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 (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
23 * Copyright (c) 2011, 2019 by Delphix. All rights reserved.
24 * Copyright (c) 2013 by Saso Kiselkov. All rights reserved.
25 * Copyright (c) 2015, Nexenta Systems, Inc. All rights reserved.
26 * Copyright (c) 2017, Intel Corporation.
27 */
28
29 #include <sys/zfs_context.h>
30 #include <sys/dmu.h>
31 #include <sys/dmu_tx.h>
32 #include <sys/space_map.h>
33 #include <sys/metaslab_impl.h>
34 #include <sys/vdev_impl.h>
35 #include <sys/vdev_draid.h>
36 #include <sys/zio.h>
37 #include <sys/spa_impl.h>
38 #include <sys/zfeature.h>
39 #include <sys/vdev_indirect_mapping.h>
40 #include <sys/zap.h>
41 #include <sys/btree.h>
42
43 #define WITH_DF_BLOCK_ALLOCATOR
44
45 #define GANG_ALLOCATION(flags) \
46 ((flags) & (METASLAB_GANG_CHILD | METASLAB_GANG_HEADER))
47
48 /*
49 * Metaslab granularity, in bytes. This is roughly similar to what would be
50 * referred to as the "stripe size" in traditional RAID arrays. In normal
51 * operation, we will try to write this amount of data to a top-level vdev
52 * before moving on to the next one.
53 */
54 unsigned long metaslab_aliquot = 512 << 10;
55
56 /*
57 * For testing, make some blocks above a certain size be gang blocks.
58 */
59 unsigned long metaslab_force_ganging = SPA_MAXBLOCKSIZE + 1;
60
61 /*
62 * In pools where the log space map feature is not enabled we touch
63 * multiple metaslabs (and their respective space maps) with each
64 * transaction group. Thus, we benefit from having a small space map
65 * block size since it allows us to issue more I/O operations scattered
66 * around the disk. So a sane default for the space map block size
67 * is 8~16K.
68 */
69 int zfs_metaslab_sm_blksz_no_log = (1 << 14);
70
71 /*
72 * When the log space map feature is enabled, we accumulate a lot of
73 * changes per metaslab that are flushed once in a while so we benefit
74 * from a bigger block size like 128K for the metaslab space maps.
75 */
76 int zfs_metaslab_sm_blksz_with_log = (1 << 17);
77
78 /*
79 * The in-core space map representation is more compact than its on-disk form.
80 * The zfs_condense_pct determines how much more compact the in-core
81 * space map representation must be before we compact it on-disk.
82 * Values should be greater than or equal to 100.
83 */
84 int zfs_condense_pct = 200;
85
86 /*
87 * Condensing a metaslab is not guaranteed to actually reduce the amount of
88 * space used on disk. In particular, a space map uses data in increments of
89 * MAX(1 << ashift, space_map_blksz), so a metaslab might use the
90 * same number of blocks after condensing. Since the goal of condensing is to
91 * reduce the number of IOPs required to read the space map, we only want to
92 * condense when we can be sure we will reduce the number of blocks used by the
93 * space map. Unfortunately, we cannot precisely compute whether or not this is
94 * the case in metaslab_should_condense since we are holding ms_lock. Instead,
95 * we apply the following heuristic: do not condense a spacemap unless the
96 * uncondensed size consumes greater than zfs_metaslab_condense_block_threshold
97 * blocks.
98 */
99 int zfs_metaslab_condense_block_threshold = 4;
100
101 /*
102 * The zfs_mg_noalloc_threshold defines which metaslab groups should
103 * be eligible for allocation. The value is defined as a percentage of
104 * free space. Metaslab groups that have more free space than
105 * zfs_mg_noalloc_threshold are always eligible for allocations. Once
106 * a metaslab group's free space is less than or equal to the
107 * zfs_mg_noalloc_threshold the allocator will avoid allocating to that
108 * group unless all groups in the pool have reached zfs_mg_noalloc_threshold.
109 * Once all groups in the pool reach zfs_mg_noalloc_threshold then all
110 * groups are allowed to accept allocations. Gang blocks are always
111 * eligible to allocate on any metaslab group. The default value of 0 means
112 * no metaslab group will be excluded based on this criterion.
113 */
114 int zfs_mg_noalloc_threshold = 0;
115
116 /*
117 * Metaslab groups are considered eligible for allocations if their
118 * fragmentation metric (measured as a percentage) is less than or
119 * equal to zfs_mg_fragmentation_threshold. If a metaslab group
120 * exceeds this threshold then it will be skipped unless all metaslab
121 * groups within the metaslab class have also crossed this threshold.
122 *
123 * This tunable was introduced to avoid edge cases where we continue
124 * allocating from very fragmented disks in our pool while other, less
125 * fragmented disks, exists. On the other hand, if all disks in the
126 * pool are uniformly approaching the threshold, the threshold can
127 * be a speed bump in performance, where we keep switching the disks
128 * that we allocate from (e.g. we allocate some segments from disk A
129 * making it bypassing the threshold while freeing segments from disk
130 * B getting its fragmentation below the threshold).
131 *
132 * Empirically, we've seen that our vdev selection for allocations is
133 * good enough that fragmentation increases uniformly across all vdevs
134 * the majority of the time. Thus we set the threshold percentage high
135 * enough to avoid hitting the speed bump on pools that are being pushed
136 * to the edge.
137 */
138 int zfs_mg_fragmentation_threshold = 95;
139
140 /*
141 * Allow metaslabs to keep their active state as long as their fragmentation
142 * percentage is less than or equal to zfs_metaslab_fragmentation_threshold. An
143 * active metaslab that exceeds this threshold will no longer keep its active
144 * status allowing better metaslabs to be selected.
145 */
146 int zfs_metaslab_fragmentation_threshold = 70;
147
148 /*
149 * When set will load all metaslabs when pool is first opened.
150 */
151 int metaslab_debug_load = 0;
152
153 /*
154 * When set will prevent metaslabs from being unloaded.
155 */
156 int metaslab_debug_unload = 0;
157
158 /*
159 * Minimum size which forces the dynamic allocator to change
160 * it's allocation strategy. Once the space map cannot satisfy
161 * an allocation of this size then it switches to using more
162 * aggressive strategy (i.e search by size rather than offset).
163 */
164 uint64_t metaslab_df_alloc_threshold = SPA_OLD_MAXBLOCKSIZE;
165
166 /*
167 * The minimum free space, in percent, which must be available
168 * in a space map to continue allocations in a first-fit fashion.
169 * Once the space map's free space drops below this level we dynamically
170 * switch to using best-fit allocations.
171 */
172 int metaslab_df_free_pct = 4;
173
174 /*
175 * Maximum distance to search forward from the last offset. Without this
176 * limit, fragmented pools can see >100,000 iterations and
177 * metaslab_block_picker() becomes the performance limiting factor on
178 * high-performance storage.
179 *
180 * With the default setting of 16MB, we typically see less than 500
181 * iterations, even with very fragmented, ashift=9 pools. The maximum number
182 * of iterations possible is:
183 * metaslab_df_max_search / (2 * (1<<ashift))
184 * With the default setting of 16MB this is 16*1024 (with ashift=9) or
185 * 2048 (with ashift=12).
186 */
187 int metaslab_df_max_search = 16 * 1024 * 1024;
188
189 /*
190 * Forces the metaslab_block_picker function to search for at least this many
191 * segments forwards until giving up on finding a segment that the allocation
192 * will fit into.
193 */
194 uint32_t metaslab_min_search_count = 100;
195
196 /*
197 * If we are not searching forward (due to metaslab_df_max_search,
198 * metaslab_df_free_pct, or metaslab_df_alloc_threshold), this tunable
199 * controls what segment is used. If it is set, we will use the largest free
200 * segment. If it is not set, we will use a segment of exactly the requested
201 * size (or larger).
202 */
203 int metaslab_df_use_largest_segment = B_FALSE;
204
205 /*
206 * Percentage of all cpus that can be used by the metaslab taskq.
207 */
208 int metaslab_load_pct = 50;
209
210 /*
211 * These tunables control how long a metaslab will remain loaded after the
212 * last allocation from it. A metaslab can't be unloaded until at least
213 * metaslab_unload_delay TXG's and metaslab_unload_delay_ms milliseconds
214 * have elapsed. However, zfs_metaslab_mem_limit may cause it to be
215 * unloaded sooner. These settings are intended to be generous -- to keep
216 * metaslabs loaded for a long time, reducing the rate of metaslab loading.
217 */
218 int metaslab_unload_delay = 32;
219 int metaslab_unload_delay_ms = 10 * 60 * 1000; /* ten minutes */
220
221 /*
222 * Max number of metaslabs per group to preload.
223 */
224 int metaslab_preload_limit = 10;
225
226 /*
227 * Enable/disable preloading of metaslab.
228 */
229 int metaslab_preload_enabled = B_TRUE;
230
231 /*
232 * Enable/disable fragmentation weighting on metaslabs.
233 */
234 int metaslab_fragmentation_factor_enabled = B_TRUE;
235
236 /*
237 * Enable/disable lba weighting (i.e. outer tracks are given preference).
238 */
239 int metaslab_lba_weighting_enabled = B_TRUE;
240
241 /*
242 * Enable/disable metaslab group biasing.
243 */
244 int metaslab_bias_enabled = B_TRUE;
245
246 /*
247 * Enable/disable remapping of indirect DVAs to their concrete vdevs.
248 */
249 boolean_t zfs_remap_blkptr_enable = B_TRUE;
250
251 /*
252 * Enable/disable segment-based metaslab selection.
253 */
254 int zfs_metaslab_segment_weight_enabled = B_TRUE;
255
256 /*
257 * When using segment-based metaslab selection, we will continue
258 * allocating from the active metaslab until we have exhausted
259 * zfs_metaslab_switch_threshold of its buckets.
260 */
261 int zfs_metaslab_switch_threshold = 2;
262
263 /*
264 * Internal switch to enable/disable the metaslab allocation tracing
265 * facility.
266 */
267 boolean_t metaslab_trace_enabled = B_FALSE;
268
269 /*
270 * Maximum entries that the metaslab allocation tracing facility will keep
271 * in a given list when running in non-debug mode. We limit the number
272 * of entries in non-debug mode to prevent us from using up too much memory.
273 * The limit should be sufficiently large that we don't expect any allocation
274 * to every exceed this value. In debug mode, the system will panic if this
275 * limit is ever reached allowing for further investigation.
276 */
277 uint64_t metaslab_trace_max_entries = 5000;
278
279 /*
280 * Maximum number of metaslabs per group that can be disabled
281 * simultaneously.
282 */
283 int max_disabled_ms = 3;
284
285 /*
286 * Time (in seconds) to respect ms_max_size when the metaslab is not loaded.
287 * To avoid 64-bit overflow, don't set above UINT32_MAX.
288 */
289 unsigned long zfs_metaslab_max_size_cache_sec = 3600; /* 1 hour */
290
291 /*
292 * Maximum percentage of memory to use on storing loaded metaslabs. If loading
293 * a metaslab would take it over this percentage, the oldest selected metaslab
294 * is automatically unloaded.
295 */
296 int zfs_metaslab_mem_limit = 25;
297
298 /*
299 * Force the per-metaslab range trees to use 64-bit integers to store
300 * segments. Used for debugging purposes.
301 */
302 boolean_t zfs_metaslab_force_large_segs = B_FALSE;
303
304 /*
305 * By default we only store segments over a certain size in the size-sorted
306 * metaslab trees (ms_allocatable_by_size and
307 * ms_unflushed_frees_by_size). This dramatically reduces memory usage and
308 * improves load and unload times at the cost of causing us to use slightly
309 * larger segments than we would otherwise in some cases.
310 */
311 uint32_t metaslab_by_size_min_shift = 14;
312
313 /*
314 * If not set, we will first try normal allocation. If that fails then
315 * we will do a gang allocation. If that fails then we will do a "try hard"
316 * gang allocation. If that fails then we will have a multi-layer gang
317 * block.
318 *
319 * If set, we will first try normal allocation. If that fails then
320 * we will do a "try hard" allocation. If that fails we will do a gang
321 * allocation. If that fails we will do a "try hard" gang allocation. If
322 * that fails then we will have a multi-layer gang block.
323 */
324 int zfs_metaslab_try_hard_before_gang = B_FALSE;
325
326 /*
327 * When not trying hard, we only consider the best zfs_metaslab_find_max_tries
328 * metaslabs. This improves performance, especially when there are many
329 * metaslabs per vdev and the allocation can't actually be satisfied (so we
330 * would otherwise iterate all the metaslabs). If there is a metaslab with a
331 * worse weight but it can actually satisfy the allocation, we won't find it
332 * until trying hard. This may happen if the worse metaslab is not loaded
333 * (and the true weight is better than we have calculated), or due to weight
334 * bucketization. E.g. we are looking for a 60K segment, and the best
335 * metaslabs all have free segments in the 32-63K bucket, but the best
336 * zfs_metaslab_find_max_tries metaslabs have ms_max_size <60KB, and a
337 * subsequent metaslab has ms_max_size >60KB (but fewer segments in this
338 * bucket, and therefore a lower weight).
339 */
340 int zfs_metaslab_find_max_tries = 100;
341
342 static uint64_t metaslab_weight(metaslab_t *, boolean_t);
343 static void metaslab_set_fragmentation(metaslab_t *, boolean_t);
344 static void metaslab_free_impl(vdev_t *, uint64_t, uint64_t, boolean_t);
345 static void metaslab_check_free_impl(vdev_t *, uint64_t, uint64_t);
346
347 static void metaslab_passivate(metaslab_t *msp, uint64_t weight);
348 static uint64_t metaslab_weight_from_range_tree(metaslab_t *msp);
349 static void metaslab_flush_update(metaslab_t *, dmu_tx_t *);
350 static unsigned int metaslab_idx_func(multilist_t *, void *);
351 static void metaslab_evict(metaslab_t *, uint64_t);
352 static void metaslab_rt_add(range_tree_t *rt, range_seg_t *rs, void *arg);
353 kmem_cache_t *metaslab_alloc_trace_cache;
354
355 typedef struct metaslab_stats {
356 kstat_named_t metaslabstat_trace_over_limit;
357 kstat_named_t metaslabstat_reload_tree;
358 kstat_named_t metaslabstat_too_many_tries;
359 kstat_named_t metaslabstat_try_hard;
360 } metaslab_stats_t;
361
362 static metaslab_stats_t metaslab_stats = {
363 { "trace_over_limit", KSTAT_DATA_UINT64 },
364 { "reload_tree", KSTAT_DATA_UINT64 },
365 { "too_many_tries", KSTAT_DATA_UINT64 },
366 { "try_hard", KSTAT_DATA_UINT64 },
367 };
368
369 #define METASLABSTAT_BUMP(stat) \
370 atomic_inc_64(&metaslab_stats.stat.value.ui64);
371
372
373 kstat_t *metaslab_ksp;
374
375 void
metaslab_stat_init(void)376 metaslab_stat_init(void)
377 {
378 ASSERT(metaslab_alloc_trace_cache == NULL);
379 metaslab_alloc_trace_cache = kmem_cache_create(
380 "metaslab_alloc_trace_cache", sizeof (metaslab_alloc_trace_t),
381 0, NULL, NULL, NULL, NULL, NULL, 0);
382 metaslab_ksp = kstat_create("zfs", 0, "metaslab_stats",
383 "misc", KSTAT_TYPE_NAMED, sizeof (metaslab_stats) /
384 sizeof (kstat_named_t), KSTAT_FLAG_VIRTUAL);
385 if (metaslab_ksp != NULL) {
386 metaslab_ksp->ks_data = &metaslab_stats;
387 kstat_install(metaslab_ksp);
388 }
389 }
390
391 void
metaslab_stat_fini(void)392 metaslab_stat_fini(void)
393 {
394 if (metaslab_ksp != NULL) {
395 kstat_delete(metaslab_ksp);
396 metaslab_ksp = NULL;
397 }
398
399 kmem_cache_destroy(metaslab_alloc_trace_cache);
400 metaslab_alloc_trace_cache = NULL;
401 }
402
403 /*
404 * ==========================================================================
405 * Metaslab classes
406 * ==========================================================================
407 */
408 metaslab_class_t *
metaslab_class_create(spa_t * spa,metaslab_ops_t * ops)409 metaslab_class_create(spa_t *spa, metaslab_ops_t *ops)
410 {
411 metaslab_class_t *mc;
412
413 mc = kmem_zalloc(offsetof(metaslab_class_t,
414 mc_allocator[spa->spa_alloc_count]), KM_SLEEP);
415
416 mc->mc_spa = spa;
417 mc->mc_ops = ops;
418 mutex_init(&mc->mc_lock, NULL, MUTEX_DEFAULT, NULL);
419 multilist_create(&mc->mc_metaslab_txg_list, sizeof (metaslab_t),
420 offsetof(metaslab_t, ms_class_txg_node), metaslab_idx_func);
421 for (int i = 0; i < spa->spa_alloc_count; i++) {
422 metaslab_class_allocator_t *mca = &mc->mc_allocator[i];
423 mca->mca_rotor = NULL;
424 zfs_refcount_create_tracked(&mca->mca_alloc_slots);
425 }
426
427 return (mc);
428 }
429
430 void
metaslab_class_destroy(metaslab_class_t * mc)431 metaslab_class_destroy(metaslab_class_t *mc)
432 {
433 spa_t *spa = mc->mc_spa;
434
435 ASSERT(mc->mc_alloc == 0);
436 ASSERT(mc->mc_deferred == 0);
437 ASSERT(mc->mc_space == 0);
438 ASSERT(mc->mc_dspace == 0);
439
440 for (int i = 0; i < spa->spa_alloc_count; i++) {
441 metaslab_class_allocator_t *mca = &mc->mc_allocator[i];
442 ASSERT(mca->mca_rotor == NULL);
443 zfs_refcount_destroy(&mca->mca_alloc_slots);
444 }
445 mutex_destroy(&mc->mc_lock);
446 multilist_destroy(&mc->mc_metaslab_txg_list);
447 kmem_free(mc, offsetof(metaslab_class_t,
448 mc_allocator[spa->spa_alloc_count]));
449 }
450
451 int
metaslab_class_validate(metaslab_class_t * mc)452 metaslab_class_validate(metaslab_class_t *mc)
453 {
454 metaslab_group_t *mg;
455 vdev_t *vd;
456
457 /*
458 * Must hold one of the spa_config locks.
459 */
460 ASSERT(spa_config_held(mc->mc_spa, SCL_ALL, RW_READER) ||
461 spa_config_held(mc->mc_spa, SCL_ALL, RW_WRITER));
462
463 if ((mg = mc->mc_allocator[0].mca_rotor) == NULL)
464 return (0);
465
466 do {
467 vd = mg->mg_vd;
468 ASSERT(vd->vdev_mg != NULL);
469 ASSERT3P(vd->vdev_top, ==, vd);
470 ASSERT3P(mg->mg_class, ==, mc);
471 ASSERT3P(vd->vdev_ops, !=, &vdev_hole_ops);
472 } while ((mg = mg->mg_next) != mc->mc_allocator[0].mca_rotor);
473
474 return (0);
475 }
476
477 static void
metaslab_class_space_update(metaslab_class_t * mc,int64_t alloc_delta,int64_t defer_delta,int64_t space_delta,int64_t dspace_delta)478 metaslab_class_space_update(metaslab_class_t *mc, int64_t alloc_delta,
479 int64_t defer_delta, int64_t space_delta, int64_t dspace_delta)
480 {
481 atomic_add_64(&mc->mc_alloc, alloc_delta);
482 atomic_add_64(&mc->mc_deferred, defer_delta);
483 atomic_add_64(&mc->mc_space, space_delta);
484 atomic_add_64(&mc->mc_dspace, dspace_delta);
485 }
486
487 uint64_t
metaslab_class_get_alloc(metaslab_class_t * mc)488 metaslab_class_get_alloc(metaslab_class_t *mc)
489 {
490 return (mc->mc_alloc);
491 }
492
493 uint64_t
metaslab_class_get_deferred(metaslab_class_t * mc)494 metaslab_class_get_deferred(metaslab_class_t *mc)
495 {
496 return (mc->mc_deferred);
497 }
498
499 uint64_t
metaslab_class_get_space(metaslab_class_t * mc)500 metaslab_class_get_space(metaslab_class_t *mc)
501 {
502 return (mc->mc_space);
503 }
504
505 uint64_t
metaslab_class_get_dspace(metaslab_class_t * mc)506 metaslab_class_get_dspace(metaslab_class_t *mc)
507 {
508 return (spa_deflate(mc->mc_spa) ? mc->mc_dspace : mc->mc_space);
509 }
510
511 void
metaslab_class_histogram_verify(metaslab_class_t * mc)512 metaslab_class_histogram_verify(metaslab_class_t *mc)
513 {
514 spa_t *spa = mc->mc_spa;
515 vdev_t *rvd = spa->spa_root_vdev;
516 uint64_t *mc_hist;
517 int i;
518
519 if ((zfs_flags & ZFS_DEBUG_HISTOGRAM_VERIFY) == 0)
520 return;
521
522 mc_hist = kmem_zalloc(sizeof (uint64_t) * RANGE_TREE_HISTOGRAM_SIZE,
523 KM_SLEEP);
524
525 mutex_enter(&mc->mc_lock);
526 for (int c = 0; c < rvd->vdev_children; c++) {
527 vdev_t *tvd = rvd->vdev_child[c];
528 metaslab_group_t *mg = vdev_get_mg(tvd, mc);
529
530 /*
531 * Skip any holes, uninitialized top-levels, or
532 * vdevs that are not in this metalab class.
533 */
534 if (!vdev_is_concrete(tvd) || tvd->vdev_ms_shift == 0 ||
535 mg->mg_class != mc) {
536 continue;
537 }
538
539 IMPLY(mg == mg->mg_vd->vdev_log_mg,
540 mc == spa_embedded_log_class(mg->mg_vd->vdev_spa));
541
542 for (i = 0; i < RANGE_TREE_HISTOGRAM_SIZE; i++)
543 mc_hist[i] += mg->mg_histogram[i];
544 }
545
546 for (i = 0; i < RANGE_TREE_HISTOGRAM_SIZE; i++) {
547 VERIFY3U(mc_hist[i], ==, mc->mc_histogram[i]);
548 }
549
550 mutex_exit(&mc->mc_lock);
551 kmem_free(mc_hist, sizeof (uint64_t) * RANGE_TREE_HISTOGRAM_SIZE);
552 }
553
554 /*
555 * Calculate the metaslab class's fragmentation metric. The metric
556 * is weighted based on the space contribution of each metaslab group.
557 * The return value will be a number between 0 and 100 (inclusive), or
558 * ZFS_FRAG_INVALID if the metric has not been set. See comment above the
559 * zfs_frag_table for more information about the metric.
560 */
561 uint64_t
metaslab_class_fragmentation(metaslab_class_t * mc)562 metaslab_class_fragmentation(metaslab_class_t *mc)
563 {
564 vdev_t *rvd = mc->mc_spa->spa_root_vdev;
565 uint64_t fragmentation = 0;
566
567 spa_config_enter(mc->mc_spa, SCL_VDEV, FTAG, RW_READER);
568
569 for (int c = 0; c < rvd->vdev_children; c++) {
570 vdev_t *tvd = rvd->vdev_child[c];
571 metaslab_group_t *mg = tvd->vdev_mg;
572
573 /*
574 * Skip any holes, uninitialized top-levels,
575 * or vdevs that are not in this metalab class.
576 */
577 if (!vdev_is_concrete(tvd) || tvd->vdev_ms_shift == 0 ||
578 mg->mg_class != mc) {
579 continue;
580 }
581
582 /*
583 * If a metaslab group does not contain a fragmentation
584 * metric then just bail out.
585 */
586 if (mg->mg_fragmentation == ZFS_FRAG_INVALID) {
587 spa_config_exit(mc->mc_spa, SCL_VDEV, FTAG);
588 return (ZFS_FRAG_INVALID);
589 }
590
591 /*
592 * Determine how much this metaslab_group is contributing
593 * to the overall pool fragmentation metric.
594 */
595 fragmentation += mg->mg_fragmentation *
596 metaslab_group_get_space(mg);
597 }
598 fragmentation /= metaslab_class_get_space(mc);
599
600 ASSERT3U(fragmentation, <=, 100);
601 spa_config_exit(mc->mc_spa, SCL_VDEV, FTAG);
602 return (fragmentation);
603 }
604
605 /*
606 * Calculate the amount of expandable space that is available in
607 * this metaslab class. If a device is expanded then its expandable
608 * space will be the amount of allocatable space that is currently not
609 * part of this metaslab class.
610 */
611 uint64_t
metaslab_class_expandable_space(metaslab_class_t * mc)612 metaslab_class_expandable_space(metaslab_class_t *mc)
613 {
614 vdev_t *rvd = mc->mc_spa->spa_root_vdev;
615 uint64_t space = 0;
616
617 spa_config_enter(mc->mc_spa, SCL_VDEV, FTAG, RW_READER);
618 for (int c = 0; c < rvd->vdev_children; c++) {
619 vdev_t *tvd = rvd->vdev_child[c];
620 metaslab_group_t *mg = tvd->vdev_mg;
621
622 if (!vdev_is_concrete(tvd) || tvd->vdev_ms_shift == 0 ||
623 mg->mg_class != mc) {
624 continue;
625 }
626
627 /*
628 * Calculate if we have enough space to add additional
629 * metaslabs. We report the expandable space in terms
630 * of the metaslab size since that's the unit of expansion.
631 */
632 space += P2ALIGN(tvd->vdev_max_asize - tvd->vdev_asize,
633 1ULL << tvd->vdev_ms_shift);
634 }
635 spa_config_exit(mc->mc_spa, SCL_VDEV, FTAG);
636 return (space);
637 }
638
639 void
metaslab_class_evict_old(metaslab_class_t * mc,uint64_t txg)640 metaslab_class_evict_old(metaslab_class_t *mc, uint64_t txg)
641 {
642 multilist_t *ml = &mc->mc_metaslab_txg_list;
643 for (int i = 0; i < multilist_get_num_sublists(ml); i++) {
644 multilist_sublist_t *mls = multilist_sublist_lock(ml, i);
645 metaslab_t *msp = multilist_sublist_head(mls);
646 multilist_sublist_unlock(mls);
647 while (msp != NULL) {
648 mutex_enter(&msp->ms_lock);
649
650 /*
651 * If the metaslab has been removed from the list
652 * (which could happen if we were at the memory limit
653 * and it was evicted during this loop), then we can't
654 * proceed and we should restart the sublist.
655 */
656 if (!multilist_link_active(&msp->ms_class_txg_node)) {
657 mutex_exit(&msp->ms_lock);
658 i--;
659 break;
660 }
661 mls = multilist_sublist_lock(ml, i);
662 metaslab_t *next_msp = multilist_sublist_next(mls, msp);
663 multilist_sublist_unlock(mls);
664 if (txg >
665 msp->ms_selected_txg + metaslab_unload_delay &&
666 gethrtime() > msp->ms_selected_time +
667 (uint64_t)MSEC2NSEC(metaslab_unload_delay_ms)) {
668 metaslab_evict(msp, txg);
669 } else {
670 /*
671 * Once we've hit a metaslab selected too
672 * recently to evict, we're done evicting for
673 * now.
674 */
675 mutex_exit(&msp->ms_lock);
676 break;
677 }
678 mutex_exit(&msp->ms_lock);
679 msp = next_msp;
680 }
681 }
682 }
683
684 static int
metaslab_compare(const void * x1,const void * x2)685 metaslab_compare(const void *x1, const void *x2)
686 {
687 const metaslab_t *m1 = (const metaslab_t *)x1;
688 const metaslab_t *m2 = (const metaslab_t *)x2;
689
690 int sort1 = 0;
691 int sort2 = 0;
692 if (m1->ms_allocator != -1 && m1->ms_primary)
693 sort1 = 1;
694 else if (m1->ms_allocator != -1 && !m1->ms_primary)
695 sort1 = 2;
696 if (m2->ms_allocator != -1 && m2->ms_primary)
697 sort2 = 1;
698 else if (m2->ms_allocator != -1 && !m2->ms_primary)
699 sort2 = 2;
700
701 /*
702 * Sort inactive metaslabs first, then primaries, then secondaries. When
703 * selecting a metaslab to allocate from, an allocator first tries its
704 * primary, then secondary active metaslab. If it doesn't have active
705 * metaslabs, or can't allocate from them, it searches for an inactive
706 * metaslab to activate. If it can't find a suitable one, it will steal
707 * a primary or secondary metaslab from another allocator.
708 */
709 if (sort1 < sort2)
710 return (-1);
711 if (sort1 > sort2)
712 return (1);
713
714 int cmp = TREE_CMP(m2->ms_weight, m1->ms_weight);
715 if (likely(cmp))
716 return (cmp);
717
718 IMPLY(TREE_CMP(m1->ms_start, m2->ms_start) == 0, m1 == m2);
719
720 return (TREE_CMP(m1->ms_start, m2->ms_start));
721 }
722
723 /*
724 * ==========================================================================
725 * Metaslab groups
726 * ==========================================================================
727 */
728 /*
729 * Update the allocatable flag and the metaslab group's capacity.
730 * The allocatable flag is set to true if the capacity is below
731 * the zfs_mg_noalloc_threshold or has a fragmentation value that is
732 * greater than zfs_mg_fragmentation_threshold. If a metaslab group
733 * transitions from allocatable to non-allocatable or vice versa then the
734 * metaslab group's class is updated to reflect the transition.
735 */
736 static void
metaslab_group_alloc_update(metaslab_group_t * mg)737 metaslab_group_alloc_update(metaslab_group_t *mg)
738 {
739 vdev_t *vd = mg->mg_vd;
740 metaslab_class_t *mc = mg->mg_class;
741 vdev_stat_t *vs = &vd->vdev_stat;
742 boolean_t was_allocatable;
743 boolean_t was_initialized;
744
745 ASSERT(vd == vd->vdev_top);
746 ASSERT3U(spa_config_held(mc->mc_spa, SCL_ALLOC, RW_READER), ==,
747 SCL_ALLOC);
748
749 mutex_enter(&mg->mg_lock);
750 was_allocatable = mg->mg_allocatable;
751 was_initialized = mg->mg_initialized;
752
753 mg->mg_free_capacity = ((vs->vs_space - vs->vs_alloc) * 100) /
754 (vs->vs_space + 1);
755
756 mutex_enter(&mc->mc_lock);
757
758 /*
759 * If the metaslab group was just added then it won't
760 * have any space until we finish syncing out this txg.
761 * At that point we will consider it initialized and available
762 * for allocations. We also don't consider non-activated
763 * metaslab groups (e.g. vdevs that are in the middle of being removed)
764 * to be initialized, because they can't be used for allocation.
765 */
766 mg->mg_initialized = metaslab_group_initialized(mg);
767 if (!was_initialized && mg->mg_initialized) {
768 mc->mc_groups++;
769 } else if (was_initialized && !mg->mg_initialized) {
770 ASSERT3U(mc->mc_groups, >, 0);
771 mc->mc_groups--;
772 }
773 if (mg->mg_initialized)
774 mg->mg_no_free_space = B_FALSE;
775
776 /*
777 * A metaslab group is considered allocatable if it has plenty
778 * of free space or is not heavily fragmented. We only take
779 * fragmentation into account if the metaslab group has a valid
780 * fragmentation metric (i.e. a value between 0 and 100).
781 */
782 mg->mg_allocatable = (mg->mg_activation_count > 0 &&
783 mg->mg_free_capacity > zfs_mg_noalloc_threshold &&
784 (mg->mg_fragmentation == ZFS_FRAG_INVALID ||
785 mg->mg_fragmentation <= zfs_mg_fragmentation_threshold));
786
787 /*
788 * The mc_alloc_groups maintains a count of the number of
789 * groups in this metaslab class that are still above the
790 * zfs_mg_noalloc_threshold. This is used by the allocating
791 * threads to determine if they should avoid allocations to
792 * a given group. The allocator will avoid allocations to a group
793 * if that group has reached or is below the zfs_mg_noalloc_threshold
794 * and there are still other groups that are above the threshold.
795 * When a group transitions from allocatable to non-allocatable or
796 * vice versa we update the metaslab class to reflect that change.
797 * When the mc_alloc_groups value drops to 0 that means that all
798 * groups have reached the zfs_mg_noalloc_threshold making all groups
799 * eligible for allocations. This effectively means that all devices
800 * are balanced again.
801 */
802 if (was_allocatable && !mg->mg_allocatable)
803 mc->mc_alloc_groups--;
804 else if (!was_allocatable && mg->mg_allocatable)
805 mc->mc_alloc_groups++;
806 mutex_exit(&mc->mc_lock);
807
808 mutex_exit(&mg->mg_lock);
809 }
810
811 int
metaslab_sort_by_flushed(const void * va,const void * vb)812 metaslab_sort_by_flushed(const void *va, const void *vb)
813 {
814 const metaslab_t *a = va;
815 const metaslab_t *b = vb;
816
817 int cmp = TREE_CMP(a->ms_unflushed_txg, b->ms_unflushed_txg);
818 if (likely(cmp))
819 return (cmp);
820
821 uint64_t a_vdev_id = a->ms_group->mg_vd->vdev_id;
822 uint64_t b_vdev_id = b->ms_group->mg_vd->vdev_id;
823 cmp = TREE_CMP(a_vdev_id, b_vdev_id);
824 if (cmp)
825 return (cmp);
826
827 return (TREE_CMP(a->ms_id, b->ms_id));
828 }
829
830 metaslab_group_t *
metaslab_group_create(metaslab_class_t * mc,vdev_t * vd,int allocators)831 metaslab_group_create(metaslab_class_t *mc, vdev_t *vd, int allocators)
832 {
833 metaslab_group_t *mg;
834
835 mg = kmem_zalloc(offsetof(metaslab_group_t,
836 mg_allocator[allocators]), KM_SLEEP);
837 mutex_init(&mg->mg_lock, NULL, MUTEX_DEFAULT, NULL);
838 mutex_init(&mg->mg_ms_disabled_lock, NULL, MUTEX_DEFAULT, NULL);
839 cv_init(&mg->mg_ms_disabled_cv, NULL, CV_DEFAULT, NULL);
840 avl_create(&mg->mg_metaslab_tree, metaslab_compare,
841 sizeof (metaslab_t), offsetof(metaslab_t, ms_group_node));
842 mg->mg_vd = vd;
843 mg->mg_class = mc;
844 mg->mg_activation_count = 0;
845 mg->mg_initialized = B_FALSE;
846 mg->mg_no_free_space = B_TRUE;
847 mg->mg_allocators = allocators;
848
849 for (int i = 0; i < allocators; i++) {
850 metaslab_group_allocator_t *mga = &mg->mg_allocator[i];
851 zfs_refcount_create_tracked(&mga->mga_alloc_queue_depth);
852 }
853
854 mg->mg_taskq = taskq_create("metaslab_group_taskq", metaslab_load_pct,
855 maxclsyspri, 10, INT_MAX, TASKQ_THREADS_CPU_PCT | TASKQ_DYNAMIC);
856
857 return (mg);
858 }
859
860 void
metaslab_group_destroy(metaslab_group_t * mg)861 metaslab_group_destroy(metaslab_group_t *mg)
862 {
863 ASSERT(mg->mg_prev == NULL);
864 ASSERT(mg->mg_next == NULL);
865 /*
866 * We may have gone below zero with the activation count
867 * either because we never activated in the first place or
868 * because we're done, and possibly removing the vdev.
