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, 2015 by Delphix. All rights reserved. 24 * Copyright (c) 2013 by Saso Kiselkov. All rights reserved. 25 * Copyright (c) 2014 Integros [integros.com] 26 */ 27 28 #include <sys/zfs_context.h> 29 #include <sys/dmu.h> 30 #include <sys/dmu_tx.h> 31 #include <sys/space_map.h> 32 #include <sys/metaslab_impl.h> 33 #include <sys/vdev_impl.h> 34 #include <sys/zio.h> 35 #include <sys/spa_impl.h> 36 #include <sys/zfeature.h> 37 38 SYSCTL_DECL(_vfs_zfs); 39 SYSCTL_NODE(_vfs_zfs, OID_AUTO, metaslab, CTLFLAG_RW, 0, "ZFS metaslab"); 40 41 #define GANG_ALLOCATION(flags) \ 42 ((flags) & (METASLAB_GANG_CHILD | METASLAB_GANG_HEADER)) 43 44 uint64_t metaslab_aliquot = 512ULL << 10; 45 uint64_t metaslab_gang_bang = SPA_MAXBLOCKSIZE + 1; /* force gang blocks */ 46 SYSCTL_QUAD(_vfs_zfs_metaslab, OID_AUTO, gang_bang, CTLFLAG_RWTUN, 47 &metaslab_gang_bang, 0, 48 "Force gang block allocation for blocks larger than or equal to this value"); 49 50 /* 51 * The in-core space map representation is more compact than its on-disk form. 52 * The zfs_condense_pct determines how much more compact the in-core 53 * space map representation must be before we compact it on-disk. 54 * Values should be greater than or equal to 100. 55 */ 56 int zfs_condense_pct = 200; 57 SYSCTL_INT(_vfs_zfs, OID_AUTO, condense_pct, CTLFLAG_RWTUN, 58 &zfs_condense_pct, 0, 59 "Condense on-disk spacemap when it is more than this many percents" 60 " of in-memory counterpart"); 61 62 /* 63 * Condensing a metaslab is not guaranteed to actually reduce the amount of 64 * space used on disk. In particular, a space map uses data in increments of 65 * MAX(1 << ashift, space_map_blksize), so a metaslab might use the 66 * same number of blocks after condensing. Since the goal of condensing is to 67 * reduce the number of IOPs required to read the space map, we only want to 68 * condense when we can be sure we will reduce the number of blocks used by the 69 * space map. Unfortunately, we cannot precisely compute whether or not this is 70 * the case in metaslab_should_condense since we are holding ms_lock. Instead, 71 * we apply the following heuristic: do not condense a spacemap unless the 72 * uncondensed size consumes greater than zfs_metaslab_condense_block_threshold 73 * blocks. 74 */ 75 int zfs_metaslab_condense_block_threshold = 4; 76 77 /* 78 * The zfs_mg_noalloc_threshold defines which metaslab groups should 79 * be eligible for allocation. The value is defined as a percentage of 80 * free space. Metaslab groups that have more free space than 81 * zfs_mg_noalloc_threshold are always eligible for allocations. Once 82 * a metaslab group's free space is less than or equal to the 83 * zfs_mg_noalloc_threshold the allocator will avoid allocating to that 84 * group unless all groups in the pool have reached zfs_mg_noalloc_threshold. 85 * Once all groups in the pool reach zfs_mg_noalloc_threshold then all 86 * groups are allowed to accept allocations. Gang blocks are always 87 * eligible to allocate on any metaslab group. The default value of 0 means 88 * no metaslab group will be excluded based on this criterion. 89 */ 90 int zfs_mg_noalloc_threshold = 0; 91 SYSCTL_INT(_vfs_zfs, OID_AUTO, mg_noalloc_threshold, CTLFLAG_RWTUN, 92 &zfs_mg_noalloc_threshold, 0, 93 "Percentage of metaslab group size that should be free" 94 " to make it eligible for allocation"); 95 96 /* 97 * Metaslab groups are considered eligible for allocations if their 98 * fragmenation metric (measured as a percentage) is less than or equal to 99 * zfs_mg_fragmentation_threshold. If a metaslab group exceeds this threshold 100 * then it will be skipped unless all metaslab groups within the metaslab 101 * class have also crossed this threshold. 102 */ 103 int zfs_mg_fragmentation_threshold = 85; 104 SYSCTL_INT(_vfs_zfs, OID_AUTO, mg_fragmentation_threshold, CTLFLAG_RWTUN, 105 &zfs_mg_fragmentation_threshold, 0, 106 "Percentage of metaslab group size that should be considered " 107 "eligible for allocations unless all metaslab groups within the metaslab class " 108 "have also crossed this threshold"); 109 110 /* 111 * Allow metaslabs to keep their active state as long as their fragmentation 112 * percentage is less than or equal to zfs_metaslab_fragmentation_threshold. An 113 * active metaslab that exceeds this threshold will no longer keep its active 114 * status allowing better metaslabs to be selected. 115 */ 116 int zfs_metaslab_fragmentation_threshold = 70; 117 SYSCTL_INT(_vfs_zfs_metaslab, OID_AUTO, fragmentation_threshold, CTLFLAG_RWTUN, 118 &zfs_metaslab_fragmentation_threshold, 0, 119 "Maximum percentage of metaslab fragmentation level to keep their active state"); 120 121 /* 122 * When set will load all metaslabs when pool is first opened. 123 */ 124 int metaslab_debug_load = 0; 125 SYSCTL_INT(_vfs_zfs_metaslab, OID_AUTO, debug_load, CTLFLAG_RWTUN, 126 &metaslab_debug_load, 0, 127 "Load all metaslabs when pool is first opened"); 128 129 /* 130 * When set will prevent metaslabs from being unloaded. 131 */ 132 int metaslab_debug_unload = 0; 133 SYSCTL_INT(_vfs_zfs_metaslab, OID_AUTO, debug_unload, CTLFLAG_RWTUN, 134 &metaslab_debug_unload, 0, 135 "Prevent metaslabs from being unloaded"); 136 137 /* 138 * Minimum size which forces the dynamic allocator to change 139 * it's allocation strategy. Once the space map cannot satisfy 140 * an allocation of this size then it switches to using more 141 * aggressive strategy (i.e search by size rather than offset). 142 */ 143 uint64_t metaslab_df_alloc_threshold = SPA_OLD_MAXBLOCKSIZE; 144 SYSCTL_QUAD(_vfs_zfs_metaslab, OID_AUTO, df_alloc_threshold, CTLFLAG_RWTUN, 145 &metaslab_df_alloc_threshold, 0, 146 "Minimum size which forces the dynamic allocator to change it's allocation strategy"); 147 148 /* 149 * The minimum free space, in percent, which must be available 150 * in a space map to continue allocations in a first-fit fashion. 151 * Once the space map's free space drops below this level we dynamically 152 * switch to using best-fit allocations. 153 */ 154 int metaslab_df_free_pct = 4; 155 SYSCTL_INT(_vfs_zfs_metaslab, OID_AUTO, df_free_pct, CTLFLAG_RWTUN, 156 &metaslab_df_free_pct, 0, 157 "The minimum free space, in percent, which must be available in a " 158 "space map to continue allocations in a first-fit fashion"); 159 160 /* 161 * A metaslab is considered "free" if it contains a contiguous 162 * segment which is greater than metaslab_min_alloc_size. 163 */ 164 uint64_t metaslab_min_alloc_size = DMU_MAX_ACCESS; 165 SYSCTL_QUAD(_vfs_zfs_metaslab, OID_AUTO, min_alloc_size, CTLFLAG_RWTUN, 166 &metaslab_min_alloc_size, 0, 167 "A metaslab is considered \"free\" if it contains a contiguous " 168 "segment which is greater than vfs.zfs.metaslab.min_alloc_size"); 169 170 /* 171 * Percentage of all cpus that can be used by the metaslab taskq. 172 */ 173 int metaslab_load_pct = 50; 174 SYSCTL_INT(_vfs_zfs_metaslab, OID_AUTO, load_pct, CTLFLAG_RWTUN, 175 &metaslab_load_pct, 0, 176 "Percentage of cpus that can be used by the metaslab taskq"); 177 178 /* 179 * Determines how many txgs a metaslab may remain loaded without having any 180 * allocations from it. As long as a metaslab continues to be used we will 181 * keep it loaded. 182 */ 183 int metaslab_unload_delay = TXG_SIZE * 2; 184 SYSCTL_INT(_vfs_zfs_metaslab, OID_AUTO, unload_delay, CTLFLAG_RWTUN, 185 &metaslab_unload_delay, 0, 186 "Number of TXGs that an unused metaslab can be kept in memory"); 187 188 /* 189 * Max number of metaslabs per group to preload. 190 */ 191 int metaslab_preload_limit = SPA_DVAS_PER_BP; 192 SYSCTL_INT(_vfs_zfs_metaslab, OID_AUTO, preload_limit, CTLFLAG_RWTUN, 193 &metaslab_preload_limit, 0, 194 "Max number of metaslabs per group to preload"); 195 196 /* 197 * Enable/disable preloading of metaslab. 198 */ 199 boolean_t metaslab_preload_enabled = B_TRUE; 200 SYSCTL_INT(_vfs_zfs_metaslab, OID_AUTO, preload_enabled, CTLFLAG_RWTUN, 201 &metaslab_preload_enabled, 0, 202 "Max number of metaslabs per group to preload"); 203 204 /* 205 * Enable/disable fragmentation weighting on metaslabs. 206 */ 207 boolean_t metaslab_fragmentation_factor_enabled = B_TRUE; 208 SYSCTL_INT(_vfs_zfs_metaslab, OID_AUTO, fragmentation_factor_enabled, CTLFLAG_RWTUN, 209 &metaslab_fragmentation_factor_enabled, 0, 210 "Enable fragmentation weighting on metaslabs"); 211 212 /* 213 * Enable/disable lba weighting (i.e. outer tracks are given preference). 214 */ 215 boolean_t metaslab_lba_weighting_enabled = B_TRUE; 216 SYSCTL_INT(_vfs_zfs_metaslab, OID_AUTO, lba_weighting_enabled, CTLFLAG_RWTUN, 217 &metaslab_lba_weighting_enabled, 0, 218 "Enable LBA weighting (i.e. outer tracks are given preference)"); 219 220 /* 221 * Enable/disable metaslab group biasing. 222 */ 223 boolean_t metaslab_bias_enabled = B_TRUE; 224 SYSCTL_INT(_vfs_zfs_metaslab, OID_AUTO, bias_enabled, CTLFLAG_RWTUN, 225 &metaslab_bias_enabled, 0, 226 "Enable metaslab group biasing"); 227 228 /* 229 * Enable/disable segment-based metaslab selection. 230 */ 231 boolean_t zfs_metaslab_segment_weight_enabled = B_TRUE; 232 233 /* 234 * When using segment-based metaslab selection, we will continue 235 * allocating from the active metaslab until we have exhausted 236 * zfs_metaslab_switch_threshold of its buckets. 237 */ 238 int zfs_metaslab_switch_threshold = 2; 239 240 /* 241 * Internal switch to enable/disable the metaslab allocation tracing 242 * facility. 243 */ 244 boolean_t metaslab_trace_enabled = B_TRUE; 245 246 /* 247 * Maximum entries that the metaslab allocation tracing facility will keep 248 * in a given list when running in non-debug mode. We limit the number 249 * of entries in non-debug mode to prevent us from using up too much memory. 250 * The limit should be sufficiently large that we don't expect any allocation 251 * to every exceed this value. In debug mode, the system will panic if this 252 * limit is ever reached allowing for further investigation. 253 */ 254 uint64_t metaslab_trace_max_entries = 5000; 255 256 static uint64_t metaslab_weight(metaslab_t *); 257 static void metaslab_set_fragmentation(metaslab_t *); 258 259 kmem_cache_t *metaslab_alloc_trace_cache; 260 261 /* 262 * ========================================================================== 263 * Metaslab classes 264 * ========================================================================== 265 */ 266 metaslab_class_t * 267 metaslab_class_create(spa_t *spa, metaslab_ops_t *ops) 268 { 269 metaslab_class_t *mc; 270 271 mc = kmem_zalloc(sizeof (metaslab_class_t), KM_SLEEP); 272 273 mc->mc_spa = spa; 274 mc->mc_rotor = NULL; 275 mc->mc_ops = ops; 276 mutex_init(&mc->mc_lock, NULL, MUTEX_DEFAULT, NULL); 277 refcount_create_tracked(&mc->mc_alloc_slots); 278 279 return (mc); 280 } 281 282 void 283 metaslab_class_destroy(metaslab_class_t *mc) 284 { 285 ASSERT(mc->mc_rotor == NULL); 286 ASSERT(mc->mc_alloc == 0); 287 ASSERT(mc->mc_deferred == 0); 288 ASSERT(mc->mc_space == 0); 289 ASSERT(mc->mc_dspace == 0); 290 291 refcount_destroy(&mc->mc_alloc_slots); 292 mutex_destroy(&mc->mc_lock); 293 kmem_free(mc, sizeof (metaslab_class_t)); 294 } 295 296 int 297 metaslab_class_validate(metaslab_class_t *mc) 298 { 299 metaslab_group_t *mg; 300 vdev_t *vd; 301 302 /* 303 * Must hold one of the spa_config locks. 304 */ 305 ASSERT(spa_config_held(mc->mc_spa, SCL_ALL, RW_READER) || 306 spa_config_held(mc->mc_spa, SCL_ALL, RW_WRITER)); 307 308 if ((mg = mc->mc_rotor) == NULL) 309 return (0); 310 311 do { 312 vd = mg->mg_vd; 313 ASSERT(vd->vdev_mg != NULL); 314 ASSERT3P(vd->vdev_top, ==, vd); 315 ASSERT3P(mg->mg_class, ==, mc); 316 ASSERT3P(vd->vdev_ops, !=, &vdev_hole_ops); 317 } while ((mg = mg->mg_next) != mc->mc_rotor); 318 319 return (0); 320 } 321 322 void 323 metaslab_class_space_update(metaslab_class_t *mc, int64_t alloc_delta, 324 int64_t defer_delta, int64_t space_delta, int64_t dspace_delta) 325 { 326 atomic_add_64(&mc->mc_alloc, alloc_delta); 327 atomic_add_64(&mc->mc_deferred, defer_delta); 328 atomic_add_64(&mc->mc_space, space_delta); 329 atomic_add_64(&mc->mc_dspace, dspace_delta); 330 } 331 332 void 333 metaslab_class_minblocksize_update(metaslab_class_t *mc) 334 { 335 metaslab_group_t *mg; 336 vdev_t *vd; 337 uint64_t minashift = UINT64_MAX; 338 339 if ((mg = mc->mc_rotor) == NULL) { 340 mc->mc_minblocksize = SPA_MINBLOCKSIZE; 341 return; 342 } 343 344 do { 345 vd = mg->mg_vd; 346 if (vd->vdev_ashift < minashift) 347 minashift = vd->vdev_ashift; 348 } while ((mg = mg->mg_next) != mc->mc_rotor); 349 350 mc->mc_minblocksize = 1ULL << minashift; 351 } 352 353 uint64_t 354 metaslab_class_get_alloc(metaslab_class_t *mc) 355 { 356 return (mc->mc_alloc); 357 } 358 359 uint64_t 360 metaslab_class_get_deferred(metaslab_class_t *mc) 361 { 362 return (mc->mc_deferred); 363 } 364 365 uint64_t 366 metaslab_class_get_space(metaslab_class_t *mc) 367 { 368 return (mc->mc_space); 369 } 370 371 uint64_t 372 metaslab_class_get_dspace(metaslab_class_t *mc) 373 { 374 return (spa_deflate(mc->mc_spa) ? mc->mc_dspace : mc->mc_space); 375 } 376 377 uint64_t 378 metaslab_class_get_minblocksize(metaslab_class_t *mc) 379 { 380 return (mc->mc_minblocksize); 381 } 382 383 void 384 metaslab_class_histogram_verify(metaslab_class_t *mc) 385 { 386 vdev_t *rvd = mc->mc_spa->spa_root_vdev; 387 uint64_t *mc_hist; 388 int i; 389 390 if ((zfs_flags & ZFS_DEBUG_HISTOGRAM_VERIFY) == 0) 391 return; 392 393 mc_hist = kmem_zalloc(sizeof (uint64_t) * RANGE_TREE_HISTOGRAM_SIZE, 394 KM_SLEEP); 395 396 for (int c = 0; c < rvd->vdev_children; c++) { 397 vdev_t *tvd = rvd->vdev_child[c]; 398 metaslab_group_t *mg = tvd->vdev_mg; 399 400 /* 401 * Skip any holes, uninitialized top-levels, or 402 * vdevs that are not in this metalab class. 403 */ 404 if (tvd->vdev_ishole || tvd->vdev_ms_shift == 0 || 405 mg->mg_class != mc) { 406 continue; 407 } 408 409 for (i = 0; i < RANGE_TREE_HISTOGRAM_SIZE; i++) 410 mc_hist[i] += mg->mg_histogram[i]; 411 } 412 413 for (i = 0; i < RANGE_TREE_HISTOGRAM_SIZE; i++) 414 VERIFY3U(mc_hist[i], ==, mc->mc_histogram[i]); 415 416 kmem_free(mc_hist, sizeof (uint64_t) * RANGE_TREE_HISTOGRAM_SIZE); 417 } 418 419 /* 420 * Calculate the metaslab class's fragmentation metric. The metric 421 * is weighted based on the space contribution of each metaslab group. 