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6de9cd9a 1/* Deal with interfaces.
8b791297 2 Copyright (C) 2000, 2001, 2002, 2004, 2005, 2006, 2007, 2008, 2009
b251af97 3 Free Software Foundation, Inc.
6de9cd9a
DN
4 Contributed by Andy Vaught
5
9fc4d79b 6This file is part of GCC.
6de9cd9a 7
9fc4d79b
TS
8GCC is free software; you can redistribute it and/or modify it under
9the terms of the GNU General Public License as published by the Free
d234d788 10Software Foundation; either version 3, or (at your option) any later
9fc4d79b 11version.
6de9cd9a 12
9fc4d79b
TS
13GCC is distributed in the hope that it will be useful, but WITHOUT ANY
14WARRANTY; without even the implied warranty of MERCHANTABILITY or
15FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
16for more details.
6de9cd9a
DN
17
18You should have received a copy of the GNU General Public License
d234d788
NC
19along with GCC; see the file COPYING3. If not see
20<http://www.gnu.org/licenses/>. */
6de9cd9a
DN
21
22
23/* Deal with interfaces. An explicit interface is represented as a
24 singly linked list of formal argument structures attached to the
25 relevant symbols. For an implicit interface, the arguments don't
26 point to symbols. Explicit interfaces point to namespaces that
27 contain the symbols within that interface.
28
29 Implicit interfaces are linked together in a singly linked list
30 along the next_if member of symbol nodes. Since a particular
31 symbol can only have a single explicit interface, the symbol cannot
32 be part of multiple lists and a single next-member suffices.
33
34 This is not the case for general classes, though. An operator
35 definition is independent of just about all other uses and has it's
36 own head pointer.
37
38 Nameless interfaces:
39 Nameless interfaces create symbols with explicit interfaces within
40 the current namespace. They are otherwise unlinked.
41
42 Generic interfaces:
43 The generic name points to a linked list of symbols. Each symbol
6892757c 44 has an explicit interface. Each explicit interface has its own
6de9cd9a
DN
45 namespace containing the arguments. Module procedures are symbols in
46 which the interface is added later when the module procedure is parsed.
47
48 User operators:
49 User-defined operators are stored in a their own set of symtrees
50 separate from regular symbols. The symtrees point to gfc_user_op
51 structures which in turn head up a list of relevant interfaces.
52
53 Extended intrinsics and assignment:
54 The head of these interface lists are stored in the containing namespace.
55
56 Implicit interfaces:
57 An implicit interface is represented as a singly linked list of
58 formal argument list structures that don't point to any symbol
59 nodes -- they just contain types.
60
61
62 When a subprogram is defined, the program unit's name points to an
63 interface as usual, but the link to the namespace is NULL and the
64 formal argument list points to symbols within the same namespace as
65 the program unit name. */
66
67#include "config.h"
d22e4895 68#include "system.h"
6de9cd9a
DN
69#include "gfortran.h"
70#include "match.h"
71
6de9cd9a
DN
72/* The current_interface structure holds information about the
73 interface currently being parsed. This structure is saved and
74 restored during recursive interfaces. */
75
76gfc_interface_info current_interface;
77
78
79/* Free a singly linked list of gfc_interface structures. */
80
81void
b251af97 82gfc_free_interface (gfc_interface *intr)
6de9cd9a
DN
83{
84 gfc_interface *next;
85
86 for (; intr; intr = next)
87 {
88 next = intr->next;
89 gfc_free (intr);
90 }
91}
92
93
94/* Change the operators unary plus and minus into binary plus and
95 minus respectively, leaving the rest unchanged. */
96
97static gfc_intrinsic_op
e8d4f3fc 98fold_unary_intrinsic (gfc_intrinsic_op op)
6de9cd9a 99{
a1ee985f 100 switch (op)
6de9cd9a
DN
101 {
102 case INTRINSIC_UPLUS:
a1ee985f 103 op = INTRINSIC_PLUS;
6de9cd9a
DN
104 break;
105 case INTRINSIC_UMINUS:
a1ee985f 106 op = INTRINSIC_MINUS;
6de9cd9a
DN
107 break;
108 default:
109 break;
110 }
111
a1ee985f 112 return op;
6de9cd9a
DN
113}
114
115
116/* Match a generic specification. Depending on which type of
a1ee985f 117 interface is found, the 'name' or 'op' pointers may be set.
6de9cd9a
DN
118 This subroutine doesn't return MATCH_NO. */
119
120match
b251af97 121gfc_match_generic_spec (interface_type *type,
6de9cd9a 122 char *name,
a1ee985f 123 gfc_intrinsic_op *op)
6de9cd9a
DN
124{
125 char buffer[GFC_MAX_SYMBOL_LEN + 1];
126 match m;
127 gfc_intrinsic_op i;
128
129 if (gfc_match (" assignment ( = )") == MATCH_YES)
130 {
131 *type = INTERFACE_INTRINSIC_OP;
a1ee985f 132 *op = INTRINSIC_ASSIGN;
6de9cd9a
DN
133 return MATCH_YES;
134 }
135
136 if (gfc_match (" operator ( %o )", &i) == MATCH_YES)
137 { /* Operator i/f */
138 *type = INTERFACE_INTRINSIC_OP;
e8d4f3fc 139 *op = fold_unary_intrinsic (i);
6de9cd9a
DN
140 return MATCH_YES;
141 }
142
e8d4f3fc 143 *op = INTRINSIC_NONE;
6de9cd9a
DN
144 if (gfc_match (" operator ( ") == MATCH_YES)
145 {
146 m = gfc_match_defined_op_name (buffer, 1);
147 if (m == MATCH_NO)
148 goto syntax;
149 if (m != MATCH_YES)
150 return MATCH_ERROR;
151
152 m = gfc_match_char (')');
153 if (m == MATCH_NO)
154 goto syntax;
155 if (m != MATCH_YES)
156 return MATCH_ERROR;
157
158 strcpy (name, buffer);
159 *type = INTERFACE_USER_OP;
160 return MATCH_YES;
161 }
162
163 if (gfc_match_name (buffer) == MATCH_YES)
164 {
165 strcpy (name, buffer);
166 *type = INTERFACE_GENERIC;
167 return MATCH_YES;
168 }
169
170 *type = INTERFACE_NAMELESS;
171 return MATCH_YES;
172
173syntax:
174 gfc_error ("Syntax error in generic specification at %C");
175 return MATCH_ERROR;
176}
177
178
9e1d712c
TB
179/* Match one of the five F95 forms of an interface statement. The
180 matcher for the abstract interface follows. */
6de9cd9a
DN
181
182match
183gfc_match_interface (void)
184{
185 char name[GFC_MAX_SYMBOL_LEN + 1];
186 interface_type type;
187 gfc_symbol *sym;
a1ee985f 188 gfc_intrinsic_op op;
6de9cd9a
DN
189 match m;
190
191 m = gfc_match_space ();
192
a1ee985f 193 if (gfc_match_generic_spec (&type, name, &op) == MATCH_ERROR)
6de9cd9a
DN
194 return MATCH_ERROR;
195
6de9cd9a
DN
196 /* If we're not looking at the end of the statement now, or if this
197 is not a nameless interface but we did not see a space, punt. */
198 if (gfc_match_eos () != MATCH_YES
b251af97 199 || (type != INTERFACE_NAMELESS && m != MATCH_YES))
6de9cd9a 200 {
b251af97
SK
201 gfc_error ("Syntax error: Trailing garbage in INTERFACE statement "
202 "at %C");
6de9cd9a
DN
203 return MATCH_ERROR;
204 }
205
206 current_interface.type = type;
207
208 switch (type)
209 {
210 case INTERFACE_GENERIC:
211 if (gfc_get_symbol (name, NULL, &sym))
212 return MATCH_ERROR;
213
231b2fcc
TS
214 if (!sym->attr.generic
215 && gfc_add_generic (&sym->attr, sym->name, NULL) == FAILURE)
6de9cd9a
DN
216 return MATCH_ERROR;
217
e5d7f6f7
FXC
218 if (sym->attr.dummy)
219 {
220 gfc_error ("Dummy procedure '%s' at %C cannot have a "
221 "generic interface", sym->name);
222 return MATCH_ERROR;
223 }
224
6de9cd9a
DN
225 current_interface.sym = gfc_new_block = sym;
226 break;
227
228 case INTERFACE_USER_OP:
229 current_interface.uop = gfc_get_uop (name);
230 break;
231
232 case INTERFACE_INTRINSIC_OP:
a1ee985f 233 current_interface.op = op;
6de9cd9a
DN
234 break;
235
236 case INTERFACE_NAMELESS:
9e1d712c 237 case INTERFACE_ABSTRACT:
6de9cd9a
DN
238 break;
239 }
240
241 return MATCH_YES;
242}
243
244
9e1d712c
TB
245
246/* Match a F2003 abstract interface. */
247
248match
249gfc_match_abstract_interface (void)
250{
251 match m;
252
253 if (gfc_notify_std (GFC_STD_F2003, "Fortran 2003: ABSTRACT INTERFACE at %C")
254 == FAILURE)
255 return MATCH_ERROR;
256
257 m = gfc_match_eos ();
258
259 if (m != MATCH_YES)
260 {
261 gfc_error ("Syntax error in ABSTRACT INTERFACE statement at %C");
262 return MATCH_ERROR;
263 }
264
265 current_interface.type = INTERFACE_ABSTRACT;
266
267 return m;
268}
269
270
6de9cd9a
DN
271/* Match the different sort of generic-specs that can be present after
272 the END INTERFACE itself. */
273
274match
275gfc_match_end_interface (void)
276{
277 char name[GFC_MAX_SYMBOL_LEN + 1];
278 interface_type type;
a1ee985f 279 gfc_intrinsic_op op;
6de9cd9a
DN
280 match m;
281
282 m = gfc_match_space ();
283
a1ee985f 284 if (gfc_match_generic_spec (&type, name, &op) == MATCH_ERROR)
6de9cd9a
DN
285 return MATCH_ERROR;
286
287 /* If we're not looking at the end of the statement now, or if this
288 is not a nameless interface but we did not see a space, punt. */
289 if (gfc_match_eos () != MATCH_YES
b251af97 290 || (type != INTERFACE_NAMELESS && m != MATCH_YES))
6de9cd9a 291 {
b251af97
SK
292 gfc_error ("Syntax error: Trailing garbage in END INTERFACE "
293 "statement at %C");
6de9cd9a
DN
294 return MATCH_ERROR;
295 }
296
297 m = MATCH_YES;
298
299 switch (current_interface.type)
300 {
301 case INTERFACE_NAMELESS:
9e1d712c
TB
302 case INTERFACE_ABSTRACT:
303 if (type != INTERFACE_NAMELESS)
6de9cd9a
DN
304 {
305 gfc_error ("Expected a nameless interface at %C");
306 m = MATCH_ERROR;
307 }
308
309 break;
310
311 case INTERFACE_INTRINSIC_OP:
a1ee985f 312 if (type != current_interface.type || op != current_interface.op)
6de9cd9a
DN
313 {
314
315 if (current_interface.op == INTRINSIC_ASSIGN)
316 gfc_error ("Expected 'END INTERFACE ASSIGNMENT (=)' at %C");
317 else
318 gfc_error ("Expecting 'END INTERFACE OPERATOR (%s)' at %C",
319 gfc_op2string (current_interface.op));
320
321 m = MATCH_ERROR;
322 }
323
324 break;
325
326 case INTERFACE_USER_OP:
327 /* Comparing the symbol node names is OK because only use-associated
b251af97 328 symbols can be renamed. */
6de9cd9a 329 if (type != current_interface.type
9b46f94f 330 || strcmp (current_interface.uop->name, name) != 0)
6de9cd9a
DN
331 {
332 gfc_error ("Expecting 'END INTERFACE OPERATOR (.%s.)' at %C",
55898b2c 333 current_interface.uop->name);
6de9cd9a
DN
334 m = MATCH_ERROR;
335 }
336
337 break;
338
339 case INTERFACE_GENERIC:
340 if (type != current_interface.type
341 || strcmp (current_interface.sym->name, name) != 0)
342 {
343 gfc_error ("Expecting 'END INTERFACE %s' at %C",
344 current_interface.sym->name);
345 m = MATCH_ERROR;
346 }
347
348 break;
349 }
350
351 return m;
352}
353
354
e0e85e06
PT
355/* Compare two derived types using the criteria in 4.4.2 of the standard,
356 recursing through gfc_compare_types for the components. */
6de9cd9a
DN
357
358int
b251af97 359gfc_compare_derived_types (gfc_symbol *derived1, gfc_symbol *derived2)
6de9cd9a
DN
360{
361 gfc_component *dt1, *dt2;
362
cf2b3c22
TB
363 if (derived1 == derived2)
364 return 1;
365
6de9cd9a
DN
366 /* Special case for comparing derived types across namespaces. If the
367 true names and module names are the same and the module name is
368 nonnull, then they are equal. */
a8b3b0b6
CR
369 if (derived1 != NULL && derived2 != NULL
370 && strcmp (derived1->name, derived2->name) == 0
b251af97
SK
371 && derived1->module != NULL && derived2->module != NULL
372 && strcmp (derived1->module, derived2->module) == 0)
6de9cd9a
DN
373 return 1;
374
375 /* Compare type via the rules of the standard. Both types must have
376 the SEQUENCE attribute to be equal. */
377
e0e85e06 378 if (strcmp (derived1->name, derived2->name))
6de9cd9a
DN
379 return 0;
380
e0e85e06 381 if (derived1->component_access == ACCESS_PRIVATE
b251af97 382 || derived2->component_access == ACCESS_PRIVATE)
e0e85e06 383 return 0;
6de9cd9a 384
e0e85e06 385 if (derived1->attr.sequence == 0 || derived2->attr.sequence == 0)
6de9cd9a
DN
386 return 0;
387
e0e85e06
PT
388 dt1 = derived1->components;
389 dt2 = derived2->components;
390
6de9cd9a
DN
391 /* Since subtypes of SEQUENCE types must be SEQUENCE types as well, a
392 simple test can speed things up. Otherwise, lots of things have to
393 match. */
394 for (;;)
395 {
396 if (strcmp (dt1->name, dt2->name) != 0)
397 return 0;
398
d4b7d0f0 399 if (dt1->attr.access != dt2->attr.access)
2eae3dc7
TB
400 return 0;
401
d4b7d0f0 402 if (dt1->attr.pointer != dt2->attr.pointer)
6de9cd9a
DN
403 return 0;
404
d4b7d0f0 405 if (dt1->attr.dimension != dt2->attr.dimension)
6de9cd9a
DN
406 return 0;
407
d4b7d0f0 408 if (dt1->attr.allocatable != dt2->attr.allocatable)
5046aff5
PT
409 return 0;
410
d4b7d0f0 411 if (dt1->attr.dimension && gfc_compare_array_spec (dt1->as, dt2->as) == 0)
6de9cd9a
DN
412 return 0;
413
6669dbdf
PT
414 /* Make sure that link lists do not put this function into an
415 endless recursive loop! */
bc21d315
JW
416 if (!(dt1->ts.type == BT_DERIVED && derived1 == dt1->ts.u.derived)
417 && !(dt1->ts.type == BT_DERIVED && derived1 == dt1->ts.u.derived)
63287e10
PT
418 && gfc_compare_types (&dt1->ts, &dt2->ts) == 0)
419 return 0;
420
bc21d315
JW
421 else if ((dt1->ts.type == BT_DERIVED && derived1 == dt1->ts.u.derived)
422 && !(dt1->ts.type == BT_DERIVED && derived1 == dt1->ts.u.derived))
6669dbdf
PT
423 return 0;
424
bc21d315
JW
425 else if (!(dt1->ts.type == BT_DERIVED && derived1 == dt1->ts.u.derived)
426 && (dt1->ts.type == BT_DERIVED && derived1 == dt1->ts.u.derived))
6de9cd9a
DN
427 return 0;
428
429 dt1 = dt1->next;
430 dt2 = dt2->next;
431
432 if (dt1 == NULL && dt2 == NULL)
433 break;
434 if (dt1 == NULL || dt2 == NULL)
435 return 0;
436 }
437
438 return 1;
439}
440
b251af97 441
e0e85e06
PT
442/* Compare two typespecs, recursively if necessary. */
443
444int
b251af97 445gfc_compare_types (gfc_typespec *ts1, gfc_typespec *ts2)
e0e85e06 446{
a8b3b0b6
CR
447 /* See if one of the typespecs is a BT_VOID, which is what is being used
448 to allow the funcs like c_f_pointer to accept any pointer type.
