Avoid needless GC on startup due to scm_gc_register_allocation
[bpt/guile.git] / libguile / gc.c
CommitLineData
0f595d7d
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1/* Copyright (C) 1995,1996,1997,1998,1999,2000,2001, 2002, 2003, 2006,
2 * 2008, 2009, 2010, 2011, 2012, 2013 Free Software Foundation, Inc.
a00c95d9 3 *
73be1d9e 4 * This library is free software; you can redistribute it and/or
53befeb7
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5 * modify it under the terms of the GNU Lesser General Public License
6 * as published by the Free Software Foundation; either version 3 of
7 * the License, or (at your option) any later version.
a00c95d9 8 *
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9 * This library is distributed in the hope that it will be useful, but
10 * WITHOUT ANY WARRANTY; without even the implied warranty of
73be1d9e
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11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
12 * Lesser General Public License for more details.
a00c95d9 13 *
73be1d9e
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14 * You should have received a copy of the GNU Lesser General Public
15 * License along with this library; if not, write to the Free Software
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16 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA
17 * 02110-1301 USA
73be1d9e 18 */
1bbd0b84 19
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20/* #define DEBUGINFO */
21
dbb605f5 22#ifdef HAVE_CONFIG_H
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23# include <config.h>
24#endif
56495472 25
e7bca227
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26#include "libguile/gen-scmconfig.h"
27
0f2d19dd 28#include <stdio.h>
e6e2e95a 29#include <errno.h>
783e7774 30#include <string.h>
34cf38c3 31#include <stdlib.h>
6360beb2 32#include <math.h>
e6e2e95a 33
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LC
34#ifdef __ia64__
35#include <ucontext.h>
36extern unsigned long * __libc_ia64_register_backing_store_base;
37#endif
38
a0599745 39#include "libguile/_scm.h"
0a7a7445 40#include "libguile/eval.h"
a0599745
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41#include "libguile/stime.h"
42#include "libguile/stackchk.h"
43#include "libguile/struct.h"
a0599745 44#include "libguile/smob.h"
2fa901a5 45#include "libguile/arrays.h"
a0599745
MD
46#include "libguile/async.h"
47#include "libguile/ports.h"
48#include "libguile/root.h"
87fc4596 49#include "libguile/simpos.h"
a0599745
MD
50#include "libguile/strings.h"
51#include "libguile/vectors.h"
686765af 52#include "libguile/hashtab.h"
ecf470a2 53#include "libguile/tags.h"
a0599745
MD
54
55#include "libguile/validate.h"
1be6b49c 56#include "libguile/deprecation.h"
a0599745 57#include "libguile/gc.h"
9de87eea 58#include "libguile/dynwind.h"
fce59c93 59
1c44468d 60#include "libguile/bdw-gc.h"
a82e7953 61
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62/* For GC_set_start_callback. */
63#include <gc/gc_mark.h>
64
bc9d9bb2 65#ifdef GUILE_DEBUG_MALLOC
a0599745 66#include "libguile/debug-malloc.h"
bc9d9bb2
MD
67#endif
68
0f2d19dd 69#ifdef HAVE_UNISTD_H
95b88819 70#include <unistd.h>
0f2d19dd
JB
71#endif
72
064d2409
AW
73/* Size in bytes of the initial heap. This should be about the size of
74 result of 'guile -c "(display (assq-ref (gc-stats)
75 'heap-total-allocated))"'. */
76
77#define DEFAULT_INITIAL_HEAP_SIZE (128 * 1024 * SIZEOF_SCM_T_BITS)
78
eae33935 79/* Set this to != 0 if every cell that is accessed shall be checked:
61045190 80 */
eab1b259
HWN
81int scm_debug_cell_accesses_p = 0;
82int scm_expensive_debug_cell_accesses_p = 0;
406c7d90 83
e81d98ec
DH
84/* Set this to 0 if no additional gc's shall be performed, otherwise set it to
85 * the number of cell accesses after which a gc shall be called.
86 */
eab1b259 87int scm_debug_cells_gc_interval = 0;
e81d98ec 88
acbccb0c 89/* Hash table that keeps a reference to objects the user wants to protect from
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AW
90 garbage collection. */
91static SCM scm_protects;
e7efe8e7
AW
92
93
eab1b259
HWN
94#if (SCM_DEBUG_CELL_ACCESSES == 1)
95
96
97/*
98
99 Assert that the given object is a valid reference to a valid cell. This
100 test involves to determine whether the object is a cell pointer, whether
101 this pointer actually points into a heap segment and whether the cell
102 pointed to is not a free cell. Further, additional garbage collections may
103 get executed after a user defined number of cell accesses. This helps to
104 find places in the C code where references are dropped for extremely short
105 periods.
106
107*/
406c7d90 108void
eab1b259 109scm_i_expensive_validation_check (SCM cell)
406c7d90 110{
eab1b259
HWN
111 /* If desired, perform additional garbage collections after a user
112 * defined number of cell accesses.
