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https://git.openldap.org/openldap/openldap.git
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563 lines
14 KiB
C
563 lines
14 KiB
C
/* $OpenLDAP$ */
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/*
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* Copyright 1998-2003 The OpenLDAP Foundation, Redwood City, California, USA
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* All rights reserved.
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*
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* Redistribution and use in source and binary forms are permitted only
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* as authorized by the OpenLDAP Public License. A copy of this
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* license is available at http://www.OpenLDAP.org/license.html or
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* in file LICENSE in the top-level directory of the distribution.
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*/
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#include "portable.h"
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#include <stdio.h>
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#include <ac/stdarg.h>
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#include <ac/stdlib.h>
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#include <ac/string.h>
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#include <ac/time.h>
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#include <ac/errno.h>
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#include "ldap-int.h"
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#include "ldap_pvt_thread.h"
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#include "ldap_queue.h"
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#ifndef LDAP_THREAD_HAVE_TPOOL
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enum ldap_int_thread_pool_state {
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LDAP_INT_THREAD_POOL_RUNNING,
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LDAP_INT_THREAD_POOL_FINISHING,
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LDAP_INT_THREAD_POOL_STOPPING
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};
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typedef struct ldap_int_thread_key_s {
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void *ltk_key;
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void *ltk_data;
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ldap_pvt_thread_pool_keyfree_t *ltk_free;
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} ldap_int_thread_key_t;
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/* Max number of thread-specific keys we store per thread.
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* We don't expect to use many...
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*/
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#define MAXKEYS 32
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#define MAXTHREADS 1024 /* must be a power of 2 */
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static ldap_pvt_thread_t tid_zero;
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#ifdef HAVE_PTHREADS
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#define TID_EQ(a,b) pthread_equal((a),(b))
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#else
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#define TID_EQ(a,b) ((a) == (b))
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#endif
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static struct {
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ldap_pvt_thread_t id;
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ldap_int_thread_key_t *ctx;
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} thread_keys[MAXTHREADS];
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typedef struct ldap_int_thread_ctx_s {
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union {
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LDAP_STAILQ_ENTRY(ldap_int_thread_ctx_s) q;
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LDAP_SLIST_ENTRY(ldap_int_thread_ctx_s) l;
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LDAP_SLIST_ENTRY(ldap_int_thread_ctx_s) al;
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} ltc_next;
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ldap_pvt_thread_start_t *ltc_start_routine;
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void *ltc_arg;
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} ldap_int_thread_ctx_t;
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struct ldap_int_thread_pool_s {
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LDAP_STAILQ_ENTRY(ldap_int_thread_pool_s) ltp_next;
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ldap_pvt_thread_mutex_t ltp_mutex;
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ldap_pvt_thread_cond_t ltp_cond;
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LDAP_STAILQ_HEAD(tcq, ldap_int_thread_ctx_s) ltp_pending_list;
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LDAP_SLIST_HEAD(tcl, ldap_int_thread_ctx_s) ltp_free_list;
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LDAP_SLIST_HEAD(tclq, ldap_int_thread_ctx_s) ltp_active_list;
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long ltp_state;
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long ltp_max_count;
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long ltp_max_pending;
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long ltp_pending_count;
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long ltp_active_count;
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long ltp_open_count;
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long ltp_starting;
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};
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static LDAP_STAILQ_HEAD(tpq, ldap_int_thread_pool_s)
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ldap_int_thread_pool_list =
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LDAP_STAILQ_HEAD_INITIALIZER(ldap_int_thread_pool_list);
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static ldap_pvt_thread_mutex_t ldap_pvt_thread_pool_mutex;
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static void *ldap_int_thread_pool_wrapper( void *pool );
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int
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ldap_int_thread_pool_startup ( void )
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{
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return ldap_pvt_thread_mutex_init(&ldap_pvt_thread_pool_mutex);
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}
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int
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ldap_int_thread_pool_shutdown ( void )
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{
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struct ldap_int_thread_pool_s *pool;
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while ((pool = LDAP_STAILQ_FIRST(&ldap_int_thread_pool_list)) != NULL) {
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LDAP_STAILQ_REMOVE_HEAD(&ldap_int_thread_pool_list, ltp_next);
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ldap_pvt_thread_pool_destroy( &pool, 0);
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}
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ldap_pvt_thread_mutex_destroy(&ldap_pvt_thread_pool_mutex);
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return(0);
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}
