Fix ifunc detection in target-supports.exp file.
[official-gcc.git] / gcc / fortran / trans-types.c
blob20de203e6074fbb8e1ef0d1944f1af47988400cd
1 /* Backend support for Fortran 95 basic types and derived types.
2 Copyright (C) 2002-2018 Free Software Foundation, Inc.
3 Contributed by Paul Brook <paul@nowt.org>
4 and Steven Bosscher <s.bosscher@student.tudelft.nl>
6 This file is part of GCC.
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.
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.
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/>. */
22 /* trans-types.c -- gfortran backend types */
24 #include "config.h"
25 #include "system.h"
26 #include "coretypes.h"
27 #include "target.h"
28 #include "tree.h"
29 #include "gfortran.h"
30 #include "trans.h"
31 #include "stringpool.h"
32 #include "fold-const.h"
33 #include "stor-layout.h"
34 #include "langhooks.h" /* For iso-c-bindings.def. */
35 #include "toplev.h" /* For rest_of_decl_compilation. */
36 #include "trans-types.h"
37 #include "trans-const.h"
38 #include "trans-array.h"
39 #include "dwarf2out.h" /* For struct array_descr_info. */
40 #include "attribs.h"
43 #if (GFC_MAX_DIMENSIONS < 10)
44 #define GFC_RANK_DIGITS 1
45 #define GFC_RANK_PRINTF_FORMAT "%01d"
46 #elif (GFC_MAX_DIMENSIONS < 100)
47 #define GFC_RANK_DIGITS 2
48 #define GFC_RANK_PRINTF_FORMAT "%02d"
49 #else
50 #error If you really need >99 dimensions, continue the sequence above...
51 #endif
53 /* array of structs so we don't have to worry about xmalloc or free */
54 CInteropKind_t c_interop_kinds_table[ISOCBINDING_NUMBER];
56 tree gfc_array_index_type;
57 tree gfc_array_range_type;
58 tree gfc_character1_type_node;
59 tree pvoid_type_node;
60 tree prvoid_type_node;
61 tree ppvoid_type_node;
62 tree pchar_type_node;
63 tree pfunc_type_node;
65 tree logical_type_node;
66 tree logical_true_node;
67 tree logical_false_node;
68 tree gfc_charlen_type_node;
70 tree gfc_float128_type_node = NULL_TREE;
71 tree gfc_complex_float128_type_node = NULL_TREE;
73 bool gfc_real16_is_float128 = false;
75 static GTY(()) tree gfc_desc_dim_type;
76 static GTY(()) tree gfc_max_array_element_size;
77 static GTY(()) tree gfc_array_descriptor_base[2 * (GFC_MAX_DIMENSIONS+1)];
78 static GTY(()) tree gfc_array_descriptor_base_caf[2 * (GFC_MAX_DIMENSIONS+1)];
80 /* Arrays for all integral and real kinds. We'll fill this in at runtime
81 after the target has a chance to process command-line options. */
83 #define MAX_INT_KINDS 5
84 gfc_integer_info gfc_integer_kinds[MAX_INT_KINDS + 1];
85 gfc_logical_info gfc_logical_kinds[MAX_INT_KINDS + 1];
86 static GTY(()) tree gfc_integer_types[MAX_INT_KINDS + 1];
87 static GTY(()) tree gfc_logical_types[MAX_INT_KINDS + 1];
89 #define MAX_REAL_KINDS 5
90 gfc_real_info gfc_real_kinds[MAX_REAL_KINDS + 1];
91 static GTY(()) tree gfc_real_types[MAX_REAL_KINDS + 1];
92 static GTY(()) tree gfc_complex_types[MAX_REAL_KINDS + 1];
94 #define MAX_CHARACTER_KINDS 2
95 gfc_character_info gfc_character_kinds[MAX_CHARACTER_KINDS + 1];
96 static GTY(()) tree gfc_character_types[MAX_CHARACTER_KINDS + 1];
97 static GTY(()) tree gfc_pcharacter_types[MAX_CHARACTER_KINDS + 1];
99 static tree gfc_add_field_to_struct_1 (tree, tree, tree, tree **);
101 /* The integer kind to use for array indices. This will be set to the
102 proper value based on target information from the backend. */
104 int gfc_index_integer_kind;
106 /* The default kinds of the various types. */
108 int gfc_default_integer_kind;
109 int gfc_max_integer_kind;
110 int gfc_default_real_kind;
111 int gfc_default_double_kind;
112 int gfc_default_character_kind;
113 int gfc_default_logical_kind;
114 int gfc_default_complex_kind;
115 int gfc_c_int_kind;
116 int gfc_atomic_int_kind;
117 int gfc_atomic_logical_kind;
119 /* The kind size used for record offsets. If the target system supports
120 kind=8, this will be set to 8, otherwise it is set to 4. */
121 int gfc_intio_kind;
123 /* The integer kind used to store character lengths. */
124 int gfc_charlen_int_kind;
126 /* Kind of internal integer for storing object sizes. */
127 int gfc_size_kind;
129 /* The size of the numeric storage unit and character storage unit. */
130 int gfc_numeric_storage_size;
131 int gfc_character_storage_size;
133 tree dtype_type_node = NULL_TREE;
136 /* Build the dtype_type_node if necessary. */
137 tree get_dtype_type_node (void)
139 tree field;
140 tree dtype_node;
141 tree *dtype_chain = NULL;
143 if (dtype_type_node == NULL_TREE)
145 dtype_node = make_node (RECORD_TYPE);
146 TYPE_NAME (dtype_node) = get_identifier ("dtype_type");
147 TYPE_NAMELESS (dtype_node) = 1;
148 field = gfc_add_field_to_struct_1 (dtype_node,
149 get_identifier ("elem_len"),
150 size_type_node, &dtype_chain);
151 TREE_NO_WARNING (field) = 1;
152 field = gfc_add_field_to_struct_1 (dtype_node,
153 get_identifier ("version"),
154 integer_type_node, &dtype_chain);
155 TREE_NO_WARNING (field) = 1;
156 field = gfc_add_field_to_struct_1 (dtype_node,
157 get_identifier ("rank"),
158 signed_char_type_node, &dtype_chain);
159 TREE_NO_WARNING (field) = 1;
160 field = gfc_add_field_to_struct_1 (dtype_node,
161 get_identifier ("type"),
162 signed_char_type_node, &dtype_chain);
163 TREE_NO_WARNING (field) = 1;
164 field = gfc_add_field_to_struct_1 (dtype_node,
165 get_identifier ("attribute"),
166 short_integer_type_node, &dtype_chain);
167 TREE_NO_WARNING (field) = 1;
168 gfc_finish_type (dtype_node);
169 TYPE_DECL_SUPPRESS_DEBUG (TYPE_STUB_DECL (dtype_node)) = 1;
170 dtype_type_node = dtype_node;
172 return dtype_type_node;
175 bool
176 gfc_check_any_c_kind (gfc_typespec *ts)
178 int i;
180 for (i = 0; i < ISOCBINDING_NUMBER; i++)
182 /* Check for any C interoperable kind for the given type/kind in ts.
183 This can be used after verify_c_interop to make sure that the
184 Fortran kind being used exists in at least some form for C. */
185 if (c_interop_kinds_table[i].f90_type == ts->type &&
186 c_interop_kinds_table[i].value == ts->kind)
187 return true;
190 return false;
194 static int
195 get_real_kind_from_node (tree type)
197 int i;
199 for (i = 0; gfc_real_kinds[i].kind != 0; i++)
200 if (gfc_real_kinds[i].mode_precision == TYPE_PRECISION (type))
201 return gfc_real_kinds[i].kind;
203 return -4;
206 static int
207 get_int_kind_from_node (tree type)
209 int i;
211 if (!type)
212 return -2;
214 for (i = 0; gfc_integer_kinds[i].kind != 0; i++)
215 if (gfc_integer_kinds[i].bit_size == TYPE_PRECISION (type))
216 return gfc_integer_kinds[i].kind;
218 return -1;
221 /* Return a typenode for the "standard" C type with a given name. */
222 static tree
223 get_typenode_from_name (const char *name)
225 if (name == NULL || *name == '\0')
226 return NULL_TREE;
228 if (strcmp (name, "char") == 0)
229 return char_type_node;
230 if (strcmp (name, "unsigned char") == 0)
231 return unsigned_char_type_node;
232 if (strcmp (name, "signed char") == 0)
233 return signed_char_type_node;
235 if (strcmp (name, "short int") == 0)
236 return short_integer_type_node;
237 if (strcmp (name, "short unsigned int") == 0)
238 return short_unsigned_type_node;
240 if (strcmp (name, "int") == 0)
241 return integer_type_node;
242 if (strcmp (name, "unsigned int") == 0)
243 return unsigned_type_node;
245 if (strcmp (name, "long int") == 0)
246 return long_integer_type_node;
247 if (strcmp (name, "long unsigned int") == 0)
248 return long_unsigned_type_node;
250 if (strcmp (name, "long long int") == 0)
251 return long_long_integer_type_node;
252 if (strcmp (name, "long long unsigned int") == 0)
253 return long_long_unsigned_type_node;
255 gcc_unreachable ();
258 static int
259 get_int_kind_from_name (const char *name)
261 return get_int_kind_from_node (get_typenode_from_name (name));
265 /* Get the kind number corresponding to an integer of given size,
266 following the required return values for ISO_FORTRAN_ENV INT* constants:
267 -2 is returned if we support a kind of larger size, -1 otherwise. */
269 gfc_get_int_kind_from_width_isofortranenv (int size)
271 int i;
273 /* Look for a kind with matching storage size. */
274 for (i = 0; gfc_integer_kinds[i].kind != 0; i++)
275 if (gfc_integer_kinds[i].bit_size == size)
276 return gfc_integer_kinds[i].kind;
278 /* Look for a kind with larger storage size. */
279 for (i = 0; gfc_integer_kinds[i].kind != 0; i++)
280 if (gfc_integer_kinds[i].bit_size > size)
281 return -2;
283 return -1;
287 /* Get the kind number corresponding to a real of a given storage size.
288 If two real's have the same storage size, then choose the real with
289 the largest precision. If a kind type is unavailable and a real
290 exists with wider storage, then return -2; otherwise, return -1. */
293 gfc_get_real_kind_from_width_isofortranenv (int size)
295 int digits, i, kind;
297 size /= 8;
299 kind = -1;
300 digits = 0;
302 /* Look for a kind with matching storage size. */
303 for (i = 0; gfc_real_kinds[i].kind != 0; i++)
304 if (int_size_in_bytes (gfc_get_real_type (gfc_real_kinds[i].kind)) == size)
306 if (gfc_real_kinds[i].digits > digits)
308 digits = gfc_real_kinds[i].digits;
309 kind = gfc_real_kinds[i].kind;
313 if (kind != -1)
314 return kind;
316 /* Look for a kind with larger storage size. */
317 for (i = 0; gfc_real_kinds[i].kind != 0; i++)
318 if (int_size_in_bytes (gfc_get_real_type (gfc_real_kinds[i].kind)) > size)
319 kind = -2;
321 return kind;
326 static int
327 get_int_kind_from_width (int size)
329 int i;
331 for (i = 0; gfc_integer_kinds[i].kind != 0; i++)
332 if (gfc_integer_kinds[i].bit_size == size)
333 return gfc_integer_kinds[i].kind;
335 return -2;
338 static int
339 get_int_kind_from_minimal_width (int size)
341 int i;
343 for (i = 0; gfc_integer_kinds[i].kind != 0; i++)
344 if (gfc_integer_kinds[i].bit_size >= size)
345 return gfc_integer_kinds[i].kind;
347 return -2;
351 /* Generate the CInteropKind_t objects for the C interoperable
352 kinds. */
354 void
355 gfc_init_c_interop_kinds (void)
357 int i;
359 /* init all pointers in the list to NULL */
360 for (i = 0; i < ISOCBINDING_NUMBER; i++)
362 /* Initialize the name and value fields. */
363 c_interop_kinds_table[i].name[0] = '\0';
364 c_interop_kinds_table[i].value = -100;
365 c_interop_kinds_table[i].f90_type = BT_UNKNOWN;
368 #define NAMED_INTCST(a,b,c,d) \
369 strncpy (c_interop_kinds_table[a].name, b, strlen(b) + 1); \
370 c_interop_kinds_table[a].f90_type = BT_INTEGER; \
371 c_interop_kinds_table[a].value = c;
372 #define NAMED_REALCST(a,b,c,d) \
373 strncpy (c_interop_kinds_table[a].name, b, strlen(b) + 1); \
374 c_interop_kinds_table[a].f90_type = BT_REAL; \
375 c_interop_kinds_table[a].value = c;
376 #define NAMED_CMPXCST(a,b,c,d) \
377 strncpy (c_interop_kinds_table[a].name, b, strlen(b) + 1); \
378 c_interop_kinds_table[a].f90_type = BT_COMPLEX; \
379 c_interop_kinds_table[a].value = c;
380 #define NAMED_LOGCST(a,b,c) \
381 strncpy (c_interop_kinds_table[a].name, b, strlen(b) + 1); \
382 c_interop_kinds_table[a].f90_type = BT_LOGICAL; \
383 c_interop_kinds_table[a].value = c;
384 #define NAMED_CHARKNDCST(a,b,c) \
385 strncpy (c_interop_kinds_table[a].name, b, strlen(b) + 1); \
386 c_interop_kinds_table[a].f90_type = BT_CHARACTER; \
387 c_interop_kinds_table[a].value = c;
388 #define NAMED_CHARCST(a,b,c) \
389 strncpy (c_interop_kinds_table[a].name, b, strlen(b) + 1); \
390 c_interop_kinds_table[a].f90_type = BT_CHARACTER; \
391 c_interop_kinds_table[a].value = c;
392 #define DERIVED_TYPE(a,b,c) \
393 strncpy (c_interop_kinds_table[a].name, b, strlen(b) + 1); \
394 c_interop_kinds_table[a].f90_type = BT_DERIVED; \
395 c_interop_kinds_table[a].value = c;
396 #define NAMED_FUNCTION(a,b,c,d) \
397 strncpy (c_interop_kinds_table[a].name, b, strlen(b) + 1); \
398 c_interop_kinds_table[a].f90_type = BT_PROCEDURE; \
399 c_interop_kinds_table[a].value = c;
400 #define NAMED_SUBROUTINE(a,b,c,d) \
401 strncpy (c_interop_kinds_table[a].name, b, strlen(b) + 1); \
402 c_interop_kinds_table[a].f90_type = BT_PROCEDURE; \
403 c_interop_kinds_table[a].value = c;
404 #include "iso-c-binding.def"
408 /* Query the target to determine which machine modes are available for
409 computation. Choose KIND numbers for them. */
411 void
412 gfc_init_kinds (void)
414 opt_scalar_int_mode int_mode_iter;
415 opt_scalar_float_mode float_mode_iter;
416 int i_index, r_index, kind;
417 bool saw_i4 = false, saw_i8 = false;
418 bool saw_r4 = false, saw_r8 = false, saw_r10 = false, saw_r16 = false;
420 i_index = 0;
421 FOR_EACH_MODE_IN_CLASS (int_mode_iter, MODE_INT)
423 scalar_int_mode mode = int_mode_iter.require ();
424 int kind, bitsize;
426 if (!targetm.scalar_mode_supported_p (mode))
427 continue;
429 /* The middle end doesn't support constants larger than 2*HWI.
430 Perhaps the target hook shouldn't have accepted these either,
431 but just to be safe... */
432 bitsize = GET_MODE_BITSIZE (mode);
433 if (bitsize > 2*HOST_BITS_PER_WIDE_INT)
434 continue;
436 gcc_assert (i_index != MAX_INT_KINDS);
438 /* Let the kind equal the bit size divided by 8. This insulates the
439 programmer from the underlying byte size. */
440 kind = bitsize / 8;
442 if (kind == 4)
443 saw_i4 = true;
444 if (kind == 8)
445 saw_i8 = true;
447 gfc_integer_kinds[i_index].kind = kind;
448 gfc_integer_kinds[i_index].radix = 2;
449 gfc_integer_kinds[i_index].digits = bitsize - 1;
450 gfc_integer_kinds[i_index].bit_size = bitsize;
452 gfc_logical_kinds[i_index].kind = kind;
453 gfc_logical_kinds[i_index].bit_size = bitsize;
455 i_index += 1;
458 /* Set the kind used to match GFC_INT_IO in libgfortran. This is
459 used for large file access. */
461 if (saw_i8)
462 gfc_intio_kind = 8;
463 else
464 gfc_intio_kind = 4;
466 /* If we do not at least have kind = 4, everything is pointless. */
467 gcc_assert(saw_i4);
469 /* Set the maximum integer kind. Used with at least BOZ constants. */
470 gfc_max_integer_kind = gfc_integer_kinds[i_index - 1].kind;
472 r_index = 0;
473 FOR_EACH_MODE_IN_CLASS (float_mode_iter, MODE_FLOAT)
475 scalar_float_mode mode = float_mode_iter.require ();
476 const struct real_format *fmt = REAL_MODE_FORMAT (mode);
477 int kind;
479 if (fmt == NULL)
480 continue;
481 if (!targetm.scalar_mode_supported_p (mode))
482 continue;
484 /* Only let float, double, long double and __float128 go through.