422 * The return value will be a number between 0 and 100 (inclusive), or 423 * ZFS_FRAG_INVALID if the metric has not been set. See comment above the 424 * zfs_frag_table for more information about the metric. 425 */ 426 uint64_t 427 metaslab_class_fragmentation(metaslab_class_t *mc) 428 { 429 vdev_t *rvd = mc->mc_spa->spa_root_vdev; 430 uint64_t fragmentation = 0; 431 432 spa_config_enter(mc->mc_spa, SCL_VDEV, FTAG, RW_READER); 433 434 for (int c = 0; c < rvd->vdev_children; c++) { 435 vdev_t *tvd = rvd->vdev_child[c]; 436 metaslab_group_t *mg = tvd->vdev_mg; 437 438 /* 439 * Skip any holes, uninitialized top-levels, or 440 * vdevs that are not in this metalab class. 441 */ 442 if (tvd->vdev_ishole || tvd->vdev_ms_shift == 0 || 443 mg->mg_class != mc) { 444 continue; 445 } 446 447 /* 448 * If a metaslab group does not contain a fragmentation 449 * metric then just bail out. 450 */ 451 if (mg->mg_fragmentation == ZFS_FRAG_INVALID) { 452 spa_config_exit(mc->mc_spa, SCL_VDEV, FTAG); 453 return (ZFS_FRAG_INVALID); 454 } 455 456 /* 457 * Determine how much this metaslab_group is contributing 458 * to the overall pool fragmentation metric. 459 */ 460 fragmentation += mg->mg_fragmentation * 461 metaslab_group_get_space(mg); 462 } 463 fragmentation /= metaslab_class_get_space(mc); 464 465 ASSERT3U(fragmentation, <=, 100); 466 spa_config_exit(mc->mc_spa, SCL_VDEV, FTAG); 467 return (fragmentation); 468 } 469 470 /* 471 * Calculate the amount of expandable space that is available in 472 * this metaslab class. If a device is expanded then its expandable 473 * space will be the amount of allocatable space that is currently not 474 * part of this metaslab class. 475 */ 476 uint64_t 477 metaslab_class_expandable_space(metaslab_class_t *mc) 478 { 479 vdev_t *rvd = mc->mc_spa->spa_root_vdev; 480 uint64_t space = 0; 481 482 spa_config_enter(mc->mc_spa, SCL_VDEV, FTAG, RW_READER); 483 for (int c = 0; c < rvd->vdev_children; c++) { 484 vdev_t *tvd = rvd->vdev_child[c]; 485 metaslab_group_t *mg = tvd->vdev_mg; 486 487 if (tvd->vdev_ishole || tvd->vdev_ms_shift == 0 || 488 mg->mg_class != mc) { 489 continue; 490 } 491 492 /* 493 * Calculate if we have enough space to add additional 494 * metaslabs. We report the expandable space in terms 495 * of the metaslab size since that's the unit of expansion. 496 */ 497 space += P2ALIGN(tvd->vdev_max_asize - tvd->vdev_asize, 498 1ULL << tvd->vdev_ms_shift); 499 } 500 spa_config_exit(mc->mc_spa, SCL_VDEV, FTAG); 501 return (space); 502 } 503 504 static int 505 metaslab_compare(const void *x1, const void *x2) 506 { 507 const metaslab_t *m1 = x1; 508 const metaslab_t *m2 = x2; 509 510 if (m1->ms_weight < m2->ms_weight) 511 return (1); 512 if (m1->ms_weight > m2->ms_weight) 513 return (-1); 514 515 /* 516 * If the weights are identical, use the offset to force uniqueness. 517 */ 518 if (m1->ms_start < m2->ms_start) 519 return (-1); 520 if (m1->ms_start > m2->ms_start) 521 return (1); 522 523 ASSERT3P(m1, ==, m2); 524 525 return (0); 526 } 527 528 /* 529 * Verify that the space accounting on disk matches the in-core range_trees. 530 */ 531 void 532 metaslab_verify_space(metaslab_t *msp, uint64_t txg) 533 { 534 spa_t *spa = msp->ms_group->mg_vd->vdev_spa; 535 uint64_t allocated = 0; 536 uint64_t freed = 0; 537 uint64_t sm_free_space, msp_free_space; 538 539 ASSERT(MUTEX_HELD(&msp->ms_lock)); 540 541 if ((zfs_flags & ZFS_DEBUG_METASLAB_VERIFY) == 0) 542 return; 543 544 /* 545 * We can only verify the metaslab space when we're called 546 * from syncing context with a loaded metaslab that has an allocated 547 * space map. Calling this in non-syncing context does not 548 * provide a consistent view of the metaslab since we're performing 549 * allocations in the future. 550 */ 551 if (txg != spa_syncing_txg(spa) || msp->ms_sm == NULL || 552 !msp->ms_loaded) 553 return; 554 555 sm_free_space = msp->ms_size - space_map_allocated(msp->ms_sm) - 556 space_map_alloc_delta(msp->ms_sm); 557 558 /* 559 * Account for future allocations since we would have already 560 * deducted that space from the ms_freetree. 561 */ 562 for (int t = 0; t < TXG_CONCURRENT_STATES; t++) { 563 allocated += 564 range_tree_space(msp->ms_alloctree[(txg + t) & TXG_MASK]); 565 } 566 freed = range_tree_space(msp->ms_freetree[TXG_CLEAN(txg) & TXG_MASK]); 567 568 msp_free_space = range_tree_space(msp->ms_tree) + allocated + 569 msp->ms_deferspace + freed; 570 571 VERIFY3U(sm_free_space, ==, msp_free_space); 572 } 573 574 /* 575 * ========================================================================== 576 * Metaslab groups 577 * ========================================================================== 578 */ 579 /* 580 * Update the allocatable flag and the metaslab group's capacity. 581 * The allocatable flag is set to true if the capacity is below 582 * the zfs_mg_noalloc_threshold or has a fragmentation value that is 583 * greater than zfs_mg_fragmentation_threshold. If a metaslab group 584 * transitions from allocatable to non-allocatable or vice versa then the 585 * metaslab group's class is updated to reflect the transition. 586 */ 587 static void 588 metaslab_group_alloc_update(metaslab_group_t *mg) 589 { 590 vdev_t *vd = mg->mg_vd; 591 metaslab_class_t *mc = mg->mg_class; 592 vdev_stat_t *vs = &vd->vdev_stat; 593 boolean_t was_allocatable; 594 boolean_t was_initialized; 595 596 ASSERT(vd == vd->vdev_top); 597 598 mutex_enter(&mg->mg_lock); 599 was_allocatable = mg->mg_allocatable; 600 was_initialized = mg->mg_initialized; 601 602 mg->mg_free_capacity = ((vs->vs_space - vs->vs_alloc) * 100) / 603 (vs->vs_space + 1); 604 605 mutex_enter(&mc->mc_lock); 606 607 /* 608 * If the metaslab group was just added then it won't 609 * have any space until we finish syncing out this txg. 610 * At that point we will consider it initialized and available 611 * for allocations. We also don't consider non-activated 612 * metaslab groups (e.g. vdevs that are in the middle of being removed) 613 * to be initialized, because they can't be used for allocation. 614 */ 615 mg->mg_initialized = metaslab_group_initialized(mg); 616 if (!was_initialized && mg->mg_initialized) { 617 mc->mc_groups++; 618 } else if (was_initialized && !mg->mg_initialized) { 619 ASSERT3U(mc->mc_groups, >, 0); 620 mc->mc_groups--; 621 } 622 if (mg->mg_initialized) 623 mg->mg_no_free_space = B_FALSE; 624 625 /* 626 * A metaslab group is considered allocatable if it has plenty 627 * of free space or is not heavily fragmented. We only take 628 * fragmentation into account if the metaslab group has a valid 629 * fragmentation metric (i.e. a value between 0 and 100). 630 */ 631 mg->mg_allocatable = (mg->mg_activation_count > 0 && 632 mg->mg_free_capacity > zfs_mg_noalloc_threshold && 633 (mg->mg_fragmentation == ZFS_FRAG_INVALID || 634 mg->mg_fragmentation <= zfs_mg_fragmentation_threshold)); 635 636 /* 637 * The mc_alloc_groups maintains a count of the number of 638 * groups in this metaslab class that are still above the 639 * zfs_mg_noalloc_threshold. This is used by the allocating 640 * threads to determine if they should avoid allocations to 641 * a given group. The allocator will avoid allocations to a group 642 * if that group has reached or is below the zfs_mg_noalloc_threshold 643 * and there are still other groups that are above the threshold. 644 * When a group transitions from allocatable to non-allocatable or 645 * vice versa we update the metaslab class to reflect that change. 646 * When the mc_alloc_groups value drops to 0 that means that all 647 * groups have reached the zfs_mg_noalloc_threshold making all groups 648 * eligible for allocations. This effectively means that all devices 649 * are balanced again. 650 */ 651 if (was_allocatable && !mg->mg_allocatable) 652 mc->mc_alloc_groups--; 653 else if (!was_allocatable && mg->mg_allocatable) 654 mc->mc_alloc_groups++; 655 mutex_exit(&mc->mc_lock); 656 657 mutex_exit(&mg->mg_lock); 658 } 659 660 metaslab_group_t * 661 metaslab_group_create(metaslab_class_t *mc, vdev_t *vd) 662 { 663 metaslab_group_t *mg; 664 665 mg = kmem_zalloc(sizeof (metaslab_group_t), KM_SLEEP); 666 mutex_init(&mg->mg_lock, NULL, MUTEX_DEFAULT, NULL); 667 avl_create(&mg->mg_metaslab_tree, metaslab_compare, 668 sizeof (metaslab_t), offsetof(struct metaslab, ms_group_node)); 669 mg->mg_vd = vd; 670 mg->mg_class = mc; 671 mg->mg_activation_count = 0; 672 mg->mg_initialized = B_FALSE; 673 mg->mg_no_free_space = B_TRUE; 674 refcount_create_tracked(&mg->mg_alloc_queue_depth); 675 676 mg->mg_taskq = taskq_create("metaslab_group_taskq", metaslab_load_pct, 677 minclsyspri, 10, INT_MAX, TASKQ_THREADS_CPU_PCT); 678 679 return (mg); 680 } 681 682 void 683 metaslab_group_destroy(metaslab_group_t *mg) 684 { 685 ASSERT(mg->mg_prev == NULL); 686 ASSERT(mg->mg_next == NULL); 687 /* 688 * We may have gone below zero with the activation count 689 * either because we never activated in the first place or 690 * because we're done, and possibly removing the vdev. 691 */ 692 ASSERT(mg->mg_activation_count <= 0); 693 694 taskq_destroy(mg->mg_taskq); 695 avl_destroy(&mg->mg_metaslab_tree); 696 mutex_destroy(&mg->mg_lock); 697 refcount_destroy(&mg->mg_alloc_queue_depth); 698 kmem_free(mg, sizeof (metaslab_group_t)); 699 } 700 701 void 702 metaslab_group_activate(metaslab_group_t *mg) 703 { 704 metaslab_class_t *mc = mg->mg_class; 705 metaslab_group_t *mgprev, *mgnext; 706 707 ASSERT(spa_config_held(mc->mc_spa, SCL_ALLOC, RW_WRITER)); 708 709 ASSERT(mc->mc_rotor != mg); 710 ASSERT(mg->mg_prev == NULL); 711 ASSERT(mg->mg_next == NULL); 712 ASSERT(mg->mg_activation_count <= 0); 713 714 if (++mg->mg_activation_count <= 0) 715 return; 716 717 mg->mg_aliquot = metaslab_aliquot * MAX(1, mg->mg_vd->vdev_children); 718 metaslab_group_alloc_update(mg); 719 720 if ((mgprev = mc->mc_rotor) == NULL) { 721 mg->mg_prev = mg; 722 mg->mg_next = mg; 723 } else { 724 mgnext = mgprev->mg_next; 725 mg->mg_prev = mgprev; 726 mg->mg_next = mgnext; 727 mgprev->mg_next = mg; 728 mgnext->mg_prev = mg; 729 } 730 mc->mc_rotor = mg; 731 metaslab_class_minblocksize_update(mc); 732 } 733 734 void 735 metaslab_group_passivate(metaslab_group_t *mg) 736 { 737 metaslab_class_t *mc = mg->mg_class; 738 metaslab_group_t *mgprev, *mgnext; 739 740 ASSERT(spa_config_held(mc->mc_spa, SCL_ALLOC, RW_WRITER)); 741 742 if (--mg->mg_activation_count != 0) { 743 ASSERT(mc->mc_rotor != mg); 744 ASSERT(mg->mg_prev == NULL); 745 ASSERT(mg->mg_next == NULL); 746 ASSERT(mg->mg_activation_count < 0); 747 return; 748 } 749 750 taskq_wait(mg->mg_taskq); 751 metaslab_group_alloc_update(mg); 752 753 mgprev = mg->mg_prev; 754 mgnext = mg->mg_next; 755 756 if (mg == mgnext) { 757 mc->mc_rotor = NULL; 758 } else { 759 mc->mc_rotor = mgnext; 760 mgprev->mg_next = mgnext; 761 mgnext->mg_prev = mgprev; 762 } 763 764 mg->mg_prev = NULL; 765 mg->mg_next = NULL; 766 metaslab_class_minblocksize_update(mc); 767 } 768 769 boolean_t 770 metaslab_group_initialized(metaslab_group_t *mg) 771 { 772 vdev_t *vd = mg->mg_vd; 773 vdev_stat_t *vs = &vd->vdev_stat; 774 775 return (vs->vs_space != 0 && mg->mg_activation_count > 0); 776 } 777 778 uint64_t 779 metaslab_group_get_space(metaslab_group_t *mg) 780 { 781 return ((1ULL << mg->mg_vd->vdev_ms_shift) * mg->mg_vd->vdev_ms_count); 782 } 783 784 void 785 metaslab_group_histogram_verify(metaslab_group_t *mg) 786 { 787 uint64_t *mg_hist; 788 vdev_t *vd = mg->mg_vd; 789 uint64_t ashift = vd->vdev_ashift; 790 int i; 791 792 if ((zfs_flags & ZFS_DEBUG_HISTOGRAM_VERIFY) == 0) 793 return; 794 795 mg_hist = kmem_zalloc(sizeof (uint64_t) * RANGE_TREE_HISTOGRAM_SIZE, 796 KM_SLEEP); 797 798 ASSERT3U(RANGE_TREE_HISTOGRAM_SIZE, >=, 799 SPACE_MAP_HISTOGRAM_SIZE + ashift); 800 801 for (int m = 0; m < vd->vdev_ms_count; m++) { 802 metaslab_t *msp = vd->vdev_ms[m]; 803 804 if (msp->ms_sm == NULL) 805 continue; 806 807 for (i = 0; i < SPACE_MAP_HISTOGRAM_SIZE; i++) 808 mg_hist[i + ashift] += 809 msp->ms_sm->sm_phys->smp_histogram[i]; 810 } 811 812 for (i = 0; i < RANGE_TREE_HISTOGRAM_SIZE; i ++) 813 VERIFY3U(mg_hist[i], ==, mg->mg_histogram[i]); 814 815 kmem_free(mg_hist, sizeof (uint64_t) * RANGE_TREE_HISTOGRAM_SIZE); 816 } 817 818 static void 819 metaslab_group_histogram_add(metaslab_group_t *mg, metaslab_t *msp) 820 { 821 metaslab_class_t *mc = mg->mg_class; 822 uint64_t ashift = mg->mg_vd->vdev_ashift; 823 824 ASSERT(MUTEX_HELD(&msp->ms_lock)); 825 if (msp->ms_sm == NULL) 826 return; 827 828 mutex_enter(&mg->mg_lock); 829 for (int i = 0; i < SPACE_MAP_HISTOGRAM_SIZE; i++) { 830 mg->mg_histogram[i + ashift] += 831 msp->ms_sm->sm_phys->smp_histogram[i]; 832 mc->mc_histogram[i + ashift] += 833 msp->ms_sm->sm_phys->smp_histogram[i]; 834 } 835 mutex_exit(&mg->mg_lock); 836 } 837 838 void 839 metaslab_group_histogram_remove(metaslab_group_t *mg, metaslab_t *msp) 840 { 841 metaslab_class_t *mc = mg->mg_class; 842 uint64_t ashift = mg->mg_vd->vdev_ashift; 843 844 ASSERT(MUTEX_HELD(&msp->ms_lock)); 845 if (msp->ms_sm == NULL) 846 return; 847 848 mutex_enter(&mg->mg_lock); 849 for (int i = 0; i < SPACE_MAP_HISTOGRAM_SIZE; i++) { 850 ASSERT3U(mg->mg_histogram[i + ashift], >=, 851 msp->ms_sm->sm_phys->smp_histogram[i]); 852 ASSERT3U(mc->mc_histogram[i + ashift], >=, 853 msp->ms_sm->sm_phys->smp_histogram[i]); 854 855 mg->mg_histogram[i + ashift] -= 856 msp->ms_sm->sm_phys->smp_histogram[i]; 857 mc->mc_histogram[i + ashift] -= 858 msp->ms_sm->sm_phys->smp_histogram[i]; 859 } 860 mutex_exit(&mg->mg_lock); 861 } 862 863 static void 864 metaslab_group_add(metaslab_group_t *mg, metaslab_t *msp) 865 { 866 ASSERT(msp->ms_group == NULL); 867 mutex_enter(&mg->mg_lock); 868 msp->ms_group = mg; 869 msp->ms_weight = 0; 870 avl_add(&mg->mg_metaslab_tree, msp); 871 mutex_exit(&mg->mg_lock); 872 873 mutex_enter(&msp->ms_lock); 874 metaslab_group_histogram_add(mg, msp); 875 mutex_exit(&msp->ms_lock); 876 } 877 878 static void 879 metaslab_group_remove(metaslab_group_t *mg, metaslab_t *msp) 880 { 881 mutex_enter(&msp->ms_lock); 882 metaslab_group_histogram_remove(mg, msp); 883 mutex_exit(&msp->ms_lock); 884 885 mutex_enter(&mg->mg_lock); 886 ASSERT(msp->ms_group == mg); 887 avl_remove(&mg->mg_metaslab_tree, msp); 888 msp->ms_group = NULL; 889 mutex_exit(&mg->mg_lock); 890 } 891 892 static void 893 metaslab_group_sort(metaslab_group_t *mg, metaslab_t *msp, uint64_t weight) 894 { 895 /* 896 * Although in principle the weight can be any value, in 897 * practice we do not use values in the range [1, 511]. 