1 //===- llvm/TableGen/Record.h - Classes for Table Records -------*- C++ -*-===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file defines the main TableGen data structures, including the TableGen
11 // types, values, and high-level data structures.
12 //
13 //===----------------------------------------------------------------------===//
14 
15 #ifndef LLVM_TABLEGEN_RECORD_H
16 #define LLVM_TABLEGEN_RECORD_H
17 
18 #include "llvm/ADT/ArrayRef.h"
19 #include "llvm/ADT/FoldingSet.h"
20 #include "llvm/Support/Allocator.h"
21 #include "llvm/Support/Casting.h"
22 #include "llvm/Support/DataTypes.h"
23 #include "llvm/Support/ErrorHandling.h"
24 #include "llvm/Support/SourceMgr.h"
25 #include "llvm/Support/raw_ostream.h"
26 #include <map>
27 
28 namespace llvm {
29 class raw_ostream;
30 
31 // RecTy subclasses.
32 class BitRecTy;
33 class BitsRecTy;
34 class IntRecTy;
35 class StringRecTy;
36 class ListRecTy;
37 class DagRecTy;
38 class RecordRecTy;
39 
40 // Init subclasses.
41 class Init;
42 class UnsetInit;
43 class BitInit;
44 class BitsInit;
45 class IntInit;
46 class StringInit;
47 class ListInit;
48 class UnOpInit;
49 class BinOpInit;
50 class TernOpInit;
51 class DefInit;
52 class DagInit;
53 class TypedInit;
54 class VarInit;
55 class FieldInit;
56 class VarBitInit;
57 class VarListElementInit;
58 
59 // Other classes.
60 class Record;
61 class RecordVal;
62 struct MultiClass;
63 class RecordKeeper;
64 
65 //===----------------------------------------------------------------------===//
66 //  Type Classes
67 //===----------------------------------------------------------------------===//
68 
69 class RecTy {
70 public:
71   /// \brief Subclass discriminator (for dyn_cast<> et al.)
72   enum RecTyKind {
73     BitRecTyKind,
74     BitsRecTyKind,
75     IntRecTyKind,
76     StringRecTyKind,
77     ListRecTyKind,
78     DagRecTyKind,
79     RecordRecTyKind
80   };
81 
82 private:
83   RecTyKind Kind;
84   ListRecTy *ListTy;
85   virtual void anchor();
86 
87 public:
getRecTyKind()88   RecTyKind getRecTyKind() const { return Kind; }
89 
RecTy(RecTyKind K)90   RecTy(RecTyKind K) : Kind(K), ListTy(nullptr) {}
~RecTy()91   virtual ~RecTy() {}
92 
93   virtual std::string getAsString() const = 0;
print(raw_ostream & OS)94   void print(raw_ostream &OS) const { OS << getAsString(); }
95   void dump() const;
96 
97   /// typeIsConvertibleTo - Return true if all values of 'this' type can be
98   /// converted to the specified type.
99   virtual bool typeIsConvertibleTo(const RecTy *RHS) const = 0;
100 
101   /// getListTy - Returns the type representing list<this>.
102   ListRecTy *getListTy();
103 
104 public:   // These methods should only be called from subclasses of Init
convertValue(UnsetInit * UI)105   virtual Init *convertValue( UnsetInit *UI) { return nullptr; }
convertValue(BitInit * BI)106   virtual Init *convertValue(   BitInit *BI) { return nullptr; }
convertValue(BitsInit * BI)107   virtual Init *convertValue(  BitsInit *BI) { return nullptr; }
convertValue(IntInit * II)108   virtual Init *convertValue(   IntInit *II) { return nullptr; }
convertValue(StringInit * SI)109   virtual Init *convertValue(StringInit *SI) { return nullptr; }
convertValue(ListInit * LI)110   virtual Init *convertValue(  ListInit *LI) { return nullptr; }
convertValue(UnOpInit * UI)111   virtual Init *convertValue( UnOpInit *UI) {
112     return convertValue((TypedInit*)UI);
113   }
convertValue(BinOpInit * UI)114   virtual Init *convertValue( BinOpInit *UI) {
115     return convertValue((TypedInit*)UI);
116   }
convertValue(TernOpInit * UI)117   virtual Init *convertValue( TernOpInit *UI) {
118     return convertValue((TypedInit*)UI);
119   }
convertValue(VarBitInit * VB)120   virtual Init *convertValue(VarBitInit *VB) { return nullptr; }
convertValue(DefInit * DI)121   virtual Init *convertValue(   DefInit *DI) { return nullptr; }
convertValue(DagInit * DI)122   virtual Init *convertValue(   DagInit *DI) { return nullptr; }
convertValue(TypedInit * TI)123   virtual Init *convertValue( TypedInit *TI) { return nullptr; }
convertValue(VarInit * VI)124   virtual Init *convertValue(   VarInit *VI) {
125     return convertValue((TypedInit*)VI);
126   }
convertValue(FieldInit * FI)127   virtual Init *convertValue( FieldInit *FI) {
128     return convertValue((TypedInit*)FI);
129   }
130 
131 public:
132   virtual bool baseClassOf(const RecTy*) const;
133 };
134 
135 inline raw_ostream &operator<<(raw_ostream &OS, const RecTy &Ty) {
136   Ty.print(OS);
137   return OS;
138 }
139 
140 /// BitRecTy - 'bit' - Represent a single bit
141 ///
142 class BitRecTy : public RecTy {
143   static BitRecTy Shared;
BitRecTy()144   BitRecTy() : RecTy(BitRecTyKind) {}
145 
146 public:
classof(const RecTy * RT)147   static bool classof(const RecTy *RT) {
148     return RT->getRecTyKind() == BitRecTyKind;
149   }
150 
get()151   static BitRecTy *get() { return &Shared; }
152 
convertValue(UnsetInit * UI)153   Init *convertValue( UnsetInit *UI) override { return (Init*)UI; }
convertValue(BitInit * BI)154   Init *convertValue(   BitInit *BI) override { return (Init*)BI; }
155   Init *convertValue(  BitsInit *BI) override;
156   Init *convertValue(   IntInit *II) override;
convertValue(StringInit * SI)157   Init *convertValue(StringInit *SI) override { return nullptr; }
convertValue(ListInit * LI)158   Init *convertValue(  ListInit *LI) override { return nullptr; }
convertValue(VarBitInit * VB)159   Init *convertValue(VarBitInit *VB) override { return (Init*)VB; }
convertValue(DefInit * DI)160   Init *convertValue(   DefInit *DI) override { return nullptr; }
convertValue(DagInit * DI)161   Init *convertValue(   DagInit *DI) override { return nullptr; }
convertValue(UnOpInit * UI)162   Init *convertValue( UnOpInit *UI) override { return RecTy::convertValue(UI);}
convertValue(BinOpInit * UI)163   Init *convertValue( BinOpInit *UI) override { return RecTy::convertValue(UI);}
convertValue(TernOpInit * UI)164   Init *convertValue( TernOpInit *UI) override {return RecTy::convertValue(UI);}
165   Init *convertValue( TypedInit *TI) override;
convertValue(VarInit * VI)166   Init *convertValue(   VarInit *VI) override { return RecTy::convertValue(VI);}
convertValue(FieldInit * FI)167   Init *convertValue( FieldInit *FI) override { return RecTy::convertValue(FI);}
168 
getAsString()169   std::string getAsString() const override { return "bit"; }
170 
typeIsConvertibleTo(const RecTy * RHS)171   bool typeIsConvertibleTo(const RecTy *RHS) const override {
172     return RHS->baseClassOf(this);
173   }
174   bool baseClassOf(const RecTy*) const override;
175 };
176 
177 /// BitsRecTy - 'bits<n>' - Represent a fixed number of bits
178 ///
179 class BitsRecTy : public RecTy {
180   unsigned Size;
BitsRecTy(unsigned Sz)181   explicit BitsRecTy(unsigned Sz) : RecTy(BitsRecTyKind), Size(Sz) {}
182 
183 public:
classof(const RecTy * RT)184   static bool classof(const RecTy *RT) {
185     return RT->getRecTyKind() == BitsRecTyKind;
186   }
187 
188   static BitsRecTy *get(unsigned Sz);
189 
getNumBits()190   unsigned getNumBits() const { return Size; }
191 
192   Init *convertValue( UnsetInit *UI) override;
193   Init *convertValue(   BitInit *UI) override;
194   Init *convertValue(  BitsInit *BI) override;
195   Init *convertValue(   IntInit *II) override;
convertValue(StringInit * SI)196   Init *convertValue(StringInit *SI) override { return nullptr; }
convertValue(ListInit * LI)197   Init *convertValue(  ListInit *LI) override { return nullptr; }
convertValue(VarBitInit * VB)198   Init *convertValue(VarBitInit *VB) override { return nullptr; }
convertValue(DefInit * DI)199   Init *convertValue(   DefInit *DI) override { return nullptr; }
convertValue(DagInit * DI)200   Init *convertValue(   DagInit *DI) override { return nullptr; }
convertValue(UnOpInit * UI)201   Init *convertValue(  UnOpInit *UI) override { return RecTy::convertValue(UI);}
convertValue(BinOpInit * UI)202   Init *convertValue( BinOpInit *UI) override { return RecTy::convertValue(UI);}
convertValue(TernOpInit * UI)203   Init *convertValue(TernOpInit *UI) override { return RecTy::convertValue(UI);}
204   Init *convertValue( TypedInit *TI) override;
convertValue(VarInit * VI)205   Init *convertValue(   VarInit *VI) override { return RecTy::convertValue(VI);}
convertValue(FieldInit * FI)206   Init *convertValue( FieldInit *FI) override { return RecTy::convertValue(FI);}
207 
208   std::string getAsString() const override;
209 
typeIsConvertibleTo(const RecTy * RHS)210   bool typeIsConvertibleTo(const RecTy *RHS) const override {
211     return RHS->baseClassOf(this);
212   }
213   bool baseClassOf(const RecTy*) const override;
214 };
215 
216 /// IntRecTy - 'int' - Represent an integer value of no particular size
217 ///
218 class IntRecTy : public RecTy {
219   static IntRecTy Shared;
IntRecTy()220   IntRecTy() : RecTy(IntRecTyKind) {}
221 
222 public:
classof(const RecTy * RT)223   static bool classof(const RecTy *RT) {
224     return RT->getRecTyKind() == IntRecTyKind;
225   }
226 
get()227   static IntRecTy *get() { return &Shared; }
228 
convertValue(UnsetInit * UI)229   Init *convertValue( UnsetInit *UI) override { return (Init*)UI; }
230   Init *convertValue(   BitInit *BI) override;
231   Init *convertValue(  BitsInit *BI) override;
convertValue(IntInit * II)232   Init *convertValue(   IntInit *II) override { return (Init*)II; }
convertValue(StringInit * SI)233   Init *convertValue(StringInit *SI) override { return nullptr; }
convertValue(ListInit * LI)234   Init *convertValue(  ListInit *LI) override { return nullptr; }
convertValue(VarBitInit * VB)235   Init *convertValue(VarBitInit *VB) override { return nullptr; }
convertValue(DefInit * DI)236   Init *convertValue(   DefInit *DI) override { return nullptr; }