869 */
870 ASSERT(mg->mg_activation_count <= 0);
871
872 taskq_destroy(mg->mg_taskq);
873 avl_destroy(&mg->mg_metaslab_tree);
874 mutex_destroy(&mg->mg_lock);
875 mutex_destroy(&mg->mg_ms_disabled_lock);
876 cv_destroy(&mg->mg_ms_disabled_cv);
877
878 for (int i = 0; i < mg->mg_allocators; i++) {
879 metaslab_group_allocator_t *mga = &mg->mg_allocator[i];
880 zfs_refcount_destroy(&mga->mga_alloc_queue_depth);
881 }
882 kmem_free(mg, offsetof(metaslab_group_t,
883 mg_allocator[mg->mg_allocators]));
884 }
885
886 void
metaslab_group_activate(metaslab_group_t * mg)887 metaslab_group_activate(metaslab_group_t *mg)
888 {
889 metaslab_class_t *mc = mg->mg_class;
890 spa_t *spa = mc->mc_spa;
891 metaslab_group_t *mgprev, *mgnext;
892
893 ASSERT3U(spa_config_held(spa, SCL_ALLOC, RW_WRITER), !=, 0);
894
895 ASSERT(mg->mg_prev == NULL);
896 ASSERT(mg->mg_next == NULL);
897 ASSERT(mg->mg_activation_count <= 0);
898
899 if (++mg->mg_activation_count <= 0)
900 return;
901
902 mg->mg_aliquot = metaslab_aliquot * MAX(1, mg->mg_vd->vdev_children);
903 metaslab_group_alloc_update(mg);
904
905 if ((mgprev = mc->mc_allocator[0].mca_rotor) == NULL) {
906 mg->mg_prev = mg;
907 mg->mg_next = mg;
908 } else {
909 mgnext = mgprev->mg_next;
910 mg->mg_prev = mgprev;
911 mg->mg_next = mgnext;
912 mgprev->mg_next = mg;
913 mgnext->mg_prev = mg;
914 }
915 for (int i = 0; i < spa->spa_alloc_count; i++) {
916 mc->mc_allocator[i].mca_rotor = mg;
917 mg = mg->mg_next;
918 }
919 }
920
921 /*
922 * Passivate a metaslab group and remove it from the allocation rotor.
923 * Callers must hold both the SCL_ALLOC and SCL_ZIO lock prior to passivating
924 * a metaslab group. This function will momentarily drop spa_config_locks
925 * that are lower than the SCL_ALLOC lock (see comment below).
926 */
927 void
metaslab_group_passivate(metaslab_group_t * mg)928 metaslab_group_passivate(metaslab_group_t *mg)
929 {
930 metaslab_class_t *mc = mg->mg_class;
931 spa_t *spa = mc->mc_spa;
932 metaslab_group_t *mgprev, *mgnext;
933 int locks = spa_config_held(spa, SCL_ALL, RW_WRITER);
934
935 ASSERT3U(spa_config_held(spa, SCL_ALLOC | SCL_ZIO, RW_WRITER), ==,
936 (SCL_ALLOC | SCL_ZIO));
937
938 if (--mg->mg_activation_count != 0) {
939 for (int i = 0; i < spa->spa_alloc_count; i++)
940 ASSERT(mc->mc_allocator[i].mca_rotor != mg);
941 ASSERT(mg->mg_prev == NULL);
942 ASSERT(mg->mg_next == NULL);
943 ASSERT(mg->mg_activation_count < 0);
944 return;
945 }
946
947 /*
948 * The spa_config_lock is an array of rwlocks, ordered as
949 * follows (from highest to lowest):
950 * SCL_CONFIG > SCL_STATE > SCL_L2ARC > SCL_ALLOC >
951 * SCL_ZIO > SCL_FREE > SCL_VDEV
952 * (For more information about the spa_config_lock see spa_misc.c)
953 * The higher the lock, the broader its coverage. When we passivate
954 * a metaslab group, we must hold both the SCL_ALLOC and the SCL_ZIO
955 * config locks. However, the metaslab group's taskq might be trying
956 * to preload metaslabs so we must drop the SCL_ZIO lock and any
957 * lower locks to allow the I/O to complete. At a minimum,
958 * we continue to hold the SCL_ALLOC lock, which prevents any future
959 * allocations from taking place and any changes to the vdev tree.
960 */
961 spa_config_exit(spa, locks & ~(SCL_ZIO - 1), spa);
962 taskq_wait_outstanding(mg->mg_taskq, 0);
963 spa_config_enter(spa, locks & ~(SCL_ZIO - 1), spa, RW_WRITER);
964 metaslab_group_alloc_update(mg);
965 for (int i = 0; i < mg->mg_allocators; i++) {
966 metaslab_group_allocator_t *mga = &mg->mg_allocator[i];
967 metaslab_t *msp = mga->mga_primary;
968 if (msp != NULL) {
969 mutex_enter(&msp->ms_lock);
970 metaslab_passivate(msp,
971 metaslab_weight_from_range_tree(msp));
972 mutex_exit(&msp->ms_lock);
973 }
974 msp = mga->mga_secondary;
975 if (msp != NULL) {
976 mutex_enter(&msp->ms_lock);
977 metaslab_passivate(msp,
978 metaslab_weight_from_range_tree(msp));
979 mutex_exit(&msp->ms_lock);
980 }
981 }
982
983 mgprev = mg->mg_prev;
984 mgnext = mg->mg_next;
985
986 if (mg == mgnext) {
987 mgnext = NULL;
988 } else {
989 mgprev->mg_next = mgnext;
990 mgnext->mg_prev = mgprev;
991 }
992 for (int i = 0; i < spa->spa_alloc_count; i++) {
993 if (mc->mc_allocator[i].mca_rotor == mg)
994 mc->mc_allocator[i].mca_rotor = mgnext;
995 }
996
997 mg->mg_prev = NULL;
998 mg->mg_next = NULL;
999 }
1000
1001 boolean_t
metaslab_group_initialized(metaslab_group_t * mg)1002 metaslab_group_initialized(metaslab_group_t *mg)
1003 {
1004 vdev_t *vd = mg->mg_vd;
1005 vdev_stat_t *vs = &vd->vdev_stat;
1006
1007 return (vs->vs_space != 0 && mg->mg_activation_count > 0);
1008 }
1009
1010 uint64_t
metaslab_group_get_space(metaslab_group_t * mg)1011 metaslab_group_get_space(metaslab_group_t *mg)
1012 {
1013 /*
1014 * Note that the number of nodes in mg_metaslab_tree may be one less
1015 * than vdev_ms_count, due to the embedded log metaslab.
1016 */
1017 mutex_enter(&mg->mg_lock);
1018 uint64_t ms_count = avl_numnodes(&mg->mg_metaslab_tree);
1019 mutex_exit(&mg->mg_lock);
1020 return ((1ULL << mg->mg_vd->vdev_ms_shift) * ms_count);
1021 }
1022
1023 void
metaslab_group_histogram_verify(metaslab_group_t * mg)1024 metaslab_group_histogram_verify(metaslab_group_t *mg)
1025 {
1026 uint64_t *mg_hist;
1027 avl_tree_t *t = &mg->mg_metaslab_tree;
1028 uint64_t ashift = mg->mg_vd->vdev_ashift;
1029
1030 if ((zfs_flags & ZFS_DEBUG_HISTOGRAM_VERIFY) == 0)
1031 return;
1032
1033 mg_hist = kmem_zalloc(sizeof (uint64_t) * RANGE_TREE_HISTOGRAM_SIZE,
1034 KM_SLEEP);
1035
1036 ASSERT3U(RANGE_TREE_HISTOGRAM_SIZE, >=,
1037 SPACE_MAP_HISTOGRAM_SIZE + ashift);
1038
1039 mutex_enter(&mg->mg_lock);
1040 for (metaslab_t *msp = avl_first(t);
1041 msp != NULL; msp = AVL_NEXT(t, msp)) {
1042 VERIFY3P(msp->ms_group, ==, mg);
1043 /* skip if not active */
1044 if (msp->ms_sm == NULL)
1045 continue;
1046
1047 for (int i = 0; i < SPACE_MAP_HISTOGRAM_SIZE; i++) {
1048 mg_hist[i + ashift] +=
1049 msp->ms_sm->sm_phys->smp_histogram[i];
1050 }
1051 }
1052
1053 for (int i = 0; i < RANGE_TREE_HISTOGRAM_SIZE; i ++)
1054 VERIFY3U(mg_hist[i], ==, mg->mg_histogram[i]);
1055
1056 mutex_exit(&mg->mg_lock);
1057
1058 kmem_free(mg_hist, sizeof (uint64_t) * RANGE_TREE_HISTOGRAM_SIZE);
1059 }
1060
1061 static void
metaslab_group_histogram_add(metaslab_group_t * mg,metaslab_t * msp)1062 metaslab_group_histogram_add(metaslab_group_t *mg, metaslab_t *msp)
1063 {
1064 metaslab_class_t *mc = mg->mg_class;
1065 uint64_t ashift = mg->mg_vd->vdev_ashift;
1066
1067 ASSERT(MUTEX_HELD(&msp->ms_lock));
1068 if (msp->ms_sm == NULL)
1069 return;
1070
1071 mutex_enter(&mg->mg_lock);
1072 mutex_enter(&mc->mc_lock);
1073 for (int i = 0; i < SPACE_MAP_HISTOGRAM_SIZE; i++) {
1074 IMPLY(mg == mg->mg_vd->vdev_log_mg,
1075 mc == spa_embedded_log_class(mg->mg_vd->vdev_spa));
1076 mg->mg_histogram[i + ashift] +=
1077 msp->ms_sm->sm_phys->smp_histogram[i];
1078 mc->mc_histogram[i + ashift] +=
1079 msp->ms_sm->sm_phys->smp_histogram[i];
1080 }
1081 mutex_exit(&mc->mc_lock);
1082 mutex_exit(&mg->mg_lock);
1083 }
1084
1085 void
metaslab_group_histogram_remove(metaslab_group_t * mg,metaslab_t * msp)1086 metaslab_group_histogram_remove(metaslab_group_t *mg, metaslab_t *msp)
1087 {
1088 metaslab_class_t *mc = mg->mg_class;
1089 uint64_t ashift = mg->mg_vd->vdev_ashift;
1090
1091 ASSERT(MUTEX_HELD(&msp->ms_lock));
1092 if (msp->ms_sm == NULL)
1093 return;
1094
1095 mutex_enter(&mg->mg_lock);
1096 mutex_enter(&mc->mc_lock);
1097 for (int i = 0; i < SPACE_MAP_HISTOGRAM_SIZE; i++) {
1098 ASSERT3U(mg->mg_histogram[i + ashift], >=,
1099 msp->ms_sm->sm_phys->smp_histogram[i]);
1100 ASSERT3U(mc->mc_histogram[i + ashift], >=,
1101 msp->ms_sm->sm_phys->smp_histogram[i]);
1102 IMPLY(mg == mg->mg_vd->vdev_log_mg,
1103 mc == spa_embedded_log_class(mg->mg_vd->vdev_spa));
1104
1105 mg->mg_histogram[i + ashift] -=
1106 msp->ms_sm->sm_phys->smp_histogram[i];
1107 mc->mc_histogram[i + ashift] -=
1108 msp->ms_sm->sm_phys->smp_histogram[i];
1109 }
1110 mutex_exit(&mc->mc_lock);
1111 mutex_exit(&mg->mg_lock);
1112 }
1113
1114 static void
metaslab_group_add(metaslab_group_t * mg,metaslab_t * msp)1115 metaslab_group_add(metaslab_group_t *mg, metaslab_t *msp)
1116 {
1117 ASSERT(msp->ms_group == NULL);
1118 mutex_enter(&mg->mg_lock);
1119 msp->ms_group = mg;
1120 msp->ms_weight = 0;
1121 avl_add(&mg->mg_metaslab_tree, msp);
1122 mutex_exit(&mg->mg_lock);
1123
1124 mutex_enter(&msp->ms_lock);
1125 metaslab_group_histogram_add(mg, msp);
1126 mutex_exit(&msp->ms_lock);
1127 }
1128
1129 static void
metaslab_group_remove(metaslab_group_t * mg,metaslab_t * msp)1130 metaslab_group_remove(metaslab_group_t *mg, metaslab_t *msp)
1131 {
1132 mutex_enter(&msp->ms_lock);
1133 metaslab_group_histogram_remove(mg, msp);
1134 mutex_exit(&msp->ms_lock);
1135
1136 mutex_enter(&mg->mg_lock);
1137 ASSERT(msp->ms_group == mg);
1138 avl_remove(&mg->mg_metaslab_tree, msp);
1139
1140 metaslab_class_t *mc = msp->ms_group->mg_class;
1141 multilist_sublist_t *mls =
1142 multilist_sublist_lock_obj(&mc->mc_metaslab_txg_list, msp);
1143 if (multilist_link_active(&msp->ms_class_txg_node))
1144 multilist_sublist_remove(mls, msp);
1145 multilist_sublist_unlock(mls);
1146
1147 msp->ms_group = NULL;
1148 mutex_exit(&mg->mg_lock);
1149 }
1150
1151 static void
metaslab_group_sort_impl(metaslab_group_t * mg,metaslab_t * msp,uint64_t weight)1152 metaslab_group_sort_impl(metaslab_group_t *mg, metaslab_t *msp, uint64_t weight)
1153 {
1154 ASSERT(MUTEX_HELD(&msp->ms_lock));
1155 ASSERT(MUTEX_HELD(&mg->mg_lock));
1156 ASSERT(msp->ms_group == mg);
1157
1158 avl_remove(&mg->mg_metaslab_tree, msp);
1159 msp->ms_weight = weight;
1160 avl_add(&mg->mg_metaslab_tree, msp);
1161
1162 }
1163
1164 static void
metaslab_group_sort(metaslab_group_t * mg,metaslab_t * msp,uint64_t weight)1165 metaslab_group_sort(metaslab_group_t *mg, metaslab_t *msp, uint64_t weight)
1166 {
1167 /*
1168 * Although in principle the weight can be any value, in
1169 * practice we do not use values in the range [1, 511].
1170 */
1171 ASSERT(weight >= SPA_MINBLOCKSIZE || weight == 0);
1172 ASSERT(MUTEX_HELD(&msp->ms_lock));
1173
1174 mutex_enter(&mg->mg_lock);
1175 metaslab_group_sort_impl(mg, msp, weight);
1176 mutex_exit(&mg->mg_lock);
1177 }
1178
1179 /*
1180 * Calculate the fragmentation for a given metaslab group. We can use
1181 * a simple average here since all metaslabs within the group must have
1182 * the same size. The return value will be a value between 0 and 100
1183 * (inclusive), or ZFS_FRAG_INVALID if less than half of the metaslab in this
1184 * group have a fragmentation metric.
1185 */
1186 uint64_t
metaslab_group_fragmentation(metaslab_group_t * mg)1187 metaslab_group_fragmentation(metaslab_group_t *mg)
1188 {
1189 vdev_t *vd = mg->mg_vd;
1190 uint64_t fragmentation = 0;
1191 uint64_t valid_ms = 0;
1192
1193 for (int m = 0; m < vd->vdev_ms_count; m++) {
1194 metaslab_t *msp = vd->vdev_ms[m];
1195
1196 if (msp->ms_fragmentation == ZFS_FRAG_INVALID)
1197 continue;
1198 if (msp->ms_group != mg)
1199 continue;
1200
1201 valid_ms++;
1202 fragmentation += msp->ms_fragmentation;
1203 }
1204
1205 if (valid_ms <= mg->mg_vd->vdev_ms_count / 2)
1206 return (ZFS_FRAG_INVALID);
1207
1208 fragmentation /= valid_ms;
1209 ASSERT3U(fragmentation, <=, 100);
1210 return (fragmentation);
1211 }
1212
1213 /*
1214 * Determine if a given metaslab group should skip allocations. A metaslab
1215 * group should avoid allocations if its free capacity is less than the
1216 * zfs_mg_noalloc_threshold or its fragmentation metric is greater than
1217 * zfs_mg_fragmentation_threshold and there is at least one metaslab group
1218 * that can still handle allocations. If the allocation throttle is enabled
1219 * then we skip allocations to devices that have reached their maximum
1220 * allocation queue depth unless the selected metaslab group is the only
1221 * eligible group remaining.
1222 */
1223 static boolean_t
metaslab_group_allocatable(metaslab_group_t * mg,metaslab_group_t * rotor,uint64_t psize,int allocator,int d)1224 metaslab_group_allocatable(metaslab_group_t *mg, metaslab_group_t *rotor,
1225 uint64_t psize, int allocator, int d)
1226 {
1227 spa_t *spa = mg->mg_vd->vdev_spa;
1228 metaslab_class_t *mc = mg->mg_class;
1229
1230 /*
1231 * We can only consider skipping this metaslab group if it's
1232 * in the normal metaslab class and there are other metaslab
1233 * groups to select from. Otherwise, we always consider it eligible
1234 * for allocations.
1235 */
1236 if ((mc != spa_normal_class(spa) &&
1237 mc != spa_special_class(spa) &&
1238 mc != spa_dedup_class(spa)) ||
1239 mc->mc_groups <= 1)
1240 return (B_TRUE);
1241
1242 /*
1243 * If the metaslab group's mg_allocatable flag is set (see comments
1244 * in metaslab_group_alloc_update() for more information) and
1245 * the allocation throttle is disabled then allow allocations to this
1246 * device. However, if the allocation throttle is enabled then
1247 * check if we have reached our allocation limit (mga_alloc_queue_depth)
1248 * to determine if we should allow allocations to this metaslab group.
1249 * If all metaslab groups are no longer considered allocatable
1250 * (mc_alloc_groups == 0) or we're trying to allocate the smallest
1251 * gang block size then we allow allocations on this metaslab group
1252 * regardless of the mg_allocatable or throttle settings.
1253 */
1254 if (mg->mg_allocatable) {
1255 metaslab_group_allocator_t *mga = &mg->mg_allocator[allocator];
1256 int64_t qdepth;
1257 uint64_t qmax = mga->mga_cur_max_alloc_queue_depth;
1258
1259 if (!mc->mc_alloc_throttle_enabled)
1260 return (B_TRUE);
1261
1262 /*
1263 * If this metaslab group does not have any free space, then
1264 * there is no point in looking further.
1265 */
1266 if (mg->mg_no_free_space)
1267 return (B_FALSE);
1268
1269 /*
1270 * Relax allocation throttling for ditto blocks. Due to
1271 * random imbalances in allocation it tends to push copies
1272 * to one vdev, that looks a bit better at the moment.
1273 */
1274 qmax = qmax * (4 + d) / 4;
1275
1276 qdepth = zfs_refcount_count(&mga->mga_alloc_queue_depth);
1277
1278 /*
1279 * If this metaslab group is below its qmax or it's
1280 * the only allocatable metasable group, then attempt
1281 * to allocate from it.
1282 */
1283 if (qdepth < qmax || mc->mc_alloc_groups == 1)
1284 return (B_TRUE);
1285 ASSERT3U(mc->mc_alloc_groups, >, 1);
1286
1287 /*
1288 * Since this metaslab group is at or over its qmax, we
1289 * need to determine if there are metaslab groups after this
1290 * one that might be able to handle this allocation. This is
1291 * racy since we can't hold the locks for all metaslab
1292 * groups at the same time when we make this check.
1293 */
1294 for (metaslab_group_t *mgp = mg->mg_next;
1295 mgp != rotor; mgp = mgp->mg_next) {
1296 metaslab_group_allocator_t *mgap =
1297 &mgp->mg_allocator[allocator];
1298 qmax = mgap->mga_cur_max_alloc_queue_depth;
1299 qmax = qmax * (4 + d) / 4;
1300 qdepth =
1301 zfs_refcount_count(&mgap->mga_alloc_queue_depth);
1302
1303 /*
1304 * If there is another metaslab group that
1305 * might be able to handle the allocation, then
1306 * we return false so that we skip this group.
1307 */
1308 if (qdepth < qmax && !mgp->mg_no_free_space)
1309 return (B_FALSE);
1310 }
1311
1312 /*
1313 * We didn't find another group to handle the allocation
1314 * so we can't skip this metaslab group even though
1315 * we are at or over our qmax.
1316 */
1317 return (B_TRUE);
1318
1319 } else if (mc->mc_alloc_groups == 0 || psize == SPA_MINBLOCKSIZE) {
1320 return (B_TRUE);
1321 }
1322 return (B_FALSE);
1323 }
1324
1325 /*
1326 * ==========================================================================
1327 * Range tree callbacks
1328 * ==========================================================================
1329 */
1330
1331 /*
1332 * Comparison function for the private size-ordered tree using 32-bit
1333 * ranges. Tree is sorted by size, larger sizes at the end of the tree.
1334 */
1335 static int
metaslab_rangesize32_compare(const void * x1,const void * x2)1336 metaslab_rangesize32_compare(const void *x1, const void *x2)
1337 {
1338 const range_seg32_t *r1 = x1;
1339 const range_seg32_t *r2 = x2;
1340
1341 uint64_t rs_size1 = r1->rs_end - r1->rs_start;
1342 uint64_t rs_size2 = r2->rs_end - r2->rs_start;
1343
1344 int cmp = TREE_CMP(rs_size1, rs_size2);
1345 if (likely(cmp))
1346 return (cmp);
1347
1348 return (TREE_CMP(r1->rs_start, r2->rs_start));
1349 }
1350
1351 /*
1352 * Comparison function for the private size-ordered tree using 64-bit
1353 * ranges. Tree is sorted by size, larger sizes at the end of the tree.
1354 */
1355 static int
metaslab_rangesize64_compare(const void * x1,const void * x2)1356 metaslab_rangesize64_compare(const void *x1, const void *x2)
1357 {
1358 const range_seg64_t *r1 = x1;
1359 const range_seg64_t *r2 = x2;
1360
1361 uint64_t rs_size1 = r1->rs_end - r1->rs_start;
1362 uint64_t rs_size2 = r2->rs_end - r2->rs_start;
1363
1364 int cmp = TREE_CMP(rs_size1, rs_size2);
1365 if (likely(cmp))
1366 return (cmp);
1367
1368 return (TREE_CMP(r1->rs_start, r2->rs_start));
1369 }
1370 typedef struct metaslab_rt_arg {
1371 zfs_btree_t *mra_bt;
1372 uint32_t mra_floor_shift;
1373 } metaslab_rt_arg_t;
1374
1375 struct mssa_arg {
1376 range_tree_t *rt;
1377 metaslab_rt_arg_t *mra;
1378 };
1379
1380 static void
metaslab_size_sorted_add(void * arg,uint64_t start,uint64_t size)1381 metaslab_size_sorted_add(void *arg, uint64_t start, uint64_t size)
1382 {
1383 struct mssa_arg *mssap = arg;
1384 range_tree_t *rt = mssap->rt;
1385 metaslab_rt_arg_t *mrap = mssap->mra;
1386 range_seg_max_t seg = {0};
1387 rs_set_start(&seg, rt, start);
1388 rs_set_end(&seg, rt, start + size);
1389 metaslab_rt_add(rt, &seg, mrap);
1390 }
1391
1392 static void
metaslab_size_tree_full_load(range_tree_t * rt)1393 metaslab_size_tree_full_load(range_tree_t *rt)
1394 {
1395 metaslab_rt_arg_t *mrap = rt->rt_arg;
1396 METASLABSTAT_BUMP(metaslabstat_reload_tree);
1397 ASSERT0(zfs_btree_numnodes(mrap->mra_bt));
1398 mrap->mra_floor_shift = 0;
1399 struct mssa_arg arg = {0};
1400 arg.rt = rt;
1401 arg.mra = mrap;
1402 range_tree_walk(rt, metaslab_size_sorted_add, &arg);
1403 }
1404
1405 /*
1406 * Create any block allocator specific components. The current allocators
1407 * rely on using both a size-ordered range_tree_t and an array of uint64_t's.
1408 */
1409 static void
metaslab_rt_create(range_tree_t * rt,void * arg)1410 metaslab_rt_create(range_tree_t *rt, void *arg)
1411 {
1412 metaslab_rt_arg_t *mrap = arg;
1413 zfs_btree_t *size_tree = mrap->mra_bt;
1414
1415 size_t size;
1416 int (*compare) (const void *, const void *);
1417 switch (rt->rt_type) {
1418 case RANGE_SEG32:
1419 size = sizeof (range_seg32_t);
1420 compare = metaslab_rangesize32_compare;
1421 break;
1422 case RANGE_SEG64:
1423 size = sizeof (range_seg64_t);
1424 compare = metaslab_rangesize64_compare;
1425 break;
1426 default:
1427 panic("Invalid range seg type %d", rt->rt_type);
1428 }
1429 zfs_btree_create(size_tree, compare, size);
1430 mrap->mra_floor_shift = metaslab_by_size_min_shift;
1431 }
1432
1433 static void
metaslab_rt_destroy(range_tree_t * rt,void * arg)1434 metaslab_rt_destroy(range_tree_t *rt, void *arg)
1435 {
1436 (void) rt;
1437 metaslab_rt_arg_t *mrap = arg;
1438 zfs_btree_t *size_tree = mrap->mra_bt;
1439
1440 zfs_btree_destroy(size_tree);
1441 kmem_free(mrap, sizeof (*mrap));
1442 }
1443
1444 static void
metaslab_rt_add(range_tree_t * rt,range_seg_t * rs,void * arg)1445 metaslab_rt_add(range_tree_t *rt, range_seg_t *rs, void *arg)
1446 {
1447 metaslab_rt_arg_t *mrap = arg;
1448 zfs_btree_t *size_tree = mrap->mra_bt;
1449
1450 if (rs_get_end(rs, rt) - rs_get_start(rs, rt) <
1451 (1 << mrap->mra_floor_shift))
1452 return;
1453
1454 zfs_btree_add(size_tree, rs);
1455 }
1456
1457 static void
metaslab_rt_remove(range_tree_t * rt,range_seg_t * rs,void * arg)1458 metaslab_rt_remove(range_tree_t *rt, range_seg_t *rs, void *arg)
1459 {
1460 metaslab_rt_arg_t *mrap = arg;
1461 zfs_btree_t *size_tree = mrap->mra_bt;
1462
1463 if (rs_get_end(rs, rt) - rs_get_start(rs, rt) < (1 <<
1464 mrap->mra_floor_shift))
1465 return;
1466
1467 zfs_btree_remove(size_tree, rs);
1468 }
1469
1470 static void
metaslab_rt_vacate(range_tree_t * rt,void * arg)1471 metaslab_rt_vacate(range_tree_t *rt, void *arg)
1472 {
1473 metaslab_rt_arg_t *mrap = arg;
1474 zfs_btree_t *size_tree = mrap->mra_bt;
1475 zfs_btree_clear(size_tree);
1476 zfs_btree_destroy(size_tree);
1477
1478 metaslab_rt_create(rt, arg);
1479 }
1480
1481 static range_tree_ops_t metaslab_rt_ops = {
1482 .rtop_create = metaslab_rt_create,
1483 .rtop_destroy = metaslab_rt_destroy,
1484 .rtop_add = metaslab_rt_add,
1485 .rtop_remove = metaslab_rt_remove,
1486 .rtop_vacate = metaslab_rt_vacate
1487 };
1488
1489 /*
1490 * ==========================================================================
1491 * Common allocator routines
1492 * ==========================================================================
1493 */
1494
1495 /*
1496 * Return the maximum contiguous segment within the metaslab.
1497 */
1498 uint64_t
metaslab_largest_allocatable(metaslab_t * msp)1499 metaslab_largest_allocatable(metaslab_t *msp)
1500 {
1501 zfs_btree_t *t = &msp->ms_allocatable_by_size;
1502 range_seg_t *rs;
1503
1504 if (t == NULL)
1505 return (0);
1506 if (zfs_btree_numnodes(t) == 0)
1507 metaslab_size_tree_full_load(msp->ms_allocatable);
1508
1509 rs = zfs_btree_last(t, NULL);
1510 if (rs == NULL)
1511 return (0);
1512
1513 return (rs_get_end(rs, msp->ms_allocatable) - rs_get_start(rs,
1514 msp->ms_allocatable));
1515 }
1516
1517 /*
1518 * Return the maximum contiguous segment within the unflushed frees of this
1519 * metaslab.
1520 */
1521 static uint64_t
metaslab_largest_unflushed_free(metaslab_t * msp)1522 metaslab_largest_unflushed_free(metaslab_t *msp)
1523 {
1524 ASSERT(MUTEX_HELD(&msp->ms_lock));
1525
1526 if (msp->ms_unflushed_frees == NULL)
1527 return (0);
1528
1529 if (zfs_btree_numnodes(&msp->ms_unflushed_frees_by_size) == 0)
1530 metaslab_size_tree_full_load(msp->ms_unflushed_frees);
1531 range_seg_t *rs = zfs_btree_last(&msp->ms_unflushed_frees_by_size,
1532 NULL);
1533 if (rs == NULL)
1534 return (0);
1535
1536 /*
1537 * When a range is freed from the metaslab, that range is added to
1538 * both the unflushed frees and the deferred frees. While the block
1539 * will eventually be usable, if the metaslab were loaded the range
1540 * would not be added to the ms_allocatable tree until TXG_DEFER_SIZE
1541 * txgs had passed. As a result, when attempting to estimate an upper
1542 * bound for the largest currently-usable free segment in the
1543 * metaslab, we need to not consider any ranges currently in the defer
1544 * trees. This algorithm approximates the largest available chunk in
1545 * the largest range in the unflushed_frees tree by taking the first
1546 * chunk. While this may be a poor estimate, it should only remain so
1547 * briefly and should eventually self-correct as frees are no longer
1548 * deferred. Similar logic applies to the ms_freed tree. See
1549 * metaslab_load() for more details.
1550 *
1551 * There are two primary sources of inaccuracy in this estimate. Both
1552 * are tolerated for performance reasons. The first source is that we
1553 * only check the largest segment for overlaps. Smaller segments may
1554 * have more favorable overlaps with the other trees, resulting in
1555 * larger usable chunks. Second, we only look at the first chunk in
1556 * the largest segment; there may be other usable chunks in the
1557 * largest segment, but we ignore them.
1558 */
1559 uint64_t rstart = rs_get_start(rs, msp->ms_unflushed_frees);
1560 uint64_t rsize = rs_get_end(rs, msp->ms_unflushed_frees) - rstart;
1561 for (int t = 0; t < TXG_DEFER_SIZE; t++) {
1562 uint64_t start = 0;
1563 uint64_t size = 0;
1564 boolean_t found = range_tree_find_in(msp->ms_defer[t], rstart,
1565 rsize, &start, &size);
1566 if (found) {
1567 if (rstart == start)
1568 return (0);
1569 rsize = start - rstart;
1570 }
1571 }
1572
1573 uint64_t start = 0;
1574 uint64_t size = 0;
1575 boolean_t found = range_tree_find_in(msp->ms_freed, rstart,
1576 rsize, &start, &size);
1577 if (found)
1578 rsize = start - rstart;
1579
1580 return (rsize);
1581 }
1582
1583 static range_seg_t *
metaslab_block_find(zfs_btree_t * t,range_tree_t * rt,uint64_t start,uint64_t size,zfs_btree_index_t * where)1584 metaslab_block_find(zfs_btree_t *t, range_tree_t *rt, uint64_t start,
1585 uint64_t size, zfs_btree_index_t *where)
1586 {
1587 range_seg_t *rs;
1588 range_seg_max_t rsearch;
1589
1590 rs_set_start(&rsearch, rt, start);
1591 rs_set_end(&rsearch, rt, start + size);
1592
1593 rs = zfs_btree_find(t, &rsearch, where);
1594 if (rs == NULL) {
1595 rs = zfs_btree_next(t, where, where);
1596 }
1597
1598 return (rs);
1599 }
1600
1601 #if defined(WITH_DF_BLOCK_ALLOCATOR) || \
1602 defined(WITH_CF_BLOCK_ALLOCATOR)
1603
1604 /*
1605 * This is a helper function that can be used by the allocator to find a
1606 * suitable block to allocate. This will search the specified B-tree looking
1607 * for a block that matches the specified criteria.
1608 */
1609 static uint64_t
metaslab_block_picker(range_tree_t * rt,uint64_t * cursor,uint64_t size,uint64_t max_search)1610 metaslab_block_picker(range_tree_t *rt, uint64_t *cursor, uint64_t size,
1611 uint64_t max_search)
1612 {
1613 if (*cursor == 0)
1614 *cursor = rt->rt_start;
1615 zfs_btree_t *bt = &rt->rt_root;
1616 zfs_btree_index_t where;
1617 range_seg_t *rs = metaslab_block_find(bt, rt, *cursor, size, &where);
1618 uint64_t first_found;
1619 int count_searched = 0;
1620
1621 if (rs != NULL)
1622 first_found = rs_get_start(rs, rt);
1623
1624 while (rs != NULL && (rs_get_start(rs, rt) - first_found <=
1625 max_search || count_searched < metaslab_min_search_count)) {
1626 uint64_t offset = rs_get_start(rs, rt);
1627 if (offset + size <= rs_get_end(rs, rt)) {
1628 *cursor = offset + size;
1629 return (offset);
1630 }
1631 rs = zfs_btree_next(bt, &where, &where);
1632 count_searched++;
1633 }
1634
1635 *cursor = 0;
1636 return (-1ULL);
1637 }
1638 #endif /* WITH_DF/CF_BLOCK_ALLOCATOR */
1639
1640 #if defined(WITH_DF_BLOCK_ALLOCATOR)
1641 /*
1642 * ==========================================================================
1643 * Dynamic Fit (df) block allocator
1644 *
1645 * Search for a free chunk of at least this size, starting from the last
1646 * offset (for this alignment of block) looking for up to
1647 * metaslab_df_max_search bytes (16MB). If a large enough free chunk is not
1648 * found within 16MB, then return a free chunk of exactly the requested size (or
1649 * larger).
