1 /* Common block and equivalence list handling
2 Copyright (C) 2000-2013 Free Software Foundation, Inc.
3 Contributed by Canqun Yang <canqun@nudt.edu.cn>
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify it under
8 the terms of the GNU General Public License as published by the Free
9 Software Foundation; either version 3, or (at your option) any later
12 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
13 WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING3. If not see
19 <http://www.gnu.org/licenses/>. */
21 /* The core algorithm is based on Andy Vaught's g95 tree. Also the
22 way to build UNION_TYPE is borrowed from Richard Henderson.
24 Transform common blocks. An integral part of this is processing
25 equivalence variables. Equivalenced variables that are not in a
26 common block end up in a private block of their own.
28 Each common block or local equivalence list is declared as a union.
29 Variables within the block are represented as a field within the
30 block with the proper offset.
32 So if two variables are equivalenced, they just point to a common
35 Mathematically, laying out an equivalence block is equivalent to
36 solving a linear system of equations. The matrix is usually a
37 sparse matrix in which each row contains all zero elements except
38 for a +1 and a -1, a sort of a generalized Vandermonde matrix. The
39 matrix is usually block diagonal. The system can be
40 overdetermined, underdetermined or have a unique solution. If the
41 system is inconsistent, the program is not standard conforming.
42 The solution vector is integral, since all of the pivots are +1 or -1.
44 How we lay out an equivalence block is a little less complicated.
45 In an equivalence list with n elements, there are n-1 conditions to
46 be satisfied. The conditions partition the variables into what we
47 will call segments. If A and B are equivalenced then A and B are
48 in the same segment. If B and C are equivalenced as well, then A,
49 B and C are in a segment and so on. Each segment is a block of
50 memory that has one or more variables equivalenced in some way. A
51 common block is made up of a series of segments that are joined one
52 after the other. In the linear system, a segment is a block
55 To lay out a segment we first start with some variable and
56 determine its length. The first variable is assumed to start at
57 offset one and extends to however long it is. We then traverse the
58 list of equivalences to find an unused condition that involves at
59 least one of the variables currently in the segment.
61 Each equivalence condition amounts to the condition B+b=C+c where B
62 and C are the offsets of the B and C variables, and b and c are
63 constants which are nonzero for array elements, substrings or
64 structure components. So for
66 EQUIVALENCE(B(2), C(3))
68 B + 2*size of B's elements = C + 3*size of C's elements.
70 If B and C are known we check to see if the condition already
71 holds. If B is known we can solve for C. Since we know the length
72 of C, we can see if the minimum and maximum extents of the segment
73 are affected. Eventually, we make a full pass through the
74 equivalence list without finding any new conditions and the segment
77 At this point, the segment is added to the current common block.
78 Since we know the minimum extent of the segment, everything in the
79 segment is translated to its position in the common block. The
80 usual case here is that there are no equivalence statements and the
81 common block is series of segments with one variable each, which is
82 a diagonal matrix in the matrix formulation.
84 Each segment is described by a chain of segment_info structures. Each
85 segment_info structure describes the extents of a single variable within
86 the segment. This list is maintained in the order the elements are
87 positioned within the segment. If two elements have the same starting
88 offset the smaller will come first. If they also have the same size their
89 ordering is undefined.
91 Once all common blocks have been created, the list of equivalences
92 is examined for still-unused equivalence conditions. We create a
93 block for each merged equivalence list. */
98 #include "coretypes.h"
101 #include "gfortran.h"
103 #include "trans-types.h"
104 #include "trans-const.h"
105 #include "target-memory.h"
108 /* Holds a single variable in an equivalence set. */
109 typedef struct segment_info
112 HOST_WIDE_INT offset
;
113 HOST_WIDE_INT length
;
114 /* This will contain the field type until the field is created. */
116 struct segment_info
*next
;
119 static segment_info
* current_segment
;
121 /* Store decl of all common blocks in this translation unit; the first
122 tree is the identifier. */
123 static std::map
<tree
, tree
> gfc_map_of_all_commons
;
126 /* Make a segment_info based on a symbol. */
128 static segment_info
*
129 get_segment_info (gfc_symbol
* sym
, HOST_WIDE_INT offset
)
133 /* Make sure we've got the character length. */
134 if (sym
->ts
.type
== BT_CHARACTER
)
135 gfc_conv_const_charlen (sym
->ts
.u
.cl
);
137 /* Create the segment_info and fill it in. */
138 s
= XCNEW (segment_info
);
140 /* We will use this type when building the segment aggregate type. */
141 s
->field
= gfc_sym_type (sym
);
142 s
->length
= int_size_in_bytes (s
->field
);
149 /* Add a copy of a segment list to the namespace. This is specifically for
150 equivalence segments, so that dependency checking can be done on
151 equivalence group members. */
154 copy_equiv_list_to_ns (segment_info
*c
)
160 l
= XCNEW (gfc_equiv_list
);
162 l
->next
= c
->sym
->ns
->equiv_lists
;
163 c
->sym
->ns
->equiv_lists
= l
;
165 for (f
= c
; f
; f
= f
->next
)
167 s
= XCNEW (gfc_equiv_info
);
171 s
->offset
= f
->offset
;
172 s
->length
= f
->length
;
177 /* Add combine segment V and segment LIST. */
179 static segment_info
*
180 add_segments (segment_info
*list
, segment_info
*v
)
191 /* Find the location of the new element. */
194 if (v
->offset
< s
->offset
)
196 if (v
->offset
== s
->offset
197 && v
->length
<= s
->length
)
204 /* Insert the new element in between p and s. */
220 /* Construct mangled common block name from symbol name. */
222 /* We need the bind(c) flag to tell us how/if we should mangle the symbol
223 name. There are few calls to this function, so few places that this
224 would need to be added. At the moment, there is only one call, in
225 build_common_decl(). We can't attempt to look up the common block
226 because we may be building it for the first time and therefore, it won't
227 be in the common_root. We also need the binding label, if it's bind(c).
