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* APR_THREAD_MUTEX_DEFAULT platform-optimal lock behavior. * APR_THREAD_MUTEX_NESTED enable nested (recursive) locks. * APR_THREAD_MUTEX_UNNESTED disable nested locks (non-recursive). ** @param pool the pool from which to allocate the mutex. * @tip Be cautious in using APR_THREAD_MUTEX_DEFAULT. While this is the * most optimial mutex based on a given platform's performance charateristics, * it will behave as either a nested or an unnested lock. */ APR_DECLARE(apr_status_t) apr_thread_mutex_create(apr_thread_mutex_t **mutex, unsigned int flags, apr_pool_t *pool); /** * Acquire the lock for the given mutex. If the mutex is already locked, * the current thread will be put to sleep until the lock becomes available. * @param mutex the mutex on which to acquire the lock. */ APR_DECLARE(apr_status_t) apr_thread_mutex_lock(apr_thread_mutex_t *mutex); /** * Attempt to acquire the lock for the given mutex. If the mutex has already * been acquired, the call returns immediately with APR_EBUSY. Note: it * is important that the APR_STATUS_IS_EBUSY(s) macro be used to determine * if the return value was APR_EBUSY, for portability reasons. * @param mutex the mutex on which to attempt the lock acquiring. */ APR_DECLARE(apr_status_t) apr_thread_mutex_trylock(apr_thread_mutex_t *mutex); /** * Release the lock for the given mutex. * @param mutex the mutex from which to release the lock. */ APR_DECLARE(apr_status_t) apr_thread_mutex_unlock(apr_thread_mutex_t *mutex); /** * Destroy the mutex and free the memory associated with the lock. * @param mutex the mutex to destroy. */ APR_DECLARE(apr_status_t) apr_thread_mutex_destroy(apr_thread_mutex_t *mutex); /** * Get the pool used by this thread_mutex. * @return apr_pool_t the pool */ APR_POOL_DECLARE_ACCESSOR(thread_mutex); #endif /* APR_HAS_THREADS */ #ifdef __cplusplus } #endif #endif /* ! APR_THREAD_MUTEX_H */