1 /* C-compiler utilities for types and variables storage layout
2 Copyright (C) 1987, 88, 92-97, 1998 Free Software Foundation, Inc.
4 This file is part of GNU CC.
6 GNU CC is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2, or (at your option)
11 GNU CC is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
16 You should have received a copy of the GNU General Public License
17 along with GNU CC; see the file COPYING. If not, write to
18 the Free Software Foundation, 59 Temple Place - Suite 330,
19 Boston, MA 02111-1307, USA. */
34 #define CEIL(x,y) (((x) + (y) - 1) / (y))
36 /* Data type for the expressions representing sizes of data types.
37 It is the first integer type laid out. */
39 struct sizetype_tab sizetype_tab
;
41 /* If nonzero, this is an upper limit on alignment of structure fields.
42 The value is measured in bits. */
43 int maximum_field_alignment
;
45 /* If non-zero, the alignment of a bitstring or (power-)set value, in bits.
46 May be overridden by front-ends. */
47 int set_alignment
= 0;
49 static tree layout_record
PROTO((tree
));
50 static void layout_union
PROTO((tree
));
52 /* SAVE_EXPRs for sizes of types and decls, waiting to be expanded. */
54 static tree pending_sizes
;
56 /* Nonzero means cannot safely call expand_expr now,
57 so put variable sizes onto `pending_sizes' instead. */
59 int immediate_size_expand
;
64 tree chain
= pending_sizes
;
67 /* Put each SAVE_EXPR into the current function. */
68 for (t
= chain
; t
; t
= TREE_CHAIN (t
))
69 SAVE_EXPR_CONTEXT (TREE_VALUE (t
)) = current_function_decl
;
75 put_pending_sizes (chain
)
81 pending_sizes
= chain
;
84 /* Given a size SIZE that may not be a constant, return a SAVE_EXPR
85 to serve as the actual size-expression for a type or decl. */
91 /* If the language-processor is to take responsibility for variable-sized
92 items (e.g., languages which have elaboration procedures like Ada),
93 just return SIZE unchanged. Likewise for self-referential sizes. */
94 if (TREE_CONSTANT (size
)
95 || global_bindings_p () < 0 || contains_placeholder_p (size
))
98 size
= save_expr (size
);
100 if (global_bindings_p ())
102 if (TREE_CONSTANT (size
))
103 error ("type size can't be explicitly evaluated");
105 error ("variable-size type declared outside of any function");
110 if (immediate_size_expand
)
111 /* NULL_RTX is not defined; neither is the rtx type.
112 Also, we would like to pass const0_rtx here, but don't have it. */
113 expand_expr (size
, expand_expr (integer_zero_node
, NULL_PTR
, VOIDmode
, 0),
115 else if (current_function
&& current_function
->x_dont_save_pending_sizes_p
)
116 /* The front-end doesn't want us to keep a list of the expressions
117 that determine sizes for variable size objects. */
120 pending_sizes
= tree_cons (NULL_TREE
, size
, pending_sizes
);
125 #ifndef MAX_FIXED_MODE_SIZE
126 #define MAX_FIXED_MODE_SIZE GET_MODE_BITSIZE (DImode)
129 /* Return the machine mode to use for a nonscalar of SIZE bits.
130 The mode must be in class CLASS, and have exactly that many bits.
131 If LIMIT is nonzero, modes of wider than MAX_FIXED_MODE_SIZE will not
135 mode_for_size (size
, class, limit
)
137 enum mode_class
class;
140 register enum machine_mode mode
;
142 if (limit
&& size
> (unsigned int)(MAX_FIXED_MODE_SIZE
))
145 /* Get the first mode which has this size, in the specified class. */
146 for (mode
= GET_CLASS_NARROWEST_MODE (class); mode
!= VOIDmode
;
147 mode
= GET_MODE_WIDER_MODE (mode
))
148 if ((unsigned int)GET_MODE_BITSIZE (mode
) == size
)
154 /* Similar, but never return BLKmode; return the narrowest mode that
155 contains at least the requested number of bits. */
158 smallest_mode_for_size (size
, class)
160 enum mode_class
class;
162 register enum machine_mode mode
;
164 /* Get the first mode which has at least this size, in the
166 for (mode
= GET_CLASS_NARROWEST_MODE (class); mode
!= VOIDmode
;
167 mode
= GET_MODE_WIDER_MODE (mode
))
168 if ((unsigned int)GET_MODE_BITSIZE (mode
) >= size
)
174 /* Find an integer mode of the exact same size, or BLKmode on failure. */
177 int_mode_for_mode (mode
)
178 enum machine_mode mode
;
180 switch (GET_MODE_CLASS (mode
))
183 case MODE_PARTIAL_INT
:
186 case MODE_COMPLEX_INT
:
187 case MODE_COMPLEX_FLOAT
:
189 mode
= mode_for_size (GET_MODE_BITSIZE (mode
), MODE_INT
, 0);
205 /* Return the value of VALUE, rounded up to a multiple of DIVISOR. */
208 round_up (value
, divisor
)
212 return size_binop (MULT_EXPR
,
213 size_binop (CEIL_DIV_EXPR
, value
, size_int (divisor
)),
217 /* Set the size, mode and alignment of a ..._DECL node.
218 TYPE_DECL does need this for C++.
219 Note that LABEL_DECL and CONST_DECL nodes do not need this,
220 and FUNCTION_DECL nodes have them set up in a special (and simple) way.
221 Don't call layout_decl for them.
223 KNOWN_ALIGN is the amount of alignment we can assume this
224 decl has with no special effort. It is relevant only for FIELD_DECLs
225 and depends on the previous fields.
226 All that matters about KNOWN_ALIGN is which powers of 2 divide it.
227 If KNOWN_ALIGN is 0, it means, "as much alignment as you like":
228 the record will be aligned to suit. */
231 layout_decl (decl
, known_align
)
233 unsigned known_align
;
235 register tree type
= TREE_TYPE (decl
);
236 register enum tree_code code
= TREE_CODE (decl
);
237 int spec_size
= DECL_FIELD_SIZE (decl
);
239 if (code
== CONST_DECL
)
242 if (code
!= VAR_DECL
&& code
!= PARM_DECL
&& code
!= RESULT_DECL
243 && code
!= FIELD_DECL
&& code
!= TYPE_DECL
)
246 if (type
== error_mark_node
)
248 type
= void_type_node
;
252 /* Usually the size and mode come from the data type without change. */
254 DECL_MODE (decl
) = TYPE_MODE (type
);
255 TREE_UNSIGNED (decl
) = TREE_UNSIGNED (type
);
256 if (DECL_SIZE (decl
) == 0)
257 DECL_SIZE (decl
) = TYPE_SIZE (type
);
259 if (code
== FIELD_DECL
&& DECL_BIT_FIELD (decl
))
261 if (spec_size
== 0 && DECL_NAME (decl
) != 0)
264 /* Size is specified number of bits. */
265 DECL_SIZE (decl
) = size_int (spec_size
);
267 /* Force alignment required for the data type.
