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[official-gcc.git] / gcc / fortran / resolve.c
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1 /* Perform type resolution on the various structures.
2 Copyright (C) 2001-2018 Free Software Foundation, Inc.
3 Contributed by Andy Vaught
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify it under
8 the terms of the GNU General Public License as published by the Free
9 Software Foundation; either version 3, or (at your option) any later
10 version.
12 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
13 WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
15 for more details.
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING3. If not see
19 <http://www.gnu.org/licenses/>. */
21 #include "config.h"
22 #include "system.h"
23 #include "coretypes.h"
24 #include "options.h"
25 #include "bitmap.h"
26 #include "gfortran.h"
27 #include "arith.h" /* For gfc_compare_expr(). */
28 #include "dependency.h"
29 #include "data.h"
30 #include "target-memory.h" /* for gfc_simplify_transfer */
31 #include "constructor.h"
33 /* Types used in equivalence statements. */
35 enum seq_type
37 SEQ_NONDEFAULT, SEQ_NUMERIC, SEQ_CHARACTER, SEQ_MIXED
40 /* Stack to keep track of the nesting of blocks as we move through the
41 code. See resolve_branch() and gfc_resolve_code(). */
43 typedef struct code_stack
45 struct gfc_code *head, *current;
46 struct code_stack *prev;
48 /* This bitmap keeps track of the targets valid for a branch from
49 inside this block except for END {IF|SELECT}s of enclosing
50 blocks. */
51 bitmap reachable_labels;
53 code_stack;
55 static code_stack *cs_base = NULL;
58 /* Nonzero if we're inside a FORALL or DO CONCURRENT block. */
60 static int forall_flag;
61 int gfc_do_concurrent_flag;
63 /* True when we are resolving an expression that is an actual argument to
64 a procedure. */
65 static bool actual_arg = false;
66 /* True when we are resolving an expression that is the first actual argument
67 to a procedure. */
68 static bool first_actual_arg = false;
71 /* Nonzero if we're inside a OpenMP WORKSHARE or PARALLEL WORKSHARE block. */
73 static int omp_workshare_flag;
75 /* True if we are processing a formal arglist. The corresponding function
76 resets the flag each time that it is read. */
77 static bool formal_arg_flag = false;
79 /* True if we are resolving a specification expression. */
80 static bool specification_expr = false;
82 /* The id of the last entry seen. */
83 static int current_entry_id;
85 /* We use bitmaps to determine if a branch target is valid. */
86 static bitmap_obstack labels_obstack;
88 /* True when simplifying a EXPR_VARIABLE argument to an inquiry function. */
89 static bool inquiry_argument = false;
92 bool
93 gfc_is_formal_arg (void)
95 return formal_arg_flag;
98 /* Is the symbol host associated? */
99 static bool
100 is_sym_host_assoc (gfc_symbol *sym, gfc_namespace *ns)
102 for (ns = ns->parent; ns; ns = ns->parent)
104 if (sym->ns == ns)
105 return true;
108 return false;
111 /* Ensure a typespec used is valid; for instance, TYPE(t) is invalid if t is
112 an ABSTRACT derived-type. If where is not NULL, an error message with that
113 locus is printed, optionally using name. */
115 static bool
116 resolve_typespec_used (gfc_typespec* ts, locus* where, const char* name)
118 if (ts->type == BT_DERIVED && ts->u.derived->attr.abstract)
120 if (where)
122 if (name)
123 gfc_error ("%qs at %L is of the ABSTRACT type %qs",
124 name, where, ts->u.derived->name);
125 else
126 gfc_error ("ABSTRACT type %qs used at %L",
127 ts->u.derived->name, where);
130 return false;
133 return true;
137 static bool
138 check_proc_interface (gfc_symbol *ifc, locus *where)
140 /* Several checks for F08:C1216. */
141 if (ifc->attr.procedure)
143 gfc_error ("Interface %qs at %L is declared "
144 "in a later PROCEDURE statement", ifc->name, where);
145 return false;
147 if (ifc->generic)
149 /* For generic interfaces, check if there is
150 a specific procedure with the same name. */
151 gfc_interface *gen = ifc->generic;
152 while (gen && strcmp (gen->sym->name, ifc->name) != 0)
153 gen = gen->next;
154 if (!gen)
156 gfc_error ("Interface %qs at %L may not be generic",
157 ifc->name, where);
158 return false;
161 if (ifc->attr.proc == PROC_ST_FUNCTION)
163 gfc_error ("Interface %qs at %L may not be a statement function",
164 ifc->name, where);
165 return false;
167 if (gfc_is_intrinsic (ifc, 0, ifc->declared_at)
168 || gfc_is_intrinsic (ifc, 1, ifc->declared_at))
169 ifc->attr.intrinsic = 1;
170 if (ifc->attr.intrinsic && !gfc_intrinsic_actual_ok (ifc->name, 0))
172 gfc_error ("Intrinsic procedure %qs not allowed in "
173 "PROCEDURE statement at %L", ifc->name, where);
174 return false;
176 if (!ifc->attr.if_source && !ifc->attr.intrinsic && ifc->name[0] != '\0')
178 gfc_error ("Interface %qs at %L must be explicit", ifc->name, where);
179 return false;
181 return true;
185 static void resolve_symbol (gfc_symbol *sym);
188 /* Resolve the interface for a PROCEDURE declaration or procedure pointer. */
190 static bool
191 resolve_procedure_interface (gfc_symbol *sym)
193 gfc_symbol *ifc = sym->ts.interface;
195 if (!ifc)
196 return true;
198 if (ifc == sym)
200 gfc_error ("PROCEDURE %qs at %L may not be used as its own interface",
201 sym->name, &sym->declared_at);
202 return false;
204 if (!check_proc_interface (ifc, &sym->declared_at))
205 return false;
207 if (ifc->attr.if_source || ifc->attr.intrinsic)
209 /* Resolve interface and copy attributes. */
210 resolve_symbol (ifc);
211 if (ifc->attr.intrinsic)
212 gfc_resolve_intrinsic (ifc, &ifc->declared_at);
214 if (ifc->result)
216 sym->ts = ifc->result->ts;
217 sym->attr.allocatable = ifc->result->attr.allocatable;
218 sym->attr.pointer = ifc->result->attr.pointer;
219 sym->attr.dimension = ifc->result->attr.dimension;
220 sym->attr.class_ok = ifc->result->attr.class_ok;
221 sym->as = gfc_copy_array_spec (ifc->result->as);
222 sym->result = sym;
224 else
226 sym->ts = ifc->ts;
227 sym->attr.allocatable = ifc->attr.allocatable;
228 sym->attr.pointer = ifc->attr.pointer;
229 sym->attr.dimension = ifc->attr.dimension;
230 sym->attr.class_ok = ifc->attr.class_ok;
231 sym->as = gfc_copy_array_spec (ifc->as);
233 sym->ts.interface = ifc;
234 sym->attr.function = ifc->attr.function;
235 sym->attr.subroutine = ifc->attr.subroutine;
237 sym->attr.pure = ifc->attr.pure;
238 sym->attr.elemental = ifc->attr.elemental;
239 sym->attr.contiguous = ifc->attr.contiguous;
240 sym->attr.recursive = ifc->attr.recursive;
241 sym->attr.always_explicit = ifc->attr.always_explicit;
242 sym->attr.ext_attr |= ifc->attr.ext_attr;
243 sym->attr.is_bind_c = ifc->attr.is_bind_c;
244 /* Copy char length. */
245 if (ifc->ts.type == BT_CHARACTER && ifc->ts.u.cl)
247 sym->ts.u.cl = gfc_new_charlen (sym->ns, ifc->ts.u.cl);
248 if (sym->ts.u.cl->length && !sym->ts.u.cl->resolved
249 && !gfc_resolve_expr (sym->ts.u.cl->length))
250 return false;
254 return true;
258 /* Resolve types of formal argument lists. These have to be done early so that
259 the formal argument lists of module procedures can be copied to the
260 containing module before the individual procedures are resolved
261 individually. We also resolve argument lists of procedures in interface
262 blocks because they are self-contained scoping units.
264 Since a dummy argument cannot be a non-dummy procedure, the only
265 resort left for untyped names are the IMPLICIT types. */
267 static void
268 resolve_formal_arglist (gfc_symbol *proc)
270 gfc_formal_arglist *f;
271 gfc_symbol *sym;
272 bool saved_specification_expr;
273 int i;
275 if (proc->result != NULL)
276 sym = proc->result;
277 else
278 sym = proc;
280 if (gfc_elemental (proc)
281 || sym->attr.pointer || sym->attr.allocatable
282 || (sym->as && sym->as->rank != 0))
284 proc->attr.always_explicit = 1;
285 sym->attr.always_explicit = 1;
288 formal_arg_flag = true;
290 for (f = proc->formal; f; f = f->next)
292 gfc_array_spec *as;
294 sym = f->sym;
296 if (sym == NULL)
298 /* Alternate return placeholder. */
299 if (gfc_elemental (proc))
300 gfc_error ("Alternate return specifier in elemental subroutine "
301 "%qs at %L is not allowed", proc->name,
302 &proc->declared_at);
303 if (proc->attr.function)
304 gfc_error ("Alternate return specifier in function "
305 "%qs at %L is not allowed", proc->name,
306 &proc->declared_at);
307 continue;
309 else if (sym->attr.procedure && sym->attr.if_source != IFSRC_DECL
310 && !resolve_procedure_interface (sym))
311 return;
313 if (strcmp (proc->name, sym->name) == 0)
315 gfc_error ("Self-referential argument "
316 "%qs at %L is not allowed", sym->name,
317 &proc->declared_at);
318 return;
321 if (sym->attr.if_source != IFSRC_UNKNOWN)
322 resolve_formal_arglist (sym);
324 if (sym->attr.subroutine || sym->attr.external)
326 if (sym->attr.flavor == FL_UNKNOWN)
327 gfc_add_flavor (&sym->attr, FL_PROCEDURE, sym->name, &sym->declared_at);
329 else
331 if (sym->ts.type == BT_UNKNOWN && !proc->attr.intrinsic
332 && (!sym->attr.function || sym->result == sym))
333 gfc_set_default_type (sym, 1, sym->ns);
336 as = sym->ts.type == BT_CLASS && sym->attr.class_ok
337 ? CLASS_DATA (sym)->as : sym->as;
339 saved_specification_expr = specification_expr;
340 specification_expr = true;
341 gfc_resolve_array_spec (as, 0);
342 specification_expr = saved_specification_expr;
344 /* We can't tell if an array with dimension (:) is assumed or deferred
345 shape until we know if it has the pointer or allocatable attributes.
347 if (as && as->rank > 0 && as->type == AS_DEFERRED
348 && ((sym->ts.type != BT_CLASS
349 && !(sym->attr.pointer || sym->attr.allocatable))
350 || (sym->ts.type == BT_CLASS
351 && !(CLASS_DATA (sym)->attr.class_pointer
352 || CLASS_DATA (sym)->attr.allocatable)))
353 && sym->attr.flavor != FL_PROCEDURE)
355 as->type = AS_ASSUMED_SHAPE;
356 for (i = 0; i < as->rank; i++)
357 as->lower[i] = gfc_get_int_expr (gfc_default_integer_kind, NULL, 1);
360 if ((as && as->rank > 0 && as->type == AS_ASSUMED_SHAPE)
361 || (as && as->type == AS_ASSUMED_RANK)
362 || sym->attr.pointer || sym->attr.allocatable || sym->attr.target
363 || (sym->ts.type == BT_CLASS && sym->attr.class_ok
364 && (CLASS_DATA (sym)->attr.class_pointer
365 || CLASS_DATA (sym)->attr.allocatable
366 || CLASS_DATA (sym)->attr.target))
367 || sym->attr.optional)
369 proc->attr.always_explicit = 1;
370 if (proc->result)
371 proc->result->attr.always_explicit = 1;
374 /* If the flavor is unknown at this point, it has to be a variable.
375 A procedure specification would have already set the type. */
377 if (sym->attr.flavor == FL_UNKNOWN)
378 gfc_add_flavor (&sym->attr, FL_VARIABLE, sym->name, &sym->declared_at);
380 if (gfc_pure (proc))
382 if (sym->attr.flavor == FL_PROCEDURE)
384 /* F08:C1279. */
385 if (!gfc_pure (sym))
387 gfc_error ("Dummy procedure %qs of PURE procedure at %L must "
388 "also be PURE", sym->name, &sym->declared_at);
389 continue;
392 else if (!sym->attr.pointer)
394 if (proc->attr.function && sym->attr.intent != INTENT_IN)
396 if (sym->attr.value)
397 gfc_notify_std (GFC_STD_F2008, "Argument %qs"
398 " of pure function %qs at %L with VALUE "
399 "attribute but without INTENT(IN)",
400 sym->name, proc->name, &sym->declared_at);
401 else
402 gfc_error ("Argument %qs of pure function %qs at %L must "
403 "be INTENT(IN) or VALUE", sym->name, proc->name,
404 &sym->declared_at);
407 if (proc->attr.subroutine && sym->attr.intent == INTENT_UNKNOWN)
409 if (sym->attr.value)
410 gfc_notify_std (GFC_STD_F2008, "Argument %qs"
411 " of pure subroutine %qs at %L with VALUE "
412 "attribute but without INTENT", sym->name,
413 proc->name, &sym->declared_at);
414 else
415 gfc_error ("Argument %qs of pure subroutine %qs at %L "
416 "must have its INTENT specified or have the "
417 "VALUE attribute", sym->name, proc->name,
418 &sym->declared_at);
422 /* F08:C1278a. */
423 if (sym->ts.type == BT_CLASS && sym->attr.intent == INTENT_OUT)
425 gfc_error ("INTENT(OUT) argument %qs of pure procedure %qs at %L"
426 " may not be polymorphic", sym->name, proc->name,
427 &sym->declared_at);
428 continue;
432 if (proc->attr.implicit_pure)
434 if (sym->attr.flavor == FL_PROCEDURE)
436 if (!gfc_pure (sym))
437 proc->attr.implicit_pure = 0;
439 else if (!sym->attr.pointer)
441 if (proc->attr.function && sym->attr.intent != INTENT_IN
442 && !sym->value)
443 proc->attr.implicit_pure = 0;
445 if (proc->attr.subroutine && sym->attr.intent == INTENT_UNKNOWN
446 && !sym->value)
447 proc->attr.implicit_pure = 0;
451 if (gfc_elemental (proc))
453 /* F08:C1289. */
454 if (sym->attr.codimension
455 || (sym->ts.type == BT_CLASS && CLASS_DATA (sym)
456 && CLASS_DATA (sym)->attr.codimension))
458 gfc_error ("Coarray dummy argument %qs at %L to elemental "
459 "procedure", sym->name, &sym->declared_at);
460 continue;
463 if (sym->as || (sym->ts.type == BT_CLASS && CLASS_DATA (sym)
464 && CLASS_DATA (sym)->as))
466 gfc_error ("Argument %qs of elemental procedure at %L must "
467 "be scalar", sym->name, &sym->declared_at);
468 continue;
471 if (sym->attr.allocatable
472 || (sym->ts.type == BT_CLASS && CLASS_DATA (sym)
473 && CLASS_DATA (sym)->attr.allocatable))
475 gfc_error ("Argument %qs of elemental procedure at %L cannot "
476 "have the ALLOCATABLE attribute", sym->name,
477 &sym->declared_at);
478 continue;
481 if (sym->attr.pointer
482 || (sym->ts.type == BT_CLASS && CLASS_DATA (sym)
483 && CLASS_DATA (sym)->attr.class_pointer))
485 gfc_error ("Argument %qs of elemental procedure at %L cannot "
486 "have the POINTER attribute", sym->name,
487 &sym->declared_at);
488 continue;
491 if (sym->attr.flavor == FL_PROCEDURE)
493 gfc_error ("Dummy procedure %qs not allowed in elemental "
494 "procedure %qs at %L", sym->name, proc->name,
495 &sym->declared_at);
496 continue;
499 /* Fortran 2008 Corrigendum 1, C1290a. */
500 if (sym->attr.intent == INTENT_UNKNOWN && !sym->attr.value)
502 gfc_error ("Argument %qs of elemental procedure %qs at %L must "
503 "have its INTENT specified or have the VALUE "
504 "attribute", sym->name, proc->name,
505 &sym->declared_at);
506 continue;
510 /* Each dummy shall be specified to be scalar. */
511 if (proc->attr.proc == PROC_ST_FUNCTION)
513 if (sym->as != NULL)
515 /* F03:C1263 (R1238) The function-name and each dummy-arg-name
516 shall be specified, explicitly or implicitly, to be scalar. */
517 gfc_error ("Argument '%s' of statement function '%s' at %L "
518 "must be scalar", sym->name, proc->name,
519 &proc->declared_at);
520 continue;
523 if (sym->ts.type == BT_CHARACTER)
525 gfc_charlen *cl = sym->ts.u.cl;
526 if (!cl || !cl->length || cl->length->expr_type != EXPR_CONSTANT)
528 gfc_error ("Character-valued argument %qs of statement "
529 "function at %L must have constant length",
530 sym->name, &sym->declared_at);
531 continue;
536 formal_arg_flag = false;
540 /* Work function called when searching for symbols that have argument lists
541 associated with them. */
543 static void
544 find_arglists (gfc_symbol *sym)
546 if (sym->attr.if_source == IFSRC_UNKNOWN || sym->ns != gfc_current_ns
547 || gfc_fl_struct (sym->attr.flavor) || sym->attr.intrinsic)
548 return;
550 resolve_formal_arglist (sym);
554 /* Given a namespace, resolve all formal argument lists within the namespace.
557 static void
558 resolve_formal_arglists (gfc_namespace *ns)
560 if (ns == NULL)
561 return;
563 gfc_traverse_ns (ns, find_arglists);
567 static void
568 resolve_contained_fntype (gfc_symbol *sym, gfc_namespace *ns)
570 bool t;
572 if (sym && sym->attr.flavor == FL_PROCEDURE
573 && sym->ns->parent
574 && sym->ns->parent->proc_name
575 && sym->ns->parent->proc_name->attr.flavor == FL_PROCEDURE
576 && !strcmp (sym->name, sym->ns->parent->proc_name->name))
577 gfc_error ("Contained procedure %qs at %L has the same name as its "
578 "encompassing procedure", sym->name, &sym->declared_at);
580 /* If this namespace is not a function or an entry master function,
581 ignore it. */
582 if (! sym || !(sym->attr.function || sym->attr.flavor == FL_VARIABLE)
583 || sym->attr.entry_master)
584 return;
586 /* Try to find out of what the return type is. */
587 if (sym->result->ts.type == BT_UNKNOWN && sym->result->ts.interface == NULL)
589 t = gfc_set_default_type (sym->result, 0, ns);
591 if (!t && !sym->result->attr.untyped)
593 if (sym->result == sym)
594 gfc_error ("Contained function %qs at %L has no IMPLICIT type",
595 sym->name, &sym->declared_at);
596 else if (!sym->result->attr.proc_pointer)
597 gfc_error ("Result %qs of contained function %qs at %L has "
598 "no IMPLICIT type", sym->result->name, sym->name,
599 &sym->result->declared_at);
600 sym->result->attr.untyped = 1;
604 /* Fortran 2008 Draft Standard, page 535, C418, on type-param-value
605 type, lists the only ways a character length value of * can be used:
606 dummy arguments of procedures, named constants, function results and
607 in allocate statements if the allocate_object is an assumed length dummy
608 in external functions. Internal function results and results of module
609 procedures are not on this list, ergo, not permitted. */
611 if (sym->result->ts.type == BT_CHARACTER)
613 gfc_charlen *cl = sym->result->ts.u.cl;
614 if ((!cl || !cl->length) && !sym->result->ts.deferred)
616 /* See if this is a module-procedure and adapt error message
617 accordingly. */
618 bool module_proc;
619 gcc_assert (ns->parent && ns->parent->proc_name);
620 module_proc = (ns->parent->proc_name->attr.flavor == FL_MODULE);
622 gfc_error (module_proc
623 ? G_("Character-valued module procedure %qs at %L"
624 " must not be assumed length")
625 : G_("Character-valued internal function %qs at %L"
626 " must not be assumed length"),
627 sym->name, &sym->declared_at);
633 /* Add NEW_ARGS to the formal argument list of PROC, taking care not to
634 introduce duplicates. */
636 static void
637 merge_argument_lists (gfc_symbol *proc, gfc_formal_arglist *new_args)
639 gfc_formal_arglist *f, *new_arglist;
640 gfc_symbol *new_sym;
642 for (; new_args != NULL; new_args = new_args->next)
644 new_sym = new_args->sym;
645 /* See if this arg is already in the formal argument list. */
646 for (f = proc->formal; f; f = f->next)
648 if (new_sym == f->sym)
649 break;
652 if (f)
653 continue;
655 /* Add a new argument. Argument order is not important. */
656 new_arglist = gfc_get_formal_arglist ();
657 new_arglist->sym = new_sym;
658 new_arglist->next = proc->formal;
659 proc->formal = new_arglist;
664 /* Flag the arguments that are not present in all entries. */
666 static void
667 check_argument_lists (gfc_symbol *proc, gfc_formal_arglist *new_args)
669 gfc_formal_arglist *f, *head;
670 head = new_args;
672 for (f = proc->formal; f; f = f->next)
674 if (f->sym == NULL)
675 continue;
677 for (new_args = head; new_args; new_args = new_args->next)
679 if (new_args->sym == f->sym)
680 break;
683 if (new_args)
684 continue;
686 f->sym->attr.not_always_present = 1;
691 /* Resolve alternate entry points. If a symbol has multiple entry points we
692 create a new master symbol for the main routine, and turn the existing
693 symbol into an entry point. */
695 static void
696 resolve_entries (gfc_namespace *ns)
698 gfc_namespace *old_ns;
699 gfc_code *c;
700 gfc_symbol *proc;
701 gfc_entry_list *el;
702 char name[GFC_MAX_SYMBOL_LEN + 1];
703 static int master_count = 0;
705 if (ns->proc_name == NULL)
706 return;
708 /* No need to do anything if this procedure doesn't have alternate entry
709 points. */
710 if (!ns->entries)
711 return;
713 /* We may already have resolved alternate entry points. */
714 if (ns->proc_name->attr.entry_master)
715 return;
717 /* If this isn't a procedure something has gone horribly wrong. */
718 gcc_assert (ns->proc_name->attr.flavor == FL_PROCEDURE);
720 /* Remember the current namespace. */
721 old_ns = gfc_current_ns;
723 gfc_current_ns = ns;
725 /* Add the main entry point to the list of entry points. */
726 el = gfc_get_entry_list ();
727 el->sym = ns->proc_name;
728 el->id = 0;
729 el->next = ns->entries;
730 ns->entries = el;
731 ns->proc_name->attr.entry = 1;
733 /* If it is a module function, it needs to be in the right namespace
734 so that gfc_get_fake_result_decl can gather up the results. The
735 need for this arose in get_proc_name, where these beasts were
736 left in their own namespace, to keep prior references linked to
737 the entry declaration.*/
738 if (ns->proc_name->attr.function
739 && ns->parent && ns->parent->proc_name->attr.flavor == FL_MODULE)
740 el->sym->ns = ns;
742 /* Do the same for entries where the master is not a module
743 procedure. These are retained in the module namespace because
744 of the module procedure declaration. */
745 for (el = el->next; el; el = el->next)
746 if (el->sym->ns->proc_name->attr.flavor == FL_MODULE
747 && el->sym->attr.mod_proc)
748 el->sym->ns = ns;
749 el = ns->entries;
751 /* Add an entry statement for it. */
752 c = gfc_get_code (EXEC_ENTRY);
753 c->ext.entry = el;
754 c->next = ns->code;
755 ns->code = c;
757 /* Create a new symbol for the master function. */
758 /* Give the internal function a unique name (within this file).
759 Also include the function name so the user has some hope of figuring
760 out what is going on. */
761 snprintf (name, GFC_MAX_SYMBOL_LEN, "master.%d.%s",
762 master_count++, ns->proc_name->name);
763 gfc_get_ha_symbol (name, &proc);
764 gcc_assert (proc != NULL);
766 gfc_add_procedure (&proc->attr, PROC_INTERNAL, proc->name, NULL);
767 if (ns->proc_name->attr.subroutine)
768 gfc_add_subroutine (&proc->attr, proc->name, NULL);
769 else
771 gfc_symbol *sym;
772 gfc_typespec *ts, *fts;
773 gfc_array_spec *as, *fas;
774 gfc_add_function (&proc->attr, proc->name, NULL);
775 proc->result = proc;
776 fas = ns->entries->sym->as;
777 fas = fas ? fas : ns->entries->sym->result->as;
778 fts = &ns->entries->sym->result->ts;
779 if (fts->type == BT_UNKNOWN)
780 fts = gfc_get_default_type (ns->entries->sym->result->name, NULL);
781 for (el = ns->entries->next; el; el = el->next)
783 ts = &el->sym->result->ts;
784 as = el->sym->as;
785 as = as ? as : el->sym->result->as;
786 if (ts->type == BT_UNKNOWN)
787 ts = gfc_get_default_type (el->sym->result->name, NULL);
789 if (! gfc_compare_types (ts, fts)
790 || (el->sym->result->attr.dimension
791 != ns->entries->sym->result->attr.dimension)
792 || (el->sym->result->attr.pointer
793 != ns->entries->sym->result->attr.pointer))
794 break;
795 else if (as && fas && ns->entries->sym->result != el->sym->result
796 && gfc_compare_array_spec (as, fas) == 0)
797 gfc_error ("Function %s at %L has entries with mismatched "
798 "array specifications", ns->entries->sym->name,
799 &ns->entries->sym->declared_at);
800 /* The characteristics need to match and thus both need to have
801 the same string length, i.e. both len=*, or both len=4.
802 Having both len=<variable> is also possible, but difficult to
803 check at compile time. */
804 else if (ts->type == BT_CHARACTER && ts->u.cl && fts->u.cl
805 && (((ts->u.cl->length && !fts->u.cl->length)
806 ||(!ts->u.cl->length && fts->u.cl->length))
807 || (ts->u.cl->length
808 && ts->u.cl->length->expr_type
809 != fts->u.cl->length->expr_type)
810 || (ts->u.cl->length
811 && ts->u.cl->length->expr_type == EXPR_CONSTANT
812 && mpz_cmp (ts->u.cl->length->value.integer,
813 fts->u.cl->length->value.integer) != 0)))
814 gfc_notify_std (GFC_STD_GNU, "Function %s at %L with "
815 "entries returning variables of different "
816 "string lengths", ns->entries->sym->name,
817 &ns->entries->sym->declared_at);
820 if (el == NULL)
822 sym = ns->entries->sym->result;
823 /* All result types the same. */
824 proc->ts = *fts;
825 if (sym->attr.dimension)
826 gfc_set_array_spec (proc, gfc_copy_array_spec (sym->as), NULL);
827 if (sym->attr.pointer)
828 gfc_add_pointer (&proc->attr, NULL);
830 else
832 /* Otherwise the result will be passed through a union by
833 reference. */
834 proc->attr.mixed_entry_master = 1;
835 for (el = ns->entries; el; el = el->next)
837 sym = el->sym->result;
838 if (sym->attr.dimension)
840 if (el == ns->entries)
841 gfc_error ("FUNCTION result %s can't be an array in "
842 "FUNCTION %s at %L", sym->name,
843 ns->entries->sym->name, &sym->declared_at);
844 else
845 gfc_error ("ENTRY result %s can't be an array in "
846 "FUNCTION %s at %L", sym->name,
847 ns->entries->sym->name, &sym->declared_at);
849 else if (sym->attr.pointer)
851 if (el == ns->entries)
852 gfc_error ("FUNCTION result %s can't be a POINTER in "
853 "FUNCTION %s at %L", sym->name,
854 ns->entries->sym->name, &sym->declared_at);
855 else
856 gfc_error ("ENTRY result %s can't be a POINTER in "
857 "FUNCTION %s at %L", sym->name,
858 ns->entries->sym->name, &sym->declared_at);
860 else
862 ts = &sym->ts;
863 if (ts->type == BT_UNKNOWN)
864 ts = gfc_get_default_type (sym->name, NULL);
865 switch (ts->type)
867 case BT_INTEGER:
868 if (ts->kind == gfc_default_integer_kind)
869 sym = NULL;
870 break;
871 case BT_REAL:
872 if (ts->kind == gfc_default_real_kind
873 || ts->kind == gfc_default_double_kind)
874 sym = NULL;
875 break;
876 case BT_COMPLEX:
877 if (ts->kind == gfc_default_complex_kind)
878 sym = NULL;
879 break;
880 case BT_LOGICAL:
881 if (ts->kind == gfc_default_logical_kind)
882 sym = NULL;
883 break;
884 case BT_UNKNOWN:
885 /* We will issue error elsewhere. */
886 sym = NULL;
887 break;
888 default:
889 break;
891 if (sym)
893 if (el == ns->entries)
894 gfc_error ("FUNCTION result %s can't be of type %s "
895 "in FUNCTION %s at %L", sym->name,
896 gfc_typename (ts), ns->entries->sym->name,
897 &sym->declared_at);
898 else
899 gfc_error ("ENTRY result %s can't be of type %s "
900 "in FUNCTION %s at %L", sym->name,
901 gfc_typename (ts), ns->entries->sym->name,
902 &sym->declared_at);
908 proc->attr.access = ACCESS_PRIVATE;
909 proc->attr.entry_master = 1;
911 /* Merge all the entry point arguments. */
912 for (el = ns->entries; el; el = el->next)
913 merge_argument_lists (proc, el->sym->formal);
915 /* Check the master formal arguments for any that are not
916 present in all entry points. */
917 for (el = ns->entries; el; el = el->next)
918 check_argument_lists (proc, el->sym->formal);
920 /* Use the master function for the function body. */
921 ns->proc_name = proc;
923 /* Finalize the new symbols. */
924 gfc_commit_symbols ();
926 /* Restore the original namespace. */
927 gfc_current_ns = old_ns;
931 /* Resolve common variables. */
932 static void
933 resolve_common_vars (gfc_common_head *common_block, bool named_common)
935 gfc_symbol *csym = common_block->head;
937 for (; csym; csym = csym->common_next)
939 /* gfc_add_in_common may have been called before, but the reported errors
940 have been ignored to continue parsing.
941 We do the checks again here. */
942 if (!csym->attr.use_assoc)
943 gfc_add_in_common (&csym->attr, csym->name, &common_block->where);
945 if (csym->value || csym->attr.data)
947 if (!csym->ns->is_block_data)
948 gfc_notify_std (GFC_STD_GNU, "Variable %qs at %L is in COMMON "
949 "but only in BLOCK DATA initialization is "
950 "allowed", csym->name, &csym->declared_at);
951 else if (!named_common)
952 gfc_notify_std (GFC_STD_GNU, "Initialized variable %qs at %L is "
953 "in a blank COMMON but initialization is only "
954 "allowed in named common blocks", csym->name,
955 &csym->declared_at);
958 if (UNLIMITED_POLY (csym))
959 gfc_error_now ("%qs in cannot appear in COMMON at %L "
960 "[F2008:C5100]", csym->name, &csym->declared_at);
962 if (csym->ts.type != BT_DERIVED)
963 continue;
965 if (!(csym->ts.u.derived->attr.sequence
966 || csym->ts.u.derived->attr.is_bind_c))
967 gfc_error_now ("Derived type variable %qs in COMMON at %L "
968 "has neither the SEQUENCE nor the BIND(C) "
969 "attribute", csym->name, &csym->declared_at);
970 if (csym->ts.u.derived->attr.alloc_comp)
971 gfc_error_now ("Derived type variable %qs in COMMON at %L "
972 "has an ultimate component that is "
973 "allocatable", csym->name, &csym->declared_at);
974 if (gfc_has_default_initializer (csym->ts.u.derived))
975 gfc_error_now ("Derived type variable %qs in COMMON at %L "
976 "may not have default initializer", csym->name,
977 &csym->declared_at);
979 if (csym->attr.flavor == FL_UNKNOWN && !csym->attr.proc_pointer)
980 gfc_add_flavor (&csym->attr, FL_VARIABLE, csym->name, &csym->declared_at);
984 /* Resolve common blocks. */
985 static void
986 resolve_common_blocks (gfc_symtree *common_root)
988 gfc_symbol *sym;
989 gfc_gsymbol * gsym;
991 if (common_root == NULL)
992 return;
994 if (common_root->left)
995 resolve_common_blocks (common_root->left);
996 if (common_root->right)
997 resolve_common_blocks (common_root->right);
999 resolve_common_vars (common_root->n.common, true);
1001 if (!gfc_notify_std (GFC_STD_F2018_OBS, "COMMON block at %L",
1002 &common_root->n.common->where))
1003 return;
1005 /* The common name is a global name - in Fortran 2003 also if it has a
1006 C binding name, since Fortran 2008 only the C binding name is a global
1007 identifier. */
1008 if (!common_root->n.common->binding_label
1009 || gfc_notification_std (GFC_STD_F2008))
1011 gsym = gfc_find_gsymbol (gfc_gsym_root,
1012 common_root->n.common->name);
1014 if (gsym && gfc_notification_std (GFC_STD_F2008)
1015 && gsym->type == GSYM_COMMON
1016 && ((common_root->n.common->binding_label
1017 && (!gsym->binding_label
1018 || strcmp (common_root->n.common->binding_label,
1019 gsym->binding_label) != 0))
1020 || (!common_root->n.common->binding_label
1021 && gsym->binding_label)))
1023 gfc_error ("In Fortran 2003 COMMON %qs block at %L is a global "
1024 "identifier and must thus have the same binding name "
1025 "as the same-named COMMON block at %L: %s vs %s",
1026 common_root->n.common->name, &common_root->n.common->where,
1027 &gsym->where,
1028 common_root->n.common->binding_label
1029 ? common_root->n.common->binding_label : "(blank)",
1030 gsym->binding_label ? gsym->binding_label : "(blank)");
1031 return;
1034 if (gsym && gsym->type != GSYM_COMMON
1035 && !common_root->n.common->binding_label)
1037 gfc_error ("COMMON block %qs at %L uses the same global identifier "
1038 "as entity at %L",
1039 common_root->n.common->name, &common_root->n.common->where,
1040 &gsym->where);
1041 return;
1043 if (gsym && gsym->type != GSYM_COMMON)
1045 gfc_error ("Fortran 2008: COMMON block %qs with binding label at "
1046 "%L sharing the identifier with global non-COMMON-block "
1047 "entity at %L", common_root->n.common->name,
1048 &common_root->n.common->where, &gsym->where);
1049 return;
1051 if (!gsym)
1053 gsym = gfc_get_gsymbol (common_root->n.common->name);
1054 gsym->type = GSYM_COMMON;
1055 gsym->where = common_root->n.common->where;
1056 gsym->defined = 1;
1058 gsym->used = 1;
1061 if (common_root->n.common->binding_label)
1063 gsym = gfc_find_gsymbol (gfc_gsym_root,
1064 common_root->n.common->binding_label);
1065 if (gsym && gsym->type != GSYM_COMMON)
1067 gfc_error ("COMMON block at %L with binding label %qs uses the same "
1068 "global identifier as entity at %L",
1069 &common_root->n.common->where,
1070 common_root->n.common->binding_label, &gsym->where);
1071 return;
1073 if (!gsym)
1075 gsym = gfc_get_gsymbol (common_root->n.common->binding_label);
1076 gsym->type = GSYM_COMMON;
1077 gsym->where = common_root->n.common->where;
1078 gsym->defined = 1;
1080 gsym->used = 1;
1083 gfc_find_symbol (common_root->name, gfc_current_ns, 0, &sym);
1084 if (sym == NULL)
1085 return;
1087 if (sym->attr.flavor == FL_PARAMETER)
1088 gfc_error ("COMMON block %qs at %L is used as PARAMETER at %L",
1089 sym->name, &common_root->n.common->where, &sym->declared_at);
1091 if (sym->attr.external)
1092 gfc_error ("COMMON block %qs at %L can not have the EXTERNAL attribute",
1093 sym->name, &common_root->n.common->where);
1095 if (sym->attr.intrinsic)
1096 gfc_error ("COMMON block %qs at %L is also an intrinsic procedure",
1097 sym->name, &common_root->n.common->where);
1098 else if (sym->attr.result
1099 || gfc_is_function_return_value (sym, gfc_current_ns))
1100 gfc_notify_std (GFC_STD_F2003, "COMMON block %qs at %L "
1101 "that is also a function result", sym->name,
1102 &common_root->n.common->where);
1103 else if (sym->attr.flavor == FL_PROCEDURE && sym->attr.proc != PROC_INTERNAL
1104 && sym->attr.proc != PROC_ST_FUNCTION)
1105 gfc_notify_std (GFC_STD_F2003, "COMMON block %qs at %L "
1106 "that is also a global procedure", sym->name,
1107 &common_root->n.common->where);
1111 /* Resolve contained function types. Because contained functions can call one
1112 another, they have to be worked out before any of the contained procedures
1113 can be resolved.
1115 The good news is that if a function doesn't already have a type, the only
1116 way it can get one is through an IMPLICIT type or a RESULT variable, because
1117 by definition contained functions are contained namespace they're contained
1118 in, not in a sibling or parent namespace. */
1120 static void
1121 resolve_contained_functions (gfc_namespace *ns)
1123 gfc_namespace *child;
1124 gfc_entry_list *el;
1126 resolve_formal_arglists (ns);
1128 for (child = ns->contained; child; child = child->sibling)
1130 /* Resolve alternate entry points first. */
1131 resolve_entries (child);
1133 /* Then check function return types. */
1134 resolve_contained_fntype (child->proc_name, child);
1135 for (el = child->entries; el; el = el->next)
1136 resolve_contained_fntype (el->sym, child);
1142 /* A Parameterized Derived Type constructor must contain values for
1143 the PDT KIND parameters or they must have a default initializer.
1144 Go through the constructor picking out the KIND expressions,
1145 storing them in 'param_list' and then call gfc_get_pdt_instance
1146 to obtain the PDT instance. */
1148 static gfc_actual_arglist *param_list, *param_tail, *param;
1150 static bool
1151 get_pdt_spec_expr (gfc_component *c, gfc_expr *expr)
1153 param = gfc_get_actual_arglist ();
1154 if (!param_list)
1155 param_list = param_tail = param;
1156 else
1158 param_tail->next = param;
1159 param_tail = param_tail->next;
1162 param_tail->name = c->name;
1163 if (expr)
1164 param_tail->expr = gfc_copy_expr (expr);
1165 else if (c->initializer)
1166 param_tail->expr = gfc_copy_expr (c->initializer);
1167 else
1169 param_tail->spec_type = SPEC_ASSUMED;
1170 if (c->attr.pdt_kind)
1172 gfc_error ("The KIND parameter %qs in the PDT constructor "
1173 "at %C has no value", param->name);
1174 return false;
1178 return true;
1181 static bool
1182 get_pdt_constructor (gfc_expr *expr, gfc_constructor **constr,
1183 gfc_symbol *derived)
1185 gfc_constructor *cons = NULL;
1186 gfc_component *comp;
1187 bool t = true;
1189 if (expr && expr->expr_type == EXPR_STRUCTURE)
1190 cons = gfc_constructor_first (expr->value.constructor);
1191 else if (constr)
1192 cons = *constr;
1193 gcc_assert (cons);
1195 comp = derived->components;
1197 for (; comp && cons; comp = comp->next, cons = gfc_constructor_next (cons))
1199 if (cons->expr
1200 && cons->expr->expr_type == EXPR_STRUCTURE
1201 && comp->ts.type == BT_DERIVED)
1203 t = get_pdt_constructor (cons->expr, NULL, comp->ts.u.derived);
1204 if (!t)
1205 return t;
1207 else if (comp->ts.type == BT_DERIVED)
1209 t = get_pdt_constructor (NULL, &cons, comp->ts.u.derived);
1210 if (!t)
1211 return t;
1213 else if ((comp->attr.pdt_kind || comp->attr.pdt_len)
1214 && derived->attr.pdt_template)
1216 t = get_pdt_spec_expr (comp, cons->expr);
1217 if (!t)
1218 return t;
1221 return t;
1225 static bool resolve_fl_derived0 (gfc_symbol *sym);
1226 static bool resolve_fl_struct (gfc_symbol *sym);
1229 /* Resolve all of the elements of a structure constructor and make sure that
1230 the types are correct. The 'init' flag indicates that the given
1231 constructor is an initializer. */
1233 static bool
1234 resolve_structure_cons (gfc_expr *expr, int init)
1236 gfc_constructor *cons;
1237 gfc_component *comp;
1238 bool t;
1239 symbol_attribute a;
1241 t = true;
1243 if (expr->ts.type == BT_DERIVED || expr->ts.type == BT_UNION)
1245 if (expr->ts.u.derived->attr.flavor == FL_DERIVED)
1246 resolve_fl_derived0 (expr->ts.u.derived);
1247 else
1248 resolve_fl_struct (expr->ts.u.derived);
1250 /* If this is a Parameterized Derived Type template, find the
1251 instance corresponding to the PDT kind parameters. */
1252 if (expr->ts.u.derived->attr.pdt_template)
1254 param_list = NULL;
1255 t = get_pdt_constructor (expr, NULL, expr->ts.u.derived);
1256 if (!t)
1257 return t;
1258 gfc_get_pdt_instance (param_list, &expr->ts.u.derived, NULL);
1260 expr->param_list = gfc_copy_actual_arglist (param_list);
1262 if (param_list)
1263 gfc_free_actual_arglist (param_list);
1265 if (!expr->ts.u.derived->attr.pdt_type)
1266 return false;
1270 cons = gfc_constructor_first (expr->value.constructor);
1272 /* A constructor may have references if it is the result of substituting a
1273 parameter variable. In this case we just pull out the component we
1274 want. */
1275 if (expr->ref)
1276 comp = expr->ref->u.c.sym->components;
1277 else
1278 comp = expr->ts.u.derived->components;
1280 for (; comp && cons; comp = comp->next, cons = gfc_constructor_next (cons))
1282 int rank;
1284 if (!cons->expr)
1285 continue;
1287 /* Unions use an EXPR_NULL contrived expression to tell the translation
1288 phase to generate an initializer of the appropriate length.
1289 Ignore it here. */
1290 if (cons->expr->ts.type == BT_UNION && cons->expr->expr_type == EXPR_NULL)
1291 continue;
1293 if (!gfc_resolve_expr (cons->expr))
1295 t = false;
1296 continue;
1299 rank = comp->as ? comp->as->rank : 0;
1300 if (comp->ts.type == BT_CLASS
1301 && !comp->ts.u.derived->attr.unlimited_polymorphic
1302 && CLASS_DATA (comp)->as)
1303 rank = CLASS_DATA (comp)->as->rank;
1305 if (cons->expr->expr_type != EXPR_NULL && rank != cons->expr->rank
1306 && (comp->attr.allocatable || cons->expr->rank))
1308 gfc_error ("The rank of the element in the structure "
1309 "constructor at %L does not match that of the "
1310 "component (%d/%d)", &cons->expr->where,
1311 cons->expr->rank, rank);
1312 t = false;
1315 /* If we don't have the right type, try to convert it. */
1317 if (!comp->attr.proc_pointer &&
1318 !gfc_compare_types (&cons->expr->ts, &comp->ts))
1320 if (strcmp (comp->name, "_extends") == 0)
1322 /* Can afford to be brutal with the _extends initializer.
1323 The derived type can get lost because it is PRIVATE
1324 but it is not usage constrained by the standard. */
1325 cons->expr->ts = comp->ts;
1327 else if (comp->attr.pointer && cons->expr->ts.type != BT_UNKNOWN)
1329 gfc_error ("The element in the structure constructor at %L, "
1330 "for pointer component %qs, is %s but should be %s",
1331 &cons->expr->where, comp->name,
1332 gfc_basic_typename (cons->expr->ts.type),
1333 gfc_basic_typename (comp->ts.type));
1334 t = false;
1336 else
1338 bool t2 = gfc_convert_type (cons->expr, &comp->ts, 1);
1339 if (t)
1340 t = t2;
1344 /* For strings, the length of the constructor should be the same as
1345 the one of the structure, ensure this if the lengths are known at
1346 compile time and when we are dealing with PARAMETER or structure
1347 constructors. */
1348 if (cons->expr->ts.type == BT_CHARACTER && comp->ts.u.cl
1349 && comp->ts.u.cl->length
1350 && comp->ts.u.cl->length->expr_type == EXPR_CONSTANT
1351 && cons->expr->ts.u.cl && cons->expr->ts.u.cl->length
1352 && cons->expr->ts.u.cl->length->expr_type == EXPR_CONSTANT
1353 && cons->expr->rank != 0
1354 && mpz_cmp (cons->expr->ts.u.cl->length->value.integer,
1355 comp->ts.u.cl->length->value.integer) != 0)
1357 if (cons->expr->expr_type == EXPR_VARIABLE
1358 && cons->expr->symtree->n.sym->attr.flavor == FL_PARAMETER)
1360 /* Wrap the parameter in an array constructor (EXPR_ARRAY)
1361 to make use of the gfc_resolve_character_array_constructor
1362 machinery. The expression is later simplified away to
1363 an array of string literals. */
1364 gfc_expr *para = cons->expr;
1365 cons->expr = gfc_get_expr ();
1366 cons->expr->ts = para->ts;
1367 cons->expr->where = para->where;
1368 cons->expr->expr_type = EXPR_ARRAY;
1369 cons->expr->rank = para->rank;
1370 cons->expr->shape = gfc_copy_shape (para->shape, para->rank);
1371 gfc_constructor_append_expr (&cons->expr->value.constructor,
1372 para, &cons->expr->where);
1375 if (cons->expr->expr_type == EXPR_ARRAY)
1377 /* Rely on the cleanup of the namespace to deal correctly with
1378 the old charlen. (There was a block here that attempted to
1379 remove the charlen but broke the chain in so doing.) */
1380 cons->expr->ts.u.cl = gfc_new_charlen (gfc_current_ns, NULL);
1381 cons->expr->ts.u.cl->length_from_typespec = true;
1382 cons->expr->ts.u.cl->length = gfc_copy_expr (comp->ts.u.cl->length);
1383 gfc_resolve_character_array_constructor (cons->expr);
1387 if (cons->expr->expr_type == EXPR_NULL
1388 && !(comp->attr.pointer || comp->attr.allocatable
1389 || comp->attr.proc_pointer || comp->ts.f90_type == BT_VOID
1390 || (comp->ts.type == BT_CLASS
1391 && (CLASS_DATA (comp)->attr.class_pointer
1392 || CLASS_DATA (comp)->attr.allocatable))))
1394 t = false;
1395 gfc_error ("The NULL in the structure constructor at %L is "
1396 "being applied to component %qs, which is neither "
1397 "a POINTER nor ALLOCATABLE", &cons->expr->where,
1398 comp->name);
1401 if (comp->attr.proc_pointer && comp->ts.interface)
1403 /* Check procedure pointer interface. */
1404 gfc_symbol *s2 = NULL;
1405 gfc_component *c2;
1406 const char *name;
1407 char err[200];
1409 c2 = gfc_get_proc_ptr_comp (cons->expr);
1410 if (c2)
1412 s2 = c2->ts.interface;
1413 name = c2->name;
1415 else if (cons->expr->expr_type == EXPR_FUNCTION)
1417 s2 = cons->expr->symtree->n.sym->result;
1418 name = cons->expr->symtree->n.sym->result->name;
1420 else if (cons->expr->expr_type != EXPR_NULL)
1422 s2 = cons->expr->symtree->n.sym;
1423 name = cons->expr->symtree->n.sym->name;
1426 if (s2 && !gfc_compare_interfaces (comp->ts.interface, s2, name, 0, 1,
1427 err, sizeof (err), NULL, NULL))
1429 gfc_error_opt (OPT_Wargument_mismatch,
1430 "Interface mismatch for procedure-pointer "
1431 "component %qs in structure constructor at %L:"
1432 " %s", comp->name, &cons->expr->where, err);
1433 return false;
1437 if (!comp->attr.pointer || comp->attr.proc_pointer
1438 || cons->expr->expr_type == EXPR_NULL)
1439 continue;
1441 a = gfc_expr_attr (cons->expr);
1443 if (!a.pointer && !a.target)
1445 t = false;
1446 gfc_error ("The element in the structure constructor at %L, "
1447 "for pointer component %qs should be a POINTER or "
1448 "a TARGET", &cons->expr->where, comp->name);
1451 if (init)
1453 /* F08:C461. Additional checks for pointer initialization. */
1454 if (a.allocatable)
1456 t = false;
1457 gfc_error ("Pointer initialization target at %L "
1458 "must not be ALLOCATABLE", &cons->expr->where);
1460 if (!a.save)
1462 t = false;
1463 gfc_error ("Pointer initialization target at %L "
1464 "must have the SAVE attribute", &cons->expr->where);
1468 /* F2003, C1272 (3). */
1469 bool impure = cons->expr->expr_type == EXPR_VARIABLE
1470 && (gfc_impure_variable (cons->expr->symtree->n.sym)
1471 || gfc_is_coindexed (cons->expr));
1472 if (impure && gfc_pure (NULL))
1474 t = false;
1475 gfc_error ("Invalid expression in the structure constructor for "
1476 "pointer component %qs at %L in PURE procedure",
1477 comp->name, &cons->expr->where);
1480 if (impure)
1481 gfc_unset_implicit_pure (NULL);
1484 return t;
1488 /****************** Expression name resolution ******************/
1490 /* Returns 0 if a symbol was not declared with a type or
1491 attribute declaration statement, nonzero otherwise. */
1493 static int
1494 was_declared (gfc_symbol *sym)
1496 symbol_attribute a;
1498 a = sym->attr;
1500 if (!a.implicit_type && sym->ts.type != BT_UNKNOWN)
1501 return 1;
1503 if (a.allocatable || a.dimension || a.dummy || a.external || a.intrinsic
1504 || a.optional || a.pointer || a.save || a.target || a.volatile_
1505 || a.value || a.access != ACCESS_UNKNOWN || a.intent != INTENT_UNKNOWN
1506 || a.asynchronous || a.codimension)
1507 return 1;
1509 return 0;
1513 /* Determine if a symbol is generic or not. */
1515 static int
1516 generic_sym (gfc_symbol *sym)
1518 gfc_symbol *s;
1520 if (sym->attr.generic ||
1521 (sym->attr.intrinsic && gfc_generic_intrinsic (sym->name)))
1522 return 1;
1524 if (was_declared (sym) || sym->ns->parent == NULL)
1525 return 0;
1527 gfc_find_symbol (sym->name, sym->ns->parent, 1, &s);
1529 if (s != NULL)
1531 if (s == sym)
1532 return 0;
1533 else
1534 return generic_sym (s);
1537 return 0;
1541 /* Determine if a symbol is specific or not. */
1543 static int
1544 specific_sym (gfc_symbol *sym)
1546 gfc_symbol *s;
1548 if (sym->attr.if_source == IFSRC_IFBODY
1549 || sym->attr.proc == PROC_MODULE
1550 || sym->attr.proc == PROC_INTERNAL
1551 || sym->attr.proc == PROC_ST_FUNCTION
1552 || (sym->attr.intrinsic && gfc_specific_intrinsic (sym->name))
1553 || sym->attr.external)
1554 return 1;
1556 if (was_declared (sym) || sym->ns->parent == NULL)
1557 return 0;
1559 gfc_find_symbol (sym->name, sym->ns->parent, 1, &s);
1561 return (s == NULL) ? 0 : specific_sym (s);
1565 /* Figure out if the procedure is specific, generic or unknown. */
1567 enum proc_type
1568 { PTYPE_GENERIC = 1, PTYPE_SPECIFIC, PTYPE_UNKNOWN };
1570 static proc_type
1571 procedure_kind (gfc_symbol *sym)
1573 if (generic_sym (sym))
1574 return PTYPE_GENERIC;
1576 if (specific_sym (sym))
1577 return PTYPE_SPECIFIC;
1579 return PTYPE_UNKNOWN;
1582 /* Check references to assumed size arrays. The flag need_full_assumed_size
1583 is nonzero when matching actual arguments. */
1585 static int need_full_assumed_size = 0;
1587 static bool
1588 check_assumed_size_reference (gfc_symbol *sym, gfc_expr *e)
1590 if (need_full_assumed_size || !(sym->as && sym->as->type == AS_ASSUMED_SIZE))
1591 return false;
1593 /* FIXME: The comparison "e->ref->u.ar.type == AR_FULL" is wrong.
1594 What should it be? */
1595 if (e->ref && (e->ref->u.ar.end[e->ref->u.ar.as->rank - 1] == NULL)
1596 && (e->ref->u.ar.as->type == AS_ASSUMED_SIZE)
1597 && (e->ref->u.ar.type == AR_FULL))
1599 gfc_error ("The upper bound in the last dimension must "
1600 "appear in the reference to the assumed size "
1601 "array %qs at %L", sym->name, &e->where);
1602 return true;
1604 return false;
1608 /* Look for bad assumed size array references in argument expressions
1609 of elemental and array valued intrinsic procedures. Since this is
1610 called from procedure resolution functions, it only recurses at
1611 operators. */
1613 static bool
1614 resolve_assumed_size_actual (gfc_expr *e)
1616 if (e == NULL)
1617 return false;
1619 switch (e->expr_type)
1621 case EXPR_VARIABLE:
1622 if (e->symtree && check_assumed_size_reference (e->symtree->n.sym, e))
1623 return true;
1624 break;
1626 case EXPR_OP:
1627 if (resolve_assumed_size_actual (e->value.op.op1)
1628 || resolve_assumed_size_actual (e->value.op.op2))
1629 return true;
1630 break;
1632 default:
1633 break;
1635 return false;
1639 /* Check a generic procedure, passed as an actual argument, to see if
1640 there is a matching specific name. If none, it is an error, and if
1641 more than one, the reference is ambiguous. */
1642 static int
1643 count_specific_procs (gfc_expr *e)
1645 int n;
1646 gfc_interface *p;
1647 gfc_symbol *sym;
1649 n = 0;
1650 sym = e->symtree->n.sym;
1652 for (p = sym->generic; p; p = p->next)
1653 if (strcmp (sym->name, p->sym->name) == 0)
1655 e->symtree = gfc_find_symtree (p->sym->ns->sym_root,
1656 sym->name);
1657 n++;
1660 if (n > 1)
1661 gfc_error ("%qs at %L is ambiguous", e->symtree->n.sym->name,
1662 &e->where);
1664 if (n == 0)
1665 gfc_error ("GENERIC procedure %qs is not allowed as an actual "
1666 "argument at %L", sym->name, &e->where);
1668 return n;
1672 /* See if a call to sym could possibly be a not allowed RECURSION because of
1673 a missing RECURSIVE declaration. This means that either sym is the current
1674 context itself, or sym is the parent of a contained procedure calling its
1675 non-RECURSIVE containing procedure.
1676 This also works if sym is an ENTRY. */
1678 static bool
1679 is_illegal_recursion (gfc_symbol* sym, gfc_namespace* context)
1681 gfc_symbol* proc_sym;
1682 gfc_symbol* context_proc;
1683 gfc_namespace* real_context;
1685 if (sym->attr.flavor == FL_PROGRAM
1686 || gfc_fl_struct (sym->attr.flavor))
1687 return false;
1689 gcc_assert (sym->attr.flavor == FL_PROCEDURE);
1691 /* If we've got an ENTRY, find real procedure. */
1692 if (sym->attr.entry && sym->ns->entries)
1693 proc_sym = sym->ns->entries->sym;
1694 else
1695 proc_sym = sym;
1697 /* If sym is RECURSIVE, all is well of course. */
1698 if (proc_sym->attr.recursive || flag_recursive)
1699 return false;
1701 /* Find the context procedure's "real" symbol if it has entries.
1702 We look for a procedure symbol, so recurse on the parents if we don't
1703 find one (like in case of a BLOCK construct). */
1704 for (real_context = context; ; real_context = real_context->parent)
1706 /* We should find something, eventually! */
1707 gcc_assert (real_context);
1709 context_proc = (real_context->entries ? real_context->entries->sym
1710 : real_context->proc_name);
1712 /* In some special cases, there may not be a proc_name, like for this
1713 invalid code:
1714 real(bad_kind()) function foo () ...
1715 when checking the call to bad_kind ().
1716 In these cases, we simply return here and assume that the
1717 call is ok. */
1718 if (!context_proc)
1719 return false;
1721 if (context_proc->attr.flavor != FL_LABEL)
1722 break;
1725 /* A call from sym's body to itself is recursion, of course. */
1726 if (context_proc == proc_sym)
1727 return true;
1729 /* The same is true if context is a contained procedure and sym the
1730 containing one. */
1731 if (context_proc->attr.contained)
1733 gfc_symbol* parent_proc;
1735 gcc_assert (context->parent);
1736 parent_proc = (context->parent->entries ? context->parent->entries->sym
1737 : context->parent->proc_name);
1739 if (parent_proc == proc_sym)
1740 return true;
1743 return false;
1747 /* Resolve an intrinsic procedure: Set its function/subroutine attribute,
1748 its typespec and formal argument list. */
1750 bool
1751 gfc_resolve_intrinsic (gfc_symbol *sym, locus *loc)
1753 gfc_intrinsic_sym* isym = NULL;
1754 const char* symstd;
1756 if (sym->formal)
1757 return true;
1759 /* Already resolved. */
1760 if (sym->from_intmod && sym->ts.type != BT_UNKNOWN)
1761 return true;
1763 /* We already know this one is an intrinsic, so we don't call
1764 gfc_is_intrinsic for full checking but rather use gfc_find_function and
1765 gfc_find_subroutine directly to check whether it is a function or
1766 subroutine. */
1768 if (sym->intmod_sym_id && sym->attr.subroutine)
1770 gfc_isym_id id = gfc_isym_id_by_intmod_sym (sym);
1771 isym = gfc_intrinsic_subroutine_by_id (id);
1773 else if (sym->intmod_sym_id)
1775 gfc_isym_id id = gfc_isym_id_by_intmod_sym (sym);
1776 isym = gfc_intrinsic_function_by_id (id);
1778 else if (!sym->attr.subroutine)
1779 isym = gfc_find_function (sym->name);
1781 if (isym && !sym->attr.subroutine)
1783 if (sym->ts.type != BT_UNKNOWN && warn_surprising
1784 && !sym->attr.implicit_type)
1785 gfc_warning (OPT_Wsurprising,
1786 "Type specified for intrinsic function %qs at %L is"
1787 " ignored", sym->name, &sym->declared_at);
1789 if (!sym->attr.function &&
1790 !gfc_add_function(&sym->attr, sym->name, loc))
1791 return false;
1793 sym->ts = isym->ts;
1795 else if (isym || (isym = gfc_find_subroutine (sym->name)))
1797 if (sym->ts.type != BT_UNKNOWN && !sym->attr.implicit_type)
1799 gfc_error ("Intrinsic subroutine %qs at %L shall not have a type"
1800 " specifier", sym->name, &sym->declared_at);
1801 return false;
1804 if (!sym->attr.subroutine &&
1805 !gfc_add_subroutine(&sym->attr, sym->name, loc))
1806 return false;
1808 else
1810 gfc_error ("%qs declared INTRINSIC at %L does not exist", sym->name,
1811 &sym->declared_at);
1812 return false;
1815 gfc_copy_formal_args_intr (sym, isym, NULL);
1817 sym->attr.pure = isym->pure;
1818 sym->attr.elemental = isym->elemental;
1820 /* Check it is actually available in the standard settings. */
1821 if (!gfc_check_intrinsic_standard (isym, &symstd, false, sym->declared_at))
1823 gfc_error ("The intrinsic %qs declared INTRINSIC at %L is not "
1824 "available in the current standard settings but %s. Use "
1825 "an appropriate %<-std=*%> option or enable "
1826 "%<-fall-intrinsics%> in order to use it.",
1827 sym->name, &sym->declared_at, symstd);
1828 return false;
1831 return true;
1835 /* Resolve a procedure expression, like passing it to a called procedure or as
1836 RHS for a procedure pointer assignment. */
1838 static bool
1839 resolve_procedure_expression (gfc_expr* expr)
1841 gfc_symbol* sym;
1843 if (expr->expr_type != EXPR_VARIABLE)
1844 return true;
1845 gcc_assert (expr->symtree);
1847 sym = expr->symtree->n.sym;
1849 if (sym->attr.intrinsic)
1850 gfc_resolve_intrinsic (sym, &expr->where);
1852 if (sym->attr.flavor != FL_PROCEDURE
1853 || (sym->attr.function && sym->result == sym))
1854 return true;
1856 /* A non-RECURSIVE procedure that is used as procedure expression within its
1857 own body is in danger of being called recursively. */
1858 if (is_illegal_recursion (sym, gfc_current_ns))
1859 gfc_warning (0, "Non-RECURSIVE procedure %qs at %L is possibly calling"
1860 " itself recursively. Declare it RECURSIVE or use"
1861 " %<-frecursive%>", sym->name, &expr->where);
1863 return true;
1867 /* Resolve an actual argument list. Most of the time, this is just
1868 resolving the expressions in the list.
1869 The exception is that we sometimes have to decide whether arguments
1870 that look like procedure arguments are really simple variable
1871 references. */
1873 static bool
1874 resolve_actual_arglist (gfc_actual_arglist *arg, procedure_type ptype,
1875 bool no_formal_args)
1877 gfc_symbol *sym;
1878 gfc_symtree *parent_st;
1879 gfc_expr *e;
1880 gfc_component *comp;
1881 int save_need_full_assumed_size;
1882 bool return_value = false;
1883 bool actual_arg_sav = actual_arg, first_actual_arg_sav = first_actual_arg;
1885 actual_arg = true;
1886 first_actual_arg = true;
1888 for (; arg; arg = arg->next)
1890 e = arg->expr;
1891 if (e == NULL)
1893 /* Check the label is a valid branching target. */
1894 if (arg->label)
1896 if (arg->label->defined == ST_LABEL_UNKNOWN)
1898 gfc_error ("Label %d referenced at %L is never defined",
1899 arg->label->value, &arg->label->where);
1900 goto cleanup;
1903 first_actual_arg = false;
1904 continue;
1907 if (e->expr_type == EXPR_VARIABLE
1908 && e->symtree->n.sym->attr.generic
1909 && no_formal_args
1910 && count_specific_procs (e) != 1)
1911 goto cleanup;
1913 if (e->ts.type != BT_PROCEDURE)
1915 save_need_full_assumed_size = need_full_assumed_size;
1916 if (e->expr_type != EXPR_VARIABLE)
1917 need_full_assumed_size = 0;
1918 if (!gfc_resolve_expr (e))
1919 goto cleanup;
1920 need_full_assumed_size = save_need_full_assumed_size;
1921 goto argument_list;
1924 /* See if the expression node should really be a variable reference. */
1926 sym = e->symtree->n.sym;
1928 if (sym->attr.flavor == FL_PROCEDURE
1929 || sym->attr.intrinsic
1930 || sym->attr.external)
1932 int actual_ok;
1934 /* If a procedure is not already determined to be something else
1935 check if it is intrinsic. */
1936 if (gfc_is_intrinsic (sym, sym->attr.subroutine, e->where))
1937 sym->attr.intrinsic = 1;
1939 if (sym->attr.proc == PROC_ST_FUNCTION)
1941 gfc_error ("Statement function %qs at %L is not allowed as an "
1942 "actual argument", sym->name, &e->where);
1945 actual_ok = gfc_intrinsic_actual_ok (sym->name,
1946 sym->attr.subroutine);
1947 if (sym->attr.intrinsic && actual_ok == 0)
1949 gfc_error ("Intrinsic %qs at %L is not allowed as an "
1950 "actual argument", sym->name, &e->where);
1953 if (sym->attr.contained && !sym->attr.use_assoc
1954 && sym->ns->proc_name->attr.flavor != FL_MODULE)
1956 if (!gfc_notify_std (GFC_STD_F2008, "Internal procedure %qs is"
1957 " used as actual argument at %L",
1958 sym->name, &e->where))
1959 goto cleanup;
1962 if (sym->attr.elemental && !sym->attr.intrinsic)
1964 gfc_error ("ELEMENTAL non-INTRINSIC procedure %qs is not "
1965 "allowed as an actual argument at %L", sym->name,
1966 &e->where);
1969 /* Check if a generic interface has a specific procedure
1970 with the same name before emitting an error. */
1971 if (sym->attr.generic && count_specific_procs (e) != 1)
1972 goto cleanup;
1974 /* Just in case a specific was found for the expression. */
1975 sym = e->symtree->n.sym;
1977 /* If the symbol is the function that names the current (or
1978 parent) scope, then we really have a variable reference. */
1980 if (gfc_is_function_return_value (sym, sym->ns))
1981 goto got_variable;
1983 /* If all else fails, see if we have a specific intrinsic. */
1984 if (sym->ts.type == BT_UNKNOWN && sym->attr.intrinsic)
1986 gfc_intrinsic_sym *isym;
1988 isym = gfc_find_function (sym->name);
1989 if (isym == NULL || !isym->specific)
1991 gfc_error ("Unable to find a specific INTRINSIC procedure "
1992 "for the reference %qs at %L", sym->name,
1993 &e->where);
1994 goto cleanup;
1996 sym->ts = isym->ts;
1997 sym->attr.intrinsic = 1;
1998 sym->attr.function = 1;
2001 if (!gfc_resolve_expr (e))
2002 goto cleanup;
2003 goto argument_list;
2006 /* See if the name is a module procedure in a parent unit. */
2008 if (was_declared (sym) || sym->ns->parent == NULL)
2009 goto got_variable;
2011 if (gfc_find_sym_tree (sym->name, sym->ns->parent, 1, &parent_st))
2013 gfc_error ("Symbol %qs at %L is ambiguous", sym->name, &e->where);
2014 goto cleanup;
2017 if (parent_st == NULL)
2018 goto got_variable;
2020 sym = parent_st->n.sym;
2021 e->symtree = parent_st; /* Point to the right thing. */
2023 if (sym->attr.flavor == FL_PROCEDURE
2024 || sym->attr.intrinsic
2025 || sym->attr.external)
2027 if (!gfc_resolve_expr (e))
2028 goto cleanup;
2029 goto argument_list;
2032 got_variable:
2033 e->expr_type = EXPR_VARIABLE;
2034 e->ts = sym->ts;
2035 if ((sym->as != NULL && sym->ts.type != BT_CLASS)
2036 || (sym->ts.type == BT_CLASS && sym->attr.class_ok
2037 && CLASS_DATA (sym)->as))
2039 e->rank = sym->ts.type == BT_CLASS
2040 ? CLASS_DATA (sym)->as->rank : sym->as->rank;
2041 e->ref = gfc_get_ref ();
2042 e->ref->type = REF_ARRAY;
2043 e->ref->u.ar.type = AR_FULL;
2044 e->ref->u.ar.as = sym->ts.type == BT_CLASS
2045 ? CLASS_DATA (sym)->as : sym->as;
2048 /* Expressions are assigned a default ts.type of BT_PROCEDURE in
2049 primary.c (match_actual_arg). If above code determines that it
2050 is a variable instead, it needs to be resolved as it was not
2051 done at the beginning of this function. */
2052 save_need_full_assumed_size = need_full_assumed_size;
2053 if (e->expr_type != EXPR_VARIABLE)
2054 need_full_assumed_size = 0;
2055 if (!gfc_resolve_expr (e))
2056 goto cleanup;
2057 need_full_assumed_size = save_need_full_assumed_size;
2059 argument_list:
2060 /* Check argument list functions %VAL, %LOC and %REF. There is
2061 nothing to do for %REF. */
2062 if (arg->name && arg->name[0] == '%')
2064 if (strcmp ("%VAL", arg->name) == 0)
2066 if (e->ts.type == BT_CHARACTER || e->ts.type == BT_DERIVED)
2068 gfc_error ("By-value argument at %L is not of numeric "
2069 "type", &e->where);
2070 goto cleanup;
2073 if (e->rank)
2075 gfc_error ("By-value argument at %L cannot be an array or "
2076 "an array section", &e->where);
2077 goto cleanup;
2080 /* Intrinsics are still PROC_UNKNOWN here. However,
2081 since same file external procedures are not resolvable
2082 in gfortran, it is a good deal easier to leave them to
2083 intrinsic.c. */
2084 if (ptype != PROC_UNKNOWN
2085 && ptype != PROC_DUMMY
2086 && ptype != PROC_EXTERNAL
2087 && ptype != PROC_MODULE)
2089 gfc_error ("By-value argument at %L is not allowed "
2090 "in this context", &e->where);
2091 goto cleanup;
2095 /* Statement functions have already been excluded above. */
2096 else if (strcmp ("%LOC", arg->name) == 0
2097 && e->ts.type == BT_PROCEDURE)
2099 if (e->symtree->n.sym->attr.proc == PROC_INTERNAL)
2101 gfc_error ("Passing internal procedure at %L by location "
2102 "not allowed", &e->where);
2103 goto cleanup;
2108 comp = gfc_get_proc_ptr_comp(e);
2109 if (e->expr_type == EXPR_VARIABLE
2110 && comp && comp->attr.elemental)
2112 gfc_error ("ELEMENTAL procedure pointer component %qs is not "
2113 "allowed as an actual argument at %L", comp->name,
2114 &e->where);
2117 /* Fortran 2008, C1237. */
2118 if (e->expr_type == EXPR_VARIABLE && gfc_is_coindexed (e)
2119 && gfc_has_ultimate_pointer (e))
2121 gfc_error ("Coindexed actual argument at %L with ultimate pointer "
2122 "component", &e->where);
2123 goto cleanup;
2126 first_actual_arg = false;
2129 return_value = true;
2131 cleanup:
2132 actual_arg = actual_arg_sav;
2133 first_actual_arg = first_actual_arg_sav;
2135 return return_value;
2139 /* Do the checks of the actual argument list that are specific to elemental
2140 procedures. If called with c == NULL, we have a function, otherwise if
2141 expr == NULL, we have a subroutine. */
2143 static bool
2144 resolve_elemental_actual (gfc_expr *expr, gfc_code *c)
2146 gfc_actual_arglist *arg0;
2147 gfc_actual_arglist *arg;
2148 gfc_symbol *esym = NULL;
2149 gfc_intrinsic_sym *isym = NULL;
2150 gfc_expr *e = NULL;
2151 gfc_intrinsic_arg *iformal = NULL;
2152 gfc_formal_arglist *eformal = NULL;
2153 bool formal_optional = false;
2154 bool set_by_optional = false;
2155 int i;
2156 int rank = 0;
2158 /* Is this an elemental procedure? */
2159 if (expr && expr->value.function.actual != NULL)
2161 if (expr->value.function.esym != NULL
2162 && expr->value.function.esym->attr.elemental)
2164 arg0 = expr->value.function.actual;
2165 esym = expr->value.function.esym;
2167 else if (expr->value.function.isym != NULL
2168 && expr->value.function.isym->elemental)
2170 arg0 = expr->value.function.actual;
2171 isym = expr->value.function.isym;
2173 else
2174 return true;
2176 else if (c && c->ext.actual != NULL)
2178 arg0 = c->ext.actual;
2180 if (c->resolved_sym)
2181 esym = c->resolved_sym;
2182 else
2183 esym = c->symtree->n.sym;
2184 gcc_assert (esym);
2186 if (!esym->attr.elemental)
2187 return true;
2189 else
2190 return true;
2192 /* The rank of an elemental is the rank of its array argument(s). */
2193 for (arg = arg0; arg; arg = arg->next)
2195 if (arg->expr != NULL && arg->expr->rank != 0)
2197 rank = arg->expr->rank;
2198 if (arg->expr->expr_type == EXPR_VARIABLE
2199 && arg->expr->symtree->n.sym->attr.optional)
2200 set_by_optional = true;
2202 /* Function specific; set the result rank and shape. */
2203 if (expr)
2205 expr->rank = rank;
2206 if (!expr->shape && arg->expr->shape)
2208 expr->shape = gfc_get_shape (rank);
2209 for (i = 0; i < rank; i++)
2210 mpz_init_set (expr->shape[i], arg->expr->shape[i]);
2213 break;
2217 /* If it is an array, it shall not be supplied as an actual argument
2218 to an elemental procedure unless an array of the same rank is supplied
2219 as an actual argument corresponding to a nonoptional dummy argument of
2220 that elemental procedure(12.4.1.5). */
2221 formal_optional = false;
2222 if (isym)
2223 iformal = isym->formal;
2224 else
2225 eformal = esym->formal;
2227 for (arg = arg0; arg; arg = arg->next)
2229 if (eformal)
2231 if (eformal->sym && eformal->sym->attr.optional)
2232 formal_optional = true;
2233 eformal = eformal->next;
2235 else if (isym && iformal)
2237 if (iformal->optional)
2238 formal_optional = true;
2239 iformal = iformal->next;
2241 else if (isym)
2242 formal_optional = true;
2244 if (pedantic && arg->expr != NULL
2245 && arg->expr->expr_type == EXPR_VARIABLE
2246 && arg->expr->symtree->n.sym->attr.optional
2247 && formal_optional
2248 && arg->expr->rank
2249 && (set_by_optional || arg->expr->rank != rank)
2250 && !(isym && isym->id == GFC_ISYM_CONVERSION))
2252 gfc_warning (OPT_Wpedantic,
2253 "%qs at %L is an array and OPTIONAL; IF IT IS "
2254 "MISSING, it cannot be the actual argument of an "
2255 "ELEMENTAL procedure unless there is a non-optional "
2256 "argument with the same rank (12.4.1.5)",
2257 arg->expr->symtree->n.sym->name, &arg->expr->where);
2261 for (arg = arg0; arg; arg = arg->next)
2263 if (arg->expr == NULL || arg->expr->rank == 0)
2264 continue;
2266 /* Being elemental, the last upper bound of an assumed size array
2267 argument must be present. */
2268 if (resolve_assumed_size_actual (arg->expr))
2269 return false;
2271 /* Elemental procedure's array actual arguments must conform. */
2272 if (e != NULL)
2274 if (!gfc_check_conformance (arg->expr, e, "elemental procedure"))
2275 return false;
2277 else
2278 e = arg->expr;
2281 /* INTENT(OUT) is only allowed for subroutines; if any actual argument
2282 is an array, the intent inout/out variable needs to be also an array. */
2283 if (rank > 0 && esym && expr == NULL)
2284 for (eformal = esym->formal, arg = arg0; arg && eformal;
2285 arg = arg->next, eformal = eformal->next)
2286 if ((eformal->sym->attr.intent == INTENT_OUT
2287 || eformal->sym->attr.intent == INTENT_INOUT)
2288 && arg->expr && arg->expr->rank == 0)
2290 gfc_error ("Actual argument at %L for INTENT(%s) dummy %qs of "
2291 "ELEMENTAL subroutine %qs is a scalar, but another "
2292 "actual argument is an array", &arg->expr->where,
2293 (eformal->sym->attr.intent == INTENT_OUT) ? "OUT"
2294 : "INOUT", eformal->sym->name, esym->name);
2295 return false;
2297 return true;
2301 /* This function does the checking of references to global procedures
2302 as defined in sections 18.1 and 14.1, respectively, of the Fortran
2303 77 and 95 standards. It checks for a gsymbol for the name, making
2304 one if it does not already exist. If it already exists, then the
2305 reference being resolved must correspond to the type of gsymbol.
