1.0.19.33: Improved interrupt handling on darwin/x86[-64]
[sbcl/eslaughter.git] / src / runtime / thread.c
bloba8ca088767e734bab83cbc563745747e6b2bb62f
1 /*
2 * This software is part of the SBCL system. See the README file for
3 * more information.
5 * This software is derived from the CMU CL system, which was
6 * written at Carnegie Mellon University and released into the
7 * public domain. The software is in the public domain and is
8 * provided with absolutely no warranty. See the COPYING and CREDITS
9 * files for more information.
12 #include "sbcl.h"
14 #include <stdlib.h>
15 #include <stdio.h>
16 #include <string.h>
17 #ifndef LISP_FEATURE_WIN32
18 #include <sched.h>
19 #endif
20 #include <signal.h>
21 #include <stddef.h>
22 #include <errno.h>
23 #include <sys/types.h>
24 #ifndef LISP_FEATURE_WIN32
25 #include <sys/wait.h>
26 #endif
28 #ifdef LISP_FEATURE_MACH_EXCEPTION_HANDLER
29 #include <mach/mach.h>
30 #include <mach/mach_error.h>
31 #include <mach/mach_types.h>
32 #endif
34 #include "runtime.h"
35 #include "validate.h" /* for BINDING_STACK_SIZE etc */
36 #include "alloc.h"
37 #include "thread.h"
38 #include "arch.h"
39 #include "target-arch-os.h"
40 #include "os.h"
41 #include "globals.h"
42 #include "dynbind.h"
43 #include "genesis/cons.h"
44 #include "genesis/fdefn.h"
45 #include "interr.h" /* for lose() */
46 #include "gc-internal.h"
48 #ifdef LISP_FEATURE_WIN32
50 * Win32 doesn't have SIGSTKSZ, and we're not switching stacks anyway,
51 * so define it arbitrarily
53 #define SIGSTKSZ 1024
54 #endif
56 #if defined(LISP_FEATURE_DARWIN) && defined(LISP_FEATURE_SB_THREAD)
57 #define DELAY_THREAD_POST_MORTEM 5
58 #define LOCK_CREATE_THREAD
59 #endif
61 #ifdef LISP_FEATURE_FREEBSD
62 #define CREATE_CLEANUP_THREAD
63 #define LOCK_CREATE_THREAD
64 #endif
66 #define ALIEN_STACK_SIZE (1*1024*1024) /* 1Mb size chosen at random */
68 #ifdef LISP_FEATURE_SB_THREAD
69 struct thread_post_mortem {
70 #ifdef DELAY_THREAD_POST_MORTEM
71 struct thread_post_mortem *next;
72 #endif
73 os_thread_t os_thread;
74 pthread_attr_t *os_attr;
75 os_vm_address_t os_address;
78 #ifdef DELAY_THREAD_POST_MORTEM
79 static int pending_thread_post_mortem_count = 0;
80 pthread_mutex_t thread_post_mortem_lock = PTHREAD_MUTEX_INITIALIZER;
81 #endif
82 static struct thread_post_mortem * volatile pending_thread_post_mortem = 0;
83 #endif
85 int dynamic_values_bytes=TLS_SIZE*sizeof(lispobj); /* same for all threads */
86 struct thread * volatile all_threads;
87 extern struct interrupt_data * global_interrupt_data;
89 #ifdef LISP_FEATURE_SB_THREAD
90 pthread_mutex_t all_threads_lock = PTHREAD_MUTEX_INITIALIZER;
91 #ifdef LOCK_CREATE_THREAD
92 static pthread_mutex_t create_thread_lock = PTHREAD_MUTEX_INITIALIZER;
93 #endif
94 #ifdef LISP_FEATURE_GCC_TLS
95 __thread struct thread *current_thread;
96 #endif
97 #endif
99 #if defined(LISP_FEATURE_X86) || defined(LISP_FEATURE_X86_64)
100 extern lispobj call_into_lisp_first_time(lispobj fun, lispobj *args, int nargs);
101 #endif
103 static void
104 link_thread(struct thread *th)
106 if (all_threads) all_threads->prev=th;
107 th->next=all_threads;
108 th->prev=0;
109 all_threads=th;
112 #ifdef LISP_FEATURE_SB_THREAD
113 static void
114 unlink_thread(struct thread *th)
116 if (th->prev)
