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[bpt/guile.git] / libguile / gc.c
CommitLineData
acb0a19c 1/* Copyright (C) 1995, 96, 97, 98, 99, 2000 Free Software Foundation, Inc.
a00c95d9 2 *
0f2d19dd
JB
3 * This program is free software; you can redistribute it and/or modify
4 * it under the terms of the GNU General Public License as published by
5 * the Free Software Foundation; either version 2, or (at your option)
6 * any later version.
a00c95d9 7 *
0f2d19dd
JB
8 * This program is distributed in the hope that it will be useful,
9 * but WITHOUT ANY WARRANTY; without even the implied warranty of
10 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
11 * GNU General Public License for more details.
a00c95d9 12 *
0f2d19dd
JB
13 * You should have received a copy of the GNU General Public License
14 * along with this software; see the file COPYING. If not, write to
82892bed
JB
15 * the Free Software Foundation, Inc., 59 Temple Place, Suite 330,
16 * Boston, MA 02111-1307 USA
0f2d19dd
JB
17 *
18 * As a special exception, the Free Software Foundation gives permission
19 * for additional uses of the text contained in its release of GUILE.
20 *
21 * The exception is that, if you link the GUILE library with other files
22 * to produce an executable, this does not by itself cause the
23 * resulting executable to be covered by the GNU General Public License.
24 * Your use of that executable is in no way restricted on account of
25 * linking the GUILE library code into it.
26 *
27 * This exception does not however invalidate any other reasons why
28 * the executable file might be covered by the GNU General Public License.
29 *
30 * This exception applies only to the code released by the
31 * Free Software Foundation under the name GUILE. If you copy
32 * code from other Free Software Foundation releases into a copy of
33 * GUILE, as the General Public License permits, the exception does
34 * not apply to the code that you add in this way. To avoid misleading
35 * anyone as to the status of such modified files, you must delete
36 * this exception notice from them.
37 *
38 * If you write modifications of your own for GUILE, it is your choice
39 * whether to permit this exception to apply to your modifications.
82892bed 40 * If you do not wish that, delete this exception notice. */
1bbd0b84
GB
41
42/* Software engineering face-lift by Greg J. Badros, 11-Dec-1999,
43 gjb@cs.washington.edu, http://www.cs.washington.edu/homes/gjb */
44
37ddcaf6
MD
45/* #define DEBUGINFO */
46
0f2d19dd
JB
47\f
48#include <stdio.h>
a0599745 49#include "libguile/_scm.h"
0a7a7445 50#include "libguile/eval.h"
a0599745
MD
51#include "libguile/stime.h"
52#include "libguile/stackchk.h"
53#include "libguile/struct.h"
a0599745
MD
54#include "libguile/smob.h"
55#include "libguile/unif.h"
56#include "libguile/async.h"
57#include "libguile/ports.h"
58#include "libguile/root.h"
59#include "libguile/strings.h"
60#include "libguile/vectors.h"
801cb5e7 61#include "libguile/weaks.h"
686765af 62#include "libguile/hashtab.h"
a0599745
MD
63
64#include "libguile/validate.h"
65#include "libguile/gc.h"
fce59c93 66
bc9d9bb2 67#ifdef GUILE_DEBUG_MALLOC
a0599745 68#include "libguile/debug-malloc.h"
bc9d9bb2
MD
69#endif
70
0f2d19dd 71#ifdef HAVE_MALLOC_H
95b88819 72#include <malloc.h>
0f2d19dd
JB
73#endif
74
75#ifdef HAVE_UNISTD_H
95b88819 76#include <unistd.h>
0f2d19dd
JB
77#endif
78
1cc91f1b
JB
79#ifdef __STDC__
80#include <stdarg.h>
81#define var_start(x, y) va_start(x, y)
82#else
83#include <varargs.h>
84#define var_start(x, y) va_start(x)
85#endif
86
0f2d19dd 87\f
406c7d90
DH
88
89unsigned int scm_gc_running_p = 0;
90
91\f
92
93#if (SCM_DEBUG_CELL_ACCESSES == 1)
94
95unsigned int scm_debug_cell_accesses_p = 0;
96
97
98/* Assert that the given object is a valid reference to a valid cell. This
99 * test involves to determine whether the object is a cell pointer, whether
100 * this pointer actually points into a heap segment and whether the cell
101 * pointed to is not a free cell.
102 */
103void
104scm_assert_cell_valid (SCM cell)
105{
106 if (scm_debug_cell_accesses_p)
107 {
108 scm_debug_cell_accesses_p = 0; /* disable to avoid recursion */
109
9d47a1e6 110 if (!scm_cellp (cell))
406c7d90
DH
111 {
112 fprintf (stderr, "scm_assert_cell_valid: Not a cell object: %lx\n", SCM_UNPACK (cell));
113 abort ();
114 }
115 else if (!scm_gc_running_p)
116 {
117 /* Dirk::FIXME:: During garbage collection there occur references to
118 free cells. This is allright during conservative marking, but
119 should not happen otherwise (I think). The case of free cells
120 accessed during conservative marking is handled in function
121 scm_mark_locations. However, there still occur accesses to free
122 cells during gc. I don't understand why this happens. If it is
123 a bug and gets fixed, the following test should also work while
124 gc is running.
125 */
126 if (SCM_FREE_CELL_P (cell))
127 {
128 fprintf (stderr, "scm_assert_cell_valid: Accessing free cell: %lx\n", SCM_UNPACK (cell));
129 abort ();
130 }
131 }
132 scm_debug_cell_accesses_p = 1; /* re-enable */
133 }
134}
135
136
137SCM_DEFINE (scm_set_debug_cell_accesses_x, "set-debug-cell-accesses!", 1, 0, 0,
138 (SCM flag),
139 "If FLAG is #f, cell access checking is disabled.\n"
140 "If FLAG is #t, cell access checking is enabled.\n"
141 "This procedure only exists because the compile-time flag\n"
142 "SCM_DEBUG_CELL_ACCESSES was set to 1.\n")
143#define FUNC_NAME s_scm_set_debug_cell_accesses_x
144{
145 if (SCM_FALSEP (flag)) {
146 scm_debug_cell_accesses_p = 0;
147 } else if (SCM_EQ_P (flag, SCM_BOOL_T)) {
148 scm_debug_cell_accesses_p = 1;
149 } else {
150 SCM_WRONG_TYPE_ARG (1, flag);
151 }
152 return SCM_UNSPECIFIED;
153}
154#undef FUNC_NAME
155
156#endif /* SCM_DEBUG_CELL_ACCESSES == 1 */
157
158\f
159
0f2d19dd 160/* {heap tuning parameters}
a00c95d9 161 *
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JB
162 * These are parameters for controlling memory allocation. The heap
163 * is the area out of which scm_cons, and object headers are allocated.
164 *
165 * Each heap cell is 8 bytes on a 32 bit machine and 16 bytes on a
166 * 64 bit machine. The units of the _SIZE parameters are bytes.
167 * Cons pairs and object headers occupy one heap cell.
168 *
169 * SCM_INIT_HEAP_SIZE is the initial size of heap. If this much heap is
170 * allocated initially the heap will grow by half its current size
171 * each subsequent time more heap is needed.
172 *
173 * If SCM_INIT_HEAP_SIZE heap cannot be allocated initially, SCM_HEAP_SEG_SIZE
174 * will be used, and the heap will grow by SCM_HEAP_SEG_SIZE when more
175 * heap is needed. SCM_HEAP_SEG_SIZE must fit into type scm_sizet. This code
176 * is in scm_init_storage() and alloc_some_heap() in sys.c
a00c95d9 177 *
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JB
178 * If SCM_INIT_HEAP_SIZE can be allocated initially, the heap will grow by
179 * SCM_EXPHEAP(scm_heap_size) when more heap is needed.
180 *
181 * SCM_MIN_HEAP_SEG_SIZE is minimum size of heap to accept when more heap
182 * is needed.
183 *
184 * INIT_MALLOC_LIMIT is the initial amount of malloc usage which will
a00c95d9 185 * trigger a GC.
6064dcc6
MV
186 *
187 * SCM_MTRIGGER_HYSTERESIS is the amount of malloc storage that must be
188 * reclaimed by a GC triggered by must_malloc. If less than this is
189 * reclaimed, the trigger threshold is raised. [I don't know what a
190 * good value is. I arbitrarily chose 1/10 of the INIT_MALLOC_LIMIT to
a00c95d9 191 * work around a oscillation that caused almost constant GC.]
0f2d19dd
JB
192 */
193
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MD
194/*
195 * Heap size 45000 and 40% min yield gives quick startup and no extra
196 * heap allocation. Having higher values on min yield may lead to
197 * large heaps, especially if code behaviour is varying its
198 * maximum consumption between different freelists.
199 */
d6884e63
ML
200
201#define SCM_DATA_CELLS2CARDS(n) (((n) + SCM_GC_CARD_N_DATA_CELLS - 1) / SCM_GC_CARD_N_DATA_CELLS)
202#define SCM_CARDS_PER_CLUSTER SCM_DATA_CELLS2CARDS (2000L)
203#define SCM_CLUSTER_SIZE_1 (SCM_CARDS_PER_CLUSTER * SCM_GC_CARD_N_DATA_CELLS)
204int scm_default_init_heap_size_1 = (((SCM_DATA_CELLS2CARDS (45000L) + SCM_CARDS_PER_CLUSTER - 1)
205 / SCM_CARDS_PER_CLUSTER) * SCM_GC_CARD_SIZE);
aeacfc8f 206int scm_default_min_yield_1 = 40;
4c48ba06 207
d6884e63
ML
208#define SCM_CLUSTER_SIZE_2 (SCM_CARDS_PER_CLUSTER * (SCM_GC_CARD_N_DATA_CELLS / 2))
209int scm_default_init_heap_size_2 = (((SCM_DATA_CELLS2CARDS (2500L * 2) + SCM_CARDS_PER_CLUSTER - 1)
210 / SCM_CARDS_PER_CLUSTER) * SCM_GC_CARD_SIZE);
4c48ba06
MD
211/* The following value may seem large, but note that if we get to GC at
212 * all, this means that we have a numerically intensive application
213 */
aeacfc8f 214int scm_default_min_yield_2 = 40;
4c48ba06 215
aeacfc8f 216int scm_default_max_segment_size = 2097000L;/* a little less (adm) than 2 Mb */
4c48ba06 217
d6884e63 218#define SCM_MIN_HEAP_SEG_SIZE (8 * SCM_GC_CARD_SIZE)
0f2d19dd
JB
219#ifdef _QC
220# define SCM_HEAP_SEG_SIZE 32768L
221#else
222# ifdef sequent
4c48ba06 223# define SCM_HEAP_SEG_SIZE (7000L * sizeof (scm_cell))
0f2d19dd 224# else
4c48ba06 225# define SCM_HEAP_SEG_SIZE (16384L * sizeof (scm_cell))
0f2d19dd
JB
226# endif
227#endif
4c48ba06 228/* Make heap grow with factor 1.5 */
4a4c9785 229#define SCM_EXPHEAP(scm_heap_size) (scm_heap_size / 2)
0f2d19dd 230#define SCM_INIT_MALLOC_LIMIT 100000
6064dcc6 231#define SCM_MTRIGGER_HYSTERESIS (SCM_INIT_MALLOC_LIMIT/10)
0f2d19dd 232
d6884e63
ML
233/* CELL_UP and CELL_DN are used by scm_init_heap_seg to find (scm_cell * span)
234 aligned inner bounds for allocated storage */
0f2d19dd
JB
235
236#ifdef PROT386
237/*in 386 protected mode we must only adjust the offset */
a00c95d9
ML
238# define CELL_UP(p, span) MK_FP(FP_SEG(p), ~(8*(span)-1)&(FP_OFF(p)+8*(span)-1))
239# define CELL_DN(p, span) MK_FP(FP_SEG(p), ~(8*(span)-1)&FP_OFF(p))
0f2d19dd
JB
240#else
241# ifdef _UNICOS
a00c95d9
ML
242# define CELL_UP(p, span) (SCM_CELLPTR)(~(span) & ((long)(p)+(span)))
243# define CELL_DN(p, span) (SCM_CELLPTR)(~(span) & (long)(p))
0f2d19dd 244# else
a00c95d9
ML
245# define CELL_UP(p, span) (SCM_CELLPTR)(~(sizeof(scm_cell)*(span)-1L) & ((long)(p)+sizeof(scm_cell)*(span)-1L))
246# define CELL_DN(p, span) (SCM_CELLPTR)(~(sizeof(scm_cell)*(span)-1L) & (long)(p))
0f2d19dd
JB
247# endif /* UNICOS */
248#endif /* PROT386 */
249
d6884e63
ML
250#define ALIGNMENT_SLACK(freelist) (SCM_GC_CARD_SIZE - 1)
251#define CLUSTER_SIZE_IN_BYTES(freelist) \
252 (((freelist)->cluster_size / (SCM_GC_CARD_N_DATA_CELLS / (freelist)->span)) * SCM_GC_CARD_SIZE)
0f2d19dd
JB
253
254\f
945fec60 255/* scm_freelists
0f2d19dd 256 */
945fec60 257
a00c95d9
ML
258typedef struct scm_freelist_t {
259 /* collected cells */
260 SCM cells;
a00c95d9
ML
261 /* number of cells left to collect before cluster is full */
262 unsigned int left_to_collect;
b37fe1c5
MD
263 /* number of clusters which have been allocated */
264 unsigned int clusters_allocated;
8fef55a8
MD
265 /* a list of freelists, each of size cluster_size,
266 * except the last one which may be shorter
267 */
a00c95d9
ML
268 SCM clusters;
269 SCM *clustertail;
b37fe1c5 270 /* this is the number of objects in each cluster, including the spine cell */
a00c95d9 271 int cluster_size;
8fef55a8 272 /* indicates that we should grow heap instead of GC:ing
a00c95d9
ML
273 */
274 int grow_heap_p;
8fef55a8 275 /* minimum yield on this list in order not to grow the heap
a00c95d9 276 */
8fef55a8
MD
277 long min_yield;
278 /* defines min_yield as percent of total heap size
a00c95d9 279 */
8fef55a8 280 int min_yield_fraction;
a00c95d9
ML
281 /* number of cells per object on this list */
282 int span;
283 /* number of collected cells during last GC */
1811ebce
MD
284 long collected;
285 /* number of collected cells during penultimate GC */
286 long collected_1;
a00c95d9
ML
287 /* total number of cells in heap segments
288 * belonging to this list.