228 Therefore, send in the pointer to the common block, so whatever info we
229 have so far can be used. All of the necessary info should be available
230 in the gfc_common_head by now, so it should be accurate to test the
231 isBindC flag and use the binding label given if it is bind(c).
233 We may NOT know yet if it's bind(c) or not, but we can try at least.
234 Will have to figure out what to do later if it's labeled bind(c)
235 after this is called. */
238 gfc_sym_mangled_common_id (gfc_common_head
*com
)
241 char mangled_name
[GFC_MAX_MANGLED_SYMBOL_LEN
+ 1];
242 char name
[GFC_MAX_SYMBOL_LEN
+ 1];
244 /* Get the name out of the common block pointer. */
245 strcpy (name
, com
->name
);
247 /* If we're suppose to do a bind(c). */
248 if (com
->is_bind_c
== 1 && com
->binding_label
)
249 return get_identifier (com
->binding_label
);
251 if (strcmp (name
, BLANK_COMMON_NAME
) == 0)
252 return get_identifier (name
);
254 if (gfc_option
.flag_underscoring
)
256 has_underscore
= strchr (name
, '_') != 0;
257 if (gfc_option
.flag_second_underscore
&& has_underscore
)
258 snprintf (mangled_name
, sizeof mangled_name
, "%s__", name
);
260 snprintf (mangled_name
, sizeof mangled_name
, "%s_", name
);
262 return get_identifier (mangled_name
);
265 return get_identifier (name
);
269 /* Build a field declaration for a common variable or a local equivalence
273 build_field (segment_info
*h
, tree union_type
, record_layout_info rli
)
277 HOST_WIDE_INT offset
= h
->offset
;
278 unsigned HOST_WIDE_INT desired_align
, known_align
;
280 name
= get_identifier (h
->sym
->name
);
281 field
= build_decl (h
->sym
->declared_at
.lb
->location
,
282 FIELD_DECL
, name
, h
->field
);
283 known_align
= (offset
& -offset
) * BITS_PER_UNIT
;
284 if (known_align
== 0 || known_align
> BIGGEST_ALIGNMENT
)
285 known_align
= BIGGEST_ALIGNMENT
;
287 desired_align
= update_alignment_for_field (rli
, field
, known_align
);
288 if (desired_align
> known_align
)
289 DECL_PACKED (field
) = 1;
291 DECL_FIELD_CONTEXT (field
) = union_type
;
292 DECL_FIELD_OFFSET (field
) = size_int (offset
);
293 DECL_FIELD_BIT_OFFSET (field
) = bitsize_zero_node
;
294 SET_DECL_OFFSET_ALIGN (field
, known_align
);
296 rli
->offset
= size_binop (MAX_EXPR
, rli
->offset
,
297 size_binop (PLUS_EXPR
,
298 DECL_FIELD_OFFSET (field
),
299 DECL_SIZE_UNIT (field
)));
300 /* If this field is assigned to a label, we create another two variables.