2306 Otherwise, the new symbol is equipped with the attributes of the
2307 reference. The corresponding code that is called in creating
2308 global entities is parse.c.
2310 In addition, for all but -std=legacy, the gsymbols are used to
2311 check the interfaces of external procedures from the same file.
2312 The namespace of the gsymbol is resolved and then, once this is
2313 done the interface is checked. */
2316 static bool
2317 not_in_recursive (gfc_symbol *sym, gfc_namespace *gsym_ns)
2319 if (!gsym_ns->proc_name->attr.recursive)
2320 return true;
2322 if (sym->ns == gsym_ns)
2323 return false;
2325 if (sym->ns->parent && sym->ns->parent == gsym_ns)
2326 return false;
2328 return true;
2331 static bool
2332 not_entry_self_reference (gfc_symbol *sym, gfc_namespace *gsym_ns)
2334 if (gsym_ns->entries)
2336 gfc_entry_list *entry = gsym_ns->entries;
2338 for (; entry; entry = entry->next)
2340 if (strcmp (sym->name, entry->sym->name) == 0)
2342 if (strcmp (gsym_ns->proc_name->name,
2343 sym->ns->proc_name->name) == 0)
2344 return false;
2346 if (sym->ns->parent
2347 && strcmp (gsym_ns->proc_name->name,
2348 sym->ns->parent->proc_name->name) == 0)
2349 return false;
2353 return true;
2357 /* Check for the requirement of an explicit interface. F08:12.4.2.2. */
2359 bool
2360 gfc_explicit_interface_required (gfc_symbol *sym, char *errmsg, int err_len)
2362 gfc_formal_arglist *arg = gfc_sym_get_dummy_args (sym);
2364 for ( ; arg; arg = arg->next)
2366 if (!arg->sym)
2367 continue;
2369 if (arg->sym->attr.allocatable) /* (2a) */
2371 strncpy (errmsg, _("allocatable argument"), err_len);
2372 return true;
2374 else if (arg->sym->attr.asynchronous)
2376 strncpy (errmsg, _("asynchronous argument"), err_len);
2377 return true;
2379 else if (arg->sym->attr.optional)
2381 strncpy (errmsg, _("optional argument"), err_len);
2382 return true;
2384 else if (arg->sym->attr.pointer)
2386 strncpy (errmsg, _("pointer argument"), err_len);
2387 return true;
2389 else if (arg->sym->attr.target)
2391 strncpy (errmsg, _("target argument"), err_len);
2392 return true;
2394 else if (arg->sym->attr.value)
2396 strncpy (errmsg, _("value argument"), err_len);
2397 return true;
2399 else if (arg->sym->attr.volatile_)
2401 strncpy (errmsg, _("volatile argument"), err_len);
2402 return true;
2404 else if (arg->sym->as && arg->sym->as->type == AS_ASSUMED_SHAPE) /* (2b) */
2406 strncpy (errmsg, _("assumed-shape argument"), err_len);
2407 return true;
2409 else if (arg->sym->as && arg->sym->as->type == AS_ASSUMED_RANK) /* TS 29113, 6.2. */
2411 strncpy (errmsg, _("assumed-rank argument"), err_len);
2412 return true;
2414 else if (arg->sym->attr.codimension) /* (2c) */
2416 strncpy (errmsg, _("coarray argument"), err_len);
2417 return true;
2419 else if (false) /* (2d) TODO: parametrized derived type */
2421 strncpy (errmsg, _("parametrized derived type argument"), err_len);
2422 return true;
2424 else if (arg->sym->ts.type == BT_CLASS) /* (2e) */
2426 strncpy (errmsg, _("polymorphic argument"), err_len);
2427 return true;
2429 else if (arg->sym->attr.ext_attr & (1 << EXT_ATTR_NO_ARG_CHECK))
2431 strncpy (errmsg, _("NO_ARG_CHECK attribute"), err_len);
2432 return true;
2434 else if (arg->sym->ts.type == BT_ASSUMED)
2436 /* As assumed-type is unlimited polymorphic (cf. above).
2437 See also TS 29113, Note 6.1. */
2438 strncpy (errmsg, _("assumed-type argument"), err_len);
2439 return true;
2443 if (sym->attr.function)
2445 gfc_symbol *res = sym->result ? sym->result : sym;
2447 if (res->attr.dimension) /* (3a) */
2449 strncpy (errmsg, _("array result"), err_len);
2450 return true;
2452 else if (res->attr.pointer || res->attr.allocatable) /* (3b) */
2454 strncpy (errmsg, _("pointer or allocatable result"), err_len);
2455 return true;
2457 else if (res->ts.type == BT_CHARACTER && res->ts.u.cl
2458 && res->ts.u.cl->length
2459 && res->ts.u.cl->length->expr_type != EXPR_CONSTANT) /* (3c) */
2461 strncpy (errmsg, _("result with non-constant character length"), err_len);
2462 return true;
2466 if (sym->attr.elemental && !sym->attr.intrinsic) /* (4) */
2468 strncpy (errmsg, _("elemental procedure"), err_len);
2469 return true;
2471 else if (sym->attr.is_bind_c) /* (5) */
2473 strncpy (errmsg, _("bind(c) procedure"), err_len);
2474 return true;
2477 return false;
2481 static void
2482 resolve_global_procedure (gfc_symbol *sym, locus *where,
2483 gfc_actual_arglist **actual, int sub)
2485 gfc_gsymbol * gsym;
2486 gfc_namespace *ns;
2487 enum gfc_symbol_type type;
2488 char reason[200];
2490 type = sub ? GSYM_SUBROUTINE : GSYM_FUNCTION;
2492 gsym = gfc_get_gsymbol (sym->binding_label ? sym->binding_label : sym->name);
2494 if ((gsym->type != GSYM_UNKNOWN && gsym->type != type))
2495 gfc_global_used (gsym, where);
2497 if ((sym->attr.if_source == IFSRC_UNKNOWN
2498 || sym->attr.if_source == IFSRC_IFBODY)
2499 && gsym->type != GSYM_UNKNOWN
2500 && !gsym->binding_label
2501 && gsym->ns
2502 && gsym->ns->resolved != -1
2503 && gsym->ns->proc_name
2504 && not_in_recursive (sym, gsym->ns)
2505 && not_entry_self_reference (sym, gsym->ns))
2507 gfc_symbol *def_sym;
2509 /* Resolve the gsymbol namespace if needed. */
2510 if (!gsym->ns->resolved)
2512 gfc_symbol *old_dt_list;
2514 /* Stash away derived types so that the backend_decls do not
2515 get mixed up. */
2516 old_dt_list = gfc_derived_types;
2517 gfc_derived_types = NULL;
2519 gfc_resolve (gsym->ns);
2521 /* Store the new derived types with the global namespace. */
2522 if (gfc_derived_types)
2523 gsym->ns->derived_types = gfc_derived_types;
2525 /* Restore the derived types of this namespace. */
2526 gfc_derived_types = old_dt_list;
2529 /* Make sure that translation for the gsymbol occurs before
2530 the procedure currently being resolved. */
2531 ns = gfc_global_ns_list;
2532 for (; ns && ns != gsym->ns; ns = ns->sibling)
2534 if (ns->sibling == gsym->ns)
2536 ns->sibling = gsym->ns->sibling;
2537 gsym->ns->sibling = gfc_global_ns_list;
2538 gfc_global_ns_list = gsym->ns;
2539 break;
2543 def_sym = gsym->ns->proc_name;
2545 /* This can happen if a binding name has been specified. */
2546 if (gsym->binding_label && gsym->sym_name != def_sym->name)
2547 gfc_find_symbol (gsym->sym_name, gsym->ns, 0, &def_sym);
2549 if (def_sym->attr.entry_master)
2551 gfc_entry_list *entry;
2552 for (entry = gsym->ns->entries; entry; entry = entry->next)
2553 if (strcmp (entry->sym->name, sym->name) == 0)
2555 def_sym = entry->sym;
2556 break;
2560 if (sym->attr.function && !gfc_compare_types (&sym->ts, &def_sym->ts))
2562 gfc_error ("Return type mismatch of function %qs at %L (%s/%s)",
2563 sym->name, &sym->declared_at, gfc_typename (&sym->ts),
2564 gfc_typename (&def_sym->ts));
2565 goto done;
2568 if (sym->attr.if_source == IFSRC_UNKNOWN
2569 && gfc_explicit_interface_required (def_sym, reason, sizeof(reason)))
2571 gfc_error ("Explicit interface required for %qs at %L: %s",
2572 sym->name, &sym->declared_at, reason);
2573 goto done;
2576 if (!pedantic && (gfc_option.allow_std & GFC_STD_GNU))
2577 /* Turn erros into warnings with -std=gnu and -std=legacy. */
2578 gfc_errors_to_warnings (true);
2580 if (!gfc_compare_interfaces (sym, def_sym, sym->name, 0, 1,
2581 reason, sizeof(reason), NULL, NULL))
2583 gfc_error_opt (OPT_Wargument_mismatch,
2584 "Interface mismatch in global procedure %qs at %L:"
2585 " %s", sym->name, &sym->declared_at, reason);
2586 goto done;
2589 if (!pedantic
2590 || ((gfc_option.warn_std & GFC_STD_LEGACY)
2591 && !(gfc_option.warn_std & GFC_STD_GNU)))
2592 gfc_errors_to_warnings (true);
2594 if (sym->attr.if_source != IFSRC_IFBODY)
2595 gfc_procedure_use (def_sym, actual, where);
2598 done:
2599 gfc_errors_to_warnings (false);
2601 if (gsym->type == GSYM_UNKNOWN)
2603 gsym->type = type;
2604 gsym->where = *where;
2607 gsym->used = 1;
2611 /************* Function resolution *************/
2613 /* Resolve a function call known to be generic.
2614 Section 14.1.2.4.1. */
2616 static match
2617 resolve_generic_f0 (gfc_expr *expr, gfc_symbol *sym)
2619 gfc_symbol *s;
2621 if (sym->attr.generic)
2623 s = gfc_search_interface (sym->generic, 0, &expr->value.function.actual);
2624 if (s != NULL)
2626 expr->value.function.name = s->name;
2627 expr->value.function.esym = s;
2629 if (s->ts.type != BT_UNKNOWN)
2630 expr->ts = s->ts;
2631 else if (s->result != NULL && s->result->ts.type != BT_UNKNOWN)
2632 expr->ts = s->result->ts;
2634 if (s->as != NULL)
2635 expr->rank = s->as->rank;
2636 else if (s->result != NULL && s->result->as != NULL)
2637 expr->rank = s->result->as->rank;
2639 gfc_set_sym_referenced (expr->value.function.esym);
2641 return MATCH_YES;
2644 /* TODO: Need to search for elemental references in generic
2645 interface. */
2648 if (sym->attr.intrinsic)
2649 return gfc_intrinsic_func_interface (expr, 0);
2651 return MATCH_NO;
2655 static bool
2656 resolve_generic_f (gfc_expr *expr)
2658 gfc_symbol *sym;
2659 match m;
2660 gfc_interface *intr = NULL;
2662 sym = expr->symtree->n.sym;
2664 for (;;)
2666 m = resolve_generic_f0 (expr, sym);
2667 if (m == MATCH_YES)
2668 return true;
2669 else if (m == MATCH_ERROR)
2670 return false;
2672 generic:
2673 if (!intr)
2674 for (intr = sym->generic; intr; intr = intr->next)
2675 if (gfc_fl_struct (intr->sym->attr.flavor))
2676 break;
2678 if (sym->ns->parent == NULL)
2679 break;
2680 gfc_find_symbol (sym->name, sym->ns->parent, 1, &sym);
2682 if (sym == NULL)
2683 break;
2684 if (!generic_sym (sym))
2685 goto generic;
2688 /* Last ditch attempt. See if the reference is to an intrinsic
2689 that possesses a matching interface. 14.1.2.4 */
2690 if (sym && !intr && !gfc_is_intrinsic (sym, 0, expr->where))
2692 if (gfc_init_expr_flag)
2693 gfc_error ("Function %qs in initialization expression at %L "
2694 "must be an intrinsic function",
2695 expr->symtree->n.sym->name, &expr->where);
2696 else
2697 gfc_error ("There is no specific function for the generic %qs "
2698 "at %L", expr->symtree->n.sym->name, &expr->where);
2699 return false;
2702 if (intr)
2704 if (!gfc_convert_to_structure_constructor (expr, intr->sym, NULL,
2705 NULL, false))
2706 return false;
2707 if (!gfc_use_derived (expr->ts.u.derived))
2708 return false;
2709 return resolve_structure_cons (expr, 0);
2712 m = gfc_intrinsic_func_interface (expr, 0);
2713 if (m == MATCH_YES)
2714 return true;
2716 if (m == MATCH_NO)
2717 gfc_error ("Generic function %qs at %L is not consistent with a "
2718 "specific intrinsic interface", expr->symtree->n.sym->name,
2719 &expr->where);
2721 return false;
2725 /* Resolve a function call known to be specific. */
2727 static match
2728 resolve_specific_f0 (gfc_symbol *sym, gfc_expr *expr)
2730 match m;
2732 if (sym->attr.external || sym->attr.if_source == IFSRC_IFBODY)
2734 if (sym->attr.dummy)
2736 sym->attr.proc = PROC_DUMMY;
2737 goto found;
2740 sym->attr.proc = PROC_EXTERNAL;
2741 goto found;
2744 if (sym->attr.proc == PROC_MODULE
2745 || sym->attr.proc == PROC_ST_FUNCTION
2746 || sym->attr.proc == PROC_INTERNAL)
2747 goto found;
2749 if (sym->attr.intrinsic)
2751 m = gfc_intrinsic_func_interface (expr, 1);
2752 if (m == MATCH_YES)
2753 return MATCH_YES;
2754 if (m == MATCH_NO)
2755 gfc_error ("Function %qs at %L is INTRINSIC but is not compatible "
2756 "with an intrinsic", sym->name, &expr->where);
2758 return MATCH_ERROR;
2761 return MATCH_NO;
2763 found:
2764 gfc_procedure_use (sym, &expr->value.function.actual, &expr->where);
2766 if (sym->result)
2767 expr->ts = sym->result->ts;
2768 else
2769 expr->ts = sym->ts;
2770 expr->value.function.name = sym->name;
2771 expr->value.function.esym = sym;
2772 /* Prevent crash when sym->ts.u.derived->components is not set due to previous
2773 error(s). */
2774 if (sym->ts.type == BT_CLASS && !CLASS_DATA (sym))
2775 return MATCH_ERROR;
2776 if (sym->ts.type == BT_CLASS && CLASS_DATA (sym)->as)
2777 expr->rank = CLASS_DATA (sym)->as->rank;
2778 else if (sym->as != NULL)
2779 expr->rank = sym->as->rank;
2781 return MATCH_YES;
2785 static bool
2786 resolve_specific_f (gfc_expr *expr)
2788 gfc_symbol *sym;
2789 match m;
2791 sym = expr->symtree->n.sym;
2793 for (;;)
2795 m = resolve_specific_f0 (sym, expr);
2796 if (m == MATCH_YES)
2797 return true;
2798 if (m == MATCH_ERROR)
2799 return false;
2801 if (sym->ns->parent == NULL)
2802 break;
2804 gfc_find_symbol (sym->name, sym->ns->parent, 1, &sym);
2806 if (sym == NULL)
2807 break;
2810 gfc_error ("Unable to resolve the specific function %qs at %L",
2811 expr->symtree->n.sym->name, &expr->where);
2813 return true;
2816 /* Recursively append candidate SYM to CANDIDATES. Store the number of
2817 candidates in CANDIDATES_LEN. */
2819 static void
2820 lookup_function_fuzzy_find_candidates (gfc_symtree *sym,
2821 char **&candidates,
2822 size_t &candidates_len)
2824 gfc_symtree *p;
2826 if (sym == NULL)
2827 return;
2828 if ((sym->n.sym->ts.type != BT_UNKNOWN || sym->n.sym->attr.external)
2829 && sym->n.sym->attr.flavor == FL_PROCEDURE)
2830 vec_push (candidates, candidates_len, sym->name);
2832 p = sym->left;
2833 if (p)
2834 lookup_function_fuzzy_find_candidates (p, candidates, candidates_len);
2836 p = sym->right;
2837 if (p)
2838 lookup_function_fuzzy_find_candidates (p, candidates, candidates_len);
2842 /* Lookup function FN fuzzily, taking names in SYMROOT into account. */
2844 const char*
2845 gfc_lookup_function_fuzzy (const char *fn, gfc_symtree *symroot)
2847 char **candidates = NULL;
2848 size_t candidates_len = 0;
2849 lookup_function_fuzzy_find_candidates (symroot, candidates, candidates_len);
2850 return gfc_closest_fuzzy_match (fn, candidates);
2854 /* Resolve a procedure call not known to be generic nor specific. */
2856 static bool
2857 resolve_unknown_f (gfc_expr *expr)
2859 gfc_symbol *sym;
2860 gfc_typespec *ts;
2862 sym = expr->symtree->n.sym;
2864 if (sym->attr.dummy)
2866 sym->attr.proc = PROC_DUMMY;
2867 expr->value.function.name = sym->name;
2868 goto set_type;
2871 /* See if we have an intrinsic function reference. */
2873 if (gfc_is_intrinsic (sym, 0, expr->where))
2875 if (gfc_intrinsic_func_interface (expr, 1) == MATCH_YES)
2876 return true;
2877 return false;
2880 /* The reference is to an external name. */
2882 sym->attr.proc = PROC_EXTERNAL;
2883 expr->value.function.name = sym->name;
2884 expr->value.function.esym = expr->symtree->n.sym;
2886 if (sym->as != NULL)
2887 expr->rank = sym->as->rank;
2889 /* Type of the expression is either the type of the symbol or the
2890 default type of the symbol. */
2892 set_type:
2893 gfc_procedure_use (sym, &expr->value.function.actual, &expr->where);
2895 if (sym->ts.type != BT_UNKNOWN)
2896 expr->ts = sym->ts;
2897 else
2899 ts = gfc_get_default_type (sym->name, sym->ns);
2901 if (ts->type == BT_UNKNOWN)
2903 const char *guessed
2904 = gfc_lookup_function_fuzzy (sym->name, sym->ns->sym_root);
2905 if (guessed)
2906 gfc_error ("Function %qs at %L has no IMPLICIT type"
2907 "; did you mean %qs?",
2908 sym->name, &expr->where, guessed);
2909 else
2910 gfc_error ("Function %qs at %L has no IMPLICIT type",
2911 sym->name, &expr->where);
2912 return false;
2914 else
2915 expr->ts = *ts;
2918 return true;
2922 /* Return true, if the symbol is an external procedure. */
2923 static bool
2924 is_external_proc (gfc_symbol *sym)
2926 if (!sym->attr.dummy && !sym->attr.contained
2927 && !gfc_is_intrinsic (sym, sym->attr.subroutine, sym->declared_at)
2928 && sym->attr.proc != PROC_ST_FUNCTION
2929 && !sym->attr.proc_pointer
2930 && !sym->attr.use_assoc
2931 && sym->name)
2932 return true;
2934 return false;
2938 /* Figure out if a function reference is pure or not. Also set the name
2939 of the function for a potential error message. Return nonzero if the
2940 function is PURE, zero if not. */
2941 static int
2942 pure_stmt_function (gfc_expr *, gfc_symbol *);
2945 gfc_pure_function (gfc_expr *e, const char **name)
2947 int pure;
2948 gfc_component *comp;
2950 *name = NULL;
2952 if (e->symtree != NULL
2953 && e->symtree->n.sym != NULL
2954 && e->symtree->n.sym->attr.proc == PROC_ST_FUNCTION)
2955 return pure_stmt_function (e, e->symtree->n.sym);
2957 comp = gfc_get_proc_ptr_comp (e);
2958 if (comp)
2960 pure = gfc_pure (comp->ts.interface);
2961 *name = comp->name;
2963 else if (e->value.function.esym)
2965 pure = gfc_pure (e->value.function.esym);
2966 *name = e->value.function.esym->name;
2968 else if (e->value.function.isym)
2970 pure = e->value.function.isym->pure
2971 || e->value.function.isym->elemental;
2972 *name = e->value.function.isym->name;
2974 else
2976 /* Implicit functions are not pure. */
2977 pure = 0;
2978 *name = e->value.function.name;
2981 return pure;
2985 /* Check if the expression is a reference to an implicitly pure function. */
2988 gfc_implicit_pure_function (gfc_expr *e)
2990 gfc_component *comp = gfc_get_proc_ptr_comp (e);
2991 if (comp)
2992 return gfc_implicit_pure (comp->ts.interface);
2993 else if (e->value.function.esym)
2994 return gfc_implicit_pure (e->value.function.esym);
2995 else
2996 return 0;
3000 static bool
3001 impure_stmt_fcn (gfc_expr *e, gfc_symbol *sym,
3002 int *f ATTRIBUTE_UNUSED)
3004 const char *name;
3006 /* Don't bother recursing into other statement functions
3007 since they will be checked individually for purity. */
3008 if (e->expr_type != EXPR_FUNCTION
3009 || !e->symtree
3010 || e->symtree->n.sym == sym
3011 || e->symtree->n.sym->attr.proc == PROC_ST_FUNCTION)
3012 return false;
3014 return gfc_pure_function (e, &name) ? false : true;
3018 static int
3019 pure_stmt_function (gfc_expr *e, gfc_symbol *sym)
3021 return gfc_traverse_expr (e, sym, impure_stmt_fcn, 0) ? 0 : 1;
3025 /* Check if an impure function is allowed in the current context. */
3027 static bool check_pure_function (gfc_expr *e)
3029 const char *name = NULL;
3030 if (!gfc_pure_function (e, &name) && name)
3032 if (forall_flag)
3034 gfc_error ("Reference to impure function %qs at %L inside a "
3035 "FORALL %s", name, &e->where,
3036 forall_flag == 2 ? "mask" : "block");
3037 return false;
3039 else if (gfc_do_concurrent_flag)
3041 gfc_error ("Reference to impure function %qs at %L inside a "
3042 "DO CONCURRENT %s", name, &e->where,
3043 gfc_do_concurrent_flag == 2 ? "mask" : "block");
3044 return false;
3046 else if (gfc_pure (NULL))
3048 gfc_error ("Reference to impure function %qs at %L "
3049 "within a PURE procedure", name, &e->where);
3050 return false;
3052 if (!gfc_implicit_pure_function (e))
3053 gfc_unset_implicit_pure (NULL);
3055 return true;
3059 /* Update current procedure's array_outer_dependency flag, considering
3060 a call to procedure SYM. */
3062 static void
3063 update_current_proc_array_outer_dependency (gfc_symbol *sym)
3065 /* Check to see if this is a sibling function that has not yet
3066 been resolved. */
3067 gfc_namespace *sibling = gfc_current_ns->sibling;
3068 for (; sibling; sibling = sibling->sibling)
3070 if (sibling->proc_name == sym)
3072 gfc_resolve (sibling);
3073 break;
3077 /* If SYM has references to outer arrays, so has the procedure calling
3078 SYM. If SYM is a procedure pointer, we can assume the worst. */
3079 if ((sym->attr.array_outer_dependency || sym->attr.proc_pointer)
3080 && gfc_current_ns->proc_name)
3081 gfc_current_ns->proc_name->attr.array_outer_dependency = 1;
3085 /* Resolve a function call, which means resolving the arguments, then figuring
3086 out which entity the name refers to. */
3088 static bool
3089 resolve_function (gfc_expr *expr)
3091 gfc_actual_arglist *arg;
3092 gfc_symbol *sym;
3093 bool t;
3094 int temp;
3095 procedure_type p = PROC_INTRINSIC;
3096 bool no_formal_args;
3098 sym = NULL;
3099 if (expr->symtree)
3100 sym = expr->symtree->n.sym;
3102 /* If this is a procedure pointer component, it has already been resolved. */
3103 if (gfc_is_proc_ptr_comp (expr))
3104 return true;
3106 /* Avoid re-resolving the arguments of caf_get, which can lead to inserting
3107 another caf_get. */
3108 if (sym && sym->attr.intrinsic
3109 && (sym->intmod_sym_id == GFC_ISYM_CAF_GET
3110 || sym->intmod_sym_id == GFC_ISYM_CAF_SEND))
3111 return true;
3113 if (sym && sym->attr.intrinsic
3114 && !gfc_resolve_intrinsic (sym, &expr->where))
3115 return false;
3117 if (sym && (sym->attr.flavor == FL_VARIABLE || sym->attr.subroutine))
3119 gfc_error ("%qs at %L is not a function", sym->name, &expr->where);
3120 return false;
3123 /* If this is a deferred TBP with an abstract interface (which may
3124 of course be referenced), expr->value.function.esym will be set. */
3125 if (sym && sym->attr.abstract && !expr->value.function.esym)
3127 gfc_error ("ABSTRACT INTERFACE %qs must not be referenced at %L",
3128 sym->name, &expr->where);
3129 return false;
3132 /* If this is a deferred TBP with an abstract interface, its result
3133 cannot be an assumed length character (F2003: C418). */
3134 if (sym && sym->attr.abstract && sym->attr.function
3135 && sym->result->ts.u.cl
3136 && sym->result->ts.u.cl->length == NULL
3137 && !sym->result->ts.deferred)
3139 gfc_error ("ABSTRACT INTERFACE %qs at %L must not have an assumed "
3140 "character length result (F2008: C418)", sym->name,
3141 &sym->declared_at);
3142 return false;
3145 /* Switch off assumed size checking and do this again for certain kinds
3146 of procedure, once the procedure itself is resolved. */
3147 need_full_assumed_size++;
3149 if (expr->symtree && expr->symtree->n.sym)
3150 p = expr->symtree->n.sym->attr.proc;
3152 if (expr->value.function.isym && expr->value.function.isym->inquiry)
3153 inquiry_argument = true;
3154 no_formal_args = sym && is_external_proc (sym)
3155 && gfc_sym_get_dummy_args (sym) == NULL;
3157 if (!resolve_actual_arglist (expr->value.function.actual,
3158 p, no_formal_args))
3160 inquiry_argument = false;
3161 return false;
3164 inquiry_argument = false;
3166 /* Resume assumed_size checking. */
3167 need_full_assumed_size--;
3169 /* If the procedure is external, check for usage. */
3170 if (sym && is_external_proc (sym))
3171 resolve_global_procedure (sym, &expr->where,
3172 &expr->value.function.actual, 0);
3174 if (sym && sym->ts.type == BT_CHARACTER
3175 && sym->ts.u.cl
3176 && sym->ts.u.cl->length == NULL
3177 && !sym->attr.dummy
3178 && !sym->ts.deferred
3179 && expr->value.function.esym == NULL
3180 && !sym->attr.contained)
3182 /* Internal procedures are taken care of in resolve_contained_fntype. */
3183 gfc_error ("Function %qs is declared CHARACTER(*) and cannot "
3184 "be used at %L since it is not a dummy argument",
3185 sym->name, &expr->where);
3186 return false;
3189 /* See if function is already resolved. */
3191 if (expr->value.function.name != NULL
3192 || expr->value.function.isym != NULL)
3194 if (expr->ts.type == BT_UNKNOWN)
3195 expr->ts = sym->ts;
3196 t = true;
3198 else
3200 /* Apply the rules of section 14.1.2. */
3202 switch (procedure_kind (sym))
3204 case PTYPE_GENERIC:
3205 t = resolve_generic_f (expr);
3206 break;
3208 case PTYPE_SPECIFIC:
3209 t = resolve_specific_f (expr);
3210 break;
3212 case PTYPE_UNKNOWN:
3213 t = resolve_unknown_f (expr);
3214 break;
3216 default:
3217 gfc_internal_error ("resolve_function(): bad function type");
3221 /* If the expression is still a function (it might have simplified),
3222 then we check to see if we are calling an elemental function. */
3224 if (expr->expr_type != EXPR_FUNCTION)
3225 return t;
3227 temp = need_full_assumed_size;
3228 need_full_assumed_size = 0;
3230 if (!resolve_elemental_actual (expr, NULL))
3231 return false;
3233 if (omp_workshare_flag
3234 && expr->value.function.esym
3235 && ! gfc_elemental (expr->value.function.esym))
3237 gfc_error ("User defined non-ELEMENTAL function %qs at %L not allowed "
3238 "in WORKSHARE construct", expr->value.function.esym->name,
3239 &expr->where);
3240 t = false;
3243 #define GENERIC_ID expr->value.function.isym->id
3244 else if (expr->value.function.actual != NULL
3245 && expr->value.function.isym != NULL
3246 && GENERIC_ID != GFC_ISYM_LBOUND
3247 && GENERIC_ID != GFC_ISYM_LCOBOUND
3248 && GENERIC_ID != GFC_ISYM_UCOBOUND
3249 && GENERIC_ID != GFC_ISYM_LEN
3250 && GENERIC_ID != GFC_ISYM_LOC
3251 && GENERIC_ID != GFC_ISYM_C_LOC
3252 && GENERIC_ID != GFC_ISYM_PRESENT)
3254 /* Array intrinsics must also have the last upper bound of an
3255 assumed size array argument. UBOUND and SIZE have to be
3256 excluded from the check if the second argument is anything
3257 than a constant. */
3259 for (arg = expr->value.function.actual; arg; arg = arg->next)
3261 if ((GENERIC_ID == GFC_ISYM_UBOUND || GENERIC_ID == GFC_ISYM_SIZE)
3262 && arg == expr->value.function.actual
3263 && arg->next != NULL && arg->next->expr)
3265 if (arg->next->expr->expr_type != EXPR_CONSTANT)
3266 break;
3268 if (arg->next->name && strcmp (arg->next->name, "kind") == 0)
3269 break;
3271 if ((int)mpz_get_si (arg->next->expr->value.integer)
3272 < arg->expr->rank)
3273 break;
3276 if (arg->expr != NULL
3277 && arg->expr->rank > 0
3278 && resolve_assumed_size_actual (arg->expr))
3279 return false;
3282 #undef GENERIC_ID
3284 need_full_assumed_size = temp;
3286 if (!check_pure_function(expr))
3287 t = false;
3289 /* Functions without the RECURSIVE attribution are not allowed to
3290 * call themselves. */
3291 if (expr->value.function.esym && !expr->value.function.esym->attr.recursive)
3293 gfc_symbol *esym;
3294 esym = expr->value.function.esym;
3296 if (is_illegal_recursion (esym, gfc_current_ns))
3298 if (esym->attr.entry && esym->ns->entries)
3299 gfc_error ("ENTRY %qs at %L cannot be called recursively, as"
3300 " function %qs is not RECURSIVE",
3301 esym->name, &expr->where, esym->ns->entries->sym->name);
3302 else
3303 gfc_error ("Function %qs at %L cannot be called recursively, as it"
3304 " is not RECURSIVE", esym->name, &expr->where);
3306 t = false;
3310 /* Character lengths of use associated functions may contains references to
3311 symbols not referenced from the current program unit otherwise. Make sure
3312 those symbols are marked as referenced. */
3314 if (expr->ts.type == BT_CHARACTER && expr->value.function.esym
3315 && expr->value.function.esym->attr.use_assoc)
3317 gfc_expr_set_symbols_referenced (expr->ts.u.cl->length);
3320 /* Make sure that the expression has a typespec that works. */
3321 if (expr->ts.type == BT_UNKNOWN)
3323 if (expr->symtree->n.sym->result
3324 && expr->symtree->n.sym->result->ts.type != BT_UNKNOWN
3325 && !expr->symtree->n.sym->result->attr.proc_pointer)
3326 expr->ts = expr->symtree->n.sym->result->ts;
3329 if (!expr->ref && !expr->value.function.isym)
3331 if (expr->value.function.esym)
3332 update_current_proc_array_outer_dependency (expr->value.function.esym);
3333 else
3334 update_current_proc_array_outer_dependency (sym);
3336 else if (expr->ref)
3337 /* typebound procedure: Assume the worst. */
3338 gfc_current_ns->proc_name->attr.array_outer_dependency = 1;
3340 return t;
3344 /************* Subroutine resolution *************/
3346 static bool
3347 pure_subroutine (gfc_symbol *sym, const char *name, locus *loc)
3349 if (gfc_pure (sym))
3350 return true;
3352 if (forall_flag)
3354 gfc_error ("Subroutine call to %qs in FORALL block at %L is not PURE",
3355 name, loc);
3356 return false;
3358 else if (gfc_do_concurrent_flag)
3360 gfc_error ("Subroutine call to %qs in DO CONCURRENT block at %L is not "
3361 "PURE", name, loc);
3362 return false;
3364 else if (gfc_pure (NULL))
3366 gfc_error ("Subroutine call to %qs at %L is not PURE", name, loc);
3367 return false;
3370 gfc_unset_implicit_pure (NULL);
3371 return true;
3375 static match
3376 resolve_generic_s0 (gfc_code *c, gfc_symbol *sym)
3378 gfc_symbol *s;
3380 if (sym->attr.generic)
3382 s = gfc_search_interface (sym->generic, 1, &c->ext.actual);
3383 if (s != NULL)
3385 c->resolved_sym = s;
3386 if (!pure_subroutine (s, s->name, &c->loc))
3387 return MATCH_ERROR;
3388 return MATCH_YES;
3391 /* TODO: Need to search for elemental references in generic interface. */
3394 if (sym->attr.intrinsic)
3395 return gfc_intrinsic_sub_interface (c, 0);
3397 return MATCH_NO;
3401 static bool
3402 resolve_generic_s (gfc_code *c)
3404 gfc_symbol *sym;
3405 match m;
3407 sym = c->symtree->n.sym;
3409 for (;;)
3411 m = resolve_generic_s0 (c, sym);
3412 if (m == MATCH_YES)
3413 return true;
3414 else if (m == MATCH_ERROR)
3415 return false;
3417 generic:
3418 if (sym->ns->parent == NULL)
3419 break;
3420 gfc_find_symbol (sym->name, sym->ns->parent, 1, &sym);
3422 if (sym == NULL)
3423 break;
3424 if (!generic_sym (sym))
3425 goto generic;
3428 /* Last ditch attempt. See if the reference is to an intrinsic
3429 that possesses a matching interface. 14.1.2.4 */
3430 sym = c->symtree->n.sym;
3432 if (!gfc_is_intrinsic (sym, 1, c->loc))
3434 gfc_error ("There is no specific subroutine for the generic %qs at %L",
3435 sym->name, &c->loc);
3436 return false;
3439 m = gfc_intrinsic_sub_interface (c, 0);
3440 if (m == MATCH_YES)
3441 return true;
3442 if (m == MATCH_NO)
3443 gfc_error ("Generic subroutine %qs at %L is not consistent with an "
3444 "intrinsic subroutine interface", sym->name, &c->loc);
3446 return false;
3450 /* Resolve a subroutine call known to be specific. */
3452 static match
3453 resolve_specific_s0 (gfc_code *c, gfc_symbol *sym)
3455 match m;
3457 if (sym->attr.external || sym->attr.if_source == IFSRC_IFBODY)
3459 if (sym->attr.dummy)
3461 sym->attr.proc = PROC_DUMMY;
3462 goto found;
3465 sym->attr.proc = PROC_EXTERNAL;
3466 goto found;
3469 if (sym->attr.proc == PROC_MODULE || sym->attr.proc == PROC_INTERNAL)
3470 goto found;
3472 if (sym->attr.intrinsic)
3474 m = gfc_intrinsic_sub_interface (c, 1);
3475 if (m == MATCH_YES)
3476 return MATCH_YES;
3477 if (m == MATCH_NO)
3478 gfc_error ("Subroutine %qs at %L is INTRINSIC but is not compatible "
3479 "with an intrinsic", sym->name, &c->loc);
3481 return MATCH_ERROR;
3484 return MATCH_NO;
3486 found:
3487 gfc_procedure_use (sym, &c->ext.actual, &c->loc);
3489 c->resolved_sym = sym;
3490 if (!pure_subroutine (sym, sym->name, &c->loc))
3491 return MATCH_ERROR;
3493 return MATCH_YES;
3497 static bool
3498 resolve_specific_s (gfc_code *c)
3500 gfc_symbol *sym;
3501 match m;
3503 sym = c->symtree->n.sym;
3505 for (;;)
3507 m = resolve_specific_s0 (c, sym);
3508 if (m == MATCH_YES)
3509 return true;
3510 if (m == MATCH_ERROR)
3511 return false;
3513 if (sym->ns->parent == NULL)
3514 break;
3516 gfc_find_symbol (sym->name, sym->ns->parent, 1, &sym);
3518 if (sym == NULL)
3519 break;
3522 sym = c->symtree->n.sym;
3523 gfc_error ("Unable to resolve the specific subroutine %qs at %L",
3524 sym->name, &c->loc);
3526 return false;
3530 /* Resolve a subroutine call not known to be generic nor specific. */
3532 static bool
3533 resolve_unknown_s (gfc_code *c)
3535 gfc_symbol *sym;
3537 sym = c->symtree->n.sym;
3539 if (sym->attr.dummy)
3541 sym->attr.proc = PROC_DUMMY;
3542 goto found;
3545 /* See if we have an intrinsic function reference. */
3547 if (gfc_is_intrinsic (sym, 1, c->loc))
3549 if (gfc_intrinsic_sub_interface (c, 1) == MATCH_YES)
3550 return true;
3551 return false;
3554 /* The reference is to an external name. */
3556 found:
3557 gfc_procedure_use (sym, &c->ext.actual, &c->loc);
3559 c->resolved_sym = sym;
3561 return pure_subroutine (sym, sym->name, &c->loc);
3565 /* Resolve a subroutine call. Although it was tempting to use the same code
3566 for functions, subroutines and functions are stored differently and this
3567 makes things awkward. */
3569 static bool
3570 resolve_call (gfc_code *c)
3572 bool t;
3573 procedure_type ptype = PROC_INTRINSIC;
3574 gfc_symbol *csym, *sym;
3575 bool no_formal_args;
3577 csym = c->symtree ? c->symtree->n.sym : NULL;
3579 if (csym && csym->ts.type != BT_UNKNOWN)
3581 gfc_error ("%qs at %L has a type, which is not consistent with "
3582 "the CALL at %L", csym->name, &csym->declared_at, &c->loc);
3583 return false;
3586 if (csym && gfc_current_ns->parent && csym->ns != gfc_current_ns)
3588 gfc_symtree *st;
3589 gfc_find_sym_tree (c->symtree->name, gfc_current_ns, 1, &st);
3590 sym = st ? st->n.sym : NULL;
3591 if (sym && csym != sym
3592 && sym->ns == gfc_current_ns
3593 && sym->attr.flavor == FL_PROCEDURE
3594 && sym->attr.contained)
3596 sym->refs++;
3597 if (csym->attr.generic)
3598 c->symtree->n.sym = sym;
3599 else
3600 c->symtree = st;
3601 csym = c->symtree->n.sym;
3605 /* If this ia a deferred TBP, c->expr1 will be set. */
3606 if (!c->expr1 && csym)
3608 if (csym->attr.abstract)
3610 gfc_error ("ABSTRACT INTERFACE %qs must not be referenced at %L",
3611 csym->name, &c->loc);
3612 return false;
3615 /* Subroutines without the RECURSIVE attribution are not allowed to
3616 call themselves. */
3617 if (is_illegal_recursion (csym, gfc_current_ns))
3619 if (csym->attr.entry && csym->ns->entries)
3620 gfc_error ("ENTRY %qs at %L cannot be called recursively, "
3621 "as subroutine %qs is not RECURSIVE",
3622 csym->name, &c->loc, csym->ns->entries->sym->name);
3623 else
3624 gfc_error ("SUBROUTINE %qs at %L cannot be called recursively, "
3625 "as it is not RECURSIVE", csym->name, &c->loc);
3627 t = false;
3631 /* Switch off assumed size checking and do this again for certain kinds
3632 of procedure, once the procedure itself is resolved. */
3633 need_full_assumed_size++;
3635 if (csym)
3636 ptype = csym->attr.proc;
3638 no_formal_args = csym && is_external_proc (csym)
3639 && gfc_sym_get_dummy_args (csym) == NULL;
3640 if (!resolve_actual_arglist (c->ext.actual, ptype, no_formal_args))
3641 return false;
3643 /* Resume assumed_size checking. */
3644 need_full_assumed_size--;
3646 /* If external, check for usage. */
3647 if (csym && is_external_proc (csym))
3648 resolve_global_procedure (csym, &c->loc, &c->ext.actual, 1);
3650 t = true;
3651 if (c->resolved_sym == NULL)
3653 c->resolved_isym = NULL;
3654 switch (procedure_kind (csym))
3656 case PTYPE_GENERIC:
3657 t = resolve_generic_s (c);
3658 break;
3660 case PTYPE_SPECIFIC:
3661 t = resolve_specific_s (c);
3662 break;
3664 case PTYPE_UNKNOWN:
3665 t = resolve_unknown_s (c);
3666 break;
3668 default:
3669 gfc_internal_error ("resolve_subroutine(): bad function type");
3673 /* Some checks of elemental subroutine actual arguments. */
3674 if (!resolve_elemental_actual (NULL, c))
3675 return false;
3677 if (!c->expr1)
3678 update_current_proc_array_outer_dependency (csym);
3679 else
3680 /* Typebound procedure: Assume the worst. */
3681 gfc_current_ns->proc_name->attr.array_outer_dependency = 1;
3683 return t;
3687 /* Compare the shapes of two arrays that have non-NULL shapes. If both
3688 op1->shape and op2->shape are non-NULL return true if their shapes
3689 match. If both op1->shape and op2->shape are non-NULL return false
3690 if their shapes do not match. If either op1->shape or op2->shape is
3691 NULL, return true. */
3693 static bool
3694 compare_shapes (gfc_expr *op1, gfc_expr *op2)
3696 bool t;
3697 int i;
3699 t = true;
3701 if (op1->shape != NULL && op2->shape != NULL)
3703 for (i = 0; i < op1->rank; i++)
3705 if (mpz_cmp (op1->shape[i], op2->shape[i]) != 0)
3707 gfc_error ("Shapes for operands at %L and %L are not conformable",
3708 &op1->where, &op2->where);
3709 t = false;
3710 break;
3715 return t;
3718 /* Convert a logical operator to the corresponding bitwise intrinsic call.
3719 For example A .AND. B becomes IAND(A, B). */
3720 static gfc_expr *
3721 logical_to_bitwise (gfc_expr *e)
3723 gfc_expr *tmp, *op1, *op2;
3724 gfc_isym_id isym;
3725 gfc_actual_arglist *args = NULL;
3727 gcc_assert (e->expr_type == EXPR_OP);
3729 isym = GFC_ISYM_NONE;
3730 op1 = e->value.op.op1;
3731 op2 = e->value.op.op2;
3733 switch (e->value.op.op)
3735 case INTRINSIC_NOT:
3736 isym = GFC_ISYM_NOT;
3737 break;
3738 case INTRINSIC_AND:
3739 isym = GFC_ISYM_IAND;
3740 break;
3741 case INTRINSIC_OR:
3742 isym = GFC_ISYM_IOR;
3743 break;
3744 case INTRINSIC_NEQV:
3745 isym = GFC_ISYM_IEOR;
3746 break;
3747 case INTRINSIC_EQV:
3748 /* "Bitwise eqv" is just the complement of NEQV === IEOR.
3749 Change the old expression to NEQV, which will get replaced by IEOR,
3750 and wrap it in NOT. */
3751 tmp = gfc_copy_expr (e);
3752 tmp->value.op.op = INTRINSIC_NEQV;
3753 tmp = logical_to_bitwise (tmp);
3754 isym = GFC_ISYM_NOT;
3755 op1 = tmp;
3756 op2 = NULL;
3757 break;
3758 default:
3759 gfc_internal_error ("logical_to_bitwise(): Bad intrinsic");
3762 /* Inherit the original operation's operands as arguments. */
3763 args = gfc_get_actual_arglist ();
3764 args->expr = op1;
3765 if (op2)
3767 args->next = gfc_get_actual_arglist ();
3768 args->next->expr = op2;
3771 /* Convert the expression to a function call. */
3772 e->expr_type = EXPR_FUNCTION;
3773 e->value.function.actual = args;
3774 e->value.function.isym = gfc_intrinsic_function_by_id (isym);
3775 e->value.function.name = e->value.function.isym->name;
3776 e->value.function.esym = NULL;
3778 /* Make up a pre-resolved function call symtree if we need to. */
3779 if (!e->symtree || !e->symtree->n.sym)
3781 gfc_symbol *sym;
3782 gfc_get_ha_sym_tree (e->value.function.isym->name, &e->symtree);
3783 sym = e->symtree->n.sym;
3784 sym->result = sym;
3785 sym->attr.flavor = FL_PROCEDURE;
3786 sym->attr.function = 1;
3787 sym->attr.elemental = 1;
3788 sym->attr.pure = 1;
3789 sym->attr.referenced = 1;
3790 gfc_intrinsic_symbol (sym);
3791 gfc_commit_symbol (sym);
3794 args->name = e->value.function.isym->formal->name;
3795 if (e->value.function.isym->formal->next)
3796 args->next->name = e->value.function.isym->formal->next->name;
3798 return e;
3801 /* Recursively append candidate UOP to CANDIDATES. Store the number of
3802 candidates in CANDIDATES_LEN. */
3803 static void
3804 lookup_uop_fuzzy_find_candidates (gfc_symtree *uop,
3805 char **&candidates,
3806 size_t &candidates_len)
3808 gfc_symtree *p;
3810 if (uop == NULL)
3811 return;
3813 /* Not sure how to properly filter here. Use all for a start.
3814 n.uop.op is NULL for empty interface operators (is that legal?) disregard
3815 these as i suppose they don't make terribly sense. */
3817 if (uop->n.uop->op != NULL)
3818 vec_push (candidates, candidates_len, uop->name);
3820 p = uop->left;
3821 if (p)
3822 lookup_uop_fuzzy_find_candidates (p, candidates, candidates_len);
3824 p = uop->right;
3825 if (p)
3826 lookup_uop_fuzzy_find_candidates (p, candidates, candidates_len);
3829 /* Lookup user-operator OP fuzzily, taking names in UOP into account. */
3831 static const char*
3832 lookup_uop_fuzzy (const char *op, gfc_symtree *uop)
3834 char **candidates = NULL;
3835 size_t candidates_len = 0;
3836 lookup_uop_fuzzy_find_candidates (uop, candidates, candidates_len);
3837 return gfc_closest_fuzzy_match (op, candidates);
3841 /* Callback finding an impure function as an operand to an .and. or
3842 .or. expression. Remember the last function warned about to
3843 avoid double warnings when recursing. */
3845 static int
3846 impure_function_callback (gfc_expr **e, int *walk_subtrees ATTRIBUTE_UNUSED,
3847 void *data)
3849 gfc_expr *f = *e;
3850 const char *name;
3851 static gfc_expr *last = NULL;
3852 bool *found = (bool *) data;
3854 if (f->expr_type == EXPR_FUNCTION)
3856 *found = 1;
3857 if (f != last && !gfc_pure_function (f, &name)
3858 && !gfc_implicit_pure_function (f))
3860 if (name)
3861 gfc_warning (OPT_Wfunction_elimination,
3862 "Impure function %qs at %L might not be evaluated",
3863 name, &f->where);
3864 else
3865 gfc_warning (OPT_Wfunction_elimination,
3866 "Impure function at %L might not be evaluated",
3867 &f->where);
3869 last = f;
3872 return 0;
3876 /* Resolve an operator expression node. This can involve replacing the
3877 operation with a user defined function call. */
3879 static bool
3880 resolve_operator (gfc_expr *e)
3882 gfc_expr *op1, *op2;
3883 char msg[200];
3884 bool dual_locus_error;
3885 bool t;
3887 /* Resolve all subnodes-- give them types. */
3889 switch (e->value.op.op)
3891 default:
3892 if (!gfc_resolve_expr (e->value.op.op2))
3893 return false;
3895 /* Fall through. */
3897 case INTRINSIC_NOT:
3898 case INTRINSIC_UPLUS:
3899 case INTRINSIC_UMINUS:
3900 case INTRINSIC_PARENTHESES:
3901 if (!gfc_resolve_expr (e->value.op.op1))
3902 return false;
3903 break;
3906 /* Typecheck the new node. */
3908 op1 = e->value.op.op1;
3909 op2 = e->value.op.op2;
3910 dual_locus_error = false;
3912 if ((op1 && op1->expr_type == EXPR_NULL)
3913 || (op2 && op2->expr_type == EXPR_NULL))
3915 sprintf (msg, _("Invalid context for NULL() pointer at %%L"));
3916 goto bad_op;
3919 switch (e->value.op.op)
3921 case INTRINSIC_UPLUS:
3922 case INTRINSIC_UMINUS:
3923 if (op1->ts.type == BT_INTEGER
3924 || op1->ts.type == BT_REAL
3925 || op1->ts.type == BT_COMPLEX)
3927 e->ts = op1->ts;
3928 break;
3931 sprintf (msg, _("Operand of unary numeric operator %%<%s%%> at %%L is %s"),
3932 gfc_op2string (e->value.op.op), gfc_typename (&e->ts));
3933 goto bad_op;
3935 case INTRINSIC_PLUS:
3936 case INTRINSIC_MINUS:
3937 case INTRINSIC_TIMES:
3938 case INTRINSIC_DIVIDE:
3939 case INTRINSIC_POWER:
3940 if (gfc_numeric_ts (&op1->ts) && gfc_numeric_ts (&op2->ts))
3942 gfc_type_convert_binary (e, 1);
3943 break;
3946 if (op1->ts.type == BT_DERIVED || op2->ts.type == BT_DERIVED)
3947 sprintf (msg,
3948 _("Unexpected derived-type entities in binary intrinsic "
3949 "numeric operator %%<%s%%> at %%L"),
3950 gfc_op2string (e->value.op.op));
3951 else
3952 sprintf (msg,
3953 _("Operands of binary numeric operator %%<%s%%> at %%L are %s/%s"),
3954 gfc_op2string (e->value.op.op), gfc_typename (&op1->ts),
3955 gfc_typename (&op2->ts));
3956 goto bad_op;
3958 case INTRINSIC_CONCAT:
3959 if (op1->ts.type == BT_CHARACTER && op2->ts.type == BT_CHARACTER
3960 && op1->ts.kind == op2->ts.kind)
3962 e->ts.type = BT_CHARACTER;
3963 e->ts.kind = op1->ts.kind;
3964 break;
3967 sprintf (msg,
3968 _("Operands of string concatenation operator at %%L are %s/%s"),
3969 gfc_typename (&op1->ts), gfc_typename (&op2->ts));
3970 goto bad_op;
3972 case INTRINSIC_AND:
3973 case INTRINSIC_OR:
3974 case INTRINSIC_EQV:
3975 case INTRINSIC_NEQV:
3976 if (op1->ts.type == BT_LOGICAL && op2->ts.type == BT_LOGICAL)
3978 e->ts.type = BT_LOGICAL;
3979 e->ts.kind = gfc_kind_max (op1, op2);
3980 if (op1->ts.kind < e->ts.kind)
3981 gfc_convert_type (op1, &e->ts, 2);
3982 else if (op2->ts.kind < e->ts.kind)
3983 gfc_convert_type (op2, &e->ts, 2);
3985 if (flag_frontend_optimize &&
3986 (e->value.op.op == INTRINSIC_AND || e->value.op.op == INTRINSIC_OR))
3988 /* Warn about short-circuiting
3989 with impure function as second operand. */
3990 bool op2_f = false;
3991 gfc_expr_walker (&op2, impure_function_callback, &op2_f);
3993 break;
3996 /* Logical ops on integers become bitwise ops with -fdec. */
3997 else if (flag_dec
3998 && (op1->ts.type == BT_INTEGER || op2->ts.type == BT_INTEGER))
4000 e->ts.type = BT_INTEGER;
4001 e->ts.kind = gfc_kind_max (op1, op2);
4002 if (op1->ts.type != e->ts.type || op1->ts.kind != e->ts.kind)
4003 gfc_convert_type (op1, &e->ts, 1);
4004 if (op2->ts.type != e->ts.type || op2->ts.kind != e->ts.kind)
4005 gfc_convert_type (op2, &e->ts, 1);
4006 e = logical_to_bitwise (e);
4007 break;
4010 sprintf (msg, _("Operands of logical operator %%<%s%%> at %%L are %s/%s"),
4011 gfc_op2string (e->value.op.op), gfc_typename (&op1->ts),
4012 gfc_typename (&op2->ts));
4014 goto bad_op;
4016 case INTRINSIC_NOT:
4017 /* Logical ops on integers become bitwise ops with -fdec. */
4018 if (flag_dec && op1->ts.type == BT_INTEGER)
4020 e->ts.type = BT_INTEGER;
4021 e->ts.kind = op1->ts.kind;
4022 e = logical_to_bitwise (e);
4023 break;
4026 if (op1->ts.type == BT_LOGICAL)
4028 e->ts.type = BT_LOGICAL;
4029 e->ts.kind = op1->ts.kind;
4030 break;
4033 sprintf (msg, _("Operand of .not. operator at %%L is %s"),
4034 gfc_typename (&op1->ts));
4035 goto bad_op;
4037 case INTRINSIC_GT:
4038 case INTRINSIC_GT_OS:
4039 case INTRINSIC_GE:
4040 case INTRINSIC_GE_OS:
4041 case INTRINSIC_LT:
4042 case INTRINSIC_LT_OS:
4043 case INTRINSIC_LE:
4044 case INTRINSIC_LE_OS:
4045 if (op1->ts.type == BT_COMPLEX || op2->ts.type == BT_COMPLEX)
4047 strcpy (msg, _("COMPLEX quantities cannot be compared at %L"));
4048 goto bad_op;
4051 /* Fall through. */
4053 case INTRINSIC_EQ:
4054 case INTRINSIC_EQ_OS:
4055 case INTRINSIC_NE:
4056 case INTRINSIC_NE_OS:
4057 if (op1->ts.type == BT_CHARACTER && op2->ts.type == BT_CHARACTER
4058 && op1->ts.kind == op2->ts.kind)
4060 e->ts.type = BT_LOGICAL;
4061 e->ts.kind = gfc_default_logical_kind;
4062 break;
4065 if (gfc_numeric_ts (&op1->ts) && gfc_numeric_ts (&op2->ts))
4067 gfc_type_convert_binary (e, 1);
4069 e->ts.type = BT_LOGICAL;
4070 e->ts.kind = gfc_default_logical_kind;
4072 if (warn_compare_reals)
4074 gfc_intrinsic_op op = e->value.op.op;
4076 /* Type conversion has made sure that the types of op1 and op2
4077 agree, so it is only necessary to check the first one. */
4078 if ((op1->ts.type == BT_REAL || op1->ts.type == BT_COMPLEX)
4079 && (op == INTRINSIC_EQ || op == INTRINSIC_EQ_OS
4080 || op == INTRINSIC_NE || op == INTRINSIC_NE_OS))
4082 const char *msg;
4084 if (op == INTRINSIC_EQ || op == INTRINSIC_EQ_OS)
4085 msg = "Equality comparison for %s at %L";
4086 else
4087 msg = "Inequality comparison for %s at %L";
4089 gfc_warning (OPT_Wcompare_reals, msg,
4090 gfc_typename (&op1->ts), &op1->where);
4094 break;
4097 if (op1->ts.type == BT_LOGICAL && op2->ts.type == BT_LOGICAL)
4098 sprintf (msg,
4099 _("Logicals at %%L must be compared with %s instead of %s"),
4100 (e->value.op.op == INTRINSIC_EQ
4101 || e->value.op.op == INTRINSIC_EQ_OS)
4102 ? ".eqv." : ".neqv.", gfc_op2string (e->value.op.op));
4103 else
4104 sprintf (msg,
4105 _("Operands of comparison operator %%<%s%%> at %%L are %s/%s"),
4106 gfc_op2string (e->value.op.op), gfc_typename (&op1->ts),
4107 gfc_typename (&op2->ts));
4109 goto bad_op;
4111 case INTRINSIC_USER:
4112 if (e->value.op.uop->op == NULL)
4114 const char *name = e->value.op.uop->name;
4115 const char *guessed;
4116 guessed = lookup_uop_fuzzy (name, e->value.op.uop->ns->uop_root);
4117 if (guessed)
4118 sprintf (msg, _("Unknown operator %%<%s%%> at %%L; did you mean '%s'?"),
4119 name, guessed);
4120 else
4121 sprintf (msg, _("Unknown operator %%<%s%%> at %%L"), name);
4123 else if (op2 == NULL)
4124 sprintf (msg, _("Operand of user operator %%<%s%%> at %%L is %s"),
4125 e->value.op.uop->name, gfc_typename (&op1->ts));
4126 else
4128 sprintf (msg, _("Operands of user operator %%<%s%%> at %%L are %s/%s"),
4129 e->value.op.uop->name, gfc_typename (&op1->ts),
4130 gfc_typename (&op2->ts));
4131 e->value.op.uop->op->sym->attr.referenced = 1;
4134 goto bad_op;
4136 case INTRINSIC_PARENTHESES:
4137 e->ts = op1->ts;
4138 if (e->ts.type == BT_CHARACTER)
4139 e->ts.u.cl = op1->ts.u.cl;
4140 break;
4142 default:
4143 gfc_internal_error ("resolve_operator(): Bad intrinsic");
4146 /* Deal with arrayness of an operand through an operator. */
4148 t = true;
4150 switch (e->value.op.op)
4152 case INTRINSIC_PLUS:
4153 case INTRINSIC_MINUS:
4154 case INTRINSIC_TIMES:
4155 case INTRINSIC_DIVIDE:
4156 case INTRINSIC_POWER:
4157 case INTRINSIC_CONCAT:
4158 case INTRINSIC_AND:
4159 case INTRINSIC_OR:
4160 case INTRINSIC_EQV:
4161 case INTRINSIC_NEQV:
4162 case INTRINSIC_EQ:
4163 case INTRINSIC_EQ_OS:
4164 case INTRINSIC_NE:
4165 case INTRINSIC_NE_OS:
4166 case INTRINSIC_GT:
4167 case INTRINSIC_GT_OS:
4168 case INTRINSIC_GE:
4169 case INTRINSIC_GE_OS:
4170 case INTRINSIC_LT:
4171 case INTRINSIC_LT_OS:
4172 case INTRINSIC_LE:
4173 case INTRINSIC_LE_OS:
4175 if (op1->rank == 0 && op2->rank == 0)
4176 e->rank = 0;
4178 if (op1->rank == 0 && op2->rank != 0)
4180 e->rank = op2->rank;
4182 if (e->shape == NULL)
4183 e->shape = gfc_copy_shape (op2->shape, op2->rank);
4186 if (op1->rank != 0 && op2->rank == 0)
4188 e->rank = op1->rank;
4190 if (e->shape == NULL)
4191 e->shape = gfc_copy_shape (op1->shape, op1->rank);
4194 if (op1->rank != 0 && op2->rank != 0)
4196 if (op1->rank == op2->rank)
4198 e->rank = op1->rank;
4199 if (e->shape == NULL)
4201 t = compare_shapes (op1, op2);
4202 if (!t)
4203 e->shape = NULL;
4204 else
4205 e->shape = gfc_copy_shape (op1->shape, op1->rank);
4208 else
4210 /* Allow higher level expressions to work. */
4211 e->rank = 0;
4213 /* Try user-defined operators, and otherwise throw an error. */
4214 dual_locus_error = true;
4215 sprintf (msg,
4216 _("Inconsistent ranks for operator at %%L and %%L"));
4217 goto bad_op;
4221 break;
4223 case INTRINSIC_PARENTHESES:
4224 case INTRINSIC_NOT:
4225 case INTRINSIC_UPLUS:
4226 case INTRINSIC_UMINUS:
4227 /* Simply copy arrayness attribute */
4228 e->rank = op1->rank;
4230 if (e->shape == NULL)
4231 e->shape = gfc_copy_shape (op1->shape, op1->rank);
4233 break;
4235 default:
4236 break;
4239 /* Attempt to simplify the expression. */
4240 if (t)
4242 t = gfc_simplify_expr (e, 0);
4243 /* Some calls do not succeed in simplification and return false
4244 even though there is no error; e.g. variable references to
4245 PARAMETER arrays. */
4246 if (!gfc_is_constant_expr (e))
4247 t = true;
4249 return t;
4251 bad_op:
4254 match m = gfc_extend_expr (e);
4255 if (m == MATCH_YES)
4256 return true;
4257 if (m == MATCH_ERROR)
4258 return false;
4261 if (dual_locus_error)
4262 gfc_error (msg, &op1->where, &op2->where);
4263 else
4264 gfc_error (msg, &e->where);
4266 return false;
4270 /************** Array resolution subroutines **************/
4272 enum compare_result
4273 { CMP_LT, CMP_EQ, CMP_GT, CMP_UNKNOWN };
4275 /* Compare two integer expressions. */
4277 static compare_result
4278 compare_bound (gfc_expr *a, gfc_expr *b)
4280 int i;
4282 if (a == NULL || a->expr_type != EXPR_CONSTANT
4283 || b == NULL || b->expr_type != EXPR_CONSTANT)
4284 return CMP_UNKNOWN;
4286 /* If either of the types isn't INTEGER, we must have
4287 raised an error earlier. */
4289 if (a->ts.type != BT_INTEGER || b->ts.type != BT_INTEGER)
4290 return CMP_UNKNOWN;
4292 i = mpz_cmp (a->value.integer, b->value.integer);
4294 if (i < 0)
4295 return CMP_LT;
4296 if (i > 0)
4297 return CMP_GT;
4298 return CMP_EQ;
4302 /* Compare an integer expression with an integer. */
4304 static compare_result
4305 compare_bound_int (gfc_expr *a, int b)
4307 int i;
4309 if (a == NULL || a->expr_type != EXPR_CONSTANT)
4310 return CMP_UNKNOWN;
4312 if (a->ts.type != BT_INTEGER)
4313 gfc_internal_error ("compare_bound_int(): Bad expression");
4315 i = mpz_cmp_si (a->value.integer, b);
4317 if (i < 0)
4318 return CMP_LT;
4319 if (i > 0)
4320 return CMP_GT;
4321 return CMP_EQ;
4325 /* Compare an integer expression with a mpz_t. */
4327 static compare_result
4328 compare_bound_mpz_t (gfc_expr *a, mpz_t b)
4330 int i;
4332 if (a == NULL || a->expr_type != EXPR_CONSTANT)
4333 return CMP_UNKNOWN;
4335 if (a->ts.type != BT_INTEGER)
4336 gfc_internal_error ("compare_bound_int(): Bad expression");
4338 i = mpz_cmp (a->value.integer, b);
4340 if (i < 0)
4341 return CMP_LT;
4342 if (i > 0)
4343 return CMP_GT;
4344 return CMP_EQ;
4348 /* Compute the last value of a sequence given by a triplet.