117 th->prev->next = th->next;
118 else
119 all_threads = th->next;
120 if (th->next)
121 th->next->prev = th->prev;
123 #endif
125 static int
126 initial_thread_trampoline(struct thread *th)
128 lispobj function;
129 #if defined(LISP_FEATURE_X86) || defined(LISP_FEATURE_X86_64)
130 lispobj *args = NULL;
131 #endif
132 function = th->no_tls_value_marker;
133 th->no_tls_value_marker = NO_TLS_VALUE_MARKER_WIDETAG;
134 if(arch_os_thread_init(th)==0) return 1;
135 link_thread(th);
136 th->os_thread=thread_self();
137 #ifndef LISP_FEATURE_WIN32
138 protect_control_stack_guard_page(1);
139 #endif
141 #if defined(LISP_FEATURE_X86) || defined(LISP_FEATURE_X86_64)
142 return call_into_lisp_first_time(function,args,0);
143 #else
144 return funcall0(function);
145 #endif
148 #define THREAD_STRUCT_SIZE (thread_control_stack_size + BINDING_STACK_SIZE + \
149 ALIEN_STACK_SIZE + dynamic_values_bytes + \
150 32 * SIGSTKSZ + \
151 THREAD_ALIGNMENT_BYTES)
153 #ifdef LISP_FEATURE_SB_THREAD
154 /* THREAD POST MORTEM CLEANUP
156 * Memory allocated for the thread stacks cannot be reclaimed while
157 * the thread is still alive, so we need a mechanism for post mortem
158 * cleanups. FIXME: We actually have three, for historical reasons as
159 * the saying goes. Do we really need three? Nikodemus guesses that
160 * not anymore, now that we properly call pthread_attr_destroy before
161 * freeing the stack. */
163 static struct thread_post_mortem *
164 plan_thread_post_mortem(struct thread *corpse)
166 if (corpse) {
167 struct thread_post_mortem *post_mortem = malloc(sizeof(struct thread_post_mortem));
168 gc_assert(post_mortem);
169 post_mortem->os_thread = corpse->os_thread;
170 post_mortem->os_attr = corpse->os_attr;
171 post_mortem->os_address = corpse->os_address;
172 #ifdef DELAY_THREAD_POST_MORTEM
173 post_mortem->next = NULL;
174 #endif
175 return post_mortem;
176 } else {
177 /* FIXME: When does this happen? */
178 return NULL;
182 static void
183 perform_thread_post_mortem(struct thread_post_mortem *post_mortem)
185 #ifdef CREATE_POST_MORTEM_THREAD
186 pthread_detach(pthread_self());
187 #endif
188 if (post_mortem) {
189 gc_assert(!pthread_join(post_mortem->os_thread, NULL));
190 gc_assert(!pthread_attr_destroy(post_mortem->os_attr));
191 free(post_mortem->os_attr);
192 os_invalidate(post_mortem->os_address, THREAD_STRUCT_SIZE);
193 free(post_mortem);
197 static void
198 schedule_thread_post_mortem(struct thread *corpse)
200 struct thread_post_mortem *post_mortem = NULL;
201 if (corpse) {
202 post_mortem = plan_thread_post_mortem(corpse);
204 #ifdef DELAY_THREAD_POST_MORTEM
205 pthread_mutex_lock(&thread_post_mortem_lock);
206 /* First stick the new post mortem to the end of the queue. */
207 if (pending_thread_post_mortem) {
208 struct thread_post_mortem *next = pending_thread_post_mortem;
209 while (next->next) {
210 next = next->next;
212 next->next = post_mortem;
213 } else {
214 pending_thread_post_mortem = post_mortem;
216 /* Then, if there are enough things in the queue, clean up one
217 * from the head -- or increment the count, and null out the
218 * post_mortem we have. */
219 if (pending_thread_post_mortem_count > DELAY_THREAD_POST_MORTEM) {
220 post_mortem = pending_thread_post_mortem;
