 FoldingSetNodeID ID; 463 ProfileBitsInit(ID, Range); 464 465 void *IP = nullptr; 466 if (BitsInit *I = ThePool.FindNodeOrInsertPos(ID, IP)) 467 return I; 468 469 BitsInit *I = new BitsInit(Range); 470 ThePool.InsertNode(I, IP); 471 472 return I; 473 } 474 475 void BitsInit::Profile(FoldingSetNodeID &ID) const { 476 ProfileBitsInit(ID, Bits); 477 } 478 479 Init * 480 BitsInit::convertInitializerBitRange(const std::vector<unsigned> &Bits) const { 481 SmallVector<Init *, 16> NewBits(Bits.size()); 482 483 for (unsigned i = 0, e = Bits.size(); i != e; ++i) { 484 if (Bits[i] >= getNumBits()) 485 return nullptr; 486 NewBits[i] = getBit(Bits[i]); 487 } 488 return BitsInit::get(NewBits); 489 } 490 491 std::string BitsInit::getAsString() const { 492 std::string Result = "{ "; 493 for (unsigned i = 0, e = getNumBits(); i != e; ++i) { 494 if (i) Result += ", "; 495 if (Init *Bit = getBit(e-i-1)) 496 Result += Bit->getAsString(); 497 else 498 Result += "*"; 499 } 500 return Result + " }"; 501 } 502 503 // Fix bit initializer to preserve the behavior that bit reference from a unset 504 // bits initializer will resolve into VarBitInit to keep the field name and bit 505 // number used in targets with fixed insn length. 506 static Init *fixBitInit(const RecordVal *RV, Init *Before, Init *After) { 507 if (RV || After != UnsetInit::get()) 508 return After; 509 return Before; 510 } 511 512 // resolveReferences - If there are any field references that refer to fields 513 // that have been filled in, we can propagate the values now. 514 // 515 Init *BitsInit::resolveReferences(Record &R, const RecordVal *RV) const { 516 bool Changed = false; 517 SmallVector<Init *, 16> NewBits(getNumBits()); 518 519 Init *CachedInit = nullptr; 520 Init *CachedBitVar = nullptr; 521 bool CachedBitVarChanged = false; 522 523 for (unsigned i = 0, e = getNumBits(); i != e; ++i) { 524 Init *CurBit = Bits[i]; 525 Init *CurBitVar = CurBit->getBitVar(); 526 527 NewBits[i] = CurBit; 528 529 if (CurBitVar == CachedBitVar) { 530 if (CachedBitVarChanged) { 531 Init *Bit = CachedInit->getBit(CurBit->getBitNum()); 532 NewBits[i] = fixBitInit(RV, CurBit, Bit); 533 } 534 continue; 535 } 536 CachedBitVar = CurBitVar; 537 CachedBitVarChanged = false; 538 539 Init *B; 540 do { 541 B = CurBitVar; 542 CurBitVar = CurBitVar->resolveReferences(R, RV); 543 CachedBitVarChanged |= B != CurBitVar; 544 Changed |= B != CurBitVar; 545 } while (B != CurBitVar); 546 CachedInit = CurBitVar; 547 548 if (CachedBitVarChanged) { 549 Init *Bit = CurBitVar->getBit(CurBit->getBitNum()); 550 NewBits[i] = fixBitInit(RV, CurBit, Bit); 551 } 552 } 553 554 if (Changed) 555 return BitsInit::get(NewBits); 556 557 return const_cast<BitsInit *>(this); 558 } 559 560 namespace { 561 template<typename T> 562 class Pool : public T { 563 public: 564 ~Pool(); 565 }; 566 template<typename T> 567 Pool<T>::~Pool() { 568 for (typename T::iterator I = this->begin(), E = this->end(); I != E; ++I) { 569 typename T::value_type &Item = *I; 570 delete Item.second; 571 } 572 } 573 } 574 575 IntInit *IntInit::get(int64_t V) { 576 static Pool<DenseMap<int64_t, IntInit *> > ThePool; 577 578 IntInit *&I = ThePool[V]; 579 if (!I) I = new IntInit(V); 580 return I; 581 } 582 583 std::string IntInit::getAsString() const { 584 return itostr(Value); 585 } 586 587 Init * 588 IntInit::convertInitializerBitRange(const std::vector<unsigned> &Bits) const { 589 SmallVector<Init *, 16> NewBits(Bits.size()); 590 591 for (unsigned i = 0, e = Bits.size(); i != e; ++i) { 592 if (Bits[i] >= 64) 593 return nullptr; 594 595 NewBits[i] = BitInit::get(Value & (INT64_C(1) << Bits[i])); 596 } 597 return BitsInit::get(NewBits); 598 } 599 600 void StringInit::anchor() { } 601 602 StringInit *StringInit::get(StringRef V) { 603 static Pool<StringMap<StringInit *> > ThePool; 604 605 StringInit *&I = ThePool[V]; 606 if (!I) I = new StringInit(V); 607 return I; 608 } 609 610 static void ProfileListInit(FoldingSetNodeID &ID, 611 ArrayRef<Init *> Range, 612 RecTy *EltTy) { 613 ID.AddInteger(Range.size()); 614 ID.AddPointer(EltTy); 615 616 for (ArrayRef<Init *>::iterator i = Range.begin(), 617 iend = Range.end(); 618 i != iend; 619 ++i) 620 ID.AddPointer(*i); 621 } 622 623 ListInit *ListInit::get(ArrayRef<Init *> Range, RecTy *EltTy) { 624 typedef FoldingSet<ListInit> Pool; 625 static Pool ThePool; 626 627 // Just use the FoldingSetNodeID to compute a hash. Use a DenseMap 628 // for actual storage. 629 FoldingSetNodeID ID; 630 ProfileListInit(ID, Range, EltTy); 631 632 void *IP = nullptr; 633 if (ListInit *I = ThePool.FindNodeOrInsertPos(ID, IP)) 634 return I; 635 636 ListInit *I = new ListInit(Range, EltTy); 637 ThePool.InsertNode(I, IP); 638 return I; 639 } 640 641 void ListInit::Profile(FoldingSetNodeID &ID) const { 642 ListRecTy *ListType = dyn_cast<ListRecTy>(getType()); 643 assert(ListType && "Bad type for ListInit!"); 644 RecTy *EltTy = ListType->getElementType(); 645 646 ProfileListInit(ID, Values, EltTy); 647 } 648 649 Init * 650 ListInit::convertInitListSlice(const std::vector<unsigned> &Elements) const { 651 std::vector<Init*> Vals; 652 for (unsigned i = 0, e = Elements.size(); i != e; ++i) { 653 if (Elements[i] >= getSize()) 654 return nullptr; 655 Vals.push_back(getElement(Elements[i])); 656 } 657 return ListInit::get(Vals, getType()); 658 } 659 660 Record *ListInit::getElementAsRecord(unsigned i) const { 661 assert(i < Values.size() && "List element index out of range!"); 662 DefInit *DI = dyn_cast<DefInit>(Values[i]); 663 if (!DI) 664 PrintFatalError("Expected record in list!"); 665 return DI->getDef(); 666 } 667 668 Init *ListInit::resolveReferences(Record &R, const RecordVal *RV) const { 669 std::vector<Init*> Resolved; 670 Resolved.reserve(getSize()); 671 bool Changed = false; 672 673 for (unsigned i = 0, e = getSize(); i != e; ++i) { 674 Init *E; 675 Init *CurElt = getElement(i); 676 677 do { 678 E = CurElt; 679 CurElt = CurElt->resolveReferences(R, RV); 680 Changed |= E != CurElt; 681 } while (E != CurElt); 682 Resolved.push_back(E); 683 } 684 685 if (Changed) 686 return ListInit::get(Resolved, getType()); 687 return const_cast<ListInit *>(this); 688 } 689 690 Init *ListInit::resolveListElementReference(Record &R, const RecordVal *IRV, 691 unsigned Elt) const { 692 if (Elt >= getSize()) 693 return nullptr; // Out of range reference. 