(gdb-source-info): Display current frame when
[bpt/emacs.git] / src / alloc.c
CommitLineData
7146af97 1/* Storage allocation and gc for GNU Emacs Lisp interpreter.
3a8d0899 2 Copyright (C) 1985, 86, 88, 93, 94, 95, 97, 98, 1999, 2000, 2001, 2002, 2003
4a2f9c6a 3 Free Software Foundation, Inc.
7146af97
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4
5This file is part of GNU Emacs.
6
7GNU Emacs is free software; you can redistribute it and/or modify
8it under the terms of the GNU General Public License as published by
7c299e7a 9the Free Software Foundation; either version 2, or (at your option)
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10any later version.
11
12GNU Emacs is distributed in the hope that it will be useful,
13but WITHOUT ANY WARRANTY; without even the implied warranty of
14MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15GNU General Public License for more details.
16
17You should have received a copy of the GNU General Public License
18along with GNU Emacs; see the file COPYING. If not, write to
3b7ad313
EN
19the Free Software Foundation, Inc., 59 Temple Place - Suite 330,
20Boston, MA 02111-1307, USA. */
7146af97 21
18160b98 22#include <config.h>
e9b309ac 23#include <stdio.h>
ab6780cd 24#include <limits.h> /* For CHAR_BIT. */
92939d31 25
4455ad75
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26#ifdef ALLOC_DEBUG
27#undef INLINE
28#endif
29
68c45bf0 30/* Note that this declares bzero on OSF/1. How dumb. */
2e471eb5 31
68c45bf0 32#include <signal.h>
92939d31 33
877935b1
GM
34/* GC_MALLOC_CHECK defined means perform validity checks of malloc'd
35 memory. Can do this only if using gmalloc.c. */
36
37#if defined SYSTEM_MALLOC || defined DOUG_LEA_MALLOC
38#undef GC_MALLOC_CHECK
39#endif
40
7539e11f
KR
41/* This file is part of the core Lisp implementation, and thus must
42 deal with the real data structures. If the Lisp implementation is
43 replaced, this file likely will not be used. */
2e471eb5 44
7539e11f 45#undef HIDE_LISP_IMPLEMENTATION
7146af97 46#include "lisp.h"
ece93c02 47#include "process.h"
d5e35230 48#include "intervals.h"
4c0be5f4 49#include "puresize.h"
7146af97
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50#include "buffer.h"
51#include "window.h"
2538fae4 52#include "keyboard.h"
502b9b64 53#include "frame.h"
9ac0d9e0 54#include "blockinput.h"
e54daa22 55#include "charset.h"
e065a56e 56#include "syssignal.h"
34400008 57#include <setjmp.h>
e065a56e 58
bf952fb6
DL
59#ifdef HAVE_UNISTD_H
60#include <unistd.h>
61#else
62extern POINTER_TYPE *sbrk ();
63#endif
ee1eea5c 64
d1658221 65#ifdef DOUG_LEA_MALLOC
2e471eb5 66
d1658221 67#include <malloc.h>
3e60b029
DL
68/* malloc.h #defines this as size_t, at least in glibc2. */
69#ifndef __malloc_size_t
d1658221 70#define __malloc_size_t int
3e60b029 71#endif
81d492d5 72
2e471eb5
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73/* Specify maximum number of areas to mmap. It would be nice to use a
74 value that explicitly means "no limit". */
75
81d492d5
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76#define MMAP_MAX_AREAS 100000000
77
2e471eb5
GM
78#else /* not DOUG_LEA_MALLOC */
79
276cbe5a
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80/* The following come from gmalloc.c. */
81
276cbe5a 82#define __malloc_size_t size_t
276cbe5a 83extern __malloc_size_t _bytes_used;
3e60b029 84extern __malloc_size_t __malloc_extra_blocks;
2e471eb5
GM
85
86#endif /* not DOUG_LEA_MALLOC */
276cbe5a 87
276cbe5a 88/* Value of _bytes_used, when spare_memory was freed. */
2e471eb5 89
276cbe5a
RS
90static __malloc_size_t bytes_used_when_full;
91
2e471eb5
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92/* Mark, unmark, query mark bit of a Lisp string. S must be a pointer
93 to a struct Lisp_String. */
94
cc2d8c6b
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95#define MARK_STRING(S) ((S)->size |= MARKBIT)
96#define UNMARK_STRING(S) ((S)->size &= ~MARKBIT)
97#define STRING_MARKED_P(S) ((S)->size & MARKBIT)
2e471eb5 98
3ef06d12
SM
99#define VECTOR_MARK(V) ((V)->size |= ARRAY_MARK_FLAG)
100#define VECTOR_UNMARK(V) ((V)->size &= ~ARRAY_MARK_FLAG)
101#define VECTOR_MARKED_P(V) ((V)->size & ARRAY_MARK_FLAG)
102
2e471eb5
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103/* Value is the number of bytes/chars of S, a pointer to a struct
104 Lisp_String. This must be used instead of STRING_BYTES (S) or
105 S->size during GC, because S->size contains the mark bit for
106 strings. */
107
3ef06d12 108#define GC_STRING_BYTES(S) (STRING_BYTES (S))
2e471eb5
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109#define GC_STRING_CHARS(S) ((S)->size & ~MARKBIT)
110
111/* Number of bytes of consing done since the last gc. */
112
7146af97
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113int consing_since_gc;
114
310ea200 115/* Count the amount of consing of various sorts of space. */
2e471eb5 116
31ade731
SM
117EMACS_INT cons_cells_consed;
118EMACS_INT floats_consed;
119EMACS_INT vector_cells_consed;
120EMACS_INT symbols_consed;
121EMACS_INT string_chars_consed;
122EMACS_INT misc_objects_consed;
123EMACS_INT intervals_consed;
124EMACS_INT strings_consed;
2e471eb5
GM
125
126/* Number of bytes of consing since GC before another GC should be done. */
310ea200 127
31ade731 128EMACS_INT gc_cons_threshold;
7146af97 129
2e471eb5
GM
130/* Nonzero during GC. */
131
7146af97
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132int gc_in_progress;
133
3de0effb
RS
134/* Nonzero means abort if try to GC.
135 This is for code which is written on the assumption that
136 no GC will happen, so as to verify that assumption. */
137
138int abort_on_gc;
139
299585ee 140/* Nonzero means display messages at beginning and end of GC. */
2e471eb5 141
299585ee
RS
142int garbage_collection_messages;
143
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144#ifndef VIRT_ADDR_VARIES
145extern
146#endif /* VIRT_ADDR_VARIES */
2e471eb5 147int malloc_sbrk_used;
7146af97
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148
149#ifndef VIRT_ADDR_VARIES
150extern
151#endif /* VIRT_ADDR_VARIES */
2e471eb5 152int malloc_sbrk_unused;
7146af97 153
502b9b64 154/* Two limits controlling how much undo information to keep. */
2e471eb5 155
31ade731
SM
156EMACS_INT undo_limit;
157EMACS_INT undo_strong_limit;
7146af97 158
34400008
GM
159/* Number of live and free conses etc. */
160
161static int total_conses, total_markers, total_symbols, total_vector_size;
162static int total_free_conses, total_free_markers, total_free_symbols;
163static int total_free_floats, total_floats;
fd27a537 164
2e471eb5
GM
165/* Points to memory space allocated as "spare", to be freed if we run
166 out of memory. */
167
276cbe5a
RS
168static char *spare_memory;
169
170/* Amount of spare memory to keep in reserve. */
2e471eb5 171
276cbe5a
RS
172#define SPARE_MEMORY (1 << 14)
173
174/* Number of extra blocks malloc should get when it needs more core. */
2e471eb5 175
276cbe5a
RS
176static int malloc_hysteresis;
177
2e471eb5
GM
178/* Non-nil means defun should do purecopy on the function definition. */
179
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JB
180Lisp_Object Vpurify_flag;
181
74a54b04
RS
182/* Non-nil means we are handling a memory-full error. */
183
184Lisp_Object Vmemory_full;
185
7146af97 186#ifndef HAVE_SHM
2e471eb5
GM
187
188/* Force it into data space! */
189
190EMACS_INT pure[PURESIZE / sizeof (EMACS_INT)] = {0,};
7146af97 191#define PUREBEG (char *) pure
2e471eb5 192
9e713715 193#else /* HAVE_SHM */
2e471eb5 194
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JB
195#define pure PURE_SEG_BITS /* Use shared memory segment */
196#define PUREBEG (char *)PURE_SEG_BITS
4c0be5f4 197
9e713715 198#endif /* HAVE_SHM */
2e471eb5 199
9e713715 200/* Pointer to the pure area, and its size. */
2e471eb5 201
9e713715
GM
202static char *purebeg;
203static size_t pure_size;
204
205/* Number of bytes of pure storage used before pure storage overflowed.
206 If this is non-zero, this implies that an overflow occurred. */
207
208static size_t pure_bytes_used_before_overflow;
7146af97 209
34400008
GM
210/* Value is non-zero if P points into pure space. */
211
212#define PURE_POINTER_P(P) \
213 (((PNTR_COMPARISON_TYPE) (P) \
9e713715 214 < (PNTR_COMPARISON_TYPE) ((char *) purebeg + pure_size)) \
34400008 215 && ((PNTR_COMPARISON_TYPE) (P) \
9e713715 216 >= (PNTR_COMPARISON_TYPE) purebeg))
34400008 217
2e471eb5
GM
218/* Index in pure at which next pure object will be allocated.. */
219
31ade731 220EMACS_INT pure_bytes_used;
7146af97 221
2e471eb5
GM
222/* If nonzero, this is a warning delivered by malloc and not yet
223 displayed. */
224
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JB
225char *pending_malloc_warning;
226
bcb61d60 227/* Pre-computed signal argument for use when memory is exhausted. */
2e471eb5 228
74a54b04 229Lisp_Object Vmemory_signal_data;
bcb61d60 230
7146af97
JB
231/* Maximum amount of C stack to save when a GC happens. */
232
233#ifndef MAX_SAVE_STACK
234#define MAX_SAVE_STACK 16000
235#endif
236
237/* Buffer in which we save a copy of the C stack at each GC. */
238
239char *stack_copy;
240int stack_copy_size;
241
2e471eb5
GM
242/* Non-zero means ignore malloc warnings. Set during initialization.
243 Currently not used. */
244
7146af97 245int ignore_warnings;
350273a4 246
a59de17b 247Lisp_Object Qgc_cons_threshold, Qchar_table_extra_slots;
e8197642 248
9e713715
GM
249/* Hook run after GC has finished. */
250
251Lisp_Object Vpost_gc_hook, Qpost_gc_hook;
252
2c5bd608
DL
253Lisp_Object Vgc_elapsed; /* accumulated elapsed time in GC */
254EMACS_INT gcs_done; /* accumulated GCs */
255
2e471eb5 256static void mark_buffer P_ ((Lisp_Object));
6793bc63 257extern void mark_kboards P_ ((void));
2e471eb5 258static void gc_sweep P_ ((void));
41c28a37
GM
259static void mark_glyph_matrix P_ ((struct glyph_matrix *));
260static void mark_face_cache P_ ((struct face_cache *));
261
262#ifdef HAVE_WINDOW_SYSTEM
263static void mark_image P_ ((struct image *));
264static void mark_image_cache P_ ((struct frame *));
265#endif /* HAVE_WINDOW_SYSTEM */
266
2e471eb5
GM
267static struct Lisp_String *allocate_string P_ ((void));
268static void compact_small_strings P_ ((void));
269static void free_large_strings P_ ((void));
270static void sweep_strings P_ ((void));
7da0b0d3
RS
271
272extern int message_enable_multibyte;
34400008 273
34400008
GM
274/* When scanning the C stack for live Lisp objects, Emacs keeps track
275 of what memory allocated via lisp_malloc is intended for what
276 purpose. This enumeration specifies the type of memory. */
277
278enum mem_type
279{
280 MEM_TYPE_NON_LISP,
281 MEM_TYPE_BUFFER,
282 MEM_TYPE_CONS,
283 MEM_TYPE_STRING,
284 MEM_TYPE_MISC,
285 MEM_TYPE_SYMBOL,
286 MEM_TYPE_FLOAT,
ece93c02
GM
287 /* Keep the following vector-like types together, with
288 MEM_TYPE_WINDOW being the last, and MEM_TYPE_VECTOR the
289 first. Or change the code of live_vector_p, for instance. */
290 MEM_TYPE_VECTOR,
291 MEM_TYPE_PROCESS,
292 MEM_TYPE_HASH_TABLE,
293 MEM_TYPE_FRAME,
294 MEM_TYPE_WINDOW
34400008
GM
295};
296
877935b1 297#if GC_MARK_STACK || defined GC_MALLOC_CHECK
0b378936
GM
298
299#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
300#include <stdio.h> /* For fprintf. */
301#endif
302
303/* A unique object in pure space used to make some Lisp objects
304 on free lists recognizable in O(1). */
305
306Lisp_Object Vdead;
307
877935b1
GM
308#ifdef GC_MALLOC_CHECK
309
310enum mem_type allocated_mem_type;
311int dont_register_blocks;
312
313#endif /* GC_MALLOC_CHECK */
314
315/* A node in the red-black tree describing allocated memory containing
316 Lisp data. Each such block is recorded with its start and end
317 address when it is allocated, and removed from the tree when it
318 is freed.
319
320 A red-black tree is a balanced binary tree with the following
321 properties:
322
323 1. Every node is either red or black.
324 2. Every leaf is black.
325 3. If a node is red, then both of its children are black.
326 4. Every simple path from a node to a descendant leaf contains
327 the same number of black nodes.
328 5. The root is always black.
329
330 When nodes are inserted into the tree, or deleted from the tree,
331 the tree is "fixed" so that these properties are always true.
332
333 A red-black tree with N internal nodes has height at most 2
334 log(N+1). Searches, insertions and deletions are done in O(log N).
335 Please see a text book about data structures for a detailed
336 description of red-black trees. Any book worth its salt should
337 describe them. */
338
339struct mem_node
340{
9f7d9210
RS
341 /* Children of this node. These pointers are never NULL. When there
342 is no child, the value is MEM_NIL, which points to a dummy node. */
343 struct mem_node *left, *right;
344
345 /* The parent of this node. In the root node, this is NULL. */
346 struct mem_node *parent;
877935b1
GM
347
348 /* Start and end of allocated region. */
349 void *start, *end;
350
351 /* Node color. */
352 enum {MEM_BLACK, MEM_RED} color;
177c0ea7 353
877935b1
GM
354 /* Memory type. */
355 enum mem_type type;
356};
357
358/* Base address of stack. Set in main. */
359
360Lisp_Object *stack_base;
361
362/* Root of the tree describing allocated Lisp memory. */
363
364static struct mem_node *mem_root;
365
ece93c02
GM
366/* Lowest and highest known address in the heap. */
367
368static void *min_heap_address, *max_heap_address;
369
877935b1
GM
370/* Sentinel node of the tree. */
371
372static struct mem_node mem_z;
373#define MEM_NIL &mem_z
374
b3303f74 375static POINTER_TYPE *lisp_malloc P_ ((size_t, enum mem_type));
ece93c02 376static struct Lisp_Vector *allocate_vectorlike P_ ((EMACS_INT, enum mem_type));
bf952fb6 377static void lisp_free P_ ((POINTER_TYPE *));
34400008 378static void mark_stack P_ ((void));
34400008
GM
379static int live_vector_p P_ ((struct mem_node *, void *));
380static int live_buffer_p P_ ((struct mem_node *, void *));
381static int live_string_p P_ ((struct mem_node *, void *));
382static int live_cons_p P_ ((struct mem_node *, void *));
383static int live_symbol_p P_ ((struct mem_node *, void *));
384static int live_float_p P_ ((struct mem_node *, void *));
385static int live_misc_p P_ ((struct mem_node *, void *));
182ff242 386static void mark_maybe_object P_ ((Lisp_Object));
34400008
GM
387static void mark_memory P_ ((void *, void *));
388static void mem_init P_ ((void));
389static struct mem_node *mem_insert P_ ((void *, void *, enum mem_type));
390static void mem_insert_fixup P_ ((struct mem_node *));
391static void mem_rotate_left P_ ((struct mem_node *));
392static void mem_rotate_right P_ ((struct mem_node *));
393static void mem_delete P_ ((struct mem_node *));
394static void mem_delete_fixup P_ ((struct mem_node *));
395static INLINE struct mem_node *mem_find P_ ((void *));
396
397#if GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS
398static void check_gcpros P_ ((void));
399#endif
400
877935b1 401#endif /* GC_MARK_STACK || GC_MALLOC_CHECK */
34400008 402
1f0b3fd2
GM
403/* Recording what needs to be marked for gc. */
404
405struct gcpro *gcprolist;
406
407/* Addresses of staticpro'd variables. */
408
382d38fa 409#define NSTATICS 1280
1f0b3fd2
GM
410Lisp_Object *staticvec[NSTATICS] = {0};
411
412/* Index of next unused slot in staticvec. */
413
414int staticidx = 0;
415
416static POINTER_TYPE *pure_alloc P_ ((size_t, int));
417
418
419/* Value is SZ rounded up to the next multiple of ALIGNMENT.
420 ALIGNMENT must be a power of 2. */
421
ab6780cd
SM
422#define ALIGN(ptr, ALIGNMENT) \
423 ((POINTER_TYPE *) ((((EMACS_UINT)(ptr)) + (ALIGNMENT) - 1) \
424 & ~((ALIGNMENT) - 1)))
1f0b3fd2 425
ece93c02 426
7146af97 427\f
34400008
GM
428/************************************************************************
429 Malloc
430 ************************************************************************/
431
4455ad75 432/* Function malloc calls this if it finds we are near exhausting storage. */
d457598b
AS
433
434void
7146af97
JB
435malloc_warning (str)
436 char *str;
437{
438 pending_malloc_warning = str;
439}
440
34400008 441
4455ad75 442/* Display an already-pending malloc warning. */
34400008 443
d457598b 444void
7146af97
JB
445display_malloc_warning ()
446{
4455ad75
RS
447 call3 (intern ("display-warning"),
448 intern ("alloc"),
449 build_string (pending_malloc_warning),
450 intern ("emergency"));
7146af97 451 pending_malloc_warning = 0;
7146af97
JB
452}
453
34400008 454
d1658221 455#ifdef DOUG_LEA_MALLOC
1177ecf6 456# define BYTES_USED (mallinfo ().arena)
d1658221 457#else
1177ecf6 458# define BYTES_USED _bytes_used
d1658221
RS
459#endif
460
34400008 461
2e471eb5 462/* Called if malloc returns zero. */
276cbe5a 463
d457598b 464void
7146af97
JB
465memory_full ()
466{
74a54b04
RS
467 Vmemory_full = Qt;
468
276cbe5a 469#ifndef SYSTEM_MALLOC
d1658221 470 bytes_used_when_full = BYTES_USED;
276cbe5a
RS
471#endif
472
473 /* The first time we get here, free the spare memory. */
474 if (spare_memory)
475 {
476 free (spare_memory);
477 spare_memory = 0;
478 }
479
2e471eb5
GM
480 /* This used to call error, but if we've run out of memory, we could
481 get infinite recursion trying to build the string. */
276cbe5a 482 while (1)
74a54b04 483 Fsignal (Qnil, Vmemory_signal_data);
276cbe5a
RS
484}
485
34400008 486
276cbe5a
RS
487/* Called if we can't allocate relocatable space for a buffer. */
488
489void
490buffer_memory_full ()
491{
2e471eb5
GM
492 /* If buffers use the relocating allocator, no need to free
493 spare_memory, because we may have plenty of malloc space left
494 that we could get, and if we don't, the malloc that fails will
495 itself cause spare_memory to be freed. If buffers don't use the
496 relocating allocator, treat this like any other failing
497 malloc. */
276cbe5a
RS
498
499#ifndef REL_ALLOC
500 memory_full ();
501#endif
502
74a54b04
RS
503 Vmemory_full = Qt;
504
2e471eb5
GM
505 /* This used to call error, but if we've run out of memory, we could
506 get infinite recursion trying to build the string. */
bcb61d60 507 while (1)
74a54b04 508 Fsignal (Qnil, Vmemory_signal_data);
7146af97
JB
509}
510
34400008
GM
511
512/* Like malloc but check for no memory and block interrupt input.. */
7146af97 513
c971ff9a 514POINTER_TYPE *
7146af97 515xmalloc (size)
675d5130 516 size_t size;
7146af97 517{
c971ff9a 518 register POINTER_TYPE *val;
7146af97 519
9ac0d9e0 520 BLOCK_INPUT;
c971ff9a 521 val = (POINTER_TYPE *) malloc (size);
9ac0d9e0 522 UNBLOCK_INPUT;
7146af97 523
2e471eb5
GM
524 if (!val && size)
525 memory_full ();
7146af97
JB
526 return val;
527}
528
34400008
GM
529
530/* Like realloc but check for no memory and block interrupt input.. */
531
c971ff9a 532POINTER_TYPE *
7146af97 533xrealloc (block, size)
c971ff9a 534 POINTER_TYPE *block;
675d5130 535 size_t size;
7146af97 536{
c971ff9a 537 register POINTER_TYPE *val;
7146af97 538
9ac0d9e0 539 BLOCK_INPUT;
56d2031b
JB
540 /* We must call malloc explicitly when BLOCK is 0, since some
541 reallocs don't do this. */
542 if (! block)
c971ff9a 543 val = (POINTER_TYPE *) malloc (size);
f048679d 544 else
c971ff9a 545 val = (POINTER_TYPE *) realloc (block, size);
9ac0d9e0 546 UNBLOCK_INPUT;
7146af97
JB
547
548 if (!val && size) memory_full ();
549 return val;
550}
9ac0d9e0 551
34400008
GM
552
553/* Like free but block interrupt input.. */
554
9ac0d9e0
JB
555void
556xfree (block)
c971ff9a 557 POINTER_TYPE *block;
9ac0d9e0
JB
558{
559 BLOCK_INPUT;
560 free (block);
561 UNBLOCK_INPUT;
562}
563
c8099634 564
dca7c6a8
GM
565/* Like strdup, but uses xmalloc. */
566
567char *
568xstrdup (s)
943b873e 569 const char *s;
dca7c6a8 570{
675d5130 571 size_t len = strlen (s) + 1;
dca7c6a8
GM
572 char *p = (char *) xmalloc (len);
573 bcopy (s, p, len);
574 return p;
575}
576
577
34400008
GM
578/* Like malloc but used for allocating Lisp data. NBYTES is the
579 number of bytes to allocate, TYPE describes the intended use of the
580 allcated memory block (for strings, for conses, ...). */
581
918a23a7
RS
582static void *lisp_malloc_loser;
583
675d5130 584static POINTER_TYPE *
34400008 585lisp_malloc (nbytes, type)
675d5130 586 size_t nbytes;
34400008 587 enum mem_type type;
c8099634 588{
34400008 589 register void *val;
c8099634
RS
590
591 BLOCK_INPUT;
877935b1
GM
592
593#ifdef GC_MALLOC_CHECK
594 allocated_mem_type = type;
595#endif
177c0ea7 596
34400008 597 val = (void *) malloc (nbytes);
c8099634 598
918a23a7
RS
599 /* If the memory just allocated cannot be addressed thru a Lisp
600 object's pointer, and it needs to be,
601 that's equivalent to running out of memory. */
602 if (val && type != MEM_TYPE_NON_LISP)
603 {
604 Lisp_Object tem;
605 XSETCONS (tem, (char *) val + nbytes - 1);
606 if ((char *) XCONS (tem) != (char *) val + nbytes - 1)
607 {
608 lisp_malloc_loser = val;
609 free (val);
610 val = 0;
611 }
612 }
613
877935b1 614#if GC_MARK_STACK && !defined GC_MALLOC_CHECK
dca7c6a8 615 if (val && type != MEM_TYPE_NON_LISP)
34400008
GM
616 mem_insert (val, (char *) val + nbytes, type);
617#endif
177c0ea7 618
dca7c6a8
GM
619 UNBLOCK_INPUT;
620 if (!val && nbytes)
621 memory_full ();
c8099634
RS
622 return val;
623}
624
34400008
GM
625/* Free BLOCK. This must be called to free memory allocated with a
626 call to lisp_malloc. */
627
bf952fb6 628static void
c8099634 629lisp_free (block)
675d5130 630 POINTER_TYPE *block;
c8099634
RS
631{
632 BLOCK_INPUT;
c8099634 633 free (block);
877935b1 634#if GC_MARK_STACK && !defined GC_MALLOC_CHECK
34400008
GM
635 mem_delete (mem_find (block));
636#endif
c8099634
RS
637 UNBLOCK_INPUT;
638}
34400008 639
ab6780cd
SM
640/* Allocation of aligned blocks of memory to store Lisp data. */
641/* The entry point is lisp_align_malloc which returns blocks of at most */
642/* BLOCK_BYTES and guarantees they are aligned on a BLOCK_ALIGN boundary. */
643
644
645/* BLOCK_ALIGN has to be a power of 2. */
646#define BLOCK_ALIGN (1 << 10)
647#define BLOCK_BYTES \
ebb8d410 648 (BLOCK_ALIGN - sizeof (struct alinged_block *) - ABLOCKS_PADDING)
ab6780cd
SM
649
650/* Internal data structures and constants. */
651
652/* Padding to leave at the end of a malloc'd block. This is to give
653 malloc a chance to minimize the amount of memory wasted to alignment.
654 It should be tuned to the particular malloc library used.
655 The current setting is based on glibc-2.3.2. */
656#define ABLOCKS_PADDING 0
657#define ABLOCKS_SIZE 16
658
659/* An aligned block of memory. */
660struct ablock
661{
662 union
663 {
664 char payload[BLOCK_BYTES];
665 struct ablock *next_free;
666 } x;
667 /* `abase' is the aligned base of the ablocks. */
668 /* It is overloaded to hold the virtual `busy' field that counts
669 the number of used ablock in the parent ablocks.
670 The first ablock has the `busy' field, the others have the `abase'
671 field. To tell the difference, we assume that pointers will have
672 integer values larger than 2 * ABLOCKS_SIZE. The lowest bit of `busy'
673 is used to tell whether the real base of the parent ablocks is `abase'
674 (if not, the word before the first ablock holds a pointer to the
675 real base). */
676 struct ablocks *abase;
677 /* The padding of all but the last ablock is unused. The padding of
678 the last ablock in an ablocks is not allocated. */
ebb8d410 679#if ABLOCKS_PADDING
ab6780cd 680 char padding[ABLOCKS_PADDING];
ebb8d410 681#endif
ab6780cd
SM
682};
683
684/* A bunch of consecutive aligned blocks. */
685struct ablocks
686{
687 struct ablock blocks[ABLOCKS_SIZE];
688};
689
690/* Size of the block requested from malloc or memalign. */
691#define ABLOCKS_BYTES (sizeof (struct ablocks) - ABLOCKS_PADDING)
692
693#define ABLOCK_ABASE(block) \
694 (((unsigned long) (block)->abase) <= (1 + 2 * ABLOCKS_SIZE) \
695 ? (struct ablocks *)(block) \
696 : (block)->abase)
697
698/* Virtual `busy' field. */
699#define ABLOCKS_BUSY(abase) ((abase)->blocks[0].abase)
700
701/* Pointer to the (not necessarily aligned) malloc block. */
702#define ABLOCKS_BASE(abase) \
703 (1 & (int) ABLOCKS_BUSY (abase) ? abase : ((void**)abase)[-1])
704
705/* The list of free ablock. */
706static struct ablock *free_ablock;
707
708/* Allocate an aligned block of nbytes.
709 Alignment is on a multiple of BLOCK_ALIGN and `nbytes' has to be
710 smaller or equal to BLOCK_BYTES. */
711static POINTER_TYPE *
712lisp_align_malloc (nbytes, type)
713 size_t nbytes;
714 enum mem_type type;
715{
716 void *base, *val;
717 struct ablocks *abase;
718
719 eassert (nbytes <= BLOCK_BYTES);
720
721 BLOCK_INPUT;
722
723#ifdef GC_MALLOC_CHECK
724 allocated_mem_type = type;
725#endif
726
727 if (!free_ablock)
728 {
729 int i, aligned;
730
731#ifdef DOUG_LEA_MALLOC
732 /* Prevent mmap'ing the chunk. Lisp data may not be mmap'ed
733 because mapped region contents are not preserved in
734 a dumped Emacs. */
735 mallopt (M_MMAP_MAX, 0);
736#endif
737
738 base = malloc (ABLOCKS_BYTES);
739 abase = ALIGN (base, BLOCK_ALIGN);
740
741 aligned = (base == abase);
742 if (!aligned)
743 ((void**)abase)[-1] = base;
744
745#ifdef DOUG_LEA_MALLOC
746 /* Back to a reasonable maximum of mmap'ed areas. */
747 mallopt (M_MMAP_MAX, MMAP_MAX_AREAS);
748#endif
749
750 /* Initialize the blocks and put them on the free list.
