1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * Copyright (C) 2017 Oracle. All Rights Reserved.
4 * Author: Darrick J. Wong <darrick.wong@oracle.com>
5 */
6 #include "xfs.h"
7 #include "xfs_fs.h"
8 #include "xfs_shared.h"
9 #include "xfs_format.h"
10 #include "xfs_log_format.h"
11 #include "xfs_trans_resv.h"
12 #include "xfs_sb.h"
13 #include "xfs_mount.h"
14 #include "xfs_defer.h"
15 #include "xfs_inode.h"
16 #include "xfs_trans.h"
17 #include "xfs_error.h"
18 #include "xfs_btree.h"
19 #include "xfs_rmap_btree.h"
20 #include "xfs_trace.h"
21 #include "xfs_log.h"
22 #include "xfs_rmap.h"
23 #include "xfs_alloc.h"
24 #include "xfs_bit.h"
25 #include <linux/fsmap.h>
26 #include "xfs_fsmap.h"
27 #include "xfs_refcount.h"
28 #include "xfs_refcount_btree.h"
29 #include "xfs_alloc_btree.h"
30 #include "xfs_rtalloc.h"
31
32 /* Convert an xfs_fsmap to an fsmap. */
33 void
xfs_fsmap_from_internal(struct fsmap * dest,struct xfs_fsmap * src)34 xfs_fsmap_from_internal(
35 struct fsmap *dest,
36 struct xfs_fsmap *src)
37 {
38 dest->fmr_device = src->fmr_device;
39 dest->fmr_flags = src->fmr_flags;
40 dest->fmr_physical = BBTOB(src->fmr_physical);
41 dest->fmr_owner = src->fmr_owner;
42 dest->fmr_offset = BBTOB(src->fmr_offset);
43 dest->fmr_length = BBTOB(src->fmr_length);
44 dest->fmr_reserved[0] = 0;
45 dest->fmr_reserved[1] = 0;
46 dest->fmr_reserved[2] = 0;
47 }
48
49 /* Convert an fsmap to an xfs_fsmap. */
50 void
xfs_fsmap_to_internal(struct xfs_fsmap * dest,struct fsmap * src)51 xfs_fsmap_to_internal(
52 struct xfs_fsmap *dest,
53 struct fsmap *src)
54 {
55 dest->fmr_device = src->fmr_device;
56 dest->fmr_flags = src->fmr_flags;
57 dest->fmr_physical = BTOBBT(src->fmr_physical);
58 dest->fmr_owner = src->fmr_owner;
59 dest->fmr_offset = BTOBBT(src->fmr_offset);
60 dest->fmr_length = BTOBBT(src->fmr_length);
61 }
62
63 /* Convert an fsmap owner into an rmapbt owner. */
64 static int
xfs_fsmap_owner_to_rmap(struct xfs_rmap_irec * dest,struct xfs_fsmap * src)65 xfs_fsmap_owner_to_rmap(
66 struct xfs_rmap_irec *dest,
67 struct xfs_fsmap *src)
68 {
69 if (!(src->fmr_flags & FMR_OF_SPECIAL_OWNER)) {
70 dest->rm_owner = src->fmr_owner;
71 return 0;
72 }
73
74 switch (src->fmr_owner) {
75 case 0: /* "lowest owner id possible" */
76 case -1ULL: /* "highest owner id possible" */
77 dest->rm_owner = 0;
78 break;
79 case XFS_FMR_OWN_FREE:
80 dest->rm_owner = XFS_RMAP_OWN_NULL;
81 break;
82 case XFS_FMR_OWN_UNKNOWN:
83 dest->rm_owner = XFS_RMAP_OWN_UNKNOWN;
84 break;
85 case XFS_FMR_OWN_FS:
86 dest->rm_owner = XFS_RMAP_OWN_FS;
87 break;
88 case XFS_FMR_OWN_LOG:
89 dest->rm_owner = XFS_RMAP_OWN_LOG;
90 break;
91 case XFS_FMR_OWN_AG:
92 dest->rm_owner = XFS_RMAP_OWN_AG;
93 break;
94 case XFS_FMR_OWN_INOBT:
95 dest->rm_owner = XFS_RMAP_OWN_INOBT;
96 break;
97 case XFS_FMR_OWN_INODES:
98 dest->rm_owner = XFS_RMAP_OWN_INODES;
99 break;
100 case XFS_FMR_OWN_REFC:
101 dest->rm_owner = XFS_RMAP_OWN_REFC;
102 break;
103 case XFS_FMR_OWN_COW:
104 dest->rm_owner = XFS_RMAP_OWN_COW;
105 break;
106 case XFS_FMR_OWN_DEFECTIVE: /* not implemented */
107 /* fall through */
108 default:
109 return -EINVAL;
110 }
111 return 0;
112 }
113
114 /* Convert an rmapbt owner into an fsmap owner. */
115 static int
xfs_fsmap_owner_from_rmap(struct xfs_fsmap * dest,struct xfs_rmap_irec * src)116 xfs_fsmap_owner_from_rmap(
117 struct xfs_fsmap *dest,
118 struct xfs_rmap_irec *src)
119 {
120 dest->fmr_flags = 0;
121 if (!XFS_RMAP_NON_INODE_OWNER(src->rm_owner)) {
122 dest->fmr_owner = src->rm_owner;
123 return 0;
124 }
125 dest->fmr_flags |= FMR_OF_SPECIAL_OWNER;