694 Init *E = getElement(Elt); 695 // If the element is set to some value, or if we are resolving a reference 696 // to a specific variable and that variable is explicitly unset, then 697 // replace the VarListElementInit with it. 698 if (IRV || !isa<UnsetInit>(E)) 699 return E; 700 return nullptr; 701 } 702 703 std::string ListInit::getAsString() const { 704 std::string Result = "["; 705 for (unsigned i = 0, e = Values.size(); i != e; ++i) { 706 if (i) Result += ", "; 707 Result += Values[i]->getAsString(); 708 } 709 return Result + "]"; 710 } 711 712 Init *OpInit::resolveListElementReference(Record &R, const RecordVal *IRV, 713 unsigned Elt) const { 714 Init *Resolved = resolveReferences(R, IRV); 715 OpInit *OResolved = dyn_cast<OpInit>(Resolved); 716 if (OResolved) { 717 Resolved = OResolved->Fold(&R, nullptr); 718 } 719 720 if (Resolved != this) { 721 TypedInit *Typed = dyn_cast<TypedInit>(Resolved); 722 assert(Typed && "Expected typed init for list reference"); 723 if (Typed) { 724 Init *New = Typed->resolveListElementReference(R, IRV, Elt); 725 if (New) 726 return New; 727 return VarListElementInit::get(Typed, Elt); 728 } 729 } 730 731 return nullptr; 732 } 733 734 Init *OpInit::getBit(unsigned Bit) const { 735 if (getType() == BitRecTy::get()) 736 return const_cast<OpInit*>(this); 737 return VarBitInit::get(const_cast<OpInit*>(this), Bit); 738 } 739 740 UnOpInit *UnOpInit::get(UnaryOp opc, Init *lhs, RecTy *Type) { 741 typedef std::pair<std::pair<unsigned, Init *>, RecTy *> Key; 742 static Pool<DenseMap<Key, UnOpInit *> > ThePool; 743 744 Key TheKey(std::make_pair(std::make_pair(opc, lhs), Type)); 745 746 UnOpInit *&I = ThePool[TheKey]; 747 if (!I) I = new UnOpInit(opc, lhs, Type); 748 return I; 749 } 750 751 Init *UnOpInit::Fold(Record *CurRec, MultiClass *CurMultiClass) const { 752 switch (getOpcode()) { 753 case CAST: { 754 if (getType()->getAsString() == "string") { 755 if (StringInit *LHSs = dyn_cast<StringInit>(LHS)) 756 return LHSs; 757 758 if (DefInit *LHSd = dyn_cast<DefInit>(LHS)) 759 return StringInit::get(LHSd->getDef()->getName()); 760 761 if (IntInit *LHSi = dyn_cast<IntInit>(LHS)) 762 return StringInit::get(LHSi->getAsString()); 763 } else { 764 if (StringInit *LHSs = dyn_cast<StringInit>(LHS)) { 765 std::string Name = LHSs->getValue(); 766 767 // From TGParser::ParseIDValue 768 if (CurRec) { 769 if (const RecordVal *RV = CurRec->getValue(Name)) { 770 if (RV->getType() != getType()) 771 PrintFatalError("type mismatch in cast"); 772 return VarInit::get(Name, RV->getType()); 773 } 774 775 Init *TemplateArgName = QualifyName(*CurRec, CurMultiClass, Name, 776 ":"); 777 778 if (CurRec->isTemplateArg(TemplateArgName)) { 779 const RecordVal *RV = CurRec->getValue(TemplateArgName); 780 assert(RV && "Template arg doesn't exist??"); 781 782 if (RV->getType() != getType()) 783 PrintFatalError("type mismatch in cast"); 784 785 return VarInit::get(TemplateArgName, RV->getType()); 786 } 787 } 788 789 if (CurMultiClass) { 790 Init *MCName = QualifyName(CurMultiClass->Rec, CurMultiClass, Name, "::"); 791 792 if (CurMultiClass->Rec.isTemplateArg(MCName)) { 793 const RecordVal *RV = CurMultiClass->Rec.getValue(MCName); 794 assert(RV && "Template arg doesn't exist??"); 795 796 if (RV->getType() != getType()) 797 PrintFatalError("type mismatch in cast"); 798 799 return VarInit::get(MCName, RV->getType()); 800 } 801 } 802 803 if (Record *D = (CurRec->getRecords()).getDef(Name)) 804 return DefInit::get(D); 805 806 PrintFatalError(CurRec->getLoc(), 807 "Undefined reference:'" + Name + "'\n"); 808 } 809 } 810 break; 811 } 812 case HEAD: { 813 if (ListInit *LHSl = dyn_cast<ListInit>(LHS)) { 814 if (LHSl->getSize() == 0) { 815 assert(0 && "Empty list in car"); 816 return nullptr; 817 } 818 return LHSl->getElement(0); 819 } 820 break; 821 } 822 case TAIL: { 823 if (ListInit *LHSl = dyn_cast<ListInit>(LHS)) { 824 if (LHSl->getSize() == 0) { 825 assert(0 && "Empty list in cdr"); 826 return nullptr; 827 } 828 // Note the +1. We can't just pass the result of getValues() 829 // directly. 830 ArrayRef<Init *>::iterator begin = LHSl->getValues().begin()+1; 831 ArrayRef<Init *>::iterator end = LHSl->getValues().end(); 832 ListInit *Result = 833 ListInit::get(ArrayRef<Init *>(begin, end - begin), 834 LHSl->getType()); 835 return Result; 836 } 837 break; 838 } 839 case EMPTY: { 840 if (ListInit *LHSl = dyn_cast<ListInit>(LHS)) { 841 if (LHSl->getSize() == 0) { 842 return IntInit::get(1); 843 } else { 844 return IntInit::get(0); 845 } 846 } 847 if (StringInit *LHSs = dyn_cast<StringInit>(LHS)) { 848 if (LHSs->getValue().empty()) { 849 return IntInit::get(1); 850 } else { 851 return IntInit::get(0); 852 } 853 } 854 855 break; 856 } 857 } 858 return const_cast<UnOpInit *>(this); 859 } 860 861 Init *UnOpInit::resolveReferences(Record &R, const RecordVal *RV) const { 862 Init *lhs = LHS->resolveReferences(R, RV); 863 864 if (LHS != lhs) 865 return (UnOpInit::get(getOpcode(), lhs, getType()))->Fold(&R, nullptr); 866 return Fold(&R, nullptr); 867 } 868 869 std::string UnOpInit::getAsString() const { 870 std::string Result; 871 switch (Opc) { 872 case CAST: Result = "!cast<" + getType()->getAsString() + ">"; break; 873 case HEAD: Result = "!head"; break; 874 case TAIL: Result = "!tail"; break; 875 case EMPTY: Result = "!empty"; break; 876 } 877 return Result + "(" + LHS->getAsString() + ")"; 878 } 879 880 BinOpInit *BinOpInit::get(BinaryOp opc, Init *lhs, 881 Init *rhs, RecTy *Type) { 882 typedef std::pair< 883 std::pair<std::pair<unsigned, Init *>, Init *>, 884 RecTy * 885 > Key; 886 887 static Pool<DenseMap<Key, BinOpInit *> > ThePool; 888 889 Key TheKey(std::make_pair(std::make_pair(std::make_pair(opc, lhs), rhs), 890 Type)); 891 892 BinOpInit *&I = ThePool[TheKey]; 893 if (!I) I = new BinOpInit(opc, lhs, rhs, Type); 894 return I; 895 } 896 897 Init *BinOpInit::Fold(Record *CurRec, MultiClass *CurMultiClass) const { 898 switch (getOpcode()) { 899 case CONCAT: { 900 DagInit *LHSs = dyn_cast<DagInit>(LHS); 901 DagInit *RHSs = dyn_cast<DagInit>(RHS); 902 if (LHSs && RHSs) { 903 DefInit *LOp = dyn_cast<DefInit>(LHSs->getOperator()); 904 DefInit *ROp = dyn_cast<DefInit>(RHSs->getOperator()); 905 if (!LOp || !ROp || LOp->getDef() != ROp->getDef()) 906 PrintFatalError("Concated Dag operators do not match!"); 907 std::vector<Init*> Args; 908 std::vector<std::string> ArgNames; 909 for (unsigned i = 0, e = LHSs->getNumArgs(); i != e; ++i) { 910 Args.push_back(LHSs->getArg(i)); 911 ArgNames.push_back(LHSs->getArgName(i)); 912 } 913 for (unsigned i = 0, e = RHSs->getNumArgs(); i != e; ++i) { 914 Args.push_back(RHSs->getArg(i)); 915 ArgNames.push_back(RHSs->getArgName(i)); 916 } 917 return DagInit::get(LHSs->getOperator(), "", Args, ArgNames); 918 } 919 break; 920 } 921 case STRCONCAT: { 922 StringInit *LHSs = dyn_cast<StringInit>(LHS); 923 StringInit *RHSs = dyn_cast<StringInit>(RHS); 924 if (LHSs && RHSs) 925 return StringInit::get(LHSs->getValue() + RHSs->getValue()); 926 break; 927 } 928 case EQ: { 929 // try to fold eq comparison for 'bit' and 'int', otherwise fallback 930 // to string objects. 