4349 Return 0 if it wasn't able to compute the last value, or if the
4350 sequence if empty, and 1 otherwise. */
4352 static int
4353 compute_last_value_for_triplet (gfc_expr *start, gfc_expr *end,
4354 gfc_expr *stride, mpz_t last)
4356 mpz_t rem;
4358 if (start == NULL || start->expr_type != EXPR_CONSTANT
4359 || end == NULL || end->expr_type != EXPR_CONSTANT
4360 || (stride != NULL && stride->expr_type != EXPR_CONSTANT))
4361 return 0;
4363 if (start->ts.type != BT_INTEGER || end->ts.type != BT_INTEGER
4364 || (stride != NULL && stride->ts.type != BT_INTEGER))
4365 return 0;
4367 if (stride == NULL || compare_bound_int (stride, 1) == CMP_EQ)
4369 if (compare_bound (start, end) == CMP_GT)
4370 return 0;
4371 mpz_set (last, end->value.integer);
4372 return 1;
4375 if (compare_bound_int (stride, 0) == CMP_GT)
4377 /* Stride is positive */
4378 if (mpz_cmp (start->value.integer, end->value.integer) > 0)
4379 return 0;
4381 else
4383 /* Stride is negative */
4384 if (mpz_cmp (start->value.integer, end->value.integer) < 0)
4385 return 0;
4388 mpz_init (rem);
4389 mpz_sub (rem, end->value.integer, start->value.integer);
4390 mpz_tdiv_r (rem, rem, stride->value.integer);
4391 mpz_sub (last, end->value.integer, rem);
4392 mpz_clear (rem);
4394 return 1;
4398 /* Compare a single dimension of an array reference to the array
4399 specification. */
4401 static bool
4402 check_dimension (int i, gfc_array_ref *ar, gfc_array_spec *as)
4404 mpz_t last_value;
4406 if (ar->dimen_type[i] == DIMEN_STAR)
4408 gcc_assert (ar->stride[i] == NULL);
4409 /* This implies [*] as [*:] and [*:3] are not possible. */
4410 if (ar->start[i] == NULL)
4412 gcc_assert (ar->end[i] == NULL);
4413 return true;
4417 /* Given start, end and stride values, calculate the minimum and
4418 maximum referenced indexes. */
4420 switch (ar->dimen_type[i])
4422 case DIMEN_VECTOR:
4423 case DIMEN_THIS_IMAGE:
4424 break;
4426 case DIMEN_STAR:
4427 case DIMEN_ELEMENT:
4428 if (compare_bound (ar->start[i], as->lower[i]) == CMP_LT)
4430 if (i < as->rank)
4431 gfc_warning (0, "Array reference at %L is out of bounds "
4432 "(%ld < %ld) in dimension %d", &ar->c_where[i],
4433 mpz_get_si (ar->start[i]->value.integer),
4434 mpz_get_si (as->lower[i]->value.integer), i+1);
4435 else
4436 gfc_warning (0, "Array reference at %L is out of bounds "
4437 "(%ld < %ld) in codimension %d", &ar->c_where[i],
4438 mpz_get_si (ar->start[i]->value.integer),
4439 mpz_get_si (as->lower[i]->value.integer),
4440 i + 1 - as->rank);
4441 return true;
4443 if (compare_bound (ar->start[i], as->upper[i]) == CMP_GT)
4445 if (i < as->rank)
4446 gfc_warning (0, "Array reference at %L is out of bounds "
4447 "(%ld > %ld) in dimension %d", &ar->c_where[i],
4448 mpz_get_si (ar->start[i]->value.integer),
4449 mpz_get_si (as->upper[i]->value.integer), i+1);
4450 else
4451 gfc_warning (0, "Array reference at %L is out of bounds "
4452 "(%ld > %ld) in codimension %d", &ar->c_where[i],
4453 mpz_get_si (ar->start[i]->value.integer),
4454 mpz_get_si (as->upper[i]->value.integer),
4455 i + 1 - as->rank);
4456 return true;
4459 break;
4461 case DIMEN_RANGE:
4463 #define AR_START (ar->start[i] ? ar->start[i] : as->lower[i])
4464 #define AR_END (ar->end[i] ? ar->end[i] : as->upper[i])
4466 compare_result comp_start_end = compare_bound (AR_START, AR_END);
4468 /* Check for zero stride, which is not allowed. */
4469 if (compare_bound_int (ar->stride[i], 0) == CMP_EQ)
4471 gfc_error ("Illegal stride of zero at %L", &ar->c_where[i]);
4472 return false;
4475 /* if start == len || (stride > 0 && start < len)
4476 || (stride < 0 && start > len),
4477 then the array section contains at least one element. In this
4478 case, there is an out-of-bounds access if
4479 (start < lower || start > upper). */
4480 if (compare_bound (AR_START, AR_END) == CMP_EQ
4481 || ((compare_bound_int (ar->stride[i], 0) == CMP_GT
4482 || ar->stride[i] == NULL) && comp_start_end == CMP_LT)
4483 || (compare_bound_int (ar->stride[i], 0) == CMP_LT
4484 && comp_start_end == CMP_GT))
4486 if (compare_bound (AR_START, as->lower[i]) == CMP_LT)
4488 gfc_warning (0, "Lower array reference at %L is out of bounds "
4489 "(%ld < %ld) in dimension %d", &ar->c_where[i],
4490 mpz_get_si (AR_START->value.integer),
4491 mpz_get_si (as->lower[i]->value.integer), i+1);
4492 return true;
4494 if (compare_bound (AR_START, as->upper[i]) == CMP_GT)
4496 gfc_warning (0, "Lower array reference at %L is out of bounds "
4497 "(%ld > %ld) in dimension %d", &ar->c_where[i],
4498 mpz_get_si (AR_START->value.integer),
4499 mpz_get_si (as->upper[i]->value.integer), i+1);
4500 return true;
4504 /* If we can compute the highest index of the array section,
4505 then it also has to be between lower and upper. */
4506 mpz_init (last_value);
4507 if (compute_last_value_for_triplet (AR_START, AR_END, ar->stride[i],
4508 last_value))
4510 if (compare_bound_mpz_t (as->lower[i], last_value) == CMP_GT)
4512 gfc_warning (0, "Upper array reference at %L is out of bounds "
4513 "(%ld < %ld) in dimension %d", &ar->c_where[i],
4514 mpz_get_si (last_value),
4515 mpz_get_si (as->lower[i]->value.integer), i+1);
4516 mpz_clear (last_value);
4517 return true;
4519 if (compare_bound_mpz_t (as->upper[i], last_value) == CMP_LT)
4521 gfc_warning (0, "Upper array reference at %L is out of bounds "
4522 "(%ld > %ld) in dimension %d", &ar->c_where[i],
4523 mpz_get_si (last_value),
4524 mpz_get_si (as->upper[i]->value.integer), i+1);
4525 mpz_clear (last_value);
4526 return true;
4529 mpz_clear (last_value);
4531 #undef AR_START
4532 #undef AR_END
4534 break;
4536 default:
4537 gfc_internal_error ("check_dimension(): Bad array reference");
4540 return true;
4544 /* Compare an array reference with an array specification. */
4546 static bool
4547 compare_spec_to_ref (gfc_array_ref *ar)
4549 gfc_array_spec *as;
4550 int i;
4552 as = ar->as;
4553 i = as->rank - 1;
4554 /* TODO: Full array sections are only allowed as actual parameters. */
4555 if (as->type == AS_ASSUMED_SIZE
4556 && (/*ar->type == AR_FULL
4557 ||*/ (ar->type == AR_SECTION
4558 && ar->dimen_type[i] == DIMEN_RANGE && ar->end[i] == NULL)))
4560 gfc_error ("Rightmost upper bound of assumed size array section "
4561 "not specified at %L", &ar->where);
4562 return false;
4565 if (ar->type == AR_FULL)
4566 return true;
4568 if (as->rank != ar->dimen)
4570 gfc_error ("Rank mismatch in array reference at %L (%d/%d)",
4571 &ar->where, ar->dimen, as->rank);
4572 return false;
4575 /* ar->codimen == 0 is a local array. */
4576 if (as->corank != ar->codimen && ar->codimen != 0)
4578 gfc_error ("Coindex rank mismatch in array reference at %L (%d/%d)",
4579 &ar->where, ar->codimen, as->corank);
4580 return false;
4583 for (i = 0; i < as->rank; i++)
4584 if (!check_dimension (i, ar, as))
4585 return false;
4587 /* Local access has no coarray spec. */
4588 if (ar->codimen != 0)
4589 for (i = as->rank; i < as->rank + as->corank; i++)
4591 if (ar->dimen_type[i] != DIMEN_ELEMENT && !ar->in_allocate
4592 && ar->dimen_type[i] != DIMEN_THIS_IMAGE)
4594 gfc_error ("Coindex of codimension %d must be a scalar at %L",
4595 i + 1 - as->rank, &ar->where);
4596 return false;
4598 if (!check_dimension (i, ar, as))
4599 return false;
4602 return true;
4606 /* Resolve one part of an array index. */
4608 static bool
4609 gfc_resolve_index_1 (gfc_expr *index, int check_scalar,
4610 int force_index_integer_kind)
4612 gfc_typespec ts;
4614 if (index == NULL)
4615 return true;
4617 if (!gfc_resolve_expr (index))
4618 return false;
4620 if (check_scalar && index->rank != 0)
4622 gfc_error ("Array index at %L must be scalar", &index->where);
4623 return false;
4626 if (index->ts.type != BT_INTEGER && index->ts.type != BT_REAL)
4628 gfc_error ("Array index at %L must be of INTEGER type, found %s",
4629 &index->where, gfc_basic_typename (index->ts.type));
4630 return false;
4633 if (index->ts.type == BT_REAL)
4634 if (!gfc_notify_std (GFC_STD_LEGACY, "REAL array index at %L",
4635 &index->where))
4636 return false;
4638 if ((index->ts.kind != gfc_index_integer_kind
4639 && force_index_integer_kind)
4640 || index->ts.type != BT_INTEGER)
4642 gfc_clear_ts (&ts);
4643 ts.type = BT_INTEGER;
4644 ts.kind = gfc_index_integer_kind;
4646 gfc_convert_type_warn (index, &ts, 2, 0);
4649 return true;
4652 /* Resolve one part of an array index. */
4654 bool
4655 gfc_resolve_index (gfc_expr *index, int check_scalar)
4657 return gfc_resolve_index_1 (index, check_scalar, 1);
4660 /* Resolve a dim argument to an intrinsic function. */
4662 bool
4663 gfc_resolve_dim_arg (gfc_expr *dim)
4665 if (dim == NULL)
4666 return true;
4668 if (!gfc_resolve_expr (dim))
4669 return false;
4671 if (dim->rank != 0)
4673 gfc_error ("Argument dim at %L must be scalar", &dim->where);
4674 return false;
4678 if (dim->ts.type != BT_INTEGER)
4680 gfc_error ("Argument dim at %L must be of INTEGER type", &dim->where);
4681 return false;
4684 if (dim->ts.kind != gfc_index_integer_kind)
4686 gfc_typespec ts;
4688 gfc_clear_ts (&ts);
4689 ts.type = BT_INTEGER;
4690 ts.kind = gfc_index_integer_kind;
4692 gfc_convert_type_warn (dim, &ts, 2, 0);
4695 return true;
4698 /* Given an expression that contains array references, update those array
4699 references to point to the right array specifications. While this is
4700 filled in during matching, this information is difficult to save and load
4701 in a module, so we take care of it here.
4703 The idea here is that the original array reference comes from the
4704 base symbol. We traverse the list of reference structures, setting
4705 the stored reference to references. Component references can
4706 provide an additional array specification. */
4708 static void
4709 find_array_spec (gfc_expr *e)
4711 gfc_array_spec *as;
4712 gfc_component *c;
4713 gfc_ref *ref;
4715 if (e->symtree->n.sym->ts.type == BT_CLASS)
4716 as = CLASS_DATA (e->symtree->n.sym)->as;
4717 else
4718 as = e->symtree->n.sym->as;
4720 for (ref = e->ref; ref; ref = ref->next)
4721 switch (ref->type)
4723 case REF_ARRAY:
4724 if (as == NULL)
4725 gfc_internal_error ("find_array_spec(): Missing spec");
4727 ref->u.ar.as = as;
4728 as = NULL;
4729 break;
4731 case REF_COMPONENT:
4732 c = ref->u.c.component;
4733 if (c->attr.dimension)
4735 if (as != NULL)
4736 gfc_internal_error ("find_array_spec(): unused as(1)");
4737 as = c->as;
4740 break;
4742 case REF_SUBSTRING:
4743 case REF_INQUIRY:
4744 break;
4747 if (as != NULL)
4748 gfc_internal_error ("find_array_spec(): unused as(2)");
4752 /* Resolve an array reference. */
4754 static bool
4755 resolve_array_ref (gfc_array_ref *ar)
4757 int i, check_scalar;
4758 gfc_expr *e;
4760 for (i = 0; i < ar->dimen + ar->codimen; i++)
4762 check_scalar = ar->dimen_type[i] == DIMEN_RANGE;
4764 /* Do not force gfc_index_integer_kind for the start. We can
4765 do fine with any integer kind. This avoids temporary arrays
4766 created for indexing with a vector. */
4767 if (!gfc_resolve_index_1 (ar->start[i], check_scalar, 0))
4768 return false;
4769 if (!gfc_resolve_index (ar->end[i], check_scalar))
4770 return false;
4771 if (!gfc_resolve_index (ar->stride[i], check_scalar))
4772 return false;
4774 e = ar->start[i];
4776 if (ar->dimen_type[i] == DIMEN_UNKNOWN)
4777 switch (e->rank)
4779 case 0:
4780 ar->dimen_type[i] = DIMEN_ELEMENT;
4781 break;
4783 case 1:
4784 ar->dimen_type[i] = DIMEN_VECTOR;
4785 if (e->expr_type == EXPR_VARIABLE
4786 && e->symtree->n.sym->ts.type == BT_DERIVED)
4787 ar->start[i] = gfc_get_parentheses (e);
4788 break;
4790 default:
4791 gfc_error ("Array index at %L is an array of rank %d",
4792 &ar->c_where[i], e->rank);
4793 return false;
4796 /* Fill in the upper bound, which may be lower than the
4797 specified one for something like a(2:10:5), which is
4798 identical to a(2:7:5). Only relevant for strides not equal
4799 to one. Don't try a division by zero. */
4800 if (ar->dimen_type[i] == DIMEN_RANGE
4801 && ar->stride[i] != NULL && ar->stride[i]->expr_type == EXPR_CONSTANT
4802 && mpz_cmp_si (ar->stride[i]->value.integer, 1L) != 0
4803 && mpz_cmp_si (ar->stride[i]->value.integer, 0L) != 0)
4805 mpz_t size, end;
4807 if (gfc_ref_dimen_size (ar, i, &size, &end))
4809 if (ar->end[i] == NULL)
4811 ar->end[i] =
4812 gfc_get_constant_expr (BT_INTEGER, gfc_index_integer_kind,
4813 &ar->where);
4814 mpz_set (ar->end[i]->value.integer, end);
4816 else if (ar->end[i]->ts.type == BT_INTEGER
4817 && ar->end[i]->expr_type == EXPR_CONSTANT)
4819 mpz_set (ar->end[i]->value.integer, end);
4821 else
4822 gcc_unreachable ();
4824 mpz_clear (size);
4825 mpz_clear (end);
4830 if (ar->type == AR_FULL)
4832 if (ar->as->rank == 0)
4833 ar->type = AR_ELEMENT;
4835 /* Make sure array is the same as array(:,:), this way
4836 we don't need to special case all the time. */
4837 ar->dimen = ar->as->rank;
4838 for (i = 0; i < ar->dimen; i++)
4840 ar->dimen_type[i] = DIMEN_RANGE;
4842 gcc_assert (ar->start[i] == NULL);
4843 gcc_assert (ar->end[i] == NULL);
4844 gcc_assert (ar->stride[i] == NULL);
4848 /* If the reference type is unknown, figure out what kind it is. */
4850 if (ar->type == AR_UNKNOWN)
4852 ar->type = AR_ELEMENT;
4853 for (i = 0; i < ar->dimen; i++)
4854 if (ar->dimen_type[i] == DIMEN_RANGE
4855 || ar->dimen_type[i] == DIMEN_VECTOR)
4857 ar->type = AR_SECTION;
4858 break;
4862 if (!ar->as->cray_pointee && !compare_spec_to_ref (ar))
4863 return false;
4865 if (ar->as->corank && ar->codimen == 0)
4867 int n;
4868 ar->codimen = ar->as->corank;
4869 for (n = ar->dimen; n < ar->dimen + ar->codimen; n++)
4870 ar->dimen_type[n] = DIMEN_THIS_IMAGE;
4873 return true;
4877 static bool
4878 resolve_substring (gfc_ref *ref)
4880 int k = gfc_validate_kind (BT_INTEGER, gfc_charlen_int_kind, false);
4882 if (ref->u.ss.start != NULL)
4884 if (!gfc_resolve_expr (ref->u.ss.start))
4885 return false;
4887 if (ref->u.ss.start->ts.type != BT_INTEGER)
4889 gfc_error ("Substring start index at %L must be of type INTEGER",
4890 &ref->u.ss.start->where);
4891 return false;
4894 if (ref->u.ss.start->rank != 0)
4896 gfc_error ("Substring start index at %L must be scalar",
4897 &ref->u.ss.start->where);
4898 return false;
4901 if (compare_bound_int (ref->u.ss.start, 1) == CMP_LT
4902 && (compare_bound (ref->u.ss.end, ref->u.ss.start) == CMP_EQ
4903 || compare_bound (ref->u.ss.end, ref->u.ss.start) == CMP_GT))
4905 gfc_error ("Substring start index at %L is less than one",
4906 &ref->u.ss.start->where);
4907 return false;
4911 if (ref->u.ss.end != NULL)
4913 if (!gfc_resolve_expr (ref->u.ss.end))
4914 return false;
4916 if (ref->u.ss.end->ts.type != BT_INTEGER)
4918 gfc_error ("Substring end index at %L must be of type INTEGER",
4919 &ref->u.ss.end->where);
4920 return false;
4923 if (ref->u.ss.end->rank != 0)
4925 gfc_error ("Substring end index at %L must be scalar",
4926 &ref->u.ss.end->where);
4927 return false;
4930 if (ref->u.ss.length != NULL
4931 && compare_bound (ref->u.ss.end, ref->u.ss.length->length) == CMP_GT
4932 && (compare_bound (ref->u.ss.end, ref->u.ss.start) == CMP_EQ
4933 || compare_bound (ref->u.ss.end, ref->u.ss.start) == CMP_GT))
4935 gfc_error ("Substring end index at %L exceeds the string length",
4936 &ref->u.ss.start->where);
4937 return false;
4940 if (compare_bound_mpz_t (ref->u.ss.end,
4941 gfc_integer_kinds[k].huge) == CMP_GT
4942 && (compare_bound (ref->u.ss.end, ref->u.ss.start) == CMP_EQ
4943 || compare_bound (ref->u.ss.end, ref->u.ss.start) == CMP_GT))
4945 gfc_error ("Substring end index at %L is too large",
4946 &ref->u.ss.end->where);
4947 return false;
4951 return true;
4955 /* This function supplies missing substring charlens. */
4957 void
4958 gfc_resolve_substring_charlen (gfc_expr *e)
4960 gfc_ref *char_ref;
4961 gfc_expr *start, *end;
4962 gfc_typespec *ts = NULL;
4964 for (char_ref = e->ref; char_ref; char_ref = char_ref->next)
4966 if (char_ref->type == REF_SUBSTRING || char_ref->type == REF_INQUIRY)
4967 break;
4968 if (char_ref->type == REF_COMPONENT)
4969 ts = &char_ref->u.c.component->ts;
4972 if (!char_ref || char_ref->type == REF_INQUIRY)
4973 return;
4975 gcc_assert (char_ref->next == NULL);
4977 if (e->ts.u.cl)
4979 if (e->ts.u.cl->length)
4980 gfc_free_expr (e->ts.u.cl->length);
4981 else if (e->expr_type == EXPR_VARIABLE && e->symtree->n.sym->attr.dummy)
4982 return;
4985 e->ts.type = BT_CHARACTER;
4986 e->ts.kind = gfc_default_character_kind;
4988 if (!e->ts.u.cl)
4989 e->ts.u.cl = gfc_new_charlen (gfc_current_ns, NULL);
4991 if (char_ref->u.ss.start)
4992 start = gfc_copy_expr (char_ref->u.ss.start);
4993 else
4994 start = gfc_get_int_expr (gfc_charlen_int_kind, NULL, 1);
4996 if (char_ref->u.ss.end)
4997 end = gfc_copy_expr (char_ref->u.ss.end);
4998 else if (e->expr_type == EXPR_VARIABLE)
5000 if (!ts)
5001 ts = &e->symtree->n.sym->ts;
5002 end = gfc_copy_expr (ts->u.cl->length);
5004 else
5005 end = NULL;
5007 if (!start || !end)
5009 gfc_free_expr (start);
5010 gfc_free_expr (end);
5011 return;
5014 /* Length = (end - start + 1). */
5015 e->ts.u.cl->length = gfc_subtract (end, start);
5016 e->ts.u.cl->length = gfc_add (e->ts.u.cl->length,
5017 gfc_get_int_expr (gfc_charlen_int_kind,
5018 NULL, 1));
5020 /* F2008, 6.4.1: Both the starting point and the ending point shall
5021 be within the range 1, 2, ..., n unless the starting point exceeds
5022 the ending point, in which case the substring has length zero. */
5024 if (mpz_cmp_si (e->ts.u.cl->length->value.integer, 0) < 0)
5025 mpz_set_si (e->ts.u.cl->length->value.integer, 0);
5027 e->ts.u.cl->length->ts.type = BT_INTEGER;
5028 e->ts.u.cl->length->ts.kind = gfc_charlen_int_kind;
5030 /* Make sure that the length is simplified. */
5031 gfc_simplify_expr (e->ts.u.cl->length, 1);
5032 gfc_resolve_expr (e->ts.u.cl->length);
5036 /* Resolve subtype references. */
5038 static bool
5039 resolve_ref (gfc_expr *expr)
5041 int current_part_dimension, n_components, seen_part_dimension;
5042 gfc_ref *ref;
5044 for (ref = expr->ref; ref; ref = ref->next)
5045 if (ref->type == REF_ARRAY && ref->u.ar.as == NULL)
5047 find_array_spec (expr);
5048 break;
5051 for (ref = expr->ref; ref; ref = ref->next)
5052 switch (ref->type)
5054 case REF_ARRAY:
5055 if (!resolve_array_ref (&ref->u.ar))
5056 return false;
5057 break;
5059 case REF_COMPONENT:
5060 case REF_INQUIRY:
5061 break;
5063 case REF_SUBSTRING:
5064 if (!resolve_substring (ref))
5065 return false;
5066 break;
5069 /* Check constraints on part references. */
5071 current_part_dimension = 0;
5072 seen_part_dimension = 0;
5073 n_components = 0;
5075 for (ref = expr->ref; ref; ref = ref->next)
5077 switch (ref->type)
5079 case REF_ARRAY:
5080 switch (ref->u.ar.type)
5082 case AR_FULL:
5083 /* Coarray scalar. */
5084 if (ref->u.ar.as->rank == 0)
5086 current_part_dimension = 0;
5087 break;
5089 /* Fall through. */
5090 case AR_SECTION:
5091 current_part_dimension = 1;
5092 break;
5094 case AR_ELEMENT:
5095 current_part_dimension = 0;
5096 break;
5098 case AR_UNKNOWN:
5099 gfc_internal_error ("resolve_ref(): Bad array reference");
5102 break;
5104 case REF_COMPONENT:
5105 if (current_part_dimension || seen_part_dimension)
5107 /* F03:C614. */
5108 if (ref->u.c.component->attr.pointer
5109 || ref->u.c.component->attr.proc_pointer
5110 || (ref->u.c.component->ts.type == BT_CLASS
5111 && CLASS_DATA (ref->u.c.component)->attr.pointer))
5113 gfc_error ("Component to the right of a part reference "
5114 "with nonzero rank must not have the POINTER "
5115 "attribute at %L", &expr->where);
5116 return false;
5118 else if (ref->u.c.component->attr.allocatable
5119 || (ref->u.c.component->ts.type == BT_CLASS
5120 && CLASS_DATA (ref->u.c.component)->attr.allocatable))
5123 gfc_error ("Component to the right of a part reference "
5124 "with nonzero rank must not have the ALLOCATABLE "
5125 "attribute at %L", &expr->where);
5126 return false;
5130 n_components++;
5131 break;
5133 case REF_SUBSTRING:
5134 case REF_INQUIRY:
5135 break;
5138 if (((ref->type == REF_COMPONENT && n_components > 1)
5139 || ref->next == NULL)
5140 && current_part_dimension
5141 && seen_part_dimension)
5143 gfc_error ("Two or more part references with nonzero rank must "
5144 "not be specified at %L", &expr->where);
5145 return false;
5148 if (ref->type == REF_COMPONENT)
5150 if (current_part_dimension)
5151 seen_part_dimension = 1;
5153 /* reset to make sure */
5154 current_part_dimension = 0;
5158 return true;
5162 /* Given an expression, determine its shape. This is easier than it sounds.
5163 Leaves the shape array NULL if it is not possible to determine the shape. */
5165 static void
5166 expression_shape (gfc_expr *e)
5168 mpz_t array[GFC_MAX_DIMENSIONS];
5169 int i;
5171 if (e->rank <= 0 || e->shape != NULL)
5172 return;
5174 for (i = 0; i < e->rank; i++)
5175 if (!gfc_array_dimen_size (e, i, &array[i]))
5176 goto fail;
5178 e->shape = gfc_get_shape (e->rank);
5180 memcpy (e->shape, array, e->rank * sizeof (mpz_t));
5182 return;
5184 fail:
5185 for (i--; i >= 0; i--)
5186 mpz_clear (array[i]);
5190 /* Given a variable expression node, compute the rank of the expression by
5191 examining the base symbol and any reference structures it may have. */
5193 void
5194 expression_rank (gfc_expr *e)
5196 gfc_ref *ref;
5197 int i, rank;
5199 /* Just to make sure, because EXPR_COMPCALL's also have an e->ref and that
5200 could lead to serious confusion... */
5201 gcc_assert (e->expr_type != EXPR_COMPCALL);
5203 if (e->ref == NULL)
5205 if (e->expr_type == EXPR_ARRAY)
5206 goto done;
5207 /* Constructors can have a rank different from one via RESHAPE(). */
5209 if (e->symtree == NULL)
5211 e->rank = 0;
5212 goto done;
5215 e->rank = (e->symtree->n.sym->as == NULL)
5216 ? 0 : e->symtree->n.sym->as->rank;
5217 goto done;
5220 rank = 0;
5222 for (ref = e->ref; ref; ref = ref->next)
5224 if (ref->type == REF_COMPONENT && ref->u.c.component->attr.proc_pointer
5225 && ref->u.c.component->attr.function && !ref->next)
5226 rank = ref->u.c.component->as ? ref->u.c.component->as->rank : 0;
5228 if (ref->type != REF_ARRAY)
5229 continue;
5231 if (ref->u.ar.type == AR_FULL)
5233 rank = ref->u.ar.as->rank;
5234 break;
5237 if (ref->u.ar.type == AR_SECTION)
5239 /* Figure out the rank of the section. */
5240 if (rank != 0)
5241 gfc_internal_error ("expression_rank(): Two array specs");
5243 for (i = 0; i < ref->u.ar.dimen; i++)
5244 if (ref->u.ar.dimen_type[i] == DIMEN_RANGE
5245 || ref->u.ar.dimen_type[i] == DIMEN_VECTOR)
5246 rank++;
5248 break;
5252 e->rank = rank;
5254 done:
5255 expression_shape (e);
5259 static void
5260 add_caf_get_intrinsic (gfc_expr *e)
5262 gfc_expr *wrapper, *tmp_expr;
5263 gfc_ref *ref;
5264 int n;
5266 for (ref = e->ref; ref; ref = ref->next)
5267 if (ref->type == REF_ARRAY && ref->u.ar.codimen > 0)
5268 break;
5269 if (ref == NULL)
5270 return;
5272 for (n = ref->u.ar.dimen; n < ref->u.ar.dimen + ref->u.ar.codimen; n++)
5273 if (ref->u.ar.dimen_type[n] != DIMEN_ELEMENT)
5274 return;
5276 tmp_expr = XCNEW (gfc_expr);
5277 *tmp_expr = *e;
5278 wrapper = gfc_build_intrinsic_call (gfc_current_ns, GFC_ISYM_CAF_GET,
5279 "caf_get", tmp_expr->where, 1, tmp_expr);
5280 wrapper->ts = e->ts;
5281 wrapper->rank = e->rank;
5282 if (e->rank)
5283 wrapper->shape = gfc_copy_shape (e->shape, e->rank);
5284 *e = *wrapper;
5285 free (wrapper);
5289 static void
5290 remove_caf_get_intrinsic (gfc_expr *e)
5292 gcc_assert (e->expr_type == EXPR_FUNCTION && e->value.function.isym
5293 && e->value.function.isym->id == GFC_ISYM_CAF_GET);
5294 gfc_expr *e2 = e->value.function.actual->expr;
5295 e->value.function.actual->expr = NULL;
5296 gfc_free_actual_arglist (e->value.function.actual);
5297 gfc_free_shape (&e->shape, e->rank);
5298 *e = *e2;
5299 free (e2);
5303 /* Resolve a variable expression. */
5305 static bool
5306 resolve_variable (gfc_expr *e)
5308 gfc_symbol *sym;
5309 bool t;
5311 t = true;
5313 if (e->symtree == NULL)
5314 return false;
5315 sym = e->symtree->n.sym;
5317 /* Use same check as for TYPE(*) below; this check has to be before TYPE(*)
5318 as ts.type is set to BT_ASSUMED in resolve_symbol. */
5319 if (sym->attr.ext_attr & (1 << EXT_ATTR_NO_ARG_CHECK))
5321 if (!actual_arg || inquiry_argument)
5323 gfc_error ("Variable %s at %L with NO_ARG_CHECK attribute may only "
5324 "be used as actual argument", sym->name, &e->where);
5325 return false;
5328 /* TS 29113, 407b. */
5329 else if (e->ts.type == BT_ASSUMED)
5331 if (!actual_arg)
5333 gfc_error ("Assumed-type variable %s at %L may only be used "
5334 "as actual argument", sym->name, &e->where);
5335 return false;
5337 else if (inquiry_argument && !first_actual_arg)
5339 /* FIXME: It doesn't work reliably as inquiry_argument is not set
5340 for all inquiry functions in resolve_function; the reason is
5341 that the function-name resolution happens too late in that
5342 function. */
5343 gfc_error ("Assumed-type variable %s at %L as actual argument to "
5344 "an inquiry function shall be the first argument",
5345 sym->name, &e->where);
5346 return false;
5349 /* TS 29113, C535b. */
5350 else if ((sym->ts.type == BT_CLASS && sym->attr.class_ok
5351 && CLASS_DATA (sym)->as
5352 && CLASS_DATA (sym)->as->type == AS_ASSUMED_RANK)
5353 || (sym->ts.type != BT_CLASS && sym->as
5354 && sym->as->type == AS_ASSUMED_RANK))
5356 if (!actual_arg)
5358 gfc_error ("Assumed-rank variable %s at %L may only be used as "
5359 "actual argument", sym->name, &e->where);
5360 return false;
5362 else if (inquiry_argument && !first_actual_arg)
5364 /* FIXME: It doesn't work reliably as inquiry_argument is not set
5365 for all inquiry functions in resolve_function; the reason is
5366 that the function-name resolution happens too late in that
5367 function. */
5368 gfc_error ("Assumed-rank variable %s at %L as actual argument "
5369 "to an inquiry function shall be the first argument",
5370 sym->name, &e->where);
5371 return false;
5375 if ((sym->attr.ext_attr & (1 << EXT_ATTR_NO_ARG_CHECK)) && e->ref
5376 && !(e->ref->type == REF_ARRAY && e->ref->u.ar.type == AR_FULL
5377 && e->ref->next == NULL))
5379 gfc_error ("Variable %s at %L with NO_ARG_CHECK attribute shall not have "
5380 "a subobject reference", sym->name, &e->ref->u.ar.where);
5381 return false;
5383 /* TS 29113, 407b. */
5384 else if (e->ts.type == BT_ASSUMED && e->ref
5385 && !(e->ref->type == REF_ARRAY && e->ref->u.ar.type == AR_FULL
5386 && e->ref->next == NULL))
5388 gfc_error ("Assumed-type variable %s at %L shall not have a subobject "
5389 "reference", sym->name, &e->ref->u.ar.where);
5390 return false;
5393 /* TS 29113, C535b. */
5394 if (((sym->ts.type == BT_CLASS && sym->attr.class_ok
5395 && CLASS_DATA (sym)->as
5396 && CLASS_DATA (sym)->as->type == AS_ASSUMED_RANK)
5397 || (sym->ts.type != BT_CLASS && sym->as
5398 && sym->as->type == AS_ASSUMED_RANK))
5399 && e->ref
5400 && !(e->ref->type == REF_ARRAY && e->ref->u.ar.type == AR_FULL
5401 && e->ref->next == NULL))
5403 gfc_error ("Assumed-rank variable %s at %L shall not have a subobject "
5404 "reference", sym->name, &e->ref->u.ar.where);
5405 return false;
5408 /* For variables that are used in an associate (target => object) where
5409 the object's basetype is array valued while the target is scalar,
5410 the ts' type of the component refs is still array valued, which
5411 can't be translated that way. */
5412 if (sym->assoc && e->rank == 0 && e->ref && sym->ts.type == BT_CLASS
5413 && sym->assoc->target && sym->assoc->target->ts.type == BT_CLASS
5414 && CLASS_DATA (sym->assoc->target)->as)
5416 gfc_ref *ref = e->ref;
5417 while (ref)
5419 switch (ref->type)
5421 case REF_COMPONENT:
5422 ref->u.c.sym = sym->ts.u.derived;
5423 /* Stop the loop. */
5424 ref = NULL;
5425 break;
5426 default:
5427 ref = ref->next;
5428 break;
5433 /* If this is an associate-name, it may be parsed with an array reference
5434 in error even though the target is scalar. Fail directly in this case.
5435 TODO Understand why class scalar expressions must be excluded. */
5436 if (sym->assoc && !(sym->ts.type == BT_CLASS && e->rank == 0))
5438 if (sym->ts.type == BT_CLASS)
5439 gfc_fix_class_refs (e);
5440 if (!sym->attr.dimension && e->ref && e->ref->type == REF_ARRAY)
5441 return false;
5442 else if (sym->attr.dimension && (!e->ref || e->ref->type != REF_ARRAY))
5444 /* This can happen because the parser did not detect that the
5445 associate name is an array and the expression had no array
5446 part_ref. */
5447 gfc_ref *ref = gfc_get_ref ();
5448 ref->type = REF_ARRAY;
5449 ref->u.ar = *gfc_get_array_ref();
5450 ref->u.ar.type = AR_FULL;
5451 if (sym->as)
5453 ref->u.ar.as = sym->as;
5454 ref->u.ar.dimen = sym->as->rank;
5456 ref->next = e->ref;
5457 e->ref = ref;
5462 if (sym->ts.type == BT_DERIVED && sym->ts.u.derived->attr.generic)
5463 sym->ts.u.derived = gfc_find_dt_in_generic (sym->ts.u.derived);
5465 /* On the other hand, the parser may not have known this is an array;
5466 in this case, we have to add a FULL reference. */
5467 if (sym->assoc && sym->attr.dimension && !e->ref)
5469 e->ref = gfc_get_ref ();
5470 e->ref->type = REF_ARRAY;
5471 e->ref->u.ar.type = AR_FULL;
5472 e->ref->u.ar.dimen = 0;
5475 /* Like above, but for class types, where the checking whether an array
5476 ref is present is more complicated. Furthermore make sure not to add
5477 the full array ref to _vptr or _len refs. */
5478 if (sym->assoc && sym->ts.type == BT_CLASS
5479 && CLASS_DATA (sym)->attr.dimension
5480 && (e->ts.type != BT_DERIVED || !e->ts.u.derived->attr.vtype))
5482 gfc_ref *ref, *newref;
5484 newref = gfc_get_ref ();
5485 newref->type = REF_ARRAY;
5486 newref->u.ar.type = AR_FULL;
5487 newref->u.ar.dimen = 0;
5488 /* Because this is an associate var and the first ref either is a ref to
5489 the _data component or not, no traversal of the ref chain is
5490 needed. The array ref needs to be inserted after the _data ref,
5491 or when that is not present, which may happend for polymorphic
5492 types, then at the first position. */
5493 ref = e->ref;
5494 if (!ref)
5495 e->ref = newref;
5496 else if (ref->type == REF_COMPONENT
5497 && strcmp ("_data", ref->u.c.component->name) == 0)
5499 if (!ref->next || ref->next->type != REF_ARRAY)
5501 newref->next = ref->next;
5502 ref->next = newref;
5504 else
5505 /* Array ref present already. */
5506 gfc_free_ref_list (newref);
5508 else if (ref->type == REF_ARRAY)
5509 /* Array ref present already. */
5510 gfc_free_ref_list (newref);
5511 else
5513 newref->next = ref;
5514 e->ref = newref;
5518 if (e->ref && !resolve_ref (e))
5519 return false;
5521 if (sym->attr.flavor == FL_PROCEDURE
5522 && (!sym->attr.function
5523 || (sym->attr.function && sym->result
5524 && sym->result->attr.proc_pointer
5525 && !sym->result->attr.function)))
5527 e->ts.type = BT_PROCEDURE;
5528 goto resolve_procedure;
5531 if (sym->ts.type != BT_UNKNOWN)
5532 gfc_variable_attr (e, &e->ts);
5533 else if (sym->attr.flavor == FL_PROCEDURE
5534 && sym->attr.function && sym->result
5535 && sym->result->ts.type != BT_UNKNOWN
5536 && sym->result->attr.proc_pointer)
5537 e->ts = sym->result->ts;
5538 else
5540 /* Must be a simple variable reference. */
5541 if (!gfc_set_default_type (sym, 1, sym->ns))
5542 return false;
5543 e->ts = sym->ts;
5546 if (check_assumed_size_reference (sym, e))
5547 return false;
5549 /* Deal with forward references to entries during gfc_resolve_code, to
5550 satisfy, at least partially, 12.5.2.5. */
5551 if (gfc_current_ns->entries
5552 && current_entry_id == sym->entry_id
5553 && cs_base
5554 && cs_base->current
5555 && cs_base->current->op != EXEC_ENTRY)
5557 gfc_entry_list *entry;
5558 gfc_formal_arglist *formal;
5559 int n;
5560 bool seen, saved_specification_expr;
5562 /* If the symbol is a dummy... */
5563 if (sym->attr.dummy && sym->ns == gfc_current_ns)
5565 entry = gfc_current_ns->entries;
5566 seen = false;
5568 /* ...test if the symbol is a parameter of previous entries. */
5569 for (; entry && entry->id <= current_entry_id; entry = entry->next)
5570 for (formal = entry->sym->formal; formal; formal = formal->next)
5572 if (formal->sym && sym->name == formal->sym->name)
5574 seen = true;
5575 break;
5579 /* If it has not been seen as a dummy, this is an error. */
5580 if (!seen)
5582 if (specification_expr)
5583 gfc_error ("Variable %qs, used in a specification expression"
5584 ", is referenced at %L before the ENTRY statement "
5585 "in which it is a parameter",
5586 sym->name, &cs_base->current->loc);
5587 else
5588 gfc_error ("Variable %qs is used at %L before the ENTRY "
5589 "statement in which it is a parameter",
5590 sym->name, &cs_base->current->loc);
5591 t = false;
5595 /* Now do the same check on the specification expressions. */
5596 saved_specification_expr = specification_expr;
5597 specification_expr = true;
5598 if (sym->ts.type == BT_CHARACTER
5599 && !gfc_resolve_expr (sym->ts.u.cl->length))
5600 t = false;
5602 if (sym->as)
5603 for (n = 0; n < sym->as->rank; n++)
5605 if (!gfc_resolve_expr (sym->as->lower[n]))
5606 t = false;
5607 if (!gfc_resolve_expr (sym->as->upper[n]))
5608 t = false;
5610 specification_expr = saved_specification_expr;
5612 if (t)
5613 /* Update the symbol's entry level. */
5614 sym->entry_id = current_entry_id + 1;
5617 /* If a symbol has been host_associated mark it. This is used latter,
5618 to identify if aliasing is possible via host association. */
5619 if (sym->attr.flavor == FL_VARIABLE
5620 && gfc_current_ns->parent
5621 && (gfc_current_ns->parent == sym->ns
5622 || (gfc_current_ns->parent->parent
5623 && gfc_current_ns->parent->parent == sym->ns)))
5624 sym->attr.host_assoc = 1;
5626 if (gfc_current_ns->proc_name
5627 && sym->attr.dimension
5628 && (sym->ns != gfc_current_ns
5629 || sym->attr.use_assoc
5630 || sym->attr.in_common))
5631 gfc_current_ns->proc_name->attr.array_outer_dependency = 1;
5633 resolve_procedure:
5634 if (t && !resolve_procedure_expression (e))
5635 t = false;
5637 /* F2008, C617 and C1229. */
5638 if (!inquiry_argument && (e->ts.type == BT_CLASS || e->ts.type == BT_DERIVED)
5639 && gfc_is_coindexed (e))
5641 gfc_ref *ref, *ref2 = NULL;
5643 for (ref = e->ref; ref; ref = ref->next)
5645 if (ref->type == REF_COMPONENT)
5646 ref2 = ref;
5647 if (ref->type == REF_ARRAY && ref->u.ar.codimen > 0)
5648 break;
5651 for ( ; ref; ref = ref->next)
5652 if (ref->type == REF_COMPONENT)
5653 break;
5655 /* Expression itself is not coindexed object. */
5656 if (ref && e->ts.type == BT_CLASS)
5658 gfc_error ("Polymorphic subobject of coindexed object at %L",
5659 &e->where);
5660 t = false;
5663 /* Expression itself is coindexed object. */
5664 if (ref == NULL)
5666 gfc_component *c;
5667 c = ref2 ? ref2->u.c.component : e->symtree->n.sym->components;
5668 for ( ; c; c = c->next)
5669 if (c->attr.allocatable && c->ts.type == BT_CLASS)
5671 gfc_error ("Coindexed object with polymorphic allocatable "
5672 "subcomponent at %L", &e->where);
5673 t = false;
5674 break;
5679 if (t)
5680 expression_rank (e);
5682 if (t && flag_coarray == GFC_FCOARRAY_LIB && gfc_is_coindexed (e))
5683 add_caf_get_intrinsic (e);
5685 /* Simplify cases where access to a parameter array results in a
5686 single constant. Suppress errors since those will have been
5687 issued before, as warnings. */
5688 if (e->rank == 0 && sym->as && sym->attr.flavor == FL_PARAMETER)
5690 gfc_push_suppress_errors ();
5691 gfc_simplify_expr (e, 1);
5692 gfc_pop_suppress_errors ();
5695 return t;
5699 /* Checks to see that the correct symbol has been host associated.
5700 The only situation where this arises is that in which a twice
5701 contained function is parsed after the host association is made.
5702 Therefore, on detecting this, change the symbol in the expression
5703 and convert the array reference into an actual arglist if the old
5704 symbol is a variable. */
5705 static bool
5706 check_host_association (gfc_expr *e)
5708 gfc_symbol *sym, *old_sym;
5709 gfc_symtree *st;
5710 int n;
5711 gfc_ref *ref;
5712 gfc_actual_arglist *arg, *tail = NULL;
5713 bool retval = e->expr_type == EXPR_FUNCTION;
5715 /* If the expression is the result of substitution in
5716 interface.c(gfc_extend_expr) because there is no way in
5717 which the host association can be wrong. */
5718 if (e->symtree == NULL
5719 || e->symtree->n.sym == NULL
5720 || e->user_operator)
5721 return retval;
5723 old_sym = e->symtree->n.sym;
5725 if (gfc_current_ns->parent
5726 && old_sym->ns != gfc_current_ns)
5728 /* Use the 'USE' name so that renamed module symbols are
5729 correctly handled. */
5730 gfc_find_symbol (e->symtree->name, gfc_current_ns, 1, &sym);
5732 if (sym && old_sym != sym
5733 && sym->ts.type == old_sym->ts.type
5734 && sym->attr.flavor == FL_PROCEDURE
5735 && sym->attr.contained)
5737 /* Clear the shape, since it might not be valid. */
5738 gfc_free_shape (&e->shape, e->rank);
5740 /* Give the expression the right symtree! */
5741 gfc_find_sym_tree (e->symtree->name, NULL, 1, &st);
5742 gcc_assert (st != NULL);
5744 if (old_sym->attr.flavor == FL_PROCEDURE
5745 || e->expr_type == EXPR_FUNCTION)
5747 /* Original was function so point to the new symbol, since
5748 the actual argument list is already attached to the
5749 expression. */
5750 e->value.function.esym = NULL;
5751 e->symtree = st;
5753 else
5755 /* Original was variable so convert array references into
5756 an actual arglist. This does not need any checking now
5757 since resolve_function will take care of it. */
5758 e->value.function.actual = NULL;
5759 e->expr_type = EXPR_FUNCTION;
5760 e->symtree = st;
5762 /* Ambiguity will not arise if the array reference is not
5763 the last reference. */
5764 for (ref = e->ref; ref; ref = ref->next)
5765 if (ref->type == REF_ARRAY && ref->next == NULL)
5766 break;
5768 gcc_assert (ref->type == REF_ARRAY);
5770 /* Grab the start expressions from the array ref and
5771 copy them into actual arguments. */
5772 for (n = 0; n < ref->u.ar.dimen; n++)
5774 arg = gfc_get_actual_arglist ();
5775 arg->expr = gfc_copy_expr (ref->u.ar.start[n]);
5776 if (e->value.function.actual == NULL)
5777 tail = e->value.function.actual = arg;
5778 else
5780 tail->next = arg;
5781 tail = arg;
5785 /* Dump the reference list and set the rank. */
5786 gfc_free_ref_list (e->ref);
5787 e->ref = NULL;
5788 e->rank = sym->as ? sym->as->rank : 0;
5791 gfc_resolve_expr (e);
5792 sym->refs++;
5795 /* This might have changed! */
5796 return e->expr_type == EXPR_FUNCTION;
5800 static void
5801 gfc_resolve_character_operator (gfc_expr *e)
5803 gfc_expr *op1 = e->value.op.op1;
5804 gfc_expr *op2 = e->value.op.op2;
5805 gfc_expr *e1 = NULL;
5806 gfc_expr *e2 = NULL;
5808 gcc_assert (e->value.op.op == INTRINSIC_CONCAT);
5810 if (op1->ts.u.cl && op1->ts.u.cl->length)
5811 e1 = gfc_copy_expr (op1->ts.u.cl->length);
5812 else if (op1->expr_type == EXPR_CONSTANT)
5813 e1 = gfc_get_int_expr (gfc_charlen_int_kind, NULL,
5814 op1->value.character.length);
5816 if (op2->ts.u.cl && op2->ts.u.cl->length)
5817 e2 = gfc_copy_expr (op2->ts.u.cl->length);
5818 else if (op2->expr_type == EXPR_CONSTANT)
5819 e2 = gfc_get_int_expr (gfc_charlen_int_kind, NULL,
5820 op2->value.character.length);
5822 e->ts.u.cl = gfc_new_charlen (gfc_current_ns, NULL);
5824 if (!e1 || !e2)
5826 gfc_free_expr (e1);
5827 gfc_free_expr (e2);
5829 return;
5832 e->ts.u.cl->length = gfc_add (e1, e2);
5833 e->ts.u.cl->length->ts.type = BT_INTEGER;
5834 e->ts.u.cl->length->ts.kind = gfc_charlen_int_kind;
5835 gfc_simplify_expr (e->ts.u.cl->length, 0);
5836 gfc_resolve_expr (e->ts.u.cl->length);
5838 return;
5842 /* Ensure that an character expression has a charlen and, if possible, a
5843 length expression. */
5845 static void
5846 fixup_charlen (gfc_expr *e)
5848 /* The cases fall through so that changes in expression type and the need
5849 for multiple fixes are picked up. In all circumstances, a charlen should
5850 be available for the middle end to hang a backend_decl on. */
5851 switch (e->expr_type)
5853 case EXPR_OP:
5854 gfc_resolve_character_operator (e);
5855 /* FALLTHRU */
5857 case EXPR_ARRAY:
5858 if (e->expr_type == EXPR_ARRAY)
5859 gfc_resolve_character_array_constructor (e);
5860 /* FALLTHRU */
5862 case EXPR_SUBSTRING:
5863 if (!e->ts.u.cl && e->ref)
5864 gfc_resolve_substring_charlen (e);
5865 /* FALLTHRU */
5867 default:
5868 if (!e->ts.u.cl)
5869 e->ts.u.cl = gfc_new_charlen (gfc_current_ns, NULL);
5871 break;
5876 /* Update an actual argument to include the passed-object for type-bound
5877 procedures at the right position. */
5879 static gfc_actual_arglist*
5880 update_arglist_pass (gfc_actual_arglist* lst, gfc_expr* po, unsigned argpos,
5881 const char *name)
5883 gcc_assert (argpos > 0);
5885 if (argpos == 1)
5887 gfc_actual_arglist* result;
5889 result = gfc_get_actual_arglist ();
5890 result->expr = po;
5891 result->next = lst;
5892 if (name)
5893 result->name = name;
5895 return result;
5898 if (lst)
5899 lst->next = update_arglist_pass (lst->next, po, argpos - 1, name);
5900 else
5901 lst = update_arglist_pass (NULL, po, argpos - 1, name);
5902 return lst;
5906 /* Extract the passed-object from an EXPR_COMPCALL (a copy of it). */
5908 static gfc_expr*
5909 extract_compcall_passed_object (gfc_expr* e)
5911 gfc_expr* po;
5913 gcc_assert (e->expr_type == EXPR_COMPCALL);
5915 if (e->value.compcall.base_object)
5916 po = gfc_copy_expr (e->value.compcall.base_object);
5917 else
5919 po = gfc_get_expr ();
5920 po->expr_type = EXPR_VARIABLE;
5921 po->symtree = e->symtree;
5922 po->ref = gfc_copy_ref (e->ref);
5923 po->where = e->where;
5926 if (!gfc_resolve_expr (po))
5927 return NULL;
5929 return po;
5933 /* Update the arglist of an EXPR_COMPCALL expression to include the
5934 passed-object. */
5936 static bool
5937 update_compcall_arglist (gfc_expr* e)
5939 gfc_expr* po;
5940 gfc_typebound_proc* tbp;
5942 tbp = e->value.compcall.tbp;
5944 if (tbp->error)
5945 return false;
5947 po = extract_compcall_passed_object (e);
5948 if (!po)
5949 return false;
5951 if (tbp->nopass || e->value.compcall.ignore_pass)
5953 gfc_free_expr (po);
5954 return true;
5957 if (tbp->pass_arg_num <= 0)
5958 return false;
5960 e->value.compcall.actual = update_arglist_pass (e->value.compcall.actual, po,
5961 tbp->pass_arg_num,
5962 tbp->pass_arg);
5964 return true;
5968 /* Extract the passed object from a PPC call (a copy of it). */
5970 static gfc_expr*
5971 extract_ppc_passed_object (gfc_expr *e)
5973 gfc_expr *po;
5974 gfc_ref **ref;
5976 po = gfc_get_expr ();
5977 po->expr_type = EXPR_VARIABLE;
5978 po->symtree = e->symtree;
5979 po->ref = gfc_copy_ref (e->ref);
5980 po->where = e->where;
5982 /* Remove PPC reference. */
5983 ref = &po->ref;
5984 while ((*ref)->next)
5985 ref = &(*ref)->next;
5986 gfc_free_ref_list (*ref);
5987 *ref = NULL;
5989 if (!gfc_resolve_expr (po))
5990 return NULL;
5992 return po;
5996 /* Update the actual arglist of a procedure pointer component to include the
5997 passed-object. */
5999 static bool
6000 update_ppc_arglist (gfc_expr* e)
6002 gfc_expr* po;
6003 gfc_component *ppc;
6004 gfc_typebound_proc* tb;
6006 ppc = gfc_get_proc_ptr_comp (e);
6007 if (!ppc)
6008 return false;
6010 tb = ppc->tb;
6012 if (tb->error)
6013 return false;
6014 else if (tb->nopass)
6015 return true;
6017 po = extract_ppc_passed_object (e);
6018 if (!po)
6019 return false;
6021 /* F08:R739. */
6022 if (po->rank != 0)
6024 gfc_error ("Passed-object at %L must be scalar", &e->where);
6025 return false;
6028 /* F08:C611. */
6029 if (po->ts.type == BT_DERIVED && po->ts.u.derived->attr.abstract)
6031 gfc_error ("Base object for procedure-pointer component call at %L is of"
6032 " ABSTRACT type %qs", &e->where, po->ts.u.derived->name);
6033 return false;
6036 gcc_assert (tb->pass_arg_num > 0);
6037 e->value.compcall.actual = update_arglist_pass (e->value.compcall.actual, po,
6038 tb->pass_arg_num,
6039 tb->pass_arg);
6041 return true;
6045 /* Check that the object a TBP is called on is valid, i.e. it must not be
6046 of ABSTRACT type (as in subobject%abstract_parent%tbp()). */
6048 static bool
6049 check_typebound_baseobject (gfc_expr* e)
6051 gfc_expr* base;
6052 bool return_value = false;
6054 base = extract_compcall_passed_object (e);
6055 if (!base)
6056 return false;
6058 gcc_assert (base->ts.type == BT_DERIVED || base->ts.type == BT_CLASS);
6060 if (base->ts.type == BT_CLASS && !gfc_expr_attr (base).class_ok)
6061 return false;
6063 /* F08:C611. */
6064 if (base->ts.type == BT_DERIVED && base->ts.u.derived->attr.abstract)
6066 gfc_error ("Base object for type-bound procedure call at %L is of"
6067 " ABSTRACT type %qs", &e->where, base->ts.u.derived->name);
6068 goto cleanup;
6071 /* F08:C1230. If the procedure called is NOPASS,
6072 the base object must be scalar. */
6073 if (e->value.compcall.tbp->nopass && base->rank != 0)
6075 gfc_error ("Base object for NOPASS type-bound procedure call at %L must"
6076 " be scalar", &e->where);
6077 goto cleanup;
6080 return_value = true;
6082 cleanup:
6083 gfc_free_expr (base);
6084 return return_value;
6088 /* Resolve a call to a type-bound procedure, either function or subroutine,
6089 statically from the data in an EXPR_COMPCALL expression. The adapted
6090 arglist and the target-procedure symtree are returned. */
6092 static bool
6093 resolve_typebound_static (gfc_expr* e, gfc_symtree** target,
6094 gfc_actual_arglist** actual)
6096 gcc_assert (e->expr_type == EXPR_COMPCALL);
6097 gcc_assert (!e->value.compcall.tbp->is_generic);
6099 /* Update the actual arglist for PASS. */
6100 if (!update_compcall_arglist (e))
6101 return false;
6103 *actual = e->value.compcall.actual;
6104 *target = e->value.compcall.tbp->u.specific;
6106 gfc_free_ref_list (e->ref);
6107 e->ref = NULL;
6108 e->value.compcall.actual = NULL;
6110 /* If we find a deferred typebound procedure, check for derived types
6111 that an overriding typebound procedure has not been missed. */
6112 if (e->value.compcall.name
6113 && !e->value.compcall.tbp->non_overridable
6114 && e->value.compcall.base_object
6115 && e->value.compcall.base_object->ts.type == BT_DERIVED)
6117 gfc_symtree *st;
6118 gfc_symbol *derived;
6120 /* Use the derived type of the base_object. */
6121 derived = e->value.compcall.base_object->ts.u.derived;
6122 st = NULL;
6124 /* If necessary, go through the inheritance chain. */
6125 while (!st && derived)
6127 /* Look for the typebound procedure 'name'. */
6128 if (derived->f2k_derived && derived->f2k_derived->tb_sym_root)
6129 st = gfc_find_symtree (derived->f2k_derived->tb_sym_root,
6130 e->value.compcall.name);
6131 if (!st)
6132 derived = gfc_get_derived_super_type (derived);
6135 /* Now find the specific name in the derived type namespace. */
6136 if (st && st->n.tb && st->n.tb->u.specific)
6137 gfc_find_sym_tree (st->n.tb->u.specific->name,
6138 derived->ns, 1, &st);
6139 if (st)
6140 *target = st;
6142 return true;
6146 /* Get the ultimate declared type from an expression. In addition,
6147 return the last class/derived type reference and the copy of the
6148 reference list. If check_types is set true, derived types are
6149 identified as well as class references. */
6150 static gfc_symbol*
6151 get_declared_from_expr (gfc_ref **class_ref, gfc_ref **new_ref,
6152 gfc_expr *e, bool check_types)
6154 gfc_symbol *declared;
6155 gfc_ref *ref;
6157 declared = NULL;
6158 if (class_ref)
6159 *class_ref = NULL;
6160 if (new_ref)
6161 *new_ref = gfc_copy_ref (e->ref);
6163 for (ref = e->ref; ref; ref = ref->next)
6165 if (ref->type != REF_COMPONENT)
6166 continue;
6168 if ((ref->u.c.component->ts.type == BT_CLASS
6169 || (check_types && gfc_bt_struct (ref->u.c.component->ts.type)))
6170 && ref->u.c.component->attr.flavor != FL_PROCEDURE)
6172 declared = ref->u.c.component->ts.u.derived;
6173 if (class_ref)
6174 *class_ref = ref;
6178 if (declared == NULL)
6179 declared = e->symtree->n.sym->ts.u.derived;
6181 return declared;
6185 /* Given an EXPR_COMPCALL calling a GENERIC typebound procedure, figure out
6186 which of the specific bindings (if any) matches the arglist and transform
6187 the expression into a call of that binding. */
6189 static bool
6190 resolve_typebound_generic_call (gfc_expr* e, const char **name)
6192 gfc_typebound_proc* genproc;
6193 const char* genname;
6194 gfc_symtree *st;
6195 gfc_symbol *derived;
6197 gcc_assert (e->expr_type == EXPR_COMPCALL);
6198 genname = e->value.compcall.name;
6199 genproc = e->value.compcall.tbp;
6201 if (!genproc->is_generic)
6202 return true;
6204 /* Try the bindings on this type and in the inheritance hierarchy. */
6205 for (; genproc; genproc = genproc->overridden)
6207 gfc_tbp_generic* g;
6209 gcc_assert (genproc->is_generic);
6210 for (g = genproc->u.generic; g; g = g->next)
6212 gfc_symbol* target;
6213 gfc_actual_arglist* args;
6214 bool matches;
6216 gcc_assert (g->specific);
6218 if (g->specific->error)
6219 continue;
6221 target = g->specific->u.specific->n.sym;
6223 /* Get the right arglist by handling PASS/NOPASS. */
6224 args = gfc_copy_actual_arglist (e->value.compcall.actual);
6225 if (!g->specific->nopass)
6227 gfc_expr* po;
6228 po = extract_compcall_passed_object (e);
6229 if (!po)
6231 gfc_free_actual_arglist (args);
6232 return false;
6235 gcc_assert (g->specific->pass_arg_num > 0);
6236 gcc_assert (!g->specific->error);
6237 args = update_arglist_pass (args, po, g->specific->pass_arg_num,
6238 g->specific->pass_arg);
6240 resolve_actual_arglist (args, target->attr.proc,
6241 is_external_proc (target)
6242 && gfc_sym_get_dummy_args (target) == NULL);
6244 /* Check if this arglist matches the formal. */
6245 matches = gfc_arglist_matches_symbol (&args, target);
6247 /* Clean up and break out of the loop if we've found it. */
6248 gfc_free_actual_arglist (args);
6249 if (matches)
6251 e->value.compcall.tbp = g->specific;
6252 genname = g->specific_st->name;
6253 /* Pass along the name for CLASS methods, where the vtab
6254 procedure pointer component has to be referenced. */
6255 if (name)
6256 *name = genname;
6257 goto success;
6262 /* Nothing matching found! */
6263 gfc_error ("Found no matching specific binding for the call to the GENERIC"
6264 " %qs at %L", genname, &e->where);
6265 return false;
6267 success:
6268 /* Make sure that we have the right specific instance for the name. */
6269 derived = get_declared_from_expr (NULL, NULL, e, true);
6271 st = gfc_find_typebound_proc (derived, NULL, genname, true, &e->where);
6272 if (st)
6273 e->value.compcall.tbp = st->n.tb;
6275 return true;
6279 /* Resolve a call to a type-bound subroutine. */
6281 static bool
6282 resolve_typebound_call (gfc_code* c, const char **name, bool *overridable)
6284 gfc_actual_arglist* newactual;
6285 gfc_symtree* target;
6287 /* Check that's really a SUBROUTINE. */
6288 if (!c->expr1->value.compcall.tbp->subroutine)
6290 if (!c->expr1->value.compcall.tbp->is_generic
6291 && c->expr1->value.compcall.tbp->u.specific
6292 && c->expr1->value.compcall.tbp->u.specific->n.sym
6293 && c->expr1->value.compcall.tbp->u.specific->n.sym->attr.subroutine)
6294 c->expr1->value.compcall.tbp->subroutine = 1;
6295 else
6297 gfc_error ("%qs at %L should be a SUBROUTINE",
6298 c->expr1->value.compcall.name, &c->loc);
6299 return false;
6303 if (!check_typebound_baseobject (c->expr1))
6304 return false;
6306 /* Pass along the name for CLASS methods, where the vtab
6307 procedure pointer component has to be referenced. */
6308 if (name)
6309 *name = c->expr1->value.compcall.name;
6311 if (!resolve_typebound_generic_call (c->expr1, name))
6312 return false;
6314 /* Pass along the NON_OVERRIDABLE attribute of the specific TBP. */
6315 if (overridable)
6316 *overridable = !c->expr1->value.compcall.tbp->non_overridable;
6318 /* Transform into an ordinary EXEC_CALL for now. */
6320 if (!resolve_typebound_static (c->expr1, &target, &newactual))
6321 return false;
6323 c->ext.actual = newactual;
6324 c->symtree = target;
6325 c->op = (c->expr1->value.compcall.assign ? EXEC_ASSIGN_CALL : EXEC_CALL);
6327 gcc_assert (!c->expr1->ref && !c->expr1->value.compcall.actual);
6329 gfc_free_expr (c->expr1);
6330 c->expr1 = gfc_get_expr ();
6331 c->expr1->expr_type = EXPR_FUNCTION;
6332 c->expr1->symtree = target;
6333 c->expr1->where = c->loc;
6335 return resolve_call (c);
6339 /* Resolve a component-call expression. */
6340 static bool
6341 resolve_compcall (gfc_expr* e, const char **name)
6343 gfc_actual_arglist* newactual;
6344 gfc_symtree* target;
6346 /* Check that's really a FUNCTION. */
6347 if (!e->value.compcall.tbp->function)
6349 gfc_error ("%qs at %L should be a FUNCTION",
6350 e->value.compcall.name, &e->where);
6351 return false;
6354 /* These must not be assign-calls! */
6355 gcc_assert (!e->value.compcall.assign);
6357 if (!check_typebound_baseobject (e))
6358 return false;
6360 /* Pass along the name for CLASS methods, where the vtab
6361 procedure pointer component has to be referenced. */
6362 if (name)
6363 *name = e->value.compcall.name;
6365 if (!resolve_typebound_generic_call (e, name))
6366 return false;
6367 gcc_assert (!e->value.compcall.tbp->is_generic);
6369 /* Take the rank from the function's symbol. */
6370 if (e->value.compcall.tbp->u.specific->n.sym->as)
6371 e->rank = e->value.compcall.tbp->u.specific->n.sym->as->rank;
6373 /* For now, we simply transform it into an EXPR_FUNCTION call with the same
6374 arglist to the TBP's binding target. */
6376 if (!resolve_typebound_static (e, &target, &newactual))
6377 return false;
6379 e->value.function.actual = newactual;
6380 e->value.function.name = NULL;
6381 e->value.function.esym = target->n.sym;
6382 e->value.function.isym = NULL;
6383 e->symtree = target;
6384 e->ts = target->n.sym->ts;
6385 e->expr_type = EXPR_FUNCTION;
6387 /* Resolution is not necessary if this is a class subroutine; this
6388 function only has to identify the specific proc. Resolution of
6389 the call will be done next in resolve_typebound_call. */
6390 return gfc_resolve_expr (e);
6394 static bool resolve_fl_derived (gfc_symbol *sym);
6397 /* Resolve a typebound function, or 'method'. First separate all
6398 the non-CLASS references by calling resolve_compcall directly. */
6400 static bool
6401 resolve_typebound_function (gfc_expr* e)
6403 gfc_symbol *declared;
6404 gfc_component *c;
6405 gfc_ref *new_ref;
6406 gfc_ref *class_ref;
6407 gfc_symtree *st;
6408 const char *name;
6409 gfc_typespec ts;
6410 gfc_expr *expr;
6411 bool overridable;
6413 st = e->symtree;
6415 /* Deal with typebound operators for CLASS objects. */
6416 expr = e->value.compcall.base_object;
6417 overridable = !e->value.compcall.tbp->non_overridable;
6418 if (expr && expr->ts.type == BT_CLASS && e->value.compcall.name)
6420 /* If the base_object is not a variable, the corresponding actual
6421 argument expression must be stored in e->base_expression so
6422 that the corresponding tree temporary can be used as the base
6423 object in gfc_conv_procedure_call. */
6424 if (expr->expr_type != EXPR_VARIABLE)
6426 gfc_actual_arglist *args;
6428 for (args= e->value.function.actual; args; args = args->next)
6430 if (expr == args->expr)
6431 expr = args->expr;
6435 /* Since the typebound operators are generic, we have to ensure
6436 that any delays in resolution are corrected and that the vtab
6437 is present. */
6438 ts = expr->ts;
6439 declared = ts.u.derived;
6440 c = gfc_find_component (declared, "_vptr", true, true, NULL);
6441 if (c->ts.u.derived == NULL)
6442 c->ts.u.derived = gfc_find_derived_vtab (declared);
6444 if (!resolve_compcall (e, &name))
6445 return false;
6447 /* Use the generic name if it is there. */
6448 name = name ? name : e->value.function.esym->name;
6449 e->symtree = expr->symtree;
6450 e->ref = gfc_copy_ref (expr->ref);
6451 get_declared_from_expr (&class_ref, NULL, e, false);
6453 /* Trim away the extraneous references that emerge from nested
6454 use of interface.c (extend_expr). */
6455 if (class_ref && class_ref->next)
6457 gfc_free_ref_list (class_ref->next);
6458 class_ref->next = NULL;
6460 else if (e->ref && !class_ref && expr->ts.type != BT_CLASS)
6462 gfc_free_ref_list (e->ref);
6463 e->ref = NULL;
6466 gfc_add_vptr_component (e);
6467 gfc_add_component_ref (e, name);
6468 e->value.function.esym = NULL;
6469 if (expr->expr_type != EXPR_VARIABLE)
6470 e->base_expr = expr;
6471 return true;
6474 if (st == NULL)
6475 return resolve_compcall (e, NULL);
6477 if (!resolve_ref (e))
6478 return false;
6480 /* Get the CLASS declared type. */
6481 declared = get_declared_from_expr (&class_ref, &new_ref, e, true);
6483 if (!resolve_fl_derived (declared))
6484 return false;
6486 /* Weed out cases of the ultimate component being a derived type. */
6487 if ((class_ref && gfc_bt_struct (class_ref->u.c.component->ts.type))
6488 || (!class_ref && st->n.sym->ts.type != BT_CLASS))
6490 gfc_free_ref_list (new_ref);
6491 return resolve_compcall (e, NULL);
6494 c = gfc_find_component (declared, "_data", true, true, NULL);
6495 declared = c->ts.u.derived;
6497 /* Treat the call as if it is a typebound procedure, in order to roll
6498 out the correct name for the specific function. */
6499 if (!resolve_compcall (e, &name))
6501 gfc_free_ref_list (new_ref);
6502 return false;
6504 ts = e->ts;
6506 if (overridable)
6508 /* Convert the expression to a procedure pointer component call. */
6509 e->value.function.esym = NULL;
6510 e->symtree = st;
6512 if (new_ref)
6513 e->ref = new_ref;
6515 /* '_vptr' points to the vtab, which contains the procedure pointers. */
6516 gfc_add_vptr_component (e);
6517 gfc_add_component_ref (e, name);
6519 /* Recover the typespec for the expression. This is really only
6520 necessary for generic procedures, where the additional call
6521 to gfc_add_component_ref seems to throw the collection of the
6522 correct typespec. */
6523 e->ts = ts;
6525 else if (new_ref)
6526 gfc_free_ref_list (new_ref);
6528 return true;
6531 /* Resolve a typebound subroutine, or 'method'. First separate all
6532 the non-CLASS references by calling resolve_typebound_call
6533 directly. */
6535 static bool
6536 resolve_typebound_subroutine (gfc_code *code)
6538 gfc_symbol *declared;
6539 gfc_component *c;
6540 gfc_ref *new_ref;
6541 gfc_ref *class_ref;
6542 gfc_symtree *st;
6543 const char *name;
6544 gfc_typespec ts;
6545 gfc_expr *expr;
6546 bool overridable;
6548 st = code->expr1->symtree;
6550 /* Deal with typebound operators for CLASS objects. */
6551 expr = code->expr1->value.compcall.base_object;
6552 overridable = !code->expr1->value.compcall.tbp->non_overridable;
6553 if (expr && expr->ts.type == BT_CLASS && code->expr1->value.compcall.name)
6555 /* If the base_object is not a variable, the corresponding actual
6556 argument expression must be stored in e->base_expression so
6557 that the corresponding tree temporary can be used as the base
6558 object in gfc_conv_procedure_call. */
6559 if (expr->expr_type != EXPR_VARIABLE)
6561 gfc_actual_arglist *args;
6563 args= code->expr1->value.function.actual;
6564 for (; args; args = args->next)
6565 if (expr == args->expr)
6566 expr = args->expr;
6569 /* Since the typebound operators are generic, we have to ensure
6570 that any delays in resolution are corrected and that the vtab
6571 is present. */
6572 declared = expr->ts.u.derived;
6573 c = gfc_find_component (declared, "_vptr", true, true, NULL);
6574 if (c->ts.u.derived == NULL)
6575 c->ts.u.derived = gfc_find_derived_vtab (declared);
6577 if (!resolve_typebound_call (code, &name, NULL))
6578 return false;
6580 /* Use the generic name if it is there. */
6581 name = name ? name : code->expr1->value.function.esym->name;
6582 code->expr1->symtree = expr->symtree;
6583 code->expr1->ref = gfc_copy_ref (expr->ref);
6585 /* Trim away the extraneous references that emerge from nested
6586 use of interface.c (extend_expr). */
6587 get_declared_from_expr (&class_ref, NULL, code->expr1, false);
6588 if (class_ref && class_ref->next)
6590 gfc_free_ref_list (class_ref->next);
6591 class_ref->next = NULL;
6593 else if (code->expr1->ref && !class_ref)
6595 gfc_free_ref_list (code->expr1->ref);
6596 code->expr1->ref = NULL;
6599 /* Now use the procedure in the vtable. */
6600 gfc_add_vptr_component (code->expr1);
6601 gfc_add_component_ref (code->expr1, name);
6602 code->expr1->value.function.esym = NULL;
6603 if (expr->expr_type != EXPR_VARIABLE)
6604 code->expr1->base_expr = expr;
6605 return true;
6608 if (st == NULL)
6609 return resolve_typebound_call (code, NULL, NULL);
6611 if (!resolve_ref (code->expr1))
6612 return false;
6614 /* Get the CLASS declared type. */
6615 get_declared_from_expr (&class_ref, &new_ref, code->expr1, true);
6617 /* Weed out cases of the ultimate component being a derived type. */
6618 if ((class_ref && gfc_bt_struct (class_ref->u.c.component->ts.type))
6619 || (!class_ref && st->n.sym->ts.type != BT_CLASS))
6621 gfc_free_ref_list (new_ref);
6622 return resolve_typebound_call (code, NULL, NULL);
6625 if (!resolve_typebound_call (code, &name, &overridable))
6627 gfc_free_ref_list (new_ref);
6628 return false;
6630 ts = code->expr1->ts;
6632 if (overridable)
6634 /* Convert the expression to a procedure pointer component call. */
6635 code->expr1->value.function.esym = NULL;
6636 code->expr1->symtree = st;
6638 if (new_ref)
6639 code->expr1->ref = new_ref;
6641 /* '_vptr' points to the vtab, which contains the procedure pointers. */
6642 gfc_add_vptr_component (code->expr1);
6643 gfc_add_component_ref (code->expr1, name);
6645 /* Recover the typespec for the expression. This is really only
6646 necessary for generic procedures, where the additional call
6647 to gfc_add_component_ref seems to throw the collection of the
6648 correct typespec. */
6649 code->expr1->ts = ts;
6651 else if (new_ref)
6652 gfc_free_ref_list (new_ref);
6654 return true;
6658 /* Resolve a CALL to a Procedure Pointer Component (Subroutine). */
6660 static bool
6661 resolve_ppc_call (gfc_code* c)
6663 gfc_component *comp;
6665 comp = gfc_get_proc_ptr_comp (c->expr1);
6666 gcc_assert (comp != NULL);
6668 c->resolved_sym = c->expr1->symtree->n.sym;
6669 c->expr1->expr_type = EXPR_VARIABLE;
6671 if (!comp->attr.subroutine)
6672 gfc_add_subroutine (&comp->attr, comp->name, &c->expr1->where);
6674 if (!resolve_ref (c->expr1))
6675 return false;
6677 if (!update_ppc_arglist (c->expr1))
6678 return false;
6680 c->ext.actual = c->expr1->value.compcall.actual;
6682 if (!resolve_actual_arglist (c->ext.actual, comp->attr.proc,
6683 !(comp->ts.interface
6684 && comp->ts.interface->formal)))
6685 return false;
6687 if (!pure_subroutine (comp->ts.interface, comp->name, &c->expr1->where))
6688 return false;
6690 gfc_ppc_use (comp, &c->expr1->value.compcall.actual, &c->expr1->where);
6692 return true;
6696 /* Resolve a Function Call to a Procedure Pointer Component (Function). */
6698 static bool
6699 resolve_expr_ppc (gfc_expr* e)
6701 gfc_component *comp;
6703 comp = gfc_get_proc_ptr_comp (e);
6704 gcc_assert (comp != NULL);
6706 /* Convert to EXPR_FUNCTION. */
6707 e->expr_type = EXPR_FUNCTION;
6708 e->value.function.isym = NULL;
6709 e->value.function.actual = e->value.compcall.actual;
6710 e->ts = comp->ts;
6711 if (comp->as != NULL)
6712 e->rank = comp->as->rank;
6714 if (!comp->attr.function)
6715 gfc_add_function (&comp->attr, comp->name, &e->where);
6717 if (!resolve_ref (e))
6718 return false;
6720 if (!resolve_actual_arglist (e->value.function.actual, comp->attr.proc,
6721 !(comp->ts.interface
6722 && comp->ts.interface->formal)))
6723 return false;
6725 if (!update_ppc_arglist (e))
6726 return false;
6728 if (!check_pure_function(e))
6729 return false;
6731 gfc_ppc_use (comp, &e->value.compcall.actual, &e->where);
6733 return true;
6737 static bool
6738 gfc_is_expandable_expr (gfc_expr *e)
6740 gfc_constructor *con;
6742 if (e->expr_type == EXPR_ARRAY)
6744 /* Traverse the constructor looking for variables that are flavor
6745 parameter. Parameters must be expanded since they are fully used at
6746 compile time. */
6747 con = gfc_constructor_first (e->value.constructor);
6748 for (; con; con = gfc_constructor_next (con))
6750 if (con->expr->expr_type == EXPR_VARIABLE
6751 && con->expr->symtree
6752 && (con->expr->symtree->n.sym->attr.flavor == FL_PARAMETER
6753 || con->expr->symtree->n.sym->attr.flavor == FL_VARIABLE))
6754 return true;
6755 if (con->expr->expr_type == EXPR_ARRAY
6756 && gfc_is_expandable_expr (con->expr))
6757 return true;
6761 return false;
6765 /* Sometimes variables in specification expressions of the result
6766 of module procedures in submodules wind up not being the 'real'
6767 dummy. Find this, if possible, in the namespace of the first
6768 formal argument. */
6770 static void
6771 fixup_unique_dummy (gfc_expr *e)
6773 gfc_symtree *st = NULL;
6774 gfc_symbol *s = NULL;
6776 if (e->symtree->n.sym->ns->proc_name
6777 && e->symtree->n.sym->ns->proc_name->formal)
6778 s = e->symtree->n.sym->ns->proc_name->formal->sym;
6780 if (s != NULL)
6781 st = gfc_find_symtree (s->ns->sym_root, e->symtree->n.sym->name);
6783 if (st != NULL
6784 && st->n.sym != NULL
6785 && st->n.sym->attr.dummy)
6786 e->symtree = st;
6789 /* Resolve an expression. That is, make sure that types of operands agree
6790 with their operators, intrinsic operators are converted to function calls
6791 for overloaded types and unresolved function references are resolved. */
6793 bool
6794 gfc_resolve_expr (gfc_expr *e)
6796 bool t;
6797 bool inquiry_save, actual_arg_save, first_actual_arg_save;
6799 if (e == NULL)
6800 return true;
6802 /* inquiry_argument only applies to variables. */
6803 inquiry_save = inquiry_argument;
6804 actual_arg_save = actual_arg;
6805 first_actual_arg_save = first_actual_arg;
6807 if (e->expr_type != EXPR_VARIABLE)
6809 inquiry_argument = false;
6810 actual_arg = false;
6811 first_actual_arg = false;
6813 else if (e->symtree != NULL
6814 && *e->symtree->name == '@'
6815 && e->symtree->n.sym->attr.dummy)
6817 /* Deal with submodule specification expressions that are not
6818 found to be referenced in module.c(read_cleanup). */
6819 fixup_unique_dummy (e);
6822 switch (e->expr_type)
6824 case EXPR_OP:
6825 t = resolve_operator (e);
6826 break;
6828 case EXPR_FUNCTION:
6829 case EXPR_VARIABLE:
6831 if (check_host_association (e))
6832 t = resolve_function (e);
6833 else
6834 t = resolve_variable (e);
6836 if (e->ts.type == BT_CHARACTER && e->ts.u.cl == NULL && e->ref
6837 && e->ref->type != REF_SUBSTRING)
6838 gfc_resolve_substring_charlen (e);
6840 break;
6842 case EXPR_COMPCALL:
6843 t = resolve_typebound_function (e);
6844 break;
6846 case EXPR_SUBSTRING:
6847 t = resolve_ref (e);
6848 break;
6850 case EXPR_CONSTANT:
6851 case EXPR_NULL:
6852 t = true;
6853 break;
6855 case EXPR_PPC:
6856 t = resolve_expr_ppc (e);
6857 break;
6859 case EXPR_ARRAY:
6860 t = false;
6861 if (!resolve_ref (e))
6862 break;
6864 t = gfc_resolve_array_constructor (e);
6865 /* Also try to expand a constructor. */
6866 if (t)
6868 expression_rank (e);
6869 if (gfc_is_constant_expr (e) || gfc_is_expandable_expr (e))
6870 gfc_expand_constructor (e, false);
6873 /* This provides the opportunity for the length of constructors with
6874 character valued function elements to propagate the string length
6875 to the expression. */
6876 if (t && e->ts.type == BT_CHARACTER)
6878 /* For efficiency, we call gfc_expand_constructor for BT_CHARACTER
6879 here rather then add a duplicate test for it above. */
6880 gfc_expand_constructor (e, false);
6881 t = gfc_resolve_character_array_constructor (e);
6884 break;
6886 case EXPR_STRUCTURE:
6887 t = resolve_ref (e);
6888 if (!t)
6889 break;
6891 t = resolve_structure_cons (e, 0);
6892 if (!t)
6893 break;
6895 t = gfc_simplify_expr (e, 0);
6896 break;
6898 default:
6899 gfc_internal_error ("gfc_resolve_expr(): Bad expression type");
6902 if (e->ts.type == BT_CHARACTER && t && !e->ts.u.cl)
6903 fixup_charlen (e);
6905 inquiry_argument = inquiry_save;
6906 actual_arg = actual_arg_save;
6907 first_actual_arg = first_actual_arg_save;
6909 return t;
6913 /* Resolve an expression from an iterator. They must be scalar and have
6914 INTEGER or (optionally) REAL type. */
6916 static bool
6917 gfc_resolve_iterator_expr (gfc_expr *expr, bool real_ok,
6918 const char *name_msgid)
6920 if (!gfc_resolve_expr (expr))
6921 return false;
6923 if (expr->rank != 0)
6925 gfc_error ("%s at %L must be a scalar", _(name_msgid), &expr->where);
6926 return false;
6929 if (expr->ts.type != BT_INTEGER)
6931 if (expr->ts.type == BT_REAL)
6933 if (real_ok)
6934 return gfc_notify_std (GFC_STD_F95_DEL,
6935 "%s at %L must be integer",
6936 _(name_msgid), &expr->where);
6937 else
6939 gfc_error ("%s at %L must be INTEGER", _(name_msgid),
6940 &expr->where);
6941 return false;
6944 else
6946 gfc_error ("%s at %L must be INTEGER", _(name_msgid), &expr->where);
6947 return false;
6950 return true;
6954 /* Resolve the expressions in an iterator structure. If REAL_OK is
6955 false allow only INTEGER type iterators, otherwise allow REAL types.