126
127 switch (src->rm_owner) {
128 case XFS_RMAP_OWN_FS:
129 dest->fmr_owner = XFS_FMR_OWN_FS;
130 break;
131 case XFS_RMAP_OWN_LOG:
132 dest->fmr_owner = XFS_FMR_OWN_LOG;
133 break;
134 case XFS_RMAP_OWN_AG:
135 dest->fmr_owner = XFS_FMR_OWN_AG;
136 break;
137 case XFS_RMAP_OWN_INOBT:
138 dest->fmr_owner = XFS_FMR_OWN_INOBT;
139 break;
140 case XFS_RMAP_OWN_INODES:
141 dest->fmr_owner = XFS_FMR_OWN_INODES;
142 break;
143 case XFS_RMAP_OWN_REFC:
144 dest->fmr_owner = XFS_FMR_OWN_REFC;
145 break;
146 case XFS_RMAP_OWN_COW:
147 dest->fmr_owner = XFS_FMR_OWN_COW;
148 break;
149 case XFS_RMAP_OWN_NULL: /* "free" */
150 dest->fmr_owner = XFS_FMR_OWN_FREE;
151 break;
152 default:
153 return -EFSCORRUPTED;
154 }
155 return 0;
156 }
157
158 /* getfsmap query state */
159 struct xfs_getfsmap_info {
160 struct xfs_fsmap_head *head;
161 xfs_fsmap_format_t formatter; /* formatting fn */
162 void *format_arg; /* format buffer */
163 struct xfs_buf *agf_bp; /* AGF, for refcount queries */
164 xfs_daddr_t next_daddr; /* next daddr we expect */
165 u64 missing_owner; /* owner of holes */
166 u32 dev; /* device id */
167 xfs_agnumber_t agno; /* AG number, if applicable */
168 struct xfs_rmap_irec low; /* low rmap key */
169 struct xfs_rmap_irec high; /* high rmap key */
170 bool last; /* last extent? */
171 };
172
173 /* Associate a device with a getfsmap handler. */
174 struct xfs_getfsmap_dev {
175 u32 dev;
176 int (*fn)(struct xfs_trans *tp,
177 struct xfs_fsmap *keys,
178 struct xfs_getfsmap_info *info);
179 };
180
181 /* Compare two getfsmap device handlers. */
182 static int
xfs_getfsmap_dev_compare(const void * p1,const void * p2)183 xfs_getfsmap_dev_compare(
184 const void *p1,
185 const void *p2)
186 {
187 const struct xfs_getfsmap_dev *d1 = p1;
188 const struct xfs_getfsmap_dev *d2 = p2;
189
190 return d1->dev - d2->dev;
191 }
192
193 /* Decide if this mapping is shared. */
194 STATIC int
xfs_getfsmap_is_shared(struct xfs_trans * tp,struct xfs_getfsmap_info * info,struct xfs_rmap_irec * rec,bool * stat)195 xfs_getfsmap_is_shared(
196 struct xfs_trans *tp,
197 struct xfs_getfsmap_info *info,
198 struct xfs_rmap_irec *rec,
199 bool *stat)
200 {
201 struct xfs_mount *mp = tp->t_mountp;
202 struct xfs_btree_cur *cur;
203 xfs_agblock_t fbno;
204 xfs_extlen_t flen;
205 int error;
206
207 *stat = false;
208 if (!xfs_sb_version_hasreflink(&mp->m_sb))
209 return 0;
210 /* rt files will have agno set to NULLAGNUMBER */
211 if (info->agno == NULLAGNUMBER)
212 return 0;
213
214 /* Are there any shared blocks here? */
215 flen = 0;
216 cur = xfs_refcountbt_init_cursor(mp, tp, info->agf_bp,
217 info->agno);
218
219 error = xfs_refcount_find_shared(cur, rec->rm_startblock,
220 rec->rm_blockcount, &fbno, &flen, false);
221
222 xfs_btree_del_cursor(cur, error);
223 if (error)
224 return error;
225
226 *stat = flen > 0;
227 return 0;
228 }
229
230 /*
231 * Format a reverse mapping for getfsmap, having translated rm_startblock
232 * into the appropriate daddr units.
233 */
234 STATIC int
xfs_getfsmap_helper(struct xfs_trans * tp,struct xfs_getfsmap_info * info,struct xfs_rmap_irec * rec,xfs_daddr_t rec_daddr)235 xfs_getfsmap_helper(
236 struct xfs_trans *tp,
237 struct xfs_getfsmap_info *info,
238 struct xfs_rmap_irec *rec,
239 xfs_daddr_t rec_daddr)
240 {
241 struct xfs_fsmap fmr;
242 struct xfs_mount *mp = tp->t_mountp;
243 bool shared;
244 int error;
245
246 if (fatal_signal_pending(current))
247 return -EINTR;
248
249 /*
250 * Filter out records that start before our startpoint, if the
251 * caller requested that.
