symbol.c (gfc_free_charlen): Whitespace.
[gcc.git] / gcc / fortran / symbol.c
1 /* Maintain binary trees of symbols.
2 Copyright (C) 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008,
3 2009, 2010, 2011
4 Free Software Foundation, Inc.
5 Contributed by Andy Vaught
6
7 This file is part of GCC.
8
9 GCC is free software; you can redistribute it and/or modify it under
10 the terms of the GNU General Public License as published by the Free
11 Software Foundation; either version 3, or (at your option) any later
12 version.
13
14 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
15 WARRANTY; without even the implied warranty of MERCHANTABILITY or
16 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
17 for more details.
18
19 You should have received a copy of the GNU General Public License
20 along with GCC; see the file COPYING3. If not see
21 <http://www.gnu.org/licenses/>. */
22
23
24 #include "config.h"
25 #include "system.h"
26 #include "flags.h"
27 #include "gfortran.h"
28 #include "parse.h"
29 #include "match.h"
30 #include "constructor.h"
31
32
33 /* Strings for all symbol attributes. We use these for dumping the
34 parse tree, in error messages, and also when reading and writing
35 modules. */
36
37 const mstring flavors[] =
38 {
39 minit ("UNKNOWN-FL", FL_UNKNOWN), minit ("PROGRAM", FL_PROGRAM),
40 minit ("BLOCK-DATA", FL_BLOCK_DATA), minit ("MODULE", FL_MODULE),
41 minit ("VARIABLE", FL_VARIABLE), minit ("PARAMETER", FL_PARAMETER),
42 minit ("LABEL", FL_LABEL), minit ("PROCEDURE", FL_PROCEDURE),
43 minit ("DERIVED", FL_DERIVED), minit ("NAMELIST", FL_NAMELIST),
44 minit (NULL, -1)
45 };
46
47 const mstring procedures[] =
48 {
49 minit ("UNKNOWN-PROC", PROC_UNKNOWN),
50 minit ("MODULE-PROC", PROC_MODULE),
51 minit ("INTERNAL-PROC", PROC_INTERNAL),
52 minit ("DUMMY-PROC", PROC_DUMMY),
53 minit ("INTRINSIC-PROC", PROC_INTRINSIC),
54 minit ("EXTERNAL-PROC", PROC_EXTERNAL),
55 minit ("STATEMENT-PROC", PROC_ST_FUNCTION),
56 minit (NULL, -1)
57 };
58
59 const mstring intents[] =
60 {
61 minit ("UNKNOWN-INTENT", INTENT_UNKNOWN),
62 minit ("IN", INTENT_IN),
63 minit ("OUT", INTENT_OUT),
64 minit ("INOUT", INTENT_INOUT),
65 minit (NULL, -1)
66 };
67
68 const mstring access_types[] =
69 {
70 minit ("UNKNOWN-ACCESS", ACCESS_UNKNOWN),
71 minit ("PUBLIC", ACCESS_PUBLIC),
72 minit ("PRIVATE", ACCESS_PRIVATE),
73 minit (NULL, -1)
74 };
75
76 const mstring ifsrc_types[] =
77 {
78 minit ("UNKNOWN", IFSRC_UNKNOWN),
79 minit ("DECL", IFSRC_DECL),
80 minit ("BODY", IFSRC_IFBODY)
81 };
82
83 const mstring save_status[] =
84 {
85 minit ("UNKNOWN", SAVE_NONE),
86 minit ("EXPLICIT-SAVE", SAVE_EXPLICIT),
87 minit ("IMPLICIT-SAVE", SAVE_IMPLICIT),
88 };
89
90 /* This is to make sure the backend generates setup code in the correct
91 order. */
92
93 static int next_dummy_order = 1;
94
95
96 gfc_namespace *gfc_current_ns;
97 gfc_namespace *gfc_global_ns_list;
98
99 gfc_gsymbol *gfc_gsym_root = NULL;
100
101 static gfc_symbol *changed_syms = NULL;
102
103 gfc_dt_list *gfc_derived_types;
104
105
106 /* List of tentative typebound-procedures. */
107
108 typedef struct tentative_tbp
109 {
110 gfc_typebound_proc *proc;
111 struct tentative_tbp *next;
112 }
113 tentative_tbp;
114
115 static tentative_tbp *tentative_tbp_list = NULL;
116
117
118 /*********** IMPLICIT NONE and IMPLICIT statement handlers ***********/
119
120 /* The following static variable indicates whether a particular element has
121 been explicitly set or not. */
122
123 static int new_flag[GFC_LETTERS];
124
125
126 /* Handle a correctly parsed IMPLICIT NONE. */
127
128 void
129 gfc_set_implicit_none (void)
130 {
131 int i;
132
133 if (gfc_current_ns->seen_implicit_none)
134 {
135 gfc_error ("Duplicate IMPLICIT NONE statement at %C");
136 return;
137 }
138
139 gfc_current_ns->seen_implicit_none = 1;
140
141 for (i = 0; i < GFC_LETTERS; i++)
142 {
143 gfc_clear_ts (&gfc_current_ns->default_type[i]);
144 gfc_current_ns->set_flag[i] = 1;
145 }
146 }
147
148
149 /* Reset the implicit range flags. */
150
151 void
152 gfc_clear_new_implicit (void)
153 {
154 int i;
155
156 for (i = 0; i < GFC_LETTERS; i++)
157 new_flag[i] = 0;
158 }
159
160
161 /* Prepare for a new implicit range. Sets flags in new_flag[]. */
162
163 gfc_try
164 gfc_add_new_implicit_range (int c1, int c2)
165 {
166 int i;
167
168 c1 -= 'a';
169 c2 -= 'a';
170
171 for (i = c1; i <= c2; i++)
172 {
173 if (new_flag[i])
174 {
175 gfc_error ("Letter '%c' already set in IMPLICIT statement at %C",
176 i + 'A');
177 return FAILURE;
178 }
179
180 new_flag[i] = 1;
181 }
182
183 return SUCCESS;
184 }
185
186
187 /* Add a matched implicit range for gfc_set_implicit(). Check if merging
188 the new implicit types back into the existing types will work. */
189
190 gfc_try
191 gfc_merge_new_implicit (gfc_typespec *ts)
192 {
193 int i;
194
195 if (gfc_current_ns->seen_implicit_none)
196 {
197 gfc_error ("Cannot specify IMPLICIT at %C after IMPLICIT NONE");
198 return FAILURE;
199 }
200
201 for (i = 0; i < GFC_LETTERS; i++)
202 {
203 if (new_flag[i])
204 {
205 if (gfc_current_ns->set_flag[i])
206 {
207 gfc_error ("Letter %c already has an IMPLICIT type at %C",
208 i + 'A');
209 return FAILURE;
210 }
211
212 gfc_current_ns->default_type[i] = *ts;
213 gfc_current_ns->implicit_loc[i] = gfc_current_locus;
214 gfc_current_ns->set_flag[i] = 1;
215 }
216 }
217 return SUCCESS;
218 }
219
220
221 /* Given a symbol, return a pointer to the typespec for its default type. */
222
223 gfc_typespec *
224 gfc_get_default_type (const char *name, gfc_namespace *ns)
225 {
226 char letter;
227
228 letter = name[0];
229
230 if (gfc_option.flag_allow_leading_underscore && letter == '_')
231 gfc_internal_error ("Option -fallow-leading-underscore is for use only by "
232 "gfortran developers, and should not be used for "
233 "implicitly typed variables");
234
235 if (letter < 'a' || letter > 'z')
236 gfc_internal_error ("gfc_get_default_type(): Bad symbol '%s'", name);
237
238 if (ns == NULL)
239 ns = gfc_current_ns;
240
241 return &ns->default_type[letter - 'a'];
242 }
243
244
245 /* Given a pointer to a symbol, set its type according to the first
246 letter of its name. Fails if the letter in question has no default
247 type. */
248
249 gfc_try
250 gfc_set_default_type (gfc_symbol *sym, int error_flag, gfc_namespace *ns)
251 {
252 gfc_typespec *ts;
253
254 if (sym->ts.type != BT_UNKNOWN)
255 gfc_internal_error ("gfc_set_default_type(): symbol already has a type");
256
257 ts = gfc_get_default_type (sym->name, ns);
258
259 if (ts->type == BT_UNKNOWN)
260 {
261 if (error_flag && !sym->attr.untyped)
262 {
263 gfc_error ("Symbol '%s' at %L has no IMPLICIT type",
264 sym->name, &sym->declared_at);
265 sym->attr.untyped = 1; /* Ensure we only give an error once. */
266 }
267
268 return FAILURE;
269 }
270
271 sym->ts = *ts;
272 sym->attr.implicit_type = 1;
273
274 if (ts->type == BT_CHARACTER && ts->u.cl)
275 sym->ts.u.cl = gfc_new_charlen (sym->ns, ts->u.cl);
276
277 if (sym->attr.is_bind_c == 1)
278 {
279 /* BIND(C) variables should not be implicitly declared. */
280 gfc_warning_now ("Implicitly declared BIND(C) variable '%s' at %L may "
281 "not be C interoperable", sym->name, &sym->declared_at);
282 sym->ts.f90_type = sym->ts.type;
283 }
284
285 if (sym->attr.dummy != 0)
286 {
287 if (sym->ns->proc_name != NULL
288 && (sym->ns->proc_name->attr.subroutine != 0
289 || sym->ns->proc_name->attr.function != 0)
290 && sym->ns->proc_name->attr.is_bind_c != 0)
291 {
292 /* Dummy args to a BIND(C) routine may not be interoperable if
293 they are implicitly typed. */
294 gfc_warning_now ("Implicitly declared variable '%s' at %L may not "
295 "be C interoperable but it is a dummy argument to "
296 "the BIND(C) procedure '%s' at %L", sym->name,
297 &(sym->declared_at), sym->ns->proc_name->name,
298 &(sym->ns->proc_name->declared_at));
299 sym->ts.f90_type = sym->ts.type;
300 }
301 }
302
303 return SUCCESS;
304 }
305
306
307 /* This function is called from parse.c(parse_progunit) to check the
308 type of the function is not implicitly typed in the host namespace
309 and to implicitly type the function result, if necessary. */
310
311 void
312 gfc_check_function_type (gfc_namespace *ns)
313 {
314 gfc_symbol *proc = ns->proc_name;
315
316 if (!proc->attr.contained || proc->result->attr.implicit_type)
317 return;
318
319 if (proc->result->ts.type == BT_UNKNOWN && proc->result->ts.interface == NULL)
320 {
321 if (gfc_set_default_type (proc->result, 0, gfc_current_ns)
322 == SUCCESS)
323 {
324 if (proc->result != proc)
325 {
326 proc->ts = proc->result->ts;
327 proc->as = gfc_copy_array_spec (proc->result->as);
328 proc->attr.dimension = proc->result->attr.dimension;
329 proc->attr.pointer = proc->result->attr.pointer;
330 proc->attr.allocatable = proc->result->attr.allocatable;
331 }
332 }
333 else if (!proc->result->attr.proc_pointer)
334 {
335 gfc_error ("Function result '%s' at %L has no IMPLICIT type",
336 proc->result->name, &proc->result->declared_at);
337 proc->result->attr.untyped = 1;
338 }
339 }
340 }
341
342
343 /******************** Symbol attribute stuff *********************/
344
345 /* This is a generic conflict-checker. We do this to avoid having a
346 single conflict in two places. */
347
348 #define conf(a, b) if (attr->a && attr->b) { a1 = a; a2 = b; goto conflict; }
349 #define conf2(a) if (attr->a) { a2 = a; goto conflict; }
350 #define conf_std(a, b, std) if (attr->a && attr->b)\
351 {\
352 a1 = a;\
353 a2 = b;\
354 standard = std;\
355 goto conflict_std;\
356 }
357
358 static gfc_try
359 check_conflict (symbol_attribute *attr, const char *name, locus *where)
360 {
361 static const char *dummy = "DUMMY", *save = "SAVE", *pointer = "POINTER",
362 *target = "TARGET", *external = "EXTERNAL", *intent = "INTENT",
363 *intent_in = "INTENT(IN)", *intrinsic = "INTRINSIC",
364 *intent_out = "INTENT(OUT)", *intent_inout = "INTENT(INOUT)",
365 *allocatable = "ALLOCATABLE", *elemental = "ELEMENTAL",
366 *privat = "PRIVATE", *recursive = "RECURSIVE",
367 *in_common = "COMMON", *result = "RESULT", *in_namelist = "NAMELIST",
368 *publik = "PUBLIC", *optional = "OPTIONAL", *entry = "ENTRY",
369 *function = "FUNCTION", *subroutine = "SUBROUTINE",
370 *dimension = "DIMENSION", *in_equivalence = "EQUIVALENCE",
371 *use_assoc = "USE ASSOCIATED", *cray_pointer = "CRAY POINTER",
372 *cray_pointee = "CRAY POINTEE", *data = "DATA", *value = "VALUE",
373 *volatile_ = "VOLATILE", *is_protected = "PROTECTED",
374 *is_bind_c = "BIND(C)", *procedure = "PROCEDURE",
375 *asynchronous = "ASYNCHRONOUS", *codimension = "CODIMENSION",
376 *contiguous = "CONTIGUOUS", *generic = "GENERIC";
377 static const char *threadprivate = "THREADPRIVATE";
378
379 const char *a1, *a2;
380 int standard;
381
382 if (where == NULL)
383 where = &gfc_current_locus;
384
385 if (attr->pointer && attr->intent != INTENT_UNKNOWN)
386 {
387 a1 = pointer;
388 a2 = intent;
389 standard = GFC_STD_F2003;
390 goto conflict_std;
391 }
392
393 if (attr->in_namelist && (attr->allocatable || attr->pointer))
394 {
395 a1 = in_namelist;
396 a2 = attr->allocatable ? allocatable : pointer;
397 standard = GFC_STD_F2003;
398 goto conflict_std;
399 }
400
401 /* Check for attributes not allowed in a BLOCK DATA. */
402 if (gfc_current_state () == COMP_BLOCK_DATA)
403 {
404 a1 = NULL;
405
406 if (attr->in_namelist)
407 a1 = in_namelist;
408 if (attr->allocatable)
409 a1 = allocatable;
410 if (attr->external)
411 a1 = external;
412 if (attr->optional)
413 a1 = optional;
414 if (attr->access == ACCESS_PRIVATE)
415 a1 = privat;
416 if (attr->access == ACCESS_PUBLIC)
417 a1 = publik;
418 if (attr->intent != INTENT_UNKNOWN)
419 a1 = intent;
420
421 if (a1 != NULL)
422 {
423 gfc_error
424 ("%s attribute not allowed in BLOCK DATA program unit at %L",
425 a1, where);
426 return FAILURE;
427 }
428 }
429
430 if (attr->save == SAVE_EXPLICIT)
431 {
432 conf (dummy, save);
433 conf (in_common, save);
434 conf (result, save);
435
436 switch (attr->flavor)
437 {
438 case FL_PROGRAM:
439 case FL_BLOCK_DATA:
440 case FL_MODULE:
441 case FL_LABEL:
442 case FL_DERIVED:
443 case FL_PARAMETER:
444 a1 = gfc_code2string (flavors, attr->flavor);
445 a2 = save;
446 goto conflict;
447
448 case FL_PROCEDURE:
449 /* Conflicts between SAVE and PROCEDURE will be checked at
450 resolution stage, see "resolve_fl_procedure". */
451 case FL_VARIABLE:
452 case FL_NAMELIST:
453 default:
454 break;
455 }
456 }
457
458 conf (dummy, entry);
459 conf (dummy, intrinsic);
460 conf (dummy, threadprivate);
461 conf (pointer, target);
462 conf (pointer, intrinsic);
463 conf (pointer, elemental);
464 conf (allocatable, elemental);
465
466 conf (target, external);
467 conf (target, intrinsic);
468
469 if (!attr->if_source)
470 conf (external, dimension); /* See Fortran 95's R504. */
471
472 conf (external, intrinsic);
473 conf (entry, intrinsic);
474
475 if ((attr->if_source == IFSRC_DECL && !attr->procedure) || attr->contained)
476 conf (external, subroutine);
477
478 if (attr->proc_pointer && gfc_notify_std (GFC_STD_F2003,
479 "Fortran 2003: Procedure pointer at %C") == FAILURE)
480 return FAILURE;
481
482 conf (allocatable, pointer);
483 conf_std (allocatable, dummy, GFC_STD_F2003);
484 conf_std (allocatable, function, GFC_STD_F2003);
485 conf_std (allocatable, result, GFC_STD_F2003);
486 conf (elemental, recursive);
487
488 conf (in_common, dummy);
489 conf (in_common, allocatable);
490 conf (in_common, codimension);
491 conf (in_common, result);
492
493 conf (in_equivalence, use_assoc);
494 conf (in_equivalence, codimension);
495 conf (in_equivalence, dummy);
496 conf (in_equivalence, target);
497 conf (in_equivalence, pointer);
498 conf (in_equivalence, function);
499 conf (in_equivalence, result);
500 conf (in_equivalence, entry);
501 conf (in_equivalence, allocatable);
502 conf (in_equivalence, threadprivate);
503
504 conf (dummy, result);
505 conf (entry, result);
506 conf (generic, result);
507
508 conf (function, subroutine);
509
510 if (!function && !subroutine)
511 conf (is_bind_c, dummy);
512
513 conf (is_bind_c, cray_pointer);
514 conf (is_bind_c, cray_pointee);
515 conf (is_bind_c, codimension);
516 conf (is_bind_c, allocatable);
517 conf (is_bind_c, elemental);
518
519 /* Need to also get volatile attr, according to 5.1 of F2003 draft.
