* tree.h (get_containing_scope): Declare it.
[official-gcc.git] / gcc / tree.c
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1 /* Language-independent node constructors for parse phase of GNU compiler.
2 Copyright (C) 1987, 88, 92-98, 1999 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)
9 any later version.
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. */
22 /* This file contains the low level primitives for operating on tree nodes,
23 including allocation, list operations, interning of identifiers,
24 construction of data type nodes and statement nodes,
25 and construction of type conversion nodes. It also contains
26 tables index by tree code that describe how to take apart
27 nodes of that code.
29 It is intended to be language-independent, but occasionally
30 calls language-dependent routines defined (for C) in typecheck.c.
32 The low-level allocation routines oballoc and permalloc
33 are used also for allocating many other kinds of objects
34 by all passes of the compiler. */
36 #include "config.h"
37 #include "system.h"
38 #include "flags.h"
39 #include "tree.h"
40 #include "tm_p.h"
41 #include "function.h"
42 #include "obstack.h"
43 #include "toplev.h"
44 #include "ggc.h"
46 #define obstack_chunk_alloc xmalloc
47 #define obstack_chunk_free free
48 /* obstack.[ch] explicitly declined to prototype this. */
49 extern int _obstack_allocated_p PROTO ((struct obstack *h, PTR obj));
51 /* Tree nodes of permanent duration are allocated in this obstack.
52 They are the identifier nodes, and everything outside of
53 the bodies and parameters of function definitions. */
55 struct obstack permanent_obstack;
57 /* The initial RTL, and all ..._TYPE nodes, in a function
58 are allocated in this obstack. Usually they are freed at the
59 end of the function, but if the function is inline they are saved.
60 For top-level functions, this is maybepermanent_obstack.
61 Separate obstacks are made for nested functions. */
63 struct obstack *function_maybepermanent_obstack;
65 /* This is the function_maybepermanent_obstack for top-level functions. */
67 struct obstack maybepermanent_obstack;
69 /* The contents of the current function definition are allocated
70 in this obstack, and all are freed at the end of the function.
71 For top-level functions, this is temporary_obstack.
72 Separate obstacks are made for nested functions. */
74 struct obstack *function_obstack;
76 /* This is used for reading initializers of global variables. */
78 struct obstack temporary_obstack;
80 /* The tree nodes of an expression are allocated
81 in this obstack, and all are freed at the end of the expression. */
83 struct obstack momentary_obstack;
85 /* The tree nodes of a declarator are allocated
86 in this obstack, and all are freed when the declarator
87 has been parsed. */
89 static struct obstack temp_decl_obstack;
91 /* This points at either permanent_obstack
92 or the current function_maybepermanent_obstack. */
94 struct obstack *saveable_obstack;
96 /* This is same as saveable_obstack during parse and expansion phase;
97 it points to the current function's obstack during optimization.
98 This is the obstack to be used for creating rtl objects. */
100 struct obstack *rtl_obstack;
102 /* This points at either permanent_obstack or the current function_obstack. */
104 struct obstack *current_obstack;
106 /* This points at either permanent_obstack or the current function_obstack
107 or momentary_obstack. */
109 struct obstack *expression_obstack;
111 /* Stack of obstack selections for push_obstacks and pop_obstacks. */
113 struct obstack_stack
115 struct obstack_stack *next;
116 struct obstack *current;
117 struct obstack *saveable;
118 struct obstack *expression;
119 struct obstack *rtl;
122 struct obstack_stack *obstack_stack;
124 /* Obstack for allocating struct obstack_stack entries. */
126 static struct obstack obstack_stack_obstack;
128 /* Addresses of first objects in some obstacks.
129 This is for freeing their entire contents. */
130 char *maybepermanent_firstobj;
131 char *temporary_firstobj;
132 char *momentary_firstobj;
133 char *temp_decl_firstobj;
135 /* This is used to preserve objects (mainly array initializers) that need to
136 live until the end of the current function, but no further. */
137 char *momentary_function_firstobj;
139 /* Nonzero means all ..._TYPE nodes should be allocated permanently. */
141 int all_types_permanent;
143 /* Stack of places to restore the momentary obstack back to. */
145 struct momentary_level
147 /* Pointer back to previous such level. */
148 struct momentary_level *prev;
149 /* First object allocated within this level. */
150 char *base;
151 /* Value of expression_obstack saved at entry to this level. */
152 struct obstack *obstack;
155 struct momentary_level *momentary_stack;
157 /* Table indexed by tree code giving a string containing a character
158 classifying the tree code. Possibilities are
159 t, d, s, c, r, <, 1, 2 and e. See tree.def for details. */
161 #define DEFTREECODE(SYM, NAME, TYPE, LENGTH) TYPE,
163 char tree_code_type[MAX_TREE_CODES] = {
164 #include "tree.def"
166 #undef DEFTREECODE
168 /* Table indexed by tree code giving number of expression
169 operands beyond the fixed part of the node structure.
170 Not used for types or decls. */
172 #define DEFTREECODE(SYM, NAME, TYPE, LENGTH) LENGTH,
174 int tree_code_length[MAX_TREE_CODES] = {
175 #include "tree.def"
177 #undef DEFTREECODE
179 /* Names of tree components.
180 Used for printing out the tree and error messages. */
181 #define DEFTREECODE(SYM, NAME, TYPE, LEN) NAME,
183 const char *tree_code_name[MAX_TREE_CODES] = {
184 #include "tree.def"
186 #undef DEFTREECODE
188 /* Statistics-gathering stuff. */
189 typedef enum
191 d_kind,
192 t_kind,
193 b_kind,
194 s_kind,
195 r_kind,
196 e_kind,
197 c_kind,
198 id_kind,
199 op_id_kind,
200 perm_list_kind,
201 temp_list_kind,
202 vec_kind,
203 x_kind,
204 lang_decl,
205 lang_type,
206 all_kinds
207 } tree_node_kind;
209 int tree_node_counts[(int)all_kinds];
210 int tree_node_sizes[(int)all_kinds];
211 int id_string_size = 0;
213 static const char * const tree_node_kind_names[] = {
214 "decls",
215 "types",
216 "blocks",
217 "stmts",
218 "refs",
219 "exprs",
220 "constants",
221 "identifiers",
222 "op_identifiers",
223 "perm_tree_lists",
224 "temp_tree_lists",
225 "vecs",
226 "random kinds",
227 "lang_decl kinds",
228 "lang_type kinds"
231 /* Hash table for uniquizing IDENTIFIER_NODEs by name. */
233 #define MAX_HASH_TABLE 1009
234 static tree hash_table[MAX_HASH_TABLE]; /* id hash buckets */
236 /* 0 while creating built-in identifiers. */
237 static int do_identifier_warnings;
239 /* Unique id for next decl created. */
240 static int next_decl_uid;
241 /* Unique id for next type created. */
242 static int next_type_uid = 1;
244 /* The language-specific function for alias analysis. If NULL, the
245 language does not do any special alias analysis. */
246 int (*lang_get_alias_set) PROTO((tree));
248 /* Here is how primitive or already-canonicalized types' hash
249 codes are made. */
250 #define TYPE_HASH(TYPE) ((unsigned long) (TYPE) & 0777777)
252 /* Each hash table slot is a bucket containing a chain
253 of these structures. */
255 struct type_hash
257 struct type_hash *next; /* Next structure in the bucket. */
258 int hashcode; /* Hash code of this type. */
259 tree type; /* The type recorded here. */
262 /* Now here is the hash table. When recording a type, it is added
263 to the slot whose index is the hash code mod the table size.
264 Note that the hash table is used for several kinds of types
265 (function types, array types and array index range types, for now).
266 While all these live in the same table, they are completely independent,
267 and the hash code is computed differently for each of these. */
269 #define TYPE_HASH_SIZE 59
270 struct type_hash *type_hash_table[TYPE_HASH_SIZE];
272 static void set_type_quals PROTO((tree, int));
273 static void append_random_chars PROTO((char *));
274 static void build_real_from_int_cst_1 PROTO((PTR));
275 static void mark_type_hash PROTO ((void *));
276 static void fix_sizetype PROTO ((tree));
278 /* If non-null, a language specific helper for unsave_expr_now. */
280 void (*lang_unsave_expr_now) PROTO((tree));
282 /* The string used as a placeholder instead of a source file name for
283 built-in tree nodes. The variable, which is dynamically allocated,
284 should be used; the macro is only used to initialize it. */
286 static char *built_in_filename;
287 #define BUILT_IN_FILENAME ("<built-in>")
289 tree global_trees[TI_MAX];
291 /* Init the principal obstacks. */
293 void
294 init_obstacks ()
296 gcc_obstack_init (&obstack_stack_obstack);
297 gcc_obstack_init (&permanent_obstack);
299 gcc_obstack_init (&temporary_obstack);
300 temporary_firstobj = (char *) obstack_alloc (&temporary_obstack, 0);
301 gcc_obstack_init (&momentary_obstack);
302 momentary_firstobj = (char *) obstack_alloc (&momentary_obstack, 0);
303 momentary_function_firstobj = momentary_firstobj;
304 gcc_obstack_init (&maybepermanent_obstack);
305 maybepermanent_firstobj
306 = (char *) obstack_alloc (&maybepermanent_obstack, 0);
307 gcc_obstack_init (&temp_decl_obstack);
308 temp_decl_firstobj = (char *) obstack_alloc (&temp_decl_obstack, 0);
310 function_obstack = &temporary_obstack;
311 function_maybepermanent_obstack = &maybepermanent_obstack;
312 current_obstack = &permanent_obstack;
313 expression_obstack = &permanent_obstack;
314 rtl_obstack = saveable_obstack = &permanent_obstack;
316 /* Init the hash table of identifiers. */
317 bzero ((char *) hash_table, sizeof hash_table);
319 ggc_add_tree_root (hash_table, MAX_HASH_TABLE);
320 ggc_add_root (type_hash_table, TYPE_HASH_SIZE,
321 sizeof(struct type_hash *),
322 mark_type_hash);
323 ggc_add_tree_root (global_trees, TI_MAX);
326 void
327 gcc_obstack_init (obstack)
328 struct obstack *obstack;
330 /* Let particular systems override the size of a chunk. */
331 #ifndef OBSTACK_CHUNK_SIZE
332 #define OBSTACK_CHUNK_SIZE 0
333 #endif
334 /* Let them override the alloc and free routines too. */
335 #ifndef OBSTACK_CHUNK_ALLOC
336 #define OBSTACK_CHUNK_ALLOC xmalloc
337 #endif
338 #ifndef OBSTACK_CHUNK_FREE
339 #define OBSTACK_CHUNK_FREE free
340 #endif
341 _obstack_begin (obstack, OBSTACK_CHUNK_SIZE, 0,
342 (void *(*) PROTO ((long))) OBSTACK_CHUNK_ALLOC,
343 (void (*) PROTO ((void *))) OBSTACK_CHUNK_FREE);
346 /* Save all variables describing the current status into the structure
347 *P. This function is called whenever we start compiling one
348 function in the midst of compiling another. For example, when
349 compiling a nested function, or, in C++, a template instantiation
350 that is required by the function we are currently compiling.
352 CONTEXT is the decl_function_context for the function we're about to
353 compile; if it isn't current_function_decl, we have to play some games. */
355 void
356 save_tree_status (p)
357 struct function *p;
359 p->all_types_permanent = all_types_permanent;
360 p->momentary_stack = momentary_stack;
361 p->maybepermanent_firstobj = maybepermanent_firstobj;
362 p->temporary_firstobj = temporary_firstobj;
363 p->momentary_firstobj = momentary_firstobj;
364 p->momentary_function_firstobj = momentary_function_firstobj;
365 p->function_obstack = function_obstack;
366 p->function_maybepermanent_obstack = function_maybepermanent_obstack;
367 p->current_obstack = current_obstack;
368 p->expression_obstack = expression_obstack;
369 p->saveable_obstack = saveable_obstack;
370 p->rtl_obstack = rtl_obstack;
372 function_maybepermanent_obstack
373 = (struct obstack *) xmalloc (sizeof (struct obstack));
374 gcc_obstack_init (function_maybepermanent_obstack);
375 maybepermanent_firstobj
376 = (char *) obstack_finish (function_maybepermanent_obstack);
378 function_obstack = (struct obstack *) xmalloc (sizeof (struct obstack));
379 gcc_obstack_init (function_obstack);
381 current_obstack = &permanent_obstack;
382 expression_obstack = &permanent_obstack;
383 rtl_obstack = saveable_obstack = &permanent_obstack;
385 temporary_firstobj = (char *) obstack_alloc (&temporary_obstack, 0);
386 momentary_firstobj = (char *) obstack_finish (&momentary_obstack);
387 momentary_function_firstobj = momentary_firstobj;
390 /* Restore all variables describing the current status from the structure *P.
391 This is used after a nested function. */
393 void
394 restore_tree_status (p)
395 struct function *p;
397 all_types_permanent = p->all_types_permanent;
398 momentary_stack = p->momentary_stack;
400 obstack_free (&momentary_obstack, momentary_function_firstobj);
402 /* Free saveable storage used by the function just compiled and not
403 saved. */
404 obstack_free (function_maybepermanent_obstack, maybepermanent_firstobj);
405 if (obstack_empty_p (function_maybepermanent_obstack))
407 obstack_free (function_maybepermanent_obstack, NULL);
408 free (function_maybepermanent_obstack);
411 obstack_free (&temporary_obstack, temporary_firstobj);
412 obstack_free (&momentary_obstack, momentary_function_firstobj);
414 obstack_free (function_obstack, NULL);
415 free (function_obstack);
417 temporary_firstobj = p->temporary_firstobj;
418 momentary_firstobj = p->momentary_firstobj;
419 momentary_function_firstobj = p->momentary_function_firstobj;
420 maybepermanent_firstobj = p->maybepermanent_firstobj;
421 function_obstack = p->function_obstack;
422 function_maybepermanent_obstack = p->function_maybepermanent_obstack;
423 current_obstack = p->current_obstack;
424 expression_obstack = p->expression_obstack;
425 saveable_obstack = p->saveable_obstack;
426 rtl_obstack = p->rtl_obstack;
429 /* Start allocating on the temporary (per function) obstack.
430 This is done in start_function before parsing the function body,
431 and before each initialization at top level, and to go back
432 to temporary allocation after doing permanent_allocation. */
434 void
435 temporary_allocation ()
437 /* Note that function_obstack at top level points to temporary_obstack.
438 But within a nested function context, it is a separate obstack. */
439 current_obstack = function_obstack;
440 expression_obstack = function_obstack;
441 rtl_obstack = saveable_obstack = function_maybepermanent_obstack;
442 momentary_stack = 0;
445 /* Start allocating on the permanent obstack but don't
446 free the temporary data. After calling this, call
447 `permanent_allocation' to fully resume permanent allocation status. */
449 void
450 end_temporary_allocation ()
452 current_obstack = &permanent_obstack;
453 expression_obstack = &permanent_obstack;
454 rtl_obstack = saveable_obstack = &permanent_obstack;
457 /* Resume allocating on the temporary obstack, undoing
458 effects of `end_temporary_allocation'. */
460 void
461 resume_temporary_allocation ()
463 current_obstack = function_obstack;
464 expression_obstack = function_obstack;
465 rtl_obstack = saveable_obstack = function_maybepermanent_obstack;
468 /* While doing temporary allocation, switch to allocating in such a
469 way as to save all nodes if the function is inlined. Call
470 resume_temporary_allocation to go back to ordinary temporary
471 allocation. */
473 void
474 saveable_allocation ()
476 /* Note that function_obstack at top level points to temporary_obstack.
477 But within a nested function context, it is a separate obstack. */
478 expression_obstack = current_obstack = saveable_obstack;
481 /* Switch to current obstack CURRENT and maybepermanent obstack SAVEABLE,
482 recording the previously current obstacks on a stack.
483 This does not free any storage in any obstack. */
485 void
486 push_obstacks (current, saveable)
487 struct obstack *current, *saveable;
489 struct obstack_stack *p;
491 p = (struct obstack_stack *) obstack_alloc (&obstack_stack_obstack,
492 (sizeof (struct obstack_stack)));
494 p->current = current_obstack;
495 p->saveable = saveable_obstack;
496 p->expression = expression_obstack;
497 p->rtl = rtl_obstack;
498 p->next = obstack_stack;
499 obstack_stack = p;
501 current_obstack = current;
502 expression_obstack = current;
503 rtl_obstack = saveable_obstack = saveable;
506 /* Save the current set of obstacks, but don't change them. */
508 void
509 push_obstacks_nochange ()
511 struct obstack_stack *p;
513 p = (struct obstack_stack *) obstack_alloc (&obstack_stack_obstack,
514 (sizeof (struct obstack_stack)));
516 p->current = current_obstack;
517 p->saveable = saveable_obstack;
518 p->expression = expression_obstack;
519 p->rtl = rtl_obstack;
520 p->next = obstack_stack;
521 obstack_stack = p;
524 /* Pop the obstack selection stack. */
526 void
527 pop_obstacks ()
529 struct obstack_stack *p;
531 p = obstack_stack;
532 obstack_stack = p->next;
534 current_obstack = p->current;
535 saveable_obstack = p->saveable;
536 expression_obstack = p->expression;
537 rtl_obstack = p->rtl;
539 obstack_free (&obstack_stack_obstack, p);
542 /* Nonzero if temporary allocation is currently in effect.
543 Zero if currently doing permanent allocation. */
546 allocation_temporary_p ()
548 return current_obstack != &permanent_obstack;
551 /* Go back to allocating on the permanent obstack
552 and free everything in the temporary obstack.
554 FUNCTION_END is true only if we have just finished compiling a function.
555 In that case, we also free preserved initial values on the momentary
556 obstack. */
558 void
559 permanent_allocation (function_end)
560 int function_end;
562 /* Free up previous temporary obstack data */
563 obstack_free (&temporary_obstack, temporary_firstobj);
564 if (function_end)
566 obstack_free (&momentary_obstack, momentary_function_firstobj);
567 momentary_firstobj = momentary_function_firstobj;
569 else
570 obstack_free (&momentary_obstack, momentary_firstobj);
571 obstack_free (function_maybepermanent_obstack, maybepermanent_firstobj);
572 obstack_free (&temp_decl_obstack, temp_decl_firstobj);
574 current_obstack = &permanent_obstack;
575 expression_obstack = &permanent_obstack;
576 rtl_obstack = saveable_obstack = &permanent_obstack;
579 /* Save permanently everything on the maybepermanent_obstack. */
581 void
582 preserve_data ()
584 maybepermanent_firstobj
585 = (char *) obstack_alloc (function_maybepermanent_obstack, 0);
588 void
589 preserve_initializer ()
591 struct momentary_level *tem;
592 char *old_momentary;
594 temporary_firstobj
595 = (char *) obstack_alloc (&temporary_obstack, 0);
596 maybepermanent_firstobj
597 = (char *) obstack_alloc (function_maybepermanent_obstack, 0);
599 old_momentary = momentary_firstobj;
600 momentary_firstobj
601 = (char *) obstack_alloc (&momentary_obstack, 0);
602 if (momentary_firstobj != old_momentary)
603 for (tem = momentary_stack; tem; tem = tem->prev)
604 tem->base = momentary_firstobj;
607 /* Start allocating new rtl in current_obstack.
608 Use resume_temporary_allocation
609 to go back to allocating rtl in saveable_obstack. */
611 void
612 rtl_in_current_obstack ()
614 rtl_obstack = current_obstack;
617 /* Start allocating rtl from saveable_obstack. Intended to be used after
618 a call to push_obstacks_nochange. */
620 void
621 rtl_in_saveable_obstack ()
623 rtl_obstack = saveable_obstack;
626 /* Allocate SIZE bytes in the current obstack
627 and return a pointer to them.
628 In practice the current obstack is always the temporary one. */
630 char *
631 oballoc (size)
632 int size;
634 return (char *) obstack_alloc (current_obstack, size);
637 /* Free the object PTR in the current obstack
638 as well as everything allocated since PTR.
639 In practice the current obstack is always the temporary one. */
641 void
642 obfree (ptr)
643 char *ptr;
645 obstack_free (current_obstack, ptr);
648 /* Allocate SIZE bytes in the permanent obstack
649 and return a pointer to them. */
651 char *
652 permalloc (size)
653 int size;
655 return (char *) obstack_alloc (&permanent_obstack, size);
658 /* Allocate NELEM items of SIZE bytes in the permanent obstack
659 and return a pointer to them. The storage is cleared before
660 returning the value. */
662 char *
663 perm_calloc (nelem, size)
664 int nelem;
665 long size;
667 char *rval = (char *) obstack_alloc (&permanent_obstack, nelem * size);
668 bzero (rval, nelem * size);
669 return rval;
672 /* Allocate SIZE bytes in the saveable obstack
673 and return a pointer to them. */
675 char *
676 savealloc (size)
677 int size;
679 return (char *) obstack_alloc (saveable_obstack, size);
682 /* Allocate SIZE bytes in the expression obstack
683 and return a pointer to them. */
685 char *
686 expralloc (size)
687 int size;
689 return (char *) obstack_alloc (expression_obstack, size);
692 /* Print out which obstack an object is in. */
694 void
695 print_obstack_name (object, file, prefix)
696 char *object;
697 FILE *file;
698 const char *prefix;
700 struct obstack *obstack = NULL;
701 const char *obstack_name = NULL;
702 struct function *p;
704 for (p = outer_function_chain; p; p = p->next)
706 if (_obstack_allocated_p (p->function_obstack, object))
708 obstack = p->function_obstack;
709 obstack_name = "containing function obstack";
711 if (_obstack_allocated_p (p->function_maybepermanent_obstack, object))
713 obstack = p->function_maybepermanent_obstack;
714 obstack_name = "containing function maybepermanent obstack";
718 if (_obstack_allocated_p (&obstack_stack_obstack, object))
720 obstack = &obstack_stack_obstack;
721 obstack_name = "obstack_stack_obstack";
723 else if (_obstack_allocated_p (function_obstack, object))
725 obstack = function_obstack;
726 obstack_name = "function obstack";
728 else if (_obstack_allocated_p (&permanent_obstack, object))
730 obstack = &permanent_obstack;
731 obstack_name = "permanent_obstack";
733 else if (_obstack_allocated_p (&momentary_obstack, object))
735 obstack = &momentary_obstack;
736 obstack_name = "momentary_obstack";
738 else if (_obstack_allocated_p (function_maybepermanent_obstack, object))
740 obstack = function_maybepermanent_obstack;
741 obstack_name = "function maybepermanent obstack";
743 else if (_obstack_allocated_p (&temp_decl_obstack, object))
745 obstack = &temp_decl_obstack;
746 obstack_name = "temp_decl_obstack";
749 /* Check to see if the object is in the free area of the obstack. */
750 if (obstack != NULL)
752 if (object >= obstack->next_free
753 && object < obstack->chunk_limit)
754 fprintf (file, "%s in free portion of obstack %s",
755 prefix, obstack_name);
756 else
757 fprintf (file, "%s allocated from %s", prefix, obstack_name);
759 else
760 fprintf (file, "%s not allocated from any obstack", prefix);
763 void
764 debug_obstack (object)
765 char *object;
767 print_obstack_name (object, stderr, "object");
768 fprintf (stderr, ".\n");
771 /* Return 1 if OBJ is in the permanent obstack.