931 IntInit *L = 932 dyn_cast_or_null<IntInit>(LHS->convertInitializerTo(IntRecTy::get())); 933 IntInit *R = 934 dyn_cast_or_null<IntInit>(RHS->convertInitializerTo(IntRecTy::get())); 935 936 if (L && R) 937 return IntInit::get(L->getValue() == R->getValue()); 938 939 StringInit *LHSs = dyn_cast<StringInit>(LHS); 940 StringInit *RHSs = dyn_cast<StringInit>(RHS); 941 942 // Make sure we've resolved 943 if (LHSs && RHSs) 944 return IntInit::get(LHSs->getValue() == RHSs->getValue()); 945 946 break; 947 } 948 case ADD: 949 case SHL: 950 case SRA: 951 case SRL: { 952 IntInit *LHSi = dyn_cast<IntInit>(LHS); 953 IntInit *RHSi = dyn_cast<IntInit>(RHS); 954 if (LHSi && RHSi) { 955 int64_t LHSv = LHSi->getValue(), RHSv = RHSi->getValue(); 956 int64_t Result; 957 switch (getOpcode()) { 958 default: llvm_unreachable("Bad opcode!"); 959 case ADD: Result = LHSv + RHSv; break; 960 case SHL: Result = LHSv << RHSv; break; 961 case SRA: Result = LHSv >> RHSv; break; 962 case SRL: Result = (uint64_t)LHSv >> (uint64_t)RHSv; break; 963 } 964 return IntInit::get(Result); 965 } 966 break; 967 } 968 } 969 return const_cast<BinOpInit *>(this); 970 } 971 972 Init *BinOpInit::resolveReferences(Record &R, const RecordVal *RV) const { 973 Init *lhs = LHS->resolveReferences(R, RV); 974 Init *rhs = RHS->resolveReferences(R, RV); 975 976 if (LHS != lhs || RHS != rhs) 977 return (BinOpInit::get(getOpcode(), lhs, rhs, getType()))->Fold(&R,nullptr); 978 return Fold(&R, nullptr); 979 } 980 981 std::string BinOpInit::getAsString() const { 982 std::string Result; 983 switch (Opc) { 984 case CONCAT: Result = "!con"; break; 985 case ADD: Result = "!add"; break; 986 case SHL: Result = "!shl"; break; 987 case SRA: Result = "!sra"; break; 988 case SRL: Result = "!srl"; break; 989 case EQ: Result = "!eq"; break; 990 case STRCONCAT: Result = "!strconcat"; break; 991 } 992 return Result + "(" + LHS->getAsString() + ", " + RHS->getAsString() + ")"; 993 } 994 995 TernOpInit *TernOpInit::get(TernaryOp opc, Init *lhs, 996 Init *mhs, Init *rhs, 997 RecTy *Type) { 998 typedef std::pair< 999 std::pair< 1000 std::pair<std::pair<unsigned, RecTy *>, Init *>, 1001 Init * 1002 >, 1003 Init * 1004 > Key; 1005 1006 typedef DenseMap<Key, TernOpInit *> Pool; 1007 static Pool ThePool; 1008 1009 Key TheKey(std::make_pair(std::make_pair(std::make_pair(std::make_pair(opc, 1010 Type), 1011 lhs), 1012 mhs), 1013 rhs)); 1014 1015 TernOpInit *&I = ThePool[TheKey]; 1016 if (!I) I = new TernOpInit(opc, lhs, mhs, rhs, Type); 1017 return I; 1018 } 1019 1020 static Init *ForeachHelper(Init *LHS, Init *MHS, Init *RHS, RecTy *Type, 1021 Record *CurRec, MultiClass *CurMultiClass); 1022 1023 static Init *EvaluateOperation(OpInit *RHSo, Init *LHS, Init *Arg, 1024 RecTy *Type, Record *CurRec, 1025 MultiClass *CurMultiClass) { 1026 std::vector<Init *> NewOperands; 1027 1028 TypedInit *TArg = dyn_cast<TypedInit>(Arg); 1029 1030 // If this is a dag, recurse 1031 if (TArg && TArg->getType()->getAsString() == "dag") { 1032 Init *Result = ForeachHelper(LHS, Arg, RHSo, Type, 1033 CurRec, CurMultiClass); 1034 return Result; 1035 } 1036 1037 for (int i = 0; i < RHSo->getNumOperands(); ++i) { 1038 OpInit *RHSoo = dyn_cast<OpInit>(RHSo->getOperand(i)); 1039 1040 if (RHSoo) { 1041 Init *Result = EvaluateOperation(RHSoo, LHS, Arg, 1042 Type, CurRec, CurMultiClass); 1043 if (Result) { 1044 NewOperands.push_back(Result); 1045 } else { 1046 NewOperands.push_back(Arg); 1047 } 1048 } else if (LHS->getAsString() == RHSo->getOperand(i)->getAsString()) { 1049 NewOperands.push_back(Arg); 1050 } else { 1051 NewOperands.push_back(RHSo->getOperand(i)); 1052 } 1053 } 1054 1055 // Now run the operator and use its result as the new leaf 1056 const OpInit *NewOp = RHSo->clone(NewOperands); 1057 Init *NewVal = NewOp->Fold(CurRec, CurMultiClass); 1058 return (NewVal != NewOp) ? NewVal : nullptr; 1059 } 1060 1061 static Init *ForeachHelper(Init *LHS, Init *MHS, Init *RHS, RecTy *Type, 1062 Record *CurRec, MultiClass *CurMultiClass) { 1063 DagInit *MHSd = dyn_cast<DagInit>(MHS); 1064 ListInit *MHSl = dyn_cast<ListInit>(MHS); 1065 1066 OpInit *RHSo = dyn_cast<OpInit>(RHS); 1067 1068 if (!RHSo) { 1069 PrintFatalError(CurRec->getLoc(), "!foreach requires an operator\n"); 1070 } 1071 1072 TypedInit *LHSt = dyn_cast<TypedInit>(LHS); 1073 1074 if (!LHSt) 1075 PrintFatalError(CurRec->getLoc(), "!foreach requires typed variable\n"); 1076 1077 if ((MHSd && isa<DagRecTy>(Type)) || (MHSl && isa<ListRecTy>(Type))) { 1078 if (MHSd) { 1079 Init *Val = MHSd->getOperator(); 1080 Init *Result = EvaluateOperation(RHSo, LHS, Val, 1081 Type, CurRec, CurMultiClass); 1082 if (Result) { 1083 Val = Result; 1084 } 1085 1086 std::vector<std::pair<Init *, std::string> > args; 1087 for (unsigned int i = 0; i < MHSd->getNumArgs(); ++i) { 1088 Init *Arg; 1089 std::string ArgName; 1090 Arg = MHSd->getArg(i); 1091 ArgName = MHSd->getArgName(i); 1092 1093 // Process args 1094 Init *Result = EvaluateOperation(RHSo, LHS, Arg, Type, 1095 CurRec, CurMultiClass); 1096 if (Result) { 1097 Arg = Result; 1098 } 1099 1100 // TODO: Process arg names 1101 args.push_back(std::make_pair(Arg, ArgName)); 1102 } 1103 1104 return DagInit::get(Val, "", args); 1105 } 1106 if (MHSl) { 1107 std::vector<Init *> NewOperands; 1108 std::vector<Init *> NewList(MHSl->begin(), MHSl->end()); 1109 1110 for (std::vector<Init *>::iterator li = NewList.begin(), 1111 liend = NewList.end(); 1112 li != liend; 1113 ++li) { 1114 Init *Item = *li; 1115 NewOperands.clear(); 1116 for(int i = 0; i < RHSo->getNumOperands(); ++i) { 1117 // First, replace the foreach variable with the list item 1118 if (LHS->getAsString() == RHSo->getOperand(i)->getAsString()) { 1119 NewOperands.push_back(Item); 1120 } else { 1121 NewOperands.push_back(RHSo->getOperand(i)); 1122 } 1123 } 1124 1125 // Now run the operator and use its result as the new list item 1126 const OpInit *NewOp = RHSo->clone(NewOperands); 