1fa9e4066Sahrens /*
2fa9e4066Sahrens * CDDL HEADER START
3fa9e4066Sahrens *
4fa9e4066Sahrens * The contents of this file are subject to the terms of the
513506d1eSmaybee * Common Development and Distribution License (the "License").
613506d1eSmaybee * You may not use this file except in compliance with the License.
7fa9e4066Sahrens *
8fa9e4066Sahrens * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9fa9e4066Sahrens * or http://www.opensolaris.org/os/licensing.
10fa9e4066Sahrens * See the License for the specific language governing permissions
11fa9e4066Sahrens * and limitations under the License.
12fa9e4066Sahrens *
13fa9e4066Sahrens * When distributing Covered Code, include this CDDL HEADER in each
14fa9e4066Sahrens * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15fa9e4066Sahrens * If applicable, add the following below this CDDL HEADER, with the
16fa9e4066Sahrens * fields enclosed by brackets "[]" replaced with your own identifying
17fa9e4066Sahrens * information: Portions Copyright [yyyy] [name of copyright owner]
18fa9e4066Sahrens *
19fa9e4066Sahrens * CDDL HEADER END
20fa9e4066Sahrens */
21fa9e4066Sahrens /*
227cbf8b43SRich Morris * Copyright 2009 Sun Microsystems, Inc. All rights reserved.
23fa9e4066Sahrens * Use is subject to license terms.
24fa9e4066Sahrens */
25fa9e4066Sahrens
2669962b56SMatthew Ahrens /*
27*63280274SGeorge Wilson * Copyright (c) 2013, 2015 by Delphix. All rights reserved.
2869962b56SMatthew Ahrens */
2969962b56SMatthew Ahrens
30fa9e4066Sahrens #include <sys/zfs_context.h>
31fa9e4066Sahrens #include <sys/dnode.h>
32fa9e4066Sahrens #include <sys/dmu_objset.h>
33fa9e4066Sahrens #include <sys/dmu_zfetch.h>
34fa9e4066Sahrens #include <sys/dmu.h>
35fa9e4066Sahrens #include <sys/dbuf.h>
367cbf8b43SRich Morris #include <sys/kstat.h>
37fa9e4066Sahrens
38fa9e4066Sahrens /*
39cf6106c8SMatthew Ahrens * This tunable disables predictive prefetch. Note that it leaves "prescient"
40cf6106c8SMatthew Ahrens * prefetch (e.g. prefetch for zfs send) intact. Unlike predictive prefetch,
41cf6106c8SMatthew Ahrens * prescient prefetch never issues i/os that end up not being needed,
42cf6106c8SMatthew Ahrens * so it can't hurt performance.
43fa9e4066Sahrens */
44cf6106c8SMatthew Ahrens boolean_t zfs_prefetch_disable = B_FALSE;
45a2eea2e1Sahrens
46fa9e4066Sahrens /* max # of streams per zfetch */
47fa9e4066Sahrens uint32_t zfetch_max_streams = 8;
48fa9e4066Sahrens /* min time before stream reclaim */
49fa9e4066Sahrens uint32_t zfetch_min_sec_reap = 2;
50cf6106c8SMatthew Ahrens /* max bytes to prefetch per stream (default 8MB) */
51cf6106c8SMatthew Ahrens uint32_t zfetch_max_distance = 8 * 1024 * 1024;
52*63280274SGeorge Wilson /* max number of bytes in an array_read in which we allow prefetching (1MB) */
53fa9e4066Sahrens uint64_t zfetch_array_rd_sz = 1024 * 1024;
54fa9e4066Sahrens
557cbf8b43SRich Morris typedef struct zfetch_stats {
567cbf8b43SRich Morris kstat_named_t zfetchstat_hits;
577cbf8b43SRich Morris kstat_named_t zfetchstat_misses;