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int
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ldap_pvt_thread_pool_init (
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ldap_pvt_thread_pool_t *tpool,
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int max_threads,
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int max_pending )
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{
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ldap_pvt_thread_pool_t pool;
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int rc;
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*tpool = NULL;
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pool = (ldap_pvt_thread_pool_t) LDAP_CALLOC(1,
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sizeof(struct ldap_int_thread_pool_s));
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if (pool == NULL) return(-1);
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rc = ldap_pvt_thread_mutex_init(&pool->ltp_mutex);
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if (rc != 0)
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return(rc);
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rc = ldap_pvt_thread_cond_init(&pool->ltp_cond);
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if (rc != 0)
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return(rc);
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pool->ltp_state = LDAP_INT_THREAD_POOL_RUNNING;
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pool->ltp_max_count = max_threads;
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pool->ltp_max_pending = max_pending;
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LDAP_STAILQ_INIT(&pool->ltp_pending_list);
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LDAP_SLIST_INIT(&pool->ltp_free_list);
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LDAP_SLIST_INIT(&pool->ltp_active_list);
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ldap_pvt_thread_mutex_lock(&ldap_pvt_thread_pool_mutex);
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LDAP_STAILQ_INSERT_TAIL(&ldap_int_thread_pool_list, pool, ltp_next);
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ldap_pvt_thread_mutex_unlock(&ldap_pvt_thread_pool_mutex);
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#if 0
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/* THIS WILL NOT WORK on some systems. If the process
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* forks after starting a thread, there is no guarantee
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* that the thread will survive the fork. For example,
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* slapd forks in order to daemonize, and does so after
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* calling ldap_pvt_thread_pool_init. On some systems,
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* this initial thread does not run in the child process,
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* but ltp_open_count == 1, so two things happen:
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* 1) the first client connection fails, and 2) when
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* slapd is kill'ed, it never terminates since it waits
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* for all worker threads to exit. */
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/* start up one thread, just so there is one. no need to
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* lock the mutex right now, since no threads are running.
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*/
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pool->ltp_open_count++;
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ldap_pvt_thread_t thr;
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rc = ldap_pvt_thread_create( &thr, 1, ldap_int_thread_pool_wrapper, pool );
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if( rc != 0) {
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/* couldn't start one? then don't start any */
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ldap_pvt_thread_mutex_lock(&ldap_pvt_thread_pool_mutex);
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LDAP_STAILQ_REMOVE(ldap_int_thread_pool_list, pool,
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ldap_int_thread_pool_s, ltp_next);
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ldap_pvt_thread_mutex_unlock(&ldap_pvt_thread_pool_mutex);
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ldap_pvt_thread_cond_destroy(&pool->ltp_cond);
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ldap_pvt_thread_mutex_destroy(&pool->ltp_mutex);
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LDAP_FREE(pool);
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return(-1);
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}
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#endif
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*tpool = pool;
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return(0);
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}
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#define TID_HASH(tid, hash) do { int i; \
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unsigned char *ptr = (unsigned char *)&(tid); \
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for (i=0, hash=0; i<sizeof(tid); i++) hash += ptr[i]; } while(0)
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int
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ldap_pvt_thread_pool_submit (
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ldap_pvt_thread_pool_t *tpool,
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ldap_pvt_thread_start_t *start_routine, void *arg )
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{
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struct ldap_int_thread_pool_s *pool;
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ldap_int_thread_ctx_t *ctx;
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int need_thread = 0;
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ldap_pvt_thread_t thr;
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if (tpool == NULL)
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return(-1);
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pool = *tpool;
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if (pool == NULL)
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return(-1);
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ldap_pvt_thread_mutex_lock(&pool->ltp_mutex);
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if (pool->ltp_state != LDAP_INT_THREAD_POOL_RUNNING
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|| (pool->ltp_max_pending > 0
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&& pool->ltp_pending_count >= pool->ltp_max_pending))
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{
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ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
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return(-1);
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}
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ctx = LDAP_SLIST_FIRST(&pool->ltp_free_list);
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if (ctx) {
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LDAP_SLIST_REMOVE_HEAD(&pool->ltp_free_list, ltc_next.l);
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} else {
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int i;
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ctx = (ldap_int_thread_ctx_t *) LDAP_MALLOC(
