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1 /* Primary expression subroutines
2 Copyright (C) 2000, 2001, 2002, 2004, 2005, 2006, 2007, 2008
3 Free Software Foundation, Inc.
4 Contributed by Andy Vaught
5
6 This file is part of GCC.
7
8 GCC is free software; you can redistribute it and/or modify it under
9 the terms of the GNU General Public License as published by the Free
10 Software Foundation; either version 3, or (at your option) any later
11 version.
12
13 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
14 WARRANTY; without even the implied warranty of MERCHANTABILITY or
15 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
16 for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with GCC; see the file COPYING3. If not see
20 <http://www.gnu.org/licenses/>. */
21
22 #include "config.h"
23 #include "system.h"
24 #include "flags.h"
25 #include "gfortran.h"
26 #include "arith.h"
27 #include "match.h"
28 #include "parse.h"
29 #include "toplev.h"
30
31 /* Matches a kind-parameter expression, which is either a named
32 symbolic constant or a nonnegative integer constant. If
33 successful, sets the kind value to the correct integer. */
34
35 static match
36 match_kind_param (int *kind)
37 {
38 char name[GFC_MAX_SYMBOL_LEN + 1];
39 gfc_symbol *sym;
40 const char *p;
41 match m;
42
43 m = gfc_match_small_literal_int (kind, NULL);
44 if (m != MATCH_NO)
45 return m;
46
47 m = gfc_match_name (name);
48 if (m != MATCH_YES)
49 return m;
50
51 if (gfc_find_symbol (name, NULL, 1, &sym))
52 return MATCH_ERROR;
53
54 if (sym == NULL)
55 return MATCH_NO;
56
57 if (sym->attr.flavor != FL_PARAMETER)
58 return MATCH_NO;
59
60 p = gfc_extract_int (sym->value, kind);
61 if (p != NULL)
62 return MATCH_NO;
63
64 gfc_set_sym_referenced (sym);
65
66 if (*kind < 0)
67 return MATCH_NO;
68
69 return MATCH_YES;
70 }
71
72
73 /* Get a trailing kind-specification for non-character variables.
74 Returns:
75 the integer kind value or:
76 -1 if an error was generated
77 -2 if no kind was found */
78
79 static int
80 get_kind (void)
81 {
82 int kind;
83 match m;
84
85 if (gfc_match_char ('_') != MATCH_YES)
86 return -2;
87
88 m = match_kind_param (&kind);
89 if (m == MATCH_NO)
90 gfc_error ("Missing kind-parameter at %C");
91
92 return (m == MATCH_YES) ? kind : -1;
93 }
94
95
96 /* Given a character and a radix, see if the character is a valid
97 digit in that radix. */
98
99 int
100 gfc_check_digit (char c, int radix)
101 {
102 int r;
103
104 switch (radix)
105 {
106 case 2:
107 r = ('0' <= c && c <= '1');
108 break;
109
110 case 8:
111 r = ('0' <= c && c <= '7');
112 break;
113
114 case 10:
115 r = ('0' <= c && c <= '9');
116 break;
117
118 case 16:
119 r = ISXDIGIT (c);
120 break;
121
122 default:
123 gfc_internal_error ("gfc_check_digit(): bad radix");
124 }
125
126 return r;
127 }
128
129
130 /* Match the digit string part of an integer if signflag is not set,
131 the signed digit string part if signflag is set. If the buffer
132 is NULL, we just count characters for the resolution pass. Returns
133 the number of characters matched, -1 for no match. */
134
135 static int
136 match_digits (int signflag, int radix, char *buffer)
137 {
138 locus old_loc;
139 int length;
140 char c;
141
142 length = 0;
143 c = gfc_next_ascii_char ();
144
145 if (signflag && (c == '+' || c == '-'))
146 {
147 if (buffer != NULL)
148 *buffer++ = c;
149 gfc_gobble_whitespace ();
150 c = gfc_next_ascii_char ();
151 length++;
152 }
153
154 if (!gfc_check_digit (c, radix))
155 return -1;
156
157 length++;
158 if (buffer != NULL)
159 *buffer++ = c;
160
161 for (;;)
162 {
163 old_loc = gfc_current_locus;
164 c = gfc_next_ascii_char ();
165
166 if (!gfc_check_digit (c, radix))
167 break;
168
169 if (buffer != NULL)
170 *buffer++ = c;
171 length++;
172 }
173
174 gfc_current_locus = old_loc;
175
176 return length;
177 }
178
179
180 /* Match an integer (digit string and optional kind).
181 A sign will be accepted if signflag is set. */
182
183 static match
184 match_integer_constant (gfc_expr **result, int signflag)
185 {
186 int length, kind;
187 locus old_loc;
188 char *buffer;
189 gfc_expr *e;
190
191 old_loc = gfc_current_locus;
192 gfc_gobble_whitespace ();
193
194 length = match_digits (signflag, 10, NULL);
195 gfc_current_locus = old_loc;
196 if (length == -1)
197 return MATCH_NO;
198
199 buffer = (char *) alloca (length + 1);
200 memset (buffer, '\0', length + 1);
201
202 gfc_gobble_whitespace ();
203
204 match_digits (signflag, 10, buffer);
205
206 kind = get_kind ();
207 if (kind == -2)
208 kind = gfc_default_integer_kind;
209 if (kind == -1)
210 return MATCH_ERROR;
211
212 if (gfc_validate_kind (BT_INTEGER, kind, true) < 0)
213 {
214 gfc_error ("Integer kind %d at %C not available", kind);
215 return MATCH_ERROR;
216 }
217
218 e = gfc_convert_integer (buffer, kind, 10, &gfc_current_locus);
219
220 if (gfc_range_check (e) != ARITH_OK)
221 {
222 gfc_error ("Integer too big for its kind at %C. This check can be "
223 "disabled with the option -fno-range-check");
224
225 gfc_free_expr (e);
226 return MATCH_ERROR;
227 }
228
229 *result = e;
230 return MATCH_YES;
231 }
232
233
234 /* Match a Hollerith constant. */
235
236 static match
237 match_hollerith_constant (gfc_expr **result)
238 {
239 locus old_loc;
240 gfc_expr *e = NULL;
241 const char *msg;
242 int num;
243 int i;
244
245 old_loc = gfc_current_locus;
246 gfc_gobble_whitespace ();
247
248 if (match_integer_constant (&e, 0) == MATCH_YES
249 && gfc_match_char ('h') == MATCH_YES)
250 {
251 if (gfc_notify_std (GFC_STD_LEGACY, "Extension: Hollerith constant "
252 "at %C") == FAILURE)
253 goto cleanup;
254
255 msg = gfc_extract_int (e, &num);
256 if (msg != NULL)
257 {
258 gfc_error (msg);
259 goto cleanup;
260 }
261 if (num == 0)
262 {
263 gfc_error ("Invalid Hollerith constant: %L must contain at least "
264 "one character", &old_loc);
265 goto cleanup;
266 }
267 if (e->ts.kind != gfc_default_integer_kind)
268 {
269 gfc_error ("Invalid Hollerith constant: Integer kind at %L "
270 "should be default", &old_loc);
271 goto cleanup;
272 }
273 else
274 {
275 gfc_free_expr (e);
276 e = gfc_constant_result (BT_HOLLERITH, gfc_default_character_kind,
277 &gfc_current_locus);
278
279 e->representation.string = XCNEWVEC (char, num + 1);
280
281 for (i = 0; i < num; i++)
282 {
283 gfc_char_t c = gfc_next_char_literal (1);
284 if (! gfc_wide_fits_in_byte (c))
285 {
286 gfc_error ("Invalid Hollerith constant at %L contains a "
287 "wide character", &old_loc);
288 goto cleanup;
289 }
290
291 e->representation.string[i] = (unsigned char) c;
292 }
293
294 e->representation.string[num] = '\0';
295 e->representation.length = num;
296
297 *result = e;
298 return MATCH_YES;
299 }
300 }
301
302 gfc_free_expr (e);
303 gfc_current_locus = old_loc;
304 return MATCH_NO;
305
306 cleanup:
307 gfc_free_expr (e);
308 return MATCH_ERROR;
309 }
310
311
312 /* Match a binary, octal or hexadecimal constant that can be found in
313 a DATA statement. The standard permits b'010...', o'73...', and
314 z'a1...' where b, o, and z can be capital letters. This function
315 also accepts postfixed forms of the constants: '01...'b, '73...'o,
316 and 'a1...'z. An additional extension is the use of x for z. */
317
318 static match
319 match_boz_constant (gfc_expr **result)
320 {
321 int radix, length, x_hex, kind;
322 locus old_loc, start_loc;
323 char *buffer, post, delim;
324 gfc_expr *e;
325
326 start_loc = old_loc = gfc_current_locus;
327 gfc_gobble_whitespace ();
328
329 x_hex = 0;
330 switch (post = gfc_next_ascii_char ())
331 {
332 case 'b':
333 radix = 2;
334 post = 0;
335 break;
336 case 'o':
337 radix = 8;
338 post = 0;
339 break;
340 case 'x':
341 x_hex = 1;
342 /* Fall through. */
343 case 'z':
344 radix = 16;
345 post = 0;
346 break;
347 case '\'':
348 /* Fall through. */
349 case '\"':
350 delim = post;
351 post = 1;
352 radix = 16; /* Set to accept any valid digit string. */
353 break;
354 default:
355 goto backup;
356 }
357
358 /* No whitespace allowed here. */
359
360 if (post == 0)
361 delim = gfc_next_ascii_char ();
362
363 if (delim != '\'' && delim != '\"')
364 goto backup;
365
366 if (x_hex
367 && (gfc_notify_std (GFC_STD_GNU, "Extension: Hexadecimal "
368 "constant at %C uses non-standard syntax")
369 == FAILURE))
370 return MATCH_ERROR;
371
372 old_loc = gfc_current_locus;
373
374 length = match_digits (0, radix, NULL);
375 if (length == -1)
376 {
377 gfc_error ("Empty set of digits in BOZ constant at %C");
378 return MATCH_ERROR;
379 }
380
381 if (gfc_next_ascii_char () != delim)
382 {
383 gfc_error ("Illegal character in BOZ constant at %C");
384 return MATCH_ERROR;
385 }
386
387 if (post == 1)
388 {
389 switch (gfc_next_ascii_char ())
390 {
391 case 'b':
392 radix = 2;
393 break;
394 case 'o':
395 radix = 8;
396 break;
397 case 'x':
398 /* Fall through. */
399 case 'z':
400 radix = 16;
401 break;
402 default:
403 goto backup;
404 }
405
406 if (gfc_notify_std (GFC_STD_GNU, "Extension: BOZ constant "
407 "at %C uses non-standard postfix syntax")
408 == FAILURE)
409 return MATCH_ERROR;
410 }
411
412 gfc_current_locus = old_loc;
413
414 buffer = (char *) alloca (length + 1);
415 memset (buffer, '\0', length + 1);
416
417 match_digits (0, radix, buffer);
418 gfc_next_ascii_char (); /* Eat delimiter. */
419 if (post == 1)
420 gfc_next_ascii_char (); /* Eat postfixed b, o, z, or x. */
421
422 /* In section 5.2.5 and following C567 in the Fortran 2003 standard, we find
423 "If a data-stmt-constant is a boz-literal-constant, the corresponding
424 variable shall be of type integer. The boz-literal-constant is treated
425 as if it were an int-literal-constant with a kind-param that specifies
426 the representation method with the largest decimal exponent range
427 supported by the processor." */
428
429 kind = gfc_max_integer_kind;
430 e = gfc_convert_integer (buffer, kind, radix, &gfc_current_locus);
431
432 /* Mark as boz variable. */
433 e->is_boz = 1;
434
435 if (gfc_range_check (e) != ARITH_OK)
436 {
437 gfc_error ("Integer too big for integer kind %i at %C", kind);
438 gfc_free_expr (e);
439 return MATCH_ERROR;
440 }
441
442 if (!gfc_in_match_data ()
443 && (gfc_notify_std (GFC_STD_F2003, "Fortran 2003: BOZ used outside a DATA "
444 "statement at %C")
445 == FAILURE))
446 return MATCH_ERROR;
447
448 *result = e;
449 return MATCH_YES;
450
451 backup:
452 gfc_current_locus = start_loc;
453 return MATCH_NO;
454 }
455
456
457 /* Match a real constant of some sort. Allow a signed constant if signflag
458 is nonzero. */
459
460 static match
461 match_real_constant (gfc_expr **result, int signflag)
462 {
463 int kind, count, seen_dp, seen_digits;
464 locus old_loc, temp_loc;
465 char *p, *buffer, c, exp_char;
466 gfc_expr *e;
467 bool negate;
468
469 old_loc = gfc_current_locus;
470 gfc_gobble_whitespace ();
471
472 e = NULL;
473
474 count = 0;
475 seen_dp = 0;
476 seen_digits = 0;
477 exp_char = ' ';
478 negate = FALSE;
479
480 c = gfc_next_ascii_char ();
481 if (signflag && (c == '+' || c == '-'))
482 {
483 if (c == '-')
484 negate = TRUE;
485
486 gfc_gobble_whitespace ();
487 c = gfc_next_ascii_char ();
488 }
489
490 /* Scan significand. */
491 for (;; c = gfc_next_ascii_char (), count++)
492 {
493 if (c == '.')