221 pending_thread_post_mortem = post_mortem->next;
222 } else {
223 pending_thread_post_mortem_count++;
224 post_mortem = NULL;
226 pthread_mutex_unlock(&thread_post_mortem_lock);
227 /* Finally run, the cleanup, if any. */
228 perform_thread_post_mortem(post_mortem);
229 #elif defined(CREATE_POST_MORTEM_THREAD)
230 gc_assert(!pthread_create(&thread, NULL, perform_thread_post_mortem, post_mortem));
231 #else
232 post_mortem = (struct thread_post_mortem *)
233 swap_lispobjs((lispobj *)(void *)&pending_thread_post_mortem,
234 (lispobj)post_mortem);
235 perform_thread_post_mortem(post_mortem);
236 #endif
240 /* this is the first thing that runs in the child (which is why the
241 * silly calling convention). Basically it calls the user's requested
242 * lisp function after doing arch_os_thread_init and whatever other
243 * bookkeeping needs to be done
246 new_thread_trampoline(struct thread *th)
248 lispobj function;
249 int result, lock_ret;
251 FSHOW((stderr,"/creating thread %lu\n", thread_self()));
252 function = th->no_tls_value_marker;
253 th->no_tls_value_marker = NO_TLS_VALUE_MARKER_WIDETAG;
254 if(arch_os_thread_init(th)==0) {
255 /* FIXME: handle error */
256 lose("arch_os_thread_init failed\n");
259 th->os_thread=thread_self();
260 protect_control_stack_guard_page(1);
261 /* Since GC can only know about this thread from the all_threads
262 * list and we're just adding this thread to it there is no danger
263 * of deadlocking even with SIG_STOP_FOR_GC blocked (which it is
264 * not). */
265 lock_ret = pthread_mutex_lock(&all_threads_lock);
266 gc_assert(lock_ret == 0);
267 link_thread(th);
268 lock_ret = pthread_mutex_unlock(&all_threads_lock);
269 gc_assert(lock_ret == 0);
271 result = funcall0(function);
273 /* Block GC */
274 block_blockable_signals();
275 th->state=STATE_DEAD;
277 /* SIG_STOP_FOR_GC is blocked and GC might be waiting for this
278 * thread, but since we are already dead it won't wait long. */
279 lock_ret = pthread_mutex_lock(&all_threads_lock);
280 gc_assert(lock_ret == 0);
282 gc_alloc_update_page_tables(0, &th->alloc_region);
283 unlink_thread(th);
284 pthread_mutex_unlock(&all_threads_lock);
285 gc_assert(lock_ret == 0);
287 if(th->tls_cookie>=0) arch_os_thread_cleanup(th);
288 os_invalidate((os_vm_address_t)th->interrupt_data,
289 (sizeof (struct interrupt_data)));
291 #ifdef LISP_FEATURE_MACH_EXCEPTION_HANDLER
292 FSHOW((stderr, "Deallocating mach port %x\n", THREAD_STRUCT_TO_EXCEPTION_PORT(th)));
293 mach_port_move_member(mach_task_self(),
294 THREAD_STRUCT_TO_EXCEPTION_PORT(th),
295 MACH_PORT_NULL);
296 mach_port_deallocate(mach_task_self(),
297 THREAD_STRUCT_TO_EXCEPTION_PORT(th));
298 mach_port_destroy(mach_task_self(),
299 THREAD_STRUCT_TO_EXCEPTION_PORT(th));
300 #endif
302 schedule_thread_post_mortem(th);
303 FSHOW((stderr,"/exiting thread %p\n", thread_self()));
304 return result;
307 #endif /* LISP_FEATURE_SB_THREAD */
309 static void
310 free_thread_struct(struct thread *th)
312 if (th->interrupt_data)
313 os_invalidate((os_vm_address_t) th->interrupt_data,
314 (sizeof (struct interrupt_data)));
315 os_invalidate((os_vm_address_t) th->os_address,
316 THREAD_STRUCT_SIZE);
319 /* this is called from any other thread to create the new one, and
