(__pthread_lock): Force lock->__status to be read from memory on every spin.
[glibc.git] / linuxthreads / pthread.c
blob5a2ade7446f03d46d4b4d5e2478aaf6726692e1a
2 /* Linuxthreads - a simple clone()-based implementation of Posix */
3 /* threads for Linux. */
4 /* Copyright (C) 1996 Xavier Leroy (Xavier.Leroy@inria.fr) */
5 /* */
6 /* This program is free software; you can redistribute it and/or */
7 /* modify it under the terms of the GNU Library General Public License */
8 /* as published by the Free Software Foundation; either version 2 */
9 /* of the License, or (at your option) any later version. */
10 /* */
11 /* This program is distributed in the hope that it will be useful, */
12 /* but WITHOUT ANY WARRANTY; without even the implied warranty of */
13 /* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the */
14 /* GNU Library General Public License for more details. */
16 /* Thread creation, initialization, and basic low-level routines */
18 #include <errno.h>
19 #include <stddef.h>
20 #include <stdio.h>
21 #include <stdlib.h>
22 #include <string.h>
23 #include <unistd.h>
24 #include <fcntl.h>
25 #include <sys/wait.h>
26 #include <sys/resource.h>
27 #include <sys/sysctl.h>
28 #include <shlib-compat.h>
29 #include "pthread.h"
30 #include "internals.h"
31 #include "spinlock.h"
32 #include "restart.h"
34 /* We need the global/static resolver state here. */
35 #include <resolv.h>
36 #undef _res
38 extern struct __res_state _res;
40 /* Sanity check. */
41 #if __ASSUME_REALTIME_SIGNALS && !defined __SIGRTMIN
42 # error "This must not happen; new kernel assumed but old headers"
43 #endif
45 /* These variables are used by the setup code. */
46 extern int _errno;
47 extern int _h_errno;
49 /* Descriptor of the initial thread */
51 struct _pthread_descr_struct __pthread_initial_thread = {
54 &__pthread_initial_thread /* pthread_descr self */
57 &__pthread_initial_thread, /* pthread_descr p_nextlive */
58 &__pthread_initial_thread, /* pthread_descr p_prevlive */
59 NULL, /* pthread_descr p_nextwaiting */
60 NULL, /* pthread_descr p_nextlock */
61 PTHREAD_THREADS_MAX, /* pthread_t p_tid */
62 0, /* int p_pid */
63 0, /* int p_priority */
64 &__pthread_handles[0].h_lock, /* struct _pthread_fastlock * p_lock */
65 0, /* int p_signal */
66 NULL, /* sigjmp_buf * p_signal_buf */
67 NULL, /* sigjmp_buf * p_cancel_buf */
68 0, /* char p_terminated */
69 0, /* char p_detached */
70 0, /* char p_exited */
71 NULL, /* void * p_retval */
72 0, /* int p_retval */
73 NULL, /* pthread_descr p_joining */
74 NULL, /* struct _pthread_cleanup_buffer * p_cleanup */
75 0, /* char p_cancelstate */
76 0, /* char p_canceltype */
77 0, /* char p_canceled */
78 &_errno, /* int *p_errnop */
79 0, /* int p_errno */
80 &_h_errno, /* int *p_h_errnop */
81 0, /* int p_h_errno */
82 NULL, /* char * p_in_sighandler */
83 0, /* char p_sigwaiting */
84 PTHREAD_START_ARGS_INITIALIZER(NULL),
85 /* struct pthread_start_args p_start_args */
86 {NULL}, /* void ** p_specific[PTHREAD_KEY_1STLEVEL_SIZE] */
87 {NULL}, /* void * p_libc_specific[_LIBC_TSD_KEY_N] */
88 1, /* int p_userstack */
89 NULL, /* void * p_guardaddr */
90 0, /* size_t p_guardsize */
91 0, /* Always index 0 */
92 0, /* int p_report_events */
93 {{{0, }}, 0, NULL}, /* td_eventbuf_t p_eventbuf */
94 __ATOMIC_INITIALIZER, /* struct pthread_atomic p_resume_count */
95 0, /* char p_woken_by_cancel */
96 0, /* char p_condvar_avail */
97 0, /* char p_sem_avail */
98 NULL, /* struct pthread_extricate_if *p_extricate */
99 NULL, /* pthread_readlock_info *p_readlock_list; */
100 NULL, /* pthread_readlock_info *p_readlock_free; */
101 0 /* int p_untracked_readlock_count; */
104 /* Descriptor of the manager thread; none of this is used but the error
105 variables, the p_pid and p_priority fields,
106 and the address for identification. */
108 struct _pthread_descr_struct __pthread_manager_thread = {
111 &__pthread_manager_thread /* pthread_descr self */
114 NULL, /* pthread_descr p_nextlive */
115 NULL, /* pthread_descr p_prevlive */
116 NULL, /* pthread_descr p_nextwaiting */
117 NULL, /* pthread_descr p_nextlock */