520 Parameter conflict caught below. Also, value cannot be specified
521 for a dummy procedure. */
522
523 /* Cray pointer/pointee conflicts. */
524 conf (cray_pointer, cray_pointee);
525 conf (cray_pointer, dimension);
526 conf (cray_pointer, codimension);
527 conf (cray_pointer, contiguous);
528 conf (cray_pointer, pointer);
529 conf (cray_pointer, target);
530 conf (cray_pointer, allocatable);
531 conf (cray_pointer, external);
532 conf (cray_pointer, intrinsic);
533 conf (cray_pointer, in_namelist);
534 conf (cray_pointer, function);
535 conf (cray_pointer, subroutine);
536 conf (cray_pointer, entry);
537
538 conf (cray_pointee, allocatable);
539 conf (cray_pointer, contiguous);
540 conf (cray_pointer, codimension);
541 conf (cray_pointee, intent);
542 conf (cray_pointee, optional);
543 conf (cray_pointee, dummy);
544 conf (cray_pointee, target);
545 conf (cray_pointee, intrinsic);
546 conf (cray_pointee, pointer);
547 conf (cray_pointee, entry);
548 conf (cray_pointee, in_common);
549 conf (cray_pointee, in_equivalence);
550 conf (cray_pointee, threadprivate);
551
552 conf (data, dummy);
553 conf (data, function);
554 conf (data, result);
555 conf (data, allocatable);
556
557 conf (value, pointer)
558 conf (value, allocatable)
559 conf (value, subroutine)
560 conf (value, function)
561 conf (value, volatile_)
562 conf (value, dimension)
563 conf (value, codimension)
564 conf (value, external)
565
566 conf (codimension, result)
567
568 if (attr->value
569 && (attr->intent == INTENT_OUT || attr->intent == INTENT_INOUT))
570 {
571 a1 = value;
572 a2 = attr->intent == INTENT_OUT ? intent_out : intent_inout;
573 goto conflict;
574 }
575
576 conf (is_protected, intrinsic)
577 conf (is_protected, in_common)
578
579 conf (asynchronous, intrinsic)
580 conf (asynchronous, external)
581
582 conf (volatile_, intrinsic)
583 conf (volatile_, external)
584
585 if (attr->volatile_ && attr->intent == INTENT_IN)
586 {
587 a1 = volatile_;
588 a2 = intent_in;
589 goto conflict;
590 }
591
592 conf (procedure, allocatable)
593 conf (procedure, dimension)
594 conf (procedure, codimension)
595 conf (procedure, intrinsic)
596 conf (procedure, target)
597 conf (procedure, value)
598 conf (procedure, volatile_)
599 conf (procedure, asynchronous)
600 conf (procedure, entry)
601
602 a1 = gfc_code2string (flavors, attr->flavor);
603
604 if (attr->in_namelist
605 && attr->flavor != FL_VARIABLE
606 && attr->flavor != FL_PROCEDURE
607 && attr->flavor != FL_UNKNOWN)
608 {
609 a2 = in_namelist;
610 goto conflict;
611 }
612
613 switch (attr->flavor)
614 {
615 case FL_PROGRAM:
616 case FL_BLOCK_DATA:
617 case FL_MODULE:
618 case FL_LABEL:
619 conf2 (codimension);
620 conf2 (dimension);
621 conf2 (dummy);
622 conf2 (volatile_);
623 conf2 (asynchronous);
624 conf2 (contiguous);
625 conf2 (pointer);
626 conf2 (is_protected);
627 conf2 (target);
628 conf2 (external);
629 conf2 (intrinsic);
630 conf2 (allocatable);
631 conf2 (result);
632 conf2 (in_namelist);
633 conf2 (optional);
634 conf2 (function);
635 conf2 (subroutine);
636 conf2 (threadprivate);
637
638 if (attr->access == ACCESS_PUBLIC || attr->access == ACCESS_PRIVATE)
639 {
640 a2 = attr->access == ACCESS_PUBLIC ? publik : privat;
641 gfc_error ("%s attribute applied to %s %s at %L", a2, a1,
642 name, where);
643 return FAILURE;
644 }
645
646 if (attr->is_bind_c)
647 {
648 gfc_error_now ("BIND(C) applied to %s %s at %L", a1, name, where);
649 return FAILURE;
650 }
651
652 break;
653
654 case FL_VARIABLE:
655 break;
656
657 case FL_NAMELIST:
658 conf2 (result);
659 break;
660
661 case FL_PROCEDURE:
662 /* Conflicts with INTENT, SAVE and RESULT will be checked
663 at resolution stage, see "resolve_fl_procedure". */
664
665 if (attr->subroutine)
666 {
667 a1 = subroutine;
668 conf2 (target);
669 conf2 (allocatable);
670 conf2 (volatile_);
671 conf2 (asynchronous);
672 conf2 (in_namelist);
673 conf2 (codimension);
674 conf2 (dimension);
675 conf2 (function);
676 if (!attr->proc_pointer)
677 conf2 (threadprivate);
678 }
679
680 if (!attr->proc_pointer)
681 conf2 (in_common);
682
683 switch (attr->proc)
684 {
685 case PROC_ST_FUNCTION:
686 conf2 (dummy);
687 conf2 (target);
688 break;
689
690 case PROC_MODULE:
691 conf2 (dummy);
692 break;
693
694 case PROC_DUMMY:
695 conf2 (result);
696 conf2 (threadprivate);
697 break;
698
699 default:
700 break;
701 }
702
703 break;
704
705 case FL_DERIVED:
706 conf2 (dummy);
707 conf2 (pointer);
708 conf2 (target);
709 conf2 (external);
710 conf2 (intrinsic);
711 conf2 (allocatable);
712 conf2 (optional);
713 conf2 (entry);
714 conf2 (function);
715 conf2 (subroutine);
716 conf2 (threadprivate);
717 conf2 (result);
718
719 if (attr->intent != INTENT_UNKNOWN)
720 {
721 a2 = intent;
722 goto conflict;
723 }
724 break;
725
726 case FL_PARAMETER:
727 conf2 (external);
728 conf2 (intrinsic);
729 conf2 (optional);
730 conf2 (allocatable);
731 conf2 (function);
732 conf2 (subroutine);
733 conf2 (entry);
734 conf2 (contiguous);
735 conf2 (pointer);
736 conf2 (is_protected);
737 conf2 (target);
738 conf2 (dummy);
739 conf2 (in_common);
740 conf2 (value);
741 conf2 (volatile_);
742 conf2 (asynchronous);
743 conf2 (threadprivate);
744 conf2 (value);
745 conf2 (is_bind_c);
746 conf2 (codimension);
747 conf2 (result);
748 break;
749
750 default:
751 break;
752 }
753
754 return SUCCESS;
755
756 conflict:
757 if (name == NULL)
758 gfc_error ("%s attribute conflicts with %s attribute at %L",
759 a1, a2, where);
760 else
761 gfc_error ("%s attribute conflicts with %s attribute in '%s' at %L",
762 a1, a2, name, where);
763
764 return FAILURE;
765
766 conflict_std:
767 if (name == NULL)
768 {
769 return gfc_notify_std (standard, "Fortran 2003: %s attribute "
770 "with %s attribute at %L", a1, a2,
771 where);
772 }
773 else
774 {
775 return gfc_notify_std (standard, "Fortran 2003: %s attribute "
776 "with %s attribute in '%s' at %L",
777 a1, a2, name, where);
778 }
779 }
780
781 #undef conf
782 #undef conf2
783 #undef conf_std
784
785
786 /* Mark a symbol as referenced. */
787
788 void
789 gfc_set_sym_referenced (gfc_symbol *sym)
790 {
791
792 if (sym->attr.referenced)
793 return;
794
795 sym->attr.referenced = 1;
796
797 /* Remember which order dummy variables are accessed in. */
798 if (sym->attr.dummy)
799 sym->dummy_order = next_dummy_order++;
800 }
801
802
803 /* Common subroutine called by attribute changing subroutines in order
804 to prevent them from changing a symbol that has been
805 use-associated. Returns zero if it is OK to change the symbol,
806 nonzero if not. */
807
808 static int
809 check_used (symbol_attribute *attr, const char *name, locus *where)
810 {
811
812 if (attr->use_assoc == 0)
813 return 0;
814
815 if (where == NULL)
816 where = &gfc_current_locus;
817
818 if (name == NULL)
819 gfc_error ("Cannot change attributes of USE-associated symbol at %L",
820 where);
821 else
822 gfc_error ("Cannot change attributes of USE-associated symbol %s at %L",
823 name, where);
824
825 return 1;
826 }
827
828
829 /* Generate an error because of a duplicate attribute. */
830
831 static void
832 duplicate_attr (const char *attr, locus *where)
833 {
834
835 if (where == NULL)
836 where = &gfc_current_locus;
837
838 gfc_error ("Duplicate %s attribute specified at %L", attr, where);
839 }
840
841
842 gfc_try
843 gfc_add_ext_attribute (symbol_attribute *attr, ext_attr_id_t ext_attr,
844 locus *where ATTRIBUTE_UNUSED)
845 {
846 attr->ext_attr |= 1 << ext_attr;
847 return SUCCESS;
848 }
849
850
851 /* Called from decl.c (attr_decl1) to check attributes, when declared
852 separately. */
853
854 gfc_try
855 gfc_add_attribute (symbol_attribute *attr, locus *where)
856 {
857 if (check_used (attr, NULL, where))
858 return FAILURE;
859
860 return check_conflict (attr, NULL, where);
861 }
862
863
864 gfc_try
865 gfc_add_allocatable (symbol_attribute *attr, locus *where)
866 {
867
868 if (check_used (attr, NULL, where))
869 return FAILURE;
870
871 if (attr->allocatable)
872 {
873 duplicate_attr ("ALLOCATABLE", where);
874 return FAILURE;
875 }
876
877 if (attr->flavor == FL_PROCEDURE && attr->if_source == IFSRC_IFBODY
878 && gfc_find_state (COMP_INTERFACE) == FAILURE)
879 {
880 gfc_error ("ALLOCATABLE specified outside of INTERFACE body at %L",
881 where);
882 return FAILURE;
883 }
884
885 attr->allocatable = 1;
886 return check_conflict (attr, NULL, where);
887 }
888
889
890 gfc_try
891 gfc_add_codimension (symbol_attribute *attr, const char *name, locus *where)
892 {
893
894 if (check_used (attr, name, where))
895 return FAILURE;
896
897 if (attr->codimension)
898 {
899 duplicate_attr ("CODIMENSION", where);
900 return FAILURE;
901 }
902
903 if (attr->flavor == FL_PROCEDURE && attr->if_source == IFSRC_IFBODY
904 && gfc_find_state (COMP_INTERFACE) == FAILURE)
905 {
906 gfc_error ("CODIMENSION specified for '%s' outside its INTERFACE body "
907 "at %L", name, where);
908 return FAILURE;
909 }
910
911 attr->codimension = 1;
912 return check_conflict (attr, name, where);
913 }
914
915
916 gfc_try
917 gfc_add_dimension (symbol_attribute *attr, const char *name, locus *where)
918 {
919
920 if (check_used (attr, name, where))
921 return FAILURE;
922
923 if (attr->dimension)
924 {
925 duplicate_attr ("DIMENSION", where);
926 return FAILURE;
927 }
928
929 if (attr->flavor == FL_PROCEDURE && attr->if_source == IFSRC_IFBODY
930 && gfc_find_state (COMP_INTERFACE) == FAILURE)
931 {
932 gfc_error ("DIMENSION specified for '%s' outside its INTERFACE body "
933 "at %L", name, where);
934 return FAILURE;
935 }
936
937 attr->dimension = 1;
938 return check_conflict (attr, name, where);
939 }
940
941
942 gfc_try
943 gfc_add_contiguous (symbol_attribute *attr, const char *name, locus *where)
944 {
945
946 if (check_used (attr, name, where))
947 return FAILURE;
948
949 attr->contiguous = 1;
950 return check_conflict (attr, name, where);
951 }
952
953
954 gfc_try
955 gfc_add_external (symbol_attribute *attr, locus *where)
956 {
957
958 if (check_used (attr, NULL, where))
959 return FAILURE;
960
961 if (attr->external)
962 {
963 duplicate_attr ("EXTERNAL", where);
964 return FAILURE;
965 }
966
967 if (attr->pointer && attr->if_source != IFSRC_IFBODY)
968 {
969 attr->pointer = 0;
970 attr->proc_pointer = 1;
971 }
972
973 attr->external = 1;
974
975 return check_conflict (attr, NULL, where);
976 }
977
978
979 gfc_try
980 gfc_add_intrinsic (symbol_attribute *attr, locus *where)
981 {
982
983 if (check_used (attr, NULL, where))
984 return FAILURE;
985
986 if (attr->intrinsic)
987 {
988 duplicate_attr ("INTRINSIC", where);
989 return FAILURE;
990 }
991
992 attr->intrinsic = 1;
993
994 return check_conflict (attr, NULL, where);
995 }
996
997
998 gfc_try
999 gfc_add_optional (symbol_attribute *attr, locus *where)
1000 {
1001
1002 if (check_used (attr, NULL, where))
1003 return FAILURE;
1004
1005 if (attr->optional)
1006 {
1007 duplicate_attr ("OPTIONAL", where);
1008 return FAILURE;
1009 }
1010
1011 attr->optional = 1;
1012 return check_conflict (attr, NULL, where);
1013 }
1014
1015
1016 gfc_try
1017 gfc_add_pointer (symbol_attribute *attr, locus *where)
1018 {
1019
1020 if (check_used (attr, NULL, where))
1021 return FAILURE;
1022
1023 if (attr->pointer && !(attr->if_source == IFSRC_IFBODY
1024 && gfc_find_state (COMP_INTERFACE) == FAILURE))
1025 {
1026 duplicate_attr ("POINTER", where);
1027 return FAILURE;
1028 }
1029
1030 if (attr->procedure || (attr->external && attr->if_source != IFSRC_IFBODY)
1031 || (attr->if_source == IFSRC_IFBODY
1032 && gfc_find_state (COMP_INTERFACE) == FAILURE))
1033 attr->proc_pointer = 1;
1034 else
1035 attr->pointer = 1;
1036
1037 return check_conflict (attr, NULL, where);
1038 }
1039
1040
1041 gfc_try
1042 gfc_add_cray_pointer (symbol_attribute *attr, locus *where)
1043 {
1044
1045 if (check_used (attr, NULL, where))
1046 return FAILURE;
1047
1048 attr->cray_pointer = 1;
1049 return check_conflict (attr, NULL, where);
1050 }
1051
1052
1053 gfc_try
1054 gfc_add_cray_pointee (symbol_attribute *attr, locus *where)
1055 {
1056
1057 if (check_used (attr, NULL, where))
1058 return FAILURE;
1059
1060 if (attr->cray_pointee)
1061 {
1062 gfc_error ("Cray Pointee at %L appears in multiple pointer()"
1063 " statements", where);
1064 return FAILURE;
1065 }
1066
1067 attr->cray_pointee = 1;
1068 return check_conflict (attr, NULL, where);
1069 }
1070
1071
1072 gfc_try
1073 gfc_add_protected (symbol_attribute *attr, const char *name, locus *where)
1074 {
1075 if (check_used (attr, name, where))
1076 return FAILURE;
1077
1078 if (attr->is_protected)
1079 {
1080 if (gfc_notify_std (GFC_STD_LEGACY,
1081 "Duplicate PROTECTED attribute specified at %L",
1082 where)
1083 == FAILURE)
1084 return FAILURE;
1085 }
1086
1087 attr->is_protected = 1;
1088 return check_conflict (attr, name, where);
1089 }
1090
1091
1092 gfc_try
1093 gfc_add_result (symbol_attribute *attr, const char *name, locus *where)
1094 {
1095
1096 if (check_used (attr, name, where))
1097 return FAILURE;
1098
1099 attr->result = 1;
1100 return check_conflict (attr, name, where);
1101 }
1102
1103
1104 gfc_try
1105 gfc_add_save (symbol_attribute *attr, save_state s, const char *name,
1106 locus *where)
1107 {
1108
1109 if (check_used (attr, name, where))
1110 return FAILURE;
1111
1112 if (s == SAVE_EXPLICIT && gfc_pure (NULL))
1113 {
1114 gfc_error
1115 ("SAVE attribute at %L cannot be specified in a PURE procedure",
1116 where);
1117 return FAILURE;
1118 }
1119
1120 if (s == SAVE_EXPLICIT && gfc_implicit_pure (NULL))
1121 gfc_current_ns->proc_name->attr.implicit_pure = 0;
1122
1123 if (s == SAVE_EXPLICIT && attr->save == SAVE_EXPLICIT)
1124 {
1125 if (gfc_notify_std (GFC_STD_LEGACY,
1126 "Duplicate SAVE attribute specified at %L",
1127 where)
1128 == FAILURE)
1129 return FAILURE;
1130 }
1131
1132 attr->save = s;
1133 return check_conflict (attr, name, where);
1134 }
1135
1136
1137 gfc_try
1138 gfc_add_value (symbol_attribute *attr, const char *name, locus *where)
1139 {
1140
1141 if (check_used (attr, name, where))
1142 return FAILURE;
1143
1144 if (attr->value)
1145 {
1146 if (gfc_notify_std (GFC_STD_LEGACY,
1147 "Duplicate VALUE attribute specified at %L",
1148 where)
1149 == FAILURE)
1150 return FAILURE;
1151 }
1152
1153 attr->value = 1;
1154 return check_conflict (attr, name, where);
1155 }
1156
1157
1158 gfc_try
1159 gfc_add_volatile (symbol_attribute *attr, const char *name, locus *where)
1160 {
1161 /* No check_used needed as 11.2.1 of the F2003 standard allows
1162 that the local identifier made accessible by a use statement can be
1163 given a VOLATILE attribute - unless it is a coarray (F2008, C560). */
1164
1165 if (attr->volatile_ && attr->volatile_ns == gfc_current_ns)
1166 if (gfc_notify_std (GFC_STD_LEGACY,
1167 "Duplicate VOLATILE attribute specified at %L", where)
1168 == FAILURE)
1169 return FAILURE;
1170
1171 attr->volatile_ = 1;
1172 attr->volatile_ns = gfc_current_ns;
1173 return check_conflict (attr, name, where);
1174 }
1175
1176
1177 gfc_try
1178 gfc_add_asynchronous (symbol_attribute *attr, const char *name, locus *where)
1179 {
1180 /* No check_used needed as 11.2.1 of the F2003 standard allows
1181 that the local identifier made accessible by a use statement can be
1182 given a ASYNCHRONOUS attribute. */
1183
1184 if (attr->asynchronous && attr->asynchronous_ns == gfc_current_ns)
1185 if (gfc_notify_std (GFC_STD_LEGACY,
1186 "Duplicate ASYNCHRONOUS attribute specified at %L",
1187 where) == FAILURE)
1188 return FAILURE;
1189
1190 attr->asynchronous = 1;
1191 attr->asynchronous_ns = gfc_current_ns;
1192 return check_conflict (attr, name, where);
1193 }
1194
1195
1196 gfc_try
1197 gfc_add_threadprivate (symbol_attribute *attr, const char *name, locus *where)
1198 {
1199
1200 if (check_used (attr, name, where))
1201 return FAILURE;
1202
1203 if (attr->threadprivate)
1204 {
1205 duplicate_attr ("THREADPRIVATE", where);
1206 return FAILURE;
1207 }
1208
1209 attr->threadprivate = 1;
1210 return check_conflict (attr, name, where);
1211 }
1212
1213
1214 gfc_try
1215 gfc_add_target (symbol_attribute *attr, locus *where)
1216 {
1217
1218 if (check_used (attr, NULL, where))
1219 return FAILURE;
1220
1221 if (attr->target)
1222 {
1223 duplicate_attr ("TARGET", where);
1224 return FAILURE;
1225 }
1226
1227 attr->target = 1;
1228 return check_conflict (attr, NULL, where);
1229 }
1230
1231
1232 gfc_try
1233 gfc_add_dummy (symbol_attribute *attr, const char *name, locus *where)
1234 {
1235
1236 if (check_used (attr, name, where))
1237 return FAILURE;
1238
1239 /* Duplicate dummy arguments are allowed due to ENTRY statements. */
1240 attr->dummy = 1;
1241 return check_conflict (attr, name, where);
1242 }
1243
1244
1245 gfc_try
1246 gfc_add_in_common (symbol_attribute *attr, const char *name, locus *where)
1247 {
1248
1249 if (check_used (attr, name, where))
1250 return FAILURE;
1251
1252 /* Duplicate attribute already checked for. */
1253 attr->in_common = 1;
1254 return check_conflict (attr, name, where);
1255 }
1256
1257
1258 gfc_try
1259 gfc_add_in_equivalence (symbol_attribute *attr, const char *name, locus *where)
1260 {
1261
1262 /* Duplicate attribute already checked for. */
1263 attr->in_equivalence = 1;
1264 if (check_conflict (attr, name, where) == FAILURE)
1265 return FAILURE;
1266
1267 if (attr->flavor == FL_VARIABLE)
1268 return SUCCESS;
1269
1270 return gfc_add_flavor (attr, FL_VARIABLE, name, where);
1271 }
1272
1273
1274 gfc_try
1275 gfc_add_data (symbol_attribute *attr, const char *name, locus *where)
1276 {
1277
1278 if (check_used (attr, name, where))
