1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * Copyright (C) 2016 Oracle. All Rights Reserved.
4 * Author: Darrick J. Wong <darrick.wong@oracle.com>
5 */
6 #include "xfs_platform.h"
7 #include "xfs_fs.h"
8 #include "xfs_format.h"
9 #include "xfs_log_format.h"
10 #include "xfs_trans_resv.h"
11 #include "xfs_bit.h"
12 #include "xfs_shared.h"
13 #include "xfs_mount.h"
14 #include "xfs_defer.h"
15 #include "xfs_trans.h"
16 #include "xfs_trans_priv.h"
17 #include "xfs_rmap_item.h"
18 #include "xfs_log.h"
19 #include "xfs_rmap.h"
20 #include "xfs_error.h"
21 #include "xfs_log_priv.h"
22 #include "xfs_log_recover.h"
23 #include "xfs_ag.h"
24 #include "xfs_btree.h"
25 #include "xfs_trace.h"
26 #include "xfs_rtgroup.h"
27
28 struct kmem_cache *xfs_rui_cache;
29 struct kmem_cache *xfs_rud_cache;
30
31 static const struct xfs_item_ops xfs_rui_item_ops;
32
RUI_ITEM(struct xfs_log_item * lip)33 static inline struct xfs_rui_log_item *RUI_ITEM(struct xfs_log_item *lip)
34 {
35 return container_of(lip, struct xfs_rui_log_item, rui_item);
36 }
37
38 STATIC void
xfs_rui_item_free(struct xfs_rui_log_item * ruip)39 xfs_rui_item_free(
40 struct xfs_rui_log_item *ruip)
41 {
42 kvfree(ruip->rui_item.li_lv_shadow);
43 if (ruip->rui_format.rui_nextents > XFS_RUI_MAX_FAST_EXTENTS)
44 kfree(ruip);
45 else
46 kmem_cache_free(xfs_rui_cache, ruip);
47 }
48
49 /*
50 * Freeing the RUI requires that we remove it from the AIL if it has already
51 * been placed there. However, the RUI may not yet have been placed in the AIL
52 * when called by xfs_rui_release() from RUD processing due to the ordering of
53 * committed vs unpin operations in bulk insert operations. Hence the reference
54 * count to ensure only the last caller frees the RUI.
55 */
56 STATIC void
xfs_rui_release(struct xfs_rui_log_item * ruip)57 xfs_rui_release(
58 struct xfs_rui_log_item *ruip)
59 {
60 ASSERT(atomic_read(&ruip->rui_refcount) > 0);
61 if (!atomic_dec_and_test(&ruip->rui_refcount))
62 return;
63
64 xfs_trans_ail_delete(&ruip->rui_item, 0);
65 xfs_rui_item_free(ruip);
66 }
67
68 STATIC void
xfs_rui_item_size(struct xfs_log_item * lip,int * nvecs,int * nbytes)69 xfs_rui_item_size(
70 struct xfs_log_item *lip,
71 int *nvecs,
72 int *nbytes)
73 {
74 struct xfs_rui_log_item *ruip = RUI_ITEM(lip);
75
76 *nvecs += 1;
77 *nbytes += xfs_rui_log_format_sizeof(ruip->rui_format.rui_nextents);
78 }
79
xfs_rui_log_space(unsigned int nr)80 unsigned int xfs_rui_log_space(unsigned int nr)
81 {
82 return xlog_item_space(1, xfs_rui_log_format_sizeof(nr));
83 }
84
85 /*
86 * This is called to fill in the vector of log iovecs for the
87 * given rui log item. We use only 1 iovec, and we point that
88 * at the rui_log_format structure embedded in the rui item.
89 * It is at this point that we assert that all of the extent
90 * slots in the rui item have been filled.
91 */
92 STATIC void
xfs_rui_item_format(struct xfs_log_item * lip,struct xlog_format_buf * lfb)93 xfs_rui_item_format(
94 struct xfs_log_item *lip,
95 struct xlog_format_buf *lfb)
96 {
97 struct xfs_rui_log_item *ruip = RUI_ITEM(lip);
98
99 ASSERT(atomic_read(&ruip->rui_next_extent) ==
100 ruip->rui_format.rui_nextents);
101
102 ASSERT(lip->li_type == XFS_LI_RUI || lip->li_type == XFS_LI_RUI_RT);
103
104 ruip->rui_format.rui_type = lip->li_type;
105 ruip->rui_format.rui_size = 1;
106
107 xlog_format_copy(lfb, XLOG_REG_TYPE_RUI_FORMAT, &ruip->rui_format,
108 xfs_rui_log_format_sizeof(ruip->rui_format.rui_nextents));
109 }
110
111 /*
112 * The unpin operation is the last place an RUI is manipulated in the log. It is
113 * either inserted in the AIL or aborted in the event of a log I/O error. In
114 * either case, the RUI transaction has been successfully committed to make it
115 * this far. Therefore, we expect whoever committed the RUI to either construct
116 * and commit the RUD or drop the RUD's reference in the event of error. Simply
117 * drop the log's RUI reference now that the log is done with it.