58cf6106c8SMatthew Ahrens kstat_named_t zfetchstat_max_streams;
597cbf8b43SRich Morris } zfetch_stats_t;
607cbf8b43SRich Morris
617cbf8b43SRich Morris static zfetch_stats_t zfetch_stats = {
627cbf8b43SRich Morris { "hits", KSTAT_DATA_UINT64 },
637cbf8b43SRich Morris { "misses", KSTAT_DATA_UINT64 },
64cf6106c8SMatthew Ahrens { "max_streams", KSTAT_DATA_UINT64 },
657cbf8b43SRich Morris };
667cbf8b43SRich Morris
67cf6106c8SMatthew Ahrens #define ZFETCHSTAT_BUMP(stat) \
68cf6106c8SMatthew Ahrens atomic_inc_64(&zfetch_stats.stat.value.ui64);
697cbf8b43SRich Morris
707cbf8b43SRich Morris kstat_t *zfetch_ksp;
717cbf8b43SRich Morris
727cbf8b43SRich Morris void
zfetch_init(void)737cbf8b43SRich Morris zfetch_init(void)
747cbf8b43SRich Morris {
757cbf8b43SRich Morris zfetch_ksp = kstat_create("zfs", 0, "zfetchstats", "misc",
767cbf8b43SRich Morris KSTAT_TYPE_NAMED, sizeof (zfetch_stats) / sizeof (kstat_named_t),
777cbf8b43SRich Morris KSTAT_FLAG_VIRTUAL);
787cbf8b43SRich Morris
797cbf8b43SRich Morris if (zfetch_ksp != NULL) {
807cbf8b43SRich Morris zfetch_ksp->ks_data = &zfetch_stats;
817cbf8b43SRich Morris kstat_install(zfetch_ksp);
827cbf8b43SRich Morris }
837cbf8b43SRich Morris }
847cbf8b43SRich Morris
857cbf8b43SRich Morris void
zfetch_fini(void)867cbf8b43SRich Morris zfetch_fini(void)
877cbf8b43SRich Morris {
887cbf8b43SRich Morris if (zfetch_ksp != NULL) {
897cbf8b43SRich Morris kstat_delete(zfetch_ksp);
907cbf8b43SRich Morris zfetch_ksp = NULL;
917cbf8b43SRich Morris }
927cbf8b43SRich Morris }
937cbf8b43SRich Morris
94fa9e4066Sahrens /*
95fa9e4066Sahrens * This takes a pointer to a zfetch structure and a dnode. It performs the
96fa9e4066Sahrens * necessary setup for the zfetch structure, grokking data from the
97fa9e4066Sahrens * associated dnode.
98fa9e4066Sahrens */
99fa9e4066Sahrens void
dmu_zfetch_init(zfetch_t * zf,dnode_t * dno)100fa9e4066Sahrens dmu_zfetch_init(zfetch_t *zf, dnode_t *dno)
101fa9e4066Sahrens {
102cf6106c8SMatthew Ahrens if (zf == NULL)
103fa9e4066Sahrens return;
104fa9e4066Sahrens
105fa9e4066Sahrens zf->zf_dnode = dno;
106fa9e4066Sahrens
107fa9e4066Sahrens list_create(&zf->zf_stream, sizeof (zstream_t),
108cf6106c8SMatthew Ahrens offsetof(zstream_t, zs_node));
109fa9e4066Sahrens
110fa9e4066Sahrens rw_init(&zf->zf_rwlock, NULL, RW_DEFAULT, NULL);
111fa9e4066Sahrens }
112fa9e4066Sahrens
113cf6106c8SMatthew Ahrens static void
dmu_zfetch_stream_remove(zfetch_t * zf,zstream_t * zs)114cf6106c8SMatthew Ahrens dmu_zfetch_stream_remove(zfetch_t *zf, zstream_t *zs)
115fa9e4066Sahrens {
116cf6106c8SMatthew Ahrens ASSERT(RW_WRITE_HELD(&zf->zf_rwlock));
117cf6106c8SMatthew Ahrens list_remove(&zf->zf_stream, zs);
118cf6106c8SMatthew Ahrens mutex_destroy(&zs->zs_lock);
119cf6106c8SMatthew Ahrens kmem_free(zs, sizeof (*zs));
120fa9e4066Sahrens }
121fa9e4066Sahrens
122fa9e4066Sahrens /*
123cf6106c8SMatthew Ahrens * Clean-up state associated with a zfetch structure (e.g. destroy the
124cf6106c8SMatthew Ahrens * streams). This doesn't free the zfetch_t itself, that's left to the caller.