449 TODO: Possibly should narrow this to just the one typespec coming in
450 that is for the formal arg, but oh well. */
451 if (ts1->type == BT_VOID || ts2->type == BT_VOID)
452 return 1;
453
cf2b3c22
TB
454 if (ts1->type != ts2->type
455 && ((ts1->type != BT_DERIVED && ts1->type != BT_CLASS)
456 || (ts2->type != BT_DERIVED && ts2->type != BT_CLASS)))
e0e85e06 457 return 0;
cf2b3c22 458 if (ts1->type != BT_DERIVED && ts1->type != BT_CLASS)
e0e85e06
PT
459 return (ts1->kind == ts2->kind);
460
461 /* Compare derived types. */
cf2b3c22 462 if (gfc_type_compatible (ts1, ts2))
e0e85e06
PT
463 return 1;
464
bc21d315 465 return gfc_compare_derived_types (ts1->u.derived ,ts2->u.derived);
e0e85e06
PT
466}
467
6de9cd9a
DN
468
469/* Given two symbols that are formal arguments, compare their ranks
470 and types. Returns nonzero if they have the same rank and type,
471 zero otherwise. */
472
473static int
b251af97 474compare_type_rank (gfc_symbol *s1, gfc_symbol *s2)
6de9cd9a
DN
475{
476 int r1, r2;
477
478 r1 = (s1->as != NULL) ? s1->as->rank : 0;
479 r2 = (s2->as != NULL) ? s2->as->rank : 0;
480
481 if (r1 != r2)
66e4ab31 482 return 0; /* Ranks differ. */
6de9cd9a
DN
483
484 return gfc_compare_types (&s1->ts, &s2->ts);
485}
486
487
6de9cd9a
DN
488/* Given two symbols that are formal arguments, compare their types
489 and rank and their formal interfaces if they are both dummy
490 procedures. Returns nonzero if the same, zero if different. */
491
492static int
b251af97 493compare_type_rank_if (gfc_symbol *s1, gfc_symbol *s2)
6de9cd9a 494{
26f2ca2b
PT
495 if (s1 == NULL || s2 == NULL)
496 return s1 == s2 ? 1 : 0;
6de9cd9a 497
489ec4e3
PT
498 if (s1 == s2)
499 return 1;
500
6de9cd9a
DN
501 if (s1->attr.flavor != FL_PROCEDURE && s2->attr.flavor != FL_PROCEDURE)
502 return compare_type_rank (s1, s2);
503
504 if (s1->attr.flavor != FL_PROCEDURE || s2->attr.flavor != FL_PROCEDURE)
505 return 0;
506
489ec4e3
PT
507 /* At this point, both symbols are procedures. It can happen that
508 external procedures are compared, where one is identified by usage
509 to be a function or subroutine but the other is not. Check TKR
510 nonetheless for these cases. */
511 if (s1->attr.function == 0 && s1->attr.subroutine == 0)
512 return s1->attr.external == 1 ? compare_type_rank (s1, s2) : 0;
513
514 if (s2->attr.function == 0 && s2->attr.subroutine == 0)
515 return s2->attr.external == 1 ? compare_type_rank (s1, s2) : 0;
6de9cd9a 516
489ec4e3 517 /* Now the type of procedure has been identified. */
6de9cd9a
DN
518 if (s1->attr.function != s2->attr.function
519 || s1->attr.subroutine != s2->attr.subroutine)
520 return 0;
521
522 if (s1->attr.function && compare_type_rank (s1, s2) == 0)
523 return 0;
524
993ef28f
PT
525 /* Originally, gfortran recursed here to check the interfaces of passed
526 procedures. This is explicitly not required by the standard. */
527 return 1;
6de9cd9a
DN
528}
529
530
531/* Given a formal argument list and a keyword name, search the list
532 for that keyword. Returns the correct symbol node if found, NULL
533 if not found. */
534
535static gfc_symbol *
b251af97 536find_keyword_arg (const char *name, gfc_formal_arglist *f)
6de9cd9a 537{
6de9cd9a
DN
538 for (; f; f = f->next)
539 if (strcmp (f->sym->name, name) == 0)
540 return f->sym;
541
542 return NULL;
543}
544
545
546/******** Interface checking subroutines **********/
547
548
549/* Given an operator interface and the operator, make sure that all
550 interfaces for that operator are legal. */
551
94747289
DK
552bool
553gfc_check_operator_interface (gfc_symbol *sym, gfc_intrinsic_op op,
554 locus opwhere)
6de9cd9a
DN
555{
556 gfc_formal_arglist *formal;
557 sym_intent i1, i2;
6de9cd9a 558 bt t1, t2;
27189292 559 int args, r1, r2, k1, k2;
6de9cd9a 560
94747289 561 gcc_assert (sym);
6de9cd9a
DN
562
563 args = 0;
564 t1 = t2 = BT_UNKNOWN;
565 i1 = i2 = INTENT_UNKNOWN;
27189292
FXC
566 r1 = r2 = -1;
567 k1 = k2 = -1;
6de9cd9a 568
94747289 569 for (formal = sym->formal; formal; formal = formal->next)
6de9cd9a 570 {
94747289
DK
571 gfc_symbol *fsym = formal->sym;
572 if (fsym == NULL)
8c086c9c
PT
573 {
574 gfc_error ("Alternate return cannot appear in operator "
94747289
DK
575 "interface at %L", &sym->declared_at);
576 return false;
8c086c9c 577 }
6de9cd9a
DN
578 if (args == 0)
579 {
94747289
DK
580 t1 = fsym->ts.type;
581 i1 = fsym->attr.intent;
582 r1 = (fsym->as != NULL) ? fsym->as->rank : 0;
583 k1 = fsym->ts.kind;
6de9cd9a
DN
584 }
585 if (args == 1)
586 {
94747289
DK
587 t2 = fsym->ts.type;
588 i2 = fsym->attr.intent;
589 r2 = (fsym->as != NULL) ? fsym->as->rank : 0;
590 k2 = fsym->ts.kind;
6de9cd9a
DN
591 }
592 args++;
593 }
594
27189292
FXC
595 /* Only +, - and .not. can be unary operators.
596 .not. cannot be a binary operator. */
a1ee985f
KG
597 if (args == 0 || args > 2 || (args == 1 && op != INTRINSIC_PLUS
598 && op != INTRINSIC_MINUS
599 && op != INTRINSIC_NOT)
600 || (args == 2 && op == INTRINSIC_NOT))
27189292
FXC
601 {
602 gfc_error ("Operator interface at %L has the wrong number of arguments",
94747289
DK
603 &sym->declared_at);
604 return false;
27189292
FXC
605 }
606
607 /* Check that intrinsics are mapped to functions, except
608 INTRINSIC_ASSIGN which should map to a subroutine. */
a1ee985f 609 if (op == INTRINSIC_ASSIGN)
6de9cd9a
DN
610 {
611 if (!sym->attr.subroutine)
612 {
b251af97 613 gfc_error ("Assignment operator interface at %L must be "
94747289
DK
614 "a SUBROUTINE", &sym->declared_at);
615 return false;
6de9cd9a 616 }
8c086c9c
PT
617 if (args != 2)
618 {
b251af97 619 gfc_error ("Assignment operator interface at %L must have "
94747289
DK
620 "two arguments", &sym->declared_at);
621 return false;
8c086c9c 622 }
e19bb186
TB
623
624 /* Allowed are (per F2003, 12.3.2.1.2 Defined assignments):
94747289
DK
625 - First argument an array with different rank than second,
626 - Types and kinds do not conform, and
627 - First argument is of derived type. */
8c086c9c 628 if (sym->formal->sym->ts.type != BT_DERIVED
6168891d 629 && sym->formal->sym->ts.type != BT_CLASS
e19bb186 630 && (r1 == 0 || r1 == r2)
b251af97
SK
631 && (sym->formal->sym->ts.type == sym->formal->next->sym->ts.type
632 || (gfc_numeric_ts (&sym->formal->sym->ts)
633 && gfc_numeric_ts (&sym->formal->next->sym->ts))))
8c086c9c 634 {
b251af97 635 gfc_error ("Assignment operator interface at %L must not redefine "
94747289
DK
636 "an INTRINSIC type assignment", &sym->declared_at);
637 return false;
8c086c9c 638 }
6de9cd9a
DN
639 }
640 else
641 {
642 if (!sym->attr.function)
643 {
644 gfc_error ("Intrinsic operator interface at %L must be a FUNCTION",
94747289
DK
645 &sym->declared_at);
646 return false;
6de9cd9a
DN
647 }
648 }
649
27189292 650 /* Check intents on operator interfaces. */
a1ee985f 651 if (op == INTRINSIC_ASSIGN)
6de9cd9a 652 {
27189292 653 if (i1 != INTENT_OUT && i1 != INTENT_INOUT)
94747289
DK
654 {
655 gfc_error ("First argument of defined assignment at %L must be "
656 "INTENT(OUT) or INTENT(INOUT)", &sym->declared_at);
657 return false;
658 }
27189292
FXC
659
660 if (i2 != INTENT_IN)
94747289
DK
661 {
662 gfc_error ("Second argument of defined assignment at %L must be "
663 "INTENT(IN)", &sym->declared_at);
664 return false;
665 }
27189292
FXC
666 }
667 else
668 {
669 if (i1 != INTENT_IN)
94747289
DK
670 {
671 gfc_error ("First argument of operator interface at %L must be "
672 "INTENT(IN)", &sym->declared_at);
673 return false;
674 }
27189292
FXC
675
676 if (args == 2 && i2 != INTENT_IN)
94747289
DK
677 {
678 gfc_error ("Second argument of operator interface at %L must be "
679 "INTENT(IN)", &sym->declared_at);
680 return false;
681 }
27189292
FXC
682 }
683
684 /* From now on, all we have to do is check that the operator definition
685 doesn't conflict with an intrinsic operator. The rules for this
686 game are defined in 7.1.2 and 7.1.3 of both F95 and F2003 standards,
687 as well as 12.3.2.1.1 of Fortran 2003:
688
689 "If the operator is an intrinsic-operator (R310), the number of
690 function arguments shall be consistent with the intrinsic uses of
691 that operator, and the types, kind type parameters, or ranks of the
692 dummy arguments shall differ from those required for the intrinsic
693 operation (7.1.2)." */
694
695#define IS_NUMERIC_TYPE(t) \
696 ((t) == BT_INTEGER || (t) == BT_REAL || (t) == BT_COMPLEX)
697
698 /* Unary ops are easy, do them first. */
a1ee985f 699 if (op == INTRINSIC_NOT)
27189292
FXC
700 {
701 if (t1 == BT_LOGICAL)
6de9cd9a 702 goto bad_repl;
27189292 703 else
94747289 704 return true;
27189292 705 }
6de9cd9a 706
a1ee985f 707 if (args == 1 && (op == INTRINSIC_PLUS || op == INTRINSIC_MINUS))
27189292
FXC
708 {
709 if (IS_NUMERIC_TYPE (t1))
6de9cd9a 710 goto bad_repl;
27189292 711 else
94747289 712 return true;
27189292 713 }
6de9cd9a 714
27189292
FXC
715 /* Character intrinsic operators have same character kind, thus
716 operator definitions with operands of different character kinds
717 are always safe. */
718 if (t1 == BT_CHARACTER && t2 == BT_CHARACTER && k1 != k2)
94747289 719 return true;
6de9cd9a 720
27189292
FXC
721 /* Intrinsic operators always perform on arguments of same rank,
722 so different ranks is also always safe. (rank == 0) is an exception
723 to that, because all intrinsic operators are elemental. */
724 if (r1 != r2 && r1 != 0 && r2 != 0)
94747289 725 return true;
6de9cd9a 726
a1ee985f 727 switch (op)
27189292 728 {
6de9cd9a 729 case INTRINSIC_EQ:
3bed9dd0 730 case INTRINSIC_EQ_OS:
6de9cd9a 731 case INTRINSIC_NE:
3bed9dd0 732 case INTRINSIC_NE_OS:
27189292 733 if (t1 == BT_CHARACTER && t2 == BT_CHARACTER)
6de9cd9a 734 goto bad_repl;
27189292 735 /* Fall through. */
6de9cd9a 736
27189292
FXC
737 case INTRINSIC_PLUS:
738 case INTRINSIC_MINUS:
739 case INTRINSIC_TIMES:
740 case INTRINSIC_DIVIDE:
741 case INTRINSIC_POWER:
742 if (IS_NUMERIC_TYPE (t1) && IS_NUMERIC_TYPE (t2))
743 goto bad_repl;
6de9cd9a
DN
744 break;
745
6de9cd9a 746 case INTRINSIC_GT:
3bed9dd0 747 case INTRINSIC_GT_OS:
27189292 748 case INTRINSIC_GE:
3bed9dd0 749 case INTRINSIC_GE_OS:
27189292 750 case INTRINSIC_LT:
3bed9dd0 751 case INTRINSIC_LT_OS:
27189292 752 case INTRINSIC_LE:
3bed9dd0 753 case INTRINSIC_LE_OS:
27189292
FXC
754 if (t1 == BT_CHARACTER && t2 == BT_CHARACTER)
755 goto bad_repl;
6de9cd9a
DN
756 if ((t1 == BT_INTEGER || t1 == BT_REAL)
757 && (t2 == BT_INTEGER || t2 == BT_REAL))
758 goto bad_repl;
27189292 759 break;
6de9cd9a 760
27189292
FXC
761 case INTRINSIC_CONCAT:
762 if (t1 == BT_CHARACTER && t2 == BT_CHARACTER)
763 goto bad_repl;
6de9cd9a
DN
764 break;
765
6de9cd9a 766 case INTRINSIC_AND:
27189292 767 case INTRINSIC_OR:
6de9cd9a
DN
768 case INTRINSIC_EQV:
769 case INTRINSIC_NEQV:
6de9cd9a
DN
770 if (t1 == BT_LOGICAL && t2 == BT_LOGICAL)
771 goto bad_repl;
772 break;
773
6de9cd9a 774 default:
27189292
FXC
775 break;
776 }
6de9cd9a 777
94747289 778 return true;
6de9cd9a 779
27189292
FXC
780#undef IS_NUMERIC_TYPE
781
6de9cd9a
DN
782bad_repl:
783 gfc_error ("Operator interface at %L conflicts with intrinsic interface",
94747289
DK
784 &opwhere);
785 return false;
6de9cd9a
DN
786}
787
788
789/* Given a pair of formal argument lists, we see if the two lists can
790 be distinguished by counting the number of nonoptional arguments of
791 a given type/rank in f1 and seeing if there are less then that
792 number of those arguments in f2 (including optional arguments).