convertValue(DagInit * DI)237   Init *convertValue(   DagInit *DI) override { return nullptr; }
convertValue(UnOpInit * UI)238   Init *convertValue( UnOpInit *UI)  override { return RecTy::convertValue(UI);}
convertValue(BinOpInit * UI)239   Init *convertValue( BinOpInit *UI) override { return RecTy::convertValue(UI);}
convertValue(TernOpInit * UI)240   Init *convertValue( TernOpInit *UI) override {return RecTy::convertValue(UI);}
241   Init *convertValue( TypedInit *TI) override;
convertValue(VarInit * VI)242   Init *convertValue(   VarInit *VI) override { return RecTy::convertValue(VI);}
convertValue(FieldInit * FI)243   Init *convertValue( FieldInit *FI) override { return RecTy::convertValue(FI);}
244 
getAsString()245   std::string getAsString() const override { return "int"; }
246 
typeIsConvertibleTo(const RecTy * RHS)247   bool typeIsConvertibleTo(const RecTy *RHS) const override {
248     return RHS->baseClassOf(this);
249   }
250 
251   bool baseClassOf(const RecTy*) const override;
252 };
253 
254 /// StringRecTy - 'string' - Represent an string value
255 ///
256 class StringRecTy : public RecTy {
257   static StringRecTy Shared;
StringRecTy()258   StringRecTy() : RecTy(StringRecTyKind) {}
259 
260 public:
classof(const RecTy * RT)261   static bool classof(const RecTy *RT) {
262     return RT->getRecTyKind() == StringRecTyKind;
263   }
264 
get()265   static StringRecTy *get() { return &Shared; }
266 
convertValue(UnsetInit * UI)267   Init *convertValue( UnsetInit *UI) override { return (Init*)UI; }
convertValue(BitInit * BI)268   Init *convertValue(   BitInit *BI) override { return nullptr; }
convertValue(BitsInit * BI)269   Init *convertValue(  BitsInit *BI) override { return nullptr; }
convertValue(IntInit * II)270   Init *convertValue(   IntInit *II) override { return nullptr; }
convertValue(StringInit * SI)271   Init *convertValue(StringInit *SI) override { return (Init*)SI; }
convertValue(ListInit * LI)272   Init *convertValue(  ListInit *LI) override { return nullptr; }
273   Init *convertValue( UnOpInit *BO) override;
274   Init *convertValue( BinOpInit *BO) override;
convertValue(TernOpInit * BO)275   Init *convertValue( TernOpInit *BO) override {return RecTy::convertValue(BO);}
276 
convertValue(VarBitInit * VB)277   Init *convertValue(VarBitInit *VB) override { return nullptr; }
convertValue(DefInit * DI)278   Init *convertValue(   DefInit *DI) override { return nullptr; }
convertValue(DagInit * DI)279   Init *convertValue(   DagInit *DI) override { return nullptr; }
280   Init *convertValue( TypedInit *TI) override;
convertValue(VarInit * VI)281   Init *convertValue(   VarInit *VI) override { return RecTy::convertValue(VI);}
convertValue(FieldInit * FI)282   Init *convertValue( FieldInit *FI) override { return RecTy::convertValue(FI);}
283 
getAsString()284   std::string getAsString() const override { return "string"; }
285 
typeIsConvertibleTo(const RecTy * RHS)286   bool typeIsConvertibleTo(const RecTy *RHS) const override {
287     return RHS->baseClassOf(this);
288   }
289 };
290 
291 /// ListRecTy - 'list<Ty>' - Represent a list of values, all of which must be of
292 /// the specified type.
293 ///
294 class ListRecTy : public RecTy {
295   RecTy *Ty;
ListRecTy(RecTy * T)296   explicit ListRecTy(RecTy *T) : RecTy(ListRecTyKind), Ty(T) {}
297   friend ListRecTy *RecTy::getListTy();
298 
299 public:
classof(const RecTy * RT)300   static bool classof(const RecTy *RT) {
301     return RT->getRecTyKind() == ListRecTyKind;
302   }
303 
get(RecTy * T)304   static ListRecTy *get(RecTy *T) { return T->getListTy(); }
getElementType()305   RecTy *getElementType() const { return Ty; }
306 
convertValue(UnsetInit * UI)307   Init *convertValue( UnsetInit *UI) override { return (Init*)UI; }
convertValue(BitInit * BI)308   Init *convertValue(   BitInit *BI) override { return nullptr; }
convertValue(BitsInit * BI)309   Init *convertValue(  BitsInit *BI) override { return nullptr; }
convertValue(IntInit * II)310   Init *convertValue(   IntInit *II) override { return nullptr; }
convertValue(StringInit * SI)311   Init *convertValue(StringInit *SI) override { return nullptr; }
312   Init *convertValue(  ListInit *LI) override;
convertValue(VarBitInit * VB)313   Init *convertValue(VarBitInit *VB) override { return nullptr; }
convertValue(DefInit * DI)314   Init *convertValue(   DefInit *DI) override { return nullptr; }
convertValue(DagInit * DI)315   Init *convertValue(   DagInit *DI) override { return nullptr; }
convertValue(UnOpInit * UI)316   Init *convertValue(  UnOpInit *UI) override { return RecTy::convertValue(UI);}
convertValue(BinOpInit * UI)317   Init *convertValue( BinOpInit *UI) override { return RecTy::convertValue(UI);}
convertValue(TernOpInit * UI)318   Init *convertValue(TernOpInit *UI) override { return RecTy::convertValue(UI);}
319   Init *convertValue( TypedInit *TI) override;
convertValue(VarInit * VI)320   Init *convertValue(   VarInit *VI) override { return RecTy::convertValue(VI);}
convertValue(FieldInit * FI)321   Init *convertValue( FieldInit *FI) override { return RecTy::convertValue(FI);}
322 
323   std::string getAsString() const override;
324 
typeIsConvertibleTo(const RecTy * RHS)325   bool typeIsConvertibleTo(const RecTy *RHS) const override {
326     return RHS->baseClassOf(this);
327   }
328 
329   bool baseClassOf(const RecTy*) const override;
330 };
331 
332 /// DagRecTy - 'dag' - Represent a dag fragment
333 ///
334 class DagRecTy : public RecTy {
335   static DagRecTy Shared;
DagRecTy()336   DagRecTy() : RecTy(DagRecTyKind) {}
337 
338 public:
classof(const RecTy * RT)339   static bool classof(const RecTy *RT) {
340     return RT->getRecTyKind() == DagRecTyKind;
341   }
342 
get()343   static DagRecTy *get() { return &Shared; }
344 
convertValue(UnsetInit * UI)345   Init *convertValue( UnsetInit *UI) override { return (Init*)UI; }
convertValue(BitInit * BI)346   Init *convertValue(   BitInit *BI) override { return nullptr; }
convertValue(BitsInit * BI)347   Init *convertValue(  BitsInit *BI) override { return nullptr; }
convertValue(IntInit * II)348   Init *convertValue(   IntInit *II) override { return nullptr; }
convertValue(StringInit * SI)349   Init *convertValue(StringInit *SI) override { return nullptr; }
convertValue(ListInit * LI)350   Init *convertValue(  ListInit *LI) override { return nullptr; }
convertValue(VarBitInit * VB)351   Init *convertValue(VarBitInit *VB) override { return nullptr; }
convertValue(DefInit * DI)352   Init *convertValue(   DefInit *DI) override { return nullptr; }
353   Init *convertValue( UnOpInit *BO) override;
354   Init *convertValue( BinOpInit *BO) override;
convertValue(TernOpInit * BO)355   Init *convertValue( TernOpInit *BO) override {return RecTy::convertValue(BO);}
convertValue(DagInit * CI)356   Init *convertValue(   DagInit *CI) override { return (Init*)CI; }
357   Init *convertValue( TypedInit *TI) override;
convertValue(VarInit * VI)358   Init *convertValue(   VarInit *VI) override { return RecTy::convertValue(VI);}
convertValue(FieldInit * FI)359   Init *convertValue( FieldInit *FI) override { return RecTy::convertValue(FI);}
360 
getAsString()361   std::string getAsString() const override { return "dag"; }
362 
typeIsConvertibleTo(const RecTy * RHS)363   bool typeIsConvertibleTo(const RecTy *RHS) const override {
364     return RHS->baseClassOf(this);
365   }
366 };
367 
368 /// RecordRecTy - '[classname]' - Represent an instance of a class, such as:
369 /// (R32 X = EAX).
370 ///
371 class RecordRecTy : public RecTy {
372   Record *Rec;
RecordRecTy(Record * R)373   explicit RecordRecTy(Record *R) : RecTy(RecordRecTyKind), Rec(R) {}
374   friend class Record;
375 
376 public:
classof(const RecTy * RT)377   static bool classof(const RecTy *RT) {
378     return RT->getRecTyKind() == RecordRecTyKind;
379   }
380 
381   static RecordRecTy *get(Record *R);
382 
getRecord()383   Record *getRecord() const { return Rec; }
384 
convertValue(UnsetInit * UI)385   Init *convertValue( UnsetInit *UI) override { return (Init*)UI; }
convertValue(BitInit * BI)386   Init *convertValue(   BitInit *BI) override { return nullptr; }
convertValue(BitsInit * BI)387   Init *convertValue(  BitsInit *BI) override { return nullptr; }
convertValue(IntInit * II)388   Init *convertValue(   IntInit *II) override { return nullptr; }
convertValue(StringInit * SI)389   Init *convertValue(StringInit *SI) override { return nullptr; }
convertValue(ListInit * LI)390   Init *convertValue(  ListInit *LI) override { return nullptr; }
convertValue(VarBitInit * VB)391   Init *convertValue(VarBitInit *VB) override { return nullptr; }
convertValue(UnOpInit * UI)392   Init *convertValue( UnOpInit *UI) override { return RecTy::convertValue(UI);}
convertValue(BinOpInit * UI)393   Init *convertValue( BinOpInit *UI) override { return RecTy::convertValue(UI);}
convertValue(TernOpInit * UI)394   Init *convertValue( TernOpInit *UI) override {return RecTy::convertValue(UI);}
395   Init *convertValue(   DefInit *DI) override;
convertValue(DagInit * DI)396   Init *convertValue(   DagInit *DI) override { return nullptr; }
397   Init *convertValue( TypedInit *VI) override;
convertValue(VarInit * VI)398   Init *convertValue(   VarInit *VI) override { return RecTy::convertValue(VI);}
convertValue(FieldInit * FI)399   Init *convertValue( FieldInit *FI) override { return RecTy::convertValue(FI);}
400 
401   std::string getAsString() const override;
402 
typeIsConvertibleTo(const RecTy * RHS)403   bool typeIsConvertibleTo(const RecTy *RHS) const override {
404     return RHS->baseClassOf(this);
405   }
406   bool baseClassOf(const RecTy*) const override;
407 };
408 
409 /// resolveTypes - Find a common type that T1 and T2 convert to.