113 */
114 if (scm_debug_cells_gc_interval)
115 {
116 static unsigned int counter = 0;
61045190 117
eab1b259
HWN
118 if (counter != 0)
119 {
120 --counter;
121 }
122 else
123 {
124 counter = scm_debug_cells_gc_interval;
b17e0ac3 125 scm_gc ();
eab1b259
HWN
126 }
127 }
128}
129
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LC
130/* Whether cell validation is already running. */
131static int scm_i_cell_validation_already_running = 0;
132
eab1b259
HWN
133void
134scm_assert_cell_valid (SCM cell)
135{
136 if (!scm_i_cell_validation_already_running && scm_debug_cell_accesses_p)
406c7d90 137 {
eab1b259 138 scm_i_cell_validation_already_running = 1; /* set to avoid recursion */
406c7d90 139
c8a1bdc4 140 /*
eab1b259
HWN
141 During GC, no user-code should be run, and the guile core
142 should use non-protected accessors.
143 */
c8a1bdc4 144 if (scm_gc_running_p)
eab1b259 145 return;
c8a1bdc4
HWN
146
147 /*
eab1b259
HWN
148 Only scm_in_heap_p and rescanning the heap is wildly
149 expensive.
150 */
151 if (scm_expensive_debug_cell_accesses_p)
152 scm_i_expensive_validation_check (cell);
b4246e5b 153
eab1b259 154 scm_i_cell_validation_already_running = 0; /* re-enable */
406c7d90
DH
155 }
156}
157
158
eab1b259 159
406c7d90
DH
160SCM_DEFINE (scm_set_debug_cell_accesses_x, "set-debug-cell-accesses!", 1, 0, 0,
161 (SCM flag),
1e6808ea 162 "If @var{flag} is @code{#f}, cell access checking is disabled.\n"
eab1b259 163 "If @var{flag} is @code{#t}, cheap cell access checking is enabled,\n"
e81d98ec 164 "but no additional calls to garbage collection are issued.\n"
eab1b259 165 "If @var{flag} is a number, strict cell access checking is enabled,\n"
e81d98ec
DH
166 "with an additional garbage collection after the given\n"
167 "number of cell accesses.\n"
1e6808ea
MG
168 "This procedure only exists when the compile-time flag\n"
169 "@code{SCM_DEBUG_CELL_ACCESSES} was set to 1.")
406c7d90
DH
170#define FUNC_NAME s_scm_set_debug_cell_accesses_x
171{
7888309b 172 if (scm_is_false (flag))
eab1b259
HWN
173 {
174 scm_debug_cell_accesses_p = 0;
175 }
bc36d050 176 else if (scm_is_eq (flag, SCM_BOOL_T))
eab1b259
HWN
177 {
178 scm_debug_cells_gc_interval = 0;
179 scm_debug_cell_accesses_p = 1;
180 scm_expensive_debug_cell_accesses_p = 0;
181 }
e11e83f3 182 else
eab1b259 183 {
e11e83f3 184 scm_debug_cells_gc_interval = scm_to_signed_integer (flag, 0, INT_MAX);
eab1b259
HWN
185 scm_debug_cell_accesses_p = 1;
186 scm_expensive_debug_cell_accesses_p = 1;
187 }
406c7d90
DH
188 return SCM_UNSPECIFIED;
189}
190#undef FUNC_NAME
0f2d19dd 191
ecf470a2 192
c8a1bdc4 193#endif /* SCM_DEBUG_CELL_ACCESSES == 1 */
0f2d19dd
JB
194
195\f
14294ce0 196
26224b3f
LC
197/* Hooks. */
198scm_t_c_hook scm_before_gc_c_hook;
199scm_t_c_hook scm_before_mark_c_hook;
200scm_t_c_hook scm_before_sweep_c_hook;
201scm_t_c_hook scm_after_sweep_c_hook;
202scm_t_c_hook scm_after_gc_c_hook;
945fec60 203
0f2d19dd 204
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AW
205static void
206run_before_gc_c_hook (void)
207{
e1fbe716
AW
208 if (!SCM_I_CURRENT_THREAD)
209 /* GC while a thread is spinning up; punt. */
210 return;
211
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AW
212 scm_c_hook_run (&scm_before_gc_c_hook, NULL);
213}
214
215
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216/* GC Statistics Keeping
217 */
b74e86cf 218unsigned long scm_gc_ports_collected = 0;
00b6ef23
AW
219static long gc_time_taken = 0;
220static long gc_start_time = 0;
221
6360beb2
AW
222static unsigned long free_space_divisor;
223static unsigned long minimum_free_space_divisor;
224static double target_free_space_divisor;
b74e86cf 225
915b3f9f 226static unsigned long protected_obj_count = 0;
c2cbcc57 227
0f2d19dd 228
17ab1dc3 229SCM_SYMBOL (sym_gc_time_taken, "gc-time-taken");
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LC
230SCM_SYMBOL (sym_heap_size, "heap-size");
231SCM_SYMBOL (sym_heap_free_size, "heap-free-size");
232SCM_SYMBOL (sym_heap_total_allocated, "heap-total-allocated");
17ab1dc3 233SCM_SYMBOL (sym_heap_allocated_since_gc, "heap-allocated-since-gc");
