mirror of
git://git.musl-libc.org/musl
synced 2025-03-06 20:48:29 +01:00
pthread_once is not compatible with MT-fork constraints (commit
167390f055
) and is not needed here
anyway; we already have a lock suitable for initialization.
while changing this, fix a corner case where AT_MINSIGSTKSZ gives a
value that's more than MINSIGSTKSZ but by a margin of less than
2048, thereby causing the size to be reduced. it shouldn't matter but
the intent was to be the larger of a 2048-byte margin over the legacy
fixed minimum stack requirement or a 512-byte margin over the minimum
the kernel reports at runtime.
418 lines
10 KiB
C
418 lines
10 KiB
C
#include <aio.h>
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#include <pthread.h>
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#include <semaphore.h>
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#include <limits.h>
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#include <errno.h>
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#include <unistd.h>
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#include <stdlib.h>
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#include <sys/auxv.h>
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#include "syscall.h"
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#include "atomic.h"
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#include "pthread_impl.h"
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#include "aio_impl.h"
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#define malloc __libc_malloc
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#define calloc __libc_calloc
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#define realloc __libc_realloc
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#define free __libc_free
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/* The following is a threads-based implementation of AIO with minimal
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* dependence on implementation details. Most synchronization is
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* performed with pthread primitives, but atomics and futex operations
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* are used for notification in a couple places where the pthread
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* primitives would be inefficient or impractical.
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*
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* For each fd with outstanding aio operations, an aio_queue structure
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* is maintained. These are reference-counted and destroyed by the last
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* aio worker thread to exit. Accessing any member of the aio_queue
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* structure requires a lock on the aio_queue. Adding and removing aio
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* queues themselves requires a write lock on the global map object,
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* a 4-level table mapping file descriptor numbers to aio queues. A
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* read lock on the map is used to obtain locks on existing queues by
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* excluding destruction of the queue by a different thread while it is
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* being locked.
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*
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* Each aio queue has a list of active threads/operations. Presently there
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* is a one to one relationship between threads and operations. The only
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* members of the aio_thread structure which are accessed by other threads
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* are the linked list pointers, op (which is immutable), running (which
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* is updated atomically), and err (which is synchronized via running),
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* so no locking is necessary. Most of the other other members are used
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* for sharing data between the main flow of execution and cancellation
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* cleanup handler.
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*
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* Taking any aio locks requires having all signals blocked. This is
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* necessary because aio_cancel is needed by close, and close is required
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* to be async-signal safe. All aio worker threads run with all signals
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* blocked permanently.
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*/
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struct aio_thread {
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pthread_t td;
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struct aiocb *cb;
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struct aio_thread *next, *prev;
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struct aio_queue *q;
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volatile int running;
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int err, op;
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ssize_t ret;
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};
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struct aio_queue {
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int fd, seekable, append, ref, init;
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pthread_mutex_t lock;
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pthread_cond_t cond;
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struct aio_thread *head;
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};
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struct aio_args {
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struct aiocb *cb;
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struct aio_queue *q;
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int op;
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sem_t sem;
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};
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static pthread_rwlock_t maplock = PTHREAD_RWLOCK_INITIALIZER;
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static struct aio_queue *****map;
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static volatile int aio_fd_cnt;
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volatile int __aio_fut;
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static size_t io_thread_stack_size;
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#define MAX(a,b) ((a)>(b) ? (a) : (b))
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static struct aio_queue *__aio_get_queue(int fd, int need)
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{
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if (fd < 0) {
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errno = EBADF;
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return 0;
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}
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int a=fd>>24;
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unsigned char b=fd>>16, c=fd>>8, d=fd;
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struct aio_queue *q = 0;
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pthread_rwlock_rdlock(&maplock);
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if ((!map || !map[a] || !map[a][b] || !map[a][b][c] || !(q=map[a][b][c][d])) && need) {
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pthread_rwlock_unlock(&maplock);
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if (fcntl(fd, F_GETFD) < 0) return 0;
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pthread_rwlock_wrlock(&maplock);
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if (!io_thread_stack_size) {
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unsigned long val = __getauxval(AT_MINSIGSTKSZ);
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io_thread_stack_size = MAX(MINSIGSTKSZ+2048, val+512);
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}
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if (!map) map = calloc(sizeof *map, (-1U/2+1)>>24);
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if (!map) goto out;
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if (!map[a]) map[a] = calloc(sizeof **map, 256);
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if (!map[a]) goto out;
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if (!map[a][b]) map[a][b] = calloc(sizeof ***map, 256);
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if (!map[a][b]) goto out;
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if (!map[a][b][c]) map[a][b][c] = calloc(sizeof ****map, 256);
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if (!map[a][b][c]) goto out;
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if (!(q = map[a][b][c][d])) {
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map[a][b][c][d] = q = calloc(sizeof *****map, 1);
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if (q) {
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q->fd = fd;
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pthread_mutex_init(&q->lock, 0);
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pthread_cond_init(&q->cond, 0);
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a_inc(&aio_fd_cnt);
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}
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}
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}