6956 Set own_scope to true for ac-implied-do and data-implied-do as those
6957 have a separate scope such that, e.g., a INTENT(IN) doesn't apply. */
6959 bool
6960 gfc_resolve_iterator (gfc_iterator *iter, bool real_ok, bool own_scope)
6962 if (!gfc_resolve_iterator_expr (iter->var, real_ok, "Loop variable"))
6963 return false;
6965 if (!gfc_check_vardef_context (iter->var, false, false, own_scope,
6966 _("iterator variable")))
6967 return false;
6969 if (!gfc_resolve_iterator_expr (iter->start, real_ok,
6970 "Start expression in DO loop"))
6971 return false;
6973 if (!gfc_resolve_iterator_expr (iter->end, real_ok,
6974 "End expression in DO loop"))
6975 return false;
6977 if (!gfc_resolve_iterator_expr (iter->step, real_ok,
6978 "Step expression in DO loop"))
6979 return false;
6981 if (iter->step->expr_type == EXPR_CONSTANT)
6983 if ((iter->step->ts.type == BT_INTEGER
6984 && mpz_cmp_ui (iter->step->value.integer, 0) == 0)
6985 || (iter->step->ts.type == BT_REAL
6986 && mpfr_sgn (iter->step->value.real) == 0))
6988 gfc_error ("Step expression in DO loop at %L cannot be zero",
6989 &iter->step->where);
6990 return false;
6994 /* Convert start, end, and step to the same type as var. */
6995 if (iter->start->ts.kind != iter->var->ts.kind
6996 || iter->start->ts.type != iter->var->ts.type)
6997 gfc_convert_type (iter->start, &iter->var->ts, 1);
6999 if (iter->end->ts.kind != iter->var->ts.kind
7000 || iter->end->ts.type != iter->var->ts.type)
7001 gfc_convert_type (iter->end, &iter->var->ts, 1);
7003 if (iter->step->ts.kind != iter->var->ts.kind
7004 || iter->step->ts.type != iter->var->ts.type)
7005 gfc_convert_type (iter->step, &iter->var->ts, 1);
7007 if (iter->start->expr_type == EXPR_CONSTANT
7008 && iter->end->expr_type == EXPR_CONSTANT
7009 && iter->step->expr_type == EXPR_CONSTANT)
7011 int sgn, cmp;
7012 if (iter->start->ts.type == BT_INTEGER)
7014 sgn = mpz_cmp_ui (iter->step->value.integer, 0);
7015 cmp = mpz_cmp (iter->end->value.integer, iter->start->value.integer);
7017 else
7019 sgn = mpfr_sgn (iter->step->value.real);
7020 cmp = mpfr_cmp (iter->end->value.real, iter->start->value.real);
7022 if (warn_zerotrip && ((sgn > 0 && cmp < 0) || (sgn < 0 && cmp > 0)))
7023 gfc_warning (OPT_Wzerotrip,
7024 "DO loop at %L will be executed zero times",
7025 &iter->step->where);
7028 if (iter->end->expr_type == EXPR_CONSTANT
7029 && iter->end->ts.type == BT_INTEGER
7030 && iter->step->expr_type == EXPR_CONSTANT
7031 && iter->step->ts.type == BT_INTEGER
7032 && (mpz_cmp_si (iter->step->value.integer, -1L) == 0
7033 || mpz_cmp_si (iter->step->value.integer, 1L) == 0))
7035 bool is_step_positive = mpz_cmp_ui (iter->step->value.integer, 1) == 0;
7036 int k = gfc_validate_kind (BT_INTEGER, iter->end->ts.kind, false);
7038 if (is_step_positive
7039 && mpz_cmp (iter->end->value.integer, gfc_integer_kinds[k].huge) == 0)
7040 gfc_warning (OPT_Wundefined_do_loop,
7041 "DO loop at %L is undefined as it overflows",
7042 &iter->step->where);
7043 else if (!is_step_positive
7044 && mpz_cmp (iter->end->value.integer,
7045 gfc_integer_kinds[k].min_int) == 0)
7046 gfc_warning (OPT_Wundefined_do_loop,
7047 "DO loop at %L is undefined as it underflows",
7048 &iter->step->where);
7051 return true;
7055 /* Traversal function for find_forall_index. f == 2 signals that
7056 that variable itself is not to be checked - only the references. */
7058 static bool
7059 forall_index (gfc_expr *expr, gfc_symbol *sym, int *f)
7061 if (expr->expr_type != EXPR_VARIABLE)
7062 return false;
7064 /* A scalar assignment */
7065 if (!expr->ref || *f == 1)
7067 if (expr->symtree->n.sym == sym)
7068 return true;
7069 else
7070 return false;
7073 if (*f == 2)
7074 *f = 1;
7075 return false;
7079 /* Check whether the FORALL index appears in the expression or not.
7080 Returns true if SYM is found in EXPR. */
7082 bool
7083 find_forall_index (gfc_expr *expr, gfc_symbol *sym, int f)
7085 if (gfc_traverse_expr (expr, sym, forall_index, f))
7086 return true;
7087 else
7088 return false;
7092 /* Resolve a list of FORALL iterators. The FORALL index-name is constrained
7093 to be a scalar INTEGER variable. The subscripts and stride are scalar
7094 INTEGERs, and if stride is a constant it must be nonzero.
7095 Furthermore "A subscript or stride in a forall-triplet-spec shall
7096 not contain a reference to any index-name in the
7097 forall-triplet-spec-list in which it appears." (7.5.4.1) */
7099 static void
7100 resolve_forall_iterators (gfc_forall_iterator *it)
7102 gfc_forall_iterator *iter, *iter2;
7104 for (iter = it; iter; iter = iter->next)
7106 if (gfc_resolve_expr (iter->var)
7107 && (iter->var->ts.type != BT_INTEGER || iter->var->rank != 0))
7108 gfc_error ("FORALL index-name at %L must be a scalar INTEGER",
7109 &iter->var->where);
7111 if (gfc_resolve_expr (iter->start)
7112 && (iter->start->ts.type != BT_INTEGER || iter->start->rank != 0))
7113 gfc_error ("FORALL start expression at %L must be a scalar INTEGER",
7114 &iter->start->where);
7115 if (iter->var->ts.kind != iter->start->ts.kind)
7116 gfc_convert_type (iter->start, &iter->var->ts, 1);
7118 if (gfc_resolve_expr (iter->end)
7119 && (iter->end->ts.type != BT_INTEGER || iter->end->rank != 0))
7120 gfc_error ("FORALL end expression at %L must be a scalar INTEGER",
7121 &iter->end->where);
7122 if (iter->var->ts.kind != iter->end->ts.kind)
7123 gfc_convert_type (iter->end, &iter->var->ts, 1);
7125 if (gfc_resolve_expr (iter->stride))
7127 if (iter->stride->ts.type != BT_INTEGER || iter->stride->rank != 0)
7128 gfc_error ("FORALL stride expression at %L must be a scalar %s",
7129 &iter->stride->where, "INTEGER");
7131 if (iter->stride->expr_type == EXPR_CONSTANT
7132 && mpz_cmp_ui (iter->stride->value.integer, 0) == 0)
7133 gfc_error ("FORALL stride expression at %L cannot be zero",
7134 &iter->stride->where);
7136 if (iter->var->ts.kind != iter->stride->ts.kind)
7137 gfc_convert_type (iter->stride, &iter->var->ts, 1);
7140 for (iter = it; iter; iter = iter->next)
7141 for (iter2 = iter; iter2; iter2 = iter2->next)
7143 if (find_forall_index (iter2->start, iter->var->symtree->n.sym, 0)
7144 || find_forall_index (iter2->end, iter->var->symtree->n.sym, 0)
7145 || find_forall_index (iter2->stride, iter->var->symtree->n.sym, 0))
7146 gfc_error ("FORALL index %qs may not appear in triplet "
7147 "specification at %L", iter->var->symtree->name,
7148 &iter2->start->where);
7153 /* Given a pointer to a symbol that is a derived type, see if it's
7154 inaccessible, i.e. if it's defined in another module and the components are
7155 PRIVATE. The search is recursive if necessary. Returns zero if no
7156 inaccessible components are found, nonzero otherwise. */
7158 static int
7159 derived_inaccessible (gfc_symbol *sym)
7161 gfc_component *c;
7163 if (sym->attr.use_assoc && sym->attr.private_comp)
7164 return 1;
7166 for (c = sym->components; c; c = c->next)
7168 /* Prevent an infinite loop through this function. */
7169 if (c->ts.type == BT_DERIVED && c->attr.pointer
7170 && sym == c->ts.u.derived)
7171 continue;
7173 if (c->ts.type == BT_DERIVED && derived_inaccessible (c->ts.u.derived))
7174 return 1;
7177 return 0;
7181 /* Resolve the argument of a deallocate expression. The expression must be
7182 a pointer or a full array. */
7184 static bool
7185 resolve_deallocate_expr (gfc_expr *e)
7187 symbol_attribute attr;
7188 int allocatable, pointer;
7189 gfc_ref *ref;
7190 gfc_symbol *sym;
7191 gfc_component *c;
7192 bool unlimited;
7194 if (!gfc_resolve_expr (e))
7195 return false;
7197 if (e->expr_type != EXPR_VARIABLE)
7198 goto bad;
7200 sym = e->symtree->n.sym;
7201 unlimited = UNLIMITED_POLY(sym);
7203 if (sym->ts.type == BT_CLASS)
7205 allocatable = CLASS_DATA (sym)->attr.allocatable;
7206 pointer = CLASS_DATA (sym)->attr.class_pointer;
7208 else
7210 allocatable = sym->attr.allocatable;
7211 pointer = sym->attr.pointer;
7213 for (ref = e->ref; ref; ref = ref->next)
7215 switch (ref->type)
7217 case REF_ARRAY:
7218 if (ref->u.ar.type != AR_FULL
7219 && !(ref->u.ar.type == AR_ELEMENT && ref->u.ar.as->rank == 0
7220 && ref->u.ar.codimen && gfc_ref_this_image (ref)))
7221 allocatable = 0;
7222 break;
7224 case REF_COMPONENT:
7225 c = ref->u.c.component;
7226 if (c->ts.type == BT_CLASS)
7228 allocatable = CLASS_DATA (c)->attr.allocatable;
7229 pointer = CLASS_DATA (c)->attr.class_pointer;
7231 else
7233 allocatable = c->attr.allocatable;
7234 pointer = c->attr.pointer;
7236 break;
7238 case REF_SUBSTRING:
7239 case REF_INQUIRY:
7240 allocatable = 0;
7241 break;
7245 attr = gfc_expr_attr (e);
7247 if (allocatable == 0 && attr.pointer == 0 && !unlimited)
7249 bad:
7250 gfc_error ("Allocate-object at %L must be ALLOCATABLE or a POINTER",
7251 &e->where);
7252 return false;
7255 /* F2008, C644. */
7256 if (gfc_is_coindexed (e))
7258 gfc_error ("Coindexed allocatable object at %L", &e->where);
7259 return false;
7262 if (pointer
7263 && !gfc_check_vardef_context (e, true, true, false,
7264 _("DEALLOCATE object")))
7265 return false;
7266 if (!gfc_check_vardef_context (e, false, true, false,
7267 _("DEALLOCATE object")))
7268 return false;
7270 return true;
7274 /* Returns true if the expression e contains a reference to the symbol sym. */
7275 static bool
7276 sym_in_expr (gfc_expr *e, gfc_symbol *sym, int *f ATTRIBUTE_UNUSED)
7278 if (e->expr_type == EXPR_VARIABLE && e->symtree->n.sym == sym)
7279 return true;
7281 return false;
7284 bool
7285 gfc_find_sym_in_expr (gfc_symbol *sym, gfc_expr *e)
7287 return gfc_traverse_expr (e, sym, sym_in_expr, 0);
7291 /* Given the expression node e for an allocatable/pointer of derived type to be
7292 allocated, get the expression node to be initialized afterwards (needed for
7293 derived types with default initializers, and derived types with allocatable
7294 components that need nullification.) */
7296 gfc_expr *
7297 gfc_expr_to_initialize (gfc_expr *e)
7299 gfc_expr *result;
7300 gfc_ref *ref;
7301 int i;
7303 result = gfc_copy_expr (e);
7305 /* Change the last array reference from AR_ELEMENT to AR_FULL. */
7306 for (ref = result->ref; ref; ref = ref->next)
7307 if (ref->type == REF_ARRAY && ref->next == NULL)
7309 ref->u.ar.type = AR_FULL;
7311 for (i = 0; i < ref->u.ar.dimen; i++)
7312 ref->u.ar.start[i] = ref->u.ar.end[i] = ref->u.ar.stride[i] = NULL;
7314 break;
7317 gfc_free_shape (&result->shape, result->rank);
7319 /* Recalculate rank, shape, etc. */
7320 gfc_resolve_expr (result);
7321 return result;
7325 /* If the last ref of an expression is an array ref, return a copy of the
7326 expression with that one removed. Otherwise, a copy of the original
7327 expression. This is used for allocate-expressions and pointer assignment
7328 LHS, where there may be an array specification that needs to be stripped
7329 off when using gfc_check_vardef_context. */
7331 static gfc_expr*
7332 remove_last_array_ref (gfc_expr* e)
7334 gfc_expr* e2;
7335 gfc_ref** r;
7337 e2 = gfc_copy_expr (e);
7338 for (r = &e2->ref; *r; r = &(*r)->next)
7339 if ((*r)->type == REF_ARRAY && !(*r)->next)
7341 gfc_free_ref_list (*r);
7342 *r = NULL;
7343 break;
7346 return e2;
7350 /* Used in resolve_allocate_expr to check that a allocation-object and
7351 a source-expr are conformable. This does not catch all possible
7352 cases; in particular a runtime checking is needed. */
7354 static bool
7355 conformable_arrays (gfc_expr *e1, gfc_expr *e2)
7357 gfc_ref *tail;
7358 for (tail = e2->ref; tail && tail->next; tail = tail->next);
7360 /* First compare rank. */
7361 if ((tail && e1->rank != tail->u.ar.as->rank)
7362 || (!tail && e1->rank != e2->rank))
7364 gfc_error ("Source-expr at %L must be scalar or have the "
7365 "same rank as the allocate-object at %L",
7366 &e1->where, &e2->where);
7367 return false;
7370 if (e1->shape)
7372 int i;
7373 mpz_t s;
7375 mpz_init (s);
7377 for (i = 0; i < e1->rank; i++)
7379 if (tail->u.ar.start[i] == NULL)
7380 break;
7382 if (tail->u.ar.end[i])
7384 mpz_set (s, tail->u.ar.end[i]->value.integer);
7385 mpz_sub (s, s, tail->u.ar.start[i]->value.integer);
7386 mpz_add_ui (s, s, 1);
7388 else
7390 mpz_set (s, tail->u.ar.start[i]->value.integer);
7393 if (mpz_cmp (e1->shape[i], s) != 0)
7395 gfc_error ("Source-expr at %L and allocate-object at %L must "
7396 "have the same shape", &e1->where, &e2->where);
7397 mpz_clear (s);
7398 return false;
7402 mpz_clear (s);
7405 return true;
7409 /* Resolve the expression in an ALLOCATE statement, doing the additional
7410 checks to see whether the expression is OK or not. The expression must
7411 have a trailing array reference that gives the size of the array. */
7413 static bool
7414 resolve_allocate_expr (gfc_expr *e, gfc_code *code, bool *array_alloc_wo_spec)
7416 int i, pointer, allocatable, dimension, is_abstract;
7417 int codimension;
7418 bool coindexed;
7419 bool unlimited;
7420 symbol_attribute attr;
7421 gfc_ref *ref, *ref2;
7422 gfc_expr *e2;
7423 gfc_array_ref *ar;
7424 gfc_symbol *sym = NULL;
7425 gfc_alloc *a;
7426 gfc_component *c;
7427 bool t;
7429 /* Mark the utmost array component as being in allocate to allow DIMEN_STAR
7430 checking of coarrays. */
7431 for (ref = e->ref; ref; ref = ref->next)
7432 if (ref->next == NULL)
7433 break;
7435 if (ref && ref->type == REF_ARRAY)
7436 ref->u.ar.in_allocate = true;
7438 if (!gfc_resolve_expr (e))
7439 goto failure;
7441 /* Make sure the expression is allocatable or a pointer. If it is
7442 pointer, the next-to-last reference must be a pointer. */
7444 ref2 = NULL;
7445 if (e->symtree)
7446 sym = e->symtree->n.sym;
7448 /* Check whether ultimate component is abstract and CLASS. */
7449 is_abstract = 0;
7451 /* Is the allocate-object unlimited polymorphic? */
7452 unlimited = UNLIMITED_POLY(e);
7454 if (e->expr_type != EXPR_VARIABLE)
7456 allocatable = 0;
7457 attr = gfc_expr_attr (e);
7458 pointer = attr.pointer;
7459 dimension = attr.dimension;
7460 codimension = attr.codimension;
7462 else
7464 if (sym->ts.type == BT_CLASS && CLASS_DATA (sym))
7466 allocatable = CLASS_DATA (sym)->attr.allocatable;
7467 pointer = CLASS_DATA (sym)->attr.class_pointer;
7468 dimension = CLASS_DATA (sym)->attr.dimension;
7469 codimension = CLASS_DATA (sym)->attr.codimension;
7470 is_abstract = CLASS_DATA (sym)->attr.abstract;
7472 else
7474 allocatable = sym->attr.allocatable;
7475 pointer = sym->attr.pointer;
7476 dimension = sym->attr.dimension;
7477 codimension = sym->attr.codimension;
7480 coindexed = false;
7482 for (ref = e->ref; ref; ref2 = ref, ref = ref->next)
7484 switch (ref->type)
7486 case REF_ARRAY:
7487 if (ref->u.ar.codimen > 0)
7489 int n;
7490 for (n = ref->u.ar.dimen;
7491 n < ref->u.ar.dimen + ref->u.ar.codimen; n++)
7492 if (ref->u.ar.dimen_type[n] != DIMEN_THIS_IMAGE)
7494 coindexed = true;
7495 break;
7499 if (ref->next != NULL)
7500 pointer = 0;
7501 break;
7503 case REF_COMPONENT:
7504 /* F2008, C644. */
7505 if (coindexed)
7507 gfc_error ("Coindexed allocatable object at %L",
7508 &e->where);
7509 goto failure;
7512 c = ref->u.c.component;
7513 if (c->ts.type == BT_CLASS)
7515 allocatable = CLASS_DATA (c)->attr.allocatable;
7516 pointer = CLASS_DATA (c)->attr.class_pointer;
7517 dimension = CLASS_DATA (c)->attr.dimension;
7518 codimension = CLASS_DATA (c)->attr.codimension;
7519 is_abstract = CLASS_DATA (c)->attr.abstract;
7521 else
7523 allocatable = c->attr.allocatable;
7524 pointer = c->attr.pointer;
7525 dimension = c->attr.dimension;
7526 codimension = c->attr.codimension;
7527 is_abstract = c->attr.abstract;
7529 break;
7531 case REF_SUBSTRING:
7532 case REF_INQUIRY:
7533 allocatable = 0;
7534 pointer = 0;
7535 break;
7540 /* Check for F08:C628. */
7541 if (allocatable == 0 && pointer == 0 && !unlimited)
7543 gfc_error ("Allocate-object at %L must be ALLOCATABLE or a POINTER",
7544 &e->where);
7545 goto failure;
7548 /* Some checks for the SOURCE tag. */
7549 if (code->expr3)
7551 /* Check F03:C631. */
7552 if (!gfc_type_compatible (&e->ts, &code->expr3->ts))
7554 gfc_error ("Type of entity at %L is type incompatible with "
7555 "source-expr at %L", &e->where, &code->expr3->where);
7556 goto failure;
7559 /* Check F03:C632 and restriction following Note 6.18. */
7560 if (code->expr3->rank > 0 && !conformable_arrays (code->expr3, e))
7561 goto failure;
7563 /* Check F03:C633. */
7564 if (code->expr3->ts.kind != e->ts.kind && !unlimited)
7566 gfc_error ("The allocate-object at %L and the source-expr at %L "
7567 "shall have the same kind type parameter",
7568 &e->where, &code->expr3->where);
7569 goto failure;
7572 /* Check F2008, C642. */
7573 if (code->expr3->ts.type == BT_DERIVED
7574 && ((codimension && gfc_expr_attr (code->expr3).lock_comp)
7575 || (code->expr3->ts.u.derived->from_intmod
7576 == INTMOD_ISO_FORTRAN_ENV
7577 && code->expr3->ts.u.derived->intmod_sym_id
7578 == ISOFORTRAN_LOCK_TYPE)))
7580 gfc_error ("The source-expr at %L shall neither be of type "
7581 "LOCK_TYPE nor have a LOCK_TYPE component if "
7582 "allocate-object at %L is a coarray",
7583 &code->expr3->where, &e->where);
7584 goto failure;
7587 /* Check TS18508, C702/C703. */
7588 if (code->expr3->ts.type == BT_DERIVED
7589 && ((codimension && gfc_expr_attr (code->expr3).event_comp)
7590 || (code->expr3->ts.u.derived->from_intmod
7591 == INTMOD_ISO_FORTRAN_ENV
7592 && code->expr3->ts.u.derived->intmod_sym_id
7593 == ISOFORTRAN_EVENT_TYPE)))
7595 gfc_error ("The source-expr at %L shall neither be of type "
7596 "EVENT_TYPE nor have a EVENT_TYPE component if "
7597 "allocate-object at %L is a coarray",
7598 &code->expr3->where, &e->where);
7599 goto failure;
7603 /* Check F08:C629. */
7604 if (is_abstract && code->ext.alloc.ts.type == BT_UNKNOWN
7605 && !code->expr3)
7607 gcc_assert (e->ts.type == BT_CLASS);
7608 gfc_error ("Allocating %s of ABSTRACT base type at %L requires a "
7609 "type-spec or source-expr", sym->name, &e->where);
7610 goto failure;
7613 /* Check F08:C632. */
7614 if (code->ext.alloc.ts.type == BT_CHARACTER && !e->ts.deferred
7615 && !UNLIMITED_POLY (e))
7617 int cmp;
7619 if (!e->ts.u.cl->length)
7620 goto failure;
7622 cmp = gfc_dep_compare_expr (e->ts.u.cl->length,
7623 code->ext.alloc.ts.u.cl->length);
7624 if (cmp == 1 || cmp == -1 || cmp == -3)
7626 gfc_error ("Allocating %s at %L with type-spec requires the same "
7627 "character-length parameter as in the declaration",
7628 sym->name, &e->where);
7629 goto failure;
7633 /* In the variable definition context checks, gfc_expr_attr is used
7634 on the expression. This is fooled by the array specification
7635 present in e, thus we have to eliminate that one temporarily. */
7636 e2 = remove_last_array_ref (e);
7637 t = true;
7638 if (t && pointer)
7639 t = gfc_check_vardef_context (e2, true, true, false,
7640 _("ALLOCATE object"));
7641 if (t)
7642 t = gfc_check_vardef_context (e2, false, true, false,
7643 _("ALLOCATE object"));
7644 gfc_free_expr (e2);
7645 if (!t)
7646 goto failure;
7648 if (e->ts.type == BT_CLASS && CLASS_DATA (e)->attr.dimension
7649 && !code->expr3 && code->ext.alloc.ts.type == BT_DERIVED)
7651 /* For class arrays, the initialization with SOURCE is done
7652 using _copy and trans_call. It is convenient to exploit that
7653 when the allocated type is different from the declared type but
7654 no SOURCE exists by setting expr3. */
7655 code->expr3 = gfc_default_initializer (&code->ext.alloc.ts);
7657 else if (flag_coarray != GFC_FCOARRAY_LIB && e->ts.type == BT_DERIVED
7658 && e->ts.u.derived->from_intmod == INTMOD_ISO_FORTRAN_ENV
7659 && e->ts.u.derived->intmod_sym_id == ISOFORTRAN_EVENT_TYPE)
7661 /* We have to zero initialize the integer variable. */
7662 code->expr3 = gfc_get_int_expr (gfc_default_integer_kind, &e->where, 0);
7665 if (e->ts.type == BT_CLASS && !unlimited && !UNLIMITED_POLY (code->expr3))
7667 /* Make sure the vtab symbol is present when
7668 the module variables are generated. */
7669 gfc_typespec ts = e->ts;
7670 if (code->expr3)
7671 ts = code->expr3->ts;
7672 else if (code->ext.alloc.ts.type == BT_DERIVED)
7673 ts = code->ext.alloc.ts;
7675 /* Finding the vtab also publishes the type's symbol. Therefore this
7676 statement is necessary. */
7677 gfc_find_derived_vtab (ts.u.derived);
7679 else if (unlimited && !UNLIMITED_POLY (code->expr3))
7681 /* Again, make sure the vtab symbol is present when
7682 the module variables are generated. */
7683 gfc_typespec *ts = NULL;
7684 if (code->expr3)
7685 ts = &code->expr3->ts;
7686 else
7687 ts = &code->ext.alloc.ts;
7689 gcc_assert (ts);
7691 /* Finding the vtab also publishes the type's symbol. Therefore this
7692 statement is necessary. */
7693 gfc_find_vtab (ts);
7696 if (dimension == 0 && codimension == 0)
7697 goto success;
7699 /* Make sure the last reference node is an array specification. */
7701 if (!ref2 || ref2->type != REF_ARRAY || ref2->u.ar.type == AR_FULL
7702 || (dimension && ref2->u.ar.dimen == 0))
7704 /* F08:C633. */
7705 if (code->expr3)
7707 if (!gfc_notify_std (GFC_STD_F2008, "Array specification required "
7708 "in ALLOCATE statement at %L", &e->where))
7709 goto failure;
7710 if (code->expr3->rank != 0)
7711 *array_alloc_wo_spec = true;
7712 else
7714 gfc_error ("Array specification or array-valued SOURCE= "
7715 "expression required in ALLOCATE statement at %L",
7716 &e->where);
7717 goto failure;
7720 else
7722 gfc_error ("Array specification required in ALLOCATE statement "
7723 "at %L", &e->where);
7724 goto failure;
7728 /* Make sure that the array section reference makes sense in the
7729 context of an ALLOCATE specification. */
7731 ar = &ref2->u.ar;
7733 if (codimension)
7734 for (i = ar->dimen; i < ar->dimen + ar->codimen; i++)
7735 if (ar->dimen_type[i] == DIMEN_THIS_IMAGE)
7737 gfc_error ("Coarray specification required in ALLOCATE statement "
7738 "at %L", &e->where);
7739 goto failure;
7742 for (i = 0; i < ar->dimen; i++)
7744 if (ar->type == AR_ELEMENT || ar->type == AR_FULL)
7745 goto check_symbols;
7747 switch (ar->dimen_type[i])
7749 case DIMEN_ELEMENT:
7750 break;
7752 case DIMEN_RANGE:
7753 if (ar->start[i] != NULL
7754 && ar->end[i] != NULL
7755 && ar->stride[i] == NULL)
7756 break;
7758 /* Fall through. */
7760 case DIMEN_UNKNOWN:
7761 case DIMEN_VECTOR:
7762 case DIMEN_STAR:
7763 case DIMEN_THIS_IMAGE:
7764 gfc_error ("Bad array specification in ALLOCATE statement at %L",
7765 &e->where);
7766 goto failure;
7769 check_symbols:
7770 for (a = code->ext.alloc.list; a; a = a->next)
7772 sym = a->expr->symtree->n.sym;
7774 /* TODO - check derived type components. */
7775 if (gfc_bt_struct (sym->ts.type) || sym->ts.type == BT_CLASS)
7776 continue;
7778 if ((ar->start[i] != NULL
7779 && gfc_find_sym_in_expr (sym, ar->start[i]))
7780 || (ar->end[i] != NULL
7781 && gfc_find_sym_in_expr (sym, ar->end[i])))
7783 gfc_error ("%qs must not appear in the array specification at "
7784 "%L in the same ALLOCATE statement where it is "
7785 "itself allocated", sym->name, &ar->where);
7786 goto failure;
7791 for (i = ar->dimen; i < ar->codimen + ar->dimen; i++)
7793 if (ar->dimen_type[i] == DIMEN_ELEMENT
7794 || ar->dimen_type[i] == DIMEN_RANGE)
7796 if (i == (ar->dimen + ar->codimen - 1))
7798 gfc_error ("Expected '*' in coindex specification in ALLOCATE "
7799 "statement at %L", &e->where);
7800 goto failure;
7802 continue;
7805 if (ar->dimen_type[i] == DIMEN_STAR && i == (ar->dimen + ar->codimen - 1)
7806 && ar->stride[i] == NULL)
7807 break;
7809 gfc_error ("Bad coarray specification in ALLOCATE statement at %L",
7810 &e->where);
7811 goto failure;
7814 success:
7815 return true;
7817 failure:
7818 return false;
7822 static void
7823 resolve_allocate_deallocate (gfc_code *code, const char *fcn)
7825 gfc_expr *stat, *errmsg, *pe, *qe;
7826 gfc_alloc *a, *p, *q;
7828 stat = code->expr1;
7829 errmsg = code->expr2;
7831 /* Check the stat variable. */
7832 if (stat)
7834 gfc_check_vardef_context (stat, false, false, false,
7835 _("STAT variable"));
7837 if ((stat->ts.type != BT_INTEGER
7838 && !(stat->ref && (stat->ref->type == REF_ARRAY
7839 || stat->ref->type == REF_COMPONENT)))
7840 || stat->rank > 0)
7841 gfc_error ("Stat-variable at %L must be a scalar INTEGER "
7842 "variable", &stat->where);
7844 for (p = code->ext.alloc.list; p; p = p->next)
7845 if (p->expr->symtree->n.sym->name == stat->symtree->n.sym->name)
7847 gfc_ref *ref1, *ref2;
7848 bool found = true;
7850 for (ref1 = p->expr->ref, ref2 = stat->ref; ref1 && ref2;
7851 ref1 = ref1->next, ref2 = ref2->next)
7853 if (ref1->type != REF_COMPONENT || ref2->type != REF_COMPONENT)
7854 continue;
7855 if (ref1->u.c.component->name != ref2->u.c.component->name)
7857 found = false;
7858 break;
7862 if (found)
7864 gfc_error ("Stat-variable at %L shall not be %sd within "
7865 "the same %s statement", &stat->where, fcn, fcn);
7866 break;
7871 /* Check the errmsg variable. */
7872 if (errmsg)
7874 if (!stat)
7875 gfc_warning (0, "ERRMSG at %L is useless without a STAT tag",
7876 &errmsg->where);
7878 gfc_check_vardef_context (errmsg, false, false, false,
7879 _("ERRMSG variable"));
7881 /* F18:R928 alloc-opt is ERRMSG = errmsg-variable
7882 F18:R930 errmsg-variable is scalar-default-char-variable
7883 F18:R906 default-char-variable is variable
7884 F18:C906 default-char-variable shall be default character. */
7885 if ((errmsg->ts.type != BT_CHARACTER
7886 && !(errmsg->ref
7887 && (errmsg->ref->type == REF_ARRAY
7888 || errmsg->ref->type == REF_COMPONENT)))
7889 || errmsg->rank > 0
7890 || errmsg->ts.kind != gfc_default_character_kind)
7891 gfc_error ("ERRMSG variable at %L shall be a scalar default CHARACTER "
7892 "variable", &errmsg->where);
7894 for (p = code->ext.alloc.list; p; p = p->next)
7895 if (p->expr->symtree->n.sym->name == errmsg->symtree->n.sym->name)
7897 gfc_ref *ref1, *ref2;
7898 bool found = true;
7900 for (ref1 = p->expr->ref, ref2 = errmsg->ref; ref1 && ref2;
7901 ref1 = ref1->next, ref2 = ref2->next)
7903 if (ref1->type != REF_COMPONENT || ref2->type != REF_COMPONENT)
7904 continue;
7905 if (ref1->u.c.component->name != ref2->u.c.component->name)
7907 found = false;
7908 break;
7912 if (found)
7914 gfc_error ("Errmsg-variable at %L shall not be %sd within "
7915 "the same %s statement", &errmsg->where, fcn, fcn);
7916 break;
7921 /* Check that an allocate-object appears only once in the statement. */
7923 for (p = code->ext.alloc.list; p; p = p->next)
7925 pe = p->expr;
7926 for (q = p->next; q; q = q->next)
7928 qe = q->expr;
7929 if (pe->symtree->n.sym->name == qe->symtree->n.sym->name)
7931 /* This is a potential collision. */
7932 gfc_ref *pr = pe->ref;
7933 gfc_ref *qr = qe->ref;
7935 /* Follow the references until
7936 a) They start to differ, in which case there is no error;
7937 you can deallocate a%b and a%c in a single statement
7938 b) Both of them stop, which is an error
7939 c) One of them stops, which is also an error. */
7940 while (1)
7942 if (pr == NULL && qr == NULL)
7944 gfc_error ("Allocate-object at %L also appears at %L",
7945 &pe->where, &qe->where);
7946 break;
7948 else if (pr != NULL && qr == NULL)
7950 gfc_error ("Allocate-object at %L is subobject of"
7951 " object at %L", &pe->where, &qe->where);
7952 break;
7954 else if (pr == NULL && qr != NULL)
7956 gfc_error ("Allocate-object at %L is subobject of"
7957 " object at %L", &qe->where, &pe->where);
7958 break;
7960 /* Here, pr != NULL && qr != NULL */
7961 gcc_assert(pr->type == qr->type);
7962 if (pr->type == REF_ARRAY)
7964 /* Handle cases like allocate(v(3)%x(3), v(2)%x(3)),
7965 which are legal. */
7966 gcc_assert (qr->type == REF_ARRAY);
7968 if (pr->next && qr->next)
7970 int i;
7971 gfc_array_ref *par = &(pr->u.ar);
7972 gfc_array_ref *qar = &(qr->u.ar);
7974 for (i=0; i<par->dimen; i++)
7976 if ((par->start[i] != NULL
7977 || qar->start[i] != NULL)
7978 && gfc_dep_compare_expr (par->start[i],
7979 qar->start[i]) != 0)
7980 goto break_label;
7984 else
7986 if (pr->u.c.component->name != qr->u.c.component->name)
7987 break;
7990 pr = pr->next;
7991 qr = qr->next;
7993 break_label:
7999 if (strcmp (fcn, "ALLOCATE") == 0)
8001 bool arr_alloc_wo_spec = false;
8003 /* Resolving the expr3 in the loop over all objects to allocate would
8004 execute loop invariant code for each loop item. Therefore do it just
8005 once here. */
8006 if (code->expr3 && code->expr3->mold
8007 && code->expr3->ts.type == BT_DERIVED)
8009 /* Default initialization via MOLD (non-polymorphic). */
8010 gfc_expr *rhs = gfc_default_initializer (&code->expr3->ts);
8011 if (rhs != NULL)
8013 gfc_resolve_expr (rhs);
8014 gfc_free_expr (code->expr3);
8015 code->expr3 = rhs;
8018 for (a = code->ext.alloc.list; a; a = a->next)
8019 resolve_allocate_expr (a->expr, code, &arr_alloc_wo_spec);
8021 if (arr_alloc_wo_spec && code->expr3)
8023 /* Mark the allocate to have to take the array specification
8024 from the expr3. */
8025 code->ext.alloc.arr_spec_from_expr3 = 1;
8028 else
8030 for (a = code->ext.alloc.list; a; a = a->next)
8031 resolve_deallocate_expr (a->expr);
8036 /************ SELECT CASE resolution subroutines ************/
8038 /* Callback function for our mergesort variant. Determines interval
8039 overlaps for CASEs. Return <0 if op1 < op2, 0 for overlap, >0 for
8040 op1 > op2. Assumes we're not dealing with the default case.
8041 We have op1 = (:L), (K:L) or (K:) and op2 = (:N), (M:N) or (M:).
8042 There are nine situations to check. */
8044 static int
8045 compare_cases (const gfc_case *op1, const gfc_case *op2)
8047 int retval;
8049 if (op1->low == NULL) /* op1 = (:L) */
8051 /* op2 = (:N), so overlap. */
8052 retval = 0;
8053 /* op2 = (M:) or (M:N), L < M */
8054 if (op2->low != NULL
8055 && gfc_compare_expr (op1->high, op2->low, INTRINSIC_LT) < 0)
8056 retval = -1;
8058 else if (op1->high == NULL) /* op1 = (K:) */
8060 /* op2 = (M:), so overlap. */
8061 retval = 0;
8062 /* op2 = (:N) or (M:N), K > N */
8063 if (op2->high != NULL
8064 && gfc_compare_expr (op1->low, op2->high, INTRINSIC_GT) > 0)
8065 retval = 1;
8067 else /* op1 = (K:L) */
8069 if (op2->low == NULL) /* op2 = (:N), K > N */
8070 retval = (gfc_compare_expr (op1->low, op2->high, INTRINSIC_GT) > 0)
8071 ? 1 : 0;
8072 else if (op2->high == NULL) /* op2 = (M:), L < M */
8073 retval = (gfc_compare_expr (op1->high, op2->low, INTRINSIC_LT) < 0)
8074 ? -1 : 0;
8075 else /* op2 = (M:N) */
8077 retval = 0;
8078 /* L < M */
8079 if (gfc_compare_expr (op1->high, op2->low, INTRINSIC_LT) < 0)
8080 retval = -1;
8081 /* K > N */
8082 else if (gfc_compare_expr (op1->low, op2->high, INTRINSIC_GT) > 0)
8083 retval = 1;
8087 return retval;
8091 /* Merge-sort a double linked case list, detecting overlap in the
8092 process. LIST is the head of the double linked case list before it
8093 is sorted. Returns the head of the sorted list if we don't see any
8094 overlap, or NULL otherwise. */
8096 static gfc_case *
8097 check_case_overlap (gfc_case *list)
8099 gfc_case *p, *q, *e, *tail;
8100 int insize, nmerges, psize, qsize, cmp, overlap_seen;
8102 /* If the passed list was empty, return immediately. */
8103 if (!list)
8104 return NULL;
8106 overlap_seen = 0;
8107 insize = 1;
8109 /* Loop unconditionally. The only exit from this loop is a return
8110 statement, when we've finished sorting the case list. */
8111 for (;;)
8113 p = list;
8114 list = NULL;
8115 tail = NULL;
8117 /* Count the number of merges we do in this pass. */
8118 nmerges = 0;
8120 /* Loop while there exists a merge to be done. */
8121 while (p)
8123 int i;
8125 /* Count this merge. */
8126 nmerges++;
8128 /* Cut the list in two pieces by stepping INSIZE places
8129 forward in the list, starting from P. */
8130 psize = 0;
8131 q = p;
8132 for (i = 0; i < insize; i++)
8134 psize++;
8135 q = q->right;
8136 if (!q)
8137 break;
8139 qsize = insize;
8141 /* Now we have two lists. Merge them! */
8142 while (psize > 0 || (qsize > 0 && q != NULL))
8144 /* See from which the next case to merge comes from. */
8145 if (psize == 0)
8147 /* P is empty so the next case must come from Q. */
8148 e = q;
8149 q = q->right;
8150 qsize--;
8152 else if (qsize == 0 || q == NULL)
8154 /* Q is empty. */
8155 e = p;
8156 p = p->right;
8157 psize--;
8159 else
8161 cmp = compare_cases (p, q);
8162 if (cmp < 0)
8164 /* The whole case range for P is less than the
8165 one for Q. */
8166 e = p;
8167 p = p->right;
8168 psize--;
8170 else if (cmp > 0)
8172 /* The whole case range for Q is greater than
8173 the case range for P. */
8174 e = q;
8175 q = q->right;
8176 qsize--;
8178 else
8180 /* The cases overlap, or they are the same
8181 element in the list. Either way, we must
8182 issue an error and get the next case from P. */
8183 /* FIXME: Sort P and Q by line number. */
8184 gfc_error ("CASE label at %L overlaps with CASE "
8185 "label at %L", &p->where, &q->where);
8186 overlap_seen = 1;
8187 e = p;
8188 p = p->right;
8189 psize--;
8193 /* Add the next element to the merged list. */
8194 if (tail)
8195 tail->right = e;
8196 else
8197 list = e;
8198 e->left = tail;
8199 tail = e;
8202 /* P has now stepped INSIZE places along, and so has Q. So
8203 they're the same. */
8204 p = q;
8206 tail->right = NULL;
8208 /* If we have done only one merge or none at all, we've
8209 finished sorting the cases. */
8210 if (nmerges <= 1)
8212 if (!overlap_seen)
8213 return list;
8214 else
8215 return NULL;
8218 /* Otherwise repeat, merging lists twice the size. */
8219 insize *= 2;
8224 /* Check to see if an expression is suitable for use in a CASE statement.
8225 Makes sure that all case expressions are scalar constants of the same
8226 type. Return false if anything is wrong. */
8228 static bool
8229 validate_case_label_expr (gfc_expr *e, gfc_expr *case_expr)
8231 if (e == NULL) return true;
8233 if (e->ts.type != case_expr->ts.type)
8235 gfc_error ("Expression in CASE statement at %L must be of type %s",
8236 &e->where, gfc_basic_typename (case_expr->ts.type));
8237 return false;
8240 /* C805 (R808) For a given case-construct, each case-value shall be of
8241 the same type as case-expr. For character type, length differences
8242 are allowed, but the kind type parameters shall be the same. */
8244 if (case_expr->ts.type == BT_CHARACTER && e->ts.kind != case_expr->ts.kind)
8246 gfc_error ("Expression in CASE statement at %L must be of kind %d",
8247 &e->where, case_expr->ts.kind);
8248 return false;
8251 /* Convert the case value kind to that of case expression kind,
8252 if needed */
8254 if (e->ts.kind != case_expr->ts.kind)
8255 gfc_convert_type_warn (e, &case_expr->ts, 2, 0);
8257 if (e->rank != 0)
8259 gfc_error ("Expression in CASE statement at %L must be scalar",
8260 &e->where);
8261 return false;
8264 return true;
8268 /* Given a completely parsed select statement, we:
8270 - Validate all expressions and code within the SELECT.
8271 - Make sure that the selection expression is not of the wrong type.
8272 - Make sure that no case ranges overlap.
8273 - Eliminate unreachable cases and unreachable code resulting from
8274 removing case labels.
8276 The standard does allow unreachable cases, e.g. CASE (5:3). But
8277 they are a hassle for code generation, and to prevent that, we just
8278 cut them out here. This is not necessary for overlapping cases
8279 because they are illegal and we never even try to generate code.
8281 We have the additional caveat that a SELECT construct could have
8282 been a computed GOTO in the source code. Fortunately we can fairly
8283 easily work around that here: The case_expr for a "real" SELECT CASE
8284 is in code->expr1, but for a computed GOTO it is in code->expr2. All
8285 we have to do is make sure that the case_expr is a scalar integer
8286 expression. */
8288 static void
8289 resolve_select (gfc_code *code, bool select_type)
8291 gfc_code *body;
8292 gfc_expr *case_expr;
8293 gfc_case *cp, *default_case, *tail, *head;
8294 int seen_unreachable;
8295 int seen_logical;
8296 int ncases;
8297 bt type;
8298 bool t;
8300 if (code->expr1 == NULL)
8302 /* This was actually a computed GOTO statement. */
8303 case_expr = code->expr2;
8304 if (case_expr->ts.type != BT_INTEGER|| case_expr->rank != 0)
8305 gfc_error ("Selection expression in computed GOTO statement "
8306 "at %L must be a scalar integer expression",
8307 &case_expr->where);
8309 /* Further checking is not necessary because this SELECT was built
8310 by the compiler, so it should always be OK. Just move the
8311 case_expr from expr2 to expr so that we can handle computed
8312 GOTOs as normal SELECTs from here on. */
8313 code->expr1 = code->expr2;
8314 code->expr2 = NULL;
8315 return;
8318 case_expr = code->expr1;
8319 type = case_expr->ts.type;
8321 /* F08:C830. */
8322 if (type != BT_LOGICAL && type != BT_INTEGER && type != BT_CHARACTER)
8324 gfc_error ("Argument of SELECT statement at %L cannot be %s",
8325 &case_expr->where, gfc_typename (&case_expr->ts));
8327 /* Punt. Going on here just produce more garbage error messages. */
8328 return;
8331 /* F08:R842. */
8332 if (!select_type && case_expr->rank != 0)
8334 gfc_error ("Argument of SELECT statement at %L must be a scalar "
8335 "expression", &case_expr->where);
8337 /* Punt. */
8338 return;
8341 /* Raise a warning if an INTEGER case value exceeds the range of
8342 the case-expr. Later, all expressions will be promoted to the
8343 largest kind of all case-labels. */
8345 if (type == BT_INTEGER)
8346 for (body = code->block; body; body = body->block)
8347 for (cp = body->ext.block.case_list; cp; cp = cp->next)
8349 if (cp->low
8350 && gfc_check_integer_range (cp->low->value.integer,
8351 case_expr->ts.kind) != ARITH_OK)
8352 gfc_warning (0, "Expression in CASE statement at %L is "
8353 "not in the range of %s", &cp->low->where,
8354 gfc_typename (&case_expr->ts));
8356 if (cp->high
8357 && cp->low != cp->high
8358 && gfc_check_integer_range (cp->high->value.integer,
8359 case_expr->ts.kind) != ARITH_OK)
8360 gfc_warning (0, "Expression in CASE statement at %L is "
8361 "not in the range of %s", &cp->high->where,
8362 gfc_typename (&case_expr->ts));
8365 /* PR 19168 has a long discussion concerning a mismatch of the kinds
8366 of the SELECT CASE expression and its CASE values. Walk the lists
8367 of case values, and if we find a mismatch, promote case_expr to
8368 the appropriate kind. */
8370 if (type == BT_LOGICAL || type == BT_INTEGER)
8372 for (body = code->block; body; body = body->block)
8374 /* Walk the case label list. */
8375 for (cp = body->ext.block.case_list; cp; cp = cp->next)
8377 /* Intercept the DEFAULT case. It does not have a kind. */
8378 if (cp->low == NULL && cp->high == NULL)
8379 continue;
8381 /* Unreachable case ranges are discarded, so ignore. */
8382 if (cp->low != NULL && cp->high != NULL
8383 && cp->low != cp->high
8384 && gfc_compare_expr (cp->low, cp->high, INTRINSIC_GT) > 0)
8385 continue;
8387 if (cp->low != NULL
8388 && case_expr->ts.kind != gfc_kind_max(case_expr, cp->low))
8389 gfc_convert_type_warn (case_expr, &cp->low->ts, 2, 0);
8391 if (cp->high != NULL
8392 && case_expr->ts.kind != gfc_kind_max(case_expr, cp->high))
8393 gfc_convert_type_warn (case_expr, &cp->high->ts, 2, 0);
8398 /* Assume there is no DEFAULT case. */
8399 default_case = NULL;
8400 head = tail = NULL;
8401 ncases = 0;
8402 seen_logical = 0;
8404 for (body = code->block; body; body = body->block)
8406 /* Assume the CASE list is OK, and all CASE labels can be matched. */
8407 t = true;
8408 seen_unreachable = 0;
8410 /* Walk the case label list, making sure that all case labels
8411 are legal. */
8412 for (cp = body->ext.block.case_list; cp; cp = cp->next)
8414 /* Count the number of cases in the whole construct. */
8415 ncases++;
8417 /* Intercept the DEFAULT case. */
8418 if (cp->low == NULL && cp->high == NULL)
8420 if (default_case != NULL)
8422 gfc_error ("The DEFAULT CASE at %L cannot be followed "
8423 "by a second DEFAULT CASE at %L",
8424 &default_case->where, &cp->where);
8425 t = false;
8426 break;
8428 else
8430 default_case = cp;
8431 continue;
8435 /* Deal with single value cases and case ranges. Errors are
8436 issued from the validation function. */
8437 if (!validate_case_label_expr (cp->low, case_expr)
8438 || !validate_case_label_expr (cp->high, case_expr))
8440 t = false;
8441 break;
8444 if (type == BT_LOGICAL
8445 && ((cp->low == NULL || cp->high == NULL)
8446 || cp->low != cp->high))
8448 gfc_error ("Logical range in CASE statement at %L is not "
8449 "allowed", &cp->low->where);
8450 t = false;
8451 break;
8454 if (type == BT_LOGICAL && cp->low->expr_type == EXPR_CONSTANT)
8456 int value;
8457 value = cp->low->value.logical == 0 ? 2 : 1;
8458 if (value & seen_logical)
8460 gfc_error ("Constant logical value in CASE statement "
8461 "is repeated at %L",
8462 &cp->low->where);
8463 t = false;
8464 break;
8466 seen_logical |= value;
8469 if (cp->low != NULL && cp->high != NULL
8470 && cp->low != cp->high
8471 && gfc_compare_expr (cp->low, cp->high, INTRINSIC_GT) > 0)
8473 if (warn_surprising)
8474 gfc_warning (OPT_Wsurprising,
8475 "Range specification at %L can never be matched",
8476 &cp->where);
8478 cp->unreachable = 1;
8479 seen_unreachable = 1;
8481 else
8483 /* If the case range can be matched, it can also overlap with
8484 other cases. To make sure it does not, we put it in a
8485 double linked list here. We sort that with a merge sort
8486 later on to detect any overlapping cases. */
8487 if (!head)
8489 head = tail = cp;
8490 head->right = head->left = NULL;
8492 else
8494 tail->right = cp;
8495 tail->right->left = tail;
8496 tail = tail->right;
8497 tail->right = NULL;
8502 /* It there was a failure in the previous case label, give up
8503 for this case label list. Continue with the next block. */
8504 if (!t)
8505 continue;
8507 /* See if any case labels that are unreachable have been seen.
8508 If so, we eliminate them. This is a bit of a kludge because
8509 the case lists for a single case statement (label) is a
8510 single forward linked lists. */
8511 if (seen_unreachable)
8513 /* Advance until the first case in the list is reachable. */
8514 while (body->ext.block.case_list != NULL
8515 && body->ext.block.case_list->unreachable)
8517 gfc_case *n = body->ext.block.case_list;
8518 body->ext.block.case_list = body->ext.block.case_list->next;
8519 n->next = NULL;
8520 gfc_free_case_list (n);
8523 /* Strip all other unreachable cases. */
8524 if (body->ext.block.case_list)
8526 for (cp = body->ext.block.case_list; cp && cp->next; cp = cp->next)
8528 if (cp->next->unreachable)
8530 gfc_case *n = cp->next;
8531 cp->next = cp->next->next;
8532 n->next = NULL;
8533 gfc_free_case_list (n);
8540 /* See if there were overlapping cases. If the check returns NULL,
8541 there was overlap. In that case we don't do anything. If head
8542 is non-NULL, we prepend the DEFAULT case. The sorted list can
8543 then used during code generation for SELECT CASE constructs with
8544 a case expression of a CHARACTER type. */
8545 if (head)
8547 head = check_case_overlap (head);
8549 /* Prepend the default_case if it is there. */
8550 if (head != NULL && default_case)
8552 default_case->left = NULL;
8553 default_case->right = head;
8554 head->left = default_case;
8558 /* Eliminate dead blocks that may be the result if we've seen
8559 unreachable case labels for a block. */
8560 for (body = code; body && body->block; body = body->block)
8562 if (body->block->ext.block.case_list == NULL)
8564 /* Cut the unreachable block from the code chain. */
8565 gfc_code *c = body->block;
8566 body->block = c->block;
8568 /* Kill the dead block, but not the blocks below it. */
8569 c->block = NULL;
8570 gfc_free_statements (c);
8574 /* More than two cases is legal but insane for logical selects.
8575 Issue a warning for it. */
8576 if (warn_surprising && type == BT_LOGICAL && ncases > 2)
8577 gfc_warning (OPT_Wsurprising,
8578 "Logical SELECT CASE block at %L has more that two cases",
8579 &code->loc);
8583 /* Check if a derived type is extensible. */
8585 bool
8586 gfc_type_is_extensible (gfc_symbol *sym)
8588 return !(sym->attr.is_bind_c || sym->attr.sequence
8589 || (sym->attr.is_class
8590 && sym->components->ts.u.derived->attr.unlimited_polymorphic));
8594 static void
8595 resolve_types (gfc_namespace *ns);
8597 /* Resolve an associate-name: Resolve target and ensure the type-spec is
8598 correct as well as possibly the array-spec. */
8600 static void
8601 resolve_assoc_var (gfc_symbol* sym, bool resolve_target)
8603 gfc_expr* target;
8605 gcc_assert (sym->assoc);
8606 gcc_assert (sym->attr.flavor == FL_VARIABLE);
8608 /* If this is for SELECT TYPE, the target may not yet be set. In that
8609 case, return. Resolution will be called later manually again when
8610 this is done. */
8611 target = sym->assoc->target;
8612 if (!target)
8613 return;
8614 gcc_assert (!sym->assoc->dangling);
8616 if (resolve_target && !gfc_resolve_expr (target))
8617 return;
8619 /* For variable targets, we get some attributes from the target. */
8620 if (target->expr_type == EXPR_VARIABLE)
8622 gfc_symbol* tsym;
8624 gcc_assert (target->symtree);
8625 tsym = target->symtree->n.sym;
8627 sym->attr.asynchronous = tsym->attr.asynchronous;
8628 sym->attr.volatile_ = tsym->attr.volatile_;
8630 sym->attr.target = tsym->attr.target
8631 || gfc_expr_attr (target).pointer;
8632 if (is_subref_array (target))
8633 sym->attr.subref_array_pointer = 1;
8636 if (target->expr_type == EXPR_NULL)
8638 gfc_error ("Selector at %L cannot be NULL()", &target->where);
8639 return;
8641 else if (target->ts.type == BT_UNKNOWN)
8643 gfc_error ("Selector at %L has no type", &target->where);
8644 return;
8647 /* Get type if this was not already set. Note that it can be
8648 some other type than the target in case this is a SELECT TYPE
8649 selector! So we must not update when the type is already there. */
8650 if (sym->ts.type == BT_UNKNOWN)
8651 sym->ts = target->ts;
8653 gcc_assert (sym->ts.type != BT_UNKNOWN);
8655 /* See if this is a valid association-to-variable. */
8656 sym->assoc->variable = (target->expr_type == EXPR_VARIABLE
8657 && !gfc_has_vector_subscript (target));
8659 /* Finally resolve if this is an array or not. */
8660 if (sym->attr.dimension && target->rank == 0)
8662 /* primary.c makes the assumption that a reference to an associate
8663 name followed by a left parenthesis is an array reference. */
8664 if (sym->ts.type != BT_CHARACTER)
8665 gfc_error ("Associate-name %qs at %L is used as array",
8666 sym->name, &sym->declared_at);
8667 sym->attr.dimension = 0;
8668 return;
8672 /* We cannot deal with class selectors that need temporaries. */
8673 if (target->ts.type == BT_CLASS
8674 && gfc_ref_needs_temporary_p (target->ref))
8676 gfc_error ("CLASS selector at %L needs a temporary which is not "
8677 "yet implemented", &target->where);
8678 return;
8681 if (target->ts.type == BT_CLASS)
8682 gfc_fix_class_refs (target);
8684 if (target->rank != 0)
8686 gfc_array_spec *as;
8687 /* The rank may be incorrectly guessed at parsing, therefore make sure
8688 it is corrected now. */
8689 if (sym->ts.type != BT_CLASS && (!sym->as || sym->assoc->rankguessed))
8691 if (!sym->as)
8692 sym->as = gfc_get_array_spec ();
8693 as = sym->as;
8694 as->rank = target->rank;
8695 as->type = AS_DEFERRED;
8696 as->corank = gfc_get_corank (target);
8697 sym->attr.dimension = 1;
8698 if (as->corank != 0)
8699 sym->attr.codimension = 1;
8701 else if (sym->ts.type == BT_CLASS && (!CLASS_DATA (sym)->as || sym->assoc->rankguessed))
8703 if (!CLASS_DATA (sym)->as)
8704 CLASS_DATA (sym)->as = gfc_get_array_spec ();
8705 as = CLASS_DATA (sym)->as;
8706 as->rank = target->rank;
8707 as->type = AS_DEFERRED;
8708 as->corank = gfc_get_corank (target);
8709 CLASS_DATA (sym)->attr.dimension = 1;
8710 if (as->corank != 0)
8711 CLASS_DATA (sym)->attr.codimension = 1;
8714 else
8716 /* target's rank is 0, but the type of the sym is still array valued,
8717 which has to be corrected. */
8718 if (sym->ts.type == BT_CLASS
8719 && CLASS_DATA (sym) && CLASS_DATA (sym)->as)
8721 gfc_array_spec *as;
8722 symbol_attribute attr;
8723 /* The associated variable's type is still the array type
8724 correct this now. */
8725 gfc_typespec *ts = &target->ts;
8726 gfc_ref *ref;
8727 gfc_component *c;
8728 for (ref = target->ref; ref != NULL; ref = ref->next)
8730 switch (ref->type)
8732 case REF_COMPONENT:
8733 ts = &ref->u.c.component->ts;
8734 break;
8735 case REF_ARRAY:
8736 if (ts->type == BT_CLASS)
8737 ts = &ts->u.derived->components->ts;
8738 break;
8739 default:
8740 break;
8743 /* Create a scalar instance of the current class type. Because the
8744 rank of a class array goes into its name, the type has to be
8745 rebuild. The alternative of (re-)setting just the attributes
8746 and as in the current type, destroys the type also in other
8747 places. */
8748 as = NULL;
8749 sym->ts = *ts;
8750 sym->ts.type = BT_CLASS;
8751 attr = CLASS_DATA (sym)->attr;
8752 attr.class_ok = 0;
8753 attr.associate_var = 1;
8754 attr.dimension = attr.codimension = 0;
8755 attr.class_pointer = 1;
8756 if (!gfc_build_class_symbol (&sym->ts, &attr, &as))
8757 gcc_unreachable ();
8758 /* Make sure the _vptr is set. */
8759 c = gfc_find_component (sym->ts.u.derived, "_vptr", true, true, NULL);
8760 if (c->ts.u.derived == NULL)
8761 c->ts.u.derived = gfc_find_derived_vtab (sym->ts.u.derived);
8762 CLASS_DATA (sym)->attr.pointer = 1;
8763 CLASS_DATA (sym)->attr.class_pointer = 1;
8764 gfc_set_sym_referenced (sym->ts.u.derived);
8765 gfc_commit_symbol (sym->ts.u.derived);
8766 /* _vptr now has the _vtab in it, change it to the _vtype. */
8767 if (c->ts.u.derived->attr.vtab)
8768 c->ts.u.derived = c->ts.u.derived->ts.u.derived;
8769 c->ts.u.derived->ns->types_resolved = 0;
8770 resolve_types (c->ts.u.derived->ns);
8774 /* Mark this as an associate variable. */
8775 sym->attr.associate_var = 1;
8777 /* Fix up the type-spec for CHARACTER types. */
8778 if (sym->ts.type == BT_CHARACTER && !sym->attr.select_type_temporary)
8780 if (!sym->ts.u.cl)
8781 sym->ts.u.cl = target->ts.u.cl;
8783 if (sym->ts.deferred && target->expr_type == EXPR_VARIABLE
8784 && target->symtree->n.sym->attr.dummy
8785 && sym->ts.u.cl == target->ts.u.cl)
8787 sym->ts.u.cl = gfc_new_charlen (sym->ns, NULL);
8788 sym->ts.deferred = 1;
8791 if (!sym->ts.u.cl->length
8792 && !sym->ts.deferred
8793 && target->expr_type == EXPR_CONSTANT)
8795 sym->ts.u.cl->length =
8796 gfc_get_int_expr (gfc_charlen_int_kind, NULL,
8797 target->value.character.length);
8799 else if ((!sym->ts.u.cl->length
8800 || sym->ts.u.cl->length->expr_type != EXPR_CONSTANT)
8801 && target->expr_type != EXPR_VARIABLE)
8803 sym->ts.u.cl = gfc_new_charlen (sym->ns, NULL);
8804 sym->ts.deferred = 1;
8806 /* This is reset in trans-stmt.c after the assignment
8807 of the target expression to the associate name. */
8808 sym->attr.allocatable = 1;
8812 /* If the target is a good class object, so is the associate variable. */
8813 if (sym->ts.type == BT_CLASS && gfc_expr_attr (target).class_ok)
8814 sym->attr.class_ok = 1;
8818 /* Ensure that SELECT TYPE expressions have the correct rank and a full
8819 array reference, where necessary. The symbols are artificial and so
8820 the dimension attribute and arrayspec can also be set. In addition,
8821 sometimes the expr1 arrives as BT_DERIVED, when the symbol is BT_CLASS.