118 0, /* int p_tid */
119 0, /* int p_pid */
120 0, /* int p_priority */
121 &__pthread_handles[1].h_lock, /* struct _pthread_fastlock * p_lock */
122 0, /* int p_signal */
123 NULL, /* sigjmp_buf * p_signal_buf */
124 NULL, /* sigjmp_buf * p_cancel_buf */
125 0, /* char p_terminated */
126 0, /* char p_detached */
127 0, /* char p_exited */
128 NULL, /* void * p_retval */
129 0, /* int p_retval */
130 NULL, /* pthread_descr p_joining */
131 NULL, /* struct _pthread_cleanup_buffer * p_cleanup */
132 0, /* char p_cancelstate */
133 0, /* char p_canceltype */
134 0, /* char p_canceled */
135 &__pthread_manager_thread.p_errno, /* int *p_errnop */
136 0, /* int p_errno */
137 NULL, /* int *p_h_errnop */
138 0, /* int p_h_errno */
139 NULL, /* char * p_in_sighandler */
140 0, /* char p_sigwaiting */
141 PTHREAD_START_ARGS_INITIALIZER(__pthread_manager),
142 /* struct pthread_start_args p_start_args */
143 {NULL}, /* void ** p_specific[PTHREAD_KEY_1STLEVEL_SIZE] */
144 {NULL}, /* void * p_libc_specific[_LIBC_TSD_KEY_N] */
145 0, /* int p_userstack */
146 NULL, /* void * p_guardaddr */
147 0, /* size_t p_guardsize */
148 1, /* Always index 1 */
149 0, /* int p_report_events */
150 {{{0, }}, 0, NULL}, /* td_eventbuf_t p_eventbuf */
151 __ATOMIC_INITIALIZER, /* struct pthread_atomic p_resume_count */
152 0, /* char p_woken_by_cancel */
153 0, /* char p_condvar_avail */
154 0, /* char p_sem_avail */
155 NULL, /* struct pthread_extricate_if *p_extricate */
156 NULL, /* pthread_readlock_info *p_readlock_list; */
157 NULL, /* pthread_readlock_info *p_readlock_free; */
158 0 /* int p_untracked_readlock_count; */
161 /* Pointer to the main thread (the father of the thread manager thread) */
162 /* Originally, this is the initial thread, but this changes after fork() */
164 pthread_descr __pthread_main_thread = &__pthread_initial_thread;
166 /* Limit between the stack of the initial thread (above) and the
167 stacks of other threads (below). Aligned on a STACK_SIZE boundary. */
169 char *__pthread_initial_thread_bos;
171 /* File descriptor for sending requests to the thread manager. */
172 /* Initially -1, meaning that the thread manager is not running. */
174 int __pthread_manager_request = -1;
176 /* Other end of the pipe for sending requests to the thread manager. */
178 int __pthread_manager_reader;
180 /* Limits of the thread manager stack */
182 char *__pthread_manager_thread_bos;
183 char *__pthread_manager_thread_tos;
185 /* For process-wide exit() */
187 int __pthread_exit_requested;
188 int __pthread_exit_code;
190 /* Maximum stack size. */
191 size_t __pthread_max_stacksize;
193 /* Nozero if the machine has more than one processor. */
194 int __pthread_smp_kernel;
197 #if !__ASSUME_REALTIME_SIGNALS
198 /* Pointers that select new or old suspend/resume functions
199 based on availability of rt signals. */
201 void (*__pthread_restart)(pthread_descr) = __pthread_restart_old;
202 void (*__pthread_suspend)(pthread_descr) = __pthread_suspend_old;
203 int (*__pthread_timedsuspend)(pthread_descr, const struct timespec *) = __pthread_timedsuspend_old;
204 #endif /* __ASSUME_REALTIME_SIGNALS */
206 /* Communicate relevant LinuxThreads constants to gdb */
208 const int __pthread_threads_max = PTHREAD_THREADS_MAX;
209 const int __pthread_sizeof_handle = sizeof(struct pthread_handle_struct);
210 const int __pthread_offsetof_descr = offsetof(struct pthread_handle_struct,
211 h_descr);
212 const int __pthread_offsetof_pid = offsetof(struct _pthread_descr_struct,
213 p_pid);
214 const int __linuxthread_pthread_sizeof_descr
215 = sizeof(struct _pthread_descr_struct);
217 /* Forward declarations */
219 static void pthread_onexit_process(int retcode, void *arg);
220 #ifndef HAVE_Z_NODELETE
221 static void pthread_atexit_process(void *arg, int retcode);
222 static void pthread_atexit_retcode(void *arg, int retcode);
223 #endif
224 static void pthread_handle_sigcancel(int sig);
225 static void pthread_handle_sigrestart(int sig);
226 static void pthread_handle_sigdebug(int sig);
228 /* Signal numbers used for the communication.