125fa9e4066Sahrens */
126fa9e4066Sahrens void
dmu_zfetch_fini(zfetch_t * zf)127cf6106c8SMatthew Ahrens dmu_zfetch_fini(zfetch_t *zf)
128fa9e4066Sahrens {
129fa9e4066Sahrens zstream_t *zs;
130fa9e4066Sahrens
131fa9e4066Sahrens ASSERT(!RW_LOCK_HELD(&zf->zf_rwlock));
132fa9e4066Sahrens
133cf6106c8SMatthew Ahrens rw_enter(&zf->zf_rwlock, RW_WRITER);
134cf6106c8SMatthew Ahrens while ((zs = list_head(&zf->zf_stream)) != NULL)
135cf6106c8SMatthew Ahrens dmu_zfetch_stream_remove(zf, zs);
136cf6106c8SMatthew Ahrens rw_exit(&zf->zf_rwlock);
137fa9e4066Sahrens list_destroy(&zf->zf_stream);
138fa9e4066Sahrens rw_destroy(&zf->zf_rwlock);
139fa9e4066Sahrens
140fa9e4066Sahrens zf->zf_dnode = NULL;
141fa9e4066Sahrens }
142fa9e4066Sahrens
143fa9e4066Sahrens /*
144cf6106c8SMatthew Ahrens * If there aren't too many streams already, create a new stream.
145cf6106c8SMatthew Ahrens * The "blkid" argument is the next block that we expect this stream to access.
146cf6106c8SMatthew Ahrens * While we're here, clean up old streams (which haven't been
147cf6106c8SMatthew Ahrens * accessed for at least zfetch_min_sec_reap seconds).
148fa9e4066Sahrens */
149fa9e4066Sahrens static void
dmu_zfetch_stream_create(zfetch_t * zf,uint64_t blkid)150cf6106c8SMatthew Ahrens dmu_zfetch_stream_create(zfetch_t *zf, uint64_t blkid)
151fa9e4066Sahrens {
152cf6106c8SMatthew Ahrens zstream_t *zs_next;
153cf6106c8SMatthew Ahrens int numstreams = 0;
154cf6106c8SMatthew Ahrens
155fa9e4066Sahrens ASSERT(RW_WRITE_HELD(&zf->zf_rwlock));
156fa9e4066Sahrens
157cf6106c8SMatthew Ahrens /*
158cf6106c8SMatthew Ahrens * Clean up old streams.
159cf6106c8SMatthew Ahrens */
160cf6106c8SMatthew Ahrens for (zstream_t *zs = list_head(&zf->zf_stream);
161cf6106c8SMatthew Ahrens zs != NULL; zs = zs_next) {
162cf6106c8SMatthew Ahrens zs_next = list_next(&zf->zf_stream, zs);
163cf6106c8SMatthew Ahrens if (((gethrtime() - zs->zs_atime) / NANOSEC) >
164cf6106c8SMatthew Ahrens zfetch_min_sec_reap)
165cf6106c8SMatthew Ahrens dmu_zfetch_stream_remove(zf, zs);
166cf6106c8SMatthew Ahrens else
167cf6106c8SMatthew Ahrens numstreams++;
168fa9e4066Sahrens }
169fa9e4066Sahrens
170cf6106c8SMatthew Ahrens /*
171cf6106c8SMatthew Ahrens * The maximum number of streams is normally zfetch_max_streams,
172cf6106c8SMatthew Ahrens * but for small files we lower it such that it's at least possible
173cf6106c8SMatthew Ahrens * for all the streams to be non-overlapping.
