Merge from trunk.
[bpt/emacs.git] / src / alloc.c
CommitLineData
7146af97 1/* Storage allocation and gc for GNU Emacs Lisp interpreter.
73b0cd50 2 Copyright (C) 1985-1986, 1988, 1993-1995, 1997-2011
8cabe764 3 Free Software Foundation, Inc.
7146af97
JB
4
5This file is part of GNU Emacs.
6
9ec0b715 7GNU Emacs is free software: you can redistribute it and/or modify
7146af97 8it under the terms of the GNU General Public License as published by
9ec0b715
GM
9the Free Software Foundation, either version 3 of the License, or
10(at your option) any later version.
7146af97
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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
9ec0b715 18along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
7146af97 19
18160b98 20#include <config.h>
e9b309ac 21#include <stdio.h>
ab6780cd 22#include <limits.h> /* For CHAR_BIT. */
d7306fe6 23#include <setjmp.h>
92939d31 24
68c45bf0 25#include <signal.h>
92939d31 26
ae9e757a 27#ifdef HAVE_PTHREAD
aa477689
JD
28#include <pthread.h>
29#endif
30
7539e11f
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31/* This file is part of the core Lisp implementation, and thus must
32 deal with the real data structures. If the Lisp implementation is
33 replaced, this file likely will not be used. */
2e471eb5 34
7539e11f 35#undef HIDE_LISP_IMPLEMENTATION
7146af97 36#include "lisp.h"
ece93c02 37#include "process.h"
d5e35230 38#include "intervals.h"
4c0be5f4 39#include "puresize.h"
7146af97
JB
40#include "buffer.h"
41#include "window.h"
2538fae4 42#include "keyboard.h"
502b9b64 43#include "frame.h"
9ac0d9e0 44#include "blockinput.h"
9d80e883 45#include "character.h"
e065a56e 46#include "syssignal.h"
4a729fd8 47#include "termhooks.h" /* For struct terminal. */
34400008 48#include <setjmp.h>
0065d054 49#include <verify.h>
e065a56e 50
6b61353c
KH
51/* GC_MALLOC_CHECK defined means perform validity checks of malloc'd
52 memory. Can do this only if using gmalloc.c. */
53
54#if defined SYSTEM_MALLOC || defined DOUG_LEA_MALLOC
55#undef GC_MALLOC_CHECK
56#endif
57
bf952fb6 58#include <unistd.h>
4004364e 59#ifndef HAVE_UNISTD_H
bf952fb6
DL
60extern POINTER_TYPE *sbrk ();
61#endif
ee1eea5c 62
de7124a7 63#include <fcntl.h>
de7124a7 64
69666f77 65#ifdef WINDOWSNT
f892cf9c 66#include "w32.h"
69666f77
EZ
67#endif
68
d1658221 69#ifdef DOUG_LEA_MALLOC
2e471eb5 70
d1658221 71#include <malloc.h>
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
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78#else /* not DOUG_LEA_MALLOC */
79
276cbe5a
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80/* The following come from gmalloc.c. */
81
5e927815
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82extern size_t _bytes_used;
83extern size_t __malloc_extra_blocks;
2e471eb5
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84
85#endif /* not DOUG_LEA_MALLOC */
276cbe5a 86
7bc26fdb 87#if ! defined SYSTEM_MALLOC && ! defined SYNC_INPUT
ae9e757a 88#ifdef HAVE_PTHREAD
aa477689 89
f415cacd
JD
90/* When GTK uses the file chooser dialog, different backends can be loaded
91 dynamically. One such a backend is the Gnome VFS backend that gets loaded
92 if you run Gnome. That backend creates several threads and also allocates
93 memory with malloc.
94
ae9e757a
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95 Also, gconf and gsettings may create several threads.
96
f415cacd
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97 If Emacs sets malloc hooks (! SYSTEM_MALLOC) and the emacs_blocked_*
98 functions below are called from malloc, there is a chance that one
99 of these threads preempts the Emacs main thread and the hook variables
333f1b6f 100 end up in an inconsistent state. So we have a mutex to prevent that (note
f415cacd
JD
101 that the backend handles concurrent access to malloc within its own threads
102 but Emacs code running in the main thread is not included in that control).
103
026cdede 104 When UNBLOCK_INPUT is called, reinvoke_input_signal may be called. If this
f415cacd
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105 happens in one of the backend threads we will have two threads that tries
106 to run Emacs code at once, and the code is not prepared for that.
107 To prevent that, we only call BLOCK/UNBLOCK from the main thread. */
108
aa477689 109static pthread_mutex_t alloc_mutex;
aa477689 110
959dc601
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111#define BLOCK_INPUT_ALLOC \
112 do \
113 { \
114 if (pthread_equal (pthread_self (), main_thread)) \
86302e37 115 BLOCK_INPUT; \
959dc601
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116 pthread_mutex_lock (&alloc_mutex); \
117 } \
aa477689 118 while (0)
959dc601
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119#define UNBLOCK_INPUT_ALLOC \
120 do \
121 { \
122 pthread_mutex_unlock (&alloc_mutex); \
123 if (pthread_equal (pthread_self (), main_thread)) \
86302e37 124 UNBLOCK_INPUT; \
959dc601 125 } \
aa477689
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126 while (0)
127
ae9e757a 128#else /* ! defined HAVE_PTHREAD */
aa477689
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129
130#define BLOCK_INPUT_ALLOC BLOCK_INPUT
131#define UNBLOCK_INPUT_ALLOC UNBLOCK_INPUT
132
ae9e757a 133#endif /* ! defined HAVE_PTHREAD */
7bc26fdb 134#endif /* ! defined SYSTEM_MALLOC && ! defined SYNC_INPUT */
aa477689 135
2e471eb5
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136/* Mark, unmark, query mark bit of a Lisp string. S must be a pointer
137 to a struct Lisp_String. */
138
7cdee936
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139#define MARK_STRING(S) ((S)->size |= ARRAY_MARK_FLAG)
140#define UNMARK_STRING(S) ((S)->size &= ~ARRAY_MARK_FLAG)
b059de99 141#define STRING_MARKED_P(S) (((S)->size & ARRAY_MARK_FLAG) != 0)
2e471eb5 142
eab3844f
PE
143#define VECTOR_MARK(V) ((V)->header.size |= ARRAY_MARK_FLAG)
144#define VECTOR_UNMARK(V) ((V)->header.size &= ~ARRAY_MARK_FLAG)
145#define VECTOR_MARKED_P(V) (((V)->header.size & ARRAY_MARK_FLAG) != 0)
3ef06d12 146
7bc26fdb
PE
147/* Value is the number of bytes of S, a pointer to a struct Lisp_String.
148 Be careful during GC, because S->size contains the mark bit for
2e471eb5
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149 strings. */
150
3ef06d12 151#define GC_STRING_BYTES(S) (STRING_BYTES (S))
2e471eb5 152
29208e82
TT
153/* Global variables. */
154struct emacs_globals globals;
155
2e471eb5
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156/* Number of bytes of consing done since the last gc. */
157
0de4bb68 158EMACS_INT consing_since_gc;
7146af97 159
974aae61
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160/* Similar minimum, computed from Vgc_cons_percentage. */
161
162EMACS_INT gc_relative_threshold;
310ea200 163
24d8a105
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164/* Minimum number of bytes of consing since GC before next GC,
165 when memory is full. */
166
167EMACS_INT memory_full_cons_threshold;
168
2e471eb5
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169/* Nonzero during GC. */
170
7146af97
JB
171int gc_in_progress;
172
3de0effb
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173/* Nonzero means abort if try to GC.
174 This is for code which is written on the assumption that
175 no GC will happen, so as to verify that assumption. */
176
177int abort_on_gc;
178
34400008
GM
179/* Number of live and free conses etc. */
180
c0c5c8ae
PE
181static EMACS_INT total_conses, total_markers, total_symbols, total_vector_size;
182static EMACS_INT total_free_conses, total_free_markers, total_free_symbols;
183static EMACS_INT total_free_floats, total_floats;
fd27a537 184
2e471eb5 185/* Points to memory space allocated as "spare", to be freed if we run
24d8a105
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186 out of memory. We keep one large block, four cons-blocks, and
187 two string blocks. */
2e471eb5 188
d3d47262 189static char *spare_memory[7];
276cbe5a 190
2b6148e4
PE
191/* Amount of spare memory to keep in large reserve block, or to see
192 whether this much is available when malloc fails on a larger request. */
2e471eb5 193
276cbe5a 194#define SPARE_MEMORY (1 << 14)
4d09bcf6 195
276cbe5a 196/* Number of extra blocks malloc should get when it needs more core. */
2e471eb5 197
276cbe5a
RS
198static int malloc_hysteresis;
199
1b8950e5
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200/* Initialize it to a nonzero value to force it into data space
201 (rather than bss space). That way unexec will remap it into text
202 space (pure), on some systems. We have not implemented the
203 remapping on more recent systems because this is less important
204 nowadays than in the days of small memories and timesharing. */
2e471eb5 205
244ed907
PE
206#ifndef VIRT_ADDR_VARIES
207static
208#endif
2c4685ee 209EMACS_INT pure[(PURESIZE + sizeof (EMACS_INT) - 1) / sizeof (EMACS_INT)] = {1,};
7146af97 210#define PUREBEG (char *) pure
2e471eb5 211
9e713715 212/* Pointer to the pure area, and its size. */
2e471eb5 213
9e713715 214static char *purebeg;
903fe15d 215static ptrdiff_t pure_size;
9e713715
GM
216
217/* Number of bytes of pure storage used before pure storage overflowed.
218 If this is non-zero, this implies that an overflow occurred. */
219
903fe15d 220static ptrdiff_t pure_bytes_used_before_overflow;
7146af97 221
34400008
GM
222/* Value is non-zero if P points into pure space. */
223
224#define PURE_POINTER_P(P) \
225 (((PNTR_COMPARISON_TYPE) (P) \
9e713715 226 < (PNTR_COMPARISON_TYPE) ((char *) purebeg + pure_size)) \
34400008 227 && ((PNTR_COMPARISON_TYPE) (P) \
9e713715 228 >= (PNTR_COMPARISON_TYPE) purebeg))
34400008 229
e5bc14d4
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230/* Index in pure at which next pure Lisp object will be allocated.. */
231
d311d28c 232static ptrdiff_t pure_bytes_used_lisp;
e5bc14d4
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233
234/* Number of bytes allocated for non-Lisp objects in pure storage. */
235
d311d28c 236static ptrdiff_t pure_bytes_used_non_lisp;
e5bc14d4 237
2e471eb5
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238/* If nonzero, this is a warning delivered by malloc and not yet
239 displayed. */
240
a8fe7202 241const char *pending_malloc_warning;
7146af97
JB
242
243/* Maximum amount of C stack to save when a GC happens. */
244
245#ifndef MAX_SAVE_STACK
246#define MAX_SAVE_STACK 16000
247#endif
248
249/* Buffer in which we save a copy of the C stack at each GC. */
250
dd3f25f7 251#if MAX_SAVE_STACK > 0
d3d47262 252static char *stack_copy;
903fe15d 253static ptrdiff_t stack_copy_size;
dd3f25f7 254#endif
7146af97 255
2e471eb5
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256/* Non-zero means ignore malloc warnings. Set during initialization.
257 Currently not used. */
258
d3d47262 259static int ignore_warnings;
350273a4 260
955cbe7b
PE
261static Lisp_Object Qgc_cons_threshold;
262Lisp_Object Qchar_table_extra_slots;
e8197642 263
9e713715
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264/* Hook run after GC has finished. */
265
955cbe7b 266static Lisp_Object Qpost_gc_hook;
2c5bd608 267
f57e2426
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268static void mark_buffer (Lisp_Object);
269static void mark_terminals (void);
f57e2426
J
270static void gc_sweep (void);
271static void mark_glyph_matrix (struct glyph_matrix *);
272static void mark_face_cache (struct face_cache *);
41c28a37 273
69003fd8
PE
274#if !defined REL_ALLOC || defined SYSTEM_MALLOC
275static void refill_memory_reserve (void);
276#endif
f57e2426
J
277static struct Lisp_String *allocate_string (void);
278static void compact_small_strings (void);
279static void free_large_strings (void);
280static void sweep_strings (void);
244ed907 281static void free_misc (Lisp_Object);
34400008 282
34400008
GM
283/* When scanning the C stack for live Lisp objects, Emacs keeps track
284 of what memory allocated via lisp_malloc is intended for what
285 purpose. This enumeration specifies the type of memory. */
286
287enum mem_type
288{
289 MEM_TYPE_NON_LISP,
290 MEM_TYPE_BUFFER,
291 MEM_TYPE_CONS,
292 MEM_TYPE_STRING,
293 MEM_TYPE_MISC,
294 MEM_TYPE_SYMBOL,
295 MEM_TYPE_FLOAT,
9c545a55
SM
296 /* We used to keep separate mem_types for subtypes of vectors such as
297 process, hash_table, frame, terminal, and window, but we never made
298 use of the distinction, so it only caused source-code complexity
299 and runtime slowdown. Minor but pointless. */
300 MEM_TYPE_VECTORLIKE
34400008
GM
301};
302
f57e2426
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303static POINTER_TYPE *lisp_align_malloc (size_t, enum mem_type);
304static POINTER_TYPE *lisp_malloc (size_t, enum mem_type);
225ccad6 305
24d8a105 306
877935b1 307#if GC_MARK_STACK || defined GC_MALLOC_CHECK
0b378936
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308
309#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
310#include <stdio.h> /* For fprintf. */
311#endif
312
313/* A unique object in pure space used to make some Lisp objects
314 on free lists recognizable in O(1). */
315
d3d47262 316static Lisp_Object Vdead;
0b378936 317
877935b1
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318#ifdef GC_MALLOC_CHECK
319
320enum mem_type allocated_mem_type;
d3d47262 321static int dont_register_blocks;
877935b1
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322
323#endif /* GC_MALLOC_CHECK */
324
325/* A node in the red-black tree describing allocated memory containing
326 Lisp data. Each such block is recorded with its start and end
327 address when it is allocated, and removed from the tree when it
328 is freed.
329
330 A red-black tree is a balanced binary tree with the following
331 properties:
332
333 1. Every node is either red or black.
334 2. Every leaf is black.
335 3. If a node is red, then both of its children are black.
336 4. Every simple path from a node to a descendant leaf contains
337 the same number of black nodes.
338 5. The root is always black.
339
340 When nodes are inserted into the tree, or deleted from the tree,
341 the tree is "fixed" so that these properties are always true.
342
343 A red-black tree with N internal nodes has height at most 2
344 log(N+1). Searches, insertions and deletions are done in O(log N).
345 Please see a text book about data structures for a detailed
346 description of red-black trees. Any book worth its salt should
347 describe them. */
348
349struct mem_node
350{
9f7d9210
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351 /* Children of this node. These pointers are never NULL. When there
352 is no child, the value is MEM_NIL, which points to a dummy node. */
353 struct mem_node *left, *right;
354
355 /* The parent of this node. In the root node, this is NULL. */
356 struct mem_node *parent;
877935b1
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357
358 /* Start and end of allocated region. */
359 void *start, *end;
360
361 /* Node color. */
362 enum {MEM_BLACK, MEM_RED} color;
177c0ea7 363
877935b1
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364 /* Memory type. */
365 enum mem_type type;
366};
367
368/* Base address of stack. Set in main. */
369
370Lisp_Object *stack_base;
371
372/* Root of the tree describing allocated Lisp memory. */
373
374static struct mem_node *mem_root;
375
ece93c02
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376/* Lowest and highest known address in the heap. */
377
378static void *min_heap_address, *max_heap_address;
379
877935b1
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380/* Sentinel node of the tree. */
381
382static struct mem_node mem_z;
383#define MEM_NIL &mem_z
384
d311d28c 385static struct Lisp_Vector *allocate_vectorlike (ptrdiff_t);
f57e2426
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386static void lisp_free (POINTER_TYPE *);
387static void mark_stack (void);
388static int live_vector_p (struct mem_node *, void *);
389static int live_buffer_p (struct mem_node *, void *);
390static int live_string_p (struct mem_node *, void *);
391static int live_cons_p (struct mem_node *, void *);
392static int live_symbol_p (struct mem_node *, void *);
393static int live_float_p (struct mem_node *, void *);
394static int live_misc_p (struct mem_node *, void *);
395static void mark_maybe_object (Lisp_Object);
3164aeac 396static void mark_memory (void *, void *);
f57e2426
J
397static void mem_init (void);
398static struct mem_node *mem_insert (void *, void *, enum mem_type);
399static void mem_insert_fixup (struct mem_node *);
400static void mem_rotate_left (struct mem_node *);
401static void mem_rotate_right (struct mem_node *);
402static void mem_delete (struct mem_node *);
403static void mem_delete_fixup (struct mem_node *);
55d4c1b2 404static inline struct mem_node *mem_find (void *);
34400008 405
34400008
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406
407#if GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS
f57e2426 408static void check_gcpros (void);
34400008
GM
409#endif
410
877935b1 411#endif /* GC_MARK_STACK || GC_MALLOC_CHECK */
34400008 412
1f0b3fd2
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413/* Recording what needs to be marked for gc. */
414
415struct gcpro *gcprolist;
416
379b98b1
PE
417/* Addresses of staticpro'd variables. Initialize it to a nonzero
418 value; otherwise some compilers put it into BSS. */
1f0b3fd2 419
0078170f 420#define NSTATICS 0x640
d3d47262 421static Lisp_Object *staticvec[NSTATICS] = {&Vpurify_flag};
1f0b3fd2
GM
422
423/* Index of next unused slot in staticvec. */
424
d3d47262 425static int staticidx = 0;
1f0b3fd2 426
f57e2426 427static POINTER_TYPE *pure_alloc (size_t, int);
1f0b3fd2
GM
428
429
430/* Value is SZ rounded up to the next multiple of ALIGNMENT.
431 ALIGNMENT must be a power of 2. */
432
ab6780cd 433#define ALIGN(ptr, ALIGNMENT) \
d01a7826 434 ((POINTER_TYPE *) ((((uintptr_t) (ptr)) + (ALIGNMENT) - 1) \
ab6780cd 435 & ~((ALIGNMENT) - 1)))
1f0b3fd2 436
ece93c02 437
7146af97 438\f
34400008
GM
439/************************************************************************
440 Malloc
441 ************************************************************************/
442
4455ad75 443/* Function malloc calls this if it finds we are near exhausting storage. */
d457598b
AS
444
445void
a8fe7202 446malloc_warning (const char *str)
7146af97
JB
447{
448 pending_malloc_warning = str;
449}
450
34400008 451
4455ad75 452/* Display an already-pending malloc warning. */
34400008 453
d457598b 454void
971de7fb 455display_malloc_warning (void)
7146af97 456{
4455ad75
RS
457 call3 (intern ("display-warning"),
458 intern ("alloc"),
459 build_string (pending_malloc_warning),
460 intern ("emergency"));
7146af97 461 pending_malloc_warning = 0;
7146af97 462}
49efed3a 463\f
276cbe5a
RS
464/* Called if we can't allocate relocatable space for a buffer. */
465
466void
d311d28c 467buffer_memory_full (ptrdiff_t nbytes)
276cbe5a 468{
2e471eb5
GM
469 /* If buffers use the relocating allocator, no need to free
470 spare_memory, because we may have plenty of malloc space left
471 that we could get, and if we don't, the malloc that fails will
472 itself cause spare_memory to be freed. If buffers don't use the
473 relocating allocator, treat this like any other failing
474 malloc. */
276cbe5a
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475
476#ifndef REL_ALLOC
531b0165 477 memory_full (nbytes);
276cbe5a
RS
478#endif
479
2e471eb5
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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. */
9b306d37 482 xsignal (Qnil, Vmemory_signal_data);
7146af97
JB
483}
484
34400008 485
c9d624c6 486#ifndef XMALLOC_OVERRUN_CHECK
903fe15d 487#define XMALLOC_OVERRUN_CHECK_OVERHEAD 0
c9d624c6 488#else
212f33f1 489
903fe15d
PE
490/* Check for overrun in malloc'ed buffers by wrapping a header and trailer
491 around each block.
bdbed949 492
f701dc2a
PE
493 The header consists of XMALLOC_OVERRUN_CHECK_SIZE fixed bytes
494 followed by XMALLOC_OVERRUN_SIZE_SIZE bytes containing the original
495 block size in little-endian order. The trailer consists of
496 XMALLOC_OVERRUN_CHECK_SIZE fixed bytes.
bdbed949
KS
497
498 The header is used to detect whether this block has been allocated
f701dc2a
PE
499 through these functions, as some low-level libc functions may
500 bypass the malloc hooks. */
bdbed949 501
212f33f1 502#define XMALLOC_OVERRUN_CHECK_SIZE 16
903fe15d 503#define XMALLOC_OVERRUN_CHECK_OVERHEAD \
38532ce6
PE
504 (2 * XMALLOC_OVERRUN_CHECK_SIZE + XMALLOC_OVERRUN_SIZE_SIZE)
505
506/* Define XMALLOC_OVERRUN_SIZE_SIZE so that (1) it's large enough to
f701dc2a
PE
507 hold a size_t value and (2) the header size is a multiple of the
508 alignment that Emacs needs for C types and for USE_LSB_TAG. */
509#define XMALLOC_BASE_ALIGNMENT \
510 offsetof ( \
511 struct { \
512 union { long double d; intmax_t i; void *p; } u; \
513 char c; \
514 }, \
515 c)
38532ce6 516#ifdef USE_LSB_TAG
f701dc2a
PE
517/* A common multiple of the positive integers A and B. Ideally this
518 would be the least common multiple, but there's no way to do that
519 as a constant expression in C, so do the best that we can easily do. */
520# define COMMON_MULTIPLE(a, b) \
521 ((a) % (b) == 0 ? (a) : (b) % (a) == 0 ? (b) : (a) * (b))
522# define XMALLOC_HEADER_ALIGNMENT \
523 COMMON_MULTIPLE (1 << GCTYPEBITS, XMALLOC_BASE_ALIGNMENT)
38532ce6
PE
524#else
525# define XMALLOC_HEADER_ALIGNMENT XMALLOC_BASE_ALIGNMENT
526#endif
527#define XMALLOC_OVERRUN_SIZE_SIZE \
f701dc2a
PE
528 (((XMALLOC_OVERRUN_CHECK_SIZE + sizeof (size_t) \
529 + XMALLOC_HEADER_ALIGNMENT - 1) \
530 / XMALLOC_HEADER_ALIGNMENT * XMALLOC_HEADER_ALIGNMENT) \
531 - XMALLOC_OVERRUN_CHECK_SIZE)
bdbed949 532
903fe15d
PE
533static char const xmalloc_overrun_check_header[XMALLOC_OVERRUN_CHECK_SIZE] =
534 { '\x9a', '\x9b', '\xae', '\xaf',
535 '\xbf', '\xbe', '\xce', '\xcf',
536 '\xea', '\xeb', '\xec', '\xed',
537 '\xdf', '\xde', '\x9c', '\x9d' };
212f33f1 538
903fe15d
PE
539static char const xmalloc_overrun_check_trailer[XMALLOC_OVERRUN_CHECK_SIZE] =
540 { '\xaa', '\xab', '\xac', '\xad',
541 '\xba', '\xbb', '\xbc', '\xbd',
542 '\xca', '\xcb', '\xcc', '\xcd',
543 '\xda', '\xdb', '\xdc', '\xdd' };
212f33f1 544
903fe15d 545/* Insert and extract the block size in the header. */
bdbed949 546
903fe15d
PE
547static void
548xmalloc_put_size (unsigned char *ptr, size_t size)
549{
550 int i;
38532ce6 551 for (i = 0; i < XMALLOC_OVERRUN_SIZE_SIZE; i++)
903fe15d 552 {
38532ce6 553 *--ptr = size & ((1 << CHAR_BIT) - 1);
903fe15d
PE
554 size >>= CHAR_BIT;
555 }
556}
bdbed949 557
903fe15d
PE
558static size_t
559xmalloc_get_size (unsigned char *ptr)
560{
561 size_t size = 0;
562 int i;
38532ce6
PE
563 ptr -= XMALLOC_OVERRUN_SIZE_SIZE;
564 for (i = 0; i < XMALLOC_OVERRUN_SIZE_SIZE; i++)
903fe15d
PE
565 {
566 size <<= CHAR_BIT;
567 size += *ptr++;
568 }
569 return size;
570}
bdbed949
KS
571
572
d8f165a8
JD
573/* The call depth in overrun_check functions. For example, this might happen:
574 xmalloc()
575 overrun_check_malloc()
576 -> malloc -> (via hook)_-> emacs_blocked_malloc
577 -> overrun_check_malloc
578 call malloc (hooks are NULL, so real malloc is called).
579 malloc returns 10000.
580 add overhead, return 10016.
581 <- (back in overrun_check_malloc)
857ae68b 582 add overhead again, return 10032
d8f165a8 583 xmalloc returns 10032.
857ae68b
JD
584
585 (time passes).
586
d8f165a8
JD
587 xfree(10032)
588 overrun_check_free(10032)
903fe15d 589 decrease overhead
d8f165a8 590 free(10016) <- crash, because 10000 is the original pointer. */
857ae68b 591
903fe15d 592static ptrdiff_t check_depth;
857ae68b 593
bdbed949
KS
594/* Like malloc, but wraps allocated block with header and trailer. */
595
2538aa2f 596static POINTER_TYPE *
e7974947 597overrun_check_malloc (size_t size)
212f33f1 598{
bdbed949 599 register unsigned char *val;
903fe15d
PE
600 int overhead = ++check_depth == 1 ? XMALLOC_OVERRUN_CHECK_OVERHEAD : 0;
601 if (SIZE_MAX - overhead < size)
602 abort ();
212f33f1 603
857ae68b
JD
604 val = (unsigned char *) malloc (size + overhead);
605 if (val && check_depth == 1)
212f33f1 606 {
903fe15d 607 memcpy (val, xmalloc_overrun_check_header, XMALLOC_OVERRUN_CHECK_SIZE);
38532ce6 608 val += XMALLOC_OVERRUN_CHECK_SIZE + XMALLOC_OVERRUN_SIZE_SIZE;
903fe15d 609 xmalloc_put_size (val, size);
72af86bd
AS
610 memcpy (val + size, xmalloc_overrun_check_trailer,
611 XMALLOC_OVERRUN_CHECK_SIZE);
212f33f1 612 }
857ae68b 613 --check_depth;
212f33f1
KS
614 return (POINTER_TYPE *)val;
615}
616
bdbed949
KS
617
618/* Like realloc, but checks old block for overrun, and wraps new block
619 with header and trailer. */
620
2538aa2f 621static POINTER_TYPE *
e7974947 622overrun_check_realloc (POINTER_TYPE *block, size_t size)
212f33f1 623{
e7974947 624 register unsigned char *val = (unsigned char *) block;
903fe15d
PE
625 int overhead = ++check_depth == 1 ? XMALLOC_OVERRUN_CHECK_OVERHEAD : 0;
626 if (SIZE_MAX - overhead < size)
627 abort ();
212f33f1
KS
628
629 if (val
857ae68b 630 && check_depth == 1
72af86bd 631 && memcmp (xmalloc_overrun_check_header,
38532ce6 632 val - XMALLOC_OVERRUN_CHECK_SIZE - XMALLOC_OVERRUN_SIZE_SIZE,
903fe15d 633 XMALLOC_OVERRUN_CHECK_SIZE) == 0)
212f33f1 634 {
903fe15d 635 size_t osize = xmalloc_get_size (val);
72af86bd
AS
636 if (memcmp (xmalloc_overrun_check_trailer, val + osize,
637 XMALLOC_OVERRUN_CHECK_SIZE))
212f33f1 638 abort ();
72af86bd 639 memset (val + osize, 0, XMALLOC_OVERRUN_CHECK_SIZE);
38532ce6
PE
640 val -= XMALLOC_OVERRUN_CHECK_SIZE + XMALLOC_OVERRUN_SIZE_SIZE;
641 memset (val, 0, XMALLOC_OVERRUN_CHECK_SIZE + XMALLOC_OVERRUN_SIZE_SIZE);
212f33f1
KS
642 }
643
857ae68b 644 val = (unsigned char *) realloc ((POINTER_TYPE *)val, size + overhead);
212f33f1 645
857ae68b 646 if (val && check_depth == 1)
212f33f1 647 {
903fe15d 648 memcpy (val, xmalloc_overrun_check_header, XMALLOC_OVERRUN_CHECK_SIZE);
38532ce6 649 val += XMALLOC_OVERRUN_CHECK_SIZE + XMALLOC_OVERRUN_SIZE_SIZE;
903fe15d 650 xmalloc_put_size (val, size);
72af86bd
AS
651 memcpy (val + size, xmalloc_overrun_check_trailer,
652 XMALLOC_OVERRUN_CHECK_SIZE);
212f33f1 653 }
857ae68b 654 --check_depth;
212f33f1
KS
655 return (POINTER_TYPE *)val;
656}
657
bdbed949
KS
658/* Like free, but checks block for overrun. */
659
2538aa2f 660static void
e7974947 661overrun_check_free (POINTER_TYPE *block)
212f33f1 662{
e7974947 663 unsigned char *val = (unsigned char *) block;
212f33f1 664
857ae68b 665 ++check_depth;
212f33f1 666 if (val
857ae68b 667 && check_depth == 1
72af86bd 668 && memcmp (xmalloc_overrun_check_header,
38532ce6 669 val - XMALLOC_OVERRUN_CHECK_SIZE - XMALLOC_OVERRUN_SIZE_SIZE,
903fe15d 670 XMALLOC_OVERRUN_CHECK_SIZE) == 0)
212f33f1 671 {
903fe15d 672 size_t osize = xmalloc_get_size (val);
72af86bd
AS
673 if (memcmp (xmalloc_overrun_check_trailer, val + osize,
674 XMALLOC_OVERRUN_CHECK_SIZE))
212f33f1 675 abort ();
454d7973 676#ifdef XMALLOC_CLEAR_FREE_MEMORY
38532ce6 677 val -= XMALLOC_OVERRUN_CHECK_SIZE + XMALLOC_OVERRUN_SIZE_SIZE;
903fe15d 678 memset (val, 0xff, osize + XMALLOC_OVERRUN_CHECK_OVERHEAD);
454d7973 679#else
72af86bd 680 memset (val + osize, 0, XMALLOC_OVERRUN_CHECK_SIZE);
38532ce6
PE
681 val -= XMALLOC_OVERRUN_CHECK_SIZE + XMALLOC_OVERRUN_SIZE_SIZE;
682 memset (val, 0, XMALLOC_OVERRUN_CHECK_SIZE + XMALLOC_OVERRUN_SIZE_SIZE);
454d7973 683#endif
212f33f1
KS
684 }
685
686 free (val);
857ae68b 687 --check_depth;
212f33f1
KS
688}
689
690#undef malloc
691#undef realloc
692#undef free
693#define malloc overrun_check_malloc
694#define realloc overrun_check_realloc
695#define free overrun_check_free
696#endif
697
dafc79fa
SM
698#ifdef SYNC_INPUT
699/* When using SYNC_INPUT, we don't call malloc from a signal handler, so
700 there's no need to block input around malloc. */
701#define MALLOC_BLOCK_INPUT ((void)0)
702#define MALLOC_UNBLOCK_INPUT ((void)0)
703#else
704#define MALLOC_BLOCK_INPUT BLOCK_INPUT
705#define MALLOC_UNBLOCK_INPUT UNBLOCK_INPUT
706#endif
bdbed949 707
34400008 708/* Like malloc but check for no memory and block interrupt input.. */
7146af97 709
c971ff9a 710POINTER_TYPE *
971de7fb 711xmalloc (size_t size)
7146af97 712{
c971ff9a 713 register POINTER_TYPE *val;
7146af97 714
dafc79fa 715 MALLOC_BLOCK_INPUT;
c971ff9a 716 val = (POINTER_TYPE *) malloc (size);
dafc79fa 717 MALLOC_UNBLOCK_INPUT;
7146af97 718
2e471eb5 719 if (!val && size)
531b0165 720 memory_full (size);
7146af97
JB
721 return val;
722}
723
34400008
GM
724
725/* Like realloc but check for no memory and block interrupt input.. */
726
c971ff9a 727POINTER_TYPE *
971de7fb 728xrealloc (POINTER_TYPE *block, size_t size)
7146af97 729{
c971ff9a 730 register POINTER_TYPE *val;
7146af97 731
dafc79fa 732 MALLOC_BLOCK_INPUT;
56d2031b
JB
733 /* We must call malloc explicitly when BLOCK is 0, since some
734 reallocs don't do this. */
735 if (! block)
c971ff9a 736 val = (POINTER_TYPE *) malloc (size);
f048679d 737 else
c971ff9a 738 val = (POINTER_TYPE *) realloc (block, size);
dafc79fa 739 MALLOC_UNBLOCK_INPUT;
7146af97 740
531b0165
PE
741 if (!val && size)
742 memory_full (size);
7146af97
JB
743 return val;
744}
9ac0d9e0 745
34400008 746
005ca5c7 747/* Like free but block interrupt input. */
34400008 748
9ac0d9e0 749void
971de7fb 750xfree (POINTER_TYPE *block)
9ac0d9e0 751{
70fdbb46
JM
752 if (!block)
753 return;
dafc79fa 754 MALLOC_BLOCK_INPUT;
9ac0d9e0 755 free (block);
dafc79fa 756 MALLOC_UNBLOCK_INPUT;
24d8a105
RS
757 /* We don't call refill_memory_reserve here
758 because that duplicates doing so in emacs_blocked_free
759 and the criterion should go there. */
9ac0d9e0
JB
760}
761
c8099634 762
0065d054
PE
763/* Other parts of Emacs pass large int values to allocator functions
764 expecting ptrdiff_t. This is portable in practice, but check it to
765 be safe. */
766verify (INT_MAX <= PTRDIFF_MAX);
767
768
769/* Allocate an array of NITEMS items, each of size ITEM_SIZE.
770 Signal an error on memory exhaustion, and block interrupt input. */
771
772void *
773xnmalloc (ptrdiff_t nitems, ptrdiff_t item_size)
774{
775 xassert (0 <= nitems && 0 < item_size);
776 if (min (PTRDIFF_MAX, SIZE_MAX) / item_size < nitems)
777 memory_full (SIZE_MAX);
778 return xmalloc (nitems * item_size);
779}
780
781
782/* Reallocate an array PA to make it of NITEMS items, each of size ITEM_SIZE.