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if (q) pthread_mutex_lock(&q->lock);
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out:
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pthread_rwlock_unlock(&maplock);
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return q;
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}
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static void __aio_unref_queue(struct aio_queue *q)
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{
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if (q->ref > 1) {
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q->ref--;
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pthread_mutex_unlock(&q->lock);
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return;
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}
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/* This is potentially the last reference, but a new reference
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* may arrive since we cannot free the queue object without first
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* taking the maplock, which requires releasing the queue lock. */
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pthread_mutex_unlock(&q->lock);
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pthread_rwlock_wrlock(&maplock);
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pthread_mutex_lock(&q->lock);
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if (q->ref == 1) {
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int fd=q->fd;
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int a=fd>>24;
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unsigned char b=fd>>16, c=fd>>8, d=fd;
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map[a][b][c][d] = 0;
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a_dec(&aio_fd_cnt);
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pthread_rwlock_unlock(&maplock);
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pthread_mutex_unlock(&q->lock);
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free(q);
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} else {
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q->ref--;
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pthread_rwlock_unlock(&maplock);
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pthread_mutex_unlock(&q->lock);
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}
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}
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static void cleanup(void *ctx)
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{
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struct aio_thread *at = ctx;
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struct aio_queue *q = at->q;
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struct aiocb *cb = at->cb;
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struct sigevent sev = cb->aio_sigevent;
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/* There are four potential types of waiters we could need to wake:
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* 1. Callers of aio_cancel/close.
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* 2. Callers of aio_suspend with a single aiocb.
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* 3. Callers of aio_suspend with a list.
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* 4. AIO worker threads waiting for sequenced operations.
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* Types 1-3 are notified via atomics/futexes, mainly for AS-safety
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* considerations. Type 4 is notified later via a cond var. */
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cb->__ret = at->ret;
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if (a_swap(&at->running, 0) < 0)
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__wake(&at->running, -1, 1);
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if (a_swap(&cb->__err, at->err) != EINPROGRESS)
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__wake(&cb->__err, -1, 1);
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if (a_swap(&__aio_fut, 0))
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__wake(&__aio_fut, -1, 1);
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pthread_mutex_lock(&q->lock);
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if (at->next) at->next->prev = at->prev;
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if (at->prev) at->prev->next = at->next;
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else q->head = at->next;
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/* Signal aio worker threads waiting for sequenced operations. */
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pthread_cond_broadcast(&q->cond);
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__aio_unref_queue(q);
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if (sev.sigev_notify == SIGEV_SIGNAL) {
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siginfo_t si = {
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.si_signo = sev.sigev_signo,
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.si_value = sev.sigev_value,
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.si_code = SI_ASYNCIO,
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.si_pid = getpid(),
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.si_uid = getuid()
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};
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__syscall(SYS_rt_sigqueueinfo, si.si_pid, si.si_signo, &si);
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}
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if (sev.sigev_notify == SIGEV_THREAD) {
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a_store(&__pthread_self()->cancel, 0);
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sev.sigev_notify_function(sev.sigev_value);
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}
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}
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static void *io_thread_func(void *ctx)
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{
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struct aio_thread at, *p;
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struct aio_args *args = ctx;
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struct aiocb *cb = args->cb;
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int fd = cb->aio_fildes;
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int op = args->op;
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void *buf = (void *)cb->aio_buf;
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size_t len = cb->aio_nbytes;
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off_t off = cb->aio_offset;
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struct aio_queue *q = args->q;
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ssize_t ret;
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pthread_mutex_lock(&q->lock);
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sem_post(&args->sem);
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at.op = op;
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at.running = 1;
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at.ret = -1;
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at.err = ECANCELED;
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at.q = q;
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at.td = __pthread_self();
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at.cb = cb;
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at.prev = 0;
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if ((at.next = q->head)) at.next->prev = &at;
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q->head = &at;
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if (!q->init) {
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int seekable = lseek(fd, 0, SEEK_CUR) >= 0;
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q->seekable = seekable;
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q->append = !seekable || (fcntl(fd, F_GETFL) & O_APPEND);
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q->init = 1;
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}
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pthread_cleanup_push(cleanup, &at);
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/* Wait for sequenced operations. */
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if (op!=LIO_READ && (op!=LIO_WRITE || q->append)) {
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for (;;) {
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for (p=at.next; p && p->op!=LIO_WRITE; p=p->next);
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if (!p) break;
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pthread_cond_wait(&q->cond, &q->lock);
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}
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}
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pthread_mutex_unlock(&q->lock);
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switch (op) {
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case LIO_WRITE:
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ret = q->append ? write(fd, buf, len) : pwrite(fd, buf, len, off);
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break;
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case LIO_READ:
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ret = !q->seekable ? read(fd, buf, len) : pread(fd, buf, len, off);
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break;
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case O_SYNC:
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ret = fsync(fd);
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break;
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case O_DSYNC:
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ret = fdatasync(fd);