301 One will hold the address of target label or format label. The other will
302 hold the length of format label string. */
303 if (h
->sym
->attr
.assign
)
308 gfc_allocate_lang_decl (field
);
309 GFC_DECL_ASSIGN (field
) = 1;
310 len
= gfc_create_var_np (gfc_charlen_type_node
,h
->sym
->name
);
311 addr
= gfc_create_var_np (pvoid_type_node
, h
->sym
->name
);
312 TREE_STATIC (len
) = 1;
313 TREE_STATIC (addr
) = 1;
314 DECL_INITIAL (len
) = build_int_cst (gfc_charlen_type_node
, -2);
315 gfc_set_decl_location (len
, &h
->sym
->declared_at
);
316 gfc_set_decl_location (addr
, &h
->sym
->declared_at
);
317 GFC_DECL_STRING_LEN (field
) = pushdecl_top_level (len
);
318 GFC_DECL_ASSIGN_ADDR (field
) = pushdecl_top_level (addr
);
321 /* If this field is volatile, mark it. */
322 if (h
->sym
->attr
.volatile_
)
325 TREE_THIS_VOLATILE (field
) = 1;
326 TREE_SIDE_EFFECTS (field
) = 1;
327 new_type
= build_qualified_type (TREE_TYPE (field
), TYPE_QUAL_VOLATILE
);
328 TREE_TYPE (field
) = new_type
;
335 /* Get storage for local equivalence. */
338 build_equiv_decl (tree union_type
, bool is_init
, bool is_saved
)
342 static int serial
= 0;
346 decl
= gfc_create_var (union_type
, "equiv");
347 TREE_STATIC (decl
) = 1;
348 GFC_DECL_COMMON_OR_EQUIV (decl
) = 1;
352 snprintf (name
, sizeof (name
), "equiv.%d", serial
++);
353 decl
= build_decl (input_location
,
354 VAR_DECL
, get_identifier (name
), union_type
);
355 DECL_ARTIFICIAL (decl
) = 1;
356 DECL_IGNORED_P (decl
) = 1;
358 if (!gfc_can_put_var_on_stack (DECL_SIZE_UNIT (decl
))
360 TREE_STATIC (decl
) = 1;
362 TREE_ADDRESSABLE (decl
) = 1;
363 TREE_USED (decl
) = 1;
364 GFC_DECL_COMMON_OR_EQUIV (decl
) = 1;
366 /* The source location has been lost, and doesn't really matter.
367 We need to set it to something though. */
368 gfc_set_decl_location (decl
, &gfc_current_locus
);
370 gfc_add_decl_to_function (decl
);
376 /* Get storage for common block. */
379 build_common_decl (gfc_common_head
*com
, tree union_type
, bool is_init
)
381 tree decl
, identifier
;
383 identifier
= gfc_sym_mangled_common_id (com
);
384 decl
= gfc_map_of_all_commons
.count(identifier
)
385 ? gfc_map_of_all_commons
[identifier
] : NULL_TREE
;
387 /* Update the size of this common block as needed. */
388 if (decl
!= NULL_TREE
)
390 tree size
= TYPE_SIZE_UNIT (union_type
);
392 /* Named common blocks of the same name shall be of the same size
393 in all scoping units of a program in which they appear, but
394 blank common blocks may be of different sizes. */
395 if (!tree_int_cst_equal (DECL_SIZE_UNIT (decl
), size
)
396 && strcmp (com
->name
, BLANK_COMMON_NAME
))
397 gfc_warning ("Named COMMON block '%s' at %L shall be of the "
398 "same size as elsewhere (%lu vs %lu bytes)", com
->name
,
400 (unsigned long) TREE_INT_CST_LOW (size
),
401 (unsigned long) TREE_INT_CST_LOW (DECL_SIZE_UNIT (decl
)));
403 if (tree_int_cst_lt (DECL_SIZE_UNIT (decl
), size
))
405 DECL_SIZE (decl
) = TYPE_SIZE (union_type
);
406 DECL_SIZE_UNIT (decl
) = size
;
407 DECL_MODE (decl
) = TYPE_MODE (union_type
);
408 TREE_TYPE (decl
) = union_type
;
409 layout_decl (decl
, 0);
413 /* If this common block has been declared in a previous program unit,
414 and either it is already initialized or there is no new initialization
415 for it, just return. */
416 if ((decl
!= NULL_TREE
) && (!is_init
|| DECL_INITIAL (decl
)))
419 /* If there is no backend_decl for the common block, build it. */
420 if (decl
== NULL_TREE
)
422 if (com
->is_bind_c
== 1 && com
->binding_label
)
423 decl
= build_decl (input_location
, VAR_DECL
, identifier
, union_type
);
426 decl
= build_decl (input_location
, VAR_DECL
, get_identifier (com
->name
),
428 gfc_set_decl_assembler_name (decl
, identifier
);
431 TREE_PUBLIC (decl
) = 1;
432 TREE_STATIC (decl
) = 1;
433 DECL_IGNORED_P (decl
) = 1;
435 DECL_ALIGN (decl
) = BIGGEST_ALIGNMENT
;
438 /* Do not set the alignment for bind(c) common blocks to
