source: src/Parser/parser.yy@ 43f29f6

ADT ast-experimental
Last change on this file since 43f29f6 was 0bcd707, checked in by Peter A. Buhr <pabuhr@…>, 3 years ago

make CV qualifiers on empty SUE declaration an error, gcc only has a warning

  • Property mode set to 100644
File size: 165.7 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// parser.yy --
8//
9// Author : Peter A. Buhr
10// Created On : Sat Sep 1 20:22:55 2001
11// Last Modified By : Peter A. Buhr
12// Last Modified On : Mon Feb 20 11:31:26 2023
13// Update Count : 5896
14//
15
16// This grammar is based on the ANSI99/11 C grammar, specifically parts of EXPRESSION and STATEMENTS, and on the C
17// grammar by James A. Roskind, specifically parts of DECLARATIONS and EXTERNAL DEFINITIONS. While parts have been
18// copied, important changes have been made in all sections; these changes are sufficient to constitute a new grammar.
19// In particular, this grammar attempts to be more syntactically precise, i.e., it parses less incorrect language syntax
20// that must be subsequently rejected by semantic checks. Nevertheless, there are still several semantic checks
21// required and many are noted in the grammar. Finally, the grammar is extended with GCC and CFA language extensions.
22
23// Acknowledgments to Richard Bilson, Glen Ditchfield, and Rodolfo Gabriel Esteves who all helped when I got stuck with
24// the grammar.
25
26// The root language for this grammar is ANSI99/11 C. All of ANSI99/11 is parsed, except for:
27//
28// designation with '=' (use ':' instead)
29//
30// This incompatibility is discussed in detail before the "designation" grammar rule. Most of the syntactic extensions
31// from ANSI90 to ANSI11 C are marked with the comment "C99/C11".
32
33// This grammar also has two levels of extensions. The first extensions cover most of the GCC C extensions. All of the
34// syntactic extensions for GCC C are marked with the comment "GCC". The second extensions are for Cforall (CFA), which
35// fixes several of C's outstanding problems and extends C with many modern language concepts. All of the syntactic
36// extensions for CFA C are marked with the comment "CFA".
37
38%{
39#define YYDEBUG_LEXER_TEXT( yylval ) // lexer loads this up each time
40#define YYDEBUG 1 // get the pretty debugging code to compile
41#define YYERROR_VERBOSE // more information in syntax errors
42
43#undef __GNUC_MINOR__
44
45#include <cstdio>
46#include <stack>
47using namespace std;
48
49#include "SynTree/Declaration.h"
50#include "ParseNode.h"
51#include "TypedefTable.h"
52#include "TypeData.h"
53#include "SynTree/LinkageSpec.h"
54#include "Common/SemanticError.h" // error_str
55#include "Common/utility.h" // for maybeMoveBuild, maybeBuild, CodeLo...
56
57#include "SynTree/Attribute.h" // for Attribute
58
59// lex uses __null in a boolean context, it's fine.
60#ifdef __clang__
61#pragma GCC diagnostic ignored "-Wparentheses-equality"
62#endif
63
64extern DeclarationNode * parseTree;
65extern LinkageSpec::Spec linkage;
66extern TypedefTable typedefTable;
67
68stack<LinkageSpec::Spec> linkageStack;
69
70bool appendStr( string & to, string & from ) {
71 // 1. Multiple strings are concatenated into a single string but not combined internally. The reason is that
72 // "\x12" "3" is treated as 2 characters versus 1 because "escape sequences are converted into single members of
73 // the execution character set just prior to adjacent string literal concatenation" (C11, Section 6.4.5-8). It is
74 // easier to let the C compiler handle this case.
75 //
76 // 2. String encodings are transformed into canonical form (one encoding at start) so the encoding can be found
77 // without searching the string, e.g.: "abc" L"def" L"ghi" => L"abc" "def" "ghi". Multiple encodings must match,
78 // e.g., u"a" U"b" L"c" is disallowed.
79
80 if ( from[0] != '"' ) { // encoding ?
81 if ( to[0] != '"' ) { // encoding ?
82 if ( to[0] != from[0] || to[1] != from[1] ) { // different encodings ?
83 yyerror( "non-matching string encodings for string-literal concatenation" );
84 return false; // parse error, must call YYERROR in action
85 } else if ( from[1] == '8' ) {
86 from.erase( 0, 1 ); // remove 2nd encoding
87 } // if
88 } else {
89 if ( from[1] == '8' ) { // move encoding to start
90 to = "u8" + to;
91 from.erase( 0, 1 ); // remove 2nd encoding
92 } else {
93 to = from[0] + to;
94 } // if
95 } // if
96 from.erase( 0, 1 ); // remove 2nd encoding
97 } // if
98 to += " " + from; // concatenated into single string
99 return true;
100} // appendStr
101
102DeclarationNode * distAttr( DeclarationNode * typeSpec, DeclarationNode * declList ) {
103 // distribute declaration_specifier across all declared variables, e.g., static, const, but not __attribute__.
104 assert( declList );
105 // printf( "distAttr1 typeSpec %p\n", typeSpec ); typeSpec->print( std::cout );
106 DeclarationNode * cur = declList, * cl = (new DeclarationNode)->addType( typeSpec );
107 // printf( "distAttr2 cl %p\n", cl ); cl->type->print( std::cout );
108 // cl->type->aggregate.name = cl->type->aggInst.aggregate->aggregate.name;
109
110 for ( cur = dynamic_cast<DeclarationNode *>( cur->get_next() ); cur != nullptr; cur = dynamic_cast<DeclarationNode *>( cur->get_next() ) ) {
111 cl->cloneBaseType( cur );
112 } // for
113 declList->addType( cl );
114 // printf( "distAttr3 declList %p\n", declList ); declList->print( std::cout, 0 );
115 return declList;
116} // distAttr
117
118void distExt( DeclarationNode * declaration ) {
119 // distribute EXTENSION across all declarations
120 for ( DeclarationNode *iter = declaration; iter != nullptr; iter = (DeclarationNode *)iter->get_next() ) {
121 iter->set_extension( true );
122 } // for
123} // distExt
124
125void distInl( DeclarationNode * declaration ) {
126 // distribute INLINE across all declarations
127 for ( DeclarationNode *iter = declaration; iter != nullptr; iter = (DeclarationNode *)iter->get_next() ) {
128 iter->set_inLine( true );
129 } // for
130} // distInl
131
132void distQual( DeclarationNode * declaration, DeclarationNode * qualifiers ) {
133 // distribute qualifiers across all non-variable declarations in a distribution statemement
134 for ( DeclarationNode * iter = declaration; iter != nullptr; iter = (DeclarationNode *)iter->get_next() ) {
135 // SKULLDUGGERY: Distributions are parsed inside out, so qualifiers are added to declarations inside out. Since
136 // addQualifiers appends to the back of the list, the forall clauses are in the wrong order (right to left). To
137 // get the qualifiers in the correct order and still use addQualifiers (otherwise, 90% of addQualifiers has to
138 // be copied to add to front), the appropriate forall pointers are interchanged before calling addQualifiers.
139 DeclarationNode * clone = qualifiers->clone();
140 if ( qualifiers->type ) { // forall clause ? (handles SC)
141 if ( iter->type->kind == TypeData::Aggregate ) { // struct/union ?
142 swap( clone->type->forall, iter->type->aggregate.params );
143 iter->addQualifiers( clone );
144 } else if ( iter->type->kind == TypeData::AggregateInst && iter->type->aggInst.aggregate->aggregate.body ) { // struct/union ?
145 // Create temporary node to hold aggregate, call addQualifiers as above, then put nodes back together.
146 DeclarationNode newnode;
147 swap( newnode.type, iter->type->aggInst.aggregate );
148 swap( clone->type->forall, newnode.type->aggregate.params );
149 newnode.addQualifiers( clone );
150 swap( newnode.type, iter->type->aggInst.aggregate );
151 } else if ( iter->type->kind == TypeData::Function ) { // routines ?
152 swap( clone->type->forall, iter->type->forall );
153 iter->addQualifiers( clone );
154 } // if
155 } else { // just SC qualifiers
156 iter->addQualifiers( clone );
157 } // if
158 } // for
159 delete qualifiers;
160} // distQual
161
162// There is an ambiguity for inline generic-routine return-types and generic routines.
163// forall( otype T ) struct S { int i; } bar( T ) {}
164// Does the forall bind to the struct or the routine, and how would it be possible to explicitly specify the binding.
165// forall( otype T ) struct S { int T; } forall( otype W ) bar( W ) {}
166// Currently, the forall is associated with the routine, and the generic type has to be separately defined:
167// forall( otype T ) struct S { int T; };
168// forall( otype W ) bar( W ) {}
169
170void rebindForall( DeclarationNode * declSpec, DeclarationNode * funcDecl ) {
171 if ( declSpec->type->kind == TypeData::Aggregate ) { // ignore aggregate definition
172 funcDecl->type->forall = declSpec->type->aggregate.params; // move forall from aggregate to function type
173 declSpec->type->aggregate.params = nullptr;
174 } // if
175} // rebindForall
176
177string * build_postfix_name( string * name ) {
178 *name = string("__postfix_func_") + *name;
179 return name;
180} // build_postfix_name
181
182DeclarationNode * fieldDecl( DeclarationNode * typeSpec, DeclarationNode * fieldList ) {
183 if ( ! fieldList ) { // field declarator ?
184 if ( ! ( typeSpec->type && (typeSpec->type->kind == TypeData::Aggregate || typeSpec->type->kind == TypeData::Enum) ) ) {
185 stringstream ss;
186 // printf( "fieldDecl1 typeSpec %p\n", typeSpec ); typeSpec->type->print( std::cout );
187 SemanticWarning( yylloc, Warning::SuperfluousDecl, ss.str().c_str() );
188 return nullptr;
189 } // if
190 // printf( "fieldDecl2 typeSpec %p\n", typeSpec ); typeSpec->type->print( std::cout );
191 fieldList = DeclarationNode::newName( nullptr );
192 } // if
193// return distAttr( typeSpec, fieldList ); // mark all fields in list
194
195 // printf( "fieldDecl3 typeSpec %p\n", typeSpec ); typeSpec->print( std::cout, 0 );
196 DeclarationNode * temp = distAttr( typeSpec, fieldList ); // mark all fields in list
197 // printf( "fieldDecl4 temp %p\n", temp ); temp->print( std::cout, 0 );
198 return temp;
199} // fieldDecl
200
201#define NEW_ZERO new ExpressionNode( build_constantInteger( *new string( "0" ) ) )
202#define NEW_ONE new ExpressionNode( build_constantInteger( *new string( "1" ) ) )
203#define UPDOWN( compop, left, right ) (compop == OperKinds::LThan || compop == OperKinds::LEThan ? left : right)
204#define MISSING_ANON_FIELD "Missing loop fields with an anonymous loop index is meaningless as loop index is unavailable in loop body."
205#define MISSING_LOW "Missing low value for up-to range so index is uninitialized."
206#define MISSING_HIGH "Missing high value for down-to range so index is uninitialized."
207
208ForCtrl * forCtrl( DeclarationNode * index, ExpressionNode * start, enum OperKinds compop, ExpressionNode * comp, ExpressionNode * inc ) {
209 if ( index->initializer ) {
210 SemanticError( yylloc, "Direct initialization disallowed. Use instead: type var; initialization ~ comparison ~ increment." );
211 } // if
212 if ( index->next ) {
213 SemanticError( yylloc, "Multiple loop indexes disallowed in for-loop declaration." );
214 } // if
215 return new ForCtrl( index->addInitializer( new InitializerNode( start ) ),
216 // NULL comp/inc => leave blank
217 comp ? new ExpressionNode( build_binary_val( compop, new ExpressionNode( build_varref( new string( *index->name ) ) ), comp ) ) : nullptr,
218 inc ? new ExpressionNode( build_binary_val( compop == OperKinds::LThan || compop == OperKinds::LEThan ? // choose += or -= for upto/downto
219 OperKinds::PlusAssn : OperKinds::MinusAssn, new ExpressionNode( build_varref( new string( *index->name ) ) ), inc ) ) : nullptr );
220} // forCtrl
221
222ForCtrl * forCtrl( ExpressionNode * type, string * index, ExpressionNode * start, enum OperKinds compop, ExpressionNode * comp, ExpressionNode * inc ) {
223 ConstantExpr * constant = dynamic_cast<ConstantExpr *>(type->expr.get());
224 if ( constant && (constant->get_constant()->get_value() == "0" || constant->get_constant()->get_value() == "1") ) {
225 type = new ExpressionNode( new CastExpr( maybeMoveBuild<Expression>(type), new BasicType( Type::Qualifiers(), BasicType::SignedInt ) ) );
226 } // if
227// type = new ExpressionNode( build_func( new ExpressionNode( build_varref( new string( "__for_control_index_constraints__" ) ) ), type ) );
228 return new ForCtrl(
229 distAttr( DeclarationNode::newTypeof( type, true ), DeclarationNode::newName( index )->addInitializer( new InitializerNode( start ) ) ),
230 // NULL comp/inc => leave blank
231 comp ? new ExpressionNode( build_binary_val( compop, new ExpressionNode( build_varref( new string( *index ) ) ), comp ) ) : nullptr,
232 inc ? new ExpressionNode( build_binary_val( compop == OperKinds::LThan || compop == OperKinds::LEThan ? // choose += or -= for upto/downto
233 OperKinds::PlusAssn : OperKinds::MinusAssn, new ExpressionNode( build_varref( new string( *index ) ) ), inc ) ) : nullptr );
234} // forCtrl
235
236ForCtrl * forCtrl( ExpressionNode * type, ExpressionNode * index, ExpressionNode * start, enum OperKinds compop, ExpressionNode * comp, ExpressionNode * inc ) {
237 if ( NameExpr * identifier = dynamic_cast<NameExpr *>(index->expr.get()) ) {
238 return forCtrl( type, new string( identifier->name ), start, compop, comp, inc );
239 } else if ( CommaExpr * commaExpr = dynamic_cast<CommaExpr *>(index->expr.get()) ) {
240 if ( NameExpr * identifier = dynamic_cast<NameExpr *>(commaExpr->arg1 ) ) {
241 return forCtrl( type, new string( identifier->name ), start, compop, comp, inc );
242 } else {
243 SemanticError( yylloc, "Expression disallowed. Only loop-index name allowed." ); return nullptr;
244 } // if
245 } else {
246 SemanticError( yylloc, "Expression disallowed. Only loop-index name allowed." ); return nullptr;
247 } // if
248} // forCtrl
249
250static void IdentifierBeforeIdentifier( string & identifier1, string & identifier2, const char * kind ) {
251 SemanticError( yylloc, ::toString( "Adjacent identifiers \"", identifier1, "\" and \"", identifier2, "\" are not meaningful in a", kind, ".\n"
252 "Possible cause is misspelled type name or missing generic parameter." ) );
253} // IdentifierBeforeIdentifier
254
255static void IdentifierBeforeType( string & identifier, const char * kind ) {
256 SemanticError( yylloc, ::toString( "Identifier \"", identifier, "\" cannot appear before a ", kind, ".\n"
257 "Possible cause is misspelled storage/CV qualifier, misspelled typename, or missing generic parameter." ) );
258} // IdentifierBeforeType
259
260bool forall = false; // aggregate have one or more forall qualifiers ?
261
262// https://www.gnu.org/software/bison/manual/bison.html#Location-Type
263#define YYLLOC_DEFAULT(Cur, Rhs, N) \
264if ( N ) { \
265 (Cur).first_line = YYRHSLOC( Rhs, 1 ).first_line; \
266 (Cur).first_column = YYRHSLOC( Rhs, 1 ).first_column; \
267 (Cur).last_line = YYRHSLOC( Rhs, N ).last_line; \
268 (Cur).last_column = YYRHSLOC( Rhs, N ).last_column; \
269 (Cur).filename = YYRHSLOC( Rhs, 1 ).filename; \
270} else { \
271 (Cur).first_line = (Cur).last_line = YYRHSLOC( Rhs, 0 ).last_line; \
272 (Cur).first_column = (Cur).last_column = YYRHSLOC( Rhs, 0 ).last_column; \
273 (Cur).filename = YYRHSLOC( Rhs, 0 ).filename; \
274}
275%}
276
277%define parse.error verbose
278
279// Types declaration for productions
280
281%union {
282 Token tok;
283 ParseNode * pn;
284 ExpressionNode * en;
285 DeclarationNode * decl;
286 AggregateDecl::Aggregate aggKey;
287 TypeDecl::Kind tclass;
288 StatementNode * sn;
289 WaitForStmt * wfs;
290 Expression * constant;
291 CondCtl * ifctl;
292 ForCtrl * fctl;
293 OperKinds compop;
294 LabelNode * label;
295 InitializerNode * in;
296 OperKinds op;
297 std::string * str;
298 bool flag;
299 EnumHiding hide;
300 CatchStmt::Kind catch_kind;
301 GenericExpr * genexpr;
302}
303
304//************************* TERMINAL TOKENS ********************************
305
306// keywords
307%token TYPEDEF
308%token EXTERN STATIC AUTO REGISTER
309%token THREADLOCALGCC THREADLOCALC11 // GCC, C11
310%token INLINE FORTRAN // C99, extension ISO/IEC 9899:1999 Section J.5.9(1)
311%token NORETURN // C11
312%token CONST VOLATILE
313%token RESTRICT // C99
314%token ATOMIC // C11
315%token FORALL MUTEX VIRTUAL VTABLE COERCE // CFA
316%token VOID CHAR SHORT INT LONG FLOAT DOUBLE SIGNED UNSIGNED
317%token BOOL COMPLEX IMAGINARY // C99
318%token INT128 UINT128 uuFLOAT80 uuFLOAT128 // GCC
319%token uFLOAT16 uFLOAT32 uFLOAT32X uFLOAT64 uFLOAT64X uFLOAT128 // GCC
320%token DECIMAL32 DECIMAL64 DECIMAL128 // GCC
321%token ZERO_T ONE_T // CFA
322%token SIZEOF TYPEOF VA_LIST VA_ARG AUTO_TYPE // GCC
323%token OFFSETOF BASETYPEOF TYPEID // CFA
324%token ENUM STRUCT UNION
325%token EXCEPTION // CFA
326%token GENERATOR COROUTINE MONITOR THREAD // CFA
327%token OTYPE FTYPE DTYPE TTYPE TRAIT // CFA
328// %token RESUME // CFA
329%token LABEL // GCC
330%token SUSPEND // CFA
331%token ATTRIBUTE EXTENSION // GCC
332%token IF ELSE SWITCH CASE DEFAULT DO WHILE FOR BREAK CONTINUE GOTO RETURN
333%token CHOOSE FALLTHRU FALLTHROUGH WITH WHEN WAITFOR WAITUNTIL // CFA
334%token DISABLE ENABLE TRY THROW THROWRESUME AT // CFA
335%token ASM // C99, extension ISO/IEC 9899:1999 Section J.5.10(1)
336%token ALIGNAS ALIGNOF GENERIC STATICASSERT // C11
337
338// names and constants: lexer differentiates between identifier and typedef names
339%token<tok> IDENTIFIER QUOTED_IDENTIFIER TYPEDIMname TYPEDEFname TYPEGENname
340%token<tok> TIMEOUT WOR CATCH RECOVER CATCHRESUME FIXUP FINALLY // CFA
341%token<tok> INTEGERconstant CHARACTERconstant STRINGliteral
342%token<tok> DIRECTIVE
343// Floating point constant is broken into three kinds of tokens because of the ambiguity with tuple indexing and
344// overloading constants 0/1, e.g., x.1 is lexed as (x)(.1), where (.1) is a factional constant, but is semantically
345// converted into the tuple index (.)(1). e.g., 3.x
346%token<tok> FLOATING_DECIMALconstant FLOATING_FRACTIONconstant FLOATINGconstant
347
348// multi-character operators
349%token ARROW // ->
350%token ICR DECR // ++ --
351%token LS RS // << >>
352%token LE GE EQ NE // <= >= == !=
353%token ANDAND OROR // && ||
354%token ELLIPSIS // ...
355
356%token EXPassign MULTassign DIVassign MODassign // \= *= /= %=
357%token PLUSassign MINUSassign // += -=
358%token LSassign RSassign // <<= >>=
359%token ANDassign ERassign ORassign // &= ^= |=
360
361%token ErangeUpEq ErangeDown ErangeDownEq // ~= -~ -~=
362%token ATassign // @=
363
364%type<tok> identifier identifier_at identifier_or_type_name attr_name
365%type<tok> quasi_keyword
366%type<constant> string_literal
367%type<str> string_literal_list
368
369%type<hide> hide_opt visible_hide_opt
370
371// expressions
372%type<en> constant
373%type<en> tuple tuple_expression_list
374%type<op> ptrref_operator unary_operator assignment_operator simple_assignment_operator compound_assignment_operator
375%type<en> primary_expression postfix_expression unary_expression
376%type<en> cast_expression_list cast_expression exponential_expression multiplicative_expression additive_expression
377%type<en> shift_expression relational_expression equality_expression
378%type<en> AND_expression exclusive_OR_expression inclusive_OR_expression
379%type<en> logical_AND_expression logical_OR_expression
380%type<en> conditional_expression constant_expression assignment_expression assignment_expression_opt
381%type<en> comma_expression comma_expression_opt
382%type<en> argument_expression_list_opt argument_expression_list argument_expression default_initializer_opt
383%type<ifctl> conditional_declaration
384%type<fctl> for_control_expression for_control_expression_list
385%type<compop> upupeq updown updowneq downupdowneq
386%type<en> subrange
387%type<decl> asm_name_opt
388%type<en> asm_operands_opt asm_operands_list asm_operand
389%type<label> label_list
390%type<en> asm_clobbers_list_opt
391%type<flag> asm_volatile_opt
392%type<en> handler_predicate_opt
393%type<genexpr> generic_association generic_assoc_list
394
395// statements
396%type<sn> statement labeled_statement compound_statement
397%type<sn> statement_decl statement_decl_list statement_list_nodecl
398%type<sn> selection_statement if_statement
399%type<sn> switch_clause_list_opt switch_clause_list
400%type<en> case_value
401%type<sn> case_clause case_value_list case_label case_label_list
402%type<sn> iteration_statement jump_statement
403%type<sn> expression_statement asm_statement
404%type<sn> with_statement
405%type<en> with_clause_opt
406%type<sn> exception_statement handler_clause finally_clause
407%type<catch_kind> handler_key
408%type<sn> mutex_statement
409%type<en> when_clause when_clause_opt waitfor timeout
410%type<sn> waitfor_statement
411%type<wfs> waitfor_clause
412
413// declarations
414%type<decl> abstract_declarator abstract_ptr abstract_array abstract_function array_dimension multi_array_dimension
415%type<decl> abstract_parameter_declarator_opt abstract_parameter_declarator abstract_parameter_ptr abstract_parameter_array abstract_parameter_function array_parameter_dimension array_parameter_1st_dimension
416%type<decl> abstract_parameter_declaration
417
418%type<aggKey> aggregate_key aggregate_data aggregate_control
419%type<decl> aggregate_type aggregate_type_nobody
420
421%type<decl> assertion assertion_list assertion_list_opt
422
423%type<en> bit_subrange_size_opt bit_subrange_size
424
425%type<decl> basic_declaration_specifier basic_type_name basic_type_specifier direct_type indirect_type
426%type<decl> vtable vtable_opt default_opt
427
428%type<decl> trait_declaration trait_declaration_list trait_declaring_list trait_specifier
429
430%type<decl> declaration declaration_list declaration_list_opt declaration_qualifier_list
431%type<decl> declaration_specifier declaration_specifier_nobody declarator declaring_list
432
433%type<decl> elaborated_type elaborated_type_nobody
434
435%type<decl> enumerator_list enum_type enum_type_nobody
436%type<in> enumerator_value_opt
437
438%type<decl> external_definition external_definition_list external_definition_list_opt
439
440%type<decl> exception_declaration
441
442%type<decl> field_declaration_list_opt field_declaration field_declaring_list_opt field_declarator field_abstract_list_opt field_abstract
443%type<en> field field_name_list field_name fraction_constants_opt
444
445%type<decl> external_function_definition function_definition function_array function_declarator function_no_ptr function_ptr
446
447%type<decl> identifier_parameter_declarator identifier_parameter_ptr identifier_parameter_array identifier_parameter_function
448%type<decl> identifier_list
449
450%type<decl> cfa_abstract_array cfa_abstract_declarator_no_tuple cfa_abstract_declarator_tuple
451%type<decl> cfa_abstract_function cfa_abstract_parameter_declaration cfa_abstract_parameter_list
452%type<decl> cfa_abstract_ptr cfa_abstract_tuple
453
454%type<decl> cfa_array_parameter_1st_dimension
455
456%type<decl> cfa_trait_declaring_list cfa_declaration cfa_field_declaring_list cfa_field_abstract_list
457%type<decl> cfa_function_declaration cfa_function_return cfa_function_specifier
458
459%type<decl> cfa_identifier_parameter_array cfa_identifier_parameter_declarator_no_tuple
460%type<decl> cfa_identifier_parameter_declarator_tuple cfa_identifier_parameter_ptr
461
462%type<decl> cfa_parameter_declaration cfa_parameter_list cfa_parameter_ellipsis_list_opt
463
464%type<decl> cfa_typedef_declaration cfa_variable_declaration cfa_variable_specifier
465
466%type<decl> c_declaration static_assert
467%type<decl> KR_function_declarator KR_function_no_ptr KR_function_ptr KR_function_array
468%type<decl> KR_parameter_list KR_parameter_list_opt
469
470%type<decl> parameter_declaration parameter_list parameter_type_list_opt
471
472%type<decl> paren_identifier paren_type
473
474%type<decl> storage_class storage_class_list
475
476%type<decl> sue_declaration_specifier sue_declaration_specifier_nobody sue_type_specifier sue_type_specifier_nobody
477
478%type<tclass> type_class new_type_class
479%type<decl> type_declarator type_declarator_name type_declaring_list
480
481%type<decl> type_declaration_specifier type_type_specifier type_name typegen_name
482%type<decl> typedef_name typedef_declaration typedef_expression
483
484%type<decl> variable_type_redeclarator type_ptr type_array type_function
485
486%type<decl> type_parameter_redeclarator type_parameter_ptr type_parameter_array type_parameter_function
487
488%type<decl> type type_no_function
489%type<decl> type_parameter type_parameter_list type_initializer_opt
490
491%type<en> type_parameters_opt type_list array_type_list
492
493%type<decl> type_qualifier type_qualifier_name forall type_qualifier_list_opt type_qualifier_list
494%type<decl> type_specifier type_specifier_nobody
495
496%type<decl> variable_declarator variable_ptr variable_array variable_function
497%type<decl> variable_abstract_declarator variable_abstract_ptr variable_abstract_array variable_abstract_function
498
499%type<decl> attribute_list_opt attribute_list attribute attribute_name_list attribute_name
500
501// initializers
502%type<in> initializer initializer_list_opt initializer_opt
503
504// designators
505%type<en> designator designator_list designation
506
507
508// Handle shift/reduce conflict for dangling else by shifting the ELSE token. For example, this string is ambiguous:
509// .---------. matches IF '(' comma_expression ')' statement . (reduce)
510// if ( C ) S1 else S2
511// `-----------------' matches IF '(' comma_expression ')' statement . (shift) ELSE statement */
512// Similar issues exit with the waitfor statement.