320 * initialize all parts of it that can be initialized from another
321 * thread
324 static struct thread *
325 create_thread_struct(lispobj initial_function) {
326 union per_thread_data *per_thread;
327 struct thread *th=0; /* subdue gcc */
328 void *spaces=0;
329 void *aligned_spaces=0;
330 #ifdef LISP_FEATURE_SB_THREAD
331 unsigned int i;
332 #endif
334 /* May as well allocate all the spaces at once: it saves us from
335 * having to decide what to do if only some of the allocations
336 * succeed. SPACES must be appropriately aligned, since the GC
337 * expects the control stack to start at a page boundary -- and
338 * the OS may have even more rigorous requirements. We can't rely
339 * on the alignment passed from os_validate, since that might
340 * assume the current (e.g. 4k) pagesize, while we calculate with
341 * the biggest (e.g. 64k) pagesize allowed by the ABI. */
342 spaces=os_validate(0, THREAD_STRUCT_SIZE);
343 if(!spaces)
344 return NULL;
345 /* Aligning up is safe as THREAD_STRUCT_SIZE has
346 * THREAD_ALIGNMENT_BYTES padding. */
347 aligned_spaces = (void *)((((unsigned long)(char *)spaces)
348 + THREAD_ALIGNMENT_BYTES-1)
349 &~(unsigned long)(THREAD_ALIGNMENT_BYTES-1));
350 per_thread=(union per_thread_data *)
351 (aligned_spaces+
352 thread_control_stack_size+
353 BINDING_STACK_SIZE+
354 ALIEN_STACK_SIZE);
356 #ifdef LISP_FEATURE_SB_THREAD
357 for(i = 0; i < (dynamic_values_bytes / sizeof(lispobj)); i++)
358 per_thread->dynamic_values[i] = NO_TLS_VALUE_MARKER_WIDETAG;
359 if (all_threads == 0) {
360 if(SymbolValue(FREE_TLS_INDEX,0)==UNBOUND_MARKER_WIDETAG) {
361 SetSymbolValue
362 (FREE_TLS_INDEX,
363 /* FIXME: should be MAX_INTERRUPTS -1 ? */
364 make_fixnum(MAX_INTERRUPTS+
365 sizeof(struct thread)/sizeof(lispobj)),
367 SetSymbolValue(TLS_INDEX_LOCK,make_fixnum(0),0);
369 #define STATIC_TLS_INIT(sym,field) \
370 ((struct symbol *)(sym-OTHER_POINTER_LOWTAG))->tls_index= \
371 make_fixnum(THREAD_SLOT_OFFSET_WORDS(field))
373 STATIC_TLS_INIT(BINDING_STACK_START,binding_stack_start);
374 STATIC_TLS_INIT(BINDING_STACK_POINTER,binding_stack_pointer);
375 STATIC_TLS_INIT(CONTROL_STACK_START,control_stack_start);
376 STATIC_TLS_INIT(CONTROL_STACK_END,control_stack_end);
377 STATIC_TLS_INIT(ALIEN_STACK,alien_stack_pointer);
378 #if defined(LISP_FEATURE_X86) || defined (LISP_FEATURE_X86_64)
379 STATIC_TLS_INIT(PSEUDO_ATOMIC_BITS,pseudo_atomic_bits);
380 #endif
381 #undef STATIC_TLS_INIT
383 #endif
385 th=&per_thread->thread;
386 th->os_address = spaces;
387 th->control_stack_start = aligned_spaces;
388 th->binding_stack_start=
389 (lispobj*)((void*)th->control_stack_start+thread_control_stack_size);
390 th->control_stack_end = th->binding_stack_start;
391 th->alien_stack_start=
392 (lispobj*)((void*)th->binding_stack_start+BINDING_STACK_SIZE);
393 th->binding_stack_pointer=th->binding_stack_start;
394 th->this=th;
395 th->os_thread=0;
396 #ifdef LISP_FEATURE_SB_THREAD
397 th->os_attr=malloc(sizeof(pthread_attr_t));
398 #endif
399 th->state=STATE_RUNNING;
400 #ifdef LISP_FEATURE_STACK_GROWS_DOWNWARD_NOT_UPWARD
401 th->alien_stack_pointer=((void *)th->alien_stack_start
402 + ALIEN_STACK_SIZE-N_WORD_BYTES);
403 #else
404 th->alien_stack_pointer=((void *)th->alien_stack_start);
405 #endif