772 This is slow, and should be used only for debugging.
773 Use TREE_PERMANENT for other purposes. */
776 object_permanent_p (obj)
777 tree obj;
779 return _obstack_allocated_p (&permanent_obstack, obj);
782 /* Start a level of momentary allocation.
783 In C, each compound statement has its own level
784 and that level is freed at the end of each statement.
785 All expression nodes are allocated in the momentary allocation level. */
787 void
788 push_momentary ()
790 struct momentary_level *tem
791 = (struct momentary_level *) obstack_alloc (&momentary_obstack,
792 sizeof (struct momentary_level));
793 tem->prev = momentary_stack;
794 tem->base = (char *) obstack_base (&momentary_obstack);
795 tem->obstack = expression_obstack;
796 momentary_stack = tem;
797 expression_obstack = &momentary_obstack;
800 /* Set things up so the next clear_momentary will only clear memory
801 past our present position in momentary_obstack. */
803 void
804 preserve_momentary ()
806 momentary_stack->base = (char *) obstack_base (&momentary_obstack);
809 /* Free all the storage in the current momentary-allocation level.
810 In C, this happens at the end of each statement. */
812 void
813 clear_momentary ()
815 obstack_free (&momentary_obstack, momentary_stack->base);
818 /* Discard a level of momentary allocation.
819 In C, this happens at the end of each compound statement.
820 Restore the status of expression node allocation
821 that was in effect before this level was created. */
823 void
824 pop_momentary ()
826 struct momentary_level *tem = momentary_stack;
827 momentary_stack = tem->prev;
828 expression_obstack = tem->obstack;
829 /* We can't free TEM from the momentary_obstack, because there might
830 be objects above it which have been saved. We can free back to the
831 stack of the level we are popping off though. */
832 obstack_free (&momentary_obstack, tem->base);
835 /* Pop back to the previous level of momentary allocation,
836 but don't free any momentary data just yet. */
838 void
839 pop_momentary_nofree ()
841 struct momentary_level *tem = momentary_stack;
842 momentary_stack = tem->prev;
843 expression_obstack = tem->obstack;
846 /* Call when starting to parse a declaration:
847 make expressions in the declaration last the length of the function.
848 Returns an argument that should be passed to resume_momentary later. */
851 suspend_momentary ()
853 register int tem = expression_obstack == &momentary_obstack;
854 expression_obstack = saveable_obstack;
855 return tem;
858 /* Call when finished parsing a declaration:
859 restore the treatment of node-allocation that was
860 in effect before the suspension.
861 YES should be the value previously returned by suspend_momentary. */
863 void
864 resume_momentary (yes)
865 int yes;
867 if (yes)
868 expression_obstack = &momentary_obstack;
871 /* Init the tables indexed by tree code.
872 Note that languages can add to these tables to define their own codes. */
874 void
875 init_tree_codes ()
877 built_in_filename =
878 ggc_alloc_string (BUILT_IN_FILENAME, sizeof (BUILT_IN_FILENAME));
879 ggc_add_string_root (&built_in_filename, 1);
882 /* Return a newly allocated node of code CODE.
883 Initialize the node's unique id and its TREE_PERMANENT flag.
884 For decl and type nodes, some other fields are initialized.
885 The rest of the node is initialized to zero.
887 Achoo! I got a code in the node. */
889 tree
890 make_node (code)
891 enum tree_code code;
893 register tree t;
894 register int type = TREE_CODE_CLASS (code);
895 register int length = 0;
896 register struct obstack *obstack = current_obstack;
897 #ifdef GATHER_STATISTICS
898 register tree_node_kind kind;
899 #endif
901 switch (type)
903 case 'd': /* A decl node */
904 #ifdef GATHER_STATISTICS
905 kind = d_kind;
906 #endif
907 length = sizeof (struct tree_decl);
908 /* All decls in an inline function need to be saved. */
909 if (obstack != &permanent_obstack)
910 obstack = saveable_obstack;
912 /* PARM_DECLs go on the context of the parent. If this is a nested
913 function, then we must allocate the PARM_DECL on the parent's
914 obstack, so that they will live to the end of the parent's
915 closing brace. This is necessary in case we try to inline the
916 function into its parent.
918 PARM_DECLs of top-level functions do not have this problem. However,
919 we allocate them where we put the FUNCTION_DECL for languages such as
920 Ada that need to consult some flags in the PARM_DECLs of the function
921 when calling it.
923 See comment in restore_tree_status for why we can't put this
924 in function_obstack. */
925 if (code == PARM_DECL && obstack != &permanent_obstack)
927 tree context = 0;
928 if (current_function_decl)
929 context = decl_function_context (current_function_decl);
931 if (context)
932 obstack
933 = find_function_data (context)->function_maybepermanent_obstack;
935 break;
937 case 't': /* a type node */
938 #ifdef GATHER_STATISTICS
939 kind = t_kind;
940 #endif
941 length = sizeof (struct tree_type);
942 /* All data types are put where we can preserve them if nec. */
943 if (obstack != &permanent_obstack)
944 obstack = all_types_permanent ? &permanent_obstack : saveable_obstack;
945 break;
947 case 'b': /* a lexical block */
948 #ifdef GATHER_STATISTICS
949 kind = b_kind;
950 #endif
951 length = sizeof (struct tree_block);
952 /* All BLOCK nodes are put where we can preserve them if nec. */
953 if (obstack != &permanent_obstack)
954 obstack = saveable_obstack;
955 break;
957 case 's': /* an expression with side effects */
958 #ifdef GATHER_STATISTICS
959 kind = s_kind;
960 goto usual_kind;
961 #endif
962 case 'r': /* a reference */
963 #ifdef GATHER_STATISTICS
964 kind = r_kind;
965 goto usual_kind;
966 #endif
967 case 'e': /* an expression */
968 case '<': /* a comparison expression */
969 case '1': /* a unary arithmetic expression */
970 case '2': /* a binary arithmetic expression */
971 #ifdef GATHER_STATISTICS
972 kind = e_kind;
973 usual_kind:
974 #endif
975 obstack = expression_obstack;
976 /* All BIND_EXPR nodes are put where we can preserve them if nec. */
977 if (code == BIND_EXPR && obstack != &permanent_obstack)
978 obstack = saveable_obstack;
979 length = sizeof (struct tree_exp)
980 + (tree_code_length[(int) code] - 1) * sizeof (char *);
981 break;
983 case 'c': /* a constant */
984 #ifdef GATHER_STATISTICS
985 kind = c_kind;
986 #endif
987 obstack = expression_obstack;
989 /* We can't use tree_code_length for INTEGER_CST, since the number of
990 words is machine-dependent due to varying length of HOST_WIDE_INT,
991 which might be wider than a pointer (e.g., long long). Similarly
992 for REAL_CST, since the number of words is machine-dependent due
993 to varying size and alignment of `double'. */
995 if (code == INTEGER_CST)
996 length = sizeof (struct tree_int_cst);
997 else if (code == REAL_CST)
998 length = sizeof (struct tree_real_cst);
999 else
1000 length = sizeof (struct tree_common)
1001 + tree_code_length[(int) code] * sizeof (char *);
1002 break;
1004 case 'x': /* something random, like an identifier. */
1005 #ifdef GATHER_STATISTICS
1006 if (code == IDENTIFIER_NODE)
1007 kind = id_kind;
1008 else if (code == OP_IDENTIFIER)
1009 kind = op_id_kind;
1010 else if (code == TREE_VEC)
1011 kind = vec_kind;
1012 else
1013 kind = x_kind;
1014 #endif
1015 length = sizeof (struct tree_common)
1016 + tree_code_length[(int) code] * sizeof (char *);
1017 /* Identifier nodes are always permanent since they are
1018 unique in a compiler run. */
1019 if (code == IDENTIFIER_NODE) obstack = &permanent_obstack;
1020 break;
1022 default:
1023 abort ();
1026 if (ggc_p)
1027 t = ggc_alloc_tree (length);
1028 else
1030 t = (tree) obstack_alloc (obstack, length);
1031 memset ((PTR) t, 0, length);
1034 #ifdef GATHER_STATISTICS
1035 tree_node_counts[(int)kind]++;
1036 tree_node_sizes[(int)kind] += length;
1037 #endif
1039 TREE_SET_CODE (t, code);
1040 if (obstack == &permanent_obstack)
1041 TREE_PERMANENT (t) = 1;
1043 switch (type)
1045 case 's':
1046 TREE_SIDE_EFFECTS (t) = 1;
1047 TREE_TYPE (t) = void_type_node;
1048 break;
1050 case 'd':
1051 if (code != FUNCTION_DECL)
1052 DECL_ALIGN (t) = 1;
1053 DECL_IN_SYSTEM_HEADER (t)
1054 = in_system_header && (obstack == &permanent_obstack);
1055 DECL_SOURCE_LINE (t) = lineno;
1056 DECL_SOURCE_FILE (t) =
1057 (input_filename) ? input_filename : built_in_filename;
1058 DECL_UID (t) = next_decl_uid++;
1059 /* Note that we have not yet computed the alias set for this
1060 declaration. */
1061 DECL_POINTER_ALIAS_SET (t) = -1;
1062 break;
1064 case 't':
1065 TYPE_UID (t) = next_type_uid++;
1066 TYPE_ALIGN (t) = 1;
1067 TYPE_MAIN_VARIANT (t) = t;
1068 TYPE_OBSTACK (t) = obstack;
1069 TYPE_ATTRIBUTES (t) = NULL_TREE;
1070 #ifdef SET_DEFAULT_TYPE_ATTRIBUTES
1071 SET_DEFAULT_TYPE_ATTRIBUTES (t);
1072 #endif
1073 /* Note that we have not yet computed the alias set for this
1074 type. */
1075 TYPE_ALIAS_SET (t) = -1;
1076 break;
1078 case 'c':
1079 TREE_CONSTANT (t) = 1;
1080 break;
1082 case 'e':
1083 switch (code)
1085 case INIT_EXPR:
1086 case MODIFY_EXPR:
1087 case VA_ARG_EXPR:
1088 case RTL_EXPR:
1089 case PREDECREMENT_EXPR:
1090 case PREINCREMENT_EXPR:
1091 case POSTDECREMENT_EXPR:
1092 case POSTINCREMENT_EXPR:
1093 /* All of these have side-effects, no matter what their
1094 operands are. */
1095 TREE_SIDE_EFFECTS (t) = 1;
1096 break;
1098 default:
1099 break;
1101 break;
1104 return t;
1107 /* A front-end can reset this to an appropriate function if types need
1108 special handling. */
1110 tree (*make_lang_type_fn) PROTO((enum tree_code)) = make_node;
1112 /* Return a new type (with the indicated CODE), doing whatever
1113 language-specific processing is required. */
1115 tree
1116 make_lang_type (code)
1117 enum tree_code code;
1119 return (*make_lang_type_fn) (code);
1122 /* Return a new node with the same contents as NODE except that its
1123 TREE_CHAIN is zero and it has a fresh uid. Unlike make_node, this
1124 function always performs the allocation on the CURRENT_OBSTACK;
1125 it's up to the caller to pick the right obstack before calling this
1126 function. */
1128 tree
1129 copy_node (node)
1130 tree node;
1132 register tree t;
1133 register enum tree_code code = TREE_CODE (node);
1134 register int length = 0;
1136 switch (TREE_CODE_CLASS (code))
1138 case 'd': /* A decl node */
1139 length = sizeof (struct tree_decl);
1140 break;
1142 case 't': /* a type node */
1143 length = sizeof (struct tree_type);
1144 break;
1146 case 'b': /* a lexical block node */
1147 length = sizeof (struct tree_block);
1148 break;
1150 case 'r': /* a reference */
1151 case 'e': /* an expression */
1152 case 's': /* an expression with side effects */
1153 case '<': /* a comparison expression */
1154 case '1': /* a unary arithmetic expression */
1155 case '2': /* a binary arithmetic expression */
1156 length = sizeof (struct tree_exp)
1157 + (tree_code_length[(int) code] - 1) * sizeof (char *);
1158 break;
1160 case 'c': /* a constant */
1161 /* We can't use tree_code_length for INTEGER_CST, since the number of
1162 words is machine-dependent due to varying length of HOST_WIDE_INT,
1163 which might be wider than a pointer (e.g., long long). Similarly
1164 for REAL_CST, since the number of words is machine-dependent due
1165 to varying size and alignment of `double'. */
1166 if (code == INTEGER_CST)
1167 length = sizeof (struct tree_int_cst);
1168 else if (code == REAL_CST)
1169 length = sizeof (struct tree_real_cst);
1170 else
1171 length = (sizeof (struct tree_common)
1172 + tree_code_length[(int) code] * sizeof (char *));
1173 break;
1175 case 'x': /* something random, like an identifier. */
1176 length = sizeof (struct tree_common)
1177 + tree_code_length[(int) code] * sizeof (char *);
1178 if (code == TREE_VEC)
1179 length += (TREE_VEC_LENGTH (node) - 1) * sizeof (char *);
1182 if (ggc_p)
1183 t = ggc_alloc_tree (length);
1184 else
1185 t = (tree) obstack_alloc (current_obstack, length);
1186 memcpy (t, node, length);
1188 /* EXPR_WITH_FILE_LOCATION must keep filename info stored in TREE_CHAIN */
1189 if (TREE_CODE (node) != EXPR_WITH_FILE_LOCATION)
1190 TREE_CHAIN (t) = 0;
1191 TREE_ASM_WRITTEN (t) = 0;
1193 if (TREE_CODE_CLASS (code) == 'd')
1194 DECL_UID (t) = next_decl_uid++;
1195 else if (TREE_CODE_CLASS (code) == 't')
1197 TYPE_UID (t) = next_type_uid++;
1198 TYPE_OBSTACK (t) = current_obstack;
1200 /* The following is so that the debug code for
1201 the copy is different from the original type.
1202 The two statements usually duplicate each other
1203 (because they clear fields of the same union),
1204 but the optimizer should catch that. */
1205 TYPE_SYMTAB_POINTER (t) = 0;
1206 TYPE_SYMTAB_ADDRESS (t) = 0;
1209 TREE_PERMANENT (t) = (current_obstack == &permanent_obstack);
1211 return t;
1214 /* Return a copy of a chain of nodes, chained through the TREE_CHAIN field.
1215 For example, this can copy a list made of TREE_LIST nodes. */
1217 tree
1218 copy_list (list)
1219 tree list;
1221 tree head;
1222 register tree prev, next;
1224 if (list == 0)
1225 return 0;
1227 head = prev = copy_node (list);
1228 next = TREE_CHAIN (list);
1229 while (next)
1231 TREE_CHAIN (prev) = copy_node (next);
1232 prev = TREE_CHAIN (prev);
1233 next = TREE_CHAIN (next);
1235 return head;
1238 #define HASHBITS 30
1240 /* Return an IDENTIFIER_NODE whose name is TEXT (a null-terminated string).
1241 If an identifier with that name has previously been referred to,
1242 the same node is returned this time. */
1244 tree
1245 get_identifier (text)
1246 register const char *text;
1248 register int hi;
1249 register int i;
1250 register tree idp;
1251 register int len, hash_len;
1253 /* Compute length of text in len. */
1254 len = strlen (text);
1256 /* Decide how much of that length to hash on */
1257 hash_len = len;
1258 if (warn_id_clash && (unsigned)len > id_clash_len)
1259 hash_len = id_clash_len;
1261 /* Compute hash code */
1262 hi = hash_len * 613 + (unsigned) text[0];
1263 for (i = 1; i < hash_len; i += 2)
1264 hi = ((hi * 613) + (unsigned) (text[i]));
1266 hi &= (1 << HASHBITS) - 1;
1267 hi %= MAX_HASH_TABLE;
1269 /* Search table for identifier */
1270 for (idp = hash_table[hi]; idp; idp = TREE_CHAIN (idp))
1271 if (IDENTIFIER_LENGTH (idp) == len
1272 && IDENTIFIER_POINTER (idp)[0] == text[0]
1273 && !bcmp (IDENTIFIER_POINTER (idp), text, len))
1274 return idp; /* <-- return if found */
1276 /* Not found; optionally warn about a similar identifier */
1277 if (warn_id_clash && do_identifier_warnings && (unsigned)len >= id_clash_len)
1278 for (idp = hash_table[hi]; idp; idp = TREE_CHAIN (idp))
1279 if (!strncmp (IDENTIFIER_POINTER (idp), text, id_clash_len))
1281 warning ("`%s' and `%s' identical in first %d characters",
1282 IDENTIFIER_POINTER (idp), text, id_clash_len);
1283 break;
1286 if (tree_code_length[(int) IDENTIFIER_NODE] < 0)
1287 abort (); /* set_identifier_size hasn't been called. */
1289 /* Not found, create one, add to chain */
1290 idp = make_node (IDENTIFIER_NODE);
1291 IDENTIFIER_LENGTH (idp) = len;
1292 #ifdef GATHER_STATISTICS
1293 id_string_size += len;
1294 #endif
1296 if (ggc_p)
1297 IDENTIFIER_POINTER (idp) = ggc_alloc_string (text, len);
1298 else
1299 IDENTIFIER_POINTER (idp) = obstack_copy0 (&permanent_obstack, text, len);
1301 TREE_CHAIN (idp) = hash_table[hi];
1302 hash_table[hi] = idp;
1303 return idp; /* <-- return if created */
1306 /* If an identifier with the name TEXT (a null-terminated string) has
1307 previously been referred to, return that node; otherwise return
1308 NULL_TREE. */
1310 tree
1311 maybe_get_identifier (text)
1312 register const char *text;
1314 register int hi;
1315 register int i;
1316 register tree idp;
1317 register int len, hash_len;
1319 /* Compute length of text in len. */
1320 len = strlen (text);
1322 /* Decide how much of that length to hash on */
1323 hash_len = len;
1324 if (warn_id_clash && (unsigned)len > id_clash_len)
1325 hash_len = id_clash_len;
1327 /* Compute hash code */
1328 hi = hash_len * 613 + (unsigned) text[0];
1329 for (i = 1; i < hash_len; i += 2)
1330 hi = ((hi * 613) + (unsigned) (text[i]));
1332 hi &= (1 << HASHBITS) - 1;
1333 hi %= MAX_HASH_TABLE;
1335 /* Search table for identifier */
1336 for (idp = hash_table[hi]; idp; idp = TREE_CHAIN (idp))
1337 if (IDENTIFIER_LENGTH (idp) == len
1338 && IDENTIFIER_POINTER (idp)[0] == text[0]
1339 && !bcmp (IDENTIFIER_POINTER (idp), text, len))
1340 return idp; /* <-- return if found */
1342 return NULL_TREE;
1345 /* Enable warnings on similar identifiers (if requested).
1346 Done after the built-in identifiers are created. */
1348 void
1349 start_identifier_warnings ()
1351 do_identifier_warnings = 1;
1354 /* Record the size of an identifier node for the language in use.
1355 SIZE is the total size in bytes.
1356 This is called by the language-specific files. This must be
1357 called before allocating any identifiers. */
1359 void
1360 set_identifier_size (size)
1361 int size;
1363 tree_code_length[(int) IDENTIFIER_NODE]
1364 = (size - sizeof (struct tree_common)) / sizeof (tree);
1367 /* Return a newly constructed INTEGER_CST node whose constant value
1368 is specified by the two ints LOW and HI.
1369 The TREE_TYPE is set to `int'.
1371 This function should be used via the `build_int_2' macro. */
1373 tree
1374 build_int_2_wide (low, hi)
1375 HOST_WIDE_INT low, hi;
1377 register tree t = make_node (INTEGER_CST);
1378 TREE_INT_CST_LOW (t) = low;
1379 TREE_INT_CST_HIGH (t) = hi;
1380 TREE_TYPE (t) = integer_type_node;
1381 return t;
1384 /* Return a new REAL_CST node whose type is TYPE and value is D. */
1386 tree
1387 build_real (type, d)
1388 tree type;
1389 REAL_VALUE_TYPE d;
1391 tree v;
1392 int overflow = 0;
1394 /* Check for valid float value for this type on this target machine;
1395 if not, can print error message and store a valid value in D. */
1396 #ifdef CHECK_FLOAT_VALUE
1397 CHECK_FLOAT_VALUE (TYPE_MODE (type), d, overflow);
1398 #endif
1400 v = make_node (REAL_CST);
1401 TREE_TYPE (v) = type;
1402 TREE_REAL_CST (v) = d;
1403 TREE_OVERFLOW (v) = TREE_CONSTANT_OVERFLOW (v) = overflow;
1404 return v;
1407 /* Return a new REAL_CST node whose type is TYPE
1408 and whose value is the integer value of the INTEGER_CST node I. */
1410 #if !defined (REAL_IS_NOT_DOUBLE) || defined (REAL_ARITHMETIC)
1412 REAL_VALUE_TYPE
1413 real_value_from_int_cst (type, i)
1414 tree type, i;
1416 REAL_VALUE_TYPE d;
1418 #ifdef REAL_ARITHMETIC
1419 if (! TREE_UNSIGNED (TREE_TYPE (i)))
1420 REAL_VALUE_FROM_INT (d, TREE_INT_CST_LOW (i), TREE_INT_CST_HIGH (i),
1421 TYPE_MODE (type));
1422 else
1423 REAL_VALUE_FROM_UNSIGNED_INT (d, TREE_INT_CST_LOW (i),
1424 TREE_INT_CST_HIGH (i), TYPE_MODE (type));
1425 #else /* not REAL_ARITHMETIC */
1426 /* Some 386 compilers mishandle unsigned int to float conversions,
1427 so introduce a temporary variable E to avoid those bugs. */
1428 if (TREE_INT_CST_HIGH (i) < 0 && ! TREE_UNSIGNED (TREE_TYPE (i)))
1430 REAL_VALUE_TYPE e;
1432 d = (double) (~ TREE_INT_CST_HIGH (i));
1433 e = ((double) ((HOST_WIDE_INT) 1 << (HOST_BITS_PER_WIDE_INT / 2))
1434 * (double) ((HOST_WIDE_INT) 1 << (HOST_BITS_PER_WIDE_INT / 2)));
1435 d *= e;
1436 e = (double) (unsigned HOST_WIDE_INT) (~ TREE_INT_CST_LOW (i));
1437 d += e;
1438 d = (- d - 1.0);
1440 else
1442 REAL_VALUE_TYPE e;
1444 d = (double) (unsigned HOST_WIDE_INT) TREE_INT_CST_HIGH (i);
1445 e = ((double) ((HOST_WIDE_INT) 1 << (HOST_BITS_PER_WIDE_INT / 2))
1446 * (double) ((HOST_WIDE_INT) 1 << (HOST_BITS_PER_WIDE_INT / 2)));
1447 d *= e;
1448 e = (double) (unsigned HOST_WIDE_INT) TREE_INT_CST_LOW (i);
1449 d += e;
1451 #endif /* not REAL_ARITHMETIC */
1452 return d;
1455 struct brfic_args
1457 /* Input */
1458 tree type, i;
1459 /* Output */
1460 REAL_VALUE_TYPE d;
1463 static void
1464 build_real_from_int_cst_1 (data)
1465 PTR data;
1467 struct brfic_args * args = (struct brfic_args *) data;
1469 #ifdef REAL_ARITHMETIC
1470 args->d = real_value_from_int_cst (args->type, args->i);
1471 #else
1472 args->d =
1473 REAL_VALUE_TRUNCATE (TYPE_MODE (args->type),
1474 real_value_from_int_cst (args->type, args->i));
1475 #endif
1478 /* This function can't be implemented if we can't do arithmetic
1479 on the float representation. */
1481 tree
1482 build_real_from_int_cst (type, i)
1483 tree type;
1484 tree i;
1486 tree v;
1487 int overflow = TREE_OVERFLOW (i);
1488 REAL_VALUE_TYPE d;
1489 struct brfic_args args;
1491 v = make_node (REAL_CST);
1492 TREE_TYPE (v) = type;
1494 /* Setup input for build_real_from_int_cst_1() */
1495 args.type = type;
1496 args.i = i;
1498 if (do_float_handler (build_real_from_int_cst_1, (PTR) &args))
1500 /* Receive output from build_real_from_int_cst_1() */
1501 d = args.d;
1503 else
1505 /* We got an exception from build_real_from_int_cst_1() */
1506 d = dconst0;
1507 overflow = 1;
1510 /* Check for valid float value for this type on this target machine. */
1512 #ifdef CHECK_FLOAT_VALUE
1513 CHECK_FLOAT_VALUE (TYPE_MODE (type), d, overflow);
1514 #endif
1516 TREE_REAL_CST (v) = d;
1517 TREE_OVERFLOW (v) = TREE_CONSTANT_OVERFLOW (v) = overflow;
1518 return v;
1521 #endif /* not REAL_IS_NOT_DOUBLE, or REAL_ARITHMETIC */
1523 /* Return a newly constructed STRING_CST node whose value is
1524 the LEN characters at STR.
