mirror of
https://gitlab.isc.org/isc-projects/bind9
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This commit converts the license handling to adhere to the REUSE specification. It specifically: 1. Adds used licnses to LICENSES/ directory 2. Add "isc" template for adding the copyright boilerplate 3. Changes all source files to include copyright and SPDX license header, this includes all the C sources, documentation, zone files, configuration files. There are notes in the doc/dev/copyrights file on how to add correct headers to the new files. 4. Handle the rest that can't be modified via .reuse/dep5 file. The binary (or otherwise unmodifiable) files could have license places next to them in <foo>.license file, but this would lead to cluttered repository and most of the files handled in the .reuse/dep5 file are system test files.
644 lines
19 KiB
C
644 lines
19 KiB
C
/*
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* Copyright (C) Internet Systems Consortium, Inc. ("ISC")
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*
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* SPDX-License-Identifier: MPL-2.0
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*
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* This Source Code Form is subject to the terms of the Mozilla Public
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* License, v. 2.0. If a copy of the MPL was not distributed with this
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* file, you can obtain one at https://mozilla.org/MPL/2.0/.
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*
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* See the COPYRIGHT file distributed with this work for additional
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* information regarding copyright ownership.
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*/
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/*! \file */
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#include <inttypes.h>
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#include <stdbool.h>
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#include <stddef.h>
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#if defined(sun) && (defined(__sparc) || defined(__sparc__))
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#include <synch.h> /* for smt_pause(3c) */
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#endif /* if defined(sun) && (defined(__sparc) || defined(__sparc__)) */
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#include <isc/atomic.h>
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#include <isc/magic.h>
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#include <isc/print.h>
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#include <isc/rwlock.h>
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#include <isc/util.h>
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#if USE_PTHREAD_RWLOCK
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#include <errno.h>
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#include <pthread.h>
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void
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isc_rwlock_init(isc_rwlock_t *rwl, unsigned int read_quota,
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unsigned int write_quota) {
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UNUSED(read_quota);
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UNUSED(write_quota);
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REQUIRE(pthread_rwlock_init(&rwl->rwlock, NULL) == 0);
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atomic_init(&rwl->downgrade, false);
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}
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isc_result_t
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isc_rwlock_lock(isc_rwlock_t *rwl, isc_rwlocktype_t type) {
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switch (type) {
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case isc_rwlocktype_read:
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REQUIRE(pthread_rwlock_rdlock(&rwl->rwlock) == 0);
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break;
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case isc_rwlocktype_write:
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while (true) {
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REQUIRE(pthread_rwlock_wrlock(&rwl->rwlock) == 0);
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/* Unlock if in middle of downgrade operation */
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if (atomic_load_acquire(&rwl->downgrade)) {
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REQUIRE(pthread_rwlock_unlock(&rwl->rwlock) ==
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0);
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while (atomic_load_acquire(&rwl->downgrade)) {
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}
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continue;
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}
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break;
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}
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break;
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default:
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INSIST(0);
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ISC_UNREACHABLE();
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}
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return (ISC_R_SUCCESS);
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}
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isc_result_t
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isc_rwlock_trylock(isc_rwlock_t *rwl, isc_rwlocktype_t type) {
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int ret = 0;
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switch (type) {
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case isc_rwlocktype_read:
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ret = pthread_rwlock_tryrdlock(&rwl->rwlock);
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break;
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case isc_rwlocktype_write:
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ret = pthread_rwlock_trywrlock(&rwl->rwlock);
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if ((ret == 0) && atomic_load_acquire(&rwl->downgrade)) {
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isc_rwlock_unlock(rwl, type);
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return (ISC_R_LOCKBUSY);
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}
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break;
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default:
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INSIST(0);
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}
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switch (ret) {
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case 0:
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return (ISC_R_SUCCESS);
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case EBUSY:
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return (ISC_R_LOCKBUSY);
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case EAGAIN:
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return (ISC_R_LOCKBUSY);
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default:
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INSIST(0);
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ISC_UNREACHABLE();
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}