485 Runtime support for others is not provided, so they would be
486 useless. */
487 if (!targetm.libgcc_floating_mode_supported_p (mode))
488 continue;
489 if (mode != TYPE_MODE (float_type_node)
490 && (mode != TYPE_MODE (double_type_node))
491 && (mode != TYPE_MODE (long_double_type_node))
492 #if defined(HAVE_TFmode) && defined(ENABLE_LIBQUADMATH_SUPPORT)
493 && (mode != TFmode)
494 #endif
496 continue;
498 /* Let the kind equal the precision divided by 8, rounding up. Again,
499 this insulates the programmer from the underlying byte size.
501 Also, it effectively deals with IEEE extended formats. There, the
502 total size of the type may equal 16, but it's got 6 bytes of padding
503 and the increased size can get in the way of a real IEEE quad format
504 which may also be supported by the target.
506 We round up so as to handle IA-64 __floatreg (RFmode), which is an
507 82 bit type. Not to be confused with __float80 (XFmode), which is
508 an 80 bit type also supported by IA-64. So XFmode should come out
509 to be kind=10, and RFmode should come out to be kind=11. Egads. */
511 kind = (GET_MODE_PRECISION (mode) + 7) / 8;
513 if (kind == 4)
514 saw_r4 = true;
515 if (kind == 8)
516 saw_r8 = true;
517 if (kind == 10)
518 saw_r10 = true;
519 if (kind == 16)
520 saw_r16 = true;
522 /* Careful we don't stumble a weird internal mode. */
523 gcc_assert (r_index <= 0 || gfc_real_kinds[r_index-1].kind != kind);
524 /* Or have too many modes for the allocated space. */
525 gcc_assert (r_index != MAX_REAL_KINDS);
527 gfc_real_kinds[r_index].kind = kind;
528 gfc_real_kinds[r_index].radix = fmt->b;
529 gfc_real_kinds[r_index].digits = fmt->p;
530 gfc_real_kinds[r_index].min_exponent = fmt->emin;
531 gfc_real_kinds[r_index].max_exponent = fmt->emax;
532 if (fmt->pnan < fmt->p)
533 /* This is an IBM extended double format (or the MIPS variant)
534 made up of two IEEE doubles. The value of the long double is
535 the sum of the values of the two parts. The most significant
536 part is required to be the value of the long double rounded
537 to the nearest double. If we use emax of 1024 then we can't
538 represent huge(x) = (1 - b**(-p)) * b**(emax-1) * b, because
539 rounding will make the most significant part overflow. */
540 gfc_real_kinds[r_index].max_exponent = fmt->emax - 1;
541 gfc_real_kinds[r_index].mode_precision = GET_MODE_PRECISION (mode);
542 r_index += 1;
545 /* Choose the default integer kind. We choose 4 unless the user directs us
546 otherwise. Even if the user specified that the default integer kind is 8,
547 the numeric storage size is not 64 bits. In this case, a warning will be
548 issued when NUMERIC_STORAGE_SIZE is used. Set NUMERIC_STORAGE_SIZE to 32. */
550 gfc_numeric_storage_size = 4 * 8;
552 if (flag_default_integer)
554 if (!saw_i8)
555 gfc_fatal_error ("INTEGER(KIND=8) is not available for "
556 "%<-fdefault-integer-8%> option");
558 gfc_default_integer_kind = 8;
561 else if (flag_integer4_kind == 8)
563 if (!saw_i8)
564 gfc_fatal_error ("INTEGER(KIND=8) is not available for "
565 "%<-finteger-4-integer-8%> option");
567 gfc_default_integer_kind = 8;
569 else if (saw_i4)
571 gfc_default_integer_kind = 4;
573 else
575 gfc_default_integer_kind = gfc_integer_kinds[i_index - 1].kind;
576 gfc_numeric_storage_size = gfc_integer_kinds[i_index - 1].bit_size;
579 /* Choose the default real kind. Again, we choose 4 when possible. */
580 if (flag_default_real_8)
582 if (!saw_r8)
583 gfc_fatal_error ("REAL(KIND=8) is not available for "
584 "%<-fdefault-real-8%> option");
586 gfc_default_real_kind = 8;
588 else if (flag_default_real_10)
590 if (!saw_r10)
591 gfc_fatal_error ("REAL(KIND=10) is not available for "
592 "%<-fdefault-real-10%> option");
594 gfc_default_real_kind = 10;
596 else if (flag_default_real_16)
598 if (!saw_r16)
599 gfc_fatal_error ("REAL(KIND=16) is not available for "
600 "%<-fdefault-real-16%> option");
602 gfc_default_real_kind = 16;
604 else if (flag_real4_kind == 8)
606 if (!saw_r8)
607 gfc_fatal_error ("REAL(KIND=8) is not available for %<-freal-4-real-8%> "
608 "option");
610 gfc_default_real_kind = 8;
612 else if (flag_real4_kind == 10)
614 if (!saw_r10)
615 gfc_fatal_error ("REAL(KIND=10) is not available for "
616 "%<-freal-4-real-10%> option");
618 gfc_default_real_kind = 10;
620 else if (flag_real4_kind == 16)
622 if (!saw_r16)
623 gfc_fatal_error ("REAL(KIND=16) is not available for "
624 "%<-freal-4-real-16%> option");
626 gfc_default_real_kind = 16;
628 else if (saw_r4)
629 gfc_default_real_kind = 4;
630 else
631 gfc_default_real_kind = gfc_real_kinds[0].kind;
633 /* Choose the default double kind. If -fdefault-real and -fdefault-double
634 are specified, we use kind=8, if it's available. If -fdefault-real is
635 specified without -fdefault-double, we use kind=16, if it's available.
636 Otherwise we do not change anything. */
637 if (flag_default_double && saw_r8)
638 gfc_default_double_kind = 8;
639 else if (flag_default_real_8 || flag_default_real_10 || flag_default_real_16)
641 /* Use largest available kind. */
642 if (saw_r16)
643 gfc_default_double_kind = 16;
644 else if (saw_r10)
645 gfc_default_double_kind = 10;
646 else if (saw_r8)
647 gfc_default_double_kind = 8;
648 else
649 gfc_default_double_kind = gfc_default_real_kind;
651 else if (flag_real8_kind == 4)
653 if (!saw_r4)
654 gfc_fatal_error ("REAL(KIND=4) is not available for "
655 "%<-freal-8-real-4%> option");
657 gfc_default_double_kind = 4;
659 else if (flag_real8_kind == 10 )
661 if (!saw_r10)
662 gfc_fatal_error ("REAL(KIND=10) is not available for "
663 "%<-freal-8-real-10%> option");
665 gfc_default_double_kind = 10;
667 else if (flag_real8_kind == 16 )
669 if (!saw_r16)
670 gfc_fatal_error ("REAL(KIND=10) is not available for "
671 "%<-freal-8-real-16%> option");
673 gfc_default_double_kind = 16;
675 else if (saw_r4 && saw_r8)
676 gfc_default_double_kind = 8;
677 else
679 /* F95 14.6.3.1: A nonpointer scalar object of type double precision
680 real ... occupies two contiguous numeric storage units.
682 Therefore we must be supplied a kind twice as large as we chose
683 for single precision. There are loopholes, in that double
684 precision must *occupy* two storage units, though it doesn't have
685 to *use* two storage units. Which means that you can make this
686 kind artificially wide by padding it. But at present there are
687 no GCC targets for which a two-word type does not exist, so we
688 just let gfc_validate_kind abort and tell us if something breaks. */
690 gfc_default_double_kind
691 = gfc_validate_kind (BT_REAL, gfc_default_real_kind * 2, false);
694 /* The default logical kind is constrained to be the same as the
695 default integer kind. Similarly with complex and real. */
696 gfc_default_logical_kind = gfc_default_integer_kind;
697 gfc_default_complex_kind = gfc_default_real_kind;
699 /* We only have two character kinds: ASCII and UCS-4.
700 ASCII corresponds to a 8-bit integer type, if one is available.
701 UCS-4 corresponds to a 32-bit integer type, if one is available. */
702 i_index = 0;
703 if ((kind = get_int_kind_from_width (8)) > 0)
705 gfc_character_kinds[i_index].kind = kind;
706 gfc_character_kinds[i_index].bit_size = 8;
707 gfc_character_kinds[i_index].name = "ascii";
708 i_index++;
710 if ((kind = get_int_kind_from_width (32)) > 0)
712 gfc_character_kinds[i_index].kind = kind;
713 gfc_character_kinds[i_index].bit_size = 32;
714 gfc_character_kinds[i_index].name = "iso_10646";
715 i_index++;
718 /* Choose the smallest integer kind for our default character. */
719 gfc_default_character_kind = gfc_character_kinds[0].kind;
720 gfc_character_storage_size = gfc_default_character_kind * 8;
722 gfc_index_integer_kind = get_int_kind_from_name (PTRDIFF_TYPE);
724 /* Pick a kind the same size as the C "int" type. */
725 gfc_c_int_kind = INT_TYPE_SIZE / 8;
727 /* Choose atomic kinds to match C's int. */
728 gfc_atomic_int_kind = gfc_c_int_kind;
729 gfc_atomic_logical_kind = gfc_c_int_kind;
733 /* Make sure that a valid kind is present. Returns an index into the
734 associated kinds array, -1 if the kind is not present. */
736 static int
737 validate_integer (int kind)
739 int i;
741 for (i = 0; gfc_integer_kinds[i].kind != 0; i++)
742 if (gfc_integer_kinds[i].kind == kind)
743 return i;
745 return -1;
748 static int
749 validate_real (int kind)
751 int i;
753 for (i = 0; gfc_real_kinds[i].kind != 0; i++)
754 if (gfc_real_kinds[i].kind == kind)
755 return i;
757 return -1;
760 static int
761 validate_logical (int kind)
763 int i;
765 for (i = 0; gfc_logical_kinds[i].kind; i++)
766 if (gfc_logical_kinds[i].kind == kind)
767 return i;
769 return -1;
772 static int
773 validate_character (int kind)
775 int i;
777 for (i = 0; gfc_character_kinds[i].kind; i++)
778 if (gfc_character_kinds[i].kind == kind)
779 return i;
781 return -1;
784 /* Validate a kind given a basic type. The return value is the same
785 for the child functions, with -1 indicating nonexistence of the
786 type. If MAY_FAIL is false, then -1 is never returned, and we ICE. */
789 gfc_validate_kind (bt type, int kind, bool may_fail)
791 int rc;
793 switch (type)
795 case BT_REAL: /* Fall through */
796 case BT_COMPLEX:
797 rc = validate_real (kind);
798 break;
799 case BT_INTEGER:
800 rc = validate_integer (kind);
801 break;
802 case BT_LOGICAL:
803 rc = validate_logical (kind);
804 break;
805 case BT_CHARACTER:
806 rc = validate_character (kind);
807 break;
809 default:
810 gfc_internal_error ("gfc_validate_kind(): Got bad type");
813 if (rc < 0 && !may_fail)
814 gfc_internal_error ("gfc_validate_kind(): Got bad kind");
816 return rc;
820 /* Four subroutines of gfc_init_types. Create type nodes for the given kind.
821 Reuse common type nodes where possible. Recognize if the kind matches up
822 with a C type. This will be used later in determining which routines may
823 be scarfed from libm. */
825 static tree
826 gfc_build_int_type (gfc_integer_info *info)
828 int mode_precision = info->bit_size;
830 if (mode_precision == CHAR_TYPE_SIZE)
831 info->c_char = 1;
832 if (mode_precision == SHORT_TYPE_SIZE)
833 info->c_short = 1;
834 if (mode_precision == INT_TYPE_SIZE)
835 info->c_int = 1;
836 if (mode_precision == LONG_TYPE_SIZE)
837 info->c_long = 1;
838 if (mode_precision == LONG_LONG_TYPE_SIZE)
839 info->c_long_long = 1;
841 if (TYPE_PRECISION (intQI_type_node) == mode_precision)
842 return intQI_type_node;
843 if (TYPE_PRECISION (intHI_type_node) == mode_precision)
844 return intHI_type_node;
845 if (TYPE_PRECISION (intSI_type_node) == mode_precision)
846 return intSI_type_node;
847 if (TYPE_PRECISION (intDI_type_node) == mode_precision)
848 return intDI_type_node;
849 if (TYPE_PRECISION (intTI_type_node) == mode_precision)
850 return intTI_type_node;
852 return make_signed_type (mode_precision);
855 tree
856 gfc_build_uint_type (int size)
858 if (size == CHAR_TYPE_SIZE)
859 return unsigned_char_type_node;
860 if (size == SHORT_TYPE_SIZE)
861 return short_unsigned_type_node;
862 if (size == INT_TYPE_SIZE)
863 return unsigned_type_node;
864 if (size == LONG_TYPE_SIZE)
865 return long_unsigned_type_node;
866 if (size == LONG_LONG_TYPE_SIZE)
867 return long_long_unsigned_type_node;
869 return make_unsigned_type (size);
873 static tree
874 gfc_build_real_type (gfc_real_info *info)
876 int mode_precision = info->mode_precision;
877 tree new_type;
879 if (mode_precision == FLOAT_TYPE_SIZE)
880 info->c_float = 1;
881 if (mode_precision == DOUBLE_TYPE_SIZE)
882 info->c_double = 1;
883 if (mode_precision == LONG_DOUBLE_TYPE_SIZE)
884 info->c_long_double = 1;
885 if (mode_precision != LONG_DOUBLE_TYPE_SIZE && mode_precision == 128)
887 info->c_float128 = 1;
888 gfc_real16_is_float128 = true;
891 if (TYPE_PRECISION (float_type_node) == mode_precision)
892 return float_type_node;
893 if (TYPE_PRECISION (double_type_node) == mode_precision)
894 return double_type_node;
895 if (TYPE_PRECISION (long_double_type_node) == mode_precision)
896 return long_double_type_node;
898 new_type = make_node (REAL_TYPE);
899 TYPE_PRECISION (new_type) = mode_precision;
900 layout_type (new_type);
901 return new_type;
904 static tree
905 gfc_build_complex_type (tree scalar_type)
907 tree new_type;
909 if (scalar_type == NULL)
910 return NULL;
911 if (scalar_type == float_type_node)
912 return complex_float_type_node;
913 if (scalar_type == double_type_node)
914 return complex_double_type_node;
915 if (scalar_type == long_double_type_node)
916 return complex_long_double_type_node;
918 new_type = make_node (COMPLEX_TYPE);
919 TREE_TYPE (new_type) = scalar_type;
920 layout_type (new_type);
921 return new_type;
924 static tree
925 gfc_build_logical_type (gfc_logical_info *info)
927 int bit_size = info->bit_size;
928 tree new_type;
930 if (bit_size == BOOL_TYPE_SIZE)
932 info->c_bool = 1;
933 return boolean_type_node;
936 new_type = make_unsigned_type (bit_size);