252 */
253 if (xfs_rmap_compare(rec, &info->low) < 0) {
254 rec_daddr += XFS_FSB_TO_BB(mp, rec->rm_blockcount);
255 if (info->next_daddr < rec_daddr)
256 info->next_daddr = rec_daddr;
257 return XFS_BTREE_QUERY_RANGE_CONTINUE;
258 }
259
260 /* Are we just counting mappings? */
261 if (info->head->fmh_count == 0) {
262 if (info->head->fmh_entries == UINT_MAX)
263 return -ECANCELED;
264
265 if (rec_daddr > info->next_daddr)
266 info->head->fmh_entries++;
267
268 if (info->last)
269 return XFS_BTREE_QUERY_RANGE_CONTINUE;
270
271 info->head->fmh_entries++;
272
273 rec_daddr += XFS_FSB_TO_BB(mp, rec->rm_blockcount);
274 if (info->next_daddr < rec_daddr)
275 info->next_daddr = rec_daddr;
276 return XFS_BTREE_QUERY_RANGE_CONTINUE;
277 }
278
279 /*
280 * If the record starts past the last physical block we saw,
281 * then we've found a gap. Report the gap as being owned by
282 * whatever the caller specified is the missing owner.
283 */
284 if (rec_daddr > info->next_daddr) {
285 if (info->head->fmh_entries >= info->head->fmh_count)
286 return XFS_BTREE_QUERY_RANGE_ABORT;
287
288 fmr.fmr_device = info->dev;
289 fmr.fmr_physical = info->next_daddr;
290 fmr.fmr_owner = info->missing_owner;
291 fmr.fmr_offset = 0;
292 fmr.fmr_length = rec_daddr - info->next_daddr;
293 fmr.fmr_flags = FMR_OF_SPECIAL_OWNER;
294 error = info->formatter(&fmr, info->format_arg);
295 if (error)
296 return error;
297 info->head->fmh_entries++;
298 }
299
300 if (info->last)
301 goto out;
302
303 /* Fill out the extent we found */
304 if (info->head->fmh_entries >= info->head->fmh_count)
305 return XFS_BTREE_QUERY_RANGE_ABORT;
306
307 trace_xfs_fsmap_mapping(mp, info->dev, info->agno, rec);
308
309 fmr.fmr_device = info->dev;
310 fmr.fmr_physical = rec_daddr;
311 error = xfs_fsmap_owner_from_rmap(&fmr, rec);
312 if (error)
313 return error;
314 fmr.fmr_offset = XFS_FSB_TO_BB(mp, rec->rm_offset);
315 fmr.fmr_length = XFS_FSB_TO_BB(mp, rec->rm_blockcount);
316 if (rec->rm_flags & XFS_RMAP_UNWRITTEN)
317 fmr.fmr_flags |= FMR_OF_PREALLOC;
318 if (rec->rm_flags & XFS_RMAP_ATTR_FORK)
319 fmr.fmr_flags |= FMR_OF_ATTR_FORK;
320 if (rec->rm_flags & XFS_RMAP_BMBT_BLOCK)
321 fmr.fmr_flags |= FMR_OF_EXTENT_MAP;
322 if (fmr.fmr_flags == 0) {
323 error = xfs_getfsmap_is_shared(tp, info, rec, &shared);
324 if (error)
325 return error;
326 if (shared)
327 fmr.fmr_flags |= FMR_OF_SHARED;
328 }
329 error = info->formatter(&fmr, info->format_arg);
330 if (error)
331 return error;
332 info->head->fmh_entries++;
333
334 out:
335 rec_daddr += XFS_FSB_TO_BB(mp, rec->rm_blockcount);
336 if (info->next_daddr < rec_daddr)
337 info->next_daddr = rec_daddr;
338 return XFS_BTREE_QUERY_RANGE_CONTINUE;
339 }
340
341 /* Transform a rmapbt irec into a fsmap */
342 STATIC int
xfs_getfsmap_datadev_helper(struct xfs_btree_cur * cur,struct xfs_rmap_irec * rec,void * priv)343 xfs_getfsmap_datadev_helper(
344 struct xfs_btree_cur *cur,
345 struct xfs_rmap_irec *rec,
346 void *priv)
347 {
348 struct xfs_mount *mp = cur->bc_mp;
349 struct xfs_getfsmap_info *info = priv;
350 xfs_fsblock_t fsb;
351 xfs_daddr_t rec_daddr;
352
353 fsb = XFS_AGB_TO_FSB(mp, cur->bc_private.a.agno, rec->rm_startblock);
354 rec_daddr = XFS_FSB_TO_DADDR(mp, fsb);
355
356 return xfs_getfsmap_helper(cur->bc_tp, info, rec, rec_daddr);
357 }
358
359 /* Transform a bnobt irec into a fsmap */
360 STATIC int
xfs_getfsmap_datadev_bnobt_helper(struct xfs_btree_cur * cur,struct xfs_alloc_rec_incore * rec,void * priv)361 xfs_getfsmap_datadev_bnobt_helper(
362 struct xfs_btree_cur *cur,
363 struct xfs_alloc_rec_incore *rec,
364 void *priv)
365 {
366 struct xfs_mount *mp = cur->bc_mp;
367 struct xfs_getfsmap_info *info = priv;
368 struct xfs_rmap_irec irec;
369 xfs_daddr_t rec_daddr;
370
371 rec_daddr = XFS_AGB_TO_DADDR(mp, cur->bc_private.a.agno,
372 rec->ar_startblock);
373