410 /// Return 0 if no such type exists.
411 ///
412 RecTy *resolveTypes(RecTy *T1, RecTy *T2);
413 
414 //===----------------------------------------------------------------------===//
415 //  Initializer Classes
416 //===----------------------------------------------------------------------===//
417 
418 class Init {
419 protected:
420   /// \brief Discriminator enum (for isa<>, dyn_cast<>, et al.)
421   ///
422   /// This enum is laid out by a preorder traversal of the inheritance
423   /// hierarchy, and does not contain an entry for abstract classes, as per
424   /// the recommendation in docs/HowToSetUpLLVMStyleRTTI.rst.
425   ///
426   /// We also explicitly include "first" and "last" values for each
427   /// interior node of the inheritance tree, to make it easier to read the
428   /// corresponding classof().
429   ///
430   /// We could pack these a bit tighter by not having the IK_FirstXXXInit
431   /// and IK_LastXXXInit be their own values, but that would degrade
432   /// readability for really no benefit.
433   enum InitKind {
434     IK_BitInit,
435     IK_FirstTypedInit,
436     IK_BitsInit,
437     IK_DagInit,
438     IK_DefInit,
439     IK_FieldInit,
440     IK_IntInit,
441     IK_ListInit,
442     IK_FirstOpInit,
443     IK_BinOpInit,
444     IK_TernOpInit,
445     IK_UnOpInit,
446     IK_LastOpInit,
447     IK_StringInit,
448     IK_VarInit,
449     IK_VarListElementInit,
450     IK_LastTypedInit,
451     IK_UnsetInit,
452     IK_VarBitInit
453   };
454 
455 private:
456   const InitKind Kind;
457   Init(const Init &) LLVM_DELETED_FUNCTION;
458   Init &operator=(const Init &) LLVM_DELETED_FUNCTION;
459   virtual void anchor();
460 
461 public:
getKind()462   InitKind getKind() const { return Kind; }
463 
464 protected:
Init(InitKind K)465   explicit Init(InitKind K) : Kind(K) {}
466 
467 public:
~Init()468   virtual ~Init() {}
469 
470   /// isComplete - This virtual method should be overridden by values that may
471   /// not be completely specified yet.
isComplete()472   virtual bool isComplete() const { return true; }
473 
474   /// print - Print out this value.
print(raw_ostream & OS)475   void print(raw_ostream &OS) const { OS << getAsString(); }
476 
477   /// getAsString - Convert this value to a string form.
478   virtual std::string getAsString() const = 0;
479   /// getAsUnquotedString - Convert this value to a string form,
480   /// without adding quote markers.  This primaruly affects
481   /// StringInits where we will not surround the string value with
482   /// quotes.
getAsUnquotedString()483   virtual std::string getAsUnquotedString() const { return getAsString(); }
484 
485   /// dump - Debugging method that may be called through a debugger, just
486   /// invokes print on stderr.
487   void dump() const;
488 
489   /// convertInitializerTo - This virtual function is a simple call-back
490   /// function that should be overridden to call the appropriate
491   /// RecTy::convertValue method.
492   ///
493   virtual Init *convertInitializerTo(RecTy *Ty) const = 0;
494 
495   /// convertInitializerBitRange - This method is used to implement the bitrange
496   /// selection operator.  Given an initializer, it selects the specified bits
497   /// out, returning them as a new init of bits type.  If it is not legal to use
498   /// the bit subscript operator on this initializer, return null.
499   ///
500   virtual Init *
convertInitializerBitRange(const std::vector<unsigned> & Bits)501   convertInitializerBitRange(const std::vector<unsigned> &Bits) const {
502     return nullptr;
503   }
504 
505   /// convertInitListSlice - This method is used to implement the list slice
506   /// selection operator.  Given an initializer, it selects the specified list
507   /// elements, returning them as a new init of list type.  If it is not legal
508   /// to take a slice of this, return null.
509   ///
510   virtual Init *
convertInitListSlice(const std::vector<unsigned> & Elements)511   convertInitListSlice(const std::vector<unsigned> &Elements) const {
512     return nullptr;
513   }
514 
515   /// getFieldType - This method is used to implement the FieldInit class.
516   /// Implementors of this method should return the type of the named field if
517   /// they are of record type.
518   ///
getFieldType(const std::string & FieldName)519   virtual RecTy *getFieldType(const std::string &FieldName) const {
520     return nullptr;
521   }
522 
523   /// getFieldInit - This method complements getFieldType to return the
524   /// initializer for the specified field.  If getFieldType returns non-null
525   /// this method should return non-null, otherwise it returns null.
526   ///
getFieldInit(Record & R,const RecordVal * RV,const std::string & FieldName)527   virtual Init *getFieldInit(Record &R, const RecordVal *RV,
528                              const std::string &FieldName) const {
529     return nullptr;
530   }
531 
532   /// resolveReferences - This method is used by classes that refer to other
533   /// variables which may not be defined at the time the expression is formed.
534   /// If a value is set for the variable later, this method will be called on
535   /// users of the value to allow the value to propagate out.
536   ///
resolveReferences(Record & R,const RecordVal * RV)537   virtual Init *resolveReferences(Record &R, const RecordVal *RV) const {
538     return const_cast<Init *>(this);
539   }
540 
541   /// getBit - This method is used to return the initializer for the specified
542   /// bit.
543   virtual Init *getBit(unsigned Bit) const = 0;
544 
545   /// getBitVar - This method is used to retrieve the initializer for bit
546   /// reference. For non-VarBitInit, it simply returns itself.
getBitVar()547   virtual Init *getBitVar() const { return const_cast<Init*>(this); }
548 
549   /// getBitNum - This method is used to retrieve the bit number of a bit
550   /// reference. For non-VarBitInit, it simply returns 0.
getBitNum()551   virtual unsigned getBitNum() const { return 0; }
552 };
553 
554 inline raw_ostream &operator<<(raw_ostream &OS, const Init &I) {
555   I.print(OS); return OS;
556 }
557 
558 /// TypedInit - This is the common super-class of types that have a specific,
559 /// explicit, type.
560 ///
561 class TypedInit : public Init {
562   RecTy *Ty;
563 
564   TypedInit(const TypedInit &Other) LLVM_DELETED_FUNCTION;
565   TypedInit &operator=(const TypedInit &Other) LLVM_DELETED_FUNCTION;
566 
567 protected:
TypedInit(InitKind K,RecTy * T)568   explicit TypedInit(InitKind K, RecTy *T) : Init(K), Ty(T) {}
569 
570 public:
classof(const Init * I)571   static bool classof(const Init *I) {
572     return I->getKind() >= IK_FirstTypedInit &&
573            I->getKind() <= IK_LastTypedInit;
574   }
getType()575   RecTy *getType() const { return Ty; }
576 
577   Init *
578   convertInitializerBitRange(const std::vector<unsigned> &Bits) const override;
579   Init *
580   convertInitListSlice(const std::vector<unsigned> &Elements) const override;
581 
582   /// getFieldType - This method is used to implement the FieldInit class.
583   /// Implementors of this method should return the type of the named field if
584   /// they are of record type.
585   ///
586   RecTy *getFieldType(const std::string &FieldName) const override;
587 
588   /// resolveListElementReference - This method is used to implement
589   /// VarListElementInit::resolveReferences.  If the list element is resolvable
590   /// now, we return the resolved value, otherwise we return null.
591   virtual Init *resolveListElementReference(Record &R, const RecordVal *RV,
592                                             unsigned Elt) const = 0;
593 };
594 
595 /// UnsetInit - ? - Represents an uninitialized value
596 ///
597 class UnsetInit : public Init {
UnsetInit()598   UnsetInit() : Init(IK_UnsetInit) {}
599   UnsetInit(const UnsetInit &) LLVM_DELETED_FUNCTION;
600   UnsetInit &operator=(const UnsetInit &Other) LLVM_DELETED_FUNCTION;
601   void anchor() override;
602 
603 public:
classof(const Init * I)604   static bool classof(const Init *I) {
605     return I->getKind() == IK_UnsetInit;
606   }
607   static UnsetInit *get();
608 
convertInitializerTo(RecTy * Ty)609   Init *convertInitializerTo(RecTy *Ty) const override {
610     return Ty->convertValue(const_cast<UnsetInit *>(this));
611   }
612 
getBit(unsigned Bit)613   Init *getBit(unsigned Bit) const override {
614     return const_cast<UnsetInit*>(this);
615   }
616 
isComplete()617   bool isComplete() const override { return false; }
getAsString()618   std::string getAsString() const override { return "?"; }
619 };
620 
621 /// BitInit - true/false - Represent a concrete initializer for a bit.
622 ///
623 class BitInit : public Init {
624   bool Value;
625 
BitInit(bool V)626   explicit BitInit(bool V) : Init(IK_BitInit), Value(V) {}
627   BitInit(const BitInit &Other) LLVM_DELETED_FUNCTION;
628   BitInit &operator=(BitInit &Other) LLVM_DELETED_FUNCTION;
629   void anchor() override;
630 
631 public:
classof(const Init * I)632   static bool classof(const Init *I) {
633     return I->getKind() == IK_BitInit;
634   }
635   static BitInit *get(bool V);
636 
getValue()637   bool getValue() const { return Value; }
638 
convertInitializerTo(RecTy * Ty)639   Init *convertInitializerTo(RecTy *Ty) const override {
640     return Ty->convertValue(const_cast<BitInit *>(this));
641   }
642 
getBit(unsigned Bit)643   Init *getBit(unsigned Bit) const override {
644     assert(Bit < 1 && "Bit index out of range!");
645     return const_cast<BitInit*>(this);
646   }
647 
getAsString()648   std::string getAsString() const override { return Value ? "1" : "0"; }
649 };
650 
651 /// BitsInit - { a, b, c } - Represents an initializer for a BitsRecTy value.