7eec4c37 234SCM_SYMBOL (sym_protected_objects, "protected-objects");
17ab1dc3 235SCM_SYMBOL (sym_times, "gc-times");
cf2d30f6 236
d3dd80ab 237
0f2d19dd
JB
238/* {Scheme Interface to GC}
239 */
35164d84 240static char const * scm_i_tag_name (scm_t_bits tag);
1367aa5e
HWN
241static SCM
242tag_table_to_type_alist (void *closure, SCM key, SCM val, SCM acc)
243{
8fecbb19 244 if (scm_is_integer (key))
8a00ba71 245 {
3e2073bd 246 int c_tag = scm_to_int (key);
8fecbb19
HWN
247
248 char const * name = scm_i_tag_name (c_tag);
249 if (name != NULL)
250 {
251 key = scm_from_locale_string (name);
252 }
253 else
254 {
255 char s[100];
256 sprintf (s, "tag %d", c_tag);
257 key = scm_from_locale_string (s);
258 }
8a00ba71 259 }
8fecbb19 260
1367aa5e
HWN
261 return scm_cons (scm_cons (key, val), acc);
262}
263
264SCM_DEFINE (scm_gc_live_object_stats, "gc-live-object-stats", 0, 0, 0,
265 (),
266 "Return an alist of statistics of the current live objects. ")
267#define FUNC_NAME s_scm_gc_live_object_stats
268{
269 SCM tab = scm_make_hash_table (scm_from_int (57));
b01532af
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270 SCM alist;
271
b01532af 272 alist
1367aa5e
HWN
273 = scm_internal_hash_fold (&tag_table_to_type_alist, NULL, SCM_EOL, tab);
274
275 return alist;
276}
277#undef FUNC_NAME
278
c2cbcc57 279extern int scm_gc_malloc_yield_percentage;
a00c95d9 280SCM_DEFINE (scm_gc_stats, "gc-stats", 0, 0, 0,
1bbd0b84 281 (),
1e6808ea 282 "Return an association list of statistics about Guile's current\n"
c8a1bdc4 283 "use of storage.\n")
1bbd0b84 284#define FUNC_NAME s_scm_gc_stats
0f2d19dd 285{
0f2d19dd 286 SCM answer;
14294ce0 287 GC_word heap_size, free_bytes, unmapped_bytes, bytes_since_gc, total_bytes;
915b3f9f 288 size_t gc_times;
4c9419ac 289
14294ce0
AW
290 GC_get_heap_usage_safe (&heap_size, &free_bytes, &unmapped_bytes,
291 &bytes_since_gc, &total_bytes);
0f595d7d 292 gc_times = GC_get_gc_no ();
fca43887 293
b9bd8526 294 answer =
00b6ef23 295 scm_list_n (scm_cons (sym_gc_time_taken, scm_from_long (gc_time_taken)),
915b3f9f
LC
296 scm_cons (sym_heap_size, scm_from_size_t (heap_size)),
297 scm_cons (sym_heap_free_size, scm_from_size_t (free_bytes)),
298 scm_cons (sym_heap_total_allocated,
299 scm_from_size_t (total_bytes)),
17ab1dc3
AW
300 scm_cons (sym_heap_allocated_since_gc,
301 scm_from_size_t (bytes_since_gc)),
915b3f9f
LC
302 scm_cons (sym_protected_objects,
303 scm_from_ulong (protected_obj_count)),
304 scm_cons (sym_times, scm_from_size_t (gc_times)),
b9bd8526 305 SCM_UNDEFINED);
fca43887 306
c8a1bdc4 307 return answer;
0f2d19dd 308}
c8a1bdc4 309#undef FUNC_NAME
0f2d19dd 310
539b08a4 311
7f9ec18a
LC
312SCM_DEFINE (scm_gc_dump, "gc-dump", 0, 0, 0,
313 (void),
314 "Dump information about the garbage collector's internal data "
315 "structures and memory usage to the standard output.")
316#define FUNC_NAME s_scm_gc_dump
317{
318 GC_dump ();
319
320 return SCM_UNSPECIFIED;
321}
322#undef FUNC_NAME
323
acf4331f 324
c8a1bdc4
HWN
325SCM_DEFINE (scm_object_address, "object-address", 1, 0, 0,
326 (SCM obj),
327 "Return an integer that for the lifetime of @var{obj} is uniquely\n"
328 "returned by this function for @var{obj}")
329#define FUNC_NAME s_scm_object_address
c68296f8 330{
b9bd8526 331 return scm_from_ulong (SCM_UNPACK (obj));
c68296f8 332}
c8a1bdc4 333#undef FUNC_NAME
c68296f8 334
1be6b49c 335
915b3f9f
LC
336SCM_DEFINE (scm_gc_disable, "gc-disable", 0, 0, 0,
337 (),
338 "Disables the garbage collector. Nested calls are permitted. "
339 "GC is re-enabled once @code{gc-enable} has been called the "
340 "same number of times @code{gc-disable} was called.")
341#define FUNC_NAME s_scm_gc_disable
342{
343 GC_disable ();
344 return SCM_UNSPECIFIED;
345}
346#undef FUNC_NAME
347
348SCM_DEFINE (scm_gc_enable, "gc-enable", 0, 0, 0,
349 (),
350 "Enables the garbage collector.")
351#define FUNC_NAME s_scm_gc_enable
352{
353 GC_enable ();
354 return SCM_UNSPECIFIED;
355}
356#undef FUNC_NAME
357
358
c8a1bdc4
HWN
359SCM_DEFINE (scm_gc, "gc", 0, 0, 0,
360 (),
361 "Scans all of SCM objects and reclaims for further use those that are\n"
362 "no longer accessible.")