783 Signal an error on memory exhaustion, and block interrupt input. */
784
785void *
786xnrealloc (void *pa, ptrdiff_t nitems, ptrdiff_t item_size)
787{
788 xassert (0 <= nitems && 0 < item_size);
789 if (min (PTRDIFF_MAX, SIZE_MAX) / item_size < nitems)
790 memory_full (SIZE_MAX);
791 return xrealloc (pa, nitems * item_size);
792}
793
794
795/* Grow PA, which points to an array of *NITEMS items, and return the
796 location of the reallocated array, updating *NITEMS to reflect its
797 new size. The new array will contain at least NITEMS_INCR_MIN more
798 items, but will not contain more than NITEMS_MAX items total.
799 ITEM_SIZE is the size of each item, in bytes.
800
801 ITEM_SIZE and NITEMS_INCR_MIN must be positive. *NITEMS must be
802 nonnegative. If NITEMS_MAX is -1, it is treated as if it were
803 infinity.
804
805 If PA is null, then allocate a new array instead of reallocating
806 the old one. Thus, to grow an array A without saving its old
807 contents, invoke xfree (A) immediately followed by xgrowalloc (0,
808 &NITEMS, ...).
809
810 Block interrupt input as needed. If memory exhaustion occurs, set
811 *NITEMS to zero if PA is null, and signal an error (i.e., do not
812 return). */
813
814void *
815xpalloc (void *pa, ptrdiff_t *nitems, ptrdiff_t nitems_incr_min,
816 ptrdiff_t nitems_max, ptrdiff_t item_size)
817{
818 /* The approximate size to use for initial small allocation
819 requests. This is the largest "small" request for the GNU C
820 library malloc. */
821 enum { DEFAULT_MXFAST = 64 * sizeof (size_t) / 4 };
822
823 /* If the array is tiny, grow it to about (but no greater than)
824 DEFAULT_MXFAST bytes. Otherwise, grow it by about 50%. */
825 ptrdiff_t n = *nitems;
826 ptrdiff_t tiny_max = DEFAULT_MXFAST / item_size - n;
827 ptrdiff_t half_again = n >> 1;
828 ptrdiff_t incr_estimate = max (tiny_max, half_again);
829
830 /* Adjust the increment according to three constraints: NITEMS_INCR_MIN,
831 NITEMS_MAX, and what the C language can represent safely. */
832 ptrdiff_t C_language_max = min (PTRDIFF_MAX, SIZE_MAX) / item_size;
833 ptrdiff_t n_max = (0 <= nitems_max && nitems_max < C_language_max
834 ? nitems_max : C_language_max);
835 ptrdiff_t nitems_incr_max = n_max - n;
836 ptrdiff_t incr = max (nitems_incr_min, min (incr_estimate, nitems_incr_max));
837
838 xassert (0 < item_size && 0 < nitems_incr_min && 0 <= n && -1 <= nitems_max);
839 if (! pa)
840 *nitems = 0;
841 if (nitems_incr_max < incr)
842 memory_full (SIZE_MAX);
843 n += incr;
844 pa = xrealloc (pa, n * item_size);
845 *nitems = n;
846 return pa;
847}
848
849
dca7c6a8
GM
850/* Like strdup, but uses xmalloc. */
851
852char *
971de7fb 853xstrdup (const char *s)
dca7c6a8 854{
675d5130 855 size_t len = strlen (s) + 1;
dca7c6a8 856 char *p = (char *) xmalloc (len);
72af86bd 857 memcpy (p, s, len);
dca7c6a8
GM
858 return p;
859}
860
861
f61bef8b
KS
862/* Unwind for SAFE_ALLOCA */
863
864Lisp_Object
971de7fb 865safe_alloca_unwind (Lisp_Object arg)
f61bef8b 866{
b766f870
KS
867 register struct Lisp_Save_Value *p = XSAVE_VALUE (arg);
868
869 p->dogc = 0;
870 xfree (p->pointer);
871 p->pointer = 0;
7b7990cc 872 free_misc (arg);
f61bef8b
KS
873 return Qnil;
874}
875
876
34400008
GM
877/* Like malloc but used for allocating Lisp data. NBYTES is the
878 number of bytes to allocate, TYPE describes the intended use of the
879 allcated memory block (for strings, for conses, ...). */
880
212f33f1 881#ifndef USE_LSB_TAG
918a23a7 882static void *lisp_malloc_loser;
212f33f1 883#endif
918a23a7 884
675d5130 885static POINTER_TYPE *
971de7fb 886lisp_malloc (size_t nbytes, enum mem_type type)
c8099634 887{
34400008 888 register void *val;
c8099634 889
dafc79fa 890 MALLOC_BLOCK_INPUT;
877935b1
GM
891
892#ifdef GC_MALLOC_CHECK
893 allocated_mem_type = type;
894#endif
177c0ea7 895
34400008 896 val = (void *) malloc (nbytes);
c8099634 897
6b61353c 898#ifndef USE_LSB_TAG
918a23a7
RS
899 /* If the memory just allocated cannot be addressed thru a Lisp
900 object's pointer, and it needs to be,
901 that's equivalent to running out of memory. */
902 if (val && type != MEM_TYPE_NON_LISP)
903 {
904 Lisp_Object tem;
905 XSETCONS (tem, (char *) val + nbytes - 1);
906 if ((char *) XCONS (tem) != (char *) val + nbytes - 1)
907 {
908 lisp_malloc_loser = val;
909 free (val);
910 val = 0;
911 }
912 }
6b61353c 913#endif
918a23a7 914
877935b1 915#if GC_MARK_STACK && !defined GC_MALLOC_CHECK
dca7c6a8 916 if (val && type != MEM_TYPE_NON_LISP)
34400008
GM
917 mem_insert (val, (char *) val + nbytes, type);
918#endif
177c0ea7 919
dafc79fa 920 MALLOC_UNBLOCK_INPUT;
dca7c6a8 921 if (!val && nbytes)
531b0165 922 memory_full (nbytes);
c8099634
RS
923 return val;
924}
925
34400008
GM
926/* Free BLOCK. This must be called to free memory allocated with a
927 call to lisp_malloc. */
928
bf952fb6 929static void
971de7fb 930lisp_free (POINTER_TYPE *block)
c8099634 931{
dafc79fa 932 MALLOC_BLOCK_INPUT;
c8099634 933 free (block);
877935b1 934#if GC_MARK_STACK && !defined GC_MALLOC_CHECK
34400008
GM
935 mem_delete (mem_find (block));
936#endif
dafc79fa 937 MALLOC_UNBLOCK_INPUT;
c8099634 938}
34400008 939
ab6780cd
SM
940/* Allocation of aligned blocks of memory to store Lisp data. */
941/* The entry point is lisp_align_malloc which returns blocks of at most */
942/* BLOCK_BYTES and guarantees they are aligned on a BLOCK_ALIGN boundary. */
943
349a4500
SM
944/* Use posix_memalloc if the system has it and we're using the system's
945 malloc (because our gmalloc.c routines don't have posix_memalign although
946 its memalloc could be used). */
b4181b01
KS
947#if defined (HAVE_POSIX_MEMALIGN) && defined (SYSTEM_MALLOC)
948#define USE_POSIX_MEMALIGN 1
949#endif
ab6780cd
SM
950
951/* BLOCK_ALIGN has to be a power of 2. */
952#define BLOCK_ALIGN (1 << 10)
ab6780cd
SM
953
954/* Padding to leave at the end of a malloc'd block. This is to give
955 malloc a chance to minimize the amount of memory wasted to alignment.
956 It should be tuned to the particular malloc library used.
19bcad1f
SM
957 On glibc-2.3.2, malloc never tries to align, so a padding of 0 is best.
958 posix_memalign on the other hand would ideally prefer a value of 4
959 because otherwise, there's 1020 bytes wasted between each ablocks.
f501ccb4
SM
960 In Emacs, testing shows that those 1020 can most of the time be
961 efficiently used by malloc to place other objects, so a value of 0 can
962 still preferable unless you have a lot of aligned blocks and virtually
963 nothing else. */
19bcad1f
SM
964#define BLOCK_PADDING 0
965#define BLOCK_BYTES \
0b432f21 966 (BLOCK_ALIGN - sizeof (struct ablocks *) - BLOCK_PADDING)
19bcad1f
SM
967
968/* Internal data structures and constants. */
969
ab6780cd
SM
970#define ABLOCKS_SIZE 16
971
972/* An aligned block of memory. */
973struct ablock
974{
975 union
976 {
977 char payload[BLOCK_BYTES];
978 struct ablock *next_free;
979 } x;
980 /* `abase' is the aligned base of the ablocks. */
981 /* It is overloaded to hold the virtual `busy' field that counts
982 the number of used ablock in the parent ablocks.
983 The first ablock has the `busy' field, the others have the `abase'
984 field. To tell the difference, we assume that pointers will have
985 integer values larger than 2 * ABLOCKS_SIZE. The lowest bit of `busy'
986 is used to tell whether the real base of the parent ablocks is `abase'
987 (if not, the word before the first ablock holds a pointer to the
988 real base). */
989 struct ablocks *abase;
990 /* The padding of all but the last ablock is unused. The padding of
991 the last ablock in an ablocks is not allocated. */
19bcad1f
SM
992#if BLOCK_PADDING
993 char padding[BLOCK_PADDING];
ebb8d410 994#endif
ab6780cd
SM
995};
996
997/* A bunch of consecutive aligned blocks. */
998struct ablocks
999{
1000 struct ablock blocks[ABLOCKS_SIZE];
1001};
1002
1003/* Size of the block requested from malloc or memalign. */
19bcad1f 1004#define ABLOCKS_BYTES (sizeof (struct ablocks) - BLOCK_PADDING)
ab6780cd
SM
1005
1006#define ABLOCK_ABASE(block) \
d01a7826 1007 (((uintptr_t) (block)->abase) <= (1 + 2 * ABLOCKS_SIZE) \
ab6780cd
SM
1008 ? (struct ablocks *)(block) \
1009 : (block)->abase)
1010
1011/* Virtual `busy' field. */
1012#define ABLOCKS_BUSY(abase) ((abase)->blocks[0].abase)
1013
1014/* Pointer to the (not necessarily aligned) malloc block. */
349a4500 1015#ifdef USE_POSIX_MEMALIGN
19bcad1f
SM
1016#define ABLOCKS_BASE(abase) (abase)
1017#else
ab6780cd 1018#define ABLOCKS_BASE(abase) \
d01a7826 1019 (1 & (intptr_t) ABLOCKS_BUSY (abase) ? abase : ((void**)abase)[-1])
19bcad1f 1020#endif
ab6780cd
SM
1021
1022/* The list of free ablock. */
1023static struct ablock *free_ablock;
1024
1025/* Allocate an aligned block of nbytes.
1026 Alignment is on a multiple of BLOCK_ALIGN and `nbytes' has to be
1027 smaller or equal to BLOCK_BYTES. */
1028static POINTER_TYPE *
971de7fb 1029lisp_align_malloc (size_t nbytes, enum mem_type type)
ab6780cd
SM
1030{
1031 void *base, *val;
1032 struct ablocks *abase;
1033
1034 eassert (nbytes <= BLOCK_BYTES);
1035
dafc79fa 1036 MALLOC_BLOCK_INPUT;
ab6780cd
SM
1037
1038#ifdef GC_MALLOC_CHECK
1039 allocated_mem_type = type;
1040#endif
1041
1042 if (!free_ablock)
1043 {
005ca5c7 1044 int i;
d01a7826 1045 intptr_t aligned; /* int gets warning casting to 64-bit pointer. */
ab6780cd
SM
1046
1047#ifdef DOUG_LEA_MALLOC
1048 /* Prevent mmap'ing the chunk. Lisp data may not be mmap'ed
1049 because mapped region contents are not preserved in
1050 a dumped Emacs. */
1051 mallopt (M_MMAP_MAX, 0);
1052#endif
1053
349a4500 1054#ifdef USE_POSIX_MEMALIGN
19bcad1f
SM
1055 {
1056 int err = posix_memalign (&base, BLOCK_ALIGN, ABLOCKS_BYTES);
ab349c19
RS
1057 if (err)
1058 base = NULL;
1059 abase = base;
19bcad1f
SM
1060 }
1061#else
ab6780cd
SM
1062 base = malloc (ABLOCKS_BYTES);
1063 abase = ALIGN (base, BLOCK_ALIGN);
ab349c19
RS
1064#endif
1065
6b61353c
KH
1066 if (base == 0)
1067 {
dafc79fa 1068 MALLOC_UNBLOCK_INPUT;
531b0165 1069 memory_full (ABLOCKS_BYTES);
6b61353c 1070 }
ab6780cd
SM
1071
1072 aligned = (base == abase);
1073 if (!aligned)
1074 ((void**)abase)[-1] = base;
1075
1076#ifdef DOUG_LEA_MALLOC
1077 /* Back to a reasonable maximum of mmap'ed areas. */
1078 mallopt (M_MMAP_MAX, MMAP_MAX_AREAS);
1079#endif
1080
6b61353c 1081#ifndef USE_LSB_TAG
8f924df7
KH
1082 /* If the memory just allocated cannot be addressed thru a Lisp
1083 object's pointer, and it needs to be, that's equivalent to
1084 running out of memory. */
1085 if (type != MEM_TYPE_NON_LISP)
1086 {
1087 Lisp_Object tem;
1088 char *end = (char *) base + ABLOCKS_BYTES - 1;
1089 XSETCONS (tem, end);
1090 if ((char *) XCONS (tem) != end)
1091 {
1092 lisp_malloc_loser = base;
1093 free (base);
dafc79fa 1094 MALLOC_UNBLOCK_INPUT;
531b0165 1095 memory_full (SIZE_MAX);
8f924df7
KH
1096 }
1097 }
6b61353c 1098#endif
8f924df7 1099
ab6780cd
SM
1100 /* Initialize the blocks and put them on the free list.
1101 Is `base' was not properly aligned, we can't use the last block. */
1102 for (i = 0; i < (aligned ? ABLOCKS_SIZE : ABLOCKS_SIZE - 1); i++)
1103 {
1104 abase->blocks[i].abase = abase;
1105 abase->blocks[i].x.next_free = free_ablock;
1106 free_ablock = &abase->blocks[i];
1107 }
8ac068ac 1108 ABLOCKS_BUSY (abase) = (struct ablocks *) aligned;
ab6780cd 1109
d01a7826 1110 eassert (0 == ((uintptr_t) abase) % BLOCK_ALIGN);
ab6780cd
SM
1111 eassert (ABLOCK_ABASE (&abase->blocks[3]) == abase); /* 3 is arbitrary */
1112 eassert (ABLOCK_ABASE (&abase->blocks[0]) == abase);
1113 eassert (ABLOCKS_BASE (abase) == base);
d01a7826 1114 eassert (aligned == (intptr_t) ABLOCKS_BUSY (abase));
ab6780cd
SM
1115 }
1116
1117 abase = ABLOCK_ABASE (free_ablock);
8ac068ac 1118 ABLOCKS_BUSY (abase) =
d01a7826 1119 (struct ablocks *) (2 + (intptr_t) ABLOCKS_BUSY (abase));
ab6780cd
SM
1120 val = free_ablock;
1121 free_ablock = free_ablock->x.next_free;
1122
ab6780cd 1123#if GC_MARK_STACK && !defined GC_MALLOC_CHECK
3687c2ef 1124 if (type != MEM_TYPE_NON_LISP)
ab6780cd
SM
1125 mem_insert (val, (char *) val + nbytes, type);
1126#endif
1127
dafc79fa 1128 MALLOC_UNBLOCK_INPUT;
ab6780cd 1129
d01a7826 1130 eassert (0 == ((uintptr_t) val) % BLOCK_ALIGN);
ab6780cd
SM
1131 return val;
1132}
1133
1134static void
971de7fb 1135lisp_align_free (POINTER_TYPE *block)
ab6780cd
SM
1136{
1137 struct ablock *ablock = block;
1138 struct ablocks *abase = ABLOCK_ABASE (ablock);
1139
dafc79fa 1140 MALLOC_BLOCK_INPUT;
ab6780cd
SM
1141#if GC_MARK_STACK && !defined GC_MALLOC_CHECK
1142 mem_delete (mem_find (block));
1143#endif
1144 /* Put on free list. */
1145 ablock->x.next_free = free_ablock;
1146 free_ablock = ablock;
1147 /* Update busy count. */
8ac068ac 1148 ABLOCKS_BUSY (abase) =
d01a7826 1149 (struct ablocks *) (-2 + (intptr_t) ABLOCKS_BUSY (abase));
d2db1c32 1150
d01a7826 1151 if (2 > (intptr_t) ABLOCKS_BUSY (abase))
ab6780cd 1152 { /* All the blocks are free. */
d01a7826 1153 int i = 0, aligned = (intptr_t) ABLOCKS_BUSY (abase);
ab6780cd
SM
1154 struct ablock **tem = &free_ablock;
1155 struct ablock *atop = &abase->blocks[aligned ? ABLOCKS_SIZE : ABLOCKS_SIZE - 1];
1156
1157 while (*tem)
1158 {
1159 if (*tem >= (struct ablock *) abase && *tem < atop)
1160 {
1161 i++;
1162 *tem = (*tem)->x.next_free;
1163 }
1164 else
1165 tem = &(*tem)->x.next_free;
1166 }
1167 eassert ((aligned & 1) == aligned);
1168 eassert (i == (aligned ? ABLOCKS_SIZE : ABLOCKS_SIZE - 1));
349a4500 1169#ifdef USE_POSIX_MEMALIGN
d01a7826 1170 eassert ((uintptr_t) ABLOCKS_BASE (abase) % BLOCK_ALIGN == 0);
cfb2f32e 1171#endif
ab6780cd
SM
1172 free (ABLOCKS_BASE (abase));
1173 }
dafc79fa 1174 MALLOC_UNBLOCK_INPUT;
ab6780cd 1175}
3ef06d12
SM
1176
1177/* Return a new buffer structure allocated from the heap with
1178 a call to lisp_malloc. */
1179
1180struct buffer *
971de7fb 1181allocate_buffer (void)
3ef06d12
SM
1182{
1183 struct buffer *b
1184 = (struct buffer *) lisp_malloc (sizeof (struct buffer),
1185 MEM_TYPE_BUFFER);
eab3844f
PE
1186 XSETPVECTYPESIZE (b, PVEC_BUFFER,
1187 ((sizeof (struct buffer) + sizeof (EMACS_INT) - 1)
1188 / sizeof (EMACS_INT)));
3ef06d12
SM
1189 return b;
1190}
1191
9ac0d9e0 1192\f
026cdede
SM
1193#ifndef SYSTEM_MALLOC
1194
9ac0d9e0
JB
1195/* Arranging to disable input signals while we're in malloc.
1196
1197 This only works with GNU malloc. To help out systems which can't
1198 use GNU malloc, all the calls to malloc, realloc, and free
1199 elsewhere in the code should be inside a BLOCK_INPUT/UNBLOCK_INPUT
026cdede 1200 pair; unfortunately, we have no idea what C library functions
9ac0d9e0 1201 might call malloc, so we can't really protect them unless you're
2c5bd608
DL
1202 using GNU malloc. Fortunately, most of the major operating systems
1203 can use GNU malloc. */
9ac0d9e0 1204
026cdede 1205#ifndef SYNC_INPUT
dafc79fa
SM
1206/* When using SYNC_INPUT, we don't call malloc from a signal handler, so
1207 there's no need to block input around malloc. */
026cdede 1208
b3303f74 1209#ifndef DOUG_LEA_MALLOC
f57e2426
J
1210extern void * (*__malloc_hook) (size_t, const void *);
1211extern void * (*__realloc_hook) (void *, size_t, const void *);
1212extern void (*__free_hook) (void *, const void *);
b3303f74
DL
1213/* Else declared in malloc.h, perhaps with an extra arg. */
1214#endif /* DOUG_LEA_MALLOC */
f57e2426
J
1215static void * (*old_malloc_hook) (size_t, const void *);
1216static void * (*old_realloc_hook) (void *, size_t, const void*);
1217static void (*old_free_hook) (void*, const void*);
9ac0d9e0 1218
4e75f29d
PE
1219#ifdef DOUG_LEA_MALLOC
1220# define BYTES_USED (mallinfo ().uordblks)
1221#else
1222# define BYTES_USED _bytes_used
1223#endif
1224
5e927815 1225static size_t bytes_used_when_reconsidered;
ef1b0ba7 1226
4e75f29d
PE
1227/* Value of _bytes_used, when spare_memory was freed. */
1228
5e927815 1229static size_t bytes_used_when_full;
4e75f29d 1230
276cbe5a
RS
1231/* This function is used as the hook for free to call. */
1232
9ac0d9e0 1233static void
7c3320d8 1234emacs_blocked_free (void *ptr, const void *ptr2)
9ac0d9e0 1235{
aa477689 1236 BLOCK_INPUT_ALLOC;
877935b1
GM
1237
1238#ifdef GC_MALLOC_CHECK
a83fee2c
GM
1239 if (ptr)
1240 {
1241 struct mem_node *m;
177c0ea7 1242
a83fee2c
GM
1243 m = mem_find (ptr);
1244 if (m == MEM_NIL || m->start != ptr)
1245 {
1246 fprintf (stderr,
1247 "Freeing `%p' which wasn't allocated with malloc\n", ptr);
1248 abort ();
1249 }
1250 else
1251 {
1252 /* fprintf (stderr, "free %p...%p (%p)\n", m->start, m->end, ptr); */
1253 mem_delete (m);
1254 }
1255 }
877935b1 1256#endif /* GC_MALLOC_CHECK */
177c0ea7 1257
9ac0d9e0
JB
1258 __free_hook = old_free_hook;
1259 free (ptr);
177c0ea7 1260
276cbe5a
RS
1261 /* If we released our reserve (due to running out of memory),
1262 and we have a fair amount free once again,
1263 try to set aside another reserve in case we run out once more. */
24d8a105 1264 if (! NILP (Vmemory_full)
276cbe5a
RS
1265 /* Verify there is enough space that even with the malloc
1266 hysteresis this call won't run out again.
1267 The code here is correct as long as SPARE_MEMORY
1268 is substantially larger than the block size malloc uses. */
1269 && (bytes_used_when_full
4d74a5fc 1270 > ((bytes_used_when_reconsidered = BYTES_USED)
bccfb310 1271 + max (malloc_hysteresis, 4) * SPARE_MEMORY)))
24d8a105 1272 refill_memory_reserve ();
276cbe5a 1273
b0846f52 1274 __free_hook = emacs_blocked_free;
aa477689 1275 UNBLOCK_INPUT_ALLOC;
9ac0d9e0
JB
1276}
1277
34400008 1278
276cbe5a
RS
1279/* This function is the malloc hook that Emacs uses. */
1280
9ac0d9e0 1281static void *
7c3320d8 1282emacs_blocked_malloc (size_t size, const void *ptr)
9ac0d9e0
JB
1283{
1284 void *value;
1285
aa477689 1286 BLOCK_INPUT_ALLOC;
9ac0d9e0 1287 __malloc_hook = old_malloc_hook;
1177ecf6 1288#ifdef DOUG_LEA_MALLOC
5665a02f
KL
1289 /* Segfaults on my system. --lorentey */
1290 /* mallopt (M_TOP_PAD, malloc_hysteresis * 4096); */
1177ecf6 1291#else
d1658221 1292 __malloc_extra_blocks = malloc_hysteresis;
1177ecf6 1293#endif
877935b1 1294
2756d8ee 1295 value = (void *) malloc (size);
877935b1
GM
1296
1297#ifdef GC_MALLOC_CHECK
1298 {
1299 struct mem_node *m = mem_find (value);
1300 if (m != MEM_NIL)
1301 {
1302 fprintf (stderr, "Malloc returned %p which is already in use\n",
1303 value);
1304 fprintf (stderr, "Region in use is %p...%p, %u bytes, type %d\n",
1305 m->start, m->end, (char *) m->end - (char *) m->start,
1306 m->type);
1307 abort ();
1308 }
1309
1310 if (!dont_register_blocks)
1311 {
1312 mem_insert (value, (char *) value + max (1, size), allocated_mem_type);
1313 allocated_mem_type = MEM_TYPE_NON_LISP;
1314 }
1315 }
1316#endif /* GC_MALLOC_CHECK */
177c0ea7 1317
b0846f52 1318 __malloc_hook = emacs_blocked_malloc;
aa477689 1319 UNBLOCK_INPUT_ALLOC;
9ac0d9e0 1320
877935b1 1321 /* fprintf (stderr, "%p malloc\n", value); */
9ac0d9e0
JB
1322 return value;
1323}
1324
34400008
GM
1325
1326/* This function is the realloc hook that Emacs uses. */
1327
9ac0d9e0 1328static void *
7c3320d8 1329emacs_blocked_realloc (void *ptr, size_t size, const void *ptr2)
9ac0d9e0
JB
1330{
1331 void *value;
1332
aa477689 1333 BLOCK_INPUT_ALLOC;
9ac0d9e0 1334 __realloc_hook = old_realloc_hook;
877935b1
GM
1335
1336#ifdef GC_MALLOC_CHECK
1337 if (ptr)
1338 {
1339 struct mem_node *m = mem_find (ptr);
1340 if (m == MEM_NIL || m->start != ptr)
1341 {
1342 fprintf (stderr,
1343 "Realloc of %p which wasn't allocated with malloc\n",
1344 ptr);
1345 abort ();
1346 }
1347
1348 mem_delete (m);
1349 }
177c0ea7 1350
877935b1 1351 /* fprintf (stderr, "%p -> realloc\n", ptr); */
177c0ea7 1352
877935b1
GM
1353 /* Prevent malloc from registering blocks. */
1354 dont_register_blocks = 1;
1355#endif /* GC_MALLOC_CHECK */
1356
2756d8ee 1357 value = (void *) realloc (ptr, size);
877935b1
GM
1358
1359#ifdef GC_MALLOC_CHECK
1360 dont_register_blocks = 0;
1361
1362 {
1363 struct mem_node *m = mem_find (value);
1364 if (m != MEM_NIL)
1365 {
1366 fprintf (stderr, "Realloc returns memory that is already in use\n");
1367 abort ();
1368 }
1369
1370 /* Can't handle zero size regions in the red-black tree. */
1371 mem_insert (value, (char *) value + max (size, 1), MEM_TYPE_NON_LISP);
1372 }
177c0ea7 1373
877935b1
GM
1374 /* fprintf (stderr, "%p <- realloc\n", value); */
1375#endif /* GC_MALLOC_CHECK */
177c0ea7 1376
b0846f52 1377 __realloc_hook = emacs_blocked_realloc;
aa477689 1378 UNBLOCK_INPUT_ALLOC;
9ac0d9e0
JB
1379
1380 return value;
1381}
1382
34400008 1383
ae9e757a 1384#ifdef HAVE_PTHREAD
aa477689
JD
1385/* Called from Fdump_emacs so that when the dumped Emacs starts, it has a
1386 normal malloc. Some thread implementations need this as they call
1387 malloc before main. The pthread_self call in BLOCK_INPUT_ALLOC then
1388 calls malloc because it is the first call, and we have an endless loop. */
1389
1390void
268c2c36 1391reset_malloc_hooks (void)
aa477689 1392{
4d580af2
AS
1393 __free_hook = old_free_hook;
1394 __malloc_hook = old_malloc_hook;
1395 __realloc_hook = old_realloc_hook;
aa477689 1396}
ae9e757a 1397#endif /* HAVE_PTHREAD */
aa477689
JD
1398
1399
34400008
GM
1400/* Called from main to set up malloc to use our hooks. */
1401
9ac0d9e0 1402void
7c3320d8 1403uninterrupt_malloc (void)
9ac0d9e0 1404{
ae9e757a 1405#ifdef HAVE_PTHREAD
a1b41389 1406#ifdef DOUG_LEA_MALLOC
aa477689
JD
1407 pthread_mutexattr_t attr;
1408
1409 /* GLIBC has a faster way to do this, but lets keep it portable.
1410 This is according to the Single UNIX Specification. */
1411 pthread_mutexattr_init (&attr);
1412 pthread_mutexattr_settype (&attr, PTHREAD_MUTEX_RECURSIVE);
1413 pthread_mutex_init (&alloc_mutex, &attr);
a1b41389 1414#else /* !DOUG_LEA_MALLOC */
ce5b453a 1415 /* Some systems such as Solaris 2.6 don't have a recursive mutex,
a1b41389
YM
1416 and the bundled gmalloc.c doesn't require it. */
1417 pthread_mutex_init (&alloc_mutex, NULL);
1418#endif /* !DOUG_LEA_MALLOC */
ae9e757a 1419#endif /* HAVE_PTHREAD */
aa477689 1420
c8099634
RS
1421 if (__free_hook != emacs_blocked_free)
1422 old_free_hook = __free_hook;
b0846f52 1423 __free_hook = emacs_blocked_free;
9ac0d9e0 1424
c8099634
RS
1425 if (__malloc_hook != emacs_blocked_malloc)
1426 old_malloc_hook = __malloc_hook;
b0846f52 1427 __malloc_hook = emacs_blocked_malloc;
9ac0d9e0 1428
c8099634
RS
1429 if (__realloc_hook != emacs_blocked_realloc)
1430 old_realloc_hook = __realloc_hook;
b0846f52 1431 __realloc_hook = emacs_blocked_realloc;
9ac0d9e0 1432}
2e471eb5 1433
026cdede 1434#endif /* not SYNC_INPUT */
2e471eb5
GM
1435#endif /* not SYSTEM_MALLOC */
1436
1437
7146af97 1438\f
2e471eb5
GM
1439/***********************************************************************
1440 Interval Allocation
1441 ***********************************************************************/
1a4f1e2c 1442
34400008
GM
1443/* Number of intervals allocated in an interval_block structure.
1444 The 1020 is 1024 minus malloc overhead. */
1445
d5e35230
JA
1446#define INTERVAL_BLOCK_SIZE \
1447 ((1020 - sizeof (struct interval_block *)) / sizeof (struct interval))
1448
34400008
GM
1449/* Intervals are allocated in chunks in form of an interval_block
1450 structure. */
1451
d5e35230 1452struct interval_block
2e471eb5 1453{
6b61353c 1454 /* Place `intervals' first, to preserve alignment. */
2e471eb5 1455 struct interval intervals[INTERVAL_BLOCK_SIZE];
6b61353c 1456 struct interval_block *next;
2e471eb5 1457};
d5e35230 1458
34400008
GM
1459/* Current interval block. Its `next' pointer points to older
1460 blocks. */
1461
d3d47262 1462static struct interval_block *interval_block;
34400008
GM
1463
1464/* Index in interval_block above of the next unused interval
1465 structure. */
1466
d5e35230 1467static int interval_block_index;
34400008
GM
1468
1469/* Number of free and live intervals. */
1470
c0c5c8ae 1471static EMACS_INT total_free_intervals, total_intervals;
d5e35230 1472
34400008
GM
1473/* List of free intervals. */
1474
244ed907 1475static INTERVAL interval_free_list;
d5e35230 1476
34400008
GM
1477
1478/* Initialize interval allocation. */
1479
d5e35230 1480static void
971de7fb 1481init_intervals (void)
d5e35230 1482{
005ca5c7
DL
1483 interval_block = NULL;
1484 interval_block_index = INTERVAL_BLOCK_SIZE;
d5e35230
JA
1485 interval_free_list = 0;
1486}
1487
34400008
GM
1488
1489/* Return a new interval. */
d5e35230
JA
1490
1491INTERVAL
971de7fb 1492make_interval (void)
d5e35230
JA
1493{
1494 INTERVAL val;
1495
e2984df0
CY
1496 /* eassert (!handling_signal); */
1497
dafc79fa 1498 MALLOC_BLOCK_INPUT;
cfb2f32e 1499
d5e35230
JA
1500 if (interval_free_list)
1501 {
1502 val = interval_free_list;
439d5cb4 1503 interval_free_list = INTERVAL_PARENT (interval_free_list);
d5e35230
JA
1504 }
1505 else
1506 {
1507 if (interval_block_index == INTERVAL_BLOCK_SIZE)
1508 {
3c06d205
KH
1509 register struct interval_block *newi;
1510
34400008
GM
1511 newi = (struct interval_block *) lisp_malloc (sizeof *newi,
1512 MEM_TYPE_NON_LISP);
d5e35230 1513
d5e35230
JA
1514 newi->next = interval_block;
1515 interval_block = newi;
1516 interval_block_index = 0;
1517 }
1518 val = &interval_block->intervals[interval_block_index++];
1519 }
e2984df0 1520
dafc79fa 1521 MALLOC_UNBLOCK_INPUT;
e2984df0 1522
d5e35230 1523 consing_since_gc += sizeof (struct interval);
310ea200 1524 intervals_consed++;
d5e35230 1525 RESET_INTERVAL (val);
2336fe58 1526 val->gcmarkbit = 0;
d5e35230
JA
1527 return val;
1528}
1529
34400008
GM
1530
1531/* Mark Lisp objects in interval I. */
d5e35230
JA
1532
1533static void
971de7fb 1534mark_interval (register INTERVAL i, Lisp_Object dummy)
d5e35230 1535{
2336fe58
SM
1536 eassert (!i->gcmarkbit); /* Intervals are never shared. */
1537 i->gcmarkbit = 1;
49723c04 1538 mark_object (i->plist);
d5e35230
JA
1539}
1540
34400008
GM
1541
1542/* Mark the interval tree rooted in TREE. Don't call this directly;
1543 use the macro MARK_INTERVAL_TREE instead. */
1544
d5e35230 1545static void
971de7fb 1546mark_interval_tree (register INTERVAL tree)
d5e35230 1547{
e8720644
JB
1548 /* No need to test if this tree has been marked already; this
1549 function is always called through the MARK_INTERVAL_TREE macro,
1550 which takes care of that. */
1551
1e934989 1552 traverse_intervals_noorder (tree, mark_interval, Qnil);
d5e35230
JA
1553}
1554
34400008
GM
1555
1556/* Mark the interval tree rooted in I. */
1557
e8720644
JB
1558#define MARK_INTERVAL_TREE(i) \
1559 do { \
2336fe58 1560 if (!NULL_INTERVAL_P (i) && !i->gcmarkbit) \
e8720644
JB
1561 mark_interval_tree (i); \
1562 } while (0)
d5e35230 1563
34400008 1564
2e471eb5
GM
1565#define UNMARK_BALANCE_INTERVALS(i) \
1566 do { \
1567 if (! NULL_INTERVAL_P (i)) \
2336fe58 1568 (i) = balance_intervals (i); \
2e471eb5 1569 } while (0)
d5e35230 1570
cc2d8c6b 1571\f
6e5cb96f 1572/* Number support. If USE_LISP_UNION_TYPE is in effect, we
cc2d8c6b
KR
1573 can't create number objects in macros. */
1574#ifndef make_number
1575Lisp_Object
c566235d 1576make_number (EMACS_INT n)
cc2d8c6b
KR
1577{
1578 Lisp_Object obj;
1579 obj.s.val = n;
1580 obj.s.type = Lisp_Int;
1581 return obj;
1582}
1583#endif
d5e35230 1584\f
2e471eb5
GM
1585/***********************************************************************
1586 String Allocation
1587 ***********************************************************************/
1a4f1e2c 1588
2e471eb5
GM
1589/* Lisp_Strings are allocated in string_block structures. When a new
1590 string_block is allocated, all the Lisp_Strings it contains are
e0fead5d 1591 added to a free-list string_free_list. When a new Lisp_String is
2e471eb5
GM
1592 needed, it is taken from that list. During the sweep phase of GC,
1593 string_blocks that are entirely free are freed, except two which
1594 we keep.