289 */
1811ebce 290 long heap_size;
a00c95d9
ML
291} scm_freelist_t;
292
4a4c9785
MD
293SCM scm_freelist = SCM_EOL;
294scm_freelist_t scm_master_freelist = {
b37fe1c5 295 SCM_EOL, 0, 0, SCM_EOL, 0, SCM_CLUSTER_SIZE_1, 0, 0, 0, 1, 0, 0
4a4c9785
MD
296};
297SCM scm_freelist2 = SCM_EOL;
298scm_freelist_t scm_master_freelist2 = {
b37fe1c5 299 SCM_EOL, 0, 0, SCM_EOL, 0, SCM_CLUSTER_SIZE_2, 0, 0, 0, 2, 0, 0
4a4c9785 300};
0f2d19dd
JB
301
302/* scm_mtrigger
303 * is the number of bytes of must_malloc allocation needed to trigger gc.
304 */
15e9d186 305unsigned long scm_mtrigger;
0f2d19dd 306
0f2d19dd
JB
307/* scm_gc_heap_lock
308 * If set, don't expand the heap. Set only during gc, during which no allocation
309 * is supposed to take place anyway.
310 */
311int scm_gc_heap_lock = 0;
312
313/* GC Blocking
314 * Don't pause for collection if this is set -- just
315 * expand the heap.
316 */
0f2d19dd
JB
317int scm_block_gc = 1;
318
0f2d19dd
JB
319/* During collection, this accumulates objects holding
320 * weak references.
321 */
ab4bef85 322SCM scm_weak_vectors;
0f2d19dd 323
7445e0e8
MD
324/* During collection, this accumulates structures which are to be freed.
325 */
326SCM scm_structs_to_free;
327
0f2d19dd
JB
328/* GC Statistics Keeping
329 */
330unsigned long scm_cells_allocated = 0;
a5c314c8 331long scm_mallocated = 0;
b37fe1c5 332unsigned long scm_gc_cells_collected;
8b0d194f 333unsigned long scm_gc_yield;
37ddcaf6 334static unsigned long scm_gc_yield_1 = 0; /* previous GC yield */
0f2d19dd
JB
335unsigned long scm_gc_malloc_collected;
336unsigned long scm_gc_ports_collected;
0f2d19dd 337unsigned long scm_gc_time_taken = 0;
c9b0d4b0
ML
338static unsigned long t_before_gc;
339static unsigned long t_before_sweep;
340unsigned long scm_gc_mark_time_taken = 0;
341unsigned long scm_gc_sweep_time_taken = 0;
342unsigned long scm_gc_times = 0;
343unsigned long scm_gc_cells_swept = 0;
344double scm_gc_cells_marked_acc = 0.;
345double scm_gc_cells_swept_acc = 0.;
0f2d19dd
JB
346
347SCM_SYMBOL (sym_cells_allocated, "cells-allocated");
348SCM_SYMBOL (sym_heap_size, "cell-heap-size");
349SCM_SYMBOL (sym_mallocated, "bytes-malloced");
350SCM_SYMBOL (sym_mtrigger, "gc-malloc-threshold");
351SCM_SYMBOL (sym_heap_segments, "cell-heap-segments");
352SCM_SYMBOL (sym_gc_time_taken, "gc-time-taken");
c9b0d4b0
ML
353SCM_SYMBOL (sym_gc_mark_time_taken, "gc-mark-time-taken");
354SCM_SYMBOL (sym_gc_sweep_time_taken, "gc-sweep-time-taken");
355SCM_SYMBOL (sym_times, "gc-times");
356SCM_SYMBOL (sym_cells_marked, "cells-marked");
357SCM_SYMBOL (sym_cells_swept, "cells-swept");
0f2d19dd 358
a00c95d9 359typedef struct scm_heap_seg_data_t
0f2d19dd 360{
cf2d30f6
JB
361 /* lower and upper bounds of the segment */
362 SCM_CELLPTR bounds[2];
363
364 /* address of the head-of-freelist pointer for this segment's cells.
365 All segments usually point to the same one, scm_freelist. */
4c48ba06 366 scm_freelist_t *freelist;
cf2d30f6 367
fe517a7d 368 /* number of cells per object in this segment */
945fec60 369 int span;
a00c95d9 370} scm_heap_seg_data_t;
0f2d19dd
JB
371
372
373
945fec60 374static scm_sizet init_heap_seg (SCM_CELLPTR, scm_sizet, scm_freelist_t *);
b6efc951
DH
375
376typedef enum { return_on_error, abort_on_error } policy_on_error;
377static void alloc_some_heap (scm_freelist_t *, policy_on_error);
0f2d19dd
JB
378
379
d6884e63
ML
380#define SCM_HEAP_SIZE \
381 (scm_master_freelist.heap_size + scm_master_freelist2.heap_size)
382#define SCM_MAX(A, B) ((A) > (B) ? (A) : (B))
383
384#define BVEC_GROW_SIZE 256
385#define BVEC_GROW_SIZE_IN_LIMBS (SCM_GC_CARD_BVEC_SIZE_IN_LIMBS * BVEC_GROW_SIZE)
386#define BVEC_GROW_SIZE_IN_BYTES (BVEC_GROW_SIZE_IN_LIMBS * sizeof (scm_c_bvec_limb_t))
387
388/* mark space allocation */
389
390typedef struct scm_mark_space_t
391{
392 scm_c_bvec_limb_t *bvec_space;
393 struct scm_mark_space_t *next;
394} scm_mark_space_t;
395
396static scm_mark_space_t *current_mark_space;
397static scm_mark_space_t **mark_space_ptr;
398static int current_mark_space_offset;
399static scm_mark_space_t *mark_space_head;
400
401static scm_c_bvec_limb_t *
402get_bvec ()
403{
404 scm_c_bvec_limb_t *res;
405
406 if (!current_mark_space)
407 {
408 SCM_SYSCALL (current_mark_space = (scm_mark_space_t *) malloc (sizeof (scm_mark_space_t)));
409 if (!current_mark_space)
410 scm_wta (SCM_UNDEFINED, "could not grow", "heap");
411
412 current_mark_space->bvec_space = NULL;
413 current_mark_space->next = NULL;
414
415 *mark_space_ptr = current_mark_space;
416 mark_space_ptr = &(current_mark_space->next);
417
418 return get_bvec ();
419 }
420
421 if (!(current_mark_space->bvec_space))
422 {
423 SCM_SYSCALL (current_mark_space->bvec_space =
424 (scm_c_bvec_limb_t *) calloc (BVEC_GROW_SIZE_IN_BYTES, 1));
425 if (!(current_mark_space->bvec_space))
426 scm_wta (SCM_UNDEFINED, "could not grow", "heap");
427
428 current_mark_space_offset = 0;
429
430 return get_bvec ();
431 }
432
433 if (current_mark_space_offset == BVEC_GROW_SIZE_IN_LIMBS)
434 {
435 current_mark_space = NULL;
436
437 return get_bvec ();
438 }
439
440 res = current_mark_space->bvec_space + current_mark_space_offset;
441 current_mark_space_offset += SCM_GC_CARD_BVEC_SIZE_IN_LIMBS;
442
443 return res;
444}
445
446static void
447clear_mark_space ()
448{
449 scm_mark_space_t *ms;
450
451 for (ms = mark_space_head; ms; ms = ms->next)
452 memset (ms->bvec_space, 0, BVEC_GROW_SIZE_IN_BYTES);
453}
454
455
0f2d19dd 456\f
cf2d30f6
JB
457/* Debugging functions. */
458
bb2c57fa 459#if defined (GUILE_DEBUG) || defined (GUILE_DEBUG_FREELIST)
cf2d30f6
JB
460
461/* Return the number of the heap segment containing CELL. */
462static int
463which_seg (SCM cell)
464{
465 int i;
466
467 for (i = 0; i < scm_n_heap_segs; i++)
195e6201
DH
468 if (SCM_PTR_LE (scm_heap_table[i].bounds[0], SCM2PTR (cell))
469 && SCM_PTR_GT (scm_heap_table[i].bounds[1], SCM2PTR (cell)))
cf2d30f6
JB
470 return i;
471 fprintf (stderr, "which_seg: can't find segment containing cell %lx\n",
945fec60 472 SCM_UNPACK (cell));
cf2d30f6
JB
473 abort ();
474}
475
476
8ded62a3
MD
477static void
478map_free_list (scm_freelist_t *master, SCM freelist)
479{
480 int last_seg = -1, count = 0;
481 SCM f;
a00c95d9 482
3f5d82cd 483 for (f = freelist; !SCM_NULLP (f); f = SCM_FREE_CELL_CDR (f))
8ded62a3
MD
484 {
485 int this_seg = which_seg (f);
486
487 if (this_seg != last_seg)
488 {
489 if (last_seg != -1)
490 fprintf (stderr, " %5d %d-cells in segment %d\n",
491 count, master->span, last_seg);
492 last_seg = this_seg;
493 count = 0;
494 }
495 count++;
496 }
497 if (last_seg != -1)
498 fprintf (stderr, " %5d %d-cells in segment %d\n",
499 count, master->span, last_seg);
500}
cf2d30f6 501
a00c95d9 502SCM_DEFINE (scm_map_free_list, "map-free-list", 0, 0, 0,
acb0a19c
MD
503 (),
504 "Print debugging information about the free-list.\n"
5384bc5b 505 "`map-free-list' is only included in --enable-guile-debug builds of Guile.")
acb0a19c
MD
506#define FUNC_NAME s_scm_map_free_list
507{
4c48ba06
MD
508 int i;
509 fprintf (stderr, "%d segments total (%d:%d",
510 scm_n_heap_segs,
511 scm_heap_table[0].span,
512 scm_heap_table[0].bounds[1] - scm_heap_table[0].bounds[0]);
513 for (i = 1; i < scm_n_heap_segs; i++)
514 fprintf (stderr, ", %d:%d",
515 scm_heap_table[i].span,
516 scm_heap_table[i].bounds[1] - scm_heap_table[i].bounds[0]);
517 fprintf (stderr, ")\n");
8ded62a3
MD
518 map_free_list (&scm_master_freelist, scm_freelist);
519 map_free_list (&scm_master_freelist2, scm_freelist2);
cf2d30f6
JB
520 fflush (stderr);
521
522 return SCM_UNSPECIFIED;
523}
1bbd0b84 524#undef FUNC_NAME
cf2d30f6 525
4c48ba06
MD
526static int last_cluster;
527static int last_size;
528
5384bc5b
MD
529static int
530free_list_length (char *title, int i, SCM freelist)
531{
532 SCM ls;
533 int n = 0;
3f5d82cd
DH
534 for (ls = freelist; !SCM_NULLP (ls); ls = SCM_FREE_CELL_CDR (ls))
535 if (SCM_FREE_CELL_P (ls))
5384bc5b
MD
536 ++n;
537 else
538 {
539 fprintf (stderr, "bad cell in %s at position %d\n", title, n);
540 abort ();
541 }
4c48ba06
MD
542 if (n != last_size)
543 {
544 if (i > 0)
545 {
546 if (last_cluster == i - 1)
547 fprintf (stderr, "\t%d\n", last_size);
548 else
549 fprintf (stderr, "-%d\t%d\n", i - 1, last_size);
550 }
551 if (i >= 0)
552 fprintf (stderr, "%s %d", title, i);
553 else
554 fprintf (stderr, "%s\t%d\n", title, n);
555 last_cluster = i;
556 last_size = n;
557 }
5384bc5b
MD
558 return n;
559}
560
561static void
562free_list_lengths (char *title, scm_freelist_t *master, SCM freelist)
563{
564 SCM clusters;
4c48ba06 565 int i = 0, len, n = 0;
5384bc5b
MD
566 fprintf (stderr, "%s\n\n", title);
567 n += free_list_length ("free list", -1, freelist);
568 for (clusters = master->clusters;
569 SCM_NNULLP (clusters);
570 clusters = SCM_CDR (clusters))
4c48ba06
MD
571 {
572 len = free_list_length ("cluster", i++, SCM_CAR (clusters));
573 n += len;
574 }
575 if (last_cluster == i - 1)
576 fprintf (stderr, "\t%d\n", last_size);
577 else
578 fprintf (stderr, "-%d\t%d\n", i - 1, last_size);
579 fprintf (stderr, "\ntotal %d objects\n\n", n);
5384bc5b
MD
580}
581
a00c95d9 582SCM_DEFINE (scm_free_list_length, "free-list-length", 0, 0, 0,
5384bc5b
MD
583 (),
584 "Print debugging information about the free-list.\n"
585 "`free-list-length' is only included in --enable-guile-debug builds of Guile.")
586#define FUNC_NAME s_scm_free_list_length
587{
b37fe1c5
MD
588 free_list_lengths ("1-cells", &scm_master_freelist, scm_freelist);
589 free_list_lengths ("2-cells", &scm_master_freelist2, scm_freelist2);
12e5fb3b 590 return SCM_UNSPECIFIED;
5384bc5b
MD
591}
592#undef FUNC_NAME
593
bb2c57fa
MD
594#endif
595
596#ifdef GUILE_DEBUG_FREELIST
cf2d30f6
JB
597
598/* Number of calls to SCM_NEWCELL since startup. */
599static unsigned long scm_newcell_count;
acb0a19c 600static unsigned long scm_newcell2_count;
cf2d30f6
JB
601
602/* Search freelist for anything that isn't marked as a free cell.
603 Abort if we find something. */
8ded62a3
MD
604static void
605scm_check_freelist (SCM freelist)
606{
607 SCM f;
608 int i = 0;
609
3f5d82cd
DH
610 for (f = freelist; !SCM_NULLP (f); f = SCM_FREE_CELL_CDR (f), i++)
611 if (!SCM_FREE_CELL_P (f))
8ded62a3
MD
612 {
613 fprintf (stderr, "Bad cell in freelist on newcell %lu: %d'th elt\n",
614 scm_newcell_count, i);
8ded62a3
MD
615 abort ();
616 }
617}
cf2d30f6 618
a00c95d9 619SCM_DEFINE (scm_gc_set_debug_check_freelist_x, "gc-set-debug-check-freelist!", 1, 0, 0,
1bbd0b84 620 (SCM flag),
da4a1dba
GB
621 "If FLAG is #t, check the freelist for consistency on each cell allocation.\n"
622 "This procedure only exists because the GUILE_DEBUG_FREELIST \n"
623 "compile-time flag was selected.\n")
1bbd0b84 624#define FUNC_NAME s_scm_gc_set_debug_check_freelist_x
25748c78 625{
d6884e63
ML
626 /* [cmm] I did a double-take when I read this code the first time.