652 /// It contains a vector of bits, whose size is determined by the type.
653 ///
654 class BitsInit : public TypedInit, public FoldingSetNode {
655   std::vector<Init*> Bits;
656 
BitsInit(ArrayRef<Init * > Range)657   BitsInit(ArrayRef<Init *> Range)
658     : TypedInit(IK_BitsInit, BitsRecTy::get(Range.size())),
659       Bits(Range.begin(), Range.end()) {}
660 
661   BitsInit(const BitsInit &Other) LLVM_DELETED_FUNCTION;
662   BitsInit &operator=(const BitsInit &Other) LLVM_DELETED_FUNCTION;
663 
664 public:
classof(const Init * I)665   static bool classof(const Init *I) {
666     return I->getKind() == IK_BitsInit;
667   }
668   static BitsInit *get(ArrayRef<Init *> Range);
669 
670   void Profile(FoldingSetNodeID &ID) const;
671 
getNumBits()672   unsigned getNumBits() const { return Bits.size(); }
673 
convertInitializerTo(RecTy * Ty)674   Init *convertInitializerTo(RecTy *Ty) const override {
675     return Ty->convertValue(const_cast<BitsInit *>(this));
676   }
677   Init *
678   convertInitializerBitRange(const std::vector<unsigned> &Bits) const override;
679 
isComplete()680   bool isComplete() const override {
681     for (unsigned i = 0; i != getNumBits(); ++i)
682       if (!getBit(i)->isComplete()) return false;
683     return true;
684   }
allInComplete()685   bool allInComplete() const {
686     for (unsigned i = 0; i != getNumBits(); ++i)
687       if (getBit(i)->isComplete()) return false;
688     return true;
689   }
690   std::string getAsString() const override;
691 
692   /// resolveListElementReference - This method is used to implement
693   /// VarListElementInit::resolveReferences.  If the list element is resolvable
694   /// now, we return the resolved value, otherwise we return null.
resolveListElementReference(Record & R,const RecordVal * RV,unsigned Elt)695   Init *resolveListElementReference(Record &R, const RecordVal *RV,
696                                     unsigned Elt) const override {
697     llvm_unreachable("Illegal element reference off bits<n>");
698   }
699 
700   Init *resolveReferences(Record &R, const RecordVal *RV) const override;
701 
getBit(unsigned Bit)702   Init *getBit(unsigned Bit) const override {
703     assert(Bit < Bits.size() && "Bit index out of range!");
704     return Bits[Bit];
705   }
706 };
707 
708 /// IntInit - 7 - Represent an initialization by a literal integer value.
709 ///
710 class IntInit : public TypedInit {
711   int64_t Value;
712 
IntInit(int64_t V)713   explicit IntInit(int64_t V)
714     : TypedInit(IK_IntInit, IntRecTy::get()), Value(V) {}
715 
716   IntInit(const IntInit &Other) LLVM_DELETED_FUNCTION;
717   IntInit &operator=(const IntInit &Other) LLVM_DELETED_FUNCTION;
718 
719 public:
classof(const Init * I)720   static bool classof(const Init *I) {
721     return I->getKind() == IK_IntInit;
722   }
723   static IntInit *get(int64_t V);
724 
getValue()725   int64_t getValue() const { return Value; }
726 
convertInitializerTo(RecTy * Ty)727   Init *convertInitializerTo(RecTy *Ty) const override {
728     return Ty->convertValue(const_cast<IntInit *>(this));
729   }
730   Init *
731   convertInitializerBitRange(const std::vector<unsigned> &Bits) const override;
732 
733   std::string getAsString() const override;
734 
735   /// resolveListElementReference - This method is used to implement
736   /// VarListElementInit::resolveReferences.  If the list element is resolvable
737   /// now, we return the resolved value, otherwise we return null.
resolveListElementReference(Record & R,const RecordVal * RV,unsigned Elt)738   Init *resolveListElementReference(Record &R, const RecordVal *RV,
739                                     unsigned Elt) const override {
740     llvm_unreachable("Illegal element reference off int");
741   }
742 
getBit(unsigned Bit)743   Init *getBit(unsigned Bit) const override {
744     return BitInit::get((Value & (1ULL << Bit)) != 0);
745   }
746 };
747 
748 /// StringInit - "foo" - Represent an initialization by a string value.
749 ///
750 class StringInit : public TypedInit {
751   std::string Value;
752 
StringInit(const std::string & V)753   explicit StringInit(const std::string &V)
754     : TypedInit(IK_StringInit, StringRecTy::get()), Value(V) {}
755 
756   StringInit(const StringInit &Other) LLVM_DELETED_FUNCTION;
757   StringInit &operator=(const StringInit &Other) LLVM_DELETED_FUNCTION;
758   void anchor() override;
759 
760 public:
classof(const Init * I)761   static bool classof(const Init *I) {
762     return I->getKind() == IK_StringInit;
763   }
764   static StringInit *get(StringRef);
765 
getValue()766   const std::string &getValue() const { return Value; }
767 
convertInitializerTo(RecTy * Ty)768   Init *convertInitializerTo(RecTy *Ty) const override {
769     return Ty->convertValue(const_cast<StringInit *>(this));
770   }
771 
getAsString()772   std::string getAsString() const override { return "\"" + Value + "\""; }
getAsUnquotedString()773   std::string getAsUnquotedString() const override { return Value; }
774 
775   /// resolveListElementReference - This method is used to implement
776   /// VarListElementInit::resolveReferences.  If the list element is resolvable
777   /// now, we return the resolved value, otherwise we return null.
resolveListElementReference(Record & R,const RecordVal * RV,unsigned Elt)778   Init *resolveListElementReference(Record &R, const RecordVal *RV,
779                                     unsigned Elt) const override {
780     llvm_unreachable("Illegal element reference off string");
781   }
782 
getBit(unsigned Bit)783   Init *getBit(unsigned Bit) const override {
784     llvm_unreachable("Illegal bit reference off string");
785   }
786 };
787 
788 /// ListInit - [AL, AH, CL] - Represent a list of defs
789 ///
790 class ListInit : public TypedInit, public FoldingSetNode {
791   std::vector<Init*> Values;
792 
793 public:
794   typedef std::vector<Init*>::const_iterator const_iterator;
795 
796 private:
ListInit(ArrayRef<Init * > Range,RecTy * EltTy)797   explicit ListInit(ArrayRef<Init *> Range, RecTy *EltTy)
798     : TypedInit(IK_ListInit, ListRecTy::get(EltTy)),
799       Values(Range.begin(), Range.end()) {}
800 
801   ListInit(const ListInit &Other) LLVM_DELETED_FUNCTION;
802   ListInit &operator=(const ListInit &Other) LLVM_DELETED_FUNCTION;
803 
804 public:
classof(const Init * I)805   static bool classof(const Init *I) {
806     return I->getKind() == IK_ListInit;
807   }
808   static ListInit *get(ArrayRef<Init *> Range, RecTy *EltTy);
809 
810   void Profile(FoldingSetNodeID &ID) const;
811 
getSize()812   unsigned getSize() const { return Values.size(); }
getElement(unsigned i)813   Init *getElement(unsigned i) const {
814     assert(i < Values.size() && "List element index out of range!");
815     return Values[i];
816   }
817 
818   Record *getElementAsRecord(unsigned i) const;
819 
820   Init *
821     convertInitListSlice(const std::vector<unsigned> &Elements) const override;
822 
convertInitializerTo(RecTy * Ty)823   Init *convertInitializerTo(RecTy *Ty) const override {
824     return Ty->convertValue(const_cast<ListInit *>(this));
825   }
826 
827   /// resolveReferences - This method is used by classes that refer to other
828   /// variables which may not be defined at the time they expression is formed.
829   /// If a value is set for the variable later, this method will be called on
830   /// users of the value to allow the value to propagate out.
831   ///
832   Init *resolveReferences(Record &R, const RecordVal *RV) const override;
833 
834   std::string getAsString() const override;
835 
getValues()836   ArrayRef<Init*> getValues() const { return Values; }
837 
begin()838   inline const_iterator begin() const { return Values.begin(); }
end()839   inline const_iterator end  () const { return Values.end();   }
840 
size()841   inline size_t         size () const { return Values.size();  }
empty()842   inline bool           empty() const { return Values.empty(); }
843 
844   /// resolveListElementReference - This method is used to implement
845   /// VarListElementInit::resolveReferences.  If the list element is resolvable
846   /// now, we return the resolved value, otherwise we return null.
847   Init *resolveListElementReference(Record &R, const RecordVal *RV,
848                                     unsigned Elt) const override;
849 
getBit(unsigned Bit)850   Init *getBit(unsigned Bit) const override {
851     llvm_unreachable("Illegal bit reference off list");
852   }
853 };
854 
855 /// OpInit - Base class for operators
856 ///
857 class OpInit : public TypedInit {
858   OpInit(const OpInit &Other) LLVM_DELETED_FUNCTION;
859   OpInit &operator=(OpInit &Other) LLVM_DELETED_FUNCTION;
860 
861 protected:
OpInit(InitKind K,RecTy * Type)862   explicit OpInit(InitKind K, RecTy *Type) : TypedInit(K, Type) {}
863 
864 public:
classof(const Init * I)865   static bool classof(const Init *I) {
866     return I->getKind() >= IK_FirstOpInit &&
867            I->getKind() <= IK_LastOpInit;
868   }
869   // Clone - Clone this operator, replacing arguments with the new list
870   virtual OpInit *clone(std::vector<Init *> &Operands) const = 0;
871 
872   virtual int getNumOperands() const = 0;
873   virtual Init *getOperand(int i) const = 0;
874 
875   // Fold - If possible, fold this to a simpler init.  Return this if not
876   // possible to fold.
877   virtual Init *Fold(Record *CurRec, MultiClass *CurMultiClass) const = 0;
878 
convertInitializerTo(RecTy * Ty)879   Init *convertInitializerTo(RecTy *Ty) const override {
880     return Ty->convertValue(const_cast<OpInit *>(this));
881   }
882 
883   Init *resolveListElementReference(Record &R, const RecordVal *RV,
884                                     unsigned Elt) const override;
885 
886   Init *getBit(unsigned Bit) const override;
887 };
888 
889 /// UnOpInit - !op (X) - Transform an init.