513
514// Order of these lines matters (low-to-high precedence). THEN is left associative over WOR/TIMEOUT/ELSE, WOR is left
515// associative over TIMEOUT/ELSE, and TIMEOUT is left associative over ELSE.
516%precedence THEN // rule precedence for IF/WAITFOR statement
517%precedence WOR // token precedence for start of WOR in WAITFOR statement
518%precedence TIMEOUT // token precedence for start of TIMEOUT in WAITFOR statement
519%precedence CATCH // token precedence for start of TIMEOUT in WAITFOR statement
520%precedence RECOVER // token precedence for start of TIMEOUT in WAITFOR statement
521%precedence CATCHRESUME // token precedence for start of TIMEOUT in WAITFOR statement
522%precedence FIXUP // token precedence for start of TIMEOUT in WAITFOR statement
523%precedence FINALLY // token precedence for start of TIMEOUT in WAITFOR statement
524%precedence ELSE // token precedence for start of else clause in IF/WAITFOR statement
525
526
527// Handle shift/reduce conflict for generic type by shifting the '(' token. For example, this string is ambiguous:
528// forall( otype T ) struct Foo { T v; };
529// .-----. matches pointer to function returning a generic (which is impossible without a type)
530// Foo ( *fp )( int );
531// `---' matches start of TYPEGENname '('
532// must be:
533// Foo( int ) ( *fp )( int );
534// The same problem occurs here:
535// forall( otype T ) struct Foo { T v; } ( *fp )( int );
536// must be:
537// forall( otype T ) struct Foo { T v; } ( int ) ( *fp )( int );
538
539// Order of these lines matters (low-to-high precedence).
540%precedence TYPEGENname
541%precedence '}'
542%precedence '('
543
544// %precedence RESUME
545// %precedence '{'
546// %precedence ')'
547
548%locations // support location tracking for error messages
549
550%start translation_unit // parse-tree root
551
552%%
553// ************************ Namespace Management ********************************
554
555// The C grammar is not context free because it relies on the distinct terminal symbols "identifier" and "TYPEDEFname",
556// which are lexically identical.
557//
558// typedef int foo; // identifier foo must now be scanned as TYPEDEFname
559// foo f; // to allow it to appear in this context
560//
561// While it may be possible to write a purely context-free grammar, such a grammar would obscure the relationship
562// between syntactic and semantic constructs. Cforall compounds this problem by introducing type names local to the
563// scope of a declaration (for instance, those introduced through "forall" qualifiers), and by introducing "type
564// generators" -- parameterized types. This latter type name creates a third class of identifiers, "TYPEGENname", which
565// must be distinguished by the lexical scanner.
566//
567// Since the scanner cannot distinguish among the different classes of identifiers without some context information,
568// there is a type table (typedefTable), which holds type names and identifiers that override type names, for each named
569// scope. During parsing, semantic actions update the type table by adding new identifiers in the current scope. For
570// each context that introduces a name scope, a new level is created in the type table and that level is popped on
571// exiting the scope. Since type names can be local to a particular declaration, each declaration is itself a scope.
572// This requires distinguishing between type names that are local to the current declaration scope and those that
573// persist past the end of the declaration (i.e., names defined in "typedef" or "otype" declarations).
574//
575// The non-terminals "push" and "pop" denote the opening and closing of named scopes. Every push has a matching pop in
576// the production rule. There are multiple lists of declarations, where each declaration is a named scope, so pop/push
577// around the list separator.
578//
579// int f( forall(T) T (*f1) T , forall( S ) S (*f2)( S ) );
580// push pop push pop
581
582push:
583 { typedefTable.enterScope(); }
584 ;
585
586pop:
587 { typedefTable.leaveScope(); }
588 ;
589
590// ************************ CONSTANTS ********************************
591
592constant:
593 // ENUMERATIONconstant is not included here; it is treated as a variable with type "enumeration constant".
594 INTEGERconstant { $$ = new ExpressionNode( build_constantInteger( *$1 ) ); }
595 | FLOATING_DECIMALconstant { $$ = new ExpressionNode( build_constantFloat( *$1 ) ); }
596 | FLOATING_FRACTIONconstant { $$ = new ExpressionNode( build_constantFloat( *$1 ) ); }
597 | FLOATINGconstant { $$ = new ExpressionNode( build_constantFloat( *$1 ) ); }
598 | CHARACTERconstant { $$ = new ExpressionNode( build_constantChar( *$1 ) ); }
599 ;
600
601quasi_keyword: // CFA
602 TIMEOUT
603 | WOR
604 | CATCH
605 | RECOVER
606 | CATCHRESUME
607 | FIXUP
608 | FINALLY
609 ;
610
611identifier:
612 IDENTIFIER
613 | quasi_keyword
614 ;
615
616identifier_at:
617 identifier
618 | '@' // CFA
619 { Token tok = { new string( DeclarationNode::anonymous.newName() ), yylval.tok.loc }; $$ = tok; }
620 ;
621
622string_literal:
623 string_literal_list { $$ = build_constantStr( *$1 ); }
624 ;
625
626string_literal_list: // juxtaposed strings are concatenated
627 STRINGliteral { $$ = $1; } // conversion from tok to str
628 | string_literal_list STRINGliteral
629 {
630 if ( ! appendStr( *$1, *$2 ) ) YYERROR; // append 2nd juxtaposed string to 1st
631 delete $2; // allocated by lexer
632 $$ = $1; // conversion from tok to str
633 }
634 ;
635
636// ************************ EXPRESSIONS ********************************
637
638primary_expression:
639 IDENTIFIER // typedef name cannot be used as a variable name
640 { $$ = new ExpressionNode( build_varref( $1 ) ); }
641 | quasi_keyword
642 { $$ = new ExpressionNode( build_varref( $1 ) ); }
643 | TYPEDIMname // CFA, generic length argument
644 // { $$ = new ExpressionNode( new TypeExpr( maybeMoveBuildType( DeclarationNode::newFromTypedef( $1 ) ) ) ); }
645 // { $$ = new ExpressionNode( build_varref( $1 ) ); }
646 { $$ = new ExpressionNode( build_dimensionref( $1 ) ); }
647 | tuple
648 | '(' comma_expression ')'
649 { $$ = $2; }
650 | '(' compound_statement ')' // GCC, lambda expression
651 { $$ = new ExpressionNode( new StmtExpr( dynamic_cast<CompoundStmt *>(maybeMoveBuild<Statement>($2) ) ) ); }
652 | type_name '.' identifier // CFA, nested type
653 { $$ = new ExpressionNode( build_qualified_expr( $1, build_varref( $3 ) ) ); }
654 | type_name '.' '[' field_name_list ']' // CFA, nested type / tuple field selector
655 { SemanticError( yylloc, "Qualified name is currently unimplemented." ); $$ = nullptr; }
656 | GENERIC '(' assignment_expression ',' generic_assoc_list ')' // C11
657 {
658 // add the missing control expression to the GenericExpr and return it
659 $5->control = maybeMoveBuild<Expression>( $3 );
660 $$ = new ExpressionNode( $5 );
661 }
662 // | RESUME '(' comma_expression ')'
663 // { SemanticError( yylloc, "Resume expression is currently unimplemented." ); $$ = nullptr; }
664 // | RESUME '(' comma_expression ')' compound_statement
665 // { SemanticError( yylloc, "Resume expression is currently unimplemented." ); $$ = nullptr; }
666 | IDENTIFIER IDENTIFIER // syntax error
667 { IdentifierBeforeIdentifier( *$1.str, *$2.str, "n expression" ); $$ = nullptr; }
668 | IDENTIFIER type_qualifier // syntax error
669 { IdentifierBeforeType( *$1.str, "type qualifier" ); $$ = nullptr; }
670 | IDENTIFIER storage_class // syntax error
671 { IdentifierBeforeType( *$1.str, "storage class" ); $$ = nullptr; }
672 | IDENTIFIER basic_type_name // syntax error
673 { IdentifierBeforeType( *$1.str, "type" ); $$ = nullptr; }
674 | IDENTIFIER TYPEDEFname // syntax error
675 { IdentifierBeforeType( *$1.str, "type" ); $$ = nullptr; }
676 | IDENTIFIER TYPEGENname // syntax error
677 { IdentifierBeforeType( *$1.str, "type" ); $$ = nullptr; }
678 ;
679
680generic_assoc_list: // C11
681 generic_association
682 | generic_assoc_list ',' generic_association
683 {
684 // steal the association node from the singleton and delete the wrapper
685 $1->associations.splice($1->associations.end(), $3->associations);
686 delete $3;
687 $$ = $1;
688 }
689 ;
690
691generic_association: // C11
692 type_no_function ':' assignment_expression
693 {
694 // create a GenericExpr wrapper with one association pair
695 $$ = new GenericExpr( nullptr, { { maybeMoveBuildType($1), maybeMoveBuild<Expression>( $3 ) } } );
696 }
697 | DEFAULT ':' assignment_expression
698 { $$ = new GenericExpr( nullptr, { { maybeMoveBuild<Expression>( $3 ) } } ); }
699 ;
700
701postfix_expression:
702 primary_expression
703 | postfix_expression '[' assignment_expression ',' tuple_expression_list ']'
704 // Historic, transitional: Disallow commas in subscripts.
705 // Switching to this behaviour may help check if a C compatibilty case uses comma-exprs in subscripts.
706 // Current: Commas in subscripts make tuples.
707 { $$ = new ExpressionNode( build_binary_val( OperKinds::Index, $1, new ExpressionNode( build_tuple( (ExpressionNode *)($3->set_last( $5 ) ) )) ) ); }
708 | postfix_expression '[' assignment_expression ']'
709 // CFA, comma_expression disallowed in this context because it results in a common user error: subscripting a
710 // matrix with x[i,j] instead of x[i][j]. While this change is not backwards compatible, there seems to be
711 // little advantage to this feature and many disadvantages. It is possible to write x[(i,j)] in CFA, which is
712 // equivalent to the old x[i,j].
713 { $$ = new ExpressionNode( build_binary_val( OperKinds::Index, $1, $3 ) ); }
714 | constant '[' assignment_expression ']' // 3[a], 'a'[a], 3.5[a]
715 { $$ = new ExpressionNode( build_binary_val( OperKinds::Index, $1, $3 ) ); }
716 | string_literal '[' assignment_expression ']' // "abc"[3], 3["abc"]
717 { $$ = new ExpressionNode( build_binary_val( OperKinds::Index, new ExpressionNode( $1 ), $3 ) ); }
718 | postfix_expression '{' argument_expression_list_opt '}' // CFA, constructor call
719 {
720 Token fn;
721 fn.str = new std::string( "?{}" ); // location undefined - use location of '{'?
722 $$ = new ExpressionNode( new ConstructorExpr( build_func( new ExpressionNode( build_varref( fn ) ), (ExpressionNode *)( $1 )->set_last( $3 ) ) ) );
723 }
724 | postfix_expression '(' argument_expression_list_opt ')'
725 { $$ = new ExpressionNode( build_func( $1, $3 ) ); }
726 | VA_ARG '(' primary_expression ',' declaration_specifier_nobody abstract_parameter_declarator_opt ')'
727 // { SemanticError( yylloc, "va_arg is currently unimplemented." ); $$ = nullptr; }
728 { $$ = new ExpressionNode( build_func( new ExpressionNode( build_varref( new string( "__builtin_va_arg") ) ),
729 (ExpressionNode *)($3->set_last( (ExpressionNode *)($6 ? $6->addType( $5 ) : $5) )) ) ); }
730 | postfix_expression '`' identifier // CFA, postfix call
731 { $$ = new ExpressionNode( build_func( new ExpressionNode( build_varref( build_postfix_name( $3 ) ) ), $1 ) ); }
732 | constant '`' identifier // CFA, postfix call
733 { $$ = new ExpressionNode( build_func( new ExpressionNode( build_varref( build_postfix_name( $3 ) ) ), $1 ) ); }
734 | string_literal '`' identifier // CFA, postfix call
735 { $$ = new ExpressionNode( build_func( new ExpressionNode( build_varref( build_postfix_name( $3 ) ) ), new ExpressionNode( $1 ) ) ); }
736 | postfix_expression '.' identifier
737 { $$ = new ExpressionNode( build_fieldSel( $1, build_varref( $3 ) ) ); }
738 | postfix_expression '.' INTEGERconstant // CFA, tuple index
739 { $$ = new ExpressionNode( build_fieldSel( $1, build_constantInteger( *$3 ) ) ); }
740 | postfix_expression FLOATING_FRACTIONconstant // CFA, tuple index
741 { $$ = new ExpressionNode( build_fieldSel( $1, build_field_name_FLOATING_FRACTIONconstant( *$2 ) ) ); }
742 | postfix_expression '.' '[' field_name_list ']' // CFA, tuple field selector
743 { $$ = new ExpressionNode( build_fieldSel( $1, build_tuple( $4 ) ) ); }
744 | postfix_expression '.' aggregate_control
745 { $$ = new ExpressionNode( build_keyword_cast( $3, $1 ) ); }
746 | postfix_expression ARROW identifier
747 { $$ = new ExpressionNode( build_pfieldSel( $1, build_varref( $3 ) ) ); }
748 | postfix_expression ARROW INTEGERconstant // CFA, tuple index
749 { $$ = new ExpressionNode( build_pfieldSel( $1, build_constantInteger( *$3 ) ) ); }
750 | postfix_expression ARROW '[' field_name_list ']' // CFA, tuple field selector
751 { $$ = new ExpressionNode( build_pfieldSel( $1, build_tuple( $4 ) ) ); }
752 | postfix_expression ICR
753 { $$ = new ExpressionNode( build_unary_ptr( OperKinds::IncrPost, $1 ) ); }
754 | postfix_expression DECR
755 { $$ = new ExpressionNode( build_unary_ptr( OperKinds::DecrPost, $1 ) ); }
756 | '(' type_no_function ')' '{' initializer_list_opt comma_opt '}' // C99, compound-literal
757 { $$ = new ExpressionNode( build_compoundLiteral( $2, new InitializerNode( $5, true ) ) ); }
758 | '(' type_no_function ')' '@' '{' initializer_list_opt comma_opt '}' // CFA, explicit C compound-literal
759 { $$ = new ExpressionNode( build_compoundLiteral( $2, (new InitializerNode( $6, true ))->set_maybeConstructed( false ) ) ); }
760 | '^' primary_expression '{' argument_expression_list_opt '}' // CFA, destructor call
761 {
762 Token fn;
763 fn.str = new string( "^?{}" ); // location undefined
764 $$ = new ExpressionNode( build_func( new ExpressionNode( build_varref( fn ) ), (ExpressionNode *)( $2 )->set_last( $4 ) ) );
765 }
766 ;
767
768argument_expression_list_opt:
769 // empty
770 { $$ = nullptr; }
771 | argument_expression_list
772 ;
773
774argument_expression_list:
775 argument_expression
776 | argument_expression_list_opt ',' argument_expression
777 { $$ = (ExpressionNode *)($1->set_last( $3 )); }
778 ;
779
780argument_expression:
781 '@' // CFA, default parameter
782 { SemanticError( yylloc, "Default parameter for argument is currently unimplemented." ); $$ = nullptr; }
783 // { $$ = new ExpressionNode( build_constantInteger( *new string( "2" ) ) ); }
784 | assignment_expression
785 ;
786
787field_name_list: // CFA, tuple field selector
788 field
789 | field_name_list ',' field { $$ = (ExpressionNode *)($1->set_last( $3 )); }
790 ;
791
792field: // CFA, tuple field selector
793 field_name
794 | FLOATING_DECIMALconstant field
795 { $$ = new ExpressionNode( build_fieldSel( new ExpressionNode( build_field_name_FLOATING_DECIMALconstant( *$1 ) ), maybeMoveBuild<Expression>( $2 ) ) ); }
796 | FLOATING_DECIMALconstant '[' field_name_list ']'
797 { $$ = new ExpressionNode( build_fieldSel( new ExpressionNode( build_field_name_FLOATING_DECIMALconstant( *$1 ) ), build_tuple( $3 ) ) ); }
798 | field_name '.' field
799 { $$ = new ExpressionNode( build_fieldSel( $1, maybeMoveBuild<Expression>( $3 ) ) ); }
800 | field_name '.' '[' field_name_list ']'
801 { $$ = new ExpressionNode( build_fieldSel( $1, build_tuple( $4 ) ) ); }
802 | field_name ARROW field
803 { $$ = new ExpressionNode( build_pfieldSel( $1, maybeMoveBuild<Expression>( $3 ) ) ); }
804 | field_name ARROW '[' field_name_list ']'
805 { $$ = new ExpressionNode( build_pfieldSel( $1, build_tuple( $4 ) ) ); }
806 ;
807
808field_name:
809 INTEGERconstant fraction_constants_opt
810 { $$ = new ExpressionNode( build_field_name_fraction_constants( build_constantInteger( *$1 ), $2 ) ); }
811 | FLOATINGconstant fraction_constants_opt
812 { $$ = new ExpressionNode( build_field_name_fraction_constants( build_field_name_FLOATINGconstant( *$1 ), $2 ) ); }
813 | identifier_at fraction_constants_opt // CFA, allow anonymous fields
814 {
815 $$ = new ExpressionNode( build_field_name_fraction_constants( build_varref( $1 ), $2 ) );
816 }
817 ;
818
819fraction_constants_opt:
820 // empty
821 { $$ = nullptr; }
822 | fraction_constants_opt FLOATING_FRACTIONconstant
823 {
824 Expression * constant = build_field_name_FLOATING_FRACTIONconstant( *$2 );
825 $$ = $1 != nullptr ? new ExpressionNode( build_fieldSel( $1, constant ) ) : new ExpressionNode( constant );
826 }
827 ;
828
829unary_expression:
830 postfix_expression
831 // first location where constant/string can have operator applied: sizeof 3/sizeof "abc" still requires
832 // semantics checks, e.g., ++3, 3--, *3, &&3
833 | constant
834 | string_literal
835 { $$ = new ExpressionNode( $1 ); }
836 | EXTENSION cast_expression // GCC
837 { $$ = $2->set_extension( true ); }
838 // '*' ('&') is separated from unary_operator because of shift/reduce conflict in:
839 // { * X; } // dereference X
840 // { * int X; } // CFA declaration of pointer to int
841 | ptrref_operator cast_expression // CFA
842 {
843 switch ( $1 ) {
844 case OperKinds::AddressOf:
845 $$ = new ExpressionNode( new AddressExpr( maybeMoveBuild<Expression>( $2 ) ) );
846 break;
847 case OperKinds::PointTo:
848 $$ = new ExpressionNode( build_unary_val( $1, $2 ) );
849 break;
850 case OperKinds::And:
851 $$ = new ExpressionNode( new AddressExpr( new AddressExpr( maybeMoveBuild<Expression>( $2 ) ) ) );
852 break;
853 default:
854 assert( false );
855 }
856 }
857 | unary_operator cast_expression
858 { $$ = new ExpressionNode( build_unary_val( $1, $2 ) ); }
859 | ICR unary_expression
860 { $$ = new ExpressionNode( build_unary_ptr( OperKinds::Incr, $2 ) ); }
861 | DECR unary_expression
862 { $$ = new ExpressionNode( build_unary_ptr( OperKinds::Decr, $2 ) ); }
863 | SIZEOF unary_expression
864 { $$ = new ExpressionNode( new SizeofExpr( maybeMoveBuild<Expression>( $2 ) ) ); }
865 | SIZEOF '(' type_no_function ')'
866 { $$ = new ExpressionNode( new SizeofExpr( maybeMoveBuildType( $3 ) ) ); }
867 | ALIGNOF unary_expression // GCC, variable alignment
868 { $$ = new ExpressionNode( new AlignofExpr( maybeMoveBuild<Expression>( $2 ) ) ); }
869 | ALIGNOF '(' type_no_function ')' // GCC, type alignment
870 { $$ = new ExpressionNode( new AlignofExpr( maybeMoveBuildType( $3 ) ) ); }
871 | OFFSETOF '(' type_no_function ',' identifier ')'
872 { $$ = new ExpressionNode( build_offsetOf( $3, build_varref( $5 ) ) ); }
873 | TYPEID '(' type_no_function ')'
874 {
875 SemanticError( yylloc, "typeid name is currently unimplemented." ); $$ = nullptr;
876 // $$ = new ExpressionNode( build_offsetOf( $3, build_varref( $5 ) ) );
877 }
878 ;
879
880ptrref_operator:
881 '*' { $$ = OperKinds::PointTo; }
882 | '&' { $$ = OperKinds::AddressOf; }
883 // GCC, address of label must be handled by semantic check for ref,ref,label
884 | ANDAND { $$ = OperKinds::And; }
885 ;
886
887unary_operator:
888 '+' { $$ = OperKinds::UnPlus; }
889 | '-' { $$ = OperKinds::UnMinus; }
890 | '!' { $$ = OperKinds::Neg; }
891 | '~' { $$ = OperKinds::BitNeg; }
892 ;
893
894cast_expression:
895 unary_expression
896 | '(' type_no_function ')' cast_expression
897 { $$ = new ExpressionNode( build_cast( $2, $4 ) ); }
898 | '(' aggregate_control '&' ')' cast_expression // CFA
899 { $$ = new ExpressionNode( build_keyword_cast( $2, $5 ) ); }
900 | '(' aggregate_control '*' ')' cast_expression // CFA
901 { $$ = new ExpressionNode( build_keyword_cast( $2, $5 ) ); }
902 | '(' VIRTUAL ')' cast_expression // CFA
903 { $$ = new ExpressionNode( new VirtualCastExpr( maybeMoveBuild<Expression>( $4 ), maybeMoveBuildType( nullptr ) ) ); }
904 | '(' VIRTUAL type_no_function ')' cast_expression // CFA
905 { $$ = new ExpressionNode( new VirtualCastExpr( maybeMoveBuild<Expression>( $5 ), maybeMoveBuildType( $3 ) ) ); }
906 | '(' RETURN type_no_function ')' cast_expression // CFA
907 { SemanticError( yylloc, "Return cast is currently unimplemented." ); $$ = nullptr; }
908 | '(' COERCE type_no_function ')' cast_expression // CFA
909 { SemanticError( yylloc, "Coerce cast is currently unimplemented." ); $$ = nullptr; }
910 | '(' qualifier_cast_list ')' cast_expression // CFA
911 { SemanticError( yylloc, "Qualifier cast is currently unimplemented." ); $$ = nullptr; }
912// | '(' type_no_function ')' tuple
913// { $$ = new ExpressionNode( build_cast( $2, $4 ) ); }
914 ;
915
916qualifier_cast_list:
917 cast_modifier type_qualifier_name
918 | cast_modifier MUTEX
919 | qualifier_cast_list cast_modifier type_qualifier_name
920 | qualifier_cast_list cast_modifier MUTEX
921 ;
922
923cast_modifier:
924 '-'
925 | '+'
926 ;
927
928exponential_expression:
929 cast_expression
930 | exponential_expression '\\' cast_expression
931 { $$ = new ExpressionNode( build_binary_val( OperKinds::Exp, $1, $3 ) ); }
932 ;
933
934multiplicative_expression:
935 exponential_expression
936 | multiplicative_expression '*' exponential_expression
937 { $$ = new ExpressionNode( build_binary_val( OperKinds::Mul, $1, $3 ) ); }
938 | multiplicative_expression '/' exponential_expression
939 { $$ = new ExpressionNode( build_binary_val( OperKinds::Div, $1, $3 ) ); }
940 | multiplicative_expression '%' exponential_expression
941 { $$ = new ExpressionNode( build_binary_val( OperKinds::Mod, $1, $3 ) ); }
942 ;
943
944additive_expression:
945 multiplicative_expression
946 | additive_expression '+' multiplicative_expression
947 { $$ = new ExpressionNode( build_binary_val( OperKinds::Plus, $1, $3 ) ); }
948 | additive_expression '-' multiplicative_expression
949 { $$ = new ExpressionNode( build_binary_val( OperKinds::Minus, $1, $3 ) ); }
950 ;
951
952shift_expression:
953 additive_expression
954 | shift_expression LS additive_expression
955 { $$ = new ExpressionNode( build_binary_val( OperKinds::LShift, $1, $3 ) ); }
956 | shift_expression RS additive_expression
957 { $$ = new ExpressionNode( build_binary_val( OperKinds::RShift, $1, $3 ) ); }
958 ;
959
960relational_expression:
961 shift_expression
962 | relational_expression '<' shift_expression
963 { $$ = new ExpressionNode( build_binary_val( OperKinds::LThan, $1, $3 ) ); }
964 | relational_expression '>' shift_expression
965 { $$ = new ExpressionNode( build_binary_val( OperKinds::GThan, $1, $3 ) ); }
966 | relational_expression LE shift_expression
967 { $$ = new ExpressionNode( build_binary_val( OperKinds::LEThan, $1, $3 ) ); }
968 | relational_expression GE shift_expression
969 { $$ = new ExpressionNode( build_binary_val( OperKinds::GEThan, $1, $3 ) ); }
970 ;
971
972equality_expression:
973 relational_expression
974 | equality_expression EQ relational_expression
975 { $$ = new ExpressionNode( build_binary_val( OperKinds::Eq, $1, $3 ) ); }
976 | equality_expression NE relational_expression
977 { $$ = new ExpressionNode( build_binary_val( OperKinds::Neq, $1, $3 ) ); }
978 ;
979
980AND_expression:
981 equality_expression
982 | AND_expression '&' equality_expression
983 { $$ = new ExpressionNode( build_binary_val( OperKinds::BitAnd, $1, $3 ) ); }
984 ;
985
986exclusive_OR_expression:
987 AND_expression
988 | exclusive_OR_expression '^' AND_expression
989 { $$ = new ExpressionNode( build_binary_val( OperKinds::Xor, $1, $3 ) ); }
990 ;
991
992inclusive_OR_expression:
993 exclusive_OR_expression
994 | inclusive_OR_expression '|' exclusive_OR_expression
995 { $$ = new ExpressionNode( build_binary_val( OperKinds::BitOr, $1, $3 ) ); }
996 ;
997
998logical_AND_expression:
999 inclusive_OR_expression
1000 | logical_AND_expression ANDAND inclusive_OR_expression
1001 { $$ = new ExpressionNode( build_and_or( $1, $3, true ) ); }
1002 ;
1003
1004logical_OR_expression:
1005 logical_AND_expression
1006 | logical_OR_expression OROR logical_AND_expression
1007 { $$ = new ExpressionNode( build_and_or( $1, $3, false ) ); }
1008 ;
1009
1010conditional_expression:
1011 logical_OR_expression
1012 | logical_OR_expression '?' comma_expression ':' conditional_expression
1013 { $$ = new ExpressionNode( build_cond( $1, $3, $5 ) ); }
1014 // FIX ME: computes $1 twice
1015 | logical_OR_expression '?' /* empty */ ':' conditional_expression // GCC, omitted first operand
1016 { $$ = new ExpressionNode( build_cond( $1, $1, $4 ) ); }
1017 ;
1018
1019constant_expression:
1020 conditional_expression
1021 ;
1022
1023assignment_expression:
1024 // CFA, assignment is separated from assignment_operator to ensure no assignment operations for tuples
1025 conditional_expression
1026 | unary_expression assignment_operator assignment_expression
1027 {
1028// if ( $2 == OperKinds::AtAssn ) {
1029// SemanticError( yylloc, "C @= assignment is currently unimplemented." ); $$ = nullptr;
1030// } else {
1031 $$ = new ExpressionNode( build_binary_val( $2, $1, $3 ) );
1032// } // if
1033 }
1034 | unary_expression '=' '{' initializer_list_opt comma_opt '}'
1035 { SemanticError( yylloc, "Initializer assignment is currently unimplemented." ); $$ = nullptr; }
1036 ;
1037