793 Since this test is asymmetric, it has to be called twice to make it
794 symmetric. Returns nonzero if the argument lists are incompatible
795 by this test. This subroutine implements rule 1 of section
8ad15a0a 796 14.1.2.3 in the Fortran 95 standard. */
6de9cd9a
DN
797
798static int
b251af97 799count_types_test (gfc_formal_arglist *f1, gfc_formal_arglist *f2)
6de9cd9a
DN
800{
801 int rc, ac1, ac2, i, j, k, n1;
802 gfc_formal_arglist *f;
803
804 typedef struct
805 {
806 int flag;
807 gfc_symbol *sym;
808 }
809 arginfo;
810
811 arginfo *arg;
812
813 n1 = 0;
814
815 for (f = f1; f; f = f->next)
816 n1++;
817
818 /* Build an array of integers that gives the same integer to
819 arguments of the same type/rank. */
ece3f663 820 arg = XCNEWVEC (arginfo, n1);
6de9cd9a
DN
821
822 f = f1;
823 for (i = 0; i < n1; i++, f = f->next)
824 {
825 arg[i].flag = -1;
826 arg[i].sym = f->sym;
827 }
828
829 k = 0;
830
831 for (i = 0; i < n1; i++)
832 {
833 if (arg[i].flag != -1)
834 continue;
835
26f2ca2b 836 if (arg[i].sym && arg[i].sym->attr.optional)
66e4ab31 837 continue; /* Skip optional arguments. */
6de9cd9a
DN
838
839 arg[i].flag = k;
840
841 /* Find other nonoptional arguments of the same type/rank. */
842 for (j = i + 1; j < n1; j++)
26f2ca2b 843 if ((arg[j].sym == NULL || !arg[j].sym->attr.optional)
6de9cd9a
DN
844 && compare_type_rank_if (arg[i].sym, arg[j].sym))
845 arg[j].flag = k;
846
847 k++;
848 }
849
850 /* Now loop over each distinct type found in f1. */
851 k = 0;
852 rc = 0;
853
854 for (i = 0; i < n1; i++)
855 {
856 if (arg[i].flag != k)
857 continue;
858
859 ac1 = 1;
860 for (j = i + 1; j < n1; j++)
861 if (arg[j].flag == k)
862 ac1++;
863
864 /* Count the number of arguments in f2 with that type, including
b251af97 865 those that are optional. */
6de9cd9a
DN
866 ac2 = 0;
867
868 for (f = f2; f; f = f->next)
869 if (compare_type_rank_if (arg[i].sym, f->sym))
870 ac2++;
871
872 if (ac1 > ac2)
873 {
874 rc = 1;
875 break;
876 }
877
878 k++;
879 }
880
881 gfc_free (arg);
882
883 return rc;
884}
885
886
6de9cd9a 887/* Perform the correspondence test in rule 2 of section 14.1.2.3.
69de3b83 888 Returns zero if no argument is found that satisfies rule 2, nonzero
6de9cd9a
DN
889 otherwise.
890
891 This test is also not symmetric in f1 and f2 and must be called
892 twice. This test finds problems caused by sorting the actual
893 argument list with keywords. For example:
894
895 INTERFACE FOO
896 SUBROUTINE F1(A, B)
b251af97 897 INTEGER :: A ; REAL :: B
6de9cd9a
DN
898 END SUBROUTINE F1
899
900 SUBROUTINE F2(B, A)
b251af97 901 INTEGER :: A ; REAL :: B
6de9cd9a
DN
902 END SUBROUTINE F1
903 END INTERFACE FOO
904
905 At this point, 'CALL FOO(A=1, B=1.0)' is ambiguous. */
906
907static int
b251af97 908generic_correspondence (gfc_formal_arglist *f1, gfc_formal_arglist *f2)
6de9cd9a 909{
6de9cd9a
DN
910 gfc_formal_arglist *f2_save, *g;
911 gfc_symbol *sym;
912
913 f2_save = f2;
914
915 while (f1)
916 {
917 if (f1->sym->attr.optional)
918 goto next;
919
920 if (f2 != NULL && compare_type_rank (f1->sym, f2->sym))
921 goto next;
922
923 /* Now search for a disambiguating keyword argument starting at
b251af97 924 the current non-match. */
6de9cd9a
DN
925 for (g = f1; g; g = g->next)
926 {
927 if (g->sym->attr.optional)
928 continue;
929
930 sym = find_keyword_arg (g->sym->name, f2_save);
931 if (sym == NULL || !compare_type_rank (g->sym, sym))
932 return 1;
933 }
934
935 next:
936 f1 = f1->next;
937 if (f2 != NULL)
938 f2 = f2->next;
939 }
940
941 return 0;
942}
943
944
945/* 'Compare' two formal interfaces associated with a pair of symbols.
946 We return nonzero if there exists an actual argument list that
8ad15a0a
JW
947 would be ambiguous between the two interfaces, zero otherwise.
948 'intent_flag' specifies whether INTENT and OPTIONAL of the arguments are
949 required to match, which is not the case for ambiguity checks.*/
6de9cd9a 950
e157f736 951int
889dc035
JW
952gfc_compare_interfaces (gfc_symbol *s1, gfc_symbol *s2, const char *name2,
953 int generic_flag, int intent_flag,
954 char *errmsg, int err_len)
6de9cd9a
DN
955{
956 gfc_formal_arglist *f1, *f2;
957
0175478d
JD
958 gcc_assert (name2 != NULL);
959
9b63f282
JW
960 if (s1->attr.function && (s2->attr.subroutine
961 || (!s2->attr.function && s2->ts.type == BT_UNKNOWN
889dc035 962 && gfc_get_default_type (name2, s2->ns)->type == BT_UNKNOWN)))
8ad15a0a
JW
963 {
964 if (errmsg != NULL)
889dc035 965 snprintf (errmsg, err_len, "'%s' is not a function", name2);
8ad15a0a
JW
966 return 0;
967 }
968
969 if (s1->attr.subroutine && s2->attr.function)
970 {
971 if (errmsg != NULL)
889dc035 972 snprintf (errmsg, err_len, "'%s' is not a subroutine", name2);
8ad15a0a
JW
973 return 0;
974 }
3afadac3 975
c73b6478
JW
976 /* If the arguments are functions, check type and kind
977 (only for dummy procedures and procedure pointer assignments). */
889dc035 978 if (!generic_flag && intent_flag && s1->attr.function && s2->attr.function)
6cc309c9 979 {
c73b6478
JW
980 if (s1->ts.type == BT_UNKNOWN)
981 return 1;
982 if ((s1->ts.type != s2->ts.type) || (s1->ts.kind != s2->ts.kind))
8ad15a0a
JW
983 {
984 if (errmsg != NULL)
985 snprintf (errmsg, err_len, "Type/kind mismatch in return value "
889dc035 986 "of '%s'", name2);
8ad15a0a
JW
987 return 0;
988 }
6cc309c9 989 }
26033479 990
8ad15a0a
JW
991 if (s1->attr.if_source == IFSRC_UNKNOWN
992 || s2->attr.if_source == IFSRC_UNKNOWN)
26033479 993 return 1;
26033479 994
c73b6478
JW
995 f1 = s1->formal;
996 f2 = s2->formal;
26033479 997
c73b6478 998 if (f1 == NULL && f2 == NULL)
8ad15a0a 999 return 1; /* Special case: No arguments. */
6cc309c9 1000
c73b6478 1001 if (generic_flag)
6cc309c9 1002 {
e26f5548
JW
1003 if (count_types_test (f1, f2) || count_types_test (f2, f1))
1004 return 0;
c73b6478 1005 if (generic_correspondence (f1, f2) || generic_correspondence (f2, f1))
6cc309c9 1006 return 0;
6cc309c9 1007 }
c73b6478 1008 else
8ad15a0a
JW
1009 /* Perform the abbreviated correspondence test for operators (the
1010 arguments cannot be optional and are always ordered correctly).
1011 This is also done when comparing interfaces for dummy procedures and in
1012 procedure pointer assignments. */
1013
1014 for (;;)
1015 {
1016 /* Check existence. */
1017 if (f1 == NULL && f2 == NULL)
1018 break;
1019 if (f1 == NULL || f2 == NULL)
1020 {
1021 if (errmsg != NULL)
1022 snprintf (errmsg, err_len, "'%s' has the wrong number of "
889dc035 1023 "arguments", name2);
8ad15a0a
JW
1024 return 0;
1025 }
1026
1027 /* Check type and rank. */
1028 if (!compare_type_rank (f1->sym, f2->sym))
1029 {
1030 if (errmsg != NULL)
1031 snprintf (errmsg, err_len, "Type/rank mismatch in argument '%s'",
1032 f1->sym->name);
1033 return 0;
1034 }
1035
1036 /* Check INTENT. */
1037 if (intent_flag && (f1->sym->attr.intent != f2->sym->attr.intent))
1038 {
1039 snprintf (errmsg, err_len, "INTENT mismatch in argument '%s'",
1040 f1->sym->name);
1041 return 0;
1042 }
1043
1044 /* Check OPTIONAL. */
1045 if (intent_flag && (f1->sym->attr.optional != f2->sym->attr.optional))
1046 {
1047 snprintf (errmsg, err_len, "OPTIONAL mismatch in argument '%s'",
1048 f1->sym->name);
1049 return 0;
1050 }
1051
1052 f1 = f1->next;
1053 f2 = f2->next;
1054 }
1055
6cc309c9
JD
1056 return 1;
1057}
1058
1059
6de9cd9a
DN
1060/* Given a pointer to an interface pointer, remove duplicate
1061 interfaces and make sure that all symbols are either functions or
1062 subroutines. Returns nonzero if something goes wrong. */
1063
1064static int
b251af97 1065check_interface0 (gfc_interface *p, const char *interface_name)
6de9cd9a
DN
1066{
1067 gfc_interface *psave, *q, *qlast;
1068
1069 psave = p;
1070 /* Make sure all symbols in the interface have been defined as
1071 functions or subroutines. */
1072 for (; p; p = p->next)
69773742
JW
1073 if ((!p->sym->attr.function && !p->sym->attr.subroutine)
1074 || !p->sym->attr.if_source)
6de9cd9a 1075 {
e9f63ace
TB
1076 if (p->sym->attr.external)
1077 gfc_error ("Procedure '%s' in %s at %L has no explicit interface",
1078 p->sym->name, interface_name, &p->sym->declared_at);
1079 else
1080 gfc_error ("Procedure '%s' in %s at %L is neither function nor "
1081 "subroutine", p->sym->name, interface_name,
1082 &p->sym->declared_at);
6de9cd9a
DN
1083 return 1;
1084 }
1085 p = psave;
1086
1087 /* Remove duplicate interfaces in this interface list. */
1088 for (; p; p = p->next)
1089 {
1090 qlast = p;
1091
1092 for (q = p->next; q;)
1093 {
1094 if (p->sym != q->sym)
1095 {
1096 qlast = q;
1097 q = q->next;
6de9cd9a
DN
1098 }
1099 else
1100 {
66e4ab31 1101 /* Duplicate interface. */
6de9cd9a
DN
1102 qlast->next = q->next;
1103 gfc_free (q);
1104 q = qlast->next;
1105 }
1106 }
1107 }
1108
1109 return 0;
1110}
1111
1112
1113/* Check lists of interfaces to make sure that no two interfaces are
66e4ab31 1114 ambiguous. Duplicate interfaces (from the same symbol) are OK here. */
6de9cd9a
DN
1115
1116static int
b251af97 1117check_interface1 (gfc_interface *p, gfc_interface *q0,
993ef28f 1118 int generic_flag, const char *interface_name,
26f2ca2b 1119 bool referenced)
6de9cd9a 1120{
b251af97 1121 gfc_interface *q;
6de9cd9a 1122 for (; p; p = p->next)
991f3b12 1123 for (q = q0; q; q = q->next)
6de9cd9a
DN
1124 {
1125 if (p->sym == q->sym)
66e4ab31 1126 continue; /* Duplicates OK here. */
6de9cd9a 1127
312ae8f4 1128 if (p->sym->name == q->sym->name && p->sym->module == q->sym->module)
6de9cd9a
DN
1129 continue;
1130
0175478d 1131 if (gfc_compare_interfaces (p->sym, q->sym, q->sym->name, generic_flag, 0,
889dc035 1132 NULL, 0))
6de9cd9a 1133 {
993ef28f 1134 if (referenced)
ae7c61de
JW
1135 gfc_error ("Ambiguous interfaces '%s' and '%s' in %s at %L",
1136 p->sym->name, q->sym->name, interface_name,
1137 &p->where);
1138 else if (!p->sym->attr.use_assoc && q->sym->attr.use_assoc)
993ef28f
PT
1139 gfc_warning ("Ambiguous interfaces '%s' and '%s' in %s at %L",
1140 p->sym->name, q->sym->name, interface_name,
1141 &p->where);
ae7c61de
JW
1142 else
1143 gfc_warning ("Although not referenced, '%s' has ambiguous "
1144 "interfaces at %L", interface_name, &p->where);
6de9cd9a
DN
1145 return 1;
1146 }
1147 }
6de9cd9a
DN
1148 return 0;
1149}
1150
1151
1152/* Check the generic and operator interfaces of symbols to make sure
1153 that none of the interfaces conflict. The check has to be done
1154 after all of the symbols are actually loaded. */
1155
1156static void
b251af97 1157check_sym_interfaces (gfc_symbol *sym)
6de9cd9a
DN
1158{
1159 char interface_name[100];
71f77fd7 1160 gfc_interface *p;
6de9cd9a
DN
1161
1162 if (sym->ns != gfc_current_ns)
1163 return;
1164
1165 if (sym->generic != NULL)
1166 {
1167 sprintf (interface_name, "generic interface '%s'", sym->name);
1168 if (check_interface0 (sym->generic, interface_name))
1169 return;
1170
71f77fd7
PT
1171 for (p = sym->generic; p; p = p->next)
1172 {
abf86978
TB
1173 if (p->sym->attr.mod_proc
1174 && (p->sym->attr.if_source != IFSRC_DECL
1175 || p->sym->attr.procedure))
71f77fd7 1176 {
e9f63ace
TB
1177 gfc_error ("'%s' at %L is not a module procedure",
1178 p->sym->name, &p->where);
71f77fd7
PT
1179 return;
1180 }
1181 }
1182
4c256e34 1183 /* Originally, this test was applied to host interfaces too;
993ef28f
PT
1184 this is incorrect since host associated symbols, from any
1185 source, cannot be ambiguous with local symbols. */
ae7c61de
JW
1186 check_interface1 (sym->generic, sym->generic, 1, interface_name,
1187 sym->attr.referenced || !sym->attr.use_assoc);
6de9cd9a
DN
1188 }
1189}
1190
1191
1192static void
b251af97 1193check_uop_interfaces (gfc_user_op *uop)
6de9cd9a
DN
1194{
1195 char interface_name[100];
1196 gfc_user_op *uop2;
1197 gfc_namespace *ns;
1198
1199 sprintf (interface_name, "operator interface '%s'", uop->name);
a1ee985f 1200 if (check_interface0 (uop->op, interface_name))
6de9cd9a
DN
1201 return;
1202
1203 for (ns = gfc_current_ns; ns; ns = ns->parent)
1204 {
1205 uop2 = gfc_find_uop (uop->name, ns);
1206 if (uop2 == NULL)
1207 continue;
1208
a1ee985f 1209 check_interface1 (uop->op, uop2->op, 0,
26f2ca2b 1210 interface_name, true);
6de9cd9a
DN
1211 }
1212}
1213
1214
1215/* For the namespace, check generic, user operator and intrinsic
1216 operator interfaces for consistency and to remove duplicate
1217 interfaces. We traverse the whole namespace, counting on the fact
1218 that most symbols will not have generic or operator interfaces. */
1219
1220void
b251af97 1221gfc_check_interfaces (gfc_namespace *ns)
6de9cd9a
DN
1222{
1223 gfc_namespace *old_ns, *ns2;
1224 char interface_name[100];
09639a83 1225 int i;
6de9cd9a
DN
1226
1227 old_ns = gfc_current_ns;
1228 gfc_current_ns = ns;
1229
1230 gfc_traverse_ns (ns, check_sym_interfaces);
1231
1232 gfc_traverse_user_op (ns, check_uop_interfaces);
1233