627 well, FWIW. */
945fec60 628 SCM_VALIDATE_BOOL_COPY (1, flag, scm_debug_check_freelist);
25748c78
GB
629 return SCM_UNSPECIFIED;
630}
1bbd0b84 631#undef FUNC_NAME
25748c78
GB
632
633
4a4c9785
MD
634SCM
635scm_debug_newcell (void)
636{
637 SCM new;
638
639 scm_newcell_count++;
640 if (scm_debug_check_freelist)
641 {
8ded62a3 642 scm_check_freelist (scm_freelist);
4a4c9785
MD
643 scm_gc();
644 }
645
646 /* The rest of this is supposed to be identical to the SCM_NEWCELL
647 macro. */
3f5d82cd 648 if (SCM_NULLP (scm_freelist))
4a4c9785
MD
649 new = scm_gc_for_newcell (&scm_master_freelist, &scm_freelist);
650 else
651 {
652 new = scm_freelist;
3f5d82cd
DH
653 scm_freelist = SCM_FREE_CELL_CDR (scm_freelist);
654 SCM_SET_FREE_CELL_TYPE (new, scm_tc16_allocated);
4a4c9785
MD
655 }
656
657 return new;
658}
659
660SCM
661scm_debug_newcell2 (void)
662{
663 SCM new;
664
665 scm_newcell2_count++;
666 if (scm_debug_check_freelist)
667 {
8ded62a3 668 scm_check_freelist (scm_freelist2);
4a4c9785
MD
669 scm_gc ();
670 }
671
672 /* The rest of this is supposed to be identical to the SCM_NEWCELL
673 macro. */
3f5d82cd 674 if (SCM_NULLP (scm_freelist2))
4a4c9785
MD
675 new = scm_gc_for_newcell (&scm_master_freelist2, &scm_freelist2);
676 else
677 {
678 new = scm_freelist2;
3f5d82cd
DH
679 scm_freelist2 = SCM_FREE_CELL_CDR (scm_freelist2);
680 SCM_SET_FREE_CELL_TYPE (new, scm_tc16_allocated);
4a4c9785
MD
681 }
682
683 return new;
684}
685
fca7547b 686#endif /* GUILE_DEBUG_FREELIST */
cf2d30f6
JB
687
688\f
0f2d19dd 689
b37fe1c5
MD
690static unsigned long
691master_cells_allocated (scm_freelist_t *master)
692{
d6884e63 693 /* the '- 1' below is to ignore the cluster spine cells. */
b37fe1c5
MD
694 int objects = master->clusters_allocated * (master->cluster_size - 1);
695 if (SCM_NULLP (master->clusters))
696 objects -= master->left_to_collect;
697 return master->span * objects;
698}
699
700static unsigned long
701freelist_length (SCM freelist)
702{
703 int n;
3f5d82cd 704 for (n = 0; !SCM_NULLP (freelist); freelist = SCM_FREE_CELL_CDR (freelist))
b37fe1c5
MD
705 ++n;
706 return n;
707}
708
709static unsigned long
710compute_cells_allocated ()
711{
712 return (scm_cells_allocated
713 + master_cells_allocated (&scm_master_freelist)
714 + master_cells_allocated (&scm_master_freelist2)
715 - scm_master_freelist.span * freelist_length (scm_freelist)
716 - scm_master_freelist2.span * freelist_length (scm_freelist2));
717}
b37fe1c5 718
0f2d19dd
JB
719/* {Scheme Interface to GC}
720 */
721
a00c95d9 722SCM_DEFINE (scm_gc_stats, "gc-stats", 0, 0, 0,
1bbd0b84 723 (),
b380b885 724 "Returns an association list of statistics about Guile's current use of storage. ")
1bbd0b84 725#define FUNC_NAME s_scm_gc_stats
0f2d19dd
JB
726{
727 int i;
728 int n;
729 SCM heap_segs;
c209c88e
GB
730 long int local_scm_mtrigger;
731 long int local_scm_mallocated;
732 long int local_scm_heap_size;
733 long int local_scm_cells_allocated;
734 long int local_scm_gc_time_taken;
c9b0d4b0
ML
735 long int local_scm_gc_times;
736 long int local_scm_gc_mark_time_taken;
737 long int local_scm_gc_sweep_time_taken;
738 double local_scm_gc_cells_swept;
739 double local_scm_gc_cells_marked;
0f2d19dd
JB
740 SCM answer;
741
742 SCM_DEFER_INTS;
939794ce
DH
743
744 ++scm_block_gc;
745
0f2d19dd
JB
746 retry:
747 heap_segs = SCM_EOL;
748 n = scm_n_heap_segs;
749 for (i = scm_n_heap_segs; i--; )
750 heap_segs = scm_cons (scm_cons (scm_ulong2num ((unsigned long)scm_heap_table[i].bounds[1]),
751 scm_ulong2num ((unsigned long)scm_heap_table[i].bounds[0])),
752 heap_segs);
753 if (scm_n_heap_segs != n)
754 goto retry;
939794ce
DH
755
756 --scm_block_gc;
0f2d19dd 757
7febb4a2
MD
758 /* Below, we cons to produce the resulting list. We want a snapshot of
759 * the heap situation before consing.
760 */
0f2d19dd
JB
761 local_scm_mtrigger = scm_mtrigger;
762 local_scm_mallocated = scm_mallocated;
b37fe1c5 763 local_scm_heap_size = SCM_HEAP_SIZE;
b37fe1c5 764 local_scm_cells_allocated = compute_cells_allocated ();
0f2d19dd 765 local_scm_gc_time_taken = scm_gc_time_taken;
c9b0d4b0
ML
766 local_scm_gc_mark_time_taken = scm_gc_mark_time_taken;
767 local_scm_gc_sweep_time_taken = scm_gc_sweep_time_taken;
768 local_scm_gc_times = scm_gc_times;
769 local_scm_gc_cells_swept = scm_gc_cells_swept_acc;
770 local_scm_gc_cells_marked = scm_gc_cells_marked_acc;
0f2d19dd
JB
771
772 answer = scm_listify (scm_cons (sym_gc_time_taken, scm_ulong2num (local_scm_gc_time_taken)),
773 scm_cons (sym_cells_allocated, scm_ulong2num (local_scm_cells_allocated)),
774 scm_cons (sym_heap_size, scm_ulong2num (local_scm_heap_size)),
775 scm_cons (sym_mallocated, scm_ulong2num (local_scm_mallocated)),
776 scm_cons (sym_mtrigger, scm_ulong2num (local_scm_mtrigger)),
c9b0d4b0
ML
777 scm_cons (sym_times, scm_ulong2num (local_scm_gc_times)),
778 scm_cons (sym_gc_mark_time_taken, scm_ulong2num (local_scm_gc_mark_time_taken)),
779 scm_cons (sym_gc_sweep_time_taken, scm_ulong2num (local_scm_gc_sweep_time_taken)),
780 scm_cons (sym_cells_marked, scm_dbl2big (local_scm_gc_cells_marked)),
781 scm_cons (sym_cells_swept, scm_dbl2big (local_scm_gc_cells_swept)),
0f2d19dd
JB
782 scm_cons (sym_heap_segments, heap_segs),
783 SCM_UNDEFINED);
784 SCM_ALLOW_INTS;
785 return answer;
786}
1bbd0b84 787#undef FUNC_NAME
0f2d19dd
JB
788
789
c9b0d4b0
ML
790static void
791gc_start_stats (const char *what)
0f2d19dd 792{
c9b0d4b0
ML
793 t_before_gc = scm_c_get_internal_run_time ();
794 scm_gc_cells_swept = 0;
b37fe1c5 795 scm_gc_cells_collected = 0;
37ddcaf6 796 scm_gc_yield_1 = scm_gc_yield;
8b0d194f
MD
797 scm_gc_yield = (scm_cells_allocated
798 + master_cells_allocated (&scm_master_freelist)
799 + master_cells_allocated (&scm_master_freelist2));
0f2d19dd
JB
800 scm_gc_malloc_collected = 0;
801 scm_gc_ports_collected = 0;
802}
803
939794ce 804
c9b0d4b0
ML
805static void
806gc_end_stats ()
0f2d19dd 807{
c9b0d4b0
ML
808 unsigned long t = scm_c_get_internal_run_time ();
809 scm_gc_time_taken += (t - t_before_gc);
810 scm_gc_sweep_time_taken += (t - t_before_sweep);
811 ++scm_gc_times;
812
813 scm_gc_cells_marked_acc += scm_gc_cells_swept - scm_gc_cells_collected;
814 scm_gc_cells_swept_acc += scm_gc_cells_swept;
0f2d19dd
JB
815}
816
817
a00c95d9 818SCM_DEFINE (scm_object_address, "object-address", 1, 0, 0,
1bbd0b84 819 (SCM obj),
b380b885
MD
820 "Return an integer that for the lifetime of @var{obj} is uniquely\n"
821 "returned by this function for @var{obj}")
1bbd0b84 822#define FUNC_NAME s_scm_object_address
0f2d19dd 823{
54778cd3 824 return scm_ulong2num ((unsigned long) SCM_UNPACK (obj));
0f2d19dd 825}
1bbd0b84 826#undef FUNC_NAME
0f2d19dd
JB
827
828
a00c95d9 829SCM_DEFINE (scm_gc, "gc", 0, 0, 0,
1bbd0b84 830 (),
b380b885
MD
831 "Scans all of SCM objects and reclaims for further use those that are\n"
832 "no longer accessible.")
1bbd0b84 833#define FUNC_NAME s_scm_gc
0f2d19dd
JB
834{
835 SCM_DEFER_INTS;
836 scm_igc ("call");
837 SCM_ALLOW_INTS;
838 return SCM_UNSPECIFIED;
839}
1bbd0b84 840#undef FUNC_NAME
0f2d19dd
JB
841
842
843\f
844/* {C Interface For When GC is Triggered}
845 */
846
b37fe1c5 847static void
8fef55a8 848adjust_min_yield (scm_freelist_t *freelist)
b37fe1c5 849{
8fef55a8 850 /* min yield is adjusted upwards so that next predicted total yield
bda1446c 851 * (allocated cells actually freed by GC) becomes
8fef55a8
MD
852 * `min_yield_fraction' of total heap size. Note, however, that
853 * the absolute value of min_yield will correspond to `collected'
bda1446c 854 * on one master (the one which currently is triggering GC).
b37fe1c5 855 *
bda1446c
MD
856 * The reason why we look at total yield instead of cells collected
857 * on one list is that we want to take other freelists into account.
858 * On this freelist, we know that (local) yield = collected cells,
859 * but that's probably not the case on the other lists.
b37fe1c5
MD
860 *
861 * (We might consider computing a better prediction, for example
862 * by computing an average over multiple GC:s.)
863 */
8fef55a8 864 if (freelist->min_yield_fraction)
b37fe1c5 865 {
37ddcaf6 866 /* Pick largest of last two yields. */
8fef55a8
MD
867 int delta = ((SCM_HEAP_SIZE * freelist->min_yield_fraction / 100)
868 - (long) SCM_MAX (scm_gc_yield_1, scm_gc_yield));
b37fe1c5
MD
869#ifdef DEBUGINFO
870 fprintf (stderr, " after GC = %d, delta = %d\n",
871 scm_cells_allocated,
872 delta);
873#endif
874 if (delta > 0)
8fef55a8 875 freelist->min_yield += delta;
b37fe1c5
MD
876 }
877}
878
b6efc951 879
4a4c9785 880/* When we get POSIX threads support, the master will be global and
4c48ba06
MD
881 * common while the freelist will be individual for each thread.
882 */
4a4c9785
MD
883
884SCM
885scm_gc_for_newcell (scm_freelist_t *master, SCM *freelist)
886{
887 SCM cell;
888 ++scm_ints_disabled;
4c48ba06
MD
889 do
890 {
c7387918 891 if (SCM_NULLP (master->clusters))
4c48ba06 892 {
150c200b 893 if (master->grow_heap_p || scm_block_gc)
4c48ba06 894 {
b6efc951
DH
895 /* In order to reduce gc frequency, try to allocate a new heap
896 * segment first, even if gc might find some free cells. If we
897 * can't obtain a new heap segment, we will try gc later.
898 */
4c48ba06 899 master->grow_heap_p = 0;
b6efc951 900 alloc_some_heap (master, return_on_error);
4c48ba06 901 }
b6efc951 902 if (SCM_NULLP (master->clusters))
b37fe1c5 903 {
b6efc951
DH
904 /* The heap was not grown, either because it wasn't scheduled to
905 * grow, or because there was not enough memory available. In
906 * both cases we have to try gc to get some free cells.
907 */
37ddcaf6
MD
908#ifdef DEBUGINFO
909 fprintf (stderr, "allocated = %d, ",
910 scm_cells_allocated
911 + master_cells_allocated (&scm_master_freelist)
912 + master_cells_allocated (&scm_master_freelist2));
913#endif
b37fe1c5 914 scm_igc ("cells");
8fef55a8 915 adjust_min_yield (master);
c7387918
DH
916 if (SCM_NULLP (master->clusters))
917 {
b6efc951
DH
918 /* gc could not free any cells. Now, we _must_ allocate a
919 * new heap segment, because there is no other possibility
920 * to provide a new cell for the caller.
921 */
922 alloc_some_heap (master, abort_on_error);
c7387918 923 }
b37fe1c5 924 }
4c48ba06
MD
925 }
926 cell = SCM_CAR (master->clusters);
927 master->clusters = SCM_CDR (master->clusters);
b37fe1c5 928 ++master->clusters_allocated;
4c48ba06
MD
929 }
930 while (SCM_NULLP (cell));
d6884e63
ML
931
932#ifdef GUILE_DEBUG_FREELIST
933 scm_check_freelist (cell);
934#endif
935
4a4c9785 936 --scm_ints_disabled;
3f5d82cd
DH
937 *freelist = SCM_FREE_CELL_CDR (cell);
938 SCM_SET_FREE_CELL_TYPE (cell, scm_tc16_allocated);
4a4c9785
MD
939 return cell;
940}
941
b6efc951 942
4c48ba06
MD
943#if 0
944/* This is a support routine which can be used to reserve a cluster
945 * for some special use, such as debugging. It won't be useful until
946 * free cells are preserved between garbage collections.
947 */
948
949void
950scm_alloc_cluster (scm_freelist_t *master)
951{
952 SCM freelist, cell;
953 cell = scm_gc_for_newcell (master, &freelist);
954 SCM_SETCDR (cell, freelist);
955 return cell;
956}
957#endif
958
801cb5e7
MD
959
960scm_c_hook_t scm_before_gc_c_hook;
961scm_c_hook_t scm_before_mark_c_hook;
962scm_c_hook_t scm_before_sweep_c_hook;
963scm_c_hook_t scm_after_sweep_c_hook;
964scm_c_hook_t scm_after_gc_c_hook;
965
b6efc951 966
0f2d19dd 967void
1bbd0b84 968scm_igc (const char *what)
0f2d19dd
JB
969{
970 int j;
971
406c7d90 972 ++scm_gc_running_p;
801cb5e7 973 scm_c_hook_run (&scm_before_gc_c_hook, 0);
4c48ba06
MD
974#ifdef DEBUGINFO
975 fprintf (stderr,
976 SCM_NULLP (scm_freelist)
977 ? "*"
978 : (SCM_NULLP (scm_freelist2) ? "o" : "m"));
979#endif
42db06f0
MD
980#ifdef USE_THREADS
981 /* During the critical section, only the current thread may run. */
982 SCM_THREAD_CRITICAL_SECTION_START;
983#endif
984
e242dfd2 985 /* fprintf (stderr, "gc: %s\n", what); */
c68296f8 986
ab4bef85
JB
987 if (!scm_stack_base || scm_block_gc)
988 {
406c7d90 989 --scm_gc_running_p;
ab4bef85
JB
990 return;
991 }
992
c9b0d4b0
ML
993 gc_start_stats (what);
994
a5c314c8
JB
995 if (scm_mallocated < 0)
996 /* The byte count of allocated objects has underflowed. This is
997 probably because you forgot to report the sizes of objects you
998 have allocated, by calling scm_done_malloc or some such. When
999 the GC freed them, it subtracted their size from
1000 scm_mallocated, which underflowed. */
1001 abort ();
c45acc34 1002
ab4bef85
JB
1003 if (scm_gc_heap_lock)
1004 /* We've invoked the collector while a GC is already in progress.