268 But if the decl itself wants greater alignment, don't override that.
269 Likewise, if the decl is packed, don't override it. */
270 else if (DECL_ALIGN (decl
) == 0
271 || (! DECL_PACKED (decl
) && TYPE_ALIGN (type
) > DECL_ALIGN (decl
)))
272 DECL_ALIGN (decl
) = TYPE_ALIGN (type
);
274 /* See if we can use an ordinary integer mode for a bit-field. */
275 /* Conditions are: a fixed size that is correct for another mode
276 and occupying a complete byte or bytes on proper boundary. */
277 if (code
== FIELD_DECL
)
279 DECL_BIT_FIELD_TYPE (decl
) = DECL_BIT_FIELD (decl
) ? type
: 0;
280 if (maximum_field_alignment
!= 0)
281 DECL_ALIGN (decl
) = MIN (DECL_ALIGN (decl
),
282 (unsigned)maximum_field_alignment
);
283 else if (DECL_PACKED (decl
))
284 DECL_ALIGN (decl
) = MIN (DECL_ALIGN (decl
), BITS_PER_UNIT
);
287 if (DECL_BIT_FIELD (decl
)
288 && TYPE_SIZE (type
) != 0
289 && TREE_CODE (TYPE_SIZE (type
)) == INTEGER_CST
290 && GET_MODE_CLASS (TYPE_MODE (type
)) == MODE_INT
)
292 register enum machine_mode xmode
293 = mode_for_size (TREE_INT_CST_LOW (DECL_SIZE (decl
)), MODE_INT
, 1);
296 && known_align
% GET_MODE_ALIGNMENT (xmode
) == 0)
298 DECL_ALIGN (decl
) = MAX ((unsigned) GET_MODE_ALIGNMENT (xmode
),
300 DECL_MODE (decl
) = xmode
;
301 DECL_SIZE (decl
) = size_int (GET_MODE_BITSIZE (xmode
));
302 /* This no longer needs to be accessed as a bit field. */
303 DECL_BIT_FIELD (decl
) = 0;
307 /* Turn off DECL_BIT_FIELD if we won't need it set. */
308 if (DECL_BIT_FIELD (decl
) && TYPE_MODE (type
) == BLKmode
309 && known_align
% TYPE_ALIGN (type
) == 0
310 && DECL_SIZE (decl
) != 0
311 && (TREE_CODE (DECL_SIZE (decl
)) != INTEGER_CST
312 || (TREE_INT_CST_LOW (DECL_SIZE (decl
)) % BITS_PER_UNIT
) == 0)
313 && DECL_ALIGN (decl
) >= TYPE_ALIGN (type
))
314 DECL_BIT_FIELD (decl
) = 0;
316 /* Evaluate nonconstant size only once, either now or as soon as safe. */
317 if (DECL_SIZE (decl
) != 0 && TREE_CODE (DECL_SIZE (decl
)) != INTEGER_CST
)
318 DECL_SIZE (decl
) = variable_size (DECL_SIZE (decl
));
321 /* Lay out a RECORD_TYPE type (a C struct).
322 This means laying out the fields, determining their positions,
323 and computing the overall size and required alignment of the record.
324 Note that if you set the TYPE_ALIGN before calling this
325 then the struct is aligned to at least that boundary.
327 If the type has basetypes, you must call layout_basetypes
328 before calling this function.
330 The return value is a list of static members of the record.
331 They still need to be laid out. */
338 unsigned record_align
= MAX (BITS_PER_UNIT
, TYPE_ALIGN (rec
));
339 /* These must be laid out *after* the record is. */
340 tree pending_statics
= NULL_TREE
;
341 /* Record size so far is CONST_SIZE + VAR_SIZE bits,
342 where CONST_SIZE is an integer
343 and VAR_SIZE is a tree expression.
344 If VAR_SIZE is null, the size is just CONST_SIZE.
345 Naturally we try to avoid using VAR_SIZE. */
346 register HOST_WIDE_INT const_size
= 0;
347 register tree var_size
= 0;
348 /* Once we start using VAR_SIZE, this is the maximum alignment
349 that we know VAR_SIZE has. */
350 register int var_align
= BITS_PER_UNIT
;
352 #ifdef STRUCTURE_SIZE_BOUNDARY
353 /* Packed structures don't need to have minimum size. */
354 if (! TYPE_PACKED (rec
))
355 record_align
= MAX (record_align
, STRUCTURE_SIZE_BOUNDARY
);
358 for (field
= TYPE_FIELDS (rec
); field
; field
= TREE_CHAIN (field
))
360 register int known_align
= var_size
? var_align
: const_size
;
361 register int desired_align
= 0;
363 /* If FIELD is static, then treat it like a separate variable,
364 not really like a structure field.
365 If it is a FUNCTION_DECL, it's a method.
366 In both cases, all we do is lay out the decl,
367 and we do it *after* the record is laid out. */
369 if (TREE_CODE (field
) == VAR_DECL
)
371 pending_statics
= tree_cons (NULL_TREE
, field
, pending_statics
);
374 /* Enumerators and enum types which are local to this class need not
375 be laid out. Likewise for initialized constant fields. */
376 if (TREE_CODE (field
) != FIELD_DECL
)
379 /* Lay out the field so we know what alignment it needs.
380 For a packed field, use the alignment as specified,
381 disregarding what the type would want. */
382 if (DECL_PACKED (field
))
383 desired_align
= DECL_ALIGN (field
);
384 layout_decl (field
, known_align
);
385 if (! DECL_PACKED (field
))
386 desired_align
= DECL_ALIGN (field
);
387 /* Some targets (i.e. VMS) limit struct field alignment
388 to a lower boundary than alignment of variables. */
389 #ifdef BIGGEST_FIELD_ALIGNMENT
390 desired_align
= MIN (desired_align
, BIGGEST_FIELD_ALIGNMENT
);
392 #ifdef ADJUST_FIELD_ALIGN
393 desired_align
= ADJUST_FIELD_ALIGN (field
, desired_align
);
396 /* Record must have at least as much alignment as any field.
397 Otherwise, the alignment of the field within the record
400 #ifndef PCC_BITFIELD_TYPE_MATTERS
401 record_align
= MAX (record_align
, desired_align
);
403 if (PCC_BITFIELD_TYPE_MATTERS
&& TREE_TYPE (field
) != error_mark_node
404 && DECL_BIT_FIELD_TYPE (field
)
405 && ! integer_zerop (TYPE_SIZE (TREE_TYPE (field
))))
407 /* For these machines, a zero-length field does not
408 affect the alignment of the structure as a whole.
