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34dc7c2f
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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/*
428870ff 22 * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
29809a6c 23 * Portions Copyright 2011 Martin Matuska
acbad6ff 24 * Copyright (c) 2012, 2014 by Delphix. All rights reserved.
34dc7c2f
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25 */
26
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27#include <sys/zfs_context.h>
28#include <sys/txg_impl.h>
29#include <sys/dmu_impl.h>
0b1401ee 30#include <sys/spa_impl.h>
428870ff 31#include <sys/dmu_tx.h>
34dc7c2f 32#include <sys/dsl_pool.h>
428870ff 33#include <sys/dsl_scan.h>
34dc7c2f 34#include <sys/callb.h>
49ee64e5 35#include <sys/trace_txg.h>
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36
37/*
89103a26
AL
38 * ZFS Transaction Groups
39 * ----------------------
40 *
41 * ZFS transaction groups are, as the name implies, groups of transactions
42 * that act on persistent state. ZFS asserts consistency at the granularity of
43 * these transaction groups. Each successive transaction group (txg) is
44 * assigned a 64-bit consecutive identifier. There are three active
45 * transaction group states: open, quiescing, or syncing. At any given time,
46 * there may be an active txg associated with each state; each active txg may
47 * either be processing, or blocked waiting to enter the next state. There may
48 * be up to three active txgs, and there is always a txg in the open state
49 * (though it may be blocked waiting to enter the quiescing state). In broad
e8b96c60 50 * strokes, transactions -- operations that change in-memory structures -- are
89103a26
AL
51 * accepted into the txg in the open state, and are completed while the txg is
52 * in the open or quiescing states. The accumulated changes are written to
53 * disk in the syncing state.
54 *
55 * Open
56 *
57 * When a new txg becomes active, it first enters the open state. New
e8b96c60 58 * transactions -- updates to in-memory structures -- are assigned to the
89103a26
AL
59 * currently open txg. There is always a txg in the open state so that ZFS can
60 * accept new changes (though the txg may refuse new changes if it has hit
61 * some limit). ZFS advances the open txg to the next state for a variety of
62 * reasons such as it hitting a time or size threshold, or the execution of an
63 * administrative action that must be completed in the syncing state.
64 *
65 * Quiescing
66 *
67 * After a txg exits the open state, it enters the quiescing state. The
68 * quiescing state is intended to provide a buffer between accepting new
69 * transactions in the open state and writing them out to stable storage in
70 * the syncing state. While quiescing, transactions can continue their
71 * operation without delaying either of the other states. Typically, a txg is
72 * in the quiescing state very briefly since the operations are bounded by
73 * software latencies rather than, say, slower I/O latencies. After all
74 * transactions complete, the txg is ready to enter the next state.
75 *
76 * Syncing
77 *
78 * In the syncing state, the in-memory state built up during the open and (to
79 * a lesser degree) the quiescing states is written to stable storage. The
80 * process of writing out modified data can, in turn modify more data. For
81 * example when we write new blocks, we need to allocate space for them; those
82 * allocations modify metadata (space maps)... which themselves must be
83 * written to stable storage. During the sync state, ZFS iterates, writing out
84 * data until it converges and all in-memory changes have been written out.
85 * The first such pass is the largest as it encompasses all the modified user
86 * data (as opposed to filesystem metadata). Subsequent passes typically have
87 * far less data to write as they consist exclusively of filesystem metadata.
88 *
89 * To ensure convergence, after a certain number of passes ZFS begins
90 * overwriting locations on stable storage that had been allocated earlier in
91 * the syncing state (and subsequently freed). ZFS usually allocates new
92 * blocks to optimize for large, continuous, writes. For the syncing state to
93 * converge however it must complete a pass where no new blocks are allocated
94 * since each allocation requires a modification of persistent metadata.
95 * Further, to hasten convergence, after a prescribed number of passes, ZFS
96 * also defers frees, and stops compressing.
97 *
98 * In addition to writing out user data, we must also execute synctasks during
99 * the syncing context. A synctask is the mechanism by which some
100 * administrative activities work such as creating and destroying snapshots or
101 * datasets. Note that when a synctask is initiated it enters the open txg,
102 * and ZFS then pushes that txg as quickly as possible to completion of the
103 * syncing state in order to reduce the latency of the administrative
104 * activity. To complete the syncing state, ZFS writes out a new uberblock,
105 * the root of the tree of blocks that comprise all state stored on the ZFS
106 * pool. Finally, if there is a quiesced txg waiting, we signal that it can
107 * now transition to the syncing state.
34dc7c2f
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108 */
109
110static void txg_sync_thread(dsl_pool_t *dp);
111static void txg_quiesce_thread(dsl_pool_t *dp);
112
572e2857 113int zfs_txg_timeout = 5; /* max seconds worth of delta per txg */
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114
115/*
116 * Prepare the txg subsystem.
