source: src/AST/Type.hpp@ c86b08d

ADT ast-experimental
Last change on this file since c86b08d was 93c10de, checked in by Andrew Beach <ajbeach@…>, 3 years ago

Minimal changes to pull out nested types, TypeInstType::TypeEnvKey and TypeDecl::Data (now TypeData) from there parent types. Although they do connect to the parent types they were nested in they are used on their own most of the time.

  • Property mode set to 100644
File size: 17.7 KB
Line 
1//
2// Cforall Version 1.0.0 Copyright (C) 2015 University of Waterloo
3//
4// The contents of this file are covered under the licence agreement in the
5// file "LICENCE" distributed with Cforall.
6//
7// Type.hpp --
8//
9// Author : Aaron B. Moss
10// Created On : Thu May 9 10:00:00 2019
11// Last Modified By : Andrew Beach
12// Last Modified On : Thu Nov 24 9:47:00 2022
13// Update Count : 8
14//
15
16#pragma once
17
18#include <cassert>
19#include <cstddef> // for nullptr_t
20#include <cstdint> // for uintptr_t
21#include <utility> // for move
22#include <vector>
23
24#include "CVQualifiers.hpp"
25#include "Decl.hpp" // for AggregateDecl subclasses
26#include "Fwd.hpp"
27#include "Node.hpp" // for Node, ptr, ptr_base
28#include "Visitor.hpp"
29
30// Must be included in *all* AST classes; should be #undef'd at the end of the file
31#define MUTATE_FRIEND \
32 template<typename node_t> friend node_t * mutate(const node_t * node); \
33 template<typename node_t> friend node_t * shallowCopy(const node_t * node);
34
35namespace ast {
36
37template< typename T > class Pass;
38
39class Type : public Node {
40public:
41 CV::Qualifiers qualifiers;
42 std::vector<ptr<Attribute>> attributes;
43
44 Type( CV::Qualifiers q = {}, std::vector<ptr<Attribute>> && as = {} )
45 : qualifiers(q), attributes(std::move(as)) {}
46
47 bool is_const() const { return qualifiers.is_const; }
48 bool is_volatile() const { return qualifiers.is_volatile; }
49 bool is_restrict() const { return qualifiers.is_restrict; }
50 bool is_mutex() const { return qualifiers.is_mutex; }
51 bool is_atomic() const { return qualifiers.is_atomic; }
52
53 Type * set_const( bool v ) { qualifiers.is_const = v; return this; }
54 Type * set_volatile( bool v ) { qualifiers.is_volatile = v; return this; }
55 Type * set_restrict( bool v ) { qualifiers.is_restrict = v; return this; }
56 Type * set_mutex( bool v ) { qualifiers.is_mutex = v; return this; }
57 Type * set_atomic( bool v ) { qualifiers.is_atomic = v; return this; }
58
59 /// How many elemental types are represented by this type
60 virtual unsigned size() const { return 1; }
61 /// Is this a void type?
62 virtual bool isVoid() const { return size() == 0; }
63 /// Get the i'th component of this type
64 virtual const Type * getComponent( unsigned i ) const;
65
66 /// type without outer pointers and arrays
67 const Type * stripDeclarator() const;
68 /// type without outer references
69 const Type * stripReferences() const;
70 /// number of reference occuring consecutively on the outermost layer of this type
71 /// (i.e. do not count references nested within other types)
72 virtual unsigned referenceDepth() const { return 0; }
73 /// true iff type is complete type (i.e. compiler knows the size, alignment, and layout)
74 virtual bool isComplete() const { return true; }
75
76 virtual const Type * accept( Visitor & v ) const override = 0;
77private:
78 virtual Type * clone() const override = 0;
79 MUTATE_FRIEND
80};
81
82/// Clear/reset the qualifiers on this type, cloning only if necessary
83template< enum Node::ref_type ref_t >
84void reset_qualifiers( ptr_base< Type, ref_t > & p, CV::Qualifiers q = {} ) {
85 if ( p->qualifiers != q ) p.get_and_mutate()->qualifiers = q;
86}
87
88/// Add the specified qualifiers to this type, cloning only if necessary
89template< enum Node::ref_type ref_t >
90void add_qualifiers( ptr_base< Type, ref_t > & p, CV::Qualifiers q ) {
91 if ( ( p->qualifiers & q ) != q ) p.get_and_mutate()->qualifiers |= q;