494 {
495 if (seen_dp)
496 goto done;
497
498 /* Check to see if "." goes with a following operator like
499 ".eq.". */
500 temp_loc = gfc_current_locus;
501 c = gfc_next_ascii_char ();
502
503 if (c == 'e' || c == 'd' || c == 'q')
504 {
505 c = gfc_next_ascii_char ();
506 if (c == '.')
507 goto done; /* Operator named .e. or .d. */
508 }
509
510 if (ISALPHA (c))
511 goto done; /* Distinguish 1.e9 from 1.eq.2 */
512
513 gfc_current_locus = temp_loc;
514 seen_dp = 1;
515 continue;
516 }
517
518 if (ISDIGIT (c))
519 {
520 seen_digits = 1;
521 continue;
522 }
523
524 break;
525 }
526
527 if (!seen_digits || (c != 'e' && c != 'd' && c != 'q'))
528 goto done;
529 exp_char = c;
530
531 /* Scan exponent. */
532 c = gfc_next_ascii_char ();
533 count++;
534
535 if (c == '+' || c == '-')
536 { /* optional sign */
537 c = gfc_next_ascii_char ();
538 count++;
539 }
540
541 if (!ISDIGIT (c))
542 {
543 gfc_error ("Missing exponent in real number at %C");
544 return MATCH_ERROR;
545 }
546
547 while (ISDIGIT (c))
548 {
549 c = gfc_next_ascii_char ();
550 count++;
551 }
552
553 done:
554 /* Check that we have a numeric constant. */
555 if (!seen_digits || (!seen_dp && exp_char == ' '))
556 {
557 gfc_current_locus = old_loc;
558 return MATCH_NO;
559 }
560
561 /* Convert the number. */
562 gfc_current_locus = old_loc;
563 gfc_gobble_whitespace ();
564
565 buffer = (char *) alloca (count + 1);
566 memset (buffer, '\0', count + 1);
567
568 p = buffer;
569 c = gfc_next_ascii_char ();
570 if (c == '+' || c == '-')
571 {
572 gfc_gobble_whitespace ();
573 c = gfc_next_ascii_char ();
574 }
575
576 /* Hack for mpfr_set_str(). */
577 for (;;)
578 {
579 if (c == 'd' || c == 'q')
580 *p = 'e';
581 else
582 *p = c;
583 p++;
584 if (--count == 0)
585 break;
586
587 c = gfc_next_ascii_char ();
588 }
589
590 kind = get_kind ();
591 if (kind == -1)
592 goto cleanup;
593
594 switch (exp_char)
595 {
596 case 'd':
597 if (kind != -2)
598 {
599 gfc_error ("Real number at %C has a 'd' exponent and an explicit "
600 "kind");
601 goto cleanup;
602 }
603 kind = gfc_default_double_kind;
604 break;
605
606 default:
607 if (kind == -2)
608 kind = gfc_default_real_kind;
609
610 if (gfc_validate_kind (BT_REAL, kind, true) < 0)
611 {
612 gfc_error ("Invalid real kind %d at %C", kind);
613 goto cleanup;
614 }
615 }
616
617 e = gfc_convert_real (buffer, kind, &gfc_current_locus);
618 if (negate)
619 mpfr_neg (e->value.real, e->value.real, GFC_RND_MODE);
620
621 switch (gfc_range_check (e))
622 {
623 case ARITH_OK:
624 break;
625 case ARITH_OVERFLOW:
626 gfc_error ("Real constant overflows its kind at %C");
627 goto cleanup;
628
629 case ARITH_UNDERFLOW:
630 if (gfc_option.warn_underflow)
631 gfc_warning ("Real constant underflows its kind at %C");
632 mpfr_set_ui (e->value.real, 0, GFC_RND_MODE);
633 break;
634
635 default:
636 gfc_internal_error ("gfc_range_check() returned bad value");
637 }
638
639 *result = e;
640 return MATCH_YES;
641
642 cleanup:
643 gfc_free_expr (e);
644 return MATCH_ERROR;
645 }
646
647
648 /* Match a substring reference. */
649
650 static match
651 match_substring (gfc_charlen *cl, int init, gfc_ref **result)
652 {
653 gfc_expr *start, *end;
654 locus old_loc;
655 gfc_ref *ref;
656 match m;
657
658 start = NULL;
659 end = NULL;
660
661 old_loc = gfc_current_locus;
662
663 m = gfc_match_char ('(');
664 if (m != MATCH_YES)
665 return MATCH_NO;
666
667 if (gfc_match_char (':') != MATCH_YES)
668 {
669 if (init)
670 m = gfc_match_init_expr (&start);
671 else
672 m = gfc_match_expr (&start);
673
674 if (m != MATCH_YES)
675 {
676 m = MATCH_NO;
677 goto cleanup;
678 }
679
680 m = gfc_match_char (':');
681 if (m != MATCH_YES)
682 goto cleanup;
683 }
684
685 if (gfc_match_char (')') != MATCH_YES)
686 {
687 if (init)
688 m = gfc_match_init_expr (&end);
689 else
690 m = gfc_match_expr (&end);
691
692 if (m == MATCH_NO)
693 goto syntax;
694 if (m == MATCH_ERROR)
695 goto cleanup;
696
697 m = gfc_match_char (')');
698 if (m == MATCH_NO)
699 goto syntax;
700 }
701
702 /* Optimize away the (:) reference. */
703 if (start == NULL && end == NULL)
704 ref = NULL;
705 else
706 {
707 ref = gfc_get_ref ();
708
709 ref->type = REF_SUBSTRING;
710 if (start == NULL)
711 start = gfc_int_expr (1);
712 ref->u.ss.start = start;
713 if (end == NULL && cl)
714 end = gfc_copy_expr (cl->length);
715 ref->u.ss.end = end;
716 ref->u.ss.length = cl;
717 }
718
719 *result = ref;
720 return MATCH_YES;
721
722 syntax:
723 gfc_error ("Syntax error in SUBSTRING specification at %C");
724 m = MATCH_ERROR;
725
726 cleanup:
727 gfc_free_expr (start);
728 gfc_free_expr (end);
729
730 gfc_current_locus = old_loc;
731 return m;
732 }
733
734
735 /* Reads the next character of a string constant, taking care to
736 return doubled delimiters on the input as a single instance of
737 the delimiter.
738
739 Special return values for "ret" argument are:
740 -1 End of the string, as determined by the delimiter
741 -2 Unterminated string detected
742
743 Backslash codes are also expanded at this time. */
744
745 static gfc_char_t
746 next_string_char (gfc_char_t delimiter, int *ret)
747 {
748 locus old_locus;
749 gfc_char_t c;
750
751 c = gfc_next_char_literal (1);
752 *ret = 0;
753
754 if (c == '\n')
755 {
756 *ret = -2;
757 return 0;
758 }
759
760 if (gfc_option.flag_backslash && c == '\\')
761 {
762 old_locus = gfc_current_locus;
763
764 if (gfc_match_special_char (&c) == MATCH_NO)
765 gfc_current_locus = old_locus;
766
767 if (!(gfc_option.allow_std & GFC_STD_GNU) && !inhibit_warnings)
768 gfc_warning ("Extension: backslash character at %C");
769 }
770
771 if (c != delimiter)
772 return c;
773
774 old_locus = gfc_current_locus;
775 c = gfc_next_char_literal (0);
776
777 if (c == delimiter)
778 return c;
779 gfc_current_locus = old_locus;
780
781 *ret = -1;
782 return 0;
783 }
784
785
786 /* Special case of gfc_match_name() that matches a parameter kind name
787 before a string constant. This takes case of the weird but legal
788 case of:
789
790 kind_____'string'
791
792 where kind____ is a parameter. gfc_match_name() will happily slurp
793 up all the underscores, which leads to problems. If we return
794 MATCH_YES, the parse pointer points to the final underscore, which
795 is not part of the name. We never return MATCH_ERROR-- errors in
796 the name will be detected later. */
797
798 static match
799 match_charkind_name (char *name)
800 {
801 locus old_loc;
802 char c, peek;
803 int len;
804
805 gfc_gobble_whitespace ();
806 c = gfc_next_ascii_char ();
807 if (!ISALPHA (c))
808 return MATCH_NO;
809
810 *name++ = c;
811 len = 1;
812
813 for (;;)
814 {
815 old_loc = gfc_current_locus;
816 c = gfc_next_ascii_char ();
817
818 if (c == '_')
819 {
820 peek = gfc_peek_ascii_char ();
821
822 if (peek == '\'' || peek == '\"')
823 {
824 gfc_current_locus = old_loc;
825 *name = '\0';
826 return MATCH_YES;
827 }
828 }
829
830 if (!ISALNUM (c)
831 && c != '_'
832 && (gfc_option.flag_dollar_ok && c != '$'))
833 break;
834
835 *name++ = c;
836 if (++len > GFC_MAX_SYMBOL_LEN)
837 break;
838 }
839
840 return MATCH_NO;
841 }
842
843
844 /* See if the current input matches a character constant. Lots of
845 contortions have to be done to match the kind parameter which comes
846 before the actual string. The main consideration is that we don't
847 want to error out too quickly. For example, we don't actually do
848 any validation of the kinds until we have actually seen a legal
849 delimiter. Using match_kind_param() generates errors too quickly. */
850
851 static match
852 match_string_constant (gfc_expr **result)
853 {
854 char name[GFC_MAX_SYMBOL_LEN + 1], peek;
855 int i, kind, length, warn_ampersand, ret;
856 locus old_locus, start_locus;
857 gfc_symbol *sym;
858 gfc_expr *e;
859 const char *q;
860 match m;
861 gfc_char_t c, delimiter, *p;
862
863 old_locus = gfc_current_locus;
864
865 gfc_gobble_whitespace ();
866
867 start_locus = gfc_current_locus;
868
869 c = gfc_next_char ();
870 if (c == '\'' || c == '"')
871 {
872 kind = gfc_default_character_kind;
873 goto got_delim;
874 }
875
876 if (gfc_wide_is_digit (c))
877 {
878 kind = 0;
879
880 while (gfc_wide_is_digit (c))
881 {
882 kind = kind * 10 + c - '0';
883 if (kind > 9999999)
884 goto no_match;
885 c = gfc_next_char ();
886 }
887
888 }
889 else
890 {
891 gfc_current_locus = old_locus;
892
893 m = match_charkind_name (name);
