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      1 /*
      2  * CDDL HEADER START
      3  *
      4  * The contents of this file are subject to the terms of the
      5  * Common Development and Distribution License (the "License").
      6  * You may not use this file except in compliance with the License.
      7  *
      8  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
      9  * or http://www.opensolaris.org/os/licensing.
     10  * See the License for the specific language governing permissions
     11  * and limitations under the License.
     12  *
     13  * When distributing Covered Code, include this CDDL HEADER in each
     14  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
     15  * If applicable, add the following below this CDDL HEADER, with the
     16  * fields enclosed by brackets "[]" replaced with your own identifying
     17  * information: Portions Copyright [yyyy] [name of copyright owner]
     18  *
     19  * CDDL HEADER END
     20  */
     21 /*
     22  * Copyright 2009 Sun Microsystems, Inc.  All rights reserved.
     23  * Use is subject to license terms.
     24  */
     25 /*
     26  * Copyright (c) 2013, 2015 by Delphix. All rights reserved.
     27  */
     28 
     29 #include <sys/zfs_context.h>
     30 #include <sys/spa.h>
     31 #include <sys/vdev_impl.h>
     32 #include <sys/zio.h>
     33 #include <sys/kstat.h>
     34 
     35 /*
     36  * Virtual device read-ahead caching.
     37  *
     38  * This file implements a simple LRU read-ahead cache.  When the DMU reads
     39  * a given block, it will often want other, nearby blocks soon thereafter.
     40  * We take advantage of this by reading a larger disk region and caching
     41  * the result.  In the best case, this can turn 128 back-to-back 512-byte
     42  * reads into a single 64k read followed by 127 cache hits; this reduces
     43  * latency dramatically.  In the worst case, it can turn an isolated 512-byte
     44  * read into a 64k read, which doesn't affect latency all that much but is
     45  * terribly wasteful of bandwidth.  A more intelligent version of the cache
     46  * could keep track of access patterns and not do read-ahead unless it sees
     47  * at least two temporally close I/Os to the same region.  Currently, only
     48  * metadata I/O is inflated.  A futher enhancement could take advantage of
     49  * more semantic information about the I/O.  And it could use something
     50  * faster than an AVL tree; that was chosen solely for convenience.
     51  *
     52  * There are five cache operations: allocate, fill, read, write, evict.
     53  *
     54  * (1) Allocate.  This reserves a cache entry for the specified region.
     55  *     We separate the allocate and fill operations so that multiple threads
     56  *     don't generate I/O for the same cache miss.
     57  *
     58  * (2) Fill.  When the I/O for a cache miss completes, the fill routine
     59  *     places the data in the previously allocated cache entry.
     60  *
     61  * (3) Read.  Read data from the cache.
     62  *
     63  * (4) Write.  Update cache contents after write completion.
     64  *
     65  * (5) Evict.  When allocating a new entry, we evict the oldest (LRU) entry
     66  *     if the total cache size exceeds zfs_vdev_cache_size.
     67  */
     68 
     69 /*
     70  * These tunables are for performance analysis.
     71  */
     72 /*
     73  * All i/os smaller than zfs_vdev_cache_max will be turned into
     74  * 1<<zfs_vdev_cache_bshift byte reads by the vdev_cache (aka software
     75  * track buffer).  At most zfs_vdev_cache_size bytes will be kept in each
     76  * vdev's vdev_cache.
     77  *
     78  * TODO: Note that with the current ZFS code, it turns out that the
     79  * vdev cache is not helpful, and in some cases actually harmful.  It
     80  * is better if we disable this.  Once some time has passed, we should
     81  * actually remove this to simplify the code.  For now we just disable
     82  * it by setting the zfs_vdev_cache_size to zero.  Note that Solaris 11
     83  * has made these same changes.