409 It does, however, affect the alignment of the next field
410 within the structure. */
411 if (! integer_zerop (DECL_SIZE (field
)))
412 record_align
= MAX ((int)record_align
, desired_align
);
413 else if (! DECL_PACKED (field
))
414 desired_align
= TYPE_ALIGN (TREE_TYPE (field
));
415 /* A named bit field of declared type `int'
416 forces the entire structure to have `int' alignment. */
417 if (DECL_NAME (field
) != 0)
419 int type_align
= TYPE_ALIGN (TREE_TYPE (field
));
420 if (maximum_field_alignment
!= 0)
421 type_align
= MIN (type_align
, maximum_field_alignment
);
422 else if (DECL_PACKED (field
))
423 type_align
= MIN (type_align
, BITS_PER_UNIT
);
425 record_align
= MAX ((int)record_align
, type_align
);
429 record_align
= MAX ((int)record_align
, desired_align
);
432 /* Does this field automatically have alignment it needs
433 by virtue of the fields that precede it and the record's
436 if (const_size
% desired_align
!= 0
437 || (var_align
% desired_align
!= 0
440 /* No, we need to skip space before this field.
441 Bump the cumulative size to multiple of field alignment. */
444 || var_align
% desired_align
== 0)
446 = CEIL (const_size
, desired_align
) * desired_align
;
450 var_size
= size_binop (PLUS_EXPR
, var_size
,
451 bitsize_int (const_size
, 0L));
453 var_size
= round_up (var_size
, desired_align
);
454 var_align
= MIN (var_align
, desired_align
);
458 #ifdef PCC_BITFIELD_TYPE_MATTERS
459 if (PCC_BITFIELD_TYPE_MATTERS
460 && TREE_CODE (field
) == FIELD_DECL
461 && TREE_TYPE (field
) != error_mark_node
462 && DECL_BIT_FIELD_TYPE (field
)
463 && !DECL_PACKED (field
)
464 && maximum_field_alignment
== 0
465 && !integer_zerop (DECL_SIZE (field
)))
467 int type_align
= TYPE_ALIGN (TREE_TYPE (field
));
468 register tree dsize
= DECL_SIZE (field
);
469 int field_size
= TREE_INT_CST_LOW (dsize
);
471 /* A bit field may not span more units of alignment of its type
472 than its type itself. Advance to next boundary if necessary. */
473 if (((const_size
+ field_size
+ type_align
- 1) / type_align
474 - const_size
/ type_align
)
475 > TREE_INT_CST_LOW (TYPE_SIZE (TREE_TYPE (field
))) / type_align
)
476 const_size
= CEIL (const_size
, type_align
) * type_align
;
480 /* No existing machine description uses this parameter.
481 So I have made it in this aspect identical to PCC_BITFIELD_TYPE_MATTERS. */
482 #ifdef BITFIELD_NBYTES_LIMITED
483 if (BITFIELD_NBYTES_LIMITED
484 && TREE_CODE (field
) == FIELD_DECL
485 && TREE_TYPE (field
) != error_mark_node
486 && DECL_BIT_FIELD_TYPE (field
)
487 && !DECL_PACKED (field
)
488 && !integer_zerop (DECL_SIZE (field
)))
490 int type_align
= TYPE_ALIGN (TREE_TYPE (field
));
491 register tree dsize
= DECL_SIZE (field
);
492 int field_size
= TREE_INT_CST_LOW (dsize
);
494 if (maximum_field_alignment
!= 0)
495 type_align
= MIN (type_align
, maximum_field_alignment
);
496 /* ??? This test is opposite the test in the containing if
497 statement, so this code is unreachable currently. */
498 else if (DECL_PACKED (field
))
499 type_align
= MIN (type_align
, BITS_PER_UNIT
);
501 /* A bit field may not span the unit of alignment of its type.
502 Advance to next boundary if necessary. */
503 /* ??? This code should match the code above for the
504 PCC_BITFIELD_TYPE_MATTERS case. */
505 if (const_size
/ type_align
506 != (const_size
+ field_size
- 1) / type_align
)
507 const_size
= CEIL (const_size
, type_align
) * type_align
;
511 /* Size so far becomes the position of this field. */
513 if (var_size
&& const_size
)
514 DECL_FIELD_BITPOS (field
)
515 = size_binop (PLUS_EXPR
, var_size
, bitsize_int (const_size
, 0L));
517 DECL_FIELD_BITPOS (field
) = var_size
;
520 DECL_FIELD_BITPOS (field
) = size_int (const_size
);
522 /* If this field ended up more aligned than we thought it
523 would be (we approximate this by seeing if its position
524 changed), lay out the field again; perhaps we can use an
525 integral mode for it now. */
526 if (known_align
!= const_size
)
527 layout_decl (field
, const_size
);
530 /* Now add size of this field to the size of the record. */
533 register tree dsize
= DECL_SIZE (field
);
535 /* This can happen when we have an invalid nested struct definition,
536 such as struct j { struct j { int i; } }. The error message is
537 printed in finish_struct. */
540 else if (TREE_CODE (dsize
) == INTEGER_CST
541 && ! TREE_CONSTANT_OVERFLOW (dsize
)
542 && TREE_INT_CST_HIGH (dsize
) == 0
543 && TREE_INT_CST_LOW (dsize
) + const_size
>= const_size
)
544 /* Use const_size if there's no overflow. */
545 const_size
+= TREE_INT_CST_LOW (dsize
);
551 var_size
= size_binop (PLUS_EXPR
, var_size
, dsize
);
556 /* Work out the total size and alignment of the record
557 as one expression and store in the record type.
558 Round it up to a multiple of the record's alignment. */
562 TYPE_SIZE (rec
) = size_int (const_size
);
568 = size_binop (PLUS_EXPR
, var_size
, bitsize_int (const_size
, 0L));
569 TYPE_SIZE (rec
) = var_size
;
572 /* Determine the desired alignment. */
573 #ifdef ROUND_TYPE_ALIGN
574 TYPE_ALIGN (rec
) = ROUND_TYPE_ALIGN (rec
, TYPE_ALIGN (rec
), record_align
);
576 TYPE_ALIGN (rec
) = MAX (TYPE_ALIGN (rec
), record_align
);
579 /* Record the un-rounded size in the binfo node. But first we check
580 the size of TYPE_BINFO to make sure that BINFO_SIZE is available. */
581 if (TYPE_BINFO (rec
) && TREE_VEC_LENGTH (TYPE_BINFO (rec
)) > 6)
582 TYPE_BINFO_SIZE (rec
) = TYPE_SIZE (rec
);
584 #ifdef ROUND_TYPE_SIZE
585 TYPE_SIZE (rec
) = ROUND_TYPE_SIZE (rec
, TYPE_SIZE (rec
), TYPE_ALIGN (rec
));
587 /* Round the size up to be a multiple of the required alignment */
588 TYPE_SIZE (rec
) = round_up (TYPE_SIZE (rec
), TYPE_ALIGN (rec
));
591 return pending_statics
;
594 /* Lay out a UNION_TYPE or QUAL_UNION_TYPE type.