117 */
118void
119txg_init(dsl_pool_t *dp, uint64_t txg)
120{
121 tx_state_t *tx = &dp->dp_tx;
122 int c;
123 bzero(tx, sizeof (tx_state_t));
124
00b46022 125 tx->tx_cpu = vmem_zalloc(max_ncpus * sizeof (tx_cpu_t), KM_SLEEP);
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126
127 for (c = 0; c < max_ncpus; c++) {
128 int i;
129
130 mutex_init(&tx->tx_cpu[c].tc_lock, NULL, MUTEX_DEFAULT, NULL);
2696dfaf
GW
131 mutex_init(&tx->tx_cpu[c].tc_open_lock, NULL, MUTEX_DEFAULT,
132 NULL);
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BB
133 for (i = 0; i < TXG_SIZE; i++) {
134 cv_init(&tx->tx_cpu[c].tc_cv[i], NULL, CV_DEFAULT,
135 NULL);
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136 list_create(&tx->tx_cpu[c].tc_callbacks[i],
137 sizeof (dmu_tx_callback_t),
138 offsetof(dmu_tx_callback_t, dcb_node));
34dc7c2f
BB
139 }
140 }
141
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142 mutex_init(&tx->tx_sync_lock, NULL, MUTEX_DEFAULT, NULL);
143
fb5f0bc8
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144 cv_init(&tx->tx_sync_more_cv, NULL, CV_DEFAULT, NULL);
145 cv_init(&tx->tx_sync_done_cv, NULL, CV_DEFAULT, NULL);
146 cv_init(&tx->tx_quiesce_more_cv, NULL, CV_DEFAULT, NULL);
147 cv_init(&tx->tx_quiesce_done_cv, NULL, CV_DEFAULT, NULL);
148 cv_init(&tx->tx_exit_cv, NULL, CV_DEFAULT, NULL);
149
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150 tx->tx_open_txg = txg;
151}
152
153/*
154 * Close down the txg subsystem.
155 */
156void
157txg_fini(dsl_pool_t *dp)
158{
159 tx_state_t *tx = &dp->dp_tx;
160 int c;
161
162 ASSERT(tx->tx_threads == 0);
163
34dc7c2f
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164 mutex_destroy(&tx->tx_sync_lock);
165
fb5f0bc8
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166 cv_destroy(&tx->tx_sync_more_cv);
167 cv_destroy(&tx->tx_sync_done_cv);
168 cv_destroy(&tx->tx_quiesce_more_cv);
169 cv_destroy(&tx->tx_quiesce_done_cv);
170 cv_destroy(&tx->tx_exit_cv);
171
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172 for (c = 0; c < max_ncpus; c++) {
173 int i;
174
2696dfaf 175 mutex_destroy(&tx->tx_cpu[c].tc_open_lock);
34dc7c2f 176 mutex_destroy(&tx->tx_cpu[c].tc_lock);
428870ff 177 for (i = 0; i < TXG_SIZE; i++) {
34dc7c2f 178 cv_destroy(&tx->tx_cpu[c].tc_cv[i]);
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179 list_destroy(&tx->tx_cpu[c].tc_callbacks[i]);
180 }
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181 }
182
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183 if (tx->tx_commit_cb_taskq != NULL)
184 taskq_destroy(tx->tx_commit_cb_taskq);
185
00b46022 186 vmem_free(tx->tx_cpu, max_ncpus * sizeof (tx_cpu_t));
34dc7c2f
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187
188 bzero(tx, sizeof (tx_state_t));
189}
190
191/*
192 * Start syncing transaction groups.
193 */
194void
195txg_sync_start(dsl_pool_t *dp)
196{
197 tx_state_t *tx = &dp->dp_tx;
198
199 mutex_enter(&tx->tx_sync_lock);
200
201 dprintf("pool %p\n", dp);
202
203 ASSERT(tx->tx_threads == 0);
204
205 tx->tx_threads = 2;
206
207 tx->tx_quiesce_thread = thread_create(NULL, 0, txg_quiesce_thread,
1229323d 208 dp, 0, &p0, TS_RUN, defclsyspri);
34dc7c2f 209
b128c09f
BB
210 /*
211 * The sync thread can need a larger-than-default stack size on
212 * 32-bit x86. This is due in part to nested pools and
213 * scrub_visitbp() recursion.
214 */
428870ff 215 tx->tx_sync_thread = thread_create(NULL, 32<<10, txg_sync_thread,
1229323d 216 dp, 0, &p0, TS_RUN, defclsyspri);
34dc7c2f
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217
218 mutex_exit(&tx->tx_sync_lock);
219}
220
221static void
222txg_thread_enter(tx_state_t *tx, callb_cpr_t *cpr)
223{
224 CALLB_CPR_INIT(cpr, &tx->tx_sync_lock, callb_generic_cpr, FTAG);
225 mutex_enter(&tx->tx_sync_lock);
226}
227
228static void
229txg_thread_exit(tx_state_t *tx, callb_cpr_t *cpr, kthread_t **tpp)
230{
231 ASSERT(*tpp != NULL);
232 *tpp = NULL;
233 tx->tx_threads--;
234 cv_broadcast(&tx->tx_exit_cv);
235 CALLB_CPR_EXIT(cpr); /* drops &tx->tx_sync_lock */
236 thread_exit();
237}
238
239static void
63fd3c6c 240txg_thread_wait(tx_state_t *tx, callb_cpr_t *cpr, kcondvar_t *cv, clock_t time)
34dc7c2f
BB
241{
242 CALLB_CPR_SAFE_BEGIN(cpr);
243
244 if (time)
b64ccd6c 245 (void) cv_timedwait_sig(cv, &tx->tx_sync_lock,
428870ff 246 ddi_get_lbolt() + time);
34dc7c2f 247 else
b64ccd6c 248 cv_wait_sig(cv, &tx->tx_sync_lock);
34dc7c2f
BB
249
250 CALLB_CPR_SAFE_END(cpr, &tx->tx_sync_lock);
251}
252
253/*
254 * Stop syncing transaction groups.