894 if (m != MATCH_YES)
895 goto no_match;
896
897 if (gfc_find_symbol (name, NULL, 1, &sym)
898 || sym == NULL
899 || sym->attr.flavor != FL_PARAMETER)
900 goto no_match;
901
902 kind = -1;
903 c = gfc_next_char ();
904 }
905
906 if (c == ' ')
907 {
908 gfc_gobble_whitespace ();
909 c = gfc_next_char ();
910 }
911
912 if (c != '_')
913 goto no_match;
914
915 gfc_gobble_whitespace ();
916 start_locus = gfc_current_locus;
917
918 c = gfc_next_char ();
919 if (c != '\'' && c != '"')
920 goto no_match;
921
922 if (kind == -1)
923 {
924 q = gfc_extract_int (sym->value, &kind);
925 if (q != NULL)
926 {
927 gfc_error (q);
928 return MATCH_ERROR;
929 }
930 gfc_set_sym_referenced (sym);
931 }
932
933 if (gfc_validate_kind (BT_CHARACTER, kind, true) < 0)
934 {
935 gfc_error ("Invalid kind %d for CHARACTER constant at %C", kind);
936 return MATCH_ERROR;
937 }
938
939 got_delim:
940 /* Scan the string into a block of memory by first figuring out how
941 long it is, allocating the structure, then re-reading it. This
942 isn't particularly efficient, but string constants aren't that
943 common in most code. TODO: Use obstacks? */
944
945 delimiter = c;
946 length = 0;
947
948 for (;;)
949 {
950 c = next_string_char (delimiter, &ret);
951 if (ret == -1)
952 break;
953 if (ret == -2)
954 {
955 gfc_current_locus = start_locus;
956 gfc_error ("Unterminated character constant beginning at %C");
957 return MATCH_ERROR;
958 }
959
960 length++;
961 }
962
963 /* Peek at the next character to see if it is a b, o, z, or x for the
964 postfixed BOZ literal constants. */
965 peek = gfc_peek_ascii_char ();
966 if (peek == 'b' || peek == 'o' || peek =='z' || peek == 'x')
967 goto no_match;
968
969
970 e = gfc_get_expr ();
971
972 e->expr_type = EXPR_CONSTANT;
973 e->ref = NULL;
974 e->ts.type = BT_CHARACTER;
975 e->ts.kind = kind;
976 e->ts.is_c_interop = 0;
977 e->ts.is_iso_c = 0;
978 e->where = start_locus;
979
980 e->value.character.string = p = gfc_get_wide_string (length + 1);
981 e->value.character.length = length;
982
983 gfc_current_locus = start_locus;
984 gfc_next_char (); /* Skip delimiter */
985
986 /* We disable the warning for the following loop as the warning has already
987 been printed in the loop above. */
988 warn_ampersand = gfc_option.warn_ampersand;
989 gfc_option.warn_ampersand = 0;
990
991 for (i = 0; i < length; i++)
992 {
993 c = next_string_char (delimiter, &ret);
994
995 if (!gfc_check_character_range (c, kind))
996 {
997 gfc_error ("Character '%s' in string at %C is not representable "
998 "in character kind %d", gfc_print_wide_char (c), kind);
999 return MATCH_ERROR;
1000 }
1001
1002 *p++ = c;
1003 }
1004
1005 *p = '\0'; /* TODO: C-style string is for development/debug purposes. */
1006 gfc_option.warn_ampersand = warn_ampersand;
1007
1008 next_string_char (delimiter, &ret);
1009 if (ret != -1)
1010 gfc_internal_error ("match_string_constant(): Delimiter not found");
1011
1012 if (match_substring (NULL, 0, &e->ref) != MATCH_NO)
1013 e->expr_type = EXPR_SUBSTRING;
1014
1015 *result = e;
1016
1017 return MATCH_YES;
1018
1019 no_match:
1020 gfc_current_locus = old_locus;
1021 return MATCH_NO;
1022 }
1023
1024
1025 /* Match a .true. or .false. Returns 1 if a .true. was found,
1026 0 if a .false. was found, and -1 otherwise. */
1027 static int
1028 match_logical_constant_string (void)
1029 {
1030 locus orig_loc = gfc_current_locus;
1031
1032 gfc_gobble_whitespace ();
1033 if (gfc_next_ascii_char () == '.')
1034 {
1035 char ch = gfc_next_ascii_char ();
1036 if (ch == 'f')
1037 {
1038 if (gfc_next_ascii_char () == 'a'
1039 && gfc_next_ascii_char () == 'l'
1040 && gfc_next_ascii_char () == 's'
1041 && gfc_next_ascii_char () == 'e'
1042 && gfc_next_ascii_char () == '.')
1043 /* Matched ".false.". */
1044 return 0;
1045 }
1046 else if (ch == 't')
1047 {
1048 if (gfc_next_ascii_char () == 'r'
1049 && gfc_next_ascii_char () == 'u'
1050 && gfc_next_ascii_char () == 'e'
1051 && gfc_next_ascii_char () == '.')
1052 /* Matched ".true.". */
1053 return 1;
1054 }
1055 }
1056 gfc_current_locus = orig_loc;
1057 return -1;
1058 }
1059
1060 /* Match a .true. or .false. */
1061
1062 static match
1063 match_logical_constant (gfc_expr **result)
1064 {
1065 gfc_expr *e;
1066 int i, kind;
1067
1068 i = match_logical_constant_string ();
1069 if (i == -1)
1070 return MATCH_NO;
1071
1072 kind = get_kind ();
1073 if (kind == -1)
1074 return MATCH_ERROR;
1075 if (kind == -2)
1076 kind = gfc_default_logical_kind;
1077
1078 if (gfc_validate_kind (BT_LOGICAL, kind, true) < 0)
1079 {
1080 gfc_error ("Bad kind for logical constant at %C");
1081 return MATCH_ERROR;
1082 }
1083
1084 e = gfc_get_expr ();
1085
1086 e->expr_type = EXPR_CONSTANT;
1087 e->value.logical = i;
1088 e->ts.type = BT_LOGICAL;
1089 e->ts.kind = kind;
1090 e->ts.is_c_interop = 0;
1091 e->ts.is_iso_c = 0;
1092 e->where = gfc_current_locus;
1093
1094 *result = e;
1095 return MATCH_YES;
1096 }
1097
1098
1099 /* Match a real or imaginary part of a complex constant that is a
1100 symbolic constant. */
1101
1102 static match
1103 match_sym_complex_part (gfc_expr **result)
1104 {
1105 char name[GFC_MAX_SYMBOL_LEN + 1];
1106 gfc_symbol *sym;
1107 gfc_expr *e;
1108 match m;
1109
1110 m = gfc_match_name (name);
1111 if (m != MATCH_YES)
1112 return m;
1113
1114 if (gfc_find_symbol (name, NULL, 1, &sym) || sym == NULL)
1115 return MATCH_NO;
1116
1117 if (sym->attr.flavor != FL_PARAMETER)
1118 {
1119 gfc_error ("Expected PARAMETER symbol in complex constant at %C");
1120 return MATCH_ERROR;
1121 }
1122
1123 if (!gfc_numeric_ts (&sym->value->ts))
1124 {
1125 gfc_error ("Numeric PARAMETER required in complex constant at %C");
1126 return MATCH_ERROR;
1127 }
1128
1129 if (sym->value->rank != 0)
1130 {
1131 gfc_error ("Scalar PARAMETER required in complex constant at %C");
1132 return MATCH_ERROR;
1133 }
1134
1135 if (gfc_notify_std (GFC_STD_F2003, "Fortran 2003: PARAMETER symbol in "
1136 "complex constant at %C") == FAILURE)
1137 return MATCH_ERROR;
1138
1139 switch (sym->value->ts.type)
1140 {
1141 case BT_REAL:
1142 e = gfc_copy_expr (sym->value);
1143 break;
1144
1145 case BT_COMPLEX:
1146 e = gfc_complex2real (sym->value, sym->value->ts.kind);
1147 if (e == NULL)
1148 goto error;
1149 break;
1150
1151 case BT_INTEGER:
1152 e = gfc_int2real (sym->value, gfc_default_real_kind);
1153 if (e == NULL)
1154 goto error;
1155 break;
1156
1157 default:
1158 gfc_internal_error ("gfc_match_sym_complex_part(): Bad type");
1159 }
1160
1161 *result = e; /* e is a scalar, real, constant expression. */
1162 return MATCH_YES;
1163
1164 error:
1165 gfc_error ("Error converting PARAMETER constant in complex constant at %C");
1166 return MATCH_ERROR;
1167 }
1168
1169
1170 /* Match a real or imaginary part of a complex number. */
1171
1172 static match
1173 match_complex_part (gfc_expr **result)
1174 {
1175 match m;
1176
1177 m = match_sym_complex_part (result);
1178 if (m != MATCH_NO)
1179 return m;
1180
1181 m = match_real_constant (result, 1);
1182 if (m != MATCH_NO)
1183 return m;
1184
1185 return match_integer_constant (result, 1);
1186 }
1187
1188
1189 /* Try to match a complex constant. */
1190
1191 static match
1192 match_complex_constant (gfc_expr **result)
1193 {
1194 gfc_expr *e, *real, *imag;
1195 gfc_error_buf old_error;
1196 gfc_typespec target;
1197 locus old_loc;
1198 int kind;
1199 match m;
1200
1201 old_loc = gfc_current_locus;
1202 real = imag = e = NULL;
1203
1204 m = gfc_match_char ('(');
1205 if (m != MATCH_YES)
1206 return m;
1207
1208 gfc_push_error (&old_error);
1209
1210 m = match_complex_part (&real);
1211 if (m == MATCH_NO)
1212 {
1213 gfc_free_error (&old_error);
1214 goto cleanup;
1215 }
1216
1217 if (gfc_match_char (',') == MATCH_NO)
1218 {
1219 gfc_pop_error (&old_error);
1220 m = MATCH_NO;
1221 goto cleanup;
1222 }
1223
1224 /* If m is error, then something was wrong with the real part and we
1225 assume we have a complex constant because we've seen the ','. An
1226 ambiguous case here is the start of an iterator list of some
1227 sort. These sort of lists are matched prior to coming here. */
1228
1229 if (m == MATCH_ERROR)
1230 {
1231 gfc_free_error (&old_error);
1232 goto cleanup;
1233 }
1234 gfc_pop_error (&old_error);
1235
1236 m = match_complex_part (&imag);
1237 if (m == MATCH_NO)
1238 goto syntax;
1239 if (m == MATCH_ERROR)
1240 goto cleanup;
1241
1242 m = gfc_match_char (')');