7146af97 1595
2e471eb5
GM
1596 String data is allocated from sblock structures. Strings larger
1597 than LARGE_STRING_BYTES, get their own sblock, data for smaller
1598 strings is sub-allocated out of sblocks of size SBLOCK_SIZE.
7146af97 1599
2e471eb5
GM
1600 Sblocks consist internally of sdata structures, one for each
1601 Lisp_String. The sdata structure points to the Lisp_String it
1602 belongs to. The Lisp_String points back to the `u.data' member of
1603 its sdata structure.
7146af97 1604
2e471eb5
GM
1605 When a Lisp_String is freed during GC, it is put back on
1606 string_free_list, and its `data' member and its sdata's `string'
1607 pointer is set to null. The size of the string is recorded in the
1608 `u.nbytes' member of the sdata. So, sdata structures that are no
1609 longer used, can be easily recognized, and it's easy to compact the
1610 sblocks of small strings which we do in compact_small_strings. */
7146af97 1611
2e471eb5
GM
1612/* Size in bytes of an sblock structure used for small strings. This
1613 is 8192 minus malloc overhead. */
7146af97 1614
2e471eb5 1615#define SBLOCK_SIZE 8188
c8099634 1616
2e471eb5
GM
1617/* Strings larger than this are considered large strings. String data
1618 for large strings is allocated from individual sblocks. */
7146af97 1619
2e471eb5
GM
1620#define LARGE_STRING_BYTES 1024
1621
1622/* Structure describing string memory sub-allocated from an sblock.
1623 This is where the contents of Lisp strings are stored. */
1624
1625struct sdata
7146af97 1626{
2e471eb5
GM
1627 /* Back-pointer to the string this sdata belongs to. If null, this
1628 structure is free, and the NBYTES member of the union below
34400008 1629 contains the string's byte size (the same value that STRING_BYTES
2e471eb5
GM
1630 would return if STRING were non-null). If non-null, STRING_BYTES
1631 (STRING) is the size of the data, and DATA contains the string's
1632 contents. */
1633 struct Lisp_String *string;
7146af97 1634
31d929e5 1635#ifdef GC_CHECK_STRING_BYTES
177c0ea7 1636
d311d28c 1637 ptrdiff_t nbytes;
31d929e5 1638 unsigned char data[1];
177c0ea7 1639
31d929e5
GM
1640#define SDATA_NBYTES(S) (S)->nbytes
1641#define SDATA_DATA(S) (S)->data
36372bf9 1642#define SDATA_SELECTOR(member) member
177c0ea7 1643
31d929e5
GM
1644#else /* not GC_CHECK_STRING_BYTES */
1645
2e471eb5
GM
1646 union
1647 {
83998b7a 1648 /* When STRING is non-null. */
2e471eb5
GM
1649 unsigned char data[1];
1650
1651 /* When STRING is null. */
d311d28c 1652 ptrdiff_t nbytes;
2e471eb5 1653 } u;
177c0ea7 1654
31d929e5
GM
1655#define SDATA_NBYTES(S) (S)->u.nbytes
1656#define SDATA_DATA(S) (S)->u.data
36372bf9 1657#define SDATA_SELECTOR(member) u.member
31d929e5
GM
1658
1659#endif /* not GC_CHECK_STRING_BYTES */
36372bf9
PE
1660
1661#define SDATA_DATA_OFFSET offsetof (struct sdata, SDATA_SELECTOR (data))
2e471eb5
GM
1662};
1663
31d929e5 1664
2e471eb5
GM
1665/* Structure describing a block of memory which is sub-allocated to
1666 obtain string data memory for strings. Blocks for small strings
1667 are of fixed size SBLOCK_SIZE. Blocks for large strings are made
1668 as large as needed. */
1669
1670struct sblock
7146af97 1671{
2e471eb5
GM
1672 /* Next in list. */
1673 struct sblock *next;
7146af97 1674
2e471eb5
GM
1675 /* Pointer to the next free sdata block. This points past the end
1676 of the sblock if there isn't any space left in this block. */
1677 struct sdata *next_free;
1678
1679 /* Start of data. */
1680 struct sdata first_data;
1681};
1682
1683/* Number of Lisp strings in a string_block structure. The 1020 is
1684 1024 minus malloc overhead. */
1685
19bcad1f 1686#define STRING_BLOCK_SIZE \
2e471eb5
GM
1687 ((1020 - sizeof (struct string_block *)) / sizeof (struct Lisp_String))
1688
1689/* Structure describing a block from which Lisp_String structures
1690 are allocated. */
1691
1692struct string_block
7146af97 1693{
6b61353c 1694 /* Place `strings' first, to preserve alignment. */
19bcad1f 1695 struct Lisp_String strings[STRING_BLOCK_SIZE];
6b61353c 1696 struct string_block *next;
2e471eb5 1697};
7146af97 1698
2e471eb5
GM
1699/* Head and tail of the list of sblock structures holding Lisp string
1700 data. We always allocate from current_sblock. The NEXT pointers
1701 in the sblock structures go from oldest_sblock to current_sblock. */
3c06d205 1702
2e471eb5 1703static struct sblock *oldest_sblock, *current_sblock;
7146af97 1704
2e471eb5 1705/* List of sblocks for large strings. */
7146af97 1706
2e471eb5 1707static struct sblock *large_sblocks;
7146af97 1708
5a25e253 1709/* List of string_block structures. */
7146af97 1710
2e471eb5 1711static struct string_block *string_blocks;
7146af97 1712
2e471eb5 1713/* Free-list of Lisp_Strings. */
7146af97 1714
2e471eb5 1715static struct Lisp_String *string_free_list;
7146af97 1716
2e471eb5 1717/* Number of live and free Lisp_Strings. */
c8099634 1718
c0c5c8ae 1719static EMACS_INT total_strings, total_free_strings;
7146af97 1720
2e471eb5
GM
1721/* Number of bytes used by live strings. */
1722
14162469 1723static EMACS_INT total_string_size;
2e471eb5
GM
1724
1725/* Given a pointer to a Lisp_String S which is on the free-list
1726 string_free_list, return a pointer to its successor in the
1727 free-list. */
1728
1729#define NEXT_FREE_LISP_STRING(S) (*(struct Lisp_String **) (S))
1730
1731/* Return a pointer to the sdata structure belonging to Lisp string S.
1732 S must be live, i.e. S->data must not be null. S->data is actually
1733 a pointer to the `u.data' member of its sdata structure; the
1734 structure starts at a constant offset in front of that. */
177c0ea7 1735
36372bf9 1736#define SDATA_OF_STRING(S) ((struct sdata *) ((S)->data - SDATA_DATA_OFFSET))
31d929e5 1737
212f33f1
KS
1738
1739#ifdef GC_CHECK_STRING_OVERRUN
bdbed949
KS
1740
1741/* We check for overrun in string data blocks by appending a small
1742 "cookie" after each allocated string data block, and check for the
8349069c 1743 presence of this cookie during GC. */
bdbed949
KS
1744
1745#define GC_STRING_OVERRUN_COOKIE_SIZE 4
bfd1c781
PE
1746static char const string_overrun_cookie[GC_STRING_OVERRUN_COOKIE_SIZE] =
1747 { '\xde', '\xad', '\xbe', '\xef' };
bdbed949 1748
212f33f1 1749#else
bdbed949 1750#define GC_STRING_OVERRUN_COOKIE_SIZE 0
212f33f1
KS
1751#endif
1752
2e471eb5
GM
1753/* Value is the size of an sdata structure large enough to hold NBYTES
1754 bytes of string data. The value returned includes a terminating
1755 NUL byte, the size of the sdata structure, and padding. */
1756
31d929e5
GM
1757#ifdef GC_CHECK_STRING_BYTES
1758
2e471eb5 1759#define SDATA_SIZE(NBYTES) \
36372bf9 1760 ((SDATA_DATA_OFFSET \
2e471eb5 1761 + (NBYTES) + 1 \
d311d28c
PE
1762 + sizeof (ptrdiff_t) - 1) \
1763 & ~(sizeof (ptrdiff_t) - 1))
2e471eb5 1764
31d929e5
GM
1765#else /* not GC_CHECK_STRING_BYTES */
1766
f2d3008d
PE
1767/* The 'max' reserves space for the nbytes union member even when NBYTES + 1 is
1768 less than the size of that member. The 'max' is not needed when
d311d28c 1769 SDATA_DATA_OFFSET is a multiple of sizeof (ptrdiff_t), because then the
f2d3008d
PE
1770 alignment code reserves enough space. */
1771
1772#define SDATA_SIZE(NBYTES) \
1773 ((SDATA_DATA_OFFSET \
d311d28c 1774 + (SDATA_DATA_OFFSET % sizeof (ptrdiff_t) == 0 \
f2d3008d 1775 ? NBYTES \
d311d28c 1776 : max (NBYTES, sizeof (ptrdiff_t) - 1)) \
f2d3008d 1777 + 1 \
d311d28c
PE
1778 + sizeof (ptrdiff_t) - 1) \
1779 & ~(sizeof (ptrdiff_t) - 1))
31d929e5
GM
1780
1781#endif /* not GC_CHECK_STRING_BYTES */
2e471eb5 1782
bdbed949
KS
1783/* Extra bytes to allocate for each string. */
1784
1785#define GC_STRING_EXTRA (GC_STRING_OVERRUN_COOKIE_SIZE)
1786
c9d624c6
PE
1787/* Exact bound on the number of bytes in a string, not counting the
1788 terminating null. A string cannot contain more bytes than
1789 STRING_BYTES_BOUND, nor can it be so long that the size_t
1790 arithmetic in allocate_string_data would overflow while it is
1791 calculating a value to be passed to malloc. */
1792#define STRING_BYTES_MAX \
1793 min (STRING_BYTES_BOUND, \
903fe15d
PE
1794 ((SIZE_MAX - XMALLOC_OVERRUN_CHECK_OVERHEAD \
1795 - GC_STRING_EXTRA \
c9d624c6
PE
1796 - offsetof (struct sblock, first_data) \
1797 - SDATA_DATA_OFFSET) \
1798 & ~(sizeof (EMACS_INT) - 1)))
1799
2e471eb5 1800/* Initialize string allocation. Called from init_alloc_once. */
d457598b 1801
d3d47262 1802static void
971de7fb 1803init_strings (void)
7146af97 1804{
2e471eb5
GM
1805 total_strings = total_free_strings = total_string_size = 0;
1806 oldest_sblock = current_sblock = large_sblocks = NULL;
1807 string_blocks = NULL;
2e471eb5 1808 string_free_list = NULL;
4d774b0f
JB
1809 empty_unibyte_string = make_pure_string ("", 0, 0, 0);
1810 empty_multibyte_string = make_pure_string ("", 0, 0, 1);
7146af97
JB
1811}
1812
2e471eb5 1813
361b097f
GM
1814#ifdef GC_CHECK_STRING_BYTES
1815
361b097f
GM
1816static int check_string_bytes_count;
1817
676a7251
GM
1818#define CHECK_STRING_BYTES(S) STRING_BYTES (S)
1819
1820
1821/* Like GC_STRING_BYTES, but with debugging check. */
1822
d311d28c 1823ptrdiff_t
14162469 1824string_bytes (struct Lisp_String *s)
676a7251 1825{
d311d28c 1826 ptrdiff_t nbytes =
14162469
EZ
1827 (s->size_byte < 0 ? s->size & ~ARRAY_MARK_FLAG : s->size_byte);
1828
676a7251
GM
1829 if (!PURE_POINTER_P (s)
1830 && s->data
1831 && nbytes != SDATA_NBYTES (SDATA_OF_STRING (s)))
1832 abort ();
1833 return nbytes;
1834}
177c0ea7 1835
2c5bd608 1836/* Check validity of Lisp strings' string_bytes member in B. */
676a7251 1837
d3d47262 1838static void
d0f4e1f5 1839check_sblock (struct sblock *b)
361b097f 1840{
676a7251 1841 struct sdata *from, *end, *from_end;
177c0ea7 1842
676a7251 1843 end = b->next_free;
177c0ea7 1844
676a7251 1845 for (from = &b->first_data; from < end; from = from_end)
361b097f 1846 {
676a7251
GM
1847 /* Compute the next FROM here because copying below may
1848 overwrite data we need to compute it. */
d311d28c 1849 ptrdiff_t nbytes;
177c0ea7 1850
676a7251
GM
1851 /* Check that the string size recorded in the string is the
1852 same as the one recorded in the sdata structure. */
1853 if (from->string)
1854 CHECK_STRING_BYTES (from->string);
177c0ea7 1855
676a7251
GM
1856 if (from->string)
1857 nbytes = GC_STRING_BYTES (from->string);
1858 else
1859 nbytes = SDATA_NBYTES (from);
177c0ea7 1860
676a7251 1861 nbytes = SDATA_SIZE (nbytes);
212f33f1 1862 from_end = (struct sdata *) ((char *) from + nbytes + GC_STRING_EXTRA);
676a7251
GM
1863 }
1864}
361b097f 1865
676a7251
GM
1866
1867/* Check validity of Lisp strings' string_bytes member. ALL_P
1868 non-zero means check all strings, otherwise check only most
1869 recently allocated strings. Used for hunting a bug. */
1870
d3d47262 1871static void
d0f4e1f5 1872check_string_bytes (int all_p)
676a7251
GM
1873{
1874 if (all_p)
1875 {
1876 struct sblock *b;
1877
1878 for (b = large_sblocks; b; b = b->next)
1879 {
1880 struct Lisp_String *s = b->first_data.string;
1881 if (s)
1882 CHECK_STRING_BYTES (s);
361b097f 1883 }
177c0ea7 1884
676a7251
GM
1885 for (b = oldest_sblock; b; b = b->next)
1886 check_sblock (b);
361b097f 1887 }
676a7251
GM
1888 else
1889 check_sblock (current_sblock);
361b097f
GM
1890}
1891
1892#endif /* GC_CHECK_STRING_BYTES */
1893
212f33f1
KS
1894#ifdef GC_CHECK_STRING_FREE_LIST
1895
bdbed949
KS
1896/* Walk through the string free list looking for bogus next pointers.
1897 This may catch buffer overrun from a previous string. */
1898
212f33f1 1899static void
d0f4e1f5 1900check_string_free_list (void)
212f33f1
KS
1901{
1902 struct Lisp_String *s;
1903
1904 /* Pop a Lisp_String off the free-list. */
1905 s = string_free_list;
1906 while (s != NULL)
1907 {
d01a7826 1908 if ((uintptr_t) s < 1024)
5e617bc2 1909 abort ();
212f33f1
KS
1910 s = NEXT_FREE_LISP_STRING (s);
1911 }
1912}
1913#else
1914#define check_string_free_list()
1915#endif
361b097f 1916
2e471eb5
GM
1917/* Return a new Lisp_String. */
1918
1919static struct Lisp_String *
971de7fb 1920allocate_string (void)
7146af97 1921{
2e471eb5 1922 struct Lisp_String *s;
7146af97 1923
e2984df0
CY
1924 /* eassert (!handling_signal); */
1925
dafc79fa 1926 MALLOC_BLOCK_INPUT;
cfb2f32e 1927
2e471eb5
GM
1928 /* If the free-list is empty, allocate a new string_block, and
1929 add all the Lisp_Strings in it to the free-list. */
1930 if (string_free_list == NULL)
7146af97 1931 {
2e471eb5
GM
1932 struct string_block *b;
1933 int i;
1934
34400008 1935 b = (struct string_block *) lisp_malloc (sizeof *b, MEM_TYPE_STRING);
72af86bd 1936 memset (b, 0, sizeof *b);
2e471eb5
GM
1937 b->next = string_blocks;
1938 string_blocks = b;
2e471eb5 1939
19bcad1f 1940 for (i = STRING_BLOCK_SIZE - 1; i >= 0; --i)
7146af97 1941 {
2e471eb5
GM
1942 s = b->strings + i;
1943 NEXT_FREE_LISP_STRING (s) = string_free_list;
1944 string_free_list = s;
7146af97 1945 }
2e471eb5 1946
19bcad1f 1947 total_free_strings += STRING_BLOCK_SIZE;
7146af97 1948 }
c0f51373 1949
bdbed949 1950 check_string_free_list ();
212f33f1 1951
2e471eb5
GM
1952 /* Pop a Lisp_String off the free-list. */
1953 s = string_free_list;
1954 string_free_list = NEXT_FREE_LISP_STRING (s);
c0f51373 1955
dafc79fa 1956 MALLOC_UNBLOCK_INPUT;
e2984df0 1957
2e471eb5 1958 /* Probably not strictly necessary, but play it safe. */
72af86bd 1959 memset (s, 0, sizeof *s);
c0f51373 1960
2e471eb5
GM
1961 --total_free_strings;
1962 ++total_strings;
1963 ++strings_consed;
1964 consing_since_gc += sizeof *s;
c0f51373 1965
361b097f 1966#ifdef GC_CHECK_STRING_BYTES
e39a993c 1967 if (!noninteractive)
361b097f 1968 {
676a7251
GM
1969 if (++check_string_bytes_count == 200)
1970 {
1971 check_string_bytes_count = 0;
1972 check_string_bytes (1);
1973 }
1974 else
1975 check_string_bytes (0);
361b097f 1976 }
676a7251 1977#endif /* GC_CHECK_STRING_BYTES */
361b097f 1978
2e471eb5 1979 return s;
c0f51373 1980}
7146af97 1981
7146af97 1982
2e471eb5
GM
1983/* Set up Lisp_String S for holding NCHARS characters, NBYTES bytes,
1984 plus a NUL byte at the end. Allocate an sdata structure for S, and
1985 set S->data to its `u.data' member. Store a NUL byte at the end of
1986 S->data. Set S->size to NCHARS and S->size_byte to NBYTES. Free
1987 S->data if it was initially non-null. */
7146af97 1988
2e471eb5 1989void
413d18e7
EZ
1990allocate_string_data (struct Lisp_String *s,
1991 EMACS_INT nchars, EMACS_INT nbytes)
7146af97 1992{
5c5fecb3 1993 struct sdata *data, *old_data;
2e471eb5 1994 struct sblock *b;
d311d28c 1995 ptrdiff_t needed, old_nbytes;
7146af97 1996
c9d624c6
PE
1997 if (STRING_BYTES_MAX < nbytes)
1998 string_overflow ();
1999
2e471eb5
GM
2000 /* Determine the number of bytes needed to store NBYTES bytes
2001 of string data. */
2002 needed = SDATA_SIZE (nbytes);
e2984df0
CY
2003 old_data = s->data ? SDATA_OF_STRING (s) : NULL;
2004 old_nbytes = GC_STRING_BYTES (s);
2005
dafc79fa 2006 MALLOC_BLOCK_INPUT;
7146af97 2007
2e471eb5
GM
2008 if (nbytes > LARGE_STRING_BYTES)
2009 {
36372bf9 2010 size_t size = offsetof (struct sblock, first_data) + needed;
2e471eb5
GM
2011
2012#ifdef DOUG_LEA_MALLOC
f8608968
GM
2013 /* Prevent mmap'ing the chunk. Lisp data may not be mmap'ed
2014 because mapped region contents are not preserved in
d36b182f
DL
2015 a dumped Emacs.
2016
2017 In case you think of allowing it in a dumped Emacs at the
2018 cost of not being able to re-dump, there's another reason:
2019 mmap'ed data typically have an address towards the top of the
2020 address space, which won't fit into an EMACS_INT (at least on
2021 32-bit systems with the current tagging scheme). --fx */
2e471eb5
GM
2022 mallopt (M_MMAP_MAX, 0);
2023#endif
2024
212f33f1 2025 b = (struct sblock *) lisp_malloc (size + GC_STRING_EXTRA, MEM_TYPE_NON_LISP);
177c0ea7 2026
2e471eb5
GM
2027#ifdef DOUG_LEA_MALLOC
2028 /* Back to a reasonable maximum of mmap'ed areas. */
2029 mallopt (M_MMAP_MAX, MMAP_MAX_AREAS);
2030#endif
177c0ea7 2031
2e471eb5
GM
2032 b->next_free = &b->first_data;
2033 b->first_data.string = NULL;
2034 b->next = large_sblocks;
2035 large_sblocks = b;
2036 }
2037 else if (current_sblock == NULL
2038 || (((char *) current_sblock + SBLOCK_SIZE
2039 - (char *) current_sblock->next_free)
212f33f1 2040 < (needed + GC_STRING_EXTRA)))
2e471eb5
GM
2041 {
2042 /* Not enough room in the current sblock. */
34400008 2043 b = (struct sblock *) lisp_malloc (SBLOCK_SIZE, MEM_TYPE_NON_LISP);
2e471eb5
GM
2044 b->next_free = &b->first_data;
2045 b->first_data.string = NULL;
2046 b->next = NULL;
2047
2048 if (current_sblock)
2049 current_sblock->next = b;
2050 else
2051 oldest_sblock = b;
2052 current_sblock = b;
2053 }
2054 else
2055 b = current_sblock;
5c5fecb3 2056
2e471eb5 2057 data = b->next_free;
a0b08700
CY
2058 b->next_free = (struct sdata *) ((char *) data + needed + GC_STRING_EXTRA);
2059
dafc79fa 2060 MALLOC_UNBLOCK_INPUT;
e2984df0 2061
2e471eb5 2062 data->string = s;
31d929e5
GM
2063 s->data = SDATA_DATA (data);
2064#ifdef GC_CHECK_STRING_BYTES
2065 SDATA_NBYTES (data) = nbytes;
2066#endif
2e471eb5
GM
2067 s->size = nchars;
2068 s->size_byte = nbytes;
2069 s->data[nbytes] = '\0';
212f33f1 2070#ifdef GC_CHECK_STRING_OVERRUN
000098c1
PE
2071 memcpy ((char *) data + needed, string_overrun_cookie,
2072 GC_STRING_OVERRUN_COOKIE_SIZE);
212f33f1 2073#endif
177c0ea7 2074
5c5fecb3
GM
2075 /* If S had already data assigned, mark that as free by setting its
2076 string back-pointer to null, and recording the size of the data
00c9c33c 2077 in it. */
5c5fecb3
GM
2078 if (old_data)
2079 {
31d929e5 2080 SDATA_NBYTES (old_data) = old_nbytes;
5c5fecb3
GM
2081 old_data->string = NULL;
2082 }
2083
2e471eb5
GM
2084 consing_since_gc += needed;
2085}
2086
2087
2088/* Sweep and compact strings. */
2089
2090static void
971de7fb 2091sweep_strings (void)
2e471eb5
GM
2092{
2093 struct string_block *b, *next;
2094 struct string_block *live_blocks = NULL;
177c0ea7 2095
2e471eb5
GM
2096 string_free_list = NULL;
2097 total_strings = total_free_strings = 0;
2098 total_string_size = 0;
2099
2100 /* Scan strings_blocks, free Lisp_Strings that aren't marked. */
2101 for (b = string_blocks; b; b = next)
2102 {
2103 int i, nfree = 0;
2104 struct Lisp_String *free_list_before = string_free_list;
2105
2106 next = b->next;
2107
19bcad1f 2108 for (i = 0; i < STRING_BLOCK_SIZE; ++i)
2e471eb5
GM
2109 {
2110 struct Lisp_String *s = b->strings + i;
2111
2112 if (s->data)
2113 {
2114 /* String was not on free-list before. */
2115 if (STRING_MARKED_P (s))
2116 {
2117 /* String is live; unmark it and its intervals. */
2118 UNMARK_STRING (s);
177c0ea7 2119
2e471eb5
GM
2120 if (!NULL_INTERVAL_P (s->intervals))
2121 UNMARK_BALANCE_INTERVALS (s->intervals);
2122
2123 ++total_strings;
2124 total_string_size += STRING_BYTES (s);
2125 }
2126 else
2127 {
2128 /* String is dead. Put it on the free-list. */
2129 struct sdata *data = SDATA_OF_STRING (s);
2130
2131 /* Save the size of S in its sdata so that we know
2132 how large that is. Reset the sdata's string
2133 back-pointer so that we know it's free. */
31d929e5
GM
2134#ifdef GC_CHECK_STRING_BYTES
2135 if (GC_STRING_BYTES (s) != SDATA_NBYTES (data))
2136 abort ();
2137#else
2e471eb5 2138 data->u.nbytes = GC_STRING_BYTES (s);
31d929e5 2139#endif
2e471eb5
GM
2140 data->string = NULL;
2141
2142 /* Reset the strings's `data' member so that we
2143 know it's free. */
2144 s->data = NULL;
2145
2146 /* Put the string on the free-list. */
2147 NEXT_FREE_LISP_STRING (s) = string_free_list;
2148 string_free_list = s;
2149 ++nfree;
2150 }
2151 }
2152 else
2153 {
2154 /* S was on the free-list before. Put it there again. */
2155 NEXT_FREE_LISP_STRING (s) = string_free_list;
2156 string_free_list = s;
2157 ++nfree;
2158 }
2159 }
2160
34400008 2161 /* Free blocks that contain free Lisp_Strings only, except
2e471eb5 2162 the first two of them. */
19bcad1f
SM
2163 if (nfree == STRING_BLOCK_SIZE
2164 && total_free_strings > STRING_BLOCK_SIZE)
2e471eb5
GM
2165 {
2166 lisp_free (b);
2e471eb5
GM
2167 string_free_list = free_list_before;
2168 }
2169 else
2170 {
2171 total_free_strings += nfree;
2172 b->next = live_blocks;
2173 live_blocks = b;
2174 }
2175 }
2176
bdbed949 2177 check_string_free_list ();
212f33f1 2178
2e471eb5
GM
2179 string_blocks = live_blocks;
2180 free_large_strings ();
2181 compact_small_strings ();
212f33f1 2182
bdbed949 2183 check_string_free_list ();
2e471eb5
GM
2184}
2185
2186
2187/* Free dead large strings. */
2188
2189static void
971de7fb 2190free_large_strings (void)
2e471eb5
GM
2191{
2192 struct sblock *b, *next;
2193 struct sblock *live_blocks = NULL;
177c0ea7 2194
2e471eb5
GM
2195 for (b = large_sblocks; b; b = next)
2196 {
2197 next = b->next;
2198
2199 if (b->first_data.string == NULL)
2200 lisp_free (b);
2201 else
2202 {
2203 b->next = live_blocks;
2204 live_blocks = b;
2205 }
2206 }
2207
2208 large_sblocks = live_blocks;
2209}
2210
2211
2212/* Compact data of small strings. Free sblocks that don't contain
2213 data of live strings after compaction. */
2214
2215static void
971de7fb 2216compact_small_strings (void)
2e471eb5
GM
2217{
2218 struct sblock *b, *tb, *next;
2219 struct sdata *from, *to, *end, *tb_end;
2220 struct sdata *to_end, *from_end;
2221
2222 /* TB is the sblock we copy to, TO is the sdata within TB we copy
2223 to, and TB_END is the end of TB. */
2224 tb = oldest_sblock;
2225 tb_end = (struct sdata *) ((char *) tb + SBLOCK_SIZE);
2226 to = &tb->first_data;
2227
2228 /* Step through the blocks from the oldest to the youngest. We
2229 expect that old blocks will stabilize over time, so that less
2230 copying will happen this way. */
2231 for (b = oldest_sblock; b; b = b->next)
2232 {
2233 end = b->next_free;
2234 xassert ((char *) end <= (char *) b + SBLOCK_SIZE);
177c0ea7 2235
2e471eb5
GM
2236 for (from = &b->first_data; from < end; from = from_end)
2237 {
2238 /* Compute the next FROM here because copying below may
2239 overwrite data we need to compute it. */
d311d28c 2240 ptrdiff_t nbytes;
2e471eb5 2241
31d929e5
GM
2242#ifdef GC_CHECK_STRING_BYTES
2243 /* Check that the string size recorded in the string is the
2244 same as the one recorded in the sdata structure. */
2245 if (from->string
2246 && GC_STRING_BYTES (from->string) != SDATA_NBYTES (from))
2247 abort ();
2248#endif /* GC_CHECK_STRING_BYTES */
177c0ea7 2249
2e471eb5
GM
2250 if (from->string)
2251 nbytes = GC_STRING_BYTES (from->string);
2252 else
31d929e5 2253 nbytes = SDATA_NBYTES (from);
177c0ea7 2254
212f33f1
KS
2255 if (nbytes > LARGE_STRING_BYTES)
2256 abort ();
212f33f1 2257
2e471eb5 2258 nbytes = SDATA_SIZE (nbytes);
212f33f1
KS
2259 from_end = (struct sdata *) ((char *) from + nbytes + GC_STRING_EXTRA);
2260
2261#ifdef GC_CHECK_STRING_OVERRUN
72af86bd
AS
2262 if (memcmp (string_overrun_cookie,
2263 (char *) from_end - GC_STRING_OVERRUN_COOKIE_SIZE,
2264 GC_STRING_OVERRUN_COOKIE_SIZE))
212f33f1
KS
2265 abort ();
2266#endif
177c0ea7 2267
2e471eb5
GM
2268 /* FROM->string non-null means it's alive. Copy its data. */
2269 if (from->string)
2270 {
2271 /* If TB is full, proceed with the next sblock. */
212f33f1 2272 to_end = (struct sdata *) ((char *) to + nbytes + GC_STRING_EXTRA);
2e471eb5
GM
2273 if (to_end > tb_end)
2274 {
2275 tb->next_free = to;
2276 tb = tb->next;
2277 tb_end = (struct sdata *) ((char *) tb + SBLOCK_SIZE);
2278 to = &tb->first_data;
212f33f1 2279 to_end = (struct sdata *) ((char *) to + nbytes + GC_STRING_EXTRA);
2e471eb5 2280 }
177c0ea7 2281
2e471eb5
GM
2282 /* Copy, and update the string's `data' pointer. */
2283 if (from != to)
2284 {
3c616cfa 2285 xassert (tb != b || to < from);
72af86bd 2286 memmove (to, from, nbytes + GC_STRING_EXTRA);
31d929e5 2287 to->string->data = SDATA_DATA (to);
2e471eb5
GM
2288 }
2289
2290 /* Advance past the sdata we copied to. */
2291 to = to_end;
2292 }
2293 }
2294 }
2295
2296 /* The rest of the sblocks following TB don't contain live data, so
2297 we can free them. */
2298 for (b = tb->next; b; b = next)
2299 {
2300 next = b->next;
2301 lisp_free (b);
2302 }
2303
2304 tb->next_free = to;
2305 tb->next = NULL;
2306 current_sblock = tb;
2307}
2308
cb93f9be
PE
2309void
2310string_overflow (void)
2311{
2312 error ("Maximum string size exceeded");
2313}
2e471eb5 2314
a7ca3326 2315DEFUN ("make-string", Fmake_string, Smake_string, 2, 2, 0,
69623621
RS
2316 doc: /* Return a newly created string of length LENGTH, with INIT in each element.
2317LENGTH must be an integer.
2318INIT must be an integer that represents a character. */)
5842a27b 2319 (Lisp_Object length, Lisp_Object init)
2e471eb5
GM
2320{
2321 register Lisp_Object val;
2322 register unsigned char *p, *end;
14162469
EZ
2323 int c;
2324 EMACS_INT nbytes;
2e471eb5 2325
b7826503 2326 CHECK_NATNUM (length);
2bccce07 2327 CHECK_CHARACTER (init);
2e471eb5 2328
2bccce07 2329 c = XFASTINT (init);
830ff83b 2330 if (ASCII_CHAR_P (c))
2e471eb5
GM
2331 {
2332 nbytes = XINT (length);
2333 val = make_uninit_string (nbytes);
d5db4077
KR
2334 p = SDATA (val);
2335 end = p + SCHARS (val);
2e471eb5
GM
2336 while (p != end)
2337 *p++ = c;
2338 }
2339 else
2340 {
d942b71c 2341 unsigned char str[MAX_MULTIBYTE_LENGTH];
2e471eb5 2342 int len = CHAR_STRING (c, str);
14162469 2343 EMACS_INT string_len = XINT (length);
2e471eb5 2344
d1f3d2af 2345 if (string_len > STRING_BYTES_MAX / len)
cb93f9be 2346 string_overflow ();
14162469
EZ
2347 nbytes = len * string_len;
2348 val = make_uninit_multibyte_string (string_len, nbytes);
d5db4077 2349 p = SDATA (val);
2e471eb5
GM
2350 end = p + nbytes;
2351 while (p != end)
2352 {
72af86bd 2353 memcpy (p, str, len);
2e471eb5
GM
2354 p += len;
2355 }
2356 }
177c0ea7 2357
2e471eb5
GM
2358 *p = 0;
2359 return val;
2360}
2361
2362
a7ca3326 2363DEFUN ("make-bool-vector", Fmake_bool_vector, Smake_bool_vector, 2, 2, 0,
909e3b33 2364 doc: /* Return a new bool-vector of length LENGTH, using INIT for each element.