118 */
119 STATIC void
xfs_rui_item_unpin(struct xfs_log_item * lip,int remove)120 xfs_rui_item_unpin(
121 struct xfs_log_item *lip,
122 int remove)
123 {
124 struct xfs_rui_log_item *ruip = RUI_ITEM(lip);
125
126 xfs_rui_release(ruip);
127 }
128
129 /*
130 * The RUI has been either committed or aborted if the transaction has been
131 * cancelled. If the transaction was cancelled, an RUD isn't going to be
132 * constructed and thus we free the RUI here directly.
133 */
134 STATIC void
xfs_rui_item_release(struct xfs_log_item * lip)135 xfs_rui_item_release(
136 struct xfs_log_item *lip)
137 {
138 xfs_rui_release(RUI_ITEM(lip));
139 }
140
141 /*
142 * Allocate and initialize an rui item with the given number of extents.
143 */
144 STATIC struct xfs_rui_log_item *
xfs_rui_init(struct xfs_mount * mp,unsigned short item_type,uint nextents)145 xfs_rui_init(
146 struct xfs_mount *mp,
147 unsigned short item_type,
148 uint nextents)
149
150 {
151 struct xfs_rui_log_item *ruip;
152
153 ASSERT(nextents > 0);
154 ASSERT(item_type == XFS_LI_RUI || item_type == XFS_LI_RUI_RT);
155
156 if (nextents > XFS_RUI_MAX_FAST_EXTENTS)
157 ruip = kzalloc(xfs_rui_log_item_sizeof(nextents),
158 GFP_KERNEL | __GFP_NOFAIL);
159 else
160 ruip = kmem_cache_zalloc(xfs_rui_cache,
161 GFP_KERNEL | __GFP_NOFAIL);
162
163 xfs_log_item_init(mp, &ruip->rui_item, item_type, &xfs_rui_item_ops);
164 ruip->rui_format.rui_nextents = nextents;
165 ruip->rui_format.rui_id = (uintptr_t)(void *)ruip;
166 atomic_set(&ruip->rui_next_extent, 0);
167 atomic_set(&ruip->rui_refcount, 2);
168
169 return ruip;
170 }
171
RUD_ITEM(struct xfs_log_item * lip)172 static inline struct xfs_rud_log_item *RUD_ITEM(struct xfs_log_item *lip)
173 {
174 return container_of(lip, struct xfs_rud_log_item, rud_item);
175 }
176
177 STATIC void
xfs_rud_item_size(struct xfs_log_item * lip,int * nvecs,int * nbytes)178 xfs_rud_item_size(
179 struct xfs_log_item *lip,
180 int *nvecs,
181 int *nbytes)
182 {
183 *nvecs += 1;
184 *nbytes += sizeof(struct xfs_rud_log_format);
185 }
186
xfs_rud_log_space(void)187 unsigned int xfs_rud_log_space(void)
188 {
189 return xlog_item_space(1, sizeof(struct xfs_rud_log_format));
190 }
191
192 /*
193 * This is called to fill in the vector of log iovecs for the
194 * given rud log item. We use only 1 iovec, and we point that
195 * at the rud_log_format structure embedded in the rud item.
196 * It is at this point that we assert that all of the extent
197 * slots in the rud item have been filled.
198 */
199 STATIC void
xfs_rud_item_format(struct xfs_log_item * lip,struct xlog_format_buf * lfb)200 xfs_rud_item_format(
201 struct xfs_log_item *lip,
202 struct xlog_format_buf *lfb)
203 {
204 struct xfs_rud_log_item *rudp = RUD_ITEM(lip);
205
206 ASSERT(lip->li_type == XFS_LI_RUD || lip->li_type == XFS_LI_RUD_RT);
207
208 rudp->rud_format.rud_type = lip->li_type;
209 rudp->rud_format.rud_size = 1;
210
211 xlog_format_copy(lfb, XLOG_REG_TYPE_RUD_FORMAT, &rudp->rud_format,
212 sizeof(struct xfs_rud_log_format));
213 }
214
215 /*
216 * The RUD is either committed or aborted if the transaction is cancelled. If
217 * the transaction is cancelled, drop our reference to the RUI and free the
218 * RUD.