439 BIGGEST_ALIGNMENT because that won't match what C does. Also,
440 for common blocks with one element, the alignment must be
441 that of the field within the common block in order to match
443 tree field
= NULL_TREE
;
444 field
= TYPE_FIELDS (TREE_TYPE (decl
));
445 if (DECL_CHAIN (field
) == NULL_TREE
)
446 DECL_ALIGN (decl
) = TYPE_ALIGN (TREE_TYPE (field
));
448 DECL_USER_ALIGN (decl
) = 0;
449 GFC_DECL_COMMON_OR_EQUIV (decl
) = 1;
451 gfc_set_decl_location (decl
, &com
->where
);
453 if (com
->threadprivate
)
454 DECL_TLS_MODEL (decl
) = decl_default_tls_model (decl
);
456 /* Place the back end declaration for this common block in
457 GLOBAL_BINDING_LEVEL. */
458 gfc_map_of_all_commons
[identifier
] = pushdecl_top_level (decl
);
461 /* Has no initial values. */
464 DECL_INITIAL (decl
) = NULL_TREE
;
465 DECL_COMMON (decl
) = 1;
466 DECL_DEFER_OUTPUT (decl
) = 1;
470 DECL_INITIAL (decl
) = error_mark_node
;
471 DECL_COMMON (decl
) = 0;
472 DECL_DEFER_OUTPUT (decl
) = 0;
478 /* Return a field that is the size of the union, if an equivalence has
479 overlapping initializers. Merge the initializers into a single
480 initializer for this new field, then free the old ones. */
483 get_init_field (segment_info
*head
, tree union_type
, tree
*field_init
,
484 record_layout_info rli
)
487 HOST_WIDE_INT length
= 0;
488 HOST_WIDE_INT offset
= 0;
489 unsigned HOST_WIDE_INT known_align
, desired_align
;
490 bool overlap
= false;
493 unsigned char *data
, *chk
;
494 vec
<constructor_elt
, va_gc
> *v
= NULL
;
496 tree type
= unsigned_char_type_node
;
499 /* Obtain the size of the union and check if there are any overlapping
501 for (s
= head
; s
; s
= s
->next
)
503 HOST_WIDE_INT slen
= s
->offset
+ s
->length
;
506 if (s
->offset
< offset
)
510 length
= length
< slen
? slen
: length
;
516 /* Now absorb all the initializer data into a single vector,
517 whilst checking for overlapping, unequal values. */
518 data
= XCNEWVEC (unsigned char, (size_t)length
);
519 chk
= XCNEWVEC (unsigned char, (size_t)length
);
521 /* TODO - change this when default initialization is implemented. */
522 memset (data
, '\0', (size_t)length
);
523 memset (chk
, '\0', (size_t)length
);
524 for (s
= head
; s
; s
= s
->next
)
526 gfc_merge_initializers (s
->sym
->ts
, s
->sym
->value
,
531 for (i
= 0; i
< length
; i
++)
532 CONSTRUCTOR_APPEND_ELT (v
, NULL
, build_int_cst (type
, data
[i
]));
537 /* Build a char[length] array to hold the initializers. Much of what
538 follows is borrowed from build_field, above. */
540 tmp
= build_int_cst (gfc_array_index_type
, length
- 1);
541 tmp
= build_range_type (gfc_array_index_type
,
542 gfc_index_zero_node
, tmp
);
543 tmp
= build_array_type (type
, tmp
);
544 field
= build_decl (gfc_current_locus
.lb
->location
,
545 FIELD_DECL
, NULL_TREE
, tmp
);
547 known_align
= BIGGEST_ALIGNMENT
;
549 desired_align
= update_alignment_for_field (rli
, field
, known_align
);
550 if (desired_align
> known_align
)
551 DECL_PACKED (field
) = 1;
553 DECL_FIELD_CONTEXT (field
) = union_type
;
554 DECL_FIELD_OFFSET (field
) = size_int (0);
555 DECL_FIELD_BIT_OFFSET (field
) = bitsize_zero_node
;
556 SET_DECL_OFFSET_ALIGN (field
, known_align
);
558 rli
->offset
= size_binop (MAX_EXPR
, rli
->offset
,
559 size_binop (PLUS_EXPR
,
560 DECL_FIELD_OFFSET (field
),
561 DECL_SIZE_UNIT (field
)));
563 init
= build_constructor (TREE_TYPE (field
), v
);
564 TREE_CONSTANT (init
) = 1;
568 for (s
= head
; s
; s
= s
->next
)
570 if (s
->sym
->value
== NULL
)
573 gfc_free_expr (s
->sym
->value
);
574 s
->sym
->value
= NULL
;
581 /* Declare memory for the common block or local equivalence, and create
582 backend declarations for all of the elements. */
585 create_common (gfc_common_head
*com
, segment_info
*head
, bool saw_equiv
)
587 segment_info
*s
, *next_s
;
591 tree field_init
= NULL_TREE
;
592 record_layout_info rli
;
594 bool is_init
= false;
595 bool is_saved
= false;
597 /* Declare the variables inside the common block.