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sizeof(ldap_int_thread_ctx_t));
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if (ctx == NULL) {
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ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
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return(-1);
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}
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}
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ctx->ltc_start_routine = start_routine;
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ctx->ltc_arg = arg;
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pool->ltp_pending_count++;
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LDAP_STAILQ_INSERT_TAIL(&pool->ltp_pending_list, ctx, ltc_next.q);
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ldap_pvt_thread_cond_signal(&pool->ltp_cond);
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if ((pool->ltp_open_count <= 0
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#if 0
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|| pool->ltp_pending_count > 1
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#endif
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|| pool->ltp_open_count == pool->ltp_active_count)
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&& (pool->ltp_max_count <= 0
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|| pool->ltp_open_count < pool->ltp_max_count))
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{
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pool->ltp_open_count++;
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pool->ltp_starting++;
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need_thread = 1;
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}
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ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
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if (need_thread) {
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int rc;
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ldap_pvt_thread_mutex_lock(&pool->ltp_mutex);
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rc = ldap_pvt_thread_create( &thr, 1,
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ldap_int_thread_pool_wrapper, pool );
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if (rc == 0) {
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int hash;
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pool->ltp_starting--;
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/* assign this thread ID to a key slot; start
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* at the thread ID itself (mod MAXTHREADS) and
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* look for an empty slot.
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*/
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TID_HASH(thr, hash);
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for (rc = hash & (MAXTHREADS-1);
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!TID_EQ(thread_keys[rc].id, tid_zero);
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rc = (rc+1) & (MAXTHREADS-1));
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thread_keys[rc].id = thr;
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} else {
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/* couldn't create thread. back out of
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* ltp_open_count and check for even worse things.
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*/
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pool->ltp_open_count--;
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pool->ltp_starting--;
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if (pool->ltp_open_count == 0) {
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/* no open threads at all?!?
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*/
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ldap_int_thread_ctx_t *ptr;
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LDAP_STAILQ_FOREACH(ptr, &pool->ltp_pending_list, ltc_next.q)
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if (ptr == ctx) break;
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if (ptr == ctx) {
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/* no open threads, context not handled, so
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* back out of ltp_pending_count, free the context,
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* report the error.
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*/
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LDAP_STAILQ_REMOVE(&pool->ltp_pending_list, ctx,
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ldap_int_thread_ctx_s, ltc_next.q);
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pool->ltp_pending_count++;
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ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
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LDAP_FREE(ctx);
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return(-1);
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}
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}
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/* there is another open thread, so this
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* context will be handled eventually.
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* continue on and signal that the context
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* is waiting.
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*/
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}
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ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
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}
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return(0);
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}
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int
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ldap_pvt_thread_pool_maxthreads ( ldap_pvt_thread_pool_t *tpool, int max_threads )
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{
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struct ldap_int_thread_pool_s *pool;
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if (tpool == NULL)
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return(-1);
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pool = *tpool;
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if (pool == NULL)
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return(-1);
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ldap_pvt_thread_mutex_lock(&pool->ltp_mutex);
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pool->ltp_max_count = max_threads;
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ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
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return(0);
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}
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int
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ldap_pvt_thread_pool_backload ( ldap_pvt_thread_pool_t *tpool )
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{
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struct ldap_int_thread_pool_s *pool;
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int count;
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if (tpool == NULL)
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return(-1);
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pool = *tpool;