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}
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isc_result_t
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isc_rwlock_unlock(isc_rwlock_t *rwl, isc_rwlocktype_t type) {
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UNUSED(type);
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REQUIRE(pthread_rwlock_unlock(&rwl->rwlock) == 0);
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return (ISC_R_SUCCESS);
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}
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isc_result_t
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isc_rwlock_tryupgrade(isc_rwlock_t *rwl) {
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UNUSED(rwl);
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return (ISC_R_LOCKBUSY);
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}
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void
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isc_rwlock_downgrade(isc_rwlock_t *rwl) {
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isc_result_t result;
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atomic_store_release(&rwl->downgrade, true);
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result = isc_rwlock_unlock(rwl, isc_rwlocktype_write);
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RUNTIME_CHECK(result == ISC_R_SUCCESS);
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result = isc_rwlock_lock(rwl, isc_rwlocktype_read);
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RUNTIME_CHECK(result == ISC_R_SUCCESS);
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atomic_store_release(&rwl->downgrade, false);
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}
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void
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isc_rwlock_destroy(isc_rwlock_t *rwl) {
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pthread_rwlock_destroy(&rwl->rwlock);
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}
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#else /* if USE_PTHREAD_RWLOCK */
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#define RWLOCK_MAGIC ISC_MAGIC('R', 'W', 'L', 'k')
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#define VALID_RWLOCK(rwl) ISC_MAGIC_VALID(rwl, RWLOCK_MAGIC)
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#ifndef RWLOCK_DEFAULT_READ_QUOTA
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#define RWLOCK_DEFAULT_READ_QUOTA 4
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#endif /* ifndef RWLOCK_DEFAULT_READ_QUOTA */
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#ifndef RWLOCK_DEFAULT_WRITE_QUOTA
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#define RWLOCK_DEFAULT_WRITE_QUOTA 4
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#endif /* ifndef RWLOCK_DEFAULT_WRITE_QUOTA */
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#ifndef RWLOCK_MAX_ADAPTIVE_COUNT
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#define RWLOCK_MAX_ADAPTIVE_COUNT 100
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#endif /* ifndef RWLOCK_MAX_ADAPTIVE_COUNT */
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#if defined(_MSC_VER)
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#include <intrin.h>
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#define isc_rwlock_pause() YieldProcessor()
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#elif defined(__x86_64__)
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#include <immintrin.h>
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#define isc_rwlock_pause() _mm_pause()
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#elif defined(__i386__)
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#define isc_rwlock_pause() __asm__ __volatile__("rep; nop")
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#elif defined(__ia64__)
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#define isc_rwlock_pause() __asm__ __volatile__("hint @pause")
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#elif defined(__arm__) && HAVE_ARM_YIELD
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#define isc_rwlock_pause() __asm__ __volatile__("yield")
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#elif defined(sun) && (defined(__sparc) || defined(__sparc__))
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#define isc_rwlock_pause() smt_pause()
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#elif (defined(__sparc) || defined(__sparc__)) && HAVE_SPARC_PAUSE
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#define isc_rwlock_pause() __asm__ __volatile__("pause")
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#elif defined(__ppc__) || defined(_ARCH_PPC) || defined(_ARCH_PWR) || \
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defined(_ARCH_PWR2) || defined(_POWER)
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#define isc_rwlock_pause() __asm__ volatile("or 27,27,27")
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#else /* if defined(_MSC_VER) */
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#define isc_rwlock_pause()
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#endif /* if defined(_MSC_VER) */
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static isc_result_t
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isc__rwlock_lock(isc_rwlock_t *rwl, isc_rwlocktype_t type);
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#ifdef ISC_RWLOCK_TRACE
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#include <stdio.h> /* Required for fprintf/stderr. */
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#include <isc/thread.h> /* Required for isc_thread_self(). */
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static void
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print_lock(const char *operation, isc_rwlock_t *rwl, isc_rwlocktype_t type) {
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fprintf(stderr,
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"rwlock %p thread %" PRIuPTR " %s(%s): "
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"write_requests=%u, write_completions=%u, "
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"cnt_and_flag=0x%x, readers_waiting=%u, "
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"write_granted=%u, write_quota=%u\n",
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rwl, isc_thread_self(), operation,
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(type == isc_rwlocktype_read ? "read" : "write"),
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atomic_load_acquire(&rwl->write_requests),
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atomic_load_acquire(&rwl->write_completions),
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atomic_load_acquire(&rwl->cnt_and_flag), rwl->readers_waiting,
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atomic_load_acquire(&rwl->write_granted), rwl->write_quota);
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}
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#endif /* ISC_RWLOCK_TRACE */
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void
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isc_rwlock_init(isc_rwlock_t *rwl, unsigned int read_quota,
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unsigned int write_quota) {
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REQUIRE(rwl != NULL);
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/*
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* In case there's trouble initializing, we zero magic now. If all
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* goes well, we'll set it to RWLOCK_MAGIC.
