usr/src/uts/common/fs/zfs/dmu_zfetch.c
author eschrock
Fri, 03 Mar 2006 20:08:16 -0800
changeset 1544 938876158511
parent 1380 f5e3c91aa185
child 2391 2fa3fd1db808
permissions -rw-r--r--
PSARC 2006/077 zpool clear PSARC 2006/139 FMA for ZFS 6284889 arc should replace the znode cache 6333006 DMU & DSL should not panic upon I/O error 6333092 concurrent reads to a file not scaling with number of readers 6338081 ZFS/FMA phase 1 6338386 need persistent error log 6341326 i/o error causes arc buf hash table corruption 6341639 zfs backup/restore should compute/verify checksum of backup stream 6348002 out of space due to changing properties 6354724 inaccurate error message from zfs restore 6354872 dmu_sync() blows predictive accounting 6355416 zpool scrubbing consumes all memory, system hung 6363995 df should only load libzfs when it encounters a ZFS filesystem 6366320 zfs backup/restore doesn't like signals 6368892 mount -m support needed for legacy mounts 6368902 boot archive fstat support needed for ZFS Mountroot 6369424 BFU complains when bfu'ing a ZFS root filesystem 6374062 mountroot support needed for ZFS 6376356 dirtying dbuf obj=43 lvl=0 blkid=0 but not tx_held 6378391 unused members of dmu_objset_stats_t 6378392 clean up zfs_cmd_t structure 6378685 buf_init should allocate its hash table more carefully 6378976 ziltest should be a first class citizen 6381086 zdb segfaults if there is a spa deferred-free bplist 6381203 deadlock due to i/o while assigning (tc_lock held) 6381209 freed space is not immediately available 6381344 'zpool clear' 6381345 FAULTED devices should really be UNAVAIL 6381346 import should mark devices as persistently unavailable 6383272 recursive mutex_enter() during log replay with zfs root 6386326 origin property is not displayed 6386354 libzfs does too much in its _init section, calls exit(1) 6386624 zpool should not complain about non-existent devices from libdiskmgt 6386910 spa needs to be i/o error hardened 6387735 need a mechanism to inject faults into ZFS 6387736 internal ZFS utilities should be placed in an ON-private package 6389928 libzfs should ship a lint library 6390609 malformed vdev config panics on zpool_create() 6390677 version number checking makes upgrades challenging 6390713 ztest hangs in zil_suspend() 6391873 metadata compression should be turned back on 6392113 ztest sometimes reports leaked blocks because ZIL isn't resilvered 6393004 minor memory leak in unique_insert()

/*
 * CDDL HEADER START
 *
 * The contents of this file are subject to the terms of the
 * Common Development and Distribution License, Version 1.0 only
 * (the "License").  You may not use this file except in compliance
 * with the License.
 *
 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
 * or http://www.opensolaris.org/os/licensing.
 * See the License for the specific language governing permissions
 * and limitations under the License.
 *
 * When distributing Covered Code, include this CDDL HEADER in each
 * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
 * If applicable, add the following below this CDDL HEADER, with the
 * fields enclosed by brackets "[]" replaced with your own identifying
 * information: Portions Copyright [yyyy] [name of copyright owner]
 *
 * CDDL HEADER END
 */
/*
 * Copyright 2006 Sun Microsystems, Inc.  All rights reserved.
 * Use is subject to license terms.
 */

#pragma ident	"%Z%%M%	%I%	%E% SMI"

#include <sys/zfs_context.h>
#include <sys/dnode.h>
#include <sys/dmu_objset.h>
#include <sys/dmu_zfetch.h>
#include <sys/dmu.h>
#include <sys/dbuf.h>

/*
 * I'm against tune-ables, but these should probably exist as tweakable globals
 * until we can get this working the way we want it to.
 */

/* max # of streams per zfetch */
uint32_t	zfetch_max_streams = 8;
/* min time before stream reclaim */
uint32_t	zfetch_min_sec_reap = 2;
/* max number of blocks to fetch at a time */
uint32_t	zfetch_block_cap = 32;
/* number of bytes in a array_read at which we stop prefetching (1Mb) */
uint64_t	zfetch_array_rd_sz = 1024 * 1024;