751 Is `base' was not properly aligned, we can't use the last block. */
752 for (i = 0; i < (aligned ? ABLOCKS_SIZE : ABLOCKS_SIZE - 1); i++)
753 {
754 abase->blocks[i].abase = abase;
755 abase->blocks[i].x.next_free = free_ablock;
756 free_ablock = &abase->blocks[i];
757 }
758 ABLOCKS_BUSY (abase) = (struct ablocks *) aligned;
759
760 eassert (ABLOCK_ABASE (&abase->blocks[3]) == abase); /* 3 is arbitrary */
761 eassert (ABLOCK_ABASE (&abase->blocks[0]) == abase);
762 eassert (ABLOCKS_BASE (abase) == base);
763 eassert (aligned == (int)ABLOCKS_BUSY (abase));
764 }
765
766 abase = ABLOCK_ABASE (free_ablock);
767 ABLOCKS_BUSY (abase) = (struct ablocks *) (2 + (int) ABLOCKS_BUSY (abase));
768 val = free_ablock;
769 free_ablock = free_ablock->x.next_free;
770
771 /* If the memory just allocated cannot be addressed thru a Lisp
772 object's pointer, and it needs to be,
773 that's equivalent to running out of memory. */
774 if (val && type != MEM_TYPE_NON_LISP)
775 {
776 Lisp_Object tem;
777 XSETCONS (tem, (char *) val + nbytes - 1);
778 if ((char *) XCONS (tem) != (char *) val + nbytes - 1)
779 {
780 lisp_malloc_loser = val;
781 free (val);
782 val = 0;
783 }
784 }
785
786#if GC_MARK_STACK && !defined GC_MALLOC_CHECK
787 if (val && type != MEM_TYPE_NON_LISP)
788 mem_insert (val, (char *) val + nbytes, type);
789#endif
790
791 UNBLOCK_INPUT;
792 if (!val && nbytes)
793 memory_full ();
794
795 eassert (0 == ((EMACS_UINT)val) % BLOCK_ALIGN);
796 return val;
797}
798
799static void
800lisp_align_free (block)
801 POINTER_TYPE *block;
802{
803 struct ablock *ablock = block;
804 struct ablocks *abase = ABLOCK_ABASE (ablock);
805
806 BLOCK_INPUT;
807#if GC_MARK_STACK && !defined GC_MALLOC_CHECK
808 mem_delete (mem_find (block));
809#endif
810 /* Put on free list. */
811 ablock->x.next_free = free_ablock;
812 free_ablock = ablock;
813 /* Update busy count. */
814 ABLOCKS_BUSY (abase) = (struct ablocks *) (-2 + (int) ABLOCKS_BUSY (abase));
815
816 if (2 > (int) ABLOCKS_BUSY (abase))
817 { /* All the blocks are free. */
818 int i = 0, aligned = (int) ABLOCKS_BUSY (abase);
819 struct ablock **tem = &free_ablock;
820 struct ablock *atop = &abase->blocks[aligned ? ABLOCKS_SIZE : ABLOCKS_SIZE - 1];
821
822 while (*tem)
823 {
824 if (*tem >= (struct ablock *) abase && *tem < atop)
825 {
826 i++;
827 *tem = (*tem)->x.next_free;
828 }
829 else
830 tem = &(*tem)->x.next_free;
831 }
832 eassert ((aligned & 1) == aligned);
833 eassert (i == (aligned ? ABLOCKS_SIZE : ABLOCKS_SIZE - 1));
834 free (ABLOCKS_BASE (abase));
835 }
836 UNBLOCK_INPUT;
837}
3ef06d12
SM
838
839/* Return a new buffer structure allocated from the heap with
840 a call to lisp_malloc. */
841
842struct buffer *
843allocate_buffer ()
844{
845 struct buffer *b
846 = (struct buffer *) lisp_malloc (sizeof (struct buffer),
847 MEM_TYPE_BUFFER);
848 return b;
849}
850
9ac0d9e0
JB
851\f
852/* Arranging to disable input signals while we're in malloc.
853
854 This only works with GNU malloc. To help out systems which can't
855 use GNU malloc, all the calls to malloc, realloc, and free
856 elsewhere in the code should be inside a BLOCK_INPUT/UNBLOCK_INPUT
857 pairs; unfortunately, we have no idea what C library functions
858 might call malloc, so we can't really protect them unless you're
2c5bd608
DL
859 using GNU malloc. Fortunately, most of the major operating systems
860 can use GNU malloc. */
9ac0d9e0
JB
861
862#ifndef SYSTEM_MALLOC
b3303f74
DL
863#ifndef DOUG_LEA_MALLOC
864extern void * (*__malloc_hook) P_ ((size_t));
865extern void * (*__realloc_hook) P_ ((void *, size_t));
866extern void (*__free_hook) P_ ((void *));
867/* Else declared in malloc.h, perhaps with an extra arg. */
868#endif /* DOUG_LEA_MALLOC */
b0846f52 869static void * (*old_malloc_hook) ();
b0846f52 870static void * (*old_realloc_hook) ();
b0846f52 871static void (*old_free_hook) ();
9ac0d9e0 872
276cbe5a
RS
873/* This function is used as the hook for free to call. */
874
9ac0d9e0
JB
875static void
876emacs_blocked_free (ptr)
877 void *ptr;
878{
879 BLOCK_INPUT;
877935b1
GM
880
881#ifdef GC_MALLOC_CHECK
a83fee2c
GM
882 if (ptr)
883 {
884 struct mem_node *m;
177c0ea7 885
a83fee2c
GM
886 m = mem_find (ptr);
887 if (m == MEM_NIL || m->start != ptr)
888 {
889 fprintf (stderr,
890 "Freeing `%p' which wasn't allocated with malloc\n", ptr);
891 abort ();
892 }
893 else
894 {
895 /* fprintf (stderr, "free %p...%p (%p)\n", m->start, m->end, ptr); */
896 mem_delete (m);
897 }
898 }
877935b1 899#endif /* GC_MALLOC_CHECK */
177c0ea7 900
9ac0d9e0
JB
901 __free_hook = old_free_hook;
902 free (ptr);
177c0ea7 903
276cbe5a
RS
904 /* If we released our reserve (due to running out of memory),
905 and we have a fair amount free once again,
906 try to set aside another reserve in case we run out once more. */
907 if (spare_memory == 0
908 /* Verify there is enough space that even with the malloc
909 hysteresis this call won't run out again.
910 The code here is correct as long as SPARE_MEMORY
911 is substantially larger than the block size malloc uses. */
912 && (bytes_used_when_full
d1658221 913 > BYTES_USED + max (malloc_hysteresis, 4) * SPARE_MEMORY))
675d5130 914 spare_memory = (char *) malloc ((size_t) SPARE_MEMORY);
276cbe5a 915
b0846f52 916 __free_hook = emacs_blocked_free;
9ac0d9e0
JB
917 UNBLOCK_INPUT;
918}
919
34400008 920
276cbe5a
RS
921/* If we released our reserve (due to running out of memory),
922 and we have a fair amount free once again,
923 try to set aside another reserve in case we run out once more.
924
925 This is called when a relocatable block is freed in ralloc.c. */
926
927void
928refill_memory_reserve ()
929{
930 if (spare_memory == 0)
675d5130 931 spare_memory = (char *) malloc ((size_t) SPARE_MEMORY);
276cbe5a
RS
932}
933
34400008 934
276cbe5a
RS
935/* This function is the malloc hook that Emacs uses. */
936
9ac0d9e0
JB
937static void *
938emacs_blocked_malloc (size)
675d5130 939 size_t size;
9ac0d9e0
JB
940{
941 void *value;
942
943 BLOCK_INPUT;
944 __malloc_hook = old_malloc_hook;
1177ecf6 945#ifdef DOUG_LEA_MALLOC
d1658221 946 mallopt (M_TOP_PAD, malloc_hysteresis * 4096);
1177ecf6 947#else
d1658221 948 __malloc_extra_blocks = malloc_hysteresis;
1177ecf6 949#endif
877935b1 950
2756d8ee 951 value = (void *) malloc (size);
877935b1
GM
952
953#ifdef GC_MALLOC_CHECK
954 {
955 struct mem_node *m = mem_find (value);
956 if (m != MEM_NIL)
957 {
958 fprintf (stderr, "Malloc returned %p which is already in use\n",
959 value);
960 fprintf (stderr, "Region in use is %p...%p, %u bytes, type %d\n",
961 m->start, m->end, (char *) m->end - (char *) m->start,
962 m->type);
963 abort ();
964 }
965
966 if (!dont_register_blocks)
967 {
968 mem_insert (value, (char *) value + max (1, size), allocated_mem_type);
969 allocated_mem_type = MEM_TYPE_NON_LISP;
970 }
971 }
972#endif /* GC_MALLOC_CHECK */
177c0ea7 973
b0846f52 974 __malloc_hook = emacs_blocked_malloc;
9ac0d9e0
JB
975 UNBLOCK_INPUT;
976
877935b1 977 /* fprintf (stderr, "%p malloc\n", value); */
9ac0d9e0
JB
978 return value;
979}
980
34400008
GM
981
982/* This function is the realloc hook that Emacs uses. */
983
9ac0d9e0
JB
984static void *
985emacs_blocked_realloc (ptr, size)
986 void *ptr;
675d5130 987 size_t size;
9ac0d9e0
JB
988{
989 void *value;
990
991 BLOCK_INPUT;
992 __realloc_hook = old_realloc_hook;
877935b1
GM
993
994#ifdef GC_MALLOC_CHECK
995 if (ptr)
996 {
997 struct mem_node *m = mem_find (ptr);
998 if (m == MEM_NIL || m->start != ptr)
999 {
1000 fprintf (stderr,
1001 "Realloc of %p which wasn't allocated with malloc\n",
1002 ptr);
1003 abort ();
1004 }
1005
1006 mem_delete (m);
1007 }
177c0ea7 1008
877935b1 1009 /* fprintf (stderr, "%p -> realloc\n", ptr); */
177c0ea7 1010
877935b1
GM
1011 /* Prevent malloc from registering blocks. */
1012 dont_register_blocks = 1;
1013#endif /* GC_MALLOC_CHECK */
1014
2756d8ee 1015 value = (void *) realloc (ptr, size);
877935b1
GM
1016
1017#ifdef GC_MALLOC_CHECK
1018 dont_register_blocks = 0;
1019
1020 {
1021 struct mem_node *m = mem_find (value);
1022 if (m != MEM_NIL)
1023 {
1024 fprintf (stderr, "Realloc returns memory that is already in use\n");
1025 abort ();
1026 }
1027
1028 /* Can't handle zero size regions in the red-black tree. */
1029 mem_insert (value, (char *) value + max (size, 1), MEM_TYPE_NON_LISP);
1030 }
177c0ea7 1031
877935b1
GM
1032 /* fprintf (stderr, "%p <- realloc\n", value); */
1033#endif /* GC_MALLOC_CHECK */
177c0ea7 1034
b0846f52 1035 __realloc_hook = emacs_blocked_realloc;
9ac0d9e0
JB
1036 UNBLOCK_INPUT;
1037
1038 return value;
1039}
1040
34400008
GM
1041
1042/* Called from main to set up malloc to use our hooks. */
1043
9ac0d9e0
JB
1044void
1045uninterrupt_malloc ()
1046{
c8099634
RS
1047 if (__free_hook != emacs_blocked_free)
1048 old_free_hook = __free_hook;
b0846f52 1049 __free_hook = emacs_blocked_free;
9ac0d9e0 1050
c8099634
RS
1051 if (__malloc_hook != emacs_blocked_malloc)
1052 old_malloc_hook = __malloc_hook;
b0846f52 1053 __malloc_hook = emacs_blocked_malloc;
9ac0d9e0 1054
c8099634
RS
1055 if (__realloc_hook != emacs_blocked_realloc)
1056 old_realloc_hook = __realloc_hook;
b0846f52 1057 __realloc_hook = emacs_blocked_realloc;
9ac0d9e0 1058}
2e471eb5
GM
1059
1060#endif /* not SYSTEM_MALLOC */
1061
1062
7146af97 1063\f
2e471eb5
GM
1064/***********************************************************************
1065 Interval Allocation
1066 ***********************************************************************/
1a4f1e2c 1067
34400008
GM
1068/* Number of intervals allocated in an interval_block structure.
1069 The 1020 is 1024 minus malloc overhead. */
1070
d5e35230
JA
1071#define INTERVAL_BLOCK_SIZE \
1072 ((1020 - sizeof (struct interval_block *)) / sizeof (struct interval))
1073
34400008
GM
1074/* Intervals are allocated in chunks in form of an interval_block
1075 structure. */
1076
d5e35230 1077struct interval_block
2e471eb5
GM
1078{
1079 struct interval_block *next;
1080 struct interval intervals[INTERVAL_BLOCK_SIZE];
1081};
d5e35230 1082
34400008
GM
1083/* Current interval block. Its `next' pointer points to older
1084 blocks. */
1085
d5e35230 1086struct interval_block *interval_block;
34400008
GM
1087
1088/* Index in interval_block above of the next unused interval
1089 structure. */
1090
d5e35230 1091static int interval_block_index;
34400008
GM
1092
1093/* Number of free and live intervals. */
1094
2e471eb5 1095static int total_free_intervals, total_intervals;
d5e35230 1096
34400008
GM
1097/* List of free intervals. */
1098
d5e35230
JA
1099INTERVAL interval_free_list;
1100
c8099634 1101/* Total number of interval blocks now in use. */
2e471eb5 1102
c8099634
RS
1103int n_interval_blocks;
1104
34400008
GM
1105
1106/* Initialize interval allocation. */
1107
d5e35230
JA
1108static void
1109init_intervals ()
1110{
1111 interval_block
34400008
GM
1112 = (struct interval_block *) lisp_malloc (sizeof *interval_block,
1113 MEM_TYPE_NON_LISP);
d5e35230 1114 interval_block->next = 0;
290c8f1e 1115 bzero ((char *) interval_block->intervals, sizeof interval_block->intervals);
d5e35230
JA
1116 interval_block_index = 0;
1117 interval_free_list = 0;
c8099634 1118 n_interval_blocks = 1;
d5e35230
JA
1119}
1120
34400008
GM
1121
1122/* Return a new interval. */
d5e35230
JA
1123
1124INTERVAL
1125make_interval ()
1126{
1127 INTERVAL val;
1128
1129 if (interval_free_list)
1130 {
1131 val = interval_free_list;
439d5cb4 1132 interval_free_list = INTERVAL_PARENT (interval_free_list);
d5e35230
JA
1133 }
1134 else
1135 {
1136 if (interval_block_index == INTERVAL_BLOCK_SIZE)
1137 {
3c06d205
KH
1138 register struct interval_block *newi;
1139
34400008
GM
1140 newi = (struct interval_block *) lisp_malloc (sizeof *newi,
1141 MEM_TYPE_NON_LISP);
d5e35230 1142
d5e35230
JA
1143 newi->next = interval_block;
1144 interval_block = newi;
1145 interval_block_index = 0;
c8099634 1146 n_interval_blocks++;
d5e35230
JA
1147 }
1148 val = &interval_block->intervals[interval_block_index++];
1149 }
1150 consing_since_gc += sizeof (struct interval);
310ea200 1151 intervals_consed++;
d5e35230 1152 RESET_INTERVAL (val);
2336fe58 1153 val->gcmarkbit = 0;
d5e35230
JA
1154 return val;
1155}
1156
34400008
GM
1157
1158/* Mark Lisp objects in interval I. */
d5e35230
JA
1159
1160static void
d393c068 1161mark_interval (i, dummy)
d5e35230 1162 register INTERVAL i;
d393c068 1163 Lisp_Object dummy;
d5e35230 1164{
2336fe58
SM
1165 eassert (!i->gcmarkbit); /* Intervals are never shared. */
1166 i->gcmarkbit = 1;
49723c04 1167 mark_object (i->plist);
d5e35230
JA
1168}
1169
34400008
GM
1170
1171/* Mark the interval tree rooted in TREE. Don't call this directly;
1172 use the macro MARK_INTERVAL_TREE instead. */
1173
d5e35230
JA
1174static void
1175mark_interval_tree (tree)
1176 register INTERVAL tree;
1177{
e8720644
JB
1178 /* No need to test if this tree has been marked already; this
1179 function is always called through the MARK_INTERVAL_TREE macro,
1180 which takes care of that. */
1181
1e934989 1182 traverse_intervals_noorder (tree, mark_interval, Qnil);
d5e35230
JA
1183}
1184
34400008
GM
1185
1186/* Mark the interval tree rooted in I. */
1187
e8720644
JB
1188#define MARK_INTERVAL_TREE(i) \
1189 do { \
2336fe58 1190 if (!NULL_INTERVAL_P (i) && !i->gcmarkbit) \
e8720644
JB
1191 mark_interval_tree (i); \
1192 } while (0)
d5e35230 1193
34400008 1194
2e471eb5
GM
1195#define UNMARK_BALANCE_INTERVALS(i) \
1196 do { \
1197 if (! NULL_INTERVAL_P (i)) \
2336fe58 1198 (i) = balance_intervals (i); \
2e471eb5 1199 } while (0)
d5e35230 1200
cc2d8c6b
KR
1201\f
1202/* Number support. If NO_UNION_TYPE isn't in effect, we
1203 can't create number objects in macros. */
1204#ifndef make_number
1205Lisp_Object
1206make_number (n)
1207 int n;
1208{
1209 Lisp_Object obj;
1210 obj.s.val = n;
1211 obj.s.type = Lisp_Int;
1212 return obj;
1213}
1214#endif
d5e35230 1215\f
2e471eb5
GM
1216/***********************************************************************
1217 String Allocation
1218 ***********************************************************************/
1a4f1e2c 1219
2e471eb5
GM
1220/* Lisp_Strings are allocated in string_block structures. When a new
1221 string_block is allocated, all the Lisp_Strings it contains are
e0fead5d 1222 added to a free-list string_free_list. When a new Lisp_String is
2e471eb5
GM
1223 needed, it is taken from that list. During the sweep phase of GC,
1224 string_blocks that are entirely free are freed, except two which
1225 we keep.
7146af97 1226
2e471eb5
GM
1227 String data is allocated from sblock structures. Strings larger
1228 than LARGE_STRING_BYTES, get their own sblock, data for smaller
1229 strings is sub-allocated out of sblocks of size SBLOCK_SIZE.
7146af97 1230
2e471eb5
GM
1231 Sblocks consist internally of sdata structures, one for each
1232 Lisp_String. The sdata structure points to the Lisp_String it
1233 belongs to. The Lisp_String points back to the `u.data' member of
1234 its sdata structure.
7146af97 1235
2e471eb5
GM
1236 When a Lisp_String is freed during GC, it is put back on
1237 string_free_list, and its `data' member and its sdata's `string'
1238 pointer is set to null. The size of the string is recorded in the
1239 `u.nbytes' member of the sdata. So, sdata structures that are no
1240 longer used, can be easily recognized, and it's easy to compact the
1241 sblocks of small strings which we do in compact_small_strings. */
7146af97 1242
2e471eb5
GM
1243/* Size in bytes of an sblock structure used for small strings. This
1244 is 8192 minus malloc overhead. */
7146af97 1245
2e471eb5 1246#define SBLOCK_SIZE 8188
c8099634 1247
2e471eb5
GM
1248/* Strings larger than this are considered large strings. String data
1249 for large strings is allocated from individual sblocks. */
7146af97 1250
2e471eb5
GM
1251#define LARGE_STRING_BYTES 1024
1252
1253/* Structure describing string memory sub-allocated from an sblock.
1254 This is where the contents of Lisp strings are stored. */
1255
1256struct sdata
7146af97 1257{
2e471eb5
GM
1258 /* Back-pointer to the string this sdata belongs to. If null, this
1259 structure is free, and the NBYTES member of the union below
34400008 1260 contains the string's byte size (the same value that STRING_BYTES
2e471eb5
GM
1261 would return if STRING were non-null). If non-null, STRING_BYTES
1262 (STRING) is the size of the data, and DATA contains the string's
1263 contents. */
1264 struct Lisp_String *string;
7146af97 1265
31d929e5 1266#ifdef GC_CHECK_STRING_BYTES
177c0ea7 1267
31d929e5
GM
1268 EMACS_INT nbytes;
1269 unsigned char data[1];
177c0ea7 1270
31d929e5
GM
1271#define SDATA_NBYTES(S) (S)->nbytes
1272#define SDATA_DATA(S) (S)->data
177c0ea7 1273
31d929e5
GM
1274#else /* not GC_CHECK_STRING_BYTES */
1275
2e471eb5
GM
1276 union
1277 {
1278 /* When STRING in non-null. */
1279 unsigned char data[1];
1280
1281 /* When STRING is null. */
1282 EMACS_INT nbytes;
1283 } u;
177c0ea7 1284
31d929e5
GM
1285
1286#define SDATA_NBYTES(S) (S)->u.nbytes
1287#define SDATA_DATA(S) (S)->u.data
1288
1289#endif /* not GC_CHECK_STRING_BYTES */
2e471eb5
GM
1290};
1291
31d929e5 1292
2e471eb5
GM
1293/* Structure describing a block of memory which is sub-allocated to
1294 obtain string data memory for strings. Blocks for small strings
1295 are of fixed size SBLOCK_SIZE. Blocks for large strings are made
1296 as large as needed. */
1297
1298struct sblock
7146af97 1299{
2e471eb5
GM
1300 /* Next in list. */
1301 struct sblock *next;
7146af97 1302
2e471eb5
GM
1303 /* Pointer to the next free sdata block. This points past the end
1304 of the sblock if there isn't any space left in this block. */
1305 struct sdata *next_free;
1306
1307 /* Start of data. */
1308 struct sdata first_data;
1309};
1310
1311/* Number of Lisp strings in a string_block structure. The 1020 is
1312 1024 minus malloc overhead. */
1313
1314#define STRINGS_IN_STRING_BLOCK \
1315 ((1020 - sizeof (struct string_block *)) / sizeof (struct Lisp_String))
1316
1317/* Structure describing a block from which Lisp_String structures
1318 are allocated. */
1319
1320struct string_block
7146af97 1321{
2e471eb5
GM
1322 struct string_block *next;
1323 struct Lisp_String strings[STRINGS_IN_STRING_BLOCK];
1324};
7146af97 1325
2e471eb5
GM
1326/* Head and tail of the list of sblock structures holding Lisp string
1327 data. We always allocate from current_sblock. The NEXT pointers
1328 in the sblock structures go from oldest_sblock to current_sblock. */
3c06d205 1329
2e471eb5 1330static struct sblock *oldest_sblock, *current_sblock;
7146af97 1331
2e471eb5 1332/* List of sblocks for large strings. */
7146af97 1333
2e471eb5 1334static struct sblock *large_sblocks;
7146af97 1335
2e471eb5 1336/* List of string_block structures, and how many there are. */
7146af97 1337
2e471eb5
GM
1338static struct string_block *string_blocks;
1339static int n_string_blocks;
7146af97 1340
2e471eb5 1341/* Free-list of Lisp_Strings. */
7146af97 1342
2e471eb5 1343static struct Lisp_String *string_free_list;
7146af97 1344
2e471eb5 1345/* Number of live and free Lisp_Strings. */
c8099634 1346
2e471eb5 1347static int total_strings, total_free_strings;
7146af97 1348
2e471eb5
GM
1349/* Number of bytes used by live strings. */
1350
1351static int total_string_size;
1352
1353/* Given a pointer to a Lisp_String S which is on the free-list
1354 string_free_list, return a pointer to its successor in the
1355 free-list. */
1356
1357#define NEXT_FREE_LISP_STRING(S) (*(struct Lisp_String **) (S))
1358
1359/* Return a pointer to the sdata structure belonging to Lisp string S.