1005 That should never happen. */
1006 abort ();
0f2d19dd
JB
1007
1008 ++scm_gc_heap_lock;
ab4bef85 1009
0f2d19dd
JB
1010 /* flush dead entries from the continuation stack */
1011 {
1012 int x;
1013 int bound;
1014 SCM * elts;
1015 elts = SCM_VELTS (scm_continuation_stack);
1016 bound = SCM_LENGTH (scm_continuation_stack);
1017 x = SCM_INUM (scm_continuation_stack_ptr);
1018 while (x < bound)
1019 {
1020 elts[x] = SCM_BOOL_F;
1021 ++x;
1022 }
1023 }
1024
801cb5e7
MD
1025 scm_c_hook_run (&scm_before_mark_c_hook, 0);
1026
d6884e63
ML
1027 clear_mark_space ();
1028
42db06f0 1029#ifndef USE_THREADS
a00c95d9 1030
0f2d19dd
JB
1031 /* Protect from the C stack. This must be the first marking
1032 * done because it provides information about what objects
1033 * are "in-use" by the C code. "in-use" objects are those
1034 * for which the values from SCM_LENGTH and SCM_CHARS must remain
1035 * usable. This requirement is stricter than a liveness
1036 * requirement -- in particular, it constrains the implementation
1037 * of scm_vector_set_length_x.
1038 */
1039 SCM_FLUSH_REGISTER_WINDOWS;
1040 /* This assumes that all registers are saved into the jmp_buf */
1041 setjmp (scm_save_regs_gc_mark);
1042 scm_mark_locations ((SCM_STACKITEM *) scm_save_regs_gc_mark,
ce4a361d
JB
1043 ( (scm_sizet) (sizeof (SCM_STACKITEM) - 1 +
1044 sizeof scm_save_regs_gc_mark)
1045 / sizeof (SCM_STACKITEM)));
0f2d19dd
JB
1046
1047 {
6ba93e5e 1048 scm_sizet stack_len = scm_stack_size (scm_stack_base);
0f2d19dd 1049#ifdef SCM_STACK_GROWS_UP
6ba93e5e 1050 scm_mark_locations (scm_stack_base, stack_len);
0f2d19dd 1051#else
6ba93e5e 1052 scm_mark_locations (scm_stack_base - stack_len, stack_len);
0f2d19dd
JB
1053#endif
1054 }
1055
42db06f0
MD
1056#else /* USE_THREADS */
1057
1058 /* Mark every thread's stack and registers */
945fec60 1059 scm_threads_mark_stacks ();
42db06f0
MD
1060
1061#endif /* USE_THREADS */
0f2d19dd
JB
1062
1063 /* FIXME: insert a phase to un-protect string-data preserved
1064 * in scm_vector_set_length_x.
1065 */
1066
1067 j = SCM_NUM_PROTECTS;
1068 while (j--)
1069 scm_gc_mark (scm_sys_protects[j]);
1070
9de33deb
MD
1071 /* FIXME: we should have a means to register C functions to be run
1072 * in different phases of GC
a00c95d9 1073 */
9de33deb 1074 scm_mark_subr_table ();
a00c95d9 1075
42db06f0
MD
1076#ifndef USE_THREADS
1077 scm_gc_mark (scm_root->handle);
1078#endif
a00c95d9 1079
c9b0d4b0
ML
1080 t_before_sweep = scm_c_get_internal_run_time ();
1081 scm_gc_mark_time_taken += (t_before_sweep - t_before_gc);
1082
801cb5e7 1083 scm_c_hook_run (&scm_before_sweep_c_hook, 0);
0493cd89 1084
0f2d19dd
JB
1085 scm_gc_sweep ();
1086
801cb5e7
MD
1087 scm_c_hook_run (&scm_after_sweep_c_hook, 0);
1088
0f2d19dd 1089 --scm_gc_heap_lock;
c9b0d4b0 1090 gc_end_stats ();
42db06f0
MD
1091
1092#ifdef USE_THREADS
1093 SCM_THREAD_CRITICAL_SECTION_END;
1094#endif
801cb5e7 1095 scm_c_hook_run (&scm_after_gc_c_hook, 0);
406c7d90 1096 --scm_gc_running_p;
0f2d19dd
JB
1097}
1098
1099\f
939794ce 1100
a00c95d9 1101/* {Mark/Sweep}
0f2d19dd
JB
1102 */
1103
1104
1105
1106/* Mark an object precisely.
1107 */
a00c95d9 1108void
1bbd0b84 1109scm_gc_mark (SCM p)
acf4331f 1110#define FUNC_NAME "scm_gc_mark"
0f2d19dd
JB
1111{
1112 register long i;
1113 register SCM ptr;
1114
1115 ptr = p;
1116
1117gc_mark_loop:
1118 if (SCM_IMP (ptr))
1119 return;
1120
1121gc_mark_nimp:
3f5d82cd 1122 if (!SCM_CELLP (ptr))
acf4331f 1123 SCM_MISC_ERROR ("rogue pointer in heap", SCM_EOL);
0f2d19dd 1124
d6884e63
ML
1125#if (defined (GUILE_DEBUG) || defined (GUILE_DEBUG_FREELIST))
1126
1127 if (SCM_GC_IN_CARD_HEADERP (SCM2PTR (ptr)))
1128 scm_wta (ptr, "rogue pointer in heap", NULL);
1129
1130#endif
1131
1132 if (SCM_GCMARKP (ptr))
1133 return;
1134
1135 SCM_SETGCMARK (ptr);
1136
0f2d19dd
JB
1137 switch (SCM_TYP7 (ptr))
1138 {
1139 case scm_tcs_cons_nimcar:
d6884e63 1140 if (SCM_IMP (SCM_CDR (ptr)))
0f2d19dd
JB
1141 {
1142 ptr = SCM_CAR (ptr);
1143 goto gc_mark_nimp;
1144 }
1145 scm_gc_mark (SCM_CAR (ptr));
d6884e63 1146 ptr = SCM_CDR (ptr);
0f2d19dd
JB
1147 goto gc_mark_nimp;
1148 case scm_tcs_cons_imcar:
d6884e63 1149 ptr = SCM_CDR (ptr);
acb0a19c 1150 goto gc_mark_loop;
e641afaf 1151 case scm_tc7_pws:
54778cd3 1152 scm_gc_mark (SCM_CELL_OBJECT_2 (ptr));
d6884e63 1153 ptr = SCM_CDR (ptr);
0f2d19dd
JB
1154 goto gc_mark_loop;
1155 case scm_tcs_cons_gloc:
0f2d19dd 1156 {
c8045e8d
DH
1157 /* Dirk:FIXME:: The following code is super ugly: ptr may be a struct
1158 * or a gloc. If it is a gloc, the cell word #0 of ptr is a pointer
1159 * to a heap cell. If it is a struct, the cell word #0 of ptr is a
1160 * pointer to a struct vtable data region. The fact that these are
1161 * accessed in the same way restricts the possibilites to change the
9d47a1e6 1162 * data layout of structs or heap cells.
c8045e8d
DH
1163 */
1164 scm_bits_t word0 = SCM_CELL_WORD_0 (ptr) - scm_tc3_cons_gloc;
1165 scm_bits_t * vtable_data = (scm_bits_t *) word0; /* access as struct */
7445e0e8 1166 if (vtable_data [scm_vtable_index_vcell] != 0)
0f2d19dd 1167 {
d6884e63
ML
1168 /* ptr is a gloc */
1169 SCM gloc_car = SCM_PACK (word0);
1170 scm_gc_mark (gloc_car);
1171 ptr = SCM_CDR (ptr);
1172 goto gc_mark_loop;
1173 }
1174 else
1175 {
1176 /* ptr is a struct */
1177 SCM layout = SCM_PACK (vtable_data [scm_vtable_index_layout]);
1178 int len = SCM_LENGTH (layout);
1179 char * fields_desc = SCM_CHARS (layout);
1180 scm_bits_t * struct_data = (scm_bits_t *) SCM_STRUCT_DATA (ptr);
7bb8eac7 1181
d6884e63
ML
1182 if (vtable_data[scm_struct_i_flags] & SCM_STRUCTF_ENTITY)
1183 {
1184 scm_gc_mark (SCM_PACK (struct_data[scm_struct_i_procedure]));
1185 scm_gc_mark (SCM_PACK (struct_data[scm_struct_i_setter]));
1186 }
1187 if (len)
1188 {
1189 int x;
7bb8eac7 1190
d6884e63
ML
1191 for (x = 0; x < len - 2; x += 2, ++struct_data)
1192 if (fields_desc[x] == 'p')
1193 scm_gc_mark (SCM_PACK (*struct_data));
1194 if (fields_desc[x] == 'p')
1195 {
1196 if (SCM_LAYOUT_TAILP (fields_desc[x + 1]))
1197 for (x = *struct_data; x; --x)
1198 scm_gc_mark (SCM_PACK (*++struct_data));
1199 else
1200 scm_gc_mark (SCM_PACK (*struct_data));
1201 }
1202 }
1203 /* mark vtable */
1204 ptr = SCM_PACK (vtable_data [scm_vtable_index_vtable]);
1205 goto gc_mark_loop;
0f2d19dd
JB
1206 }
1207 }
1208 break;
1209 case scm_tcs_closures:
0f2d19dd
JB
1210 if (SCM_IMP (SCM_CDR (ptr)))
1211 {
1212 ptr = SCM_CLOSCAR (ptr);
1213 goto gc_mark_nimp;
1214 }
1215 scm_gc_mark (SCM_CLOSCAR (ptr));
d6884e63 1216 ptr = SCM_CDR (ptr);
0f2d19dd
JB
1217 goto gc_mark_nimp;
1218 case scm_tc7_vector:
1219 case scm_tc7_lvector:
1220#ifdef CCLO
1221 case scm_tc7_cclo:
1222#endif
0f2d19dd
JB
1223 i = SCM_LENGTH (ptr);
1224 if (i == 0)
1225 break;
1226 while (--i > 0)
1227 if (SCM_NIMP (SCM_VELTS (ptr)[i]))
1228 scm_gc_mark (SCM_VELTS (ptr)[i]);
1229 ptr = SCM_VELTS (ptr)[0];
1230 goto gc_mark_loop;
1231 case scm_tc7_contin:
c68296f8 1232 if (SCM_VELTS (ptr))
41b0806d 1233 scm_mark_locations (SCM_VELTS_AS_STACKITEMS (ptr),
c68296f8
MV
1234 (scm_sizet)
1235 (SCM_LENGTH (ptr) +
1236 (sizeof (SCM_STACKITEM) + -1 +
1237 sizeof (scm_contregs)) /
1238 sizeof (SCM_STACKITEM)));
0f2d19dd 1239 break;
afe5177e 1240#ifdef HAVE_ARRAYS
0f2d19dd
JB
1241 case scm_tc7_bvect:
1242 case scm_tc7_byvect:
1243 case scm_tc7_ivect:
1244 case scm_tc7_uvect:
1245 case scm_tc7_fvect:
1246 case scm_tc7_dvect:
1247 case scm_tc7_cvect:
1248 case scm_tc7_svect:
5c11cc9d 1249#ifdef HAVE_LONG_LONGS
0f2d19dd
JB
1250 case scm_tc7_llvect:
1251#endif
afe5177e 1252#endif
0f2d19dd 1253 case scm_tc7_string:
0f2d19dd
JB
1254 break;
1255
1256 case scm_tc7_substring:
0f2d19dd
JB
1257 ptr = SCM_CDR (ptr);
1258 goto gc_mark_loop;
1259
1260 case scm_tc7_wvect:
ab4bef85
JB
1261 SCM_WVECT_GC_CHAIN (ptr) = scm_weak_vectors;
1262 scm_weak_vectors = ptr;
0f2d19dd
JB
1263 if (SCM_IS_WHVEC_ANY (ptr))
1264 {
1265 int x;
1266 int len;
1267 int weak_keys;
1268 int weak_values;
1269
1270 len = SCM_LENGTH (ptr);
1271 weak_keys = SCM_IS_WHVEC (ptr) || SCM_IS_WHVEC_B (ptr);
1272 weak_values = SCM_IS_WHVEC_V (ptr) || SCM_IS_WHVEC_B (ptr);
a00c95d9 1273
0f2d19dd
JB
1274 for (x = 0; x < len; ++x)
1275 {
1276 SCM alist;
1277 alist = SCM_VELTS (ptr)[x];
46408039
JB
1278
1279 /* mark everything on the alist except the keys or
1280 * values, according to weak_values and weak_keys. */
0b5f3f34 1281 while ( SCM_CONSP (alist)
0f2d19dd 1282 && !SCM_GCMARKP (alist)
0f2d19dd
JB
1283 && SCM_CONSP (SCM_CAR (alist)))
1284 {
1285 SCM kvpair;
1286 SCM next_alist;
1287
1288 kvpair = SCM_CAR (alist);
1289 next_alist = SCM_CDR (alist);
a00c95d9 1290 /*
0f2d19dd
JB
1291 * Do not do this:
1292 * SCM_SETGCMARK (alist);
1293 * SCM_SETGCMARK (kvpair);
1294 *
1295 * It may be that either the key or value is protected by
1296 * an escaped reference to part of the spine of this alist.
1297 * If we mark the spine here, and only mark one or neither of the
1298 * key and value, they may never be properly marked.
1299 * This leads to a horrible situation in which an alist containing
1300 * freelist cells is exported.
1301 *
1302 * So only mark the spines of these arrays last of all marking.
1303 * If somebody confuses us by constructing a weak vector
1304 * with a circular alist then we are hosed, but at least we
1305 * won't prematurely drop table entries.