890 ///
891 class UnOpInit : public OpInit {
892 public:
893   enum UnaryOp { CAST, HEAD, TAIL, EMPTY };
894 
895 private:
896   UnaryOp Opc;
897   Init *LHS;
898 
UnOpInit(UnaryOp opc,Init * lhs,RecTy * Type)899   UnOpInit(UnaryOp opc, Init *lhs, RecTy *Type)
900     : OpInit(IK_UnOpInit, Type), Opc(opc), LHS(lhs) {}
901 
902   UnOpInit(const UnOpInit &Other) LLVM_DELETED_FUNCTION;
903   UnOpInit &operator=(const UnOpInit &Other) LLVM_DELETED_FUNCTION;
904 
905 public:
classof(const Init * I)906   static bool classof(const Init *I) {
907     return I->getKind() == IK_UnOpInit;
908   }
909   static UnOpInit *get(UnaryOp opc, Init *lhs, RecTy *Type);
910 
911   // Clone - Clone this operator, replacing arguments with the new list
clone(std::vector<Init * > & Operands)912   OpInit *clone(std::vector<Init *> &Operands) const override {
913     assert(Operands.size() == 1 &&
914            "Wrong number of operands for unary operation");
915     return UnOpInit::get(getOpcode(), *Operands.begin(), getType());
916   }
917 
getNumOperands()918   int getNumOperands() const override { return 1; }
getOperand(int i)919   Init *getOperand(int i) const override {
920     assert(i == 0 && "Invalid operand id for unary operator");
921     return getOperand();
922   }
923 
getOpcode()924   UnaryOp getOpcode() const { return Opc; }
getOperand()925   Init *getOperand() const { return LHS; }
926 
927   // Fold - If possible, fold this to a simpler init.  Return this if not
928   // possible to fold.
929   Init *Fold(Record *CurRec, MultiClass *CurMultiClass) const override;
930 
931   Init *resolveReferences(Record &R, const RecordVal *RV) const override;
932 
933   std::string getAsString() const override;
934 };
935 
936 /// BinOpInit - !op (X, Y) - Combine two inits.
937 ///
938 class BinOpInit : public OpInit {
939 public:
940   enum BinaryOp { ADD, AND, SHL, SRA, SRL, LISTCONCAT, STRCONCAT, CONCAT, EQ };
941 
942 private:
943   BinaryOp Opc;
944   Init *LHS, *RHS;
945 
BinOpInit(BinaryOp opc,Init * lhs,Init * rhs,RecTy * Type)946   BinOpInit(BinaryOp opc, Init *lhs, Init *rhs, RecTy *Type) :
947       OpInit(IK_BinOpInit, Type), Opc(opc), LHS(lhs), RHS(rhs) {}
948 
949   BinOpInit(const BinOpInit &Other) LLVM_DELETED_FUNCTION;
950   BinOpInit &operator=(const BinOpInit &Other) LLVM_DELETED_FUNCTION;
951 
952 public:
classof(const Init * I)953   static bool classof(const Init *I) {
954     return I->getKind() == IK_BinOpInit;
955   }
956   static BinOpInit *get(BinaryOp opc, Init *lhs, Init *rhs,
957                         RecTy *Type);
958 
959   // Clone - Clone this operator, replacing arguments with the new list
clone(std::vector<Init * > & Operands)960   OpInit *clone(std::vector<Init *> &Operands) const override {
961     assert(Operands.size() == 2 &&
962            "Wrong number of operands for binary operation");
963     return BinOpInit::get(getOpcode(), Operands[0], Operands[1], getType());
964   }
965 
getNumOperands()966   int getNumOperands() const override { return 2; }
getOperand(int i)967   Init *getOperand(int i) const override {
968     assert((i == 0 || i == 1) && "Invalid operand id for binary operator");
969     if (i == 0) {
970       return getLHS();
971     } else {
972       return getRHS();
973     }
974   }
975 
getOpcode()976   BinaryOp getOpcode() const { return Opc; }
getLHS()977   Init *getLHS() const { return LHS; }
getRHS()978   Init *getRHS() const { return RHS; }
979 
980   // Fold - If possible, fold this to a simpler init.  Return this if not
981   // possible to fold.
982   Init *Fold(Record *CurRec, MultiClass *CurMultiClass) const override;
983 
984   Init *resolveReferences(Record &R, const RecordVal *RV) const override;
985 
986   std::string getAsString() const override;
987 };
988 
989 /// TernOpInit - !op (X, Y, Z) - Combine two inits.
990 ///
991 class TernOpInit : public OpInit {
992 public:
993   enum TernaryOp { SUBST, FOREACH, IF };
994 
995 private:
996   TernaryOp Opc;
997   Init *LHS, *MHS, *RHS;
998 
TernOpInit(TernaryOp opc,Init * lhs,Init * mhs,Init * rhs,RecTy * Type)999   TernOpInit(TernaryOp opc, Init *lhs, Init *mhs, Init *rhs,
1000              RecTy *Type) :
1001       OpInit(IK_TernOpInit, Type), Opc(opc), LHS(lhs), MHS(mhs), RHS(rhs) {}
1002 
1003   TernOpInit(const TernOpInit &Other) LLVM_DELETED_FUNCTION;
1004   TernOpInit &operator=(const TernOpInit &Other) LLVM_DELETED_FUNCTION;
1005 
1006 public:
classof(const Init * I)1007   static bool classof(const Init *I) {
1008     return I->getKind() == IK_TernOpInit;
1009   }
1010   static TernOpInit *get(TernaryOp opc, Init *lhs,
1011                          Init *mhs, Init *rhs,
1012                          RecTy *Type);
1013 
1014   // Clone - Clone this operator, replacing arguments with the new list
clone(std::vector<Init * > & Operands)1015   OpInit *clone(std::vector<Init *> &Operands) const override {
1016     assert(Operands.size() == 3 &&
1017            "Wrong number of operands for ternary operation");
1018     return TernOpInit::get(getOpcode(), Operands[0], Operands[1], Operands[2],
1019                            getType());
1020   }
1021 
getNumOperands()1022   int getNumOperands() const override { return 3; }
getOperand(int i)1023   Init *getOperand(int i) const override {
1024     assert((i == 0 || i == 1 || i == 2) &&
1025            "Invalid operand id for ternary operator");
1026     if (i == 0) {
1027       return getLHS();
1028     } else if (i == 1) {
1029       return getMHS();
1030     } else {
1031       return getRHS();
1032     }
1033   }
1034 
getOpcode()1035   TernaryOp getOpcode() const { return Opc; }
getLHS()1036   Init *getLHS() const { return LHS; }
getMHS()1037   Init *getMHS() const { return MHS; }
getRHS()1038   Init *getRHS() const { return RHS; }
1039 
1040   // Fold - If possible, fold this to a simpler init.  Return this if not
1041   // possible to fold.
1042   Init *Fold(Record *CurRec, MultiClass *CurMultiClass) const override;
1043 
isComplete()1044   bool isComplete() const override { return false; }
1045 
1046   Init *resolveReferences(Record &R, const RecordVal *RV) const override;
1047 
1048   std::string getAsString() const override;
1049 };
1050 
1051 /// VarInit - 'Opcode' - Represent a reference to an entire variable object.
1052 ///
1053 class VarInit : public TypedInit {
1054   Init *VarName;
1055 
VarInit(const std::string & VN,RecTy * T)1056   explicit VarInit(const std::string &VN, RecTy *T)
1057       : TypedInit(IK_VarInit, T), VarName(StringInit::get(VN)) {}
VarInit(Init * VN,RecTy * T)1058   explicit VarInit(Init *VN, RecTy *T)
1059       : TypedInit(IK_VarInit, T), VarName(VN) {}
1060 
1061   VarInit(const VarInit &Other) LLVM_DELETED_FUNCTION;
1062   VarInit &operator=(const VarInit &Other) LLVM_DELETED_FUNCTION;
1063 
1064 public:
classof(const Init * I)1065   static bool classof(const Init *I) {
1066     return I->getKind() == IK_VarInit;
1067   }
1068   static VarInit *get(const std::string &VN, RecTy *T);
1069   static VarInit *get(Init *VN, RecTy *T);
1070 
convertInitializerTo(RecTy * Ty)1071   Init *convertInitializerTo(RecTy *Ty) const override {
1072     return Ty->convertValue(const_cast<VarInit *>(this));
1073   }
1074 
1075   const std::string &getName() const;
getNameInit()1076   Init *getNameInit() const { return VarName; }
getNameInitAsString()1077   std::string getNameInitAsString() const {
1078     return getNameInit()->getAsUnquotedString();
1079   }
1080 
1081   Init *resolveListElementReference(Record &R, const RecordVal *RV,
1082                                     unsigned Elt) const override;
1083 
1084   RecTy *getFieldType(const std::string &FieldName) const override;
1085   Init *getFieldInit(Record &R, const RecordVal *RV,
1086                      const std::string &FieldName) const override;
1087 
1088   /// resolveReferences - This method is used by classes that refer to other
1089   /// variables which may not be defined at the time they expression is formed.
1090   /// If a value is set for the variable later, this method will be called on
1091   /// users of the value to allow the value to propagate out.
1092   ///
1093   Init *resolveReferences(Record &R, const RecordVal *RV) const override;
1094 
1095   Init *getBit(unsigned Bit) const override;
1096 
getAsString()1097   std::string getAsString() const override { return getName(); }
1098 };
1099 
1100 /// VarBitInit - Opcode{0} - Represent access to one bit of a variable or field.
1101 ///
1102 class VarBitInit : public Init {
1103   TypedInit *TI;
1104   unsigned Bit;
1105 
VarBitInit(TypedInit * T,unsigned B)1106   VarBitInit(TypedInit *T, unsigned B) : Init(IK_VarBitInit), TI(T), Bit(B) {
1107     assert(T->getType() &&
1108            (isa<IntRecTy>(T->getType()) ||
1109             (isa<BitsRecTy>(T->getType()) &&
1110              cast<BitsRecTy>(T->getType())->getNumBits() > B)) &&
1111            "Illegal VarBitInit expression!");
1112   }
1113 
1114   VarBitInit(const VarBitInit &Other) LLVM_DELETED_FUNCTION;
1115   VarBitInit &operator=(const VarBitInit &Other) LLVM_DELETED_FUNCTION;
1116 
1117 public:
classof(const Init * I)1118   static bool classof(const Init *I) {
1119     return I->getKind() == IK_VarBitInit;
1120   }
1121   static VarBitInit *get(TypedInit *T, unsigned B);
1122 
convertInitializerTo(RecTy * Ty)1123   Init *convertInitializerTo(RecTy *Ty) const override {
1124     return Ty->convertValue(const_cast<VarBitInit *>(this));
1125   }
1126 
getBitVar()1127   Init *getBitVar() const override { return TI; }
getBitNum()1128   unsigned getBitNum() const override { return Bit; }
1129 
1130   std::string getAsString() const override;
1131   Init *resolveReferences(Record &R, const RecordVal *RV) const override;
1132 
getBit(unsigned B)1133   Init *getBit(unsigned B) const override {
1134     assert(B < 1 && "Bit index out of range!");
1135     return const_cast<VarBitInit*>(this);
1136   }
1137 };
1138 
1139 /// VarListElementInit - List[4] - Represent access to one element of a var or
1140 /// field.