1360 S must be live, i.e. S->data must not be null. S->data is actually
1361 a pointer to the `u.data' member of its sdata structure; the
1362 structure starts at a constant offset in front of that. */
177c0ea7 1363
31d929e5
GM
1364#ifdef GC_CHECK_STRING_BYTES
1365
1366#define SDATA_OF_STRING(S) \
1367 ((struct sdata *) ((S)->data - sizeof (struct Lisp_String *) \
1368 - sizeof (EMACS_INT)))
1369
1370#else /* not GC_CHECK_STRING_BYTES */
1371
2e471eb5
GM
1372#define SDATA_OF_STRING(S) \
1373 ((struct sdata *) ((S)->data - sizeof (struct Lisp_String *)))
1374
31d929e5
GM
1375#endif /* not GC_CHECK_STRING_BYTES */
1376
2e471eb5
GM
1377/* Value is the size of an sdata structure large enough to hold NBYTES
1378 bytes of string data. The value returned includes a terminating
1379 NUL byte, the size of the sdata structure, and padding. */
1380
31d929e5
GM
1381#ifdef GC_CHECK_STRING_BYTES
1382
2e471eb5
GM
1383#define SDATA_SIZE(NBYTES) \
1384 ((sizeof (struct Lisp_String *) \
1385 + (NBYTES) + 1 \
31d929e5 1386 + sizeof (EMACS_INT) \
2e471eb5
GM
1387 + sizeof (EMACS_INT) - 1) \
1388 & ~(sizeof (EMACS_INT) - 1))
1389
31d929e5
GM
1390#else /* not GC_CHECK_STRING_BYTES */
1391
1392#define SDATA_SIZE(NBYTES) \
1393 ((sizeof (struct Lisp_String *) \
1394 + (NBYTES) + 1 \
1395 + sizeof (EMACS_INT) - 1) \
1396 & ~(sizeof (EMACS_INT) - 1))
1397
1398#endif /* not GC_CHECK_STRING_BYTES */
2e471eb5
GM
1399
1400/* Initialize string allocation. Called from init_alloc_once. */
d457598b
AS
1401
1402void
2e471eb5 1403init_strings ()
7146af97 1404{
2e471eb5
GM
1405 total_strings = total_free_strings = total_string_size = 0;
1406 oldest_sblock = current_sblock = large_sblocks = NULL;
1407 string_blocks = NULL;
1408 n_string_blocks = 0;
1409 string_free_list = NULL;
7146af97
JB
1410}
1411
2e471eb5 1412
361b097f
GM
1413#ifdef GC_CHECK_STRING_BYTES
1414
361b097f
GM
1415static int check_string_bytes_count;
1416
676a7251
GM
1417void check_string_bytes P_ ((int));
1418void check_sblock P_ ((struct sblock *));
1419
1420#define CHECK_STRING_BYTES(S) STRING_BYTES (S)
1421
1422
1423/* Like GC_STRING_BYTES, but with debugging check. */
1424
1425int
1426string_bytes (s)
1427 struct Lisp_String *s;
1428{
3ef06d12 1429 int nbytes = (s->size_byte < 0 ? s->size & ~MARKBIT : s->size_byte);
676a7251
GM
1430 if (!PURE_POINTER_P (s)
1431 && s->data
1432 && nbytes != SDATA_NBYTES (SDATA_OF_STRING (s)))
1433 abort ();
1434 return nbytes;
1435}
177c0ea7 1436
2c5bd608 1437/* Check validity of Lisp strings' string_bytes member in B. */
676a7251 1438
361b097f 1439void
676a7251
GM
1440check_sblock (b)
1441 struct sblock *b;
361b097f 1442{
676a7251 1443 struct sdata *from, *end, *from_end;
177c0ea7 1444
676a7251 1445 end = b->next_free;
177c0ea7 1446
676a7251 1447 for (from = &b->first_data; from < end; from = from_end)
361b097f 1448 {
676a7251
GM
1449 /* Compute the next FROM here because copying below may
1450 overwrite data we need to compute it. */
1451 int nbytes;
177c0ea7 1452
676a7251
GM
1453 /* Check that the string size recorded in the string is the
1454 same as the one recorded in the sdata structure. */
1455 if (from->string)
1456 CHECK_STRING_BYTES (from->string);
177c0ea7 1457
676a7251
GM
1458 if (from->string)
1459 nbytes = GC_STRING_BYTES (from->string);
1460 else
1461 nbytes = SDATA_NBYTES (from);
177c0ea7 1462
676a7251
GM
1463 nbytes = SDATA_SIZE (nbytes);
1464 from_end = (struct sdata *) ((char *) from + nbytes);
1465 }
1466}
361b097f 1467
676a7251
GM
1468
1469/* Check validity of Lisp strings' string_bytes member. ALL_P
1470 non-zero means check all strings, otherwise check only most
1471 recently allocated strings. Used for hunting a bug. */
1472
1473void
1474check_string_bytes (all_p)
1475 int all_p;
1476{
1477 if (all_p)
1478 {
1479 struct sblock *b;
1480
1481 for (b = large_sblocks; b; b = b->next)
1482 {
1483 struct Lisp_String *s = b->first_data.string;
1484 if (s)
1485 CHECK_STRING_BYTES (s);
361b097f 1486 }
177c0ea7 1487
676a7251
GM
1488 for (b = oldest_sblock; b; b = b->next)
1489 check_sblock (b);
361b097f 1490 }
676a7251
GM
1491 else
1492 check_sblock (current_sblock);
361b097f
GM
1493}
1494
1495#endif /* GC_CHECK_STRING_BYTES */
1496
1497
2e471eb5
GM
1498/* Return a new Lisp_String. */
1499
1500static struct Lisp_String *
1501allocate_string ()
7146af97 1502{
2e471eb5 1503 struct Lisp_String *s;
7146af97 1504
2e471eb5
GM
1505 /* If the free-list is empty, allocate a new string_block, and
1506 add all the Lisp_Strings in it to the free-list. */
1507 if (string_free_list == NULL)
7146af97 1508 {
2e471eb5
GM
1509 struct string_block *b;
1510 int i;
1511
34400008 1512 b = (struct string_block *) lisp_malloc (sizeof *b, MEM_TYPE_STRING);
2e471eb5
GM
1513 bzero (b, sizeof *b);
1514 b->next = string_blocks;
1515 string_blocks = b;
1516 ++n_string_blocks;
1517
1518 for (i = STRINGS_IN_STRING_BLOCK - 1; i >= 0; --i)
7146af97 1519 {
2e471eb5
GM
1520 s = b->strings + i;
1521 NEXT_FREE_LISP_STRING (s) = string_free_list;
1522 string_free_list = s;
7146af97 1523 }
2e471eb5
GM
1524
1525 total_free_strings += STRINGS_IN_STRING_BLOCK;
7146af97 1526 }
c0f51373 1527
2e471eb5
GM
1528 /* Pop a Lisp_String off the free-list. */
1529 s = string_free_list;
1530 string_free_list = NEXT_FREE_LISP_STRING (s);
c0f51373 1531
2e471eb5
GM
1532 /* Probably not strictly necessary, but play it safe. */
1533 bzero (s, sizeof *s);
c0f51373 1534
2e471eb5
GM
1535 --total_free_strings;
1536 ++total_strings;
1537 ++strings_consed;
1538 consing_since_gc += sizeof *s;
c0f51373 1539
361b097f 1540#ifdef GC_CHECK_STRING_BYTES
83a96b4d 1541 if (!noninteractive
e0f712ba 1542#ifdef MAC_OS8
83a96b4d
AC
1543 && current_sblock
1544#endif
1545 )
361b097f 1546 {
676a7251
GM
1547 if (++check_string_bytes_count == 200)
1548 {
1549 check_string_bytes_count = 0;
1550 check_string_bytes (1);
1551 }
1552 else
1553 check_string_bytes (0);
361b097f 1554 }
676a7251 1555#endif /* GC_CHECK_STRING_BYTES */
361b097f 1556
2e471eb5 1557 return s;
c0f51373 1558}
7146af97 1559
7146af97 1560
2e471eb5
GM
1561/* Set up Lisp_String S for holding NCHARS characters, NBYTES bytes,
1562 plus a NUL byte at the end. Allocate an sdata structure for S, and
1563 set S->data to its `u.data' member. Store a NUL byte at the end of
1564 S->data. Set S->size to NCHARS and S->size_byte to NBYTES. Free
1565 S->data if it was initially non-null. */
7146af97 1566
2e471eb5
GM
1567void
1568allocate_string_data (s, nchars, nbytes)
1569 struct Lisp_String *s;
1570 int nchars, nbytes;
7146af97 1571{
5c5fecb3 1572 struct sdata *data, *old_data;
2e471eb5 1573 struct sblock *b;
5c5fecb3 1574 int needed, old_nbytes;
7146af97 1575
2e471eb5
GM
1576 /* Determine the number of bytes needed to store NBYTES bytes
1577 of string data. */
1578 needed = SDATA_SIZE (nbytes);
7146af97 1579
2e471eb5
GM
1580 if (nbytes > LARGE_STRING_BYTES)
1581 {
675d5130 1582 size_t size = sizeof *b - sizeof (struct sdata) + needed;
2e471eb5
GM
1583
1584#ifdef DOUG_LEA_MALLOC
f8608968
GM
1585 /* Prevent mmap'ing the chunk. Lisp data may not be mmap'ed
1586 because mapped region contents are not preserved in
d36b182f
DL
1587 a dumped Emacs.
1588
1589 In case you think of allowing it in a dumped Emacs at the
1590 cost of not being able to re-dump, there's another reason:
1591 mmap'ed data typically have an address towards the top of the
1592 address space, which won't fit into an EMACS_INT (at least on
1593 32-bit systems with the current tagging scheme). --fx */
2e471eb5
GM
1594 mallopt (M_MMAP_MAX, 0);
1595#endif
1596
34400008 1597 b = (struct sblock *) lisp_malloc (size, MEM_TYPE_NON_LISP);
177c0ea7 1598
2e471eb5
GM
1599#ifdef DOUG_LEA_MALLOC
1600 /* Back to a reasonable maximum of mmap'ed areas. */
1601 mallopt (M_MMAP_MAX, MMAP_MAX_AREAS);
1602#endif
177c0ea7 1603
2e471eb5
GM
1604 b->next_free = &b->first_data;
1605 b->first_data.string = NULL;
1606 b->next = large_sblocks;
1607 large_sblocks = b;
1608 }
1609 else if (current_sblock == NULL
1610 || (((char *) current_sblock + SBLOCK_SIZE
1611 - (char *) current_sblock->next_free)
1612 < needed))
1613 {
1614 /* Not enough room in the current sblock. */
34400008 1615 b = (struct sblock *) lisp_malloc (SBLOCK_SIZE, MEM_TYPE_NON_LISP);
2e471eb5
GM
1616 b->next_free = &b->first_data;
1617 b->first_data.string = NULL;
1618 b->next = NULL;
1619
1620 if (current_sblock)
1621 current_sblock->next = b;
1622 else
1623 oldest_sblock = b;
1624 current_sblock = b;
1625 }
1626 else
1627 b = current_sblock;
5c5fecb3
GM
1628
1629 old_data = s->data ? SDATA_OF_STRING (s) : NULL;
1630 old_nbytes = GC_STRING_BYTES (s);
177c0ea7 1631
2e471eb5
GM
1632 data = b->next_free;
1633 data->string = s;
31d929e5
GM
1634 s->data = SDATA_DATA (data);
1635#ifdef GC_CHECK_STRING_BYTES
1636 SDATA_NBYTES (data) = nbytes;
1637#endif
2e471eb5
GM
1638 s->size = nchars;
1639 s->size_byte = nbytes;
1640 s->data[nbytes] = '\0';
1641 b->next_free = (struct sdata *) ((char *) data + needed);
177c0ea7 1642
5c5fecb3
GM
1643 /* If S had already data assigned, mark that as free by setting its
1644 string back-pointer to null, and recording the size of the data
00c9c33c 1645 in it. */
5c5fecb3
GM
1646 if (old_data)
1647 {
31d929e5 1648 SDATA_NBYTES (old_data) = old_nbytes;
5c5fecb3
GM
1649 old_data->string = NULL;
1650 }
1651
2e471eb5
GM
1652 consing_since_gc += needed;
1653}
1654
1655
1656/* Sweep and compact strings. */
1657
1658static void
1659sweep_strings ()
1660{
1661 struct string_block *b, *next;
1662 struct string_block *live_blocks = NULL;
177c0ea7 1663
2e471eb5
GM
1664 string_free_list = NULL;
1665 total_strings = total_free_strings = 0;
1666 total_string_size = 0;
1667
1668 /* Scan strings_blocks, free Lisp_Strings that aren't marked. */
1669 for (b = string_blocks; b; b = next)
1670 {
1671 int i, nfree = 0;
1672 struct Lisp_String *free_list_before = string_free_list;
1673
1674 next = b->next;
1675
1676 for (i = 0; i < STRINGS_IN_STRING_BLOCK; ++i)
1677 {
1678 struct Lisp_String *s = b->strings + i;
1679
1680 if (s->data)
1681 {
1682 /* String was not on free-list before. */
1683 if (STRING_MARKED_P (s))
1684 {
1685 /* String is live; unmark it and its intervals. */
1686 UNMARK_STRING (s);
177c0ea7 1687
2e471eb5
GM
1688 if (!NULL_INTERVAL_P (s->intervals))
1689 UNMARK_BALANCE_INTERVALS (s->intervals);
1690
1691 ++total_strings;
1692 total_string_size += STRING_BYTES (s);
1693 }
1694 else
1695 {
1696 /* String is dead. Put it on the free-list. */
1697 struct sdata *data = SDATA_OF_STRING (s);
1698
1699 /* Save the size of S in its sdata so that we know
1700 how large that is. Reset the sdata's string
1701 back-pointer so that we know it's free. */
31d929e5
GM
1702#ifdef GC_CHECK_STRING_BYTES
1703 if (GC_STRING_BYTES (s) != SDATA_NBYTES (data))
1704 abort ();
1705#else
2e471eb5 1706 data->u.nbytes = GC_STRING_BYTES (s);
31d929e5 1707#endif
2e471eb5
GM
1708 data->string = NULL;
1709
1710 /* Reset the strings's `data' member so that we
1711 know it's free. */
1712 s->data = NULL;
1713
1714 /* Put the string on the free-list. */
1715 NEXT_FREE_LISP_STRING (s) = string_free_list;
1716 string_free_list = s;
1717 ++nfree;
1718 }
1719 }
1720 else
1721 {
1722 /* S was on the free-list before. Put it there again. */
1723 NEXT_FREE_LISP_STRING (s) = string_free_list;
1724 string_free_list = s;
1725 ++nfree;
1726 }
1727 }
1728
34400008 1729 /* Free blocks that contain free Lisp_Strings only, except
2e471eb5
GM
1730 the first two of them. */
1731 if (nfree == STRINGS_IN_STRING_BLOCK
1732 && total_free_strings > STRINGS_IN_STRING_BLOCK)
1733 {
1734 lisp_free (b);
1735 --n_string_blocks;
1736 string_free_list = free_list_before;
1737 }
1738 else
1739 {
1740 total_free_strings += nfree;
1741 b->next = live_blocks;
1742 live_blocks = b;
1743 }
1744 }
1745
1746 string_blocks = live_blocks;
1747 free_large_strings ();
1748 compact_small_strings ();
1749}
1750
1751
1752/* Free dead large strings. */
1753
1754static void
1755free_large_strings ()
1756{
1757 struct sblock *b, *next;
1758 struct sblock *live_blocks = NULL;
177c0ea7 1759
2e471eb5
GM
1760 for (b = large_sblocks; b; b = next)
1761 {
1762 next = b->next;
1763
1764 if (b->first_data.string == NULL)
1765 lisp_free (b);
1766 else
1767 {
1768 b->next = live_blocks;
1769 live_blocks = b;
1770 }
1771 }
1772
1773 large_sblocks = live_blocks;
1774}
1775
1776
1777/* Compact data of small strings. Free sblocks that don't contain
1778 data of live strings after compaction. */
1779
1780static void
1781compact_small_strings ()
1782{
1783 struct sblock *b, *tb, *next;
1784 struct sdata *from, *to, *end, *tb_end;
1785 struct sdata *to_end, *from_end;
1786
1787 /* TB is the sblock we copy to, TO is the sdata within TB we copy
1788 to, and TB_END is the end of TB. */
1789 tb = oldest_sblock;
1790 tb_end = (struct sdata *) ((char *) tb + SBLOCK_SIZE);
1791 to = &tb->first_data;
1792
1793 /* Step through the blocks from the oldest to the youngest. We
1794 expect that old blocks will stabilize over time, so that less
1795 copying will happen this way. */
1796 for (b = oldest_sblock; b; b = b->next)
1797 {
1798 end = b->next_free;
1799 xassert ((char *) end <= (char *) b + SBLOCK_SIZE);
177c0ea7 1800
2e471eb5
GM
1801 for (from = &b->first_data; from < end; from = from_end)
1802 {
1803 /* Compute the next FROM here because copying below may
1804 overwrite data we need to compute it. */
1805 int nbytes;
1806
31d929e5
GM
1807#ifdef GC_CHECK_STRING_BYTES
1808 /* Check that the string size recorded in the string is the
1809 same as the one recorded in the sdata structure. */
1810 if (from->string
1811 && GC_STRING_BYTES (from->string) != SDATA_NBYTES (from))
1812 abort ();
1813#endif /* GC_CHECK_STRING_BYTES */
177c0ea7 1814
2e471eb5
GM
1815 if (from->string)
1816 nbytes = GC_STRING_BYTES (from->string);
1817 else
31d929e5 1818 nbytes = SDATA_NBYTES (from);
177c0ea7 1819
2e471eb5
GM
1820 nbytes = SDATA_SIZE (nbytes);
1821 from_end = (struct sdata *) ((char *) from + nbytes);
177c0ea7 1822
2e471eb5
GM
1823 /* FROM->string non-null means it's alive. Copy its data. */
1824 if (from->string)
1825 {
1826 /* If TB is full, proceed with the next sblock. */
1827 to_end = (struct sdata *) ((char *) to + nbytes);
1828 if (to_end > tb_end)
1829 {
1830 tb->next_free = to;
1831 tb = tb->next;
1832 tb_end = (struct sdata *) ((char *) tb + SBLOCK_SIZE);
1833 to = &tb->first_data;
1834 to_end = (struct sdata *) ((char *) to + nbytes);
1835 }
177c0ea7 1836
2e471eb5
GM
1837 /* Copy, and update the string's `data' pointer. */
1838 if (from != to)
1839 {
a2407477
GM
1840 xassert (tb != b || to <= from);
1841 safe_bcopy ((char *) from, (char *) to, nbytes);
31d929e5 1842 to->string->data = SDATA_DATA (to);
2e471eb5
GM
1843 }
1844
1845 /* Advance past the sdata we copied to. */
1846 to = to_end;
1847 }
1848 }
1849 }
1850
1851 /* The rest of the sblocks following TB don't contain live data, so
1852 we can free them. */
1853 for (b = tb->next; b; b = next)
1854 {
1855 next = b->next;
1856 lisp_free (b);
1857 }
1858
1859 tb->next_free = to;
1860 tb->next = NULL;
1861 current_sblock = tb;
1862}
1863
1864
1865DEFUN ("make-string", Fmake_string, Smake_string, 2, 2, 0,
a6266d23 1866 doc: /* Return a newly created string of length LENGTH, with each element being INIT.
7ee72033
MB
1867Both LENGTH and INIT must be numbers. */)
1868 (length, init)
2e471eb5
GM
1869 Lisp_Object length, init;
1870{
1871 register Lisp_Object val;
1872 register unsigned char *p, *end;
1873 int c, nbytes;
1874
b7826503
PJ
1875 CHECK_NATNUM (length);
1876 CHECK_NUMBER (init);
2e471eb5
GM
1877
1878 c = XINT (init);
1879 if (SINGLE_BYTE_CHAR_P (c))
1880 {
1881 nbytes = XINT (length);
1882 val = make_uninit_string (nbytes);
d5db4077
KR
1883 p = SDATA (val);
1884 end = p + SCHARS (val);
2e471eb5
GM
1885 while (p != end)
1886 *p++ = c;
1887 }
1888 else
1889 {
d942b71c 1890 unsigned char str[MAX_MULTIBYTE_LENGTH];
2e471eb5
GM
1891 int len = CHAR_STRING (c, str);
1892
1893 nbytes = len * XINT (length);
1894 val = make_uninit_multibyte_string (XINT (length), nbytes);
d5db4077 1895 p = SDATA (val);
2e471eb5
GM
1896 end = p + nbytes;
1897 while (p != end)
1898 {
1899 bcopy (str, p, len);
1900 p += len;
1901 }
1902 }
177c0ea7 1903
2e471eb5
GM
1904 *p = 0;
1905 return val;
1906}
1907
1908
1909DEFUN ("make-bool-vector", Fmake_bool_vector, Smake_bool_vector, 2, 2, 0,
a6266d23 1910 doc: /* Return a new bool-vector of length LENGTH, using INIT for as each element.
7ee72033
MB
1911LENGTH must be a number. INIT matters only in whether it is t or nil. */)
1912 (length, init)
2e471eb5
GM
1913 Lisp_Object length, init;
1914{
1915 register Lisp_Object val;
1916 struct Lisp_Bool_Vector *p;
1917 int real_init, i;
1918 int length_in_chars, length_in_elts, bits_per_value;
1919
b7826503 1920 CHECK_NATNUM (length);
2e471eb5
GM
1921
1922 bits_per_value = sizeof (EMACS_INT) * BITS_PER_CHAR;
1923
1924 length_in_elts = (XFASTINT (length) + bits_per_value - 1) / bits_per_value;
1925 length_in_chars = ((XFASTINT (length) + BITS_PER_CHAR - 1) / BITS_PER_CHAR);
1926
1927 /* We must allocate one more elements than LENGTH_IN_ELTS for the
1928 slot `size' of the struct Lisp_Bool_Vector. */
1929 val = Fmake_vector (make_number (length_in_elts + 1), Qnil);
1930 p = XBOOL_VECTOR (val);
177c0ea7 1931
2e471eb5
GM
1932 /* Get rid of any bits that would cause confusion. */
1933 p->vector_size = 0;
1934 XSETBOOL_VECTOR (val, p);
1935 p->size = XFASTINT (length);
177c0ea7 1936
2e471eb5
GM
1937 real_init = (NILP (init) ? 0 : -1);
1938 for (i = 0; i < length_in_chars ; i++)
1939 p->data[i] = real_init;
177c0ea7 1940
2e471eb5
GM
1941 /* Clear the extraneous bits in the last byte. */
1942 if (XINT (length) != length_in_chars * BITS_PER_CHAR)
1943 XBOOL_VECTOR (val)->data[length_in_chars - 1]
1944 &= (1 << (XINT (length) % BITS_PER_CHAR)) - 1;
1945
1946 return val;
1947}
1948
1949
1950/* Make a string from NBYTES bytes at CONTENTS, and compute the number
1951 of characters from the contents. This string may be unibyte or
1952 multibyte, depending on the contents. */
1953
1954Lisp_Object
1955make_string (contents, nbytes)
943b873e 1956 const char *contents;
2e471eb5
GM
1957 int nbytes;
1958{
1959 register Lisp_Object val;
9eac9d59
KH
1960 int nchars, multibyte_nbytes;
1961
1962 parse_str_as_multibyte (contents, nbytes, &nchars, &multibyte_nbytes);
9eac9d59
KH
1963 if (nbytes == nchars || nbytes != multibyte_nbytes)
1964 /* CONTENTS contains no multibyte sequences or contains an invalid
1965 multibyte sequence. We must make unibyte string. */
495a6df3
KH
1966 val = make_unibyte_string (contents, nbytes);
1967 else
1968 val = make_multibyte_string (contents, nchars, nbytes);
2e471eb5
GM
1969 return val;
1970}
1971
1972
1973/* Make an unibyte string from LENGTH bytes at CONTENTS. */
1974
1975Lisp_Object
1976make_unibyte_string (contents, length)
943b873e 1977 const char *contents;
2e471eb5
GM
1978 int length;
1979{
1980 register Lisp_Object val;
1981 val = make_uninit_string (length);
d5db4077
KR
1982 bcopy (contents, SDATA (val), length);
1983 STRING_SET_UNIBYTE (val);
2e471eb5
GM
1984 return val;
1985}
1986
1987
1988/* Make a multibyte string from NCHARS characters occupying NBYTES
1989 bytes at CONTENTS. */
1990
1991Lisp_Object
1992make_multibyte_string (contents, nchars, nbytes)
943b873e 1993 const char *contents;
2e471eb5
GM
1994 int nchars, nbytes;
1995{
1996 register Lisp_Object val;
1997 val = make_uninit_multibyte_string (nchars, nbytes);
d5db4077 1998 bcopy (contents, SDATA (val), nbytes);
2e471eb5
GM
1999 return val;
2000}
2001
2002
2003/* Make a string from NCHARS characters occupying NBYTES bytes at
2004 CONTENTS. It is a multibyte string if NBYTES != NCHARS. */
2005
2006Lisp_Object
2007make_string_from_bytes (contents, nchars, nbytes)
fcbb914b 2008 const char *contents;
2e471eb5
GM
2009 int nchars, nbytes;
2010{
2011 register Lisp_Object val;
2012 val = make_uninit_multibyte_string (nchars, nbytes);
d5db4077
KR
2013 bcopy (contents, SDATA (val), nbytes);
2014 if (SBYTES (val) == SCHARS (val))
2015 STRING_SET_UNIBYTE (val);
2e471eb5
GM
2016 return val;
2017}
2018
2019
2020/* Make a string from NCHARS characters occupying NBYTES bytes at
2021 CONTENTS. The argument MULTIBYTE controls whether to label the
229b28c4
KH
2022 string as multibyte. If NCHARS is negative, it counts the number of
2023 characters by itself. */
2e471eb5
GM
2024
2025Lisp_Object
2026make_specified_string (contents, nchars, nbytes, multibyte)
fcbb914b 2027 const char *contents;
2e471eb5
GM
2028 int nchars, nbytes;
2029 int multibyte;
2030{
2031 register Lisp_Object val;
229b28c4
KH
2032
2033 if (nchars < 0)
2034 {
2035 if (multibyte)
2036 nchars = multibyte_chars_in_text (contents, nbytes);
2037 else
2038 nchars = nbytes;
2039 }
2e471eb5 2040 val = make_uninit_multibyte_string (nchars, nbytes);
d5db4077 2041 bcopy (contents, SDATA (val), nbytes);
2e471eb5 2042 if (!multibyte)
d5db4077 2043 STRING_SET_UNIBYTE (val);
2e471eb5
GM
2044 return val;
2045}
2046
2047
2048/* Make a string from the data at STR, treating it as multibyte if the
2049 data warrants. */
2050
2051Lisp_Object
2052build_string (str)
943b873e 2053 const char *str;
2e471eb5
GM
2054{
2055 return make_string (str, strlen (str));
2056}
2057
2058
2059/* Return an unibyte Lisp_String set up to hold LENGTH characters
2060 occupying LENGTH bytes. */
2061
2062Lisp_Object
2063make_uninit_string (length)
2064 int length;
2065{
2066 Lisp_Object val;
2067 val = make_uninit_multibyte_string (length, length);
d5db4077 2068 STRING_SET_UNIBYTE (val);
2e471eb5
GM
2069 return val;
2070}
2071
2072
2073/* Return a multibyte Lisp_String set up to hold NCHARS characters
2074 which occupy NBYTES bytes. */
2075
2076Lisp_Object
2077make_uninit_multibyte_string (nchars, nbytes)
2078 int nchars, nbytes;
2079{
2080 Lisp_Object string;
2081 struct Lisp_String *s;
2082
2083 if (nchars < 0)
2084 abort ();
2085
2086 s = allocate_string ();
2087 allocate_string_data (s, nchars, nbytes);
2088 XSETSTRING (string, s);
2089 string_chars_consed += nbytes;
2090 return string;
2091}
2092
2093
2094\f
2095/***********************************************************************
2096 Float Allocation
2097 ***********************************************************************/
2098
2e471eb5
GM
2099/* We store float cells inside of float_blocks, allocating a new
2100 float_block with malloc whenever necessary. Float cells reclaimed
2101 by GC are put on a free list to be reallocated before allocating
ab6780cd 2102 any new float cells from the latest float_block. */
2e471eb5
GM
2103
2104#define FLOAT_BLOCK_SIZE \
ab6780cd
SM
2105 (((BLOCK_BYTES - sizeof (struct float_block *)) * CHAR_BIT) \
2106 / (sizeof (struct Lisp_Float) * CHAR_BIT + 1))
2107
2108#define GETMARKBIT(block,n) \
2109 (((block)->gcmarkbits[(n) / (sizeof(int) * CHAR_BIT)] \
2110 >> ((n) % (sizeof(int) * CHAR_BIT))) \
2111 & 1)
2112
2113#define SETMARKBIT(block,n) \
2114 (block)->gcmarkbits[(n) / (sizeof(int) * CHAR_BIT)] \
2115 |= 1 << ((n) % (sizeof(int) * CHAR_BIT))
2116
2117#define UNSETMARKBIT(block,n) \
2118 (block)->gcmarkbits[(n) / (sizeof(int) * CHAR_BIT)] \
2119 &= ~(1 << ((n) % (sizeof(int) * CHAR_BIT)))
2120
2121#define FLOAT_BLOCK(fptr) \
2122 ((struct float_block *)(((EMACS_UINT)(fptr)) & ~(BLOCK_ALIGN - 1)))
2123
2124#define FLOAT_INDEX(fptr) \
2125 ((((EMACS_UINT)(fptr)) & (BLOCK_ALIGN - 1)) / sizeof (struct Lisp_Float))
2e471eb5
GM
2126
2127struct float_block
2128{
ab6780cd 2129 /* Place `floats' at the beginning, to ease up FLOAT_INDEX's job. */
2e471eb5 2130 struct Lisp_Float floats[FLOAT_BLOCK_SIZE];
ab6780cd
SM
2131 int gcmarkbits[1 + FLOAT_BLOCK_SIZE / (sizeof(int) * CHAR_BIT)];
2132 struct float_block *next;
2e471eb5
GM
2133};
2134
ab6780cd
SM
2135#define FLOAT_MARKED_P(fptr) \
2136 GETMARKBIT (FLOAT_BLOCK (fptr), FLOAT_INDEX ((fptr)))
2137
2138#define FLOAT_MARK(fptr) \
2139 SETMARKBIT (FLOAT_BLOCK (fptr), FLOAT_INDEX ((fptr)))
2140
2141#define FLOAT_UNMARK(fptr) \
2142 UNSETMARKBIT (FLOAT_BLOCK (fptr), FLOAT_INDEX ((fptr)))
2143
34400008
GM
2144/* Current float_block. */
2145
2e471eb5 2146struct float_block *float_block;
34400008
GM
2147
2148/* Index of first unused Lisp_Float in the current float_block. */
2149
2e471eb5
GM
2150int float_block_index;
2151
2152/* Total number of float blocks now in use. */
2153
2154int n_float_blocks;
2155
34400008
GM
2156/* Free-list of Lisp_Floats. */
2157
2e471eb5
GM
2158struct Lisp_Float *float_free_list;
2159
34400008 2160
966533c9 2161/* Initialize float allocation. */
34400008 2162
2e471eb5
GM
2163void
2164init_float ()
2165{
ab6780cd
SM
2166 float_block = (struct float_block *) lisp_align_malloc (sizeof *float_block,
2167 MEM_TYPE_FLOAT);
2e471eb5
GM
2168 float_block->next = 0;
2169 bzero ((char *) float_block->floats, sizeof float_block->floats);
ab6780cd 2170 bzero ((char *) float_block->gcmarkbits, sizeof float_block->gcmarkbits);
2e471eb5
GM
2171 float_block_index = 0;
2172 float_free_list = 0;
2173 n_float_blocks = 1;
2174}
2175
34400008
GM
2176
2177/* Explicitly free a float cell by putting it on the free-list. */
2e471eb5
GM
2178
2179void
2180free_float (ptr)
2181 struct Lisp_Float *ptr;
2182{
2183 *(struct Lisp_Float **)&ptr->data = float_free_list;
2184 float_free_list = ptr;
2185}
2186
34400008
GM
2187
2188/* Return a new float object with value FLOAT_VALUE. */
2189
2e471eb5
GM
2190Lisp_Object
2191make_float (float_value)
2192 double float_value;
2193{
2194 register Lisp_Object val;
2195
2196 if (float_free_list)
2197 {
2198 /* We use the data field for chaining the free list
2199 so that we won't use the same field that has the mark bit. */
2200 XSETFLOAT (val, float_free_list);
2201 float_free_list = *(struct Lisp_Float **)&float_free_list->data;
2202 }
2203 else
2204 {
2205 if (float_block_index == FLOAT_BLOCK_SIZE)
2206 {
2207 register struct float_block *new;
2208
ab6780cd
SM
2209 new = (struct float_block *) lisp_align_malloc (sizeof *new,
2210 MEM_TYPE_FLOAT);
2e471eb5
GM
2211 new->next = float_block;
2212 float_block = new;
2213 float_block_index = 0;
2214 n_float_blocks++;
2215 }
2216 XSETFLOAT (val, &float_block->floats[float_block_index++]);
2217 }
177c0ea7 2218
2e471eb5 2219 XFLOAT_DATA (val) = float_value;
ab6780cd 2220 FLOAT_UNMARK (XFLOAT (val));
2e471eb5
GM
2221 consing_since_gc += sizeof (struct Lisp_Float);
2222 floats_consed++;
2223 return val;
2224}
2225
2e471eb5
GM
2226
2227\f
2228/***********************************************************************
2229 Cons Allocation
2230 ***********************************************************************/
2231
2232/* We store cons cells inside of cons_blocks, allocating a new
2233 cons_block with malloc whenever necessary. Cons cells reclaimed by
2234 GC are put on a free list to be reallocated before allocating
2235 any new cons cells from the latest cons_block.
