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Fix zhack argument processing
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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/*
d164b209 22 * Copyright 2009 Sun Microsystems, Inc. All rights reserved.
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23 * Use is subject to license terms.
24 */
25
cc92e9d0 26/*
acbad6ff 27 * Copyright (c) 2012, 2014 by Delphix. All rights reserved.
cc92e9d0
GW
28 */
29
34dc7c2f 30#include <sys/zfs_context.h>
34dc7c2f 31#include <sys/vdev_impl.h>
330847ff 32#include <sys/spa_impl.h>
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33#include <sys/zio.h>
34#include <sys/avl.h>
e8b96c60
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35#include <sys/dsl_pool.h>
36#include <sys/spa.h>
37#include <sys/spa_impl.h>
330847ff 38#include <sys/kstat.h>
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39
40/*
e8b96c60
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41 * ZFS I/O Scheduler
42 * ---------------
43 *
44 * ZFS issues I/O operations to leaf vdevs to satisfy and complete zios. The
45 * I/O scheduler determines when and in what order those operations are
46 * issued. The I/O scheduler divides operations into five I/O classes
47 * prioritized in the following order: sync read, sync write, async read,
48 * async write, and scrub/resilver. Each queue defines the minimum and
49 * maximum number of concurrent operations that may be issued to the device.
50 * In addition, the device has an aggregate maximum. Note that the sum of the
51 * per-queue minimums must not exceed the aggregate maximum. If the
52 * sum of the per-queue maximums exceeds the aggregate maximum, then the
53 * number of active i/os may reach zfs_vdev_max_active, in which case no
54 * further i/os will be issued regardless of whether all per-queue
55 * minimums have been met.
56 *
57 * For many physical devices, throughput increases with the number of
58 * concurrent operations, but latency typically suffers. Further, physical
59 * devices typically have a limit at which more concurrent operations have no
60 * effect on throughput or can actually cause it to decrease.
61 *
62 * The scheduler selects the next operation to issue by first looking for an
63 * I/O class whose minimum has not been satisfied. Once all are satisfied and
64 * the aggregate maximum has not been hit, the scheduler looks for classes
65 * whose maximum has not been satisfied. Iteration through the I/O classes is
66 * done in the order specified above. No further operations are issued if the
67 * aggregate maximum number of concurrent operations has been hit or if there
68 * are no operations queued for an I/O class that has not hit its maximum.
69 * Every time an i/o is queued or an operation completes, the I/O scheduler
70 * looks for new operations to issue.
71 *
72 * All I/O classes have a fixed maximum number of outstanding operations
73 * except for the async write class. Asynchronous writes represent the data
74 * that is committed to stable storage during the syncing stage for
75 * transaction groups (see txg.c). Transaction groups enter the syncing state
76 * periodically so the number of queued async writes will quickly burst up and
77 * then bleed down to zero. Rather than servicing them as quickly as possible,
78 * the I/O scheduler changes the maximum number of active async write i/os
79 * according to the amount of dirty data in the pool (see dsl_pool.c). Since
80 * both throughput and latency typically increase with the number of
81 * concurrent operations issued to physical devices, reducing the burstiness
82 * in the number of concurrent operations also stabilizes the response time of
83 * operations from other -- and in particular synchronous -- queues. In broad
84 * strokes, the I/O scheduler will issue more concurrent operations from the
85 * async write queue as there's more dirty data in the pool.
86 *
87 * Async Writes
88 *
89 * The number of concurrent operations issued for the async write I/O class
90 * follows a piece-wise linear function defined by a few adjustable points.
91 *
92 * | o---------| <-- zfs_vdev_async_write_max_active
93 * ^ | /^ |
94 * | | / | |
95 * active | / | |
96 * I/O | / | |
97 * count | / | |
98 * | / | |
99 * |------------o | | <-- zfs_vdev_async_write_min_active
100 * 0|____________^______|_________|
101 * 0% | | 100% of zfs_dirty_data_max
102 * | |
103 * | `-- zfs_vdev_async_write_active_max_dirty_percent
104 * `--------- zfs_vdev_async_write_active_min_dirty_percent
105 *
106 * Until the amount of dirty data exceeds a minimum percentage of the dirty
107 * data allowed in the pool, the I/O scheduler will limit the number of
108 * concurrent operations to the minimum. As that threshold is crossed, the
109 * number of concurrent operations issued increases linearly to the maximum at
110 * the specified maximum percentage of the dirty data allowed in the pool.
111 *
112 * Ideally, the amount of dirty data on a busy pool will stay in the sloped
113 * part of the function between zfs_vdev_async_write_active_min_dirty_percent
114 * and zfs_vdev_async_write_active_max_dirty_percent. If it exceeds the
115 * maximum percentage, this indicates that the rate of incoming data is
116 * greater than the rate that the backend storage can handle. In this case, we
117 * must further throttle incoming writes (see dmu_tx_delay() for details).