937 TREE_SET_CODE (new_type, BOOLEAN_TYPE);
938 TYPE_MAX_VALUE (new_type) = build_int_cst (new_type, 1);
939 TYPE_PRECISION (new_type) = 1;
941 return new_type;
945 /* Create the backend type nodes. We map them to their
946 equivalent C type, at least for now. We also give
947 names to the types here, and we push them in the
948 global binding level context.*/
950 void
951 gfc_init_types (void)
953 char name_buf[26];
954 int index;
955 tree type;
956 unsigned n;
958 /* Create and name the types. */
959 #define PUSH_TYPE(name, node) \
960 pushdecl (build_decl (input_location, \
961 TYPE_DECL, get_identifier (name), node))
963 for (index = 0; gfc_integer_kinds[index].kind != 0; ++index)
965 type = gfc_build_int_type (&gfc_integer_kinds[index]);
966 /* Ensure integer(kind=1) doesn't have TYPE_STRING_FLAG set. */
967 if (TYPE_STRING_FLAG (type))
968 type = make_signed_type (gfc_integer_kinds[index].bit_size);
969 gfc_integer_types[index] = type;
970 snprintf (name_buf, sizeof(name_buf), "integer(kind=%d)",
971 gfc_integer_kinds[index].kind);
972 PUSH_TYPE (name_buf, type);
975 for (index = 0; gfc_logical_kinds[index].kind != 0; ++index)
977 type = gfc_build_logical_type (&gfc_logical_kinds[index]);
978 gfc_logical_types[index] = type;
979 snprintf (name_buf, sizeof(name_buf), "logical(kind=%d)",
980 gfc_logical_kinds[index].kind);
981 PUSH_TYPE (name_buf, type);
984 for (index = 0; gfc_real_kinds[index].kind != 0; index++)
986 type = gfc_build_real_type (&gfc_real_kinds[index]);
987 gfc_real_types[index] = type;
988 snprintf (name_buf, sizeof(name_buf), "real(kind=%d)",
989 gfc_real_kinds[index].kind);
990 PUSH_TYPE (name_buf, type);
992 if (gfc_real_kinds[index].c_float128)
993 gfc_float128_type_node = type;
995 type = gfc_build_complex_type (type);
996 gfc_complex_types[index] = type;
997 snprintf (name_buf, sizeof(name_buf), "complex(kind=%d)",
998 gfc_real_kinds[index].kind);
999 PUSH_TYPE (name_buf, type);
1001 if (gfc_real_kinds[index].c_float128)
1002 gfc_complex_float128_type_node = type;
1005 for (index = 0; gfc_character_kinds[index].kind != 0; ++index)
1007 type = gfc_build_uint_type (gfc_character_kinds[index].bit_size);
1008 type = build_qualified_type (type, TYPE_UNQUALIFIED);
1009 snprintf (name_buf, sizeof(name_buf), "character(kind=%d)",
1010 gfc_character_kinds[index].kind);
1011 PUSH_TYPE (name_buf, type);
1012 gfc_character_types[index] = type;
1013 gfc_pcharacter_types[index] = build_pointer_type (type);
1015 gfc_character1_type_node = gfc_character_types[0];
1017 PUSH_TYPE ("byte", unsigned_char_type_node);
1018 PUSH_TYPE ("void", void_type_node);
1020 /* DBX debugging output gets upset if these aren't set. */
1021 if (!TYPE_NAME (integer_type_node))
1022 PUSH_TYPE ("c_integer", integer_type_node);
1023 if (!TYPE_NAME (char_type_node))
1024 PUSH_TYPE ("c_char", char_type_node);
1026 #undef PUSH_TYPE
1028 pvoid_type_node = build_pointer_type (void_type_node);
1029 prvoid_type_node = build_qualified_type (pvoid_type_node, TYPE_QUAL_RESTRICT);
1030 ppvoid_type_node = build_pointer_type (pvoid_type_node);
1031 pchar_type_node = build_pointer_type (gfc_character1_type_node);
1032 pfunc_type_node
1033 = build_pointer_type (build_function_type_list (void_type_node, NULL_TREE));
1035 gfc_array_index_type = gfc_get_int_type (gfc_index_integer_kind);
1036 /* We cannot use gfc_index_zero_node in definition of gfc_array_range_type,
1037 since this function is called before gfc_init_constants. */
1038 gfc_array_range_type
1039 = build_range_type (gfc_array_index_type,
1040 build_int_cst (gfc_array_index_type, 0),
1041 NULL_TREE);
1043 /* The maximum array element size that can be handled is determined
1044 by the number of bits available to store this field in the array
1045 descriptor. */
1047 n = TYPE_PRECISION (size_type_node);
1048 gfc_max_array_element_size
1049 = wide_int_to_tree (size_type_node,
1050 wi::mask (n, UNSIGNED,
1051 TYPE_PRECISION (size_type_node)));
1053 logical_type_node = gfc_get_logical_type (gfc_default_logical_kind);
1054 logical_true_node = build_int_cst (logical_type_node, 1);
1055 logical_false_node = build_int_cst (logical_type_node, 0);
1057 /* Character lengths are of type size_t, except signed. */
1058 gfc_charlen_int_kind = get_int_kind_from_node (size_type_node);
1059 gfc_charlen_type_node = gfc_get_int_type (gfc_charlen_int_kind);
1061 /* Fortran kind number of size_type_node (size_t). This is used for
1062 the _size member in vtables. */
1063 gfc_size_kind = get_int_kind_from_node (size_type_node);
1066 /* Get the type node for the given type and kind. */
1068 tree
1069 gfc_get_int_type (int kind)
1071 int index = gfc_validate_kind (BT_INTEGER, kind, true);
1072 return index < 0 ? 0 : gfc_integer_types[index];
1075 tree
1076 gfc_get_real_type (int kind)
1078 int index = gfc_validate_kind (BT_REAL, kind, true);
1079 return index < 0 ? 0 : gfc_real_types[index];
1082 tree
1083 gfc_get_complex_type (int kind)
1085 int index = gfc_validate_kind (BT_COMPLEX, kind, true);
1086 return index < 0 ? 0 : gfc_complex_types[index];
1089 tree
1090 gfc_get_logical_type (int kind)
1092 int index = gfc_validate_kind (BT_LOGICAL, kind, true);
1093 return index < 0 ? 0 : gfc_logical_types[index];
1096 tree
1097 gfc_get_char_type (int kind)
1099 int index = gfc_validate_kind (BT_CHARACTER, kind, true);
1100 return index < 0 ? 0 : gfc_character_types[index];
1103 tree
1104 gfc_get_pchar_type (int kind)
1106 int index = gfc_validate_kind (BT_CHARACTER, kind, true);
1107 return index < 0 ? 0 : gfc_pcharacter_types[index];
1111 /* Create a character type with the given kind and length. */
1113 tree
1114 gfc_get_character_type_len_for_eltype (tree eltype, tree len)
1116 tree bounds, type;
1118 bounds = build_range_type (gfc_charlen_type_node, gfc_index_one_node, len);
1119 type = build_array_type (eltype, bounds);
1120 TYPE_STRING_FLAG (type) = 1;
1122 return type;
1125 tree
1126 gfc_get_character_type_len (int kind, tree len)
1128 gfc_validate_kind (BT_CHARACTER, kind, false);
1129 return gfc_get_character_type_len_for_eltype (gfc_get_char_type (kind), len);
1133 /* Get a type node for a character kind. */
1135 tree
1136 gfc_get_character_type (int kind, gfc_charlen * cl)
1138 tree len;
1140 len = (cl == NULL) ? NULL_TREE : cl->backend_decl;
1141 if (len && POINTER_TYPE_P (TREE_TYPE (len)))
1142 len = build_fold_indirect_ref (len);
1144 return gfc_get_character_type_len (kind, len);
1147 /* Convert a basic type. This will be an array for character types. */
1149 tree
1150 gfc_typenode_for_spec (gfc_typespec * spec, int codim)
1152 tree basetype;
1154 switch (spec->type)
1156 case BT_UNKNOWN:
1157 gcc_unreachable ();
1159 case BT_INTEGER:
1160 /* We use INTEGER(c_intptr_t) for C_PTR and C_FUNPTR once the symbol
1161 has been resolved. This is done so we can convert C_PTR and
1162 C_FUNPTR to simple variables that get translated to (void *). */
1163 if (spec->f90_type == BT_VOID)
1165 if (spec->u.derived
1166 && spec->u.derived->intmod_sym_id == ISOCBINDING_PTR)
1167 basetype = ptr_type_node;
1168 else
1169 basetype = pfunc_type_node;
1171 else
1172 basetype = gfc_get_int_type (spec->kind);
1173 break;
1175 case BT_REAL:
1176 basetype = gfc_get_real_type (spec->kind);
1177 break;
1179 case BT_COMPLEX:
1180 basetype = gfc_get_complex_type (spec->kind);
1181 break;
1183 case BT_LOGICAL:
1184 basetype = gfc_get_logical_type (spec->kind);
1185 break;
1187 case BT_CHARACTER:
1188 basetype = gfc_get_character_type (spec->kind, spec->u.cl);
1189 break;
1191 case BT_HOLLERITH:
1192 /* Since this cannot be used, return a length one character. */
1193 basetype = gfc_get_character_type_len (gfc_default_character_kind,
1194 gfc_index_one_node);
1195 break;
1197 case BT_UNION:
1198 basetype = gfc_get_union_type (spec->u.derived);
1199 break;
1201 case BT_DERIVED:
1202 case BT_CLASS:
1203 basetype = gfc_get_derived_type (spec->u.derived, codim);
1205 if (spec->type == BT_CLASS)
1206 GFC_CLASS_TYPE_P (basetype) = 1;
1208 /* If we're dealing with either C_PTR or C_FUNPTR, we modified the
1209 type and kind to fit a (void *) and the basetype returned was a
1210 ptr_type_node. We need to pass up this new information to the
1211 symbol that was declared of type C_PTR or C_FUNPTR. */
1212 if (spec->u.derived->ts.f90_type == BT_VOID)
1214 spec->type = BT_INTEGER;
1215 spec->kind = gfc_index_integer_kind;
1216 spec->f90_type = BT_VOID;
1218 break;
1219 case BT_VOID:
1220 case BT_ASSUMED:
1221 /* This is for the second arg to c_f_pointer and c_f_procpointer
1222 of the iso_c_binding module, to accept any ptr type. */
1223 basetype = ptr_type_node;
1224 if (spec->f90_type == BT_VOID)
1226 if (spec->u.derived
1227 && spec->u.derived->intmod_sym_id == ISOCBINDING_PTR)
1228 basetype = ptr_type_node;
1229 else
1230 basetype = pfunc_type_node;
1232 break;
1233 default:
1234 gcc_unreachable ();
1236 return basetype;
1239 /* Build an INT_CST for constant expressions, otherwise return NULL_TREE. */
1241 static tree
1242 gfc_conv_array_bound (gfc_expr * expr)
1244 /* If expr is an integer constant, return that. */
1245 if (expr != NULL && expr->expr_type == EXPR_CONSTANT)
1246 return gfc_conv_mpz_to_tree (expr->value.integer, gfc_index_integer_kind);
1248 /* Otherwise return NULL. */
1249 return NULL_TREE;
1252 /* Return the type of an element of the array. Note that scalar coarrays
1253 are special. In particular, for GFC_ARRAY_TYPE_P, the original argument
1254 (with POINTER_TYPE stripped) is returned. */
1256 tree
1257 gfc_get_element_type (tree type)
1259 tree element;
1261 if (GFC_ARRAY_TYPE_P (type))
1263 if (TREE_CODE (type) == POINTER_TYPE)
1264 type = TREE_TYPE (type);
1265 if (GFC_TYPE_ARRAY_RANK (type) == 0)
1267 gcc_assert (GFC_TYPE_ARRAY_CORANK (type) > 0);
1268 element = type;
1270 else
1272 gcc_assert (TREE_CODE (type) == ARRAY_TYPE);
1273 element = TREE_TYPE (type);
1276 else
1278 gcc_assert (GFC_DESCRIPTOR_TYPE_P (type));
1279 element = GFC_TYPE_ARRAY_DATAPTR_TYPE (type);
1281 gcc_assert (TREE_CODE (element) == POINTER_TYPE);
1282 element = TREE_TYPE (element);
1284 /* For arrays, which are not scalar coarrays. */
1285 if (TREE_CODE (element) == ARRAY_TYPE && !TYPE_STRING_FLAG (element))
1286 element = TREE_TYPE (element);
1289 return element;
1292 /* Build an array. This function is called from gfc_sym_type().
1293 Actually returns array descriptor type.
1295 Format of array descriptors is as follows:
1297 struct gfc_array_descriptor
1299 array *data;
1300 index offset;
1301 struct dtype_type dtype;
1302 struct descriptor_dimension dimension[N_DIM];
1305 struct dtype_type
1307 size_t elem_len;
1308 int version;
1309 signed char rank;
1310 signed char type;
1311 signed short attribute;
1314 struct descriptor_dimension
1316 index stride;
1317 index lbound;
1318 index ubound;
1321 Translation code should use gfc_conv_descriptor_* rather than
1322 accessing the descriptor directly. Any changes to the array
1323 descriptor type will require changes in gfc_conv_descriptor_* and
1324 gfc_build_array_initializer.
1326 This is represented internally as a RECORD_TYPE. The index nodes
1327 are gfc_array_index_type and the data node is a pointer to the
1328 data. See below for the handling of character types.
1330 I originally used nested ARRAY_TYPE nodes to represent arrays, but
1331 this generated poor code for assumed/deferred size arrays. These
1332 require use of PLACEHOLDER_EXPR/WITH_RECORD_EXPR, which isn't part
1333 of the GENERIC grammar. Also, there is no way to explicitly set
1334 the array stride, so all data must be packed(1). I've tried to
1335 mark all the functions which would require modification with a GCC
1336 ARRAYS comment.
1338 The data component points to the first element in the array. The
1339 offset field is the position of the origin of the array (i.e. element
1340 (0, 0 ...)). This may be outside the bounds of the array.
1342 An element is accessed by
1343 data[offset + index0*stride0 + index1*stride1 + index2*stride2]
1344 This gives good performance as the computation does not involve the
1345 bounds of the array. For packed arrays, this is optimized further
1346 by substituting the known strides.
1348 This system has one problem: all array bounds must be within 2^31
1349 elements of the origin (2^63 on 64-bit machines). For example
1350 integer, dimension (80000:90000, 80000:90000, 2) :: array
1351 may not work properly on 32-bit machines because 80000*80000 >
1352 2^31, so the calculation for stride2 would overflow. This may
1353 still work, but I haven't checked, and it relies on the overflow
1354 doing the right thing.
1356 The way to fix this problem is to access elements as follows:
1357 data[(index0-lbound0)*stride0 + (index1-lbound1)*stride1]
1358 Obviously this is much slower. I will make this a compile time
1359 option, something like -fsmall-array-offsets. Mixing code compiled
1360 with and without this switch will work.