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*/
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rwl->magic = 0;
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atomic_init(&rwl->spins, 0);
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atomic_init(&rwl->write_requests, 0);
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atomic_init(&rwl->write_completions, 0);
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atomic_init(&rwl->cnt_and_flag, 0);
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rwl->readers_waiting = 0;
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atomic_init(&rwl->write_granted, 0);
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if (read_quota != 0) {
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UNEXPECTED_ERROR(__FILE__, __LINE__,
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"read quota is not supported");
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}
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if (write_quota == 0) {
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write_quota = RWLOCK_DEFAULT_WRITE_QUOTA;
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}
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rwl->write_quota = write_quota;
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isc_mutex_init(&rwl->lock);
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isc_condition_init(&rwl->readable);
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isc_condition_init(&rwl->writeable);
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rwl->magic = RWLOCK_MAGIC;
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}
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void
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isc_rwlock_destroy(isc_rwlock_t *rwl) {
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REQUIRE(VALID_RWLOCK(rwl));
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REQUIRE(atomic_load_acquire(&rwl->write_requests) ==
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atomic_load_acquire(&rwl->write_completions) &&
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atomic_load_acquire(&rwl->cnt_and_flag) == 0 &&
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rwl->readers_waiting == 0);
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rwl->magic = 0;
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(void)isc_condition_destroy(&rwl->readable);
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(void)isc_condition_destroy(&rwl->writeable);
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isc_mutex_destroy(&rwl->lock);
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}
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/*
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* When some architecture-dependent atomic operations are available,
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* rwlock can be more efficient than the generic algorithm defined below.
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* The basic algorithm is described in the following URL:
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* http://www.cs.rochester.edu/u/scott/synchronization/pseudocode/rw.html
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*
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* The key is to use the following integer variables modified atomically:
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* write_requests, write_completions, and cnt_and_flag.
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*
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* write_requests and write_completions act as a waiting queue for writers
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* in order to ensure the FIFO order. Both variables begin with the initial
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* value of 0. When a new writer tries to get a write lock, it increments
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* write_requests and gets the previous value of the variable as a "ticket".
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* When write_completions reaches the ticket number, the new writer can start
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* writing. When the writer completes its work, it increments
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* write_completions so that another new writer can start working. If the
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* write_requests is not equal to write_completions, it means a writer is now
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* working or waiting. In this case, a new readers cannot start reading, or
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* in other words, this algorithm basically prefers writers.
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*
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* cnt_and_flag is a "lock" shared by all readers and writers. This integer
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* variable is a kind of structure with two members: writer_flag (1 bit) and
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* reader_count (31 bits). The writer_flag shows whether a writer is working,
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* and the reader_count shows the number of readers currently working or almost
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* ready for working. A writer who has the current "ticket" tries to get the
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* lock by exclusively setting the writer_flag to 1, provided that the whole
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* 32-bit is 0 (meaning no readers or writers working). On the other hand,
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* a new reader tries to increment the "reader_count" field provided that
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* the writer_flag is 0 (meaning there is no writer working).
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*
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* If some of the above operations fail, the reader or the writer sleeps
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* until the related condition changes. When a working reader or writer
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* completes its work, some readers or writers are sleeping, and the condition
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* that suspended the reader or writer has changed, it wakes up the sleeping
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* readers or writers.
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*
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* As already noted, this algorithm basically prefers writers. In order to
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* prevent readers from starving, however, the algorithm also introduces the
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* "writer quota" (Q). When Q consecutive writers have completed their work,
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* suspending readers, the last writer will wake up the readers, even if a new
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* writer is waiting.
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*
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* Implementation specific note: due to the combination of atomic operations
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* and a mutex lock, ordering between the atomic operation and locks can be
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* very sensitive in some cases. In particular, it is generally very important
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* to check the atomic variable that requires a reader or writer to sleep after
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* locking the mutex and before actually sleeping; otherwise, it could be very
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* likely to cause a deadlock. For example, assume "var" is a variable
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* atomically modified, then the corresponding code would be:
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* if (var == need_sleep) {
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* LOCK(lock);
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* if (var == need_sleep)
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* WAIT(cond, lock);
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* UNLOCK(lock);
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* }
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* The second check is important, since "var" is protected by the atomic
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* operation, not by the mutex, and can be changed just before sleeping.
