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1 /* Primary expression subroutines
2 Copyright (C) 2000-2018 Free Software Foundation, Inc.
3 Contributed by Andy Vaught
4
5 This file is part of GCC.
6
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.
11
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.
16
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/>. */
20
21 #include "config.h"
22 #include "system.h"
23 #include "coretypes.h"
24 #include "options.h"
25 #include "gfortran.h"
26 #include "arith.h"
27 #include "match.h"
28 #include "parse.h"
29 #include "constructor.h"
30
31 int matching_actual_arglist = 0;
32
33 /* Matches a kind-parameter expression, which is either a named
34 symbolic constant or a nonnegative integer constant. If
35 successful, sets the kind value to the correct integer.
36 The argument 'is_iso_c' signals whether the kind is an ISO_C_BINDING
37 symbol like e.g. 'c_int'. */
38
39 static match
40 match_kind_param (int *kind, int *is_iso_c)
41 {
42 char name[GFC_MAX_SYMBOL_LEN + 1];
43 gfc_symbol *sym;
44 match m;
45
46 *is_iso_c = 0;
47
48 m = gfc_match_small_literal_int (kind, NULL);
49 if (m != MATCH_NO)
50 return m;
51
52 m = gfc_match_name (name);
53 if (m != MATCH_YES)
54 return m;
55
56 if (gfc_find_symbol (name, NULL, 1, &sym))
57 return MATCH_ERROR;
58
59 if (sym == NULL)
60 return MATCH_NO;
61
62 *is_iso_c = sym->attr.is_iso_c;
63
64 if (sym->attr.flavor != FL_PARAMETER)
65 return MATCH_NO;
66
67 if (sym->value == NULL)
68 return MATCH_NO;
69
70 if (gfc_extract_int (sym->value, kind))
71 return MATCH_NO;
72
73 gfc_set_sym_referenced (sym);
74
75 if (*kind < 0)
76 return MATCH_NO;
77
78 return MATCH_YES;
79 }
80
81
82 /* Get a trailing kind-specification for non-character variables.
83 Returns:
84 * the integer kind value or
85 * -1 if an error was generated,
86 * -2 if no kind was found.
87 The argument 'is_iso_c' signals whether the kind is an ISO_C_BINDING
88 symbol like e.g. 'c_int'. */
89
90 static int
91 get_kind (int *is_iso_c)
92 {
93 int kind;
94 match m;
95
96 *is_iso_c = 0;
97
98 if (gfc_match_char ('_') != MATCH_YES)
99 return -2;
100
101 m = match_kind_param (&kind, is_iso_c);
102 if (m == MATCH_NO)
103 gfc_error ("Missing kind-parameter at %C");
104
105 return (m == MATCH_YES) ? kind : -1;
106 }
107
108
109 /* Given a character and a radix, see if the character is a valid
110 digit in that radix. */
111
112 int
113 gfc_check_digit (char c, int radix)
114 {
115 int r;
116
117 switch (radix)
118 {
119 case 2:
120 r = ('0' <= c && c <= '1');
121 break;
122
123 case 8:
124 r = ('0' <= c && c <= '7');
125 break;
126
127 case 10:
128 r = ('0' <= c && c <= '9');
129 break;
130
131 case 16:
132 r = ISXDIGIT (c);
133 break;
134
135 default:
136 gfc_internal_error ("gfc_check_digit(): bad radix");
137 }
138
139 return r;
140 }
141
142
143 /* Match the digit string part of an integer if signflag is not set,
144 the signed digit string part if signflag is set. If the buffer
145 is NULL, we just count characters for the resolution pass. Returns
146 the number of characters matched, -1 for no match. */
147
148 static int
149 match_digits (int signflag, int radix, char *buffer)
150 {
151 locus old_loc;
152 int length;
153 char c;
154
155 length = 0;
156 c = gfc_next_ascii_char ();
157
158 if (signflag && (c == '+' || c == '-'))
159 {
160 if (buffer != NULL)
161 *buffer++ = c;
162 gfc_gobble_whitespace ();
163 c = gfc_next_ascii_char ();
164 length++;
165 }
166
167 if (!gfc_check_digit (c, radix))
168 return -1;
169
170 length++;
171 if (buffer != NULL)
172 *buffer++ = c;
173
174 for (;;)
175 {
176 old_loc = gfc_current_locus;
177 c = gfc_next_ascii_char ();
178
179 if (!gfc_check_digit (c, radix))
180 break;
181
182 if (buffer != NULL)
183 *buffer++ = c;
184 length++;
185 }
186
187 gfc_current_locus = old_loc;
188
189 return length;
190 }
191
192
193 /* Match an integer (digit string and optional kind).
194 A sign will be accepted if signflag is set. */
195
196 static match
197 match_integer_constant (gfc_expr **result, int signflag)
198 {
199 int length, kind, is_iso_c;
200 locus old_loc;
201 char *buffer;
202 gfc_expr *e;
203
204 old_loc = gfc_current_locus;
205 gfc_gobble_whitespace ();
206
207 length = match_digits (signflag, 10, NULL);
208 gfc_current_locus = old_loc;
209 if (length == -1)
210 return MATCH_NO;
211
212 buffer = (char *) alloca (length + 1);
213 memset (buffer, '\0', length + 1);
214
215 gfc_gobble_whitespace ();
216
217 match_digits (signflag, 10, buffer);
218
219 kind = get_kind (&is_iso_c);
220 if (kind == -2)
221 kind = gfc_default_integer_kind;
222 if (kind == -1)
223 return MATCH_ERROR;
224
225 if (kind == 4 && flag_integer4_kind == 8)
226 kind = 8;
227
228 if (gfc_validate_kind (BT_INTEGER, kind, true) < 0)
229 {
230 gfc_error ("Integer kind %d at %C not available", kind);
231 return MATCH_ERROR;
232 }
233
234 e = gfc_convert_integer (buffer, kind, 10, &gfc_current_locus);
235 e->ts.is_c_interop = is_iso_c;
236
237 if (gfc_range_check (e) != ARITH_OK)
238 {
239 gfc_error ("Integer too big for its kind at %C. This check can be "
240 "disabled with the option -fno-range-check");
241
242 gfc_free_expr (e);
243 return MATCH_ERROR;
244 }
245
246 *result = e;
247 return MATCH_YES;
248 }
249
250
251 /* Match a Hollerith constant. */
252
253 static match
254 match_hollerith_constant (gfc_expr **result)
255 {
256 locus old_loc;
257 gfc_expr *e = NULL;
258 int num, pad;
259 int i;
260
261 old_loc = gfc_current_locus;
262 gfc_gobble_whitespace ();
263
264 if (match_integer_constant (&e, 0) == MATCH_YES
265 && gfc_match_char ('h') == MATCH_YES)
266 {
267 if (!gfc_notify_std (GFC_STD_LEGACY, "Hollerith constant at %C"))
268 goto cleanup;
269
270 if (gfc_extract_int (e, &num, 1))
271 goto cleanup;
272 if (num == 0)
273 {
274 gfc_error ("Invalid Hollerith constant: %L must contain at least "
275 "one character", &old_loc);
276 goto cleanup;
277 }
278 if (e->ts.kind != gfc_default_integer_kind)
279 {
280 gfc_error ("Invalid Hollerith constant: Integer kind at %L "
281 "should be default", &old_loc);
282 goto cleanup;
283 }
284 else
285 {
286 gfc_free_expr (e);
287 e = gfc_get_constant_expr (BT_HOLLERITH, gfc_default_character_kind,
288 &gfc_current_locus);
289
290 /* Calculate padding needed to fit default integer memory. */
291 pad = gfc_default_integer_kind - (num % gfc_default_integer_kind);
292
293 e->representation.string = XCNEWVEC (char, num + pad + 1);
294
295 for (i = 0; i < num; i++)
296 {
297 gfc_char_t c = gfc_next_char_literal (INSTRING_WARN);
298 if (! gfc_wide_fits_in_byte (c))
299 {
300 gfc_error ("Invalid Hollerith constant at %L contains a "
301 "wide character", &old_loc);
302 goto cleanup;
303 }
304
305 e->representation.string[i] = (unsigned char) c;
306 }
307
308 /* Now pad with blanks and end with a null char. */
309 for (i = 0; i < pad; i++)
310 e->representation.string[num + i] = ' ';
311
312 e->representation.string[num + i] = '\0';
313 e->representation.length = num + pad;
314 e->ts.u.pad = pad;
315
316 *result = e;
317 return MATCH_YES;
318 }
319 }
320
321 gfc_free_expr (e);
322 gfc_current_locus = old_loc;
323 return MATCH_NO;
324
325 cleanup:
326 gfc_free_expr (e);
327 return MATCH_ERROR;
328 }
329
330
331 /* Match a binary, octal or hexadecimal constant that can be found in
332 a DATA statement. The standard permits b'010...', o'73...', and
333 z'a1...' where b, o, and z can be capital letters. This function
334 also accepts postfixed forms of the constants: '01...'b, '73...'o,
335 and 'a1...'z. An additional extension is the use of x for z. */
336
337 static match
338 match_boz_constant (gfc_expr **result)
339 {
340 int radix, length, x_hex, kind;
341 locus old_loc, start_loc;
342 char *buffer, post, delim;
343 gfc_expr *e;
344
345 start_loc = old_loc = gfc_current_locus;
346 gfc_gobble_whitespace ();
347
348 x_hex = 0;
349 switch (post = gfc_next_ascii_char ())
350 {
351 case 'b':
352 radix = 2;
353 post = 0;
354 break;
355 case 'o':
356 radix = 8;
357 post = 0;
358 break;
359 case 'x':
360 x_hex = 1;
361 /* Fall through. */
362 case 'z':
363 radix = 16;
364 post = 0;
365 break;
366 case '\'':
367 /* Fall through. */
368 case '\"':
369 delim = post;
370 post = 1;
371 radix = 16; /* Set to accept any valid digit string. */
372 break;
373 default:
374 goto backup;
375 }
376
377 /* No whitespace allowed here. */
378
379 if (post == 0)
380 delim = gfc_next_ascii_char ();
381
382 if (delim != '\'' && delim != '\"')
383 goto backup;
384
385 if (x_hex
386 && (!gfc_notify_std(GFC_STD_GNU, "Hexadecimal "
387 "constant at %C uses non-standard syntax")))
388 return MATCH_ERROR;
389
390 old_loc = gfc_current_locus;
391
392 length = match_digits (0, radix, NULL);
393 if (length == -1)
394 {
395 gfc_error ("Empty set of digits in BOZ constant at %C");
396 return MATCH_ERROR;
397 }
398
399 if (gfc_next_ascii_char () != delim)
400 {
401 gfc_error ("Illegal character in BOZ constant at %C");
402 return MATCH_ERROR;
403 }
404
405 if (post == 1)
406 {
407 switch (gfc_next_ascii_char ())
408 {
409 case 'b':
410 radix = 2;
411 break;
412 case 'o':
413 radix = 8;
414 break;
415 case 'x':
416 /* Fall through. */
417 case 'z':
418 radix = 16;
419 break;
420 default:
421 goto backup;
422 }
423
424 if (!gfc_notify_std (GFC_STD_GNU, "BOZ constant "
425 "at %C uses non-standard postfix syntax"))
426 return MATCH_ERROR;
427 }
428
429 gfc_current_locus = old_loc;
430
431 buffer = (char *) alloca (length + 1);
432 memset (buffer, '\0', length + 1);
433
434 match_digits (0, radix, buffer);
435 gfc_next_ascii_char (); /* Eat delimiter. */
436 if (post == 1)
437 gfc_next_ascii_char (); /* Eat postfixed b, o, z, or x. */
438
439 /* In section 5.2.5 and following C567 in the Fortran 2003 standard, we find
440 "If a data-stmt-constant is a boz-literal-constant, the corresponding
441 variable shall be of type integer. The boz-literal-constant is treated
442 as if it were an int-literal-constant with a kind-param that specifies
443 the representation method with the largest decimal exponent range
444 supported by the processor." */
445
446 kind = gfc_max_integer_kind;
447 e = gfc_convert_integer (buffer, kind, radix, &gfc_current_locus);
448
449 /* Mark as boz variable. */
450 e->is_boz = 1;
451
452 if (gfc_range_check (e) != ARITH_OK)
453 {
454 gfc_error ("Integer too big for integer kind %i at %C", kind);
455 gfc_free_expr (e);
456 return MATCH_ERROR;
457 }
458
459 if (!gfc_in_match_data ()
460 && (!gfc_notify_std(GFC_STD_F2003, "BOZ used outside a DATA "
461 "statement at %C")))
462 return MATCH_ERROR;
463
464 *result = e;
465 return MATCH_YES;
466
467 backup:
468 gfc_current_locus = start_loc;
469 return MATCH_NO;
470 }
471
472
473 /* Match a real constant of some sort. Allow a signed constant if signflag
474 is nonzero. */
475
476 static match
477 match_real_constant (gfc_expr **result, int signflag)
478 {
479 int kind, count, seen_dp, seen_digits, is_iso_c, default_exponent;
480 locus old_loc, temp_loc;
481 char *p, *buffer, c, exp_char;
482 gfc_expr *e;
483 bool negate;
484
485 old_loc = gfc_current_locus;
486 gfc_gobble_whitespace ();
487
488 e = NULL;
489
490 default_exponent = 0;
491 count = 0;
492 seen_dp = 0;
493 seen_digits = 0;
494 exp_char = ' ';
495 negate = FALSE;
496
497 c = gfc_next_ascii_char ();
498 if (signflag && (c == '+' || c == '-'))
499 {
500 if (c == '-')
501 negate = TRUE;
502
503 gfc_gobble_whitespace ();
504 c = gfc_next_ascii_char ();
505 }
506
507 /* Scan significand. */
508 for (;; c = gfc_next_ascii_char (), count++)
509 {
510 if (c == '.')
511 {
512 if (seen_dp)
513 goto done;
514
515 /* Check to see if "." goes with a following operator like
516 ".eq.". */
517 temp_loc = gfc_current_locus;
518 c = gfc_next_ascii_char ();
519
520 if (c == 'e' || c == 'd' || c == 'q')
521 {
522 c = gfc_next_ascii_char ();
523 if (c == '.')