1362 (1) This can be worked around by modifying the upper bound of the
1363 previous dimension. This requires extra fields in the descriptor
1364 (both real_ubound and fake_ubound). */
1367 /* Returns true if the array sym does not require a descriptor. */
1370 gfc_is_nodesc_array (gfc_symbol * sym)
1372 symbol_attribute *array_attr;
1373 gfc_array_spec *as;
1374 bool is_classarray = IS_CLASS_ARRAY (sym);
1376 array_attr = is_classarray ? &CLASS_DATA (sym)->attr : &sym->attr;
1377 as = is_classarray ? CLASS_DATA (sym)->as : sym->as;
1379 gcc_assert (array_attr->dimension || array_attr->codimension);
1381 /* We only want local arrays. */
1382 if ((sym->ts.type != BT_CLASS && sym->attr.pointer)
1383 || (sym->ts.type == BT_CLASS && CLASS_DATA (sym)->attr.class_pointer)
1384 || array_attr->allocatable)
1385 return 0;
1387 /* We want a descriptor for associate-name arrays that do not have an
1388 explicitly known shape already. */
1389 if (sym->assoc && as->type != AS_EXPLICIT)
1390 return 0;
1392 /* The dummy is stored in sym and not in the component. */
1393 if (sym->attr.dummy)
1394 return as->type != AS_ASSUMED_SHAPE
1395 && as->type != AS_ASSUMED_RANK;
1397 if (sym->attr.result || sym->attr.function)
1398 return 0;
1400 gcc_assert (as->type == AS_EXPLICIT || as->cp_was_assumed);
1402 return 1;
1406 /* Create an array descriptor type. */
1408 static tree
1409 gfc_build_array_type (tree type, gfc_array_spec * as,
1410 enum gfc_array_kind akind, bool restricted,
1411 bool contiguous, int codim)
1413 tree lbound[GFC_MAX_DIMENSIONS];
1414 tree ubound[GFC_MAX_DIMENSIONS];
1415 int n, corank;
1417 /* Assumed-shape arrays do not have codimension information stored in the
1418 descriptor. */
1419 corank = MAX (as->corank, codim);
1420 if (as->type == AS_ASSUMED_SHAPE ||
1421 (as->type == AS_ASSUMED_RANK && akind == GFC_ARRAY_ALLOCATABLE))
1422 corank = codim;
1424 if (as->type == AS_ASSUMED_RANK)
1425 for (n = 0; n < GFC_MAX_DIMENSIONS; n++)
1427 lbound[n] = NULL_TREE;
1428 ubound[n] = NULL_TREE;
1431 for (n = 0; n < as->rank; n++)
1433 /* Create expressions for the known bounds of the array. */
1434 if (as->type == AS_ASSUMED_SHAPE && as->lower[n] == NULL)
1435 lbound[n] = gfc_index_one_node;
1436 else
1437 lbound[n] = gfc_conv_array_bound (as->lower[n]);
1438 ubound[n] = gfc_conv_array_bound (as->upper[n]);
1441 for (n = as->rank; n < as->rank + corank; n++)
1443 if (as->type != AS_DEFERRED && as->lower[n] == NULL)
1444 lbound[n] = gfc_index_one_node;
1445 else
1446 lbound[n] = gfc_conv_array_bound (as->lower[n]);
1448 if (n < as->rank + corank - 1)
1449 ubound[n] = gfc_conv_array_bound (as->upper[n]);
1452 if (as->type == AS_ASSUMED_SHAPE)
1453 akind = contiguous ? GFC_ARRAY_ASSUMED_SHAPE_CONT
1454 : GFC_ARRAY_ASSUMED_SHAPE;
1455 else if (as->type == AS_ASSUMED_RANK)
1456 akind = contiguous ? GFC_ARRAY_ASSUMED_RANK_CONT
1457 : GFC_ARRAY_ASSUMED_RANK;
1458 return gfc_get_array_type_bounds (type, as->rank == -1
1459 ? GFC_MAX_DIMENSIONS : as->rank,
1460 corank, lbound, ubound, 0, akind,
1461 restricted);
1464 /* Returns the struct descriptor_dimension type. */
1466 static tree
1467 gfc_get_desc_dim_type (void)
1469 tree type;
1470 tree decl, *chain = NULL;
1472 if (gfc_desc_dim_type)
1473 return gfc_desc_dim_type;
1475 /* Build the type node. */
1476 type = make_node (RECORD_TYPE);
1478 TYPE_NAME (type) = get_identifier ("descriptor_dimension");
1479 TYPE_PACKED (type) = 1;
1481 /* Consists of the stride, lbound and ubound members. */
1482 decl = gfc_add_field_to_struct_1 (type,
1483 get_identifier ("stride"),
1484 gfc_array_index_type, &chain);
1485 TREE_NO_WARNING (decl) = 1;
1487 decl = gfc_add_field_to_struct_1 (type,
1488 get_identifier ("lbound"),
1489 gfc_array_index_type, &chain);
1490 TREE_NO_WARNING (decl) = 1;
1492 decl = gfc_add_field_to_struct_1 (type,
1493 get_identifier ("ubound"),
1494 gfc_array_index_type, &chain);
1495 TREE_NO_WARNING (decl) = 1;
1497 /* Finish off the type. */
1498 gfc_finish_type (type);
1499 TYPE_DECL_SUPPRESS_DEBUG (TYPE_STUB_DECL (type)) = 1;
1501 gfc_desc_dim_type = type;
1502 return type;
1506 /* Return the DTYPE for an array. This describes the type and type parameters
1507 of the array. */
1508 /* TODO: Only call this when the value is actually used, and make all the
1509 unknown cases abort. */
1511 tree
1512 gfc_get_dtype_rank_type (int rank, tree etype)
1514 tree size;
1515 int n;
1516 tree tmp;
1517 tree dtype;
1518 tree field;
1519 vec<constructor_elt, va_gc> *v = NULL;
1521 switch (TREE_CODE (etype))
1523 case INTEGER_TYPE:
1524 n = BT_INTEGER;
1525 break;
1527 case BOOLEAN_TYPE:
1528 n = BT_LOGICAL;
1529 break;
1531 case REAL_TYPE:
1532 n = BT_REAL;
1533 break;
1535 case COMPLEX_TYPE:
1536 n = BT_COMPLEX;
1537 break;
1539 case RECORD_TYPE:
1540 if (GFC_CLASS_TYPE_P (etype))
1541 n = BT_CLASS;
1542 else
1543 n = BT_DERIVED;
1544 break;
1546 /* We will never have arrays of arrays. */
1547 case ARRAY_TYPE:
1548 n = BT_CHARACTER;
1549 break;
1551 case POINTER_TYPE:
1552 n = BT_ASSUMED;
1553 break;
1555 default:
1556 /* TODO: Don't do dtype for temporary descriptorless arrays. */
1557 /* We can strange array types for temporary arrays. */
1558 return gfc_index_zero_node;
1561 size = TYPE_SIZE_UNIT (etype);
1562 if (n == BT_CHARACTER && size == NULL_TREE)
1563 size = TYPE_SIZE_UNIT (TREE_TYPE (etype));
1565 tmp = get_dtype_type_node ();
1566 field = gfc_advance_chain (TYPE_FIELDS (tmp),
1567 GFC_DTYPE_ELEM_LEN);
1568 CONSTRUCTOR_APPEND_ELT (v, field,
1569 fold_convert (TREE_TYPE (field), size));
1571 field = gfc_advance_chain (TYPE_FIELDS (dtype_type_node),
1572 GFC_DTYPE_RANK);
1573 CONSTRUCTOR_APPEND_ELT (v, field,
1574 build_int_cst (TREE_TYPE (field), rank));
1576 field = gfc_advance_chain (TYPE_FIELDS (dtype_type_node),
1577 GFC_DTYPE_TYPE);
1578 CONSTRUCTOR_APPEND_ELT (v, field,
1579 build_int_cst (TREE_TYPE (field), n));
1581 dtype = build_constructor (tmp, v);
1583 return dtype;
1587 tree
1588 gfc_get_dtype (tree type)
1590 tree dtype;
1591 tree etype;
1592 int rank;
1594 gcc_assert (GFC_DESCRIPTOR_TYPE_P (type) || GFC_ARRAY_TYPE_P (type));
1596 rank = GFC_TYPE_ARRAY_RANK (type);
1597 etype = gfc_get_element_type (type);
1598 dtype = gfc_get_dtype_rank_type (rank, etype);
1600 GFC_TYPE_ARRAY_DTYPE (type) = dtype;
1601 return dtype;
1605 /* Build an array type for use without a descriptor, packed according
1606 to the value of PACKED. */
1608 tree
1609 gfc_get_nodesc_array_type (tree etype, gfc_array_spec * as, gfc_packed packed,
1610 bool restricted)
1612 tree range;
1613 tree type;
1614 tree tmp;
1615 int n;
1616 int known_stride;
1617 int known_offset;
1618 mpz_t offset;
1619 mpz_t stride;
1620 mpz_t delta;
1621 gfc_expr *expr;
1623 mpz_init_set_ui (offset, 0);
1624 mpz_init_set_ui (stride, 1);
1625 mpz_init (delta);
1627 /* We don't use build_array_type because this does not include include
1628 lang-specific information (i.e. the bounds of the array) when checking
1629 for duplicates. */
1630 if (as->rank)
1631 type = make_node (ARRAY_TYPE);
1632 else
1633 type = build_variant_type_copy (etype);
1635 GFC_ARRAY_TYPE_P (type) = 1;
1636 TYPE_LANG_SPECIFIC (type) = ggc_cleared_alloc<struct lang_type> ();
1638 known_stride = (packed != PACKED_NO);
1639 known_offset = 1;
1640 for (n = 0; n < as->rank; n++)
1642 /* Fill in the stride and bound components of the type. */
1643 if (known_stride)
1644 tmp = gfc_conv_mpz_to_tree (stride, gfc_index_integer_kind);
1645 else
1646 tmp = NULL_TREE;
1647 GFC_TYPE_ARRAY_STRIDE (type, n) = tmp;
1649 expr = as->lower[n];
1650 if (expr->expr_type == EXPR_CONSTANT)
1652 tmp = gfc_conv_mpz_to_tree (expr->value.integer,
1653 gfc_index_integer_kind);
1655 else
1657 known_stride = 0;
1658 tmp = NULL_TREE;
1660 GFC_TYPE_ARRAY_LBOUND (type, n) = tmp;
1662 if (known_stride)
1664 /* Calculate the offset. */
1665 mpz_mul (delta, stride, as->lower[n]->value.integer);
1666 mpz_sub (offset, offset, delta);
1668 else
1669 known_offset = 0;
1671 expr = as->upper[n];
1672 if (expr && expr->expr_type == EXPR_CONSTANT)
1674 tmp = gfc_conv_mpz_to_tree (expr->value.integer,
1675 gfc_index_integer_kind);
1677 else
1679 tmp = NULL_TREE;
1680 known_stride = 0;
1682 GFC_TYPE_ARRAY_UBOUND (type, n) = tmp;
1684 if (known_stride)
1686 /* Calculate the stride. */
1687 mpz_sub (delta, as->upper[n]->value.integer,
1688 as->lower[n]->value.integer);
1689 mpz_add_ui (delta, delta, 1);
1690 mpz_mul (stride, stride, delta);
1693 /* Only the first stride is known for partial packed arrays. */
1694 if (packed == PACKED_NO || packed == PACKED_PARTIAL)
1695 known_stride = 0;
1697 for (n = as->rank; n < as->rank + as->corank; n++)
1699 expr = as->lower[n];
1700 if (expr->expr_type == EXPR_CONSTANT)
1701 tmp = gfc_conv_mpz_to_tree (expr->value.integer,
1702 gfc_index_integer_kind);
1703 else
1704 tmp = NULL_TREE;
1705 GFC_TYPE_ARRAY_LBOUND (type, n) = tmp;
1707 expr = as->upper[n];
1708 if (expr && expr->expr_type == EXPR_CONSTANT)
1709 tmp = gfc_conv_mpz_to_tree (expr->value.integer,
1710 gfc_index_integer_kind);
1711 else
1712 tmp = NULL_TREE;
1713 if (n < as->rank + as->corank - 1)
1714 GFC_TYPE_ARRAY_UBOUND (type, n) = tmp;
1717 if (known_offset)
1719 GFC_TYPE_ARRAY_OFFSET (type) =
1720 gfc_conv_mpz_to_tree (offset, gfc_index_integer_kind);
1722 else
1723 GFC_TYPE_ARRAY_OFFSET (type) = NULL_TREE;
1725 if (known_stride)
1727 GFC_TYPE_ARRAY_SIZE (type) =
1728 gfc_conv_mpz_to_tree (stride, gfc_index_integer_kind);
1730 else
1731 GFC_TYPE_ARRAY_SIZE (type) = NULL_TREE;
1733 GFC_TYPE_ARRAY_RANK (type) = as->rank;
1734 GFC_TYPE_ARRAY_CORANK (type) = as->corank;
1735 GFC_TYPE_ARRAY_DTYPE (type) = NULL_TREE;
1736 range = build_range_type (gfc_array_index_type, gfc_index_zero_node,
1737 NULL_TREE);
1738 /* TODO: use main type if it is unbounded. */
1739 GFC_TYPE_ARRAY_DATAPTR_TYPE (type) =
1740 build_pointer_type (build_array_type (etype, range));
1741 if (restricted)
1742 GFC_TYPE_ARRAY_DATAPTR_TYPE (type) =
1743 build_qualified_type (GFC_TYPE_ARRAY_DATAPTR_TYPE (type),
1744 TYPE_QUAL_RESTRICT);
1746 if (as->rank == 0)
1748 if (packed != PACKED_STATIC || flag_coarray == GFC_FCOARRAY_LIB)
1750 type = build_pointer_type (type);
1752 if (restricted)
1753 type = build_qualified_type (type, TYPE_QUAL_RESTRICT);
1755 GFC_ARRAY_TYPE_P (type) = 1;
1756 TYPE_LANG_SPECIFIC (type) = TYPE_LANG_SPECIFIC (TREE_TYPE (type));
1759 return type;
1762 if (known_stride)
1764 mpz_sub_ui (stride, stride, 1);
1765 range = gfc_conv_mpz_to_tree (stride, gfc_index_integer_kind);
1767 else
1768 range = NULL_TREE;
1770 range = build_range_type (gfc_array_index_type, gfc_index_zero_node, range);
1771 TYPE_DOMAIN (type) = range;
1773 build_pointer_type (etype);
1774 TREE_TYPE (type) = etype;
1776 layout_type (type);
1778 mpz_clear (offset);
1779 mpz_clear (stride);
1780 mpz_clear (delta);
1782 /* Represent packed arrays as multi-dimensional if they have rank >
1783 1 and with proper bounds, instead of flat arrays. This makes for
1784 better debug info. */
1785 if (known_offset)
1787 tree gtype = etype, rtype, type_decl;
1789 for (n = as->rank - 1; n >= 0; n--)
1791 rtype = build_range_type (gfc_array_index_type,
1792 GFC_TYPE_ARRAY_LBOUND (type, n),
1793 GFC_TYPE_ARRAY_UBOUND (type, n));
1794 gtype = build_array_type (gtype, rtype);
1796 TYPE_NAME (type) = type_decl = build_decl (input_location,
1797 TYPE_DECL, NULL, gtype);
1798 DECL_ORIGINAL_TYPE (type_decl) = gtype;
1801 if (packed != PACKED_STATIC || !known_stride
1802 || (as->corank && flag_coarray == GFC_FCOARRAY_LIB))
1804 /* For dummy arrays and automatic (heap allocated) arrays we
1805 want a pointer to the array. */
1806 type = build_pointer_type (type);
1807 if (restricted)
1808 type = build_qualified_type (type, TYPE_QUAL_RESTRICT);
1809 GFC_ARRAY_TYPE_P (type) = 1;
1810 TYPE_LANG_SPECIFIC (type) = TYPE_LANG_SPECIFIC (TREE_TYPE (type));
1812 return type;
1816 /* Return or create the base type for an array descriptor. */
1818 static tree
1819 gfc_get_array_descriptor_base (int dimen, int codimen, bool restricted)
1821 tree fat_type, decl, arraytype, *chain = NULL;
1822 char name[16 + 2*GFC_RANK_DIGITS + 1 + 1];
1823 int idx;
1825 /* Assumed-rank array. */
1826 if (dimen == -1)
1827 dimen = GFC_MAX_DIMENSIONS;
1829 idx = 2 * (codimen + dimen) + restricted;
1831 gcc_assert (codimen + dimen >= 0 && codimen + dimen <= GFC_MAX_DIMENSIONS);
1833 if (flag_coarray == GFC_FCOARRAY_LIB && codimen)
1835 if (gfc_array_descriptor_base_caf[idx])
1836 return gfc_array_descriptor_base_caf[idx];
1838 else if (gfc_array_descriptor_base[idx])
1839 return gfc_array_descriptor_base[idx];
1841 /* Build the type node. */
1842 fat_type = make_node (RECORD_TYPE);
1844 sprintf (name, "array_descriptor" GFC_RANK_PRINTF_FORMAT, dimen + codimen);
1845 TYPE_NAME (fat_type) = get_identifier (name);
1846 TYPE_NAMELESS (fat_type) = 1;
1848 /* Add the data member as the first element of the descriptor. */
1849 decl = gfc_add_field_to_struct_1 (fat_type,
1850 get_identifier ("data"),
1851 (restricted
1852 ? prvoid_type_node
1853 : ptr_type_node), &chain);
1855 /* Add the base component. */
1856 decl = gfc_add_field_to_struct_1 (fat_type,
1857 get_identifier ("offset"),
1858 gfc_array_index_type, &chain);
1859 TREE_NO_WARNING (decl) = 1;
1861 /* Add the dtype component. */
1862 decl = gfc_add_field_to_struct_1 (fat_type,
1863 get_identifier ("dtype"),
1864 get_dtype_type_node (), &chain);
1865 TREE_NO_WARNING (decl) = 1;
1867 /* Add the span component. */
1868 decl = gfc_add_field_to_struct_1 (fat_type,
1869 get_identifier ("span"),
1870 gfc_array_index_type, &chain);
1871 TREE_NO_WARNING (decl) = 1;
1873 /* Build the array type for the stride and bound components. */
1874 if (dimen + codimen > 0)
1876 arraytype =
1877 build_array_type (gfc_get_desc_dim_type (),
1878 build_range_type (gfc_array_index_type,
1879 gfc_index_zero_node,
1880 gfc_rank_cst[codimen + dimen - 1]));
1882 decl = gfc_add_field_to_struct_1 (fat_type, get_identifier ("dim"),
1883 arraytype, &chain);
1884 TREE_NO_WARNING (decl) = 1;
1887 if (flag_coarray == GFC_FCOARRAY_LIB)
1889 decl = gfc_add_field_to_struct_1 (fat_type,
1890 get_identifier ("token"),
1891 prvoid_type_node, &chain);
1892 TREE_NO_WARNING (decl) = 1;
1895 /* Finish off the type. */
1896 gfc_finish_type (fat_type);
1897 TYPE_DECL_SUPPRESS_DEBUG (TYPE_STUB_DECL (fat_type)) = 1;
1899 if (flag_coarray == GFC_FCOARRAY_LIB && codimen)
1900 gfc_array_descriptor_base_caf[idx] = fat_type;
1901 else
1902 gfc_array_descriptor_base[idx] = fat_type;
1904 return fat_type;
1908 /* Build an array (descriptor) type with given bounds. */
1910 tree
1911 gfc_get_array_type_bounds (tree etype, int dimen, int codimen, tree * lbound,
1912 tree * ubound, int packed,
1913 enum gfc_array_kind akind, bool restricted)
1915 char name[8 + 2*GFC_RANK_DIGITS + 1 + GFC_MAX_SYMBOL_LEN];
1916 tree fat_type, base_type, arraytype, lower, upper, stride, tmp, rtype;
1917 const char *type_name;
1918 int n;
1920 base_type = gfc_get_array_descriptor_base (dimen, codimen, restricted);
1921 fat_type = build_distinct_type_copy (base_type);
1922 /* Make sure that nontarget and target array type have the same canonical
1923 type (and same stub decl for debug info). */
1924 base_type = gfc_get_array_descriptor_base (dimen, codimen, false);
1925 TYPE_CANONICAL (fat_type) = base_type;
1926 TYPE_STUB_DECL (fat_type) = TYPE_STUB_DECL (base_type);
1928 tmp = TYPE_NAME (etype);
1929 if (tmp && TREE_CODE (tmp) == TYPE_DECL)
1930 tmp = DECL_NAME (tmp);
1931 if (tmp)
1932 type_name = IDENTIFIER_POINTER (tmp);
1933 else
1934 type_name = "unknown";
1935 sprintf (name, "array" GFC_RANK_PRINTF_FORMAT "_%.*s", dimen + codimen,
1936 GFC_MAX_SYMBOL_LEN, type_name);
1937 TYPE_NAME (fat_type) = get_identifier (name);
1938 TYPE_NAMELESS (fat_type) = 1;
1940 GFC_DESCRIPTOR_TYPE_P (fat_type) = 1;
1941 TYPE_LANG_SPECIFIC (fat_type) = ggc_cleared_alloc<struct lang_type> ();
1943 GFC_TYPE_ARRAY_RANK (fat_type) = dimen;
1944 GFC_TYPE_ARRAY_CORANK (fat_type) = codimen;
1945 GFC_TYPE_ARRAY_DTYPE (fat_type) = NULL_TREE;
1946 GFC_TYPE_ARRAY_AKIND (fat_type) = akind;
1948 /* Build an array descriptor record type. */
1949 if (packed != 0)
1950 stride = gfc_index_one_node;
1951 else
1952 stride = NULL_TREE;
1953 for (n = 0; n < dimen + codimen; n++)
1955 if (n < dimen)
1956 GFC_TYPE_ARRAY_STRIDE (fat_type, n) = stride;
1958 if (lbound)
1959 lower = lbound[n];
1960 else
1961 lower = NULL_TREE;
1963 if (lower != NULL_TREE)
1965 if (INTEGER_CST_P (lower))
1966 GFC_TYPE_ARRAY_LBOUND (fat_type, n) = lower;
1967 else
1968 lower = NULL_TREE;
1971 if (codimen && n == dimen + codimen - 1)
1972 break;
1974 upper = ubound[n];
1975 if (upper != NULL_TREE)
1977 if (INTEGER_CST_P (upper))
1978 GFC_TYPE_ARRAY_UBOUND (fat_type, n) = upper;
1979 else
1980 upper = NULL_TREE;
1983 if (n >= dimen)
1984 continue;
1986 if (upper != NULL_TREE && lower != NULL_TREE && stride != NULL_TREE)
1988 tmp = fold_build2_loc (input_location, MINUS_EXPR,
1989 gfc_array_index_type, upper, lower);
1990 tmp = fold_build2_loc (input_location, PLUS_EXPR,
1991 gfc_array_index_type, tmp,
1992 gfc_index_one_node);
1993 stride = fold_build2_loc (input_location, MULT_EXPR,
1994 gfc_array_index_type, tmp, stride);
1995 /* Check the folding worked. */
1996 gcc_assert (INTEGER_CST_P (stride));
1998 else
1999 stride = NULL_TREE;
2001 GFC_TYPE_ARRAY_SIZE (fat_type) = stride;
2003 /* TODO: known offsets for descriptors. */
2004 GFC_TYPE_ARRAY_OFFSET (fat_type) = NULL_TREE;
2006 if (dimen == 0)
2008 arraytype = build_pointer_type (etype);
2009 if (restricted)
2010 arraytype = build_qualified_type (arraytype, TYPE_QUAL_RESTRICT);
2012 GFC_TYPE_ARRAY_DATAPTR_TYPE (fat_type) = arraytype;
2013 return fat_type;
2016 /* We define data as an array with the correct size if possible.