219 */
220 STATIC void
xfs_rud_item_release(struct xfs_log_item * lip)221 xfs_rud_item_release(
222 struct xfs_log_item *lip)
223 {
224 struct xfs_rud_log_item *rudp = RUD_ITEM(lip);
225
226 xfs_rui_release(rudp->rud_ruip);
227 kvfree(rudp->rud_item.li_lv_shadow);
228 kmem_cache_free(xfs_rud_cache, rudp);
229 }
230
231 static struct xfs_log_item *
xfs_rud_item_intent(struct xfs_log_item * lip)232 xfs_rud_item_intent(
233 struct xfs_log_item *lip)
234 {
235 return &RUD_ITEM(lip)->rud_ruip->rui_item;
236 }
237
238 static const struct xfs_item_ops xfs_rud_item_ops = {
239 .flags = XFS_ITEM_RELEASE_WHEN_COMMITTED |
240 XFS_ITEM_INTENT_DONE,
241 .iop_size = xfs_rud_item_size,
242 .iop_format = xfs_rud_item_format,
243 .iop_release = xfs_rud_item_release,
244 .iop_intent = xfs_rud_item_intent,
245 };
246
ri_entry(const struct list_head * e)247 static inline struct xfs_rmap_intent *ri_entry(const struct list_head *e)
248 {
249 return list_entry(e, struct xfs_rmap_intent, ri_list);
250 }
251
252 static inline bool
xfs_rui_item_isrt(const struct xfs_log_item * lip)253 xfs_rui_item_isrt(const struct xfs_log_item *lip)
254 {
255 ASSERT(lip->li_type == XFS_LI_RUI || lip->li_type == XFS_LI_RUI_RT);
256
257 return lip->li_type == XFS_LI_RUI_RT;
258 }
259
260 /* Sort rmap intents by AG. */
261 static int
xfs_rmap_update_diff_items(void * priv,const struct list_head * a,const struct list_head * b)262 xfs_rmap_update_diff_items(
263 void *priv,
264 const struct list_head *a,
265 const struct list_head *b)
266 {
267 struct xfs_rmap_intent *ra = ri_entry(a);
268 struct xfs_rmap_intent *rb = ri_entry(b);
269
270 return ra->ri_group->xg_gno - rb->ri_group->xg_gno;
271 }
272
273 /* Log rmap updates in the intent item. */
274 STATIC void
xfs_rmap_update_log_item(struct xfs_trans * tp,struct xfs_rui_log_item * ruip,struct xfs_rmap_intent * ri)275 xfs_rmap_update_log_item(
276 struct xfs_trans *tp,
277 struct xfs_rui_log_item *ruip,
278 struct xfs_rmap_intent *ri)
279 {
280 uint next_extent;
281 struct xfs_map_extent *map;
282
283 /*
284 * atomic_inc_return gives us the value after the increment;
285 * we want to use it as an array index so we need to subtract 1 from
286 * it.
287 */
288 next_extent = atomic_inc_return(&ruip->rui_next_extent) - 1;
289 ASSERT(next_extent < ruip->rui_format.rui_nextents);
290 map = &ruip->rui_format.rui_extents[next_extent];
291 map->me_owner = ri->ri_owner;
292 map->me_startblock = ri->ri_bmap.br_startblock;
293 map->me_startoff = ri->ri_bmap.br_startoff;
294 map->me_len = ri->ri_bmap.br_blockcount;
295
296 map->me_flags = 0;
297 if (ri->ri_bmap.br_state == XFS_EXT_UNWRITTEN)
298 map->me_flags |= XFS_RMAP_EXTENT_UNWRITTEN;
299 if (ri->ri_whichfork == XFS_ATTR_FORK)
300 map->me_flags |= XFS_RMAP_EXTENT_ATTR_FORK;
301 switch (ri->ri_type) {
302 case XFS_RMAP_MAP:
303 map->me_flags |= XFS_RMAP_EXTENT_MAP;
304 break;
305 case XFS_RMAP_MAP_SHARED:
306 map->me_flags |= XFS_RMAP_EXTENT_MAP_SHARED;
307 break;
308 case XFS_RMAP_UNMAP:
309 map->me_flags |= XFS_RMAP_EXTENT_UNMAP;
310 break;
311 case XFS_RMAP_UNMAP_SHARED:
312 map->me_flags |= XFS_RMAP_EXTENT_UNMAP_SHARED;
313 break;
314 case XFS_RMAP_CONVERT:
315 map->me_flags |= XFS_RMAP_EXTENT_CONVERT;
316 break;
317 case XFS_RMAP_CONVERT_SHARED:
318 map->me_flags |= XFS_RMAP_EXTENT_CONVERT_SHARED;
319 break;
320 case XFS_RMAP_ALLOC:
321 map->me_flags |= XFS_RMAP_EXTENT_ALLOC;
322 break;
323 case XFS_RMAP_FREE:
324 map->me_flags |= XFS_RMAP_EXTENT_FREE;
325 break;
326 default:
327 ASSERT(0);
328 }
329 }
330
331 static struct xfs_log_item *
__xfs_rmap_update_create_intent(struct xfs_trans * tp,struct list_head * items,unsigned int count,bool sort,unsigned short item_type)332 __xfs_rmap_update_create_intent(
333 struct xfs_trans *tp,