7ee72033 2365LENGTH must be a number. INIT matters only in whether it is t or nil. */)
5842a27b 2366 (Lisp_Object length, Lisp_Object init)
2e471eb5
GM
2367{
2368 register Lisp_Object val;
2369 struct Lisp_Bool_Vector *p;
d311d28c
PE
2370 ptrdiff_t length_in_chars;
2371 EMACS_INT length_in_elts;
14162469 2372 int bits_per_value;
2e471eb5 2373
b7826503 2374 CHECK_NATNUM (length);
2e471eb5 2375
a097329f 2376 bits_per_value = sizeof (EMACS_INT) * BOOL_VECTOR_BITS_PER_CHAR;
2e471eb5
GM
2377
2378 length_in_elts = (XFASTINT (length) + bits_per_value - 1) / bits_per_value;
2e471eb5
GM
2379
2380 /* We must allocate one more elements than LENGTH_IN_ELTS for the
2381 slot `size' of the struct Lisp_Bool_Vector. */
2382 val = Fmake_vector (make_number (length_in_elts + 1), Qnil);
177c0ea7 2383
eab3844f
PE
2384 /* No Lisp_Object to trace in there. */
2385 XSETPVECTYPESIZE (XVECTOR (val), PVEC_BOOL_VECTOR, 0);
d2029e5b
SM
2386
2387 p = XBOOL_VECTOR (val);
2e471eb5 2388 p->size = XFASTINT (length);
177c0ea7 2389
d311d28c
PE
2390 length_in_chars = ((XFASTINT (length) + BOOL_VECTOR_BITS_PER_CHAR - 1)
2391 / BOOL_VECTOR_BITS_PER_CHAR);
c0c1ee9f
PE
2392 if (length_in_chars)
2393 {
2394 memset (p->data, ! NILP (init) ? -1 : 0, length_in_chars);
177c0ea7 2395
c0c1ee9f
PE
2396 /* Clear any extraneous bits in the last byte. */
2397 p->data[length_in_chars - 1]
2398 &= (1 << (XINT (length) % BOOL_VECTOR_BITS_PER_CHAR)) - 1;
2399 }
2e471eb5
GM
2400
2401 return val;
2402}
2403
2404
2405/* Make a string from NBYTES bytes at CONTENTS, and compute the number
2406 of characters from the contents. This string may be unibyte or
2407 multibyte, depending on the contents. */
2408
2409Lisp_Object
d311d28c 2410make_string (const char *contents, ptrdiff_t nbytes)
2e471eb5
GM
2411{
2412 register Lisp_Object val;
d311d28c 2413 ptrdiff_t nchars, multibyte_nbytes;
9eac9d59 2414
90256841
PE
2415 parse_str_as_multibyte ((const unsigned char *) contents, nbytes,
2416 &nchars, &multibyte_nbytes);
9eac9d59
KH
2417 if (nbytes == nchars || nbytes != multibyte_nbytes)
2418 /* CONTENTS contains no multibyte sequences or contains an invalid
2419 multibyte sequence. We must make unibyte string. */
495a6df3
KH
2420 val = make_unibyte_string (contents, nbytes);
2421 else
2422 val = make_multibyte_string (contents, nchars, nbytes);
2e471eb5
GM
2423 return val;
2424}
2425
2426
2427/* Make an unibyte string from LENGTH bytes at CONTENTS. */
2428
2429Lisp_Object
d311d28c 2430make_unibyte_string (const char *contents, ptrdiff_t length)
2e471eb5
GM
2431{
2432 register Lisp_Object val;
2433 val = make_uninit_string (length);
72af86bd 2434 memcpy (SDATA (val), contents, length);
2e471eb5
GM
2435 return val;
2436}
2437
2438
2439/* Make a multibyte string from NCHARS characters occupying NBYTES
2440 bytes at CONTENTS. */
2441
2442Lisp_Object
14162469 2443make_multibyte_string (const char *contents,
d311d28c 2444 ptrdiff_t nchars, ptrdiff_t nbytes)
2e471eb5
GM
2445{
2446 register Lisp_Object val;
2447 val = make_uninit_multibyte_string (nchars, nbytes);
72af86bd 2448 memcpy (SDATA (val), contents, nbytes);
2e471eb5
GM
2449 return val;
2450}
2451
2452
2453/* Make a string from NCHARS characters occupying NBYTES bytes at
2454 CONTENTS. It is a multibyte string if NBYTES != NCHARS. */
2455
2456Lisp_Object
14162469 2457make_string_from_bytes (const char *contents,
d311d28c 2458 ptrdiff_t nchars, ptrdiff_t nbytes)
2e471eb5
GM
2459{
2460 register Lisp_Object val;
2461 val = make_uninit_multibyte_string (nchars, nbytes);
72af86bd 2462 memcpy (SDATA (val), contents, nbytes);
d5db4077
KR
2463 if (SBYTES (val) == SCHARS (val))
2464 STRING_SET_UNIBYTE (val);
2e471eb5
GM
2465 return val;
2466}
2467
2468
2469/* Make a string from NCHARS characters occupying NBYTES bytes at
2470 CONTENTS. The argument MULTIBYTE controls whether to label the
229b28c4
KH
2471 string as multibyte. If NCHARS is negative, it counts the number of
2472 characters by itself. */
2e471eb5
GM
2473
2474Lisp_Object
14162469 2475make_specified_string (const char *contents,
d311d28c 2476 ptrdiff_t nchars, ptrdiff_t nbytes, int multibyte)
2e471eb5
GM
2477{
2478 register Lisp_Object val;
229b28c4
KH
2479
2480 if (nchars < 0)
2481 {
2482 if (multibyte)
90256841
PE
2483 nchars = multibyte_chars_in_text ((const unsigned char *) contents,
2484 nbytes);
229b28c4
KH
2485 else
2486 nchars = nbytes;
2487 }
2e471eb5 2488 val = make_uninit_multibyte_string (nchars, nbytes);
72af86bd 2489 memcpy (SDATA (val), contents, nbytes);
2e471eb5 2490 if (!multibyte)
d5db4077 2491 STRING_SET_UNIBYTE (val);
2e471eb5
GM
2492 return val;
2493}
2494
2495
2496/* Make a string from the data at STR, treating it as multibyte if the
2497 data warrants. */
2498
2499Lisp_Object
971de7fb 2500build_string (const char *str)
2e471eb5
GM
2501{
2502 return make_string (str, strlen (str));
2503}
2504
2505
2506/* Return an unibyte Lisp_String set up to hold LENGTH characters
2507 occupying LENGTH bytes. */
2508
2509Lisp_Object
413d18e7 2510make_uninit_string (EMACS_INT length)
2e471eb5
GM
2511{
2512 Lisp_Object val;
4d774b0f
JB
2513
2514 if (!length)
2515 return empty_unibyte_string;
2e471eb5 2516 val = make_uninit_multibyte_string (length, length);
d5db4077 2517 STRING_SET_UNIBYTE (val);
2e471eb5
GM
2518 return val;
2519}
2520
2521
2522/* Return a multibyte Lisp_String set up to hold NCHARS characters
2523 which occupy NBYTES bytes. */
2524
2525Lisp_Object
413d18e7 2526make_uninit_multibyte_string (EMACS_INT nchars, EMACS_INT nbytes)
2e471eb5
GM
2527{
2528 Lisp_Object string;
2529 struct Lisp_String *s;
2530
2531 if (nchars < 0)
2532 abort ();
4d774b0f
JB
2533 if (!nbytes)
2534 return empty_multibyte_string;
2e471eb5
GM
2535
2536 s = allocate_string ();
2537 allocate_string_data (s, nchars, nbytes);
2538 XSETSTRING (string, s);
2539 string_chars_consed += nbytes;
2540 return string;
2541}
2542
2543
2544\f
2545/***********************************************************************
2546 Float Allocation
2547 ***********************************************************************/
2548
2e471eb5
GM
2549/* We store float cells inside of float_blocks, allocating a new
2550 float_block with malloc whenever necessary. Float cells reclaimed
2551 by GC are put on a free list to be reallocated before allocating
ab6780cd 2552 any new float cells from the latest float_block. */
2e471eb5 2553
6b61353c
KH
2554#define FLOAT_BLOCK_SIZE \
2555 (((BLOCK_BYTES - sizeof (struct float_block *) \
2556 /* The compiler might add padding at the end. */ \
2557 - (sizeof (struct Lisp_Float) - sizeof (int))) * CHAR_BIT) \
ab6780cd
SM
2558 / (sizeof (struct Lisp_Float) * CHAR_BIT + 1))
2559
2560#define GETMARKBIT(block,n) \
5e617bc2
JB
2561 (((block)->gcmarkbits[(n) / (sizeof (int) * CHAR_BIT)] \
2562 >> ((n) % (sizeof (int) * CHAR_BIT))) \
ab6780cd
SM
2563 & 1)
2564
2565#define SETMARKBIT(block,n) \
5e617bc2
JB
2566 (block)->gcmarkbits[(n) / (sizeof (int) * CHAR_BIT)] \
2567 |= 1 << ((n) % (sizeof (int) * CHAR_BIT))
ab6780cd
SM
2568
2569#define UNSETMARKBIT(block,n) \
5e617bc2
JB
2570 (block)->gcmarkbits[(n) / (sizeof (int) * CHAR_BIT)] \
2571 &= ~(1 << ((n) % (sizeof (int) * CHAR_BIT)))
ab6780cd
SM
2572
2573#define FLOAT_BLOCK(fptr) \
d01a7826 2574 ((struct float_block *) (((uintptr_t) (fptr)) & ~(BLOCK_ALIGN - 1)))
ab6780cd
SM
2575
2576#define FLOAT_INDEX(fptr) \
d01a7826 2577 ((((uintptr_t) (fptr)) & (BLOCK_ALIGN - 1)) / sizeof (struct Lisp_Float))
2e471eb5
GM
2578
2579struct float_block
2580{
ab6780cd 2581 /* Place `floats' at the beginning, to ease up FLOAT_INDEX's job. */
2e471eb5 2582 struct Lisp_Float floats[FLOAT_BLOCK_SIZE];
5e617bc2 2583 int gcmarkbits[1 + FLOAT_BLOCK_SIZE / (sizeof (int) * CHAR_BIT)];
ab6780cd 2584 struct float_block *next;
2e471eb5
GM
2585};
2586
ab6780cd
SM
2587#define FLOAT_MARKED_P(fptr) \
2588 GETMARKBIT (FLOAT_BLOCK (fptr), FLOAT_INDEX ((fptr)))
2589
2590#define FLOAT_MARK(fptr) \
2591 SETMARKBIT (FLOAT_BLOCK (fptr), FLOAT_INDEX ((fptr)))
2592
2593#define FLOAT_UNMARK(fptr) \
2594 UNSETMARKBIT (FLOAT_BLOCK (fptr), FLOAT_INDEX ((fptr)))
2595
34400008
GM
2596/* Current float_block. */
2597
244ed907 2598static struct float_block *float_block;
34400008
GM
2599
2600/* Index of first unused Lisp_Float in the current float_block. */
2601
244ed907 2602static int float_block_index;
2e471eb5 2603
34400008
GM
2604/* Free-list of Lisp_Floats. */
2605
244ed907 2606static struct Lisp_Float *float_free_list;
2e471eb5 2607
34400008 2608
966533c9 2609/* Initialize float allocation. */
34400008 2610
d3d47262 2611static void
971de7fb 2612init_float (void)
2e471eb5 2613{
08b7c2cb
SM
2614 float_block = NULL;
2615 float_block_index = FLOAT_BLOCK_SIZE; /* Force alloc of new float_block. */
2e471eb5 2616 float_free_list = 0;
2e471eb5
GM
2617}
2618
34400008 2619
34400008
GM
2620/* Return a new float object with value FLOAT_VALUE. */
2621
2e471eb5 2622Lisp_Object
971de7fb 2623make_float (double float_value)
2e471eb5
GM
2624{
2625 register Lisp_Object val;
2626
e2984df0
CY
2627 /* eassert (!handling_signal); */
2628
dafc79fa 2629 MALLOC_BLOCK_INPUT;
cfb2f32e 2630
2e471eb5
GM
2631 if (float_free_list)
2632 {
2633 /* We use the data field for chaining the free list
2634 so that we won't use the same field that has the mark bit. */
2635 XSETFLOAT (val, float_free_list);
28a099a4 2636 float_free_list = float_free_list->u.chain;
2e471eb5
GM
2637 }
2638 else
2639 {
2640 if (float_block_index == FLOAT_BLOCK_SIZE)
2641 {
2642 register struct float_block *new;
2643
ab6780cd
SM
2644 new = (struct float_block *) lisp_align_malloc (sizeof *new,
2645 MEM_TYPE_FLOAT);
2e471eb5 2646 new->next = float_block;
72af86bd 2647 memset (new->gcmarkbits, 0, sizeof new->gcmarkbits);
2e471eb5
GM
2648 float_block = new;
2649 float_block_index = 0;
2e471eb5 2650 }
6b61353c
KH
2651 XSETFLOAT (val, &float_block->floats[float_block_index]);
2652 float_block_index++;
2e471eb5 2653 }
177c0ea7 2654
dafc79fa 2655 MALLOC_UNBLOCK_INPUT;
e2984df0 2656
f601cdf3 2657 XFLOAT_INIT (val, float_value);
6b61353c 2658 eassert (!FLOAT_MARKED_P (XFLOAT (val)));
2e471eb5
GM
2659 consing_since_gc += sizeof (struct Lisp_Float);
2660 floats_consed++;
2661 return val;
2662}
2663
2e471eb5
GM
2664
2665\f
2666/***********************************************************************
2667 Cons Allocation
2668 ***********************************************************************/
2669
2670/* We store cons cells inside of cons_blocks, allocating a new
2671 cons_block with malloc whenever necessary. Cons cells reclaimed by
2672 GC are put on a free list to be reallocated before allocating
08b7c2cb 2673 any new cons cells from the latest cons_block. */
2e471eb5
GM
2674
2675#define CONS_BLOCK_SIZE \
08b7c2cb
SM
2676 (((BLOCK_BYTES - sizeof (struct cons_block *)) * CHAR_BIT) \
2677 / (sizeof (struct Lisp_Cons) * CHAR_BIT + 1))
2678
2679#define CONS_BLOCK(fptr) \
d01a7826 2680 ((struct cons_block *) ((uintptr_t) (fptr) & ~(BLOCK_ALIGN - 1)))
08b7c2cb
SM
2681
2682#define CONS_INDEX(fptr) \
d01a7826 2683 (((uintptr_t) (fptr) & (BLOCK_ALIGN - 1)) / sizeof (struct Lisp_Cons))
2e471eb5
GM
2684
2685struct cons_block
2686{
08b7c2cb 2687 /* Place `conses' at the beginning, to ease up CONS_INDEX's job. */
2e471eb5 2688 struct Lisp_Cons conses[CONS_BLOCK_SIZE];
5e617bc2 2689 int gcmarkbits[1 + CONS_BLOCK_SIZE / (sizeof (int) * CHAR_BIT)];
08b7c2cb 2690 struct cons_block *next;
2e471eb5
GM
2691};
2692
08b7c2cb
SM
2693#define CONS_MARKED_P(fptr) \
2694 GETMARKBIT (CONS_BLOCK (fptr), CONS_INDEX ((fptr)))
2695
2696#define CONS_MARK(fptr) \
2697 SETMARKBIT (CONS_BLOCK (fptr), CONS_INDEX ((fptr)))
2698
2699#define CONS_UNMARK(fptr) \
2700 UNSETMARKBIT (CONS_BLOCK (fptr), CONS_INDEX ((fptr)))
2701
34400008
GM
2702/* Current cons_block. */
2703
244ed907 2704static struct cons_block *cons_block;
34400008
GM
2705
2706/* Index of first unused Lisp_Cons in the current block. */
2707
244ed907 2708static int cons_block_index;
2e471eb5 2709
34400008
GM
2710/* Free-list of Lisp_Cons structures. */
2711
244ed907 2712static struct Lisp_Cons *cons_free_list;
2e471eb5 2713
34400008
GM
2714
2715/* Initialize cons allocation. */
2716
d3d47262 2717static void
971de7fb 2718init_cons (void)
2e471eb5 2719{
08b7c2cb
SM
2720 cons_block = NULL;
2721 cons_block_index = CONS_BLOCK_SIZE; /* Force alloc of new cons_block. */
2e471eb5 2722 cons_free_list = 0;
2e471eb5
GM
2723}
2724
34400008
GM
2725
2726/* Explicitly free a cons cell by putting it on the free-list. */
2e471eb5
GM
2727
2728void
971de7fb 2729free_cons (struct Lisp_Cons *ptr)
2e471eb5 2730{
28a099a4 2731 ptr->u.chain = cons_free_list;
34400008
GM
2732#if GC_MARK_STACK
2733 ptr->car = Vdead;
2734#endif
2e471eb5
GM
2735 cons_free_list = ptr;
2736}
2737
a7ca3326 2738DEFUN ("cons", Fcons, Scons, 2, 2, 0,
a6266d23 2739 doc: /* Create a new cons, give it CAR and CDR as components, and return it. */)
5842a27b 2740 (Lisp_Object car, Lisp_Object cdr)
2e471eb5
GM
2741{
2742 register Lisp_Object val;
2743
e2984df0
CY
2744 /* eassert (!handling_signal); */
2745
dafc79fa 2746 MALLOC_BLOCK_INPUT;
cfb2f32e 2747
2e471eb5
GM
2748 if (cons_free_list)
2749 {
2750 /* We use the cdr for chaining the free list
2751 so that we won't use the same field that has the mark bit. */
2752 XSETCONS (val, cons_free_list);
28a099a4 2753 cons_free_list = cons_free_list->u.chain;
2e471eb5
GM
2754 }
2755 else
2756 {
2757 if (cons_block_index == CONS_BLOCK_SIZE)
2758 {
2759 register struct cons_block *new;
08b7c2cb
SM
2760 new = (struct cons_block *) lisp_align_malloc (sizeof *new,
2761 MEM_TYPE_CONS);
72af86bd 2762 memset (new->gcmarkbits, 0, sizeof new->gcmarkbits);
2e471eb5
GM
2763 new->next = cons_block;
2764 cons_block = new;
2765 cons_block_index = 0;
2e471eb5 2766 }
6b61353c
KH
2767 XSETCONS (val, &cons_block->conses[cons_block_index]);
2768 cons_block_index++;
2e471eb5 2769 }
177c0ea7 2770
dafc79fa 2771 MALLOC_UNBLOCK_INPUT;
e2984df0 2772
f3fbd155
KR
2773 XSETCAR (val, car);
2774 XSETCDR (val, cdr);
6b61353c 2775 eassert (!CONS_MARKED_P (XCONS (val)));
2e471eb5
GM
2776 consing_since_gc += sizeof (struct Lisp_Cons);
2777 cons_cells_consed++;
2778 return val;
2779}
2780
e5aab7e7 2781#ifdef GC_CHECK_CONS_LIST
e3e56238
RS
2782/* Get an error now if there's any junk in the cons free list. */
2783void
971de7fb 2784check_cons_list (void)
e3e56238
RS
2785{
2786 struct Lisp_Cons *tail = cons_free_list;
2787
e3e56238 2788 while (tail)
28a099a4 2789 tail = tail->u.chain;
e3e56238 2790}
e5aab7e7 2791#endif
34400008 2792
9b306d37
KS
2793/* Make a list of 1, 2, 3, 4 or 5 specified objects. */
2794
2795Lisp_Object
971de7fb 2796list1 (Lisp_Object arg1)
9b306d37
KS
2797{
2798 return Fcons (arg1, Qnil);
2799}
2e471eb5
GM
2800
2801Lisp_Object
971de7fb 2802list2 (Lisp_Object arg1, Lisp_Object arg2)
2e471eb5
GM
2803{
2804 return Fcons (arg1, Fcons (arg2, Qnil));
2805}
2806
34400008 2807
2e471eb5 2808Lisp_Object
971de7fb 2809list3 (Lisp_Object arg1, Lisp_Object arg2, Lisp_Object arg3)
2e471eb5
GM
2810{
2811 return Fcons (arg1, Fcons (arg2, Fcons (arg3, Qnil)));
2812}
2813
34400008 2814
2e471eb5 2815Lisp_Object
971de7fb 2816list4 (Lisp_Object arg1, Lisp_Object arg2, Lisp_Object arg3, Lisp_Object arg4)
2e471eb5
GM
2817{
2818 return Fcons (arg1, Fcons (arg2, Fcons (arg3, Fcons (arg4, Qnil))));
2819}
2820
34400008 2821
2e471eb5 2822Lisp_Object
971de7fb 2823list5 (Lisp_Object arg1, Lisp_Object arg2, Lisp_Object arg3, Lisp_Object arg4, Lisp_Object arg5)
2e471eb5
GM
2824{
2825 return Fcons (arg1, Fcons (arg2, Fcons (arg3, Fcons (arg4,
2826 Fcons (arg5, Qnil)))));
2827}
2828
34400008 2829
a7ca3326 2830DEFUN ("list", Flist, Slist, 0, MANY, 0,
eae936e2 2831 doc: /* Return a newly created list with specified arguments as elements.
ae8e8122
MB
2832Any number of arguments, even zero arguments, are allowed.
2833usage: (list &rest OBJECTS) */)
f66c7cf8 2834 (ptrdiff_t nargs, Lisp_Object *args)
2e471eb5
GM
2835{
2836 register Lisp_Object val;
2837 val = Qnil;
2838
2839 while (nargs > 0)
2840 {
2841 nargs--;
2842 val = Fcons (args[nargs], val);
2843 }
2844 return val;
2845}
2846
34400008 2847
a7ca3326 2848DEFUN ("make-list", Fmake_list, Smake_list, 2, 2, 0,
a6266d23 2849 doc: /* Return a newly created list of length LENGTH, with each element being INIT. */)
5842a27b 2850 (register Lisp_Object length, Lisp_Object init)
2e471eb5
GM
2851{
2852 register Lisp_Object val;
14162469 2853 register EMACS_INT size;
2e471eb5 2854
b7826503 2855 CHECK_NATNUM (length);
2e471eb5
GM
2856 size = XFASTINT (length);
2857
2858 val = Qnil;
ce070307
GM
2859 while (size > 0)
2860 {
2861 val = Fcons (init, val);
2862 --size;
2863
2864 if (size > 0)
2865 {
2866 val = Fcons (init, val);
2867 --size;
177c0ea7 2868
ce070307
GM
2869 if (size > 0)
2870 {
2871 val = Fcons (init, val);
2872 --size;
177c0ea7 2873
ce070307
GM
2874 if (size > 0)
2875 {
2876 val = Fcons (init, val);
2877 --size;
177c0ea7 2878
ce070307
GM
2879 if (size > 0)
2880 {
2881 val = Fcons (init, val);
2882 --size;
2883 }
2884 }
2885 }
2886 }
2887
2888 QUIT;
2889 }
177c0ea7 2890
7146af97
JB
2891 return val;
2892}
2e471eb5
GM
2893
2894
7146af97 2895\f
2e471eb5
GM
2896/***********************************************************************
2897 Vector Allocation
2898 ***********************************************************************/
7146af97 2899
34400008
GM
2900/* Singly-linked list of all vectors. */
2901
d3d47262 2902static struct Lisp_Vector *all_vectors;
7146af97 2903
dd0b0efb
PE
2904/* Handy constants for vectorlike objects. */
2905enum
2906 {
2907 header_size = offsetof (struct Lisp_Vector, contents),
2908 word_size = sizeof (Lisp_Object)
2909 };
34400008
GM
2910
2911/* Value is a pointer to a newly allocated Lisp_Vector structure
2912 with room for LEN Lisp_Objects. */
2913
ece93c02 2914static struct Lisp_Vector *
d311d28c 2915allocate_vectorlike (ptrdiff_t len)
1825c68d
KH
2916{
2917 struct Lisp_Vector *p;
675d5130 2918 size_t nbytes;
1825c68d 2919
dafc79fa
SM
2920 MALLOC_BLOCK_INPUT;
2921
d1658221 2922#ifdef DOUG_LEA_MALLOC
f8608968
GM
2923 /* Prevent mmap'ing the chunk. Lisp data may not be mmap'ed
2924 because mapped region contents are not preserved in
2925 a dumped Emacs. */
d1658221
RS
2926 mallopt (M_MMAP_MAX, 0);
2927#endif
177c0ea7 2928
cfb2f32e
SM
2929 /* This gets triggered by code which I haven't bothered to fix. --Stef */
2930 /* eassert (!handling_signal); */
2931
0de4bb68 2932 nbytes = header_size + len * word_size;
9c545a55 2933 p = (struct Lisp_Vector *) lisp_malloc (nbytes, MEM_TYPE_VECTORLIKE);
177c0ea7 2934
d1658221 2935#ifdef DOUG_LEA_MALLOC
34400008 2936 /* Back to a reasonable maximum of mmap'ed areas. */
81d492d5 2937 mallopt (M_MMAP_MAX, MMAP_MAX_AREAS);
d1658221 2938#endif
177c0ea7 2939
34400008 2940 consing_since_gc += nbytes;
310ea200 2941 vector_cells_consed += len;
1825c68d 2942
eab3844f 2943 p->header.next.vector = all_vectors;
1825c68d 2944 all_vectors = p;
e2984df0 2945
dafc79fa 2946 MALLOC_UNBLOCK_INPUT;
e2984df0 2947
1825c68d
KH
2948 return p;
2949}
2950
34400008 2951
dd0b0efb 2952/* Allocate a vector with LEN slots. */
ece93c02
GM
2953
2954struct Lisp_Vector *
dd0b0efb 2955allocate_vector (EMACS_INT len)
ece93c02 2956{
dd0b0efb
PE
2957 struct Lisp_Vector *v;
2958 ptrdiff_t nbytes_max = min (PTRDIFF_MAX, SIZE_MAX);
2959
2960 if (min ((nbytes_max - header_size) / word_size, MOST_POSITIVE_FIXNUM) < len)
2961 memory_full (SIZE_MAX);
2962 v = allocate_vectorlike (len);
2963 v->header.size = len;
ece93c02
GM
2964 return v;
2965}
2966
2967
2968/* Allocate other vector-like structures. */
2969
30f95089 2970struct Lisp_Vector *
d311d28c 2971allocate_pseudovector (int memlen, int lisplen, int tag)
ece93c02 2972{
d2029e5b 2973 struct Lisp_Vector *v = allocate_vectorlike (memlen);
e46bb31a 2974 int i;
177c0ea7 2975
d2029e5b 2976 /* Only the first lisplen slots will be traced normally by the GC. */
d2029e5b 2977 for (i = 0; i < lisplen; ++i)
ece93c02 2978 v->contents[i] = Qnil;
177c0ea7 2979
eab3844f 2980 XSETPVECTYPESIZE (v, tag, lisplen);
d2029e5b
SM
2981 return v;
2982}
d2029e5b 2983
ece93c02 2984struct Lisp_Hash_Table *
878f97ff 2985allocate_hash_table (void)
ece93c02 2986{
878f97ff 2987 return ALLOCATE_PSEUDOVECTOR (struct Lisp_Hash_Table, count, PVEC_HASH_TABLE);
ece93c02
GM
2988}
2989
2990
2991struct window *
971de7fb 2992allocate_window (void)
ece93c02 2993{
5e617bc2 2994 return ALLOCATE_PSEUDOVECTOR (struct window, current_matrix, PVEC_WINDOW);
ece93c02 2995}
177c0ea7 2996
177c0ea7 2997
4a729fd8 2998struct terminal *
971de7fb 2999allocate_terminal (void)
4a729fd8 3000{
d2029e5b
SM
3001 struct terminal *t = ALLOCATE_PSEUDOVECTOR (struct terminal,
3002 next_terminal, PVEC_TERMINAL);
3003 /* Zero out the non-GC'd fields. FIXME: This should be made unnecessary. */
72af86bd
AS
3004 memset (&t->next_terminal, 0,
3005 (char*) (t + 1) - (char*) &t->next_terminal);
ece93c02 3006
d2029e5b 3007 return t;
4a729fd8 3008}
ece93c02
GM
3009
3010struct frame *
971de7fb 3011allocate_frame (void)
ece93c02 3012{
d2029e5b
SM
3013 struct frame *f = ALLOCATE_PSEUDOVECTOR (struct frame,
3014 face_cache, PVEC_FRAME);
3015 /* Zero out the non-GC'd fields. FIXME: This should be made unnecessary. */
72af86bd
AS
3016 memset (&f->face_cache, 0,
3017 (char *) (f + 1) - (char *) &f->face_cache);
d2029e5b 3018 return f;
ece93c02
GM
3019}
3020
3021
3022struct Lisp_Process *
971de7fb 3023allocate_process (void)
ece93c02 3024{
d2029e5b 3025 return ALLOCATE_PSEUDOVECTOR (struct Lisp_Process, pid, PVEC_PROCESS);
ece93c02
GM
3026}
3027
3028
a7ca3326 3029DEFUN ("make-vector", Fmake_vector, Smake_vector, 2, 2, 0,
a6266d23 3030 doc: /* Return a newly created vector of length LENGTH, with each element being INIT.
7ee72033 3031See also the function `vector'. */)
5842a27b 3032 (register Lisp_Object length, Lisp_Object init)
7146af97 3033{
1825c68d 3034 Lisp_Object vector;
d311d28c
PE
3035 register ptrdiff_t sizei;
3036 register ptrdiff_t i;
7146af97
JB
3037 register struct Lisp_Vector *p;
3038
b7826503 3039 CHECK_NATNUM (length);
7146af97 3040
d311d28c
PE
3041 p = allocate_vector (XFASTINT (length));
3042 sizei = XFASTINT (length);
ae35e756
PE
3043 for (i = 0; i < sizei; i++)
3044 p->contents[i] = init;
7146af97 3045
1825c68d 3046 XSETVECTOR (vector, p);
7146af97
JB
3047 return vector;
3048}
3049
34400008 3050
a7ca3326 3051DEFUN ("vector", Fvector, Svector, 0, MANY, 0,
eae936e2 3052 doc: /* Return a newly created vector with specified arguments as elements.
ae8e8122
MB
3053Any number of arguments, even zero arguments, are allowed.
3054usage: (vector &rest OBJECTS) */)
f66c7cf8 3055 (ptrdiff_t nargs, Lisp_Object *args)
7146af97
JB
3056{
3057 register Lisp_Object len, val;
f66c7cf8 3058 ptrdiff_t i;
7146af97
JB
3059 register struct Lisp_Vector *p;
3060
67ba9986 3061 XSETFASTINT (len, nargs);
7146af97
JB
3062 val = Fmake_vector (len, Qnil);
3063 p = XVECTOR (val);
ae35e756
PE
3064 for (i = 0; i < nargs; i++)
3065 p->contents[i] = args[i];
7146af97
JB
3066 return val;
3067}
3068
34400008 3069
a7ca3326 3070DEFUN ("make-byte-code", Fmake_byte_code, Smake_byte_code, 4, MANY, 0,
a6266d23 3071 doc: /* Create a byte-code object with specified arguments as elements.
e2abe5a1
SM
3072The arguments should be the ARGLIST, bytecode-string BYTE-CODE, constant
3073vector CONSTANTS, maximum stack size DEPTH, (optional) DOCSTRING,
3074and (optional) INTERACTIVE-SPEC.
228299fa 3075The first four arguments are required; at most six have any
ae8e8122 3076significance.
e2abe5a1
SM
3077The ARGLIST can be either like the one of `lambda', in which case the arguments
3078will be dynamically bound before executing the byte code, or it can be an
3079integer of the form NNNNNNNRMMMMMMM where the 7bit MMMMMMM specifies the
3080minimum number of arguments, the 7-bit NNNNNNN specifies the maximum number
3081of arguments (ignoring &rest) and the R bit specifies whether there is a &rest
3082argument to catch the left-over arguments. If such an integer is used, the
3083arguments will not be dynamically bound but will be instead pushed on the
3084stack before executing the byte-code.
92cc28b2 3085usage: (make-byte-code ARGLIST BYTE-CODE CONSTANTS DEPTH &optional DOCSTRING INTERACTIVE-SPEC &rest ELEMENTS) */)
f66c7cf8 3086 (ptrdiff_t nargs, Lisp_Object *args)
7146af97
JB
3087{
3088 register Lisp_Object len, val;
f66c7cf8 3089 ptrdiff_t i;
7146af97
JB
3090 register struct Lisp_Vector *p;
3091
67ba9986 3092 XSETFASTINT (len, nargs);
265a9e55 3093 if (!NILP (Vpurify_flag))
f66c7cf8 3094 val = make_pure_vector (nargs);
7146af97
JB
3095 else
3096 val = Fmake_vector (len, Qnil);
9eac9d59 3097
b1feb9b4 3098 if (nargs > 1 && STRINGP (args[1]) && STRING_MULTIBYTE (args[1]))
9eac9d59
KH
3099 /* BYTECODE-STRING must have been produced by Emacs 20.2 or the
3100 earlier because they produced a raw 8-bit string for byte-code
3101 and now such a byte-code string is loaded as multibyte while
3102 raw 8-bit characters converted to multibyte form. Thus, now we
3103 must convert them back to the original unibyte form. */
3104 args[1] = Fstring_as_unibyte (args[1]);
3105
7146af97 3106 p = XVECTOR (val);
ae35e756 3107 for (i = 0; i < nargs; i++)
7146af97 3108 {
265a9e55 3109 if (!NILP (Vpurify_flag))
ae35e756
PE
3110 args[i] = Fpurecopy (args[i]);
3111 p->contents[i] = args[i];
7146af97 3112 }
876c194c
SM
3113 XSETPVECTYPE (p, PVEC_COMPILED);
3114 XSETCOMPILED (val, p);
7146af97
JB
3115 return val;
3116}
2e471eb5 3117
34400008 3118
7146af97 3119\f
2e471eb5
GM
3120/***********************************************************************
3121 Symbol Allocation
3122 ***********************************************************************/
7146af97 3123
2e471eb5
GM
3124/* Each symbol_block is just under 1020 bytes long, since malloc
3125 really allocates in units of powers of two and uses 4 bytes for its
3126 own overhead. */
7146af97
JB
3127
3128#define SYMBOL_BLOCK_SIZE \
3129 ((1020 - sizeof (struct symbol_block *)) / sizeof (struct Lisp_Symbol))
3130
3131struct symbol_block
2e471eb5 3132{
6b61353c 3133 /* Place `symbols' first, to preserve alignment. */
2e471eb5 3134 struct Lisp_Symbol symbols[SYMBOL_BLOCK_SIZE];
6b61353c 3135 struct symbol_block *next;
2e471eb5 3136};
7146af97 3137
34400008
GM
3138/* Current symbol block and index of first unused Lisp_Symbol
3139 structure in it. */
3140
d3d47262
JB
3141static struct symbol_block *symbol_block;
3142static int symbol_block_index;
7146af97 3143
34400008
GM
3144/* List of free symbols. */
3145
d3d47262 3146static struct Lisp_Symbol *symbol_free_list;
7146af97 3147
34400008
GM
3148
3149/* Initialize symbol allocation. */
3150
d3d47262 3151static void
971de7fb 3152init_symbol (void)
7146af97 3153{
005ca5c7
DL
3154 symbol_block = NULL;
3155 symbol_block_index = SYMBOL_BLOCK_SIZE;
7146af97
JB
3156 symbol_free_list = 0;
3157}
3158
34400008 3159
a7ca3326 3160DEFUN ("make-symbol", Fmake_symbol, Smake_symbol, 1, 1, 0,
a6266d23 3161 doc: /* Return a newly allocated uninterned symbol whose name is NAME.