174cf6106c8SMatthew Ahrens *
175cf6106c8SMatthew Ahrens * If we are already at the maximum number of streams for this file,
176cf6106c8SMatthew Ahrens * even after removing old streams, then don't create this stream.
177cf6106c8SMatthew Ahrens */
178cf6106c8SMatthew Ahrens uint32_t max_streams = MAX(1, MIN(zfetch_max_streams,
179cf6106c8SMatthew Ahrens zf->zf_dnode->dn_maxblkid * zf->zf_dnode->dn_datablksz /
180cf6106c8SMatthew Ahrens zfetch_max_distance));
181cf6106c8SMatthew Ahrens if (numstreams >= max_streams) {
182cf6106c8SMatthew Ahrens ZFETCHSTAT_BUMP(zfetchstat_max_streams);
183cf6106c8SMatthew Ahrens return;
184cf6106c8SMatthew Ahrens }
185fa9e4066Sahrens
186cf6106c8SMatthew Ahrens zstream_t *zs = kmem_zalloc(sizeof (*zs), KM_SLEEP);
187cf6106c8SMatthew Ahrens zs->zs_blkid = blkid;
188cf6106c8SMatthew Ahrens zs->zs_pf_blkid = blkid;
189cf6106c8SMatthew Ahrens zs->zs_atime = gethrtime();
190cf6106c8SMatthew Ahrens mutex_init(&zs->zs_lock, NULL, MUTEX_DEFAULT, NULL);
191fa9e4066Sahrens
192cf6106c8SMatthew Ahrens list_insert_head(&zf->zf_stream, zs);
193fa9e4066Sahrens }
194fa9e4066Sahrens
195fa9e4066Sahrens /*
196fa9e4066Sahrens * This is the prefetch entry point. It calls all of the other dmu_zfetch
197fa9e4066Sahrens * routines to create, delete, find, or operate upon prefetch streams.
198fa9e4066Sahrens */
199fa9e4066Sahrens void
dmu_zfetch(zfetch_t * zf,uint64_t blkid,uint64_t nblks)200cf6106c8SMatthew Ahrens dmu_zfetch(zfetch_t *zf, uint64_t blkid, uint64_t nblks)
201fa9e4066Sahrens {
202cf6106c8SMatthew Ahrens zstream_t *zs;
203fa9e4066Sahrens
204a2eea2e1Sahrens if (zfs_prefetch_disable)
205fa9e4066Sahrens return;
206a2eea2e1Sahrens
207cf6106c8SMatthew Ahrens /*
208cf6106c8SMatthew Ahrens * As a fast path for small (single-block) files, ignore access
209cf6106c8SMatthew Ahrens * to the first block.
210cf6106c8SMatthew Ahrens */
211cf6106c8SMatthew Ahrens if (blkid == 0)
212a2eea2e1Sahrens return;
213fa9e4066Sahrens
214cf6106c8SMatthew Ahrens rw_enter(&zf->zf_rwlock, RW_READER);
215fa9e4066Sahrens
216cf6106c8SMatthew Ahrens for (zs = list_head(&zf->zf_stream); zs != NULL;
217cf6106c8SMatthew Ahrens zs = list_next(&zf->zf_stream, zs)) {
218cf6106c8SMatthew Ahrens if (blkid == zs->zs_blkid) {
219cf6106c8SMatthew Ahrens mutex_enter(&zs->zs_lock);
220cf6106c8SMatthew Ahrens /*
221cf6106c8SMatthew Ahrens * zs_blkid could have changed before we
222cf6106c8SMatthew Ahrens * acquired zs_lock; re-check them here.
223cf6106c8SMatthew Ahrens */
224cf6106c8SMatthew Ahrens if (blkid != zs->zs_blkid) {
225cf6106c8SMatthew Ahrens mutex_exit(&zs->zs_lock);
226cf6106c8SMatthew Ahrens continue;
227cf6106c8SMatthew Ahrens }
228cf6106c8SMatthew Ahrens break;
229cf6106c8SMatthew Ahrens }
230cf6106c8SMatthew Ahrens }
231fa9e4066Sahrens
232cf6106c8SMatthew Ahrens if (zs == NULL) {
233cf6106c8SMatthew Ahrens /*
234cf6106c8SMatthew Ahrens * This access is not part of any existing stream. Create
235cf6106c8SMatthew Ahrens * a new stream for it.