334 struct list_head *items,
335 unsigned int count,
336 bool sort,
337 unsigned short item_type)
338 {
339 struct xfs_mount *mp = tp->t_mountp;
340 struct xfs_rui_log_item *ruip;
341 struct xfs_rmap_intent *ri;
342
343 ASSERT(count > 0);
344
345 ruip = xfs_rui_init(mp, item_type, count);
346 if (sort)
347 list_sort(mp, items, xfs_rmap_update_diff_items);
348 list_for_each_entry(ri, items, ri_list)
349 xfs_rmap_update_log_item(tp, ruip, ri);
350 return &ruip->rui_item;
351 }
352
353 static struct xfs_log_item *
xfs_rmap_update_create_intent(struct xfs_trans * tp,struct list_head * items,unsigned int count,bool sort)354 xfs_rmap_update_create_intent(
355 struct xfs_trans *tp,
356 struct list_head *items,
357 unsigned int count,
358 bool sort)
359 {
360 return __xfs_rmap_update_create_intent(tp, items, count, sort,
361 XFS_LI_RUI);
362 }
363
364 static inline unsigned short
xfs_rud_type_from_rui(const struct xfs_rui_log_item * ruip)365 xfs_rud_type_from_rui(const struct xfs_rui_log_item *ruip)
366 {
367 return xfs_rui_item_isrt(&ruip->rui_item) ? XFS_LI_RUD_RT : XFS_LI_RUD;
368 }
369
370 /* Get an RUD so we can process all the deferred rmap updates. */
371 static struct xfs_log_item *
xfs_rmap_update_create_done(struct xfs_trans * tp,struct xfs_log_item * intent,unsigned int count)372 xfs_rmap_update_create_done(
373 struct xfs_trans *tp,
374 struct xfs_log_item *intent,
375 unsigned int count)
376 {
377 struct xfs_rui_log_item *ruip = RUI_ITEM(intent);
378 struct xfs_rud_log_item *rudp;
379
380 rudp = kmem_cache_zalloc(xfs_rud_cache, GFP_KERNEL | __GFP_NOFAIL);
381 xfs_log_item_init(tp->t_mountp, &rudp->rud_item,
382 xfs_rud_type_from_rui(ruip), &xfs_rud_item_ops);
383 rudp->rud_ruip = ruip;
384 rudp->rud_format.rud_rui_id = ruip->rui_format.rui_id;
385
386 return &rudp->rud_item;
387 }
388
389 /* Add this deferred RUI to the transaction. */
390 void
xfs_rmap_defer_add(struct xfs_trans * tp,struct xfs_rmap_intent * ri)391 xfs_rmap_defer_add(
392 struct xfs_trans *tp,
393 struct xfs_rmap_intent *ri)
394 {
395 struct xfs_mount *mp = tp->t_mountp;
396
397 /*
398 * Deferred rmap updates for the realtime and data sections must use
399 * separate transactions to finish deferred work because updates to
400 * realtime metadata files can lock AGFs to allocate btree blocks and
401 * we don't want that mixing with the AGF locks taken to finish data
402 * section updates.
403 */
404 ri->ri_group = xfs_group_intent_get(mp, ri->ri_bmap.br_startblock,
405 ri->ri_realtime ? XG_TYPE_RTG : XG_TYPE_AG);
406
407 trace_xfs_rmap_defer(mp, ri);
408 xfs_defer_add(tp, &ri->ri_list, ri->ri_realtime ?
409 &xfs_rtrmap_update_defer_type :
410 &xfs_rmap_update_defer_type);
411 }
412
413 /* Cancel a deferred rmap update. */
414 STATIC void
xfs_rmap_update_cancel_item(struct list_head * item)415 xfs_rmap_update_cancel_item(
416 struct list_head *item)
417 {
418 struct xfs_rmap_intent *ri = ri_entry(item);
419
420 xfs_group_intent_put(ri->ri_group);
421 kmem_cache_free(xfs_rmap_intent_cache, ri);
422 }
423
424 /* Process a deferred rmap update. */
425 STATIC int
xfs_rmap_update_finish_item(struct xfs_trans * tp,struct xfs_log_item * done,struct list_head * item,struct xfs_btree_cur ** state)426 xfs_rmap_update_finish_item(
427 struct xfs_trans *tp,
428 struct xfs_log_item *done,
429 struct list_head *item,
430 struct xfs_btree_cur **state)
431 {
432 struct xfs_rmap_intent *ri = ri_entry(item);
433 int error;
434
435 error = xfs_rmap_finish_one(tp, ri, state);
436
437 xfs_rmap_update_cancel_item(item);
438 return error;
439 }
440