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* (The first "if" could be omitted, but this is also important in order to
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* make the code efficient by avoiding the use of the mutex unless it is
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* really necessary.)
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*/
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#define WRITER_ACTIVE 0x1
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#define READER_INCR 0x2
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static isc_result_t
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isc__rwlock_lock(isc_rwlock_t *rwl, isc_rwlocktype_t type) {
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int32_t cntflag;
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REQUIRE(VALID_RWLOCK(rwl));
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#ifdef ISC_RWLOCK_TRACE
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print_lock("prelock", rwl, type);
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#endif /* ifdef ISC_RWLOCK_TRACE */
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if (type == isc_rwlocktype_read) {
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if (atomic_load_acquire(&rwl->write_requests) !=
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atomic_load_acquire(&rwl->write_completions))
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{
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/* there is a waiting or active writer */
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LOCK(&rwl->lock);
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if (atomic_load_acquire(&rwl->write_requests) !=
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atomic_load_acquire(&rwl->write_completions))
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{
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rwl->readers_waiting++;
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WAIT(&rwl->readable, &rwl->lock);
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rwl->readers_waiting--;
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}
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UNLOCK(&rwl->lock);
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}
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cntflag = atomic_fetch_add_release(&rwl->cnt_and_flag,
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READER_INCR);
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POST(cntflag);
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while (1) {
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if ((atomic_load_acquire(&rwl->cnt_and_flag) &
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WRITER_ACTIVE) == 0) {
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break;
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}
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/* A writer is still working */
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LOCK(&rwl->lock);
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rwl->readers_waiting++;
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if ((atomic_load_acquire(&rwl->cnt_and_flag) &
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WRITER_ACTIVE) != 0) {
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WAIT(&rwl->readable, &rwl->lock);
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}
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rwl->readers_waiting--;
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UNLOCK(&rwl->lock);
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/*
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* Typically, the reader should be able to get a lock
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* at this stage:
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* (1) there should have been no pending writer when
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* the reader was trying to increment the
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* counter; otherwise, the writer should be in
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* the waiting queue, preventing the reader from
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* proceeding to this point.
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* (2) once the reader increments the counter, no
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* more writer can get a lock.
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* Still, it is possible another writer can work at
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* this point, e.g. in the following scenario:
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* A previous writer unlocks the writer lock.
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* This reader proceeds to point (1).
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* A new writer appears, and gets a new lock before
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* the reader increments the counter.
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* The reader then increments the counter.
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* The previous writer notices there is a waiting
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* reader who is almost ready, and wakes it up.
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* So, the reader needs to confirm whether it can now
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* read explicitly (thus we loop). Note that this is
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* not an infinite process, since the reader has
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* incremented the counter at this point.
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*/
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}
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/*
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* If we are temporarily preferred to writers due to the writer
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* quota, reset the condition (race among readers doesn't
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* matter).
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*/
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atomic_store_release(&rwl->write_granted, 0);
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} else {
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int32_t prev_writer;
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/* enter the waiting queue, and wait for our turn */
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prev_writer = atomic_fetch_add_release(&rwl->write_requests, 1);