595 Lay out all the fields, set their positions to zero,
596 and compute the size and alignment of the union (maximum of any field).
597 Note that if you set the TYPE_ALIGN before calling this
598 then the union align is aligned to at least that boundary. */
605 unsigned union_align
= BITS_PER_UNIT
;
607 /* The size of the union, based on the fields scanned so far,
608 is max (CONST_SIZE, VAR_SIZE).
609 VAR_SIZE may be null; then CONST_SIZE by itself is the size. */
610 register int const_size
= 0;
611 register tree var_size
= 0;
613 #ifdef STRUCTURE_SIZE_BOUNDARY
614 /* Packed structures don't need to have minimum size. */
615 if (! TYPE_PACKED (rec
))
616 union_align
= STRUCTURE_SIZE_BOUNDARY
;
619 /* If this is a QUAL_UNION_TYPE, we want to process the fields in
620 the reverse order in building the COND_EXPR that denotes its
621 size. We reverse them again later. */
622 if (TREE_CODE (rec
) == QUAL_UNION_TYPE
)
623 TYPE_FIELDS (rec
) = nreverse (TYPE_FIELDS (rec
));
625 for (field
= TYPE_FIELDS (rec
); field
; field
= TREE_CHAIN (field
))
627 /* Enums which are local to this class need not be laid out. */
628 if (TREE_CODE (field
) == CONST_DECL
|| TREE_CODE (field
) == TYPE_DECL
)
631 layout_decl (field
, 0);
632 DECL_FIELD_BITPOS (field
) = bitsize_int (0L, 0L);
634 /* Union must be at least as aligned as any field requires. */
636 union_align
= MAX (union_align
, DECL_ALIGN (field
));
638 #ifdef PCC_BITFIELD_TYPE_MATTERS
639 /* On the m88000, a bit field of declare type `int'
640 forces the entire union to have `int' alignment. */
641 if (PCC_BITFIELD_TYPE_MATTERS
&& DECL_BIT_FIELD_TYPE (field
))
642 union_align
= MAX (union_align
, TYPE_ALIGN (TREE_TYPE (field
)));
645 if (TREE_CODE (rec
) == UNION_TYPE
)
647 /* Set union_size to max (decl_size, union_size).
648 There are more and less general ways to do this.
649 Use only CONST_SIZE unless forced to use VAR_SIZE. */
651 if (TREE_CODE (DECL_SIZE (field
)) == INTEGER_CST
)
653 = MAX (const_size
, TREE_INT_CST_LOW (DECL_SIZE (field
)));
654 else if (var_size
== 0)
655 var_size
= DECL_SIZE (field
);
657 var_size
= size_binop (MAX_EXPR
, var_size
, DECL_SIZE (field
));
659 else if (TREE_CODE (rec
) == QUAL_UNION_TYPE
)
660 var_size
= fold (build (COND_EXPR
, sizetype
, DECL_QUALIFIER (field
),
662 var_size
? var_size
: bitsize_int (0L, 0L)));
665 if (TREE_CODE (rec
) == QUAL_UNION_TYPE
)
666 TYPE_FIELDS (rec
) = nreverse (TYPE_FIELDS (rec
));
668 /* Determine the ultimate size of the union (in bytes). */
669 if (NULL
== var_size
)
670 TYPE_SIZE (rec
) = bitsize_int (CEIL (const_size
, BITS_PER_UNIT
)
671 * BITS_PER_UNIT
, 0L);
672 else if (const_size
== 0)
673 TYPE_SIZE (rec
) = var_size
;
675 TYPE_SIZE (rec
) = size_binop (MAX_EXPR
, var_size
,
676 round_up (bitsize_int (const_size
, 0L),
679 /* Determine the desired alignment. */
680 #ifdef ROUND_TYPE_ALIGN
681 TYPE_ALIGN (rec
) = ROUND_TYPE_ALIGN (rec
, TYPE_ALIGN (rec
), union_align
);
683 TYPE_ALIGN (rec
) = MAX (TYPE_ALIGN (rec
), union_align
);
686 #ifdef ROUND_TYPE_SIZE
687 TYPE_SIZE (rec
) = ROUND_TYPE_SIZE (rec
, TYPE_SIZE (rec
), TYPE_ALIGN (rec
));
689 /* Round the size up to be a multiple of the required alignment */
690 TYPE_SIZE (rec
) = round_up (TYPE_SIZE (rec
), TYPE_ALIGN (rec
));
694 /* Calculate the mode, size, and alignment for TYPE.
695 For an array type, calculate the element separation as well.
696 Record TYPE on the chain of permanent or temporary types
697 so that dbxout will find out about it.
699 TYPE_SIZE of a type is nonzero if the type has been laid out already.
700 layout_type does nothing on such a type.