1650 *
1651 * If it seems like searching from the last offset will be unproductive, skip
1652 * that and just return a free chunk of exactly the requested size (or larger).
1653 * This is based on metaslab_df_alloc_threshold and metaslab_df_free_pct. This
1654 * mechanism is probably not very useful and may be removed in the future.
1655 *
1656 * The behavior when not searching can be changed to return the largest free
1657 * chunk, instead of a free chunk of exactly the requested size, by setting
1658 * metaslab_df_use_largest_segment.
1659 * ==========================================================================
1660 */
1661 static uint64_t
metaslab_df_alloc(metaslab_t * msp,uint64_t size)1662 metaslab_df_alloc(metaslab_t *msp, uint64_t size)
1663 {
1664 /*
1665 * Find the largest power of 2 block size that evenly divides the
1666 * requested size. This is used to try to allocate blocks with similar
1667 * alignment from the same area of the metaslab (i.e. same cursor
1668 * bucket) but it does not guarantee that other allocations sizes
1669 * may exist in the same region.
1670 */
1671 uint64_t align = size & -size;
1672 uint64_t *cursor = &msp->ms_lbas[highbit64(align) - 1];
1673 range_tree_t *rt = msp->ms_allocatable;
1674 int free_pct = range_tree_space(rt) * 100 / msp->ms_size;
1675 uint64_t offset;
1676
1677 ASSERT(MUTEX_HELD(&msp->ms_lock));
1678
1679 /*
1680 * If we're running low on space, find a segment based on size,
1681 * rather than iterating based on offset.
1682 */
1683 if (metaslab_largest_allocatable(msp) < metaslab_df_alloc_threshold ||
1684 free_pct < metaslab_df_free_pct) {
1685 offset = -1;
1686 } else {
1687 offset = metaslab_block_picker(rt,
1688 cursor, size, metaslab_df_max_search);
1689 }
1690
1691 if (offset == -1) {
1692 range_seg_t *rs;
1693 if (zfs_btree_numnodes(&msp->ms_allocatable_by_size) == 0)
1694 metaslab_size_tree_full_load(msp->ms_allocatable);
1695
1696 if (metaslab_df_use_largest_segment) {
1697 /* use largest free segment */
1698 rs = zfs_btree_last(&msp->ms_allocatable_by_size, NULL);
1699 } else {
1700 zfs_btree_index_t where;
1701 /* use segment of this size, or next largest */
1702 rs = metaslab_block_find(&msp->ms_allocatable_by_size,
1703 rt, msp->ms_start, size, &where);
1704 }
1705 if (rs != NULL && rs_get_start(rs, rt) + size <= rs_get_end(rs,
1706 rt)) {
1707 offset = rs_get_start(rs, rt);
1708 *cursor = offset + size;
1709 }
1710 }
1711
1712 return (offset);
1713 }
1714
1715 static metaslab_ops_t metaslab_df_ops = {
1716 metaslab_df_alloc
1717 };
1718
1719 metaslab_ops_t *zfs_metaslab_ops = &metaslab_df_ops;
1720 #endif /* WITH_DF_BLOCK_ALLOCATOR */
1721
1722 #if defined(WITH_CF_BLOCK_ALLOCATOR)
1723 /*
1724 * ==========================================================================
1725 * Cursor fit block allocator -
1726 * Select the largest region in the metaslab, set the cursor to the beginning
1727 * of the range and the cursor_end to the end of the range. As allocations
1728 * are made advance the cursor. Continue allocating from the cursor until
1729 * the range is exhausted and then find a new range.
1730 * ==========================================================================
1731 */
1732 static uint64_t
metaslab_cf_alloc(metaslab_t * msp,uint64_t size)1733 metaslab_cf_alloc(metaslab_t *msp, uint64_t size)
1734 {
1735 range_tree_t *rt = msp->ms_allocatable;
1736 zfs_btree_t *t = &msp->ms_allocatable_by_size;
1737 uint64_t *cursor = &msp->ms_lbas[0];
1738 uint64_t *cursor_end = &msp->ms_lbas[1];
1739 uint64_t offset = 0;
1740
1741 ASSERT(MUTEX_HELD(&msp->ms_lock));
1742
1743 ASSERT3U(*cursor_end, >=, *cursor);
1744
1745 if ((*cursor + size) > *cursor_end) {
1746 range_seg_t *rs;
1747
1748 if (zfs_btree_numnodes(t) == 0)
1749 metaslab_size_tree_full_load(msp->ms_allocatable);
1750 rs = zfs_btree_last(t, NULL);
1751 if (rs == NULL || (rs_get_end(rs, rt) - rs_get_start(rs, rt)) <
1752 size)
1753 return (-1ULL);
1754
1755 *cursor = rs_get_start(rs, rt);
1756 *cursor_end = rs_get_end(rs, rt);
1757 }
1758
1759 offset = *cursor;
1760 *cursor += size;
1761
1762 return (offset);
1763 }
1764
1765 static metaslab_ops_t metaslab_cf_ops = {
1766 metaslab_cf_alloc
1767 };
1768
1769 metaslab_ops_t *zfs_metaslab_ops = &metaslab_cf_ops;
1770 #endif /* WITH_CF_BLOCK_ALLOCATOR */
1771
1772 #if defined(WITH_NDF_BLOCK_ALLOCATOR)
1773 /*
1774 * ==========================================================================
1775 * New dynamic fit allocator -
1776 * Select a region that is large enough to allocate 2^metaslab_ndf_clump_shift
1777 * contiguous blocks. If no region is found then just use the largest segment
1778 * that remains.
1779 * ==========================================================================
1780 */
1781
1782 /*
1783 * Determines desired number of contiguous blocks (2^metaslab_ndf_clump_shift)
1784 * to request from the allocator.
1785 */
1786 uint64_t metaslab_ndf_clump_shift = 4;
1787
1788 static uint64_t
metaslab_ndf_alloc(metaslab_t * msp,uint64_t size)1789 metaslab_ndf_alloc(metaslab_t *msp, uint64_t size)
1790 {
1791 zfs_btree_t *t = &msp->ms_allocatable->rt_root;
1792 range_tree_t *rt = msp->ms_allocatable;
1793 zfs_btree_index_t where;
1794 range_seg_t *rs;
1795 range_seg_max_t rsearch;
1796 uint64_t hbit = highbit64(size);
1797 uint64_t *cursor = &msp->ms_lbas[hbit - 1];
1798 uint64_t max_size = metaslab_largest_allocatable(msp);
1799
1800 ASSERT(MUTEX_HELD(&msp->ms_lock));
1801
1802 if (max_size < size)
1803 return (-1ULL);
1804
1805 rs_set_start(&rsearch, rt, *cursor);
1806 rs_set_end(&rsearch, rt, *cursor + size);
1807
1808 rs = zfs_btree_find(t, &rsearch, &where);
1809 if (rs == NULL || (rs_get_end(rs, rt) - rs_get_start(rs, rt)) < size) {
1810 t = &msp->ms_allocatable_by_size;
1811
1812 rs_set_start(&rsearch, rt, 0);
1813 rs_set_end(&rsearch, rt, MIN(max_size, 1ULL << (hbit +
1814 metaslab_ndf_clump_shift)));
1815
1816 rs = zfs_btree_find(t, &rsearch, &where);
1817 if (rs == NULL)
1818 rs = zfs_btree_next(t, &where, &where);
1819 ASSERT(rs != NULL);
1820 }
1821
1822 if ((rs_get_end(rs, rt) - rs_get_start(rs, rt)) >= size) {
1823 *cursor = rs_get_start(rs, rt) + size;
1824 return (rs_get_start(rs, rt));
1825 }
1826 return (-1ULL);
1827 }
1828
1829 static metaslab_ops_t metaslab_ndf_ops = {
1830 metaslab_ndf_alloc
1831 };
1832
1833 metaslab_ops_t *zfs_metaslab_ops = &metaslab_ndf_ops;
1834 #endif /* WITH_NDF_BLOCK_ALLOCATOR */
1835
1836
1837 /*
1838 * ==========================================================================
1839 * Metaslabs
1840 * ==========================================================================
1841 */
1842
1843 /*
1844 * Wait for any in-progress metaslab loads to complete.
1845 */
1846 static void
metaslab_load_wait(metaslab_t * msp)1847 metaslab_load_wait(metaslab_t *msp)
1848 {
1849 ASSERT(MUTEX_HELD(&msp->ms_lock));
1850
1851 while (msp->ms_loading) {
1852 ASSERT(!msp->ms_loaded);
1853 cv_wait(&msp->ms_load_cv, &msp->ms_lock);
1854 }
1855 }
1856
1857 /*
1858 * Wait for any in-progress flushing to complete.
1859 */
1860 static void
metaslab_flush_wait(metaslab_t * msp)1861 metaslab_flush_wait(metaslab_t *msp)
1862 {
1863 ASSERT(MUTEX_HELD(&msp->ms_lock));
1864
1865 while (msp->ms_flushing)
1866 cv_wait(&msp->ms_flush_cv, &msp->ms_lock);
1867 }
1868
1869 static unsigned int
metaslab_idx_func(multilist_t * ml,void * arg)1870 metaslab_idx_func(multilist_t *ml, void *arg)
1871 {
1872 metaslab_t *msp = arg;
1873
1874 /*
1875 * ms_id values are allocated sequentially, so full 64bit
1876 * division would be a waste of time, so limit it to 32 bits.
1877 */
1878 return ((unsigned int)msp->ms_id % multilist_get_num_sublists(ml));
1879 }
1880
1881 uint64_t
metaslab_allocated_space(metaslab_t * msp)1882 metaslab_allocated_space(metaslab_t *msp)
1883 {
1884 return (msp->ms_allocated_space);
1885 }
1886
1887 /*
1888 * Verify that the space accounting on disk matches the in-core range_trees.
1889 */
1890 static void
metaslab_verify_space(metaslab_t * msp,uint64_t txg)1891 metaslab_verify_space(metaslab_t *msp, uint64_t txg)
1892 {
1893 spa_t *spa = msp->ms_group->mg_vd->vdev_spa;
1894 uint64_t allocating = 0;
1895 uint64_t sm_free_space, msp_free_space;
1896
1897 ASSERT(MUTEX_HELD(&msp->ms_lock));
1898 ASSERT(!msp->ms_condensing);
1899
1900 if ((zfs_flags & ZFS_DEBUG_METASLAB_VERIFY) == 0)
1901 return;
1902
1903 /*
1904 * We can only verify the metaslab space when we're called
1905 * from syncing context with a loaded metaslab that has an
1906 * allocated space map. Calling this in non-syncing context
1907 * does not provide a consistent view of the metaslab since
1908 * we're performing allocations in the future.
1909 */
1910 if (txg != spa_syncing_txg(spa) || msp->ms_sm == NULL ||
1911 !msp->ms_loaded)
1912 return;
1913
1914 /*
1915 * Even though the smp_alloc field can get negative,
1916 * when it comes to a metaslab's space map, that should
1917 * never be the case.
1918 */
1919 ASSERT3S(space_map_allocated(msp->ms_sm), >=, 0);
1920
1921 ASSERT3U(space_map_allocated(msp->ms_sm), >=,
1922 range_tree_space(msp->ms_unflushed_frees));
1923
1924 ASSERT3U(metaslab_allocated_space(msp), ==,
1925 space_map_allocated(msp->ms_sm) +
1926 range_tree_space(msp->ms_unflushed_allocs) -
1927 range_tree_space(msp->ms_unflushed_frees));
1928
1929 sm_free_space = msp->ms_size - metaslab_allocated_space(msp);
1930
1931 /*
1932 * Account for future allocations since we would have
1933 * already deducted that space from the ms_allocatable.
1934 */
1935 for (int t = 0; t < TXG_CONCURRENT_STATES; t++) {
1936 allocating +=
1937 range_tree_space(msp->ms_allocating[(txg + t) & TXG_MASK]);
1938 }
1939 ASSERT3U(allocating + msp->ms_allocated_this_txg, ==,
1940 msp->ms_allocating_total);
1941
1942 ASSERT3U(msp->ms_deferspace, ==,
1943 range_tree_space(msp->ms_defer[0]) +
1944 range_tree_space(msp->ms_defer[1]));
1945
1946 msp_free_space = range_tree_space(msp->ms_allocatable) + allocating +
1947 msp->ms_deferspace + range_tree_space(msp->ms_freed);
1948
1949 VERIFY3U(sm_free_space, ==, msp_free_space);
1950 }
1951
1952 static void
metaslab_aux_histograms_clear(metaslab_t * msp)1953 metaslab_aux_histograms_clear(metaslab_t *msp)
1954 {
1955 /*
1956 * Auxiliary histograms are only cleared when resetting them,
1957 * which can only happen while the metaslab is loaded.
1958 */
1959 ASSERT(msp->ms_loaded);
1960
1961 bzero(msp->ms_synchist, sizeof (msp->ms_synchist));
1962 for (int t = 0; t < TXG_DEFER_SIZE; t++)
1963 bzero(msp->ms_deferhist[t], sizeof (msp->ms_deferhist[t]));
1964 }
1965
1966 static void
metaslab_aux_histogram_add(uint64_t * histogram,uint64_t shift,range_tree_t * rt)1967 metaslab_aux_histogram_add(uint64_t *histogram, uint64_t shift,
1968 range_tree_t *rt)
1969 {
1970 /*
1971 * This is modeled after space_map_histogram_add(), so refer to that
1972 * function for implementation details. We want this to work like
1973 * the space map histogram, and not the range tree histogram, as we
1974 * are essentially constructing a delta that will be later subtracted
1975 * from the space map histogram.
1976 */
1977 int idx = 0;
1978 for (int i = shift; i < RANGE_TREE_HISTOGRAM_SIZE; i++) {
1979 ASSERT3U(i, >=, idx + shift);
1980 histogram[idx] += rt->rt_histogram[i] << (i - idx - shift);
1981
1982 if (idx < SPACE_MAP_HISTOGRAM_SIZE - 1) {
1983 ASSERT3U(idx + shift, ==, i);
1984 idx++;
1985 ASSERT3U(idx, <, SPACE_MAP_HISTOGRAM_SIZE);
1986 }
1987 }
1988 }
1989
1990 /*
1991 * Called at every sync pass that the metaslab gets synced.
1992 *
1993 * The reason is that we want our auxiliary histograms to be updated
1994 * wherever the metaslab's space map histogram is updated. This way
1995 * we stay consistent on which parts of the metaslab space map's
1996 * histogram are currently not available for allocations (e.g because
1997 * they are in the defer, freed, and freeing trees).
1998 */
1999 static void
metaslab_aux_histograms_update(metaslab_t * msp)2000 metaslab_aux_histograms_update(metaslab_t *msp)
2001 {
2002 space_map_t *sm = msp->ms_sm;
2003 ASSERT(sm != NULL);
2004
2005 /*
2006 * This is similar to the metaslab's space map histogram updates
2007 * that take place in metaslab_sync(). The only difference is that
2008 * we only care about segments that haven't made it into the
2009 * ms_allocatable tree yet.
2010 */
2011 if (msp->ms_loaded) {
2012 metaslab_aux_histograms_clear(msp);
2013
2014 metaslab_aux_histogram_add(msp->ms_synchist,
2015 sm->sm_shift, msp->ms_freed);
2016
2017 for (int t = 0; t < TXG_DEFER_SIZE; t++) {
2018 metaslab_aux_histogram_add(msp->ms_deferhist[t],
2019 sm->sm_shift, msp->ms_defer[t]);
2020 }
2021 }
2022
2023 metaslab_aux_histogram_add(msp->ms_synchist,
2024 sm->sm_shift, msp->ms_freeing);
2025 }
2026
2027 /*
2028 * Called every time we are done syncing (writing to) the metaslab,
2029 * i.e. at the end of each sync pass.
2030 * [see the comment in metaslab_impl.h for ms_synchist, ms_deferhist]
2031 */
2032 static void
metaslab_aux_histograms_update_done(metaslab_t * msp,boolean_t defer_allowed)2033 metaslab_aux_histograms_update_done(metaslab_t *msp, boolean_t defer_allowed)
2034 {
2035 spa_t *spa = msp->ms_group->mg_vd->vdev_spa;
2036 space_map_t *sm = msp->ms_sm;
2037
2038 if (sm == NULL) {
2039 /*
2040 * We came here from metaslab_init() when creating/opening a
2041 * pool, looking at a metaslab that hasn't had any allocations
2042 * yet.
2043 */
2044 return;
2045 }
2046
2047 /*
2048 * This is similar to the actions that we take for the ms_freed
2049 * and ms_defer trees in metaslab_sync_done().
2050 */
2051 uint64_t hist_index = spa_syncing_txg(spa) % TXG_DEFER_SIZE;
2052 if (defer_allowed) {
2053 bcopy(msp->ms_synchist, msp->ms_deferhist[hist_index],
2054 sizeof (msp->ms_synchist));
2055 } else {
2056 bzero(msp->ms_deferhist[hist_index],
2057 sizeof (msp->ms_deferhist[hist_index]));
2058 }
2059 bzero(msp->ms_synchist, sizeof (msp->ms_synchist));
2060 }
2061
2062 /*
2063 * Ensure that the metaslab's weight and fragmentation are consistent
2064 * with the contents of the histogram (either the range tree's histogram
2065 * or the space map's depending whether the metaslab is loaded).
2066 */
2067 static void
metaslab_verify_weight_and_frag(metaslab_t * msp)2068 metaslab_verify_weight_and_frag(metaslab_t *msp)
2069 {
2070 ASSERT(MUTEX_HELD(&msp->ms_lock));
2071
2072 if ((zfs_flags & ZFS_DEBUG_METASLAB_VERIFY) == 0)
2073 return;
2074
2075 /*
2076 * We can end up here from vdev_remove_complete(), in which case we
2077 * cannot do these assertions because we hold spa config locks and
2078 * thus we are not allowed to read from the DMU.
2079 *
2080 * We check if the metaslab group has been removed and if that's
2081 * the case we return immediately as that would mean that we are
2082 * here from the aforementioned code path.
2083 */
2084 if (msp->ms_group == NULL)
2085 return;
2086
2087 /*
2088 * Devices being removed always return a weight of 0 and leave
2089 * fragmentation and ms_max_size as is - there is nothing for
2090 * us to verify here.
2091 */
2092 vdev_t *vd = msp->ms_group->mg_vd;
2093 if (vd->vdev_removing)
2094 return;
2095
2096 /*
2097 * If the metaslab is dirty it probably means that we've done
2098 * some allocations or frees that have changed our histograms
2099 * and thus the weight.
2100 */
2101 for (int t = 0; t < TXG_SIZE; t++) {
2102 if (txg_list_member(&vd->vdev_ms_list, msp, t))
2103 return;
2104 }
2105
2106 /*
2107 * This verification checks that our in-memory state is consistent
2108 * with what's on disk. If the pool is read-only then there aren't
2109 * any changes and we just have the initially-loaded state.
2110 */
2111 if (!spa_writeable(msp->ms_group->mg_vd->vdev_spa))
2112 return;
2113
2114 /* some extra verification for in-core tree if you can */
2115 if (msp->ms_loaded) {
2116 range_tree_stat_verify(msp->ms_allocatable);
2117 VERIFY(space_map_histogram_verify(msp->ms_sm,
2118 msp->ms_allocatable));
2119 }
2120
2121 uint64_t weight = msp->ms_weight;
2122 uint64_t was_active = msp->ms_weight & METASLAB_ACTIVE_MASK;
2123 boolean_t space_based = WEIGHT_IS_SPACEBASED(msp->ms_weight);
2124 uint64_t frag = msp->ms_fragmentation;
2125 uint64_t max_segsize = msp->ms_max_size;
2126
2127 msp->ms_weight = 0;
2128 msp->ms_fragmentation = 0;
2129
2130 /*
2131 * This function is used for verification purposes and thus should
2132 * not introduce any side-effects/mutations on the system's state.
2133 *
2134 * Regardless of whether metaslab_weight() thinks this metaslab
2135 * should be active or not, we want to ensure that the actual weight
2136 * (and therefore the value of ms_weight) would be the same if it
2137 * was to be recalculated at this point.
2138 *
2139 * In addition we set the nodirty flag so metaslab_weight() does
2140 * not dirty the metaslab for future TXGs (e.g. when trying to
2141 * force condensing to upgrade the metaslab spacemaps).
2142 */
2143 msp->ms_weight = metaslab_weight(msp, B_TRUE) | was_active;
2144
2145 VERIFY3U(max_segsize, ==, msp->ms_max_size);
2146
2147 /*
2148 * If the weight type changed then there is no point in doing
2149 * verification. Revert fields to their original values.
2150 */
2151 if ((space_based && !WEIGHT_IS_SPACEBASED(msp->ms_weight)) ||
2152 (!space_based && WEIGHT_IS_SPACEBASED(msp->ms_weight))) {
2153 msp->ms_fragmentation = frag;
2154 msp->ms_weight = weight;
2155 return;
2156 }
2157
2158 VERIFY3U(msp->ms_fragmentation, ==, frag);
2159 VERIFY3U(msp->ms_weight, ==, weight);
2160 }
2161
2162 /*
2163 * If we're over the zfs_metaslab_mem_limit, select the loaded metaslab from
2164 * this class that was used longest ago, and attempt to unload it. We don't
2165 * want to spend too much time in this loop to prevent performance
2166 * degradation, and we expect that most of the time this operation will
2167 * succeed. Between that and the normal unloading processing during txg sync,
2168 * we expect this to keep the metaslab memory usage under control.
2169 */
2170 static void
metaslab_potentially_evict(metaslab_class_t * mc)2171 metaslab_potentially_evict(metaslab_class_t *mc)
2172 {
2173 #ifdef _KERNEL
2174 uint64_t allmem = arc_all_memory();
2175 uint64_t inuse = spl_kmem_cache_inuse(zfs_btree_leaf_cache);
2176 uint64_t size = spl_kmem_cache_entry_size(zfs_btree_leaf_cache);
2177 int tries = 0;
2178 for (; allmem * zfs_metaslab_mem_limit / 100 < inuse * size &&
2179 tries < multilist_get_num_sublists(&mc->mc_metaslab_txg_list) * 2;
2180 tries++) {
2181 unsigned int idx = multilist_get_random_index(
2182 &mc->mc_metaslab_txg_list);
2183 multilist_sublist_t *mls =
2184 multilist_sublist_lock(&mc->mc_metaslab_txg_list, idx);
2185 metaslab_t *msp = multilist_sublist_head(mls);
2186 multilist_sublist_unlock(mls);
2187 while (msp != NULL && allmem * zfs_metaslab_mem_limit / 100 <
2188 inuse * size) {
2189 VERIFY3P(mls, ==, multilist_sublist_lock(
2190 &mc->mc_metaslab_txg_list, idx));
2191 ASSERT3U(idx, ==,
2192 metaslab_idx_func(&mc->mc_metaslab_txg_list, msp));
2193
2194 if (!multilist_link_active(&msp->ms_class_txg_node)) {
2195 multilist_sublist_unlock(mls);
2196 break;
2197 }
2198 metaslab_t *next_msp = multilist_sublist_next(mls, msp);
2199 multilist_sublist_unlock(mls);
2200 /*
2201 * If the metaslab is currently loading there are two
2202 * cases. If it's the metaslab we're evicting, we
2203 * can't continue on or we'll panic when we attempt to
2204 * recursively lock the mutex. If it's another
2205 * metaslab that's loading, it can be safely skipped,
2206 * since we know it's very new and therefore not a
2207 * good eviction candidate. We check later once the
2208 * lock is held that the metaslab is fully loaded
2209 * before actually unloading it.
2210 */
2211 if (msp->ms_loading) {
2212 msp = next_msp;
2213 inuse =
2214 spl_kmem_cache_inuse(zfs_btree_leaf_cache);
2215 continue;
2216 }
2217 /*
2218 * We can't unload metaslabs with no spacemap because
2219 * they're not ready to be unloaded yet. We can't
2220 * unload metaslabs with outstanding allocations
2221 * because doing so could cause the metaslab's weight
2222 * to decrease while it's unloaded, which violates an
2223 * invariant that we use to prevent unnecessary
2224 * loading. We also don't unload metaslabs that are
2225 * currently active because they are high-weight
2226 * metaslabs that are likely to be used in the near
2227 * future.
2228 */
2229 mutex_enter(&msp->ms_lock);
2230 if (msp->ms_allocator == -1 && msp->ms_sm != NULL &&
2231 msp->ms_allocating_total == 0) {
2232 metaslab_unload(msp);
2233 }
2234 mutex_exit(&msp->ms_lock);
2235 msp = next_msp;
2236 inuse = spl_kmem_cache_inuse(zfs_btree_leaf_cache);
2237 }
2238 }
2239 #else
2240 (void) mc;
2241 #endif
2242 }
2243
2244 static int
metaslab_load_impl(metaslab_t * msp)2245 metaslab_load_impl(metaslab_t *msp)
2246 {
2247 int error = 0;
2248
2249 ASSERT(MUTEX_HELD(&msp->ms_lock));
2250 ASSERT(msp->ms_loading);
2251 ASSERT(!msp->ms_condensing);
2252
2253 /*
2254 * We temporarily drop the lock to unblock other operations while we
2255 * are reading the space map. Therefore, metaslab_sync() and
2256 * metaslab_sync_done() can run at the same time as we do.
2257 *
2258 * If we are using the log space maps, metaslab_sync() can't write to
2259 * the metaslab's space map while we are loading as we only write to
2260 * it when we are flushing the metaslab, and that can't happen while
2261 * we are loading it.
2262 *
2263 * If we are not using log space maps though, metaslab_sync() can
2264 * append to the space map while we are loading. Therefore we load
2265 * only entries that existed when we started the load. Additionally,
2266 * metaslab_sync_done() has to wait for the load to complete because
2267 * there are potential races like metaslab_load() loading parts of the
2268 * space map that are currently being appended by metaslab_sync(). If
2269 * we didn't, the ms_allocatable would have entries that
2270 * metaslab_sync_done() would try to re-add later.
2271 *
2272 * That's why before dropping the lock we remember the synced length
2273 * of the metaslab and read up to that point of the space map,
2274 * ignoring entries appended by metaslab_sync() that happen after we
2275 * drop the lock.
2276 */
2277 uint64_t length = msp->ms_synced_length;
2278 mutex_exit(&msp->ms_lock);
2279
2280 hrtime_t load_start = gethrtime();
2281 metaslab_rt_arg_t *mrap;
2282 if (msp->ms_allocatable->rt_arg == NULL) {
2283 mrap = kmem_zalloc(sizeof (*mrap), KM_SLEEP);
2284 } else {
2285 mrap = msp->ms_allocatable->rt_arg;
2286 msp->ms_allocatable->rt_ops = NULL;
2287 msp->ms_allocatable->rt_arg = NULL;
2288 }
2289 mrap->mra_bt = &msp->ms_allocatable_by_size;
2290 mrap->mra_floor_shift = metaslab_by_size_min_shift;
2291
2292 if (msp->ms_sm != NULL) {
2293 error = space_map_load_length(msp->ms_sm, msp->ms_allocatable,
2294 SM_FREE, length);
2295
2296 /* Now, populate the size-sorted tree. */
2297 metaslab_rt_create(msp->ms_allocatable, mrap);
2298 msp->ms_allocatable->rt_ops = &metaslab_rt_ops;
2299 msp->ms_allocatable->rt_arg = mrap;
2300
2301 struct mssa_arg arg = {0};
2302 arg.rt = msp->ms_allocatable;
2303 arg.mra = mrap;
2304 range_tree_walk(msp->ms_allocatable, metaslab_size_sorted_add,
2305 &arg);
2306 } else {
2307 /*
2308 * Add the size-sorted tree first, since we don't need to load
2309 * the metaslab from the spacemap.
2310 */
2311 metaslab_rt_create(msp->ms_allocatable, mrap);
2312 msp->ms_allocatable->rt_ops = &metaslab_rt_ops;
2313 msp->ms_allocatable->rt_arg = mrap;
2314 /*
2315 * The space map has not been allocated yet, so treat
2316 * all the space in the metaslab as free and add it to the
2317 * ms_allocatable tree.
2318 */
2319 range_tree_add(msp->ms_allocatable,
2320 msp->ms_start, msp->ms_size);
2321
2322 if (msp->ms_new) {
2323 /*
2324 * If the ms_sm doesn't exist, this means that this
2325 * metaslab hasn't gone through metaslab_sync() and
2326 * thus has never been dirtied. So we shouldn't
2327 * expect any unflushed allocs or frees from previous
2328 * TXGs.
2329 */
2330 ASSERT(range_tree_is_empty(msp->ms_unflushed_allocs));
2331 ASSERT(range_tree_is_empty(msp->ms_unflushed_frees));
2332 }
2333 }
2334
2335 /*
2336 * We need to grab the ms_sync_lock to prevent metaslab_sync() from
2337 * changing the ms_sm (or log_sm) and the metaslab's range trees
2338 * while we are about to use them and populate the ms_allocatable.
2339 * The ms_lock is insufficient for this because metaslab_sync() doesn't
2340 * hold the ms_lock while writing the ms_checkpointing tree to disk.
2341 */
2342 mutex_enter(&msp->ms_sync_lock);
2343 mutex_enter(&msp->ms_lock);
2344
2345 ASSERT(!msp->ms_condensing);
2346 ASSERT(!msp->ms_flushing);
2347
2348 if (error != 0) {
2349 mutex_exit(&msp->ms_sync_lock);
2350 return (error);
2351 }
2352
2353 ASSERT3P(msp->ms_group, !=, NULL);
2354 msp->ms_loaded = B_TRUE;
2355
2356 /*
2357 * Apply all the unflushed changes to ms_allocatable right
2358 * away so any manipulations we do below have a clear view
2359 * of what is allocated and what is free.
2360 */
2361 range_tree_walk(msp->ms_unflushed_allocs,
2362 range_tree_remove, msp->ms_allocatable);
2363 range_tree_walk(msp->ms_unflushed_frees,
2364 range_tree_add, msp->ms_allocatable);
2365
2366 ASSERT3P(msp->ms_group, !=, NULL);
2367 spa_t *spa = msp->ms_group->mg_vd->vdev_spa;
2368 if (spa_syncing_log_sm(spa) != NULL) {
2369 ASSERT(spa_feature_is_enabled(spa,
2370 SPA_FEATURE_LOG_SPACEMAP));
2371
2372 /*
2373 * If we use a log space map we add all the segments
2374 * that are in ms_unflushed_frees so they are available
2375 * for allocation.
2376 *
2377 * ms_allocatable needs to contain all free segments
2378 * that are ready for allocations (thus not segments
2379 * from ms_freeing, ms_freed, and the ms_defer trees).
2380 * But if we grab the lock in this code path at a sync
2381 * pass later that 1, then it also contains the
2382 * segments of ms_freed (they were added to it earlier
2383 * in this path through ms_unflushed_frees). So we
2384 * need to remove all the segments that exist in
2385 * ms_freed from ms_allocatable as they will be added
2386 * later in metaslab_sync_done().
2387 *
2388 * When there's no log space map, the ms_allocatable
2389 * correctly doesn't contain any segments that exist
2390 * in ms_freed [see ms_synced_length].
2391 */
2392 range_tree_walk(msp->ms_freed,
2393 range_tree_remove, msp->ms_allocatable);
2394 }
2395
2396 /*
2397 * If we are not using the log space map, ms_allocatable
2398 * contains the segments that exist in the ms_defer trees
2399 * [see ms_synced_length]. Thus we need to remove them
2400 * from ms_allocatable as they will be added again in
2401 * metaslab_sync_done().
2402 *
2403 * If we are using the log space map, ms_allocatable still
2404 * contains the segments that exist in the ms_defer trees.
2405 * Not because it read them through the ms_sm though. But
2406 * because these segments are part of ms_unflushed_frees
2407 * whose segments we add to ms_allocatable earlier in this
2408 * code path.
2409 */
2410 for (int t = 0; t < TXG_DEFER_SIZE; t++) {
2411 range_tree_walk(msp->ms_defer[t],
2412 range_tree_remove, msp->ms_allocatable);
2413 }
2414
2415 /*
2416 * Call metaslab_recalculate_weight_and_sort() now that the
2417 * metaslab is loaded so we get the metaslab's real weight.
2418 *
2419 * Unless this metaslab was created with older software and
2420 * has not yet been converted to use segment-based weight, we
2421 * expect the new weight to be better or equal to the weight
2422 * that the metaslab had while it was not loaded. This is
2423 * because the old weight does not take into account the
2424 * consolidation of adjacent segments between TXGs. [see
2425 * comment for ms_synchist and ms_deferhist[] for more info]
2426 */
2427 uint64_t weight = msp->ms_weight;
2428 uint64_t max_size = msp->ms_max_size;
2429 metaslab_recalculate_weight_and_sort(msp);
2430 if (!WEIGHT_IS_SPACEBASED(weight))
2431 ASSERT3U(weight, <=, msp->ms_weight);
2432 msp->ms_max_size = metaslab_largest_allocatable(msp);
2433 ASSERT3U(max_size, <=, msp->ms_max_size);
2434 hrtime_t load_end = gethrtime();
2435 msp->ms_load_time = load_end;
2436 zfs_dbgmsg("metaslab_load: txg %llu, spa %s, vdev_id %llu, "
2437 "ms_id %llu, smp_length %llu, "
2438 "unflushed_allocs %llu, unflushed_frees %llu, "
2439 "freed %llu, defer %llu + %llu, unloaded time %llu ms, "
2440 "loading_time %lld ms, ms_max_size %llu, "
2441 "max size error %lld, "
2442 "old_weight %llx, new_weight %llx",
2443 (u_longlong_t)spa_syncing_txg(spa), spa_name(spa),
2444 (u_longlong_t)msp->ms_group->mg_vd->vdev_id,
2445 (u_longlong_t)msp->ms_id,
2446 (u_longlong_t)space_map_length(msp->ms_sm),
2447 (u_longlong_t)range_tree_space(msp->ms_unflushed_allocs),
2448 (u_longlong_t)range_tree_space(msp->ms_unflushed_frees),
2449 (u_longlong_t)range_tree_space(msp->ms_freed),
2450 (u_longlong_t)range_tree_space(msp->ms_defer[0]),
2451 (u_longlong_t)range_tree_space(msp->ms_defer[1]),
2452 (longlong_t)((load_start - msp->ms_unload_time) / 1000000),
2453 (longlong_t)((load_end - load_start) / 1000000),
2454 (u_longlong_t)msp->ms_max_size,
2455 (u_longlong_t)msp->ms_max_size - max_size,
2456 (u_longlong_t)weight, (u_longlong_t)msp->ms_weight);
2457
2458 metaslab_verify_space(msp, spa_syncing_txg(spa));
2459 mutex_exit(&msp->ms_sync_lock);
2460 return (0);
2461 }
2462
2463 int
metaslab_load(metaslab_t * msp)2464 metaslab_load(metaslab_t *msp)
2465 {
2466 ASSERT(MUTEX_HELD(&msp->ms_lock));
2467
2468 /*
2469 * There may be another thread loading the same metaslab, if that's
2470 * the case just wait until the other thread is done and return.