406 #if defined(LISP_FEATURE_X86) || defined (LISP_FEATURE_X86_64)
407 th->pseudo_atomic_bits=0;
408 #endif
409 #ifdef LISP_FEATURE_GENCGC
410 gc_set_region_empty(&th->alloc_region);
411 #endif
413 #ifndef LISP_FEATURE_SB_THREAD
414 /* the tls-points-into-struct-thread trick is only good for threaded
415 * sbcl, because unithread sbcl doesn't have tls. So, we copy the
416 * appropriate values from struct thread here, and make sure that
417 * we use the appropriate SymbolValue macros to access any of the
418 * variable quantities from the C runtime. It's not quite OAOOM,
419 * it just feels like it */
420 SetSymbolValue(BINDING_STACK_START,(lispobj)th->binding_stack_start,th);
421 SetSymbolValue(CONTROL_STACK_START,(lispobj)th->control_stack_start,th);
422 SetSymbolValue(CONTROL_STACK_END,(lispobj)th->control_stack_end,th);
423 #if defined(LISP_FEATURE_X86) || defined (LISP_FEATURE_X86_64)
424 SetSymbolValue(BINDING_STACK_POINTER,(lispobj)th->binding_stack_pointer,th);
425 SetSymbolValue(ALIEN_STACK,(lispobj)th->alien_stack_pointer,th);
426 SetSymbolValue(PSEUDO_ATOMIC_BITS,(lispobj)th->pseudo_atomic_bits,th);
427 #else
428 current_binding_stack_pointer=th->binding_stack_pointer;
429 current_control_stack_pointer=th->control_stack_start;
430 #endif
431 #endif
432 bind_variable(CURRENT_CATCH_BLOCK,make_fixnum(0),th);
433 bind_variable(CURRENT_UNWIND_PROTECT_BLOCK,make_fixnum(0),th);
434 bind_variable(FREE_INTERRUPT_CONTEXT_INDEX,make_fixnum(0),th);
435 bind_variable(INTERRUPT_PENDING, NIL,th);
436 bind_variable(INTERRUPTS_ENABLED,T,th);
437 bind_variable(ALLOW_WITH_INTERRUPTS,T,th);
438 bind_variable(GC_PENDING,NIL,th);
439 bind_variable(ALLOC_SIGNAL,NIL,th);
440 #ifdef LISP_FEATURE_SB_THREAD
441 bind_variable(STOP_FOR_GC_PENDING,NIL,th);
442 #endif
444 th->interrupt_data = (struct interrupt_data *)
445 os_validate(0,(sizeof (struct interrupt_data)));
446 if (!th->interrupt_data) {
447 free_thread_struct(th);
448 return 0;
450 th->interrupt_data->pending_handler = 0;
451 th->no_tls_value_marker=initial_function;
453 th->stepping = NIL;
454 return th;
457 #ifdef LISP_FEATURE_MACH_EXCEPTION_HANDLER
458 mach_port_t setup_mach_exception_handling_thread();
459 kern_return_t mach_thread_init(mach_port_t thread_exception_port);
461 #endif
463 void create_initial_thread(lispobj initial_function) {
464 struct thread *th=create_thread_struct(initial_function);
465 if(th) {
466 #ifdef LISP_FEATURE_MACH_EXCEPTION_HANDLER
467 setup_mach_exception_handling_thread();
468 #endif
469 initial_thread_trampoline(th); /* no return */
470 } else lose("can't create initial thread\n");
473 #ifdef LISP_FEATURE_SB_THREAD
475 #ifndef __USE_XOPEN2K
476 extern int pthread_attr_setstack (pthread_attr_t *__attr, void *__stackaddr,
477 size_t __stacksize);
478 #endif
480 boolean create_os_thread(struct thread *th,os_thread_t *kid_tid)
482 /* The new thread inherits the restrictive signal mask set here,
483 * and enables signals again when it is set up properly. */
484 sigset_t newset,oldset;
485 boolean r=1;
486 int retcode = 0, initcode;
488 FSHOW_SIGNAL((stderr,"/create_os_thread: creating new thread\n"));
490 #ifdef LOCK_CREATE_THREAD
491 retcode = pthread_mutex_lock(&create_thread_lock);
492 gc_assert(retcode == 0);
493 FSHOW_SIGNAL((stderr,"/create_os_thread: got lock\n"));