1525 The TREE_TYPE is not initialized. */
1527 tree
1528 build_string (len, str)
1529 int len;
1530 const char *str;
1532 /* Put the string in saveable_obstack since it will be placed in the RTL
1533 for an "asm" statement and will also be kept around a while if
1534 deferring constant output in varasm.c. */
1536 register tree s = make_node (STRING_CST);
1537 TREE_STRING_LENGTH (s) = len;
1538 if (ggc_p)
1539 TREE_STRING_POINTER (s) = ggc_alloc_string (str, len);
1540 else
1541 TREE_STRING_POINTER (s) = obstack_copy0 (saveable_obstack, str, len);
1542 return s;
1545 /* Return a newly constructed COMPLEX_CST node whose value is
1546 specified by the real and imaginary parts REAL and IMAG.
1547 Both REAL and IMAG should be constant nodes. TYPE, if specified,
1548 will be the type of the COMPLEX_CST; otherwise a new type will be made. */
1550 tree
1551 build_complex (type, real, imag)
1552 tree type;
1553 tree real, imag;
1555 register tree t = make_node (COMPLEX_CST);
1557 TREE_REALPART (t) = real;
1558 TREE_IMAGPART (t) = imag;
1559 TREE_TYPE (t) = type ? type : build_complex_type (TREE_TYPE (real));
1560 TREE_OVERFLOW (t) = TREE_OVERFLOW (real) | TREE_OVERFLOW (imag);
1561 TREE_CONSTANT_OVERFLOW (t)
1562 = TREE_CONSTANT_OVERFLOW (real) | TREE_CONSTANT_OVERFLOW (imag);
1563 return t;
1566 /* Build a newly constructed TREE_VEC node of length LEN. */
1568 tree
1569 make_tree_vec (len)
1570 int len;
1572 register tree t;
1573 register int length = (len-1) * sizeof (tree) + sizeof (struct tree_vec);
1574 register struct obstack *obstack = current_obstack;
1576 #ifdef GATHER_STATISTICS
1577 tree_node_counts[(int)vec_kind]++;
1578 tree_node_sizes[(int)vec_kind] += length;
1579 #endif
1581 if (ggc_p)
1582 t = ggc_alloc_tree (length);
1583 else
1585 t = (tree) obstack_alloc (obstack, length);
1586 bzero ((PTR) t, length);
1589 TREE_SET_CODE (t, TREE_VEC);
1590 TREE_VEC_LENGTH (t) = len;
1591 if (obstack == &permanent_obstack)
1592 TREE_PERMANENT (t) = 1;
1594 return t;
1597 /* Return 1 if EXPR is the integer constant zero or a complex constant
1598 of zero. */
1601 integer_zerop (expr)
1602 tree expr;
1604 STRIP_NOPS (expr);
1606 return ((TREE_CODE (expr) == INTEGER_CST
1607 && ! TREE_CONSTANT_OVERFLOW (expr)
1608 && TREE_INT_CST_LOW (expr) == 0
1609 && TREE_INT_CST_HIGH (expr) == 0)
1610 || (TREE_CODE (expr) == COMPLEX_CST
1611 && integer_zerop (TREE_REALPART (expr))
1612 && integer_zerop (TREE_IMAGPART (expr))));
1615 /* Return 1 if EXPR is the integer constant one or the corresponding
1616 complex constant. */
1619 integer_onep (expr)
1620 tree expr;
1622 STRIP_NOPS (expr);
1624 return ((TREE_CODE (expr) == INTEGER_CST
1625 && ! TREE_CONSTANT_OVERFLOW (expr)
1626 && TREE_INT_CST_LOW (expr) == 1
1627 && TREE_INT_CST_HIGH (expr) == 0)
1628 || (TREE_CODE (expr) == COMPLEX_CST
1629 && integer_onep (TREE_REALPART (expr))
1630 && integer_zerop (TREE_IMAGPART (expr))));
1633 /* Return 1 if EXPR is an integer containing all 1's in as much precision as
1634 it contains. Likewise for the corresponding complex constant. */
1637 integer_all_onesp (expr)
1638 tree expr;
1640 register int prec;
1641 register int uns;
1643 STRIP_NOPS (expr);
1645 if (TREE_CODE (expr) == COMPLEX_CST
1646 && integer_all_onesp (TREE_REALPART (expr))
1647 && integer_zerop (TREE_IMAGPART (expr)))
1648 return 1;
1650 else if (TREE_CODE (expr) != INTEGER_CST
1651 || TREE_CONSTANT_OVERFLOW (expr))
1652 return 0;
1654 uns = TREE_UNSIGNED (TREE_TYPE (expr));
1655 if (!uns)
1656 return TREE_INT_CST_LOW (expr) == -1 && TREE_INT_CST_HIGH (expr) == -1;
1658 /* Note that using TYPE_PRECISION here is wrong. We care about the
1659 actual bits, not the (arbitrary) range of the type. */
1660 prec = GET_MODE_BITSIZE (TYPE_MODE (TREE_TYPE (expr)));
1661 if (prec >= HOST_BITS_PER_WIDE_INT)
1663 int high_value, shift_amount;
1665 shift_amount = prec - HOST_BITS_PER_WIDE_INT;
1667 if (shift_amount > HOST_BITS_PER_WIDE_INT)
1668 /* Can not handle precisions greater than twice the host int size. */
1669 abort ();
1670 else if (shift_amount == HOST_BITS_PER_WIDE_INT)
1671 /* Shifting by the host word size is undefined according to the ANSI
1672 standard, so we must handle this as a special case. */
1673 high_value = -1;
1674 else
1675 high_value = ((HOST_WIDE_INT) 1 << shift_amount) - 1;
1677 return TREE_INT_CST_LOW (expr) == -1
1678 && TREE_INT_CST_HIGH (expr) == high_value;
1680 else
1681 return TREE_INT_CST_LOW (expr) == ((HOST_WIDE_INT) 1 << prec) - 1;
1684 /* Return 1 if EXPR is an integer constant that is a power of 2 (i.e., has only
1685 one bit on). */
1688 integer_pow2p (expr)
1689 tree expr;
1691 int prec;
1692 HOST_WIDE_INT high, low;
1694 STRIP_NOPS (expr);
1696 if (TREE_CODE (expr) == COMPLEX_CST
1697 && integer_pow2p (TREE_REALPART (expr))
1698 && integer_zerop (TREE_IMAGPART (expr)))
1699 return 1;
1701 if (TREE_CODE (expr) != INTEGER_CST || TREE_CONSTANT_OVERFLOW (expr))
1702 return 0;
1704 prec = (POINTER_TYPE_P (TREE_TYPE (expr))
1705 ? POINTER_SIZE : TYPE_PRECISION (TREE_TYPE (expr)));
1706 high = TREE_INT_CST_HIGH (expr);
1707 low = TREE_INT_CST_LOW (expr);
1709 /* First clear all bits that are beyond the type's precision in case
1710 we've been sign extended. */
1712 if (prec == 2 * HOST_BITS_PER_WIDE_INT)
1714 else if (prec > HOST_BITS_PER_WIDE_INT)
1715 high &= ~((HOST_WIDE_INT) (-1) << (prec - HOST_BITS_PER_WIDE_INT));
1716 else
1718 high = 0;
1719 if (prec < HOST_BITS_PER_WIDE_INT)
1720 low &= ~((HOST_WIDE_INT) (-1) << prec);
1723 if (high == 0 && low == 0)
1724 return 0;
1726 return ((high == 0 && (low & (low - 1)) == 0)
1727 || (low == 0 && (high & (high - 1)) == 0));
1730 /* Return the power of two represented by a tree node known to be a
1731 power of two. */
1734 tree_log2 (expr)
1735 tree expr;
1737 int prec;
1738 HOST_WIDE_INT high, low;
1740 STRIP_NOPS (expr);
1742 if (TREE_CODE (expr) == COMPLEX_CST)
1743 return tree_log2 (TREE_REALPART (expr));
1745 prec = (POINTER_TYPE_P (TREE_TYPE (expr))
1746 ? POINTER_SIZE : TYPE_PRECISION (TREE_TYPE (expr)));
1748 high = TREE_INT_CST_HIGH (expr);
1749 low = TREE_INT_CST_LOW (expr);
1751 /* First clear all bits that are beyond the type's precision in case
1752 we've been sign extended. */
1754 if (prec == 2 * HOST_BITS_PER_WIDE_INT)
1756 else if (prec > HOST_BITS_PER_WIDE_INT)
1757 high &= ~((HOST_WIDE_INT) (-1) << (prec - HOST_BITS_PER_WIDE_INT));
1758 else
1760 high = 0;
1761 if (prec < HOST_BITS_PER_WIDE_INT)
1762 low &= ~((HOST_WIDE_INT) (-1) << prec);
1765 return (high != 0 ? HOST_BITS_PER_WIDE_INT + exact_log2 (high)
1766 : exact_log2 (low));
1769 /* Return 1 if EXPR is the real constant zero. */
1772 real_zerop (expr)
1773 tree expr;
1775 STRIP_NOPS (expr);
1777 return ((TREE_CODE (expr) == REAL_CST
1778 && ! TREE_CONSTANT_OVERFLOW (expr)
1779 && REAL_VALUES_EQUAL (TREE_REAL_CST (expr), dconst0))
1780 || (TREE_CODE (expr) == COMPLEX_CST
1781 && real_zerop (TREE_REALPART (expr))
1782 && real_zerop (TREE_IMAGPART (expr))));
1785 /* Return 1 if EXPR is the real constant one in real or complex form. */
1788 real_onep (expr)
1789 tree expr;
1791 STRIP_NOPS (expr);
1793 return ((TREE_CODE (expr) == REAL_CST
1794 && ! TREE_CONSTANT_OVERFLOW (expr)
1795 && REAL_VALUES_EQUAL (TREE_REAL_CST (expr), dconst1))
1796 || (TREE_CODE (expr) == COMPLEX_CST
1797 && real_onep (TREE_REALPART (expr))
1798 && real_zerop (TREE_IMAGPART (expr))));
1801 /* Return 1 if EXPR is the real constant two. */
1804 real_twop (expr)
1805 tree expr;
1807 STRIP_NOPS (expr);
1809 return ((TREE_CODE (expr) == REAL_CST
1810 && ! TREE_CONSTANT_OVERFLOW (expr)
1811 && REAL_VALUES_EQUAL (TREE_REAL_CST (expr), dconst2))
1812 || (TREE_CODE (expr) == COMPLEX_CST
1813 && real_twop (TREE_REALPART (expr))
1814 && real_zerop (TREE_IMAGPART (expr))));
1817 /* Nonzero if EXP is a constant or a cast of a constant. */
1820 really_constant_p (exp)
1821 tree exp;
1823 /* This is not quite the same as STRIP_NOPS. It does more. */
1824 while (TREE_CODE (exp) == NOP_EXPR
1825 || TREE_CODE (exp) == CONVERT_EXPR
1826 || TREE_CODE (exp) == NON_LVALUE_EXPR)
1827 exp = TREE_OPERAND (exp, 0);
1828 return TREE_CONSTANT (exp);
1831 /* Return first list element whose TREE_VALUE is ELEM.
1832 Return 0 if ELEM is not in LIST. */
1834 tree
1835 value_member (elem, list)
1836 tree elem, list;
1838 while (list)
1840 if (elem == TREE_VALUE (list))
1841 return list;
1842 list = TREE_CHAIN (list);
1844 return NULL_TREE;
1847 /* Return first list element whose TREE_PURPOSE is ELEM.
1848 Return 0 if ELEM is not in LIST. */
1850 tree
1851 purpose_member (elem, list)
1852 tree elem, list;
1854 while (list)
1856 if (elem == TREE_PURPOSE (list))
1857 return list;
1858 list = TREE_CHAIN (list);
1860 return NULL_TREE;
1863 /* Return first list element whose BINFO_TYPE is ELEM.
1864 Return 0 if ELEM is not in LIST. */
1866 tree
1867 binfo_member (elem, list)
1868 tree elem, list;
1870 while (list)
1872 if (elem == BINFO_TYPE (list))
1873 return list;
1874 list = TREE_CHAIN (list);
1876 return NULL_TREE;
1879 /* Return nonzero if ELEM is part of the chain CHAIN. */
1882 chain_member (elem, chain)
1883 tree elem, chain;
1885 while (chain)
1887 if (elem == chain)
1888 return 1;
1889 chain = TREE_CHAIN (chain);
1892 return 0;
1895 /* Return nonzero if ELEM is equal to TREE_VALUE (CHAIN) for any piece of
1896 chain CHAIN. */
1897 /* ??? This function was added for machine specific attributes but is no
1898 longer used. It could be deleted if we could confirm all front ends
1899 don't use it. */
1902 chain_member_value (elem, chain)
1903 tree elem, chain;
1905 while (chain)
1907 if (elem == TREE_VALUE (chain))
1908 return 1;
1909 chain = TREE_CHAIN (chain);
1912 return 0;
1915 /* Return nonzero if ELEM is equal to TREE_PURPOSE (CHAIN)
1916 for any piece of chain CHAIN. */
1917 /* ??? This function was added for machine specific attributes but is no
1918 longer used. It could be deleted if we could confirm all front ends
1919 don't use it. */
1922 chain_member_purpose (elem, chain)
1923 tree elem, chain;
1925 while (chain)
1927 if (elem == TREE_PURPOSE (chain))
1928 return 1;
1929 chain = TREE_CHAIN (chain);
1932 return 0;
1935 /* Return the length of a chain of nodes chained through TREE_CHAIN.
1936 We expect a null pointer to mark the end of the chain.
1937 This is the Lisp primitive `length'. */
1940 list_length (t)
1941 tree t;
1943 register tree tail;
1944 register int len = 0;
1946 for (tail = t; tail; tail = TREE_CHAIN (tail))
1947 len++;
1949 return len;
1952 /* Concatenate two chains of nodes (chained through TREE_CHAIN)
1953 by modifying the last node in chain 1 to point to chain 2.
1954 This is the Lisp primitive `nconc'. */
1956 tree
1957 chainon (op1, op2)
1958 tree op1, op2;
1961 if (op1)
1963 register tree t1;
1964 #ifdef ENABLE_CHECKING
1965 register tree t2;
1966 #endif
1968 for (t1 = op1; TREE_CHAIN (t1); t1 = TREE_CHAIN (t1))
1970 TREE_CHAIN (t1) = op2;
1971 #ifdef ENABLE_CHECKING
1972 for (t2 = op2; t2; t2 = TREE_CHAIN (t2))
1973 if (t2 == t1)
1974 abort (); /* Circularity created. */
1975 #endif
1976 return op1;
1978 else return op2;
1981 /* Return the last node in a chain of nodes (chained through TREE_CHAIN). */
1983 tree
1984 tree_last (chain)
1985 register tree chain;
1987 register tree next;
1988 if (chain)
1989 while ((next = TREE_CHAIN (chain)))
1990 chain = next;
1991 return chain;
1994 /* Reverse the order of elements in the chain T,
1995 and return the new head of the chain (old last element). */
1997 tree
1998 nreverse (t)
1999 tree t;
2001 register tree prev = 0, decl, next;
2002 for (decl = t; decl; decl = next)
2004 next = TREE_CHAIN (decl);
2005 TREE_CHAIN (decl) = prev;
2006 prev = decl;
2008 return prev;
2011 /* Given a chain CHAIN of tree nodes,
2012 construct and return a list of those nodes. */
2014 tree
2015 listify (chain)
2016 tree chain;
2018 tree result = NULL_TREE;
2019 tree in_tail = chain;
2020 tree out_tail = NULL_TREE;
2022 while (in_tail)
2024 tree next = tree_cons (NULL_TREE, in_tail, NULL_TREE);
2025 if (out_tail)
2026 TREE_CHAIN (out_tail) = next;
2027 else
2028 result = next;
2029 out_tail = next;
2030 in_tail = TREE_CHAIN (in_tail);
2033 return result;
2036 /* Return a newly created TREE_LIST node whose
2037 purpose and value fields are PARM and VALUE. */
2039 tree
2040 build_tree_list (parm, value)
2041 tree parm, value;
2043 register tree t = make_node (TREE_LIST);
2044 TREE_PURPOSE (t) = parm;
2045 TREE_VALUE (t) = value;
2046 return t;
2049 /* Similar, but build on the temp_decl_obstack. */
2051 tree
2052 build_decl_list (parm, value)
2053 tree parm, value;
2055 register tree node;
2056 register struct obstack *ambient_obstack = current_obstack;
2057 current_obstack = &temp_decl_obstack;
2058 node = build_tree_list (parm, value);
2059 current_obstack = ambient_obstack;
2060 return node;
2063 /* Similar, but build on the expression_obstack. */
2065 tree
2066 build_expr_list (parm, value)
2067 tree parm, value;
2069 register tree node;
2070 register struct obstack *ambient_obstack = current_obstack;
2071 current_obstack = expression_obstack;
2072 node = build_tree_list (parm, value);
2073 current_obstack = ambient_obstack;
2074 return node;
2077 /* Return a newly created TREE_LIST node whose
2078 purpose and value fields are PARM and VALUE
2079 and whose TREE_CHAIN is CHAIN. */
2081 tree
2082 tree_cons (purpose, value, chain)
2083 tree purpose, value, chain;
2085 #if 0
2086 register tree node = make_node (TREE_LIST);
2087 #else
2088 register tree node;
2090 if (ggc_p)
2091 node = ggc_alloc_tree (sizeof (struct tree_list));
2092 else
2094 node = (tree) obstack_alloc (current_obstack, sizeof (struct tree_list));
2095 memset (node, 0, sizeof (struct tree_common));
2098 #ifdef GATHER_STATISTICS
2099 tree_node_counts[(int)x_kind]++;
2100 tree_node_sizes[(int)x_kind] += sizeof (struct tree_list);
2101 #endif
2104 TREE_SET_CODE (node, TREE_LIST);
2105 if (current_obstack == &permanent_obstack)
2106 TREE_PERMANENT (node) = 1;
2107 #endif
2109 TREE_CHAIN (node) = chain;
2110 TREE_PURPOSE (node) = purpose;
2111 TREE_VALUE (node) = value;
2112 return node;
2115 /* Similar, but build on the temp_decl_obstack. */
2117 tree
2118 decl_tree_cons (purpose, value, chain)
2119 tree purpose, value, chain;
2121 register tree node;
2122 register struct obstack *ambient_obstack = current_obstack;
2123 current_obstack = &temp_decl_obstack;
2124 node = tree_cons (purpose, value, chain);
2125 current_obstack = ambient_obstack;
2126 return node;
2129 /* Similar, but build on the expression_obstack. */
2131 tree
2132 expr_tree_cons (purpose, value, chain)
2133 tree purpose, value, chain;
2135 register tree node;
2136 register struct obstack *ambient_obstack = current_obstack;
2137 current_obstack = expression_obstack;
2138 node = tree_cons (purpose, value, chain);
2139 current_obstack = ambient_obstack;
2140 return node;
2143 /* Same as `tree_cons' but make a permanent object. */
2145 tree
2146 perm_tree_cons (purpose, value, chain)
2147 tree purpose, value, chain;
2149 register tree node;
2150 register struct obstack *ambient_obstack = current_obstack;
2151 current_obstack = &permanent_obstack;
2153 node = tree_cons (purpose, value, chain);
2154 current_obstack = ambient_obstack;
2155 return node;
2158 /* Same as `tree_cons', but make this node temporary, regardless. */
2160 tree
2161 temp_tree_cons (purpose, value, chain)
2162 tree purpose, value, chain;
2164 register tree node;
2165 register struct obstack *ambient_obstack = current_obstack;
2166 current_obstack = &temporary_obstack;
2168 node = tree_cons (purpose, value, chain);
2169 current_obstack = ambient_obstack;
2170 return node;
2173 /* Same as `tree_cons', but save this node if the function's RTL is saved. */
2175 tree
2176 saveable_tree_cons (purpose, value, chain)
2177 tree purpose, value, chain;
2179 register tree node;
2180 register struct obstack *ambient_obstack = current_obstack;
2181 current_obstack = saveable_obstack;
2183 node = tree_cons (purpose, value, chain);
2184 current_obstack = ambient_obstack;
2185 return node;
2188 /* Return the size nominally occupied by an object of type TYPE
2189 when it resides in memory. The value is measured in units of bytes,
2190 and its data type is that normally used for type sizes
2191 (which is the first type created by make_signed_type or
2192 make_unsigned_type). */
2194 tree
2195 size_in_bytes (type)
2196 tree type;
2198 tree t;
2200 if (type == error_mark_node)
2201 return integer_zero_node;
2203 type = TYPE_MAIN_VARIANT (type);
2204 t = TYPE_SIZE_UNIT (type);
2205 if (t == 0)
2207 incomplete_type_error (NULL_TREE, type);
2208 return integer_zero_node;
2210 if (TREE_CODE (t) == INTEGER_CST)
2211 force_fit_type (t, 0);
2213 return t;
2216 /* Return the size of TYPE (in bytes) as a wide integer
2217 or return -1 if the size can vary or is larger than an integer. */
2219 HOST_WIDE_INT
2220 int_size_in_bytes (type)
2221 tree type;
2223 tree t;
2225 if (type == error_mark_node)
2226 return 0;
2228 type = TYPE_MAIN_VARIANT (type);
2229 t = TYPE_SIZE_UNIT (type);
2230 if (t == 0
2231 || TREE_CODE (t) != INTEGER_CST
2232 || TREE_INT_CST_HIGH (t) != 0)
2233 return -1;
2235 return TREE_INT_CST_LOW (t);