229 In these variables we keep track of the used variables. If the
230 platform does not support any real-time signals we will define the
231 values to some unreasonable value which will signal failing of all
232 the functions below. */
233 #ifndef __SIGRTMIN
234 static int current_rtmin = -1;
235 static int current_rtmax = -1;
236 int __pthread_sig_restart = SIGUSR1;
237 int __pthread_sig_cancel = SIGUSR2;
238 int __pthread_sig_debug;
239 #else
240 static int current_rtmin;
241 static int current_rtmax;
243 #if __SIGRTMAX - __SIGRTMIN >= 3
244 int __pthread_sig_restart = __SIGRTMIN;
245 int __pthread_sig_cancel = __SIGRTMIN + 1;
246 int __pthread_sig_debug = __SIGRTMIN + 2;
247 #else
248 int __pthread_sig_restart = SIGUSR1;
249 int __pthread_sig_cancel = SIGUSR2;
250 int __pthread_sig_debug;
251 #endif
253 static int rtsigs_initialized;
255 #if !__ASSUME_REALTIME_SIGNALS
256 # include "testrtsig.h"
257 #endif
259 static void
260 init_rtsigs (void)
262 #if !__ASSUME_REALTIME_SIGNALS
263 if (__builtin_expect (!kernel_has_rtsig (), 0))
265 current_rtmin = -1;
266 current_rtmax = -1;
267 # if __SIGRTMAX - __SIGRTMIN >= 3
268 __pthread_sig_restart = SIGUSR1;
269 __pthread_sig_cancel = SIGUSR2;
270 __pthread_sig_debug = 0;
271 # endif
273 else
274 #endif /* __ASSUME_REALTIME_SIGNALS */
276 #if __SIGRTMAX - __SIGRTMIN >= 3
277 current_rtmin = __SIGRTMIN + 3;
278 # if !__ASSUME_REALTIME_SIGNALS
279 __pthread_restart = __pthread_restart_new;
280 __pthread_suspend = __pthread_wait_for_restart_signal;
281 __pthread_timedsuspend = __pthread_timedsuspend_new;
282 # endif /* __ASSUME_REALTIME_SIGNALS */
283 #else
284 current_rtmin = __SIGRTMIN;
285 #endif
287 current_rtmax = __SIGRTMAX;
290 rtsigs_initialized = 1;
292 #endif
294 /* Return number of available real-time signal with highest priority. */
296 __libc_current_sigrtmin (void)
298 #ifdef __SIGRTMIN
299 if (__builtin_expect (!rtsigs_initialized, 0))
300 init_rtsigs ();
301 #endif
302 return current_rtmin;
305 /* Return number of available real-time signal with lowest priority. */
307 __libc_current_sigrtmax (void)
309 #ifdef __SIGRTMIN
310 if (__builtin_expect (!rtsigs_initialized, 0))
311 init_rtsigs ();
312 #endif
313 return current_rtmax;
316 /* Allocate real-time signal with highest/lowest available
317 priority. Please note that we don't use a lock since we assume
318 this function to be called at program start. */
320 __libc_allocate_rtsig (int high)
322 #ifndef __SIGRTMIN
323 return -1;
324 #else
325 if (__builtin_expect (!rtsigs_initialized, 0))
326 init_rtsigs ();
327 if (__builtin_expect (current_rtmin == -1, 0)
328 || __builtin_expect (current_rtmin > current_rtmax, 0))
329 /* We don't have anymore signal available. */
330 return -1;
332 return high ? current_rtmin++ : current_rtmax--;
333 #endif
336 /* The function we use to get the kernel revision. */
337 extern int __sysctl (int *name, int nlen, void *oldval, size_t *oldlenp,
338 void *newval, size_t newlen);
340 /* Test whether the machine has more than one processor. This is not the
341 best test but good enough. More complicated tests would require `malloc'
342 which is not available at that time. */
343 static int
344 is_smp_system (void)
346 static const int sysctl_args[] = { CTL_KERN, KERN_VERSION };
347 char buf[512];
348 size_t reslen = sizeof (buf);
350 /* Try reading the number using `sysctl' first. */
351 if (__sysctl ((int *) sysctl_args,
352 sizeof (sysctl_args) / sizeof (sysctl_args[0]),
353 buf, &reslen, NULL, 0) < 0)
355 /* This was not successful. Now try reading the /proc filesystem. */
356 int fd = __open ("/proc/sys/kernel/version", O_RDONLY);
357 if (__builtin_expect (fd, 0) == -1
358 || (reslen = __read (fd, buf, sizeof (buf))) <= 0)
359 /* This also didn't work. We give up and say it's a UP machine. */
360 buf[0] = '\0';
362 __close (fd);
365 return strstr (buf, "SMP") != NULL;
369 /* Initialize the pthread library.
370 Initialization is split in two functions:
371 - a constructor function that blocks the __pthread_sig_restart signal
372 (must do this very early, since the program could capture the signal
373 mask with e.g. sigsetjmp before creating the first thread);
374 - a regular function called from pthread_create when needed. */
376 static void pthread_initialize(void) __attribute__((constructor));
378 #ifndef HAVE_Z_NODELETE
379 extern void *__dso_handle __attribute__ ((weak));
380 #endif
383 /* Do some minimal initialization which has to be done during the
384 startup of the C library. */
385 void
386 __pthread_initialize_minimal(void)
388 /* If we have special thread_self processing, initialize that for the
389 main thread now. */
390 #ifdef INIT_THREAD_SELF
391 INIT_THREAD_SELF(&__pthread_initial_thread, 0);
392 #endif
396 static void pthread_initialize(void)
398 struct sigaction sa;
399 sigset_t mask;
401 /* If already done (e.g. by a constructor called earlier!), bail out */
402 if (__pthread_initial_thread_bos != NULL) return;
403 #ifdef TEST_FOR_COMPARE_AND_SWAP
404 /* Test if compare-and-swap is available */
405 __pthread_has_cas = compare_and_swap_is_available();
406 #endif
407 /* For the initial stack, reserve at least STACK_SIZE bytes of stack
408 below the current stack address, and align that on a
409 STACK_SIZE boundary. */
410 __pthread_initial_thread_bos =
411 (char *)(((long)CURRENT_STACK_FRAME - 2 * STACK_SIZE) & ~(STACK_SIZE - 1));
412 /* Update the descriptor for the initial thread. */
413 __pthread_initial_thread.p_pid = __getpid();
414 /* Likewise for the resolver state _res. */
415 __pthread_initial_thread.p_resp = &_res;
416 #ifdef __SIGRTMIN
417 /* Initialize real-time signals. */
418 init_rtsigs ();
419 #endif
420 /* Setup signal handlers for the initial thread.