92}
93
94/// Remove the specified qualifiers from this type, cloning only if necessary
95template< enum Node::ref_type ref_t >
96void remove_qualifiers( ptr_base< Type, ref_t > & p, CV::Qualifiers q ) {
97 if ( ( p->qualifiers & q ) != 0 ) p.get_and_mutate()->qualifiers -= q;
98}
99
100/// `void`
101class VoidType final : public Type {
102public:
103 VoidType( CV::Qualifiers q = {} ) : Type( q ) {}
104
105 unsigned size() const override { return 0; }
106 bool isVoid() const override { return true; }
107 bool isComplete() const override { return false; }
108
109 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
110private:
111 VoidType * clone() const override { return new VoidType{ *this }; }
112 MUTATE_FRIEND
113};
114
115/// Built-in arithmetic type
116class BasicType final : public Type {
117public:
118 // GENERATED START, DO NOT EDIT
119 // GENERATED BY BasicTypes-gen.cc
120 enum Kind {
121 Bool,
122 Char,
123 SignedChar,
124 UnsignedChar,
125 ShortSignedInt,
126 ShortUnsignedInt,
127 SignedInt,
128 UnsignedInt,
129 LongSignedInt,
130 LongUnsignedInt,
131 LongLongSignedInt,
132 LongLongUnsignedInt,
133 SignedInt128,
134 UnsignedInt128,
135 uFloat16,
136 uFloat16Complex,
137 uFloat32,
138 uFloat32Complex,
139 Float,
140 FloatComplex,
141 uFloat32x,
142 uFloat32xComplex,
143 uFloat64,
144 uFloat64Complex,
145 Double,
146 DoubleComplex,
147 uFloat64x,
148 uFloat64xComplex,
149 uuFloat80,
150 uFloat128,
151 uFloat128Complex,
152 uuFloat128,
153 LongDouble,
154 LongDoubleComplex,
155 uFloat128x,
156 uFloat128xComplex,
157 NUMBER_OF_BASIC_TYPES
158 } kind;
159 // GENERATED END
160
161 /// xxx -- MAX_INTEGER_TYPE should probably be in BasicTypes-gen.cc, rather than hardcoded here
162 enum { MAX_INTEGER_TYPE = UnsignedInt128 };
163
164 /// string names of basic types; generated to match with Kind
165 static const char *typeNames[];
166
167 BasicType( Kind k, CV::Qualifiers q = {}, std::vector<ptr<Attribute>> && as = {} )
168 : Type(q, std::move(as)), kind(k) {}
169
170 /// Check if this type represents an integer type
171 bool isInteger() const { return (unsigned)kind <= (unsigned)MAX_INTEGER_TYPE; }
172
173 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
174private:
175 BasicType * clone() const override { return new BasicType{ *this }; }
176 MUTATE_FRIEND
177};
178
179/// Pointer/array variable length?
180enum LengthFlag { FixedLen, VariableLen };
181
182/// Pointer/array static dimension?
183enum DimensionFlag { DynamicDim, StaticDim };
184
185/// Pointer type `T*`
186class PointerType final : public Type {
187public:
188 ptr<Type> base;
189
190 // In C99, pointer types can be qualified in many ways, e.g. `int a[ static 3 ]`
191 ptr<Expr> dimension;
192 LengthFlag isVarLen = FixedLen;
193 DimensionFlag isStatic = DynamicDim;
194
195 PointerType( const Type * b, CV::Qualifiers q = {} ) : Type(q), base(b), dimension() {}
196 PointerType( const Type * b, const Expr * d, LengthFlag vl, DimensionFlag s,
197 CV::Qualifiers q = {} ) : Type(q), base(b), dimension(d), isVarLen(vl), isStatic(s) {}
198
199 // true if this pointer is actually an array
200 bool isArray() const { return isVarLen || isStatic || dimension; }
201
202 bool isComplete() const override { return ! isVarLen; }
203
204 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
205private:
206 PointerType * clone() const override { return new PointerType{ *this }; }
207 MUTATE_FRIEND
208};
209
210/// Array type `T[]`
211class ArrayType final : public Type {
212public:
213 ptr<Type> base;
214 ptr<Expr> dimension;
215 LengthFlag isVarLen;
216 DimensionFlag isStatic;
217
218 ArrayType( const Type * b, const Expr * d, LengthFlag vl, DimensionFlag s,
219 CV::Qualifiers q = {} ) : Type(q), base(b), dimension(d), isVarLen(vl), isStatic(s) {}
220
221 // array types are complete if they have a dimension expression or are
222 // VLAs ('*' in parameter declaration), and incomplete otherwise.
