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1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright (c) 2000-2003 Silicon Graphics, Inc.
4  * All Rights Reserved.
5  */
6 #include "xfs.h"
7 #include "xfs_fs.h"
8 #include "xfs_format.h"
9 #include "xfs_log_format.h"
10 #include "xfs_shared.h"
11 #include "xfs_trans_resv.h"
12 #include "xfs_bit.h"
13 #include "xfs_mount.h"
14 #include "xfs_defer.h"
15 #include "xfs_inode.h"
16 #include "xfs_bmap.h"
17 #include "xfs_quota.h"
18 #include "xfs_trans.h"
19 #include "xfs_buf_item.h"
20 #include "xfs_trans_space.h"
21 #include "xfs_trans_priv.h"
22 #include "xfs_qm.h"
23 #include "xfs_trace.h"
24 #include "xfs_log.h"
25 #include "xfs_bmap_btree.h"
26 #include "xfs_error.h"
27 #include "xfs_health.h"
28 
29 /*
30  * Lock order:
31  *
32  * ip->i_lock
33  *   qi->qi_tree_lock
34  *     dquot->q_qlock (xfs_dqlock() and friends)
35  *       dquot->q_flush (xfs_dqflock() and friends)
36  *       qi->qi_lru_lock
37  *
38  * If two dquots need to be locked the order is user before group/project,
39  * otherwise by the lowest id first, see xfs_dqlock2.
40  */
41 
42 struct kmem_cache		*xfs_dqtrx_cache;
43 static struct kmem_cache	*xfs_dquot_cache;
44 
45 static struct lock_class_key xfs_dquot_group_class;
46 static struct lock_class_key xfs_dquot_project_class;
47 
48 /* Record observations of quota corruption with the health tracking system. */
49 static void
xfs_dquot_mark_sick(struct xfs_dquot * dqp)50 xfs_dquot_mark_sick(
51 	struct xfs_dquot	*dqp)
52 {
53 	struct xfs_mount	*mp = dqp->q_mount;
54 
55 	switch (dqp->q_type) {
56 	case XFS_DQTYPE_USER:
57 		xfs_fs_mark_sick(mp, XFS_SICK_FS_UQUOTA);
58 		break;
59 	case XFS_DQTYPE_GROUP:
60 		xfs_fs_mark_sick(mp, XFS_SICK_FS_GQUOTA);
61 		break;
62 	case XFS_DQTYPE_PROJ:
63 		xfs_fs_mark_sick(mp, XFS_SICK_FS_PQUOTA);
64 		break;
65 	default:
66 		ASSERT(0);
67 		break;
68 	}
69 }
70 
71 /*
72  * Detach the dquot buffer if it's still attached, because we can get called
73  * through dqpurge after a log shutdown.  Caller must hold the dqflock or have
74  * otherwise isolated the dquot.
75  */
76 void
xfs_dquot_detach_buf(struct xfs_dquot * dqp)77 xfs_dquot_detach_buf(
78 	struct xfs_dquot	*dqp)
79 {
80 	struct xfs_dq_logitem	*qlip = &dqp->q_logitem;
81 	struct xfs_buf		*bp = NULL;
82 
83 	spin_lock(&qlip->qli_lock);
84 	if (qlip->qli_item.li_buf) {
85 		bp = qlip->qli_item.li_buf;
86 		qlip->qli_item.li_buf = NULL;
87 	}
88 	spin_unlock(&qlip->qli_lock);
89 	if (bp) {
90 		xfs_buf_lock(bp);
91 		list_del_init(&qlip->qli_item.li_bio_list);
92 		xfs_buf_relse(bp);
93 	}
94 }
95 
96 /*
97  * This is called to free all the memory associated with a dquot
98  */
99 void
xfs_qm_dqdestroy(struct xfs_dquot * dqp)100 xfs_qm_dqdestroy(
101 	struct xfs_dquot	*dqp)
102 {
103 	ASSERT(list_empty(&dqp->q_lru));
104 	ASSERT(dqp->q_logitem.qli_item.li_buf == NULL);
105 
106 	kvfree(dqp->q_logitem.qli_item.li_lv_shadow);
107 	mutex_destroy(&dqp->q_qlock);
108 
109 	XFS_STATS_DEC(dqp->q_mount, xs_qm_dquot);
110 	kmem_cache_free(xfs_dquot_cache, dqp);
111 }
112 
113 /*
114  * If default limits are in force, push them into the dquot now.