8822 This is corrected here as well.*/
8824 static void
8825 fixup_array_ref (gfc_expr **expr1, gfc_expr *expr2,
8826 int rank, gfc_ref *ref)
8828 gfc_ref *nref = (*expr1)->ref;
8829 gfc_symbol *sym1 = (*expr1)->symtree->n.sym;
8830 gfc_symbol *sym2 = expr2 ? expr2->symtree->n.sym : NULL;
8831 (*expr1)->rank = rank;
8832 if (sym1->ts.type == BT_CLASS)
8834 if ((*expr1)->ts.type != BT_CLASS)
8835 (*expr1)->ts = sym1->ts;
8837 CLASS_DATA (sym1)->attr.dimension = 1;
8838 if (CLASS_DATA (sym1)->as == NULL && sym2)
8839 CLASS_DATA (sym1)->as
8840 = gfc_copy_array_spec (CLASS_DATA (sym2)->as);
8842 else
8844 sym1->attr.dimension = 1;
8845 if (sym1->as == NULL && sym2)
8846 sym1->as = gfc_copy_array_spec (sym2->as);
8849 for (; nref; nref = nref->next)
8850 if (nref->next == NULL)
8851 break;
8853 if (ref && nref && nref->type != REF_ARRAY)
8854 nref->next = gfc_copy_ref (ref);
8855 else if (ref && !nref)
8856 (*expr1)->ref = gfc_copy_ref (ref);
8860 static gfc_expr *
8861 build_loc_call (gfc_expr *sym_expr)
8863 gfc_expr *loc_call;
8864 loc_call = gfc_get_expr ();
8865 loc_call->expr_type = EXPR_FUNCTION;
8866 gfc_get_sym_tree ("_loc", gfc_current_ns, &loc_call->symtree, false);
8867 loc_call->symtree->n.sym->attr.flavor = FL_PROCEDURE;
8868 loc_call->symtree->n.sym->attr.intrinsic = 1;
8869 loc_call->symtree->n.sym->result = loc_call->symtree->n.sym;
8870 gfc_commit_symbol (loc_call->symtree->n.sym);
8871 loc_call->ts.type = BT_INTEGER;
8872 loc_call->ts.kind = gfc_index_integer_kind;
8873 loc_call->value.function.isym = gfc_intrinsic_function_by_id (GFC_ISYM_LOC);
8874 loc_call->value.function.actual = gfc_get_actual_arglist ();
8875 loc_call->value.function.actual->expr = sym_expr;
8876 loc_call->where = sym_expr->where;
8877 return loc_call;
8880 /* Resolve a SELECT TYPE statement. */
8882 static void
8883 resolve_select_type (gfc_code *code, gfc_namespace *old_ns)
8885 gfc_symbol *selector_type;
8886 gfc_code *body, *new_st, *if_st, *tail;
8887 gfc_code *class_is = NULL, *default_case = NULL;
8888 gfc_case *c;
8889 gfc_symtree *st;
8890 char name[GFC_MAX_SYMBOL_LEN];
8891 gfc_namespace *ns;
8892 int error = 0;
8893 int rank = 0;
8894 gfc_ref* ref = NULL;
8895 gfc_expr *selector_expr = NULL;
8897 ns = code->ext.block.ns;
8898 gfc_resolve (ns);
8900 /* Check for F03:C813. */
8901 if (code->expr1->ts.type != BT_CLASS
8902 && !(code->expr2 && code->expr2->ts.type == BT_CLASS))
8904 gfc_error ("Selector shall be polymorphic in SELECT TYPE statement "
8905 "at %L", &code->loc);
8906 return;
8909 if (!code->expr1->symtree->n.sym->attr.class_ok)
8910 return;
8912 if (code->expr2)
8914 gfc_ref *ref2 = NULL;
8915 for (ref = code->expr2->ref; ref != NULL; ref = ref->next)
8916 if (ref->type == REF_COMPONENT
8917 && ref->u.c.component->ts.type == BT_CLASS)
8918 ref2 = ref;
8920 if (ref2)
8922 if (code->expr1->symtree->n.sym->attr.untyped)
8923 code->expr1->symtree->n.sym->ts = ref2->u.c.component->ts;
8924 selector_type = CLASS_DATA (ref2->u.c.component)->ts.u.derived;
8926 else
8928 if (code->expr1->symtree->n.sym->attr.untyped)
8929 code->expr1->symtree->n.sym->ts = code->expr2->ts;
8930 selector_type = CLASS_DATA (code->expr2)->ts.u.derived;
8933 if (code->expr2->rank && CLASS_DATA (code->expr1)->as)
8934 CLASS_DATA (code->expr1)->as->rank = code->expr2->rank;
8936 /* F2008: C803 The selector expression must not be coindexed. */
8937 if (gfc_is_coindexed (code->expr2))
8939 gfc_error ("Selector at %L must not be coindexed",
8940 &code->expr2->where);
8941 return;
8945 else
8947 selector_type = CLASS_DATA (code->expr1)->ts.u.derived;
8949 if (gfc_is_coindexed (code->expr1))
8951 gfc_error ("Selector at %L must not be coindexed",
8952 &code->expr1->where);
8953 return;
8957 /* Loop over TYPE IS / CLASS IS cases. */
8958 for (body = code->block; body; body = body->block)
8960 c = body->ext.block.case_list;
8962 if (!error)
8964 /* Check for repeated cases. */
8965 for (tail = code->block; tail; tail = tail->block)
8967 gfc_case *d = tail->ext.block.case_list;
8968 if (tail == body)
8969 break;
8971 if (c->ts.type == d->ts.type
8972 && ((c->ts.type == BT_DERIVED
8973 && c->ts.u.derived && d->ts.u.derived
8974 && !strcmp (c->ts.u.derived->name,
8975 d->ts.u.derived->name))
8976 || c->ts.type == BT_UNKNOWN
8977 || (!(c->ts.type == BT_DERIVED || c->ts.type == BT_CLASS)
8978 && c->ts.kind == d->ts.kind)))
8980 gfc_error ("TYPE IS at %L overlaps with TYPE IS at %L",
8981 &c->where, &d->where);
8982 return;
8987 /* Check F03:C815. */
8988 if ((c->ts.type == BT_DERIVED || c->ts.type == BT_CLASS)
8989 && !selector_type->attr.unlimited_polymorphic
8990 && !gfc_type_is_extensible (c->ts.u.derived))
8992 gfc_error ("Derived type %qs at %L must be extensible",
8993 c->ts.u.derived->name, &c->where);
8994 error++;
8995 continue;
8998 /* Check F03:C816. */
8999 if (c->ts.type != BT_UNKNOWN && !selector_type->attr.unlimited_polymorphic
9000 && ((c->ts.type != BT_DERIVED && c->ts.type != BT_CLASS)
9001 || !gfc_type_is_extension_of (selector_type, c->ts.u.derived)))
9003 if (c->ts.type == BT_DERIVED || c->ts.type == BT_CLASS)
9004 gfc_error ("Derived type %qs at %L must be an extension of %qs",
9005 c->ts.u.derived->name, &c->where, selector_type->name);
9006 else
9007 gfc_error ("Unexpected intrinsic type %qs at %L",
9008 gfc_basic_typename (c->ts.type), &c->where);
9009 error++;
9010 continue;
9013 /* Check F03:C814. */
9014 if (c->ts.type == BT_CHARACTER
9015 && (c->ts.u.cl->length != NULL || c->ts.deferred))
9017 gfc_error ("The type-spec at %L shall specify that each length "
9018 "type parameter is assumed", &c->where);
9019 error++;
9020 continue;
9023 /* Intercept the DEFAULT case. */
9024 if (c->ts.type == BT_UNKNOWN)
9026 /* Check F03:C818. */
9027 if (default_case)
9029 gfc_error ("The DEFAULT CASE at %L cannot be followed "
9030 "by a second DEFAULT CASE at %L",
9031 &default_case->ext.block.case_list->where, &c->where);
9032 error++;
9033 continue;
9036 default_case = body;
9040 if (error > 0)
9041 return;
9043 /* Transform SELECT TYPE statement to BLOCK and associate selector to
9044 target if present. If there are any EXIT statements referring to the
9045 SELECT TYPE construct, this is no problem because the gfc_code
9046 reference stays the same and EXIT is equally possible from the BLOCK
9047 it is changed to. */
9048 code->op = EXEC_BLOCK;
9049 if (code->expr2)
9051 gfc_association_list* assoc;
9053 assoc = gfc_get_association_list ();
9054 assoc->st = code->expr1->symtree;
9055 assoc->target = gfc_copy_expr (code->expr2);
9056 assoc->target->where = code->expr2->where;
9057 /* assoc->variable will be set by resolve_assoc_var. */
9059 code->ext.block.assoc = assoc;
9060 code->expr1->symtree->n.sym->assoc = assoc;
9062 resolve_assoc_var (code->expr1->symtree->n.sym, false);
9064 else
9065 code->ext.block.assoc = NULL;
9067 /* Ensure that the selector rank and arrayspec are available to
9068 correct expressions in which they might be missing. */
9069 if (code->expr2 && code->expr2->rank)
9071 rank = code->expr2->rank;
9072 for (ref = code->expr2->ref; ref; ref = ref->next)
9073 if (ref->next == NULL)
9074 break;
9075 if (ref && ref->type == REF_ARRAY)
9076 ref = gfc_copy_ref (ref);
9078 /* Fixup expr1 if necessary. */
9079 if (rank)
9080 fixup_array_ref (&code->expr1, code->expr2, rank, ref);
9082 else if (code->expr1->rank)
9084 rank = code->expr1->rank;
9085 for (ref = code->expr1->ref; ref; ref = ref->next)
9086 if (ref->next == NULL)
9087 break;
9088 if (ref && ref->type == REF_ARRAY)
9089 ref = gfc_copy_ref (ref);
9092 /* Add EXEC_SELECT to switch on type. */
9093 new_st = gfc_get_code (code->op);
9094 new_st->expr1 = code->expr1;
9095 new_st->expr2 = code->expr2;
9096 new_st->block = code->block;
9097 code->expr1 = code->expr2 = NULL;
9098 code->block = NULL;
9099 if (!ns->code)
9100 ns->code = new_st;
9101 else
9102 ns->code->next = new_st;
9103 code = new_st;
9104 code->op = EXEC_SELECT_TYPE;
9106 /* Use the intrinsic LOC function to generate an integer expression
9107 for the vtable of the selector. Note that the rank of the selector
9108 expression has to be set to zero. */
9109 gfc_add_vptr_component (code->expr1);
9110 code->expr1->rank = 0;
9111 code->expr1 = build_loc_call (code->expr1);
9112 selector_expr = code->expr1->value.function.actual->expr;
9114 /* Loop over TYPE IS / CLASS IS cases. */
9115 for (body = code->block; body; body = body->block)
9117 gfc_symbol *vtab;
9118 gfc_expr *e;
9119 c = body->ext.block.case_list;
9121 /* Generate an index integer expression for address of the
9122 TYPE/CLASS vtable and store it in c->low. The hash expression
9123 is stored in c->high and is used to resolve intrinsic cases. */
9124 if (c->ts.type != BT_UNKNOWN)
9126 if (c->ts.type == BT_DERIVED || c->ts.type == BT_CLASS)
9128 vtab = gfc_find_derived_vtab (c->ts.u.derived);
9129 gcc_assert (vtab);
9130 c->high = gfc_get_int_expr (gfc_integer_4_kind, NULL,
9131 c->ts.u.derived->hash_value);
9133 else
9135 vtab = gfc_find_vtab (&c->ts);
9136 gcc_assert (vtab && CLASS_DATA (vtab)->initializer);
9137 e = CLASS_DATA (vtab)->initializer;
9138 c->high = gfc_copy_expr (e);
9139 if (c->high->ts.kind != gfc_integer_4_kind)
9141 gfc_typespec ts;
9142 ts.kind = gfc_integer_4_kind;
9143 ts.type = BT_INTEGER;
9144 gfc_convert_type_warn (c->high, &ts, 2, 0);
9148 e = gfc_lval_expr_from_sym (vtab);
9149 c->low = build_loc_call (e);
9151 else
9152 continue;
9154 /* Associate temporary to selector. This should only be done
9155 when this case is actually true, so build a new ASSOCIATE
9156 that does precisely this here (instead of using the
9157 'global' one). */
9159 if (c->ts.type == BT_CLASS)
9160 sprintf (name, "__tmp_class_%s", c->ts.u.derived->name);
9161 else if (c->ts.type == BT_DERIVED)
9162 sprintf (name, "__tmp_type_%s", c->ts.u.derived->name);
9163 else if (c->ts.type == BT_CHARACTER)
9165 HOST_WIDE_INT charlen = 0;
9166 if (c->ts.u.cl && c->ts.u.cl->length
9167 && c->ts.u.cl->length->expr_type == EXPR_CONSTANT)
9168 charlen = gfc_mpz_get_hwi (c->ts.u.cl->length->value.integer);
9169 snprintf (name, sizeof (name),
9170 "__tmp_%s_" HOST_WIDE_INT_PRINT_DEC "_%d",
9171 gfc_basic_typename (c->ts.type), charlen, c->ts.kind);
9173 else
9174 sprintf (name, "__tmp_%s_%d", gfc_basic_typename (c->ts.type),
9175 c->ts.kind);
9177 st = gfc_find_symtree (ns->sym_root, name);
9178 gcc_assert (st->n.sym->assoc);
9179 st->n.sym->assoc->target = gfc_get_variable_expr (selector_expr->symtree);
9180 st->n.sym->assoc->target->where = selector_expr->where;
9181 if (c->ts.type != BT_CLASS && c->ts.type != BT_UNKNOWN)
9183 gfc_add_data_component (st->n.sym->assoc->target);
9184 /* Fixup the target expression if necessary. */
9185 if (rank)
9186 fixup_array_ref (&st->n.sym->assoc->target, NULL, rank, ref);
9189 new_st = gfc_get_code (EXEC_BLOCK);
9190 new_st->ext.block.ns = gfc_build_block_ns (ns);
9191 new_st->ext.block.ns->code = body->next;
9192 body->next = new_st;
9194 /* Chain in the new list only if it is marked as dangling. Otherwise
9195 there is a CASE label overlap and this is already used. Just ignore,
9196 the error is diagnosed elsewhere. */
9197 if (st->n.sym->assoc->dangling)
9199 new_st->ext.block.assoc = st->n.sym->assoc;
9200 st->n.sym->assoc->dangling = 0;
9203 resolve_assoc_var (st->n.sym, false);
9206 /* Take out CLASS IS cases for separate treatment. */
9207 body = code;
9208 while (body && body->block)
9210 if (body->block->ext.block.case_list->ts.type == BT_CLASS)
9212 /* Add to class_is list. */
9213 if (class_is == NULL)
9215 class_is = body->block;
9216 tail = class_is;
9218 else
9220 for (tail = class_is; tail->block; tail = tail->block) ;
9221 tail->block = body->block;
9222 tail = tail->block;
9224 /* Remove from EXEC_SELECT list. */
9225 body->block = body->block->block;
9226 tail->block = NULL;
9228 else
9229 body = body->block;
9232 if (class_is)
9234 gfc_symbol *vtab;
9236 if (!default_case)
9238 /* Add a default case to hold the CLASS IS cases. */
9239 for (tail = code; tail->block; tail = tail->block) ;
9240 tail->block = gfc_get_code (EXEC_SELECT_TYPE);
9241 tail = tail->block;
9242 tail->ext.block.case_list = gfc_get_case ();
9243 tail->ext.block.case_list->ts.type = BT_UNKNOWN;
9244 tail->next = NULL;
9245 default_case = tail;
9248 /* More than one CLASS IS block? */
9249 if (class_is->block)
9251 gfc_code **c1,*c2;
9252 bool swapped;
9253 /* Sort CLASS IS blocks by extension level. */
9256 swapped = false;
9257 for (c1 = &class_is; (*c1) && (*c1)->block; c1 = &((*c1)->block))
9259 c2 = (*c1)->block;
9260 /* F03:C817 (check for doubles). */
9261 if ((*c1)->ext.block.case_list->ts.u.derived->hash_value
9262 == c2->ext.block.case_list->ts.u.derived->hash_value)
9264 gfc_error ("Double CLASS IS block in SELECT TYPE "
9265 "statement at %L",
9266 &c2->ext.block.case_list->where);
9267 return;
9269 if ((*c1)->ext.block.case_list->ts.u.derived->attr.extension
9270 < c2->ext.block.case_list->ts.u.derived->attr.extension)
9272 /* Swap. */
9273 (*c1)->block = c2->block;
9274 c2->block = *c1;
9275 *c1 = c2;
9276 swapped = true;
9280 while (swapped);
9283 /* Generate IF chain. */
9284 if_st = gfc_get_code (EXEC_IF);
9285 new_st = if_st;
9286 for (body = class_is; body; body = body->block)
9288 new_st->block = gfc_get_code (EXEC_IF);
9289 new_st = new_st->block;
9290 /* Set up IF condition: Call _gfortran_is_extension_of. */
9291 new_st->expr1 = gfc_get_expr ();
9292 new_st->expr1->expr_type = EXPR_FUNCTION;
9293 new_st->expr1->ts.type = BT_LOGICAL;
9294 new_st->expr1->ts.kind = 4;
9295 new_st->expr1->value.function.name = gfc_get_string (PREFIX ("is_extension_of"));
9296 new_st->expr1->value.function.isym = XCNEW (gfc_intrinsic_sym);
9297 new_st->expr1->value.function.isym->id = GFC_ISYM_EXTENDS_TYPE_OF;
9298 /* Set up arguments. */
9299 new_st->expr1->value.function.actual = gfc_get_actual_arglist ();
9300 new_st->expr1->value.function.actual->expr = gfc_get_variable_expr (selector_expr->symtree);
9301 new_st->expr1->value.function.actual->expr->where = code->loc;
9302 new_st->expr1->where = code->loc;
9303 gfc_add_vptr_component (new_st->expr1->value.function.actual->expr);
9304 vtab = gfc_find_derived_vtab (body->ext.block.case_list->ts.u.derived);
9305 st = gfc_find_symtree (vtab->ns->sym_root, vtab->name);
9306 new_st->expr1->value.function.actual->next = gfc_get_actual_arglist ();
9307 new_st->expr1->value.function.actual->next->expr = gfc_get_variable_expr (st);
9308 new_st->expr1->value.function.actual->next->expr->where = code->loc;
9309 new_st->next = body->next;
9311 if (default_case->next)
9313 new_st->block = gfc_get_code (EXEC_IF);
9314 new_st = new_st->block;
9315 new_st->next = default_case->next;
9318 /* Replace CLASS DEFAULT code by the IF chain. */
9319 default_case->next = if_st;
9322 /* Resolve the internal code. This can not be done earlier because
9323 it requires that the sym->assoc of selectors is set already. */
9324 gfc_current_ns = ns;
9325 gfc_resolve_blocks (code->block, gfc_current_ns);
9326 gfc_current_ns = old_ns;
9328 if (ref)
9329 free (ref);
9333 /* Resolve a transfer statement. This is making sure that:
9334 -- a derived type being transferred has only non-pointer components
9335 -- a derived type being transferred doesn't have private components, unless
9336 it's being transferred from the module where the type was defined
9337 -- we're not trying to transfer a whole assumed size array. */
9339 static void
9340 resolve_transfer (gfc_code *code)
9342 gfc_symbol *sym, *derived;
9343 gfc_ref *ref;
9344 gfc_expr *exp;
9345 bool write = false;
9346 bool formatted = false;
9347 gfc_dt *dt = code->ext.dt;
9348 gfc_symbol *dtio_sub = NULL;
9350 exp = code->expr1;
9352 while (exp != NULL && exp->expr_type == EXPR_OP
9353 && exp->value.op.op == INTRINSIC_PARENTHESES)
9354 exp = exp->value.op.op1;
9356 if (exp && exp->expr_type == EXPR_NULL
9357 && code->ext.dt)
9359 gfc_error ("Invalid context for NULL () intrinsic at %L",
9360 &exp->where);
9361 return;
9364 if (exp == NULL || (exp->expr_type != EXPR_VARIABLE
9365 && exp->expr_type != EXPR_FUNCTION
9366 && exp->expr_type != EXPR_STRUCTURE))
9367 return;
9369 /* If we are reading, the variable will be changed. Note that
9370 code->ext.dt may be NULL if the TRANSFER is related to
9371 an INQUIRE statement -- but in this case, we are not reading, either. */
9372 if (dt && dt->dt_io_kind->value.iokind == M_READ
9373 && !gfc_check_vardef_context (exp, false, false, false,
9374 _("item in READ")))
9375 return;
9377 const gfc_typespec *ts = exp->expr_type == EXPR_STRUCTURE
9378 || exp->expr_type == EXPR_FUNCTION
9379 ? &exp->ts : &exp->symtree->n.sym->ts;
9381 /* Go to actual component transferred. */
9382 for (ref = exp->ref; ref; ref = ref->next)
9383 if (ref->type == REF_COMPONENT)
9384 ts = &ref->u.c.component->ts;
9386 if (dt && dt->dt_io_kind->value.iokind != M_INQUIRE
9387 && (ts->type == BT_DERIVED || ts->type == BT_CLASS))
9389 if (ts->type == BT_DERIVED || ts->type == BT_CLASS)
9390 derived = ts->u.derived;
9391 else
9392 derived = ts->u.derived->components->ts.u.derived;
9394 /* Determine when to use the formatted DTIO procedure. */
9395 if (dt && (dt->format_expr || dt->format_label))
9396 formatted = true;
9398 write = dt->dt_io_kind->value.iokind == M_WRITE
9399 || dt->dt_io_kind->value.iokind == M_PRINT;
9400 dtio_sub = gfc_find_specific_dtio_proc (derived, write, formatted);
9402 if (dtio_sub != NULL && exp->expr_type == EXPR_VARIABLE)
9404 dt->udtio = exp;
9405 sym = exp->symtree->n.sym->ns->proc_name;
9406 /* Check to see if this is a nested DTIO call, with the
9407 dummy as the io-list object. */
9408 if (sym && sym == dtio_sub && sym->formal
9409 && sym->formal->sym == exp->symtree->n.sym
9410 && exp->ref == NULL)
9412 if (!sym->attr.recursive)
9414 gfc_error ("DTIO %s procedure at %L must be recursive",
9415 sym->name, &sym->declared_at);
9416 return;
9422 if (ts->type == BT_CLASS && dtio_sub == NULL)
9424 gfc_error ("Data transfer element at %L cannot be polymorphic unless "
9425 "it is processed by a defined input/output procedure",
9426 &code->loc);
9427 return;
9430 if (ts->type == BT_DERIVED)
9432 /* Check that transferred derived type doesn't contain POINTER
9433 components unless it is processed by a defined input/output
9434 procedure". */
9435 if (ts->u.derived->attr.pointer_comp && dtio_sub == NULL)
9437 gfc_error ("Data transfer element at %L cannot have POINTER "
9438 "components unless it is processed by a defined "
9439 "input/output procedure", &code->loc);
9440 return;
9443 /* F08:C935. */
9444 if (ts->u.derived->attr.proc_pointer_comp)
9446 gfc_error ("Data transfer element at %L cannot have "
9447 "procedure pointer components", &code->loc);
9448 return;
9451 if (ts->u.derived->attr.alloc_comp && dtio_sub == NULL)
9453 gfc_error ("Data transfer element at %L cannot have ALLOCATABLE "
9454 "components unless it is processed by a defined "
9455 "input/output procedure", &code->loc);
9456 return;
9459 /* C_PTR and C_FUNPTR have private components which means they can not
9460 be printed. However, if -std=gnu and not -pedantic, allow
9461 the component to be printed to help debugging. */
9462 if (ts->u.derived->ts.f90_type == BT_VOID)
9464 if (!gfc_notify_std (GFC_STD_GNU, "Data transfer element at %L "
9465 "cannot have PRIVATE components", &code->loc))
9466 return;
9468 else if (derived_inaccessible (ts->u.derived) && dtio_sub == NULL)
9470 gfc_error ("Data transfer element at %L cannot have "
9471 "PRIVATE components unless it is processed by "
9472 "a defined input/output procedure", &code->loc);
9473 return;
9477 if (exp->expr_type == EXPR_STRUCTURE)
9478 return;
9480 sym = exp->symtree->n.sym;
9482 if (sym->as != NULL && sym->as->type == AS_ASSUMED_SIZE && exp->ref
9483 && exp->ref->type == REF_ARRAY && exp->ref->u.ar.type == AR_FULL)
9485 gfc_error ("Data transfer element at %L cannot be a full reference to "
9486 "an assumed-size array", &code->loc);
9487 return;
9490 if (async_io_dt && exp->expr_type == EXPR_VARIABLE)
9491 exp->symtree->n.sym->attr.asynchronous = 1;
9495 /*********** Toplevel code resolution subroutines ***********/
9497 /* Find the set of labels that are reachable from this block. We also
9498 record the last statement in each block. */
9500 static void
9501 find_reachable_labels (gfc_code *block)
9503 gfc_code *c;
9505 if (!block)
9506 return;
9508 cs_base->reachable_labels = bitmap_alloc (&labels_obstack);
9510 /* Collect labels in this block. We don't keep those corresponding
9511 to END {IF|SELECT}, these are checked in resolve_branch by going
9512 up through the code_stack. */
9513 for (c = block; c; c = c->next)
9515 if (c->here && c->op != EXEC_END_NESTED_BLOCK)
9516 bitmap_set_bit (cs_base->reachable_labels, c->here->value);
9519 /* Merge with labels from parent block. */
9520 if (cs_base->prev)
9522 gcc_assert (cs_base->prev->reachable_labels);
9523 bitmap_ior_into (cs_base->reachable_labels,
9524 cs_base->prev->reachable_labels);
9529 static void
9530 resolve_lock_unlock_event (gfc_code *code)
9532 if (code->expr1->expr_type == EXPR_FUNCTION
9533 && code->expr1->value.function.isym
9534 && code->expr1->value.function.isym->id == GFC_ISYM_CAF_GET)
9535 remove_caf_get_intrinsic (code->expr1);
9537 if ((code->op == EXEC_LOCK || code->op == EXEC_UNLOCK)
9538 && (code->expr1->ts.type != BT_DERIVED
9539 || code->expr1->expr_type != EXPR_VARIABLE
9540 || code->expr1->ts.u.derived->from_intmod != INTMOD_ISO_FORTRAN_ENV
9541 || code->expr1->ts.u.derived->intmod_sym_id != ISOFORTRAN_LOCK_TYPE
9542 || code->expr1->rank != 0
9543 || (!gfc_is_coarray (code->expr1) &&
9544 !gfc_is_coindexed (code->expr1))))
9545 gfc_error ("Lock variable at %L must be a scalar of type LOCK_TYPE",
9546 &code->expr1->where);
9547 else if ((code->op == EXEC_EVENT_POST || code->op == EXEC_EVENT_WAIT)
9548 && (code->expr1->ts.type != BT_DERIVED
9549 || code->expr1->expr_type != EXPR_VARIABLE
9550 || code->expr1->ts.u.derived->from_intmod
9551 != INTMOD_ISO_FORTRAN_ENV
9552 || code->expr1->ts.u.derived->intmod_sym_id
9553 != ISOFORTRAN_EVENT_TYPE
9554 || code->expr1->rank != 0))
9555 gfc_error ("Event variable at %L must be a scalar of type EVENT_TYPE",
9556 &code->expr1->where);
9557 else if (code->op == EXEC_EVENT_POST && !gfc_is_coarray (code->expr1)
9558 && !gfc_is_coindexed (code->expr1))
9559 gfc_error ("Event variable argument at %L must be a coarray or coindexed",
9560 &code->expr1->where);
9561 else if (code->op == EXEC_EVENT_WAIT && !gfc_is_coarray (code->expr1))
9562 gfc_error ("Event variable argument at %L must be a coarray but not "
9563 "coindexed", &code->expr1->where);
9565 /* Check STAT. */
9566 if (code->expr2
9567 && (code->expr2->ts.type != BT_INTEGER || code->expr2->rank != 0
9568 || code->expr2->expr_type != EXPR_VARIABLE))
9569 gfc_error ("STAT= argument at %L must be a scalar INTEGER variable",
9570 &code->expr2->where);
9572 if (code->expr2
9573 && !gfc_check_vardef_context (code->expr2, false, false, false,
9574 _("STAT variable")))
9575 return;
9577 /* Check ERRMSG. */
9578 if (code->expr3
9579 && (code->expr3->ts.type != BT_CHARACTER || code->expr3->rank != 0
9580 || code->expr3->expr_type != EXPR_VARIABLE))
9581 gfc_error ("ERRMSG= argument at %L must be a scalar CHARACTER variable",
9582 &code->expr3->where);
9584 if (code->expr3
9585 && !gfc_check_vardef_context (code->expr3, false, false, false,
9586 _("ERRMSG variable")))
9587 return;
9589 /* Check for LOCK the ACQUIRED_LOCK. */
9590 if (code->op != EXEC_EVENT_WAIT && code->expr4
9591 && (code->expr4->ts.type != BT_LOGICAL || code->expr4->rank != 0
9592 || code->expr4->expr_type != EXPR_VARIABLE))
9593 gfc_error ("ACQUIRED_LOCK= argument at %L must be a scalar LOGICAL "
9594 "variable", &code->expr4->where);
9596 if (code->op != EXEC_EVENT_WAIT && code->expr4
9597 && !gfc_check_vardef_context (code->expr4, false, false, false,
9598 _("ACQUIRED_LOCK variable")))
9599 return;
9601 /* Check for EVENT WAIT the UNTIL_COUNT. */
9602 if (code->op == EXEC_EVENT_WAIT && code->expr4)
9604 if (!gfc_resolve_expr (code->expr4) || code->expr4->ts.type != BT_INTEGER
9605 || code->expr4->rank != 0)
9606 gfc_error ("UNTIL_COUNT= argument at %L must be a scalar INTEGER "
9607 "expression", &code->expr4->where);
9612 static void
9613 resolve_critical (gfc_code *code)
9615 gfc_symtree *symtree;
9616 gfc_symbol *lock_type;
9617 char name[GFC_MAX_SYMBOL_LEN];
9618 static int serial = 0;
9620 if (flag_coarray != GFC_FCOARRAY_LIB)
9621 return;
9623 symtree = gfc_find_symtree (gfc_current_ns->sym_root,
9624 GFC_PREFIX ("lock_type"));
9625 if (symtree)
9626 lock_type = symtree->n.sym;
9627 else
9629 if (gfc_get_sym_tree (GFC_PREFIX ("lock_type"), gfc_current_ns, &symtree,
9630 false) != 0)
9631 gcc_unreachable ();
9632 lock_type = symtree->n.sym;
9633 lock_type->attr.flavor = FL_DERIVED;
9634 lock_type->attr.zero_comp = 1;
9635 lock_type->from_intmod = INTMOD_ISO_FORTRAN_ENV;
9636 lock_type->intmod_sym_id = ISOFORTRAN_LOCK_TYPE;
9639 sprintf(name, GFC_PREFIX ("lock_var") "%d",serial++);
9640 if (gfc_get_sym_tree (name, gfc_current_ns, &symtree, false) != 0)
9641 gcc_unreachable ();
9643 code->resolved_sym = symtree->n.sym;
9644 symtree->n.sym->attr.flavor = FL_VARIABLE;
9645 symtree->n.sym->attr.referenced = 1;
9646 symtree->n.sym->attr.artificial = 1;
9647 symtree->n.sym->attr.codimension = 1;
9648 symtree->n.sym->ts.type = BT_DERIVED;
9649 symtree->n.sym->ts.u.derived = lock_type;
9650 symtree->n.sym->as = gfc_get_array_spec ();
9651 symtree->n.sym->as->corank = 1;
9652 symtree->n.sym->as->type = AS_EXPLICIT;
9653 symtree->n.sym->as->cotype = AS_EXPLICIT;
9654 symtree->n.sym->as->lower[0] = gfc_get_int_expr (gfc_default_integer_kind,
9655 NULL, 1);
9656 gfc_commit_symbols();
9660 static void
9661 resolve_sync (gfc_code *code)
9663 /* Check imageset. The * case matches expr1 == NULL. */
9664 if (code->expr1)
9666 if (code->expr1->ts.type != BT_INTEGER || code->expr1->rank > 1)
9667 gfc_error ("Imageset argument at %L must be a scalar or rank-1 "
9668 "INTEGER expression", &code->expr1->where);
9669 if (code->expr1->expr_type == EXPR_CONSTANT && code->expr1->rank == 0
9670 && mpz_cmp_si (code->expr1->value.integer, 1) < 0)
9671 gfc_error ("Imageset argument at %L must between 1 and num_images()",
9672 &code->expr1->where);
9673 else if (code->expr1->expr_type == EXPR_ARRAY
9674 && gfc_simplify_expr (code->expr1, 0))
9676 gfc_constructor *cons;
9677 cons = gfc_constructor_first (code->expr1->value.constructor);
9678 for (; cons; cons = gfc_constructor_next (cons))
9679 if (cons->expr->expr_type == EXPR_CONSTANT
9680 && mpz_cmp_si (cons->expr->value.integer, 1) < 0)
9681 gfc_error ("Imageset argument at %L must between 1 and "
9682 "num_images()", &cons->expr->where);
9686 /* Check STAT. */
9687 gfc_resolve_expr (code->expr2);
9688 if (code->expr2
9689 && (code->expr2->ts.type != BT_INTEGER || code->expr2->rank != 0
9690 || code->expr2->expr_type != EXPR_VARIABLE))
9691 gfc_error ("STAT= argument at %L must be a scalar INTEGER variable",
9692 &code->expr2->where);
9694 /* Check ERRMSG. */
9695 gfc_resolve_expr (code->expr3);
9696 if (code->expr3
9697 && (code->expr3->ts.type != BT_CHARACTER || code->expr3->rank != 0
9698 || code->expr3->expr_type != EXPR_VARIABLE))
9699 gfc_error ("ERRMSG= argument at %L must be a scalar CHARACTER variable",
9700 &code->expr3->where);
9704 /* Given a branch to a label, see if the branch is conforming.
9705 The code node describes where the branch is located. */
9707 static void
9708 resolve_branch (gfc_st_label *label, gfc_code *code)
9710 code_stack *stack;
9712 if (label == NULL)
9713 return;
9715 /* Step one: is this a valid branching target? */
9717 if (label->defined == ST_LABEL_UNKNOWN)
9719 gfc_error ("Label %d referenced at %L is never defined", label->value,
9720 &code->loc);
9721 return;
9724 if (label->defined != ST_LABEL_TARGET && label->defined != ST_LABEL_DO_TARGET)
9726 gfc_error ("Statement at %L is not a valid branch target statement "
9727 "for the branch statement at %L", &label->where, &code->loc);
9728 return;
9731 /* Step two: make sure this branch is not a branch to itself ;-) */
9733 if (code->here == label)
9735 gfc_warning (0,
9736 "Branch at %L may result in an infinite loop", &code->loc);
9737 return;
9740 /* Step three: See if the label is in the same block as the
9741 branching statement. The hard work has been done by setting up
9742 the bitmap reachable_labels. */
9744 if (bitmap_bit_p (cs_base->reachable_labels, label->value))
9746 /* Check now whether there is a CRITICAL construct; if so, check
9747 whether the label is still visible outside of the CRITICAL block,
9748 which is invalid. */
9749 for (stack = cs_base; stack; stack = stack->prev)
9751 if (stack->current->op == EXEC_CRITICAL
9752 && bitmap_bit_p (stack->reachable_labels, label->value))
9753 gfc_error ("GOTO statement at %L leaves CRITICAL construct for "
9754 "label at %L", &code->loc, &label->where);
9755 else if (stack->current->op == EXEC_DO_CONCURRENT
9756 && bitmap_bit_p (stack->reachable_labels, label->value))
9757 gfc_error ("GOTO statement at %L leaves DO CONCURRENT construct "
9758 "for label at %L", &code->loc, &label->where);
9761 return;
9764 /* Step four: If we haven't found the label in the bitmap, it may
9765 still be the label of the END of the enclosing block, in which
9766 case we find it by going up the code_stack. */
9768 for (stack = cs_base; stack; stack = stack->prev)
9770 if (stack->current->next && stack->current->next->here == label)
9771 break;
9772 if (stack->current->op == EXEC_CRITICAL)
9774 /* Note: A label at END CRITICAL does not leave the CRITICAL
9775 construct as END CRITICAL is still part of it. */
9776 gfc_error ("GOTO statement at %L leaves CRITICAL construct for label"
9777 " at %L", &code->loc, &label->where);
9778 return;
9780 else if (stack->current->op == EXEC_DO_CONCURRENT)
9782 gfc_error ("GOTO statement at %L leaves DO CONCURRENT construct for "
9783 "label at %L", &code->loc, &label->where);
9784 return;
9788 if (stack)
9790 gcc_assert (stack->current->next->op == EXEC_END_NESTED_BLOCK);
9791 return;
9794 /* The label is not in an enclosing block, so illegal. This was
9795 allowed in Fortran 66, so we allow it as extension. No
9796 further checks are necessary in this case. */
9797 gfc_notify_std (GFC_STD_LEGACY, "Label at %L is not in the same block "
9798 "as the GOTO statement at %L", &label->where,
9799 &code->loc);
9800 return;
9804 /* Check whether EXPR1 has the same shape as EXPR2. */
9806 static bool
9807 resolve_where_shape (gfc_expr *expr1, gfc_expr *expr2)
9809 mpz_t shape[GFC_MAX_DIMENSIONS];
9810 mpz_t shape2[GFC_MAX_DIMENSIONS];
9811 bool result = false;
9812 int i;
9814 /* Compare the rank. */
9815 if (expr1->rank != expr2->rank)
9816 return result;
9818 /* Compare the size of each dimension. */
9819 for (i=0; i<expr1->rank; i++)
9821 if (!gfc_array_dimen_size (expr1, i, &shape[i]))
9822 goto ignore;
9824 if (!gfc_array_dimen_size (expr2, i, &shape2[i]))
9825 goto ignore;
9827 if (mpz_cmp (shape[i], shape2[i]))
9828 goto over;
9831 /* When either of the two expression is an assumed size array, we
9832 ignore the comparison of dimension sizes. */
9833 ignore:
9834 result = true;
9836 over:
9837 gfc_clear_shape (shape, i);
9838 gfc_clear_shape (shape2, i);
9839 return result;
9843 /* Check whether a WHERE assignment target or a WHERE mask expression
9844 has the same shape as the outmost WHERE mask expression. */
9846 static void
9847 resolve_where (gfc_code *code, gfc_expr *mask)
9849 gfc_code *cblock;
9850 gfc_code *cnext;
9851 gfc_expr *e = NULL;
9853 cblock = code->block;
9855 /* Store the first WHERE mask-expr of the WHERE statement or construct.
9856 In case of nested WHERE, only the outmost one is stored. */
9857 if (mask == NULL) /* outmost WHERE */
9858 e = cblock->expr1;
9859 else /* inner WHERE */
9860 e = mask;
9862 while (cblock)
9864 if (cblock->expr1)
9866 /* Check if the mask-expr has a consistent shape with the
9867 outmost WHERE mask-expr. */
9868 if (!resolve_where_shape (cblock->expr1, e))
9869 gfc_error ("WHERE mask at %L has inconsistent shape",
9870 &cblock->expr1->where);
9873 /* the assignment statement of a WHERE statement, or the first
9874 statement in where-body-construct of a WHERE construct */
9875 cnext = cblock->next;
9876 while (cnext)
9878 switch (cnext->op)
9880 /* WHERE assignment statement */
9881 case EXEC_ASSIGN:
9883 /* Check shape consistent for WHERE assignment target. */
9884 if (e && !resolve_where_shape (cnext->expr1, e))
9885 gfc_error ("WHERE assignment target at %L has "
9886 "inconsistent shape", &cnext->expr1->where);
9887 break;
9890 case EXEC_ASSIGN_CALL:
9891 resolve_call (cnext);
9892 if (!cnext->resolved_sym->attr.elemental)
9893 gfc_error("Non-ELEMENTAL user-defined assignment in WHERE at %L",
9894 &cnext->ext.actual->expr->where);
9895 break;
9897 /* WHERE or WHERE construct is part of a where-body-construct */
9898 case EXEC_WHERE:
9899 resolve_where (cnext, e);
9900 break;
9902 default:
9903 gfc_error ("Unsupported statement inside WHERE at %L",
9904 &cnext->loc);
9906 /* the next statement within the same where-body-construct */
9907 cnext = cnext->next;
9909 /* the next masked-elsewhere-stmt, elsewhere-stmt, or end-where-stmt */
9910 cblock = cblock->block;
9915 /* Resolve assignment in FORALL construct.
9916 NVAR is the number of FORALL index variables, and VAR_EXPR records the
9917 FORALL index variables. */
9919 static void
9920 gfc_resolve_assign_in_forall (gfc_code *code, int nvar, gfc_expr **var_expr)
9922 int n;
9924 for (n = 0; n < nvar; n++)
9926 gfc_symbol *forall_index;
9928 forall_index = var_expr[n]->symtree->n.sym;
9930 /* Check whether the assignment target is one of the FORALL index
9931 variable. */
9932 if ((code->expr1->expr_type == EXPR_VARIABLE)
9933 && (code->expr1->symtree->n.sym == forall_index))
9934 gfc_error ("Assignment to a FORALL index variable at %L",
9935 &code->expr1->where);
9936 else
9938 /* If one of the FORALL index variables doesn't appear in the
9939 assignment variable, then there could be a many-to-one
9940 assignment. Emit a warning rather than an error because the
9941 mask could be resolving this problem. */
9942 if (!find_forall_index (code->expr1, forall_index, 0))
9943 gfc_warning (0, "The FORALL with index %qs is not used on the "
9944 "left side of the assignment at %L and so might "
9945 "cause multiple assignment to this object",
9946 var_expr[n]->symtree->name, &code->expr1->where);
9952 /* Resolve WHERE statement in FORALL construct. */
9954 static void
9955 gfc_resolve_where_code_in_forall (gfc_code *code, int nvar,
9956 gfc_expr **var_expr)
9958 gfc_code *cblock;
9959 gfc_code *cnext;
9961 cblock = code->block;
9962 while (cblock)
9964 /* the assignment statement of a WHERE statement, or the first
9965 statement in where-body-construct of a WHERE construct */
9966 cnext = cblock->next;
9967 while (cnext)
9969 switch (cnext->op)
9971 /* WHERE assignment statement */
9972 case EXEC_ASSIGN:
9973 gfc_resolve_assign_in_forall (cnext, nvar, var_expr);
9974 break;
9976 /* WHERE operator assignment statement */
9977 case EXEC_ASSIGN_CALL:
9978 resolve_call (cnext);
9979 if (!cnext->resolved_sym->attr.elemental)
9980 gfc_error("Non-ELEMENTAL user-defined assignment in WHERE at %L",
9981 &cnext->ext.actual->expr->where);
9982 break;
9984 /* WHERE or WHERE construct is part of a where-body-construct */
9985 case EXEC_WHERE:
9986 gfc_resolve_where_code_in_forall (cnext, nvar, var_expr);
9987 break;
9989 default:
9990 gfc_error ("Unsupported statement inside WHERE at %L",
9991 &cnext->loc);
9993 /* the next statement within the same where-body-construct */
9994 cnext = cnext->next;
9996 /* the next masked-elsewhere-stmt, elsewhere-stmt, or end-where-stmt */
9997 cblock = cblock->block;
10002 /* Traverse the FORALL body to check whether the following errors exist:
10003 1. For assignment, check if a many-to-one assignment happens.
10004 2. For WHERE statement, check the WHERE body to see if there is any
10005 many-to-one assignment. */
10007 static void
10008 gfc_resolve_forall_body (gfc_code *code, int nvar, gfc_expr **var_expr)
10010 gfc_code *c;
10012 c = code->block->next;
10013 while (c)
10015 switch (c->op)
10017 case EXEC_ASSIGN:
10018 case EXEC_POINTER_ASSIGN:
10019 gfc_resolve_assign_in_forall (c, nvar, var_expr);
10020 break;
10022 case EXEC_ASSIGN_CALL:
10023 resolve_call (c);
10024 break;
10026 /* Because the gfc_resolve_blocks() will handle the nested FORALL,
10027 there is no need to handle it here. */
10028 case EXEC_FORALL:
10029 break;
10030 case EXEC_WHERE:
10031 gfc_resolve_where_code_in_forall(c, nvar, var_expr);
10032 break;
10033 default:
10034 break;
10036 /* The next statement in the FORALL body. */
10037 c = c->next;
10042 /* Counts the number of iterators needed inside a forall construct, including
10043 nested forall constructs. This is used to allocate the needed memory
10044 in gfc_resolve_forall. */
10046 static int
10047 gfc_count_forall_iterators (gfc_code *code)
10049 int max_iters, sub_iters, current_iters;
10050 gfc_forall_iterator *fa;
10052 gcc_assert(code->op == EXEC_FORALL);
10053 max_iters = 0;
10054 current_iters = 0;
10056 for (fa = code->ext.forall_iterator; fa; fa = fa->next)
10057 current_iters ++;
10059 code = code->block->next;
10061 while (code)
10063 if (code->op == EXEC_FORALL)
10065 sub_iters = gfc_count_forall_iterators (code);
10066 if (sub_iters > max_iters)
10067 max_iters = sub_iters;
10069 code = code->next;
10072 return current_iters + max_iters;
10076 /* Given a FORALL construct, first resolve the FORALL iterator, then call
10077 gfc_resolve_forall_body to resolve the FORALL body. */
10079 static void
10080 gfc_resolve_forall (gfc_code *code, gfc_namespace *ns, int forall_save)
10082 static gfc_expr **var_expr;
10083 static int total_var = 0;
10084 static int nvar = 0;
10085 int i, old_nvar, tmp;
10086 gfc_forall_iterator *fa;
10088 old_nvar = nvar;
10090 if (!gfc_notify_std (GFC_STD_F2018_OBS, "FORALL construct at %L", &code->loc))
10091 return;
10093 /* Start to resolve a FORALL construct */
10094 if (forall_save == 0)
10096 /* Count the total number of FORALL indices in the nested FORALL
10097 construct in order to allocate the VAR_EXPR with proper size. */
10098 total_var = gfc_count_forall_iterators (code);
10100 /* Allocate VAR_EXPR with NUMBER_OF_FORALL_INDEX elements. */
10101 var_expr = XCNEWVEC (gfc_expr *, total_var);
10104 /* The information about FORALL iterator, including FORALL indices start, end
10105 and stride. An outer FORALL indice cannot appear in start, end or stride. */
10106 for (fa = code->ext.forall_iterator; fa; fa = fa->next)
10108 /* Fortran 20008: C738 (R753). */
10109 if (fa->var->ref && fa->var->ref->type == REF_ARRAY)
10111 gfc_error ("FORALL index-name at %L must be a scalar variable "
10112 "of type integer", &fa->var->where);
10113 continue;
10116 /* Check if any outer FORALL index name is the same as the current
10117 one. */
10118 for (i = 0; i < nvar; i++)
10120 if (fa->var->symtree->n.sym == var_expr[i]->symtree->n.sym)
10121 gfc_error ("An outer FORALL construct already has an index "
10122 "with this name %L", &fa->var->where);
10125 /* Record the current FORALL index. */
10126 var_expr[nvar] = gfc_copy_expr (fa->var);
10128 nvar++;
10130 /* No memory leak. */
10131 gcc_assert (nvar <= total_var);
10134 /* Resolve the FORALL body. */
10135 gfc_resolve_forall_body (code, nvar, var_expr);
10137 /* May call gfc_resolve_forall to resolve the inner FORALL loop. */
10138 gfc_resolve_blocks (code->block, ns);
10140 tmp = nvar;
10141 nvar = old_nvar;
10142 /* Free only the VAR_EXPRs allocated in this frame. */
10143 for (i = nvar; i < tmp; i++)
10144 gfc_free_expr (var_expr[i]);
10146 if (nvar == 0)
10148 /* We are in the outermost FORALL construct. */
10149 gcc_assert (forall_save == 0);
10151 /* VAR_EXPR is not needed any more. */
10152 free (var_expr);
10153 total_var = 0;
10158 /* Resolve a BLOCK construct statement. */
10160 static void
10161 resolve_block_construct (gfc_code* code)
10163 /* Resolve the BLOCK's namespace. */
10164 gfc_resolve (code->ext.block.ns);
10166 /* For an ASSOCIATE block, the associations (and their targets) are already
10167 resolved during resolve_symbol. */
10171 /* Resolve lists of blocks found in IF, SELECT CASE, WHERE, FORALL, GOTO and
10172 DO code nodes. */
10174 void
10175 gfc_resolve_blocks (gfc_code *b, gfc_namespace *ns)
10177 bool t;
10179 for (; b; b = b->block)
10181 t = gfc_resolve_expr (b->expr1);
10182 if (!gfc_resolve_expr (b->expr2))
10183 t = false;
10185 switch (b->op)
10187 case EXEC_IF:
10188 if (t && b->expr1 != NULL
10189 && (b->expr1->ts.type != BT_LOGICAL || b->expr1->rank != 0))
10190 gfc_error ("IF clause at %L requires a scalar LOGICAL expression",
10191 &b->expr1->where);
10192 break;
10194 case EXEC_WHERE:
10195 if (t
10196 && b->expr1 != NULL
10197 && (b->expr1->ts.type != BT_LOGICAL || b->expr1->rank == 0))
10198 gfc_error ("WHERE/ELSEWHERE clause at %L requires a LOGICAL array",
10199 &b->expr1->where);
10200 break;
10202 case EXEC_GOTO:
10203 resolve_branch (b->label1, b);
10204 break;
10206 case EXEC_BLOCK:
10207 resolve_block_construct (b);
10208 break;
10210 case EXEC_SELECT:
10211 case EXEC_SELECT_TYPE:
10212 case EXEC_FORALL:
10213 case EXEC_DO:
10214 case EXEC_DO_WHILE:
10215 case EXEC_DO_CONCURRENT:
10216 case EXEC_CRITICAL:
10217 case EXEC_READ:
10218 case EXEC_WRITE:
10219 case EXEC_IOLENGTH:
10220 case EXEC_WAIT:
10221 break;
10223 case EXEC_OMP_ATOMIC:
10224 case EXEC_OACC_ATOMIC:
10226 gfc_omp_atomic_op aop
10227 = (gfc_omp_atomic_op) (b->ext.omp_atomic & GFC_OMP_ATOMIC_MASK);
10229 /* Verify this before calling gfc_resolve_code, which might
10230 change it. */
10231 gcc_assert (b->next && b->next->op == EXEC_ASSIGN);
10232 gcc_assert (((aop != GFC_OMP_ATOMIC_CAPTURE)
10233 && b->next->next == NULL)
10234 || ((aop == GFC_OMP_ATOMIC_CAPTURE)
10235 && b->next->next != NULL
10236 && b->next->next->op == EXEC_ASSIGN
10237 && b->next->next->next == NULL));
10239 break;
10241 case EXEC_OACC_PARALLEL_LOOP:
10242 case EXEC_OACC_PARALLEL:
10243 case EXEC_OACC_KERNELS_LOOP:
10244 case EXEC_OACC_KERNELS:
10245 case EXEC_OACC_DATA:
10246 case EXEC_OACC_HOST_DATA:
10247 case EXEC_OACC_LOOP:
10248 case EXEC_OACC_UPDATE:
10249 case EXEC_OACC_WAIT:
10250 case EXEC_OACC_CACHE:
10251 case EXEC_OACC_ENTER_DATA:
10252 case EXEC_OACC_EXIT_DATA:
10253 case EXEC_OACC_ROUTINE:
10254 case EXEC_OMP_CRITICAL:
10255 case EXEC_OMP_DISTRIBUTE:
10256 case EXEC_OMP_DISTRIBUTE_PARALLEL_DO:
10257 case EXEC_OMP_DISTRIBUTE_PARALLEL_DO_SIMD:
10258 case EXEC_OMP_DISTRIBUTE_SIMD:
10259 case EXEC_OMP_DO:
10260 case EXEC_OMP_DO_SIMD:
10261 case EXEC_OMP_MASTER:
10262 case EXEC_OMP_ORDERED:
10263 case EXEC_OMP_PARALLEL:
10264 case EXEC_OMP_PARALLEL_DO:
10265 case EXEC_OMP_PARALLEL_DO_SIMD:
10266 case EXEC_OMP_PARALLEL_SECTIONS:
10267 case EXEC_OMP_PARALLEL_WORKSHARE:
10268 case EXEC_OMP_SECTIONS:
10269 case EXEC_OMP_SIMD:
10270 case EXEC_OMP_SINGLE:
10271 case EXEC_OMP_TARGET:
10272 case EXEC_OMP_TARGET_DATA:
10273 case EXEC_OMP_TARGET_ENTER_DATA:
10274 case EXEC_OMP_TARGET_EXIT_DATA:
10275 case EXEC_OMP_TARGET_PARALLEL:
10276 case EXEC_OMP_TARGET_PARALLEL_DO:
10277 case EXEC_OMP_TARGET_PARALLEL_DO_SIMD:
10278 case EXEC_OMP_TARGET_SIMD:
10279 case EXEC_OMP_TARGET_TEAMS:
10280 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE:
10281 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE_PARALLEL_DO:
10282 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE_PARALLEL_DO_SIMD:
10283 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE_SIMD:
10284 case EXEC_OMP_TARGET_UPDATE:
10285 case EXEC_OMP_TASK:
10286 case EXEC_OMP_TASKGROUP:
10287 case EXEC_OMP_TASKLOOP:
10288 case EXEC_OMP_TASKLOOP_SIMD:
10289 case EXEC_OMP_TASKWAIT:
10290 case EXEC_OMP_TASKYIELD:
10291 case EXEC_OMP_TEAMS:
10292 case EXEC_OMP_TEAMS_DISTRIBUTE:
10293 case EXEC_OMP_TEAMS_DISTRIBUTE_PARALLEL_DO:
10294 case EXEC_OMP_TEAMS_DISTRIBUTE_PARALLEL_DO_SIMD:
10295 case EXEC_OMP_TEAMS_DISTRIBUTE_SIMD:
10296 case EXEC_OMP_WORKSHARE:
10297 break;
10299 default:
10300 gfc_internal_error ("gfc_resolve_blocks(): Bad block type");
10303 gfc_resolve_code (b->next, ns);
10308 /* Does everything to resolve an ordinary assignment. Returns true
10309 if this is an interface assignment. */
10310 static bool
10311 resolve_ordinary_assign (gfc_code *code, gfc_namespace *ns)
10313 bool rval = false;
10314 gfc_expr *lhs;
10315 gfc_expr *rhs;
10316 int n;
10317 gfc_ref *ref;
10318 symbol_attribute attr;
10320 if (gfc_extend_assign (code, ns))
10322 gfc_expr** rhsptr;
10324 if (code->op == EXEC_ASSIGN_CALL)
10326 lhs = code->ext.actual->expr;
10327 rhsptr = &code->ext.actual->next->expr;
10329 else
10331 gfc_actual_arglist* args;
10332 gfc_typebound_proc* tbp;
10334 gcc_assert (code->op == EXEC_COMPCALL);
10336 args = code->expr1->value.compcall.actual;
10337 lhs = args->expr;
10338 rhsptr = &args->next->expr;
10340 tbp = code->expr1->value.compcall.tbp;
10341 gcc_assert (!tbp->is_generic);
10344 /* Make a temporary rhs when there is a default initializer
10345 and rhs is the same symbol as the lhs. */
10346 if ((*rhsptr)->expr_type == EXPR_VARIABLE
10347 && (*rhsptr)->symtree->n.sym->ts.type == BT_DERIVED
10348 && gfc_has_default_initializer ((*rhsptr)->symtree->n.sym->ts.u.derived)
10349 && (lhs->symtree->n.sym == (*rhsptr)->symtree->n.sym))
10350 *rhsptr = gfc_get_parentheses (*rhsptr);
10352 return true;
10355 lhs = code->expr1;
10356 rhs = code->expr2;
10358 if (rhs->is_boz
10359 && !gfc_notify_std (GFC_STD_GNU, "BOZ literal at %L outside "
10360 "a DATA statement and outside INT/REAL/DBLE/CMPLX",
10361 &code->loc))
10362 return false;
10364 /* Handle the case of a BOZ literal on the RHS. */
10365 if (rhs->is_boz && lhs->ts.type != BT_INTEGER)
10367 int rc;
10368 if (warn_surprising)
10369 gfc_warning (OPT_Wsurprising,
10370 "BOZ literal at %L is bitwise transferred "
10371 "non-integer symbol %qs", &code->loc,
10372 lhs->symtree->n.sym->name);
10374 if (!gfc_convert_boz (rhs, &lhs->ts))
10375 return false;
10376 if ((rc = gfc_range_check (rhs)) != ARITH_OK)
10378 if (rc == ARITH_UNDERFLOW)
10379 gfc_error ("Arithmetic underflow of bit-wise transferred BOZ at %L"
10380 ". This check can be disabled with the option "
10381 "%<-fno-range-check%>", &rhs->where);
10382 else if (rc == ARITH_OVERFLOW)
10383 gfc_error ("Arithmetic overflow of bit-wise transferred BOZ at %L"
10384 ". This check can be disabled with the option "
10385 "%<-fno-range-check%>", &rhs->where);
10386 else if (rc == ARITH_NAN)
10387 gfc_error ("Arithmetic NaN of bit-wise transferred BOZ at %L"
10388 ". This check can be disabled with the option "
10389 "%<-fno-range-check%>", &rhs->where);
10390 return false;
10394 if (lhs->ts.type == BT_CHARACTER
10395 && warn_character_truncation)
10397 HOST_WIDE_INT llen = 0, rlen = 0;
10398 if (lhs->ts.u.cl != NULL
10399 && lhs->ts.u.cl->length != NULL
10400 && lhs->ts.u.cl->length->expr_type == EXPR_CONSTANT)
10401 llen = gfc_mpz_get_hwi (lhs->ts.u.cl->length->value.integer);
10403 if (rhs->expr_type == EXPR_CONSTANT)
10404 rlen = rhs->value.character.length;
10406 else if (rhs->ts.u.cl != NULL
10407 && rhs->ts.u.cl->length != NULL
10408 && rhs->ts.u.cl->length->expr_type == EXPR_CONSTANT)
10409 rlen = gfc_mpz_get_hwi (rhs->ts.u.cl->length->value.integer);
10411 if (rlen && llen && rlen > llen)
10412 gfc_warning_now (OPT_Wcharacter_truncation,
10413 "CHARACTER expression will be truncated "
10414 "in assignment (%ld/%ld) at %L",
10415 (long) llen, (long) rlen, &code->loc);
10418 /* Ensure that a vector index expression for the lvalue is evaluated
10419 to a temporary if the lvalue symbol is referenced in it. */
10420 if (lhs->rank)
10422 for (ref = lhs->ref; ref; ref= ref->next)
10423 if (ref->type == REF_ARRAY)
10425 for (n = 0; n < ref->u.ar.dimen; n++)
10426 if (ref->u.ar.dimen_type[n] == DIMEN_VECTOR
10427 && gfc_find_sym_in_expr (lhs->symtree->n.sym,
10428 ref->u.ar.start[n]))
10429 ref->u.ar.start[n]
10430 = gfc_get_parentheses (ref->u.ar.start[n]);
10434 if (gfc_pure (NULL))
10436 if (lhs->ts.type == BT_DERIVED
10437 && lhs->expr_type == EXPR_VARIABLE
10438 && lhs->ts.u.derived->attr.pointer_comp
10439 && rhs->expr_type == EXPR_VARIABLE
10440 && (gfc_impure_variable (rhs->symtree->n.sym)
10441 || gfc_is_coindexed (rhs)))
10443 /* F2008, C1283. */
10444 if (gfc_is_coindexed (rhs))
10445 gfc_error ("Coindexed expression at %L is assigned to "
10446 "a derived type variable with a POINTER "
10447 "component in a PURE procedure",
10448 &rhs->where);
10449 else
10450 gfc_error ("The impure variable at %L is assigned to "
10451 "a derived type variable with a POINTER "
10452 "component in a PURE procedure (12.6)",
10453 &rhs->where);
10454 return rval;
10457 /* Fortran 2008, C1283. */
10458 if (gfc_is_coindexed (lhs))
10460 gfc_error ("Assignment to coindexed variable at %L in a PURE "
10461 "procedure", &rhs->where);
10462 return rval;
10466 if (gfc_implicit_pure (NULL))
10468 if (lhs->expr_type == EXPR_VARIABLE
10469 && lhs->symtree->n.sym != gfc_current_ns->proc_name
10470 && lhs->symtree->n.sym->ns != gfc_current_ns)
10471 gfc_unset_implicit_pure (NULL);
10473 if (lhs->ts.type == BT_DERIVED
10474 && lhs->expr_type == EXPR_VARIABLE
10475 && lhs->ts.u.derived->attr.pointer_comp
10476 && rhs->expr_type == EXPR_VARIABLE
10477 && (gfc_impure_variable (rhs->symtree->n.sym)
10478 || gfc_is_coindexed (rhs)))
10479 gfc_unset_implicit_pure (NULL);
10481 /* Fortran 2008, C1283. */
10482 if (gfc_is_coindexed (lhs))
10483 gfc_unset_implicit_pure (NULL);
10486 /* F2008, 7.2.1.2. */
10487 attr = gfc_expr_attr (lhs);
10488 if (lhs->ts.type == BT_CLASS && attr.allocatable)
10490 if (attr.codimension)
10492 gfc_error ("Assignment to polymorphic coarray at %L is not "
10493 "permitted", &lhs->where);
10494 return false;
10496 if (!gfc_notify_std (GFC_STD_F2008, "Assignment to an allocatable "
10497 "polymorphic variable at %L", &lhs->where))
10498 return false;
10499 if (!flag_realloc_lhs)
10501 gfc_error ("Assignment to an allocatable polymorphic variable at %L "
10502 "requires %<-frealloc-lhs%>", &lhs->where);
10503 return false;
10506 else if (lhs->ts.type == BT_CLASS)
10508 gfc_error ("Nonallocatable variable must not be polymorphic in intrinsic "
10509 "assignment at %L - check that there is a matching specific "
10510 "subroutine for '=' operator", &lhs->where);
10511 return false;
10514 bool lhs_coindexed = gfc_is_coindexed (lhs);
10516 /* F2008, Section 7.2.1.2. */
10517 if (lhs_coindexed && gfc_has_ultimate_allocatable (lhs))
10519 gfc_error ("Coindexed variable must not have an allocatable ultimate "
10520 "component in assignment at %L", &lhs->where);
10521 return false;
10524 /* Assign the 'data' of a class object to a derived type. */
10525 if (lhs->ts.type == BT_DERIVED
10526 && rhs->ts.type == BT_CLASS
10527 && rhs->expr_type != EXPR_ARRAY)
10528 gfc_add_data_component (rhs);
10530 /* Make sure there is a vtable and, in particular, a _copy for the
10531 rhs type. */
10532 if (UNLIMITED_POLY (lhs) && lhs->rank && rhs->ts.type != BT_CLASS)
10533 gfc_find_vtab (&rhs->ts);
10535 bool caf_convert_to_send = flag_coarray == GFC_FCOARRAY_LIB
10536 && (lhs_coindexed
10537 || (code->expr2->expr_type == EXPR_FUNCTION
10538 && code->expr2->value.function.isym
10539 && code->expr2->value.function.isym->id == GFC_ISYM_CAF_GET
10540 && (code->expr1->rank == 0 || code->expr2->rank != 0)
10541 && !gfc_expr_attr (rhs).allocatable
10542 && !gfc_has_vector_subscript (rhs)));
10544 gfc_check_assign (lhs, rhs, 1, !caf_convert_to_send);
10546 /* Insert a GFC_ISYM_CAF_SEND intrinsic, when the LHS is a coindexed variable.