421 Since signal handlers are shared between threads, these settings
422 will be inherited by all other threads. */
423 sa.sa_handler = pthread_handle_sigrestart;
424 sigemptyset(&sa.sa_mask);
425 sa.sa_flags = 0;
426 __libc_sigaction(__pthread_sig_restart, &sa, NULL);
427 sa.sa_handler = pthread_handle_sigcancel;
428 // sa.sa_flags = 0;
429 __libc_sigaction(__pthread_sig_cancel, &sa, NULL);
430 if (__pthread_sig_debug > 0) {
431 sa.sa_handler = pthread_handle_sigdebug;
432 sigemptyset(&sa.sa_mask);
433 // sa.sa_flags = 0;
434 __libc_sigaction(__pthread_sig_debug, &sa, NULL);
436 /* Initially, block __pthread_sig_restart. Will be unblocked on demand. */
437 sigemptyset(&mask);
438 sigaddset(&mask, __pthread_sig_restart);
439 sigprocmask(SIG_BLOCK, &mask, NULL);
440 /* Register an exit function to kill all other threads. */
441 /* Do it early so that user-registered atexit functions are called
442 before pthread_*exit_process. */
443 #ifndef HAVE_Z_NODELETE
444 if (__builtin_expect (&__dso_handle != NULL, 1))
445 __cxa_atexit ((void (*) (void *)) pthread_atexit_process, NULL,
446 __dso_handle);
447 else
448 #endif
449 __on_exit (pthread_onexit_process, NULL);
450 /* How many processors. */
451 __pthread_smp_kernel = is_smp_system ();
454 void __pthread_initialize(void)
456 pthread_initialize();
459 int __pthread_initialize_manager(void)
461 int manager_pipe[2];
462 int pid;
463 struct pthread_request request;
464 struct rlimit limit;
465 int max_stack;
467 #ifndef HAVE_Z_NODELETE
468 if (__builtin_expect (&__dso_handle != NULL, 1))
469 __cxa_atexit ((void (*) (void *)) pthread_atexit_retcode, NULL,
470 __dso_handle);
471 #endif
473 getrlimit(RLIMIT_STACK, &limit);
474 #ifdef FLOATING_STACKS
475 if (limit.rlim_cur == RLIM_INFINITY)
476 limit.rlim_cur = ARCH_STACK_MAX_SIZE;
477 # ifdef NEED_SEPARATE_REGISTER_STACK
478 max_stack = limit.rlim_cur / 2;
479 # else
480 max_stack = limit.rlim_cur;
481 #endif
483 __pthread_max_stacksize = max_stack;
484 #else
485 /* Play with the stack size limit to make sure that no stack ever grows
486 beyond STACK_SIZE minus one page (to act as a guard page). */
487 # ifdef NEED_SEPARATE_REGISTER_STACK
488 /* STACK_SIZE bytes hold both the main stack and register backing
489 store. The rlimit value applies to each individually. */
490 max_stack = STACK_SIZE/2 - __getpagesize ();
491 # else
492 max_stack = STACK_SIZE - __getpagesize();
493 # endif
494 if (limit.rlim_cur > max_stack) {
495 limit.rlim_cur = max_stack;
496 setrlimit(RLIMIT_STACK, &limit);
498 #endif
499 /* If basic initialization not done yet (e.g. we're called from a
500 constructor run before our constructor), do it now */
501 if (__pthread_initial_thread_bos == NULL) pthread_initialize();
502 /* Setup stack for thread manager */
503 __pthread_manager_thread_bos = malloc(THREAD_MANAGER_STACK_SIZE);
504 if (__pthread_manager_thread_bos == NULL) return -1;
505 __pthread_manager_thread_tos =
506 __pthread_manager_thread_bos + THREAD_MANAGER_STACK_SIZE;
507 /* Setup pipe to communicate with thread manager */
508 if (pipe(manager_pipe) == -1) {
509 free(__pthread_manager_thread_bos);
510 return -1;
512 /* Start the thread manager */
513 pid = 0;
514 if (__builtin_expect (__pthread_initial_thread.p_report_events, 0))
516 /* It's a bit more complicated. We have to report the creation of
517 the manager thread. */
518 int idx = __td_eventword (TD_CREATE);
519 uint32_t mask = __td_eventmask (TD_CREATE);
521 if ((mask & (__pthread_threads_events.event_bits[idx]
522 | __pthread_initial_thread.p_eventbuf.eventmask.event_bits[idx]))
523 != 0)
525 __pthread_lock(__pthread_manager_thread.p_lock, NULL);
527 #ifdef NEED_SEPARATE_REGISTER_STACK
528 pid = __clone2(__pthread_manager_event,
529 (void **) __pthread_manager_thread_bos,