524 goto done; /* Operator named .e. or .d. */
525 }
526
527 if (ISALPHA (c))
528 goto done; /* Distinguish 1.e9 from 1.eq.2 */
529
530 gfc_current_locus = temp_loc;
531 seen_dp = 1;
532 continue;
533 }
534
535 if (ISDIGIT (c))
536 {
537 seen_digits = 1;
538 continue;
539 }
540
541 break;
542 }
543
544 if (!seen_digits || (c != 'e' && c != 'd' && c != 'q'))
545 goto done;
546 exp_char = c;
547
548
549 if (c == 'q')
550 {
551 if (!gfc_notify_std (GFC_STD_GNU, "exponent-letter 'q' in "
552 "real-literal-constant at %C"))
553 return MATCH_ERROR;
554 else if (warn_real_q_constant)
555 gfc_warning (OPT_Wreal_q_constant,
556 "Extension: exponent-letter %<q%> in real-literal-constant "
557 "at %C");
558 }
559
560 /* Scan exponent. */
561 c = gfc_next_ascii_char ();
562 count++;
563
564 if (c == '+' || c == '-')
565 { /* optional sign */
566 c = gfc_next_ascii_char ();
567 count++;
568 }
569
570 if (!ISDIGIT (c))
571 {
572 /* With -fdec, default exponent to 0 instead of complaining. */
573 if (flag_dec)
574 default_exponent = 1;
575 else
576 {
577 gfc_error ("Missing exponent in real number at %C");
578 return MATCH_ERROR;
579 }
580 }
581
582 while (ISDIGIT (c))
583 {
584 c = gfc_next_ascii_char ();
585 count++;
586 }
587
588 done:
589 /* Check that we have a numeric constant. */
590 if (!seen_digits || (!seen_dp && exp_char == ' '))
591 {
592 gfc_current_locus = old_loc;
593 return MATCH_NO;
594 }
595
596 /* Convert the number. */
597 gfc_current_locus = old_loc;
598 gfc_gobble_whitespace ();
599
600 buffer = (char *) alloca (count + default_exponent + 1);
601 memset (buffer, '\0', count + default_exponent + 1);
602
603 p = buffer;
604 c = gfc_next_ascii_char ();
605 if (c == '+' || c == '-')
606 {
607 gfc_gobble_whitespace ();
608 c = gfc_next_ascii_char ();
609 }
610
611 /* Hack for mpfr_set_str(). */
612 for (;;)
613 {
614 if (c == 'd' || c == 'q')
615 *p = 'e';
616 else
617 *p = c;
618 p++;
619 if (--count == 0)
620 break;
621
622 c = gfc_next_ascii_char ();
623 }
624 if (default_exponent)
625 *p++ = '0';
626
627 kind = get_kind (&is_iso_c);
628 if (kind == -1)
629 goto cleanup;
630
631 switch (exp_char)
632 {
633 case 'd':
634 if (kind != -2)
635 {
636 gfc_error ("Real number at %C has a %<d%> exponent and an explicit "
637 "kind");
638 goto cleanup;
639 }
640 kind = gfc_default_double_kind;
641
642 if (kind == 4)
643 {
644 if (flag_real4_kind == 8)
645 kind = 8;
646 if (flag_real4_kind == 10)
647 kind = 10;
648 if (flag_real4_kind == 16)
649 kind = 16;
650 }
651
652 if (kind == 8)
653 {
654 if (flag_real8_kind == 4)
655 kind = 4;
656 if (flag_real8_kind == 10)
657 kind = 10;
658 if (flag_real8_kind == 16)
659 kind = 16;
660 }
661 break;
662
663 case 'q':
664 if (kind != -2)
665 {
666 gfc_error ("Real number at %C has a %<q%> exponent and an explicit "
667 "kind");
668 goto cleanup;
669 }
670
671 /* The maximum possible real kind type parameter is 16. First, try
672 that for the kind, then fallback to trying kind=10 (Intel 80 bit)
673 extended precision. If neither value works, just given up. */
674 kind = 16;
675 if (gfc_validate_kind (BT_REAL, kind, true) < 0)
676 {
677 kind = 10;
678 if (gfc_validate_kind (BT_REAL, kind, true) < 0)
679 {
680 gfc_error ("Invalid exponent-letter %<q%> in "
681 "real-literal-constant at %C");
682 goto cleanup;
683 }
684 }
685 break;
686
687 default:
688 if (kind == -2)
689 kind = gfc_default_real_kind;
690
691 if (kind == 4)
692 {
693 if (flag_real4_kind == 8)
694 kind = 8;
695 if (flag_real4_kind == 10)
696 kind = 10;
697 if (flag_real4_kind == 16)
698 kind = 16;
699 }
700
701 if (kind == 8)
702 {
703 if (flag_real8_kind == 4)
704 kind = 4;
705 if (flag_real8_kind == 10)
706 kind = 10;
707 if (flag_real8_kind == 16)
708 kind = 16;
709 }
710
711 if (gfc_validate_kind (BT_REAL, kind, true) < 0)
712 {
713 gfc_error ("Invalid real kind %d at %C", kind);
714 goto cleanup;
715 }
716 }
717
718 e = gfc_convert_real (buffer, kind, &gfc_current_locus);
719 if (negate)
720 mpfr_neg (e->value.real, e->value.real, GFC_RND_MODE);
721 e->ts.is_c_interop = is_iso_c;
722
723 switch (gfc_range_check (e))
724 {
725 case ARITH_OK:
726 break;
727 case ARITH_OVERFLOW:
728 gfc_error ("Real constant overflows its kind at %C");
729 goto cleanup;
730
731 case ARITH_UNDERFLOW:
732 if (warn_underflow)
733 gfc_warning (OPT_Wunderflow, "Real constant underflows its kind at %C");
734 mpfr_set_ui (e->value.real, 0, GFC_RND_MODE);
735 break;
736
737 default:
738 gfc_internal_error ("gfc_range_check() returned bad value");
739 }
740
741 /* Warn about trailing digits which suggest the user added too many
742 trailing digits, which may cause the appearance of higher pecision
743 than the kind kan support.
744
745 This is done by replacing the rightmost non-zero digit with zero
746 and comparing with the original value. If these are equal, we
747 assume the user supplied more digits than intended (or forgot to
748 convert to the correct kind).
749 */
750
751 if (warn_conversion_extra)
752 {
753 mpfr_t r;
754 char *c, *p;
755 bool did_break;
756
757 c = strchr (buffer, 'e');
758 if (c == NULL)
759 c = buffer + strlen(buffer);
760
761 did_break = false;
762 for (p = c - 1; p >= buffer; p--)
763 {
764 if (*p == '.')
765 continue;
766
767 if (*p != '0')
768 {
769 *p = '0';
770 did_break = true;
771 break;
772 }
773 }
774
775 if (did_break)
776 {
777 mpfr_init (r);
778 mpfr_set_str (r, buffer, 10, GFC_RND_MODE);
779 if (negate)
780 mpfr_neg (r, r, GFC_RND_MODE);
781
782 mpfr_sub (r, r, e->value.real, GFC_RND_MODE);
783
784 if (mpfr_cmp_ui (r, 0) == 0)
785 gfc_warning (OPT_Wconversion_extra, "Non-significant digits "
786 "in %qs number at %C, maybe incorrect KIND",
787 gfc_typename (&e->ts));
788
789 mpfr_clear (r);
790 }
791 }
792
793 *result = e;
794 return MATCH_YES;
795
796 cleanup:
797 gfc_free_expr (e);
798 return MATCH_ERROR;
799 }
800
801
802 /* Match a substring reference. */
803
804 static match
805 match_substring (gfc_charlen *cl, int init, gfc_ref **result, bool deferred)
806 {
807 gfc_expr *start, *end;
808 locus old_loc;
809 gfc_ref *ref;
810 match m;
811
812 start = NULL;
813 end = NULL;
814
815 old_loc = gfc_current_locus;
816
817 m = gfc_match_char ('(');
818 if (m != MATCH_YES)
819 return MATCH_NO;
820
821 if (gfc_match_char (':') != MATCH_YES)
822 {
823 if (init)
824 m = gfc_match_init_expr (&start);
825 else
826 m = gfc_match_expr (&start);
827
828 if (m != MATCH_YES)
829 {
830 m = MATCH_NO;
831 goto cleanup;
832 }
833
834 m = gfc_match_char (':');
835 if (m != MATCH_YES)
836 goto cleanup;
837 }
838
839 if (gfc_match_char (')') != MATCH_YES)
840 {
841 if (init)
842 m = gfc_match_init_expr (&end);
843 else
844 m = gfc_match_expr (&end);
845
846 if (m == MATCH_NO)
847 goto syntax;
848 if (m == MATCH_ERROR)
849 goto cleanup;
850
851 m = gfc_match_char (')');
852 if (m == MATCH_NO)
853 goto syntax;
854 }
855
856 /* Optimize away the (:) reference. */
857 if (start == NULL && end == NULL && !deferred)
858 ref = NULL;
859 else
860 {
861 ref = gfc_get_ref ();
862
863 ref->type = REF_SUBSTRING;
864 if (start == NULL)
865 start = gfc_get_int_expr (gfc_charlen_int_kind, NULL, 1);
866 ref->u.ss.start = start;
867 if (end == NULL && cl)
868 end = gfc_copy_expr (cl->length);
869 ref->u.ss.end = end;
870 ref->u.ss.length = cl;
871 }
872
873 *result = ref;
874 return MATCH_YES;
875
876 syntax:
877 gfc_error ("Syntax error in SUBSTRING specification at %C");
878 m = MATCH_ERROR;
879
880 cleanup:
881 gfc_free_expr (start);
882 gfc_free_expr (end);
883
884 gfc_current_locus = old_loc;
885 return m;
886 }
887
888
889 /* Reads the next character of a string constant, taking care to
890 return doubled delimiters on the input as a single instance of
891 the delimiter.
892
893 Special return values for "ret" argument are:
894 -1 End of the string, as determined by the delimiter
895 -2 Unterminated string detected
896
897 Backslash codes are also expanded at this time. */
898
899 static gfc_char_t
900 next_string_char (gfc_char_t delimiter, int *ret)
901 {
902 locus old_locus;
903 gfc_char_t c;
904
905 c = gfc_next_char_literal (INSTRING_WARN);
906 *ret = 0;
907
908 if (c == '\n')
909 {
910 *ret = -2;
911 return 0;
912 }
913
914 if (flag_backslash && c == '\\')
915 {
916 old_locus = gfc_current_locus;
917
918 if (gfc_match_special_char (&c) == MATCH_NO)
919 gfc_current_locus = old_locus;
920
921 if (!(gfc_option.allow_std & GFC_STD_GNU) && !inhibit_warnings)
922 gfc_warning (0, "Extension: backslash character at %C");
923 }
924
925 if (c != delimiter)
926 return c;
927
928 old_locus = gfc_current_locus;
929 c = gfc_next_char_literal (NONSTRING);
930
931 if (c == delimiter)
932 return c;
933 gfc_current_locus = old_locus;
934
935 *ret = -1;
936 return 0;
937 }
938
939
940 /* Special case of gfc_match_name() that matches a parameter kind name
941 before a string constant. This takes case of the weird but legal
942 case of:
943
944 kind_____'string'
945
946 where kind____ is a parameter. gfc_match_name() will happily slurp
947 up all the underscores, which leads to problems. If we return
948 MATCH_YES, the parse pointer points to the final underscore, which
949 is not part of the name. We never return MATCH_ERROR-- errors in
950 the name will be detected later. */
951
952 static match
953 match_charkind_name (char *name)
954 {
955 locus old_loc;
956 char c, peek;
957 int len;
958
959 gfc_gobble_whitespace ();
960 c = gfc_next_ascii_char ();
961 if (!ISALPHA (c))
962 return MATCH_NO;
963
964 *name++ = c;
965 len = 1;
966
967 for (;;)
968 {
969 old_loc = gfc_current_locus;
970 c = gfc_next_ascii_char ();
971
972 if (c == '_')
973 {
974 peek = gfc_peek_ascii_char ();
975
976 if (peek == '\'' || peek == '\"')
977 {
978 gfc_current_locus = old_loc;
979 *name = '\0';
980 return MATCH_YES;
981 }
982 }
983
984 if (!ISALNUM (c)
985 && c != '_'
986 && (c != '$' || !flag_dollar_ok))
987 break;
988
989 *name++ = c;
990 if (++len > GFC_MAX_SYMBOL_LEN)
991 break;
992 }
993
994 return MATCH_NO;
995 }
996
997
998 /* See if the current input matches a character constant. Lots of
999 contortions have to be done to match the kind parameter which comes
1000 before the actual string. The main consideration is that we don't
1001 want to error out too quickly. For example, we don't actually do
1002 any validation of the kinds until we have actually seen a legal
1003 delimiter. Using match_kind_param() generates errors too quickly. */
1004
1005 static match
1006 match_string_constant (gfc_expr **result)
1007 {
1008 char name[GFC_MAX_SYMBOL_LEN + 1], peek;
1009 size_t length;
1010 int kind,save_warn_ampersand, ret;
1011 locus old_locus, start_locus;
1012 gfc_symbol *sym;
1013 gfc_expr *e;
1014 match m;
1015 gfc_char_t c, delimiter, *p;
1016
1017 old_locus = gfc_current_locus;
1018
1019 gfc_gobble_whitespace ();
1020
1021 c = gfc_next_char ();
1022 if (c == '\'' || c == '"')
1023 {
1024 kind = gfc_default_character_kind;
1025 start_locus = gfc_current_locus;
1026 goto got_delim;
1027 }
1028
1029 if (gfc_wide_is_digit (c))
1030 {
1031 kind = 0;
1032
1033 while (gfc_wide_is_digit (c))
1034 {
1035 kind = kind * 10 + c - '0';
1036 if (kind > 9999999)
1037 goto no_match;
1038 c = gfc_next_char ();
1039 }
1040
1041 }
1042 else
1043 {
1044 gfc_current_locus = old_locus;
1045
1046 m = match_charkind_name (name);
1047 if (m != MATCH_YES)
1048 goto no_match;
1049
1050 if (gfc_find_symbol (name, NULL, 1, &sym)
1051 || sym == NULL
1052 || sym->attr.flavor != FL_PARAMETER)
1053 goto no_match;
1054
1055 kind = -1;
1056 c = gfc_next_char ();
1057 }
1058
1059 if (c == ' ')
1060 {
1061 gfc_gobble_whitespace ();
1062 c = gfc_next_char ();
1063 }
1064
1065 if (c != '_')
1066 goto no_match;
1067
1068 gfc_gobble_whitespace ();
1069
1070 c = gfc_next_char ();
1071 if (c != '\'' && c != '"')
1072 goto no_match;
1073
1074 start_locus = gfc_current_locus;
1075
1076 if (kind == -1)
1077 {
1078 if (gfc_extract_int (sym->value, &kind, 1))
1079 return MATCH_ERROR;
1080 gfc_set_sym_referenced (sym);
1081 }
1082
1083 if (gfc_validate_kind (BT_CHARACTER, kind, true) < 0)
1084 {
1085 gfc_error ("Invalid kind %d for CHARACTER constant at %C", kind);
1086 return MATCH_ERROR;
1087 }
1088
1089 got_delim:
1090 /* Scan the string into a block of memory by first figuring out how
1091 long it is, allocating the structure, then re-reading it. This
1092 isn't particularly efficient, but string constants aren't that
1093 common in most code. TODO: Use obstacks? */
1094
1095 delimiter = c;
1096 length = 0;
1097
1098 for (;;)
1099 {
1100 c = next_string_char (delimiter, &ret);
1101 if (ret == -1)
1102 break;
1103 if (ret == -2)
1104 {
1105 gfc_current_locus = start_locus;
1106 gfc_error ("Unterminated character constant beginning at %C");
1107 return MATCH_ERROR;
1108 }
1109
1110 length++;
1111 }
1112
1113 /* Peek at the next character to see if it is a b, o, z, or x for the
1114 postfixed BOZ literal constants. */
1115 peek = gfc_peek_ascii_char ();
1116 if (peek == 'b' || peek == 'o' || peek =='z' || peek == 'x')
1117 goto no_match;
1118
1119 e = gfc_get_character_expr (kind, &start_locus, NULL, length);
1120
1121 gfc_current_locus = start_locus;
1122
1123 /* We disable the warning for the following loop as the warning has already
1124 been printed in the loop above. */
1125 save_warn_ampersand = warn_ampersand;
1126 warn_ampersand = false;
1127
1128 p = e->value.character.string;
1129 for (size_t i = 0; i < length; i++)
1130 {
1131 c = next_string_char (delimiter, &ret);
1132
1133 if (!gfc_check_character_range (c, kind))
1134 {
1135 gfc_free_expr (e);
1136 gfc_error ("Character %qs in string at %C is not representable "
1137 "in character kind %d", gfc_print_wide_char (c), kind);
1138 return MATCH_ERROR;
1139 }
1140
1141 *p++ = c;
1142 }
1143
1144 *p = '\0'; /* TODO: C-style string is for development/debug purposes. */
1145 warn_ampersand = save_warn_ampersand;
1146
1147 next_string_char (delimiter, &ret);
1148 if (ret != -1)
1149 gfc_internal_error ("match_string_constant(): Delimiter not found");
1150
1151 if (match_substring (NULL, 0, &e->ref, false) != MATCH_NO)
1152 e->expr_type = EXPR_SUBSTRING;
1153
1154 *result = e;
1155
1156 return MATCH_YES;
1157
1158 no_match:
1159 gfc_current_locus = old_locus;
1160 return MATCH_NO;
1161 }
1162
1163
1164 /* Match a .true. or .false. Returns 1 if a .true. was found,
1165 0 if a .false. was found, and -1 otherwise. */
1166 static int
1167 match_logical_constant_string (void)
1168 {
1169 locus orig_loc = gfc_current_locus;
1170
1171 gfc_gobble_whitespace ();
1172 if (gfc_next_ascii_char () == '.')