374 irec.rm_startblock = rec->ar_startblock;
375 irec.rm_blockcount = rec->ar_blockcount;
376 irec.rm_owner = XFS_RMAP_OWN_NULL; /* "free" */
377 irec.rm_offset = 0;
378 irec.rm_flags = 0;
379
380 return xfs_getfsmap_helper(cur->bc_tp, info, &irec, rec_daddr);
381 }
382
383 /* Set rmap flags based on the getfsmap flags */
384 static void
xfs_getfsmap_set_irec_flags(struct xfs_rmap_irec * irec,struct xfs_fsmap * fmr)385 xfs_getfsmap_set_irec_flags(
386 struct xfs_rmap_irec *irec,
387 struct xfs_fsmap *fmr)
388 {
389 irec->rm_flags = 0;
390 if (fmr->fmr_flags & FMR_OF_ATTR_FORK)
391 irec->rm_flags |= XFS_RMAP_ATTR_FORK;
392 if (fmr->fmr_flags & FMR_OF_EXTENT_MAP)
393 irec->rm_flags |= XFS_RMAP_BMBT_BLOCK;
394 if (fmr->fmr_flags & FMR_OF_PREALLOC)
395 irec->rm_flags |= XFS_RMAP_UNWRITTEN;
396 }
397
398 /* Execute a getfsmap query against the log device. */
399 STATIC int
xfs_getfsmap_logdev(struct xfs_trans * tp,struct xfs_fsmap * keys,struct xfs_getfsmap_info * info)400 xfs_getfsmap_logdev(
401 struct xfs_trans *tp,
402 struct xfs_fsmap *keys,
403 struct xfs_getfsmap_info *info)
404 {
405 struct xfs_mount *mp = tp->t_mountp;
406 struct xfs_rmap_irec rmap;
407 int error;
408
409 /* Set up search keys */
410 info->low.rm_startblock = XFS_BB_TO_FSBT(mp, keys[0].fmr_physical);
411 info->low.rm_offset = XFS_BB_TO_FSBT(mp, keys[0].fmr_offset);
412 error = xfs_fsmap_owner_to_rmap(&info->low, keys);
413 if (error)
414 return error;
415 info->low.rm_blockcount = 0;
416 xfs_getfsmap_set_irec_flags(&info->low, &keys[0]);
417
418 error = xfs_fsmap_owner_to_rmap(&info->high, keys + 1);
419 if (error)
420 return error;
421 info->high.rm_startblock = -1U;
422 info->high.rm_owner = ULLONG_MAX;
423 info->high.rm_offset = ULLONG_MAX;
424 info->high.rm_blockcount = 0;
425 info->high.rm_flags = XFS_RMAP_KEY_FLAGS | XFS_RMAP_REC_FLAGS;
426 info->missing_owner = XFS_FMR_OWN_FREE;
427
428 trace_xfs_fsmap_low_key(mp, info->dev, info->agno, &info->low);
429 trace_xfs_fsmap_high_key(mp, info->dev, info->agno, &info->high);
430
431 if (keys[0].fmr_physical > 0)
432 return 0;
433
434 /* Fabricate an rmap entry for the external log device. */
435 rmap.rm_startblock = 0;
436 rmap.rm_blockcount = mp->m_sb.sb_logblocks;
437 rmap.rm_owner = XFS_RMAP_OWN_LOG;
438 rmap.rm_offset = 0;
439 rmap.rm_flags = 0;
440
441 return xfs_getfsmap_helper(tp, info, &rmap, 0);
442 }
443
444 #ifdef CONFIG_XFS_RT
445 /* Transform a rtbitmap "record" into a fsmap */
446 STATIC int
xfs_getfsmap_rtdev_rtbitmap_helper(struct xfs_trans * tp,struct xfs_rtalloc_rec * rec,void * priv)447 xfs_getfsmap_rtdev_rtbitmap_helper(
448 struct xfs_trans *tp,
449 struct xfs_rtalloc_rec *rec,
450 void *priv)
451 {
452 struct xfs_mount *mp = tp->t_mountp;
453 struct xfs_getfsmap_info *info = priv;
454 struct xfs_rmap_irec irec;
455 xfs_daddr_t rec_daddr;
456
457 irec.rm_startblock = rec->ar_startext * mp->m_sb.sb_rextsize;
458 rec_daddr = XFS_FSB_TO_BB(mp, irec.rm_startblock);
459 irec.rm_blockcount = rec->ar_extcount * mp->m_sb.sb_rextsize;
460 irec.rm_owner = XFS_RMAP_OWN_NULL; /* "free" */
461 irec.rm_offset = 0;
462 irec.rm_flags = 0;
463
464 return xfs_getfsmap_helper(tp, info, &irec, rec_daddr);
465 }
466
467 /* Execute a getfsmap query against the realtime device. */
468 STATIC int
__xfs_getfsmap_rtdev(struct xfs_trans * tp,struct xfs_fsmap * keys,int (* query_fn)(struct xfs_trans *,struct xfs_getfsmap_info *),struct xfs_getfsmap_info * info)469 __xfs_getfsmap_rtdev(
470 struct xfs_trans *tp,
471 struct xfs_fsmap *keys,
472 int (*query_fn)(struct xfs_trans *,
473 struct xfs_getfsmap_info *),
474 struct xfs_getfsmap_info *info)
475 {
476 struct xfs_mount *mp = tp->t_mountp;
477 xfs_fsblock_t start_fsb;
478 xfs_fsblock_t end_fsb;
479 xfs_daddr_t eofs;
480 int error = 0;
481
482 eofs = XFS_FSB_TO_BB(mp, mp->m_sb.sb_rblocks);