115  * We overwrite the dquot limits only if they are zero and this
116  * is not the root dquot.
117  */
118 void
xfs_qm_adjust_dqlimits(struct xfs_dquot * dq)119 xfs_qm_adjust_dqlimits(
120 	struct xfs_dquot	*dq)
121 {
122 	struct xfs_mount	*mp = dq->q_mount;
123 	struct xfs_quotainfo	*q = mp->m_quotainfo;
124 	struct xfs_def_quota	*defq;
125 	int			prealloc = 0;
126 
127 	ASSERT(dq->q_id);
128 	defq = xfs_get_defquota(q, xfs_dquot_type(dq));
129 
130 	if (!dq->q_blk.softlimit) {
131 		dq->q_blk.softlimit = defq->blk.soft;
132 		prealloc = 1;
133 	}
134 	if (!dq->q_blk.hardlimit) {
135 		dq->q_blk.hardlimit = defq->blk.hard;
136 		prealloc = 1;
137 	}
138 	if (!dq->q_ino.softlimit)
139 		dq->q_ino.softlimit = defq->ino.soft;
140 	if (!dq->q_ino.hardlimit)
141 		dq->q_ino.hardlimit = defq->ino.hard;
142 	if (!dq->q_rtb.softlimit)
143 		dq->q_rtb.softlimit = defq->rtb.soft;
144 	if (!dq->q_rtb.hardlimit)
145 		dq->q_rtb.hardlimit = defq->rtb.hard;
146 
147 	if (prealloc)
148 		xfs_dquot_set_prealloc_limits(dq);
149 }
150 
151 /* Set the expiration time of a quota's grace period. */
152 time64_t
xfs_dquot_set_timeout(struct xfs_mount * mp,time64_t timeout)153 xfs_dquot_set_timeout(
154 	struct xfs_mount	*mp,
155 	time64_t		timeout)
156 {
157 	struct xfs_quotainfo	*qi = mp->m_quotainfo;
158 
159 	return clamp_t(time64_t, timeout, qi->qi_expiry_min,
160 					  qi->qi_expiry_max);
161 }
162 
163 /* Set the length of the default grace period. */
164 time64_t
xfs_dquot_set_grace_period(time64_t grace)165 xfs_dquot_set_grace_period(
166 	time64_t		grace)
167 {
168 	return clamp_t(time64_t, grace, XFS_DQ_GRACE_MIN, XFS_DQ_GRACE_MAX);
169 }
170 
171 /*
172  * Determine if this quota counter is over either limit and set the quota
173  * timers as appropriate.
174  */
175 static inline void
xfs_qm_adjust_res_timer(struct xfs_mount * mp,struct xfs_dquot_res * res,struct xfs_quota_limits * qlim)176 xfs_qm_adjust_res_timer(
177 	struct xfs_mount	*mp,
178 	struct xfs_dquot_res	*res,
179 	struct xfs_quota_limits	*qlim)
180 {
181 	ASSERT(res->hardlimit == 0 || res->softlimit <= res->hardlimit);
182 
183 	if ((res->softlimit && res->count > res->softlimit) ||
184 	    (res->hardlimit && res->count > res->hardlimit)) {
185 		if (res->timer == 0)
186 			res->timer = xfs_dquot_set_timeout(mp,
187 					ktime_get_real_seconds() + qlim->time);
188 	} else {
189 		res->timer = 0;
190 	}
191 }
192 
193 /*
194  * Check the limits and timers of a dquot and start or reset timers
195  * if necessary.
196  * This gets called even when quota enforcement is OFF, which makes our
197  * life a little less complicated. (We just don't reject any quota
198  * reservations in that case, when enforcement is off).
199  * We also return 0 as the values of the timers in Q_GETQUOTA calls, when
200  * enforcement's off.
201  * In contrast, warnings are a little different in that they don't
202  * 'automatically' get started when limits get exceeded.  They do
203  * get reset to zero, however, when we find the count to be under
204  * the soft limit (they are only ever set non-zero via userspace).