1038assignment_expression_opt:
1039 // empty
1040 { $$ = nullptr; }
1041 | assignment_expression
1042 ;
1043
1044assignment_operator:
1045 simple_assignment_operator
1046 | compound_assignment_operator
1047 ;
1048
1049simple_assignment_operator:
1050 '=' { $$ = OperKinds::Assign; }
1051 | ATassign { $$ = OperKinds::AtAssn; } // CFA
1052 ;
1053
1054compound_assignment_operator:
1055 EXPassign { $$ = OperKinds::ExpAssn; }
1056 | MULTassign { $$ = OperKinds::MulAssn; }
1057 | DIVassign { $$ = OperKinds::DivAssn; }
1058 | MODassign { $$ = OperKinds::ModAssn; }
1059 | PLUSassign { $$ = OperKinds::PlusAssn; }
1060 | MINUSassign { $$ = OperKinds::MinusAssn; }
1061 | LSassign { $$ = OperKinds::LSAssn; }
1062 | RSassign { $$ = OperKinds::RSAssn; }
1063 | ANDassign { $$ = OperKinds::AndAssn; }
1064 | ERassign { $$ = OperKinds::ERAssn; }
1065 | ORassign { $$ = OperKinds::OrAssn; }
1066 ;
1067
1068tuple: // CFA, tuple
1069 // CFA, one assignment_expression is factored out of comma_expression to eliminate a shift/reduce conflict with
1070 // comma_expression in cfa_identifier_parameter_array and cfa_abstract_array
1071// '[' ']'
1072// { $$ = new ExpressionNode( build_tuple() ); }
1073// | '[' push assignment_expression pop ']'
1074// { $$ = new ExpressionNode( build_tuple( $3 ) ); }
1075 '[' ',' tuple_expression_list ']'
1076 { $$ = new ExpressionNode( build_tuple( (ExpressionNode *)(new ExpressionNode( nullptr ) )->set_last( $3 ) ) ); }
1077 | '[' push assignment_expression pop ',' tuple_expression_list ']'
1078 { $$ = new ExpressionNode( build_tuple( (ExpressionNode *)($3->set_last( $6 ) ) )); }
1079 ;
1080
1081tuple_expression_list:
1082 assignment_expression
1083 | '@' // CFA
1084 { SemanticError( yylloc, "Eliding tuple element with '@' is currently unimplemented." ); $$ = nullptr; }
1085 | tuple_expression_list ',' assignment_expression
1086 { $$ = (ExpressionNode *)($1->set_last( $3 )); }
1087 | tuple_expression_list ',' '@'
1088 { SemanticError( yylloc, "Eliding tuple element with '@' is currently unimplemented." ); $$ = nullptr; }
1089 ;
1090
1091comma_expression:
1092 assignment_expression
1093 | comma_expression ',' assignment_expression
1094 { $$ = new ExpressionNode( new CommaExpr( maybeMoveBuild<Expression>( $1 ), maybeMoveBuild<Expression>( $3 ) ) ); }
1095 ;
1096
1097comma_expression_opt:
1098 // empty
1099 { $$ = nullptr; }
1100 | comma_expression
1101 ;
1102
1103// ************************** STATEMENTS *******************************
1104
1105statement:
1106 labeled_statement
1107 | compound_statement
1108 | expression_statement
1109 | selection_statement
1110 | iteration_statement
1111 | jump_statement
1112 | with_statement
1113 | mutex_statement
1114 | waitfor_statement
1115 | exception_statement
1116 | enable_disable_statement
1117 { SemanticError( yylloc, "enable/disable statement is currently unimplemented." ); $$ = nullptr; }
1118 | asm_statement
1119 | DIRECTIVE
1120 { $$ = new StatementNode( build_directive( $1 ) ); }
1121 ;
1122
1123labeled_statement:
1124 // labels cannot be identifiers 0 or 1
1125 identifier_or_type_name ':' attribute_list_opt statement
1126 { $$ = $4->add_label( $1, $3 ); }
1127 | identifier_or_type_name ':' attribute_list_opt error // syntax error
1128 {
1129 SemanticError( yylloc, ::toString( "Label \"", *$1.str, "\" must be associated with a statement, "
1130 "where a declaration, case, or default is not a statement. "
1131 "Move the label or terminate with a semi-colon." ) );
1132 $$ = nullptr;
1133 }
1134 ;
1135
1136compound_statement:
1137 '{' '}'
1138 { $$ = new StatementNode( build_compound( (StatementNode *)0 ) ); }
1139 | '{' push
1140 local_label_declaration_opt // GCC, local labels appear at start of block
1141 statement_decl_list // C99, intermix declarations and statements
1142 pop '}'
1143 { $$ = new StatementNode( build_compound( $4 ) ); }
1144 ;
1145
1146statement_decl_list: // C99
1147 statement_decl
1148 | statement_decl_list statement_decl
1149 { assert( $1 ); $1->set_last( $2 ); $$ = $1; }
1150 ;
1151
1152statement_decl:
1153 declaration // CFA, new & old style declarations
1154 { $$ = new StatementNode( $1 ); }
1155 | EXTENSION declaration // GCC
1156 { distExt( $2 ); $$ = new StatementNode( $2 ); }
1157 | function_definition
1158 { $$ = new StatementNode( $1 ); }
1159 | EXTENSION function_definition // GCC
1160 { distExt( $2 ); $$ = new StatementNode( $2 ); }
1161 | statement
1162 ;
1163
1164statement_list_nodecl:
1165 statement
1166 | statement_list_nodecl statement
1167 { assert( $1 ); $1->set_last( $2 ); $$ = $1; }
1168 | statement_list_nodecl error // syntax error
1169 { SemanticError( yylloc, "Declarations only allowed at the start of the switch body, i.e., after the '{'." ); $$ = nullptr; }
1170 ;
1171
1172expression_statement:
1173 comma_expression_opt ';'
1174 { $$ = new StatementNode( build_expr( $1 ) ); }
1175 | MUTEX '(' ')' comma_expression ';'
1176 { $$ = new StatementNode( build_mutex( nullptr, new StatementNode( build_expr( $4 ) ) ) ); }
1177 ;
1178
1179selection_statement:
1180 // pop causes a S/R conflict without separating the IF statement into a non-terminal even after resolving
1181 // the inherent S/R conflict with THEN/ELSE.
1182 push if_statement pop
1183 { $$ = $2; }
1184 | SWITCH '(' comma_expression ')' case_clause
1185 { $$ = new StatementNode( build_switch( true, $3, $5 ) ); }
1186 | SWITCH '(' comma_expression ')' '{' push declaration_list_opt switch_clause_list_opt pop '}' // CFA
1187 {
1188 StatementNode *sw = new StatementNode( build_switch( true, $3, $8 ) );
1189 // The semantics of the declaration list is changed to include associated initialization, which is performed
1190 // *before* the transfer to the appropriate case clause by hoisting the declarations into a compound
1191 // statement around the switch. Statements after the initial declaration list can never be executed, and
1192 // therefore, are removed from the grammar even though C allows it. The change also applies to choose
1193 // statement.
1194 $$ = $7 ? new StatementNode( build_compound( (StatementNode *)((new StatementNode( $7 ))->set_last( sw )) ) ) : sw;
1195 }
1196 | SWITCH '(' comma_expression ')' '{' error '}' // CFA, syntax error
1197 { SemanticError( yylloc, "Only declarations can appear before the list of case clauses." ); $$ = nullptr; }
1198 | CHOOSE '(' comma_expression ')' case_clause // CFA
1199 { $$ = new StatementNode( build_switch( false, $3, $5 ) ); }
1200 | CHOOSE '(' comma_expression ')' '{' push declaration_list_opt switch_clause_list_opt pop '}' // CFA
1201 {
1202 StatementNode *sw = new StatementNode( build_switch( false, $3, $8 ) );
1203 $$ = $7 ? new StatementNode( build_compound( (StatementNode *)((new StatementNode( $7 ))->set_last( sw )) ) ) : sw;
1204 }
1205 | CHOOSE '(' comma_expression ')' '{' error '}' // CFA, syntax error
1206 { SemanticError( yylloc, "Only declarations can appear before the list of case clauses." ); $$ = nullptr; }
1207 ;
1208
1209if_statement:
1210 IF '(' conditional_declaration ')' statement %prec THEN
1211 // explicitly deal with the shift/reduce conflict on if/else
1212 { $$ = new StatementNode( build_if( $3, maybe_build_compound( $5 ), nullptr ) ); }
1213 | IF '(' conditional_declaration ')' statement ELSE statement
1214 { $$ = new StatementNode( build_if( $3, maybe_build_compound( $5 ), maybe_build_compound( $7 ) ) ); }
1215 ;
1216
1217conditional_declaration:
1218 comma_expression
1219 { $$ = new CondCtl( nullptr, $1 ); }
1220 | c_declaration // no semi-colon
1221 { $$ = new CondCtl( $1, nullptr ); }
1222 | cfa_declaration // no semi-colon
1223 { $$ = new CondCtl( $1, nullptr ); }
1224 | declaration comma_expression // semi-colon separated
1225 { $$ = new CondCtl( $1, $2 ); }
1226 ;
1227
1228// CASE and DEFAULT clauses are only allowed in the SWITCH statement, precluding Duff's device. In addition, a case
1229// clause allows a list of values and subranges.
1230
1231case_value: // CFA
1232 constant_expression { $$ = $1; }
1233 | constant_expression ELLIPSIS constant_expression // GCC, subrange
1234 { $$ = new ExpressionNode( new RangeExpr( maybeMoveBuild<Expression>( $1 ), maybeMoveBuild<Expression>( $3 ) ) ); }
1235 | subrange // CFA, subrange
1236 ;
1237
1238case_value_list: // CFA
1239 case_value { $$ = new StatementNode( build_case( $1 ) ); }
1240 // convert case list, e.g., "case 1, 3, 5:" into "case 1: case 3: case 5"
1241 | case_value_list ',' case_value { $$ = (StatementNode *)($1->set_last( new StatementNode( build_case( $3 ) ) ) ); }
1242 ;
1243
1244case_label: // CFA
1245 CASE error // syntax error
1246 { SemanticError( yylloc, "Missing case list after case." ); $$ = nullptr; }
1247 | CASE case_value_list ':' { $$ = $2; }
1248 | CASE case_value_list error // syntax error
1249 { SemanticError( yylloc, "Missing colon after case list." ); $$ = nullptr; }
1250 | DEFAULT ':' { $$ = new StatementNode( build_default() ); }
1251 // A semantic check is required to ensure only one default clause per switch/choose statement.
1252 | DEFAULT error // syntax error
1253 { SemanticError( yylloc, "Missing colon after default." ); $$ = nullptr; }
1254 ;
1255
1256case_label_list: // CFA
1257 case_label
1258 | case_label_list case_label { $$ = (StatementNode *)( $1->set_last( $2 )); }
1259 ;
1260
1261case_clause: // CFA
1262 case_label_list statement { $$ = $1->append_last_case( maybe_build_compound( $2 ) ); }
1263 ;
1264
1265switch_clause_list_opt: // CFA
1266 // empty
1267 { $$ = nullptr; }
1268 | switch_clause_list
1269 ;
1270
1271switch_clause_list: // CFA
1272 case_label_list statement_list_nodecl
1273 { $$ = $1->append_last_case( new StatementNode( build_compound( $2 ) ) ); }
1274 | switch_clause_list case_label_list statement_list_nodecl
1275 { $$ = (StatementNode *)( $1->set_last( $2->append_last_case( new StatementNode( build_compound( $3 ) ) ) ) ); }
1276 ;
1277
1278iteration_statement:
1279 WHILE '(' ')' statement %prec THEN // CFA => while ( 1 )
1280 { $$ = new StatementNode( build_while( new CondCtl( nullptr, NEW_ONE ), maybe_build_compound( $4 ) ) ); }
1281 | WHILE '(' ')' statement ELSE statement // CFA
1282 {
1283 $$ = new StatementNode( build_while( new CondCtl( nullptr, NEW_ONE ), maybe_build_compound( $4 ) ) );
1284 SemanticWarning( yylloc, Warning::SuperfluousElse, "" );
1285 }
1286 | WHILE '(' conditional_declaration ')' statement %prec THEN
1287 { $$ = new StatementNode( build_while( $3, maybe_build_compound( $5 ) ) ); }
1288 | WHILE '(' conditional_declaration ')' statement ELSE statement // CFA
1289 { $$ = new StatementNode( build_while( $3, maybe_build_compound( $5 ), $7 ) ); }
1290 | DO statement WHILE '(' ')' ';' // CFA => do while( 1 )
1291 { $$ = new StatementNode( build_do_while( NEW_ONE, maybe_build_compound( $2 ) ) ); }
1292 | DO statement WHILE '(' ')' ELSE statement // CFA
1293 {
1294 $$ = new StatementNode( build_do_while( NEW_ONE, maybe_build_compound( $2 ) ) );
1295 SemanticWarning( yylloc, Warning::SuperfluousElse, "" );
1296 }
1297 | DO statement WHILE '(' comma_expression ')' ';'
1298 { $$ = new StatementNode( build_do_while( $5, maybe_build_compound( $2 ) ) ); }
1299 | DO statement WHILE '(' comma_expression ')' ELSE statement // CFA
1300 { $$ = new StatementNode( build_do_while( $5, maybe_build_compound( $2 ), $8 ) ); }
1301 | FOR '(' ')' statement %prec THEN // CFA => for ( ;; )
1302 { $$ = new StatementNode( build_for( new ForCtrl( (ExpressionNode * )nullptr, (ExpressionNode * )nullptr, (ExpressionNode * )nullptr ), maybe_build_compound( $4 ) ) ); }
1303 | FOR '(' ')' statement ELSE statement // CFA
1304 {
1305 $$ = new StatementNode( build_for( new ForCtrl( (ExpressionNode * )nullptr, (ExpressionNode * )nullptr, (ExpressionNode * )nullptr ), maybe_build_compound( $4 ) ) );
1306 SemanticWarning( yylloc, Warning::SuperfluousElse, "" );
1307 }
1308 | FOR '(' for_control_expression_list ')' statement %prec THEN
1309 { $$ = new StatementNode( build_for( $3, maybe_build_compound( $5 ) ) ); }
1310 | FOR '(' for_control_expression_list ')' statement ELSE statement // CFA
1311 { $$ = new StatementNode( build_for( $3, maybe_build_compound( $5 ), $7 ) ); }
1312 ;
1313
1314for_control_expression_list:
1315 for_control_expression
1316 | for_control_expression_list ':' for_control_expression
1317 // ForCtrl + ForCtrl:
1318 // init + init => multiple declaration statements that are hoisted
1319 // condition + condition => (expression) && (expression)
1320 // change + change => (expression), (expression)
1321 {
1322 $1->init->set_last( $3->init );
1323 if ( $1->condition ) {
1324 if ( $3->condition ) {
1325 $1->condition->expr.reset( new LogicalExpr( $1->condition->expr.release(), $3->condition->expr.release(), true ) );
1326 } // if
1327 } else $1->condition = $3->condition;
1328 if ( $1->change ) {
1329 if ( $3->change ) {
1330 $1->change->expr.reset( new CommaExpr( $1->change->expr.release(), $3->change->expr.release() ) );
1331 } // if
1332 } else $1->change = $3->change;
1333 $$ = $1;
1334 }
1335 ;
1336
1337for_control_expression:
1338 ';' comma_expression_opt ';' comma_expression_opt
1339 { $$ = new ForCtrl( (ExpressionNode * )nullptr, $2, $4 ); }
1340 | comma_expression ';' comma_expression_opt ';' comma_expression_opt
1341 { $$ = new ForCtrl( $1, $3, $5 ); }
1342 | declaration comma_expression_opt ';' comma_expression_opt // C99, declaration has ';'
1343 { $$ = new ForCtrl( $1, $2, $4 ); }
1344
1345 | '@' ';' comma_expression // CFA, empty loop-index
1346 { $$ = new ForCtrl( (ExpressionNode *)nullptr, $3, nullptr ); }
1347 | '@' ';' comma_expression ';' comma_expression // CFA, empty loop-index
1348 { $$ = new ForCtrl( (ExpressionNode *)nullptr, $3, $5 ); }
1349
1350 | comma_expression // CFA, anonymous loop-index
1351 { $$ = forCtrl( $1, new string( DeclarationNode::anonymous.newName() ), NEW_ZERO, OperKinds::LThan, $1->clone(), NEW_ONE ); }
1352 | downupdowneq comma_expression // CFA, anonymous loop-index
1353 { $$ = forCtrl( $2, new string( DeclarationNode::anonymous.newName() ), UPDOWN( $1, NEW_ZERO, $2->clone() ), $1, UPDOWN( $1, $2->clone(), NEW_ZERO ), NEW_ONE ); }
1354
1355 | comma_expression updowneq comma_expression // CFA, anonymous loop-index
1356 { $$ = forCtrl( $1, new string( DeclarationNode::anonymous.newName() ), UPDOWN( $2, $1->clone(), $3 ), $2, UPDOWN( $2, $3->clone(), $1->clone() ), NEW_ONE ); }
1357 | '@' updowneq comma_expression // CFA, anonymous loop-index
1358 {
1359 if ( $2 == OperKinds::LThan || $2 == OperKinds::LEThan ) { SemanticError( yylloc, MISSING_LOW ); $$ = nullptr; }
1360 else $$ = forCtrl( $3, new string( DeclarationNode::anonymous.newName() ), $3->clone(), $2, nullptr, NEW_ONE );
1361 }
1362 | comma_expression updowneq '@' // CFA, anonymous loop-index
1363 {
1364 if ( $2 == OperKinds::LThan || $2 == OperKinds::LEThan ) { SemanticError( yylloc, MISSING_ANON_FIELD ); $$ = nullptr; }
1365 else { SemanticError( yylloc, MISSING_HIGH ); $$ = nullptr; }
1366 }
1367 | comma_expression updowneq comma_expression '~' comma_expression // CFA, anonymous loop-index
1368 { $$ = forCtrl( $1, new string( DeclarationNode::anonymous.newName() ), UPDOWN( $2, $1->clone(), $3 ), $2, UPDOWN( $2, $3->clone(), $1->clone() ), $5 ); }
1369 | '@' updowneq comma_expression '~' comma_expression // CFA, anonymous loop-index
1370 {
1371 if ( $2 == OperKinds::LThan || $2 == OperKinds::LEThan ) { SemanticError( yylloc, MISSING_LOW ); $$ = nullptr; }
1372 else $$ = forCtrl( $3, new string( DeclarationNode::anonymous.newName() ), $3->clone(), $2, nullptr, $5 );
1373 }
1374 | comma_expression updowneq '@' '~' comma_expression // CFA, anonymous loop-index
1375 {
1376 if ( $2 == OperKinds::LThan || $2 == OperKinds::LEThan ) { SemanticError( yylloc, MISSING_ANON_FIELD ); $$ = nullptr; }
1377 else { SemanticError( yylloc, MISSING_HIGH ); $$ = nullptr; }
1378 }
1379 | comma_expression updowneq comma_expression '~' '@' // CFA, error
1380 { SemanticError( yylloc, MISSING_ANON_FIELD ); $$ = nullptr; }
1381 | '@' updowneq '@' // CFA, error
1382 { SemanticError( yylloc, MISSING_ANON_FIELD ); $$ = nullptr; }
1383 | '@' updowneq comma_expression '~' '@' // CFA, error
1384 { SemanticError( yylloc, MISSING_ANON_FIELD ); $$ = nullptr; }
1385 | comma_expression updowneq '@' '~' '@' // CFA, error
1386 { SemanticError( yylloc, MISSING_ANON_FIELD ); $$ = nullptr; }
1387 | '@' updowneq '@' '~' '@' // CFA, error
1388 { SemanticError( yylloc, MISSING_ANON_FIELD ); $$ = nullptr; }
1389
1390 | comma_expression ';' comma_expression // CFA
1391 { $$ = forCtrl( $3, $1, NEW_ZERO, OperKinds::LThan, $3->clone(), NEW_ONE ); }
1392 | comma_expression ';' downupdowneq comma_expression // CFA
1393 { $$ = forCtrl( $4, $1, UPDOWN( $3, NEW_ZERO, $4->clone() ), $3, UPDOWN( $3, $4->clone(), NEW_ZERO ), NEW_ONE ); }
1394
1395 | comma_expression ';' comma_expression updowneq comma_expression // CFA
1396 { $$ = forCtrl( $3, $1, UPDOWN( $4, $3->clone(), $5 ), $4, UPDOWN( $4, $5->clone(), $3->clone() ), NEW_ONE ); }
1397 | comma_expression ';' '@' updowneq comma_expression // CFA
1398 {
1399 if ( $4 == OperKinds::LThan || $4 == OperKinds::LEThan ) { SemanticError( yylloc, MISSING_LOW ); $$ = nullptr; }
1400 else $$ = forCtrl( $5, $1, $5->clone(), $4, nullptr, NEW_ONE );
1401 }
1402 | comma_expression ';' comma_expression updowneq '@' // CFA
1403 {
1404 if ( $4 == OperKinds::GThan || $4 == OperKinds::GEThan ) { SemanticError( yylloc, MISSING_HIGH ); $$ = nullptr; }
1405 else if ( $4 == OperKinds::LEThan ) { SemanticError( yylloc, "Equality with missing high value is meaningless. Use \"~\"." ); $$ = nullptr; }
1406 else $$ = forCtrl( $3, $1, $3->clone(), $4, nullptr, NEW_ONE );
1407 }
1408 | comma_expression ';' '@' updowneq '@' // CFA, error
1409 { SemanticError( yylloc, "Missing low/high value for up/down-to range so index is uninitialized." ); $$ = nullptr; }
1410
1411 | comma_expression ';' comma_expression updowneq comma_expression '~' comma_expression // CFA
1412 { $$ = forCtrl( $3, $1, UPDOWN( $4, $3->clone(), $5 ), $4, UPDOWN( $4, $5->clone(), $3->clone() ), $7 ); }
1413 | comma_expression ';' '@' updowneq comma_expression '~' comma_expression // CFA, error
1414 {
1415 if ( $4 == OperKinds::LThan || $4 == OperKinds::LEThan ) { SemanticError( yylloc, MISSING_LOW ); $$ = nullptr; }
1416 else $$ = forCtrl( $5, $1, $5->clone(), $4, nullptr, $7 );
1417 }
1418 | comma_expression ';' comma_expression updowneq '@' '~' comma_expression // CFA
1419 {
1420 if ( $4 == OperKinds::GThan || $4 == OperKinds::GEThan ) { SemanticError( yylloc, MISSING_HIGH ); $$ = nullptr; }
1421 else if ( $4 == OperKinds::LEThan ) { SemanticError( yylloc, "Equality with missing high value is meaningless. Use \"~\"." ); $$ = nullptr; }
1422 else $$ = forCtrl( $3, $1, $3->clone(), $4, nullptr, $7 );
1423 }
1424 | comma_expression ';' comma_expression updowneq comma_expression '~' '@' // CFA
1425 { $$ = forCtrl( $3, $1, UPDOWN( $4, $3->clone(), $5 ), $4, UPDOWN( $4, $5->clone(), $3->clone() ), nullptr ); }
1426 | comma_expression ';' '@' updowneq comma_expression '~' '@' // CFA, error
1427 {
1428 if ( $4 == OperKinds::LThan || $4 == OperKinds::LEThan ) { SemanticError( yylloc, MISSING_LOW ); $$ = nullptr; }
1429 else $$ = forCtrl( $5, $1, $5->clone(), $4, nullptr, nullptr );
1430 }
1431 | comma_expression ';' comma_expression updowneq '@' '~' '@' // CFA
1432 {
1433 if ( $4 == OperKinds::GThan || $4 == OperKinds::GEThan ) { SemanticError( yylloc, MISSING_HIGH ); $$ = nullptr; }
1434 else if ( $4 == OperKinds::LEThan ) { SemanticError( yylloc, "Equality with missing high value is meaningless. Use \"~\"." ); $$ = nullptr; }
1435 else $$ = forCtrl( $3, $1, $3->clone(), $4, nullptr, nullptr );
1436 }
1437 | comma_expression ';' '@' updowneq '@' '~' '@' // CFA
1438 { SemanticError( yylloc, "Missing low/high value for up/down-to range so index is uninitialized." ); $$ = nullptr; }
1439
1440 | declaration comma_expression // CFA
1441 { $$ = forCtrl( $1, NEW_ZERO, OperKinds::LThan, $2, NEW_ONE ); }
1442 | declaration downupdowneq comma_expression // CFA
1443 { $$ = forCtrl( $1, UPDOWN( $2, NEW_ZERO, $3 ), $2, UPDOWN( $2, $3->clone(), NEW_ZERO ), NEW_ONE ); }
1444
1445 | declaration comma_expression updowneq comma_expression // CFA
1446 { $$ = forCtrl( $1, UPDOWN( $3, $2->clone(), $4 ), $3, UPDOWN( $3, $4->clone(), $2->clone() ), NEW_ONE ); }
1447 | declaration '@' updowneq comma_expression // CFA
1448 {
1449 if ( $3 == OperKinds::LThan || $3 == OperKinds::LEThan ) { SemanticError( yylloc, MISSING_LOW ); $$ = nullptr; }
1450 else $$ = forCtrl( $1, $4, $3, nullptr, NEW_ONE );
1451 }
1452 | declaration comma_expression updowneq '@' // CFA
1453 {
1454 if ( $3 == OperKinds::GThan || $3 == OperKinds::GEThan ) { SemanticError( yylloc, MISSING_HIGH ); $$ = nullptr; }
1455 else if ( $3 == OperKinds::LEThan ) { SemanticError( yylloc, "Equality with missing high value is meaningless. Use \"~\"." ); $$ = nullptr; }
1456 else $$ = forCtrl( $1, $2, $3, nullptr, NEW_ONE );
1457 }
1458
1459 | declaration comma_expression updowneq comma_expression '~' comma_expression // CFA
1460 { $$ = forCtrl( $1, UPDOWN( $3, $2, $4 ), $3, UPDOWN( $3, $4->clone(), $2->clone() ), $6 ); }
1461 | declaration '@' updowneq comma_expression '~' comma_expression // CFA
1462 {
1463 if ( $3 == OperKinds::LThan || $3 == OperKinds::LEThan ) { SemanticError( yylloc, MISSING_LOW ); $$ = nullptr; }
1464 else $$ = forCtrl( $1, $4, $3, nullptr, $6 );
1465 }
1466 | declaration comma_expression updowneq '@' '~' comma_expression // CFA
1467 {
1468 if ( $3 == OperKinds::GThan || $3 == OperKinds::GEThan ) { SemanticError( yylloc, MISSING_HIGH ); $$ = nullptr; }
1469 else if ( $3 == OperKinds::LEThan ) { SemanticError( yylloc, "Equality with missing high value is meaningless. Use \"~\"." ); $$ = nullptr; }
1470 else $$ = forCtrl( $1, $2, $3, nullptr, $6 );
1471 }
1472 | declaration comma_expression updowneq comma_expression '~' '@' // CFA
1473 { $$ = forCtrl( $1, UPDOWN( $3, $2, $4 ), $3, UPDOWN( $3, $4->clone(), $2->clone() ), nullptr ); }
1474 | declaration '@' updowneq comma_expression '~' '@' // CFA
1475 {
1476 if ( $3 == OperKinds::LThan || $3 == OperKinds::LEThan ) { SemanticError( yylloc, MISSING_LOW ); $$ = nullptr; }
1477 else $$ = forCtrl( $1, $4, $3, nullptr, nullptr );
1478 }
1479 | declaration comma_expression updowneq '@' '~' '@' // CFA
1480 {
1481 if ( $3 == OperKinds::GThan || $3 == OperKinds::GEThan ) { SemanticError( yylloc, MISSING_HIGH ); $$ = nullptr; }
1482 else if ( $3 == OperKinds::LEThan ) { SemanticError( yylloc, "Equality with missing high value is meaningless. Use \"~\"." ); $$ = nullptr; }
1483 else $$ = forCtrl( $1, $2, $3, nullptr, nullptr );
1484 }
1485 | declaration '@' updowneq '@' '~' '@' // CFA, error
1486 { SemanticError( yylloc, "Missing low/high value for up/down-to range so index is uninitialized." ); $$ = nullptr; }
1487
1488 | comma_expression ';' TYPEDEFname // CFA, array type
1489 {
1490 SemanticError( yylloc, "Type iterator is currently unimplemented." ); $$ = nullptr;
1491 //$$ = forCtrl( new ExpressionNode( build_varref( $3 ) ), $1, nullptr, OperKinds::Range, nullptr, nullptr );
1492 }
1493 | comma_expression ';' downupdowneq TYPEDEFname // CFA, array type
1494 {
1495 if ( $3 == OperKinds::LEThan || $3 == OperKinds::GEThan ) { SemanticError( yylloc, "All enumation ranges are equal (all values). Remove \"=~\"." ); $$ = nullptr; }
1496 SemanticError( yylloc, "Type iterator is currently unimplemented." ); $$ = nullptr;
1497 }
1498 ;
1499
1500downupdowneq:
1501 ErangeDown
1502 { $$ = OperKinds::GThan; }
1503 | ErangeUpEq
1504 { $$ = OperKinds::LEThan; }
1505 | ErangeDownEq
1506 { $$ = OperKinds::GEThan; }
1507 ;
1508
1509updown:
1510 '~'
1511 { $$ = OperKinds::LThan; }
1512 | ErangeDown
1513 { $$ = OperKinds::GThan; }
1514 ;
1515
1516updowneq:
1517 updown
1518 | ErangeUpEq
1519 { $$ = OperKinds::LEThan; }
1520 | ErangeDownEq
1521 { $$ = OperKinds::GEThan; }
1522 ;
1523
1524jump_statement:
1525 GOTO identifier_or_type_name ';'
1526 { $$ = new StatementNode( build_branch( $2, BranchStmt::Goto ) ); }
1527 | GOTO '*' comma_expression ';' // GCC, computed goto
1528 // The syntax for the GCC computed goto violates normal expression precedence, e.g., goto *i+3; => goto *(i+3);
1529 // whereas normal operator precedence yields goto (*i)+3;
1530 { $$ = new StatementNode( build_computedgoto( $3 ) ); }
1531 // A semantic check is required to ensure fallthru appears only in the body of a choose statement.