1279 return FAILURE;
1280
1281 attr->data = 1;
1282 return check_conflict (attr, name, where);
1283 }
1284
1285
1286 gfc_try
1287 gfc_add_in_namelist (symbol_attribute *attr, const char *name, locus *where)
1288 {
1289
1290 attr->in_namelist = 1;
1291 return check_conflict (attr, name, where);
1292 }
1293
1294
1295 gfc_try
1296 gfc_add_sequence (symbol_attribute *attr, const char *name, locus *where)
1297 {
1298
1299 if (check_used (attr, name, where))
1300 return FAILURE;
1301
1302 attr->sequence = 1;
1303 return check_conflict (attr, name, where);
1304 }
1305
1306
1307 gfc_try
1308 gfc_add_elemental (symbol_attribute *attr, locus *where)
1309 {
1310
1311 if (check_used (attr, NULL, where))
1312 return FAILURE;
1313
1314 if (attr->elemental)
1315 {
1316 duplicate_attr ("ELEMENTAL", where);
1317 return FAILURE;
1318 }
1319
1320 attr->elemental = 1;
1321 return check_conflict (attr, NULL, where);
1322 }
1323
1324
1325 gfc_try
1326 gfc_add_pure (symbol_attribute *attr, locus *where)
1327 {
1328
1329 if (check_used (attr, NULL, where))
1330 return FAILURE;
1331
1332 if (attr->pure)
1333 {
1334 duplicate_attr ("PURE", where);
1335 return FAILURE;
1336 }
1337
1338 attr->pure = 1;
1339 return check_conflict (attr, NULL, where);
1340 }
1341
1342
1343 gfc_try
1344 gfc_add_recursive (symbol_attribute *attr, locus *where)
1345 {
1346
1347 if (check_used (attr, NULL, where))
1348 return FAILURE;
1349
1350 if (attr->recursive)
1351 {
1352 duplicate_attr ("RECURSIVE", where);
1353 return FAILURE;
1354 }
1355
1356 attr->recursive = 1;
1357 return check_conflict (attr, NULL, where);
1358 }
1359
1360
1361 gfc_try
1362 gfc_add_entry (symbol_attribute *attr, const char *name, locus *where)
1363 {
1364
1365 if (check_used (attr, name, where))
1366 return FAILURE;
1367
1368 if (attr->entry)
1369 {
1370 duplicate_attr ("ENTRY", where);
1371 return FAILURE;
1372 }
1373
1374 attr->entry = 1;
1375 return check_conflict (attr, name, where);
1376 }
1377
1378
1379 gfc_try
1380 gfc_add_function (symbol_attribute *attr, const char *name, locus *where)
1381 {
1382
1383 if (attr->flavor != FL_PROCEDURE
1384 && gfc_add_flavor (attr, FL_PROCEDURE, name, where) == FAILURE)
1385 return FAILURE;
1386
1387 attr->function = 1;
1388 return check_conflict (attr, name, where);
1389 }
1390
1391
1392 gfc_try
1393 gfc_add_subroutine (symbol_attribute *attr, const char *name, locus *where)
1394 {
1395
1396 if (attr->flavor != FL_PROCEDURE
1397 && gfc_add_flavor (attr, FL_PROCEDURE, name, where) == FAILURE)
1398 return FAILURE;
1399
1400 attr->subroutine = 1;
1401 return check_conflict (attr, name, where);
1402 }
1403
1404
1405 gfc_try
1406 gfc_add_generic (symbol_attribute *attr, const char *name, locus *where)
1407 {
1408
1409 if (attr->flavor != FL_PROCEDURE
1410 && gfc_add_flavor (attr, FL_PROCEDURE, name, where) == FAILURE)
1411 return FAILURE;
1412
1413 attr->generic = 1;
1414 return check_conflict (attr, name, where);
1415 }
1416
1417
1418 gfc_try
1419 gfc_add_proc (symbol_attribute *attr, const char *name, locus *where)
1420 {
1421
1422 if (check_used (attr, NULL, where))
1423 return FAILURE;
1424
1425 if (attr->flavor != FL_PROCEDURE
1426 && gfc_add_flavor (attr, FL_PROCEDURE, name, where) == FAILURE)
1427 return FAILURE;
1428
1429 if (attr->procedure)
1430 {
1431 duplicate_attr ("PROCEDURE", where);
1432 return FAILURE;
1433 }
1434
1435 attr->procedure = 1;
1436
1437 return check_conflict (attr, NULL, where);
1438 }
1439
1440
1441 gfc_try
1442 gfc_add_abstract (symbol_attribute* attr, locus* where)
1443 {
1444 if (attr->abstract)
1445 {
1446 duplicate_attr ("ABSTRACT", where);
1447 return FAILURE;
1448 }
1449
1450 attr->abstract = 1;
1451 return SUCCESS;
1452 }
1453
1454
1455 /* Flavors are special because some flavors are not what Fortran
1456 considers attributes and can be reaffirmed multiple times. */
1457
1458 gfc_try
1459 gfc_add_flavor (symbol_attribute *attr, sym_flavor f, const char *name,
1460 locus *where)
1461 {
1462
1463 if ((f == FL_PROGRAM || f == FL_BLOCK_DATA || f == FL_MODULE
1464 || f == FL_PARAMETER || f == FL_LABEL || f == FL_DERIVED
1465 || f == FL_NAMELIST) && check_used (attr, name, where))
1466 return FAILURE;
1467
1468 if (attr->flavor == f && f == FL_VARIABLE)
1469 return SUCCESS;
1470
1471 if (attr->flavor != FL_UNKNOWN)
1472 {
1473 if (where == NULL)
1474 where = &gfc_current_locus;
1475
1476 if (name)
1477 gfc_error ("%s attribute of '%s' conflicts with %s attribute at %L",
1478 gfc_code2string (flavors, attr->flavor), name,
1479 gfc_code2string (flavors, f), where);
1480 else
1481 gfc_error ("%s attribute conflicts with %s attribute at %L",
1482 gfc_code2string (flavors, attr->flavor),
1483 gfc_code2string (flavors, f), where);
1484
1485 return FAILURE;
1486 }
1487
1488 attr->flavor = f;
1489
1490 return check_conflict (attr, name, where);
1491 }
1492
1493
1494 gfc_try
1495 gfc_add_procedure (symbol_attribute *attr, procedure_type t,
1496 const char *name, locus *where)
1497 {
1498
1499 if (check_used (attr, name, where))
1500 return FAILURE;
1501
1502 if (attr->flavor != FL_PROCEDURE
1503 && gfc_add_flavor (attr, FL_PROCEDURE, name, where) == FAILURE)
1504 return FAILURE;
1505
1506 if (where == NULL)
1507 where = &gfc_current_locus;
1508
1509 if (attr->proc != PROC_UNKNOWN)
1510 {
1511 gfc_error ("%s procedure at %L is already declared as %s procedure",
1512 gfc_code2string (procedures, t), where,
1513 gfc_code2string (procedures, attr->proc));
1514
1515 return FAILURE;
1516 }
1517
1518 attr->proc = t;
1519
1520 /* Statement functions are always scalar and functions. */
1521 if (t == PROC_ST_FUNCTION
1522 && ((!attr->function && gfc_add_function (attr, name, where) == FAILURE)
1523 || attr->dimension))
1524 return FAILURE;
1525
1526 return check_conflict (attr, name, where);
1527 }
1528
1529
1530 gfc_try
1531 gfc_add_intent (symbol_attribute *attr, sym_intent intent, locus *where)
1532 {
1533
1534 if (check_used (attr, NULL, where))
1535 return FAILURE;
1536
1537 if (attr->intent == INTENT_UNKNOWN)
1538 {
1539 attr->intent = intent;
1540 return check_conflict (attr, NULL, where);
1541 }
1542
1543 if (where == NULL)
1544 where = &gfc_current_locus;
1545
1546 gfc_error ("INTENT (%s) conflicts with INTENT(%s) at %L",
1547 gfc_intent_string (attr->intent),
1548 gfc_intent_string (intent), where);
1549
1550 return FAILURE;
1551 }
1552
1553
1554 /* No checks for use-association in public and private statements. */
1555
1556 gfc_try
1557 gfc_add_access (symbol_attribute *attr, gfc_access access,
1558 const char *name, locus *where)
1559 {
1560
1561 if (attr->access == ACCESS_UNKNOWN
1562 || (attr->use_assoc && attr->access != ACCESS_PRIVATE))
1563 {
1564 attr->access = access;
1565 return check_conflict (attr, name, where);
1566 }
1567
1568 if (where == NULL)
1569 where = &gfc_current_locus;
1570 gfc_error ("ACCESS specification at %L was already specified", where);
1571
1572 return FAILURE;
1573 }
1574
1575
1576 /* Set the is_bind_c field for the given symbol_attribute. */
1577
1578 gfc_try
1579 gfc_add_is_bind_c (symbol_attribute *attr, const char *name, locus *where,
1580 int is_proc_lang_bind_spec)
1581 {
1582
1583 if (is_proc_lang_bind_spec == 0 && attr->flavor == FL_PROCEDURE)
1584 gfc_error_now ("BIND(C) attribute at %L can only be used for "
1585 "variables or common blocks", where);
1586 else if (attr->is_bind_c)
1587 gfc_error_now ("Duplicate BIND attribute specified at %L", where);
1588 else
1589 attr->is_bind_c = 1;
1590
1591 if (where == NULL)
1592 where = &gfc_current_locus;
1593
1594 if (gfc_notify_std (GFC_STD_F2003, "Fortran 2003: BIND(C) at %L", where)
1595 == FAILURE)
1596 return FAILURE;
1597
1598 return check_conflict (attr, name, where);
1599 }
1600
1601
1602 /* Set the extension field for the given symbol_attribute. */
1603
1604 gfc_try
1605 gfc_add_extension (symbol_attribute *attr, locus *where)
1606 {
1607 if (where == NULL)
1608 where = &gfc_current_locus;
1609
1610 if (attr->extension)
1611 gfc_error_now ("Duplicate EXTENDS attribute specified at %L", where);
1612 else
1613 attr->extension = 1;
1614
1615 if (gfc_notify_std (GFC_STD_F2003, "Fortran 2003: EXTENDS at %L", where)
1616 == FAILURE)
1617 return FAILURE;
1618
1619 return SUCCESS;
1620 }
1621
1622
1623 gfc_try
1624 gfc_add_explicit_interface (gfc_symbol *sym, ifsrc source,
1625 gfc_formal_arglist * formal, locus *where)
1626 {
1627
1628 if (check_used (&sym->attr, sym->name, where))
1629 return FAILURE;
1630
1631 if (where == NULL)
1632 where = &gfc_current_locus;
1633
1634 if (sym->attr.if_source != IFSRC_UNKNOWN
1635 && sym->attr.if_source != IFSRC_DECL)
1636 {
1637 gfc_error ("Symbol '%s' at %L already has an explicit interface",
1638 sym->name, where);
1639 return FAILURE;
1640 }
1641
1642 if (source == IFSRC_IFBODY && (sym->attr.dimension || sym->attr.allocatable))
1643 {
1644 gfc_error ("'%s' at %L has attributes specified outside its INTERFACE "
1645 "body", sym->name, where);
1646 return FAILURE;
1647 }
1648
1649 sym->formal = formal;
1650 sym->attr.if_source = source;
1651
1652 return SUCCESS;
1653 }
1654
1655
1656 /* Add a type to a symbol. */
1657
1658 gfc_try
1659 gfc_add_type (gfc_symbol *sym, gfc_typespec *ts, locus *where)
1660 {
1661 sym_flavor flavor;
1662 bt type;
1663
1664 if (where == NULL)
1665 where = &gfc_current_locus;
1666
1667 if (sym->result)
1668 type = sym->result->ts.type;
1669 else
1670 type = sym->ts.type;
1671
1672 if (sym->attr.result && type == BT_UNKNOWN && sym->ns->proc_name)
1673 type = sym->ns->proc_name->ts.type;
1674
1675 if (type != BT_UNKNOWN && !(sym->attr.function && sym->attr.implicit_type))
1676 {
1677 if (sym->attr.use_assoc)
1678 gfc_error ("Symbol '%s' at %L conflicts with symbol from module '%s', "
1679 "use-associated at %L", sym->name, where, sym->module,
1680 &sym->declared_at);
1681 else
1682 gfc_error ("Symbol '%s' at %L already has basic type of %s", sym->name,
1683 where, gfc_basic_typename (type));
1684 return FAILURE;
1685 }
1686
1687 if (sym->attr.procedure && sym->ts.interface)
1688 {
1689 gfc_error ("Procedure '%s' at %L may not have basic type of %s",
1690 sym->name, where, gfc_basic_typename (ts->type));
1691 return FAILURE;
1692 }
1693
1694 flavor = sym->attr.flavor;
1695
1696 if (flavor == FL_PROGRAM || flavor == FL_BLOCK_DATA || flavor == FL_MODULE
1697 || flavor == FL_LABEL
1698 || (flavor == FL_PROCEDURE && sym->attr.subroutine)
1699 || flavor == FL_DERIVED || flavor == FL_NAMELIST)
1700 {
1701 gfc_error ("Symbol '%s' at %L cannot have a type", sym->name, where);
1702 return FAILURE;
1703 }
1704
1705 sym->ts = *ts;
1706 return SUCCESS;
1707 }
1708
1709
1710 /* Clears all attributes. */
1711
1712 void
1713 gfc_clear_attr (symbol_attribute *attr)
1714 {
1715 memset (attr, 0, sizeof (symbol_attribute));
1716 }
1717
1718
1719 /* Check for missing attributes in the new symbol. Currently does
1720 nothing, but it's not clear that it is unnecessary yet. */
1721
1722 gfc_try
1723 gfc_missing_attr (symbol_attribute *attr ATTRIBUTE_UNUSED,
1724 locus *where ATTRIBUTE_UNUSED)
1725 {
1726
1727 return SUCCESS;
1728 }
1729
1730
1731 /* Copy an attribute to a symbol attribute, bit by bit. Some
1732 attributes have a lot of side-effects but cannot be present given
1733 where we are called from, so we ignore some bits. */
1734
1735 gfc_try
1736 gfc_copy_attr (symbol_attribute *dest, symbol_attribute *src, locus *where)
1737 {
1738 int is_proc_lang_bind_spec;
1739
1740 /* In line with the other attributes, we only add bits but do not remove
1741 them; cf. also PR 41034. */
1742 dest->ext_attr |= src->ext_attr;
1743
1744 if (src->allocatable && gfc_add_allocatable (dest, where) == FAILURE)
1745 goto fail;
1746
1747 if (src->dimension && gfc_add_dimension (dest, NULL, where) == FAILURE)
1748 goto fail;
1749 if (src->codimension && gfc_add_codimension (dest, NULL, where) == FAILURE)
1750 goto fail;
1751 if (src->contiguous && gfc_add_contiguous (dest, NULL, where) == FAILURE)
1752 goto fail;
1753 if (src->optional && gfc_add_optional (dest, where) == FAILURE)
1754 goto fail;
1755 if (src->pointer && gfc_add_pointer (dest, where) == FAILURE)
1756 goto fail;
1757 if (src->is_protected && gfc_add_protected (dest, NULL, where) == FAILURE)
1758 goto fail;
1759 if (src->save && gfc_add_save (dest, src->save, NULL, where) == FAILURE)
1760 goto fail;
1761 if (src->value && gfc_add_value (dest, NULL, where) == FAILURE)
1762 goto fail;
1763 if (src->volatile_ && gfc_add_volatile (dest, NULL, where) == FAILURE)
1764 goto fail;
1765 if (src->asynchronous && gfc_add_asynchronous (dest, NULL, where) == FAILURE)
1766 goto fail;
1767 if (src->threadprivate
1768 && gfc_add_threadprivate (dest, NULL, where) == FAILURE)
1769 goto fail;
1770 if (src->target && gfc_add_target (dest, where) == FAILURE)
1771 goto fail;
1772 if (src->dummy && gfc_add_dummy (dest, NULL, where) == FAILURE)
1773 goto fail;
1774 if (src->result && gfc_add_result (dest, NULL, where) == FAILURE)
1775 goto fail;
1776 if (src->entry)
1777 dest->entry = 1;
1778
1779 if (src->in_namelist && gfc_add_in_namelist (dest, NULL, where) == FAILURE)
1780 goto fail;
1781
1782 if (src->in_common && gfc_add_in_common (dest, NULL, where) == FAILURE)
1783 goto fail;
1784
1785 if (src->generic && gfc_add_generic (dest, NULL, where) == FAILURE)
1786 goto fail;
1787 if (src->function && gfc_add_function (dest, NULL, where) == FAILURE)
1788 goto fail;
1789 if (src->subroutine && gfc_add_subroutine (dest, NULL, where) == FAILURE)
1790 goto fail;
1791
1792 if (src->sequence && gfc_add_sequence (dest, NULL, where) == FAILURE)
1793 goto fail;
1794 if (src->elemental && gfc_add_elemental (dest, where) == FAILURE)
1795 goto fail;
1796 if (src->pure && gfc_add_pure (dest, where) == FAILURE)
1797 goto fail;
1798 if (src->recursive && gfc_add_recursive (dest, where) == FAILURE)
1799 goto fail;
1800
1801 if (src->flavor != FL_UNKNOWN
1802 && gfc_add_flavor (dest, src->flavor, NULL, where) == FAILURE)
1803 goto fail;
1804
1805 if (src->intent != INTENT_UNKNOWN
1806 && gfc_add_intent (dest, src->intent, where) == FAILURE)
1807 goto fail;
1808
1809 if (src->access != ACCESS_UNKNOWN
1810 && gfc_add_access (dest, src->access, NULL, where) == FAILURE)
1811 goto fail;
1812
1813 if (gfc_missing_attr (dest, where) == FAILURE)
1814 goto fail;
1815
1816 if (src->cray_pointer && gfc_add_cray_pointer (dest, where) == FAILURE)
1817 goto fail;
1818 if (src->cray_pointee && gfc_add_cray_pointee (dest, where) == FAILURE)
1819 goto fail;
1820
1821 is_proc_lang_bind_spec = (src->flavor == FL_PROCEDURE ? 1 : 0);
1822 if (src->is_bind_c
1823 && gfc_add_is_bind_c (dest, NULL, where, is_proc_lang_bind_spec)
1824 != SUCCESS)
1825 return FAILURE;
1826
1827 if (src->is_c_interop)
1828 dest->is_c_interop = 1;
1829 if (src->is_iso_c)
1830 dest->is_iso_c = 1;
1831
1832 if (src->external && gfc_add_external (dest, where) == FAILURE)
1833 goto fail;
1834 if (src->intrinsic && gfc_add_intrinsic (dest, where) == FAILURE)
1835 goto fail;
1836 if (src->proc_pointer)
1837 dest->proc_pointer = 1;
1838
1839 return SUCCESS;
1840
1841 fail:
1842 return FAILURE;
1843 }
1844
1845
1846 /************** Component name management ************/
1847
1848 /* Component names of a derived type form their own little namespaces
1849 that are separate from all other spaces. The space is composed of
1850 a singly linked list of gfc_component structures whose head is
1851 located in the parent symbol. */
1852
1853
1854 /* Add a component name to a symbol. The call fails if the name is
1855 already present. On success, the component pointer is modified to
1856 point to the additional component structure. */
1857
1858 gfc_try
1859 gfc_add_component (gfc_symbol *sym, const char *name,
1860 gfc_component **component)
1861 {
1862 gfc_component *p, *tail;
1863
1864 tail = NULL;
1865
1866 for (p = sym->components; p; p = p->next)
1867 {
1868 if (strcmp (p->name, name) == 0)
1869 {
1870 gfc_error ("Component '%s' at %C already declared at %L",
1871 name, &p->loc);
1872 return FAILURE;
1873 }
1874
1875 tail = p;
1876 }
1877
1878 if (sym->attr.extension
1879 && gfc_find_component (sym->components->ts.u.derived, name, true, true))
1880 {
1881 gfc_error ("Component '%s' at %C already in the parent type "
1882 "at %L", name, &sym->components->ts.u.derived->declared_at);
1883 return FAILURE;
1884 }
1885
1886 /* Allocate a new component. */
1887 p = gfc_get_component ();
1888
1889 if (tail == NULL)
1890 sym->components = p;
1891 else
1892 tail->next = p;
1893
1894 p->name = gfc_get_string (name);
1895 p->loc = gfc_current_locus;
1896 p->ts.type = BT_UNKNOWN;
1897
1898 *component = p;
1899 return SUCCESS;
1900 }
1901
1902
1903 /* Recursive function to switch derived types of all symbol in a
1904 namespace. */
1905
1906 static void
1907 switch_types (gfc_symtree *st, gfc_symbol *from, gfc_symbol *to)
1908 {
1909 gfc_symbol *sym;
1910
1911 if (st == NULL)
1912 return;
1913
1914 sym = st->n.sym;
1915 if (sym->ts.type == BT_DERIVED && sym->ts.u.derived == from)
1916 sym->ts.u.derived = to;
1917
1918 switch_types (st->left, from, to);
1919 switch_types (st->right, from, to);
1920 }
1921
1922
1923 /* This subroutine is called when a derived type is used in order to
1924 make the final determination about which version to use. The
1925 standard requires that a type be defined before it is 'used', but
1926 such types can appear in IMPLICIT statements before the actual
1927 definition. 'Using' in this context means declaring a variable to
1928 be that type or using the type constructor.