898 */ 899 ASSERT(weight >= SPA_MINBLOCKSIZE || weight == 0); 900 ASSERT(MUTEX_HELD(&msp->ms_lock)); 901 902 mutex_enter(&mg->mg_lock); 903 ASSERT(msp->ms_group == mg); 904 avl_remove(&mg->mg_metaslab_tree, msp); 905 msp->ms_weight = weight; 906 avl_add(&mg->mg_metaslab_tree, msp); 907 mutex_exit(&mg->mg_lock); 908 } 909 910 /* 911 * Calculate the fragmentation for a given metaslab group. We can use 912 * a simple average here since all metaslabs within the group must have 913 * the same size. The return value will be a value between 0 and 100 914 * (inclusive), or ZFS_FRAG_INVALID if less than half of the metaslab in this 915 * group have a fragmentation metric. 916 */ 917 uint64_t 918 metaslab_group_fragmentation(metaslab_group_t *mg) 919 { 920 vdev_t *vd = mg->mg_vd; 921 uint64_t fragmentation = 0; 922 uint64_t valid_ms = 0; 923 924 for (int m = 0; m < vd->vdev_ms_count; m++) { 925 metaslab_t *msp = vd->vdev_ms[m]; 926 927 if (msp->ms_fragmentation == ZFS_FRAG_INVALID) 928 continue; 929 930 valid_ms++; 931 fragmentation += msp->ms_fragmentation; 932 } 933 934 if (valid_ms <= vd->vdev_ms_count / 2) 935 return (ZFS_FRAG_INVALID); 936 937 fragmentation /= valid_ms; 938 ASSERT3U(fragmentation, <=, 100); 939 return (fragmentation); 940 } 941 942 /* 943 * Determine if a given metaslab group should skip allocations. A metaslab 944 * group should avoid allocations if its free capacity is less than the 945 * zfs_mg_noalloc_threshold or its fragmentation metric is greater than 946 * zfs_mg_fragmentation_threshold and there is at least one metaslab group 947 * that can still handle allocations. If the allocation throttle is enabled 948 * then we skip allocations to devices that have reached their maximum 949 * allocation queue depth unless the selected metaslab group is the only 950 * eligible group remaining. 951 */ 952 static boolean_t 953 metaslab_group_allocatable(metaslab_group_t *mg, metaslab_group_t *rotor, 954 uint64_t psize) 955 { 956 spa_t *spa = mg->mg_vd->vdev_spa; 957 metaslab_class_t *mc = mg->mg_class; 958 959 /* 960 * We can only consider skipping this metaslab group if it's 961 * in the normal metaslab class and there are other metaslab 962 * groups to select from. Otherwise, we always consider it eligible 963 * for allocations. 964 */ 965 if (mc != spa_normal_class(spa) || mc->mc_groups <= 1) 966 return (B_TRUE); 967 968 /* 969 * If the metaslab group's mg_allocatable flag is set (see comments 970 * in metaslab_group_alloc_update() for more information) and 971 * the allocation throttle is disabled then allow allocations to this 972 * device. However, if the allocation throttle is enabled then 973 * check if we have reached our allocation limit (mg_alloc_queue_depth) 974 * to determine if we should allow allocations to this metaslab group. 975 * If all metaslab groups are no longer considered allocatable 976 * (mc_alloc_groups == 0) or we're trying to allocate the smallest 977 * gang block size then we allow allocations on this metaslab group 978 * regardless of the mg_allocatable or throttle settings. 979 */ 980 if (mg->mg_allocatable) { 981 metaslab_group_t *mgp; 982 int64_t qdepth; 983 uint64_t qmax = mg->mg_max_alloc_queue_depth; 984 985 if (!mc->mc_alloc_throttle_enabled) 986 return (B_TRUE); 987 988 /* 989 * If this metaslab group does not have any free space, then 990 * there is no point in looking further. 991 */ 992 if (mg->mg_no_free_space) 993 return (B_FALSE); 994 995 qdepth = refcount_count(&mg->mg_alloc_queue_depth); 996 997 /* 998 * If this metaslab group is below its qmax or it's 999 * the only allocatable metasable group, then attempt 1000 * to allocate from it. 1001 */ 1002 if (qdepth < qmax || mc->mc_alloc_groups == 1) 1003 return (B_TRUE); 1004 ASSERT3U(mc->mc_alloc_groups, >, 1); 1005 1006 /* 1007 * Since this metaslab group is at or over its qmax, we 1008 * need to determine if there are metaslab groups after this 1009 * one that might be able to handle this allocation. This is 1010 * racy since we can't hold the locks for all metaslab 1011 * groups at the same time when we make this check. 1012 */ 1013 for (mgp = mg->mg_next; mgp != rotor; mgp = mgp->mg_next) { 1014 qmax = mgp->mg_max_alloc_queue_depth; 1015 1016 qdepth = refcount_count(&mgp->mg_alloc_queue_depth); 1017 1018 /* 1019 * If there is another metaslab group that 1020 * might be able to handle the allocation, then 1021 * we return false so that we skip this group. 1022 */ 1023 if (qdepth < qmax && !mgp->mg_no_free_space) 1024 return (B_FALSE); 1025 } 1026 1027 /* 1028 * We didn't find another group to handle the allocation 1029 * so we can't skip this metaslab group even though 1030 * we are at or over our qmax. 1031 */ 1032 return (B_TRUE); 1033 1034 } else if (mc->mc_alloc_groups == 0 || psize == SPA_MINBLOCKSIZE) { 1035 return (B_TRUE); 1036 } 1037 return (B_FALSE); 1038 } 1039 1040 /* 1041 * ========================================================================== 1042 * Range tree callbacks 1043 * ========================================================================== 1044 */ 1045 1046 /* 1047 * Comparison function for the private size-ordered tree. Tree is sorted 1048 * by size, larger sizes at the end of the tree. 1049 */ 1050 static int 1051 metaslab_rangesize_compare(const void *x1, const void *x2) 1052 { 1053 const range_seg_t *r1 = x1; 1054 const range_seg_t *r2 = x2; 1055 uint64_t rs_size1 = r1->rs_end - r1->rs_start; 1056 uint64_t rs_size2 = r2->rs_end - r2->rs_start; 1057 1058 if (rs_size1 < rs_size2) 1059 return (-1); 1060 if (rs_size1 > rs_size2) 1061 return (1); 1062 1063 if (r1->rs_start < r2->rs_start) 1064 return (-1); 1065 1066 if (r1->rs_start > r2->rs_start) 1067 return (1); 1068 1069 return (0); 1070 } 1071 1072 /* 1073 * Create any block allocator specific components. The current allocators 1074 * rely on using both a size-ordered range_tree_t and an array of uint64_t's. 1075 */ 1076 static void 1077 metaslab_rt_create(range_tree_t *rt, void *arg) 1078 { 1079 metaslab_t *msp = arg; 1080 1081 ASSERT3P(rt->rt_arg, ==, msp); 1082 ASSERT(msp->ms_tree == NULL); 1083 1084 avl_create(&msp->ms_size_tree, metaslab_rangesize_compare, 1085 sizeof (range_seg_t), offsetof(range_seg_t, rs_pp_node)); 1086 } 1087 1088 /* 1089 * Destroy the block allocator specific components. 1090 */ 1091 static void 1092 metaslab_rt_destroy(range_tree_t *rt, void *arg) 1093 { 1094 metaslab_t *msp = arg; 1095 1096 ASSERT3P(rt->rt_arg, ==, msp); 1097 ASSERT3P(msp->ms_tree, ==, rt); 1098 ASSERT0(avl_numnodes(&msp->ms_size_tree)); 1099 1100 avl_destroy(&msp->ms_size_tree); 1101 } 1102 1103 static void 1104 metaslab_rt_add(range_tree_t *rt, range_seg_t *rs, void *arg) 1105 { 1106 metaslab_t *msp = arg; 1107 1108 ASSERT3P(rt->rt_arg, ==, msp); 1109 ASSERT3P(msp->ms_tree, ==, rt); 1110 VERIFY(!msp->ms_condensing); 1111 avl_add(&msp->ms_size_tree, rs); 1112 } 1113 1114 static void 1115 metaslab_rt_remove(range_tree_t *rt, range_seg_t *rs, void *arg) 1116 { 1117 metaslab_t *msp = arg; 1118 1119 ASSERT3P(rt->rt_arg, ==, msp); 1120 ASSERT3P(msp->ms_tree, ==, rt); 1121 VERIFY(!msp->ms_condensing); 1122 avl_remove(&msp->ms_size_tree, rs); 1123 } 1124 1125 static void 1126 metaslab_rt_vacate(range_tree_t *rt, void *arg) 1127 { 1128 metaslab_t *msp = arg; 1129 1130 ASSERT3P(rt->rt_arg, ==, msp); 1131 ASSERT3P(msp->ms_tree, ==, rt); 1132 1133 /* 1134 * Normally one would walk the tree freeing nodes along the way. 1135 * Since the nodes are shared with the range trees we can avoid 1136 * walking all nodes and just reinitialize the avl tree. The nodes 1137 * will be freed by the range tree, so we don't want to free them here. 1138 */ 1139 avl_create(&msp->ms_size_tree, metaslab_rangesize_compare, 1140 sizeof (range_seg_t), offsetof(range_seg_t, rs_pp_node)); 1141 } 1142 1143 static range_tree_ops_t metaslab_rt_ops = { 1144 metaslab_rt_create, 1145 metaslab_rt_destroy, 1146 metaslab_rt_add, 1147 metaslab_rt_remove, 1148 metaslab_rt_vacate 1149 }; 1150 1151 /* 1152 * ========================================================================== 1153 * Common allocator routines 1154 * ========================================================================== 1155 */ 1156 1157 /* 1158 * Return the maximum contiguous segment within the metaslab. 1159 */ 1160 uint64_t 1161 metaslab_block_maxsize(metaslab_t *msp) 1162 { 1163 avl_tree_t *t = &msp->ms_size_tree; 1164 range_seg_t *rs; 1165 1166 if (t == NULL || (rs = avl_last(t)) == NULL) 1167 return (0ULL); 1168 1169 return (rs->rs_end - rs->rs_start); 1170 } 1171 1172 static range_seg_t * 1173 metaslab_block_find(avl_tree_t *t, uint64_t start, uint64_t size) 1174 { 1175 range_seg_t *rs, rsearch; 1176 avl_index_t where; 1177 1178 rsearch.rs_start = start; 1179 rsearch.rs_end = start + size; 1180 1181 rs = avl_find(t, &rsearch, &where); 1182 if (rs == NULL) { 1183 rs = avl_nearest(t, where, AVL_AFTER); 1184 } 1185 1186 return (rs); 1187 } 1188 1189 /* 1190 * This is a helper function that can be used by the allocator to find 1191 * a suitable block to allocate. This will search the specified AVL 1192 * tree looking for a block that matches the specified criteria. 1193 */ 1194 static uint64_t 1195 metaslab_block_picker(avl_tree_t *t, uint64_t *cursor, uint64_t size, 1196 uint64_t align) 1197 { 1198 range_seg_t *rs = metaslab_block_find(t, *cursor, size); 1199 1200 while (rs != NULL) { 1201 uint64_t offset = P2ROUNDUP(rs->rs_start, align); 1202 1203 if (offset + size <= rs->rs_end) { 1204 *cursor = offset + size; 1205 return (offset); 1206 } 1207 rs = AVL_NEXT(t, rs); 1208 } 1209 1210 /* 1211 * If we know we've searched the whole map (*cursor == 0), give up. 1212 * Otherwise, reset the cursor to the beginning and try again. 1213 */ 1214 if (*cursor == 0) 1215 return (-1ULL); 1216 1217 *cursor = 0; 1218 return (metaslab_block_picker(t, cursor, size, align)); 1219 } 1220 1221 /* 1222 * ========================================================================== 1223 * The first-fit block allocator 1224 * ========================================================================== 1225 */ 1226 static uint64_t 1227 metaslab_ff_alloc(metaslab_t *msp, uint64_t size) 1228 { 1229 /* 1230 * Find the largest power of 2 block size that evenly divides the 1231 * requested size. This is used to try to allocate blocks with similar 1232 * alignment from the same area of the metaslab (i.e. same cursor 1233 * bucket) but it does not guarantee that other allocations sizes 1234 * may exist in the same region. 1235 */ 1236 uint64_t align = size & -size; 1237 uint64_t *cursor = &msp->ms_lbas[highbit64(align) - 1]; 1238 avl_tree_t *t = &msp->ms_tree->rt_root; 1239 1240 return (metaslab_block_picker(t, cursor, size, align)); 1241 } 1242 1243 static metaslab_ops_t metaslab_ff_ops = { 1244 metaslab_ff_alloc 1245 }; 1246 1247 /* 1248 * ========================================================================== 1249 * Dynamic block allocator - 1250 * Uses the first fit allocation scheme until space get low and then 1251 * adjusts to a best fit allocation method. Uses metaslab_df_alloc_threshold 1252 * and metaslab_df_free_pct to determine when to switch the allocation scheme. 1253 * ========================================================================== 1254 */ 1255 static uint64_t 1256 metaslab_df_alloc(metaslab_t *msp, uint64_t size) 1257 { 1258 /* 1259 * Find the largest power of 2 block size that evenly divides the 1260 * requested size. This is used to try to allocate blocks with similar 1261 * alignment from the same area of the metaslab (i.e. same cursor 1262 * bucket) but it does not guarantee that other allocations sizes 1263 * may exist in the same region. 1264 */ 1265 uint64_t align = size & -size; 1266 uint64_t *cursor = &msp->ms_lbas[highbit64(align) - 1]; 1267 range_tree_t *rt = msp->ms_tree; 1268 avl_tree_t *t = &rt->rt_root; 1269 uint64_t max_size = metaslab_block_maxsize(msp); 1270 int free_pct = range_tree_space(rt) * 100 / msp->ms_size; 1271 1272 ASSERT(MUTEX_HELD(&msp->ms_lock)); 1273 ASSERT3U(avl_numnodes(t), ==, avl_numnodes(&msp->ms_size_tree)); 1274 1275 if (max_size < size) 1276 return (-1ULL); 1277 1278 /* 1279 * If we're running low on space switch to using the size 1280 * sorted AVL tree (best-fit). 1281 */ 1282 if (max_size < metaslab_df_alloc_threshold || 1283 free_pct < metaslab_df_free_pct) { 1284 t = &msp->ms_size_tree; 1285 *cursor = 0; 1286 } 1287 1288 return (metaslab_block_picker(t, cursor, size, 1ULL)); 1289 } 1290 1291 static metaslab_ops_t metaslab_df_ops = { 1292 metaslab_df_alloc 1293 }; 1294 1295 /* 1296 * ========================================================================== 1297 * Cursor fit block allocator - 1298 * Select the largest region in the metaslab, set the cursor to the beginning 1299 * of the range and the cursor_end to the end of the range. As allocations 1300 * are made advance the cursor. Continue allocating from the cursor until 1301 * the range is exhausted and then find a new range. 1302 * ========================================================================== 1303 */ 1304 static uint64_t 1305 metaslab_cf_alloc(metaslab_t *msp, uint64_t size) 1306 { 1307 range_tree_t *rt = msp->ms_tree; 1308 avl_tree_t *t = &msp->ms_size_tree; 1309 uint64_t *cursor = &msp->ms_lbas[0]; 1310 uint64_t *cursor_end = &msp->ms_lbas[1]; 1311 uint64_t offset = 0; 1312 1313 ASSERT(MUTEX_HELD(&msp->ms_lock)); 1314 ASSERT3U(avl_numnodes(t), ==, avl_numnodes(&rt->rt_root)); 1315 1316 ASSERT3U(*cursor_end, >=, *cursor); 1317 1318 if ((*cursor + size) > *cursor_end) { 1319 range_seg_t *rs; 1320 1321 rs = avl_last(&msp->ms_size_tree); 1322 if (rs == NULL || (rs->rs_end - rs->rs_start) < size) 1323 return (-1ULL); 1324 1325 *cursor = rs->rs_start; 1326 *cursor_end = rs->rs_end; 1327 } 1328 1329 offset = *cursor; 1330 *cursor += size; 1331 1332 return (offset); 1333 } 1334 1335 static metaslab_ops_t metaslab_cf_ops = { 1336 metaslab_cf_alloc 1337 }; 1338 1339 /* 1340 * ========================================================================== 1341 * New dynamic fit allocator - 1342 * Select a region that is large enough to allocate 2^metaslab_ndf_clump_shift 1343 * contiguous blocks. If no region is found then just use the largest segment 1344 * that remains. 