598 If the current common block contains any equivalence object, then
599 make a UNION_TYPE node, otherwise RECORD_TYPE. This will let the
600 alias analyzer work well when there is no address overlapping for
601 common variables in the current common block. */
603 union_type
= make_node (UNION_TYPE
);
605 union_type
= make_node (RECORD_TYPE
);
607 rli
= start_record_layout (union_type
);
608 field_link
= &TYPE_FIELDS (union_type
);
610 /* Check for overlapping initializers and replace them with a single,
611 artificial field that contains all the data. */
613 field
= get_init_field (head
, union_type
, &field_init
, rli
);
617 if (field
!= NULL_TREE
)
621 field_link
= &DECL_CHAIN (field
);
624 for (s
= head
; s
; s
= s
->next
)
626 build_field (s
, union_type
, rli
);
628 /* Link the field into the type. */
629 *field_link
= s
->field
;
630 field_link
= &DECL_CHAIN (s
->field
);
632 /* Has initial value. */
636 /* Has SAVE attribute. */
637 if (s
->sym
->attr
.save
)
641 finish_record_layout (rli
, true);
644 decl
= build_common_decl (com
, union_type
, is_init
);
646 decl
= build_equiv_decl (union_type
, is_init
, is_saved
);
651 vec
<constructor_elt
, va_gc
> *v
= NULL
;
653 if (field
!= NULL_TREE
&& field_init
!= NULL_TREE
)
654 CONSTRUCTOR_APPEND_ELT (v
, field
, field_init
);
656 for (s
= head
; s
; s
= s
->next
)
660 /* Add the initializer for this field. */
661 tmp
= gfc_conv_initializer (s
->sym
->value
, &s
->sym
->ts
,
662 TREE_TYPE (s
->field
),
663 s
->sym
->attr
.dimension
,
665 || s
->sym
->attr
.allocatable
, false);
667 CONSTRUCTOR_APPEND_ELT (v
, s
->field
, tmp
);
671 gcc_assert (!v
->is_empty ());
672 ctor
= build_constructor (union_type
, v
);
673 TREE_CONSTANT (ctor
) = 1;
674 TREE_STATIC (ctor
) = 1;
675 DECL_INITIAL (decl
) = ctor
;
677 #ifdef ENABLE_CHECKING
680 unsigned HOST_WIDE_INT idx
;
681 FOR_EACH_CONSTRUCTOR_ELT (CONSTRUCTOR_ELTS (ctor
), idx
, field
, value
)
682 gcc_assert (TREE_CODE (field
) == FIELD_DECL
);
687 /* Build component reference for each variable. */
688 for (s
= head
; s
; s
= next_s
)
692 var_decl
= build_decl (s
->sym
->declared_at
.lb
->location
,
693 VAR_DECL
, DECL_NAME (s
->field
),
694 TREE_TYPE (s
->field
));
695 TREE_STATIC (var_decl
) = TREE_STATIC (decl
);
696 /* Mark the variable as used in order to avoid warnings about
698 TREE_USED (var_decl
) = 1;
699 if (s
->sym
->attr
.use_assoc
)
700 DECL_IGNORED_P (var_decl
) = 1;
701 if (s
->sym
->attr
.target
)
702 TREE_ADDRESSABLE (var_decl
) = 1;
703 /* Fake variables are not visible from other translation units. */
704 TREE_PUBLIC (var_decl
) = 0;
706 /* To preserve identifier names in COMMON, chain to procedure
707 scope unless at top level in a module definition. */
709 && s
->sym
->ns
->proc_name
710 && s
->sym
->ns
->proc_name
->attr
.flavor
== FL_MODULE
)
711 var_decl
= pushdecl_top_level (var_decl
);
713 gfc_add_decl_to_function (var_decl
);
715 SET_DECL_VALUE_EXPR (var_decl
,
716 fold_build3_loc (input_location
, COMPONENT_REF
,
717 TREE_TYPE (s
->field
),
718 decl
, s
->field
, NULL_TREE
));
719 DECL_HAS_VALUE_EXPR_P (var_decl
) = 1;
720 GFC_DECL_COMMON_OR_EQUIV (var_decl
) = 1;
722 if (s
->sym
->attr
.assign
)
724 gfc_allocate_lang_decl (var_decl
);
725 GFC_DECL_ASSIGN (var_decl
) = 1;
726 GFC_DECL_STRING_LEN (var_decl
) = GFC_DECL_STRING_LEN (s
->field
);
727 GFC_DECL_ASSIGN_ADDR (var_decl
) = GFC_DECL_ASSIGN_ADDR (s
->field
);
730 s
->sym
->backend_decl
= var_decl
;
738 /* Given a symbol, find it in the current segment list. Returns NULL if
741 static segment_info
*
742 find_segment_info (gfc_symbol