34dc7c2f 118 */
d3cc8b15 119
34dc7c2f 120/*
e8b96c60
MA
121 * The maximum number of i/os active to each device. Ideally, this will be >=
122 * the sum of each queue's max_active. It must be at least the sum of each
123 * queue's min_active.
34dc7c2f 124 */
e8b96c60 125uint32_t zfs_vdev_max_active = 1000;
34dc7c2f 126
cb682a17 127/*
e8b96c60
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128 * Per-queue limits on the number of i/os active to each device. If the
129 * number of active i/os is < zfs_vdev_max_active, then the min_active comes
130 * into play. We will send min_active from each queue, and then select from
131 * queues in the order defined by zio_priority_t.
132 *
133 * In general, smaller max_active's will lead to lower latency of synchronous
134 * operations. Larger max_active's may lead to higher overall throughput,
135 * depending on underlying storage.
136 *
137 * The ratio of the queues' max_actives determines the balance of performance
138 * between reads, writes, and scrubs. E.g., increasing
139 * zfs_vdev_scrub_max_active will cause the scrub or resilver to complete
140 * more quickly, but reads and writes to have higher latency and lower
141 * throughput.
cb682a17 142 */
e8b96c60
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143uint32_t zfs_vdev_sync_read_min_active = 10;
144uint32_t zfs_vdev_sync_read_max_active = 10;
145uint32_t zfs_vdev_sync_write_min_active = 10;
146uint32_t zfs_vdev_sync_write_max_active = 10;
147uint32_t zfs_vdev_async_read_min_active = 1;
148uint32_t zfs_vdev_async_read_max_active = 3;
149uint32_t zfs_vdev_async_write_min_active = 1;
150uint32_t zfs_vdev_async_write_max_active = 10;
151uint32_t zfs_vdev_scrub_min_active = 1;
152uint32_t zfs_vdev_scrub_max_active = 2;
34dc7c2f 153
e8b96c60
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154/*
155 * When the pool has less than zfs_vdev_async_write_active_min_dirty_percent
156 * dirty data, use zfs_vdev_async_write_min_active. When it has more than
157 * zfs_vdev_async_write_active_max_dirty_percent, use
158 * zfs_vdev_async_write_max_active. The value is linearly interpolated
159 * between min and max.
160 */
161int zfs_vdev_async_write_active_min_dirty_percent = 30;
162int zfs_vdev_async_write_active_max_dirty_percent = 60;
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163
164/*
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165 * To reduce IOPs, we aggregate small adjacent I/Os into one large I/O.
166 * For read I/Os, we also aggregate across small adjacency gaps; for writes
167 * we include spans of optional I/Os to aid aggregation at the disk even when
168 * they aren't able to help us aggregate at this level.
34dc7c2f 169 */
f1512ee6 170int zfs_vdev_aggregation_limit = SPA_OLD_MAXBLOCKSIZE;
9babb374 171int zfs_vdev_read_gap_limit = 32 << 10;
45d1cae3 172int zfs_vdev_write_gap_limit = 4 << 10;
34dc7c2f 173
34dc7c2f 174int
e8b96c60 175vdev_queue_offset_compare(const void *x1, const void *x2)
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176{
177 const zio_t *z1 = x1;
178 const zio_t *z2 = x2;
179
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180 if (z1->io_offset < z2->io_offset)
181 return (-1);
182 if (z1->io_offset > z2->io_offset)
183 return (1);
184
185 if (z1 < z2)
186 return (-1);
187 if (z1 > z2)
188 return (1);
189
190 return (0);
191}
192
ec8501ee
JG
193static inline avl_tree_t *
194vdev_queue_class_tree(vdev_queue_t *vq, zio_priority_t p)
195{
196 return (&vq->vq_class[p].vqc_queued_tree);
197}
198
199static inline avl_tree_t *
200vdev_queue_type_tree(vdev_queue_t *vq, zio_type_t t)
201{
202 ASSERT(t == ZIO_TYPE_READ || t == ZIO_TYPE_WRITE);
203 if (t == ZIO_TYPE_READ)
204 return (&vq->vq_read_offset_tree);
205 else
206 return (&vq->vq_write_offset_tree);
207}
208
34dc7c2f 209int
e8b96c60 210vdev_queue_timestamp_compare(const void *x1, const void *x2)
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211{
212 const zio_t *z1 = x1;
213 const zio_t *z2 = x2;
214
e8b96c60 215 if (z1->io_timestamp < z2->io_timestamp)
34dc7c2f 216 return (-1);
e8b96c60 217 if (z1->io_timestamp > z2->io_timestamp)
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218 return (1);
219
220 if (z1 < z2)
221 return (-1);
222 if (z1 > z2)
223 return (1);
224
225 return (0);
226}
227
e8b96c60
MA
228static int
229vdev_queue_class_min_active(zio_priority_t p)
230{
231 switch (p) {
232 case ZIO_PRIORITY_SYNC_READ:
233 return (zfs_vdev_sync_read_min_active);
234 case ZIO_PRIORITY_SYNC_WRITE:
235 return (zfs_vdev_sync_write_min_active);
236 case ZIO_PRIORITY_ASYNC_READ:
237 return (zfs_vdev_async_read_min_active);
238 case ZIO_PRIORITY_ASYNC_WRITE:
239 return (zfs_vdev_async_write_min_active);
240 case ZIO_PRIORITY_SCRUB:
241 return (zfs_vdev_scrub_min_active);
242 default:
243 panic("invalid priority %u", p);
244 return (0);
245 }
246}
247
248static int
acbad6ff 249vdev_queue_max_async_writes(spa_t *spa)
e8b96c60
MA
250{
251 int writes;
b7faa7aa
G
252 uint64_t dirty = 0;
253 dsl_pool_t *dp = spa_get_dsl(spa);
e8b96c60
MA
254 uint64_t min_bytes = zfs_dirty_data_max *
255 zfs_vdev_async_write_active_min_dirty_percent / 100;
256 uint64_t max_bytes = zfs_dirty_data_max *
257 zfs_vdev_async_write_active_max_dirty_percent / 100;
258
b7faa7aa
G
259 /*
260 * Async writes may occur before the assignment of the spa's
261 * dsl_pool_t if a self-healing zio is issued prior to the
262 * completion of dmu_objset_open_impl().