1345 * ========================================================================== 1346 */ 1347 1348 /* 1349 * Determines desired number of contiguous blocks (2^metaslab_ndf_clump_shift) 1350 * to request from the allocator. 1351 */ 1352 uint64_t metaslab_ndf_clump_shift = 4; 1353 1354 static uint64_t 1355 metaslab_ndf_alloc(metaslab_t *msp, uint64_t size) 1356 { 1357 avl_tree_t *t = &msp->ms_tree->rt_root; 1358 avl_index_t where; 1359 range_seg_t *rs, rsearch; 1360 uint64_t hbit = highbit64(size); 1361 uint64_t *cursor = &msp->ms_lbas[hbit - 1]; 1362 uint64_t max_size = metaslab_block_maxsize(msp); 1363 1364 ASSERT(MUTEX_HELD(&msp->ms_lock)); 1365 ASSERT3U(avl_numnodes(t), ==, avl_numnodes(&msp->ms_size_tree)); 1366 1367 if (max_size < size) 1368 return (-1ULL); 1369 1370 rsearch.rs_start = *cursor; 1371 rsearch.rs_end = *cursor + size; 1372 1373 rs = avl_find(t, &rsearch, &where); 1374 if (rs == NULL || (rs->rs_end - rs->rs_start) < size) { 1375 t = &msp->ms_size_tree; 1376 1377 rsearch.rs_start = 0; 1378 rsearch.rs_end = MIN(max_size, 1379 1ULL << (hbit + metaslab_ndf_clump_shift)); 1380 rs = avl_find(t, &rsearch, &where); 1381 if (rs == NULL) 1382 rs = avl_nearest(t, where, AVL_AFTER); 1383 ASSERT(rs != NULL); 1384 } 1385 1386 if ((rs->rs_end - rs->rs_start) >= size) { 1387 *cursor = rs->rs_start + size; 1388 return (rs->rs_start); 1389 } 1390 return (-1ULL); 1391 } 1392 1393 static metaslab_ops_t metaslab_ndf_ops = { 1394 metaslab_ndf_alloc 1395 }; 1396 1397 metaslab_ops_t *zfs_metaslab_ops = &metaslab_df_ops; 1398 1399 /* 1400 * ========================================================================== 1401 * Metaslabs 1402 * ========================================================================== 1403 */ 1404 1405 /* 1406 * Wait for any in-progress metaslab loads to complete. 1407 */ 1408 void 1409 metaslab_load_wait(metaslab_t *msp) 1410 { 1411 ASSERT(MUTEX_HELD(&msp->ms_lock)); 1412 1413 while (msp->ms_loading) { 1414 ASSERT(!msp->ms_loaded); 1415 cv_wait(&msp->ms_load_cv, &msp->ms_lock); 1416 } 1417 } 1418 1419 int 1420 metaslab_load(metaslab_t *msp) 1421 { 1422 int error = 0; 1423 boolean_t success = B_FALSE; 1424 1425 ASSERT(MUTEX_HELD(&msp->ms_lock)); 1426 ASSERT(!msp->ms_loaded); 1427 ASSERT(!msp->ms_loading); 1428 1429 msp->ms_loading = B_TRUE; 1430 1431 /* 1432 * If the space map has not been allocated yet, then treat 1433 * all the space in the metaslab as free and add it to the 1434 * ms_tree. 1435 */ 1436 if (msp->ms_sm != NULL) 1437 error = space_map_load(msp->ms_sm, msp->ms_tree, SM_FREE); 1438 else 1439 range_tree_add(msp->ms_tree, msp->ms_start, msp->ms_size); 1440 1441 success = (error == 0); 1442 msp->ms_loading = B_FALSE; 1443 1444 if (success) { 1445 ASSERT3P(msp->ms_group, !=, NULL); 1446 msp->ms_loaded = B_TRUE; 1447 1448 for (int t = 0; t < TXG_DEFER_SIZE; t++) { 1449 range_tree_walk(msp->ms_defertree[t], 1450 range_tree_remove, msp->ms_tree); 1451 } 1452 msp->ms_max_size = metaslab_block_maxsize(msp); 1453 } 1454 cv_broadcast(&msp->ms_load_cv); 1455 return (error); 1456 } 1457 1458 void 1459 metaslab_unload(metaslab_t *msp) 1460 { 1461 ASSERT(MUTEX_HELD(&msp->ms_lock)); 1462 range_tree_vacate(msp->ms_tree, NULL, NULL); 1463 msp->ms_loaded = B_FALSE; 1464 msp->ms_weight &= ~METASLAB_ACTIVE_MASK; 1465 msp->ms_max_size = 0; 1466 } 1467 1468 int 1469 metaslab_init(metaslab_group_t *mg, uint64_t id, uint64_t object, uint64_t txg, 1470 metaslab_t **msp) 1471 { 1472 vdev_t *vd = mg->mg_vd; 1473 objset_t *mos = vd->vdev_spa->spa_meta_objset; 1474 metaslab_t *ms; 1475 int error; 1476 1477 ms = kmem_zalloc(sizeof (metaslab_t), KM_SLEEP); 1478 mutex_init(&ms->ms_lock, NULL, MUTEX_DEFAULT, NULL); 1479 cv_init(&ms->ms_load_cv, NULL, CV_DEFAULT, NULL); 1480 ms->ms_id = id; 1481 ms->ms_start = id << vd->vdev_ms_shift; 1482 ms->ms_size = 1ULL << vd->vdev_ms_shift; 1483 1484 /* 1485 * We only open space map objects that already exist. All others 1486 * will be opened when we finally allocate an object for it. 1487 */ 1488 if (object != 0) { 1489 error = space_map_open(&ms->ms_sm, mos, object, ms->ms_start, 1490 ms->ms_size, vd->vdev_ashift, &ms->ms_lock); 1491 1492 if (error != 0) { 1493 kmem_free(ms, sizeof (metaslab_t)); 1494 return (error); 1495 } 1496 1497 ASSERT(ms->ms_sm != NULL); 1498 } 1499 1500 /* 1501 * We create the main range tree here, but we don't create the 1502 * alloctree and freetree until metaslab_sync_done(). This serves 1503 * two purposes: it allows metaslab_sync_done() to detect the 1504 * addition of new space; and for debugging, it ensures that we'd 1505 * data fault on any attempt to use this metaslab before it's ready. 1506 */ 1507 ms->ms_tree = range_tree_create(&metaslab_rt_ops, ms, &ms->ms_lock); 1508 metaslab_group_add(mg, ms); 1509 1510 metaslab_set_fragmentation(ms); 1511 1512 /* 1513 * If we're opening an existing pool (txg == 0) or creating 1514 * a new one (txg == TXG_INITIAL), all space is available now. 1515 * If we're adding space to an existing pool, the new space 1516 * does not become available until after this txg has synced. 1517 * The metaslab's weight will also be initialized when we sync 1518 * out this txg. This ensures that we don't attempt to allocate 1519 * from it before we have initialized it completely. 1520 */ 1521 if (txg <= TXG_INITIAL) 1522 metaslab_sync_done(ms, 0); 1523 1524 /* 1525 * If metaslab_debug_load is set and we're initializing a metaslab 1526 * that has an allocated space map object then load the its space 1527 * map so that can verify frees. 1528 */ 1529 if (metaslab_debug_load && ms->ms_sm != NULL) { 1530 mutex_enter(&ms->ms_lock); 1531 VERIFY0(metaslab_load(ms)); 1532 mutex_exit(&ms->ms_lock); 1533 } 1534 1535 if (txg != 0) { 1536 vdev_dirty(vd, 0, NULL, txg); 1537 vdev_dirty(vd, VDD_METASLAB, ms, txg); 1538 } 1539 1540 *msp = ms; 1541 1542 return (0); 1543 } 1544 1545 void 1546 metaslab_fini(metaslab_t *msp) 1547 { 1548 metaslab_group_t *mg = msp->ms_group; 1549 1550 metaslab_group_remove(mg, msp); 1551 1552 mutex_enter(&msp->ms_lock); 1553 VERIFY(msp->ms_group == NULL); 1554 vdev_space_update(mg->mg_vd, -space_map_allocated(msp->ms_sm), 1555 0, -msp->ms_size); 1556 space_map_close(msp->ms_sm); 1557 1558 metaslab_unload(msp); 1559 range_tree_destroy(msp->ms_tree); 1560 1561 for (int t = 0; t < TXG_SIZE; t++) { 1562 range_tree_destroy(msp->ms_alloctree[t]); 1563 range_tree_destroy(msp->ms_freetree[t]); 1564 } 1565 1566 for (int t = 0; t < TXG_DEFER_SIZE; t++) { 1567 range_tree_destroy(msp->ms_defertree[t]); 1568 } 1569 1570 ASSERT0(msp->ms_deferspace); 1571 1572 mutex_exit(&msp->ms_lock); 1573 cv_destroy(&msp->ms_load_cv); 1574 mutex_destroy(&msp->ms_lock); 1575 1576 kmem_free(msp, sizeof (metaslab_t)); 1577 } 1578 1579 #define FRAGMENTATION_TABLE_SIZE 17 1580 1581 /* 1582 * This table defines a segment size based fragmentation metric that will 1583 * allow each metaslab to derive its own fragmentation value. This is done 1584 * by calculating the space in each bucket of the spacemap histogram and 1585 * multiplying that by the fragmetation metric in this table. Doing 1586 * this for all buckets and dividing it by the total amount of free 1587 * space in this metaslab (i.e. the total free space in all buckets) gives 1588 * us the fragmentation metric. This means that a high fragmentation metric 1589 * equates to most of the free space being comprised of small segments. 1590 * Conversely, if the metric is low, then most of the free space is in 1591 * large segments. A 10% change in fragmentation equates to approximately 1592 * double the number of segments. 1593 * 1594 * This table defines 0% fragmented space using 16MB segments. Testing has 1595 * shown that segments that are greater than or equal to 16MB do not suffer 1596 * from drastic performance problems. Using this value, we derive the rest 1597 * of the table. Since the fragmentation value is never stored on disk, it 1598 * is possible to change these calculations in the future. 1599 */ 1600 int zfs_frag_table[FRAGMENTATION_TABLE_SIZE] = { 1601 100, /* 512B */ 1602 100, /* 1K */ 1603 98, /* 2K */ 1604 95, /* 4K */ 1605 90, /* 8K */ 1606 80, /* 16K */ 1607 70, /* 32K */ 1608 60, /* 64K */ 1609 50, /* 128K */ 1610 40, /* 256K */ 1611 30, /* 512K */ 1612 20, /* 1M */ 1613 15, /* 2M */ 1614 10, /* 4M */ 1615 5, /* 8M */ 1616 0 /* 16M */ 1617 }; 1618 1619 /* 1620 * Calclate the metaslab's fragmentation metric. A return value 1621 * of ZFS_FRAG_INVALID means that the metaslab has not been upgraded and does 1622 * not support this metric. Otherwise, the return value should be in the 1623 * range [0, 100]. 1624 */ 1625 static void 1626 metaslab_set_fragmentation(metaslab_t *msp) 1627 { 1628 spa_t *spa = msp->ms_group->mg_vd->vdev_spa; 1629 uint64_t fragmentation = 0; 1630 uint64_t total = 0; 1631 boolean_t feature_enabled = spa_feature_is_enabled(spa, 1632 SPA_FEATURE_SPACEMAP_HISTOGRAM); 1633 1634 if (!feature_enabled) { 1635 msp->ms_fragmentation = ZFS_FRAG_INVALID; 1636 return; 1637 } 1638 1639 /* 1640 * A null space map means that the entire metaslab is free 1641 * and thus is not fragmented. 1642 */ 1643 if (msp->ms_sm == NULL) { 1644 msp->ms_fragmentation = 0; 1645 return; 1646 } 1647 1648 /* 1649 * If this metaslab's space map has not been upgraded, flag it 1650 * so that we upgrade next time we encounter it. 1651 */ 1652 if (msp->ms_sm->sm_dbuf->db_size != sizeof (space_map_phys_t)) { 1653 uint64_t txg = spa_syncing_txg(spa); 1654 vdev_t *vd = msp->ms_group->mg_vd; 1655 1656 if (spa_writeable(spa)) { 1657 msp->ms_condense_wanted = B_TRUE; 1658 vdev_dirty(vd, VDD_METASLAB, msp, txg + 1); 1659 spa_dbgmsg(spa, "txg %llu, requesting force condense: " 1660 "msp %p, vd %p", txg, msp, vd); 1661 } 1662 msp->ms_fragmentation = ZFS_FRAG_INVALID; 1663 return; 1664 } 1665 1666 for (int i = 0; i < SPACE_MAP_HISTOGRAM_SIZE; i++) { 1667 uint64_t space = 0; 1668 uint8_t shift = msp->ms_sm->sm_shift; 1669 1670 int idx = MIN(shift - SPA_MINBLOCKSHIFT + i, 1671 FRAGMENTATION_TABLE_SIZE - 1); 1672 1673 if (msp->ms_sm->sm_phys->smp_histogram[i] == 0) 1674 continue; 1675 1676 space = msp->ms_sm->sm_phys->smp_histogram[i] << (i + shift); 1677 total += space; 1678 1679 ASSERT3U(idx, <, FRAGMENTATION_TABLE_SIZE); 1680 fragmentation += space * zfs_frag_table[idx]; 1681 } 1682 1683 if (total > 0) 1684 fragmentation /= total; 1685 ASSERT3U(fragmentation, <=, 100); 1686 1687 msp->ms_fragmentation = fragmentation; 1688 } 1689 1690 /* 1691 * Compute a weight -- a selection preference value -- for the given metaslab. 1692 * This is based on the amount of free space, the level of fragmentation, 1693 * the LBA range, and whether the metaslab is loaded. 1694 */ 1695 static uint64_t 1696 metaslab_space_weight(metaslab_t *msp) 1697 { 1698 metaslab_group_t *mg = msp->ms_group; 1699 vdev_t *vd = mg->mg_vd; 1700 uint64_t weight, space; 1701 1702 ASSERT(MUTEX_HELD(&msp->ms_lock)); 1703 ASSERT(!vd->vdev_removing); 1704 1705 /* 1706 * The baseline weight is the metaslab's free space. 1707 */ 1708 space = msp->ms_size - space_map_allocated(msp->ms_sm); 1709 1710 if (metaslab_fragmentation_factor_enabled && 1711 msp->ms_fragmentation != ZFS_FRAG_INVALID) { 1712 /* 1713 * Use the fragmentation information to inversely scale 1714 * down the baseline weight. We need to ensure that we 1715 * don't exclude this metaslab completely when it's 100% 1716 * fragmented. To avoid this we reduce the fragmented value 1717 * by 1. 1718 */ 1719 space = (space * (100 - (msp->ms_fragmentation - 1))) / 100; 1720 1721 /* 1722 * If space < SPA_MINBLOCKSIZE, then we will not allocate from 1723 * this metaslab again. The fragmentation metric may have 1724 * decreased the space to something smaller than 1725 * SPA_MINBLOCKSIZE, so reset the space to SPA_MINBLOCKSIZE 1726 * so that we can consume any remaining space. 1727 */ 1728 if (space > 0 && space < SPA_MINBLOCKSIZE) 1729 space = SPA_MINBLOCKSIZE; 1730 } 1731 weight = space; 1732 1733 /* 1734 * Modern disks have uniform bit density and constant angular velocity. 1735 * Therefore, the outer recording zones are faster (higher bandwidth) 1736 * than the inner zones by the ratio of outer to inner track diameter, 1737 * which is typically around 2:1. We account for this by assigning 1738 * higher weight to lower metaslabs (multiplier ranging from 2x to 1x). 1739 * In effect, this means that we'll select the metaslab with the most 1740 * free bandwidth rather than simply the one with the most free space. 1741 */ 1742 if (metaslab_lba_weighting_enabled) { 1743 weight = 2 * weight - (msp->ms_id * weight) / vd->vdev_ms_count; 1744 ASSERT(weight >= space && weight <= 2 * space); 1745 } 1746 1747 /* 1748 * If this metaslab is one we're actively using, adjust its 1749 * weight to make it preferable to any inactive metaslab so 1750 * we'll polish it off. If the fragmentation on this metaslab 1751 * has exceed our threshold, then don't mark it active. 1752 */ 1753 if (msp->ms_loaded && msp->ms_fragmentation != ZFS_FRAG_INVALID && 1754 msp->ms_fragmentation <= zfs_metaslab_fragmentation_threshold) { 1755 weight |= (msp->ms_weight & METASLAB_ACTIVE_MASK); 1756 } 1757 1758 WEIGHT_SET_SPACEBASED(weight); 1759 return (weight); 1760 } 1761 1762 /* 1763 * Return the weight of the specified metaslab, according to the segment-based 1764 * weighting algorithm. The metaslab must be loaded. This function can 1765 * be called within a sync pass since it relies only on the metaslab's 1766 * range tree which is always accurate when the metaslab is loaded. 