1234 for (i = GFC_INTRINSIC_BEGIN; i != GFC_INTRINSIC_END; i++)
1235 {
1236 if (i == INTRINSIC_USER)
1237 continue;
1238
1239 if (i == INTRINSIC_ASSIGN)
1240 strcpy (interface_name, "intrinsic assignment operator");
1241 else
1242 sprintf (interface_name, "intrinsic '%s' operator",
09639a83 1243 gfc_op2string ((gfc_intrinsic_op) i));
6de9cd9a 1244
a1ee985f 1245 if (check_interface0 (ns->op[i], interface_name))
6de9cd9a
DN
1246 continue;
1247
94747289
DK
1248 if (ns->op[i])
1249 gfc_check_operator_interface (ns->op[i]->sym, (gfc_intrinsic_op) i,
1250 ns->op[i]->where);
6de9cd9a 1251
3bed9dd0
DF
1252 for (ns2 = ns; ns2; ns2 = ns2->parent)
1253 {
a1ee985f 1254 if (check_interface1 (ns->op[i], ns2->op[i], 0,
3bed9dd0
DF
1255 interface_name, true))
1256 goto done;
1257
1258 switch (i)
1259 {
1260 case INTRINSIC_EQ:
a1ee985f 1261 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_EQ_OS],
3bed9dd0
DF
1262 0, interface_name, true)) goto done;
1263 break;
1264
1265 case INTRINSIC_EQ_OS:
a1ee985f 1266 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_EQ],
3bed9dd0
DF
1267 0, interface_name, true)) goto done;
1268 break;
1269
1270 case INTRINSIC_NE:
a1ee985f 1271 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_NE_OS],
3bed9dd0
DF
1272 0, interface_name, true)) goto done;
1273 break;
1274
1275 case INTRINSIC_NE_OS:
a1ee985f 1276 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_NE],
3bed9dd0
DF
1277 0, interface_name, true)) goto done;
1278 break;
1279
1280 case INTRINSIC_GT:
a1ee985f 1281 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_GT_OS],
3bed9dd0
DF
1282 0, interface_name, true)) goto done;
1283 break;
1284
1285 case INTRINSIC_GT_OS:
a1ee985f 1286 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_GT],
3bed9dd0
DF
1287 0, interface_name, true)) goto done;
1288 break;
1289
1290 case INTRINSIC_GE:
a1ee985f 1291 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_GE_OS],
3bed9dd0
DF
1292 0, interface_name, true)) goto done;
1293 break;
1294
1295 case INTRINSIC_GE_OS:
a1ee985f 1296 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_GE],
3bed9dd0
DF
1297 0, interface_name, true)) goto done;
1298 break;
1299
1300 case INTRINSIC_LT:
a1ee985f 1301 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_LT_OS],
3bed9dd0
DF
1302 0, interface_name, true)) goto done;
1303 break;
1304
1305 case INTRINSIC_LT_OS:
a1ee985f 1306 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_LT],
3bed9dd0
DF
1307 0, interface_name, true)) goto done;
1308 break;
1309
1310 case INTRINSIC_LE:
a1ee985f 1311 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_LE_OS],
3bed9dd0
DF
1312 0, interface_name, true)) goto done;
1313 break;
1314
1315 case INTRINSIC_LE_OS:
a1ee985f 1316 if (check_interface1 (ns->op[i], ns2->op[INTRINSIC_LE],
3bed9dd0
DF
1317 0, interface_name, true)) goto done;
1318 break;
1319
1320 default:
1321 break;
1322 }
1323 }
6de9cd9a
DN
1324 }
1325
3bed9dd0 1326done:
6de9cd9a
DN
1327 gfc_current_ns = old_ns;
1328}
1329
1330
1331static int
b251af97 1332symbol_rank (gfc_symbol *sym)
6de9cd9a 1333{
6de9cd9a
DN
1334 return (sym->as == NULL) ? 0 : sym->as->rank;
1335}
1336
1337
aa08038d
EE
1338/* Given a symbol of a formal argument list and an expression, if the
1339 formal argument is allocatable, check that the actual argument is
1340 allocatable. Returns nonzero if compatible, zero if not compatible. */
1341
1342static int
b251af97 1343compare_allocatable (gfc_symbol *formal, gfc_expr *actual)
aa08038d
EE
1344{
1345 symbol_attribute attr;
1346
1347 if (formal->attr.allocatable)
1348 {
1349 attr = gfc_expr_attr (actual);
1350 if (!attr.allocatable)
1351 return 0;
1352 }
1353
1354 return 1;
1355}
1356
1357
6de9cd9a
DN
1358/* Given a symbol of a formal argument list and an expression, if the
1359 formal argument is a pointer, see if the actual argument is a
1360 pointer. Returns nonzero if compatible, zero if not compatible. */
1361
1362static int
b251af97 1363compare_pointer (gfc_symbol *formal, gfc_expr *actual)
6de9cd9a
DN
1364{
1365 symbol_attribute attr;
1366
1367 if (formal->attr.pointer)
1368 {
1369 attr = gfc_expr_attr (actual);
1370 if (!attr.pointer)
1371 return 0;
1372 }
1373
1374 return 1;
1375}
1376
1377
1378/* Given a symbol of a formal argument list and an expression, see if
1379 the two are compatible as arguments. Returns nonzero if
1380 compatible, zero if not compatible. */
1381
1382static int
b251af97 1383compare_parameter (gfc_symbol *formal, gfc_expr *actual,
5ad6345e 1384 int ranks_must_agree, int is_elemental, locus *where)
6de9cd9a
DN
1385{
1386 gfc_ref *ref;
5ad6345e 1387 bool rank_check;
6de9cd9a 1388
a8b3b0b6
CR
1389 /* If the formal arg has type BT_VOID, it's to one of the iso_c_binding
1390 procs c_f_pointer or c_f_procpointer, and we need to accept most
1391 pointers the user could give us. This should allow that. */
1392 if (formal->ts.type == BT_VOID)
1393 return 1;
1394
1395 if (formal->ts.type == BT_DERIVED
bc21d315 1396 && formal->ts.u.derived && formal->ts.u.derived->ts.is_iso_c
a8b3b0b6 1397 && actual->ts.type == BT_DERIVED
bc21d315 1398 && actual->ts.u.derived && actual->ts.u.derived->ts.is_iso_c)
a8b3b0b6
CR
1399 return 1;
1400
6de9cd9a
DN
1401 if (actual->ts.type == BT_PROCEDURE)
1402 {
8ad15a0a 1403 char err[200];
9b63f282 1404 gfc_symbol *act_sym = actual->symtree->n.sym;
6de9cd9a 1405
8ad15a0a
JW
1406 if (formal->attr.flavor != FL_PROCEDURE)
1407 {
1408 if (where)
1409 gfc_error ("Invalid procedure argument at %L", &actual->where);
1410 return 0;
1411 }
6de9cd9a 1412
889dc035 1413 if (!gfc_compare_interfaces (formal, act_sym, act_sym->name, 0, 1, err,
8ad15a0a
JW
1414 sizeof(err)))
1415 {
1416 if (where)
1417 gfc_error ("Interface mismatch in dummy procedure '%s' at %L: %s",
1418 formal->name, &actual->where, err);
1419 return 0;
1420 }
5ad6345e 1421
9b63f282 1422 if (formal->attr.function && !act_sym->attr.function)
03bd096b
JW
1423 {
1424 gfc_add_function (&act_sym->attr, act_sym->name,
1425 &act_sym->declared_at);
1426 if (act_sym->ts.type == BT_UNKNOWN
1427 && gfc_set_default_type (act_sym, 1, act_sym->ns) == FAILURE)
1428 return 0;
1429 }
1430 else if (formal->attr.subroutine && !act_sym->attr.subroutine)
9b63f282
JW
1431 gfc_add_subroutine (&act_sym->attr, act_sym->name,
1432 &act_sym->declared_at);
1433
5ad6345e 1434 return 1;
6de9cd9a
DN
1435 }
1436
90aeadcb 1437 if ((actual->expr_type != EXPR_NULL || actual->ts.type != BT_UNKNOWN)
1600fe22 1438 && !gfc_compare_types (&formal->ts, &actual->ts))
5ad6345e 1439 {
d68e117b 1440 if (where)
5ad6345e 1441 gfc_error ("Type mismatch in argument '%s' at %L; passed %s to %s",
d68e117b
TB
1442 formal->name, &actual->where, gfc_typename (&actual->ts),
1443 gfc_typename (&formal->ts));
5ad6345e
TB
1444 return 0;
1445 }
6de9cd9a
DN
1446
1447 if (symbol_rank (formal) == actual->rank)
1448 return 1;
1449
5ad6345e
TB
1450 rank_check = where != NULL && !is_elemental && formal->as
1451 && (formal->as->type == AS_ASSUMED_SHAPE
1452 || formal->as->type == AS_DEFERRED);
6de9cd9a 1453
5ad6345e
TB
1454 if (rank_check || ranks_must_agree || formal->attr.pointer
1455 || (actual->rank != 0 && !(is_elemental || formal->attr.dimension))
1456 || (actual->rank == 0 && formal->as->type == AS_ASSUMED_SHAPE))
1457 {
1458 if (where)
1459 gfc_error ("Rank mismatch in argument '%s' at %L (%d and %d)",
1460 formal->name, &actual->where, symbol_rank (formal),
1461 actual->rank);
6de9cd9a 1462 return 0;
5ad6345e
TB
1463 }
1464 else if (actual->rank != 0 && (is_elemental || formal->attr.dimension))
1465 return 1;
1466
1467 /* At this point, we are considering a scalar passed to an array. This
1468 is valid (cf. F95 12.4.1.1; F2003 12.4.1.2),
1469 - if the actual argument is (a substring of) an element of a
1470 non-assumed-shape/non-pointer array;
1471 - (F2003) if the actual argument is of type character. */
6de9cd9a
DN
1472
1473 for (ref = actual->ref; ref; ref = ref->next)
1474 if (ref->type == REF_ARRAY && ref->u.ar.type == AR_ELEMENT)
1475 break;
1476
5ad6345e
TB
1477 /* Not an array element. */
1478 if (formal->ts.type == BT_CHARACTER
1479 && (ref == NULL
1480 || (actual->expr_type == EXPR_VARIABLE
1481 && (actual->symtree->n.sym->as->type == AS_ASSUMED_SHAPE
6da0839a 1482 || actual->symtree->n.sym->attr.pointer))))
5ad6345e
TB
1483 {
1484 if (where && (gfc_option.allow_std & GFC_STD_F2003) == 0)
1485 {
1486 gfc_error ("Fortran 2003: Scalar CHARACTER actual argument with "
1487 "array dummy argument '%s' at %L",
1488 formal->name, &actual->where);
1489 return 0;
1490 }
1491 else if ((gfc_option.allow_std & GFC_STD_F2003) == 0)
1492 return 0;
1493 else
1494 return 1;
1495 }
1496 else if (ref == NULL)
1497 {
1498 if (where)
1499 gfc_error ("Rank mismatch in argument '%s' at %L (%d and %d)",
1500 formal->name, &actual->where, symbol_rank (formal),
1501 actual->rank);
1502 return 0;
1503 }
1504
1505 if (actual->expr_type == EXPR_VARIABLE
1506 && actual->symtree->n.sym->as
1507 && (actual->symtree->n.sym->as->type == AS_ASSUMED_SHAPE
6da0839a 1508 || actual->symtree->n.sym->attr.pointer))
5ad6345e
TB
1509 {
1510 if (where)
1511 gfc_error ("Element of assumed-shaped array passed to dummy "
1512 "argument '%s' at %L", formal->name, &actual->where);
1513 return 0;
1514 }
6de9cd9a
DN
1515
1516 return 1;
1517}
1518
1519
ee7e677f
TB
1520/* Given a symbol of a formal argument list and an expression, see if
1521 the two are compatible as arguments. Returns nonzero if
1522 compatible, zero if not compatible. */
1523
1524static int
b251af97 1525compare_parameter_protected (gfc_symbol *formal, gfc_expr *actual)
ee7e677f
TB
1526{
1527 if (actual->expr_type != EXPR_VARIABLE)
1528 return 1;
1529
9aa433c2 1530 if (!actual->symtree->n.sym->attr.is_protected)
ee7e677f
TB
1531 return 1;
1532
1533 if (!actual->symtree->n.sym->attr.use_assoc)
1534 return 1;
1535
1536 if (formal->attr.intent == INTENT_IN
1537 || formal->attr.intent == INTENT_UNKNOWN)
1538 return 1;
1539
1540 if (!actual->symtree->n.sym->attr.pointer)
1541 return 0;
1542
1543 if (actual->symtree->n.sym->attr.pointer && formal->attr.pointer)
1544 return 0;
1545
1546 return 1;
1547}
1548
1549
2d5b90b2
TB
1550/* Returns the storage size of a symbol (formal argument) or
1551 zero if it cannot be determined. */
1552
1553static unsigned long
1554get_sym_storage_size (gfc_symbol *sym)
1555{
1556 int i;
1557 unsigned long strlen, elements;
1558
1559 if (sym->ts.type == BT_CHARACTER)
1560 {
bc21d315
JW
1561 if (sym->ts.u.cl && sym->ts.u.cl->length
1562 && sym->ts.u.cl->length->expr_type == EXPR_CONSTANT)
1563 strlen = mpz_get_ui (sym->ts.u.cl->length->value.integer);
2d5b90b2
TB
1564 else
1565 return 0;
1566 }
1567 else
1568 strlen = 1;
1569
1570 if (symbol_rank (sym) == 0)
1571 return strlen;
1572
1573 elements = 1;
1574 if (sym->as->type != AS_EXPLICIT)
1575 return 0;
1576 for (i = 0; i < sym->as->rank; i++)
1577 {
1578 if (!sym->as || sym->as->upper[i]->expr_type != EXPR_CONSTANT
1579 || sym->as->lower[i]->expr_type != EXPR_CONSTANT)
1580 return 0;
1581
1582 elements *= mpz_get_ui (sym->as->upper[i]->value.integer)
1583 - mpz_get_ui (sym->as->lower[i]->value.integer) + 1L;
1584 }
1585
1586 return strlen*elements;
1587}
1588
1589
1590/* Returns the storage size of an expression (actual argument) or
1591 zero if it cannot be determined. For an array element, it returns
1207ac67 1592 the remaining size as the element sequence consists of all storage
2d5b90b2
TB
1593 units of the actual argument up to the end of the array. */
1594
1595static unsigned long
1596get_expr_storage_size (gfc_expr *e)
1597{
1598 int i;
1599 long int strlen, elements;
6da0839a 1600 long int substrlen = 0;
a0710c29 1601 bool is_str_storage = false;
2d5b90b2
TB
1602 gfc_ref *ref;
1603
1604 if (e == NULL)
1605 return 0;
1606
1607 if (e->ts.type == BT_CHARACTER)
1608 {
bc21d315
JW
1609 if (e->ts.u.cl && e->ts.u.cl->length
1610 && e->ts.u.cl->length->expr_type == EXPR_CONSTANT)
1611 strlen = mpz_get_si (e->ts.u.cl->length->value.integer);
2d5b90b2 1612 else if (e->expr_type == EXPR_CONSTANT
bc21d315 1613 && (e->ts.u.cl == NULL || e->ts.u.cl->length == NULL))
2d5b90b2
TB
1614 strlen = e->value.character.length;
1615 else
1616 return 0;
1617 }
1618 else
1619 strlen = 1; /* Length per element. */
1620
1621 if (e->rank == 0 && !e->ref)
1622 return strlen;
1623
1624 elements = 1;
1625 if (!e->ref)
1626 {
1627 if (!e->shape)
1628 return 0;
1629 for (i = 0; i < e->rank; i++)
1630 elements *= mpz_get_si (e->shape[i]);
1631 return elements*strlen;
1632 }
1633
1634 for (ref = e->ref; ref; ref = ref->next)
1635 {
6da0839a
TB
1636 if (ref->type == REF_SUBSTRING && ref->u.ss.start
1637 && ref->u.ss.start->expr_type == EXPR_CONSTANT)
1638 {
a0710c29
TB
1639 if (is_str_storage)
1640 {
1641 /* The string length is the substring length.