205  */
206 void
xfs_qm_adjust_dqtimers(struct xfs_dquot * dq)207 xfs_qm_adjust_dqtimers(
208 	struct xfs_dquot	*dq)
209 {
210 	struct xfs_mount	*mp = dq->q_mount;
211 	struct xfs_quotainfo	*qi = mp->m_quotainfo;
212 	struct xfs_def_quota	*defq;
213 
214 	ASSERT(dq->q_id);
215 	defq = xfs_get_defquota(qi, xfs_dquot_type(dq));
216 
217 	xfs_qm_adjust_res_timer(dq->q_mount, &dq->q_blk, &defq->blk);
218 	xfs_qm_adjust_res_timer(dq->q_mount, &dq->q_ino, &defq->ino);
219 	xfs_qm_adjust_res_timer(dq->q_mount, &dq->q_rtb, &defq->rtb);
220 }
221 
222 /*
223  * initialize a buffer full of dquots and log the whole thing
224  */
225 void
xfs_qm_init_dquot_blk(struct xfs_trans * tp,xfs_dqid_t id,xfs_dqtype_t type,struct xfs_buf * bp)226 xfs_qm_init_dquot_blk(
227 	struct xfs_trans	*tp,
228 	xfs_dqid_t		id,
229 	xfs_dqtype_t		type,
230 	struct xfs_buf		*bp)
231 {
232 	struct xfs_mount	*mp = tp->t_mountp;
233 	struct xfs_quotainfo	*q = mp->m_quotainfo;
234 	struct xfs_dqblk	*d;
235 	xfs_dqid_t		curid;
236 	unsigned int		qflag;
237 	unsigned int		blftype;
238 	int			i;
239 
240 	ASSERT(tp);
241 	ASSERT(xfs_buf_islocked(bp));
242 
243 	switch (type) {
244 	case XFS_DQTYPE_USER:
245 		qflag = XFS_UQUOTA_CHKD;
246 		blftype = XFS_BLF_UDQUOT_BUF;
247 		break;
248 	case XFS_DQTYPE_PROJ:
249 		qflag = XFS_PQUOTA_CHKD;
250 		blftype = XFS_BLF_PDQUOT_BUF;
251 		break;
252 	case XFS_DQTYPE_GROUP:
253 		qflag = XFS_GQUOTA_CHKD;
254 		blftype = XFS_BLF_GDQUOT_BUF;
255 		break;
256 	default:
257 		ASSERT(0);
258 		return;
259 	}
260 
261 	d = bp->b_addr;
262 
263 	/*
264 	 * ID of the first dquot in the block - id's are zero based.
265 	 */
266 	curid = id - (id % q->qi_dqperchunk);
267 	memset(d, 0, BBTOB(q->qi_dqchunklen));
268 	for (i = 0; i < q->qi_dqperchunk; i++, d++, curid++) {
269 		d->dd_diskdq.d_magic = cpu_to_be16(XFS_DQUOT_MAGIC);
270 		d->dd_diskdq.d_version = XFS_DQUOT_VERSION;
271 		d->dd_diskdq.d_id = cpu_to_be32(curid);
272 		d->dd_diskdq.d_type = type;
273 		if (curid > 0 && xfs_has_bigtime(mp))
274 			d->dd_diskdq.d_type |= XFS_DQTYPE_BIGTIME;
275 		if (xfs_has_crc(mp)) {
276 			uuid_copy(&d->dd_uuid, &mp->m_sb.sb_meta_uuid);
277 			xfs_update_cksum((char *)d, sizeof(struct xfs_dqblk),
278 					 XFS_DQUOT_CRC_OFF);
279 		}
280 	}
281 
282 	xfs_trans_dquot_buf(tp, bp, blftype);
283 
284 	/*
285 	 * quotacheck uses delayed writes to update all the dquots on disk in an
286 	 * efficient manner instead of logging the individual dquot changes as
287 	 * they are made. However if we log the buffer allocated here and crash
288 	 * after quotacheck while the logged initialisation is still in the
289 	 * active region of the log, log recovery can replay the dquot buffer
290 	 * initialisation over the top of the checked dquots and corrupt quota
291 	 * accounting.
292 	 *
293 	 * To avoid this problem, quotacheck cannot log the initialised buffer.
294 	 * We must still dirty the buffer and write it back before the
295 	 * allocation transaction clears the log. Therefore, mark the buffer as
296 	 * ordered instead of logging it directly. This is safe for quotacheck
297 	 * because it detects and repairs allocated but initialized dquot blocks
298 	 * in the quota inodes.
