1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (c) 2023-2025 Christoph Hellwig.
4 * Copyright (c) 2024-2025, Western Digital Corporation or its affiliates.
5 */
6 #include "xfs.h"
7 #include "xfs_shared.h"
8 #include "xfs_format.h"
9 #include "xfs_log_format.h"
10 #include "xfs_error.h"
11 #include "xfs_trans_resv.h"
12 #include "xfs_mount.h"
13 #include "xfs_inode.h"
14 #include "xfs_iomap.h"
15 #include "xfs_trans.h"
16 #include "xfs_alloc.h"
17 #include "xfs_bmap.h"
18 #include "xfs_bmap_btree.h"
19 #include "xfs_trans_space.h"
20 #include "xfs_refcount.h"
21 #include "xfs_rtbitmap.h"
22 #include "xfs_rtrmap_btree.h"
23 #include "xfs_zone_alloc.h"
24 #include "xfs_zone_priv.h"
25 #include "xfs_zones.h"
26 #include "xfs_trace.h"
27 #include "xfs_mru_cache.h"
28
29 static void
xfs_open_zone_free_rcu(struct callback_head * cb)30 xfs_open_zone_free_rcu(
31 struct callback_head *cb)
32 {
33 struct xfs_open_zone *oz = container_of(cb, typeof(*oz), oz_rcu);
34
35 xfs_rtgroup_rele(oz->oz_rtg);
36 kfree(oz);
37 }
38
39 void
xfs_open_zone_put(struct xfs_open_zone * oz)40 xfs_open_zone_put(
41 struct xfs_open_zone *oz)
42 {
43 if (atomic_dec_and_test(&oz->oz_ref))
44 call_rcu(&oz->oz_rcu, xfs_open_zone_free_rcu);
45 }
46
47 static inline uint32_t
xfs_zone_bucket(struct xfs_mount * mp,uint32_t used_blocks)48 xfs_zone_bucket(
49 struct xfs_mount *mp,
50 uint32_t used_blocks)
51 {
52 return XFS_ZONE_USED_BUCKETS * used_blocks /
53 mp->m_groups[XG_TYPE_RTG].blocks;
54 }
55
56 static inline void
xfs_zone_add_to_bucket(struct xfs_zone_info * zi,xfs_rgnumber_t rgno,uint32_t to_bucket)57 xfs_zone_add_to_bucket(
58 struct xfs_zone_info *zi,
59 xfs_rgnumber_t rgno,
60 uint32_t to_bucket)
61 {
62 __set_bit(rgno, zi->zi_used_bucket_bitmap[to_bucket]);
63 zi->zi_used_bucket_entries[to_bucket]++;
64 }
65
66 static inline void
xfs_zone_remove_from_bucket(struct xfs_zone_info * zi,xfs_rgnumber_t rgno,uint32_t from_bucket)67 xfs_zone_remove_from_bucket(
68 struct xfs_zone_info *zi,
69 xfs_rgnumber_t rgno,
70 uint32_t from_bucket)
71 {
72 __clear_bit(rgno, zi->zi_used_bucket_bitmap[from_bucket]);
73 zi->zi_used_bucket_entries[from_bucket]--;
74 }
75
76 static void
xfs_zone_account_reclaimable(struct xfs_rtgroup * rtg,uint32_t freed)77 xfs_zone_account_reclaimable(
78 struct xfs_rtgroup *rtg,
79 uint32_t freed)
80 {
81 struct xfs_group *xg = &rtg->rtg_group;
82 struct xfs_mount *mp = rtg_mount(rtg);
83 struct xfs_zone_info *zi = mp->m_zone_info;
84 uint32_t used = rtg_rmap(rtg)->i_used_blocks;
85 xfs_rgnumber_t rgno = rtg_rgno(rtg);
86 uint32_t from_bucket = xfs_zone_bucket(mp, used + freed);
87 uint32_t to_bucket = xfs_zone_bucket(mp, used);
88 bool was_full = (used + freed == rtg_blocks(rtg));
89
90 /*
91 * This can be called from log recovery, where the zone_info structure
92 * hasn't been allocated yet. Skip all work as xfs_mount_zones will
93 * add the zones to the right buckets before the file systems becomes
94 * active.
95 */
96 if (!zi)
97 return;
98
99 if (!used) {
100 /*
101 * The zone is now empty, remove it from the bottom bucket and
102 * trigger a reset.
103 */
104 trace_xfs_zone_emptied(rtg);
105
106 spin_lock(&zi->zi_used_buckets_lock);
107 if (!was_full)
108 xfs_zone_remove_from_bucket(zi, rgno, from_bucket);
109 spin_unlock(&zi->zi_used_buckets_lock);
110
111 spin_lock(&zi->zi_reset_list_lock);
112 xg->xg_next_reset = zi->zi_reset_list;
113 zi->zi_reset_list = xg;
114 spin_unlock(&zi->zi_reset_list_lock);
115
116 if (zi->zi_gc_thread)
117 wake_up_process(zi->zi_gc_thread);
118 } else if (was_full) {
119 /*
120 * The zone transitioned from full, mark it up as reclaimable
121 * and wake up GC which might be waiting for zones to reclaim.
122 */
123 spin_lock(&zi->zi_used_buckets_lock);
124 xfs_zone_add_to_bucket(zi, rgno, to_bucket);
125 spin_unlock(&zi->zi_used_buckets_lock);
126
127 if (zi->zi_gc_thread && xfs_zoned_need_gc(mp))
128 wake_up_process(zi->zi_gc_thread);
129 } else if (to_bucket != from_bucket) {
130 /*
131 * Move the zone to a new bucket if it dropped below the
132 * threshold.
133 */
134 spin_lock(&zi->zi_used_buckets_lock);
135 xfs_zone_add_to_bucket(zi, rgno, to_bucket);
136 xfs_zone_remove_from_bucket(zi, rgno, from_bucket);
137 spin_unlock(&zi->zi_used_buckets_lock);
138 }
139 }
140
141 /*
142 * Check if we have any zones that can be reclaimed by looking at the entry
143 * counters for the zone buckets.