2471 */
2472 metaslab_load_wait(msp);
2473 if (msp->ms_loaded)
2474 return (0);
2475 VERIFY(!msp->ms_loading);
2476 ASSERT(!msp->ms_condensing);
2477
2478 /*
2479 * We set the loading flag BEFORE potentially dropping the lock to
2480 * wait for an ongoing flush (see ms_flushing below). This way other
2481 * threads know that there is already a thread that is loading this
2482 * metaslab.
2483 */
2484 msp->ms_loading = B_TRUE;
2485
2486 /*
2487 * Wait for any in-progress flushing to finish as we drop the ms_lock
2488 * both here (during space_map_load()) and in metaslab_flush() (when
2489 * we flush our changes to the ms_sm).
2490 */
2491 if (msp->ms_flushing)
2492 metaslab_flush_wait(msp);
2493
2494 /*
2495 * In the possibility that we were waiting for the metaslab to be
2496 * flushed (where we temporarily dropped the ms_lock), ensure that
2497 * no one else loaded the metaslab somehow.
2498 */
2499 ASSERT(!msp->ms_loaded);
2500
2501 /*
2502 * If we're loading a metaslab in the normal class, consider evicting
2503 * another one to keep our memory usage under the limit defined by the
2504 * zfs_metaslab_mem_limit tunable.
2505 */
2506 if (spa_normal_class(msp->ms_group->mg_class->mc_spa) ==
2507 msp->ms_group->mg_class) {
2508 metaslab_potentially_evict(msp->ms_group->mg_class);
2509 }
2510
2511 int error = metaslab_load_impl(msp);
2512
2513 ASSERT(MUTEX_HELD(&msp->ms_lock));
2514 msp->ms_loading = B_FALSE;
2515 cv_broadcast(&msp->ms_load_cv);
2516
2517 return (error);
2518 }
2519
2520 void
metaslab_unload(metaslab_t * msp)2521 metaslab_unload(metaslab_t *msp)
2522 {
2523 ASSERT(MUTEX_HELD(&msp->ms_lock));
2524
2525 /*
2526 * This can happen if a metaslab is selected for eviction (in
2527 * metaslab_potentially_evict) and then unloaded during spa_sync (via
2528 * metaslab_class_evict_old).
2529 */
2530 if (!msp->ms_loaded)
2531 return;
2532
2533 range_tree_vacate(msp->ms_allocatable, NULL, NULL);
2534 msp->ms_loaded = B_FALSE;
2535 msp->ms_unload_time = gethrtime();
2536
2537 msp->ms_activation_weight = 0;
2538 msp->ms_weight &= ~METASLAB_ACTIVE_MASK;
2539
2540 if (msp->ms_group != NULL) {
2541 metaslab_class_t *mc = msp->ms_group->mg_class;
2542 multilist_sublist_t *mls =
2543 multilist_sublist_lock_obj(&mc->mc_metaslab_txg_list, msp);
2544 if (multilist_link_active(&msp->ms_class_txg_node))
2545 multilist_sublist_remove(mls, msp);
2546 multilist_sublist_unlock(mls);
2547
2548 spa_t *spa = msp->ms_group->mg_vd->vdev_spa;
2549 zfs_dbgmsg("metaslab_unload: txg %llu, spa %s, vdev_id %llu, "
2550 "ms_id %llu, weight %llx, "
2551 "selected txg %llu (%llu ms ago), alloc_txg %llu, "
2552 "loaded %llu ms ago, max_size %llu",
2553 (u_longlong_t)spa_syncing_txg(spa), spa_name(spa),
2554 (u_longlong_t)msp->ms_group->mg_vd->vdev_id,
2555 (u_longlong_t)msp->ms_id,
2556 (u_longlong_t)msp->ms_weight,
2557 (u_longlong_t)msp->ms_selected_txg,
2558 (u_longlong_t)(msp->ms_unload_time -
2559 msp->ms_selected_time) / 1000 / 1000,
2560 (u_longlong_t)msp->ms_alloc_txg,
2561 (u_longlong_t)(msp->ms_unload_time -
2562 msp->ms_load_time) / 1000 / 1000,
2563 (u_longlong_t)msp->ms_max_size);
2564 }
2565
2566 /*
2567 * We explicitly recalculate the metaslab's weight based on its space
2568 * map (as it is now not loaded). We want unload metaslabs to always
2569 * have their weights calculated from the space map histograms, while
2570 * loaded ones have it calculated from their in-core range tree
2571 * [see metaslab_load()]. This way, the weight reflects the information
2572 * available in-core, whether it is loaded or not.
2573 *
2574 * If ms_group == NULL means that we came here from metaslab_fini(),
2575 * at which point it doesn't make sense for us to do the recalculation
2576 * and the sorting.
2577 */
2578 if (msp->ms_group != NULL)
2579 metaslab_recalculate_weight_and_sort(msp);
2580 }
2581
2582 /*
2583 * We want to optimize the memory use of the per-metaslab range
2584 * trees. To do this, we store the segments in the range trees in
2585 * units of sectors, zero-indexing from the start of the metaslab. If
2586 * the vdev_ms_shift - the vdev_ashift is less than 32, we can store
2587 * the ranges using two uint32_ts, rather than two uint64_ts.
2588 */
2589 range_seg_type_t
metaslab_calculate_range_tree_type(vdev_t * vdev,metaslab_t * msp,uint64_t * start,uint64_t * shift)2590 metaslab_calculate_range_tree_type(vdev_t *vdev, metaslab_t *msp,
2591 uint64_t *start, uint64_t *shift)
2592 {
2593 if (vdev->vdev_ms_shift - vdev->vdev_ashift < 32 &&
2594 !zfs_metaslab_force_large_segs) {
2595 *shift = vdev->vdev_ashift;
2596 *start = msp->ms_start;
2597 return (RANGE_SEG32);
2598 } else {
2599 *shift = 0;
2600 *start = 0;
2601 return (RANGE_SEG64);
2602 }
2603 }
2604
2605 void
metaslab_set_selected_txg(metaslab_t * msp,uint64_t txg)2606 metaslab_set_selected_txg(metaslab_t *msp, uint64_t txg)
2607 {
2608 ASSERT(MUTEX_HELD(&msp->ms_lock));
2609 metaslab_class_t *mc = msp->ms_group->mg_class;
2610 multilist_sublist_t *mls =
2611 multilist_sublist_lock_obj(&mc->mc_metaslab_txg_list, msp);
2612 if (multilist_link_active(&msp->ms_class_txg_node))
2613 multilist_sublist_remove(mls, msp);
2614 msp->ms_selected_txg = txg;
2615 msp->ms_selected_time = gethrtime();
2616 multilist_sublist_insert_tail(mls, msp);
2617 multilist_sublist_unlock(mls);
2618 }
2619
2620 void
metaslab_space_update(vdev_t * vd,metaslab_class_t * mc,int64_t alloc_delta,int64_t defer_delta,int64_t space_delta)2621 metaslab_space_update(vdev_t *vd, metaslab_class_t *mc, int64_t alloc_delta,
2622 int64_t defer_delta, int64_t space_delta)
2623 {
2624 vdev_space_update(vd, alloc_delta, defer_delta, space_delta);
2625
2626 ASSERT3P(vd->vdev_spa->spa_root_vdev, ==, vd->vdev_parent);
2627 ASSERT(vd->vdev_ms_count != 0);
2628
2629 metaslab_class_space_update(mc, alloc_delta, defer_delta, space_delta,
2630 vdev_deflated_space(vd, space_delta));
2631 }
2632
2633 int
metaslab_init(metaslab_group_t * mg,uint64_t id,uint64_t object,uint64_t txg,metaslab_t ** msp)2634 metaslab_init(metaslab_group_t *mg, uint64_t id, uint64_t object,
2635 uint64_t txg, metaslab_t **msp)
2636 {
2637 vdev_t *vd = mg->mg_vd;
2638 spa_t *spa = vd->vdev_spa;
2639 objset_t *mos = spa->spa_meta_objset;
2640 metaslab_t *ms;
2641 int error;
2642
2643 ms = kmem_zalloc(sizeof (metaslab_t), KM_SLEEP);
2644 mutex_init(&ms->ms_lock, NULL, MUTEX_DEFAULT, NULL);
2645 mutex_init(&ms->ms_sync_lock, NULL, MUTEX_DEFAULT, NULL);
2646 cv_init(&ms->ms_load_cv, NULL, CV_DEFAULT, NULL);
2647 cv_init(&ms->ms_flush_cv, NULL, CV_DEFAULT, NULL);
2648 multilist_link_init(&ms->ms_class_txg_node);
2649
2650 ms->ms_id = id;
2651 ms->ms_start = id << vd->vdev_ms_shift;
2652 ms->ms_size = 1ULL << vd->vdev_ms_shift;
2653 ms->ms_allocator = -1;
2654 ms->ms_new = B_TRUE;
2655
2656 vdev_ops_t *ops = vd->vdev_ops;
2657 if (ops->vdev_op_metaslab_init != NULL)
2658 ops->vdev_op_metaslab_init(vd, &ms->ms_start, &ms->ms_size);
2659
2660 /*
2661 * We only open space map objects that already exist. All others
2662 * will be opened when we finally allocate an object for it.
2663 *
2664 * Note:
2665 * When called from vdev_expand(), we can't call into the DMU as
2666 * we are holding the spa_config_lock as a writer and we would
2667 * deadlock [see relevant comment in vdev_metaslab_init()]. in
2668 * that case, the object parameter is zero though, so we won't
2669 * call into the DMU.
2670 */
2671 if (object != 0) {
2672 error = space_map_open(&ms->ms_sm, mos, object, ms->ms_start,
2673 ms->ms_size, vd->vdev_ashift);
2674
2675 if (error != 0) {
2676 kmem_free(ms, sizeof (metaslab_t));
2677 return (error);
2678 }
2679
2680 ASSERT(ms->ms_sm != NULL);
2681 ms->ms_allocated_space = space_map_allocated(ms->ms_sm);
2682 }
2683
2684 uint64_t shift, start;
2685 range_seg_type_t type =
2686 metaslab_calculate_range_tree_type(vd, ms, &start, &shift);
2687
2688 ms->ms_allocatable = range_tree_create(NULL, type, NULL, start, shift);
2689 for (int t = 0; t < TXG_SIZE; t++) {
2690 ms->ms_allocating[t] = range_tree_create(NULL, type,
2691 NULL, start, shift);
2692 }
2693 ms->ms_freeing = range_tree_create(NULL, type, NULL, start, shift);
2694 ms->ms_freed = range_tree_create(NULL, type, NULL, start, shift);
2695 for (int t = 0; t < TXG_DEFER_SIZE; t++) {
2696 ms->ms_defer[t] = range_tree_create(NULL, type, NULL,
2697 start, shift);
2698 }
2699 ms->ms_checkpointing =
2700 range_tree_create(NULL, type, NULL, start, shift);
2701 ms->ms_unflushed_allocs =
2702 range_tree_create(NULL, type, NULL, start, shift);
2703
2704 metaslab_rt_arg_t *mrap = kmem_zalloc(sizeof (*mrap), KM_SLEEP);
2705 mrap->mra_bt = &ms->ms_unflushed_frees_by_size;
2706 mrap->mra_floor_shift = metaslab_by_size_min_shift;
2707 ms->ms_unflushed_frees = range_tree_create(&metaslab_rt_ops,
2708 type, mrap, start, shift);
2709
2710 ms->ms_trim = range_tree_create(NULL, type, NULL, start, shift);
2711
2712 metaslab_group_add(mg, ms);
2713 metaslab_set_fragmentation(ms, B_FALSE);
2714
2715 /*
2716 * If we're opening an existing pool (txg == 0) or creating
2717 * a new one (txg == TXG_INITIAL), all space is available now.
2718 * If we're adding space to an existing pool, the new space
2719 * does not become available until after this txg has synced.
2720 * The metaslab's weight will also be initialized when we sync
2721 * out this txg. This ensures that we don't attempt to allocate
2722 * from it before we have initialized it completely.
2723 */
2724 if (txg <= TXG_INITIAL) {
2725 metaslab_sync_done(ms, 0);
2726 metaslab_space_update(vd, mg->mg_class,
2727 metaslab_allocated_space(ms), 0, 0);
2728 }
2729
2730 if (txg != 0) {
2731 vdev_dirty(vd, 0, NULL, txg);
2732 vdev_dirty(vd, VDD_METASLAB, ms, txg);
2733 }
2734
2735 *msp = ms;
2736
2737 return (0);
2738 }
2739
2740 static void
metaslab_fini_flush_data(metaslab_t * msp)2741 metaslab_fini_flush_data(metaslab_t *msp)
2742 {
2743 spa_t *spa = msp->ms_group->mg_vd->vdev_spa;
2744
2745 if (metaslab_unflushed_txg(msp) == 0) {
2746 ASSERT3P(avl_find(&spa->spa_metaslabs_by_flushed, msp, NULL),
2747 ==, NULL);
2748 return;
2749 }
2750 ASSERT(spa_feature_is_active(spa, SPA_FEATURE_LOG_SPACEMAP));
2751
2752 mutex_enter(&spa->spa_flushed_ms_lock);
2753 avl_remove(&spa->spa_metaslabs_by_flushed, msp);
2754 mutex_exit(&spa->spa_flushed_ms_lock);
2755
2756 spa_log_sm_decrement_mscount(spa, metaslab_unflushed_txg(msp));
2757 spa_log_summary_decrement_mscount(spa, metaslab_unflushed_txg(msp));
2758 }
2759
2760 uint64_t
metaslab_unflushed_changes_memused(metaslab_t * ms)2761 metaslab_unflushed_changes_memused(metaslab_t *ms)
2762 {
2763 return ((range_tree_numsegs(ms->ms_unflushed_allocs) +
2764 range_tree_numsegs(ms->ms_unflushed_frees)) *
2765 ms->ms_unflushed_allocs->rt_root.bt_elem_size);
2766 }
2767
2768 void
metaslab_fini(metaslab_t * msp)2769 metaslab_fini(metaslab_t *msp)
2770 {
2771 metaslab_group_t *mg = msp->ms_group;
2772 vdev_t *vd = mg->mg_vd;
2773 spa_t *spa = vd->vdev_spa;
2774
2775 metaslab_fini_flush_data(msp);
2776
2777 metaslab_group_remove(mg, msp);
2778
2779 mutex_enter(&msp->ms_lock);
2780 VERIFY(msp->ms_group == NULL);
2781
2782 /*
2783 * If this metaslab hasn't been through metaslab_sync_done() yet its
2784 * space hasn't been accounted for in its vdev and doesn't need to be
2785 * subtracted.
2786 */
2787 if (!msp->ms_new) {
2788 metaslab_space_update(vd, mg->mg_class,
2789 -metaslab_allocated_space(msp), 0, -msp->ms_size);
2790
2791 }
2792 space_map_close(msp->ms_sm);
2793 msp->ms_sm = NULL;
2794
2795 metaslab_unload(msp);
2796
2797 range_tree_destroy(msp->ms_allocatable);
2798 range_tree_destroy(msp->ms_freeing);
2799 range_tree_destroy(msp->ms_freed);
2800
2801 ASSERT3U(spa->spa_unflushed_stats.sus_memused, >=,
2802 metaslab_unflushed_changes_memused(msp));
2803 spa->spa_unflushed_stats.sus_memused -=
2804 metaslab_unflushed_changes_memused(msp);
2805 range_tree_vacate(msp->ms_unflushed_allocs, NULL, NULL);
2806 range_tree_destroy(msp->ms_unflushed_allocs);
2807 range_tree_destroy(msp->ms_checkpointing);
2808 range_tree_vacate(msp->ms_unflushed_frees, NULL, NULL);
2809 range_tree_destroy(msp->ms_unflushed_frees);
2810
2811 for (int t = 0; t < TXG_SIZE; t++) {
2812 range_tree_destroy(msp->ms_allocating[t]);
2813 }
2814 for (int t = 0; t < TXG_DEFER_SIZE; t++) {
2815 range_tree_destroy(msp->ms_defer[t]);
2816 }
2817 ASSERT0(msp->ms_deferspace);
2818
2819 for (int t = 0; t < TXG_SIZE; t++)
2820 ASSERT(!txg_list_member(&vd->vdev_ms_list, msp, t));
2821
2822 range_tree_vacate(msp->ms_trim, NULL, NULL);
2823 range_tree_destroy(msp->ms_trim);
2824
2825 mutex_exit(&msp->ms_lock);
2826 cv_destroy(&msp->ms_load_cv);
2827 cv_destroy(&msp->ms_flush_cv);
2828 mutex_destroy(&msp->ms_lock);
2829 mutex_destroy(&msp->ms_sync_lock);
2830 ASSERT3U(msp->ms_allocator, ==, -1);
2831
2832 kmem_free(msp, sizeof (metaslab_t));
2833 }
2834
2835 #define FRAGMENTATION_TABLE_SIZE 17
2836
2837 /*
2838 * This table defines a segment size based fragmentation metric that will
2839 * allow each metaslab to derive its own fragmentation value. This is done
2840 * by calculating the space in each bucket of the spacemap histogram and
2841 * multiplying that by the fragmentation metric in this table. Doing
2842 * this for all buckets and dividing it by the total amount of free
2843 * space in this metaslab (i.e. the total free space in all buckets) gives
2844 * us the fragmentation metric. This means that a high fragmentation metric
2845 * equates to most of the free space being comprised of small segments.
2846 * Conversely, if the metric is low, then most of the free space is in
2847 * large segments. A 10% change in fragmentation equates to approximately
2848 * double the number of segments.
2849 *
2850 * This table defines 0% fragmented space using 16MB segments. Testing has
2851 * shown that segments that are greater than or equal to 16MB do not suffer
2852 * from drastic performance problems. Using this value, we derive the rest
2853 * of the table. Since the fragmentation value is never stored on disk, it
2854 * is possible to change these calculations in the future.
2855 */
2856 int zfs_frag_table[FRAGMENTATION_TABLE_SIZE] = {
2857 100, /* 512B */
2858 100, /* 1K */
2859 98, /* 2K */
2860 95, /* 4K */
2861 90, /* 8K */
2862 80, /* 16K */
2863 70, /* 32K */
2864 60, /* 64K */
2865 50, /* 128K */
2866 40, /* 256K */
2867 30, /* 512K */
2868 20, /* 1M */
2869 15, /* 2M */
2870 10, /* 4M */
2871 5, /* 8M */
2872 0 /* 16M */
2873 };
2874
2875 /*
2876 * Calculate the metaslab's fragmentation metric and set ms_fragmentation.
2877 * Setting this value to ZFS_FRAG_INVALID means that the metaslab has not
2878 * been upgraded and does not support this metric. Otherwise, the return
2879 * value should be in the range [0, 100].
2880 */
2881 static void
metaslab_set_fragmentation(metaslab_t * msp,boolean_t nodirty)2882 metaslab_set_fragmentation(metaslab_t *msp, boolean_t nodirty)
2883 {
2884 spa_t *spa = msp->ms_group->mg_vd->vdev_spa;
2885 uint64_t fragmentation = 0;
2886 uint64_t total = 0;
2887 boolean_t feature_enabled = spa_feature_is_enabled(spa,
2888 SPA_FEATURE_SPACEMAP_HISTOGRAM);
2889
2890 if (!feature_enabled) {
2891 msp->ms_fragmentation = ZFS_FRAG_INVALID;
2892 return;
2893 }
2894
2895 /*
2896 * A null space map means that the entire metaslab is free
2897 * and thus is not fragmented.
2898 */
2899 if (msp->ms_sm == NULL) {
2900 msp->ms_fragmentation = 0;
2901 return;
2902 }
2903
2904 /*
2905 * If this metaslab's space map has not been upgraded, flag it
2906 * so that we upgrade next time we encounter it.
2907 */
2908 if (msp->ms_sm->sm_dbuf->db_size != sizeof (space_map_phys_t)) {
2909 uint64_t txg = spa_syncing_txg(spa);
2910 vdev_t *vd = msp->ms_group->mg_vd;
2911
2912 /*
2913 * If we've reached the final dirty txg, then we must
2914 * be shutting down the pool. We don't want to dirty
2915 * any data past this point so skip setting the condense
2916 * flag. We can retry this action the next time the pool
2917 * is imported. We also skip marking this metaslab for
2918 * condensing if the caller has explicitly set nodirty.
2919 */
2920 if (!nodirty &&
2921 spa_writeable(spa) && txg < spa_final_dirty_txg(spa)) {
2922 msp->ms_condense_wanted = B_TRUE;
2923 vdev_dirty(vd, VDD_METASLAB, msp, txg + 1);
2924 zfs_dbgmsg("txg %llu, requesting force condense: "
2925 "ms_id %llu, vdev_id %llu", (u_longlong_t)txg,
2926 (u_longlong_t)msp->ms_id,
2927 (u_longlong_t)vd->vdev_id);
2928 }
2929 msp->ms_fragmentation = ZFS_FRAG_INVALID;
2930 return;
2931 }
2932
2933 for (int i = 0; i < SPACE_MAP_HISTOGRAM_SIZE; i++) {
2934 uint64_t space = 0;
2935 uint8_t shift = msp->ms_sm->sm_shift;
2936
2937 int idx = MIN(shift - SPA_MINBLOCKSHIFT + i,
2938 FRAGMENTATION_TABLE_SIZE - 1);
2939
2940 if (msp->ms_sm->sm_phys->smp_histogram[i] == 0)
2941 continue;
2942
2943 space = msp->ms_sm->sm_phys->smp_histogram[i] << (i + shift);
2944 total += space;
2945
2946 ASSERT3U(idx, <, FRAGMENTATION_TABLE_SIZE);
2947 fragmentation += space * zfs_frag_table[idx];
2948 }
2949
2950 if (total > 0)
2951 fragmentation /= total;
2952 ASSERT3U(fragmentation, <=, 100);
2953
2954 msp->ms_fragmentation = fragmentation;
2955 }
2956
2957 /*
2958 * Compute a weight -- a selection preference value -- for the given metaslab.
2959 * This is based on the amount of free space, the level of fragmentation,
2960 * the LBA range, and whether the metaslab is loaded.
2961 */
2962 static uint64_t
metaslab_space_weight(metaslab_t * msp)2963 metaslab_space_weight(metaslab_t *msp)
2964 {
2965 metaslab_group_t *mg = msp->ms_group;
2966 vdev_t *vd = mg->mg_vd;
2967 uint64_t weight, space;
2968
2969 ASSERT(MUTEX_HELD(&msp->ms_lock));
2970
2971 /*
2972 * The baseline weight is the metaslab's free space.
2973 */
2974 space = msp->ms_size - metaslab_allocated_space(msp);
2975
2976 if (metaslab_fragmentation_factor_enabled &&
2977 msp->ms_fragmentation != ZFS_FRAG_INVALID) {
2978 /*
2979 * Use the fragmentation information to inversely scale
2980 * down the baseline weight. We need to ensure that we
2981 * don't exclude this metaslab completely when it's 100%
2982 * fragmented. To avoid this we reduce the fragmented value
2983 * by 1.
2984 */
2985 space = (space * (100 - (msp->ms_fragmentation - 1))) / 100;
2986
2987 /*
2988 * If space < SPA_MINBLOCKSIZE, then we will not allocate from
2989 * this metaslab again. The fragmentation metric may have
2990 * decreased the space to something smaller than
2991 * SPA_MINBLOCKSIZE, so reset the space to SPA_MINBLOCKSIZE
2992 * so that we can consume any remaining space.
2993 */
2994 if (space > 0 && space < SPA_MINBLOCKSIZE)
2995 space = SPA_MINBLOCKSIZE;
2996 }
2997 weight = space;
2998
2999 /*
3000 * Modern disks have uniform bit density and constant angular velocity.
3001 * Therefore, the outer recording zones are faster (higher bandwidth)
3002 * than the inner zones by the ratio of outer to inner track diameter,
3003 * which is typically around 2:1. We account for this by assigning
3004 * higher weight to lower metaslabs (multiplier ranging from 2x to 1x).
3005 * In effect, this means that we'll select the metaslab with the most
3006 * free bandwidth rather than simply the one with the most free space.
3007 */
3008 if (!vd->vdev_nonrot && metaslab_lba_weighting_enabled) {
3009 weight = 2 * weight - (msp->ms_id * weight) / vd->vdev_ms_count;
3010 ASSERT(weight >= space && weight <= 2 * space);
3011 }
3012
3013 /*
3014 * If this metaslab is one we're actively using, adjust its
3015 * weight to make it preferable to any inactive metaslab so
3016 * we'll polish it off. If the fragmentation on this metaslab
3017 * has exceed our threshold, then don't mark it active.
3018 */
3019 if (msp->ms_loaded && msp->ms_fragmentation != ZFS_FRAG_INVALID &&
3020 msp->ms_fragmentation <= zfs_metaslab_fragmentation_threshold) {
3021 weight |= (msp->ms_weight & METASLAB_ACTIVE_MASK);
3022 }
3023
3024 WEIGHT_SET_SPACEBASED(weight);
3025 return (weight);
3026 }
3027
3028 /*
3029 * Return the weight of the specified metaslab, according to the segment-based
3030 * weighting algorithm. The metaslab must be loaded. This function can
3031 * be called within a sync pass since it relies only on the metaslab's
3032 * range tree which is always accurate when the metaslab is loaded.
3033 */
3034 static uint64_t
metaslab_weight_from_range_tree(metaslab_t * msp)3035 metaslab_weight_from_range_tree(metaslab_t *msp)
3036 {
3037 uint64_t weight = 0;
3038 uint32_t segments = 0;
3039
3040 ASSERT(msp->ms_loaded);
3041
3042 for (int i = RANGE_TREE_HISTOGRAM_SIZE - 1; i >= SPA_MINBLOCKSHIFT;
3043 i--) {
3044 uint8_t shift = msp->ms_group->mg_vd->vdev_ashift;
3045 int max_idx = SPACE_MAP_HISTOGRAM_SIZE + shift - 1;
3046
3047 segments <<= 1;
3048 segments += msp->ms_allocatable->rt_histogram[i];
3049
3050 /*
3051 * The range tree provides more precision than the space map
3052 * and must be downgraded so that all values fit within the
3053 * space map's histogram. This allows us to compare loaded
3054 * vs. unloaded metaslabs to determine which metaslab is
3055 * considered "best".
3056 */
3057 if (i > max_idx)
3058 continue;
3059
3060 if (segments != 0) {
3061 WEIGHT_SET_COUNT(weight, segments);
3062 WEIGHT_SET_INDEX(weight, i);
3063 WEIGHT_SET_ACTIVE(weight, 0);
3064 break;
3065 }
3066 }
3067 return (weight);
3068 }
3069
3070 /*
3071 * Calculate the weight based on the on-disk histogram. Should be applied
3072 * only to unloaded metaslabs (i.e no incoming allocations) in-order to
3073 * give results consistent with the on-disk state
3074 */
3075 static uint64_t
metaslab_weight_from_spacemap(metaslab_t * msp)3076 metaslab_weight_from_spacemap(metaslab_t *msp)
3077 {
3078 space_map_t *sm = msp->ms_sm;
3079 ASSERT(!msp->ms_loaded);
3080 ASSERT(sm != NULL);
3081 ASSERT3U(space_map_object(sm), !=, 0);
3082 ASSERT3U(sm->sm_dbuf->db_size, ==, sizeof (space_map_phys_t));
3083
3084 /*
3085 * Create a joint histogram from all the segments that have made
3086 * it to the metaslab's space map histogram, that are not yet
3087 * available for allocation because they are still in the freeing
3088 * pipeline (e.g. freeing, freed, and defer trees). Then subtract
3089 * these segments from the space map's histogram to get a more
3090 * accurate weight.
3091 */
3092 uint64_t deferspace_histogram[SPACE_MAP_HISTOGRAM_SIZE] = {0};
3093 for (int i = 0; i < SPACE_MAP_HISTOGRAM_SIZE; i++)
3094 deferspace_histogram[i] += msp->ms_synchist[i];
3095 for (int t = 0; t < TXG_DEFER_SIZE; t++) {
3096 for (int i = 0; i < SPACE_MAP_HISTOGRAM_SIZE; i++) {
3097 deferspace_histogram[i] += msp->ms_deferhist[t][i];
3098 }
3099 }
3100
3101 uint64_t weight = 0;
3102 for (int i = SPACE_MAP_HISTOGRAM_SIZE - 1; i >= 0; i--) {
3103 ASSERT3U(sm->sm_phys->smp_histogram[i], >=,
3104 deferspace_histogram[i]);
3105 uint64_t count =
3106 sm->sm_phys->smp_histogram[i] - deferspace_histogram[i];
3107 if (count != 0) {
3108 WEIGHT_SET_COUNT(weight, count);
3109 WEIGHT_SET_INDEX(weight, i + sm->sm_shift);
3110 WEIGHT_SET_ACTIVE(weight, 0);
3111 break;
3112 }
3113 }
3114 return (weight);
3115 }
3116
3117 /*
3118 * Compute a segment-based weight for the specified metaslab. The weight
3119 * is determined by highest bucket in the histogram. The information
3120 * for the highest bucket is encoded into the weight value.
3121 */
3122 static uint64_t
metaslab_segment_weight(metaslab_t * msp)3123 metaslab_segment_weight(metaslab_t *msp)
3124 {
3125 metaslab_group_t *mg = msp->ms_group;
3126 uint64_t weight = 0;
3127 uint8_t shift = mg->mg_vd->vdev_ashift;
3128
3129 ASSERT(MUTEX_HELD(&msp->ms_lock));
3130
3131 /*
3132 * The metaslab is completely free.
3133 */
3134 if (metaslab_allocated_space(msp) == 0) {
3135 int idx = highbit64(msp->ms_size) - 1;
3136 int max_idx = SPACE_MAP_HISTOGRAM_SIZE + shift - 1;
3137
3138 if (idx < max_idx) {
3139 WEIGHT_SET_COUNT(weight, 1ULL);
3140 WEIGHT_SET_INDEX(weight, idx);
3141 } else {
3142 WEIGHT_SET_COUNT(weight, 1ULL << (idx - max_idx));
3143 WEIGHT_SET_INDEX(weight, max_idx);
3144 }
3145 WEIGHT_SET_ACTIVE(weight, 0);
3146 ASSERT(!WEIGHT_IS_SPACEBASED(weight));
3147 return (weight);
3148 }
3149
3150 ASSERT3U(msp->ms_sm->sm_dbuf->db_size, ==, sizeof (space_map_phys_t));
3151
3152 /*
3153 * If the metaslab is fully allocated then just make the weight 0.
3154 */
3155 if (metaslab_allocated_space(msp) == msp->ms_size)
3156 return (0);
3157 /*
3158 * If the metaslab is already loaded, then use the range tree to
3159 * determine the weight. Otherwise, we rely on the space map information
3160 * to generate the weight.
3161 */
3162 if (msp->ms_loaded) {
3163 weight = metaslab_weight_from_range_tree(msp);
3164 } else {
3165 weight = metaslab_weight_from_spacemap(msp);
3166 }
3167
3168 /*
3169 * If the metaslab was active the last time we calculated its weight
3170 * then keep it active. We want to consume the entire region that
3171 * is associated with this weight.
3172 */
3173 if (msp->ms_activation_weight != 0 && weight != 0)
3174 WEIGHT_SET_ACTIVE(weight, WEIGHT_GET_ACTIVE(msp->ms_weight));
3175 return (weight);
3176 }
3177
3178 /*
3179 * Determine if we should attempt to allocate from this metaslab. If the
3180 * metaslab is loaded, then we can determine if the desired allocation
3181 * can be satisfied by looking at the size of the maximum free segment
3182 * on that metaslab. Otherwise, we make our decision based on the metaslab's
3183 * weight. For segment-based weighting we can determine the maximum
3184 * allocation based on the index encoded in its value. For space-based
3185 * weights we rely on the entire weight (excluding the weight-type bit).
3186 */
3187 static boolean_t
metaslab_should_allocate(metaslab_t * msp,uint64_t asize,boolean_t try_hard)3188 metaslab_should_allocate(metaslab_t *msp, uint64_t asize, boolean_t try_hard)
3189 {
3190 /*
3191 * If the metaslab is loaded, ms_max_size is definitive and we can use
3192 * the fast check. If it's not, the ms_max_size is a lower bound (once
3193 * set), and we should use the fast check as long as we're not in
3194 * try_hard and it's been less than zfs_metaslab_max_size_cache_sec
3195 * seconds since the metaslab was unloaded.
3196 */
3197 if (msp->ms_loaded ||
3198 (msp->ms_max_size != 0 && !try_hard && gethrtime() <
3199 msp->ms_unload_time + SEC2NSEC(zfs_metaslab_max_size_cache_sec)))
3200 return (msp->ms_max_size >= asize);
3201
3202 boolean_t should_allocate;
3203 if (!WEIGHT_IS_SPACEBASED(msp->ms_weight)) {
3204 /*
3205 * The metaslab segment weight indicates segments in the
3206 * range [2^i, 2^(i+1)), where i is the index in the weight.
3207 * Since the asize might be in the middle of the range, we
3208 * should attempt the allocation if asize < 2^(i+1).