494 #endif
495 sigemptyset(&newset);
496 /* Blocking deferrable signals is enough, no need to block
497 * SIG_STOP_FOR_GC because the child process is not linked onto
498 * all_threads until it's ready. */
499 sigaddset_deferrable(&newset);
500 thread_sigmask(SIG_BLOCK, &newset, &oldset);
502 if((initcode = pthread_attr_init(th->os_attr)) ||
503 /* call_into_lisp_first_time switches the stack for the initial thread. For the
504 * others, we use this. */
505 (pthread_attr_setstack(th->os_attr,th->control_stack_start,thread_control_stack_size)) ||
506 (retcode = pthread_create
507 (kid_tid,th->os_attr,(void *(*)(void *))new_thread_trampoline,th))) {
508 FSHOW_SIGNAL((stderr, "init = %d\n", initcode));
509 FSHOW_SIGNAL((stderr, printf("pthread_create returned %d, errno %d\n", retcode, errno)));
510 FSHOW_SIGNAL((stderr, "wanted stack size %d, min stack size %d\n",
511 cstack_size, PTHREAD_STACK_MIN));
512 if(retcode < 0) {
513 perror("create_os_thread");
515 r=0;
518 thread_sigmask(SIG_SETMASK,&oldset,0);
519 #ifdef LOCK_CREATE_THREAD
520 retcode = pthread_mutex_unlock(&create_thread_lock);
521 gc_assert(retcode == 0);
522 FSHOW_SIGNAL((stderr,"/create_os_thread: released lock\n"));
523 #endif
524 return r;
527 os_thread_t create_thread(lispobj initial_function) {
528 struct thread *th;
529 os_thread_t kid_tid;
531 /* Assuming that a fresh thread struct has no lisp objects in it,
532 * linking it to all_threads can be left to the thread itself
533 * without fear of gc lossage. initial_function violates this
534 * assumption and must stay pinned until the child starts up. */
535 th = create_thread_struct(initial_function);
536 if(th==0) return 0;
538 if (create_os_thread(th,&kid_tid)) {
539 return kid_tid;
540 } else {
541 free_thread_struct(th);
542 return 0;
546 /* Send the signo to os_thread, retry if the rt signal queue is
547 * full. */
549 kill_thread_safely(os_thread_t os_thread, int signo)
551 int r;
552 /* The man page does not mention EAGAIN as a valid return value
553 * for either pthread_kill or kill. But that's theory, this is
554 * practice. By waiting here we assume that the delivery of this
555 * signal is not necessary for the delivery of the signals in the
556 * queue. In other words, we _assume_ there are no deadlocks. */
557 while ((r=pthread_kill(os_thread,signo))==EAGAIN) {
558 /* wait a bit then try again in the hope of the rt signal
559 * queue not being full */
560 FSHOW_SIGNAL((stderr,"/rt signal queue full\n"));
561 /* FIXME: some kind of backoff (random, exponential) would be
562 * nice. */
563 sleep(1);
565 return r;
568 int signal_interrupt_thread(os_thread_t os_thread)
570 int status = kill_thread_safely(os_thread, SIG_INTERRUPT_THREAD);
571 if (status == 0) {
572 return 0;
573 } else if (status == ESRCH) {
574 return -1;
575 } else {
576 lose("cannot send SIG_INTERRUPT_THREAD to thread=%lu: %d, %s\n",
577 os_thread, status, strerror(status));
581 /* stopping the world is a two-stage process. From this thread we signal
582 * all the others with SIG_STOP_FOR_GC. The handler for this signal does
583 * the usual pseudo-atomic checks (we don't want to stop a thread while
584 * it's in the middle of allocation) then waits for another SIG_STOP_FOR_GC.