/* forward decls for static routines */
static int		dmu_zfetch_colinear(zfetch_t *, zstream_t *);
static void		dmu_zfetch_dofetch(zfetch_t *, zstream_t *);
static uint64_t		dmu_zfetch_fetch(dnode_t *, uint64_t, uint64_t);
static uint64_t		dmu_zfetch_fetchsz(dnode_t *, uint64_t, uint64_t);
static int		dmu_zfetch_find(zfetch_t *, zstream_t *);
static int		dmu_zfetch_stream_insert(zfetch_t *, zstream_t *);
static zstream_t	*dmu_zfetch_stream_reclaim(zfetch_t *);
static void		dmu_zfetch_stream_remove(zfetch_t *, zstream_t *);
static void		dmu_zfetch_stream_update(zfetch_t *, zstream_t *);
static int		dmu_zfetch_streams_equal(zstream_t *, zstream_t *);


/*
 * Given a zfetch structure and a zstream structure, determine whether the
 * blocks to be read are part of a co-linear to a pair of existing prefetch
 * streams.  If a set is found, coalesce the streams, removing one, and
 * configure the prefetch so it looks for a strided access pattern.
 *
 * If no co-linear streams are found, return NULL.
 */
static int
dmu_zfetch_colinear(zfetch_t *zf, zstream_t *zh)
{
	zstream_t	*z_walk;
	zstream_t	*z_comp;

	if (! rw_tryenter(&zf->zf_rwlock, RW_WRITER))
		return (0);

	if (zh == NULL) {
		rw_exit(&zf->zf_rwlock);
		return (0);
	}

	for (z_walk = list_head(&zf->zf_stream); z_walk;
	    z_walk = list_next(&zf->zf_stream, z_walk)) {
		for (z_comp = list_next(&zf->zf_stream, z_walk); z_comp;
		    z_comp = list_next(&zf->zf_stream, z_comp)) {
			int64_t		diff;

			if (z_walk->zst_len != z_walk->zst_stride ||
			    z_comp->zst_len != z_comp->zst_stride) {
				continue;
			}

			diff = z_comp->zst_offset - z_walk->zst_offset;
			if (z_comp->zst_offset + diff == zh->zst_offset) {
				z_walk->zst_offset = zh->zst_offset;
				z_walk->zst_direction = diff < 0 ? -1 : 1;
				z_walk->zst_stride =
				    diff * z_walk->zst_direction;
				z_walk->zst_ph_offset =
				    zh->zst_offset + z_walk->zst_stride;
				dmu_zfetch_stream_remove(zf, z_comp);
				mutex_destroy(&z_comp->zst_lock);
				kmem_free(z_comp, sizeof (zstream_t));

				dmu_zfetch_dofetch(zf, z_walk);

				rw_exit(&zf->zf_rwlock);
				return (1);
			}

			diff = z_walk->zst_offset - z_comp->zst_offset;
			if (z_walk->zst_offset + diff == zh->zst_offset) {
				z_walk->zst_offset = zh->zst_offset;
				z_walk->zst_direction = diff < 0 ? -1 : 1;
				z_walk->zst_stride =
				    diff * z_walk->zst_direction;
				z_walk->zst_ph_offset =
				    zh->zst_offset + z_walk->zst_stride;
				dmu_zfetch_stream_remove(zf, z_comp);
				mutex_destroy(&z_comp->zst_lock);
				kmem_free(z_comp, sizeof (zstream_t));

				dmu_zfetch_dofetch(zf, z_walk);

				rw_exit(&zf->zf_rwlock);
				return (1);
			}
		}
	}

	rw_exit(&zf->zf_rwlock);
	return (0);
}

/*
 * Given a zstream_t, determine the bounds of the prefetch.  Then call the
 * routine that actually prefetches the individual blocks.
 */
static void
dmu_zfetch_dofetch(zfetch_t *zf, zstream_t *zs)
{
	uint64_t	prefetch_tail;
	uint64_t	prefetch_limit;
	uint64_t	prefetch_ofst;
	uint64_t	prefetch_len;
	uint64_t	blocks_fetched;

	zs->zst_stride = MAX((int64_t)zs->zst_stride, zs->zst_len);
	zs->zst_cap = MIN(zfetch_block_cap, 2 * zs->zst_cap);

	prefetch_tail = MAX((int64_t)zs->zst_ph_offset,
	    (int64_t)(zs->zst_offset + zs->zst_stride));
	/*
	 * XXX: use a faster division method?
	 */
	prefetch_limit = zs->zst_offset + zs->zst_len +
	    (zs->zst_cap * zs->zst_stride) / zs->zst_len;

	while (prefetch_tail < prefetch_limit) {
		prefetch_ofst = zs->zst_offset + zs->zst_direction *
		    (prefetch_tail - zs->zst_offset);

		prefetch_len = zs->zst_len;