1243 if (m == MATCH_NO)
1244 {
1245 /* Give the matcher for implied do-loops a chance to run. This
1246 yields a much saner error message for (/ (i, 4=i, 6) /). */
1247 if (gfc_peek_ascii_char () == '=')
1248 {
1249 m = MATCH_ERROR;
1250 goto cleanup;
1251 }
1252 else
1253 goto syntax;
1254 }
1255
1256 if (m == MATCH_ERROR)
1257 goto cleanup;
1258
1259 /* Decide on the kind of this complex number. */
1260 if (real->ts.type == BT_REAL)
1261 {
1262 if (imag->ts.type == BT_REAL)
1263 kind = gfc_kind_max (real, imag);
1264 else
1265 kind = real->ts.kind;
1266 }
1267 else
1268 {
1269 if (imag->ts.type == BT_REAL)
1270 kind = imag->ts.kind;
1271 else
1272 kind = gfc_default_real_kind;
1273 }
1274 target.type = BT_REAL;
1275 target.kind = kind;
1276 target.is_c_interop = 0;
1277 target.is_iso_c = 0;
1278
1279 if (real->ts.type != BT_REAL || kind != real->ts.kind)
1280 gfc_convert_type (real, &target, 2);
1281 if (imag->ts.type != BT_REAL || kind != imag->ts.kind)
1282 gfc_convert_type (imag, &target, 2);
1283
1284 e = gfc_convert_complex (real, imag, kind);
1285 e->where = gfc_current_locus;
1286
1287 gfc_free_expr (real);
1288 gfc_free_expr (imag);
1289
1290 *result = e;
1291 return MATCH_YES;
1292
1293 syntax:
1294 gfc_error ("Syntax error in COMPLEX constant at %C");
1295 m = MATCH_ERROR;
1296
1297 cleanup:
1298 gfc_free_expr (e);
1299 gfc_free_expr (real);
1300 gfc_free_expr (imag);
1301 gfc_current_locus = old_loc;
1302
1303 return m;
1304 }
1305
1306
1307 /* Match constants in any of several forms. Returns nonzero for a
1308 match, zero for no match. */
1309
1310 match
1311 gfc_match_literal_constant (gfc_expr **result, int signflag)
1312 {
1313 match m;
1314
1315 m = match_complex_constant (result);
1316 if (m != MATCH_NO)
1317 return m;
1318
1319 m = match_string_constant (result);
1320 if (m != MATCH_NO)
1321 return m;
1322
1323 m = match_boz_constant (result);
1324 if (m != MATCH_NO)
1325 return m;
1326
1327 m = match_real_constant (result, signflag);
1328 if (m != MATCH_NO)
1329 return m;
1330
1331 m = match_hollerith_constant (result);
1332 if (m != MATCH_NO)
1333 return m;
1334
1335 m = match_integer_constant (result, signflag);
1336 if (m != MATCH_NO)
1337 return m;
1338
1339 m = match_logical_constant (result);
1340 if (m != MATCH_NO)
1341 return m;
1342
1343 return MATCH_NO;
1344 }
1345
1346
1347 /* Match a single actual argument value. An actual argument is
1348 usually an expression, but can also be a procedure name. If the
1349 argument is a single name, it is not always possible to tell
1350 whether the name is a dummy procedure or not. We treat these cases
1351 by creating an argument that looks like a dummy procedure and
1352 fixing things later during resolution. */
1353
1354 static match
1355 match_actual_arg (gfc_expr **result)
1356 {
1357 char name[GFC_MAX_SYMBOL_LEN + 1];
1358 gfc_symtree *symtree;
1359 locus where, w;
1360 gfc_expr *e;
1361 char c;
1362
1363 gfc_gobble_whitespace ();
1364 where = gfc_current_locus;
1365
1366 switch (gfc_match_name (name))
1367 {
1368 case MATCH_ERROR:
1369 return MATCH_ERROR;
1370
1371 case MATCH_NO:
1372 break;
1373
1374 case MATCH_YES:
1375 w = gfc_current_locus;
1376 gfc_gobble_whitespace ();
1377 c = gfc_next_ascii_char ();
1378 gfc_current_locus = w;
1379
1380 if (c != ',' && c != ')')
1381 break;
1382
1383 if (gfc_find_sym_tree (name, NULL, 1, &symtree))
1384 break;
1385 /* Handle error elsewhere. */
1386
1387 /* Eliminate a couple of common cases where we know we don't
1388 have a function argument. */
1389 if (symtree == NULL)
1390 {
1391 gfc_get_sym_tree (name, NULL, &symtree, false);
1392 gfc_set_sym_referenced (symtree->n.sym);
1393 }
1394 else
1395 {
1396 gfc_symbol *sym;
1397
1398 sym = symtree->n.sym;
1399 gfc_set_sym_referenced (sym);
1400 if (sym->attr.flavor != FL_PROCEDURE
1401 && sym->attr.flavor != FL_UNKNOWN)
1402 break;
1403
1404 if (sym->attr.in_common && !sym->attr.proc_pointer)
1405 {
1406 gfc_add_flavor (&sym->attr, FL_VARIABLE, sym->name,
1407 &sym->declared_at);
1408 break;
1409 }
1410
1411 /* If the symbol is a function with itself as the result and
1412 is being defined, then we have a variable. */
1413 if (sym->attr.function && sym->result == sym)
1414 {
1415 if (gfc_current_ns->proc_name == sym
1416 || (gfc_current_ns->parent != NULL
1417 && gfc_current_ns->parent->proc_name == sym))
1418 break;
1419
1420 if (sym->attr.entry
1421 && (sym->ns == gfc_current_ns
1422 || sym->ns == gfc_current_ns->parent))
1423 {
1424 gfc_entry_list *el = NULL;
1425
1426 for (el = sym->ns->entries; el; el = el->next)
1427 if (sym == el->sym)
1428 break;
1429
1430 if (el)
1431 break;
1432 }
1433 }
1434 }
1435
1436 e = gfc_get_expr (); /* Leave it unknown for now */
1437 e->symtree = symtree;
1438 e->expr_type = EXPR_VARIABLE;
1439 e->ts.type = BT_PROCEDURE;
1440 e->where = where;
1441
1442 *result = e;
1443 return MATCH_YES;
1444 }
1445
1446 gfc_current_locus = where;
1447 return gfc_match_expr (result);
1448 }
1449
1450
1451 /* Match a keyword argument. */
1452
1453 static match
1454 match_keyword_arg (gfc_actual_arglist *actual, gfc_actual_arglist *base)
1455 {
1456 char name[GFC_MAX_SYMBOL_LEN + 1];
1457 gfc_actual_arglist *a;
1458 locus name_locus;
1459 match m;
1460
1461 name_locus = gfc_current_locus;
1462 m = gfc_match_name (name);
1463
1464 if (m != MATCH_YES)
1465 goto cleanup;
1466 if (gfc_match_char ('=') != MATCH_YES)
1467 {
1468 m = MATCH_NO;
1469 goto cleanup;
1470 }
1471
1472 m = match_actual_arg (&actual->expr);
1473 if (m != MATCH_YES)
1474 goto cleanup;
1475
1476 /* Make sure this name has not appeared yet. */
1477
1478 if (name[0] != '\0')
1479 {
1480 for (a = base; a; a = a->next)
1481 if (a->name != NULL && strcmp (a->name, name) == 0)
1482 {
1483 gfc_error ("Keyword '%s' at %C has already appeared in the "
1484 "current argument list", name);
1485 return MATCH_ERROR;
1486 }
1487 }
1488
1489 actual->name = gfc_get_string (name);
1490 return MATCH_YES;
1491
1492 cleanup:
1493 gfc_current_locus = name_locus;
1494 return m;
1495 }
1496
1497
1498 /* Match an argument list function, such as %VAL. */
1499
1500 static match
1501 match_arg_list_function (gfc_actual_arglist *result)
1502 {
1503 char name[GFC_MAX_SYMBOL_LEN + 1];
1504 locus old_locus;
1505 match m;
1506
1507 old_locus = gfc_current_locus;
1508
1509 if (gfc_match_char ('%') != MATCH_YES)
1510 {
1511 m = MATCH_NO;
1512 goto cleanup;
1513 }
1514
1515 m = gfc_match ("%n (", name);
1516 if (m != MATCH_YES)
1517 goto cleanup;
1518
1519 if (name[0] != '\0')
1520 {
1521 switch (name[0])
1522 {
1523 case 'l':
1524 if (strncmp (name, "loc", 3) == 0)
1525 {
1526 result->name = "%LOC";
1527 break;
1528 }
1529 case 'r':
1530 if (strncmp (name, "ref", 3) == 0)
1531 {
1532 result->name = "%REF";
1533 break;
1534 }
1535 case 'v':
1536 if (strncmp (name, "val", 3) == 0)
1537 {
1538 result->name = "%VAL";
1539 break;
1540 }
1541 default:
1542 m = MATCH_ERROR;
1543 goto cleanup;
1544 }
1545 }
1546
1547 if (gfc_notify_std (GFC_STD_GNU, "Extension: argument list "
1548 "function at %C") == FAILURE)
1549 {
1550 m = MATCH_ERROR;
1551 goto cleanup;
1552 }
1553
1554 m = match_actual_arg (&result->expr);
1555 if (m != MATCH_YES)
1556 goto cleanup;
1557
1558 if (gfc_match_char (')') != MATCH_YES)
1559 {
1560 m = MATCH_NO;
1561 goto cleanup;
1562 }
1563
1564 return MATCH_YES;
1565
1566 cleanup:
1567 gfc_current_locus = old_locus;
1568 return m;
1569 }
1570
1571
1572 /* Matches an actual argument list of a function or subroutine, from
1573 the opening parenthesis to the closing parenthesis. The argument
1574 list is assumed to allow keyword arguments because we don't know if
1575 the symbol associated with the procedure has an implicit interface
1576 or not. We make sure keywords are unique. If sub_flag is set,
1577 we're matching the argument list of a subroutine. */
1578
1579 match
1580 gfc_match_actual_arglist (int sub_flag, gfc_actual_arglist **argp)
1581 {
1582 gfc_actual_arglist *head, *tail;
1583 int seen_keyword;
1584 gfc_st_label *label;
1585 locus old_loc;
1586 match m;
1587
1588 *argp = tail = NULL;
1589 old_loc = gfc_current_locus;
1590
1591 seen_keyword = 0;
1592
1593 if (gfc_match_char ('(') == MATCH_NO)
1594 return (sub_flag) ? MATCH_YES : MATCH_NO;
1595
1596 if (gfc_match_char (')') == MATCH_YES)
1597 return MATCH_YES;
1598 head = NULL;
1599
1600 for (;;)
1601 {