1642 Set now to full string length. */
1643 if (ref->u.ss.length == NULL
1644 || ref->u.ss.length->length->expr_type != EXPR_CONSTANT)
1645 return 0;
1646
1647 strlen = mpz_get_ui (ref->u.ss.length->length->value.integer);
1648 }
1649 substrlen = strlen - mpz_get_ui (ref->u.ss.start->value.integer) + 1;
6da0839a
TB
1650 continue;
1651 }
1652
2d5b90b2
TB
1653 if (ref->type == REF_ARRAY && ref->u.ar.type == AR_SECTION
1654 && ref->u.ar.start && ref->u.ar.end && ref->u.ar.stride
1655 && ref->u.ar.as->upper)
1656 for (i = 0; i < ref->u.ar.dimen; i++)
1657 {
1658 long int start, end, stride;
1659 stride = 1;
37639728 1660
2d5b90b2
TB
1661 if (ref->u.ar.stride[i])
1662 {
1663 if (ref->u.ar.stride[i]->expr_type == EXPR_CONSTANT)
1664 stride = mpz_get_si (ref->u.ar.stride[i]->value.integer);
1665 else
1666 return 0;
1667 }
1668
1669 if (ref->u.ar.start[i])
1670 {
1671 if (ref->u.ar.start[i]->expr_type == EXPR_CONSTANT)
1672 start = mpz_get_si (ref->u.ar.start[i]->value.integer);
1673 else
1674 return 0;
1675 }
37639728
TB
1676 else if (ref->u.ar.as->lower[i]
1677 && ref->u.ar.as->lower[i]->expr_type == EXPR_CONSTANT)
1678 start = mpz_get_si (ref->u.ar.as->lower[i]->value.integer);
1679 else
1680 return 0;
2d5b90b2
TB
1681
1682 if (ref->u.ar.end[i])
1683 {
1684 if (ref->u.ar.end[i]->expr_type == EXPR_CONSTANT)
1685 end = mpz_get_si (ref->u.ar.end[i]->value.integer);
1686 else
1687 return 0;
1688 }
1689 else if (ref->u.ar.as->upper[i]
1690 && ref->u.ar.as->upper[i]->expr_type == EXPR_CONSTANT)
1691 end = mpz_get_si (ref->u.ar.as->upper[i]->value.integer);
1692 else
1693 return 0;
1694
1695 elements *= (end - start)/stride + 1L;
1696 }
1697 else if (ref->type == REF_ARRAY && ref->u.ar.type == AR_FULL
1698 && ref->u.ar.as->lower && ref->u.ar.as->upper)
1699 for (i = 0; i < ref->u.ar.as->rank; i++)
1700 {
1701 if (ref->u.ar.as->lower[i] && ref->u.ar.as->upper[i]
1702 && ref->u.ar.as->lower[i]->expr_type == EXPR_CONSTANT
1703 && ref->u.ar.as->upper[i]->expr_type == EXPR_CONSTANT)
da9ad923
TB
1704 elements *= mpz_get_si (ref->u.ar.as->upper[i]->value.integer)
1705 - mpz_get_si (ref->u.ar.as->lower[i]->value.integer)
2d5b90b2
TB
1706 + 1L;
1707 else
1708 return 0;
1709 }
6da0839a 1710 else if (ref->type == REF_ARRAY && ref->u.ar.type == AR_ELEMENT
a0710c29
TB
1711 && e->expr_type == EXPR_VARIABLE)
1712 {
1713 if (e->symtree->n.sym->as->type == AS_ASSUMED_SHAPE
1714 || e->symtree->n.sym->attr.pointer)
1715 {
1716 elements = 1;
1717 continue;
1718 }
1719
1720 /* Determine the number of remaining elements in the element
1721 sequence for array element designators. */
1722 is_str_storage = true;
1723 for (i = ref->u.ar.dimen - 1; i >= 0; i--)
1724 {
1725 if (ref->u.ar.start[i] == NULL
1726 || ref->u.ar.start[i]->expr_type != EXPR_CONSTANT
1727 || ref->u.ar.as->upper[i] == NULL
1728 || ref->u.ar.as->lower[i] == NULL
1729 || ref->u.ar.as->upper[i]->expr_type != EXPR_CONSTANT
1730 || ref->u.ar.as->lower[i]->expr_type != EXPR_CONSTANT)
1731 return 0;
1732
1733 elements
1734 = elements
1735 * (mpz_get_si (ref->u.ar.as->upper[i]->value.integer)
1736 - mpz_get_si (ref->u.ar.as->lower[i]->value.integer)
1737 + 1L)
1738 - (mpz_get_si (ref->u.ar.start[i]->value.integer)
1739 - mpz_get_si (ref->u.ar.as->lower[i]->value.integer));
1740 }
1741 }
2d5b90b2 1742 else
2d5b90b2
TB
1743 return 0;
1744 }
1745
6da0839a 1746 if (substrlen)
a0710c29
TB
1747 return (is_str_storage) ? substrlen + (elements-1)*strlen
1748 : elements*strlen;
1749 else
1750 return elements*strlen;
2d5b90b2
TB
1751}
1752
1753
59be8071
TB
1754/* Given an expression, check whether it is an array section
1755 which has a vector subscript. If it has, one is returned,
1756 otherwise zero. */
1757
1758static int
1759has_vector_subscript (gfc_expr *e)
1760{
1761 int i;
1762 gfc_ref *ref;
1763
1764 if (e == NULL || e->rank == 0 || e->expr_type != EXPR_VARIABLE)
1765 return 0;
1766
1767 for (ref = e->ref; ref; ref = ref->next)
1768 if (ref->type == REF_ARRAY && ref->u.ar.type == AR_SECTION)
1769 for (i = 0; i < ref->u.ar.dimen; i++)
1770 if (ref->u.ar.dimen_type[i] == DIMEN_VECTOR)
1771 return 1;
1772
1773 return 0;
1774}
1775
1776
6de9cd9a
DN
1777/* Given formal and actual argument lists, see if they are compatible.
1778 If they are compatible, the actual argument list is sorted to
1779 correspond with the formal list, and elements for missing optional
1780 arguments are inserted. If WHERE pointer is nonnull, then we issue
1781 errors when things don't match instead of just returning the status
1782 code. */
1783
f0ac18b7
DK
1784static int
1785compare_actual_formal (gfc_actual_arglist **ap, gfc_formal_arglist *formal,
1786 int ranks_must_agree, int is_elemental, locus *where)
6de9cd9a 1787{
7b901ac4 1788 gfc_actual_arglist **new_arg, *a, *actual, temp;
6de9cd9a
DN
1789 gfc_formal_arglist *f;
1790 int i, n, na;
2d5b90b2 1791 unsigned long actual_size, formal_size;
6de9cd9a
DN
1792
1793 actual = *ap;
1794
1795 if (actual == NULL && formal == NULL)
1796 return 1;
1797
1798 n = 0;
1799 for (f = formal; f; f = f->next)
1800 n++;
1801
7b901ac4 1802 new_arg = (gfc_actual_arglist **) alloca (n * sizeof (gfc_actual_arglist *));
6de9cd9a
DN
1803
1804 for (i = 0; i < n; i++)
7b901ac4 1805 new_arg[i] = NULL;
6de9cd9a
DN
1806
1807 na = 0;
1808 f = formal;
1809 i = 0;
1810
1811 for (a = actual; a; a = a->next, f = f->next)
1812 {
7fcafa71
PT
1813 /* Look for keywords but ignore g77 extensions like %VAL. */
1814 if (a->name != NULL && a->name[0] != '%')
6de9cd9a
DN
1815 {
1816 i = 0;
1817 for (f = formal; f; f = f->next, i++)
1818 {
1819 if (f->sym == NULL)
1820 continue;
1821 if (strcmp (f->sym->name, a->name) == 0)
1822 break;
1823 }
1824
1825 if (f == NULL)
1826 {
1827 if (where)
b251af97
SK
1828 gfc_error ("Keyword argument '%s' at %L is not in "
1829 "the procedure", a->name, &a->expr->where);
6de9cd9a
DN
1830 return 0;
1831 }
1832
7b901ac4 1833 if (new_arg[i] != NULL)
6de9cd9a
DN
1834 {
1835 if (where)
b251af97
SK
1836 gfc_error ("Keyword argument '%s' at %L is already associated "
1837 "with another actual argument", a->name,
1838 &a->expr->where);
6de9cd9a
DN
1839 return 0;
1840 }
1841 }
1842
1843 if (f == NULL)
1844 {
1845 if (where)
b251af97
SK
1846 gfc_error ("More actual than formal arguments in procedure "
1847 "call at %L", where);
6de9cd9a
DN
1848
1849 return 0;
1850 }
1851
1852 if (f->sym == NULL && a->expr == NULL)
1853 goto match;
1854
1855 if (f->sym == NULL)
1856 {
1857 if (where)
b251af97
SK
1858 gfc_error ("Missing alternate return spec in subroutine call "
1859 "at %L", where);
6de9cd9a
DN
1860 return 0;
1861 }
1862
1863 if (a->expr == NULL)
1864 {
1865 if (where)
b251af97
SK
1866 gfc_error ("Unexpected alternate return spec in subroutine "
1867 "call at %L", where);
6de9cd9a
DN
1868 return 0;
1869 }
5ad6345e
TB
1870
1871 if (!compare_parameter (f->sym, a->expr, ranks_must_agree,
1872 is_elemental, where))
1873 return 0;
6de9cd9a 1874
a0710c29
TB
1875 /* Special case for character arguments. For allocatable, pointer
1876 and assumed-shape dummies, the string length needs to match
1877 exactly. */
2d5b90b2 1878 if (a->expr->ts.type == BT_CHARACTER
bc21d315
JW
1879 && a->expr->ts.u.cl && a->expr->ts.u.cl->length
1880 && a->expr->ts.u.cl->length->expr_type == EXPR_CONSTANT
1881 && f->sym->ts.u.cl && f->sym->ts.u.cl && f->sym->ts.u.cl->length
1882 && f->sym->ts.u.cl->length->expr_type == EXPR_CONSTANT
a0710c29
TB
1883 && (f->sym->attr.pointer || f->sym->attr.allocatable
1884 || (f->sym->as && f->sym->as->type == AS_ASSUMED_SHAPE))
bc21d315
JW
1885 && (mpz_cmp (a->expr->ts.u.cl->length->value.integer,
1886 f->sym->ts.u.cl->length->value.integer) != 0))
a0324f7b 1887 {
a0710c29
TB
1888 if (where && (f->sym->attr.pointer || f->sym->attr.allocatable))
1889 gfc_warning ("Character length mismatch (%ld/%ld) between actual "
1890 "argument and pointer or allocatable dummy argument "
1891 "'%s' at %L",
bc21d315
JW
1892 mpz_get_si (a->expr->ts.u.cl->length->value.integer),
1893 mpz_get_si (f->sym->ts.u.cl->length->value.integer),
a0710c29
TB
1894 f->sym->name, &a->expr->where);
1895 else if (where)
1896 gfc_warning ("Character length mismatch (%ld/%ld) between actual "
1897 "argument and assumed-shape dummy argument '%s' "
1898 "at %L",
bc21d315
JW
1899 mpz_get_si (a->expr->ts.u.cl->length->value.integer),
1900 mpz_get_si (f->sym->ts.u.cl->length->value.integer),
a0710c29
TB
1901 f->sym->name, &a->expr->where);
1902 return 0;
a0324f7b
TB
1903 }
1904
37639728
TB
1905 actual_size = get_expr_storage_size (a->expr);
1906 formal_size = get_sym_storage_size (f->sym);
16f2a7a4
PT
1907 if (actual_size != 0
1908 && actual_size < formal_size
1909 && a->expr->ts.type != BT_PROCEDURE)
2d5b90b2
TB
1910 {
1911 if (a->expr->ts.type == BT_CHARACTER && !f->sym->as && where)
1912 gfc_warning ("Character length of actual argument shorter "
096f0d9d
FXC
1913 "than of dummy argument '%s' (%lu/%lu) at %L",
1914 f->sym->name, actual_size, formal_size,
1915 &a->expr->where);
2d5b90b2
TB
1916 else if (where)
1917 gfc_warning ("Actual argument contains too few "
096f0d9d
FXC
1918 "elements for dummy argument '%s' (%lu/%lu) at %L",
1919 f->sym->name, actual_size, formal_size,
1920 &a->expr->where);
2d5b90b2
TB
1921 return 0;
1922 }
1923
8fb74da4
JW
1924 /* Satisfy 12.4.1.3 by ensuring that a procedure pointer actual argument
1925 is provided for a procedure pointer formal argument. */
1926 if (f->sym->attr.proc_pointer
a7c0b11d
JW
1927 && !((a->expr->expr_type == EXPR_VARIABLE
1928 && a->expr->symtree->n.sym->attr.proc_pointer)
1929 || (a->expr->expr_type == EXPR_FUNCTION
1930 && a->expr->symtree->n.sym->result->attr.proc_pointer)
f64edc8b 1931 || gfc_is_proc_ptr_comp (a->expr, NULL)))
8fb74da4
JW
1932 {
1933 if (where)
1934 gfc_error ("Expected a procedure pointer for argument '%s' at %L",
1935 f->sym->name, &a->expr->where);
1936 return 0;
1937 }
1938
699fa7aa
PT
1939 /* Satisfy 12.4.1.2 by ensuring that a procedure actual argument is
1940 provided for a procedure formal argument. */
f64edc8b 1941 if (a->expr->ts.type != BT_PROCEDURE && !gfc_is_proc_ptr_comp (a->expr, NULL)
699fa7aa
PT
1942 && a->expr->expr_type == EXPR_VARIABLE
1943 && f->sym->attr.flavor == FL_PROCEDURE)
1944 {
9914f8cf
PT
1945 if (where)
1946 gfc_error ("Expected a procedure for argument '%s' at %L",
1947 f->sym->name, &a->expr->where);
1948 return 0;
699fa7aa
PT
1949 }
1950
b251af97
SK
1951 if (f->sym->attr.flavor == FL_PROCEDURE && f->sym->attr.pure
1952 && a->expr->ts.type == BT_PROCEDURE
1953 && !a->expr->symtree->n.sym->attr.pure)
d68bd5a8
PT
1954 {
1955 if (where)
1956 gfc_error ("Expected a PURE procedure for argument '%s' at %L",
1957 f->sym->name, &a->expr->where);
1958 return 0;
1959 }
1960
b251af97 1961 if (f->sym->as && f->sym->as->type == AS_ASSUMED_SHAPE
bf9d2177
JJ
1962 && a->expr->expr_type == EXPR_VARIABLE
1963 && a->expr->symtree->n.sym->as
1964 && a->expr->symtree->n.sym->as->type == AS_ASSUMED_SIZE
1965 && (a->expr->ref == NULL
1966 || (a->expr->ref->type == REF_ARRAY
1967 && a->expr->ref->u.ar.type == AR_FULL)))