1929
1930 If a type is used and the components haven't been defined, then we
1931 have to have a derived type in a parent unit. We find the node in
1932 the other namespace and point the symtree node in this namespace to
1933 that node. Further reference to this name point to the correct
1934 node. If we can't find the node in a parent namespace, then we have
1935 an error.
1936
1937 This subroutine takes a pointer to a symbol node and returns a
1938 pointer to the translated node or NULL for an error. Usually there
1939 is no translation and we return the node we were passed. */
1940
1941 gfc_symbol *
1942 gfc_use_derived (gfc_symbol *sym)
1943 {
1944 gfc_symbol *s;
1945 gfc_typespec *t;
1946 gfc_symtree *st;
1947 int i;
1948
1949 if (!sym)
1950 return NULL;
1951
1952 if (sym->components != NULL || sym->attr.zero_comp)
1953 return sym; /* Already defined. */
1954
1955 if (sym->ns->parent == NULL)
1956 goto bad;
1957
1958 if (gfc_find_symbol (sym->name, sym->ns->parent, 1, &s))
1959 {
1960 gfc_error ("Symbol '%s' at %C is ambiguous", sym->name);
1961 return NULL;
1962 }
1963
1964 if (s == NULL || s->attr.flavor != FL_DERIVED)
1965 goto bad;
1966
1967 /* Get rid of symbol sym, translating all references to s. */
1968 for (i = 0; i < GFC_LETTERS; i++)
1969 {
1970 t = &sym->ns->default_type[i];
1971 if (t->u.derived == sym)
1972 t->u.derived = s;
1973 }
1974
1975 st = gfc_find_symtree (sym->ns->sym_root, sym->name);
1976 st->n.sym = s;
1977
1978 s->refs++;
1979
1980 /* Unlink from list of modified symbols. */
1981 gfc_commit_symbol (sym);
1982
1983 switch_types (sym->ns->sym_root, sym, s);
1984
1985 /* TODO: Also have to replace sym -> s in other lists like
1986 namelists, common lists and interface lists. */
1987 gfc_free_symbol (sym);
1988
1989 return s;
1990
1991 bad:
1992 gfc_error ("Derived type '%s' at %C is being used before it is defined",
1993 sym->name);
1994 return NULL;
1995 }
1996
1997
1998 /* Given a derived type node and a component name, try to locate the
1999 component structure. Returns the NULL pointer if the component is
2000 not found or the components are private. If noaccess is set, no access
2001 checks are done. */
2002
2003 gfc_component *
2004 gfc_find_component (gfc_symbol *sym, const char *name,
2005 bool noaccess, bool silent)
2006 {
2007 gfc_component *p;
2008
2009 if (name == NULL || sym == NULL)
2010 return NULL;
2011
2012 sym = gfc_use_derived (sym);
2013
2014 if (sym == NULL)
2015 return NULL;
2016
2017 for (p = sym->components; p; p = p->next)
2018 if (strcmp (p->name, name) == 0)
2019 break;
2020
2021 if (p == NULL
2022 && sym->attr.extension
2023 && sym->components->ts.type == BT_DERIVED)
2024 {
2025 p = gfc_find_component (sym->components->ts.u.derived, name,
2026 noaccess, silent);
2027 /* Do not overwrite the error. */
2028 if (p == NULL)
2029 return p;
2030 }
2031
2032 if (p == NULL && !silent)
2033 gfc_error ("'%s' at %C is not a member of the '%s' structure",
2034 name, sym->name);
2035
2036 else if (sym->attr.use_assoc && !noaccess)
2037 {
2038 bool is_parent_comp = sym->attr.extension && (p == sym->components);
2039 if (p->attr.access == ACCESS_PRIVATE ||
2040 (p->attr.access != ACCESS_PUBLIC
2041 && sym->component_access == ACCESS_PRIVATE
2042 && !is_parent_comp))
2043 {
2044 if (!silent)
2045 gfc_error ("Component '%s' at %C is a PRIVATE component of '%s'",
2046 name, sym->name);
2047 return NULL;
2048 }
2049 }
2050
2051 return p;
2052 }
2053
2054
2055 /* Given a symbol, free all of the component structures and everything
2056 they point to. */
2057
2058 static void
2059 free_components (gfc_component *p)
2060 {
2061 gfc_component *q;
2062
2063 for (; p; p = q)
2064 {
2065 q = p->next;
2066
2067 gfc_free_array_spec (p->as);
2068 gfc_free_expr (p->initializer);
2069
2070 gfc_free_formal_arglist (p->formal);
2071 gfc_free_namespace (p->formal_ns);
2072
2073 free (p);
2074 }
2075 }
2076
2077
2078 /******************** Statement label management ********************/
2079
2080 /* Comparison function for statement labels, used for managing the
2081 binary tree. */
2082
2083 static int
2084 compare_st_labels (void *a1, void *b1)
2085 {
2086 int a = ((gfc_st_label *) a1)->value;
2087 int b = ((gfc_st_label *) b1)->value;
2088
2089 return (b - a);
2090 }
2091
2092
2093 /* Free a single gfc_st_label structure, making sure the tree is not
2094 messed up. This function is called only when some parse error
2095 occurs. */
2096
2097 void
2098 gfc_free_st_label (gfc_st_label *label)
2099 {
2100
2101 if (label == NULL)
2102 return;
2103
2104 gfc_delete_bbt (&gfc_current_ns->st_labels, label, compare_st_labels);
2105
2106 if (label->format != NULL)
2107 gfc_free_expr (label->format);
2108
2109 free (label);
2110 }
2111
2112
2113 /* Free a whole tree of gfc_st_label structures. */
2114
2115 static void
2116 free_st_labels (gfc_st_label *label)
2117 {
2118
2119 if (label == NULL)
2120 return;
2121
2122 free_st_labels (label->left);
2123 free_st_labels (label->right);
2124
2125 if (label->format != NULL)
2126 gfc_free_expr (label->format);
2127 free (label);
2128 }
2129
2130
2131 /* Given a label number, search for and return a pointer to the label
2132 structure, creating it if it does not exist. */
2133
2134 gfc_st_label *
2135 gfc_get_st_label (int labelno)
2136 {
2137 gfc_st_label *lp;
2138 gfc_namespace *ns;
2139
2140 if (gfc_current_state () == COMP_DERIVED)
2141 ns = gfc_current_block ()->f2k_derived;
2142 else
2143 {
2144 /* Find the namespace of the scoping unit:
2145 If we're in a BLOCK construct, jump to the parent namespace. */
2146 ns = gfc_current_ns;
2147 while (ns->proc_name && ns->proc_name->attr.flavor == FL_LABEL)
2148 ns = ns->parent;
2149 }
2150
2151 /* First see if the label is already in this namespace. */
2152 lp = ns->st_labels;
2153 while (lp)
2154 {
2155 if (lp->value == labelno)
2156 return lp;
2157
2158 if (lp->value < labelno)
2159 lp = lp->left;
2160 else
2161 lp = lp->right;
2162 }
2163
2164 lp = XCNEW (gfc_st_label);
2165
2166 lp->value = labelno;
2167 lp->defined = ST_LABEL_UNKNOWN;
2168 lp->referenced = ST_LABEL_UNKNOWN;
2169
2170 gfc_insert_bbt (&ns->st_labels, lp, compare_st_labels);
2171
2172 return lp;
2173 }
2174
2175
2176 /* Called when a statement with a statement label is about to be
2177 accepted. We add the label to the list of the current namespace,
2178 making sure it hasn't been defined previously and referenced
2179 correctly. */
2180
2181 void
2182 gfc_define_st_label (gfc_st_label *lp, gfc_sl_type type, locus *label_locus)
2183 {
2184 int labelno;
2185
2186 labelno = lp->value;
2187
2188 if (lp->defined != ST_LABEL_UNKNOWN)
2189 gfc_error ("Duplicate statement label %d at %L and %L", labelno,
2190 &lp->where, label_locus);
2191 else
2192 {
2193 lp->where = *label_locus;
2194
2195 switch (type)
2196 {
2197 case ST_LABEL_FORMAT:
2198 if (lp->referenced == ST_LABEL_TARGET)
2199 gfc_error ("Label %d at %C already referenced as branch target",
2200 labelno);
2201 else
2202 lp->defined = ST_LABEL_FORMAT;
2203
2204 break;
2205
2206 case ST_LABEL_TARGET:
2207 if (lp->referenced == ST_LABEL_FORMAT)
2208 gfc_error ("Label %d at %C already referenced as a format label",
2209 labelno);
2210 else
2211 lp->defined = ST_LABEL_TARGET;
2212
2213 break;
2214
2215 default:
2216 lp->defined = ST_LABEL_BAD_TARGET;
2217 lp->referenced = ST_LABEL_BAD_TARGET;
2218 }
2219 }
2220 }
2221
2222
2223 /* Reference a label. Given a label and its type, see if that
2224 reference is consistent with what is known about that label,
2225 updating the unknown state. Returns FAILURE if something goes
2226 wrong. */
2227
2228 gfc_try
2229 gfc_reference_st_label (gfc_st_label *lp, gfc_sl_type type)
2230 {
2231 gfc_sl_type label_type;
2232 int labelno;
2233 gfc_try rc;
2234
2235 if (lp == NULL)
2236 return SUCCESS;
2237
2238 labelno = lp->value;
2239
2240 if (lp->defined != ST_LABEL_UNKNOWN)
2241 label_type = lp->defined;
2242 else
2243 {
2244 label_type = lp->referenced;
2245 lp->where = gfc_current_locus;
2246 }
2247
2248 if (label_type == ST_LABEL_FORMAT && type == ST_LABEL_TARGET)
2249 {
2250 gfc_error ("Label %d at %C previously used as a FORMAT label", labelno);
2251 rc = FAILURE;
2252 goto done;
2253 }
2254
2255 if ((label_type == ST_LABEL_TARGET || label_type == ST_LABEL_BAD_TARGET)
2256 && type == ST_LABEL_FORMAT)
2257 {
2258 gfc_error ("Label %d at %C previously used as branch target", labelno);
2259 rc = FAILURE;
2260 goto done;
2261 }
2262
2263 lp->referenced = type;
2264 rc = SUCCESS;
2265
2266 done:
2267 return rc;
2268 }
2269
2270
2271 /************** Symbol table management subroutines ****************/
2272
2273 /* Basic details: Fortran 95 requires a potentially unlimited number
2274 of distinct namespaces when compiling a program unit. This case
2275 occurs during a compilation of internal subprograms because all of
2276 the internal subprograms must be read before we can start
2277 generating code for the host.
2278
2279 Given the tricky nature of the Fortran grammar, we must be able to
2280 undo changes made to a symbol table if the current interpretation
2281 of a statement is found to be incorrect. Whenever a symbol is
2282 looked up, we make a copy of it and link to it. All of these
2283 symbols are kept in a singly linked list so that we can commit or
2284 undo the changes at a later time.
2285
2286 A symtree may point to a symbol node outside of its namespace. In
2287 this case, that symbol has been used as a host associated variable
2288 at some previous time. */
2289
2290 /* Allocate a new namespace structure. Copies the implicit types from
2291 PARENT if PARENT_TYPES is set. */
2292
2293 gfc_namespace *
2294 gfc_get_namespace (gfc_namespace *parent, int parent_types)
2295 {
2296 gfc_namespace *ns;
2297 gfc_typespec *ts;
2298 int in;
2299 int i;
2300
2301 ns = XCNEW (gfc_namespace);
2302 ns->sym_root = NULL;
2303 ns->uop_root = NULL;
2304 ns->tb_sym_root = NULL;
2305 ns->finalizers = NULL;
2306 ns->default_access = ACCESS_UNKNOWN;
2307 ns->parent = parent;
2308
2309 for (in = GFC_INTRINSIC_BEGIN; in != GFC_INTRINSIC_END; in++)
2310 {
2311 ns->operator_access[in] = ACCESS_UNKNOWN;
2312 ns->tb_op[in] = NULL;
2313 }
2314
2315 /* Initialize default implicit types. */
2316 for (i = 'a'; i <= 'z'; i++)
2317 {
2318 ns->set_flag[i - 'a'] = 0;
2319 ts = &ns->default_type[i - 'a'];
2320
2321 if (parent_types && ns->parent != NULL)
2322 {
2323 /* Copy parent settings. */
2324 *ts = ns->parent->default_type[i - 'a'];
2325 continue;
2326 }
2327
2328 if (gfc_option.flag_implicit_none != 0)
2329 {
2330 gfc_clear_ts (ts);
2331 continue;
2332 }
2333
2334 if ('i' <= i && i <= 'n')
2335 {
2336 ts->type = BT_INTEGER;
2337 ts->kind = gfc_default_integer_kind;
2338 }
2339 else
2340 {
2341 ts->type = BT_REAL;
2342 ts->kind = gfc_default_real_kind;
2343 }
2344 }
2345
2346 ns->refs = 1;
2347
2348 return ns;
2349 }
2350
2351
2352 /* Comparison function for symtree nodes. */
2353
2354 static int
2355 compare_symtree (void *_st1, void *_st2)
2356 {
2357 gfc_symtree *st1, *st2;
2358
2359 st1 = (gfc_symtree *) _st1;
2360 st2 = (gfc_symtree *) _st2;
2361
2362 return strcmp (st1->name, st2->name);
2363 }
2364
2365
2366 /* Allocate a new symtree node and associate it with the new symbol. */
2367
2368 gfc_symtree *
2369 gfc_new_symtree (gfc_symtree **root, const char *name)
2370 {
2371 gfc_symtree *st;
2372
2373 st = XCNEW (gfc_symtree);
2374 st->name = gfc_get_string (name);
2375
2376 gfc_insert_bbt (root, st, compare_symtree);
2377 return st;
2378 }
2379
2380
2381 /* Delete a symbol from the tree. Does not free the symbol itself! */
2382
2383 void
2384 gfc_delete_symtree (gfc_symtree **root, const char *name)
2385 {
2386 gfc_symtree st, *st0;
2387
2388 st0 = gfc_find_symtree (*root, name);
2389
2390 st.name = gfc_get_string (name);
2391 gfc_delete_bbt (root, &st, compare_symtree);
2392
2393 free (st0);
2394 }
2395
2396
2397 /* Given a root symtree node and a name, try to find the symbol within
2398 the namespace. Returns NULL if the symbol is not found. */
2399
2400 gfc_symtree *
2401 gfc_find_symtree (gfc_symtree *st, const char *name)
2402 {
2403 int c;
2404
2405 while (st != NULL)
2406 {
2407 c = strcmp (name, st->name);
2408 if (c == 0)
2409 return st;
2410
2411 st = (c < 0) ? st->left : st->right;
2412 }
2413
2414 return NULL;
2415 }
2416
2417
2418 /* Return a symtree node with a name that is guaranteed to be unique
2419 within the namespace and corresponds to an illegal fortran name. */
2420
2421 gfc_symtree *
2422 gfc_get_unique_symtree (gfc_namespace *ns)
2423 {
2424 char name[GFC_MAX_SYMBOL_LEN + 1];
2425 static int serial = 0;
2426
2427 sprintf (name, "@%d", serial++);
2428 return gfc_new_symtree (&ns->sym_root, name);
2429 }
2430
2431
2432 /* Given a name find a user operator node, creating it if it doesn't
2433 exist. These are much simpler than symbols because they can't be
2434 ambiguous with one another. */
2435
2436 gfc_user_op *
2437 gfc_get_uop (const char *name)
2438 {
2439 gfc_user_op *uop;
2440 gfc_symtree *st;
2441
2442 st = gfc_find_symtree (gfc_current_ns->uop_root, name);
2443 if (st != NULL)
2444 return st->n.uop;
2445
2446 st = gfc_new_symtree (&gfc_current_ns->uop_root, name);
2447
2448 uop = st->n.uop = XCNEW (gfc_user_op);
2449 uop->name = gfc_get_string (name);
2450 uop->access = ACCESS_UNKNOWN;
2451 uop->ns = gfc_current_ns;
2452
2453 return uop;
2454 }
2455
2456
2457 /* Given a name find the user operator node. Returns NULL if it does
2458 not exist. */
2459
2460 gfc_user_op *
2461 gfc_find_uop (const char *name, gfc_namespace *ns)
2462 {
2463 gfc_symtree *st;
2464
2465 if (ns == NULL)
2466 ns = gfc_current_ns;
2467
2468 st = gfc_find_symtree (ns->uop_root, name);
2469 return (st == NULL) ? NULL : st->n.uop;
2470 }
2471
2472
2473 /* Remove a gfc_symbol structure and everything it points to. */
2474
2475 void
2476 gfc_free_symbol (gfc_symbol *sym)
2477 {
2478
2479 if (sym == NULL)
2480 return;
2481
2482 gfc_free_array_spec (sym->as);
2483
2484 free_components (sym->components);
2485
2486 gfc_free_expr (sym->value);
2487
2488 gfc_free_namelist (sym->namelist);
2489
2490 gfc_free_namespace (sym->formal_ns);
2491
2492 if (!sym->attr.generic_copy)
2493 gfc_free_interface (sym->generic);
2494
2495 gfc_free_formal_arglist (sym->formal);
2496
2497 gfc_free_namespace (sym->f2k_derived);
2498
2499 free (sym);
2500 }
2501
2502
2503 /* Decrease the reference counter and free memory when we reach zero. */
2504
2505 void
2506 gfc_release_symbol (gfc_symbol *sym)
2507 {
2508 if (sym == NULL)
2509 return;
2510
2511 if (sym->formal_ns != NULL && sym->refs == 2)
2512 {
2513 /* As formal_ns contains a reference to sym, delete formal_ns just
2514 before the deletion of sym. */
2515 gfc_namespace *ns = sym->formal_ns;
2516 sym->formal_ns = NULL;
2517 gfc_free_namespace (ns);
2518 }
2519
2520 sym->refs--;
2521 if (sym->refs > 0)
2522 return;
2523
2524 gcc_assert (sym->refs == 0);
2525 gfc_free_symbol (sym);
2526 }
2527
2528
2529 /* Allocate and initialize a new symbol node. */
2530
2531 gfc_symbol *
2532 gfc_new_symbol (const char *name, gfc_namespace *ns)
2533 {
2534 gfc_symbol *p;
2535
2536 p = XCNEW (gfc_symbol);
2537
2538 gfc_clear_ts (&p->ts);
2539 gfc_clear_attr (&p->attr);
2540 p->ns = ns;
2541
2542 p->declared_at = gfc_current_locus;
2543
2544 if (strlen (name) > GFC_MAX_SYMBOL_LEN)
2545 gfc_internal_error ("new_symbol(): Symbol name too long");
2546
2547 p->name = gfc_get_string (name);
2548
2549 /* Make sure flags for symbol being C bound are clear initially. */
2550 p->attr.is_bind_c = 0;
2551 p->attr.is_iso_c = 0;
2552 /* Make sure the binding label field has a Nul char to start. */
2553 p->binding_label[0] = '\0';
2554
2555 /* Clear the ptrs we may need. */
2556 p->common_block = NULL;
2557 p->f2k_derived = NULL;
2558 p->assoc = NULL;
2559
2560 return p;
2561 }
2562
2563
2564 /* Generate an error if a symbol is ambiguous. */
2565
2566 static void
2567 ambiguous_symbol (const char *name, gfc_symtree *st)
2568 {
2569
2570 if (st->n.sym->module)
2571 gfc_error ("Name '%s' at %C is an ambiguous reference to '%s' "
2572 "from module '%s'", name, st->n.sym->name, st->n.sym->module);
2573 else
2574 gfc_error ("Name '%s' at %C is an ambiguous reference to '%s' "
2575 "from current program unit", name, st->n.sym->name);
2576 }
2577
2578
2579 /* If we're in a SELECT TYPE block, check if the variable 'st' matches any
2580 selector on the stack. If yes, replace it by the corresponding temporary. */
2581
2582 static void
2583 select_type_insert_tmp (gfc_symtree **st)
2584 {
2585 gfc_select_type_stack *stack = select_type_stack;
2586 for (; stack; stack = stack->prev)
2587 if ((*st)->n.sym == stack->selector && stack->tmp)
2588 *st = stack->tmp;
2589 }
2590
2591
2592 /* Look for a symtree in the current procedure -- that is, go up to
2593 parent namespaces but only if inside a BLOCK. Returns NULL if not found. */
2594
2595 gfc_symtree*
2596 gfc_find_symtree_in_proc (const char* name, gfc_namespace* ns)
2597 {
2598 while (ns)
2599 {
2600 gfc_symtree* st = gfc_find_symtree (ns->sym_root, name);
2601 if (st)
2602 return st;
2603
2604 if (!ns->construct_entities)
2605 break;
2606 ns = ns->parent;
2607 }
2608
2609 return NULL;
2610 }
2611
2612
2613 /* Search for a symtree starting in the current namespace, resorting to
2614 any parent namespaces if requested by a nonzero parent_flag.