255 */
256void
257txg_sync_stop(dsl_pool_t *dp)
258{
259 tx_state_t *tx = &dp->dp_tx;
260
261 dprintf("pool %p\n", dp);
262 /*
263 * Finish off any work in progress.
264 */
265 ASSERT(tx->tx_threads == 2);
428870ff
BB
266
267 /*
268 * We need to ensure that we've vacated the deferred space_maps.
269 */
270 txg_wait_synced(dp, tx->tx_open_txg + TXG_DEFER_SIZE);
34dc7c2f
BB
271
272 /*
273 * Wake all sync threads and wait for them to die.
274 */
275 mutex_enter(&tx->tx_sync_lock);
276
277 ASSERT(tx->tx_threads == 2);
278
279 tx->tx_exiting = 1;
280
281 cv_broadcast(&tx->tx_quiesce_more_cv);
282 cv_broadcast(&tx->tx_quiesce_done_cv);
283 cv_broadcast(&tx->tx_sync_more_cv);
284
285 while (tx->tx_threads != 0)
286 cv_wait(&tx->tx_exit_cv, &tx->tx_sync_lock);
287
288 tx->tx_exiting = 0;
289
290 mutex_exit(&tx->tx_sync_lock);
291}
292
293uint64_t
294txg_hold_open(dsl_pool_t *dp, txg_handle_t *th)
295{
296 tx_state_t *tx = &dp->dp_tx;
15a9e033 297 tx_cpu_t *tc;
34dc7c2f
BB
298 uint64_t txg;
299
15a9e033
PS
300 /*
301 * It appears the processor id is simply used as a "random"
302 * number to index into the array, and there isn't any other
303 * significance to the chosen tx_cpu. Because.. Why not use
304 * the current cpu to index into the array?
305 */
306 kpreempt_disable();
307 tc = &tx->tx_cpu[CPU_SEQID];
308 kpreempt_enable();
309
2696dfaf 310 mutex_enter(&tc->tc_open_lock);
34dc7c2f 311 txg = tx->tx_open_txg;
2696dfaf
GW
312
313 mutex_enter(&tc->tc_lock);
34dc7c2f 314 tc->tc_count[txg & TXG_MASK]++;
2696dfaf 315 mutex_exit(&tc->tc_lock);
34dc7c2f
BB
316
317 th->th_cpu = tc;
318 th->th_txg = txg;
319
320 return (txg);
321}
322
323void
324txg_rele_to_quiesce(txg_handle_t *th)
325{
326 tx_cpu_t *tc = th->th_cpu;
327
2696dfaf
GW
328 ASSERT(!MUTEX_HELD(&tc->tc_lock));
329 mutex_exit(&tc->tc_open_lock);
34dc7c2f
BB
330}
331
428870ff
BB
332void
333txg_register_callbacks(txg_handle_t *th, list_t *tx_callbacks)
334{
335 tx_cpu_t *tc = th->th_cpu;
336 int g = th->th_txg & TXG_MASK;
337
338 mutex_enter(&tc->tc_lock);
339 list_move_tail(&tc->tc_callbacks[g], tx_callbacks);
340 mutex_exit(&tc->tc_lock);
341}
342
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BB
343void
344txg_rele_to_sync(txg_handle_t *th)
345{
346 tx_cpu_t *tc = th->th_cpu;
347 int g = th->th_txg & TXG_MASK;
348
349 mutex_enter(&tc->tc_lock);
350 ASSERT(tc->tc_count[g] != 0);
351 if (--tc->tc_count[g] == 0)
352 cv_broadcast(&tc->tc_cv[g]);
353 mutex_exit(&tc->tc_lock);
354
355 th->th_cpu = NULL; /* defensive */
356}
357
e49f1e20
WA
358/*
359 * Blocks until all transactions in the group are committed.
360 *
361 * On return, the transaction group has reached a stable state in which it can
362 * then be passed off to the syncing context.
363 */
34dc7c2f
BB
364static void
365txg_quiesce(dsl_pool_t *dp, uint64_t txg)
366{
367 tx_state_t *tx = &dp->dp_tx;
368 int g = txg & TXG_MASK;
369 int c;
370
371 /*
2696dfaf 372 * Grab all tc_open_locks so nobody else can get into this txg.