441 /* Clean up after calling xfs_rmap_finish_one. */
442 STATIC void
xfs_rmap_finish_one_cleanup(struct xfs_trans * tp,struct xfs_btree_cur * rcur,int error)443 xfs_rmap_finish_one_cleanup(
444 struct xfs_trans *tp,
445 struct xfs_btree_cur *rcur,
446 int error)
447 {
448 struct xfs_buf *agbp = NULL;
449
450 if (rcur == NULL)
451 return;
452 agbp = rcur->bc_ag.agbp;
453 xfs_btree_del_cursor(rcur, error);
454 if (error && agbp)
455 xfs_trans_brelse(tp, agbp);
456 }
457
458 /* Abort all pending RUIs. */
459 STATIC void
xfs_rmap_update_abort_intent(struct xfs_log_item * intent)460 xfs_rmap_update_abort_intent(
461 struct xfs_log_item *intent)
462 {
463 xfs_rui_release(RUI_ITEM(intent));
464 }
465
466 /* Is this recovered RUI ok? */
467 static inline bool
xfs_rui_validate_map(struct xfs_mount * mp,bool isrt,struct xfs_map_extent * map)468 xfs_rui_validate_map(
469 struct xfs_mount *mp,
470 bool isrt,
471 struct xfs_map_extent *map)
472 {
473 if (!xfs_has_rmapbt(mp))
474 return false;
475
476 if (map->me_flags & ~XFS_RMAP_EXTENT_FLAGS)
477 return false;
478
479 switch (map->me_flags & XFS_RMAP_EXTENT_TYPE_MASK) {
480 case XFS_RMAP_EXTENT_MAP:
481 case XFS_RMAP_EXTENT_MAP_SHARED:
482 case XFS_RMAP_EXTENT_UNMAP:
483 case XFS_RMAP_EXTENT_UNMAP_SHARED:
484 case XFS_RMAP_EXTENT_CONVERT:
485 case XFS_RMAP_EXTENT_CONVERT_SHARED:
486 case XFS_RMAP_EXTENT_ALLOC:
487 case XFS_RMAP_EXTENT_FREE:
488 break;
489 default:
490 return false;
491 }
492
493 if (!XFS_RMAP_NON_INODE_OWNER(map->me_owner) &&
494 !xfs_verify_ino(mp, map->me_owner))
495 return false;
496
497 if (!xfs_verify_fileext(mp, map->me_startoff, map->me_len))
498 return false;
499
500 if (isrt)
501 return xfs_verify_rtbext(mp, map->me_startblock, map->me_len);
502
503 return xfs_verify_fsbext(mp, map->me_startblock, map->me_len);
504 }
505
506 static inline void
xfs_rui_recover_work(struct xfs_mount * mp,struct xfs_defer_pending * dfp,bool isrt,const struct xfs_map_extent * map)507 xfs_rui_recover_work(
508 struct xfs_mount *mp,
509 struct xfs_defer_pending *dfp,
510 bool isrt,
511 const struct xfs_map_extent *map)
512 {
513 struct xfs_rmap_intent *ri;
514
515 ri = kmem_cache_alloc(xfs_rmap_intent_cache, GFP_KERNEL | __GFP_NOFAIL);
516
517 switch (map->me_flags & XFS_RMAP_EXTENT_TYPE_MASK) {
518 case XFS_RMAP_EXTENT_MAP:
519 ri->ri_type = XFS_RMAP_MAP;
520 break;
521 case XFS_RMAP_EXTENT_MAP_SHARED:
522 ri->ri_type = XFS_RMAP_MAP_SHARED;
523 break;
524 case XFS_RMAP_EXTENT_UNMAP:
525 ri->ri_type = XFS_RMAP_UNMAP;
526 break;
527 case XFS_RMAP_EXTENT_UNMAP_SHARED:
528 ri->ri_type = XFS_RMAP_UNMAP_SHARED;
529 break;
530 case XFS_RMAP_EXTENT_CONVERT:
531 ri->ri_type = XFS_RMAP_CONVERT;
532 break;
533 case XFS_RMAP_EXTENT_CONVERT_SHARED:
534 ri->ri_type = XFS_RMAP_CONVERT_SHARED;
535 break;
536 case XFS_RMAP_EXTENT_ALLOC:
537 ri->ri_type = XFS_RMAP_ALLOC;
538 break;
539 case XFS_RMAP_EXTENT_FREE:
540 ri->ri_type = XFS_RMAP_FREE;
541 break;
542 default:
543 ASSERT(0);
544 return;
545 }
546
547 ri->ri_owner = map->me_owner;
548 ri->ri_whichfork = (map->me_flags & XFS_RMAP_EXTENT_ATTR_FORK) ?
549 XFS_ATTR_FORK : XFS_DATA_FORK;
550 ri->ri_bmap.br_startblock = map->me_startblock;
551 ri->ri_bmap.br_startoff = map->me_startoff;
552 ri->ri_bmap.br_blockcount = map->me_len;
553 ri->ri_bmap.br_state = (map->me_flags & XFS_RMAP_EXTENT_UNWRITTEN) ?
554 XFS_EXT_UNWRITTEN : XFS_EXT_NORM;
555 ri->ri_group = xfs_group_intent_get(mp, map->me_startblock,
556 isrt ? XG_TYPE_RTG : XG_TYPE_AG);
557 ri->ri_realtime = isrt;
558
559 xfs_defer_add_item(dfp, &ri->ri_list);
560 }
561
562 /*
563 * Process an rmap update intent item that was recovered from the log.
564 * We need to update the rmapbt.