483 if (keys[0].fmr_physical >= eofs)
484 return 0;
485 if (keys[1].fmr_physical >= eofs)
486 keys[1].fmr_physical = eofs - 1;
487 start_fsb = XFS_BB_TO_FSBT(mp, keys[0].fmr_physical);
488 end_fsb = XFS_BB_TO_FSB(mp, keys[1].fmr_physical);
489
490 /* Set up search keys */
491 info->low.rm_startblock = start_fsb;
492 error = xfs_fsmap_owner_to_rmap(&info->low, &keys[0]);
493 if (error)
494 return error;
495 info->low.rm_offset = XFS_BB_TO_FSBT(mp, keys[0].fmr_offset);
496 info->low.rm_blockcount = 0;
497 xfs_getfsmap_set_irec_flags(&info->low, &keys[0]);
498
499 info->high.rm_startblock = end_fsb;
500 error = xfs_fsmap_owner_to_rmap(&info->high, &keys[1]);
501 if (error)
502 return error;
503 info->high.rm_offset = XFS_BB_TO_FSBT(mp, keys[1].fmr_offset);
504 info->high.rm_blockcount = 0;
505 xfs_getfsmap_set_irec_flags(&info->high, &keys[1]);
506
507 trace_xfs_fsmap_low_key(mp, info->dev, info->agno, &info->low);
508 trace_xfs_fsmap_high_key(mp, info->dev, info->agno, &info->high);
509
510 return query_fn(tp, info);
511 }
512
513 /* Actually query the realtime bitmap. */
514 STATIC int
xfs_getfsmap_rtdev_rtbitmap_query(struct xfs_trans * tp,struct xfs_getfsmap_info * info)515 xfs_getfsmap_rtdev_rtbitmap_query(
516 struct xfs_trans *tp,
517 struct xfs_getfsmap_info *info)
518 {
519 struct xfs_rtalloc_rec alow = { 0 };
520 struct xfs_rtalloc_rec ahigh = { 0 };
521 int error;
522
523 xfs_ilock(tp->t_mountp->m_rbmip, XFS_ILOCK_SHARED);
524
525 alow.ar_startext = info->low.rm_startblock;
526 ahigh.ar_startext = info->high.rm_startblock;
527 do_div(alow.ar_startext, tp->t_mountp->m_sb.sb_rextsize);
528 if (do_div(ahigh.ar_startext, tp->t_mountp->m_sb.sb_rextsize))
529 ahigh.ar_startext++;
530 error = xfs_rtalloc_query_range(tp, &alow, &ahigh,
531 xfs_getfsmap_rtdev_rtbitmap_helper, info);
532 if (error)
533 goto err;
534
535 /* Report any gaps at the end of the rtbitmap */
536 info->last = true;
537 error = xfs_getfsmap_rtdev_rtbitmap_helper(tp, &ahigh, info);
538 if (error)
539 goto err;
540 err:
541 xfs_iunlock(tp->t_mountp->m_rbmip, XFS_ILOCK_SHARED);
542 return error;
543 }
544
545 /* Execute a getfsmap query against the realtime device rtbitmap. */
546 STATIC int
xfs_getfsmap_rtdev_rtbitmap(struct xfs_trans * tp,struct xfs_fsmap * keys,struct xfs_getfsmap_info * info)547 xfs_getfsmap_rtdev_rtbitmap(
548 struct xfs_trans *tp,
549 struct xfs_fsmap *keys,
550 struct xfs_getfsmap_info *info)
551 {
552 info->missing_owner = XFS_FMR_OWN_UNKNOWN;
553 return __xfs_getfsmap_rtdev(tp, keys, xfs_getfsmap_rtdev_rtbitmap_query,
554 info);
555 }
556 #endif /* CONFIG_XFS_RT */
557
558 /* Execute a getfsmap query against the regular data device. */
559 STATIC int
__xfs_getfsmap_datadev(struct xfs_trans * tp,struct xfs_fsmap * keys,struct xfs_getfsmap_info * info,int (* query_fn)(struct xfs_trans *,struct xfs_getfsmap_info *,struct xfs_btree_cur **,void *),void * priv)560 __xfs_getfsmap_datadev(
561 struct xfs_trans *tp,
562 struct xfs_fsmap *keys,
563 struct xfs_getfsmap_info *info,
564 int (*query_fn)(struct xfs_trans *,
565 struct xfs_getfsmap_info *,
566 struct xfs_btree_cur **,
567 void *),
568 void *priv)
569 {
570 struct xfs_mount *mp = tp->t_mountp;
571 struct xfs_btree_cur *bt_cur = NULL;
572 xfs_fsblock_t start_fsb;
573 xfs_fsblock_t end_fsb;
574 xfs_agnumber_t start_ag;
575 xfs_agnumber_t end_ag;
576 xfs_daddr_t eofs;
577 int error = 0;
578
579 eofs = XFS_FSB_TO_BB(mp, mp->m_sb.sb_dblocks);
580 if (keys[0].fmr_physical >= eofs)
581 return 0;
582 if (keys[1].fmr_physical >= eofs)
583 keys[1].fmr_physical = eofs - 1;
584 start_fsb = XFS_DADDR_TO_FSB(mp, keys[0].fmr_physical);
585 end_fsb = XFS_DADDR_TO_FSB(mp, keys[1].fmr_physical);
586
587 /*
588 * Convert the fsmap low/high keys to AG based keys. Initialize
589 * low to the fsmap low key and max out the high key to the end
590 * of the AG.