7ee72033 3162Its value and function definition are void, and its property list is nil. */)
5842a27b 3163 (Lisp_Object name)
7146af97
JB
3164{
3165 register Lisp_Object val;
3166 register struct Lisp_Symbol *p;
3167
b7826503 3168 CHECK_STRING (name);
7146af97 3169
537407f0 3170 /* eassert (!handling_signal); */
cfb2f32e 3171
dafc79fa 3172 MALLOC_BLOCK_INPUT;
e2984df0 3173
7146af97
JB
3174 if (symbol_free_list)
3175 {
45d12a89 3176 XSETSYMBOL (val, symbol_free_list);
28a099a4 3177 symbol_free_list = symbol_free_list->next;
7146af97
JB
3178 }
3179 else
3180 {
3181 if (symbol_block_index == SYMBOL_BLOCK_SIZE)
3182 {
3c06d205 3183 struct symbol_block *new;
34400008
GM
3184 new = (struct symbol_block *) lisp_malloc (sizeof *new,
3185 MEM_TYPE_SYMBOL);
7146af97
JB
3186 new->next = symbol_block;
3187 symbol_block = new;
3188 symbol_block_index = 0;
3189 }
6b61353c
KH
3190 XSETSYMBOL (val, &symbol_block->symbols[symbol_block_index]);
3191 symbol_block_index++;
7146af97 3192 }
177c0ea7 3193
dafc79fa 3194 MALLOC_UNBLOCK_INPUT;
e2984df0 3195
7146af97 3196 p = XSYMBOL (val);
8fe5665d 3197 p->xname = name;
7146af97 3198 p->plist = Qnil;
ce5b453a
SM
3199 p->redirect = SYMBOL_PLAINVAL;
3200 SET_SYMBOL_VAL (p, Qunbound);
2e471eb5 3201 p->function = Qunbound;
9e713715 3202 p->next = NULL;
2336fe58 3203 p->gcmarkbit = 0;
9e713715
GM
3204 p->interned = SYMBOL_UNINTERNED;
3205 p->constant = 0;
b9598260 3206 p->declared_special = 0;
2e471eb5
GM
3207 consing_since_gc += sizeof (struct Lisp_Symbol);
3208 symbols_consed++;
7146af97
JB
3209 return val;
3210}
3211
3f25e183 3212
2e471eb5
GM
3213\f
3214/***********************************************************************
34400008 3215 Marker (Misc) Allocation
2e471eb5 3216 ***********************************************************************/
3f25e183 3217
2e471eb5
GM
3218/* Allocation of markers and other objects that share that structure.
3219 Works like allocation of conses. */
c0696668 3220
2e471eb5
GM
3221#define MARKER_BLOCK_SIZE \
3222 ((1020 - sizeof (struct marker_block *)) / sizeof (union Lisp_Misc))
3223
3224struct marker_block
c0696668 3225{
6b61353c 3226 /* Place `markers' first, to preserve alignment. */
2e471eb5 3227 union Lisp_Misc markers[MARKER_BLOCK_SIZE];
6b61353c 3228 struct marker_block *next;
2e471eb5 3229};
c0696668 3230
d3d47262
JB
3231static struct marker_block *marker_block;
3232static int marker_block_index;
c0696668 3233
d3d47262 3234static union Lisp_Misc *marker_free_list;
c0696668 3235
d3d47262 3236static void
971de7fb 3237init_marker (void)
3f25e183 3238{
005ca5c7
DL
3239 marker_block = NULL;
3240 marker_block_index = MARKER_BLOCK_SIZE;
2e471eb5 3241 marker_free_list = 0;
3f25e183
RS
3242}
3243
2e471eb5
GM
3244/* Return a newly allocated Lisp_Misc object, with no substructure. */
3245
3f25e183 3246Lisp_Object
971de7fb 3247allocate_misc (void)
7146af97 3248{
2e471eb5 3249 Lisp_Object val;
7146af97 3250
e2984df0
CY
3251 /* eassert (!handling_signal); */
3252
dafc79fa 3253 MALLOC_BLOCK_INPUT;
cfb2f32e 3254
2e471eb5 3255 if (marker_free_list)
7146af97 3256 {
2e471eb5
GM
3257 XSETMISC (val, marker_free_list);
3258 marker_free_list = marker_free_list->u_free.chain;
7146af97
JB
3259 }
3260 else
7146af97 3261 {
2e471eb5
GM
3262 if (marker_block_index == MARKER_BLOCK_SIZE)
3263 {
3264 struct marker_block *new;
34400008
GM
3265 new = (struct marker_block *) lisp_malloc (sizeof *new,
3266 MEM_TYPE_MISC);
2e471eb5
GM
3267 new->next = marker_block;
3268 marker_block = new;
3269 marker_block_index = 0;
7b7990cc 3270 total_free_markers += MARKER_BLOCK_SIZE;
2e471eb5 3271 }
6b61353c
KH
3272 XSETMISC (val, &marker_block->markers[marker_block_index]);
3273 marker_block_index++;
7146af97 3274 }
177c0ea7 3275
dafc79fa 3276 MALLOC_UNBLOCK_INPUT;
e2984df0 3277
7b7990cc 3278 --total_free_markers;
2e471eb5
GM
3279 consing_since_gc += sizeof (union Lisp_Misc);
3280 misc_objects_consed++;
67ee9f6e 3281 XMISCANY (val)->gcmarkbit = 0;
2e471eb5
GM
3282 return val;
3283}
3284
7b7990cc
KS
3285/* Free a Lisp_Misc object */
3286
244ed907 3287static void
971de7fb 3288free_misc (Lisp_Object misc)
7b7990cc 3289{
d314756e 3290 XMISCTYPE (misc) = Lisp_Misc_Free;
7b7990cc
KS
3291 XMISC (misc)->u_free.chain = marker_free_list;
3292 marker_free_list = XMISC (misc);
3293
3294 total_free_markers++;
3295}
3296
42172a6b
RS
3297/* Return a Lisp_Misc_Save_Value object containing POINTER and
3298 INTEGER. This is used to package C values to call record_unwind_protect.
3299 The unwind function can get the C values back using XSAVE_VALUE. */
3300
3301Lisp_Object
9c4c5f81 3302make_save_value (void *pointer, ptrdiff_t integer)
42172a6b
RS
3303{
3304 register Lisp_Object val;
3305 register struct Lisp_Save_Value *p;
3306
3307 val = allocate_misc ();
3308 XMISCTYPE (val) = Lisp_Misc_Save_Value;
3309 p = XSAVE_VALUE (val);
3310 p->pointer = pointer;
3311 p->integer = integer;
b766f870 3312 p->dogc = 0;
42172a6b
RS
3313 return val;
3314}
3315
a7ca3326 3316DEFUN ("make-marker", Fmake_marker, Smake_marker, 0, 0, 0,
a6266d23 3317 doc: /* Return a newly allocated marker which does not point at any place. */)
5842a27b 3318 (void)
2e471eb5
GM
3319{
3320 register Lisp_Object val;
3321 register struct Lisp_Marker *p;
7146af97 3322
2e471eb5
GM
3323 val = allocate_misc ();
3324 XMISCTYPE (val) = Lisp_Misc_Marker;
3325 p = XMARKER (val);
3326 p->buffer = 0;
3327 p->bytepos = 0;
3328 p->charpos = 0;
ef89c2ce 3329 p->next = NULL;
2e471eb5 3330 p->insertion_type = 0;
7146af97
JB
3331 return val;
3332}
2e471eb5
GM
3333
3334/* Put MARKER back on the free list after using it temporarily. */
3335
3336void
971de7fb 3337free_marker (Lisp_Object marker)
2e471eb5 3338{
ef89c2ce 3339 unchain_marker (XMARKER (marker));
7b7990cc 3340 free_misc (marker);
2e471eb5
GM
3341}
3342
c0696668 3343\f
7146af97 3344/* Return a newly created vector or string with specified arguments as
736471d1
RS
3345 elements. If all the arguments are characters that can fit
3346 in a string of events, make a string; otherwise, make a vector.
3347
3348 Any number of arguments, even zero arguments, are allowed. */
7146af97
JB
3349
3350Lisp_Object
971de7fb 3351make_event_array (register int nargs, Lisp_Object *args)
7146af97
JB
3352{
3353 int i;
3354
3355 for (i = 0; i < nargs; i++)
736471d1 3356 /* The things that fit in a string
c9ca4659
RS
3357 are characters that are in 0...127,
3358 after discarding the meta bit and all the bits above it. */
e687453f 3359 if (!INTEGERP (args[i])
c11285dc 3360 || (XINT (args[i]) & ~(-CHAR_META)) >= 0200)
7146af97
JB
3361 return Fvector (nargs, args);
3362
3363 /* Since the loop exited, we know that all the things in it are
3364 characters, so we can make a string. */
3365 {
c13ccad2 3366 Lisp_Object result;
177c0ea7 3367
50aee051 3368 result = Fmake_string (make_number (nargs), make_number (0));
7146af97 3369 for (i = 0; i < nargs; i++)
736471d1 3370 {
46e7e6b0 3371 SSET (result, i, XINT (args[i]));
736471d1
RS
3372 /* Move the meta bit to the right place for a string char. */
3373 if (XINT (args[i]) & CHAR_META)
46e7e6b0 3374 SSET (result, i, SREF (result, i) | 0x80);
736471d1 3375 }
177c0ea7 3376
7146af97
JB
3377 return result;
3378 }
3379}
2e471eb5
GM
3380
3381
7146af97 3382\f
24d8a105
RS
3383/************************************************************************
3384 Memory Full Handling
3385 ************************************************************************/
3386
3387
531b0165
PE
3388/* Called if malloc (NBYTES) returns zero. If NBYTES == SIZE_MAX,
3389 there may have been size_t overflow so that malloc was never
3390 called, or perhaps malloc was invoked successfully but the
3391 resulting pointer had problems fitting into a tagged EMACS_INT. In
3392 either case this counts as memory being full even though malloc did
3393 not fail. */
24d8a105
RS
3394
3395void
531b0165 3396memory_full (size_t nbytes)
24d8a105 3397{
531b0165
PE
3398 /* Do not go into hysterics merely because a large request failed. */
3399 int enough_free_memory = 0;
2b6148e4 3400 if (SPARE_MEMORY < nbytes)
531b0165 3401 {
66606eea
PE
3402 void *p;
3403
3404 MALLOC_BLOCK_INPUT;
3405 p = malloc (SPARE_MEMORY);
531b0165
PE
3406 if (p)
3407 {
4d09bcf6 3408 free (p);
531b0165
PE
3409 enough_free_memory = 1;
3410 }
66606eea 3411 MALLOC_UNBLOCK_INPUT;
531b0165 3412 }
24d8a105 3413
531b0165
PE
3414 if (! enough_free_memory)
3415 {
3416 int i;
24d8a105 3417
531b0165
PE
3418 Vmemory_full = Qt;
3419
3420 memory_full_cons_threshold = sizeof (struct cons_block);
3421
3422 /* The first time we get here, free the spare memory. */
3423 for (i = 0; i < sizeof (spare_memory) / sizeof (char *); i++)
3424 if (spare_memory[i])
3425 {
3426 if (i == 0)
3427 free (spare_memory[i]);
3428 else if (i >= 1 && i <= 4)
3429 lisp_align_free (spare_memory[i]);
3430 else
3431 lisp_free (spare_memory[i]);
3432 spare_memory[i] = 0;
3433 }
3434
3435 /* Record the space now used. When it decreases substantially,
3436 we can refill the memory reserve. */
4e75f29d 3437#if !defined SYSTEM_MALLOC && !defined SYNC_INPUT
531b0165 3438 bytes_used_when_full = BYTES_USED;
24d8a105 3439#endif
531b0165 3440 }
24d8a105
RS
3441
3442 /* This used to call error, but if we've run out of memory, we could
3443 get infinite recursion trying to build the string. */
9b306d37 3444 xsignal (Qnil, Vmemory_signal_data);
24d8a105
RS
3445}
3446
3447/* If we released our reserve (due to running out of memory),
3448 and we have a fair amount free once again,
3449 try to set aside another reserve in case we run out once more.
3450
3451 This is called when a relocatable block is freed in ralloc.c,
3452 and also directly from this file, in case we're not using ralloc.c. */
3453
3454void
971de7fb 3455refill_memory_reserve (void)
24d8a105
RS
3456{
3457#ifndef SYSTEM_MALLOC
3458 if (spare_memory[0] == 0)
903fe15d 3459 spare_memory[0] = (char *) malloc (SPARE_MEMORY);
24d8a105
RS
3460 if (spare_memory[1] == 0)
3461 spare_memory[1] = (char *) lisp_align_malloc (sizeof (struct cons_block),
3462 MEM_TYPE_CONS);
3463 if (spare_memory[2] == 0)
3464 spare_memory[2] = (char *) lisp_align_malloc (sizeof (struct cons_block),
3465 MEM_TYPE_CONS);
3466 if (spare_memory[3] == 0)
3467 spare_memory[3] = (char *) lisp_align_malloc (sizeof (struct cons_block),
3468 MEM_TYPE_CONS);
3469 if (spare_memory[4] == 0)
3470 spare_memory[4] = (char *) lisp_align_malloc (sizeof (struct cons_block),
3471 MEM_TYPE_CONS);
3472 if (spare_memory[5] == 0)
3473 spare_memory[5] = (char *) lisp_malloc (sizeof (struct string_block),
3474 MEM_TYPE_STRING);
3475 if (spare_memory[6] == 0)
3476 spare_memory[6] = (char *) lisp_malloc (sizeof (struct string_block),
3477 MEM_TYPE_STRING);
3478 if (spare_memory[0] && spare_memory[1] && spare_memory[5])
3479 Vmemory_full = Qnil;
3480#endif
3481}
3482\f
34400008
GM
3483/************************************************************************
3484 C Stack Marking
3485 ************************************************************************/
3486
13c844fb
GM
3487#if GC_MARK_STACK || defined GC_MALLOC_CHECK
3488
71cf5fa0
GM
3489/* Conservative C stack marking requires a method to identify possibly
3490 live Lisp objects given a pointer value. We do this by keeping
3491 track of blocks of Lisp data that are allocated in a red-black tree
3492 (see also the comment of mem_node which is the type of nodes in
3493 that tree). Function lisp_malloc adds information for an allocated
3494 block to the red-black tree with calls to mem_insert, and function
3495 lisp_free removes it with mem_delete. Functions live_string_p etc
3496 call mem_find to lookup information about a given pointer in the
3497 tree, and use that to determine if the pointer points to a Lisp
3498 object or not. */
3499
34400008
GM
3500/* Initialize this part of alloc.c. */
3501
3502static void
971de7fb 3503mem_init (void)
34400008
GM
3504{
3505 mem_z.left = mem_z.right = MEM_NIL;
3506 mem_z.parent = NULL;
3507 mem_z.color = MEM_BLACK;
3508 mem_z.start = mem_z.end = NULL;
3509 mem_root = MEM_NIL;
3510}
3511
3512
3513/* Value is a pointer to the mem_node containing START. Value is
3514 MEM_NIL if there is no node in the tree containing START. */
3515
55d4c1b2 3516static inline struct mem_node *
971de7fb 3517mem_find (void *start)
34400008
GM
3518{
3519 struct mem_node *p;
3520
ece93c02
GM
3521 if (start < min_heap_address || start > max_heap_address)
3522 return MEM_NIL;
3523
34400008
GM
3524 /* Make the search always successful to speed up the loop below. */
3525 mem_z.start = start;
3526 mem_z.end = (char *) start + 1;
3527
3528 p = mem_root;
3529 while (start < p->start || start >= p->end)
3530 p = start < p->start ? p->left : p->right;
3531 return p;
3532}
3533
3534
3535/* Insert a new node into the tree for a block of memory with start
3536 address START, end address END, and type TYPE. Value is a
3537 pointer to the node that was inserted. */
3538
3539static struct mem_node *
971de7fb 3540mem_insert (void *start, void *end, enum mem_type type)
34400008
GM
3541{
3542 struct mem_node *c, *parent, *x;
3543
add3c3ea 3544 if (min_heap_address == NULL || start < min_heap_address)
ece93c02 3545 min_heap_address = start;
add3c3ea 3546 if (max_heap_address == NULL || end > max_heap_address)
ece93c02
GM
3547 max_heap_address = end;
3548
34400008
GM
3549 /* See where in the tree a node for START belongs. In this
3550 particular application, it shouldn't happen that a node is already
3551 present. For debugging purposes, let's check that. */
3552 c = mem_root;
3553 parent = NULL;
3554
3555#if GC_MARK_STACK != GC_MAKE_GCPROS_NOOPS
177c0ea7 3556
34400008
GM
3557 while (c != MEM_NIL)
3558 {
3559 if (start >= c->start && start < c->end)
3560 abort ();
3561 parent = c;
3562 c = start < c->start ? c->left : c->right;
3563 }
177c0ea7 3564
34400008 3565#else /* GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS */
177c0ea7 3566
34400008
GM
3567 while (c != MEM_NIL)
3568 {
3569 parent = c;
3570 c = start < c->start ? c->left : c->right;
3571 }
177c0ea7 3572
34400008
GM
3573#endif /* GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS */
3574
3575 /* Create a new node. */
877935b1
GM
3576#ifdef GC_MALLOC_CHECK
3577 x = (struct mem_node *) _malloc_internal (sizeof *x);
3578 if (x == NULL)
3579 abort ();
3580#else
34400008 3581 x = (struct mem_node *) xmalloc (sizeof *x);
877935b1 3582#endif
34400008
GM
3583 x->start = start;
3584 x->end = end;
3585 x->type = type;
3586 x->parent = parent;
3587 x->left = x->right = MEM_NIL;
3588 x->color = MEM_RED;
3589
3590 /* Insert it as child of PARENT or install it as root. */
3591 if (parent)
3592 {
3593 if (start < parent->start)
3594 parent->left = x;
3595 else
3596 parent->right = x;
3597 }
177c0ea7 3598 else
34400008
GM
3599 mem_root = x;
3600
3601 /* Re-establish red-black tree properties. */
3602 mem_insert_fixup (x);
877935b1 3603
34400008
GM
3604 return x;
3605}
3606
3607
3608/* Re-establish the red-black properties of the tree, and thereby
3609 balance the tree, after node X has been inserted; X is always red. */
3610
3611static void
971de7fb 3612mem_insert_fixup (struct mem_node *x)
34400008
GM
3613{
3614 while (x != mem_root && x->parent->color == MEM_RED)
3615 {
3616 /* X is red and its parent is red. This is a violation of
3617 red-black tree property #3. */
177c0ea7 3618
34400008
GM
3619 if (x->parent == x->parent->parent->left)
3620 {
3621 /* We're on the left side of our grandparent, and Y is our
3622 "uncle". */
3623 struct mem_node *y = x->parent->parent->right;
177c0ea7 3624
34400008
GM
3625 if (y->color == MEM_RED)
3626 {
3627 /* Uncle and parent are red but should be black because
3628 X is red. Change the colors accordingly and proceed
3629 with the grandparent. */
3630 x->parent->color = MEM_BLACK;
3631 y->color = MEM_BLACK;
3632 x->parent->parent->color = MEM_RED;
3633 x = x->parent->parent;
3634 }
3635 else
3636 {
3637 /* Parent and uncle have different colors; parent is
3638 red, uncle is black. */
3639 if (x == x->parent->right)
3640 {
3641 x = x->parent;
3642 mem_rotate_left (x);
3643 }
3644
3645 x->parent->color = MEM_BLACK;
3646 x->parent->parent->color = MEM_RED;
3647 mem_rotate_right (x->parent->parent);
3648 }
3649 }
3650 else
3651 {
3652 /* This is the symmetrical case of above. */
3653 struct mem_node *y = x->parent->parent->left;
177c0ea7 3654
34400008
GM
3655 if (y->color == MEM_RED)
3656 {
3657 x->parent->color = MEM_BLACK;
3658 y->color = MEM_BLACK;
3659 x->parent->parent->color = MEM_RED;
3660 x = x->parent->parent;
3661 }
3662 else
3663 {
3664 if (x == x->parent->left)
3665 {
3666 x = x->parent;
3667 mem_rotate_right (x);
3668 }
177c0ea7 3669
34400008
GM
3670 x->parent->color = MEM_BLACK;
3671 x->parent->parent->color = MEM_RED;
3672 mem_rotate_left (x->parent->parent);
3673 }
3674 }
3675 }
3676
3677 /* The root may have been changed to red due to the algorithm. Set
3678 it to black so that property #5 is satisfied. */
3679 mem_root->color = MEM_BLACK;
3680}
3681
3682
177c0ea7
JB
3683/* (x) (y)
3684 / \ / \
34400008
GM
3685 a (y) ===> (x) c
3686 / \ / \
3687 b c a b */
3688
3689static void
971de7fb 3690mem_rotate_left (struct mem_node *x)
34400008
GM
3691{
3692 struct mem_node *y;
3693
3694 /* Turn y's left sub-tree into x's right sub-tree. */
3695 y = x->right;
3696 x->right = y->left;
3697 if (y->left != MEM_NIL)
3698 y->left->parent = x;
3699
3700 /* Y's parent was x's parent. */
3701 if (y != MEM_NIL)
3702 y->parent = x->parent;
3703
3704 /* Get the parent to point to y instead of x. */
3705 if (x->parent)
3706 {
3707 if (x == x->parent->left)
3708 x->parent->left = y;
3709 else
3710 x->parent->right = y;
3711 }
3712 else
3713 mem_root = y;
3714
3715 /* Put x on y's left. */
3716 y->left = x;
3717 if (x != MEM_NIL)
3718 x->parent = y;
3719}
3720
3721
177c0ea7
JB
3722/* (x) (Y)
3723 / \ / \
3724 (y) c ===> a (x)
3725 / \ / \
34400008
GM
3726 a b b c */
3727
3728static void
971de7fb 3729mem_rotate_right (struct mem_node *x)
34400008
GM
3730{
3731 struct mem_node *y = x->left;
3732
3733 x->left = y->right;
3734 if (y->right != MEM_NIL)
3735 y->right->parent = x;
177c0ea7 3736
34400008
GM
3737 if (y != MEM_NIL)
3738 y->parent = x->parent;
3739 if (x->parent)
3740 {
3741 if (x == x->parent->right)
3742 x->parent->right = y;
3743 else
3744 x->parent->left = y;
3745 }
3746 else
3747 mem_root = y;
177c0ea7 3748
34400008
GM
3749 y->right = x;
3750 if (x != MEM_NIL)
3751 x->parent = y;
3752}
3753
3754
3755/* Delete node Z from the tree. If Z is null or MEM_NIL, do nothing. */
3756
3757static void
971de7fb 3758mem_delete (struct mem_node *z)
34400008
GM
3759{
3760 struct mem_node *x, *y;
3761
3762 if (!z || z == MEM_NIL)
3763 return;
3764
3765 if (z->left == MEM_NIL || z->right == MEM_NIL)
3766 y = z;
3767 else
3768 {
3769 y = z->right;
3770 while (y->left != MEM_NIL)
3771 y = y->left;
3772 }
3773
3774 if (y->left != MEM_NIL)
3775 x = y->left;
3776 else
3777 x = y->right;
3778
3779 x->parent = y->parent;
3780 if (y->parent)
3781 {
3782 if (y == y->parent->left)
3783 y->parent->left = x;
3784 else
3785 y->parent->right = x;
3786 }
3787 else
3788 mem_root = x;
3789
3790 if (y != z)
3791 {
3792 z->start = y->start;
3793 z->end = y->end;
3794 z->type = y->type;
3795 }
177c0ea7 3796
34400008
GM
3797 if (y->color == MEM_BLACK)
3798 mem_delete_fixup (x);
877935b1
GM
3799
3800#ifdef GC_MALLOC_CHECK
3801 _free_internal (y);
3802#else
34400008 3803 xfree (y);
877935b1 3804#endif
34400008
GM
3805}
3806
3807
3808/* Re-establish the red-black properties of the tree, after a
3809 deletion. */
3810
3811static void
971de7fb 3812mem_delete_fixup (struct mem_node *x)
34400008
GM
3813{
3814 while (x != mem_root && x->color == MEM_BLACK)
3815 {
3816 if (x == x->parent->left)
3817 {
3818 struct mem_node *w = x->parent->right;
177c0ea7 3819
34400008
GM
3820 if (w->color == MEM_RED)
3821 {
3822 w->color = MEM_BLACK;
3823 x->parent->color = MEM_RED;
3824 mem_rotate_left (x->parent);
3825 w = x->parent->right;
3826 }
177c0ea7 3827
34400008
GM
3828 if (w->left->color == MEM_BLACK && w->right->color == MEM_BLACK)
3829 {
3830 w->color = MEM_RED;
3831 x = x->parent;
3832 }
3833 else
3834 {
3835 if (w->right->color == MEM_BLACK)
3836 {
3837 w->left->color = MEM_BLACK;
3838 w->color = MEM_RED;
3839 mem_rotate_right (w);
3840 w = x->parent->right;
3841 }
3842 w->color = x->parent->color;
3843 x->parent->color = MEM_BLACK;
3844 w->right->color = MEM_BLACK;
3845 mem_rotate_left (x->parent);
3846 x = mem_root;
3847 }
3848 }
3849 else
3850 {
3851 struct mem_node *w = x->parent->left;
177c0ea7 3852
34400008
GM
3853 if (w->color == MEM_RED)
3854 {
3855 w->color = MEM_BLACK;
3856 x->parent->color = MEM_RED;
3857 mem_rotate_right (x->parent);
3858 w = x->parent->left;
3859 }
177c0ea7 3860
34400008
GM
3861 if (w->right->color == MEM_BLACK && w->left->color == MEM_BLACK)
3862 {
3863 w->color = MEM_RED;
3864 x = x->parent;
3865 }
3866 else
3867 {
3868 if (w->left->color == MEM_BLACK)
3869 {
3870 w->right->color = MEM_BLACK;
3871 w->color = MEM_RED;
3872 mem_rotate_left (w);
3873 w = x->parent->left;
3874 }
177c0ea7 3875
34400008
GM
3876 w->color = x->parent->color;
3877 x->parent->color = MEM_BLACK;
3878 w->left->color = MEM_BLACK;
3879 mem_rotate_right (x->parent);
3880 x = mem_root;
3881 }
3882 }
3883 }
177c0ea7 3884
34400008
GM
3885 x->color = MEM_BLACK;
3886}
3887
3888
3889/* Value is non-zero if P is a pointer to a live Lisp string on
3890 the heap. M is a pointer to the mem_block for P. */
3891
55d4c1b2 3892static inline int
971de7fb 3893live_string_p (struct mem_node *m, void *p)
34400008
GM
3894{
3895 if (m->type == MEM_TYPE_STRING)
3896 {
3897 struct string_block *b = (struct string_block *) m->start;
14162469 3898 ptrdiff_t offset = (char *) p - (char *) &b->strings[0];
34400008
GM
3899
3900 /* P must point to the start of a Lisp_String structure, and it
3901 must not be on the free-list. */
176bc847
GM
3902 return (offset >= 0
3903 && offset % sizeof b->strings[0] == 0
6b61353c 3904 && offset < (STRING_BLOCK_SIZE * sizeof b->strings[0])
34400008
GM
3905 && ((struct Lisp_String *) p)->data != NULL);
3906 }
3907 else
3908 return 0;
3909}
3910
3911
3912/* Value is non-zero if P is a pointer to a live Lisp cons on
3913 the heap. M is a pointer to the mem_block for P. */
3914
55d4c1b2 3915static inline int
971de7fb 3916live_cons_p (struct mem_node *m, void *p)
34400008
GM
3917{
3918 if (m->type == MEM_TYPE_CONS)
3919 {
3920 struct cons_block *b = (struct cons_block *) m->start;
14162469 3921 ptrdiff_t offset = (char *) p - (char *) &b->conses[0];
34400008
GM
3922
3923 /* P must point to the start of a Lisp_Cons, not be
3924 one of the unused cells in the current cons block,
3925 and not be on the free-list. */
176bc847
GM
3926 return (offset >= 0
3927 && offset % sizeof b->conses[0] == 0
6b61353c 3928 && offset < (CONS_BLOCK_SIZE * sizeof b->conses[0])
34400008
GM
3929 && (b != cons_block
3930 || offset / sizeof b->conses[0] < cons_block_index)
3931 && !EQ (((struct Lisp_Cons *) p)->car, Vdead));
3932 }
3933 else
3934 return 0;
3935}
3936
3937
3938/* Value is non-zero if P is a pointer to a live Lisp symbol on
3939 the heap. M is a pointer to the mem_block for P. */
3940
55d4c1b2 3941static inline int
971de7fb 3942live_symbol_p (struct mem_node *m, void *p)
34400008
GM
3943{
3944 if (m->type == MEM_TYPE_SYMBOL)
3945 {
3946 struct symbol_block *b = (struct symbol_block *) m->start;
14162469 3947 ptrdiff_t offset = (char *) p - (char *) &b->symbols[0];
177c0ea7 3948
34400008
GM
3949 /* P must point to the start of a Lisp_Symbol, not be
3950 one of the unused cells in the current symbol block,
3951 and not be on the free-list. */
176bc847
GM
3952 return (offset >= 0
3953 && offset % sizeof b->symbols[0] == 0
6b61353c 3954 && offset < (SYMBOL_BLOCK_SIZE * sizeof b->symbols[0])
34400008
GM
3955 && (b != symbol_block
3956 || offset / sizeof b->symbols[0] < symbol_block_index)
3957 && !EQ (((struct Lisp_Symbol *) p)->function, Vdead));
3958 }
3959 else
3960 return 0;
3961}
3962
3963
3964/* Value is non-zero if P is a pointer to a live Lisp float on
3965 the heap. M is a pointer to the mem_block for P. */
3966
55d4c1b2 3967static inline int
971de7fb 3968live_float_p (struct mem_node *m, void *p)
34400008
GM
3969{
3970 if (m->type == MEM_TYPE_FLOAT)
3971 {
3972 struct float_block *b = (struct float_block *) m->start;
14162469 3973 ptrdiff_t offset = (char *) p - (char *) &b->floats[0];
177c0ea7 3974
ab6780cd
SM
3975 /* P must point to the start of a Lisp_Float and not be
3976 one of the unused cells in the current float block. */
176bc847
GM
3977 return (offset >= 0
3978 && offset % sizeof b->floats[0] == 0
6b61353c 3979 && offset < (FLOAT_BLOCK_SIZE * sizeof b->floats[0])
34400008 3980 && (b != float_block
ab6780cd 3981 || offset / sizeof b->floats[0] < float_block_index));
34400008
GM
3982 }
3983 else
3984 return 0;
3985}
3986
3987
3988/* Value is non-zero if P is a pointer to a live Lisp Misc on
3989 the heap. M is a pointer to the mem_block for P. */
3990
55d4c1b2 3991static inline int
971de7fb 3992live_misc_p (struct mem_node *m, void *p)
34400008
GM
3993{
3994 if (m->type == MEM_TYPE_MISC)
3995 {
3996 struct marker_block *b = (struct marker_block *) m->start;
14162469 3997 ptrdiff_t offset = (char *) p - (char *) &b->markers[0];
177c0ea7 3998
34400008
GM
3999 /* P must point to the start of a Lisp_Misc, not be
4000 one of the unused cells in the current misc block,
4001 and not be on the free-list. */
176bc847
GM
4002 return (offset >= 0
4003 && offset % sizeof b->markers[0] == 0
6b61353c 4004 && offset < (MARKER_BLOCK_SIZE * sizeof b->markers[0])
34400008
GM
4005 && (b != marker_block
4006 || offset / sizeof b->markers[0] < marker_block_index)
d314756e 4007 && ((union Lisp_Misc *) p)->u_any.type != Lisp_Misc_Free);
34400008
GM
4008 }
4009 else
4010 return 0;
4011}
4012
4013
4014/* Value is non-zero if P is a pointer to a live vector-like object.