363#define FUNC_NAME s_scm_gc
364{
b17e0ac3 365 scm_i_gc ("call");
f740445a
AW
366 /* If you're calling scm_gc(), you probably want synchronous
367 finalization. */
eaf99988 368 GC_invoke_finalizers ();
c8a1bdc4 369 return SCM_UNSPECIFIED;
9d47a1e6 370}
c8a1bdc4 371#undef FUNC_NAME
9d47a1e6 372
c8a1bdc4 373void
b17e0ac3 374scm_i_gc (const char *what)
c8a1bdc4 375{
26224b3f 376 GC_gcollect ();
eab1b259 377}
0f2d19dd 378
4c7016dc 379
0f2d19dd
JB
380\f
381/* {GC Protection Helper Functions}
382 */
383
384
5d2b97cd
DH
385/*
386 * If within a function you need to protect one or more scheme objects from
387 * garbage collection, pass them as parameters to one of the
388 * scm_remember_upto_here* functions below. These functions don't do
389 * anything, but since the compiler does not know that they are actually
390 * no-ops, it will generate code that calls these functions with the given
391 * parameters. Therefore, you can be sure that the compiler will keep those
392 * scheme values alive (on the stack or in a register) up to the point where
393 * scm_remember_upto_here* is called. In other words, place the call to
592996c9 394 * scm_remember_upto_here* _behind_ the last code in your function, that
5d2b97cd
DH
395 * depends on the scheme object to exist.
396 *
8c494e99
DH
397 * Example: We want to make sure that the string object str does not get
398 * garbage collected during the execution of 'some_function' in the code
399 * below, because otherwise the characters belonging to str would be freed and
5d2b97cd
DH
400 * 'some_function' might access freed memory. To make sure that the compiler
401 * keeps str alive on the stack or in a register such that it is visible to
402 * the conservative gc we add the call to scm_remember_upto_here_1 _after_ the
403 * call to 'some_function'. Note that this would not be necessary if str was
404 * used anyway after the call to 'some_function'.
eb01cb64 405 * char *chars = scm_i_string_chars (str);
5d2b97cd
DH
406 * some_function (chars);
407 * scm_remember_upto_here_1 (str); // str will be alive up to this point.
408 */
409
9e1569bd
KR
410/* Remove any macro versions of these while defining the functions.
411 Functions are always included in the library, for upward binary
412 compatibility and in case combinations of GCC and non-GCC are used. */
413#undef scm_remember_upto_here_1
414#undef scm_remember_upto_here_2
415
5d2b97cd 416void
e81d98ec 417scm_remember_upto_here_1 (SCM obj SCM_UNUSED)
5d2b97cd
DH
418{
419 /* Empty. Protects a single object from garbage collection. */
420}
421
422void
e81d98ec 423scm_remember_upto_here_2 (SCM obj1 SCM_UNUSED, SCM obj2 SCM_UNUSED)
5d2b97cd
DH
424{
425 /* Empty. Protects two objects from garbage collection. */
426}
427
428void
e81d98ec 429scm_remember_upto_here (SCM obj SCM_UNUSED, ...)
5d2b97cd
DH
430{
431 /* Empty. Protects any number of objects from garbage collection. */
432}
433
c209c88e 434/*
41b0806d
GB
435 These crazy functions prevent garbage collection
436 of arguments after the first argument by
437 ensuring they remain live throughout the
438 function because they are used in the last
439 line of the code block.
440 It'd be better to have a nice compiler hint to
441 aid the conservative stack-scanning GC. --03/09/00 gjb */
0f2d19dd
JB
442SCM
443scm_return_first (SCM elt, ...)
0f2d19dd
JB
444{
445 return elt;
446}
447
41b0806d
GB
448int
449scm_return_first_int (int i, ...)
450{
451 return i;
452}
453
0f2d19dd 454
0f2d19dd 455SCM
6e8d25a6 456scm_permanent_object (SCM obj)
0f2d19dd 457{
8e7b3e98 458 return (scm_gc_protect_object (obj));
0f2d19dd
JB
459}
460
461
7bd4fbe2
MD
462/* Protect OBJ from the garbage collector. OBJ will not be freed, even if all
463 other references are dropped, until the object is unprotected by calling
6b1b030e 464 scm_gc_unprotect_object (OBJ). Calls to scm_gc_protect/unprotect_object nest,
7bd4fbe2
MD
465 i. e. it is possible to protect the same object several times, but it is
466 necessary to unprotect the object the same number of times to actually get
467 the object unprotected. It is an error to unprotect an object more often
468 than it has been protected before. The function scm_protect_object returns
469 OBJ.
470*/
471
472/* Implementation note: For every object X, there is a counter which
1f584400 473 scm_gc_protect_object (X) increments and scm_gc_unprotect_object (X) decrements.