1532 | fall_through_name ';' // CFA
1533 { $$ = new StatementNode( build_branch( BranchStmt::FallThrough ) ); }
1534 | fall_through_name identifier_or_type_name ';' // CFA
1535 { $$ = new StatementNode( build_branch( $2, BranchStmt::FallThrough ) ); }
1536 | fall_through_name DEFAULT ';' // CFA
1537 { $$ = new StatementNode( build_branch( BranchStmt::FallThroughDefault ) ); }
1538 | CONTINUE ';'
1539 // A semantic check is required to ensure this statement appears only in the body of an iteration statement.
1540 { $$ = new StatementNode( build_branch( BranchStmt::Continue ) ); }
1541 | CONTINUE identifier_or_type_name ';' // CFA, multi-level continue
1542 // A semantic check is required to ensure this statement appears only in the body of an iteration statement, and
1543 // the target of the transfer appears only at the start of an iteration statement.
1544 { $$ = new StatementNode( build_branch( $2, BranchStmt::Continue ) ); }
1545 | BREAK ';'
1546 // A semantic check is required to ensure this statement appears only in the body of an iteration statement.
1547 { $$ = new StatementNode( build_branch( BranchStmt::Break ) ); }
1548 | BREAK identifier_or_type_name ';' // CFA, multi-level exit
1549 // A semantic check is required to ensure this statement appears only in the body of an iteration statement, and
1550 // the target of the transfer appears only at the start of an iteration statement.
1551 { $$ = new StatementNode( build_branch( $2, BranchStmt::Break ) ); }
1552 | RETURN comma_expression_opt ';'
1553 { $$ = new StatementNode( build_return( $2 ) ); }
1554 | RETURN '{' initializer_list_opt comma_opt '}' ';'
1555 { SemanticError( yylloc, "Initializer return is currently unimplemented." ); $$ = nullptr; }
1556 | SUSPEND ';'
1557 { $$ = new StatementNode( build_suspend( nullptr ) ); }
1558 | SUSPEND compound_statement
1559 { $$ = new StatementNode( build_suspend( $2 ) ); }
1560 | SUSPEND COROUTINE ';'
1561 { $$ = new StatementNode( build_suspend( nullptr, SuspendStmt::Coroutine ) ); }
1562 | SUSPEND COROUTINE compound_statement
1563 { $$ = new StatementNode( build_suspend( $3, SuspendStmt::Coroutine ) ); }
1564 | SUSPEND GENERATOR ';'
1565 { $$ = new StatementNode( build_suspend( nullptr, SuspendStmt::Generator ) ); }
1566 | SUSPEND GENERATOR compound_statement
1567 { $$ = new StatementNode( build_suspend( $3, SuspendStmt::Generator ) ); }
1568 | THROW assignment_expression_opt ';' // handles rethrow
1569 { $$ = new StatementNode( build_throw( $2 ) ); }
1570 | THROWRESUME assignment_expression_opt ';' // handles reresume
1571 { $$ = new StatementNode( build_resume( $2 ) ); }
1572 | THROWRESUME assignment_expression_opt AT assignment_expression ';' // handles reresume
1573 { $$ = new StatementNode( build_resume_at( $2, $4 ) ); }
1574 ;
1575
1576fall_through_name: // CFA
1577 FALLTHRU
1578 | FALLTHROUGH
1579 ;
1580
1581with_statement:
1582 WITH '(' tuple_expression_list ')' statement
1583 { $$ = new StatementNode( build_with( $3, $5 ) ); }
1584 ;
1585
1586// If MUTEX becomes a general qualifier, there are shift/reduce conflicts, so change syntax to "with mutex".
1587mutex_statement:
1588 MUTEX '(' argument_expression_list ')' statement
1589 { $$ = new StatementNode( build_mutex( $3, $5 ) ); }
1590 ;
1591
1592when_clause:
1593 WHEN '(' comma_expression ')' { $$ = $3; }
1594 ;
1595
1596when_clause_opt:
1597 // empty
1598 { $$ = nullptr; }
1599 | when_clause
1600 ;
1601
1602waitfor:
1603 WAITFOR '(' cast_expression ')'
1604 { $$ = $3; }
1605// | WAITFOR '(' cast_expression ',' argument_expression_list_opt ')'
1606// { $$ = (ExpressionNode *)$3->set_last( $5 ); }
1607 | WAITFOR '(' cast_expression_list ':' argument_expression_list_opt ')'
1608 { $$ = (ExpressionNode *)($3->set_last( $5 )); }
1609 ;
1610
1611cast_expression_list:
1612 cast_expression
1613 | cast_expression_list ',' cast_expression
1614 // { $$ = (ExpressionNode *)($1->set_last( $3 )); }
1615 { SemanticError( yylloc, "List of mutex member is currently unimplemented." ); $$ = nullptr; }
1616 ;
1617
1618timeout:
1619 TIMEOUT '(' comma_expression ')' { $$ = $3; }
1620 ;
1621
1622waitfor_clause:
1623 when_clause_opt waitfor statement %prec THEN
1624 { $$ = build_waitfor( $2, maybe_build_compound( $3 ), $1 ); }
1625 | when_clause_opt waitfor statement WOR waitfor_clause
1626 { $$ = build_waitfor( $2, maybe_build_compound( $3 ), $1, $5 ); }
1627 | when_clause_opt timeout statement %prec THEN
1628 { $$ = build_waitfor_timeout( $2, maybe_build_compound( $3 ), $1 ); }
1629 | when_clause_opt ELSE statement
1630 { $$ = build_waitfor_timeout( nullptr, maybe_build_compound( $3 ), $1 ); }
1631 // "else" must be conditional after timeout or timeout is never triggered (i.e., it is meaningless)
1632 | when_clause_opt timeout statement WOR ELSE statement // syntax error
1633 { SemanticError( yylloc, "else clause must be conditional after timeout or timeout never triggered." ); $$ = nullptr; }
1634 | when_clause_opt timeout statement WOR when_clause ELSE statement
1635 { $$ = build_waitfor_timeout( $2, maybe_build_compound( $3 ), $1, maybe_build_compound( $7 ), $5 ); }
1636 ;
1637
1638waitfor_statement:
1639 when_clause_opt waitfor statement %prec THEN
1640 { $$ = new StatementNode( build_waitfor( $2, $3, $1 ) ); }
1641 | when_clause_opt waitfor statement WOR waitfor_clause
1642 { $$ = new StatementNode( build_waitfor( $2, $3, $1, $5 ) ); }
1643 ;
1644
1645exception_statement:
1646 TRY compound_statement handler_clause %prec THEN
1647 { $$ = new StatementNode( build_try( $2, $3, nullptr ) ); }
1648 | TRY compound_statement finally_clause
1649 { $$ = new StatementNode( build_try( $2, nullptr, $3 ) ); }
1650 | TRY compound_statement handler_clause finally_clause
1651 { $$ = new StatementNode( build_try( $2, $3, $4 ) ); }
1652 ;
1653
1654handler_clause:
1655 handler_key '(' push exception_declaration pop handler_predicate_opt ')' compound_statement
1656 { $$ = new StatementNode( build_catch( $1, $4, $6, $8 ) ); }
1657 | handler_clause handler_key '(' push exception_declaration pop handler_predicate_opt ')' compound_statement
1658 { $$ = (StatementNode *)$1->set_last( new StatementNode( build_catch( $2, $5, $7, $9 ) ) ); }
1659 ;
1660
1661handler_predicate_opt:
1662 // empty
1663 { $$ = nullptr; }
1664 | ';' conditional_expression { $$ = $2; }
1665 ;
1666
1667handler_key:
1668 CATCH { $$ = CatchStmt::Terminate; }
1669 | RECOVER { $$ = CatchStmt::Terminate; }
1670 | CATCHRESUME { $$ = CatchStmt::Resume; }
1671 | FIXUP { $$ = CatchStmt::Resume; }
1672 ;
1673
1674finally_clause:
1675 FINALLY compound_statement { $$ = new StatementNode( build_finally( $2 ) ); }
1676 ;
1677
1678exception_declaration:
1679 // No SUE declaration in parameter list.
1680 type_specifier_nobody
1681 | type_specifier_nobody declarator
1682 { $$ = $2->addType( $1 ); }
1683 | type_specifier_nobody variable_abstract_declarator
1684 { $$ = $2->addType( $1 ); }
1685 | cfa_abstract_declarator_tuple identifier // CFA
1686 { $$ = $1->addName( $2 ); }
1687 | cfa_abstract_declarator_tuple // CFA
1688 ;
1689
1690enable_disable_statement:
1691 enable_disable_key identifier_list compound_statement
1692 ;
1693
1694enable_disable_key:
1695 ENABLE
1696 | DISABLE
1697 ;
1698
1699asm_statement:
1700 ASM asm_volatile_opt '(' string_literal ')' ';'
1701 { $$ = new StatementNode( build_asm( $2, $4, nullptr ) ); }
1702 | ASM asm_volatile_opt '(' string_literal ':' asm_operands_opt ')' ';' // remaining GCC
1703 { $$ = new StatementNode( build_asm( $2, $4, $6 ) ); }
1704 | ASM asm_volatile_opt '(' string_literal ':' asm_operands_opt ':' asm_operands_opt ')' ';'
1705 { $$ = new StatementNode( build_asm( $2, $4, $6, $8 ) ); }
1706 | ASM asm_volatile_opt '(' string_literal ':' asm_operands_opt ':' asm_operands_opt ':' asm_clobbers_list_opt ')' ';'
1707 { $$ = new StatementNode( build_asm( $2, $4, $6, $8, $10 ) ); }
1708 | ASM asm_volatile_opt GOTO '(' string_literal ':' ':' asm_operands_opt ':' asm_clobbers_list_opt ':' label_list ')' ';'
1709 { $$ = new StatementNode( build_asm( $2, $5, nullptr, $8, $10, $12 ) ); }
1710 ;
1711
1712asm_volatile_opt: // GCC
1713 // empty
1714 { $$ = false; }
1715 | VOLATILE
1716 { $$ = true; }
1717 ;
1718
1719asm_operands_opt: // GCC
1720 // empty
1721 { $$ = nullptr; } // use default argument
1722 | asm_operands_list
1723 ;
1724
1725asm_operands_list: // GCC
1726 asm_operand
1727 | asm_operands_list ',' asm_operand
1728 { $$ = (ExpressionNode *)($1->set_last( $3 )); }
1729 ;
1730
1731asm_operand: // GCC
1732 string_literal '(' constant_expression ')'
1733 { $$ = new ExpressionNode( new AsmExpr( nullptr, $1, maybeMoveBuild<Expression>( $3 ) ) ); }
1734 | '[' IDENTIFIER ']' string_literal '(' constant_expression ')'
1735 { $$ = new ExpressionNode( new AsmExpr( $2, $4, maybeMoveBuild<Expression>( $6 ) ) ); }
1736 ;
1737
1738asm_clobbers_list_opt: // GCC
1739 // empty
1740 { $$ = nullptr; } // use default argument
1741 | string_literal
1742 { $$ = new ExpressionNode( $1 ); }
1743 | asm_clobbers_list_opt ',' string_literal
1744 { $$ = (ExpressionNode *)($1->set_last( new ExpressionNode( $3 ) )); }
1745 ;
1746
1747label_list:
1748 identifier
1749 {
1750 $$ = new LabelNode(); $$->labels.push_back( *$1 );
1751 delete $1; // allocated by lexer
1752 }
1753 | label_list ',' identifier
1754 {
1755 $$ = $1; $1->labels.push_back( *$3 );
1756 delete $3; // allocated by lexer
1757 }
1758 ;
1759
1760// ****************************** DECLARATIONS *********************************
1761
1762declaration_list_opt: // used at beginning of switch statement
1763 // empty
1764 { $$ = nullptr; }
1765 | declaration_list
1766 ;
1767
1768declaration_list:
1769 declaration
1770 | declaration_list declaration
1771 { $$ = $1->appendList( $2 ); }
1772 ;
1773
1774KR_parameter_list_opt: // used to declare parameter types in K&R style functions
1775 // empty
1776 { $$ = nullptr; }
1777 | KR_parameter_list
1778 ;
1779
1780KR_parameter_list:
1781 push c_declaration pop ';'
1782 { $$ = $2; }
1783 | KR_parameter_list push c_declaration pop ';'
1784 { $$ = $1->appendList( $3 ); }
1785 ;
1786
1787local_label_declaration_opt: // GCC, local label
1788 // empty
1789 | local_label_declaration_list
1790 ;
1791
1792local_label_declaration_list: // GCC, local label
1793 LABEL local_label_list ';'
1794 | local_label_declaration_list LABEL local_label_list ';'
1795 ;
1796
1797local_label_list: // GCC, local label
1798 identifier_or_type_name
1799 | local_label_list ',' identifier_or_type_name
1800 ;
1801
1802declaration: // old & new style declarations
1803 c_declaration ';'
1804 {
1805 // printf( "C_DECLARATION1 %p %s\n", $$, $$->name ? $$->name->c_str() : "(nil)" );
1806 // for ( Attribute * attr: reverseIterate( $$->attributes ) ) {
1807 // printf( "\tattr %s\n", attr->name.c_str() );
1808 // } // for
1809 }
1810 | cfa_declaration ';' // CFA
1811 | static_assert // C11
1812 ;
1813
1814static_assert:
1815 STATICASSERT '(' constant_expression ',' string_literal ')' ';' // C11
1816 { $$ = DeclarationNode::newStaticAssert( $3, $5 ); }
1817 | STATICASSERT '(' constant_expression ')' ';' // CFA
1818 { $$ = DeclarationNode::newStaticAssert( $3, build_constantStr( *new string( "\"\"" ) ) ); }
1819
1820// C declaration syntax is notoriously confusing and error prone. Cforall provides its own type, variable and function
1821// declarations. CFA declarations use the same declaration tokens as in C; however, CFA places declaration modifiers to
1822// the left of the base type, while C declarations place modifiers to the right of the base type. CFA declaration
1823// modifiers are interpreted from left to right and the entire type specification is distributed across all variables in
1824// the declaration list (as in Pascal). ANSI C and the new CFA declarations may appear together in the same program
1825// block, but cannot be mixed within a specific declaration.
1826//
1827// CFA C
1828// [10] int x; int x[10]; // array of 10 integers
1829// [10] * char y; char *y[10]; // array of 10 pointers to char
1830
1831cfa_declaration: // CFA
1832 cfa_variable_declaration
1833 | cfa_typedef_declaration
1834 | cfa_function_declaration
1835 | type_declaring_list
1836 { SemanticError( yylloc, "otype declaration is currently unimplemented." ); $$ = nullptr; }
1837 | trait_specifier
1838 ;
1839
1840cfa_variable_declaration: // CFA
1841 cfa_variable_specifier initializer_opt
1842 { $$ = $1->addInitializer( $2 ); }
1843 | declaration_qualifier_list cfa_variable_specifier initializer_opt
1844 // declaration_qualifier_list also includes type_qualifier_list, so a semantic check is necessary to preclude
1845 // them as a type_qualifier cannot appear in that context.
1846 { $$ = $2->addQualifiers( $1 )->addInitializer( $3 ); }
1847 | cfa_variable_declaration pop ',' push identifier_or_type_name initializer_opt
1848 { $$ = $1->appendList( $1->cloneType( $5 )->addInitializer( $6 ) ); }
1849 ;
1850
1851cfa_variable_specifier: // CFA
1852 // A semantic check is required to ensure asm_name only appears on declarations with implicit or explicit static
1853 // storage-class
1854 cfa_abstract_declarator_no_tuple identifier_or_type_name asm_name_opt
1855 { $$ = $1->addName( $2 )->addAsmName( $3 ); }
1856 | cfa_abstract_tuple identifier_or_type_name asm_name_opt
1857 { $$ = $1->addName( $2 )->addAsmName( $3 ); }
1858 | type_qualifier_list cfa_abstract_tuple identifier_or_type_name asm_name_opt
1859 { $$ = $2->addQualifiers( $1 )->addName( $3 )->addAsmName( $4 ); }
1860 ;
1861
1862cfa_function_declaration: // CFA
1863 cfa_function_specifier
1864 | type_qualifier_list cfa_function_specifier
1865 { $$ = $2->addQualifiers( $1 ); }
1866 | declaration_qualifier_list cfa_function_specifier
1867 { $$ = $2->addQualifiers( $1 ); }
1868 | declaration_qualifier_list type_qualifier_list cfa_function_specifier
1869 { $$ = $3->addQualifiers( $1 )->addQualifiers( $2 ); }
1870 | cfa_function_declaration ',' identifier_or_type_name '(' push cfa_parameter_ellipsis_list_opt pop ')'
1871 {
1872 // Append the return type at the start (left-hand-side) to each identifier in the list.
1873 DeclarationNode * ret = new DeclarationNode;
1874 ret->type = maybeClone( $1->type->base );
1875 $$ = $1->appendList( DeclarationNode::newFunction( $3, ret, $6, nullptr ) );
1876 }
1877 ;
1878
1879cfa_function_specifier: // CFA
1880// '[' ']' identifier_or_type_name '(' push cfa_parameter_ellipsis_list_opt pop ')' // S/R conflict
1881// {
1882// $$ = DeclarationNode::newFunction( $3, DeclarationNode::newTuple( 0 ), $6, nullptr, true );
1883// }
1884// '[' ']' identifier '(' push cfa_parameter_ellipsis_list_opt pop ')'
1885// {
1886// typedefTable.setNextIdentifier( *$5 );
1887// $$ = DeclarationNode::newFunction( $5, DeclarationNode::newTuple( 0 ), $8, nullptr, true );
1888// }
1889// | '[' ']' TYPEDEFname '(' push cfa_parameter_ellipsis_list_opt pop ')'
1890// {
1891// typedefTable.setNextIdentifier( *$5 );
1892// $$ = DeclarationNode::newFunction( $5, DeclarationNode::newTuple( 0 ), $8, nullptr, true );
1893// }
1894// | '[' ']' typegen_name
1895 // identifier_or_type_name must be broken apart because of the sequence:
1896 //
1897 // '[' ']' identifier_or_type_name '(' cfa_parameter_ellipsis_list_opt ')'
1898 // '[' ']' type_specifier
1899 //
1900 // type_specifier can resolve to just TYPEDEFname (e.g., typedef int T; int f( T );). Therefore this must be
1901 // flattened to allow lookahead to the '(' without having to reduce identifier_or_type_name.
1902 cfa_abstract_tuple identifier_or_type_name '(' push cfa_parameter_ellipsis_list_opt pop ')' attribute_list_opt
1903 // To obtain LR(1 ), this rule must be factored out from function return type (see cfa_abstract_declarator).
1904 { $$ = DeclarationNode::newFunction( $2, $1, $5, nullptr )->addQualifiers( $8 ); }
1905 | cfa_function_return identifier_or_type_name '(' push cfa_parameter_ellipsis_list_opt pop ')' attribute_list_opt
1906 { $$ = DeclarationNode::newFunction( $2, $1, $5, nullptr )->addQualifiers( $8 ); }
1907 ;
1908
1909cfa_function_return: // CFA
1910 '[' push cfa_parameter_list pop ']'
1911 { $$ = DeclarationNode::newTuple( $3 ); }
1912 | '[' push cfa_parameter_list pop ',' push cfa_abstract_parameter_list pop ']'
1913 // To obtain LR(1 ), the last cfa_abstract_parameter_list is added into this flattened rule to lookahead to the ']'.