1173 {
1174 char ch = gfc_next_ascii_char ();
1175 if (ch == 'f')
1176 {
1177 if (gfc_next_ascii_char () == 'a'
1178 && gfc_next_ascii_char () == 'l'
1179 && gfc_next_ascii_char () == 's'
1180 && gfc_next_ascii_char () == 'e'
1181 && gfc_next_ascii_char () == '.')
1182 /* Matched ".false.". */
1183 return 0;
1184 }
1185 else if (ch == 't')
1186 {
1187 if (gfc_next_ascii_char () == 'r'
1188 && gfc_next_ascii_char () == 'u'
1189 && gfc_next_ascii_char () == 'e'
1190 && gfc_next_ascii_char () == '.')
1191 /* Matched ".true.". */
1192 return 1;
1193 }
1194 }
1195 gfc_current_locus = orig_loc;
1196 return -1;
1197 }
1198
1199 /* Match a .true. or .false. */
1200
1201 static match
1202 match_logical_constant (gfc_expr **result)
1203 {
1204 gfc_expr *e;
1205 int i, kind, is_iso_c;
1206
1207 i = match_logical_constant_string ();
1208 if (i == -1)
1209 return MATCH_NO;
1210
1211 kind = get_kind (&is_iso_c);
1212 if (kind == -1)
1213 return MATCH_ERROR;
1214 if (kind == -2)
1215 kind = gfc_default_logical_kind;
1216
1217 if (gfc_validate_kind (BT_LOGICAL, kind, true) < 0)
1218 {
1219 gfc_error ("Bad kind for logical constant at %C");
1220 return MATCH_ERROR;
1221 }
1222
1223 e = gfc_get_logical_expr (kind, &gfc_current_locus, i);
1224 e->ts.is_c_interop = is_iso_c;
1225
1226 *result = e;
1227 return MATCH_YES;
1228 }
1229
1230
1231 /* Match a real or imaginary part of a complex constant that is a
1232 symbolic constant. */
1233
1234 static match
1235 match_sym_complex_part (gfc_expr **result)
1236 {
1237 char name[GFC_MAX_SYMBOL_LEN + 1];
1238 gfc_symbol *sym;
1239 gfc_expr *e;
1240 match m;
1241
1242 m = gfc_match_name (name);
1243 if (m != MATCH_YES)
1244 return m;
1245
1246 if (gfc_find_symbol (name, NULL, 1, &sym) || sym == NULL)
1247 return MATCH_NO;
1248
1249 if (sym->attr.flavor != FL_PARAMETER)
1250 {
1251 /* Give the matcher for implied do-loops a chance to run. This yields
1252 a much saner error message for "write(*,*) (i, i=1, 6" where the
1253 right parenthesis is missing. */
1254 char c;
1255 gfc_gobble_whitespace ();
1256 c = gfc_peek_ascii_char ();
1257 if (c == '=' || c == ',')
1258 {
1259 m = MATCH_NO;
1260 }
1261 else
1262 {
1263 gfc_error ("Expected PARAMETER symbol in complex constant at %C");
1264 m = MATCH_ERROR;
1265 }
1266 return m;
1267 }
1268
1269 if (!sym->value)
1270 goto error;
1271
1272 if (!gfc_numeric_ts (&sym->value->ts))
1273 {
1274 gfc_error ("Numeric PARAMETER required in complex constant at %C");
1275 return MATCH_ERROR;
1276 }
1277
1278 if (sym->value->rank != 0)
1279 {
1280 gfc_error ("Scalar PARAMETER required in complex constant at %C");
1281 return MATCH_ERROR;
1282 }
1283
1284 if (!gfc_notify_std (GFC_STD_F2003, "PARAMETER symbol in "
1285 "complex constant at %C"))
1286 return MATCH_ERROR;
1287
1288 switch (sym->value->ts.type)
1289 {
1290 case BT_REAL:
1291 e = gfc_copy_expr (sym->value);
1292 break;
1293
1294 case BT_COMPLEX:
1295 e = gfc_complex2real (sym->value, sym->value->ts.kind);
1296 if (e == NULL)
1297 goto error;
1298 break;
1299
1300 case BT_INTEGER:
1301 e = gfc_int2real (sym->value, gfc_default_real_kind);
1302 if (e == NULL)
1303 goto error;
1304 break;
1305
1306 default:
1307 gfc_internal_error ("gfc_match_sym_complex_part(): Bad type");
1308 }
1309
1310 *result = e; /* e is a scalar, real, constant expression. */
1311 return MATCH_YES;
1312
1313 error:
1314 gfc_error ("Error converting PARAMETER constant in complex constant at %C");
1315 return MATCH_ERROR;
1316 }
1317
1318
1319 /* Match a real or imaginary part of a complex number. */
1320
1321 static match
1322 match_complex_part (gfc_expr **result)
1323 {
1324 match m;
1325
1326 m = match_sym_complex_part (result);
1327 if (m != MATCH_NO)
1328 return m;
1329
1330 m = match_real_constant (result, 1);
1331 if (m != MATCH_NO)
1332 return m;
1333
1334 return match_integer_constant (result, 1);
1335 }
1336
1337
1338 /* Try to match a complex constant. */
1339
1340 static match
1341 match_complex_constant (gfc_expr **result)
1342 {
1343 gfc_expr *e, *real, *imag;
1344 gfc_error_buffer old_error;
1345 gfc_typespec target;
1346 locus old_loc;
1347 int kind;
1348 match m;
1349
1350 old_loc = gfc_current_locus;
1351 real = imag = e = NULL;
1352
1353 m = gfc_match_char ('(');
1354 if (m != MATCH_YES)
1355 return m;
1356
1357 gfc_push_error (&old_error);
1358
1359 m = match_complex_part (&real);
1360 if (m == MATCH_NO)
1361 {
1362 gfc_free_error (&old_error);
1363 goto cleanup;
1364 }
1365
1366 if (gfc_match_char (',') == MATCH_NO)
1367 {
1368 /* It is possible that gfc_int2real issued a warning when
1369 converting an integer to real. Throw this away here. */
1370
1371 gfc_clear_warning ();
1372 gfc_pop_error (&old_error);
1373 m = MATCH_NO;
1374 goto cleanup;
1375 }
1376
1377 /* If m is error, then something was wrong with the real part and we
1378 assume we have a complex constant because we've seen the ','. An
1379 ambiguous case here is the start of an iterator list of some
1380 sort. These sort of lists are matched prior to coming here. */
1381
1382 if (m == MATCH_ERROR)
1383 {
1384 gfc_free_error (&old_error);
1385 goto cleanup;
1386 }
1387 gfc_pop_error (&old_error);
1388
1389 m = match_complex_part (&imag);
1390 if (m == MATCH_NO)
1391 goto syntax;
1392 if (m == MATCH_ERROR)
1393 goto cleanup;
1394
1395 m = gfc_match_char (')');
1396 if (m == MATCH_NO)
1397 {
1398 /* Give the matcher for implied do-loops a chance to run. This
1399 yields a much saner error message for (/ (i, 4=i, 6) /). */
1400 if (gfc_peek_ascii_char () == '=')
1401 {
1402 m = MATCH_ERROR;
1403 goto cleanup;
1404 }
1405 else
1406 goto syntax;
1407 }
1408
1409 if (m == MATCH_ERROR)
1410 goto cleanup;
1411
1412 /* Decide on the kind of this complex number. */
1413 if (real->ts.type == BT_REAL)
1414 {
1415 if (imag->ts.type == BT_REAL)
1416 kind = gfc_kind_max (real, imag);
1417 else
1418 kind = real->ts.kind;
1419 }
1420 else
1421 {
1422 if (imag->ts.type == BT_REAL)
1423 kind = imag->ts.kind;
1424 else
1425 kind = gfc_default_real_kind;
1426 }
1427 gfc_clear_ts (&target);
1428 target.type = BT_REAL;
1429 target.kind = kind;
1430
1431 if (real->ts.type != BT_REAL || kind != real->ts.kind)
1432 gfc_convert_type (real, &target, 2);
1433 if (imag->ts.type != BT_REAL || kind != imag->ts.kind)
1434 gfc_convert_type (imag, &target, 2);
1435
1436 e = gfc_convert_complex (real, imag, kind);
1437 e->where = gfc_current_locus;
1438
1439 gfc_free_expr (real);
1440 gfc_free_expr (imag);
1441
1442 *result = e;
1443 return MATCH_YES;
1444
1445 syntax:
1446 gfc_error ("Syntax error in COMPLEX constant at %C");
1447 m = MATCH_ERROR;
1448
1449 cleanup:
1450 gfc_free_expr (e);
1451 gfc_free_expr (real);
1452 gfc_free_expr (imag);
1453 gfc_current_locus = old_loc;
1454
1455 return m;
1456 }
1457
1458
1459 /* Match constants in any of several forms. Returns nonzero for a
1460 match, zero for no match. */
1461
1462 match
1463 gfc_match_literal_constant (gfc_expr **result, int signflag)
1464 {
1465 match m;
1466
1467 m = match_complex_constant (result);
1468 if (m != MATCH_NO)
1469 return m;
1470
1471 m = match_string_constant (result);
1472 if (m != MATCH_NO)
1473 return m;
1474
1475 m = match_boz_constant (result);
1476 if (m != MATCH_NO)
1477 return m;
1478
1479 m = match_real_constant (result, signflag);
1480 if (m != MATCH_NO)
1481 return m;
1482
1483 m = match_hollerith_constant (result);
1484 if (m != MATCH_NO)
1485 return m;
1486
1487 m = match_integer_constant (result, signflag);
1488 if (m != MATCH_NO)
1489 return m;
1490
1491 m = match_logical_constant (result);
1492 if (m != MATCH_NO)
1493 return m;
1494
1495 return MATCH_NO;
1496 }
1497
1498
1499 /* This checks if a symbol is the return value of an encompassing function.