591 */
592 info->low.rm_startblock = XFS_FSB_TO_AGBNO(mp, start_fsb);
593 info->low.rm_offset = XFS_BB_TO_FSBT(mp, keys[0].fmr_offset);
594 error = xfs_fsmap_owner_to_rmap(&info->low, &keys[0]);
595 if (error)
596 return error;
597 info->low.rm_blockcount = 0;
598 xfs_getfsmap_set_irec_flags(&info->low, &keys[0]);
599
600 info->high.rm_startblock = -1U;
601 info->high.rm_owner = ULLONG_MAX;
602 info->high.rm_offset = ULLONG_MAX;
603 info->high.rm_blockcount = 0;
604 info->high.rm_flags = XFS_RMAP_KEY_FLAGS | XFS_RMAP_REC_FLAGS;
605
606 start_ag = XFS_FSB_TO_AGNO(mp, start_fsb);
607 end_ag = XFS_FSB_TO_AGNO(mp, end_fsb);
608
609 /* Query each AG */
610 for (info->agno = start_ag; info->agno <= end_ag; info->agno++) {
611 /*
612 * Set the AG high key from the fsmap high key if this
613 * is the last AG that we're querying.
614 */
615 if (info->agno == end_ag) {
616 info->high.rm_startblock = XFS_FSB_TO_AGBNO(mp,
617 end_fsb);
618 info->high.rm_offset = XFS_BB_TO_FSBT(mp,
619 keys[1].fmr_offset);
620 error = xfs_fsmap_owner_to_rmap(&info->high, &keys[1]);
621 if (error)
622 goto err;
623 xfs_getfsmap_set_irec_flags(&info->high, &keys[1]);
624 }
625
626 if (bt_cur) {
627 xfs_btree_del_cursor(bt_cur, XFS_BTREE_NOERROR);
628 bt_cur = NULL;
629 xfs_trans_brelse(tp, info->agf_bp);
630 info->agf_bp = NULL;
631 }
632
633 error = xfs_alloc_read_agf(mp, tp, info->agno, 0,
634 &info->agf_bp);
635 if (error)
636 goto err;
637
638 trace_xfs_fsmap_low_key(mp, info->dev, info->agno, &info->low);
639 trace_xfs_fsmap_high_key(mp, info->dev, info->agno,
640 &info->high);
641
642 error = query_fn(tp, info, &bt_cur, priv);
643 if (error)
644 goto err;
645
646 /*
647 * Set the AG low key to the start of the AG prior to
648 * moving on to the next AG.
649 */
650 if (info->agno == start_ag) {
651 info->low.rm_startblock = 0;
652 info->low.rm_owner = 0;
653 info->low.rm_offset = 0;
654 info->low.rm_flags = 0;
655 }
656 }
657
658 /* Report any gap at the end of the AG */
659 info->last = true;
660 error = query_fn(tp, info, &bt_cur, priv);
661 if (error)
662 goto err;
663
664 err:
665 if (bt_cur)
666 xfs_btree_del_cursor(bt_cur, error < 0 ? XFS_BTREE_ERROR :
667 XFS_BTREE_NOERROR);
668 if (info->agf_bp) {
669 xfs_trans_brelse(tp, info->agf_bp);
670 info->agf_bp = NULL;
671 }
672
673 return error;
674 }
675
676 /* Actually query the rmap btree. */
677 STATIC int
xfs_getfsmap_datadev_rmapbt_query(struct xfs_trans * tp,struct xfs_getfsmap_info * info,struct xfs_btree_cur ** curpp,void * priv)678 xfs_getfsmap_datadev_rmapbt_query(
679 struct xfs_trans *tp,
680 struct xfs_getfsmap_info *info,
681 struct xfs_btree_cur **curpp,
682 void *priv)
683 {
684 /* Report any gap at the end of the last AG. */
685 if (info->last)
686 return xfs_getfsmap_datadev_helper(*curpp, &info->high, info);
687
688 /* Allocate cursor for this AG and query_range it. */
689 *curpp = xfs_rmapbt_init_cursor(tp->t_mountp, tp, info->agf_bp,
690 info->agno);
691 return xfs_rmap_query_range(*curpp, &info->low, &info->high,
692 xfs_getfsmap_datadev_helper, info);
693 }
694
695 /* Execute a getfsmap query against the regular data device rmapbt. */
696 STATIC int
xfs_getfsmap_datadev_rmapbt(struct xfs_trans * tp,struct xfs_fsmap * keys,struct xfs_getfsmap_info * info)697 xfs_getfsmap_datadev_rmapbt(
698 struct xfs_trans *tp,
699 struct xfs_fsmap *keys,
700 struct xfs_getfsmap_info *info)
701 {
702 info->missing_owner = XFS_FMR_OWN_FREE;
703 return __xfs_getfsmap_datadev(tp, keys, info,
704 xfs_getfsmap_datadev_rmapbt_query, NULL);
705 }
706
707 /* Actually query the bno btree. */
708 STATIC int
xfs_getfsmap_datadev_bnobt_query(struct xfs_trans * tp,struct xfs_getfsmap_info * info,struct xfs_btree_cur ** curpp,void * priv)709 xfs_getfsmap_datadev_bnobt_query(
710 struct xfs_trans *tp,
711 struct xfs_getfsmap_info *info,