2017 Much better than doing pointer arithmetic. */
2018 if (stride)
2019 rtype = build_range_type (gfc_array_index_type, gfc_index_zero_node,
2020 int_const_binop (MINUS_EXPR, stride,
2021 build_int_cst (TREE_TYPE (stride), 1)));
2022 else
2023 rtype = gfc_array_range_type;
2024 arraytype = build_array_type (etype, rtype);
2025 arraytype = build_pointer_type (arraytype);
2026 if (restricted)
2027 arraytype = build_qualified_type (arraytype, TYPE_QUAL_RESTRICT);
2028 GFC_TYPE_ARRAY_DATAPTR_TYPE (fat_type) = arraytype;
2030 /* This will generate the base declarations we need to emit debug
2031 information for this type. FIXME: there must be a better way to
2032 avoid divergence between compilations with and without debug
2033 information. */
2035 struct array_descr_info info;
2036 gfc_get_array_descr_info (fat_type, &info);
2037 gfc_get_array_descr_info (build_pointer_type (fat_type), &info);
2040 return fat_type;
2043 /* Build a pointer type. This function is called from gfc_sym_type(). */
2045 static tree
2046 gfc_build_pointer_type (gfc_symbol * sym, tree type)
2048 /* Array pointer types aren't actually pointers. */
2049 if (sym->attr.dimension)
2050 return type;
2051 else
2052 return build_pointer_type (type);
2055 static tree gfc_nonrestricted_type (tree t);
2056 /* Given two record or union type nodes TO and FROM, ensure
2057 that all fields in FROM have a corresponding field in TO,
2058 their type being nonrestrict variants. This accepts a TO
2059 node that already has a prefix of the fields in FROM. */
2060 static void
2061 mirror_fields (tree to, tree from)
2063 tree fto, ffrom;
2064 tree *chain;
2066 /* Forward to the end of TOs fields. */
2067 fto = TYPE_FIELDS (to);
2068 ffrom = TYPE_FIELDS (from);
2069 chain = &TYPE_FIELDS (to);
2070 while (fto)
2072 gcc_assert (ffrom && DECL_NAME (fto) == DECL_NAME (ffrom));
2073 chain = &DECL_CHAIN (fto);
2074 fto = DECL_CHAIN (fto);
2075 ffrom = DECL_CHAIN (ffrom);
2078 /* Now add all fields remaining in FROM (starting with ffrom). */
2079 for (; ffrom; ffrom = DECL_CHAIN (ffrom))
2081 tree newfield = copy_node (ffrom);
2082 DECL_CONTEXT (newfield) = to;
2083 /* The store to DECL_CHAIN might seem redundant with the
2084 stores to *chain, but not clearing it here would mean
2085 leaving a chain into the old fields. If ever
2086 our called functions would look at them confusion
2087 will arise. */
2088 DECL_CHAIN (newfield) = NULL_TREE;
2089 *chain = newfield;
2090 chain = &DECL_CHAIN (newfield);
2092 if (TREE_CODE (ffrom) == FIELD_DECL)
2094 tree elemtype = gfc_nonrestricted_type (TREE_TYPE (ffrom));
2095 TREE_TYPE (newfield) = elemtype;
2098 *chain = NULL_TREE;
2101 /* Given a type T, returns a different type of the same structure,
2102 except that all types it refers to (recursively) are always
2103 non-restrict qualified types. */
2104 static tree
2105 gfc_nonrestricted_type (tree t)
2107 tree ret = t;
2109 /* If the type isn't laid out yet, don't copy it. If something
2110 needs it for real it should wait until the type got finished. */
2111 if (!TYPE_SIZE (t))
2112 return t;
2114 if (!TYPE_LANG_SPECIFIC (t))
2115 TYPE_LANG_SPECIFIC (t) = ggc_cleared_alloc<struct lang_type> ();
2116 /* If we're dealing with this very node already further up
2117 the call chain (recursion via pointers and struct members)
2118 we haven't yet determined if we really need a new type node.
2119 Assume we don't, return T itself. */
2120 if (TYPE_LANG_SPECIFIC (t)->nonrestricted_type == error_mark_node)
2121 return t;
2123 /* If we have calculated this all already, just return it. */
2124 if (TYPE_LANG_SPECIFIC (t)->nonrestricted_type)
2125 return TYPE_LANG_SPECIFIC (t)->nonrestricted_type;
2127 /* Mark this type. */
2128 TYPE_LANG_SPECIFIC (t)->nonrestricted_type = error_mark_node;
2130 switch (TREE_CODE (t))
2132 default:
2133 break;
2135 case POINTER_TYPE:
2136 case REFERENCE_TYPE:
2138 tree totype = gfc_nonrestricted_type (TREE_TYPE (t));
2139 if (totype == TREE_TYPE (t))
2140 ret = t;
2141 else if (TREE_CODE (t) == POINTER_TYPE)
2142 ret = build_pointer_type (totype);
2143 else
2144 ret = build_reference_type (totype);
2145 ret = build_qualified_type (ret,
2146 TYPE_QUALS (t) & ~TYPE_QUAL_RESTRICT);
2148 break;
2150 case ARRAY_TYPE:
2152 tree elemtype = gfc_nonrestricted_type (TREE_TYPE (t));
2153 if (elemtype == TREE_TYPE (t))
2154 ret = t;
2155 else
2157 ret = build_variant_type_copy (t);
2158 TREE_TYPE (ret) = elemtype;
2159 if (TYPE_LANG_SPECIFIC (t)
2160 && GFC_TYPE_ARRAY_DATAPTR_TYPE (t))
2162 tree dataptr_type = GFC_TYPE_ARRAY_DATAPTR_TYPE (t);
2163 dataptr_type = gfc_nonrestricted_type (dataptr_type);
2164 if (dataptr_type != GFC_TYPE_ARRAY_DATAPTR_TYPE (t))
2166 TYPE_LANG_SPECIFIC (ret)
2167 = ggc_cleared_alloc<struct lang_type> ();
2168 *TYPE_LANG_SPECIFIC (ret) = *TYPE_LANG_SPECIFIC (t);
2169 GFC_TYPE_ARRAY_DATAPTR_TYPE (ret) = dataptr_type;
2174 break;
2176 case RECORD_TYPE:
2177 case UNION_TYPE:
2178 case QUAL_UNION_TYPE:
2180 tree field;
2181 /* First determine if we need a new type at all.
2182 Careful, the two calls to gfc_nonrestricted_type per field
2183 might return different values. That happens exactly when
2184 one of the fields reaches back to this very record type
2185 (via pointers). The first calls will assume that we don't
2186 need to copy T (see the error_mark_node marking). If there
2187 are any reasons for copying T apart from having to copy T,
2188 we'll indeed copy it, and the second calls to
2189 gfc_nonrestricted_type will use that new node if they
2190 reach back to T. */
2191 for (field = TYPE_FIELDS (t); field; field = DECL_CHAIN (field))
2192 if (TREE_CODE (field) == FIELD_DECL)
2194 tree elemtype = gfc_nonrestricted_type (TREE_TYPE (field));
2195 if (elemtype != TREE_TYPE (field))
2196 break;
2198 if (!field)
2199 break;
2200 ret = build_variant_type_copy (t);
2201 TYPE_FIELDS (ret) = NULL_TREE;
2203 /* Here we make sure that as soon as we know we have to copy
2204 T, that also fields reaching back to us will use the new
2205 copy. It's okay if that copy still contains the old fields,
2206 we won't look at them. */
2207 TYPE_LANG_SPECIFIC (t)->nonrestricted_type = ret;
2208 mirror_fields (ret, t);
2210 break;
2213 TYPE_LANG_SPECIFIC (t)->nonrestricted_type = ret;
2214 return ret;
2218 /* Return the type for a symbol. Special handling is required for character
2219 types to get the correct level of indirection.
2220 For functions return the return type.
2221 For subroutines return void_type_node.
2222 Calling this multiple times for the same symbol should be avoided,
2223 especially for character and array types. */
2225 tree
2226 gfc_sym_type (gfc_symbol * sym)
2228 tree type;
2229 int byref;
2230 bool restricted;
2232 /* Procedure Pointers inside COMMON blocks. */
2233 if (sym->attr.proc_pointer && sym->attr.in_common)
2235 /* Unset proc_pointer as gfc_get_function_type calls gfc_sym_type. */
2236 sym->attr.proc_pointer = 0;
2237 type = build_pointer_type (gfc_get_function_type (sym));
2238 sym->attr.proc_pointer = 1;
2239 return type;
2242 if (sym->attr.flavor == FL_PROCEDURE && !sym->attr.function)
2243 return void_type_node;
2245 /* In the case of a function the fake result variable may have a
2246 type different from the function type, so don't return early in
2247 that case. */
2248 if (sym->backend_decl && !sym->attr.function)
2249 return TREE_TYPE (sym->backend_decl);
2251 if (sym->attr.result
2252 && sym->ts.type == BT_CHARACTER
2253 && sym->ts.u.cl->backend_decl == NULL_TREE
2254 && sym->ns->proc_name
2255 && sym->ns->proc_name->ts.u.cl->backend_decl != NULL_TREE)
2256 sym->ts.u.cl->backend_decl = sym->ns->proc_name->ts.u.cl->backend_decl;
2258 if (sym->ts.type == BT_CHARACTER
2259 && ((sym->attr.function && sym->attr.is_bind_c)
2260 || (sym->attr.result
2261 && sym->ns->proc_name
2262 && sym->ns->proc_name->attr.is_bind_c)
2263 || (sym->ts.deferred && (!sym->ts.u.cl
2264 || !sym->ts.u.cl->backend_decl))))
2265 type = gfc_character1_type_node;
2266 else
2267 type = gfc_typenode_for_spec (&sym->ts, sym->attr.codimension);
2269 if (sym->attr.dummy && !sym->attr.function && !sym->attr.value)
2270 byref = 1;
2271 else
2272 byref = 0;
2274 restricted = !sym->attr.target && !sym->attr.pointer
2275 && !sym->attr.proc_pointer && !sym->attr.cray_pointee;
2276 if (!restricted)
2277 type = gfc_nonrestricted_type (type);
2279 if (sym->attr.dimension || sym->attr.codimension)
2281 if (gfc_is_nodesc_array (sym))
2283 /* If this is a character argument of unknown length, just use the
2284 base type. */
2285 if (sym->ts.type != BT_CHARACTER
2286 || !(sym->attr.dummy || sym->attr.function)
2287 || sym->ts.u.cl->backend_decl)
2289 type = gfc_get_nodesc_array_type (type, sym->as,
2290 byref ? PACKED_FULL
2291 : PACKED_STATIC,
2292 restricted);
2293 byref = 0;
2296 else
2298 enum gfc_array_kind akind = GFC_ARRAY_UNKNOWN;
2299 if (sym->attr.pointer)
2300 akind = sym->attr.contiguous ? GFC_ARRAY_POINTER_CONT
2301 : GFC_ARRAY_POINTER;
2302 else if (sym->attr.allocatable)
2303 akind = GFC_ARRAY_ALLOCATABLE;
2304 type = gfc_build_array_type (type, sym->as, akind, restricted,
2305 sym->attr.contiguous, false);
2308 else
2310 if (sym->attr.allocatable || sym->attr.pointer
2311 || gfc_is_associate_pointer (sym))
2312 type = gfc_build_pointer_type (sym, type);
2315 /* We currently pass all parameters by reference.
2316 See f95_get_function_decl. For dummy function parameters return the
2317 function type. */
2318 if (byref)
2320 /* We must use pointer types for potentially absent variables. The
2321 optimizers assume a reference type argument is never NULL. */
2322 if (sym->attr.optional
2323 || (sym->ns->proc_name && sym->ns->proc_name->attr.entry_master))
2324 type = build_pointer_type (type);
2325 else
2327 type = build_reference_type (type);
2328 if (restricted)
2329 type = build_qualified_type (type, TYPE_QUAL_RESTRICT);
2333 return (type);
2336 /* Layout and output debug info for a record type. */
2338 void
2339 gfc_finish_type (tree type)
2341 tree decl;
2343 decl = build_decl (input_location,
2344 TYPE_DECL, NULL_TREE, type);
2345 TYPE_STUB_DECL (type) = decl;
2346 layout_type (type);
2347 rest_of_type_compilation (type, 1);
2348 rest_of_decl_compilation (decl, 1, 0);
2351 /* Add a field of given NAME and TYPE to the context of a UNION_TYPE
2352 or RECORD_TYPE pointed to by CONTEXT. The new field is chained
2353 to the end of the field list pointed to by *CHAIN.