1500 Function nesting can be maximally two levels deep, but we may have
1501 additional local namespaces like BLOCK etc. */
1502
1503 bool
1504 gfc_is_function_return_value (gfc_symbol *sym, gfc_namespace *ns)
1505 {
1506 if (!sym->attr.function || (sym->result != sym))
1507 return false;
1508 while (ns)
1509 {
1510 if (ns->proc_name == sym)
1511 return true;
1512 ns = ns->parent;
1513 }
1514 return false;
1515 }
1516
1517
1518 /* Match a single actual argument value. An actual argument is
1519 usually an expression, but can also be a procedure name. If the
1520 argument is a single name, it is not always possible to tell
1521 whether the name is a dummy procedure or not. We treat these cases
1522 by creating an argument that looks like a dummy procedure and
1523 fixing things later during resolution. */
1524
1525 static match
1526 match_actual_arg (gfc_expr **result)
1527 {
1528 char name[GFC_MAX_SYMBOL_LEN + 1];
1529 gfc_symtree *symtree;
1530 locus where, w;
1531 gfc_expr *e;
1532 char c;
1533
1534 gfc_gobble_whitespace ();
1535 where = gfc_current_locus;
1536
1537 switch (gfc_match_name (name))
1538 {
1539 case MATCH_ERROR:
1540 return MATCH_ERROR;
1541
1542 case MATCH_NO:
1543 break;
1544
1545 case MATCH_YES:
1546 w = gfc_current_locus;
1547 gfc_gobble_whitespace ();
1548 c = gfc_next_ascii_char ();
1549 gfc_current_locus = w;
1550
1551 if (c != ',' && c != ')')
1552 break;
1553
1554 if (gfc_find_sym_tree (name, NULL, 1, &symtree))
1555 break;
1556 /* Handle error elsewhere. */
1557
1558 /* Eliminate a couple of common cases where we know we don't
1559 have a function argument. */
1560 if (symtree == NULL)
1561 {
1562 gfc_get_sym_tree (name, NULL, &symtree, false);
1563 gfc_set_sym_referenced (symtree->n.sym);
1564 }
1565 else
1566 {
1567 gfc_symbol *sym;
1568
1569 sym = symtree->n.sym;
1570 gfc_set_sym_referenced (sym);
1571 if (sym->attr.flavor == FL_NAMELIST)
1572 {
1573 gfc_error ("Namelist %qs can not be an argument at %L",
1574 sym->name, &where);
1575 break;
1576 }
1577 if (sym->attr.flavor != FL_PROCEDURE
1578 && sym->attr.flavor != FL_UNKNOWN)
1579 break;
1580
1581 if (sym->attr.in_common && !sym->attr.proc_pointer)
1582 {
1583 if (!gfc_add_flavor (&sym->attr, FL_VARIABLE,
1584 sym->name, &sym->declared_at))
1585 return MATCH_ERROR;
1586 break;
1587 }
1588
1589 /* If the symbol is a function with itself as the result and
1590 is being defined, then we have a variable. */
1591 if (sym->attr.function && sym->result == sym)
1592 {
1593 if (gfc_is_function_return_value (sym, gfc_current_ns))
1594 break;
1595
1596 if (sym->attr.entry
1597 && (sym->ns == gfc_current_ns
1598 || sym->ns == gfc_current_ns->parent))
1599 {
1600 gfc_entry_list *el = NULL;
1601
1602 for (el = sym->ns->entries; el; el = el->next)
1603 if (sym == el->sym)
1604 break;
1605
1606 if (el)
1607 break;
1608 }
1609 }
1610 }
1611
1612 e = gfc_get_expr (); /* Leave it unknown for now */
1613 e->symtree = symtree;
1614 e->expr_type = EXPR_VARIABLE;
1615 e->ts.type = BT_PROCEDURE;
1616 e->where = where;
1617
1618 *result = e;
1619 return MATCH_YES;
1620 }
1621
1622 gfc_current_locus = where;
1623 return gfc_match_expr (result);
1624 }
1625
1626
1627 /* Match a keyword argument or type parameter spec list.. */
1628
1629 static match
1630 match_keyword_arg (gfc_actual_arglist *actual, gfc_actual_arglist *base, bool pdt)
1631 {
1632 char name[GFC_MAX_SYMBOL_LEN + 1];
1633 gfc_actual_arglist *a;
1634 locus name_locus;
1635 match m;
1636
1637 name_locus = gfc_current_locus;
1638 m = gfc_match_name (name);
1639
1640 if (m != MATCH_YES)
1641 goto cleanup;
1642 if (gfc_match_char ('=') != MATCH_YES)
1643 {
1644 m = MATCH_NO;
1645 goto cleanup;
1646 }
1647
1648 if (pdt)
1649 {
1650 if (gfc_match_char ('*') == MATCH_YES)
1651 {
1652 actual->spec_type = SPEC_ASSUMED;
1653 goto add_name;
1654 }
1655 else if (gfc_match_char (':') == MATCH_YES)
1656 {
1657 actual->spec_type = SPEC_DEFERRED;
1658 goto add_name;
1659 }
1660 else
1661 actual->spec_type = SPEC_EXPLICIT;
1662 }
1663
1664 m = match_actual_arg (&actual->expr);
1665 if (m != MATCH_YES)
1666 goto cleanup;
1667
1668 /* Make sure this name has not appeared yet. */
1669 add_name:
1670 if (name[0] != '\0')
1671 {
1672 for (a = base; a; a = a->next)
1673 if (a->name != NULL && strcmp (a->name, name) == 0)
1674 {
1675 gfc_error ("Keyword %qs at %C has already appeared in the "
1676 "current argument list", name);
1677 return MATCH_ERROR;
1678 }
1679 }
1680
1681 actual->name = gfc_get_string ("%s", name);
1682 return MATCH_YES;
1683
1684 cleanup:
1685 gfc_current_locus = name_locus;
1686 return m;
1687 }
1688
1689
1690 /* Match an argument list function, such as %VAL. */
1691
1692 static match
1693 match_arg_list_function (gfc_actual_arglist *result)
1694 {
1695 char name[GFC_MAX_SYMBOL_LEN + 1];
1696 locus old_locus;
1697 match m;
1698
1699 old_locus = gfc_current_locus;
1700
1701 if (gfc_match_char ('%') != MATCH_YES)
1702 {
1703 m = MATCH_NO;
1704 goto cleanup;
1705 }
1706
1707 m = gfc_match ("%n (", name);
1708 if (m != MATCH_YES)
1709 goto cleanup;
1710
1711 if (name[0] != '\0')
1712 {
1713 switch (name[0])
1714 {
1715 case 'l':
1716 if (strncmp (name, "loc", 3) == 0)
1717 {
1718 result->name = "%LOC";
1719 break;
1720 }
1721 /* FALLTHRU */
1722 case 'r':
1723 if (strncmp (name, "ref", 3) == 0)
1724 {
1725 result->name = "%REF";
1726 break;
1727 }
1728 /* FALLTHRU */
1729 case 'v':
1730 if (strncmp (name, "val", 3) == 0)
1731 {
1732 result->name = "%VAL";
1733 break;
1734 }
1735 /* FALLTHRU */
1736 default:
1737 m = MATCH_ERROR;
1738 goto cleanup;
1739 }
1740 }
1741
1742 if (!gfc_notify_std (GFC_STD_GNU, "argument list function at %C"))
1743 {
1744 m = MATCH_ERROR;
1745 goto cleanup;
1746 }
1747
1748 m = match_actual_arg (&result->expr);
1749 if (m != MATCH_YES)
1750 goto cleanup;
1751
1752 if (gfc_match_char (')') != MATCH_YES)
1753 {
1754 m = MATCH_NO;
1755 goto cleanup;
1756 }
1757
1758 return MATCH_YES;
1759
1760 cleanup:
1761 gfc_current_locus = old_locus;
1762 return m;
1763 }
1764
1765
1766 /* Matches an actual argument list of a function or subroutine, from
1767 the opening parenthesis to the closing parenthesis. The argument
1768 list is assumed to allow keyword arguments because we don't know if
1769 the symbol associated with the procedure has an implicit interface
1770 or not. We make sure keywords are unique. If sub_flag is set,
1771 we're matching the argument list of a subroutine.
1772
1773 NOTE: An alternative use for this function is to match type parameter
1774 spec lists, which are so similar to actual argument lists that the
1775 machinery can be reused. This use is flagged by the optional argument
1776 'pdt'. */
1777
1778 match
1779 gfc_match_actual_arglist (int sub_flag, gfc_actual_arglist **argp, bool pdt)
1780 {
1781 gfc_actual_arglist *head, *tail;
1782 int seen_keyword;
1783 gfc_st_label *label;
1784 locus old_loc;
1785 match m;
1786
1787 *argp = tail = NULL;
1788 old_loc = gfc_current_locus;
1789
1790 seen_keyword = 0;
1791
1792 if (gfc_match_char ('(') == MATCH_NO)
1793 return (sub_flag) ? MATCH_YES : MATCH_NO;
1794
1795 if (gfc_match_char (')') == MATCH_YES)
1796 return MATCH_YES;
1797
1798 head = NULL;
1799
1800 matching_actual_arglist++;
1801
1802 for (;;)
1803 {
1804 if (head == NULL)
1805 head = tail = gfc_get_actual_arglist ();
1806 else
1807 {
1808 tail->next = gfc_get_actual_arglist ();
1809 tail = tail->next;
1810 }
1811
1812 if (sub_flag && !pdt && gfc_match_char ('*') == MATCH_YES)
1813 {
1814 m = gfc_match_st_label (&label);
1815 if (m == MATCH_NO)
1816 gfc_error ("Expected alternate return label at %C");
1817 if (m != MATCH_YES)
1818 goto cleanup;
1819
1820 if (!gfc_notify_std (GFC_STD_F95_OBS, "Alternate-return argument "
1821 "at %C"))
1822 goto cleanup;
1823
1824 tail->label = label;
1825 goto next;
1826 }
1827
1828 if (pdt && !seen_keyword)
1829 {
1830 if (gfc_match_char (':') == MATCH_YES)
1831 {
1832 tail->spec_type = SPEC_DEFERRED;
1833 goto next;
1834 }
1835 else if (gfc_match_char ('*') == MATCH_YES)
1836 {
1837 tail->spec_type = SPEC_ASSUMED;
1838 goto next;
1839 }
1840 else
1841 tail->spec_type = SPEC_EXPLICIT;
1842
1843 m = match_keyword_arg (tail, head, pdt);
1844 if (m == MATCH_YES)
1845 {
1846 seen_keyword = 1;
1847 goto next;
1848 }
1849 if (m == MATCH_ERROR)
1850 goto cleanup;
1851 }
1852
1853 /* After the first keyword argument is seen, the following
1854 arguments must also have keywords. */
1855 if (seen_keyword)
1856 {
1857 m = match_keyword_arg (tail, head, pdt);
1858
1859 if (m == MATCH_ERROR)
1860 goto cleanup;
1861 if (m == MATCH_NO)
1862 {
1863 gfc_error ("Missing keyword name in actual argument list at %C");
1864 goto cleanup;
1865 }
1866
1867 }
1868 else
1869 {
1870 /* Try an argument list function, like %VAL. */
1871 m = match_arg_list_function (tail);
1872 if (m == MATCH_ERROR)
1873 goto cleanup;
1874
1875 /* See if we have the first keyword argument. */
1876 if (m == MATCH_NO)
1877 {
1878 m = match_keyword_arg (tail, head, false);
1879 if (m == MATCH_YES)
1880 seen_keyword = 1;
1881 if (m == MATCH_ERROR)
1882 goto cleanup;
1883 }
1884
1885 if (m == MATCH_NO)
1886 {
1887 /* Try for a non-keyword argument. */
1888 m = match_actual_arg (&tail->expr);
1889 if (m == MATCH_ERROR)
1890 goto cleanup;
1891 if (m == MATCH_NO)
1892 goto syntax;
1893 }
1894 }
1895
1896
1897 next:
1898 if (gfc_match_char (')') == MATCH_YES)
1899 break;
1900 if (gfc_match_char (',') != MATCH_YES)
1901 goto syntax;
1902 }
1903
1904 *argp = head;
1905 matching_actual_arglist--;
1906 return MATCH_YES;
1907
1908 syntax:
1909 gfc_error ("Syntax error in argument list at %C");
1910
1911 cleanup:
1912 gfc_free_actual_arglist (head);
1913 gfc_current_locus = old_loc;
1914 matching_actual_arglist--;
1915 return MATCH_ERROR;
1916 }
1917
1918
1919 /* Used by gfc_match_varspec() to extend the reference list by one
1920 element. */
1921
1922 static gfc_ref *
1923 extend_ref (gfc_expr *primary, gfc_ref *tail)
1924 {
1925 if (primary->ref == NULL)
1926 primary->ref = tail = gfc_get_ref ();
1927 else
1928 {
1929 if (tail == NULL)
1930 gfc_internal_error ("extend_ref(): Bad tail");
1931 tail->next = gfc_get_ref ();
1932 tail = tail->next;
1933 }
1934
1935 return tail;
1936 }
1937
1938
1939 /* Match any additional specifications associated with the current
1940 variable like member references or substrings. If equiv_flag is
1941 set we only match stuff that is allowed inside an EQUIVALENCE
1942 statement. sub_flag tells whether we expect a type-bound procedure found
1943 to be a subroutine as part of CALL or a FUNCTION. For procedure pointer
1944 components, 'ppc_arg' determines whether the PPC may be called (with an
1945 argument list), or whether it may just be referred to as a pointer. */
1946
1947 match
1948 gfc_match_varspec (gfc_expr *primary, int equiv_flag, bool sub_flag,
1949 bool ppc_arg)
1950 {
1951 char name[GFC_MAX_SYMBOL_LEN + 1];
1952 gfc_ref *substring, *tail, *tmp;
1953 gfc_component *component;
1954 gfc_symbol *sym = primary->symtree->n.sym;
1955 gfc_expr *tgt_expr = NULL;
1956 match m;
1957 bool unknown;
1958 char sep;
1959
1960 tail = NULL;
1961
1962 gfc_gobble_whitespace ();
1963
1964 if (gfc_peek_ascii_char () == '[')
1965 {
1966 if ((sym->ts.type != BT_CLASS && sym->attr.dimension)
1967 || (sym->ts.type == BT_CLASS && CLASS_DATA (sym)
1968 && CLASS_DATA (sym)->attr.dimension))
1969 {
1970 gfc_error ("Array section designator, e.g. '(:)', is required "
1971 "besides the coarray designator '[...]' at %C");
1972 return MATCH_ERROR;
1973 }
1974 if ((sym->ts.type != BT_CLASS && !sym->attr.codimension)
1975 || (sym->ts.type == BT_CLASS && CLASS_DATA (sym)
1976 && !CLASS_DATA (sym)->attr.codimension))
1977 {
1978 gfc_error ("Coarray designator at %C but %qs is not a coarray",
1979 sym->name);
1980 return MATCH_ERROR;
1981 }
1982 }
1983
1984 if (sym->assoc && sym->assoc->target)
1985 tgt_expr = sym->assoc->target;
1986
1987 /* For associate names, we may not yet know whether they are arrays or not.