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if (pool == NULL)
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return(0);
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ldap_pvt_thread_mutex_lock(&pool->ltp_mutex);
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count = pool->ltp_pending_count + pool->ltp_active_count;
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ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
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return(count);
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}
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int
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ldap_pvt_thread_pool_destroy ( ldap_pvt_thread_pool_t *tpool, int run_pending )
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{
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struct ldap_int_thread_pool_s *pool, *pptr;
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long waiting;
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ldap_int_thread_ctx_t *ctx;
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if (tpool == NULL)
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return(-1);
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pool = *tpool;
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if (pool == NULL) return(-1);
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ldap_pvt_thread_mutex_lock(&ldap_pvt_thread_pool_mutex);
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LDAP_STAILQ_FOREACH(pptr, &ldap_int_thread_pool_list, ltp_next)
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if (pptr == pool) break;
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if (pptr == pool)
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LDAP_STAILQ_REMOVE(&ldap_int_thread_pool_list, pool,
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ldap_int_thread_pool_s, ltp_next);
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ldap_pvt_thread_mutex_unlock(&ldap_pvt_thread_pool_mutex);
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if (pool != pptr) return(-1);
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ldap_pvt_thread_mutex_lock(&pool->ltp_mutex);
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pool->ltp_state = run_pending
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? LDAP_INT_THREAD_POOL_FINISHING
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: LDAP_INT_THREAD_POOL_STOPPING;
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ldap_pvt_thread_cond_broadcast(&pool->ltp_cond);
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ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
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do {
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ldap_pvt_thread_yield();
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ldap_pvt_thread_mutex_lock(&pool->ltp_mutex);
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waiting = pool->ltp_open_count;
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ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
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} while (waiting > 0);
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while ((ctx = LDAP_STAILQ_FIRST(&pool->ltp_pending_list)) != NULL)
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{
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LDAP_STAILQ_REMOVE_HEAD(&pool->ltp_pending_list, ltc_next.q);
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LDAP_FREE(ctx);
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}
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while ((ctx = LDAP_SLIST_FIRST(&pool->ltp_free_list)) != NULL)
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{
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LDAP_SLIST_REMOVE_HEAD(&pool->ltp_free_list, ltc_next.l);
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LDAP_FREE(ctx);
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}
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ldap_pvt_thread_cond_destroy(&pool->ltp_cond);
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ldap_pvt_thread_mutex_destroy(&pool->ltp_mutex);
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LDAP_FREE(pool);
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return(0);
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}
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static void *
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ldap_int_thread_pool_wrapper (
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void *xpool )
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{
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struct ldap_int_thread_pool_s *pool = xpool;
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ldap_int_thread_ctx_t *ctx;
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ldap_int_thread_key_t ltc_key[MAXKEYS];
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ldap_pvt_thread_t tid;
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int i, keyslot, hash;
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if (pool == NULL)
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return NULL;
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for ( i=0; i<MAXKEYS; i++ ) {
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ltc_key[i].ltk_key = NULL;
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}
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tid = ldap_pvt_thread_self();
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ldap_pvt_thread_mutex_lock(&pool->ltp_mutex);
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/* store pointer to our keys */
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TID_HASH(tid, hash);
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for (i = hash & (MAXTHREADS-1); !TID_EQ(thread_keys[i].id, tid);
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i = (i+1) & (MAXTHREADS-1));
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thread_keys[i].ctx = ltc_key;
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keyslot = i;
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while (pool->ltp_state != LDAP_INT_THREAD_POOL_STOPPING) {
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ctx = LDAP_STAILQ_FIRST(&pool->ltp_pending_list);
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if (ctx) {
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LDAP_STAILQ_REMOVE_HEAD(&pool->ltp_pending_list, ltc_next.q);
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} else {
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if (pool->ltp_state == LDAP_INT_THREAD_POOL_FINISHING)
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break;
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if (pool->ltp_max_count > 0
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&& pool->ltp_open_count > pool->ltp_max_count)
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{
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/* too many threads running (can happen if the
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* maximum threads value is set during ongoing
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* operation using ldap_pvt_thread_pool_maxthreads)
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* so let this thread die.
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*/
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break;
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}
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/* we could check an idle timer here, and let the
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* thread die if it has been inactive for a while.