530 THREAD_MANAGER_STACK_SIZE,
531 CLONE_VM | CLONE_FS | CLONE_FILES | CLONE_SIGHAND,
532 (void *)(long)manager_pipe[0]);
533 #else
534 pid = __clone(__pthread_manager_event,
535 (void **) __pthread_manager_thread_tos,
536 CLONE_VM | CLONE_FS | CLONE_FILES | CLONE_SIGHAND,
537 (void *)(long)manager_pipe[0]);
538 #endif
540 if (pid != -1)
542 /* Now fill in the information about the new thread in
543 the newly created thread's data structure. We cannot let
544 the new thread do this since we don't know whether it was
545 already scheduled when we send the event. */
546 __pthread_manager_thread.p_eventbuf.eventdata =
547 &__pthread_manager_thread;
548 __pthread_manager_thread.p_eventbuf.eventnum = TD_CREATE;
549 __pthread_last_event = &__pthread_manager_thread;
550 __pthread_manager_thread.p_tid = 2* PTHREAD_THREADS_MAX + 1;
551 __pthread_manager_thread.p_pid = pid;
553 /* Now call the function which signals the event. */
554 __linuxthreads_create_event ();
557 /* Now restart the thread. */
558 __pthread_unlock(__pthread_manager_thread.p_lock);
562 if (__builtin_expect (pid, 0) == 0)
564 #ifdef NEED_SEPARATE_REGISTER_STACK
565 pid = __clone2(__pthread_manager, (void **) __pthread_manager_thread_bos,
566 THREAD_MANAGER_STACK_SIZE,
567 CLONE_VM | CLONE_FS | CLONE_FILES | CLONE_SIGHAND,
568 (void *)(long)manager_pipe[0]);
569 #else
570 pid = __clone(__pthread_manager, (void **) __pthread_manager_thread_tos,
571 CLONE_VM | CLONE_FS | CLONE_FILES | CLONE_SIGHAND,
572 (void *)(long)manager_pipe[0]);
573 #endif
575 if (__builtin_expect (pid, 0) == -1) {
576 free(__pthread_manager_thread_bos);
577 __libc_close(manager_pipe[0]);
578 __libc_close(manager_pipe[1]);
579 return -1;
581 __pthread_manager_request = manager_pipe[1]; /* writing end */
582 __pthread_manager_reader = manager_pipe[0]; /* reading end */
583 __pthread_manager_thread.p_tid = 2* PTHREAD_THREADS_MAX + 1;
584 __pthread_manager_thread.p_pid = pid;
585 /* Make gdb aware of new thread manager */
586 if (__builtin_expect (__pthread_threads_debug, 0) && __pthread_sig_debug > 0)
588 raise(__pthread_sig_debug);
589 /* We suspend ourself and gdb will wake us up when it is
590 ready to handle us. */
591 __pthread_wait_for_restart_signal(thread_self());
593 /* Synchronize debugging of the thread manager */
594 request.req_kind = REQ_DEBUG;
595 __libc_write(__pthread_manager_request, (char *) &request, sizeof(request));
596 return 0;
599 /* Thread creation */
601 int __pthread_create_2_1(pthread_t *thread, const pthread_attr_t *attr,
602 void * (*start_routine)(void *), void *arg)
604 pthread_descr self = thread_self();
605 struct pthread_request request;
606 int retval;
607 if (__builtin_expect (__pthread_manager_request, 0) < 0) {
608 if (__pthread_initialize_manager() < 0) return EAGAIN;
610 request.req_thread = self;
611 request.req_kind = REQ_CREATE;
612 request.req_args.create.attr = attr;
613 request.req_args.create.fn = start_routine;
614 request.req_args.create.arg = arg;
615 sigprocmask(SIG_SETMASK, (const sigset_t *) NULL,
616 &request.req_args.create.mask);
617 __libc_write(__pthread_manager_request, (char *) &request, sizeof(request));
618 suspend(self);
619 retval = THREAD_GETMEM(self, p_retcode);
620 if (__builtin_expect (retval, 0) == 0)
621 *thread = (pthread_t) THREAD_GETMEM(self, p_retval);
622 return retval;
625 versioned_symbol (libpthread, __pthread_create_2_1, pthread_create, GLIBC_2_1);
627 #if SHLIB_COMPAT (libpthread, GLIBC_2_0, GLIBC_2_1)
629 int __pthread_create_2_0(pthread_t *thread, const pthread_attr_t *attr,
630 void * (*start_routine)(void *), void *arg)
632 /* The ATTR attribute is not really of type `pthread_attr_t *'. It has
633 the old size and access to the new members might crash the program.