712 struct xfs_btree_cur **curpp,
713 void *priv)
714 {
715 struct xfs_alloc_rec_incore *key = priv;
716
717 /* Report any gap at the end of the last AG. */
718 if (info->last)
719 return xfs_getfsmap_datadev_bnobt_helper(*curpp, &key[1], info);
720
721 /* Allocate cursor for this AG and query_range it. */
722 *curpp = xfs_allocbt_init_cursor(tp->t_mountp, tp, info->agf_bp,
723 info->agno, XFS_BTNUM_BNO);
724 key->ar_startblock = info->low.rm_startblock;
725 key[1].ar_startblock = info->high.rm_startblock;
726 return xfs_alloc_query_range(*curpp, key, &key[1],
727 xfs_getfsmap_datadev_bnobt_helper, info);
728 }
729
730 /* Execute a getfsmap query against the regular data device's bnobt. */
731 STATIC int
xfs_getfsmap_datadev_bnobt(struct xfs_trans * tp,struct xfs_fsmap * keys,struct xfs_getfsmap_info * info)732 xfs_getfsmap_datadev_bnobt(
733 struct xfs_trans *tp,
734 struct xfs_fsmap *keys,
735 struct xfs_getfsmap_info *info)
736 {
737 struct xfs_alloc_rec_incore akeys[2];
738
739 info->missing_owner = XFS_FMR_OWN_UNKNOWN;
740 return __xfs_getfsmap_datadev(tp, keys, info,
741 xfs_getfsmap_datadev_bnobt_query, &akeys[0]);
742 }
743
744 /* Do we recognize the device? */
745 STATIC bool
xfs_getfsmap_is_valid_device(struct xfs_mount * mp,struct xfs_fsmap * fm)746 xfs_getfsmap_is_valid_device(
747 struct xfs_mount *mp,
748 struct xfs_fsmap *fm)
749 {
750 if (fm->fmr_device == 0 || fm->fmr_device == UINT_MAX ||
751 fm->fmr_device == new_encode_dev(mp->m_ddev_targp->bt_dev))
752 return true;
753 if (mp->m_logdev_targp &&
754 fm->fmr_device == new_encode_dev(mp->m_logdev_targp->bt_dev))
755 return true;
756 if (mp->m_rtdev_targp &&
757 fm->fmr_device == new_encode_dev(mp->m_rtdev_targp->bt_dev))
758 return true;
759 return false;
760 }
761
762 /* Ensure that the low key is less than the high key. */
763 STATIC bool
xfs_getfsmap_check_keys(struct xfs_fsmap * low_key,struct xfs_fsmap * high_key)764 xfs_getfsmap_check_keys(
765 struct xfs_fsmap *low_key,
766 struct xfs_fsmap *high_key)
767 {
768 if (low_key->fmr_device > high_key->fmr_device)
769 return false;
770 if (low_key->fmr_device < high_key->fmr_device)
771 return true;
772
773 if (low_key->fmr_physical > high_key->fmr_physical)
774 return false;
775 if (low_key->fmr_physical < high_key->fmr_physical)
776 return true;
777
778 if (low_key->fmr_owner > high_key->fmr_owner)
779 return false;
780 if (low_key->fmr_owner < high_key->fmr_owner)
781 return true;
782
783 if (low_key->fmr_offset > high_key->fmr_offset)
784 return false;
785 if (low_key->fmr_offset < high_key->fmr_offset)
786 return true;
787
788 return false;
789 }
790
791 /*
792 * There are only two devices if we didn't configure RT devices at build time.
793 */
794 #ifdef CONFIG_XFS_RT
795 #define XFS_GETFSMAP_DEVS 3
796 #else
797 #define XFS_GETFSMAP_DEVS 2
798 #endif /* CONFIG_XFS_RT */
799
800 /*
801 * Get filesystem's extents as described in head, and format for
802 * output. Calls formatter to fill the user's buffer until all
803 * extents are mapped, until the passed-in head->fmh_count slots have
804 * been filled, or until the formatter short-circuits the loop, if it
805 * is tracking filled-in extents on its own.
806 *
807 * Key to Confusion
808 * ----------------
809 * There are multiple levels of keys and counters at work here:
810 * xfs_fsmap_head.fmh_keys -- low and high fsmap keys passed in;
811 * these reflect fs-wide sector addrs.
812 * dkeys -- fmh_keys used to query each device;
813 * these are fmh_keys but w/ the low key
814 * bumped up by fmr_length.
815 * xfs_getfsmap_info.next_daddr -- next disk addr we expect to see; this
816 * is how we detect gaps in the fsmap
817 records and report them.
818 * xfs_getfsmap_info.low/high -- per-AG low/high keys computed from
819 * dkeys; used to query the metadata.