223 // See 6.7.6.2
224 bool isComplete() const override { return dimension || isVarLen; }
225
226 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
227private:
228 ArrayType * clone() const override { return new ArrayType{ *this }; }
229 MUTATE_FRIEND
230};
231
232/// Reference type `T&`
233class ReferenceType final : public Type {
234public:
235 ptr<Type> base;
236
237 ReferenceType( const Type * b, CV::Qualifiers q = {} ) : Type(q), base(b) {}
238
239 unsigned referenceDepth() const override { return base->referenceDepth() + 1; }
240
241 // Since reference types act like value types, their size is the size of the base.
242 // This makes it simple to cast the empty tuple to a reference type, since casts that increase
243 // the number of values are disallowed.
244 unsigned size() const override { return base->size(); }
245
246 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
247private:
248 ReferenceType * clone() const override { return new ReferenceType{ *this }; }
249 MUTATE_FRIEND
250};
251
252/// Qualified type `P.C`
253class QualifiedType final : public Type {
254public:
255 ptr<Type> parent;
256 ptr<Type> child;
257
258 QualifiedType( const Type * p, const Type * c, CV::Qualifiers q = {} )
259 : Type(q), parent(p), child(c) {}
260
261 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
262private:
263 QualifiedType * clone() const override { return new QualifiedType{ *this }; }
264 MUTATE_FRIEND
265};
266
267/// Function variable arguments flag
268enum ArgumentFlag { FixedArgs, VariableArgs };
269
270/// Type of a function `[R1, R2](*)(P1, P2, P3)`
271class FunctionType final : public Type {
272public:
273 using ForallList = std::vector<ptr<TypeInstType>>;
274 using AssertionList = std::vector<ptr<VariableExpr>>;
275 ForallList forall;
276 AssertionList assertions;
277
278 std::vector<ptr<Type>> returns;
279 std::vector<ptr<Type>> params;
280
281 /// Does the function accept a variable number of arguments following the arguments specified
282 /// in the parameters list.
283 /// This could be because of
284 /// - an ellipsis in a prototype declaration
285 /// - an unprototyped declaration
286 ArgumentFlag isVarArgs;
287
288 FunctionType( ArgumentFlag va = FixedArgs, CV::Qualifiers q = {} )
289 : Type(q), returns(), params(), isVarArgs(va) {}
290
291 FunctionType( const FunctionType & o ) = default;
292
293 /// true if either the parameters or return values contain a tttype
294 bool isTtype() const;
295 /// true if function parameters are unconstrained by prototype
296 bool isUnprototyped() const { return isVarArgs && params.size() == 0; }
297
298 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
299private:
300 FunctionType * clone() const override { return new FunctionType{ *this }; }
301 MUTATE_FRIEND
302};
303
304/// base class for types that refer to types declared elsewhere (aggregates and typedefs)
305class BaseInstType : public Type {
306public:
307 std::vector<ptr<Expr>> params;
308 std::string name;
309 bool hoistType = false;
310
311 BaseInstType(
312 const std::string& n, CV::Qualifiers q = {}, std::vector<ptr<Attribute>> && as = {} )
313 : Type(q, std::move(as)), params(), name(n) {}
314
315 BaseInstType(
316 const std::string& n, std::vector<ptr<Expr>> && params,
317 CV::Qualifiers q = {}, std::vector<ptr<Attribute>> && as = {} )
318 : Type(q, std::move(as)), params(std::move(params)), name(n) {}
319
320 BaseInstType( const BaseInstType & o ) = default;
321
322 /// Gets aggregate declaration this type refers to
323 virtual const AggregateDecl * aggr() const = 0;
324 /// Looks up member declarations with given name
325 std::vector<readonly<Decl>> lookup( const std::string & name ) const;
326
327private:
328 virtual BaseInstType * clone() const override = 0;
329 MUTATE_FRIEND
330};
331
332// Common implementation for the SUE instance types. Not to be used directly.