634 We convert the struct now. */
635 pthread_attr_t new_attr;
637 if (attr != NULL)
639 size_t ps = __getpagesize ();
641 memcpy (&new_attr, attr,
642 (size_t) &(((pthread_attr_t*)NULL)->__guardsize));
643 new_attr.__guardsize = ps;
644 new_attr.__stackaddr_set = 0;
645 new_attr.__stackaddr = NULL;
646 new_attr.__stacksize = STACK_SIZE - ps;
647 attr = &new_attr;
649 return __pthread_create_2_1 (thread, attr, start_routine, arg);
651 compat_symbol (libpthread, __pthread_create_2_0, pthread_create, GLIBC_2_0);
652 #endif
654 /* Simple operations on thread identifiers */
656 pthread_t pthread_self(void)
658 pthread_descr self = thread_self();
659 return THREAD_GETMEM(self, p_tid);
662 int pthread_equal(pthread_t thread1, pthread_t thread2)
664 return thread1 == thread2;
667 /* Helper function for thread_self in the case of user-provided stacks */
669 #ifndef THREAD_SELF
671 pthread_descr __pthread_find_self()
673 char * sp = CURRENT_STACK_FRAME;
674 pthread_handle h;
676 /* __pthread_handles[0] is the initial thread, __pthread_handles[1] is
677 the manager threads handled specially in thread_self(), so start at 2 */
678 h = __pthread_handles + 2;
679 while (! (sp <= (char *) h->h_descr && sp >= h->h_bottom)) h++;
680 return h->h_descr;
683 #endif
685 /* Thread scheduling */
687 int pthread_setschedparam(pthread_t thread, int policy,
688 const struct sched_param *param)
690 pthread_handle handle = thread_handle(thread);
691 pthread_descr th;
693 __pthread_lock(&handle->h_lock, NULL);
694 if (__builtin_expect (invalid_handle(handle, thread), 0)) {
695 __pthread_unlock(&handle->h_lock);
696 return ESRCH;
698 th = handle->h_descr;
699 if (__builtin_expect (__sched_setscheduler(th->p_pid, policy, param) == -1,
700 0)) {
701 __pthread_unlock(&handle->h_lock);
702 return errno;
704 th->p_priority = policy == SCHED_OTHER ? 0 : param->sched_priority;
705 __pthread_unlock(&handle->h_lock);
706 if (__pthread_manager_request >= 0)
707 __pthread_manager_adjust_prio(th->p_priority);
708 return 0;
711 int pthread_getschedparam(pthread_t thread, int *policy,
712 struct sched_param *param)
714 pthread_handle handle = thread_handle(thread);
715 int pid, pol;
717 __pthread_lock(&handle->h_lock, NULL);
718 if (__builtin_expect (invalid_handle(handle, thread), 0)) {
719 __pthread_unlock(&handle->h_lock);
720 return ESRCH;
722 pid = handle->h_descr->p_pid;
723 __pthread_unlock(&handle->h_lock);
724 pol = __sched_getscheduler(pid);
725 if (__builtin_expect (pol, 0) == -1) return errno;
726 if (__sched_getparam(pid, param) == -1) return errno;
727 *policy = pol;
728 return 0;
731 int __pthread_yield ()
733 /* For now this is equivalent with the POSIX call. */
734 return sched_yield ();
736 weak_alias (__pthread_yield, pthread_yield)
738 /* Process-wide exit() request */
740 static void pthread_onexit_process(int retcode, void *arg)
742 if (__builtin_expect (__pthread_manager_request, 0) >= 0) {
743 struct pthread_request request;
744 pthread_descr self = thread_self();
746 request.req_thread = self;
747 request.req_kind = REQ_PROCESS_EXIT;
748 request.req_args.exit.code = retcode;
749 __libc_write(__pthread_manager_request,
750 (char *) &request, sizeof(request));
751 suspend(self);
752 /* Main thread should accumulate times for thread manager and its
753 children, so that timings for main thread account for all threads. */
754 if (self == __pthread_main_thread)
756 waitpid(__pthread_manager_thread.p_pid, NULL, __WCLONE);
757 free (__pthread_manager_thread_bos);
758 __pthread_manager_thread_bos = __pthread_manager_thread_tos = NULL;
763 #ifndef HAVE_Z_NODELETE
764 static int __pthread_atexit_retcode;
766 static void pthread_atexit_process(void *arg, int retcode)
768 pthread_onexit_process (retcode ?: __pthread_atexit_retcode, arg);
771 static void pthread_atexit_retcode(void *arg, int retcode)
773 __pthread_atexit_retcode = retcode;
775 #endif
777 /* The handler for the RESTART signal just records the signal received
778 in the thread descriptor, and optionally performs a siglongjmp
779 (for pthread_cond_timedwait). */
781 static void pthread_handle_sigrestart(int sig)
783 pthread_descr self = thread_self();
784 THREAD_SETMEM(self, p_signal, sig);
785 if (THREAD_GETMEM(self, p_signal_jmp) != NULL)
786 siglongjmp(*THREAD_GETMEM(self, p_signal_jmp), 1);
789 /* The handler for the CANCEL signal checks for cancellation
790 (in asynchronous mode), for process-wide exit and exec requests.
791 For the thread manager thread, redirect the signal to
792 __pthread_manager_sighandler. */
794 static void pthread_handle_sigcancel(int sig)
796 pthread_descr self = thread_self();
797 sigjmp_buf * jmpbuf;
799 if (self == &__pthread_manager_thread)
801 __pthread_manager_sighandler(sig);
802 return;
804 if (__builtin_expect (__pthread_exit_requested, 0)) {
805 /* Main thread should accumulate times for thread manager and its
806 children, so that timings for main thread account for all threads. */
807 if (self == __pthread_main_thread)
808 waitpid(__pthread_manager_thread.p_pid, NULL, __WCLONE);
809 _exit(__pthread_exit_code);
811 if (__builtin_expect (THREAD_GETMEM(self, p_canceled), 0)
812 && THREAD_GETMEM(self, p_cancelstate) == PTHREAD_CANCEL_ENABLE) {
813 if (THREAD_GETMEM(self, p_canceltype) == PTHREAD_CANCEL_ASYNCHRONOUS)
814 pthread_exit(PTHREAD_CANCELED);
815 jmpbuf = THREAD_GETMEM(self, p_cancel_jmp);
816 if (jmpbuf != NULL) {
817 THREAD_SETMEM(self, p_cancel_jmp, NULL);
818 siglongjmp(*jmpbuf, 1);
823 /* Handler for the DEBUG signal.