34dc7c2f
BB
373 */
374 for (c = 0; c < max_ncpus; c++)
2696dfaf 375 mutex_enter(&tx->tx_cpu[c].tc_open_lock);
34dc7c2f
BB
376
377 ASSERT(txg == tx->tx_open_txg);
378 tx->tx_open_txg++;
e8b96c60 379 tx->tx_open_time = gethrtime();
34dc7c2f 380
01b738f4
CP
381 spa_txg_history_set(dp->dp_spa, txg, TXG_STATE_OPEN, tx->tx_open_time);
382 spa_txg_history_add(dp->dp_spa, tx->tx_open_txg, tx->tx_open_time);
0b1401ee 383
63fd3c6c
AL
384 DTRACE_PROBE2(txg__quiescing, dsl_pool_t *, dp, uint64_t, txg);
385 DTRACE_PROBE2(txg__opened, dsl_pool_t *, dp, uint64_t, tx->tx_open_txg);
386
57f5a200
BB
387 /*
388 * Now that we've incremented tx_open_txg, we can let threads
389 * enter the next transaction group.
390 */
391 for (c = 0; c < max_ncpus; c++)
2696dfaf 392 mutex_exit(&tx->tx_cpu[c].tc_open_lock);
57f5a200 393
34dc7c2f
BB
394 /*
395 * Quiesce the transaction group by waiting for everyone to txg_exit().
396 */
397 for (c = 0; c < max_ncpus; c++) {
398 tx_cpu_t *tc = &tx->tx_cpu[c];
399 mutex_enter(&tc->tc_lock);
400 while (tc->tc_count[g] != 0)
401 cv_wait(&tc->tc_cv[g], &tc->tc_lock);
402 mutex_exit(&tc->tc_lock);
403 }
0b1401ee
BB
404
405 spa_txg_history_set(dp->dp_spa, txg, TXG_STATE_QUIESCED, gethrtime());
34dc7c2f
BB
406}
407
428870ff
BB
408static void
409txg_do_callbacks(list_t *cb_list)
410{
411 dmu_tx_do_callbacks(cb_list, 0);
412
413 list_destroy(cb_list);
414
415 kmem_free(cb_list, sizeof (list_t));
416}
417
418/*
419 * Dispatch the commit callbacks registered on this txg to worker threads.
e49f1e20
WA
420 *
421 * If no callbacks are registered for a given TXG, nothing happens.
422 * This function creates a taskq for the associated pool, if needed.
428870ff
BB
423 */
424static void
425txg_dispatch_callbacks(dsl_pool_t *dp, uint64_t txg)
426{
427 int c;
428 tx_state_t *tx = &dp->dp_tx;
429 list_t *cb_list;
430
431 for (c = 0; c < max_ncpus; c++) {
432 tx_cpu_t *tc = &tx->tx_cpu[c];
e49f1e20
WA
433 /*
434 * No need to lock tx_cpu_t at this point, since this can
435 * only be called once a txg has been synced.
436 */
428870ff
BB
437
438 int g = txg & TXG_MASK;
439
440 if (list_is_empty(&tc->tc_callbacks[g]))
441 continue;
442
443 if (tx->tx_commit_cb_taskq == NULL) {
444 /*
445 * Commit callback taskq hasn't been created yet.
446 */
447 tx->tx_commit_cb_taskq = taskq_create("tx_commit_cb",
1229323d 448 max_ncpus, defclsyspri, max_ncpus, max_ncpus * 2,
aa9af22c 449 TASKQ_PREPOPULATE | TASKQ_DYNAMIC);
428870ff
BB
450 }
451
79c76d5b 452 cb_list = kmem_alloc(sizeof (list_t), KM_SLEEP);
428870ff
BB
453 list_create(cb_list, sizeof (dmu_tx_callback_t),
454 offsetof(dmu_tx_callback_t, dcb_node));
455
090ff092 456 list_move_tail(cb_list, &tc->tc_callbacks[g]);
428870ff
BB
457
458 (void) taskq_dispatch(tx->tx_commit_cb_taskq, (task_func_t *)
459 txg_do_callbacks, cb_list, TQ_SLEEP);
460 }
461}
462
54a179e7
RC
463/*
464 * Wait for pending commit callbacks of already-synced transactions to finish
465 * processing.
466 * Calling this function from within a commit callback will deadlock.
467 */
468void
469txg_wait_callbacks(dsl_pool_t *dp)
470{
471 tx_state_t *tx = &dp->dp_tx;
472
473 if (tx->tx_commit_cb_taskq != NULL)
c5528b9b 474 taskq_wait_outstanding(tx->tx_commit_cb_taskq, 0);
54a179e7
RC
475}
476
34dc7c2f
BB
477static void
478txg_sync_thread(dsl_pool_t *dp)
479{
428870ff 480 spa_t *spa = dp->dp_spa;
34dc7c2f
BB
481 tx_state_t *tx = &dp->dp_tx;
482 callb_cpr_t cpr;
0b1401ee 483 vdev_stat_t *vs1, *vs2;
0b75bdb3 484 clock_t start, delta;
34dc7c2f 485
92119cc2 486 (void) spl_fstrans_mark();
34dc7c2f
BB
487 txg_thread_enter(tx, &cpr);
488
79c76d5b
BB
489 vs1 = kmem_alloc(sizeof (vdev_stat_t), KM_SLEEP);
490 vs2 = kmem_alloc(sizeof (vdev_stat_t), KM_SLEEP);
0b1401ee 491
34dc7c2f 492 start = delta = 0;
34dc7c2f 493 for (;;) {
0b75bdb3 494 clock_t timer, timeout;
b128c09f 495 uint64_t txg;
3ccab252 496 uint64_t ndirty;
34dc7c2f 497
87d98efe
BB
498 timeout = zfs_txg_timeout * hz;
499
34dc7c2f 500 /*
428870ff 501 * We sync when we're scanning, there's someone waiting
b128c09f
BB
502 * on us, or the quiesce thread has handed off a txg to
503 * us, or we have reached our timeout.