2236
2237 Each cons_block is just under 1020 bytes long,
2238 since malloc really allocates in units of powers of two
2239 and uses 4 bytes for its own overhead. */
2240
2241#define CONS_BLOCK_SIZE \
2242 ((1020 - sizeof (struct cons_block *)) / sizeof (struct Lisp_Cons))
2243
2244struct cons_block
2245{
2246 struct cons_block *next;
2247 struct Lisp_Cons conses[CONS_BLOCK_SIZE];
2248};
2249
34400008
GM
2250/* Current cons_block. */
2251
2e471eb5 2252struct cons_block *cons_block;
34400008
GM
2253
2254/* Index of first unused Lisp_Cons in the current block. */
2255
2e471eb5
GM
2256int cons_block_index;
2257
34400008
GM
2258/* Free-list of Lisp_Cons structures. */
2259
2e471eb5
GM
2260struct Lisp_Cons *cons_free_list;
2261
2262/* Total number of cons blocks now in use. */
2263
2264int n_cons_blocks;
2265
34400008
GM
2266
2267/* Initialize cons allocation. */
2268
2e471eb5
GM
2269void
2270init_cons ()
2271{
34400008
GM
2272 cons_block = (struct cons_block *) lisp_malloc (sizeof *cons_block,
2273 MEM_TYPE_CONS);
2e471eb5
GM
2274 cons_block->next = 0;
2275 bzero ((char *) cons_block->conses, sizeof cons_block->conses);
2276 cons_block_index = 0;
2277 cons_free_list = 0;
2278 n_cons_blocks = 1;
2279}
2280
34400008
GM
2281
2282/* Explicitly free a cons cell by putting it on the free-list. */
2e471eb5
GM
2283
2284void
2285free_cons (ptr)
2286 struct Lisp_Cons *ptr;
2287{
2288 *(struct Lisp_Cons **)&ptr->cdr = cons_free_list;
34400008
GM
2289#if GC_MARK_STACK
2290 ptr->car = Vdead;
2291#endif
2e471eb5
GM
2292 cons_free_list = ptr;
2293}
2294
34400008 2295
2e471eb5 2296DEFUN ("cons", Fcons, Scons, 2, 2, 0,
a6266d23 2297 doc: /* Create a new cons, give it CAR and CDR as components, and return it. */)
7ee72033 2298 (car, cdr)
2e471eb5
GM
2299 Lisp_Object car, cdr;
2300{
2301 register Lisp_Object val;
2302
2303 if (cons_free_list)
2304 {
2305 /* We use the cdr for chaining the free list
2306 so that we won't use the same field that has the mark bit. */
2307 XSETCONS (val, cons_free_list);
2308 cons_free_list = *(struct Lisp_Cons **)&cons_free_list->cdr;
2309 }
2310 else
2311 {
2312 if (cons_block_index == CONS_BLOCK_SIZE)
2313 {
2314 register struct cons_block *new;
34400008
GM
2315 new = (struct cons_block *) lisp_malloc (sizeof *new,
2316 MEM_TYPE_CONS);
2e471eb5
GM
2317 new->next = cons_block;
2318 cons_block = new;
2319 cons_block_index = 0;
2320 n_cons_blocks++;
2321 }
2322 XSETCONS (val, &cons_block->conses[cons_block_index++]);
2323 }
177c0ea7 2324
f3fbd155
KR
2325 XSETCAR (val, car);
2326 XSETCDR (val, cdr);
2e471eb5
GM
2327 consing_since_gc += sizeof (struct Lisp_Cons);
2328 cons_cells_consed++;
2329 return val;
2330}
2331
34400008 2332
2e471eb5
GM
2333/* Make a list of 2, 3, 4 or 5 specified objects. */
2334
2335Lisp_Object
2336list2 (arg1, arg2)
2337 Lisp_Object arg1, arg2;
2338{
2339 return Fcons (arg1, Fcons (arg2, Qnil));
2340}
2341
34400008 2342
2e471eb5
GM
2343Lisp_Object
2344list3 (arg1, arg2, arg3)
2345 Lisp_Object arg1, arg2, arg3;
2346{
2347 return Fcons (arg1, Fcons (arg2, Fcons (arg3, Qnil)));
2348}
2349
34400008 2350
2e471eb5
GM
2351Lisp_Object
2352list4 (arg1, arg2, arg3, arg4)
2353 Lisp_Object arg1, arg2, arg3, arg4;
2354{
2355 return Fcons (arg1, Fcons (arg2, Fcons (arg3, Fcons (arg4, Qnil))));
2356}
2357
34400008 2358
2e471eb5
GM
2359Lisp_Object
2360list5 (arg1, arg2, arg3, arg4, arg5)
2361 Lisp_Object arg1, arg2, arg3, arg4, arg5;
2362{
2363 return Fcons (arg1, Fcons (arg2, Fcons (arg3, Fcons (arg4,
2364 Fcons (arg5, Qnil)))));
2365}
2366
34400008 2367
2e471eb5 2368DEFUN ("list", Flist, Slist, 0, MANY, 0,
eae936e2 2369 doc: /* Return a newly created list with specified arguments as elements.
ae8e8122
MB
2370Any number of arguments, even zero arguments, are allowed.
2371usage: (list &rest OBJECTS) */)
7ee72033 2372 (nargs, args)
2e471eb5
GM
2373 int nargs;
2374 register Lisp_Object *args;
2375{
2376 register Lisp_Object val;
2377 val = Qnil;
2378
2379 while (nargs > 0)
2380 {
2381 nargs--;
2382 val = Fcons (args[nargs], val);
2383 }
2384 return val;
2385}
2386
34400008 2387
2e471eb5 2388DEFUN ("make-list", Fmake_list, Smake_list, 2, 2, 0,
a6266d23 2389 doc: /* Return a newly created list of length LENGTH, with each element being INIT. */)
7ee72033 2390 (length, init)
2e471eb5
GM
2391 register Lisp_Object length, init;
2392{
2393 register Lisp_Object val;
2394 register int size;
2395
b7826503 2396 CHECK_NATNUM (length);
2e471eb5
GM
2397 size = XFASTINT (length);
2398
2399 val = Qnil;
ce070307
GM
2400 while (size > 0)
2401 {
2402 val = Fcons (init, val);
2403 --size;
2404
2405 if (size > 0)
2406 {
2407 val = Fcons (init, val);
2408 --size;
177c0ea7 2409
ce070307
GM
2410 if (size > 0)
2411 {
2412 val = Fcons (init, val);
2413 --size;
177c0ea7 2414
ce070307
GM
2415 if (size > 0)
2416 {
2417 val = Fcons (init, val);
2418 --size;
177c0ea7 2419
ce070307
GM
2420 if (size > 0)
2421 {
2422 val = Fcons (init, val);
2423 --size;
2424 }
2425 }
2426 }
2427 }
2428
2429 QUIT;
2430 }
177c0ea7 2431
7146af97
JB
2432 return val;
2433}
2e471eb5
GM
2434
2435
7146af97 2436\f
2e471eb5
GM
2437/***********************************************************************
2438 Vector Allocation
2439 ***********************************************************************/
7146af97 2440
34400008
GM
2441/* Singly-linked list of all vectors. */
2442
7146af97
JB
2443struct Lisp_Vector *all_vectors;
2444
2e471eb5
GM
2445/* Total number of vector-like objects now in use. */
2446
c8099634
RS
2447int n_vectors;
2448
34400008
GM
2449
2450/* Value is a pointer to a newly allocated Lisp_Vector structure
2451 with room for LEN Lisp_Objects. */
2452
ece93c02
GM
2453static struct Lisp_Vector *
2454allocate_vectorlike (len, type)
1825c68d 2455 EMACS_INT len;
ece93c02 2456 enum mem_type type;
1825c68d
KH
2457{
2458 struct Lisp_Vector *p;
675d5130 2459 size_t nbytes;
1825c68d 2460
d1658221 2461#ifdef DOUG_LEA_MALLOC
f8608968
GM
2462 /* Prevent mmap'ing the chunk. Lisp data may not be mmap'ed
2463 because mapped region contents are not preserved in
2464 a dumped Emacs. */
d1658221
RS
2465 mallopt (M_MMAP_MAX, 0);
2466#endif
177c0ea7 2467
34400008 2468 nbytes = sizeof *p + (len - 1) * sizeof p->contents[0];
ece93c02 2469 p = (struct Lisp_Vector *) lisp_malloc (nbytes, type);
177c0ea7 2470
d1658221 2471#ifdef DOUG_LEA_MALLOC
34400008 2472 /* Back to a reasonable maximum of mmap'ed areas. */
81d492d5 2473 mallopt (M_MMAP_MAX, MMAP_MAX_AREAS);
d1658221 2474#endif
177c0ea7 2475
34400008 2476 consing_since_gc += nbytes;
310ea200 2477 vector_cells_consed += len;
1825c68d
KH
2478
2479 p->next = all_vectors;
2480 all_vectors = p;
34400008 2481 ++n_vectors;
1825c68d
KH
2482 return p;
2483}
2484
34400008 2485
ece93c02
GM
2486/* Allocate a vector with NSLOTS slots. */
2487
2488struct Lisp_Vector *
2489allocate_vector (nslots)
2490 EMACS_INT nslots;
2491{
2492 struct Lisp_Vector *v = allocate_vectorlike (nslots, MEM_TYPE_VECTOR);
2493 v->size = nslots;
2494 return v;
2495}
2496
2497
2498/* Allocate other vector-like structures. */
2499
2500struct Lisp_Hash_Table *
2501allocate_hash_table ()
2502{
2503 EMACS_INT len = VECSIZE (struct Lisp_Hash_Table);
2504 struct Lisp_Vector *v = allocate_vectorlike (len, MEM_TYPE_HASH_TABLE);
2505 EMACS_INT i;
177c0ea7 2506
ece93c02
GM
2507 v->size = len;
2508 for (i = 0; i < len; ++i)
2509 v->contents[i] = Qnil;
177c0ea7 2510
ece93c02
GM
2511 return (struct Lisp_Hash_Table *) v;
2512}
2513
2514
2515struct window *
2516allocate_window ()
2517{
2518 EMACS_INT len = VECSIZE (struct window);
2519 struct Lisp_Vector *v = allocate_vectorlike (len, MEM_TYPE_WINDOW);
2520 EMACS_INT i;
177c0ea7 2521
ece93c02
GM
2522 for (i = 0; i < len; ++i)
2523 v->contents[i] = Qnil;
2524 v->size = len;
177c0ea7 2525
ece93c02
GM
2526 return (struct window *) v;
2527}
2528
2529
2530struct frame *
2531allocate_frame ()
2532{
2533 EMACS_INT len = VECSIZE (struct frame);
2534 struct Lisp_Vector *v = allocate_vectorlike (len, MEM_TYPE_FRAME);
2535 EMACS_INT i;
177c0ea7 2536
ece93c02
GM
2537 for (i = 0; i < len; ++i)
2538 v->contents[i] = make_number (0);
2539 v->size = len;
2540 return (struct frame *) v;
2541}
2542
2543
2544struct Lisp_Process *
2545allocate_process ()
2546{
2547 EMACS_INT len = VECSIZE (struct Lisp_Process);
2548 struct Lisp_Vector *v = allocate_vectorlike (len, MEM_TYPE_PROCESS);
2549 EMACS_INT i;
177c0ea7 2550
ece93c02
GM
2551 for (i = 0; i < len; ++i)
2552 v->contents[i] = Qnil;
2553 v->size = len;
177c0ea7 2554
ece93c02
GM
2555 return (struct Lisp_Process *) v;
2556}
2557
2558
2559struct Lisp_Vector *
2560allocate_other_vector (len)
2561 EMACS_INT len;
2562{
2563 struct Lisp_Vector *v = allocate_vectorlike (len, MEM_TYPE_VECTOR);
2564 EMACS_INT i;
177c0ea7 2565
ece93c02
GM
2566 for (i = 0; i < len; ++i)
2567 v->contents[i] = Qnil;
2568 v->size = len;
177c0ea7 2569
ece93c02
GM
2570 return v;
2571}
2572
2573
7146af97 2574DEFUN ("make-vector", Fmake_vector, Smake_vector, 2, 2, 0,
a6266d23 2575 doc: /* Return a newly created vector of length LENGTH, with each element being INIT.
7ee72033
MB
2576See also the function `vector'. */)
2577 (length, init)
7146af97
JB
2578 register Lisp_Object length, init;
2579{
1825c68d
KH
2580 Lisp_Object vector;
2581 register EMACS_INT sizei;
2582 register int index;
7146af97
JB
2583 register struct Lisp_Vector *p;
2584
b7826503 2585 CHECK_NATNUM (length);
c9dad5ed 2586 sizei = XFASTINT (length);
7146af97 2587
ece93c02 2588 p = allocate_vector (sizei);
7146af97
JB
2589 for (index = 0; index < sizei; index++)
2590 p->contents[index] = init;
2591
1825c68d 2592 XSETVECTOR (vector, p);
7146af97
JB
2593 return vector;
2594}
2595
34400008 2596
a59de17b 2597DEFUN ("make-char-table", Fmake_char_table, Smake_char_table, 1, 2, 0,
a6266d23 2598 doc: /* Return a newly created char-table, with purpose PURPOSE.
228299fa
GM
2599Each element is initialized to INIT, which defaults to nil.
2600PURPOSE should be a symbol which has a `char-table-extra-slots' property.
7ee72033
MB
2601The property's value should be an integer between 0 and 10. */)
2602 (purpose, init)
a59de17b 2603 register Lisp_Object purpose, init;
7b07587b
RS
2604{
2605 Lisp_Object vector;
a59de17b 2606 Lisp_Object n;
b7826503 2607 CHECK_SYMBOL (purpose);
0551bde3 2608 n = Fget (purpose, Qchar_table_extra_slots);
b7826503 2609 CHECK_NUMBER (n);
7b07587b
RS
2610 if (XINT (n) < 0 || XINT (n) > 10)
2611 args_out_of_range (n, Qnil);
2612 /* Add 2 to the size for the defalt and parent slots. */
2613 vector = Fmake_vector (make_number (CHAR_TABLE_STANDARD_SLOTS + XINT (n)),
2614 init);
0551bde3 2615 XCHAR_TABLE (vector)->top = Qt;
c96a008c 2616 XCHAR_TABLE (vector)->parent = Qnil;
a59de17b 2617 XCHAR_TABLE (vector)->purpose = purpose;
7b07587b
RS
2618 XSETCHAR_TABLE (vector, XCHAR_TABLE (vector));
2619 return vector;
2620}
2621
34400008 2622
0551bde3
KH
2623/* Return a newly created sub char table with default value DEFALT.
2624 Since a sub char table does not appear as a top level Emacs Lisp
2625 object, we don't need a Lisp interface to make it. */
2626
2627Lisp_Object
2628make_sub_char_table (defalt)
2629 Lisp_Object defalt;
2630{
2631 Lisp_Object vector
2632 = Fmake_vector (make_number (SUB_CHAR_TABLE_STANDARD_SLOTS), Qnil);
2633 XCHAR_TABLE (vector)->top = Qnil;
2634 XCHAR_TABLE (vector)->defalt = defalt;
2635 XSETCHAR_TABLE (vector, XCHAR_TABLE (vector));
2636 return vector;
2637}
2638
34400008 2639
7146af97 2640DEFUN ("vector", Fvector, Svector, 0, MANY, 0,
eae936e2 2641 doc: /* Return a newly created vector with specified arguments as elements.
ae8e8122
MB
2642Any number of arguments, even zero arguments, are allowed.
2643usage: (vector &rest OBJECTS) */)
7ee72033 2644 (nargs, args)
7146af97
JB
2645 register int nargs;
2646 Lisp_Object *args;
2647{
2648 register Lisp_Object len, val;
2649 register int index;
2650 register struct Lisp_Vector *p;
2651
67ba9986 2652 XSETFASTINT (len, nargs);
7146af97
JB
2653 val = Fmake_vector (len, Qnil);
2654 p = XVECTOR (val);
2655 for (index = 0; index < nargs; index++)
2656 p->contents[index] = args[index];
2657 return val;
2658}
2659
34400008 2660
7146af97 2661DEFUN ("make-byte-code", Fmake_byte_code, Smake_byte_code, 4, MANY, 0,
a6266d23 2662 doc: /* Create a byte-code object with specified arguments as elements.
228299fa
GM
2663The arguments should be the arglist, bytecode-string, constant vector,
2664stack size, (optional) doc string, and (optional) interactive spec.
2665The first four arguments are required; at most six have any
ae8e8122 2666significance.
92cc28b2 2667usage: (make-byte-code ARGLIST BYTE-CODE CONSTANTS DEPTH &optional DOCSTRING INTERACTIVE-SPEC &rest ELEMENTS) */)
7ee72033 2668 (nargs, args)
7146af97
JB
2669 register int nargs;
2670 Lisp_Object *args;
2671{
2672 register Lisp_Object len, val;
2673 register int index;
2674 register struct Lisp_Vector *p;
2675
67ba9986 2676 XSETFASTINT (len, nargs);
265a9e55 2677 if (!NILP (Vpurify_flag))
5a053ea9 2678 val = make_pure_vector ((EMACS_INT) nargs);
7146af97
JB
2679 else
2680 val = Fmake_vector (len, Qnil);
9eac9d59
KH
2681
2682 if (STRINGP (args[1]) && STRING_MULTIBYTE (args[1]))
2683 /* BYTECODE-STRING must have been produced by Emacs 20.2 or the
2684 earlier because they produced a raw 8-bit string for byte-code
2685 and now such a byte-code string is loaded as multibyte while
2686 raw 8-bit characters converted to multibyte form. Thus, now we
2687 must convert them back to the original unibyte form. */
2688 args[1] = Fstring_as_unibyte (args[1]);
2689
7146af97
JB
2690 p = XVECTOR (val);
2691 for (index = 0; index < nargs; index++)
2692 {
265a9e55 2693 if (!NILP (Vpurify_flag))
7146af97
JB
2694 args[index] = Fpurecopy (args[index]);
2695 p->contents[index] = args[index];
2696 }
50aee051 2697 XSETCOMPILED (val, p);
7146af97
JB
2698 return val;
2699}
2e471eb5 2700
34400008 2701
7146af97 2702\f
2e471eb5
GM
2703/***********************************************************************
2704 Symbol Allocation
2705 ***********************************************************************/
7146af97 2706
2e471eb5
GM
2707/* Each symbol_block is just under 1020 bytes long, since malloc
2708 really allocates in units of powers of two and uses 4 bytes for its
2709 own overhead. */
7146af97
JB
2710
2711#define SYMBOL_BLOCK_SIZE \
2712 ((1020 - sizeof (struct symbol_block *)) / sizeof (struct Lisp_Symbol))
2713
2714struct symbol_block
2e471eb5
GM
2715{
2716 struct symbol_block *next;
2717 struct Lisp_Symbol symbols[SYMBOL_BLOCK_SIZE];
2718};
7146af97 2719
34400008
GM
2720/* Current symbol block and index of first unused Lisp_Symbol
2721 structure in it. */
2722
7146af97
JB
2723struct symbol_block *symbol_block;
2724int symbol_block_index;
2725
34400008
GM
2726/* List of free symbols. */
2727
7146af97
JB
2728struct Lisp_Symbol *symbol_free_list;
2729
c8099634 2730/* Total number of symbol blocks now in use. */
2e471eb5 2731
c8099634
RS
2732int n_symbol_blocks;
2733
34400008
GM
2734
2735/* Initialize symbol allocation. */
2736
7146af97
JB
2737void
2738init_symbol ()
2739{
34400008
GM
2740 symbol_block = (struct symbol_block *) lisp_malloc (sizeof *symbol_block,
2741 MEM_TYPE_SYMBOL);
7146af97 2742 symbol_block->next = 0;
290c8f1e 2743 bzero ((char *) symbol_block->symbols, sizeof symbol_block->symbols);
7146af97
JB
2744 symbol_block_index = 0;
2745 symbol_free_list = 0;
c8099634 2746 n_symbol_blocks = 1;
7146af97
JB
2747}
2748
34400008 2749
7146af97 2750DEFUN ("make-symbol", Fmake_symbol, Smake_symbol, 1, 1, 0,
a6266d23 2751 doc: /* Return a newly allocated uninterned symbol whose name is NAME.
7ee72033
MB
2752Its value and function definition are void, and its property list is nil. */)
2753 (name)
54ee42dd 2754 Lisp_Object name;
7146af97
JB
2755{
2756 register Lisp_Object val;
2757 register struct Lisp_Symbol *p;
2758
b7826503 2759 CHECK_STRING (name);
7146af97
JB
2760
2761 if (symbol_free_list)
2762 {
45d12a89 2763 XSETSYMBOL (val, symbol_free_list);
85481507 2764 symbol_free_list = *(struct Lisp_Symbol **)&symbol_free_list->value;
7146af97
JB
2765 }
2766 else
2767 {
2768 if (symbol_block_index == SYMBOL_BLOCK_SIZE)
2769 {
3c06d205 2770 struct symbol_block *new;
34400008
GM
2771 new = (struct symbol_block *) lisp_malloc (sizeof *new,
2772 MEM_TYPE_SYMBOL);
7146af97
JB
2773 new->next = symbol_block;
2774 symbol_block = new;
2775 symbol_block_index = 0;
c8099634 2776 n_symbol_blocks++;
7146af97 2777 }
45d12a89 2778 XSETSYMBOL (val, &symbol_block->symbols[symbol_block_index++]);
7146af97 2779 }
177c0ea7 2780
7146af97 2781 p = XSYMBOL (val);
8fe5665d 2782 p->xname = name;
7146af97 2783 p->plist = Qnil;
2e471eb5
GM
2784 p->value = Qunbound;
2785 p->function = Qunbound;
9e713715 2786 p->next = NULL;
2336fe58 2787 p->gcmarkbit = 0;
9e713715
GM
2788 p->interned = SYMBOL_UNINTERNED;
2789 p->constant = 0;
2790 p->indirect_variable = 0;
2e471eb5
GM
2791 consing_since_gc += sizeof (struct Lisp_Symbol);
2792 symbols_consed++;
7146af97
JB
2793 return val;
2794}
2795
3f25e183 2796
2e471eb5
GM
2797\f
2798/***********************************************************************
34400008 2799 Marker (Misc) Allocation
2e471eb5 2800 ***********************************************************************/
3f25e183 2801
2e471eb5
GM
2802/* Allocation of markers and other objects that share that structure.
2803 Works like allocation of conses. */
c0696668 2804
2e471eb5
GM
2805#define MARKER_BLOCK_SIZE \
2806 ((1020 - sizeof (struct marker_block *)) / sizeof (union Lisp_Misc))
2807
2808struct marker_block
c0696668 2809{
2e471eb5
GM
2810 struct marker_block *next;
2811 union Lisp_Misc markers[MARKER_BLOCK_SIZE];
2812};
c0696668 2813
2e471eb5
GM
2814struct marker_block *marker_block;
2815int marker_block_index;
c0696668 2816
2e471eb5 2817union Lisp_Misc *marker_free_list;
c0696668 2818
2e471eb5 2819/* Total number of marker blocks now in use. */
3f25e183 2820
2e471eb5
GM
2821int n_marker_blocks;
2822
2823void
2824init_marker ()
3f25e183 2825{
34400008
GM
2826 marker_block = (struct marker_block *) lisp_malloc (sizeof *marker_block,
2827 MEM_TYPE_MISC);
2e471eb5
GM
2828 marker_block->next = 0;
2829 bzero ((char *) marker_block->markers, sizeof marker_block->markers);
2830 marker_block_index = 0;
2831 marker_free_list = 0;
2832 n_marker_blocks = 1;
3f25e183
RS
2833}
2834
2e471eb5
GM
2835/* Return a newly allocated Lisp_Misc object, with no substructure. */
2836
3f25e183 2837Lisp_Object
2e471eb5 2838allocate_misc ()
7146af97 2839{
2e471eb5 2840 Lisp_Object val;
7146af97 2841
2e471eb5 2842 if (marker_free_list)
7146af97 2843 {
2e471eb5
GM
2844 XSETMISC (val, marker_free_list);
2845 marker_free_list = marker_free_list->u_free.chain;
7146af97
JB
2846 }
2847 else
7146af97 2848 {
2e471eb5
GM
2849 if (marker_block_index == MARKER_BLOCK_SIZE)
2850 {
2851 struct marker_block *new;
34400008
GM
2852 new = (struct marker_block *) lisp_malloc (sizeof *new,
2853 MEM_TYPE_MISC);
2e471eb5
GM
2854 new->next = marker_block;
2855 marker_block = new;
2856 marker_block_index = 0;
2857 n_marker_blocks++;
2858 }
2859 XSETMISC (val, &marker_block->markers[marker_block_index++]);
7146af97 2860 }
177c0ea7 2861
2e471eb5
GM
2862 consing_since_gc += sizeof (union Lisp_Misc);
2863 misc_objects_consed++;
2336fe58 2864 XMARKER (val)->gcmarkbit = 0;
2e471eb5
GM
2865 return val;
2866}
2867
42172a6b
RS
2868/* Return a Lisp_Misc_Save_Value object containing POINTER and
2869 INTEGER. This is used to package C values to call record_unwind_protect.
2870 The unwind function can get the C values back using XSAVE_VALUE. */
2871
2872Lisp_Object
2873make_save_value (pointer, integer)
2874 void *pointer;
2875 int integer;
2876{
2877 register Lisp_Object val;
2878 register struct Lisp_Save_Value *p;
2879
2880 val = allocate_misc ();
2881 XMISCTYPE (val) = Lisp_Misc_Save_Value;
2882 p = XSAVE_VALUE (val);
2883 p->pointer = pointer;
2884 p->integer = integer;
2885 return val;
2886}
2887
2e471eb5 2888DEFUN ("make-marker", Fmake_marker, Smake_marker, 0, 0, 0,
a6266d23 2889 doc: /* Return a newly allocated marker which does not point at any place. */)
7ee72033 2890 ()
2e471eb5
GM
2891{
2892 register Lisp_Object val;
2893 register struct Lisp_Marker *p;
7146af97 2894
2e471eb5
GM
2895 val = allocate_misc ();
2896 XMISCTYPE (val) = Lisp_Misc_Marker;
2897 p = XMARKER (val);
2898 p->buffer = 0;
2899 p->bytepos = 0;
2900 p->charpos = 0;
ef89c2ce 2901 p->next = NULL;
2e471eb5 2902 p->insertion_type = 0;
7146af97
JB
2903 return val;
2904}
2e471eb5
GM
2905
2906/* Put MARKER back on the free list after using it temporarily. */
2907
2908void
2909free_marker (marker)
2910 Lisp_Object marker;
2911{
ef89c2ce 2912 unchain_marker (XMARKER (marker));
2e471eb5
GM
2913
2914 XMISC (marker)->u_marker.type = Lisp_Misc_Free;
2915 XMISC (marker)->u_free.chain = marker_free_list;
2916 marker_free_list = XMISC (marker);
2917
2918 total_free_markers++;
2919}
2920
c0696668 2921\f
7146af97 2922/* Return a newly created vector or string with specified arguments as
736471d1
RS
2923 elements. If all the arguments are characters that can fit
2924 in a string of events, make a string; otherwise, make a vector.