10547 Additionally, insert this code when the RHS is a CAF as we then use the
10548 GFC_ISYM_CAF_SEND intrinsic just to avoid a temporary; but do not do so if
10549 the LHS is (re)allocatable or has a vector subscript. If the LHS is a
10550 noncoindexed array and the RHS is a coindexed scalar, use the normal code
10551 path. */
10552 if (caf_convert_to_send)
10554 if (code->expr2->expr_type == EXPR_FUNCTION
10555 && code->expr2->value.function.isym
10556 && code->expr2->value.function.isym->id == GFC_ISYM_CAF_GET)
10557 remove_caf_get_intrinsic (code->expr2);
10558 code->op = EXEC_CALL;
10559 gfc_get_sym_tree (GFC_PREFIX ("caf_send"), ns, &code->symtree, true);
10560 code->resolved_sym = code->symtree->n.sym;
10561 code->resolved_sym->attr.flavor = FL_PROCEDURE;
10562 code->resolved_sym->attr.intrinsic = 1;
10563 code->resolved_sym->attr.subroutine = 1;
10564 code->resolved_isym = gfc_intrinsic_subroutine_by_id (GFC_ISYM_CAF_SEND);
10565 gfc_commit_symbol (code->resolved_sym);
10566 code->ext.actual = gfc_get_actual_arglist ();
10567 code->ext.actual->expr = lhs;
10568 code->ext.actual->next = gfc_get_actual_arglist ();
10569 code->ext.actual->next->expr = rhs;
10570 code->expr1 = NULL;
10571 code->expr2 = NULL;
10574 return false;
10578 /* Add a component reference onto an expression. */
10580 static void
10581 add_comp_ref (gfc_expr *e, gfc_component *c)
10583 gfc_ref **ref;
10584 ref = &(e->ref);
10585 while (*ref)
10586 ref = &((*ref)->next);
10587 *ref = gfc_get_ref ();
10588 (*ref)->type = REF_COMPONENT;
10589 (*ref)->u.c.sym = e->ts.u.derived;
10590 (*ref)->u.c.component = c;
10591 e->ts = c->ts;
10593 /* Add a full array ref, as necessary. */
10594 if (c->as)
10596 gfc_add_full_array_ref (e, c->as);
10597 e->rank = c->as->rank;
10602 /* Build an assignment. Keep the argument 'op' for future use, so that
10603 pointer assignments can be made. */
10605 static gfc_code *
10606 build_assignment (gfc_exec_op op, gfc_expr *expr1, gfc_expr *expr2,
10607 gfc_component *comp1, gfc_component *comp2, locus loc)
10609 gfc_code *this_code;
10611 this_code = gfc_get_code (op);
10612 this_code->next = NULL;
10613 this_code->expr1 = gfc_copy_expr (expr1);
10614 this_code->expr2 = gfc_copy_expr (expr2);
10615 this_code->loc = loc;
10616 if (comp1 && comp2)
10618 add_comp_ref (this_code->expr1, comp1);
10619 add_comp_ref (this_code->expr2, comp2);
10622 return this_code;
10626 /* Makes a temporary variable expression based on the characteristics of
10627 a given variable expression. */
10629 static gfc_expr*
10630 get_temp_from_expr (gfc_expr *e, gfc_namespace *ns)
10632 static int serial = 0;
10633 char name[GFC_MAX_SYMBOL_LEN];
10634 gfc_symtree *tmp;
10635 gfc_array_spec *as;
10636 gfc_array_ref *aref;
10637 gfc_ref *ref;
10639 sprintf (name, GFC_PREFIX("DA%d"), serial++);
10640 gfc_get_sym_tree (name, ns, &tmp, false);
10641 gfc_add_type (tmp->n.sym, &e->ts, NULL);
10643 as = NULL;
10644 ref = NULL;
10645 aref = NULL;
10647 /* Obtain the arrayspec for the temporary. */
10648 if (e->rank && e->expr_type != EXPR_ARRAY
10649 && e->expr_type != EXPR_FUNCTION
10650 && e->expr_type != EXPR_OP)
10652 aref = gfc_find_array_ref (e);
10653 if (e->expr_type == EXPR_VARIABLE
10654 && e->symtree->n.sym->as == aref->as)
10655 as = aref->as;
10656 else
10658 for (ref = e->ref; ref; ref = ref->next)
10659 if (ref->type == REF_COMPONENT
10660 && ref->u.c.component->as == aref->as)
10662 as = aref->as;
10663 break;
10668 /* Add the attributes and the arrayspec to the temporary. */
10669 tmp->n.sym->attr = gfc_expr_attr (e);
10670 tmp->n.sym->attr.function = 0;
10671 tmp->n.sym->attr.result = 0;
10672 tmp->n.sym->attr.flavor = FL_VARIABLE;
10673 tmp->n.sym->attr.dummy = 0;
10674 tmp->n.sym->attr.intent = INTENT_UNKNOWN;
10676 if (as)
10678 tmp->n.sym->as = gfc_copy_array_spec (as);
10679 if (!ref)
10680 ref = e->ref;
10681 if (as->type == AS_DEFERRED)
10682 tmp->n.sym->attr.allocatable = 1;
10684 else if (e->rank && (e->expr_type == EXPR_ARRAY
10685 || e->expr_type == EXPR_FUNCTION
10686 || e->expr_type == EXPR_OP))
10688 tmp->n.sym->as = gfc_get_array_spec ();
10689 tmp->n.sym->as->type = AS_DEFERRED;
10690 tmp->n.sym->as->rank = e->rank;
10691 tmp->n.sym->attr.allocatable = 1;
10692 tmp->n.sym->attr.dimension = 1;
10694 else
10695 tmp->n.sym->attr.dimension = 0;
10697 gfc_set_sym_referenced (tmp->n.sym);
10698 gfc_commit_symbol (tmp->n.sym);
10699 e = gfc_lval_expr_from_sym (tmp->n.sym);
10701 /* Should the lhs be a section, use its array ref for the
10702 temporary expression. */
10703 if (aref && aref->type != AR_FULL)
10705 gfc_free_ref_list (e->ref);
10706 e->ref = gfc_copy_ref (ref);
10708 return e;
10712 /* Add one line of code to the code chain, making sure that 'head' and
10713 'tail' are appropriately updated. */
10715 static void
10716 add_code_to_chain (gfc_code **this_code, gfc_code **head, gfc_code **tail)
10718 gcc_assert (this_code);
10719 if (*head == NULL)
10720 *head = *tail = *this_code;
10721 else
10722 *tail = gfc_append_code (*tail, *this_code);
10723 *this_code = NULL;
10727 /* Counts the potential number of part array references that would
10728 result from resolution of typebound defined assignments. */
10730 static int
10731 nonscalar_typebound_assign (gfc_symbol *derived, int depth)
10733 gfc_component *c;
10734 int c_depth = 0, t_depth;
10736 for (c= derived->components; c; c = c->next)
10738 if ((!gfc_bt_struct (c->ts.type)
10739 || c->attr.pointer
10740 || c->attr.allocatable
10741 || c->attr.proc_pointer_comp
10742 || c->attr.class_pointer
10743 || c->attr.proc_pointer)
10744 && !c->attr.defined_assign_comp)
10745 continue;
10747 if (c->as && c_depth == 0)
10748 c_depth = 1;
10750 if (c->ts.u.derived->attr.defined_assign_comp)
10751 t_depth = nonscalar_typebound_assign (c->ts.u.derived,
10752 c->as ? 1 : 0);
10753 else
10754 t_depth = 0;
10756 c_depth = t_depth > c_depth ? t_depth : c_depth;
10758 return depth + c_depth;
10762 /* Implement 7.2.1.3 of the F08 standard:
10763 "An intrinsic assignment where the variable is of derived type is
10764 performed as if each component of the variable were assigned from the
10765 corresponding component of expr using pointer assignment (7.2.2) for
10766 each pointer component, defined assignment for each nonpointer
10767 nonallocatable component of a type that has a type-bound defined
10768 assignment consistent with the component, intrinsic assignment for
10769 each other nonpointer nonallocatable component, ..."
10771 The pointer assignments are taken care of by the intrinsic
10772 assignment of the structure itself. This function recursively adds
10773 defined assignments where required. The recursion is accomplished
10774 by calling gfc_resolve_code.
10776 When the lhs in a defined assignment has intent INOUT, we need a
10777 temporary for the lhs. In pseudo-code:
10779 ! Only call function lhs once.
10780 if (lhs is not a constant or an variable)
10781 temp_x = expr2
10782 expr2 => temp_x
10783 ! Do the intrinsic assignment
10784 expr1 = expr2
10785 ! Now do the defined assignments
10786 do over components with typebound defined assignment [%cmp]
10787 #if one component's assignment procedure is INOUT
10788 t1 = expr1
10789 #if expr2 non-variable
10790 temp_x = expr2
10791 expr2 => temp_x
10792 # endif
10793 expr1 = expr2
10794 # for each cmp
10795 t1%cmp {defined=} expr2%cmp
10796 expr1%cmp = t1%cmp
10797 #else
10798 expr1 = expr2
10800 # for each cmp
10801 expr1%cmp {defined=} expr2%cmp
10802 #endif
10805 /* The temporary assignments have to be put on top of the additional
10806 code to avoid the result being changed by the intrinsic assignment.
10808 static int component_assignment_level = 0;
10809 static gfc_code *tmp_head = NULL, *tmp_tail = NULL;
10811 static void
10812 generate_component_assignments (gfc_code **code, gfc_namespace *ns)
10814 gfc_component *comp1, *comp2;
10815 gfc_code *this_code = NULL, *head = NULL, *tail = NULL;
10816 gfc_expr *t1;
10817 int error_count, depth;
10819 gfc_get_errors (NULL, &error_count);
10821 /* Filter out continuing processing after an error. */
10822 if (error_count
10823 || (*code)->expr1->ts.type != BT_DERIVED
10824 || (*code)->expr2->ts.type != BT_DERIVED)
10825 return;
10827 /* TODO: Handle more than one part array reference in assignments. */
10828 depth = nonscalar_typebound_assign ((*code)->expr1->ts.u.derived,
10829 (*code)->expr1->rank ? 1 : 0);
10830 if (depth > 1)
10832 gfc_warning (0, "TODO: type-bound defined assignment(s) at %L not "
10833 "done because multiple part array references would "
10834 "occur in intermediate expressions.", &(*code)->loc);
10835 return;
10838 component_assignment_level++;
10840 /* Create a temporary so that functions get called only once. */
10841 if ((*code)->expr2->expr_type != EXPR_VARIABLE
10842 && (*code)->expr2->expr_type != EXPR_CONSTANT)
10844 gfc_expr *tmp_expr;
10846 /* Assign the rhs to the temporary. */
10847 tmp_expr = get_temp_from_expr ((*code)->expr1, ns);
10848 this_code = build_assignment (EXEC_ASSIGN,
10849 tmp_expr, (*code)->expr2,
10850 NULL, NULL, (*code)->loc);
10851 /* Add the code and substitute the rhs expression. */
10852 add_code_to_chain (&this_code, &tmp_head, &tmp_tail);
10853 gfc_free_expr ((*code)->expr2);
10854 (*code)->expr2 = tmp_expr;
10857 /* Do the intrinsic assignment. This is not needed if the lhs is one
10858 of the temporaries generated here, since the intrinsic assignment
10859 to the final result already does this. */
10860 if ((*code)->expr1->symtree->n.sym->name[2] != '@')
10862 this_code = build_assignment (EXEC_ASSIGN,
10863 (*code)->expr1, (*code)->expr2,
10864 NULL, NULL, (*code)->loc);
10865 add_code_to_chain (&this_code, &head, &tail);
10868 comp1 = (*code)->expr1->ts.u.derived->components;
10869 comp2 = (*code)->expr2->ts.u.derived->components;
10871 t1 = NULL;
10872 for (; comp1; comp1 = comp1->next, comp2 = comp2->next)
10874 bool inout = false;
10876 /* The intrinsic assignment does the right thing for pointers
10877 of all kinds and allocatable components. */
10878 if (!gfc_bt_struct (comp1->ts.type)
10879 || comp1->attr.pointer
10880 || comp1->attr.allocatable
10881 || comp1->attr.proc_pointer_comp
10882 || comp1->attr.class_pointer
10883 || comp1->attr.proc_pointer)
10884 continue;
10886 /* Make an assigment for this component. */
10887 this_code = build_assignment (EXEC_ASSIGN,
10888 (*code)->expr1, (*code)->expr2,
10889 comp1, comp2, (*code)->loc);
10891 /* Convert the assignment if there is a defined assignment for
10892 this type. Otherwise, using the call from gfc_resolve_code,
10893 recurse into its components. */
10894 gfc_resolve_code (this_code, ns);
10896 if (this_code->op == EXEC_ASSIGN_CALL)
10898 gfc_formal_arglist *dummy_args;
10899 gfc_symbol *rsym;
10900 /* Check that there is a typebound defined assignment. If not,
10901 then this must be a module defined assignment. We cannot
10902 use the defined_assign_comp attribute here because it must
10903 be this derived type that has the defined assignment and not
10904 a parent type. */
10905 if (!(comp1->ts.u.derived->f2k_derived
10906 && comp1->ts.u.derived->f2k_derived
10907 ->tb_op[INTRINSIC_ASSIGN]))
10909 gfc_free_statements (this_code);
10910 this_code = NULL;
10911 continue;
10914 /* If the first argument of the subroutine has intent INOUT
10915 a temporary must be generated and used instead. */
10916 rsym = this_code->resolved_sym;
10917 dummy_args = gfc_sym_get_dummy_args (rsym);
10918 if (dummy_args
10919 && dummy_args->sym->attr.intent == INTENT_INOUT)
10921 gfc_code *temp_code;
10922 inout = true;
10924 /* Build the temporary required for the assignment and put
10925 it at the head of the generated code. */
10926 if (!t1)
10928 t1 = get_temp_from_expr ((*code)->expr1, ns);
10929 temp_code = build_assignment (EXEC_ASSIGN,
10930 t1, (*code)->expr1,
10931 NULL, NULL, (*code)->loc);
10933 /* For allocatable LHS, check whether it is allocated. Note
10934 that allocatable components with defined assignment are
10935 not yet support. See PR 57696. */
10936 if ((*code)->expr1->symtree->n.sym->attr.allocatable)
10938 gfc_code *block;
10939 gfc_expr *e =
10940 gfc_lval_expr_from_sym ((*code)->expr1->symtree->n.sym);
10941 block = gfc_get_code (EXEC_IF);
10942 block->block = gfc_get_code (EXEC_IF);
10943 block->block->expr1
10944 = gfc_build_intrinsic_call (ns,
10945 GFC_ISYM_ALLOCATED, "allocated",
10946 (*code)->loc, 1, e);
10947 block->block->next = temp_code;
10948 temp_code = block;
10950 add_code_to_chain (&temp_code, &tmp_head, &tmp_tail);
10953 /* Replace the first actual arg with the component of the
10954 temporary. */
10955 gfc_free_expr (this_code->ext.actual->expr);
10956 this_code->ext.actual->expr = gfc_copy_expr (t1);
10957 add_comp_ref (this_code->ext.actual->expr, comp1);
10959 /* If the LHS variable is allocatable and wasn't allocated and
10960 the temporary is allocatable, pointer assign the address of
10961 the freshly allocated LHS to the temporary. */
10962 if ((*code)->expr1->symtree->n.sym->attr.allocatable
10963 && gfc_expr_attr ((*code)->expr1).allocatable)
10965 gfc_code *block;
10966 gfc_expr *cond;
10968 cond = gfc_get_expr ();
10969 cond->ts.type = BT_LOGICAL;
10970 cond->ts.kind = gfc_default_logical_kind;
10971 cond->expr_type = EXPR_OP;
10972 cond->where = (*code)->loc;
10973 cond->value.op.op = INTRINSIC_NOT;
10974 cond->value.op.op1 = gfc_build_intrinsic_call (ns,
10975 GFC_ISYM_ALLOCATED, "allocated",
10976 (*code)->loc, 1, gfc_copy_expr (t1));
10977 block = gfc_get_code (EXEC_IF);
10978 block->block = gfc_get_code (EXEC_IF);
10979 block->block->expr1 = cond;
10980 block->block->next = build_assignment (EXEC_POINTER_ASSIGN,
10981 t1, (*code)->expr1,
10982 NULL, NULL, (*code)->loc);
10983 add_code_to_chain (&block, &head, &tail);
10987 else if (this_code->op == EXEC_ASSIGN && !this_code->next)
10989 /* Don't add intrinsic assignments since they are already
10990 effected by the intrinsic assignment of the structure. */
10991 gfc_free_statements (this_code);
10992 this_code = NULL;
10993 continue;
10996 add_code_to_chain (&this_code, &head, &tail);
10998 if (t1 && inout)
11000 /* Transfer the value to the final result. */
11001 this_code = build_assignment (EXEC_ASSIGN,
11002 (*code)->expr1, t1,
11003 comp1, comp2, (*code)->loc);
11004 add_code_to_chain (&this_code, &head, &tail);
11008 /* Put the temporary assignments at the top of the generated code. */
11009 if (tmp_head && component_assignment_level == 1)
11011 gfc_append_code (tmp_head, head);
11012 head = tmp_head;
11013 tmp_head = tmp_tail = NULL;
11016 // If we did a pointer assignment - thus, we need to ensure that the LHS is
11017 // not accidentally deallocated. Hence, nullify t1.
11018 if (t1 && (*code)->expr1->symtree->n.sym->attr.allocatable
11019 && gfc_expr_attr ((*code)->expr1).allocatable)
11021 gfc_code *block;
11022 gfc_expr *cond;
11023 gfc_expr *e;
11025 e = gfc_lval_expr_from_sym ((*code)->expr1->symtree->n.sym);
11026 cond = gfc_build_intrinsic_call (ns, GFC_ISYM_ASSOCIATED, "associated",
11027 (*code)->loc, 2, gfc_copy_expr (t1), e);
11028 block = gfc_get_code (EXEC_IF);
11029 block->block = gfc_get_code (EXEC_IF);
11030 block->block->expr1 = cond;
11031 block->block->next = build_assignment (EXEC_POINTER_ASSIGN,
11032 t1, gfc_get_null_expr (&(*code)->loc),
11033 NULL, NULL, (*code)->loc);
11034 gfc_append_code (tail, block);
11035 tail = block;
11038 /* Now attach the remaining code chain to the input code. Step on
11039 to the end of the new code since resolution is complete. */
11040 gcc_assert ((*code)->op == EXEC_ASSIGN);
11041 tail->next = (*code)->next;
11042 /* Overwrite 'code' because this would place the intrinsic assignment
11043 before the temporary for the lhs is created. */
11044 gfc_free_expr ((*code)->expr1);
11045 gfc_free_expr ((*code)->expr2);
11046 **code = *head;
11047 if (head != tail)
11048 free (head);
11049 *code = tail;
11051 component_assignment_level--;
11055 /* F2008: Pointer function assignments are of the form:
11056 ptr_fcn (args) = expr
11057 This function breaks these assignments into two statements:
11058 temporary_pointer => ptr_fcn(args)
11059 temporary_pointer = expr */
11061 static bool
11062 resolve_ptr_fcn_assign (gfc_code **code, gfc_namespace *ns)
11064 gfc_expr *tmp_ptr_expr;
11065 gfc_code *this_code;
11066 gfc_component *comp;
11067 gfc_symbol *s;
11069 if ((*code)->expr1->expr_type != EXPR_FUNCTION)
11070 return false;
11072 /* Even if standard does not support this feature, continue to build
11073 the two statements to avoid upsetting frontend_passes.c. */
11074 gfc_notify_std (GFC_STD_F2008, "Pointer procedure assignment at "
11075 "%L", &(*code)->loc);
11077 comp = gfc_get_proc_ptr_comp ((*code)->expr1);
11079 if (comp)
11080 s = comp->ts.interface;
11081 else
11082 s = (*code)->expr1->symtree->n.sym;
11084 if (s == NULL || !s->result->attr.pointer)
11086 gfc_error ("The function result on the lhs of the assignment at "
11087 "%L must have the pointer attribute.",
11088 &(*code)->expr1->where);
11089 (*code)->op = EXEC_NOP;
11090 return false;
11093 tmp_ptr_expr = get_temp_from_expr ((*code)->expr2, ns);
11095 /* get_temp_from_expression is set up for ordinary assignments. To that
11096 end, where array bounds are not known, arrays are made allocatable.
11097 Change the temporary to a pointer here. */
11098 tmp_ptr_expr->symtree->n.sym->attr.pointer = 1;
11099 tmp_ptr_expr->symtree->n.sym->attr.allocatable = 0;
11100 tmp_ptr_expr->where = (*code)->loc;
11102 this_code = build_assignment (EXEC_ASSIGN,
11103 tmp_ptr_expr, (*code)->expr2,
11104 NULL, NULL, (*code)->loc);
11105 this_code->next = (*code)->next;
11106 (*code)->next = this_code;
11107 (*code)->op = EXEC_POINTER_ASSIGN;
11108 (*code)->expr2 = (*code)->expr1;
11109 (*code)->expr1 = tmp_ptr_expr;
11111 return true;
11115 /* Deferred character length assignments from an operator expression
11116 require a temporary because the character length of the lhs can
11117 change in the course of the assignment. */
11119 static bool
11120 deferred_op_assign (gfc_code **code, gfc_namespace *ns)
11122 gfc_expr *tmp_expr;
11123 gfc_code *this_code;
11125 if (!((*code)->expr1->ts.type == BT_CHARACTER
11126 && (*code)->expr1->ts.deferred && (*code)->expr1->rank
11127 && (*code)->expr2->expr_type == EXPR_OP))
11128 return false;
11130 if (!gfc_check_dependency ((*code)->expr1, (*code)->expr2, 1))
11131 return false;
11133 tmp_expr = get_temp_from_expr ((*code)->expr1, ns);
11134 tmp_expr->where = (*code)->loc;
11136 /* A new charlen is required to ensure that the variable string
11137 length is different to that of the original lhs. */
11138 tmp_expr->ts.u.cl = gfc_get_charlen();
11139 tmp_expr->symtree->n.sym->ts.u.cl = tmp_expr->ts.u.cl;
11140 tmp_expr->ts.u.cl->next = (*code)->expr2->ts.u.cl->next;
11141 (*code)->expr2->ts.u.cl->next = tmp_expr->ts.u.cl;
11143 tmp_expr->symtree->n.sym->ts.deferred = 1;
11145 this_code = build_assignment (EXEC_ASSIGN,
11146 (*code)->expr1,
11147 gfc_copy_expr (tmp_expr),
11148 NULL, NULL, (*code)->loc);
11150 (*code)->expr1 = tmp_expr;
11152 this_code->next = (*code)->next;
11153 (*code)->next = this_code;
11155 return true;
11159 /* Given a block of code, recursively resolve everything pointed to by this
11160 code block. */
11162 void
11163 gfc_resolve_code (gfc_code *code, gfc_namespace *ns)
11165 int omp_workshare_save;
11166 int forall_save, do_concurrent_save;
11167 code_stack frame;
11168 bool t;
11170 frame.prev = cs_base;
11171 frame.head = code;
11172 cs_base = &frame;
11174 find_reachable_labels (code);
11176 for (; code; code = code->next)
11178 frame.current = code;
11179 forall_save = forall_flag;
11180 do_concurrent_save = gfc_do_concurrent_flag;
11182 if (code->op == EXEC_FORALL)
11184 forall_flag = 1;
11185 gfc_resolve_forall (code, ns, forall_save);
11186 forall_flag = 2;
11188 else if (code->block)
11190 omp_workshare_save = -1;
11191 switch (code->op)
11193 case EXEC_OACC_PARALLEL_LOOP:
11194 case EXEC_OACC_PARALLEL:
11195 case EXEC_OACC_KERNELS_LOOP:
11196 case EXEC_OACC_KERNELS:
11197 case EXEC_OACC_DATA:
11198 case EXEC_OACC_HOST_DATA:
11199 case EXEC_OACC_LOOP:
11200 gfc_resolve_oacc_blocks (code, ns);
11201 break;
11202 case EXEC_OMP_PARALLEL_WORKSHARE:
11203 omp_workshare_save = omp_workshare_flag;
11204 omp_workshare_flag = 1;
11205 gfc_resolve_omp_parallel_blocks (code, ns);
11206 break;
11207 case EXEC_OMP_PARALLEL:
11208 case EXEC_OMP_PARALLEL_DO:
11209 case EXEC_OMP_PARALLEL_DO_SIMD:
11210 case EXEC_OMP_PARALLEL_SECTIONS:
11211 case EXEC_OMP_TARGET_PARALLEL:
11212 case EXEC_OMP_TARGET_PARALLEL_DO:
11213 case EXEC_OMP_TARGET_PARALLEL_DO_SIMD:
11214 case EXEC_OMP_TARGET_TEAMS:
11215 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE:
11216 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE_PARALLEL_DO:
11217 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE_PARALLEL_DO_SIMD:
11218 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE_SIMD:
11219 case EXEC_OMP_TASK:
11220 case EXEC_OMP_TASKLOOP:
11221 case EXEC_OMP_TASKLOOP_SIMD:
11222 case EXEC_OMP_TEAMS:
11223 case EXEC_OMP_TEAMS_DISTRIBUTE:
11224 case EXEC_OMP_TEAMS_DISTRIBUTE_PARALLEL_DO:
11225 case EXEC_OMP_TEAMS_DISTRIBUTE_PARALLEL_DO_SIMD:
11226 case EXEC_OMP_TEAMS_DISTRIBUTE_SIMD:
11227 omp_workshare_save = omp_workshare_flag;
11228 omp_workshare_flag = 0;
11229 gfc_resolve_omp_parallel_blocks (code, ns);
11230 break;
11231 case EXEC_OMP_DISTRIBUTE:
11232 case EXEC_OMP_DISTRIBUTE_SIMD:
11233 case EXEC_OMP_DO:
11234 case EXEC_OMP_DO_SIMD:
11235 case EXEC_OMP_SIMD:
11236 case EXEC_OMP_TARGET_SIMD:
11237 gfc_resolve_omp_do_blocks (code, ns);
11238 break;
11239 case EXEC_SELECT_TYPE:
11240 /* Blocks are handled in resolve_select_type because we have
11241 to transform the SELECT TYPE into ASSOCIATE first. */
11242 break;
11243 case EXEC_DO_CONCURRENT:
11244 gfc_do_concurrent_flag = 1;
11245 gfc_resolve_blocks (code->block, ns);
11246 gfc_do_concurrent_flag = 2;
11247 break;
11248 case EXEC_OMP_WORKSHARE:
11249 omp_workshare_save = omp_workshare_flag;
11250 omp_workshare_flag = 1;
11251 /* FALL THROUGH */
11252 default:
11253 gfc_resolve_blocks (code->block, ns);
11254 break;
11257 if (omp_workshare_save != -1)
11258 omp_workshare_flag = omp_workshare_save;
11260 start:
11261 t = true;
11262 if (code->op != EXEC_COMPCALL && code->op != EXEC_CALL_PPC)
11263 t = gfc_resolve_expr (code->expr1);
11264 forall_flag = forall_save;
11265 gfc_do_concurrent_flag = do_concurrent_save;
11267 if (!gfc_resolve_expr (code->expr2))
11268 t = false;
11270 if (code->op == EXEC_ALLOCATE
11271 && !gfc_resolve_expr (code->expr3))
11272 t = false;
11274 switch (code->op)
11276 case EXEC_NOP:
11277 case EXEC_END_BLOCK:
11278 case EXEC_END_NESTED_BLOCK:
11279 case EXEC_CYCLE:
11280 case EXEC_PAUSE:
11281 case EXEC_STOP:
11282 case EXEC_ERROR_STOP:
11283 case EXEC_EXIT:
11284 case EXEC_CONTINUE:
11285 case EXEC_DT_END:
11286 case EXEC_ASSIGN_CALL:
11287 break;
11289 case EXEC_CRITICAL:
11290 resolve_critical (code);
11291 break;
11293 case EXEC_SYNC_ALL:
11294 case EXEC_SYNC_IMAGES:
11295 case EXEC_SYNC_MEMORY:
11296 resolve_sync (code);
11297 break;
11299 case EXEC_LOCK:
11300 case EXEC_UNLOCK:
11301 case EXEC_EVENT_POST:
11302 case EXEC_EVENT_WAIT:
11303 resolve_lock_unlock_event (code);
11304 break;
11306 case EXEC_FAIL_IMAGE:
11307 case EXEC_FORM_TEAM:
11308 case EXEC_CHANGE_TEAM:
11309 case EXEC_END_TEAM:
11310 case EXEC_SYNC_TEAM:
11311 break;
11313 case EXEC_ENTRY:
11314 /* Keep track of which entry we are up to. */
11315 current_entry_id = code->ext.entry->id;
11316 break;
11318 case EXEC_WHERE:
11319 resolve_where (code, NULL);
11320 break;
11322 case EXEC_GOTO:
11323 if (code->expr1 != NULL)
11325 if (code->expr1->ts.type != BT_INTEGER)
11326 gfc_error ("ASSIGNED GOTO statement at %L requires an "
11327 "INTEGER variable", &code->expr1->where);
11328 else if (code->expr1->symtree->n.sym->attr.assign != 1)
11329 gfc_error ("Variable %qs has not been assigned a target "
11330 "label at %L", code->expr1->symtree->n.sym->name,
11331 &code->expr1->where);
11333 else
11334 resolve_branch (code->label1, code);
11335 break;
11337 case EXEC_RETURN:
11338 if (code->expr1 != NULL
11339 && (code->expr1->ts.type != BT_INTEGER || code->expr1->rank))
11340 gfc_error ("Alternate RETURN statement at %L requires a SCALAR-"
11341 "INTEGER return specifier", &code->expr1->where);
11342 break;
11344 case EXEC_INIT_ASSIGN:
11345 case EXEC_END_PROCEDURE:
11346 break;
11348 case EXEC_ASSIGN:
11349 if (!t)
11350 break;
11352 /* Remove a GFC_ISYM_CAF_GET inserted for a coindexed variable on
11353 the LHS. */
11354 if (code->expr1->expr_type == EXPR_FUNCTION
11355 && code->expr1->value.function.isym
11356 && code->expr1->value.function.isym->id == GFC_ISYM_CAF_GET)
11357 remove_caf_get_intrinsic (code->expr1);
11359 /* If this is a pointer function in an lvalue variable context,
11360 the new code will have to be resolved afresh. This is also the
11361 case with an error, where the code is transformed into NOP to
11362 prevent ICEs downstream. */
11363 if (resolve_ptr_fcn_assign (&code, ns)
11364 || code->op == EXEC_NOP)
11365 goto start;
11367 if (!gfc_check_vardef_context (code->expr1, false, false, false,
11368 _("assignment")))
11369 break;
11371 if (resolve_ordinary_assign (code, ns))
11373 if (code->op == EXEC_COMPCALL)
11374 goto compcall;
11375 else
11376 goto call;
11379 /* Check for dependencies in deferred character length array
11380 assignments and generate a temporary, if necessary. */
11381 if (code->op == EXEC_ASSIGN && deferred_op_assign (&code, ns))
11382 break;
11384 /* F03 7.4.1.3 for non-allocatable, non-pointer components. */
11385 if (code->op != EXEC_CALL && code->expr1->ts.type == BT_DERIVED
11386 && code->expr1->ts.u.derived
11387 && code->expr1->ts.u.derived->attr.defined_assign_comp)
11388 generate_component_assignments (&code, ns);
11390 break;
11392 case EXEC_LABEL_ASSIGN:
11393 if (code->label1->defined == ST_LABEL_UNKNOWN)
11394 gfc_error ("Label %d referenced at %L is never defined",
11395 code->label1->value, &code->label1->where);
11396 if (t
11397 && (code->expr1->expr_type != EXPR_VARIABLE
11398 || code->expr1->symtree->n.sym->ts.type != BT_INTEGER
11399 || code->expr1->symtree->n.sym->ts.kind
11400 != gfc_default_integer_kind
11401 || code->expr1->symtree->n.sym->as != NULL))
11402 gfc_error ("ASSIGN statement at %L requires a scalar "
11403 "default INTEGER variable", &code->expr1->where);
11404 break;
11406 case EXEC_POINTER_ASSIGN:
11408 gfc_expr* e;
11410 if (!t)
11411 break;
11413 /* This is both a variable definition and pointer assignment
11414 context, so check both of them. For rank remapping, a final
11415 array ref may be present on the LHS and fool gfc_expr_attr
11416 used in gfc_check_vardef_context. Remove it. */
11417 e = remove_last_array_ref (code->expr1);
11418 t = gfc_check_vardef_context (e, true, false, false,
11419 _("pointer assignment"));
11420 if (t)
11421 t = gfc_check_vardef_context (e, false, false, false,
11422 _("pointer assignment"));
11423 gfc_free_expr (e);
11425 t = gfc_check_pointer_assign (code->expr1, code->expr2, !t) && t;
11427 if (!t)
11428 break;
11430 /* Assigning a class object always is a regular assign. */
11431 if (code->expr2->ts.type == BT_CLASS
11432 && code->expr1->ts.type == BT_CLASS
11433 && !CLASS_DATA (code->expr2)->attr.dimension
11434 && !(gfc_expr_attr (code->expr1).proc_pointer
11435 && code->expr2->expr_type == EXPR_VARIABLE
11436 && code->expr2->symtree->n.sym->attr.flavor
11437 == FL_PROCEDURE))
11438 code->op = EXEC_ASSIGN;
11439 break;
11442 case EXEC_ARITHMETIC_IF:
11444 gfc_expr *e = code->expr1;
11446 gfc_resolve_expr (e);
11447 if (e->expr_type == EXPR_NULL)
11448 gfc_error ("Invalid NULL at %L", &e->where);
11450 if (t && (e->rank > 0
11451 || !(e->ts.type == BT_REAL || e->ts.type == BT_INTEGER)))
11452 gfc_error ("Arithmetic IF statement at %L requires a scalar "
11453 "REAL or INTEGER expression", &e->where);
11455 resolve_branch (code->label1, code);
11456 resolve_branch (code->label2, code);
11457 resolve_branch (code->label3, code);
11459 break;
11461 case EXEC_IF:
11462 if (t && code->expr1 != NULL
11463 && (code->expr1->ts.type != BT_LOGICAL
11464 || code->expr1->rank != 0))
11465 gfc_error ("IF clause at %L requires a scalar LOGICAL expression",
11466 &code->expr1->where);
11467 break;
11469 case EXEC_CALL:
11470 call:
11471 resolve_call (code);
11472 break;
11474 case EXEC_COMPCALL:
11475 compcall:
11476 resolve_typebound_subroutine (code);
11477 break;
11479 case EXEC_CALL_PPC:
11480 resolve_ppc_call (code);
11481 break;
11483 case EXEC_SELECT:
11484 /* Select is complicated. Also, a SELECT construct could be
11485 a transformed computed GOTO. */
11486 resolve_select (code, false);
11487 break;
11489 case EXEC_SELECT_TYPE:
11490 resolve_select_type (code, ns);
11491 break;
11493 case EXEC_BLOCK:
11494 resolve_block_construct (code);
11495 break;
11497 case EXEC_DO:
11498 if (code->ext.iterator != NULL)
11500 gfc_iterator *iter = code->ext.iterator;
11501 if (gfc_resolve_iterator (iter, true, false))
11502 gfc_resolve_do_iterator (code, iter->var->symtree->n.sym,
11503 true);
11505 break;
11507 case EXEC_DO_WHILE:
11508 if (code->expr1 == NULL)
11509 gfc_internal_error ("gfc_resolve_code(): No expression on "
11510 "DO WHILE");
11511 if (t
11512 && (code->expr1->rank != 0
11513 || code->expr1->ts.type != BT_LOGICAL))
11514 gfc_error ("Exit condition of DO WHILE loop at %L must be "
11515 "a scalar LOGICAL expression", &code->expr1->where);
11516 break;
11518 case EXEC_ALLOCATE:
11519 if (t)
11520 resolve_allocate_deallocate (code, "ALLOCATE");
11522 break;
11524 case EXEC_DEALLOCATE:
11525 if (t)
11526 resolve_allocate_deallocate (code, "DEALLOCATE");
11528 break;
11530 case EXEC_OPEN:
11531 if (!gfc_resolve_open (code->ext.open))
11532 break;
11534 resolve_branch (code->ext.open->err, code);
11535 break;
11537 case EXEC_CLOSE:
11538 if (!gfc_resolve_close (code->ext.close))
11539 break;
11541 resolve_branch (code->ext.close->err, code);
11542 break;
11544 case EXEC_BACKSPACE:
11545 case EXEC_ENDFILE:
11546 case EXEC_REWIND:
11547 case EXEC_FLUSH:
11548 if (!gfc_resolve_filepos (code->ext.filepos))
11549 break;
11551 resolve_branch (code->ext.filepos->err, code);
11552 break;
11554 case EXEC_INQUIRE:
11555 if (!gfc_resolve_inquire (code->ext.inquire))
11556 break;
11558 resolve_branch (code->ext.inquire->err, code);
11559 break;
11561 case EXEC_IOLENGTH:
11562 gcc_assert (code->ext.inquire != NULL);
11563 if (!gfc_resolve_inquire (code->ext.inquire))
11564 break;
11566 resolve_branch (code->ext.inquire->err, code);
11567 break;
11569 case EXEC_WAIT:
11570 if (!gfc_resolve_wait (code->ext.wait))
11571 break;
11573 resolve_branch (code->ext.wait->err, code);
11574 resolve_branch (code->ext.wait->end, code);
11575 resolve_branch (code->ext.wait->eor, code);
11576 break;
11578 case EXEC_READ:
11579 case EXEC_WRITE:
11580 if (!gfc_resolve_dt (code->ext.dt, &code->loc))
11581 break;
11583 resolve_branch (code->ext.dt->err, code);
11584 resolve_branch (code->ext.dt->end, code);
11585 resolve_branch (code->ext.dt->eor, code);
11586 break;
11588 case EXEC_TRANSFER:
11589 resolve_transfer (code);
11590 break;
11592 case EXEC_DO_CONCURRENT:
11593 case EXEC_FORALL:
11594 resolve_forall_iterators (code->ext.forall_iterator);
11596 if (code->expr1 != NULL
11597 && (code->expr1->ts.type != BT_LOGICAL || code->expr1->rank))
11598 gfc_error ("FORALL mask clause at %L requires a scalar LOGICAL "
11599 "expression", &code->expr1->where);
11600 break;
11602 case EXEC_OACC_PARALLEL_LOOP:
11603 case EXEC_OACC_PARALLEL:
11604 case EXEC_OACC_KERNELS_LOOP:
11605 case EXEC_OACC_KERNELS:
11606 case EXEC_OACC_DATA:
11607 case EXEC_OACC_HOST_DATA:
11608 case EXEC_OACC_LOOP:
11609 case EXEC_OACC_UPDATE:
11610 case EXEC_OACC_WAIT:
11611 case EXEC_OACC_CACHE:
11612 case EXEC_OACC_ENTER_DATA:
11613 case EXEC_OACC_EXIT_DATA:
11614 case EXEC_OACC_ATOMIC:
11615 case EXEC_OACC_DECLARE:
11616 gfc_resolve_oacc_directive (code, ns);
11617 break;
11619 case EXEC_OMP_ATOMIC:
11620 case EXEC_OMP_BARRIER:
11621 case EXEC_OMP_CANCEL:
11622 case EXEC_OMP_CANCELLATION_POINT:
11623 case EXEC_OMP_CRITICAL:
11624 case EXEC_OMP_FLUSH:
11625 case EXEC_OMP_DISTRIBUTE:
11626 case EXEC_OMP_DISTRIBUTE_PARALLEL_DO:
11627 case EXEC_OMP_DISTRIBUTE_PARALLEL_DO_SIMD:
11628 case EXEC_OMP_DISTRIBUTE_SIMD:
11629 case EXEC_OMP_DO:
11630 case EXEC_OMP_DO_SIMD:
11631 case EXEC_OMP_MASTER:
11632 case EXEC_OMP_ORDERED:
11633 case EXEC_OMP_SECTIONS:
11634 case EXEC_OMP_SIMD:
11635 case EXEC_OMP_SINGLE:
11636 case EXEC_OMP_TARGET:
11637 case EXEC_OMP_TARGET_DATA:
11638 case EXEC_OMP_TARGET_ENTER_DATA:
11639 case EXEC_OMP_TARGET_EXIT_DATA:
11640 case EXEC_OMP_TARGET_PARALLEL:
11641 case EXEC_OMP_TARGET_PARALLEL_DO:
11642 case EXEC_OMP_TARGET_PARALLEL_DO_SIMD:
11643 case EXEC_OMP_TARGET_SIMD:
11644 case EXEC_OMP_TARGET_TEAMS:
11645 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE:
11646 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE_PARALLEL_DO:
11647 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE_PARALLEL_DO_SIMD:
11648 case EXEC_OMP_TARGET_TEAMS_DISTRIBUTE_SIMD:
11649 case EXEC_OMP_TARGET_UPDATE:
11650 case EXEC_OMP_TASK:
11651 case EXEC_OMP_TASKGROUP:
11652 case EXEC_OMP_TASKLOOP:
11653 case EXEC_OMP_TASKLOOP_SIMD:
11654 case EXEC_OMP_TASKWAIT:
11655 case EXEC_OMP_TASKYIELD:
11656 case EXEC_OMP_TEAMS:
11657 case EXEC_OMP_TEAMS_DISTRIBUTE:
11658 case EXEC_OMP_TEAMS_DISTRIBUTE_PARALLEL_DO:
11659 case EXEC_OMP_TEAMS_DISTRIBUTE_PARALLEL_DO_SIMD:
11660 case EXEC_OMP_TEAMS_DISTRIBUTE_SIMD:
11661 case EXEC_OMP_WORKSHARE:
11662 gfc_resolve_omp_directive (code, ns);
11663 break;
11665 case EXEC_OMP_PARALLEL:
11666 case EXEC_OMP_PARALLEL_DO:
11667 case EXEC_OMP_PARALLEL_DO_SIMD:
11668 case EXEC_OMP_PARALLEL_SECTIONS:
11669 case EXEC_OMP_PARALLEL_WORKSHARE:
11670 omp_workshare_save = omp_workshare_flag;
11671 omp_workshare_flag = 0;
11672 gfc_resolve_omp_directive (code, ns);
11673 omp_workshare_flag = omp_workshare_save;
11674 break;
11676 default:
11677 gfc_internal_error ("gfc_resolve_code(): Bad statement code");
11681 cs_base = frame.prev;
11685 /* Resolve initial values and make sure they are compatible with
11686 the variable. */
11688 static void
11689 resolve_values (gfc_symbol *sym)
11691 bool t;
11693 if (sym->value == NULL)
11694 return;
11696 if (sym->value->expr_type == EXPR_STRUCTURE)
11697 t= resolve_structure_cons (sym->value, 1);
11698 else
11699 t = gfc_resolve_expr (sym->value);
11701 if (!t)
11702 return;
11704 gfc_check_assign_symbol (sym, NULL, sym->value);
11708 /* Verify any BIND(C) derived types in the namespace so we can report errors
11709 for them once, rather than for each variable declared of that type. */
11711 static void
11712 resolve_bind_c_derived_types (gfc_symbol *derived_sym)
11714 if (derived_sym != NULL && derived_sym->attr.flavor == FL_DERIVED
11715 && derived_sym->attr.is_bind_c == 1)
11716 verify_bind_c_derived_type (derived_sym);
11718 return;
11722 /* Check the interfaces of DTIO procedures associated with derived
11723 type 'sym'. These procedures can either have typebound bindings or
11724 can appear in DTIO generic interfaces. */
11726 static void
11727 gfc_verify_DTIO_procedures (gfc_symbol *sym)
11729 if (!sym || sym->attr.flavor != FL_DERIVED)
11730 return;
11732 gfc_check_dtio_interfaces (sym);
11734 return;
11737 /* Verify that any binding labels used in a given namespace do not collide
11738 with the names or binding labels of any global symbols. Multiple INTERFACE
11739 for the same procedure are permitted. */
11741 static void
11742 gfc_verify_binding_labels (gfc_symbol *sym)
11744 gfc_gsymbol *gsym;
11745 const char *module;
11747 if (!sym || !sym->attr.is_bind_c || sym->attr.is_iso_c
11748 || sym->attr.flavor == FL_DERIVED || !sym->binding_label)
11749 return;
11751 gsym = gfc_find_case_gsymbol (gfc_gsym_root, sym->binding_label);
11753 if (sym->module)
11754 module = sym->module;
11755 else if (sym->ns && sym->ns->proc_name
11756 && sym->ns->proc_name->attr.flavor == FL_MODULE)
11757 module = sym->ns->proc_name->name;
11758 else if (sym->ns && sym->ns->parent
11759 && sym->ns && sym->ns->parent->proc_name
11760 && sym->ns->parent->proc_name->attr.flavor == FL_MODULE)
11761 module = sym->ns->parent->proc_name->name;
11762 else
11763 module = NULL;
11765 if (!gsym
11766 || (!gsym->defined
11767 && (gsym->type == GSYM_FUNCTION || gsym->type == GSYM_SUBROUTINE)))
11769 if (!gsym)
11770 gsym = gfc_get_gsymbol (sym->binding_label);
11771 gsym->where = sym->declared_at;
11772 gsym->sym_name = sym->name;
11773 gsym->binding_label = sym->binding_label;
11774 gsym->ns = sym->ns;
11775 gsym->mod_name = module;
11776 if (sym->attr.function)
11777 gsym->type = GSYM_FUNCTION;
11778 else if (sym->attr.subroutine)
11779 gsym->type = GSYM_SUBROUTINE;
11780 /* Mark as variable/procedure as defined, unless its an INTERFACE. */
11781 gsym->defined = sym->attr.if_source != IFSRC_IFBODY;
11782 return;
11785 if (sym->attr.flavor == FL_VARIABLE && gsym->type != GSYM_UNKNOWN)
11787 gfc_error ("Variable %qs with binding label %qs at %L uses the same global "
11788 "identifier as entity at %L", sym->name,
11789 sym->binding_label, &sym->declared_at, &gsym->where);
11790 /* Clear the binding label to prevent checking multiple times. */
11791 sym->binding_label = NULL;
11794 else if (sym->attr.flavor == FL_VARIABLE && module
11795 && (strcmp (module, gsym->mod_name) != 0
11796 || strcmp (sym->name, gsym->sym_name) != 0))
11798 /* This can only happen if the variable is defined in a module - if it
11799 isn't the same module, reject it. */
11800 gfc_error ("Variable %qs from module %qs with binding label %qs at %L "
11801 "uses the same global identifier as entity at %L from module %qs",
11802 sym->name, module, sym->binding_label,
11803 &sym->declared_at, &gsym->where, gsym->mod_name);
11804 sym->binding_label = NULL;
11806 else if ((sym->attr.function || sym->attr.subroutine)
11807 && ((gsym->type != GSYM_SUBROUTINE && gsym->type != GSYM_FUNCTION)
11808 || (gsym->defined && sym->attr.if_source != IFSRC_IFBODY))
11809 && sym != gsym->ns->proc_name
11810 && (module != gsym->mod_name
11811 || strcmp (gsym->sym_name, sym->name) != 0
11812 || (module && strcmp (module, gsym->mod_name) != 0)))
11814 /* Print an error if the procedure is defined multiple times; we have to
11815 exclude references to the same procedure via module association or
11816 multiple checks for the same procedure. */
11817 gfc_error ("Procedure %qs with binding label %qs at %L uses the same "
11818 "global identifier as entity at %L", sym->name,
11819 sym->binding_label, &sym->declared_at, &gsym->where);
11820 sym->binding_label = NULL;
11825 /* Resolve an index expression. */
11827 static bool
11828 resolve_index_expr (gfc_expr *e)
11830 if (!gfc_resolve_expr (e))
11831 return false;
11833 if (!gfc_simplify_expr (e, 0))
11834 return false;
11836 if (!gfc_specification_expr (e))
11837 return false;
11839 return true;
11843 /* Resolve a charlen structure. */
11845 static bool
11846 resolve_charlen (gfc_charlen *cl)
11848 int k;
11849 bool saved_specification_expr;
11851 if (cl->resolved)
11852 return true;
11854 cl->resolved = 1;
11855 saved_specification_expr = specification_expr;
11856 specification_expr = true;
11858 if (cl->length_from_typespec)
11860 if (!gfc_resolve_expr (cl->length))
11862 specification_expr = saved_specification_expr;
11863 return false;
11866 if (!gfc_simplify_expr (cl->length, 0))
11868 specification_expr = saved_specification_expr;
11869 return false;
11872 /* cl->length has been resolved. It should have an integer type. */
11873 if (cl->length->ts.type != BT_INTEGER)
11875 gfc_error ("Scalar INTEGER expression expected at %L",
11876 &cl->length->where);
11877 return false;
11880 else
11882 if (!resolve_index_expr (cl->length))
11884 specification_expr = saved_specification_expr;
11885 return false;
11889 /* F2008, 4.4.3.2: If the character length parameter value evaluates to
11890 a negative value, the length of character entities declared is zero. */
11891 if (cl->length && cl->length->expr_type == EXPR_CONSTANT
11892 && mpz_sgn (cl->length->value.integer) < 0)
11893 gfc_replace_expr (cl->length,
11894 gfc_get_int_expr (gfc_charlen_int_kind, NULL, 0));
11896 /* Check that the character length is not too large. */
11897 k = gfc_validate_kind (BT_INTEGER, gfc_charlen_int_kind, false);
11898 if (cl->length && cl->length->expr_type == EXPR_CONSTANT
11899 && cl->length->ts.type == BT_INTEGER
11900 && mpz_cmp (cl->length->value.integer, gfc_integer_kinds[k].huge) > 0)
11902 gfc_error ("String length at %L is too large", &cl->length->where);
11903 specification_expr = saved_specification_expr;
11904 return false;
11907 specification_expr = saved_specification_expr;
11908 return true;
11912 /* Test for non-constant shape arrays. */
11914 static bool
11915 is_non_constant_shape_array (gfc_symbol *sym)
11917 gfc_expr *e;
11918 int i;
11919 bool not_constant;
11921 not_constant = false;
11922 if (sym->as != NULL)
11924 /* Unfortunately, !gfc_is_compile_time_shape hits a legal case that
11925 has not been simplified; parameter array references. Do the
11926 simplification now. */
11927 for (i = 0; i < sym->as->rank + sym->as->corank; i++)
11929 e = sym->as->lower[i];
11930 if (e && (!resolve_index_expr(e)
11931 || !gfc_is_constant_expr (e)))
11932 not_constant = true;
11933 e = sym->as->upper[i];
11934 if (e && (!resolve_index_expr(e)
11935 || !gfc_is_constant_expr (e)))
11936 not_constant = true;
11939 return not_constant;
11942 /* Given a symbol and an initialization expression, add code to initialize
11943 the symbol to the function entry. */
11944 static void
11945 build_init_assign (gfc_symbol *sym, gfc_expr *init)
11947 gfc_expr *lval;
11948 gfc_code *init_st;
11949 gfc_namespace *ns = sym->ns;
11951 /* Search for the function namespace if this is a contained
11952 function without an explicit result. */
11953 if (sym->attr.function && sym == sym->result
11954 && sym->name != sym->ns->proc_name->name)
11956 ns = ns->contained;
11957 for (;ns; ns = ns->sibling)
11958 if (strcmp (ns->proc_name->name, sym->name) == 0)
11959 break;
11962 if (ns == NULL)
11964 gfc_free_expr (init);
11965 return;
11968 /* Build an l-value expression for the result. */
11969 lval = gfc_lval_expr_from_sym (sym);
11971 /* Add the code at scope entry. */
11972 init_st = gfc_get_code (EXEC_INIT_ASSIGN);
11973 init_st->next = ns->code;
11974 ns->code = init_st;
11976 /* Assign the default initializer to the l-value. */
11977 init_st->loc = sym->declared_at;
11978 init_st->expr1 = lval;
11979 init_st->expr2 = init;
11983 /* Whether or not we can generate a default initializer for a symbol. */
11985 static bool
11986 can_generate_init (gfc_symbol *sym)
11988 symbol_attribute *a;
11989 if (!sym)
11990 return false;
11991 a = &sym->attr;
11993 /* These symbols should never have a default initialization. */
11994 return !(
11995 a->allocatable
11996 || a->external
11997 || a->pointer
11998 || (sym->ts.type == BT_CLASS && CLASS_DATA (sym)
11999 && (CLASS_DATA (sym)->attr.class_pointer
12000 || CLASS_DATA (sym)->attr.proc_pointer))
12001 || a->in_equivalence
12002 || a->in_common
12003 || a->data
12004 || sym->module
12005 || a->cray_pointee
12006 || a->cray_pointer
12007 || sym->assoc
12008 || (!a->referenced && !a->result)
12009 || (a->dummy && a->intent != INTENT_OUT)
12010 || (a->function && sym != sym->result)
12015 /* Assign the default initializer to a derived type variable or result. */
12017 static void
12018 apply_default_init (gfc_symbol *sym)
12020 gfc_expr *init = NULL;
12022 if (sym->attr.flavor != FL_VARIABLE && !sym->attr.function)
12023 return;
12025 if (sym->ts.type == BT_DERIVED && sym->ts.u.derived)
12026 init = gfc_generate_initializer (&sym->ts, can_generate_init (sym));
12028 if (init == NULL && sym->ts.type != BT_CLASS)
12029 return;
12031 build_init_assign (sym, init);
12032 sym->attr.referenced = 1;
12036 /* Build an initializer for a local. Returns null if the symbol should not have
12037 a default initialization. */
12039 static gfc_expr *
12040 build_default_init_expr (gfc_symbol *sym)
12042 /* These symbols should never have a default initialization. */
12043 if (sym->attr.allocatable
12044 || sym->attr.external
12045 || sym->attr.dummy
12046 || sym->attr.pointer
12047 || sym->attr.in_equivalence
12048 || sym->attr.in_common
12049 || sym->attr.data
12050 || sym->module
12051 || sym->attr.cray_pointee
12052 || sym->attr.cray_pointer
12053 || sym->assoc)
12054 return NULL;
12056 /* Get the appropriate init expression. */
12057 return gfc_build_default_init_expr (&sym->ts, &sym->declared_at);
12060 /* Add an initialization expression to a local variable. */
12061 static void
12062 apply_default_init_local (gfc_symbol *sym)
12064 gfc_expr *init = NULL;
12066 /* The symbol should be a variable or a function return value. */
12067 if ((sym->attr.flavor != FL_VARIABLE && !sym->attr.function)
12068 || (sym->attr.function && sym->result != sym))
12069 return;
12071 /* Try to build the initializer expression. If we can't initialize
12072 this symbol, then init will be NULL. */
12073 init = build_default_init_expr (sym);
12074 if (init == NULL)
12075 return;
12077 /* For saved variables, we don't want to add an initializer at function
12078 entry, so we just add a static initializer. Note that automatic variables
12079 are stack allocated even with -fno-automatic; we have also to exclude
12080 result variable, which are also nonstatic. */
12081 if (!sym->attr.automatic
12082 && (sym->attr.save || sym->ns->save_all
12083 || (flag_max_stack_var_size == 0 && !sym->attr.result
12084 && (sym->ns->proc_name && !sym->ns->proc_name->attr.recursive)
12085 && (!sym->attr.dimension || !is_non_constant_shape_array (sym)))))
12087 /* Don't clobber an existing initializer! */
12088 gcc_assert (sym->value == NULL);
12089 sym->value = init;
12090 return;
12093 build_init_assign (sym, init);
12097 /* Resolution of common features of flavors variable and procedure. */
12099 static bool
12100 resolve_fl_var_and_proc (gfc_symbol *sym, int mp_flag)
12102 gfc_array_spec *as;
12104 if (sym->ts.type == BT_CLASS && sym->attr.class_ok)
12105 as = CLASS_DATA (sym)->as;
12106 else
12107 as = sym->as;
12109 /* Constraints on deferred shape variable. */
12110 if (as == NULL || as->type != AS_DEFERRED)
12112 bool pointer, allocatable, dimension;
12114 if (sym->ts.type == BT_CLASS && sym->attr.class_ok)
12116 pointer = CLASS_DATA (sym)->attr.class_pointer;
12117 allocatable = CLASS_DATA (sym)->attr.allocatable;
12118 dimension = CLASS_DATA (sym)->attr.dimension;
12120 else
12122 pointer = sym->attr.pointer && !sym->attr.select_type_temporary;
12123 allocatable = sym->attr.allocatable;
12124 dimension = sym->attr.dimension;
12127 if (allocatable)
12129 if (dimension && as->type != AS_ASSUMED_RANK)
12131 gfc_error ("Allocatable array %qs at %L must have a deferred "
12132 "shape or assumed rank", sym->name, &sym->declared_at);
12133 return false;
12135 else if (!gfc_notify_std (GFC_STD_F2003, "Scalar object "
12136 "%qs at %L may not be ALLOCATABLE",
12137 sym->name, &sym->declared_at))
12138 return false;
12141 if (pointer && dimension && as->type != AS_ASSUMED_RANK)
12143 gfc_error ("Array pointer %qs at %L must have a deferred shape or "
12144 "assumed rank", sym->name, &sym->declared_at);
12145 return false;
12148 else
12150 if (!mp_flag && !sym->attr.allocatable && !sym->attr.pointer
12151 && sym->ts.type != BT_CLASS && !sym->assoc)
12153 gfc_error ("Array %qs at %L cannot have a deferred shape",
12154 sym->name, &sym->declared_at);
12155 return false;
12159 /* Constraints on polymorphic variables. */
12160 if (sym->ts.type == BT_CLASS && !(sym->result && sym->result != sym))
12162 /* F03:C502. */
12163 if (sym->attr.class_ok
12164 && !sym->attr.select_type_temporary
12165 && !UNLIMITED_POLY (sym)
12166 && !gfc_type_is_extensible (CLASS_DATA (sym)->ts.u.derived))
12168 gfc_error ("Type %qs of CLASS variable %qs at %L is not extensible",
12169 CLASS_DATA (sym)->ts.u.derived->name, sym->name,
12170 &sym->declared_at);
12171 return false;
12174 /* F03:C509. */
12175 /* Assume that use associated symbols were checked in the module ns.
12176 Class-variables that are associate-names are also something special
12177 and excepted from the test. */
12178 if (!sym->attr.class_ok && !sym->attr.use_assoc && !sym->assoc)
12180 gfc_error ("CLASS variable %qs at %L must be dummy, allocatable "
12181 "or pointer", sym->name, &sym->declared_at);
12182 return false;
12186 return true;
12190 /* Additional checks for symbols with flavor variable and derived
12191 type. To be called from resolve_fl_variable. */
12193 static bool
12194 resolve_fl_variable_derived (gfc_symbol *sym, int no_init_flag)
12196 gcc_assert (sym->ts.type == BT_DERIVED || sym->ts.type == BT_CLASS);
12198 /* Check to see if a derived type is blocked from being host
12199 associated by the presence of another class I symbol in the same
12200 namespace. 14.6.1.3 of the standard and the discussion on
12201 comp.lang.fortran. */
12202 if (sym->ns != sym->ts.u.derived->ns
12203 && !sym->ts.u.derived->attr.use_assoc
12204 && sym->ns->proc_name->attr.if_source != IFSRC_IFBODY)
12206 gfc_symbol *s;
12207 gfc_find_symbol (sym->ts.u.derived->name, sym->ns, 0, &s);
12208 if (s && s->attr.generic)
12209 s = gfc_find_dt_in_generic (s);
12210 if (s && !gfc_fl_struct (s->attr.flavor))
12212 gfc_error ("The type %qs cannot be host associated at %L "
12213 "because it is blocked by an incompatible object "
12214 "of the same name declared at %L",
12215 sym->ts.u.derived->name, &sym->declared_at,
12216 &s->declared_at);
12217 return false;
12221 /* 4th constraint in section 11.3: "If an object of a type for which
12222 component-initialization is specified (R429) appears in the
12223 specification-part of a module and does not have the ALLOCATABLE
12224 or POINTER attribute, the object shall have the SAVE attribute."
12226 The check for initializers is performed with
12227 gfc_has_default_initializer because gfc_default_initializer generates
12228 a hidden default for allocatable components. */
12229 if (!(sym->value || no_init_flag) && sym->ns->proc_name
12230 && sym->ns->proc_name->attr.flavor == FL_MODULE
12231 && !(sym->ns->save_all && !sym->attr.automatic) && !sym->attr.save
12232 && !sym->attr.pointer && !sym->attr.allocatable
12233 && gfc_has_default_initializer (sym->ts.u.derived)
12234 && !gfc_notify_std (GFC_STD_F2008, "Implied SAVE for module variable "
12235 "%qs at %L, needed due to the default "
12236 "initialization", sym->name, &sym->declared_at))
12237 return false;
12239 /* Assign default initializer. */
12240 if (!(sym->value || sym->attr.pointer || sym->attr.allocatable)
12241 && (!no_init_flag || sym->attr.intent == INTENT_OUT))
12242 sym->value = gfc_generate_initializer (&sym->ts, can_generate_init (sym));
12244 return true;
12248 /* F2008, C402 (R401): A colon shall not be used as a type-param-value
12249 except in the declaration of an entity or component that has the POINTER
12250 or ALLOCATABLE attribute. */
12252 static bool
12253 deferred_requirements (gfc_symbol *sym)
12255 if (sym->ts.deferred
12256 && !(sym->attr.pointer
12257 || sym->attr.allocatable
12258 || sym->attr.associate_var
12259 || sym->attr.omp_udr_artificial_var))
12261 gfc_error ("Entity %qs at %L has a deferred type parameter and "
12262 "requires either the POINTER or ALLOCATABLE attribute",
12263 sym->name, &sym->declared_at);
12264 return false;
12266 return true;
12270 /* Resolve symbols with flavor variable. */
12272 static bool
12273 resolve_fl_variable (gfc_symbol *sym, int mp_flag)
12275 int no_init_flag, automatic_flag;
12276 gfc_expr *e;
12277 const char *auto_save_msg;
12278 bool saved_specification_expr;
12280 auto_save_msg = "Automatic object %qs at %L cannot have the "
12281 "SAVE attribute";
12283 if (!resolve_fl_var_and_proc (sym, mp_flag))
12284 return false;
12286 /* Set this flag to check that variables are parameters of all entries.
12287 This check is effected by the call to gfc_resolve_expr through
12288 is_non_constant_shape_array. */
12289 saved_specification_expr = specification_expr;
12290 specification_expr = true;
12292 if (sym->ns->proc_name
12293 && (sym->ns->proc_name->attr.flavor == FL_MODULE
12294 || sym->ns->proc_name->attr.is_main_program)
12295 && !sym->attr.use_assoc
12296 && !sym->attr.allocatable
12297 && !sym->attr.pointer
12298 && is_non_constant_shape_array (sym))
12300 /* F08:C541. The shape of an array defined in a main program or module
12301 * needs to be constant. */
12302 gfc_error ("The module or main program array %qs at %L must "
12303 "have constant shape", sym->name, &sym->declared_at);
12304 specification_expr = saved_specification_expr;
12305 return false;
12308 /* Constraints on deferred type parameter. */
12309 if (!deferred_requirements (sym))
12310 return false;
12312 if (sym->ts.type == BT_CHARACTER && !sym->attr.associate_var)
12314 /* Make sure that character string variables with assumed length are
12315 dummy arguments. */
12316 e = sym->ts.u.cl->length;
12317 if (e == NULL && !sym->attr.dummy && !sym->attr.result
12318 && !sym->ts.deferred && !sym->attr.select_type_temporary
12319 && !sym->attr.omp_udr_artificial_var)
12321 gfc_error ("Entity with assumed character length at %L must be a "
12322 "dummy argument or a PARAMETER", &sym->declared_at);
12323 specification_expr = saved_specification_expr;
12324 return false;
12327 if (e && sym->attr.save == SAVE_EXPLICIT && !gfc_is_constant_expr (e))
12329 gfc_error (auto_save_msg, sym->name, &sym->declared_at);
12330 specification_expr = saved_specification_expr;
12331 return false;
12334 if (!gfc_is_constant_expr (e)
12335 && !(e->expr_type == EXPR_VARIABLE
12336 && e->symtree->n.sym->attr.flavor == FL_PARAMETER))
12338 if (!sym->attr.use_assoc && sym->ns->proc_name
12339 && (sym->ns->proc_name->attr.flavor == FL_MODULE
12340 || sym->ns->proc_name->attr.is_main_program))
12342 gfc_error ("%qs at %L must have constant character length "
12343 "in this context", sym->name, &sym->declared_at);
12344 specification_expr = saved_specification_expr;
12345 return false;
12347 if (sym->attr.in_common)
12349 gfc_error ("COMMON variable %qs at %L must have constant "
12350 "character length", sym->name, &sym->declared_at);
12351 specification_expr = saved_specification_expr;
12352 return false;
12357 if (sym->value == NULL && sym->attr.referenced)
12358 apply_default_init_local (sym); /* Try to apply a default initialization. */
12360 /* Determine if the symbol may not have an initializer. */
12361 no_init_flag = automatic_flag = 0;
12362 if (sym->attr.allocatable || sym->attr.external || sym->attr.dummy
12363 || sym->attr.intrinsic || sym->attr.result)
12364 no_init_flag = 1;
12365 else if ((sym->attr.dimension || sym->attr.codimension) && !sym->attr.pointer
12366 && is_non_constant_shape_array (sym))
12368 no_init_flag = automatic_flag = 1;
12370 /* Also, they must not have the SAVE attribute.
12371 SAVE_IMPLICIT is checked below. */
12372 if (sym->as && sym->attr.codimension)
12374 int corank = sym->as->corank;
12375 sym->as->corank = 0;
12376 no_init_flag = automatic_flag = is_non_constant_shape_array (sym);
12377 sym->as->corank = corank;
12379 if (automatic_flag && sym->attr.save == SAVE_EXPLICIT)
12381 gfc_error (auto_save_msg, sym->name, &sym->declared_at);
12382 specification_expr = saved_specification_expr;
12383 return false;
12387 /* Ensure that any initializer is simplified. */
12388 if (sym->value)
12389 gfc_simplify_expr (sym->value, 1);
12391 /* Reject illegal initializers. */
12392 if (!sym->mark && sym->value)
12394 if (sym->attr.allocatable || (sym->ts.type == BT_CLASS
12395 && CLASS_DATA (sym)->attr.allocatable))
12396 gfc_error ("Allocatable %qs at %L cannot have an initializer",
12397 sym->name, &sym->declared_at);
12398 else if (sym->attr.external)
12399 gfc_error ("External %qs at %L cannot have an initializer",
12400 sym->name, &sym->declared_at);
12401 else if (sym->attr.dummy
12402 && !(sym->ts.type == BT_DERIVED && sym->attr.intent == INTENT_OUT))
12403 gfc_error ("Dummy %qs at %L cannot have an initializer",
12404 sym->name, &sym->declared_at);
12405 else if (sym->attr.intrinsic)
12406 gfc_error ("Intrinsic %qs at %L cannot have an initializer",
12407 sym->name, &sym->declared_at);
12408 else if (sym->attr.result)
12409 gfc_error ("Function result %qs at %L cannot have an initializer",
12410 sym->name, &sym->declared_at);
12411 else if (automatic_flag)
12412 gfc_error ("Automatic array %qs at %L cannot have an initializer",
12413 sym->name, &sym->declared_at);
12414 else
12415 goto no_init_error;
12416 specification_expr = saved_specification_expr;
12417 return false;
12420 no_init_error:
12421 if (sym->ts.type == BT_DERIVED || sym->ts.type == BT_CLASS)
12423 bool res = resolve_fl_variable_derived (sym, no_init_flag);
12424 specification_expr = saved_specification_expr;
12425 return res;
12428 specification_expr = saved_specification_expr;
12429 return true;
12433 /* Compare the dummy characteristics of a module procedure interface
12434 declaration with the corresponding declaration in a submodule. */
12435 static gfc_formal_arglist *new_formal;
12436 static char errmsg[200];
12438 static void
12439 compare_fsyms (gfc_symbol *sym)
12441 gfc_symbol *fsym;
12443 if (sym == NULL || new_formal == NULL)
12444 return;
12446 fsym = new_formal->sym;
12448 if (sym == fsym)
12449 return;
12451 if (strcmp (sym->name, fsym->name) == 0)
12453 if (!gfc_check_dummy_characteristics (fsym, sym, true, errmsg, 200))
12454 gfc_error ("%s at %L", errmsg, &fsym->declared_at);
12459 /* Resolve a procedure. */
12461 static bool
12462 resolve_fl_procedure (gfc_symbol *sym, int mp_flag)
12464 gfc_formal_arglist *arg;
12466 if (sym->attr.function
12467 && !resolve_fl_var_and_proc (sym, mp_flag))
12468 return false;
12470 if (sym->ts.type == BT_CHARACTER)
12472 gfc_charlen *cl = sym->ts.u.cl;
12474 if (cl && cl->length && gfc_is_constant_expr (cl->length)
12475 && !resolve_charlen (cl))
12476 return false;
12478 if ((!cl || !cl->length || cl->length->expr_type != EXPR_CONSTANT)
12479 && sym->attr.proc == PROC_ST_FUNCTION)
12481 gfc_error ("Character-valued statement function %qs at %L must "
12482 "have constant length", sym->name, &sym->declared_at);
12483 return false;
12487 /* Ensure that derived type for are not of a private type. Internal
12488 module procedures are excluded by 2.2.3.3 - i.e., they are not
12489 externally accessible and can access all the objects accessible in
12490 the host. */
12491 if (!(sym->ns->parent
12492 && sym->ns->parent->proc_name->attr.flavor == FL_MODULE)
12493 && gfc_check_symbol_access (sym))
12495 gfc_interface *iface;
12497 for (arg = gfc_sym_get_dummy_args (sym); arg; arg = arg->next)
12499 if (arg->sym
12500 && arg->sym->ts.type == BT_DERIVED
12501 && !arg->sym->ts.u.derived->attr.use_assoc
12502 && !gfc_check_symbol_access (arg->sym->ts.u.derived)
12503 && !gfc_notify_std (GFC_STD_F2003, "%qs is of a PRIVATE type "
12504 "and cannot be a dummy argument"
12505 " of %qs, which is PUBLIC at %L",
12506 arg->sym->name, sym->name,
12507 &sym->declared_at))
12509 /* Stop this message from recurring. */
12510 arg->sym->ts.u.derived->attr.access = ACCESS_PUBLIC;
12511 return false;
12515 /* PUBLIC interfaces may expose PRIVATE procedures that take types
12516 PRIVATE to the containing module. */
12517 for (iface = sym->generic; iface; iface = iface->next)
12519 for (arg = gfc_sym_get_dummy_args (iface->sym); arg; arg = arg->next)
12521 if (arg->sym
12522 && arg->sym->ts.type == BT_DERIVED
12523 && !arg->sym->ts.u.derived->attr.use_assoc
12524 && !gfc_check_symbol_access (arg->sym->ts.u.derived)
12525 && !gfc_notify_std (GFC_STD_F2003, "Procedure %qs in "
12526 "PUBLIC interface %qs at %L "
12527 "takes dummy arguments of %qs which "
12528 "is PRIVATE", iface->sym->name,
12529 sym->name, &iface->sym->declared_at,
12530 gfc_typename(&arg->sym->ts)))
12532 /* Stop this message from recurring. */
12533 arg->sym->ts.u.derived->attr.access = ACCESS_PUBLIC;
12534 return false;
12540 if (sym->attr.function && sym->value && sym->attr.proc != PROC_ST_FUNCTION
12541 && !sym->attr.proc_pointer)
12543 gfc_error ("Function %qs at %L cannot have an initializer",
12544 sym->name, &sym->declared_at);
12546 /* Make sure no second error is issued for this. */
12547 sym->value->error = 1;
12548 return false;
12551 /* An external symbol may not have an initializer because it is taken to be
12552 a procedure. Exception: Procedure Pointers. */
12553 if (sym->attr.external && sym->value && !sym->attr.proc_pointer)
12555 gfc_error ("External object %qs at %L may not have an initializer",
12556 sym->name, &sym->declared_at);
12557 return false;
12560 /* An elemental function is required to return a scalar 12.7.1 */
12561 if (sym->attr.elemental && sym->attr.function
12562 && (sym->as || (sym->ts.type == BT_CLASS && CLASS_DATA (sym)->as)))
12564 gfc_error ("ELEMENTAL function %qs at %L must have a scalar "
12565 "result", sym->name, &sym->declared_at);
12566 /* Reset so that the error only occurs once. */
12567 sym->attr.elemental = 0;
12568 return false;
12571 if (sym->attr.proc == PROC_ST_FUNCTION
12572 && (sym->attr.allocatable || sym->attr.pointer))
12574 gfc_error ("Statement function %qs at %L may not have pointer or "
12575 "allocatable attribute", sym->name, &sym->declared_at);
12576 return false;
12579 /* 5.1.1.5 of the Standard: A function name declared with an asterisk
12580 char-len-param shall not be array-valued, pointer-valued, recursive
12581 or pure. ....snip... A character value of * may only be used in the
12582 following ways: (i) Dummy arg of procedure - dummy associates with
12583 actual length; (ii) To declare a named constant; or (iii) External
12584 function - but length must be declared in calling scoping unit. */
12585 if (sym->attr.function
12586 && sym->ts.type == BT_CHARACTER && !sym->ts.deferred
12587 && sym->ts.u.cl && sym->ts.u.cl->length == NULL)
12589 if ((sym->as && sym->as->rank) || (sym->attr.pointer)
12590 || (sym->attr.recursive) || (sym->attr.pure))
12592 if (sym->as && sym->as->rank)
12593 gfc_error ("CHARACTER(*) function %qs at %L cannot be "
12594 "array-valued", sym->name, &sym->declared_at);
12596 if (sym->attr.pointer)
12597 gfc_error ("CHARACTER(*) function %qs at %L cannot be "
12598 "pointer-valued", sym->name, &sym->declared_at);
12600 if (sym->attr.pure)
12601 gfc_error ("CHARACTER(*) function %qs at %L cannot be "
12602 "pure", sym->name, &sym->declared_at);
12604 if (sym->attr.recursive)
12605 gfc_error ("CHARACTER(*) function %qs at %L cannot be "
12606 "recursive", sym->name, &sym->declared_at);
12608 return false;
12611 /* Appendix B.2 of the standard. Contained functions give an
12612 error anyway. Deferred character length is an F2003 feature.