7bd4fbe2 474*/
686765af 475
7eec4c37
HWN
476
477
ef290276 478SCM
6b1b030e 479scm_gc_protect_object (SCM obj)
ef290276 480{
686765af 481 SCM handle;
9d47a1e6 482
686765af 483 /* This critical section barrier will be replaced by a mutex. */
33b320ae
NJ
484 /* njrev: Indeed; if my comment above is correct, there is the same
485 critsec/mutex inconsistency here. */
9de87eea 486 SCM_CRITICAL_SECTION_START;
9d47a1e6 487
acbccb0c 488 handle = scm_hashq_create_handle_x (scm_protects, obj, scm_from_int (0));
e11e83f3 489 SCM_SETCDR (handle, scm_sum (SCM_CDR (handle), scm_from_int (1)));
9d47a1e6 490
7eec4c37
HWN
491 protected_obj_count ++;
492
9de87eea 493 SCM_CRITICAL_SECTION_END;
9d47a1e6 494
ef290276
JB
495 return obj;
496}
497
498
499/* Remove any protection for OBJ established by a prior call to
dab7f566 500 scm_protect_object. This function returns OBJ.
ef290276 501
dab7f566 502 See scm_protect_object for more information. */
ef290276 503SCM
6b1b030e 504scm_gc_unprotect_object (SCM obj)
ef290276 505{
686765af 506 SCM handle;
9d47a1e6 507
686765af 508 /* This critical section barrier will be replaced by a mutex. */
33b320ae 509 /* njrev: and again. */
9de87eea 510 SCM_CRITICAL_SECTION_START;
9d47a1e6 511
0ff7e3ff
HWN
512 if (scm_gc_running_p)
513 {
514 fprintf (stderr, "scm_unprotect_object called during GC.\n");
515 abort ();
516 }
b17e0ac3 517
acbccb0c 518 handle = scm_hashq_get_handle (scm_protects, obj);
9d47a1e6 519
7888309b 520 if (scm_is_false (handle))
686765af 521 {
0f0f0899
MD
522 fprintf (stderr, "scm_unprotect_object called on unprotected object\n");
523 abort ();
686765af 524 }
6a199940
DH
525 else
526 {
e11e83f3 527 SCM count = scm_difference (SCM_CDR (handle), scm_from_int (1));
bc36d050 528 if (scm_is_eq (count, scm_from_int (0)))
acbccb0c 529 scm_hashq_remove_x (scm_protects, obj);
6a199940 530 else
1be6b49c 531 SCM_SETCDR (handle, count);
6a199940 532 }
7eec4c37 533 protected_obj_count --;
686765af 534
9de87eea 535 SCM_CRITICAL_SECTION_END;
ef290276
JB
536
537 return obj;
538}
539
6b1b030e
ML
540void
541scm_gc_register_root (SCM *p)
542{
8e7b3e98 543 /* Nothing. */
6b1b030e
ML
544}
545
546void
547scm_gc_unregister_root (SCM *p)
548{
8e7b3e98 549 /* Nothing. */
6b1b030e
ML
550}
551
552void
553scm_gc_register_roots (SCM *b, unsigned long n)
554{
555 SCM *p = b;
556 for (; p < b + n; ++p)
557 scm_gc_register_root (p);
558}
559
560void
561scm_gc_unregister_roots (SCM *b, unsigned long n)
562{
563 SCM *p = b;
564 for (; p < b + n; ++p)
565 scm_gc_unregister_root (p);
566}
567
0f2d19dd 568\f
a00c95d9 569
4c48ba06 570
c35738c1
MD
571void
572scm_storage_prehistory ()
573{
0f595d7d 574 GC_set_all_interior_pointers (0);
0f595d7d 575
6360beb2
AW
576 free_space_divisor = scm_getenv_int ("GC_FREE_SPACE_DIVISOR", 3);
577 minimum_free_space_divisor = free_space_divisor;
578 target_free_space_divisor = free_space_divisor;
579 GC_set_free_space_divisor (free_space_divisor);
eaf99988 580 GC_set_finalize_on_demand (1);
184327a6 581
a82e7953 582 GC_INIT ();
e7bca227 583
064d2409 584 GC_expand_hp (DEFAULT_INITIAL_HEAP_SIZE);
915b3f9f 585
184327a6
LC
586 /* We only need to register a displacement for those types for which the
587 higher bits of the type tag are used to store a pointer (that is, a
588 pointer to an 8-octet aligned region). For `scm_tc3_struct', this is
589 handled in `scm_alloc_struct ()'. */
590 GC_REGISTER_DISPLACEMENT (scm_tc3_cons);
314b8716 591 /* GC_REGISTER_DISPLACEMENT (scm_tc3_unused); */
184327a6 592
915b3f9f 593 /* Sanity check. */
acbccb0c 594 if (!GC_is_visible (&scm_protects))
915b3f9f 595 abort ();
a82e7953 596
c35738c1
MD
597 scm_c_hook_init (&scm_before_gc_c_hook, 0, SCM_C_HOOK_NORMAL);
598 scm_c_hook_init (&scm_before_mark_c_hook, 0, SCM_C_HOOK_NORMAL);
599 scm_c_hook_init (&scm_before_sweep_c_hook, 0, SCM_C_HOOK_NORMAL);
600 scm_c_hook_init (&scm_after_sweep_c_hook, 0, SCM_C_HOOK_NORMAL);
601 scm_c_hook_init (&scm_after_gc_c_hook, 0, SCM_C_HOOK_NORMAL);
602}
85db4a2c 603
9de87eea 604scm_i_pthread_mutex_t scm_i_gc_admin_mutex = SCM_I_PTHREAD_MUTEX_INITIALIZER;
eb01cb64 605
562cd1b8
AW
606void
607scm_init_gc_protect_object ()
0f2d19dd 608{
acbccb0c 609 scm_protects = scm_c_make_hash_table (31);
4a4c9785 610
9de87eea
MV
611#if 0
612 /* We can't have a cleanup handler since we have no thread to run it
613 in. */
614
a18bcd0e 615#ifdef HAVE_ATEXIT
c45acc34 616 atexit (cleanup);
e52ceaac
MD
617#else
618#ifdef HAVE_ON_EXIT
619 on_exit (cleanup, 0);
620#endif
9de87eea
MV
621#endif
622
a18bcd0e 623#endif
0f2d19dd 624}
939794ce 625
0f2d19dd
JB
626\f
627
939794ce
DH
628SCM scm_after_gc_hook;
629
cc3546b0 630static SCM after_gc_async_cell;
939794ce 631
cc3546b0
AW
632/* The function after_gc_async_thunk causes the execution of the
633 * after-gc-hook. It is run after the gc, as soon as the asynchronous
634 * events are handled by the evaluator.