1127 Init *NewItem = NewOp->Fold(CurRec, CurMultiClass); 1128 if (NewItem != NewOp) 1129 *li = NewItem; 1130 } 1131 return ListInit::get(NewList, MHSl->getType()); 1132 } 1133 } 1134 return nullptr; 1135 } 1136 1137 Init *TernOpInit::Fold(Record *CurRec, MultiClass *CurMultiClass) const { 1138 switch (getOpcode()) { 1139 case SUBST: { 1140 DefInit *LHSd = dyn_cast<DefInit>(LHS); 1141 VarInit *LHSv = dyn_cast<VarInit>(LHS); 1142 StringInit *LHSs = dyn_cast<StringInit>(LHS); 1143 1144 DefInit *MHSd = dyn_cast<DefInit>(MHS); 1145 VarInit *MHSv = dyn_cast<VarInit>(MHS); 1146 StringInit *MHSs = dyn_cast<StringInit>(MHS); 1147 1148 DefInit *RHSd = dyn_cast<DefInit>(RHS); 1149 VarInit *RHSv = dyn_cast<VarInit>(RHS); 1150 StringInit *RHSs = dyn_cast<StringInit>(RHS); 1151 1152 if ((LHSd && MHSd && RHSd) 1153 || (LHSv && MHSv && RHSv) 1154 || (LHSs && MHSs && RHSs)) { 1155 if (RHSd) { 1156 Record *Val = RHSd->getDef(); 1157 if (LHSd->getAsString() == RHSd->getAsString()) { 1158 Val = MHSd->getDef(); 1159 } 1160 return DefInit::get(Val); 1161 } 1162 if (RHSv) { 1163 std::string Val = RHSv->getName(); 1164 if (LHSv->getAsString() == RHSv->getAsString()) { 1165 Val = MHSv->getName(); 1166 } 1167 return VarInit::get(Val, getType()); 1168 } 1169 if (RHSs) { 1170 std::string Val = RHSs->getValue(); 1171 1172 std::string::size_type found; 1173 std::string::size_type idx = 0; 1174 do { 1175 found = Val.find(LHSs->getValue(), idx); 1176 if (found != std::string::npos) { 1177 Val.replace(found, LHSs->getValue().size(), MHSs->getValue()); 1178 } 1179 idx = found + MHSs->getValue().size(); 1180 } while (found != std::string::npos); 1181 1182 return StringInit::get(Val); 1183 } 1184 } 1185 break; 1186 } 1187 1188 case FOREACH: { 1189 Init *Result = ForeachHelper(LHS, MHS, RHS, getType(), 1190 CurRec, CurMultiClass); 1191 if (Result) { 1192 return Result; 1193 } 1194 break; 1195 } 1196 1197 case IF: { 1198 IntInit *LHSi = dyn_cast<IntInit>(LHS); 1199 if (Init *I = LHS->convertInitializerTo(IntRecTy::get())) 1200 LHSi = dyn_cast<IntInit>(I); 1201 if (LHSi) { 1202 if (LHSi->getValue()) { 1203 return MHS; 1204 } else { 1205 return RHS; 1206 } 1207 } 1208 break; 1209 } 1210 } 1211 1212 return const_cast<TernOpInit *>(this); 1213 } 1214 1215 Init *TernOpInit::resolveReferences(Record &R, 1216 const RecordVal *RV) const { 1217 Init *lhs = LHS->resolveReferences(R, RV); 1218 1219 if (Opc == IF && lhs != LHS) { 1220 IntInit *Value = dyn_cast<IntInit>(lhs); 1221 if (Init *I = lhs->convertInitializerTo(IntRecTy::get())) 1222 Value = dyn_cast<IntInit>(I); 1223 if (Value) { 1224 // Short-circuit 1225 if (Value->getValue()) { 1226 Init *mhs = MHS->resolveReferences(R, RV); 1227 return (TernOpInit::get(getOpcode(), lhs, mhs, 1228 RHS, getType()))->Fold(&R, nullptr); 1229 } else { 1230 Init *rhs = RHS->resolveReferences(R, RV); 1231 return (TernOpInit::get(getOpcode(), lhs, MHS, 1232 rhs, getType()))->Fold(&R, nullptr); 1233 } 1234 } 1235 } 1236 1237 Init *mhs = MHS->resolveReferences(R, RV); 1238 Init *rhs = RHS->resolveReferences(R, RV); 1239 1240 if (LHS != lhs || MHS != mhs || RHS != rhs) 1241 return (TernOpInit::get(getOpcode(), lhs, mhs, rhs, 1242 getType()))->Fold(&R, nullptr); 1243 return Fold(&R, nullptr); 1244 } 1245 1246 std::string TernOpInit::getAsString() const { 1247 std::string Result; 1248 switch (Opc) { 1249 case SUBST: Result = "!subst"; break; 1250 case FOREACH: Result = "!foreach"; break; 1251 case IF: Result = "!if"; break; 1252 } 1253 return Result + "(" + LHS->getAsString() + ", " + MHS->getAsString() + ", " 1254 + RHS->getAsString() + ")"; 1255 } 1256 1257 RecTy *TypedInit::getFieldType(const std::string &FieldName) const { 1258 if (RecordRecTy *RecordType = dyn_cast<RecordRecTy>(getType())) 1259 if (RecordVal *Field = RecordType->getRecord()->getValue(FieldName)) 1260 return Field->getType(); 1261 return nullptr; 1262 } 1263 1264 Init * 1265 TypedInit::convertInitializerBitRange(const std::vector<unsigned> &Bits) const { 1266 BitsRecTy *T = dyn_cast<BitsRecTy>(getType()); 1267 if (!T) return nullptr; // Cannot subscript a non-bits variable. 1268 unsigned NumBits = T->getNumBits(); 1269 1270 SmallVector<Init *, 16> NewBits(Bits.size()); 1271 for (unsigned i = 0, e = Bits.size(); i != e; ++i) { 1272 if (Bits[i] >= NumBits) 1273 return nullptr; 1274 1275 NewBits[i] = VarBitInit::get(const_cast<TypedInit *>(this), Bits[i]); 1276 } 1277 return BitsInit::get(NewBits); 1278 } 1279 1280 Init * 1281 TypedInit::convertInitListSlice(const std::vector<unsigned> &Elements) const { 1282 ListRecTy *T = dyn_cast<ListRecTy>(getType()); 1283 if (!T) return nullptr; // Cannot subscript a non-list variable. 1284 1285 if (Elements.size() == 1) 1286 return VarListElementInit::get(const_cast<TypedInit *>(this), Elements[0]); 1287 1288 std::vector<Init*> ListInits; 1289 ListInits.reserve(Elements.size()); 1290 for (unsigned i = 0, e = Elements.size(); i != e; ++i) 1291 ListInits.push_back(VarListElementInit::get(const_cast<TypedInit *>(this), 1292 Elements[i])); 1293 return ListInit::get(ListInits, T); 1294 } 1295 1296 1297 VarInit *VarInit::get(const std::string &VN, RecTy *T) { 1298 Init *Value = StringInit::get(VN); 1299 return VarInit::get(Value, T); 1300 } 1301 1302 VarInit *VarInit::get(Init *VN, RecTy *T) { 1303 typedef std::pair<RecTy *, Init *> Key; 1304 static Pool<DenseMap<Key, VarInit *> > ThePool; 1305 1306 Key TheKey(std::make_pair(T, VN)); 1307 1308 VarInit *&I = ThePool[TheKey]; 1309 if (!I) I = new VarInit(VN, T); 1310 return I; 1311 } 1312 1313 const std::string &VarInit::getName() const { 1314 StringInit *NameString = dyn_cast<StringInit>(getNameInit()); 1315 assert(NameString && "VarInit name is not a string!"); 1316 return NameString->getValue(); 1317 } 1318 1319 Init *VarInit::getBit(unsigned Bit) const { 1320 if (getType() == BitRecTy::get()) 1321 return const_cast<VarInit*>(this); 1322 return VarBitInit::get(const_cast<VarInit*>(this), Bit); 1323 } 1324 1325 Init *VarInit::resolveListElementReference(Record &R, 1326 const RecordVal *IRV, 1327 unsigned Elt) const { 1328 if (R.isTemplateArg(getNameInit())) return nullptr; 1329 if (IRV && IRV->getNameInit() != getNameInit()) return nullptr; 1330 1331 RecordVal *RV = R.getValue(getNameInit()); 1332 assert(RV && "Reference to a non-existent variable?"); 1333 ListInit *LI = dyn_cast<ListInit>(RV->getValue()); 1334 if (!LI) { 1335 TypedInit *VI = dyn_cast<TypedInit>(RV->getValue()); 1336 assert(VI && "Invalid list element!"); 1337 return VarListElementInit::get(VI, Elt); 1338 } 1339 1340 if (Elt >= LI->getSize()) 1341 return nullptr; // Out of range reference. 