299 	 */
300 	if (!(mp->m_qflags & qflag))
301 		xfs_trans_ordered_buf(tp, bp);
302 	else
303 		xfs_trans_log_buf(tp, bp, 0, BBTOB(q->qi_dqchunklen) - 1);
304 }
305 
306 /*
307  * Initialize the dynamic speculative preallocation thresholds. The lo/hi
308  * watermarks correspond to the soft and hard limits by default. If a soft limit
309  * is not specified, we use 95% of the hard limit.
310  */
311 void
xfs_dquot_set_prealloc_limits(struct xfs_dquot * dqp)312 xfs_dquot_set_prealloc_limits(struct xfs_dquot *dqp)
313 {
314 	uint64_t space;
315 
316 	dqp->q_prealloc_hi_wmark = dqp->q_blk.hardlimit;
317 	dqp->q_prealloc_lo_wmark = dqp->q_blk.softlimit;
318 	if (!dqp->q_prealloc_lo_wmark) {
319 		dqp->q_prealloc_lo_wmark = dqp->q_prealloc_hi_wmark;
320 		do_div(dqp->q_prealloc_lo_wmark, 100);
321 		dqp->q_prealloc_lo_wmark *= 95;
322 	}
323 
324 	space = dqp->q_prealloc_hi_wmark;
325 
326 	do_div(space, 100);
327 	dqp->q_low_space[XFS_QLOWSP_1_PCNT] = space;
328 	dqp->q_low_space[XFS_QLOWSP_3_PCNT] = space * 3;
329 	dqp->q_low_space[XFS_QLOWSP_5_PCNT] = space * 5;
330 }
331 
332 /*
333  * Ensure that the given in-core dquot has a buffer on disk backing it, and
334  * return the buffer locked and held. This is called when the bmapi finds a
335  * hole.
336  */
337 STATIC int
xfs_dquot_disk_alloc(struct xfs_dquot * dqp,struct xfs_buf ** bpp)338 xfs_dquot_disk_alloc(
339 	struct xfs_dquot	*dqp,
340 	struct xfs_buf		**bpp)
341 {
342 	struct xfs_bmbt_irec	map;
343 	struct xfs_trans	*tp;
344 	struct xfs_mount	*mp = dqp->q_mount;
345 	struct xfs_buf		*bp;
346 	xfs_dqtype_t		qtype = xfs_dquot_type(dqp);
347 	struct xfs_inode	*quotip = xfs_quota_inode(mp, qtype);
348 	int			nmaps = 1;
349 	int			error;
350 
351 	trace_xfs_dqalloc(dqp);
352 
353 	error = xfs_trans_alloc(mp, &M_RES(mp)->tr_qm_dqalloc,
354 			XFS_QM_DQALLOC_SPACE_RES(mp), 0, 0, &tp);
355 	if (error)
356 		return error;
357 
358 	xfs_ilock(quotip, XFS_ILOCK_EXCL);
359 	xfs_trans_ijoin(tp, quotip, 0);
360 
361 	if (!xfs_this_quota_on(dqp->q_mount, qtype)) {
362 		/*
363 		 * Return if this type of quotas is turned off while we didn't
364 		 * have an inode lock
365 		 */
366 		error = -ESRCH;
367 		goto err_cancel;
368 	}
369 
370 	error = xfs_iext_count_extend(tp, quotip, XFS_DATA_FORK,
371 			XFS_IEXT_ADD_NOSPLIT_CNT);
372 	if (error)
373 		goto err_cancel;
374 
375 	/* Create the block mapping. */
376 	error = xfs_bmapi_write(tp, quotip, dqp->q_fileoffset,
377 			XFS_DQUOT_CLUSTER_SIZE_FSB, XFS_BMAPI_METADATA, 0, &map,
378 			&nmaps);
379 	if (error)
380 		goto err_cancel;
381 
382 	ASSERT(map.br_blockcount == XFS_DQUOT_CLUSTER_SIZE_FSB);
383 	ASSERT((map.br_startblock != DELAYSTARTBLOCK) &&
384 	       (map.br_startblock != HOLESTARTBLOCK));
385 
386 	/*
387 	 * Keep track of the blkno to save a lookup later
388 	 */
389 	dqp->q_blkno = XFS_FSB_TO_DADDR(mp, map.br_startblock);
390 
391 	/* now we can just get the buffer (there's nothing to read yet) */
392 	error = xfs_trans_get_buf(tp, mp->m_ddev_targp, dqp->q_blkno,
393 			mp->m_quotainfo->qi_dqchunklen, 0, &bp);
394 	if (error)
395 		goto err_cancel;
396 	bp->b_ops = &xfs_dquot_buf_ops;
397 
398 	/*
399 	 * Make a chunk of dquots out of this buffer and log
400 	 * the entire thing.