*symbol
)
746 for (n
= current_segment
; n
; n
= n
->next
)
748 if (n
->sym
== symbol
)
756 /* Given an expression node, make sure it is a constant integer and return
760 get_mpz (gfc_expr
*e
)
763 if (e
->expr_type
!= EXPR_CONSTANT
)
764 gfc_internal_error ("get_mpz(): Not an integer constant");
766 return &e
->value
.integer
;
770 /* Given an array specification and an array reference, figure out the
771 array element number (zero based). Bounds and elements are guaranteed
772 to be constants. If something goes wrong we generate an error and
776 element_number (gfc_array_ref
*ar
)
778 mpz_t multiplier
, offset
, extent
, n
;
780 HOST_WIDE_INT i
, rank
;
784 mpz_init_set_ui (multiplier
, 1);
785 mpz_init_set_ui (offset
, 0);
789 for (i
= 0; i
< rank
; i
++)
791 if (ar
->dimen_type
[i
] != DIMEN_ELEMENT
)
792 gfc_internal_error ("element_number(): Bad dimension type");
794 mpz_sub (n
, *get_mpz (ar
->start
[i
]), *get_mpz (as
->lower
[i
]));
796 mpz_mul (n
, n
, multiplier
);
797 mpz_add (offset
, offset
, n
);
799 mpz_sub (extent
, *get_mpz (as
->upper
[i
]), *get_mpz (as
->lower
[i
]));
800 mpz_add_ui (extent
, extent
, 1);
802 if (mpz_sgn (extent
) < 0)
803 mpz_set_ui (extent
, 0);
805 mpz_mul (multiplier
, multiplier
, extent
);
808 i
= mpz_get_ui (offset
);
810 mpz_clear (multiplier
);
819 /* Given a single element of an equivalence list, figure out the offset
820 from the base symbol. For simple variables or full arrays, this is
821 simply zero. For an array element we have to calculate the array
822 element number and multiply by the element size. For a substring we
823 have to calculate the further reference. */
826 calculate_offset (gfc_expr
*e
)
828 HOST_WIDE_INT n
, element_size
, offset
;
829 gfc_typespec
*element_type
;
833 element_type
= &e
->symtree
->n
.sym
->ts
;
835 for (reference
= e
->ref
; reference
; reference
= reference
->next
)
836 switch (reference
->type
)
839 switch (reference
->u
.ar
.type
)
845 n
= element_number (&reference
->u
.ar
);
846 if (element_type
->type
== BT_CHARACTER
)
847 gfc_conv_const_charlen (element_type
->u
.cl
);
849 int_size_in_bytes (gfc_typenode_for_spec (element_type
));
850 offset
+= n
* element_size
;
854 gfc_error ("Bad array reference at %L", &e
->where
);
858 if (reference
->u
.ss
.start
!= NULL
)
859 offset
+= mpz_get_ui (*get_mpz (reference
->u
.ss
.start
)) - 1;
862 gfc_error ("Illegal reference type at %L as EQUIVALENCE object",
869 /* Add a new segment_info structure to the current segment. eq1 is already
870 in the list, eq2 is not. */
873 new_condition (segment_info
*v
, gfc_equiv
*eq1
, gfc_equiv
*eq2
)
875 HOST_WIDE_INT offset1
, offset2
;
878 offset1
= calculate_offset (eq1
->expr
);
879 offset2
= calculate_offset (eq2
->expr
);
881 a
= get_segment_info (eq2
->expr
->symtree
->n
.sym
,
882 v
->offset
+ offset1
- offset2
);
884 current_segment
= add_segments (current_segment
, a
);
888 /* Given two equivalence structures that are both already in the list, make
889 sure that this new condition is not violated, generating an error if it
893 confirm_condition (segment_info
*s1
, gfc_equiv
*eq1
, segment_info
*s2
,
896 HOST_WIDE_INT offset1
, offset2
;
898 offset1
= calculate_offset (eq1
->expr
);
899 offset2
= calculate_offset (eq2
->expr
);
901 if (s1
->offset
+ offset1
!= s2
->offset
+ offset2
)
902 gfc_error ("Inconsistent equivalence rules involving '%s' at %L and "
903 "'%s' at %L", s1
->sym
->name
, &s1
->sym
->declared_at
,
904 s2
->sym
->name
, &s2
->sym
->declared_at
);
908 /* Process a new equivalence condition. eq1 is know to be in segment f.