263 */
264 if (dp == NULL)
265 return (zfs_vdev_async_write_max_active);
266
acbad6ff
AR
267 /*
268 * Sync tasks correspond to interactive user actions. To reduce the
269 * execution time of those actions we push data out as fast as possible.
270 */
b7faa7aa 271 if (spa_has_pending_synctask(spa))
acbad6ff 272 return (zfs_vdev_async_write_max_active);
acbad6ff 273
b7faa7aa 274 dirty = dp->dp_dirty_total;
e8b96c60
MA
275 if (dirty < min_bytes)
276 return (zfs_vdev_async_write_min_active);
277 if (dirty > max_bytes)
278 return (zfs_vdev_async_write_max_active);
279
280 /*
281 * linear interpolation:
282 * slope = (max_writes - min_writes) / (max_bytes - min_bytes)
283 * move right by min_bytes
284 * move up by min_writes
285 */
286 writes = (dirty - min_bytes) *
287 (zfs_vdev_async_write_max_active -
288 zfs_vdev_async_write_min_active) /
289 (max_bytes - min_bytes) +
290 zfs_vdev_async_write_min_active;
291 ASSERT3U(writes, >=, zfs_vdev_async_write_min_active);
292 ASSERT3U(writes, <=, zfs_vdev_async_write_max_active);
293 return (writes);
294}
295
296static int
297vdev_queue_class_max_active(spa_t *spa, zio_priority_t p)
298{
299 switch (p) {
300 case ZIO_PRIORITY_SYNC_READ:
301 return (zfs_vdev_sync_read_max_active);
302 case ZIO_PRIORITY_SYNC_WRITE:
303 return (zfs_vdev_sync_write_max_active);
304 case ZIO_PRIORITY_ASYNC_READ:
305 return (zfs_vdev_async_read_max_active);
306 case ZIO_PRIORITY_ASYNC_WRITE:
acbad6ff 307 return (vdev_queue_max_async_writes(spa));
e8b96c60
MA
308 case ZIO_PRIORITY_SCRUB:
309 return (zfs_vdev_scrub_max_active);
310 default:
311 panic("invalid priority %u", p);
312 return (0);
313 }
314}
315
316/*
317 * Return the i/o class to issue from, or ZIO_PRIORITY_MAX_QUEUEABLE if
318 * there is no eligible class.
319 */
320static zio_priority_t
321vdev_queue_class_to_issue(vdev_queue_t *vq)
322{
323 spa_t *spa = vq->vq_vdev->vdev_spa;
324 zio_priority_t p;
325
326 if (avl_numnodes(&vq->vq_active_tree) >= zfs_vdev_max_active)
327 return (ZIO_PRIORITY_NUM_QUEUEABLE);
328
329 /* find a queue that has not reached its minimum # outstanding i/os */
330 for (p = 0; p < ZIO_PRIORITY_NUM_QUEUEABLE; p++) {
ec8501ee 331 if (avl_numnodes(vdev_queue_class_tree(vq, p)) > 0 &&
e8b96c60
MA
332 vq->vq_class[p].vqc_active <
333 vdev_queue_class_min_active(p))
334 return (p);
335 }
336
337 /*
338 * If we haven't found a queue, look for one that hasn't reached its
339 * maximum # outstanding i/os.