1767 */ 1768 static uint64_t 1769 metaslab_weight_from_range_tree(metaslab_t *msp) 1770 { 1771 uint64_t weight = 0; 1772 uint32_t segments = 0; 1773 1774 ASSERT(msp->ms_loaded); 1775 1776 for (int i = RANGE_TREE_HISTOGRAM_SIZE - 1; i >= SPA_MINBLOCKSHIFT; 1777 i--) { 1778 uint8_t shift = msp->ms_group->mg_vd->vdev_ashift; 1779 int max_idx = SPACE_MAP_HISTOGRAM_SIZE + shift - 1; 1780 1781 segments <<= 1; 1782 segments += msp->ms_tree->rt_histogram[i]; 1783 1784 /* 1785 * The range tree provides more precision than the space map 1786 * and must be downgraded so that all values fit within the 1787 * space map's histogram. This allows us to compare loaded 1788 * vs. unloaded metaslabs to determine which metaslab is 1789 * considered "best". 1790 */ 1791 if (i > max_idx) 1792 continue; 1793 1794 if (segments != 0) { 1795 WEIGHT_SET_COUNT(weight, segments); 1796 WEIGHT_SET_INDEX(weight, i); 1797 WEIGHT_SET_ACTIVE(weight, 0); 1798 break; 1799 } 1800 } 1801 return (weight); 1802 } 1803 1804 /* 1805 * Calculate the weight based on the on-disk histogram. This should only 1806 * be called after a sync pass has completely finished since the on-disk 1807 * information is updated in metaslab_sync(). 1808 */ 1809 static uint64_t 1810 metaslab_weight_from_spacemap(metaslab_t *msp) 1811 { 1812 uint64_t weight = 0; 1813 1814 for (int i = SPACE_MAP_HISTOGRAM_SIZE - 1; i >= 0; i--) { 1815 if (msp->ms_sm->sm_phys->smp_histogram[i] != 0) { 1816 WEIGHT_SET_COUNT(weight, 1817 msp->ms_sm->sm_phys->smp_histogram[i]); 1818 WEIGHT_SET_INDEX(weight, i + 1819 msp->ms_sm->sm_shift); 1820 WEIGHT_SET_ACTIVE(weight, 0); 1821 break; 1822 } 1823 } 1824 return (weight); 1825 } 1826 1827 /* 1828 * Compute a segment-based weight for the specified metaslab. The weight 1829 * is determined by highest bucket in the histogram. The information 1830 * for the highest bucket is encoded into the weight value. 1831 */ 1832 static uint64_t 1833 metaslab_segment_weight(metaslab_t *msp) 1834 { 1835 metaslab_group_t *mg = msp->ms_group; 1836 uint64_t weight = 0; 1837 uint8_t shift = mg->mg_vd->vdev_ashift; 1838 1839 ASSERT(MUTEX_HELD(&msp->ms_lock)); 1840 1841 /* 1842 * The metaslab is completely free. 1843 */ 1844 if (space_map_allocated(msp->ms_sm) == 0) { 1845 int idx = highbit64(msp->ms_size) - 1; 1846 int max_idx = SPACE_MAP_HISTOGRAM_SIZE + shift - 1; 1847 1848 if (idx < max_idx) { 1849 WEIGHT_SET_COUNT(weight, 1ULL); 1850 WEIGHT_SET_INDEX(weight, idx); 1851 } else { 1852 WEIGHT_SET_COUNT(weight, 1ULL << (idx - max_idx)); 1853 WEIGHT_SET_INDEX(weight, max_idx); 1854 } 1855 WEIGHT_SET_ACTIVE(weight, 0); 1856 ASSERT(!WEIGHT_IS_SPACEBASED(weight)); 1857 1858 return (weight); 1859 } 1860 1861 ASSERT3U(msp->ms_sm->sm_dbuf->db_size, ==, sizeof (space_map_phys_t)); 1862 1863 /* 1864 * If the metaslab is fully allocated then just make the weight 0. 1865 */ 1866 if (space_map_allocated(msp->ms_sm) == msp->ms_size) 1867 return (0); 1868 /* 1869 * If the metaslab is already loaded, then use the range tree to 1870 * determine the weight. Otherwise, we rely on the space map information 1871 * to generate the weight. 1872 */ 1873 if (msp->ms_loaded) { 1874 weight = metaslab_weight_from_range_tree(msp); 1875 } else { 1876 weight = metaslab_weight_from_spacemap(msp); 1877 } 1878 1879 /* 1880 * If the metaslab was active the last time we calculated its weight 1881 * then keep it active. We want to consume the entire region that 1882 * is associated with this weight. 1883 */ 1884 if (msp->ms_activation_weight != 0 && weight != 0) 1885 WEIGHT_SET_ACTIVE(weight, WEIGHT_GET_ACTIVE(msp->ms_weight)); 1886 return (weight); 1887 } 1888 1889 /* 1890 * Determine if we should attempt to allocate from this metaslab. If the 1891 * metaslab has a maximum size then we can quickly determine if the desired 1892 * allocation size can be satisfied. Otherwise, if we're using segment-based 1893 * weighting then we can determine the maximum allocation that this metaslab 1894 * can accommodate based on the index encoded in the weight. If we're using 1895 * space-based weights then rely on the entire weight (excluding the weight 1896 * type bit). 1897 */ 1898 boolean_t 1899 metaslab_should_allocate(metaslab_t *msp, uint64_t asize) 1900 { 1901 boolean_t should_allocate; 1902 1903 if (msp->ms_max_size != 0) 1904 return (msp->ms_max_size >= asize); 1905 1906 if (!WEIGHT_IS_SPACEBASED(msp->ms_weight)) { 1907 /* 1908 * The metaslab segment weight indicates segments in the 1909 * range [2^i, 2^(i+1)), where i is the index in the weight. 1910 * Since the asize might be in the middle of the range, we 1911 * should attempt the allocation if asize < 2^(i+1). 1912 */ 1913 should_allocate = (asize < 1914 1ULL << (WEIGHT_GET_INDEX(msp->ms_weight) + 1)); 1915 } else { 1916 should_allocate = (asize <= 1917 (msp->ms_weight & ~METASLAB_WEIGHT_TYPE)); 1918 } 1919 return (should_allocate); 1920 } 1921 1922 static uint64_t 1923 metaslab_weight(metaslab_t *msp) 1924 { 1925 vdev_t *vd = msp->ms_group->mg_vd; 1926 spa_t *spa = vd->vdev_spa; 1927 uint64_t weight; 1928 1929 ASSERT(MUTEX_HELD(&msp->ms_lock)); 1930 1931 /* 1932 * This vdev is in the process of being removed so there is nothing 1933 * for us to do here. 1934 */ 1935 if (vd->vdev_removing) { 1936 ASSERT0(space_map_allocated(msp->ms_sm)); 1937 ASSERT0(vd->vdev_ms_shift); 1938 return (0); 1939 } 1940 1941 metaslab_set_fragmentation(msp); 1942 1943 /* 1944 * Update the maximum size if the metaslab is loaded. This will 1945 * ensure that we get an accurate maximum size if newly freed space 1946 * has been added back into the free tree. 1947 */ 1948 if (msp->ms_loaded) 1949 msp->ms_max_size = metaslab_block_maxsize(msp); 1950 1951 /* 1952 * Segment-based weighting requires space map histogram support. 1953 */ 1954 if (zfs_metaslab_segment_weight_enabled && 1955 spa_feature_is_enabled(spa, SPA_FEATURE_SPACEMAP_HISTOGRAM) && 1956 (msp->ms_sm == NULL || msp->ms_sm->sm_dbuf->db_size == 1957 sizeof (space_map_phys_t))) { 1958 weight = metaslab_segment_weight(msp); 1959 } else { 1960 weight = metaslab_space_weight(msp); 1961 } 1962 return (weight); 1963 } 1964 1965 static int 1966 metaslab_activate(metaslab_t *msp, uint64_t activation_weight) 1967 { 1968 ASSERT(MUTEX_HELD(&msp->ms_lock)); 1969 1970 if ((msp->ms_weight & METASLAB_ACTIVE_MASK) == 0) { 1971 metaslab_load_wait(msp); 1972 if (!msp->ms_loaded) { 1973 int error = metaslab_load(msp); 1974 if (error) { 1975 metaslab_group_sort(msp->ms_group, msp, 0); 1976 return (error); 1977 } 1978 } 1979 1980 msp->ms_activation_weight = msp->ms_weight; 1981 metaslab_group_sort(msp->ms_group, msp, 1982 msp->ms_weight | activation_weight); 1983 } 1984 ASSERT(msp->ms_loaded); 1985 ASSERT(msp->ms_weight & METASLAB_ACTIVE_MASK); 1986 1987 return (0); 1988 } 1989 1990 static void 1991 metaslab_passivate(metaslab_t *msp, uint64_t weight) 1992 { 1993 uint64_t size = weight & ~METASLAB_WEIGHT_TYPE; 1994 1995 /* 1996 * If size < SPA_MINBLOCKSIZE, then we will not allocate from 1997 * this metaslab again. In that case, it had better be empty, 1998 * or we would be leaving space on the table. 1999 */ 2000 ASSERT(size >= SPA_MINBLOCKSIZE || 2001 range_tree_space(msp->ms_tree) == 0); 2002 ASSERT0(weight & METASLAB_ACTIVE_MASK); 2003 2004 msp->ms_activation_weight = 0; 2005 metaslab_group_sort(msp->ms_group, msp, weight); 2006 ASSERT((msp->ms_weight & METASLAB_ACTIVE_MASK) == 0); 2007 } 2008 2009 /* 2010 * Segment-based metaslabs are activated once and remain active until 2011 * we either fail an allocation attempt (similar to space-based metaslabs) 2012 * or have exhausted the free space in zfs_metaslab_switch_threshold 2013 * buckets since the metaslab was activated. This function checks to see 2014 * if we've exhaused the zfs_metaslab_switch_threshold buckets in the 2015 * metaslab and passivates it proactively. This will allow us to select a 2016 * metaslabs with larger contiguous region if any remaining within this 2017 * metaslab group. If we're in sync pass > 1, then we continue using this 2018 * metaslab so that we don't dirty more block and cause more sync passes. 2019 */ 2020 void 2021 metaslab_segment_may_passivate(metaslab_t *msp) 2022 { 2023 spa_t *spa = msp->ms_group->mg_vd->vdev_spa; 2024 2025 if (WEIGHT_IS_SPACEBASED(msp->ms_weight) || spa_sync_pass(spa) > 1) 2026 return; 2027 2028 /* 2029 * Since we are in the middle of a sync pass, the most accurate 2030 * information that is accessible to us is the in-core range tree 2031 * histogram; calculate the new weight based on that information. 2032 */ 2033 uint64_t weight = metaslab_weight_from_range_tree(msp); 2034 int activation_idx = WEIGHT_GET_INDEX(msp->ms_activation_weight); 2035 int current_idx = WEIGHT_GET_INDEX(weight); 2036 2037 if (current_idx <= activation_idx - zfs_metaslab_switch_threshold) 2038 metaslab_passivate(msp, weight); 2039 } 2040 2041 static void 2042 metaslab_preload(void *arg) 2043 { 2044 metaslab_t *msp = arg; 2045 spa_t *spa = msp->ms_group->mg_vd->vdev_spa; 2046 2047 ASSERT(!MUTEX_HELD(&msp->ms_group->mg_lock)); 2048 2049 mutex_enter(&msp->ms_lock); 2050 metaslab_load_wait(msp); 2051 if (!msp->ms_loaded) 2052 (void) metaslab_load(msp); 2053 msp->ms_selected_txg = spa_syncing_txg(spa); 2054 mutex_exit(&msp->ms_lock); 2055 } 2056 2057 static void 2058 metaslab_group_preload(metaslab_group_t *mg) 2059 { 2060 spa_t *spa = mg->mg_vd->vdev_spa; 2061 metaslab_t *msp; 2062 avl_tree_t *t = &mg->mg_metaslab_tree; 2063 int m = 0; 2064 2065 if (spa_shutting_down(spa) || !metaslab_preload_enabled) { 2066 taskq_wait(mg->mg_taskq); 2067 return; 2068 } 2069 2070 mutex_enter(&mg->mg_lock); 2071 /* 2072 * Load the next potential metaslabs 2073 */ 2074 for (msp = avl_first(t); msp != NULL; msp = AVL_NEXT(t, msp)) { 2075 /* 2076 * We preload only the maximum number of metaslabs specified 2077 * by metaslab_preload_limit. If a metaslab is being forced 2078 * to condense then we preload it too. This will ensure 2079 * that force condensing happens in the next txg. 2080 */ 2081 if (++m > metaslab_preload_limit && !msp->ms_condense_wanted) { 2082 continue; 2083 } 2084 2085 VERIFY(taskq_dispatch(mg->mg_taskq, metaslab_preload, 2086 msp, TQ_SLEEP) != 0); 2087 } 2088 mutex_exit(&mg->mg_lock); 2089 } 2090 2091 /* 2092 * Determine if the space map's on-disk footprint is past our tolerance 2093 * for inefficiency. We would like to use the following criteria to make 2094 * our decision: 2095 * 2096 * 1. The size of the space map object should not dramatically increase as a 2097 * result of writing out the free space range tree. 2098 * 2099 * 2. The minimal on-disk space map representation is zfs_condense_pct/100 2100 * times the size than the free space range tree representation 2101 * (i.e. zfs_condense_pct = 110 and in-core = 1MB, minimal = 1.1.MB). 2102 * 2103 * 3. The on-disk size of the space map should actually decrease. 2104 * 2105 * Checking the first condition is tricky since we don't want to walk 2106 * the entire AVL tree calculating the estimated on-disk size. Instead we 2107 * use the size-ordered range tree in the metaslab and calculate the 2108 * size required to write out the largest segment in our free tree. If the 2109 * size required to represent that segment on disk is larger than the space 2110 * map object then we avoid condensing this map. 2111 * 2112 * To determine the second criterion we use a best-case estimate and assume 2113 * each segment can be represented on-disk as a single 64-bit entry. We refer 2114 * to this best-case estimate as the space map's minimal form. 2115 * 2116 * Unfortunately, we cannot compute the on-disk size of the space map in this 2117 * context because we cannot accurately compute the effects of compression, etc. 2118 * Instead, we apply the heuristic described in the block comment for 2119 * zfs_metaslab_condense_block_threshold - we only condense if the space used 2120 * is greater than a threshold number of blocks. 2121 */ 2122 static boolean_t 2123 metaslab_should_condense(metaslab_t *msp) 2124 { 2125 space_map_t *sm = msp->ms_sm; 2126 range_seg_t *rs; 2127 uint64_t size, entries, segsz, object_size, optimal_size, record_size; 2128 dmu_object_info_t doi; 2129 uint64_t vdev_blocksize = 1 << msp->ms_group->mg_vd->vdev_ashift; 2130 2131 ASSERT(MUTEX_HELD(&msp->ms_lock)); 2132 ASSERT(msp->ms_loaded); 2133 2134 /* 2135 * Use the ms_size_tree range tree, which is ordered by size, to 2136 * obtain the largest segment in the free tree. We always condense 2137 * metaslabs that are empty and metaslabs for which a condense 2138 * request has been made. 2139 */ 2140 rs = avl_last(&msp->ms_size_tree); 2141 if (rs == NULL || msp->ms_condense_wanted) 2142 return (B_TRUE); 2143 2144 /* 2145 * Calculate the number of 64-bit entries this segment would 2146 * require when written to disk. If this single segment would be 2147 * larger on-disk than the entire current on-disk structure, then 2148 * clearly condensing will increase the on-disk structure size. 2149 */ 2150 size = (rs->rs_end - rs->rs_start) >> sm->sm_shift; 2151 entries = size / (MIN(size, SM_RUN_MAX)); 2152 segsz = entries * sizeof (uint64_t); 2153 2154 optimal_size = sizeof (uint64_t) * avl_numnodes(&msp->ms_tree->rt_root); 2155 object_size = space_map_length(msp->ms_sm); 2156 2157 dmu_object_info_from_db(sm->sm_dbuf, &doi); 2158 record_size = MAX(doi.doi_data_block_size, vdev_blocksize); 2159 2160 return (segsz <= object_size && 2161 object_size >= (optimal_size * zfs_condense_pct / 100) && 2162 object_size > zfs_metaslab_condense_block_threshold * record_size); 2163 } 2164 2165 /* 2166 * Condense the on-disk space map representation to its minimized form. 2167 * The minimized form consists of a small number of allocations followed by 2168 * the entries of the free range tree. 2169 */ 2170 static void 2171 metaslab_condense(metaslab_t *msp, uint64_t txg, dmu_tx_t *tx) 2172 { 2173 spa_t *spa = msp->ms_group->mg_vd->vdev_spa; 2174 range_tree_t *freetree = msp->ms_freetree[txg & TXG_MASK]; 2175 range_tree_t *condense_tree; 2176 space_map_t *sm = msp->ms_sm; 2177 2178 ASSERT(MUTEX_HELD(&msp->ms_lock)); 2179 ASSERT3U(spa_sync_pass(spa), ==, 1); 2180 ASSERT(msp->ms_loaded); 2181 2182 2183 spa_dbgmsg(spa, "condensing: txg %llu, msp[%llu] %p, vdev id %llu, " 2184 "spa %s, smp size %llu, segments %lu, forcing condense=%s", txg, 2185 msp->ms_id, msp, msp->ms_group->mg_vd->vdev_id, 2186 msp->ms_group->mg_vd->vdev_spa->spa_name, 2187 space_map_length(msp->ms_sm), avl_numnodes(&msp->ms_tree->rt_root), 2188 msp->ms_condense_wanted ? "TRUE" : "FALSE"); 2189 2190 msp->ms_condense_wanted = B_FALSE; 2191 2192 /* 2193 * Create an range tree that is 100% allocated. We remove segments 2194 * that have been freed in this txg, any deferred frees that exist, 2195 * and any allocation in the future. Removing segments should be 2196 * a relatively inexpensive operation since we expect these trees to 2197 * have a small number of nodes. 