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git://git.musl-libc.org/musl
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pthread_kill is required to be AS-safe. that requirement can't be met if the target thread's killlock can be taken in contexts where application-installed signal handlers can run. block signals around use of this lock in all pthread_* functions which target a tid, and reorder blocking/unblocking of signals in pthread_exit so that they're blocked whenever the killlock is held.
386 lines
11 KiB
C
386 lines
11 KiB
C
#define _GNU_SOURCE
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#include "pthread_impl.h"
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#include "stdio_impl.h"
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#include "libc.h"
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#include "lock.h"
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#include <sys/mman.h>
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#include <string.h>
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#include <stddef.h>
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static void dummy_0()
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{
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}
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weak_alias(dummy_0, __acquire_ptc);
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weak_alias(dummy_0, __release_ptc);
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weak_alias(dummy_0, __pthread_tsd_run_dtors);
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weak_alias(dummy_0, __do_orphaned_stdio_locks);
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weak_alias(dummy_0, __dl_thread_cleanup);
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weak_alias(dummy_0, __membarrier_init);
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static int tl_lock_count;
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static int tl_lock_waiters;
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void __tl_lock(void)
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{
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int tid = __pthread_self()->tid;
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int val = __thread_list_lock;
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if (val == tid) {
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tl_lock_count++;
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return;
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}
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while ((val = a_cas(&__thread_list_lock, 0, tid)))
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__wait(&__thread_list_lock, &tl_lock_waiters, val, 0);
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}
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void __tl_unlock(void)
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{
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if (tl_lock_count) {
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tl_lock_count--;
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return;
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}
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a_store(&__thread_list_lock, 0);
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if (tl_lock_waiters) __wake(&__thread_list_lock, 1, 0);
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}
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void __tl_sync(pthread_t td)
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{
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a_barrier();
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int val = __thread_list_lock;
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if (!val) return;
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__wait(&__thread_list_lock, &tl_lock_waiters, val, 0);
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if (tl_lock_waiters) __wake(&__thread_list_lock, 1, 0);
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}
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_Noreturn void __pthread_exit(void *result)
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{
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pthread_t self = __pthread_self();
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sigset_t set;
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self->canceldisable = 1;
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self->cancelasync = 0;
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self->result = result;
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while (self->cancelbuf) {
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void (*f)(void *) = self->cancelbuf->__f;
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void *x = self->cancelbuf->__x;
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self->cancelbuf = self->cancelbuf->__next;
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f(x);
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}
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__pthread_tsd_run_dtors();
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/* Access to target the exiting thread with syscalls that use
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* its kernel tid is controlled by killlock. For detached threads,
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* any use past this point would have undefined behavior, but for
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* joinable threads it's a valid usage that must be handled.
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* Signals must be blocked since pthread_kill must be AS-safe. */
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__block_app_sigs(&set);
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LOCK(self->killlock);
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/* The thread list lock must be AS-safe, and thus depends on
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* application signals being blocked above. */
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__tl_lock();
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/* If this is the only thread in the list, don't proceed with
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* termination of the thread, but restore the previous lock and
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* signal state to prepare for exit to call atexit handlers. */
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if (self->next == self) {
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__tl_unlock();
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UNLOCK(self->killlock);
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__restore_sigs(&set);
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exit(0);
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}
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/* At this point we are committed to thread termination. */
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/* Process robust list in userspace to handle non-pshared mutexes
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* and the detached thread case where the robust list head will
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* be invalid when the kernel would process it. */
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__vm_lock();
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volatile void *volatile *rp;
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while ((rp=self->robust_list.head) && rp != &self->robust_list.head) {
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pthread_mutex_t *m = (void *)((char *)rp
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- offsetof(pthread_mutex_t, _m_next));
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int waiters = m->_m_waiters;
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int priv = (m->_m_type & 128) ^ 128;
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self->robust_list.pending = rp;
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self->robust_list.head = *rp;
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int cont = a_swap(&m->_m_lock, 0x40000000);
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self->robust_list.pending = 0;
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if (cont < 0 || waiters)
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__wake(&m->_m_lock, 1, priv);
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}
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__vm_unlock();
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__do_orphaned_stdio_locks();
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__dl_thread_cleanup();
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/* Last, unlink thread from the list. This change will not be visible
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* until the lock is released, which only happens after SYS_exit
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* has been called, via the exit futex address pointing at the lock.