1342 Init *E = LI->getElement(Elt); 1343 // If the element is set to some value, or if we are resolving a reference 1344 // to a specific variable and that variable is explicitly unset, then 1345 // replace the VarListElementInit with it. 1346 if (IRV || !isa<UnsetInit>(E)) 1347 return E; 1348 return nullptr; 1349 } 1350 1351 1352 RecTy *VarInit::getFieldType(const std::string &FieldName) const { 1353 if (RecordRecTy *RTy = dyn_cast<RecordRecTy>(getType())) 1354 if (const RecordVal *RV = RTy->getRecord()->getValue(FieldName)) 1355 return RV->getType(); 1356 return nullptr; 1357 } 1358 1359 Init *VarInit::getFieldInit(Record &R, const RecordVal *RV, 1360 const std::string &FieldName) const { 1361 if (isa<RecordRecTy>(getType())) 1362 if (const RecordVal *Val = R.getValue(VarName)) { 1363 if (RV != Val && (RV || isa<UnsetInit>(Val->getValue()))) 1364 return nullptr; 1365 Init *TheInit = Val->getValue(); 1366 assert(TheInit != this && "Infinite loop detected!"); 1367 if (Init *I = TheInit->getFieldInit(R, RV, FieldName)) 1368 return I; 1369 else 1370 return nullptr; 1371 } 1372 return nullptr; 1373 } 1374 1375 /// resolveReferences - This method is used by classes that refer to other 1376 /// variables which may not be defined at the time the expression is formed. 1377 /// If a value is set for the variable later, this method will be called on 1378 /// users of the value to allow the value to propagate out. 1379 /// 1380 Init *VarInit::resolveReferences(Record &R, const RecordVal *RV) const { 1381 if (RecordVal *Val = R.getValue(VarName)) 1382 if (RV == Val || (!RV && !isa<UnsetInit>(Val->getValue()))) 1383 return Val->getValue(); 1384 return const_cast<VarInit *>(this); 1385 } 1386 1387 VarBitInit *VarBitInit::get(TypedInit *T, unsigned B) { 1388 typedef std::pair<TypedInit *, unsigned> Key; 1389 typedef DenseMap<Key, VarBitInit *> Pool; 1390 1391 static Pool ThePool; 1392 1393 Key TheKey(std::make_pair(T, B)); 1394 1395 VarBitInit *&I = ThePool[TheKey]; 1396 if (!I) I = new VarBitInit(T, B); 1397 return I; 1398 } 1399 1400 std::string VarBitInit::getAsString() const { 1401 return TI->getAsString() + "{" + utostr(Bit) + "}"; 1402 } 1403 1404 Init *VarBitInit::resolveReferences(Record &R, const RecordVal *RV) const { 1405 Init *I = TI->resolveReferences(R, RV); 1406 if (TI != I) 1407 return I->getBit(getBitNum()); 1408 1409 return const_cast<VarBitInit*>(this); 1410 } 1411 1412 VarListElementInit *VarListElementInit::get(TypedInit *T, 1413 unsigned E) { 1414 typedef std::pair<TypedInit *, unsigned> Key; 1415 typedef DenseMap<Key, VarListElementInit *> Pool; 1416 1417 static Pool ThePool; 1418 1419 Key TheKey(std::make_pair(T, E)); 1420 1421 VarListElementInit *&I = ThePool[TheKey]; 1422 if (!I) I = new VarListElementInit(T, E); 1423 return I; 1424 } 1425 1426 std::string VarListElementInit::getAsString() const { 1427 return TI->getAsString() + "[" + utostr(Element) + "]"; 1428 } 1429 1430 Init * 1431 VarListElementInit::resolveReferences(Record &R, const RecordVal *RV) const { 1432 if (Init *I = getVariable()->resolveListElementReference(R, RV, 1433 getElementNum())) 1434 return I; 1435 return const_cast<VarListElementInit *>(this); 1436 } 1437 1438 Init *VarListElementInit::getBit(unsigned Bit) const { 1439 if (getType() == BitRecTy::get()) 1440 return const_cast<VarListElementInit*>(this); 1441 return VarBitInit::get(const_cast<VarListElementInit*>(this), Bit); 1442 } 1443 1444 Init *VarListElementInit:: resolveListElementReference(Record &R, 1445 const RecordVal *RV, 1446 unsigned Elt) const { 1447 Init *Result = TI->resolveListElementReference(R, RV, Element); 1448 1449 if (Result) { 1450 if (TypedInit *TInit = dyn_cast<TypedInit>(Result)) { 1451 Init *Result2 = TInit->resolveListElementReference(R, RV, Elt); 1452 if (Result2) return Result2; 1453 return new VarListElementInit(TInit, Elt); 1454 } 1455 return Result; 1456 } 1457 1458 return nullptr; 1459 } 1460 1461 DefInit *DefInit::get(Record *R) { 1462 return R->getDefInit(); 1463 } 1464 1465 RecTy *DefInit::getFieldType(const std::string &FieldName) const { 1466 if (const RecordVal *RV = Def->getValue(FieldName)) 1467 return RV->getType(); 1468 return nullptr; 1469 } 1470 1471 Init *DefInit::getFieldInit(Record &R, const RecordVal *RV, 1472 const std::string &FieldName) const { 1473 return Def->getValue(FieldName)->getValue(); 1474 } 1475 1476 1477 std::string DefInit::getAsString() const { 1478 return Def->getName(); 1479 } 1480 1481 FieldInit *FieldInit::get(Init *R, const std::string &FN) { 1482 typedef std::pair<Init *, TableGenStringKey> Key; 1483 typedef DenseMap<Key, FieldInit *> Pool; 1484 static Pool ThePool; 1485 1486 Key TheKey(std::make_pair(R, FN)); 1487 1488 FieldInit *&I = ThePool[TheKey]; 1489 if (!I) I = new FieldInit(R, FN); 1490 return I; 1491 } 1492 1493 Init *FieldInit::getBit(unsigned Bit) const { 1494 if (getType() == BitRecTy::get()) 1495 return const_cast<FieldInit*>(this); 1496 return VarBitInit::get(const_cast<FieldInit*>(this), Bit); 1497 } 1498 1499 Init *FieldInit::resolveListElementReference(Record &R, const RecordVal *RV, 1500 unsigned Elt) const { 1501 if (Init *ListVal = Rec->getFieldInit(R, RV, FieldName)) 1502 if (ListInit *LI = dyn_cast<ListInit>(ListVal)) { 1503 if (Elt >= LI->getSize()) return nullptr; 1504 Init *E = LI->getElement(Elt); 1505 1506 // If the element is set to some value, or if we are resolving a 1507 // reference to a specific variable and that variable is explicitly 1508 // unset, then replace the VarListElementInit with it. 1509 if (RV || !isa<UnsetInit>(E)) 1510 return E; 1511 } 1512 return nullptr; 1513 } 1514 1515 Init *FieldInit::resolveReferences(Record &R, const RecordVal *RV) const { 1516 Init *NewRec = RV ? Rec->resolveReferences(R, RV) : Rec; 1517 1518 Init *BitsVal = NewRec->getFieldInit(R, RV, FieldName); 1519 if (BitsVal) { 1520 Init *BVR = BitsVal->resolveReferences(R, RV); 1521 return BVR->isComplete() ? BVR : const_cast<FieldInit *>(this); 1522 } 1523 1524 if (NewRec != Rec) { 1525 return FieldInit::get(NewRec, FieldName); 1526 } 1527 return const_cast<FieldInit *>(this); 1528 } 1529 1530 static void ProfileDagInit(FoldingSetNodeID &ID, Init *V, const std::string &VN, 1531 ArrayRef<Init *> ArgRange, 1532 ArrayRef<std::string> NameRange) { 