2355 Returns a pointer to the new field. */
2357 static tree
2358 gfc_add_field_to_struct_1 (tree context, tree name, tree type, tree **chain)
2360 tree decl = build_decl (input_location, FIELD_DECL, name, type);
2362 DECL_CONTEXT (decl) = context;
2363 DECL_CHAIN (decl) = NULL_TREE;
2364 if (TYPE_FIELDS (context) == NULL_TREE)
2365 TYPE_FIELDS (context) = decl;
2366 if (chain != NULL)
2368 if (*chain != NULL)
2369 **chain = decl;
2370 *chain = &DECL_CHAIN (decl);
2373 return decl;
2376 /* Like `gfc_add_field_to_struct_1', but adds alignment
2377 information. */
2379 tree
2380 gfc_add_field_to_struct (tree context, tree name, tree type, tree **chain)
2382 tree decl = gfc_add_field_to_struct_1 (context, name, type, chain);
2384 DECL_INITIAL (decl) = 0;
2385 SET_DECL_ALIGN (decl, 0);
2386 DECL_USER_ALIGN (decl) = 0;
2388 return decl;
2392 /* Copy the backend_decl and component backend_decls if
2393 the two derived type symbols are "equal", as described
2394 in 4.4.2 and resolved by gfc_compare_derived_types. */
2397 gfc_copy_dt_decls_ifequal (gfc_symbol *from, gfc_symbol *to,
2398 bool from_gsym)
2400 gfc_component *to_cm;
2401 gfc_component *from_cm;
2403 if (from == to)
2404 return 1;
2406 if (from->backend_decl == NULL
2407 || !gfc_compare_derived_types (from, to))
2408 return 0;
2410 to->backend_decl = from->backend_decl;
2412 to_cm = to->components;
2413 from_cm = from->components;
2415 /* Copy the component declarations. If a component is itself
2416 a derived type, we need a copy of its component declarations.
2417 This is done by recursing into gfc_get_derived_type and
2418 ensures that the component's component declarations have
2419 been built. If it is a character, we need the character
2420 length, as well. */
2421 for (; to_cm; to_cm = to_cm->next, from_cm = from_cm->next)
2423 to_cm->backend_decl = from_cm->backend_decl;
2424 to_cm->caf_token = from_cm->caf_token;
2425 if (from_cm->ts.type == BT_UNION)
2426 gfc_get_union_type (to_cm->ts.u.derived);
2427 else if (from_cm->ts.type == BT_DERIVED
2428 && (!from_cm->attr.pointer || from_gsym))
2429 gfc_get_derived_type (to_cm->ts.u.derived);
2430 else if (from_cm->ts.type == BT_CLASS
2431 && (!CLASS_DATA (from_cm)->attr.class_pointer || from_gsym))
2432 gfc_get_derived_type (to_cm->ts.u.derived);
2433 else if (from_cm->ts.type == BT_CHARACTER)
2434 to_cm->ts.u.cl->backend_decl = from_cm->ts.u.cl->backend_decl;
2437 return 1;
2441 /* Build a tree node for a procedure pointer component. */
2443 tree
2444 gfc_get_ppc_type (gfc_component* c)
2446 tree t;
2448 /* Explicit interface. */
2449 if (c->attr.if_source != IFSRC_UNKNOWN && c->ts.interface)
2450 return build_pointer_type (gfc_get_function_type (c->ts.interface));
2452 /* Implicit interface (only return value may be known). */
2453 if (c->attr.function && !c->attr.dimension && c->ts.type != BT_CHARACTER)
2454 t = gfc_typenode_for_spec (&c->ts);
2455 else
2456 t = void_type_node;
2458 return build_pointer_type (build_function_type_list (t, NULL_TREE));
2462 /* Build a tree node for a union type. Requires building each map
2463 structure which is an element of the union. */
2465 tree
2466 gfc_get_union_type (gfc_symbol *un)
2468 gfc_component *map = NULL;
2469 tree typenode = NULL, map_type = NULL, map_field = NULL;
2470 tree *chain = NULL;
2472 if (un->backend_decl)
2474 if (TYPE_FIELDS (un->backend_decl) || un->attr.proc_pointer_comp)
2475 return un->backend_decl;
2476 else
2477 typenode = un->backend_decl;
2479 else
2481 typenode = make_node (UNION_TYPE);
2482 TYPE_NAME (typenode) = get_identifier (un->name);
2485 /* Add each contained MAP as a field. */
2486 for (map = un->components; map; map = map->next)
2488 gcc_assert (map->ts.type == BT_DERIVED);
2490 /* The map's type node, which is defined within this union's context. */
2491 map_type = gfc_get_derived_type (map->ts.u.derived);
2492 TYPE_CONTEXT (map_type) = typenode;
2494 /* The map field's declaration. */
2495 map_field = gfc_add_field_to_struct(typenode, get_identifier(map->name),
2496 map_type, &chain);
2497 if (map->loc.lb)
2498 gfc_set_decl_location (map_field, &map->loc);
2499 else if (un->declared_at.lb)
2500 gfc_set_decl_location (map_field, &un->declared_at);
2502 DECL_PACKED (map_field) |= TYPE_PACKED (typenode);
2503 DECL_NAMELESS(map_field) = true;
2505 /* We should never clobber another backend declaration for this map,
2506 because each map component is unique. */
2507 if (!map->backend_decl)
2508 map->backend_decl = map_field;
2511 un->backend_decl = typenode;
2512 gfc_finish_type (typenode);
2514 return typenode;
2518 /* Build a tree node for a derived type. If there are equal
2519 derived types, with different local names, these are built
2520 at the same time. If an equal derived type has been built
2521 in a parent namespace, this is used. */
2523 tree
2524 gfc_get_derived_type (gfc_symbol * derived, int codimen)
2526 tree typenode = NULL, field = NULL, field_type = NULL;
2527 tree canonical = NULL_TREE;
2528 tree *chain = NULL;
2529 bool got_canonical = false;
2530 bool unlimited_entity = false;
2531 gfc_component *c;
2532 gfc_dt_list *dt;
2533 gfc_namespace *ns;
2534 tree tmp;
2535 bool coarray_flag;
2537 coarray_flag = flag_coarray == GFC_FCOARRAY_LIB
2538 && derived->module && !derived->attr.vtype;
2540 gcc_assert (!derived->attr.pdt_template);
2542 if (derived->attr.unlimited_polymorphic
2543 || (flag_coarray == GFC_FCOARRAY_LIB
2544 && derived->from_intmod == INTMOD_ISO_FORTRAN_ENV
2545 && (derived->intmod_sym_id == ISOFORTRAN_LOCK_TYPE
2546 || derived->intmod_sym_id == ISOFORTRAN_EVENT_TYPE
2547 || derived->intmod_sym_id == ISOFORTRAN_TEAM_TYPE)))
2548 return ptr_type_node;
2550 if (flag_coarray != GFC_FCOARRAY_LIB
2551 && derived->from_intmod == INTMOD_ISO_FORTRAN_ENV
2552 && (derived->intmod_sym_id == ISOFORTRAN_EVENT_TYPE
2553 || derived->intmod_sym_id == ISOFORTRAN_TEAM_TYPE))
2554 return gfc_get_int_type (gfc_default_integer_kind);
2556 if (derived && derived->attr.flavor == FL_PROCEDURE
2557 && derived->attr.generic)
2558 derived = gfc_find_dt_in_generic (derived);
2560 /* See if it's one of the iso_c_binding derived types. */
2561 if (derived->attr.is_iso_c == 1 || derived->ts.f90_type == BT_VOID)
2563 if (derived->backend_decl)
2564 return derived->backend_decl;
2566 if (derived->intmod_sym_id == ISOCBINDING_PTR)
2567 derived->backend_decl = ptr_type_node;
2568 else
2569 derived->backend_decl = pfunc_type_node;
2571 derived->ts.kind = gfc_index_integer_kind;
2572 derived->ts.type = BT_INTEGER;
2573 /* Set the f90_type to BT_VOID as a way to recognize something of type
2574 BT_INTEGER that needs to fit a void * for the purpose of the
2575 iso_c_binding derived types. */
2576 derived->ts.f90_type = BT_VOID;
2578 return derived->backend_decl;
2581 /* If use associated, use the module type for this one. */
2582 if (derived->backend_decl == NULL
2583 && derived->attr.use_assoc
2584 && derived->module
2585 && gfc_get_module_backend_decl (derived))
2586 goto copy_derived_types;
2588 /* The derived types from an earlier namespace can be used as the
2589 canonical type. */
2590 if (derived->backend_decl == NULL && !derived->attr.use_assoc
2591 && gfc_global_ns_list)
2593 for (ns = gfc_global_ns_list;
2594 ns->translated && !got_canonical;
2595 ns = ns->sibling)
2597 dt = ns->derived_types;
2598 for (; dt && !canonical; dt = dt->next)
2600 gfc_copy_dt_decls_ifequal (dt->derived, derived, true);
2601 if (derived->backend_decl)
2602 got_canonical = true;
2607 /* Store up the canonical type to be added to this one. */
2608 if (got_canonical)
2610 if (TYPE_CANONICAL (derived->backend_decl))
2611 canonical = TYPE_CANONICAL (derived->backend_decl);
2612 else
2613 canonical = derived->backend_decl;
2615 derived->backend_decl = NULL_TREE;
2618 /* derived->backend_decl != 0 means we saw it before, but its
2619 components' backend_decl may have not been built. */
2620 if (derived->backend_decl)
2622 /* Its components' backend_decl have been built or we are
2623 seeing recursion through the formal arglist of a procedure
2624 pointer component. */
2625 if (TYPE_FIELDS (derived->backend_decl))
2626 return derived->backend_decl;
2627 else if (derived->attr.abstract
2628 && derived->attr.proc_pointer_comp)
2630 /* If an abstract derived type with procedure pointer
2631 components has no other type of component, return the
2632 backend_decl. Otherwise build the components if any of the
2633 non-procedure pointer components have no backend_decl. */
2634 for (c = derived->components; c; c = c->next)
2636 bool same_alloc_type = c->attr.allocatable
2637 && derived == c->ts.u.derived;
2638 if (!c->attr.proc_pointer
2639 && !same_alloc_type
2640 && c->backend_decl == NULL)
2641 break;
2642 else if (c->next == NULL)
2643 return derived->backend_decl;
2645 typenode = derived->backend_decl;
2647 else
2648 typenode = derived->backend_decl;
2650 else
2652 /* We see this derived type first time, so build the type node. */
2653 typenode = make_node (RECORD_TYPE);
2654 TYPE_NAME (typenode) = get_identifier (derived->name);
2655 TYPE_PACKED (typenode) = flag_pack_derived;
2656 derived->backend_decl = typenode;
2659 if (derived->components
2660 && derived->components->ts.type == BT_DERIVED
2661 && strcmp (derived->components->name, "_data") == 0
2662 && derived->components->ts.u.derived->attr.unlimited_polymorphic)
2663 unlimited_entity = true;
2665 /* Go through the derived type components, building them as
2666 necessary. The reason for doing this now is that it is
2667 possible to recurse back to this derived type through a
2668 pointer component (PR24092). If this happens, the fields
2669 will be built and so we can return the type. */
2670 for (c = derived->components; c; c = c->next)
2672 bool same_alloc_type = c->attr.allocatable
2673 && derived == c->ts.u.derived;
2675 if (c->ts.type == BT_UNION && c->ts.u.derived->backend_decl == NULL)
2676 c->ts.u.derived->backend_decl = gfc_get_union_type (c->ts.u.derived);
2678 if (c->ts.type != BT_DERIVED && c->ts.type != BT_CLASS)
2679 continue;
2681 if ((!c->attr.pointer && !c->attr.proc_pointer
2682 && !same_alloc_type)
2683 || c->ts.u.derived->backend_decl == NULL)
2685 int local_codim = c->attr.codimension ? c->as->corank: codimen;
2686 c->ts.u.derived->backend_decl = gfc_get_derived_type (c->ts.u.derived,
2687 local_codim);
2690 if (c->ts.u.derived->attr.is_iso_c)
2692 /* Need to copy the modified ts from the derived type. The
2693 typespec was modified because C_PTR/C_FUNPTR are translated
2694 into (void *) from derived types. */
2695 c->ts.type = c->ts.u.derived->ts.type;
2696 c->ts.kind = c->ts.u.derived->ts.kind;
2697 c->ts.f90_type = c->ts.u.derived->ts.f90_type;
2698 if (c->initializer)
2700 c->initializer->ts.type = c->ts.type;
2701 c->initializer->ts.kind = c->ts.kind;
2702 c->initializer->ts.f90_type = c->ts.f90_type;
2703 c->initializer->expr_type = EXPR_NULL;
2708 if (TYPE_FIELDS (derived->backend_decl))
2709 return derived->backend_decl;
2711 /* Build the type member list. Install the newly created RECORD_TYPE
2712 node as DECL_CONTEXT of each FIELD_DECL. In this case we must go
2713 through only the top-level linked list of components so we correctly
2714 build UNION_TYPE nodes for BT_UNION components. MAPs and other nested
2715 types are built as part of gfc_get_union_type. */
2716 for (c = derived->components; c; c = c->next)
2718 bool same_alloc_type = c->attr.allocatable
2719 && derived == c->ts.u.derived;
2720 /* Prevent infinite recursion, when the procedure pointer type is
2721 the same as derived, by forcing the procedure pointer component to
2722 be built as if the explicit interface does not exist. */
2723 if (c->attr.proc_pointer
2724 && (c->ts.type != BT_DERIVED || (c->ts.u.derived
2725 && !gfc_compare_derived_types (derived, c->ts.u.derived)))
2726 && (c->ts.type != BT_CLASS || (CLASS_DATA (c)->ts.u.derived
2727 && !gfc_compare_derived_types (derived, CLASS_DATA (c)->ts.u.derived))))
2728 field_type = gfc_get_ppc_type (c);
2729 else if (c->attr.proc_pointer && derived->backend_decl)
2731 tmp = build_function_type_list (derived->backend_decl, NULL_TREE);
2732 field_type = build_pointer_type (tmp);
2734 else if (c->ts.type == BT_DERIVED || c->ts.type == BT_CLASS)
2735 field_type = c->ts.u.derived->backend_decl;
2736 else if (c->attr.caf_token)
2737 field_type = pvoid_type_node;
2738 else
2740 if (c->ts.type == BT_CHARACTER
2741 && !c->ts.deferred && !c->attr.pdt_string)
2743 /* Evaluate the string length. */
2744 gfc_conv_const_charlen (c->ts.u.cl);
2745 gcc_assert (c->ts.u.cl->backend_decl);
2747 else if (c->ts.type == BT_CHARACTER)
2748 c->ts.u.cl->backend_decl
2749 = build_int_cst (gfc_charlen_type_node, 0);
2751 field_type = gfc_typenode_for_spec (&c->ts, codimen);
2754 /* This returns an array descriptor type. Initialization may be
2755 required. */
2756 if ((c->attr.dimension || c->attr.codimension) && !c->attr.proc_pointer )
2758 if (c->attr.pointer || c->attr.allocatable || c->attr.pdt_array)
2760 enum gfc_array_kind akind;
2761 if (c->attr.pointer)
2762 akind = c->attr.contiguous ? GFC_ARRAY_POINTER_CONT
2763 : GFC_ARRAY_POINTER;
2764 else
2765 akind = GFC_ARRAY_ALLOCATABLE;
2766 /* Pointers to arrays aren't actually pointer types. The
2767 descriptors are separate, but the data is common. */
2768 field_type = gfc_build_array_type (field_type, c->as, akind,
2769 !c->attr.target
2770 && !c->attr.pointer,
2771 c->attr.contiguous,
2772 codimen);
2774 else
2775 field_type = gfc_get_nodesc_array_type (field_type, c->as,
2776 PACKED_STATIC,
2777 !c->attr.target);
2779 else if ((c->attr.pointer || c->attr.allocatable || c->attr.pdt_string)
2780 && !c->attr.proc_pointer
2781 && !(unlimited_entity && c == derived->components))
2782 field_type = build_pointer_type (field_type);
2784 if (c->attr.pointer || same_alloc_type)
2785 field_type = gfc_nonrestricted_type (field_type);
2787 /* vtype fields can point to different types to the base type. */
2788 if (c->ts.type == BT_DERIVED
2789 && c->ts.u.derived && c->ts.u.derived->attr.vtype)
2790 field_type = build_pointer_type_for_mode (TREE_TYPE (field_type),
2791 ptr_mode, true);
2793 /* Ensure that the CLASS language specific flag is set. */
2794 if (c->ts.type == BT_CLASS)
2796 if (POINTER_TYPE_P (field_type))
2797 GFC_CLASS_TYPE_P (TREE_TYPE (field_type)) = 1;
2798 else
2799 GFC_CLASS_TYPE_P (field_type) = 1;
2802 field = gfc_add_field_to_struct (typenode,
2803 get_identifier (c->name),
2804 field_type, &chain);
2805 if (c->loc.lb)
2806 gfc_set_decl_location (field, &c->loc);
2807 else if (derived->declared_at.lb)
2808 gfc_set_decl_location (field, &derived->declared_at);
2810 gfc_finish_decl_attrs (field, &c->attr);
2812 DECL_PACKED (field) |= TYPE_PACKED (typenode);
2814 gcc_assert (field);
2815 if (!c->backend_decl)
2816 c->backend_decl = field;
2818 if (c->attr.pointer && c->attr.dimension
2819 && !(c->ts.type == BT_DERIVED
2820 && strcmp (c->name, "_data") == 0))
2821 GFC_DECL_PTR_ARRAY_P (c->backend_decl) = 1;
2824 /* Now lay out the derived type, including the fields. */
2825 if (canonical)
2826 TYPE_CANONICAL (typenode) = canonical;
2828 gfc_finish_type (typenode);
2829 gfc_set_decl_location (TYPE_STUB_DECL (typenode), &derived->declared_at);
2830 if (derived->module && derived->ns->proc_name
2831 && derived->ns->proc_name->attr.flavor == FL_MODULE)
2833 if (derived->ns->proc_name->backend_decl
2834 && TREE_CODE (derived->ns->proc_name->backend_decl)
2835 == NAMESPACE_DECL)
2837 TYPE_CONTEXT (typenode) = derived->ns->proc_name->backend_decl;
2838 DECL_CONTEXT (TYPE_STUB_DECL (typenode))
2839 = derived->ns->proc_name->backend_decl;
2843 derived->backend_decl = typenode;
2845 copy_derived_types:
2847 for (c = derived->components; c; c = c->next)
2849 /* Do not add a caf_token field for class container components. */
2850 if ((codimen || coarray_flag)
2851 && !c->attr.dimension && !c->attr.codimension
2852 && (c->attr.allocatable || c->attr.pointer)
2853 && !derived->attr.is_class)
2855 char caf_name[GFC_MAX_SYMBOL_LEN];
2856 gfc_component *token;
2857 snprintf (caf_name, GFC_MAX_SYMBOL_LEN, "_caf_%s", c->name);
2858 token = gfc_find_component (derived, caf_name, true, true, NULL);
2859 gcc_assert (token);
2860 c->caf_token = token->backend_decl;
2861 TREE_NO_WARNING (c->caf_token) = 1;
2865 for (dt = gfc_derived_types; dt; dt = dt->next)
2866 gfc_copy_dt_decls_ifequal (derived, dt->derived, false);
2868 return derived->backend_decl;
2873 gfc_return_by_reference (gfc_symbol * sym)
2875 if (!sym->attr.function)
2876 return 0;
2878 if (sym->attr.dimension)
2879 return 1;
2881 if (sym->ts.type == BT_CHARACTER
2882 && !sym->attr.is_bind_c
2883 && (!sym->attr.result
2884 || !sym->ns->proc_name
2885 || !sym->ns->proc_name->attr.is_bind_c))
2886 return 1;
2888 /* Possibly return complex numbers by reference for g77 compatibility.