565 */
566 STATIC int
xfs_rmap_recover_work(struct xfs_defer_pending * dfp,struct list_head * capture_list)567 xfs_rmap_recover_work(
568 struct xfs_defer_pending *dfp,
569 struct list_head *capture_list)
570 {
571 struct xfs_trans_res resv;
572 struct xfs_log_item *lip = dfp->dfp_intent;
573 struct xfs_rui_log_item *ruip = RUI_ITEM(lip);
574 struct xfs_trans *tp;
575 struct xfs_mount *mp = lip->li_log->l_mp;
576 bool isrt = xfs_rui_item_isrt(lip);
577 int i;
578 int error = 0;
579
580 /*
581 * First check the validity of the extents described by the
582 * RUI. If any are bad, then assume that all are bad and
583 * just toss the RUI.
584 */
585 for (i = 0; i < ruip->rui_format.rui_nextents; i++) {
586 if (!xfs_rui_validate_map(mp, isrt,
587 &ruip->rui_format.rui_extents[i])) {
588 XFS_CORRUPTION_ERROR(__func__, XFS_ERRLEVEL_LOW, mp,
589 &ruip->rui_format,
590 sizeof(ruip->rui_format));
591 return -EFSCORRUPTED;
592 }
593
594 xfs_rui_recover_work(mp, dfp, isrt,
595 &ruip->rui_format.rui_extents[i]);
596 }
597
598 resv = xlog_recover_resv(&M_RES(mp)->tr_itruncate);
599 error = xfs_trans_alloc(mp, &resv, mp->m_rmap_maxlevels, 0,
600 XFS_TRANS_RESERVE, &tp);
601 if (error)
602 return error;
603
604 error = xlog_recover_finish_intent(tp, dfp);
605 if (error == -EFSCORRUPTED)
606 XFS_CORRUPTION_ERROR(__func__, XFS_ERRLEVEL_LOW, mp,
607 &ruip->rui_format,
608 sizeof(ruip->rui_format));
609 if (error)
610 goto abort_error;
611
612 return xfs_defer_ops_capture_and_commit(tp, capture_list);
613
614 abort_error:
615 xfs_trans_cancel(tp);
616 return error;
617 }
618
619 /* Relog an intent item to push the log tail forward. */
620 static struct xfs_log_item *
xfs_rmap_relog_intent(struct xfs_trans * tp,struct xfs_log_item * intent,struct xfs_log_item * done_item)621 xfs_rmap_relog_intent(
622 struct xfs_trans *tp,
623 struct xfs_log_item *intent,
624 struct xfs_log_item *done_item)
625 {
626 struct xfs_rui_log_item *ruip;
627 struct xfs_map_extent *map;
628 unsigned int count;
629
630 ASSERT(intent->li_type == XFS_LI_RUI ||
631 intent->li_type == XFS_LI_RUI_RT);
632
633 count = RUI_ITEM(intent)->rui_format.rui_nextents;
634 map = RUI_ITEM(intent)->rui_format.rui_extents;
635
636 ruip = xfs_rui_init(tp->t_mountp, intent->li_type, count);
637 memcpy(ruip->rui_format.rui_extents, map, count * sizeof(*map));
638 atomic_set(&ruip->rui_next_extent, count);
639
640 return &ruip->rui_item;
641 }
642
643 const struct xfs_defer_op_type xfs_rmap_update_defer_type = {
644 .name = "rmap",
645 .max_items = XFS_RUI_MAX_FAST_EXTENTS,
646 .create_intent = xfs_rmap_update_create_intent,
647 .abort_intent = xfs_rmap_update_abort_intent,
648 .create_done = xfs_rmap_update_create_done,
649 .finish_item = xfs_rmap_update_finish_item,
650 .finish_cleanup = xfs_rmap_finish_one_cleanup,
651 .cancel_item = xfs_rmap_update_cancel_item,
652 .recover_work = xfs_rmap_recover_work,
653 .relog_intent = xfs_rmap_relog_intent,
654 };
655
656 #ifdef CONFIG_XFS_RT
657 static struct xfs_log_item *
xfs_rtrmap_update_create_intent(struct xfs_trans * tp,struct list_head * items,unsigned int count,bool sort)658 xfs_rtrmap_update_create_intent(
659 struct xfs_trans *tp,
660 struct list_head *items,
661 unsigned int count,
662 bool sort)
663 {
664 return __xfs_rmap_update_create_intent(tp, items, count, sort,
665 XFS_LI_RUI_RT);
666 }
667
668 /* Clean up after calling xfs_rmap_finish_one. */
669 STATIC void
xfs_rtrmap_finish_one_cleanup(struct xfs_trans * tp,struct xfs_btree_cur * rcur,int error)670 xfs_rtrmap_finish_one_cleanup(
671 struct xfs_trans *tp,
672 struct xfs_btree_cur *rcur,
673 int error)
674 {
675 if (rcur)
676 xfs_btree_del_cursor(rcur, error);
677 }
678
679 const struct xfs_defer_op_type xfs_rtrmap_update_defer_type = {