2238 /* Return, as a tree node, the number of elements for TYPE (which is an
2239 ARRAY_TYPE) minus one. This counts only elements of the top array.
2241 Don't let any SAVE_EXPRs escape; if we are called as part of a cleanup
2242 action, they would get unsaved. */
2244 tree
2245 array_type_nelts (type)
2246 tree type;
2248 tree index_type, min, max;
2250 /* If they did it with unspecified bounds, then we should have already
2251 given an error about it before we got here. */
2252 if (! TYPE_DOMAIN (type))
2253 return error_mark_node;
2255 index_type = TYPE_DOMAIN (type);
2256 min = TYPE_MIN_VALUE (index_type);
2257 max = TYPE_MAX_VALUE (index_type);
2259 if (! TREE_CONSTANT (min))
2261 STRIP_NOPS (min);
2262 if (TREE_CODE (min) == SAVE_EXPR && SAVE_EXPR_RTL (min))
2263 min = build (RTL_EXPR, TREE_TYPE (TYPE_MIN_VALUE (index_type)), 0,
2264 SAVE_EXPR_RTL (min));
2265 else
2266 min = TYPE_MIN_VALUE (index_type);
2269 if (! TREE_CONSTANT (max))
2271 STRIP_NOPS (max);
2272 if (TREE_CODE (max) == SAVE_EXPR && SAVE_EXPR_RTL (max))
2273 max = build (RTL_EXPR, TREE_TYPE (TYPE_MAX_VALUE (index_type)), 0,
2274 SAVE_EXPR_RTL (max));
2275 else
2276 max = TYPE_MAX_VALUE (index_type);
2279 return (integer_zerop (min)
2280 ? max
2281 : fold (build (MINUS_EXPR, TREE_TYPE (max), max, min)));
2284 /* Return nonzero if arg is static -- a reference to an object in
2285 static storage. This is not the same as the C meaning of `static'. */
2288 staticp (arg)
2289 tree arg;
2291 switch (TREE_CODE (arg))
2293 case FUNCTION_DECL:
2294 /* Nested functions aren't static, since taking their address
2295 involves a trampoline. */
2296 return (decl_function_context (arg) == 0 || DECL_NO_STATIC_CHAIN (arg))
2297 && ! DECL_NON_ADDR_CONST_P (arg);
2299 case VAR_DECL:
2300 return (TREE_STATIC (arg) || DECL_EXTERNAL (arg))
2301 && ! DECL_NON_ADDR_CONST_P (arg);
2303 case CONSTRUCTOR:
2304 return TREE_STATIC (arg);
2306 case STRING_CST:
2307 return 1;
2309 /* If we are referencing a bitfield, we can't evaluate an
2310 ADDR_EXPR at compile time and so it isn't a constant. */
2311 case COMPONENT_REF:
2312 return (! DECL_BIT_FIELD (TREE_OPERAND (arg, 1))
2313 && staticp (TREE_OPERAND (arg, 0)));
2315 case BIT_FIELD_REF:
2316 return 0;
2318 #if 0
2319 /* This case is technically correct, but results in setting
2320 TREE_CONSTANT on ADDR_EXPRs that cannot be evaluated at
2321 compile time. */
2322 case INDIRECT_REF:
2323 return TREE_CONSTANT (TREE_OPERAND (arg, 0));
2324 #endif
2326 case ARRAY_REF:
2327 if (TREE_CODE (TYPE_SIZE (TREE_TYPE (arg))) == INTEGER_CST
2328 && TREE_CODE (TREE_OPERAND (arg, 1)) == INTEGER_CST)
2329 return staticp (TREE_OPERAND (arg, 0));
2331 default:
2332 return 0;
2336 /* Wrap a SAVE_EXPR around EXPR, if appropriate.
2337 Do this to any expression which may be used in more than one place,
2338 but must be evaluated only once.
2340 Normally, expand_expr would reevaluate the expression each time.
2341 Calling save_expr produces something that is evaluated and recorded
2342 the first time expand_expr is called on it. Subsequent calls to
2343 expand_expr just reuse the recorded value.
2345 The call to expand_expr that generates code that actually computes
2346 the value is the first call *at compile time*. Subsequent calls
2347 *at compile time* generate code to use the saved value.
2348 This produces correct result provided that *at run time* control
2349 always flows through the insns made by the first expand_expr
2350 before reaching the other places where the save_expr was evaluated.
2351 You, the caller of save_expr, must make sure this is so.
2353 Constants, and certain read-only nodes, are returned with no
2354 SAVE_EXPR because that is safe. Expressions containing placeholders
2355 are not touched; see tree.def for an explanation of what these
2356 are used for. */
2358 tree
2359 save_expr (expr)
2360 tree expr;
2362 register tree t = fold (expr);
2364 /* We don't care about whether this can be used as an lvalue in this
2365 context. */
2366 while (TREE_CODE (t) == NON_LVALUE_EXPR)
2367 t = TREE_OPERAND (t, 0);
2369 /* If the tree evaluates to a constant, then we don't want to hide that
2370 fact (i.e. this allows further folding, and direct checks for constants).
2371 However, a read-only object that has side effects cannot be bypassed.
2372 Since it is no problem to reevaluate literals, we just return the
2373 literal node. */
2375 if (TREE_CONSTANT (t) || (TREE_READONLY (t) && ! TREE_SIDE_EFFECTS (t))
2376 || TREE_CODE (t) == SAVE_EXPR || TREE_CODE (t) == ERROR_MARK)
2377 return t;
2379 /* If T contains a PLACEHOLDER_EXPR, we must evaluate it each time, since
2380 it means that the size or offset of some field of an object depends on
2381 the value within another field.
2383 Note that it must not be the case that T contains both a PLACEHOLDER_EXPR
2384 and some variable since it would then need to be both evaluated once and
2385 evaluated more than once. Front-ends must assure this case cannot
2386 happen by surrounding any such subexpressions in their own SAVE_EXPR
2387 and forcing evaluation at the proper time. */
2388 if (contains_placeholder_p (t))
2389 return t;
2391 t = build (SAVE_EXPR, TREE_TYPE (expr), t, current_function_decl, NULL_TREE);
2393 /* This expression might be placed ahead of a jump to ensure that the
2394 value was computed on both sides of the jump. So make sure it isn't
2395 eliminated as dead. */
2396 TREE_SIDE_EFFECTS (t) = 1;
2397 return t;
2400 /* Arrange for an expression to be expanded multiple independent
2401 times. This is useful for cleanup actions, as the backend can
2402 expand them multiple times in different places. */
2404 tree
2405 unsave_expr (expr)
2406 tree expr;
2408 tree t;
2410 /* If this is already protected, no sense in protecting it again. */
2411 if (TREE_CODE (expr) == UNSAVE_EXPR)
2412 return expr;
2414 t = build1 (UNSAVE_EXPR, TREE_TYPE (expr), expr);
2415 TREE_SIDE_EFFECTS (t) = TREE_SIDE_EFFECTS (expr);
2416 return t;
2419 /* Returns the index of the first non-tree operand for CODE, or the number
2420 of operands if all are trees. */
2423 first_rtl_op (code)
2424 enum tree_code code;
2426 switch (code)
2428 case SAVE_EXPR:
2429 return 2;
2430 case GOTO_SUBROUTINE_EXPR:
2431 case RTL_EXPR:
2432 return 0;
2433 case CALL_EXPR:
2434 return 2;
2435 case WITH_CLEANUP_EXPR:
2436 /* Should be defined to be 2. */
2437 return 1;
2438 case METHOD_CALL_EXPR:
2439 return 3;
2440 default:
2441 return tree_code_length [(int) code];
2445 /* Modify a tree in place so that all the evaluate only once things
2446 are cleared out. Return the EXPR given.
2448 LANG_UNSAVE_EXPR_NOW, if set, is a pointer to a function to handle
2449 language specific nodes.
2452 tree
2453 unsave_expr_now (expr)
2454 tree expr;
2456 enum tree_code code;
2457 register int i;
2458 int first_rtl;
2460 if (expr == NULL_TREE)
2461 return expr;
2463 code = TREE_CODE (expr);
2464 first_rtl = first_rtl_op (code);
2465 switch (code)
2467 case SAVE_EXPR:
2468 SAVE_EXPR_RTL (expr) = 0;
2469 break;
2471 case TARGET_EXPR:
2472 TREE_OPERAND (expr, 1) = TREE_OPERAND (expr, 3);
2473 TREE_OPERAND (expr, 3) = NULL_TREE;
2474 break;
2476 case RTL_EXPR:
2477 /* I don't yet know how to emit a sequence multiple times. */
2478 if (RTL_EXPR_SEQUENCE (expr) != 0)
2479 abort ();
2480 break;
2482 case CALL_EXPR:
2483 CALL_EXPR_RTL (expr) = 0;
2484 if (TREE_OPERAND (expr, 1)
2485 && TREE_CODE (TREE_OPERAND (expr, 1)) == TREE_LIST)
2487 tree exp = TREE_OPERAND (expr, 1);
2488 while (exp)
2490 unsave_expr_now (TREE_VALUE (exp));
2491 exp = TREE_CHAIN (exp);
2494 break;
2496 default:
2497 if (lang_unsave_expr_now)
2498 (*lang_unsave_expr_now) (expr);
2499 break;
2502 switch (TREE_CODE_CLASS (code))
2504 case 'c': /* a constant */
2505 case 't': /* a type node */
2506 case 'x': /* something random, like an identifier or an ERROR_MARK. */
2507 case 'd': /* A decl node */
2508 case 'b': /* A block node */
2509 return expr;
2511 case 'e': /* an expression */
2512 case 'r': /* a reference */
2513 case 's': /* an expression with side effects */
2514 case '<': /* a comparison expression */
2515 case '2': /* a binary arithmetic expression */
2516 case '1': /* a unary arithmetic expression */
2517 for (i = first_rtl - 1; i >= 0; i--)
2518 unsave_expr_now (TREE_OPERAND (expr, i));
2519 return expr;
2521 default:
2522 abort ();
2526 /* Return 1 if EXP contains a PLACEHOLDER_EXPR; i.e., if it represents a size
2527 or offset that depends on a field within a record. */
2530 contains_placeholder_p (exp)
2531 tree exp;
2533 register enum tree_code code = TREE_CODE (exp);
2534 int result;
2536 /* If we have a WITH_RECORD_EXPR, it "cancels" any PLACEHOLDER_EXPR
2537 in it since it is supplying a value for it. */
2538 if (code == WITH_RECORD_EXPR)
2539 return 0;
2540 else if (code == PLACEHOLDER_EXPR)
2541 return 1;
2543 switch (TREE_CODE_CLASS (code))
2545 case 'r':
2546 /* Don't look at any PLACEHOLDER_EXPRs that might be in index or bit
2547 position computations since they will be converted into a
2548 WITH_RECORD_EXPR involving the reference, which will assume
2549 here will be valid. */
2550 return contains_placeholder_p (TREE_OPERAND (exp, 0));
2552 case 'x':
2553 if (code == TREE_LIST)
2554 return (contains_placeholder_p (TREE_VALUE (exp))
2555 || (TREE_CHAIN (exp) != 0
2556 && contains_placeholder_p (TREE_CHAIN (exp))));
2557 break;
2559 case '1':
2560 case '2': case '<':
2561 case 'e':
2562 switch (code)
2564 case COMPOUND_EXPR:
2565 /* Ignoring the first operand isn't quite right, but works best. */
2566 return contains_placeholder_p (TREE_OPERAND (exp, 1));
2568 case RTL_EXPR:
2569 case CONSTRUCTOR:
2570 return 0;
2572 case COND_EXPR:
2573 return (contains_placeholder_p (TREE_OPERAND (exp, 0))
2574 || contains_placeholder_p (TREE_OPERAND (exp, 1))
2575 || contains_placeholder_p (TREE_OPERAND (exp, 2)));
2577 case SAVE_EXPR:
2578 /* If we already know this doesn't have a placeholder, don't
2579 check again. */
2580 if (SAVE_EXPR_NOPLACEHOLDER (exp) || SAVE_EXPR_RTL (exp) != 0)
2581 return 0;
2583 SAVE_EXPR_NOPLACEHOLDER (exp) = 1;
2584 result = contains_placeholder_p (TREE_OPERAND (exp, 0));
2585 if (result)
2586 SAVE_EXPR_NOPLACEHOLDER (exp) = 0;
2588 return result;
2590 case CALL_EXPR:
2591 return (TREE_OPERAND (exp, 1) != 0
2592 && contains_placeholder_p (TREE_OPERAND (exp, 1)));
2594 default:
2595 break;
2598 switch (tree_code_length[(int) code])
2600 case 1:
2601 return contains_placeholder_p (TREE_OPERAND (exp, 0));
2602 case 2:
2603 return (contains_placeholder_p (TREE_OPERAND (exp, 0))
2604 || contains_placeholder_p (TREE_OPERAND (exp, 1)));
2605 default:
2606 return 0;
2609 default:
2610 return 0;
2612 return 0;
2615 /* Return 1 if EXP contains any expressions that produce cleanups for an
2616 outer scope to deal with. Used by fold. */
2619 has_cleanups (exp)
2620 tree exp;
2622 int i, nops, cmp;
2624 if (! TREE_SIDE_EFFECTS (exp))
2625 return 0;
2627 switch (TREE_CODE (exp))
2629 case TARGET_EXPR:
2630 case GOTO_SUBROUTINE_EXPR:
2631 case WITH_CLEANUP_EXPR:
2632 return 1;
2634 case CLEANUP_POINT_EXPR:
2635 return 0;
2637 case CALL_EXPR:
2638 for (exp = TREE_OPERAND (exp, 1); exp; exp = TREE_CHAIN (exp))
2640 cmp = has_cleanups (TREE_VALUE (exp));
2641 if (cmp)
2642 return cmp;
2644 return 0;
2646 default:
2647 break;
2650 /* This general rule works for most tree codes. All exceptions should be
2651 handled above. If this is a language-specific tree code, we can't
2652 trust what might be in the operand, so say we don't know
2653 the situation. */
2654 if ((int) TREE_CODE (exp) >= (int) LAST_AND_UNUSED_TREE_CODE)
2655 return -1;
2657 nops = first_rtl_op (TREE_CODE (exp));
2658 for (i = 0; i < nops; i++)
2659 if (TREE_OPERAND (exp, i) != 0)
2661 int type = TREE_CODE_CLASS (TREE_CODE (TREE_OPERAND (exp, i)));
2662 if (type == 'e' || type == '<' || type == '1' || type == '2'
2663 || type == 'r' || type == 's')
2665 cmp = has_cleanups (TREE_OPERAND (exp, i));
2666 if (cmp)
2667 return cmp;
2671 return 0;
2674 /* Given a tree EXP, a FIELD_DECL F, and a replacement value R,
2675 return a tree with all occurrences of references to F in a
2676 PLACEHOLDER_EXPR replaced by R. Note that we assume here that EXP
2677 contains only arithmetic expressions or a CALL_EXPR with a
2678 PLACEHOLDER_EXPR occurring only in its arglist. */
2680 tree
2681 substitute_in_expr (exp, f, r)
2682 tree exp;
2683 tree f;
2684 tree r;
2686 enum tree_code code = TREE_CODE (exp);
2687 tree op0, op1, op2;
2688 tree new;
2689 tree inner;
2691 switch (TREE_CODE_CLASS (code))
2693 case 'c':
2694 case 'd':
2695 return exp;
2697 case 'x':
2698 if (code == PLACEHOLDER_EXPR)
2699 return exp;
2700 else if (code == TREE_LIST)
2702 op0 = (TREE_CHAIN (exp) == 0
2703 ? 0 : substitute_in_expr (TREE_CHAIN (exp), f, r));
2704 op1 = substitute_in_expr (TREE_VALUE (exp), f, r);
2705 if (op0 == TREE_CHAIN (exp) && op1 == TREE_VALUE (exp))
2706 return exp;
2708 return tree_cons (TREE_PURPOSE (exp), op1, op0);
2711 abort ();
2713 case '1':
2714 case '2':
2715 case '<':
2716 case 'e':
2717 switch (tree_code_length[(int) code])
2719 case 1:
2720 op0 = substitute_in_expr (TREE_OPERAND (exp, 0), f, r);
2721 if (op0 == TREE_OPERAND (exp, 0))
2722 return exp;
2724 new = fold (build1 (code, TREE_TYPE (exp), op0));
2725 break;
2727 case 2:
2728 /* An RTL_EXPR cannot contain a PLACEHOLDER_EXPR; a CONSTRUCTOR
2729 could, but we don't support it. */
2730 if (code == RTL_EXPR)
2731 return exp;
2732 else if (code == CONSTRUCTOR)
2733 abort ();
2735 op0 = substitute_in_expr (TREE_OPERAND (exp, 0), f, r);
2736 op1 = substitute_in_expr (TREE_OPERAND (exp, 1), f, r);
2737 if (op0 == TREE_OPERAND (exp, 0) && op1 == TREE_OPERAND (exp, 1))
2738 return exp;
2740 new = fold (build (code, TREE_TYPE (exp), op0, op1));
2741 break;
2743 case 3:
2744 /* It cannot be that anything inside a SAVE_EXPR contains a
2745 PLACEHOLDER_EXPR. */
2746 if (code == SAVE_EXPR)
2747 return exp;
2749 else if (code == CALL_EXPR)
2751 op1 = substitute_in_expr (TREE_OPERAND (exp, 1), f, r);
2752 if (op1 == TREE_OPERAND (exp, 1))
2753 return exp;
2755 return build (code, TREE_TYPE (exp),
2756 TREE_OPERAND (exp, 0), op1, NULL_TREE);
2759 else if (code != COND_EXPR)
2760 abort ();
2762 op0 = substitute_in_expr (TREE_OPERAND (exp, 0), f, r);
2763 op1 = substitute_in_expr (TREE_OPERAND (exp, 1), f, r);
2764 op2 = substitute_in_expr (TREE_OPERAND (exp, 2), f, r);
2765 if (op0 == TREE_OPERAND (exp, 0) && op1 == TREE_OPERAND (exp, 1)
2766 && op2 == TREE_OPERAND (exp, 2))
2767 return exp;
2769 new = fold (build (code, TREE_TYPE (exp), op0, op1, op2));
2770 break;
2772 default:
2773 abort ();
2776 break;
2778 case 'r':
2779 switch (code)
2781 case COMPONENT_REF:
2782 /* If this expression is getting a value from a PLACEHOLDER_EXPR
2783 and it is the right field, replace it with R. */
2784 for (inner = TREE_OPERAND (exp, 0);
2785 TREE_CODE_CLASS (TREE_CODE (inner)) == 'r';
2786 inner = TREE_OPERAND (inner, 0))
2788 if (TREE_CODE (inner) == PLACEHOLDER_EXPR
2789 && TREE_OPERAND (exp, 1) == f)
2790 return r;
2792 /* If this expression hasn't been completed let, leave it
2793 alone. */
2794 if (TREE_CODE (inner) == PLACEHOLDER_EXPR
2795 && TREE_TYPE (inner) == 0)
2796 return exp;
2798 op0 = substitute_in_expr (TREE_OPERAND (exp, 0), f, r);
2799 if (op0 == TREE_OPERAND (exp, 0))
2800 return exp;
2802 new = fold (build (code, TREE_TYPE (exp), op0,
2803 TREE_OPERAND (exp, 1)));
2804 break;
2806 case BIT_FIELD_REF:
2807 op0 = substitute_in_expr (TREE_OPERAND (exp, 0), f, r);
2808 op1 = substitute_in_expr (TREE_OPERAND (exp, 1), f, r);
2809 op2 = substitute_in_expr (TREE_OPERAND (exp, 2), f, r);
2810 if (op0 == TREE_OPERAND (exp, 0) && op1 == TREE_OPERAND (exp, 1)
2811 && op2 == TREE_OPERAND (exp, 2))
2812 return exp;
2814 new = fold (build (code, TREE_TYPE (exp), op0, op1, op2));
2815 break;
2817 case INDIRECT_REF:
2818 case BUFFER_REF:
2819 op0 = substitute_in_expr (TREE_OPERAND (exp, 0), f, r);
2820 if (op0 == TREE_OPERAND (exp, 0))
2821 return exp;
2823 new = fold (build1 (code, TREE_TYPE (exp), op0));
2824 break;
2826 default:
2827 abort ();
2829 break;
2831 default:
2832 abort ();
2835 TREE_READONLY (new) = TREE_READONLY (exp);
2836 return new;
2839 /* Stabilize a reference so that we can use it any number of times
2840 without causing its operands to be evaluated more than once.
2841 Returns the stabilized reference. This works by means of save_expr,
2842 so see the caveats in the comments about save_expr.