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* This needs to happen after any possible calls to LOCK() that might
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* skip locking if process appears single-threaded. */
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if (!--libc.threads_minus_1) libc.need_locks = -1;
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self->next->prev = self->prev;
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self->prev->next = self->next;
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self->prev = self->next = self;
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/* This atomic potentially competes with a concurrent pthread_detach
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* call; the loser is responsible for freeing thread resources. */
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int state = a_cas(&self->detach_state, DT_JOINABLE, DT_EXITING);
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if (state==DT_DETACHED && self->map_base) {
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/* Detached threads must block even implementation-internal
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* signals, since they will not have a stack in their last
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* moments of existence. */
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__block_all_sigs(&set);
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/* Robust list will no longer be valid, and was already
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* processed above, so unregister it with the kernel. */
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if (self->robust_list.off)
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__syscall(SYS_set_robust_list, 0, 3*sizeof(long));
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/* Since __unmapself bypasses the normal munmap code path,
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* explicitly wait for vmlock holders first. */
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__vm_wait();
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/* The following call unmaps the thread's stack mapping
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* and then exits without touching the stack. */
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__unmapself(self->map_base, self->map_size);
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}
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/* Wake any joiner. */
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__wake(&self->detach_state, 1, 1);
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/* After the kernel thread exits, its tid may be reused. Clear it
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* to prevent inadvertent use and inform functions that would use
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* it that it's no longer available. */
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self->tid = 0;
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UNLOCK(self->killlock);
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for (;;) __syscall(SYS_exit, 0);
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}
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void __do_cleanup_push(struct __ptcb *cb)
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{
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struct pthread *self = __pthread_self();
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cb->__next = self->cancelbuf;
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self->cancelbuf = cb;
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}
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void __do_cleanup_pop(struct __ptcb *cb)
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{
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__pthread_self()->cancelbuf = cb->__next;
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}
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struct start_args {
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void *(*start_func)(void *);
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void *start_arg;
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volatile int control;
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unsigned long sig_mask[_NSIG/8/sizeof(long)];
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};
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static int start(void *p)
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{
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struct start_args *args = p;
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int state = args->control;
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if (state) {
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if (a_cas(&args->control, 1, 2)==1)
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__wait(&args->control, 0, 2, 1);
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if (args->control) {
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__syscall(SYS_set_tid_address, &args->control);
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for (;;) __syscall(SYS_exit, 0);
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}
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}
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__syscall(SYS_rt_sigprocmask, SIG_SETMASK, &args->sig_mask, 0, _NSIG/8);
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__pthread_exit(args->start_func(args->start_arg));
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return 0;
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}
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static int start_c11(void *p)
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{
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struct start_args *args = p;
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int (*start)(void*) = (int(*)(void*)) args->start_func;
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__pthread_exit((void *)(uintptr_t)start(args->start_arg));
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return 0;
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}
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#define ROUND(x) (((x)+PAGE_SIZE-1)&-PAGE_SIZE)
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/* pthread_key_create.c overrides this */
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static volatile size_t dummy = 0;
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weak_alias(dummy, __pthread_tsd_size);
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static void *dummy_tsd[1] = { 0 };
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weak_alias(dummy_tsd, __pthread_tsd_main);
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static FILE *volatile dummy_file = 0;
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weak_alias(dummy_file, __stdin_used);
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weak_alias(dummy_file, __stdout_used);
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weak_alias(dummy_file, __stderr_used);
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static void init_file_lock(FILE *f)
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{
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if (f && f->lock<0) f->lock = 0;
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}
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int __pthread_create(pthread_t *restrict res, const pthread_attr_t *restrict attrp, void *(*entry)(void *), void *restrict arg)
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{
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int ret, c11 = (attrp == __ATTRP_C11_THREAD);
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size_t size, guard;
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struct pthread *self, *new;
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unsigned char *map = 0, *stack = 0, *tsd = 0, *stack_limit;
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unsigned flags = CLONE_VM | CLONE_FS | CLONE_FILES | CLONE_SIGHAND
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| CLONE_THREAD | CLONE_SYSVSEM | CLONE_SETTLS
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| CLONE_PARENT_SETTID | CLONE_CHILD_CLEARTID | CLONE_DETACHED;
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pthread_attr_t attr = { 0 };
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sigset_t set;
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if (!libc.can_do_threads) return ENOSYS;
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self = __pthread_self();
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if (!libc.threaded) {
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for (FILE *f=*__ofl_lock(); f; f=f->next)
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init_file_lock(f);
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__ofl_unlock();
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init_file_lock(__stdin_used);
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init_file_lock(__stdout_used);
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init_file_lock(__stderr_used);
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__syscall(SYS_rt_sigprocmask, SIG_UNBLOCK, SIGPT_SET, 0, _NSIG/8);
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self->tsd = (void **)__pthread_tsd_main;
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__membarrier_init();
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libc.threaded = 1;
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}
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if (attrp && !c11) attr = *attrp;
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__acquire_ptc();
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if (!attrp || c11) {