		/*
		 * Don't prefetch beyond the end of the file, if working
		 * backwards.
		 */
		if ((zs->zst_direction == ZFETCH_BACKWARD) &&
		    (prefetch_ofst > prefetch_tail)) {
			prefetch_len += prefetch_ofst;
			prefetch_ofst = 0;
		}

		/* don't prefetch more than we're supposed to */
		if (prefetch_len > zs->zst_len)
			break;

		blocks_fetched = dmu_zfetch_fetch(zf->zf_dnode,
		    prefetch_ofst, zs->zst_len);

		prefetch_tail += zs->zst_stride;
		/* stop if we've run out of stuff to prefetch */
		if (blocks_fetched < zs->zst_len)
			break;
	}
	zs->zst_ph_offset = prefetch_tail;
	zs->zst_last = lbolt;
}

/*
 * This takes a pointer to a zfetch structure and a dnode.  It performs the
 * necessary setup for the zfetch structure, grokking data from the
 * associated dnode.
 */
void
dmu_zfetch_init(zfetch_t *zf, dnode_t *dno)
{
	if (zf == NULL) {
		return;
	}

	zf->zf_dnode = dno;
	zf->zf_stream_cnt = 0;
	zf->zf_alloc_fail = 0;

	list_create(&zf->zf_stream, sizeof (zstream_t),
	    offsetof(zstream_t, zst_node));

	rw_init(&zf->zf_rwlock, NULL, RW_DEFAULT, NULL);
}

/*
 * This function computes the actual size, in blocks, that can be prefetched,
 * and fetches it.
 */
static uint64_t
dmu_zfetch_fetch(dnode_t *dn, uint64_t blkid, uint64_t nblks)
{
	uint64_t	fetchsz;
	uint64_t	i;

	fetchsz = dmu_zfetch_fetchsz(dn, blkid, nblks);

	for (i = 0; i < fetchsz; i++) {
		dbuf_prefetch(dn, blkid + i);
	}

	return (fetchsz);
}

/*
 * this function returns the number of blocks that would be prefetched, based
 * upon the supplied dnode, blockid, and nblks.  This is used so that we can
 * update streams in place, and then prefetch with their old value after the
 * fact.  This way, we can delay the prefetch, but subsequent accesses to the
 * stream won't result in the same data being prefetched multiple times.
 */
static uint64_t
dmu_zfetch_fetchsz(dnode_t *dn, uint64_t blkid, uint64_t nblks)
{
	uint64_t	fetchsz;

	if (blkid > dn->dn_maxblkid) {
		return (0);
	}

	/* compute fetch size */
	if (blkid + nblks > dn->dn_maxblkid) {
		fetchsz = dn->dn_maxblkid - blkid;
		ASSERT(blkid + fetchsz <= dn->dn_maxblkid);
	} else {
		fetchsz = nblks;
	}


	return (fetchsz);
}

/*
 * given a zfetch and a zsearch structure, see if there is an associated zstream
 * for this block read.  If so, it starts a prefetch for the stream it
 * located and returns true, otherwise it returns false
 */
static int
dmu_zfetch_find(zfetch_t *zf, zstream_t *zh)
{
	zstream_t	*zs;
	int64_t		diff;
	int		rc = 0;

	if (zh == NULL)
		return (0);

	/*
	 * XXX: This locking strategy is a bit coarse; however, it's impact has
	 * yet to be tested.  If this turns out to be an issue, it can be
	 * modified in a number of different ways.
	 */

	rw_enter(&zf->zf_rwlock, RW_READER);
top:

	for (zs = list_head(&zf->zf_stream); zs;
	    zs = list_next(&zf->zf_stream, zs)) {


		if (zs->zst_len == 0) {
			/* bogus stream */
			continue;
		}

		if (zh->zst_offset - zs->zst_offset < zs->zst_len) {
			/* already fetched */
			rw_exit(&zf->zf_rwlock);
			return (1);
		}

		if (zh->zst_offset == zs->zst_offset + zs->zst_len) {
			/* forward sequential access */

			mutex_enter(&zs->zst_lock);

			if (zh->zst_offset != zs->zst_offset + zs->zst_len) {
				mutex_exit(&zs->zst_lock);
				goto top;
			}

			zs->zst_len += zh->zst_len;
			diff = zs->zst_len - zfetch_block_cap;
			if (diff > 0) {
				zs->zst_offset += diff;
				zs->zst_len = zs->zst_len > diff ?
				    zs->zst_len - diff : 0;
			}
			zs->zst_direction = ZFETCH_FORWARD;

			break;