1602 if (head == NULL)
1603 head = tail = gfc_get_actual_arglist ();
1604 else
1605 {
1606 tail->next = gfc_get_actual_arglist ();
1607 tail = tail->next;
1608 }
1609
1610 if (sub_flag && gfc_match_char ('*') == MATCH_YES)
1611 {
1612 m = gfc_match_st_label (&label);
1613 if (m == MATCH_NO)
1614 gfc_error ("Expected alternate return label at %C");
1615 if (m != MATCH_YES)
1616 goto cleanup;
1617
1618 tail->label = label;
1619 goto next;
1620 }
1621
1622 /* After the first keyword argument is seen, the following
1623 arguments must also have keywords. */
1624 if (seen_keyword)
1625 {
1626 m = match_keyword_arg (tail, head);
1627
1628 if (m == MATCH_ERROR)
1629 goto cleanup;
1630 if (m == MATCH_NO)
1631 {
1632 gfc_error ("Missing keyword name in actual argument list at %C");
1633 goto cleanup;
1634 }
1635
1636 }
1637 else
1638 {
1639 /* Try an argument list function, like %VAL. */
1640 m = match_arg_list_function (tail);
1641 if (m == MATCH_ERROR)
1642 goto cleanup;
1643
1644 /* See if we have the first keyword argument. */
1645 if (m == MATCH_NO)
1646 {
1647 m = match_keyword_arg (tail, head);
1648 if (m == MATCH_YES)
1649 seen_keyword = 1;
1650 if (m == MATCH_ERROR)
1651 goto cleanup;
1652 }
1653
1654 if (m == MATCH_NO)
1655 {
1656 /* Try for a non-keyword argument. */
1657 m = match_actual_arg (&tail->expr);
1658 if (m == MATCH_ERROR)
1659 goto cleanup;
1660 if (m == MATCH_NO)
1661 goto syntax;
1662 }
1663 }
1664
1665
1666 next:
1667 if (gfc_match_char (')') == MATCH_YES)
1668 break;
1669 if (gfc_match_char (',') != MATCH_YES)
1670 goto syntax;
1671 }
1672
1673 *argp = head;
1674 return MATCH_YES;
1675
1676 syntax:
1677 gfc_error ("Syntax error in argument list at %C");
1678
1679 cleanup:
1680 gfc_free_actual_arglist (head);
1681 gfc_current_locus = old_loc;
1682
1683 return MATCH_ERROR;
1684 }
1685
1686
1687 /* Used by gfc_match_varspec() to extend the reference list by one
1688 element. */
1689
1690 static gfc_ref *
1691 extend_ref (gfc_expr *primary, gfc_ref *tail)
1692 {
1693 if (primary->ref == NULL)
1694 primary->ref = tail = gfc_get_ref ();
1695 else
1696 {
1697 if (tail == NULL)
1698 gfc_internal_error ("extend_ref(): Bad tail");
1699 tail->next = gfc_get_ref ();
1700 tail = tail->next;
1701 }
1702
1703 return tail;
1704 }
1705
1706
1707 /* Match any additional specifications associated with the current
1708 variable like member references or substrings. If equiv_flag is
1709 set we only match stuff that is allowed inside an EQUIVALENCE
1710 statement. sub_flag tells whether we expect a type-bound procedure found
1711 to be a subroutine as part of CALL or a FUNCTION. For procedure pointer
1712 components, 'ppc_arg' determines whether the PPC may be called (with an
1713 argument list), or whether it may just be referred to as a pointer. */
1714
1715 match
1716 gfc_match_varspec (gfc_expr *primary, int equiv_flag, bool sub_flag,
1717 bool ppc_arg)
1718 {
1719 char name[GFC_MAX_SYMBOL_LEN + 1];
1720 gfc_ref *substring, *tail;
1721 gfc_component *component;
1722 gfc_symbol *sym = primary->symtree->n.sym;
1723 match m;
1724 bool unknown;
1725
1726 tail = NULL;
1727
1728 gfc_gobble_whitespace ();
1729 if ((equiv_flag && gfc_peek_ascii_char () == '(')
1730 || (sym->attr.dimension && !sym->attr.proc_pointer))
1731 {
1732 /* In EQUIVALENCE, we don't know yet whether we are seeing
1733 an array, character variable or array of character
1734 variables. We'll leave the decision till resolve time. */
1735 tail = extend_ref (primary, tail);
1736 tail->type = REF_ARRAY;
1737
1738 m = gfc_match_array_ref (&tail->u.ar, equiv_flag ? NULL : sym->as,
1739 equiv_flag);
1740 if (m != MATCH_YES)
1741 return m;
1742
1743 gfc_gobble_whitespace ();
1744 if (equiv_flag && gfc_peek_ascii_char () == '(')
1745 {
1746 tail = extend_ref (primary, tail);
1747 tail->type = REF_ARRAY;
1748
1749 m = gfc_match_array_ref (&tail->u.ar, NULL, equiv_flag);
1750 if (m != MATCH_YES)
1751 return m;
1752 }
1753 }
1754
1755 primary->ts = sym->ts;
1756
1757 if (equiv_flag)
1758 return MATCH_YES;
1759
1760 if (sym->ts.type == BT_UNKNOWN && gfc_peek_ascii_char () == '%'
1761 && gfc_get_default_type (sym->name, sym->ns)->type == BT_DERIVED)
1762 gfc_set_default_type (sym, 0, sym->ns);
1763
1764 if (sym->ts.type != BT_DERIVED || gfc_match_char ('%') != MATCH_YES)
1765 goto check_substring;
1766
1767 sym = sym->ts.derived;
1768
1769 for (;;)
1770 {
1771 gfc_try t;
1772 gfc_symtree *tbp;
1773
1774 m = gfc_match_name (name);
1775 if (m == MATCH_NO)
1776 gfc_error ("Expected structure component name at %C");
1777 if (m != MATCH_YES)
1778 return MATCH_ERROR;
1779
1780 tbp = gfc_find_typebound_proc (sym, &t, name, false);
1781 if (tbp)
1782 {
1783 gfc_symbol* tbp_sym;
1784
1785 if (t == FAILURE)
1786 return MATCH_ERROR;
1787
1788 gcc_assert (!tail || !tail->next);
1789 gcc_assert (primary->expr_type == EXPR_VARIABLE);
1790
1791 if (tbp->n.tb->is_generic)
1792 tbp_sym = NULL;
1793 else
1794 tbp_sym = tbp->n.tb->u.specific->n.sym;
1795
1796 primary->expr_type = EXPR_COMPCALL;
1797 primary->value.compcall.tbp = tbp->n.tb;
1798 primary->value.compcall.name = tbp->name;
1799 gcc_assert (primary->symtree->n.sym->attr.referenced);
1800 if (tbp_sym)
1801 primary->ts = tbp_sym->ts;
1802
1803 m = gfc_match_actual_arglist (tbp->n.tb->subroutine,
1804 &primary->value.compcall.actual);
1805 if (m == MATCH_ERROR)
1806 return MATCH_ERROR;
1807 if (m == MATCH_NO)
1808 {
1809 if (sub_flag)
1810 primary->value.compcall.actual = NULL;
1811 else
1812 {
1813 gfc_error ("Expected argument list at %C");
1814 return MATCH_ERROR;
1815 }
1816 }
1817
1818 break;
1819 }
1820
1821 component = gfc_find_component (sym, name, false, false);
1822 if (component == NULL)
1823 return MATCH_ERROR;
1824
1825 tail = extend_ref (primary, tail);
1826 tail->type = REF_COMPONENT;
1827
1828 tail->u.c.component = component;
1829 tail->u.c.sym = sym;
1830
1831 primary->ts = component->ts;
1832
1833 if (component->attr.proc_pointer && ppc_arg
1834 && !gfc_matching_procptr_assignment)
1835 {
1836 primary->expr_type = EXPR_PPC;
1837 m = gfc_match_actual_arglist (component->attr.subroutine,
1838 &primary->value.compcall.actual);
1839 if (m == MATCH_ERROR)
1840 return MATCH_ERROR;
1841 if (m == MATCH_NO)
1842 primary->value.compcall.actual = NULL;
1843
1844 break;
1845 }
1846
1847 if (component->as != NULL && !component->attr.proc_pointer)
1848 {
1849 tail = extend_ref (primary, tail);
1850 tail->type = REF_ARRAY;
1851
1852 m = gfc_match_array_ref (&tail->u.ar, component->as, equiv_flag);
1853 if (m != MATCH_YES)
1854 return m;
1855 }
1856
1857 if (component->ts.type != BT_DERIVED
1858 || gfc_match_char ('%') != MATCH_YES)
1859 break;
1860
1861 sym = component->ts.derived;
1862 }
1863
1864 check_substring:
1865 unknown = false;
1866 if (primary->ts.type == BT_UNKNOWN)
1867 {
1868 if (gfc_get_default_type (sym->name, sym->ns)->type == BT_CHARACTER)
1869 {
1870 gfc_set_default_type (sym, 0, sym->ns);
1871 primary->ts = sym->ts;
1872 unknown = true;
1873 }
1874 }
1875
1876 if (primary->ts.type == BT_CHARACTER)
1877 {
1878 switch (match_substring (primary->ts.cl, equiv_flag, &substring))
1879 {
1880 case MATCH_YES:
1881 if (tail == NULL)
1882 primary->ref = substring;
1883 else
1884 tail->next = substring;
1885
1886 if (primary->expr_type == EXPR_CONSTANT)
1887 primary->expr_type = EXPR_SUBSTRING;
1888
1889 if (substring)
1890 primary->ts.cl = NULL;
1891
1892 break;
1893
1894 case MATCH_NO:
1895 if (unknown)
1896 {
1897 gfc_clear_ts (&primary->ts);
1898 gfc_clear_ts (&sym->ts);
1899 }
1900 break;
1901
1902 case MATCH_ERROR:
1903 return MATCH_ERROR;
1904 }
1905 }
1906
1907 return MATCH_YES;
1908 }
1909
1910
1911 /* Given an expression that is a variable, figure out what the
1912 ultimate variable's type and attribute is, traversing the reference
1913 structures if necessary.
1914
1915 This subroutine is trickier than it looks. We start at the base
1916 symbol and store the attribute. Component references load a
1917 completely new attribute.
1918
1919 A couple of rules come into play. Subobjects of targets are always
1920 targets themselves. If we see a component that goes through a
1921 pointer, then the expression must also be a target, since the
1922 pointer is associated with something (if it isn't core will soon be
1923 dumped). If we see a full part or section of an array, the
1924 expression is also an array.