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while (atomic_load_acquire(&rwl->write_completions) !=
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prev_writer) {
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LOCK(&rwl->lock);
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if (atomic_load_acquire(&rwl->write_completions) !=
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prev_writer) {
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WAIT(&rwl->writeable, &rwl->lock);
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UNLOCK(&rwl->lock);
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continue;
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}
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UNLOCK(&rwl->lock);
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break;
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}
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while (!atomic_compare_exchange_weak_acq_rel(
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&rwl->cnt_and_flag, &(int_fast32_t){ 0 },
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WRITER_ACTIVE))
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{
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/* Another active reader or writer is working. */
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LOCK(&rwl->lock);
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if (atomic_load_acquire(&rwl->cnt_and_flag) != 0) {
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WAIT(&rwl->writeable, &rwl->lock);
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}
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UNLOCK(&rwl->lock);
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}
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INSIST((atomic_load_acquire(&rwl->cnt_and_flag) &
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WRITER_ACTIVE));
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atomic_fetch_add_release(&rwl->write_granted, 1);
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}
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#ifdef ISC_RWLOCK_TRACE
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print_lock("postlock", rwl, type);
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#endif /* ifdef ISC_RWLOCK_TRACE */
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return (ISC_R_SUCCESS);
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}
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isc_result_t
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isc_rwlock_lock(isc_rwlock_t *rwl, isc_rwlocktype_t type) {
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int32_t cnt = 0;
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int32_t spins = atomic_load_acquire(&rwl->spins) * 2 + 10;
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int32_t max_cnt = ISC_MAX(spins, RWLOCK_MAX_ADAPTIVE_COUNT);
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isc_result_t result = ISC_R_SUCCESS;
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do {
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if (cnt++ >= max_cnt) {
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result = isc__rwlock_lock(rwl, type);
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break;
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}
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isc_rwlock_pause();
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} while (isc_rwlock_trylock(rwl, type) != ISC_R_SUCCESS);
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atomic_fetch_add_release(&rwl->spins, (cnt - spins) / 8);
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return (result);
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}
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isc_result_t
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isc_rwlock_trylock(isc_rwlock_t *rwl, isc_rwlocktype_t type) {
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int32_t cntflag;
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REQUIRE(VALID_RWLOCK(rwl));
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#ifdef ISC_RWLOCK_TRACE
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print_lock("prelock", rwl, type);
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#endif /* ifdef ISC_RWLOCK_TRACE */
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if (type == isc_rwlocktype_read) {
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/* If a writer is waiting or working, we fail. */
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if (atomic_load_acquire(&rwl->write_requests) !=
|
|
atomic_load_acquire(&rwl->write_completions))
|
|
{
|
|
return (ISC_R_LOCKBUSY);
|
|
}
|
|
|
|
/* Otherwise, be ready for reading. */
|
|
cntflag = atomic_fetch_add_release(&rwl->cnt_and_flag,
|
|
READER_INCR);
|
|
if ((cntflag & WRITER_ACTIVE) != 0) {
|
|
/*
|
|
* A writer is working. We lose, and cancel the read
|
|
* request.
|
|
*/
|
|
cntflag = atomic_fetch_sub_release(&rwl->cnt_and_flag,
|
|
READER_INCR);
|
|
/*
|
|
* If no other readers are waiting and we've suspended
|
|
* new writers in this short period, wake them up.
|
|
*/
|
|
if (cntflag == READER_INCR &&
|
|
atomic_load_acquire(&rwl->write_completions) !=
|
|
atomic_load_acquire(&rwl->write_requests))
|
|
{
|
|
LOCK(&rwl->lock);
|
|
BROADCAST(&rwl->writeable);
|
|
UNLOCK(&rwl->lock);
|
|
}
|
|
|
|
return (ISC_R_LOCKBUSY);
|
|
}
|
|
} else {
|
|
/* Try locking without entering the waiting queue. */
|
|
int_fast32_t zero = 0;
|
|
if (!atomic_compare_exchange_strong_acq_rel(
|
|
&rwl->cnt_and_flag, &zero, WRITER_ACTIVE))
|
|
{
|
|
return (ISC_R_LOCKBUSY);
|
|
}
|
|
|
|
/*
|
|
* XXXJT: jump into the queue, possibly breaking the writer
|
|
* order.
|
|
*/
|
|
atomic_fetch_sub_release(&rwl->write_completions, 1);
|
|
atomic_fetch_add_release(&rwl->write_granted, 1);
|
|
}
|
|
|
|
#ifdef ISC_RWLOCK_TRACE
|
|
print_lock("postlock", rwl, type);
|
|
#endif /* ifdef ISC_RWLOCK_TRACE */
|
|
|
|
return (ISC_R_SUCCESS);
|
|
}
|
|
|
|
isc_result_t
|
|
isc_rwlock_tryupgrade(isc_rwlock_t *rwl) {
|
|
REQUIRE(VALID_RWLOCK(rwl));
|
|
|
|
int_fast32_t reader_incr = READER_INCR;
|
|
|
|
/* Try to acquire write access. */
|
|
atomic_compare_exchange_strong_acq_rel(&rwl->cnt_and_flag, &reader_incr,
|
|
WRITER_ACTIVE);
|
|
/*
|
|
* There must have been no writer, and there must have
|
|
* been at least one reader.
|
|
*/
|
|
INSIST((reader_incr & WRITER_ACTIVE) == 0 &&
|
|
(reader_incr & ~WRITER_ACTIVE) != 0);
|
|
|
|
if (reader_incr == READER_INCR) {
|
|
/*
|
|
* We are the only reader and have been upgraded.
|
|
* Now jump into the head of the writer waiting queue.