2615 Returns nonzero if the name is ambiguous. */
2616
2617 int
2618 gfc_find_sym_tree (const char *name, gfc_namespace *ns, int parent_flag,
2619 gfc_symtree **result)
2620 {
2621 gfc_symtree *st;
2622
2623 if (ns == NULL)
2624 ns = gfc_current_ns;
2625
2626 do
2627 {
2628 st = gfc_find_symtree (ns->sym_root, name);
2629 if (st != NULL)
2630 {
2631 select_type_insert_tmp (&st);
2632
2633 *result = st;
2634 /* Ambiguous generic interfaces are permitted, as long
2635 as the specific interfaces are different. */
2636 if (st->ambiguous && !st->n.sym->attr.generic)
2637 {
2638 ambiguous_symbol (name, st);
2639 return 1;
2640 }
2641
2642 return 0;
2643 }
2644
2645 if (!parent_flag)
2646 break;
2647
2648 ns = ns->parent;
2649 }
2650 while (ns != NULL);
2651
2652 *result = NULL;
2653 return 0;
2654 }
2655
2656
2657 /* Same, but returns the symbol instead. */
2658
2659 int
2660 gfc_find_symbol (const char *name, gfc_namespace *ns, int parent_flag,
2661 gfc_symbol **result)
2662 {
2663 gfc_symtree *st;
2664 int i;
2665
2666 i = gfc_find_sym_tree (name, ns, parent_flag, &st);
2667
2668 if (st == NULL)
2669 *result = NULL;
2670 else
2671 *result = st->n.sym;
2672
2673 return i;
2674 }
2675
2676
2677 /* Save symbol with the information necessary to back it out. */
2678
2679 static void
2680 save_symbol_data (gfc_symbol *sym)
2681 {
2682
2683 if (sym->gfc_new || sym->old_symbol != NULL)
2684 return;
2685
2686 sym->old_symbol = XCNEW (gfc_symbol);
2687 *(sym->old_symbol) = *sym;
2688
2689 sym->tlink = changed_syms;
2690 changed_syms = sym;
2691 }
2692
2693
2694 /* Given a name, find a symbol, or create it if it does not exist yet
2695 in the current namespace. If the symbol is found we make sure that
2696 it's OK.
2697
2698 The integer return code indicates
2699 0 All OK
2700 1 The symbol name was ambiguous
2701 2 The name meant to be established was already host associated.
2702
2703 So if the return value is nonzero, then an error was issued. */
2704
2705 int
2706 gfc_get_sym_tree (const char *name, gfc_namespace *ns, gfc_symtree **result,
2707 bool allow_subroutine)
2708 {
2709 gfc_symtree *st;
2710 gfc_symbol *p;
2711
2712 /* This doesn't usually happen during resolution. */
2713 if (ns == NULL)
2714 ns = gfc_current_ns;
2715
2716 /* Try to find the symbol in ns. */
2717 st = gfc_find_symtree (ns->sym_root, name);
2718
2719 if (st == NULL)
2720 {
2721 /* If not there, create a new symbol. */
2722 p = gfc_new_symbol (name, ns);
2723
2724 /* Add to the list of tentative symbols. */
2725 p->old_symbol = NULL;
2726 p->tlink = changed_syms;
2727 p->mark = 1;
2728 p->gfc_new = 1;
2729 changed_syms = p;
2730
2731 st = gfc_new_symtree (&ns->sym_root, name);
2732 st->n.sym = p;
2733 p->refs++;
2734
2735 }
2736 else
2737 {
2738 /* Make sure the existing symbol is OK. Ambiguous
2739 generic interfaces are permitted, as long as the
2740 specific interfaces are different. */
2741 if (st->ambiguous && !st->n.sym->attr.generic)
2742 {
2743 ambiguous_symbol (name, st);
2744 return 1;
2745 }
2746
2747 p = st->n.sym;
2748 if (p->ns != ns && (!p->attr.function || ns->proc_name != p)
2749 && !(allow_subroutine && p->attr.subroutine)
2750 && !(ns->proc_name && ns->proc_name->attr.if_source == IFSRC_IFBODY
2751 && (ns->has_import_set || p->attr.imported)))
2752 {
2753 /* Symbol is from another namespace. */
2754 gfc_error ("Symbol '%s' at %C has already been host associated",
2755 name);
2756 return 2;
2757 }
2758
2759 p->mark = 1;
2760
2761 /* Copy in case this symbol is changed. */
2762 save_symbol_data (p);
2763 }
2764
2765 *result = st;
2766 return 0;
2767 }
2768
2769
2770 int
2771 gfc_get_symbol (const char *name, gfc_namespace *ns, gfc_symbol **result)
2772 {
2773 gfc_symtree *st;
2774 int i;
2775
2776 i = gfc_get_sym_tree (name, ns, &st, false);
2777 if (i != 0)
2778 return i;
2779
2780 if (st)
2781 *result = st->n.sym;
2782 else
2783 *result = NULL;
2784 return i;
2785 }
2786
2787
2788 /* Subroutine that searches for a symbol, creating it if it doesn't
2789 exist, but tries to host-associate the symbol if possible. */
2790
2791 int
2792 gfc_get_ha_sym_tree (const char *name, gfc_symtree **result)
2793 {
2794 gfc_symtree *st;
2795 int i;
2796
2797 i = gfc_find_sym_tree (name, gfc_current_ns, 0, &st);
2798
2799 if (st != NULL)
2800 {
2801 save_symbol_data (st->n.sym);
2802 *result = st;
2803 return i;
2804 }
2805
2806 if (gfc_current_ns->parent != NULL)
2807 {
2808 i = gfc_find_sym_tree (name, gfc_current_ns->parent, 1, &st);
2809 if (i)
2810 return i;
2811
2812 if (st != NULL)
2813 {
2814 *result = st;
2815 return 0;
2816 }
2817 }
2818
2819 return gfc_get_sym_tree (name, gfc_current_ns, result, false);
2820 }
2821
2822
2823 int
2824 gfc_get_ha_symbol (const char *name, gfc_symbol **result)
2825 {
2826 int i;
2827 gfc_symtree *st;
2828
2829 i = gfc_get_ha_sym_tree (name, &st);
2830
2831 if (st)
2832 *result = st->n.sym;
2833 else
2834 *result = NULL;
2835
2836 return i;
2837 }
2838
2839 /* Undoes all the changes made to symbols in the current statement.
2840 This subroutine is made simpler due to the fact that attributes are
2841 never removed once added. */
2842
2843 void
2844 gfc_undo_symbols (void)
2845 {
2846 gfc_symbol *p, *q, *old;
2847 tentative_tbp *tbp, *tbq;
2848
2849 for (p = changed_syms; p; p = q)
2850 {
2851 q = p->tlink;
2852
2853 if (p->gfc_new)
2854 {
2855 /* Symbol was new. */
2856 if (p->attr.in_common && p->common_block && p->common_block->head)
2857 {
2858 /* If the symbol was added to any common block, it
2859 needs to be removed to stop the resolver looking
2860 for a (possibly) dead symbol. */
2861
2862 if (p->common_block->head == p)
2863 p->common_block->head = p->common_next;
2864 else
2865 {
2866 gfc_symbol *cparent, *csym;
2867
2868 cparent = p->common_block->head;
2869 csym = cparent->common_next;
2870
2871 while (csym != p)
2872 {
2873 cparent = csym;
2874 csym = csym->common_next;
2875 }
2876
2877 gcc_assert(cparent->common_next == p);
2878
2879 cparent->common_next = csym->common_next;
2880 }
2881 }
2882
2883 gfc_delete_symtree (&p->ns->sym_root, p->name);
2884
2885 gfc_release_symbol (p);
2886 continue;
2887 }
2888
2889 /* Restore previous state of symbol. Just copy simple stuff. */
2890 p->mark = 0;
2891 old = p->old_symbol;
2892
2893 p->ts.type = old->ts.type;
2894 p->ts.kind = old->ts.kind;
2895
2896 p->attr = old->attr;
2897
2898 if (p->value != old->value)
2899 {
2900 gfc_free_expr (old->value);
2901 p->value = NULL;
2902 }
2903
2904 if (p->as != old->as)
2905 {
2906 if (p->as)
2907 gfc_free_array_spec (p->as);
2908 p->as = old->as;
2909 }
2910
2911 p->generic = old->generic;
2912 p->component_access = old->component_access;
2913
2914 if (p->namelist != NULL && old->namelist == NULL)
2915 {
2916 gfc_free_namelist (p->namelist);
2917 p->namelist = NULL;
2918 }
2919 else
2920 {
2921 if (p->namelist_tail != old->namelist_tail)
2922 {
2923 gfc_free_namelist (old->namelist_tail);
2924 old->namelist_tail->next = NULL;
2925 }
2926 }
2927
2928 p->namelist_tail = old->namelist_tail;
2929
2930 if (p->formal != old->formal)
2931 {
2932 gfc_free_formal_arglist (p->formal);
2933 p->formal = old->formal;
2934 }
2935
2936 free (p->old_symbol);
2937 p->old_symbol = NULL;
2938 p->tlink = NULL;
2939 }
2940
2941 changed_syms = NULL;
2942
2943 for (tbp = tentative_tbp_list; tbp; tbp = tbq)
2944 {
2945 tbq = tbp->next;
2946 /* Procedure is already marked `error' by default. */
2947 free (tbp);
2948 }
2949 tentative_tbp_list = NULL;
2950 }
2951
2952
2953 /* Free sym->old_symbol. sym->old_symbol is mostly a shallow copy of sym; the
2954 components of old_symbol that might need deallocation are the "allocatables"
2955 that are restored in gfc_undo_symbols(), with two exceptions: namelist and
2956 namelist_tail. In case these differ between old_symbol and sym, it's just
2957 because sym->namelist has gotten a few more items. */
2958
2959 static void
2960 free_old_symbol (gfc_symbol *sym)
2961 {
2962
2963 if (sym->old_symbol == NULL)
2964 return;
2965
2966 if (sym->old_symbol->as != sym->as)
2967 gfc_free_array_spec (sym->old_symbol->as);
2968
2969 if (sym->old_symbol->value != sym->value)
2970 gfc_free_expr (sym->old_symbol->value);
2971
2972 if (sym->old_symbol->formal != sym->formal)
2973 gfc_free_formal_arglist (sym->old_symbol->formal);
2974
2975 free (sym->old_symbol);
2976 sym->old_symbol = NULL;
2977 }
2978
2979
2980 /* Makes the changes made in the current statement permanent-- gets
2981 rid of undo information. */
2982
2983 void
2984 gfc_commit_symbols (void)
2985 {
2986 gfc_symbol *p, *q;
2987 tentative_tbp *tbp, *tbq;
2988
2989 for (p = changed_syms; p; p = q)
2990 {
2991 q = p->tlink;
2992 p->tlink = NULL;
2993 p->mark = 0;
2994 p->gfc_new = 0;
2995 free_old_symbol (p);
2996 }
2997 changed_syms = NULL;
2998
2999 for (tbp = tentative_tbp_list; tbp; tbp = tbq)
3000 {
3001 tbq = tbp->next;
3002 tbp->proc->error = 0;
3003 free (tbp);
3004 }
3005 tentative_tbp_list = NULL;
3006 }
3007
3008
3009 /* Makes the changes made in one symbol permanent -- gets rid of undo
3010 information. */
3011
3012 void
3013 gfc_commit_symbol (gfc_symbol *sym)
3014 {
3015 gfc_symbol *p;
3016
3017 if (changed_syms == sym)
3018 changed_syms = sym->tlink;
3019 else
3020 {
3021 for (p = changed_syms; p; p = p->tlink)
3022 if (p->tlink == sym)
3023 {
3024 p->tlink = sym->tlink;
3025 break;
3026 }
3027 }
3028
3029 sym->tlink = NULL;
3030 sym->mark = 0;
3031 sym->gfc_new = 0;
3032
3033 free_old_symbol (sym);
3034 }
3035
3036
3037 /* Recursively free trees containing type-bound procedures. */
3038
3039 static void
3040 free_tb_tree (gfc_symtree *t)
3041 {
3042 if (t == NULL)
3043 return;
3044
3045 free_tb_tree (t->left);
3046 free_tb_tree (t->right);
3047
3048 /* TODO: Free type-bound procedure structs themselves; probably needs some
3049 sort of ref-counting mechanism. */
3050
3051 free (t);
3052 }
3053
3054
3055 /* Recursive function that deletes an entire tree and all the common
3056 head structures it points to. */
3057
3058 static void
3059 free_common_tree (gfc_symtree * common_tree)
3060 {
3061 if (common_tree == NULL)
3062 return;
3063
3064 free_common_tree (common_tree->left);
3065 free_common_tree (common_tree->right);
3066
3067 free (common_tree);
3068 }
3069
3070
3071 /* Recursive function that deletes an entire tree and all the user
3072 operator nodes that it contains. */
3073
3074 static void
3075 free_uop_tree (gfc_symtree *uop_tree)
3076 {
3077 if (uop_tree == NULL)
3078 return;
3079
3080 free_uop_tree (uop_tree->left);
3081 free_uop_tree (uop_tree->right);
3082
3083 gfc_free_interface (uop_tree->n.uop->op);
3084 free (uop_tree->n.uop);
3085 free (uop_tree);
3086 }
3087
3088
3089 /* Recursive function that deletes an entire tree and all the symbols
3090 that it contains. */
3091
3092 static void
3093 free_sym_tree (gfc_symtree *sym_tree)
3094 {
3095 if (sym_tree == NULL)
3096 return;
3097
3098 free_sym_tree (sym_tree->left);
3099 free_sym_tree (sym_tree->right);
3100
3101 gfc_release_symbol (sym_tree->n.sym);
3102 free (sym_tree);
3103 }
3104
3105
3106 /* Free the derived type list. */
3107
3108 void
3109 gfc_free_dt_list (void)
3110 {
3111 gfc_dt_list *dt, *n;
3112
3113 for (dt = gfc_derived_types; dt; dt = n)
3114 {
3115 n = dt->next;
3116 free (dt);
3117 }
3118
3119 gfc_derived_types = NULL;
3120 }
3121
3122
3123 /* Free the gfc_equiv_info's. */
3124
3125 static void
3126 gfc_free_equiv_infos (gfc_equiv_info *s)
3127 {
3128 if (s == NULL)
3129 return;
3130 gfc_free_equiv_infos (s->next);
3131 free (s);
3132 }
3133
3134
3135 /* Free the gfc_equiv_lists. */
3136
3137 static void
3138 gfc_free_equiv_lists (gfc_equiv_list *l)
3139 {
3140 if (l == NULL)
3141 return;
3142 gfc_free_equiv_lists (l->next);
3143 gfc_free_equiv_infos (l->equiv);
3144 free (l);
3145 }
3146
3147
3148 /* Free a finalizer procedure list. */
3149
3150 void
3151 gfc_free_finalizer (gfc_finalizer* el)
3152 {
3153 if (el)
3154 {
3155 gfc_release_symbol (el->proc_sym);
3156 free (el);
3157 }
3158 }
3159
3160 static void
3161 gfc_free_finalizer_list (gfc_finalizer* list)
3162 {
3163 while (list)
3164 {
3165 gfc_finalizer* current = list;
3166 list = list->next;
3167 gfc_free_finalizer (current);
3168 }
3169 }
3170
3171
3172 /* Create a new gfc_charlen structure and add it to a namespace.
3173 If 'old_cl' is given, the newly created charlen will be a copy of it. */
3174
3175 gfc_charlen*
3176 gfc_new_charlen (gfc_namespace *ns, gfc_charlen *old_cl)
3177 {
3178 gfc_charlen *cl;
3179 cl = gfc_get_charlen ();
3180
3181 /* Copy old_cl. */
3182 if (old_cl)
3183 {
3184 /* Put into namespace, but don't allow reject_statement
3185 to free it if old_cl is given. */
3186 gfc_charlen **prev = &ns->cl_list;
3187 cl->next = ns->old_cl_list;
3188 while (*prev != ns->old_cl_list)
3189 prev = &(*prev)->next;
3190 *prev = cl;
3191 ns->old_cl_list = cl;
3192 cl->length = gfc_copy_expr (old_cl->length);
3193 cl->length_from_typespec = old_cl->length_from_typespec;
3194 cl->backend_decl = old_cl->backend_decl;
3195 cl->passed_length = old_cl->passed_length;
3196 cl->resolved = old_cl->resolved;
3197 }
3198 else
3199 {
3200 /* Put into namespace. */
3201 cl->next = ns->cl_list;
3202 ns->cl_list = cl;
3203 }
3204
3205 return cl;
3206 }
3207
3208
3209 /* Free the charlen list from cl to end (end is not freed).