1925
1926 We can have at most one full array reference. */
1927
1928 symbol_attribute
1929 gfc_variable_attr (gfc_expr *expr, gfc_typespec *ts)
1930 {
1931 int dimension, pointer, allocatable, target;
1932 symbol_attribute attr;
1933 gfc_ref *ref;
1934
1935 if (expr->expr_type != EXPR_VARIABLE)
1936 gfc_internal_error ("gfc_variable_attr(): Expression isn't a variable");
1937
1938 ref = expr->ref;
1939 attr = expr->symtree->n.sym->attr;
1940
1941 dimension = attr.dimension;
1942 pointer = attr.pointer;
1943 allocatable = attr.allocatable;
1944
1945 target = attr.target;
1946 if (pointer || attr.proc_pointer)
1947 target = 1;
1948
1949 if (ts != NULL && expr->ts.type == BT_UNKNOWN)
1950 *ts = expr->symtree->n.sym->ts;
1951
1952 for (; ref; ref = ref->next)
1953 switch (ref->type)
1954 {
1955 case REF_ARRAY:
1956
1957 switch (ref->u.ar.type)
1958 {
1959 case AR_FULL:
1960 dimension = 1;
1961 break;
1962
1963 case AR_SECTION:
1964 allocatable = pointer = 0;
1965 dimension = 1;
1966 break;
1967
1968 case AR_ELEMENT:
1969 allocatable = pointer = 0;
1970 break;
1971
1972 case AR_UNKNOWN:
1973 gfc_internal_error ("gfc_variable_attr(): Bad array reference");
1974 }
1975
1976 break;
1977
1978 case REF_COMPONENT:
1979 attr = ref->u.c.component->attr;
1980 if (ts != NULL)
1981 {
1982 *ts = ref->u.c.component->ts;
1983 /* Don't set the string length if a substring reference
1984 follows. */
1985 if (ts->type == BT_CHARACTER
1986 && ref->next && ref->next->type == REF_SUBSTRING)
1987 ts->cl = NULL;
1988 }
1989
1990 pointer = ref->u.c.component->attr.pointer;
1991 allocatable = ref->u.c.component->attr.allocatable;
1992 if (pointer || attr.proc_pointer)
1993 target = 1;
1994
1995 break;
1996
1997 case REF_SUBSTRING:
1998 allocatable = pointer = 0;
1999 break;
2000 }
2001
2002 attr.dimension = dimension;
2003 attr.pointer = pointer;
2004 attr.allocatable = allocatable;
2005 attr.target = target;
2006
2007 return attr;
2008 }
2009
2010
2011 /* Return the attribute from a general expression. */
2012
2013 symbol_attribute
2014 gfc_expr_attr (gfc_expr *e)
2015 {
2016 symbol_attribute attr;
2017
2018 switch (e->expr_type)
2019 {
2020 case EXPR_VARIABLE:
2021 attr = gfc_variable_attr (e, NULL);
2022 break;
2023
2024 case EXPR_FUNCTION:
2025 gfc_clear_attr (&attr);
2026
2027 if (e->value.function.esym != NULL)
2028 attr = e->value.function.esym->result->attr;
2029
2030 /* TODO: NULL() returns pointers. May have to take care of this
2031 here. */
2032
2033 break;
2034
2035 default:
2036 gfc_clear_attr (&attr);
2037 break;
2038 }
2039
2040 return attr;
2041 }
2042
2043
2044 /* Match a structure constructor. The initial symbol has already been
2045 seen. */
2046
2047 typedef struct gfc_structure_ctor_component
2048 {
2049 char* name;
2050 gfc_expr* val;
2051 locus where;
2052 struct gfc_structure_ctor_component* next;
2053 }
2054 gfc_structure_ctor_component;
2055
2056 #define gfc_get_structure_ctor_component() XCNEW (gfc_structure_ctor_component)
2057
2058 static void
2059 gfc_free_structure_ctor_component (gfc_structure_ctor_component *comp)
2060 {
2061 gfc_free (comp->name);
2062 gfc_free_expr (comp->val);
2063 }
2064
2065
2066 /* Translate the component list into the actual constructor by sorting it in
2067 the order required; this also checks along the way that each and every
2068 component actually has an initializer and handles default initializers
2069 for components without explicit value given. */
2070 static gfc_try
2071 build_actual_constructor (gfc_structure_ctor_component **comp_head,
2072 gfc_constructor **ctor_head, gfc_symbol *sym)
2073 {
2074 gfc_structure_ctor_component *comp_iter;
2075 gfc_constructor *ctor_tail = NULL;
2076 gfc_component *comp;
2077
2078 for (comp = sym->components; comp; comp = comp->next)
2079 {
2080 gfc_structure_ctor_component **next_ptr;
2081 gfc_expr *value = NULL;
2082
2083 /* Try to find the initializer for the current component by name. */
2084 next_ptr = comp_head;
2085 for (comp_iter = *comp_head; comp_iter; comp_iter = comp_iter->next)
2086 {
2087 if (!strcmp (comp_iter->name, comp->name))
2088 break;
2089 next_ptr = &comp_iter->next;
2090 }
2091
2092 /* If an extension, try building the parent derived type by building
2093 a value expression for the parent derived type and calling self. */
2094 if (!comp_iter && comp == sym->components && sym->attr.extension)
2095 {
2096 value = gfc_get_expr ();
2097 value->expr_type = EXPR_STRUCTURE;
2098 value->value.constructor = NULL;
2099 value->ts = comp->ts;
2100 value->where = gfc_current_locus;
2101
2102 if (build_actual_constructor (comp_head, &value->value.constructor,
2103 comp->ts.derived) == FAILURE)
2104 {
2105 gfc_free_expr (value);
2106 return FAILURE;
2107 }
2108 *ctor_head = ctor_tail = gfc_get_constructor ();
2109 ctor_tail->expr = value;
2110 continue;
2111 }
2112
2113 /* If it was not found, try the default initializer if there's any;
2114 otherwise, it's an error. */
2115 if (!comp_iter)
2116 {
2117 if (comp->initializer)
2118 {
2119 if (gfc_notify_std (GFC_STD_F2003, "Fortran 2003: Structure"
2120 " constructor with missing optional arguments"
2121 " at %C") == FAILURE)
2122 return FAILURE;
2123 value = gfc_copy_expr (comp->initializer);
2124 }
2125 else
2126 {
2127 gfc_error ("No initializer for component '%s' given in the"
2128 " structure constructor at %C!", comp->name);
2129 return FAILURE;
2130 }
2131 }
2132 else
2133 value = comp_iter->val;
2134
2135 /* Add the value to the constructor chain built. */
2136 if (ctor_tail)
2137 {
2138 ctor_tail->next = gfc_get_constructor ();
2139 ctor_tail = ctor_tail->next;
2140 }
2141 else
2142 *ctor_head = ctor_tail = gfc_get_constructor ();
2143 gcc_assert (value);
2144 ctor_tail->expr = value;
2145
2146 /* Remove the entry from the component list. We don't want the expression
2147 value to be free'd, so set it to NULL. */
2148 if (comp_iter)
2149 {
2150 *next_ptr = comp_iter->next;
2151 comp_iter->val = NULL;
2152 gfc_free_structure_ctor_component (comp_iter);
2153 }
2154 }
2155 return SUCCESS;
2156 }
2157
2158 match
2159 gfc_match_structure_constructor (gfc_symbol *sym, gfc_expr **result,
2160 bool parent)
2161 {
2162 gfc_structure_ctor_component *comp_tail, *comp_head, *comp_iter;
2163 gfc_constructor *ctor_head, *ctor_tail;
2164 gfc_component *comp; /* Is set NULL when named component is first seen */
2165 gfc_expr *e;
2166 locus where;
2167 match m;
2168 const char* last_name = NULL;
2169
2170 comp_tail = comp_head = NULL;
2171 ctor_head = ctor_tail = NULL;
2172
2173 if (!parent && gfc_match_char ('(') != MATCH_YES)
2174 goto syntax;
2175
2176 where = gfc_current_locus;
2177
2178 gfc_find_component (sym, NULL, false, true);
2179
2180 /* Check that we're not about to construct an ABSTRACT type. */
2181 if (!parent && sym->attr.abstract)
2182 {
2183 gfc_error ("Can't construct ABSTRACT type '%s' at %C", sym->name);
2184 return MATCH_ERROR;
2185 }
2186
2187 /* Match the component list and store it in a list together with the
2188 corresponding component names. Check for empty argument list first. */
2189 if (gfc_match_char (')') != MATCH_YES)
2190 {
2191 comp = sym->components;
2192 do
2193 {
2194 gfc_component *this_comp = NULL;
2195
2196 if (!comp_head)
2197 comp_tail = comp_head = gfc_get_structure_ctor_component ();
2198 else
2199 {
2200 comp_tail->next = gfc_get_structure_ctor_component ();
2201 comp_tail = comp_tail->next;
2202 }
2203 comp_tail->name = XCNEWVEC (char, GFC_MAX_SYMBOL_LEN + 1);
2204 comp_tail->val = NULL;
2205 comp_tail->where = gfc_current_locus;
2206
2207 /* Try matching a component name. */
2208 if (gfc_match_name (comp_tail->name) == MATCH_YES
2209 && gfc_match_char ('=') == MATCH_YES)
2210 {
2211 if (gfc_notify_std (GFC_STD_F2003, "Fortran 2003: Structure"
2212 " constructor with named arguments at %C")
2213 == FAILURE)
2214 goto cleanup;
2215
2216 last_name = comp_tail->name;
2217 comp = NULL;
2218 }
2219 else
2220 {
2221 /* Components without name are not allowed after the first named
2222 component initializer! */
2223 if (!comp)
2224 {
2225 if (last_name)
2226 gfc_error ("Component initializer without name after"
2227 " component named %s at %C!", last_name);
2228 else if (!parent)
2229 gfc_error ("Too many components in structure constructor at"
2230 " %C!");
2231 goto cleanup;
2232 }
2233
2234 gfc_current_locus = comp_tail->where;
2235 strncpy (comp_tail->name, comp->name, GFC_MAX_SYMBOL_LEN + 1);
2236 }
2237
2238 /* Find the current component in the structure definition and check
2239 its access is not private. */
2240 if (comp)
2241 this_comp = gfc_find_component (sym, comp->name, false, false);
2242 else
2243 {
2244 this_comp = gfc_find_component (sym,
2245 (const char *)comp_tail->name,
2246 false, false);
2247 comp = NULL; /* Reset needed! */
2248 }
2249
2250 /* Here we can check if a component name is given which does not
2251 correspond to any component of the defined structure. */
2252 if (!this_comp)
2253 goto cleanup;
2254
2255 /* Check if this component is already given a value. */
2256 for (comp_iter = comp_head; comp_iter != comp_tail;
2257 comp_iter = comp_iter->next)
2258 {
2259 gcc_assert (comp_iter);
2260 if (!strcmp (comp_iter->name, comp_tail->name))
2261 {
2262 gfc_error ("Component '%s' is initialized twice in the"
2263 " structure constructor at %C!", comp_tail->name);
2264 goto cleanup;
2265 }
2266 }
2267
2268 /* Match the current initializer expression. */
2269 m = gfc_match_expr (&comp_tail->val);
2270 if (m == MATCH_NO)
2271 goto syntax;
2272 if (m == MATCH_ERROR)
2273 goto cleanup;
2274
2275 /* If not explicitly a parent constructor, gather up the components
2276 and build one. */
2277 if (comp && comp == sym->components
2278 && sym->attr.extension
2279 && (comp_tail->val->ts.type != BT_DERIVED
2280 ||
2281 comp_tail->val->ts.derived != this_comp->ts.derived))
2282 {
2283 gfc_current_locus = where;
2284 gfc_free_expr (comp_tail->val);
2285 comp_tail->val = NULL;
2286
2287 m = gfc_match_structure_constructor (comp->ts.derived,
2288 &comp_tail->val, true);
2289 if (m == MATCH_NO)
2290 goto syntax;
2291 if (m == MATCH_ERROR)
2292 goto cleanup;
2293 }
2294
2295 if (comp)
2296 comp = comp->next;
2297
2298 if (parent && !comp)
2299 break;
2300 }
2301
2302 while (gfc_match_char (',') == MATCH_YES);
2303
2304 if (!parent && gfc_match_char (')') != MATCH_YES)
2305 goto syntax;
2306 }
2307
2308 if (build_actual_constructor (&comp_head, &ctor_head, sym) == FAILURE)
2309 goto cleanup;
2310
2311 /* No component should be left, as this should have caused an error in the
2312 loop constructing the component-list (name that does not correspond to any
2313 component in the structure definition). */
2314 if (comp_head && sym->attr.extension)
2315 {
2316 for (comp_iter = comp_head; comp_iter; comp_iter = comp_iter->next)
2317 {
2318 gfc_error ("component '%s' at %L has already been set by a "
2319 "parent derived type constructor", comp_iter->name,
2320 &comp_iter->where);
2321 }
2322 goto cleanup;
2323 }
2324 else
2325 gcc_assert (!comp_head);
2326
2327 e = gfc_get_expr ();
2328
2329 e->expr_type = EXPR_STRUCTURE;
2330
2331 e->ts.type = BT_DERIVED;
2332 e->ts.derived = sym;
2333 e->where = where;
2334
2335 e->value.constructor = ctor_head;
2336
2337 *result = e;
2338 return MATCH_YES;