340 */
341 for (p = 0; p < ZIO_PRIORITY_NUM_QUEUEABLE; p++) {
ec8501ee 342 if (avl_numnodes(vdev_queue_class_tree(vq, p)) > 0 &&
e8b96c60
MA
343 vq->vq_class[p].vqc_active <
344 vdev_queue_class_max_active(spa, p))
345 return (p);
346 }
347
348 /* No eligible queued i/os */
349 return (ZIO_PRIORITY_NUM_QUEUEABLE);
350}
351
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352void
353vdev_queue_init(vdev_t *vd)
354{
355 vdev_queue_t *vq = &vd->vdev_queue;
e8b96c60 356 zio_priority_t p;
34dc7c2f
BB
357
358 mutex_init(&vq->vq_lock, NULL, MUTEX_DEFAULT, NULL);
e8b96c60 359 vq->vq_vdev = vd;
36b454ab 360 taskq_init_ent(&vd->vdev_queue.vq_io_search.io_tqent);
34dc7c2f 361
e8b96c60
MA
362 avl_create(&vq->vq_active_tree, vdev_queue_offset_compare,
363 sizeof (zio_t), offsetof(struct zio, io_queue_node));
ec8501ee
JG
364 avl_create(vdev_queue_type_tree(vq, ZIO_TYPE_READ),
365 vdev_queue_offset_compare, sizeof (zio_t),
366 offsetof(struct zio, io_offset_node));
367 avl_create(vdev_queue_type_tree(vq, ZIO_TYPE_WRITE),
368 vdev_queue_offset_compare, sizeof (zio_t),
369 offsetof(struct zio, io_offset_node));
34dc7c2f 370
e8b96c60 371 for (p = 0; p < ZIO_PRIORITY_NUM_QUEUEABLE; p++) {
ec8501ee
JG
372 int (*compfn) (const void *, const void *);
373
e8b96c60 374 /*
ec8501ee
JG
375 * The synchronous i/o queues are dispatched in FIFO rather
376 * than LBA order. This provides more consistent latency for
377 * these i/os.
e8b96c60 378 */
ec8501ee
JG
379 if (p == ZIO_PRIORITY_SYNC_READ || p == ZIO_PRIORITY_SYNC_WRITE)
380 compfn = vdev_queue_timestamp_compare;
381 else
382 compfn = vdev_queue_offset_compare;
383 avl_create(vdev_queue_class_tree(vq, p), compfn,
384 sizeof (zio_t), offsetof(struct zio, io_queue_node));
e8b96c60 385 }
9f500936 386
387 vq->vq_lastoffset = 0;
34dc7c2f
BB
388}
389
390void
391vdev_queue_fini(vdev_t *vd)
392{
393 vdev_queue_t *vq = &vd->vdev_queue;
e8b96c60 394 zio_priority_t p;
34dc7c2f 395
e8b96c60 396 for (p = 0; p < ZIO_PRIORITY_NUM_QUEUEABLE; p++)
ec8501ee 397 avl_destroy(vdev_queue_class_tree(vq, p));
e8b96c60 398 avl_destroy(&vq->vq_active_tree);
ec8501ee
JG
399 avl_destroy(vdev_queue_type_tree(vq, ZIO_TYPE_READ));
400 avl_destroy(vdev_queue_type_tree(vq, ZIO_TYPE_WRITE));
34dc7c2f
BB
401
402 mutex_destroy(&vq->vq_lock);
403}
404
405static void
406vdev_queue_io_add(vdev_queue_t *vq, zio_t *zio)
407{
330847ff
MA
408 spa_t *spa = zio->io_spa;
409 spa_stats_history_t *ssh = &spa->spa_stats.io_history;
410
e8b96c60 411 ASSERT3U(zio->io_priority, <, ZIO_PRIORITY_NUM_QUEUEABLE);
ec8501ee
JG
412 avl_add(vdev_queue_class_tree(vq, zio->io_priority), zio);
413 avl_add(vdev_queue_type_tree(vq, zio->io_type), zio);
330847ff
MA
414
415 if (ssh->kstat != NULL) {
416 mutex_enter(&ssh->lock);
417 kstat_waitq_enter(ssh->kstat->ks_data);
418 mutex_exit(&ssh->lock);
419 }
34dc7c2f
BB
420}
421
422static void
423vdev_queue_io_remove(vdev_queue_t *vq, zio_t *zio)
424{
330847ff
MA
425 spa_t *spa = zio->io_spa;
426 spa_stats_history_t *ssh = &spa->spa_stats.io_history;
427
e8b96c60 428 ASSERT3U(zio->io_priority, <, ZIO_PRIORITY_NUM_QUEUEABLE);
ec8501ee
JG
429 avl_remove(vdev_queue_class_tree(vq, zio->io_priority), zio);
430 avl_remove(vdev_queue_type_tree(vq, zio->io_type), zio);
330847ff
MA
431
432 if (ssh->kstat != NULL) {
433 mutex_enter(&ssh->lock);
434 kstat_waitq_exit(ssh->kstat->ks_data);
435 mutex_exit(&ssh->lock);
436 }
437}
438
439static void
440vdev_queue_pending_add(vdev_queue_t *vq, zio_t *zio)
441{
442 spa_t *spa = zio->io_spa;
443 spa_stats_history_t *ssh = &spa->spa_stats.io_history;
444
e8b96c60
MA
445 ASSERT(MUTEX_HELD(&vq->vq_lock));