1914 { $$ = DeclarationNode::newTuple( $3->appendList( $7 ) ); }
1915 ;
1916
1917cfa_typedef_declaration: // CFA
1918 TYPEDEF cfa_variable_specifier
1919 {
1920 typedefTable.addToEnclosingScope( *$2->name, TYPEDEFname, "1" );
1921 $$ = $2->addTypedef();
1922 }
1923 | TYPEDEF cfa_function_specifier
1924 {
1925 typedefTable.addToEnclosingScope( *$2->name, TYPEDEFname, "2" );
1926 $$ = $2->addTypedef();
1927 }
1928 | cfa_typedef_declaration pop ',' push identifier
1929 {
1930 typedefTable.addToEnclosingScope( *$5, TYPEDEFname, "3" );
1931 $$ = $1->appendList( $1->cloneType( $5 ) );
1932 }
1933 ;
1934
1935// Traditionally typedef is part of storage-class specifier for syntactic convenience only. Here, it is factored out as
1936// a separate form of declaration, which syntactically precludes storage-class specifiers and initialization.
1937
1938typedef_declaration:
1939 TYPEDEF type_specifier declarator
1940 {
1941 // if type_specifier is an anon aggregate => name
1942 typedefTable.addToEnclosingScope( *$3->name, TYPEDEFname, "4" );
1943 $$ = $3->addType( $2 )->addTypedef();
1944 }
1945 | typedef_declaration pop ',' push declarator
1946 {
1947 typedefTable.addToEnclosingScope( *$5->name, TYPEDEFname, "5" );
1948 $$ = $1->appendList( $1->cloneBaseType( $5 )->addTypedef() );
1949 }
1950 | type_qualifier_list TYPEDEF type_specifier declarator // remaining OBSOLESCENT (see 2 )
1951 {
1952 typedefTable.addToEnclosingScope( *$4->name, TYPEDEFname, "6" );
1953 $$ = $4->addQualifiers( $1 )->addType( $3 )->addTypedef();
1954 }
1955 | type_specifier TYPEDEF declarator
1956 {
1957 typedefTable.addToEnclosingScope( *$3->name, TYPEDEFname, "7" );
1958 $$ = $3->addType( $1 )->addTypedef();
1959 }
1960 | type_specifier TYPEDEF type_qualifier_list declarator
1961 {
1962 typedefTable.addToEnclosingScope( *$4->name, TYPEDEFname, "8" );
1963 $$ = $4->addQualifiers( $1 )->addType( $1 )->addTypedef();
1964 }
1965 ;
1966
1967typedef_expression:
1968 // deprecated GCC, naming expression type: typedef name = exp; gives a name to the type of an expression
1969 TYPEDEF identifier '=' assignment_expression
1970 {
1971 SemanticError( yylloc, "Typedef expression is deprecated, use typeof(...) instead." ); $$ = nullptr;
1972 }
1973 | typedef_expression pop ',' push identifier '=' assignment_expression
1974 {
1975 SemanticError( yylloc, "Typedef expression is deprecated, use typeof(...) instead." ); $$ = nullptr;
1976 }
1977 ;
1978
1979c_declaration:
1980 declaration_specifier declaring_list
1981 { $$ = distAttr( $1, $2 ); }
1982 | typedef_declaration
1983 | typedef_expression // deprecated GCC, naming expression type
1984 | sue_declaration_specifier
1985 {
1986 assert( $1->type );
1987 if ( $1->type->qualifiers.val != 0 ) {
1988 SemanticError( yylloc, "Useless type qualifier in empty declaration." ); $$ = nullptr;
1989 }
1990 }
1991 ;
1992
1993declaring_list:
1994 // A semantic check is required to ensure asm_name only appears on declarations with implicit or explicit static
1995 // storage-class
1996 declarator asm_name_opt initializer_opt
1997 { $$ = $1->addAsmName( $2 )->addInitializer( $3 ); }
1998 | declaring_list ',' attribute_list_opt declarator asm_name_opt initializer_opt
1999 { $$ = $1->appendList( $4->addQualifiers( $3 )->addAsmName( $5 )->addInitializer( $6 ) ); }
2000 ;
2001
2002declaration_specifier: // type specifier + storage class
2003 basic_declaration_specifier
2004 | type_declaration_specifier
2005 | sue_declaration_specifier
2006 | sue_declaration_specifier invalid_types
2007 {
2008 SemanticError( yylloc,
2009 ::toString( "Missing ';' after end of ",
2010 $1->type->enumeration.name ? "enum" : AggregateDecl::aggrString( $1->type->aggregate.kind ),
2011 " declaration" ) );
2012 $$ = nullptr;
2013 }
2014 ;
2015
2016invalid_types:
2017 aggregate_key
2018 | basic_type_name
2019 | indirect_type
2020 ;
2021
2022declaration_specifier_nobody: // type specifier + storage class - {...}
2023 // Preclude SUE declarations in restricted scopes:
2024 //
2025 // int f( struct S { int i; } s1, Struct S s2 ) { struct S s3; ... }
2026 //
2027 // because it is impossible to call f due to name equivalence.
2028 basic_declaration_specifier
2029 | sue_declaration_specifier_nobody
2030 | type_declaration_specifier
2031 ;
2032
2033type_specifier: // type specifier
2034 basic_type_specifier
2035 | sue_type_specifier
2036 {
2037 // printf( "sue_type_specifier2 %p %s\n", $$, $$->type->aggregate.name ? $$->type->aggregate.name->c_str() : "(nil)" );
2038 // for ( Attribute * attr: reverseIterate( $$->attributes ) ) {
2039 // printf( "\tattr %s\n", attr->name.c_str() );
2040 // } // for
2041 }
2042 | type_type_specifier
2043 ;
2044
2045type_specifier_nobody: // type specifier - {...}
2046 // Preclude SUE declarations in restricted scopes:
2047 //
2048 // int f( struct S { int i; } s1, Struct S s2 ) { struct S s3; ... }
2049 //
2050 // because it is impossible to call f due to name equivalence.
2051 basic_type_specifier
2052 | sue_type_specifier_nobody
2053 | type_type_specifier
2054 ;
2055
2056type_qualifier_list_opt: // GCC, used in asm_statement
2057 // empty
2058 { $$ = nullptr; }
2059 | type_qualifier_list
2060 ;
2061
2062type_qualifier_list:
2063 // A semantic check is necessary to ensure a type qualifier is appropriate for the kind of declaration.
2064 //
2065 // ISO/IEC 9899:1999 Section 6.7.3(4 ) : If the same qualifier appears more than once in the same
2066 // specifier-qualifier-list, either directly or via one or more typedefs, the behavior is the same as if it
2067 // appeared only once.
2068 type_qualifier
2069 | type_qualifier_list type_qualifier
2070 { $$ = $1->addQualifiers( $2 ); }
2071 ;
2072
2073type_qualifier:
2074 type_qualifier_name
2075 | attribute // trick handles most atrribute locations
2076 ;
2077
2078type_qualifier_name:
2079 CONST
2080 { $$ = DeclarationNode::newTypeQualifier( Type::Const ); }
2081 | RESTRICT
2082 { $$ = DeclarationNode::newTypeQualifier( Type::Restrict ); }
2083 | VOLATILE
2084 { $$ = DeclarationNode::newTypeQualifier( Type::Volatile ); }
2085 | ATOMIC
2086 { $$ = DeclarationNode::newTypeQualifier( Type::Atomic ); }
2087 | forall
2088 { $$ = DeclarationNode::newForall( $1 ); }
2089 ;
2090
2091forall:
2092 FORALL '(' type_parameter_list ')' // CFA
2093 { $$ = $3; }
2094 ;
2095
2096declaration_qualifier_list:
2097 storage_class_list
2098 | type_qualifier_list storage_class_list // remaining OBSOLESCENT (see 2 )
2099 { $$ = $1->addQualifiers( $2 ); }
2100 | declaration_qualifier_list type_qualifier_list storage_class_list
2101 { $$ = $1->addQualifiers( $2 )->addQualifiers( $3 ); }
2102 ;
2103
2104storage_class_list:
2105 // A semantic check is necessary to ensure a storage class is appropriate for the kind of declaration and that
2106 // only one of each is specified, except for inline, which can appear with the others.
2107 //
2108 // ISO/IEC 9899:1999 Section 6.7.1(2) : At most, one storage-class specifier may be given in the declaration
2109 // specifiers in a declaration.
2110 storage_class
2111 | storage_class_list storage_class
2112 { $$ = $1->addQualifiers( $2 ); }
2113 ;
2114
2115storage_class:
2116 EXTERN
2117 { $$ = DeclarationNode::newStorageClass( Type::Extern ); }
2118 | STATIC
2119 { $$ = DeclarationNode::newStorageClass( Type::Static ); }
2120 | AUTO
2121 { $$ = DeclarationNode::newStorageClass( Type::Auto ); }
2122 | REGISTER
2123 { $$ = DeclarationNode::newStorageClass( Type::Register ); }
2124 | THREADLOCALGCC // GCC
2125 { $$ = DeclarationNode::newStorageClass( Type::ThreadlocalGcc ); }
2126 | THREADLOCALC11 // C11
2127 { $$ = DeclarationNode::newStorageClass( Type::ThreadlocalC11 ); }
2128 // Put function specifiers here to simplify parsing rules, but separate them semantically.
2129 | INLINE // C99
2130 { $$ = DeclarationNode::newFuncSpecifier( Type::Inline ); }
2131 | FORTRAN // C99
2132 { $$ = DeclarationNode::newFuncSpecifier( Type::Fortran ); }
2133 | NORETURN // C11
2134 { $$ = DeclarationNode::newFuncSpecifier( Type::Noreturn ); }
2135 ;
2136
2137basic_type_name:
2138 VOID
2139 { $$ = DeclarationNode::newBasicType( DeclarationNode::Void ); }
2140 | BOOL // C99
2141 { $$ = DeclarationNode::newBasicType( DeclarationNode::Bool ); }
2142 | CHAR
2143 { $$ = DeclarationNode::newBasicType( DeclarationNode::Char ); }
2144 | INT
2145 { $$ = DeclarationNode::newBasicType( DeclarationNode::Int ); }
2146 | INT128
2147 { $$ = DeclarationNode::newBasicType( DeclarationNode::Int128 ); }
2148 | UINT128
2149 { $$ = DeclarationNode::newBasicType( DeclarationNode::Int128 )->addType( DeclarationNode::newSignedNess( DeclarationNode::Unsigned ) ); }
2150 | FLOAT
2151 { $$ = DeclarationNode::newBasicType( DeclarationNode::Float ); }
2152 | DOUBLE
2153 { $$ = DeclarationNode::newBasicType( DeclarationNode::Double ); }
2154 | uuFLOAT80
2155 { $$ = DeclarationNode::newBasicType( DeclarationNode::uuFloat80 ); }
2156 | uuFLOAT128
2157 { $$ = DeclarationNode::newBasicType( DeclarationNode::uuFloat128 ); }
2158 | uFLOAT16
2159 { $$ = DeclarationNode::newBasicType( DeclarationNode::uFloat16 ); }
2160 | uFLOAT32
2161 { $$ = DeclarationNode::newBasicType( DeclarationNode::uFloat32 ); }
2162 | uFLOAT32X
2163 { $$ = DeclarationNode::newBasicType( DeclarationNode::uFloat32x ); }
2164 | uFLOAT64
2165 { $$ = DeclarationNode::newBasicType( DeclarationNode::uFloat64 ); }
2166 | uFLOAT64X
2167 { $$ = DeclarationNode::newBasicType( DeclarationNode::uFloat64x ); }
2168 | uFLOAT128
2169 { $$ = DeclarationNode::newBasicType( DeclarationNode::uFloat128 ); }
2170 | DECIMAL32
2171 { SemanticError( yylloc, "_Decimal32 is currently unimplemented." ); $$ = nullptr; }
2172 | DECIMAL64
2173 { SemanticError( yylloc, "_Decimal64 is currently unimplemented." ); $$ = nullptr; }
2174 | DECIMAL128
2175 { SemanticError( yylloc, "_Decimal128 is currently unimplemented." ); $$ = nullptr; }
2176 | COMPLEX // C99
2177 { $$ = DeclarationNode::newComplexType( DeclarationNode::Complex ); }
2178 | IMAGINARY // C99
2179 { $$ = DeclarationNode::newComplexType( DeclarationNode::Imaginary ); }
2180 | SIGNED
2181 { $$ = DeclarationNode::newSignedNess( DeclarationNode::Signed ); }
2182 | UNSIGNED
2183 { $$ = DeclarationNode::newSignedNess( DeclarationNode::Unsigned ); }
2184 | SHORT
2185 { $$ = DeclarationNode::newLength( DeclarationNode::Short ); }
2186 | LONG
2187 { $$ = DeclarationNode::newLength( DeclarationNode::Long ); }
2188 | VA_LIST // GCC, __builtin_va_list
2189 { $$ = DeclarationNode::newBuiltinType( DeclarationNode::Valist ); }
2190 | AUTO_TYPE
2191 { $$ = DeclarationNode::newBuiltinType( DeclarationNode::AutoType ); }
2192 | vtable
2193 ;
2194
2195vtable_opt:
2196 // empty
2197 { $$ = nullptr; }
2198 | vtable
2199 ;
2200
2201vtable:
2202 VTABLE '(' type_name ')' default_opt
2203 { $$ = DeclarationNode::newVtableType( $3 ); }
2204 // { SemanticError( yylloc, "vtable is currently unimplemented." ); $$ = nullptr; }
2205 ;
2206
2207default_opt:
2208 // empty
2209 { $$ = nullptr; }
2210 | DEFAULT
2211 { SemanticError( yylloc, "vtable default is currently unimplemented." ); $$ = nullptr; }
2212 ;
2213
2214basic_declaration_specifier:
2215 // A semantic check is necessary for conflicting storage classes.
2216 basic_type_specifier
2217 | declaration_qualifier_list basic_type_specifier
2218 { $$ = $2->addQualifiers( $1 ); }
2219 | basic_declaration_specifier storage_class // remaining OBSOLESCENT (see 2)
2220 { $$ = $1->addQualifiers( $2 ); }
2221 | basic_declaration_specifier storage_class type_qualifier_list
2222 { $$ = $1->addQualifiers( $2 )->addQualifiers( $3 ); }
2223 | basic_declaration_specifier storage_class basic_type_specifier
2224 { $$ = $3->addQualifiers( $2 )->addType( $1 ); }
2225 ;
2226
2227basic_type_specifier:
2228 direct_type
2229 // Cannot have type modifiers, e.g., short, long, etc.
2230 | type_qualifier_list_opt indirect_type type_qualifier_list_opt
2231 { $$ = $2->addQualifiers( $1 )->addQualifiers( $3 ); }
2232 ;
2233
2234direct_type:
2235 basic_type_name
2236 | type_qualifier_list basic_type_name
2237 { $$ = $2->addQualifiers( $1 ); }
2238 | direct_type type_qualifier
2239 { $$ = $1->addQualifiers( $2 ); }
2240 | direct_type basic_type_name
2241 { $$ = $1->addType( $2 ); }
2242 ;
2243
2244indirect_type:
2245 TYPEOF '(' type ')' // GCC: typeof( x ) y;
2246 { $$ = $3; }
2247 | TYPEOF '(' comma_expression ')' // GCC: typeof( a+b ) y;
2248 { $$ = DeclarationNode::newTypeof( $3 ); }
2249 | BASETYPEOF '(' type ')' // CFA: basetypeof( x ) y;
2250 { $$ = DeclarationNode::newTypeof( new ExpressionNode( new TypeExpr( maybeMoveBuildType( $3 ) ) ), true ); }
2251 | BASETYPEOF '(' comma_expression ')' // CFA: basetypeof( a+b ) y;
2252 { $$ = DeclarationNode::newTypeof( $3, true ); }
2253 | ZERO_T // CFA
2254 { $$ = DeclarationNode::newBuiltinType( DeclarationNode::Zero ); }
2255 | ONE_T // CFA
2256 { $$ = DeclarationNode::newBuiltinType( DeclarationNode::One ); }
2257 ;
2258
2259sue_declaration_specifier: // struct, union, enum + storage class + type specifier
2260 sue_type_specifier
2261 {
2262 // printf( "sue_declaration_specifier %p %s\n", $$, $$->type->aggregate.name ? $$->type->aggregate.name->c_str() : "(nil)" );
2263 // for ( Attribute * attr: reverseIterate( $$->attributes ) ) {
2264 // printf( "\tattr %s\n", attr->name.c_str() );
2265 // } // for
2266 }
2267 | declaration_qualifier_list sue_type_specifier
2268 { $$ = $2->addQualifiers( $1 ); }
2269 | sue_declaration_specifier storage_class // remaining OBSOLESCENT (see 2)
2270 { $$ = $1->addQualifiers( $2 ); }
2271 | sue_declaration_specifier storage_class type_qualifier_list
2272 { $$ = $1->addQualifiers( $2 )->addQualifiers( $3 ); }
2273 ;
2274
2275sue_type_specifier: // struct, union, enum + type specifier
2276 elaborated_type
2277 {
2278 // printf( "sue_type_specifier %p %s\n", $$, $$->type->aggregate.name ? $$->type->aggregate.name->c_str() : "(nil)" );
2279 // for ( Attribute * attr: reverseIterate( $$->attributes ) ) {
2280 // printf( "\tattr %s\n", attr->name.c_str() );
2281 // } // for
2282 }
2283 | type_qualifier_list
2284 { if ( $1->type != nullptr && $1->type->forall ) forall = true; } // remember generic type
2285 elaborated_type
2286 { $$ = $3->addQualifiers( $1 ); }
2287 | sue_type_specifier type_qualifier
2288 {
2289 if ( $2->type != nullptr && $2->type->forall ) forall = true; // remember generic type
2290 $$ = $1->addQualifiers( $2 );
2291 }
2292 ;
2293
2294sue_declaration_specifier_nobody: // struct, union, enum - {...} + storage class + type specifier
2295 sue_type_specifier_nobody
2296 | declaration_qualifier_list sue_type_specifier_nobody
2297 { $$ = $2->addQualifiers( $1 ); }
2298 | sue_declaration_specifier_nobody storage_class // remaining OBSOLESCENT (see 2)
2299 { $$ = $1->addQualifiers( $2 ); }
2300 | sue_declaration_specifier_nobody storage_class type_qualifier_list
2301 { $$ = $1->addQualifiers( $2 )->addQualifiers( $3 ); }
2302 ;
2303
2304sue_type_specifier_nobody: // struct, union, enum - {...} + type specifier
2305 elaborated_type_nobody
2306 | type_qualifier_list elaborated_type_nobody
2307 { $$ = $2->addQualifiers( $1 ); }
2308 | sue_type_specifier_nobody type_qualifier
2309 { $$ = $1->addQualifiers( $2 ); }
2310 ;
2311
2312type_declaration_specifier:
2313 type_type_specifier
2314 | declaration_qualifier_list type_type_specifier
2315 { $$ = $2->addQualifiers( $1 ); }
2316 | type_declaration_specifier storage_class // remaining OBSOLESCENT (see 2)
2317 { $$ = $1->addQualifiers( $2 ); }
2318 | type_declaration_specifier storage_class type_qualifier_list
2319 { $$ = $1->addQualifiers( $2 )->addQualifiers( $3 ); }
2320 ;
2321
2322type_type_specifier: // typedef types
2323 type_name
2324 | type_qualifier_list type_name
2325 { $$ = $2->addQualifiers( $1 ); }
2326 | type_type_specifier type_qualifier
2327 { $$ = $1->addQualifiers( $2 ); }
2328 ;
2329
2330type_name:
2331 TYPEDEFname
2332 { $$ = DeclarationNode::newFromTypedef( $1 ); }
2333 | '.' TYPEDEFname
2334 { $$ = DeclarationNode::newQualifiedType( DeclarationNode::newFromGlobalScope(), DeclarationNode::newFromTypedef( $2 ) ); }
2335 | type_name '.' TYPEDEFname
2336 { $$ = DeclarationNode::newQualifiedType( $1, DeclarationNode::newFromTypedef( $3 ) ); }
2337 | typegen_name
2338 | '.' typegen_name
2339 { $$ = DeclarationNode::newQualifiedType( DeclarationNode::newFromGlobalScope(), $2 ); }
2340 | type_name '.' typegen_name
2341 { $$ = DeclarationNode::newQualifiedType( $1, $3 ); }
2342 ;
2343
2344typegen_name: // CFA
2345 TYPEGENname
2346 { $$ = DeclarationNode::newFromTypeGen( $1, nullptr ); }
2347 | TYPEGENname '(' ')'
2348 { $$ = DeclarationNode::newFromTypeGen( $1, nullptr ); }
2349 | TYPEGENname '(' type_list ')'
2350 { $$ = DeclarationNode::newFromTypeGen( $1, $3 ); }
2351 ;
2352
2353elaborated_type: // struct, union, enum
2354 aggregate_type
2355 {
2356 // printf( "elaborated_type %p %s\n", $$, $$->type->aggregate.name ? $$->type->aggregate.name->c_str() : "(nil)" );
2357 // for ( Attribute * attr: reverseIterate( $$->attributes ) ) {
2358 // printf( "\tattr %s\n", attr->name.c_str() );
2359 // } // for
2360 }
2361 | enum_type
2362 ;
2363
2364elaborated_type_nobody: // struct, union, enum - {...}
2365 aggregate_type_nobody
2366 | enum_type_nobody
2367 ;
2368
2369aggregate_type: // struct, union
2370 aggregate_key attribute_list_opt
2371 { forall = false; } // reset
2372 '{' field_declaration_list_opt '}' type_parameters_opt
2373 { $$ = DeclarationNode::newAggregate( $1, nullptr, $7, $5, true )->addQualifiers( $2 ); }
2374 | aggregate_key attribute_list_opt identifier
2375 {
2376 typedefTable.makeTypedef( *$3, forall || typedefTable.getEnclForall() ? TYPEGENname : TYPEDEFname ); // create typedef
2377 forall = false; // reset
2378 }
2379 '{' field_declaration_list_opt '}' type_parameters_opt
2380 {
2381 // printf( "aggregate_type1 %s\n", $3.str->c_str() );
2382 // if ( $2 )
2383 // for ( Attribute * attr: reverseIterate( $2->attributes ) ) {
2384 // printf( "copySpecifiers12 %s\n", attr->name.c_str() );
2385 // } // for
2386 $$ = DeclarationNode::newAggregate( $1, $3, $8, $6, true )->addQualifiers( $2 );
2387 // printf( "aggregate_type2 %p %s\n", $$, $$->type->aggregate.name ? $$->type->aggregate.name->c_str() : "(nil)" );
2388 // for ( Attribute * attr: reverseIterate( $$->attributes ) ) {
2389 // printf( "aggregate_type3 %s\n", attr->name.c_str() );
2390 // } // for
2391 }
2392 | aggregate_key attribute_list_opt TYPEDEFname // unqualified type name
2393 {
2394 typedefTable.makeTypedef( *$3, forall || typedefTable.getEnclForall() ? TYPEGENname : TYPEDEFname ); // create typedef
2395 forall = false; // reset
2396 }
2397 '{' field_declaration_list_opt '}' type_parameters_opt
2398 {
2399 // printf( "AGG3\n" );
2400 DeclarationNode::newFromTypedef( $3 );
2401 $$ = DeclarationNode::newAggregate( $1, $3, $8, $6, true )->addQualifiers( $2 );
2402 }
2403 | aggregate_key attribute_list_opt TYPEGENname // unqualified type name
2404 {
2405 typedefTable.makeTypedef( *$3, forall || typedefTable.getEnclForall() ? TYPEGENname : TYPEDEFname ); // create typedef
2406 forall = false; // reset
2407 }
2408 '{' field_declaration_list_opt '}' type_parameters_opt
2409 {
2410 // printf( "AGG4\n" );
2411 DeclarationNode::newFromTypeGen( $3, nullptr );
2412 $$ = DeclarationNode::newAggregate( $1, $3, $8, $6, true )->addQualifiers( $2 );
2413 }
2414 | aggregate_type_nobody
2415 ;
2416
2417type_parameters_opt:
2418 // empty
2419 { $$ = nullptr; } %prec '}'
2420 | '(' type_list ')'
2421 { $$ = $2; }
2422 ;
2423
2424aggregate_type_nobody: // struct, union - {...}
2425 aggregate_key attribute_list_opt identifier
2426 {
2427 typedefTable.makeTypedef( *$3, forall || typedefTable.getEnclForall() ? TYPEGENname : TYPEDEFname );
2428 forall = false; // reset
2429 $$ = DeclarationNode::newAggregate( $1, $3, nullptr, nullptr, false )->addQualifiers( $2 );
2430 }
2431 | aggregate_key attribute_list_opt type_name
2432 {
2433 forall = false; // reset
2434 // Create new generic declaration with same name as previous forward declaration, where the IDENTIFIER is
2435 // switched to a TYPEGENname. Link any generic arguments from typegen_name to new generic declaration and
2436 // delete newFromTypeGen.