1533 ID.AddPointer(V); 1534 ID.AddString(VN); 1535 1536 ArrayRef<Init *>::iterator Arg = ArgRange.begin(); 1537 ArrayRef<std::string>::iterator Name = NameRange.begin(); 1538 while (Arg != ArgRange.end()) { 1539 assert(Name != NameRange.end() && "Arg name underflow!"); 1540 ID.AddPointer(*Arg++); 1541 ID.AddString(*Name++); 1542 } 1543 assert(Name == NameRange.end() && "Arg name overflow!"); 1544 } 1545 1546 DagInit * 1547 DagInit::get(Init *V, const std::string &VN, 1548 ArrayRef<Init *> ArgRange, 1549 ArrayRef<std::string> NameRange) { 1550 typedef FoldingSet<DagInit> Pool; 1551 static Pool ThePool; 1552 1553 FoldingSetNodeID ID; 1554 ProfileDagInit(ID, V, VN, ArgRange, NameRange); 1555 1556 void *IP = nullptr; 1557 if (DagInit *I = ThePool.FindNodeOrInsertPos(ID, IP)) 1558 return I; 1559 1560 DagInit *I = new DagInit(V, VN, ArgRange, NameRange); 1561 ThePool.InsertNode(I, IP); 1562 1563 return I; 1564 } 1565 1566 DagInit * 1567 DagInit::get(Init *V, const std::string &VN, 1568 const std::vector<std::pair<Init*, std::string> > &args) { 1569 typedef std::pair<Init*, std::string> PairType; 1570 1571 std::vector<Init *> Args; 1572 std::vector<std::string> Names; 1573 1574 for (std::vector<PairType>::const_iterator i = args.begin(), 1575 iend = args.end(); 1576 i != iend; 1577 ++i) { 1578 Args.push_back(i->first); 1579 Names.push_back(i->second); 1580 } 1581 1582 return DagInit::get(V, VN, Args, Names); 1583 } 1584 1585 void DagInit::Profile(FoldingSetNodeID &ID) const { 1586 ProfileDagInit(ID, Val, ValName, Args, ArgNames); 1587 } 1588 1589 Init *DagInit::resolveReferences(Record &R, const RecordVal *RV) const { 1590 std::vector<Init*> NewArgs; 1591 for (unsigned i = 0, e = Args.size(); i != e; ++i) 1592 NewArgs.push_back(Args[i]->resolveReferences(R, RV)); 1593 1594 Init *Op = Val->resolveReferences(R, RV); 1595 1596 if (Args != NewArgs || Op != Val) 1597 return DagInit::get(Op, ValName, NewArgs, ArgNames); 1598 1599 return const_cast<DagInit *>(this); 1600 } 1601 1602 1603 std::string DagInit::getAsString() const { 1604 std::string Result = "(" + Val->getAsString(); 1605 if (!ValName.empty()) 1606 Result += ":" + ValName; 1607 if (Args.size()) { 1608 Result += " " + Args[0]->getAsString(); 1609 if (!ArgNames[0].empty()) Result += ":$" + ArgNames[0]; 1610 for (unsigned i = 1, e = Args.size(); i != e; ++i) { 1611 Result += ", " + Args[i]->getAsString(); 1612 if (!ArgNames[i].empty()) Result += ":$" + ArgNames[i]; 1613 } 1614 } 1615 return Result + ")"; 1616 } 1617 1618 1619 //===----------------------------------------------------------------------===// 1620 // Other implementations 1621 //===----------------------------------------------------------------------===// 1622 1623 RecordVal::RecordVal(Init *N, RecTy *T, unsigned P) 1624 : Name(N), Ty(T), Prefix(P) { 1625 Value = Ty->convertValue(UnsetInit::get()); 1626 assert(Value && "Cannot create unset value for current type!"); 1627 } 1628 1629 RecordVal::RecordVal(const std::string &N, RecTy *T, unsigned P) 1630 : Name(StringInit::get(N)), Ty(T), Prefix(P) { 1631 Value = Ty->convertValue(UnsetInit::get()); 1632 assert(Value && "Cannot create unset value for current type!"); 1633 } 1634 1635 const std::string &RecordVal::getName() const { 1636 StringInit *NameString = dyn_cast<StringInit>(Name); 1637 assert(NameString && "RecordVal name is not a string!"); 1638 return NameString->getValue(); 1639 } 1640 1641 void RecordVal::dump() const { errs() << *this; } 1642 1643 void RecordVal::print(raw_ostream &OS, bool PrintSem) const { 1644 if (getPrefix()) OS << "field "; 1645 OS << *getType() << " " << getNameInitAsString(); 1646 1647 if (getValue()) 1648 OS << " = " << *getValue(); 1649 1650 if (PrintSem) OS << ";\n"; 1651 } 1652 1653 unsigned Record::LastID = 0; 1654 1655 void Record::init() { 1656 checkName(); 1657 1658 // Every record potentially has a def at the top. This value is 1659 // replaced with the top-level def name at instantiation time. 1660 RecordVal DN("NAME", StringRecTy::get(), 0); 1661 addValue(DN); 1662 } 1663 1664 void Record::checkName() { 1665 // Ensure the record name has string type. 1666 const TypedInit *TypedName = dyn_cast<const TypedInit>(Name); 1667 assert(TypedName && "Record name is not typed!"); 1668 RecTy *Type = TypedName->getType(); 1669 if (!isa<StringRecTy>(Type)) 1670 PrintFatalError(getLoc(), "Record name is not a string!"); 1671 } 1672 1673 DefInit *Record::getDefInit() { 1674 if (!TheInit) 1675 TheInit = new DefInit(this, new RecordRecTy(this)); 1676 return TheInit; 1677 } 1678 1679 const std::string &Record::getName() const { 1680 const StringInit *NameString = dyn_cast<StringInit>(Name); 1681 assert(NameString && "Record name is not a string!"); 1682 return NameString->getValue(); 1683 } 1684 1685 void Record::setName(Init *NewName) { 1686 if (TrackedRecords.getDef(Name->getAsUnquotedString()) == this) { 1687 TrackedRecords.removeDef(Name->getAsUnquotedString()); 1688 TrackedRecords.addDef(this); 1689 } else if (TrackedRecords.getClass(Name->getAsUnquotedString()) == this) { 1690 TrackedRecords.removeClass(Name->getAsUnquotedString()); 1691 TrackedRecords.addClass(this); 1692 } // Otherwise this isn't yet registered. 1693 Name = NewName; 1694 checkName(); 1695 // DO NOT resolve record values to the name at this point because 1696 // there might be default values for arguments of this def. Those 1697 // arguments might not have been resolved yet so we don't want to 1698 // prematurely assume values for those arguments were not passed to 1699 // this def. 1700 // 1701 // Nonetheless, it may be that some of this Record's values 1702 // reference the record name. Indeed, the reason for having the 1703 // record name be an Init is to provide this flexibility. The extra 1704 // resolve steps after completely instantiating defs takes care of 1705 // this. See TGParser::ParseDef and TGParser::ParseDefm. 1706 } 1707 1708 void Record::setName(const std::string &Name) { 1709 setName(StringInit::get(Name)); 1710 } 1711 1712 /// resolveReferencesTo - If anything in this record refers to RV, replace the 1713 /// reference to RV with the RHS of RV. If RV is null, we resolve all possible 1714 /// references. 