939794ce
DH
635 */
636static SCM
cc3546b0 637after_gc_async_thunk (void)
939794ce 638{
cc3546b0
AW
639 /* Fun, no? Hook-run *and* run-hook? */
640 scm_c_hook_run (&scm_after_gc_c_hook, NULL);
939794ce 641 scm_c_run_hook (scm_after_gc_hook, SCM_EOL);
939794ce
DH
642 return SCM_UNSPECIFIED;
643}
644
645
cc3546b0
AW
646/* The function queue_after_gc_hook is run by the scm_before_gc_c_hook
647 * at the end of the garbage collection. The only purpose of this
648 * function is to mark the after_gc_async (which will eventually lead to
649 * the execution of the after_gc_async_thunk).
939794ce
DH
650 */
651static void *
cc3546b0
AW
652queue_after_gc_hook (void * hook_data SCM_UNUSED,
653 void *fn_data SCM_UNUSED,
654 void *data SCM_UNUSED)
e81d98ec
DH
655{
656 /* If cell access debugging is enabled, the user may choose to perform
657 * additional garbage collections after an arbitrary number of cell
658 * accesses. We don't want the scheme level after-gc-hook to be performed
659 * for each of these garbage collections for the following reason: The
660 * execution of the after-gc-hook causes cell accesses itself. Thus, if the
661 * after-gc-hook was performed with every gc, and if the gc was performed
662 * after a very small number of cell accesses, then the number of cell
663 * accesses during the execution of the after-gc-hook will suffice to cause
664 * the execution of the next gc. Then, guile would keep executing the
665 * after-gc-hook over and over again, and would never come to do other
666 * things.
eae33935 667 *
e81d98ec
DH
668 * To overcome this problem, if cell access debugging with additional
669 * garbage collections is enabled, the after-gc-hook is never run by the
670 * garbage collecter. When running guile with cell access debugging and the
671 * execution of the after-gc-hook is desired, then it is necessary to run
672 * the hook explicitly from the user code. This has the effect, that from
673 * the scheme level point of view it seems that garbage collection is
674 * performed with a much lower frequency than it actually is. Obviously,
675 * this will not work for code that depends on a fixed one to one
676 * relationship between the execution counts of the C level garbage
677 * collection hooks and the execution count of the scheme level
678 * after-gc-hook.
679 */
9de87eea 680
e81d98ec 681#if (SCM_DEBUG_CELL_ACCESSES == 1)
eab1b259 682 if (scm_debug_cells_gc_interval == 0)
e81d98ec 683#endif
cc3546b0
AW
684 {
685 scm_i_thread *t = SCM_I_CURRENT_THREAD;
686
687 if (scm_is_false (SCM_CDR (after_gc_async_cell)))
688 {
689 SCM_SETCDR (after_gc_async_cell, t->active_asyncs);
690 t->active_asyncs = after_gc_async_cell;
691 t->pending_asyncs = 1;
692 }
693 }
e81d98ec 694
939794ce
DH
695 return NULL;
696}
697
00b6ef23
AW
698\f
699
700static void *
701start_gc_timer (void * hook_data SCM_UNUSED,
702 void *fn_data SCM_UNUSED,
703 void *data SCM_UNUSED)
704{
705 if (!gc_start_time)
706 gc_start_time = scm_c_get_internal_run_time ();
707
708 return NULL;
709}
710
711static void *
712accumulate_gc_timer (void * hook_data SCM_UNUSED,
713 void *fn_data SCM_UNUSED,
714 void *data SCM_UNUSED)
715{
716 if (gc_start_time)
6360beb2
AW
717 {
718 long now = scm_c_get_internal_run_time ();
00b6ef23
AW
719 gc_time_taken += now - gc_start_time;
720 gc_start_time = 0;
721 }
722
723 return NULL;
724}
725
6360beb2
AW
726/* Return some idea of the memory footprint of a process, in bytes.