144 */
145 bool
xfs_zoned_have_reclaimable(struct xfs_zone_info * zi)146 xfs_zoned_have_reclaimable(
147 struct xfs_zone_info *zi)
148 {
149 int i;
150
151 spin_lock(&zi->zi_used_buckets_lock);
152 for (i = 0; i < XFS_ZONE_USED_BUCKETS; i++) {
153 if (zi->zi_used_bucket_entries[i]) {
154 spin_unlock(&zi->zi_used_buckets_lock);
155 return true;
156 }
157 }
158 spin_unlock(&zi->zi_used_buckets_lock);
159
160 return false;
161 }
162
163 static void
xfs_open_zone_mark_full(struct xfs_open_zone * oz)164 xfs_open_zone_mark_full(
165 struct xfs_open_zone *oz)
166 {
167 struct xfs_rtgroup *rtg = oz->oz_rtg;
168 struct xfs_mount *mp = rtg_mount(rtg);
169 struct xfs_zone_info *zi = mp->m_zone_info;
170 uint32_t used = rtg_rmap(rtg)->i_used_blocks;
171
172 trace_xfs_zone_full(rtg);
173
174 WRITE_ONCE(rtg->rtg_open_zone, NULL);
175
176 spin_lock(&zi->zi_open_zones_lock);
177 if (oz->oz_is_gc) {
178 ASSERT(current == zi->zi_gc_thread);
179 zi->zi_open_gc_zone = NULL;
180 } else {
181 zi->zi_nr_open_zones--;
182 list_del_init(&oz->oz_entry);
183 }
184 spin_unlock(&zi->zi_open_zones_lock);
185 xfs_open_zone_put(oz);
186
187 wake_up_all(&zi->zi_zone_wait);
188 if (used < rtg_blocks(rtg))
189 xfs_zone_account_reclaimable(rtg, rtg_blocks(rtg) - used);
190 }
191
192 static void
xfs_zone_record_blocks(struct xfs_trans * tp,struct xfs_open_zone * oz,xfs_fsblock_t fsbno,xfs_filblks_t len)193 xfs_zone_record_blocks(
194 struct xfs_trans *tp,
195 struct xfs_open_zone *oz,
196 xfs_fsblock_t fsbno,
197 xfs_filblks_t len)
198 {
199 struct xfs_mount *mp = tp->t_mountp;
200 struct xfs_rtgroup *rtg = oz->oz_rtg;
201 struct xfs_inode *rmapip = rtg_rmap(rtg);
202
203 trace_xfs_zone_record_blocks(oz, xfs_rtb_to_rgbno(mp, fsbno), len);
204
205 xfs_rtgroup_lock(rtg, XFS_RTGLOCK_RMAP);
206 xfs_rtgroup_trans_join(tp, rtg, XFS_RTGLOCK_RMAP);
207 rmapip->i_used_blocks += len;
208 ASSERT(rmapip->i_used_blocks <= rtg_blocks(rtg));
209 oz->oz_written += len;
210 if (oz->oz_written == rtg_blocks(rtg))
211 xfs_open_zone_mark_full(oz);
212 xfs_trans_log_inode(tp, rmapip, XFS_ILOG_CORE);
213 }
214
215 /*
216 * Called for blocks that have been written to disk, but not actually linked to
217 * an inode, which can happen when garbage collection races with user data
218 * writes to a file.
219 */
220 static void
xfs_zone_skip_blocks(struct xfs_open_zone * oz,xfs_filblks_t len)221 xfs_zone_skip_blocks(
222 struct xfs_open_zone *oz,
223 xfs_filblks_t len)
224 {
225 struct xfs_rtgroup *rtg = oz->oz_rtg;
226
227 trace_xfs_zone_skip_blocks(oz, 0, len);
228
229 xfs_rtgroup_lock(rtg, XFS_RTGLOCK_RMAP);
230 oz->oz_written += len;
231 if (oz->oz_written == rtg_blocks(rtg))
232 xfs_open_zone_mark_full(oz);
233 xfs_rtgroup_unlock(rtg, XFS_RTGLOCK_RMAP);
234
235 xfs_add_frextents(rtg_mount(rtg), len);
236 }
237
238 static int
xfs_zoned_map_extent(struct xfs_trans * tp,struct xfs_inode * ip,struct xfs_bmbt_irec * new,struct xfs_open_zone * oz,xfs_fsblock_t old_startblock)239 xfs_zoned_map_extent(
240 struct xfs_trans *tp,
241 struct xfs_inode *ip,
242 struct xfs_bmbt_irec *new,
243 struct xfs_open_zone *oz,
244 xfs_fsblock_t old_startblock)
245 {
246 struct xfs_bmbt_irec data;
247 int nmaps = 1;
248 int error;
249
250 /* Grab the corresponding mapping in the data fork. */
251 error = xfs_bmapi_read(ip, new->br_startoff, new->br_blockcount, &data,
252 &nmaps, 0);
253 if (error)
254 return error;
255
256 /*
257 * Cap the update to the existing extent in the data fork because we can
258 * only overwrite one extent at a time.
259 */
260 ASSERT(new->br_blockcount >= data.br_blockcount);
261 new->br_blockcount = data.br_blockcount;
262
263 /*
264 * If a data write raced with this GC write, keep the existing data in
265 * the data fork, mark our newly written GC extent as reclaimable, then
266 * move on to the next extent.
267 *
268 * Note that this can also happen when racing with operations that do
269 * not actually invalidate the data, but just move it to a different
270 * inode (XFS_IOC_EXCHANGE_RANGE), or to a different offset inside the
271 * inode (FALLOC_FL_COLLAPSE_RANGE / FALLOC_FL_INSERT_RANGE). If the
272 * data was just moved around, GC fails to free the zone, but the zone
273 * becomes a GC candidate again as soon as all previous GC I/O has
274 * finished and these blocks will be moved out eventually.
275 */
276 if (old_startblock != NULLFSBLOCK &&
277 old_startblock != data.br_startblock)
278 goto skip;
279
280 trace_xfs_reflink_cow_remap_from(ip, new);
281 trace_xfs_reflink_cow_remap_to(ip, &data);
282
283 error = xfs_iext_count_extend(tp, ip, XFS_DATA_FORK,
284 XFS_IEXT_REFLINK_END_COW_CNT);
285 if (error)
286 return error;
287
288 if (data.br_startblock != HOLESTARTBLOCK) {
289 ASSERT(data.br_startblock != DELAYSTARTBLOCK);
290 ASSERT(!isnullstartblock(data.br_startblock));
291
292 xfs_bmap_unmap_extent(tp, ip, XFS_DATA_FORK, &data);
293 if (xfs_is_reflink_inode(ip)) {
294 xfs_refcount_decrease_extent(tp, true, &data);
295 } else {
296 error = xfs_free_extent_later(tp, data.br_startblock,
297 data.br_blockcount, NULL,
298 XFS_AG_RESV_NONE,
299 XFS_FREE_EXTENT_REALTIME);
300 if (error)
301 return error;
302 }
303 }
304
305 xfs_zone_record_blocks(tp, oz, new->br_startblock, new->br_blockcount);
306
307 /* Map the new blocks into the data fork. */
308 xfs_bmap_map_extent(tp, ip, XFS_DATA_FORK, new);
309 return 0;
310
311 skip:
312 trace_xfs_reflink_cow_remap_skip(ip, new);
313 xfs_zone_skip_blocks(oz, new->br_blockcount);
314 return 0;
315 }
316
317 int
xfs_zoned_end_io(struct xfs_inode * ip,xfs_off_t offset,xfs_off_t count,xfs_daddr_t daddr,struct xfs_open_zone * oz,xfs_fsblock_t old_startblock)318 xfs_zoned_end_io(
319 struct xfs_inode *ip,
320 xfs_off_t offset,
321 xfs_off_t count,
322 xfs_daddr_t daddr,
323 struct xfs_open_zone *oz,
324 xfs_fsblock_t old_startblock)
325 {
326 struct xfs_mount *mp = ip->i_mount;
327 xfs_fileoff_t end_fsb = XFS_B_TO_FSB(mp, offset + count);
328 struct xfs_bmbt_irec new = {
329 .br_startoff = XFS_B_TO_FSBT(mp, offset),
330 .br_startblock = xfs_daddr_to_rtb(mp, daddr),
331 .br_state = XFS_EXT_NORM,
332 };
333 unsigned int resblks =
334 XFS_EXTENTADD_SPACE_RES(mp, XFS_DATA_FORK);
335 struct xfs_trans *tp;
336 int error;
337
338 if (xfs_is_shutdown(mp))
339 return -EIO;
340
341 while (new.br_startoff < end_fsb) {
342 new.br_blockcount = end_fsb - new.br_startoff;
343
344 error = xfs_trans_alloc(mp, &M_RES(mp)->tr_write, resblks, 0,
345 XFS_TRANS_RESERVE | XFS_TRANS_RES_FDBLKS, &tp);
346 if (error)
347 return error;
348 xfs_ilock(ip, XFS_ILOCK_EXCL);
349 xfs_trans_ijoin(tp, ip, 0);
350
351 error = xfs_zoned_map_extent(tp, ip, &new, oz, old_startblock);
352 if (error)
353 xfs_trans_cancel(tp);
354 else
355 error = xfs_trans_commit(tp);
356 xfs_iunlock(ip, XFS_ILOCK_EXCL);
357 if (error)
358 return error;
359
360 new.br_startoff += new.br_blockcount;
361 new.br_startblock += new.br_blockcount;
362 if (old_startblock != NULLFSBLOCK)
363 old_startblock += new.br_blockcount;
364 }
365
366 return 0;
367 }
368
369 /*
370 * "Free" blocks allocated in a zone.