2437 $$ = DeclarationNode::newAggregate( $1, $3->type->symbolic.name, $3->type->symbolic.actuals, nullptr, false )->addQualifiers( $2 );
2438 $3->type->symbolic.name = nullptr;
2439 $3->type->symbolic.actuals = nullptr;
2440 delete $3;
2441 }
2442 ;
2443
2444aggregate_key:
2445 aggregate_data
2446 | aggregate_control
2447 ;
2448
2449aggregate_data:
2450 STRUCT vtable_opt
2451 { $$ = AggregateDecl::Struct; }
2452 | UNION
2453 { $$ = AggregateDecl::Union; }
2454 | EXCEPTION // CFA
2455 { $$ = AggregateDecl::Exception; }
2456 // { SemanticError( yylloc, "exception aggregate is currently unimplemented." ); $$ = AggregateDecl::NoAggregate; }
2457 ;
2458
2459aggregate_control: // CFA
2460 MONITOR
2461 { $$ = AggregateDecl::Monitor; }
2462 | MUTEX STRUCT
2463 { $$ = AggregateDecl::Monitor; }
2464 | GENERATOR
2465 { $$ = AggregateDecl::Generator; }
2466 | MUTEX GENERATOR
2467 { SemanticError( yylloc, "monitor generator is currently unimplemented." ); $$ = AggregateDecl::NoAggregate; }
2468 | COROUTINE
2469 { $$ = AggregateDecl::Coroutine; }
2470 | MUTEX COROUTINE
2471 { SemanticError( yylloc, "monitor coroutine is currently unimplemented." ); $$ = AggregateDecl::NoAggregate; }
2472 | THREAD
2473 { $$ = AggregateDecl::Thread; }
2474 | MUTEX THREAD
2475 { SemanticError( yylloc, "monitor thread is currently unimplemented." ); $$ = AggregateDecl::NoAggregate; }
2476 ;
2477
2478field_declaration_list_opt:
2479 // empty
2480 { $$ = nullptr; }
2481 | field_declaration_list_opt field_declaration
2482 { $$ = $1 ? $1->appendList( $2 ) : $2; }
2483 ;
2484
2485field_declaration:
2486 type_specifier field_declaring_list_opt ';'
2487 {
2488 // printf( "type_specifier1 %p %s\n", $$, $$->type->aggregate.name ? $$->type->aggregate.name->c_str() : "(nil)" );
2489 $$ = fieldDecl( $1, $2 );
2490 // printf( "type_specifier2 %p %s\n", $$, $$->type->aggregate.name ? $$->type->aggregate.name->c_str() : "(nil)" );
2491 // for ( Attribute * attr: reverseIterate( $$->attributes ) ) {
2492 // printf( "\tattr %s\n", attr->name.c_str() );
2493 // } // for
2494 }
2495 | EXTENSION type_specifier field_declaring_list_opt ';' // GCC
2496 { $$ = fieldDecl( $2, $3 ); distExt( $$ ); }
2497 | STATIC type_specifier field_declaring_list_opt ';' // CFA
2498 { SemanticError( yylloc, "STATIC aggregate field qualifier currently unimplemented." ); $$ = nullptr; }
2499 | INLINE type_specifier field_abstract_list_opt ';' // CFA
2500 {
2501 if ( ! $3 ) { // field declarator ?
2502 $3 = DeclarationNode::newName( nullptr );
2503 } // if
2504 $3->inLine = true;
2505 $$ = distAttr( $2, $3 ); // mark all fields in list
2506 distInl( $3 );
2507 }
2508 | INLINE aggregate_control ';' // CFA
2509 { SemanticError( yylloc, "INLINE aggregate control currently unimplemented." ); $$ = nullptr; }
2510 | typedef_declaration ';' // CFA
2511 | cfa_field_declaring_list ';' // CFA, new style field declaration
2512 | EXTENSION cfa_field_declaring_list ';' // GCC
2513 { distExt( $2 ); $$ = $2; } // mark all fields in list
2514 | INLINE cfa_field_abstract_list ';' // CFA, new style field declaration
2515 { $$ = $2; } // mark all fields in list
2516 | cfa_typedef_declaration ';' // CFA
2517 | static_assert // C11
2518 ;
2519
2520field_declaring_list_opt:
2521 // empty
2522 { $$ = nullptr; }
2523 | field_declarator
2524 | field_declaring_list_opt ',' attribute_list_opt field_declarator
2525 { $$ = $1->appendList( $4->addQualifiers( $3 ) ); }
2526 ;
2527
2528field_declarator:
2529 bit_subrange_size // C special case, no field name
2530 { $$ = DeclarationNode::newBitfield( $1 ); }
2531 | variable_declarator bit_subrange_size_opt
2532 // A semantic check is required to ensure bit_subrange only appears on integral types.
2533 { $$ = $1->addBitfield( $2 ); }
2534 | variable_type_redeclarator bit_subrange_size_opt
2535 // A semantic check is required to ensure bit_subrange only appears on integral types.
2536 { $$ = $1->addBitfield( $2 ); }
2537 ;
2538
2539field_abstract_list_opt:
2540 // empty
2541 { $$ = nullptr; }
2542 | field_abstract
2543 | field_abstract_list_opt ',' attribute_list_opt field_abstract
2544 { $$ = $1->appendList( $4->addQualifiers( $3 ) ); }
2545 ;
2546
2547field_abstract:
2548 // no bit fields
2549 variable_abstract_declarator
2550 ;
2551
2552cfa_field_declaring_list: // CFA, new style field declaration
2553 // bit-fields are handled by C declarations
2554 cfa_abstract_declarator_tuple identifier_or_type_name
2555 { $$ = $1->addName( $2 ); }
2556 | cfa_field_declaring_list ',' identifier_or_type_name
2557 { $$ = $1->appendList( $1->cloneType( $3 ) ); }
2558 ;
2559
2560cfa_field_abstract_list: // CFA, new style field declaration
2561 // bit-fields are handled by C declarations
2562 cfa_abstract_declarator_tuple
2563 | cfa_field_abstract_list ','
2564 { $$ = $1->appendList( $1->cloneType( 0 ) ); }
2565 ;
2566
2567bit_subrange_size_opt:
2568 // empty
2569 { $$ = nullptr; }
2570 | bit_subrange_size
2571 ;
2572
2573bit_subrange_size:
2574 ':' assignment_expression
2575 { $$ = $2; }
2576 ;
2577
2578enum_type:
2579 ENUM attribute_list_opt '{' enumerator_list comma_opt '}'
2580 { $$ = DeclarationNode::newEnum( nullptr, $4, true, false )->addQualifiers( $2 ); }
2581 | ENUM attribute_list_opt identifier
2582 { typedefTable.makeTypedef( *$3 ); }
2583 hide_opt '{' enumerator_list comma_opt '}'
2584 { $$ = DeclarationNode::newEnum( $3, $7, true, false, nullptr, $5 )->addQualifiers( $2 ); }
2585 | ENUM attribute_list_opt typedef_name // unqualified type name
2586 hide_opt '{' enumerator_list comma_opt '}'
2587 { $$ = DeclarationNode::newEnum( $3->name, $6, true, false, nullptr, $4 )->addQualifiers( $2 ); }
2588 | ENUM '(' cfa_abstract_parameter_declaration ')' attribute_list_opt '{' enumerator_list comma_opt '}'
2589 {
2590 if ( $3->storageClasses.val != 0 || $3->type->qualifiers.val != 0 )
2591 { SemanticError( yylloc, "storage-class and CV qualifiers are not meaningful for enumeration constants, which are const." ); }
2592
2593 $$ = DeclarationNode::newEnum( nullptr, $7, true, true, $3 )->addQualifiers( $5 );
2594 }
2595 | ENUM '(' ')' attribute_list_opt '{' enumerator_list comma_opt '}'
2596 {
2597 $$ = DeclarationNode::newEnum( nullptr, $6, true, true )->addQualifiers( $4 );
2598 }
2599 | ENUM '(' cfa_abstract_parameter_declaration ')' attribute_list_opt identifier attribute_list_opt
2600 {
2601 if ( $3->storageClasses.val != 0 || $3->type->qualifiers.val != 0 ) { SemanticError( yylloc, "storage-class and CV qualifiers are not meaningful for enumeration constants, which are const." ); }
2602 typedefTable.makeTypedef( *$6 );
2603 }
2604 hide_opt '{' enumerator_list comma_opt '}'
2605 {
2606 $$ = DeclarationNode::newEnum( $6, $11, true, true, $3, $9 )->addQualifiers( $5 )->addQualifiers( $7 );
2607 }
2608 | ENUM '(' ')' attribute_list_opt identifier attribute_list_opt
2609 hide_opt '{' enumerator_list comma_opt '}'
2610 {
2611 $$ = DeclarationNode::newEnum( $5, $9, true, true, nullptr, $7 )->addQualifiers( $4 )->addQualifiers( $6 );
2612 }
2613 | ENUM '(' cfa_abstract_parameter_declaration ')' attribute_list_opt typedef_name attribute_list_opt
2614 hide_opt '{' enumerator_list comma_opt '}'
2615 {
2616 $$ = DeclarationNode::newEnum( $6->name, $10, true, true, $3, $8 )->addQualifiers( $5 )->addQualifiers( $7 );
2617 }
2618 | ENUM '(' ')' attribute_list_opt typedef_name attribute_list_opt
2619 hide_opt '{' enumerator_list comma_opt '}'
2620 {
2621 $$ = DeclarationNode::newEnum( $5->name, $9, true, true, nullptr, $7 )->addQualifiers( $4 )->addQualifiers( $6 );
2622 }
2623 | enum_type_nobody
2624 ;
2625
2626hide_opt:
2627 // empty
2628 { $$ = EnumHiding::Visible; }
2629 | '!'
2630 { $$ = EnumHiding::Hide; }
2631 ;
2632
2633enum_type_nobody: // enum - {...}
2634 ENUM attribute_list_opt identifier
2635 { typedefTable.makeTypedef( *$3 ); $$ = DeclarationNode::newEnum( $3, nullptr, false, false )->addQualifiers( $2 ); }
2636 | ENUM attribute_list_opt type_name
2637 { typedefTable.makeTypedef( *$3->type->symbolic.name ); $$ = DeclarationNode::newEnum( $3->type->symbolic.name, nullptr, false, false )->addQualifiers( $2 ); }
2638 ;
2639
2640enumerator_list:
2641 visible_hide_opt identifier_or_type_name enumerator_value_opt
2642 { $$ = DeclarationNode::newEnumValueGeneric( $2, $3 ); }
2643 | INLINE type_name
2644 { $$ = DeclarationNode::newEnumInLine( *$2->type->symbolic.name ); }
2645 | enumerator_list ',' visible_hide_opt identifier_or_type_name enumerator_value_opt
2646 { $$ = $1->appendList( DeclarationNode::newEnumValueGeneric( $4, $5 ) ); }
2647 | enumerator_list ',' INLINE type_name enumerator_value_opt
2648 { $$ = $1->appendList( DeclarationNode::newEnumValueGeneric( new string("inline"), nullptr ) ); }
2649 ;
2650
2651visible_hide_opt:
2652 hide_opt
2653 | '^'
2654 { $$ = EnumHiding::Visible; }
2655 ;
2656
2657enumerator_value_opt:
2658 // empty
2659 { $$ = nullptr; }
2660 | '=' constant_expression { $$ = new InitializerNode( $2 ); }
2661 | '=' '{' initializer_list_opt comma_opt '}' { $$ = new InitializerNode( $3, true ); }
2662 // | simple_assignment_operator initializer
2663 // { $$ = $1 == OperKinds::Assign ? $2 : $2->set_maybeConstructed( false ); }
2664 ;
2665
2666cfa_parameter_ellipsis_list_opt: // CFA, abstract + real
2667 // empty
2668 { $$ = DeclarationNode::newBasicType( DeclarationNode::Void ); }
2669 | ELLIPSIS
2670 { $$ = nullptr; }
2671 | cfa_abstract_parameter_list
2672 | cfa_parameter_list
2673 | cfa_parameter_list pop ',' push cfa_abstract_parameter_list
2674 { $$ = $1->appendList( $5 ); }
2675 | cfa_abstract_parameter_list pop ',' push ELLIPSIS
2676 { $$ = $1->addVarArgs(); }
2677 | cfa_parameter_list pop ',' push ELLIPSIS
2678 { $$ = $1->addVarArgs(); }
2679 ;
2680
2681cfa_parameter_list: // CFA
2682 // To obtain LR(1) between cfa_parameter_list and cfa_abstract_tuple, the last cfa_abstract_parameter_list is
2683 // factored out from cfa_parameter_list, flattening the rules to get lookahead to the ']'.
2684 cfa_parameter_declaration
2685 | cfa_abstract_parameter_list pop ',' push cfa_parameter_declaration
2686 { $$ = $1->appendList( $5 ); }
2687 | cfa_parameter_list pop ',' push cfa_parameter_declaration
2688 { $$ = $1->appendList( $5 ); }
2689 | cfa_parameter_list pop ',' push cfa_abstract_parameter_list pop ',' push cfa_parameter_declaration
2690 { $$ = $1->appendList( $5 )->appendList( $9 ); }
2691 ;
2692
2693cfa_abstract_parameter_list: // CFA, new & old style abstract
2694 cfa_abstract_parameter_declaration
2695 | cfa_abstract_parameter_list pop ',' push cfa_abstract_parameter_declaration
2696 { $$ = $1->appendList( $5 ); }
2697 ;
2698
2699parameter_type_list_opt:
2700 // empty
2701 { $$ = nullptr; }
2702 | ELLIPSIS
2703 { $$ = nullptr; }
2704 | parameter_list
2705 | parameter_list pop ',' push ELLIPSIS
2706 { $$ = $1->addVarArgs(); }
2707 ;
2708
2709parameter_list: // abstract + real
2710 abstract_parameter_declaration
2711 | parameter_declaration
2712 | parameter_list pop ',' push abstract_parameter_declaration
2713 { $$ = $1->appendList( $5 ); }
2714 | parameter_list pop ',' push parameter_declaration
2715 { $$ = $1->appendList( $5 ); }
2716 ;
2717
2718// Provides optional identifier names (abstract_declarator/variable_declarator), no initialization, different semantics
2719// for typedef name by using type_parameter_redeclarator instead of typedef_redeclarator, and function prototypes.
2720
2721cfa_parameter_declaration: // CFA, new & old style parameter declaration
2722 parameter_declaration
2723 | cfa_identifier_parameter_declarator_no_tuple identifier_or_type_name default_initializer_opt
2724 { $$ = $1->addName( $2 ); }
2725 | cfa_abstract_tuple identifier_or_type_name default_initializer_opt
2726 // To obtain LR(1), these rules must be duplicated here (see cfa_abstract_declarator).
2727 { $$ = $1->addName( $2 ); }
2728 | type_qualifier_list cfa_abstract_tuple identifier_or_type_name default_initializer_opt
2729 { $$ = $2->addName( $3 )->addQualifiers( $1 ); }
2730 | cfa_function_specifier
2731 ;
2732
2733cfa_abstract_parameter_declaration: // CFA, new & old style parameter declaration
2734 abstract_parameter_declaration
2735 | cfa_identifier_parameter_declarator_no_tuple
2736 | cfa_abstract_tuple
2737 // To obtain LR(1), these rules must be duplicated here (see cfa_abstract_declarator).
2738 | type_qualifier_list cfa_abstract_tuple
2739 { $$ = $2->addQualifiers( $1 ); }
2740 | cfa_abstract_function
2741 ;
2742
2743parameter_declaration:
2744 // No SUE declaration in parameter list.
2745 declaration_specifier_nobody identifier_parameter_declarator default_initializer_opt
2746 { $$ = $2->addType( $1 )->addInitializer( $3 ? new InitializerNode( $3 ) : nullptr ); }
2747 | declaration_specifier_nobody type_parameter_redeclarator default_initializer_opt
2748 { $$ = $2->addType( $1 )->addInitializer( $3 ? new InitializerNode( $3 ) : nullptr ); }
2749 ;
2750
2751abstract_parameter_declaration:
2752 declaration_specifier_nobody default_initializer_opt
2753 { $$ = $1->addInitializer( $2 ? new InitializerNode( $2 ) : nullptr ); }
2754 | declaration_specifier_nobody abstract_parameter_declarator default_initializer_opt
2755 { $$ = $2->addType( $1 )->addInitializer( $3 ? new InitializerNode( $3 ) : nullptr ); }
2756 ;
2757
2758// ISO/IEC 9899:1999 Section 6.9.1(6) : "An identifier declared as a typedef name shall not be redeclared as a
2759// parameter." Because the scope of the K&R-style parameter-list sees the typedef first, the following is based only on
2760// identifiers. The ANSI-style parameter-list can redefine a typedef name.
2761
2762identifier_list: // K&R-style parameter list => no types
2763 identifier
2764 { $$ = DeclarationNode::newName( $1 ); }
2765 | identifier_list ',' identifier
2766 { $$ = $1->appendList( DeclarationNode::newName( $3 ) ); }
2767 ;
2768
2769identifier_or_type_name:
2770 identifier
2771 | TYPEDEFname
2772 | TYPEGENname
2773 ;
2774
2775type_no_function: // sizeof, alignof, cast (constructor)
2776 cfa_abstract_declarator_tuple // CFA
2777 | type_specifier
2778 | type_specifier abstract_declarator
2779 { $$ = $2->addType( $1 ); }
2780 ;
2781
2782type: // typeof, assertion
2783 type_no_function
2784 | cfa_abstract_function // CFA
2785 ;
2786
2787initializer_opt:
2788 // empty
2789 { $$ = nullptr; }
2790 | simple_assignment_operator initializer { $$ = $1 == OperKinds::Assign ? $2 : $2->set_maybeConstructed( false ); }
2791 | '=' VOID { $$ = new InitializerNode( true ); }
2792 | '{' initializer_list_opt comma_opt '}' { $$ = new InitializerNode( $2, true ); }
2793 ;
2794
2795initializer:
2796 assignment_expression { $$ = new InitializerNode( $1 ); }
2797 | '{' initializer_list_opt comma_opt '}' { $$ = new InitializerNode( $2, true ); }
2798 ;
2799
2800initializer_list_opt:
2801 // empty
2802 { $$ = nullptr; }
2803 | initializer
2804 | designation initializer { $$ = $2->set_designators( $1 ); }
2805 | initializer_list_opt ',' initializer { $$ = (InitializerNode *)( $1->set_last( $3 ) ); }
2806 | initializer_list_opt ',' designation initializer { $$ = (InitializerNode *)($1->set_last( $4->set_designators( $3 ) )); }
2807 ;
2808
2809// There is an unreconcileable parsing problem between C99 and CFA with respect to designators. The problem is use of
2810// '=' to separator the designator from the initializer value, as in:
2811//
2812// int x[10] = { [1] = 3 };
2813//
2814// The string "[1] = 3" can be parsed as a designator assignment or a tuple assignment. To disambiguate this case, CFA
2815// changes the syntax from "=" to ":" as the separator between the designator and initializer. GCC does uses ":" for
2816// field selection. The optional use of the "=" in GCC, or in this case ":", cannot be supported either due to
2817// shift/reduce conflicts
2818
2819designation:
2820 designator_list ':' // C99, CFA uses ":" instead of "="
2821 | identifier_at ':' // GCC, field name
2822 { $$ = new ExpressionNode( build_varref( $1 ) ); }
2823 ;
2824
2825designator_list: // C99
2826 designator
2827 | designator_list designator
2828 { $$ = (ExpressionNode *)($1->set_last( $2 )); }
2829 //| designator_list designator { $$ = new ExpressionNode( $1, $2 ); }
2830 ;
2831
2832designator:
2833 '.' identifier_at // C99, field name
2834 { $$ = new ExpressionNode( build_varref( $2 ) ); }
2835 | '[' push assignment_expression pop ']' // C99, single array element
2836 // assignment_expression used instead of constant_expression because of shift/reduce conflicts with tuple.
2837 { $$ = $3; }
2838 | '[' push subrange pop ']' // CFA, multiple array elements
2839 { $$ = $3; }
2840 | '[' push constant_expression ELLIPSIS constant_expression pop ']' // GCC, multiple array elements
2841 { $$ = new ExpressionNode( new RangeExpr( maybeMoveBuild<Expression>( $3 ), maybeMoveBuild<Expression>( $5 ) ) ); }
2842 | '.' '[' push field_name_list pop ']' // CFA, tuple field selector
2843 { $$ = $4; }
2844 ;
2845
2846// The CFA type system is based on parametric polymorphism, the ability to declare functions with type parameters,
2847// rather than an object-oriented type system. This required four groups of extensions:
2848//
2849// Overloading: function, data, and operator identifiers may be overloaded.
2850//
2851// Type declarations: "otype" is used to generate new types for declaring objects. Similarly, "dtype" is used for object
2852// and incomplete types, and "ftype" is used for function types. Type declarations with initializers provide
2853// definitions of new types. Type declarations with storage class "extern" provide opaque types.
2854//
2855// Polymorphic functions: A forall clause declares a type parameter. The corresponding argument is inferred at the call
2856// site. A polymorphic function is not a template; it is a function, with an address and a type.
2857//
2858// Specifications and Assertions: Specifications are collections of declarations parameterized by one or more
2859// types. They serve many of the purposes of abstract classes, and specification hierarchies resemble subclass
2860// hierarchies. Unlike classes, they can define relationships between types. Assertions declare that a type or
2861// types provide the operations declared by a specification. Assertions are normally used to declare requirements
2862// on type arguments of polymorphic functions.