4015 M is a pointer to the mem_block for P. */
4016
55d4c1b2 4017static inline int
971de7fb 4018live_vector_p (struct mem_node *m, void *p)
34400008 4019{
9c545a55 4020 return (p == m->start && m->type == MEM_TYPE_VECTORLIKE);
34400008
GM
4021}
4022
4023
2336fe58 4024/* Value is non-zero if P is a pointer to a live buffer. M is a
34400008
GM
4025 pointer to the mem_block for P. */
4026
55d4c1b2 4027static inline int
971de7fb 4028live_buffer_p (struct mem_node *m, void *p)
34400008
GM
4029{
4030 /* P must point to the start of the block, and the buffer
4031 must not have been killed. */
4032 return (m->type == MEM_TYPE_BUFFER
4033 && p == m->start
5d8ea120 4034 && !NILP (((struct buffer *) p)->BUFFER_INTERNAL_FIELD (name)));
34400008
GM
4035}
4036
13c844fb
GM
4037#endif /* GC_MARK_STACK || defined GC_MALLOC_CHECK */
4038
4039#if GC_MARK_STACK
4040
34400008
GM
4041#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
4042
4043/* Array of objects that are kept alive because the C stack contains
4044 a pattern that looks like a reference to them . */
4045
4046#define MAX_ZOMBIES 10
4047static Lisp_Object zombies[MAX_ZOMBIES];
4048
4049/* Number of zombie objects. */
4050
211a0b2a 4051static EMACS_INT nzombies;
34400008
GM
4052
4053/* Number of garbage collections. */
4054
211a0b2a 4055static EMACS_INT ngcs;
34400008
GM
4056
4057/* Average percentage of zombies per collection. */
4058
4059static double avg_zombies;
4060
4061/* Max. number of live and zombie objects. */
4062
211a0b2a 4063static EMACS_INT max_live, max_zombies;
34400008
GM
4064
4065/* Average number of live objects per GC. */
4066
4067static double avg_live;
4068
a7ca3326 4069DEFUN ("gc-status", Fgc_status, Sgc_status, 0, 0, "",
7ee72033 4070 doc: /* Show information about live and zombie objects. */)
5842a27b 4071 (void)
34400008 4072{
83fc9c63 4073 Lisp_Object args[8], zombie_list = Qnil;
211a0b2a 4074 EMACS_INT i;
6e4b3fbe 4075 for (i = 0; i < min (MAX_ZOMBIES, nzombies); i++)
83fc9c63
DL
4076 zombie_list = Fcons (zombies[i], zombie_list);
4077 args[0] = build_string ("%d GCs, avg live/zombies = %.2f/%.2f (%f%%), max %d/%d\nzombies: %S");
34400008
GM
4078 args[1] = make_number (ngcs);
4079 args[2] = make_float (avg_live);
4080 args[3] = make_float (avg_zombies);
4081 args[4] = make_float (avg_zombies / avg_live / 100);
4082 args[5] = make_number (max_live);
4083 args[6] = make_number (max_zombies);
83fc9c63
DL
4084 args[7] = zombie_list;
4085 return Fmessage (8, args);
34400008
GM
4086}
4087
4088#endif /* GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES */
4089
4090
182ff242
GM
4091/* Mark OBJ if we can prove it's a Lisp_Object. */
4092
55d4c1b2 4093static inline void
971de7fb 4094mark_maybe_object (Lisp_Object obj)
182ff242 4095{
b609f591
YM
4096 void *po;
4097 struct mem_node *m;
4098
4099 if (INTEGERP (obj))
4100 return;
4101
4102 po = (void *) XPNTR (obj);
4103 m = mem_find (po);
177c0ea7 4104
182ff242
GM
4105 if (m != MEM_NIL)
4106 {
4107 int mark_p = 0;
4108
8e50cc2d 4109 switch (XTYPE (obj))
182ff242
GM
4110 {
4111 case Lisp_String:
4112 mark_p = (live_string_p (m, po)
4113 && !STRING_MARKED_P ((struct Lisp_String *) po));
4114 break;
4115
4116 case Lisp_Cons:
08b7c2cb 4117 mark_p = (live_cons_p (m, po) && !CONS_MARKED_P (XCONS (obj)));
182ff242
GM
4118 break;
4119
4120 case Lisp_Symbol:
2336fe58 4121 mark_p = (live_symbol_p (m, po) && !XSYMBOL (obj)->gcmarkbit);
182ff242
GM
4122 break;
4123
4124 case Lisp_Float:
ab6780cd 4125 mark_p = (live_float_p (m, po) && !FLOAT_MARKED_P (XFLOAT (obj)));
182ff242
GM
4126 break;
4127
4128 case Lisp_Vectorlike:
8e50cc2d 4129 /* Note: can't check BUFFERP before we know it's a
182ff242
GM
4130 buffer because checking that dereferences the pointer
4131 PO which might point anywhere. */
4132 if (live_vector_p (m, po))
8e50cc2d 4133 mark_p = !SUBRP (obj) && !VECTOR_MARKED_P (XVECTOR (obj));
182ff242 4134 else if (live_buffer_p (m, po))
8e50cc2d 4135 mark_p = BUFFERP (obj) && !VECTOR_MARKED_P (XBUFFER (obj));
182ff242
GM
4136 break;
4137
4138 case Lisp_Misc:
67ee9f6e 4139 mark_p = (live_misc_p (m, po) && !XMISCANY (obj)->gcmarkbit);
182ff242 4140 break;
6bbd7a29 4141
2de9f71c 4142 default:
6bbd7a29 4143 break;
182ff242
GM
4144 }
4145
4146 if (mark_p)
4147 {
4148#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
4149 if (nzombies < MAX_ZOMBIES)
83fc9c63 4150 zombies[nzombies] = obj;
182ff242
GM
4151 ++nzombies;
4152#endif
49723c04 4153 mark_object (obj);
182ff242
GM
4154 }
4155 }
4156}
ece93c02
GM
4157
4158
4159/* If P points to Lisp data, mark that as live if it isn't already
4160 marked. */
4161
55d4c1b2 4162static inline void
971de7fb 4163mark_maybe_pointer (void *p)
ece93c02
GM
4164{
4165 struct mem_node *m;
4166
5045e68e 4167 /* Quickly rule out some values which can't point to Lisp data. */
d01a7826 4168 if ((intptr_t) p %
5045e68e
SM
4169#ifdef USE_LSB_TAG
4170 8 /* USE_LSB_TAG needs Lisp data to be aligned on multiples of 8. */
4171#else
4172 2 /* We assume that Lisp data is aligned on even addresses. */
4173#endif
4174 )
ece93c02 4175 return;
177c0ea7 4176
ece93c02
GM
4177 m = mem_find (p);
4178 if (m != MEM_NIL)
4179 {
4180 Lisp_Object obj = Qnil;
177c0ea7 4181
ece93c02
GM
4182 switch (m->type)
4183 {
4184 case MEM_TYPE_NON_LISP:
2fe50224 4185 /* Nothing to do; not a pointer to Lisp memory. */
ece93c02 4186 break;
177c0ea7 4187
ece93c02 4188 case MEM_TYPE_BUFFER:
5e617bc2 4189 if (live_buffer_p (m, p) && !VECTOR_MARKED_P ((struct buffer *)p))
ece93c02
GM
4190 XSETVECTOR (obj, p);
4191 break;
177c0ea7 4192
ece93c02 4193 case MEM_TYPE_CONS:
08b7c2cb 4194 if (live_cons_p (m, p) && !CONS_MARKED_P ((struct Lisp_Cons *) p))
ece93c02
GM
4195 XSETCONS (obj, p);
4196 break;
177c0ea7 4197
ece93c02
GM
4198 case MEM_TYPE_STRING:
4199 if (live_string_p (m, p)
4200 && !STRING_MARKED_P ((struct Lisp_String *) p))
4201 XSETSTRING (obj, p);
4202 break;
4203
4204 case MEM_TYPE_MISC:
2336fe58
SM
4205 if (live_misc_p (m, p) && !((struct Lisp_Free *) p)->gcmarkbit)
4206 XSETMISC (obj, p);
ece93c02 4207 break;
177c0ea7 4208
ece93c02 4209 case MEM_TYPE_SYMBOL:
2336fe58 4210 if (live_symbol_p (m, p) && !((struct Lisp_Symbol *) p)->gcmarkbit)
ece93c02
GM
4211 XSETSYMBOL (obj, p);
4212 break;
177c0ea7 4213
ece93c02 4214 case MEM_TYPE_FLOAT:
ab6780cd 4215 if (live_float_p (m, p) && !FLOAT_MARKED_P (p))
ece93c02
GM
4216 XSETFLOAT (obj, p);
4217 break;
177c0ea7 4218
9c545a55 4219 case MEM_TYPE_VECTORLIKE:
ece93c02
GM
4220 if (live_vector_p (m, p))
4221 {
4222 Lisp_Object tem;
4223 XSETVECTOR (tem, p);
8e50cc2d 4224 if (!SUBRP (tem) && !VECTOR_MARKED_P (XVECTOR (tem)))
ece93c02
GM
4225 obj = tem;
4226 }
4227 break;
4228
4229 default:
4230 abort ();
4231 }
4232
8e50cc2d 4233 if (!NILP (obj))
49723c04 4234 mark_object (obj);
ece93c02
GM
4235 }
4236}
4237
4238
84e8e185
PE
4239/* Alignment of Lisp_Object and pointer values. Use offsetof, as it
4240 sometimes returns a smaller alignment than GCC's __alignof__ and
4241 mark_memory might miss objects if __alignof__ were used. For
4242 example, on x86 with WIDE_EMACS_INT, __alignof__ (Lisp_Object) is 8
4243 but GC_LISP_OBJECT_ALIGNMENT should be 4. */
3164aeac
PE
4244#ifndef GC_LISP_OBJECT_ALIGNMENT
4245# define GC_LISP_OBJECT_ALIGNMENT offsetof (struct {char a; Lisp_Object b;}, b)
4246#endif
4247#define GC_POINTER_ALIGNMENT offsetof (struct {char a; void *b;}, b)
4248
55a314a5
YM
4249/* Mark Lisp objects referenced from the address range START+OFFSET..END
4250 or END+OFFSET..START. */
34400008 4251
177c0ea7 4252static void
3164aeac 4253mark_memory (void *start, void *end)
34400008
GM
4254{
4255 Lisp_Object *p;
ece93c02 4256 void **pp;
3164aeac 4257 int i;
34400008
GM
4258
4259#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
4260 nzombies = 0;
4261#endif
4262
4263 /* Make START the pointer to the start of the memory region,
4264 if it isn't already. */
4265 if (end < start)
4266 {
4267 void *tem = start;
4268 start = end;
4269 end = tem;
4270 }
ece93c02
GM
4271
4272 /* Mark Lisp_Objects. */
3164aeac
PE
4273 for (p = start; (void *) p < end; p++)
4274 for (i = 0; i < sizeof *p; i += GC_LISP_OBJECT_ALIGNMENT)
4275 mark_maybe_object (*(Lisp_Object *) ((char *) p + i));
ece93c02
GM
4276
4277 /* Mark Lisp data pointed to. This is necessary because, in some
4278 situations, the C compiler optimizes Lisp objects away, so that
4279 only a pointer to them remains. Example:
4280
4281 DEFUN ("testme", Ftestme, Stestme, 0, 0, 0, "")
7ee72033 4282 ()
ece93c02
GM
4283 {
4284 Lisp_Object obj = build_string ("test");
4285 struct Lisp_String *s = XSTRING (obj);
4286 Fgarbage_collect ();
4287 fprintf (stderr, "test `%s'\n", s->data);
4288 return Qnil;
4289 }
4290
4291 Here, `obj' isn't really used, and the compiler optimizes it
4292 away. The only reference to the life string is through the
4293 pointer `s'. */
177c0ea7 4294
3164aeac
PE
4295 for (pp = start; (void *) pp < end; pp++)
4296 for (i = 0; i < sizeof *pp; i += GC_POINTER_ALIGNMENT)
4297 mark_maybe_pointer (*(void **) ((char *) pp + i));
182ff242
GM
4298}
4299
30f637f8
DL
4300/* setjmp will work with GCC unless NON_SAVING_SETJMP is defined in
4301 the GCC system configuration. In gcc 3.2, the only systems for
4302 which this is so are i386-sco5 non-ELF, i386-sysv3 (maybe included
4303 by others?) and ns32k-pc532-min. */
182ff242
GM
4304
4305#if !defined GC_SAVE_REGISTERS_ON_STACK && !defined GC_SETJMP_WORKS
4306
4307static int setjmp_tested_p, longjmps_done;
4308
4309#define SETJMP_WILL_LIKELY_WORK "\
4310\n\
4311Emacs garbage collector has been changed to use conservative stack\n\
4312marking. Emacs has determined that the method it uses to do the\n\
4313marking will likely work on your system, but this isn't sure.\n\
4314\n\
4315If you are a system-programmer, or can get the help of a local wizard\n\
4316who is, please take a look at the function mark_stack in alloc.c, and\n\
4317verify that the methods used are appropriate for your system.\n\
4318\n\
d191623b 4319Please mail the result to <emacs-devel@gnu.org>.\n\
182ff242
GM
4320"
4321
4322#define SETJMP_WILL_NOT_WORK "\
4323\n\
4324Emacs garbage collector has been changed to use conservative stack\n\
4325marking. Emacs has determined that the default method it uses to do the\n\
4326marking will not work on your system. We will need a system-dependent\n\
4327solution for your system.\n\
4328\n\
4329Please take a look at the function mark_stack in alloc.c, and\n\
4330try to find a way to make it work on your system.\n\
30f637f8
DL
4331\n\
4332Note that you may get false negatives, depending on the compiler.\n\
4333In particular, you need to use -O with GCC for this test.\n\
4334\n\
d191623b 4335Please mail the result to <emacs-devel@gnu.org>.\n\
182ff242
GM
4336"
4337
4338
4339/* Perform a quick check if it looks like setjmp saves registers in a
4340 jmp_buf. Print a message to stderr saying so. When this test
4341 succeeds, this is _not_ a proof that setjmp is sufficient for
4342 conservative stack marking. Only the sources or a disassembly
4343 can prove that. */
4344
4345static void
2018939f 4346test_setjmp (void)
182ff242
GM
4347{
4348 char buf[10];
4349 register int x;
4350 jmp_buf jbuf;
4351 int result = 0;
4352
4353 /* Arrange for X to be put in a register. */
4354 sprintf (buf, "1");
4355 x = strlen (buf);
4356 x = 2 * x - 1;
4357
4358 setjmp (jbuf);
4359 if (longjmps_done == 1)
34400008 4360 {
182ff242 4361 /* Came here after the longjmp at the end of the function.
34400008 4362
182ff242
GM
4363 If x == 1, the longjmp has restored the register to its
4364 value before the setjmp, and we can hope that setjmp
4365 saves all such registers in the jmp_buf, although that
4366 isn't sure.
34400008 4367
182ff242
GM
4368 For other values of X, either something really strange is
4369 taking place, or the setjmp just didn't save the register. */
4370
4371 if (x == 1)
4372 fprintf (stderr, SETJMP_WILL_LIKELY_WORK);
4373 else
4374 {
4375 fprintf (stderr, SETJMP_WILL_NOT_WORK);
4376 exit (1);
34400008
GM
4377 }
4378 }
182ff242
GM
4379
4380 ++longjmps_done;
4381 x = 2;
4382 if (longjmps_done == 1)
4383 longjmp (jbuf, 1);
34400008
GM
4384}
4385
182ff242
GM
4386#endif /* not GC_SAVE_REGISTERS_ON_STACK && not GC_SETJMP_WORKS */
4387
34400008
GM
4388
4389#if GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS
4390
4391/* Abort if anything GCPRO'd doesn't survive the GC. */
4392
4393static void
2018939f 4394check_gcpros (void)
34400008
GM
4395{
4396 struct gcpro *p;
f66c7cf8 4397 ptrdiff_t i;
34400008
GM
4398
4399 for (p = gcprolist; p; p = p->next)
4400 for (i = 0; i < p->nvars; ++i)
4401 if (!survives_gc_p (p->var[i]))
92cc28b2
SM
4402 /* FIXME: It's not necessarily a bug. It might just be that the
4403 GCPRO is unnecessary or should release the object sooner. */
34400008
GM
4404 abort ();
4405}
4406
4407#elif GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
4408
4409static void
2018939f 4410dump_zombies (void)
34400008
GM
4411{
4412 int i;
4413
6e4b3fbe 4414 fprintf (stderr, "\nZombies kept alive = %"pI"d:\n", nzombies);
34400008
GM
4415 for (i = 0; i < min (MAX_ZOMBIES, nzombies); ++i)
4416 {
4417 fprintf (stderr, " %d = ", i);
4418 debug_print (zombies[i]);
4419 }
4420}
4421
4422#endif /* GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES */
4423
4424
182ff242
GM
4425/* Mark live Lisp objects on the C stack.
4426
4427 There are several system-dependent problems to consider when
4428 porting this to new architectures:
4429
4430 Processor Registers
4431
4432 We have to mark Lisp objects in CPU registers that can hold local
4433 variables or are used to pass parameters.
4434
4435 If GC_SAVE_REGISTERS_ON_STACK is defined, it should expand to
4436 something that either saves relevant registers on the stack, or
4437 calls mark_maybe_object passing it each register's contents.
4438
4439 If GC_SAVE_REGISTERS_ON_STACK is not defined, the current
4440 implementation assumes that calling setjmp saves registers we need
4441 to see in a jmp_buf which itself lies on the stack. This doesn't
4442 have to be true! It must be verified for each system, possibly
4443 by taking a look at the source code of setjmp.
4444
2018939f
AS
4445 If __builtin_unwind_init is available (defined by GCC >= 2.8) we
4446 can use it as a machine independent method to store all registers
4447 to the stack. In this case the macros described in the previous
4448 two paragraphs are not used.
4449
182ff242
GM
4450 Stack Layout
4451
4452 Architectures differ in the way their processor stack is organized.
4453 For example, the stack might look like this
4454
4455 +----------------+
4456 | Lisp_Object | size = 4
4457 +----------------+
4458 | something else | size = 2
4459 +----------------+
4460 | Lisp_Object | size = 4
4461 +----------------+
4462 | ... |
4463
4464 In such a case, not every Lisp_Object will be aligned equally. To
4465 find all Lisp_Object on the stack it won't be sufficient to walk
4466 the stack in steps of 4 bytes. Instead, two passes will be
4467 necessary, one starting at the start of the stack, and a second
4468 pass starting at the start of the stack + 2. Likewise, if the
4469 minimal alignment of Lisp_Objects on the stack is 1, four passes
4470 would be necessary, each one starting with one byte more offset
c9af454e 4471 from the stack start. */
34400008
GM
4472
4473static void
971de7fb 4474mark_stack (void)
34400008 4475{
34400008
GM
4476 void *end;
4477
2018939f
AS
4478#ifdef HAVE___BUILTIN_UNWIND_INIT
4479 /* Force callee-saved registers and register windows onto the stack.
4480 This is the preferred method if available, obviating the need for
4481 machine dependent methods. */
4482 __builtin_unwind_init ();
4483 end = &end;
4484#else /* not HAVE___BUILTIN_UNWIND_INIT */
dff45157
PE
4485#ifndef GC_SAVE_REGISTERS_ON_STACK
4486 /* jmp_buf may not be aligned enough on darwin-ppc64 */
4487 union aligned_jmpbuf {
4488 Lisp_Object o;
4489 jmp_buf j;
4490 } j;
4491 volatile int stack_grows_down_p = (char *) &j > (char *) stack_base;
4492#endif
34400008
GM
4493 /* This trick flushes the register windows so that all the state of
4494 the process is contained in the stack. */
ab6780cd 4495 /* Fixme: Code in the Boehm GC suggests flushing (with `flushrs') is
422eec7e
DL
4496 needed on ia64 too. See mach_dep.c, where it also says inline
4497 assembler doesn't work with relevant proprietary compilers. */
4a00783e 4498#ifdef __sparc__
4d18a7a2
DN
4499#if defined (__sparc64__) && defined (__FreeBSD__)
4500 /* FreeBSD does not have a ta 3 handler. */
4c1616be
CY
4501 asm ("flushw");
4502#else
34400008 4503 asm ("ta 3");
4c1616be 4504#endif
34400008 4505#endif
177c0ea7 4506
34400008
GM
4507 /* Save registers that we need to see on the stack. We need to see
4508 registers used to hold register variables and registers used to
4509 pass parameters. */
4510#ifdef GC_SAVE_REGISTERS_ON_STACK
4511 GC_SAVE_REGISTERS_ON_STACK (end);
182ff242 4512#else /* not GC_SAVE_REGISTERS_ON_STACK */
177c0ea7 4513
182ff242
GM
4514#ifndef GC_SETJMP_WORKS /* If it hasn't been checked yet that
4515 setjmp will definitely work, test it
4516 and print a message with the result
4517 of the test. */
4518 if (!setjmp_tested_p)
4519 {
4520 setjmp_tested_p = 1;
4521 test_setjmp ();
4522 }
4523#endif /* GC_SETJMP_WORKS */
177c0ea7 4524
55a314a5 4525 setjmp (j.j);
34400008 4526 end = stack_grows_down_p ? (char *) &j + sizeof j : (char *) &j;
182ff242 4527#endif /* not GC_SAVE_REGISTERS_ON_STACK */
2018939f 4528#endif /* not HAVE___BUILTIN_UNWIND_INIT */
34400008
GM
4529
4530 /* This assumes that the stack is a contiguous region in memory. If
182ff242
GM
4531 that's not the case, something has to be done here to iterate
4532 over the stack segments. */
3164aeac
PE
4533 mark_memory (stack_base, end);
4534
4dec23ff
AS
4535 /* Allow for marking a secondary stack, like the register stack on the
4536 ia64. */
4537#ifdef GC_MARK_SECONDARY_STACK
4538 GC_MARK_SECONDARY_STACK ();
4539#endif
34400008
GM
4540
4541#if GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS
4542 check_gcpros ();
4543#endif
4544}
4545
34400008
GM
4546#endif /* GC_MARK_STACK != 0 */
4547
4548
7ffb6955 4549/* Determine whether it is safe to access memory at address P. */
d3d47262 4550static int
971de7fb 4551valid_pointer_p (void *p)
7ffb6955 4552{
f892cf9c
EZ
4553#ifdef WINDOWSNT
4554 return w32_valid_pointer_p (p, 16);
4555#else
41bed37d 4556 int fd[2];
7ffb6955
KS
4557
4558 /* Obviously, we cannot just access it (we would SEGV trying), so we
4559 trick the o/s to tell us whether p is a valid pointer.
4560 Unfortunately, we cannot use NULL_DEVICE here, as emacs_write may
4561 not validate p in that case. */
4562
41bed37d 4563 if (pipe (fd) == 0)
7ffb6955 4564 {
41bed37d
PE
4565 int valid = (emacs_write (fd[1], (char *) p, 16) == 16);
4566 emacs_close (fd[1]);
4567 emacs_close (fd[0]);
7ffb6955
KS
4568 return valid;
4569 }
4570
4571 return -1;
f892cf9c 4572#endif
7ffb6955 4573}
3cd55735
KS
4574
4575/* Return 1 if OBJ is a valid lisp object.
4576 Return 0 if OBJ is NOT a valid lisp object.
4577 Return -1 if we cannot validate OBJ.
7c0ab7d9
RS
4578 This function can be quite slow,
4579 so it should only be used in code for manual debugging. */
3cd55735
KS
4580
4581int
971de7fb 4582valid_lisp_object_p (Lisp_Object obj)
3cd55735 4583{
de7124a7 4584 void *p;
7ffb6955 4585#if GC_MARK_STACK
3cd55735 4586 struct mem_node *m;
de7124a7 4587#endif
3cd55735
KS
4588
4589 if (INTEGERP (obj))
4590 return 1;
4591
4592 p = (void *) XPNTR (obj);
3cd55735
KS
4593 if (PURE_POINTER_P (p))
4594 return 1;
4595
de7124a7 4596#if !GC_MARK_STACK
7ffb6955 4597 return valid_pointer_p (p);
de7124a7
KS
4598#else
4599
3cd55735
KS
4600 m = mem_find (p);
4601
4602 if (m == MEM_NIL)
7ffb6955
KS
4603 {
4604 int valid = valid_pointer_p (p);
4605 if (valid <= 0)
4606 return valid;
4607
4608 if (SUBRP (obj))
4609 return 1;
4610
4611 return 0;
4612 }
3cd55735
KS
4613
4614 switch (m->type)
4615 {
4616 case MEM_TYPE_NON_LISP:
4617 return 0;
4618
4619 case MEM_TYPE_BUFFER:
4620 return live_buffer_p (m, p);
4621
4622 case MEM_TYPE_CONS:
4623 return live_cons_p (m, p);
4624
4625 case MEM_TYPE_STRING:
4626 return live_string_p (m, p);
4627
4628 case MEM_TYPE_MISC:
4629 return live_misc_p (m, p);
4630
4631 case MEM_TYPE_SYMBOL:
4632 return live_symbol_p (m, p);
4633
4634 case MEM_TYPE_FLOAT:
4635 return live_float_p (m, p);
4636
9c545a55 4637 case MEM_TYPE_VECTORLIKE:
3cd55735
KS
4638 return live_vector_p (m, p);
4639
4640 default:
4641 break;
4642 }
4643
4644 return 0;
4645#endif
4646}
4647
4648
4649
34400008 4650\f
2e471eb5
GM
4651/***********************************************************************
4652 Pure Storage Management
4653 ***********************************************************************/
4654
1f0b3fd2
GM
4655/* Allocate room for SIZE bytes from pure Lisp storage and return a
4656 pointer to it. TYPE is the Lisp type for which the memory is
e5bc14d4 4657 allocated. TYPE < 0 means it's not used for a Lisp object. */
1f0b3fd2
GM
4658
4659static POINTER_TYPE *
971de7fb 4660pure_alloc (size_t size, int type)
1f0b3fd2 4661{
1f0b3fd2 4662 POINTER_TYPE *result;
6b61353c
KH
4663#ifdef USE_LSB_TAG
4664 size_t alignment = (1 << GCTYPEBITS);
4665#else
44117420 4666 size_t alignment = sizeof (EMACS_INT);
1f0b3fd2
GM
4667
4668 /* Give Lisp_Floats an extra alignment. */
4669 if (type == Lisp_Float)
4670 {
1f0b3fd2
GM
4671#if defined __GNUC__ && __GNUC__ >= 2
4672 alignment = __alignof (struct Lisp_Float);
4673#else
4674 alignment = sizeof (struct Lisp_Float);
4675#endif
9e713715 4676 }
6b61353c 4677#endif
1f0b3fd2 4678
44117420 4679 again:
e5bc14d4
YM
4680 if (type >= 0)
4681 {
4682 /* Allocate space for a Lisp object from the beginning of the free
4683 space with taking account of alignment. */
4684 result = ALIGN (purebeg + pure_bytes_used_lisp, alignment);
4685 pure_bytes_used_lisp = ((char *)result - (char *)purebeg) + size;
4686 }
4687 else
4688 {
4689 /* Allocate space for a non-Lisp object from the end of the free
4690 space. */
4691 pure_bytes_used_non_lisp += size;
4692 result = purebeg + pure_size - pure_bytes_used_non_lisp;
4693 }
4694 pure_bytes_used = pure_bytes_used_lisp + pure_bytes_used_non_lisp;
44117420
KS
4695
4696 if (pure_bytes_used <= pure_size)
4697 return result;
4698
4699 /* Don't allocate a large amount here,
4700 because it might get mmap'd and then its address
4701 might not be usable. */
4702 purebeg = (char *) xmalloc (10000);
4703 pure_size = 10000;
4704 pure_bytes_used_before_overflow += pure_bytes_used - size;
4705 pure_bytes_used = 0;
e5bc14d4 4706 pure_bytes_used_lisp = pure_bytes_used_non_lisp = 0;
44117420 4707 goto again;
1f0b3fd2
GM
4708}
4709
4710
852f8cdc 4711/* Print a warning if PURESIZE is too small. */
9e713715
GM
4712
4713void
971de7fb 4714check_pure_size (void)
9e713715
GM
4715{
4716 if (pure_bytes_used_before_overflow)
c2982e87
PE
4717 message (("emacs:0:Pure Lisp storage overflow (approx. %"pI"d"
4718 " bytes needed)"),
4719 pure_bytes_used + pure_bytes_used_before_overflow);
9e713715
GM
4720}
4721
4722
79fd0489
YM
4723/* Find the byte sequence {DATA[0], ..., DATA[NBYTES-1], '\0'} from
4724 the non-Lisp data pool of the pure storage, and return its start
4725 address. Return NULL if not found. */
4726
4727static char *
d311d28c 4728find_string_data_in_pure (const char *data, ptrdiff_t nbytes)
79fd0489 4729{
14162469 4730 int i;
d311d28c 4731 ptrdiff_t skip, bm_skip[256], last_char_skip, infinity, start, start_max;
2aff7c53 4732 const unsigned char *p;
79fd0489
YM
4733 char *non_lisp_beg;
4734
d311d28c 4735 if (pure_bytes_used_non_lisp <= nbytes)
79fd0489
YM
4736 return NULL;
4737
4738 /* Set up the Boyer-Moore table. */
4739 skip = nbytes + 1;
4740 for (i = 0; i < 256; i++)
4741 bm_skip[i] = skip;
4742
2aff7c53 4743 p = (const unsigned char *) data;
79fd0489
YM
4744 while (--skip > 0)
4745 bm_skip[*p++] = skip;
4746
4747 last_char_skip = bm_skip['\0'];
4748
4749 non_lisp_beg = purebeg + pure_size - pure_bytes_used_non_lisp;
4750 start_max = pure_bytes_used_non_lisp - (nbytes + 1);
4751
4752 /* See the comments in the function `boyer_moore' (search.c) for the
4753 use of `infinity'. */
4754 infinity = pure_bytes_used_non_lisp + 1;
4755 bm_skip['\0'] = infinity;
4756
2aff7c53 4757 p = (const unsigned char *) non_lisp_beg + nbytes;
79fd0489
YM
4758 start = 0;
4759 do
4760 {
4761 /* Check the last character (== '\0'). */
4762 do
4763 {
4764 start += bm_skip[*(p + start)];
4765 }
4766 while (start <= start_max);
4767
4768 if (start < infinity)
4769 /* Couldn't find the last character. */
4770 return NULL;
4771
4772 /* No less than `infinity' means we could find the last
4773 character at `p[start - infinity]'. */
4774 start -= infinity;
4775
4776 /* Check the remaining characters. */
4777 if (memcmp (data, non_lisp_beg + start, nbytes) == 0)
4778 /* Found. */
4779 return non_lisp_beg + start;
4780
4781 start += last_char_skip;
4782 }
4783 while (start <= start_max);
4784
4785 return NULL;
4786}
4787
4788
2e471eb5
GM
4789/* Return a string allocated in pure space. DATA is a buffer holding
4790 NCHARS characters, and NBYTES bytes of string data. MULTIBYTE
4791 non-zero means make the result string multibyte.
1a4f1e2c 4792
2e471eb5
GM
4793 Must get an error if pure storage is full, since if it cannot hold
4794 a large string it may be able to hold conses that point to that
4795 string; then the string is not protected from gc. */
7146af97
JB
4796
4797Lisp_Object
14162469 4798make_pure_string (const char *data,
d311d28c 4799 ptrdiff_t nchars, ptrdiff_t nbytes, int multibyte)
7146af97 4800{
2e471eb5
GM
4801 Lisp_Object string;
4802 struct Lisp_String *s;
c0696668 4803
1f0b3fd2 4804 s = (struct Lisp_String *) pure_alloc (sizeof *s, Lisp_String);
90256841 4805 s->data = (unsigned char *) find_string_data_in_pure (data, nbytes);
79fd0489
YM
4806 if (s->data == NULL)
4807 {
4808 s->data = (unsigned char *) pure_alloc (nbytes + 1, -1);
72af86bd 4809 memcpy (s->data, data, nbytes);
79fd0489
YM
4810 s->data[nbytes] = '\0';
4811 }
2e471eb5
GM
4812 s->size = nchars;
4813 s->size_byte = multibyte ? nbytes : -1;
2e471eb5 4814 s->intervals = NULL_INTERVAL;
2e471eb5
GM
4815 XSETSTRING (string, s);
4816 return string;
7146af97
JB
4817}
4818
a56eaaef
DN
4819/* Return a string a string allocated in pure space. Do not allocate
4820 the string data, just point to DATA. */
4821
4822Lisp_Object
4823make_pure_c_string (const char *data)
4824{
4825 Lisp_Object string;
4826 struct Lisp_String *s;
d311d28c 4827 ptrdiff_t nchars = strlen (data);
a56eaaef
DN
4828
4829 s = (struct Lisp_String *) pure_alloc (sizeof *s, Lisp_String);
4830 s->size = nchars;
4831 s->size_byte = -1;
323637a2 4832 s->data = (unsigned char *) data;
a56eaaef
DN
4833 s->intervals = NULL_INTERVAL;
4834 XSETSTRING (string, s);
4835 return string;
4836}
2e471eb5 4837
34400008
GM
4838/* Return a cons allocated from pure space. Give it pure copies
4839 of CAR as car and CDR as cdr. */
4840
7146af97 4841Lisp_Object
971de7fb 4842pure_cons (Lisp_Object car, Lisp_Object cdr)
7146af97
JB
4843{
4844 register Lisp_Object new;
1f0b3fd2 4845 struct Lisp_Cons *p;
7146af97 4846
1f0b3fd2
GM
4847 p = (struct Lisp_Cons *) pure_alloc (sizeof *p, Lisp_Cons);
4848 XSETCONS (new, p);
f3fbd155
KR
4849 XSETCAR (new, Fpurecopy (car));
4850 XSETCDR (new, Fpurecopy (cdr));
7146af97
JB
4851 return new;
4852}
4853
7146af97 4854
34400008
GM
4855/* Value is a float object with value NUM allocated from pure space. */
4856
d3d47262 4857static Lisp_Object
971de7fb 4858make_pure_float (double num)
7146af97
JB
4859{
4860 register Lisp_Object new;
1f0b3fd2 4861 struct Lisp_Float *p;
7146af97 4862
1f0b3fd2
GM
4863 p = (struct Lisp_Float *) pure_alloc (sizeof *p, Lisp_Float);
4864 XSETFLOAT (new, p);
f601cdf3 4865 XFLOAT_INIT (new, num);
7146af97
JB
4866 return new;
4867}
4868
34400008
GM
4869
4870/* Return a vector with room for LEN Lisp_Objects allocated from
4871 pure space. */
4872
7146af97 4873Lisp_Object
d311d28c 4874make_pure_vector (ptrdiff_t len)
7146af97 4875{
1f0b3fd2
GM
4876 Lisp_Object new;
4877 struct Lisp_Vector *p;
36372bf9
PE
4878 size_t size = (offsetof (struct Lisp_Vector, contents)
4879 + len * sizeof (Lisp_Object));
7146af97 4880
1f0b3fd2
GM
4881 p = (struct Lisp_Vector *) pure_alloc (size, Lisp_Vectorlike);
4882 XSETVECTOR (new, p);
eab3844f 4883 XVECTOR (new)->header.size = len;
7146af97
JB
4884 return new;
4885}
4886
34400008 4887
a7ca3326 4888DEFUN ("purecopy", Fpurecopy, Spurecopy, 1, 1, 0,
909e3b33 4889 doc: /* Make a copy of object OBJ in pure storage.
228299fa 4890Recursively copies contents of vectors and cons cells.