34dc7c2f
BB
504 */
505 timer = (delta >= timeout ? 0 : timeout - delta);
428870ff 506 while (!dsl_scan_active(dp->dp_scan) &&
b128c09f 507 !tx->tx_exiting && timer > 0 &&
34dc7c2f 508 tx->tx_synced_txg >= tx->tx_sync_txg_waiting &&
e8b96c60
MA
509 tx->tx_quiesced_txg == 0 &&
510 dp->dp_dirty_total < zfs_dirty_data_sync) {
34dc7c2f
BB
511 dprintf("waiting; tx_synced=%llu waiting=%llu dp=%p\n",
512 tx->tx_synced_txg, tx->tx_sync_txg_waiting, dp);
513 txg_thread_wait(tx, &cpr, &tx->tx_sync_more_cv, timer);
428870ff 514 delta = ddi_get_lbolt() - start;
34dc7c2f
BB
515 timer = (delta > timeout ? 0 : timeout - delta);
516 }
517
518 /*
519 * Wait until the quiesce thread hands off a txg to us,
520 * prompting it to do so if necessary.
521 */
522 while (!tx->tx_exiting && tx->tx_quiesced_txg == 0) {
523 if (tx->tx_quiesce_txg_waiting < tx->tx_open_txg+1)
524 tx->tx_quiesce_txg_waiting = tx->tx_open_txg+1;
525 cv_broadcast(&tx->tx_quiesce_more_cv);
526 txg_thread_wait(tx, &cpr, &tx->tx_quiesce_done_cv, 0);
527 }
528
0b1401ee 529 if (tx->tx_exiting) {
d1d7e268
MK
530 kmem_free(vs2, sizeof (vdev_stat_t));
531 kmem_free(vs1, sizeof (vdev_stat_t));
34dc7c2f 532 txg_thread_exit(tx, &cpr, &tx->tx_sync_thread);
0b1401ee
BB
533 }
534
f3a7f661 535 spa_config_enter(spa, SCL_ALL, FTAG, RW_READER);
0b1401ee 536 vdev_get_stats(spa->spa_root_vdev, vs1);
f3a7f661 537 spa_config_exit(spa, SCL_ALL, FTAG);
34dc7c2f 538
34dc7c2f
BB
539 /*
540 * Consume the quiesced txg which has been handed off to
541 * us. This may cause the quiescing thread to now be
542 * able to quiesce another txg, so we must signal it.
543 */
544 txg = tx->tx_quiesced_txg;
545 tx->tx_quiesced_txg = 0;
546 tx->tx_syncing_txg = txg;
63fd3c6c 547 DTRACE_PROBE2(txg__syncing, dsl_pool_t *, dp, uint64_t, txg);
34dc7c2f 548 cv_broadcast(&tx->tx_quiesce_more_cv);
34dc7c2f
BB
549
550 dprintf("txg=%llu quiesce_txg=%llu sync_txg=%llu\n",
551 txg, tx->tx_quiesce_txg_waiting, tx->tx_sync_txg_waiting);
552 mutex_exit(&tx->tx_sync_lock);
b128c09f 553
478d64fd
IL
554 spa_txg_history_set(spa, txg, TXG_STATE_WAIT_FOR_SYNC,
555 gethrtime());
3ccab252 556 ndirty = dp->dp_dirty_pertxg[txg & TXG_MASK];
478d64fd 557
428870ff
BB
558 start = ddi_get_lbolt();
559 spa_sync(spa, txg);
560 delta = ddi_get_lbolt() - start;
34dc7c2f 561
34dc7c2f 562 mutex_enter(&tx->tx_sync_lock);
34dc7c2f
BB
563 tx->tx_synced_txg = txg;
564 tx->tx_syncing_txg = 0;
63fd3c6c 565 DTRACE_PROBE2(txg__synced, dsl_pool_t *, dp, uint64_t, txg);
34dc7c2f 566 cv_broadcast(&tx->tx_sync_done_cv);
428870ff
BB
567
568 /*
569 * Dispatch commit callbacks to worker threads.