		} else if (zh->zst_offset == zs->zst_offset - zh->zst_len) {
			/* backwards sequential access */

			mutex_enter(&zs->zst_lock);

			if (zh->zst_offset != zs->zst_offset - zh->zst_len) {
				mutex_exit(&zs->zst_lock);
				goto top;
			}

			zs->zst_offset = zs->zst_offset > zh->zst_len ?
			    zs->zst_offset - zh->zst_len : 0;
			zs->zst_ph_offset = zs->zst_ph_offset > zh->zst_len ?
			    zs->zst_ph_offset - zh->zst_len : 0;
			zs->zst_len += zh->zst_len;

			diff = zs->zst_len - zfetch_block_cap;
			if (diff > 0) {
				zs->zst_ph_offset = zs->zst_ph_offset > diff ?
				    zs->zst_ph_offset - diff : 0;
				zs->zst_len = zs->zst_len > diff ?
				    zs->zst_len - diff : zs->zst_len;
			}
			zs->zst_direction = ZFETCH_BACKWARD;

			break;

		} else if ((zh->zst_offset - zs->zst_offset - zs->zst_stride <
		    zs->zst_len) && (zs->zst_len != zs->zst_stride)) {
			/* strided forward access */

			mutex_enter(&zs->zst_lock);

			if ((zh->zst_offset - zs->zst_offset - zs->zst_stride >=
			    zs->zst_len) || (zs->zst_len == zs->zst_stride)) {
				mutex_exit(&zs->zst_lock);
				goto top;
			}

			zs->zst_offset += zs->zst_stride;
			zs->zst_direction = ZFETCH_FORWARD;

			break;

		} else if ((zh->zst_offset - zs->zst_offset + zs->zst_stride <
		    zs->zst_len) && (zs->zst_len != zs->zst_stride)) {
			/* strided reverse access */

			mutex_enter(&zs->zst_lock);

			if ((zh->zst_offset - zs->zst_offset + zs->zst_stride >=
			    zs->zst_len) || (zs->zst_len == zs->zst_stride)) {
				mutex_exit(&zs->zst_lock);
				goto top;
			}

			zs->zst_offset = zs->zst_offset > zs->zst_stride ?
			    zs->zst_offset - zs->zst_stride : 0;
			zs->zst_ph_offset = (zs->zst_ph_offset >
			    (2 * zs->zst_stride)) ?
			    (zs->zst_ph_offset - (2 * zs->zst_stride)) : 0;
			zs->zst_direction = ZFETCH_BACKWARD;

			break;
		}
	}

	if (zs) {
		rc = 1;
		dmu_zfetch_dofetch(zf, zs);
		mutex_exit(&zs->zst_lock);
	}

	rw_exit(&zf->zf_rwlock);
	return (rc);
}

/*
 * Clean-up state associated with a zfetch structure.  This frees allocated
 * structure members, empties the zf_stream tree, and generally makes things
 * nice.  This doesn't free the zfetch_t itself, that's left to the caller.
 */
void
dmu_zfetch_rele(zfetch_t *zf)
{
	zstream_t	*zs;
	zstream_t	*zs_next;

	ASSERT(!RW_LOCK_HELD(&zf->zf_rwlock));

	for (zs = list_head(&zf->zf_stream); zs; zs = zs_next) {
		zs_next = list_next(&zf->zf_stream, zs);

		list_remove(&zf->zf_stream, zs);
		mutex_destroy(&zs->zst_lock);
		kmem_free(zs, sizeof (zstream_t));
	}
	list_destroy(&zf->zf_stream);
	rw_destroy(&zf->zf_rwlock);

	zf->zf_dnode = NULL;
}

/*
 * Given a zfetch and zstream structure, insert the zstream structure into the
 * AVL tree contained within the zfetch structure.  Peform the appropriate
 * book-keeping.  It is possible that another thread has inserted a stream which
 * matches one that we are about to insert, so we must be sure to check for this
 * case.  If one is found, return failure, and let the caller cleanup the
 * duplicates.
 */
static int
dmu_zfetch_stream_insert(zfetch_t *zf, zstream_t *zs)
{
	zstream_t	*zs_walk;
	zstream_t	*zs_next;