2889 We don't do this for calls to intrinsics (as the library uses the
2890 -fno-f2c calling convention), nor for calls to functions which always
2891 require an explicit interface, as no compatibility problems can
2892 arise there. */
2893 if (flag_f2c && sym->ts.type == BT_COMPLEX
2894 && !sym->attr.intrinsic && !sym->attr.always_explicit)
2895 return 1;
2897 return 0;
2900 static tree
2901 gfc_get_mixed_entry_union (gfc_namespace *ns)
2903 tree type;
2904 tree *chain = NULL;
2905 char name[GFC_MAX_SYMBOL_LEN + 1];
2906 gfc_entry_list *el, *el2;
2908 gcc_assert (ns->proc_name->attr.mixed_entry_master);
2909 gcc_assert (memcmp (ns->proc_name->name, "master.", 7) == 0);
2911 snprintf (name, GFC_MAX_SYMBOL_LEN, "munion.%s", ns->proc_name->name + 7);
2913 /* Build the type node. */
2914 type = make_node (UNION_TYPE);
2916 TYPE_NAME (type) = get_identifier (name);
2918 for (el = ns->entries; el; el = el->next)
2920 /* Search for duplicates. */
2921 for (el2 = ns->entries; el2 != el; el2 = el2->next)
2922 if (el2->sym->result == el->sym->result)
2923 break;
2925 if (el == el2)
2926 gfc_add_field_to_struct_1 (type,
2927 get_identifier (el->sym->result->name),
2928 gfc_sym_type (el->sym->result), &chain);
2931 /* Finish off the type. */
2932 gfc_finish_type (type);
2933 TYPE_DECL_SUPPRESS_DEBUG (TYPE_STUB_DECL (type)) = 1;
2934 return type;
2937 /* Create a "fn spec" based on the formal arguments;
2938 cf. create_function_arglist. */
2940 static tree
2941 create_fn_spec (gfc_symbol *sym, tree fntype)
2943 char spec[150];
2944 size_t spec_len;
2945 gfc_formal_arglist *f;
2946 tree tmp;
2948 memset (&spec, 0, sizeof (spec));
2949 spec[0] = '.';
2950 spec_len = 1;
2952 if (sym->attr.entry_master)
2953 spec[spec_len++] = 'R';
2954 if (gfc_return_by_reference (sym))
2956 gfc_symbol *result = sym->result ? sym->result : sym;
2958 if (result->attr.pointer || sym->attr.proc_pointer)
2959 spec[spec_len++] = '.';
2960 else
2961 spec[spec_len++] = 'w';
2962 if (sym->ts.type == BT_CHARACTER)
2963 spec[spec_len++] = 'R';
2966 for (f = gfc_sym_get_dummy_args (sym); f; f = f->next)
2967 if (spec_len < sizeof (spec))
2969 if (!f->sym || f->sym->attr.pointer || f->sym->attr.target
2970 || f->sym->attr.external || f->sym->attr.cray_pointer
2971 || (f->sym->ts.type == BT_DERIVED
2972 && (f->sym->ts.u.derived->attr.proc_pointer_comp
2973 || f->sym->ts.u.derived->attr.pointer_comp))
2974 || (f->sym->ts.type == BT_CLASS
2975 && (CLASS_DATA (f->sym)->ts.u.derived->attr.proc_pointer_comp
2976 || CLASS_DATA (f->sym)->ts.u.derived->attr.pointer_comp)))
2977 spec[spec_len++] = '.';
2978 else if (f->sym->attr.intent == INTENT_IN)
2979 spec[spec_len++] = 'r';
2980 else if (f->sym)
2981 spec[spec_len++] = 'w';
2984 tmp = build_tree_list (NULL_TREE, build_string (spec_len, spec));
2985 tmp = tree_cons (get_identifier ("fn spec"), tmp, TYPE_ATTRIBUTES (fntype));
2986 return build_type_attribute_variant (fntype, tmp);
2990 tree
2991 gfc_get_function_type (gfc_symbol * sym)
2993 tree type;
2994 vec<tree, va_gc> *typelist = NULL;
2995 gfc_formal_arglist *f;
2996 gfc_symbol *arg;
2997 int alternate_return = 0;
2998 bool is_varargs = true;
3000 /* Make sure this symbol is a function, a subroutine or the main
3001 program. */
3002 gcc_assert (sym->attr.flavor == FL_PROCEDURE
3003 || sym->attr.flavor == FL_PROGRAM);
3005 /* To avoid recursing infinitely on recursive types, we use error_mark_node
3006 so that they can be detected here and handled further down. */
3007 if (sym->backend_decl == NULL)
3008 sym->backend_decl = error_mark_node;
3009 else if (sym->backend_decl == error_mark_node)
3010 goto arg_type_list_done;
3011 else if (sym->attr.proc_pointer)
3012 return TREE_TYPE (TREE_TYPE (sym->backend_decl));
3013 else
3014 return TREE_TYPE (sym->backend_decl);
3016 if (sym->attr.entry_master)
3017 /* Additional parameter for selecting an entry point. */
3018 vec_safe_push (typelist, gfc_array_index_type);
3020 if (sym->result)
3021 arg = sym->result;
3022 else
3023 arg = sym;
3025 if (arg->ts.type == BT_CHARACTER)
3026 gfc_conv_const_charlen (arg->ts.u.cl);
3028 /* Some functions we use an extra parameter for the return value. */
3029 if (gfc_return_by_reference (sym))
3031 type = gfc_sym_type (arg);
3032 if (arg->ts.type == BT_COMPLEX
3033 || arg->attr.dimension
3034 || arg->ts.type == BT_CHARACTER)
3035 type = build_reference_type (type);
3037 vec_safe_push (typelist, type);
3038 if (arg->ts.type == BT_CHARACTER)
3040 if (!arg->ts.deferred)
3041 /* Transfer by value. */
3042 vec_safe_push (typelist, gfc_charlen_type_node);
3043 else
3044 /* Deferred character lengths are transferred by reference
3045 so that the value can be returned. */
3046 vec_safe_push (typelist, build_pointer_type(gfc_charlen_type_node));
3050 /* Build the argument types for the function. */
3051 for (f = gfc_sym_get_dummy_args (sym); f; f = f->next)
3053 arg = f->sym;
3054 if (arg)
3056 /* Evaluate constant character lengths here so that they can be
3057 included in the type. */
3058 if (arg->ts.type == BT_CHARACTER)
3059 gfc_conv_const_charlen (arg->ts.u.cl);
3061 if (arg->attr.flavor == FL_PROCEDURE)
3063 type = gfc_get_function_type (arg);
3064 type = build_pointer_type (type);
3066 else
3067 type = gfc_sym_type (arg);
3069 /* Parameter Passing Convention
3071 We currently pass all parameters by reference.
3072 Parameters with INTENT(IN) could be passed by value.
3073 The problem arises if a function is called via an implicit
3074 prototype. In this situation the INTENT is not known.
3075 For this reason all parameters to global functions must be
3076 passed by reference. Passing by value would potentially
3077 generate bad code. Worse there would be no way of telling that
3078 this code was bad, except that it would give incorrect results.
3080 Contained procedures could pass by value as these are never
3081 used without an explicit interface, and cannot be passed as
3082 actual parameters for a dummy procedure. */
3084 vec_safe_push (typelist, type);
3086 else
3088 if (sym->attr.subroutine)
3089 alternate_return = 1;
3093 /* Add hidden string length parameters. */
3094 for (f = gfc_sym_get_dummy_args (sym); f; f = f->next)
3096 arg = f->sym;
3097 if (arg && arg->ts.type == BT_CHARACTER && !sym->attr.is_bind_c)
3099 if (!arg->ts.deferred)
3100 /* Transfer by value. */
3101 type = gfc_charlen_type_node;
3102 else
3103 /* Deferred character lengths are transferred by reference
3104 so that the value can be returned. */
3105 type = build_pointer_type (gfc_charlen_type_node);
3107 vec_safe_push (typelist, type);
3111 if (!vec_safe_is_empty (typelist)
3112 || sym->attr.is_main_program
3113 || sym->attr.if_source != IFSRC_UNKNOWN)
3114 is_varargs = false;
3116 if (sym->backend_decl == error_mark_node)
3117 sym->backend_decl = NULL_TREE;
3119 arg_type_list_done:
3121 if (alternate_return)
3122 type = integer_type_node;
3123 else if (!sym->attr.function || gfc_return_by_reference (sym))
3124 type = void_type_node;
3125 else if (sym->attr.mixed_entry_master)
3126 type = gfc_get_mixed_entry_union (sym->ns);
3127 else if (flag_f2c && sym->ts.type == BT_REAL
3128 && sym->ts.kind == gfc_default_real_kind
3129 && !sym->attr.always_explicit)
3131 /* Special case: f2c calling conventions require that (scalar)
3132 default REAL functions return the C type double instead. f2c
3133 compatibility is only an issue with functions that don't
3134 require an explicit interface, as only these could be
3135 implemented in Fortran 77. */
3136 sym->ts.kind = gfc_default_double_kind;
3137 type = gfc_typenode_for_spec (&sym->ts);
3138 sym->ts.kind = gfc_default_real_kind;
3140 else if (sym->result && sym->result->attr.proc_pointer)
3141 /* Procedure pointer return values. */
3143 if (sym->result->attr.result && strcmp (sym->name,"ppr@") != 0)
3145 /* Unset proc_pointer as gfc_get_function_type
3146 is called recursively. */
3147 sym->result->attr.proc_pointer = 0;
3148 type = build_pointer_type (gfc_get_function_type (sym->result));
3149 sym->result->attr.proc_pointer = 1;
3151 else
3152 type = gfc_sym_type (sym->result);
3154 else
3155 type = gfc_sym_type (sym);
3157 if (is_varargs)
3158 type = build_varargs_function_type_vec (type, typelist);
3159 else
3160 type = build_function_type_vec (type, typelist);
3161 type = create_fn_spec (sym, type);
3163 return type;
3166 /* Language hooks for middle-end access to type nodes. */
3168 /* Return an integer type with BITS bits of precision,
3169 that is unsigned if UNSIGNEDP is nonzero, otherwise signed. */
3171 tree
3172 gfc_type_for_size (unsigned bits, int unsignedp)
3174 if (!unsignedp)
3176 int i;
3177 for (i = 0; i <= MAX_INT_KINDS; ++i)
3179 tree type = gfc_integer_types[i];
3180 if (type && bits == TYPE_PRECISION (type))
3181 return type;
3184 /* Handle TImode as a special case because it is used by some backends
3185 (e.g. ARM) even though it is not available for normal use. */
3186 #if HOST_BITS_PER_WIDE_INT >= 64
3187 if (bits == TYPE_PRECISION (intTI_type_node))
3188 return intTI_type_node;
3189 #endif
3191 if (bits <= TYPE_PRECISION (intQI_type_node))
3192 return intQI_type_node;
3193 if (bits <= TYPE_PRECISION (intHI_type_node))
3194 return intHI_type_node;
3195 if (bits <= TYPE_PRECISION (intSI_type_node))
3196 return intSI_type_node;
3197 if (bits <= TYPE_PRECISION (intDI_type_node))
3198 return intDI_type_node;
3199 if (bits <= TYPE_PRECISION (intTI_type_node))
3200 return intTI_type_node;
3202 else
3204 if (bits <= TYPE_PRECISION (unsigned_intQI_type_node))
3205 return unsigned_intQI_type_node;
3206 if (bits <= TYPE_PRECISION (unsigned_intHI_type_node))
3207 return unsigned_intHI_type_node;
3208 if (bits <= TYPE_PRECISION (unsigned_intSI_type_node))
3209 return unsigned_intSI_type_node;
3210 if (bits <= TYPE_PRECISION (unsigned_intDI_type_node))
3211 return unsigned_intDI_type_node;
3212 if (bits <= TYPE_PRECISION (unsigned_intTI_type_node))
3213 return unsigned_intTI_type_node;
3216 return NULL_TREE;
3219 /* Return a data type that has machine mode MODE. If the mode is an
3220 integer, then UNSIGNEDP selects between signed and unsigned types. */
3222 tree
3223 gfc_type_for_mode (machine_mode mode, int unsignedp)
3225 int i;
3226 tree *base;
3227 scalar_int_mode int_mode;
3229 if (GET_MODE_CLASS (mode) == MODE_FLOAT)
3230 base = gfc_real_types;
3231 else if (GET_MODE_CLASS (mode) == MODE_COMPLEX_FLOAT)
3232 base = gfc_complex_types;
3233 else if (is_a <scalar_int_mode> (mode, &int_mode))
3235 tree type = gfc_type_for_size (GET_MODE_PRECISION (int_mode), unsignedp);
3236 return type != NULL_TREE && mode == TYPE_MODE (type) ? type : NULL_TREE;
3238 else if (GET_MODE_CLASS (mode) == MODE_VECTOR_BOOL
3239 && valid_vector_subparts_p (GET_MODE_NUNITS (mode)))
3241 unsigned int elem_bits = vector_element_size (GET_MODE_BITSIZE (mode),
3242 GET_MODE_NUNITS (mode));
3243 tree bool_type = build_nonstandard_boolean_type (elem_bits);
3244 return build_vector_type_for_mode (bool_type, mode);
3246 else if (VECTOR_MODE_P (mode)
3247 && valid_vector_subparts_p (GET_MODE_NUNITS (mode)))
3249 machine_mode inner_mode = GET_MODE_INNER (mode);
3250 tree inner_type = gfc_type_for_mode (inner_mode, unsignedp);
3251 if (inner_type != NULL_TREE)
3252 return build_vector_type_for_mode (inner_type, mode);
3253 return NULL_TREE;
3255 else
3256 return NULL_TREE;
3258 for (i = 0; i <= MAX_REAL_KINDS; ++i)
3260 tree type = base[i];
3261 if (type && mode == TYPE_MODE (type))
3262 return type;
3265 return NULL_TREE;
3268 /* Return TRUE if TYPE is a type with a hidden descriptor, fill in INFO
3269 in that case. */
3271 bool
3272 gfc_get_array_descr_info (const_tree type, struct array_descr_info *info)
3274 int rank, dim;
3275 bool indirect = false;
3276 tree etype, ptype, t, base_decl;
3277 tree data_off, dim_off, dtype_off, dim_size, elem_size;
3278 tree lower_suboff, upper_suboff, stride_suboff;
3279 tree dtype, field, rank_off;
3281 if (! GFC_DESCRIPTOR_TYPE_P (type))