570 */
571 txg_dispatch_callbacks(dp, txg);
0b1401ee 572
f3a7f661 573 spa_config_enter(spa, SCL_ALL, FTAG, RW_READER);
0b1401ee 574 vdev_get_stats(spa->spa_root_vdev, vs2);
f3a7f661 575 spa_config_exit(spa, SCL_ALL, FTAG);
0b1401ee
BB
576 spa_txg_history_set_io(spa, txg,
577 vs2->vs_bytes[ZIO_TYPE_READ]-vs1->vs_bytes[ZIO_TYPE_READ],
578 vs2->vs_bytes[ZIO_TYPE_WRITE]-vs1->vs_bytes[ZIO_TYPE_WRITE],
579 vs2->vs_ops[ZIO_TYPE_READ]-vs1->vs_ops[ZIO_TYPE_READ],
580 vs2->vs_ops[ZIO_TYPE_WRITE]-vs1->vs_ops[ZIO_TYPE_WRITE],
3ccab252 581 ndirty);
0b1401ee 582 spa_txg_history_set(spa, txg, TXG_STATE_SYNCED, gethrtime());
34dc7c2f
BB
583 }
584}
585
586static void
587txg_quiesce_thread(dsl_pool_t *dp)
588{
589 tx_state_t *tx = &dp->dp_tx;
590 callb_cpr_t cpr;
591
592 txg_thread_enter(tx, &cpr);
593
594 for (;;) {
595 uint64_t txg;
596
597 /*
598 * We quiesce when there's someone waiting on us.
599 * However, we can only have one txg in "quiescing" or
600 * "quiesced, waiting to sync" state. So we wait until
601 * the "quiesced, waiting to sync" txg has been consumed
602 * by the sync thread.
603 */
604 while (!tx->tx_exiting &&
605 (tx->tx_open_txg >= tx->tx_quiesce_txg_waiting ||
606 tx->tx_quiesced_txg != 0))
607 txg_thread_wait(tx, &cpr, &tx->tx_quiesce_more_cv, 0);
608
609 if (tx->tx_exiting)
610 txg_thread_exit(tx, &cpr, &tx->tx_quiesce_thread);
611
612 txg = tx->tx_open_txg;
613 dprintf("txg=%llu quiesce_txg=%llu sync_txg=%llu\n",
614 txg, tx->tx_quiesce_txg_waiting,
615 tx->tx_sync_txg_waiting);
616 mutex_exit(&tx->tx_sync_lock);
617 txg_quiesce(dp, txg);
618 mutex_enter(&tx->tx_sync_lock);
619
620 /*
621 * Hand this txg off to the sync thread.
622 */
623 dprintf("quiesce done, handing off txg %llu\n", txg);
624 tx->tx_quiesced_txg = txg;
63fd3c6c 625 DTRACE_PROBE2(txg__quiesced, dsl_pool_t *, dp, uint64_t, txg);
34dc7c2f
BB
626 cv_broadcast(&tx->tx_sync_more_cv);
627 cv_broadcast(&tx->tx_quiesce_done_cv);
628 }
629}
630
631/*
63fd3c6c
AL
632 * Delay this thread by delay nanoseconds if we are still in the open
633 * transaction group and there is already a waiting txg quiesing or quiesced.
634 * Abort the delay if this txg stalls or enters the quiesing state.
34dc7c2f
BB
635 */
636void
63fd3c6c 637txg_delay(dsl_pool_t *dp, uint64_t txg, hrtime_t delay, hrtime_t resolution)
34dc7c2f
BB
638{
639 tx_state_t *tx = &dp->dp_tx;
63fd3c6c 640 hrtime_t start = gethrtime();
34dc7c2f 641
d3cc8b15 642 /* don't delay if this txg could transition to quiescing immediately */
34dc7c2f
BB
643 if (tx->tx_open_txg > txg ||
644 tx->tx_syncing_txg == txg-1 || tx->tx_synced_txg == txg-1)
645 return;
646
647 mutex_enter(&tx->tx_sync_lock);
648 if (tx->tx_open_txg > txg || tx->tx_synced_txg == txg-1) {
649 mutex_exit(&tx->tx_sync_lock);
650 return;
651 }
652
63fd3c6c
AL
653 while (gethrtime() - start < delay &&
654 tx->tx_syncing_txg < txg-1 && !txg_stalled(dp)) {
655 (void) cv_timedwait_hires(&tx->tx_quiesce_more_cv,
656 &tx->tx_sync_lock, delay, resolution, 0);
657 }
34dc7c2f 658
570827e1
BB
659 DMU_TX_STAT_BUMP(dmu_tx_delay);
660
34dc7c2f
BB
661 mutex_exit(&tx->tx_sync_lock);
662}
663
664void
665txg_wait_synced(dsl_pool_t *dp, uint64_t txg)
666{
667 tx_state_t *tx = &dp->dp_tx;
668
13fe0198
MA
669 ASSERT(!dsl_pool_config_held(dp));
670
34dc7c2f
BB
671 mutex_enter(&tx->tx_sync_lock);
672 ASSERT(tx->tx_threads == 2);
673 if (txg == 0)
428870ff 674 txg = tx->tx_open_txg + TXG_DEFER_SIZE;
34dc7c2f
BB
675 if (tx->tx_sync_txg_waiting < txg)
676 tx->tx_sync_txg_waiting = txg;
677 dprintf("txg=%llu quiesce_txg=%llu sync_txg=%llu\n",
678 txg, tx->tx_quiesce_txg_waiting, tx->tx_sync_txg_waiting);
679 while (tx->tx_synced_txg < txg) {
680 dprintf("broadcasting sync more "
681 "tx_synced=%llu waiting=%llu dp=%p\n",
682 tx->tx_synced_txg, tx->tx_sync_txg_waiting, dp);
683 cv_broadcast(&tx->tx_sync_more_cv);
684 cv_wait(&tx->tx_sync_done_cv, &tx->tx_sync_lock);
685 }
686 mutex_exit(&tx->tx_sync_lock);
687}
688
689void
690txg_wait_open(dsl_pool_t *dp, uint64_t txg)
691{
692 tx_state_t *tx = &dp->dp_tx;
693
13fe0198
MA
694 ASSERT(!dsl_pool_config_held(dp));
695
34dc7c2f
BB
696 mutex_enter(&tx->tx_sync_lock);
697 ASSERT(tx->tx_threads == 2);
698 if (txg == 0)
699 txg = tx->tx_open_txg + 1;
700 if (tx->tx_quiesce_txg_waiting < txg)
701 tx->tx_quiesce_txg_waiting = txg;
702 dprintf("txg=%llu quiesce_txg=%llu sync_txg=%llu\n",
703 txg, tx->tx_quiesce_txg_waiting, tx->tx_sync_txg_waiting);
704 while (tx->tx_open_txg < txg) {
705 cv_broadcast(&tx->tx_quiesce_more_cv);
706 cv_wait(&tx->tx_quiesce_done_cv, &tx->tx_sync_lock);
707 }
708 mutex_exit(&tx->tx_sync_lock);
709}
710
e8b96c60
MA
711/*
712 * If there isn't a txg syncing or in the pipeline, push another txg through
713 * the pipeline by queiscing the open txg.