371 *
372 * Just decrement the used blocks counter and report the space as freed.
373 */
374 int
xfs_zone_free_blocks(struct xfs_trans * tp,struct xfs_rtgroup * rtg,xfs_fsblock_t fsbno,xfs_filblks_t len)375 xfs_zone_free_blocks(
376 struct xfs_trans *tp,
377 struct xfs_rtgroup *rtg,
378 xfs_fsblock_t fsbno,
379 xfs_filblks_t len)
380 {
381 struct xfs_mount *mp = tp->t_mountp;
382 struct xfs_inode *rmapip = rtg_rmap(rtg);
383
384 xfs_assert_ilocked(rmapip, XFS_ILOCK_EXCL);
385
386 if (len > rmapip->i_used_blocks) {
387 xfs_err(mp,
388 "trying to free more blocks (%lld) than used counter (%u).",
389 len, rmapip->i_used_blocks);
390 ASSERT(len <= rmapip->i_used_blocks);
391 xfs_rtginode_mark_sick(rtg, XFS_RTGI_RMAP);
392 xfs_force_shutdown(mp, SHUTDOWN_CORRUPT_INCORE);
393 return -EFSCORRUPTED;
394 }
395
396 trace_xfs_zone_free_blocks(rtg, xfs_rtb_to_rgbno(mp, fsbno), len);
397
398 rmapip->i_used_blocks -= len;
399 /*
400 * Don't add open zones to the reclaimable buckets. The I/O completion
401 * for writing the last block will take care of accounting for already
402 * unused blocks instead.
403 */
404 if (!READ_ONCE(rtg->rtg_open_zone))
405 xfs_zone_account_reclaimable(rtg, len);
406 xfs_add_frextents(mp, len);
407 xfs_trans_log_inode(tp, rmapip, XFS_ILOG_CORE);
408 return 0;
409 }
410
411 static struct xfs_group *
xfs_find_free_zone(struct xfs_mount * mp,unsigned long start,unsigned long end)412 xfs_find_free_zone(
413 struct xfs_mount *mp,
414 unsigned long start,
415 unsigned long end)
416 {
417 struct xfs_zone_info *zi = mp->m_zone_info;
418 XA_STATE (xas, &mp->m_groups[XG_TYPE_RTG].xa, start);
419 struct xfs_group *xg;
420
421 xas_lock(&xas);
422 xas_for_each_marked(&xas, xg, end, XFS_RTG_FREE)
423 if (atomic_inc_not_zero(&xg->xg_active_ref))
424 goto found;
425 xas_unlock(&xas);
426 return NULL;
427
428 found:
429 xas_clear_mark(&xas, XFS_RTG_FREE);
430 atomic_dec(&zi->zi_nr_free_zones);
431 zi->zi_free_zone_cursor = xg->xg_gno;
432 xas_unlock(&xas);
433 return xg;
434 }
435
436 static struct xfs_open_zone *
xfs_init_open_zone(struct xfs_rtgroup * rtg,xfs_rgblock_t write_pointer,enum rw_hint write_hint,bool is_gc)437 xfs_init_open_zone(
438 struct xfs_rtgroup *rtg,
439 xfs_rgblock_t write_pointer,
440 enum rw_hint write_hint,
441 bool is_gc)
442 {
443 struct xfs_open_zone *oz;
444
445 oz = kzalloc(sizeof(*oz), GFP_NOFS | __GFP_NOFAIL);
446 spin_lock_init(&oz->oz_alloc_lock);
447 atomic_set(&oz->oz_ref, 1);
448 oz->oz_rtg = rtg;
449 oz->oz_allocated = write_pointer;
450 oz->oz_written = write_pointer;
451 oz->oz_write_hint = write_hint;
452 oz->oz_is_gc = is_gc;
453
454 /*
455 * All dereferences of rtg->rtg_open_zone hold the ILOCK for the rmap
456 * inode, but we don't really want to take that here because we are
457 * under the zone_list_lock. Ensure the pointer is only set for a fully
458 * initialized open zone structure so that a racy lookup finding it is
459 * fine.
460 */
461 WRITE_ONCE(rtg->rtg_open_zone, oz);
462 return oz;
463 }
464
465 /*
466 * Find a completely free zone, open it, and return a reference.
467 */
468 struct xfs_open_zone *
xfs_open_zone(struct xfs_mount * mp,enum rw_hint write_hint,bool is_gc)469 xfs_open_zone(
470 struct xfs_mount *mp,
471 enum rw_hint write_hint,
472 bool is_gc)
473 {
474 struct xfs_zone_info *zi = mp->m_zone_info;
475 struct xfs_group *xg;
476
477 xg = xfs_find_free_zone(mp, zi->zi_free_zone_cursor, ULONG_MAX);
478 if (!xg)
479 xg = xfs_find_free_zone(mp, 0, zi->zi_free_zone_cursor);
480 if (!xg)
481 return NULL;
482
483 set_current_state(TASK_RUNNING);
484 return xfs_init_open_zone(to_rtg(xg), 0, write_hint, is_gc);
485 }
486
487 static struct xfs_open_zone *
xfs_try_open_zone(struct xfs_mount * mp,enum rw_hint write_hint)488 xfs_try_open_zone(
489 struct xfs_mount *mp,
490 enum rw_hint write_hint)
491 {
492 struct xfs_zone_info *zi = mp->m_zone_info;
493 struct xfs_open_zone *oz;
494
495 if (zi->zi_nr_open_zones >= mp->m_max_open_zones - XFS_OPEN_GC_ZONES)
496 return NULL;
497 if (atomic_read(&zi->zi_nr_free_zones) <
498 XFS_GC_ZONES - XFS_OPEN_GC_ZONES)
499 return NULL;
500
501 /*
502 * Increment the open zone count to reserve our slot before dropping
503 * zi_open_zones_lock.