12613 Don't warn on intrinsic conversion functions, which start
12614 with two underscores. */
12615 if (!sym->attr.contained && !sym->ts.deferred
12616 && (sym->name[0] != '_' || sym->name[1] != '_'))
12617 gfc_notify_std (GFC_STD_F95_OBS,
12618 "CHARACTER(*) function %qs at %L",
12619 sym->name, &sym->declared_at);
12622 /* F2008, C1218. */
12623 if (sym->attr.elemental)
12625 if (sym->attr.proc_pointer)
12627 gfc_error ("Procedure pointer %qs at %L shall not be elemental",
12628 sym->name, &sym->declared_at);
12629 return false;
12631 if (sym->attr.dummy)
12633 gfc_error ("Dummy procedure %qs at %L shall not be elemental",
12634 sym->name, &sym->declared_at);
12635 return false;
12639 /* F2018, C15100: "The result of an elemental function shall be scalar,
12640 and shall not have the POINTER or ALLOCATABLE attribute." The scalar
12641 pointer is tested and caught elsewhere. */
12642 if (sym->attr.elemental && sym->result
12643 && (sym->result->attr.allocatable || sym->result->attr.pointer))
12645 gfc_error ("Function result variable %qs at %L of elemental "
12646 "function %qs shall not have an ALLOCATABLE or POINTER "
12647 "attribute", sym->result->name,
12648 &sym->result->declared_at, sym->name);
12649 return false;
12652 if (sym->attr.is_bind_c && sym->attr.is_c_interop != 1)
12654 gfc_formal_arglist *curr_arg;
12655 int has_non_interop_arg = 0;
12657 if (!verify_bind_c_sym (sym, &(sym->ts), sym->attr.in_common,
12658 sym->common_block))
12660 /* Clear these to prevent looking at them again if there was an
12661 error. */
12662 sym->attr.is_bind_c = 0;
12663 sym->attr.is_c_interop = 0;
12664 sym->ts.is_c_interop = 0;
12666 else
12668 /* So far, no errors have been found. */
12669 sym->attr.is_c_interop = 1;
12670 sym->ts.is_c_interop = 1;
12673 curr_arg = gfc_sym_get_dummy_args (sym);
12674 while (curr_arg != NULL)
12676 /* Skip implicitly typed dummy args here. */
12677 if (curr_arg->sym && curr_arg->sym->attr.implicit_type == 0)
12678 if (!gfc_verify_c_interop_param (curr_arg->sym))
12679 /* If something is found to fail, record the fact so we
12680 can mark the symbol for the procedure as not being
12681 BIND(C) to try and prevent multiple errors being
12682 reported. */
12683 has_non_interop_arg = 1;
12685 curr_arg = curr_arg->next;
12688 /* See if any of the arguments were not interoperable and if so, clear
12689 the procedure symbol to prevent duplicate error messages. */
12690 if (has_non_interop_arg != 0)
12692 sym->attr.is_c_interop = 0;
12693 sym->ts.is_c_interop = 0;
12694 sym->attr.is_bind_c = 0;
12698 if (!sym->attr.proc_pointer)
12700 if (sym->attr.save == SAVE_EXPLICIT)
12702 gfc_error ("PROCEDURE attribute conflicts with SAVE attribute "
12703 "in %qs at %L", sym->name, &sym->declared_at);
12704 return false;
12706 if (sym->attr.intent)
12708 gfc_error ("PROCEDURE attribute conflicts with INTENT attribute "
12709 "in %qs at %L", sym->name, &sym->declared_at);
12710 return false;
12712 if (sym->attr.subroutine && sym->attr.result)
12714 gfc_error ("PROCEDURE attribute conflicts with RESULT attribute "
12715 "in %qs at %L", sym->name, &sym->declared_at);
12716 return false;
12718 if (sym->attr.external && sym->attr.function && !sym->attr.module_procedure
12719 && ((sym->attr.if_source == IFSRC_DECL && !sym->attr.procedure)
12720 || sym->attr.contained))
12722 gfc_error ("EXTERNAL attribute conflicts with FUNCTION attribute "
12723 "in %qs at %L", sym->name, &sym->declared_at);
12724 return false;
12726 if (strcmp ("ppr@", sym->name) == 0)
12728 gfc_error ("Procedure pointer result %qs at %L "
12729 "is missing the pointer attribute",
12730 sym->ns->proc_name->name, &sym->declared_at);
12731 return false;
12735 /* Assume that a procedure whose body is not known has references
12736 to external arrays. */
12737 if (sym->attr.if_source != IFSRC_DECL)
12738 sym->attr.array_outer_dependency = 1;
12740 /* Compare the characteristics of a module procedure with the
12741 interface declaration. Ideally this would be done with
12742 gfc_compare_interfaces but, at present, the formal interface
12743 cannot be copied to the ts.interface. */
12744 if (sym->attr.module_procedure
12745 && sym->attr.if_source == IFSRC_DECL)
12747 gfc_symbol *iface;
12748 char name[2*GFC_MAX_SYMBOL_LEN + 1];
12749 char *module_name;
12750 char *submodule_name;
12751 strcpy (name, sym->ns->proc_name->name);
12752 module_name = strtok (name, ".");
12753 submodule_name = strtok (NULL, ".");
12755 iface = sym->tlink;
12756 sym->tlink = NULL;
12758 /* Make sure that the result uses the correct charlen for deferred
12759 length results. */
12760 if (iface && sym->result
12761 && iface->ts.type == BT_CHARACTER
12762 && iface->ts.deferred)
12763 sym->result->ts.u.cl = iface->ts.u.cl;
12765 if (iface == NULL)
12766 goto check_formal;
12768 /* Check the procedure characteristics. */
12769 if (sym->attr.elemental != iface->attr.elemental)
12771 gfc_error ("Mismatch in ELEMENTAL attribute between MODULE "
12772 "PROCEDURE at %L and its interface in %s",
12773 &sym->declared_at, module_name);
12774 return false;
12777 if (sym->attr.pure != iface->attr.pure)
12779 gfc_error ("Mismatch in PURE attribute between MODULE "
12780 "PROCEDURE at %L and its interface in %s",
12781 &sym->declared_at, module_name);
12782 return false;
12785 if (sym->attr.recursive != iface->attr.recursive)
12787 gfc_error ("Mismatch in RECURSIVE attribute between MODULE "
12788 "PROCEDURE at %L and its interface in %s",
12789 &sym->declared_at, module_name);
12790 return false;
12793 /* Check the result characteristics. */
12794 if (!gfc_check_result_characteristics (sym, iface, errmsg, 200))
12796 gfc_error ("%s between the MODULE PROCEDURE declaration "
12797 "in MODULE %qs and the declaration at %L in "
12798 "(SUB)MODULE %qs",
12799 errmsg, module_name, &sym->declared_at,
12800 submodule_name ? submodule_name : module_name);
12801 return false;
12804 check_formal:
12805 /* Check the characteristics of the formal arguments. */
12806 if (sym->formal && sym->formal_ns)
12808 for (arg = sym->formal; arg && arg->sym; arg = arg->next)
12810 new_formal = arg;
12811 gfc_traverse_ns (sym->formal_ns, compare_fsyms);
12815 return true;
12819 /* Resolve a list of finalizer procedures. That is, after they have hopefully
12820 been defined and we now know their defined arguments, check that they fulfill
12821 the requirements of the standard for procedures used as finalizers. */
12823 static bool
12824 gfc_resolve_finalizers (gfc_symbol* derived, bool *finalizable)
12826 gfc_finalizer* list;
12827 gfc_finalizer** prev_link; /* For removing wrong entries from the list. */
12828 bool result = true;
12829 bool seen_scalar = false;
12830 gfc_symbol *vtab;
12831 gfc_component *c;
12832 gfc_symbol *parent = gfc_get_derived_super_type (derived);
12834 if (parent)
12835 gfc_resolve_finalizers (parent, finalizable);
12837 /* Ensure that derived-type components have a their finalizers resolved. */
12838 bool has_final = derived->f2k_derived && derived->f2k_derived->finalizers;
12839 for (c = derived->components; c; c = c->next)
12840 if (c->ts.type == BT_DERIVED
12841 && !c->attr.pointer && !c->attr.proc_pointer && !c->attr.allocatable)
12843 bool has_final2 = false;
12844 if (!gfc_resolve_finalizers (c->ts.u.derived, &has_final2))
12845 return false; /* Error. */
12846 has_final = has_final || has_final2;
12848 /* Return early if not finalizable. */
12849 if (!has_final)
12851 if (finalizable)
12852 *finalizable = false;
12853 return true;
12856 /* Walk over the list of finalizer-procedures, check them, and if any one
12857 does not fit in with the standard's definition, print an error and remove
12858 it from the list. */
12859 prev_link = &derived->f2k_derived->finalizers;
12860 for (list = derived->f2k_derived->finalizers; list; list = *prev_link)
12862 gfc_formal_arglist *dummy_args;
12863 gfc_symbol* arg;
12864 gfc_finalizer* i;
12865 int my_rank;
12867 /* Skip this finalizer if we already resolved it. */
12868 if (list->proc_tree)
12870 if (list->proc_tree->n.sym->formal->sym->as == NULL
12871 || list->proc_tree->n.sym->formal->sym->as->rank == 0)
12872 seen_scalar = true;
12873 prev_link = &(list->next);
12874 continue;
12877 /* Check this exists and is a SUBROUTINE. */
12878 if (!list->proc_sym->attr.subroutine)
12880 gfc_error ("FINAL procedure %qs at %L is not a SUBROUTINE",
12881 list->proc_sym->name, &list->where);
12882 goto error;
12885 /* We should have exactly one argument. */
12886 dummy_args = gfc_sym_get_dummy_args (list->proc_sym);
12887 if (!dummy_args || dummy_args->next)
12889 gfc_error ("FINAL procedure at %L must have exactly one argument",
12890 &list->where);
12891 goto error;
12893 arg = dummy_args->sym;
12895 /* This argument must be of our type. */
12896 if (arg->ts.type != BT_DERIVED || arg->ts.u.derived != derived)
12898 gfc_error ("Argument of FINAL procedure at %L must be of type %qs",
12899 &arg->declared_at, derived->name);
12900 goto error;
12903 /* It must neither be a pointer nor allocatable nor optional. */
12904 if (arg->attr.pointer)
12906 gfc_error ("Argument of FINAL procedure at %L must not be a POINTER",
12907 &arg->declared_at);
12908 goto error;
12910 if (arg->attr.allocatable)
12912 gfc_error ("Argument of FINAL procedure at %L must not be"
12913 " ALLOCATABLE", &arg->declared_at);
12914 goto error;
12916 if (arg->attr.optional)
12918 gfc_error ("Argument of FINAL procedure at %L must not be OPTIONAL",
12919 &arg->declared_at);
12920 goto error;
12923 /* It must not be INTENT(OUT). */
12924 if (arg->attr.intent == INTENT_OUT)
12926 gfc_error ("Argument of FINAL procedure at %L must not be"
12927 " INTENT(OUT)", &arg->declared_at);
12928 goto error;
12931 /* Warn if the procedure is non-scalar and not assumed shape. */
12932 if (warn_surprising && arg->as && arg->as->rank != 0
12933 && arg->as->type != AS_ASSUMED_SHAPE)
12934 gfc_warning (OPT_Wsurprising,
12935 "Non-scalar FINAL procedure at %L should have assumed"
12936 " shape argument", &arg->declared_at);
12938 /* Check that it does not match in kind and rank with a FINAL procedure
12939 defined earlier. To really loop over the *earlier* declarations,
12940 we need to walk the tail of the list as new ones were pushed at the
12941 front. */
12942 /* TODO: Handle kind parameters once they are implemented. */
12943 my_rank = (arg->as ? arg->as->rank : 0);
12944 for (i = list->next; i; i = i->next)
12946 gfc_formal_arglist *dummy_args;
12948 /* Argument list might be empty; that is an error signalled earlier,
12949 but we nevertheless continued resolving. */
12950 dummy_args = gfc_sym_get_dummy_args (i->proc_sym);
12951 if (dummy_args)
12953 gfc_symbol* i_arg = dummy_args->sym;
12954 const int i_rank = (i_arg->as ? i_arg->as->rank : 0);
12955 if (i_rank == my_rank)
12957 gfc_error ("FINAL procedure %qs declared at %L has the same"
12958 " rank (%d) as %qs",
12959 list->proc_sym->name, &list->where, my_rank,
12960 i->proc_sym->name);
12961 goto error;
12966 /* Is this the/a scalar finalizer procedure? */
12967 if (my_rank == 0)
12968 seen_scalar = true;
12970 /* Find the symtree for this procedure. */
12971 gcc_assert (!list->proc_tree);
12972 list->proc_tree = gfc_find_sym_in_symtree (list->proc_sym);
12974 prev_link = &list->next;
12975 continue;
12977 /* Remove wrong nodes immediately from the list so we don't risk any
12978 troubles in the future when they might fail later expectations. */
12979 error:
12980 i = list;
12981 *prev_link = list->next;
12982 gfc_free_finalizer (i);
12983 result = false;
12986 if (result == false)
12987 return false;
12989 /* Warn if we haven't seen a scalar finalizer procedure (but we know there
12990 were nodes in the list, must have been for arrays. It is surely a good
12991 idea to have a scalar version there if there's something to finalize. */
12992 if (warn_surprising && derived->f2k_derived->finalizers && !seen_scalar)
12993 gfc_warning (OPT_Wsurprising,
12994 "Only array FINAL procedures declared for derived type %qs"
12995 " defined at %L, suggest also scalar one",
12996 derived->name, &derived->declared_at);
12998 vtab = gfc_find_derived_vtab (derived);
12999 c = vtab->ts.u.derived->components->next->next->next->next->next;
13000 gfc_set_sym_referenced (c->initializer->symtree->n.sym);
13002 if (finalizable)
13003 *finalizable = true;
13005 return true;
13009 /* Check if two GENERIC targets are ambiguous and emit an error is they are. */
13011 static bool
13012 check_generic_tbp_ambiguity (gfc_tbp_generic* t1, gfc_tbp_generic* t2,
13013 const char* generic_name, locus where)
13015 gfc_symbol *sym1, *sym2;
13016 const char *pass1, *pass2;
13017 gfc_formal_arglist *dummy_args;
13019 gcc_assert (t1->specific && t2->specific);
13020 gcc_assert (!t1->specific->is_generic);
13021 gcc_assert (!t2->specific->is_generic);
13022 gcc_assert (t1->is_operator == t2->is_operator);
13024 sym1 = t1->specific->u.specific->n.sym;
13025 sym2 = t2->specific->u.specific->n.sym;
13027 if (sym1 == sym2)
13028 return true;
13030 /* Both must be SUBROUTINEs or both must be FUNCTIONs. */
13031 if (sym1->attr.subroutine != sym2->attr.subroutine
13032 || sym1->attr.function != sym2->attr.function)
13034 gfc_error ("%qs and %qs can't be mixed FUNCTION/SUBROUTINE for"
13035 " GENERIC %qs at %L",
13036 sym1->name, sym2->name, generic_name, &where);
13037 return false;
13040 /* Determine PASS arguments. */
13041 if (t1->specific->nopass)
13042 pass1 = NULL;
13043 else if (t1->specific->pass_arg)
13044 pass1 = t1->specific->pass_arg;
13045 else
13047 dummy_args = gfc_sym_get_dummy_args (t1->specific->u.specific->n.sym);
13048 if (dummy_args)
13049 pass1 = dummy_args->sym->name;
13050 else
13051 pass1 = NULL;
13053 if (t2->specific->nopass)
13054 pass2 = NULL;
13055 else if (t2->specific->pass_arg)
13056 pass2 = t2->specific->pass_arg;
13057 else
13059 dummy_args = gfc_sym_get_dummy_args (t2->specific->u.specific->n.sym);
13060 if (dummy_args)
13061 pass2 = dummy_args->sym->name;
13062 else
13063 pass2 = NULL;
13066 /* Compare the interfaces. */
13067 if (gfc_compare_interfaces (sym1, sym2, sym2->name, !t1->is_operator, 0,
13068 NULL, 0, pass1, pass2))
13070 gfc_error ("%qs and %qs for GENERIC %qs at %L are ambiguous",
13071 sym1->name, sym2->name, generic_name, &where);
13072 return false;
13075 return true;
13079 /* Worker function for resolving a generic procedure binding; this is used to
13080 resolve GENERIC as well as user and intrinsic OPERATOR typebound procedures.
13082 The difference between those cases is finding possible inherited bindings
13083 that are overridden, as one has to look for them in tb_sym_root,
13084 tb_uop_root or tb_op, respectively. Thus the caller must already find
13085 the super-type and set p->overridden correctly. */
13087 static bool
13088 resolve_tb_generic_targets (gfc_symbol* super_type,
13089 gfc_typebound_proc* p, const char* name)
13091 gfc_tbp_generic* target;
13092 gfc_symtree* first_target;
13093 gfc_symtree* inherited;
13095 gcc_assert (p && p->is_generic);
13097 /* Try to find the specific bindings for the symtrees in our target-list. */
13098 gcc_assert (p->u.generic);
13099 for (target = p->u.generic; target; target = target->next)
13100 if (!target->specific)
13102 gfc_typebound_proc* overridden_tbp;
13103 gfc_tbp_generic* g;
13104 const char* target_name;
13106 target_name = target->specific_st->name;
13108 /* Defined for this type directly. */
13109 if (target->specific_st->n.tb && !target->specific_st->n.tb->error)
13111 target->specific = target->specific_st->n.tb;
13112 goto specific_found;
13115 /* Look for an inherited specific binding. */
13116 if (super_type)
13118 inherited = gfc_find_typebound_proc (super_type, NULL, target_name,
13119 true, NULL);
13121 if (inherited)
13123 gcc_assert (inherited->n.tb);
13124 target->specific = inherited->n.tb;
13125 goto specific_found;
13129 gfc_error ("Undefined specific binding %qs as target of GENERIC %qs"
13130 " at %L", target_name, name, &p->where);
13131 return false;
13133 /* Once we've found the specific binding, check it is not ambiguous with
13134 other specifics already found or inherited for the same GENERIC. */
13135 specific_found:
13136 gcc_assert (target->specific);
13138 /* This must really be a specific binding! */
13139 if (target->specific->is_generic)
13141 gfc_error ("GENERIC %qs at %L must target a specific binding,"
13142 " %qs is GENERIC, too", name, &p->where, target_name);
13143 return false;
13146 /* Check those already resolved on this type directly. */
13147 for (g = p->u.generic; g; g = g->next)
13148 if (g != target && g->specific
13149 && !check_generic_tbp_ambiguity (target, g, name, p->where))
13150 return false;
13152 /* Check for ambiguity with inherited specific targets. */
13153 for (overridden_tbp = p->overridden; overridden_tbp;
13154 overridden_tbp = overridden_tbp->overridden)
13155 if (overridden_tbp->is_generic)
13157 for (g = overridden_tbp->u.generic; g; g = g->next)
13159 gcc_assert (g->specific);
13160 if (!check_generic_tbp_ambiguity (target, g, name, p->where))
13161 return false;
13166 /* If we attempt to "overwrite" a specific binding, this is an error. */
13167 if (p->overridden && !p->overridden->is_generic)
13169 gfc_error ("GENERIC %qs at %L can't overwrite specific binding with"
13170 " the same name", name, &p->where);
13171 return false;
13174 /* Take the SUBROUTINE/FUNCTION attributes of the first specific target, as
13175 all must have the same attributes here. */
13176 first_target = p->u.generic->specific->u.specific;
13177 gcc_assert (first_target);
13178 p->subroutine = first_target->n.sym->attr.subroutine;
13179 p->function = first_target->n.sym->attr.function;
13181 return true;
13185 /* Resolve a GENERIC procedure binding for a derived type. */
13187 static bool
13188 resolve_typebound_generic (gfc_symbol* derived, gfc_symtree* st)
13190 gfc_symbol* super_type;
13192 /* Find the overridden binding if any. */
13193 st->n.tb->overridden = NULL;
13194 super_type = gfc_get_derived_super_type (derived);
13195 if (super_type)
13197 gfc_symtree* overridden;
13198 overridden = gfc_find_typebound_proc (super_type, NULL, st->name,
13199 true, NULL);
13201 if (overridden && overridden->n.tb)
13202 st->n.tb->overridden = overridden->n.tb;
13205 /* Resolve using worker function. */
13206 return resolve_tb_generic_targets (super_type, st->n.tb, st->name);
13210 /* Retrieve the target-procedure of an operator binding and do some checks in
13211 common for intrinsic and user-defined type-bound operators. */
13213 static gfc_symbol*
13214 get_checked_tb_operator_target (gfc_tbp_generic* target, locus where)
13216 gfc_symbol* target_proc;
13218 gcc_assert (target->specific && !target->specific->is_generic);
13219 target_proc = target->specific->u.specific->n.sym;
13220 gcc_assert (target_proc);
13222 /* F08:C468. All operator bindings must have a passed-object dummy argument. */
13223 if (target->specific->nopass)
13225 gfc_error ("Type-bound operator at %L can't be NOPASS", &where);
13226 return NULL;
13229 return target_proc;
13233 /* Resolve a type-bound intrinsic operator. */
13235 static bool
13236 resolve_typebound_intrinsic_op (gfc_symbol* derived, gfc_intrinsic_op op,
13237 gfc_typebound_proc* p)
13239 gfc_symbol* super_type;
13240 gfc_tbp_generic* target;
13242 /* If there's already an error here, do nothing (but don't fail again). */
13243 if (p->error)
13244 return true;
13246 /* Operators should always be GENERIC bindings. */
13247 gcc_assert (p->is_generic);
13249 /* Look for an overridden binding. */
13250 super_type = gfc_get_derived_super_type (derived);
13251 if (super_type && super_type->f2k_derived)
13252 p->overridden = gfc_find_typebound_intrinsic_op (super_type, NULL,
13253 op, true, NULL);
13254 else
13255 p->overridden = NULL;
13257 /* Resolve general GENERIC properties using worker function. */
13258 if (!resolve_tb_generic_targets (super_type, p, gfc_op2string(op)))
13259 goto error;
13261 /* Check the targets to be procedures of correct interface. */
13262 for (target = p->u.generic; target; target = target->next)
13264 gfc_symbol* target_proc;
13266 target_proc = get_checked_tb_operator_target (target, p->where);
13267 if (!target_proc)
13268 goto error;
13270 if (!gfc_check_operator_interface (target_proc, op, p->where))
13271 goto error;
13273 /* Add target to non-typebound operator list. */
13274 if (!target->specific->deferred && !derived->attr.use_assoc
13275 && p->access != ACCESS_PRIVATE && derived->ns == gfc_current_ns)
13277 gfc_interface *head, *intr;
13279 /* Preempt 'gfc_check_new_interface' for submodules, where the
13280 mechanism for handling module procedures winds up resolving
13281 operator interfaces twice and would otherwise cause an error. */
13282 for (intr = derived->ns->op[op]; intr; intr = intr->next)
13283 if (intr->sym == target_proc
13284 && target_proc->attr.used_in_submodule)
13285 return true;
13287 if (!gfc_check_new_interface (derived->ns->op[op],
13288 target_proc, p->where))
13289 return false;
13290 head = derived->ns->op[op];
13291 intr = gfc_get_interface ();
13292 intr->sym = target_proc;
13293 intr->where = p->where;
13294 intr->next = head;
13295 derived->ns->op[op] = intr;
13299 return true;
13301 error:
13302 p->error = 1;
13303 return false;
13307 /* Resolve a type-bound user operator (tree-walker callback). */
13309 static gfc_symbol* resolve_bindings_derived;
13310 static bool resolve_bindings_result;
13312 static bool check_uop_procedure (gfc_symbol* sym, locus where);
13314 static void
13315 resolve_typebound_user_op (gfc_symtree* stree)
13317 gfc_symbol* super_type;
13318 gfc_tbp_generic* target;
13320 gcc_assert (stree && stree->n.tb);
13322 if (stree->n.tb->error)
13323 return;
13325 /* Operators should always be GENERIC bindings. */
13326 gcc_assert (stree->n.tb->is_generic);
13328 /* Find overridden procedure, if any. */
13329 super_type = gfc_get_derived_super_type (resolve_bindings_derived);
13330 if (super_type && super_type->f2k_derived)
13332 gfc_symtree* overridden;
13333 overridden = gfc_find_typebound_user_op (super_type, NULL,
13334 stree->name, true, NULL);
13336 if (overridden && overridden->n.tb)
13337 stree->n.tb->overridden = overridden->n.tb;
13339 else
13340 stree->n.tb->overridden = NULL;
13342 /* Resolve basically using worker function. */
13343 if (!resolve_tb_generic_targets (super_type, stree->n.tb, stree->name))
13344 goto error;
13346 /* Check the targets to be functions of correct interface. */
13347 for (target = stree->n.tb->u.generic; target; target = target->next)
13349 gfc_symbol* target_proc;
13351 target_proc = get_checked_tb_operator_target (target, stree->n.tb->where);
13352 if (!target_proc)
13353 goto error;
13355 if (!check_uop_procedure (target_proc, stree->n.tb->where))
13356 goto error;
13359 return;
13361 error:
13362 resolve_bindings_result = false;
13363 stree->n.tb->error = 1;
13367 /* Resolve the type-bound procedures for a derived type. */
13369 static void
13370 resolve_typebound_procedure (gfc_symtree* stree)
13372 gfc_symbol* proc;
13373 locus where;
13374 gfc_symbol* me_arg;
13375 gfc_symbol* super_type;
13376 gfc_component* comp;
13378 gcc_assert (stree);
13380 /* Undefined specific symbol from GENERIC target definition. */
13381 if (!stree->n.tb)
13382 return;
13384 if (stree->n.tb->error)
13385 return;
13387 /* If this is a GENERIC binding, use that routine. */
13388 if (stree->n.tb->is_generic)
13390 if (!resolve_typebound_generic (resolve_bindings_derived, stree))
13391 goto error;
13392 return;
13395 /* Get the target-procedure to check it. */
13396 gcc_assert (!stree->n.tb->is_generic);
13397 gcc_assert (stree->n.tb->u.specific);
13398 proc = stree->n.tb->u.specific->n.sym;
13399 where = stree->n.tb->where;
13401 /* Default access should already be resolved from the parser. */
13402 gcc_assert (stree->n.tb->access != ACCESS_UNKNOWN);
13404 if (stree->n.tb->deferred)
13406 if (!check_proc_interface (proc, &where))
13407 goto error;
13409 else
13411 /* Check for F08:C465. */
13412 if ((!proc->attr.subroutine && !proc->attr.function)
13413 || (proc->attr.proc != PROC_MODULE
13414 && proc->attr.if_source != IFSRC_IFBODY)
13415 || proc->attr.abstract)
13417 gfc_error ("%qs must be a module procedure or an external procedure with"
13418 " an explicit interface at %L", proc->name, &where);
13419 goto error;
13423 stree->n.tb->subroutine = proc->attr.subroutine;
13424 stree->n.tb->function = proc->attr.function;
13426 /* Find the super-type of the current derived type. We could do this once and
13427 store in a global if speed is needed, but as long as not I believe this is
13428 more readable and clearer. */
13429 super_type = gfc_get_derived_super_type (resolve_bindings_derived);
13431 /* If PASS, resolve and check arguments if not already resolved / loaded
13432 from a .mod file. */
13433 if (!stree->n.tb->nopass && stree->n.tb->pass_arg_num == 0)
13435 gfc_formal_arglist *dummy_args;
13437 dummy_args = gfc_sym_get_dummy_args (proc);
13438 if (stree->n.tb->pass_arg)
13440 gfc_formal_arglist *i;
13442 /* If an explicit passing argument name is given, walk the arg-list
13443 and look for it. */
13445 me_arg = NULL;
13446 stree->n.tb->pass_arg_num = 1;
13447 for (i = dummy_args; i; i = i->next)
13449 if (!strcmp (i->sym->name, stree->n.tb->pass_arg))
13451 me_arg = i->sym;
13452 break;
13454 ++stree->n.tb->pass_arg_num;
13457 if (!me_arg)
13459 gfc_error ("Procedure %qs with PASS(%s) at %L has no"
13460 " argument %qs",
13461 proc->name, stree->n.tb->pass_arg, &where,
13462 stree->n.tb->pass_arg);
13463 goto error;
13466 else
13468 /* Otherwise, take the first one; there should in fact be at least
13469 one. */
13470 stree->n.tb->pass_arg_num = 1;
13471 if (!dummy_args)
13473 gfc_error ("Procedure %qs with PASS at %L must have at"
13474 " least one argument", proc->name, &where);
13475 goto error;
13477 me_arg = dummy_args->sym;
13480 /* Now check that the argument-type matches and the passed-object
13481 dummy argument is generally fine. */
13483 gcc_assert (me_arg);
13485 if (me_arg->ts.type != BT_CLASS)
13487 gfc_error ("Non-polymorphic passed-object dummy argument of %qs"
13488 " at %L", proc->name, &where);
13489 goto error;
13492 if (CLASS_DATA (me_arg)->ts.u.derived
13493 != resolve_bindings_derived)
13495 gfc_error ("Argument %qs of %qs with PASS(%s) at %L must be of"
13496 " the derived-type %qs", me_arg->name, proc->name,
13497 me_arg->name, &where, resolve_bindings_derived->name);
13498 goto error;
13501 gcc_assert (me_arg->ts.type == BT_CLASS);
13502 if (CLASS_DATA (me_arg)->as && CLASS_DATA (me_arg)->as->rank != 0)
13504 gfc_error ("Passed-object dummy argument of %qs at %L must be"
13505 " scalar", proc->name, &where);
13506 goto error;
13508 if (CLASS_DATA (me_arg)->attr.allocatable)
13510 gfc_error ("Passed-object dummy argument of %qs at %L must not"
13511 " be ALLOCATABLE", proc->name, &where);
13512 goto error;
13514 if (CLASS_DATA (me_arg)->attr.class_pointer)
13516 gfc_error ("Passed-object dummy argument of %qs at %L must not"
13517 " be POINTER", proc->name, &where);
13518 goto error;
13522 /* If we are extending some type, check that we don't override a procedure
13523 flagged NON_OVERRIDABLE. */
13524 stree->n.tb->overridden = NULL;
13525 if (super_type)
13527 gfc_symtree* overridden;
13528 overridden = gfc_find_typebound_proc (super_type, NULL,
13529 stree->name, true, NULL);
13531 if (overridden)
13533 if (overridden->n.tb)
13534 stree->n.tb->overridden = overridden->n.tb;
13536 if (!gfc_check_typebound_override (stree, overridden))
13537 goto error;
13541 /* See if there's a name collision with a component directly in this type. */
13542 for (comp = resolve_bindings_derived->components; comp; comp = comp->next)
13543 if (!strcmp (comp->name, stree->name))
13545 gfc_error ("Procedure %qs at %L has the same name as a component of"
13546 " %qs",
13547 stree->name, &where, resolve_bindings_derived->name);
13548 goto error;
13551 /* Try to find a name collision with an inherited component. */
13552 if (super_type && gfc_find_component (super_type, stree->name, true, true,
13553 NULL))
13555 gfc_error ("Procedure %qs at %L has the same name as an inherited"
13556 " component of %qs",
13557 stree->name, &where, resolve_bindings_derived->name);
13558 goto error;
13561 stree->n.tb->error = 0;
13562 return;
13564 error:
13565 resolve_bindings_result = false;
13566 stree->n.tb->error = 1;
13570 static bool
13571 resolve_typebound_procedures (gfc_symbol* derived)
13573 int op;
13574 gfc_symbol* super_type;
13576 if (!derived->f2k_derived || !derived->f2k_derived->tb_sym_root)
13577 return true;
13579 super_type = gfc_get_derived_super_type (derived);
13580 if (super_type)
13581 resolve_symbol (super_type);
13583 resolve_bindings_derived = derived;
13584 resolve_bindings_result = true;
13586 if (derived->f2k_derived->tb_sym_root)
13587 gfc_traverse_symtree (derived->f2k_derived->tb_sym_root,
13588 &resolve_typebound_procedure);
13590 if (derived->f2k_derived->tb_uop_root)
13591 gfc_traverse_symtree (derived->f2k_derived->tb_uop_root,
13592 &resolve_typebound_user_op);
13594 for (op = 0; op != GFC_INTRINSIC_OPS; ++op)
13596 gfc_typebound_proc* p = derived->f2k_derived->tb_op[op];
13597 if (p && !resolve_typebound_intrinsic_op (derived,
13598 (gfc_intrinsic_op)op, p))
13599 resolve_bindings_result = false;
13602 return resolve_bindings_result;
13606 /* Add a derived type to the dt_list. The dt_list is used in trans-types.c
13607 to give all identical derived types the same backend_decl. */
13608 static void
13609 add_dt_to_dt_list (gfc_symbol *derived)
13611 if (!derived->dt_next)
13613 if (gfc_derived_types)
13615 derived->dt_next = gfc_derived_types->dt_next;
13616 gfc_derived_types->dt_next = derived;
13618 else
13620 derived->dt_next = derived;
13622 gfc_derived_types = derived;
13627 /* Ensure that a derived-type is really not abstract, meaning that every
13628 inherited DEFERRED binding is overridden by a non-DEFERRED one. */
13630 static bool
13631 ensure_not_abstract_walker (gfc_symbol* sub, gfc_symtree* st)
13633 if (!st)
13634 return true;
13636 if (!ensure_not_abstract_walker (sub, st->left))
13637 return false;
13638 if (!ensure_not_abstract_walker (sub, st->right))
13639 return false;
13641 if (st->n.tb && st->n.tb->deferred)
13643 gfc_symtree* overriding;
13644 overriding = gfc_find_typebound_proc (sub, NULL, st->name, true, NULL);
13645 if (!overriding)
13646 return false;
13647 gcc_assert (overriding->n.tb);
13648 if (overriding->n.tb->deferred)
13650 gfc_error ("Derived-type %qs declared at %L must be ABSTRACT because"
13651 " %qs is DEFERRED and not overridden",
13652 sub->name, &sub->declared_at, st->name);
13653 return false;
13657 return true;
13660 static bool
13661 ensure_not_abstract (gfc_symbol* sub, gfc_symbol* ancestor)
13663 /* The algorithm used here is to recursively travel up the ancestry of sub
13664 and for each ancestor-type, check all bindings. If any of them is
13665 DEFERRED, look it up starting from sub and see if the found (overriding)
13666 binding is not DEFERRED.
13667 This is not the most efficient way to do this, but it should be ok and is
13668 clearer than something sophisticated. */
13670 gcc_assert (ancestor && !sub->attr.abstract);
13672 if (!ancestor->attr.abstract)
13673 return true;
13675 /* Walk bindings of this ancestor. */
13676 if (ancestor->f2k_derived)
13678 bool t;
13679 t = ensure_not_abstract_walker (sub, ancestor->f2k_derived->tb_sym_root);
13680 if (!t)
13681 return false;
13684 /* Find next ancestor type and recurse on it. */
13685 ancestor = gfc_get_derived_super_type (ancestor);
13686 if (ancestor)
13687 return ensure_not_abstract (sub, ancestor);
13689 return true;
13693 /* This check for typebound defined assignments is done recursively
13694 since the order in which derived types are resolved is not always in
13695 order of the declarations. */
13697 static void
13698 check_defined_assignments (gfc_symbol *derived)
13700 gfc_component *c;
13702 for (c = derived->components; c; c = c->next)
13704 if (!gfc_bt_struct (c->ts.type)
13705 || c->attr.pointer
13706 || c->attr.allocatable
13707 || c->attr.proc_pointer_comp
13708 || c->attr.class_pointer
13709 || c->attr.proc_pointer)
13710 continue;
13712 if (c->ts.u.derived->attr.defined_assign_comp
13713 || (c->ts.u.derived->f2k_derived
13714 && c->ts.u.derived->f2k_derived->tb_op[INTRINSIC_ASSIGN]))
13716 derived->attr.defined_assign_comp = 1;
13717 return;
13720 check_defined_assignments (c->ts.u.derived);
13721 if (c->ts.u.derived->attr.defined_assign_comp)
13723 derived->attr.defined_assign_comp = 1;
13724 return;
13730 /* Resolve a single component of a derived type or structure. */
13732 static bool
13733 resolve_component (gfc_component *c, gfc_symbol *sym)
13735 gfc_symbol *super_type;
13737 if (c->attr.artificial)
13738 return true;
13740 /* Do not allow vtype components to be resolved in nameless namespaces
13741 such as block data because the procedure pointers will cause ICEs
13742 and vtables are not needed in these contexts. */
13743 if (sym->attr.vtype && sym->attr.use_assoc
13744 && sym->ns->proc_name == NULL)
13745 return true;
13747 /* F2008, C442. */
13748 if ((!sym->attr.is_class || c != sym->components)
13749 && c->attr.codimension
13750 && (!c->attr.allocatable || (c->as && c->as->type != AS_DEFERRED)))
13752 gfc_error ("Coarray component %qs at %L must be allocatable with "
13753 "deferred shape", c->name, &c->loc);
13754 return false;
13757 /* F2008, C443. */
13758 if (c->attr.codimension && c->ts.type == BT_DERIVED
13759 && c->ts.u.derived->ts.is_iso_c)
13761 gfc_error ("Component %qs at %L of TYPE(C_PTR) or TYPE(C_FUNPTR) "
13762 "shall not be a coarray", c->name, &c->loc);
13763 return false;
13766 /* F2008, C444. */
13767 if (gfc_bt_struct (c->ts.type) && c->ts.u.derived->attr.coarray_comp
13768 && (c->attr.codimension || c->attr.pointer || c->attr.dimension
13769 || c->attr.allocatable))
13771 gfc_error ("Component %qs at %L with coarray component "
13772 "shall be a nonpointer, nonallocatable scalar",
13773 c->name, &c->loc);
13774 return false;
13777 /* F2008, C448. */
13778 if (c->attr.contiguous && (!c->attr.dimension || !c->attr.pointer))
13780 gfc_error ("Component %qs at %L has the CONTIGUOUS attribute but "
13781 "is not an array pointer", c->name, &c->loc);
13782 return false;
13785 /* F2003, 15.2.1 - length has to be one. */
13786 if (sym->attr.is_bind_c && c->ts.type == BT_CHARACTER
13787 && (c->ts.u.cl == NULL || c->ts.u.cl->length == NULL
13788 || !gfc_is_constant_expr (c->ts.u.cl->length)
13789 || mpz_cmp_si (c->ts.u.cl->length->value.integer, 1) != 0))
13791 gfc_error ("Component %qs of BIND(C) type at %L must have length one",
13792 c->name, &c->loc);
13793 return false;
13796 if (c->attr.proc_pointer && c->ts.interface)
13798 gfc_symbol *ifc = c->ts.interface;
13800 if (!sym->attr.vtype && !check_proc_interface (ifc, &c->loc))
13802 c->tb->error = 1;
13803 return false;
13806 if (ifc->attr.if_source || ifc->attr.intrinsic)
13808 /* Resolve interface and copy attributes. */
13809 if (ifc->formal && !ifc->formal_ns)
13810 resolve_symbol (ifc);
13811 if (ifc->attr.intrinsic)
13812 gfc_resolve_intrinsic (ifc, &ifc->declared_at);
13814 if (ifc->result)
13816 c->ts = ifc->result->ts;
13817 c->attr.allocatable = ifc->result->attr.allocatable;
13818 c->attr.pointer = ifc->result->attr.pointer;
13819 c->attr.dimension = ifc->result->attr.dimension;
13820 c->as = gfc_copy_array_spec (ifc->result->as);
13821 c->attr.class_ok = ifc->result->attr.class_ok;
13823 else
13825 c->ts = ifc->ts;
13826 c->attr.allocatable = ifc->attr.allocatable;
13827 c->attr.pointer = ifc->attr.pointer;
13828 c->attr.dimension = ifc->attr.dimension;
13829 c->as = gfc_copy_array_spec (ifc->as);
13830 c->attr.class_ok = ifc->attr.class_ok;
13832 c->ts.interface = ifc;
13833 c->attr.function = ifc->attr.function;
13834 c->attr.subroutine = ifc->attr.subroutine;
13836 c->attr.pure = ifc->attr.pure;
13837 c->attr.elemental = ifc->attr.elemental;
13838 c->attr.recursive = ifc->attr.recursive;
13839 c->attr.always_explicit = ifc->attr.always_explicit;
13840 c->attr.ext_attr |= ifc->attr.ext_attr;
13841 /* Copy char length. */
13842 if (ifc->ts.type == BT_CHARACTER && ifc->ts.u.cl)
13844 gfc_charlen *cl = gfc_new_charlen (sym->ns, ifc->ts.u.cl);
13845 if (cl->length && !cl->resolved
13846 && !gfc_resolve_expr (cl->length))
13848 c->tb->error = 1;
13849 return false;
13851 c->ts.u.cl = cl;
13855 else if (c->attr.proc_pointer && c->ts.type == BT_UNKNOWN)
13857 /* Since PPCs are not implicitly typed, a PPC without an explicit
13858 interface must be a subroutine. */
13859 gfc_add_subroutine (&c->attr, c->name, &c->loc);
13862 /* Procedure pointer components: Check PASS arg. */
13863 if (c->attr.proc_pointer && !c->tb->nopass && c->tb->pass_arg_num == 0
13864 && !sym->attr.vtype)
13866 gfc_symbol* me_arg;
13868 if (c->tb->pass_arg)
13870 gfc_formal_arglist* i;
13872 /* If an explicit passing argument name is given, walk the arg-list
13873 and look for it. */
13875 me_arg = NULL;
13876 c->tb->pass_arg_num = 1;
13877 for (i = c->ts.interface->formal; i; i = i->next)
13879 if (!strcmp (i->sym->name, c->tb->pass_arg))
13881 me_arg = i->sym;
13882 break;
13884 c->tb->pass_arg_num++;
13887 if (!me_arg)
13889 gfc_error ("Procedure pointer component %qs with PASS(%s) "
13890 "at %L has no argument %qs", c->name,
13891 c->tb->pass_arg, &c->loc, c->tb->pass_arg);
13892 c->tb->error = 1;
13893 return false;
13896 else
13898 /* Otherwise, take the first one; there should in fact be at least
13899 one. */
13900 c->tb->pass_arg_num = 1;
13901 if (!c->ts.interface->formal)
13903 gfc_error ("Procedure pointer component %qs with PASS at %L "
13904 "must have at least one argument",
13905 c->name, &c->loc);
13906 c->tb->error = 1;
13907 return false;
13909 me_arg = c->ts.interface->formal->sym;
13912 /* Now check that the argument-type matches. */
13913 gcc_assert (me_arg);
13914 if ((me_arg->ts.type != BT_DERIVED && me_arg->ts.type != BT_CLASS)
13915 || (me_arg->ts.type == BT_DERIVED && me_arg->ts.u.derived != sym)
13916 || (me_arg->ts.type == BT_CLASS
13917 && CLASS_DATA (me_arg)->ts.u.derived != sym))
13919 gfc_error ("Argument %qs of %qs with PASS(%s) at %L must be of"
13920 " the derived type %qs", me_arg->name, c->name,
13921 me_arg->name, &c->loc, sym->name);
13922 c->tb->error = 1;
13923 return false;
13926 /* Check for F03:C453. */
13927 if (CLASS_DATA (me_arg)->attr.dimension)
13929 gfc_error ("Argument %qs of %qs with PASS(%s) at %L "
13930 "must be scalar", me_arg->name, c->name, me_arg->name,
13931 &c->loc);
13932 c->tb->error = 1;
13933 return false;
13936 if (CLASS_DATA (me_arg)->attr.class_pointer)
13938 gfc_error ("Argument %qs of %qs with PASS(%s) at %L "
13939 "may not have the POINTER attribute", me_arg->name,
13940 c->name, me_arg->name, &c->loc);
13941 c->tb->error = 1;
13942 return false;
13945 if (CLASS_DATA (me_arg)->attr.allocatable)
13947 gfc_error ("Argument %qs of %qs with PASS(%s) at %L "
13948 "may not be ALLOCATABLE", me_arg->name, c->name,
13949 me_arg->name, &c->loc);
13950 c->tb->error = 1;
13951 return false;
13954 if (gfc_type_is_extensible (sym) && me_arg->ts.type != BT_CLASS)
13956 gfc_error ("Non-polymorphic passed-object dummy argument of %qs"
13957 " at %L", c->name, &c->loc);
13958 return false;
13963 /* Check type-spec if this is not the parent-type component. */
13964 if (((sym->attr.is_class
13965 && (!sym->components->ts.u.derived->attr.extension
13966 || c != sym->components->ts.u.derived->components))
13967 || (!sym->attr.is_class
13968 && (!sym->attr.extension || c != sym->components)))
13969 && !sym->attr.vtype
13970 && !resolve_typespec_used (&c->ts, &c->loc, c->name))
13971 return false;
13973 super_type = gfc_get_derived_super_type (sym);
13975 /* If this type is an extension, set the accessibility of the parent
13976 component. */
13977 if (super_type
13978 && ((sym->attr.is_class
13979 && c == sym->components->ts.u.derived->components)
13980 || (!sym->attr.is_class && c == sym->components))
13981 && strcmp (super_type->name, c->name) == 0)
13982 c->attr.access = super_type->attr.access;
13984 /* If this type is an extension, see if this component has the same name
13985 as an inherited type-bound procedure. */
13986 if (super_type && !sym->attr.is_class
13987 && gfc_find_typebound_proc (super_type, NULL, c->name, true, NULL))
13989 gfc_error ("Component %qs of %qs at %L has the same name as an"
13990 " inherited type-bound procedure",
13991 c->name, sym->name, &c->loc);
13992 return false;
13995 if (c->ts.type == BT_CHARACTER && !c->attr.proc_pointer
13996 && !c->ts.deferred)
13998 if (c->ts.u.cl->length == NULL
13999 || (!resolve_charlen(c->ts.u.cl))
14000 || !gfc_is_constant_expr (c->ts.u.cl->length))
14002 gfc_error ("Character length of component %qs needs to "
14003 "be a constant specification expression at %L",
14004 c->name,
14005 c->ts.u.cl->length ? &c->ts.u.cl->length->where : &c->loc);
14006 return false;
14010 if (c->ts.type == BT_CHARACTER && c->ts.deferred
14011 && !c->attr.pointer && !c->attr.allocatable)
14013 gfc_error ("Character component %qs of %qs at %L with deferred "
14014 "length must be a POINTER or ALLOCATABLE",
14015 c->name, sym->name, &c->loc);
14016 return false;
14019 /* Add the hidden deferred length field. */
14020 if (c->ts.type == BT_CHARACTER
14021 && (c->ts.deferred || c->attr.pdt_string)
14022 && !c->attr.function
14023 && !sym->attr.is_class)
14025 char name[GFC_MAX_SYMBOL_LEN+9];
14026 gfc_component *strlen;
14027 sprintf (name, "_%s_length", c->name);
14028 strlen = gfc_find_component (sym, name, true, true, NULL);
14029 if (strlen == NULL)
14031 if (!gfc_add_component (sym, name, &strlen))
14032 return false;
14033 strlen->ts.type = BT_INTEGER;
14034 strlen->ts.kind = gfc_charlen_int_kind;
14035 strlen->attr.access = ACCESS_PRIVATE;
14036 strlen->attr.artificial = 1;
14040 if (c->ts.type == BT_DERIVED
14041 && sym->component_access != ACCESS_PRIVATE
14042 && gfc_check_symbol_access (sym)
14043 && !is_sym_host_assoc (c->ts.u.derived, sym->ns)
14044 && !c->ts.u.derived->attr.use_assoc
14045 && !gfc_check_symbol_access (c->ts.u.derived)
14046 && !gfc_notify_std (GFC_STD_F2003, "the component %qs is a "
14047 "PRIVATE type and cannot be a component of "
14048 "%qs, which is PUBLIC at %L", c->name,
14049 sym->name, &sym->declared_at))
14050 return false;
14052 if ((sym->attr.sequence || sym->attr.is_bind_c) && c->ts.type == BT_CLASS)
14054 gfc_error ("Polymorphic component %s at %L in SEQUENCE or BIND(C) "
14055 "type %s", c->name, &c->loc, sym->name);
14056 return false;
14059 if (sym->attr.sequence)
14061 if (c->ts.type == BT_DERIVED && c->ts.u.derived->attr.sequence == 0)
14063 gfc_error ("Component %s of SEQUENCE type declared at %L does "
14064 "not have the SEQUENCE attribute",
14065 c->ts.u.derived->name, &sym->declared_at);
14066 return false;
14070 if (c->ts.type == BT_DERIVED && c->ts.u.derived->attr.generic)
14071 c->ts.u.derived = gfc_find_dt_in_generic (c->ts.u.derived);
14072 else if (c->ts.type == BT_CLASS && c->attr.class_ok
14073 && CLASS_DATA (c)->ts.u.derived->attr.generic)
14074 CLASS_DATA (c)->ts.u.derived
14075 = gfc_find_dt_in_generic (CLASS_DATA (c)->ts.u.derived);
14077 /* If an allocatable component derived type is of the same type as
14078 the enclosing derived type, we need a vtable generating so that
14079 the __deallocate procedure is created. */
14080 if ((c->ts.type == BT_DERIVED || c->ts.type == BT_CLASS)
14081 && c->ts.u.derived == sym && c->attr.allocatable == 1)
14082 gfc_find_vtab (&c->ts);
14084 /* Ensure that all the derived type components are put on the
14085 derived type list; even in formal namespaces, where derived type
14086 pointer components might not have been declared. */
14087 if (c->ts.type == BT_DERIVED
14088 && c->ts.u.derived
14089 && c->ts.u.derived->components
14090 && c->attr.pointer
14091 && sym != c->ts.u.derived)
14092 add_dt_to_dt_list (c->ts.u.derived);
14094 if (!gfc_resolve_array_spec (c->as,
14095 !(c->attr.pointer || c->attr.proc_pointer
14096 || c->attr.allocatable)))
14097 return false;
14099 if (c->initializer && !sym->attr.vtype
14100 && !c->attr.pdt_kind && !c->attr.pdt_len
14101 && !gfc_check_assign_symbol (sym, c, c->initializer))
14102 return false;
14104 return true;
14108 /* Be nice about the locus for a structure expression - show the locus of the
14109 first non-null sub-expression if we can. */
14111 static locus *
14112 cons_where (gfc_expr *struct_expr)
14114 gfc_constructor *cons;
14116 gcc_assert (struct_expr && struct_expr->expr_type == EXPR_STRUCTURE);
14118 cons = gfc_constructor_first (struct_expr->value.constructor);
14119 for (; cons; cons = gfc_constructor_next (cons))
14121 if (cons->expr && cons->expr->expr_type != EXPR_NULL)
14122 return &cons->expr->where;
14125 return &struct_expr->where;
14128 /* Resolve the components of a structure type. Much less work than derived
14129 types. */
14131 static bool
14132 resolve_fl_struct (gfc_symbol *sym)
14134 gfc_component *c;
14135 gfc_expr *init = NULL;
14136 bool success;
14138 /* Make sure UNIONs do not have overlapping initializers. */
14139 if (sym->attr.flavor == FL_UNION)
14141 for (c = sym->components; c; c = c->next)
14143 if (init && c->initializer)
14145 gfc_error ("Conflicting initializers in union at %L and %L",
14146 cons_where (init), cons_where (c->initializer));
14147 gfc_free_expr (c->initializer);
14148 c->initializer = NULL;
14150 if (init == NULL)
14151 init = c->initializer;
14155 success = true;
14156 for (c = sym->components; c; c = c->next)
14157 if (!resolve_component (c, sym))
14158 success = false;
14160 if (!success)
14161 return false;
14163 if (sym->components)
14164 add_dt_to_dt_list (sym);
14166 return true;
14170 /* Resolve the components of a derived type. This does not have to wait until
14171 resolution stage, but can be done as soon as the dt declaration has been
14172 parsed. */
14174 static bool
14175 resolve_fl_derived0 (gfc_symbol *sym)
14177 gfc_symbol* super_type;
14178 gfc_component *c;
14179 gfc_formal_arglist *f;
14180 bool success;
14182 if (sym->attr.unlimited_polymorphic)
14183 return true;
14185 super_type = gfc_get_derived_super_type (sym);
14187 /* F2008, C432. */
14188 if (super_type && sym->attr.coarray_comp && !super_type->attr.coarray_comp)
14190 gfc_error ("As extending type %qs at %L has a coarray component, "
14191 "parent type %qs shall also have one", sym->name,
14192 &sym->declared_at, super_type->name);
14193 return false;
14196 /* Ensure the extended type gets resolved before we do. */
14197 if (super_type && !resolve_fl_derived0 (super_type))
14198 return false;
14200 /* An ABSTRACT type must be extensible. */
14201 if (sym->attr.abstract && !gfc_type_is_extensible (sym))
14203 gfc_error ("Non-extensible derived-type %qs at %L must not be ABSTRACT",
14204 sym->name, &sym->declared_at);
14205 return false;
14208 c = (sym->attr.is_class) ? sym->components->ts.u.derived->components
14209 : sym->components;
14211 success = true;
14212 for ( ; c != NULL; c = c->next)
14213 if (!resolve_component (c, sym))
14214 success = false;
14216 if (!success)
14217 return false;
14219 /* Now add the caf token field, where needed. */
14220 if (flag_coarray != GFC_FCOARRAY_NONE
14221 && !sym->attr.is_class && !sym->attr.vtype)
14223 for (c = sym->components; c; c = c->next)
14224 if (!c->attr.dimension && !c->attr.codimension
14225 && (c->attr.allocatable || c->attr.pointer))
14227 char name[GFC_MAX_SYMBOL_LEN+9];
14228 gfc_component *token;
14229 sprintf (name, "_caf_%s", c->name);
14230 token = gfc_find_component (sym, name, true, true, NULL);
14231 if (token == NULL)
14233 if (!gfc_add_component (sym, name, &token))
14234 return false;
14235 token->ts.type = BT_VOID;
14236 token->ts.kind = gfc_default_integer_kind;
14237 token->attr.access = ACCESS_PRIVATE;
14238 token->attr.artificial = 1;
14239 token->attr.caf_token = 1;
14244 check_defined_assignments (sym);
14246 if (!sym->attr.defined_assign_comp && super_type)
14247 sym->attr.defined_assign_comp
14248 = super_type->attr.defined_assign_comp;
14250 /* If this is a non-ABSTRACT type extending an ABSTRACT one, ensure that
14251 all DEFERRED bindings are overridden. */
14252 if (super_type && super_type->attr.abstract && !sym->attr.abstract
14253 && !sym->attr.is_class
14254 && !ensure_not_abstract (sym, super_type))
14255 return false;
14257 /* Check that there is a component for every PDT parameter. */
14258 if (sym->attr.pdt_template)
14260 for (f = sym->formal; f; f = f->next)
14262 if (!f->sym)
14263 continue;
14264 c = gfc_find_component (sym, f->sym->name, true, true, NULL);
14265 if (c == NULL)
14267 gfc_error ("Parameterized type %qs does not have a component "
14268 "corresponding to parameter %qs at %L", sym->name,
14269 f->sym->name, &sym->declared_at);
14270 break;
14275 /* Add derived type to the derived type list. */
14276 add_dt_to_dt_list (sym);
14278 return true;
14282 /* The following procedure does the full resolution of a derived type,
14283 including resolution of all type-bound procedures (if present). In contrast
14284 to 'resolve_fl_derived0' this can only be done after the module has been
14285 parsed completely. */
14287 static bool
14288 resolve_fl_derived (gfc_symbol *sym)
14290 gfc_symbol *gen_dt = NULL;
14292 if (sym->attr.unlimited_polymorphic)
14293 return true;
14295 if (!sym->attr.is_class)
14296 gfc_find_symbol (sym->name, sym->ns, 0, &gen_dt);
14297 if (gen_dt && gen_dt->generic && gen_dt->generic->next
14298 && (!gen_dt->generic->sym->attr.use_assoc
14299 || gen_dt->generic->sym->module != gen_dt->generic->next->sym->module)
14300 && !gfc_notify_std (GFC_STD_F2003, "Generic name %qs of function "
14301 "%qs at %L being the same name as derived "
14302 "type at %L", sym->name,
14303 gen_dt->generic->sym == sym
14304 ? gen_dt->generic->next->sym->name
14305 : gen_dt->generic->sym->name,
14306 gen_dt->generic->sym == sym
14307 ? &gen_dt->generic->next->sym->declared_at
14308 : &gen_dt->generic->sym->declared_at,
14309 &sym->declared_at))
14310 return false;
14312 if (sym->components == NULL && !sym->attr.zero_comp && !sym->attr.use_assoc)
14314 gfc_error ("Derived type %qs at %L has not been declared",
14315 sym->name, &sym->declared_at);
14316 return false;
14319 /* Resolve the finalizer procedures. */
14320 if (!gfc_resolve_finalizers (sym, NULL))
14321 return false;
14323 if (sym->attr.is_class && sym->ts.u.derived == NULL)
14325 /* Fix up incomplete CLASS symbols. */
14326 gfc_component *data = gfc_find_component (sym, "_data", true, true, NULL);
14327 gfc_component *vptr = gfc_find_component (sym, "_vptr", true, true, NULL);
14329 /* Nothing more to do for unlimited polymorphic entities. */
14330 if (data->ts.u.derived->attr.unlimited_polymorphic)
14331 return true;
14332 else if (vptr->ts.u.derived == NULL)
14334 gfc_symbol *vtab = gfc_find_derived_vtab (data->ts.u.derived);
14335 gcc_assert (vtab);
14336 vptr->ts.u.derived = vtab->ts.u.derived;
14337 if (!resolve_fl_derived0 (vptr->ts.u.derived))
14338 return false;
14342 if (!resolve_fl_derived0 (sym))
14343 return false;
14345 /* Resolve the type-bound procedures. */
14346 if (!resolve_typebound_procedures (sym))
14347 return false;
14349 /* Generate module vtables subject to their accessibility and their not
14350 being vtables or pdt templates. If this is not done class declarations
14351 in external procedures wind up with their own version and so SELECT TYPE
14352 fails because the vptrs do not have the same address. */
14353 if (gfc_option.allow_std & GFC_STD_F2003
14354 && sym->ns->proc_name
14355 && sym->ns->proc_name->attr.flavor == FL_MODULE
14356 && sym->attr.access != ACCESS_PRIVATE
14357 && !(sym->attr.use_assoc || sym->attr.vtype || sym->attr.pdt_template))
14359 gfc_symbol *vtab = gfc_find_derived_vtab (sym);
14360 gfc_set_sym_referenced (vtab);
14363 return true;
14367 static bool
14368 resolve_fl_namelist (gfc_symbol *sym)
14370 gfc_namelist *nl;
14371 gfc_symbol *nlsym;
14373 for (nl = sym->namelist; nl; nl = nl->next)
14375 /* Check again, the check in match only works if NAMELIST comes
14376 after the decl. */
14377 if (nl->sym->as && nl->sym->as->type == AS_ASSUMED_SIZE)
14379 gfc_error ("Assumed size array %qs in namelist %qs at %L is not "
14380 "allowed", nl->sym->name, sym->name, &sym->declared_at);
14381 return false;
14384 if (nl->sym->as && nl->sym->as->type == AS_ASSUMED_SHAPE
14385 && !gfc_notify_std (GFC_STD_F2003, "NAMELIST array object %qs "
14386 "with assumed shape in namelist %qs at %L",
14387 nl->sym->name, sym->name, &sym->declared_at))
14388 return false;
14390 if (is_non_constant_shape_array (nl->sym)
14391 && !gfc_notify_std (GFC_STD_F2003, "NAMELIST array object %qs "
14392 "with nonconstant shape in namelist %qs at %L",
14393 nl->sym->name, sym->name, &sym->declared_at))
14394 return false;
14396 if (nl->sym->ts.type == BT_CHARACTER
14397 && (nl->sym->ts.u.cl->length == NULL
14398 || !gfc_is_constant_expr (nl->sym->ts.u.cl->length))
14399 && !gfc_notify_std (GFC_STD_F2003, "NAMELIST object %qs with "
14400 "nonconstant character length in "
14401 "namelist %qs at %L", nl->sym->name,
14402 sym->name, &sym->declared_at))
14403 return false;
14407 /* Reject PRIVATE objects in a PUBLIC namelist. */
14408 if (gfc_check_symbol_access (sym))
14410 for (nl = sym->namelist; nl; nl = nl->next)
14412 if (!nl->sym->attr.use_assoc
14413 && !is_sym_host_assoc (nl->sym, sym->ns)
14414 && !gfc_check_symbol_access (nl->sym))
14416 gfc_error ("NAMELIST object %qs was declared PRIVATE and "
14417 "cannot be member of PUBLIC namelist %qs at %L",
14418 nl->sym->name, sym->name, &sym->declared_at);
14419 return false;
14422 if (nl->sym->ts.type == BT_DERIVED
14423 && (nl->sym->ts.u.derived->attr.alloc_comp
14424 || nl->sym->ts.u.derived->attr.pointer_comp))
14426 if (!gfc_notify_std (GFC_STD_F2003, "NAMELIST object %qs in "
14427 "namelist %qs at %L with ALLOCATABLE "
14428 "or POINTER components", nl->sym->name,
14429 sym->name, &sym->declared_at))
14430 return false;
14431 return true;
14434 /* Types with private components that came here by USE-association. */
14435 if (nl->sym->ts.type == BT_DERIVED
14436 && derived_inaccessible (nl->sym->ts.u.derived))
14438 gfc_error ("NAMELIST object %qs has use-associated PRIVATE "
14439 "components and cannot be member of namelist %qs at %L",
14440 nl->sym->name, sym->name, &sym->declared_at);
14441 return false;
14444 /* Types with private components that are defined in the same module. */
14445 if (nl->sym->ts.type == BT_DERIVED
14446 && !is_sym_host_assoc (nl->sym->ts.u.derived, sym->ns)
14447 && nl->sym->ts.u.derived->attr.private_comp)
14449 gfc_error ("NAMELIST object %qs has PRIVATE components and "
14450 "cannot be a member of PUBLIC namelist %qs at %L",
14451 nl->sym->name, sym->name, &sym->declared_at);
14452 return false;
14458 /* 14.1.2 A module or internal procedure represent local entities
14459 of the same type as a namelist member and so are not allowed. */
14460 for (nl = sym->namelist; nl; nl = nl->next)
14462 if (nl->sym->ts.kind != 0 && nl->sym->attr.flavor == FL_VARIABLE)
14463 continue;
14465 if (nl->sym->attr.function && nl->sym == nl->sym->result)
14466 if ((nl->sym == sym->ns->proc_name)
14468 (sym->ns->parent && nl->sym == sym->ns->parent->proc_name))
14469 continue;
14471 nlsym = NULL;
14472 if (nl->sym->name)
14473 gfc_find_symbol (nl->sym->name, sym->ns, 1, &nlsym);
14474 if (nlsym && nlsym->attr.flavor == FL_PROCEDURE)
14476 gfc_error ("PROCEDURE attribute conflicts with NAMELIST "
14477 "attribute in %qs at %L", nlsym->name,
14478 &sym->declared_at);
14479 return false;
14483 if (async_io_dt)
14485 for (nl = sym->namelist; nl; nl = nl->next)
14486 nl->sym->attr.asynchronous = 1;
14488 return true;
14492 static bool
14493 resolve_fl_parameter (gfc_symbol *sym)
14495 /* A parameter array's shape needs to be constant. */
14496 if (sym->as != NULL
14497 && (sym->as->type == AS_DEFERRED
14498 || is_non_constant_shape_array (sym)))
14500 gfc_error ("Parameter array %qs at %L cannot be automatic "
14501 "or of deferred shape", sym->name, &sym->declared_at);
14502 return false;
14505 /* Constraints on deferred type parameter. */
14506 if (!deferred_requirements (sym))
14507 return false;
14509 /* Make sure a parameter that has been implicitly typed still
14510 matches the implicit type, since PARAMETER statements can precede
14511 IMPLICIT statements. */
14512 if (sym->attr.implicit_type
14513 && !gfc_compare_types (&sym->ts, gfc_get_default_type (sym->name,
14514 sym->ns)))
14516 gfc_error ("Implicitly typed PARAMETER %qs at %L doesn't match a "
14517 "later IMPLICIT type", sym->name, &sym->declared_at);
14518 return false;
14521 /* Make sure the types of derived parameters are consistent. This
14522 type checking is deferred until resolution because the type may
14523 refer to a derived type from the host. */
14524 if (sym->ts.type == BT_DERIVED
14525 && !gfc_compare_types (&sym->ts, &sym->value->ts))
14527 gfc_error ("Incompatible derived type in PARAMETER at %L",
14528 &sym->value->where);
14529 return false;
14532 /* F03:C509,C514. */
14533 if (sym->ts.type == BT_CLASS)
14535 gfc_error ("CLASS variable %qs at %L cannot have the PARAMETER attribute",
14536 sym->name, &sym->declared_at);
14537 return false;
14540 return true;
14544 /* Called by resolve_symbol to check PDTs. */
14546 static void
14547 resolve_pdt (gfc_symbol* sym)
14549 gfc_symbol *derived = NULL;
14550 gfc_actual_arglist *param;
14551 gfc_component *c;
14552 bool const_len_exprs = true;
14553 bool assumed_len_exprs = false;
14554 symbol_attribute *attr;
14556 if (sym->ts.type == BT_DERIVED)
14558 derived = sym->ts.u.derived;
14559 attr = &(sym->attr);
14561 else if (sym->ts.type == BT_CLASS)
14563 derived = CLASS_DATA (sym)->ts.u.derived;
14564 attr = &(CLASS_DATA (sym)->attr);
14566 else
14567 gcc_unreachable ();
14569 gcc_assert (derived->attr.pdt_type);
14571 for (param = sym->param_list; param; param = param->next)
14573 c = gfc_find_component (derived, param->name, false, true, NULL);
14574 gcc_assert (c);
14575 if (c->attr.pdt_kind)
14576 continue;
14578 if (param->expr && !gfc_is_constant_expr (param->expr)
14579 && c->attr.pdt_len)
14580 const_len_exprs = false;
14581 else if (param->spec_type == SPEC_ASSUMED)
14582 assumed_len_exprs = true;
14584 if (param->spec_type == SPEC_DEFERRED
14585 && !attr->allocatable && !attr->pointer)
14586 gfc_error ("The object %qs at %L has a deferred LEN "
14587 "parameter %qs and is neither allocatable "
14588 "nor a pointer", sym->name, &sym->declared_at,
14589 param->name);
14593 if (!const_len_exprs
14594 && (sym->ns->proc_name->attr.is_main_program
14595 || sym->ns->proc_name->attr.flavor == FL_MODULE
14596 || sym->attr.save != SAVE_NONE))
14597 gfc_error ("The AUTOMATIC object %qs at %L must not have the "
14598 "SAVE attribute or be a variable declared in the "
14599 "main program, a module or a submodule(F08/C513)",
14600 sym->name, &sym->declared_at);
14602 if (assumed_len_exprs && !(sym->attr.dummy
14603 || sym->attr.select_type_temporary || sym->attr.associate_var))
14604 gfc_error ("The object %qs at %L with ASSUMED type parameters "
14605 "must be a dummy or a SELECT TYPE selector(F08/4.2)",
14606 sym->name, &sym->declared_at);
14610 /* Do anything necessary to resolve a symbol. Right now, we just
14611 assume that an otherwise unknown symbol is a variable. This sort
14612 of thing commonly happens for symbols in module. */
14614 static void
14615 resolve_symbol (gfc_symbol *sym)
14617 int check_constant, mp_flag;
14618 gfc_symtree *symtree;
14619 gfc_symtree *this_symtree;
14620 gfc_namespace *ns;
14621 gfc_component *c;
14622 symbol_attribute class_attr;
14623 gfc_array_spec *as;
14624 bool saved_specification_expr;
14626 if (sym->resolved)
14627 return;
14628 sym->resolved = 1;
14630 /* No symbol will ever have union type; only components can be unions.