727 Currently only works on Linux systems. */
728static size_t
729get_image_size (void)
730{
731 unsigned long size, resident, share;
8ac70433 732 size_t ret = 0;
6360beb2
AW
733
734 FILE *fp = fopen ("/proc/self/statm", "r");
735
736 if (fp && fscanf (fp, "%lu %lu %lu", &size, &resident, &share) == 3)
737 ret = resident * 4096;
738
739 if (fp)
740 fclose (fp);
741
742 return ret;
743}
744
fd51e661 745/* These are discussed later. */
553294d9 746static size_t bytes_until_gc = DEFAULT_INITIAL_HEAP_SIZE;
fd51e661
AW
747static scm_i_pthread_mutex_t bytes_until_gc_lock = SCM_I_PTHREAD_MUTEX_INITIALIZER;
748
6360beb2
AW
749/* Make GC run more frequently when the process image size is growing,
750 measured against the number of bytes allocated through the GC.
751
752 If Guile is allocating at a GC-managed heap size H, libgc will tend
753 to limit the process image size to H*N. But if at the same time the
754 user program is mallocating at a rate M bytes per GC-allocated byte,
755 then the process stabilizes at H*N*M -- assuming that collecting data
756 will result in malloc'd data being freed. It doesn't take a very
757 large M for this to be a bad situation. To limit the image size,
758 Guile should GC more often -- the bigger the M, the more often.
759
760 Numeric functions that produce bigger and bigger integers are
761 pessimal, because M is an increasing function of time. Here is an
762 example of such a function:
763
764 (define (factorial n)
765 (define (fac n acc)
766 (if (<= n 1)
767 acc
768 (fac (1- n) (* n acc))))
769 (fac n 1))
770
771 It is possible for a process to grow for reasons that will not be
772 solved by faster GC. In that case M will be estimated as
773 artificially high for a while, and so GC will happen more often on
774 the Guile side. But when it stabilizes, Guile can ease back the GC
775 frequency.
776
777 The key is to measure process image growth, not mallocation rate.
778 For maximum effectiveness, Guile reacts quickly to process growth,
779 and exponentially backs down when the process stops growing.
780
781 See http://thread.gmane.org/gmane.lisp.guile.devel/12552/focus=12936
782 for further discussion.
783 */
784static void *
785adjust_gc_frequency (void * hook_data SCM_UNUSED,
786 void *fn_data SCM_UNUSED,
787 void *data SCM_UNUSED)
788{
789 static size_t prev_image_size = 0;
790 static size_t prev_bytes_alloced = 0;
791 size_t image_size;
792 size_t bytes_alloced;
793
fd51e661
AW
794 scm_i_pthread_mutex_lock (&bytes_until_gc_lock);
795 bytes_until_gc = GC_get_heap_size ();
796 scm_i_pthread_mutex_unlock (&bytes_until_gc_lock);
797
6360beb2
AW
798 image_size = get_image_size ();
799 bytes_alloced = GC_get_total_bytes ();
800
d1c03624 801#define HEURISTICS_DEBUG 0
6360beb2
AW
802
803#if HEURISTICS_DEBUG
804 fprintf (stderr, "prev image / alloced: %lu / %lu\n", prev_image_size, prev_bytes_alloced);
805 fprintf (stderr, " image / alloced: %lu / %lu\n", image_size, bytes_alloced);
806 fprintf (stderr, "divisor %lu / %f\n", free_space_divisor, target_free_space_divisor);
807#endif
808
809 if (prev_image_size && bytes_alloced != prev_bytes_alloced)
810 {
811 double growth_rate, new_target_free_space_divisor;
812 double decay_factor = 0.5;
813 double hysteresis = 0.1;
814
815 growth_rate = ((double) image_size - prev_image_size)
816 / ((double)bytes_alloced - prev_bytes_alloced);
817
818#if HEURISTICS_DEBUG
819 fprintf (stderr, "growth rate %f\n", growth_rate);
820#endif
821
822 new_target_free_space_divisor = minimum_free_space_divisor;
823
824 if (growth_rate > 0)
825 new_target_free_space_divisor *= 1.0 + growth_rate;
826
827#if HEURISTICS_DEBUG
828 fprintf (stderr, "new divisor %f\n", new_target_free_space_divisor);
829#endif
830
831 if (new_target_free_space_divisor < target_free_space_divisor)
832 /* Decay down. */
833 target_free_space_divisor =
834 (decay_factor * target_free_space_divisor
835 + (1.0 - decay_factor) * new_target_free_space_divisor);
836 else
837 /* Jump up. */
838 target_free_space_divisor = new_target_free_space_divisor;
839
840#if HEURISTICS_DEBUG
841 fprintf (stderr, "new target divisor %f\n", target_free_space_divisor);
842#endif
843
844 if (free_space_divisor + 0.5 + hysteresis < target_free_space_divisor
845 || free_space_divisor - 0.5 - hysteresis > target_free_space_divisor)
846 {
847 free_space_divisor = lround (target_free_space_divisor);
848#if HEURISTICS_DEBUG
849 fprintf (stderr, "new divisor %lu\n", free_space_divisor);
850#endif
851 GC_set_free_space_divisor (free_space_divisor);
852 }
853 }
854
855 prev_image_size = image_size;
856 prev_bytes_alloced = bytes_alloced;
857
858 return NULL;
859}
860
fd51e661
AW
861/* The adjust_gc_frequency routine handles transients in the process
862 image size. It can't handle instense non-GC-managed steady-state
863 allocation though, as it decays the FSD at steady-state down to its
864 minimum value.