     84  */
     85 int zfs_vdev_cache_max = 1<<14;			/* 16KB */
     86 int zfs_vdev_cache_size = 0;
     87 int zfs_vdev_cache_bshift = 16;
     88 
     89 #define	VCBS (1 << zfs_vdev_cache_bshift)	/* 64KB */
     90 
     91 SYSCTL_DECL(_vfs_zfs_vdev);
     92 SYSCTL_NODE(_vfs_zfs_vdev, OID_AUTO, cache, CTLFLAG_RW, 0, "ZFS VDEV Cache");
     93 SYSCTL_INT(_vfs_zfs_vdev_cache, OID_AUTO, max, CTLFLAG_RDTUN,
     94     &zfs_vdev_cache_max, 0, "Maximum I/O request size that increase read size");
     95 SYSCTL_INT(_vfs_zfs_vdev_cache, OID_AUTO, size, CTLFLAG_RDTUN,
     96     &zfs_vdev_cache_size, 0, "Size of VDEV cache");
     97 SYSCTL_INT(_vfs_zfs_vdev_cache, OID_AUTO, bshift, CTLFLAG_RDTUN,
     98     &zfs_vdev_cache_bshift, 0, "Turn too small requests into 1 << this value");
     99 
    100 kstat_t	*vdc_ksp = NULL;
    101 
    102 typedef struct vdc_stats {
    103 	kstat_named_t vdc_stat_delegations;
    104 	kstat_named_t vdc_stat_hits;
    105 	kstat_named_t vdc_stat_misses;
    106 } vdc_stats_t;
    107 
    108 static vdc_stats_t vdc_stats = {
    109 	{ "delegations",	KSTAT_DATA_UINT64 },
    110 	{ "hits",		KSTAT_DATA_UINT64 },
    111 	{ "misses",		KSTAT_DATA_UINT64 }
    112 };
    113 
    114 #define	VDCSTAT_BUMP(stat)	atomic_inc_64(&vdc_stats.stat.value.ui64);
    115 
    116 static int
    117 vdev_cache_offset_compare(const void *a1, const void *a2)
    118 {
    119 	const vdev_cache_entry_t *ve1 = a1;
    120 	const vdev_cache_entry_t *ve2 = a2;
    121 
    122 	if (ve1->ve_offset < ve2->ve_offset)
    123 		return (-1);
    124 	if (ve1->ve_offset > ve2->ve_offset)
    125 		return (1);
    126 	return (0);
    127 }
    128 
    129 static int
    130 vdev_cache_lastused_compare(const void *a1, const void *a2)
    131 {
    132 	const vdev_cache_entry_t *ve1 = a1;
    133 	const vdev_cache_entry_t *ve2 = a2;
    134 
    135 	if (ve1->ve_lastused < ve2->ve_lastused)
    136 		return (-1);
    137 	if (ve1->ve_lastused > ve2->ve_lastused)
    138 		return (1);
    139 
    140 	/*
    141 	 * Among equally old entries, sort by offset to ensure uniqueness.
    142 	 */
    143 	return (vdev_cache_offset_compare(a1, a2));
    144 }
    145 
    146 /*
    147  * Evict the specified entry from the cache.
    148  */
    149 static void
    150 vdev_cache_evict(vdev_cache_t *vc, vdev_cache_entry_t *ve)
    151 {
    152 	ASSERT(MUTEX_HELD(&vc->vc_lock));
    153 	ASSERT(ve->ve_fill_io == NULL);
    154 	ASSERT(ve->ve_data != NULL);
    155 
    156 	avl_remove(&vc->vc_lastused_tree, ve);
    157 	avl_remove(&vc->vc_offset_tree, ve);
    158 	zio_buf_free(ve->ve_data, VCBS);
    159 	kmem_free(ve, sizeof (vdev_cache_entry_t));
    160 }
    161 
    162 /*
    163  * Allocate an entry in the cache.  At the point we don't have the data,
    164  * we're just creating a placeholder so that multiple threads don't all
    165  * go off and read the same blocks.
    166  */
    167 static vdev_cache_entry_t *
    168 vdev_cache_allocate(zio_t *zio)
    169 {
    170 	vdev_cache_t *vc = &zio->io_vd->vdev_cache;
    171 	uint64_t offset = P2ALIGN(zio->io_offset, VCBS);
    172 	vdev_cache_entry_t *ve;
    173 
    174 	ASSERT(MUTEX_HELD(&vc->vc_lock));
    175 
    176 	if (zfs_vdev_cache_size == 0)
    177 		return (NULL);
    178 
    179 	/*
    180 	 * If adding a new entry would exceed the cache size,
    181 	 * evict the oldest entry (LRU).
    182 	 */
    183 	if ((avl_numnodes(&vc->vc_lastused_tree) << zfs_vdev_cache_bshift) >
    184 	    zfs_vdev_cache_size) {
    185 		ve = avl_first(&vc->vc_lastused_tree);
    186 		if (ve->ve_fill_io != NULL)
    187 			return (NULL);
    188 		ASSERT(ve->ve_hits != 0);
    189 		vdev_cache_evict(vc, ve);
    190 	}
    191 
    192 	ve = kmem_zalloc(sizeof (vdev_cache_entry_t), KM_SLEEP);
    193 	ve->ve_offset = offset;
    194 	ve->ve_lastused = ddi_get_lbolt();
    195 	ve->ve_data = zio_buf_alloc(VCBS);
    196 
    197 	avl_add(&vc->vc_offset_tree, ve);
    198 	avl_add(&vc->vc_lastused_tree, ve);
    199 
    200 	return (ve);
    201 }
    202 
    203 static void
    204 vdev_cache_hit(vdev_cache_t *vc, vdev_cache_entry_t *ve, zio_t *zio)
    205 {
    206 	uint64_t cache_phase = P2PHASE(zio->io_offset, VCBS);
    207 
    208 	ASSERT(MUTEX_HELD(&vc->vc_lock));
    209 	ASSERT(ve->ve_fill_io == NULL);
    210 
    211 	if (ve->ve_lastused != ddi_get_lbolt()) {
    212 		avl_remove(&vc->vc_lastused_tree, ve);
    213 		ve->ve_lastused = ddi_get_lbolt();
    214 		avl_add(&vc->vc_lastused_tree, ve);
    215 	}
    216 
    217 	ve->ve_hits++;
    218 	bcopy(ve->ve_data + cache_phase, zio->io_data, zio->io_size);
    219 }
    220 
    221 /*
    222  * Fill a previously allocated cache entry with data.