2339
2340 syntax:
2341 gfc_error ("Syntax error in structure constructor at %C");
2342
2343 cleanup:
2344 for (comp_iter = comp_head; comp_iter; )
2345 {
2346 gfc_structure_ctor_component *next = comp_iter->next;
2347 gfc_free_structure_ctor_component (comp_iter);
2348 comp_iter = next;
2349 }
2350 gfc_free_constructor (ctor_head);
2351 return MATCH_ERROR;
2352 }
2353
2354
2355 /* If the symbol is an implicit do loop index and implicitly typed,
2356 it should not be host associated. Provide a symtree from the
2357 current namespace. */
2358 static match
2359 check_for_implicit_index (gfc_symtree **st, gfc_symbol **sym)
2360 {
2361 if ((*sym)->attr.flavor == FL_VARIABLE
2362 && (*sym)->ns != gfc_current_ns
2363 && (*sym)->attr.implied_index
2364 && (*sym)->attr.implicit_type
2365 && !(*sym)->attr.use_assoc)
2366 {
2367 int i;
2368 i = gfc_get_sym_tree ((*sym)->name, NULL, st, false);
2369 if (i)
2370 return MATCH_ERROR;
2371 *sym = (*st)->n.sym;
2372 }
2373 return MATCH_YES;
2374 }
2375
2376
2377 /* Procedure pointer as function result: Replace the function symbol by the
2378 auto-generated hidden result variable named "ppr@". */
2379
2380 static gfc_try
2381 replace_hidden_procptr_result (gfc_symbol **sym, gfc_symtree **st)
2382 {
2383 /* Check for procedure pointer result variable. */
2384 if ((*sym)->attr.function && !(*sym)->attr.external
2385 && (*sym)->result && (*sym)->result != *sym
2386 && (*sym)->result->attr.proc_pointer
2387 && (*sym) == gfc_current_ns->proc_name
2388 && (*sym) == (*sym)->result->ns->proc_name
2389 && strcmp ("ppr@", (*sym)->result->name) == 0)
2390 {
2391 /* Automatic replacement with "hidden" result variable. */
2392 (*sym)->result->attr.referenced = (*sym)->attr.referenced;
2393 *sym = (*sym)->result;
2394 *st = gfc_find_symtree ((*sym)->ns->sym_root, (*sym)->name);
2395 return SUCCESS;
2396 }
2397 return FAILURE;
2398 }
2399
2400
2401 /* Matches a variable name followed by anything that might follow it--
2402 array reference, argument list of a function, etc. */
2403
2404 match
2405 gfc_match_rvalue (gfc_expr **result)
2406 {
2407 gfc_actual_arglist *actual_arglist;
2408 char name[GFC_MAX_SYMBOL_LEN + 1], argname[GFC_MAX_SYMBOL_LEN + 1];
2409 gfc_state_data *st;
2410 gfc_symbol *sym;
2411 gfc_symtree *symtree;
2412 locus where, old_loc;
2413 gfc_expr *e;
2414 match m, m2;
2415 int i;
2416 gfc_typespec *ts;
2417 bool implicit_char;
2418 gfc_ref *ref;
2419
2420 m = gfc_match_name (name);
2421 if (m != MATCH_YES)
2422 return m;
2423
2424 if (gfc_find_state (COMP_INTERFACE) == SUCCESS
2425 && !gfc_current_ns->has_import_set)
2426 i = gfc_get_sym_tree (name, NULL, &symtree, false);
2427 else
2428 i = gfc_get_ha_sym_tree (name, &symtree);
2429
2430 if (i)
2431 return MATCH_ERROR;
2432
2433 sym = symtree->n.sym;
2434 e = NULL;
2435 where = gfc_current_locus;
2436
2437 replace_hidden_procptr_result (&sym, &symtree);
2438
2439 /* If this is an implicit do loop index and implicitly typed,
2440 it should not be host associated. */
2441 m = check_for_implicit_index (&symtree, &sym);
2442 if (m != MATCH_YES)
2443 return m;
2444
2445 gfc_set_sym_referenced (sym);
2446 sym->attr.implied_index = 0;
2447
2448 if (sym->attr.function && sym->result == sym)
2449 {
2450 /* See if this is a directly recursive function call. */
2451 gfc_gobble_whitespace ();
2452 if (sym->attr.recursive
2453 && gfc_peek_ascii_char () == '('
2454 && gfc_current_ns->proc_name == sym
2455 && !sym->attr.dimension)
2456 {
2457 gfc_error ("'%s' at %C is the name of a recursive function "
2458 "and so refers to the result variable. Use an "
2459 "explicit RESULT variable for direct recursion "
2460 "(12.5.2.1)", sym->name);
2461 return MATCH_ERROR;
2462 }
2463
2464 if (gfc_current_ns->proc_name == sym
2465 || (gfc_current_ns->parent != NULL
2466 && gfc_current_ns->parent->proc_name == sym))
2467 goto variable;
2468
2469 if (sym->attr.entry
2470 && (sym->ns == gfc_current_ns
2471 || sym->ns == gfc_current_ns->parent))
2472 {
2473 gfc_entry_list *el = NULL;
2474
2475 for (el = sym->ns->entries; el; el = el->next)
2476 if (sym == el->sym)
2477 goto variable;
2478 }
2479 }
2480
2481 if (gfc_matching_procptr_assignment)
2482 goto procptr0;
2483
2484 if (sym->attr.function || sym->attr.external || sym->attr.intrinsic)
2485 goto function0;
2486
2487 if (sym->attr.generic)
2488 goto generic_function;
2489
2490 switch (sym->attr.flavor)
2491 {
2492 case FL_VARIABLE:
2493 variable:
2494 e = gfc_get_expr ();
2495
2496 e->expr_type = EXPR_VARIABLE;
2497 e->symtree = symtree;
2498
2499 m = gfc_match_varspec (e, 0, false, true);
2500 break;
2501
2502 case FL_PARAMETER:
2503 /* A statement of the form "REAL, parameter :: a(0:10) = 1" will
2504 end up here. Unfortunately, sym->value->expr_type is set to
2505 EXPR_CONSTANT, and so the if () branch would be followed without
2506 the !sym->as check. */
2507 if (sym->value && sym->value->expr_type != EXPR_ARRAY && !sym->as)
2508 e = gfc_copy_expr (sym->value);
2509 else
2510 {
2511 e = gfc_get_expr ();
2512 e->expr_type = EXPR_VARIABLE;
2513 }
2514
2515 e->symtree = symtree;
2516 m = gfc_match_varspec (e, 0, false, true);
2517
2518 if (sym->ts.is_c_interop || sym->ts.is_iso_c)
2519 break;
2520
2521 /* Variable array references to derived type parameters cause
2522 all sorts of headaches in simplification. Treating such
2523 expressions as variable works just fine for all array
2524 references. */
2525 if (sym->value && sym->ts.type == BT_DERIVED && e->ref)
2526 {
2527 for (ref = e->ref; ref; ref = ref->next)
2528 if (ref->type == REF_ARRAY)
2529 break;
2530
2531 if (ref == NULL || ref->u.ar.type == AR_FULL)
2532 break;
2533
2534 ref = e->ref;
2535 e->ref = NULL;
2536 gfc_free_expr (e);
2537 e = gfc_get_expr ();
2538 e->expr_type = EXPR_VARIABLE;
2539 e->symtree = symtree;
2540 e->ref = ref;
2541 }
2542
2543 break;
2544
2545 case FL_DERIVED:
2546 sym = gfc_use_derived (sym);
2547 if (sym == NULL)
2548 m = MATCH_ERROR;
2549 else
2550 m = gfc_match_structure_constructor (sym, &e, false);
2551 break;
2552
2553 /* If we're here, then the name is known to be the name of a
2554 procedure, yet it is not sure to be the name of a function. */
2555 case FL_PROCEDURE:
2556
2557 /* Procedure Pointer Assignments. */
2558 procptr0:
2559 if (gfc_matching_procptr_assignment)
2560 {
2561 gfc_gobble_whitespace ();
2562 if (!sym->attr.dimension && gfc_peek_ascii_char () == '(')
2563 /* Parse functions returning a procptr. */
2564 goto function0;
2565
2566 if (gfc_is_intrinsic (sym, 0, gfc_current_locus)
2567 || gfc_is_intrinsic (sym, 1, gfc_current_locus))
2568 sym->attr.intrinsic = 1;
2569 e = gfc_get_expr ();
2570 e->expr_type = EXPR_VARIABLE;
2571 e->symtree = symtree;
2572 m = gfc_match_varspec (e, 0, false, true);
2573 break;
2574 }
2575
2576 if (sym->attr.subroutine)
2577 {
2578 gfc_error ("Unexpected use of subroutine name '%s' at %C",
2579 sym->name);
2580 m = MATCH_ERROR;
2581 break;
2582 }
2583
2584 /* At this point, the name has to be a non-statement function.
2585 If the name is the same as the current function being
2586 compiled, then we have a variable reference (to the function
2587 result) if the name is non-recursive. */
2588
2589 st = gfc_enclosing_unit (NULL);
2590
2591 if (st != NULL && st->state == COMP_FUNCTION
2592 && st->sym == sym
2593 && !sym->attr.recursive)
2594 {
2595 e = gfc_get_expr ();
2596 e->symtree = symtree;
2597 e->expr_type = EXPR_VARIABLE;
2598
2599 m = gfc_match_varspec (e, 0, false, true);
2600 break;
2601 }
2602
2603 /* Match a function reference. */
2604 function0:
2605 m = gfc_match_actual_arglist (0, &actual_arglist);
2606 if (m == MATCH_NO)
2607 {
2608 if (sym->attr.proc == PROC_ST_FUNCTION)
2609 gfc_error ("Statement function '%s' requires argument list at %C",
2610 sym->name);
2611 else
2612 gfc_error ("Function '%s' requires an argument list at %C",
2613 sym->name);
2614
2615 m = MATCH_ERROR;
2616 break;
2617 }
2618
2619 if (m != MATCH_YES)
2620 {
2621 m = MATCH_ERROR;
2622 break;
2623 }
2624
2625 gfc_get_ha_sym_tree (name, &symtree); /* Can't fail */
2626 sym = symtree->n.sym;
2627
2628 replace_hidden_procptr_result (&sym, &symtree);
2629
2630 e = gfc_get_expr ();
2631 e->symtree = symtree;
2632 e->expr_type = EXPR_FUNCTION;
2633 e->value.function.actual = actual_arglist;
2634 e->where = gfc_current_locus;
2635
2636 if (sym->as != NULL)
2637 e->rank = sym->as->rank;
2638
2639 if (!sym->attr.function
2640 && gfc_add_function (&sym->attr, sym->name, NULL) == FAILURE)
2641 {
2642 m = MATCH_ERROR;
2643 break;
2644 }
2645
2646 /* Check here for the existence of at least one argument for the
2647 iso_c_binding functions C_LOC, C_FUNLOC, and C_ASSOCIATED. The
2648 argument(s) given will be checked in gfc_iso_c_func_interface,
2649 during resolution of the function call. */
2650 if (sym->attr.is_iso_c == 1
2651 && (sym->from_intmod == INTMOD_ISO_C_BINDING
2652 && (sym->intmod_sym_id == ISOCBINDING_LOC
2653 || sym->intmod_sym_id == ISOCBINDING_FUNLOC
2654 || sym->intmod_sym_id == ISOCBINDING_ASSOCIATED)))
2655 {
2656 /* make sure we were given a param */
2657 if (actual_arglist == NULL)
2658 {
2659 gfc_error ("Missing argument to '%s' at %C", sym->name);
2660 m = MATCH_ERROR;
2661 break;
2662 }
2663 }
2664
2665 if (sym->result == NULL)
2666 sym->result = sym;
2667
2668 m = MATCH_YES;
2669 break;
2670
2671 case FL_UNKNOWN:
2672
2673 /* Special case for derived type variables that get their types
2674 via an IMPLICIT statement. This can't wait for the
2675 resolution phase. */
2676
2677 if (gfc_peek_ascii_char () == '%'
2678 && sym->ts.type == BT_UNKNOWN
2679 && gfc_get_default_type (sym->name, sym->ns)->type == BT_DERIVED)
2680 gfc_set_default_type (sym, 0, sym->ns);
2681
2682 /* If the symbol has a dimension attribute, the expression is a
2683 variable. */
2684
2685 if (sym->attr.dimension)
2686 {
2687 if (gfc_add_flavor (&sym->attr, FL_VARIABLE,
2688 sym->name, NULL) == FAILURE)
2689 {
2690 m = MATCH_ERROR;
2691 break;
2692 }
2693
2694 e = gfc_get_expr ();
2695 e->symtree = symtree;
2696 e->expr_type = EXPR_VARIABLE;
2697 m = gfc_match_varspec (e, 0, false, true);
2698 break;
2699 }
2700
2701 /* Name is not an array, so we peek to see if a '(' implies a
2702 function call or a substring reference. Otherwise the
2703 variable is just a scalar. */
2704
2705 gfc_gobble_whitespace ();
2706 if (gfc_peek_ascii_char () != '(')
2707 {
2708 /* Assume a scalar variable */
2709 e = gfc_get_expr ();
2710 e->symtree = symtree;
2711 e->expr_type = EXPR_VARIABLE;
2712
2713 if (gfc_add_flavor (&sym->attr, FL_VARIABLE,
2714 sym->name, NULL) == FAILURE)
2715 {
2716 m = MATCH_ERROR;
2717 break;
2718 }
2719
2720 /*FIXME:??? gfc_match_varspec does set this for us: */
2721 e->ts = sym->ts;
2722 m = gfc_match_varspec (e, 0, false, true);
2723 break;
2724 }
2725
2726 /* See if this is a function reference with a keyword argument
2727 as first argument. We do this because otherwise a spurious
2728 symbol would end up in the symbol table. */
2729
2730 old_loc = gfc_current_locus;
2731 m2 = gfc_match (" ( %n =", argname);
2732 gfc_current_locus = old_loc;
2733
2734 e = gfc_get_expr ();
2735 e->symtree = symtree;
2736
2737 if (m2 != MATCH_YES)
2738 {
2739 /* Try to figure out whether we're dealing with a character type.