401 	 */
402 	xfs_qm_init_dquot_blk(tp, dqp->q_id, qtype, bp);
403 	xfs_buf_set_ref(bp, XFS_DQUOT_REF);
404 
405 	/*
406 	 * Hold the buffer and join it to the dfops so that we'll still own
407 	 * the buffer when we return to the caller.  The buffer disposal on
408 	 * error must be paid attention to very carefully, as it has been
409 	 * broken since commit efa092f3d4c6 "[XFS] Fixes a bug in the quota
410 	 * code when allocating a new dquot record" in 2005, and the later
411 	 * conversion to xfs_defer_ops in commit 310a75a3c6c747 failed to keep
412 	 * the buffer locked across the _defer_finish call.  We can now do
413 	 * this correctly with xfs_defer_bjoin.
414 	 *
415 	 * Above, we allocated a disk block for the dquot information and used
416 	 * get_buf to initialize the dquot. If the _defer_finish fails, the old
417 	 * transaction is gone but the new buffer is not joined or held to any
418 	 * transaction, so we must _buf_relse it.
419 	 *
420 	 * If everything succeeds, the caller of this function is returned a
421 	 * buffer that is locked and held to the transaction.  The caller
422 	 * is responsible for unlocking any buffer passed back, either
423 	 * manually or by committing the transaction.  On error, the buffer is
424 	 * released and not passed back.
425 	 *
426 	 * Keep the quota inode ILOCKed until after the transaction commit to
427 	 * maintain the atomicity of bmap/rmap updates.
428 	 */
429 	xfs_trans_bhold(tp, bp);
430 	error = xfs_trans_commit(tp);
431 	xfs_iunlock(quotip, XFS_ILOCK_EXCL);
432 	if (error) {
433 		xfs_buf_relse(bp);
434 		return error;
435 	}
436 
437 	*bpp = bp;
438 	return 0;
439 
440 err_cancel:
441 	xfs_trans_cancel(tp);
442 	xfs_iunlock(quotip, XFS_ILOCK_EXCL);
443 	return error;
444 }
445 
446 /*
447  * Read in the in-core dquot's on-disk metadata and return the buffer.
448  * Returns ENOENT to signal a hole.
449  */
450 STATIC int
xfs_dquot_disk_read(struct xfs_mount * mp,struct xfs_dquot * dqp,struct xfs_buf ** bpp)451 xfs_dquot_disk_read(
452 	struct xfs_mount	*mp,
453 	struct xfs_dquot	*dqp,
454 	struct xfs_buf		**bpp)
455 {
456 	struct xfs_bmbt_irec	map;
457 	struct xfs_buf		*bp;
458 	xfs_dqtype_t		qtype = xfs_dquot_type(dqp);
459 	struct xfs_inode	*quotip = xfs_quota_inode(mp, qtype);
460 	uint			lock_mode;
461 	int			nmaps = 1;
462 	int			error;
463 
464 	lock_mode = xfs_ilock_data_map_shared(quotip);
465 	if (!xfs_this_quota_on(mp, qtype)) {
466 		/*
467 		 * Return if this type of quotas is turned off while we
468 		 * didn't have the quota inode lock.