2844 Also allows conversion expressions whose operands are references.
2845 Any other kind of expression is returned unchanged. */
2847 tree
2848 stabilize_reference (ref)
2849 tree ref;
2851 register tree result;
2852 register enum tree_code code = TREE_CODE (ref);
2854 switch (code)
2856 case VAR_DECL:
2857 case PARM_DECL:
2858 case RESULT_DECL:
2859 /* No action is needed in this case. */
2860 return ref;
2862 case NOP_EXPR:
2863 case CONVERT_EXPR:
2864 case FLOAT_EXPR:
2865 case FIX_TRUNC_EXPR:
2866 case FIX_FLOOR_EXPR:
2867 case FIX_ROUND_EXPR:
2868 case FIX_CEIL_EXPR:
2869 result = build_nt (code, stabilize_reference (TREE_OPERAND (ref, 0)));
2870 break;
2872 case INDIRECT_REF:
2873 result = build_nt (INDIRECT_REF,
2874 stabilize_reference_1 (TREE_OPERAND (ref, 0)));
2875 break;
2877 case COMPONENT_REF:
2878 result = build_nt (COMPONENT_REF,
2879 stabilize_reference (TREE_OPERAND (ref, 0)),
2880 TREE_OPERAND (ref, 1));
2881 break;
2883 case BIT_FIELD_REF:
2884 result = build_nt (BIT_FIELD_REF,
2885 stabilize_reference (TREE_OPERAND (ref, 0)),
2886 stabilize_reference_1 (TREE_OPERAND (ref, 1)),
2887 stabilize_reference_1 (TREE_OPERAND (ref, 2)));
2888 break;
2890 case ARRAY_REF:
2891 result = build_nt (ARRAY_REF,
2892 stabilize_reference (TREE_OPERAND (ref, 0)),
2893 stabilize_reference_1 (TREE_OPERAND (ref, 1)));
2894 break;
2896 case COMPOUND_EXPR:
2897 /* We cannot wrap the first expression in a SAVE_EXPR, as then
2898 it wouldn't be ignored. This matters when dealing with
2899 volatiles. */
2900 return stabilize_reference_1 (ref);
2902 case RTL_EXPR:
2903 result = build1 (INDIRECT_REF, TREE_TYPE (ref),
2904 save_expr (build1 (ADDR_EXPR,
2905 build_pointer_type (TREE_TYPE (ref)),
2906 ref)));
2907 break;
2910 /* If arg isn't a kind of lvalue we recognize, make no change.
2911 Caller should recognize the error for an invalid lvalue. */
2912 default:
2913 return ref;
2915 case ERROR_MARK:
2916 return error_mark_node;
2919 TREE_TYPE (result) = TREE_TYPE (ref);
2920 TREE_READONLY (result) = TREE_READONLY (ref);
2921 TREE_SIDE_EFFECTS (result) = TREE_SIDE_EFFECTS (ref);
2922 TREE_THIS_VOLATILE (result) = TREE_THIS_VOLATILE (ref);
2923 TREE_RAISES (result) = TREE_RAISES (ref);
2925 return result;
2928 /* Subroutine of stabilize_reference; this is called for subtrees of
2929 references. Any expression with side-effects must be put in a SAVE_EXPR
2930 to ensure that it is only evaluated once.
2932 We don't put SAVE_EXPR nodes around everything, because assigning very
2933 simple expressions to temporaries causes us to miss good opportunities
2934 for optimizations. Among other things, the opportunity to fold in the
2935 addition of a constant into an addressing mode often gets lost, e.g.
2936 "y[i+1] += x;". In general, we take the approach that we should not make
2937 an assignment unless we are forced into it - i.e., that any non-side effect
2938 operator should be allowed, and that cse should take care of coalescing
2939 multiple utterances of the same expression should that prove fruitful. */
2941 tree
2942 stabilize_reference_1 (e)
2943 tree e;
2945 register tree result;
2946 register enum tree_code code = TREE_CODE (e);
2948 /* We cannot ignore const expressions because it might be a reference
2949 to a const array but whose index contains side-effects. But we can
2950 ignore things that are actual constant or that already have been
2951 handled by this function. */
2953 if (TREE_CONSTANT (e) || code == SAVE_EXPR)
2954 return e;
2956 switch (TREE_CODE_CLASS (code))
2958 case 'x':
2959 case 't':
2960 case 'd':
2961 case 'b':
2962 case '<':
2963 case 's':
2964 case 'e':
2965 case 'r':
2966 /* If the expression has side-effects, then encase it in a SAVE_EXPR
2967 so that it will only be evaluated once. */
2968 /* The reference (r) and comparison (<) classes could be handled as
2969 below, but it is generally faster to only evaluate them once. */
2970 if (TREE_SIDE_EFFECTS (e))
2971 return save_expr (e);
2972 return e;
2974 case 'c':
2975 /* Constants need no processing. In fact, we should never reach
2976 here. */
2977 return e;
2979 case '2':
2980 /* Division is slow and tends to be compiled with jumps,
2981 especially the division by powers of 2 that is often
2982 found inside of an array reference. So do it just once. */
2983 if (code == TRUNC_DIV_EXPR || code == TRUNC_MOD_EXPR
2984 || code == FLOOR_DIV_EXPR || code == FLOOR_MOD_EXPR
2985 || code == CEIL_DIV_EXPR || code == CEIL_MOD_EXPR
2986 || code == ROUND_DIV_EXPR || code == ROUND_MOD_EXPR)
2987 return save_expr (e);
2988 /* Recursively stabilize each operand. */
2989 result = build_nt (code, stabilize_reference_1 (TREE_OPERAND (e, 0)),
2990 stabilize_reference_1 (TREE_OPERAND (e, 1)));
2991 break;
2993 case '1':
2994 /* Recursively stabilize each operand. */
2995 result = build_nt (code, stabilize_reference_1 (TREE_OPERAND (e, 0)));
2996 break;
2998 default:
2999 abort ();
3002 TREE_TYPE (result) = TREE_TYPE (e);
3003 TREE_READONLY (result) = TREE_READONLY (e);
3004 TREE_SIDE_EFFECTS (result) = TREE_SIDE_EFFECTS (e);
3005 TREE_THIS_VOLATILE (result) = TREE_THIS_VOLATILE (e);
3006 TREE_RAISES (result) = TREE_RAISES (e);
3008 return result;
3011 /* Low-level constructors for expressions. */
3013 /* Build an expression of code CODE, data type TYPE,
3014 and operands as specified by the arguments ARG1 and following arguments.
3015 Expressions and reference nodes can be created this way.
3016 Constants, decls, types and misc nodes cannot be. */
3018 tree
3019 build VPROTO((enum tree_code code, tree tt, ...))
3021 #ifndef ANSI_PROTOTYPES
3022 enum tree_code code;
3023 tree tt;
3024 #endif
3025 va_list p;
3026 register tree t;
3027 register int length;
3028 register int i;
3029 int fro;
3031 VA_START (p, tt);
3033 #ifndef ANSI_PROTOTYPES
3034 code = va_arg (p, enum tree_code);
3035 tt = va_arg (p, tree);
3036 #endif
3038 t = make_node (code);
3039 length = tree_code_length[(int) code];
3040 TREE_TYPE (t) = tt;
3042 /* Below, we automatically set TREE_SIDE_EFFECTS and TREE_RAISED for
3043 the result based on those same flags for the arguments. But, if
3044 the arguments aren't really even `tree' expressions, we shouldn't
3045 be trying to do this. */
3046 fro = first_rtl_op (code);
3048 if (length == 2)
3050 /* This is equivalent to the loop below, but faster. */
3051 register tree arg0 = va_arg (p, tree);
3052 register tree arg1 = va_arg (p, tree);
3053 TREE_OPERAND (t, 0) = arg0;
3054 TREE_OPERAND (t, 1) = arg1;
3055 if (arg0 && fro > 0)
3057 if (TREE_SIDE_EFFECTS (arg0))
3058 TREE_SIDE_EFFECTS (t) = 1;
3059 if (TREE_RAISES (arg0))
3060 TREE_RAISES (t) = 1;
3062 if (arg1 && fro > 1)
3064 if (TREE_SIDE_EFFECTS (arg1))
3065 TREE_SIDE_EFFECTS (t) = 1;
3066 if (TREE_RAISES (arg1))
3067 TREE_RAISES (t) = 1;
3070 else if (length == 1)
3072 register tree arg0 = va_arg (p, tree);
3074 /* Call build1 for this! */
3075 if (TREE_CODE_CLASS (code) != 's')
3076 abort ();
3077 TREE_OPERAND (t, 0) = arg0;
3078 if (fro > 0)
3080 if (arg0 && TREE_SIDE_EFFECTS (arg0))
3081 TREE_SIDE_EFFECTS (t) = 1;
3082 TREE_RAISES (t) = (arg0 && TREE_RAISES (arg0));
3085 else
3087 for (i = 0; i < length; i++)
3089 register tree operand = va_arg (p, tree);
3090 TREE_OPERAND (t, i) = operand;
3091 if (operand && fro > i)
3093 if (TREE_SIDE_EFFECTS (operand))
3094 TREE_SIDE_EFFECTS (t) = 1;
3095 if (TREE_RAISES (operand))
3096 TREE_RAISES (t) = 1;
3100 va_end (p);
3101 return t;
3104 /* Same as above, but only builds for unary operators.
3105 Saves lions share of calls to `build'; cuts down use
3106 of varargs, which is expensive for RISC machines. */
3108 tree
3109 build1 (code, type, node)
3110 enum tree_code code;
3111 tree type;
3112 tree node;
3114 register struct obstack *obstack = expression_obstack;
3115 register int length;
3116 #ifdef GATHER_STATISTICS
3117 register tree_node_kind kind;
3118 #endif
3119 register tree t;
3121 #ifdef GATHER_STATISTICS
3122 if (TREE_CODE_CLASS (code) == 'r')
3123 kind = r_kind;
3124 else
3125 kind = e_kind;
3126 #endif
3128 length = sizeof (struct tree_exp);
3130 if (ggc_p)
3131 t = ggc_alloc_tree (length);
3132 else
3134 t = (tree) obstack_alloc (obstack, length);
3135 memset ((PTR) t, 0, length);
3138 #ifdef GATHER_STATISTICS
3139 tree_node_counts[(int)kind]++;
3140 tree_node_sizes[(int)kind] += length;
3141 #endif
3143 TREE_TYPE (t) = type;
3144 TREE_SET_CODE (t, code);
3146 if (obstack == &permanent_obstack)
3147 TREE_PERMANENT (t) = 1;
3149 TREE_OPERAND (t, 0) = node;
3150 if (node && first_rtl_op (code) != 0)
3152 if (TREE_SIDE_EFFECTS (node))
3153 TREE_SIDE_EFFECTS (t) = 1;
3154 if (TREE_RAISES (node))
3155 TREE_RAISES (t) = 1;
3158 switch (code)
3160 case INIT_EXPR:
3161 case MODIFY_EXPR:
3162 case VA_ARG_EXPR:
3163 case RTL_EXPR:
3164 case PREDECREMENT_EXPR:
3165 case PREINCREMENT_EXPR:
3166 case POSTDECREMENT_EXPR:
3167 case POSTINCREMENT_EXPR:
3168 /* All of these have side-effects, no matter what their
3169 operands are. */
3170 TREE_SIDE_EFFECTS (t) = 1;
3171 break;
3173 default:
3174 break;
3177 return t;
3180 /* Similar except don't specify the TREE_TYPE
3181 and leave the TREE_SIDE_EFFECTS as 0.
3182 It is permissible for arguments to be null,
3183 or even garbage if their values do not matter. */
3185 tree
3186 build_nt VPROTO((enum tree_code code, ...))
3188 #ifndef ANSI_PROTOTYPES
3189 enum tree_code code;
3190 #endif
3191 va_list p;
3192 register tree t;
3193 register int length;
3194 register int i;
3196 VA_START (p, code);
3198 #ifndef ANSI_PROTOTYPES
3199 code = va_arg (p, enum tree_code);
3200 #endif
3202 t = make_node (code);
3203 length = tree_code_length[(int) code];
3205 for (i = 0; i < length; i++)
3206 TREE_OPERAND (t, i) = va_arg (p, tree);
3208 va_end (p);
3209 return t;
3212 /* Similar to `build_nt', except we build
3213 on the temp_decl_obstack, regardless. */
3215 tree
3216 build_parse_node VPROTO((enum tree_code code, ...))
3218 #ifndef ANSI_PROTOTYPES
3219 enum tree_code code;
3220 #endif
3221 register struct obstack *ambient_obstack = expression_obstack;
3222 va_list p;
3223 register tree t;
3224 register int length;
3225 register int i;
3227 VA_START (p, code);
3229 #ifndef ANSI_PROTOTYPES
3230 code = va_arg (p, enum tree_code);
3231 #endif
3233 expression_obstack = &temp_decl_obstack;
3235 t = make_node (code);
3236 length = tree_code_length[(int) code];
3238 for (i = 0; i < length; i++)
3239 TREE_OPERAND (t, i) = va_arg (p, tree);
3241 va_end (p);
3242 expression_obstack = ambient_obstack;
3243 return t;
3246 #if 0
3247 /* Commented out because this wants to be done very
3248 differently. See cp-lex.c. */
3249 tree
3250 build_op_identifier (op1, op2)
3251 tree op1, op2;
3253 register tree t = make_node (OP_IDENTIFIER);
3254 TREE_PURPOSE (t) = op1;
3255 TREE_VALUE (t) = op2;
3256 return t;
3258 #endif
3260 /* Create a DECL_... node of code CODE, name NAME and data type TYPE.
3261 We do NOT enter this node in any sort of symbol table.
3263 layout_decl is used to set up the decl's storage layout.
3264 Other slots are initialized to 0 or null pointers. */
3266 tree
3267 build_decl (code, name, type)
3268 enum tree_code code;
3269 tree name, type;
3271 register tree t;
3273 t = make_node (code);
3275 /* if (type == error_mark_node)
3276 type = integer_type_node; */
3277 /* That is not done, deliberately, so that having error_mark_node
3278 as the type can suppress useless errors in the use of this variable. */
3280 DECL_NAME (t) = name;
3281 DECL_ASSEMBLER_NAME (t) = name;
3282 TREE_TYPE (t) = type;
3284 if (code == VAR_DECL || code == PARM_DECL || code == RESULT_DECL)
3285 layout_decl (t, 0);
3286 else if (code == FUNCTION_DECL)
3287 DECL_MODE (t) = FUNCTION_MODE;
3289 return t;
3292 /* BLOCK nodes are used to represent the structure of binding contours
3293 and declarations, once those contours have been exited and their contents
3294 compiled. This information is used for outputting debugging info. */
3296 tree
3297 build_block (vars, tags, subblocks, supercontext, chain)
3298 tree vars, tags, subblocks, supercontext, chain;
3300 register tree block = make_node (BLOCK);
3301 BLOCK_VARS (block) = vars;
3302 BLOCK_SUBBLOCKS (block) = subblocks;
3303 BLOCK_SUPERCONTEXT (block) = supercontext;
3304 BLOCK_CHAIN (block) = chain;
3305 return block;
3308 /* EXPR_WITH_FILE_LOCATION are used to keep track of the exact
3309 location where an expression or an identifier were encountered. It
3310 is necessary for languages where the frontend parser will handle
3311 recursively more than one file (Java is one of them). */
3313 tree
3314 build_expr_wfl (node, file, line, col)
3315 tree node;
3316 const char *file;
3317 int line, col;
3319 static const char *last_file = 0;
3320 static tree last_filenode = NULL_TREE;
3321 register tree wfl = make_node (EXPR_WITH_FILE_LOCATION);
3323 EXPR_WFL_NODE (wfl) = node;
3324 EXPR_WFL_SET_LINECOL (wfl, line, col);
3325 if (file != last_file)
3327 last_file = file;
3328 last_filenode = file ? get_identifier (file) : NULL_TREE;
3330 EXPR_WFL_FILENAME_NODE (wfl) = last_filenode;
3331 if (node)
3333 TREE_SIDE_EFFECTS (wfl) = TREE_SIDE_EFFECTS (node);
3334 TREE_TYPE (wfl) = TREE_TYPE (node);
3336 return wfl;
3339 /* Return a declaration like DDECL except that its DECL_MACHINE_ATTRIBUTE
3340 is ATTRIBUTE. */
3342 tree
3343 build_decl_attribute_variant (ddecl, attribute)
3344 tree ddecl, attribute;
3346 DECL_MACHINE_ATTRIBUTES (ddecl) = attribute;
3347 return ddecl;
3350 /* Return a type like TTYPE except that its TYPE_ATTRIBUTE
3351 is ATTRIBUTE.
3353 Record such modified types already made so we don't make duplicates. */
3355 tree
3356 build_type_attribute_variant (ttype, attribute)
3357 tree ttype, attribute;
3359 if ( ! attribute_list_equal (TYPE_ATTRIBUTES (ttype), attribute))
3361 register int hashcode;
3362 tree ntype;
3364 push_obstacks (TYPE_OBSTACK (ttype), TYPE_OBSTACK (ttype));
3365 ntype = copy_node (ttype);
3367 TYPE_POINTER_TO (ntype) = 0;
3368 TYPE_REFERENCE_TO (ntype) = 0;
3369 TYPE_ATTRIBUTES (ntype) = attribute;
3371 /* Create a new main variant of TYPE. */
3372 TYPE_MAIN_VARIANT (ntype) = ntype;
3373 TYPE_NEXT_VARIANT (ntype) = 0;
3374 set_type_quals (ntype, TYPE_UNQUALIFIED);
3376 hashcode = TYPE_HASH (TREE_CODE (ntype))
3377 + TYPE_HASH (TREE_TYPE (ntype))
3378 + attribute_hash_list (attribute);
3380 switch (TREE_CODE (ntype))
3382 case FUNCTION_TYPE:
3383 hashcode += TYPE_HASH (TYPE_ARG_TYPES (ntype));
3384 break;
3385 case ARRAY_TYPE:
3386 hashcode += TYPE_HASH (TYPE_DOMAIN (ntype));
3387 break;
3388 case INTEGER_TYPE:
3389 hashcode += TYPE_HASH (TYPE_MAX_VALUE (ntype));
3390 break;
3391 case REAL_TYPE:
3392 hashcode += TYPE_HASH (TYPE_PRECISION (ntype));
3393 break;
3394 default:
3395 break;
3398 ntype = type_hash_canon (hashcode, ntype);
3399 ttype = build_qualified_type (ntype, TYPE_QUALS (ttype));
3400 pop_obstacks ();
3403 return ttype;
3406 /* Return a 1 if ATTR_NAME and ATTR_ARGS is valid for either declaration DECL
3407 or type TYPE and 0 otherwise. Validity is determined the configuration
3408 macros VALID_MACHINE_DECL_ATTRIBUTE and VALID_MACHINE_TYPE_ATTRIBUTE. */
3411 valid_machine_attribute (attr_name, attr_args, decl, type)
3412 tree attr_name;
3413 tree attr_args ATTRIBUTE_UNUSED;
3414 tree decl ATTRIBUTE_UNUSED;
3415 tree type ATTRIBUTE_UNUSED;
3417 int validated = 0;
3418 #ifdef VALID_MACHINE_DECL_ATTRIBUTE
3419 tree decl_attr_list = decl != 0 ? DECL_MACHINE_ATTRIBUTES (decl) : 0;
3420 #endif
3421 #ifdef VALID_MACHINE_TYPE_ATTRIBUTE
3422 tree type_attr_list = TYPE_ATTRIBUTES (type);
3423 #endif
3425 if (TREE_CODE (attr_name) != IDENTIFIER_NODE)
3426 abort ();
3428 #ifdef VALID_MACHINE_DECL_ATTRIBUTE
3429 if (decl != 0
3430 && VALID_MACHINE_DECL_ATTRIBUTE (decl, decl_attr_list, attr_name, attr_args))
3432 tree attr = lookup_attribute (IDENTIFIER_POINTER (attr_name),
3433 decl_attr_list);
3435 if (attr != NULL_TREE)
3437 /* Override existing arguments. Declarations are unique so we can
3438 modify this in place. */
3439 TREE_VALUE (attr) = attr_args;
3441 else
3443 decl_attr_list = tree_cons (attr_name, attr_args, decl_attr_list);
3444 decl = build_decl_attribute_variant (decl, decl_attr_list);
3447 validated = 1;
3449 #endif
3451 #ifdef VALID_MACHINE_TYPE_ATTRIBUTE
3452 if (validated)
3453 /* Don't apply the attribute to both the decl and the type. */;
3454 else if (VALID_MACHINE_TYPE_ATTRIBUTE (type, type_attr_list, attr_name,
3455 attr_args))
3457 tree attr = lookup_attribute (IDENTIFIER_POINTER (attr_name),
3458 type_attr_list);
3460 if (attr != NULL_TREE)
3462 /* Override existing arguments.
3463 ??? This currently works since attribute arguments are not
3464 included in `attribute_hash_list'. Something more complicated
3465 may be needed in the future. */
3466 TREE_VALUE (attr) = attr_args;
3468 else
3470 /* If this is part of a declaration, create a type variant,
3471 otherwise, this is part of a type definition, so add it
3472 to the base type. */
3473 type_attr_list = tree_cons (attr_name, attr_args, type_attr_list);
3474 if (decl != 0)
3475 type = build_type_attribute_variant (type, type_attr_list);
3476 else
3477 TYPE_ATTRIBUTES (type) = type_attr_list;
3479 if (decl != 0)
3480 TREE_TYPE (decl) = type;
3481 validated = 1;
3484 /* Handle putting a type attribute on pointer-to-function-type by putting
3485 the attribute on the function type. */
3486 else if (POINTER_TYPE_P (type)
3487 && TREE_CODE (TREE_TYPE (type)) == FUNCTION_TYPE
3488 && VALID_MACHINE_TYPE_ATTRIBUTE (TREE_TYPE (type), type_attr_list,
3489 attr_name, attr_args))
3491 tree inner_type = TREE_TYPE (type);
3492 tree inner_attr_list = TYPE_ATTRIBUTES (inner_type);
3493 tree attr = lookup_attribute (IDENTIFIER_POINTER (attr_name),
3494 type_attr_list);
3496 if (attr != NULL_TREE)
3497 TREE_VALUE (attr) = attr_args;
3498 else
3500 inner_attr_list = tree_cons (attr_name, attr_args, inner_attr_list);
3501 inner_type = build_type_attribute_variant (inner_type,
3502 inner_attr_list);
3505 if (decl != 0)
3506 TREE_TYPE (decl) = build_pointer_type (inner_type);
3507 else
3509 /* Clear TYPE_POINTER_TO for the old inner type, since
3510 `type' won't be pointing to it anymore. */
3511 TYPE_POINTER_TO (TREE_TYPE (type)) = NULL_TREE;
3512 TREE_TYPE (type) = inner_type;
3515 validated = 1;
3517 #endif
3519 return validated;
3522 /* Return non-zero if IDENT is a valid name for attribute ATTR,
3523 or zero if not.