824 The debugging strategy is as follows:
825 On reception of a REQ_DEBUG request (sent by new threads created to
826 the thread manager under debugging mode), the thread manager throws
827 __pthread_sig_debug to itself. The debugger (if active) intercepts
828 this signal, takes into account new threads and continue execution
829 of the thread manager by propagating the signal because it doesn't
830 know what it is specifically done for. In the current implementation,
831 the thread manager simply discards it. */
833 static void pthread_handle_sigdebug(int sig)
835 /* Nothing */
838 /* Reset the state of the thread machinery after a fork().
839 Close the pipe used for requests and set the main thread to the forked
840 thread.
841 Notice that we can't free the stack segments, as the forked thread
842 may hold pointers into them. */
844 void __pthread_reset_main_thread()
846 pthread_descr self = thread_self();
847 struct rlimit limit;
849 if (__pthread_manager_request != -1) {
850 /* Free the thread manager stack */
851 free(__pthread_manager_thread_bos);
852 __pthread_manager_thread_bos = __pthread_manager_thread_tos = NULL;
853 /* Close the two ends of the pipe */
854 __libc_close(__pthread_manager_request);
855 __libc_close(__pthread_manager_reader);
856 __pthread_manager_request = __pthread_manager_reader = -1;
859 /* Update the pid of the main thread */
860 THREAD_SETMEM(self, p_pid, __getpid());
861 /* Make the forked thread the main thread */
862 __pthread_main_thread = self;
863 THREAD_SETMEM(self, p_nextlive, self);
864 THREAD_SETMEM(self, p_prevlive, self);
865 /* Now this thread modifies the global variables. */
866 THREAD_SETMEM(self, p_errnop, &_errno);
867 THREAD_SETMEM(self, p_h_errnop, &_h_errno);
868 THREAD_SETMEM(self, p_resp, &_res);
870 if (getrlimit (RLIMIT_STACK, &limit) == 0
871 && limit.rlim_cur != limit.rlim_max) {
872 limit.rlim_cur = limit.rlim_max;
873 setrlimit (STACK_SIZE, &limit);
877 /* Process-wide exec() request */
879 void __pthread_kill_other_threads_np(void)
881 struct sigaction sa;
882 /* Terminate all other threads and thread manager */
883 pthread_onexit_process(0, NULL);
884 /* Make current thread the main thread in case the calling thread
885 changes its mind, does not exec(), and creates new threads instead. */
886 __pthread_reset_main_thread();
888 /* Reset the signal handlers behaviour for the signals the
889 implementation uses since this would be passed to the new
890 process. */
891 sigemptyset(&sa.sa_mask);
892 sa.sa_flags = 0;
893 sa.sa_handler = SIG_DFL;
894 __libc_sigaction(__pthread_sig_restart, &sa, NULL);
895 __libc_sigaction(__pthread_sig_cancel, &sa, NULL);
896 if (__pthread_sig_debug > 0)
897 __libc_sigaction(__pthread_sig_debug, &sa, NULL);
899 weak_alias (__pthread_kill_other_threads_np, pthread_kill_other_threads_np)
901 /* Concurrency symbol level. */
902 static int current_level;
904 int __pthread_setconcurrency(int level)
906 /* We don't do anything unless we have found a useful interpretation. */
907 current_level = level;
908 return 0;
910 weak_alias (__pthread_setconcurrency, pthread_setconcurrency)
912 int __pthread_getconcurrency(void)
914 return current_level;
916 weak_alias (__pthread_getconcurrency, pthread_getconcurrency)
918 /* Primitives for controlling thread execution */
920 void __pthread_wait_for_restart_signal(pthread_descr self)
922 sigset_t mask;
924 sigprocmask(SIG_SETMASK, NULL, &mask); /* Get current signal mask */
925 sigdelset(&mask, __pthread_sig_restart); /* Unblock the restart signal */
926 THREAD_SETMEM(self, p_signal, 0);
927 do {
928 sigsuspend(&mask); /* Wait for signal */
929 } while (THREAD_GETMEM(self, p_signal) !=__pthread_sig_restart);
932 #if !__ASSUME_REALTIME_SIGNALS
933 /* The _old variants are for 2.0 and early 2.1 kernels which don't have RT
934 signals.