7ee72033 4891Does not copy symbols. Copies strings without text properties. */)
5842a27b 4892 (register Lisp_Object obj)
7146af97 4893{
265a9e55 4894 if (NILP (Vpurify_flag))
7146af97
JB
4895 return obj;
4896
1f0b3fd2 4897 if (PURE_POINTER_P (XPNTR (obj)))
7146af97
JB
4898 return obj;
4899
e9515805
SM
4900 if (HASH_TABLE_P (Vpurify_flag)) /* Hash consing. */
4901 {
4902 Lisp_Object tmp = Fgethash (obj, Vpurify_flag, Qnil);
4903 if (!NILP (tmp))
4904 return tmp;
4905 }
4906
d6dd74bb 4907 if (CONSP (obj))
e9515805 4908 obj = pure_cons (XCAR (obj), XCDR (obj));
d6dd74bb 4909 else if (FLOATP (obj))
e9515805 4910 obj = make_pure_float (XFLOAT_DATA (obj));
d6dd74bb 4911 else if (STRINGP (obj))
42a5b22f 4912 obj = make_pure_string (SSDATA (obj), SCHARS (obj),
e9515805
SM
4913 SBYTES (obj),
4914 STRING_MULTIBYTE (obj));
876c194c 4915 else if (COMPILEDP (obj) || VECTORP (obj))
d6dd74bb
KH
4916 {
4917 register struct Lisp_Vector *vec;
d311d28c
PE
4918 register ptrdiff_t i;
4919 ptrdiff_t size;
d6dd74bb 4920
77b37c05 4921 size = ASIZE (obj);
7d535c68
KH
4922 if (size & PSEUDOVECTOR_FLAG)
4923 size &= PSEUDOVECTOR_SIZE_MASK;
6b61353c 4924 vec = XVECTOR (make_pure_vector (size));
d6dd74bb
KH
4925 for (i = 0; i < size; i++)
4926 vec->contents[i] = Fpurecopy (XVECTOR (obj)->contents[i]);
876c194c 4927 if (COMPILEDP (obj))
985773c9 4928 {
876c194c
SM
4929 XSETPVECTYPE (vec, PVEC_COMPILED);
4930 XSETCOMPILED (obj, vec);
985773c9 4931 }
d6dd74bb
KH
4932 else
4933 XSETVECTOR (obj, vec);
7146af97 4934 }
d6dd74bb
KH
4935 else if (MARKERP (obj))
4936 error ("Attempt to copy a marker to pure storage");
e9515805
SM
4937 else
4938 /* Not purified, don't hash-cons. */
4939 return obj;
4940
4941 if (HASH_TABLE_P (Vpurify_flag)) /* Hash consing. */
4942 Fputhash (obj, obj, Vpurify_flag);
6bbd7a29
GM
4943
4944 return obj;
7146af97 4945}
2e471eb5 4946
34400008 4947
7146af97 4948\f
34400008
GM
4949/***********************************************************************
4950 Protection from GC
4951 ***********************************************************************/
4952
2e471eb5
GM
4953/* Put an entry in staticvec, pointing at the variable with address
4954 VARADDRESS. */
7146af97
JB
4955
4956void
971de7fb 4957staticpro (Lisp_Object *varaddress)
7146af97
JB
4958{
4959 staticvec[staticidx++] = varaddress;
4960 if (staticidx >= NSTATICS)
4961 abort ();
4962}
4963
7146af97 4964\f
34400008
GM
4965/***********************************************************************
4966 Protection from GC
4967 ***********************************************************************/
1a4f1e2c 4968
e8197642
RS
4969/* Temporarily prevent garbage collection. */
4970
d311d28c 4971ptrdiff_t
971de7fb 4972inhibit_garbage_collection (void)
e8197642 4973{
d311d28c 4974 ptrdiff_t count = SPECPDL_INDEX ();
54defd0d 4975
6349ae4d 4976 specbind (Qgc_cons_threshold, make_number (MOST_POSITIVE_FIXNUM));
e8197642
RS
4977 return count;
4978}
4979
34400008 4980
a7ca3326 4981DEFUN ("garbage-collect", Fgarbage_collect, Sgarbage_collect, 0, 0, "",
7ee72033 4982 doc: /* Reclaim storage for Lisp objects no longer needed.
e1e37596
RS
4983Garbage collection happens automatically if you cons more than
4984`gc-cons-threshold' bytes of Lisp data since previous garbage collection.
4985`garbage-collect' normally returns a list with info on amount of space in use:
228299fa
GM
4986 ((USED-CONSES . FREE-CONSES) (USED-SYMS . FREE-SYMS)
4987 (USED-MARKERS . FREE-MARKERS) USED-STRING-CHARS USED-VECTOR-SLOTS
4988 (USED-FLOATS . FREE-FLOATS) (USED-INTERVALS . FREE-INTERVALS)
4989 (USED-STRINGS . FREE-STRINGS))
e1e37596
RS
4990However, if there was overflow in pure space, `garbage-collect'
4991returns nil, because real GC can't be done. */)
5842a27b 4992 (void)
7146af97 4993{
7146af97 4994 register struct specbinding *bind;
7146af97 4995 char stack_top_variable;
f66c7cf8 4996 ptrdiff_t i;
6efc7df7 4997 int message_p;
96117bc7 4998 Lisp_Object total[8];
d311d28c 4999 ptrdiff_t count = SPECPDL_INDEX ();
2c5bd608
DL
5000 EMACS_TIME t1, t2, t3;
5001
3de0effb
RS
5002 if (abort_on_gc)
5003 abort ();
5004
9e713715
GM
5005 /* Can't GC if pure storage overflowed because we can't determine
5006 if something is a pure object or not. */
5007 if (pure_bytes_used_before_overflow)
5008 return Qnil;
5009
bbc012e0
KS
5010 CHECK_CONS_LIST ();
5011
3c7e66a8
RS
5012 /* Don't keep undo information around forever.
5013 Do this early on, so it is no problem if the user quits. */
5014 {
5015 register struct buffer *nextb = all_buffers;
5016
5017 while (nextb)
5018 {
5019 /* If a buffer's undo list is Qt, that means that undo is
5020 turned off in that buffer. Calling truncate_undo_list on
5021 Qt tends to return NULL, which effectively turns undo back on.
5022 So don't call truncate_undo_list if undo_list is Qt. */
5d8ea120 5023 if (! NILP (nextb->BUFFER_INTERNAL_FIELD (name)) && ! EQ (nextb->BUFFER_INTERNAL_FIELD (undo_list), Qt))
3c7e66a8
RS
5024 truncate_undo_list (nextb);
5025
5026 /* Shrink buffer gaps, but skip indirect and dead buffers. */
5d8ea120 5027 if (nextb->base_buffer == 0 && !NILP (nextb->BUFFER_INTERNAL_FIELD (name))
dc7b4525 5028 && ! nextb->text->inhibit_shrinking)
3c7e66a8
RS
5029 {
5030 /* If a buffer's gap size is more than 10% of the buffer
5031 size, or larger than 2000 bytes, then shrink it
5032 accordingly. Keep a minimum size of 20 bytes. */
5033 int size = min (2000, max (20, (nextb->text->z_byte / 10)));
5034
5035 if (nextb->text->gap_size > size)
5036 {
5037 struct buffer *save_current = current_buffer;
5038 current_buffer = nextb;
5039 make_gap (-(nextb->text->gap_size - size));
5040 current_buffer = save_current;
5041 }
5042 }
5043
eab3844f 5044 nextb = nextb->header.next.buffer;
3c7e66a8
RS
5045 }
5046 }
5047
5048 EMACS_GET_TIME (t1);
5049
58595309
KH
5050 /* In case user calls debug_print during GC,
5051 don't let that cause a recursive GC. */
5052 consing_since_gc = 0;
5053
6efc7df7
GM
5054 /* Save what's currently displayed in the echo area. */
5055 message_p = push_message ();
c55b0da6 5056 record_unwind_protect (pop_message_unwind, Qnil);
41c28a37 5057
7146af97
JB
5058 /* Save a copy of the contents of the stack, for debugging. */
5059#if MAX_SAVE_STACK > 0
265a9e55 5060 if (NILP (Vpurify_flag))
7146af97 5061 {
dd3f25f7 5062 char *stack;
903fe15d 5063 ptrdiff_t stack_size;
dd3f25f7 5064 if (&stack_top_variable < stack_bottom)
7146af97 5065 {
dd3f25f7
PE
5066 stack = &stack_top_variable;
5067 stack_size = stack_bottom - &stack_top_variable;
5068 }
5069 else
5070 {
5071 stack = stack_bottom;
5072 stack_size = &stack_top_variable - stack_bottom;
5073 }
5074 if (stack_size <= MAX_SAVE_STACK)
7146af97 5075 {
dd3f25f7 5076 if (stack_copy_size < stack_size)
7146af97 5077 {
dd3f25f7
PE
5078 stack_copy = (char *) xrealloc (stack_copy, stack_size);
5079 stack_copy_size = stack_size;
7146af97 5080 }
dd3f25f7 5081 memcpy (stack_copy, stack, stack_size);
7146af97
JB
5082 }
5083 }
5084#endif /* MAX_SAVE_STACK > 0 */
5085
299585ee 5086 if (garbage_collection_messages)
691c4285 5087 message1_nolog ("Garbage collecting...");
7146af97 5088
6e0fca1d
RS
5089 BLOCK_INPUT;
5090
eec7b73d
RS
5091 shrink_regexp_cache ();
5092
7146af97
JB
5093 gc_in_progress = 1;
5094
c23baf9f 5095 /* clear_marks (); */
7146af97 5096
005ca5c7 5097 /* Mark all the special slots that serve as the roots of accessibility. */
7146af97
JB
5098
5099 for (i = 0; i < staticidx; i++)
49723c04 5100 mark_object (*staticvec[i]);
34400008 5101
126f9c02
SM
5102 for (bind = specpdl; bind != specpdl_ptr; bind++)
5103 {
5104 mark_object (bind->symbol);
5105 mark_object (bind->old_value);
5106 }
6ed8eeff 5107 mark_terminals ();
126f9c02 5108 mark_kboards ();
98a92e2d 5109 mark_ttys ();
126f9c02
SM
5110
5111#ifdef USE_GTK
5112 {
dd4c5104 5113 extern void xg_mark_data (void);
126f9c02
SM
5114 xg_mark_data ();
5115 }
5116#endif
5117
34400008
GM
5118#if (GC_MARK_STACK == GC_MAKE_GCPROS_NOOPS \
5119 || GC_MARK_STACK == GC_MARK_STACK_CHECK_GCPROS)
5120 mark_stack ();
5121#else
acf5f7d3
SM
5122 {
5123 register struct gcpro *tail;
5124 for (tail = gcprolist; tail; tail = tail->next)
5125 for (i = 0; i < tail->nvars; i++)
005ca5c7 5126 mark_object (tail->var[i]);
acf5f7d3 5127 }
3e21b6a7 5128 mark_byte_stack ();
b286858c
SM
5129 {
5130 struct catchtag *catch;
5131 struct handler *handler;
177c0ea7 5132
7146af97
JB
5133 for (catch = catchlist; catch; catch = catch->next)
5134 {
49723c04
SM
5135 mark_object (catch->tag);
5136 mark_object (catch->val);
177c0ea7 5137 }
7146af97
JB
5138 for (handler = handlerlist; handler; handler = handler->next)
5139 {
49723c04
SM
5140 mark_object (handler->handler);
5141 mark_object (handler->var);
177c0ea7 5142 }
b286858c 5143 }
b40ea20a 5144 mark_backtrace ();
b286858c 5145#endif
7146af97 5146
454d7973
KS
5147#ifdef HAVE_WINDOW_SYSTEM
5148 mark_fringe_data ();
5149#endif
5150
74c35a48
SM
5151#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
5152 mark_stack ();
5153#endif
5154
c37adf23
SM
5155 /* Everything is now marked, except for the things that require special
5156 finalization, i.e. the undo_list.
5157 Look thru every buffer's undo list
4c315bda
RS
5158 for elements that update markers that were not marked,
5159 and delete them. */
5160 {
5161 register struct buffer *nextb = all_buffers;
5162
5163 while (nextb)
5164 {
5165 /* If a buffer's undo list is Qt, that means that undo is
5166 turned off in that buffer. Calling truncate_undo_list on
5167 Qt tends to return NULL, which effectively turns undo back on.
5168 So don't call truncate_undo_list if undo_list is Qt. */
5d8ea120 5169 if (! EQ (nextb->BUFFER_INTERNAL_FIELD (undo_list), Qt))
4c315bda
RS
5170 {
5171 Lisp_Object tail, prev;
5d8ea120 5172 tail = nextb->BUFFER_INTERNAL_FIELD (undo_list);
4c315bda
RS
5173 prev = Qnil;
5174 while (CONSP (tail))
5175 {
8e50cc2d
SM
5176 if (CONSP (XCAR (tail))
5177 && MARKERP (XCAR (XCAR (tail)))
2336fe58 5178 && !XMARKER (XCAR (XCAR (tail)))->gcmarkbit)
4c315bda
RS
5179 {
5180 if (NILP (prev))
5d8ea120 5181 nextb->BUFFER_INTERNAL_FIELD (undo_list) = tail = XCDR (tail);
4c315bda 5182 else
f3fbd155
KR
5183 {
5184 tail = XCDR (tail);
5185 XSETCDR (prev, tail);
5186 }
4c315bda
RS
5187 }
5188 else
5189 {
5190 prev = tail;
70949dac 5191 tail = XCDR (tail);
4c315bda
RS
5192 }
5193 }
5194 }
c37adf23
SM
5195 /* Now that we have stripped the elements that need not be in the
5196 undo_list any more, we can finally mark the list. */
5d8ea120 5197 mark_object (nextb->BUFFER_INTERNAL_FIELD (undo_list));
4c315bda 5198
eab3844f 5199 nextb = nextb->header.next.buffer;
4c315bda
RS
5200 }
5201 }
5202
7146af97
JB
5203 gc_sweep ();
5204
5205 /* Clear the mark bits that we set in certain root slots. */
5206
033a5fa3 5207 unmark_byte_stack ();
3ef06d12
SM
5208 VECTOR_UNMARK (&buffer_defaults);
5209 VECTOR_UNMARK (&buffer_local_symbols);
7146af97 5210
34400008
GM
5211#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES && 0
5212 dump_zombies ();
5213#endif
5214
6e0fca1d
RS
5215 UNBLOCK_INPUT;
5216
bbc012e0
KS
5217 CHECK_CONS_LIST ();
5218
c23baf9f 5219 /* clear_marks (); */
7146af97
JB
5220 gc_in_progress = 0;
5221
5222 consing_since_gc = 0;
5223 if (gc_cons_threshold < 10000)
5224 gc_cons_threshold = 10000;
5225
c0c5c8ae 5226 gc_relative_threshold = 0;
96f077ad
SM
5227 if (FLOATP (Vgc_cons_percentage))
5228 { /* Set gc_cons_combined_threshold. */
c0c5c8ae 5229 double tot = 0;
ae35e756
PE
5230
5231 tot += total_conses * sizeof (struct Lisp_Cons);
5232 tot += total_symbols * sizeof (struct Lisp_Symbol);
5233 tot += total_markers * sizeof (union Lisp_Misc);
5234 tot += total_string_size;
5235 tot += total_vector_size * sizeof (Lisp_Object);
5236 tot += total_floats * sizeof (struct Lisp_Float);
5237 tot += total_intervals * sizeof (struct interval);
5238 tot += total_strings * sizeof (struct Lisp_String);
5239
c0c5c8ae
PE
5240 tot *= XFLOAT_DATA (Vgc_cons_percentage);
5241 if (0 < tot)
5242 {
5243 if (tot < TYPE_MAXIMUM (EMACS_INT))
5244 gc_relative_threshold = tot;
5245 else
5246 gc_relative_threshold = TYPE_MAXIMUM (EMACS_INT);
5247 }
96f077ad
SM
5248 }
5249
299585ee
RS
5250 if (garbage_collection_messages)
5251 {
6efc7df7
GM
5252 if (message_p || minibuf_level > 0)
5253 restore_message ();
299585ee
RS
5254 else
5255 message1_nolog ("Garbage collecting...done");
5256 }
7146af97 5257
98edb5ff 5258 unbind_to (count, Qnil);
2e471eb5
GM
5259
5260 total[0] = Fcons (make_number (total_conses),
5261 make_number (total_free_conses));
5262 total[1] = Fcons (make_number (total_symbols),
5263 make_number (total_free_symbols));
5264 total[2] = Fcons (make_number (total_markers),
5265 make_number (total_free_markers));
96117bc7
GM
5266 total[3] = make_number (total_string_size);
5267 total[4] = make_number (total_vector_size);
5268 total[5] = Fcons (make_number (total_floats),
2e471eb5 5269 make_number (total_free_floats));
96117bc7 5270 total[6] = Fcons (make_number (total_intervals),
2e471eb5 5271 make_number (total_free_intervals));
96117bc7 5272 total[7] = Fcons (make_number (total_strings),
2e471eb5
GM
5273 make_number (total_free_strings));
5274
34400008 5275#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
7146af97 5276 {
34400008
GM
5277 /* Compute average percentage of zombies. */
5278 double nlive = 0;
177c0ea7 5279
34400008 5280 for (i = 0; i < 7; ++i)
83fc9c63
DL
5281 if (CONSP (total[i]))
5282 nlive += XFASTINT (XCAR (total[i]));
34400008
GM
5283
5284 avg_live = (avg_live * ngcs + nlive) / (ngcs + 1);
5285 max_live = max (nlive, max_live);
5286 avg_zombies = (avg_zombies * ngcs + nzombies) / (ngcs + 1);
5287 max_zombies = max (nzombies, max_zombies);
5288 ++ngcs;
5289 }
5290#endif
7146af97 5291
9e713715
GM
5292 if (!NILP (Vpost_gc_hook))
5293 {
d311d28c 5294 ptrdiff_t gc_count = inhibit_garbage_collection ();
9e713715 5295 safe_run_hooks (Qpost_gc_hook);
ae35e756 5296 unbind_to (gc_count, Qnil);
9e713715 5297 }
2c5bd608
DL
5298
5299 /* Accumulate statistics. */
5300 EMACS_GET_TIME (t2);
5301 EMACS_SUB_TIME (t3, t2, t1);
5302 if (FLOATP (Vgc_elapsed))
69ab9f85
SM
5303 Vgc_elapsed = make_float (XFLOAT_DATA (Vgc_elapsed) +
5304 EMACS_SECS (t3) +
5305 EMACS_USECS (t3) * 1.0e-6);
2c5bd608
DL
5306 gcs_done++;
5307
96117bc7 5308 return Flist (sizeof total / sizeof *total, total);
7146af97 5309}
34400008 5310
41c28a37 5311
3770920e
GM
5312/* Mark Lisp objects in glyph matrix MATRIX. Currently the
5313 only interesting objects referenced from glyphs are strings. */
41c28a37
GM
5314
5315static void
971de7fb 5316mark_glyph_matrix (struct glyph_matrix *matrix)
41c28a37
GM
5317{
5318 struct glyph_row *row = matrix->rows;
5319 struct glyph_row *end = row + matrix->nrows;
5320
2e471eb5
GM
5321 for (; row < end; ++row)
5322 if (row->enabled_p)
5323 {
5324 int area;
5325 for (area = LEFT_MARGIN_AREA; area < LAST_AREA; ++area)
5326 {
5327 struct glyph *glyph = row->glyphs[area];
5328 struct glyph *end_glyph = glyph + row->used[area];
177c0ea7 5329
2e471eb5 5330 for (; glyph < end_glyph; ++glyph)
8e50cc2d 5331 if (STRINGP (glyph->object)
2e471eb5 5332 && !STRING_MARKED_P (XSTRING (glyph->object)))
49723c04 5333 mark_object (glyph->object);
2e471eb5
GM
5334 }
5335 }
41c28a37
GM
5336}
5337
34400008 5338
41c28a37
GM
5339/* Mark Lisp faces in the face cache C. */
5340
5341static void
971de7fb 5342mark_face_cache (struct face_cache *c)
41c28a37
GM
5343{
5344 if (c)
5345 {
5346 int i, j;
5347 for (i = 0; i < c->used; ++i)
5348 {
5349 struct face *face = FACE_FROM_ID (c->f, i);
5350
5351 if (face)
5352 {
5353 for (j = 0; j < LFACE_VECTOR_SIZE; ++j)
49723c04 5354 mark_object (face->lface[j]);
41c28a37
GM
5355 }
5356 }
5357 }
5358}
5359
5360
7146af97 5361\f
1a4f1e2c 5362/* Mark reference to a Lisp_Object.
2e471eb5
GM
5363 If the object referred to has not been seen yet, recursively mark
5364 all the references contained in it. */
7146af97 5365
785cd37f 5366#define LAST_MARKED_SIZE 500
d3d47262 5367static Lisp_Object last_marked[LAST_MARKED_SIZE];
244ed907 5368static int last_marked_index;
785cd37f 5369
1342fc6f
RS
5370/* For debugging--call abort when we cdr down this many
5371 links of a list, in mark_object. In debugging,
5372 the call to abort will hit a breakpoint.
5373 Normally this is zero and the check never goes off. */
903fe15d 5374ptrdiff_t mark_object_loop_halt EXTERNALLY_VISIBLE;
1342fc6f 5375
8f11f7ec 5376static void
971de7fb 5377mark_vectorlike (struct Lisp_Vector *ptr)
d2029e5b 5378{
d311d28c
PE
5379 ptrdiff_t size = ptr->header.size;
5380 ptrdiff_t i;
d2029e5b 5381
8f11f7ec 5382 eassert (!VECTOR_MARKED_P (ptr));
d2029e5b
SM
5383 VECTOR_MARK (ptr); /* Else mark it */
5384 if (size & PSEUDOVECTOR_FLAG)
5385 size &= PSEUDOVECTOR_SIZE_MASK;
d3d47262 5386
d2029e5b
SM
5387 /* Note that this size is not the memory-footprint size, but only
5388 the number of Lisp_Object fields that we should trace.
5389 The distinction is used e.g. by Lisp_Process which places extra
5390 non-Lisp_Object fields at the end of the structure. */
5391 for (i = 0; i < size; i++) /* and then mark its elements */
5392 mark_object (ptr->contents[i]);
d2029e5b
SM
5393}
5394
58026347
KH
5395/* Like mark_vectorlike but optimized for char-tables (and
5396 sub-char-tables) assuming that the contents are mostly integers or
5397 symbols. */
5398
5399static void
971de7fb 5400mark_char_table (struct Lisp_Vector *ptr)
58026347 5401{
b6439961
PE
5402 int size = ptr->header.size & PSEUDOVECTOR_SIZE_MASK;
5403 int i;
58026347 5404
8f11f7ec 5405 eassert (!VECTOR_MARKED_P (ptr));
58026347
KH
5406 VECTOR_MARK (ptr);
5407 for (i = 0; i < size; i++)
5408 {
5409 Lisp_Object val = ptr->contents[i];
5410
ef1b0ba7 5411 if (INTEGERP (val) || (SYMBOLP (val) && XSYMBOL (val)->gcmarkbit))
58026347
KH
5412 continue;
5413 if (SUB_CHAR_TABLE_P (val))
5414 {
5415 if (! VECTOR_MARKED_P (XVECTOR (val)))
5416 mark_char_table (XVECTOR (val));
5417 }
5418 else
5419 mark_object (val);
5420 }
5421}
5422
41c28a37 5423void
971de7fb 5424mark_object (Lisp_Object arg)
7146af97 5425{
49723c04 5426 register Lisp_Object obj = arg;
4f5c1376
GM
5427#ifdef GC_CHECK_MARKED_OBJECTS
5428 void *po;
5429 struct mem_node *m;
5430#endif
903fe15d 5431 ptrdiff_t cdr_count = 0;
7146af97 5432
9149e743 5433 loop:
7146af97 5434
1f0b3fd2 5435 if (PURE_POINTER_P (XPNTR (obj)))
7146af97
JB
5436 return;
5437
49723c04 5438 last_marked[last_marked_index++] = obj;
785cd37f
RS
5439 if (last_marked_index == LAST_MARKED_SIZE)
5440 last_marked_index = 0;
5441
4f5c1376
GM
5442 /* Perform some sanity checks on the objects marked here. Abort if
5443 we encounter an object we know is bogus. This increases GC time
5444 by ~80%, and requires compilation with GC_MARK_STACK != 0. */
5445#ifdef GC_CHECK_MARKED_OBJECTS
5446
5447 po = (void *) XPNTR (obj);
5448
5449 /* Check that the object pointed to by PO is known to be a Lisp
5450 structure allocated from the heap. */
5451#define CHECK_ALLOCATED() \
5452 do { \
5453 m = mem_find (po); \
5454 if (m == MEM_NIL) \
5455 abort (); \
5456 } while (0)
5457
5458 /* Check that the object pointed to by PO is live, using predicate
5459 function LIVEP. */
5460#define CHECK_LIVE(LIVEP) \
5461 do { \
5462 if (!LIVEP (m, po)) \
5463 abort (); \
5464 } while (0)
5465
5466 /* Check both of the above conditions. */
5467#define CHECK_ALLOCATED_AND_LIVE(LIVEP) \
5468 do { \
5469 CHECK_ALLOCATED (); \
5470 CHECK_LIVE (LIVEP); \
5471 } while (0) \
177c0ea7 5472
4f5c1376 5473#else /* not GC_CHECK_MARKED_OBJECTS */
177c0ea7 5474
4f5c1376
GM
5475#define CHECK_LIVE(LIVEP) (void) 0
5476#define CHECK_ALLOCATED_AND_LIVE(LIVEP) (void) 0
177c0ea7 5477
4f5c1376
GM
5478#endif /* not GC_CHECK_MARKED_OBJECTS */
5479
8e50cc2d 5480 switch (SWITCH_ENUM_CAST (XTYPE (obj)))
7146af97
JB
5481 {
5482 case Lisp_String:
5483 {
5484 register struct Lisp_String *ptr = XSTRING (obj);
8f11f7ec
SM
5485 if (STRING_MARKED_P (ptr))
5486 break;
4f5c1376 5487 CHECK_ALLOCATED_AND_LIVE (live_string_p);
d5e35230 5488 MARK_INTERVAL_TREE (ptr->intervals);
2e471eb5 5489 MARK_STRING (ptr);
361b097f 5490#ifdef GC_CHECK_STRING_BYTES
676a7251
GM
5491 /* Check that the string size recorded in the string is the
5492 same as the one recorded in the sdata structure. */
5493 CHECK_STRING_BYTES (ptr);
361b097f 5494#endif /* GC_CHECK_STRING_BYTES */
7146af97
JB
5495 }
5496 break;
5497
76437631 5498 case Lisp_Vectorlike:
8f11f7ec
SM
5499 if (VECTOR_MARKED_P (XVECTOR (obj)))
5500 break;
4f5c1376
GM
5501#ifdef GC_CHECK_MARKED_OBJECTS
5502 m = mem_find (po);
8e50cc2d 5503 if (m == MEM_NIL && !SUBRP (obj)
4f5c1376
GM
5504 && po != &buffer_defaults
5505 && po != &buffer_local_symbols)
5506 abort ();
5507#endif /* GC_CHECK_MARKED_OBJECTS */
177c0ea7 5508
8e50cc2d 5509 if (BUFFERP (obj))
6b552283 5510 {
4f5c1376 5511#ifdef GC_CHECK_MARKED_OBJECTS
8f11f7ec
SM
5512 if (po != &buffer_defaults && po != &buffer_local_symbols)
5513 {
5514 struct buffer *b;
179dade4 5515 for (b = all_buffers; b && b != po; b = b->header.next.buffer)
8f11f7ec
SM
5516 ;
5517 if (b == NULL)
5518 abort ();
4f5c1376 5519 }
8f11f7ec
SM
5520#endif /* GC_CHECK_MARKED_OBJECTS */
5521 mark_buffer (obj);
6b552283 5522 }
8e50cc2d 5523 else if (SUBRP (obj))
169ee243 5524 break;
876c194c 5525 else if (COMPILEDP (obj))
2e471eb5
GM
5526 /* We could treat this just like a vector, but it is better to
5527 save the COMPILED_CONSTANTS element for last and avoid
5528 recursion there. */
169ee243
RS
5529 {
5530 register struct Lisp_Vector *ptr = XVECTOR (obj);
b6439961
PE
5531 int size = ptr->header.size & PSEUDOVECTOR_SIZE_MASK;
5532 int i;
169ee243 5533
4f5c1376 5534 CHECK_LIVE (live_vector_p);
3ef06d12 5535 VECTOR_MARK (ptr); /* Else mark it */
169ee243
RS
5536 for (i = 0; i < size; i++) /* and then mark its elements */
5537 {
5538 if (i != COMPILED_CONSTANTS)
49723c04 5539 mark_object (ptr->contents[i]);
169ee243 5540 }
49723c04 5541 obj = ptr->contents[COMPILED_CONSTANTS];
169ee243
RS
5542 goto loop;
5543 }
8e50cc2d 5544 else if (FRAMEP (obj))
169ee243 5545 {
c70bbf06 5546 register struct frame *ptr = XFRAME (obj);
8f11f7ec
SM
5547 mark_vectorlike (XVECTOR (obj));
5548 mark_face_cache (ptr->face_cache);
707788bd 5549 }
8e50cc2d 5550 else if (WINDOWP (obj))
41c28a37
GM
5551 {
5552 register struct Lisp_Vector *ptr = XVECTOR (obj);
5553 struct window *w = XWINDOW (obj);
8f11f7ec
SM
5554 mark_vectorlike (ptr);
5555 /* Mark glyphs for leaf windows. Marking window matrices is
5556 sufficient because frame matrices use the same glyph
5557 memory. */
5558 if (NILP (w->hchild)
5559 && NILP (w->vchild)
5560 && w->current_matrix)
41c28a37 5561 {
8f11f7ec
SM
5562 mark_glyph_matrix (w->current_matrix);
5563 mark_glyph_matrix (w->desired_matrix);
41c28a37
GM
5564 }
5565 }
8e50cc2d 5566 else if (HASH_TABLE_P (obj))
41c28a37
GM
5567 {
5568 struct Lisp_Hash_Table *h = XHASH_TABLE (obj);
8f11f7ec
SM
5569 mark_vectorlike ((struct Lisp_Vector *)h);
5570 /* If hash table is not weak, mark all keys and values.
5571 For weak tables, mark only the vector. */
5572 if (NILP (h->weak))
5573 mark_object (h->key_and_value);
5574 else
5575 VECTOR_MARK (XVECTOR (h->key_and_value));
41c28a37 5576 }
58026347 5577 else if (CHAR_TABLE_P (obj))
8f11f7ec 5578 mark_char_table (XVECTOR (obj));
04ff9756 5579 else
d2029e5b 5580 mark_vectorlike (XVECTOR (obj));
169ee243 5581 break;
7146af97 5582
7146af97
JB
5583 case Lisp_Symbol:
5584 {
c70bbf06 5585 register struct Lisp_Symbol *ptr = XSYMBOL (obj);
7146af97
JB
5586 struct Lisp_Symbol *ptrx;
5587
8f11f7ec
SM
5588 if (ptr->gcmarkbit)
5589 break;
4f5c1376 5590 CHECK_ALLOCATED_AND_LIVE (live_symbol_p);
2336fe58 5591 ptr->gcmarkbit = 1;
49723c04
SM
5592 mark_object (ptr->function);
5593 mark_object (ptr->plist);
ce5b453a
SM
5594 switch (ptr->redirect)
5595 {
5596 case SYMBOL_PLAINVAL: mark_object (SYMBOL_VAL (ptr)); break;
5597 case SYMBOL_VARALIAS:
5598 {
5599 Lisp_Object tem;
5600 XSETSYMBOL (tem, SYMBOL_ALIAS (ptr));
5601 mark_object (tem);
5602 break;
5603 }
5604 case SYMBOL_LOCALIZED:
5605 {
5606 struct Lisp_Buffer_Local_Value *blv = SYMBOL_BLV (ptr);
5607 /* If the value is forwarded to a buffer or keyboard field,
5608 these are marked when we see the corresponding object.
5609 And if it's forwarded to a C variable, either it's not
5610 a Lisp_Object var, or it's staticpro'd already. */
5611 mark_object (blv->where);
5612 mark_object (blv->valcell);
5613 mark_object (blv->defcell);
5614 break;
5615 }
5616 case SYMBOL_FORWARDED:
5617 /* If the value is forwarded to a buffer or keyboard field,
5618 these are marked when we see the corresponding object.
5619 And if it's forwarded to a C variable, either it's not
5620 a Lisp_Object var, or it's staticpro'd already. */
5621 break;
5622 default: abort ();
5623 }
8fe5665d
KR
5624 if (!PURE_POINTER_P (XSTRING (ptr->xname)))
5625 MARK_STRING (XSTRING (ptr->xname));
d5db4077 5626 MARK_INTERVAL_TREE (STRING_INTERVALS (ptr->xname));
177c0ea7 5627
7146af97
JB
5628 ptr = ptr->next;
5629 if (ptr)
5630 {
b0846f52 5631 ptrx = ptr; /* Use of ptrx avoids compiler bug on Sun */
7146af97 5632 XSETSYMBOL (obj, ptrx);
49723c04 5633 goto loop;
7146af97
JB
5634 }
5635 }
5636 break;
5637
a0a38eb7 5638 case Lisp_Misc:
4f5c1376 5639 CHECK_ALLOCATED_AND_LIVE (live_misc_p);
67ee9f6e 5640 if (XMISCANY (obj)->gcmarkbit)
2336fe58 5641 break;
67ee9f6e 5642 XMISCANY (obj)->gcmarkbit = 1;
b766f870 5643
a5da44fe 5644 switch (XMISCTYPE (obj))
a0a38eb7 5645 {
465edf35 5646
2336fe58
SM
5647 case Lisp_Misc_Marker:
5648 /* DO NOT mark thru the marker's chain.