3210 Free the whole list if end is NULL. */
3211
3212 void
3213 gfc_free_charlen (gfc_charlen *cl, gfc_charlen *end)
3214 {
3215 gfc_charlen *cl2;
3216
3217 for (; cl != end; cl = cl2)
3218 {
3219 gcc_assert (cl);
3220
3221 cl2 = cl->next;
3222 gfc_free_expr (cl->length);
3223 free (cl);
3224 }
3225 }
3226
3227
3228 /* Free entry list structs. */
3229
3230 static void
3231 free_entry_list (gfc_entry_list *el)
3232 {
3233 gfc_entry_list *next;
3234
3235 if (el == NULL)
3236 return;
3237
3238 next = el->next;
3239 free (el);
3240 free_entry_list (next);
3241 }
3242
3243
3244 /* Free a namespace structure and everything below it. Interface
3245 lists associated with intrinsic operators are not freed. These are
3246 taken care of when a specific name is freed. */
3247
3248 void
3249 gfc_free_namespace (gfc_namespace *ns)
3250 {
3251 gfc_namespace *p, *q;
3252 int i;
3253
3254 if (ns == NULL)
3255 return;
3256
3257 ns->refs--;
3258 if (ns->refs > 0)
3259 return;
3260 gcc_assert (ns->refs == 0);
3261
3262 gfc_free_statements (ns->code);
3263
3264 free_sym_tree (ns->sym_root);
3265 free_uop_tree (ns->uop_root);
3266 free_common_tree (ns->common_root);
3267 free_tb_tree (ns->tb_sym_root);
3268 free_tb_tree (ns->tb_uop_root);
3269 gfc_free_finalizer_list (ns->finalizers);
3270 gfc_free_charlen (ns->cl_list, NULL);
3271 free_st_labels (ns->st_labels);
3272
3273 free_entry_list (ns->entries);
3274 gfc_free_equiv (ns->equiv);
3275 gfc_free_equiv_lists (ns->equiv_lists);
3276 gfc_free_use_stmts (ns->use_stmts);
3277
3278 for (i = GFC_INTRINSIC_BEGIN; i != GFC_INTRINSIC_END; i++)
3279 gfc_free_interface (ns->op[i]);
3280
3281 gfc_free_data (ns->data);
3282 p = ns->contained;
3283 free (ns);
3284
3285 /* Recursively free any contained namespaces. */
3286 while (p != NULL)
3287 {
3288 q = p;
3289 p = p->sibling;
3290 gfc_free_namespace (q);
3291 }
3292 }
3293
3294
3295 void
3296 gfc_symbol_init_2 (void)
3297 {
3298
3299 gfc_current_ns = gfc_get_namespace (NULL, 0);
3300 }
3301
3302
3303 void
3304 gfc_symbol_done_2 (void)
3305 {
3306
3307 gfc_free_namespace (gfc_current_ns);
3308 gfc_current_ns = NULL;
3309 gfc_free_dt_list ();
3310 }
3311
3312
3313 /* Clear mark bits from symbol nodes associated with a symtree node. */
3314
3315 static void
3316 clear_sym_mark (gfc_symtree *st)
3317 {
3318
3319 st->n.sym->mark = 0;
3320 }
3321
3322
3323 /* Recursively traverse the symtree nodes. */
3324
3325 void
3326 gfc_traverse_symtree (gfc_symtree *st, void (*func) (gfc_symtree *))
3327 {
3328 if (!st)
3329 return;
3330
3331 gfc_traverse_symtree (st->left, func);
3332 (*func) (st);
3333 gfc_traverse_symtree (st->right, func);
3334 }
3335
3336
3337 /* Recursive namespace traversal function. */
3338
3339 static void
3340 traverse_ns (gfc_symtree *st, void (*func) (gfc_symbol *))
3341 {
3342
3343 if (st == NULL)
3344 return;
3345
3346 traverse_ns (st->left, func);
3347
3348 if (st->n.sym->mark == 0)
3349 (*func) (st->n.sym);
3350 st->n.sym->mark = 1;
3351
3352 traverse_ns (st->right, func);
3353 }
3354
3355
3356 /* Call a given function for all symbols in the namespace. We take
3357 care that each gfc_symbol node is called exactly once. */
3358
3359 void
3360 gfc_traverse_ns (gfc_namespace *ns, void (*func) (gfc_symbol *))
3361 {
3362
3363 gfc_traverse_symtree (ns->sym_root, clear_sym_mark);
3364
3365 traverse_ns (ns->sym_root, func);
3366 }
3367
3368
3369 /* Return TRUE when name is the name of an intrinsic type. */
3370
3371 bool
3372 gfc_is_intrinsic_typename (const char *name)
3373 {
3374 if (strcmp (name, "integer") == 0
3375 || strcmp (name, "real") == 0
3376 || strcmp (name, "character") == 0
3377 || strcmp (name, "logical") == 0
3378 || strcmp (name, "complex") == 0
3379 || strcmp (name, "doubleprecision") == 0
3380 || strcmp (name, "doublecomplex") == 0)
3381 return true;
3382 else
3383 return false;
3384 }
3385
3386
3387 /* Return TRUE if the symbol is an automatic variable. */
3388
3389 static bool
3390 gfc_is_var_automatic (gfc_symbol *sym)
3391 {
3392 /* Pointer and allocatable variables are never automatic. */
3393 if (sym->attr.pointer || sym->attr.allocatable)
3394 return false;
3395 /* Check for arrays with non-constant size. */
3396 if (sym->attr.dimension && sym->as
3397 && !gfc_is_compile_time_shape (sym->as))
3398 return true;
3399 /* Check for non-constant length character variables. */
3400 if (sym->ts.type == BT_CHARACTER
3401 && sym->ts.u.cl
3402 && !gfc_is_constant_expr (sym->ts.u.cl->length))
3403 return true;
3404 return false;
3405 }
3406
3407 /* Given a symbol, mark it as SAVEd if it is allowed. */
3408
3409 static void
3410 save_symbol (gfc_symbol *sym)
3411 {
3412
3413 if (sym->attr.use_assoc)
3414 return;
3415
3416 if (sym->attr.in_common
3417 || sym->attr.dummy
3418 || sym->attr.result
3419 || sym->attr.flavor != FL_VARIABLE)
3420 return;
3421 /* Automatic objects are not saved. */
3422 if (gfc_is_var_automatic (sym))
3423 return;
3424 gfc_add_save (&sym->attr, SAVE_EXPLICIT, sym->name, &sym->declared_at);
3425 }
3426
3427
3428 /* Mark those symbols which can be SAVEd as such. */
3429
3430 void
3431 gfc_save_all (gfc_namespace *ns)
3432 {
3433 gfc_traverse_ns (ns, save_symbol);
3434 }
3435
3436
3437 /* Make sure that no changes to symbols are pending. */
3438
3439 void
3440 gfc_enforce_clean_symbol_state(void)
3441 {
3442 gcc_assert (changed_syms == NULL);
3443 }
3444
3445
3446 /************** Global symbol handling ************/
3447
3448
3449 /* Search a tree for the global symbol. */
3450
3451 gfc_gsymbol *
3452 gfc_find_gsymbol (gfc_gsymbol *symbol, const char *name)
3453 {
3454 int c;
3455
3456 if (symbol == NULL)
3457 return NULL;
3458
3459 while (symbol)
3460 {
3461 c = strcmp (name, symbol->name);
3462 if (!c)
3463 return symbol;
3464
3465 symbol = (c < 0) ? symbol->left : symbol->right;
3466 }
3467
3468 return NULL;
3469 }
3470
3471
3472 /* Compare two global symbols. Used for managing the BB tree. */
3473
3474 static int
3475 gsym_compare (void *_s1, void *_s2)
3476 {
3477 gfc_gsymbol *s1, *s2;
3478
3479 s1 = (gfc_gsymbol *) _s1;
3480 s2 = (gfc_gsymbol *) _s2;
3481 return strcmp (s1->name, s2->name);
3482 }
3483
3484
3485 /* Get a global symbol, creating it if it doesn't exist. */
3486
3487 gfc_gsymbol *
3488 gfc_get_gsymbol (const char *name)
3489 {
3490 gfc_gsymbol *s;
3491
3492 s = gfc_find_gsymbol (gfc_gsym_root, name);
3493 if (s != NULL)
3494 return s;
3495
3496 s = XCNEW (gfc_gsymbol);
3497 s->type = GSYM_UNKNOWN;
3498 s->name = gfc_get_string (name);
3499
3500 gfc_insert_bbt (&gfc_gsym_root, s, gsym_compare);
3501
3502 return s;
3503 }
3504
3505
3506 static gfc_symbol *
3507 get_iso_c_binding_dt (int sym_id)
3508 {
3509 gfc_dt_list *dt_list;
3510
3511 dt_list = gfc_derived_types;
3512
3513 /* Loop through the derived types in the name list, searching for
3514 the desired symbol from iso_c_binding. Search the parent namespaces
3515 if necessary and requested to (parent_flag). */
3516 while (dt_list != NULL)
3517 {
3518 if (dt_list->derived->from_intmod != INTMOD_NONE
3519 && dt_list->derived->intmod_sym_id == sym_id)
3520 return dt_list->derived;
3521
3522 dt_list = dt_list->next;
3523 }
3524
3525 return NULL;
3526 }
3527
3528
3529 /* Verifies that the given derived type symbol, derived_sym, is interoperable
3530 with C. This is necessary for any derived type that is BIND(C) and for
3531 derived types that are parameters to functions that are BIND(C). All
3532 fields of the derived type are required to be interoperable, and are tested
3533 for such. If an error occurs, the errors are reported here, allowing for
3534 multiple errors to be handled for a single derived type. */
3535
3536 gfc_try
3537 verify_bind_c_derived_type (gfc_symbol *derived_sym)
3538 {
3539 gfc_component *curr_comp = NULL;
3540 gfc_try is_c_interop = FAILURE;
3541 gfc_try retval = SUCCESS;
3542
3543 if (derived_sym == NULL)
3544 gfc_internal_error ("verify_bind_c_derived_type(): Given symbol is "
3545 "unexpectedly NULL");
3546
3547 /* If we've already looked at this derived symbol, do not look at it again
3548 so we don't repeat warnings/errors. */
3549 if (derived_sym->ts.is_c_interop)
3550 return SUCCESS;
3551
3552 /* The derived type must have the BIND attribute to be interoperable
3553 J3/04-007, Section 15.2.3. */
3554 if (derived_sym->attr.is_bind_c != 1)
3555 {
3556 derived_sym->ts.is_c_interop = 0;
3557 gfc_error_now ("Derived type '%s' declared at %L must have the BIND "
3558 "attribute to be C interoperable", derived_sym->name,
3559 &(derived_sym->declared_at));
3560 retval = FAILURE;
3561 }
3562
3563 curr_comp = derived_sym->components;
3564
3565 /* Fortran 2003 allows an empty derived type. C99 appears to disallow an
3566 empty struct. Section 15.2 in Fortran 2003 states: "The following
3567 subclauses define the conditions under which a Fortran entity is
3568 interoperable. If a Fortran entity is interoperable, an equivalent
3569 entity may be defined by means of C and the Fortran entity is said
3570 to be interoperable with the C entity. There does not have to be such
3571 an interoperating C entity."
3572 */
3573 if (curr_comp == NULL)
3574 {
3575 gfc_warning ("Derived type '%s' with BIND(C) attribute at %L is empty, "
3576 "and may be inaccessible by the C companion processor",
3577 derived_sym->name, &(derived_sym->declared_at));
3578 derived_sym->ts.is_c_interop = 1;
3579 derived_sym->attr.is_bind_c = 1;
3580 return SUCCESS;
3581 }
3582
3583
3584 /* Initialize the derived type as being C interoperable.
3585 If we find an error in the components, this will be set false. */
3586 derived_sym->ts.is_c_interop = 1;
3587
3588 /* Loop through the list of components to verify that the kind of
3589 each is a C interoperable type. */
3590 do
3591 {
3592 /* The components cannot be pointers (fortran sense).
3593 J3/04-007, Section 15.2.3, C1505. */
3594 if (curr_comp->attr.pointer != 0)
3595 {
3596 gfc_error ("Component '%s' at %L cannot have the "
3597 "POINTER attribute because it is a member "
3598 "of the BIND(C) derived type '%s' at %L",
3599 curr_comp->name, &(curr_comp->loc),
3600 derived_sym->name, &(derived_sym->declared_at));
3601 retval = FAILURE;
3602 }
3603
3604 if (curr_comp->attr.proc_pointer != 0)
3605 {
3606 gfc_error ("Procedure pointer component '%s' at %L cannot be a member"
3607 " of the BIND(C) derived type '%s' at %L", curr_comp->name,
3608 &curr_comp->loc, derived_sym->name,
3609 &derived_sym->declared_at);
3610 retval = FAILURE;
3611 }
3612
3613 /* The components cannot be allocatable.
3614 J3/04-007, Section 15.2.3, C1505. */
3615 if (curr_comp->attr.allocatable != 0)
3616 {
3617 gfc_error ("Component '%s' at %L cannot have the "
3618 "ALLOCATABLE attribute because it is a member "
3619 "of the BIND(C) derived type '%s' at %L",
3620 curr_comp->name, &(curr_comp->loc),
3621 derived_sym->name, &(derived_sym->declared_at));
3622 retval = FAILURE;
3623 }
3624
3625 /* BIND(C) derived types must have interoperable components. */
3626 if (curr_comp->ts.type == BT_DERIVED
3627 && curr_comp->ts.u.derived->ts.is_iso_c != 1
3628 && curr_comp->ts.u.derived != derived_sym)
3629 {
3630 /* This should be allowed; the draft says a derived-type can not
3631 have type parameters if it is has the BIND attribute. Type
3632 parameters seem to be for making parameterized derived types.
3633 There's no need to verify the type if it is c_ptr/c_funptr. */
3634 retval = verify_bind_c_derived_type (curr_comp->ts.u.derived);
3635 }
3636 else
3637 {
3638 /* Grab the typespec for the given component and test the kind. */
3639 is_c_interop = gfc_verify_c_interop (&(curr_comp->ts));
3640
3641 if (is_c_interop != SUCCESS)
3642 {
3643 /* Report warning and continue since not fatal. The
3644 draft does specify a constraint that requires all fields
3645 to interoperate, but if the user says real(4), etc., it
3646 may interoperate with *something* in C, but the compiler
3647 most likely won't know exactly what. Further, it may not
3648 interoperate with the same data type(s) in C if the user
3649 recompiles with different flags (e.g., -m32 and -m64 on
3650 x86_64 and using integer(4) to claim interop with a
3651 C_LONG). */
3652 if (derived_sym->attr.is_bind_c == 1)
3653 /* If the derived type is bind(c), all fields must be
3654 interop. */
3655 gfc_warning ("Component '%s' in derived type '%s' at %L "
3656 "may not be C interoperable, even though "
3657 "derived type '%s' is BIND(C)",
3658 curr_comp->name, derived_sym->name,
3659 &(curr_comp->loc), derived_sym->name);
3660 else
3661 /* If derived type is param to bind(c) routine, or to one
3662 of the iso_c_binding procs, it must be interoperable, so
3663 all fields must interop too. */
3664 gfc_warning ("Component '%s' in derived type '%s' at %L "
3665 "may not be C interoperable",
3666 curr_comp->name, derived_sym->name,
3667 &(curr_comp->loc));
3668 }
3669 }
3670
3671 curr_comp = curr_comp->next;
3672 } while (curr_comp != NULL);
3673
3674
3675 /* Make sure we don't have conflicts with the attributes. */
3676 if (derived_sym->attr.access == ACCESS_PRIVATE)
3677 {
3678 gfc_error ("Derived type '%s' at %L cannot be declared with both "
3679 "PRIVATE and BIND(C) attributes", derived_sym->name,
3680 &(derived_sym->declared_at));
3681 retval = FAILURE;
3682 }
3683
3684 if (derived_sym->attr.sequence != 0)
3685 {
3686 gfc_error ("Derived type '%s' at %L cannot have the SEQUENCE "
3687 "attribute because it is BIND(C)", derived_sym->name,
3688 &(derived_sym->declared_at));
3689 retval = FAILURE;
3690 }
3691
3692 /* Mark the derived type as not being C interoperable if we found an
3693 error. If there were only warnings, proceed with the assumption
3694 it's interoperable. */
3695 if (retval == FAILURE)
3696 derived_sym->ts.is_c_interop = 0;
3697
3698 return retval;
3699 }
3700
3701
3702 /* Generate symbols for the named constants c_null_ptr and c_null_funptr. */
3703
3704 static gfc_try
3705 gen_special_c_interop_ptr (int ptr_id, const char *ptr_name,
3706 const char *module_name)
3707 {
3708 gfc_symtree *tmp_symtree;
3709 gfc_symbol *tmp_sym;
3710 gfc_constructor *c;
3711
3712 tmp_symtree = gfc_find_symtree (gfc_current_ns->sym_root, ptr_name);
3713
3714 if (tmp_symtree != NULL)
3715 tmp_sym = tmp_symtree->n.sym;
3716 else
3717 {
3718 tmp_sym = NULL;
3719 gfc_internal_error ("gen_special_c_interop_ptr(): Unable to "
3720 "create symbol for %s", ptr_name);
3721 }
3722
3723 /* Set up the symbol's important fields. Save attr required so we can
3724 initialize the ptr to NULL. */
3725 tmp_sym->attr.save = SAVE_EXPLICIT;
3726 tmp_sym->ts.is_c_interop = 1;
3727 tmp_sym->attr.is_c_interop = 1;
3728 tmp_sym->ts.is_iso_c = 1;
3729 tmp_sym->ts.type = BT_DERIVED;
3730
3731 /* The c_ptr and c_funptr derived types will provide the
3732 definition for c_null_ptr and c_null_funptr, respectively. */
3733 if (ptr_id == ISOCBINDING_NULL_PTR)
3734 tmp_sym->ts.u.derived = get_iso_c_binding_dt (ISOCBINDING_PTR);
3735 else
3736 tmp_sym->ts.u.derived = get_iso_c_binding_dt (ISOCBINDING_FUNPTR);
3737 if (tmp_sym->ts.u.derived == NULL)
3738 {
3739 /* This can occur if the user forgot to declare c_ptr or
3740 c_funptr and they're trying to use one of the procedures
3741 that has arg(s) of the missing type. In this case, a
3742 regular version of the thing should have been put in the
3743 current ns. */
3744 generate_isocbinding_symbol (module_name, ptr_id == ISOCBINDING_NULL_PTR
3745 ? ISOCBINDING_PTR : ISOCBINDING_FUNPTR,
3746 (const char *) (ptr_id == ISOCBINDING_NULL_PTR
3747 ? "_gfortran_iso_c_binding_c_ptr"
3748 : "_gfortran_iso_c_binding_c_funptr"));
3749
3750 tmp_sym->ts.u.derived =
3751 get_iso_c_binding_dt (ptr_id == ISOCBINDING_NULL_PTR
3752 ? ISOCBINDING_PTR : ISOCBINDING_FUNPTR);
3753 }
3754
3755 /* Module name is some mangled version of iso_c_binding. */
3756 tmp_sym->module = gfc_get_string (module_name);
3757
3758 /* Say it's from the iso_c_binding module. */
3759 tmp_sym->attr.is_iso_c = 1;
3760
3761 tmp_sym->attr.use_assoc = 1;
3762 tmp_sym->attr.is_bind_c = 1;
3763 /* Set the binding_label. */
3764 sprintf (tmp_sym->binding_label, "%s_%s", module_name, tmp_sym->name);
3765
3766 /* Set the c_address field of c_null_ptr and c_null_funptr to
3767 the value of NULL. */
3768 tmp_sym->value = gfc_get_expr ();
3769 tmp_sym->value->expr_type = EXPR_STRUCTURE;
3770 tmp_sym->value->ts.type = BT_DERIVED;
3771 tmp_sym->value->ts.u.derived = tmp_sym->ts.u.derived;
3772 gfc_constructor_append_expr (&tmp_sym->value->value.constructor, NULL, NULL);
3773 c = gfc_constructor_first (tmp_sym->value->value.constructor);
3774 c->expr = gfc_get_expr ();
3775 c->expr->expr_type = EXPR_NULL;
3776 c->expr->ts.is_iso_c = 1;
3777 /* Must declare c_null_ptr and c_null_funptr as having the
3778 PARAMETER attribute so they can be used in init expressions. */
3779 tmp_sym->attr.flavor = FL_PARAMETER;
3780
3781 return SUCCESS;
3782 }
3783
3784
3785 /* Add a formal argument, gfc_formal_arglist, to the
3786 end of the given list of arguments. Set the reference to the
3787 provided symbol, param_sym, in the argument. */
3788
3789 static void
3790 add_formal_arg (gfc_formal_arglist **head,
3791 gfc_formal_arglist **tail,
3792 gfc_formal_arglist *formal_arg,
3793 gfc_symbol *param_sym)
3794 {
3795 /* Put in list, either as first arg or at the tail (curr arg). */
3796 if (*head == NULL)
3797 *head = *tail = formal_arg;
3798 else
3799 {
3800 (*tail)->next = formal_arg;
3801 (*tail) = formal_arg;
3802 }
3803
3804 (*tail)->sym = param_sym;
3805 (*tail)->next = NULL;
3806
3807 return;
3808 }
3809
3810
3811 /* Generates a symbol representing the CPTR argument to an
3812 iso_c_binding procedure. Also, create a gfc_formal_arglist for the
3813 CPTR and add it to the provided argument list. */
3814
3815 static void
3816 gen_cptr_param (gfc_formal_arglist **head,
3817 gfc_formal_arglist **tail,
3818 const char *module_name,
3819 gfc_namespace *ns, const char *c_ptr_name,
3820 int iso_c_sym_id)
3821 {
3822 gfc_symbol *param_sym = NULL;