2198 */ 2199 condense_tree = range_tree_create(NULL, NULL, &msp->ms_lock); 2200 range_tree_add(condense_tree, msp->ms_start, msp->ms_size); 2201 2202 /* 2203 * Remove what's been freed in this txg from the condense_tree. 2204 * Since we're in sync_pass 1, we know that all the frees from 2205 * this txg are in the freetree. 2206 */ 2207 range_tree_walk(freetree, range_tree_remove, condense_tree); 2208 2209 for (int t = 0; t < TXG_DEFER_SIZE; t++) { 2210 range_tree_walk(msp->ms_defertree[t], 2211 range_tree_remove, condense_tree); 2212 } 2213 2214 for (int t = 1; t < TXG_CONCURRENT_STATES; t++) { 2215 range_tree_walk(msp->ms_alloctree[(txg + t) & TXG_MASK], 2216 range_tree_remove, condense_tree); 2217 } 2218 2219 /* 2220 * We're about to drop the metaslab's lock thus allowing 2221 * other consumers to change it's content. Set the 2222 * metaslab's ms_condensing flag to ensure that 2223 * allocations on this metaslab do not occur while we're 2224 * in the middle of committing it to disk. This is only critical 2225 * for the ms_tree as all other range trees use per txg 2226 * views of their content. 2227 */ 2228 msp->ms_condensing = B_TRUE; 2229 2230 mutex_exit(&msp->ms_lock); 2231 space_map_truncate(sm, tx); 2232 mutex_enter(&msp->ms_lock); 2233 2234 /* 2235 * While we would ideally like to create a space map representation 2236 * that consists only of allocation records, doing so can be 2237 * prohibitively expensive because the in-core free tree can be 2238 * large, and therefore computationally expensive to subtract 2239 * from the condense_tree. Instead we sync out two trees, a cheap 2240 * allocation only tree followed by the in-core free tree. While not 2241 * optimal, this is typically close to optimal, and much cheaper to 2242 * compute. 2243 */ 2244 space_map_write(sm, condense_tree, SM_ALLOC, tx); 2245 range_tree_vacate(condense_tree, NULL, NULL); 2246 range_tree_destroy(condense_tree); 2247 2248 space_map_write(sm, msp->ms_tree, SM_FREE, tx); 2249 msp->ms_condensing = B_FALSE; 2250 } 2251 2252 /* 2253 * Write a metaslab to disk in the context of the specified transaction group. 2254 */ 2255 void 2256 metaslab_sync(metaslab_t *msp, uint64_t txg) 2257 { 2258 metaslab_group_t *mg = msp->ms_group; 2259 vdev_t *vd = mg->mg_vd; 2260 spa_t *spa = vd->vdev_spa; 2261 objset_t *mos = spa_meta_objset(spa); 2262 range_tree_t *alloctree = msp->ms_alloctree[txg & TXG_MASK]; 2263 range_tree_t **freetree = &msp->ms_freetree[txg & TXG_MASK]; 2264 range_tree_t **freed_tree = 2265 &msp->ms_freetree[TXG_CLEAN(txg) & TXG_MASK]; 2266 dmu_tx_t *tx; 2267 uint64_t object = space_map_object(msp->ms_sm); 2268 2269 ASSERT(!vd->vdev_ishole); 2270 2271 /* 2272 * This metaslab has just been added so there's no work to do now. 2273 */ 2274 if (*freetree == NULL) { 2275 ASSERT3P(alloctree, ==, NULL); 2276 return; 2277 } 2278 2279 ASSERT3P(alloctree, !=, NULL); 2280 ASSERT3P(*freetree, !=, NULL); 2281 ASSERT3P(*freed_tree, !=, NULL); 2282 2283 /* 2284 * Normally, we don't want to process a metaslab if there 2285 * are no allocations or frees to perform. However, if the metaslab 2286 * is being forced to condense we need to let it through. 2287 */ 2288 if (range_tree_space(alloctree) == 0 && 2289 range_tree_space(*freetree) == 0 && 2290 !msp->ms_condense_wanted) 2291 return; 2292 2293 /* 2294 * The only state that can actually be changing concurrently with 2295 * metaslab_sync() is the metaslab's ms_tree. No other thread can 2296 * be modifying this txg's alloctree, freetree, freed_tree, or 2297 * space_map_phys_t. Therefore, we only hold ms_lock to satify 2298 * space map ASSERTs. We drop it whenever we call into the DMU, 2299 * because the DMU can call down to us (e.g. via zio_free()) at 2300 * any time. 2301 */ 2302 2303 tx = dmu_tx_create_assigned(spa_get_dsl(spa), txg); 2304 2305 if (msp->ms_sm == NULL) { 2306 uint64_t new_object; 2307 2308 new_object = space_map_alloc(mos, tx); 2309 VERIFY3U(new_object, !=, 0); 2310 2311 VERIFY0(space_map_open(&msp->ms_sm, mos, new_object, 2312 msp->ms_start, msp->ms_size, vd->vdev_ashift, 2313 &msp->ms_lock)); 2314 ASSERT(msp->ms_sm != NULL); 2315 } 2316 2317 mutex_enter(&msp->ms_lock); 2318 2319 /* 2320 * Note: metaslab_condense() clears the space map's histogram. 2321 * Therefore we must verify and remove this histogram before 2322 * condensing. 2323 */ 2324 metaslab_group_histogram_verify(mg); 2325 metaslab_class_histogram_verify(mg->mg_class); 2326 metaslab_group_histogram_remove(mg, msp); 2327 2328 if (msp->ms_loaded && spa_sync_pass(spa) == 1 && 2329 metaslab_should_condense(msp)) { 2330 metaslab_condense(msp, txg, tx); 2331 } else { 2332 space_map_write(msp->ms_sm, alloctree, SM_ALLOC, tx); 2333 space_map_write(msp->ms_sm, *freetree, SM_FREE, tx); 2334 } 2335 2336 if (msp->ms_loaded) { 2337 /* 2338 * When the space map is loaded, we have an accruate 2339 * histogram in the range tree. This gives us an opportunity 2340 * to bring the space map's histogram up-to-date so we clear 2341 * it first before updating it. 2342 */ 2343 space_map_histogram_clear(msp->ms_sm); 2344 space_map_histogram_add(msp->ms_sm, msp->ms_tree, tx); 2345 2346 /* 2347 * Since we've cleared the histogram we need to add back 2348 * any free space that has already been processed, plus 2349 * any deferred space. This allows the on-disk histogram 2350 * to accurately reflect all free space even if some space 2351 * is not yet available for allocation (i.e. deferred). 2352 */ 2353 space_map_histogram_add(msp->ms_sm, *freed_tree, tx); 2354 2355 /* 2356 * Add back any deferred free space that has not been 2357 * added back into the in-core free tree yet. This will 2358 * ensure that we don't end up with a space map histogram 2359 * that is completely empty unless the metaslab is fully 2360 * allocated. 2361 */ 2362 for (int t = 0; t < TXG_DEFER_SIZE; t++) { 2363 space_map_histogram_add(msp->ms_sm, 2364 msp->ms_defertree[t], tx); 2365 } 2366 } 2367 2368 /* 2369 * Always add the free space from this sync pass to the space 2370 * map histogram. We want to make sure that the on-disk histogram 2371 * accounts for all free space. If the space map is not loaded, 2372 * then we will lose some accuracy but will correct it the next 2373 * time we load the space map. 2374 */ 2375 space_map_histogram_add(msp->ms_sm, *freetree, tx); 2376 2377 metaslab_group_histogram_add(mg, msp); 2378 metaslab_group_histogram_verify(mg); 2379 metaslab_class_histogram_verify(mg->mg_class); 2380 2381 /* 2382 * For sync pass 1, we avoid traversing this txg's free range tree 2383 * and instead will just swap the pointers for freetree and 2384 * freed_tree. We can safely do this since the freed_tree is 2385 * guaranteed to be empty on the initial pass. 2386 */ 2387 if (spa_sync_pass(spa) == 1) { 2388 range_tree_swap(freetree, freed_tree); 2389 } else { 2390 range_tree_vacate(*freetree, range_tree_add, *freed_tree); 2391 } 2392 range_tree_vacate(alloctree, NULL, NULL); 2393 2394 ASSERT0(range_tree_space(msp->ms_alloctree[txg & TXG_MASK])); 2395 ASSERT0(range_tree_space(msp->ms_alloctree[TXG_CLEAN(txg) & TXG_MASK])); 2396 ASSERT0(range_tree_space(msp->ms_freetree[txg & TXG_MASK])); 2397 2398 mutex_exit(&msp->ms_lock); 2399 2400 if (object != space_map_object(msp->ms_sm)) { 2401 object = space_map_object(msp->ms_sm); 2402 dmu_write(mos, vd->vdev_ms_array, sizeof (uint64_t) * 2403 msp->ms_id, sizeof (uint64_t), &object, tx); 2404 } 2405 dmu_tx_commit(tx); 2406 } 2407 2408 /* 2409 * Called after a transaction group has completely synced to mark 2410 * all of the metaslab's free space as usable. 2411 */ 2412 void 2413 metaslab_sync_done(metaslab_t *msp, uint64_t txg) 2414 { 2415 metaslab_group_t *mg = msp->ms_group; 2416 vdev_t *vd = mg->mg_vd; 2417 spa_t *spa = vd->vdev_spa; 2418 range_tree_t **freed_tree; 2419 range_tree_t **defer_tree; 2420 int64_t alloc_delta, defer_delta; 2421 boolean_t defer_allowed = B_TRUE; 2422 2423 ASSERT(!vd->vdev_ishole); 2424 2425 mutex_enter(&msp->ms_lock); 2426 2427 /* 2428 * If this metaslab is just becoming available, initialize its 2429 * alloctrees, freetrees, and defertree and add its capacity to 2430 * the vdev. 2431 */ 2432 if (msp->ms_freetree[TXG_CLEAN(txg) & TXG_MASK] == NULL) { 2433 for (int t = 0; t < TXG_SIZE; t++) { 2434 ASSERT(msp->ms_alloctree[t] == NULL); 2435 ASSERT(msp->ms_freetree[t] == NULL); 2436 2437 msp->ms_alloctree[t] = range_tree_create(NULL, msp, 2438 &msp->ms_lock); 2439 msp->ms_freetree[t] = range_tree_create(NULL, msp, 2440 &msp->ms_lock); 2441 } 2442 2443 for (int t = 0; t < TXG_DEFER_SIZE; t++) { 2444 ASSERT(msp->ms_defertree[t] == NULL); 2445 2446 msp->ms_defertree[t] = range_tree_create(NULL, msp, 2447 &msp->ms_lock); 2448 } 2449 2450 vdev_space_update(vd, 0, 0, msp->ms_size); 2451 } 2452 2453 freed_tree = &msp->ms_freetree[TXG_CLEAN(txg) & TXG_MASK]; 2454 defer_tree = &msp->ms_defertree[txg % TXG_DEFER_SIZE]; 2455 2456 uint64_t free_space = metaslab_class_get_space(spa_normal_class(spa)) - 2457 metaslab_class_get_alloc(spa_normal_class(spa)); 2458 if (free_space <= spa_get_slop_space(spa)) { 2459 defer_allowed = B_FALSE; 2460 } 2461 2462 defer_delta = 0; 2463 alloc_delta = space_map_alloc_delta(msp->ms_sm); 2464 if (defer_allowed) { 2465 defer_delta = range_tree_space(*freed_tree) - 2466 range_tree_space(*defer_tree); 2467 } else { 2468 defer_delta -= range_tree_space(*defer_tree); 2469 } 2470 2471 vdev_space_update(vd, alloc_delta + defer_delta, defer_delta, 0); 2472 2473 ASSERT0(range_tree_space(msp->ms_alloctree[txg & TXG_MASK])); 2474 ASSERT0(range_tree_space(msp->ms_freetree[txg & TXG_MASK])); 2475 2476 /* 2477 * If there's a metaslab_load() in progress, wait for it to complete 2478 * so that we have a consistent view of the in-core space map. 2479 */ 2480 metaslab_load_wait(msp); 2481 2482 /* 2483 * Move the frees from the defer_tree back to the free 2484 * range tree (if it's loaded). Swap the freed_tree and the 2485 * defer_tree -- this is safe to do because we've just emptied out 2486 * the defer_tree. 2487 */ 2488 range_tree_vacate(*defer_tree, 2489 msp->ms_loaded ? range_tree_add : NULL, msp->ms_tree); 2490 if (defer_allowed) { 2491 range_tree_swap(freed_tree, defer_tree); 2492 } else { 2493 range_tree_vacate(*freed_tree, 2494 msp->ms_loaded ? range_tree_add : NULL, msp->ms_tree); 2495 } 2496 2497 space_map_update(msp->ms_sm); 2498 2499 msp->ms_deferspace += defer_delta; 2500 ASSERT3S(msp->ms_deferspace, >=, 0); 2501 ASSERT3S(msp->ms_deferspace, <=, msp->ms_size); 2502 if (msp->ms_deferspace != 0) { 2503 /* 2504 * Keep syncing this metaslab until all deferred frees 2505 * are back in circulation. 2506 */ 2507 vdev_dirty(vd, VDD_METASLAB, msp, txg + 1); 2508 } 2509 2510 /* 2511 * Calculate the new weights before unloading any metaslabs. 2512 * This will give us the most accurate weighting. 2513 */ 2514 metaslab_group_sort(mg, msp, metaslab_weight(msp)); 2515 2516 /* 2517 * If the metaslab is loaded and we've not tried to load or allocate 2518 * from it in 'metaslab_unload_delay' txgs, then unload it. 2519 */ 2520 if (msp->ms_loaded && 2521 msp->ms_selected_txg + metaslab_unload_delay < txg) { 2522 for (int t = 1; t < TXG_CONCURRENT_STATES; t++) { 2523 VERIFY0(range_tree_space( 2524 msp->ms_alloctree[(txg + t) & TXG_MASK])); 2525 } 2526 2527 if (!metaslab_debug_unload) 2528 metaslab_unload(msp); 2529 } 2530 2531 mutex_exit(&msp->ms_lock); 2532 } 2533 2534 void 2535 metaslab_sync_reassess(metaslab_group_t *mg) 2536 { 2537 metaslab_group_alloc_update(mg); 2538 mg->mg_fragmentation = metaslab_group_fragmentation(mg); 2539 2540 /* 2541 * Preload the next potential metaslabs 2542 */ 2543 metaslab_group_preload(mg); 2544 } 2545 2546 static uint64_t 2547 metaslab_distance(metaslab_t *msp, dva_t *dva) 2548 { 2549 uint64_t ms_shift = msp->ms_group->mg_vd->vdev_ms_shift; 2550 uint64_t offset = DVA_GET_OFFSET(dva) >> ms_shift; 2551 uint64_t start = msp->ms_id; 2552 2553 if (msp->ms_group->mg_vd->vdev_id != DVA_GET_VDEV(dva)) 2554 return (1ULL << 63); 2555 2556 if (offset < start) 2557 return ((start - offset) << ms_shift); 2558 if (offset > start) 2559 return ((offset - start) << ms_shift); 2560 return (0); 2561 } 2562 2563 /* 2564 * ========================================================================== 2565 * Metaslab allocation tracing facility 2566 * ========================================================================== 2567 */ 2568 kstat_t *metaslab_trace_ksp; 2569 kstat_named_t metaslab_trace_over_limit; 2570 2571 void 2572 metaslab_alloc_trace_init(void) 2573 { 2574 ASSERT(metaslab_alloc_trace_cache == NULL); 2575 metaslab_alloc_trace_cache = kmem_cache_create( 2576 "metaslab_alloc_trace_cache", sizeof (metaslab_alloc_trace_t), 2577 0, NULL, NULL, NULL, NULL, NULL, 0); 2578 metaslab_trace_ksp = kstat_create("zfs", 0, "metaslab_trace_stats", 2579 "misc", KSTAT_TYPE_NAMED, 1, KSTAT_FLAG_VIRTUAL); 2580 if (metaslab_trace_ksp != NULL) { 2581 metaslab_trace_ksp->ks_data = &metaslab_trace_over_limit; 2582 kstat_named_init(&metaslab_trace_over_limit, 2583 "metaslab_trace_over_limit", KSTAT_DATA_UINT64); 2584 kstat_install(metaslab_trace_ksp); 2585 } 2586 } 2587 2588 void 2589 metaslab_alloc_trace_fini(void) 2590 { 2591 if (metaslab_trace_ksp != NULL) { 2592 kstat_delete(metaslab_trace_ksp); 2593 metaslab_trace_ksp = NULL; 2594 } 2595 kmem_cache_destroy(metaslab_alloc_trace_cache); 2596 metaslab_alloc_trace_cache = NULL; 2597 } 2598 2599 /* 2600 * Add an allocation trace element to the allocation tracing list. 2601 */ 2602 static void 2603 metaslab_trace_add(zio_alloc_list_t *zal, metaslab_group_t *mg, 2604 metaslab_t *msp, uint64_t psize, uint32_t dva_id, uint64_t offset) 2605 { 2606 if (!metaslab_trace_enabled) 2607 return; 2608 2609 /* 2610 * When the tracing list reaches its maximum we remove 2611 * the second element in the list before adding a new one. 2612 * By removing the second element we preserve the original 2613 * entry as a clue to what allocations steps have already been 2614 * performed. 