504 */
505 zi->zi_nr_open_zones++;
506 spin_unlock(&zi->zi_open_zones_lock);
507 oz = xfs_open_zone(mp, write_hint, false);
508 spin_lock(&zi->zi_open_zones_lock);
509 if (!oz) {
510 zi->zi_nr_open_zones--;
511 return NULL;
512 }
513
514 atomic_inc(&oz->oz_ref);
515 list_add_tail(&oz->oz_entry, &zi->zi_open_zones);
516
517 /*
518 * If this was the last free zone, other waiters might be waiting
519 * on us to write to it as well.
520 */
521 wake_up_all(&zi->zi_zone_wait);
522
523 if (xfs_zoned_need_gc(mp))
524 wake_up_process(zi->zi_gc_thread);
525
526 trace_xfs_zone_opened(oz->oz_rtg);
527 return oz;
528 }
529
530 enum xfs_zone_alloc_score {
531 /* Any open zone will do it, we're desperate */
532 XFS_ZONE_ALLOC_ANY = 0,
533
534 /* It better fit somehow */
535 XFS_ZONE_ALLOC_OK = 1,
536
537 /* Only reuse a zone if it fits really well. */
538 XFS_ZONE_ALLOC_GOOD = 2,
539 };
540
541 /*
542 * Life time hint co-location matrix. Fields not set default to 0
543 * aka XFS_ZONE_ALLOC_ANY.
544 */
545 static const unsigned int
546 xfs_zoned_hint_score[WRITE_LIFE_HINT_NR][WRITE_LIFE_HINT_NR] = {
547 [WRITE_LIFE_NOT_SET] = {
548 [WRITE_LIFE_NOT_SET] = XFS_ZONE_ALLOC_OK,
549 },
550 [WRITE_LIFE_NONE] = {
551 [WRITE_LIFE_NONE] = XFS_ZONE_ALLOC_OK,
552 },
553 [WRITE_LIFE_SHORT] = {
554 [WRITE_LIFE_SHORT] = XFS_ZONE_ALLOC_GOOD,
555 },
556 [WRITE_LIFE_MEDIUM] = {
557 [WRITE_LIFE_MEDIUM] = XFS_ZONE_ALLOC_GOOD,
558 },
559 [WRITE_LIFE_LONG] = {
560 [WRITE_LIFE_LONG] = XFS_ZONE_ALLOC_OK,
561 [WRITE_LIFE_EXTREME] = XFS_ZONE_ALLOC_OK,
562 },
563 [WRITE_LIFE_EXTREME] = {
564 [WRITE_LIFE_LONG] = XFS_ZONE_ALLOC_OK,
565 [WRITE_LIFE_EXTREME] = XFS_ZONE_ALLOC_OK,
566 },
567 };
568
569 static bool
xfs_try_use_zone(struct xfs_zone_info * zi,enum rw_hint file_hint,struct xfs_open_zone * oz,unsigned int goodness)570 xfs_try_use_zone(
571 struct xfs_zone_info *zi,
572 enum rw_hint file_hint,
573 struct xfs_open_zone *oz,
574 unsigned int goodness)
575 {
576 if (oz->oz_allocated == rtg_blocks(oz->oz_rtg))
577 return false;
578
579 if (xfs_zoned_hint_score[oz->oz_write_hint][file_hint] < goodness)
580 return false;
581
582 if (!atomic_inc_not_zero(&oz->oz_ref))
583 return false;
584
585 /*
586 * If we have a hint set for the data, use that for the zone even if
587 * some data was written already without any hint set, but don't change
588 * the temperature after that as that would make little sense without
589 * tracking per-temperature class written block counts, which is
590 * probably overkill anyway.
591 */
592 if (file_hint != WRITE_LIFE_NOT_SET &&
593 oz->oz_write_hint == WRITE_LIFE_NOT_SET)
594 oz->oz_write_hint = file_hint;
595
596 /*
597 * If we couldn't match by inode or life time we just pick the first
598 * zone with enough space above. For that we want the least busy zone
599 * for some definition of "least" busy. For now this simple LRU
600 * algorithm that rotates every zone to the end of the list will do it,
601 * even if it isn't exactly cache friendly.
602 */
603 if (!list_is_last(&oz->oz_entry, &zi->zi_open_zones))
604 list_move_tail(&oz->oz_entry, &zi->zi_open_zones);
605 return true;
606 }
607
608 static struct xfs_open_zone *
xfs_select_open_zone_lru(struct xfs_zone_info * zi,enum rw_hint file_hint,unsigned int goodness)609 xfs_select_open_zone_lru(
610 struct xfs_zone_info *zi,
611 enum rw_hint file_hint,
612 unsigned int goodness)
613 {
614 struct xfs_open_zone *oz;
615
616 lockdep_assert_held(&zi->zi_open_zones_lock);
617
618 list_for_each_entry(oz, &zi->zi_open_zones, oz_entry)
619 if (xfs_try_use_zone(zi, file_hint, oz, goodness))
620 return oz;
621
622 cond_resched_lock(&zi->zi_open_zones_lock);
623 return NULL;
624 }
625
626 static struct xfs_open_zone *
xfs_select_open_zone_mru(struct xfs_zone_info * zi,enum rw_hint file_hint)627 xfs_select_open_zone_mru(
628 struct xfs_zone_info *zi,
629 enum rw_hint file_hint)
630 {
631 struct xfs_open_zone *oz;
632
633 lockdep_assert_held(&zi->zi_open_zones_lock);
634
635 list_for_each_entry_reverse(oz, &zi->zi_open_zones, oz_entry)
636 if (xfs_try_use_zone(zi, file_hint, oz, XFS_ZONE_ALLOC_OK))
637 return oz;
638
639 cond_resched_lock(&zi->zi_open_zones_lock);
640 return NULL;
641 }
642
xfs_inode_write_hint(struct xfs_inode * ip)643 static inline enum rw_hint xfs_inode_write_hint(struct xfs_inode *ip)
644 {
645 if (xfs_has_nolifetime(ip->i_mount))
646 return WRITE_LIFE_NOT_SET;
647 return VFS_I(ip)->i_write_hint;
648 }
649
650 /*
651 * Try to tightly pack small files that are written back after they were closed
652 * instead of trying to open new zones for them or spread them to the least
653 * recently used zone. This optimizes the data layout for workloads that untar
654 * or copy a lot of small files. Right now this does not separate multiple such
655 * streams.