1968 {
1969 if (where)
1970 gfc_error ("Actual argument for '%s' cannot be an assumed-size"
1971 " array at %L", f->sym->name, where);
1972 return 0;
1973 }
1974
1600fe22
TS
1975 if (a->expr->expr_type != EXPR_NULL
1976 && compare_pointer (f->sym, a->expr) == 0)
6de9cd9a
DN
1977 {
1978 if (where)
1979 gfc_error ("Actual argument for '%s' must be a pointer at %L",
1980 f->sym->name, &a->expr->where);
1981 return 0;
1982 }
1983
aa08038d
EE
1984 if (a->expr->expr_type != EXPR_NULL
1985 && compare_allocatable (f->sym, a->expr) == 0)
1986 {
1987 if (where)
1988 gfc_error ("Actual argument for '%s' must be ALLOCATABLE at %L",
1989 f->sym->name, &a->expr->where);
1990 return 0;
1991 }
1992
a920e94a 1993 /* Check intent = OUT/INOUT for definable actual argument. */
a5c655e8 1994 if ((a->expr->expr_type != EXPR_VARIABLE
ac61ba6a
TB
1995 || (a->expr->symtree->n.sym->attr.flavor != FL_VARIABLE
1996 && a->expr->symtree->n.sym->attr.flavor != FL_PROCEDURE))
b251af97
SK
1997 && (f->sym->attr.intent == INTENT_OUT
1998 || f->sym->attr.intent == INTENT_INOUT))
a920e94a 1999 {
536afc35 2000 if (where)
a5c655e8
TB
2001 gfc_error ("Actual argument at %L must be definable as "
2002 "the dummy argument '%s' is INTENT = OUT/INOUT",
2003 &a->expr->where, f->sym->name);
b251af97
SK
2004 return 0;
2005 }
a920e94a 2006
ee7e677f
TB
2007 if (!compare_parameter_protected(f->sym, a->expr))
2008 {
2009 if (where)
2010 gfc_error ("Actual argument at %L is use-associated with "
2011 "PROTECTED attribute and dummy argument '%s' is "
2012 "INTENT = OUT/INOUT",
2013 &a->expr->where,f->sym->name);
b251af97 2014 return 0;
ee7e677f
TB
2015 }
2016
59be8071
TB
2017 if ((f->sym->attr.intent == INTENT_OUT
2018 || f->sym->attr.intent == INTENT_INOUT
2019 || f->sym->attr.volatile_)
2020 && has_vector_subscript (a->expr))
2021 {
2022 if (where)
2023 gfc_error ("Array-section actual argument with vector subscripts "
a0710c29 2024 "at %L is incompatible with INTENT(OUT), INTENT(INOUT) "
59be8071
TB
2025 "or VOLATILE attribute of the dummy argument '%s'",
2026 &a->expr->where, f->sym->name);
2027 return 0;
2028 }
2029
9bce3c1c
TB
2030 /* C1232 (R1221) For an actual argument which is an array section or
2031 an assumed-shape array, the dummy argument shall be an assumed-
2032 shape array, if the dummy argument has the VOLATILE attribute. */
2033
2034 if (f->sym->attr.volatile_
2035 && a->expr->symtree->n.sym->as
2036 && a->expr->symtree->n.sym->as->type == AS_ASSUMED_SHAPE
2037 && !(f->sym->as && f->sym->as->type == AS_ASSUMED_SHAPE))
2038 {
2039 if (where)
2040 gfc_error ("Assumed-shape actual argument at %L is "
2041 "incompatible with the non-assumed-shape "
2042 "dummy argument '%s' due to VOLATILE attribute",
2043 &a->expr->where,f->sym->name);
2044 return 0;
2045 }
2046
2047 if (f->sym->attr.volatile_
2048 && a->expr->ref && a->expr->ref->u.ar.type == AR_SECTION
2049 && !(f->sym->as && f->sym->as->type == AS_ASSUMED_SHAPE))
2050 {
2051 if (where)
2052 gfc_error ("Array-section actual argument at %L is "
2053 "incompatible with the non-assumed-shape "
2054 "dummy argument '%s' due to VOLATILE attribute",
2055 &a->expr->where,f->sym->name);
2056 return 0;
2057 }
2058
2059 /* C1233 (R1221) For an actual argument which is a pointer array, the
2060 dummy argument shall be an assumed-shape or pointer array, if the
2061 dummy argument has the VOLATILE attribute. */
2062
2063 if (f->sym->attr.volatile_
2064 && a->expr->symtree->n.sym->attr.pointer
2065 && a->expr->symtree->n.sym->as
2066 && !(f->sym->as
2067 && (f->sym->as->type == AS_ASSUMED_SHAPE
2068 || f->sym->attr.pointer)))
2069 {
2070 if (where)
2071 gfc_error ("Pointer-array actual argument at %L requires "
2072 "an assumed-shape or pointer-array dummy "
2073 "argument '%s' due to VOLATILE attribute",
2074 &a->expr->where,f->sym->name);
2075 return 0;
2076 }
2077
6de9cd9a
DN
2078 match:
2079 if (a == actual)
2080 na = i;
2081
7b901ac4 2082 new_arg[i++] = a;
6de9cd9a
DN
2083 }
2084
2085 /* Make sure missing actual arguments are optional. */
2086 i = 0;
2087 for (f = formal; f; f = f->next, i++)
2088 {
7b901ac4 2089 if (new_arg[i] != NULL)
6de9cd9a 2090 continue;
3ab7b3de
BM
2091 if (f->sym == NULL)
2092 {
2093 if (where)
b251af97
SK
2094 gfc_error ("Missing alternate return spec in subroutine call "
2095 "at %L", where);
3ab7b3de
BM
2096 return 0;
2097 }
6de9cd9a
DN
2098 if (!f->sym->attr.optional)
2099 {
2100 if (where)
2101 gfc_error ("Missing actual argument for argument '%s' at %L",
2102 f->sym->name, where);
2103 return 0;
2104 }
2105 }
2106
2107 /* The argument lists are compatible. We now relink a new actual
2108 argument list with null arguments in the right places. The head
2109 of the list remains the head. */
2110 for (i = 0; i < n; i++)
7b901ac4
KG
2111 if (new_arg[i] == NULL)
2112 new_arg[i] = gfc_get_actual_arglist ();
6de9cd9a
DN
2113
2114 if (na != 0)
2115 {
7b901ac4
KG
2116 temp = *new_arg[0];
2117 *new_arg[0] = *actual;
6de9cd9a
DN
2118 *actual = temp;
2119
7b901ac4
KG
2120 a = new_arg[0];
2121 new_arg[0] = new_arg[na];
2122 new_arg[na] = a;
6de9cd9a
DN
2123 }
2124
2125 for (i = 0; i < n - 1; i++)
7b901ac4 2126 new_arg[i]->next = new_arg[i + 1];
6de9cd9a 2127
7b901ac4 2128 new_arg[i]->next = NULL;
6de9cd9a
DN
2129
2130 if (*ap == NULL && n > 0)
7b901ac4 2131 *ap = new_arg[0];
6de9cd9a 2132
1600fe22 2133 /* Note the types of omitted optional arguments. */
b5ca4fd2 2134 for (a = *ap, f = formal; a; a = a->next, f = f->next)
1600fe22
TS
2135 if (a->expr == NULL && a->label == NULL)
2136 a->missing_arg_type = f->sym->ts.type;
2137
6de9cd9a
DN
2138 return 1;
2139}
2140
2141
2142typedef struct
2143{
2144 gfc_formal_arglist *f;
2145 gfc_actual_arglist *a;
2146}
2147argpair;
2148
2149/* qsort comparison function for argument pairs, with the following
2150 order:
2151 - p->a->expr == NULL
2152 - p->a->expr->expr_type != EXPR_VARIABLE
f7b529fa 2153 - growing p->a->expr->symbol. */
6de9cd9a
DN
2154
2155static int
2156pair_cmp (const void *p1, const void *p2)
2157{
2158 const gfc_actual_arglist *a1, *a2;
2159
2160 /* *p1 and *p2 are elements of the to-be-sorted array. */
2161 a1 = ((const argpair *) p1)->a;
2162 a2 = ((const argpair *) p2)->a;
2163 if (!a1->expr)
2164 {
2165 if (!a2->expr)
2166 return 0;
2167 return -1;
2168 }
2169 if (!a2->expr)
2170 return 1;
2171 if (a1->expr->expr_type != EXPR_VARIABLE)
2172 {
2173 if (a2->expr->expr_type != EXPR_VARIABLE)
2174 return 0;
2175 return -1;
2176 }
2177 if (a2->expr->expr_type != EXPR_VARIABLE)
2178 return 1;
2179 return a1->expr->symtree->n.sym < a2->expr->symtree->n.sym;
2180}
2181
2182
2183/* Given two expressions from some actual arguments, test whether they
2184 refer to the same expression. The analysis is conservative.
2185 Returning FAILURE will produce no warning. */
2186
17b1d2a0 2187static gfc_try
b251af97 2188compare_actual_expr (gfc_expr *e1, gfc_expr *e2)
6de9cd9a
DN
2189{
2190 const gfc_ref *r1, *r2;
2191
2192 if (!e1 || !e2
2193 || e1->expr_type != EXPR_VARIABLE
2194 || e2->expr_type != EXPR_VARIABLE
2195 || e1->symtree->n.sym != e2->symtree->n.sym)
2196 return FAILURE;
2197
2198 /* TODO: improve comparison, see expr.c:show_ref(). */
2199 for (r1 = e1->ref, r2 = e2->ref; r1 && r2; r1 = r1->next, r2 = r2->next)
2200 {
2201 if (r1->type != r2->type)
2202 return FAILURE;
2203 switch (r1->type)
2204 {
2205 case REF_ARRAY:
2206 if (r1->u.ar.type != r2->u.ar.type)
2207 return FAILURE;
2208 /* TODO: At the moment, consider only full arrays;
2209 we could do better. */
2210 if (r1->u.ar.type != AR_FULL || r2->u.ar.type != AR_FULL)
2211 return FAILURE;
2212 break;
2213
2214 case REF_COMPONENT:
2215 if (r1->u.c.component != r2->u.c.component)
2216 return FAILURE;
2217 break;
2218
2219 case REF_SUBSTRING:
2220 return FAILURE;
2221
2222 default:
2223 gfc_internal_error ("compare_actual_expr(): Bad component code");
2224 }
2225 }
2226 if (!r1 && !r2)
2227 return SUCCESS;
2228 return FAILURE;
2229}
2230
b251af97 2231
6de9cd9a
DN
2232/* Given formal and actual argument lists that correspond to one
2233 another, check that identical actual arguments aren't not
2234 associated with some incompatible INTENTs. */
2235
17b1d2a0 2236static gfc_try
b251af97 2237check_some_aliasing (gfc_formal_arglist *f, gfc_actual_arglist *a)
6de9cd9a
DN
2238{
2239 sym_intent f1_intent, f2_intent;
2240 gfc_formal_arglist *f1;
2241 gfc_actual_arglist *a1;
2242 size_t n, i, j;
2243 argpair *p;
17b1d2a0 2244 gfc_try t = SUCCESS;
6de9cd9a
DN
2245
2246 n = 0;
2247 for (f1 = f, a1 = a;; f1 = f1->next, a1 = a1->next)
2248 {
2249 if (f1 == NULL && a1 == NULL)
2250 break;
2251 if (f1 == NULL || a1 == NULL)
2252 gfc_internal_error ("check_some_aliasing(): List mismatch");
2253 n++;
2254 }
2255 if (n == 0)
2256 return t;
2257 p = (argpair *) alloca (n * sizeof (argpair));
2258
2259 for (i = 0, f1 = f, a1 = a; i < n; i++, f1 = f1->next, a1 = a1->next)
2260 {
2261 p[i].f = f1;
2262 p[i].a = a1;
2263 }
2264
2265 qsort (p, n, sizeof (argpair), pair_cmp);
2266
2267 for (i = 0; i < n; i++)
2268 {
2269 if (!p[i].a->expr
2270 || p[i].a->expr->expr_type != EXPR_VARIABLE
2271 || p[i].a->expr->ts.type == BT_PROCEDURE)
2272 continue;
2273 f1_intent = p[i].f->sym->attr.intent;
2274 for (j = i + 1; j < n; j++)
2275 {
2276 /* Expected order after the sort. */
2277 if (!p[j].a->expr || p[j].a->expr->expr_type != EXPR_VARIABLE)
2278 gfc_internal_error ("check_some_aliasing(): corrupted data");
2279
2280 /* Are the expression the same? */
2281 if (compare_actual_expr (p[i].a->expr, p[j].a->expr) == FAILURE)
2282 break;
2283 f2_intent = p[j].f->sym->attr.intent;
2284 if ((f1_intent == INTENT_IN && f2_intent == INTENT_OUT)
2285 || (f1_intent == INTENT_OUT && f2_intent == INTENT_IN))
2286 {
2287 gfc_warning ("Same actual argument associated with INTENT(%s) "
2288 "argument '%s' and INTENT(%s) argument '%s' at %L",
2289 gfc_intent_string (f1_intent), p[i].f->sym->name,
2290 gfc_intent_string (f2_intent), p[j].f->sym->name,
2291 &p[i].a->expr->where);
2292 t = FAILURE;
2293 }
2294 }
2295 }
2296
2297 return t;
2298}
2299
2300
f17facac 2301/* Given a symbol of a formal argument list and an expression,
86bf520d 2302 return nonzero if their intents are compatible, zero otherwise. */
f17facac
TB
2303
2304static int
b251af97 2305compare_parameter_intent (gfc_symbol *formal, gfc_expr *actual)
f17facac 2306{
b251af97 2307 if (actual->symtree->n.sym->attr.pointer && !formal->attr.pointer)
f17facac
TB
2308 return 1;
2309
2310 if (actual->symtree->n.sym->attr.intent != INTENT_IN)
2311 return 1;
2312
b251af97 2313 if (formal->attr.intent == INTENT_INOUT || formal->attr.intent == INTENT_OUT)
f17facac
TB
2314 return 0;
2315
2316 return 1;
2317}
2318
2319
6de9cd9a
DN
2320/* Given formal and actual argument lists that correspond to one
2321 another, check that they are compatible in the sense that intents
2322 are not mismatched. */
2323
17b1d2a0 2324static gfc_try
b251af97 2325check_intents (gfc_formal_arglist *f, gfc_actual_arglist *a)
6de9cd9a 2326{
f17facac 2327 sym_intent f_intent;
6de9cd9a