1306 */
1307 if (!weak_keys)
1308 scm_gc_mark (SCM_CAR (kvpair));
1309 if (!weak_values)
d6884e63 1310 scm_gc_mark (SCM_CDR (kvpair));
0f2d19dd
JB
1311 alist = next_alist;
1312 }
1313 if (SCM_NIMP (alist))
1314 scm_gc_mark (alist);
1315 }
1316 }
1317 break;
1318
1319 case scm_tc7_msymbol:
0f2d19dd
JB
1320 scm_gc_mark (SCM_SYMBOL_FUNC (ptr));
1321 ptr = SCM_SYMBOL_PROPS (ptr);
1322 goto gc_mark_loop;
1323 case scm_tc7_ssymbol:
0f2d19dd 1324 case scm_tcs_subrs:
9de33deb 1325 break;
0f2d19dd
JB
1326 case scm_tc7_port:
1327 i = SCM_PTOBNUM (ptr);
1328 if (!(i < scm_numptob))
1329 goto def;
ebf7394e
GH
1330 if (SCM_PTAB_ENTRY(ptr))
1331 scm_gc_mark (SCM_PTAB_ENTRY(ptr)->file_name);
dc53f026
JB
1332 if (scm_ptobs[i].mark)
1333 {
1334 ptr = (scm_ptobs[i].mark) (ptr);
1335 goto gc_mark_loop;
1336 }
1337 else
1338 return;
0f2d19dd
JB
1339 break;
1340 case scm_tc7_smob:
d6884e63 1341 switch (SCM_TYP16 (ptr))
0f2d19dd
JB
1342 { /* should be faster than going through scm_smobs */
1343 case scm_tc_free_cell:
1344 /* printf("found free_cell %X ", ptr); fflush(stdout); */
1bbd0b84 1345 case scm_tc16_allocated:
acb0a19c
MD
1346 case scm_tc16_big:
1347 case scm_tc16_real:
1348 case scm_tc16_complex:
0f2d19dd
JB
1349 break;
1350 default:
1351 i = SCM_SMOBNUM (ptr);
1352 if (!(i < scm_numsmob))
1353 goto def;
dc53f026
JB
1354 if (scm_smobs[i].mark)
1355 {
1356 ptr = (scm_smobs[i].mark) (ptr);
1357 goto gc_mark_loop;
1358 }
1359 else
1360 return;
0f2d19dd
JB
1361 }
1362 break;
1363 default:
acf4331f
DH
1364 def:
1365 SCM_MISC_ERROR ("unknown type", SCM_EOL);
0f2d19dd
JB
1366 }
1367}
acf4331f 1368#undef FUNC_NAME
0f2d19dd
JB
1369
1370
1371/* Mark a Region Conservatively
1372 */
1373
a00c95d9 1374void
6e8d25a6 1375scm_mark_locations (SCM_STACKITEM x[], scm_sizet n)
0f2d19dd 1376{
c4da09e2 1377 unsigned long m;
0f2d19dd 1378
c4da09e2
DH
1379 for (m = 0; m < n; ++m)
1380 {
1381 SCM obj = * (SCM *) &x[m];
1382 if (SCM_CELLP (obj))
1383 {
1384 SCM_CELLPTR ptr = SCM2PTR (obj);
1385 int i = 0;
1386 int j = scm_n_heap_segs - 1;
1387 if (SCM_PTR_LE (scm_heap_table[i].bounds[0], ptr)
1388 && SCM_PTR_GT (scm_heap_table[j].bounds[1], ptr))
1389 {
1390 while (i <= j)
1391 {
1392 int seg_id;
1393 seg_id = -1;
1394 if ((i == j)
1395 || SCM_PTR_GT (scm_heap_table[i].bounds[1], ptr))
1396 seg_id = i;
1397 else if (SCM_PTR_LE (scm_heap_table[j].bounds[0], ptr))
1398 seg_id = j;
1399 else
1400 {
1401 int k;
1402 k = (i + j) / 2;
1403 if (k == i)
1404 break;
1405 if (SCM_PTR_GT (scm_heap_table[k].bounds[1], ptr))
1406 {
1407 j = k;
1408 ++i;
1409 if (SCM_PTR_LE (scm_heap_table[i].bounds[0], ptr))
1410 continue;
1411 else
1412 break;
1413 }
1414 else if (SCM_PTR_LE (scm_heap_table[k].bounds[0], ptr))
1415 {
1416 i = k;
1417 --j;
1418 if (SCM_PTR_GT (scm_heap_table[j].bounds[1], ptr))
1419 continue;
1420 else
1421 break;
1422 }
1423 }
7bb8eac7 1424
d6884e63
ML
1425 if (SCM_GC_IN_CARD_HEADERP (ptr))
1426 break;
7bb8eac7 1427
c4da09e2
DH
1428 if (scm_heap_table[seg_id].span == 1
1429 || SCM_DOUBLE_CELLP (obj))
406c7d90
DH
1430 {
1431 if (!SCM_FREE_CELL_P (obj))
1432 scm_gc_mark (obj);
1433 }
c4da09e2
DH
1434 break;
1435 }
1436 }
1437 }
1438 }
0f2d19dd
JB
1439}
1440
1441
1a548472
DH
1442/* The function scm_cellp determines whether an SCM value can be regarded as a
1443 * pointer to a cell on the heap. Binary search is used in order to determine
1444 * the heap segment that contains the cell.
1445 */
2e11a577 1446int
6e8d25a6 1447scm_cellp (SCM value)
2e11a577 1448{
1a548472
DH
1449 if (SCM_CELLP (value)) {
1450 scm_cell * ptr = SCM2PTR (value);
1451 unsigned int i = 0;
1452 unsigned int j = scm_n_heap_segs - 1;
1453
1454 while (i < j) {
1455 int k = (i + j) / 2;
1456 if (SCM_PTR_GT (scm_heap_table[k].bounds[1], ptr)) {
1457 j = k;
1458 } else if (SCM_PTR_LE (scm_heap_table[k].bounds[0], ptr)) {
1459 i = k + 1;
1460 }
1461 }
2e11a577 1462
9d47a1e6 1463 if (SCM_PTR_LE (scm_heap_table[i].bounds[0], ptr)
1a548472 1464 && SCM_PTR_GT (scm_heap_table[i].bounds[1], ptr)
d6884e63
ML
1465 && (scm_heap_table[i].span == 1 || SCM_DOUBLE_CELLP (value))
1466 && !SCM_GC_IN_CARD_HEADERP (ptr)
1467 )
1a548472 1468 return 1;
d6884e63 1469 else
1a548472 1470 return 0;
d6884e63 1471 } else
1a548472 1472 return 0;
2e11a577
MD
1473}
1474
1475
4c48ba06
MD
1476static void
1477gc_sweep_freelist_start (scm_freelist_t *freelist)
1478{
1479 freelist->cells = SCM_EOL;
1480 freelist->left_to_collect = freelist->cluster_size;
b37fe1c5 1481 freelist->clusters_allocated = 0;
4c48ba06
MD
1482 freelist->clusters = SCM_EOL;
1483 freelist->clustertail = &freelist->clusters;
1811ebce 1484 freelist->collected_1 = freelist->collected;
4c48ba06
MD
1485 freelist->collected = 0;
1486}
1487
1488static void
1489gc_sweep_freelist_finish (scm_freelist_t *freelist)
1490{
1811ebce 1491 int collected;
4c48ba06 1492 *freelist->clustertail = freelist->cells;
3f5d82cd 1493 if (!SCM_NULLP (freelist->cells))
4c48ba06
MD
1494 {
1495 SCM c = freelist->cells;
1496 SCM_SETCAR (c, SCM_CDR (c));
1497 SCM_SETCDR (c, SCM_EOL);
1498 freelist->collected +=
1499 freelist->span * (freelist->cluster_size - freelist->left_to_collect);
1500 }
b37fe1c5 1501 scm_gc_cells_collected += freelist->collected;
a00c95d9 1502
8fef55a8 1503 /* Although freelist->min_yield is used to test freelist->collected
7dbff8b1 1504 * (which is the local GC yield for freelist), it is adjusted so
8fef55a8 1505 * that *total* yield is freelist->min_yield_fraction of total heap
7dbff8b1
MD
1506 * size. This means that a too low yield is compensated by more
1507 * heap on the list which is currently doing most work, which is
1508 * just what we want.
1509 */
1811ebce 1510 collected = SCM_MAX (freelist->collected_1, freelist->collected);
8fef55a8 1511 freelist->grow_heap_p = (collected < freelist->min_yield);
4c48ba06 1512}
0f2d19dd 1513
d6884e63
ML
1514#define NEXT_DATA_CELL(ptr, span) \
1515 do { \
1516 scm_cell *nxt__ = CELL_UP ((char *) (ptr) + 1, (span)); \
1517 (ptr) = (SCM_GC_IN_CARD_HEADERP (nxt__) ? \
1518 CELL_UP (SCM_GC_CELL_CARD (nxt__) + SCM_GC_CARD_N_HEADER_CELLS, span) \
1519 : nxt__); \
1520 } while (0)
1521
a00c95d9 1522void
0f2d19dd 1523scm_gc_sweep ()
acf4331f 1524#define FUNC_NAME "scm_gc_sweep"
0f2d19dd
JB
1525{
1526 register SCM_CELLPTR ptr;
0f2d19dd 1527 register SCM nfreelist;
4c48ba06 1528 register scm_freelist_t *freelist;
0f2d19dd 1529 register long m;
0f2d19dd 1530 register int span;
15e9d186 1531 long i;
0f2d19dd
JB
1532 scm_sizet seg_size;
1533
0f2d19dd 1534 m = 0;
0f2d19dd 1535
4c48ba06
MD
1536 gc_sweep_freelist_start (&scm_master_freelist);
1537 gc_sweep_freelist_start (&scm_master_freelist2);
a00c95d9 1538
cf2d30f6 1539 for (i = 0; i < scm_n_heap_segs; i++)
0f2d19dd 1540 {
4c48ba06 1541 register unsigned int left_to_collect;
4c48ba06 1542 register scm_sizet j;
15e9d186 1543
cf2d30f6
JB
1544 /* Unmarked cells go onto the front of the freelist this heap
1545 segment points to. Rather than updating the real freelist
1546 pointer as we go along, we accumulate the new head in
1547 nfreelist. Then, if it turns out that the entire segment is
1548 free, we free (i.e., malloc's free) the whole segment, and
1549 simply don't assign nfreelist back into the real freelist. */
4c48ba06
MD
1550 freelist = scm_heap_table[i].freelist;
1551 nfreelist = freelist->cells;
4c48ba06 1552 left_to_collect = freelist->left_to_collect;
945fec60 1553 span = scm_heap_table[i].span;
cf2d30f6 1554
a00c95d9
ML
1555 ptr = CELL_UP (scm_heap_table[i].bounds[0], span);
1556 seg_size = CELL_DN (scm_heap_table[i].bounds[1], span) - ptr;
c9b0d4b0 1557
d6884e63
ML
1558 /* use only data cells in seg_size */
1559 seg_size = (seg_size / SCM_GC_CARD_N_CELLS) * (SCM_GC_CARD_N_DATA_CELLS / span) * span;
1560
c9b0d4b0
ML
1561 scm_gc_cells_swept += seg_size;
1562
0f2d19dd
JB
1563 for (j = seg_size + span; j -= span; ptr += span)
1564 {
d6884e63 1565 SCM scmptr;
96f6f4ae 1566
d6884e63 1567 if (SCM_GC_IN_CARD_HEADERP (ptr))
0f2d19dd 1568 {
d6884e63
ML
1569 SCM_CELLPTR nxt;
1570
1571 /* cheat here */
1572 nxt = ptr;
1573 NEXT_DATA_CELL (nxt, span);
1574 j += span;
1575
1576 ptr = nxt - span;
1577 continue;
1578 }
1579
1580 scmptr = PTR2SCM (ptr);
1581
1582 if (SCM_GCMARKP (scmptr))
1583 continue;
7bb8eac7 1584
d6884e63
ML
1585 switch SCM_TYP7 (scmptr)
1586 {
0f2d19dd 1587 case scm_tcs_cons_gloc:
0f2d19dd 1588 {
c8045e8d
DH
1589 /* Dirk:FIXME:: Again, super ugly code: scmptr may be a
1590 * struct or a gloc. See the corresponding comment in
1591 * scm_gc_mark.
1592 */
7445e0e8
MD
1593 scm_bits_t word0 = (SCM_CELL_WORD_0 (scmptr)
1594 - scm_tc3_cons_gloc);
1595 /* access as struct */
1596 scm_bits_t * vtable_data = (scm_bits_t *) word0;
d6884e63 1597 if (vtable_data[scm_vtable_index_vcell] == 0)
0f2d19dd 1598 {
7445e0e8
MD
1599 /* Structs need to be freed in a special order.
1600 * This is handled by GC C hooks in struct.c.