656 */
xfs_zoned_pack_tight(struct xfs_inode * ip)657 static inline bool xfs_zoned_pack_tight(struct xfs_inode *ip)
658 {
659 struct xfs_mount *mp = ip->i_mount;
660 size_t zone_capacity =
661 XFS_FSB_TO_B(mp, mp->m_groups[XG_TYPE_RTG].blocks);
662
663 /*
664 * Do not pack write files that are already using a full zone to avoid
665 * fragmentation.
666 */
667 if (i_size_read(VFS_I(ip)) >= zone_capacity)
668 return false;
669
670 return !inode_is_open_for_write(VFS_I(ip)) &&
671 !(ip->i_diflags & XFS_DIFLAG_APPEND);
672 }
673
674 static struct xfs_open_zone *
xfs_select_zone_nowait(struct xfs_mount * mp,enum rw_hint write_hint,bool pack_tight)675 xfs_select_zone_nowait(
676 struct xfs_mount *mp,
677 enum rw_hint write_hint,
678 bool pack_tight)
679 {
680 struct xfs_zone_info *zi = mp->m_zone_info;
681 struct xfs_open_zone *oz = NULL;
682
683 if (xfs_is_shutdown(mp))
684 return NULL;
685
686 /*
687 * Try to fill up open zones with matching temperature if available. It
688 * is better to try to co-locate data when this is favorable, so we can
689 * activate empty zones when it is statistically better to separate
690 * data.
691 */
692 spin_lock(&zi->zi_open_zones_lock);
693 oz = xfs_select_open_zone_lru(zi, write_hint, XFS_ZONE_ALLOC_GOOD);
694 if (oz)
695 goto out_unlock;
696
697 if (pack_tight)
698 oz = xfs_select_open_zone_mru(zi, write_hint);
699 if (oz)
700 goto out_unlock;
701
702 /*
703 * See if we can open a new zone and use that so that data for different
704 * files is mixed as little as possible.
705 */
706 oz = xfs_try_open_zone(mp, write_hint);
707 if (oz)
708 goto out_unlock;
709
710 /*
711 * Try to find an zone that is an ok match to colocate data with.
712 */
713 oz = xfs_select_open_zone_lru(zi, write_hint, XFS_ZONE_ALLOC_OK);
714 if (oz)
715 goto out_unlock;
716
717 /*
718 * Pick the least recently used zone, regardless of hint match
719 */
720 oz = xfs_select_open_zone_lru(zi, write_hint, XFS_ZONE_ALLOC_ANY);
721 out_unlock:
722 spin_unlock(&zi->zi_open_zones_lock);
723 return oz;
724 }
725
726 static struct xfs_open_zone *
xfs_select_zone(struct xfs_mount * mp,enum rw_hint write_hint,bool pack_tight)727 xfs_select_zone(
728 struct xfs_mount *mp,
729 enum rw_hint write_hint,
730 bool pack_tight)
731 {
732 struct xfs_zone_info *zi = mp->m_zone_info;
733 DEFINE_WAIT (wait);
734 struct xfs_open_zone *oz;
735
736 oz = xfs_select_zone_nowait(mp, write_hint, pack_tight);
737 if (oz)
738 return oz;
739
740 for (;;) {
741 prepare_to_wait(&zi->zi_zone_wait, &wait, TASK_UNINTERRUPTIBLE);
742 oz = xfs_select_zone_nowait(mp, write_hint, pack_tight);
743 if (oz || xfs_is_shutdown(mp))
744 break;
745 schedule();
746 }
747 finish_wait(&zi->zi_zone_wait, &wait);
748 return oz;
749 }
750
751 static unsigned int
xfs_zone_alloc_blocks(struct xfs_open_zone * oz,xfs_filblks_t count_fsb,sector_t * sector,bool * is_seq)752 xfs_zone_alloc_blocks(
753 struct xfs_open_zone *oz,
754 xfs_filblks_t count_fsb,
755 sector_t *sector,
756 bool *is_seq)
757 {
758 struct xfs_rtgroup *rtg = oz->oz_rtg;
759 struct xfs_mount *mp = rtg_mount(rtg);
760 xfs_rgblock_t allocated;
761
762 spin_lock(&oz->oz_alloc_lock);
763 count_fsb = min3(count_fsb, XFS_MAX_BMBT_EXTLEN,
764 (xfs_filblks_t)rtg_blocks(rtg) - oz->oz_allocated);
765 if (!count_fsb) {
766 spin_unlock(&oz->oz_alloc_lock);
767 return 0;
768 }
769 allocated = oz->oz_allocated;
770 oz->oz_allocated += count_fsb;
771 spin_unlock(&oz->oz_alloc_lock);
772
773 trace_xfs_zone_alloc_blocks(oz, allocated, count_fsb);
774
775 *sector = xfs_gbno_to_daddr(&rtg->rtg_group, 0);
776 *is_seq = bdev_zone_is_seq(mp->m_rtdev_targp->bt_bdev, *sector);
777 if (!*is_seq)
778 *sector += XFS_FSB_TO_BB(mp, allocated);
779 return XFS_FSB_TO_B(mp, count_fsb);
780 }
781
782 void
xfs_mark_rtg_boundary(struct iomap_ioend * ioend)783 xfs_mark_rtg_boundary(
784 struct iomap_ioend *ioend)
785 {
786 struct xfs_mount *mp = XFS_I(ioend->io_inode)->i_mount;
787 sector_t sector = ioend->io_bio.bi_iter.bi_sector;
788
789 if (xfs_rtb_to_rgbno(mp, xfs_daddr_to_rtb(mp, sector)) == 0)
790 ioend->io_flags |= IOMAP_IOEND_BOUNDARY;
791 }
792
793 /*
794 * Check if we have a cached last open zone available for the inode and
795 * if yes return a reference to it.
796 */
797 static struct xfs_open_zone *
xfs_get_cached_zone(struct xfs_inode * ip)798 xfs_get_cached_zone(
799 struct xfs_inode *ip)
800 {
801 struct xfs_open_zone *oz;
802
803 rcu_read_lock();
804 oz = VFS_I(ip)->i_private;
805 if (oz) {
806 /*
807 * GC only steals open zones at mount time, so no GC zones
808 * should end up in the cache.
809 */
810 ASSERT(!oz->oz_is_gc);
811 if (!atomic_inc_not_zero(&oz->oz_ref))
812 oz = NULL;
813 }
814 rcu_read_unlock();
815
816 return oz;
817 }
818
819 /*
820 * Stash our zone in the inode so that is is reused for future allocations.
821 *
822 * The open_zone structure will be pinned until either the inode is freed or
823 * until the cached open zone is replaced with a different one because the
824 * current one was full when we tried to use it. This means we keep any
825 * open zone around forever as long as any inode that used it for the last
826 * write is cached, which slightly increases the memory use of cached inodes
827 * that were every written to, but significantly simplifies the cached zone
828 * lookup. Because the open_zone is clearly marked as full when all data
829 * in the underlying RTG was written, the caching is always safe.