446 ASSERT3U(zio->io_priority, <, ZIO_PRIORITY_NUM_QUEUEABLE);
447 vq->vq_class[zio->io_priority].vqc_active++;
448 avl_add(&vq->vq_active_tree, zio);
330847ff
MA
449
450 if (ssh->kstat != NULL) {
451 mutex_enter(&ssh->lock);
452 kstat_runq_enter(ssh->kstat->ks_data);
453 mutex_exit(&ssh->lock);
454 }
455}
456
457static void
458vdev_queue_pending_remove(vdev_queue_t *vq, zio_t *zio)
459{
460 spa_t *spa = zio->io_spa;
461 spa_stats_history_t *ssh = &spa->spa_stats.io_history;
462
e8b96c60
MA
463 ASSERT(MUTEX_HELD(&vq->vq_lock));
464 ASSERT3U(zio->io_priority, <, ZIO_PRIORITY_NUM_QUEUEABLE);
465 vq->vq_class[zio->io_priority].vqc_active--;
466 avl_remove(&vq->vq_active_tree, zio);
330847ff
MA
467
468 if (ssh->kstat != NULL) {
469 kstat_io_t *ksio = ssh->kstat->ks_data;
470
471 mutex_enter(&ssh->lock);
472 kstat_runq_exit(ksio);
473 if (zio->io_type == ZIO_TYPE_READ) {
474 ksio->reads++;
475 ksio->nread += zio->io_size;
476 } else if (zio->io_type == ZIO_TYPE_WRITE) {
477 ksio->writes++;
478 ksio->nwritten += zio->io_size;
479 }
480 mutex_exit(&ssh->lock);
481 }
34dc7c2f
BB
482}
483
484static void
485vdev_queue_agg_io_done(zio_t *aio)
486{
e8b96c60
MA
487 if (aio->io_type == ZIO_TYPE_READ) {
488 zio_t *pio;
489 while ((pio = zio_walk_parents(aio)) != NULL) {
d164b209
BB
490 bcopy((char *)aio->io_data + (pio->io_offset -
491 aio->io_offset), pio->io_data, pio->io_size);
e8b96c60
MA
492 }
493 }
34dc7c2f 494
285b29d9 495 zio_buf_free(aio->io_data, aio->io_size);
34dc7c2f
BB
496}
497
9babb374
BB
498/*
499 * Compute the range spanned by two i/os, which is the endpoint of the last
500 * (lio->io_offset + lio->io_size) minus start of the first (fio->io_offset).
501 * Conveniently, the gap between fio and lio is given by -IO_SPAN(lio, fio);
502 * thus fio and lio are adjacent if and only if IO_SPAN(lio, fio) == 0.
503 */
504#define IO_SPAN(fio, lio) ((lio)->io_offset + (lio)->io_size - (fio)->io_offset)
505#define IO_GAP(fio, lio) (-IO_SPAN(lio, fio))
34dc7c2f
BB
506
507static zio_t *
e8b96c60 508vdev_queue_aggregate(vdev_queue_t *vq, zio_t *zio)
34dc7c2f 509{
e8b96c60
MA
510 zio_t *first, *last, *aio, *dio, *mandatory, *nio;
511 uint64_t maxgap = 0;
512 uint64_t size;
a58df6f5 513 uint64_t limit;
e8b96c60 514 boolean_t stretch = B_FALSE;
ec8501ee 515 avl_tree_t *t = vdev_queue_type_tree(vq, zio->io_type);
e8b96c60 516 enum zio_flag flags = zio->io_flags & ZIO_FLAG_AGG_INHERIT;
6fe53787 517 void *buf;
e8b96c60 518
a58df6f5
BB
519 limit = MAX(MIN(zfs_vdev_aggregation_limit,
520 spa_maxblocksize(vq->vq_vdev->vdev_spa)), 0);
34dc7c2f 521
a58df6f5
BB
522 if (zio->io_flags & ZIO_FLAG_DONT_AGGREGATE || limit == 0)
523 return (NULL);
34dc7c2f 524
e8b96c60 525 first = last = zio;
34dc7c2f 526
e8b96c60
MA
527 if (zio->io_type == ZIO_TYPE_READ)
528 maxgap = zfs_vdev_read_gap_limit;
fb5f0bc8 529
e8b96c60
MA
530 /*
531 * We can aggregate I/Os that are sufficiently adjacent and of
532 * the same flavor, as expressed by the AGG_INHERIT flags.
533 * The latter requirement is necessary so that certain
534 * attributes of the I/O, such as whether it's a normal I/O
535 * or a scrub/resilver, can be preserved in the aggregate.
536 * We can include optional I/Os, but don't allow them
537 * to begin a range as they add no benefit in that situation.
538 */
45d1cae3 539
e8b96c60
MA
540 /*
541 * We keep track of the last non-optional I/O.
542 */
543 mandatory = (first->io_flags & ZIO_FLAG_OPTIONAL) ? NULL : first;
45d1cae3 544
e8b96c60
MA
545 /*
546 * Walk backwards through sufficiently contiguous I/Os
547 * recording the last non-option I/O.