820 */
821 int
xfs_getfsmap(struct xfs_mount * mp,struct xfs_fsmap_head * head,xfs_fsmap_format_t formatter,void * arg)822 xfs_getfsmap(
823 struct xfs_mount *mp,
824 struct xfs_fsmap_head *head,
825 xfs_fsmap_format_t formatter,
826 void *arg)
827 {
828 struct xfs_trans *tp = NULL;
829 struct xfs_fsmap dkeys[2]; /* per-dev keys */
830 struct xfs_getfsmap_dev handlers[XFS_GETFSMAP_DEVS];
831 struct xfs_getfsmap_info info = { NULL };
832 bool use_rmap;
833 int i;
834 int error = 0;
835
836 if (head->fmh_iflags & ~FMH_IF_VALID)
837 return -EINVAL;
838 if (!xfs_getfsmap_is_valid_device(mp, &head->fmh_keys[0]) ||
839 !xfs_getfsmap_is_valid_device(mp, &head->fmh_keys[1]))
840 return -EINVAL;
841
842 use_rmap = capable(CAP_SYS_ADMIN) &&
843 xfs_sb_version_hasrmapbt(&mp->m_sb);
844 head->fmh_entries = 0;
845
846 /* Set up our device handlers. */
847 memset(handlers, 0, sizeof(handlers));
848 handlers[0].dev = new_encode_dev(mp->m_ddev_targp->bt_dev);
849 if (use_rmap)
850 handlers[0].fn = xfs_getfsmap_datadev_rmapbt;
851 else
852 handlers[0].fn = xfs_getfsmap_datadev_bnobt;
853 if (mp->m_logdev_targp != mp->m_ddev_targp) {
854 handlers[1].dev = new_encode_dev(mp->m_logdev_targp->bt_dev);
855 handlers[1].fn = xfs_getfsmap_logdev;
856 }
857 #ifdef CONFIG_XFS_RT
858 if (mp->m_rtdev_targp) {
859 handlers[2].dev = new_encode_dev(mp->m_rtdev_targp->bt_dev);
860 handlers[2].fn = xfs_getfsmap_rtdev_rtbitmap;
861 }
862 #endif /* CONFIG_XFS_RT */
863
864 xfs_sort(handlers, XFS_GETFSMAP_DEVS, sizeof(struct xfs_getfsmap_dev),
865 xfs_getfsmap_dev_compare);
866
867 /*
868 * To continue where we left off, we allow userspace to use the
869 * last mapping from a previous call as the low key of the next.
870 * This is identified by a non-zero length in the low key. We
871 * have to increment the low key in this scenario to ensure we
872 * don't return the same mapping again, and instead return the
873 * very next mapping.
874 *
875 * If the low key mapping refers to file data, the same physical
876 * blocks could be mapped to several other files/offsets.
877 * According to rmapbt record ordering, the minimal next
878 * possible record for the block range is the next starting
879 * offset in the same inode. Therefore, bump the file offset to
880 * continue the search appropriately. For all other low key
881 * mapping types (attr blocks, metadata), bump the physical
882 * offset as there can be no other mapping for the same physical
883 * block range.
884 */
885 dkeys[0] = head->fmh_keys[0];
886 if (dkeys[0].fmr_flags & (FMR_OF_SPECIAL_OWNER | FMR_OF_EXTENT_MAP)) {
887 dkeys[0].fmr_physical += dkeys[0].fmr_length;
888 dkeys[0].fmr_owner = 0;
889 if (dkeys[0].fmr_offset)
890 return -EINVAL;
891 } else
892 dkeys[0].fmr_offset += dkeys[0].fmr_length;
893 dkeys[0].fmr_length = 0;
894 memset(&dkeys[1], 0xFF, sizeof(struct xfs_fsmap));
895
896 if (!xfs_getfsmap_check_keys(dkeys, &head->fmh_keys[1]))
897 return -EINVAL;
898
899 info.next_daddr = head->fmh_keys[0].fmr_physical +
900 head->fmh_keys[0].fmr_length;
901 info.formatter = formatter;
902 info.format_arg = arg;
903 info.head = head;
904
905 /* For each device we support... */
906 for (i = 0; i < XFS_GETFSMAP_DEVS; i++) {
907 /* Is this device within the range the user asked for? */
908 if (!handlers[i].fn)
909 continue;
910 if (head->fmh_keys[0].fmr_device > handlers[i].dev)
911 continue;
912 if (head->fmh_keys[1].fmr_device < handlers[i].dev)
913 break;
914
915 /*
916 * If this device number matches the high key, we have
917 * to pass the high key to the handler to limit the
918 * query results. If the device number exceeds the
919 * low key, zero out the low key so that we get
920 * everything from the beginning.
921 */
922 if (handlers[i].dev == head->fmh_keys[1].fmr_device)
923 dkeys[1] = head->fmh_keys[1];
924 if (handlers[i].dev > head->fmh_keys[0].fmr_device)
925 memset(&dkeys[0], 0, sizeof(struct xfs_fsmap));
926
927 error = xfs_trans_alloc_empty(mp, &tp);
928 if (error)
929 break;
930
931 info.dev = handlers[i].dev;
932 info.last = false;
933 info.agno = NULLAGNUMBER;
934 error = handlers[i].fn(tp, dkeys, &info);
935 if (error)
936 break;
937 xfs_trans_cancel(tp);
938 tp = NULL;
939 info.next_daddr = 0;
940 }
941
942 if (tp)
943 xfs_trans_cancel(tp);
944 head->fmh_oflags = FMH_OF_DEV_T;
945 return error;
946 }
947