3525 We try both `text' and `__text__', ATTR may be either one. */
3526 /* ??? It might be a reasonable simplification to require ATTR to be only
3527 `text'. One might then also require attribute lists to be stored in
3528 their canonicalized form. */
3531 is_attribute_p (attr, ident)
3532 const char *attr;
3533 tree ident;
3535 int ident_len, attr_len;
3536 char *p;
3538 if (TREE_CODE (ident) != IDENTIFIER_NODE)
3539 return 0;
3541 if (strcmp (attr, IDENTIFIER_POINTER (ident)) == 0)
3542 return 1;
3544 p = IDENTIFIER_POINTER (ident);
3545 ident_len = strlen (p);
3546 attr_len = strlen (attr);
3548 /* If ATTR is `__text__', IDENT must be `text'; and vice versa. */
3549 if (attr[0] == '_')
3551 if (attr[1] != '_'
3552 || attr[attr_len - 2] != '_'
3553 || attr[attr_len - 1] != '_')
3554 abort ();
3555 if (ident_len == attr_len - 4
3556 && strncmp (attr + 2, p, attr_len - 4) == 0)
3557 return 1;
3559 else
3561 if (ident_len == attr_len + 4
3562 && p[0] == '_' && p[1] == '_'
3563 && p[ident_len - 2] == '_' && p[ident_len - 1] == '_'
3564 && strncmp (attr, p + 2, attr_len) == 0)
3565 return 1;
3568 return 0;
3571 /* Given an attribute name and a list of attributes, return a pointer to the
3572 attribute's list element if the attribute is part of the list, or NULL_TREE
3573 if not found. */
3575 tree
3576 lookup_attribute (attr_name, list)
3577 const char *attr_name;
3578 tree list;
3580 tree l;
3582 for (l = list; l; l = TREE_CHAIN (l))
3584 if (TREE_CODE (TREE_PURPOSE (l)) != IDENTIFIER_NODE)
3585 abort ();
3586 if (is_attribute_p (attr_name, TREE_PURPOSE (l)))
3587 return l;
3590 return NULL_TREE;
3593 /* Return an attribute list that is the union of a1 and a2. */
3595 tree
3596 merge_attributes (a1, a2)
3597 register tree a1, a2;
3599 tree attributes;
3601 /* Either one unset? Take the set one. */
3603 if (! (attributes = a1))
3604 attributes = a2;
3606 /* One that completely contains the other? Take it. */
3608 else if (a2 && ! attribute_list_contained (a1, a2))
3610 if (attribute_list_contained (a2, a1))
3611 attributes = a2;
3612 else
3614 /* Pick the longest list, and hang on the other list. */
3615 /* ??? For the moment we punt on the issue of attrs with args. */
3617 if (list_length (a1) < list_length (a2))
3618 attributes = a2, a2 = a1;
3620 for (; a2; a2 = TREE_CHAIN (a2))
3621 if (lookup_attribute (IDENTIFIER_POINTER (TREE_PURPOSE (a2)),
3622 attributes) == NULL_TREE)
3624 a1 = copy_node (a2);
3625 TREE_CHAIN (a1) = attributes;
3626 attributes = a1;
3630 return attributes;
3633 /* Given types T1 and T2, merge their attributes and return
3634 the result. */
3636 tree
3637 merge_machine_type_attributes (t1, t2)
3638 tree t1, t2;
3640 #ifdef MERGE_MACHINE_TYPE_ATTRIBUTES
3641 return MERGE_MACHINE_TYPE_ATTRIBUTES (t1, t2);
3642 #else
3643 return merge_attributes (TYPE_ATTRIBUTES (t1),
3644 TYPE_ATTRIBUTES (t2));
3645 #endif
3648 /* Given decls OLDDECL and NEWDECL, merge their attributes and return
3649 the result. */
3651 tree
3652 merge_machine_decl_attributes (olddecl, newdecl)
3653 tree olddecl, newdecl;
3655 #ifdef MERGE_MACHINE_DECL_ATTRIBUTES
3656 return MERGE_MACHINE_DECL_ATTRIBUTES (olddecl, newdecl);
3657 #else
3658 return merge_attributes (DECL_MACHINE_ATTRIBUTES (olddecl),
3659 DECL_MACHINE_ATTRIBUTES (newdecl));
3660 #endif
3663 /* Set the type qualifiers for TYPE to TYPE_QUALS, which is a bitmask
3664 of the various TYPE_QUAL values. */
3666 static void
3667 set_type_quals (type, type_quals)
3668 tree type;
3669 int type_quals;
3671 TYPE_READONLY (type) = (type_quals & TYPE_QUAL_CONST) != 0;
3672 TYPE_VOLATILE (type) = (type_quals & TYPE_QUAL_VOLATILE) != 0;
3673 TYPE_RESTRICT (type) = (type_quals & TYPE_QUAL_RESTRICT) != 0;
3676 /* Given a type node TYPE and a TYPE_QUALIFIER_SET, return a type for
3677 the same kind of data as TYPE describes. Variants point to the
3678 "main variant" (which has no qualifiers set) via TYPE_MAIN_VARIANT,
3679 and it points to a chain of other variants so that duplicate
3680 variants are never made. Only main variants should ever appear as
3681 types of expressions. */
3683 tree
3684 build_qualified_type (type, type_quals)
3685 tree type;
3686 int type_quals;
3688 register tree t;
3690 /* Search the chain of variants to see if there is already one there just
3691 like the one we need to have. If so, use that existing one. We must
3692 preserve the TYPE_NAME, since there is code that depends on this. */
3694 for (t = TYPE_MAIN_VARIANT (type); t; t = TYPE_NEXT_VARIANT (t))
3695 if (TYPE_QUALS (t) == type_quals && TYPE_NAME (t) == TYPE_NAME (type))
3696 return t;
3698 /* We need a new one. */
3699 t = build_type_copy (type);
3700 set_type_quals (t, type_quals);
3701 return t;
3704 /* Create a new variant of TYPE, equivalent but distinct.
3705 This is so the caller can modify it. */
3707 tree
3708 build_type_copy (type)
3709 tree type;
3711 register tree t, m = TYPE_MAIN_VARIANT (type);
3712 register struct obstack *ambient_obstack = current_obstack;
3714 current_obstack = TYPE_OBSTACK (type);
3715 t = copy_node (type);
3716 current_obstack = ambient_obstack;
3718 TYPE_POINTER_TO (t) = 0;
3719 TYPE_REFERENCE_TO (t) = 0;
3721 /* Add this type to the chain of variants of TYPE. */
3722 TYPE_NEXT_VARIANT (t) = TYPE_NEXT_VARIANT (m);
3723 TYPE_NEXT_VARIANT (m) = t;
3725 return t;
3728 /* Hashing of types so that we don't make duplicates.
3729 The entry point is `type_hash_canon'. */
3731 /* Compute a hash code for a list of types (chain of TREE_LIST nodes
3732 with types in the TREE_VALUE slots), by adding the hash codes
3733 of the individual types. */
3736 type_hash_list (list)
3737 tree list;
3739 register int hashcode;
3740 register tree tail;
3741 for (hashcode = 0, tail = list; tail; tail = TREE_CHAIN (tail))
3742 hashcode += TYPE_HASH (TREE_VALUE (tail));
3743 return hashcode;
3746 /* Look in the type hash table for a type isomorphic to TYPE.
3747 If one is found, return it. Otherwise return 0. */
3749 tree
3750 type_hash_lookup (hashcode, type)
3751 int hashcode;
3752 tree type;
3754 register struct type_hash *h;
3756 /* The TYPE_ALIGN field of a type is set by layout_type(), so we
3757 must call that routine before comparing TYPE_ALIGNs. */
3758 layout_type (type);
3760 for (h = type_hash_table[hashcode % TYPE_HASH_SIZE]; h; h = h->next)
3761 if (h->hashcode == hashcode
3762 && TREE_CODE (h->type) == TREE_CODE (type)
3763 && TREE_TYPE (h->type) == TREE_TYPE (type)
3764 && attribute_list_equal (TYPE_ATTRIBUTES (h->type),
3765 TYPE_ATTRIBUTES (type))
3766 && TYPE_ALIGN (h->type) == TYPE_ALIGN (type)
3767 && (TYPE_MAX_VALUE (h->type) == TYPE_MAX_VALUE (type)
3768 || tree_int_cst_equal (TYPE_MAX_VALUE (h->type),
3769 TYPE_MAX_VALUE (type)))
3770 && (TYPE_MIN_VALUE (h->type) == TYPE_MIN_VALUE (type)
3771 || tree_int_cst_equal (TYPE_MIN_VALUE (h->type),
3772 TYPE_MIN_VALUE (type)))
3773 /* Note that TYPE_DOMAIN is TYPE_ARG_TYPES for FUNCTION_TYPE. */
3774 && (TYPE_DOMAIN (h->type) == TYPE_DOMAIN (type)
3775 || (TYPE_DOMAIN (h->type)
3776 && TREE_CODE (TYPE_DOMAIN (h->type)) == TREE_LIST
3777 && TYPE_DOMAIN (type)
3778 && TREE_CODE (TYPE_DOMAIN (type)) == TREE_LIST
3779 && type_list_equal (TYPE_DOMAIN (h->type),
3780 TYPE_DOMAIN (type)))))
3781 return h->type;
3782 return 0;
3785 /* Add an entry to the type-hash-table
3786 for a type TYPE whose hash code is HASHCODE. */
3788 void
3789 type_hash_add (hashcode, type)
3790 int hashcode;
3791 tree type;
3793 register struct type_hash *h;
3795 h = (struct type_hash *) permalloc (sizeof (struct type_hash));
3796 h->hashcode = hashcode;
3797 h->type = type;
3798 h->next = type_hash_table[hashcode % TYPE_HASH_SIZE];
3799 type_hash_table[hashcode % TYPE_HASH_SIZE] = h;
3802 /* Given TYPE, and HASHCODE its hash code, return the canonical
3803 object for an identical type if one already exists.
3804 Otherwise, return TYPE, and record it as the canonical object
3805 if it is a permanent object.
3807 To use this function, first create a type of the sort you want.
3808 Then compute its hash code from the fields of the type that
3809 make it different from other similar types.
3810 Then call this function and use the value.
3811 This function frees the type you pass in if it is a duplicate. */
3813 /* Set to 1 to debug without canonicalization. Never set by program. */
3814 int debug_no_type_hash = 0;
3816 tree
3817 type_hash_canon (hashcode, type)
3818 int hashcode;
3819 tree type;
3821 tree t1;
3823 if (debug_no_type_hash)
3824 return type;
3826 t1 = type_hash_lookup (hashcode, type);
3827 if (t1 != 0)
3829 if (!ggc_p)
3830 obstack_free (TYPE_OBSTACK (type), type);
3831 #ifdef GATHER_STATISTICS
3832 tree_node_counts[(int)t_kind]--;
3833 tree_node_sizes[(int)t_kind] -= sizeof (struct tree_type);
3834 #endif
3835 return t1;
3838 /* If this is a permanent type, record it for later reuse. */
3839 if (ggc_p || TREE_PERMANENT (type))
3840 type_hash_add (hashcode, type);
3842 return type;
3845 /* Mark ARG (which is really a struct type_hash **) for GC. */
3847 static void
3848 mark_type_hash (arg)
3849 void *arg;
3851 struct type_hash *t = *(struct type_hash **) arg;
3853 while (t)
3855 ggc_mark_tree (t->type);
3856 t = t->next;
3860 /* Compute a hash code for a list of attributes (chain of TREE_LIST nodes
3861 with names in the TREE_PURPOSE slots and args in the TREE_VALUE slots),
3862 by adding the hash codes of the individual attributes. */
3865 attribute_hash_list (list)
3866 tree list;
3868 register int hashcode;
3869 register tree tail;
3870 for (hashcode = 0, tail = list; tail; tail = TREE_CHAIN (tail))
3871 /* ??? Do we want to add in TREE_VALUE too? */
3872 hashcode += TYPE_HASH (TREE_PURPOSE (tail));
3873 return hashcode;
3876 /* Given two lists of attributes, return true if list l2 is
3877 equivalent to l1. */
3880 attribute_list_equal (l1, l2)
3881 tree l1, l2;
3883 return attribute_list_contained (l1, l2)
3884 && attribute_list_contained (l2, l1);
3887 /* Given two lists of attributes, return true if list L2 is
3888 completely contained within L1. */
3889 /* ??? This would be faster if attribute names were stored in a canonicalized
3890 form. Otherwise, if L1 uses `foo' and L2 uses `__foo__', the long method
3891 must be used to show these elements are equivalent (which they are). */
3892 /* ??? It's not clear that attributes with arguments will always be handled
3893 correctly. */
3896 attribute_list_contained (l1, l2)
3897 tree l1, l2;
3899 register tree t1, t2;
3901 /* First check the obvious, maybe the lists are identical. */
3902 if (l1 == l2)
3903 return 1;
3905 /* Maybe the lists are similar. */
3906 for (t1 = l1, t2 = l2;
3907 t1 && t2
3908 && TREE_PURPOSE (t1) == TREE_PURPOSE (t2)
3909 && TREE_VALUE (t1) == TREE_VALUE (t2);
3910 t1 = TREE_CHAIN (t1), t2 = TREE_CHAIN (t2));
3912 /* Maybe the lists are equal. */
3913 if (t1 == 0 && t2 == 0)
3914 return 1;
3916 for (; t2; t2 = TREE_CHAIN (t2))
3918 tree attr
3919 = lookup_attribute (IDENTIFIER_POINTER (TREE_PURPOSE (t2)), l1);
3921 if (attr == NULL_TREE)
3922 return 0;
3923 if (simple_cst_equal (TREE_VALUE (t2), TREE_VALUE (attr)) != 1)
3924 return 0;
3927 return 1;
3930 /* Given two lists of types
3931 (chains of TREE_LIST nodes with types in the TREE_VALUE slots)
3932 return 1 if the lists contain the same types in the same order.
3933 Also, the TREE_PURPOSEs must match. */
3936 type_list_equal (l1, l2)
3937 tree l1, l2;
3939 register tree t1, t2;
3941 for (t1 = l1, t2 = l2; t1 && t2; t1 = TREE_CHAIN (t1), t2 = TREE_CHAIN (t2))
3942 if (TREE_VALUE (t1) != TREE_VALUE (t2)
3943 || (TREE_PURPOSE (t1) != TREE_PURPOSE (t2)
3944 && ! (1 == simple_cst_equal (TREE_PURPOSE (t1), TREE_PURPOSE (t2))
3945 && (TREE_TYPE (TREE_PURPOSE (t1))
3946 == TREE_TYPE (TREE_PURPOSE (t2))))))
3947 return 0;
3949 return t1 == t2;
3952 /* Nonzero if integer constants T1 and T2
3953 represent the same constant value. */
3956 tree_int_cst_equal (t1, t2)
3957 tree t1, t2;
3959 if (t1 == t2)
3960 return 1;
3961 if (t1 == 0 || t2 == 0)
3962 return 0;
3963 if (TREE_CODE (t1) == INTEGER_CST
3964 && TREE_CODE (t2) == INTEGER_CST
3965 && TREE_INT_CST_LOW (t1) == TREE_INT_CST_LOW (t2)
3966 && TREE_INT_CST_HIGH (t1) == TREE_INT_CST_HIGH (t2))
3967 return 1;
3968 return 0;
3971 /* Nonzero if integer constants T1 and T2 represent values that satisfy <.
3972 The precise way of comparison depends on their data type. */
3975 tree_int_cst_lt (t1, t2)
3976 tree t1, t2;
3978 if (t1 == t2)
3979 return 0;
3981 if (!TREE_UNSIGNED (TREE_TYPE (t1)))
3982 return INT_CST_LT (t1, t2);
3983 return INT_CST_LT_UNSIGNED (t1, t2);
3986 /* Return an indication of the sign of the integer constant T.
3987 The return value is -1 if T < 0, 0 if T == 0, and 1 if T > 0.
3988 Note that -1 will never be returned it T's type is unsigned. */
3991 tree_int_cst_sgn (t)
3992 tree t;
3994 if (TREE_INT_CST_LOW (t) == 0 && TREE_INT_CST_HIGH (t) == 0)
3995 return 0;
3996 else if (TREE_UNSIGNED (TREE_TYPE (t)))
3997 return 1;
3998 else if (TREE_INT_CST_HIGH (t) < 0)
3999 return -1;
4000 else
4001 return 1;
4004 /* Compare two constructor-element-type constants. Return 1 if the lists
4005 are known to be equal; otherwise return 0. */
4008 simple_cst_list_equal (l1, l2)
4009 tree l1, l2;
4011 while (l1 != NULL_TREE && l2 != NULL_TREE)
4013 if (simple_cst_equal (TREE_VALUE (l1), TREE_VALUE (l2)) != 1)
4014 return 0;
4016 l1 = TREE_CHAIN (l1);
4017 l2 = TREE_CHAIN (l2);
4020 return (l1 == l2);
4023 /* Return truthvalue of whether T1 is the same tree structure as T2.
4024 Return 1 if they are the same.
4025 Return 0 if they are understandably different.
4026 Return -1 if either contains tree structure not understood by
4027 this function. */
4030 simple_cst_equal (t1, t2)
4031 tree t1, t2;
4033 register enum tree_code code1, code2;
4034 int cmp;
4036 if (t1 == t2)
4037 return 1;
4038 if (t1 == 0 || t2 == 0)
4039 return 0;
4041 code1 = TREE_CODE (t1);
4042 code2 = TREE_CODE (t2);
4044 if (code1 == NOP_EXPR || code1 == CONVERT_EXPR || code1 == NON_LVALUE_EXPR)
4046 if (code2 == NOP_EXPR || code2 == CONVERT_EXPR
4047 || code2 == NON_LVALUE_EXPR)
4048 return simple_cst_equal (TREE_OPERAND (t1, 0), TREE_OPERAND (t2, 0));
4049 else
4050 return simple_cst_equal (TREE_OPERAND (t1, 0), t2);
4052 else if (code2 == NOP_EXPR || code2 == CONVERT_EXPR
4053 || code2 == NON_LVALUE_EXPR)
4054 return simple_cst_equal (t1, TREE_OPERAND (t2, 0));
4056 if (code1 != code2)
4057 return 0;
4059 switch (code1)
4061 case INTEGER_CST:
4062 return TREE_INT_CST_LOW (t1) == TREE_INT_CST_LOW (t2)
4063 && TREE_INT_CST_HIGH (t1) == TREE_INT_CST_HIGH (t2);
4065 case REAL_CST:
4066 return REAL_VALUES_IDENTICAL (TREE_REAL_CST (t1), TREE_REAL_CST (t2));
4068 case STRING_CST:
4069 return TREE_STRING_LENGTH (t1) == TREE_STRING_LENGTH (t2)
4070 && !bcmp (TREE_STRING_POINTER (t1), TREE_STRING_POINTER (t2),
4071 TREE_STRING_LENGTH (t1));
4073 case CONSTRUCTOR:
4074 if (CONSTRUCTOR_ELTS (t1) == CONSTRUCTOR_ELTS (t2))
4075 return 1;
4076 else
4077 abort ();
4079 case SAVE_EXPR:
4080 return simple_cst_equal (TREE_OPERAND (t1, 0), TREE_OPERAND (t2, 0));
4082 case CALL_EXPR:
4083 cmp = simple_cst_equal (TREE_OPERAND (t1, 0), TREE_OPERAND (t2, 0));
4084 if (cmp <= 0)
4085 return cmp;
4086 return simple_cst_list_equal (TREE_OPERAND (t1, 1), TREE_OPERAND (t2, 1));
4088 case TARGET_EXPR:
4089 /* Special case: if either target is an unallocated VAR_DECL,
4090 it means that it's going to be unified with whatever the
4091 TARGET_EXPR is really supposed to initialize, so treat it
4092 as being equivalent to anything. */
4093 if ((TREE_CODE (TREE_OPERAND (t1, 0)) == VAR_DECL
4094 && DECL_NAME (TREE_OPERAND (t1, 0)) == NULL_TREE
4095 && DECL_RTL (TREE_OPERAND (t1, 0)) == 0)
4096 || (TREE_CODE (TREE_OPERAND (t2, 0)) == VAR_DECL
4097 && DECL_NAME (TREE_OPERAND (t2, 0)) == NULL_TREE
4098 && DECL_RTL (TREE_OPERAND (t2, 0)) == 0))
4099 cmp = 1;
4100 else
4101 cmp = simple_cst_equal (TREE_OPERAND (t1, 0), TREE_OPERAND (t2, 0));
4102 if (cmp <= 0)
4103 return cmp;
4104 return simple_cst_equal (TREE_OPERAND (t1, 1), TREE_OPERAND (t2, 1));
4106 case WITH_CLEANUP_EXPR:
4107 cmp = simple_cst_equal (TREE_OPERAND (t1, 0), TREE_OPERAND (t2, 0));
4108 if (cmp <= 0)
4109 return cmp;
4110 return simple_cst_equal (TREE_OPERAND (t1, 2), TREE_OPERAND (t1, 2));
4112 case COMPONENT_REF:
4113 if (TREE_OPERAND (t1, 1) == TREE_OPERAND (t2, 1))
4114 return simple_cst_equal (TREE_OPERAND (t1, 0), TREE_OPERAND (t2, 0));
4115 return 0;
4117 case VAR_DECL:
4118 case PARM_DECL:
4119 case CONST_DECL:
4120 case FUNCTION_DECL:
4121 return 0;
4123 default:
4124 break;
4127 /* This general rule works for most tree codes. All exceptions should be
4128 handled above. If this is a language-specific tree code, we can't
4129 trust what might be in the operand, so say we don't know
4130 the situation. */
4131 if ((int) code1 >= (int) LAST_AND_UNUSED_TREE_CODE)
4132 return -1;
4134 switch (TREE_CODE_CLASS (code1))
4136 int i;
4137 case '1':
4138 case '2':
4139 case '<':
4140 case 'e':
4141 case 'r':
4142 case 's':
4143 cmp = 1;
4144 for (i=0; i<tree_code_length[(int) code1]; ++i)
4146 cmp = simple_cst_equal (TREE_OPERAND (t1, i), TREE_OPERAND (t2, i));
4147 if (cmp <= 0)
4148 return cmp;
4150 return cmp;
4152 default:
4153 return -1;
4157 /* Constructors for pointer, array and function types.
4158 (RECORD_TYPE, UNION_TYPE and ENUMERAL_TYPE nodes are
4159 constructed by language-dependent code, not here.) */
4161 /* Construct, lay out and return the type of pointers to TO_TYPE.
4162 If such a type has already been constructed, reuse it. */
4164 tree
4165 build_pointer_type (to_type)
4166 tree to_type;
4168 register tree t = TYPE_POINTER_TO (to_type);
4170 /* First, if we already have a type for pointers to TO_TYPE, use it. */
4172 if (t)
4173 return t;
4175 /* We need a new one. Put this in the same obstack as TO_TYPE. */
4176 push_obstacks (TYPE_OBSTACK (to_type), TYPE_OBSTACK (to_type));
4177 t = make_node (POINTER_TYPE);
4178 pop_obstacks ();
4180 TREE_TYPE (t) = to_type;
4182 /* Record this type as the pointer to TO_TYPE. */
4183 TYPE_POINTER_TO (to_type) = t;
4185 /* Lay out the type. This function has many callers that are concerned
4186 with expression-construction, and this simplifies them all.