909 If eq2 is also present then confirm that the condition holds.
910 Otherwise add a new variable to the segment list. */
913 add_condition (segment_info
*f
, gfc_equiv
*eq1
, gfc_equiv
*eq2
)
917 n
= find_segment_info (eq2
->expr
->symtree
->n
.sym
);
920 new_condition (f
, eq1
, eq2
);
922 confirm_condition (f
, eq1
, n
, eq2
);
926 /* Given a segment element, search through the equivalence lists for unused
927 conditions that involve the symbol. Add these rules to the segment. */
930 find_equivalence (segment_info
*n
)
932 gfc_equiv
*e1
, *e2
, *eq
;
937 for (e1
= n
->sym
->ns
->equiv
; e1
; e1
= e1
->next
)
941 /* Search the equivalence list, including the root (first) element
942 for the symbol that owns the segment. */
943 for (e2
= e1
; e2
; e2
= e2
->eq
)
945 if (!e2
->used
&& e2
->expr
->symtree
->n
.sym
== n
->sym
)
952 /* Go to the next root element. */
958 /* Now traverse the equivalence list matching the offsets. */
959 for (e2
= e1
; e2
; e2
= e2
->eq
)
961 if (!e2
->used
&& e2
!= eq
)
963 add_condition (n
, eq
, e2
);
973 /* Add all symbols equivalenced within a segment. We need to scan the
974 segment list multiple times to include indirect equivalences. Since
975 a new segment_info can inserted at the beginning of the segment list,
976 depending on its offset, we have to force a final pass through the
977 loop by demanding that completion sees a pass with no matches; i.e.,
978 all symbols with equiv_built set and no new equivalences found. */
981 add_equivalences (bool *saw_equiv
)
991 for (f
= current_segment
; f
; f
= f
->next
)
993 if (!f
->sym
->equiv_built
)
995 f
->sym
->equiv_built
= 1;
996 seen_one
= find_equivalence (f
);
1006 /* Add a copy of this segment list to the namespace. */
1007 copy_equiv_list_to_ns (current_segment
);
1011 /* Returns the offset necessary to properly align the current equivalence.
1012 Sets *palign to the required alignment. */
1014 static HOST_WIDE_INT
1015 align_segment (unsigned HOST_WIDE_INT
*palign
)
1018 unsigned HOST_WIDE_INT offset
;
1019 unsigned HOST_WIDE_INT max_align
;
1020 unsigned HOST_WIDE_INT this_align
;
1021 unsigned HOST_WIDE_INT this_offset
;
1025 for (s
= current_segment
; s
; s
= s
->next
)
1027 this_align
= TYPE_ALIGN_UNIT (s
->field
);
1028 if (s
->offset
& (this_align
- 1))
1030 /* Field is misaligned. */
1031 this_offset
= this_align
- ((s
->offset
+ offset
) & (this_align
- 1));
1032 if (this_offset
& (max_align
- 1))
1034 /* Aligning this field would misalign a previous field. */
1035 gfc_error ("The equivalence set for variable '%s' "
1036 "declared at %L violates alignment requirements",
1037 s
->sym
->name
, &s
->sym
->declared_at
);
1039 offset
+= this_offset
;
1041 max_align
= this_align
;
1044 *palign
= max_align
;
1049 /* Adjust segment offsets by the given amount. */
1052 apply_segment_offset (segment_info
*s
, HOST_WIDE_INT offset
)
1054 for (; s
; s
= s
->next
)
1055 s
->offset
+= offset
;
1059 /* Lay out a symbol in a common block. If the symbol has already been seen
1060 then check the location is consistent. Otherwise create segments
1061 for that symbol and all the symbols equivalenced with it. */
1063 /* Translate a single common block. */
1066 translate_common (gfc_common_head
*common
, gfc_symbol
*var_list
)
1070 segment_info
*common_segment
;
1071 HOST_WIDE_INT offset
;
1072 HOST_WIDE_INT current_offset
;
1073 unsigned HOST_WIDE_INT align
;
1076 common_segment
= NULL
;
1082 /* Add symbols to the segment. */
1083 for (sym
= var_list
; sym
; sym
= sym
->common_next
)
1085 current_segment
= common_segment
;
1086 s
= find_segment_info (sym
);
1088 /* Symbol has already been added via an equivalence. Multiple
1089 use associations of the same common block result in equiv_built
1090 being set but no information about the symbol in the segment. */
1091 if (s
&& sym
->equiv_built
)
1093 /* Ensure the current location is properly aligned. */
1094 align
= TYPE_ALIGN_UNIT (s
->field
);
1095 current_offset
= (current_offset
+ align
- 1) &~ (align
- 1);
1097 /* Verify that it ended up where we expect it. */
1098 if (s
->offset
!= current_offset
)
1100 gfc_error ("Equivalence for '%s' does not match ordering of "
1101 "COMMON '%s' at %L", sym
->name
,
1102 common
->name
, &common
->where
);
1107 /* A symbol we haven't seen before. */
1108 s
= current_segment