548 */
549 while ((dio = AVL_PREV(t, first)) != NULL &&
550 (dio->io_flags & ZIO_FLAG_AGG_INHERIT) == flags &&
a58df6f5 551 IO_SPAN(dio, last) <= limit &&
e8b96c60
MA
552 IO_GAP(dio, first) <= maxgap) {
553 first = dio;
554 if (mandatory == NULL && !(first->io_flags & ZIO_FLAG_OPTIONAL))
555 mandatory = first;
556 }
45d1cae3 557
e8b96c60
MA
558 /*
559 * Skip any initial optional I/Os.
560 */
561 while ((first->io_flags & ZIO_FLAG_OPTIONAL) && first != last) {
562 first = AVL_NEXT(t, first);
563 ASSERT(first != NULL);
564 }
9babb374 565
45d1cae3 566
e8b96c60
MA
567 /*
568 * Walk forward through sufficiently contiguous I/Os.
569 */
570 while ((dio = AVL_NEXT(t, last)) != NULL &&
571 (dio->io_flags & ZIO_FLAG_AGG_INHERIT) == flags &&
a58df6f5 572 IO_SPAN(first, dio) <= limit &&
e8b96c60
MA
573 IO_GAP(last, dio) <= maxgap) {
574 last = dio;
575 if (!(last->io_flags & ZIO_FLAG_OPTIONAL))
576 mandatory = last;
577 }
578
579 /*
580 * Now that we've established the range of the I/O aggregation
581 * we must decide what to do with trailing optional I/Os.
582 * For reads, there's nothing to do. While we are unable to
583 * aggregate further, it's possible that a trailing optional
584 * I/O would allow the underlying device to aggregate with
585 * subsequent I/Os. We must therefore determine if the next
586 * non-optional I/O is close enough to make aggregation
587 * worthwhile.
588 */
589 if (zio->io_type == ZIO_TYPE_WRITE && mandatory != NULL) {
590 zio_t *nio = last;
591 while ((dio = AVL_NEXT(t, nio)) != NULL &&
592 IO_GAP(nio, dio) == 0 &&
593 IO_GAP(mandatory, dio) <= zfs_vdev_write_gap_limit) {
594 nio = dio;
595 if (!(nio->io_flags & ZIO_FLAG_OPTIONAL)) {
596 stretch = B_TRUE;
597 break;
45d1cae3
BB
598 }
599 }
e8b96c60 600 }
45d1cae3 601
e8b96c60
MA
602 if (stretch) {
603 /* This may be a no-op. */
604 dio = AVL_NEXT(t, last);
605 dio->io_flags &= ~ZIO_FLAG_OPTIONAL;
606 } else {
607 while (last != mandatory && last != first) {
608 ASSERT(last->io_flags & ZIO_FLAG_OPTIONAL);
609 last = AVL_PREV(t, last);
610 ASSERT(last != NULL);
45d1cae3 611 }
34dc7c2f
BB
612 }
613
e8b96c60
MA
614 if (first == last)
615 return (NULL);
616
e8b96c60 617 size = IO_SPAN(first, last);
a58df6f5 618 ASSERT3U(size, <=, limit);
e8b96c60 619
6fe53787
BB
620 buf = zio_buf_alloc_flags(size, KM_NOSLEEP);
621 if (buf == NULL)
622 return (NULL);
623
e8b96c60 624 aio = zio_vdev_delegated_io(first->io_vd, first->io_offset,
6fe53787 625 buf, size, first->io_type, zio->io_priority,
e8b96c60
MA
626 flags | ZIO_FLAG_DONT_CACHE | ZIO_FLAG_DONT_QUEUE,
627 vdev_queue_agg_io_done, NULL);
628 aio->io_timestamp = first->io_timestamp;
629
630 nio = first;
631 do {
632 dio = nio;
633 nio = AVL_NEXT(t, dio);
634 ASSERT3U(dio->io_type, ==, aio->io_type);
635
636 if (dio->io_flags & ZIO_FLAG_NODATA) {
637 ASSERT3U(dio->io_type, ==, ZIO_TYPE_WRITE);
638 bzero((char *)aio->io_data + (dio->io_offset -
639 aio->io_offset), dio->io_size);
640 } else if (dio->io_type == ZIO_TYPE_WRITE) {
641 bcopy(dio->io_data, (char *)aio->io_data +
642 (dio->io_offset - aio->io_offset),
643 dio->io_size);
644 }
d164b209 645
e8b96c60
MA
646 zio_add_child(dio, aio);
647 vdev_queue_io_remove(vq, dio);
648 zio_vdev_io_bypass(dio);
649 zio_execute(dio);
650 } while (dio != last);
34dc7c2f 651
e8b96c60
MA
652 return (aio);
653}
654
655static zio_t *
656vdev_queue_io_to_issue(vdev_queue_t *vq)
657{
658 zio_t *zio, *aio;
659 zio_priority_t p;
660 avl_index_t idx;
ec8501ee 661 avl_tree_t *tree;
e8b96c60
MA
662
663again:
664 ASSERT(MUTEX_HELD(&vq->vq_lock));
665
666 p = vdev_queue_class_to_issue(vq);
34dc7c2f 667
e8b96c60
MA
668 if (p == ZIO_PRIORITY_NUM_QUEUEABLE) {
669 /* No eligible queued i/os */
670 return (NULL);
34dc7c2f
BB
671 }
672
e8b96c60
MA
673 /*
674 * For LBA-ordered queues (async / scrub), issue the i/o which follows
675 * the most recently issued i/o in LBA (offset) order.