1715 void Record::resolveReferencesTo(const RecordVal *RV) { 1716 for (unsigned i = 0, e = Values.size(); i != e; ++i) { 1717 if (RV == &Values[i]) // Skip resolve the same field as the given one 1718 continue; 1719 if (Init *V = Values[i].getValue()) 1720 if (Values[i].setValue(V->resolveReferences(*this, RV))) 1721 PrintFatalError(getLoc(), "Invalid value is found when setting '" 1722 + Values[i].getNameInitAsString() 1723 + "' after resolving references" 1724 + (RV ? " against '" + RV->getNameInitAsString() 1725 + "' of (" 1726 + RV->getValue()->getAsUnquotedString() + ")" 1727 : "") 1728 + "\n"); 1729 } 1730 Init *OldName = getNameInit(); 1731 Init *NewName = Name->resolveReferences(*this, RV); 1732 if (NewName != OldName) { 1733 // Re-register with RecordKeeper. 1734 setName(NewName); 1735 } 1736 } 1737 1738 void Record::dump() const { errs() << *this; } 1739 1740 raw_ostream &llvm::operator<<(raw_ostream &OS, const Record &R) { 1741 OS << R.getNameInitAsString(); 1742 1743 const std::vector<Init *> &TArgs = R.getTemplateArgs(); 1744 if (!TArgs.empty()) { 1745 OS << "<"; 1746 for (unsigned i = 0, e = TArgs.size(); i != e; ++i) { 1747 if (i) OS << ", "; 1748 const RecordVal *RV = R.getValue(TArgs[i]); 1749 assert(RV && "Template argument record not found??"); 1750 RV->print(OS, false); 1751 } 1752 OS << ">"; 1753 } 1754 1755 OS << " {"; 1756 const std::vector<Record*> &SC = R.getSuperClasses(); 1757 if (!SC.empty()) { 1758 OS << "\t//"; 1759 for (unsigned i = 0, e = SC.size(); i != e; ++i) 1760 OS << " " << SC[i]->getNameInitAsString(); 1761 } 1762 OS << "\n"; 1763 1764 const std::vector<RecordVal> &Vals = R.getValues(); 1765 for (unsigned i = 0, e = Vals.size(); i != e; ++i) 1766 if (Vals[i].getPrefix() && !R.isTemplateArg(Vals[i].getName())) 1767 OS << Vals[i]; 1768 for (unsigned i = 0, e = Vals.size(); i != e; ++i) 1769 if (!Vals[i].getPrefix() && !R.isTemplateArg(Vals[i].getName())) 1770 OS << Vals[i]; 1771 1772 return OS << "}\n"; 1773 } 1774 1775 /// getValueInit - Return the initializer for a value with the specified name, 1776 /// or abort if the field does not exist. 1777 /// 1778 Init *Record::getValueInit(StringRef FieldName) const { 1779 const RecordVal *R = getValue(FieldName); 1780 if (!R || !R->getValue()) 1781 PrintFatalError(getLoc(), "Record `" + getName() + 1782 "' does not have a field named `" + FieldName + "'!\n"); 1783 return R->getValue(); 1784 } 1785 1786 1787 /// getValueAsString - This method looks up the specified field and returns its 1788 /// value as a string, aborts if the field does not exist or if 1789 /// the value is not a string. 1790 /// 1791 std::string Record::getValueAsString(StringRef FieldName) const { 1792 const RecordVal *R = getValue(FieldName); 1793 if (!R || !R->getValue()) 1794 PrintFatalError(getLoc(), "Record `" + getName() + 1795 "' does not have a field named `" + FieldName + "'!\n"); 1796 1797 if (StringInit *SI = dyn_cast<StringInit>(R->getValue())) 1798 return SI->getValue(); 1799 PrintFatalError(getLoc(), "Record `" + getName() + "', field `" + 1800 FieldName + "' does not have a string initializer!"); 1801 } 1802 1803 /// getValueAsBitsInit - This method looks up the specified field and returns 1804 /// its value as a BitsInit, aborts if the field does not exist or if 1805 /// the value is not the right type. 1806 /// 1807 BitsInit *Record::getValueAsBitsInit(StringRef FieldName) const { 1808 const RecordVal *R = getValue(FieldName); 1809 if (!R || !R->getValue()) 1810 PrintFatalError(getLoc(), "Record `" + getName() + 1811 "' does not have a field named `" + FieldName + "'!\n"); 1812 1813 if (BitsInit *BI = dyn_cast<BitsInit>(R->getValue())) 1814 return BI; 1815 PrintFatalError(getLoc(), "Record `" + getName() + "', field `" + 1816 FieldName + "' does not have a BitsInit initializer!"); 1817 } 1818 1819 /// getValueAsListInit - This method looks up the specified field and returns 1820 /// its value as a ListInit, aborting if the field does not exist or if 1821 /// the value is not the right type. 1822 /// 1823 ListInit *Record::getValueAsListInit(StringRef FieldName) const { 1824 const RecordVal *R = getValue(FieldName); 1825 if (!R || !R->getValue()) 1826 PrintFatalError(getLoc(), "Record `" + getName() + 1827 "' does not have a field named `" + FieldName + "'!\n"); 1828 1829 if (ListInit *LI = dyn_cast<ListInit>(R->getValue())) 1830 return LI; 1831 PrintFatalError(getLoc(), "Record `" + getName() + "', field `" + 1832 FieldName + "' does not have a list initializer!"); 1833 } 1834 1835 /// getValueAsListOfDefs - This method looks up the specified field and returns 1836 /// its value as a vector of records, aborting if the field does not exist 1837 /// or if the value is not the right type. 1838 /// 1839 std::vector<Record*> 1840 Record::getValueAsListOfDefs(StringRef FieldName) const { 1841 ListInit *List = getValueAsListInit(FieldName); 1842 std::vector<Record*> Defs; 1843 for (unsigned i = 0; i < List->getSize(); i++) { 1844 if (DefInit *DI = dyn_cast<DefInit>(List->getElement(i))) { 1845 Defs.push_back(DI->getDef()); 1846 } else { 1847 PrintFatalError(getLoc(), "Record `" + getName() + "', field `" + 1848 FieldName + "' list is not entirely DefInit!"); 1849 } 1850 } 1851 return Defs; 1852 } 1853 1854 /// getValueAsInt - This method looks up the specified field and returns its 1855 /// value as an int64_t, aborting if the field does not exist or if the value 1856 /// is not the right type. 1857 /// 1858 int64_t Record::getValueAsInt(StringRef FieldName) const { 1859 const RecordVal *R = getValue(FieldName); 1860 if (!R || !R->getValue()) 1861 PrintFatalError(getLoc(), "Record `" + getName() + 1862 "' does not have a field named `" + FieldName + "'!