2615 */ 2616 if (zal->zal_size == metaslab_trace_max_entries) { 2617 metaslab_alloc_trace_t *mat_next; 2618 #ifdef DEBUG 2619 panic("too many entries in allocation list"); 2620 #endif 2621 atomic_inc_64(&metaslab_trace_over_limit.value.ui64); 2622 zal->zal_size--; 2623 mat_next = list_next(&zal->zal_list, list_head(&zal->zal_list)); 2624 list_remove(&zal->zal_list, mat_next); 2625 kmem_cache_free(metaslab_alloc_trace_cache, mat_next); 2626 } 2627 2628 metaslab_alloc_trace_t *mat = 2629 kmem_cache_alloc(metaslab_alloc_trace_cache, KM_SLEEP); 2630 list_link_init(&mat->mat_list_node); 2631 mat->mat_mg = mg; 2632 mat->mat_msp = msp; 2633 mat->mat_size = psize; 2634 mat->mat_dva_id = dva_id; 2635 mat->mat_offset = offset; 2636 mat->mat_weight = 0; 2637 2638 if (msp != NULL) 2639 mat->mat_weight = msp->ms_weight; 2640 2641 /* 2642 * The list is part of the zio so locking is not required. Only 2643 * a single thread will perform allocations for a given zio. 2644 */ 2645 list_insert_tail(&zal->zal_list, mat); 2646 zal->zal_size++; 2647 2648 ASSERT3U(zal->zal_size, <=, metaslab_trace_max_entries); 2649 } 2650 2651 void 2652 metaslab_trace_init(zio_alloc_list_t *zal) 2653 { 2654 list_create(&zal->zal_list, sizeof (metaslab_alloc_trace_t), 2655 offsetof(metaslab_alloc_trace_t, mat_list_node)); 2656 zal->zal_size = 0; 2657 } 2658 2659 void 2660 metaslab_trace_fini(zio_alloc_list_t *zal) 2661 { 2662 metaslab_alloc_trace_t *mat; 2663 2664 while ((mat = list_remove_head(&zal->zal_list)) != NULL) 2665 kmem_cache_free(metaslab_alloc_trace_cache, mat); 2666 list_destroy(&zal->zal_list); 2667 zal->zal_size = 0; 2668 } 2669 2670 /* 2671 * ========================================================================== 2672 * Metaslab block operations 2673 * ========================================================================== 2674 */ 2675 2676 static void 2677 metaslab_group_alloc_increment(spa_t *spa, uint64_t vdev, void *tag, int flags) 2678 { 2679 if (!(flags & METASLAB_ASYNC_ALLOC) || 2680 flags & METASLAB_DONT_THROTTLE) 2681 return; 2682 2683 metaslab_group_t *mg = vdev_lookup_top(spa, vdev)->vdev_mg; 2684 if (!mg->mg_class->mc_alloc_throttle_enabled) 2685 return; 2686 2687 (void) refcount_add(&mg->mg_alloc_queue_depth, tag); 2688 } 2689 2690 void 2691 metaslab_group_alloc_decrement(spa_t *spa, uint64_t vdev, void *tag, int flags) 2692 { 2693 if (!(flags & METASLAB_ASYNC_ALLOC) || 2694 flags & METASLAB_DONT_THROTTLE) 2695 return; 2696 2697 metaslab_group_t *mg = vdev_lookup_top(spa, vdev)->vdev_mg; 2698 if (!mg->mg_class->mc_alloc_throttle_enabled) 2699 return; 2700 2701 (void) refcount_remove(&mg->mg_alloc_queue_depth, tag); 2702 } 2703 2704 void 2705 metaslab_group_alloc_verify(spa_t *spa, const blkptr_t *bp, void *tag) 2706 { 2707 #ifdef ZFS_DEBUG 2708 const dva_t *dva = bp->blk_dva; 2709 int ndvas = BP_GET_NDVAS(bp); 2710 2711 for (int d = 0; d < ndvas; d++) { 2712 uint64_t vdev = DVA_GET_VDEV(&dva[d]); 2713 metaslab_group_t *mg = vdev_lookup_top(spa, vdev)->vdev_mg; 2714 VERIFY(refcount_not_held(&mg->mg_alloc_queue_depth, tag)); 2715 } 2716 #endif 2717 } 2718 2719 static uint64_t 2720 metaslab_block_alloc(metaslab_t *msp, uint64_t size, uint64_t txg) 2721 { 2722 uint64_t start; 2723 range_tree_t *rt = msp->ms_tree; 2724 metaslab_class_t *mc = msp->ms_group->mg_class; 2725 2726 VERIFY(!msp->ms_condensing); 2727 2728 start = mc->mc_ops->msop_alloc(msp, size); 2729 if (start != -1ULL) { 2730 metaslab_group_t *mg = msp->ms_group; 2731 vdev_t *vd = mg->mg_vd; 2732 2733 VERIFY0(P2PHASE(start, 1ULL << vd->vdev_ashift)); 2734 VERIFY0(P2PHASE(size, 1ULL << vd->vdev_ashift)); 2735 VERIFY3U(range_tree_space(rt) - size, <=, msp->ms_size); 2736 range_tree_remove(rt, start, size); 2737 2738 if (range_tree_space(msp->ms_alloctree[txg & TXG_MASK]) == 0) 2739 vdev_dirty(mg->mg_vd, VDD_METASLAB, msp, txg); 2740 2741 range_tree_add(msp->ms_alloctree[txg & TXG_MASK], start, size); 2742 2743 /* Track the last successful allocation */ 2744 msp->ms_alloc_txg = txg; 2745 metaslab_verify_space(msp, txg); 2746 } 2747 2748 /* 2749 * Now that we've attempted the allocation we need to update the 2750 * metaslab's maximum block size since it may have changed. 2751 */ 2752 msp->ms_max_size = metaslab_block_maxsize(msp); 2753 return (start); 2754 } 2755 2756 static uint64_t 2757 metaslab_group_alloc_normal(metaslab_group_t *mg, zio_alloc_list_t *zal, 2758 uint64_t asize, uint64_t txg, uint64_t min_distance, dva_t *dva, int d) 2759 { 2760 metaslab_t *msp = NULL; 2761 uint64_t offset = -1ULL; 2762 uint64_t activation_weight; 2763 uint64_t target_distance; 2764 int i; 2765 2766 activation_weight = METASLAB_WEIGHT_PRIMARY; 2767 for (i = 0; i < d; i++) { 2768 if (DVA_GET_VDEV(&dva[i]) == mg->mg_vd->vdev_id) { 2769 activation_weight = METASLAB_WEIGHT_SECONDARY; 2770 break; 2771 } 2772 } 2773 2774 metaslab_t *search = kmem_alloc(sizeof (*search), KM_SLEEP); 2775 search->ms_weight = UINT64_MAX; 2776 search->ms_start = 0; 2777 for (;;) { 2778 boolean_t was_active; 2779 avl_tree_t *t = &mg->mg_metaslab_tree; 2780 avl_index_t idx; 2781 2782 mutex_enter(&mg->mg_lock); 2783 2784 /* 2785 * Find the metaslab with the highest weight that is less 2786 * than what we've already tried. In the common case, this 2787 * means that we will examine each metaslab at most once. 2788 * Note that concurrent callers could reorder metaslabs 2789 * by activation/passivation once we have dropped the mg_lock. 2790 * If a metaslab is activated by another thread, and we fail 2791 * to allocate from the metaslab we have selected, we may 2792 * not try the newly-activated metaslab, and instead activate 2793 * another metaslab. This is not optimal, but generally 2794 * does not cause any problems (a possible exception being 2795 * if every metaslab is completely full except for the 2796 * the newly-activated metaslab which we fail to examine). 2797 */ 2798 msp = avl_find(t, search, &idx); 2799 if (msp == NULL) 2800 msp = avl_nearest(t, idx, AVL_AFTER); 2801 for (; msp != NULL; msp = AVL_NEXT(t, msp)) { 2802 2803 if (!metaslab_should_allocate(msp, asize)) { 2804 metaslab_trace_add(zal, mg, msp, asize, d, 2805 TRACE_TOO_SMALL); 2806 continue; 2807 } 2808 2809 /* 2810 * If the selected metaslab is condensing, skip it. 2811 */ 2812 if (msp->ms_condensing) 2813 continue; 2814 2815 was_active = msp->ms_weight & METASLAB_ACTIVE_MASK; 2816 if (activation_weight == METASLAB_WEIGHT_PRIMARY) 2817 break; 2818 2819 target_distance = min_distance + 2820 (space_map_allocated(msp->ms_sm) != 0 ? 0 : 2821 min_distance >> 1); 2822 2823 for (i = 0; i < d; i++) { 2824 if (metaslab_distance(msp, &dva[i]) < 2825 target_distance) 2826 break; 2827 } 2828 if (i == d) 2829 break; 2830 } 2831 mutex_exit(&mg->mg_lock); 2832 if (msp == NULL) { 2833 kmem_free(search, sizeof (*search)); 2834 return (-1ULL); 2835 } 2836 search->ms_weight = msp->ms_weight; 2837 search->ms_start = msp->ms_start + 1; 2838 2839 mutex_enter(&msp->ms_lock); 2840 2841 /* 2842 * Ensure that the metaslab we have selected is still 2843 * capable of handling our request. It's possible that 2844 * another thread may have changed the weight while we 2845 * were blocked on the metaslab lock. We check the 2846 * active status first to see if we need to reselect 2847 * a new metaslab. 2848 */ 2849 if (was_active && !(msp->ms_weight & METASLAB_ACTIVE_MASK)) { 2850 mutex_exit(&msp->ms_lock); 2851 continue; 2852 } 2853 2854 if ((msp->ms_weight & METASLAB_WEIGHT_SECONDARY) && 2855 activation_weight == METASLAB_WEIGHT_PRIMARY) { 2856 metaslab_passivate(msp, 2857 msp->ms_weight & ~METASLAB_ACTIVE_MASK); 2858 mutex_exit(&msp->ms_lock); 2859 continue; 2860 } 2861 2862 if (metaslab_activate(msp, activation_weight) != 0) { 2863 mutex_exit(&msp->ms_lock); 2864 continue; 2865 } 2866 msp->ms_selected_txg = txg; 2867 2868 /* 2869 * Now that we have the lock, recheck to see if we should 2870 * continue to use this metaslab for this allocation. The 2871 * the metaslab is now loaded so metaslab_should_allocate() can 2872 * accurately determine if the allocation attempt should 2873 * proceed. 2874 */ 2875 if (!metaslab_should_allocate(msp, asize)) { 2876 /* Passivate this metaslab and select a new one. */ 2877 metaslab_trace_add(zal, mg, msp, asize, d, 2878 TRACE_TOO_SMALL); 2879 goto next; 2880 } 2881 2882 /* 2883 * If this metaslab is currently condensing then pick again as 2884 * we can't manipulate this metaslab until it's committed 2885 * to disk. 2886 */ 2887 if (msp->ms_condensing) { 2888 metaslab_trace_add(zal, mg, msp, asize, d, 2889 TRACE_CONDENSING); 2890 mutex_exit(&msp->ms_lock); 2891 continue; 2892 } 2893 2894 offset = metaslab_block_alloc(msp, asize, txg); 2895 metaslab_trace_add(zal, mg, msp, asize, d, offset); 2896 2897 if (offset != -1ULL) { 2898 /* Proactively passivate the metaslab, if needed */ 2899 metaslab_segment_may_passivate(msp); 2900 break; 2901 } 2902 next: 2903 ASSERT(msp->ms_loaded); 2904 2905 /* 2906 * We were unable to allocate from this metaslab so determine 2907 * a new weight for this metaslab. Now that we have loaded 2908 * the metaslab we can provide a better hint to the metaslab 2909 * selector. 2910 * 2911 * For space-based metaslabs, we use the maximum block size. 2912 * This information is only available when the metaslab 2913 * is loaded and is more accurate than the generic free 2914 * space weight that was calculated by metaslab_weight(). 2915 * This information allows us to quickly compare the maximum 2916 * available allocation in the metaslab to the allocation 2917 * size being requested. 2918 * 2919 * For segment-based metaslabs, determine the new weight 2920 * based on the highest bucket in the range tree. We 2921 * explicitly use the loaded segment weight (i.e. the range 2922 * tree histogram) since it contains the space that is 2923 * currently available for allocation and is accurate 2924 * even within a sync pass. 2925 */ 2926 if (WEIGHT_IS_SPACEBASED(msp->ms_weight)) { 2927 uint64_t weight = metaslab_block_maxsize(msp); 2928 WEIGHT_SET_SPACEBASED(weight); 2929 metaslab_passivate(msp, weight); 2930 } else { 2931 metaslab_passivate(msp, 2932 metaslab_weight_from_range_tree(msp)); 2933 } 2934 2935 /* 2936 * We have just failed an allocation attempt, check 2937 * that metaslab_should_allocate() agrees. Otherwise, 2938 * we may end up in an infinite loop retrying the same 2939 * metaslab. 2940 */ 2941 ASSERT(!metaslab_should_allocate(msp, asize)); 2942 mutex_exit(&msp->ms_lock); 2943 } 2944 mutex_exit(&msp->ms_lock); 2945 kmem_free(search, sizeof (*search)); 2946 return (offset); 2947 } 2948 2949 static uint64_t 2950 metaslab_group_alloc(metaslab_group_t *mg, zio_alloc_list_t *zal, 2951 uint64_t asize, uint64_t txg, uint64_t min_distance, dva_t *dva, int d) 2952 { 2953 uint64_t offset; 2954 ASSERT(mg->mg_initialized); 2955 2956 offset = metaslab_group_alloc_normal(mg, zal, asize, txg, 2957 min_distance, dva, d); 2958 2959 mutex_enter(&mg->mg_lock); 2960 if (offset == -1ULL) { 2961 mg->mg_failed_allocations++; 2962 metaslab_trace_add(zal, mg, NULL, asize, d, 2963 TRACE_GROUP_FAILURE); 2964 if (asize == SPA_GANGBLOCKSIZE) { 2965 /* 2966 * This metaslab group was unable to allocate 2967 * the minimum gang block size so it must be out of 2968 * space. We must notify the allocation throttle 2969 * to start skipping allocation attempts to this 2970 * metaslab group until more space becomes available. 2971 * Note: this failure cannot be caused by the 2972 * allocation throttle since the allocation throttle 2973 * is only responsible for skipping devices and 2974 * not failing block allocations. 2975 */ 2976 mg->mg_no_free_space = B_TRUE; 2977 } 2978 } 2979 mg->mg_allocations++; 2980 mutex_exit(&mg->mg_lock); 2981 return (offset); 2982 } 2983 2984 /* 2985 * If we have to write a ditto block (i.e. more than one DVA for a given BP) 2986 * on the same vdev as an existing DVA of this BP, then try to allocate it 2987 * at least (vdev_asize / (2 ^ ditto_same_vdev_distance_shift)) away from the 2988 * existing DVAs. 2989 */ 2990 int ditto_same_vdev_distance_shift = 3; 2991 2992 /* 2993 * Allocate a block for the specified i/o. 2994 */ 2995 static int 2996 metaslab_alloc_dva(spa_t *spa, metaslab_class_t *mc, uint64_t psize, 2997 dva_t *dva, int d, dva_t *hintdva, uint64_t txg, int flags, 2998 zio_alloc_list_t *zal) 2999 { 3000 metaslab_group_t *mg, *rotor; 3001 vdev_t *vd; 3002 boolean_t try_hard = B_FALSE; 3003 3004 ASSERT(!DVA_IS_VALID(&dva[d])); 3005 3006 /* 3007 * For testing, make some blocks above a certain size be gang blocks. 3008 */ 3009 if (psize >= metaslab_gang_bang && (ddi_get_lbolt() & 3) == 0) { 3010 metaslab_trace_add(zal, NULL, NULL, psize, d, TRACE_FORCE_GANG); 3011 return (SET_ERROR(ENOSPC)); 3012 } 3013 3014 /* 3015 * Start at the rotor and loop through all mgs until we find something. 3016 * Note that there's no locking on mc_rotor or mc_aliquot because 3017 * nothing actually breaks if we miss a few updates -- we just won't 3018 * allocate quite as evenly. It all balances out over time. 3019 * 3020 * If we are doing ditto or log blocks, try to spread them across 3021 * consecutive vdevs. If we're forced to reuse a vdev before we've 3022 * allocated all of our ditto blocks, then try and spread them out on 3023 * that vdev as much as possible. If it turns out to not be possible, 3024 * gradually lower our standards until anything becomes acceptable. 