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attr._a_stacksize = __default_stacksize;
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attr._a_guardsize = __default_guardsize;
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}
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if (attr._a_stackaddr) {
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size_t need = libc.tls_size + __pthread_tsd_size;
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size = attr._a_stacksize;
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stack = (void *)(attr._a_stackaddr & -16);
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stack_limit = (void *)(attr._a_stackaddr - size);
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/* Use application-provided stack for TLS only when
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* it does not take more than ~12% or 2k of the
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* application's stack space. */
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if (need < size/8 && need < 2048) {
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tsd = stack - __pthread_tsd_size;
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stack = tsd - libc.tls_size;
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memset(stack, 0, need);
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} else {
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size = ROUND(need);
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}
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guard = 0;
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} else {
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guard = ROUND(attr._a_guardsize);
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size = guard + ROUND(attr._a_stacksize
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+ libc.tls_size + __pthread_tsd_size);
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}
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if (!tsd) {
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if (guard) {
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map = __mmap(0, size, PROT_NONE, MAP_PRIVATE|MAP_ANON, -1, 0);
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if (map == MAP_FAILED) goto fail;
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if (__mprotect(map+guard, size-guard, PROT_READ|PROT_WRITE)
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&& errno != ENOSYS) {
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__munmap(map, size);
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goto fail;
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}
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} else {
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map = __mmap(0, size, PROT_READ|PROT_WRITE, MAP_PRIVATE|MAP_ANON, -1, 0);
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if (map == MAP_FAILED) goto fail;
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}
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tsd = map + size - __pthread_tsd_size;
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if (!stack) {
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stack = tsd - libc.tls_size;
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stack_limit = map + guard;
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}
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}
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new = __copy_tls(tsd - libc.tls_size);
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new->map_base = map;
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new->map_size = size;
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new->stack = stack;
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new->stack_size = stack - stack_limit;
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new->guard_size = guard;
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new->self = new;
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new->tsd = (void *)tsd;
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new->locale = &libc.global_locale;
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if (attr._a_detach) {
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new->detach_state = DT_DETACHED;
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} else {
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new->detach_state = DT_JOINABLE;
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}
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new->robust_list.head = &new->robust_list.head;
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new->CANARY = self->CANARY;
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new->sysinfo = self->sysinfo;
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/* Setup argument structure for the new thread on its stack.
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* It's safe to access from the caller only until the thread
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* list is unlocked. */
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stack -= (uintptr_t)stack % sizeof(uintptr_t);
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stack -= sizeof(struct start_args);
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struct start_args *args = (void *)stack;
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args->start_func = entry;
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args->start_arg = arg;
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args->control = attr._a_sched ? 1 : 0;
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/* Application signals (but not the synccall signal) must be
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* blocked before the thread list lock can be taken, to ensure
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* that the lock is AS-safe. */
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__block_app_sigs(&set);
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/* Ensure SIGCANCEL is unblocked in new thread. This requires
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* working with a copy of the set so we can restore the
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* original mask in the calling thread. */
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memcpy(&args->sig_mask, &set, sizeof args->sig_mask);
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args->sig_mask[(SIGCANCEL-1)/8/sizeof(long)] &=
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~(1UL<<((SIGCANCEL-1)%(8*sizeof(long))));
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__tl_lock();
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if (!libc.threads_minus_1++) libc.need_locks = 1;
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ret = __clone((c11 ? start_c11 : start), stack, flags, args, &new->tid, TP_ADJ(new), &__thread_list_lock);
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/* All clone failures translate to EAGAIN. If explicit scheduling
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* was requested, attempt it before unlocking the thread list so
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* that the failed thread is never exposed and so that we can
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* clean up all transient resource usage before returning. */
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if (ret < 0) {
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ret = -EAGAIN;
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} else if (attr._a_sched) {
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ret = __syscall(SYS_sched_setscheduler,
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new->tid, attr._a_policy, &attr._a_prio);
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if (a_swap(&args->control, ret ? 3 : 0)==2)
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__wake(&args->control, 1, 1);
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if (ret)
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__wait(&args->control, 0, 3, 0);
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}
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if (ret >= 0) {
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new->next = self->next;
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new->prev = self;
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new->next->prev = new;
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new->prev->next = new;
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} else {
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if (!--libc.threads_minus_1) libc.need_locks = 0;
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}
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__tl_unlock();
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__restore_sigs(&set);
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__release_ptc();
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if (ret < 0) {
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if (map) __munmap(map, size);
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return -ret;
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}
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*res = new;
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return 0;
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fail:
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__release_ptc();
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return EAGAIN;
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}
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weak_alias(__pthread_exit, pthread_exit);
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weak_alias(__pthread_create, pthread_create);
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