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* only die if there are other open threads (i.e.,
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* always have at least one thread open). the check
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* should be like this:
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* if (pool->ltp_open_count > 1 && pool->ltp_starting == 0)
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* check timer, leave thread (break;)
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*/
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if (pool->ltp_state == LDAP_INT_THREAD_POOL_RUNNING)
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ldap_pvt_thread_cond_wait(&pool->ltp_cond, &pool->ltp_mutex);
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continue;
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}
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pool->ltp_pending_count--;
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LDAP_SLIST_INSERT_HEAD(&pool->ltp_active_list, ctx, ltc_next.al);
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pool->ltp_active_count++;
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ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
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ctx->ltc_start_routine(ltc_key, ctx->ltc_arg);
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ldap_pvt_thread_mutex_lock(&pool->ltp_mutex);
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LDAP_SLIST_REMOVE(&pool->ltp_active_list, ctx,
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ldap_int_thread_ctx_s, ltc_next.al);
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LDAP_SLIST_INSERT_HEAD(&pool->ltp_free_list, ctx, ltc_next.l);
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pool->ltp_active_count--;
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ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
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ldap_pvt_thread_yield();
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/* if we use an idle timer, here's
|
|
* a good place to update it
|
|
*/
|
|
|
|
ldap_pvt_thread_mutex_lock(&pool->ltp_mutex);
|
|
}
|
|
|
|
for ( i=0; i<MAXKEYS && ltc_key[i].ltk_key; i++ ) {
|
|
if (ltc_key[i].ltk_free)
|
|
ltc_key[i].ltk_free(
|
|
ltc_key[i].ltk_key,
|
|
ltc_key[i].ltk_data );
|
|
}
|
|
|
|
thread_keys[keyslot].ctx = NULL;
|
|
thread_keys[keyslot].id = tid_zero;
|
|
|
|
pool->ltp_open_count--;
|
|
ldap_pvt_thread_mutex_unlock(&pool->ltp_mutex);
|
|
|
|
ldap_pvt_thread_exit(NULL);
|
|
return(NULL);
|
|
}
|
|
|
|
int ldap_pvt_thread_pool_getkey(
|
|
void *xctx,
|
|
void *key,
|
|
void **data,
|
|
ldap_pvt_thread_pool_keyfree_t **kfree )
|
|
{
|
|
ldap_int_thread_key_t *ctx = xctx;
|
|
int i;
|
|
|
|
if ( !ctx || !data ) return EINVAL;
|
|
|
|
for ( i=0; i<MAXKEYS && ctx[i].ltk_key; i++ ) {
|
|
if ( ctx[i].ltk_key == key ) {
|
|
*data = ctx[i].ltk_data;
|
|
if ( kfree ) *kfree = ctx[i].ltk_free;
|
|
return 0;
|
|
}
|
|
}
|
|
return ENOENT;
|
|
}
|
|
|
|
int ldap_pvt_thread_pool_setkey(
|
|
void *xctx,
|
|
void *key,
|
|
void *data,
|
|
ldap_pvt_thread_pool_keyfree_t *kfree )
|
|
{
|
|
ldap_int_thread_key_t *ctx = xctx;
|
|
int i;
|
|
|
|
if ( !ctx || !key ) return EINVAL;
|
|
|
|
for ( i=0; i<MAXKEYS; i++ ) {
|
|
if ( !ctx[i].ltk_key || ctx[i].ltk_key == key ) {
|
|
ctx[i].ltk_key = key;
|
|
ctx[i].ltk_data = data;
|
|
ctx[i].ltk_free = kfree;
|
|
return 0;
|
|
}
|
|
}
|
|
return ENOMEM;
|
|
}
|
|
|
|
/*
|
|
* This is necessary if the caller does not have access to the
|
|
* thread context handle (for example, a slapd plugin calling
|
|
* slapi_search_internal()). No doubt it is more efficient to
|
|
* for the application to keep track of the thread context
|
|
* handles itself.
|
|
*/
|
|
void *ldap_pvt_thread_pool_context( )
|
|
{
|
|
ldap_pvt_thread_t tid;
|
|
int i, hash;
|
|
|
|
tid = ldap_pvt_thread_self();
|
|
|
|
TID_HASH( tid, hash );
|
|
for (i = hash & (MAXTHREADS-1); !TID_EQ(thread_keys[i].id, tid_zero) &&
|
|
!TID_EQ(thread_keys[i].id, tid); i = (i+1) & (MAXTHREADS-1));
|
|
|
|
return thread_keys[i].ctx;
|
|
}
|
|
|
|
#endif /* LDAP_THREAD_HAVE_TPOOL */
|