1141 class VarListElementInit : public TypedInit {
1142   TypedInit *TI;
1143   unsigned Element;
1144 
VarListElementInit(TypedInit * T,unsigned E)1145   VarListElementInit(TypedInit *T, unsigned E)
1146       : TypedInit(IK_VarListElementInit,
1147                   cast<ListRecTy>(T->getType())->getElementType()),
1148         TI(T), Element(E) {
1149     assert(T->getType() && isa<ListRecTy>(T->getType()) &&
1150            "Illegal VarBitInit expression!");
1151   }
1152 
1153   VarListElementInit(const VarListElementInit &Other) LLVM_DELETED_FUNCTION;
1154   void operator=(const VarListElementInit &Other) LLVM_DELETED_FUNCTION;
1155 
1156 public:
classof(const Init * I)1157   static bool classof(const Init *I) {
1158     return I->getKind() == IK_VarListElementInit;
1159   }
1160   static VarListElementInit *get(TypedInit *T, unsigned E);
1161 
convertInitializerTo(RecTy * Ty)1162   Init *convertInitializerTo(RecTy *Ty) const override {
1163     return Ty->convertValue(const_cast<VarListElementInit *>(this));
1164   }
1165 
getVariable()1166   TypedInit *getVariable() const { return TI; }
getElementNum()1167   unsigned getElementNum() const { return Element; }
1168 
1169   /// resolveListElementReference - This method is used to implement
1170   /// VarListElementInit::resolveReferences.  If the list element is resolvable
1171   /// now, we return the resolved value, otherwise we return null.
1172   Init *resolveListElementReference(Record &R, const RecordVal *RV,
1173                                     unsigned Elt) const override;
1174 
1175   std::string getAsString() const override;
1176   Init *resolveReferences(Record &R, const RecordVal *RV) const override;
1177 
1178   Init *getBit(unsigned Bit) const override;
1179 };
1180 
1181 /// DefInit - AL - Represent a reference to a 'def' in the description
1182 ///
1183 class DefInit : public TypedInit {
1184   Record *Def;
1185 
DefInit(Record * D,RecordRecTy * T)1186   DefInit(Record *D, RecordRecTy *T) : TypedInit(IK_DefInit, T), Def(D) {}
1187   friend class Record;
1188 
1189   DefInit(const DefInit &Other) LLVM_DELETED_FUNCTION;
1190   DefInit &operator=(const DefInit &Other) LLVM_DELETED_FUNCTION;
1191 
1192 public:
classof(const Init * I)1193   static bool classof(const Init *I) {
1194     return I->getKind() == IK_DefInit;
1195   }
1196   static DefInit *get(Record*);
1197 
convertInitializerTo(RecTy * Ty)1198   Init *convertInitializerTo(RecTy *Ty) const override {
1199     return Ty->convertValue(const_cast<DefInit *>(this));
1200   }
1201 
getDef()1202   Record *getDef() const { return Def; }
1203 
1204   //virtual Init *convertInitializerBitRange(const std::vector<unsigned> &Bits);
1205 
1206   RecTy *getFieldType(const std::string &FieldName) const override;
1207   Init *getFieldInit(Record &R, const RecordVal *RV,
1208                      const std::string &FieldName) const override;
1209 
1210   std::string getAsString() const override;
1211 
getBit(unsigned Bit)1212   Init *getBit(unsigned Bit) const override {
1213     llvm_unreachable("Illegal bit reference off def");
1214   }
1215 
1216   /// resolveListElementReference - This method is used to implement
1217   /// VarListElementInit::resolveReferences.  If the list element is resolvable
1218   /// now, we return the resolved value, otherwise we return null.
resolveListElementReference(Record & R,const RecordVal * RV,unsigned Elt)1219   Init *resolveListElementReference(Record &R, const RecordVal *RV,
1220                                     unsigned Elt) const override {
1221     llvm_unreachable("Illegal element reference off def");
1222   }
1223 };
1224 
1225 /// FieldInit - X.Y - Represent a reference to a subfield of a variable
1226 ///
1227 class FieldInit : public TypedInit {
1228   Init *Rec;                // Record we are referring to
1229   std::string FieldName;    // Field we are accessing
1230 
FieldInit(Init * R,const std::string & FN)1231   FieldInit(Init *R, const std::string &FN)
1232       : TypedInit(IK_FieldInit, R->getFieldType(FN)), Rec(R), FieldName(FN) {
1233     assert(getType() && "FieldInit with non-record type!");
1234   }
1235 
1236   FieldInit(const FieldInit &Other) LLVM_DELETED_FUNCTION;
1237   FieldInit &operator=(const FieldInit &Other) LLVM_DELETED_FUNCTION;
1238 
1239 public:
classof(const Init * I)1240   static bool classof(const Init *I) {
1241     return I->getKind() == IK_FieldInit;
1242   }
1243   static FieldInit *get(Init *R, const std::string &FN);
1244   static FieldInit *get(Init *R, const Init *FN);
1245 
convertInitializerTo(RecTy * Ty)1246   Init *convertInitializerTo(RecTy *Ty) const override {
1247     return Ty->convertValue(const_cast<FieldInit *>(this));
1248   }
1249 
1250   Init *getBit(unsigned Bit) const override;
1251 
1252   Init *resolveListElementReference(Record &R, const RecordVal *RV,
1253                                     unsigned Elt) const override;
1254 
1255   Init *resolveReferences(Record &R, const RecordVal *RV) const override;
1256 
getAsString()1257   std::string getAsString() const override {
1258     return Rec->getAsString() + "." + FieldName;
1259   }
1260 };
1261 
1262 /// DagInit - (v a, b) - Represent a DAG tree value.  DAG inits are required
1263 /// to have at least one value then a (possibly empty) list of arguments.  Each
1264 /// argument can have a name associated with it.
1265 ///
1266 class DagInit : public TypedInit, public FoldingSetNode {
1267   Init *Val;
1268   std::string ValName;
1269   std::vector<Init*> Args;
1270   std::vector<std::string> ArgNames;
1271 
DagInit(Init * V,const std::string & VN,ArrayRef<Init * > ArgRange,ArrayRef<std::string> NameRange)1272   DagInit(Init *V, const std::string &VN,
1273           ArrayRef<Init *> ArgRange,
1274           ArrayRef<std::string> NameRange)
1275       : TypedInit(IK_DagInit, DagRecTy::get()), Val(V), ValName(VN),
1276           Args(ArgRange.begin(), ArgRange.end()),
1277           ArgNames(NameRange.begin(), NameRange.end()) {}
1278 
1279   DagInit(const DagInit &Other) LLVM_DELETED_FUNCTION;
1280   DagInit &operator=(const DagInit &Other) LLVM_DELETED_FUNCTION;
1281 
1282 public:
classof(const Init * I)1283   static bool classof(const Init *I) {
1284     return I->getKind() == IK_DagInit;
1285   }
1286   static DagInit *get(Init *V, const std::string &VN,
1287                       ArrayRef<Init *> ArgRange,
1288                       ArrayRef<std::string> NameRange);
1289   static DagInit *get(Init *V, const std::string &VN,
1290                       const std::vector<
1291                         std::pair<Init*, std::string> > &args);
1292 
1293   void Profile(FoldingSetNodeID &ID) const;
1294 
convertInitializerTo(RecTy * Ty)1295   Init *convertInitializerTo(RecTy *Ty) const override {
1296     return Ty->convertValue(const_cast<DagInit *>(this));
1297   }
1298 
getOperator()1299   Init *getOperator() const { return Val; }
1300 
getName()1301   const std::string &getName() const { return ValName; }
1302 
getNumArgs()1303   unsigned getNumArgs() const { return Args.size(); }
getArg(unsigned Num)1304   Init *getArg(unsigned Num) const {
1305     assert(Num < Args.size() && "Arg number out of range!");
1306     return Args[Num];
1307   }
getArgName(unsigned Num)1308   const std::string &getArgName(unsigned Num) const {
1309     assert(Num < ArgNames.size() && "Arg number out of range!");
1310     return ArgNames[Num];
1311   }
1312 
1313   Init *resolveReferences(Record &R, const RecordVal *RV) const override;
1314 
1315   std::string getAsString() const override;
1316 
1317   typedef std::vector<Init*>::const_iterator       const_arg_iterator;
1318   typedef std::vector<std::string>::const_iterator const_name_iterator;
1319 
arg_begin()1320   inline const_arg_iterator  arg_begin() const { return Args.begin(); }
arg_end()1321   inline const_arg_iterator  arg_end  () const { return Args.end();   }
1322 
arg_size()1323   inline size_t              arg_size () const { return Args.size();  }
arg_empty()1324   inline bool                arg_empty() const { return Args.empty(); }
1325 
name_begin()1326   inline const_name_iterator name_begin() const { return ArgNames.begin(); }
name_end()1327   inline const_name_iterator name_end  () const { return ArgNames.end();   }
1328 
name_size()1329   inline size_t              name_size () const { return ArgNames.size();  }
name_empty()1330   inline bool                name_empty() const { return ArgNames.empty(); }
1331 
getBit(unsigned Bit)1332   Init *getBit(unsigned Bit) const override {
1333     llvm_unreachable("Illegal bit reference off dag");
1334   }
1335 
resolveListElementReference(Record & R,const RecordVal * RV,unsigned Elt)1336   Init *resolveListElementReference(Record &R, const RecordVal *RV,
1337                                     unsigned Elt) const override {
1338     llvm_unreachable("Illegal element reference off dag");
1339   }
1340 };
1341 
1342 //===----------------------------------------------------------------------===//
1343 //  High-Level Classes
1344 //===----------------------------------------------------------------------===//
1345 
1346 class RecordVal {
1347   Init *Name;
1348   RecTy *Ty;
1349   unsigned Prefix;
1350   Init *Value;
1351 
1352 public:
1353   RecordVal(Init *N, RecTy *T, unsigned P);
1354   RecordVal(const std::string &N, RecTy *T, unsigned P);
1355 
1356   const std::string &getName() const;
getNameInit()1357   const Init *getNameInit() const { return Name; }
getNameInitAsString()1358   std::string getNameInitAsString() const {
1359     return getNameInit()->getAsUnquotedString();
1360   }
1361 
getPrefix()1362   unsigned getPrefix() const { return Prefix; }
getType()1363   RecTy *getType() const { return Ty; }
getValue()1364   Init *getValue() const { return Value; }
1365 
setValue(Init * V)1366   bool setValue(Init *V) {
1367     if (V) {
1368       Value = V->convertInitializerTo(Ty);
1369       return Value == nullptr;
1370     }
1371     Value = nullptr;
1372     return false;
1373   }
1374 
1375   void dump() const;
1376   void print(raw_ostream &OS, bool PrintSem = true) const;
1377 };
1378 
1379 inline raw_ostream &operator<<(raw_ostream &OS, const RecordVal &RV) {
1380   RV.print(OS << "  ");
1381   return OS;
1382 }
1383 
1384 class Record {
1385   static unsigned LastID;
1386 
1387   // Unique record ID.