714 */
715void
716txg_kick(dsl_pool_t *dp)
717{
718 tx_state_t *tx = &dp->dp_tx;
719
720 ASSERT(!dsl_pool_config_held(dp));
721
722 mutex_enter(&tx->tx_sync_lock);
723 if (tx->tx_syncing_txg == 0 &&
724 tx->tx_quiesce_txg_waiting <= tx->tx_open_txg &&
725 tx->tx_sync_txg_waiting <= tx->tx_synced_txg &&
726 tx->tx_quiesced_txg <= tx->tx_synced_txg) {
727 tx->tx_quiesce_txg_waiting = tx->tx_open_txg + 1;
728 cv_broadcast(&tx->tx_quiesce_more_cv);
729 }
730 mutex_exit(&tx->tx_sync_lock);
731}
732
b128c09f 733boolean_t
34dc7c2f
BB
734txg_stalled(dsl_pool_t *dp)
735{
736 tx_state_t *tx = &dp->dp_tx;
737 return (tx->tx_quiesce_txg_waiting > tx->tx_open_txg);
738}
739
b128c09f
BB
740boolean_t
741txg_sync_waiting(dsl_pool_t *dp)
742{
743 tx_state_t *tx = &dp->dp_tx;
744
745 return (tx->tx_syncing_txg <= tx->tx_sync_txg_waiting ||
746 tx->tx_quiesced_txg != 0);
747}
748
34dc7c2f
BB
749/*
750 * Per-txg object lists.
751 */
752void
753txg_list_create(txg_list_t *tl, size_t offset)
754{
755 int t;
756
757 mutex_init(&tl->tl_lock, NULL, MUTEX_DEFAULT, NULL);
758
759 tl->tl_offset = offset;
760
761 for (t = 0; t < TXG_SIZE; t++)
762 tl->tl_head[t] = NULL;
763}
764
765void
766txg_list_destroy(txg_list_t *tl)
767{
768 int t;
769
770 for (t = 0; t < TXG_SIZE; t++)
771 ASSERT(txg_list_empty(tl, t));
772
773 mutex_destroy(&tl->tl_lock);
774}
775
29809a6c 776boolean_t
34dc7c2f
BB
777txg_list_empty(txg_list_t *tl, uint64_t txg)
778{
779 return (tl->tl_head[txg & TXG_MASK] == NULL);
780}
781
acbad6ff
AR
782/*
783 * Returns true if all txg lists are empty.
784 *
785 * Warning: this is inherently racy (an item could be added immediately
786 * after this function returns). We don't bother with the lock because
787 * it wouldn't change the semantics.
788 */
789boolean_t
790txg_all_lists_empty(txg_list_t *tl)
791{
792 int i;
793
794 for (i = 0; i < TXG_SIZE; i++) {
795 if (!txg_list_empty(tl, i)) {
796 return (B_FALSE);
797 }
798 }
799 return (B_TRUE);
800}
801
34dc7c2f 802/*
13fe0198
MA
803 * Add an entry to the list (unless it's already on the list).
804 * Returns B_TRUE if it was actually added.
34dc7c2f 805 */
13fe0198 806boolean_t
34dc7c2f
BB
807txg_list_add(txg_list_t *tl, void *p, uint64_t txg)
808{
809 int t = txg & TXG_MASK;
810 txg_node_t *tn = (txg_node_t *)((char *)p + tl->tl_offset);
13fe0198 811 boolean_t add;
34dc7c2f
BB
812
813 mutex_enter(&tl->tl_lock);
13fe0198
MA
814 add = (tn->tn_member[t] == 0);
815 if (add) {
34dc7c2f
BB
816 tn->tn_member[t] = 1;
817 tn->tn_next[t] = tl->tl_head[t];
818 tl->tl_head[t] = tn;
819 }
820 mutex_exit(&tl->tl_lock);
821
13fe0198 822 return (add);
34dc7c2f
BB
823}
824
428870ff 825/*
13fe0198
MA
826 * Add an entry to the end of the list, unless it's already on the list.