4187 Also, it guarantees the TYPE_SIZE is in the same obstack as the type. */
4188 layout_type (t);
4190 return t;
4193 /* Create a type of integers to be the TYPE_DOMAIN of an ARRAY_TYPE.
4194 MAXVAL should be the maximum value in the domain
4195 (one less than the length of the array).
4197 The maximum value that MAXVAL can have is INT_MAX for a HOST_WIDE_INT.
4198 We don't enforce this limit, that is up to caller (e.g. language front end).
4199 The limit exists because the result is a signed type and we don't handle
4200 sizes that use more than one HOST_WIDE_INT. */
4202 tree
4203 build_index_type (maxval)
4204 tree maxval;
4206 register tree itype = make_node (INTEGER_TYPE);
4208 TYPE_PRECISION (itype) = TYPE_PRECISION (sizetype);
4209 TYPE_MIN_VALUE (itype) = size_zero_node;
4211 push_obstacks (TYPE_OBSTACK (itype), TYPE_OBSTACK (itype));
4212 TYPE_MAX_VALUE (itype) = convert (sizetype, maxval);
4213 pop_obstacks ();
4215 TYPE_MODE (itype) = TYPE_MODE (sizetype);
4216 TYPE_SIZE (itype) = TYPE_SIZE (sizetype);
4217 TYPE_SIZE_UNIT (itype) = TYPE_SIZE_UNIT (sizetype);
4218 TYPE_ALIGN (itype) = TYPE_ALIGN (sizetype);
4219 if (TREE_CODE (maxval) == INTEGER_CST)
4221 int maxint = (int) TREE_INT_CST_LOW (maxval);
4222 /* If the domain should be empty, make sure the maxval
4223 remains -1 and is not spoiled by truncation. */
4224 if (INT_CST_LT (maxval, integer_zero_node))
4226 TYPE_MAX_VALUE (itype) = build_int_2 (-1, -1);
4227 TREE_TYPE (TYPE_MAX_VALUE (itype)) = sizetype;
4229 return type_hash_canon (maxint < 0 ? ~maxint : maxint, itype);
4231 else
4232 return itype;
4235 /* Create a range of some discrete type TYPE (an INTEGER_TYPE,
4236 ENUMERAL_TYPE, BOOLEAN_TYPE, or CHAR_TYPE), with
4237 low bound LOWVAL and high bound HIGHVAL.
4238 if TYPE==NULL_TREE, sizetype is used. */
4240 tree
4241 build_range_type (type, lowval, highval)
4242 tree type, lowval, highval;
4244 register tree itype = make_node (INTEGER_TYPE);
4246 TREE_TYPE (itype) = type;
4247 if (type == NULL_TREE)
4248 type = sizetype;
4250 push_obstacks (TYPE_OBSTACK (itype), TYPE_OBSTACK (itype));
4251 TYPE_MIN_VALUE (itype) = convert (type, lowval);
4252 TYPE_MAX_VALUE (itype) = highval ? convert (type, highval) : NULL;
4253 pop_obstacks ();
4255 TYPE_PRECISION (itype) = TYPE_PRECISION (type);
4256 TYPE_MODE (itype) = TYPE_MODE (type);
4257 TYPE_SIZE (itype) = TYPE_SIZE (type);
4258 TYPE_SIZE_UNIT (itype) = TYPE_SIZE_UNIT (type);
4259 TYPE_ALIGN (itype) = TYPE_ALIGN (type);
4260 if (TREE_CODE (lowval) == INTEGER_CST)
4262 HOST_WIDE_INT lowint, highint;
4263 int maxint;
4265 lowint = TREE_INT_CST_LOW (lowval);
4266 if (highval && TREE_CODE (highval) == INTEGER_CST)
4267 highint = TREE_INT_CST_LOW (highval);
4268 else
4269 highint = (~(unsigned HOST_WIDE_INT)0) >> 1;
4271 maxint = (int) (highint - lowint);
4272 return type_hash_canon (maxint < 0 ? ~maxint : maxint, itype);
4274 else
4275 return itype;
4278 /* Just like build_index_type, but takes lowval and highval instead
4279 of just highval (maxval). */
4281 tree
4282 build_index_2_type (lowval,highval)
4283 tree lowval, highval;
4285 return build_range_type (NULL_TREE, lowval, highval);
4288 /* Return nonzero iff ITYPE1 and ITYPE2 are equal (in the LISP sense).
4289 Needed because when index types are not hashed, equal index types
4290 built at different times appear distinct, even though structurally,
4291 they are not. */
4294 index_type_equal (itype1, itype2)
4295 tree itype1, itype2;
4297 if (TREE_CODE (itype1) != TREE_CODE (itype2))
4298 return 0;
4299 if (TREE_CODE (itype1) == INTEGER_TYPE)
4301 if (TYPE_PRECISION (itype1) != TYPE_PRECISION (itype2)
4302 || TYPE_MODE (itype1) != TYPE_MODE (itype2)
4303 || simple_cst_equal (TYPE_SIZE (itype1), TYPE_SIZE (itype2)) != 1
4304 || TYPE_ALIGN (itype1) != TYPE_ALIGN (itype2))
4305 return 0;
4306 if (1 == simple_cst_equal (TYPE_MIN_VALUE (itype1),
4307 TYPE_MIN_VALUE (itype2))
4308 && 1 == simple_cst_equal (TYPE_MAX_VALUE (itype1),
4309 TYPE_MAX_VALUE (itype2)))
4310 return 1;
4313 return 0;
4316 /* Construct, lay out and return the type of arrays of elements with ELT_TYPE
4317 and number of elements specified by the range of values of INDEX_TYPE.
4318 If such a type has already been constructed, reuse it. */
4320 tree
4321 build_array_type (elt_type, index_type)
4322 tree elt_type, index_type;
4324 register tree t;
4325 int hashcode;
4327 if (TREE_CODE (elt_type) == FUNCTION_TYPE)
4329 error ("arrays of functions are not meaningful");
4330 elt_type = integer_type_node;
4333 /* Make sure TYPE_POINTER_TO (elt_type) is filled in. */
4334 build_pointer_type (elt_type);
4336 /* Allocate the array after the pointer type,
4337 in case we free it in type_hash_canon. */
4338 t = make_node (ARRAY_TYPE);
4339 TREE_TYPE (t) = elt_type;
4340 TYPE_DOMAIN (t) = index_type;
4342 if (index_type == 0)
4344 return t;
4347 hashcode = TYPE_HASH (elt_type) + TYPE_HASH (index_type);
4348 t = type_hash_canon (hashcode, t);
4350 if (TYPE_SIZE (t) == 0)
4351 layout_type (t);
4352 return t;
4355 /* Return the TYPE of the elements comprising
4356 the innermost dimension of ARRAY. */
4358 tree
4359 get_inner_array_type (array)
4360 tree array;
4362 tree type = TREE_TYPE (array);
4364 while (TREE_CODE (type) == ARRAY_TYPE)
4365 type = TREE_TYPE (type);
4367 return type;
4370 /* Construct, lay out and return
4371 the type of functions returning type VALUE_TYPE
4372 given arguments of types ARG_TYPES.
4373 ARG_TYPES is a chain of TREE_LIST nodes whose TREE_VALUEs
4374 are data type nodes for the arguments of the function.
4375 If such a type has already been constructed, reuse it. */
4377 tree
4378 build_function_type (value_type, arg_types)
4379 tree value_type, arg_types;
4381 register tree t;
4382 int hashcode;
4384 if (TREE_CODE (value_type) == FUNCTION_TYPE)
4386 error ("function return type cannot be function");
4387 value_type = integer_type_node;
4390 /* Make a node of the sort we want. */
4391 t = make_node (FUNCTION_TYPE);
4392 TREE_TYPE (t) = value_type;
4393 TYPE_ARG_TYPES (t) = arg_types;
4395 /* If we already have such a type, use the old one and free this one. */
4396 hashcode = TYPE_HASH (value_type) + type_hash_list (arg_types);
4397 t = type_hash_canon (hashcode, t);
4399 if (TYPE_SIZE (t) == 0)
4400 layout_type (t);
4401 return t;
4404 /* Build the node for the type of references-to-TO_TYPE. */
4406 tree
4407 build_reference_type (to_type)
4408 tree to_type;
4410 register tree t = TYPE_REFERENCE_TO (to_type);
4412 /* First, if we already have a type for pointers to TO_TYPE, use it. */
4414 if (t)
4415 return t;
4417 /* We need a new one. Put this in the same obstack as TO_TYPE. */
4418 push_obstacks (TYPE_OBSTACK (to_type), TYPE_OBSTACK (to_type));
4419 t = make_node (REFERENCE_TYPE);
4420 pop_obstacks ();
4422 TREE_TYPE (t) = to_type;
4424 /* Record this type as the pointer to TO_TYPE. */
4425 TYPE_REFERENCE_TO (to_type) = t;
4427 layout_type (t);
4429 return t;
4432 /* Construct, lay out and return the type of methods belonging to class
4433 BASETYPE and whose arguments and values are described by TYPE.
4434 If that type exists already, reuse it.
4435 TYPE must be a FUNCTION_TYPE node. */
4437 tree
4438 build_method_type (basetype, type)
4439 tree basetype, type;
4441 register tree t;
4442 int hashcode;
4444 /* Make a node of the sort we want. */
4445 t = make_node (METHOD_TYPE);
4447 if (TREE_CODE (type) != FUNCTION_TYPE)
4448 abort ();
4450 TYPE_METHOD_BASETYPE (t) = TYPE_MAIN_VARIANT (basetype);
4451 TREE_TYPE (t) = TREE_TYPE (type);
4453 /* The actual arglist for this function includes a "hidden" argument
4454 which is "this". Put it into the list of argument types. */
4456 TYPE_ARG_TYPES (t)
4457 = tree_cons (NULL_TREE,
4458 build_pointer_type (basetype), TYPE_ARG_TYPES (type));
4460 /* If we already have such a type, use the old one and free this one. */
4461 hashcode = TYPE_HASH (basetype) + TYPE_HASH (type);
4462 t = type_hash_canon (hashcode, t);
4464 if (TYPE_SIZE (t) == 0)
4465 layout_type (t);
4467 return t;
4470 /* Construct, lay out and return the type of offsets to a value
4471 of type TYPE, within an object of type BASETYPE.
4472 If a suitable offset type exists already, reuse it. */
4474 tree
4475 build_offset_type (basetype, type)
4476 tree basetype, type;
4478 register tree t;
4479 int hashcode;
4481 /* Make a node of the sort we want. */
4482 t = make_node (OFFSET_TYPE);
4484 TYPE_OFFSET_BASETYPE (t) = TYPE_MAIN_VARIANT (basetype);
4485 TREE_TYPE (t) = type;
4487 /* If we already have such a type, use the old one and free this one. */
4488 hashcode = TYPE_HASH (basetype) + TYPE_HASH (type);
4489 t = type_hash_canon (hashcode, t);
4491 if (TYPE_SIZE (t) == 0)
4492 layout_type (t);
4494 return t;
4497 /* Create a complex type whose components are COMPONENT_TYPE. */
4499 tree
4500 build_complex_type (component_type)
4501 tree component_type;
4503 register tree t;
4504 int hashcode;
4506 /* Make a node of the sort we want. */
4507 t = make_node (COMPLEX_TYPE);
4509 TREE_TYPE (t) = TYPE_MAIN_VARIANT (component_type);
4510 set_type_quals (t, TYPE_QUALS (component_type));
4512 /* If we already have such a type, use the old one and free this one. */
4513 hashcode = TYPE_HASH (component_type);
4514 t = type_hash_canon (hashcode, t);
4516 if (TYPE_SIZE (t) == 0)
4517 layout_type (t);
4519 /* If we are writing Dwarf2 output we need to create a name,
4520 since complex is a fundamental type. */
4521 if (write_symbols == DWARF2_DEBUG && ! TYPE_NAME (t))
4523 const char *name;
4524 if (component_type == char_type_node)
4525 name = "complex char";
4526 else if (component_type == signed_char_type_node)
4527 name = "complex signed char";
4528 else if (component_type == unsigned_char_type_node)
4529 name = "complex unsigned char";
4530 else if (component_type == short_integer_type_node)
4531 name = "complex short int";
4532 else if (component_type == short_unsigned_type_node)
4533 name = "complex short unsigned int";
4534 else if (component_type == integer_type_node)
4535 name = "complex int";
4536 else if (component_type == unsigned_type_node)
4537 name = "complex unsigned int";
4538 else if (component_type == long_integer_type_node)
4539 name = "complex long int";
4540 else if (component_type == long_unsigned_type_node)
4541 name = "complex long unsigned int";
4542 else if (component_type == long_long_integer_type_node)
4543 name = "complex long long int";
4544 else if (component_type == long_long_unsigned_type_node)
4545 name = "complex long long unsigned int";
4546 else
4547 name = (char *)0;
4549 if (name)
4550 TYPE_NAME (t) = get_identifier (name);
4553 return t;
4556 /* Return OP, stripped of any conversions to wider types as much as is safe.
4557 Converting the value back to OP's type makes a value equivalent to OP.
4559 If FOR_TYPE is nonzero, we return a value which, if converted to
4560 type FOR_TYPE, would be equivalent to converting OP to type FOR_TYPE.
4562 If FOR_TYPE is nonzero, unaligned bit-field references may be changed to the
4563 narrowest type that can hold the value, even if they don't exactly fit.
4564 Otherwise, bit-field references are changed to a narrower type
4565 only if they can be fetched directly from memory in that type.
4567 OP must have integer, real or enumeral type. Pointers are not allowed!
4569 There are some cases where the obvious value we could return
4570 would regenerate to OP if converted to OP's type,
4571 but would not extend like OP to wider types.
4572 If FOR_TYPE indicates such extension is contemplated, we eschew such values.
4573 For example, if OP is (unsigned short)(signed char)-1,
4574 we avoid returning (signed char)-1 if FOR_TYPE is int,
4575 even though extending that to an unsigned short would regenerate OP,
4576 since the result of extending (signed char)-1 to (int)
4577 is different from (int) OP. */
4579 tree
4580 get_unwidened (op, for_type)
4581 register tree op;
4582 tree for_type;
4584 /* Set UNS initially if converting OP to FOR_TYPE is a zero-extension. */
4585 register tree type = TREE_TYPE (op);
4586 register unsigned final_prec
4587 = TYPE_PRECISION (for_type != 0 ? for_type : type);
4588 register int uns
4589 = (for_type != 0 && for_type != type
4590 && final_prec > TYPE_PRECISION (type)
4591 && TREE_UNSIGNED (type));
4592 register tree win = op;
4594 while (TREE_CODE (op) == NOP_EXPR)
4596 register int bitschange
4597 = TYPE_PRECISION (TREE_TYPE (op))
4598 - TYPE_PRECISION (TREE_TYPE (TREE_OPERAND (op, 0)));
4600 /* Truncations are many-one so cannot be removed.
4601 Unless we are later going to truncate down even farther. */
4602 if (bitschange < 0
4603 && final_prec > TYPE_PRECISION (TREE_TYPE (op)))
4604 break;
4606 /* See what's inside this conversion. If we decide to strip it,
4607 we will set WIN. */
4608 op = TREE_OPERAND (op, 0);
4610 /* If we have not stripped any zero-extensions (uns is 0),
4611 we can strip any kind of extension.
4612 If we have previously stripped a zero-extension,
4613 only zero-extensions can safely be stripped.
4614 Any extension can be stripped if the bits it would produce
4615 are all going to be discarded later by truncating to FOR_TYPE. */
4617 if (bitschange > 0)
4619 if (! uns || final_prec <= TYPE_PRECISION (TREE_TYPE (op)))
4620 win = op;
4621 /* TREE_UNSIGNED says whether this is a zero-extension.
4622 Let's avoid computing it if it does not affect WIN
4623 and if UNS will not be needed again. */
4624 if ((uns || TREE_CODE (op) == NOP_EXPR)
4625 && TREE_UNSIGNED (TREE_TYPE (op)))
4627 uns = 1;
4628 win = op;
4633 if (TREE_CODE (op) == COMPONENT_REF
4634 /* Since type_for_size always gives an integer type. */
4635 && TREE_CODE (type) != REAL_TYPE
4636 /* Don't crash if field not laid out yet. */
4637 && DECL_SIZE (TREE_OPERAND (op, 1)) != 0)
4639 unsigned innerprec = TREE_INT_CST_LOW (DECL_SIZE (TREE_OPERAND (op, 1)));
4640 type = type_for_size (innerprec, TREE_UNSIGNED (TREE_OPERAND (op, 1)));
4642 /* We can get this structure field in the narrowest type it fits in.
4643 If FOR_TYPE is 0, do this only for a field that matches the
4644 narrower type exactly and is aligned for it
4645 The resulting extension to its nominal type (a fullword type)
4646 must fit the same conditions as for other extensions. */
4648 if (innerprec < TYPE_PRECISION (TREE_TYPE (op))
4649 && (for_type || ! DECL_BIT_FIELD (TREE_OPERAND (op, 1)))
4650 && (! uns || final_prec <= innerprec
4651 || TREE_UNSIGNED (TREE_OPERAND (op, 1)))
4652 && type != 0)
4654 win = build (COMPONENT_REF, type, TREE_OPERAND (op, 0),
4655 TREE_OPERAND (op, 1));
4656 TREE_SIDE_EFFECTS (win) = TREE_SIDE_EFFECTS (op);
4657 TREE_THIS_VOLATILE (win) = TREE_THIS_VOLATILE (op);
4658 TREE_RAISES (win) = TREE_RAISES (op);
4661 return win;
4664 /* Return OP or a simpler expression for a narrower value
4665 which can be sign-extended or zero-extended to give back OP.
4666 Store in *UNSIGNEDP_PTR either 1 if the value should be zero-extended
4667 or 0 if the value should be sign-extended. */
4669 tree
4670 get_narrower (op, unsignedp_ptr)
4671 register tree op;
4672 int *unsignedp_ptr;
4674 register int uns = 0;
4675 int first = 1;
4676 register tree win = op;
4678 while (TREE_CODE (op) == NOP_EXPR)
4680 register int bitschange
4681 = TYPE_PRECISION (TREE_TYPE (op))
4682 - TYPE_PRECISION (TREE_TYPE (TREE_OPERAND (op, 0)));
4684 /* Truncations are many-one so cannot be removed. */
4685 if (bitschange < 0)
4686 break;
4688 /* See what's inside this conversion. If we decide to strip it,
4689 we will set WIN. */
4690 op = TREE_OPERAND (op, 0);
4692 if (bitschange > 0)
4694 /* An extension: the outermost one can be stripped,
4695 but remember whether it is zero or sign extension. */
4696 if (first)
4697 uns = TREE_UNSIGNED (TREE_TYPE (op));
4698 /* Otherwise, if a sign extension has been stripped,
4699 only sign extensions can now be stripped;
4700 if a zero extension has been stripped, only zero-extensions. */
4701 else if (uns != TREE_UNSIGNED (TREE_TYPE (op)))
4702 break;
4703 first = 0;
4705 else /* bitschange == 0 */
4707 /* A change in nominal type can always be stripped, but we must
4708 preserve the unsignedness. */
4709 if (first)
4710 uns = TREE_UNSIGNED (TREE_TYPE (op));
4711 first = 0;
4714 win = op;
4717 if (TREE_CODE (op) == COMPONENT_REF
4718 /* Since type_for_size always gives an integer type. */
4719 && TREE_CODE (TREE_TYPE (op)) != REAL_TYPE)
4721 unsigned innerprec = TREE_INT_CST_LOW (DECL_SIZE (TREE_OPERAND (op, 1)));
4722 tree type = type_for_size (innerprec, TREE_UNSIGNED (op));
4724 /* We can get this structure field in a narrower type that fits it,
4725 but the resulting extension to its nominal type (a fullword type)
4726 must satisfy the same conditions as for other extensions.
4728 Do this only for fields that are aligned (not bit-fields),
4729 because when bit-field insns will be used there is no
4730 advantage in doing this. */
4732 if (innerprec < TYPE_PRECISION (TREE_TYPE (op))
4733 && ! DECL_BIT_FIELD (TREE_OPERAND (op, 1))
4734 && (first || uns == TREE_UNSIGNED (TREE_OPERAND (op, 1)))
4735 && type != 0)
4737 if (first)
4738 uns = TREE_UNSIGNED (TREE_OPERAND (op, 1));
4739 win = build (COMPONENT_REF, type, TREE_OPERAND (op, 0),
4740 TREE_OPERAND (op, 1));
4741 TREE_SIDE_EFFECTS (win) = TREE_SIDE_EFFECTS (op);
4742 TREE_THIS_VOLATILE (win) = TREE_THIS_VOLATILE (op);
4743 TREE_RAISES (win) = TREE_RAISES (op);
4746 *unsignedp_ptr = uns;
4747 return win;
4750 /* Nonzero if integer constant C has a value that is permissible
4751 for type TYPE (an INTEGER_TYPE). */
4754 int_fits_type_p (c, type)
4755 tree c, type;
4757 if (TREE_UNSIGNED (type))
4758 return (! (TREE_CODE (TYPE_MAX_VALUE (type)) == INTEGER_CST
4759 && INT_CST_LT_UNSIGNED (TYPE_MAX_VALUE (type), c))
4760 && ! (TREE_CODE (TYPE_MIN_VALUE (type)) == INTEGER_CST
4761 && INT_CST_LT_UNSIGNED (c, TYPE_MIN_VALUE (type)))
4762 /* Negative ints never fit unsigned types. */
4763 && ! (TREE_INT_CST_HIGH (c) < 0
4764 && ! TREE_UNSIGNED (TREE_TYPE (c))));
4765 else
4766 return (! (TREE_CODE (TYPE_MAX_VALUE (type)) == INTEGER_CST
4767 && INT_CST_LT (TYPE_MAX_VALUE (type), c))
4768 && ! (TREE_CODE (TYPE_MIN_VALUE (type)) == INTEGER_CST
4769 && INT_CST_LT (c, TYPE_MIN_VALUE (type)))
4770 /* Unsigned ints with top bit set never fit signed types. */
4771 && ! (TREE_INT_CST_HIGH (c) < 0
4772 && TREE_UNSIGNED (TREE_TYPE (c))));
4775 /* Given a DECL or TYPE, return the scope in which it was declared, or
4776 NUL_TREE if there is no containing scope. */
4778 tree
4779 get_containing_scope (t)
4780 tree t;
4782 return (TYPE_P (t) ? TYPE_CONTEXT (t) : DECL_CONTEXT (t));
4785 /* Return the innermost context enclosing DECL that is
4786 a FUNCTION_DECL, or zero if none. */
4788 tree
4789 decl_function_context (decl)
4790 tree decl;
4792 tree context;
4794 if (TREE_CODE (decl) == ERROR_MARK)
4795 return 0;
4797 if (TREE_CODE (decl) == SAVE_EXPR)
4798 context = SAVE_EXPR_CONTEXT (decl);
4799 else
4800 context = DECL_CONTEXT (decl);
4802 while (context && TREE_CODE (context) != FUNCTION_DECL)
4804 if (TREE_CODE (context) == BLOCK)
4805 context = BLOCK_SUPERCONTEXT (context);
4806 else
4807 context = get_containing_scope (context);
4810 return context;
4813 /* Return the innermost context enclosing DECL that is
4814 a RECORD_TYPE, UNION_TYPE or QUAL_UNION_TYPE, or zero if none.