333template<typename decl_t>
334class SueInstType final : public BaseInstType {
335public:
336 using base_type = decl_t;
337 readonly<decl_t> base;
338
339 SueInstType(
340 const std::string& n, CV::Qualifiers q = {}, std::vector<ptr<Attribute>> && as = {} )
341 : BaseInstType( n, q, std::move(as) ), base() {}
342
343 SueInstType(
344 const base_type * b, CV::Qualifiers q = {}, std::vector<ptr<Attribute>> && as = {} );
345
346 SueInstType(
347 const base_type * b, std::vector<ptr<Expr>> && params,
348 CV::Qualifiers q = {}, std::vector<ptr<Attribute>> && as = {} );
349
350 bool isComplete() const override;
351
352 const decl_t * aggr() const override { return base; }
353
354 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
355private:
356 SueInstType<decl_t> * clone() const override { return new SueInstType<decl_t>{ *this }; }
357 MUTATE_FRIEND
358};
359
360/// An instance of a struct type.
361using StructInstType = SueInstType<StructDecl>;
362
363/// An instance of a union type.
364using UnionInstType = SueInstType<UnionDecl>;
365
366/// An instance of an enum type.
367using EnumInstType = SueInstType<EnumDecl>;
368
369/// An instance of a trait type.
370class TraitInstType final : public BaseInstType {
371public:
372 readonly<TraitDecl> base;
373
374 TraitInstType(
375 const std::string& n, CV::Qualifiers q = {}, std::vector<ptr<Attribute>> && as = {} )
376 : BaseInstType( n, q, std::move(as) ), base() {}
377
378 TraitInstType(
379 const TraitDecl * b, CV::Qualifiers q = {}, std::vector<ptr<Attribute>> && as = {} );
380
381 // not meaningful for TraitInstType
382 bool isComplete() const override { assert(false); }
383
384 const TraitDecl * aggr() const override { return base; }
385
386 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
387private:
388 TraitInstType * clone() const override { return new TraitInstType{ *this }; }
389 MUTATE_FRIEND
390};
391
392struct TypeEnvKey;
393
394/// instance of named type alias (typedef or variable)
395class TypeInstType final : public BaseInstType {
396public:
397 readonly<TypeDecl> base;
398 // previously from renameTyVars; now directly use integer fields instead of synthesized strings
399 // a nonzero value of formal_usage indicates a formal type (only used in function type)
400 // a zero value of formal_usage indicates an actual type (referenced inside body of parametric structs and functions)
401 TypeDecl::Kind kind;
402 int formal_usage = 0;
403 int expr_id = 0;
404
405 bool operator==(const TypeInstType & other) const;
406
407 TypeInstType(
408 const std::string& n, const TypeDecl * b, CV::Qualifiers q = {},
409 std::vector<ptr<Attribute>> && as = {} )
410 : BaseInstType( n, q, std::move(as) ), base( b ), kind( b->kind ) {}
411
412 TypeInstType( const TypeDecl * b,
413 CV::Qualifiers q = {}, std::vector<ptr<Attribute>> && as = {} );
414
415 TypeInstType( const std::string& n, TypeDecl::Kind k, CV::Qualifiers q = {},
416 std::vector<ptr<Attribute>> && as = {} )
417 : BaseInstType( n, q, std::move(as) ), base(), kind( k ) {}
418
419 TypeInstType( const TypeInstType & o ) = default;
420
421 TypeInstType( const TypeEnvKey & key );
422
423 /// sets `base`, updating `kind` correctly
424 void set_base( const TypeDecl * );
425
426 bool isComplete() const override;
427
428 // not meaningful for TypeInstType
429 const AggregateDecl * aggr() const override { assert(false); }
430
431 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
432
433 std::string typeString() const {
434 if (formal_usage > 0) return std::string("_") + std::to_string(formal_usage) + "_" + std::to_string(expr_id) + "_" + name;
435 else return name;
436 }
437private:
438 TypeInstType * clone() const override { return new TypeInstType{ *this }; }
439 MUTATE_FRIEND
440};
441
442/// Compact representation of TypeInstType used for map lookups.