3209 */
3210 should_allocate = (asize <
3211 1ULL << (WEIGHT_GET_INDEX(msp->ms_weight) + 1));
3212 } else {
3213 should_allocate = (asize <=
3214 (msp->ms_weight & ~METASLAB_WEIGHT_TYPE));
3215 }
3216
3217 return (should_allocate);
3218 }
3219
3220 static uint64_t
metaslab_weight(metaslab_t * msp,boolean_t nodirty)3221 metaslab_weight(metaslab_t *msp, boolean_t nodirty)
3222 {
3223 vdev_t *vd = msp->ms_group->mg_vd;
3224 spa_t *spa = vd->vdev_spa;
3225 uint64_t weight;
3226
3227 ASSERT(MUTEX_HELD(&msp->ms_lock));
3228
3229 metaslab_set_fragmentation(msp, nodirty);
3230
3231 /*
3232 * Update the maximum size. If the metaslab is loaded, this will
3233 * ensure that we get an accurate maximum size if newly freed space
3234 * has been added back into the free tree. If the metaslab is
3235 * unloaded, we check if there's a larger free segment in the
3236 * unflushed frees. This is a lower bound on the largest allocatable
3237 * segment size. Coalescing of adjacent entries may reveal larger
3238 * allocatable segments, but we aren't aware of those until loading
3239 * the space map into a range tree.
3240 */
3241 if (msp->ms_loaded) {
3242 msp->ms_max_size = metaslab_largest_allocatable(msp);
3243 } else {
3244 msp->ms_max_size = MAX(msp->ms_max_size,
3245 metaslab_largest_unflushed_free(msp));
3246 }
3247
3248 /*
3249 * Segment-based weighting requires space map histogram support.
3250 */
3251 if (zfs_metaslab_segment_weight_enabled &&
3252 spa_feature_is_enabled(spa, SPA_FEATURE_SPACEMAP_HISTOGRAM) &&
3253 (msp->ms_sm == NULL || msp->ms_sm->sm_dbuf->db_size ==
3254 sizeof (space_map_phys_t))) {
3255 weight = metaslab_segment_weight(msp);
3256 } else {
3257 weight = metaslab_space_weight(msp);
3258 }
3259 return (weight);
3260 }
3261
3262 void
metaslab_recalculate_weight_and_sort(metaslab_t * msp)3263 metaslab_recalculate_weight_and_sort(metaslab_t *msp)
3264 {
3265 ASSERT(MUTEX_HELD(&msp->ms_lock));
3266
3267 /* note: we preserve the mask (e.g. indication of primary, etc..) */
3268 uint64_t was_active = msp->ms_weight & METASLAB_ACTIVE_MASK;
3269 metaslab_group_sort(msp->ms_group, msp,
3270 metaslab_weight(msp, B_FALSE) | was_active);
3271 }
3272
3273 static int
metaslab_activate_allocator(metaslab_group_t * mg,metaslab_t * msp,int allocator,uint64_t activation_weight)3274 metaslab_activate_allocator(metaslab_group_t *mg, metaslab_t *msp,
3275 int allocator, uint64_t activation_weight)
3276 {
3277 metaslab_group_allocator_t *mga = &mg->mg_allocator[allocator];
3278 ASSERT(MUTEX_HELD(&msp->ms_lock));
3279
3280 /*
3281 * If we're activating for the claim code, we don't want to actually
3282 * set the metaslab up for a specific allocator.
3283 */
3284 if (activation_weight == METASLAB_WEIGHT_CLAIM) {
3285 ASSERT0(msp->ms_activation_weight);
3286 msp->ms_activation_weight = msp->ms_weight;
3287 metaslab_group_sort(mg, msp, msp->ms_weight |
3288 activation_weight);
3289 return (0);
3290 }
3291
3292 metaslab_t **mspp = (activation_weight == METASLAB_WEIGHT_PRIMARY ?
3293 &mga->mga_primary : &mga->mga_secondary);
3294
3295 mutex_enter(&mg->mg_lock);
3296 if (*mspp != NULL) {
3297 mutex_exit(&mg->mg_lock);
3298 return (EEXIST);
3299 }
3300
3301 *mspp = msp;
3302 ASSERT3S(msp->ms_allocator, ==, -1);
3303 msp->ms_allocator = allocator;
3304 msp->ms_primary = (activation_weight == METASLAB_WEIGHT_PRIMARY);
3305
3306 ASSERT0(msp->ms_activation_weight);
3307 msp->ms_activation_weight = msp->ms_weight;
3308 metaslab_group_sort_impl(mg, msp,
3309 msp->ms_weight | activation_weight);
3310 mutex_exit(&mg->mg_lock);
3311
3312 return (0);
3313 }
3314
3315 static int
metaslab_activate(metaslab_t * msp,int allocator,uint64_t activation_weight)3316 metaslab_activate(metaslab_t *msp, int allocator, uint64_t activation_weight)
3317 {
3318 ASSERT(MUTEX_HELD(&msp->ms_lock));
3319
3320 /*
3321 * The current metaslab is already activated for us so there
3322 * is nothing to do. Already activated though, doesn't mean
3323 * that this metaslab is activated for our allocator nor our
3324 * requested activation weight. The metaslab could have started
3325 * as an active one for our allocator but changed allocators
3326 * while we were waiting to grab its ms_lock or we stole it
3327 * [see find_valid_metaslab()]. This means that there is a
3328 * possibility of passivating a metaslab of another allocator
3329 * or from a different activation mask, from this thread.
3330 */
3331 if ((msp->ms_weight & METASLAB_ACTIVE_MASK) != 0) {
3332 ASSERT(msp->ms_loaded);
3333 return (0);
3334 }
3335
3336 int error = metaslab_load(msp);
3337 if (error != 0) {
3338 metaslab_group_sort(msp->ms_group, msp, 0);
3339 return (error);
3340 }
3341
3342 /*
3343 * When entering metaslab_load() we may have dropped the
3344 * ms_lock because we were loading this metaslab, or we
3345 * were waiting for another thread to load it for us. In
3346 * that scenario, we recheck the weight of the metaslab
3347 * to see if it was activated by another thread.
3348 *
3349 * If the metaslab was activated for another allocator or
3350 * it was activated with a different activation weight (e.g.
3351 * we wanted to make it a primary but it was activated as
3352 * secondary) we return error (EBUSY).
3353 *
3354 * If the metaslab was activated for the same allocator
3355 * and requested activation mask, skip activating it.
3356 */
3357 if ((msp->ms_weight & METASLAB_ACTIVE_MASK) != 0) {
3358 if (msp->ms_allocator != allocator)
3359 return (EBUSY);
3360
3361 if ((msp->ms_weight & activation_weight) == 0)
3362 return (SET_ERROR(EBUSY));
3363
3364 EQUIV((activation_weight == METASLAB_WEIGHT_PRIMARY),
3365 msp->ms_primary);
3366 return (0);
3367 }
3368
3369 /*
3370 * If the metaslab has literally 0 space, it will have weight 0. In
3371 * that case, don't bother activating it. This can happen if the
3372 * metaslab had space during find_valid_metaslab, but another thread
3373 * loaded it and used all that space while we were waiting to grab the
3374 * lock.
3375 */
3376 if (msp->ms_weight == 0) {
3377 ASSERT0(range_tree_space(msp->ms_allocatable));
3378 return (SET_ERROR(ENOSPC));
3379 }
3380
3381 if ((error = metaslab_activate_allocator(msp->ms_group, msp,
3382 allocator, activation_weight)) != 0) {
3383 return (error);
3384 }
3385
3386 ASSERT(msp->ms_loaded);
3387 ASSERT(msp->ms_weight & METASLAB_ACTIVE_MASK);
3388
3389 return (0);
3390 }
3391
3392 static void
metaslab_passivate_allocator(metaslab_group_t * mg,metaslab_t * msp,uint64_t weight)3393 metaslab_passivate_allocator(metaslab_group_t *mg, metaslab_t *msp,
3394 uint64_t weight)
3395 {
3396 ASSERT(MUTEX_HELD(&msp->ms_lock));
3397 ASSERT(msp->ms_loaded);
3398
3399 if (msp->ms_weight & METASLAB_WEIGHT_CLAIM) {
3400 metaslab_group_sort(mg, msp, weight);
3401 return;
3402 }
3403
3404 mutex_enter(&mg->mg_lock);
3405 ASSERT3P(msp->ms_group, ==, mg);
3406 ASSERT3S(0, <=, msp->ms_allocator);
3407 ASSERT3U(msp->ms_allocator, <, mg->mg_allocators);
3408
3409 metaslab_group_allocator_t *mga = &mg->mg_allocator[msp->ms_allocator];
3410 if (msp->ms_primary) {
3411 ASSERT3P(mga->mga_primary, ==, msp);
3412 ASSERT(msp->ms_weight & METASLAB_WEIGHT_PRIMARY);
3413 mga->mga_primary = NULL;
3414 } else {
3415 ASSERT3P(mga->mga_secondary, ==, msp);
3416 ASSERT(msp->ms_weight & METASLAB_WEIGHT_SECONDARY);
3417 mga->mga_secondary = NULL;
3418 }
3419 msp->ms_allocator = -1;
3420 metaslab_group_sort_impl(mg, msp, weight);
3421 mutex_exit(&mg->mg_lock);
3422 }
3423
3424 static void
metaslab_passivate(metaslab_t * msp,uint64_t weight)3425 metaslab_passivate(metaslab_t *msp, uint64_t weight)
3426 {
3427 uint64_t size __maybe_unused = weight & ~METASLAB_WEIGHT_TYPE;
3428
3429 /*
3430 * If size < SPA_MINBLOCKSIZE, then we will not allocate from
3431 * this metaslab again. In that case, it had better be empty,
3432 * or we would be leaving space on the table.
3433 */
3434 ASSERT(!WEIGHT_IS_SPACEBASED(msp->ms_weight) ||
3435 size >= SPA_MINBLOCKSIZE ||
3436 range_tree_space(msp->ms_allocatable) == 0);
3437 ASSERT0(weight & METASLAB_ACTIVE_MASK);
3438
3439 ASSERT(msp->ms_activation_weight != 0);
3440 msp->ms_activation_weight = 0;
3441 metaslab_passivate_allocator(msp->ms_group, msp, weight);
3442 ASSERT0(msp->ms_weight & METASLAB_ACTIVE_MASK);
3443 }
3444
3445 /*
3446 * Segment-based metaslabs are activated once and remain active until
3447 * we either fail an allocation attempt (similar to space-based metaslabs)
3448 * or have exhausted the free space in zfs_metaslab_switch_threshold
3449 * buckets since the metaslab was activated. This function checks to see
3450 * if we've exhausted the zfs_metaslab_switch_threshold buckets in the
3451 * metaslab and passivates it proactively. This will allow us to select a
3452 * metaslab with a larger contiguous region, if any, remaining within this
3453 * metaslab group. If we're in sync pass > 1, then we continue using this
3454 * metaslab so that we don't dirty more block and cause more sync passes.
3455 */
3456 static void
metaslab_segment_may_passivate(metaslab_t * msp)3457 metaslab_segment_may_passivate(metaslab_t *msp)
3458 {
3459 spa_t *spa = msp->ms_group->mg_vd->vdev_spa;
3460
3461 if (WEIGHT_IS_SPACEBASED(msp->ms_weight) || spa_sync_pass(spa) > 1)
3462 return;
3463
3464 /*
3465 * Since we are in the middle of a sync pass, the most accurate
3466 * information that is accessible to us is the in-core range tree
3467 * histogram; calculate the new weight based on that information.
3468 */
3469 uint64_t weight = metaslab_weight_from_range_tree(msp);
3470 int activation_idx = WEIGHT_GET_INDEX(msp->ms_activation_weight);
3471 int current_idx = WEIGHT_GET_INDEX(weight);
3472
3473 if (current_idx <= activation_idx - zfs_metaslab_switch_threshold)
3474 metaslab_passivate(msp, weight);
3475 }
3476
3477 static void
metaslab_preload(void * arg)3478 metaslab_preload(void *arg)
3479 {
3480 metaslab_t *msp = arg;
3481 metaslab_class_t *mc = msp->ms_group->mg_class;
3482 spa_t *spa = mc->mc_spa;
3483 fstrans_cookie_t cookie = spl_fstrans_mark();
3484
3485 ASSERT(!MUTEX_HELD(&msp->ms_group->mg_lock));
3486
3487 mutex_enter(&msp->ms_lock);
3488 (void) metaslab_load(msp);
3489 metaslab_set_selected_txg(msp, spa_syncing_txg(spa));
3490 mutex_exit(&msp->ms_lock);
3491 spl_fstrans_unmark(cookie);
3492 }
3493
3494 static void
metaslab_group_preload(metaslab_group_t * mg)3495 metaslab_group_preload(metaslab_group_t *mg)
3496 {
3497 spa_t *spa = mg->mg_vd->vdev_spa;
3498 metaslab_t *msp;
3499 avl_tree_t *t = &mg->mg_metaslab_tree;
3500 int m = 0;
3501
3502 if (spa_shutting_down(spa) || !metaslab_preload_enabled) {
3503 taskq_wait_outstanding(mg->mg_taskq, 0);
3504 return;
3505 }
3506
3507 mutex_enter(&mg->mg_lock);
3508
3509 /*
3510 * Load the next potential metaslabs
3511 */
3512 for (msp = avl_first(t); msp != NULL; msp = AVL_NEXT(t, msp)) {
3513 ASSERT3P(msp->ms_group, ==, mg);
3514
3515 /*
3516 * We preload only the maximum number of metaslabs specified
3517 * by metaslab_preload_limit. If a metaslab is being forced
3518 * to condense then we preload it too. This will ensure
3519 * that force condensing happens in the next txg.
3520 */
3521 if (++m > metaslab_preload_limit && !msp->ms_condense_wanted) {
3522 continue;
3523 }
3524
3525 VERIFY(taskq_dispatch(mg->mg_taskq, metaslab_preload,
3526 msp, TQ_SLEEP) != TASKQID_INVALID);
3527 }
3528 mutex_exit(&mg->mg_lock);
3529 }
3530
3531 /*
3532 * Determine if the space map's on-disk footprint is past our tolerance for
3533 * inefficiency. We would like to use the following criteria to make our
3534 * decision:
3535 *
3536 * 1. Do not condense if the size of the space map object would dramatically
3537 * increase as a result of writing out the free space range tree.
3538 *
3539 * 2. Condense if the on on-disk space map representation is at least
3540 * zfs_condense_pct/100 times the size of the optimal representation
3541 * (i.e. zfs_condense_pct = 110 and in-core = 1MB, optimal = 1.1MB).
3542 *
3543 * 3. Do not condense if the on-disk size of the space map does not actually
3544 * decrease.
3545 *
3546 * Unfortunately, we cannot compute the on-disk size of the space map in this
3547 * context because we cannot accurately compute the effects of compression, etc.
3548 * Instead, we apply the heuristic described in the block comment for
3549 * zfs_metaslab_condense_block_threshold - we only condense if the space used
3550 * is greater than a threshold number of blocks.
3551 */
3552 static boolean_t
metaslab_should_condense(metaslab_t * msp)3553 metaslab_should_condense(metaslab_t *msp)
3554 {
3555 space_map_t *sm = msp->ms_sm;
3556 vdev_t *vd = msp->ms_group->mg_vd;
3557 uint64_t vdev_blocksize = 1 << vd->vdev_ashift;
3558
3559 ASSERT(MUTEX_HELD(&msp->ms_lock));
3560 ASSERT(msp->ms_loaded);
3561 ASSERT(sm != NULL);
3562 ASSERT3U(spa_sync_pass(vd->vdev_spa), ==, 1);
3563
3564 /*
3565 * We always condense metaslabs that are empty and metaslabs for
3566 * which a condense request has been made.
3567 */
3568 if (range_tree_numsegs(msp->ms_allocatable) == 0 ||
3569 msp->ms_condense_wanted)
3570 return (B_TRUE);
3571
3572 uint64_t record_size = MAX(sm->sm_blksz, vdev_blocksize);
3573 uint64_t object_size = space_map_length(sm);
3574 uint64_t optimal_size = space_map_estimate_optimal_size(sm,
3575 msp->ms_allocatable, SM_NO_VDEVID);
3576
3577 return (object_size >= (optimal_size * zfs_condense_pct / 100) &&
3578 object_size > zfs_metaslab_condense_block_threshold * record_size);
3579 }
3580
3581 /*
3582 * Condense the on-disk space map representation to its minimized form.
3583 * The minimized form consists of a small number of allocations followed
3584 * by the entries of the free range tree (ms_allocatable). The condensed
3585 * spacemap contains all the entries of previous TXGs (including those in
3586 * the pool-wide log spacemaps; thus this is effectively a superset of
3587 * metaslab_flush()), but this TXG's entries still need to be written.
3588 */
3589 static void
metaslab_condense(metaslab_t * msp,dmu_tx_t * tx)3590 metaslab_condense(metaslab_t *msp, dmu_tx_t *tx)
3591 {
3592 range_tree_t *condense_tree;
3593 space_map_t *sm = msp->ms_sm;
3594 uint64_t txg = dmu_tx_get_txg(tx);
3595 spa_t *spa = msp->ms_group->mg_vd->vdev_spa;
3596
3597 ASSERT(MUTEX_HELD(&msp->ms_lock));
3598 ASSERT(msp->ms_loaded);
3599 ASSERT(msp->ms_sm != NULL);
3600
3601 /*
3602 * In order to condense the space map, we need to change it so it
3603 * only describes which segments are currently allocated and free.
3604 *
3605 * All the current free space resides in the ms_allocatable, all
3606 * the ms_defer trees, and all the ms_allocating trees. We ignore
3607 * ms_freed because it is empty because we're in sync pass 1. We
3608 * ignore ms_freeing because these changes are not yet reflected
3609 * in the spacemap (they will be written later this txg).
3610 *
3611 * So to truncate the space map to represent all the entries of
3612 * previous TXGs we do the following:
3613 *
3614 * 1] We create a range tree (condense tree) that is 100% empty.
3615 * 2] We add to it all segments found in the ms_defer trees
3616 * as those segments are marked as free in the original space
3617 * map. We do the same with the ms_allocating trees for the same
3618 * reason. Adding these segments should be a relatively
3619 * inexpensive operation since we expect these trees to have a
3620 * small number of nodes.
3621 * 3] We vacate any unflushed allocs, since they are not frees we
3622 * need to add to the condense tree. Then we vacate any
3623 * unflushed frees as they should already be part of ms_allocatable.
3624 * 4] At this point, we would ideally like to add all segments
3625 * in the ms_allocatable tree from the condense tree. This way
3626 * we would write all the entries of the condense tree as the
3627 * condensed space map, which would only contain freed
3628 * segments with everything else assumed to be allocated.
3629 *
3630 * Doing so can be prohibitively expensive as ms_allocatable can
3631 * be large, and therefore computationally expensive to add to
3632 * the condense_tree. Instead we first sync out an entry marking
3633 * everything as allocated, then the condense_tree and then the
3634 * ms_allocatable, in the condensed space map. While this is not
3635 * optimal, it is typically close to optimal and more importantly
3636 * much cheaper to compute.
3637 *
3638 * 5] Finally, as both of the unflushed trees were written to our
3639 * new and condensed metaslab space map, we basically flushed
3640 * all the unflushed changes to disk, thus we call
3641 * metaslab_flush_update().
3642 */
3643 ASSERT3U(spa_sync_pass(spa), ==, 1);
3644 ASSERT(range_tree_is_empty(msp->ms_freed)); /* since it is pass 1 */
3645
3646 zfs_dbgmsg("condensing: txg %llu, msp[%llu] %px, vdev id %llu, "
3647 "spa %s, smp size %llu, segments %llu, forcing condense=%s",
3648 (u_longlong_t)txg, (u_longlong_t)msp->ms_id, msp,
3649 (u_longlong_t)msp->ms_group->mg_vd->vdev_id,
3650 spa->spa_name, (u_longlong_t)space_map_length(msp->ms_sm),
3651 (u_longlong_t)range_tree_numsegs(msp->ms_allocatable),
3652 msp->ms_condense_wanted ? "TRUE" : "FALSE");
3653
3654 msp->ms_condense_wanted = B_FALSE;
3655
3656 range_seg_type_t type;
3657 uint64_t shift, start;
3658 type = metaslab_calculate_range_tree_type(msp->ms_group->mg_vd, msp,
3659 &start, &shift);
3660
3661 condense_tree = range_tree_create(NULL, type, NULL, start, shift);
3662
3663 for (int t = 0; t < TXG_DEFER_SIZE; t++) {
3664 range_tree_walk(msp->ms_defer[t],
3665 range_tree_add, condense_tree);
3666 }
3667
3668 for (int t = 0; t < TXG_CONCURRENT_STATES; t++) {
3669 range_tree_walk(msp->ms_allocating[(txg + t) & TXG_MASK],
3670 range_tree_add, condense_tree);
3671 }
3672
3673 ASSERT3U(spa->spa_unflushed_stats.sus_memused, >=,
3674 metaslab_unflushed_changes_memused(msp));
3675 spa->spa_unflushed_stats.sus_memused -=
3676 metaslab_unflushed_changes_memused(msp);
3677 range_tree_vacate(msp->ms_unflushed_allocs, NULL, NULL);
3678 range_tree_vacate(msp->ms_unflushed_frees, NULL, NULL);
3679
3680 /*
3681 * We're about to drop the metaslab's lock thus allowing other
3682 * consumers to change it's content. Set the metaslab's ms_condensing
3683 * flag to ensure that allocations on this metaslab do not occur
3684 * while we're in the middle of committing it to disk. This is only
3685 * critical for ms_allocatable as all other range trees use per TXG
3686 * views of their content.
3687 */
3688 msp->ms_condensing = B_TRUE;
3689
3690 mutex_exit(&msp->ms_lock);
3691 uint64_t object = space_map_object(msp->ms_sm);
3692 space_map_truncate(sm,
3693 spa_feature_is_enabled(spa, SPA_FEATURE_LOG_SPACEMAP) ?
3694 zfs_metaslab_sm_blksz_with_log : zfs_metaslab_sm_blksz_no_log, tx);
3695
3696 /*
3697 * space_map_truncate() may have reallocated the spacemap object.
3698 * If so, update the vdev_ms_array.
3699 */
3700 if (space_map_object(msp->ms_sm) != object) {
3701 object = space_map_object(msp->ms_sm);
3702 dmu_write(spa->spa_meta_objset,
3703 msp->ms_group->mg_vd->vdev_ms_array, sizeof (uint64_t) *
3704 msp->ms_id, sizeof (uint64_t), &object, tx);
3705 }
3706
3707 /*
3708 * Note:
3709 * When the log space map feature is enabled, each space map will
3710 * always have ALLOCS followed by FREES for each sync pass. This is
3711 * typically true even when the log space map feature is disabled,
3712 * except from the case where a metaslab goes through metaslab_sync()
3713 * and gets condensed. In that case the metaslab's space map will have
3714 * ALLOCS followed by FREES (due to condensing) followed by ALLOCS
3715 * followed by FREES (due to space_map_write() in metaslab_sync()) for
3716 * sync pass 1.
3717 */
3718 range_tree_t *tmp_tree = range_tree_create(NULL, type, NULL, start,
3719 shift);
3720 range_tree_add(tmp_tree, msp->ms_start, msp->ms_size);
3721 space_map_write(sm, tmp_tree, SM_ALLOC, SM_NO_VDEVID, tx);
3722 space_map_write(sm, msp->ms_allocatable, SM_FREE, SM_NO_VDEVID, tx);
3723 space_map_write(sm, condense_tree, SM_FREE, SM_NO_VDEVID, tx);
3724
3725 range_tree_vacate(condense_tree, NULL, NULL);
3726 range_tree_destroy(condense_tree);
3727 range_tree_vacate(tmp_tree, NULL, NULL);
3728 range_tree_destroy(tmp_tree);
3729 mutex_enter(&msp->ms_lock);
3730
3731 msp->ms_condensing = B_FALSE;
3732 metaslab_flush_update(msp, tx);
3733 }
3734
3735 /*
3736 * Called when the metaslab has been flushed (its own spacemap now reflects
3737 * all the contents of the pool-wide spacemap log). Updates the metaslab's
3738 * metadata and any pool-wide related log space map data (e.g. summary,
3739 * obsolete logs, etc..) to reflect that.
3740 */
3741 static void
metaslab_flush_update(metaslab_t * msp,dmu_tx_t * tx)3742 metaslab_flush_update(metaslab_t *msp, dmu_tx_t *tx)
3743 {
3744 metaslab_group_t *mg = msp->ms_group;
3745 spa_t *spa = mg->mg_vd->vdev_spa;
3746
3747 ASSERT(MUTEX_HELD(&msp->ms_lock));
3748
3749 ASSERT3U(spa_sync_pass(spa), ==, 1);
3750 ASSERT(range_tree_is_empty(msp->ms_unflushed_allocs));
3751 ASSERT(range_tree_is_empty(msp->ms_unflushed_frees));
3752
3753 /*
3754 * Just because a metaslab got flushed, that doesn't mean that
3755 * it will pass through metaslab_sync_done(). Thus, make sure to
3756 * update ms_synced_length here in case it doesn't.
3757 */
3758 msp->ms_synced_length = space_map_length(msp->ms_sm);
3759
3760 /*
3761 * We may end up here from metaslab_condense() without the
3762 * feature being active. In that case this is a no-op.
3763 */
3764 if (!spa_feature_is_active(spa, SPA_FEATURE_LOG_SPACEMAP))
3765 return;
3766
3767 ASSERT(spa_syncing_log_sm(spa) != NULL);
3768 ASSERT(msp->ms_sm != NULL);
3769 ASSERT(metaslab_unflushed_txg(msp) != 0);
3770 ASSERT3P(avl_find(&spa->spa_metaslabs_by_flushed, msp, NULL), ==, msp);
3771
3772 VERIFY3U(tx->tx_txg, <=, spa_final_dirty_txg(spa));
3773
3774 /* update metaslab's position in our flushing tree */
3775 uint64_t ms_prev_flushed_txg = metaslab_unflushed_txg(msp);
3776 mutex_enter(&spa->spa_flushed_ms_lock);
3777 avl_remove(&spa->spa_metaslabs_by_flushed, msp);
3778 metaslab_set_unflushed_txg(msp, spa_syncing_txg(spa), tx);
3779 avl_add(&spa->spa_metaslabs_by_flushed, msp);
3780 mutex_exit(&spa->spa_flushed_ms_lock);
3781
3782 /* update metaslab counts of spa_log_sm_t nodes */
3783 spa_log_sm_decrement_mscount(spa, ms_prev_flushed_txg);
3784 spa_log_sm_increment_current_mscount(spa);
3785
3786 /* cleanup obsolete logs if any */
3787 uint64_t log_blocks_before = spa_log_sm_nblocks(spa);
3788 spa_cleanup_old_sm_logs(spa, tx);
3789 uint64_t log_blocks_after = spa_log_sm_nblocks(spa);
3790 VERIFY3U(log_blocks_after, <=, log_blocks_before);
3791
3792 /* update log space map summary */
3793 uint64_t blocks_gone = log_blocks_before - log_blocks_after;
3794 spa_log_summary_add_flushed_metaslab(spa);
3795 spa_log_summary_decrement_mscount(spa, ms_prev_flushed_txg);
3796 spa_log_summary_decrement_blkcount(spa, blocks_gone);
3797 }
3798
3799 boolean_t
metaslab_flush(metaslab_t * msp,dmu_tx_t * tx)3800 metaslab_flush(metaslab_t *msp, dmu_tx_t *tx)
3801 {
3802 spa_t *spa = msp->ms_group->mg_vd->vdev_spa;
3803
3804 ASSERT(MUTEX_HELD(&msp->ms_lock));
3805 ASSERT3U(spa_sync_pass(spa), ==, 1);
3806 ASSERT(spa_feature_is_active(spa, SPA_FEATURE_LOG_SPACEMAP));
3807
3808 ASSERT(msp->ms_sm != NULL);
3809 ASSERT(metaslab_unflushed_txg(msp) != 0);
3810 ASSERT(avl_find(&spa->spa_metaslabs_by_flushed, msp, NULL) != NULL);
3811
3812 /*
3813 * There is nothing wrong with flushing the same metaslab twice, as
3814 * this codepath should work on that case. However, the current
3815 * flushing scheme makes sure to avoid this situation as we would be
3816 * making all these calls without having anything meaningful to write
3817 * to disk. We assert this behavior here.
3818 */
3819 ASSERT3U(metaslab_unflushed_txg(msp), <, dmu_tx_get_txg(tx));
3820
3821 /*
3822 * We can not flush while loading, because then we would
3823 * not load the ms_unflushed_{allocs,frees}.
3824 */
3825 if (msp->ms_loading)
3826 return (B_FALSE);
3827
3828 metaslab_verify_space(msp, dmu_tx_get_txg(tx));
3829 metaslab_verify_weight_and_frag(msp);
3830
3831 /*
3832 * Metaslab condensing is effectively flushing. Therefore if the
3833 * metaslab can be condensed we can just condense it instead of
3834 * flushing it.
3835 *
3836 * Note that metaslab_condense() does call metaslab_flush_update()
3837 * so we can just return immediately after condensing. We also
3838 * don't need to care about setting ms_flushing or broadcasting
3839 * ms_flush_cv, even if we temporarily drop the ms_lock in
3840 * metaslab_condense(), as the metaslab is already loaded.
3841 */
3842 if (msp->ms_loaded && metaslab_should_condense(msp)) {
3843 metaslab_group_t *mg = msp->ms_group;
3844
3845 /*
3846 * For all histogram operations below refer to the
3847 * comments of metaslab_sync() where we follow a
3848 * similar procedure.
3849 */
3850 metaslab_group_histogram_verify(mg);
3851 metaslab_class_histogram_verify(mg->mg_class);
3852 metaslab_group_histogram_remove(mg, msp);
3853
3854 metaslab_condense(msp, tx);
3855
3856 space_map_histogram_clear(msp->ms_sm);
3857 space_map_histogram_add(msp->ms_sm, msp->ms_allocatable, tx);
3858 ASSERT(range_tree_is_empty(msp->ms_freed));
3859 for (int t = 0; t < TXG_DEFER_SIZE; t++) {
3860 space_map_histogram_add(msp->ms_sm,
3861 msp->ms_defer[t], tx);
3862 }
3863 metaslab_aux_histograms_update(msp);
3864
3865 metaslab_group_histogram_add(mg, msp);
3866 metaslab_group_histogram_verify(mg);
3867 metaslab_class_histogram_verify(mg->mg_class);
3868
3869 metaslab_verify_space(msp, dmu_tx_get_txg(tx));
3870
3871 /*
3872 * Since we recreated the histogram (and potentially
3873 * the ms_sm too while condensing) ensure that the
3874 * weight is updated too because we are not guaranteed
3875 * that this metaslab is dirty and will go through
3876 * metaslab_sync_done().
3877 */
3878 metaslab_recalculate_weight_and_sort(msp);
3879 return (B_TRUE);
3880 }
3881
3882 msp->ms_flushing = B_TRUE;
3883 uint64_t sm_len_before = space_map_length(msp->ms_sm);
3884
3885 mutex_exit(&msp->ms_lock);
3886 space_map_write(msp->ms_sm, msp->ms_unflushed_allocs, SM_ALLOC,
3887 SM_NO_VDEVID, tx);
3888 space_map_write(msp->ms_sm, msp->ms_unflushed_frees, SM_FREE,
3889 SM_NO_VDEVID, tx);
3890 mutex_enter(&msp->ms_lock);
3891
3892 uint64_t sm_len_after = space_map_length(msp->ms_sm);
3893 if (zfs_flags & ZFS_DEBUG_LOG_SPACEMAP) {
3894 zfs_dbgmsg("flushing: txg %llu, spa %s, vdev_id %llu, "
3895 "ms_id %llu, unflushed_allocs %llu, unflushed_frees %llu, "
3896 "appended %llu bytes", (u_longlong_t)dmu_tx_get_txg(tx),
3897 spa_name(spa),
3898 (u_longlong_t)msp->ms_group->mg_vd->vdev_id,
3899 (u_longlong_t)msp->ms_id,
3900 (u_longlong_t)range_tree_space(msp->ms_unflushed_allocs),
3901 (u_longlong_t)range_tree_space(msp->ms_unflushed_frees),
3902 (u_longlong_t)(sm_len_after - sm_len_before));
3903 }
3904
3905 ASSERT3U(spa->spa_unflushed_stats.sus_memused, >=,
3906 metaslab_unflushed_changes_memused(msp));
3907 spa->spa_unflushed_stats.sus_memused -=
3908 metaslab_unflushed_changes_memused(msp);
3909 range_tree_vacate(msp->ms_unflushed_allocs, NULL, NULL);
3910 range_tree_vacate(msp->ms_unflushed_frees, NULL, NULL);
3911
3912 metaslab_verify_space(msp, dmu_tx_get_txg(tx));
3913 metaslab_verify_weight_and_frag(msp);
3914
3915 metaslab_flush_update(msp, tx);
3916
3917 metaslab_verify_space(msp, dmu_tx_get_txg(tx));
3918 metaslab_verify_weight_and_frag(msp);
3919
3920 msp->ms_flushing = B_FALSE;
3921 cv_broadcast(&msp->ms_flush_cv);
3922 return (B_TRUE);
3923 }
3924
3925 /*
3926 * Write a metaslab to disk in the context of the specified transaction group.
3927 */
3928 void
metaslab_sync(metaslab_t * msp,uint64_t txg)3929 metaslab_sync(metaslab_t *msp, uint64_t txg)
3930 {
3931 metaslab_group_t *mg = msp->ms_group;
3932 vdev_t *vd = mg->mg_vd;
3933 spa_t *spa = vd->vdev_spa;
3934 objset_t *mos = spa_meta_objset(spa);
3935 range_tree_t *alloctree = msp->ms_allocating[txg & TXG_MASK];
3936 dmu_tx_t *tx;
3937
3938 ASSERT(!vd->vdev_ishole);
3939
3940 /*
3941 * This metaslab has just been added so there's no work to do now.
3942 */
3943 if (msp->ms_new) {
3944 ASSERT0(range_tree_space(alloctree));
3945 ASSERT0(range_tree_space(msp->ms_freeing));
3946 ASSERT0(range_tree_space(msp->ms_freed));
3947 ASSERT0(range_tree_space(msp->ms_checkpointing));
3948 ASSERT0(range_tree_space(msp->ms_trim));
3949 return;
3950 }
3951
3952 /*
3953 * Normally, we don't want to process a metaslab if there are no
3954 * allocations or frees to perform. However, if the metaslab is being
3955 * forced to condense, it's loaded and we're not beyond the final
3956 * dirty txg, we need to let it through. Not condensing beyond the
3957 * final dirty txg prevents an issue where metaslabs that need to be
3958 * condensed but were loaded for other reasons could cause a panic
3959 * here. By only checking the txg in that branch of the conditional,
3960 * we preserve the utility of the VERIFY statements in all other
3961 * cases.