= get_segment_info (sym
, current_offset
);
1110 /* Add all objects directly or indirectly equivalenced with this
1112 add_equivalences (&saw_equiv
);
1114 if (current_segment
->offset
< 0)
1115 gfc_error ("The equivalence set for '%s' cause an invalid "
1116 "extension to COMMON '%s' at %L", sym
->name
,
1117 common
->name
, &common
->where
);
1119 if (gfc_option
.flag_align_commons
)
1120 offset
= align_segment (&align
);
1124 /* The required offset conflicts with previous alignment
1125 requirements. Insert padding immediately before this
1127 if (gfc_option
.warn_align_commons
)
1129 if (strcmp (common
->name
, BLANK_COMMON_NAME
))
1130 gfc_warning ("Padding of %d bytes required before '%s' in "
1131 "COMMON '%s' at %L; reorder elements or use "
1132 "-fno-align-commons", (int)offset
,
1133 s
->sym
->name
, common
->name
, &common
->where
);
1135 gfc_warning ("Padding of %d bytes required before '%s' in "
1136 "COMMON at %L; reorder elements or use "
1137 "-fno-align-commons", (int)offset
,
1138 s
->sym
->name
, &common
->where
);
1142 /* Apply the offset to the new segments. */
1143 apply_segment_offset (current_segment
, offset
);
1144 current_offset
+= offset
;
1146 /* Add the new segments to the common block. */
1147 common_segment
= add_segments (common_segment
, current_segment
);
1150 /* The offset of the next common variable. */
1151 current_offset
+= s
->length
;
1154 if (common_segment
== NULL
)
1156 gfc_error ("COMMON '%s' at %L does not exist",
1157 common
->name
, &common
->where
);
1161 if (common_segment
->offset
!= 0 && gfc_option
.warn_align_commons
)
1163 if (strcmp (common
->name
, BLANK_COMMON_NAME
))
1164 gfc_warning ("COMMON '%s' at %L requires %d bytes of padding; "
1165 "reorder elements or use -fno-align-commons",
1166 common
->name
, &common
->where
, (int)common_segment
->offset
);
1168 gfc_warning ("COMMON at %L requires %d bytes of padding; "
1169 "reorder elements or use -fno-align-commons",
1170 &common
->where
, (int)common_segment
->offset
);
1173 create_common (common
, common_segment
, saw_equiv
);
1177 /* Create a new block for each merged equivalence list. */
1180 finish_equivalences (gfc_namespace
*ns
)
1184 gfc_common_head
* c
;
1185 HOST_WIDE_INT offset
;
1186 unsigned HOST_WIDE_INT align
;
1189 for (z
= ns
->equiv
; z
; z
= z
->next
)
1190 for (y
= z
->eq
; y
; y
= y
->eq
)
1194 sym
= z
->expr
->symtree
->n
.sym
;
1195 current_segment
= get_segment_info (sym
, 0);
1197 /* All objects directly or indirectly equivalenced with this
1199 add_equivalences (&dummy
);
1201 /* Align the block. */
1202 offset
= align_segment (&align
);
1204 /* Ensure all offsets are positive. */
1205 offset
-= current_segment
->offset
& ~(align
- 1);
1207 apply_segment_offset (current_segment
, offset
);
1209 /* Create the decl. If this is a module equivalence, it has a
1210 unique name, pointed to by z->module. This is written to a
1211 gfc_common_header to push create_common into using
1212 build_common_decl, so that the equivalence appears as an
1213 external symbol. Otherwise, a local declaration is built using
1214 build_equiv_decl. */
1217 c
= gfc_get_common_head ();
1218 /* We've lost the real location, so use the location of the
1219 enclosing procedure. */
1220 c
->where
= ns
->proc_name
->declared_at
;
1221 strcpy (c
->name
, z
->module
);
1226 create_common (c
, current_segment
, true);
1232 /* Work function for translating a named common block. */
1235 named_common (gfc_symtree
*st
)
1237 translate_common (st
->n
.common
, st
->n
.common
->head
);
1241 /* Translate the common blocks in a namespace. Unlike other variables,
1242 these have to be created before code, because the backend_decl depends
1243 on the rest of the common block. */
1246 gfc_trans_common (gfc_namespace
*ns
)
1250 /* Translate the blank common block. */
1251 if (ns
->blank_common
.head
!= NULL
)
1253 c
= gfc_get_common_head ();
1254 c
->where
= ns
->blank_common
.head
->common_head
->where
;
1255 strcpy (c
->name
, BLANK_COMMON_NAME
);
1256 translate_common (c
, ns
->blank_common
.head
);
1259 /* Translate all named common blocks. */
1260 gfc_traverse_symtree (ns
->common_root
, named_common
);
1262 /* Translate local equivalence. */
1263 finish_equivalences (ns
);
1265 /* Commit the newly created symbols for common blocks and module
1267 gfc_commit_symbols ();