702 If the type is incomplete, its TYPE_SIZE remains zero. */
709 tree pending_statics
;
714 /* Do nothing if type has been laid out before. */
715 if (TYPE_SIZE (type
))
718 /* Make sure all nodes we allocate are not momentary;
719 they must last past the current statement. */
720 old
= suspend_momentary ();
722 /* Put all our nodes into the same obstack as the type. Also,
723 make expressions saveable (this is a no-op for permanent types). */
725 push_obstacks (TYPE_OBSTACK (type
), TYPE_OBSTACK (type
));
726 saveable_allocation ();
728 switch (TREE_CODE (type
))
731 /* This kind of type is the responsibility
732 of the language-specific code. */
735 case BOOLEAN_TYPE
: /* Used for Java, Pascal, and Chill. */
736 if (TYPE_PRECISION (type
) == 0)
737 TYPE_PRECISION (type
) = 1; /* default to one byte/boolean. */
738 /* ... fall through ... */
743 if (TREE_CODE (TYPE_MIN_VALUE (type
)) == INTEGER_CST
744 && tree_int_cst_sgn (TYPE_MIN_VALUE (type
)) >= 0)
745 TREE_UNSIGNED (type
) = 1;
747 TYPE_MODE (type
) = smallest_mode_for_size (TYPE_PRECISION (type
),
749 TYPE_SIZE (type
) = bitsize_int (GET_MODE_BITSIZE (TYPE_MODE (type
)), 0L);
750 TYPE_SIZE_UNIT (type
) = size_int (GET_MODE_SIZE (TYPE_MODE (type
)));
754 TYPE_MODE (type
) = mode_for_size (TYPE_PRECISION (type
), MODE_FLOAT
, 0);
755 TYPE_SIZE (type
) = bitsize_int (GET_MODE_BITSIZE (TYPE_MODE (type
)), 0L);
756 TYPE_SIZE_UNIT (type
) = size_int (GET_MODE_SIZE (TYPE_MODE (type
)));
760 TREE_UNSIGNED (type
) = TREE_UNSIGNED (TREE_TYPE (type
));
762 = mode_for_size (2 * TYPE_PRECISION (TREE_TYPE (type
)),
763 (TREE_CODE (TREE_TYPE (type
)) == INTEGER_TYPE
764 ? MODE_COMPLEX_INT
: MODE_COMPLEX_FLOAT
),
766 TYPE_SIZE (type
) = bitsize_int (GET_MODE_BITSIZE (TYPE_MODE (type
)), 0L);
767 TYPE_SIZE_UNIT (type
) = size_int (GET_MODE_SIZE (TYPE_MODE (type
)));
771 TYPE_SIZE (type
) = size_zero_node
;
772 TYPE_SIZE_UNIT (type
) = size_zero_node
;
773 TYPE_ALIGN (type
) = 1;
774 TYPE_MODE (type
) = VOIDmode
;
778 TYPE_SIZE (type
) = bitsize_int (POINTER_SIZE
, 0L);
779 TYPE_SIZE_UNIT (type
) = size_int (POINTER_SIZE
/ BITS_PER_UNIT
);
780 TYPE_MODE (type
) = ptr_mode
;
785 TYPE_MODE (type
) = mode_for_size (2 * POINTER_SIZE
, MODE_INT
, 0);
786 TYPE_SIZE (type
) = bitsize_int (2 * POINTER_SIZE
, 0);
787 TYPE_SIZE_UNIT (type
) = size_int ((2 * POINTER_SIZE
) / BITS_PER_UNIT
);
792 TYPE_MODE (type
) = ptr_mode
;
793 TYPE_SIZE (type
) = bitsize_int (POINTER_SIZE
, 0L);
794 TYPE_SIZE_UNIT (type
) = size_int (POINTER_SIZE
/ BITS_PER_UNIT
);
795 TREE_UNSIGNED (type
) = 1;
796 TYPE_PRECISION (type
) = POINTER_SIZE
;
801 register tree index
= TYPE_DOMAIN (type
);
802 register tree element
= TREE_TYPE (type
);
804 build_pointer_type (element
);
806 /* We need to know both bounds in order to compute the size. */
807 if (index
&& TYPE_MAX_VALUE (index
) && TYPE_MIN_VALUE (index
)
808 && TYPE_SIZE (element
))
810 tree ub
= TYPE_MAX_VALUE (index
);
811 tree lb
= TYPE_MIN_VALUE (index
);
815 /* If UB is max (lb - 1, x), remove the MAX_EXPR since the
816 test for negative below covers it. */
817 if (TREE_CODE (ub
) == MAX_EXPR
818 && TREE_CODE (TREE_OPERAND (ub
, 0)) == MINUS_EXPR
819 && integer_onep (TREE_OPERAND (TREE_OPERAND (ub
, 0), 1))
820 && operand_equal_p (TREE_OPERAND (TREE_OPERAND (ub
, 0), 0),
822 ub
= TREE_OPERAND (ub
, 1);
823 else if (TREE_CODE (ub
) == MAX_EXPR
824 && TREE_CODE (TREE_OPERAND (ub
, 1)) == MINUS_EXPR
825 && integer_onep (TREE_OPERAND (TREE_OPERAND (ub
, 1), 1))
826 && operand_equal_p (TREE_OPERAND (TREE_OPERAND (ub
, 1),
829 ub
= TREE_OPERAND (ub
, 0);
831 /* The initial subtraction should happen in the original type so
832 that (possible) negative values are handled appropriately. */
833 length
= size_binop (PLUS_EXPR
, size_one_node
,
834 fold (build (MINUS_EXPR
, TREE_TYPE (lb
),
837 /* If neither bound is a constant and sizetype is signed, make
838 sure the size is never negative. We should really do this
839 if *either* bound is non-constant, but this is the best
840 compromise between C and Ada. */
841 if (! TREE_UNSIGNED (sizetype
)
842 && TREE_CODE (TYPE_MIN_VALUE (index
)) != INTEGER_CST
843 && TREE_CODE (TYPE_MAX_VALUE (index
)) != INTEGER_CST
)
844 length
= size_binop (MAX_EXPR
, length
, size_zero_node
);
846 /* Special handling for arrays of bits (for Chill). */
847 element_size
= TYPE_SIZE (element
);
848 if (TYPE_PACKED (type
) && INTEGRAL_TYPE_P (element
))
850 HOST_WIDE_INT maxvalue
, minvalue
;
851 maxvalue
= TREE_INT_CST_LOW (TYPE_MAX_VALUE (element
));
852 minvalue
= TREE_INT_CST_LOW (TYPE_MIN_VALUE (element
));
853 if (maxvalue
- minvalue
== 1
854 && (maxvalue
== 1 || maxvalue
== 0))
855 element_size
= integer_one_node
;
858 TYPE_SIZE (type
) = size_binop (MULT_EXPR
, element_size
, length
);
860 /* If we know the size of the element, calculate the total
861 size directly, rather than do some division thing below.