2925
2926 Any number of arguments, even zero arguments, are allowed. */
7146af97
JB
2927
2928Lisp_Object
736471d1 2929make_event_array (nargs, args)
7146af97
JB
2930 register int nargs;
2931 Lisp_Object *args;
2932{
2933 int i;
2934
2935 for (i = 0; i < nargs; i++)
736471d1 2936 /* The things that fit in a string
c9ca4659
RS
2937 are characters that are in 0...127,
2938 after discarding the meta bit and all the bits above it. */
e687453f 2939 if (!INTEGERP (args[i])
c9ca4659 2940 || (XUINT (args[i]) & ~(-CHAR_META)) >= 0200)
7146af97
JB
2941 return Fvector (nargs, args);
2942
2943 /* Since the loop exited, we know that all the things in it are
2944 characters, so we can make a string. */
2945 {
c13ccad2 2946 Lisp_Object result;
177c0ea7 2947
50aee051 2948 result = Fmake_string (make_number (nargs), make_number (0));
7146af97 2949 for (i = 0; i < nargs; i++)
736471d1 2950 {
46e7e6b0 2951 SSET (result, i, XINT (args[i]));
736471d1
RS
2952 /* Move the meta bit to the right place for a string char. */
2953 if (XINT (args[i]) & CHAR_META)
46e7e6b0 2954 SSET (result, i, SREF (result, i) | 0x80);
736471d1 2955 }
177c0ea7 2956
7146af97
JB
2957 return result;
2958 }
2959}
2e471eb5
GM
2960
2961
7146af97 2962\f
34400008
GM
2963/************************************************************************
2964 C Stack Marking
2965 ************************************************************************/
2966
13c844fb
GM
2967#if GC_MARK_STACK || defined GC_MALLOC_CHECK
2968
71cf5fa0
GM
2969/* Conservative C stack marking requires a method to identify possibly
2970 live Lisp objects given a pointer value. We do this by keeping
2971 track of blocks of Lisp data that are allocated in a red-black tree
2972 (see also the comment of mem_node which is the type of nodes in
2973 that tree). Function lisp_malloc adds information for an allocated
2974 block to the red-black tree with calls to mem_insert, and function
2975 lisp_free removes it with mem_delete. Functions live_string_p etc
2976 call mem_find to lookup information about a given pointer in the
2977 tree, and use that to determine if the pointer points to a Lisp
2978 object or not. */
2979
34400008
GM
2980/* Initialize this part of alloc.c. */
2981
2982static void
2983mem_init ()
2984{
2985 mem_z.left = mem_z.right = MEM_NIL;
2986 mem_z.parent = NULL;
2987 mem_z.color = MEM_BLACK;
2988 mem_z.start = mem_z.end = NULL;
2989 mem_root = MEM_NIL;
2990}
2991
2992
2993/* Value is a pointer to the mem_node containing START. Value is
2994 MEM_NIL if there is no node in the tree containing START. */
2995
2996static INLINE struct mem_node *
2997mem_find (start)
2998 void *start;
2999{
3000 struct mem_node *p;
3001
ece93c02
GM
3002 if (start < min_heap_address || start > max_heap_address)
3003 return MEM_NIL;
3004
34400008
GM
3005 /* Make the search always successful to speed up the loop below. */
3006 mem_z.start = start;
3007 mem_z.end = (char *) start + 1;
3008
3009 p = mem_root;
3010 while (start < p->start || start >= p->end)
3011 p = start < p->start ? p->left : p->right;
3012 return p;
3013}
3014
3015
3016/* Insert a new node into the tree for a block of memory with start
3017 address START, end address END, and type TYPE. Value is a
3018 pointer to the node that was inserted. */
3019
3020static struct mem_node *
3021mem_insert (start, end, type)
3022 void *start, *end;
3023 enum mem_type type;
3024{
3025 struct mem_node *c, *parent, *x;
3026
ece93c02
GM
3027 if (start < min_heap_address)
3028 min_heap_address = start;
3029 if (end > max_heap_address)
3030 max_heap_address = end;
3031
34400008
GM
3032 /* See where in the tree a node for START belongs. In this
3033 particular application, it shouldn't happen that a node is already
3034 present. For debugging purposes, let's check that. */
3035 c = mem_root;
3036 parent = NULL;
3037
3038#if GC_MARK_STACK != GC_MAKE_GCPROS_NOOPS
177c0ea7 3039
34400008
GM
3040 while (c != MEM_NIL)
3041 {
3042 if (start >= c->start && start < c->end)
3043 abort ();
3044 parent = c;
3045 c = start < c->start ? c->left : c->right;
3046 }
177c0ea7 3047
34400008 3048#else /* GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS */
177c0ea7 3049
34400008
GM
3050 while (c != MEM_NIL)
3051 {
3052 parent = c;
3053 c = start < c->start ? c->left : c->right;
3054 }
177c0ea7 3055
34400008
GM
3056#endif /* GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS */
3057
3058 /* Create a new node. */
877935b1
GM
3059#ifdef GC_MALLOC_CHECK
3060 x = (struct mem_node *) _malloc_internal (sizeof *x);
3061 if (x == NULL)
3062 abort ();
3063#else
34400008 3064 x = (struct mem_node *) xmalloc (sizeof *x);
877935b1 3065#endif
34400008
GM
3066 x->start = start;
3067 x->end = end;
3068 x->type = type;
3069 x->parent = parent;
3070 x->left = x->right = MEM_NIL;
3071 x->color = MEM_RED;
3072
3073 /* Insert it as child of PARENT or install it as root. */
3074 if (parent)
3075 {
3076 if (start < parent->start)
3077 parent->left = x;
3078 else
3079 parent->right = x;
3080 }
177c0ea7 3081 else
34400008
GM
3082 mem_root = x;
3083
3084 /* Re-establish red-black tree properties. */
3085 mem_insert_fixup (x);
877935b1 3086
34400008
GM
3087 return x;
3088}
3089
3090
3091/* Re-establish the red-black properties of the tree, and thereby
3092 balance the tree, after node X has been inserted; X is always red. */
3093
3094static void
3095mem_insert_fixup (x)
3096 struct mem_node *x;
3097{
3098 while (x != mem_root && x->parent->color == MEM_RED)
3099 {
3100 /* X is red and its parent is red. This is a violation of
3101 red-black tree property #3. */
177c0ea7 3102
34400008
GM
3103 if (x->parent == x->parent->parent->left)
3104 {
3105 /* We're on the left side of our grandparent, and Y is our
3106 "uncle". */
3107 struct mem_node *y = x->parent->parent->right;
177c0ea7 3108
34400008
GM
3109 if (y->color == MEM_RED)
3110 {
3111 /* Uncle and parent are red but should be black because
3112 X is red. Change the colors accordingly and proceed
3113 with the grandparent. */
3114 x->parent->color = MEM_BLACK;
3115 y->color = MEM_BLACK;
3116 x->parent->parent->color = MEM_RED;
3117 x = x->parent->parent;
3118 }
3119 else
3120 {
3121 /* Parent and uncle have different colors; parent is
3122 red, uncle is black. */
3123 if (x == x->parent->right)
3124 {
3125 x = x->parent;
3126 mem_rotate_left (x);
3127 }
3128
3129 x->parent->color = MEM_BLACK;
3130 x->parent->parent->color = MEM_RED;
3131 mem_rotate_right (x->parent->parent);
3132 }
3133 }
3134 else
3135 {
3136 /* This is the symmetrical case of above. */
3137 struct mem_node *y = x->parent->parent->left;
177c0ea7 3138
34400008
GM
3139 if (y->color == MEM_RED)
3140 {
3141 x->parent->color = MEM_BLACK;
3142 y->color = MEM_BLACK;
3143 x->parent->parent->color = MEM_RED;
3144 x = x->parent->parent;
3145 }
3146 else
3147 {
3148 if (x == x->parent->left)
3149 {
3150 x = x->parent;
3151 mem_rotate_right (x);
3152 }
177c0ea7 3153
34400008
GM
3154 x->parent->color = MEM_BLACK;
3155 x->parent->parent->color = MEM_RED;
3156 mem_rotate_left (x->parent->parent);
3157 }
3158 }
3159 }
3160
3161 /* The root may have been changed to red due to the algorithm. Set
3162 it to black so that property #5 is satisfied. */
3163 mem_root->color = MEM_BLACK;
3164}
3165
3166
177c0ea7
JB
3167/* (x) (y)
3168 / \ / \
34400008
GM
3169 a (y) ===> (x) c
3170 / \ / \
3171 b c a b */
3172
3173static void
3174mem_rotate_left (x)
3175 struct mem_node *x;
3176{
3177 struct mem_node *y;
3178
3179 /* Turn y's left sub-tree into x's right sub-tree. */
3180 y = x->right;
3181 x->right = y->left;
3182 if (y->left != MEM_NIL)
3183 y->left->parent = x;
3184
3185 /* Y's parent was x's parent. */
3186 if (y != MEM_NIL)
3187 y->parent = x->parent;
3188
3189 /* Get the parent to point to y instead of x. */
3190 if (x->parent)
3191 {
3192 if (x == x->parent->left)
3193 x->parent->left = y;
3194 else
3195 x->parent->right = y;
3196 }
3197 else
3198 mem_root = y;
3199
3200 /* Put x on y's left. */
3201 y->left = x;
3202 if (x != MEM_NIL)
3203 x->parent = y;
3204}
3205
3206
177c0ea7
JB
3207/* (x) (Y)
3208 / \ / \
3209 (y) c ===> a (x)
3210 / \ / \
34400008
GM
3211 a b b c */
3212
3213static void
3214mem_rotate_right (x)
3215 struct mem_node *x;
3216{
3217 struct mem_node *y = x->left;
3218
3219 x->left = y->right;
3220 if (y->right != MEM_NIL)
3221 y->right->parent = x;
177c0ea7 3222
34400008
GM
3223 if (y != MEM_NIL)
3224 y->parent = x->parent;
3225 if (x->parent)
3226 {
3227 if (x == x->parent->right)
3228 x->parent->right = y;
3229 else
3230 x->parent->left = y;
3231 }
3232 else
3233 mem_root = y;
177c0ea7 3234
34400008
GM
3235 y->right = x;
3236 if (x != MEM_NIL)
3237 x->parent = y;
3238}
3239
3240
3241/* Delete node Z from the tree. If Z is null or MEM_NIL, do nothing. */
3242
3243static void
3244mem_delete (z)
3245 struct mem_node *z;
3246{
3247 struct mem_node *x, *y;
3248
3249 if (!z || z == MEM_NIL)
3250 return;
3251
3252 if (z->left == MEM_NIL || z->right == MEM_NIL)
3253 y = z;
3254 else
3255 {
3256 y = z->right;
3257 while (y->left != MEM_NIL)
3258 y = y->left;
3259 }
3260
3261 if (y->left != MEM_NIL)
3262 x = y->left;
3263 else
3264 x = y->right;
3265
3266 x->parent = y->parent;
3267 if (y->parent)
3268 {
3269 if (y == y->parent->left)
3270 y->parent->left = x;
3271 else
3272 y->parent->right = x;
3273 }
3274 else
3275 mem_root = x;
3276
3277 if (y != z)
3278 {
3279 z->start = y->start;
3280 z->end = y->end;
3281 z->type = y->type;
3282 }
177c0ea7 3283
34400008
GM
3284 if (y->color == MEM_BLACK)
3285 mem_delete_fixup (x);
877935b1
GM
3286
3287#ifdef GC_MALLOC_CHECK
3288 _free_internal (y);
3289#else
34400008 3290 xfree (y);
877935b1 3291#endif
34400008
GM
3292}
3293
3294
3295/* Re-establish the red-black properties of the tree, after a
3296 deletion. */
3297
3298static void
3299mem_delete_fixup (x)
3300 struct mem_node *x;
3301{
3302 while (x != mem_root && x->color == MEM_BLACK)
3303 {
3304 if (x == x->parent->left)
3305 {
3306 struct mem_node *w = x->parent->right;
177c0ea7 3307
34400008
GM
3308 if (w->color == MEM_RED)
3309 {
3310 w->color = MEM_BLACK;
3311 x->parent->color = MEM_RED;
3312 mem_rotate_left (x->parent);
3313 w = x->parent->right;
3314 }
177c0ea7 3315
34400008
GM
3316 if (w->left->color == MEM_BLACK && w->right->color == MEM_BLACK)
3317 {
3318 w->color = MEM_RED;
3319 x = x->parent;
3320 }
3321 else
3322 {
3323 if (w->right->color == MEM_BLACK)
3324 {
3325 w->left->color = MEM_BLACK;
3326 w->color = MEM_RED;
3327 mem_rotate_right (w);
3328 w = x->parent->right;
3329 }
3330 w->color = x->parent->color;
3331 x->parent->color = MEM_BLACK;
3332 w->right->color = MEM_BLACK;
3333 mem_rotate_left (x->parent);
3334 x = mem_root;
3335 }
3336 }
3337 else
3338 {
3339 struct mem_node *w = x->parent->left;
177c0ea7 3340
34400008
GM
3341 if (w->color == MEM_RED)
3342 {
3343 w->color = MEM_BLACK;
3344 x->parent->color = MEM_RED;
3345 mem_rotate_right (x->parent);
3346 w = x->parent->left;
3347 }
177c0ea7 3348
34400008
GM
3349 if (w->right->color == MEM_BLACK && w->left->color == MEM_BLACK)
3350 {
3351 w->color = MEM_RED;
3352 x = x->parent;
3353 }
3354 else
3355 {
3356 if (w->left->color == MEM_BLACK)
3357 {
3358 w->right->color = MEM_BLACK;
3359 w->color = MEM_RED;
3360 mem_rotate_left (w);
3361 w = x->parent->left;
3362 }
177c0ea7 3363
34400008
GM
3364 w->color = x->parent->color;
3365 x->parent->color = MEM_BLACK;
3366 w->left->color = MEM_BLACK;
3367 mem_rotate_right (x->parent);
3368 x = mem_root;
3369 }
3370 }
3371 }
177c0ea7 3372
34400008
GM
3373 x->color = MEM_BLACK;
3374}
3375
3376
3377/* Value is non-zero if P is a pointer to a live Lisp string on
3378 the heap. M is a pointer to the mem_block for P. */
3379
3380static INLINE int
3381live_string_p (m, p)
3382 struct mem_node *m;
3383 void *p;
3384{
3385 if (m->type == MEM_TYPE_STRING)
3386 {
3387 struct string_block *b = (struct string_block *) m->start;
3388 int offset = (char *) p - (char *) &b->strings[0];
3389
3390 /* P must point to the start of a Lisp_String structure, and it
3391 must not be on the free-list. */
176bc847
GM
3392 return (offset >= 0
3393 && offset % sizeof b->strings[0] == 0
34400008
GM
3394 && ((struct Lisp_String *) p)->data != NULL);
3395 }
3396 else
3397 return 0;
3398}
3399
3400
3401/* Value is non-zero if P is a pointer to a live Lisp cons on
3402 the heap. M is a pointer to the mem_block for P. */
3403
3404static INLINE int
3405live_cons_p (m, p)
3406 struct mem_node *m;
3407 void *p;
3408{
3409 if (m->type == MEM_TYPE_CONS)
3410 {
3411 struct cons_block *b = (struct cons_block *) m->start;
3412 int offset = (char *) p - (char *) &b->conses[0];
3413
3414 /* P must point to the start of a Lisp_Cons, not be
3415 one of the unused cells in the current cons block,
3416 and not be on the free-list. */
176bc847
GM
3417 return (offset >= 0
3418 && offset % sizeof b->conses[0] == 0
34400008
GM
3419 && (b != cons_block
3420 || offset / sizeof b->conses[0] < cons_block_index)
3421 && !EQ (((struct Lisp_Cons *) p)->car, Vdead));
3422 }
3423 else
3424 return 0;
3425}
3426
3427
3428/* Value is non-zero if P is a pointer to a live Lisp symbol on
3429 the heap. M is a pointer to the mem_block for P. */
3430
3431static INLINE int
3432live_symbol_p (m, p)
3433 struct mem_node *m;
3434 void *p;
3435{
3436 if (m->type == MEM_TYPE_SYMBOL)
3437 {
3438 struct symbol_block *b = (struct symbol_block *) m->start;
3439 int offset = (char *) p - (char *) &b->symbols[0];
177c0ea7 3440
34400008
GM
3441 /* P must point to the start of a Lisp_Symbol, not be
3442 one of the unused cells in the current symbol block,
3443 and not be on the free-list. */
176bc847
GM
3444 return (offset >= 0
3445 && offset % sizeof b->symbols[0] == 0
34400008
GM
3446 && (b != symbol_block
3447 || offset / sizeof b->symbols[0] < symbol_block_index)
3448 && !EQ (((struct Lisp_Symbol *) p)->function, Vdead));
3449 }
3450 else
3451 return 0;
3452}
3453
3454
3455/* Value is non-zero if P is a pointer to a live Lisp float on
3456 the heap. M is a pointer to the mem_block for P. */
3457
3458static INLINE int
3459live_float_p (m, p)
3460 struct mem_node *m;
3461 void *p;
3462{
3463 if (m->type == MEM_TYPE_FLOAT)
3464 {
3465 struct float_block *b = (struct float_block *) m->start;
3466 int offset = (char *) p - (char *) &b->floats[0];
177c0ea7 3467
ab6780cd
SM
3468 /* P must point to the start of a Lisp_Float and not be
3469 one of the unused cells in the current float block. */
176bc847 3470 return (offset >= 0
bfe1a3f7 3471 && offset < (FLOAT_BLOCK_SIZE * sizeof b->floats[0])
176bc847 3472 && offset % sizeof b->floats[0] == 0
34400008 3473 && (b != float_block
ab6780cd 3474 || offset / sizeof b->floats[0] < float_block_index));
34400008
GM
3475 }
3476 else
3477 return 0;
3478}
3479
3480
3481/* Value is non-zero if P is a pointer to a live Lisp Misc on
3482 the heap. M is a pointer to the mem_block for P. */
3483
3484static INLINE int
3485live_misc_p (m, p)
3486 struct mem_node *m;
3487 void *p;
3488{
3489 if (m->type == MEM_TYPE_MISC)
3490 {
3491 struct marker_block *b = (struct marker_block *) m->start;
3492 int offset = (char *) p - (char *) &b->markers[0];
177c0ea7 3493
34400008
GM
3494 /* P must point to the start of a Lisp_Misc, not be
3495 one of the unused cells in the current misc block,
3496 and not be on the free-list. */
176bc847
GM
3497 return (offset >= 0
3498 && offset % sizeof b->markers[0] == 0
34400008
GM
3499 && (b != marker_block
3500 || offset / sizeof b->markers[0] < marker_block_index)
3501 && ((union Lisp_Misc *) p)->u_marker.type != Lisp_Misc_Free);
3502 }
3503 else
3504 return 0;
3505}
3506
3507
3508/* Value is non-zero if P is a pointer to a live vector-like object.
3509 M is a pointer to the mem_block for P. */
3510
3511static INLINE int
3512live_vector_p (m, p)
3513 struct mem_node *m;
3514 void *p;
3515{
ece93c02
GM
3516 return (p == m->start
3517 && m->type >= MEM_TYPE_VECTOR
3518 && m->type <= MEM_TYPE_WINDOW);
34400008
GM
3519}
3520
3521
2336fe58 3522/* Value is non-zero if P is a pointer to a live buffer. M is a
34400008
GM
3523 pointer to the mem_block for P. */
3524
3525static INLINE int
3526live_buffer_p (m, p)
3527 struct mem_node *m;
3528 void *p;
3529{
3530 /* P must point to the start of the block, and the buffer
3531 must not have been killed. */
3532 return (m->type == MEM_TYPE_BUFFER
3533 && p == m->start
3534 && !NILP (((struct buffer *) p)->name));
3535}
3536
13c844fb
GM
3537#endif /* GC_MARK_STACK || defined GC_MALLOC_CHECK */
3538
3539#if GC_MARK_STACK
3540
34400008
GM
3541#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
3542
3543/* Array of objects that are kept alive because the C stack contains
3544 a pattern that looks like a reference to them . */
3545
3546#define MAX_ZOMBIES 10
3547static Lisp_Object zombies[MAX_ZOMBIES];
3548
3549/* Number of zombie objects. */
3550
3551static int nzombies;
3552
3553/* Number of garbage collections. */
3554
3555static int ngcs;
3556
3557/* Average percentage of zombies per collection. */
3558
3559static double avg_zombies;
3560
3561/* Max. number of live and zombie objects. */
3562
3563static int max_live, max_zombies;
3564
3565/* Average number of live objects per GC. */
3566
3567static double avg_live;
3568
3569DEFUN ("gc-status", Fgc_status, Sgc_status, 0, 0, "",
7ee72033
MB
3570 doc: /* Show information about live and zombie objects. */)
3571 ()
34400008 3572{
83fc9c63
DL
3573 Lisp_Object args[8], zombie_list = Qnil;
3574 int i;
3575 for (i = 0; i < nzombies; i++)
3576 zombie_list = Fcons (zombies[i], zombie_list);
3577 args[0] = build_string ("%d GCs, avg live/zombies = %.2f/%.2f (%f%%), max %d/%d\nzombies: %S");
34400008
GM
3578 args[1] = make_number (ngcs);
3579 args[2] = make_float (avg_live);
3580 args[3] = make_float (avg_zombies);
3581 args[4] = make_float (avg_zombies / avg_live / 100);
3582 args[5] = make_number (max_live);
3583 args[6] = make_number (max_zombies);
83fc9c63
DL
3584 args[7] = zombie_list;
3585 return Fmessage (8, args);
34400008
GM
3586}
3587
3588#endif /* GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES */
3589
3590
182ff242
GM
3591/* Mark OBJ if we can prove it's a Lisp_Object. */
3592
3593static INLINE void
3594mark_maybe_object (obj)
3595 Lisp_Object obj;
3596{
3597 void *po = (void *) XPNTR (obj);
3598 struct mem_node *m = mem_find (po);
177c0ea7 3599
182ff242
GM
3600 if (m != MEM_NIL)
3601 {
3602 int mark_p = 0;
3603
3604 switch (XGCTYPE (obj))
3605 {
3606 case Lisp_String:
3607 mark_p = (live_string_p (m, po)
3608 && !STRING_MARKED_P ((struct Lisp_String *) po));
3609 break;
3610
3611 case Lisp_Cons:
3612 mark_p = (live_cons_p (m, po)
3613 && !XMARKBIT (XCONS (obj)->car));
3614 break;
3615
3616 case Lisp_Symbol:
2336fe58 3617 mark_p = (live_symbol_p (m, po) && !XSYMBOL (obj)->gcmarkbit);
182ff242
GM
3618 break;
3619
3620 case Lisp_Float:
ab6780cd 3621 mark_p = (live_float_p (m, po) && !FLOAT_MARKED_P (XFLOAT (obj)));
182ff242
GM
3622 break;
3623
3624 case Lisp_Vectorlike:
3625 /* Note: can't check GC_BUFFERP before we know it's a
3626 buffer because checking that dereferences the pointer
3627 PO which might point anywhere. */
3628 if (live_vector_p (m, po))
3ef06d12 3629 mark_p = !GC_SUBRP (obj) && !VECTOR_MARKED_P (XVECTOR (obj));
182ff242 3630 else if (live_buffer_p (m, po))
3ef06d12 3631 mark_p = GC_BUFFERP (obj) && !VECTOR_MARKED_P (XBUFFER (obj));
182ff242
GM
3632 break;
3633
3634 case Lisp_Misc:
2336fe58 3635 mark_p = (live_misc_p (m, po) && !XMARKER (obj)->gcmarkbit);
182ff242 3636 break;
6bbd7a29
GM
3637
3638 case Lisp_Int:
31d929e5 3639 case Lisp_Type_Limit:
6bbd7a29 3640 break;
182ff242
GM
3641 }
3642
3643 if (mark_p)
3644 {
3645#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
3646 if (nzombies < MAX_ZOMBIES)
83fc9c63 3647 zombies[nzombies] = obj;
182ff242
GM
3648 ++nzombies;
3649#endif
49723c04 3650 mark_object (obj);
182ff242
GM
3651 }
3652 }
3653}
ece93c02
GM
3654
3655
3656/* If P points to Lisp data, mark that as live if it isn't already
3657 marked. */
3658
3659static INLINE void
3660mark_maybe_pointer (p)
3661 void *p;
3662{
3663 struct mem_node *m;
3664
3665 /* Quickly rule out some values which can't point to Lisp data. We
3666 assume that Lisp data is aligned on even addresses. */
3667 if ((EMACS_INT) p & 1)
3668 return;
177c0ea7 3669
ece93c02
GM
3670 m = mem_find (p);
3671 if (m != MEM_NIL)
3672 {
3673 Lisp_Object obj = Qnil;
177c0ea7 3674
ece93c02
GM
3675 switch (m->type)
3676 {
3677 case MEM_TYPE_NON_LISP:
2fe50224 3678 /* Nothing to do; not a pointer to Lisp memory. */
ece93c02 3679 break;
177c0ea7 3680
ece93c02 3681 case MEM_TYPE_BUFFER:
3ef06d12 3682 if (live_buffer_p (m, p) && !VECTOR_MARKED_P((struct buffer *)p))
ece93c02
GM
3683 XSETVECTOR (obj, p);
3684 break;
177c0ea7 3685
ece93c02
GM
3686 case MEM_TYPE_CONS:
3687 if (live_cons_p (m, p)
3688 && !XMARKBIT (((struct Lisp_Cons *) p)->car))
3689 XSETCONS (obj, p);
3690 break;
177c0ea7 3691
ece93c02
GM
3692 case MEM_TYPE_STRING:
3693 if (live_string_p (m, p)
3694 && !STRING_MARKED_P ((struct Lisp_String *) p))
3695 XSETSTRING (obj, p);
3696 break;
3697
3698 case MEM_TYPE_MISC:
2336fe58
SM
3699 if (live_misc_p (m, p) && !((struct Lisp_Free *) p)->gcmarkbit)
3700 XSETMISC (obj, p);
ece93c02 3701 break;
177c0ea7 3702
ece93c02 3703 case MEM_TYPE_SYMBOL:
2336fe58 3704 if (live_symbol_p (m, p) && !((struct Lisp_Symbol *) p)->gcmarkbit)
ece93c02
GM
3705 XSETSYMBOL (obj, p);
3706 break;
177c0ea7 3707
ece93c02 3708 case MEM_TYPE_FLOAT:
ab6780cd 3709 if (live_float_p (m, p) && !FLOAT_MARKED_P (p))
ece93c02
GM
3710 XSETFLOAT (obj, p);
3711 break;
177c0ea7 3712
ece93c02
GM
3713 case MEM_TYPE_VECTOR:
3714 case MEM_TYPE_PROCESS:
3715 case MEM_TYPE_HASH_TABLE:
3716 case MEM_TYPE_FRAME:
3717 case MEM_TYPE_WINDOW:
3718 if (live_vector_p (m, p))
3719 {
3720 Lisp_Object tem;
3721 XSETVECTOR (tem, p);
3ef06d12 3722 if (!GC_SUBRP (tem) && !VECTOR_MARKED_P (XVECTOR (tem)))
ece93c02
GM
3723 obj = tem;
3724 }
3725 break;
3726
3727 default:
3728 abort ();
3729 }
3730
3731 if (!GC_NILP (obj))
49723c04 3732 mark_object (obj);
ece93c02
GM
3733 }
3734}
3735
3736
3737/* Mark Lisp objects referenced from the address range START..END. */
34400008 3738
177c0ea7 3739static void
34400008
GM
3740mark_memory (start, end)
3741 void *start, *end;
3742{
3743 Lisp_Object *p;
ece93c02 3744 void **pp;
34400008
GM
3745
3746#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
3747 nzombies = 0;
3748#endif
3749
3750 /* Make START the pointer to the start of the memory region,
3751 if it isn't already. */
3752 if (end < start)
3753 {
3754 void *tem = start;
3755 start = end;
3756 end = tem;
3757 }
ece93c02
GM
3758
3759 /* Mark Lisp_Objects. */
34400008 3760 for (p = (Lisp_Object *) start; (void *) p < end; ++p)
182ff242 3761 mark_maybe_object (*p);
ece93c02
GM
3762
3763 /* Mark Lisp data pointed to. This is necessary because, in some
3764 situations, the C compiler optimizes Lisp objects away, so that
3765 only a pointer to them remains. Example:
3766
3767 DEFUN ("testme", Ftestme, Stestme, 0, 0, 0, "")
7ee72033 3768 ()
ece93c02
GM
3769 {
3770 Lisp_Object obj = build_string ("test");
3771 struct Lisp_String *s = XSTRING (obj);
3772 Fgarbage_collect ();
3773 fprintf (stderr, "test `%s'\n", s->data);
3774 return Qnil;
3775 }
3776
3777 Here, `obj' isn't really used, and the compiler optimizes it
3778 away. The only reference to the life string is through the
3779 pointer `s'. */
177c0ea7 3780
ece93c02
GM
3781 for (pp = (void **) start; (void *) pp < end; ++pp)
3782 mark_maybe_pointer (*pp);
182ff242
GM
3783}
3784
30f637f8
DL
3785/* setjmp will work with GCC unless NON_SAVING_SETJMP is defined in
3786 the GCC system configuration. In gcc 3.2, the only systems for
3787 which this is so are i386-sco5 non-ELF, i386-sysv3 (maybe included
3788 by others?) and ns32k-pc532-min. */
182ff242
GM
3789
3790#if !defined GC_SAVE_REGISTERS_ON_STACK && !defined GC_SETJMP_WORKS
3791
3792static int setjmp_tested_p, longjmps_done;
3793
3794#define SETJMP_WILL_LIKELY_WORK "\
3795\n\
3796Emacs garbage collector has been changed to use conservative stack\n\
3797marking. Emacs has determined that the method it uses to do the\n\
3798marking will likely work on your system, but this isn't sure.\n\
3799\n\
3800If you are a system-programmer, or can get the help of a local wizard\n\
3801who is, please take a look at the function mark_stack in alloc.c, and\n\
3802verify that the methods used are appropriate for your system.\n\
3803\n\
d191623b 3804Please mail the result to <emacs-devel@gnu.org>.\n\
182ff242
GM
3805"
3806
3807#define SETJMP_WILL_NOT_WORK "\
3808\n\
3809Emacs garbage collector has been changed to use conservative stack\n\
3810marking. Emacs has determined that the default method it uses to do the\n\
3811marking will not work on your system. We will need a system-dependent\n\
3812solution for your system.\n\
3813\n\
3814Please take a look at the function mark_stack in alloc.c, and\n\
3815try to find a way to make it work on your system.\n\
30f637f8
DL
3816\n\
3817Note that you may get false negatives, depending on the compiler.\n\
3818In particular, you need to use -O with GCC for this test.\n\
3819\n\
d191623b 3820Please mail the result to <emacs-devel@gnu.org>.\n\
182ff242
GM
3821"
3822
3823
3824/* Perform a quick check if it looks like setjmp saves registers in a
3825 jmp_buf. Print a message to stderr saying so. When this test
3826 succeeds, this is _not_ a proof that setjmp is sufficient for
3827 conservative stack marking. Only the sources or a disassembly
3828 can prove that. */
3829
3830static void
3831test_setjmp ()
3832{
3833 char buf[10];
3834 register int x;
3835 jmp_buf jbuf;
3836 int result = 0;
3837
3838 /* Arrange for X to be put in a register. */
3839 sprintf (buf, "1");
3840 x = strlen (buf);
3841 x = 2 * x - 1;
3842
3843 setjmp (jbuf);
3844 if (longjmps_done == 1)
34400008 3845 {
182ff242 3846 /* Came here after the longjmp at the end of the function.