4815 TYPE_DECLs and FUNCTION_DECLs are transparent to this function. */
4817 tree
4818 decl_type_context (decl)
4819 tree decl;
4821 tree context = DECL_CONTEXT (decl);
4823 while (context)
4825 if (TREE_CODE (context) == RECORD_TYPE
4826 || TREE_CODE (context) == UNION_TYPE
4827 || TREE_CODE (context) == QUAL_UNION_TYPE)
4828 return context;
4829 if (TREE_CODE (context) == TYPE_DECL
4830 || TREE_CODE (context) == FUNCTION_DECL)
4831 context = DECL_CONTEXT (context);
4832 else if (TREE_CODE (context) == BLOCK)
4833 context = BLOCK_SUPERCONTEXT (context);
4834 else
4835 /* Unhandled CONTEXT!? */
4836 abort ();
4838 return NULL_TREE;
4841 /* Print debugging information about the obstack O, named STR. */
4843 void
4844 print_obstack_statistics (str, o)
4845 const char *str;
4846 struct obstack *o;
4848 struct _obstack_chunk *chunk = o->chunk;
4849 int n_chunks = 1;
4850 int n_alloc = 0;
4852 n_alloc += o->next_free - chunk->contents;
4853 chunk = chunk->prev;
4854 while (chunk)
4856 n_chunks += 1;
4857 n_alloc += chunk->limit - &chunk->contents[0];
4858 chunk = chunk->prev;
4860 fprintf (stderr, "obstack %s: %u bytes, %d chunks\n",
4861 str, n_alloc, n_chunks);
4864 /* Print debugging information about tree nodes generated during the compile,
4865 and any language-specific information. */
4867 void
4868 dump_tree_statistics ()
4870 #ifdef GATHER_STATISTICS
4871 int i;
4872 int total_nodes, total_bytes;
4873 #endif
4875 fprintf (stderr, "\n??? tree nodes created\n\n");
4876 #ifdef GATHER_STATISTICS
4877 fprintf (stderr, "Kind Nodes Bytes\n");
4878 fprintf (stderr, "-------------------------------------\n");
4879 total_nodes = total_bytes = 0;
4880 for (i = 0; i < (int) all_kinds; i++)
4882 fprintf (stderr, "%-20s %6d %9d\n", tree_node_kind_names[i],
4883 tree_node_counts[i], tree_node_sizes[i]);
4884 total_nodes += tree_node_counts[i];
4885 total_bytes += tree_node_sizes[i];
4887 fprintf (stderr, "%-20s %9d\n", "identifier names", id_string_size);
4888 fprintf (stderr, "-------------------------------------\n");
4889 fprintf (stderr, "%-20s %6d %9d\n", "Total", total_nodes, total_bytes);
4890 fprintf (stderr, "-------------------------------------\n");
4891 #else
4892 fprintf (stderr, "(No per-node statistics)\n");
4893 #endif
4894 print_obstack_statistics ("permanent_obstack", &permanent_obstack);
4895 print_obstack_statistics ("maybepermanent_obstack", &maybepermanent_obstack);
4896 print_obstack_statistics ("temporary_obstack", &temporary_obstack);
4897 print_obstack_statistics ("momentary_obstack", &momentary_obstack);
4898 print_obstack_statistics ("temp_decl_obstack", &temp_decl_obstack);
4899 print_lang_statistics ();
4902 #define FILE_FUNCTION_PREFIX_LEN 9
4904 #ifndef NO_DOLLAR_IN_LABEL
4905 #define FILE_FUNCTION_FORMAT "_GLOBAL_$%s$%s"
4906 #else /* NO_DOLLAR_IN_LABEL */
4907 #ifndef NO_DOT_IN_LABEL
4908 #define FILE_FUNCTION_FORMAT "_GLOBAL_.%s.%s"
4909 #else /* NO_DOT_IN_LABEL */
4910 #define FILE_FUNCTION_FORMAT "_GLOBAL__%s_%s"
4911 #endif /* NO_DOT_IN_LABEL */
4912 #endif /* NO_DOLLAR_IN_LABEL */
4914 extern char * first_global_object_name;
4915 extern char * weak_global_object_name;
4917 /* Appends 6 random characters to TEMPLATE to (hopefully) avoid name
4918 clashes in cases where we can't reliably choose a unique name.
4920 Derived from mkstemp.c in libiberty. */
4922 static void
4923 append_random_chars (template)
4924 char *template;
4926 static const char letters[]
4927 = "abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789";
4928 static unsigned HOST_WIDE_INT value;
4929 unsigned HOST_WIDE_INT v;
4931 #ifdef HAVE_GETTIMEOFDAY
4932 struct timeval tv;
4933 #endif
4935 template += strlen (template);
4937 #ifdef HAVE_GETTIMEOFDAY
4938 /* Get some more or less random data. */
4939 gettimeofday (&tv, NULL);
4940 value += ((unsigned HOST_WIDE_INT) tv.tv_usec << 16) ^ tv.tv_sec ^ getpid ();
4941 #else
4942 value += getpid ();
4943 #endif
4945 v = value;
4947 /* Fill in the random bits. */
4948 template[0] = letters[v % 62];
4949 v /= 62;
4950 template[1] = letters[v % 62];
4951 v /= 62;
4952 template[2] = letters[v % 62];
4953 v /= 62;
4954 template[3] = letters[v % 62];
4955 v /= 62;
4956 template[4] = letters[v % 62];
4957 v /= 62;
4958 template[5] = letters[v % 62];
4960 template[6] = '\0';
4963 /* Generate a name for a function unique to this translation unit.
4964 TYPE is some string to identify the purpose of this function to the
4965 linker or collect2. */
4967 tree
4968 get_file_function_name_long (type)
4969 const char *type;
4971 char *buf;
4972 register char *p;
4974 if (first_global_object_name)
4975 p = first_global_object_name;
4976 else
4978 /* We don't have anything that we know to be unique to this translation
4979 unit, so use what we do have and throw in some randomness. */
4981 const char *name = weak_global_object_name;
4982 const char *file = main_input_filename;
4984 if (! name)
4985 name = "";
4986 if (! file)
4987 file = input_filename;
4989 p = (char *) alloca (7 + strlen (name) + strlen (file));
4991 sprintf (p, "%s%s", name, file);
4992 append_random_chars (p);
4995 buf = (char *) alloca (sizeof (FILE_FUNCTION_FORMAT) + strlen (p)
4996 + strlen (type));
4998 /* Set up the name of the file-level functions we may need. */
4999 /* Use a global object (which is already required to be unique over
5000 the program) rather than the file name (which imposes extra
5001 constraints). -- Raeburn@MIT.EDU, 10 Jan 1990. */
5002 sprintf (buf, FILE_FUNCTION_FORMAT, type, p);
5004 /* Don't need to pull weird characters out of global names. */
5005 if (p != first_global_object_name)
5007 for (p = buf+11; *p; p++)
5008 if (! ( ISDIGIT(*p)
5009 #if 0 /* we always want labels, which are valid C++ identifiers (+ `$') */
5010 #ifndef ASM_IDENTIFY_GCC /* this is required if `.' is invalid -- k. raeburn */
5011 || *p == '.'
5012 #endif
5013 #endif
5014 #ifndef NO_DOLLAR_IN_LABEL /* this for `$'; unlikely, but... -- kr */
5015 || *p == '$'
5016 #endif
5017 #ifndef NO_DOT_IN_LABEL /* this for `.'; unlikely, but... */
5018 || *p == '.'
5019 #endif
5020 || ISUPPER(*p)
5021 || ISLOWER(*p)))
5022 *p = '_';
5025 return get_identifier (buf);
5028 /* If KIND=='I', return a suitable global initializer (constructor) name.
5029 If KIND=='D', return a suitable global clean-up (destructor) name. */
5031 tree
5032 get_file_function_name (kind)
5033 int kind;
5035 char p[2];
5036 p[0] = kind;
5037 p[1] = 0;
5039 return get_file_function_name_long (p);
5043 /* Expand (the constant part of) a SET_TYPE CONSTRUCTOR node.
5044 The result is placed in BUFFER (which has length BIT_SIZE),
5045 with one bit in each char ('\000' or '\001').
5047 If the constructor is constant, NULL_TREE is returned.
5048 Otherwise, a TREE_LIST of the non-constant elements is emitted. */
5050 tree
5051 get_set_constructor_bits (init, buffer, bit_size)
5052 tree init;
5053 char *buffer;
5054 int bit_size;
5056 int i;
5057 tree vals;
5058 HOST_WIDE_INT domain_min
5059 = TREE_INT_CST_LOW (TYPE_MIN_VALUE (TYPE_DOMAIN (TREE_TYPE (init))));
5060 tree non_const_bits = NULL_TREE;
5061 for (i = 0; i < bit_size; i++)
5062 buffer[i] = 0;
5064 for (vals = TREE_OPERAND (init, 1);
5065 vals != NULL_TREE; vals = TREE_CHAIN (vals))
5067 if (TREE_CODE (TREE_VALUE (vals)) != INTEGER_CST
5068 || (TREE_PURPOSE (vals) != NULL_TREE
5069 && TREE_CODE (TREE_PURPOSE (vals)) != INTEGER_CST))
5070 non_const_bits
5071 = tree_cons (TREE_PURPOSE (vals), TREE_VALUE (vals), non_const_bits);
5072 else if (TREE_PURPOSE (vals) != NULL_TREE)
5074 /* Set a range of bits to ones. */
5075 HOST_WIDE_INT lo_index
5076 = TREE_INT_CST_LOW (TREE_PURPOSE (vals)) - domain_min;
5077 HOST_WIDE_INT hi_index
5078 = TREE_INT_CST_LOW (TREE_VALUE (vals)) - domain_min;
5079 if (lo_index < 0 || lo_index >= bit_size
5080 || hi_index < 0 || hi_index >= bit_size)
5081 abort ();
5082 for ( ; lo_index <= hi_index; lo_index++)
5083 buffer[lo_index] = 1;
5085 else
5087 /* Set a single bit to one. */
5088 HOST_WIDE_INT index
5089 = TREE_INT_CST_LOW (TREE_VALUE (vals)) - domain_min;
5090 if (index < 0 || index >= bit_size)
5092 error ("invalid initializer for bit string");
5093 return NULL_TREE;
5095 buffer[index] = 1;
5098 return non_const_bits;
5101 /* Expand (the constant part of) a SET_TYPE CONSTRUCTOR node.
5102 The result is placed in BUFFER (which is an array of bytes).
5103 If the constructor is constant, NULL_TREE is returned.
5104 Otherwise, a TREE_LIST of the non-constant elements is emitted. */
5106 tree
5107 get_set_constructor_bytes (init, buffer, wd_size)
5108 tree init;
5109 unsigned char *buffer;
5110 int wd_size;
5112 int i;
5113 int set_word_size = BITS_PER_UNIT;
5114 int bit_size = wd_size * set_word_size;
5115 int bit_pos = 0;
5116 unsigned char *bytep = buffer;
5117 char *bit_buffer = (char *) alloca(bit_size);
5118 tree non_const_bits = get_set_constructor_bits (init, bit_buffer, bit_size);
5120 for (i = 0; i < wd_size; i++)
5121 buffer[i] = 0;
5123 for (i = 0; i < bit_size; i++)
5125 if (bit_buffer[i])
5127 if (BYTES_BIG_ENDIAN)
5128 *bytep |= (1 << (set_word_size - 1 - bit_pos));
5129 else
5130 *bytep |= 1 << bit_pos;
5132 bit_pos++;
5133 if (bit_pos >= set_word_size)
5134 bit_pos = 0, bytep++;
5136 return non_const_bits;
5139 #if defined ENABLE_CHECKING && HAVE_GCC_VERSION(2,7)
5140 /* Complain that the tree code of NODE does not match the expected CODE.
5141 FILE, LINE, and FUNCTION are of the caller. */
5142 void
5143 tree_check_failed (node, code, file, line, function)
5144 const tree node;
5145 enum tree_code code;
5146 const char *file;
5147 int line;
5148 const char *function;
5150 error ("Tree check: expected %s, have %s",
5151 tree_code_name[code], tree_code_name[TREE_CODE (node)]);
5152 fancy_abort (file, line, function);
5155 /* Similar to above, except that we check for a class of tree
5156 code, given in CL. */
5157 void
5158 tree_class_check_failed (node, cl, file, line, function)
5159 const tree node;
5160 char cl;
5161 const char *file;
5162 int line;
5163 const char *function;
5165 error ("Tree check: expected class '%c', have '%c' (%s)",
5166 cl, TREE_CODE_CLASS (TREE_CODE (node)),
5167 tree_code_name[TREE_CODE (node)]);
5168 fancy_abort (file, line, function);
5171 #endif /* ENABLE_CHECKING */
5173 /* Return the alias set for T, which may be either a type or an
5174 expression. */
5177 get_alias_set (t)
5178 tree t;
5180 if (!flag_strict_aliasing || !lang_get_alias_set)
5181 /* If we're not doing any lanaguage-specific alias analysis, just
5182 assume everything aliases everything else. */
5183 return 0;
5184 else
5185 return (*lang_get_alias_set) (t);
5188 /* Return a brand-new alias set. */
5191 new_alias_set ()
5193 static int last_alias_set;
5194 if (flag_strict_aliasing)
5195 return ++last_alias_set;
5196 else
5197 return 0;
5200 #ifndef CHAR_TYPE_SIZE
5201 #define CHAR_TYPE_SIZE BITS_PER_UNIT
5202 #endif
5204 #ifndef SHORT_TYPE_SIZE
5205 #define SHORT_TYPE_SIZE (BITS_PER_UNIT * MIN ((UNITS_PER_WORD + 1) / 2, 2))
5206 #endif
5208 #ifndef INT_TYPE_SIZE
5209 #define INT_TYPE_SIZE BITS_PER_WORD
5210 #endif
5212 #ifndef LONG_TYPE_SIZE
5213 #define LONG_TYPE_SIZE BITS_PER_WORD
5214 #endif
5216 #ifndef LONG_LONG_TYPE_SIZE
5217 #define LONG_LONG_TYPE_SIZE (BITS_PER_WORD * 2)
5218 #endif
5220 #ifndef FLOAT_TYPE_SIZE
5221 #define FLOAT_TYPE_SIZE BITS_PER_WORD
5222 #endif
5224 #ifndef DOUBLE_TYPE_SIZE
5225 #define DOUBLE_TYPE_SIZE (BITS_PER_WORD * 2)
5226 #endif
5228 #ifndef LONG_DOUBLE_TYPE_SIZE
5229 #define LONG_DOUBLE_TYPE_SIZE (BITS_PER_WORD * 2)
5230 #endif
5232 /* Create nodes for all integer types (and error_mark_node) using the sizes
5233 of C datatypes. The caller should call set_sizetype soon after calling
5234 this function to select one of the types as sizetype. */
5236 void
5237 build_common_tree_nodes (signed_char)
5238 int signed_char;
5240 error_mark_node = make_node (ERROR_MARK);
5241 TREE_TYPE (error_mark_node) = error_mark_node;
5243 /* Define both `signed char' and `unsigned char'. */
5244 signed_char_type_node = make_signed_type (CHAR_TYPE_SIZE);
5245 unsigned_char_type_node = make_unsigned_type (CHAR_TYPE_SIZE);
5247 /* Define `char', which is like either `signed char' or `unsigned char'
5248 but not the same as either. */
5249 char_type_node
5250 = (signed_char
5251 ? make_signed_type (CHAR_TYPE_SIZE)
5252 : make_unsigned_type (CHAR_TYPE_SIZE));
5254 short_integer_type_node = make_signed_type (SHORT_TYPE_SIZE);
5255 short_unsigned_type_node = make_unsigned_type (SHORT_TYPE_SIZE);
5256 integer_type_node = make_signed_type (INT_TYPE_SIZE);
5257 /* Define an unsigned integer first. make_unsigned_type and make_signed_type
5258 both call set_sizetype for the first type that we create, and we want this
5259 to be large enough to hold the sizes of various types until we switch to
5260 the real sizetype. */
5261 unsigned_type_node = make_unsigned_type (INT_TYPE_SIZE);
5262 long_integer_type_node = make_signed_type (LONG_TYPE_SIZE);
5263 long_unsigned_type_node = make_unsigned_type (LONG_TYPE_SIZE);
5264 long_long_integer_type_node = make_signed_type (LONG_LONG_TYPE_SIZE);
5265 long_long_unsigned_type_node = make_unsigned_type (LONG_LONG_TYPE_SIZE);
5267 intQI_type_node = make_signed_type (GET_MODE_BITSIZE (QImode));
5268 intHI_type_node = make_signed_type (GET_MODE_BITSIZE (HImode));
5269 intSI_type_node = make_signed_type (GET_MODE_BITSIZE (SImode));
5270 intDI_type_node = make_signed_type (GET_MODE_BITSIZE (DImode));
5271 intTI_type_node = make_signed_type (GET_MODE_BITSIZE (TImode));
5273 unsigned_intQI_type_node = make_unsigned_type (GET_MODE_BITSIZE (QImode));
5274 unsigned_intHI_type_node = make_unsigned_type (GET_MODE_BITSIZE (HImode));
5275 unsigned_intSI_type_node = make_unsigned_type (GET_MODE_BITSIZE (SImode));
5276 unsigned_intDI_type_node = make_unsigned_type (GET_MODE_BITSIZE (DImode));
5277 unsigned_intTI_type_node = make_unsigned_type (GET_MODE_BITSIZE (TImode));
5280 /* For type TYPE, fill in the proper type for TYPE_SIZE and
5281 TYPE_SIZE_UNIT. */
5282 static void
5283 fix_sizetype (type)
5284 tree type;
5286 TREE_TYPE (TYPE_SIZE (type)) = bitsizetype;
5287 TREE_TYPE (TYPE_SIZE_UNIT (type)) = sizetype;
5290 /* Call this function after calling build_common_tree_nodes and set_sizetype.
5291 It will fix the previously made nodes to have proper references to
5292 sizetype, and it will create several other common tree nodes. */
5293 void
5294 build_common_tree_nodes_2 (short_double)
5295 int short_double;
5297 fix_sizetype (signed_char_type_node);
5298 fix_sizetype (unsigned_char_type_node);
5299 fix_sizetype (char_type_node);
5300 fix_sizetype (short_integer_type_node);
5301 fix_sizetype (short_unsigned_type_node);
5302 fix_sizetype (integer_type_node);
5303 fix_sizetype (unsigned_type_node);
5304 fix_sizetype (long_unsigned_type_node);
5305 fix_sizetype (long_integer_type_node);
5306 fix_sizetype (long_long_integer_type_node);
5307 fix_sizetype (long_long_unsigned_type_node);
5309 fix_sizetype (intQI_type_node);
5310 fix_sizetype (intHI_type_node);
5311 fix_sizetype (intSI_type_node);
5312 fix_sizetype (intDI_type_node);
5313 fix_sizetype (intTI_type_node);
5314 fix_sizetype (unsigned_intQI_type_node);
5315 fix_sizetype (unsigned_intHI_type_node);
5316 fix_sizetype (unsigned_intSI_type_node);
5317 fix_sizetype (unsigned_intDI_type_node);
5318 fix_sizetype (unsigned_intTI_type_node);
5320 integer_zero_node = build_int_2 (0, 0);
5321 TREE_TYPE (integer_zero_node) = integer_type_node;
5322 integer_one_node = build_int_2 (1, 0);
5323 TREE_TYPE (integer_one_node) = integer_type_node;
5325 size_zero_node = build_int_2 (0, 0);
5326 TREE_TYPE (size_zero_node) = sizetype;
5327 size_one_node = build_int_2 (1, 0);
5328 TREE_TYPE (size_one_node) = sizetype;
5330 void_type_node = make_node (VOID_TYPE);
5331 layout_type (void_type_node); /* Uses size_zero_node */
5332 /* We are not going to have real types in C with less than byte alignment,
5333 so we might as well not have any types that claim to have it. */
5334 TYPE_ALIGN (void_type_node) = BITS_PER_UNIT;
5336 null_pointer_node = build_int_2 (0, 0);
5337 TREE_TYPE (null_pointer_node) = build_pointer_type (void_type_node);
5338 layout_type (TREE_TYPE (null_pointer_node));
5340 ptr_type_node = build_pointer_type (void_type_node);
5341 const_ptr_type_node
5342 = build_pointer_type (build_type_variant (void_type_node, 1, 0));
5344 float_type_node = make_node (REAL_TYPE);
5345 TYPE_PRECISION (float_type_node) = FLOAT_TYPE_SIZE;
5346 layout_type (float_type_node);
5348 double_type_node = make_node (REAL_TYPE);
5349 if (short_double)
5350 TYPE_PRECISION (double_type_node) = FLOAT_TYPE_SIZE;
5351 else
5352 TYPE_PRECISION (double_type_node) = DOUBLE_TYPE_SIZE;
5353 layout_type (double_type_node);
5355 long_double_type_node = make_node (REAL_TYPE);
5356 TYPE_PRECISION (long_double_type_node) = LONG_DOUBLE_TYPE_SIZE;
5357 layout_type (long_double_type_node);
5359 complex_integer_type_node = make_node (COMPLEX_TYPE);
5360 TREE_TYPE (complex_integer_type_node) = integer_type_node;
5361 layout_type (complex_integer_type_node);
5363 complex_float_type_node = make_node (COMPLEX_TYPE);
5364 TREE_TYPE (complex_float_type_node) = float_type_node;
5365 layout_type (complex_float_type_node);
5367 complex_double_type_node = make_node (COMPLEX_TYPE);
5368 TREE_TYPE (complex_double_type_node) = double_type_node;
5369 layout_type (complex_double_type_node);
5371 complex_long_double_type_node = make_node (COMPLEX_TYPE);
5372 TREE_TYPE (complex_long_double_type_node) = long_double_type_node;
5373 layout_type (complex_long_double_type_node);
5375 #ifdef BUILD_VA_LIST_TYPE
5376 BUILD_VA_LIST_TYPE(va_list_type_node);
5377 #else
5378 va_list_type_node = ptr_type_node;
5379 #endif