862 This optimization helps Fortran assumed-size arrays
863 (where the size of the array is determined at runtime)
865 Note that we can't do this in the case where the size of
866 the elements is one bit since TYPE_SIZE_UNIT cannot be
867 set correctly in that case. */
868 if (TYPE_SIZE_UNIT (element
) != 0
869 && element_size
!= integer_one_node
)
871 TYPE_SIZE_UNIT (type
)
872 = size_binop (MULT_EXPR
, TYPE_SIZE_UNIT (element
), length
);
876 /* Now round the alignment and size,
877 using machine-dependent criteria if any. */
879 #ifdef ROUND_TYPE_ALIGN
881 = ROUND_TYPE_ALIGN (type
, TYPE_ALIGN (element
), BITS_PER_UNIT
);
883 TYPE_ALIGN (type
) = MAX (TYPE_ALIGN (element
), BITS_PER_UNIT
);
886 #ifdef ROUND_TYPE_SIZE
887 if (TYPE_SIZE (type
) != 0)
890 tmp
= ROUND_TYPE_SIZE (type
, TYPE_SIZE (type
), TYPE_ALIGN (type
));
891 /* If the rounding changed the size of the type, remove any
892 pre-calculated TYPE_SIZE_UNIT. */
893 if (simple_cst_equal (TYPE_SIZE (type
), tmp
) != 1)
894 TYPE_SIZE_UNIT (type
) = NULL
;
895 TYPE_SIZE (type
) = tmp
;
899 TYPE_MODE (type
) = BLKmode
;
900 if (TYPE_SIZE (type
) != 0
901 && TREE_CODE (TYPE_SIZE (type
)) == INTEGER_CST
902 /* BLKmode elements force BLKmode aggregate;
903 else extract/store fields may lose. */
904 && (TYPE_MODE (TREE_TYPE (type
)) != BLKmode
905 || TYPE_NO_FORCE_BLK (TREE_TYPE (type
))))
908 = mode_for_size (TREE_INT_CST_LOW (TYPE_SIZE (type
)),
911 if (STRICT_ALIGNMENT
&& TYPE_ALIGN (type
) < BIGGEST_ALIGNMENT
912 && (int)TYPE_ALIGN (type
) < TREE_INT_CST_LOW (TYPE_SIZE (type
))
913 && TYPE_MODE (type
) != BLKmode
)
915 TYPE_NO_FORCE_BLK (type
) = 1;
916 TYPE_MODE (type
) = BLKmode
;
923 pending_statics
= layout_record (type
);
924 TYPE_MODE (type
) = BLKmode
;
925 if (TREE_CODE (TYPE_SIZE (type
)) == INTEGER_CST
)
928 enum machine_mode mode
= VOIDmode
;
930 /* A record which has any BLKmode members must itself be BLKmode;
931 it can't go in a register.
932 Unless the member is BLKmode only because it isn't aligned. */
933 for (field
= TYPE_FIELDS (type
); field
; field
= TREE_CHAIN (field
))
937 if (TREE_CODE (field
) != FIELD_DECL
938 || TREE_CODE (TREE_TYPE (field
)) == ERROR_MARK
)
941 if (TYPE_MODE (TREE_TYPE (field
)) == BLKmode
942 && ! TYPE_NO_FORCE_BLK (TREE_TYPE (field
)))
945 if (TREE_CODE (DECL_FIELD_BITPOS (field
)) != INTEGER_CST
)
948 bitpos
= TREE_INT_CST_LOW (DECL_FIELD_BITPOS (field
));
950 /* Must be BLKmode if any field crosses a word boundary,
951 since extract_bit_field can't handle that in registers. */
952 if (bitpos
/ BITS_PER_WORD
953 != ((TREE_INT_CST_LOW (DECL_SIZE (field
)) + bitpos
- 1)
955 /* But there is no problem if the field is entire words. */
956 && TREE_INT_CST_LOW (DECL_SIZE (field
)) % BITS_PER_WORD
!= 0)
959 /* If this field is the whole struct, remember its mode so
960 that, say, we can put a double in a class into a DF
961 register instead of forcing it to live in the stack. */
962 if (simple_cst_equal (TYPE_SIZE (type
), DECL_SIZE (field
)))
963 mode
= DECL_MODE (field
);
966 if (mode
!= VOIDmode
)
967 /* We only have one real field; use its mode. */
968 TYPE_MODE (type
) = mode
;
971 = mode_for_size (TREE_INT_CST_LOW (TYPE_SIZE (type
)),
974 /* If structure's known alignment is less than
975 what the scalar mode would need, and it matters,
976 then stick with BLKmode. */
978 && ! (TYPE_ALIGN (type
) >= BIGGEST_ALIGNMENT
979 || ((int)TYPE_ALIGN (type
)
980 >= TREE_INT_CST_LOW (TYPE_SIZE (type
)))))
982 if (TYPE_MODE (type
) != BLKmode
)
983 /* If this is the only reason this type is BLKmode,
984 then don't force containing types to be BLKmode. */
985 TYPE_NO_FORCE_BLK (type
) = 1;
986 TYPE_MODE (type
) = BLKmode
;
992 /* Lay out any static members. This is done now
993 because their type may use the record's type. */
994 while (pending_statics
)
996 layout_decl (TREE_VALUE (pending_statics
), 0);
997 pending_statics
= TREE_CHAIN (pending_statics
);
1002 case QUAL_UNION_TYPE
:
1003 layout_union (type
);
1004 TYPE_MODE (type
) = BLKmode
;
1005 if (TREE_CODE (TYPE_SIZE (type
)) == INTEGER_CST
1006 /* If structure's known alignment is less than
1007 what the scalar mode would need, and it matters,
1008 then stick with BLKmode. */
1009 && (! STRICT_ALIGNMENT
1010 || TYPE_ALIGN (type
) >= BIGGEST_ALIGNMENT
1011 || (int)TYPE_ALIGN (type
) >= TREE_INT_CST_LOW (TYPE_SIZE (type
))))
1014 /* A union which has any BLKmode members must itself be BLKmode;
1015 it can't go in a register.
1016 Unless the member is BLKmode only because it isn't aligned. */
1017 for (field
= TYPE_FIELDS (type
); field
; field
= TREE_CHAIN (field
))
1019 if (TREE_CODE (field
) != FIELD_DECL
)
1022 if (TYPE_MODE (TREE_TYPE (field
)) == BLKmode
1023 && ! TYPE_NO_FORCE_BLK (TREE_TYPE (field
)))
1028 = mode_for_size (TREE_INT_CST_LOW (TYPE_SIZE (type
)),
1035 case SET_TYPE
: /* Used by Chill and Pascal. */
1036 if (TREE_CODE (TYPE_MAX_VALUE (TYPE_DOMAIN (type
))) != INTEGER_CST
1037 || TREE_CODE (TYPE_MIN_VALUE (TYPE_DOMAIN (type
))) != INTEGER_CST
)
1041 #ifndef SET_WORD_SIZE
1042 #define SET_WORD_SIZE BITS_PER_WORD
1044 int alignment
= set_alignment
? set_alignment
: SET_WORD_SIZE
;
1046 = (TREE_INT_CST_LOW (TYPE_MAX_VALUE (TYPE_DOMAIN (type
)))
1047 - TREE_INT_CST_LOW (TYPE_MIN_VALUE (TYPE_DOMAIN (type
))) + 1);
1049 = ((size_in_bits
+ alignment
- 1) / alignment
) * alignment
;
1050 if (rounded_size
> alignment
)
1051 TYPE_MODE (type
) = BLKmode
;
1053 TYPE_MODE (type
) = mode_for_size (alignment
, MODE_INT
, 1);
1054 TYPE_SIZE (type
) = bitsize_int (rounded_size
, 0L);
1055 TYPE_SIZE_UNIT (type
) = size_int (rounded_size
/ BITS_PER_UNIT
);
1056 TYPE_ALIGN (type
) = alignment
;
1057 TYPE_PRECISION (type
) = size_in_bits
;
1062 /* The size may vary in different languages, so the language front end
1063 should fill in the size. */
1064 TYPE_ALIGN (type
) = BIGGEST_ALIGNMENT
;
1065 TYPE_MODE (type
) = BLKmode
;
1072 /* Normally, use the alignment corresponding to the mode chosen.