	ASSERT(RW_WRITE_HELD(&zf->zf_rwlock));

	for (zs_walk = list_head(&zf->zf_stream); zs_walk; zs_walk = zs_next) {
		zs_next = list_next(&zf->zf_stream, zs_walk);

		if (dmu_zfetch_streams_equal(zs_walk, zs)) {
		    return (0);
		}
	}

	list_insert_head(&zf->zf_stream, zs);
	zf->zf_stream_cnt++;

	return (1);
}


/*
 * Walk the list of zstreams in the given zfetch, find an old one (by time), and
 * reclaim it for use by the caller.
 */
static zstream_t *
dmu_zfetch_stream_reclaim(zfetch_t *zf)
{
	zstream_t	*zs;

	if (! rw_tryenter(&zf->zf_rwlock, RW_WRITER))
		return (0);

	for (zs = list_head(&zf->zf_stream); zs;
	    zs = list_next(&zf->zf_stream, zs)) {

		if (((lbolt - zs->zst_last) / hz) > zfetch_min_sec_reap)
			break;
	}

	if (zs) {
		dmu_zfetch_stream_remove(zf, zs);
		mutex_destroy(&zs->zst_lock);
		bzero(zs, sizeof (zstream_t));
	} else {
		zf->zf_alloc_fail++;
	}
	rw_exit(&zf->zf_rwlock);

	return (zs);
}

/*
 * Given a zfetch and zstream structure, remove the zstream structure from its
 * container in the zfetch structure.  Perform the appropriate book-keeping.
 */
static void
dmu_zfetch_stream_remove(zfetch_t *zf, zstream_t *zs)
{
	ASSERT(RW_WRITE_HELD(&zf->zf_rwlock));

	list_remove(&zf->zf_stream, zs);
	zf->zf_stream_cnt--;
}

static int
dmu_zfetch_streams_equal(zstream_t *zs1, zstream_t *zs2)
{
	if (zs1->zst_offset != zs2->zst_offset)
		return (0);

	if (zs1->zst_len != zs2->zst_len)
		return (0);

	if (zs1->zst_stride != zs2->zst_stride)
		return (0);

	if (zs1->zst_ph_offset != zs2->zst_ph_offset)
		return (0);

	if (zs1->zst_cap != zs2->zst_cap)
		return (0);

	if (zs1->zst_direction != zs2->zst_direction)
		return (0);

	return (1);
}

/*
 * This is the prefetch entry point.  It calls all of the other dmu_zfetch
 * routines to create, delete, find, or operate upon prefetch streams.
 */
void
dmu_zfetch(zfetch_t *zf, uint64_t offset, uint64_t size)
{
	zstream_t	zst;
	zstream_t	*newstream;
	int		fetched;
	int		inserted;
	unsigned int	blkshft;
	uint64_t	blksz;

	/* files that aren't ln2 blocksz are only one block -- nothing to do */
	if (!zf->zf_dnode->dn_datablkshift) {
		return;
	}

	/* convert offset and size, into blockid and nblocks */
	blkshft = zf->zf_dnode->dn_datablkshift;
	blksz = (1 << blkshft);

	bzero(&zst, sizeof (zstream_t));
	zst.zst_offset = offset >> blkshft;
	zst.zst_len = (P2ROUNDUP(offset + size, blksz) -
	    P2ALIGN(offset, blksz)) >> blkshft;

	fetched = dmu_zfetch_find(zf, &zst);
	if (!fetched) {
		fetched = dmu_zfetch_colinear(zf, &zst);
	}

	if (!fetched) {
		newstream = dmu_zfetch_stream_reclaim(zf);

		/*
		 * we still couldn't find a stream, drop the lock, and allocate
		 * one if possible.  Otherwise, give up and go home.
		 */
		if (newstream == NULL) {
			uint64_t	maxblocks;
			uint32_t	max_streams;
			uint32_t	cur_streams;

			cur_streams = zf->zf_stream_cnt;
			maxblocks = zf->zf_dnode->dn_maxblkid;

			max_streams = MIN(zfetch_max_streams,
			    (maxblocks / zfetch_block_cap));
			if (max_streams == 0) {
				max_streams++;
			}

			if (cur_streams >= max_streams) {
				return;
			}

			newstream = kmem_zalloc(sizeof (zstream_t), KM_SLEEP);
		}

		newstream->zst_offset = zst.zst_offset;
		newstream->zst_len = zst.zst_len;
		newstream->zst_stride = zst.zst_len;
		newstream->zst_ph_offset = zst.zst_len + zst.zst_offset;
		newstream->zst_cap = zst.zst_len;
		newstream->zst_direction = ZFETCH_FORWARD;
		newstream->zst_last = lbolt;

		mutex_init(&newstream->zst_lock, NULL, MUTEX_DEFAULT, NULL);

		rw_enter(&zf->zf_rwlock, RW_WRITER);
		inserted = dmu_zfetch_stream_insert(zf, newstream);
		rw_exit(&zf->zf_rwlock);

		if (!inserted) {
			mutex_destroy(&newstream->zst_lock);
			kmem_free(newstream, sizeof (zstream_t));
		}
	}
}