3962 */
3963 if (range_tree_is_empty(alloctree) &&
3964 range_tree_is_empty(msp->ms_freeing) &&
3965 range_tree_is_empty(msp->ms_checkpointing) &&
3966 !(msp->ms_loaded && msp->ms_condense_wanted &&
3967 txg <= spa_final_dirty_txg(spa)))
3968 return;
3969
3970
3971 VERIFY3U(txg, <=, spa_final_dirty_txg(spa));
3972
3973 /*
3974 * The only state that can actually be changing concurrently
3975 * with metaslab_sync() is the metaslab's ms_allocatable. No
3976 * other thread can be modifying this txg's alloc, freeing,
3977 * freed, or space_map_phys_t. We drop ms_lock whenever we
3978 * could call into the DMU, because the DMU can call down to
3979 * us (e.g. via zio_free()) at any time.
3980 *
3981 * The spa_vdev_remove_thread() can be reading metaslab state
3982 * concurrently, and it is locked out by the ms_sync_lock.
3983 * Note that the ms_lock is insufficient for this, because it
3984 * is dropped by space_map_write().
3985 */
3986 tx = dmu_tx_create_assigned(spa_get_dsl(spa), txg);
3987
3988 /*
3989 * Generate a log space map if one doesn't exist already.
3990 */
3991 spa_generate_syncing_log_sm(spa, tx);
3992
3993 if (msp->ms_sm == NULL) {
3994 uint64_t new_object = space_map_alloc(mos,
3995 spa_feature_is_enabled(spa, SPA_FEATURE_LOG_SPACEMAP) ?
3996 zfs_metaslab_sm_blksz_with_log :
3997 zfs_metaslab_sm_blksz_no_log, tx);
3998 VERIFY3U(new_object, !=, 0);
3999
4000 dmu_write(mos, vd->vdev_ms_array, sizeof (uint64_t) *
4001 msp->ms_id, sizeof (uint64_t), &new_object, tx);
4002
4003 VERIFY0(space_map_open(&msp->ms_sm, mos, new_object,
4004 msp->ms_start, msp->ms_size, vd->vdev_ashift));
4005 ASSERT(msp->ms_sm != NULL);
4006
4007 ASSERT(range_tree_is_empty(msp->ms_unflushed_allocs));
4008 ASSERT(range_tree_is_empty(msp->ms_unflushed_frees));
4009 ASSERT0(metaslab_allocated_space(msp));
4010 }
4011
4012 if (metaslab_unflushed_txg(msp) == 0 &&
4013 spa_feature_is_active(spa, SPA_FEATURE_LOG_SPACEMAP)) {
4014 ASSERT(spa_syncing_log_sm(spa) != NULL);
4015
4016 metaslab_set_unflushed_txg(msp, spa_syncing_txg(spa), tx);
4017 spa_log_sm_increment_current_mscount(spa);
4018 spa_log_summary_add_flushed_metaslab(spa);
4019
4020 ASSERT(msp->ms_sm != NULL);
4021 mutex_enter(&spa->spa_flushed_ms_lock);
4022 avl_add(&spa->spa_metaslabs_by_flushed, msp);
4023 mutex_exit(&spa->spa_flushed_ms_lock);
4024
4025 ASSERT(range_tree_is_empty(msp->ms_unflushed_allocs));
4026 ASSERT(range_tree_is_empty(msp->ms_unflushed_frees));
4027 }
4028
4029 if (!range_tree_is_empty(msp->ms_checkpointing) &&
4030 vd->vdev_checkpoint_sm == NULL) {
4031 ASSERT(spa_has_checkpoint(spa));
4032
4033 uint64_t new_object = space_map_alloc(mos,
4034 zfs_vdev_standard_sm_blksz, tx);
4035 VERIFY3U(new_object, !=, 0);
4036
4037 VERIFY0(space_map_open(&vd->vdev_checkpoint_sm,
4038 mos, new_object, 0, vd->vdev_asize, vd->vdev_ashift));
4039 ASSERT3P(vd->vdev_checkpoint_sm, !=, NULL);
4040
4041 /*
4042 * We save the space map object as an entry in vdev_top_zap
4043 * so it can be retrieved when the pool is reopened after an
4044 * export or through zdb.
4045 */
4046 VERIFY0(zap_add(vd->vdev_spa->spa_meta_objset,
4047 vd->vdev_top_zap, VDEV_TOP_ZAP_POOL_CHECKPOINT_SM,
4048 sizeof (new_object), 1, &new_object, tx));
4049 }
4050
4051 mutex_enter(&msp->ms_sync_lock);
4052 mutex_enter(&msp->ms_lock);
4053
4054 /*
4055 * Note: metaslab_condense() clears the space map's histogram.
4056 * Therefore we must verify and remove this histogram before
4057 * condensing.
4058 */
4059 metaslab_group_histogram_verify(mg);
4060 metaslab_class_histogram_verify(mg->mg_class);
4061 metaslab_group_histogram_remove(mg, msp);
4062
4063 if (spa->spa_sync_pass == 1 && msp->ms_loaded &&
4064 metaslab_should_condense(msp))
4065 metaslab_condense(msp, tx);
4066
4067 /*
4068 * We'll be going to disk to sync our space accounting, thus we
4069 * drop the ms_lock during that time so allocations coming from
4070 * open-context (ZIL) for future TXGs do not block.
4071 */
4072 mutex_exit(&msp->ms_lock);
4073 space_map_t *log_sm = spa_syncing_log_sm(spa);
4074 if (log_sm != NULL) {
4075 ASSERT(spa_feature_is_enabled(spa, SPA_FEATURE_LOG_SPACEMAP));
4076
4077 space_map_write(log_sm, alloctree, SM_ALLOC,
4078 vd->vdev_id, tx);
4079 space_map_write(log_sm, msp->ms_freeing, SM_FREE,
4080 vd->vdev_id, tx);
4081 mutex_enter(&msp->ms_lock);
4082
4083 ASSERT3U(spa->spa_unflushed_stats.sus_memused, >=,
4084 metaslab_unflushed_changes_memused(msp));
4085 spa->spa_unflushed_stats.sus_memused -=
4086 metaslab_unflushed_changes_memused(msp);
4087 range_tree_remove_xor_add(alloctree,
4088 msp->ms_unflushed_frees, msp->ms_unflushed_allocs);
4089 range_tree_remove_xor_add(msp->ms_freeing,
4090 msp->ms_unflushed_allocs, msp->ms_unflushed_frees);
4091 spa->spa_unflushed_stats.sus_memused +=
4092 metaslab_unflushed_changes_memused(msp);
4093 } else {
4094 ASSERT(!spa_feature_is_enabled(spa, SPA_FEATURE_LOG_SPACEMAP));
4095
4096 space_map_write(msp->ms_sm, alloctree, SM_ALLOC,
4097 SM_NO_VDEVID, tx);
4098 space_map_write(msp->ms_sm, msp->ms_freeing, SM_FREE,
4099 SM_NO_VDEVID, tx);
4100 mutex_enter(&msp->ms_lock);
4101 }
4102
4103 msp->ms_allocated_space += range_tree_space(alloctree);
4104 ASSERT3U(msp->ms_allocated_space, >=,
4105 range_tree_space(msp->ms_freeing));
4106 msp->ms_allocated_space -= range_tree_space(msp->ms_freeing);
4107
4108 if (!range_tree_is_empty(msp->ms_checkpointing)) {
4109 ASSERT(spa_has_checkpoint(spa));
4110 ASSERT3P(vd->vdev_checkpoint_sm, !=, NULL);
4111
4112 /*
4113 * Since we are doing writes to disk and the ms_checkpointing
4114 * tree won't be changing during that time, we drop the
4115 * ms_lock while writing to the checkpoint space map, for the
4116 * same reason mentioned above.
4117 */
4118 mutex_exit(&msp->ms_lock);
4119 space_map_write(vd->vdev_checkpoint_sm,
4120 msp->ms_checkpointing, SM_FREE, SM_NO_VDEVID, tx);
4121 mutex_enter(&msp->ms_lock);
4122
4123 spa->spa_checkpoint_info.sci_dspace +=
4124 range_tree_space(msp->ms_checkpointing);
4125 vd->vdev_stat.vs_checkpoint_space +=
4126 range_tree_space(msp->ms_checkpointing);
4127 ASSERT3U(vd->vdev_stat.vs_checkpoint_space, ==,
4128 -space_map_allocated(vd->vdev_checkpoint_sm));
4129
4130 range_tree_vacate(msp->ms_checkpointing, NULL, NULL);
4131 }
4132
4133 if (msp->ms_loaded) {
4134 /*
4135 * When the space map is loaded, we have an accurate
4136 * histogram in the range tree. This gives us an opportunity
4137 * to bring the space map's histogram up-to-date so we clear
4138 * it first before updating it.
4139 */
4140 space_map_histogram_clear(msp->ms_sm);
4141 space_map_histogram_add(msp->ms_sm, msp->ms_allocatable, tx);
4142
4143 /*
4144 * Since we've cleared the histogram we need to add back
4145 * any free space that has already been processed, plus
4146 * any deferred space. This allows the on-disk histogram
4147 * to accurately reflect all free space even if some space
4148 * is not yet available for allocation (i.e. deferred).
4149 */
4150 space_map_histogram_add(msp->ms_sm, msp->ms_freed, tx);
4151
4152 /*
4153 * Add back any deferred free space that has not been
4154 * added back into the in-core free tree yet. This will
4155 * ensure that we don't end up with a space map histogram
4156 * that is completely empty unless the metaslab is fully
4157 * allocated.
4158 */
4159 for (int t = 0; t < TXG_DEFER_SIZE; t++) {
4160 space_map_histogram_add(msp->ms_sm,
4161 msp->ms_defer[t], tx);
4162 }
4163 }
4164
4165 /*
4166 * Always add the free space from this sync pass to the space
4167 * map histogram. We want to make sure that the on-disk histogram
4168 * accounts for all free space. If the space map is not loaded,
4169 * then we will lose some accuracy but will correct it the next
4170 * time we load the space map.
4171 */
4172 space_map_histogram_add(msp->ms_sm, msp->ms_freeing, tx);
4173 metaslab_aux_histograms_update(msp);
4174
4175 metaslab_group_histogram_add(mg, msp);
4176 metaslab_group_histogram_verify(mg);
4177 metaslab_class_histogram_verify(mg->mg_class);
4178
4179 /*
4180 * For sync pass 1, we avoid traversing this txg's free range tree
4181 * and instead will just swap the pointers for freeing and freed.
4182 * We can safely do this since the freed_tree is guaranteed to be
4183 * empty on the initial pass.
4184 *
4185 * Keep in mind that even if we are currently using a log spacemap
4186 * we want current frees to end up in the ms_allocatable (but not
4187 * get appended to the ms_sm) so their ranges can be reused as usual.
4188 */
4189 if (spa_sync_pass(spa) == 1) {
4190 range_tree_swap(&msp->ms_freeing, &msp->ms_freed);
4191 ASSERT0(msp->ms_allocated_this_txg);
4192 } else {
4193 range_tree_vacate(msp->ms_freeing,
4194 range_tree_add, msp->ms_freed);
4195 }
4196 msp->ms_allocated_this_txg += range_tree_space(alloctree);
4197 range_tree_vacate(alloctree, NULL, NULL);
4198
4199 ASSERT0(range_tree_space(msp->ms_allocating[txg & TXG_MASK]));
4200 ASSERT0(range_tree_space(msp->ms_allocating[TXG_CLEAN(txg)
4201 & TXG_MASK]));
4202 ASSERT0(range_tree_space(msp->ms_freeing));
4203 ASSERT0(range_tree_space(msp->ms_checkpointing));
4204
4205 mutex_exit(&msp->ms_lock);
4206
4207 /*
4208 * Verify that the space map object ID has been recorded in the
4209 * vdev_ms_array.
4210 */
4211 uint64_t object;
4212 VERIFY0(dmu_read(mos, vd->vdev_ms_array,
4213 msp->ms_id * sizeof (uint64_t), sizeof (uint64_t), &object, 0));
4214 VERIFY3U(object, ==, space_map_object(msp->ms_sm));
4215
4216 mutex_exit(&msp->ms_sync_lock);
4217 dmu_tx_commit(tx);
4218 }
4219
4220 static void
metaslab_evict(metaslab_t * msp,uint64_t txg)4221 metaslab_evict(metaslab_t *msp, uint64_t txg)
4222 {
4223 if (!msp->ms_loaded || msp->ms_disabled != 0)
4224 return;
4225
4226 for (int t = 1; t < TXG_CONCURRENT_STATES; t++) {
4227 VERIFY0(range_tree_space(
4228 msp->ms_allocating[(txg + t) & TXG_MASK]));
4229 }
4230 if (msp->ms_allocator != -1)
4231 metaslab_passivate(msp, msp->ms_weight & ~METASLAB_ACTIVE_MASK);
4232
4233 if (!metaslab_debug_unload)
4234 metaslab_unload(msp);
4235 }
4236
4237 /*
4238 * Called after a transaction group has completely synced to mark
4239 * all of the metaslab's free space as usable.
4240 */
4241 void
metaslab_sync_done(metaslab_t * msp,uint64_t txg)4242 metaslab_sync_done(metaslab_t *msp, uint64_t txg)
4243 {
4244 metaslab_group_t *mg = msp->ms_group;
4245 vdev_t *vd = mg->mg_vd;
4246 spa_t *spa = vd->vdev_spa;
4247 range_tree_t **defer_tree;
4248 int64_t alloc_delta, defer_delta;
4249 boolean_t defer_allowed = B_TRUE;
4250
4251 ASSERT(!vd->vdev_ishole);
4252
4253 mutex_enter(&msp->ms_lock);
4254
4255 if (msp->ms_new) {
4256 /* this is a new metaslab, add its capacity to the vdev */
4257 metaslab_space_update(vd, mg->mg_class, 0, 0, msp->ms_size);
4258
4259 /* there should be no allocations nor frees at this point */
4260 VERIFY0(msp->ms_allocated_this_txg);
4261 VERIFY0(range_tree_space(msp->ms_freed));
4262 }
4263
4264 ASSERT0(range_tree_space(msp->ms_freeing));
4265 ASSERT0(range_tree_space(msp->ms_checkpointing));
4266
4267 defer_tree = &msp->ms_defer[txg % TXG_DEFER_SIZE];
4268
4269 uint64_t free_space = metaslab_class_get_space(spa_normal_class(spa)) -
4270 metaslab_class_get_alloc(spa_normal_class(spa));
4271 if (free_space <= spa_get_slop_space(spa) || vd->vdev_removing) {
4272 defer_allowed = B_FALSE;
4273 }
4274
4275 defer_delta = 0;
4276 alloc_delta = msp->ms_allocated_this_txg -
4277 range_tree_space(msp->ms_freed);
4278
4279 if (defer_allowed) {
4280 defer_delta = range_tree_space(msp->ms_freed) -
4281 range_tree_space(*defer_tree);
4282 } else {
4283 defer_delta -= range_tree_space(*defer_tree);
4284 }
4285 metaslab_space_update(vd, mg->mg_class, alloc_delta + defer_delta,
4286 defer_delta, 0);
4287
4288 if (spa_syncing_log_sm(spa) == NULL) {
4289 /*
4290 * If there's a metaslab_load() in progress and we don't have
4291 * a log space map, it means that we probably wrote to the
4292 * metaslab's space map. If this is the case, we need to
4293 * make sure that we wait for the load to complete so that we
4294 * have a consistent view at the in-core side of the metaslab.
4295 */
4296 metaslab_load_wait(msp);
4297 } else {
4298 ASSERT(spa_feature_is_active(spa, SPA_FEATURE_LOG_SPACEMAP));
4299 }
4300
4301 /*
4302 * When auto-trimming is enabled, free ranges which are added to
4303 * ms_allocatable are also be added to ms_trim. The ms_trim tree is
4304 * periodically consumed by the vdev_autotrim_thread() which issues
4305 * trims for all ranges and then vacates the tree. The ms_trim tree
4306 * can be discarded at any time with the sole consequence of recent
4307 * frees not being trimmed.
4308 */
4309 if (spa_get_autotrim(spa) == SPA_AUTOTRIM_ON) {
4310 range_tree_walk(*defer_tree, range_tree_add, msp->ms_trim);
4311 if (!defer_allowed) {
4312 range_tree_walk(msp->ms_freed, range_tree_add,
4313 msp->ms_trim);
4314 }
4315 } else {
4316 range_tree_vacate(msp->ms_trim, NULL, NULL);
4317 }
4318
4319 /*
4320 * Move the frees from the defer_tree back to the free
4321 * range tree (if it's loaded). Swap the freed_tree and
4322 * the defer_tree -- this is safe to do because we've
4323 * just emptied out the defer_tree.
4324 */
4325 range_tree_vacate(*defer_tree,
4326 msp->ms_loaded ? range_tree_add : NULL, msp->ms_allocatable);
4327 if (defer_allowed) {
4328 range_tree_swap(&msp->ms_freed, defer_tree);
4329 } else {
4330 range_tree_vacate(msp->ms_freed,
4331 msp->ms_loaded ? range_tree_add : NULL,
4332 msp->ms_allocatable);
4333 }
4334
4335 msp->ms_synced_length = space_map_length(msp->ms_sm);
4336
4337 msp->ms_deferspace += defer_delta;
4338 ASSERT3S(msp->ms_deferspace, >=, 0);
4339 ASSERT3S(msp->ms_deferspace, <=, msp->ms_size);
4340 if (msp->ms_deferspace != 0) {
4341 /*
4342 * Keep syncing this metaslab until all deferred frees
4343 * are back in circulation.
4344 */
4345 vdev_dirty(vd, VDD_METASLAB, msp, txg + 1);
4346 }
4347 metaslab_aux_histograms_update_done(msp, defer_allowed);
4348
4349 if (msp->ms_new) {
4350 msp->ms_new = B_FALSE;
4351 mutex_enter(&mg->mg_lock);
4352 mg->mg_ms_ready++;
4353 mutex_exit(&mg->mg_lock);
4354 }
4355
4356 /*
4357 * Re-sort metaslab within its group now that we've adjusted
4358 * its allocatable space.
4359 */
4360 metaslab_recalculate_weight_and_sort(msp);
4361
4362 ASSERT0(range_tree_space(msp->ms_allocating[txg & TXG_MASK]));
4363 ASSERT0(range_tree_space(msp->ms_freeing));
4364 ASSERT0(range_tree_space(msp->ms_freed));
4365 ASSERT0(range_tree_space(msp->ms_checkpointing));
4366 msp->ms_allocating_total -= msp->ms_allocated_this_txg;
4367 msp->ms_allocated_this_txg = 0;
4368 mutex_exit(&msp->ms_lock);
4369 }
4370
4371 void
metaslab_sync_reassess(metaslab_group_t * mg)4372 metaslab_sync_reassess(metaslab_group_t *mg)
4373 {
4374 spa_t *spa = mg->mg_class->mc_spa;
4375
4376 spa_config_enter(spa, SCL_ALLOC, FTAG, RW_READER);
4377 metaslab_group_alloc_update(mg);
4378 mg->mg_fragmentation = metaslab_group_fragmentation(mg);
4379
4380 /*
4381 * Preload the next potential metaslabs but only on active
4382 * metaslab groups. We can get into a state where the metaslab
4383 * is no longer active since we dirty metaslabs as we remove a
4384 * a device, thus potentially making the metaslab group eligible
4385 * for preloading.
4386 */
4387 if (mg->mg_activation_count > 0) {
4388 metaslab_group_preload(mg);
4389 }
4390 spa_config_exit(spa, SCL_ALLOC, FTAG);
4391 }
4392
4393 /*
4394 * When writing a ditto block (i.e. more than one DVA for a given BP) on
4395 * the same vdev as an existing DVA of this BP, then try to allocate it
4396 * on a different metaslab than existing DVAs (i.e. a unique metaslab).
4397 */
4398 static boolean_t
metaslab_is_unique(metaslab_t * msp,dva_t * dva)4399 metaslab_is_unique(metaslab_t *msp, dva_t *dva)
4400 {
4401 uint64_t dva_ms_id;
4402
4403 if (DVA_GET_ASIZE(dva) == 0)
4404 return (B_TRUE);
4405
4406 if (msp->ms_group->mg_vd->vdev_id != DVA_GET_VDEV(dva))
4407 return (B_TRUE);
4408
4409 dva_ms_id = DVA_GET_OFFSET(dva) >> msp->ms_group->mg_vd->vdev_ms_shift;
4410
4411 return (msp->ms_id != dva_ms_id);
4412 }
4413
4414 /*
4415 * ==========================================================================
4416 * Metaslab allocation tracing facility
4417 * ==========================================================================
4418 */
4419
4420 /*
4421 * Add an allocation trace element to the allocation tracing list.
4422 */
4423 static void
metaslab_trace_add(zio_alloc_list_t * zal,metaslab_group_t * mg,metaslab_t * msp,uint64_t psize,uint32_t dva_id,uint64_t offset,int allocator)4424 metaslab_trace_add(zio_alloc_list_t *zal, metaslab_group_t *mg,
4425 metaslab_t *msp, uint64_t psize, uint32_t dva_id, uint64_t offset,
4426 int allocator)
4427 {
4428 metaslab_alloc_trace_t *mat;
4429
4430 if (!metaslab_trace_enabled)
4431 return;
4432
4433 /*
4434 * When the tracing list reaches its maximum we remove
4435 * the second element in the list before adding a new one.
4436 * By removing the second element we preserve the original
4437 * entry as a clue to what allocations steps have already been
4438 * performed.
4439 */
4440 if (zal->zal_size == metaslab_trace_max_entries) {
4441 metaslab_alloc_trace_t *mat_next;
4442 #ifdef ZFS_DEBUG
4443 panic("too many entries in allocation list");
4444 #endif
4445 METASLABSTAT_BUMP(metaslabstat_trace_over_limit);
4446 zal->zal_size--;
4447 mat_next = list_next(&zal->zal_list, list_head(&zal->zal_list));
4448 list_remove(&zal->zal_list, mat_next);
4449 kmem_cache_free(metaslab_alloc_trace_cache, mat_next);
4450 }
4451
4452 mat = kmem_cache_alloc(metaslab_alloc_trace_cache, KM_SLEEP);
4453 list_link_init(&mat->mat_list_node);
4454 mat->mat_mg = mg;
4455 mat->mat_msp = msp;
4456 mat->mat_size = psize;
4457 mat->mat_dva_id = dva_id;
4458 mat->mat_offset = offset;
4459 mat->mat_weight = 0;
4460 mat->mat_allocator = allocator;
4461
4462 if (msp != NULL)
4463 mat->mat_weight = msp->ms_weight;
4464
4465 /*
4466 * The list is part of the zio so locking is not required. Only
4467 * a single thread will perform allocations for a given zio.
4468 */
4469 list_insert_tail(&zal->zal_list, mat);
4470 zal->zal_size++;
4471
4472 ASSERT3U(zal->zal_size, <=, metaslab_trace_max_entries);
4473 }
4474
4475 void
metaslab_trace_init(zio_alloc_list_t * zal)4476 metaslab_trace_init(zio_alloc_list_t *zal)
4477 {
4478 list_create(&zal->zal_list, sizeof (metaslab_alloc_trace_t),
4479 offsetof(metaslab_alloc_trace_t, mat_list_node));
4480 zal->zal_size = 0;
4481 }
4482
4483 void
metaslab_trace_fini(zio_alloc_list_t * zal)4484 metaslab_trace_fini(zio_alloc_list_t *zal)
4485 {
4486 metaslab_alloc_trace_t *mat;
4487
4488 while ((mat = list_remove_head(&zal->zal_list)) != NULL)
4489 kmem_cache_free(metaslab_alloc_trace_cache, mat);
4490 list_destroy(&zal->zal_list);
4491 zal->zal_size = 0;
4492 }
4493
4494 /*
4495 * ==========================================================================
4496 * Metaslab block operations
4497 * ==========================================================================
4498 */
4499
4500 static void
metaslab_group_alloc_increment(spa_t * spa,uint64_t vdev,void * tag,int flags,int allocator)4501 metaslab_group_alloc_increment(spa_t *spa, uint64_t vdev, void *tag, int flags,
4502 int allocator)
4503 {
4504 if (!(flags & METASLAB_ASYNC_ALLOC) ||
4505 (flags & METASLAB_DONT_THROTTLE))
4506 return;
4507
4508 metaslab_group_t *mg = vdev_lookup_top(spa, vdev)->vdev_mg;
4509 if (!mg->mg_class->mc_alloc_throttle_enabled)
4510 return;
4511
4512 metaslab_group_allocator_t *mga = &mg->mg_allocator[allocator];
4513 (void) zfs_refcount_add(&mga->mga_alloc_queue_depth, tag);
4514 }
4515
4516 static void
metaslab_group_increment_qdepth(metaslab_group_t * mg,int allocator)4517 metaslab_group_increment_qdepth(metaslab_group_t *mg, int allocator)
4518 {
4519 metaslab_group_allocator_t *mga = &mg->mg_allocator[allocator];
4520 metaslab_class_allocator_t *mca =
4521 &mg->mg_class->mc_allocator[allocator];
4522 uint64_t max = mg->mg_max_alloc_queue_depth;
4523 uint64_t cur = mga->mga_cur_max_alloc_queue_depth;
4524 while (cur < max) {
4525 if (atomic_cas_64(&mga->mga_cur_max_alloc_queue_depth,
4526 cur, cur + 1) == cur) {
4527 atomic_inc_64(&mca->mca_alloc_max_slots);
4528 return;
4529 }
4530 cur = mga->mga_cur_max_alloc_queue_depth;
4531 }
4532 }
4533
4534 void
metaslab_group_alloc_decrement(spa_t * spa,uint64_t vdev,void * tag,int flags,int allocator,boolean_t io_complete)4535 metaslab_group_alloc_decrement(spa_t *spa, uint64_t vdev, void *tag, int flags,
4536 int allocator, boolean_t io_complete)
4537 {
4538 if (!(flags & METASLAB_ASYNC_ALLOC) ||
4539 (flags & METASLAB_DONT_THROTTLE))
4540 return;
4541
4542 metaslab_group_t *mg = vdev_lookup_top(spa, vdev)->vdev_mg;
4543 if (!mg->mg_class->mc_alloc_throttle_enabled)
4544 return;
4545
4546 metaslab_group_allocator_t *mga = &mg->mg_allocator[allocator];
4547 (void) zfs_refcount_remove(&mga->mga_alloc_queue_depth, tag);
4548 if (io_complete)
4549 metaslab_group_increment_qdepth(mg, allocator);
4550 }
4551
4552 void
metaslab_group_alloc_verify(spa_t * spa,const blkptr_t * bp,void * tag,int allocator)4553 metaslab_group_alloc_verify(spa_t *spa, const blkptr_t *bp, void *tag,
4554 int allocator)
4555 {
4556 #ifdef ZFS_DEBUG
4557 const dva_t *dva = bp->blk_dva;
4558 int ndvas = BP_GET_NDVAS(bp);
4559
4560 for (int d = 0; d < ndvas; d++) {
4561 uint64_t vdev = DVA_GET_VDEV(&dva[d]);
4562 metaslab_group_t *mg = vdev_lookup_top(spa, vdev)->vdev_mg;
4563 metaslab_group_allocator_t *mga = &mg->mg_allocator[allocator];
4564 VERIFY(zfs_refcount_not_held(&mga->mga_alloc_queue_depth, tag));
4565 }
4566 #endif
4567 }
4568
4569 static uint64_t
metaslab_block_alloc(metaslab_t * msp,uint64_t size,uint64_t txg)4570 metaslab_block_alloc(metaslab_t *msp, uint64_t size, uint64_t txg)
4571 {
4572 uint64_t start;
4573 range_tree_t *rt = msp->ms_allocatable;
4574 metaslab_class_t *mc = msp->ms_group->mg_class;
4575
4576 ASSERT(MUTEX_HELD(&msp->ms_lock));
4577 VERIFY(!msp->ms_condensing);
4578 VERIFY0(msp->ms_disabled);
4579
4580 start = mc->mc_ops->msop_alloc(msp, size);
4581 if (start != -1ULL) {
4582 metaslab_group_t *mg = msp->ms_group;
4583 vdev_t *vd = mg->mg_vd;
4584
4585 VERIFY0(P2PHASE(start, 1ULL << vd->vdev_ashift));
4586 VERIFY0(P2PHASE(size, 1ULL << vd->vdev_ashift));
4587 VERIFY3U(range_tree_space(rt) - size, <=, msp->ms_size);
4588 range_tree_remove(rt, start, size);
4589 range_tree_clear(msp->ms_trim, start, size);
4590
4591 if (range_tree_is_empty(msp->ms_allocating[txg & TXG_MASK]))
4592 vdev_dirty(mg->mg_vd, VDD_METASLAB, msp, txg);
4593
4594 range_tree_add(msp->ms_allocating[txg & TXG_MASK], start, size);
4595 msp->ms_allocating_total += size;
4596
4597 /* Track the last successful allocation */
4598 msp->ms_alloc_txg = txg;
4599 metaslab_verify_space(msp, txg);
4600 }
4601
4602 /*
4603 * Now that we've attempted the allocation we need to update the
4604 * metaslab's maximum block size since it may have changed.
4605 */
4606 msp->ms_max_size = metaslab_largest_allocatable(msp);
4607 return (start);
4608 }
4609
4610 /*
4611 * Find the metaslab with the highest weight that is less than what we've
4612 * already tried. In the common case, this means that we will examine each
4613 * metaslab at most once. Note that concurrent callers could reorder metaslabs
4614 * by activation/passivation once we have dropped the mg_lock. If a metaslab is
4615 * activated by another thread, and we fail to allocate from the metaslab we
4616 * have selected, we may not try the newly-activated metaslab, and instead
4617 * activate another metaslab. This is not optimal, but generally does not cause
4618 * any problems (a possible exception being if every metaslab is completely full
4619 * except for the newly-activated metaslab which we fail to examine).
4620 */
4621 static metaslab_t *
find_valid_metaslab(metaslab_group_t * mg,uint64_t activation_weight,dva_t * dva,int d,boolean_t want_unique,uint64_t asize,int allocator,boolean_t try_hard,zio_alloc_list_t * zal,metaslab_t * search,boolean_t * was_active)4622 find_valid_metaslab(metaslab_group_t *mg, uint64_t activation_weight,
4623 dva_t *dva, int d, boolean_t want_unique, uint64_t asize, int allocator,
4624 boolean_t try_hard, zio_alloc_list_t *zal, metaslab_t *search,
4625 boolean_t *was_active)
4626 {
4627 avl_index_t idx;
4628 avl_tree_t *t = &mg->mg_metaslab_tree;
4629 metaslab_t *msp = avl_find(t, search, &idx);
4630 if (msp == NULL)
4631 msp = avl_nearest(t, idx, AVL_AFTER);
4632
4633 int tries = 0;
4634 for (; msp != NULL; msp = AVL_NEXT(t, msp)) {
4635 int i;
4636
4637 if (!try_hard && tries > zfs_metaslab_find_max_tries) {
4638 METASLABSTAT_BUMP(metaslabstat_too_many_tries);
4639 return (NULL);
4640 }
4641 tries++;
4642
4643 if (!metaslab_should_allocate(msp, asize, try_hard)) {
4644 metaslab_trace_add(zal, mg, msp, asize, d,
4645 TRACE_TOO_SMALL, allocator);
4646 continue;
4647 }
4648
4649 /*
4650 * If the selected metaslab is condensing or disabled,
4651 * skip it.
4652 */
4653 if (msp->ms_condensing || msp->ms_disabled > 0)
4654 continue;
4655
4656 *was_active = msp->ms_allocator != -1;
4657 /*
4658 * If we're activating as primary, this is our first allocation
4659 * from this disk, so we don't need to check how close we are.
4660 * If the metaslab under consideration was already active,
4661 * we're getting desperate enough to steal another allocator's
4662 * metaslab, so we still don't care about distances.
4663 */
4664 if (activation_weight == METASLAB_WEIGHT_PRIMARY || *was_active)
4665 break;
4666
4667 for (i = 0; i < d; i++) {
4668 if (want_unique &&
4669 !metaslab_is_unique(msp, &dva[i]))
4670 break; /* try another metaslab */
4671 }
4672 if (i == d)
4673 break;
4674 }
4675
4676 if (msp != NULL) {
4677 search->ms_weight = msp->ms_weight;
4678 search->ms_start = msp->ms_start + 1;
4679 search->ms_allocator = msp->ms_allocator;
4680 search->ms_primary = msp->ms_primary;
4681 }
4682 return (msp);
4683 }
4684
4685 static void
metaslab_active_mask_verify(metaslab_t * msp)4686 metaslab_active_mask_verify(metaslab_t *msp)
4687 {
4688 ASSERT(MUTEX_HELD(&msp->ms_lock));
4689
4690 if ((zfs_flags & ZFS_DEBUG_METASLAB_VERIFY) == 0)
4691 return;
4692
4693 if ((msp->ms_weight & METASLAB_ACTIVE_MASK) == 0)
4694 return;
4695
4696 if (msp->ms_weight & METASLAB_WEIGHT_PRIMARY) {
4697 VERIFY0(msp->ms_weight & METASLAB_WEIGHT_SECONDARY);
4698 VERIFY0(msp->ms_weight & METASLAB_WEIGHT_CLAIM);
4699 VERIFY3S(msp->ms_allocator, !=, -1);
4700 VERIFY(msp->ms_primary);
4701 return;
4702 }
4703
4704 if (msp->ms_weight & METASLAB_WEIGHT_SECONDARY) {
4705 VERIFY0(msp->ms_weight & METASLAB_WEIGHT_PRIMARY);
4706 VERIFY0(msp->ms_weight & METASLAB_WEIGHT_CLAIM);
4707 VERIFY3S(msp->ms_allocator, !=, -1);
4708 VERIFY(!msp->ms_primary);
4709 return;
4710 }
4711
4712 if (msp->ms_weight & METASLAB_WEIGHT_CLAIM) {
4713 VERIFY0(msp->ms_weight & METASLAB_WEIGHT_PRIMARY);
4714 VERIFY0(msp->ms_weight & METASLAB_WEIGHT_SECONDARY);
4715 VERIFY3S(msp->ms_allocator, ==, -1);
4716 return;
4717 }
4718 }
4719
4720 static uint64_t
metaslab_group_alloc_normal(metaslab_group_t * mg,zio_alloc_list_t * zal,uint64_t asize,uint64_t txg,boolean_t want_unique,dva_t * dva,int d,int allocator,boolean_t try_hard)4721 metaslab_group_alloc_normal(metaslab_group_t *mg, zio_alloc_list_t *zal,
4722 uint64_t asize, uint64_t txg, boolean_t want_unique, dva_t *dva, int d,
4723 int allocator, boolean_t try_hard)
4724 {
4725 metaslab_t *msp = NULL;
4726 uint64_t offset = -1ULL;
4727
4728 uint64_t activation_weight = METASLAB_WEIGHT_PRIMARY;
4729 for (int i = 0; i < d; i++) {
4730 if (activation_weight == METASLAB_WEIGHT_PRIMARY &&
4731 DVA_GET_VDEV(&dva[i]) == mg->mg_vd->vdev_id) {
4732 activation_weight = METASLAB_WEIGHT_SECONDARY;
4733 } else if (activation_weight == METASLAB_WEIGHT_SECONDARY &&
4734 DVA_GET_VDEV(&dva[i]) == mg->mg_vd->vdev_id) {
4735 activation_weight = METASLAB_WEIGHT_CLAIM;
4736 break;
4737 }
4738 }
4739
4740 /*
4741 * If we don't have enough metaslabs active to fill the entire array, we
4742 * just use the 0th slot.