676 *
677 * For FIFO queues (sync), issue the i/o with the lowest timestamp.
678 */
ec8501ee 679 tree = vdev_queue_class_tree(vq, p);
50b25b21
BB
680 vq->vq_io_search.io_timestamp = 0;
681 vq->vq_io_search.io_offset = vq->vq_last_offset + 1;
ec8501ee 682 VERIFY3P(avl_find(tree, &vq->vq_io_search,
50b25b21 683 &idx), ==, NULL);
ec8501ee 684 zio = avl_nearest(tree, idx, AVL_AFTER);
e8b96c60 685 if (zio == NULL)
ec8501ee 686 zio = avl_first(tree);
e8b96c60
MA
687 ASSERT3U(zio->io_priority, ==, p);
688
689 aio = vdev_queue_aggregate(vq, zio);
690 if (aio != NULL)
691 zio = aio;
692 else
693 vdev_queue_io_remove(vq, zio);
34dc7c2f 694
45d1cae3
BB
695 /*
696 * If the I/O is or was optional and therefore has no data, we need to
697 * simply discard it. We need to drop the vdev queue's lock to avoid a
698 * deadlock that we could encounter since this I/O will complete
699 * immediately.
700 */
e8b96c60 701 if (zio->io_flags & ZIO_FLAG_NODATA) {
45d1cae3 702 mutex_exit(&vq->vq_lock);
e8b96c60
MA
703 zio_vdev_io_bypass(zio);
704 zio_execute(zio);
45d1cae3
BB
705 mutex_enter(&vq->vq_lock);
706 goto again;
707 }
708
e8b96c60
MA
709 vdev_queue_pending_add(vq, zio);
710 vq->vq_last_offset = zio->io_offset;
34dc7c2f 711
e8b96c60 712 return (zio);
34dc7c2f
BB
713}
714
715zio_t *
716vdev_queue_io(zio_t *zio)
717{
718 vdev_queue_t *vq = &zio->io_vd->vdev_queue;
719 zio_t *nio;
720
34dc7c2f
BB
721 if (zio->io_flags & ZIO_FLAG_DONT_QUEUE)
722 return (zio);
723
e8b96c60
MA
724 /*
725 * Children i/os inherent their parent's priority, which might
726 * not match the child's i/o type. Fix it up here.
727 */
728 if (zio->io_type == ZIO_TYPE_READ) {
729 if (zio->io_priority != ZIO_PRIORITY_SYNC_READ &&
730 zio->io_priority != ZIO_PRIORITY_ASYNC_READ &&
731 zio->io_priority != ZIO_PRIORITY_SCRUB)
732 zio->io_priority = ZIO_PRIORITY_ASYNC_READ;
733 } else {
734 ASSERT(zio->io_type == ZIO_TYPE_WRITE);
735 if (zio->io_priority != ZIO_PRIORITY_SYNC_WRITE &&
736 zio->io_priority != ZIO_PRIORITY_ASYNC_WRITE)
737 zio->io_priority = ZIO_PRIORITY_ASYNC_WRITE;
738 }
34dc7c2f 739
e8b96c60 740 zio->io_flags |= ZIO_FLAG_DONT_CACHE | ZIO_FLAG_DONT_QUEUE;
34dc7c2f
BB
741
742 mutex_enter(&vq->vq_lock);
cb682a17 743 zio->io_timestamp = gethrtime();
34dc7c2f 744 vdev_queue_io_add(vq, zio);
e8b96c60 745 nio = vdev_queue_io_to_issue(vq);
34dc7c2f
BB
746 mutex_exit(&vq->vq_lock);
747
748 if (nio == NULL)
749 return (NULL);
750
751 if (nio->io_done == vdev_queue_agg_io_done) {
752 zio_nowait(nio);
753 return (NULL);
754 }
755
756 return (nio);
757}
758
759void
760vdev_queue_io_done(zio_t *zio)
761{
762 vdev_queue_t *vq = &zio->io_vd->vdev_queue;
e8b96c60 763 zio_t *nio;
34dc7c2f
BB
764
765 mutex_enter(&vq->vq_lock);
766
330847ff 767 vdev_queue_pending_remove(vq, zio);
34dc7c2f 768
cb682a17
MA
769 zio->io_delta = gethrtime() - zio->io_timestamp;
770 vq->vq_io_complete_ts = gethrtime();
cc92e9d0
GW
771 vq->vq_io_delta_ts = vq->vq_io_complete_ts - zio->io_timestamp;
772
e8b96c60 773 while ((nio = vdev_queue_io_to_issue(vq)) != NULL) {
34dc7c2f
BB
774 mutex_exit(&vq->vq_lock);
775 if (nio->io_done == vdev_queue_agg_io_done) {
776 zio_nowait(nio);
777 } else {
778 zio_vdev_io_reissue(nio);
779 zio_execute(nio);
780 }
781 mutex_enter(&vq->vq_lock);
782 }
783
784 mutex_exit(&vq->vq_lock);
785}
c28b2279 786
9f500936 787/*
788 * As these three methods are only used for load calculations we're not
789 * concerned if we get an incorrect value on 32bit platforms due to lack of
790 * vq_lock mutex use here, instead we prefer to keep it lock free for
791 * performance.