236cf6106c8SMatthew Ahrens */
2377cbf8b43SRich Morris ZFETCHSTAT_BUMP(zfetchstat_misses);
238cf6106c8SMatthew Ahrens if (rw_tryupgrade(&zf->zf_rwlock))
239cf6106c8SMatthew Ahrens dmu_zfetch_stream_create(zf, blkid + nblks);
240cf6106c8SMatthew Ahrens rw_exit(&zf->zf_rwlock);
241cf6106c8SMatthew Ahrens return;
2427cbf8b43SRich Morris }
243fa9e4066Sahrens
244fa9e4066Sahrens /*
245cf6106c8SMatthew Ahrens * This access was to a block that we issued a prefetch for on
246cf6106c8SMatthew Ahrens * behalf of this stream. Issue further prefetches for this stream.
247cf6106c8SMatthew Ahrens *
248cf6106c8SMatthew Ahrens * Normally, we start prefetching where we stopped
249cf6106c8SMatthew Ahrens * prefetching last (zs_pf_blkid). But when we get our first
250cf6106c8SMatthew Ahrens * hit on this stream, zs_pf_blkid == zs_blkid, we don't
251cf6106c8SMatthew Ahrens * want to prefetch to block we just accessed. In this case,
252cf6106c8SMatthew Ahrens * start just after the block we just accessed.
253fa9e4066Sahrens */
254cf6106c8SMatthew Ahrens int64_t pf_start = MAX(zs->zs_pf_blkid, blkid + nblks);
255fa9e4066Sahrens
256cf6106c8SMatthew Ahrens /*
257cf6106c8SMatthew Ahrens * Double our amount of prefetched data, but don't let the
258cf6106c8SMatthew Ahrens * prefetch get further ahead than zfetch_max_distance.
259cf6106c8SMatthew Ahrens */
260cf6106c8SMatthew Ahrens int pf_nblks =
261cf6106c8SMatthew Ahrens MIN((int64_t)zs->zs_pf_blkid - zs->zs_blkid + nblks,
262cf6106c8SMatthew Ahrens zs->zs_blkid + nblks +
263cf6106c8SMatthew Ahrens (zfetch_max_distance >> zf->zf_dnode->dn_datablkshift) - pf_start);
264fa9e4066Sahrens
265cf6106c8SMatthew Ahrens zs->zs_pf_blkid = pf_start + pf_nblks;
266cf6106c8SMatthew Ahrens zs->zs_atime = gethrtime();
267cf6106c8SMatthew Ahrens zs->zs_blkid = blkid + nblks;
268fa9e4066Sahrens
269cf6106c8SMatthew Ahrens /*
270cf6106c8SMatthew Ahrens * dbuf_prefetch() issues the prefetch i/o
271cf6106c8SMatthew Ahrens * asynchronously, but it may need to wait for an
272cf6106c8SMatthew Ahrens * indirect block to be read from disk. Therefore
273cf6106c8SMatthew Ahrens * we do not want to hold any locks while we call it.
274cf6106c8SMatthew Ahrens */
275cf6106c8SMatthew Ahrens mutex_exit(&zs->zs_lock);
276fa9e4066Sahrens rw_exit(&zf->zf_rwlock);
277cf6106c8SMatthew Ahrens for (int i = 0; i < pf_nblks; i++) {
278cf6106c8SMatthew Ahrens dbuf_prefetch(zf->zf_dnode, 0, pf_start + i,
279cf6106c8SMatthew Ahrens ZIO_PRIORITY_ASYNC_READ, ARC_FLAG_PREDICTIVE_PREFETCH);
280fa9e4066Sahrens }
281cf6106c8SMatthew Ahrens ZFETCHSTAT_BUMP(zfetchstat_hits);
282fa9e4066Sahrens }
283