1073 However, where strict alignment is not required, avoid
1074 over-aligning structures, since most compilers do not do this
1077 if (TYPE_MODE (type
) != BLKmode
&& TYPE_MODE (type
) != VOIDmode
1078 && (STRICT_ALIGNMENT
1079 || (TREE_CODE (type
) != RECORD_TYPE
&& TREE_CODE (type
) != UNION_TYPE
1080 && TREE_CODE (type
) != QUAL_UNION_TYPE
1081 && TREE_CODE (type
) != ARRAY_TYPE
)))
1082 TYPE_ALIGN (type
) = GET_MODE_ALIGNMENT (TYPE_MODE (type
));
1084 /* Do machine-dependent extra alignment. */
1085 #ifdef ROUND_TYPE_ALIGN
1087 = ROUND_TYPE_ALIGN (type
, TYPE_ALIGN (type
), BITS_PER_UNIT
);
1090 #ifdef ROUND_TYPE_SIZE
1091 if (TYPE_SIZE (type
) != 0)
1093 = ROUND_TYPE_SIZE (type
, TYPE_SIZE (type
), TYPE_ALIGN (type
));
1096 /* Evaluate nonconstant size only once, either now or as soon as safe. */
1097 if (TYPE_SIZE (type
) != 0 && TREE_CODE (TYPE_SIZE (type
)) != INTEGER_CST
)
1098 TYPE_SIZE (type
) = variable_size (TYPE_SIZE (type
));
1100 /* If we failed to find a simple way to calculate the unit size
1101 of the type above, find it by division. */
1102 if (TYPE_SIZE_UNIT (type
) == 0 && TYPE_SIZE (type
) != 0)
1104 TYPE_SIZE_UNIT (type
) = size_binop (FLOOR_DIV_EXPR
, TYPE_SIZE (type
),
1105 size_int (BITS_PER_UNIT
));
1108 /* Once again evaluate only once, either now or as soon as safe. */
1109 if (TYPE_SIZE_UNIT (type
) != 0
1110 && TREE_CODE (TYPE_SIZE_UNIT (type
)) != INTEGER_CST
)
1111 TYPE_SIZE_UNIT (type
) = variable_size (TYPE_SIZE_UNIT (type
));
1113 /* Also layout any other variants of the type. */
1114 if (TYPE_NEXT_VARIANT (type
)
1115 || type
!= TYPE_MAIN_VARIANT (type
))
1118 /* Record layout info of this variant. */
1119 tree size
= TYPE_SIZE (type
);
1120 tree size_unit
= TYPE_SIZE_UNIT (type
);
1121 int align
= TYPE_ALIGN (type
);
1122 enum machine_mode mode
= TYPE_MODE (type
);
1124 /* Copy it into all variants. */
1125 for (variant
= TYPE_MAIN_VARIANT (type
);
1127 variant
= TYPE_NEXT_VARIANT (variant
))
1129 TYPE_SIZE (variant
) = size
;
1130 TYPE_SIZE_UNIT (variant
) = size_unit
;
1131 TYPE_ALIGN (variant
) = align
;
1132 TYPE_MODE (variant
) = mode
;
1137 resume_momentary (old
);
1140 /* Create and return a type for signed integers of PRECISION bits. */
1143 make_signed_type (precision
)
1146 register tree type
= make_node (INTEGER_TYPE
);
1148 TYPE_PRECISION (type
) = precision
;
1150 /* Create the extreme values based on the number of bits. */
1152 TYPE_MIN_VALUE (type
)
1153 = build_int_2 ((precision
- HOST_BITS_PER_WIDE_INT
> 0
1154 ? 0 : (HOST_WIDE_INT
) (-1) << (precision
- 1)),
1155 (((HOST_WIDE_INT
) (-1)
1156 << (precision
- HOST_BITS_PER_WIDE_INT
- 1 > 0
1157 ? precision
- HOST_BITS_PER_WIDE_INT
- 1
1159 TYPE_MAX_VALUE (type
)
1160 = build_int_2 ((precision
- HOST_BITS_PER_WIDE_INT
> 0
1161 ? -1 : ((HOST_WIDE_INT
) 1 << (precision
- 1)) - 1),
1162 (precision
- HOST_BITS_PER_WIDE_INT
- 1 > 0
1163 ? (((HOST_WIDE_INT
) 1
1164 << (precision
- HOST_BITS_PER_WIDE_INT
- 1))) - 1
1167 /* Give this type's extreme values this type as their type. */
1169 TREE_TYPE (TYPE_MIN_VALUE (type
)) = type
;
1170 TREE_TYPE (TYPE_MAX_VALUE (type
)) = type
;
1172 /* The first type made with this or `make_unsigned_type'
1173 is the type for size values. */
1176 set_sizetype (type
);
1178 /* Lay out the type: set its alignment, size, etc. */
1185 /* Create and return a type for unsigned integers of PRECISION bits. */
1188 make_unsigned_type (precision
)
1191 register tree type
= make_node (INTEGER_TYPE
);
1193 TYPE_PRECISION (type
) = precision
;
1195 /* The first type made with this or `make_signed_type'
1196 is the type for size values. */
1200 TREE_UNSIGNED (type
) = 1;
1201 set_sizetype (type
);
1204 fixup_unsigned_type (type
);
1208 /* Set sizetype to TYPE, and initialize *sizetype accordingly.