935 On these kernels, we use SIGUSR1 and SIGUSR2 for restart and cancellation.
936 Since the restart signal does not queue, we use an atomic counter to create
937 queuing semantics. This is needed to resolve a rare race condition in
938 pthread_cond_timedwait_relative. */
940 void __pthread_restart_old(pthread_descr th)
942 if (atomic_increment(&th->p_resume_count) == -1)
943 kill(th->p_pid, __pthread_sig_restart);
946 void __pthread_suspend_old(pthread_descr self)
948 if (atomic_decrement(&self->p_resume_count) <= 0)
949 __pthread_wait_for_restart_signal(self);
953 __pthread_timedsuspend_old(pthread_descr self, const struct timespec *abstime)
955 sigset_t unblock, initial_mask;
956 int was_signalled = 0;
957 sigjmp_buf jmpbuf;
959 if (atomic_decrement(&self->p_resume_count) == 0) {
960 /* Set up a longjmp handler for the restart signal, unblock
961 the signal and sleep. */
963 if (sigsetjmp(jmpbuf, 1) == 0) {
964 THREAD_SETMEM(self, p_signal_jmp, &jmpbuf);
965 THREAD_SETMEM(self, p_signal, 0);
966 /* Unblock the restart signal */
967 sigemptyset(&unblock);
968 sigaddset(&unblock, __pthread_sig_restart);
969 sigprocmask(SIG_UNBLOCK, &unblock, &initial_mask);
971 while (1) {
972 struct timeval now;
973 struct timespec reltime;
975 /* Compute a time offset relative to now. */
976 __gettimeofday (&now, NULL);
977 reltime.tv_nsec = abstime->tv_nsec - now.tv_usec * 1000;
978 reltime.tv_sec = abstime->tv_sec - now.tv_sec;
979 if (reltime.tv_nsec < 0) {
980 reltime.tv_nsec += 1000000000;
981 reltime.tv_sec -= 1;
984 /* Sleep for the required duration. If woken by a signal,
985 resume waiting as required by Single Unix Specification. */
986 if (reltime.tv_sec < 0 || __libc_nanosleep(&reltime, NULL) == 0)
987 break;
990 /* Block the restart signal again */
991 sigprocmask(SIG_SETMASK, &initial_mask, NULL);
992 was_signalled = 0;
993 } else {
994 was_signalled = 1;
996 THREAD_SETMEM(self, p_signal_jmp, NULL);
999 /* Now was_signalled is true if we exited the above code
1000 due to the delivery of a restart signal. In that case,
1001 we know we have been dequeued and resumed and that the
1002 resume count is balanced. Otherwise, there are some
1003 cases to consider. First, try to bump up the resume count
1004 back to zero. If it goes to 1, it means restart() was
1005 invoked on this thread. The signal must be consumed
1006 and the count bumped down and everything is cool. We
1007 can return a 1 to the caller.
1008 Otherwise, no restart was delivered yet, so a potential
1009 race exists; we return a 0 to the caller which must deal
1010 with this race in an appropriate way; for example by
1011 atomically removing the thread from consideration for a
1012 wakeup---if such a thing fails, it means a restart is
1013 being delivered. */
1015 if (!was_signalled) {
1016 if (atomic_increment(&self->p_resume_count) != -1) {
1017 __pthread_wait_for_restart_signal(self);
1018 atomic_decrement(&self->p_resume_count); /* should be zero now! */
1019 /* woke spontaneously and consumed restart signal */
1020 return 1;
1022 /* woke spontaneously but did not consume restart---caller must resolve */
1023 return 0;
1025 /* woken due to restart signal */
1026 return 1;
1028 #endif /* __ASSUME_REALTIME_SIGNALS */
1030 void __pthread_restart_new(pthread_descr th)
1032 kill(th->p_pid, __pthread_sig_restart);
1035 /* There is no __pthread_suspend_new because it would just
1036 be a wasteful wrapper for __pthread_wait_for_restart_signal */
1039 __pthread_timedsuspend_new(pthread_descr self, const struct timespec *abstime)
1041 sigset_t unblock, initial_mask;
1042 int was_signalled = 0;
1043 sigjmp_buf jmpbuf;
1045 if (sigsetjmp(jmpbuf, 1) == 0) {
1046 THREAD_SETMEM(self, p_signal_jmp, &jmpbuf);
1047 THREAD_SETMEM(self, p_signal, 0);
1048 /* Unblock the restart signal */
1049 sigemptyset(&unblock);
1050 sigaddset(&unblock, __pthread_sig_restart);
1051 sigprocmask(SIG_UNBLOCK, &unblock, &initial_mask);
1053 while (1) {
1054 struct timeval now;
1055 struct timespec reltime;
1057 /* Compute a time offset relative to now. */
1058 __gettimeofday (&now, NULL);
1059 reltime.tv_nsec = abstime->tv_nsec - now.tv_usec * 1000;
1060 reltime.tv_sec = abstime->tv_sec - now.tv_sec;
1061 if (reltime.tv_nsec < 0) {
1062 reltime.tv_nsec += 1000000000;
1063 reltime.tv_sec -= 1;
1066 /* Sleep for the required duration. If woken by a signal,
1067 resume waiting as required by Single Unix Specification. */
1068 if (reltime.tv_sec < 0 || __libc_nanosleep(&reltime, NULL) == 0)
1069 break;
1072 /* Block the restart signal again */
1073 sigprocmask(SIG_SETMASK, &initial_mask, NULL);
1074 was_signalled = 0;
1075 } else {
1076 was_signalled = 1;
1078 THREAD_SETMEM(self, p_signal_jmp, NULL);
1080 /* Now was_signalled is true if we exited the above code
1081 due to the delivery of a restart signal. In that case,
1082 everything is cool. We have been removed from whatever
1083 we were waiting on by the other thread, and consumed its signal.
1085 Otherwise we this thread woke up spontaneously, or due to a signal other
1086 than restart. This is an ambiguous case that must be resolved by
1087 the caller; the thread is still eligible for a restart wakeup
1088 so there is a race. */
1090 return was_signalled;
1094 /* Debugging aid */
1096 #ifdef DEBUG
1097 #include <stdarg.h>
1099 void __pthread_message(char * fmt, ...)
1101 char buffer[1024];
1102 va_list args;
1103 sprintf(buffer, "%05d : ", __getpid());
1104 va_start(args, fmt);
1105 vsnprintf(buffer + 8, sizeof(buffer) - 8, fmt, args);
1106 va_end(args);
1107 __libc_write(2, buffer, strlen(buffer));
1110 #endif
1113 #ifndef SHARED
1114 /* We need a hook to force the cancelation wrappers to be linked in when
1115 static libpthread is used. */
1116 extern const int __pthread_provide_wrappers;
1117 static const int *const __pthread_require_wrappers =
1118 &__pthread_provide_wrappers;
1119 #endif