830 */
831 static void
xfs_set_cached_zone(struct xfs_inode * ip,struct xfs_open_zone * oz)832 xfs_set_cached_zone(
833 struct xfs_inode *ip,
834 struct xfs_open_zone *oz)
835 {
836 struct xfs_open_zone *old_oz;
837
838 atomic_inc(&oz->oz_ref);
839 old_oz = xchg(&VFS_I(ip)->i_private, oz);
840 if (old_oz)
841 xfs_open_zone_put(old_oz);
842 }
843
844 static void
xfs_submit_zoned_bio(struct iomap_ioend * ioend,struct xfs_open_zone * oz,bool is_seq)845 xfs_submit_zoned_bio(
846 struct iomap_ioend *ioend,
847 struct xfs_open_zone *oz,
848 bool is_seq)
849 {
850 ioend->io_bio.bi_iter.bi_sector = ioend->io_sector;
851 ioend->io_private = oz;
852 atomic_inc(&oz->oz_ref); /* for xfs_zoned_end_io */
853
854 if (is_seq) {
855 ioend->io_bio.bi_opf &= ~REQ_OP_WRITE;
856 ioend->io_bio.bi_opf |= REQ_OP_ZONE_APPEND;
857 } else {
858 xfs_mark_rtg_boundary(ioend);
859 }
860
861 submit_bio(&ioend->io_bio);
862 }
863
864 void
xfs_zone_alloc_and_submit(struct iomap_ioend * ioend,struct xfs_open_zone ** oz)865 xfs_zone_alloc_and_submit(
866 struct iomap_ioend *ioend,
867 struct xfs_open_zone **oz)
868 {
869 struct xfs_inode *ip = XFS_I(ioend->io_inode);
870 struct xfs_mount *mp = ip->i_mount;
871 enum rw_hint write_hint = xfs_inode_write_hint(ip);
872 bool pack_tight = xfs_zoned_pack_tight(ip);
873 unsigned int alloc_len;
874 struct iomap_ioend *split;
875 bool is_seq;
876
877 if (xfs_is_shutdown(mp))
878 goto out_error;
879
880 /*
881 * If we don't have a locally cached zone in this write context, see if
882 * the inode is still associated with a zone and use that if so.
883 */
884 if (!*oz)
885 *oz = xfs_get_cached_zone(ip);
886
887 if (!*oz) {
888 select_zone:
889 *oz = xfs_select_zone(mp, write_hint, pack_tight);
890 if (!*oz)
891 goto out_error;
892 xfs_set_cached_zone(ip, *oz);
893 }
894
895 alloc_len = xfs_zone_alloc_blocks(*oz, XFS_B_TO_FSB(mp, ioend->io_size),
896 &ioend->io_sector, &is_seq);
897 if (!alloc_len) {
898 xfs_open_zone_put(*oz);
899 goto select_zone;
900 }
901
902 while ((split = iomap_split_ioend(ioend, alloc_len, is_seq))) {
903 if (IS_ERR(split))
904 goto out_split_error;
905 alloc_len -= split->io_bio.bi_iter.bi_size;
906 xfs_submit_zoned_bio(split, *oz, is_seq);
907 if (!alloc_len) {
908 xfs_open_zone_put(*oz);
909 goto select_zone;
910 }
911 }
912
913 xfs_submit_zoned_bio(ioend, *oz, is_seq);
914 return;
915
916 out_split_error:
917 ioend->io_bio.bi_status = errno_to_blk_status(PTR_ERR(split));
918 out_error:
919 bio_io_error(&ioend->io_bio);
920 }
921
922 /*
923 * Wake up all threads waiting for a zoned space allocation when the file system
924 * is shut down.
925 */
926 void
xfs_zoned_wake_all(struct xfs_mount * mp)927 xfs_zoned_wake_all(
928 struct xfs_mount *mp)
929 {
930 /*
931 * Don't wake up if there is no m_zone_info. This is complicated by the
932 * fact that unmount can't atomically clear m_zone_info and thus we need
933 * to check SB_ACTIVE for that, but mount temporarily enables SB_ACTIVE
934 * during log recovery so we can't entirely rely on that either.
935 */
936 if ((mp->m_super->s_flags & SB_ACTIVE) && mp->m_zone_info)
937 wake_up_all(&mp->m_zone_info->zi_zone_wait);
938 }
939
940 /*
941 * Check if @rgbno in @rgb is a potentially valid block. It might still be
942 * unused, but that information is only found in the rmap.
943 */
944 bool
xfs_zone_rgbno_is_valid(struct xfs_rtgroup * rtg,xfs_rgnumber_t rgbno)945 xfs_zone_rgbno_is_valid(
946 struct xfs_rtgroup *rtg,
947 xfs_rgnumber_t rgbno)
948 {
949 lockdep_assert_held(&rtg_rmap(rtg)->i_lock);
950
951 if (rtg->rtg_open_zone)
952 return rgbno < rtg->rtg_open_zone->oz_allocated;
953 return !xa_get_mark(&rtg_mount(rtg)->m_groups[XG_TYPE_RTG].xa,
954 rtg_rgno(rtg), XFS_RTG_FREE);
955 }
956
957 static void
xfs_free_open_zones(struct xfs_zone_info * zi)958 xfs_free_open_zones(
959 struct xfs_zone_info *zi)
960 {
961 struct xfs_open_zone *oz;
962
963 spin_lock(&zi->zi_open_zones_lock);
964 while ((oz = list_first_entry_or_null(&zi->zi_open_zones,
965 struct xfs_open_zone, oz_entry))) {
966 list_del(&oz->oz_entry);
967 xfs_open_zone_put(oz);
968 }
969 spin_unlock(&zi->zi_open_zones_lock);
970
971 /*
972 * Wait for all open zones to be freed so that they drop the group
973 * references:
974 */
975 rcu_barrier();
976 }
977
978 struct xfs_init_zones {
979 struct xfs_mount *mp;
980 uint64_t available;
981 uint64_t reclaimable;
982 };
983
984 static int
xfs_init_zone(struct xfs_init_zones * iz,struct xfs_rtgroup * rtg,struct blk_zone * zone)985 xfs_init_zone(
986 struct xfs_init_zones *iz,
987 struct xfs_rtgroup *rtg,
988 struct blk_zone *zone)
989 {
990 struct xfs_mount *mp = rtg_mount(rtg);
991 struct xfs_zone_info *zi = mp->m_zone_info;
992 uint32_t used = rtg_rmap(rtg)->i_used_blocks;
993 xfs_rgblock_t write_pointer, highest_rgbno;
994 int error;
995
996 if (zone && !xfs_zone_validate(zone, rtg, &write_pointer))
997 return -EFSCORRUPTED;
998
999 /*
1000 * For sequential write required zones we retrieved the hardware write
1001 * pointer above.
1002 *
1003 * For conventional zones or conventional devices we don't have that
1004 * luxury. Instead query the rmap to find the highest recorded block
1005 * and set the write pointer to the block after that. In case of a
1006 * power loss this misses blocks where the data I/O has completed but
1007 * not recorded in the rmap yet, and it also rewrites blocks if the most
1008 * recently written ones got deleted again before unmount, but this is
1009 * the best we can do without hardware support.