469 		 */
470 		xfs_iunlock(quotip, lock_mode);
471 		return -ESRCH;
472 	}
473 
474 	/*
475 	 * Find the block map; no allocations yet
476 	 */
477 	error = xfs_bmapi_read(quotip, dqp->q_fileoffset,
478 			XFS_DQUOT_CLUSTER_SIZE_FSB, &map, &nmaps, 0);
479 	xfs_iunlock(quotip, lock_mode);
480 	if (error)
481 		return error;
482 
483 	ASSERT(nmaps == 1);
484 	ASSERT(map.br_blockcount >= 1);
485 	ASSERT(map.br_startblock != DELAYSTARTBLOCK);
486 	if (map.br_startblock == HOLESTARTBLOCK)
487 		return -ENOENT;
488 
489 	trace_xfs_dqtobp_read(dqp);
490 
491 	/*
492 	 * store the blkno etc so that we don't have to do the
493 	 * mapping all the time
494 	 */
495 	dqp->q_blkno = XFS_FSB_TO_DADDR(mp, map.br_startblock);
496 
497 	error = xfs_trans_read_buf(mp, NULL, mp->m_ddev_targp, dqp->q_blkno,
498 			mp->m_quotainfo->qi_dqchunklen, 0, &bp,
499 			&xfs_dquot_buf_ops);
500 	if (xfs_metadata_is_sick(error))
501 		xfs_dquot_mark_sick(dqp);
502 	if (error) {
503 		ASSERT(bp == NULL);
504 		return error;
505 	}
506 
507 	ASSERT(xfs_buf_islocked(bp));
508 	xfs_buf_set_ref(bp, XFS_DQUOT_REF);
509 	*bpp = bp;
510 
511 	return 0;
512 }
513 
514 /* Allocate and initialize everything we need for an incore dquot. */
515 STATIC struct xfs_dquot *
xfs_dquot_alloc(struct xfs_mount * mp,xfs_dqid_t id,xfs_dqtype_t type)516 xfs_dquot_alloc(
517 	struct xfs_mount	*mp,
518 	xfs_dqid_t		id,
519 	xfs_dqtype_t		type)
520 {
521 	struct xfs_dquot	*dqp;
522 
523 	dqp = kmem_cache_zalloc(xfs_dquot_cache, GFP_KERNEL | __GFP_NOFAIL);
524 
525 	dqp->q_type = type;
526 	dqp->q_id = id;
527 	dqp->q_mount = mp;
528 	INIT_LIST_HEAD(&dqp->q_lru);
529 	mutex_init(&dqp->q_qlock);
530 	init_waitqueue_head(&dqp->q_pinwait);
531 	dqp->q_fileoffset = (xfs_fileoff_t)id / mp->m_quotainfo->qi_dqperchunk;
532 	/*
533 	 * Offset of dquot in the (fixed sized) dquot chunk.
534 	 */
535 	dqp->q_bufoffset = (id % mp->m_quotainfo->qi_dqperchunk) *
536 			sizeof(struct xfs_dqblk);
537 
538 	/*
539 	 * Because we want to use a counting completion, complete
540 	 * the flush completion once to allow a single access to
541 	 * the flush completion without blocking.
542 	 */
543 	init_completion(&dqp->q_flush);
544 	complete(&dqp->q_flush);
545 
546 	/*
547 	 * Make sure group quotas have a different lock class than user
548 	 * quotas.
549 	 */
550 	switch (type) {
551 	case XFS_DQTYPE_USER:
552 		/* uses the default lock class */
553 		break;
554 	case XFS_DQTYPE_GROUP:
555 		lockdep_set_class(&dqp->q_qlock, &xfs_dquot_group_class);
556 		break;
557 	case XFS_DQTYPE_PROJ:
558 		lockdep_set_class(&dqp->q_qlock, &xfs_dquot_project_class);
559 		break;
560 	default:
561 		ASSERT(0);
562 		break;
563 	}
564 
565 	xfs_qm_dquot_logitem_init(dqp);
566 
567 	XFS_STATS_INC(mp, xs_qm_dquot);
568 	return dqp;
569 }
570 
571 /* Check the ondisk dquot's id and type match what the incore dquot expects. */
572 static bool
xfs_dquot_check_type(struct xfs_dquot * dqp,struct xfs_disk_dquot * ddqp)573 xfs_dquot_check_type(
574 	struct xfs_dquot	*dqp,
575 	struct xfs_disk_dquot	*ddqp)
576 {
577 	uint8_t			ddqp_type;
578 	uint8_t			dqp_type;
579 
580 	ddqp_type = ddqp->d_type & XFS_DQTYPE_REC_MASK;
581 	dqp_type = xfs_dquot_type(dqp);
582 
583 	if (be32_to_cpu(ddqp->d_id) != dqp->q_id)
584 		return false;
585 
586 	/*
587 	 * V5 filesystems always expect an exact type match.  V4 filesystems
588 	 * expect an exact match for user dquots and for non-root group and
589 	 * project dquots.
590 	 */
591 	if (xfs_has_crc(dqp->q_mount) ||
592 	    dqp_type == XFS_DQTYPE_USER || dqp->q_id != 0)
593 		return ddqp_type == dqp_type;
594 
595 	/*
596 	 * V4 filesystems support either group or project quotas, but not both
597 	 * at the same time.  The non-user quota file can be switched between
598 	 * group and project quota uses depending on the mount options, which
599 	 * means that we can encounter the other type when we try to load quota
600 	 * defaults.  Quotacheck will soon reset the entire quota file
601 	 * (including the root dquot) anyway, but don't log scary corruption
602 	 * reports to dmesg.