2863
2864type_parameter_list: // CFA
2865 type_parameter
2866 | type_parameter_list ',' type_parameter
2867 { $$ = $1->appendList( $3 ); }
2868 ;
2869
2870type_initializer_opt: // CFA
2871 // empty
2872 { $$ = nullptr; }
2873 | '=' type
2874 { $$ = $2; }
2875 ;
2876
2877type_parameter: // CFA
2878 type_class identifier_or_type_name
2879 {
2880 typedefTable.addToScope( *$2, TYPEDEFname, "9" );
2881 if ( $1 == TypeDecl::Otype ) { SemanticError( yylloc, "otype keyword is deprecated, use T " ); }
2882 if ( $1 == TypeDecl::Dtype ) { SemanticError( yylloc, "dtype keyword is deprecated, use T &" ); }
2883 if ( $1 == TypeDecl::Ttype ) { SemanticError( yylloc, "ttype keyword is deprecated, use T ..." ); }
2884 }
2885 type_initializer_opt assertion_list_opt
2886 { $$ = DeclarationNode::newTypeParam( $1, $2 )->addTypeInitializer( $4 )->addAssertions( $5 ); }
2887 | identifier_or_type_name new_type_class
2888 { typedefTable.addToScope( *$1, TYPEDEFname, "9" ); }
2889 type_initializer_opt assertion_list_opt
2890 { $$ = DeclarationNode::newTypeParam( $2, $1 )->addTypeInitializer( $4 )->addAssertions( $5 ); }
2891 | '[' identifier_or_type_name ']'
2892 {
2893 typedefTable.addToScope( *$2, TYPEDIMname, "9" );
2894 $$ = DeclarationNode::newTypeParam( TypeDecl::Dimension, $2 );
2895 }
2896 // | type_specifier identifier_parameter_declarator
2897 | assertion_list
2898 { $$ = DeclarationNode::newTypeParam( TypeDecl::Dtype, new string( DeclarationNode::anonymous.newName() ) )->addAssertions( $1 ); }
2899 ;
2900
2901new_type_class: // CFA
2902 // empty
2903 { $$ = TypeDecl::Otype; }
2904 | '&'
2905 { $$ = TypeDecl::Dtype; }
2906 | '*'
2907 { $$ = TypeDecl::DStype; } // dtype + sized
2908 // | '(' '*' ')'
2909 // { $$ = TypeDecl::Ftype; }
2910 | ELLIPSIS
2911 { $$ = TypeDecl::Ttype; }
2912 ;
2913
2914type_class: // CFA
2915 OTYPE
2916 { $$ = TypeDecl::Otype; }
2917 | DTYPE
2918 { $$ = TypeDecl::Dtype; }
2919 | FTYPE
2920 { $$ = TypeDecl::Ftype; }
2921 | TTYPE
2922 { $$ = TypeDecl::Ttype; }
2923 ;
2924
2925assertion_list_opt: // CFA
2926 // empty
2927 { $$ = nullptr; }
2928 | assertion_list
2929 ;
2930
2931assertion_list: // CFA
2932 assertion
2933 | assertion_list assertion
2934 { $$ = $1->appendList( $2 ); }
2935 ;
2936
2937assertion: // CFA
2938 '|' identifier_or_type_name '(' type_list ')'
2939 { $$ = DeclarationNode::newTraitUse( $2, $4 ); }
2940 | '|' '{' push trait_declaration_list pop '}'
2941 { $$ = $4; }
2942 // | '|' '(' push type_parameter_list pop ')' '{' push trait_declaration_list pop '}' '(' type_list ')'
2943 // { SemanticError( yylloc, "Generic data-type assertion is currently unimplemented." ); $$ = nullptr; }
2944 ;
2945
2946type_list: // CFA
2947 type
2948 { $$ = new ExpressionNode( new TypeExpr( maybeMoveBuildType( $1 ) ) ); }
2949 | assignment_expression
2950 | type_list ',' type
2951 { $$ = (ExpressionNode *)($1->set_last( new ExpressionNode( new TypeExpr( maybeMoveBuildType( $3 ) ) ) )); }
2952 | type_list ',' assignment_expression
2953 { $$ = (ExpressionNode *)( $1->set_last( $3 )); }
2954 ;
2955
2956type_declaring_list: // CFA
2957 OTYPE type_declarator
2958 { $$ = $2; }
2959 | storage_class_list OTYPE type_declarator
2960 { $$ = $3->addQualifiers( $1 ); }
2961 | type_declaring_list ',' type_declarator
2962 { $$ = $1->appendList( $3->copySpecifiers( $1 ) ); }
2963 ;
2964
2965type_declarator: // CFA
2966 type_declarator_name assertion_list_opt
2967 { $$ = $1->addAssertions( $2 ); }
2968 | type_declarator_name assertion_list_opt '=' type
2969 { $$ = $1->addAssertions( $2 )->addType( $4 ); }
2970 ;
2971
2972type_declarator_name: // CFA
2973 identifier_or_type_name
2974 {
2975 typedefTable.addToEnclosingScope( *$1, TYPEDEFname, "10" );
2976 $$ = DeclarationNode::newTypeDecl( $1, nullptr );
2977 }
2978 | identifier_or_type_name '(' type_parameter_list ')'
2979 {
2980 typedefTable.addToEnclosingScope( *$1, TYPEGENname, "11" );
2981 $$ = DeclarationNode::newTypeDecl( $1, $3 );
2982 }
2983 ;
2984
2985trait_specifier: // CFA
2986 TRAIT identifier_or_type_name '(' type_parameter_list ')' '{' '}'
2987 {
2988 SemanticWarning( yylloc, Warning::DeprecTraitSyntax, "" );
2989 $$ = DeclarationNode::newTrait( $2, $4, nullptr );
2990 }
2991 | forall TRAIT identifier_or_type_name '{' '}' // alternate
2992 { $$ = DeclarationNode::newTrait( $3, $1, nullptr ); }
2993 | TRAIT identifier_or_type_name '(' type_parameter_list ')' '{' push trait_declaration_list pop '}'
2994 {
2995 SemanticWarning( yylloc, Warning::DeprecTraitSyntax, "" );
2996 $$ = DeclarationNode::newTrait( $2, $4, $8 );
2997 }
2998 | forall TRAIT identifier_or_type_name '{' push trait_declaration_list pop '}' // alternate
2999 { $$ = DeclarationNode::newTrait( $3, $1, $6 ); }
3000 ;
3001
3002trait_declaration_list: // CFA
3003 trait_declaration
3004 | trait_declaration_list pop push trait_declaration
3005 { $$ = $1->appendList( $4 ); }
3006 ;
3007
3008trait_declaration: // CFA
3009 cfa_trait_declaring_list ';'
3010 | trait_declaring_list ';'
3011 ;
3012
3013cfa_trait_declaring_list: // CFA
3014 cfa_variable_specifier
3015 | cfa_function_specifier
3016 | cfa_trait_declaring_list pop ',' push identifier_or_type_name
3017 { $$ = $1->appendList( $1->cloneType( $5 ) ); }
3018 ;
3019
3020trait_declaring_list: // CFA
3021 type_specifier declarator
3022 { $$ = $2->addType( $1 ); }
3023 | trait_declaring_list pop ',' push declarator
3024 { $$ = $1->appendList( $1->cloneBaseType( $5 ) ); }
3025 ;
3026
3027// **************************** EXTERNAL DEFINITIONS *****************************
3028
3029translation_unit:
3030 // empty, input file
3031 | external_definition_list
3032 { parseTree = parseTree ? parseTree->appendList( $1 ) : $1; }
3033 ;
3034
3035external_definition_list:
3036 push external_definition pop
3037 { $$ = $2; }
3038 | external_definition_list push external_definition pop
3039 { $$ = $1 ? $1->appendList( $3 ) : $3; }
3040 ;
3041
3042external_definition_list_opt:
3043 // empty
3044 { $$ = nullptr; }
3045 | external_definition_list
3046 ;
3047
3048up:
3049 { typedefTable.up( forall ); forall = false; }
3050 ;
3051
3052down:
3053 { typedefTable.down(); }
3054 ;
3055
3056external_definition:
3057 DIRECTIVE
3058 { $$ = DeclarationNode::newDirectiveStmt( new StatementNode( build_directive( $1 ) ) ); }
3059 | declaration
3060 | IDENTIFIER IDENTIFIER
3061 { IdentifierBeforeIdentifier( *$1.str, *$2.str, " declaration" ); $$ = nullptr; }
3062 | IDENTIFIER type_qualifier // syntax error
3063 { IdentifierBeforeType( *$1.str, "type qualifier" ); $$ = nullptr; }
3064 | IDENTIFIER storage_class // syntax error
3065 { IdentifierBeforeType( *$1.str, "storage class" ); $$ = nullptr; }
3066 | IDENTIFIER basic_type_name // syntax error
3067 { IdentifierBeforeType( *$1.str, "type" ); $$ = nullptr; }
3068 | IDENTIFIER TYPEDEFname // syntax error
3069 { IdentifierBeforeType( *$1.str, "type" ); $$ = nullptr; }
3070 | IDENTIFIER TYPEGENname // syntax error
3071 { IdentifierBeforeType( *$1.str, "type" ); $$ = nullptr; }
3072 | external_function_definition
3073 | EXTENSION external_definition // GCC, multiple __extension__ allowed, meaning unknown
3074 {
3075 distExt( $2 ); // mark all fields in list
3076 $$ = $2;
3077 }
3078 | ASM '(' string_literal ')' ';' // GCC, global assembler statement
3079 { $$ = DeclarationNode::newAsmStmt( new StatementNode( build_asm( false, $3, nullptr ) ) ); }
3080 | EXTERN STRINGliteral
3081 {
3082 linkageStack.push( linkage ); // handle nested extern "C"/"Cforall"
3083 linkage = LinkageSpec::update( yylloc, linkage, $2 );
3084 }
3085 up external_definition down
3086 {
3087 linkage = linkageStack.top();
3088 linkageStack.pop();
3089 $$ = $5;
3090 }
3091 | EXTERN STRINGliteral // C++-style linkage specifier
3092 {
3093 linkageStack.push( linkage ); // handle nested extern "C"/"Cforall"
3094 linkage = LinkageSpec::update( yylloc, linkage, $2 );
3095 }
3096 '{' up external_definition_list_opt down '}'
3097 {
3098 linkage = linkageStack.top();
3099 linkageStack.pop();
3100 $$ = $6;
3101 }
3102 // global distribution
3103 | type_qualifier_list
3104 {
3105 if ( $1->type->qualifiers.val ) { SemanticError( yylloc, "CV qualifiers cannot be distributed; only storage-class and forall qualifiers." ); }
3106 if ( $1->type->forall ) forall = true; // remember generic type
3107 }
3108 '{' up external_definition_list_opt down '}' // CFA, namespace
3109 {
3110 distQual( $5, $1 );
3111 forall = false;
3112 $$ = $5;
3113 }
3114 | declaration_qualifier_list
3115 {
3116 if ( $1->type && $1->type->qualifiers.val ) { SemanticError( yylloc, "CV qualifiers cannot be distributed; only storage-class and forall qualifiers." ); }
3117 if ( $1->type && $1->type->forall ) forall = true; // remember generic type
3118 }
3119 '{' up external_definition_list_opt down '}' // CFA, namespace
3120 {
3121 distQual( $5, $1 );
3122 forall = false;
3123 $$ = $5;
3124 }
3125 | declaration_qualifier_list type_qualifier_list
3126 {
3127 if ( ($1->type && $1->type->qualifiers.val) || ($2->type && $2->type->qualifiers.val) ) { SemanticError( yylloc, "CV qualifiers cannot be distributed; only storage-class and forall qualifiers." ); }
3128 if ( ($1->type && $1->type->forall) || ($2->type && $2->type->forall) ) forall = true; // remember generic type
3129 }
3130 '{' up external_definition_list_opt down '}' // CFA, namespace
3131 {
3132 distQual( $6, $1->addQualifiers( $2 ) );
3133 forall = false;
3134 $$ = $6;
3135 }
3136 ;
3137
3138external_function_definition:
3139 function_definition
3140 // These rules are a concession to the "implicit int" type_specifier because there is a significant amount of
3141 // legacy code with global functions missing the type-specifier for the return type, and assuming "int".
3142 // Parsing is possible because function_definition does not appear in the context of an expression (nested
3143 // functions preclude this concession, i.e., all nested function must have a return type). A function prototype
3144 // declaration must still have a type_specifier. OBSOLESCENT (see 1)
3145 | function_declarator compound_statement
3146 { $$ = $1->addFunctionBody( $2 ); }
3147 | KR_function_declarator KR_parameter_list_opt compound_statement
3148 { $$ = $1->addOldDeclList( $2 )->addFunctionBody( $3 ); }
3149 ;
3150
3151with_clause_opt:
3152 // empty
3153 { $$ = nullptr; forall = false; }
3154 | WITH '(' tuple_expression_list ')' attribute_list_opt
3155 {
3156 $$ = $3; forall = false;
3157 if ( $5 ) {
3158 SemanticError( yylloc, "Attributes cannot be associated with function body. Move attribute(s) before \"with\" clause." );
3159 $$ = nullptr;
3160 } // if
3161 }
3162 ;
3163
3164function_definition:
3165 cfa_function_declaration with_clause_opt compound_statement // CFA
3166 {
3167 // Add the function body to the last identifier in the function definition list, i.e., foo3:
3168 // [const double] foo1(), foo2( int ), foo3( double ) { return 3.0; }
3169 $1->get_last()->addFunctionBody( $3, $2 );
3170 $$ = $1;
3171 }
3172 | declaration_specifier function_declarator with_clause_opt compound_statement
3173 {
3174 rebindForall( $1, $2 );
3175 $$ = $2->addFunctionBody( $4, $3 )->addType( $1 );
3176 }
3177 | declaration_specifier variable_type_redeclarator with_clause_opt compound_statement
3178 {
3179 rebindForall( $1, $2 );
3180 $$ = $2->addFunctionBody( $4, $3 )->addType( $1 );
3181 }
3182 // handles default int return type, OBSOLESCENT (see 1)
3183 | type_qualifier_list function_declarator with_clause_opt compound_statement
3184 { $$ = $2->addFunctionBody( $4, $3 )->addQualifiers( $1 ); }
3185 // handles default int return type, OBSOLESCENT (see 1)
3186 | declaration_qualifier_list function_declarator with_clause_opt compound_statement
3187 { $$ = $2->addFunctionBody( $4, $3 )->addQualifiers( $1 ); }
3188 // handles default int return type, OBSOLESCENT (see 1)
3189 | declaration_qualifier_list type_qualifier_list function_declarator with_clause_opt compound_statement
3190 { $$ = $3->addFunctionBody( $5, $4 )->addQualifiers( $2 )->addQualifiers( $1 ); }
3191
3192 // Old-style K&R function definition, OBSOLESCENT (see 4)
3193 | declaration_specifier KR_function_declarator KR_parameter_list_opt with_clause_opt compound_statement
3194 {
3195 rebindForall( $1, $2 );
3196 $$ = $2->addOldDeclList( $3 )->addFunctionBody( $5, $4 )->addType( $1 );
3197 }
3198 // handles default int return type, OBSOLESCENT (see 1)
3199 | type_qualifier_list KR_function_declarator KR_parameter_list_opt with_clause_opt compound_statement
3200 { $$ = $2->addOldDeclList( $3 )->addFunctionBody( $5, $4 )->addQualifiers( $1 ); }
3201 // handles default int return type, OBSOLESCENT (see 1)
3202 | declaration_qualifier_list KR_function_declarator KR_parameter_list_opt with_clause_opt compound_statement
3203 { $$ = $2->addOldDeclList( $3 )->addFunctionBody( $5, $4 )->addQualifiers( $1 ); }
3204 // handles default int return type, OBSOLESCENT (see 1)
3205 | declaration_qualifier_list type_qualifier_list KR_function_declarator KR_parameter_list_opt with_clause_opt compound_statement
3206 { $$ = $3->addOldDeclList( $4 )->addFunctionBody( $6, $5 )->addQualifiers( $2 )->addQualifiers( $1 ); }
3207 ;
3208
3209declarator:
3210 variable_declarator
3211 | variable_type_redeclarator
3212 | function_declarator
3213 ;
3214
3215subrange:
3216 constant_expression '~' constant_expression // CFA, integer subrange
3217 { $$ = new ExpressionNode( new RangeExpr( maybeMoveBuild<Expression>( $1 ), maybeMoveBuild<Expression>( $3 ) ) ); }
3218 ;
3219
3220asm_name_opt: // GCC
3221 // empty
3222 { $$ = nullptr; }
3223 | ASM '(' string_literal ')' attribute_list_opt
3224 {
3225 DeclarationNode * name = new DeclarationNode();
3226 name->asmName = $3;
3227 $$ = name->addQualifiers( $5 );
3228 }
3229 ;
3230
3231attribute_list_opt: // GCC
3232 // empty
3233 { $$ = nullptr; }
3234 | attribute_list
3235 ;
3236
3237attribute_list: // GCC
3238 attribute
3239 | attribute_list attribute
3240 { $$ = $2->addQualifiers( $1 ); }
3241 ;
3242
3243attribute: // GCC
3244 ATTRIBUTE '(' '(' attribute_name_list ')' ')'
3245 { $$ = $4; }
3246 ;
3247
3248attribute_name_list: // GCC
3249 attribute_name
3250 | attribute_name_list ',' attribute_name
3251 { $$ = $3->addQualifiers( $1 ); }
3252 ;
3253
3254attribute_name: // GCC
3255 // empty
3256 { $$ = nullptr; }
3257 | attr_name
3258 { $$ = DeclarationNode::newAttribute( $1 ); }
3259 | attr_name '(' argument_expression_list_opt ')'
3260 { $$ = DeclarationNode::newAttribute( $1, $3 ); }
3261 ;
3262
3263attr_name: // GCC
3264 IDENTIFIER
3265 | quasi_keyword
3266 | TYPEDEFname
3267 | TYPEGENname
3268 | FALLTHROUGH
3269 { $$ = Token{ new string( "fallthrough" ), { nullptr, -1 } }; }
3270 | CONST
3271 { $$ = Token{ new string( "__const__" ), { nullptr, -1 } }; }
3272 ;
3273
3274// ============================================================================
3275// The following sections are a series of grammar patterns used to parse declarators. Multiple patterns are necessary
3276// because the type of an identifier in wrapped around the identifier in the same form as its usage in an expression, as
3277// in:
3278//
3279// int (*f())[10] { ... };
3280// ... (*f())[3] += 1; // definition mimics usage
3281//
3282// Because these patterns are highly recursive, changes at a lower level in the recursion require copying some or all of
3283// the pattern. Each of these patterns has some subtle variation to ensure correct syntax in a particular context.
3284// ============================================================================
3285
3286// ----------------------------------------------------------------------------
3287// The set of valid declarators before a compound statement for defining a function is less than the set of declarators
3288// to define a variable or function prototype, e.g.:
3289//
3290// valid declaration invalid definition
3291// ----------------- ------------------
3292// int f; int f {}
3293// int *f; int *f {}
3294// int f[10]; int f[10] {}
3295// int (*f)(int); int (*f)(int) {}
3296//
3297// To preclude this syntactic anomaly requires separating the grammar rules for variable and function declarators, hence
3298// variable_declarator and function_declarator.
3299// ----------------------------------------------------------------------------
3300
3301// This pattern parses a declaration of a variable that is not redefining a typedef name. The pattern precludes
3302// declaring an array of functions versus a pointer to an array of functions.
3303
3304paren_identifier:
3305 identifier_at
3306 { $$ = DeclarationNode::newName( $1 ); }
3307 | '(' paren_identifier ')' // redundant parenthesis
3308 { $$ = $2; }
3309 ;
3310
3311variable_declarator:
3312 paren_identifier attribute_list_opt
3313 { $$ = $1->addQualifiers( $2 ); }
3314 | variable_ptr
3315 | variable_array attribute_list_opt
3316 { $$ = $1->addQualifiers( $2 ); }
3317 | variable_function attribute_list_opt
3318 { $$ = $1->addQualifiers( $2 ); }
3319 ;
3320
3321variable_ptr:
3322 ptrref_operator variable_declarator
3323 { $$ = $2->addPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3324 | ptrref_operator type_qualifier_list variable_declarator
3325 { $$ = $3->addPointer( DeclarationNode::newPointer( $2, $1 ) ); }
3326 | '(' variable_ptr ')' attribute_list_opt // redundant parenthesis
3327 { $$ = $2->addQualifiers( $4 ); }
3328 | '(' attribute_list variable_ptr ')' attribute_list_opt // redundant parenthesis
3329 { $$ = $3->addQualifiers( $2 )->addQualifiers( $5 ); }
3330 ;
3331
3332variable_array:
3333 paren_identifier array_dimension
3334 { $$ = $1->addArray( $2 ); }
3335 | '(' variable_ptr ')' array_dimension
3336 { $$ = $2->addArray( $4 ); }
3337 | '(' attribute_list variable_ptr ')' array_dimension
3338 { $$ = $3->addQualifiers( $2 )->addArray( $5 ); }
3339 | '(' variable_array ')' multi_array_dimension // redundant parenthesis
3340 { $$ = $2->addArray( $4 ); }
3341 | '(' attribute_list variable_array ')' multi_array_dimension // redundant parenthesis
3342 { $$ = $3->addQualifiers( $2 )->addArray( $5 ); }
3343 | '(' variable_array ')' // redundant parenthesis
3344 { $$ = $2; }
3345 | '(' attribute_list variable_array ')' // redundant parenthesis
3346 { $$ = $3->addQualifiers( $2 ); }
3347 ;
3348
3349variable_function:
3350 '(' variable_ptr ')' '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3351 { $$ = $2->addParamList( $6 ); }
3352 | '(' attribute_list variable_ptr ')' '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3353 { $$ = $3->addQualifiers( $2 )->addParamList( $7 ); }
3354 | '(' variable_function ')' // redundant parenthesis
3355 { $$ = $2; }
3356 | '(' attribute_list variable_function ')' // redundant parenthesis
3357 { $$ = $3->addQualifiers( $2 ); }
3358 ;
3359
3360// This pattern parses a function declarator that is not redefining a typedef name. For non-nested functions, there is
3361// no context where a function definition can redefine a typedef name, i.e., the typedef and function name cannot exist
3362// is the same scope. The pattern precludes returning arrays and functions versus pointers to arrays and functions.
3363
3364function_declarator:
3365 function_no_ptr attribute_list_opt
3366 { $$ = $1->addQualifiers( $2 ); }
3367 | function_ptr
3368 | function_array attribute_list_opt
3369 { $$ = $1->addQualifiers( $2 ); }
3370 ;
3371
3372function_no_ptr:
3373 paren_identifier '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3374 { $$ = $1->addParamList( $4 ); }
3375 | '(' function_ptr ')' '(' push parameter_type_list_opt pop ')'
3376 { $$ = $2->addParamList( $6 ); }
3377 | '(' attribute_list function_ptr ')' '(' push parameter_type_list_opt pop ')'
3378 { $$ = $3->addQualifiers( $2 )->addParamList( $7 ); }
3379 | '(' function_no_ptr ')' // redundant parenthesis
3380 { $$ = $2; }
3381 | '(' attribute_list function_no_ptr ')' // redundant parenthesis
3382 { $$ = $3->addQualifiers( $2 ); }
3383 ;
3384
3385function_ptr:
3386 ptrref_operator function_declarator
3387 { $$ = $2->addPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3388 | ptrref_operator type_qualifier_list function_declarator
3389 { $$ = $3->addPointer( DeclarationNode::newPointer( $2, $1 ) ); }
3390 | '(' function_ptr ')' attribute_list_opt
3391 { $$ = $2->addQualifiers( $4 ); }
3392 | '(' attribute_list function_ptr ')' attribute_list_opt
3393 { $$ = $3->addQualifiers( $2 )->addQualifiers( $5 ); }
3394 ;
3395
3396function_array:
3397 '(' function_ptr ')' array_dimension
3398 { $$ = $2->addArray( $4 ); }
3399 | '(' attribute_list function_ptr ')' array_dimension
3400 { $$ = $3->addQualifiers( $2 )->addArray( $5 ); }
3401 | '(' function_array ')' multi_array_dimension // redundant parenthesis
3402 { $$ = $2->addArray( $4 ); }
3403 | '(' attribute_list function_array ')' multi_array_dimension // redundant parenthesis
3404 { $$ = $3->addQualifiers( $2 )->addArray( $5 ); }
3405 | '(' function_array ')' // redundant parenthesis
3406 { $$ = $2; }
3407 | '(' attribute_list function_array ')' // redundant parenthesis
3408 { $$ = $3->addQualifiers( $2 ); }
3409 ;
3410
3411// This pattern parses an old-style K&R function declarator (OBSOLESCENT, see 4)
3412//
3413// f( a, b, c ) int a, *b, c[]; {}
3414//
3415// that is not redefining a typedef name (see function_declarator for additional comments). The pattern precludes
3416// returning arrays and functions versus pointers to arrays and functions.
3417
3418KR_function_declarator:
3419 KR_function_no_ptr
3420 | KR_function_ptr
3421 | KR_function_array
3422 ;
3423
3424KR_function_no_ptr:
3425 paren_identifier '(' identifier_list ')' // function_declarator handles empty parameter
3426 { $$ = $1->addIdList( $3 ); }
3427 | '(' KR_function_ptr ')' '(' push parameter_type_list_opt pop ')'
3428 { $$ = $2->addParamList( $6 ); }
3429 | '(' attribute_list KR_function_ptr ')' '(' push parameter_type_list_opt pop ')'
3430 { $$ = $3->addQualifiers( $2 )->addParamList( $7 ); }
3431 | '(' KR_function_no_ptr ')' // redundant parenthesis
3432 { $$ = $2; }
3433 | '(' attribute_list KR_function_no_ptr ')' // redundant parenthesis
3434 { $$ = $3->addQualifiers( $2 ); }
3435 ;
3436
3437KR_function_ptr:
3438 ptrref_operator KR_function_declarator
3439 { $$ = $2->addPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3440 | ptrref_operator type_qualifier_list KR_function_declarator
3441 { $$ = $3->addPointer( DeclarationNode::newPointer( $2, $1 ) ); }
3442 | '(' KR_function_ptr ')'
3443 { $$ = $2; }
3444 | '(' attribute_list KR_function_ptr ')'
3445 { $$ = $3->addQualifiers( $2 ); }
3446 ;
3447
3448KR_function_array:
3449 '(' KR_function_ptr ')' array_dimension
3450 { $$ = $2->addArray( $4 ); }
3451 | '(' attribute_list KR_function_ptr ')' array_dimension
3452 { $$ = $3->addQualifiers( $2 )->addArray( $5 ); }
3453 | '(' KR_function_array ')' multi_array_dimension // redundant parenthesis
3454 { $$ = $2->addArray( $4 ); }
3455 | '(' attribute_list KR_function_array ')' multi_array_dimension // redundant parenthesis
3456 { $$ = $3->addQualifiers( $2 )->addArray( $5 ); }
3457 | '(' KR_function_array ')' // redundant parenthesis
3458 { $$ = $2; }
3459 | '(' attribute_list KR_function_array ')' // redundant parenthesis
3460 { $$ = $3->addQualifiers( $2 ); }
3461 ;
3462
3463// This pattern parses a declaration for a variable or function prototype that redefines a type name, e.g.:
3464//
3465// typedef int foo;
3466// {
3467// int foo; // redefine typedef name in new scope
3468// }
3469//
3470// The pattern precludes declaring an array of functions versus a pointer to an array of functions, and returning arrays
3471// and functions versus pointers to arrays and functions.
3472
3473paren_type:
3474 typedef_name
3475 {
3476 // hide type name in enclosing scope by variable name
3477 typedefTable.addToEnclosingScope( *$1->name, IDENTIFIER, "ID" );
3478 }
3479 | '(' paren_type ')'
3480 { $$ = $2; }
3481 ;
3482
3483variable_type_redeclarator:
3484 paren_type attribute_list_opt
3485 { $$ = $1->addQualifiers( $2 ); }
3486 | type_ptr
3487 | type_array attribute_list_opt
3488 { $$ = $1->addQualifiers( $2 ); }
3489 | type_function attribute_list_opt
3490 { $$ = $1->addQualifiers( $2 ); }
3491 ;
3492
3493type_ptr:
3494 ptrref_operator variable_type_redeclarator
3495 { $$ = $2->addPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3496 | ptrref_operator type_qualifier_list variable_type_redeclarator
3497 { $$ = $3->addPointer( DeclarationNode::newPointer( $2, $1 ) ); }
3498 | '(' type_ptr ')' attribute_list_opt // redundant parenthesis
3499 { $$ = $2->addQualifiers( $4 ); }
3500 | '(' attribute_list type_ptr ')' attribute_list_opt // redundant parenthesis
3501 { $$ = $3->addQualifiers( $2 )->addQualifiers( $5 ); }
3502 ;
3503
3504type_array:
3505 paren_type array_dimension
3506 { $$ = $1->addArray( $2 ); }
3507 | '(' type_ptr ')' array_dimension
3508 { $$ = $2->addArray( $4 ); }
3509 | '(' attribute_list type_ptr ')' array_dimension
3510 { $$ = $3->addQualifiers( $2 )->addArray( $5 ); }
3511 | '(' type_array ')' multi_array_dimension // redundant parenthesis
3512 { $$ = $2->addArray( $4 ); }
3513 | '(' attribute_list type_array ')' multi_array_dimension // redundant parenthesis
3514 { $$ = $3->addQualifiers( $2 )->addArray( $5 ); }
3515 | '(' type_array ')' // redundant parenthesis
3516 { $$ = $2; }
3517 | '(' attribute_list type_array ')' // redundant parenthesis
3518 { $$ = $3->addQualifiers( $2 ); }
3519 ;
3520
3521type_function:
3522 paren_type '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3523 { $$ = $1->addParamList( $4 ); }
3524 | '(' type_ptr ')' '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3525 { $$ = $2->addParamList( $6 ); }
3526 | '(' attribute_list type_ptr ')' '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3527 { $$ = $3->addQualifiers( $2 )->addParamList( $7 ); }
3528 | '(' type_function ')' // redundant parenthesis
3529 { $$ = $2; }
3530 | '(' attribute_list type_function ')' // redundant parenthesis
3531 { $$ = $3->addQualifiers( $2 ); }
3532 ;
3533
3534// This pattern parses a declaration for a parameter variable of a function prototype or actual that is not redefining a
3535// typedef name and allows the C99 array options, which can only appear in a parameter list. The pattern precludes
3536// declaring an array of functions versus a pointer to an array of functions, and returning arrays and functions versus
3537// pointers to arrays and functions.