    223  */
    224 static void
    225 vdev_cache_fill(zio_t *fio)
    226 {
    227 	vdev_t *vd = fio->io_vd;
    228 	vdev_cache_t *vc = &vd->vdev_cache;
    229 	vdev_cache_entry_t *ve = fio->io_private;
    230 	zio_t *pio;
    231 
    232 	ASSERT(fio->io_size == VCBS);
    233 
    234 	/*
    235 	 * Add data to the cache.
    236 	 */
    237 	mutex_enter(&vc->vc_lock);
    238 
    239 	ASSERT(ve->ve_fill_io == fio);
    240 	ASSERT(ve->ve_offset == fio->io_offset);
    241 	ASSERT(ve->ve_data == fio->io_data);
    242 
    243 	ve->ve_fill_io = NULL;
    244 
    245 	/*
    246 	 * Even if this cache line was invalidated by a missed write update,
    247 	 * any reads that were queued up before the missed update are still
    248 	 * valid, so we can satisfy them from this line before we evict it.
    249 	 */
    250 	zio_link_t *zl = NULL;
    251 	while ((pio = zio_walk_parents(fio, &zl)) != NULL)
    252 		vdev_cache_hit(vc, ve, pio);
    253 
    254 	if (fio->io_error || ve->ve_missed_update)
    255 		vdev_cache_evict(vc, ve);
    256 
    257 	mutex_exit(&vc->vc_lock);
    258 }
    259 
    260 /*
    261  * Read data from the cache.  Returns B_TRUE cache hit, B_FALSE on miss.
    262  */
    263 boolean_t
    264 vdev_cache_read(zio_t *zio)
    265 {
    266 	vdev_cache_t *vc = &zio->io_vd->vdev_cache;
    267 	vdev_cache_entry_t *ve, ve_search;
    268 	uint64_t cache_offset = P2ALIGN(zio->io_offset, VCBS);
    269 	uint64_t cache_phase = P2PHASE(zio->io_offset, VCBS);
    270 	zio_t *fio;
    271 
    272 	ASSERT(zio->io_type == ZIO_TYPE_READ);
    273 
    274 	if (zio->io_flags & ZIO_FLAG_DONT_CACHE)
    275 		return (B_FALSE);
    276 
    277 	if (zio->io_size > zfs_vdev_cache_max)
    278 		return (B_FALSE);
    279 
    280 	/*
    281 	 * If the I/O straddles two or more cache blocks, don't cache it.
    282 	 */
    283 	if (P2BOUNDARY(zio->io_offset, zio->io_size, VCBS))
    284 		return (B_FALSE);
    285 
    286 	ASSERT(cache_phase + zio->io_size <= VCBS);
    287 
    288 	mutex_enter(&vc->vc_lock);
    289 
    290 	ve_search.ve_offset = cache_offset;
    291 	ve = avl_find(&vc->vc_offset_tree, &ve_search, NULL);
    292 
    293 	if (ve != NULL) {
    294 		if (ve->ve_missed_update) {
    295 			mutex_exit(&vc->vc_lock);
    296 			return (B_FALSE);
    297 		}
    298 
    299 		if ((fio = ve->ve_fill_io) != NULL) {
    300 			zio_vdev_io_bypass(zio);
    301 			zio_add_child(zio, fio);
    302 			mutex_exit(&vc->vc_lock);
    303 			VDCSTAT_BUMP(vdc_stat_delegations);
    304 			return (B_TRUE);
    305 		}
    306 
    307 		vdev_cache_hit(vc, ve, zio);
    308 		zio_vdev_io_bypass(zio);
    309 
    310 		mutex_exit(&vc->vc_lock);
    311 		VDCSTAT_BUMP(vdc_stat_hits);
    312 		return (B_TRUE);
    313 	}
    314 
    315 	ve = vdev_cache_allocate(zio);
    316 
    317 	if (ve == NULL) {
    318 		mutex_exit(&vc->vc_lock);
    319 		return (B_FALSE);
    320 	}
    321 
    322 	fio = zio_vdev_delegated_io(zio->io_vd, cache_offset,
    323 	    ve->ve_data, VCBS, ZIO_TYPE_READ, ZIO_PRIORITY_NOW,
    324 	    ZIO_FLAG_DONT_CACHE, vdev_cache_fill, ve);
    325 
    326 	ve->ve_fill_io = fio;
    327 	zio_vdev_io_bypass(zio);
    328 	zio_add_child(zio, fio);
    329 
    330 	mutex_exit(&vc->vc_lock);
    331 	zio_nowait(fio);
    332 	VDCSTAT_BUMP(vdc_stat_misses);
    333 
    334 	return (B_TRUE);
    335 }
    336 
    337 /*
    338  * Update cache contents upon write completion.