5649 The buffer's markers chain does not preserve markers from gc;
5650 instead, markers are removed from the chain when freed by gc. */
b766f870
KS
5651 break;
5652
8f924df7 5653 case Lisp_Misc_Save_Value:
9ea306d1 5654#if GC_MARK_STACK
b766f870
KS
5655 {
5656 register struct Lisp_Save_Value *ptr = XSAVE_VALUE (obj);
5657 /* If DOGC is set, POINTER is the address of a memory
5658 area containing INTEGER potential Lisp_Objects. */
5659 if (ptr->dogc)
5660 {
5661 Lisp_Object *p = (Lisp_Object *) ptr->pointer;
9c4c5f81 5662 ptrdiff_t nelt;
b766f870
KS
5663 for (nelt = ptr->integer; nelt > 0; nelt--, p++)
5664 mark_maybe_object (*p);
5665 }
5666 }
9ea306d1 5667#endif
c8616056
KH
5668 break;
5669
e202fa34
KH
5670 case Lisp_Misc_Overlay:
5671 {
5672 struct Lisp_Overlay *ptr = XOVERLAY (obj);
49723c04
SM
5673 mark_object (ptr->start);
5674 mark_object (ptr->end);
f54253ec
SM
5675 mark_object (ptr->plist);
5676 if (ptr->next)
5677 {
5678 XSETMISC (obj, ptr->next);
5679 goto loop;
5680 }
e202fa34
KH
5681 }
5682 break;
5683
a0a38eb7
KH
5684 default:
5685 abort ();
5686 }
7146af97
JB
5687 break;
5688
5689 case Lisp_Cons:
7146af97
JB
5690 {
5691 register struct Lisp_Cons *ptr = XCONS (obj);
8f11f7ec
SM
5692 if (CONS_MARKED_P (ptr))
5693 break;
4f5c1376 5694 CHECK_ALLOCATED_AND_LIVE (live_cons_p);
08b7c2cb 5695 CONS_MARK (ptr);
c54ca951 5696 /* If the cdr is nil, avoid recursion for the car. */
28a099a4 5697 if (EQ (ptr->u.cdr, Qnil))
c54ca951 5698 {
49723c04 5699 obj = ptr->car;
1342fc6f 5700 cdr_count = 0;
c54ca951
RS
5701 goto loop;
5702 }
49723c04 5703 mark_object (ptr->car);
28a099a4 5704 obj = ptr->u.cdr;
1342fc6f
RS
5705 cdr_count++;
5706 if (cdr_count == mark_object_loop_halt)
5707 abort ();
7146af97
JB
5708 goto loop;
5709 }
5710
7146af97 5711 case Lisp_Float:
4f5c1376 5712 CHECK_ALLOCATED_AND_LIVE (live_float_p);
ab6780cd 5713 FLOAT_MARK (XFLOAT (obj));
7146af97 5714 break;
7146af97 5715
2de9f71c 5716 case_Lisp_Int:
7146af97
JB
5717 break;
5718
5719 default:
5720 abort ();
5721 }
4f5c1376
GM
5722
5723#undef CHECK_LIVE
5724#undef CHECK_ALLOCATED
5725#undef CHECK_ALLOCATED_AND_LIVE
7146af97
JB
5726}
5727
5728/* Mark the pointers in a buffer structure. */
5729
5730static void
971de7fb 5731mark_buffer (Lisp_Object buf)
7146af97 5732{
7146af97 5733 register struct buffer *buffer = XBUFFER (buf);
f54253ec 5734 register Lisp_Object *ptr, tmp;
30e3190a 5735 Lisp_Object base_buffer;
7146af97 5736
8f11f7ec 5737 eassert (!VECTOR_MARKED_P (buffer));
3ef06d12 5738 VECTOR_MARK (buffer);
7146af97 5739
30e3190a 5740 MARK_INTERVAL_TREE (BUF_INTERVALS (buffer));
d5e35230 5741
c37adf23
SM
5742 /* For now, we just don't mark the undo_list. It's done later in
5743 a special way just before the sweep phase, and after stripping
5744 some of its elements that are not needed any more. */
4c315bda 5745
f54253ec
SM
5746 if (buffer->overlays_before)
5747 {
5748 XSETMISC (tmp, buffer->overlays_before);
5749 mark_object (tmp);
5750 }
5751 if (buffer->overlays_after)
5752 {
5753 XSETMISC (tmp, buffer->overlays_after);
5754 mark_object (tmp);
5755 }
5756
9ce376f9
SM
5757 /* buffer-local Lisp variables start at `undo_list',
5758 tho only the ones from `name' on are GC'd normally. */
5d8ea120 5759 for (ptr = &buffer->BUFFER_INTERNAL_FIELD (name);
8a5c77bb
PE
5760 ptr <= &PER_BUFFER_VALUE (buffer,
5761 PER_BUFFER_VAR_OFFSET (LAST_FIELD_PER_BUFFER));
7146af97 5762 ptr++)
49723c04 5763 mark_object (*ptr);
30e3190a
RS
5764
5765 /* If this is an indirect buffer, mark its base buffer. */
349bd9ed 5766 if (buffer->base_buffer && !VECTOR_MARKED_P (buffer->base_buffer))
30e3190a 5767 {
177c0ea7 5768 XSETBUFFER (base_buffer, buffer->base_buffer);
30e3190a
RS
5769 mark_buffer (base_buffer);
5770 }
7146af97 5771}
084b1a0c 5772
4a729fd8
SM
5773/* Mark the Lisp pointers in the terminal objects.
5774 Called by the Fgarbage_collector. */
5775
4a729fd8
SM
5776static void
5777mark_terminals (void)
5778{
5779 struct terminal *t;
5780 for (t = terminal_list; t; t = t->next_terminal)
5781 {
5782 eassert (t->name != NULL);
354884c4 5783#ifdef HAVE_WINDOW_SYSTEM
96ad0af7
YM
5784 /* If a terminal object is reachable from a stacpro'ed object,
5785 it might have been marked already. Make sure the image cache
5786 gets marked. */
5787 mark_image_cache (t->image_cache);
354884c4 5788#endif /* HAVE_WINDOW_SYSTEM */
96ad0af7
YM
5789 if (!VECTOR_MARKED_P (t))
5790 mark_vectorlike ((struct Lisp_Vector *)t);
4a729fd8
SM
5791 }
5792}
5793
5794
084b1a0c 5795
41c28a37
GM
5796/* Value is non-zero if OBJ will survive the current GC because it's
5797 either marked or does not need to be marked to survive. */
5798
5799int
971de7fb 5800survives_gc_p (Lisp_Object obj)
41c28a37
GM
5801{
5802 int survives_p;
177c0ea7 5803
8e50cc2d 5804 switch (XTYPE (obj))
41c28a37 5805 {
2de9f71c 5806 case_Lisp_Int:
41c28a37
GM
5807 survives_p = 1;
5808 break;
5809
5810 case Lisp_Symbol:
2336fe58 5811 survives_p = XSYMBOL (obj)->gcmarkbit;
41c28a37
GM
5812 break;
5813
5814 case Lisp_Misc:
67ee9f6e 5815 survives_p = XMISCANY (obj)->gcmarkbit;
41c28a37
GM
5816 break;
5817
5818 case Lisp_String:
08b7c2cb 5819 survives_p = STRING_MARKED_P (XSTRING (obj));
41c28a37
GM
5820 break;
5821
5822 case Lisp_Vectorlike:
8e50cc2d 5823 survives_p = SUBRP (obj) || VECTOR_MARKED_P (XVECTOR (obj));
41c28a37
GM
5824 break;
5825
5826 case Lisp_Cons:
08b7c2cb 5827 survives_p = CONS_MARKED_P (XCONS (obj));
41c28a37
GM
5828 break;
5829
41c28a37 5830 case Lisp_Float:
ab6780cd 5831 survives_p = FLOAT_MARKED_P (XFLOAT (obj));
41c28a37 5832 break;
41c28a37
GM
5833
5834 default:
5835 abort ();
5836 }
5837
34400008 5838 return survives_p || PURE_POINTER_P ((void *) XPNTR (obj));
41c28a37
GM
5839}
5840
5841
7146af97 5842\f
1a4f1e2c 5843/* Sweep: find all structures not marked, and free them. */
7146af97
JB
5844
5845static void
971de7fb 5846gc_sweep (void)
7146af97 5847{
41c28a37
GM
5848 /* Remove or mark entries in weak hash tables.
5849 This must be done before any object is unmarked. */
5850 sweep_weak_hash_tables ();
5851
2e471eb5 5852 sweep_strings ();
676a7251
GM
5853#ifdef GC_CHECK_STRING_BYTES
5854 if (!noninteractive)
5855 check_string_bytes (1);
5856#endif
7146af97
JB
5857
5858 /* Put all unmarked conses on free list */
5859 {
5860 register struct cons_block *cblk;
6ca94ac9 5861 struct cons_block **cprev = &cons_block;
7146af97 5862 register int lim = cons_block_index;
c0c5c8ae 5863 EMACS_INT num_free = 0, num_used = 0;
7146af97
JB
5864
5865 cons_free_list = 0;
177c0ea7 5866
6ca94ac9 5867 for (cblk = cons_block; cblk; cblk = *cprev)
7146af97 5868 {
3ae2e3a3 5869 register int i = 0;
6ca94ac9 5870 int this_free = 0;
3ae2e3a3
RS
5871 int ilim = (lim + BITS_PER_INT - 1) / BITS_PER_INT;
5872
5873 /* Scan the mark bits an int at a time. */
47ea7f44 5874 for (i = 0; i < ilim; i++)
3ae2e3a3
RS
5875 {
5876 if (cblk->gcmarkbits[i] == -1)
5877 {
5878 /* Fast path - all cons cells for this int are marked. */
5879 cblk->gcmarkbits[i] = 0;
5880 num_used += BITS_PER_INT;
5881 }
5882 else
5883 {
5884 /* Some cons cells for this int are not marked.
5885 Find which ones, and free them. */
5886 int start, pos, stop;
5887
5888 start = i * BITS_PER_INT;
5889 stop = lim - start;
5890 if (stop > BITS_PER_INT)
5891 stop = BITS_PER_INT;
5892 stop += start;
5893
5894 for (pos = start; pos < stop; pos++)
5895 {
5896 if (!CONS_MARKED_P (&cblk->conses[pos]))
5897 {
5898 this_free++;
5899 cblk->conses[pos].u.chain = cons_free_list;
5900 cons_free_list = &cblk->conses[pos];
34400008 5901#if GC_MARK_STACK
3ae2e3a3 5902 cons_free_list->car = Vdead;
34400008 5903#endif
3ae2e3a3
RS
5904 }
5905 else
5906 {
5907 num_used++;
5908 CONS_UNMARK (&cblk->conses[pos]);
5909 }
5910 }
5911 }
5912 }
5913
7146af97 5914 lim = CONS_BLOCK_SIZE;
6ca94ac9
KH
5915 /* If this block contains only free conses and we have already
5916 seen more than two blocks worth of free conses then deallocate
5917 this block. */
6feef451 5918 if (this_free == CONS_BLOCK_SIZE && num_free > CONS_BLOCK_SIZE)
6ca94ac9 5919 {
6ca94ac9
KH
5920 *cprev = cblk->next;
5921 /* Unhook from the free list. */
28a099a4 5922 cons_free_list = cblk->conses[0].u.chain;
08b7c2cb 5923 lisp_align_free (cblk);
6ca94ac9
KH
5924 }
5925 else
6feef451
AS
5926 {
5927 num_free += this_free;
5928 cprev = &cblk->next;
5929 }
7146af97
JB
5930 }
5931 total_conses = num_used;
5932 total_free_conses = num_free;
5933 }
5934
7146af97
JB
5935 /* Put all unmarked floats on free list */
5936 {
5937 register struct float_block *fblk;
6ca94ac9 5938 struct float_block **fprev = &float_block;
7146af97 5939 register int lim = float_block_index;
c0c5c8ae 5940 EMACS_INT num_free = 0, num_used = 0;
7146af97
JB
5941
5942 float_free_list = 0;
177c0ea7 5943
6ca94ac9 5944 for (fblk = float_block; fblk; fblk = *fprev)
7146af97
JB
5945 {
5946 register int i;
6ca94ac9 5947 int this_free = 0;
7146af97 5948 for (i = 0; i < lim; i++)
ab6780cd 5949 if (!FLOAT_MARKED_P (&fblk->floats[i]))
7146af97 5950 {
6ca94ac9 5951 this_free++;
28a099a4 5952 fblk->floats[i].u.chain = float_free_list;
7146af97
JB
5953 float_free_list = &fblk->floats[i];
5954 }
5955 else
5956 {
5957 num_used++;
ab6780cd 5958 FLOAT_UNMARK (&fblk->floats[i]);
7146af97
JB
5959 }
5960 lim = FLOAT_BLOCK_SIZE;
6ca94ac9
KH
5961 /* If this block contains only free floats and we have already
5962 seen more than two blocks worth of free floats then deallocate
5963 this block. */
6feef451 5964 if (this_free == FLOAT_BLOCK_SIZE && num_free > FLOAT_BLOCK_SIZE)
6ca94ac9 5965 {
6ca94ac9
KH
5966 *fprev = fblk->next;
5967 /* Unhook from the free list. */
28a099a4 5968 float_free_list = fblk->floats[0].u.chain;
ab6780cd 5969 lisp_align_free (fblk);
6ca94ac9
KH
5970 }
5971 else
6feef451
AS
5972 {
5973 num_free += this_free;
5974 fprev = &fblk->next;
5975 }
7146af97
JB
5976 }
5977 total_floats = num_used;
5978 total_free_floats = num_free;
5979 }
7146af97 5980
d5e35230
JA
5981 /* Put all unmarked intervals on free list */
5982 {
5983 register struct interval_block *iblk;
6ca94ac9 5984 struct interval_block **iprev = &interval_block;
d5e35230 5985 register int lim = interval_block_index;
c0c5c8ae 5986 EMACS_INT num_free = 0, num_used = 0;
d5e35230
JA
5987
5988 interval_free_list = 0;
5989
6ca94ac9 5990 for (iblk = interval_block; iblk; iblk = *iprev)
d5e35230
JA
5991 {
5992 register int i;
6ca94ac9 5993 int this_free = 0;
d5e35230
JA
5994
5995 for (i = 0; i < lim; i++)
5996 {
2336fe58 5997 if (!iblk->intervals[i].gcmarkbit)
d5e35230 5998 {
439d5cb4 5999 SET_INTERVAL_PARENT (&iblk->intervals[i], interval_free_list);
d5e35230 6000 interval_free_list = &iblk->intervals[i];
6ca94ac9 6001 this_free++;
d5e35230
JA
6002 }
6003 else
6004 {
6005 num_used++;
2336fe58 6006 iblk->intervals[i].gcmarkbit = 0;
d5e35230
JA
6007 }
6008 }
6009 lim = INTERVAL_BLOCK_SIZE;
6ca94ac9
KH
6010 /* If this block contains only free intervals and we have already
6011 seen more than two blocks worth of free intervals then
6012 deallocate this block. */
6feef451 6013 if (this_free == INTERVAL_BLOCK_SIZE && num_free > INTERVAL_BLOCK_SIZE)
6ca94ac9 6014 {
6ca94ac9
KH
6015 *iprev = iblk->next;
6016 /* Unhook from the free list. */
439d5cb4 6017 interval_free_list = INTERVAL_PARENT (&iblk->intervals[0]);
c8099634 6018 lisp_free (iblk);
6ca94ac9
KH
6019 }
6020 else
6feef451
AS
6021 {
6022 num_free += this_free;
6023 iprev = &iblk->next;
6024 }
d5e35230
JA
6025 }
6026 total_intervals = num_used;
6027 total_free_intervals = num_free;
6028 }
d5e35230 6029
7146af97
JB
6030 /* Put all unmarked symbols on free list */
6031 {
6032 register struct symbol_block *sblk;
6ca94ac9 6033 struct symbol_block **sprev = &symbol_block;
7146af97 6034 register int lim = symbol_block_index;
c0c5c8ae 6035 EMACS_INT num_free = 0, num_used = 0;
7146af97 6036
d285b373 6037 symbol_free_list = NULL;
177c0ea7 6038
6ca94ac9 6039 for (sblk = symbol_block; sblk; sblk = *sprev)
7146af97 6040 {
6ca94ac9 6041 int this_free = 0;
d285b373
GM
6042 struct Lisp_Symbol *sym = sblk->symbols;
6043 struct Lisp_Symbol *end = sym + lim;
6044
6045 for (; sym < end; ++sym)
6046 {
20035321
SM
6047 /* Check if the symbol was created during loadup. In such a case
6048 it might be pointed to by pure bytecode which we don't trace,
6049 so we conservatively assume that it is live. */
8fe5665d 6050 int pure_p = PURE_POINTER_P (XSTRING (sym->xname));
177c0ea7 6051
2336fe58 6052 if (!sym->gcmarkbit && !pure_p)
d285b373 6053 {
ce5b453a
SM
6054 if (sym->redirect == SYMBOL_LOCALIZED)
6055 xfree (SYMBOL_BLV (sym));
28a099a4 6056 sym->next = symbol_free_list;
d285b373 6057 symbol_free_list = sym;
34400008 6058#if GC_MARK_STACK
d285b373 6059 symbol_free_list->function = Vdead;
34400008 6060#endif
d285b373
GM
6061 ++this_free;
6062 }
6063 else
6064 {
6065 ++num_used;
6066 if (!pure_p)
8fe5665d 6067 UNMARK_STRING (XSTRING (sym->xname));
2336fe58 6068 sym->gcmarkbit = 0;
d285b373
GM
6069 }
6070 }
177c0ea7 6071
7146af97 6072 lim = SYMBOL_BLOCK_SIZE;
6ca94ac9
KH
6073 /* If this block contains only free symbols and we have already
6074 seen more than two blocks worth of free symbols then deallocate
6075 this block. */
6feef451 6076 if (this_free == SYMBOL_BLOCK_SIZE && num_free > SYMBOL_BLOCK_SIZE)
6ca94ac9 6077 {
6ca94ac9
KH
6078 *sprev = sblk->next;
6079 /* Unhook from the free list. */
28a099a4 6080 symbol_free_list = sblk->symbols[0].next;
c8099634 6081 lisp_free (sblk);
6ca94ac9
KH
6082 }
6083 else
6feef451
AS
6084 {
6085 num_free += this_free;
6086 sprev = &sblk->next;
6087 }
7146af97
JB
6088 }
6089 total_symbols = num_used;
6090 total_free_symbols = num_free;
6091 }
6092
a9faeabe
RS
6093 /* Put all unmarked misc's on free list.
6094 For a marker, first unchain it from the buffer it points into. */
7146af97
JB
6095 {
6096 register struct marker_block *mblk;
6ca94ac9 6097 struct marker_block **mprev = &marker_block;
7146af97 6098 register int lim = marker_block_index;
c0c5c8ae 6099 EMACS_INT num_free = 0, num_used = 0;
7146af97
JB
6100
6101 marker_free_list = 0;
177c0ea7 6102
6ca94ac9 6103 for (mblk = marker_block; mblk; mblk = *mprev)
7146af97
JB
6104 {
6105 register int i;
6ca94ac9 6106 int this_free = 0;
fa05e253 6107
7146af97 6108 for (i = 0; i < lim; i++)
465edf35 6109 {
d314756e 6110 if (!mblk->markers[i].u_any.gcmarkbit)
465edf35 6111 {
d314756e 6112 if (mblk->markers[i].u_any.type == Lisp_Misc_Marker)
ef89c2ce 6113 unchain_marker (&mblk->markers[i].u_marker);
fa05e253
RS
6114 /* Set the type of the freed object to Lisp_Misc_Free.
6115 We could leave the type alone, since nobody checks it,
465edf35 6116 but this might catch bugs faster. */
a5da44fe 6117 mblk->markers[i].u_marker.type = Lisp_Misc_Free;
465edf35
KH
6118 mblk->markers[i].u_free.chain = marker_free_list;
6119 marker_free_list = &mblk->markers[i];
6ca94ac9 6120 this_free++;
465edf35
KH
6121 }
6122 else
6123 {
6124 num_used++;
d314756e 6125 mblk->markers[i].u_any.gcmarkbit = 0;
465edf35
KH
6126 }
6127 }
7146af97 6128 lim = MARKER_BLOCK_SIZE;
6ca94ac9
KH
6129 /* If this block contains only free markers and we have already
6130 seen more than two blocks worth of free markers then deallocate
6131 this block. */
6feef451 6132 if (this_free == MARKER_BLOCK_SIZE && num_free > MARKER_BLOCK_SIZE)
6ca94ac9 6133 {
6ca94ac9
KH
6134 *mprev = mblk->next;
6135 /* Unhook from the free list. */
6136 marker_free_list = mblk->markers[0].u_free.chain;
c8099634 6137 lisp_free (mblk);
6ca94ac9
KH
6138 }
6139 else
6feef451
AS
6140 {
6141 num_free += this_free;
6142 mprev = &mblk->next;
6143 }
7146af97
JB
6144 }
6145
6146 total_markers = num_used;
6147 total_free_markers = num_free;
6148 }
6149
6150 /* Free all unmarked buffers */
6151 {
6152 register struct buffer *buffer = all_buffers, *prev = 0, *next;
6153
6154 while (buffer)
3ef06d12 6155 if (!VECTOR_MARKED_P (buffer))
7146af97
JB
6156 {
6157 if (prev)
eab3844f 6158 prev->header.next = buffer->header.next;
7146af97 6159 else
eab3844f
PE
6160 all_buffers = buffer->header.next.buffer;
6161 next = buffer->header.next.buffer;
34400008 6162 lisp_free (buffer);
7146af97
JB
6163 buffer = next;
6164 }
6165 else
6166 {
3ef06d12 6167 VECTOR_UNMARK (buffer);
30e3190a 6168 UNMARK_BALANCE_INTERVALS (BUF_INTERVALS (buffer));
eab3844f 6169 prev = buffer, buffer = buffer->header.next.buffer;
7146af97
JB
6170 }
6171 }
6172
7146af97
JB
6173 /* Free all unmarked vectors */
6174 {
6175 register struct Lisp_Vector *vector = all_vectors, *prev = 0, *next;
6176 total_vector_size = 0;
6177
6178 while (vector)
3ef06d12 6179 if (!VECTOR_MARKED_P (vector))
7146af97
JB
6180 {
6181 if (prev)
eab3844f 6182 prev->header.next = vector->header.next;
7146af97 6183 else
eab3844f
PE
6184 all_vectors = vector->header.next.vector;
6185 next = vector->header.next.vector;
c8099634 6186 lisp_free (vector);
7146af97 6187 vector = next;
41c28a37 6188
7146af97
JB
6189 }
6190 else
6191 {
3ef06d12 6192 VECTOR_UNMARK (vector);
eab3844f
PE
6193 if (vector->header.size & PSEUDOVECTOR_FLAG)
6194 total_vector_size += PSEUDOVECTOR_SIZE_MASK & vector->header.size;
fa05e253 6195 else
eab3844f
PE
6196 total_vector_size += vector->header.size;
6197 prev = vector, vector = vector->header.next.vector;
7146af97
JB
6198 }
6199 }
177c0ea7 6200
676a7251
GM
6201#ifdef GC_CHECK_STRING_BYTES
6202 if (!noninteractive)
6203 check_string_bytes (1);
6204#endif
7146af97 6205}
7146af97 6206
7146af97 6207
7146af97 6208
7146af97 6209\f
20d24714
JB
6210/* Debugging aids. */
6211
31ce1c91 6212DEFUN ("memory-limit", Fmemory_limit, Smemory_limit, 0, 0, 0,
a6266d23 6213 doc: /* Return the address of the last byte Emacs has allocated, divided by 1024.
228299fa 6214This may be helpful in debugging Emacs's memory usage.
7ee72033 6215We divide the value by 1024 to make sure it fits in a Lisp integer. */)
5842a27b 6216 (void)
20d24714
JB
6217{
6218 Lisp_Object end;
6219
d01a7826 6220 XSETINT (end, (intptr_t) (char *) sbrk (0) / 1024);
20d24714
JB
6221
6222 return end;
6223}
6224
310ea200 6225DEFUN ("memory-use-counts", Fmemory_use_counts, Smemory_use_counts, 0, 0, 0,
a6266d23 6226 doc: /* Return a list of counters that measure how much consing there has been.
228299fa
GM
6227Each of these counters increments for a certain kind of object.
6228The counters wrap around from the largest positive integer to zero.
6229Garbage collection does not decrease them.
6230The elements of the value are as follows:
6231 (CONSES FLOATS VECTOR-CELLS SYMBOLS STRING-CHARS MISCS INTERVALS STRINGS)
6232All are in units of 1 = one object consed
6233except for VECTOR-CELLS and STRING-CHARS, which count the total length of
6234objects consed.
6235MISCS include overlays, markers, and some internal types.
6236Frames, windows, buffers, and subprocesses count as vectors
7ee72033 6237 (but the contents of a buffer's text do not count here). */)
5842a27b 6238 (void)
310ea200 6239{
2e471eb5 6240 Lisp_Object consed[8];
310ea200 6241
78e985eb
GM
6242 consed[0] = make_number (min (MOST_POSITIVE_FIXNUM, cons_cells_consed));
6243 consed[1] = make_number (min (MOST_POSITIVE_FIXNUM, floats_consed));
6244 consed[2] = make_number (min (MOST_POSITIVE_FIXNUM, vector_cells_consed));
6245 consed[3] = make_number (min (MOST_POSITIVE_FIXNUM, symbols_consed));
6246 consed[4] = make_number (min (MOST_POSITIVE_FIXNUM, string_chars_consed));
6247 consed[5] = make_number (min (MOST_POSITIVE_FIXNUM, misc_objects_consed));
6248 consed[6] = make_number (min (MOST_POSITIVE_FIXNUM, intervals_consed));
6249 consed[7] = make_number (min (MOST_POSITIVE_FIXNUM, strings_consed));
310ea200 6250
2e471eb5 6251 return Flist (8, consed);
310ea200 6252}
e0b8c689 6253
244ed907 6254#ifdef ENABLE_CHECKING
e0b8c689 6255int suppress_checking;
d3d47262 6256
e0b8c689 6257void
971de7fb 6258die (const char *msg, const char *file, int line)
e0b8c689 6259{
67ee9f6e 6260 fprintf (stderr, "\r\n%s:%d: Emacs fatal error: %s\r\n",
e0b8c689
KR
6261 file, line, msg);
6262 abort ();
6263}
244ed907 6264#endif
20d24714 6265\f
7146af97
JB
6266/* Initialization */
6267
dfcf069d 6268void
971de7fb 6269init_alloc_once (void)
7146af97
JB
6270{
6271 /* Used to do Vpurify_flag = Qt here, but Qt isn't set up yet! */
9e713715
GM
6272 purebeg = PUREBEG;
6273 pure_size = PURESIZE;
1f0b3fd2 6274 pure_bytes_used = 0;
e5bc14d4 6275 pure_bytes_used_lisp = pure_bytes_used_non_lisp = 0;
9e713715
GM
6276 pure_bytes_used_before_overflow = 0;
6277
ab6780cd
SM
6278 /* Initialize the list of free aligned blocks. */
6279 free_ablock = NULL;
6280
877935b1 6281#if GC_MARK_STACK || defined GC_MALLOC_CHECK
34400008
GM
6282 mem_init ();
6283 Vdead = make_pure_string ("DEAD", 4, 4, 0);
6284#endif
9e713715 6285
7146af97
JB
6286 all_vectors = 0;
6287 ignore_warnings = 1;
d1658221
RS
6288#ifdef DOUG_LEA_MALLOC
6289 mallopt (M_TRIM_THRESHOLD, 128*1024); /* trim threshold */
6290 mallopt (M_MMAP_THRESHOLD, 64*1024); /* mmap threshold */
81d492d5 6291 mallopt (M_MMAP_MAX, MMAP_MAX_AREAS); /* max. number of mmap'ed areas */
d1658221 6292#endif
7146af97
JB
6293 init_strings ();
6294 init_cons ();
6295 init_symbol ();
6296 init_marker ();
7146af97 6297 init_float ();
34400008 6298 init_intervals ();
5ac58e4c 6299 init_weak_hash_tables ();
d5e35230 6300
276cbe5a
RS
6301#ifdef REL_ALLOC
6302 malloc_hysteresis = 32;
6303#else
6304 malloc_hysteresis = 0;
6305#endif
6306
24d8a105 6307 refill_memory_reserve ();
276cbe5a 6308
7146af97
JB
6309 ignore_warnings = 0;
6310 gcprolist = 0;
630686c8 6311 byte_stack_list = 0;
7146af97
JB
6312 staticidx = 0;
6313 consing_since_gc = 0;
7d179cea 6314 gc_cons_threshold = 100000 * sizeof (Lisp_Object);
974aae61 6315 gc_relative_threshold = 0;
7146af97
JB
6316}
6317
dfcf069d 6318void
971de7fb 6319init_alloc (void)
7146af97
JB
6320{
6321 gcprolist = 0;
630686c8 6322 byte_stack_list = 0;
182ff242
GM
6323#if GC_MARK_STACK
6324#if !defined GC_SAVE_REGISTERS_ON_STACK && !defined GC_SETJMP_WORKS
6325 setjmp_tested_p = longjmps_done = 0;
6326#endif
6327#endif
2c5bd608
DL
6328 Vgc_elapsed = make_float (0.0);
6329 gcs_done = 0;
7146af97
JB
6330}
6331
6332void
971de7fb 6333syms_of_alloc (void)
7146af97 6334{
29208e82 6335 DEFVAR_INT ("gc-cons-threshold", gc_cons_threshold,
a6266d23 6336 doc: /* *Number of bytes of consing between garbage collections.
228299fa
GM
6337Garbage collection can happen automatically once this many bytes have been
6338allocated since the last garbage collection. All data types count.
7146af97 6339
228299fa 6340Garbage collection happens automatically only when `eval' is called.
7146af97 6341
228299fa 6342By binding this temporarily to a large number, you can effectively
96f077ad
SM
6343prevent garbage collection during a part of the program.
6344See also `gc-cons-percentage'. */);
6345
29208e82 6346 DEFVAR_LISP ("gc-cons-percentage", Vgc_cons_percentage,
96f077ad
SM
6347 doc: /* *Portion of the heap used for allocation.
6348Garbage collection can happen automatically once this portion of the heap
6349has been allocated since the last garbage collection.
6350If this portion is smaller than `gc-cons-threshold', this is ignored. */);
6351 Vgc_cons_percentage = make_float (0.1);
0819585c 6352
29208e82 6353 DEFVAR_INT ("pure-bytes-used", pure_bytes_used,
a6266d23 6354 doc: /* Number of bytes of sharable Lisp data allocated so far. */);
0819585c 6355
29208e82 6356 DEFVAR_INT ("cons-cells-consed", cons_cells_consed,
a6266d23 6357 doc: /* Number of cons cells that have been consed so far. */);
0819585c 6358
29208e82 6359 DEFVAR_INT ("floats-consed", floats_consed,
a6266d23 6360 doc: /* Number of floats that have been consed so far. */);
0819585c 6361
29208e82 6362 DEFVAR_INT ("vector-cells-consed", vector_cells_consed,
a6266d23 6363 doc: /* Number of vector cells that have been consed so far. */);
0819585c 6364
29208e82 6365 DEFVAR_INT ("symbols-consed", symbols_consed,
a6266d23 6366 doc: /* Number of symbols that have been consed so far. */);
0819585c 6367
29208e82 6368 DEFVAR_INT ("string-chars-consed", string_chars_consed,
a6266d23 6369 doc: /* Number of string characters that have been consed so far. */);
0819585c 6370
29208e82 6371 DEFVAR_INT ("misc-objects-consed", misc_objects_consed,
a6266d23 6372 doc: /* Number of miscellaneous objects that have been consed so far. */);
2e471eb5 6373
29208e82 6374 DEFVAR_INT ("intervals-consed", intervals_consed,
a6266d23 6375 doc: /* Number of intervals that have been consed so far. */);
7146af97 6376
29208e82 6377 DEFVAR_INT ("strings-consed", strings_consed,
a6266d23 6378 doc: /* Number of strings that have been consed so far. */);
228299fa 6379
29208e82 6380 DEFVAR_LISP ("purify-flag", Vpurify_flag,
a6266d23 6381 doc: /* Non-nil means loading Lisp code in order to dump an executable.
e9515805
SM
6382This means that certain objects should be allocated in shared (pure) space.
6383It can also be set to a hash-table, in which case this table is used to
6384do hash-consing of the objects allocated to pure space. */);
228299fa 6385
29208e82 6386 DEFVAR_BOOL ("garbage-collection-messages", garbage_collection_messages,
a6266d23 6387 doc: /* Non-nil means display messages at start and end of garbage collection. */);
299585ee
RS
6388 garbage_collection_messages = 0;
6389
29208e82 6390 DEFVAR_LISP ("post-gc-hook", Vpost_gc_hook,
a6266d23 6391 doc: /* Hook run after garbage collection has finished. */);
9e713715 6392 Vpost_gc_hook = Qnil;
cd3520a4 6393 DEFSYM (Qpost_gc_hook, "post-gc-hook");
9e713715 6394
29208e82 6395 DEFVAR_LISP ("memory-signal-data", Vmemory_signal_data,
74a54b04 6396 doc: /* Precomputed `signal' argument for memory-full error. */);
bcb61d60
KH
6397 /* We build this in advance because if we wait until we need it, we might
6398 not be able to allocate the memory to hold it. */
74a54b04 6399 Vmemory_signal_data
f4265f6c
DN
6400 = pure_cons (Qerror,
6401 pure_cons (make_pure_c_string ("Memory exhausted--use M-x save-some-buffers then exit and restart Emacs"), Qnil));
74a54b04 6402
29208e82 6403 DEFVAR_LISP ("memory-full", Vmemory_full,
24d8a105 6404 doc: /* Non-nil means Emacs cannot get much more Lisp memory. */);
74a54b04 6405 Vmemory_full = Qnil;
bcb61d60 6406
cd3520a4
JB
6407 DEFSYM (Qgc_cons_threshold, "gc-cons-threshold");
6408 DEFSYM (Qchar_table_extra_slots, "char-table-extra-slots");
a59de17b 6409
29208e82 6410 DEFVAR_LISP ("gc-elapsed", Vgc_elapsed,
2c5bd608 6411 doc: /* Accumulated time elapsed in garbage collections.
e7415487 6412The time is in seconds as a floating point value. */);
29208e82 6413 DEFVAR_INT ("gcs-done", gcs_done,
e7415487 6414 doc: /* Accumulated number of garbage collections done. */);
2c5bd608 6415
7146af97
JB
6416 defsubr (&Scons);
6417 defsubr (&Slist);
6418 defsubr (&Svector);
6419 defsubr (&Smake_byte_code);
6420 defsubr (&Smake_list);
6421 defsubr (&Smake_vector);
6422 defsubr (&Smake_string);
7b07587b 6423 defsubr (&Smake_bool_vector);
7146af97
JB
6424 defsubr (&Smake_symbol);
6425 defsubr (&Smake_marker);
6426 defsubr (&Spurecopy);
6427 defsubr (&Sgarbage_collect);
20d24714 6428 defsubr (&Smemory_limit);
310ea200 6429 defsubr (&Smemory_use_counts);
34400008
GM
6430
6431#if GC_MARK_STACK == GC_USE_GCPROS_CHECK_ZOMBIES
6432 defsubr (&Sgc_status);
6433#endif
7146af97 6434}