3538
3539identifier_parameter_declarator:
3540 paren_identifier attribute_list_opt
3541 { $$ = $1->addQualifiers( $2 ); }
3542 | '&' MUTEX paren_identifier attribute_list_opt
3543 { $$ = $3->addPointer( DeclarationNode::newPointer( DeclarationNode::newTypeQualifier( Type::Mutex ), OperKinds::AddressOf ) )->addQualifiers( $4 ); }
3544 | identifier_parameter_ptr
3545 | identifier_parameter_array attribute_list_opt
3546 { $$ = $1->addQualifiers( $2 ); }
3547 | identifier_parameter_function attribute_list_opt
3548 { $$ = $1->addQualifiers( $2 ); }
3549 ;
3550
3551identifier_parameter_ptr:
3552 ptrref_operator identifier_parameter_declarator
3553 { $$ = $2->addPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3554 | ptrref_operator type_qualifier_list identifier_parameter_declarator
3555 { $$ = $3->addPointer( DeclarationNode::newPointer( $2, $1 ) ); }
3556 | '(' identifier_parameter_ptr ')' attribute_list_opt // redundant parenthesis
3557 { $$ = $2->addQualifiers( $4 ); }
3558 ;
3559
3560identifier_parameter_array:
3561 paren_identifier array_parameter_dimension
3562 { $$ = $1->addArray( $2 ); }
3563 | '(' identifier_parameter_ptr ')' array_dimension
3564 { $$ = $2->addArray( $4 ); }
3565 | '(' identifier_parameter_array ')' multi_array_dimension // redundant parenthesis
3566 { $$ = $2->addArray( $4 ); }
3567 | '(' identifier_parameter_array ')' // redundant parenthesis
3568 { $$ = $2; }
3569 ;
3570
3571identifier_parameter_function:
3572 paren_identifier '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3573 { $$ = $1->addParamList( $4 ); }
3574 | '(' identifier_parameter_ptr ')' '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3575 { $$ = $2->addParamList( $6 ); }
3576 | '(' identifier_parameter_function ')' // redundant parenthesis
3577 { $$ = $2; }
3578 ;
3579
3580// This pattern parses a declaration for a parameter variable or function prototype that is redefining a typedef name,
3581// e.g.:
3582//
3583// typedef int foo;
3584// forall( otype T ) struct foo;
3585// int f( int foo ); // redefine typedef name in new scope
3586//
3587// and allows the C99 array options, which can only appear in a parameter list.
3588
3589type_parameter_redeclarator:
3590 typedef_name attribute_list_opt
3591 { $$ = $1->addQualifiers( $2 ); }
3592 | '&' MUTEX typedef_name attribute_list_opt
3593 { $$ = $3->addPointer( DeclarationNode::newPointer( DeclarationNode::newTypeQualifier( Type::Mutex ), OperKinds::AddressOf ) )->addQualifiers( $4 ); }
3594 | type_parameter_ptr
3595 | type_parameter_array attribute_list_opt
3596 { $$ = $1->addQualifiers( $2 ); }
3597 | type_parameter_function attribute_list_opt
3598 { $$ = $1->addQualifiers( $2 ); }
3599 ;
3600
3601typedef_name:
3602 TYPEDEFname
3603 { $$ = DeclarationNode::newName( $1 ); }
3604 | TYPEGENname
3605 { $$ = DeclarationNode::newName( $1 ); }
3606 ;
3607
3608type_parameter_ptr:
3609 ptrref_operator type_parameter_redeclarator
3610 { $$ = $2->addPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3611 | ptrref_operator type_qualifier_list type_parameter_redeclarator
3612 { $$ = $3->addPointer( DeclarationNode::newPointer( $2, $1 ) ); }
3613 | '(' type_parameter_ptr ')' attribute_list_opt // redundant parenthesis
3614 { $$ = $2->addQualifiers( $4 ); }
3615 ;
3616
3617type_parameter_array:
3618 typedef_name array_parameter_dimension
3619 { $$ = $1->addArray( $2 ); }
3620 | '(' type_parameter_ptr ')' array_parameter_dimension
3621 { $$ = $2->addArray( $4 ); }
3622 ;
3623
3624type_parameter_function:
3625 typedef_name '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3626 { $$ = $1->addParamList( $4 ); }
3627 | '(' type_parameter_ptr ')' '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3628 { $$ = $2->addParamList( $6 ); }
3629 ;
3630
3631// This pattern parses a declaration of an abstract variable or function prototype, i.e., there is no identifier to
3632// which the type applies, e.g.:
3633//
3634// sizeof( int );
3635// sizeof( int * );
3636// sizeof( int [10] );
3637// sizeof( int (*)() );
3638// sizeof( int () );
3639//
3640// The pattern precludes declaring an array of functions versus a pointer to an array of functions, and returning arrays
3641// and functions versus pointers to arrays and functions.
3642
3643abstract_declarator:
3644 abstract_ptr
3645 | abstract_array attribute_list_opt
3646 { $$ = $1->addQualifiers( $2 ); }
3647 | abstract_function attribute_list_opt
3648 { $$ = $1->addQualifiers( $2 ); }
3649 ;
3650
3651abstract_ptr:
3652 ptrref_operator
3653 { $$ = DeclarationNode::newPointer( nullptr, $1 ); }
3654 | ptrref_operator type_qualifier_list
3655 { $$ = DeclarationNode::newPointer( $2, $1 ); }
3656 | ptrref_operator abstract_declarator
3657 { $$ = $2->addPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3658 | ptrref_operator type_qualifier_list abstract_declarator
3659 { $$ = $3->addPointer( DeclarationNode::newPointer( $2, $1 ) ); }
3660 | '(' abstract_ptr ')' attribute_list_opt
3661 { $$ = $2->addQualifiers( $4 ); }
3662 ;
3663
3664abstract_array:
3665 array_dimension
3666 | '(' abstract_ptr ')' array_dimension
3667 { $$ = $2->addArray( $4 ); }
3668 | '(' abstract_array ')' multi_array_dimension // redundant parenthesis
3669 { $$ = $2->addArray( $4 ); }
3670 | '(' abstract_array ')' // redundant parenthesis
3671 { $$ = $2; }
3672 ;
3673
3674abstract_function:
3675 '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3676 { $$ = DeclarationNode::newFunction( nullptr, nullptr, $3, nullptr ); }
3677 | '(' abstract_ptr ')' '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3678 { $$ = $2->addParamList( $6 ); }
3679 | '(' abstract_function ')' // redundant parenthesis
3680 { $$ = $2; }
3681 ;
3682
3683array_dimension:
3684 // Only the first dimension can be empty.
3685 '[' ']'
3686 { $$ = DeclarationNode::newArray( nullptr, nullptr, false ); }
3687 | '[' ']' multi_array_dimension
3688 { $$ = DeclarationNode::newArray( nullptr, nullptr, false )->addArray( $3 ); }
3689 // Cannot use constant_expression because of tuples => semantic check
3690 | '[' push assignment_expression pop ',' comma_expression ']' // CFA
3691 { $$ = DeclarationNode::newArray( $3, nullptr, false )->addArray( DeclarationNode::newArray( $6, nullptr, false ) ); }
3692 // { SemanticError( yylloc, "New array dimension is currently unimplemented." ); $$ = nullptr; }
3693 | '[' push array_type_list pop ']' // CFA
3694 { SemanticError( yylloc, "Type array dimension is currently unimplemented." ); $$ = nullptr; }
3695 | multi_array_dimension
3696 ;
3697
3698array_type_list:
3699 basic_type_name
3700 { $$ = new ExpressionNode( new TypeExpr( maybeMoveBuildType( $1 ) ) ); }
3701 | type_name
3702 { $$ = new ExpressionNode( new TypeExpr( maybeMoveBuildType( $1 ) ) ); }
3703 | assignment_expression upupeq assignment_expression
3704 | array_type_list ',' basic_type_name
3705 { $$ = (ExpressionNode *)($1->set_last( new ExpressionNode( new TypeExpr( maybeMoveBuildType( $3 ) ) ) )); }
3706 | array_type_list ',' type_name
3707 { $$ = (ExpressionNode *)($1->set_last( new ExpressionNode( new TypeExpr( maybeMoveBuildType( $3 ) ) ) )); }
3708 | array_type_list ',' assignment_expression upupeq assignment_expression
3709 ;
3710
3711upupeq:
3712 '~'
3713 { $$ = OperKinds::LThan; }
3714 | ErangeUpEq
3715 { $$ = OperKinds::LEThan; }
3716 ;
3717
3718multi_array_dimension:
3719 '[' push assignment_expression pop ']'
3720 { $$ = DeclarationNode::newArray( $3, nullptr, false ); }
3721 | '[' push '*' pop ']' // C99
3722 { $$ = DeclarationNode::newVarArray( 0 ); }
3723 | multi_array_dimension '[' push assignment_expression pop ']'
3724 { $$ = $1->addArray( DeclarationNode::newArray( $4, nullptr, false ) ); }
3725 | multi_array_dimension '[' push '*' pop ']' // C99
3726 { $$ = $1->addArray( DeclarationNode::newVarArray( 0 ) ); }
3727 ;
3728
3729// This pattern parses a declaration of a parameter abstract variable or function prototype, i.e., there is no
3730// identifier to which the type applies, e.g.:
3731//
3732// int f( int ); // not handled here
3733// int f( int * ); // abstract function-prototype parameter; no parameter name specified
3734// int f( int (*)() ); // abstract function-prototype parameter; no parameter name specified
3735// int f( int (int) ); // abstract function-prototype parameter; no parameter name specified
3736//
3737// The pattern precludes declaring an array of functions versus a pointer to an array of functions, and returning arrays
3738// and functions versus pointers to arrays and functions. In addition, the pattern handles the
3739// special meaning of parenthesis around a typedef name:
3740//
3741// ISO/IEC 9899:1999 Section 6.7.5.3(11) : "In a parameter declaration, a single typedef name in
3742// parentheses is taken to be an abstract declarator that specifies a function with a single parameter,
3743// not as redundant parentheses around the identifier."
3744//
3745// For example:
3746//
3747// typedef float T;
3748// int f( int ( T [5] ) ); // see abstract_parameter_declarator
3749// int g( int ( T ( int ) ) ); // see abstract_parameter_declarator
3750// int f( int f1( T a[5] ) ); // see identifier_parameter_declarator
3751// int g( int g1( T g2( int p ) ) ); // see identifier_parameter_declarator
3752//
3753// In essence, a '(' immediately to the left of typedef name, T, is interpreted as starting a parameter type list, and
3754// not as redundant parentheses around a redeclaration of T. Finally, the pattern also precludes declaring an array of
3755// functions versus a pointer to an array of functions, and returning arrays and functions versus pointers to arrays and
3756// functions.
3757
3758abstract_parameter_declarator_opt:
3759 // empty
3760 { $$ = nullptr; }
3761 | abstract_parameter_declarator
3762 ;
3763
3764abstract_parameter_declarator:
3765 abstract_parameter_ptr
3766 | '&' MUTEX attribute_list_opt
3767 { $$ = DeclarationNode::newPointer( DeclarationNode::newTypeQualifier( Type::Mutex ), OperKinds::AddressOf )->addQualifiers( $3 ); }
3768 | abstract_parameter_array attribute_list_opt
3769 { $$ = $1->addQualifiers( $2 ); }
3770 | abstract_parameter_function attribute_list_opt
3771 { $$ = $1->addQualifiers( $2 ); }
3772 ;
3773
3774abstract_parameter_ptr:
3775 ptrref_operator
3776 { $$ = DeclarationNode::newPointer( nullptr, $1 ); }
3777 | ptrref_operator type_qualifier_list
3778 { $$ = DeclarationNode::newPointer( $2, $1 ); }
3779 | ptrref_operator abstract_parameter_declarator
3780 { $$ = $2->addPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3781 | ptrref_operator type_qualifier_list abstract_parameter_declarator
3782 { $$ = $3->addPointer( DeclarationNode::newPointer( $2, $1 ) ); }
3783 | '(' abstract_parameter_ptr ')' attribute_list_opt // redundant parenthesis
3784 { $$ = $2->addQualifiers( $4 ); }
3785 ;
3786
3787abstract_parameter_array:
3788 array_parameter_dimension
3789 | '(' abstract_parameter_ptr ')' array_parameter_dimension
3790 { $$ = $2->addArray( $4 ); }
3791 | '(' abstract_parameter_array ')' multi_array_dimension // redundant parenthesis
3792 { $$ = $2->addArray( $4 ); }
3793 | '(' abstract_parameter_array ')' // redundant parenthesis
3794 { $$ = $2; }
3795 ;
3796
3797abstract_parameter_function:
3798 '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3799 { $$ = DeclarationNode::newFunction( nullptr, nullptr, $3, nullptr ); }
3800 | '(' abstract_parameter_ptr ')' '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3801 { $$ = $2->addParamList( $6 ); }
3802 | '(' abstract_parameter_function ')' // redundant parenthesis
3803 { $$ = $2; }
3804 ;
3805
3806array_parameter_dimension:
3807 // Only the first dimension can be empty or have qualifiers.
3808 array_parameter_1st_dimension
3809 | array_parameter_1st_dimension multi_array_dimension
3810 { $$ = $1->addArray( $2 ); }
3811 | multi_array_dimension
3812 ;
3813
3814// The declaration of an array parameter has additional syntax over arrays in normal variable declarations:
3815//
3816// ISO/IEC 9899:1999 Section 6.7.5.2(1) : "The optional type qualifiers and the keyword static shall appear only in
3817// a declaration of a function parameter with an array type, and then only in the outermost array type derivation."
3818
3819array_parameter_1st_dimension:
3820 '[' ']'
3821 { $$ = DeclarationNode::newArray( nullptr, nullptr, false ); }
3822 // multi_array_dimension handles the '[' '*' ']' case
3823 | '[' push type_qualifier_list '*' pop ']' // remaining C99
3824 { $$ = DeclarationNode::newVarArray( $3 ); }
3825 | '[' push type_qualifier_list pop ']'
3826 { $$ = DeclarationNode::newArray( nullptr, $3, false ); }
3827 // multi_array_dimension handles the '[' assignment_expression ']' case
3828 | '[' push type_qualifier_list assignment_expression pop ']'
3829 { $$ = DeclarationNode::newArray( $4, $3, false ); }
3830 | '[' push STATIC type_qualifier_list_opt assignment_expression pop ']'
3831 { $$ = DeclarationNode::newArray( $5, $4, true ); }
3832 | '[' push type_qualifier_list STATIC assignment_expression pop ']'
3833 { $$ = DeclarationNode::newArray( $5, $3, true ); }
3834 ;
3835
3836// This pattern parses a declaration of an abstract variable, but does not allow "int ()" for a function pointer.
3837//
3838// struct S {
3839// int;
3840// int *;
3841// int [10];
3842// int (*)();
3843// };
3844
3845variable_abstract_declarator:
3846 variable_abstract_ptr
3847 | variable_abstract_array attribute_list_opt
3848 { $$ = $1->addQualifiers( $2 ); }
3849 | variable_abstract_function attribute_list_opt
3850 { $$ = $1->addQualifiers( $2 ); }
3851 ;
3852
3853variable_abstract_ptr:
3854 ptrref_operator
3855 { $$ = DeclarationNode::newPointer( nullptr, $1 ); }
3856 | ptrref_operator type_qualifier_list
3857 { $$ = DeclarationNode::newPointer( $2, $1 ); }
3858 | ptrref_operator variable_abstract_declarator
3859 { $$ = $2->addPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3860 | ptrref_operator type_qualifier_list variable_abstract_declarator
3861 { $$ = $3->addPointer( DeclarationNode::newPointer( $2, $1 ) ); }
3862 | '(' variable_abstract_ptr ')' attribute_list_opt // redundant parenthesis
3863 { $$ = $2->addQualifiers( $4 ); }
3864 ;
3865
3866variable_abstract_array:
3867 array_dimension
3868 | '(' variable_abstract_ptr ')' array_dimension
3869 { $$ = $2->addArray( $4 ); }
3870 | '(' variable_abstract_array ')' multi_array_dimension // redundant parenthesis
3871 { $$ = $2->addArray( $4 ); }
3872 | '(' variable_abstract_array ')' // redundant parenthesis
3873 { $$ = $2; }
3874 ;
3875
3876variable_abstract_function:
3877 '(' variable_abstract_ptr ')' '(' push parameter_type_list_opt pop ')' // empty parameter list OBSOLESCENT (see 3)
3878 { $$ = $2->addParamList( $6 ); }
3879 | '(' variable_abstract_function ')' // redundant parenthesis
3880 { $$ = $2; }
3881 ;
3882
3883// This pattern parses a new-style declaration for a parameter variable or function prototype that is either an
3884// identifier or typedef name and allows the C99 array options, which can only appear in a parameter list.
3885
3886cfa_identifier_parameter_declarator_tuple: // CFA
3887 cfa_identifier_parameter_declarator_no_tuple
3888 | cfa_abstract_tuple
3889 | type_qualifier_list cfa_abstract_tuple
3890 { $$ = $2->addQualifiers( $1 ); }
3891 ;
3892
3893cfa_identifier_parameter_declarator_no_tuple: // CFA
3894 cfa_identifier_parameter_ptr
3895 | cfa_identifier_parameter_array
3896 ;
3897
3898cfa_identifier_parameter_ptr: // CFA
3899 // No SUE declaration in parameter list.
3900 ptrref_operator type_specifier_nobody
3901 { $$ = $2->addNewPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3902 | type_qualifier_list ptrref_operator type_specifier_nobody
3903 { $$ = $3->addNewPointer( DeclarationNode::newPointer( $1, $2 ) ); }
3904 | ptrref_operator cfa_abstract_function
3905 { $$ = $2->addNewPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3906 | type_qualifier_list ptrref_operator cfa_abstract_function
3907 { $$ = $3->addNewPointer( DeclarationNode::newPointer( $1, $2 ) ); }
3908 | ptrref_operator cfa_identifier_parameter_declarator_tuple
3909 { $$ = $2->addNewPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3910 | type_qualifier_list ptrref_operator cfa_identifier_parameter_declarator_tuple
3911 { $$ = $3->addNewPointer( DeclarationNode::newPointer( $1, $2 ) ); }
3912 ;
3913
3914cfa_identifier_parameter_array: // CFA
3915 // Only the first dimension can be empty or have qualifiers. Empty dimension must be factored out due to
3916 // shift/reduce conflict with new-style empty (void) function return type.
3917 '[' ']' type_specifier_nobody
3918 { $$ = $3->addNewArray( DeclarationNode::newArray( nullptr, nullptr, false ) ); }
3919 | cfa_array_parameter_1st_dimension type_specifier_nobody
3920 { $$ = $2->addNewArray( $1 ); }
3921 | '[' ']' multi_array_dimension type_specifier_nobody
3922 { $$ = $4->addNewArray( $3 )->addNewArray( DeclarationNode::newArray( nullptr, nullptr, false ) ); }
3923 | cfa_array_parameter_1st_dimension multi_array_dimension type_specifier_nobody
3924 { $$ = $3->addNewArray( $2 )->addNewArray( $1 ); }
3925 | multi_array_dimension type_specifier_nobody
3926 { $$ = $2->addNewArray( $1 ); }
3927
3928 | '[' ']' cfa_identifier_parameter_ptr
3929 { $$ = $3->addNewArray( DeclarationNode::newArray( nullptr, nullptr, false ) ); }
3930 | cfa_array_parameter_1st_dimension cfa_identifier_parameter_ptr
3931 { $$ = $2->addNewArray( $1 ); }
3932 | '[' ']' multi_array_dimension cfa_identifier_parameter_ptr
3933 { $$ = $4->addNewArray( $3 )->addNewArray( DeclarationNode::newArray( nullptr, nullptr, false ) ); }
3934 | cfa_array_parameter_1st_dimension multi_array_dimension cfa_identifier_parameter_ptr
3935 { $$ = $3->addNewArray( $2 )->addNewArray( $1 ); }
3936 | multi_array_dimension cfa_identifier_parameter_ptr
3937 { $$ = $2->addNewArray( $1 ); }
3938 ;
3939
3940cfa_array_parameter_1st_dimension:
3941 '[' push type_qualifier_list '*' pop ']' // remaining C99
3942 { $$ = DeclarationNode::newVarArray( $3 ); }
3943 | '[' push type_qualifier_list assignment_expression pop ']'
3944 { $$ = DeclarationNode::newArray( $4, $3, false ); }
3945 | '[' push declaration_qualifier_list assignment_expression pop ']'
3946 // declaration_qualifier_list must be used because of shift/reduce conflict with
3947 // assignment_expression, so a semantic check is necessary to preclude them as a type_qualifier cannot
3948 // appear in this context.
3949 { $$ = DeclarationNode::newArray( $4, $3, true ); }
3950 | '[' push declaration_qualifier_list type_qualifier_list assignment_expression pop ']'
3951 { $$ = DeclarationNode::newArray( $5, $4->addQualifiers( $3 ), true ); }
3952 ;
3953
3954// This pattern parses a new-style declaration of an abstract variable or function prototype, i.e., there is no
3955// identifier to which the type applies, e.g.:
3956//
3957// [int] f( int ); // abstract variable parameter; no parameter name specified
3958// [int] f( [int] (int) ); // abstract function-prototype parameter; no parameter name specified
3959//
3960// These rules need LR(3):
3961//
3962// cfa_abstract_tuple identifier_or_type_name
3963// '[' cfa_parameter_list ']' identifier_or_type_name '(' cfa_parameter_ellipsis_list_opt ')'
3964//
3965// since a function return type can be syntactically identical to a tuple type:
3966//
3967// [int, int] t;
3968// [int, int] f( int );
3969//
3970// Therefore, it is necessary to look at the token after identifier_or_type_name to know when to reduce
3971// cfa_abstract_tuple. To make this LR(1), several rules have to be flattened (lengthened) to allow the necessary
3972// lookahead. To accomplish this, cfa_abstract_declarator has an entry point without tuple, and tuple declarations are
3973// duplicated when appearing with cfa_function_specifier.
3974
3975cfa_abstract_declarator_tuple: // CFA
3976 cfa_abstract_tuple
3977 | type_qualifier_list cfa_abstract_tuple
3978 { $$ = $2->addQualifiers( $1 ); }
3979 | cfa_abstract_declarator_no_tuple
3980 ;
3981
3982cfa_abstract_declarator_no_tuple: // CFA
3983 cfa_abstract_ptr
3984 | cfa_abstract_array
3985 ;
3986
3987cfa_abstract_ptr: // CFA
3988 ptrref_operator type_specifier
3989 { $$ = $2->addNewPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3990 | type_qualifier_list ptrref_operator type_specifier
3991 { $$ = $3->addNewPointer( DeclarationNode::newPointer( $1, $2 ) ); }
3992 | ptrref_operator cfa_abstract_function
3993 { $$ = $2->addNewPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3994 | type_qualifier_list ptrref_operator cfa_abstract_function
3995 { $$ = $3->addNewPointer( DeclarationNode::newPointer( $1, $2 ) ); }
3996 | ptrref_operator cfa_abstract_declarator_tuple
3997 { $$ = $2->addNewPointer( DeclarationNode::newPointer( nullptr, $1 ) ); }
3998 | type_qualifier_list ptrref_operator cfa_abstract_declarator_tuple
3999 { $$ = $3->addNewPointer( DeclarationNode::newPointer( $1, $2 ) ); }
4000 ;
4001
4002cfa_abstract_array: // CFA
4003 // Only the first dimension can be empty. Empty dimension must be factored out due to shift/reduce conflict with
4004 // empty (void) function return type.
4005 '[' ']' type_specifier
4006 { $$ = $3->addNewArray( DeclarationNode::newArray( nullptr, nullptr, false ) ); }
4007 | '[' ']' multi_array_dimension type_specifier
4008 { $$ = $4->addNewArray( $3 )->addNewArray( DeclarationNode::newArray( nullptr, nullptr, false ) ); }
4009 | multi_array_dimension type_specifier
4010 { $$ = $2->addNewArray( $1 ); }
4011 | '[' ']' cfa_abstract_ptr
4012 { $$ = $3->addNewArray( DeclarationNode::newArray( nullptr, nullptr, false ) ); }
4013 | '[' ']' multi_array_dimension cfa_abstract_ptr
4014 { $$ = $4->addNewArray( $3 )->addNewArray( DeclarationNode::newArray( nullptr, nullptr, false ) ); }
4015 | multi_array_dimension cfa_abstract_ptr
4016 { $$ = $2->addNewArray( $1 ); }
4017 ;
4018
4019cfa_abstract_tuple: // CFA
4020 '[' push cfa_abstract_parameter_list pop ']'
4021 { $$ = DeclarationNode::newTuple( $3 ); }
4022 | '[' push type_specifier_nobody ELLIPSIS pop ']'
4023 { SemanticError( yylloc, "Tuple array currently unimplemented." ); $$ = nullptr; }
4024 | '[' push type_specifier_nobody ELLIPSIS constant_expression pop ']'
4025 { SemanticError( yylloc, "Tuple array currently unimplemented." ); $$ = nullptr; }
4026 ;
4027
4028cfa_abstract_function: // CFA
4029// '[' ']' '(' cfa_parameter_ellipsis_list_opt ')'
4030// { $$ = DeclarationNode::newFunction( nullptr, DeclarationNode::newTuple( nullptr ), $4, nullptr ); }
4031 cfa_abstract_tuple '(' push cfa_parameter_ellipsis_list_opt pop ')'
4032 { $$ = DeclarationNode::newFunction( nullptr, $1, $4, nullptr ); }
4033 | cfa_function_return '(' push cfa_parameter_ellipsis_list_opt pop ')'
4034 { $$ = DeclarationNode::newFunction( nullptr, $1, $4, nullptr ); }
4035 ;
4036
4037// 1) ISO/IEC 9899:1999 Section 6.7.2(2) : "At least one type specifier shall be given in the declaration specifiers in
4038// each declaration, and in the specifier-qualifier list in each structure declaration and type name."
4039//
4040// 2) ISO/IEC 9899:1999 Section 6.11.5(1) : "The placement of a storage-class specifier other than at the beginning of
4041// the declaration specifiers in a declaration is an obsolescent feature."
4042//
4043// 3) ISO/IEC 9899:1999 Section 6.11.6(1) : "The use of function declarators with empty parentheses (not
4044// prototype-format parameter type declarators) is an obsolescent feature."
4045//
4046// 4) ISO/IEC 9899:1999 Section 6.11.7(1) : "The use of function definitions with separate parameter identifier and
4047// declaration lists (not prototype-format parameter type and identifier declarators) is an obsolescent feature.
4048
4049// ************************ MISCELLANEOUS ********************************
4050
4051comma_opt: // redundant comma
4052 // empty
4053 | ','
4054 ;
4055
4056default_initializer_opt:
4057 // empty
4058 { $$ = nullptr; }
4059 | '=' assignment_expression
4060 { $$ = $2; }
4061 ;
4062
4063%%
4064
4065// ----end of grammar----
4066
4067// Local Variables: //
4068// mode: c++ //
4069// tab-width: 4 //
4070// compile-command: "make install" //
4071// End: //
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