    339  */
    340 void
    341 vdev_cache_write(zio_t *zio)
    342 {
    343 	vdev_cache_t *vc = &zio->io_vd->vdev_cache;
    344 	vdev_cache_entry_t *ve, ve_search;
    345 	uint64_t io_start = zio->io_offset;
    346 	uint64_t io_end = io_start + zio->io_size;
    347 	uint64_t min_offset = P2ALIGN(io_start, VCBS);
    348 	uint64_t max_offset = P2ROUNDUP(io_end, VCBS);
    349 	avl_index_t where;
    350 
    351 	ASSERT(zio->io_type == ZIO_TYPE_WRITE);
    352 
    353 	mutex_enter(&vc->vc_lock);
    354 
    355 	ve_search.ve_offset = min_offset;
    356 	ve = avl_find(&vc->vc_offset_tree, &ve_search, &where);
    357 
    358 	if (ve == NULL)
    359 		ve = avl_nearest(&vc->vc_offset_tree, where, AVL_AFTER);
    360 
    361 	while (ve != NULL && ve->ve_offset < max_offset) {
    362 		uint64_t start = MAX(ve->ve_offset, io_start);
    363 		uint64_t end = MIN(ve->ve_offset + VCBS, io_end);
    364 
    365 		if (ve->ve_fill_io != NULL) {
    366 			ve->ve_missed_update = 1;
    367 		} else {
    368 			bcopy((char *)zio->io_data + start - io_start,
    369 			    ve->ve_data + start - ve->ve_offset, end - start);
    370 		}
    371 		ve = AVL_NEXT(&vc->vc_offset_tree, ve);
    372 	}
    373 	mutex_exit(&vc->vc_lock);
    374 }
    375 
    376 void
    377 vdev_cache_purge(vdev_t *vd)
    378 {
    379 	vdev_cache_t *vc = &vd->vdev_cache;
    380 	vdev_cache_entry_t *ve;
    381 
    382 	mutex_enter(&vc->vc_lock);
    383 	while ((ve = avl_first(&vc->vc_offset_tree)) != NULL)
    384 		vdev_cache_evict(vc, ve);
    385 	mutex_exit(&vc->vc_lock);
    386 }
    387 
    388 void
    389 vdev_cache_init(vdev_t *vd)
    390 {
    391 	vdev_cache_t *vc = &vd->vdev_cache;
    392 
    393 	mutex_init(&vc->vc_lock, NULL, MUTEX_DEFAULT, NULL);
    394 
    395 	avl_create(&vc->vc_offset_tree, vdev_cache_offset_compare,
    396 	    sizeof (vdev_cache_entry_t),
    397 	    offsetof(struct vdev_cache_entry, ve_offset_node));
    398 
    399 	avl_create(&vc->vc_lastused_tree, vdev_cache_lastused_compare,
    400 	    sizeof (vdev_cache_entry_t),
    401 	    offsetof(struct vdev_cache_entry, ve_lastused_node));
    402 }
    403 
    404 void
    405 vdev_cache_fini(vdev_t *vd)
    406 {
    407 	vdev_cache_t *vc = &vd->vdev_cache;
    408 
    409 	vdev_cache_purge(vd);
    410 
    411 	avl_destroy(&vc->vc_offset_tree);
    412 	avl_destroy(&vc->vc_lastused_tree);
    413 
    414 	mutex_destroy(&vc->vc_lock);
    415 }
    416 
    417 void
    418 vdev_cache_stat_init(void)
    419 {
    420 	vdc_ksp = kstat_create("zfs", 0, "vdev_cache_stats", "misc",
    421 	    KSTAT_TYPE_NAMED, sizeof (vdc_stats) / sizeof (kstat_named_t),
    422 	    KSTAT_FLAG_VIRTUAL);
    423 	if (vdc_ksp != NULL) {
    424 		vdc_ksp->ks_data = &vdc_stats;
    425 		kstat_install(vdc_ksp);
    426 	}
    427 }
    428 
    429 void
    430 vdev_cache_stat_fini(void)
    431 {
    432 	if (vdc_ksp != NULL) {
    433 		kstat_delete(vdc_ksp);
    434 		vdc_ksp = NULL;
    435 	}
    436 }
    437