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break;
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}
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at.ret = ret;
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at.err = ret<0 ? errno : 0;
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pthread_cleanup_pop(1);
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return 0;
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}
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static int submit(struct aiocb *cb, int op)
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{
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int ret = 0;
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pthread_attr_t a;
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sigset_t allmask, origmask;
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pthread_t td;
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struct aio_queue *q = __aio_get_queue(cb->aio_fildes, 1);
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struct aio_args args = { .cb = cb, .op = op, .q = q };
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sem_init(&args.sem, 0, 0);
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if (!q) {
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if (errno != EBADF) errno = EAGAIN;
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cb->__ret = -1;
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cb->__err = errno;
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return -1;
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}
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q->ref++;
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pthread_mutex_unlock(&q->lock);
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if (cb->aio_sigevent.sigev_notify == SIGEV_THREAD) {
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if (cb->aio_sigevent.sigev_notify_attributes)
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a = *cb->aio_sigevent.sigev_notify_attributes;
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else
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pthread_attr_init(&a);
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} else {
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pthread_attr_init(&a);
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pthread_attr_setstacksize(&a, io_thread_stack_size);
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pthread_attr_setguardsize(&a, 0);
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}
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pthread_attr_setdetachstate(&a, PTHREAD_CREATE_DETACHED);
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sigfillset(&allmask);
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pthread_sigmask(SIG_BLOCK, &allmask, &origmask);
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cb->__err = EINPROGRESS;
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if (pthread_create(&td, &a, io_thread_func, &args)) {
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pthread_mutex_lock(&q->lock);
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__aio_unref_queue(q);
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cb->__err = errno = EAGAIN;
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cb->__ret = ret = -1;
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}
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pthread_sigmask(SIG_SETMASK, &origmask, 0);
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if (!ret) {
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while (sem_wait(&args.sem));
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}
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return ret;
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}
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int aio_read(struct aiocb *cb)
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{
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return submit(cb, LIO_READ);
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}
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int aio_write(struct aiocb *cb)
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{
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return submit(cb, LIO_WRITE);
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}
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int aio_fsync(int op, struct aiocb *cb)
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{
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if (op != O_SYNC && op != O_DSYNC) {
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errno = EINVAL;
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return -1;
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}
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return submit(cb, op);
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}
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ssize_t aio_return(struct aiocb *cb)
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{
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return cb->__ret;
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}
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int aio_error(const struct aiocb *cb)
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{
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a_barrier();
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return cb->__err & 0x7fffffff;
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}
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int aio_cancel(int fd, struct aiocb *cb)
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{
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sigset_t allmask, origmask;
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int ret = AIO_ALLDONE;
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struct aio_thread *p;
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struct aio_queue *q;
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/* Unspecified behavior case. Report an error. */
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if (cb && fd != cb->aio_fildes) {
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errno = EINVAL;
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return -1;
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}
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sigfillset(&allmask);
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pthread_sigmask(SIG_BLOCK, &allmask, &origmask);
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errno = ENOENT;
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if (!(q = __aio_get_queue(fd, 0))) {
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if (errno == EBADF) ret = -1;
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goto done;
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}
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for (p = q->head; p; p = p->next) {
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if (cb && cb != p->cb) continue;
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/* Transition target from running to running-with-waiters */
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if (a_cas(&p->running, 1, -1)) {
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pthread_cancel(p->td);
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__wait(&p->running, 0, -1, 1);
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if (p->err == ECANCELED) ret = AIO_CANCELED;
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}
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}
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pthread_mutex_unlock(&q->lock);
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done:
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pthread_sigmask(SIG_SETMASK, &origmask, 0);
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return ret;
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}
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int __aio_close(int fd)
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{
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a_barrier();
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if (aio_fd_cnt) aio_cancel(fd, 0);
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return fd;
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}
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void __aio_atfork(int who)
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{
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if (who<0) {
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pthread_rwlock_rdlock(&maplock);
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return;
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}
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if (who>0 && map) for (int a=0; a<(-1U/2+1)>>24; a++)
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if (map[a]) for (int b=0; b<256; b++)
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if (map[a][b]) for (int c=0; c<256; c++)
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if (map[a][b][c]) for (int d=0; d<256; d++)
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map[a][b][c][d] = 0;
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pthread_rwlock_unlock(&maplock);
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}
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weak_alias(aio_cancel, aio_cancel64);
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weak_alias(aio_error, aio_error64);
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weak_alias(aio_fsync, aio_fsync64);
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weak_alias(aio_read, aio_read64);
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weak_alias(aio_write, aio_write64);
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weak_alias(aio_return, aio_return64);
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