1388   unsigned ID;
1389   Init *Name;
1390   // Location where record was instantiated, followed by the location of
1391   // multiclass prototypes used.
1392   SmallVector<SMLoc, 4> Locs;
1393   std::vector<Init *> TemplateArgs;
1394   std::vector<RecordVal> Values;
1395   std::vector<Record *> SuperClasses;
1396   std::vector<SMRange> SuperClassRanges;
1397 
1398   // Tracks Record instances. Not owned by Record.
1399   RecordKeeper &TrackedRecords;
1400 
1401   DefInit *TheInit;
1402   bool IsAnonymous;
1403 
1404   // Class-instance values can be used by other defs.  For example, Struct<i>
1405   // is used here as a template argument to another class:
1406   //
1407   //   multiclass MultiClass<int i> {
1408   //     def Def : Class<Struct<i>>;
1409   //
1410   // These need to get fully resolved before instantiating any other
1411   // definitions that usie them (e.g. Def).  However, inside a multiclass they
1412   // can't be immediately resolved so we mark them ResolveFirst to fully
1413   // resolve them later as soon as the multiclass is instantiated.
1414   bool ResolveFirst;
1415 
1416   void init();
1417   void checkName();
1418 
1419 public:
1420   // Constructs a record.
1421   explicit Record(const std::string &N, ArrayRef<SMLoc> locs,
1422                   RecordKeeper &records, bool Anonymous = false) :
1423     ID(LastID++), Name(StringInit::get(N)), Locs(locs.begin(), locs.end()),
1424     TrackedRecords(records), TheInit(nullptr), IsAnonymous(Anonymous),
1425     ResolveFirst(false) {
1426     init();
1427   }
1428   explicit Record(Init *N, ArrayRef<SMLoc> locs, RecordKeeper &records,
1429                   bool Anonymous = false) :
1430     ID(LastID++), Name(N), Locs(locs.begin(), locs.end()),
1431     TrackedRecords(records), TheInit(nullptr), IsAnonymous(Anonymous),
1432     ResolveFirst(false) {
1433     init();
1434   }
1435 
1436   // When copy-constructing a Record, we must still guarantee a globally unique
1437   // ID number.  All other fields can be copied normally.
Record(const Record & O)1438   Record(const Record &O) :
1439     ID(LastID++), Name(O.Name), Locs(O.Locs), TemplateArgs(O.TemplateArgs),
1440     Values(O.Values), SuperClasses(O.SuperClasses),
1441     SuperClassRanges(O.SuperClassRanges), TrackedRecords(O.TrackedRecords),
1442     TheInit(O.TheInit), IsAnonymous(O.IsAnonymous),
1443     ResolveFirst(O.ResolveFirst) { }
1444 
~Record()1445   ~Record() {}
1446 
getNewUID()1447   static unsigned getNewUID() { return LastID++; }
1448 
getID()1449   unsigned getID() const { return ID; }
1450 
1451   const std::string &getName() const;
getNameInit()1452   Init *getNameInit() const {
1453     return Name;
1454   }
getNameInitAsString()1455   const std::string getNameInitAsString() const {
1456     return getNameInit()->getAsUnquotedString();
1457   }
1458 
1459   void setName(Init *Name);               // Also updates RecordKeeper.
1460   void setName(const std::string &Name);  // Also updates RecordKeeper.
1461 
getLoc()1462   ArrayRef<SMLoc> getLoc() const { return Locs; }
1463 
1464   /// get the corresponding DefInit.
1465   DefInit *getDefInit();
1466 
getTemplateArgs()1467   const std::vector<Init *> &getTemplateArgs() const {
1468     return TemplateArgs;
1469   }
getValues()1470   const std::vector<RecordVal> &getValues() const { return Values; }
getSuperClasses()1471   const std::vector<Record*>   &getSuperClasses() const { return SuperClasses; }
getSuperClassRanges()1472   ArrayRef<SMRange> getSuperClassRanges() const { return SuperClassRanges; }
1473 
isTemplateArg(Init * Name)1474   bool isTemplateArg(Init *Name) const {
1475     for (unsigned i = 0, e = TemplateArgs.size(); i != e; ++i)
1476       if (TemplateArgs[i] == Name) return true;
1477     return false;
1478   }
isTemplateArg(StringRef Name)1479   bool isTemplateArg(StringRef Name) const {
1480     return isTemplateArg(StringInit::get(Name.str()));
1481   }
1482 
getValue(const Init * Name)1483   const RecordVal *getValue(const Init *Name) const {
1484     for (unsigned i = 0, e = Values.size(); i != e; ++i)
1485       if (Values[i].getNameInit() == Name) return &Values[i];
1486     return nullptr;
1487   }
getValue(StringRef Name)1488   const RecordVal *getValue(StringRef Name) const {
1489     return getValue(StringInit::get(Name));
1490   }
getValue(const Init * Name)1491   RecordVal *getValue(const Init *Name) {
1492     for (unsigned i = 0, e = Values.size(); i != e; ++i)
1493       if (Values[i].getNameInit() == Name) return &Values[i];
1494     return nullptr;
1495   }
getValue(StringRef Name)1496   RecordVal *getValue(StringRef Name) {
1497     return getValue(StringInit::get(Name));
1498   }
1499 
addTemplateArg(Init * Name)1500   void addTemplateArg(Init *Name) {
1501     assert(!isTemplateArg(Name) && "Template arg already defined!");
1502     TemplateArgs.push_back(Name);
1503   }
addTemplateArg(StringRef Name)1504   void addTemplateArg(StringRef Name) {
1505     addTemplateArg(StringInit::get(Name.str()));
1506   }
1507 
addValue(const RecordVal & RV)1508   void addValue(const RecordVal &RV) {
1509     assert(getValue(RV.getNameInit()) == nullptr && "Value already added!");
1510     Values.push_back(RV);
1511     if (Values.size() > 1)
1512       // Keep NAME at the end of the list.  It makes record dumps a
1513       // bit prettier and allows TableGen tests to be written more
1514       // naturally.  Tests can use CHECK-NEXT to look for Record
1515       // fields they expect to see after a def.  They can't do that if
1516       // NAME is the first Record field.
1517       std::swap(Values[Values.size() - 2], Values[Values.size() - 1]);
1518   }
1519 
removeValue(Init * Name)1520   void removeValue(Init *Name) {
1521     for (unsigned i = 0, e = Values.size(); i != e; ++i)
1522       if (Values[i].getNameInit() == Name) {
1523         Values.erase(Values.begin()+i);
1524         return;
1525       }
1526     llvm_unreachable("Cannot remove an entry that does not exist!");
1527   }
1528 
removeValue(StringRef Name)1529   void removeValue(StringRef Name) {
1530     removeValue(StringInit::get(Name.str()));
1531   }
1532 
isSubClassOf(const Record * R)1533   bool isSubClassOf(const Record *R) const {
1534     for (unsigned i = 0, e = SuperClasses.size(); i != e; ++i)
1535       if (SuperClasses[i] == R)
1536         return true;
1537     return false;
1538   }
1539 
isSubClassOf(StringRef Name)1540   bool isSubClassOf(StringRef Name) const {
1541     for (unsigned i = 0, e = SuperClasses.size(); i != e; ++i)
1542       if (SuperClasses[i]->getNameInitAsString() == Name)
1543         return true;
1544     return false;
1545   }
1546 
addSuperClass(Record * R,SMRange Range)1547   void addSuperClass(Record *R, SMRange Range) {
1548     assert(!isSubClassOf(R) && "Already subclassing record!");
1549     SuperClasses.push_back(R);
1550     SuperClassRanges.push_back(Range);
1551   }
1552 
1553   /// resolveReferences - If there are any field references that refer to fields
1554   /// that have been filled in, we can propagate the values now.
1555   ///
resolveReferences()1556   void resolveReferences() { resolveReferencesTo(nullptr); }
1557 
1558   /// resolveReferencesTo - If anything in this record refers to RV, replace the
1559   /// reference to RV with the RHS of RV.  If RV is null, we resolve all
1560   /// possible references.
1561   void resolveReferencesTo(const RecordVal *RV);
1562 
getRecords()1563   RecordKeeper &getRecords() const {
1564     return TrackedRecords;
1565   }
1566 
isAnonymous()1567   bool isAnonymous() const {
1568     return IsAnonymous;
1569   }
1570 
isResolveFirst()1571   bool isResolveFirst() const {
1572     return ResolveFirst;
1573   }
1574 
setResolveFirst(bool b)1575   void setResolveFirst(bool b) {
1576     ResolveFirst = b;
1577   }
1578 
1579   void dump() const;
1580 
1581   //===--------------------------------------------------------------------===//
1582   // High-level methods useful to tablegen back-ends
1583   //
1584 
1585   /// getValueInit - Return the initializer for a value with the specified name,
1586   /// or throw an exception if the field does not exist.
1587   ///
1588   Init *getValueInit(StringRef FieldName) const;
1589 
1590   /// Return true if the named field is unset.
isValueUnset(StringRef FieldName)1591   bool isValueUnset(StringRef FieldName) const {
1592     return getValueInit(FieldName) == UnsetInit::get();
1593   }
1594 
1595   /// getValueAsString - This method looks up the specified field and returns
1596   /// its value as a string, throwing an exception if the field does not exist
1597   /// or if the value is not a string.
1598   ///
1599   std::string getValueAsString(StringRef FieldName) const;
1600 
1601   /// getValueAsBitsInit - This method looks up the specified field and returns
1602   /// its value as a BitsInit, throwing an exception if the field does not exist
1603   /// or if the value is not the right type.
1604   ///
1605   BitsInit *getValueAsBitsInit(StringRef FieldName) const;
1606 
1607   /// getValueAsListInit - This method looks up the specified field and returns
1608   /// its value as a ListInit, throwing an exception if the field does not exist
1609   /// or if the value is not the right type.