4743 */
4744 if (mg->mg_ms_ready < mg->mg_allocators * 3)
4745 allocator = 0;
4746 metaslab_group_allocator_t *mga = &mg->mg_allocator[allocator];
4747
4748 ASSERT3U(mg->mg_vd->vdev_ms_count, >=, 2);
4749
4750 metaslab_t *search = kmem_alloc(sizeof (*search), KM_SLEEP);
4751 search->ms_weight = UINT64_MAX;
4752 search->ms_start = 0;
4753 /*
4754 * At the end of the metaslab tree are the already-active metaslabs,
4755 * first the primaries, then the secondaries. When we resume searching
4756 * through the tree, we need to consider ms_allocator and ms_primary so
4757 * we start in the location right after where we left off, and don't
4758 * accidentally loop forever considering the same metaslabs.
4759 */
4760 search->ms_allocator = -1;
4761 search->ms_primary = B_TRUE;
4762 for (;;) {
4763 boolean_t was_active = B_FALSE;
4764
4765 mutex_enter(&mg->mg_lock);
4766
4767 if (activation_weight == METASLAB_WEIGHT_PRIMARY &&
4768 mga->mga_primary != NULL) {
4769 msp = mga->mga_primary;
4770
4771 /*
4772 * Even though we don't hold the ms_lock for the
4773 * primary metaslab, those fields should not
4774 * change while we hold the mg_lock. Thus it is
4775 * safe to make assertions on them.
4776 */
4777 ASSERT(msp->ms_primary);
4778 ASSERT3S(msp->ms_allocator, ==, allocator);
4779 ASSERT(msp->ms_loaded);
4780
4781 was_active = B_TRUE;
4782 ASSERT(msp->ms_weight & METASLAB_ACTIVE_MASK);
4783 } else if (activation_weight == METASLAB_WEIGHT_SECONDARY &&
4784 mga->mga_secondary != NULL) {
4785 msp = mga->mga_secondary;
4786
4787 /*
4788 * See comment above about the similar assertions
4789 * for the primary metaslab.
4790 */
4791 ASSERT(!msp->ms_primary);
4792 ASSERT3S(msp->ms_allocator, ==, allocator);
4793 ASSERT(msp->ms_loaded);
4794
4795 was_active = B_TRUE;
4796 ASSERT(msp->ms_weight & METASLAB_ACTIVE_MASK);
4797 } else {
4798 msp = find_valid_metaslab(mg, activation_weight, dva, d,
4799 want_unique, asize, allocator, try_hard, zal,
4800 search, &was_active);
4801 }
4802
4803 mutex_exit(&mg->mg_lock);
4804 if (msp == NULL) {
4805 kmem_free(search, sizeof (*search));
4806 return (-1ULL);
4807 }
4808 mutex_enter(&msp->ms_lock);
4809
4810 metaslab_active_mask_verify(msp);
4811
4812 /*
4813 * This code is disabled out because of issues with
4814 * tracepoints in non-gpl kernel modules.
4815 */
4816 #if 0
4817 DTRACE_PROBE3(ms__activation__attempt,
4818 metaslab_t *, msp, uint64_t, activation_weight,
4819 boolean_t, was_active);
4820 #endif
4821
4822 /*
4823 * Ensure that the metaslab we have selected is still
4824 * capable of handling our request. It's possible that
4825 * another thread may have changed the weight while we
4826 * were blocked on the metaslab lock. We check the
4827 * active status first to see if we need to set_selected_txg
4828 * a new metaslab.
4829 */
4830 if (was_active && !(msp->ms_weight & METASLAB_ACTIVE_MASK)) {
4831 ASSERT3S(msp->ms_allocator, ==, -1);
4832 mutex_exit(&msp->ms_lock);
4833 continue;
4834 }
4835
4836 /*
4837 * If the metaslab was activated for another allocator
4838 * while we were waiting in the ms_lock above, or it's
4839 * a primary and we're seeking a secondary (or vice versa),
4840 * we go back and select a new metaslab.
4841 */
4842 if (!was_active && (msp->ms_weight & METASLAB_ACTIVE_MASK) &&
4843 (msp->ms_allocator != -1) &&
4844 (msp->ms_allocator != allocator || ((activation_weight ==
4845 METASLAB_WEIGHT_PRIMARY) != msp->ms_primary))) {
4846 ASSERT(msp->ms_loaded);
4847 ASSERT((msp->ms_weight & METASLAB_WEIGHT_CLAIM) ||
4848 msp->ms_allocator != -1);
4849 mutex_exit(&msp->ms_lock);
4850 continue;
4851 }
4852
4853 /*
4854 * This metaslab was used for claiming regions allocated
4855 * by the ZIL during pool import. Once these regions are
4856 * claimed we don't need to keep the CLAIM bit set
4857 * anymore. Passivate this metaslab to zero its activation
4858 * mask.
4859 */
4860 if (msp->ms_weight & METASLAB_WEIGHT_CLAIM &&
4861 activation_weight != METASLAB_WEIGHT_CLAIM) {
4862 ASSERT(msp->ms_loaded);
4863 ASSERT3S(msp->ms_allocator, ==, -1);
4864 metaslab_passivate(msp, msp->ms_weight &
4865 ~METASLAB_WEIGHT_CLAIM);
4866 mutex_exit(&msp->ms_lock);
4867 continue;
4868 }
4869
4870 metaslab_set_selected_txg(msp, txg);
4871
4872 int activation_error =
4873 metaslab_activate(msp, allocator, activation_weight);
4874 metaslab_active_mask_verify(msp);
4875
4876 /*
4877 * If the metaslab was activated by another thread for
4878 * another allocator or activation_weight (EBUSY), or it
4879 * failed because another metaslab was assigned as primary
4880 * for this allocator (EEXIST) we continue using this
4881 * metaslab for our allocation, rather than going on to a
4882 * worse metaslab (we waited for that metaslab to be loaded
4883 * after all).
4884 *
4885 * If the activation failed due to an I/O error or ENOSPC we
4886 * skip to the next metaslab.
4887 */
4888 boolean_t activated;
4889 if (activation_error == 0) {
4890 activated = B_TRUE;
4891 } else if (activation_error == EBUSY ||
4892 activation_error == EEXIST) {
4893 activated = B_FALSE;
4894 } else {
4895 mutex_exit(&msp->ms_lock);
4896 continue;
4897 }
4898 ASSERT(msp->ms_loaded);
4899
4900 /*
4901 * Now that we have the lock, recheck to see if we should
4902 * continue to use this metaslab for this allocation. The
4903 * the metaslab is now loaded so metaslab_should_allocate()
4904 * can accurately determine if the allocation attempt should
4905 * proceed.
4906 */
4907 if (!metaslab_should_allocate(msp, asize, try_hard)) {
4908 /* Passivate this metaslab and select a new one. */
4909 metaslab_trace_add(zal, mg, msp, asize, d,
4910 TRACE_TOO_SMALL, allocator);
4911 goto next;
4912 }
4913
4914 /*
4915 * If this metaslab is currently condensing then pick again
4916 * as we can't manipulate this metaslab until it's committed
4917 * to disk. If this metaslab is being initialized, we shouldn't
4918 * allocate from it since the allocated region might be
4919 * overwritten after allocation.
4920 */
4921 if (msp->ms_condensing) {
4922 metaslab_trace_add(zal, mg, msp, asize, d,
4923 TRACE_CONDENSING, allocator);
4924 if (activated) {
4925 metaslab_passivate(msp, msp->ms_weight &
4926 ~METASLAB_ACTIVE_MASK);
4927 }
4928 mutex_exit(&msp->ms_lock);
4929 continue;
4930 } else if (msp->ms_disabled > 0) {
4931 metaslab_trace_add(zal, mg, msp, asize, d,
4932 TRACE_DISABLED, allocator);
4933 if (activated) {
4934 metaslab_passivate(msp, msp->ms_weight &
4935 ~METASLAB_ACTIVE_MASK);
4936 }
4937 mutex_exit(&msp->ms_lock);
4938 continue;
4939 }
4940
4941 offset = metaslab_block_alloc(msp, asize, txg);
4942 metaslab_trace_add(zal, mg, msp, asize, d, offset, allocator);
4943
4944 if (offset != -1ULL) {
4945 /* Proactively passivate the metaslab, if needed */
4946 if (activated)
4947 metaslab_segment_may_passivate(msp);
4948 break;
4949 }
4950 next:
4951 ASSERT(msp->ms_loaded);
4952
4953 /*
4954 * This code is disabled out because of issues with
4955 * tracepoints in non-gpl kernel modules.
4956 */
4957 #if 0
4958 DTRACE_PROBE2(ms__alloc__failure, metaslab_t *, msp,
4959 uint64_t, asize);
4960 #endif
4961
4962 /*
4963 * We were unable to allocate from this metaslab so determine
4964 * a new weight for this metaslab. Now that we have loaded
4965 * the metaslab we can provide a better hint to the metaslab
4966 * selector.
4967 *
4968 * For space-based metaslabs, we use the maximum block size.
4969 * This information is only available when the metaslab
4970 * is loaded and is more accurate than the generic free
4971 * space weight that was calculated by metaslab_weight().
4972 * This information allows us to quickly compare the maximum
4973 * available allocation in the metaslab to the allocation
4974 * size being requested.
4975 *
4976 * For segment-based metaslabs, determine the new weight
4977 * based on the highest bucket in the range tree. We
4978 * explicitly use the loaded segment weight (i.e. the range
4979 * tree histogram) since it contains the space that is
4980 * currently available for allocation and is accurate
4981 * even within a sync pass.
4982 */
4983 uint64_t weight;
4984 if (WEIGHT_IS_SPACEBASED(msp->ms_weight)) {
4985 weight = metaslab_largest_allocatable(msp);
4986 WEIGHT_SET_SPACEBASED(weight);
4987 } else {
4988 weight = metaslab_weight_from_range_tree(msp);
4989 }
4990
4991 if (activated) {
4992 metaslab_passivate(msp, weight);
4993 } else {
4994 /*
4995 * For the case where we use the metaslab that is
4996 * active for another allocator we want to make
4997 * sure that we retain the activation mask.
4998 *
4999 * Note that we could attempt to use something like
5000 * metaslab_recalculate_weight_and_sort() that
5001 * retains the activation mask here. That function
5002 * uses metaslab_weight() to set the weight though
5003 * which is not as accurate as the calculations
5004 * above.
5005 */
5006 weight |= msp->ms_weight & METASLAB_ACTIVE_MASK;
5007 metaslab_group_sort(mg, msp, weight);
5008 }
5009 metaslab_active_mask_verify(msp);
5010
5011 /*
5012 * We have just failed an allocation attempt, check
5013 * that metaslab_should_allocate() agrees. Otherwise,
5014 * we may end up in an infinite loop retrying the same
5015 * metaslab.
5016 */
5017 ASSERT(!metaslab_should_allocate(msp, asize, try_hard));
5018
5019 mutex_exit(&msp->ms_lock);
5020 }
5021 mutex_exit(&msp->ms_lock);
5022 kmem_free(search, sizeof (*search));
5023 return (offset);
5024 }
5025
5026 static uint64_t
metaslab_group_alloc(metaslab_group_t * mg,zio_alloc_list_t * zal,uint64_t asize,uint64_t txg,boolean_t want_unique,dva_t * dva,int d,int allocator,boolean_t try_hard)5027 metaslab_group_alloc(metaslab_group_t *mg, zio_alloc_list_t *zal,
5028 uint64_t asize, uint64_t txg, boolean_t want_unique, dva_t *dva, int d,
5029 int allocator, boolean_t try_hard)
5030 {
5031 uint64_t offset;
5032 ASSERT(mg->mg_initialized);
5033
5034 offset = metaslab_group_alloc_normal(mg, zal, asize, txg, want_unique,
5035 dva, d, allocator, try_hard);
5036
5037 mutex_enter(&mg->mg_lock);
5038 if (offset == -1ULL) {
5039 mg->mg_failed_allocations++;
5040 metaslab_trace_add(zal, mg, NULL, asize, d,
5041 TRACE_GROUP_FAILURE, allocator);
5042 if (asize == SPA_GANGBLOCKSIZE) {
5043 /*
5044 * This metaslab group was unable to allocate
5045 * the minimum gang block size so it must be out of
5046 * space. We must notify the allocation throttle
5047 * to start skipping allocation attempts to this
5048 * metaslab group until more space becomes available.
5049 * Note: this failure cannot be caused by the
5050 * allocation throttle since the allocation throttle
5051 * is only responsible for skipping devices and
5052 * not failing block allocations.
5053 */
5054 mg->mg_no_free_space = B_TRUE;
5055 }
5056 }
5057 mg->mg_allocations++;
5058 mutex_exit(&mg->mg_lock);
5059 return (offset);
5060 }
5061
5062 /*
5063 * Allocate a block for the specified i/o.
5064 */
5065 int
metaslab_alloc_dva(spa_t * spa,metaslab_class_t * mc,uint64_t psize,dva_t * dva,int d,dva_t * hintdva,uint64_t txg,int flags,zio_alloc_list_t * zal,int allocator)5066 metaslab_alloc_dva(spa_t *spa, metaslab_class_t *mc, uint64_t psize,
5067 dva_t *dva, int d, dva_t *hintdva, uint64_t txg, int flags,
5068 zio_alloc_list_t *zal, int allocator)
5069 {
5070 metaslab_class_allocator_t *mca = &mc->mc_allocator[allocator];
5071 metaslab_group_t *mg, *fast_mg, *rotor;
5072 vdev_t *vd;
5073 boolean_t try_hard = B_FALSE;
5074
5075 ASSERT(!DVA_IS_VALID(&dva[d]));
5076
5077 /*
5078 * For testing, make some blocks above a certain size be gang blocks.
5079 * This will result in more split blocks when using device removal,
5080 * and a large number of split blocks coupled with ztest-induced
5081 * damage can result in extremely long reconstruction times. This
5082 * will also test spilling from special to normal.
5083 */
5084 if (psize >= metaslab_force_ganging && (random_in_range(100) < 3)) {
5085 metaslab_trace_add(zal, NULL, NULL, psize, d, TRACE_FORCE_GANG,
5086 allocator);
5087 return (SET_ERROR(ENOSPC));
5088 }
5089
5090 /*
5091 * Start at the rotor and loop through all mgs until we find something.
5092 * Note that there's no locking on mca_rotor or mca_aliquot because
5093 * nothing actually breaks if we miss a few updates -- we just won't
5094 * allocate quite as evenly. It all balances out over time.
5095 *
5096 * If we are doing ditto or log blocks, try to spread them across
5097 * consecutive vdevs. If we're forced to reuse a vdev before we've
5098 * allocated all of our ditto blocks, then try and spread them out on
5099 * that vdev as much as possible. If it turns out to not be possible,
5100 * gradually lower our standards until anything becomes acceptable.
5101 * Also, allocating on consecutive vdevs (as opposed to random vdevs)
5102 * gives us hope of containing our fault domains to something we're
5103 * able to reason about. Otherwise, any two top-level vdev failures
5104 * will guarantee the loss of data. With consecutive allocation,
5105 * only two adjacent top-level vdev failures will result in data loss.
5106 *
5107 * If we are doing gang blocks (hintdva is non-NULL), try to keep
5108 * ourselves on the same vdev as our gang block header. That
5109 * way, we can hope for locality in vdev_cache, plus it makes our
5110 * fault domains something tractable.
5111 */
5112 if (hintdva) {
5113 vd = vdev_lookup_top(spa, DVA_GET_VDEV(&hintdva[d]));
5114
5115 /*
5116 * It's possible the vdev we're using as the hint no
5117 * longer exists or its mg has been closed (e.g. by
5118 * device removal). Consult the rotor when
5119 * all else fails.
5120 */
5121 if (vd != NULL && vd->vdev_mg != NULL) {
5122 mg = vdev_get_mg(vd, mc);
5123
5124 if (flags & METASLAB_HINTBP_AVOID &&
5125 mg->mg_next != NULL)
5126 mg = mg->mg_next;
5127 } else {
5128 mg = mca->mca_rotor;
5129 }
5130 } else if (d != 0) {
5131 vd = vdev_lookup_top(spa, DVA_GET_VDEV(&dva[d - 1]));
5132 mg = vd->vdev_mg->mg_next;
5133 } else if (flags & METASLAB_FASTWRITE) {
5134 mg = fast_mg = mca->mca_rotor;
5135
5136 do {
5137 if (fast_mg->mg_vd->vdev_pending_fastwrite <
5138 mg->mg_vd->vdev_pending_fastwrite)
5139 mg = fast_mg;
5140 } while ((fast_mg = fast_mg->mg_next) != mca->mca_rotor);
5141
5142 } else {
5143 ASSERT(mca->mca_rotor != NULL);
5144 mg = mca->mca_rotor;
5145 }
5146
5147 /*
5148 * If the hint put us into the wrong metaslab class, or into a
5149 * metaslab group that has been passivated, just follow the rotor.
5150 */
5151 if (mg->mg_class != mc || mg->mg_activation_count <= 0)
5152 mg = mca->mca_rotor;
5153
5154 rotor = mg;
5155 top:
5156 do {
5157 boolean_t allocatable;
5158
5159 ASSERT(mg->mg_activation_count == 1);
5160 vd = mg->mg_vd;
5161
5162 /*
5163 * Don't allocate from faulted devices.
5164 */
5165 if (try_hard) {
5166 spa_config_enter(spa, SCL_ZIO, FTAG, RW_READER);
5167 allocatable = vdev_allocatable(vd);
5168 spa_config_exit(spa, SCL_ZIO, FTAG);
5169 } else {
5170 allocatable = vdev_allocatable(vd);
5171 }
5172
5173 /*
5174 * Determine if the selected metaslab group is eligible
5175 * for allocations. If we're ganging then don't allow
5176 * this metaslab group to skip allocations since that would
5177 * inadvertently return ENOSPC and suspend the pool
5178 * even though space is still available.
5179 */
5180 if (allocatable && !GANG_ALLOCATION(flags) && !try_hard) {
5181 allocatable = metaslab_group_allocatable(mg, rotor,
5182 psize, allocator, d);
5183 }
5184
5185 if (!allocatable) {
5186 metaslab_trace_add(zal, mg, NULL, psize, d,
5187 TRACE_NOT_ALLOCATABLE, allocator);
5188 goto next;
5189 }
5190
5191 ASSERT(mg->mg_initialized);
5192
5193 /*
5194 * Avoid writing single-copy data to a failing,
5195 * non-redundant vdev, unless we've already tried all
5196 * other vdevs.
5197 */
5198 if ((vd->vdev_stat.vs_write_errors > 0 ||
5199 vd->vdev_state < VDEV_STATE_HEALTHY) &&
5200 d == 0 && !try_hard && vd->vdev_children == 0) {
5201 metaslab_trace_add(zal, mg, NULL, psize, d,
5202 TRACE_VDEV_ERROR, allocator);
5203 goto next;
5204 }
5205
5206 ASSERT(mg->mg_class == mc);
5207
5208 uint64_t asize = vdev_psize_to_asize(vd, psize);
5209 ASSERT(P2PHASE(asize, 1ULL << vd->vdev_ashift) == 0);
5210
5211 /*
5212 * If we don't need to try hard, then require that the
5213 * block be on a different metaslab from any other DVAs
5214 * in this BP (unique=true). If we are trying hard, then
5215 * allow any metaslab to be used (unique=false).
5216 */
5217 uint64_t offset = metaslab_group_alloc(mg, zal, asize, txg,
5218 !try_hard, dva, d, allocator, try_hard);
5219
5220 if (offset != -1ULL) {
5221 /*
5222 * If we've just selected this metaslab group,
5223 * figure out whether the corresponding vdev is
5224 * over- or under-used relative to the pool,
5225 * and set an allocation bias to even it out.
5226 *
5227 * Bias is also used to compensate for unequally
5228 * sized vdevs so that space is allocated fairly.
5229 */
5230 if (mca->mca_aliquot == 0 && metaslab_bias_enabled) {
5231 vdev_stat_t *vs = &vd->vdev_stat;
5232 int64_t vs_free = vs->vs_space - vs->vs_alloc;
5233 int64_t mc_free = mc->mc_space - mc->mc_alloc;
5234 int64_t ratio;
5235
5236 /*
5237 * Calculate how much more or less we should
5238 * try to allocate from this device during
5239 * this iteration around the rotor.
5240 *
5241 * This basically introduces a zero-centered
5242 * bias towards the devices with the most
5243 * free space, while compensating for vdev
5244 * size differences.
5245 *
5246 * Examples:
5247 * vdev V1 = 16M/128M
5248 * vdev V2 = 16M/128M
5249 * ratio(V1) = 100% ratio(V2) = 100%
5250 *
5251 * vdev V1 = 16M/128M
5252 * vdev V2 = 64M/128M
5253 * ratio(V1) = 127% ratio(V2) = 72%
5254 *
5255 * vdev V1 = 16M/128M
5256 * vdev V2 = 64M/512M
5257 * ratio(V1) = 40% ratio(V2) = 160%
5258 */
5259 ratio = (vs_free * mc->mc_alloc_groups * 100) /
5260 (mc_free + 1);
5261 mg->mg_bias = ((ratio - 100) *
5262 (int64_t)mg->mg_aliquot) / 100;
5263 } else if (!metaslab_bias_enabled) {
5264 mg->mg_bias = 0;
5265 }
5266
5267 if ((flags & METASLAB_FASTWRITE) ||
5268 atomic_add_64_nv(&mca->mca_aliquot, asize) >=
5269 mg->mg_aliquot + mg->mg_bias) {
5270 mca->mca_rotor = mg->mg_next;
5271 mca->mca_aliquot = 0;
5272 }
5273
5274 DVA_SET_VDEV(&dva[d], vd->vdev_id);
5275 DVA_SET_OFFSET(&dva[d], offset);
5276 DVA_SET_GANG(&dva[d],
5277 ((flags & METASLAB_GANG_HEADER) ? 1 : 0));
5278 DVA_SET_ASIZE(&dva[d], asize);
5279
5280 if (flags & METASLAB_FASTWRITE) {
5281 atomic_add_64(&vd->vdev_pending_fastwrite,
5282 psize);
5283 }
5284
5285 return (0);
5286 }
5287 next:
5288 mca->mca_rotor = mg->mg_next;
5289 mca->mca_aliquot = 0;
5290 } while ((mg = mg->mg_next) != rotor);
5291
5292 /*
5293 * If we haven't tried hard, perhaps do so now.
5294 */
5295 if (!try_hard && (zfs_metaslab_try_hard_before_gang ||
5296 GANG_ALLOCATION(flags) || (flags & METASLAB_ZIL) != 0 ||
5297 psize <= 1 << spa->spa_min_ashift)) {
5298 METASLABSTAT_BUMP(metaslabstat_try_hard);
5299 try_hard = B_TRUE;
5300 goto top;
5301 }
5302
5303 bzero(&dva[d], sizeof (dva_t));
5304
5305 metaslab_trace_add(zal, rotor, NULL, psize, d, TRACE_ENOSPC, allocator);
5306 return (SET_ERROR(ENOSPC));
5307 }
5308
5309 void
metaslab_free_concrete(vdev_t * vd,uint64_t offset,uint64_t asize,boolean_t checkpoint)5310 metaslab_free_concrete(vdev_t *vd, uint64_t offset, uint64_t asize,
5311 boolean_t checkpoint)
5312 {
5313 metaslab_t *msp;
5314 spa_t *spa = vd->vdev_spa;
5315
5316 ASSERT(vdev_is_concrete(vd));
5317 ASSERT3U(spa_config_held(spa, SCL_ALL, RW_READER), !=, 0);
5318 ASSERT3U(offset >> vd->vdev_ms_shift, <, vd->vdev_ms_count);
5319
5320 msp = vd->vdev_ms[offset >> vd->vdev_ms_shift];
5321
5322 VERIFY(!msp->ms_condensing);
5323 VERIFY3U(offset, >=, msp->ms_start);
5324 VERIFY3U(offset + asize, <=, msp->ms_start + msp->ms_size);
5325 VERIFY0(P2PHASE(offset, 1ULL << vd->vdev_ashift));
5326 VERIFY0(P2PHASE(asize, 1ULL << vd->vdev_ashift));
5327
5328 metaslab_check_free_impl(vd, offset, asize);
5329
5330 mutex_enter(&msp->ms_lock);
5331 if (range_tree_is_empty(msp->ms_freeing) &&
5332 range_tree_is_empty(msp->ms_checkpointing)) {
5333 vdev_dirty(vd, VDD_METASLAB, msp, spa_syncing_txg(spa));
5334 }
5335
5336 if (checkpoint) {
5337 ASSERT(spa_has_checkpoint(spa));
5338 range_tree_add(msp->ms_checkpointing, offset, asize);
5339 } else {
5340 range_tree_add(msp->ms_freeing, offset, asize);
5341 }
5342 mutex_exit(&msp->ms_lock);
5343 }
5344
5345 void
metaslab_free_impl_cb(uint64_t inner_offset,vdev_t * vd,uint64_t offset,uint64_t size,void * arg)5346 metaslab_free_impl_cb(uint64_t inner_offset, vdev_t *vd, uint64_t offset,
5347 uint64_t size, void *arg)
5348 {
5349 (void) inner_offset;
5350 boolean_t *checkpoint = arg;
5351
5352 ASSERT3P(checkpoint, !=, NULL);
5353
5354 if (vd->vdev_ops->vdev_op_remap != NULL)
5355 vdev_indirect_mark_obsolete(vd, offset, size);
5356 else
5357 metaslab_free_impl(vd, offset, size, *checkpoint);
5358 }
5359
5360 static void
metaslab_free_impl(vdev_t * vd,uint64_t offset,uint64_t size,boolean_t checkpoint)5361 metaslab_free_impl(vdev_t *vd, uint64_t offset, uint64_t size,
5362 boolean_t checkpoint)
5363 {
5364 spa_t *spa = vd->vdev_spa;
5365
5366 ASSERT3U(spa_config_held(spa, SCL_ALL, RW_READER), !=, 0);
5367
5368 if (spa_syncing_txg(spa) > spa_freeze_txg(spa))
5369 return;
5370
5371 if (spa->spa_vdev_removal != NULL &&
5372 spa->spa_vdev_removal->svr_vdev_id == vd->vdev_id &&
5373 vdev_is_concrete(vd)) {
5374 /*
5375 * Note: we check if the vdev is concrete because when
5376 * we complete the removal, we first change the vdev to be
5377 * an indirect vdev (in open context), and then (in syncing
5378 * context) clear spa_vdev_removal.
5379 */
5380 free_from_removing_vdev(vd, offset, size);
5381 } else if (vd->vdev_ops->vdev_op_remap != NULL) {
5382 vdev_indirect_mark_obsolete(vd, offset, size);
5383 vd->vdev_ops->vdev_op_remap(vd, offset, size,
5384 metaslab_free_impl_cb, &checkpoint);
5385 } else {
5386 metaslab_free_concrete(vd, offset, size, checkpoint);
5387 }
5388 }
5389
5390 typedef struct remap_blkptr_cb_arg {
5391 blkptr_t *rbca_bp;
5392 spa_remap_cb_t rbca_cb;
5393 vdev_t *rbca_remap_vd;
5394 uint64_t rbca_remap_offset;
5395 void *rbca_cb_arg;
5396 } remap_blkptr_cb_arg_t;
5397
5398 static void
remap_blkptr_cb(uint64_t inner_offset,vdev_t * vd,uint64_t offset,uint64_t size,void * arg)5399 remap_blkptr_cb(uint64_t inner_offset, vdev_t *vd, uint64_t offset,
5400 uint64_t size, void *arg)
5401 {
5402 remap_blkptr_cb_arg_t *rbca = arg;
5403 blkptr_t *bp = rbca->rbca_bp;
5404
5405 /* We can not remap split blocks. */
5406 if (size != DVA_GET_ASIZE(&bp->blk_dva[0]))
5407 return;
5408 ASSERT0(inner_offset);
5409
5410 if (rbca->rbca_cb != NULL) {
5411 /*
5412 * At this point we know that we are not handling split
5413 * blocks and we invoke the callback on the previous
5414 * vdev which must be indirect.
5415 */
5416 ASSERT3P(rbca->rbca_remap_vd->vdev_ops, ==, &vdev_indirect_ops);
5417
5418 rbca->rbca_cb(rbca->rbca_remap_vd->vdev_id,
5419 rbca->rbca_remap_offset, size, rbca->rbca_cb_arg);
5420
5421 /* set up remap_blkptr_cb_arg for the next call */
5422 rbca->rbca_remap_vd = vd;
5423 rbca->rbca_remap_offset = offset;
5424 }
5425
5426 /*
5427 * The phys birth time is that of dva[0]. This ensures that we know
5428 * when each dva was written, so that resilver can determine which
5429 * blocks need to be scrubbed (i.e. those written during the time
5430 * the vdev was offline). It also ensures that the key used in
5431 * the ARC hash table is unique (i.e. dva[0] + phys_birth). If
5432 * we didn't change the phys_birth, a lookup in the ARC for a
5433 * remapped BP could find the data that was previously stored at
5434 * this vdev + offset.
5435 */
5436 vdev_t *oldvd = vdev_lookup_top(vd->vdev_spa,
5437 DVA_GET_VDEV(&bp->blk_dva[0]));
5438 vdev_indirect_births_t *vib = oldvd->vdev_indirect_births;
5439 bp->blk_phys_birth = vdev_indirect_births_physbirth(vib,
5440 DVA_GET_OFFSET(&bp->blk_dva[0]), DVA_GET_ASIZE(&bp->blk_dva[0]));
5441
5442 DVA_SET_VDEV(&bp->blk_dva[0], vd->vdev_id);
5443 DVA_SET_OFFSET(&bp->blk_dva[0], offset);
5444 }
5445
5446 /*
5447 * If the block pointer contains any indirect DVAs, modify them to refer to
5448 * concrete DVAs. Note that this will sometimes not be possible, leaving
5449 * the indirect DVA in place. This happens if the indirect DVA spans multiple
5450 * segments in the mapping (i.e. it is a "split block").
5451 *
5452 * If the BP was remapped, calls the callback on the original dva (note the
5453 * callback can be called multiple times if the original indirect DVA refers
5454 * to another indirect DVA, etc).
5455 *
5456 * Returns TRUE if the BP was remapped.
5457 */
5458 boolean_t
spa_remap_blkptr(spa_t * spa,blkptr_t * bp,spa_remap_cb_t callback,void * arg)5459 spa_remap_blkptr(spa_t *spa, blkptr_t *bp, spa_remap_cb_t callback, void *arg)
5460 {
5461 remap_blkptr_cb_arg_t rbca;
5462
5463 if (!zfs_remap_blkptr_enable)
5464 return (B_FALSE);
5465
5466 if (!spa_feature_is_enabled(spa, SPA_FEATURE_OBSOLETE_COUNTS))
5467 return (B_FALSE);
5468
5469 /*
5470 * Dedup BP's can not be remapped, because ddt_phys_select() depends
5471 * on DVA[0] being the same in the BP as in the DDT (dedup table).
5472 */
5473 if (BP_GET_DEDUP(bp))
5474 return (B_FALSE);
5475
5476 /*
5477 * Gang blocks can not be remapped, because
5478 * zio_checksum_gang_verifier() depends on the DVA[0] that's in
5479 * the BP used to read the gang block header (GBH) being the same
5480 * as the DVA[0] that we allocated for the GBH.
5481 */
5482 if (BP_IS_GANG(bp))
5483 return (B_FALSE);
5484
5485 /*
5486 * Embedded BP's have no DVA to remap.
5487 */
5488 if (BP_GET_NDVAS(bp) < 1)
5489 return (B_FALSE);
5490
5491 /*
5492 * Note: we only remap dva[0]. If we remapped other dvas, we
5493 * would no longer know what their phys birth txg is.
5494 */
5495 dva_t *dva = &bp->blk_dva[0];
5496
5497 uint64_t offset = DVA_GET_OFFSET(dva);
5498 uint64_t size = DVA_GET_ASIZE(dva);
5499 vdev_t *vd = vdev_lookup_top(spa, DVA_GET_VDEV(dva));
5500
5501 if (vd->vdev_ops->vdev_op_remap == NULL)
5502 return (B_FALSE);
5503
5504 rbca.rbca_bp = bp;
5505 rbca.rbca_cb = callback;
5506 rbca.rbca_remap_vd = vd;
5507 rbca.rbca_remap_offset = offset;
5508 rbca.rbca_cb_arg = arg;
5509
5510 /*
5511 * remap_blkptr_cb() will be called in order for each level of
5512 * indirection, until a concrete vdev is reached or a split block is
5513 * encountered. old_vd and old_offset are updated within the callback
5514 * as we go from the one indirect vdev to the next one (either concrete
5515 * or indirect again) in that order.