680 .name = "rtrmap",
681 .max_items = XFS_RUI_MAX_FAST_EXTENTS,
682 .create_intent = xfs_rtrmap_update_create_intent,
683 .abort_intent = xfs_rmap_update_abort_intent,
684 .create_done = xfs_rmap_update_create_done,
685 .finish_item = xfs_rmap_update_finish_item,
686 .finish_cleanup = xfs_rtrmap_finish_one_cleanup,
687 .cancel_item = xfs_rmap_update_cancel_item,
688 .recover_work = xfs_rmap_recover_work,
689 .relog_intent = xfs_rmap_relog_intent,
690 };
691 #else
692 const struct xfs_defer_op_type xfs_rtrmap_update_defer_type = {
693 .name = "rtrmap",
694 };
695 #endif
696
697 STATIC bool
xfs_rui_item_match(struct xfs_log_item * lip,uint64_t intent_id)698 xfs_rui_item_match(
699 struct xfs_log_item *lip,
700 uint64_t intent_id)
701 {
702 return RUI_ITEM(lip)->rui_format.rui_id == intent_id;
703 }
704
705 static const struct xfs_item_ops xfs_rui_item_ops = {
706 .flags = XFS_ITEM_INTENT,
707 .iop_size = xfs_rui_item_size,
708 .iop_format = xfs_rui_item_format,
709 .iop_unpin = xfs_rui_item_unpin,
710 .iop_release = xfs_rui_item_release,
711 .iop_match = xfs_rui_item_match,
712 };
713
714 static inline void
xfs_rui_copy_format(struct xfs_rui_log_format * dst,const struct xfs_rui_log_format * src)715 xfs_rui_copy_format(
716 struct xfs_rui_log_format *dst,
717 const struct xfs_rui_log_format *src)
718 {
719 unsigned int i;
720
721 memcpy(dst, src, offsetof(struct xfs_rui_log_format, rui_extents));
722
723 for (i = 0; i < src->rui_nextents; i++)
724 memcpy(&dst->rui_extents[i], &src->rui_extents[i],
725 sizeof(struct xfs_map_extent));
726 }
727
728 /*
729 * This routine is called to create an in-core extent rmap update
730 * item from the rui format structure which was logged on disk.
731 * It allocates an in-core rui, copies the extents from the format
732 * structure into it, and adds the rui to the AIL with the given
733 * LSN.
734 */
735 STATIC int
xlog_recover_rui_commit_pass2(struct xlog * log,struct list_head * buffer_list,struct xlog_recover_item * item,xfs_lsn_t lsn)736 xlog_recover_rui_commit_pass2(
737 struct xlog *log,
738 struct list_head *buffer_list,
739 struct xlog_recover_item *item,
740 xfs_lsn_t lsn)
741 {
742 struct xfs_mount *mp = log->l_mp;
743 struct xfs_rui_log_item *ruip;
744 struct xfs_rui_log_format *rui_formatp;
745 size_t len;
746
747 rui_formatp = item->ri_buf[0].iov_base;
748
749 if (item->ri_buf[0].iov_len < xfs_rui_log_format_sizeof(0)) {
750 XFS_CORRUPTION_ERROR(__func__, XFS_ERRLEVEL_LOW, mp,
751 item->ri_buf[0].iov_base, item->ri_buf[0].iov_len);
752 return -EFSCORRUPTED;
753 }
754
755 len = xfs_rui_log_format_sizeof(rui_formatp->rui_nextents);
756 if (item->ri_buf[0].iov_len != len) {
757 XFS_CORRUPTION_ERROR(__func__, XFS_ERRLEVEL_LOW, mp,
758 item->ri_buf[0].iov_base, item->ri_buf[0].iov_len);
759 return -EFSCORRUPTED;
760 }
761
762 ruip = xfs_rui_init(mp, ITEM_TYPE(item), rui_formatp->rui_nextents);
763 xfs_rui_copy_format(&ruip->rui_format, rui_formatp);
764 atomic_set(&ruip->rui_next_extent, rui_formatp->rui_nextents);
765
766 xlog_recover_intent_item(log, &ruip->rui_item, lsn,
767 &xfs_rmap_update_defer_type);
768 return 0;
769 }
770
771 const struct xlog_recover_item_ops xlog_rui_item_ops = {
772 .item_type = XFS_LI_RUI,
773 .commit_pass2 = xlog_recover_rui_commit_pass2,
774 };
775
776 #ifdef CONFIG_XFS_RT
777 STATIC int
xlog_recover_rtrui_commit_pass2(struct xlog * log,struct list_head * buffer_list,struct xlog_recover_item * item,xfs_lsn_t lsn)778 xlog_recover_rtrui_commit_pass2(
779 struct xlog *log,
780 struct list_head *buffer_list,
781 struct xlog_recover_item *item,
782 xfs_lsn_t lsn)
783 {
784 struct xfs_mount *mp = log->l_mp;
785 struct xfs_rui_log_item *ruip;
786 struct xfs_rui_log_format *rui_formatp;