1010 */
1011 if (!zone || zone->cond == BLK_ZONE_COND_NOT_WP) {
1012 xfs_rtgroup_lock(rtg, XFS_RTGLOCK_RMAP);
1013 highest_rgbno = xfs_rtrmap_highest_rgbno(rtg);
1014 if (highest_rgbno == NULLRGBLOCK)
1015 write_pointer = 0;
1016 else
1017 write_pointer = highest_rgbno + 1;
1018 xfs_rtgroup_unlock(rtg, XFS_RTGLOCK_RMAP);
1019 }
1020
1021 /*
1022 * If there are no used blocks, but the zone is not in empty state yet
1023 * we lost power before the zoned reset. In that case finish the work
1024 * here.
1025 */
1026 if (write_pointer == rtg_blocks(rtg) && used == 0) {
1027 error = xfs_zone_gc_reset_sync(rtg);
1028 if (error)
1029 return error;
1030 write_pointer = 0;
1031 }
1032
1033 if (write_pointer == 0) {
1034 /* zone is empty */
1035 atomic_inc(&zi->zi_nr_free_zones);
1036 xfs_group_set_mark(&rtg->rtg_group, XFS_RTG_FREE);
1037 iz->available += rtg_blocks(rtg);
1038 } else if (write_pointer < rtg_blocks(rtg)) {
1039 /* zone is open */
1040 struct xfs_open_zone *oz;
1041
1042 atomic_inc(&rtg_group(rtg)->xg_active_ref);
1043 oz = xfs_init_open_zone(rtg, write_pointer, WRITE_LIFE_NOT_SET,
1044 false);
1045 list_add_tail(&oz->oz_entry, &zi->zi_open_zones);
1046 zi->zi_nr_open_zones++;
1047
1048 iz->available += (rtg_blocks(rtg) - write_pointer);
1049 iz->reclaimable += write_pointer - used;
1050 } else if (used < rtg_blocks(rtg)) {
1051 /* zone fully written, but has freed blocks */
1052 xfs_zone_account_reclaimable(rtg, rtg_blocks(rtg) - used);
1053 iz->reclaimable += (rtg_blocks(rtg) - used);
1054 }
1055
1056 return 0;
1057 }
1058
1059 static int
xfs_get_zone_info_cb(struct blk_zone * zone,unsigned int idx,void * data)1060 xfs_get_zone_info_cb(
1061 struct blk_zone *zone,
1062 unsigned int idx,
1063 void *data)
1064 {
1065 struct xfs_init_zones *iz = data;
1066 struct xfs_mount *mp = iz->mp;
1067 xfs_fsblock_t zsbno = xfs_daddr_to_rtb(mp, zone->start);
1068 xfs_rgnumber_t rgno;
1069 struct xfs_rtgroup *rtg;
1070 int error;
1071
1072 if (xfs_rtb_to_rgbno(mp, zsbno) != 0) {
1073 xfs_warn(mp, "mismatched zone start 0x%llx.", zsbno);
1074 return -EFSCORRUPTED;
1075 }
1076
1077 rgno = xfs_rtb_to_rgno(mp, zsbno);
1078 rtg = xfs_rtgroup_grab(mp, rgno);
1079 if (!rtg) {
1080 xfs_warn(mp, "realtime group not found for zone %u.", rgno);
1081 return -EFSCORRUPTED;
1082 }
1083 error = xfs_init_zone(iz, rtg, zone);
1084 xfs_rtgroup_rele(rtg);
1085 return error;
1086 }
1087
1088 /*
1089 * Calculate the max open zone limit based on the of number of backing zones
1090 * available.
1091 */
1092 static inline uint32_t
xfs_max_open_zones(struct xfs_mount * mp)1093 xfs_max_open_zones(
1094 struct xfs_mount *mp)
1095 {
1096 unsigned int max_open, max_open_data_zones;
1097
1098 /*
1099 * We need two zones for every open data zone, one in reserve as we
1100 * don't reclaim open zones. One data zone and its spare is included
1101 * in XFS_MIN_ZONES to support at least one user data writer.
1102 */
1103 max_open_data_zones = (mp->m_sb.sb_rgcount - XFS_MIN_ZONES) / 2 + 1;
1104 max_open = max_open_data_zones + XFS_OPEN_GC_ZONES;
1105
1106 /*
1107 * Cap the max open limit to 1/4 of available space. Without this we'd
1108 * run out of easy reclaim targets too quickly and storage devices don't
1109 * handle huge numbers of concurrent write streams overly well.
1110 */
1111 max_open = min(max_open, mp->m_sb.sb_rgcount / 4);
1112
1113 return max(XFS_MIN_OPEN_ZONES, max_open);
1114 }
1115
1116 /*
1117 * Normally we use the open zone limit that the device reports. If there is
1118 * none let the user pick one from the command line.
1119 *
1120 * If the device doesn't report an open zone limit and there is no override,
1121 * allow to hold about a quarter of the zones open. In theory we could allow
1122 * all to be open, but at that point we run into GC deadlocks because we can't
1123 * reclaim open zones.
1124 *
1125 * When used on conventional SSDs a lower open limit is advisable as we'll
1126 * otherwise overwhelm the FTL just as much as a conventional block allocator.
1127 *
1128 * Note: To debug the open zone management code, force max_open to 1 here.