1601 */
1602 SCM_SET_STRUCT_GC_CHAIN (scmptr, scm_structs_to_free);
1603 scm_structs_to_free = scmptr;
7bb8eac7 1604 continue;
c8045e8d 1605 }
7445e0e8 1606 /* fall through so that scmptr gets collected */
0f2d19dd
JB
1607 }
1608 break;
1609 case scm_tcs_cons_imcar:
1610 case scm_tcs_cons_nimcar:
1611 case scm_tcs_closures:
e641afaf 1612 case scm_tc7_pws:
0f2d19dd
JB
1613 break;
1614 case scm_tc7_wvect:
d6884e63
ML
1615 m += (2 + SCM_LENGTH (scmptr)) * sizeof (SCM);
1616 scm_must_free ((char *)(SCM_VELTS (scmptr) - 2));
1617 break;
0f2d19dd
JB
1618 case scm_tc7_vector:
1619 case scm_tc7_lvector:
1620#ifdef CCLO
1621 case scm_tc7_cclo:
1622#endif
0f2d19dd
JB
1623 m += (SCM_LENGTH (scmptr) * sizeof (SCM));
1624 freechars:
1625 scm_must_free (SCM_CHARS (scmptr));
1626 /* SCM_SETCHARS(scmptr, 0);*/
1627 break;
afe5177e 1628#ifdef HAVE_ARRAYS
0f2d19dd 1629 case scm_tc7_bvect:
0f2d19dd
JB
1630 m += sizeof (long) * ((SCM_HUGE_LENGTH (scmptr) + SCM_LONG_BIT - 1) / SCM_LONG_BIT);
1631 goto freechars;
1632 case scm_tc7_byvect:
0f2d19dd
JB
1633 m += SCM_HUGE_LENGTH (scmptr) * sizeof (char);
1634 goto freechars;
1635 case scm_tc7_ivect:
1636 case scm_tc7_uvect:
0f2d19dd
JB
1637 m += SCM_HUGE_LENGTH (scmptr) * sizeof (long);
1638 goto freechars;
1639 case scm_tc7_svect:
0f2d19dd
JB
1640 m += SCM_HUGE_LENGTH (scmptr) * sizeof (short);
1641 goto freechars;
5c11cc9d 1642#ifdef HAVE_LONG_LONGS
0f2d19dd 1643 case scm_tc7_llvect:
0f2d19dd
JB
1644 m += SCM_HUGE_LENGTH (scmptr) * sizeof (long_long);
1645 goto freechars;
1646#endif
1647 case scm_tc7_fvect:
0f2d19dd
JB
1648 m += SCM_HUGE_LENGTH (scmptr) * sizeof (float);
1649 goto freechars;
1650 case scm_tc7_dvect:
0f2d19dd
JB
1651 m += SCM_HUGE_LENGTH (scmptr) * sizeof (double);
1652 goto freechars;
1653 case scm_tc7_cvect:
0f2d19dd
JB
1654 m += SCM_HUGE_LENGTH (scmptr) * 2 * sizeof (double);
1655 goto freechars;
afe5177e 1656#endif
0f2d19dd 1657 case scm_tc7_substring:
0f2d19dd
JB
1658 break;
1659 case scm_tc7_string:
0f2d19dd
JB
1660 m += SCM_HUGE_LENGTH (scmptr) + 1;
1661 goto freechars;
1662 case scm_tc7_msymbol:
cf551a2b
DH
1663 m += (SCM_LENGTH (scmptr) + 1
1664 + (SCM_CHARS (scmptr) - (char *) SCM_SLOTS (scmptr)));
0f2d19dd
JB
1665 scm_must_free ((char *)SCM_SLOTS (scmptr));
1666 break;
1667 case scm_tc7_contin:
0db18cf4 1668 m += SCM_LENGTH (scmptr) * sizeof (SCM_STACKITEM) + sizeof (scm_contregs);
c68296f8
MV
1669 if (SCM_VELTS (scmptr))
1670 goto freechars;
0f2d19dd 1671 case scm_tc7_ssymbol:
0f2d19dd
JB
1672 break;
1673 case scm_tcs_subrs:
d6884e63 1674 /* the various "subrs" (primitives) are never freed */
0f2d19dd
JB
1675 continue;
1676 case scm_tc7_port:
0f2d19dd
JB
1677 if SCM_OPENP (scmptr)
1678 {
1679 int k = SCM_PTOBNUM (scmptr);
1680 if (!(k < scm_numptob))
1681 goto sweeperr;
1682 /* Keep "revealed" ports alive. */
945fec60 1683 if (scm_revealed_count (scmptr) > 0)
0f2d19dd
JB
1684 continue;
1685 /* Yes, I really do mean scm_ptobs[k].free */
1686 /* rather than ftobs[k].close. .close */
1687 /* is for explicit CLOSE-PORT by user */
84af0382 1688 m += (scm_ptobs[k].free) (scmptr);
0f2d19dd
JB
1689 SCM_SETSTREAM (scmptr, 0);
1690 scm_remove_from_port_table (scmptr);
1691 scm_gc_ports_collected++;
24e68a57 1692 SCM_SETAND_CAR (scmptr, ~SCM_OPN);
0f2d19dd
JB
1693 }
1694 break;
1695 case scm_tc7_smob:
d6884e63 1696 switch SCM_TYP16 (scmptr)
0f2d19dd
JB
1697 {
1698 case scm_tc_free_cell:
acb0a19c 1699 case scm_tc16_real:
0f2d19dd
JB
1700 break;
1701#ifdef SCM_BIGDIG
acb0a19c 1702 case scm_tc16_big:
0f2d19dd
JB
1703 m += (SCM_NUMDIGS (scmptr) * SCM_BITSPERDIG / SCM_CHAR_BIT);
1704 goto freechars;
1705#endif /* def SCM_BIGDIG */
acb0a19c 1706 case scm_tc16_complex:
acb0a19c
MD
1707 m += 2 * sizeof (double);
1708 goto freechars;
0f2d19dd 1709 default:
0f2d19dd
JB
1710 {
1711 int k;
1712 k = SCM_SMOBNUM (scmptr);
1713 if (!(k < scm_numsmob))
1714 goto sweeperr;
c8045e8d 1715 m += (scm_smobs[k].free) (scmptr);
0f2d19dd
JB
1716 break;
1717 }
1718 }
1719 break;
1720 default:
acf4331f
DH
1721 sweeperr:
1722 SCM_MISC_ERROR ("unknown type", SCM_EOL);
0f2d19dd 1723 }
7bb8eac7 1724
4c48ba06 1725 if (!--left_to_collect)
4a4c9785
MD
1726 {
1727 SCM_SETCAR (scmptr, nfreelist);
4c48ba06
MD
1728 *freelist->clustertail = scmptr;
1729 freelist->clustertail = SCM_CDRLOC (scmptr);
a00c95d9 1730
4a4c9785 1731 nfreelist = SCM_EOL;
4c48ba06
MD
1732 freelist->collected += span * freelist->cluster_size;
1733 left_to_collect = freelist->cluster_size;
4a4c9785
MD
1734 }
1735 else
4a4c9785
MD
1736 {
1737 /* Stick the new cell on the front of nfreelist. It's
1738 critical that we mark this cell as freed; otherwise, the
1739 conservative collector might trace it as some other type
1740 of object. */
54778cd3 1741 SCM_SET_CELL_TYPE (scmptr, scm_tc_free_cell);
3f5d82cd 1742 SCM_SET_FREE_CELL_CDR (scmptr, nfreelist);
4a4c9785
MD
1743 nfreelist = scmptr;
1744 }
0f2d19dd 1745 }
d6884e63 1746
0f2d19dd
JB
1747#ifdef GC_FREE_SEGMENTS
1748 if (n == seg_size)
1749 {
15e9d186
JB
1750 register long j;
1751
4c48ba06 1752 freelist->heap_size -= seg_size;
cf2d30f6
JB
1753 free ((char *) scm_heap_table[i].bounds[0]);
1754 scm_heap_table[i].bounds[0] = 0;
1755 for (j = i + 1; j < scm_n_heap_segs; j++)
0f2d19dd
JB
1756 scm_heap_table[j - 1] = scm_heap_table[j];
1757 scm_n_heap_segs -= 1;
cf2d30f6 1758 i--; /* We need to scan the segment just moved. */
0f2d19dd
JB
1759 }
1760 else
1761#endif /* ifdef GC_FREE_SEGMENTS */
4a4c9785
MD
1762 {
1763 /* Update the real freelist pointer to point to the head of
1764 the list of free cells we've built for this segment. */
4c48ba06 1765 freelist->cells = nfreelist;
4c48ba06 1766 freelist->left_to_collect = left_to_collect;
4a4c9785
MD
1767 }
1768
fca7547b 1769#ifdef GUILE_DEBUG_FREELIST
cf2d30f6
JB
1770 scm_map_free_list ();
1771#endif
4a4c9785 1772 }
a00c95d9 1773
4c48ba06
MD
1774 gc_sweep_freelist_finish (&scm_master_freelist);
1775 gc_sweep_freelist_finish (&scm_master_freelist2);
a00c95d9 1776
8ded62a3
MD
1777 /* When we move to POSIX threads private freelists should probably
1778 be GC-protected instead. */
1779 scm_freelist = SCM_EOL;
1780 scm_freelist2 = SCM_EOL;
a00c95d9 1781
b37fe1c5 1782 scm_cells_allocated = (SCM_HEAP_SIZE - scm_gc_cells_collected);
8b0d194f 1783 scm_gc_yield -= scm_cells_allocated;
0f2d19dd
JB
1784 scm_mallocated -= m;
1785 scm_gc_malloc_collected = m;
1786}
acf4331f 1787#undef FUNC_NAME
0f2d19dd
JB
1788
1789
1790\f
0f2d19dd
JB
1791/* {Front end to malloc}
1792 *
9d47a1e6
ML
1793 * scm_must_malloc, scm_must_realloc, scm_must_free, scm_done_malloc,
1794 * scm_done_free
0f2d19dd
JB
1795 *
1796 * These functions provide services comperable to malloc, realloc, and
1797 * free. They are for allocating malloced parts of scheme objects.
9d47a1e6 1798 * The primary purpose of the front end is to impose calls to gc. */
0f2d19dd 1799
bc9d9bb2 1800
0f2d19dd
JB
1801/* scm_must_malloc
1802 * Return newly malloced storage or throw an error.
1803 *
1804 * The parameter WHAT is a string for error reporting.
a00c95d9 1805 * If the threshold scm_mtrigger will be passed by this
0f2d19dd
JB
1806 * allocation, or if the first call to malloc fails,
1807 * garbage collect -- on the presumption that some objects
1808 * using malloced storage may be collected.
1809 *
1810 * The limit scm_mtrigger may be raised by this allocation.
1811 */
07806695 1812void *
e4ef2330 1813scm_must_malloc (scm_sizet size, const char *what)
0f2d19dd 1814{
07806695 1815 void *ptr;
15e9d186 1816 unsigned long nm = scm_mallocated + size;
e4ef2330
MD
1817
1818 if (nm <= scm_mtrigger)
0f2d19dd 1819 {
07806695 1820 SCM_SYSCALL (ptr = malloc (size));
0f2d19dd
JB
1821 if (NULL != ptr)
1822 {
1823 scm_mallocated = nm;
bc9d9bb2
MD
1824#ifdef GUILE_DEBUG_MALLOC
1825 scm_malloc_register (ptr, what);
1826#endif
0f2d19dd
JB
1827 return ptr;
1828 }
1829 }
6064dcc6 1830
0f2d19dd 1831 scm_igc (what);
e4ef2330 1832
0f2d19dd 1833 nm = scm_mallocated + size;
07806695 1834 SCM_SYSCALL (ptr = malloc (size));
0f2d19dd
JB
1835 if (NULL != ptr)
1836 {
1837 scm_mallocated = nm;
6064dcc6
MV
1838 if (nm > scm_mtrigger - SCM_MTRIGGER_HYSTERESIS) {
1839 if (nm > scm_mtrigger)
1840 scm_mtrigger = nm + nm / 2;
1841 else
1842 scm_mtrigger += scm_mtrigger / 2;
1843 }
bc9d9bb2
MD
1844#ifdef GUILE_DEBUG_MALLOC
1845 scm_malloc_register (ptr, what);
1846#endif
1847
0f2d19dd
JB
1848 return ptr;
1849 }
e4ef2330 1850
acf4331f 1851 scm_memory_error (what);
0f2d19dd
JB
1852}
1853
1854
1855/* scm_must_realloc
1856 * is similar to scm_must_malloc.
1857 */
07806695
JB
1858void *
1859scm_must_realloc (void *where,
e4ef2330
MD
1860 scm_sizet old_size,
1861 scm_sizet size,
3eeba8d4 1862 const char *what)
0f2d19dd 1863{
07806695 1864 void *ptr;
e4ef2330
MD
1865 scm_sizet nm = scm_mallocated + size - old_size;
1866
1867 if (nm <= scm_mtrigger)
0f2d19dd 1868 {
07806695 1869 SCM_SYSCALL (ptr = realloc (where, size));
0f2d19dd
JB
1870 if (NULL != ptr)
1871 {
1872 scm_mallocated = nm;
bc9d9bb2
MD
1873#ifdef GUILE_DEBUG_MALLOC
1874 scm_malloc_reregister (where, ptr, what);
1875#endif
0f2d19dd
JB
1876 return ptr;
1877 }
1878 }
e4ef2330 1879
0f2d19dd 1880 scm_igc (what);
e4ef2330
MD
1881
1882 nm = scm_mallocated + size - old_size;
07806695 1883 SCM_SYSCALL (ptr = realloc (where, size));
0f2d19dd
JB
1884 if (NULL != ptr)
1885 {
1886 scm_mallocated = nm;
6064dcc6
MV
1887 if (nm > scm_mtrigger - SCM_MTRIGGER_HYSTERESIS) {
1888 if (nm > scm_mtrigger)
1889 scm_mtrigger = nm + nm / 2;
1890 else
1891 scm_mtrigger += scm_mtrigger / 2;
1892 }
bc9d9bb2
MD
1893#ifdef GUILE_DEBUG_MALLOC
1894 scm_malloc_reregister (where, ptr, what);
1895#endif
0f2d19dd
JB
1896 return ptr;
1897 }
e4ef2330 1898
acf4331f 1899 scm_memory_error (what);
0f2d19dd
JB
1900}
1901
acf4331f 1902
a00c95d9 1903void
07806695 1904scm_must_free (void *obj)
acf4331f 1905#define FUNC_NAME "scm_must_free"
0f2d19dd 1906{
bc9d9bb2
MD
1907#ifdef GUILE_DEBUG_MALLOC
1908 scm_malloc_unregister (obj);
1909#endif
0f2d19dd
JB
1910 if (obj)
1911 free (obj);
1912 else
acf4331f 1913 SCM_MISC_ERROR ("freeing NULL pointer", SCM_EOL);
0f2d19dd 1914}
acf4331f
DH
1915#undef FUNC_NAME
1916
0f2d19dd 1917
c68296f8
MV
1918/* Announce that there has been some malloc done that will be freed
1919 * during gc. A typical use is for a smob that uses some malloced
1920 * memory but can not get it from scm_must_malloc (for whatever
1921 * reason). When a new object of this smob is created you call
1922 * scm_done_malloc with the size of the object. When your smob free
1923 * function is called, be sure to include this size in the return
9d47a1e6
ML
1924 * value.
1925 *
1926 * If you can't actually free the memory in the smob free function,
1927 * for whatever reason (like reference counting), you still can (and
1928 * should) report the amount of memory freed when you actually free it.
1929 * Do it by calling scm_done_malloc with the _negated_ size. Clever,
1930 * eh? Or even better, call scm_done_free. */
0f2d19dd 1931
c68296f8 1932void
6e8d25a6 1933scm_done_malloc (long size)
c68296f8
MV
1934{
1935 scm_mallocated += size;
1936
1937 if (scm_mallocated > scm_mtrigger)
1938 {
1939 scm_igc ("foreign mallocs");
1940 if (scm_mallocated > scm_mtrigger - SCM_MTRIGGER_HYSTERESIS)
1941 {
1942 if (scm_mallocated > scm_mtrigger)
1943 scm_mtrigger = scm_mallocated + scm_mallocated / 2;
1944 else
1945 scm_mtrigger += scm_mtrigger / 2;
1946 }
1947 }
1948}
1949
9d47a1e6
ML
1950void
1951scm_done_free (long size)
1952{
1953 scm_mallocated -= size;
1954}
1955
c68296f8
MV
1956
1957\f
0f2d19dd
JB
1958/* {Heap Segments}
1959 *
1960 * Each heap segment is an array of objects of a particular size.
1961 * Every segment has an associated (possibly shared) freelist.