34400008 3847
182ff242
GM
3848 If x == 1, the longjmp has restored the register to its
3849 value before the setjmp, and we can hope that setjmp
3850 saves all such registers in the jmp_buf, although that
3851 isn't sure.
34400008 3852
182ff242
GM
3853 For other values of X, either something really strange is
3854 taking place, or the setjmp just didn't save the register. */
3855
3856 if (x == 1)
3857 fprintf (stderr, SETJMP_WILL_LIKELY_WORK);
3858 else
3859 {
3860 fprintf (stderr, SETJMP_WILL_NOT_WORK);
3861 exit (1);
34400008
GM
3862 }
3863 }
182ff242
GM
3864
3865 ++longjmps_done;
3866 x = 2;
3867 if (longjmps_done == 1)
3868 longjmp (jbuf, 1);
34400008
GM
3869}
3870
182ff242
GM
3871#endif /* not GC_SAVE_REGISTERS_ON_STACK && not GC_SETJMP_WORKS */
3872
34400008
GM
3873
3874#if GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS
3875
3876/* Abort if anything GCPRO'd doesn't survive the GC. */
3877
3878static void
3879check_gcpros ()
3880{
3881 struct gcpro *p;
3882 int i;
3883
3884 for (p = gcprolist; p; p = p->next)
3885 for (i = 0; i < p->nvars; ++i)
3886 if (!survives_gc_p (p->var[i]))
92cc28b2
SM
3887 /* FIXME: It's not necessarily a bug. It might just be that the
3888 GCPRO is unnecessary or should release the object sooner. */
34400008
GM
3889 abort ();
3890}
3891
3892#elif GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
3893
3894static void
3895dump_zombies ()
3896{
3897 int i;
3898
3899 fprintf (stderr, "\nZombies kept alive = %d:\n", nzombies);
3900 for (i = 0; i < min (MAX_ZOMBIES, nzombies); ++i)
3901 {
3902 fprintf (stderr, " %d = ", i);
3903 debug_print (zombies[i]);
3904 }
3905}
3906
3907#endif /* GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES */
3908
3909
182ff242
GM
3910/* Mark live Lisp objects on the C stack.
3911
3912 There are several system-dependent problems to consider when
3913 porting this to new architectures:
3914
3915 Processor Registers
3916
3917 We have to mark Lisp objects in CPU registers that can hold local
3918 variables or are used to pass parameters.
3919
3920 If GC_SAVE_REGISTERS_ON_STACK is defined, it should expand to
3921 something that either saves relevant registers on the stack, or
3922 calls mark_maybe_object passing it each register's contents.
3923
3924 If GC_SAVE_REGISTERS_ON_STACK is not defined, the current
3925 implementation assumes that calling setjmp saves registers we need
3926 to see in a jmp_buf which itself lies on the stack. This doesn't
3927 have to be true! It must be verified for each system, possibly
3928 by taking a look at the source code of setjmp.
3929
3930 Stack Layout
3931
3932 Architectures differ in the way their processor stack is organized.
3933 For example, the stack might look like this
3934
3935 +----------------+
3936 | Lisp_Object | size = 4
3937 +----------------+
3938 | something else | size = 2
3939 +----------------+
3940 | Lisp_Object | size = 4
3941 +----------------+
3942 | ... |
3943
3944 In such a case, not every Lisp_Object will be aligned equally. To
3945 find all Lisp_Object on the stack it won't be sufficient to walk
3946 the stack in steps of 4 bytes. Instead, two passes will be
3947 necessary, one starting at the start of the stack, and a second
3948 pass starting at the start of the stack + 2. Likewise, if the
3949 minimal alignment of Lisp_Objects on the stack is 1, four passes
3950 would be necessary, each one starting with one byte more offset
3951 from the stack start.
3952
3953 The current code assumes by default that Lisp_Objects are aligned
3954 equally on the stack. */
34400008
GM
3955
3956static void
3957mark_stack ()
3958{
630909a5 3959 int i;
34400008 3960 jmp_buf j;
6bbd7a29 3961 volatile int stack_grows_down_p = (char *) &j > (char *) stack_base;
34400008
GM
3962 void *end;
3963
3964 /* This trick flushes the register windows so that all the state of
3965 the process is contained in the stack. */
ab6780cd 3966 /* Fixme: Code in the Boehm GC suggests flushing (with `flushrs') is
422eec7e
DL
3967 needed on ia64 too. See mach_dep.c, where it also says inline
3968 assembler doesn't work with relevant proprietary compilers. */
34400008
GM
3969#ifdef sparc
3970 asm ("ta 3");
3971#endif
177c0ea7 3972
34400008
GM
3973 /* Save registers that we need to see on the stack. We need to see
3974 registers used to hold register variables and registers used to
3975 pass parameters. */
3976#ifdef GC_SAVE_REGISTERS_ON_STACK
3977 GC_SAVE_REGISTERS_ON_STACK (end);
182ff242 3978#else /* not GC_SAVE_REGISTERS_ON_STACK */
177c0ea7 3979
182ff242
GM
3980#ifndef GC_SETJMP_WORKS /* If it hasn't been checked yet that
3981 setjmp will definitely work, test it
3982 and print a message with the result
3983 of the test. */
3984 if (!setjmp_tested_p)
3985 {
3986 setjmp_tested_p = 1;
3987 test_setjmp ();
3988 }
3989#endif /* GC_SETJMP_WORKS */
177c0ea7 3990
34400008
GM
3991 setjmp (j);
3992 end = stack_grows_down_p ? (char *) &j + sizeof j : (char *) &j;
182ff242 3993#endif /* not GC_SAVE_REGISTERS_ON_STACK */
34400008
GM
3994
3995 /* This assumes that the stack is a contiguous region in memory. If
182ff242
GM
3996 that's not the case, something has to be done here to iterate
3997 over the stack segments. */
630909a5 3998#ifndef GC_LISP_OBJECT_ALIGNMENT
422eec7e
DL
3999#ifdef __GNUC__
4000#define GC_LISP_OBJECT_ALIGNMENT __alignof__ (Lisp_Object)
4001#else
630909a5 4002#define GC_LISP_OBJECT_ALIGNMENT sizeof (Lisp_Object)
422eec7e 4003#endif
182ff242 4004#endif
24452cd5 4005 for (i = 0; i < sizeof (Lisp_Object); i += GC_LISP_OBJECT_ALIGNMENT)
630909a5 4006 mark_memory ((char *) stack_base + i, end);
34400008
GM
4007
4008#if GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS
4009 check_gcpros ();
4010#endif
4011}
4012
4013
4014#endif /* GC_MARK_STACK != 0 */
4015
4016
4017\f
2e471eb5
GM
4018/***********************************************************************
4019 Pure Storage Management
4020 ***********************************************************************/
4021
1f0b3fd2
GM
4022/* Allocate room for SIZE bytes from pure Lisp storage and return a
4023 pointer to it. TYPE is the Lisp type for which the memory is
4024 allocated. TYPE < 0 means it's not used for a Lisp object.
4025
4026 If store_pure_type_info is set and TYPE is >= 0, the type of
4027 the allocated object is recorded in pure_types. */
4028
4029static POINTER_TYPE *
4030pure_alloc (size, type)
4031 size_t size;
4032 int type;
4033{
1f0b3fd2 4034 POINTER_TYPE *result;
44117420 4035 size_t alignment = sizeof (EMACS_INT);
1f0b3fd2
GM
4036
4037 /* Give Lisp_Floats an extra alignment. */
4038 if (type == Lisp_Float)
4039 {
1f0b3fd2
GM
4040#if defined __GNUC__ && __GNUC__ >= 2
4041 alignment = __alignof (struct Lisp_Float);
4042#else
4043 alignment = sizeof (struct Lisp_Float);
4044#endif
9e713715 4045 }
1f0b3fd2 4046
44117420 4047 again:
ab6780cd 4048 result = ALIGN (purebeg + pure_bytes_used, alignment);
44117420
KS
4049 pure_bytes_used = ((char *)result - (char *)purebeg) + size;
4050
4051 if (pure_bytes_used <= pure_size)
4052 return result;
4053
4054 /* Don't allocate a large amount here,
4055 because it might get mmap'd and then its address
4056 might not be usable. */
4057 purebeg = (char *) xmalloc (10000);
4058 pure_size = 10000;
4059 pure_bytes_used_before_overflow += pure_bytes_used - size;
4060 pure_bytes_used = 0;
4061 goto again;
1f0b3fd2
GM
4062}
4063
4064
852f8cdc 4065/* Print a warning if PURESIZE is too small. */
9e713715
GM
4066
4067void
4068check_pure_size ()
4069{
4070 if (pure_bytes_used_before_overflow)
a4d35afd
SM
4071 message ("Pure Lisp storage overflow (approx. %d bytes needed)",
4072 (int) (pure_bytes_used + pure_bytes_used_before_overflow));
9e713715
GM
4073}
4074
4075
2e471eb5
GM
4076/* Return a string allocated in pure space. DATA is a buffer holding
4077 NCHARS characters, and NBYTES bytes of string data. MULTIBYTE
4078 non-zero means make the result string multibyte.
1a4f1e2c 4079
2e471eb5
GM
4080 Must get an error if pure storage is full, since if it cannot hold
4081 a large string it may be able to hold conses that point to that
4082 string; then the string is not protected from gc. */
7146af97
JB
4083
4084Lisp_Object
2e471eb5 4085make_pure_string (data, nchars, nbytes, multibyte)
7146af97 4086 char *data;
2e471eb5 4087 int nchars, nbytes;
c0696668 4088 int multibyte;
7146af97 4089{
2e471eb5
GM
4090 Lisp_Object string;
4091 struct Lisp_String *s;
c0696668 4092
1f0b3fd2
GM
4093 s = (struct Lisp_String *) pure_alloc (sizeof *s, Lisp_String);
4094 s->data = (unsigned char *) pure_alloc (nbytes + 1, -1);
2e471eb5
GM
4095 s->size = nchars;
4096 s->size_byte = multibyte ? nbytes : -1;
4097 bcopy (data, s->data, nbytes);
4098 s->data[nbytes] = '\0';
4099 s->intervals = NULL_INTERVAL;
2e471eb5
GM
4100 XSETSTRING (string, s);
4101 return string;
7146af97
JB
4102}
4103
2e471eb5 4104
34400008
GM
4105/* Return a cons allocated from pure space. Give it pure copies
4106 of CAR as car and CDR as cdr. */
4107
7146af97
JB
4108Lisp_Object
4109pure_cons (car, cdr)
4110 Lisp_Object car, cdr;
4111{
4112 register Lisp_Object new;
1f0b3fd2 4113 struct Lisp_Cons *p;
7146af97 4114
1f0b3fd2
GM
4115 p = (struct Lisp_Cons *) pure_alloc (sizeof *p, Lisp_Cons);
4116 XSETCONS (new, p);
f3fbd155
KR
4117 XSETCAR (new, Fpurecopy (car));
4118 XSETCDR (new, Fpurecopy (cdr));
7146af97
JB
4119 return new;
4120}
4121
7146af97 4122
34400008
GM
4123/* Value is a float object with value NUM allocated from pure space. */
4124
7146af97
JB
4125Lisp_Object
4126make_pure_float (num)
4127 double num;
4128{
4129 register Lisp_Object new;
1f0b3fd2 4130 struct Lisp_Float *p;
7146af97 4131
1f0b3fd2
GM
4132 p = (struct Lisp_Float *) pure_alloc (sizeof *p, Lisp_Float);
4133 XSETFLOAT (new, p);
70949dac 4134 XFLOAT_DATA (new) = num;
7146af97
JB
4135 return new;
4136}
4137
34400008
GM
4138
4139/* Return a vector with room for LEN Lisp_Objects allocated from
4140 pure space. */
4141
7146af97
JB
4142Lisp_Object
4143make_pure_vector (len)
42607681 4144 EMACS_INT len;
7146af97 4145{
1f0b3fd2
GM
4146 Lisp_Object new;
4147 struct Lisp_Vector *p;
4148 size_t size = sizeof *p + (len - 1) * sizeof (Lisp_Object);
7146af97 4149
1f0b3fd2
GM
4150 p = (struct Lisp_Vector *) pure_alloc (size, Lisp_Vectorlike);
4151 XSETVECTOR (new, p);
7146af97
JB
4152 XVECTOR (new)->size = len;
4153 return new;
4154}
4155
34400008 4156
7146af97 4157DEFUN ("purecopy", Fpurecopy, Spurecopy, 1, 1, 0,
7ee72033 4158 doc: /* Make a copy of OBJECT in pure storage.
228299fa 4159Recursively copies contents of vectors and cons cells.
7ee72033
MB
4160Does not copy symbols. Copies strings without text properties. */)
4161 (obj)
7146af97
JB
4162 register Lisp_Object obj;
4163{
265a9e55 4164 if (NILP (Vpurify_flag))
7146af97
JB
4165 return obj;
4166
1f0b3fd2 4167 if (PURE_POINTER_P (XPNTR (obj)))
7146af97
JB
4168 return obj;
4169
d6dd74bb 4170 if (CONSP (obj))
70949dac 4171 return pure_cons (XCAR (obj), XCDR (obj));
d6dd74bb 4172 else if (FLOATP (obj))
70949dac 4173 return make_pure_float (XFLOAT_DATA (obj));
d6dd74bb 4174 else if (STRINGP (obj))
d5db4077
KR
4175 return make_pure_string (SDATA (obj), SCHARS (obj),
4176 SBYTES (obj),
c0696668 4177 STRING_MULTIBYTE (obj));
d6dd74bb
KH
4178 else if (COMPILEDP (obj) || VECTORP (obj))
4179 {
4180 register struct Lisp_Vector *vec;
4181 register int i, size;
4182
4183 size = XVECTOR (obj)->size;
7d535c68
KH
4184 if (size & PSEUDOVECTOR_FLAG)
4185 size &= PSEUDOVECTOR_SIZE_MASK;
01a4d290 4186 vec = XVECTOR (make_pure_vector ((EMACS_INT) size));
d6dd74bb
KH
4187 for (i = 0; i < size; i++)
4188 vec->contents[i] = Fpurecopy (XVECTOR (obj)->contents[i]);
4189 if (COMPILEDP (obj))
4190 XSETCOMPILED (obj, vec);
4191 else
4192 XSETVECTOR (obj, vec);
7146af97
JB
4193 return obj;
4194 }
d6dd74bb
KH
4195 else if (MARKERP (obj))
4196 error ("Attempt to copy a marker to pure storage");
6bbd7a29
GM
4197
4198 return obj;
7146af97 4199}
2e471eb5 4200
34400008 4201
7146af97 4202\f
34400008
GM
4203/***********************************************************************
4204 Protection from GC
4205 ***********************************************************************/
4206
2e471eb5
GM
4207/* Put an entry in staticvec, pointing at the variable with address
4208 VARADDRESS. */
7146af97
JB
4209
4210void
4211staticpro (varaddress)
4212 Lisp_Object *varaddress;
4213{
4214 staticvec[staticidx++] = varaddress;
4215 if (staticidx >= NSTATICS)
4216 abort ();
4217}
4218
4219struct catchtag
2e471eb5 4220{
7146af97
JB
4221 Lisp_Object tag;
4222 Lisp_Object val;
4223 struct catchtag *next;
2e471eb5 4224};
7146af97
JB
4225
4226struct backtrace
2e471eb5
GM
4227{
4228 struct backtrace *next;
4229 Lisp_Object *function;
4230 Lisp_Object *args; /* Points to vector of args. */
4231 int nargs; /* Length of vector. */
4232 /* If nargs is UNEVALLED, args points to slot holding list of
4233 unevalled args. */
4234 char evalargs;
4235};
4236
34400008 4237
7146af97 4238\f
34400008
GM
4239/***********************************************************************
4240 Protection from GC
4241 ***********************************************************************/
1a4f1e2c 4242
e8197642
RS
4243/* Temporarily prevent garbage collection. */
4244
4245int
4246inhibit_garbage_collection ()
4247{
aed13378 4248 int count = SPECPDL_INDEX ();
54defd0d
AS
4249 int nbits = min (VALBITS, BITS_PER_INT);
4250
4251 specbind (Qgc_cons_threshold, make_number (((EMACS_INT) 1 << (nbits - 1)) - 1));
e8197642
RS
4252 return count;
4253}
4254
34400008 4255
7146af97 4256DEFUN ("garbage-collect", Fgarbage_collect, Sgarbage_collect, 0, 0, "",
7ee72033 4257 doc: /* Reclaim storage for Lisp objects no longer needed.
228299fa
GM
4258Returns info on amount of space in use:
4259 ((USED-CONSES . FREE-CONSES) (USED-SYMS . FREE-SYMS)
4260 (USED-MARKERS . FREE-MARKERS) USED-STRING-CHARS USED-VECTOR-SLOTS
4261 (USED-FLOATS . FREE-FLOATS) (USED-INTERVALS . FREE-INTERVALS)
4262 (USED-STRINGS . FREE-STRINGS))
4263Garbage collection happens automatically if you cons more than
7ee72033
MB
4264`gc-cons-threshold' bytes of Lisp data since previous garbage collection. */)
4265 ()
7146af97 4266{
7146af97
JB
4267 register struct specbinding *bind;
4268 struct catchtag *catch;
4269 struct handler *handler;
4270 register struct backtrace *backlist;
7146af97
JB
4271 char stack_top_variable;
4272 register int i;
6efc7df7 4273 int message_p;
96117bc7 4274 Lisp_Object total[8];
331379bf 4275 int count = SPECPDL_INDEX ();
2c5bd608
DL
4276 EMACS_TIME t1, t2, t3;
4277
3de0effb
RS
4278 if (abort_on_gc)
4279 abort ();
4280
2c5bd608 4281 EMACS_GET_TIME (t1);
7146af97 4282
9e713715
GM
4283 /* Can't GC if pure storage overflowed because we can't determine
4284 if something is a pure object or not. */
4285 if (pure_bytes_used_before_overflow)
4286 return Qnil;
4287
58595309
KH
4288 /* In case user calls debug_print during GC,
4289 don't let that cause a recursive GC. */
4290 consing_since_gc = 0;
4291
6efc7df7
GM
4292 /* Save what's currently displayed in the echo area. */
4293 message_p = push_message ();
c55b0da6 4294 record_unwind_protect (pop_message_unwind, Qnil);
41c28a37 4295
7146af97
JB
4296 /* Save a copy of the contents of the stack, for debugging. */
4297#if MAX_SAVE_STACK > 0
265a9e55 4298 if (NILP (Vpurify_flag))
7146af97
JB
4299 {
4300 i = &stack_top_variable - stack_bottom;
4301 if (i < 0) i = -i;
4302 if (i < MAX_SAVE_STACK)
4303 {
4304 if (stack_copy == 0)
9ac0d9e0 4305 stack_copy = (char *) xmalloc (stack_copy_size = i);
7146af97 4306 else if (stack_copy_size < i)
9ac0d9e0 4307 stack_copy = (char *) xrealloc (stack_copy, (stack_copy_size = i));
7146af97
JB
4308 if (stack_copy)
4309 {
42607681 4310 if ((EMACS_INT) (&stack_top_variable - stack_bottom) > 0)
7146af97
JB
4311 bcopy (stack_bottom, stack_copy, i);
4312 else
4313 bcopy (&stack_top_variable, stack_copy, i);
4314 }
4315 }
4316 }
4317#endif /* MAX_SAVE_STACK > 0 */
4318
299585ee 4319 if (garbage_collection_messages)
691c4285 4320 message1_nolog ("Garbage collecting...");
7146af97 4321
6e0fca1d
RS
4322 BLOCK_INPUT;
4323
eec7b73d
RS
4324 shrink_regexp_cache ();
4325
4929a878 4326 /* Don't keep undo information around forever. */
7146af97
JB
4327 {
4328 register struct buffer *nextb = all_buffers;
4329
4330 while (nextb)
4331 {
ffd56f97
JB
4332 /* If a buffer's undo list is Qt, that means that undo is
4333 turned off in that buffer. Calling truncate_undo_list on
4334 Qt tends to return NULL, which effectively turns undo back on.
4335 So don't call truncate_undo_list if undo_list is Qt. */
4336 if (! EQ (nextb->undo_list, Qt))
177c0ea7 4337 nextb->undo_list
502b9b64
JB
4338 = truncate_undo_list (nextb->undo_list, undo_limit,
4339 undo_strong_limit);
e0fead5d
AI
4340
4341 /* Shrink buffer gaps, but skip indirect and dead buffers. */
4342 if (nextb->base_buffer == 0 && !NILP (nextb->name))
4343 {
4344 /* If a buffer's gap size is more than 10% of the buffer
4345 size, or larger than 2000 bytes, then shrink it
4346 accordingly. Keep a minimum size of 20 bytes. */
4347 int size = min (2000, max (20, (nextb->text->z_byte / 10)));
4348
4349 if (nextb->text->gap_size > size)
4350 {
4351 struct buffer *save_current = current_buffer;
4352 current_buffer = nextb;
4353 make_gap (-(nextb->text->gap_size - size));
4354 current_buffer = save_current;
4355 }
4356 }
4357
7146af97
JB
4358 nextb = nextb->next;
4359 }
4360 }
4361
4362 gc_in_progress = 1;
4363
c23baf9f 4364 /* clear_marks (); */
7146af97 4365
7146af97
JB
4366 /* Mark all the special slots that serve as the roots of accessibility.