1988 If the selector expression is unambiguously an array; eg. a full array
1989 or an array section, then the associate name must be an array and we can
1990 fix it now. Otherwise, if parentheses follow and it is not a character
1991 type, we have to assume that it actually is one for now. The final
1992 decision will be made at resolution, of course. */
1993 if (sym->assoc
1994 && gfc_peek_ascii_char () == '('
1995 && sym->ts.type != BT_CLASS
1996 && !sym->attr.dimension)
1997 {
1998 gfc_ref *ref = NULL;
1999
2000 if (!sym->assoc->dangling && tgt_expr)
2001 {
2002 if (tgt_expr->expr_type == EXPR_VARIABLE)
2003 gfc_resolve_expr (tgt_expr);
2004
2005 ref = tgt_expr->ref;
2006 for (; ref; ref = ref->next)
2007 if (ref->type == REF_ARRAY
2008 && (ref->u.ar.type == AR_FULL
2009 || ref->u.ar.type == AR_SECTION))
2010 break;
2011 }
2012
2013 if (ref || (!(sym->assoc->dangling || sym->ts.type == BT_CHARACTER)
2014 && sym->assoc->st
2015 && sym->assoc->st->n.sym
2016 && sym->assoc->st->n.sym->attr.dimension == 0))
2017 {
2018 sym->attr.dimension = 1;
2019 if (sym->as == NULL
2020 && sym->assoc->st
2021 && sym->assoc->st->n.sym
2022 && sym->assoc->st->n.sym->as)
2023 sym->as = gfc_copy_array_spec (sym->assoc->st->n.sym->as);
2024 }
2025 }
2026 else if (sym->ts.type == BT_CLASS
2027 && tgt_expr
2028 && tgt_expr->expr_type == EXPR_VARIABLE
2029 && sym->ts.u.derived != tgt_expr->ts.u.derived)
2030 {
2031 gfc_resolve_expr (tgt_expr);
2032 if (tgt_expr->rank)
2033 sym->ts.u.derived = tgt_expr->ts.u.derived;
2034 }
2035
2036 if ((equiv_flag && gfc_peek_ascii_char () == '(')
2037 || gfc_peek_ascii_char () == '[' || sym->attr.codimension
2038 || (sym->attr.dimension && sym->ts.type != BT_CLASS
2039 && !sym->attr.proc_pointer && !gfc_is_proc_ptr_comp (primary)
2040 && !(gfc_matching_procptr_assignment
2041 && sym->attr.flavor == FL_PROCEDURE))
2042 || (sym->ts.type == BT_CLASS && sym->attr.class_ok
2043 && (CLASS_DATA (sym)->attr.dimension
2044 || CLASS_DATA (sym)->attr.codimension)))
2045 {
2046 gfc_array_spec *as;
2047
2048 tail = extend_ref (primary, tail);
2049 tail->type = REF_ARRAY;
2050
2051 /* In EQUIVALENCE, we don't know yet whether we are seeing
2052 an array, character variable or array of character
2053 variables. We'll leave the decision till resolve time. */
2054
2055 if (equiv_flag)
2056 as = NULL;
2057 else if (sym->ts.type == BT_CLASS && CLASS_DATA (sym))
2058 as = CLASS_DATA (sym)->as;
2059 else
2060 as = sym->as;
2061
2062 m = gfc_match_array_ref (&tail->u.ar, as, equiv_flag,
2063 as ? as->corank : 0);
2064 if (m != MATCH_YES)
2065 return m;
2066
2067 gfc_gobble_whitespace ();
2068 if (equiv_flag && gfc_peek_ascii_char () == '(')
2069 {
2070 tail = extend_ref (primary, tail);
2071 tail->type = REF_ARRAY;
2072
2073 m = gfc_match_array_ref (&tail->u.ar, NULL, equiv_flag, 0);
2074 if (m != MATCH_YES)
2075 return m;
2076 }
2077 }
2078
2079 primary->ts = sym->ts;
2080
2081 if (equiv_flag)
2082 return MATCH_YES;
2083
2084 /* With DEC extensions, member separator may be '.' or '%'. */
2085 sep = gfc_peek_ascii_char ();
2086 m = gfc_match_member_sep (sym);
2087 if (m == MATCH_ERROR)
2088 return MATCH_ERROR;
2089
2090 if (sym->ts.type == BT_UNKNOWN && m == MATCH_YES
2091 && gfc_get_default_type (sym->name, sym->ns)->type == BT_DERIVED)
2092 gfc_set_default_type (sym, 0, sym->ns);
2093
2094 /* See if there is a usable typespec in the "no IMPLICIT type" error. */
2095 if (sym->ts.type == BT_UNKNOWN && m == MATCH_YES)
2096 {
2097 bool permissible;
2098
2099 /* These target expressions can be resolved at any time. */
2100 permissible = tgt_expr && tgt_expr->symtree && tgt_expr->symtree->n.sym
2101 && (tgt_expr->symtree->n.sym->attr.use_assoc
2102 || tgt_expr->symtree->n.sym->attr.host_assoc
2103 || tgt_expr->symtree->n.sym->attr.if_source
2104 == IFSRC_DECL);
2105 permissible = permissible
2106 || (tgt_expr && tgt_expr->expr_type == EXPR_OP);
2107
2108 if (permissible)
2109 {
2110 gfc_resolve_expr (tgt_expr);
2111 sym->ts = tgt_expr->ts;
2112 }
2113
2114 if (sym->ts.type == BT_UNKNOWN)
2115 {
2116 gfc_error ("Symbol %qs at %C has no IMPLICIT type", sym->name);
2117 return MATCH_ERROR;
2118 }
2119 }
2120 else if ((sym->ts.type != BT_DERIVED && sym->ts.type != BT_CLASS)
2121 && m == MATCH_YES)
2122 {
2123 gfc_error ("Unexpected %<%c%> for nonderived-type variable %qs at %C",
2124 sep, sym->name);
2125 return MATCH_ERROR;
2126 }
2127
2128 if ((sym->ts.type != BT_DERIVED && sym->ts.type != BT_CLASS)
2129 || m != MATCH_YES)
2130 goto check_substring;
2131
2132 sym = sym->ts.u.derived;
2133
2134 for (;;)
2135 {
2136 bool t;
2137 gfc_symtree *tbp;
2138
2139 m = gfc_match_name (name);
2140 if (m == MATCH_NO)
2141 gfc_error ("Expected structure component name at %C");
2142 if (m != MATCH_YES)
2143 return MATCH_ERROR;
2144
2145 if (sym && sym->f2k_derived)
2146 tbp = gfc_find_typebound_proc (sym, &t, name, false, &gfc_current_locus);
2147 else
2148 tbp = NULL;
2149
2150 if (tbp)
2151 {
2152 gfc_symbol* tbp_sym;
2153
2154 if (!t)
2155 return MATCH_ERROR;
2156
2157 gcc_assert (!tail || !tail->next);
2158
2159 if (!(primary->expr_type == EXPR_VARIABLE
2160 || (primary->expr_type == EXPR_STRUCTURE
2161 && primary->symtree && primary->symtree->n.sym
2162 && primary->symtree->n.sym->attr.flavor)))
2163 return MATCH_ERROR;
2164
2165 if (tbp->n.tb->is_generic)
2166 tbp_sym = NULL;
2167 else
2168 tbp_sym = tbp->n.tb->u.specific->n.sym;
2169
2170 primary->expr_type = EXPR_COMPCALL;
2171 primary->value.compcall.tbp = tbp->n.tb;
2172 primary->value.compcall.name = tbp->name;
2173 primary->value.compcall.ignore_pass = 0;
2174 primary->value.compcall.assign = 0;
2175 primary->value.compcall.base_object = NULL;
2176 gcc_assert (primary->symtree->n.sym->attr.referenced);
2177 if (tbp_sym)
2178 primary->ts = tbp_sym->ts;
2179 else
2180 gfc_clear_ts (&primary->ts);
2181
2182 m = gfc_match_actual_arglist (tbp->n.tb->subroutine,
2183 &primary->value.compcall.actual);
2184 if (m == MATCH_ERROR)
2185 return MATCH_ERROR;
2186 if (m == MATCH_NO)
2187 {
2188 if (sub_flag)
2189 primary->value.compcall.actual = NULL;
2190 else
2191 {
2192 gfc_error ("Expected argument list at %C");
2193 return MATCH_ERROR;
2194 }
2195 }
2196
2197 break;
2198 }
2199
2200 component = gfc_find_component (sym, name, false, false, &tmp);
2201 if (component == NULL)
2202 return MATCH_ERROR;
2203
2204 /* Extend the reference chain determined by gfc_find_component. */
2205 if (primary->ref == NULL)
2206 primary->ref = tmp;
2207 else
2208 {
2209 /* Set by the for loop below for the last component ref. */
2210 gcc_assert (tail != NULL);
2211 tail->next = tmp;
2212 }
2213
2214 /* The reference chain may be longer than one hop for union
2215 subcomponents; find the new tail. */
2216 for (tail = tmp; tail->next; tail = tail->next)
2217 ;
2218
2219 primary->ts = component->ts;
2220
2221 if (component->attr.proc_pointer && ppc_arg)
2222 {
2223 /* Procedure pointer component call: Look for argument list. */
2224 m = gfc_match_actual_arglist (sub_flag,
2225 &primary->value.compcall.actual);
2226 if (m == MATCH_ERROR)
2227 return MATCH_ERROR;
2228
2229 if (m == MATCH_NO && !gfc_matching_ptr_assignment
2230 && !gfc_matching_procptr_assignment && !matching_actual_arglist)
2231 {
2232 gfc_error ("Procedure pointer component %qs requires an "
2233 "argument list at %C", component->name);
2234 return MATCH_ERROR;
2235 }
2236
2237 if (m == MATCH_YES)
2238 primary->expr_type = EXPR_PPC;
2239
2240 break;
2241 }
2242
2243 if (component->as != NULL && !component->attr.proc_pointer)
2244 {
2245 tail = extend_ref (primary, tail);
2246 tail->type = REF_ARRAY;
2247
2248 m = gfc_match_array_ref (&tail->u.ar, component->as, equiv_flag,
2249 component->as->corank);
2250 if (m != MATCH_YES)
2251 return m;
2252 }
2253 else if (component->ts.type == BT_CLASS && component->attr.class_ok
2254 && CLASS_DATA (component)->as && !component->attr.proc_pointer)
2255 {
2256 tail = extend_ref (primary, tail);
2257 tail->type = REF_ARRAY;
2258
2259 m = gfc_match_array_ref (&tail->u.ar, CLASS_DATA (component)->as,
2260 equiv_flag,
2261 CLASS_DATA (component)->as->corank);
2262 if (m != MATCH_YES)
2263 return m;
2264 }
2265
2266 if ((component->ts.type != BT_DERIVED && component->ts.type != BT_CLASS)
2267 || gfc_match_member_sep (component->ts.u.derived) != MATCH_YES)
2268 break;
2269
2270 sym = component->ts.u.derived;
2271 }
2272
2273 check_substring:
2274 unknown = false;
2275 if (primary->ts.type == BT_UNKNOWN && !gfc_fl_struct (sym->attr.flavor))
2276 {
2277 if (gfc_get_default_type (sym->name, sym->ns)->type == BT_CHARACTER)
2278 {
2279 gfc_set_default_type (sym, 0, sym->ns);
2280 primary->ts = sym->ts;
2281 unknown = true;
2282 }
2283 }
2284
2285 if (primary->ts.type == BT_CHARACTER)
2286 {
2287 bool def = primary->ts.deferred == 1;
2288 switch (match_substring (primary->ts.u.cl, equiv_flag, &substring, def))
2289 {
2290 case MATCH_YES:
2291 if (tail == NULL)
2292 primary->ref = substring;
2293 else
2294 tail->next = substring;
2295
2296 if (primary->expr_type == EXPR_CONSTANT)
2297 primary->expr_type = EXPR_SUBSTRING;
2298
2299 if (substring)
2300 primary->ts.u.cl = NULL;
2301
2302 break;
2303
2304 case MATCH_NO:
2305 if (unknown)
2306 {
2307 gfc_clear_ts (&primary->ts);
2308 gfc_clear_ts (&sym->ts);
2309 }
2310 break;
2311
2312 case MATCH_ERROR:
2313 return MATCH_ERROR;
2314 }
2315 }
2316
2317 /* F08:C611. */
2318 if (primary->ts.type == BT_DERIVED && primary->ref
2319 && primary->ts.u.derived && primary->ts.u.derived->attr.abstract)
2320 {
2321 gfc_error ("Nonpolymorphic reference to abstract type at %C");
2322 return MATCH_ERROR;
2323 }
2324
2325 /* F08:C727. */
2326 if (primary->expr_type == EXPR_PPC && gfc_is_coindexed (primary))
2327 {
2328 gfc_error ("Coindexed procedure-pointer component at %C");
2329 return MATCH_ERROR;
2330 }
2331
2332 return MATCH_YES;
2333 }
2334
2335
2336 /* Given an expression that is a variable, figure out what the
2337 ultimate variable's type and attribute is, traversing the reference
2338 structures if necessary.
2339
2340 This subroutine is trickier than it looks. We start at the base
2341 symbol and store the attribute. Component references load a
2342 completely new attribute.
2343
2344 A couple of rules come into play. Subobjects of targets are always
2345 targets themselves. If we see a component that goes through a
2346 pointer, then the expression must also be a target, since the
2347 pointer is associated with something (if it isn't core will soon be
2348 dumped). If we see a full part or section of an array, the
2349 expression is also an array.
2350
2351 We can have at most one full array reference. */
2352
2353 symbol_attribute
2354 gfc_variable_attr (gfc_expr *expr, gfc_typespec *ts)
2355 {
2356 int dimension, codimension, pointer, allocatable, target;
2357 symbol_attribute attr;
2358 gfc_ref *ref;
2359 gfc_symbol *sym;
2360 gfc_component *comp;
2361
2362 if (expr->expr_type != EXPR_VARIABLE && expr->expr_type != EXPR_FUNCTION)
2363 gfc_internal_error ("gfc_variable_attr(): Expression isn't a variable");
2364
2365 sym = expr->symtree->n.sym;
2366 attr = sym->attr;
2367
2368 if (sym->ts.type == BT_CLASS && sym->attr.class_ok)
2369 {
2370 dimension = CLASS_DATA (sym)->attr.dimension;
2371 codimension = CLASS_DATA (sym)->attr.codimension;
2372 pointer = CLASS_DATA (sym)->attr.class_pointer;
2373 allocatable = CLASS_DATA (sym)->attr.allocatable;
2374 }
2375 else
2376 {
2377 dimension = attr.dimension;
2378 codimension = attr.codimension;
2379 pointer = attr.pointer;
2380 allocatable = attr.allocatable;
2381 }
2382
2383 target = attr.target;
2384 if (pointer || attr.proc_pointer)
2385 target = 1;
2386
2387 if (ts != NULL && expr->ts.type == BT_UNKNOWN)
2388 *ts = sym->ts;
2389
2390 for (ref = expr->ref; ref; ref = ref->next)
2391 switch (ref->type)
2392 {
2393 case REF_ARRAY:
2394
2395 switch (ref->u.ar.type)
2396 {
2397 case AR_FULL:
2398 dimension = 1;
2399 break;
2400
2401 case AR_SECTION:
2402 allocatable = pointer = 0;
2403 dimension = 1;
2404 break;
2405
2406 case AR_ELEMENT:
2407 /* Handle coarrays. */
2408 if (ref->u.ar.dimen > 0)
2409 allocatable = pointer = 0;
2410 break;
2411
2412 case AR_UNKNOWN:
2413 /* If any of start, end or stride is not integer, there will
2414 already have been an error issued. */
2415 int errors;
2416 gfc_get_errors (NULL, &errors);
2417 if (errors == 0)
2418 gfc_internal_error ("gfc_variable_attr(): Bad array reference");
2419 }
2420
2421 break;
2422
2423 case REF_COMPONENT:
2424 comp = ref->u.c.component;
2425 attr = comp->attr;
2426 if (ts != NULL)
2427 {
2428 *ts = comp->ts;
2429 /* Don't set the string length if a substring reference
2430 follows. */
2431 if (ts->type == BT_CHARACTER
2432 && ref->next && ref->next->type == REF_SUBSTRING)
2433 ts->u.cl = NULL;
2434 }
2435
2436 if (comp->ts.type == BT_CLASS)
2437 {
2438 codimension = CLASS_DATA (comp)->attr.codimension;
2439 pointer = CLASS_DATA (comp)->attr.class_pointer;
2440 allocatable = CLASS_DATA (comp)->attr.allocatable;
2441 }
2442 else
2443 {
2444 codimension = comp->attr.codimension;
2445 pointer = comp->attr.pointer;
2446 allocatable = comp->attr.allocatable;
2447 }
2448 if (pointer || attr.proc_pointer)
2449 target = 1;
2450
2451 break;
2452
2453 case REF_SUBSTRING:
2454 allocatable = pointer = 0;
2455 break;
2456 }
2457
2458 attr.dimension = dimension;
2459 attr.codimension = codimension;
2460 attr.pointer = pointer;
2461 attr.allocatable = allocatable;
2462 attr.target = target;
2463 attr.save = sym->attr.save;
2464
2465 return attr;
2466 }
2467
2468
2469 /* Return the attribute from a general expression. */
2470
2471 symbol_attribute
2472 gfc_expr_attr (gfc_expr *e)
2473 {
2474 symbol_attribute attr;
2475
2476 switch (e->expr_type)
2477 {
2478 case EXPR_VARIABLE:
2479 attr = gfc_variable_attr (e, NULL);
2480 break;
2481
2482 case EXPR_FUNCTION:
2483 gfc_clear_attr (&attr);
2484
2485 if (e->value.function.esym && e->value.function.esym->result)
2486 {
2487 gfc_symbol *sym = e->value.function.esym->result;
2488 attr = sym->attr;
2489 if (sym->ts.type == BT_CLASS)
2490 {
2491 attr.dimension = CLASS_DATA (sym)->attr.dimension;
2492 attr.pointer = CLASS_DATA (sym)->attr.class_pointer;
2493 attr.allocatable = CLASS_DATA (sym)->attr.allocatable;
2494 }
2495 }
2496 else if (e->value.function.isym
2497 && e->value.function.isym->transformational
2498 && e->ts.type == BT_CLASS)
2499 attr = CLASS_DATA (e)->attr;
2500 else
2501 attr = gfc_variable_attr (e, NULL);
2502
2503 /* TODO: NULL() returns pointers. May have to take care of this
2504 here. */
2505
2506 break;
2507
2508 default:
2509 gfc_clear_attr (&attr);
2510 break;
2511 }
2512
2513 return attr;
2514 }
2515
2516
2517 /* Given an expression, figure out what the ultimate expression
2518 attribute is. This routine is similar to gfc_variable_attr with
2519 parts of gfc_expr_attr, but focuses more on the needs of
2520 coarrays. For coarrays a codimension attribute is kind of
2521 "infectious" being propagated once set and never cleared.