787 size_t len;
788
789 rui_formatp = item->ri_buf[0].iov_base;
790
791 if (item->ri_buf[0].iov_len < xfs_rui_log_format_sizeof(0)) {
792 XFS_CORRUPTION_ERROR(__func__, XFS_ERRLEVEL_LOW, mp,
793 item->ri_buf[0].iov_base, item->ri_buf[0].iov_len);
794 return -EFSCORRUPTED;
795 }
796
797 len = xfs_rui_log_format_sizeof(rui_formatp->rui_nextents);
798 if (item->ri_buf[0].iov_len != len) {
799 XFS_CORRUPTION_ERROR(__func__, XFS_ERRLEVEL_LOW, mp,
800 item->ri_buf[0].iov_base, item->ri_buf[0].iov_len);
801 return -EFSCORRUPTED;
802 }
803
804 ruip = xfs_rui_init(mp, ITEM_TYPE(item), rui_formatp->rui_nextents);
805 xfs_rui_copy_format(&ruip->rui_format, rui_formatp);
806 atomic_set(&ruip->rui_next_extent, rui_formatp->rui_nextents);
807
808 xlog_recover_intent_item(log, &ruip->rui_item, lsn,
809 &xfs_rtrmap_update_defer_type);
810 return 0;
811 }
812 #else
813 STATIC int
xlog_recover_rtrui_commit_pass2(struct xlog * log,struct list_head * buffer_list,struct xlog_recover_item * item,xfs_lsn_t lsn)814 xlog_recover_rtrui_commit_pass2(
815 struct xlog *log,
816 struct list_head *buffer_list,
817 struct xlog_recover_item *item,
818 xfs_lsn_t lsn)
819 {
820 XFS_CORRUPTION_ERROR(__func__, XFS_ERRLEVEL_LOW, log->l_mp,
821 item->ri_buf[0].iov_base, item->ri_buf[0].iov_len);
822 return -EFSCORRUPTED;
823 }
824 #endif
825
826 const struct xlog_recover_item_ops xlog_rtrui_item_ops = {
827 .item_type = XFS_LI_RUI_RT,
828 .commit_pass2 = xlog_recover_rtrui_commit_pass2,
829 };
830
831 /*
832 * This routine is called when an RUD format structure is found in a committed
833 * transaction in the log. Its purpose is to cancel the corresponding RUI if it
834 * was still in the log. To do this it searches the AIL for the RUI with an id
835 * equal to that in the RUD format structure. If we find it we drop the RUD
836 * reference, which removes the RUI from the AIL and frees it.
837 */
838 STATIC int
xlog_recover_rud_commit_pass2(struct xlog * log,struct list_head * buffer_list,struct xlog_recover_item * item,xfs_lsn_t lsn)839 xlog_recover_rud_commit_pass2(
840 struct xlog *log,
841 struct list_head *buffer_list,
842 struct xlog_recover_item *item,
843 xfs_lsn_t lsn)
844 {
845 struct xfs_rud_log_format *rud_formatp;
846
847 rud_formatp = item->ri_buf[0].iov_base;
848 if (item->ri_buf[0].iov_len != sizeof(struct xfs_rud_log_format)) {
849 XFS_CORRUPTION_ERROR(__func__, XFS_ERRLEVEL_LOW, log->l_mp,
850 rud_formatp, item->ri_buf[0].iov_len);
851 return -EFSCORRUPTED;
852 }
853
854 xlog_recover_release_intent(log, XFS_LI_RUI, rud_formatp->rud_rui_id);
855 return 0;
856 }
857
858 const struct xlog_recover_item_ops xlog_rud_item_ops = {
859 .item_type = XFS_LI_RUD,
860 .commit_pass2 = xlog_recover_rud_commit_pass2,
861 };
862
863 #ifdef CONFIG_XFS_RT
864 STATIC int
xlog_recover_rtrud_commit_pass2(struct xlog * log,struct list_head * buffer_list,struct xlog_recover_item * item,xfs_lsn_t lsn)865 xlog_recover_rtrud_commit_pass2(
866 struct xlog *log,
867 struct list_head *buffer_list,
868 struct xlog_recover_item *item,
869 xfs_lsn_t lsn)
870 {
871 struct xfs_rud_log_format *rud_formatp;
872
873 rud_formatp = item->ri_buf[0].iov_base;
874 if (item->ri_buf[0].iov_len != sizeof(struct xfs_rud_log_format)) {
875 XFS_CORRUPTION_ERROR(__func__, XFS_ERRLEVEL_LOW, log->l_mp,
876 rud_formatp, item->ri_buf[0].iov_len);
877 return -EFSCORRUPTED;
878 }
879
880 xlog_recover_release_intent(log, XFS_LI_RUI_RT,
881 rud_formatp->rud_rui_id);
882 return 0;
883 }
884 #else
885 # define xlog_recover_rtrud_commit_pass2 xlog_recover_rtrui_commit_pass2
886 #endif
887
888 const struct xlog_recover_item_ops xlog_rtrud_item_ops = {
889 .item_type = XFS_LI_RUD_RT,
890 .commit_pass2 = xlog_recover_rtrud_commit_pass2,
891 };
892