4367
4368 Usually the special slots to mark are contained in particular structures.
4369 Then we know no slot is marked twice because the structures don't overlap.
4370 In some cases, the structures point to the slots to be marked.
4371 For these, we use MARKBIT to avoid double marking of the slot. */
4372
4373 for (i = 0; i < staticidx; i++)
49723c04 4374 mark_object (*staticvec[i]);
34400008
GM
4375
4376#if (GC_MARK_STACK == GC_MAKE_GCPROS_NOOPS \
4377 || GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS)
4378 mark_stack ();
4379#else
acf5f7d3
SM
4380 {
4381 register struct gcpro *tail;
4382 for (tail = gcprolist; tail; tail = tail->next)
4383 for (i = 0; i < tail->nvars; i++)
4384 if (!XMARKBIT (tail->var[i]))
4385 {
4386 /* Explicit casting prevents compiler warning about
4387 discarding the `volatile' qualifier. */
49723c04 4388 mark_object (tail->var[i]);
acf5f7d3
SM
4389 XMARK (tail->var[i]);
4390 }
4391 }
34400008 4392#endif
177c0ea7 4393
630686c8 4394 mark_byte_stack ();
7146af97
JB
4395 for (bind = specpdl; bind != specpdl_ptr; bind++)
4396 {
fa42e88f 4397 /* These casts avoid a warning for discarding `volatile'. */
49723c04
SM
4398 mark_object (bind->symbol);
4399 mark_object (bind->old_value);
7146af97
JB
4400 }
4401 for (catch = catchlist; catch; catch = catch->next)
4402 {
49723c04
SM
4403 mark_object (catch->tag);
4404 mark_object (catch->val);
177c0ea7 4405 }
7146af97
JB
4406 for (handler = handlerlist; handler; handler = handler->next)
4407 {
49723c04
SM
4408 mark_object (handler->handler);
4409 mark_object (handler->var);
177c0ea7 4410 }
7146af97
JB
4411 for (backlist = backtrace_list; backlist; backlist = backlist->next)
4412 {
4413 if (!XMARKBIT (*backlist->function))
4414 {
49723c04 4415 mark_object (*backlist->function);
7146af97
JB
4416 XMARK (*backlist->function);
4417 }
4418 if (backlist->nargs == UNEVALLED || backlist->nargs == MANY)
4419 i = 0;
4420 else
4421 i = backlist->nargs - 1;
4422 for (; i >= 0; i--)
4423 if (!XMARKBIT (backlist->args[i]))
4424 {
49723c04 4425 mark_object (backlist->args[i]);
7146af97
JB
4426 XMARK (backlist->args[i]);
4427 }
177c0ea7 4428 }
b875d3f7 4429 mark_kboards ();
7146af97 4430
4c315bda
RS
4431 /* Look thru every buffer's undo list
4432 for elements that update markers that were not marked,
4433 and delete them. */
4434 {
4435 register struct buffer *nextb = all_buffers;
4436
4437 while (nextb)
4438 {
4439 /* If a buffer's undo list is Qt, that means that undo is
4440 turned off in that buffer. Calling truncate_undo_list on
4441 Qt tends to return NULL, which effectively turns undo back on.
4442 So don't call truncate_undo_list if undo_list is Qt. */
4443 if (! EQ (nextb->undo_list, Qt))
4444 {
4445 Lisp_Object tail, prev;
4446 tail = nextb->undo_list;
4447 prev = Qnil;
4448 while (CONSP (tail))
4449 {
70949dac
KR
4450 if (GC_CONSP (XCAR (tail))
4451 && GC_MARKERP (XCAR (XCAR (tail)))
2336fe58 4452 && !XMARKER (XCAR (XCAR (tail)))->gcmarkbit)
4c315bda
RS
4453 {
4454 if (NILP (prev))
70949dac 4455 nextb->undo_list = tail = XCDR (tail);
4c315bda 4456 else
f3fbd155
KR
4457 {
4458 tail = XCDR (tail);
4459 XSETCDR (prev, tail);
4460 }
4c315bda
RS
4461 }
4462 else
4463 {
4464 prev = tail;
70949dac 4465 tail = XCDR (tail);
4c315bda
RS
4466 }
4467 }
4468 }
4469
4470 nextb = nextb->next;
4471 }
4472 }
4473
34400008
GM
4474#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
4475 mark_stack ();
4476#endif
4477
488dd4c4
JD
4478#ifdef USE_GTK
4479 {
4480 extern void xg_mark_data ();
4481 xg_mark_data ();
4482 }
4483#endif
4484
7146af97
JB
4485 gc_sweep ();
4486
4487 /* Clear the mark bits that we set in certain root slots. */
4488
34400008
GM
4489#if (GC_MARK_STACK == GC_USE_GCPROS_AS_BEFORE \
4490 || GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES)
d22be14d
AS
4491 {
4492 register struct gcpro *tail;
4493
4494 for (tail = gcprolist; tail; tail = tail->next)
4495 for (i = 0; i < tail->nvars; i++)
4496 XUNMARK (tail->var[i]);
4497 }
34400008 4498#endif
177c0ea7 4499
033a5fa3 4500 unmark_byte_stack ();
7146af97
JB
4501 for (backlist = backtrace_list; backlist; backlist = backlist->next)
4502 {
4503 XUNMARK (*backlist->function);
4504 if (backlist->nargs == UNEVALLED || backlist->nargs == MANY)
4505 i = 0;
4506 else
4507 i = backlist->nargs - 1;
4508 for (; i >= 0; i--)
4509 XUNMARK (backlist->args[i]);
177c0ea7 4510 }
3ef06d12
SM
4511 VECTOR_UNMARK (&buffer_defaults);
4512 VECTOR_UNMARK (&buffer_local_symbols);
7146af97 4513
34400008
GM
4514#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES && 0
4515 dump_zombies ();
4516#endif
4517
6e0fca1d
RS
4518 UNBLOCK_INPUT;
4519
c23baf9f 4520 /* clear_marks (); */
7146af97
JB
4521 gc_in_progress = 0;
4522
4523 consing_since_gc = 0;
4524 if (gc_cons_threshold < 10000)
4525 gc_cons_threshold = 10000;
4526
299585ee
RS
4527 if (garbage_collection_messages)
4528 {
6efc7df7
GM
4529 if (message_p || minibuf_level > 0)
4530 restore_message ();
299585ee
RS
4531 else
4532 message1_nolog ("Garbage collecting...done");
4533 }
7146af97 4534
98edb5ff 4535 unbind_to (count, Qnil);
2e471eb5
GM
4536
4537 total[0] = Fcons (make_number (total_conses),
4538 make_number (total_free_conses));
4539 total[1] = Fcons (make_number (total_symbols),
4540 make_number (total_free_symbols));
4541 total[2] = Fcons (make_number (total_markers),
4542 make_number (total_free_markers));
96117bc7
GM
4543 total[3] = make_number (total_string_size);
4544 total[4] = make_number (total_vector_size);
4545 total[5] = Fcons (make_number (total_floats),
2e471eb5 4546 make_number (total_free_floats));
96117bc7 4547 total[6] = Fcons (make_number (total_intervals),
2e471eb5 4548 make_number (total_free_intervals));
96117bc7 4549 total[7] = Fcons (make_number (total_strings),
2e471eb5
GM
4550 make_number (total_free_strings));
4551
34400008 4552#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
7146af97 4553 {
34400008
GM
4554 /* Compute average percentage of zombies. */
4555 double nlive = 0;
177c0ea7 4556
34400008 4557 for (i = 0; i < 7; ++i)
83fc9c63
DL
4558 if (CONSP (total[i]))
4559 nlive += XFASTINT (XCAR (total[i]));
34400008
GM
4560
4561 avg_live = (avg_live * ngcs + nlive) / (ngcs + 1);
4562 max_live = max (nlive, max_live);
4563 avg_zombies = (avg_zombies * ngcs + nzombies) / (ngcs + 1);
4564 max_zombies = max (nzombies, max_zombies);
4565 ++ngcs;
4566 }
4567#endif
7146af97 4568
9e713715
GM
4569 if (!NILP (Vpost_gc_hook))
4570 {
4571 int count = inhibit_garbage_collection ();
4572 safe_run_hooks (Qpost_gc_hook);
4573 unbind_to (count, Qnil);
4574 }
2c5bd608
DL
4575
4576 /* Accumulate statistics. */
4577 EMACS_GET_TIME (t2);
4578 EMACS_SUB_TIME (t3, t2, t1);
4579 if (FLOATP (Vgc_elapsed))
69ab9f85
SM
4580 Vgc_elapsed = make_float (XFLOAT_DATA (Vgc_elapsed) +
4581 EMACS_SECS (t3) +
4582 EMACS_USECS (t3) * 1.0e-6);
2c5bd608
DL
4583 gcs_done++;
4584
96117bc7 4585 return Flist (sizeof total / sizeof *total, total);
7146af97 4586}
34400008 4587
41c28a37 4588
3770920e
GM
4589/* Mark Lisp objects in glyph matrix MATRIX. Currently the
4590 only interesting objects referenced from glyphs are strings. */
41c28a37
GM
4591
4592static void
4593mark_glyph_matrix (matrix)
4594 struct glyph_matrix *matrix;
4595{
4596 struct glyph_row *row = matrix->rows;
4597 struct glyph_row *end = row + matrix->nrows;
4598
2e471eb5
GM
4599 for (; row < end; ++row)
4600 if (row->enabled_p)
4601 {
4602 int area;
4603 for (area = LEFT_MARGIN_AREA; area < LAST_AREA; ++area)
4604 {
4605 struct glyph *glyph = row->glyphs[area];
4606 struct glyph *end_glyph = glyph + row->used[area];
177c0ea7 4607
2e471eb5
GM
4608 for (; glyph < end_glyph; ++glyph)
4609 if (GC_STRINGP (glyph->object)
4610 && !STRING_MARKED_P (XSTRING (glyph->object)))
49723c04 4611 mark_object (glyph->object);
2e471eb5
GM
4612 }
4613 }
41c28a37
GM
4614}
4615
34400008 4616
41c28a37
GM
4617/* Mark Lisp faces in the face cache C. */
4618
4619static void
4620mark_face_cache (c)
4621 struct face_cache *c;
4622{
4623 if (c)
4624 {
4625 int i, j;
4626 for (i = 0; i < c->used; ++i)
4627 {
4628 struct face *face = FACE_FROM_ID (c->f, i);
4629
4630 if (face)
4631 {
4632 for (j = 0; j < LFACE_VECTOR_SIZE; ++j)
49723c04 4633 mark_object (face->lface[j]);
41c28a37
GM
4634 }
4635 }
4636 }
4637}
4638
4639
4640#ifdef HAVE_WINDOW_SYSTEM
4641
4642/* Mark Lisp objects in image IMG. */
4643
4644static void
4645mark_image (img)
4646 struct image *img;
4647{
49723c04 4648 mark_object (img->spec);
177c0ea7 4649
3e60b029 4650 if (!NILP (img->data.lisp_val))
49723c04 4651 mark_object (img->data.lisp_val);
41c28a37
GM
4652}
4653
4654
4655/* Mark Lisp objects in image cache of frame F. It's done this way so
4656 that we don't have to include xterm.h here. */
4657
4658static void
4659mark_image_cache (f)
4660 struct frame *f;
4661{
4662 forall_images_in_image_cache (f, mark_image);
4663}
4664
4665#endif /* HAVE_X_WINDOWS */
4666
4667
7146af97 4668\f
1a4f1e2c 4669/* Mark reference to a Lisp_Object.
2e471eb5
GM
4670 If the object referred to has not been seen yet, recursively mark
4671 all the references contained in it. */
7146af97 4672
785cd37f 4673#define LAST_MARKED_SIZE 500
49723c04 4674Lisp_Object last_marked[LAST_MARKED_SIZE];
785cd37f
RS
4675int last_marked_index;
4676
1342fc6f
RS
4677/* For debugging--call abort when we cdr down this many
4678 links of a list, in mark_object. In debugging,
4679 the call to abort will hit a breakpoint.
4680 Normally this is zero and the check never goes off. */
4681int mark_object_loop_halt;
4682
41c28a37 4683void
49723c04
SM
4684mark_object (arg)
4685 Lisp_Object arg;
7146af97 4686{
49723c04 4687 register Lisp_Object obj = arg;
4f5c1376
GM
4688#ifdef GC_CHECK_MARKED_OBJECTS
4689 void *po;
4690 struct mem_node *m;
4691#endif
1342fc6f 4692 int cdr_count = 0;
7146af97 4693
9149e743 4694 loop:
7146af97
JB
4695 XUNMARK (obj);
4696
1f0b3fd2 4697 if (PURE_POINTER_P (XPNTR (obj)))
7146af97
JB
4698 return;
4699
49723c04 4700 last_marked[last_marked_index++] = obj;
785cd37f
RS
4701 if (last_marked_index == LAST_MARKED_SIZE)
4702 last_marked_index = 0;
4703
4f5c1376
GM
4704 /* Perform some sanity checks on the objects marked here. Abort if
4705 we encounter an object we know is bogus. This increases GC time
4706 by ~80%, and requires compilation with GC_MARK_STACK != 0. */
4707#ifdef GC_CHECK_MARKED_OBJECTS
4708
4709 po = (void *) XPNTR (obj);
4710
4711 /* Check that the object pointed to by PO is known to be a Lisp
4712 structure allocated from the heap. */
4713#define CHECK_ALLOCATED() \
4714 do { \
4715 m = mem_find (po); \
4716 if (m == MEM_NIL) \
4717 abort (); \
4718 } while (0)
4719
4720 /* Check that the object pointed to by PO is live, using predicate
4721 function LIVEP. */
4722#define CHECK_LIVE(LIVEP) \
4723 do { \
4724 if (!LIVEP (m, po)) \
4725 abort (); \
4726 } while (0)
4727
4728 /* Check both of the above conditions. */
4729#define CHECK_ALLOCATED_AND_LIVE(LIVEP) \
4730 do { \
4731 CHECK_ALLOCATED (); \
4732 CHECK_LIVE (LIVEP); \
4733 } while (0) \
177c0ea7 4734
4f5c1376 4735#else /* not GC_CHECK_MARKED_OBJECTS */
177c0ea7 4736
4f5c1376
GM
4737#define CHECK_ALLOCATED() (void) 0
4738#define CHECK_LIVE(LIVEP) (void) 0
4739#define CHECK_ALLOCATED_AND_LIVE(LIVEP) (void) 0
177c0ea7 4740
4f5c1376
GM
4741#endif /* not GC_CHECK_MARKED_OBJECTS */
4742
0220c518 4743 switch (SWITCH_ENUM_CAST (XGCTYPE (obj)))
7146af97
JB
4744 {
4745 case Lisp_String:
4746 {
4747 register struct Lisp_String *ptr = XSTRING (obj);
4f5c1376 4748 CHECK_ALLOCATED_AND_LIVE (live_string_p);
d5e35230 4749 MARK_INTERVAL_TREE (ptr->intervals);
2e471eb5 4750 MARK_STRING (ptr);
361b097f 4751#ifdef GC_CHECK_STRING_BYTES
676a7251
GM
4752 /* Check that the string size recorded in the string is the
4753 same as the one recorded in the sdata structure. */
4754 CHECK_STRING_BYTES (ptr);
361b097f 4755#endif /* GC_CHECK_STRING_BYTES */
7146af97
JB
4756 }
4757 break;
4758
76437631 4759 case Lisp_Vectorlike:
4f5c1376
GM
4760#ifdef GC_CHECK_MARKED_OBJECTS
4761 m = mem_find (po);
4762 if (m == MEM_NIL && !GC_SUBRP (obj)
4763 && po != &buffer_defaults
4764 && po != &buffer_local_symbols)
4765 abort ();
4766#endif /* GC_CHECK_MARKED_OBJECTS */
177c0ea7 4767
30e3190a 4768 if (GC_BUFFERP (obj))
6b552283 4769 {
3ef06d12 4770 if (!VECTOR_MARKED_P (XBUFFER (obj)))
4f5c1376
GM
4771 {
4772#ifdef GC_CHECK_MARKED_OBJECTS
4773 if (po != &buffer_defaults && po != &buffer_local_symbols)
4774 {
4775 struct buffer *b;
4776 for (b = all_buffers; b && b != po; b = b->next)
4777 ;
4778 if (b == NULL)
4779 abort ();
4780 }
4781#endif /* GC_CHECK_MARKED_OBJECTS */
4782 mark_buffer (obj);
4783 }
6b552283 4784 }
30e3190a 4785 else if (GC_SUBRP (obj))
169ee243
RS
4786 break;
4787 else if (GC_COMPILEDP (obj))
2e471eb5
GM
4788 /* We could treat this just like a vector, but it is better to
4789 save the COMPILED_CONSTANTS element for last and avoid
4790 recursion there. */
169ee243
RS
4791 {
4792 register struct Lisp_Vector *ptr = XVECTOR (obj);
4793 register EMACS_INT size = ptr->size;
169ee243
RS
4794 register int i;
4795
3ef06d12 4796 if (VECTOR_MARKED_P (ptr))
169ee243 4797 break; /* Already marked */
177c0ea7 4798
4f5c1376 4799 CHECK_LIVE (live_vector_p);
3ef06d12 4800 VECTOR_MARK (ptr); /* Else mark it */
76437631 4801 size &= PSEUDOVECTOR_SIZE_MASK;
169ee243
RS
4802 for (i = 0; i < size; i++) /* and then mark its elements */
4803 {
4804 if (i != COMPILED_CONSTANTS)
49723c04 4805 mark_object (ptr->contents[i]);
169ee243 4806 }
49723c04 4807 obj = ptr->contents[COMPILED_CONSTANTS];
169ee243
RS
4808 goto loop;
4809 }
169ee243
RS
4810 else if (GC_FRAMEP (obj))
4811 {
c70bbf06 4812 register struct frame *ptr = XFRAME (obj);
169ee243 4813
3ef06d12
SM
4814 if (VECTOR_MARKED_P (ptr)) break; /* Already marked */
4815 VECTOR_MARK (ptr); /* Else mark it */
169ee243 4816
4f5c1376 4817 CHECK_LIVE (live_vector_p);
49723c04
SM
4818 mark_object (ptr->name);
4819 mark_object (ptr->icon_name);
4820 mark_object (ptr->title);
4821 mark_object (ptr->focus_frame);
4822 mark_object (ptr->selected_window);
4823 mark_object (ptr->minibuffer_window);
4824 mark_object (ptr->param_alist);
4825 mark_object (ptr->scroll_bars);
4826 mark_object (ptr->condemned_scroll_bars);
4827 mark_object (ptr->menu_bar_items);
4828 mark_object (ptr->face_alist);
4829 mark_object (ptr->menu_bar_vector);
4830 mark_object (ptr->buffer_predicate);
4831 mark_object (ptr->buffer_list);
4832 mark_object (ptr->menu_bar_window);
4833 mark_object (ptr->tool_bar_window);
41c28a37
GM
4834 mark_face_cache (ptr->face_cache);
4835#ifdef HAVE_WINDOW_SYSTEM
4836 mark_image_cache (ptr);
49723c04
SM
4837 mark_object (ptr->tool_bar_items);
4838 mark_object (ptr->desired_tool_bar_string);
4839 mark_object (ptr->current_tool_bar_string);
41c28a37 4840#endif /* HAVE_WINDOW_SYSTEM */
169ee243 4841 }
7b07587b 4842 else if (GC_BOOL_VECTOR_P (obj))
707788bd
RS
4843 {
4844 register struct Lisp_Vector *ptr = XVECTOR (obj);
4845
3ef06d12 4846 if (VECTOR_MARKED_P (ptr))
707788bd 4847 break; /* Already marked */
4f5c1376 4848 CHECK_LIVE (live_vector_p);
3ef06d12 4849 VECTOR_MARK (ptr); /* Else mark it */
707788bd 4850 }
41c28a37
GM
4851 else if (GC_WINDOWP (obj))
4852 {
4853 register struct Lisp_Vector *ptr = XVECTOR (obj);
4854 struct window *w = XWINDOW (obj);
41c28a37
GM
4855 register int i;
4856
4857 /* Stop if already marked. */
3ef06d12 4858 if (VECTOR_MARKED_P (ptr))
41c28a37
GM
4859 break;
4860
4861 /* Mark it. */
4f5c1376 4862 CHECK_LIVE (live_vector_p);
3ef06d12 4863 VECTOR_MARK (ptr);
41c28a37
GM
4864
4865 /* There is no Lisp data above The member CURRENT_MATRIX in
4866 struct WINDOW. Stop marking when that slot is reached. */
4867 for (i = 0;
c70bbf06 4868 (char *) &ptr->contents[i] < (char *) &w->current_matrix;
41c28a37 4869 i++)
49723c04 4870 mark_object (ptr->contents[i]);
41c28a37
GM
4871
4872 /* Mark glyphs for leaf windows. Marking window matrices is
4873 sufficient because frame matrices use the same glyph
4874 memory. */
4875 if (NILP (w->hchild)
4876 && NILP (w->vchild)
4877 && w->current_matrix)
4878 {
4879 mark_glyph_matrix (w->current_matrix);
4880 mark_glyph_matrix (w->desired_matrix);
4881 }
4882 }
4883 else if (GC_HASH_TABLE_P (obj))
4884 {
4885 struct Lisp_Hash_Table *h = XHASH_TABLE (obj);
177c0ea7 4886
41c28a37 4887 /* Stop if already marked. */
3ef06d12 4888 if (VECTOR_MARKED_P (h))
41c28a37 4889 break;
177c0ea7 4890
41c28a37 4891 /* Mark it. */
4f5c1376 4892 CHECK_LIVE (live_vector_p);
3ef06d12 4893 VECTOR_MARK (h);
41c28a37
GM
4894
4895 /* Mark contents. */
94a877ef 4896 /* Do not mark next_free or next_weak.
177c0ea7 4897 Being in the next_weak chain
94a877ef
RS
4898 should not keep the hash table alive.
4899 No need to mark `count' since it is an integer. */
49723c04
SM
4900 mark_object (h->test);
4901 mark_object (h->weak);
4902 mark_object (h->rehash_size);
4903 mark_object (h->rehash_threshold);
4904 mark_object (h->hash);
4905 mark_object (h->next);
4906 mark_object (h->index);
4907 mark_object (h->user_hash_function);
4908 mark_object (h->user_cmp_function);
41c28a37
GM
4909
4910 /* If hash table is not weak, mark all keys and values.
4911 For weak tables, mark only the vector. */
4912 if (GC_NILP (h->weak))
49723c04 4913 mark_object (h->key_and_value);
41c28a37 4914 else
3ef06d12 4915 VECTOR_MARK (XVECTOR (h->key_and_value));
41c28a37 4916 }
04ff9756 4917 else
169ee243
RS
4918 {
4919 register struct Lisp_Vector *ptr = XVECTOR (obj);
4920 register EMACS_INT size = ptr->size;
169ee243
RS
4921 register int i;
4922
3ef06d12 4923 if (VECTOR_MARKED_P (ptr)) break; /* Already marked */
4f5c1376 4924 CHECK_LIVE (live_vector_p);
3ef06d12 4925 VECTOR_MARK (ptr); /* Else mark it */
169ee243
RS
4926 if (size & PSEUDOVECTOR_FLAG)
4927 size &= PSEUDOVECTOR_SIZE_MASK;
41c28a37 4928
169ee243 4929 for (i = 0; i < size; i++) /* and then mark its elements */
49723c04 4930 mark_object (ptr->contents[i]);
169ee243
RS
4931 }
4932 break;
7146af97 4933
7146af97
JB
4934 case Lisp_Symbol:
4935 {
c70bbf06 4936 register struct Lisp_Symbol *ptr = XSYMBOL (obj);
7146af97
JB
4937 struct Lisp_Symbol *ptrx;
4938
2336fe58 4939 if (ptr->gcmarkbit) break;
4f5c1376 4940 CHECK_ALLOCATED_AND_LIVE (live_symbol_p);
2336fe58 4941 ptr->gcmarkbit = 1;
49723c04
SM
4942 mark_object (ptr->value);
4943 mark_object (ptr->function);
4944 mark_object (ptr->plist);
34400008 4945
8fe5665d
KR
4946 if (!PURE_POINTER_P (XSTRING (ptr->xname)))
4947 MARK_STRING (XSTRING (ptr->xname));
d5db4077 4948 MARK_INTERVAL_TREE (STRING_INTERVALS (ptr->xname));
177c0ea7 4949
1c6bb482
RS
4950 /* Note that we do not mark the obarray of the symbol.
4951 It is safe not to do so because nothing accesses that
4952 slot except to check whether it is nil. */
7146af97
JB
4953 ptr = ptr->next;
4954 if (ptr)
4955 {
b0846f52 4956 ptrx = ptr; /* Use of ptrx avoids compiler bug on Sun */
7146af97 4957 XSETSYMBOL (obj, ptrx);
49723c04 4958 goto loop;
7146af97
JB
4959 }
4960 }
4961 break;
4962
a0a38eb7 4963 case Lisp_Misc:
4f5c1376 4964 CHECK_ALLOCATED_AND_LIVE (live_misc_p);
2336fe58
SM
4965 if (XMARKER (obj)->gcmarkbit)
4966 break;
4967 XMARKER (obj)->gcmarkbit = 1;
a5da44fe 4968 switch (XMISCTYPE (obj))
a0a38eb7 4969 {
465edf35
KH
4970 case Lisp_Misc_Buffer_Local_Value:
4971 case Lisp_Misc_Some_Buffer_Local_Value:
4972 {
4973 register struct Lisp_Buffer_Local_Value *ptr
4974 = XBUFFER_LOCAL_VALUE (obj);
465edf35
KH
4975 /* If the cdr is nil, avoid recursion for the car. */
4976 if (EQ (ptr->cdr, Qnil))
4977 {
49723c04 4978 obj = ptr->realvalue;
465edf35
KH
4979 goto loop;
4980 }
49723c04
SM
4981 mark_object (ptr->realvalue);
4982 mark_object (ptr->buffer);
4983 mark_object (ptr->frame);
4984 obj = ptr->cdr;
465edf35
KH
4985 goto loop;
4986 }
4987
2336fe58
SM
4988 case Lisp_Misc_Marker:
4989 /* DO NOT mark thru the marker's chain.
4990 The buffer's markers chain does not preserve markers from gc;
4991 instead, markers are removed from the chain when freed by gc. */
c8616056
KH
4992 case Lisp_Misc_Intfwd:
4993 case Lisp_Misc_Boolfwd:
4994 case Lisp_Misc_Objfwd:
4995 case Lisp_Misc_Buffer_Objfwd:
b875d3f7 4996 case Lisp_Misc_Kboard_Objfwd:
c8616056
KH
4997 /* Don't bother with Lisp_Buffer_Objfwd,
4998 since all markable slots in current buffer marked anyway. */
4999 /* Don't need to do Lisp_Objfwd, since the places they point
5000 are protected with staticpro. */
5001 break;
5002
e202fa34
KH
5003 case Lisp_Misc_Overlay:
5004 {
5005 struct Lisp_Overlay *ptr = XOVERLAY (obj);
49723c04
SM
5006 mark_object (ptr->start);
5007 mark_object (ptr->end);
5008 obj = ptr->plist;
2336fe58 5009 goto loop;
e202fa34
KH
5010 }
5011 break;
5012
a0a38eb7
KH
5013 default:
5014 abort ();
5015 }
7146af97
JB
5016 break;
5017
5018 case Lisp_Cons:
7146af97
JB
5019 {
5020 register struct Lisp_Cons *ptr = XCONS (obj);
5021 if (XMARKBIT (ptr->car)) break;
4f5c1376 5022 CHECK_ALLOCATED_AND_LIVE (live_cons_p);
7146af97 5023 XMARK (ptr->car);
c54ca951
RS
5024 /* If the cdr is nil, avoid recursion for the car. */
5025 if (EQ (ptr->cdr, Qnil))
5026 {
49723c04 5027 obj = ptr->car;
1342fc6f 5028 cdr_count = 0;
c54ca951
RS
5029 goto loop;
5030 }
49723c04
SM
5031 mark_object (ptr->car);
5032 obj = ptr->cdr;
1342fc6f
RS
5033 cdr_count++;
5034 if (cdr_count == mark_object_loop_halt)
5035 abort ();
7146af97
JB
5036 goto loop;
5037 }
5038
7146af97 5039 case Lisp_Float:
4f5c1376 5040 CHECK_ALLOCATED_AND_LIVE (live_float_p);
ab6780cd 5041 FLOAT_MARK (XFLOAT (obj));
7146af97 5042 break;
7146af97 5043
7146af97 5044 case Lisp_Int:
7146af97
JB
5045 break;
5046
5047 default:
5048 abort ();
5049 }
4f5c1376
GM
5050
5051#undef CHECK_LIVE
5052#undef CHECK_ALLOCATED
5053#undef CHECK_ALLOCATED_AND_LIVE
7146af97
JB
5054}
5055
5056/* Mark the pointers in a buffer structure. */
5057
5058static void
5059mark_buffer (buf)
5060 Lisp_Object buf;
5061{
7146af97
JB
5062 register struct buffer *buffer = XBUFFER (buf);
5063 register Lisp_Object *ptr;
30e3190a 5064 Lisp_Object base_buffer;
7146af97 5065
3ef06d12 5066 VECTOR_MARK (buffer);
7146af97 5067
30e3190a 5068 MARK_INTERVAL_TREE (BUF_INTERVALS (buffer));
d5e35230 5069
4c315bda
RS
5070 if (CONSP (buffer->undo_list))
5071 {
5072 Lisp_Object tail;
5073 tail = buffer->undo_list;
5074
2336fe58
SM
5075 /* We mark the undo list specially because
5076 its pointers to markers should be weak. */
5077
4c315bda
RS
5078 while (CONSP (tail))
5079 {
5080 register struct Lisp_Cons *ptr = XCONS (tail);
5081
5082 if (XMARKBIT (ptr->car))
5083 break;
5084 XMARK (ptr->car);
5085 if (GC_CONSP (ptr->car)
70949dac
KR
5086 && ! XMARKBIT (XCAR (ptr->car))
5087 && GC_MARKERP (XCAR (ptr->car)))
4c315bda 5088 {
f3fbd155 5089 XMARK (XCAR_AS_LVALUE (ptr->car));
49723c04 5090 mark_object (XCDR (ptr->car));
4c315bda
RS
5091 }
5092 else
49723c04 5093 mark_object (ptr->car);
4c315bda
RS
5094
5095 if (CONSP (ptr->cdr))
5096 tail = ptr->cdr;
5097 else
5098 break;
5099 }
5100
49723c04 5101 mark_object (XCDR (tail));
4c315bda
RS
5102 }
5103 else
49723c04 5104 mark_object (buffer->undo_list);
4c315bda 5105
3ef06d12 5106 for (ptr = &buffer->name;
7146af97
JB
5107 (char *)ptr < (char *)buffer + sizeof (struct buffer);
5108 ptr++)
49723c04 5109 mark_object (*ptr);
30e3190a
RS
5110
5111 /* If this is an indirect buffer, mark its base buffer. */
349bd9ed 5112 if (buffer->base_buffer && !VECTOR_MARKED_P (buffer->base_buffer))
30e3190a 5113 {
177c0ea7 5114 XSETBUFFER (base_buffer, buffer->base_buffer);
30e3190a
RS
5115 mark_buffer (base_buffer);
5116 }
7146af97 5117}
084b1a0c
KH
5118
5119
41c28a37
GM
5120/* Value is non-zero if OBJ will survive the current GC because it's
5121 either marked or does not need to be marked to survive. */
5122
5123int
5124survives_gc_p (obj)
5125 Lisp_Object obj;
5126{
5127 int survives_p;
177c0ea7 5128
41c28a37
GM
5129 switch (XGCTYPE (obj))
5130 {
5131 case Lisp_Int:
5132 survives_p = 1;
5133 break;
5134
5135 case Lisp_Symbol:
2336fe58 5136 survives_p = XSYMBOL (obj)->gcmarkbit;
41c28a37
GM
5137 break;
5138
5139 case Lisp_Misc:
ef89c2ce 5140 survives_p = XMARKER (obj)->gcmarkbit;
41c28a37
GM
5141 break;
5142
5143 case Lisp_String:
5144 {
5145 struct Lisp_String *s = XSTRING (obj);
2e471eb5 5146 survives_p = STRING_MARKED_P (s);
41c28a37
GM
5147 }
5148 break;
5149
5150 case Lisp_Vectorlike:
5151 if (GC_BUFFERP (obj))
3ef06d12 5152 survives_p = VECTOR_MARKED_P (XBUFFER (obj));
41c28a37
GM
5153 else if (GC_SUBRP (obj))
5154 survives_p = 1;
5155 else
3ef06d12 5156 survives_p = VECTOR_MARKED_P (XVECTOR (obj));
41c28a37
GM
5157 break;
5158
5159 case Lisp_Cons:
5160 survives_p = XMARKBIT (XCAR (obj));
5161 break;
5162
41c28a37 5163 case Lisp_Float:
ab6780cd 5164 survives_p = FLOAT_MARKED_P (XFLOAT (obj));
41c28a37 5165 break;
41c28a37
GM
5166
5167 default:
5168 abort ();
5169 }
5170
34400008 5171 return survives_p || PURE_POINTER_P ((void *) XPNTR (obj));
41c28a37
GM
5172}
5173
5174
7146af97 5175\f
1a4f1e2c 5176/* Sweep: find all structures not marked, and free them. */
7146af97
JB
5177
5178static void
5179gc_sweep ()
5180{
41c28a37
GM
5181 /* Remove or mark entries in weak hash tables.