14631 Union type declaration symbols have type BT_UNKNOWN but flavor FL_UNION
14632 (just like derived type declaration symbols have flavor FL_DERIVED). */
14633 gcc_assert (sym->ts.type != BT_UNION);
14635 /* Coarrayed polymorphic objects with allocatable or pointer components are
14636 yet unsupported for -fcoarray=lib. */
14637 if (flag_coarray == GFC_FCOARRAY_LIB && sym->ts.type == BT_CLASS
14638 && sym->ts.u.derived && CLASS_DATA (sym)
14639 && CLASS_DATA (sym)->attr.codimension
14640 && (CLASS_DATA (sym)->ts.u.derived->attr.alloc_comp
14641 || CLASS_DATA (sym)->ts.u.derived->attr.pointer_comp))
14643 gfc_error ("Sorry, allocatable/pointer components in polymorphic (CLASS) "
14644 "type coarrays at %L are unsupported", &sym->declared_at);
14645 return;
14648 if (sym->attr.artificial)
14649 return;
14651 if (sym->attr.unlimited_polymorphic)
14652 return;
14654 if (sym->attr.flavor == FL_UNKNOWN
14655 || (sym->attr.flavor == FL_PROCEDURE && !sym->attr.intrinsic
14656 && !sym->attr.generic && !sym->attr.external
14657 && sym->attr.if_source == IFSRC_UNKNOWN
14658 && sym->ts.type == BT_UNKNOWN))
14661 /* If we find that a flavorless symbol is an interface in one of the
14662 parent namespaces, find its symtree in this namespace, free the
14663 symbol and set the symtree to point to the interface symbol. */
14664 for (ns = gfc_current_ns->parent; ns; ns = ns->parent)
14666 symtree = gfc_find_symtree (ns->sym_root, sym->name);
14667 if (symtree && (symtree->n.sym->generic ||
14668 (symtree->n.sym->attr.flavor == FL_PROCEDURE
14669 && sym->ns->construct_entities)))
14671 this_symtree = gfc_find_symtree (gfc_current_ns->sym_root,
14672 sym->name);
14673 if (this_symtree->n.sym == sym)
14675 symtree->n.sym->refs++;
14676 gfc_release_symbol (sym);
14677 this_symtree->n.sym = symtree->n.sym;
14678 return;
14683 /* Otherwise give it a flavor according to such attributes as
14684 it has. */
14685 if (sym->attr.flavor == FL_UNKNOWN && sym->attr.external == 0
14686 && sym->attr.intrinsic == 0)
14687 sym->attr.flavor = FL_VARIABLE;
14688 else if (sym->attr.flavor == FL_UNKNOWN)
14690 sym->attr.flavor = FL_PROCEDURE;
14691 if (sym->attr.dimension)
14692 sym->attr.function = 1;
14696 if (sym->attr.external && sym->ts.type != BT_UNKNOWN && !sym->attr.function)
14697 gfc_add_function (&sym->attr, sym->name, &sym->declared_at);
14699 if (sym->attr.procedure && sym->attr.if_source != IFSRC_DECL
14700 && !resolve_procedure_interface (sym))
14701 return;
14703 if (sym->attr.is_protected && !sym->attr.proc_pointer
14704 && (sym->attr.procedure || sym->attr.external))
14706 if (sym->attr.external)
14707 gfc_error ("PROTECTED attribute conflicts with EXTERNAL attribute "
14708 "at %L", &sym->declared_at);
14709 else
14710 gfc_error ("PROCEDURE attribute conflicts with PROTECTED attribute "
14711 "at %L", &sym->declared_at);
14713 return;
14716 if (sym->attr.flavor == FL_DERIVED && !resolve_fl_derived (sym))
14717 return;
14719 else if ((sym->attr.flavor == FL_STRUCT || sym->attr.flavor == FL_UNION)
14720 && !resolve_fl_struct (sym))
14721 return;
14723 /* Symbols that are module procedures with results (functions) have
14724 the types and array specification copied for type checking in
14725 procedures that call them, as well as for saving to a module
14726 file. These symbols can't stand the scrutiny that their results
14727 can. */
14728 mp_flag = (sym->result != NULL && sym->result != sym);
14730 /* Make sure that the intrinsic is consistent with its internal
14731 representation. This needs to be done before assigning a default
14732 type to avoid spurious warnings. */
14733 if (sym->attr.flavor != FL_MODULE && sym->attr.intrinsic
14734 && !gfc_resolve_intrinsic (sym, &sym->declared_at))
14735 return;
14737 /* Resolve associate names. */
14738 if (sym->assoc)
14739 resolve_assoc_var (sym, true);
14741 /* Assign default type to symbols that need one and don't have one. */
14742 if (sym->ts.type == BT_UNKNOWN)
14744 if (sym->attr.flavor == FL_VARIABLE || sym->attr.flavor == FL_PARAMETER)
14746 gfc_set_default_type (sym, 1, NULL);
14749 if (sym->attr.flavor == FL_PROCEDURE && sym->attr.external
14750 && !sym->attr.function && !sym->attr.subroutine
14751 && gfc_get_default_type (sym->name, sym->ns)->type == BT_UNKNOWN)
14752 gfc_add_subroutine (&sym->attr, sym->name, &sym->declared_at);
14754 if (sym->attr.flavor == FL_PROCEDURE && sym->attr.function)
14756 /* The specific case of an external procedure should emit an error
14757 in the case that there is no implicit type. */
14758 if (!mp_flag)
14760 if (!sym->attr.mixed_entry_master)
14761 gfc_set_default_type (sym, sym->attr.external, NULL);
14763 else
14765 /* Result may be in another namespace. */
14766 resolve_symbol (sym->result);
14768 if (!sym->result->attr.proc_pointer)
14770 sym->ts = sym->result->ts;
14771 sym->as = gfc_copy_array_spec (sym->result->as);
14772 sym->attr.dimension = sym->result->attr.dimension;
14773 sym->attr.pointer = sym->result->attr.pointer;
14774 sym->attr.allocatable = sym->result->attr.allocatable;
14775 sym->attr.contiguous = sym->result->attr.contiguous;
14780 else if (mp_flag && sym->attr.flavor == FL_PROCEDURE && sym->attr.function)
14782 bool saved_specification_expr = specification_expr;
14783 specification_expr = true;
14784 gfc_resolve_array_spec (sym->result->as, false);
14785 specification_expr = saved_specification_expr;
14788 if (sym->ts.type == BT_CLASS && sym->attr.class_ok)
14790 as = CLASS_DATA (sym)->as;
14791 class_attr = CLASS_DATA (sym)->attr;
14792 class_attr.pointer = class_attr.class_pointer;
14794 else
14796 class_attr = sym->attr;
14797 as = sym->as;
14800 /* F2008, C530. */
14801 if (sym->attr.contiguous
14802 && (!class_attr.dimension
14803 || (as->type != AS_ASSUMED_SHAPE && as->type != AS_ASSUMED_RANK
14804 && !class_attr.pointer)))
14806 gfc_error ("%qs at %L has the CONTIGUOUS attribute but is not an "
14807 "array pointer or an assumed-shape or assumed-rank array",
14808 sym->name, &sym->declared_at);
14809 return;
14812 /* Assumed size arrays and assumed shape arrays must be dummy
14813 arguments. Array-spec's of implied-shape should have been resolved to
14814 AS_EXPLICIT already. */
14816 if (as)
14818 /* If AS_IMPLIED_SHAPE makes it to here, it must be a bad
14819 specification expression. */
14820 if (as->type == AS_IMPLIED_SHAPE)
14822 int i;
14823 for (i=0; i<as->rank; i++)
14825 if (as->lower[i] != NULL && as->upper[i] == NULL)
14827 gfc_error ("Bad specification for assumed size array at %L",
14828 &as->lower[i]->where);
14829 return;
14832 gcc_unreachable();
14835 if (((as->type == AS_ASSUMED_SIZE && !as->cp_was_assumed)
14836 || as->type == AS_ASSUMED_SHAPE)
14837 && !sym->attr.dummy && !sym->attr.select_type_temporary)
14839 if (as->type == AS_ASSUMED_SIZE)
14840 gfc_error ("Assumed size array at %L must be a dummy argument",
14841 &sym->declared_at);
14842 else
14843 gfc_error ("Assumed shape array at %L must be a dummy argument",
14844 &sym->declared_at);
14845 return;
14847 /* TS 29113, C535a. */
14848 if (as->type == AS_ASSUMED_RANK && !sym->attr.dummy
14849 && !sym->attr.select_type_temporary)
14851 gfc_error ("Assumed-rank array at %L must be a dummy argument",
14852 &sym->declared_at);
14853 return;
14855 if (as->type == AS_ASSUMED_RANK
14856 && (sym->attr.codimension || sym->attr.value))
14858 gfc_error ("Assumed-rank array at %L may not have the VALUE or "
14859 "CODIMENSION attribute", &sym->declared_at);
14860 return;
14864 /* Make sure symbols with known intent or optional are really dummy
14865 variable. Because of ENTRY statement, this has to be deferred
14866 until resolution time. */
14868 if (!sym->attr.dummy
14869 && (sym->attr.optional || sym->attr.intent != INTENT_UNKNOWN))
14871 gfc_error ("Symbol at %L is not a DUMMY variable", &sym->declared_at);
14872 return;
14875 if (sym->attr.value && !sym->attr.dummy)
14877 gfc_error ("%qs at %L cannot have the VALUE attribute because "
14878 "it is not a dummy argument", sym->name, &sym->declared_at);
14879 return;
14882 if (sym->attr.value && sym->ts.type == BT_CHARACTER)
14884 gfc_charlen *cl = sym->ts.u.cl;
14885 if (!cl || !cl->length || cl->length->expr_type != EXPR_CONSTANT)
14887 gfc_error ("Character dummy variable %qs at %L with VALUE "
14888 "attribute must have constant length",
14889 sym->name, &sym->declared_at);
14890 return;
14893 if (sym->ts.is_c_interop
14894 && mpz_cmp_si (cl->length->value.integer, 1) != 0)
14896 gfc_error ("C interoperable character dummy variable %qs at %L "
14897 "with VALUE attribute must have length one",
14898 sym->name, &sym->declared_at);
14899 return;
14903 if (sym->ts.type == BT_DERIVED && !sym->attr.is_iso_c
14904 && sym->ts.u.derived->attr.generic)
14906 sym->ts.u.derived = gfc_find_dt_in_generic (sym->ts.u.derived);
14907 if (!sym->ts.u.derived)
14909 gfc_error ("The derived type %qs at %L is of type %qs, "
14910 "which has not been defined", sym->name,
14911 &sym->declared_at, sym->ts.u.derived->name);
14912 sym->ts.type = BT_UNKNOWN;
14913 return;
14917 /* Use the same constraints as TYPE(*), except for the type check
14918 and that only scalars and assumed-size arrays are permitted. */
14919 if (sym->attr.ext_attr & (1 << EXT_ATTR_NO_ARG_CHECK))
14921 if (!sym->attr.dummy)
14923 gfc_error ("Variable %s at %L with NO_ARG_CHECK attribute shall be "
14924 "a dummy argument", sym->name, &sym->declared_at);
14925 return;
14928 if (sym->ts.type != BT_ASSUMED && sym->ts.type != BT_INTEGER
14929 && sym->ts.type != BT_REAL && sym->ts.type != BT_LOGICAL
14930 && sym->ts.type != BT_COMPLEX)
14932 gfc_error ("Variable %s at %L with NO_ARG_CHECK attribute shall be "
14933 "of type TYPE(*) or of an numeric intrinsic type",
14934 sym->name, &sym->declared_at);
14935 return;
14938 if (sym->attr.allocatable || sym->attr.codimension
14939 || sym->attr.pointer || sym->attr.value)
14941 gfc_error ("Variable %s at %L with NO_ARG_CHECK attribute may not "
14942 "have the ALLOCATABLE, CODIMENSION, POINTER or VALUE "
14943 "attribute", sym->name, &sym->declared_at);
14944 return;
14947 if (sym->attr.intent == INTENT_OUT)
14949 gfc_error ("Variable %s at %L with NO_ARG_CHECK attribute may not "
14950 "have the INTENT(OUT) attribute",
14951 sym->name, &sym->declared_at);
14952 return;
14954 if (sym->attr.dimension && sym->as->type != AS_ASSUMED_SIZE)
14956 gfc_error ("Variable %s at %L with NO_ARG_CHECK attribute shall "
14957 "either be a scalar or an assumed-size array",
14958 sym->name, &sym->declared_at);
14959 return;
14962 /* Set the type to TYPE(*) and add a dimension(*) to ensure
14963 NO_ARG_CHECK is correctly handled in trans*.c, e.g. with
14964 packing. */
14965 sym->ts.type = BT_ASSUMED;
14966 sym->as = gfc_get_array_spec ();
14967 sym->as->type = AS_ASSUMED_SIZE;
14968 sym->as->rank = 1;
14969 sym->as->lower[0] = gfc_get_int_expr (gfc_default_integer_kind, NULL, 1);
14971 else if (sym->ts.type == BT_ASSUMED)
14973 /* TS 29113, C407a. */
14974 if (!sym->attr.dummy)
14976 gfc_error ("Assumed type of variable %s at %L is only permitted "
14977 "for dummy variables", sym->name, &sym->declared_at);
14978 return;
14980 if (sym->attr.allocatable || sym->attr.codimension
14981 || sym->attr.pointer || sym->attr.value)
14983 gfc_error ("Assumed-type variable %s at %L may not have the "
14984 "ALLOCATABLE, CODIMENSION, POINTER or VALUE attribute",
14985 sym->name, &sym->declared_at);
14986 return;
14988 if (sym->attr.intent == INTENT_OUT)
14990 gfc_error ("Assumed-type variable %s at %L may not have the "
14991 "INTENT(OUT) attribute",
14992 sym->name, &sym->declared_at);
14993 return;
14995 if (sym->attr.dimension && sym->as->type == AS_EXPLICIT)
14997 gfc_error ("Assumed-type variable %s at %L shall not be an "
14998 "explicit-shape array", sym->name, &sym->declared_at);
14999 return;
15003 /* If the symbol is marked as bind(c), that it is declared at module level
15004 scope and verify its type and kind. Do not do the latter for symbols
15005 that are implicitly typed because that is handled in
15006 gfc_set_default_type. Handle dummy arguments and procedure definitions
15007 separately. Also, anything that is use associated is not handled here
15008 but instead is handled in the module it is declared in. Finally, derived
15009 type definitions are allowed to be BIND(C) since that only implies that
15010 they're interoperable, and they are checked fully for interoperability
15011 when a variable is declared of that type. */
15012 if (sym->attr.is_bind_c && sym->attr.use_assoc == 0
15013 && sym->attr.dummy == 0 && sym->attr.flavor != FL_PROCEDURE
15014 && sym->attr.flavor != FL_DERIVED)
15016 bool t = true;
15018 /* First, make sure the variable is declared at the
15019 module-level scope (J3/04-007, Section 15.3). */
15020 if (sym->ns->proc_name->attr.flavor != FL_MODULE &&
15021 sym->attr.in_common == 0)
15023 gfc_error ("Variable %qs at %L cannot be BIND(C) because it "
15024 "is neither a COMMON block nor declared at the "
15025 "module level scope", sym->name, &(sym->declared_at));
15026 t = false;
15028 else if (sym->ts.type == BT_CHARACTER
15029 && (sym->ts.u.cl == NULL || sym->ts.u.cl->length == NULL
15030 || !gfc_is_constant_expr (sym->ts.u.cl->length)
15031 || mpz_cmp_si (sym->ts.u.cl->length->value.integer, 1) != 0))
15033 gfc_error ("BIND(C) Variable %qs at %L must have length one",
15034 sym->name, &sym->declared_at);
15035 t = false;
15037 else if (sym->common_head != NULL && sym->attr.implicit_type == 0)
15039 t = verify_com_block_vars_c_interop (sym->common_head);
15041 else if (sym->attr.implicit_type == 0)
15043 /* If type() declaration, we need to verify that the components
15044 of the given type are all C interoperable, etc. */
15045 if (sym->ts.type == BT_DERIVED &&
15046 sym->ts.u.derived->attr.is_c_interop != 1)
15048 /* Make sure the user marked the derived type as BIND(C). If
15049 not, call the verify routine. This could print an error
15050 for the derived type more than once if multiple variables
15051 of that type are declared. */
15052 if (sym->ts.u.derived->attr.is_bind_c != 1)
15053 verify_bind_c_derived_type (sym->ts.u.derived);
15054 t = false;
15057 /* Verify the variable itself as C interoperable if it
15058 is BIND(C). It is not possible for this to succeed if
15059 the verify_bind_c_derived_type failed, so don't have to handle
15060 any error returned by verify_bind_c_derived_type. */
15061 t = verify_bind_c_sym (sym, &(sym->ts), sym->attr.in_common,
15062 sym->common_block);
15065 if (!t)
15067 /* clear the is_bind_c flag to prevent reporting errors more than
15068 once if something failed. */
15069 sym->attr.is_bind_c = 0;
15070 return;
15074 /* If a derived type symbol has reached this point, without its
15075 type being declared, we have an error. Notice that most
15076 conditions that produce undefined derived types have already
15077 been dealt with. However, the likes of:
15078 implicit type(t) (t) ..... call foo (t) will get us here if
15079 the type is not declared in the scope of the implicit
15080 statement. Change the type to BT_UNKNOWN, both because it is so
15081 and to prevent an ICE. */
15082 if (sym->ts.type == BT_DERIVED && !sym->attr.is_iso_c
15083 && sym->ts.u.derived->components == NULL
15084 && !sym->ts.u.derived->attr.zero_comp)
15086 gfc_error ("The derived type %qs at %L is of type %qs, "
15087 "which has not been defined", sym->name,
15088 &sym->declared_at, sym->ts.u.derived->name);
15089 sym->ts.type = BT_UNKNOWN;
15090 return;
15093 /* Make sure that the derived type has been resolved and that the
15094 derived type is visible in the symbol's namespace, if it is a
15095 module function and is not PRIVATE. */
15096 if (sym->ts.type == BT_DERIVED
15097 && sym->ts.u.derived->attr.use_assoc
15098 && sym->ns->proc_name
15099 && sym->ns->proc_name->attr.flavor == FL_MODULE
15100 && !resolve_fl_derived (sym->ts.u.derived))
15101 return;
15103 /* Unless the derived-type declaration is use associated, Fortran 95
15104 does not allow public entries of private derived types.
15105 See 4.4.1 (F95) and 4.5.1.1 (F2003); and related interpretation
15106 161 in 95-006r3. */
15107 if (sym->ts.type == BT_DERIVED
15108 && sym->ns->proc_name && sym->ns->proc_name->attr.flavor == FL_MODULE
15109 && !sym->ts.u.derived->attr.use_assoc
15110 && gfc_check_symbol_access (sym)
15111 && !gfc_check_symbol_access (sym->ts.u.derived)
15112 && !gfc_notify_std (GFC_STD_F2003, "PUBLIC %s %qs at %L of PRIVATE "
15113 "derived type %qs",
15114 (sym->attr.flavor == FL_PARAMETER)
15115 ? "parameter" : "variable",
15116 sym->name, &sym->declared_at,
15117 sym->ts.u.derived->name))
15118 return;
15120 /* F2008, C1302. */
15121 if (sym->ts.type == BT_DERIVED
15122 && ((sym->ts.u.derived->from_intmod == INTMOD_ISO_FORTRAN_ENV
15123 && sym->ts.u.derived->intmod_sym_id == ISOFORTRAN_LOCK_TYPE)
15124 || sym->ts.u.derived->attr.lock_comp)
15125 && !sym->attr.codimension && !sym->ts.u.derived->attr.coarray_comp)
15127 gfc_error ("Variable %s at %L of type LOCK_TYPE or with subcomponent of "
15128 "type LOCK_TYPE must be a coarray", sym->name,
15129 &sym->declared_at);
15130 return;
15133 /* TS18508, C702/C703. */
15134 if (sym->ts.type == BT_DERIVED
15135 && ((sym->ts.u.derived->from_intmod == INTMOD_ISO_FORTRAN_ENV
15136 && sym->ts.u.derived->intmod_sym_id == ISOFORTRAN_EVENT_TYPE)
15137 || sym->ts.u.derived->attr.event_comp)
15138 && !sym->attr.codimension && !sym->ts.u.derived->attr.coarray_comp)
15140 gfc_error ("Variable %s at %L of type EVENT_TYPE or with subcomponent of "
15141 "type EVENT_TYPE must be a coarray", sym->name,
15142 &sym->declared_at);
15143 return;
15146 /* An assumed-size array with INTENT(OUT) shall not be of a type for which
15147 default initialization is defined (5.1.2.4.4). */
15148 if (sym->ts.type == BT_DERIVED
15149 && sym->attr.dummy
15150 && sym->attr.intent == INTENT_OUT
15151 && sym->as
15152 && sym->as->type == AS_ASSUMED_SIZE)
15154 for (c = sym->ts.u.derived->components; c; c = c->next)
15156 if (c->initializer)
15158 gfc_error ("The INTENT(OUT) dummy argument %qs at %L is "
15159 "ASSUMED SIZE and so cannot have a default initializer",
15160 sym->name, &sym->declared_at);
15161 return;
15166 /* F2008, C542. */
15167 if (sym->ts.type == BT_DERIVED && sym->attr.dummy
15168 && sym->attr.intent == INTENT_OUT && sym->attr.lock_comp)
15170 gfc_error ("Dummy argument %qs at %L of LOCK_TYPE shall not be "
15171 "INTENT(OUT)", sym->name, &sym->declared_at);
15172 return;
15175 /* TS18508. */
15176 if (sym->ts.type == BT_DERIVED && sym->attr.dummy
15177 && sym->attr.intent == INTENT_OUT && sym->attr.event_comp)
15179 gfc_error ("Dummy argument %qs at %L of EVENT_TYPE shall not be "
15180 "INTENT(OUT)", sym->name, &sym->declared_at);
15181 return;
15184 /* F2008, C525. */
15185 if ((((sym->ts.type == BT_DERIVED && sym->ts.u.derived->attr.coarray_comp)
15186 || (sym->ts.type == BT_CLASS && sym->attr.class_ok
15187 && CLASS_DATA (sym)->attr.coarray_comp))
15188 || class_attr.codimension)
15189 && (sym->attr.result || sym->result == sym))
15191 gfc_error ("Function result %qs at %L shall not be a coarray or have "
15192 "a coarray component", sym->name, &sym->declared_at);
15193 return;
15196 /* F2008, C524. */
15197 if (sym->attr.codimension && sym->ts.type == BT_DERIVED
15198 && sym->ts.u.derived->ts.is_iso_c)
15200 gfc_error ("Variable %qs at %L of TYPE(C_PTR) or TYPE(C_FUNPTR) "
15201 "shall not be a coarray", sym->name, &sym->declared_at);
15202 return;
15205 /* F2008, C525. */
15206 if (((sym->ts.type == BT_DERIVED && sym->ts.u.derived->attr.coarray_comp)
15207 || (sym->ts.type == BT_CLASS && sym->attr.class_ok
15208 && CLASS_DATA (sym)->attr.coarray_comp))
15209 && (class_attr.codimension || class_attr.pointer || class_attr.dimension
15210 || class_attr.allocatable))
15212 gfc_error ("Variable %qs at %L with coarray component shall be a "
15213 "nonpointer, nonallocatable scalar, which is not a coarray",
15214 sym->name, &sym->declared_at);
15215 return;
15218 /* F2008, C526. The function-result case was handled above. */
15219 if (class_attr.codimension
15220 && !(class_attr.allocatable || sym->attr.dummy || sym->attr.save
15221 || sym->attr.select_type_temporary
15222 || sym->attr.associate_var
15223 || (sym->ns->save_all && !sym->attr.automatic)
15224 || sym->ns->proc_name->attr.flavor == FL_MODULE
15225 || sym->ns->proc_name->attr.is_main_program
15226 || sym->attr.function || sym->attr.result || sym->attr.use_assoc))
15228 gfc_error ("Variable %qs at %L is a coarray and is not ALLOCATABLE, SAVE "
15229 "nor a dummy argument", sym->name, &sym->declared_at);
15230 return;
15232 /* F2008, C528. */
15233 else if (class_attr.codimension && !sym->attr.select_type_temporary
15234 && !class_attr.allocatable && as && as->cotype == AS_DEFERRED)
15236 gfc_error ("Coarray variable %qs at %L shall not have codimensions with "
15237 "deferred shape", sym->name, &sym->declared_at);
15238 return;
15240 else if (class_attr.codimension && class_attr.allocatable && as
15241 && (as->cotype != AS_DEFERRED || as->type != AS_DEFERRED))
15243 gfc_error ("Allocatable coarray variable %qs at %L must have "
15244 "deferred shape", sym->name, &sym->declared_at);
15245 return;
15248 /* F2008, C541. */
15249 if ((((sym->ts.type == BT_DERIVED && sym->ts.u.derived->attr.coarray_comp)
15250 || (sym->ts.type == BT_CLASS && sym->attr.class_ok
15251 && CLASS_DATA (sym)->attr.coarray_comp))
15252 || (class_attr.codimension && class_attr.allocatable))
15253 && sym->attr.dummy && sym->attr.intent == INTENT_OUT)
15255 gfc_error ("Variable %qs at %L is INTENT(OUT) and can thus not be an "
15256 "allocatable coarray or have coarray components",
15257 sym->name, &sym->declared_at);
15258 return;
15261 if (class_attr.codimension && sym->attr.dummy
15262 && sym->ns->proc_name && sym->ns->proc_name->attr.is_bind_c)
15264 gfc_error ("Coarray dummy variable %qs at %L not allowed in BIND(C) "
15265 "procedure %qs", sym->name, &sym->declared_at,
15266 sym->ns->proc_name->name);
15267 return;
15270 if (sym->ts.type == BT_LOGICAL
15271 && ((sym->attr.function && sym->attr.is_bind_c && sym->result == sym)
15272 || ((sym->attr.dummy || sym->attr.result) && sym->ns->proc_name
15273 && sym->ns->proc_name->attr.is_bind_c)))
15275 int i;
15276 for (i = 0; gfc_logical_kinds[i].kind; i++)
15277 if (gfc_logical_kinds[i].kind == sym->ts.kind)
15278 break;
15279 if (!gfc_logical_kinds[i].c_bool && sym->attr.dummy
15280 && !gfc_notify_std (GFC_STD_GNU, "LOGICAL dummy argument %qs at "
15281 "%L with non-C_Bool kind in BIND(C) procedure "
15282 "%qs", sym->name, &sym->declared_at,
15283 sym->ns->proc_name->name))
15284 return;
15285 else if (!gfc_logical_kinds[i].c_bool
15286 && !gfc_notify_std (GFC_STD_GNU, "LOGICAL result variable "
15287 "%qs at %L with non-C_Bool kind in "
15288 "BIND(C) procedure %qs", sym->name,
15289 &sym->declared_at,
15290 sym->attr.function ? sym->name
15291 : sym->ns->proc_name->name))
15292 return;
15295 switch (sym->attr.flavor)
15297 case FL_VARIABLE:
15298 if (!resolve_fl_variable (sym, mp_flag))
15299 return;
15300 break;
15302 case FL_PROCEDURE:
15303 if (sym->formal && !sym->formal_ns)
15305 /* Check that none of the arguments are a namelist. */
15306 gfc_formal_arglist *formal = sym->formal;
15308 for (; formal; formal = formal->next)
15309 if (formal->sym && formal->sym->attr.flavor == FL_NAMELIST)
15311 gfc_error ("Namelist %qs can not be an argument to "
15312 "subroutine or function at %L",
15313 formal->sym->name, &sym->declared_at);
15314 return;
15318 if (!resolve_fl_procedure (sym, mp_flag))
15319 return;
15320 break;
15322 case FL_NAMELIST:
15323 if (!resolve_fl_namelist (sym))
15324 return;
15325 break;
15327 case FL_PARAMETER:
15328 if (!resolve_fl_parameter (sym))
15329 return;
15330 break;
15332 default:
15333 break;
15336 /* Resolve array specifier. Check as well some constraints
15337 on COMMON blocks. */
15339 check_constant = sym->attr.in_common && !sym->attr.pointer;
15341 /* Set the formal_arg_flag so that check_conflict will not throw
15342 an error for host associated variables in the specification
15343 expression for an array_valued function. */
15344 if (sym->attr.function && sym->as)
15345 formal_arg_flag = true;
15347 saved_specification_expr = specification_expr;
15348 specification_expr = true;
15349 gfc_resolve_array_spec (sym->as, check_constant);
15350 specification_expr = saved_specification_expr;
15352 formal_arg_flag = false;
15354 /* Resolve formal namespaces. */
15355 if (sym->formal_ns && sym->formal_ns != gfc_current_ns
15356 && !sym->attr.contained && !sym->attr.intrinsic)
15357 gfc_resolve (sym->formal_ns);
15359 /* Make sure the formal namespace is present. */
15360 if (sym->formal && !sym->formal_ns)
15362 gfc_formal_arglist *formal = sym->formal;
15363 while (formal && !formal->sym)
15364 formal = formal->next;
15366 if (formal)
15368 sym->formal_ns = formal->sym->ns;
15369 if (sym->ns != formal->sym->ns)
15370 sym->formal_ns->refs++;
15374 /* Check threadprivate restrictions. */
15375 if (sym->attr.threadprivate && !sym->attr.save
15376 && !(sym->ns->save_all && !sym->attr.automatic)
15377 && (!sym->attr.in_common
15378 && sym->module == NULL
15379 && (sym->ns->proc_name == NULL
15380 || sym->ns->proc_name->attr.flavor != FL_MODULE)))
15381 gfc_error ("Threadprivate at %L isn't SAVEd", &sym->declared_at);
15383 /* Check omp declare target restrictions. */
15384 if (sym->attr.omp_declare_target
15385 && sym->attr.flavor == FL_VARIABLE
15386 && !sym->attr.save
15387 && !(sym->ns->save_all && !sym->attr.automatic)
15388 && (!sym->attr.in_common
15389 && sym->module == NULL
15390 && (sym->ns->proc_name == NULL
15391 || sym->ns->proc_name->attr.flavor != FL_MODULE)))
15392 gfc_error ("!$OMP DECLARE TARGET variable %qs at %L isn't SAVEd",
15393 sym->name, &sym->declared_at);
15395 /* If we have come this far we can apply default-initializers, as
15396 described in 14.7.5, to those variables that have not already
15397 been assigned one. */
15398 if (sym->ts.type == BT_DERIVED
15399 && !sym->value
15400 && !sym->attr.allocatable
15401 && !sym->attr.alloc_comp)
15403 symbol_attribute *a = &sym->attr;
15405 if ((!a->save && !a->dummy && !a->pointer
15406 && !a->in_common && !a->use_assoc
15407 && a->referenced
15408 && !((a->function || a->result)
15409 && (!a->dimension
15410 || sym->ts.u.derived->attr.alloc_comp
15411 || sym->ts.u.derived->attr.pointer_comp))
15412 && !(a->function && sym != sym->result))
15413 || (a->dummy && a->intent == INTENT_OUT && !a->pointer))
15414 apply_default_init (sym);
15415 else if (a->function && sym->result && a->access != ACCESS_PRIVATE
15416 && (sym->ts.u.derived->attr.alloc_comp
15417 || sym->ts.u.derived->attr.pointer_comp))
15418 /* Mark the result symbol to be referenced, when it has allocatable
15419 components. */
15420 sym->result->attr.referenced = 1;
15423 if (sym->ts.type == BT_CLASS && sym->ns == gfc_current_ns
15424 && sym->attr.dummy && sym->attr.intent == INTENT_OUT
15425 && !CLASS_DATA (sym)->attr.class_pointer
15426 && !CLASS_DATA (sym)->attr.allocatable)
15427 apply_default_init (sym);
15429 /* If this symbol has a type-spec, check it. */
15430 if (sym->attr.flavor == FL_VARIABLE || sym->attr.flavor == FL_PARAMETER
15431 || (sym->attr.flavor == FL_PROCEDURE && sym->attr.function))
15432 if (!resolve_typespec_used (&sym->ts, &sym->declared_at, sym->name))
15433 return;
15435 if (sym->param_list)
15436 resolve_pdt (sym);
15440 /************* Resolve DATA statements *************/
15442 static struct
15444 gfc_data_value *vnode;
15445 mpz_t left;
15447 values;
15450 /* Advance the values structure to point to the next value in the data list. */
15452 static bool
15453 next_data_value (void)
15455 while (mpz_cmp_ui (values.left, 0) == 0)
15458 if (values.vnode->next == NULL)
15459 return false;
15461 values.vnode = values.vnode->next;
15462 mpz_set (values.left, values.vnode->repeat);
15465 return true;
15469 static bool
15470 check_data_variable (gfc_data_variable *var, locus *where)
15472 gfc_expr *e;
15473 mpz_t size;
15474 mpz_t offset;
15475 bool t;
15476 ar_type mark = AR_UNKNOWN;
15477 int i;
15478 mpz_t section_index[GFC_MAX_DIMENSIONS];
15479 gfc_ref *ref;
15480 gfc_array_ref *ar;
15481 gfc_symbol *sym;
15482 int has_pointer;
15484 if (!gfc_resolve_expr (var->expr))
15485 return false;
15487 ar = NULL;
15488 mpz_init_set_si (offset, 0);
15489 e = var->expr;
15491 if (e->expr_type == EXPR_FUNCTION && e->value.function.isym
15492 && e->value.function.isym->id == GFC_ISYM_CAF_GET)
15493 e = e->value.function.actual->expr;
15495 if (e->expr_type != EXPR_VARIABLE)
15497 gfc_error ("Expecting definable entity near %L", where);
15498 return false;
15501 sym = e->symtree->n.sym;
15503 if (sym->ns->is_block_data && !sym->attr.in_common)
15505 gfc_error ("BLOCK DATA element %qs at %L must be in COMMON",
15506 sym->name, &sym->declared_at);
15507 return false;
15510 if (e->ref == NULL && sym->as)
15512 gfc_error ("DATA array %qs at %L must be specified in a previous"
15513 " declaration", sym->name, where);
15514 return false;
15517 has_pointer = sym->attr.pointer;
15519 if (gfc_is_coindexed (e))
15521 gfc_error ("DATA element %qs at %L cannot have a coindex", sym->name,
15522 where);
15523 return false;
15526 for (ref = e->ref; ref; ref = ref->next)
15528 if (ref->type == REF_COMPONENT && ref->u.c.component->attr.pointer)
15529 has_pointer = 1;
15531 if (has_pointer
15532 && ref->type == REF_ARRAY
15533 && ref->u.ar.type != AR_FULL)
15535 gfc_error ("DATA element %qs at %L is a pointer and so must "
15536 "be a full array", sym->name, where);
15537 return false;
15541 if (e->rank == 0 || has_pointer)
15543 mpz_init_set_ui (size, 1);
15544 ref = NULL;
15546 else
15548 ref = e->ref;
15550 /* Find the array section reference. */
15551 for (ref = e->ref; ref; ref = ref->next)
15553 if (ref->type != REF_ARRAY)
15554 continue;
15555 if (ref->u.ar.type == AR_ELEMENT)
15556 continue;
15557 break;
15559 gcc_assert (ref);
15561 /* Set marks according to the reference pattern. */
15562 switch (ref->u.ar.type)
15564 case AR_FULL:
15565 mark = AR_FULL;
15566 break;
15568 case AR_SECTION:
15569 ar = &ref->u.ar;
15570 /* Get the start position of array section. */
15571 gfc_get_section_index (ar, section_index, &offset);
15572 mark = AR_SECTION;
15573 break;
15575 default:
15576 gcc_unreachable ();
15579 if (!gfc_array_size (e, &size))
15581 gfc_error ("Nonconstant array section at %L in DATA statement",
15582 where);
15583 mpz_clear (offset);
15584 return false;
15588 t = true;
15590 while (mpz_cmp_ui (size, 0) > 0)
15592 if (!next_data_value ())
15594 gfc_error ("DATA statement at %L has more variables than values",
15595 where);
15596 t = false;
15597 break;
15600 t = gfc_check_assign (var->expr, values.vnode->expr, 0);
15601 if (!t)
15602 break;
15604 /* If we have more than one element left in the repeat count,
15605 and we have more than one element left in the target variable,
15606 then create a range assignment. */
15607 /* FIXME: Only done for full arrays for now, since array sections
15608 seem tricky. */
15609 if (mark == AR_FULL && ref && ref->next == NULL
15610 && mpz_cmp_ui (values.left, 1) > 0 && mpz_cmp_ui (size, 1) > 0)
15612 mpz_t range;
15614 if (mpz_cmp (size, values.left) >= 0)
15616 mpz_init_set (range, values.left);
15617 mpz_sub (size, size, values.left);
15618 mpz_set_ui (values.left, 0);
15620 else
15622 mpz_init_set (range, size);
15623 mpz_sub (values.left, values.left, size);
15624 mpz_set_ui (size, 0);
15627 t = gfc_assign_data_value (var->expr, values.vnode->expr,
15628 offset, &range);
15630 mpz_add (offset, offset, range);
15631 mpz_clear (range);
15633 if (!t)
15634 break;
15637 /* Assign initial value to symbol. */
15638 else
15640 mpz_sub_ui (values.left, values.left, 1);
15641 mpz_sub_ui (size, size, 1);
15643 t = gfc_assign_data_value (var->expr, values.vnode->expr,
15644 offset, NULL);
15645 if (!t)
15646 break;
15648 if (mark == AR_FULL)
15649 mpz_add_ui (offset, offset, 1);
15651 /* Modify the array section indexes and recalculate the offset
15652 for next element. */
15653 else if (mark == AR_SECTION)
15654 gfc_advance_section (section_index, ar, &offset);
15658 if (mark == AR_SECTION)
15660 for (i = 0; i < ar->dimen; i++)
15661 mpz_clear (section_index[i]);
15664 mpz_clear (size);
15665 mpz_clear (offset);
15667 return t;
15671 static bool traverse_data_var (gfc_data_variable *, locus *);
15673 /* Iterate over a list of elements in a DATA statement. */
15675 static bool
15676 traverse_data_list (gfc_data_variable *var, locus *where)
15678 mpz_t trip;
15679 iterator_stack frame;
15680 gfc_expr *e, *start, *end, *step;
15681 bool retval = true;
15683 mpz_init (frame.value);
15684 mpz_init (trip);
15686 start = gfc_copy_expr (var->iter.start);
15687 end = gfc_copy_expr (var->iter.end);
15688 step = gfc_copy_expr (var->iter.step);
15690 if (!gfc_simplify_expr (start, 1)
15691 || start->expr_type != EXPR_CONSTANT)
15693 gfc_error ("start of implied-do loop at %L could not be "
15694 "simplified to a constant value", &start->where);
15695 retval = false;
15696 goto cleanup;
15698 if (!gfc_simplify_expr (end, 1)
15699 || end->expr_type != EXPR_CONSTANT)
15701 gfc_error ("end of implied-do loop at %L could not be "
15702 "simplified to a constant value", &start->where);
15703 retval = false;
15704 goto cleanup;
15706 if (!gfc_simplify_expr (step, 1)
15707 || step->expr_type != EXPR_CONSTANT)
15709 gfc_error ("step of implied-do loop at %L could not be "
15710 "simplified to a constant value", &start->where);
15711 retval = false;
15712 goto cleanup;
15715 mpz_set (trip, end->value.integer);
15716 mpz_sub (trip, trip, start->value.integer);
15717 mpz_add (trip, trip, step->value.integer);
15719 mpz_div (trip, trip, step->value.integer);
15721 mpz_set (frame.value, start->value.integer);
15723 frame.prev = iter_stack;
15724 frame.variable = var->iter.var->symtree;
15725 iter_stack = &frame;
15727 while (mpz_cmp_ui (trip, 0) > 0)
15729 if (!traverse_data_var (var->list, where))
15731 retval = false;
15732 goto cleanup;
15735 e = gfc_copy_expr (var->expr);
15736 if (!gfc_simplify_expr (e, 1))
15738 gfc_free_expr (e);
15739 retval = false;
15740 goto cleanup;
15743 mpz_add (frame.value, frame.value, step->value.integer);
15745 mpz_sub_ui (trip, trip, 1);
15748 cleanup:
15749 mpz_clear (frame.value);
15750 mpz_clear (trip);
15752 gfc_free_expr (start);
15753 gfc_free_expr (end);
15754 gfc_free_expr (step);
15756 iter_stack = frame.prev;
15757 return retval;
15761 /* Type resolve variables in the variable list of a DATA statement. */
15763 static bool
15764 traverse_data_var (gfc_data_variable *var, locus *where)
15766 bool t;
15768 for (; var; var = var->next)
15770 if (var->expr == NULL)
15771 t = traverse_data_list (var, where);
15772 else
15773 t = check_data_variable (var, where);
15775 if (!t)
15776 return false;
15779 return true;
15783 /* Resolve the expressions and iterators associated with a data statement.
15784 This is separate from the assignment checking because data lists should
15785 only be resolved once. */
15787 static bool
15788 resolve_data_variables (gfc_data_variable *d)
15790 for (; d; d = d->next)
15792 if (d->list == NULL)
15794 if (!gfc_resolve_expr (d->expr))
15795 return false;
15797 else
15799 if (!gfc_resolve_iterator (&d->iter, false, true))
15800 return false;
15802 if (!resolve_data_variables (d->list))
15803 return false;
15807 return true;
15811 /* Resolve a single DATA statement. We implement this by storing a pointer to
15812 the value list into static variables, and then recursively traversing the
15813 variables list, expanding iterators and such. */
15815 static void
15816 resolve_data (gfc_data *d)
15819 if (!resolve_data_variables (d->var))
15820 return;
15822 values.vnode = d->value;
15823 if (d->value == NULL)
15824 mpz_set_ui (values.left, 0);
15825 else
15826 mpz_set (values.left, d->value->repeat);
15828 if (!traverse_data_var (d->var, &d->where))
15829 return;
15831 /* At this point, we better not have any values left. */
15833 if (next_data_value ())
15834 gfc_error ("DATA statement at %L has more values than variables",
15835 &d->where);
15839 /* 12.6 Constraint: In a pure subprogram any variable which is in common or
15840 accessed by host or use association, is a dummy argument to a pure function,
15841 is a dummy argument with INTENT (IN) to a pure subroutine, or an object that
15842 is storage associated with any such variable, shall not be used in the
15843 following contexts: (clients of this function). */
15845 /* Determines if a variable is not 'pure', i.e., not assignable within a pure
15846 procedure. Returns zero if assignment is OK, nonzero if there is a
15847 problem. */
15849 gfc_impure_variable (gfc_symbol *sym)
15851 gfc_symbol *proc;
15852 gfc_namespace *ns;
15854 if (sym->attr.use_assoc || sym->attr.in_common)
15855 return 1;
15857 /* Check if the symbol's ns is inside the pure procedure. */
15858 for (ns = gfc_current_ns; ns; ns = ns->parent)
15860 if (ns == sym->ns)
15861 break;
15862 if (ns->proc_name->attr.flavor == FL_PROCEDURE && !sym->attr.function)
15863 return 1;
15866 proc = sym->ns->proc_name;
15867 if (sym->attr.dummy
15868 && ((proc->attr.subroutine && sym->attr.intent == INTENT_IN)
15869 || proc->attr.function))
15870 return 1;
15872 /* TODO: Sort out what can be storage associated, if anything, and include
15873 it here. In principle equivalences should be scanned but it does not
15874 seem to be possible to storage associate an impure variable this way. */
15875 return 0;
15879 /* Test whether a symbol is pure or not. For a NULL pointer, checks if the
15880 current namespace is inside a pure procedure. */
15883 gfc_pure (gfc_symbol *sym)
15885 symbol_attribute attr;
15886 gfc_namespace *ns;
15888 if (sym == NULL)
15890 /* Check if the current namespace or one of its parents
15891 belongs to a pure procedure. */
15892 for (ns = gfc_current_ns; ns; ns = ns->parent)
15894 sym = ns->proc_name;
15895 if (sym == NULL)
15896 return 0;
15897 attr = sym->attr;
15898 if (attr.flavor == FL_PROCEDURE && attr.pure)
15899 return 1;
15901 return 0;
15904 attr = sym->attr;
15906 return attr.flavor == FL_PROCEDURE && attr.pure;
15910 /* Test whether a symbol is implicitly pure or not. For a NULL pointer,
15911 checks if the current namespace is implicitly pure. Note that this
15912 function returns false for a PURE procedure. */
15915 gfc_implicit_pure (gfc_symbol *sym)
15917 gfc_namespace *ns;
15919 if (sym == NULL)
15921 /* Check if the current procedure is implicit_pure. Walk up
15922 the procedure list until we find a procedure. */
15923 for (ns = gfc_current_ns; ns; ns = ns->parent)
15925 sym = ns->proc_name;
15926 if (sym == NULL)
15927 return 0;
15929 if (sym->attr.flavor == FL_PROCEDURE)
15930 break;
15934 return sym->attr.flavor == FL_PROCEDURE && sym->attr.implicit_pure
15935 && !sym->attr.pure;
15939 void
15940 gfc_unset_implicit_pure (gfc_symbol *sym)
15942 gfc_namespace *ns;
15944 if (sym == NULL)
15946 /* Check if the current procedure is implicit_pure. Walk up
15947 the procedure list until we find a procedure. */
15948 for (ns = gfc_current_ns; ns; ns = ns->parent)
15950 sym = ns->proc_name;
15951 if (sym == NULL)
15952 return;
15954 if (sym->attr.flavor == FL_PROCEDURE)
15955 break;
15959 if (sym->attr.flavor == FL_PROCEDURE)
15960 sym->attr.implicit_pure = 0;
15961 else
15962 sym->attr.pure = 0;
15966 /* Test whether the current procedure is elemental or not. */
15969 gfc_elemental (gfc_symbol *sym)
15971 symbol_attribute attr;
15973 if (sym == NULL)
15974 sym = gfc_current_ns->proc_name;
15975 if (sym == NULL)
15976 return 0;
15977 attr = sym->attr;
15979 return attr.flavor == FL_PROCEDURE && attr.elemental;
15983 /* Warn about unused labels. */
15985 static void
15986 warn_unused_fortran_label (gfc_st_label *label)
15988 if (label == NULL)
15989 return;
15991 warn_unused_fortran_label (label->left);
15993 if (label->defined == ST_LABEL_UNKNOWN)
15994 return;
15996 switch (label->referenced)
15998 case ST_LABEL_UNKNOWN:
15999 gfc_warning (OPT_Wunused_label, "Label %d at %L defined but not used",
16000 label->value, &label->where);
16001 break;
16003 case ST_LABEL_BAD_TARGET:
16004 gfc_warning (OPT_Wunused_label,
16005 "Label %d at %L defined but cannot be used",
16006 label->value, &label->where);
16007 break;
16009 default:
16010 break;
16013 warn_unused_fortran_label (label->right);
16017 /* Returns the sequence type of a symbol or sequence. */
16019 static seq_type
16020 sequence_type (gfc_typespec ts)
16022 seq_type result;
16023 gfc_component *c;
16025 switch (ts.type)
16027 case BT_DERIVED:
16029 if (ts.u.derived->components == NULL)
16030 return SEQ_NONDEFAULT;
16032 result = sequence_type (ts.u.derived->components->ts);
16033 for (c = ts.u.derived->components->next; c; c = c->next)
16034 if (sequence_type (c->ts) != result)
16035 return SEQ_MIXED;
16037 return result;
16039 case BT_CHARACTER:
16040 if (ts.kind != gfc_default_character_kind)
16041 return SEQ_NONDEFAULT;
16043 return SEQ_CHARACTER;
16045 case BT_INTEGER:
16046 if (ts.kind != gfc_default_integer_kind)
16047 return SEQ_NONDEFAULT;
16049 return SEQ_NUMERIC;
16051 case BT_REAL:
16052 if (!(ts.kind == gfc_default_real_kind
16053 || ts.kind == gfc_default_double_kind))
16054 return SEQ_NONDEFAULT;
16056 return SEQ_NUMERIC;
16058 case BT_COMPLEX:
16059 if (ts.kind != gfc_default_complex_kind)
16060 return SEQ_NONDEFAULT;
16062 return SEQ_NUMERIC;
16064 case BT_LOGICAL:
16065 if (ts.kind != gfc_default_logical_kind)
16066 return SEQ_NONDEFAULT;
16068 return SEQ_NUMERIC;
16070 default:
16071 return SEQ_NONDEFAULT;
16076 /* Resolve derived type EQUIVALENCE object. */
16078 static bool
16079 resolve_equivalence_derived (gfc_symbol *derived, gfc_symbol *sym, gfc_expr *e)
16081 gfc_component *c = derived->components;
16083 if (!derived)
16084 return true;
16086 /* Shall not be an object of nonsequence derived type. */
16087 if (!derived->attr.sequence)
16089 gfc_error ("Derived type variable %qs at %L must have SEQUENCE "
16090 "attribute to be an EQUIVALENCE object", sym->name,
16091 &e->where);
16092 return false;
16095 /* Shall not have allocatable components. */
16096 if (derived->attr.alloc_comp)
16098 gfc_error ("Derived type variable %qs at %L cannot have ALLOCATABLE "
16099 "components to be an EQUIVALENCE object",sym->name,
16100 &e->where);
16101 return false;
16104 if (sym->attr.in_common && gfc_has_default_initializer (sym->ts.u.derived))
16106 gfc_error ("Derived type variable %qs at %L with default "
16107 "initialization cannot be in EQUIVALENCE with a variable "
16108 "in COMMON", sym->name, &e->where);
16109 return false;
16112 for (; c ; c = c->next)
16114 if (gfc_bt_struct (c->ts.type)
16115 && (!resolve_equivalence_derived(c->ts.u.derived, sym, e)))
16116 return false;
16118 /* Shall not be an object of sequence derived type containing a pointer
16119 in the structure. */
16120 if (c->attr.pointer)
16122 gfc_error ("Derived type variable %qs at %L with pointer "
16123 "component(s) cannot be an EQUIVALENCE object",
16124 sym->name, &e->where);
16125 return false;
16128 return true;
16132 /* Resolve equivalence object.
16133 An EQUIVALENCE object shall not be a dummy argument, a pointer, a target,
16134 an allocatable array, an object of nonsequence derived type, an object of
16135 sequence derived type containing a pointer at any level of component
16136 selection, an automatic object, a function name, an entry name, a result
16137 name, a named constant, a structure component, or a subobject of any of
16138 the preceding objects. A substring shall not have length zero. A
16139 derived type shall not have components with default initialization nor
16140 shall two objects of an equivalence group be initialized.
16141 Either all or none of the objects shall have an protected attribute.
16142 The simple constraints are done in symbol.c(check_conflict) and the rest
16143 are implemented here. */
16145 static void
16146 resolve_equivalence (gfc_equiv *eq)
16148 gfc_symbol *sym;
16149 gfc_symbol *first_sym;
16150 gfc_expr *e;
16151 gfc_ref *r;
16152 locus *last_where = NULL;
16153 seq_type eq_type, last_eq_type;
16154 gfc_typespec *last_ts;
16155 int object, cnt_protected;
16156 const char *msg;
16158 last_ts = &eq->expr->symtree->n.sym->ts;
16160 first_sym = eq->expr->symtree->n.sym;
16162 cnt_protected = 0;
16164 for (object = 1; eq; eq = eq->eq, object++)
16166 e = eq->expr;
16168 e->ts = e->symtree->n.sym->ts;
16169 /* match_varspec might not know yet if it is seeing
16170 array reference or substring reference, as it doesn't
16171 know the types. */
16172 if (e->ref && e->ref->type == REF_ARRAY)
16174 gfc_ref *ref = e->ref;
16175 sym = e->symtree->n.sym;
16177 if (sym->attr.dimension)
16179 ref->u.ar.as = sym->as;
16180 ref = ref->next;
16183 /* For substrings, convert REF_ARRAY into REF_SUBSTRING. */
16184 if (e->ts.type == BT_CHARACTER
16185 && ref
16186 && ref->type == REF_ARRAY
16187 && ref->u.ar.dimen == 1
16188 && ref->u.ar.dimen_type[0] == DIMEN_RANGE
16189 && ref->u.ar.stride[0] == NULL)
16191 gfc_expr *start = ref->u.ar.start[0];
16192 gfc_expr *end = ref->u.ar.end[0];
16193 void *mem = NULL;
16195 /* Optimize away the (:) reference. */
16196 if (start == NULL && end == NULL)
16198 if (e->ref == ref)
16199 e->ref = ref->next;
16200 else
16201 e->ref->next = ref->next;
16202 mem = ref;
16204 else
16206 ref->type = REF_SUBSTRING;
16207 if (start == NULL)
16208 start = gfc_get_int_expr (gfc_charlen_int_kind,
16209 NULL, 1);
16210 ref->u.ss.start = start;
16211 if (end == NULL && e->ts.u.cl)
16212 end = gfc_copy_expr (e->ts.u.cl->length);
16213 ref->u.ss.end = end;
16214 ref->u.ss.length = e->ts.u.cl;
16215 e->ts.u.cl = NULL;
16217 ref = ref->next;
16218 free (mem);
16221 /* Any further ref is an error. */
16222 if (ref)
16224 gcc_assert (ref->type == REF_ARRAY);
16225 gfc_error ("Syntax error in EQUIVALENCE statement at %L",
16226 &ref->u.ar.where);
16227 continue;
16231 if (!gfc_resolve_expr (e))
16232 continue;
16234 sym = e->symtree->n.sym;
16236 if (sym->attr.is_protected)
16237 cnt_protected++;
16238 if (cnt_protected > 0 && cnt_protected != object)
16240 gfc_error ("Either all or none of the objects in the "
16241 "EQUIVALENCE set at %L shall have the "
16242 "PROTECTED attribute",
16243 &e->where);
16244 break;
16247 /* Shall not equivalence common block variables in a PURE procedure. */
16248 if (sym->ns->proc_name
16249 && sym->ns->proc_name->attr.pure
16250 && sym->attr.in_common)
16252 /* Need to check for symbols that may have entered the pure
16253 procedure via a USE statement. */
16254 bool saw_sym = false;
16255 if (sym->ns->use_stmts)
16257 gfc_use_rename *r;
16258 for (r = sym->ns->use_stmts->rename; r; r = r->next)
16259 if (strcmp(r->use_name, sym->name) == 0) saw_sym = true;
16261 else
16262 saw_sym = true;
16264 if (saw_sym)
16265 gfc_error ("COMMON block member %qs at %L cannot be an "
16266 "EQUIVALENCE object in the pure procedure %qs",
16267 sym->name, &e->where, sym->ns->proc_name->name);
16268 break;
16271 /* Shall not be a named constant. */
16272 if (e->expr_type == EXPR_CONSTANT)
16274 gfc_error ("Named constant %qs at %L cannot be an EQUIVALENCE "
16275 "object", sym->name, &e->where);
16276 continue;
16279 if (e->ts.type == BT_DERIVED
16280 && !resolve_equivalence_derived (e->ts.u.derived, sym, e))
16281 continue;
16283 /* Check that the types correspond correctly:
16284 Note 5.28:
16285 A numeric sequence structure may be equivalenced to another sequence
16286 structure, an object of default integer type, default real type, double
16287 precision real type, default logical type such that components of the
16288 structure ultimately only become associated to objects of the same
16289 kind. A character sequence structure may be equivalenced to an object
16290 of default character kind or another character sequence structure.
16291 Other objects may be equivalenced only to objects of the same type and
16292 kind parameters. */
16294 /* Identical types are unconditionally OK. */
16295 if (object == 1 || gfc_compare_types (last_ts, &sym->ts))
16296 goto identical_types;
16298 last_eq_type = sequence_type (*last_ts);
16299 eq_type = sequence_type (sym->ts);
16301 /* Since the pair of objects is not of the same type, mixed or
16302 non-default sequences can be rejected. */
16304 msg = "Sequence %s with mixed components in EQUIVALENCE "
16305 "statement at %L with different type objects";
16306 if ((object ==2
16307 && last_eq_type == SEQ_MIXED
16308 && !gfc_notify_std (GFC_STD_GNU, msg, first_sym->name, last_where))
16309 || (eq_type == SEQ_MIXED
16310 && !gfc_notify_std (GFC_STD_GNU, msg, sym->name, &e->where)))
16311 continue;
16313 msg = "Non-default type object or sequence %s in EQUIVALENCE "
16314 "statement at %L with objects of different type";
16315 if ((object ==2
16316 && last_eq_type == SEQ_NONDEFAULT
16317 && !gfc_notify_std (GFC_STD_GNU, msg, first_sym->name, last_where))
16318 || (eq_type == SEQ_NONDEFAULT
16319 && !gfc_notify_std (GFC_STD_GNU, msg, sym->name, &e->where)))
16320 continue;
16322 msg ="Non-CHARACTER object %qs in default CHARACTER "
16323 "EQUIVALENCE statement at %L";
16324 if (last_eq_type == SEQ_CHARACTER
16325 && eq_type != SEQ_CHARACTER
16326 && !gfc_notify_std (GFC_STD_GNU, msg, sym->name, &e->where))
16327 continue;
16329 msg ="Non-NUMERIC object %qs in default NUMERIC "
16330 "EQUIVALENCE statement at %L";
16331 if (last_eq_type == SEQ_NUMERIC
16332 && eq_type != SEQ_NUMERIC
16333 && !gfc_notify_std (GFC_STD_GNU, msg, sym->name, &e->where))
16334 continue;
16336 identical_types:
16337 last_ts =&sym->ts;
16338 last_where = &e->where;
16340 if (!e->ref)
16341 continue;
16343 /* Shall not be an automatic array. */
16344 if (e->ref->type == REF_ARRAY
16345 && !gfc_resolve_array_spec (e->ref->u.ar.as, 1))
16347 gfc_error ("Array %qs at %L with non-constant bounds cannot be "
16348 "an EQUIVALENCE object", sym->name, &e->where);
16349 continue;
16352 r = e->ref;
16353 while (r)
16355 /* Shall not be a structure component. */
16356 if (r->type == REF_COMPONENT)
16358 gfc_error ("Structure component %qs at %L cannot be an "
16359 "EQUIVALENCE object",
16360 r->u.c.component->name, &e->where);
16361 break;
16364 /* A substring shall not have length zero. */
16365 if (r->type == REF_SUBSTRING)
16367 if (compare_bound (r->u.ss.start, r->u.ss.end) == CMP_GT)
16369 gfc_error ("Substring at %L has length zero",
16370 &r->u.ss.start->where);
16371 break;
16374 r = r->next;
16380 /* Function called by resolve_fntype to flag other symbol used in the
16381 length type parameter specification of function resuls. */
16383 static bool
16384 flag_fn_result_spec (gfc_expr *expr,
16385 gfc_symbol *sym,
16386 int *f ATTRIBUTE_UNUSED)
16388 gfc_namespace *ns;
16389 gfc_symbol *s;
16391 if (expr->expr_type == EXPR_VARIABLE)
16393 s = expr->symtree->n.sym;
16394 for (ns = s->ns; ns; ns = ns->parent)
16395 if (!ns->parent)
16396 break;
16398 if (sym == s)
16400 gfc_error ("Self reference in character length expression "
16401 "for %qs at %L", sym->name, &expr->where);
16402 return true;
16405 if (!s->fn_result_spec
16406 && s->attr.flavor == FL_PARAMETER)
16408 /* Function contained in a module.... */
16409 if (ns->proc_name && ns->proc_name->attr.flavor == FL_MODULE)
16411 gfc_symtree *st;
16412 s->fn_result_spec = 1;
16413 /* Make sure that this symbol is translated as a module
16414 variable. */
16415 st = gfc_get_unique_symtree (ns);
16416 st->n.sym = s;
16417 s->refs++;
16419 /* ... which is use associated and called. */
16420 else if (s->attr.use_assoc || s->attr.used_in_submodule
16422 /* External function matched with an interface. */
16423 (s->ns->proc_name
16424 && ((s->ns == ns
16425 && s->ns->proc_name->attr.if_source == IFSRC_DECL)
16426 || s->ns->proc_name->attr.if_source == IFSRC_IFBODY)
16427 && s->ns->proc_name->attr.function))
16428 s->fn_result_spec = 1;
16431 return false;
16435 /* Resolve function and ENTRY types, issue diagnostics if needed. */
16437 static void
16438 resolve_fntype (gfc_namespace *ns)
16440 gfc_entry_list *el;
16441 gfc_symbol *sym;
16443 if (ns->proc_name == NULL || !ns->proc_name->attr.function)
16444 return;
16446 /* If there are any entries, ns->proc_name is the entry master
16447 synthetic symbol and ns->entries->sym actual FUNCTION symbol. */
16448 if (ns->entries)
16449 sym = ns->entries->sym;
16450 else
16451 sym = ns->proc_name;
16452 if (sym->result == sym
16453 && sym->ts.type == BT_UNKNOWN
16454 && !gfc_set_default_type (sym, 0, NULL)
16455 && !sym->attr.untyped)
16457 gfc_error ("Function %qs at %L has no IMPLICIT type",
16458 sym->name, &sym->declared_at);
16459 sym->attr.untyped = 1;
16462 if (sym->ts.type == BT_DERIVED && !sym->ts.u.derived->attr.use_assoc
16463 && !sym->attr.contained
16464 && !gfc_check_symbol_access (sym->ts.u.derived)
16465 && gfc_check_symbol_access (sym))
16467 gfc_notify_std (GFC_STD_F2003, "PUBLIC function %qs at "
16468 "%L of PRIVATE type %qs", sym->name,
16469 &sym->declared_at, sym->ts.u.derived->name);
16472 if (ns->entries)
16473 for (el = ns->entries->next; el; el = el->next)
16475 if (el->sym->result == el->sym
16476 && el->sym->ts.type == BT_UNKNOWN
16477 && !gfc_set_default_type (el->sym, 0, NULL)
16478 && !el->sym->attr.untyped)
16480 gfc_error ("ENTRY %qs at %L has no IMPLICIT type",
16481 el->sym->name, &el->sym->declared_at);
16482 el->sym->attr.untyped = 1;
16486 if (sym->ts.type == BT_CHARACTER)
16487 gfc_traverse_expr (sym->ts.u.cl->length, sym, flag_fn_result_spec, 0);
16491 /* 12.3.2.1.1 Defined operators. */
16493 static bool
16494 check_uop_procedure (gfc_symbol *sym, locus where)
16496 gfc_formal_arglist *formal;
16498 if (!sym->attr.function)
16500 gfc_error ("User operator procedure %qs at %L must be a FUNCTION",
16501 sym->name, &where);
16502 return false;
16505 if (sym->ts.type == BT_CHARACTER
16506 && !((sym->ts.u.cl && sym->ts.u.cl->length) || sym->ts.deferred)
16507 && !(sym->result && ((sym->result->ts.u.cl
16508 && sym->result->ts.u.cl->length) || sym->result->ts.deferred)))
16510 gfc_error ("User operator procedure %qs at %L cannot be assumed "
16511 "character length", sym->name, &where);
16512 return false;
16515 formal = gfc_sym_get_dummy_args (sym);
16516 if (!formal || !formal->sym)
16518 gfc_error ("User operator procedure %qs at %L must have at least "
16519 "one argument", sym->name, &where);
16520 return false;
16523 if (formal->sym->attr.intent != INTENT_IN)
16525 gfc_error ("First argument of operator interface at %L must be "
16526 "INTENT(IN)", &where);
16527 return false;
16530 if (formal->sym->attr.optional)
16532 gfc_error ("First argument of operator interface at %L cannot be "
16533 "optional", &where);
16534 return false;
16537 formal = formal->next;
16538 if (!formal || !formal->sym)
16539 return true;
16541 if (formal->sym->attr.intent != INTENT_IN)
16543 gfc_error ("Second argument of operator interface at %L must be "
16544 "INTENT(IN)", &where);
16545 return false;
16548 if (formal->sym->attr.optional)
16550 gfc_error ("Second argument of operator interface at %L cannot be "
16551 "optional", &where);
16552 return false;
16555 if (formal->next)
16557 gfc_error ("Operator interface at %L must have, at most, two "
16558 "arguments", &where);
16559 return false;
16562 return true;
16565 static void
16566 gfc_resolve_uops (gfc_symtree *symtree)
16568 gfc_interface *itr;
16570 if (symtree == NULL)
16571 return;
16573 gfc_resolve_uops (symtree->left);
16574 gfc_resolve_uops (symtree->right);
16576 for (itr = symtree->n.uop->op; itr; itr = itr->next)
16577 check_uop_procedure (itr->sym, itr->sym->declared_at);
16581 /* Examine all of the expressions associated with a program unit,
16582 assign types to all intermediate expressions, make sure that all
16583 assignments are to compatible types and figure out which names
16584 refer to which functions or subroutines. It doesn't check code
16585 block, which is handled by gfc_resolve_code. */
16587 static void
16588 resolve_types (gfc_namespace *ns)
16590 gfc_namespace *n;
16591 gfc_charlen *cl;
16592 gfc_data *d;
16593 gfc_equiv *eq;
16594 gfc_namespace* old_ns = gfc_current_ns;
16596 if (ns->types_resolved)
16597 return;
16599 /* Check that all IMPLICIT types are ok. */
16600 if (!ns->seen_implicit_none)
16602 unsigned letter;
16603 for (letter = 0; letter != GFC_LETTERS; ++letter)
16604 if (ns->set_flag[letter]
16605 && !resolve_typespec_used (&ns->default_type[letter],
16606 &ns->implicit_loc[letter], NULL))
16607 return;
16610 gfc_current_ns = ns;
16612 resolve_entries (ns);
16614 resolve_common_vars (&ns->blank_common, false);
16615 resolve_common_blocks (ns->common_root);
16617 resolve_contained_functions (ns);
16619 if (ns->proc_name && ns->proc_name->attr.flavor == FL_PROCEDURE
16620 && ns->proc_name->attr.if_source == IFSRC_IFBODY)
16621 resolve_formal_arglist (ns->proc_name);
16623 gfc_traverse_ns (ns, resolve_bind_c_derived_types);
16625 for (cl = ns->cl_list; cl; cl = cl->next)
16626 resolve_charlen (cl);
16628 gfc_traverse_ns (ns, resolve_symbol);
16630 resolve_fntype (ns);
16632 for (n = ns->contained; n; n = n->sibling)
16634 if (gfc_pure (ns->proc_name) && !gfc_pure (n->proc_name))
16635 gfc_error ("Contained procedure %qs at %L of a PURE procedure must "
16636 "also be PURE", n->proc_name->name,
16637 &n->proc_name->declared_at);
16639 resolve_types (n);
16642 forall_flag = 0;
16643 gfc_do_concurrent_flag = 0;
16644 gfc_check_interfaces (ns);
16646 gfc_traverse_ns (ns, resolve_values);
16648 if (ns->save_all)
16649 gfc_save_all (ns);
16651 iter_stack = NULL;
16652 for (d = ns->data; d; d = d->next)
16653 resolve_data (d);
16655 iter_stack = NULL;
16656 gfc_traverse_ns (ns, gfc_formalize_init_value);
16658 gfc_traverse_ns (ns, gfc_verify_binding_labels);
16660 for (eq = ns->equiv; eq; eq = eq->next)
16661 resolve_equivalence (eq);
16663 /* Warn about unused labels. */
16664 if (warn_unused_label)
16665 warn_unused_fortran_label (ns->st_labels);
16667 gfc_resolve_uops (ns->uop_root);
16669 gfc_traverse_ns (ns, gfc_verify_DTIO_procedures);
16671 gfc_resolve_omp_declare_simd (ns);
16673 gfc_resolve_omp_udrs (ns->omp_udr_root);
16675 ns->types_resolved = 1;
16677 gfc_current_ns = old_ns;
16681 /* Call gfc_resolve_code recursively. */
16683 static void
16684 resolve_codes (gfc_namespace *ns)
16686 gfc_namespace *n;
16687 bitmap_obstack old_obstack;
16689 if (ns->resolved == 1)
16690 return;
16692 for (n = ns->contained; n; n = n->sibling)
16693 resolve_codes (n);
16695 gfc_current_ns = ns;
16697 /* Don't clear 'cs_base' if this is the namespace of a BLOCK construct. */
16698 if (!(ns->proc_name && ns->proc_name->attr.flavor == FL_LABEL))
16699 cs_base = NULL;
16701 /* Set to an out of range value. */
16702 current_entry_id = -1;
16704 old_obstack = labels_obstack;
16705 bitmap_obstack_initialize (&labels_obstack);
16707 gfc_resolve_oacc_declare (ns);
16708 gfc_resolve_omp_local_vars (ns);
16709 gfc_resolve_code (ns->code, ns);
16711 bitmap_obstack_release (&labels_obstack);
16712 labels_obstack = old_obstack;
16716 /* This function is called after a complete program unit has been compiled.
16717 Its purpose is to examine all of the expressions associated with a program
16718 unit, assign types to all intermediate expressions, make sure that all
16719 assignments are to compatible types and figure out which names refer to
16720 which functions or subroutines. */
16722 void
16723 gfc_resolve (gfc_namespace *ns)
16725 gfc_namespace *old_ns;
16726 code_stack *old_cs_base;
16727 struct gfc_omp_saved_state old_omp_state;
16729 if (ns->resolved)
16730 return;
16732 ns->resolved = -1;
16733 old_ns = gfc_current_ns;
16734 old_cs_base = cs_base;
16736 /* As gfc_resolve can be called during resolution of an OpenMP construct
16737 body, we should clear any state associated to it, so that say NS's
16738 DO loops are not interpreted as OpenMP loops. */
16739 if (!ns->construct_entities)
16740 gfc_omp_save_and_clear_state (&old_omp_state);
16742 resolve_types (ns);
16743 component_assignment_level = 0;
16744 resolve_codes (ns);
16746 gfc_current_ns = old_ns;
16747 cs_base = old_cs_base;
16748 ns->resolved = 1;
16750 gfc_run_passes (ns);
16752 if (!ns->construct_entities)
16753 gfc_omp_restore_state (&old_omp_state);