865
866 The only real way to handle continuous, high non-GC allocation is to
867 let the GC know about it. This routine can handle non-GC allocation
868 rates that are similar in size to the GC-managed heap size.
869 */
870
871void
872scm_gc_register_allocation (size_t size)
873{
874 scm_i_pthread_mutex_lock (&bytes_until_gc_lock);
875 if (bytes_until_gc - size > bytes_until_gc)
876 {
877 bytes_until_gc = GC_get_heap_size ();
878 scm_i_pthread_mutex_unlock (&bytes_until_gc_lock);
879 GC_gcollect ();
880 }
881 else
882 {
883 bytes_until_gc -= size;
884 scm_i_pthread_mutex_unlock (&bytes_until_gc_lock);
885 }
886}
887
00b6ef23
AW
888
889\f
890
35164d84 891static char const *
26224b3f
LC
892scm_i_tag_name (scm_t_bits tag)
893{
74ec8d78 894 switch (tag & 0x7f) /* 7 bits */
26224b3f
LC
895 {
896 case scm_tcs_struct:
897 return "struct";
898 case scm_tcs_cons_imcar:
899 return "cons (immediate car)";
900 case scm_tcs_cons_nimcar:
901 return "cons (non-immediate car)";
5b46a8c2 902 case scm_tc7_pointer:
e2c2a699 903 return "foreign";
c99de5aa
AW
904 case scm_tc7_hashtable:
905 return "hashtable";
26b26354
AW
906 case scm_tc7_weak_set:
907 return "weak-set";
7005c60f
AW
908 case scm_tc7_weak_table:
909 return "weak-table";
9ea31741
AW
910 case scm_tc7_fluid:
911 return "fluid";
912 case scm_tc7_dynamic_state:
913 return "dynamic state";
6f3b0cc2
AW
914 case scm_tc7_frame:
915 return "frame";
6f3b0cc2
AW
916 case scm_tc7_vm_cont:
917 return "vm continuation";
26224b3f
LC
918 case scm_tc7_wvect:
919 return "weak vector";
920 case scm_tc7_vector:
921 return "vector";
26224b3f
LC
922 case scm_tc7_number:
923 switch (tag)
924 {
925 case scm_tc16_real:
926 return "real";
927 break;
928 case scm_tc16_big:
929 return "bignum";
930 break;
931 case scm_tc16_complex:
932 return "complex number";
933 break;
934 case scm_tc16_fraction:
935 return "fraction";
936 break;
937 }
938 break;
939 case scm_tc7_string:
940 return "string";
941 break;
942 case scm_tc7_stringbuf:
943 return "string buffer";
944 break;
945 case scm_tc7_symbol:
946 return "symbol";
947 break;
948 case scm_tc7_variable:
949 return "variable";
950 break;
26224b3f
LC
951 case scm_tc7_port:
952 return "port";
953 break;
954 case scm_tc7_smob:
74ec8d78
AW
955 {
956 int k = 0xff & (tag >> 8);
957 return (scm_smobs[k].name);
958 }
26224b3f
LC
959 break;
960 }
961
962 return NULL;
963}
964
965
26224b3f
LC
966
967\f
0f2d19dd
JB
968void
969scm_init_gc ()
0f2d19dd 970{
a82e7953 971 /* `GC_INIT ()' was invoked in `scm_storage_prehistory ()'. */
d678e25c 972
f39448c5 973 scm_after_gc_hook = scm_make_hook (SCM_INUM0);
fde50407 974 scm_c_define ("after-gc-hook", scm_after_gc_hook);
939794ce 975
cc3546b0
AW
976 /* When the async is to run, the cdr of the gc_async pair gets set to
977 the asyncs queue of the current thread. */
978 after_gc_async_cell = scm_cons (scm_c_make_gsubr ("%after-gc-thunk", 0, 0, 0,
979 after_gc_async_thunk),
980 SCM_BOOL_F);
939794ce 981
cc3546b0 982 scm_c_hook_add (&scm_before_gc_c_hook, queue_after_gc_hook, NULL, 0);
00b6ef23
AW
983 scm_c_hook_add (&scm_before_gc_c_hook, start_gc_timer, NULL, 0);
984 scm_c_hook_add (&scm_after_gc_c_hook, accumulate_gc_timer, NULL, 0);
66b229d5 985
738c899e
AW
986 /* GC_get_heap_usage does not take a lock, and so can run in the GC
987 start hook. */
988 scm_c_hook_add (&scm_before_gc_c_hook, adjust_gc_frequency, NULL, 0);
738c899e 989
cc3546b0 990 GC_set_start_callback (run_before_gc_c_hook);
939794ce 991
a0599745 992#include "libguile/gc.x"
0f2d19dd 993}
89e00824 994
c8a1bdc4
HWN
995
996void
997scm_gc_sweep (void)
998#define FUNC_NAME "scm_gc_sweep"
999{
26224b3f 1000 /* FIXME */
cd169c5a 1001 fprintf (stderr, "%s: doing nothing\n", FUNC_NAME);
c8a1bdc4 1002}
c8a1bdc4
HWN
1003#undef FUNC_NAME
1004
89e00824
ML
1005/*
1006 Local Variables:
1007 c-file-style: "gnu"
1008 End:
1009*/