1129 */
1130 static int
xfs_calc_open_zones(struct xfs_mount * mp)1131 xfs_calc_open_zones(
1132 struct xfs_mount *mp)
1133 {
1134 struct block_device *bdev = mp->m_rtdev_targp->bt_bdev;
1135 unsigned int bdev_open_zones = bdev_max_open_zones(bdev);
1136
1137 if (!mp->m_max_open_zones) {
1138 if (bdev_open_zones)
1139 mp->m_max_open_zones = bdev_open_zones;
1140 else
1141 mp->m_max_open_zones = XFS_DEFAULT_MAX_OPEN_ZONES;
1142 }
1143
1144 if (mp->m_max_open_zones < XFS_MIN_OPEN_ZONES) {
1145 xfs_notice(mp, "need at least %u open zones.",
1146 XFS_MIN_OPEN_ZONES);
1147 return -EIO;
1148 }
1149
1150 if (bdev_open_zones && bdev_open_zones < mp->m_max_open_zones) {
1151 mp->m_max_open_zones = bdev_open_zones;
1152 xfs_info(mp, "limiting open zones to %u due to hardware limit.\n",
1153 bdev_open_zones);
1154 }
1155
1156 if (mp->m_max_open_zones > xfs_max_open_zones(mp)) {
1157 mp->m_max_open_zones = xfs_max_open_zones(mp);
1158 xfs_info(mp,
1159 "limiting open zones to %u due to total zone count (%u)",
1160 mp->m_max_open_zones, mp->m_sb.sb_rgcount);
1161 }
1162
1163 return 0;
1164 }
1165
1166 static unsigned long *
xfs_alloc_bucket_bitmap(struct xfs_mount * mp)1167 xfs_alloc_bucket_bitmap(
1168 struct xfs_mount *mp)
1169 {
1170 return kvmalloc_array(BITS_TO_LONGS(mp->m_sb.sb_rgcount),
1171 sizeof(unsigned long), GFP_KERNEL | __GFP_ZERO);
1172 }
1173
1174 static struct xfs_zone_info *
xfs_alloc_zone_info(struct xfs_mount * mp)1175 xfs_alloc_zone_info(
1176 struct xfs_mount *mp)
1177 {
1178 struct xfs_zone_info *zi;
1179 int i;
1180
1181 zi = kzalloc(sizeof(*zi), GFP_KERNEL);
1182 if (!zi)
1183 return NULL;
1184 INIT_LIST_HEAD(&zi->zi_open_zones);
1185 INIT_LIST_HEAD(&zi->zi_reclaim_reservations);
1186 spin_lock_init(&zi->zi_reset_list_lock);
1187 spin_lock_init(&zi->zi_open_zones_lock);
1188 spin_lock_init(&zi->zi_reservation_lock);
1189 init_waitqueue_head(&zi->zi_zone_wait);
1190 spin_lock_init(&zi->zi_used_buckets_lock);
1191 for (i = 0; i < XFS_ZONE_USED_BUCKETS; i++) {
1192 zi->zi_used_bucket_bitmap[i] = xfs_alloc_bucket_bitmap(mp);
1193 if (!zi->zi_used_bucket_bitmap[i])
1194 goto out_free_bitmaps;
1195 }
1196 return zi;
1197
1198 out_free_bitmaps:
1199 while (--i > 0)
1200 kvfree(zi->zi_used_bucket_bitmap[i]);
1201 kfree(zi);
1202 return NULL;
1203 }
1204
1205 static void
xfs_free_zone_info(struct xfs_zone_info * zi)1206 xfs_free_zone_info(
1207 struct xfs_zone_info *zi)
1208 {
1209 int i;
1210
1211 xfs_free_open_zones(zi);
1212 for (i = 0; i < XFS_ZONE_USED_BUCKETS; i++)
1213 kvfree(zi->zi_used_bucket_bitmap[i]);
1214 kfree(zi);
1215 }
1216
1217 int
xfs_mount_zones(struct xfs_mount * mp)1218 xfs_mount_zones(
1219 struct xfs_mount *mp)
1220 {
1221 struct xfs_init_zones iz = {
1222 .mp = mp,
1223 };
1224 struct xfs_buftarg *bt = mp->m_rtdev_targp;
1225 xfs_extlen_t zone_blocks = mp->m_groups[XG_TYPE_RTG].blocks;
1226 int error;
1227
1228 if (!bt) {
1229 xfs_notice(mp, "RT device missing.");
1230 return -EINVAL;
1231 }
1232
1233 if (!xfs_has_rtgroups(mp) || !xfs_has_rmapbt(mp)) {
1234 xfs_notice(mp, "invalid flag combination.");
1235 return -EFSCORRUPTED;
1236 }
1237 if (mp->m_sb.sb_rextsize != 1) {
1238 xfs_notice(mp, "zoned file systems do not support rextsize.");
1239 return -EFSCORRUPTED;
1240 }
1241 if (mp->m_sb.sb_rgcount < XFS_MIN_ZONES) {
1242 xfs_notice(mp,
1243 "zoned file systems need to have at least %u zones.", XFS_MIN_ZONES);
1244 return -EFSCORRUPTED;
1245 }
1246
1247 error = xfs_calc_open_zones(mp);
1248 if (error)
1249 return error;
1250
1251 mp->m_zone_info = xfs_alloc_zone_info(mp);
1252 if (!mp->m_zone_info)
1253 return -ENOMEM;
1254
1255 xfs_info(mp, "%u zones of %u blocks (%u max open zones)",
1256 mp->m_sb.sb_rgcount, zone_blocks, mp->m_max_open_zones);
1257 trace_xfs_zones_mount(mp);
1258
1259 /*
1260 * The writeback code switches between inodes regularly to provide
1261 * fairness. The default lower bound is 4MiB, but for zoned file
1262 * systems we want to increase that both to reduce seeks, but also more
1263 * importantly so that workloads that writes files in a multiple of the
1264 * zone size do not get fragmented and require garbage collection when
1265 * they shouldn't. Increase is to the zone size capped by the max
1266 * extent len.
1267 *
1268 * Note that because s_min_writeback_pages is a superblock field, this
1269 * value also get applied to non-zoned files on the data device if
1270 * there are any. On typical zoned setup all data is on the RT device
1271 * because using the more efficient sequential write required zones
1272 * is the reason for using the zone allocator, and either the RT device
1273 * and the (meta)data device are on the same block device, or the
1274 * (meta)data device is on a fast SSD while the data on the RT device
1275 * is on a SMR HDD. In any combination of the above cases enforcing
1276 * the higher min_writeback_pages for non-RT inodes is either a noop
1277 * or beneficial.
1278 */
1279 mp->m_super->s_min_writeback_pages =
1280 XFS_FSB_TO_B(mp, min(zone_blocks, XFS_MAX_BMBT_EXTLEN)) >>
1281 PAGE_SHIFT;
1282
1283 if (bdev_is_zoned(bt->bt_bdev)) {
1284 error = blkdev_report_zones_cached(bt->bt_bdev,
1285 XFS_FSB_TO_BB(mp, mp->m_sb.sb_rtstart),
1286 mp->m_sb.sb_rgcount, xfs_get_zone_info_cb, &iz);
1287 if (error < 0)
1288 goto out_free_zone_info;
1289 } else {
1290 struct xfs_rtgroup *rtg = NULL;
1291
1292 while ((rtg = xfs_rtgroup_next(mp, rtg))) {
1293 error = xfs_init_zone(&iz, rtg, NULL);
1294 if (error) {
1295 xfs_rtgroup_rele(rtg);
1296 goto out_free_zone_info;
1297 }
1298 }
1299 }
1300
1301 xfs_set_freecounter(mp, XC_FREE_RTAVAILABLE, iz.available);
1302 xfs_set_freecounter(mp, XC_FREE_RTEXTENTS,
1303 iz.available + iz.reclaimable);
1304
1305 /*
1306 * The user may configure GC to free up a percentage of unused blocks.
1307 * By default this is 0. GC will always trigger at the minimum level
1308 * for keeping max_open_zones available for data placement.
1309 */
1310 mp->m_zonegc_low_space = 0;
1311
1312 error = xfs_zone_gc_mount(mp);
1313 if (error)
1314 goto out_free_zone_info;
1315 return 0;
1316
1317 out_free_zone_info:
1318 xfs_free_zone_info(mp->m_zone_info);
1319 return error;
1320 }
1321
1322 void
xfs_unmount_zones(struct xfs_mount * mp)1323 xfs_unmount_zones(
1324 struct xfs_mount *mp)
1325 {
1326 xfs_zone_gc_unmount(mp);
1327 xfs_free_zone_info(mp->m_zone_info);
1328 }
1329