3823 gfc_symbol *c_ptr_sym = NULL;
3824 gfc_symtree *param_symtree = NULL;
3825 gfc_formal_arglist *formal_arg = NULL;
3826 const char *c_ptr_in;
3827 const char *c_ptr_type = NULL;
3828
3829 if (iso_c_sym_id == ISOCBINDING_F_PROCPOINTER)
3830 c_ptr_type = "_gfortran_iso_c_binding_c_funptr";
3831 else
3832 c_ptr_type = "_gfortran_iso_c_binding_c_ptr";
3833
3834 if(c_ptr_name == NULL)
3835 c_ptr_in = "gfc_cptr__";
3836 else
3837 c_ptr_in = c_ptr_name;
3838 gfc_get_sym_tree (c_ptr_in, ns, &param_symtree, false);
3839 if (param_symtree != NULL)
3840 param_sym = param_symtree->n.sym;
3841 else
3842 gfc_internal_error ("gen_cptr_param(): Unable to "
3843 "create symbol for %s", c_ptr_in);
3844
3845 /* Set up the appropriate fields for the new c_ptr param sym. */
3846 param_sym->refs++;
3847 param_sym->attr.flavor = FL_DERIVED;
3848 param_sym->ts.type = BT_DERIVED;
3849 param_sym->attr.intent = INTENT_IN;
3850 param_sym->attr.dummy = 1;
3851
3852 /* This will pass the ptr to the iso_c routines as a (void *). */
3853 param_sym->attr.value = 1;
3854 param_sym->attr.use_assoc = 1;
3855
3856 /* Get the symbol for c_ptr or c_funptr, no matter what it's name is
3857 (user renamed). */
3858 if (iso_c_sym_id == ISOCBINDING_F_PROCPOINTER)
3859 c_ptr_sym = get_iso_c_binding_dt (ISOCBINDING_FUNPTR);
3860 else
3861 c_ptr_sym = get_iso_c_binding_dt (ISOCBINDING_PTR);
3862 if (c_ptr_sym == NULL)
3863 {
3864 /* This can happen if the user did not define c_ptr but they are
3865 trying to use one of the iso_c_binding functions that need it. */
3866 if (iso_c_sym_id == ISOCBINDING_F_PROCPOINTER)
3867 generate_isocbinding_symbol (module_name, ISOCBINDING_FUNPTR,
3868 (const char *)c_ptr_type);
3869 else
3870 generate_isocbinding_symbol (module_name, ISOCBINDING_PTR,
3871 (const char *)c_ptr_type);
3872
3873 gfc_get_ha_symbol (c_ptr_type, &(c_ptr_sym));
3874 }
3875
3876 param_sym->ts.u.derived = c_ptr_sym;
3877 param_sym->module = gfc_get_string (module_name);
3878
3879 /* Make new formal arg. */
3880 formal_arg = gfc_get_formal_arglist ();
3881 /* Add arg to list of formal args (the CPTR arg). */
3882 add_formal_arg (head, tail, formal_arg, param_sym);
3883
3884 /* Validate changes. */
3885 gfc_commit_symbol (param_sym);
3886 }
3887
3888
3889 /* Generates a symbol representing the FPTR argument to an
3890 iso_c_binding procedure. Also, create a gfc_formal_arglist for the
3891 FPTR and add it to the provided argument list. */
3892
3893 static void
3894 gen_fptr_param (gfc_formal_arglist **head,
3895 gfc_formal_arglist **tail,
3896 const char *module_name,
3897 gfc_namespace *ns, const char *f_ptr_name, int proc)
3898 {
3899 gfc_symbol *param_sym = NULL;
3900 gfc_symtree *param_symtree = NULL;
3901 gfc_formal_arglist *formal_arg = NULL;
3902 const char *f_ptr_out = "gfc_fptr__";
3903
3904 if (f_ptr_name != NULL)
3905 f_ptr_out = f_ptr_name;
3906
3907 gfc_get_sym_tree (f_ptr_out, ns, &param_symtree, false);
3908 if (param_symtree != NULL)
3909 param_sym = param_symtree->n.sym;
3910 else
3911 gfc_internal_error ("generateFPtrParam(): Unable to "
3912 "create symbol for %s", f_ptr_out);
3913
3914 /* Set up the necessary fields for the fptr output param sym. */
3915 param_sym->refs++;
3916 if (proc)
3917 param_sym->attr.proc_pointer = 1;
3918 else
3919 param_sym->attr.pointer = 1;
3920 param_sym->attr.dummy = 1;
3921 param_sym->attr.use_assoc = 1;
3922
3923 /* ISO C Binding type to allow any pointer type as actual param. */
3924 param_sym->ts.type = BT_VOID;
3925 param_sym->module = gfc_get_string (module_name);
3926
3927 /* Make the arg. */
3928 formal_arg = gfc_get_formal_arglist ();
3929 /* Add arg to list of formal args. */
3930 add_formal_arg (head, tail, formal_arg, param_sym);
3931
3932 /* Validate changes. */
3933 gfc_commit_symbol (param_sym);
3934 }
3935
3936
3937 /* Generates a symbol representing the optional SHAPE argument for the
3938 iso_c_binding c_f_pointer() procedure. Also, create a
3939 gfc_formal_arglist for the SHAPE and add it to the provided
3940 argument list. */
3941
3942 static void
3943 gen_shape_param (gfc_formal_arglist **head,
3944 gfc_formal_arglist **tail,
3945 const char *module_name,
3946 gfc_namespace *ns, const char *shape_param_name)
3947 {
3948 gfc_symbol *param_sym = NULL;
3949 gfc_symtree *param_symtree = NULL;
3950 gfc_formal_arglist *formal_arg = NULL;
3951 const char *shape_param = "gfc_shape_array__";
3952
3953 if (shape_param_name != NULL)
3954 shape_param = shape_param_name;
3955
3956 gfc_get_sym_tree (shape_param, ns, &param_symtree, false);
3957 if (param_symtree != NULL)
3958 param_sym = param_symtree->n.sym;
3959 else
3960 gfc_internal_error ("generateShapeParam(): Unable to "
3961 "create symbol for %s", shape_param);
3962
3963 /* Set up the necessary fields for the shape input param sym. */
3964 param_sym->refs++;
3965 param_sym->attr.dummy = 1;
3966 param_sym->attr.use_assoc = 1;
3967
3968 /* Integer array, rank 1, describing the shape of the object. Make it's
3969 type BT_VOID initially so we can accept any type/kind combination of
3970 integer. During gfc_iso_c_sub_interface (resolve.c), we'll make it
3971 of BT_INTEGER type. */
3972 param_sym->ts.type = BT_VOID;
3973
3974 /* Initialize the kind to default integer. However, it will be overridden
3975 during resolution to match the kind of the SHAPE parameter given as
3976 the actual argument (to allow for any valid integer kind). */
3977 param_sym->ts.kind = gfc_default_integer_kind;
3978 param_sym->as = gfc_get_array_spec ();
3979
3980 param_sym->as->rank = 1;
3981 param_sym->as->lower[0] = gfc_get_int_expr (gfc_default_integer_kind,
3982 NULL, 1);
3983
3984 /* The extent is unknown until we get it. The length give us
3985 the rank the incoming pointer. */
3986 param_sym->as->type = AS_ASSUMED_SHAPE;
3987
3988 /* The arg is also optional; it is required iff the second arg
3989 (fptr) is to an array, otherwise, it's ignored. */
3990 param_sym->attr.optional = 1;
3991 param_sym->attr.intent = INTENT_IN;
3992 param_sym->attr.dimension = 1;
3993 param_sym->module = gfc_get_string (module_name);
3994
3995 /* Make the arg. */
3996 formal_arg = gfc_get_formal_arglist ();
3997 /* Add arg to list of formal args. */
3998 add_formal_arg (head, tail, formal_arg, param_sym);
3999
4000 /* Validate changes. */
4001 gfc_commit_symbol (param_sym);
4002 }
4003
4004
4005 /* Add a procedure interface to the given symbol (i.e., store a
4006 reference to the list of formal arguments). */
4007
4008 static void
4009 add_proc_interface (gfc_symbol *sym, ifsrc source,
4010 gfc_formal_arglist *formal)
4011 {
4012
4013 sym->formal = formal;
4014 sym->attr.if_source = source;
4015 }
4016
4017
4018 /* Copy the formal args from an existing symbol, src, into a new
4019 symbol, dest. New formal args are created, and the description of
4020 each arg is set according to the existing ones. This function is
4021 used when creating procedure declaration variables from a procedure
4022 declaration statement (see match_proc_decl()) to create the formal
4023 args based on the args of a given named interface. */
4024
4025 void
4026 gfc_copy_formal_args (gfc_symbol *dest, gfc_symbol *src)
4027 {
4028 gfc_formal_arglist *head = NULL;
4029 gfc_formal_arglist *tail = NULL;
4030 gfc_formal_arglist *formal_arg = NULL;
4031 gfc_formal_arglist *curr_arg = NULL;
4032 gfc_formal_arglist *formal_prev = NULL;
4033 /* Save current namespace so we can change it for formal args. */
4034 gfc_namespace *parent_ns = gfc_current_ns;
4035
4036 /* Create a new namespace, which will be the formal ns (namespace
4037 of the formal args). */
4038 gfc_current_ns = gfc_get_namespace (parent_ns, 0);
4039 gfc_current_ns->proc_name = dest;
4040
4041 for (curr_arg = src->formal; curr_arg; curr_arg = curr_arg->next)
4042 {
4043 formal_arg = gfc_get_formal_arglist ();
4044 gfc_get_symbol (curr_arg->sym->name, gfc_current_ns, &(formal_arg->sym));
4045
4046 /* May need to copy more info for the symbol. */
4047 formal_arg->sym->attr = curr_arg->sym->attr;
4048 formal_arg->sym->ts = curr_arg->sym->ts;
4049 formal_arg->sym->as = gfc_copy_array_spec (curr_arg->sym->as);
4050 gfc_copy_formal_args (formal_arg->sym, curr_arg->sym);
4051
4052 /* If this isn't the first arg, set up the next ptr. For the
4053 last arg built, the formal_arg->next will never get set to
4054 anything other than NULL. */
4055 if (formal_prev != NULL)
4056 formal_prev->next = formal_arg;
4057 else
4058 formal_arg->next = NULL;
4059
4060 formal_prev = formal_arg;
4061
4062 /* Add arg to list of formal args. */
4063 add_formal_arg (&head, &tail, formal_arg, formal_arg->sym);
4064
4065 /* Validate changes. */
4066 gfc_commit_symbol (formal_arg->sym);
4067 }
4068
4069 /* Add the interface to the symbol. */
4070 add_proc_interface (dest, IFSRC_DECL, head);
4071
4072 /* Store the formal namespace information. */
4073 if (dest->formal != NULL)
4074 /* The current ns should be that for the dest proc. */
4075 dest->formal_ns = gfc_current_ns;
4076 /* Restore the current namespace to what it was on entry. */
4077 gfc_current_ns = parent_ns;
4078 }
4079
4080
4081 void
4082 gfc_copy_formal_args_intr (gfc_symbol *dest, gfc_intrinsic_sym *src)
4083 {
4084 gfc_formal_arglist *head = NULL;
4085 gfc_formal_arglist *tail = NULL;
4086 gfc_formal_arglist *formal_arg = NULL;
4087 gfc_intrinsic_arg *curr_arg = NULL;
4088 gfc_formal_arglist *formal_prev = NULL;
4089 /* Save current namespace so we can change it for formal args. */
4090 gfc_namespace *parent_ns = gfc_current_ns;
4091
4092 /* Create a new namespace, which will be the formal ns (namespace
4093 of the formal args). */
4094 gfc_current_ns = gfc_get_namespace (parent_ns, 0);
4095 gfc_current_ns->proc_name = dest;
4096
4097 for (curr_arg = src->formal; curr_arg; curr_arg = curr_arg->next)
4098 {
4099 formal_arg = gfc_get_formal_arglist ();
4100 gfc_get_symbol (curr_arg->name, gfc_current_ns, &(formal_arg->sym));
4101
4102 /* May need to copy more info for the symbol. */
4103 formal_arg->sym->ts = curr_arg->ts;
4104 formal_arg->sym->attr.optional = curr_arg->optional;
4105 formal_arg->sym->attr.value = curr_arg->value;
4106 formal_arg->sym->attr.intent = curr_arg->intent;
4107 formal_arg->sym->attr.flavor = FL_VARIABLE;
4108 formal_arg->sym->attr.dummy = 1;
4109
4110 if (formal_arg->sym->ts.type == BT_CHARACTER)
4111 formal_arg->sym->ts.u.cl = gfc_new_charlen (gfc_current_ns, NULL);
4112
4113 /* If this isn't the first arg, set up the next ptr. For the
4114 last arg built, the formal_arg->next will never get set to
4115 anything other than NULL. */
4116 if (formal_prev != NULL)
4117 formal_prev->next = formal_arg;
4118 else
4119 formal_arg->next = NULL;
4120
4121 formal_prev = formal_arg;
4122
4123 /* Add arg to list of formal args. */
4124 add_formal_arg (&head, &tail, formal_arg, formal_arg->sym);
4125
4126 /* Validate changes. */
4127 gfc_commit_symbol (formal_arg->sym);
4128 }
4129
4130 /* Add the interface to the symbol. */
4131 add_proc_interface (dest, IFSRC_DECL, head);
4132
4133 /* Store the formal namespace information. */
4134 if (dest->formal != NULL)
4135 /* The current ns should be that for the dest proc. */
4136 dest->formal_ns = gfc_current_ns;
4137 /* Restore the current namespace to what it was on entry. */
4138 gfc_current_ns = parent_ns;
4139 }
4140
4141
4142 void
4143 gfc_copy_formal_args_ppc (gfc_component *dest, gfc_symbol *src)
4144 {
4145 gfc_formal_arglist *head = NULL;
4146 gfc_formal_arglist *tail = NULL;
4147 gfc_formal_arglist *formal_arg = NULL;
4148 gfc_formal_arglist *curr_arg = NULL;
4149 gfc_formal_arglist *formal_prev = NULL;
4150 /* Save current namespace so we can change it for formal args. */
4151 gfc_namespace *parent_ns = gfc_current_ns;
4152
4153 /* Create a new namespace, which will be the formal ns (namespace
4154 of the formal args). */
4155 gfc_current_ns = gfc_get_namespace (parent_ns, 0);
4156 /* TODO: gfc_current_ns->proc_name = dest;*/
4157
4158 for (curr_arg = src->formal; curr_arg; curr_arg = curr_arg->next)
4159 {
4160 formal_arg = gfc_get_formal_arglist ();
4161 gfc_get_symbol (curr_arg->sym->name, gfc_current_ns, &(formal_arg->sym));
4162
4163 /* May need to copy more info for the symbol. */
4164 formal_arg->sym->attr = curr_arg->sym->attr;
4165 formal_arg->sym->ts = curr_arg->sym->ts;
4166 formal_arg->sym->as = gfc_copy_array_spec (curr_arg->sym->as);
4167 gfc_copy_formal_args (formal_arg->sym, curr_arg->sym);
4168
4169 /* If this isn't the first arg, set up the next ptr. For the
4170 last arg built, the formal_arg->next will never get set to
4171 anything other than NULL. */
4172 if (formal_prev != NULL)
4173 formal_prev->next = formal_arg;
4174 else
4175 formal_arg->next = NULL;
4176
4177 formal_prev = formal_arg;
4178
4179 /* Add arg to list of formal args. */
4180 add_formal_arg (&head, &tail, formal_arg, formal_arg->sym);
4181
4182 /* Validate changes. */
4183 gfc_commit_symbol (formal_arg->sym);
4184 }
4185
4186 /* Add the interface to the symbol. */
4187 gfc_free_formal_arglist (dest->formal);
4188 dest->formal = head;
4189 dest->attr.if_source = IFSRC_DECL;
4190
4191 /* Store the formal namespace information. */
4192 if (dest->formal != NULL)
4193 /* The current ns should be that for the dest proc. */
4194 dest->formal_ns = gfc_current_ns;
4195 /* Restore the current namespace to what it was on entry. */
4196 gfc_current_ns = parent_ns;
4197 }
4198
4199
4200 /* Builds the parameter list for the iso_c_binding procedure
4201 c_f_pointer or c_f_procpointer. The old_sym typically refers to a
4202 generic version of either the c_f_pointer or c_f_procpointer
4203 functions. The new_proc_sym represents a "resolved" version of the
4204 symbol. The functions are resolved to match the types of their
4205 parameters; for example, c_f_pointer(cptr, fptr) would resolve to
4206 something similar to c_f_pointer_i4 if the type of data object fptr
4207 pointed to was a default integer. The actual name of the resolved
4208 procedure symbol is further mangled with the module name, etc., but
4209 the idea holds true. */
4210
4211 static void
4212 build_formal_args (gfc_symbol *new_proc_sym,
4213 gfc_symbol *old_sym, int add_optional_arg)
4214 {
4215 gfc_formal_arglist *head = NULL, *tail = NULL;
4216 gfc_namespace *parent_ns = NULL;
4217
4218 parent_ns = gfc_current_ns;
4219 /* Create a new namespace, which will be the formal ns (namespace
4220 of the formal args). */
4221 gfc_current_ns = gfc_get_namespace(parent_ns, 0);
4222 gfc_current_ns->proc_name = new_proc_sym;
4223
4224 /* Generate the params. */
4225 if (old_sym->intmod_sym_id == ISOCBINDING_F_PROCPOINTER)
4226 {
4227 gen_cptr_param (&head, &tail, (const char *) new_proc_sym->module,
4228 gfc_current_ns, "cptr", old_sym->intmod_sym_id);
4229 gen_fptr_param (&head, &tail, (const char *) new_proc_sym->module,
4230 gfc_current_ns, "fptr", 1);
4231 }
4232 else if (old_sym->intmod_sym_id == ISOCBINDING_F_POINTER)
4233 {
4234 gen_cptr_param (&head, &tail, (const char *) new_proc_sym->module,
4235 gfc_current_ns, "cptr", old_sym->intmod_sym_id);
4236 gen_fptr_param (&head, &tail, (const char *) new_proc_sym->module,
4237 gfc_current_ns, "fptr", 0);
4238 /* If we're dealing with c_f_pointer, it has an optional third arg. */
4239 gen_shape_param (&head, &tail,(const char *) new_proc_sym->module,
4240 gfc_current_ns, "shape");
4241
4242 }
4243 else if (old_sym->intmod_sym_id == ISOCBINDING_ASSOCIATED)
4244 {
4245 /* c_associated has one required arg and one optional; both
4246 are c_ptrs. */
4247 gen_cptr_param (&head, &tail, (const char *) new_proc_sym->module,
4248 gfc_current_ns, "c_ptr_1", ISOCBINDING_ASSOCIATED);
4249 if (add_optional_arg)
4250 {
4251 gen_cptr_param (&head, &tail, (const char *) new_proc_sym->module,
4252 gfc_current_ns, "c_ptr_2", ISOCBINDING_ASSOCIATED);
4253 /* The last param is optional so mark it as such. */
4254 tail->sym->attr.optional = 1;
4255 }
4256 }
4257
4258 /* Add the interface (store formal args to new_proc_sym). */
4259 add_proc_interface (new_proc_sym, IFSRC_DECL, head);
4260
4261 /* Set up the formal_ns pointer to the one created for the
4262 new procedure so it'll get cleaned up during gfc_free_symbol(). */
4263 new_proc_sym->formal_ns = gfc_current_ns;
4264
4265 gfc_current_ns = parent_ns;
4266 }
4267
4268 static int
4269 std_for_isocbinding_symbol (int id)
4270 {
4271 switch (id)
4272 {
4273 #define NAMED_INTCST(a,b,c,d) \
4274 case a:\
4275 return d;
4276 #include "iso-c-binding.def"
4277 #undef NAMED_INTCST
4278
4279 #define NAMED_FUNCTION(a,b,c,d) \
4280 case a:\
4281 return d;
4282 #include "iso-c-binding.def"
4283 #undef NAMED_FUNCTION
4284
4285 default:
4286 return GFC_STD_F2003;
4287 }
4288 }
4289
4290 /* Generate the given set of C interoperable kind objects, or all
4291 interoperable kinds. This function will only be given kind objects
4292 for valid iso_c_binding defined types because this is verified when
4293 the 'use' statement is parsed. If the user gives an 'only' clause,
4294 the specific kinds are looked up; if they don't exist, an error is
4295 reported. If the user does not give an 'only' clause, all
4296 iso_c_binding symbols are generated. If a list of specific kinds
4297 is given, it must have a NULL in the first empty spot to mark the
4298 end of the list. */
4299
4300
4301 void
4302 generate_isocbinding_symbol (const char *mod_name, iso_c_binding_symbol s,
4303 const char *local_name)
4304 {
4305 const char *const name = (local_name && local_name[0]) ? local_name
4306 : c_interop_kinds_table[s].name;
4307 gfc_symtree *tmp_symtree = NULL;
4308 gfc_symbol *tmp_sym = NULL;
4309 gfc_dt_list **dt_list_ptr = NULL;
4310 gfc_component *tmp_comp = NULL;
4311 char comp_name[(GFC_MAX_SYMBOL_LEN * 2) + 1];
4312 int index;
4313
4314 if (gfc_notification_std (std_for_isocbinding_symbol (s)) == ERROR)
4315 return;
4316 tmp_symtree = gfc_find_symtree (gfc_current_ns->sym_root, name);
4317
4318 /* Already exists in this scope so don't re-add it.