3025 * Also, allocating on consecutive vdevs (as opposed to random vdevs) 3026 * gives us hope of containing our fault domains to something we're 3027 * able to reason about. Otherwise, any two top-level vdev failures 3028 * will guarantee the loss of data. With consecutive allocation, 3029 * only two adjacent top-level vdev failures will result in data loss. 3030 * 3031 * If we are doing gang blocks (hintdva is non-NULL), try to keep 3032 * ourselves on the same vdev as our gang block header. That 3033 * way, we can hope for locality in vdev_cache, plus it makes our 3034 * fault domains something tractable. 3035 */ 3036 if (hintdva) { 3037 vd = vdev_lookup_top(spa, DVA_GET_VDEV(&hintdva[d])); 3038 3039 /* 3040 * It's possible the vdev we're using as the hint no 3041 * longer exists (i.e. removed). Consult the rotor when 3042 * all else fails. 3043 */ 3044 if (vd != NULL) { 3045 mg = vd->vdev_mg; 3046 3047 if (flags & METASLAB_HINTBP_AVOID && 3048 mg->mg_next != NULL) 3049 mg = mg->mg_next; 3050 } else { 3051 mg = mc->mc_rotor; 3052 } 3053 } else if (d != 0) { 3054 vd = vdev_lookup_top(spa, DVA_GET_VDEV(&dva[d - 1])); 3055 mg = vd->vdev_mg->mg_next; 3056 } else { 3057 mg = mc->mc_rotor; 3058 } 3059 3060 /* 3061 * If the hint put us into the wrong metaslab class, or into a 3062 * metaslab group that has been passivated, just follow the rotor. 3063 */ 3064 if (mg->mg_class != mc || mg->mg_activation_count <= 0) 3065 mg = mc->mc_rotor; 3066 3067 rotor = mg; 3068 top: 3069 do { 3070 boolean_t allocatable; 3071 3072 ASSERT(mg->mg_activation_count == 1); 3073 vd = mg->mg_vd; 3074 3075 /* 3076 * Don't allocate from faulted devices. 3077 */ 3078 if (try_hard) { 3079 spa_config_enter(spa, SCL_ZIO, FTAG, RW_READER); 3080 allocatable = vdev_allocatable(vd); 3081 spa_config_exit(spa, SCL_ZIO, FTAG); 3082 } else { 3083 allocatable = vdev_allocatable(vd); 3084 } 3085 3086 /* 3087 * Determine if the selected metaslab group is eligible 3088 * for allocations. If we're ganging then don't allow 3089 * this metaslab group to skip allocations since that would 3090 * inadvertently return ENOSPC and suspend the pool 3091 * even though space is still available. 3092 */ 3093 if (allocatable && !GANG_ALLOCATION(flags) && !try_hard) { 3094 allocatable = metaslab_group_allocatable(mg, rotor, 3095 psize); 3096 } 3097 3098 if (!allocatable) { 3099 metaslab_trace_add(zal, mg, NULL, psize, d, 3100 TRACE_NOT_ALLOCATABLE); 3101 goto next; 3102 } 3103 3104 ASSERT(mg->mg_initialized); 3105 3106 /* 3107 * Avoid writing single-copy data to a failing, 3108 * non-redundant vdev, unless we've already tried all 3109 * other vdevs. 3110 */ 3111 if ((vd->vdev_stat.vs_write_errors > 0 || 3112 vd->vdev_state < VDEV_STATE_HEALTHY) && 3113 d == 0 && !try_hard && vd->vdev_children == 0) { 3114 metaslab_trace_add(zal, mg, NULL, psize, d, 3115 TRACE_VDEV_ERROR); 3116 goto next; 3117 } 3118 3119 ASSERT(mg->mg_class == mc); 3120 3121 /* 3122 * If we don't need to try hard, then require that the 3123 * block be 1/8th of the device away from any other DVAs 3124 * in this BP. If we are trying hard, allow any offset 3125 * to be used (distance=0). 3126 */ 3127 uint64_t distance = 0; 3128 if (!try_hard) { 3129 distance = vd->vdev_asize >> 3130 ditto_same_vdev_distance_shift; 3131 if (distance <= (1ULL << vd->vdev_ms_shift)) 3132 distance = 0; 3133 } 3134 3135 uint64_t asize = vdev_psize_to_asize(vd, psize); 3136 ASSERT(P2PHASE(asize, 1ULL << vd->vdev_ashift) == 0); 3137 3138 uint64_t offset = metaslab_group_alloc(mg, zal, asize, txg, 3139 distance, dva, d); 3140 3141 if (offset != -1ULL) { 3142 /* 3143 * If we've just selected this metaslab group, 3144 * figure out whether the corresponding vdev is 3145 * over- or under-used relative to the pool, 3146 * and set an allocation bias to even it out. 3147 */ 3148 if (mc->mc_aliquot == 0 && metaslab_bias_enabled) { 3149 vdev_stat_t *vs = &vd->vdev_stat; 3150 int64_t vu, cu; 3151 3152 vu = (vs->vs_alloc * 100) / (vs->vs_space + 1); 3153 cu = (mc->mc_alloc * 100) / (mc->mc_space + 1); 3154 3155 /* 3156 * Calculate how much more or less we should 3157 * try to allocate from this device during 3158 * this iteration around the rotor. 3159 * For example, if a device is 80% full 3160 * and the pool is 20% full then we should 3161 * reduce allocations by 60% on this device. 3162 * 3163 * mg_bias = (20 - 80) * 512K / 100 = -307K 3164 * 3165 * This reduces allocations by 307K for this 3166 * iteration. 3167 */ 3168 mg->mg_bias = ((cu - vu) * 3169 (int64_t)mg->mg_aliquot) / 100; 3170 } else if (!metaslab_bias_enabled) { 3171 mg->mg_bias = 0; 3172 } 3173 3174 if (atomic_add_64_nv(&mc->mc_aliquot, asize) >= 3175 mg->mg_aliquot + mg->mg_bias) { 3176 mc->mc_rotor = mg->mg_next; 3177 mc->mc_aliquot = 0; 3178 } 3179 3180 DVA_SET_VDEV(&dva[d], vd->vdev_id); 3181 DVA_SET_OFFSET(&dva[d], offset); 3182 DVA_SET_GANG(&dva[d], !!(flags & METASLAB_GANG_HEADER)); 3183 DVA_SET_ASIZE(&dva[d], asize); 3184 3185 return (0); 3186 } 3187 next: 3188 mc->mc_rotor = mg->mg_next; 3189 mc->mc_aliquot = 0; 3190 } while ((mg = mg->mg_next) != rotor); 3191 3192 /* 3193 * If we haven't tried hard, do so now. 3194 */ 3195 if (!try_hard) { 3196 try_hard = B_TRUE; 3197 goto top; 3198 } 3199 3200 bzero(&dva[d], sizeof (dva_t)); 3201 3202 metaslab_trace_add(zal, rotor, NULL, psize, d, TRACE_ENOSPC); 3203 return (SET_ERROR(ENOSPC)); 3204 } 3205 3206 /* 3207 * Free the block represented by DVA in the context of the specified 3208 * transaction group. 3209 */ 3210 static void 3211 metaslab_free_dva(spa_t *spa, const dva_t *dva, uint64_t txg, boolean_t now) 3212 { 3213 uint64_t vdev = DVA_GET_VDEV(dva); 3214 uint64_t offset = DVA_GET_OFFSET(dva); 3215 uint64_t size = DVA_GET_ASIZE(dva); 3216 vdev_t *vd; 3217 metaslab_t *msp; 3218 3219 ASSERT(DVA_IS_VALID(dva)); 3220 3221 if (txg > spa_freeze_txg(spa)) 3222 return; 3223 3224 if ((vd = vdev_lookup_top(spa, vdev)) == NULL || 3225 (offset >> vd->vdev_ms_shift) >= vd->vdev_ms_count) { 3226 cmn_err(CE_WARN, "metaslab_free_dva(): bad DVA %llu:%llu", 3227 (u_longlong_t)vdev, (u_longlong_t)offset); 3228 ASSERT(0); 3229 return; 3230 } 3231 3232 msp = vd->vdev_ms[offset >> vd->vdev_ms_shift]; 3233 3234 if (DVA_GET_GANG(dva)) 3235 size = vdev_psize_to_asize(vd, SPA_GANGBLOCKSIZE); 3236 3237 mutex_enter(&msp->ms_lock); 3238 3239 if (now) { 3240 range_tree_remove(msp->ms_alloctree[txg & TXG_MASK], 3241 offset, size); 3242 3243 VERIFY(!msp->ms_condensing); 3244 VERIFY3U(offset, >=, msp->ms_start); 3245 VERIFY3U(offset + size, <=, msp->ms_start + msp->ms_size); 3246 VERIFY3U(range_tree_space(msp->ms_tree) + size, <=, 3247 msp->ms_size); 3248 VERIFY0(P2PHASE(offset, 1ULL << vd->vdev_ashift)); 3249 VERIFY0(P2PHASE(size, 1ULL << vd->vdev_ashift)); 3250 range_tree_add(msp->ms_tree, offset, size); 3251 msp->ms_max_size = metaslab_block_maxsize(msp); 3252 } else { 3253 if (range_tree_space(msp->ms_freetree[txg & TXG_MASK]) == 0) 3254 vdev_dirty(vd, VDD_METASLAB, msp, txg); 3255 range_tree_add(msp->ms_freetree[txg & TXG_MASK], 3256 offset, size); 3257 } 3258 3259 mutex_exit(&msp->ms_lock); 3260 } 3261 3262 /* 3263 * Intent log support: upon opening the pool after a crash, notify the SPA 3264 * of blocks that the intent log has allocated for immediate write, but 3265 * which are still considered free by the SPA because the last transaction 3266 * group didn't commit yet. 3267 */ 3268 static int 3269 metaslab_claim_dva(spa_t *spa, const dva_t *dva, uint64_t txg) 3270 { 3271 uint64_t vdev = DVA_GET_VDEV(dva); 3272 uint64_t offset = DVA_GET_OFFSET(dva); 3273 uint64_t size = DVA_GET_ASIZE(dva); 3274 vdev_t *vd; 3275 metaslab_t *msp; 3276 int error = 0; 3277 3278 ASSERT(DVA_IS_VALID(dva)); 3279 3280 if ((vd = vdev_lookup_top(spa, vdev)) == NULL || 3281 (offset >> vd->vdev_ms_shift) >= vd->vdev_ms_count) 3282 return (SET_ERROR(ENXIO)); 3283 3284 msp = vd->vdev_ms[offset >> vd->vdev_ms_shift]; 3285 3286 if (DVA_GET_GANG(dva)) 3287 size = vdev_psize_to_asize(vd, SPA_GANGBLOCKSIZE); 3288 3289 mutex_enter(&msp->ms_lock); 3290 3291 if ((txg != 0 && spa_writeable(spa)) || !msp->ms_loaded) 3292 error = metaslab_activate(msp, METASLAB_WEIGHT_SECONDARY); 3293 3294 if (error == 0 && !range_tree_contains(msp->ms_tree, offset, size)) 3295 error = SET_ERROR(ENOENT); 3296 3297 if (error || txg == 0) { /* txg == 0 indicates dry run */ 3298 mutex_exit(&msp->ms_lock); 3299 return (error); 3300 } 3301 3302 VERIFY(!msp->ms_condensing); 3303 VERIFY0(P2PHASE(offset, 1ULL << vd->vdev_ashift)); 3304 VERIFY0(P2PHASE(size, 1ULL << vd->vdev_ashift)); 3305 VERIFY3U(range_tree_space(msp->ms_tree) - size, <=, msp->ms_size); 3306 range_tree_remove(msp->ms_tree, offset, size); 3307 3308 if (spa_writeable(spa)) { /* don't dirty if we're zdb(1M) */ 3309 if (range_tree_space(msp->ms_alloctree[txg & TXG_MASK]) == 0) 3310 vdev_dirty(vd, VDD_METASLAB, msp, txg); 3311 range_tree_add(msp->ms_alloctree[txg & TXG_MASK], offset, size); 3312 } 3313 3314 mutex_exit(&msp->ms_lock); 3315 3316 return (0); 3317 } 3318 3319 /* 3320 * Reserve some allocation slots. The reservation system must be called 3321 * before we call into the allocator. If there aren't any available slots 3322 * then the I/O will be throttled until an I/O completes and its slots are 3323 * freed up. The function returns true if it was successful in placing 3324 * the reservation. 3325 */ 3326 boolean_t 3327 metaslab_class_throttle_reserve(metaslab_class_t *mc, int slots, zio_t *zio, 3328 int flags) 3329 { 3330 uint64_t available_slots = 0; 3331 boolean_t slot_reserved = B_FALSE; 3332 3333 ASSERT(mc->mc_alloc_throttle_enabled); 3334 mutex_enter(&mc->mc_lock); 3335 3336 uint64_t reserved_slots = refcount_count(&mc->mc_alloc_slots); 3337 if (reserved_slots < mc->mc_alloc_max_slots) 3338 available_slots = mc->mc_alloc_max_slots - reserved_slots; 3339 3340 if (slots <= available_slots || GANG_ALLOCATION(flags)) { 3341 /* 3342 * We reserve the slots individually so that we can unreserve 3343 * them individually when an I/O completes. 3344 */ 3345 for (int d = 0; d < slots; d++) { 3346 reserved_slots = refcount_add(&mc->mc_alloc_slots, zio); 3347 } 3348 zio->io_flags |= ZIO_FLAG_IO_ALLOCATING; 3349 slot_reserved = B_TRUE; 3350 } 3351 3352 mutex_exit(&mc->mc_lock); 3353 return (slot_reserved); 3354 } 3355 3356 void 3357 metaslab_class_throttle_unreserve(metaslab_class_t *mc, int slots, zio_t *zio) 3358 { 3359 ASSERT(mc->mc_alloc_throttle_enabled); 3360 mutex_enter(&mc->mc_lock); 3361 for (int d = 0; d < slots; d++) { 3362 (void) refcount_remove(&mc->mc_alloc_slots, zio); 3363 } 3364 mutex_exit(&mc->mc_lock); 3365 } 3366 3367 int 3368 metaslab_alloc(spa_t *spa, metaslab_class_t *mc, uint64_t psize, blkptr_t *bp, 3369 int ndvas, uint64_t txg, blkptr_t *hintbp, int flags, 3370 zio_alloc_list_t *zal, zio_t *zio) 3371 { 3372 dva_t *dva = bp->blk_dva; 3373 dva_t *hintdva = (hintbp != NULL) ? hintbp->blk_dva : NULL; 3374 int error = 0; 3375 3376 ASSERT(bp->blk_birth == 0); 3377 ASSERT(BP_PHYSICAL_BIRTH(bp) == 0); 3378 3379 spa_config_enter(spa, SCL_ALLOC, FTAG, RW_READER); 3380 3381 if (mc->mc_rotor == NULL) { /* no vdevs in this class */ 3382 spa_config_exit(spa, SCL_ALLOC, FTAG); 3383 return (SET_ERROR(ENOSPC)); 3384 } 3385 3386 ASSERT(ndvas > 0 && ndvas <= spa_max_replication(spa)); 3387 ASSERT(BP_GET_NDVAS(bp) == 0); 3388 ASSERT(hintbp == NULL || ndvas <= BP_GET_NDVAS(hintbp)); 3389 ASSERT3P(zal, !=, NULL); 3390 3391 for (int d = 0; d < ndvas; d++) { 3392 error = metaslab_alloc_dva(spa, mc, psize, dva, d, hintdva, 3393 txg, flags, zal); 3394 if (error != 0) { 3395 for (d--; d >= 0; d--) { 3396 metaslab_free_dva(spa, &dva[d], txg, B_TRUE); 3397 metaslab_group_alloc_decrement(spa, 3398 DVA_GET_VDEV(&dva[d]), zio, flags); 3399 bzero(&dva[d], sizeof (dva_t)); 3400 } 3401 spa_config_exit(spa, SCL_ALLOC, FTAG); 3402 return (error); 3403 } else { 3404 /* 3405 * Update the metaslab group's queue depth 3406 * based on the newly allocated dva. 3407 */ 3408 metaslab_group_alloc_increment(spa, 3409 DVA_GET_VDEV(&dva[d]), zio, flags); 3410 } 3411 3412 } 3413 ASSERT(error == 0); 3414 ASSERT(BP_GET_NDVAS(bp) == ndvas); 3415 3416 spa_config_exit(spa, SCL_ALLOC, FTAG); 3417 3418 BP_SET_BIRTH(bp, txg, txg); 3419 3420 return (0); 3421 } 3422 3423 void 3424 metaslab_free(spa_t *spa, const blkptr_t *bp, uint64_t txg, boolean_t now) 3425 { 3426 const dva_t *dva = bp->blk_dva; 3427 int ndvas = BP_GET_NDVAS(bp); 3428 3429 ASSERT(!BP_IS_HOLE(bp)); 3430 ASSERT(!now || bp->blk_birth >= spa_syncing_txg(spa)); 3431 3432 spa_config_enter(spa, SCL_FREE, FTAG, RW_READER); 3433 3434 for (int d = 0; d < ndvas; d++) 3435 metaslab_free_dva(spa, &dva[d], txg, now); 3436 3437 spa_config_exit(spa, SCL_FREE, FTAG); 3438 } 3439 3440 int 3441 metaslab_claim(spa_t *spa, const blkptr_t *bp, uint64_t txg) 3442 { 3443 const dva_t *dva = bp->blk_dva; 3444 int ndvas = BP_GET_NDVAS(bp); 3445 int error = 0; 3446 3447 ASSERT(!BP_IS_HOLE(bp)); 3448 3449 if (txg != 0) { 3450 /* 3451 * First do a dry run to make sure all DVAs are claimable, 3452 * so we don't have to unwind from partial failures below. 3453 */ 3454 if ((error = metaslab_claim(spa, bp, 0)) != 0) 3455 return (error); 3456 } 3457 3458 spa_config_enter(spa, SCL_ALLOC, FTAG, RW_READER); 3459 3460 for (int d = 0; d < ndvas; d++) 3461 if ((error = metaslab_claim_dva(spa, &dva[d], txg)) != 0) 3462 break; 3463 3464 spa_config_exit(spa, SCL_ALLOC, FTAG); 3465 3466 ASSERT(error == 0 || txg == 0); 3467 3468 return (error); 3469 } 3470 3471 void 3472 metaslab_check_free(spa_t *spa, const blkptr_t *bp) 3473 { 3474 if ((zfs_flags & ZFS_DEBUG_ZIO_FREE) == 0) 3475 return; 3476 3477 spa_config_enter(spa, SCL_VDEV, FTAG, RW_READER); 3478 for (int i = 0; i < BP_GET_NDVAS(bp); i++) { 3479 uint64_t vdev = DVA_GET_VDEV(&bp->blk_dva[i]); 3480 vdev_t *vd = vdev_lookup_top(spa, vdev); 3481 uint64_t offset = DVA_GET_OFFSET(&bp->blk_dva[i]); 3482 uint64_t size = DVA_GET_ASIZE(&bp->blk_dva[i]); 3483 metaslab_t *msp = vd->vdev_ms[offset >> vd->vdev_ms_shift]; 3484 3485 if (msp->ms_loaded) 3486 range_tree_verify(msp->ms_tree, offset, size); 3487 3488 for (int j = 0; j < TXG_SIZE; j++) 3489 range_tree_verify(msp->ms_freetree[j], offset, size); 3490 for (int j = 0; j < TXG_DEFER_SIZE; j++) 3491 range_tree_verify(msp->ms_defertree[j], offset, size); 3492 } 3493 spa_config_exit(spa, SCL_VDEV, FTAG); 3494 } 3495