2522 The coarray_comp is only set, when the expression refs a coarray
2523 component. REFS_COMP is set when present to true only, when this EXPR
2524 refs a (non-_data) component. To check whether EXPR refs an allocatable
2525 component in a derived type coarray *refs_comp needs to be set and
2526 coarray_comp has to false. */
2527
2528 static symbol_attribute
2529 caf_variable_attr (gfc_expr *expr, bool in_allocate, bool *refs_comp)
2530 {
2531 int dimension, codimension, pointer, allocatable, target, coarray_comp;
2532 symbol_attribute attr;
2533 gfc_ref *ref;
2534 gfc_symbol *sym;
2535 gfc_component *comp;
2536
2537 if (expr->expr_type != EXPR_VARIABLE && expr->expr_type != EXPR_FUNCTION)
2538 gfc_internal_error ("gfc_caf_attr(): Expression isn't a variable");
2539
2540 sym = expr->symtree->n.sym;
2541 gfc_clear_attr (&attr);
2542
2543 if (refs_comp)
2544 *refs_comp = false;
2545
2546 if (sym->ts.type == BT_CLASS && sym->attr.class_ok)
2547 {
2548 dimension = CLASS_DATA (sym)->attr.dimension;
2549 codimension = CLASS_DATA (sym)->attr.codimension;
2550 pointer = CLASS_DATA (sym)->attr.class_pointer;
2551 allocatable = CLASS_DATA (sym)->attr.allocatable;
2552 attr.alloc_comp = CLASS_DATA (sym)->ts.u.derived->attr.alloc_comp;
2553 attr.pointer_comp = CLASS_DATA (sym)->ts.u.derived->attr.pointer_comp;
2554 }
2555 else
2556 {
2557 dimension = sym->attr.dimension;
2558 codimension = sym->attr.codimension;
2559 pointer = sym->attr.pointer;
2560 allocatable = sym->attr.allocatable;
2561 attr.alloc_comp = sym->ts.type == BT_DERIVED
2562 ? sym->ts.u.derived->attr.alloc_comp : 0;
2563 attr.pointer_comp = sym->ts.type == BT_DERIVED
2564 ? sym->ts.u.derived->attr.pointer_comp : 0;
2565 }
2566
2567 target = coarray_comp = 0;
2568 if (pointer || attr.proc_pointer)
2569 target = 1;
2570
2571 for (ref = expr->ref; ref; ref = ref->next)
2572 switch (ref->type)
2573 {
2574 case REF_ARRAY:
2575
2576 switch (ref->u.ar.type)
2577 {
2578 case AR_FULL:
2579 case AR_SECTION:
2580 dimension = 1;
2581 break;
2582
2583 case AR_ELEMENT:
2584 /* Handle coarrays. */
2585 if (ref->u.ar.dimen > 0 && !in_allocate)
2586 allocatable = pointer = 0;
2587 break;
2588
2589 case AR_UNKNOWN:
2590 /* If any of start, end or stride is not integer, there will
2591 already have been an error issued. */
2592 int errors;
2593 gfc_get_errors (NULL, &errors);
2594 if (errors == 0)
2595 gfc_internal_error ("gfc_caf_attr(): Bad array reference");
2596 }
2597
2598 break;
2599
2600 case REF_COMPONENT:
2601 comp = ref->u.c.component;
2602
2603 if (comp->ts.type == BT_CLASS)
2604 {
2605 /* Set coarray_comp only, when this component introduces the
2606 coarray. */
2607 coarray_comp = !codimension && CLASS_DATA (comp)->attr.codimension;
2608 codimension |= CLASS_DATA (comp)->attr.codimension;
2609 pointer = CLASS_DATA (comp)->attr.class_pointer;
2610 allocatable = CLASS_DATA (comp)->attr.allocatable;
2611 }
2612 else
2613 {
2614 /* Set coarray_comp only, when this component introduces the
2615 coarray. */
2616 coarray_comp = !codimension && comp->attr.codimension;
2617 codimension |= comp->attr.codimension;
2618 pointer = comp->attr.pointer;
2619 allocatable = comp->attr.allocatable;
2620 }
2621
2622 if (refs_comp && strcmp (comp->name, "_data") != 0
2623 && (ref->next == NULL
2624 || (ref->next->type == REF_ARRAY && ref->next->next == NULL)))
2625 *refs_comp = true;
2626
2627 if (pointer || attr.proc_pointer)
2628 target = 1;
2629
2630 break;
2631
2632 case REF_SUBSTRING:
2633 allocatable = pointer = 0;
2634 break;
2635 }
2636
2637 attr.dimension = dimension;
2638 attr.codimension = codimension;
2639 attr.pointer = pointer;
2640 attr.allocatable = allocatable;
2641 attr.target = target;
2642 attr.save = sym->attr.save;
2643 attr.coarray_comp = coarray_comp;
2644
2645 return attr;
2646 }
2647
2648
2649 symbol_attribute
2650 gfc_caf_attr (gfc_expr *e, bool in_allocate, bool *refs_comp)
2651 {
2652 symbol_attribute attr;
2653
2654 switch (e->expr_type)
2655 {
2656 case EXPR_VARIABLE:
2657 attr = caf_variable_attr (e, in_allocate, refs_comp);
2658 break;
2659
2660 case EXPR_FUNCTION:
2661 gfc_clear_attr (&attr);
2662
2663 if (e->value.function.esym && e->value.function.esym->result)
2664 {
2665 gfc_symbol *sym = e->value.function.esym->result;
2666 attr = sym->attr;
2667 if (sym->ts.type == BT_CLASS)
2668 {
2669 attr.dimension = CLASS_DATA (sym)->attr.dimension;
2670 attr.pointer = CLASS_DATA (sym)->attr.class_pointer;
2671 attr.allocatable = CLASS_DATA (sym)->attr.allocatable;
2672 attr.alloc_comp = CLASS_DATA (sym)->ts.u.derived->attr.alloc_comp;
2673 attr.pointer_comp = CLASS_DATA (sym)->ts.u.derived
2674 ->attr.pointer_comp;
2675 }
2676 }
2677 else if (e->symtree)
2678 attr = caf_variable_attr (e, in_allocate, refs_comp);
2679 else
2680 gfc_clear_attr (&attr);
2681 break;
2682
2683 default:
2684 gfc_clear_attr (&attr);
2685 break;
2686 }
2687
2688 return attr;
2689 }
2690
2691
2692 /* Match a structure constructor. The initial symbol has already been
2693 seen. */
2694
2695 typedef struct gfc_structure_ctor_component
2696 {
2697 char* name;
2698 gfc_expr* val;
2699 locus where;
2700 struct gfc_structure_ctor_component* next;
2701 }
2702 gfc_structure_ctor_component;
2703
2704 #define gfc_get_structure_ctor_component() XCNEW (gfc_structure_ctor_component)
2705
2706 static void
2707 gfc_free_structure_ctor_component (gfc_structure_ctor_component *comp)
2708 {
2709 free (comp->name);
2710 gfc_free_expr (comp->val);
2711 free (comp);
2712 }
2713
2714
2715 /* Translate the component list into the actual constructor by sorting it in
2716 the order required; this also checks along the way that each and every
2717 component actually has an initializer and handles default initializers
2718 for components without explicit value given. */
2719 static bool
2720 build_actual_constructor (gfc_structure_ctor_component **comp_head,
2721 gfc_constructor_base *ctor_head, gfc_symbol *sym)
2722 {
2723 gfc_structure_ctor_component *comp_iter;
2724 gfc_component *comp;
2725
2726 for (comp = sym->components; comp; comp = comp->next)
2727 {
2728 gfc_structure_ctor_component **next_ptr;
2729 gfc_expr *value = NULL;
2730
2731 /* Try to find the initializer for the current component by name. */
2732 next_ptr = comp_head;
2733 for (comp_iter = *comp_head; comp_iter; comp_iter = comp_iter->next)
2734 {
2735 if (!strcmp (comp_iter->name, comp->name))
2736 break;
2737 next_ptr = &comp_iter->next;
2738 }
2739
2740 /* If an extension, try building the parent derived type by building
2741 a value expression for the parent derived type and calling self. */
2742 if (!comp_iter && comp == sym->components && sym->attr.extension)
2743 {
2744 value = gfc_get_structure_constructor_expr (comp->ts.type,
2745 comp->ts.kind,
2746 &gfc_current_locus);
2747 value->ts = comp->ts;
2748
2749 if (!build_actual_constructor (comp_head,
2750 &value->value.constructor,
2751 comp->ts.u.derived))
2752 {
2753 gfc_free_expr (value);
2754 return false;
2755 }
2756
2757 gfc_constructor_append_expr (ctor_head, value, NULL);
2758 continue;
2759 }
2760
2761 /* If it was not found, try the default initializer if there's any;
2762 otherwise, it's an error unless this is a deferred parameter. */
2763 if (!comp_iter)
2764 {
2765 if (comp->initializer)
2766 {
2767 if (!gfc_notify_std (GFC_STD_F2003, "Structure constructor "
2768 "with missing optional arguments at %C"))
2769 return false;
2770 value = gfc_copy_expr (comp->initializer);
2771 }
2772 else if (comp->attr.allocatable
2773 || (comp->ts.type == BT_CLASS
2774 && CLASS_DATA (comp)->attr.allocatable))
2775 {
2776 if (!gfc_notify_std (GFC_STD_F2008, "No initializer for "
2777 "allocatable component %qs given in the "
2778 "structure constructor at %C", comp->name))
2779 return false;
2780 }
2781 else if (!comp->attr.artificial)
2782 {
2783 gfc_error ("No initializer for component %qs given in the"
2784 " structure constructor at %C", comp->name);
2785 return false;
2786 }
2787 }
2788 else
2789 value = comp_iter->val;
2790
2791 /* Add the value to the constructor chain built. */
2792 gfc_constructor_append_expr (ctor_head, value, NULL);
2793
2794 /* Remove the entry from the component list. We don't want the expression
2795 value to be free'd, so set it to NULL. */
2796 if (comp_iter)
2797 {
2798 *next_ptr = comp_iter->next;
2799 comp_iter->val = NULL;
2800 gfc_free_structure_ctor_component (comp_iter);
2801 }
2802 }
2803 return true;
2804 }
2805
2806
2807 bool
2808 gfc_convert_to_structure_constructor (gfc_expr *e, gfc_symbol *sym, gfc_expr **cexpr,
2809 gfc_actual_arglist **arglist,
2810 bool parent)
2811 {
2812 gfc_actual_arglist *actual;
2813 gfc_structure_ctor_component *comp_tail, *comp_head, *comp_iter;
2814 gfc_constructor_base ctor_head = NULL;
2815 gfc_component *comp; /* Is set NULL when named component is first seen */
2816 const char* last_name = NULL;
2817 locus old_locus;
2818 gfc_expr *expr;
2819
2820 expr = parent ? *cexpr : e;
2821 old_locus = gfc_current_locus;
2822 if (parent)
2823 ; /* gfc_current_locus = *arglist->expr ? ->where;*/
2824 else
2825 gfc_current_locus = expr->where;
2826
2827 comp_tail = comp_head = NULL;
2828
2829 if (!parent && sym->attr.abstract)
2830 {
2831 gfc_error ("Can't construct ABSTRACT type %qs at %L",
2832 sym->name, &expr->where);
2833 goto cleanup;
2834 }
2835
2836 comp = sym->components;
2837 actual = parent ? *arglist : expr->value.function.actual;
2838 for ( ; actual; )
2839 {
2840 gfc_component *this_comp = NULL;
2841
2842 if (!comp_head)
2843 comp_tail = comp_head = gfc_get_structure_ctor_component ();
2844 else
2845 {
2846 comp_tail->next = gfc_get_structure_ctor_component ();
2847 comp_tail = comp_tail->next;
2848 }
2849 if (actual->name)
2850 {
2851 if (!gfc_notify_std (GFC_STD_F2003, "Structure"
2852 " constructor with named arguments at %C"))
2853 goto cleanup;
2854
2855 comp_tail->name = xstrdup (actual->name);
2856 last_name = comp_tail->name;
2857 comp = NULL;
2858 }
2859 else
2860 {
2861 /* Components without name are not allowed after the first named
2862 component initializer! */
2863 if (!comp || comp->attr.artificial)
2864 {
2865 if (last_name)
2866 gfc_error ("Component initializer without name after component"
2867 " named %s at %L", last_name,
2868 actual->expr ? &actual->expr->where
2869 : &gfc_current_locus);
2870 else
2871 gfc_error ("Too many components in structure constructor at "
2872 "%L", actual->expr ? &actual->expr->where
2873 : &gfc_current_locus);
2874 goto cleanup;
2875 }
2876
2877 comp_tail->name = xstrdup (comp->name);
2878 }
2879
2880 /* Find the current component in the structure definition and check
2881 its access is not private. */
2882 if (comp)
2883 this_comp = gfc_find_component (sym, comp->name, false, false, NULL);
2884 else
2885 {
2886 this_comp = gfc_find_component (sym, (const char *)comp_tail->name,
2887 false, false, NULL);
2888 comp = NULL; /* Reset needed! */
2889 }
2890
2891 /* Here we can check if a component name is given which does not
2892 correspond to any component of the defined structure. */
2893 if (!this_comp)
2894 goto cleanup;
2895
2896 /* For a constant string constructor, make sure the length is
2897 correct; truncate of fill with blanks if needed. */
2898 if (this_comp->ts.type == BT_CHARACTER && !this_comp->attr.allocatable
2899 && this_comp->ts.u.cl && this_comp->ts.u.cl->length
2900 && this_comp->ts.u.cl->length->expr_type == EXPR_CONSTANT
2901 && actual->expr->expr_type == EXPR_CONSTANT)
2902 {
2903 ptrdiff_t c, e;
2904 c = gfc_mpz_get_hwi (this_comp->ts.u.cl->length->value.integer);
2905 e = actual->expr->value.character.length;
2906
2907 if (c != e)
2908 {
2909 ptrdiff_t i, to;
2910 gfc_char_t *dest;
2911 dest = gfc_get_wide_string (c + 1);
2912
2913 to = e < c ? e : c;
2914 for (i = 0; i < to; i++)
2915 dest[i] = actual->expr->value.character.string[i];
2916
2917 for (i = e; i < c; i++)
2918 dest[i] = ' ';
2919
2920 dest[c] = '\0';