2740 We're peeking ahead here, because we don't want to call
2741 match_substring if we're dealing with an implicitly typed
2742 non-character variable. */
2743 implicit_char = false;
2744 if (sym->ts.type == BT_UNKNOWN)
2745 {
2746 ts = gfc_get_default_type (sym->name, NULL);
2747 if (ts->type == BT_CHARACTER)
2748 implicit_char = true;
2749 }
2750
2751 /* See if this could possibly be a substring reference of a name
2752 that we're not sure is a variable yet. */
2753
2754 if ((implicit_char || sym->ts.type == BT_CHARACTER)
2755 && match_substring (sym->ts.cl, 0, &e->ref) == MATCH_YES)
2756 {
2757
2758 e->expr_type = EXPR_VARIABLE;
2759
2760 if (sym->attr.flavor != FL_VARIABLE
2761 && gfc_add_flavor (&sym->attr, FL_VARIABLE,
2762 sym->name, NULL) == FAILURE)
2763 {
2764 m = MATCH_ERROR;
2765 break;
2766 }
2767
2768 if (sym->ts.type == BT_UNKNOWN
2769 && gfc_set_default_type (sym, 1, NULL) == FAILURE)
2770 {
2771 m = MATCH_ERROR;
2772 break;
2773 }
2774
2775 e->ts = sym->ts;
2776 if (e->ref)
2777 e->ts.cl = NULL;
2778 m = MATCH_YES;
2779 break;
2780 }
2781 }
2782
2783 /* Give up, assume we have a function. */
2784
2785 gfc_get_sym_tree (name, NULL, &symtree, false); /* Can't fail */
2786 sym = symtree->n.sym;
2787 e->expr_type = EXPR_FUNCTION;
2788
2789 if (!sym->attr.function
2790 && gfc_add_function (&sym->attr, sym->name, NULL) == FAILURE)
2791 {
2792 m = MATCH_ERROR;
2793 break;
2794 }
2795
2796 sym->result = sym;
2797
2798 m = gfc_match_actual_arglist (0, &e->value.function.actual);
2799 if (m == MATCH_NO)
2800 gfc_error ("Missing argument list in function '%s' at %C", sym->name);
2801
2802 if (m != MATCH_YES)
2803 {
2804 m = MATCH_ERROR;
2805 break;
2806 }
2807
2808 /* If our new function returns a character, array or structure
2809 type, it might have subsequent references. */
2810
2811 m = gfc_match_varspec (e, 0, false, true);
2812 if (m == MATCH_NO)
2813 m = MATCH_YES;
2814
2815 break;
2816
2817 generic_function:
2818 gfc_get_sym_tree (name, NULL, &symtree, false); /* Can't fail */
2819
2820 e = gfc_get_expr ();
2821 e->symtree = symtree;
2822 e->expr_type = EXPR_FUNCTION;
2823
2824 m = gfc_match_actual_arglist (0, &e->value.function.actual);
2825 break;
2826
2827 default:
2828 gfc_error ("Symbol at %C is not appropriate for an expression");
2829 return MATCH_ERROR;
2830 }
2831
2832 if (m == MATCH_YES)
2833 {
2834 e->where = where;
2835 *result = e;
2836 }
2837 else
2838 gfc_free_expr (e);
2839
2840 return m;
2841 }
2842
2843
2844 /* Match a variable, i.e. something that can be assigned to. This
2845 starts as a symbol, can be a structure component or an array
2846 reference. It can be a function if the function doesn't have a
2847 separate RESULT variable. If the symbol has not been previously
2848 seen, we assume it is a variable.
2849
2850 This function is called by two interface functions:
2851 gfc_match_variable, which has host_flag = 1, and
2852 gfc_match_equiv_variable, with host_flag = 0, to restrict the
2853 match of the symbol to the local scope. */
2854
2855 static match
2856 match_variable (gfc_expr **result, int equiv_flag, int host_flag)
2857 {
2858 gfc_symbol *sym;
2859 gfc_symtree *st;
2860 gfc_expr *expr;
2861 locus where;
2862 match m;
2863
2864 /* Since nothing has any business being an lvalue in a module
2865 specification block, an interface block or a contains section,
2866 we force the changed_symbols mechanism to work by setting
2867 host_flag to 0. This prevents valid symbols that have the name
2868 of keywords, such as 'end', being turned into variables by
2869 failed matching to assignments for, e.g., END INTERFACE. */
2870 if (gfc_current_state () == COMP_MODULE
2871 || gfc_current_state () == COMP_INTERFACE
2872 || gfc_current_state () == COMP_CONTAINS)
2873 host_flag = 0;
2874
2875 where = gfc_current_locus;
2876 m = gfc_match_sym_tree (&st, host_flag);
2877 if (m != MATCH_YES)
2878 return m;
2879
2880 sym = st->n.sym;
2881
2882 /* If this is an implicit do loop index and implicitly typed,
2883 it should not be host associated. */
2884 m = check_for_implicit_index (&st, &sym);
2885 if (m != MATCH_YES)
2886 return m;
2887
2888 sym->attr.implied_index = 0;
2889
2890 gfc_set_sym_referenced (sym);
2891 switch (sym->attr.flavor)
2892 {
2893 case FL_VARIABLE:
2894 if (sym->attr.is_protected && sym->attr.use_assoc)
2895 {
2896 gfc_error ("Assigning to PROTECTED variable at %C");
2897 return MATCH_ERROR;
2898 }
2899 break;
2900
2901 case FL_UNKNOWN:
2902 {
2903 sym_flavor flavor = FL_UNKNOWN;
2904
2905 gfc_gobble_whitespace ();
2906
2907 if (sym->attr.external || sym->attr.procedure
2908 || sym->attr.function || sym->attr.subroutine)
2909 flavor = FL_PROCEDURE;
2910
2911 /* If it is not a procedure, is not typed and is host associated,
2912 we cannot give it a flavor yet. */
2913 else if (sym->ns == gfc_current_ns->parent
2914 && sym->ts.type == BT_UNKNOWN)
2915 break;
2916
2917 /* These are definitive indicators that this is a variable. */
2918 else if (gfc_peek_ascii_char () != '(' || sym->ts.type != BT_UNKNOWN
2919 || sym->attr.pointer || sym->as != NULL)
2920 flavor = FL_VARIABLE;
2921
2922 if (flavor != FL_UNKNOWN
2923 && gfc_add_flavor (&sym->attr, flavor, sym->name, NULL) == FAILURE)
2924 return MATCH_ERROR;
2925 }
2926 break;
2927
2928 case FL_PARAMETER:
2929 if (equiv_flag)
2930 gfc_error ("Named constant at %C in an EQUIVALENCE");
2931 else
2932 gfc_error ("Cannot assign to a named constant at %C");
2933 return MATCH_ERROR;
2934 break;
2935
2936 case FL_PROCEDURE:
2937 /* Check for a nonrecursive function result variable. */
2938 if (sym->attr.function
2939 && !sym->attr.external
2940 && sym->result == sym
2941 && ((sym == gfc_current_ns->proc_name
2942 && sym == gfc_current_ns->proc_name->result)
2943 || (gfc_current_ns->parent
2944 && sym == gfc_current_ns->parent->proc_name->result)
2945 || (sym->attr.entry
2946 && sym->ns == gfc_current_ns)
2947 || (sym->attr.entry
2948 && sym->ns == gfc_current_ns->parent)))
2949 {
2950 /* If a function result is a derived type, then the derived
2951 type may still have to be resolved. */
2952
2953 if (sym->ts.type == BT_DERIVED
2954 && gfc_use_derived (sym->ts.derived) == NULL)
2955 return MATCH_ERROR;
2956 break;
2957 }
2958
2959 if (sym->attr.proc_pointer
2960 || replace_hidden_procptr_result (&sym, &st) == SUCCESS)
2961 break;
2962
2963 /* Fall through to error */
2964
2965 default:
2966 gfc_error ("'%s' at %C is not a variable", sym->name);
2967 return MATCH_ERROR;
2968 }
2969
2970 /* Special case for derived type variables that get their types
2971 via an IMPLICIT statement. This can't wait for the
2972 resolution phase. */
2973
2974 {
2975 gfc_namespace * implicit_ns;
2976
2977 if (gfc_current_ns->proc_name == sym)
2978 implicit_ns = gfc_current_ns;
2979 else
2980 implicit_ns = sym->ns;
2981
2982 if (gfc_peek_ascii_char () == '%'
2983 && sym->ts.type == BT_UNKNOWN
2984 && gfc_get_default_type (sym->name, implicit_ns)->type == BT_DERIVED)
2985 gfc_set_default_type (sym, 0, implicit_ns);
2986 }
2987
2988 expr = gfc_get_expr ();
2989
2990 expr->expr_type = EXPR_VARIABLE;
2991 expr->symtree = st;
2992 expr->ts = sym->ts;
2993 expr->where = where;
2994
2995 /* Now see if we have to do more. */
2996 m = gfc_match_varspec (expr, equiv_flag, false, false);
2997 if (m != MATCH_YES)
2998 {
2999 gfc_free_expr (expr);
3000 return m;
3001 }
3002
3003 *result = expr;
3004 return MATCH_YES;
3005 }
3006
3007
3008 match
3009 gfc_match_variable (gfc_expr **result, int equiv_flag)
3010 {
3011 return match_variable (result, equiv_flag, 1);
3012 }
3013
3014
3015 match
3016 gfc_match_equiv_variable (gfc_expr **result)
3017 {
3018 return match_variable (result, 1, 0);
3019 }
3020