DN
2328
2329 for (;; f = f->next, a = a->next)
2330 {
2331 if (f == NULL && a == NULL)
2332 break;
2333 if (f == NULL || a == NULL)
2334 gfc_internal_error ("check_intents(): List mismatch");
2335
2336 if (a->expr == NULL || a->expr->expr_type != EXPR_VARIABLE)
2337 continue;
2338
6de9cd9a
DN
2339 f_intent = f->sym->attr.intent;
2340
f17facac 2341 if (!compare_parameter_intent(f->sym, a->expr))
6de9cd9a 2342 {
6de9cd9a
DN
2343 gfc_error ("Procedure argument at %L is INTENT(IN) while interface "
2344 "specifies INTENT(%s)", &a->expr->where,
2345 gfc_intent_string (f_intent));
2346 return FAILURE;
2347 }
2348
2349 if (gfc_pure (NULL) && gfc_impure_variable (a->expr->symtree->n.sym))
2350 {
2351 if (f_intent == INTENT_INOUT || f_intent == INTENT_OUT)
2352 {
b251af97
SK
2353 gfc_error ("Procedure argument at %L is local to a PURE "
2354 "procedure and is passed to an INTENT(%s) argument",
2355 &a->expr->where, gfc_intent_string (f_intent));
6de9cd9a
DN
2356 return FAILURE;
2357 }
2358
c4e3543d 2359 if (f->sym->attr.pointer)
6de9cd9a 2360 {
b251af97
SK
2361 gfc_error ("Procedure argument at %L is local to a PURE "
2362 "procedure and has the POINTER attribute",
2363 &a->expr->where);
6de9cd9a
DN
2364 return FAILURE;
2365 }
2366 }
2367 }
2368
2369 return SUCCESS;
2370}
2371
2372
2373/* Check how a procedure is used against its interface. If all goes
2374 well, the actual argument list will also end up being properly
2375 sorted. */
2376
2377void
b251af97 2378gfc_procedure_use (gfc_symbol *sym, gfc_actual_arglist **ap, locus *where)
6de9cd9a 2379{
c4bbc105 2380
a9c5fe7e
TK
2381 /* Warn about calls with an implicit interface. Special case
2382 for calling a ISO_C_BINDING becase c_loc and c_funloc
ca071303
FXC
2383 are pseudo-unknown. Additionally, warn about procedures not
2384 explicitly declared at all if requested. */
2385 if (sym->attr.if_source == IFSRC_UNKNOWN && ! sym->attr.is_iso_c)
2386 {
2387 if (gfc_option.warn_implicit_interface)
2388 gfc_warning ("Procedure '%s' called with an implicit interface at %L",
2389 sym->name, where);
2390 else if (gfc_option.warn_implicit_procedure
2391 && sym->attr.proc == PROC_UNKNOWN)
2392 gfc_warning ("Procedure '%s' called at %L is not explicitly declared",
2393 sym->name, where);
2394 }
6de9cd9a 2395
e6895430 2396 if (sym->attr.if_source == IFSRC_UNKNOWN)
ac05557c
DF
2397 {
2398 gfc_actual_arglist *a;
2399 for (a = *ap; a; a = a->next)
2400 {
2401 /* Skip g77 keyword extensions like %VAL, %REF, %LOC. */
2402 if (a->name != NULL && a->name[0] != '%')
2403 {
2404 gfc_error("Keyword argument requires explicit interface "
2405 "for procedure '%s' at %L", sym->name, &a->expr->where);
2406 break;
2407 }
2408 }
2409
2410 return;
2411 }
2412
f0ac18b7 2413 if (!compare_actual_formal (ap, sym->formal, 0, sym->attr.elemental, where))
6de9cd9a
DN
2414 return;
2415
2416 check_intents (sym->formal, *ap);
2417 if (gfc_option.warn_aliasing)
2418 check_some_aliasing (sym->formal, *ap);
2419}
2420
2421
7e196f89
JW
2422/* Check how a procedure pointer component is used against its interface.
2423 If all goes well, the actual argument list will also end up being properly
2424 sorted. Completely analogous to gfc_procedure_use. */
2425
2426void
2427gfc_ppc_use (gfc_component *comp, gfc_actual_arglist **ap, locus *where)
2428{
2429
2430 /* Warn about calls with an implicit interface. Special case
2431 for calling a ISO_C_BINDING becase c_loc and c_funloc
2432 are pseudo-unknown. */
2433 if (gfc_option.warn_implicit_interface
2434 && comp->attr.if_source == IFSRC_UNKNOWN
2435 && !comp->attr.is_iso_c)
2436 gfc_warning ("Procedure pointer component '%s' called with an implicit "
2437 "interface at %L", comp->name, where);
2438
2439 if (comp->attr.if_source == IFSRC_UNKNOWN)
2440 {
2441 gfc_actual_arglist *a;
2442 for (a = *ap; a; a = a->next)
2443 {
2444 /* Skip g77 keyword extensions like %VAL, %REF, %LOC. */
2445 if (a->name != NULL && a->name[0] != '%')
2446 {
2447 gfc_error("Keyword argument requires explicit interface "
2448 "for procedure pointer component '%s' at %L",
2449 comp->name, &a->expr->where);
2450 break;
2451 }
2452 }
2453
2454 return;
2455 }
2456
2457 if (!compare_actual_formal (ap, comp->formal, 0, comp->attr.elemental, where))
2458 return;
2459
2460 check_intents (comp->formal, *ap);
2461 if (gfc_option.warn_aliasing)
2462 check_some_aliasing (comp->formal, *ap);
2463}
2464
2465
f0ac18b7
DK
2466/* Try if an actual argument list matches the formal list of a symbol,
2467 respecting the symbol's attributes like ELEMENTAL. This is used for
2468 GENERIC resolution. */
2469
2470bool
2471gfc_arglist_matches_symbol (gfc_actual_arglist** args, gfc_symbol* sym)
2472{
2473 bool r;
2474
2475 gcc_assert (sym->attr.flavor == FL_PROCEDURE);
2476
2477 r = !sym->attr.elemental;
2478 if (compare_actual_formal (args, sym->formal, r, !r, NULL))
2479 {
2480 check_intents (sym->formal, *args);
2481 if (gfc_option.warn_aliasing)
2482 check_some_aliasing (sym->formal, *args);
2483 return true;
2484 }
2485
2486 return false;
2487}
2488
2489
6de9cd9a
DN
2490/* Given an interface pointer and an actual argument list, search for
2491 a formal argument list that matches the actual. If found, returns
2492 a pointer to the symbol of the correct interface. Returns NULL if
2493 not found. */
2494
2495gfc_symbol *
b251af97
SK
2496gfc_search_interface (gfc_interface *intr, int sub_flag,
2497 gfc_actual_arglist **ap)
6de9cd9a 2498{
22a0a780 2499 gfc_symbol *elem_sym = NULL;
6de9cd9a
DN
2500 for (; intr; intr = intr->next)
2501 {
2502 if (sub_flag && intr->sym->attr.function)
2503 continue;
2504 if (!sub_flag && intr->sym->attr.subroutine)
2505 continue;
2506
f0ac18b7 2507 if (gfc_arglist_matches_symbol (ap, intr->sym))
22a0a780
PT
2508 {
2509 /* Satisfy 12.4.4.1 such that an elemental match has lower
2510 weight than a non-elemental match. */
2511 if (intr->sym->attr.elemental)
2512 {
2513 elem_sym = intr->sym;
2514 continue;
2515 }
2516 return intr->sym;
2517 }
6de9cd9a
DN
2518 }
2519
22a0a780 2520 return elem_sym ? elem_sym : NULL;
6de9cd9a
DN
2521}
2522
2523
2524/* Do a brute force recursive search for a symbol. */
2525
2526static gfc_symtree *
b251af97 2527find_symtree0 (gfc_symtree *root, gfc_symbol *sym)
6de9cd9a
DN
2528{
2529 gfc_symtree * st;
2530
2531 if (root->n.sym == sym)
2532 return root;
2533
2534 st = NULL;
2535 if (root->left)
2536 st = find_symtree0 (root->left, sym);
2537 if (root->right && ! st)
2538 st = find_symtree0 (root->right, sym);
2539 return st;
2540}
2541
2542
2543/* Find a symtree for a symbol. */
2544
f6fad28e
DK
2545gfc_symtree *
2546gfc_find_sym_in_symtree (gfc_symbol *sym)
6de9cd9a
DN
2547{
2548 gfc_symtree *st;
2549 gfc_namespace *ns;
2550
2551 /* First try to find it by name. */
2552 gfc_find_sym_tree (sym->name, gfc_current_ns, 1, &st);
2553 if (st && st->n.sym == sym)
2554 return st;
2555
66e4ab31 2556 /* If it's been renamed, resort to a brute-force search. */
6de9cd9a
DN
2557 /* TODO: avoid having to do this search. If the symbol doesn't exist
2558 in the symtree for the current namespace, it should probably be added. */
2559 for (ns = gfc_current_ns; ns; ns = ns->parent)
2560 {
2561 st = find_symtree0 (ns->sym_root, sym);
2562 if (st)
b251af97 2563 return st;
6de9cd9a
DN
2564 }
2565 gfc_internal_error ("Unable to find symbol %s", sym->name);
66e4ab31 2566 /* Not reached. */
6de9cd9a
DN
2567}
2568
2569
4a44a72d
DK
2570/* See if the arglist to an operator-call contains a derived-type argument
2571 with a matching type-bound operator. If so, return the matching specific
2572 procedure defined as operator-target as well as the base-object to use
2573 (which is the found derived-type argument with operator). */
2574
2575static gfc_typebound_proc*
2576matching_typebound_op (gfc_expr** tb_base,
2577 gfc_actual_arglist* args,
2578 gfc_intrinsic_op op, const char* uop)
2579{
2580 gfc_actual_arglist* base;
2581
2582 for (base = args; base; base = base->next)
4b7dd692 2583 if (base->expr->ts.type == BT_DERIVED || base->expr->ts.type == BT_CLASS)
4a44a72d
DK
2584 {
2585 gfc_typebound_proc* tb;
2586 gfc_symbol* derived;
2587 gfc_try result;
2588
4b7dd692
JW
2589 if (base->expr->ts.type == BT_CLASS)
2590 derived = base->expr->ts.u.derived->components->ts.u.derived;
2591 else
2592 derived = base->expr->ts.u.derived;
4a44a72d
DK
2593
2594 if (op == INTRINSIC_USER)
2595 {
2596 gfc_symtree* tb_uop;
2597
2598 gcc_assert (uop);
2599 tb_uop = gfc_find_typebound_user_op (derived, &result, uop,
2600 false, NULL);
2601
2602 if (tb_uop)
2603 tb = tb_uop->n.tb;
2604 else
2605 tb = NULL;
2606 }
2607 else
2608 tb = gfc_find_typebound_intrinsic_op (derived, &result, op,
2609 false, NULL);
2610
2611 /* This means we hit a PRIVATE operator which is use-associated and
2612 should thus not be seen. */
2613 if (result == FAILURE)
2614 tb = NULL;
2615
2616 /* Look through the super-type hierarchy for a matching specific
2617 binding. */
2618 for (; tb; tb = tb->overridden)
2619 {
2620 gfc_tbp_generic* g;
2621
2622 gcc_assert (tb->is_generic);
2623 for (g = tb->u.generic; g; g = g->next)
2624 {
2625 gfc_symbol* target;
2626 gfc_actual_arglist* argcopy;
2627 bool matches;
2628
2629 gcc_assert (g->specific);
2630 if (g->specific->error)
2631 continue;
2632
2633 target = g->specific->u.specific->n.sym;
2634
2635 /* Check if this arglist matches the formal. */
2636 argcopy = gfc_copy_actual_arglist (args);
2637 matches = gfc_arglist_matches_symbol (&argcopy, target);
2638 gfc_free_actual_arglist (argcopy);
2639
2640 /* Return if we found a match. */
2641 if (matches)
2642 {
2643 *tb_base = base->expr;
2644 return g->specific;
2645 }
2646 }
2647 }
2648 }
2649
2650 return NULL;
2651}
2652
2653
2654/* For the 'actual arglist' of an operator call and a specific typebound
2655 procedure that has been found the target of a type-bound operator, build the
2656 appropriate EXPR_COMPCALL and resolve it. We take this indirection over
2657 type-bound procedures rather than resolving type-bound operators 'directly'
2658 so that we can reuse the existing logic. */
2659
2660static void
2661build_compcall_for_operator (gfc_expr* e, gfc_actual_arglist* actual,
2662 gfc_expr* base, gfc_typebound_proc* target)
2663{
2664 e->expr_type = EXPR_COMPCALL;
2665 e->value.compcall.tbp = target;
2666 e->value.compcall.name = "operator"; /* Should not matter. */
2667 e->value.compcall.actual = actual;
2668 e->value.compcall.base_object = base;
2669 e->value.compcall.ignore_pass = 1;
2670 e->value.compcall.assign = 0;
2671}
2672
2673
6de9cd9a
DN
2674/* This subroutine is called when an expression is being resolved.
2675 The expression node in question is either a user defined operator
1f2959f0 2676 or an intrinsic operator with arguments that aren't compatible
6de9cd9a
DN
2677 with the operator. This subroutine builds an actual argument list
2678 corresponding to the operands, then searches for a compatible
2679 interface. If one is found, the expression node is replaced with
4a44a72d
DK
2680 the appropriate function call.