|
|
*/
|
|
atomic_fetch_sub_release(&rwl->write_completions, 1);
|
|
} else {
|
|
return (ISC_R_LOCKBUSY);
|
|
}
|
|
|
|
return (ISC_R_SUCCESS);
|
|
}
|
|
|
|
void
|
|
isc_rwlock_downgrade(isc_rwlock_t *rwl) {
|
|
int32_t prev_readers;
|
|
|
|
REQUIRE(VALID_RWLOCK(rwl));
|
|
|
|
/* Become an active reader. */
|
|
prev_readers = atomic_fetch_add_release(&rwl->cnt_and_flag,
|
|
READER_INCR);
|
|
/* We must have been a writer. */
|
|
INSIST((prev_readers & WRITER_ACTIVE) != 0);
|
|
|
|
/* Complete write */
|
|
atomic_fetch_sub_release(&rwl->cnt_and_flag, WRITER_ACTIVE);
|
|
atomic_fetch_add_release(&rwl->write_completions, 1);
|
|
|
|
/* Resume other readers */
|
|
LOCK(&rwl->lock);
|
|
if (rwl->readers_waiting > 0) {
|
|
BROADCAST(&rwl->readable);
|
|
}
|
|
UNLOCK(&rwl->lock);
|
|
}
|
|
|
|
isc_result_t
|
|
isc_rwlock_unlock(isc_rwlock_t *rwl, isc_rwlocktype_t type) {
|
|
int32_t prev_cnt;
|
|
|
|
REQUIRE(VALID_RWLOCK(rwl));
|
|
|
|
#ifdef ISC_RWLOCK_TRACE
|
|
print_lock("preunlock", rwl, type);
|
|
#endif /* ifdef ISC_RWLOCK_TRACE */
|
|
|
|
if (type == isc_rwlocktype_read) {
|
|
prev_cnt = atomic_fetch_sub_release(&rwl->cnt_and_flag,
|
|
READER_INCR);
|
|
/*
|
|
* If we're the last reader and any writers are waiting, wake
|
|
* them up. We need to wake up all of them to ensure the
|
|
* FIFO order.
|
|
*/
|
|
if (prev_cnt == READER_INCR &&
|
|
atomic_load_acquire(&rwl->write_completions) !=
|
|
atomic_load_acquire(&rwl->write_requests))
|
|
{
|
|
LOCK(&rwl->lock);
|
|
BROADCAST(&rwl->writeable);
|
|
UNLOCK(&rwl->lock);
|
|
}
|
|
} else {
|
|
bool wakeup_writers = true;
|
|
|
|
/*
|
|
* Reset the flag, and (implicitly) tell other writers
|
|
* we are done.
|
|
*/
|
|
atomic_fetch_sub_release(&rwl->cnt_and_flag, WRITER_ACTIVE);
|
|
atomic_fetch_add_release(&rwl->write_completions, 1);
|
|
|
|
if ((atomic_load_acquire(&rwl->write_granted) >=
|
|
rwl->write_quota) ||
|
|
(atomic_load_acquire(&rwl->write_requests) ==
|
|
atomic_load_acquire(&rwl->write_completions)) ||
|
|
(atomic_load_acquire(&rwl->cnt_and_flag) & ~WRITER_ACTIVE))
|
|
{
|
|
/*
|
|
* We have passed the write quota, no writer is
|
|
* waiting, or some readers are almost ready, pending
|
|
* possible writers. Note that the last case can
|
|
* happen even if write_requests != write_completions
|
|
* (which means a new writer in the queue), so we need
|
|
* to catch the case explicitly.
|
|
*/
|
|
LOCK(&rwl->lock);
|
|
if (rwl->readers_waiting > 0) {
|
|
wakeup_writers = false;
|
|
BROADCAST(&rwl->readable);
|
|
}
|
|
UNLOCK(&rwl->lock);
|
|
}
|
|
|
|
if ((atomic_load_acquire(&rwl->write_requests) !=
|
|
atomic_load_acquire(&rwl->write_completions)) &&
|
|
wakeup_writers)
|
|
{
|
|
LOCK(&rwl->lock);
|
|
BROADCAST(&rwl->writeable);
|
|
UNLOCK(&rwl->lock);
|
|
}
|
|
}
|
|
|
|
#ifdef ISC_RWLOCK_TRACE
|
|
print_lock("postunlock", rwl, type);
|
|
#endif /* ifdef ISC_RWLOCK_TRACE */
|
|
|
|
return (ISC_R_SUCCESS);
|
|
}
|
|
|
|
#endif /* USE_PTHREAD_RWLOCK */
|