1610   ///
1611   ListInit *getValueAsListInit(StringRef FieldName) const;
1612 
1613   /// getValueAsListOfDefs - This method looks up the specified field and
1614   /// returns its value as a vector of records, throwing an exception if the
1615   /// field does not exist or if the value is not the right type.
1616   ///
1617   std::vector<Record*> getValueAsListOfDefs(StringRef FieldName) const;
1618 
1619   /// getValueAsListOfInts - This method looks up the specified field and
1620   /// returns its value as a vector of integers, throwing an exception if the
1621   /// field does not exist or if the value is not the right type.
1622   ///
1623   std::vector<int64_t> getValueAsListOfInts(StringRef FieldName) const;
1624 
1625   /// getValueAsListOfStrings - This method looks up the specified field and
1626   /// returns its value as a vector of strings, throwing an exception if the
1627   /// field does not exist or if the value is not the right type.
1628   ///
1629   std::vector<std::string> getValueAsListOfStrings(StringRef FieldName) const;
1630 
1631   /// getValueAsDef - This method looks up the specified field and returns its
1632   /// value as a Record, throwing an exception if the field does not exist or if
1633   /// the value is not the right type.
1634   ///
1635   Record *getValueAsDef(StringRef FieldName) const;
1636 
1637   /// getValueAsBit - This method looks up the specified field and returns its
1638   /// value as a bit, throwing an exception if the field does not exist or if
1639   /// the value is not the right type.
1640   ///
1641   bool getValueAsBit(StringRef FieldName) const;
1642 
1643   /// getValueAsBitOrUnset - This method looks up the specified field and
1644   /// returns its value as a bit. If the field is unset, sets Unset to true and
1645   /// returns false.
1646   ///
1647   bool getValueAsBitOrUnset(StringRef FieldName, bool &Unset) const;
1648 
1649   /// getValueAsInt - This method looks up the specified field and returns its
1650   /// value as an int64_t, throwing an exception if the field does not exist or
1651   /// if the value is not the right type.
1652   ///
1653   int64_t getValueAsInt(StringRef FieldName) const;
1654 
1655   /// getValueAsDag - This method looks up the specified field and returns its
1656   /// value as an Dag, throwing an exception if the field does not exist or if
1657   /// the value is not the right type.
1658   ///
1659   DagInit *getValueAsDag(StringRef FieldName) const;
1660 };
1661 
1662 raw_ostream &operator<<(raw_ostream &OS, const Record &R);
1663 
1664 struct MultiClass {
1665   Record Rec;  // Placeholder for template args and Name.
1666   typedef std::vector<std::unique_ptr<Record>> RecordVector;
1667   RecordVector DefPrototypes;
1668 
1669   void dump() const;
1670 
MultiClassMultiClass1671   MultiClass(const std::string &Name, SMLoc Loc, RecordKeeper &Records) :
1672     Rec(Name, Loc, Records) {}
1673 };
1674 
1675 class RecordKeeper {
1676   typedef std::map<std::string, std::unique_ptr<Record>> RecordMap;
1677   RecordMap Classes, Defs;
1678 
1679 public:
getClasses()1680   const RecordMap &getClasses() const { return Classes; }
getDefs()1681   const RecordMap &getDefs() const { return Defs; }
1682 
getClass(const std::string & Name)1683   Record *getClass(const std::string &Name) const {
1684     auto I = Classes.find(Name);
1685     return I == Classes.end() ? nullptr : I->second.get();
1686   }
getDef(const std::string & Name)1687   Record *getDef(const std::string &Name) const {
1688     auto I = Defs.find(Name);
1689     return I == Defs.end() ? nullptr : I->second.get();
1690   }
addClass(std::unique_ptr<Record> R)1691   void addClass(std::unique_ptr<Record> R) {
1692     bool Ins = Classes.insert(std::make_pair(R->getName(),
1693                                              std::move(R))).second;
1694     (void)Ins;
1695     assert(Ins && "Class already exists");
1696   }
addDef(std::unique_ptr<Record> R)1697   void addDef(std::unique_ptr<Record> R) {
1698     bool Ins = Defs.insert(std::make_pair(R->getName(),
1699                                           std::move(R))).second;
1700     (void)Ins;
1701     assert(Ins && "Record already exists");
1702   }
1703 
1704   //===--------------------------------------------------------------------===//
1705   // High-level helper methods, useful for tablegen backends...
1706 
1707   /// getAllDerivedDefinitions - This method returns all concrete definitions
1708   /// that derive from the specified class name.  If a class with the specified
1709   /// name does not exist, an exception is thrown.
1710   std::vector<Record*>
1711   getAllDerivedDefinitions(const std::string &ClassName) const;
1712 
1713   void dump() const;
1714 };
1715 
1716 /// LessRecord - Sorting predicate to sort record pointers by name.
1717 ///
1718 struct LessRecord {
operatorLessRecord1719   bool operator()(const Record *Rec1, const Record *Rec2) const {
1720     return StringRef(Rec1->getName()).compare_numeric(Rec2->getName()) < 0;
1721   }
1722 };
1723 
1724 /// LessRecordByID - Sorting predicate to sort record pointers by their
1725 /// unique ID. If you just need a deterministic order, use this, since it
1726 /// just compares two `unsigned`; the other sorting predicates require
1727 /// string manipulation.
1728 struct LessRecordByID {
operatorLessRecordByID1729   bool operator()(const Record *LHS, const Record *RHS) const {
1730     return LHS->getID() < RHS->getID();
1731   }
1732 };
1733 
1734 /// LessRecordFieldName - Sorting predicate to sort record pointers by their
1735 /// name field.
1736 ///
1737 struct LessRecordFieldName {
operatorLessRecordFieldName1738   bool operator()(const Record *Rec1, const Record *Rec2) const {
1739     return Rec1->getValueAsString("Name") < Rec2->getValueAsString("Name");
1740   }
1741 };
1742 
1743 struct LessRecordRegister {
minLessRecordRegister1744   static size_t min(size_t a, size_t b) { return a < b ? a : b; }
ascii_isdigitLessRecordRegister1745   static bool ascii_isdigit(char x) { return x >= '0' && x <= '9'; }
1746 
1747   struct RecordParts {
1748     SmallVector<std::pair< bool, StringRef>, 4> Parts;
1749 
RecordPartsLessRecordRegister::RecordParts1750     RecordParts(StringRef Rec) {
1751       if (Rec.empty())
1752         return;
1753 
1754       size_t Len = 0;
1755       const char *Start = Rec.data();
1756       const char *Curr = Start;
1757       bool isDigitPart = ascii_isdigit(Curr[0]);
1758       for (size_t I = 0, E = Rec.size(); I != E; ++I, ++Len) {
1759         bool isDigit = ascii_isdigit(Curr[I]);
1760         if (isDigit != isDigitPart) {
1761           Parts.push_back(std::make_pair(isDigitPart, StringRef(Start, Len)));
1762           Len = 0;
1763           Start = &Curr[I];
1764           isDigitPart = ascii_isdigit(Curr[I]);
1765         }
1766       }
1767       // Push the last part.
1768       Parts.push_back(std::make_pair(isDigitPart, StringRef(Start, Len)));
1769     }
1770 
sizeLessRecordRegister::RecordParts1771     size_t size() { return Parts.size(); }
1772 
getPartLessRecordRegister::RecordParts1773     std::pair<bool, StringRef> getPart(size_t i) {
1774       assert (i < Parts.size() && "Invalid idx!");
1775       return Parts[i];
1776     }
1777   };
1778 
operatorLessRecordRegister1779   bool operator()(const Record *Rec1, const Record *Rec2) const {
1780     RecordParts LHSParts(StringRef(Rec1->getName()));
1781     RecordParts RHSParts(StringRef(Rec2->getName()));
1782 
1783     size_t LHSNumParts = LHSParts.size();
1784     size_t RHSNumParts = RHSParts.size();
1785     assert (LHSNumParts && RHSNumParts && "Expected at least one part!");
1786 
1787     if (LHSNumParts != RHSNumParts)
1788       return LHSNumParts < RHSNumParts;
1789 
1790     // We expect the registers to be of the form [_a-zA-z]+([0-9]*[_a-zA-Z]*)*.
1791     for (size_t I = 0, E = LHSNumParts; I < E; I+=2) {
1792       std::pair<bool, StringRef> LHSPart = LHSParts.getPart(I);
1793       std::pair<bool, StringRef> RHSPart = RHSParts.getPart(I);
1794       // Expect even part to always be alpha.
1795       assert (LHSPart.first == false && RHSPart.first == false &&
1796               "Expected both parts to be alpha.");
1797       if (int Res = LHSPart.second.compare(RHSPart.second))
1798         return Res < 0;
1799     }
1800     for (size_t I = 1, E = LHSNumParts; I < E; I+=2) {
1801       std::pair<bool, StringRef> LHSPart = LHSParts.getPart(I);
1802       std::pair<bool, StringRef> RHSPart = RHSParts.getPart(I);
1803       // Expect odd part to always be numeric.
1804       assert (LHSPart.first == true && RHSPart.first == true &&
1805               "Expected both parts to be numeric.");
1806       if (LHSPart.second.size() != RHSPart.second.size())
1807         return LHSPart.second.size() < RHSPart.second.size();
1808 
1809       unsigned LHSVal, RHSVal;
1810 
1811       bool LHSFailed = LHSPart.second.getAsInteger(10, LHSVal); (void)LHSFailed;
1812       assert(!LHSFailed && "Unable to convert LHS to integer.");
1813       bool RHSFailed = RHSPart.second.getAsInteger(10, RHSVal); (void)RHSFailed;
1814       assert(!RHSFailed && "Unable to convert RHS to integer.");
1815 
1816       if (LHSVal != RHSVal)
1817         return LHSVal < RHSVal;
1818     }
1819     return LHSNumParts < RHSNumParts;
1820   }
1821 };
1822 
1823 raw_ostream &operator<<(raw_ostream &OS, const RecordKeeper &RK);
1824 
1825 /// QualifyName - Return an Init with a qualifier prefix referring
1826 /// to CurRec's name.
1827 Init *QualifyName(Record &CurRec, MultiClass *CurMultiClass,
1828                   Init *Name, const std::string &Scoper);
1829 
1830 /// QualifyName - Return an Init with a qualifier prefix referring
1831 /// to CurRec's name.
1832 Init *QualifyName(Record &CurRec, MultiClass *CurMultiClass,
1833                   const std::string &Name, const std::string &Scoper);
1834 
1835 } // End llvm namespace
1836 
1837 #endif
1838