5182 This must be done before any object is unmarked. */
5183 sweep_weak_hash_tables ();
5184
2e471eb5 5185 sweep_strings ();
676a7251
GM
5186#ifdef GC_CHECK_STRING_BYTES
5187 if (!noninteractive)
5188 check_string_bytes (1);
5189#endif
7146af97
JB
5190
5191 /* Put all unmarked conses on free list */
5192 {
5193 register struct cons_block *cblk;
6ca94ac9 5194 struct cons_block **cprev = &cons_block;
7146af97
JB
5195 register int lim = cons_block_index;
5196 register int num_free = 0, num_used = 0;
5197
5198 cons_free_list = 0;
177c0ea7 5199
6ca94ac9 5200 for (cblk = cons_block; cblk; cblk = *cprev)
7146af97
JB
5201 {
5202 register int i;
6ca94ac9 5203 int this_free = 0;
7146af97
JB
5204 for (i = 0; i < lim; i++)
5205 if (!XMARKBIT (cblk->conses[i].car))
5206 {
6ca94ac9 5207 this_free++;
1cd5fe6a 5208 *(struct Lisp_Cons **)&cblk->conses[i].cdr = cons_free_list;
7146af97 5209 cons_free_list = &cblk->conses[i];
34400008
GM
5210#if GC_MARK_STACK
5211 cons_free_list->car = Vdead;
5212#endif
7146af97
JB
5213 }
5214 else
5215 {
5216 num_used++;
5217 XUNMARK (cblk->conses[i].car);
5218 }
5219 lim = CONS_BLOCK_SIZE;
6ca94ac9
KH
5220 /* If this block contains only free conses and we have already
5221 seen more than two blocks worth of free conses then deallocate
5222 this block. */
6feef451 5223 if (this_free == CONS_BLOCK_SIZE && num_free > CONS_BLOCK_SIZE)
6ca94ac9 5224 {
6ca94ac9
KH
5225 *cprev = cblk->next;
5226 /* Unhook from the free list. */
5227 cons_free_list = *(struct Lisp_Cons **) &cblk->conses[0].cdr;
c8099634
RS
5228 lisp_free (cblk);
5229 n_cons_blocks--;
6ca94ac9
KH
5230 }
5231 else
6feef451
AS
5232 {
5233 num_free += this_free;
5234 cprev = &cblk->next;
5235 }
7146af97
JB
5236 }
5237 total_conses = num_used;
5238 total_free_conses = num_free;
5239 }
5240
7146af97
JB
5241 /* Put all unmarked floats on free list */
5242 {
5243 register struct float_block *fblk;
6ca94ac9 5244 struct float_block **fprev = &float_block;
7146af97
JB
5245 register int lim = float_block_index;
5246 register int num_free = 0, num_used = 0;
5247
5248 float_free_list = 0;
177c0ea7 5249
6ca94ac9 5250 for (fblk = float_block; fblk; fblk = *fprev)
7146af97
JB
5251 {
5252 register int i;
6ca94ac9 5253 int this_free = 0;
7146af97 5254 for (i = 0; i < lim; i++)
ab6780cd 5255 if (!FLOAT_MARKED_P (&fblk->floats[i]))
7146af97 5256 {
6ca94ac9 5257 this_free++;
1cd5fe6a 5258 *(struct Lisp_Float **)&fblk->floats[i].data = float_free_list;
7146af97
JB
5259 float_free_list = &fblk->floats[i];
5260 }
5261 else
5262 {
5263 num_used++;
ab6780cd 5264 FLOAT_UNMARK (&fblk->floats[i]);
7146af97
JB
5265 }
5266 lim = FLOAT_BLOCK_SIZE;
6ca94ac9
KH
5267 /* If this block contains only free floats and we have already
5268 seen more than two blocks worth of free floats then deallocate
5269 this block. */
6feef451 5270 if (this_free == FLOAT_BLOCK_SIZE && num_free > FLOAT_BLOCK_SIZE)
6ca94ac9 5271 {
6ca94ac9
KH
5272 *fprev = fblk->next;
5273 /* Unhook from the free list. */
5274 float_free_list = *(struct Lisp_Float **) &fblk->floats[0].data;
ab6780cd 5275 lisp_align_free (fblk);
c8099634 5276 n_float_blocks--;
6ca94ac9
KH
5277 }
5278 else
6feef451
AS
5279 {
5280 num_free += this_free;
5281 fprev = &fblk->next;
5282 }
7146af97
JB
5283 }
5284 total_floats = num_used;
5285 total_free_floats = num_free;
5286 }
7146af97 5287
d5e35230
JA
5288 /* Put all unmarked intervals on free list */
5289 {
5290 register struct interval_block *iblk;
6ca94ac9 5291 struct interval_block **iprev = &interval_block;
d5e35230
JA
5292 register int lim = interval_block_index;
5293 register int num_free = 0, num_used = 0;
5294
5295 interval_free_list = 0;
5296
6ca94ac9 5297 for (iblk = interval_block; iblk; iblk = *iprev)
d5e35230
JA
5298 {
5299 register int i;
6ca94ac9 5300 int this_free = 0;
d5e35230
JA
5301
5302 for (i = 0; i < lim; i++)
5303 {
2336fe58 5304 if (!iblk->intervals[i].gcmarkbit)
d5e35230 5305 {
439d5cb4 5306 SET_INTERVAL_PARENT (&iblk->intervals[i], interval_free_list);
d5e35230 5307 interval_free_list = &iblk->intervals[i];
6ca94ac9 5308 this_free++;
d5e35230
JA
5309 }
5310 else
5311 {
5312 num_used++;
2336fe58 5313 iblk->intervals[i].gcmarkbit = 0;
d5e35230
JA
5314 }
5315 }
5316 lim = INTERVAL_BLOCK_SIZE;
6ca94ac9
KH
5317 /* If this block contains only free intervals and we have already
5318 seen more than two blocks worth of free intervals then
5319 deallocate this block. */
6feef451 5320 if (this_free == INTERVAL_BLOCK_SIZE && num_free > INTERVAL_BLOCK_SIZE)
6ca94ac9 5321 {
6ca94ac9
KH
5322 *iprev = iblk->next;
5323 /* Unhook from the free list. */
439d5cb4 5324 interval_free_list = INTERVAL_PARENT (&iblk->intervals[0]);
c8099634
RS
5325 lisp_free (iblk);
5326 n_interval_blocks--;
6ca94ac9
KH
5327 }
5328 else
6feef451
AS
5329 {
5330 num_free += this_free;
5331 iprev = &iblk->next;
5332 }
d5e35230
JA
5333 }
5334 total_intervals = num_used;
5335 total_free_intervals = num_free;
5336 }
d5e35230 5337
7146af97
JB
5338 /* Put all unmarked symbols on free list */
5339 {
5340 register struct symbol_block *sblk;
6ca94ac9 5341 struct symbol_block **sprev = &symbol_block;
7146af97
JB
5342 register int lim = symbol_block_index;
5343 register int num_free = 0, num_used = 0;
5344
d285b373 5345 symbol_free_list = NULL;
177c0ea7 5346
6ca94ac9 5347 for (sblk = symbol_block; sblk; sblk = *sprev)
7146af97 5348 {
6ca94ac9 5349 int this_free = 0;
d285b373
GM
5350 struct Lisp_Symbol *sym = sblk->symbols;
5351 struct Lisp_Symbol *end = sym + lim;
5352
5353 for (; sym < end; ++sym)
5354 {
20035321
SM
5355 /* Check if the symbol was created during loadup. In such a case
5356 it might be pointed to by pure bytecode which we don't trace,
5357 so we conservatively assume that it is live. */
8fe5665d 5358 int pure_p = PURE_POINTER_P (XSTRING (sym->xname));
177c0ea7 5359
2336fe58 5360 if (!sym->gcmarkbit && !pure_p)
d285b373
GM
5361 {
5362 *(struct Lisp_Symbol **) &sym->value = symbol_free_list;
5363 symbol_free_list = sym;
34400008 5364#if GC_MARK_STACK
d285b373 5365 symbol_free_list->function = Vdead;
34400008 5366#endif
d285b373
GM
5367 ++this_free;
5368 }
5369 else
5370 {
5371 ++num_used;
5372 if (!pure_p)
8fe5665d 5373 UNMARK_STRING (XSTRING (sym->xname));
2336fe58 5374 sym->gcmarkbit = 0;
d285b373
GM
5375 }
5376 }
177c0ea7 5377
7146af97 5378 lim = SYMBOL_BLOCK_SIZE;
6ca94ac9
KH
5379 /* If this block contains only free symbols and we have already
5380 seen more than two blocks worth of free symbols then deallocate
5381 this block. */
6feef451 5382 if (this_free == SYMBOL_BLOCK_SIZE && num_free > SYMBOL_BLOCK_SIZE)
6ca94ac9 5383 {
6ca94ac9
KH
5384 *sprev = sblk->next;
5385 /* Unhook from the free list. */
5386 symbol_free_list = *(struct Lisp_Symbol **)&sblk->symbols[0].value;
c8099634
RS
5387 lisp_free (sblk);
5388 n_symbol_blocks--;
6ca94ac9
KH
5389 }
5390 else
6feef451
AS
5391 {
5392 num_free += this_free;
5393 sprev = &sblk->next;
5394 }
7146af97
JB
5395 }
5396 total_symbols = num_used;
5397 total_free_symbols = num_free;
5398 }
5399
a9faeabe
RS
5400 /* Put all unmarked misc's on free list.
5401 For a marker, first unchain it from the buffer it points into. */
7146af97
JB
5402 {
5403 register struct marker_block *mblk;
6ca94ac9 5404 struct marker_block **mprev = &marker_block;
7146af97
JB
5405 register int lim = marker_block_index;
5406 register int num_free = 0, num_used = 0;
5407
5408 marker_free_list = 0;
177c0ea7 5409
6ca94ac9 5410 for (mblk = marker_block; mblk; mblk = *mprev)
7146af97
JB
5411 {
5412 register int i;
6ca94ac9 5413 int this_free = 0;
fa05e253 5414
7146af97 5415 for (i = 0; i < lim; i++)
465edf35 5416 {
2336fe58 5417 if (!mblk->markers[i].u_marker.gcmarkbit)
465edf35 5418 {
a5da44fe 5419 if (mblk->markers[i].u_marker.type == Lisp_Misc_Marker)
ef89c2ce 5420 unchain_marker (&mblk->markers[i].u_marker);
fa05e253
RS
5421 /* Set the type of the freed object to Lisp_Misc_Free.
5422 We could leave the type alone, since nobody checks it,
465edf35 5423 but this might catch bugs faster. */
a5da44fe 5424 mblk->markers[i].u_marker.type = Lisp_Misc_Free;
465edf35
KH
5425 mblk->markers[i].u_free.chain = marker_free_list;
5426 marker_free_list = &mblk->markers[i];
6ca94ac9 5427 this_free++;
465edf35
KH
5428 }
5429 else
5430 {
5431 num_used++;
2336fe58 5432 mblk->markers[i].u_marker.gcmarkbit = 0;
465edf35
KH
5433 }
5434 }
7146af97 5435 lim = MARKER_BLOCK_SIZE;
6ca94ac9
KH
5436 /* If this block contains only free markers and we have already
5437 seen more than two blocks worth of free markers then deallocate
5438 this block. */
6feef451 5439 if (this_free == MARKER_BLOCK_SIZE && num_free > MARKER_BLOCK_SIZE)
6ca94ac9 5440 {
6ca94ac9
KH
5441 *mprev = mblk->next;
5442 /* Unhook from the free list. */
5443 marker_free_list = mblk->markers[0].u_free.chain;
c8099634
RS
5444 lisp_free (mblk);
5445 n_marker_blocks--;
6ca94ac9
KH
5446 }
5447 else
6feef451
AS
5448 {
5449 num_free += this_free;
5450 mprev = &mblk->next;
5451 }
7146af97
JB
5452 }
5453
5454 total_markers = num_used;
5455 total_free_markers = num_free;
5456 }
5457
5458 /* Free all unmarked buffers */
5459 {
5460 register struct buffer *buffer = all_buffers, *prev = 0, *next;
5461
5462 while (buffer)
3ef06d12 5463 if (!VECTOR_MARKED_P (buffer))
7146af97
JB
5464 {
5465 if (prev)
5466 prev->next = buffer->next;
5467 else
5468 all_buffers = buffer->next;
5469 next = buffer->next;
34400008 5470 lisp_free (buffer);
7146af97
JB
5471 buffer = next;
5472 }
5473 else
5474 {
3ef06d12 5475 VECTOR_UNMARK (buffer);
30e3190a 5476 UNMARK_BALANCE_INTERVALS (BUF_INTERVALS (buffer));
7146af97
JB
5477 prev = buffer, buffer = buffer->next;
5478 }
5479 }
5480
7146af97
JB
5481 /* Free all unmarked vectors */
5482 {
5483 register struct Lisp_Vector *vector = all_vectors, *prev = 0, *next;
5484 total_vector_size = 0;
5485
5486 while (vector)
3ef06d12 5487 if (!VECTOR_MARKED_P (vector))
7146af97
JB
5488 {
5489 if (prev)
5490 prev->next = vector->next;
5491 else
5492 all_vectors = vector->next;
5493 next = vector->next;
c8099634
RS
5494 lisp_free (vector);
5495 n_vectors--;
7146af97 5496 vector = next;
41c28a37 5497
7146af97
JB
5498 }
5499 else
5500 {
3ef06d12 5501 VECTOR_UNMARK (vector);
fa05e253
RS
5502 if (vector->size & PSEUDOVECTOR_FLAG)
5503 total_vector_size += (PSEUDOVECTOR_SIZE_MASK & vector->size);
5504 else
5505 total_vector_size += vector->size;
7146af97
JB
5506 prev = vector, vector = vector->next;
5507 }
5508 }
177c0ea7 5509
676a7251
GM
5510#ifdef GC_CHECK_STRING_BYTES
5511 if (!noninteractive)
5512 check_string_bytes (1);
5513#endif
7146af97 5514}
7146af97 5515
7146af97 5516
7146af97 5517
7146af97 5518\f
20d24714
JB
5519/* Debugging aids. */
5520
31ce1c91 5521DEFUN ("memory-limit", Fmemory_limit, Smemory_limit, 0, 0, 0,
a6266d23 5522 doc: /* Return the address of the last byte Emacs has allocated, divided by 1024.
228299fa 5523This may be helpful in debugging Emacs's memory usage.
7ee72033
MB
5524We divide the value by 1024 to make sure it fits in a Lisp integer. */)
5525 ()
20d24714
JB
5526{
5527 Lisp_Object end;
5528
45d12a89 5529 XSETINT (end, (EMACS_INT) sbrk (0) / 1024);
20d24714
JB
5530
5531 return end;
5532}
5533
310ea200 5534DEFUN ("memory-use-counts", Fmemory_use_counts, Smemory_use_counts, 0, 0, 0,
a6266d23 5535 doc: /* Return a list of counters that measure how much consing there has been.
228299fa
GM
5536Each of these counters increments for a certain kind of object.
5537The counters wrap around from the largest positive integer to zero.
5538Garbage collection does not decrease them.
5539The elements of the value are as follows:
5540 (CONSES FLOATS VECTOR-CELLS SYMBOLS STRING-CHARS MISCS INTERVALS STRINGS)
5541All are in units of 1 = one object consed
5542except for VECTOR-CELLS and STRING-CHARS, which count the total length of
5543objects consed.
5544MISCS include overlays, markers, and some internal types.
5545Frames, windows, buffers, and subprocesses count as vectors
7ee72033
MB
5546 (but the contents of a buffer's text do not count here). */)
5547 ()
310ea200 5548{
2e471eb5 5549 Lisp_Object consed[8];
310ea200 5550
78e985eb
GM
5551 consed[0] = make_number (min (MOST_POSITIVE_FIXNUM, cons_cells_consed));
5552 consed[1] = make_number (min (MOST_POSITIVE_FIXNUM, floats_consed));
5553 consed[2] = make_number (min (MOST_POSITIVE_FIXNUM, vector_cells_consed));
5554 consed[3] = make_number (min (MOST_POSITIVE_FIXNUM, symbols_consed));
5555 consed[4] = make_number (min (MOST_POSITIVE_FIXNUM, string_chars_consed));
5556 consed[5] = make_number (min (MOST_POSITIVE_FIXNUM, misc_objects_consed));
5557 consed[6] = make_number (min (MOST_POSITIVE_FIXNUM, intervals_consed));
5558 consed[7] = make_number (min (MOST_POSITIVE_FIXNUM, strings_consed));
310ea200 5559
2e471eb5 5560 return Flist (8, consed);
310ea200 5561}
e0b8c689
KR
5562
5563int suppress_checking;
5564void
5565die (msg, file, line)
5566 const char *msg;
5567 const char *file;
5568 int line;
5569{
5570 fprintf (stderr, "\r\nEmacs fatal error: %s:%d: %s\r\n",
5571 file, line, msg);
5572 abort ();
5573}
20d24714 5574\f
7146af97
JB
5575/* Initialization */
5576
dfcf069d 5577void
7146af97
JB
5578init_alloc_once ()
5579{
5580 /* Used to do Vpurify_flag = Qt here, but Qt isn't set up yet! */
9e713715
GM
5581 purebeg = PUREBEG;
5582 pure_size = PURESIZE;
1f0b3fd2 5583 pure_bytes_used = 0;
9e713715
GM
5584 pure_bytes_used_before_overflow = 0;
5585
ab6780cd
SM
5586 /* Initialize the list of free aligned blocks. */
5587 free_ablock = NULL;
5588
877935b1 5589#if GC_MARK_STACK || defined GC_MALLOC_CHECK
34400008
GM
5590 mem_init ();
5591 Vdead = make_pure_string ("DEAD", 4, 4, 0);
5592#endif
9e713715 5593
7146af97
JB
5594 all_vectors = 0;
5595 ignore_warnings = 1;
d1658221
RS
5596#ifdef DOUG_LEA_MALLOC
5597 mallopt (M_TRIM_THRESHOLD, 128*1024); /* trim threshold */
5598 mallopt (M_MMAP_THRESHOLD, 64*1024); /* mmap threshold */
81d492d5 5599 mallopt (M_MMAP_MAX, MMAP_MAX_AREAS); /* max. number of mmap'ed areas */
d1658221 5600#endif
7146af97
JB
5601 init_strings ();
5602 init_cons ();
5603 init_symbol ();
5604 init_marker ();
7146af97 5605 init_float ();
34400008 5606 init_intervals ();
d5e35230 5607
276cbe5a
RS
5608#ifdef REL_ALLOC
5609 malloc_hysteresis = 32;
5610#else
5611 malloc_hysteresis = 0;
5612#endif
5613
5614 spare_memory = (char *) malloc (SPARE_MEMORY);
5615
7146af97
JB
5616 ignore_warnings = 0;
5617 gcprolist = 0;
630686c8 5618 byte_stack_list = 0;
7146af97
JB
5619 staticidx = 0;
5620 consing_since_gc = 0;
7d179cea 5621 gc_cons_threshold = 100000 * sizeof (Lisp_Object);
7146af97
JB
5622#ifdef VIRT_ADDR_VARIES
5623 malloc_sbrk_unused = 1<<22; /* A large number */
5624 malloc_sbrk_used = 100000; /* as reasonable as any number */
5625#endif /* VIRT_ADDR_VARIES */
5626}
5627
dfcf069d 5628void
7146af97
JB
5629init_alloc ()
5630{
5631 gcprolist = 0;
630686c8 5632 byte_stack_list = 0;
182ff242
GM
5633#if GC_MARK_STACK
5634#if !defined GC_SAVE_REGISTERS_ON_STACK && !defined GC_SETJMP_WORKS
5635 setjmp_tested_p = longjmps_done = 0;
5636#endif
5637#endif
2c5bd608
DL
5638 Vgc_elapsed = make_float (0.0);
5639 gcs_done = 0;
7146af97
JB
5640}
5641
5642void
5643syms_of_alloc ()
5644{
7ee72033 5645 DEFVAR_INT ("gc-cons-threshold", &gc_cons_threshold,
a6266d23 5646 doc: /* *Number of bytes of consing between garbage collections.
228299fa
GM
5647Garbage collection can happen automatically once this many bytes have been
5648allocated since the last garbage collection. All data types count.
7146af97 5649
228299fa 5650Garbage collection happens automatically only when `eval' is called.
7146af97 5651
228299fa
GM
5652By binding this temporarily to a large number, you can effectively
5653prevent garbage collection during a part of the program. */);
0819585c 5654
7ee72033 5655 DEFVAR_INT ("pure-bytes-used", &pure_bytes_used,
a6266d23 5656 doc: /* Number of bytes of sharable Lisp data allocated so far. */);
0819585c 5657
7ee72033 5658 DEFVAR_INT ("cons-cells-consed", &cons_cells_consed,
a6266d23 5659 doc: /* Number of cons cells that have been consed so far. */);
0819585c 5660
7ee72033 5661 DEFVAR_INT ("floats-consed", &floats_consed,
a6266d23 5662 doc: /* Number of floats that have been consed so far. */);
0819585c 5663
7ee72033 5664 DEFVAR_INT ("vector-cells-consed", &vector_cells_consed,
a6266d23 5665 doc: /* Number of vector cells that have been consed so far. */);
0819585c 5666
7ee72033 5667 DEFVAR_INT ("symbols-consed", &symbols_consed,
a6266d23 5668 doc: /* Number of symbols that have been consed so far. */);
0819585c 5669
7ee72033 5670 DEFVAR_INT ("string-chars-consed", &string_chars_consed,
a6266d23 5671 doc: /* Number of string characters that have been consed so far. */);
0819585c 5672
7ee72033 5673 DEFVAR_INT ("misc-objects-consed", &misc_objects_consed,
a6266d23 5674 doc: /* Number of miscellaneous objects that have been consed so far. */);
2e471eb5 5675
7ee72033 5676 DEFVAR_INT ("intervals-consed", &intervals_consed,
a6266d23 5677 doc: /* Number of intervals that have been consed so far. */);
7146af97 5678
7ee72033 5679 DEFVAR_INT ("strings-consed", &strings_consed,
a6266d23 5680 doc: /* Number of strings that have been consed so far. */);
228299fa 5681
7ee72033 5682 DEFVAR_LISP ("purify-flag", &Vpurify_flag,
a6266d23 5683 doc: /* Non-nil means loading Lisp code in order to dump an executable.
228299fa
GM
5684This means that certain objects should be allocated in shared (pure) space. */);
5685
7ee72033 5686 DEFVAR_INT ("undo-limit", &undo_limit,
a6266d23 5687 doc: /* Keep no more undo information once it exceeds this size.
228299fa
GM
5688This limit is applied when garbage collection happens.
5689The size is counted as the number of bytes occupied,
5690which includes both saved text and other data. */);
502b9b64 5691 undo_limit = 20000;
7146af97 5692
7ee72033 5693 DEFVAR_INT ("undo-strong-limit", &undo_strong_limit,
a6266d23 5694 doc: /* Don't keep more than this much size of undo information.
228299fa
GM
5695A command which pushes past this size is itself forgotten.
5696This limit is applied when garbage collection happens.
5697The size is counted as the number of bytes occupied,
5698which includes both saved text and other data. */);
502b9b64 5699 undo_strong_limit = 30000;
7146af97 5700
7ee72033 5701 DEFVAR_BOOL ("garbage-collection-messages", &garbage_collection_messages,
a6266d23 5702 doc: /* Non-nil means display messages at start and end of garbage collection. */);
299585ee
RS
5703 garbage_collection_messages = 0;
5704
7ee72033 5705 DEFVAR_LISP ("post-gc-hook", &Vpost_gc_hook,
a6266d23 5706 doc: /* Hook run after garbage collection has finished. */);
9e713715
GM
5707 Vpost_gc_hook = Qnil;
5708 Qpost_gc_hook = intern ("post-gc-hook");
5709 staticpro (&Qpost_gc_hook);
5710
74a54b04
RS
5711 DEFVAR_LISP ("memory-signal-data", &Vmemory_signal_data,
5712 doc: /* Precomputed `signal' argument for memory-full error. */);
bcb61d60
KH
5713 /* We build this in advance because if we wait until we need it, we might
5714 not be able to allocate the memory to hold it. */
74a54b04
RS
5715 Vmemory_signal_data
5716 = list2 (Qerror,
5717 build_string ("Memory exhausted--use M-x save-some-buffers then exit and restart Emacs"));
5718
5719 DEFVAR_LISP ("memory-full", &Vmemory_full,
5720 doc: /* Non-nil means we are handling a memory-full error. */);
5721 Vmemory_full = Qnil;
bcb61d60 5722
e8197642
RS
5723 staticpro (&Qgc_cons_threshold);
5724 Qgc_cons_threshold = intern ("gc-cons-threshold");
5725
a59de17b
RS
5726 staticpro (&Qchar_table_extra_slots);
5727 Qchar_table_extra_slots = intern ("char-table-extra-slots");
5728
2c5bd608
DL
5729 DEFVAR_LISP ("gc-elapsed", &Vgc_elapsed,
5730 doc: /* Accumulated time elapsed in garbage collections.
5731The time is in seconds as a floating point value.
5732Programs may reset this to get statistics in a specific period. */);
5733 DEFVAR_INT ("gcs-done", &gcs_done,
5734 doc: /* Accumulated number of garbage collections done.
5735Programs may reset this to get statistics in a specific period. */);
5736
7146af97
JB
5737 defsubr (&Scons);
5738 defsubr (&Slist);
5739 defsubr (&Svector);
5740 defsubr (&Smake_byte_code);
5741 defsubr (&Smake_list);
5742 defsubr (&Smake_vector);
7b07587b 5743 defsubr (&Smake_char_table);
7146af97 5744 defsubr (&Smake_string);
7b07587b 5745 defsubr (&Smake_bool_vector);
7146af97
JB
5746 defsubr (&Smake_symbol);
5747 defsubr (&Smake_marker);
5748 defsubr (&Spurecopy);
5749 defsubr (&Sgarbage_collect);
20d24714 5750 defsubr (&Smemory_limit);
310ea200 5751 defsubr (&Smemory_use_counts);
34400008
GM
5752
5753#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
5754 defsubr (&Sgc_status);
5755#endif
7146af97 5756}