\n"); 1863 1864 if (IntInit *II = dyn_cast<IntInit>(R->getValue())) 1865 return II->getValue(); 1866 PrintFatalError(getLoc(), "Record `" + getName() + "', field `" + 1867 FieldName + "' does not have an int initializer!"); 1868 } 1869 1870 /// getValueAsListOfInts - This method looks up the specified field and returns 1871 /// its value as a vector of integers, aborting if the field does not exist or 1872 /// if the value is not the right type. 1873 /// 1874 std::vector<int64_t> 1875 Record::getValueAsListOfInts(StringRef FieldName) const { 1876 ListInit *List = getValueAsListInit(FieldName); 1877 std::vector<int64_t> Ints; 1878 for (unsigned i = 0; i < List->getSize(); i++) { 1879 if (IntInit *II = dyn_cast<IntInit>(List->getElement(i))) { 1880 Ints.push_back(II->getValue()); 1881 } else { 1882 PrintFatalError(getLoc(), "Record `" + getName() + "', field `" + 1883 FieldName + "' does not have a list of ints initializer!"); 1884 } 1885 } 1886 return Ints; 1887 } 1888 1889 /// getValueAsListOfStrings - This method looks up the specified field and 1890 /// returns its value as a vector of strings, aborting if the field does not 1891 /// exist or if the value is not the right type. 1892 /// 1893 std::vector<std::string> 1894 Record::getValueAsListOfStrings(StringRef FieldName) const { 1895 ListInit *List = getValueAsListInit(FieldName); 1896 std::vector<std::string> Strings; 1897 for (unsigned i = 0; i < List->getSize(); i++) { 1898 if (StringInit *II = dyn_cast<StringInit>(List->getElement(i))) { 1899 Strings.push_back(II->getValue()); 1900 } else { 1901 PrintFatalError(getLoc(), "Record `" + getName() + "', field `" + 1902 FieldName + "' does not have a list of strings initializer!"); 1903 } 1904 } 1905 return Strings; 1906 } 1907 1908 /// getValueAsDef - This method looks up the specified field and returns its 1909 /// value as a Record, aborting if the field does not exist or if the value 1910 /// is not the right type. 1911 /// 1912 Record *Record::getValueAsDef(StringRef FieldName) const { 1913 const RecordVal *R = getValue(FieldName); 1914 if (!R || !R->getValue()) 1915 PrintFatalError(getLoc(), "Record `" + getName() + 1916 "' does not have a field named `" + FieldName + "'!\n"); 1917 1918 if (DefInit *DI = dyn_cast<DefInit>(R->getValue())) 1919 return DI->getDef(); 1920 PrintFatalError(getLoc(), "Record `" + getName() + "', field `" + 1921 FieldName + "' does not have a def initializer!"); 1922 } 1923 1924 /// getValueAsBit - This method looks up the specified field and returns its 1925 /// value as a bit, aborting if the field does not exist or if the value is 1926 /// not the right type. 1927 /// 1928 bool Record::getValueAsBit(StringRef FieldName) const { 1929 const RecordVal *R = getValue(FieldName); 1930 if (!R || !R->getValue()) 1931 PrintFatalError(getLoc(), "Record `" + getName() + 1932 "' does not have a field named `" + FieldName + "'!\n"); 1933 1934 if (BitInit *BI = dyn_cast<BitInit>(R->getValue())) 1935 return BI->getValue(); 1936 PrintFatalError(getLoc(), "Record `" + getName() + "', field `" + 1937 FieldName + "' does not have a bit initializer!"); 1938 } 1939 1940 bool Record::getValueAsBitOrUnset(StringRef FieldName, bool &Unset) const { 1941 const RecordVal *R = getValue(FieldName); 1942 if (!R || !R->getValue()) 1943 PrintFatalError(getLoc(), "Record `" + getName() + 1944 "' does not have a field named `" + FieldName.str() + "'!\n"); 1945 1946 if (R->getValue() == UnsetInit::get()) { 1947 Unset = true; 1948 return false; 1949 } 1950 Unset = false; 1951 if (BitInit *BI = dyn_cast<BitInit>(R->getValue())) 1952 return BI->getValue(); 1953 PrintFatalError(getLoc(), "Record `" + getName() + "', field `" + 1954 FieldName + "' does not have a bit initializer!"); 1955 } 1956 1957 /// getValueAsDag - This method looks up the specified field and returns its 1958 /// value as an Dag, aborting if the field does not exist or if the value is 1959 /// not the right type. 1960 /// 1961 DagInit *Record::getValueAsDag(StringRef FieldName) const { 1962 const RecordVal *R = getValue(FieldName); 1963 if (!R || !R->getValue()) 1964 PrintFatalError(getLoc(), "Record `" + getName() + 1965 "' does not have a field named `" + FieldName + "'!\n"); 1966 1967 if (DagInit *DI = dyn_cast<DagInit>(R->getValue())) 1968 return DI; 1969 PrintFatalError(getLoc(), "Record `" + getName() + "', field `" + 1970 FieldName + "' does not have a dag initializer!"); 1971 } 1972 1973 1974 void MultiClass::dump() const { 1975 errs() << "Record:\n"; 1976 Rec.dump(); 1977 1978 errs() << "Defs:\n"; 1979 for (RecordVector::const_iterator r = DefPrototypes.begin(), 1980 rend = DefPrototypes.end(); 1981 r != rend; 1982 ++r) { 1983 (*r)->dump(); 1984 } 1985 } 1986 1987 1988 void RecordKeeper::dump() const { errs() << *this; } 1989 1990 raw_ostream &llvm::operator<<(raw_ostream &OS, const RecordKeeper &RK) { 1991 OS << "------------- Classes -----------------\n"; 1992 const std::map<std::string, Record*> &Classes = RK.getClasses(); 1993 for (std::map<std::string, Record*>::const_iterator I = Classes.begin(), 1994 E = Classes.end(); I != E; ++I) 1995 OS << "class " << *I->second; 1996 1997 OS << "------------- Defs -----------------\n"; 1998 const std::map<std::string, Record*> &Defs = RK.getDefs(); 1999 for (std::map<std::string, Record*>::const_iterator I = Defs.begin(), 2000 E = Defs.end(); I != E; ++I) 2001 OS << "def " << *I->second; 2002 return OS; 2003 } 2004 2005 2006 /// getAllDerivedDefinitions - This method returns all concrete definitions 2007 /// that derive from the specified class name. If a class with the specified 2008 /// name does not exist, an error is printed and true is returned. 2009 std::vector<Record*> 2010 RecordKeeper::getAllDerivedDefinitions(const std::string &ClassName) const { 2011 Record *Class = getClass(ClassName); 2012 if (!Class) 2013 PrintFatalError("ERROR: Couldn't find the `" + ClassName + "' class!\n"); 2014 2015 std::vector<Record*> Defs; 2016 for (std::map<std::string, Record*>::const_iterator I = getDefs().begin(), 2017 E = getDefs().end(); I != E; ++I) 2018 if (I->second->isSubClassOf(Class)) 2019 Defs.push_back(I->second); 2020 2021 return Defs; 2022 } 2023 2024 /// QualifyName - Return an Init with a qualifier prefix referring 2025 /// to CurRec's name. 2026 Init *llvm::QualifyName(Record &CurRec, MultiClass *CurMultiClass, 2027 Init *Name, const std::string &Scoper) { 2028 RecTy *Type = dyn_cast<TypedInit>(Name)->getType(); 2029 2030 BinOpInit *NewName = 2031 BinOpInit::get(BinOpInit::STRCONCAT, 2032 BinOpInit::get(BinOpInit::STRCONCAT, 2033 CurRec.getNameInit(), 2034 StringInit::get(Scoper), 2035 Type)->Fold(&CurRec, CurMultiClass), 2036 Name, 2037 Type); 2038 2039 if (CurMultiClass && Scoper != "::") { 2040 NewName = 2041 BinOpInit::get(BinOpInit::STRCONCAT, 2042 BinOpInit::get(BinOpInit::STRCONCAT, 2043 CurMultiClass->Rec.getNameInit(), 2044 StringInit::get("::"), 2045 Type)->Fold(&CurRec, CurMultiClass), 2046 NewName->Fold(&CurRec, CurMultiClass), 2047 Type); 2048 } 2049 2050 return NewName->Fold(&CurRec, CurMultiClass); 2051 } 2052 2053 /// QualifyName - Return an Init with a qualifier prefix referring 2054 /// to CurRec's name. 2055 Init *llvm::QualifyName(Record &CurRec, MultiClass *CurMultiClass, 2056 const std::string &Name, 2057 const std::string &Scoper) { 2058 return QualifyName(CurRec, CurMultiClass, StringInit::get(Name), Scoper); 2059 } 2060