4319 TODO: we should probably check that it's really the same symbol. */
4320 if (tmp_symtree != NULL)
4321 return;
4322
4323 /* Create the sym tree in the current ns. */
4324 gfc_get_sym_tree (name, gfc_current_ns, &tmp_symtree, false);
4325 if (tmp_symtree)
4326 tmp_sym = tmp_symtree->n.sym;
4327 else
4328 gfc_internal_error ("generate_isocbinding_symbol(): Unable to "
4329 "create symbol");
4330
4331 /* Say what module this symbol belongs to. */
4332 tmp_sym->module = gfc_get_string (mod_name);
4333 tmp_sym->from_intmod = INTMOD_ISO_C_BINDING;
4334 tmp_sym->intmod_sym_id = s;
4335
4336 switch (s)
4337 {
4338
4339 #define NAMED_INTCST(a,b,c,d) case a :
4340 #define NAMED_REALCST(a,b,c,d) case a :
4341 #define NAMED_CMPXCST(a,b,c,d) case a :
4342 #define NAMED_LOGCST(a,b,c) case a :
4343 #define NAMED_CHARKNDCST(a,b,c) case a :
4344 #include "iso-c-binding.def"
4345
4346 tmp_sym->value = gfc_get_int_expr (gfc_default_integer_kind, NULL,
4347 c_interop_kinds_table[s].value);
4348
4349 /* Initialize an integer constant expression node. */
4350 tmp_sym->attr.flavor = FL_PARAMETER;
4351 tmp_sym->ts.type = BT_INTEGER;
4352 tmp_sym->ts.kind = gfc_default_integer_kind;
4353
4354 /* Mark this type as a C interoperable one. */
4355 tmp_sym->ts.is_c_interop = 1;
4356 tmp_sym->ts.is_iso_c = 1;
4357 tmp_sym->value->ts.is_c_interop = 1;
4358 tmp_sym->value->ts.is_iso_c = 1;
4359 tmp_sym->attr.is_c_interop = 1;
4360
4361 /* Tell what f90 type this c interop kind is valid. */
4362 tmp_sym->ts.f90_type = c_interop_kinds_table[s].f90_type;
4363
4364 /* Say it's from the iso_c_binding module. */
4365 tmp_sym->attr.is_iso_c = 1;
4366
4367 /* Make it use associated. */
4368 tmp_sym->attr.use_assoc = 1;
4369 break;
4370
4371
4372 #define NAMED_CHARCST(a,b,c) case a :
4373 #include "iso-c-binding.def"
4374
4375 /* Initialize an integer constant expression node for the
4376 length of the character. */
4377 tmp_sym->value = gfc_get_character_expr (gfc_default_character_kind,
4378 &gfc_current_locus, NULL, 1);
4379 tmp_sym->value->ts.is_c_interop = 1;
4380 tmp_sym->value->ts.is_iso_c = 1;
4381 tmp_sym->value->value.character.length = 1;
4382 tmp_sym->value->value.character.string[0]
4383 = (gfc_char_t) c_interop_kinds_table[s].value;
4384 tmp_sym->ts.u.cl = gfc_new_charlen (gfc_current_ns, NULL);
4385 tmp_sym->ts.u.cl->length = gfc_get_int_expr (gfc_default_integer_kind,
4386 NULL, 1);
4387
4388 /* May not need this in both attr and ts, but do need in
4389 attr for writing module file. */
4390 tmp_sym->attr.is_c_interop = 1;
4391
4392 tmp_sym->attr.flavor = FL_PARAMETER;
4393 tmp_sym->ts.type = BT_CHARACTER;
4394
4395 /* Need to set it to the C_CHAR kind. */
4396 tmp_sym->ts.kind = gfc_default_character_kind;
4397
4398 /* Mark this type as a C interoperable one. */
4399 tmp_sym->ts.is_c_interop = 1;
4400 tmp_sym->ts.is_iso_c = 1;
4401
4402 /* Tell what f90 type this c interop kind is valid. */
4403 tmp_sym->ts.f90_type = BT_CHARACTER;
4404
4405 /* Say it's from the iso_c_binding module. */
4406 tmp_sym->attr.is_iso_c = 1;
4407
4408 /* Make it use associated. */
4409 tmp_sym->attr.use_assoc = 1;
4410 break;
4411
4412 case ISOCBINDING_PTR:
4413 case ISOCBINDING_FUNPTR:
4414
4415 /* Initialize an integer constant expression node. */
4416 tmp_sym->attr.flavor = FL_DERIVED;
4417 tmp_sym->ts.is_c_interop = 1;
4418 tmp_sym->attr.is_c_interop = 1;
4419 tmp_sym->attr.is_iso_c = 1;
4420 tmp_sym->ts.is_iso_c = 1;
4421 tmp_sym->ts.type = BT_DERIVED;
4422
4423 /* A derived type must have the bind attribute to be
4424 interoperable (J3/04-007, Section 15.2.3), even though
4425 the binding label is not used. */
4426 tmp_sym->attr.is_bind_c = 1;
4427
4428 tmp_sym->attr.referenced = 1;
4429
4430 tmp_sym->ts.u.derived = tmp_sym;
4431
4432 /* Add the symbol created for the derived type to the current ns. */
4433 dt_list_ptr = &(gfc_derived_types);
4434 while (*dt_list_ptr != NULL && (*dt_list_ptr)->next != NULL)
4435 dt_list_ptr = &((*dt_list_ptr)->next);
4436
4437 /* There is already at least one derived type in the list, so append
4438 the one we're currently building for c_ptr or c_funptr. */
4439 if (*dt_list_ptr != NULL)
4440 dt_list_ptr = &((*dt_list_ptr)->next);
4441 (*dt_list_ptr) = gfc_get_dt_list ();
4442 (*dt_list_ptr)->derived = tmp_sym;
4443 (*dt_list_ptr)->next = NULL;
4444
4445 /* Set up the component of the derived type, which will be
4446 an integer with kind equal to c_ptr_size. Mangle the name of
4447 the field for the c_address to prevent the curious user from
4448 trying to access it from Fortran. */
4449 sprintf (comp_name, "__%s_%s", tmp_sym->name, "c_address");
4450 gfc_add_component (tmp_sym, comp_name, &tmp_comp);
4451 if (tmp_comp == NULL)
4452 gfc_internal_error ("generate_isocbinding_symbol(): Unable to "
4453 "create component for c_address");
4454
4455 tmp_comp->ts.type = BT_INTEGER;
4456
4457 /* Set this because the module will need to read/write this field. */
4458 tmp_comp->ts.f90_type = BT_INTEGER;
4459
4460 /* The kinds for c_ptr and c_funptr are the same. */
4461 index = get_c_kind ("c_ptr", c_interop_kinds_table);
4462 tmp_comp->ts.kind = c_interop_kinds_table[index].value;
4463
4464 tmp_comp->attr.pointer = 0;
4465 tmp_comp->attr.dimension = 0;
4466
4467 /* Mark the component as C interoperable. */
4468 tmp_comp->ts.is_c_interop = 1;
4469
4470 /* Make it use associated (iso_c_binding module). */
4471 tmp_sym->attr.use_assoc = 1;
4472 break;
4473
4474 case ISOCBINDING_NULL_PTR:
4475 case ISOCBINDING_NULL_FUNPTR:
4476 gen_special_c_interop_ptr (s, name, mod_name);
4477 break;
4478
4479 case ISOCBINDING_F_POINTER:
4480 case ISOCBINDING_ASSOCIATED:
4481 case ISOCBINDING_LOC:
4482 case ISOCBINDING_FUNLOC:
4483 case ISOCBINDING_F_PROCPOINTER:
4484
4485 tmp_sym->attr.proc = PROC_MODULE;
4486
4487 /* Use the procedure's name as it is in the iso_c_binding module for
4488 setting the binding label in case the user renamed the symbol. */
4489 sprintf (tmp_sym->binding_label, "%s_%s", mod_name,
4490 c_interop_kinds_table[s].name);
4491 tmp_sym->attr.is_iso_c = 1;
4492 if (s == ISOCBINDING_F_POINTER || s == ISOCBINDING_F_PROCPOINTER)
4493 tmp_sym->attr.subroutine = 1;
4494 else
4495 {
4496 /* TODO! This needs to be finished more for the expr of the
4497 function or something!
4498 This may not need to be here, because trying to do c_loc
4499 as an external. */
4500 if (s == ISOCBINDING_ASSOCIATED)
4501 {
4502 tmp_sym->attr.function = 1;
4503 tmp_sym->ts.type = BT_LOGICAL;
4504 tmp_sym->ts.kind = gfc_default_logical_kind;
4505 tmp_sym->result = tmp_sym;
4506 }
4507 else
4508 {
4509 /* Here, we're taking the simple approach. We're defining
4510 c_loc as an external identifier so the compiler will put
4511 what we expect on the stack for the address we want the
4512 C address of. */
4513 tmp_sym->ts.type = BT_DERIVED;
4514 if (s == ISOCBINDING_LOC)
4515 tmp_sym->ts.u.derived =
4516 get_iso_c_binding_dt (ISOCBINDING_PTR);
4517 else
4518 tmp_sym->ts.u.derived =
4519 get_iso_c_binding_dt (ISOCBINDING_FUNPTR);
4520
4521 if (tmp_sym->ts.u.derived == NULL)
4522 {
4523 /* Create the necessary derived type so we can continue
4524 processing the file. */
4525 generate_isocbinding_symbol
4526 (mod_name, s == ISOCBINDING_FUNLOC
4527 ? ISOCBINDING_FUNPTR : ISOCBINDING_PTR,
4528 (const char *)(s == ISOCBINDING_FUNLOC
4529 ? "_gfortran_iso_c_binding_c_funptr"
4530 : "_gfortran_iso_c_binding_c_ptr"));
4531 tmp_sym->ts.u.derived =
4532 get_iso_c_binding_dt (s == ISOCBINDING_FUNLOC
4533 ? ISOCBINDING_FUNPTR
4534 : ISOCBINDING_PTR);
4535 }
4536
4537 /* The function result is itself (no result clause). */
4538 tmp_sym->result = tmp_sym;
4539 tmp_sym->attr.external = 1;
4540 tmp_sym->attr.use_assoc = 0;
4541 tmp_sym->attr.pure = 1;
4542 tmp_sym->attr.if_source = IFSRC_UNKNOWN;
4543 tmp_sym->attr.proc = PROC_UNKNOWN;
4544 }
4545 }
4546
4547 tmp_sym->attr.flavor = FL_PROCEDURE;
4548 tmp_sym->attr.contained = 0;
4549
4550 /* Try using this builder routine, with the new and old symbols
4551 both being the generic iso_c proc sym being created. This
4552 will create the formal args (and the new namespace for them).
4553 Don't build an arg list for c_loc because we're going to treat
4554 c_loc as an external procedure. */
4555 if (s != ISOCBINDING_LOC && s != ISOCBINDING_FUNLOC)
4556 /* The 1 says to add any optional args, if applicable. */
4557 build_formal_args (tmp_sym, tmp_sym, 1);
4558
4559 /* Set this after setting up the symbol, to prevent error messages. */
4560 tmp_sym->attr.use_assoc = 1;
4561
4562 /* This symbol will not be referenced directly. It will be
4563 resolved to the implementation for the given f90 kind. */
4564 tmp_sym->attr.referenced = 0;
4565
4566 break;
4567
4568 default:
4569 gcc_unreachable ();
4570 }
4571 gfc_commit_symbol (tmp_sym);
4572 }
4573
4574
4575 /* Creates a new symbol based off of an old iso_c symbol, with a new
4576 binding label. This function can be used to create a new,
4577 resolved, version of a procedure symbol for c_f_pointer or
4578 c_f_procpointer that is based on the generic symbols. A new
4579 parameter list is created for the new symbol using
4580 build_formal_args(). The add_optional_flag specifies whether the
4581 to add the optional SHAPE argument. The new symbol is
4582 returned. */
4583
4584 gfc_symbol *
4585 get_iso_c_sym (gfc_symbol *old_sym, char *new_name,
4586 char *new_binding_label, int add_optional_arg)
4587 {
4588 gfc_symtree *new_symtree = NULL;
4589
4590 /* See if we have a symbol by that name already available, looking
4591 through any parent namespaces. */
4592 gfc_find_sym_tree (new_name, gfc_current_ns, 1, &new_symtree);
4593 if (new_symtree != NULL)
4594 /* Return the existing symbol. */
4595 return new_symtree->n.sym;
4596
4597 /* Create the symtree/symbol, with attempted host association. */
4598 gfc_get_ha_sym_tree (new_name, &new_symtree);
4599 if (new_symtree == NULL)
4600 gfc_internal_error ("get_iso_c_sym(): Unable to create "
4601 "symtree for '%s'", new_name);
4602
4603 /* Now fill in the fields of the resolved symbol with the old sym. */
4604 strcpy (new_symtree->n.sym->binding_label, new_binding_label);
4605 new_symtree->n.sym->attr = old_sym->attr;
4606 new_symtree->n.sym->ts = old_sym->ts;
4607 new_symtree->n.sym->module = gfc_get_string (old_sym->module);
4608 new_symtree->n.sym->from_intmod = old_sym->from_intmod;
4609 new_symtree->n.sym->intmod_sym_id = old_sym->intmod_sym_id;
4610 if (old_sym->attr.function)
4611 new_symtree->n.sym->result = new_symtree->n.sym;
4612 /* Build the formal arg list. */
4613 build_formal_args (new_symtree->n.sym, old_sym, add_optional_arg);
4614
4615 gfc_commit_symbol (new_symtree->n.sym);
4616
4617 return new_symtree->n.sym;
4618 }
4619
4620
4621 /* Check that a symbol is already typed. If strict is not set, an untyped
4622 symbol is acceptable for non-standard-conforming mode. */
4623
4624 gfc_try
4625 gfc_check_symbol_typed (gfc_symbol* sym, gfc_namespace* ns,
4626 bool strict, locus where)
4627 {
4628 gcc_assert (sym);
4629
4630 if (gfc_matching_prefix)
4631 return SUCCESS;
4632
4633 /* Check for the type and try to give it an implicit one. */
4634 if (sym->ts.type == BT_UNKNOWN
4635 && gfc_set_default_type (sym, 0, ns) == FAILURE)
4636 {
4637 if (strict)
4638 {
4639 gfc_error ("Symbol '%s' is used before it is typed at %L",
4640 sym->name, &where);
4641 return FAILURE;
4642 }
4643
4644 if (gfc_notify_std (GFC_STD_GNU,
4645 "Extension: Symbol '%s' is used before"
4646 " it is typed at %L", sym->name, &where) == FAILURE)
4647 return FAILURE;
4648 }
4649
4650 /* Everything is ok. */
4651 return SUCCESS;
4652 }
4653
4654
4655 /* Construct a typebound-procedure structure. Those are stored in a tentative
4656 list and marked `error' until symbols are committed. */
4657
4658 gfc_typebound_proc*
4659 gfc_get_typebound_proc (gfc_typebound_proc *tb0)
4660 {
4661 gfc_typebound_proc *result;
4662 tentative_tbp *list_node;
4663
4664 result = XCNEW (gfc_typebound_proc);
4665 if (tb0)
4666 *result = *tb0;
4667 result->error = 1;
4668
4669 list_node = XCNEW (tentative_tbp);
4670 list_node->next = tentative_tbp_list;
4671 list_node->proc = result;
4672 tentative_tbp_list = list_node;
4673
4674 return result;
4675 }
4676
4677
4678 /* Get the super-type of a given derived type. */
4679
4680 gfc_symbol*
4681 gfc_get_derived_super_type (gfc_symbol* derived)
4682 {
4683 if (!derived->attr.extension)
4684 return NULL;
4685
4686 gcc_assert (derived->components);
4687 gcc_assert (derived->components->ts.type == BT_DERIVED);
4688 gcc_assert (derived->components->ts.u.derived);
4689
4690 return derived->components->ts.u.derived;
4691 }
4692
4693
4694 /* Get the ultimate super-type of a given derived type. */
4695
4696 gfc_symbol*
4697 gfc_get_ultimate_derived_super_type (gfc_symbol* derived)
4698 {
4699 if (!derived->attr.extension)
4700 return NULL;
4701
4702 derived = gfc_get_derived_super_type (derived);
4703
4704 if (derived->attr.extension)
4705 return gfc_get_ultimate_derived_super_type (derived);
4706 else
4707 return derived;
4708 }
4709
4710
4711 /* Check if a derived type t2 is an extension of (or equal to) a type t1. */
4712
4713 bool
4714 gfc_type_is_extension_of (gfc_symbol *t1, gfc_symbol *t2)
4715 {
4716 while (!gfc_compare_derived_types (t1, t2) && t2->attr.extension)
4717 t2 = gfc_get_derived_super_type (t2);
4718 return gfc_compare_derived_types (t1, t2);
4719 }
4720
4721
4722 /* Check if two typespecs are type compatible (F03:5.1.1.2):
4723 If ts1 is nonpolymorphic, ts2 must be the same type.
4724 If ts1 is polymorphic (CLASS), ts2 must be an extension of ts1. */
4725
4726 bool
4727 gfc_type_compatible (gfc_typespec *ts1, gfc_typespec *ts2)
4728 {
4729 bool is_class1 = (ts1->type == BT_CLASS);
4730 bool is_class2 = (ts2->type == BT_CLASS);
4731 bool is_derived1 = (ts1->type == BT_DERIVED);
4732 bool is_derived2 = (ts2->type == BT_DERIVED);
4733
4734 if (!is_derived1 && !is_derived2 && !is_class1 && !is_class2)
4735 return (ts1->type == ts2->type);
4736
4737 if (is_derived1 && is_derived2)
4738 return gfc_compare_derived_types (ts1->u.derived, ts2->u.derived);
4739
4740 if (is_class1 && is_derived2)
4741 return gfc_type_is_extension_of (ts1->u.derived->components->ts.u.derived,
4742 ts2->u.derived);
4743 else if (is_class1 && is_class2)
4744 return gfc_type_is_extension_of (ts1->u.derived->components->ts.u.derived,
4745 ts2->u.derived->components->ts.u.derived);
4746 else
4747 return 0;
4748 }
4749
4750
4751 /* Find the parent-namespace of the current function. If we're inside
4752 BLOCK constructs, it may not be the current one. */
4753
4754 gfc_namespace*
4755 gfc_find_proc_namespace (gfc_namespace* ns)
4756 {
4757 while (ns->construct_entities)
4758 {
4759 ns = ns->parent;
4760 gcc_assert (ns);
4761 }
4762
4763 return ns;
4764 }
4765
4766
4767 /* Check if an associate-variable should be translated as an `implicit' pointer
4768 internally (if it is associated to a variable and not an array with
4769 descriptor). */
4770
4771 bool
4772 gfc_is_associate_pointer (gfc_symbol* sym)
4773 {
4774 if (!sym->assoc)
4775 return false;
4776
4777 if (!sym->assoc->variable)
4778 return false;
4779
4780 if (sym->attr.dimension && sym->as->type != AS_EXPLICIT)
4781 return false;
4782
4783 return true;
4784 }