2921 free (actual->expr->value.character.string);
2922
2923 actual->expr->value.character.length = c;
2924 actual->expr->value.character.string = dest;
2925 }
2926 }
2927
2928 comp_tail->val = actual->expr;
2929 if (actual->expr != NULL)
2930 comp_tail->where = actual->expr->where;
2931 actual->expr = NULL;
2932
2933 /* Check if this component is already given a value. */
2934 for (comp_iter = comp_head; comp_iter != comp_tail;
2935 comp_iter = comp_iter->next)
2936 {
2937 gcc_assert (comp_iter);
2938 if (!strcmp (comp_iter->name, comp_tail->name))
2939 {
2940 gfc_error ("Component %qs is initialized twice in the structure"
2941 " constructor at %L", comp_tail->name,
2942 comp_tail->val ? &comp_tail->where
2943 : &gfc_current_locus);
2944 goto cleanup;
2945 }
2946 }
2947
2948 /* F2008, R457/C725, for PURE C1283. */
2949 if (this_comp->attr.pointer && comp_tail->val
2950 && gfc_is_coindexed (comp_tail->val))
2951 {
2952 gfc_error ("Coindexed expression to pointer component %qs in "
2953 "structure constructor at %L", comp_tail->name,
2954 &comp_tail->where);
2955 goto cleanup;
2956 }
2957
2958 /* If not explicitly a parent constructor, gather up the components
2959 and build one. */
2960 if (comp && comp == sym->components
2961 && sym->attr.extension
2962 && comp_tail->val
2963 && (!gfc_bt_struct (comp_tail->val->ts.type)
2964 ||
2965 comp_tail->val->ts.u.derived != this_comp->ts.u.derived))
2966 {
2967 bool m;
2968 gfc_actual_arglist *arg_null = NULL;
2969
2970 actual->expr = comp_tail->val;
2971 comp_tail->val = NULL;
2972
2973 m = gfc_convert_to_structure_constructor (NULL,
2974 comp->ts.u.derived, &comp_tail->val,
2975 comp->ts.u.derived->attr.zero_comp
2976 ? &arg_null : &actual, true);
2977 if (!m)
2978 goto cleanup;
2979
2980 if (comp->ts.u.derived->attr.zero_comp)
2981 {
2982 comp = comp->next;
2983 continue;
2984 }
2985 }
2986
2987 if (comp)
2988 comp = comp->next;
2989 if (parent && !comp)
2990 break;
2991
2992 if (actual)
2993 actual = actual->next;
2994 }
2995
2996 if (!build_actual_constructor (&comp_head, &ctor_head, sym))
2997 goto cleanup;
2998
2999 /* No component should be left, as this should have caused an error in the
3000 loop constructing the component-list (name that does not correspond to any
3001 component in the structure definition). */
3002 if (comp_head && sym->attr.extension)
3003 {
3004 for (comp_iter = comp_head; comp_iter; comp_iter = comp_iter->next)
3005 {
3006 gfc_error ("component %qs at %L has already been set by a "
3007 "parent derived type constructor", comp_iter->name,
3008 &comp_iter->where);
3009 }
3010 goto cleanup;
3011 }
3012 else
3013 gcc_assert (!comp_head);
3014
3015 if (parent)
3016 {
3017 expr = gfc_get_structure_constructor_expr (BT_DERIVED, 0, &gfc_current_locus);
3018 expr->ts.u.derived = sym;
3019 expr->value.constructor = ctor_head;
3020 *cexpr = expr;
3021 }
3022 else
3023 {
3024 expr->ts.u.derived = sym;
3025 expr->ts.kind = 0;
3026 expr->ts.type = BT_DERIVED;
3027 expr->value.constructor = ctor_head;
3028 expr->expr_type = EXPR_STRUCTURE;
3029 }
3030
3031 gfc_current_locus = old_locus;
3032 if (parent)
3033 *arglist = actual;
3034 return true;
3035
3036 cleanup:
3037 gfc_current_locus = old_locus;
3038
3039 for (comp_iter = comp_head; comp_iter; )
3040 {
3041 gfc_structure_ctor_component *next = comp_iter->next;
3042 gfc_free_structure_ctor_component (comp_iter);
3043 comp_iter = next;
3044 }
3045 gfc_constructor_free (ctor_head);
3046
3047 return false;
3048 }
3049
3050
3051 match
3052 gfc_match_structure_constructor (gfc_symbol *sym, gfc_expr **result)
3053 {
3054 match m;
3055 gfc_expr *e;
3056 gfc_symtree *symtree;
3057
3058 gfc_get_ha_sym_tree (sym->name, &symtree);
3059
3060 e = gfc_get_expr ();
3061 e->symtree = symtree;
3062 e->expr_type = EXPR_FUNCTION;
3063
3064 gcc_assert (gfc_fl_struct (sym->attr.flavor)
3065 && symtree->n.sym->attr.flavor == FL_PROCEDURE);
3066 e->value.function.esym = sym;
3067 e->symtree->n.sym->attr.generic = 1;
3068
3069 m = gfc_match_actual_arglist (0, &e->value.function.actual);
3070 if (m != MATCH_YES)
3071 {
3072 gfc_free_expr (e);
3073 return m;
3074 }
3075
3076 if (!gfc_convert_to_structure_constructor (e, sym, NULL, NULL, false))
3077 {
3078 gfc_free_expr (e);
3079 return MATCH_ERROR;
3080 }
3081
3082 /* If a structure constructor is in a DATA statement, then each entity
3083 in the structure constructor must be a constant. Try to reduce the
3084 expression here. */
3085 if (gfc_in_match_data ())
3086 gfc_reduce_init_expr (e);
3087
3088 *result = e;
3089 return MATCH_YES;
3090 }
3091
3092
3093 /* If the symbol is an implicit do loop index and implicitly typed,
3094 it should not be host associated. Provide a symtree from the
3095 current namespace. */
3096 static match
3097 check_for_implicit_index (gfc_symtree **st, gfc_symbol **sym)
3098 {
3099 if ((*sym)->attr.flavor == FL_VARIABLE
3100 && (*sym)->ns != gfc_current_ns
3101 && (*sym)->attr.implied_index
3102 && (*sym)->attr.implicit_type
3103 && !(*sym)->attr.use_assoc)
3104 {
3105 int i;
3106 i = gfc_get_sym_tree ((*sym)->name, NULL, st, false);
3107 if (i)
3108 return MATCH_ERROR;
3109 *sym = (*st)->n.sym;
3110 }
3111 return MATCH_YES;
3112 }
3113
3114
3115 /* Procedure pointer as function result: Replace the function symbol by the
3116 auto-generated hidden result variable named "ppr@". */
3117
3118 static bool
3119 replace_hidden_procptr_result (gfc_symbol **sym, gfc_symtree **st)
3120 {
3121 /* Check for procedure pointer result variable. */
3122 if ((*sym)->attr.function && !(*sym)->attr.external
3123 && (*sym)->result && (*sym)->result != *sym
3124 && (*sym)->result->attr.proc_pointer
3125 && (*sym) == gfc_current_ns->proc_name
3126 && (*sym) == (*sym)->result->ns->proc_name
3127 && strcmp ("ppr@", (*sym)->result->name) == 0)
3128 {
3129 /* Automatic replacement with "hidden" result variable. */
3130 (*sym)->result->attr.referenced = (*sym)->attr.referenced;
3131 *sym = (*sym)->result;
3132 *st = gfc_find_symtree ((*sym)->ns->sym_root, (*sym)->name);
3133 return true;
3134 }
3135 return false;
3136 }
3137
3138
3139 /* Matches a variable name followed by anything that might follow it--
3140 array reference, argument list of a function, etc. */
3141
3142 match
3143 gfc_match_rvalue (gfc_expr **result)
3144 {
3145 gfc_actual_arglist *actual_arglist;
3146 char name[GFC_MAX_SYMBOL_LEN + 1], argname[GFC_MAX_SYMBOL_LEN + 1];
3147 gfc_state_data *st;
3148 gfc_symbol *sym;
3149 gfc_symtree *symtree;
3150 locus where, old_loc;
3151 gfc_expr *e;
3152 match m, m2;
3153 int i;
3154 gfc_typespec *ts;
3155 bool implicit_char;
3156 gfc_ref *ref;
3157
3158 m = gfc_match ("%%loc");
3159 if (m == MATCH_YES)
3160 {
3161 if (!gfc_notify_std (GFC_STD_LEGACY, "%%LOC() as an rvalue at %C"))
3162 return MATCH_ERROR;
3163 strncpy (name, "loc", 4);
3164 }
3165
3166 else
3167 {
3168 m = gfc_match_name (name);
3169 if (m != MATCH_YES)
3170 return m;
3171 }
3172
3173 /* Check if the symbol exists. */
3174 if (gfc_find_sym_tree (name, NULL, 1, &symtree))
3175 return MATCH_ERROR;
3176
3177 /* If the symbol doesn't exist, create it unless the name matches a FL_STRUCT
3178 type. For derived types we create a generic symbol which links to the
3179 derived type symbol; STRUCTUREs are simpler and must not conflict with
3180 variables. */
3181 if (!symtree)
3182 if (gfc_find_sym_tree (gfc_dt_upper_string (name), NULL, 1, &symtree))
3183 return MATCH_ERROR;
3184 if (!symtree || symtree->n.sym->attr.flavor != FL_STRUCT)
3185 {
3186 if (gfc_find_state (COMP_INTERFACE)
3187 && !gfc_current_ns->has_import_set)
3188 i = gfc_get_sym_tree (name, NULL, &symtree, false);
3189 else
3190 i = gfc_get_ha_sym_tree (name, &symtree);
3191 if (i)
3192 return MATCH_ERROR;
3193 }
3194
3195
3196 sym = symtree->n.sym;
3197 e = NULL;
3198 where = gfc_current_locus;
3199
3200 replace_hidden_procptr_result (&sym, &symtree);
3201
3202 /* If this is an implicit do loop index and implicitly typed,
3203 it should not be host associated. */
3204 m = check_for_implicit_index (&symtree, &sym);
3205 if (m != MATCH_YES)
3206 return m;
3207
3208 gfc_set_sym_referenced (sym);
3209 sym->attr.implied_index = 0;
3210
3211 if (sym->attr.function && sym->result == sym)
3212 {
3213 /* See if this is a directly recursive function call. */
3214 gfc_gobble_whitespace ();
3215 if (sym->attr.recursive
3216 && gfc_peek_ascii_char () == '('
3217 && gfc_current_ns->proc_name == sym
3218 && !sym->attr.dimension)
3219 {
3220 gfc_error ("%qs at %C is the name of a recursive function "
3221 "and so refers to the result variable. Use an "
3222 "explicit RESULT variable for direct recursion "
3223 "(12.5.2.1)", sym->name);
3224 return MATCH_ERROR;
3225 }
3226
3227 if (gfc_is_function_return_value (sym, gfc_current_ns))
3228 goto variable;
3229
3230 if (sym->attr.entry
3231 && (sym->ns == gfc_current_ns
3232 || sym->ns == gfc_current_ns->parent))
3233 {
3234 gfc_entry_list *el = NULL;
3235
3236 for (el = sym->ns->entries; el; el = el->next)
3237 if (sym == el->sym)
3238 goto variable;
3239 }
3240 }
3241
3242 if (gfc_matching_procptr_assignment)
3243 goto procptr0;
3244
3245 if (sym->attr.function || sym->attr.external || sym->attr.intrinsic)
3246 goto function0;
3247
3248 if (sym->attr.generic)
3249 goto generic_function;
3250
3251 switch (sym->attr.flavor)
3252 {
3253 case FL_VARIABLE:
3254 variable:
3255 e = gfc_get_expr ();
3256
3257 e->expr_type = EXPR_VARIABLE;
3258 e->symtree = symtree;
3259
3260 m = gfc_match_varspec (e, 0, false, true);
3261 break;
3262
3263 case FL_PARAMETER:
3264 /* A statement of the form "REAL, parameter :: a(0:10) = 1" will
3265 end up here. Unfortunately, sym->value->expr_type is set to
3266 EXPR_CONSTANT, and so the if () branch would be followed without
3267 the !sym->as check. */
3268 if (sym->value && sym->value->expr_type != EXPR_ARRAY && !sym->as)
3269 e = gfc_copy_expr (sym->value);
3270 else
3271 {
3272 e = gfc_get_expr ();
3273 e->expr_type = EXPR_VARIABLE;
3274 }
3275
3276 e->symtree = symtree;
3277 m = gfc_match_varspec (e, 0, false, true);
3278
3279 if (sym->ts.is_c_interop || sym->ts.is_iso_c)
3280 break;
3281
3282 /* Variable array references to derived type parameters cause
3283 all sorts of headaches in simplification. Treating such
3284 expressions as variable works just fine for all array
3285 references. */
3286 if (sym->value && sym->ts.type == BT_DERIVED && e->ref)
3287 {
3288 for (ref = e->ref; ref; ref = ref->next)
3289 if (ref->type == REF_ARRAY)
3290 break;
3291
3292 if (ref == NULL || ref->u.ar.type == AR_FULL)
3293 break;
3294
3295 ref = e->ref;
3296 e->ref = NULL;
3297 gfc_free_expr (e);
3298 e = gfc_get_expr ();
3299 e->expr_type = EXPR_VARIABLE;
3300 e->symtree = symtree;
3301 e->ref = ref;
3302 }
3303
3304 break;
3305
3306 case FL_STRUCT:
3307 case FL_DERIVED:
3308 sym = gfc_use_derived (sym);
3309 if (sym == NULL)
3310 m = MATCH_ERROR;
3311 else
3312 goto generic_function;
3313 break;
3314
3315 /* If we're here, then the name is known to be the name of a
3316 procedure, yet it is not sure to be the name of a function. */
3317 case FL_PROCEDURE:
3318
3319 /* Procedure Pointer Assignments. */
3320 procptr0:
3321 if (gfc_matching_procptr_assignment)
3322 {
3323 gfc_gobble_whitespace ();
3324 if (!sym->attr.dimension && gfc_peek_ascii_char () == '(')
3325 /* Parse functions returning a procptr. */
3326 goto function0;
3327
3328 e = gfc_get_expr ();
3329 e->expr_type = EXPR_VARIABLE;
3330 e->symtree = symtree;
3331 m = gfc_match_varspec (e, 0, false, true);
3332 if (!e->ref && sym->attr.flavor == FL_UNKNOWN
3333 && sym->ts.type == BT_UNKNOWN
3334 && !gfc_add_flavor (&sym->attr, FL_PROCEDURE, sym->name, NULL))
3335 {
3336 m = MATCH_ERROR;
3337 break;
3338 }
3339 break;
3340 }
3341
3342 if (sym->attr.subroutine)
3343 {
3344 gfc_error ("Unexpected use of subroutine name %qs at %C",
3345 sym->name);
3346 m = MATCH_ERROR;
3347 break;
3348 }
3349
3350 /* At this point, the name has to be a non-statement function.