443struct TypeEnvKey {
444 const TypeDecl * base = nullptr;
445 int formal_usage = 0;
446 int expr_id = 0;
447
448 TypeEnvKey() = default;
449 TypeEnvKey(const TypeDecl * base, int formal_usage = 0, int expr_id = 0)
450 : base(base), formal_usage(formal_usage), expr_id(expr_id) {}
451 TypeEnvKey(const TypeInstType & inst)
452 : base(inst.base), formal_usage(inst.formal_usage), expr_id(inst.expr_id) {}
453 std::string typeString() const;
454 bool operator==(const TypeEnvKey & other) const;
455 bool operator<(const TypeEnvKey & other) const;
456};
457
458/// tuple type e.g. `[int, char]`
459class TupleType final : public Type {
460public:
461 std::vector<ptr<Type>> types;
462 std::vector<ptr<Decl>> members;
463
464 TupleType( std::vector<ptr<Type>> && ts, CV::Qualifiers q = {} );
465
466 // collection simulation
467 using iterator = std::vector<ptr<Type>>::const_iterator;
468 iterator begin() const { return types.begin(); }
469 iterator end() const { return types.end(); }
470
471 unsigned size() const override { return types.size(); }
472
473 const Type * getComponent( unsigned i ) const override {
474 assertf( i < size(), "TupleType::getComponent: index %d must be less than size %d",
475 i, size() );
476 return *(begin()+i);
477 }
478
479 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
480private:
481 TupleType * clone() const override { return new TupleType{ *this }; }
482 MUTATE_FRIEND
483};
484
485/// Type of unresolved `typeof()` expression
486class TypeofType : public Type {
487public:
488 ptr<Expr> expr;
489 enum Kind { Typeof, Basetypeof } kind;
490
491 TypeofType( const Expr * e, Kind k = Typeof, CV::Qualifiers q = {} )
492 : Type(q), expr(e), kind(k) {}
493
494 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
495private:
496 TypeofType * clone() const override { return new TypeofType{ *this }; }
497 MUTATE_FRIEND
498};
499
500/// Virtual Table Type `vtable(T)`
501class VTableType final : public Type {
502public:
503 ptr<Type> base;
504
505 VTableType( const Type * b, CV::Qualifiers q = {} ) : Type(q), base(b) {}
506
507 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
508private:
509 VTableType * clone() const override { return new VTableType{ *this }; }
510 MUTATE_FRIEND
511};
512
513/// GCC built-in varargs type
514class VarArgsType final : public Type {
515public:
516 VarArgsType( CV::Qualifiers q = {} ) : Type( q ) {}
517
518 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
519private:
520 VarArgsType * clone() const override { return new VarArgsType{ *this }; }
521 MUTATE_FRIEND
522};
523
524/// Type of zero constant `0`
525class ZeroType final : public Type {
526public:
527 ZeroType( CV::Qualifiers q = {} ) : Type( q ) {}
528
529 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
530private:
531 ZeroType * clone() const override { return new ZeroType{ *this }; }
532 MUTATE_FRIEND
533};
534
535/// Type of one constant `1`
536class OneType final : public Type {
537public:
538 OneType( CV::Qualifiers q = {} ) : Type( q ) {}
539
540 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
541private:
542 OneType * clone() const override { return new OneType{ *this }; }
543 MUTATE_FRIEND
544};
545
546/// Parent type for scope-qualified types at global scope
547class GlobalScopeType final : public Type {
548public:
549 GlobalScopeType() : Type() {}
550
551 const Type * accept( Visitor & v ) const override { return v.visit( this ); }
552private:
553 GlobalScopeType * clone() const override { return new GlobalScopeType{ *this }; }
554 MUTATE_FRIEND
555};
556
557bool isUnboundType(const Type * type);
558
559}
560
561namespace std {
562 template<>
563 struct hash<typename ast::TypeEnvKey> {
564 size_t operator() (const ast::TypeEnvKey & x) const {
565 const size_t p = 1000007;
566 size_t res = reinterpret_cast<size_t>(x.base);
567 res = p * res + x.formal_usage;
568 res = p * res + x.expr_id;
569 return res;
570 }
571 };
572}
573
574#undef MUTATE_FRIEND
575
576// Local Variables: //
577// tab-width: 4 //
578// mode: c++ //
579// compile-command: "make install" //
580// End: //
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