2681 real_error is an additional output argument that specifies if FAILURE
2682 is because of some real error and not because no match was found. */
6de9cd9a 2683
17b1d2a0 2684gfc_try
4a44a72d 2685gfc_extend_expr (gfc_expr *e, bool *real_error)
6de9cd9a
DN
2686{
2687 gfc_actual_arglist *actual;
2688 gfc_symbol *sym;
2689 gfc_namespace *ns;
2690 gfc_user_op *uop;
2691 gfc_intrinsic_op i;
2692
2693 sym = NULL;
2694
2695 actual = gfc_get_actual_arglist ();
58b03ab2 2696 actual->expr = e->value.op.op1;
6de9cd9a 2697
4a44a72d
DK
2698 *real_error = false;
2699
58b03ab2 2700 if (e->value.op.op2 != NULL)
6de9cd9a
DN
2701 {
2702 actual->next = gfc_get_actual_arglist ();
58b03ab2 2703 actual->next->expr = e->value.op.op2;
6de9cd9a
DN
2704 }
2705
e8d4f3fc 2706 i = fold_unary_intrinsic (e->value.op.op);
6de9cd9a
DN
2707
2708 if (i == INTRINSIC_USER)
2709 {
2710 for (ns = gfc_current_ns; ns; ns = ns->parent)
2711 {
58b03ab2 2712 uop = gfc_find_uop (e->value.op.uop->name, ns);
6de9cd9a
DN
2713 if (uop == NULL)
2714 continue;
2715
a1ee985f 2716 sym = gfc_search_interface (uop->op, 0, &actual);
6de9cd9a
DN
2717 if (sym != NULL)
2718 break;
2719 }
2720 }
2721 else
2722 {
2723 for (ns = gfc_current_ns; ns; ns = ns->parent)
2724 {
3bed9dd0
DF
2725 /* Due to the distinction between '==' and '.eq.' and friends, one has
2726 to check if either is defined. */
2727 switch (i)
2728 {
4a44a72d
DK
2729#define CHECK_OS_COMPARISON(comp) \
2730 case INTRINSIC_##comp: \
2731 case INTRINSIC_##comp##_OS: \
2732 sym = gfc_search_interface (ns->op[INTRINSIC_##comp], 0, &actual); \
2733 if (!sym) \
2734 sym = gfc_search_interface (ns->op[INTRINSIC_##comp##_OS], 0, &actual); \
2735 break;
2736 CHECK_OS_COMPARISON(EQ)
2737 CHECK_OS_COMPARISON(NE)
2738 CHECK_OS_COMPARISON(GT)
2739 CHECK_OS_COMPARISON(GE)
2740 CHECK_OS_COMPARISON(LT)
2741 CHECK_OS_COMPARISON(LE)
2742#undef CHECK_OS_COMPARISON
3bed9dd0
DF
2743
2744 default:
a1ee985f 2745 sym = gfc_search_interface (ns->op[i], 0, &actual);
3bed9dd0
DF
2746 }
2747
6de9cd9a
DN
2748 if (sym != NULL)
2749 break;
2750 }
2751 }
2752
4a44a72d
DK
2753 /* TODO: Do an ambiguity-check and error if multiple matching interfaces are
2754 found rather than just taking the first one and not checking further. */
2755
6de9cd9a
DN
2756 if (sym == NULL)
2757 {
4a44a72d
DK
2758 gfc_typebound_proc* tbo;
2759 gfc_expr* tb_base;
2760
2761 /* See if we find a matching type-bound operator. */
2762 if (i == INTRINSIC_USER)
2763 tbo = matching_typebound_op (&tb_base, actual,
2764 i, e->value.op.uop->name);
2765 else
2766 switch (i)
2767 {
2768#define CHECK_OS_COMPARISON(comp) \
2769 case INTRINSIC_##comp: \
2770 case INTRINSIC_##comp##_OS: \
2771 tbo = matching_typebound_op (&tb_base, actual, \
2772 INTRINSIC_##comp, NULL); \
2773 if (!tbo) \
2774 tbo = matching_typebound_op (&tb_base, actual, \
2775 INTRINSIC_##comp##_OS, NULL); \
2776 break;
2777 CHECK_OS_COMPARISON(EQ)
2778 CHECK_OS_COMPARISON(NE)
2779 CHECK_OS_COMPARISON(GT)
2780 CHECK_OS_COMPARISON(GE)
2781 CHECK_OS_COMPARISON(LT)
2782 CHECK_OS_COMPARISON(LE)
2783#undef CHECK_OS_COMPARISON
2784
2785 default:
2786 tbo = matching_typebound_op (&tb_base, actual, i, NULL);
2787 break;
2788 }
2789
2790 /* If there is a matching typebound-operator, replace the expression with
2791 a call to it and succeed. */
2792 if (tbo)
2793 {
2794 gfc_try result;
2795
2796 gcc_assert (tb_base);
2797 build_compcall_for_operator (e, actual, tb_base, tbo);
2798
2799 result = gfc_resolve_expr (e);
2800 if (result == FAILURE)
2801 *real_error = true;
2802
2803 return result;
2804 }
2805
66e4ab31 2806 /* Don't use gfc_free_actual_arglist(). */
6de9cd9a
DN
2807 if (actual->next != NULL)
2808 gfc_free (actual->next);
2809 gfc_free (actual);
2810
2811 return FAILURE;
2812 }
2813
2814 /* Change the expression node to a function call. */
2815 e->expr_type = EXPR_FUNCTION;
f6fad28e 2816 e->symtree = gfc_find_sym_in_symtree (sym);
6de9cd9a 2817 e->value.function.actual = actual;
58b03ab2
TS
2818 e->value.function.esym = NULL;
2819 e->value.function.isym = NULL;
cf013e9f 2820 e->value.function.name = NULL;
a1ab6660 2821 e->user_operator = 1;
6de9cd9a 2822
4a44a72d 2823 if (gfc_resolve_expr (e) == FAILURE)
6de9cd9a 2824 {
4a44a72d 2825 *real_error = true;
6de9cd9a
DN
2826 return FAILURE;
2827 }
2828
6de9cd9a
DN
2829 return SUCCESS;
2830}
2831
2832
2833/* Tries to replace an assignment code node with a subroutine call to
2834 the subroutine associated with the assignment operator. Return
2835 SUCCESS if the node was replaced. On FAILURE, no error is
2836 generated. */
2837
17b1d2a0 2838gfc_try
b251af97 2839gfc_extend_assign (gfc_code *c, gfc_namespace *ns)
6de9cd9a
DN
2840{
2841 gfc_actual_arglist *actual;
2842 gfc_expr *lhs, *rhs;
2843 gfc_symbol *sym;
2844
a513927a 2845 lhs = c->expr1;
6de9cd9a
DN
2846 rhs = c->expr2;
2847
2848 /* Don't allow an intrinsic assignment to be replaced. */
4b7dd692 2849 if (lhs->ts.type != BT_DERIVED && lhs->ts.type != BT_CLASS
e19bb186 2850 && (rhs->rank == 0 || rhs->rank == lhs->rank)
6de9cd9a 2851 && (lhs->ts.type == rhs->ts.type
b251af97 2852 || (gfc_numeric_ts (&lhs->ts) && gfc_numeric_ts (&rhs->ts))))
6de9cd9a
DN
2853 return FAILURE;
2854
2855 actual = gfc_get_actual_arglist ();
2856 actual->expr = lhs;
2857
2858 actual->next = gfc_get_actual_arglist ();
2859 actual->next->expr = rhs;
2860
2861 sym = NULL;
2862
2863 for (; ns; ns = ns->parent)
2864 {
a1ee985f 2865 sym = gfc_search_interface (ns->op[INTRINSIC_ASSIGN], 1, &actual);
6de9cd9a
DN
2866 if (sym != NULL)
2867 break;
2868 }
2869
4a44a72d
DK
2870 /* TODO: Ambiguity-check, see above for gfc_extend_expr. */
2871
6de9cd9a
DN
2872 if (sym == NULL)
2873 {
4a44a72d
DK
2874 gfc_typebound_proc* tbo;
2875 gfc_expr* tb_base;
2876
2877 /* See if we find a matching type-bound assignment. */
2878 tbo = matching_typebound_op (&tb_base, actual,
2879 INTRINSIC_ASSIGN, NULL);
2880
2881 /* If there is one, replace the expression with a call to it and
2882 succeed. */
2883 if (tbo)
2884 {
2885 gcc_assert (tb_base);
2886 c->expr1 = gfc_get_expr ();
2887 build_compcall_for_operator (c->expr1, actual, tb_base, tbo);
2888 c->expr1->value.compcall.assign = 1;
2889 c->expr2 = NULL;
2890 c->op = EXEC_COMPCALL;
2891
2892 /* c is resolved from the caller, so no need to do it here. */
2893
2894 return SUCCESS;
2895 }
2896
6de9cd9a
DN
2897 gfc_free (actual->next);
2898 gfc_free (actual);
2899 return FAILURE;
2900 }
2901
2902 /* Replace the assignment with the call. */
476220e7 2903 c->op = EXEC_ASSIGN_CALL;
f6fad28e 2904 c->symtree = gfc_find_sym_in_symtree (sym);
a513927a 2905 c->expr1 = NULL;
6de9cd9a
DN
2906 c->expr2 = NULL;
2907 c->ext.actual = actual;
2908
6de9cd9a
DN
2909 return SUCCESS;
2910}
2911
2912
2913/* Make sure that the interface just parsed is not already present in
2914 the given interface list. Ambiguity isn't checked yet since module
2915 procedures can be present without interfaces. */
2916
17b1d2a0 2917static gfc_try
7b901ac4 2918check_new_interface (gfc_interface *base, gfc_symbol *new_sym)
6de9cd9a
DN
2919{
2920 gfc_interface *ip;
2921
2922 for (ip = base; ip; ip = ip->next)
2923 {
7b901ac4 2924 if (ip->sym == new_sym)
6de9cd9a
DN
2925 {
2926 gfc_error ("Entity '%s' at %C is already present in the interface",
7b901ac4 2927 new_sym->name);
6de9cd9a
DN
2928 return FAILURE;
2929 }
2930 }
2931
2932 return SUCCESS;
2933}
2934
2935
2936/* Add a symbol to the current interface. */
2937
17b1d2a0 2938gfc_try
7b901ac4 2939gfc_add_interface (gfc_symbol *new_sym)
6de9cd9a
DN
2940{
2941 gfc_interface **head, *intr;
2942 gfc_namespace *ns;
2943 gfc_symbol *sym;
2944
2945 switch (current_interface.type)
2946 {
2947 case INTERFACE_NAMELESS:
9e1d712c 2948 case INTERFACE_ABSTRACT:
6de9cd9a
DN
2949 return SUCCESS;
2950
2951 case INTERFACE_INTRINSIC_OP:
2952 for (ns = current_interface.ns; ns; ns = ns->parent)
3bed9dd0
DF
2953 switch (current_interface.op)
2954 {
2955 case INTRINSIC_EQ:
2956 case INTRINSIC_EQ_OS:
7b901ac4
KG
2957 if (check_new_interface (ns->op[INTRINSIC_EQ], new_sym) == FAILURE ||
2958 check_new_interface (ns->op[INTRINSIC_EQ_OS], new_sym) == FAILURE)
3bed9dd0
DF
2959 return FAILURE;
2960 break;
2961
2962 case INTRINSIC_NE:
2963 case INTRINSIC_NE_OS:
7b901ac4
KG
2964 if (check_new_interface (ns->op[INTRINSIC_NE], new_sym) == FAILURE ||
2965 check_new_interface (ns->op[INTRINSIC_NE_OS], new_sym) == FAILURE)
3bed9dd0
DF
2966 return FAILURE;
2967 break;
2968
2969 case INTRINSIC_GT:
2970 case INTRINSIC_GT_OS:
7b901ac4
KG
2971 if (check_new_interface (ns->op[INTRINSIC_GT], new_sym) == FAILURE ||
2972 check_new_interface (ns->op[INTRINSIC_GT_OS], new_sym) == FAILURE)
3bed9dd0
DF
2973 return FAILURE;
2974 break;
2975
2976 case INTRINSIC_GE:
2977 case INTRINSIC_GE_OS:
7b901ac4
KG
2978 if (check_new_interface (ns->op[INTRINSIC_GE], new_sym) == FAILURE ||
2979 check_new_interface (ns->op[INTRINSIC_GE_OS], new_sym) == FAILURE)
3bed9dd0
DF
2980 return FAILURE;
2981 break;
2982
2983 case INTRINSIC_LT:
2984 case INTRINSIC_LT_OS:
7b901ac4
KG
2985 if (check_new_interface (ns->op[INTRINSIC_LT], new_sym) == FAILURE ||
2986 check_new_interface (ns->op[INTRINSIC_LT_OS], new_sym) == FAILURE)
3bed9dd0
DF
2987 return FAILURE;
2988 break;
2989
2990 case INTRINSIC_LE:
2991 case INTRINSIC_LE_OS:
7b901ac4
KG
2992 if (check_new_interface (ns->op[INTRINSIC_LE], new_sym) == FAILURE ||
2993 check_new_interface (ns->op[INTRINSIC_LE_OS], new_sym) == FAILURE)
3bed9dd0
DF
2994 return FAILURE;
2995 break;
2996
2997 default:
7b901ac4 2998 if (check_new_interface (ns->op[current_interface.op], new_sym) == FAILURE)
3bed9dd0
DF
2999 return FAILURE;
3000 }
6de9cd9a 3001
a1ee985f 3002 head = &current_interface.ns->op[current_interface.op];
6de9cd9a
DN
3003 break;
3004
3005 case INTERFACE_GENERIC:
3006 for (ns = current_interface.ns; ns; ns = ns->parent)
3007 {
3008 gfc_find_symbol (current_interface.sym->name, ns, 0, &sym);
3009 if (sym == NULL)
3010 continue;
3011
7b901ac4 3012 if (check_new_interface (sym->generic, new_sym) == FAILURE)
6de9cd9a
DN
3013 return FAILURE;
3014 }
3015
3016 head = &current_interface.sym->generic;
3017 break;
3018
3019 case INTERFACE_USER_OP:
7b901ac4 3020 if (check_new_interface (current_interface.uop->op, new_sym)
b251af97 3021 == FAILURE)
6de9cd9a
DN
3022 return FAILURE;
3023
a1ee985f 3024 head = &current_interface.uop->op;
6de9cd9a
DN
3025 break;
3026
3027 default:
3028 gfc_internal_error ("gfc_add_interface(): Bad interface type");
3029 }
3030
3031 intr = gfc_get_interface ();
7b901ac4 3032 intr->sym = new_sym;
63645982 3033 intr->where = gfc_current_locus;
6de9cd9a
DN
3034
3035 intr->next = *head;
3036 *head = intr;
3037
3038 return SUCCESS;
3039}
3040
3041
2b77e908
FXC
3042gfc_interface *
3043gfc_current_interface_head (void)
3044{
3045 switch (current_interface.type)
3046 {
3047 case INTERFACE_INTRINSIC_OP:
a1ee985f 3048 return current_interface.ns->op[current_interface.op];
2b77e908
FXC
3049 break;
3050
3051 case INTERFACE_GENERIC:
3052 return current_interface.sym->generic;
3053 break;
3054
3055 case INTERFACE_USER_OP:
a1ee985f 3056 return current_interface.uop->op;
2b77e908
FXC
3057 break;
3058
3059 default:
3060 gcc_unreachable ();
3061 }
3062}
3063
3064
3065void
3066gfc_set_current_interface_head (gfc_interface *i)
3067{
3068 switch (current_interface.type)
3069 {
3070 case INTERFACE_INTRINSIC_OP:
a1ee985f 3071 current_interface.ns->op[current_interface.op] = i;
2b77e908
FXC
3072 break;
3073
3074 case INTERFACE_GENERIC:
3075 current_interface.sym->generic = i;
3076 break;
3077
3078 case INTERFACE_USER_OP:
a1ee985f 3079 current_interface.uop->op = i;
2b77e908
FXC
3080 break;
3081
3082 default:
3083 gcc_unreachable ();
3084 }
3085}
3086
3087
6de9cd9a
DN
3088/* Gets rid of a formal argument list. We do not free symbols.
3089 Symbols are freed when a namespace is freed. */
3090
3091void
b251af97 3092gfc_free_formal_arglist (gfc_formal_arglist *p)
6de9cd9a
DN
3093{
3094 gfc_formal_arglist *q;
3095
3096 for (; p; p = q)
3097 {
3098 q = p->next;
3099 gfc_free (p);
3100 }
3101}