3351 If the name is the same as the current function being
3352 compiled, then we have a variable reference (to the function
3353 result) if the name is non-recursive. */
3354
3355 st = gfc_enclosing_unit (NULL);
3356
3357 if (st != NULL
3358 && st->state == COMP_FUNCTION
3359 && st->sym == sym
3360 && !sym->attr.recursive)
3361 {
3362 e = gfc_get_expr ();
3363 e->symtree = symtree;
3364 e->expr_type = EXPR_VARIABLE;
3365
3366 m = gfc_match_varspec (e, 0, false, true);
3367 break;
3368 }
3369
3370 /* Match a function reference. */
3371 function0:
3372 m = gfc_match_actual_arglist (0, &actual_arglist);
3373 if (m == MATCH_NO)
3374 {
3375 if (sym->attr.proc == PROC_ST_FUNCTION)
3376 gfc_error ("Statement function %qs requires argument list at %C",
3377 sym->name);
3378 else
3379 gfc_error ("Function %qs requires an argument list at %C",
3380 sym->name);
3381
3382 m = MATCH_ERROR;
3383 break;
3384 }
3385
3386 if (m != MATCH_YES)
3387 {
3388 m = MATCH_ERROR;
3389 break;
3390 }
3391
3392 gfc_get_ha_sym_tree (name, &symtree); /* Can't fail */
3393 sym = symtree->n.sym;
3394
3395 replace_hidden_procptr_result (&sym, &symtree);
3396
3397 e = gfc_get_expr ();
3398 e->symtree = symtree;
3399 e->expr_type = EXPR_FUNCTION;
3400 e->value.function.actual = actual_arglist;
3401 e->where = gfc_current_locus;
3402
3403 if (sym->ts.type == BT_CLASS && sym->attr.class_ok
3404 && CLASS_DATA (sym)->as)
3405 e->rank = CLASS_DATA (sym)->as->rank;
3406 else if (sym->as != NULL)
3407 e->rank = sym->as->rank;
3408
3409 if (!sym->attr.function
3410 && !gfc_add_function (&sym->attr, sym->name, NULL))
3411 {
3412 m = MATCH_ERROR;
3413 break;
3414 }
3415
3416 /* Check here for the existence of at least one argument for the
3417 iso_c_binding functions C_LOC, C_FUNLOC, and C_ASSOCIATED. The
3418 argument(s) given will be checked in gfc_iso_c_func_interface,
3419 during resolution of the function call. */
3420 if (sym->attr.is_iso_c == 1
3421 && (sym->from_intmod == INTMOD_ISO_C_BINDING
3422 && (sym->intmod_sym_id == ISOCBINDING_LOC
3423 || sym->intmod_sym_id == ISOCBINDING_FUNLOC
3424 || sym->intmod_sym_id == ISOCBINDING_ASSOCIATED)))
3425 {
3426 /* make sure we were given a param */
3427 if (actual_arglist == NULL)
3428 {
3429 gfc_error ("Missing argument to %qs at %C", sym->name);
3430 m = MATCH_ERROR;
3431 break;
3432 }
3433 }
3434
3435 if (sym->result == NULL)
3436 sym->result = sym;
3437
3438 gfc_gobble_whitespace ();
3439 /* F08:C612. */
3440 if (gfc_peek_ascii_char() == '%')
3441 {
3442 gfc_error ("The leftmost part-ref in a data-ref can not be a "
3443 "function reference at %C");
3444 m = MATCH_ERROR;
3445 }
3446
3447 m = MATCH_YES;
3448 break;
3449
3450 case FL_UNKNOWN:
3451
3452 /* Special case for derived type variables that get their types
3453 via an IMPLICIT statement. This can't wait for the
3454 resolution phase. */
3455
3456 old_loc = gfc_current_locus;
3457 if (gfc_match_member_sep (sym) == MATCH_YES
3458 && sym->ts.type == BT_UNKNOWN
3459 && gfc_get_default_type (sym->name, sym->ns)->type == BT_DERIVED)
3460 gfc_set_default_type (sym, 0, sym->ns);
3461 gfc_current_locus = old_loc;
3462
3463 /* If the symbol has a (co)dimension attribute, the expression is a
3464 variable. */
3465
3466 if (sym->attr.dimension || sym->attr.codimension)
3467 {
3468 if (!gfc_add_flavor (&sym->attr, FL_VARIABLE, sym->name, NULL))
3469 {
3470 m = MATCH_ERROR;
3471 break;
3472 }
3473
3474 e = gfc_get_expr ();
3475 e->symtree = symtree;
3476 e->expr_type = EXPR_VARIABLE;
3477 m = gfc_match_varspec (e, 0, false, true);
3478 break;
3479 }
3480
3481 if (sym->ts.type == BT_CLASS && sym->attr.class_ok
3482 && (CLASS_DATA (sym)->attr.dimension
3483 || CLASS_DATA (sym)->attr.codimension))
3484 {
3485 if (!gfc_add_flavor (&sym->attr, FL_VARIABLE, sym->name, NULL))
3486 {
3487 m = MATCH_ERROR;
3488 break;
3489 }
3490
3491 e = gfc_get_expr ();
3492 e->symtree = symtree;
3493 e->expr_type = EXPR_VARIABLE;
3494 m = gfc_match_varspec (e, 0, false, true);
3495 break;
3496 }
3497
3498 /* Name is not an array, so we peek to see if a '(' implies a
3499 function call or a substring reference. Otherwise the
3500 variable is just a scalar. */
3501
3502 gfc_gobble_whitespace ();
3503 if (gfc_peek_ascii_char () != '(')
3504 {
3505 /* Assume a scalar variable */
3506 e = gfc_get_expr ();
3507 e->symtree = symtree;
3508 e->expr_type = EXPR_VARIABLE;
3509
3510 if (!gfc_add_flavor (&sym->attr, FL_VARIABLE, sym->name, NULL))
3511 {
3512 m = MATCH_ERROR;
3513 break;
3514 }
3515
3516 /*FIXME:??? gfc_match_varspec does set this for us: */
3517 e->ts = sym->ts;
3518 m = gfc_match_varspec (e, 0, false, true);
3519 break;
3520 }
3521
3522 /* See if this is a function reference with a keyword argument
3523 as first argument. We do this because otherwise a spurious
3524 symbol would end up in the symbol table. */
3525
3526 old_loc = gfc_current_locus;
3527 m2 = gfc_match (" ( %n =", argname);
3528 gfc_current_locus = old_loc;
3529
3530 e = gfc_get_expr ();
3531 e->symtree = symtree;
3532
3533 if (m2 != MATCH_YES)
3534 {
3535 /* Try to figure out whether we're dealing with a character type.
3536 We're peeking ahead here, because we don't want to call
3537 match_substring if we're dealing with an implicitly typed
3538 non-character variable. */
3539 implicit_char = false;
3540 if (sym->ts.type == BT_UNKNOWN)
3541 {
3542 ts = gfc_get_default_type (sym->name, NULL);
3543 if (ts->type == BT_CHARACTER)
3544 implicit_char = true;
3545 }
3546
3547 /* See if this could possibly be a substring reference of a name
3548 that we're not sure is a variable yet. */
3549
3550 if ((implicit_char || sym->ts.type == BT_CHARACTER)
3551 && match_substring (sym->ts.u.cl, 0, &e->ref, false) == MATCH_YES)
3552 {
3553
3554 e->expr_type = EXPR_VARIABLE;
3555
3556 if (sym->attr.flavor != FL_VARIABLE
3557 && !gfc_add_flavor (&sym->attr, FL_VARIABLE,
3558 sym->name, NULL))
3559 {
3560 m = MATCH_ERROR;
3561 break;
3562 }
3563
3564 if (sym->ts.type == BT_UNKNOWN
3565 && !gfc_set_default_type (sym, 1, NULL))
3566 {
3567 m = MATCH_ERROR;
3568 break;
3569 }
3570
3571 e->ts = sym->ts;
3572 if (e->ref)
3573 e->ts.u.cl = NULL;
3574 m = MATCH_YES;
3575 break;
3576 }
3577 }
3578
3579 /* Give up, assume we have a function. */
3580
3581 gfc_get_sym_tree (name, NULL, &symtree, false); /* Can't fail */
3582 sym = symtree->n.sym;
3583 e->expr_type = EXPR_FUNCTION;
3584
3585 if (!sym->attr.function
3586 && !gfc_add_function (&sym->attr, sym->name, NULL))
3587 {
3588 m = MATCH_ERROR;
3589 break;
3590 }
3591
3592 sym->result = sym;
3593
3594 m = gfc_match_actual_arglist (0, &e->value.function.actual);
3595 if (m == MATCH_NO)
3596 gfc_error ("Missing argument list in function %qs at %C", sym->name);
3597
3598 if (m != MATCH_YES)
3599 {
3600 m = MATCH_ERROR;
3601 break;
3602 }
3603
3604 /* If our new function returns a character, array or structure
3605 type, it might have subsequent references. */
3606
3607 m = gfc_match_varspec (e, 0, false, true);
3608 if (m == MATCH_NO)
3609 m = MATCH_YES;
3610
3611 break;
3612
3613 generic_function:
3614 /* Look for symbol first; if not found, look for STRUCTURE type symbol
3615 specially. Creates a generic symbol for derived types. */
3616 gfc_find_sym_tree (name, NULL, 1, &symtree);
3617 if (!symtree)
3618 gfc_find_sym_tree (gfc_dt_upper_string (name), NULL, 1, &symtree);
3619 if (!symtree || symtree->n.sym->attr.flavor != FL_STRUCT)
3620 gfc_get_sym_tree (name, NULL, &symtree, false); /* Can't fail */
3621
3622 e = gfc_get_expr ();
3623 e->symtree = symtree;
3624 e->expr_type = EXPR_FUNCTION;
3625
3626 if (gfc_fl_struct (sym->attr.flavor))
3627 {
3628 e->value.function.esym = sym;
3629 e->symtree->n.sym->attr.generic = 1;
3630 }
3631
3632 m = gfc_match_actual_arglist (0, &e->value.function.actual);
3633 break;
3634
3635 case FL_NAMELIST:
3636 m = MATCH_ERROR;
3637 break;
3638
3639 default:
3640 gfc_error ("Symbol at %C is not appropriate for an expression");
3641 return MATCH_ERROR;
3642 }
3643
3644 if (m == MATCH_YES)
3645 {
3646 e->where = where;
3647 *result = e;
3648 }
3649 else
3650 gfc_free_expr (e);
3651
3652 return m;
3653 }
3654
3655
3656 /* Match a variable, i.e. something that can be assigned to. This
3657 starts as a symbol, can be a structure component or an array
3658 reference. It can be a function if the function doesn't have a
3659 separate RESULT variable. If the symbol has not been previously
3660 seen, we assume it is a variable.
3661
3662 This function is called by two interface functions:
3663 gfc_match_variable, which has host_flag = 1, and
3664 gfc_match_equiv_variable, with host_flag = 0, to restrict the
3665 match of the symbol to the local scope. */
3666
3667 static match
3668 match_variable (gfc_expr **result, int equiv_flag, int host_flag)
3669 {
3670 gfc_symbol *sym, *dt_sym;
3671 gfc_symtree *st;
3672 gfc_expr *expr;
3673 locus where, old_loc;
3674 match m;
3675
3676 /* Since nothing has any business being an lvalue in a module
3677 specification block, an interface block or a contains section,
3678 we force the changed_symbols mechanism to work by setting
3679 host_flag to 0. This prevents valid symbols that have the name
3680 of keywords, such as 'end', being turned into variables by
3681 failed matching to assignments for, e.g., END INTERFACE. */
3682 if (gfc_current_state () == COMP_MODULE
3683 || gfc_current_state () == COMP_SUBMODULE
3684 || gfc_current_state () == COMP_INTERFACE
3685 || gfc_current_state () == COMP_CONTAINS)
3686 host_flag = 0;
3687
3688 where = gfc_current_locus;
3689 m = gfc_match_sym_tree (&st, host_flag);
3690 if (m != MATCH_YES)
3691 return m;
3692
3693 sym = st->n.sym;
3694
3695 /* If this is an implicit do loop index and implicitly typed,
3696 it should not be host associated. */
3697 m = check_for_implicit_index (&st, &sym);
3698 if (m != MATCH_YES)
3699 return m;
3700
3701 sym->attr.implied_index = 0;
3702
3703 gfc_set_sym_referenced (sym);
3704
3705 /* STRUCTUREs may share names with variables, but derived types may not. */
3706 if (sym->attr.flavor == FL_PROCEDURE && sym->generic
3707 && (dt_sym = gfc_find_dt_in_generic (sym)))
3708 {
3709 if (dt_sym->attr.flavor == FL_DERIVED)
3710 gfc_error ("Derived type %qs cannot be used as a variable at %C",
3711 sym->name);
3712 return MATCH_ERROR;
3713 }
3714
3715 switch (sym->attr.flavor)
3716 {
3717 case FL_VARIABLE:
3718 /* Everything is alright. */
3719 break;
3720
3721 case FL_UNKNOWN:
3722 {
3723 sym_flavor flavor = FL_UNKNOWN;
3724
3725 gfc_gobble_whitespace ();
3726
3727 if (sym->attr.external || sym->attr.procedure
3728 || sym->attr.function || sym->attr.subroutine)
3729 flavor = FL_PROCEDURE;
3730
3731 /* If it is not a procedure, is not typed and is host associated,
3732 we cannot give it a flavor yet. */
3733 else if (sym->ns == gfc_current_ns->parent
3734 && sym->ts.type == BT_UNKNOWN)
3735 break;
3736
3737 /* These are definitive indicators that this is a variable. */
3738 else if (gfc_peek_ascii_char () != '(' || sym->ts.type != BT_UNKNOWN
3739 || sym->attr.pointer || sym->as != NULL)
3740 flavor = FL_VARIABLE;
3741
3742 if (flavor != FL_UNKNOWN
3743 && !gfc_add_flavor (&sym->attr, flavor, sym->name, NULL))
3744 return MATCH_ERROR;
3745 }
3746 break;
3747
3748 case FL_PARAMETER:
3749 if (equiv_flag)
3750 {
3751 gfc_error ("Named constant at %C in an EQUIVALENCE");
3752 return MATCH_ERROR;
3753 }
3754 /* Otherwise this is checked for and an error given in the
3755 variable definition context checks. */
3756 break;
3757
3758 case FL_PROCEDURE:
3759 /* Check for a nonrecursive function result variable. */
3760 if (sym->attr.function
3761 && !sym->attr.external
3762 && sym->result == sym
3763 && (gfc_is_function_return_value (sym, gfc_current_ns)
3764 || (sym->attr.entry
3765 && sym->ns == gfc_current_ns)
3766 || (sym->attr.entry
3767 && sym->ns == gfc_current_ns->parent)))
3768 {
3769 /* If a function result is a derived type, then the derived
3770 type may still have to be resolved. */
3771
3772 if (sym->ts.type == BT_DERIVED
3773 && gfc_use_derived (sym->ts.u.derived) == NULL)
3774 return MATCH_ERROR;
3775 break;
3776 }
3777
3778 if (sym->attr.proc_pointer
3779 || replace_hidden_procptr_result (&sym, &st))
3780 break;
3781
3782 /* Fall through to error */
3783 gcc_fallthrough ();
3784
3785 default:
3786 gfc_error ("%qs at %C is not a variable", sym->name);
3787 return MATCH_ERROR;
3788 }
3789
3790 /* Special case for derived type variables that get their types
3791 via an IMPLICIT statement. This can't wait for the
3792 resolution phase. */
3793
3794 {
3795 gfc_namespace * implicit_ns;
3796
3797 if (gfc_current_ns->proc_name == sym)
3798 implicit_ns = gfc_current_ns;
3799 else
3800 implicit_ns = sym->ns;
3801
3802 old_loc = gfc_current_locus;
3803 if (gfc_match_member_sep (sym) == MATCH_YES
3804 && sym->ts.type == BT_UNKNOWN
3805 && gfc_get_default_type (sym->name, implicit_ns)->type == BT_DERIVED)
3806 gfc_set_default_type (sym, 0, implicit_ns);
3807 gfc_current_locus = old_loc;
3808 }
3809
3810 expr = gfc_get_expr ();
3811
3812 expr->expr_type = EXPR_VARIABLE;
3813 expr->symtree = st;
3814 expr->ts = sym->ts;
3815 expr->where = where;
3816
3817 /* Now see if we have to do more. */
3818 m = gfc_match_varspec (expr, equiv_flag, false, false);
3819 if (m != MATCH_YES)
3820 {
3821 gfc_free_expr (expr);
3822 return m;
3823 }
3824
3825 *result = expr;
3826 return MATCH_YES;
3827 }
3828
3829
3830 match
3831 gfc_match_variable (gfc_expr **result, int equiv_flag)
3832 {
3833 return match_variable (result, equiv_flag, 1);
3834 }
3835
3836
3837 match
3838 gfc_match_equiv_variable (gfc_expr **result)
3839 {
3840 return match_variable (result, 1, 0);
3841 }
3842