587 /* To avoid deadlocks when gc stops the world all clients of each
588 * mutex must enable or disable SIG_STOP_FOR_GC for the duration of
589 * holding the lock, but they must agree on which. */
590 void gc_stop_the_world()
592 struct thread *p,*th=arch_os_get_current_thread();
593 int status, lock_ret;
594 #ifdef LOCK_CREATE_THREAD
595 /* KLUDGE: Stopping the thread during pthread_create() causes deadlock
596 * on FreeBSD. */
597 FSHOW_SIGNAL((stderr,"/gc_stop_the_world:waiting on create_thread_lock, thread=%lu\n",
598 th->os_thread));
599 lock_ret = pthread_mutex_lock(&create_thread_lock);
600 gc_assert(lock_ret == 0);
601 FSHOW_SIGNAL((stderr,"/gc_stop_the_world:got create_thread_lock, thread=%lu\n",
602 th->os_thread));
603 #endif
604 FSHOW_SIGNAL((stderr,"/gc_stop_the_world:waiting on lock, thread=%lu\n",
605 th->os_thread));
606 /* keep threads from starting while the world is stopped. */
607 lock_ret = pthread_mutex_lock(&all_threads_lock); \
608 gc_assert(lock_ret == 0);
610 FSHOW_SIGNAL((stderr,"/gc_stop_the_world:got lock, thread=%lu\n",
611 th->os_thread));
612 /* stop all other threads by sending them SIG_STOP_FOR_GC */
613 for(p=all_threads; p; p=p->next) {
614 gc_assert(p->os_thread != 0);
615 FSHOW_SIGNAL((stderr,"/gc_stop_the_world: p->state: %x\n", p->state));
616 if((p!=th) && ((p->state==STATE_RUNNING))) {
617 FSHOW_SIGNAL((stderr,"/gc_stop_the_world: suspending %x, os_thread %x\n",
618 p, p->os_thread));
619 status=kill_thread_safely(p->os_thread,SIG_STOP_FOR_GC);
620 if (status==ESRCH) {
621 /* This thread has exited. */
622 gc_assert(p->state==STATE_DEAD);
623 } else if (status) {
624 lose("cannot send suspend thread=%lu: %d, %s\n",
625 p->os_thread,status,strerror(status));
629 FSHOW_SIGNAL((stderr,"/gc_stop_the_world:signals sent\n"));
630 /* wait for the running threads to stop or finish */
631 for(p=all_threads;p;) {
632 FSHOW_SIGNAL((stderr,"/gc_stop_the_world: th: %p, p: %p\n", th, p));
633 if((p!=th) && (p->state==STATE_RUNNING)) {
634 sched_yield();
635 } else {
636 p=p->next;
639 FSHOW_SIGNAL((stderr,"/gc_stop_the_world:end\n"));
642 void gc_start_the_world()
644 struct thread *p,*th=arch_os_get_current_thread();
645 int status, lock_ret;
646 /* if a resumed thread creates a new thread before we're done with
647 * this loop, the new thread will get consed on the front of
648 * all_threads, but it won't have been stopped so won't need
649 * restarting */
650 FSHOW_SIGNAL((stderr,"/gc_start_the_world:begin\n"));
651 for(p=all_threads;p;p=p->next) {
652 gc_assert(p->os_thread!=0);
653 if((p!=th) && (p->state!=STATE_DEAD)) {
654 if(p->state!=STATE_SUSPENDED) {
655 lose("gc_start_the_world: wrong thread state is %d\n",
656 fixnum_value(p->state));
658 FSHOW_SIGNAL((stderr, "/gc_start_the_world: resuming %lu\n",
659 p->os_thread));
660 p->state=STATE_RUNNING;
662 #if defined(SIG_RESUME_FROM_GC)
663 status=kill_thread_safely(p->os_thread,SIG_RESUME_FROM_GC);
664 #else
665 status=kill_thread_safely(p->os_thread,SIG_STOP_FOR_GC);
666 #endif
667 if (status) {
668 lose("cannot resume thread=%lu: %d, %s\n",
669 p->os_thread,status,strerror(status));
673 /* If we waited here until all threads leave STATE_SUSPENDED, then
674 * SIG_STOP_FOR_GC wouldn't need to be a rt signal. That has some
675 * performance implications, but does away with the 'rt signal
676 * queue full' problem. */
678 lock_ret = pthread_mutex_unlock(&all_threads_lock);
679 gc_assert(lock_ret == 0);
680 #ifdef LOCK_CREATE_THREAD
681 lock_ret = pthread_mutex_unlock(&create_thread_lock);
682 gc_assert(lock_ret == 0);
683 #endif
685 FSHOW_SIGNAL((stderr,"/gc_start_the_world:end\n"));
687 #endif
690 thread_yield()
692 #ifdef LISP_FEATURE_SB_THREAD
693 return sched_yield();
694 #else
695 return 0;
696 #endif