3283 if (! POINTER_TYPE_P (type))
3284 return false;
3285 type = TREE_TYPE (type);
3286 if (! GFC_DESCRIPTOR_TYPE_P (type))
3287 return false;
3288 indirect = true;
3291 rank = GFC_TYPE_ARRAY_RANK (type);
3292 if (rank >= (int) (sizeof (info->dimen) / sizeof (info->dimen[0])))
3293 return false;
3295 etype = GFC_TYPE_ARRAY_DATAPTR_TYPE (type);
3296 gcc_assert (POINTER_TYPE_P (etype));
3297 etype = TREE_TYPE (etype);
3299 /* If the type is not a scalar coarray. */
3300 if (TREE_CODE (etype) == ARRAY_TYPE)
3301 etype = TREE_TYPE (etype);
3303 /* Can't handle variable sized elements yet. */
3304 if (int_size_in_bytes (etype) <= 0)
3305 return false;
3306 /* Nor non-constant lower bounds in assumed shape arrays. */
3307 if (GFC_TYPE_ARRAY_AKIND (type) == GFC_ARRAY_ASSUMED_SHAPE
3308 || GFC_TYPE_ARRAY_AKIND (type) == GFC_ARRAY_ASSUMED_SHAPE_CONT)
3310 for (dim = 0; dim < rank; dim++)
3311 if (GFC_TYPE_ARRAY_LBOUND (type, dim) == NULL_TREE
3312 || TREE_CODE (GFC_TYPE_ARRAY_LBOUND (type, dim)) != INTEGER_CST)
3313 return false;
3316 memset (info, '\0', sizeof (*info));
3317 info->ndimensions = rank;
3318 info->ordering = array_descr_ordering_column_major;
3319 info->element_type = etype;
3320 ptype = build_pointer_type (gfc_array_index_type);
3321 base_decl = GFC_TYPE_ARRAY_BASE_DECL (type, indirect);
3322 if (!base_decl)
3324 base_decl = make_node (DEBUG_EXPR_DECL);
3325 DECL_ARTIFICIAL (base_decl) = 1;
3326 TREE_TYPE (base_decl) = indirect ? build_pointer_type (ptype) : ptype;
3327 SET_DECL_MODE (base_decl, TYPE_MODE (TREE_TYPE (base_decl)));
3328 GFC_TYPE_ARRAY_BASE_DECL (type, indirect) = base_decl;
3330 info->base_decl = base_decl;
3331 if (indirect)
3332 base_decl = build1 (INDIRECT_REF, ptype, base_decl);
3334 elem_size = fold_convert (gfc_array_index_type, TYPE_SIZE_UNIT (etype));
3336 gfc_get_descriptor_offsets_for_info (type, &data_off, &dtype_off, &dim_off,
3337 &dim_size, &stride_suboff,
3338 &lower_suboff, &upper_suboff);
3340 t = base_decl;
3341 if (!integer_zerop (data_off))
3342 t = fold_build_pointer_plus (t, data_off);
3343 t = build1 (NOP_EXPR, build_pointer_type (ptr_type_node), t);
3344 info->data_location = build1 (INDIRECT_REF, ptr_type_node, t);
3345 if (GFC_TYPE_ARRAY_AKIND (type) == GFC_ARRAY_ALLOCATABLE)
3346 info->allocated = build2 (NE_EXPR, logical_type_node,
3347 info->data_location, null_pointer_node);
3348 else if (GFC_TYPE_ARRAY_AKIND (type) == GFC_ARRAY_POINTER
3349 || GFC_TYPE_ARRAY_AKIND (type) == GFC_ARRAY_POINTER_CONT)
3350 info->associated = build2 (NE_EXPR, logical_type_node,
3351 info->data_location, null_pointer_node);
3352 if ((GFC_TYPE_ARRAY_AKIND (type) == GFC_ARRAY_ASSUMED_RANK
3353 || GFC_TYPE_ARRAY_AKIND (type) == GFC_ARRAY_ASSUMED_RANK_CONT)
3354 && dwarf_version >= 5)
3356 rank = 1;
3357 info->ndimensions = 1;
3358 t = base_decl;
3359 if (!integer_zerop (dtype_off))
3360 t = fold_build_pointer_plus (t, dtype_off);
3361 dtype = TYPE_MAIN_VARIANT (get_dtype_type_node ());
3362 field = gfc_advance_chain (TYPE_FIELDS (dtype), GFC_DTYPE_RANK);
3363 rank_off = byte_position (field);
3364 if (!integer_zerop (dtype_off))
3365 t = fold_build_pointer_plus (t, rank_off);
3367 t = build1 (NOP_EXPR, build_pointer_type (gfc_array_index_type), t);
3368 t = build1 (INDIRECT_REF, gfc_array_index_type, t);
3369 info->rank = t;
3370 t = build0 (PLACEHOLDER_EXPR, TREE_TYPE (dim_off));
3371 t = size_binop (MULT_EXPR, t, dim_size);
3372 dim_off = build2 (PLUS_EXPR, TREE_TYPE (dim_off), t, dim_off);
3375 for (dim = 0; dim < rank; dim++)
3377 t = fold_build_pointer_plus (base_decl,
3378 size_binop (PLUS_EXPR,
3379 dim_off, lower_suboff));
3380 t = build1 (INDIRECT_REF, gfc_array_index_type, t);
3381 info->dimen[dim].lower_bound = t;
3382 t = fold_build_pointer_plus (base_decl,
3383 size_binop (PLUS_EXPR,
3384 dim_off, upper_suboff));
3385 t = build1 (INDIRECT_REF, gfc_array_index_type, t);
3386 info->dimen[dim].upper_bound = t;
3387 if (GFC_TYPE_ARRAY_AKIND (type) == GFC_ARRAY_ASSUMED_SHAPE
3388 || GFC_TYPE_ARRAY_AKIND (type) == GFC_ARRAY_ASSUMED_SHAPE_CONT)
3390 /* Assumed shape arrays have known lower bounds. */
3391 info->dimen[dim].upper_bound
3392 = build2 (MINUS_EXPR, gfc_array_index_type,
3393 info->dimen[dim].upper_bound,
3394 info->dimen[dim].lower_bound);
3395 info->dimen[dim].lower_bound
3396 = fold_convert (gfc_array_index_type,
3397 GFC_TYPE_ARRAY_LBOUND (type, dim));
3398 info->dimen[dim].upper_bound
3399 = build2 (PLUS_EXPR, gfc_array_index_type,
3400 info->dimen[dim].lower_bound,
3401 info->dimen[dim].upper_bound);
3403 t = fold_build_pointer_plus (base_decl,
3404 size_binop (PLUS_EXPR,
3405 dim_off, stride_suboff));
3406 t = build1 (INDIRECT_REF, gfc_array_index_type, t);
3407 t = build2 (MULT_EXPR, gfc_array_index_type, t, elem_size);
3408 info->dimen[dim].stride = t;
3409 if (dim + 1 < rank)
3410 dim_off = size_binop (PLUS_EXPR, dim_off, dim_size);
3413 return true;
3417 /* Create a type to handle vector subscripts for coarray library calls. It
3418 has the form:
3419 struct caf_vector_t {
3420 size_t nvec; // size of the vector
3421 union {
3422 struct {
3423 void *vector;
3424 int kind;
3425 } v;
3426 struct {
3427 ptrdiff_t lower_bound;
3428 ptrdiff_t upper_bound;
3429 ptrdiff_t stride;
3430 } triplet;
3431 } u;
3433 where nvec == 0 for DIMEN_ELEMENT or DIMEN_RANGE and nvec being the vector
3434 size in case of DIMEN_VECTOR, where kind is the integer type of the vector. */
3436 tree
3437 gfc_get_caf_vector_type (int dim)
3439 static tree vector_types[GFC_MAX_DIMENSIONS];
3440 static tree vec_type = NULL_TREE;
3441 tree triplet_struct_type, vect_struct_type, union_type, tmp, *chain;
3443 if (vector_types[dim-1] != NULL_TREE)
3444 return vector_types[dim-1];
3446 if (vec_type == NULL_TREE)
3448 chain = 0;
3449 vect_struct_type = make_node (RECORD_TYPE);
3450 tmp = gfc_add_field_to_struct_1 (vect_struct_type,
3451 get_identifier ("vector"),
3452 pvoid_type_node, &chain);
3453 TREE_NO_WARNING (tmp) = 1;
3454 tmp = gfc_add_field_to_struct_1 (vect_struct_type,
3455 get_identifier ("kind"),
3456 integer_type_node, &chain);
3457 TREE_NO_WARNING (tmp) = 1;
3458 gfc_finish_type (vect_struct_type);
3460 chain = 0;
3461 triplet_struct_type = make_node (RECORD_TYPE);
3462 tmp = gfc_add_field_to_struct_1 (triplet_struct_type,
3463 get_identifier ("lower_bound"),
3464 gfc_array_index_type, &chain);
3465 TREE_NO_WARNING (tmp) = 1;
3466 tmp = gfc_add_field_to_struct_1 (triplet_struct_type,
3467 get_identifier ("upper_bound"),
3468 gfc_array_index_type, &chain);
3469 TREE_NO_WARNING (tmp) = 1;
3470 tmp = gfc_add_field_to_struct_1 (triplet_struct_type, get_identifier ("stride"),
3471 gfc_array_index_type, &chain);
3472 TREE_NO_WARNING (tmp) = 1;
3473 gfc_finish_type (triplet_struct_type);
3475 chain = 0;
3476 union_type = make_node (UNION_TYPE);
3477 tmp = gfc_add_field_to_struct_1 (union_type, get_identifier ("v"),
3478 vect_struct_type, &chain);
3479 TREE_NO_WARNING (tmp) = 1;
3480 tmp = gfc_add_field_to_struct_1 (union_type, get_identifier ("triplet"),
3481 triplet_struct_type, &chain);
3482 TREE_NO_WARNING (tmp) = 1;
3483 gfc_finish_type (union_type);
3485 chain = 0;
3486 vec_type = make_node (RECORD_TYPE);
3487 tmp = gfc_add_field_to_struct_1 (vec_type, get_identifier ("nvec"),
3488 size_type_node, &chain);
3489 TREE_NO_WARNING (tmp) = 1;
3490 tmp = gfc_add_field_to_struct_1 (vec_type, get_identifier ("u"),
3491 union_type, &chain);
3492 TREE_NO_WARNING (tmp) = 1;
3493 gfc_finish_type (vec_type);
3494 TYPE_NAME (vec_type) = get_identifier ("caf_vector_t");
3497 tmp = build_range_type (gfc_array_index_type, gfc_index_zero_node,
3498 gfc_rank_cst[dim-1]);
3499 vector_types[dim-1] = build_array_type (vec_type, tmp);
3500 return vector_types[dim-1];
3504 tree
3505 gfc_get_caf_reference_type ()
3507 static tree reference_type = NULL_TREE;
3508 tree c_struct_type, s_struct_type, v_struct_type, union_type, dim_union_type,
3509 a_struct_type, u_union_type, tmp, *chain;
3511 if (reference_type != NULL_TREE)
3512 return reference_type;
3514 chain = 0;
3515 c_struct_type = make_node (RECORD_TYPE);
3516 tmp = gfc_add_field_to_struct_1 (c_struct_type,
3517 get_identifier ("offset"),
3518 gfc_array_index_type, &chain);
3519 TREE_NO_WARNING (tmp) = 1;
3520 tmp = gfc_add_field_to_struct_1 (c_struct_type,
3521 get_identifier ("caf_token_offset"),
3522 gfc_array_index_type, &chain);
3523 TREE_NO_WARNING (tmp) = 1;
3524 gfc_finish_type (c_struct_type);
3526 chain = 0;
3527 s_struct_type = make_node (RECORD_TYPE);
3528 tmp = gfc_add_field_to_struct_1 (s_struct_type,
3529 get_identifier ("start"),
3530 gfc_array_index_type, &chain);
3531 TREE_NO_WARNING (tmp) = 1;
3532 tmp = gfc_add_field_to_struct_1 (s_struct_type,
3533 get_identifier ("end"),
3534 gfc_array_index_type, &chain);
3535 TREE_NO_WARNING (tmp) = 1;
3536 tmp = gfc_add_field_to_struct_1 (s_struct_type,
3537 get_identifier ("stride"),
3538 gfc_array_index_type, &chain);
3539 TREE_NO_WARNING (tmp) = 1;
3540 gfc_finish_type (s_struct_type);
3542 chain = 0;
3543 v_struct_type = make_node (RECORD_TYPE);
3544 tmp = gfc_add_field_to_struct_1 (v_struct_type,
3545 get_identifier ("vector"),
3546 pvoid_type_node, &chain);
3547 TREE_NO_WARNING (tmp) = 1;
3548 tmp = gfc_add_field_to_struct_1 (v_struct_type,
3549 get_identifier ("nvec"),
3550 size_type_node, &chain);
3551 TREE_NO_WARNING (tmp) = 1;
3552 tmp = gfc_add_field_to_struct_1 (v_struct_type,
3553 get_identifier ("kind"),
3554 integer_type_node, &chain);
3555 TREE_NO_WARNING (tmp) = 1;
3556 gfc_finish_type (v_struct_type);
3558 chain = 0;
3559 union_type = make_node (UNION_TYPE);
3560 tmp = gfc_add_field_to_struct_1 (union_type, get_identifier ("s"),
3561 s_struct_type, &chain);
3562 TREE_NO_WARNING (tmp) = 1;
3563 tmp = gfc_add_field_to_struct_1 (union_type, get_identifier ("v"),
3564 v_struct_type, &chain);
3565 TREE_NO_WARNING (tmp) = 1;
3566 gfc_finish_type (union_type);
3568 tmp = build_range_type (gfc_array_index_type, gfc_index_zero_node,
3569 gfc_rank_cst[GFC_MAX_DIMENSIONS - 1]);
3570 dim_union_type = build_array_type (union_type, tmp);
3572 chain = 0;
3573 a_struct_type = make_node (RECORD_TYPE);
3574 tmp = gfc_add_field_to_struct_1 (a_struct_type, get_identifier ("mode"),
3575 build_array_type (unsigned_char_type_node,
3576 build_range_type (gfc_array_index_type,
3577 gfc_index_zero_node,
3578 gfc_rank_cst[GFC_MAX_DIMENSIONS - 1])),
3579 &chain);
3580 TREE_NO_WARNING (tmp) = 1;
3581 tmp = gfc_add_field_to_struct_1 (a_struct_type,
3582 get_identifier ("static_array_type"),
3583 integer_type_node, &chain);
3584 TREE_NO_WARNING (tmp) = 1;
3585 tmp = gfc_add_field_to_struct_1 (a_struct_type, get_identifier ("dim"),
3586 dim_union_type, &chain);
3587 TREE_NO_WARNING (tmp) = 1;
3588 gfc_finish_type (a_struct_type);
3590 chain = 0;
3591 u_union_type = make_node (UNION_TYPE);
3592 tmp = gfc_add_field_to_struct_1 (u_union_type, get_identifier ("c"),
3593 c_struct_type, &chain);
3594 TREE_NO_WARNING (tmp) = 1;
3595 tmp = gfc_add_field_to_struct_1 (u_union_type, get_identifier ("a"),
3596 a_struct_type, &chain);
3597 TREE_NO_WARNING (tmp) = 1;
3598 gfc_finish_type (u_union_type);
3600 chain = 0;
3601 reference_type = make_node (RECORD_TYPE);
3602 tmp = gfc_add_field_to_struct_1 (reference_type, get_identifier ("next"),
3603 build_pointer_type (reference_type), &chain);
3604 TREE_NO_WARNING (tmp) = 1;
3605 tmp = gfc_add_field_to_struct_1 (reference_type, get_identifier ("type"),
3606 integer_type_node, &chain);
3607 TREE_NO_WARNING (tmp) = 1;
3608 tmp = gfc_add_field_to_struct_1 (reference_type, get_identifier ("item_size"),
3609 size_type_node, &chain);
3610 TREE_NO_WARNING (tmp) = 1;
3611 tmp = gfc_add_field_to_struct_1 (reference_type, get_identifier ("u"),
3612 u_union_type, &chain);
3613 TREE_NO_WARNING (tmp) = 1;
3614 gfc_finish_type (reference_type);
3615 TYPE_NAME (reference_type) = get_identifier ("caf_reference_t");
3617 return reference_type;
3620 #include "gt-fortran-trans-types.h"