1962 * A table of segment records is kept that records the upper and
1963 * lower extents of the segment; this is used during the conservative
1964 * phase of gc to identify probably gc roots (because they point
c68296f8 1965 * into valid segments at reasonable offsets). */
0f2d19dd
JB
1966
1967/* scm_expmem
1968 * is true if the first segment was smaller than INIT_HEAP_SEG.
1969 * If scm_expmem is set to one, subsequent segment allocations will
1970 * allocate segments of size SCM_EXPHEAP(scm_heap_size).
1971 */
1972int scm_expmem = 0;
1973
4c48ba06
MD
1974scm_sizet scm_max_segment_size;
1975
0f2d19dd
JB
1976/* scm_heap_org
1977 * is the lowest base address of any heap segment.
1978 */
1979SCM_CELLPTR scm_heap_org;
1980
a00c95d9 1981scm_heap_seg_data_t * scm_heap_table = 0;
b6efc951 1982static unsigned int heap_segment_table_size = 0;
0f2d19dd
JB
1983int scm_n_heap_segs = 0;
1984
0f2d19dd 1985/* init_heap_seg
d6884e63 1986 * initializes a new heap segment and returns the number of objects it contains.
0f2d19dd 1987 *
d6884e63
ML
1988 * The segment origin and segment size in bytes are input parameters.
1989 * The freelist is both input and output.
0f2d19dd 1990 *
d6884e63
ML
1991 * This function presumes that the scm_heap_table has already been expanded
1992 * to accomodate a new segment record and that the markbit space was reserved
1993 * for all the cards in this segment.
0f2d19dd
JB
1994 */
1995
d6884e63
ML
1996#define INIT_CARD(card, span) \
1997 do { \
1998 SCM_GC_CARD_BVEC (card) = get_bvec (); \
1999 if ((span) == 2) \
2000 SCM_GC_SET_CARD_DOUBLECELL (card); \
2001 } while (0)
0f2d19dd 2002
a00c95d9 2003static scm_sizet
4c48ba06 2004init_heap_seg (SCM_CELLPTR seg_org, scm_sizet size, scm_freelist_t *freelist)
0f2d19dd
JB
2005{
2006 register SCM_CELLPTR ptr;
0f2d19dd 2007 SCM_CELLPTR seg_end;
15e9d186 2008 int new_seg_index;
acb0a19c 2009 int n_new_cells;
4c48ba06 2010 int span = freelist->span;
a00c95d9 2011
0f2d19dd
JB
2012 if (seg_org == NULL)
2013 return 0;
2014
d6884e63
ML
2015 /* Align the begin ptr up.
2016 */
2017 ptr = SCM_GC_CARD_UP (seg_org);
acb0a19c 2018
a00c95d9 2019 /* Compute the ceiling on valid object pointers w/in this segment.
0f2d19dd 2020 */
d6884e63 2021 seg_end = SCM_GC_CARD_DOWN ((char *)seg_org + size);
0f2d19dd 2022
a00c95d9 2023 /* Find the right place and insert the segment record.
0f2d19dd
JB
2024 *
2025 */
2026 for (new_seg_index = 0;
2027 ( (new_seg_index < scm_n_heap_segs)
2028 && SCM_PTR_LE (scm_heap_table[new_seg_index].bounds[0], seg_org));
2029 new_seg_index++)
2030 ;
2031
2032 {
2033 int i;
2034 for (i = scm_n_heap_segs; i > new_seg_index; --i)
2035 scm_heap_table[i] = scm_heap_table[i - 1];
2036 }
a00c95d9 2037
0f2d19dd
JB
2038 ++scm_n_heap_segs;
2039
945fec60 2040 scm_heap_table[new_seg_index].span = span;
4c48ba06 2041 scm_heap_table[new_seg_index].freelist = freelist;
195e6201
DH
2042 scm_heap_table[new_seg_index].bounds[0] = ptr;
2043 scm_heap_table[new_seg_index].bounds[1] = seg_end;
0f2d19dd 2044
acb0a19c
MD
2045 /*n_new_cells*/
2046 n_new_cells = seg_end - ptr;
0f2d19dd 2047
4c48ba06 2048 freelist->heap_size += n_new_cells;
4a4c9785 2049
a00c95d9 2050 /* Partition objects in this segment into clusters */
4a4c9785
MD
2051 {
2052 SCM clusters;
2053 SCM *clusterp = &clusters;
4a4c9785 2054
d6884e63
ML
2055 NEXT_DATA_CELL (ptr, span);
2056 while (ptr < seg_end)
4a4c9785 2057 {
d6884e63
ML
2058 scm_cell *nxt = ptr;
2059 scm_cell *prv = NULL;
2060 scm_cell *last_card = NULL;
2061 int n_data_cells = (SCM_GC_CARD_N_DATA_CELLS / span) * SCM_CARDS_PER_CLUSTER - 1;
2062 NEXT_DATA_CELL(nxt, span);
4a4c9785 2063
4c48ba06
MD
2064 /* Allocate cluster spine
2065 */
4a4c9785 2066 *clusterp = PTR2SCM (ptr);
d6884e63 2067 SCM_SETCAR (*clusterp, PTR2SCM (nxt));
4a4c9785 2068 clusterp = SCM_CDRLOC (*clusterp);
d6884e63 2069 ptr = nxt;
a00c95d9 2070
d6884e63 2071 while (n_data_cells--)
4a4c9785 2072 {
d6884e63 2073 scm_cell *card = SCM_GC_CELL_CARD (ptr);
96f6f4ae 2074 SCM scmptr = PTR2SCM (ptr);
d6884e63
ML
2075 nxt = ptr;
2076 NEXT_DATA_CELL (nxt, span);
2077 prv = ptr;
2078
2079 if (card != last_card)
2080 {
2081 INIT_CARD (card, span);
2082 last_card = card;
2083 }
96f6f4ae 2084
54778cd3 2085 SCM_SET_CELL_TYPE (scmptr, scm_tc_free_cell);
d6884e63
ML
2086 SCM_SETCDR (scmptr, PTR2SCM (nxt));
2087
2088 ptr = nxt;
4a4c9785 2089 }
4c48ba06 2090
d6884e63 2091 SCM_SET_FREE_CELL_CDR (PTR2SCM (prv), SCM_EOL);
4a4c9785 2092 }
a00c95d9 2093
d6884e63
ML
2094 /* sanity check */
2095 {
2096 scm_cell *ref = seg_end;
2097 NEXT_DATA_CELL (ref, span);
2098 if (ref != ptr)
2099 /* [cmm] looks like the segment size doesn't divide cleanly by
2100 cluster size. bad cmm! */
2101 abort();
2102 }
2103
4a4c9785
MD
2104 /* Patch up the last cluster pointer in the segment
2105 * to join it to the input freelist.
2106 */
4c48ba06
MD
2107 *clusterp = freelist->clusters;
2108 freelist->clusters = clusters;
4a4c9785
MD
2109 }
2110
4c48ba06
MD
2111#ifdef DEBUGINFO
2112 fprintf (stderr, "H");
2113#endif
0f2d19dd 2114 return size;
0f2d19dd
JB
2115}
2116
a00c95d9
ML
2117static scm_sizet
2118round_to_cluster_size (scm_freelist_t *freelist, scm_sizet len)
2119{
2120 scm_sizet cluster_size_in_bytes = CLUSTER_SIZE_IN_BYTES (freelist);
2121
2122 return
2123 (len + cluster_size_in_bytes - 1) / cluster_size_in_bytes * cluster_size_in_bytes
2124 + ALIGNMENT_SLACK (freelist);
2125}
2126
a00c95d9 2127static void
b6efc951 2128alloc_some_heap (scm_freelist_t *freelist, policy_on_error error_policy)
acf4331f 2129#define FUNC_NAME "alloc_some_heap"
0f2d19dd 2130{
0f2d19dd 2131 SCM_CELLPTR ptr;
b37fe1c5 2132 long len;
a00c95d9 2133
9d47a1e6 2134 if (scm_gc_heap_lock)
b6efc951
DH
2135 {
2136 /* Critical code sections (such as the garbage collector) aren't
2137 * supposed to add heap segments.
2138 */
2139 fprintf (stderr, "alloc_some_heap: Can not extend locked heap.\n");
2140 abort ();
2141 }
0f2d19dd 2142
9d47a1e6 2143 if (scm_n_heap_segs == heap_segment_table_size)
b6efc951
DH
2144 {
2145 /* We have to expand the heap segment table to have room for the new
2146 * segment. Do not yet increment scm_n_heap_segs -- that is done by
2147 * init_heap_seg only if the allocation of the segment itself succeeds.
2148 */
2149 unsigned int new_table_size = scm_n_heap_segs + 1;
2150 size_t size = new_table_size * sizeof (scm_heap_seg_data_t);
2151 scm_heap_seg_data_t * new_heap_table;
2152
2153 SCM_SYSCALL (new_heap_table = ((scm_heap_seg_data_t *)
2154 realloc ((char *)scm_heap_table, size)));
2155 if (!new_heap_table)
2156 {
2157 if (error_policy == abort_on_error)
2158 {
2159 fprintf (stderr, "alloc_some_heap: Could not grow heap segment table.\n");
2160 abort ();
2161 }
2162 else
2163 {
2164 return;
2165 }
2166 }
2167 else
2168 {
2169 scm_heap_table = new_heap_table;
2170 heap_segment_table_size = new_table_size;
2171 }
2172 }
0f2d19dd 2173
0f2d19dd 2174 /* Pick a size for the new heap segment.
a00c95d9 2175 * The rule for picking the size of a segment is explained in
0f2d19dd
JB
2176 * gc.h
2177 */
4c48ba06 2178 {
1811ebce
MD
2179 /* Assure that the new segment is predicted to be large enough.
2180 *
2181 * New yield should at least equal GC fraction of new heap size, i.e.
2182 *
2183 * y + dh > f * (h + dh)
2184 *
2185 * y : yield
8fef55a8 2186 * f : min yield fraction
1811ebce
MD
2187 * h : heap size
2188 * dh : size of new heap segment
2189 *
2190 * This gives dh > (f * h - y) / (1 - f)
bda1446c 2191 */
8fef55a8 2192 int f = freelist->min_yield_fraction;
1811ebce
MD
2193 long h = SCM_HEAP_SIZE;
2194 long min_cells = (f * h - 100 * (long) scm_gc_yield) / (99 - f);
4c48ba06
MD
2195 len = SCM_EXPHEAP (freelist->heap_size);
2196#ifdef DEBUGINFO
2197 fprintf (stderr, "(%d < %d)", len, min_cells);
2198#endif
2199 if (len < min_cells)
1811ebce 2200 len = min_cells + freelist->cluster_size;
4c48ba06 2201 len *= sizeof (scm_cell);
1811ebce
MD
2202 /* force new sampling */
2203 freelist->collected = LONG_MAX;
4c48ba06 2204 }
a00c95d9 2205
4c48ba06
MD
2206 if (len > scm_max_segment_size)
2207 len = scm_max_segment_size;
0f2d19dd
JB
2208
2209 {
2210 scm_sizet smallest;
2211
a00c95d9 2212 smallest = CLUSTER_SIZE_IN_BYTES (freelist);
a00c95d9 2213
0f2d19dd 2214 if (len < smallest)
a00c95d9 2215 len = smallest;
0f2d19dd
JB
2216
2217 /* Allocate with decaying ambition. */
2218 while ((len >= SCM_MIN_HEAP_SEG_SIZE)
2219 && (len >= smallest))
2220 {
1811ebce 2221 scm_sizet rounded_len = round_to_cluster_size (freelist, len);
a00c95d9 2222 SCM_SYSCALL (ptr = (SCM_CELLPTR) malloc (rounded_len));
0f2d19dd
JB
2223 if (ptr)
2224 {
a00c95d9 2225 init_heap_seg (ptr, rounded_len, freelist);
0f2d19dd
JB
2226 return;
2227 }
2228 len /= 2;
2229 }
2230 }
2231
b6efc951
DH
2232 if (error_policy == abort_on_error)
2233 {
2234 fprintf (stderr, "alloc_some_heap: Could not grow heap.\n");
2235 abort ();
2236 }
0f2d19dd 2237}
acf4331f 2238#undef FUNC_NAME
0f2d19dd
JB
2239
2240
a00c95d9 2241SCM_DEFINE (scm_unhash_name, "unhash-name", 1, 0, 0,
1bbd0b84 2242 (SCM name),
b380b885 2243 "")
1bbd0b84 2244#define FUNC_NAME s_scm_unhash_name
0f2d19dd
JB
2245{
2246 int x;
2247 int bound;
3b3b36dd 2248 SCM_VALIDATE_SYMBOL (1,name);
0f2d19dd
JB
2249 SCM_DEFER_INTS;
2250 bound = scm_n_heap_segs;
2251 for (x = 0; x < bound; ++x)
2252 {
2253 SCM_CELLPTR p;
2254 SCM_CELLPTR pbound;
195e6201
DH
2255 p = scm_heap_table[x].bounds[0];
2256 pbound = scm_heap_table[x].bounds[1];
0f2d19dd
JB
2257 while (p < pbound)
2258 {
c8045e8d
DH
2259 SCM cell = PTR2SCM (p);
2260 if (SCM_TYP3 (cell) == scm_tc3_cons_gloc)
0f2d19dd 2261 {
c8045e8d
DH
2262 /* Dirk:FIXME:: Again, super ugly code: cell may be a gloc or a
2263 * struct cell. See the corresponding comment in scm_gc_mark.
2264 */
2265 scm_bits_t word0 = SCM_CELL_WORD_0 (cell) - scm_tc3_cons_gloc;
2266 SCM gloc_car = SCM_PACK (word0); /* access as gloc */
2267 SCM vcell = SCM_CELL_OBJECT_1 (gloc_car);
9a09deb1 2268 if ((SCM_EQ_P (name, SCM_BOOL_T) || SCM_EQ_P (SCM_CAR (gloc_car), name))
c8045e8d 2269 && (SCM_UNPACK (vcell) != 0) && (SCM_UNPACK (vcell) != 1))
0f2d19dd 2270 {
c8045e8d 2271 SCM_SET_CELL_OBJECT_0 (cell, name);
0f2d19dd
JB
2272 }
2273 }
2274 ++p;
2275 }
2276 }
2277 SCM_ALLOW_INTS;
2278 return name;
2279}
1bbd0b84 2280#undef FUNC_NAME
0f2d19dd
JB
2281
2282
2283\f
2284/* {GC Protection Helper Functions}
2285 */
2286
2287
0f2d19dd 2288void
6e8d25a6
GB
2289scm_remember (SCM *ptr)
2290{ /* empty */ }
0f2d19dd 2291
1cc91f1b 2292
c209c88e 2293/*
41b0806d
GB
2294 These crazy functions prevent garbage collection
2295 of arguments after the first argument by
2296 ensuring they remain live throughout the
2297 function because they are used in the last
2298 line of the code block.