5516 */
5517 vd->vdev_ops->vdev_op_remap(vd, offset, size, remap_blkptr_cb, &rbca);
5518
5519 /* Check if the DVA wasn't remapped because it is a split block */
5520 if (DVA_GET_VDEV(&rbca.rbca_bp->blk_dva[0]) == vd->vdev_id)
5521 return (B_FALSE);
5522
5523 return (B_TRUE);
5524 }
5525
5526 /*
5527 * Undo the allocation of a DVA which happened in the given transaction group.
5528 */
5529 void
metaslab_unalloc_dva(spa_t * spa,const dva_t * dva,uint64_t txg)5530 metaslab_unalloc_dva(spa_t *spa, const dva_t *dva, uint64_t txg)
5531 {
5532 metaslab_t *msp;
5533 vdev_t *vd;
5534 uint64_t vdev = DVA_GET_VDEV(dva);
5535 uint64_t offset = DVA_GET_OFFSET(dva);
5536 uint64_t size = DVA_GET_ASIZE(dva);
5537
5538 ASSERT(DVA_IS_VALID(dva));
5539 ASSERT3U(spa_config_held(spa, SCL_ALL, RW_READER), !=, 0);
5540
5541 if (txg > spa_freeze_txg(spa))
5542 return;
5543
5544 if ((vd = vdev_lookup_top(spa, vdev)) == NULL || !DVA_IS_VALID(dva) ||
5545 (offset >> vd->vdev_ms_shift) >= vd->vdev_ms_count) {
5546 zfs_panic_recover("metaslab_free_dva(): bad DVA %llu:%llu:%llu",
5547 (u_longlong_t)vdev, (u_longlong_t)offset,
5548 (u_longlong_t)size);
5549 return;
5550 }
5551
5552 ASSERT(!vd->vdev_removing);
5553 ASSERT(vdev_is_concrete(vd));
5554 ASSERT0(vd->vdev_indirect_config.vic_mapping_object);
5555 ASSERT3P(vd->vdev_indirect_mapping, ==, NULL);
5556
5557 if (DVA_GET_GANG(dva))
5558 size = vdev_gang_header_asize(vd);
5559
5560 msp = vd->vdev_ms[offset >> vd->vdev_ms_shift];
5561
5562 mutex_enter(&msp->ms_lock);
5563 range_tree_remove(msp->ms_allocating[txg & TXG_MASK],
5564 offset, size);
5565 msp->ms_allocating_total -= size;
5566
5567 VERIFY(!msp->ms_condensing);
5568 VERIFY3U(offset, >=, msp->ms_start);
5569 VERIFY3U(offset + size, <=, msp->ms_start + msp->ms_size);
5570 VERIFY3U(range_tree_space(msp->ms_allocatable) + size, <=,
5571 msp->ms_size);
5572 VERIFY0(P2PHASE(offset, 1ULL << vd->vdev_ashift));
5573 VERIFY0(P2PHASE(size, 1ULL << vd->vdev_ashift));
5574 range_tree_add(msp->ms_allocatable, offset, size);
5575 mutex_exit(&msp->ms_lock);
5576 }
5577
5578 /*
5579 * Free the block represented by the given DVA.
5580 */
5581 void
metaslab_free_dva(spa_t * spa,const dva_t * dva,boolean_t checkpoint)5582 metaslab_free_dva(spa_t *spa, const dva_t *dva, boolean_t checkpoint)
5583 {
5584 uint64_t vdev = DVA_GET_VDEV(dva);
5585 uint64_t offset = DVA_GET_OFFSET(dva);
5586 uint64_t size = DVA_GET_ASIZE(dva);
5587 vdev_t *vd = vdev_lookup_top(spa, vdev);
5588
5589 ASSERT(DVA_IS_VALID(dva));
5590 ASSERT3U(spa_config_held(spa, SCL_ALL, RW_READER), !=, 0);
5591
5592 if (DVA_GET_GANG(dva)) {
5593 size = vdev_gang_header_asize(vd);
5594 }
5595
5596 metaslab_free_impl(vd, offset, size, checkpoint);
5597 }
5598
5599 /*
5600 * Reserve some allocation slots. The reservation system must be called
5601 * before we call into the allocator. If there aren't any available slots
5602 * then the I/O will be throttled until an I/O completes and its slots are
5603 * freed up. The function returns true if it was successful in placing
5604 * the reservation.
5605 */
5606 boolean_t
metaslab_class_throttle_reserve(metaslab_class_t * mc,int slots,int allocator,zio_t * zio,int flags)5607 metaslab_class_throttle_reserve(metaslab_class_t *mc, int slots, int allocator,
5608 zio_t *zio, int flags)
5609 {
5610 metaslab_class_allocator_t *mca = &mc->mc_allocator[allocator];
5611 uint64_t max = mca->mca_alloc_max_slots;
5612
5613 ASSERT(mc->mc_alloc_throttle_enabled);
5614 if (GANG_ALLOCATION(flags) || (flags & METASLAB_MUST_RESERVE) ||
5615 zfs_refcount_count(&mca->mca_alloc_slots) + slots <= max) {
5616 /*
5617 * The potential race between _count() and _add() is covered
5618 * by the allocator lock in most cases, or irrelevant due to
5619 * GANG_ALLOCATION() or METASLAB_MUST_RESERVE set in others.
5620 * But even if we assume some other non-existing scenario, the
5621 * worst that can happen is few more I/Os get to allocation
5622 * earlier, that is not a problem.
5623 *
5624 * We reserve the slots individually so that we can unreserve
5625 * them individually when an I/O completes.
5626 */
5627 for (int d = 0; d < slots; d++)
5628 zfs_refcount_add(&mca->mca_alloc_slots, zio);
5629 zio->io_flags |= ZIO_FLAG_IO_ALLOCATING;
5630 return (B_TRUE);
5631 }
5632 return (B_FALSE);
5633 }
5634
5635 void
metaslab_class_throttle_unreserve(metaslab_class_t * mc,int slots,int allocator,zio_t * zio)5636 metaslab_class_throttle_unreserve(metaslab_class_t *mc, int slots,
5637 int allocator, zio_t *zio)
5638 {
5639 metaslab_class_allocator_t *mca = &mc->mc_allocator[allocator];
5640
5641 ASSERT(mc->mc_alloc_throttle_enabled);
5642 for (int d = 0; d < slots; d++)
5643 zfs_refcount_remove(&mca->mca_alloc_slots, zio);
5644 }
5645
5646 static int
metaslab_claim_concrete(vdev_t * vd,uint64_t offset,uint64_t size,uint64_t txg)5647 metaslab_claim_concrete(vdev_t *vd, uint64_t offset, uint64_t size,
5648 uint64_t txg)
5649 {
5650 metaslab_t *msp;
5651 spa_t *spa = vd->vdev_spa;
5652 int error = 0;
5653
5654 if (offset >> vd->vdev_ms_shift >= vd->vdev_ms_count)
5655 return (SET_ERROR(ENXIO));
5656
5657 ASSERT3P(vd->vdev_ms, !=, NULL);
5658 msp = vd->vdev_ms[offset >> vd->vdev_ms_shift];
5659
5660 mutex_enter(&msp->ms_lock);
5661
5662 if ((txg != 0 && spa_writeable(spa)) || !msp->ms_loaded) {
5663 error = metaslab_activate(msp, 0, METASLAB_WEIGHT_CLAIM);
5664 if (error == EBUSY) {
5665 ASSERT(msp->ms_loaded);
5666 ASSERT(msp->ms_weight & METASLAB_ACTIVE_MASK);
5667 error = 0;
5668 }
5669 }
5670
5671 if (error == 0 &&
5672 !range_tree_contains(msp->ms_allocatable, offset, size))
5673 error = SET_ERROR(ENOENT);
5674
5675 if (error || txg == 0) { /* txg == 0 indicates dry run */
5676 mutex_exit(&msp->ms_lock);
5677 return (error);
5678 }
5679
5680 VERIFY(!msp->ms_condensing);
5681 VERIFY0(P2PHASE(offset, 1ULL << vd->vdev_ashift));
5682 VERIFY0(P2PHASE(size, 1ULL << vd->vdev_ashift));
5683 VERIFY3U(range_tree_space(msp->ms_allocatable) - size, <=,
5684 msp->ms_size);
5685 range_tree_remove(msp->ms_allocatable, offset, size);
5686 range_tree_clear(msp->ms_trim, offset, size);
5687
5688 if (spa_writeable(spa)) { /* don't dirty if we're zdb(8) */
5689 metaslab_class_t *mc = msp->ms_group->mg_class;
5690 multilist_sublist_t *mls =
5691 multilist_sublist_lock_obj(&mc->mc_metaslab_txg_list, msp);
5692 if (!multilist_link_active(&msp->ms_class_txg_node)) {
5693 msp->ms_selected_txg = txg;
5694 multilist_sublist_insert_head(mls, msp);
5695 }
5696 multilist_sublist_unlock(mls);
5697
5698 if (range_tree_is_empty(msp->ms_allocating[txg & TXG_MASK]))
5699 vdev_dirty(vd, VDD_METASLAB, msp, txg);
5700 range_tree_add(msp->ms_allocating[txg & TXG_MASK],
5701 offset, size);
5702 msp->ms_allocating_total += size;
5703 }
5704
5705 mutex_exit(&msp->ms_lock);
5706
5707 return (0);
5708 }
5709
5710 typedef struct metaslab_claim_cb_arg_t {
5711 uint64_t mcca_txg;
5712 int mcca_error;
5713 } metaslab_claim_cb_arg_t;
5714
5715 static void
metaslab_claim_impl_cb(uint64_t inner_offset,vdev_t * vd,uint64_t offset,uint64_t size,void * arg)5716 metaslab_claim_impl_cb(uint64_t inner_offset, vdev_t *vd, uint64_t offset,
5717 uint64_t size, void *arg)
5718 {
5719 (void) inner_offset;
5720 metaslab_claim_cb_arg_t *mcca_arg = arg;
5721
5722 if (mcca_arg->mcca_error == 0) {
5723 mcca_arg->mcca_error = metaslab_claim_concrete(vd, offset,
5724 size, mcca_arg->mcca_txg);
5725 }
5726 }
5727
5728 int
metaslab_claim_impl(vdev_t * vd,uint64_t offset,uint64_t size,uint64_t txg)5729 metaslab_claim_impl(vdev_t *vd, uint64_t offset, uint64_t size, uint64_t txg)
5730 {
5731 if (vd->vdev_ops->vdev_op_remap != NULL) {
5732 metaslab_claim_cb_arg_t arg;
5733
5734 /*
5735 * Only zdb(8) can claim on indirect vdevs. This is used
5736 * to detect leaks of mapped space (that are not accounted
5737 * for in the obsolete counts, spacemap, or bpobj).
5738 */
5739 ASSERT(!spa_writeable(vd->vdev_spa));
5740 arg.mcca_error = 0;
5741 arg.mcca_txg = txg;
5742
5743 vd->vdev_ops->vdev_op_remap(vd, offset, size,
5744 metaslab_claim_impl_cb, &arg);
5745
5746 if (arg.mcca_error == 0) {
5747 arg.mcca_error = metaslab_claim_concrete(vd,
5748 offset, size, txg);
5749 }
5750 return (arg.mcca_error);
5751 } else {
5752 return (metaslab_claim_concrete(vd, offset, size, txg));
5753 }
5754 }
5755
5756 /*
5757 * Intent log support: upon opening the pool after a crash, notify the SPA
5758 * of blocks that the intent log has allocated for immediate write, but
5759 * which are still considered free by the SPA because the last transaction
5760 * group didn't commit yet.
5761 */
5762 static int
metaslab_claim_dva(spa_t * spa,const dva_t * dva,uint64_t txg)5763 metaslab_claim_dva(spa_t *spa, const dva_t *dva, uint64_t txg)
5764 {
5765 uint64_t vdev = DVA_GET_VDEV(dva);
5766 uint64_t offset = DVA_GET_OFFSET(dva);
5767 uint64_t size = DVA_GET_ASIZE(dva);
5768 vdev_t *vd;
5769
5770 if ((vd = vdev_lookup_top(spa, vdev)) == NULL) {
5771 return (SET_ERROR(ENXIO));
5772 }
5773
5774 ASSERT(DVA_IS_VALID(dva));
5775
5776 if (DVA_GET_GANG(dva))
5777 size = vdev_gang_header_asize(vd);
5778
5779 return (metaslab_claim_impl(vd, offset, size, txg));
5780 }
5781
5782 int
metaslab_alloc(spa_t * spa,metaslab_class_t * mc,uint64_t psize,blkptr_t * bp,int ndvas,uint64_t txg,blkptr_t * hintbp,int flags,zio_alloc_list_t * zal,zio_t * zio,int allocator)5783 metaslab_alloc(spa_t *spa, metaslab_class_t *mc, uint64_t psize, blkptr_t *bp,
5784 int ndvas, uint64_t txg, blkptr_t *hintbp, int flags,
5785 zio_alloc_list_t *zal, zio_t *zio, int allocator)
5786 {
5787 dva_t *dva = bp->blk_dva;
5788 dva_t *hintdva = (hintbp != NULL) ? hintbp->blk_dva : NULL;
5789 int error = 0;
5790
5791 ASSERT(bp->blk_birth == 0);
5792 ASSERT(BP_PHYSICAL_BIRTH(bp) == 0);
5793
5794 spa_config_enter(spa, SCL_ALLOC, FTAG, RW_READER);
5795
5796 if (mc->mc_allocator[allocator].mca_rotor == NULL) {
5797 /* no vdevs in this class */
5798 spa_config_exit(spa, SCL_ALLOC, FTAG);
5799 return (SET_ERROR(ENOSPC));
5800 }
5801
5802 ASSERT(ndvas > 0 && ndvas <= spa_max_replication(spa));
5803 ASSERT(BP_GET_NDVAS(bp) == 0);
5804 ASSERT(hintbp == NULL || ndvas <= BP_GET_NDVAS(hintbp));
5805 ASSERT3P(zal, !=, NULL);
5806
5807 for (int d = 0; d < ndvas; d++) {
5808 error = metaslab_alloc_dva(spa, mc, psize, dva, d, hintdva,
5809 txg, flags, zal, allocator);
5810 if (error != 0) {
5811 for (d--; d >= 0; d--) {
5812 metaslab_unalloc_dva(spa, &dva[d], txg);
5813 metaslab_group_alloc_decrement(spa,
5814 DVA_GET_VDEV(&dva[d]), zio, flags,
5815 allocator, B_FALSE);
5816 bzero(&dva[d], sizeof (dva_t));
5817 }
5818 spa_config_exit(spa, SCL_ALLOC, FTAG);
5819 return (error);
5820 } else {
5821 /*
5822 * Update the metaslab group's queue depth
5823 * based on the newly allocated dva.
5824 */
5825 metaslab_group_alloc_increment(spa,
5826 DVA_GET_VDEV(&dva[d]), zio, flags, allocator);
5827 }
5828 }
5829 ASSERT(error == 0);
5830 ASSERT(BP_GET_NDVAS(bp) == ndvas);
5831
5832 spa_config_exit(spa, SCL_ALLOC, FTAG);
5833
5834 BP_SET_BIRTH(bp, txg, 0);
5835
5836 return (0);
5837 }
5838
5839 void
metaslab_free(spa_t * spa,const blkptr_t * bp,uint64_t txg,boolean_t now)5840 metaslab_free(spa_t *spa, const blkptr_t *bp, uint64_t txg, boolean_t now)
5841 {
5842 const dva_t *dva = bp->blk_dva;
5843 int ndvas = BP_GET_NDVAS(bp);
5844
5845 ASSERT(!BP_IS_HOLE(bp));
5846 ASSERT(!now || bp->blk_birth >= spa_syncing_txg(spa));
5847
5848 /*
5849 * If we have a checkpoint for the pool we need to make sure that
5850 * the blocks that we free that are part of the checkpoint won't be
5851 * reused until the checkpoint is discarded or we revert to it.
5852 *
5853 * The checkpoint flag is passed down the metaslab_free code path
5854 * and is set whenever we want to add a block to the checkpoint's
5855 * accounting. That is, we "checkpoint" blocks that existed at the
5856 * time the checkpoint was created and are therefore referenced by
5857 * the checkpointed uberblock.
5858 *
5859 * Note that, we don't checkpoint any blocks if the current
5860 * syncing txg <= spa_checkpoint_txg. We want these frees to sync
5861 * normally as they will be referenced by the checkpointed uberblock.
5862 */
5863 boolean_t checkpoint = B_FALSE;
5864 if (bp->blk_birth <= spa->spa_checkpoint_txg &&
5865 spa_syncing_txg(spa) > spa->spa_checkpoint_txg) {
5866 /*
5867 * At this point, if the block is part of the checkpoint
5868 * there is no way it was created in the current txg.
5869 */
5870 ASSERT(!now);
5871 ASSERT3U(spa_syncing_txg(spa), ==, txg);
5872 checkpoint = B_TRUE;
5873 }
5874
5875 spa_config_enter(spa, SCL_FREE, FTAG, RW_READER);
5876
5877 for (int d = 0; d < ndvas; d++) {
5878 if (now) {
5879 metaslab_unalloc_dva(spa, &dva[d], txg);
5880 } else {
5881 ASSERT3U(txg, ==, spa_syncing_txg(spa));
5882 metaslab_free_dva(spa, &dva[d], checkpoint);
5883 }
5884 }
5885
5886 spa_config_exit(spa, SCL_FREE, FTAG);
5887 }
5888
5889 int
metaslab_claim(spa_t * spa,const blkptr_t * bp,uint64_t txg)5890 metaslab_claim(spa_t *spa, const blkptr_t *bp, uint64_t txg)
5891 {
5892 const dva_t *dva = bp->blk_dva;
5893 int ndvas = BP_GET_NDVAS(bp);
5894 int error = 0;
5895
5896 ASSERT(!BP_IS_HOLE(bp));
5897
5898 if (txg != 0) {
5899 /*
5900 * First do a dry run to make sure all DVAs are claimable,
5901 * so we don't have to unwind from partial failures below.
5902 */
5903 if ((error = metaslab_claim(spa, bp, 0)) != 0)
5904 return (error);
5905 }
5906
5907 spa_config_enter(spa, SCL_ALLOC, FTAG, RW_READER);
5908
5909 for (int d = 0; d < ndvas; d++) {
5910 error = metaslab_claim_dva(spa, &dva[d], txg);
5911 if (error != 0)
5912 break;
5913 }
5914
5915 spa_config_exit(spa, SCL_ALLOC, FTAG);
5916
5917 ASSERT(error == 0 || txg == 0);
5918
5919 return (error);
5920 }
5921
5922 void
metaslab_fastwrite_mark(spa_t * spa,const blkptr_t * bp)5923 metaslab_fastwrite_mark(spa_t *spa, const blkptr_t *bp)
5924 {
5925 const dva_t *dva = bp->blk_dva;
5926 int ndvas = BP_GET_NDVAS(bp);
5927 uint64_t psize = BP_GET_PSIZE(bp);
5928 int d;
5929 vdev_t *vd;
5930
5931 ASSERT(!BP_IS_HOLE(bp));
5932 ASSERT(!BP_IS_EMBEDDED(bp));
5933 ASSERT(psize > 0);
5934
5935 spa_config_enter(spa, SCL_VDEV, FTAG, RW_READER);
5936
5937 for (d = 0; d < ndvas; d++) {
5938 if ((vd = vdev_lookup_top(spa, DVA_GET_VDEV(&dva[d]))) == NULL)
5939 continue;
5940 atomic_add_64(&vd->vdev_pending_fastwrite, psize);
5941 }
5942
5943 spa_config_exit(spa, SCL_VDEV, FTAG);
5944 }
5945
5946 void
metaslab_fastwrite_unmark(spa_t * spa,const blkptr_t * bp)5947 metaslab_fastwrite_unmark(spa_t *spa, const blkptr_t *bp)
5948 {
5949 const dva_t *dva = bp->blk_dva;
5950 int ndvas = BP_GET_NDVAS(bp);
5951 uint64_t psize = BP_GET_PSIZE(bp);
5952 int d;
5953 vdev_t *vd;
5954
5955 ASSERT(!BP_IS_HOLE(bp));
5956 ASSERT(!BP_IS_EMBEDDED(bp));
5957 ASSERT(psize > 0);
5958
5959 spa_config_enter(spa, SCL_VDEV, FTAG, RW_READER);
5960
5961 for (d = 0; d < ndvas; d++) {
5962 if ((vd = vdev_lookup_top(spa, DVA_GET_VDEV(&dva[d]))) == NULL)
5963 continue;
5964 ASSERT3U(vd->vdev_pending_fastwrite, >=, psize);
5965 atomic_sub_64(&vd->vdev_pending_fastwrite, psize);
5966 }
5967
5968 spa_config_exit(spa, SCL_VDEV, FTAG);
5969 }
5970
5971 static void
metaslab_check_free_impl_cb(uint64_t inner,vdev_t * vd,uint64_t offset,uint64_t size,void * arg)5972 metaslab_check_free_impl_cb(uint64_t inner, vdev_t *vd, uint64_t offset,
5973 uint64_t size, void *arg)
5974 {
5975 (void) inner, (void) arg;
5976
5977 if (vd->vdev_ops == &vdev_indirect_ops)
5978 return;
5979
5980 metaslab_check_free_impl(vd, offset, size);
5981 }
5982
5983 static void
metaslab_check_free_impl(vdev_t * vd,uint64_t offset,uint64_t size)5984 metaslab_check_free_impl(vdev_t *vd, uint64_t offset, uint64_t size)
5985 {
5986 metaslab_t *msp;
5987 spa_t *spa __maybe_unused = vd->vdev_spa;
5988
5989 if ((zfs_flags & ZFS_DEBUG_ZIO_FREE) == 0)
5990 return;
5991
5992 if (vd->vdev_ops->vdev_op_remap != NULL) {
5993 vd->vdev_ops->vdev_op_remap(vd, offset, size,
5994 metaslab_check_free_impl_cb, NULL);
5995 return;
5996 }
5997
5998 ASSERT(vdev_is_concrete(vd));
5999 ASSERT3U(offset >> vd->vdev_ms_shift, <, vd->vdev_ms_count);
6000 ASSERT3U(spa_config_held(spa, SCL_ALL, RW_READER), !=, 0);
6001
6002 msp = vd->vdev_ms[offset >> vd->vdev_ms_shift];
6003
6004 mutex_enter(&msp->ms_lock);
6005 if (msp->ms_loaded) {
6006 range_tree_verify_not_present(msp->ms_allocatable,
6007 offset, size);
6008 }
6009
6010 /*
6011 * Check all segments that currently exist in the freeing pipeline.
6012 *
6013 * It would intuitively make sense to also check the current allocating
6014 * tree since metaslab_unalloc_dva() exists for extents that are
6015 * allocated and freed in the same sync pass within the same txg.
6016 * Unfortunately there are places (e.g. the ZIL) where we allocate a
6017 * segment but then we free part of it within the same txg
6018 * [see zil_sync()]. Thus, we don't call range_tree_verify() in the
6019 * current allocating tree.
6020 */
6021 range_tree_verify_not_present(msp->ms_freeing, offset, size);
6022 range_tree_verify_not_present(msp->ms_checkpointing, offset, size);
6023 range_tree_verify_not_present(msp->ms_freed, offset, size);
6024 for (int j = 0; j < TXG_DEFER_SIZE; j++)
6025 range_tree_verify_not_present(msp->ms_defer[j], offset, size);
6026 range_tree_verify_not_present(msp->ms_trim, offset, size);
6027 mutex_exit(&msp->ms_lock);
6028 }
6029
6030 void
metaslab_check_free(spa_t * spa,const blkptr_t * bp)6031 metaslab_check_free(spa_t *spa, const blkptr_t *bp)
6032 {
6033 if ((zfs_flags & ZFS_DEBUG_ZIO_FREE) == 0)
6034 return;
6035
6036 spa_config_enter(spa, SCL_VDEV, FTAG, RW_READER);
6037 for (int i = 0; i < BP_GET_NDVAS(bp); i++) {
6038 uint64_t vdev = DVA_GET_VDEV(&bp->blk_dva[i]);
6039 vdev_t *vd = vdev_lookup_top(spa, vdev);
6040 uint64_t offset = DVA_GET_OFFSET(&bp->blk_dva[i]);
6041 uint64_t size = DVA_GET_ASIZE(&bp->blk_dva[i]);
6042
6043 if (DVA_GET_GANG(&bp->blk_dva[i]))
6044 size = vdev_gang_header_asize(vd);
6045
6046 ASSERT3P(vd, !=, NULL);
6047
6048 metaslab_check_free_impl(vd, offset, size);
6049 }
6050 spa_config_exit(spa, SCL_VDEV, FTAG);
6051 }
6052
6053 static void
metaslab_group_disable_wait(metaslab_group_t * mg)6054 metaslab_group_disable_wait(metaslab_group_t *mg)
6055 {
6056 ASSERT(MUTEX_HELD(&mg->mg_ms_disabled_lock));
6057 while (mg->mg_disabled_updating) {
6058 cv_wait(&mg->mg_ms_disabled_cv, &mg->mg_ms_disabled_lock);
6059 }
6060 }
6061
6062 static void
metaslab_group_disabled_increment(metaslab_group_t * mg)6063 metaslab_group_disabled_increment(metaslab_group_t *mg)
6064 {
6065 ASSERT(MUTEX_HELD(&mg->mg_ms_disabled_lock));
6066 ASSERT(mg->mg_disabled_updating);
6067
6068 while (mg->mg_ms_disabled >= max_disabled_ms) {
6069 cv_wait(&mg->mg_ms_disabled_cv, &mg->mg_ms_disabled_lock);
6070 }
6071 mg->mg_ms_disabled++;
6072 ASSERT3U(mg->mg_ms_disabled, <=, max_disabled_ms);
6073 }
6074
6075 /*
6076 * Mark the metaslab as disabled to prevent any allocations on this metaslab.
6077 * We must also track how many metaslabs are currently disabled within a
6078 * metaslab group and limit them to prevent allocation failures from
6079 * occurring because all metaslabs are disabled.
6080 */
6081 void
metaslab_disable(metaslab_t * msp)6082 metaslab_disable(metaslab_t *msp)
6083 {
6084 ASSERT(!MUTEX_HELD(&msp->ms_lock));
6085 metaslab_group_t *mg = msp->ms_group;
6086
6087 mutex_enter(&mg->mg_ms_disabled_lock);
6088
6089 /*
6090 * To keep an accurate count of how many threads have disabled
6091 * a specific metaslab group, we only allow one thread to mark
6092 * the metaslab group at a time. This ensures that the value of
6093 * ms_disabled will be accurate when we decide to mark a metaslab
6094 * group as disabled. To do this we force all other threads
6095 * to wait till the metaslab's mg_disabled_updating flag is no
6096 * longer set.
6097 */
6098 metaslab_group_disable_wait(mg);
6099 mg->mg_disabled_updating = B_TRUE;
6100 if (msp->ms_disabled == 0) {
6101 metaslab_group_disabled_increment(mg);
6102 }
6103 mutex_enter(&msp->ms_lock);
6104 msp->ms_disabled++;
6105 mutex_exit(&msp->ms_lock);
6106
6107 mg->mg_disabled_updating = B_FALSE;
6108 cv_broadcast(&mg->mg_ms_disabled_cv);
6109 mutex_exit(&mg->mg_ms_disabled_lock);
6110 }
6111
6112 void
metaslab_enable(metaslab_t * msp,boolean_t sync,boolean_t unload)6113 metaslab_enable(metaslab_t *msp, boolean_t sync, boolean_t unload)
6114 {
6115 metaslab_group_t *mg = msp->ms_group;
6116 spa_t *spa = mg->mg_vd->vdev_spa;
6117
6118 /*
6119 * Wait for the outstanding IO to be synced to prevent newly
6120 * allocated blocks from being overwritten. This used by
6121 * initialize and TRIM which are modifying unallocated space.
6122 */
6123 if (sync)
6124 txg_wait_synced(spa_get_dsl(spa), 0);
6125
6126 mutex_enter(&mg->mg_ms_disabled_lock);
6127 mutex_enter(&msp->ms_lock);
6128 if (--msp->ms_disabled == 0) {
6129 mg->mg_ms_disabled--;
6130 cv_broadcast(&mg->mg_ms_disabled_cv);
6131 if (unload)
6132 metaslab_unload(msp);
6133 }
6134 mutex_exit(&msp->ms_lock);
6135 mutex_exit(&mg->mg_ms_disabled_lock);
6136 }
6137
6138 static void
metaslab_update_ondisk_flush_data(metaslab_t * ms,dmu_tx_t * tx)6139 metaslab_update_ondisk_flush_data(metaslab_t *ms, dmu_tx_t *tx)
6140 {
6141 vdev_t *vd = ms->ms_group->mg_vd;
6142 spa_t *spa = vd->vdev_spa;
6143 objset_t *mos = spa_meta_objset(spa);
6144
6145 ASSERT(spa_feature_is_active(spa, SPA_FEATURE_LOG_SPACEMAP));
6146
6147 metaslab_unflushed_phys_t entry = {
6148 .msp_unflushed_txg = metaslab_unflushed_txg(ms),
6149 };
6150 uint64_t entry_size = sizeof (entry);
6151 uint64_t entry_offset = ms->ms_id * entry_size;
6152
6153 uint64_t object = 0;
6154 int err = zap_lookup(mos, vd->vdev_top_zap,
6155 VDEV_TOP_ZAP_MS_UNFLUSHED_PHYS_TXGS, sizeof (uint64_t), 1,
6156 &object);
6157 if (err == ENOENT) {
6158 object = dmu_object_alloc(mos, DMU_OTN_UINT64_METADATA,
6159 SPA_OLD_MAXBLOCKSIZE, DMU_OT_NONE, 0, tx);
6160 VERIFY0(zap_add(mos, vd->vdev_top_zap,
6161 VDEV_TOP_ZAP_MS_UNFLUSHED_PHYS_TXGS, sizeof (uint64_t), 1,
6162 &object, tx));
6163 } else {
6164 VERIFY0(err);
6165 }
6166
6167 dmu_write(spa_meta_objset(spa), object, entry_offset, entry_size,
6168 &entry, tx);
6169 }
6170
6171 void
metaslab_set_unflushed_txg(metaslab_t * ms,uint64_t txg,dmu_tx_t * tx)6172 metaslab_set_unflushed_txg(metaslab_t *ms, uint64_t txg, dmu_tx_t *tx)
6173 {
6174 spa_t *spa = ms->ms_group->mg_vd->vdev_spa;
6175
6176 if (!spa_feature_is_active(spa, SPA_FEATURE_LOG_SPACEMAP))
6177 return;
6178
6179 ms->ms_unflushed_txg = txg;
6180 metaslab_update_ondisk_flush_data(ms, tx);
6181 }
6182
6183 uint64_t
metaslab_unflushed_txg(metaslab_t * ms)6184 metaslab_unflushed_txg(metaslab_t *ms)
6185 {
6186 return (ms->ms_unflushed_txg);
6187 }
6188
6189 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, aliquot, ULONG, ZMOD_RW,
6190 "Allocation granularity (a.k.a. stripe size)");
6191
6192 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, debug_load, INT, ZMOD_RW,
6193 "Load all metaslabs when pool is first opened");
6194
6195 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, debug_unload, INT, ZMOD_RW,
6196 "Prevent metaslabs from being unloaded");
6197
6198 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, preload_enabled, INT, ZMOD_RW,
6199 "Preload potential metaslabs during reassessment");
6200
6201 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, unload_delay, INT, ZMOD_RW,
6202 "Delay in txgs after metaslab was last used before unloading");
6203
6204 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, unload_delay_ms, INT, ZMOD_RW,
6205 "Delay in milliseconds after metaslab was last used before unloading");
6206
6207 /* BEGIN CSTYLED */
6208 ZFS_MODULE_PARAM(zfs_mg, zfs_mg_, noalloc_threshold, INT, ZMOD_RW,
6209 "Percentage of metaslab group size that should be free to make it "
6210 "eligible for allocation");
6211
6212 ZFS_MODULE_PARAM(zfs_mg, zfs_mg_, fragmentation_threshold, INT, ZMOD_RW,
6213 "Percentage of metaslab group size that should be considered eligible "
6214 "for allocations unless all metaslab groups within the metaslab class "
6215 "have also crossed this threshold");
6216
6217 ZFS_MODULE_PARAM(zfs_metaslab, zfs_metaslab_, fragmentation_threshold, INT,
6218 ZMOD_RW, "Fragmentation for metaslab to allow allocation");
6219
6220 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, fragmentation_factor_enabled, INT, ZMOD_RW,
6221 "Use the fragmentation metric to prefer less fragmented metaslabs");
6222 /* END CSTYLED */
6223
6224 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, lba_weighting_enabled, INT, ZMOD_RW,
6225 "Prefer metaslabs with lower LBAs");
6226
6227 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, bias_enabled, INT, ZMOD_RW,
6228 "Enable metaslab group biasing");
6229
6230 ZFS_MODULE_PARAM(zfs_metaslab, zfs_metaslab_, segment_weight_enabled, INT,
6231 ZMOD_RW, "Enable segment-based metaslab selection");
6232
6233 ZFS_MODULE_PARAM(zfs_metaslab, zfs_metaslab_, switch_threshold, INT, ZMOD_RW,
6234 "Segment-based metaslab selection maximum buckets before switching");
6235
6236 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, force_ganging, ULONG, ZMOD_RW,
6237 "Blocks larger than this size are forced to be gang blocks");
6238
6239 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, df_max_search, INT, ZMOD_RW,
6240 "Max distance (bytes) to search forward before using size tree");
6241
6242 ZFS_MODULE_PARAM(zfs_metaslab, metaslab_, df_use_largest_segment, INT, ZMOD_RW,
6243 "When looking in size tree, use largest segment instead of exact fit");
6244
6245 ZFS_MODULE_PARAM(zfs_metaslab, zfs_metaslab_, max_size_cache_sec, ULONG,
6246 ZMOD_RW, "How long to trust the cached max chunk size of a metaslab");
6247
6248 ZFS_MODULE_PARAM(zfs_metaslab, zfs_metaslab_, mem_limit, INT, ZMOD_RW,
6249 "Percentage of memory that can be used to store metaslab range trees");
6250
6251 ZFS_MODULE_PARAM(zfs_metaslab, zfs_metaslab_, try_hard_before_gang, INT,
6252 ZMOD_RW, "Try hard to allocate before ganging");
6253
6254 ZFS_MODULE_PARAM(zfs_metaslab, zfs_metaslab_, find_max_tries, INT, ZMOD_RW,
6255 "Normally only consider this many of the best metaslabs in each vdev");
6256