827 * (walks list to find end)
828 * Returns B_TRUE if it was actually added.
428870ff 829 */
13fe0198 830boolean_t
428870ff
BB
831txg_list_add_tail(txg_list_t *tl, void *p, uint64_t txg)
832{
833 int t = txg & TXG_MASK;
834 txg_node_t *tn = (txg_node_t *)((char *)p + tl->tl_offset);
13fe0198 835 boolean_t add;
428870ff
BB
836
837 mutex_enter(&tl->tl_lock);
13fe0198
MA
838 add = (tn->tn_member[t] == 0);
839 if (add) {
428870ff
BB
840 txg_node_t **tp;
841
842 for (tp = &tl->tl_head[t]; *tp != NULL; tp = &(*tp)->tn_next[t])
843 continue;
844
845 tn->tn_member[t] = 1;
846 tn->tn_next[t] = NULL;
847 *tp = tn;
848 }
849 mutex_exit(&tl->tl_lock);
850
13fe0198 851 return (add);
428870ff
BB
852}
853
34dc7c2f
BB
854/*
855 * Remove the head of the list and return it.
856 */
857void *
858txg_list_remove(txg_list_t *tl, uint64_t txg)
859{
860 int t = txg & TXG_MASK;
861 txg_node_t *tn;
862 void *p = NULL;
863
864 mutex_enter(&tl->tl_lock);
865 if ((tn = tl->tl_head[t]) != NULL) {
866 p = (char *)tn - tl->tl_offset;
867 tl->tl_head[t] = tn->tn_next[t];
868 tn->tn_next[t] = NULL;
869 tn->tn_member[t] = 0;
870 }
871 mutex_exit(&tl->tl_lock);
872
873 return (p);
874}
875
876/*
877 * Remove a specific item from the list and return it.
878 */
879void *
880txg_list_remove_this(txg_list_t *tl, void *p, uint64_t txg)
881{
882 int t = txg & TXG_MASK;
883 txg_node_t *tn, **tp;
884
885 mutex_enter(&tl->tl_lock);
886
887 for (tp = &tl->tl_head[t]; (tn = *tp) != NULL; tp = &tn->tn_next[t]) {
888 if ((char *)tn - tl->tl_offset == p) {
889 *tp = tn->tn_next[t];
890 tn->tn_next[t] = NULL;
891 tn->tn_member[t] = 0;
892 mutex_exit(&tl->tl_lock);
893 return (p);
894 }
895 }
896
897 mutex_exit(&tl->tl_lock);
898
899 return (NULL);
900}
901
13fe0198 902boolean_t
34dc7c2f
BB
903txg_list_member(txg_list_t *tl, void *p, uint64_t txg)
904{
905 int t = txg & TXG_MASK;
906 txg_node_t *tn = (txg_node_t *)((char *)p + tl->tl_offset);
907
13fe0198 908 return (tn->tn_member[t] != 0);
34dc7c2f
BB
909}
910
911/*
912 * Walk a txg list -- only safe if you know it's not changing.
913 */
914void *
915txg_list_head(txg_list_t *tl, uint64_t txg)
916{
917 int t = txg & TXG_MASK;
918 txg_node_t *tn = tl->tl_head[t];
919
920 return (tn == NULL ? NULL : (char *)tn - tl->tl_offset);
921}
922
923void *
924txg_list_next(txg_list_t *tl, void *p, uint64_t txg)
925{
926 int t = txg & TXG_MASK;
927 txg_node_t *tn = (txg_node_t *)((char *)p + tl->tl_offset);
928
929 tn = tn->tn_next[t];
930
931 return (tn == NULL ? NULL : (char *)tn - tl->tl_offset);
932}
c28b2279
BB
933
934#if defined(_KERNEL) && defined(HAVE_SPL)
935EXPORT_SYMBOL(txg_init);
936EXPORT_SYMBOL(txg_fini);
937EXPORT_SYMBOL(txg_sync_start);
938EXPORT_SYMBOL(txg_sync_stop);
939EXPORT_SYMBOL(txg_hold_open);
940EXPORT_SYMBOL(txg_rele_to_quiesce);
941EXPORT_SYMBOL(txg_rele_to_sync);
942EXPORT_SYMBOL(txg_register_callbacks);
943EXPORT_SYMBOL(txg_delay);
944EXPORT_SYMBOL(txg_wait_synced);
945EXPORT_SYMBOL(txg_wait_open);
54a179e7 946EXPORT_SYMBOL(txg_wait_callbacks);
c28b2279
BB
947EXPORT_SYMBOL(txg_stalled);
948EXPORT_SYMBOL(txg_sync_waiting);
87d98efe
BB
949
950module_param(zfs_txg_timeout, int, 0644);
951MODULE_PARM_DESC(zfs_txg_timeout, "Max seconds worth of delta per txg");
c28b2279 952#endif