2299 It'd be better to have a nice compiler hint to
2300 aid the conservative stack-scanning GC. --03/09/00 gjb */
0f2d19dd
JB
2301SCM
2302scm_return_first (SCM elt, ...)
0f2d19dd
JB
2303{
2304 return elt;
2305}
2306
41b0806d
GB
2307int
2308scm_return_first_int (int i, ...)
2309{
2310 return i;
2311}
2312
0f2d19dd 2313
0f2d19dd 2314SCM
6e8d25a6 2315scm_permanent_object (SCM obj)
0f2d19dd
JB
2316{
2317 SCM_REDEFER_INTS;
2318 scm_permobjs = scm_cons (obj, scm_permobjs);
2319 SCM_REALLOW_INTS;
2320 return obj;
2321}
2322
2323
7bd4fbe2
MD
2324/* Protect OBJ from the garbage collector. OBJ will not be freed, even if all
2325 other references are dropped, until the object is unprotected by calling
2326 scm_unprotect_object (OBJ). Calls to scm_protect/unprotect_object nest,
2327 i. e. it is possible to protect the same object several times, but it is
2328 necessary to unprotect the object the same number of times to actually get
2329 the object unprotected. It is an error to unprotect an object more often
2330 than it has been protected before. The function scm_protect_object returns
2331 OBJ.
2332*/
2333
2334/* Implementation note: For every object X, there is a counter which
2335 scm_protect_object(X) increments and scm_unprotect_object(X) decrements.
2336*/
686765af 2337
ef290276 2338SCM
6e8d25a6 2339scm_protect_object (SCM obj)
ef290276 2340{
686765af 2341 SCM handle;
9d47a1e6 2342
686765af 2343 /* This critical section barrier will be replaced by a mutex. */
2dd6a83a 2344 SCM_REDEFER_INTS;
9d47a1e6 2345
0f0f0899
MD
2346 handle = scm_hashq_create_handle_x (scm_protects, obj, SCM_MAKINUM (0));
2347 SCM_SETCDR (handle, SCM_MAKINUM (SCM_INUM (SCM_CDR (handle)) + 1));
9d47a1e6 2348
2dd6a83a 2349 SCM_REALLOW_INTS;
9d47a1e6 2350
ef290276
JB
2351 return obj;
2352}
2353
2354
2355/* Remove any protection for OBJ established by a prior call to
dab7f566 2356 scm_protect_object. This function returns OBJ.
ef290276 2357
dab7f566 2358 See scm_protect_object for more information. */
ef290276 2359SCM
6e8d25a6 2360scm_unprotect_object (SCM obj)
ef290276 2361{
686765af 2362 SCM handle;
9d47a1e6 2363
686765af 2364 /* This critical section barrier will be replaced by a mutex. */
2dd6a83a 2365 SCM_REDEFER_INTS;
9d47a1e6 2366
686765af 2367 handle = scm_hashq_get_handle (scm_protects, obj);
9d47a1e6 2368
0f0f0899 2369 if (SCM_IMP (handle))
686765af 2370 {
0f0f0899
MD
2371 fprintf (stderr, "scm_unprotect_object called on unprotected object\n");
2372 abort ();
686765af 2373 }
6a199940
DH
2374 else
2375 {
2376 unsigned long int count = SCM_INUM (SCM_CDR (handle)) - 1;
2377 if (count == 0)
2378 scm_hashq_remove_x (scm_protects, obj);
2379 else
2380 SCM_SETCDR (handle, SCM_MAKINUM (count));
2381 }
686765af 2382
2dd6a83a 2383 SCM_REALLOW_INTS;
ef290276
JB
2384
2385 return obj;
2386}
2387
c45acc34
JB
2388int terminating;
2389
2390/* called on process termination. */
e52ceaac
MD
2391#ifdef HAVE_ATEXIT
2392static void
2393cleanup (void)
2394#else
2395#ifdef HAVE_ON_EXIT
51157deb
MD
2396extern int on_exit (void (*procp) (), int arg);
2397
e52ceaac
MD
2398static void
2399cleanup (int status, void *arg)
2400#else
2401#error Dont know how to setup a cleanup handler on your system.
2402#endif
2403#endif
c45acc34
JB
2404{
2405 terminating = 1;
2406 scm_flush_all_ports ();
2407}
ef290276 2408
0f2d19dd 2409\f
acb0a19c 2410static int
4c48ba06 2411make_initial_segment (scm_sizet init_heap_size, scm_freelist_t *freelist)
acb0a19c 2412{
a00c95d9 2413 scm_sizet rounded_size = round_to_cluster_size (freelist, init_heap_size);
d6884e63 2414
a00c95d9
ML
2415 if (!init_heap_seg ((SCM_CELLPTR) malloc (rounded_size),
2416 rounded_size,
4c48ba06 2417 freelist))
acb0a19c 2418 {
a00c95d9
ML
2419 rounded_size = round_to_cluster_size (freelist, SCM_HEAP_SEG_SIZE);
2420 if (!init_heap_seg ((SCM_CELLPTR) malloc (rounded_size),
2421 rounded_size,
4c48ba06 2422 freelist))
acb0a19c
MD
2423 return 1;
2424 }
2425 else
2426 scm_expmem = 1;
2427
8fef55a8
MD
2428 if (freelist->min_yield_fraction)
2429 freelist->min_yield = (freelist->heap_size * freelist->min_yield_fraction
b37fe1c5 2430 / 100);
8fef55a8 2431 freelist->grow_heap_p = (freelist->heap_size < freelist->min_yield);
a00c95d9 2432
acb0a19c
MD
2433 return 0;
2434}
2435
2436\f
4c48ba06
MD
2437static void
2438init_freelist (scm_freelist_t *freelist,
2439 int span,
2440 int cluster_size,
8fef55a8 2441 int min_yield)
4c48ba06
MD
2442{
2443 freelist->clusters = SCM_EOL;
2444 freelist->cluster_size = cluster_size + 1;
b37fe1c5
MD
2445 freelist->left_to_collect = 0;
2446 freelist->clusters_allocated = 0;
8fef55a8
MD
2447 freelist->min_yield = 0;
2448 freelist->min_yield_fraction = min_yield;
4c48ba06
MD
2449 freelist->span = span;
2450 freelist->collected = 0;
1811ebce 2451 freelist->collected_1 = 0;
4c48ba06
MD
2452 freelist->heap_size = 0;
2453}
2454
4a4c9785 2455int
4c48ba06
MD
2456scm_init_storage (scm_sizet init_heap_size_1, int gc_trigger_1,
2457 scm_sizet init_heap_size_2, int gc_trigger_2,
2458 scm_sizet max_segment_size)
0f2d19dd
JB
2459{
2460 scm_sizet j;
2461
4c48ba06 2462 if (!init_heap_size_1)
aeacfc8f 2463 init_heap_size_1 = scm_default_init_heap_size_1;
4c48ba06 2464 if (!init_heap_size_2)
aeacfc8f 2465 init_heap_size_2 = scm_default_init_heap_size_2;
4c48ba06 2466
0f2d19dd
JB
2467 j = SCM_NUM_PROTECTS;
2468 while (j)
2469 scm_sys_protects[--j] = SCM_BOOL_F;
2470 scm_block_gc = 1;
4a4c9785 2471
4a4c9785 2472 scm_freelist = SCM_EOL;
4c48ba06
MD
2473 scm_freelist2 = SCM_EOL;
2474 init_freelist (&scm_master_freelist,
2475 1, SCM_CLUSTER_SIZE_1,
aeacfc8f 2476 gc_trigger_1 ? gc_trigger_1 : scm_default_min_yield_1);
4c48ba06
MD
2477 init_freelist (&scm_master_freelist2,
2478 2, SCM_CLUSTER_SIZE_2,
aeacfc8f 2479 gc_trigger_2 ? gc_trigger_2 : scm_default_min_yield_2);
4c48ba06 2480 scm_max_segment_size
aeacfc8f 2481 = max_segment_size ? max_segment_size : scm_default_max_segment_size;
4a4c9785 2482
0f2d19dd
JB
2483 scm_expmem = 0;
2484
2485 j = SCM_HEAP_SEG_SIZE;
2486 scm_mtrigger = SCM_INIT_MALLOC_LIMIT;
a00c95d9
ML
2487 scm_heap_table = ((scm_heap_seg_data_t *)
2488 scm_must_malloc (sizeof (scm_heap_seg_data_t) * 2, "hplims"));
b6efc951 2489 heap_segment_table_size = 2;
acb0a19c 2490
d6884e63
ML
2491 mark_space_ptr = &mark_space_head;
2492
4c48ba06
MD
2493 if (make_initial_segment (init_heap_size_1, &scm_master_freelist) ||
2494 make_initial_segment (init_heap_size_2, &scm_master_freelist2))
4a4c9785 2495 return 1;
acb0a19c 2496
801cb5e7 2497 /* scm_hplims[0] can change. do not remove scm_heap_org */
a00c95d9 2498 scm_heap_org = CELL_UP (scm_heap_table[0].bounds[0], 1);
acb0a19c 2499
801cb5e7
MD
2500 scm_c_hook_init (&scm_before_gc_c_hook, 0, SCM_C_HOOK_NORMAL);
2501 scm_c_hook_init (&scm_before_mark_c_hook, 0, SCM_C_HOOK_NORMAL);
2502 scm_c_hook_init (&scm_before_sweep_c_hook, 0, SCM_C_HOOK_NORMAL);
2503 scm_c_hook_init (&scm_after_sweep_c_hook, 0, SCM_C_HOOK_NORMAL);
2504 scm_c_hook_init (&scm_after_gc_c_hook, 0, SCM_C_HOOK_NORMAL);
0f2d19dd
JB
2505
2506 /* Initialise the list of ports. */
840ae05d
JB
2507 scm_port_table = (scm_port **)
2508 malloc (sizeof (scm_port *) * scm_port_table_room);
0f2d19dd
JB
2509 if (!scm_port_table)
2510 return 1;
2511
a18bcd0e 2512#ifdef HAVE_ATEXIT
c45acc34 2513 atexit (cleanup);
e52ceaac
MD
2514#else
2515#ifdef HAVE_ON_EXIT
2516 on_exit (cleanup, 0);
2517#endif
a18bcd0e 2518#endif
0f2d19dd
JB
2519
2520 scm_undefineds = scm_cons (SCM_UNDEFINED, SCM_EOL);
24e68a57 2521 SCM_SETCDR (scm_undefineds, scm_undefineds);
0f2d19dd
JB
2522
2523 scm_listofnull = scm_cons (SCM_EOL, SCM_EOL);
2524 scm_nullstr = scm_makstr (0L, 0);
a8741caa 2525 scm_nullvect = scm_make_vector (SCM_INUM0, SCM_UNDEFINED);
54778cd3
DH
2526 scm_symhash = scm_make_vector (SCM_MAKINUM (scm_symhash_dim), SCM_EOL);
2527 scm_weak_symhash = scm_make_weak_key_hash_table (SCM_MAKINUM (scm_symhash_dim));
2528 scm_symhash_vars = scm_make_vector (SCM_MAKINUM (scm_symhash_dim), SCM_EOL);
8960e0a0 2529 scm_stand_in_procs = SCM_EOL;
0f2d19dd 2530 scm_permobjs = SCM_EOL;
686765af 2531 scm_protects = scm_make_vector (SCM_MAKINUM (31), SCM_EOL);
54778cd3
DH
2532 scm_sysintern ("most-positive-fixnum", SCM_MAKINUM (SCM_MOST_POSITIVE_FIXNUM));
2533 scm_sysintern ("most-negative-fixnum", SCM_MAKINUM (SCM_MOST_NEGATIVE_FIXNUM));
0f2d19dd
JB
2534#ifdef SCM_BIGDIG
2535 scm_sysintern ("bignum-radix", SCM_MAKINUM (SCM_BIGRAD));
2536#endif
d6884e63 2537
0f2d19dd
JB
2538 return 0;
2539}
939794ce 2540
0f2d19dd
JB
2541\f
2542
939794ce
DH
2543SCM scm_after_gc_hook;
2544
2545#if (SCM_DEBUG_DEPRECATED == 0)
2546static SCM scm_gc_vcell; /* the vcell for gc-thunk. */
2547#endif /* SCM_DEBUG_DEPRECATED == 0 */
2548static SCM gc_async;
2549
2550
2551/* The function gc_async_thunk causes the execution of the after-gc-hook. It
2552 * is run after the gc, as soon as the asynchronous events are handled by the
2553 * evaluator.
2554 */
2555static SCM
2556gc_async_thunk (void)
2557{
2558 scm_c_run_hook (scm_after_gc_hook, SCM_EOL);
2559
2560#if (SCM_DEBUG_DEPRECATED == 0)
2561
2562 /* The following code will be removed in Guile 1.5. */
2563 if (SCM_NFALSEP (scm_gc_vcell))
2564 {
2565 SCM proc = SCM_CDR (scm_gc_vcell);
2566
2567 if (SCM_NFALSEP (proc) && !SCM_UNBNDP (proc))
2568 scm_apply (proc, SCM_EOL, SCM_EOL);
2569 }
2570
2571#endif /* SCM_DEBUG_DEPRECATED == 0 */
2572
2573 return SCM_UNSPECIFIED;
2574}
2575
2576
2577/* The function mark_gc_async is run by the scm_after_gc_c_hook at the end of
2578 * the garbage collection. The only purpose of this function is to mark the
2579 * gc_async (which will eventually lead to the execution of the
2580 * gc_async_thunk).
2581 */
2582static void *
2583mark_gc_async (void * hook_data, void *func_data, void *data)
2584{
2585 scm_system_async_mark (gc_async);
2586 return NULL;
2587}
2588
2589
0f2d19dd
JB
2590void
2591scm_init_gc ()
0f2d19dd 2592{
939794ce
DH
2593 SCM after_gc_thunk;
2594
801cb5e7 2595 scm_after_gc_hook = scm_create_hook ("after-gc-hook", 0);
939794ce
DH
2596
2597#if (SCM_DEBUG_DEPRECATED == 0)
2598 scm_gc_vcell = scm_sysintern ("gc-thunk", SCM_BOOL_F);
2599#endif /* SCM_DEBUG_DEPRECATED == 0 */
2600 /* Dirk:FIXME:: We don't really want a binding here. */
2601 after_gc_thunk = scm_make_gsubr ("%gc-thunk", 0, 0, 0, gc_async_thunk);
2602 gc_async = scm_system_async (after_gc_thunk);
2603
2604 scm_c_hook_add (&scm_after_gc_c_hook, mark_gc_async, NULL, 0);
2605
a0599745 2606#include "libguile/gc.x"
0f2d19dd 2607}
89e00824
ML
2608
2609/*
2610 Local Variables:
2611 c-file-style: "gnu"
2612 End:
2613*/