792 */
793int
794vdev_queue_length(vdev_t *vd)
795{
796 return (avl_numnodes(&vd->vdev_queue.vq_active_tree));
797}
798
799uint64_t
800vdev_queue_lastoffset(vdev_t *vd)
801{
802 return (vd->vdev_queue.vq_lastoffset);
803}
804
805void
806vdev_queue_register_lastoffset(vdev_t *vd, zio_t *zio)
807{
808 vd->vdev_queue.vq_lastoffset = zio->io_offset + zio->io_size;
809}
810
c28b2279 811#if defined(_KERNEL) && defined(HAVE_SPL)
c28b2279 812module_param(zfs_vdev_aggregation_limit, int, 0644);
c409e464
BB
813MODULE_PARM_DESC(zfs_vdev_aggregation_limit, "Max vdev I/O aggregation size");
814
c409e464
BB
815module_param(zfs_vdev_read_gap_limit, int, 0644);
816MODULE_PARM_DESC(zfs_vdev_read_gap_limit, "Aggregate read I/O over gap");
817
818module_param(zfs_vdev_write_gap_limit, int, 0644);
819MODULE_PARM_DESC(zfs_vdev_write_gap_limit, "Aggregate write I/O over gap");
e8b96c60
MA
820
821module_param(zfs_vdev_max_active, int, 0644);
822MODULE_PARM_DESC(zfs_vdev_max_active, "Maximum number of active I/Os per vdev");
823
824module_param(zfs_vdev_async_write_active_max_dirty_percent, int, 0644);
825MODULE_PARM_DESC(zfs_vdev_async_write_active_max_dirty_percent,
d1d7e268 826 "Async write concurrency max threshold");
e8b96c60
MA
827
828module_param(zfs_vdev_async_write_active_min_dirty_percent, int, 0644);
829MODULE_PARM_DESC(zfs_vdev_async_write_active_min_dirty_percent,
d1d7e268 830 "Async write concurrency min threshold");
e8b96c60
MA
831
832module_param(zfs_vdev_async_read_max_active, int, 0644);
833MODULE_PARM_DESC(zfs_vdev_async_read_max_active,
d1d7e268 834 "Max active async read I/Os per vdev");
e8b96c60
MA
835
836module_param(zfs_vdev_async_read_min_active, int, 0644);
837MODULE_PARM_DESC(zfs_vdev_async_read_min_active,
d1d7e268 838 "Min active async read I/Os per vdev");
e8b96c60
MA
839
840module_param(zfs_vdev_async_write_max_active, int, 0644);
841MODULE_PARM_DESC(zfs_vdev_async_write_max_active,
d1d7e268 842 "Max active async write I/Os per vdev");
e8b96c60
MA
843
844module_param(zfs_vdev_async_write_min_active, int, 0644);
845MODULE_PARM_DESC(zfs_vdev_async_write_min_active,
d1d7e268 846 "Min active async write I/Os per vdev");
e8b96c60
MA
847
848module_param(zfs_vdev_scrub_max_active, int, 0644);
849MODULE_PARM_DESC(zfs_vdev_scrub_max_active, "Max active scrub I/Os per vdev");
850
851module_param(zfs_vdev_scrub_min_active, int, 0644);
852MODULE_PARM_DESC(zfs_vdev_scrub_min_active, "Min active scrub I/Os per vdev");
853
854module_param(zfs_vdev_sync_read_max_active, int, 0644);
855MODULE_PARM_DESC(zfs_vdev_sync_read_max_active,
d1d7e268 856 "Max active sync read I/Os per vdev");
e8b96c60
MA
857
858module_param(zfs_vdev_sync_read_min_active, int, 0644);
859MODULE_PARM_DESC(zfs_vdev_sync_read_min_active,
d1d7e268 860 "Min active sync read I/Os per vdev");
e8b96c60
MA
861
862module_param(zfs_vdev_sync_write_max_active, int, 0644);
863MODULE_PARM_DESC(zfs_vdev_sync_write_max_active,
d1d7e268 864 "Max active sync write I/Os per vdev");
e8b96c60
MA
865
866module_param(zfs_vdev_sync_write_min_active, int, 0644);
867MODULE_PARM_DESC(zfs_vdev_sync_write_min_active,
3757bff3 868 "Min active sync write I/Os per vdev");
c28b2279 869#endif