1209 Also update the type of any standard type's sizes made so far. */
1215 int oprecision
= TYPE_PRECISION (type
), precision
;
1219 /* The *bitsizetype types use a precision that avoids overflows when
1220 calculating signed sizes / offsets in bits. */
1221 precision
= oprecision
+ BITS_PER_UNIT_LOG
+ 1;
1222 /* However, when cross-compiling from a 32 bit to a 64 bit host,
1223 we are limited to 64 bit precision. */
1224 if (precision
> 2 * HOST_BITS_PER_WIDE_INT
)
1225 precision
= 2 * HOST_BITS_PER_WIDE_INT
;
1227 bitsizetype
= make_node (INTEGER_TYPE
);
1228 TYPE_NAME (bitsizetype
) = TYPE_NAME (type
);
1229 TYPE_PRECISION (bitsizetype
) = precision
;
1230 if (TREE_UNSIGNED (type
))
1231 fixup_unsigned_type (bitsizetype
);
1233 fixup_signed_type (bitsizetype
);
1234 layout_type (bitsizetype
);
1236 if (TREE_UNSIGNED (type
))
1238 usizetype
= sizetype
;
1239 ubitsizetype
= bitsizetype
;
1240 ssizetype
= make_signed_type (oprecision
);
1241 sbitsizetype
= make_signed_type (precision
);
1245 ssizetype
= sizetype
;
1246 sbitsizetype
= bitsizetype
;
1247 usizetype
= make_unsigned_type (oprecision
);
1248 ubitsizetype
= make_unsigned_type (precision
);
1250 TYPE_NAME (bitsizetype
) = TYPE_NAME (sizetype
);
1252 ggc_add_tree_root ((tree
*) &sizetype_tab
, sizeof(sizetype_tab
)/sizeof(tree
));
1255 /* Set the extreme values of TYPE based on its precision in bits,
1256 then lay it out. Used when make_signed_type won't do
1257 because the tree code is not INTEGER_TYPE.
1258 E.g. for Pascal, when the -fsigned-char option is given. */
1261 fixup_signed_type (type
)
1264 register int precision
= TYPE_PRECISION (type
);
1266 TYPE_MIN_VALUE (type
)
1267 = build_int_2 ((precision
- HOST_BITS_PER_WIDE_INT
> 0
1268 ? 0 : (HOST_WIDE_INT
) (-1) << (precision
- 1)),
1269 (((HOST_WIDE_INT
) (-1)
1270 << (precision
- HOST_BITS_PER_WIDE_INT
- 1 > 0
1271 ? precision
- HOST_BITS_PER_WIDE_INT
- 1
1273 TYPE_MAX_VALUE (type
)
1274 = build_int_2 ((precision
- HOST_BITS_PER_WIDE_INT
> 0
1275 ? -1 : ((HOST_WIDE_INT
) 1 << (precision
- 1)) - 1),
1276 (precision
- HOST_BITS_PER_WIDE_INT
- 1 > 0
1277 ? (((HOST_WIDE_INT
) 1
1278 << (precision
- HOST_BITS_PER_WIDE_INT
- 1))) - 1
1281 TREE_TYPE (TYPE_MIN_VALUE (type
)) = type
;
1282 TREE_TYPE (TYPE_MAX_VALUE (type
)) = type
;
1284 /* Lay out the type: set its alignment, size, etc. */
1289 /* Set the extreme values of TYPE based on its precision in bits,
1290 then lay it out. This is used both in `make_unsigned_type'
1291 and for enumeral types. */
1294 fixup_unsigned_type (type
)
1297 register int precision
= TYPE_PRECISION (type
);
1299 TYPE_MIN_VALUE (type
) = build_int_2 (0, 0);
1300 TYPE_MAX_VALUE (type
)
1301 = build_int_2 (precision
- HOST_BITS_PER_WIDE_INT
>= 0
1302 ? -1 : ((HOST_WIDE_INT
) 1 << precision
) - 1,
1303 precision
- HOST_BITS_PER_WIDE_INT
> 0
1304 ? ((unsigned HOST_WIDE_INT
) ~0
1305 >> (HOST_BITS_PER_WIDE_INT
1306 - (precision
- HOST_BITS_PER_WIDE_INT
)))
1308 TREE_TYPE (TYPE_MIN_VALUE (type
)) = type
;
1309 TREE_TYPE (TYPE_MAX_VALUE (type
)) = type
;
1311 /* Lay out the type: set its alignment, size, etc. */
1316 /* Find the best machine mode to use when referencing a bit field of length
1317 BITSIZE bits starting at BITPOS.
1319 The underlying object is known to be aligned to a boundary of ALIGN bits.
1320 If LARGEST_MODE is not VOIDmode, it means that we should not use a mode
1321 larger than LARGEST_MODE (usually SImode).
1323 If no mode meets all these conditions, we return VOIDmode. Otherwise, if
1324 VOLATILEP is true or SLOW_BYTE_ACCESS is false, we return the smallest
1325 mode meeting these conditions.
1327 Otherwise (VOLATILEP is false and SLOW_BYTE_ACCESS is true), we return
1328 the largest mode (but a mode no wider than UNITS_PER_WORD) that meets
1329 all the conditions. */
1332 get_best_mode (bitsize
, bitpos
, align
, largest_mode
, volatilep
)
1333 int bitsize
, bitpos
;
1335 enum machine_mode largest_mode
;
1338 enum machine_mode mode
;
1341 /* Find the narrowest integer mode that contains the bit field. */
1342 for (mode
= GET_CLASS_NARROWEST_MODE (MODE_INT
); mode
!= VOIDmode
;
1343 mode
= GET_MODE_WIDER_MODE (mode
))
1345 unit
= GET_MODE_BITSIZE (mode
);
1346 if ((bitpos
% unit
) + bitsize
<= unit
)
1350 if (mode
== VOIDmode
1351 /* It is tempting to omit the following line
1352 if STRICT_ALIGNMENT is true.
1353 But that is incorrect, since if the bitfield uses part of 3 bytes
1354 and we use a 4-byte mode, we could get a spurious segv
1355 if the extra 4th byte is past the end of memory.
1356 (Though at least one Unix compiler ignores this problem:
1357 that on the Sequent 386 machine. */
1358 || MIN (unit
, BIGGEST_ALIGNMENT
) > align
1359 || (largest_mode
!= VOIDmode
&& unit
> GET_MODE_BITSIZE (largest_mode
)))
1362 if (SLOW_BYTE_ACCESS
&& ! volatilep
)
1364 enum machine_mode wide_mode
= VOIDmode
, tmode
;
1366 for (tmode
= GET_CLASS_NARROWEST_MODE (MODE_INT
); tmode
!= VOIDmode
;
1367 tmode
= GET_MODE_WIDER_MODE (tmode
))
1369 unit
= GET_MODE_BITSIZE (tmode
);
1370 if (bitpos
/ unit
== (bitpos
+ bitsize
- 1) / unit
1371 && unit
<= BITS_PER_WORD
1372 && unit
<= MIN (align
, BIGGEST_ALIGNMENT
)
1373 && (largest_mode
== VOIDmode
1374 || unit
<= GET_MODE_BITSIZE (largest_mode
)))
1378 if (wide_mode
!= VOIDmode
)
1385 /* This function is run once to initialize stor-layout.c. */
1388 init_stor_layout_once ()
1390 ggc_add_tree_root (&pending_sizes
, 1);