603 	 */
604 	return ddqp_type == XFS_DQTYPE_GROUP || ddqp_type == XFS_DQTYPE_PROJ;
605 }
606 
607 /* Copy the in-core quota fields in from the on-disk buffer. */
608 STATIC int
xfs_dquot_from_disk(struct xfs_dquot * dqp,struct xfs_buf * bp)609 xfs_dquot_from_disk(
610 	struct xfs_dquot	*dqp,
611 	struct xfs_buf		*bp)
612 {
613 	struct xfs_dqblk	*dqb = xfs_buf_offset(bp, dqp->q_bufoffset);
614 	struct xfs_disk_dquot	*ddqp = &dqb->dd_diskdq;
615 
616 	/*
617 	 * Ensure that we got the type and ID we were looking for.
618 	 * Everything else was checked by the dquot buffer verifier.
619 	 */
620 	if (!xfs_dquot_check_type(dqp, ddqp)) {
621 		xfs_alert_tag(bp->b_mount, XFS_PTAG_VERIFIER_ERROR,
622 			  "Metadata corruption detected at %pS, quota %u",
623 			  __this_address, dqp->q_id);
624 		xfs_alert(bp->b_mount, "Unmount and run xfs_repair");
625 		xfs_dquot_mark_sick(dqp);
626 		return -EFSCORRUPTED;
627 	}
628 
629 	/* copy everything from disk dquot to the incore dquot */
630 	dqp->q_type = ddqp->d_type;
631 	dqp->q_blk.hardlimit = be64_to_cpu(ddqp->d_blk_hardlimit);
632 	dqp->q_blk.softlimit = be64_to_cpu(ddqp->d_blk_softlimit);
633 	dqp->q_ino.hardlimit = be64_to_cpu(ddqp->d_ino_hardlimit);
634 	dqp->q_ino.softlimit = be64_to_cpu(ddqp->d_ino_softlimit);
635 	dqp->q_rtb.hardlimit = be64_to_cpu(ddqp->d_rtb_hardlimit);
636 	dqp->q_rtb.softlimit = be64_to_cpu(ddqp->d_rtb_softlimit);
637 
638 	dqp->q_blk.count = be64_to_cpu(ddqp->d_bcount);
639 	dqp->q_ino.count = be64_to_cpu(ddqp->d_icount);
640 	dqp->q_rtb.count = be64_to_cpu(ddqp->d_rtbcount);
641 
642 	dqp->q_blk.timer = xfs_dquot_from_disk_ts(ddqp, ddqp->d_btimer);
643 	dqp->q_ino.timer = xfs_dquot_from_disk_ts(ddqp, ddqp->d_itimer);
644 	dqp->q_rtb.timer = xfs_dquot_from_disk_ts(ddqp, ddqp->d_rtbtimer);
645 
646 	/*
647 	 * Reservation counters are defined as reservation plus current usage
648 	 * to avoid having to add every time.
649 	 */
650 	dqp->q_blk.reserved = dqp->q_blk.count;
651 	dqp->q_ino.reserved = dqp->q_ino.count;
652 	dqp->q_rtb.reserved = dqp->q_rtb.count;
653 
654 	/* initialize the dquot speculative prealloc thresholds */
655 	xfs_dquot_set_prealloc_limits(dqp);
656 	return 0;
657 }
658 
659 /* Copy the in-core quota fields into the on-disk buffer. */
660 void
xfs_dquot_to_disk(struct xfs_disk_dquot * ddqp,struct xfs_dquot * dqp)661 xfs_dquot_to_disk(
662 	struct xfs_disk_dquot	*ddqp,
663 	struct xfs_dquot	*dqp)
664 {
665 	ddqp->d_magic = cpu_to_be16(XFS_DQUOT_MAGIC);
666 	ddqp->d_version = XFS_DQUOT_VERSION;
667 	ddqp->d_type = dqp->q_type;
668 	ddqp->d_id = cpu_to_be32(dqp->q_id);
669 	ddqp->d_pad0 = 0;
670 	ddqp->d_pad = 0;
671 
672 	ddqp->d_blk_hardlimit = cpu_to_be64(dqp->q_blk.hardlimit);
673 	ddqp->d_blk_softlimit = cpu_to_be64(dqp->q_blk.softlimit);
674 	ddqp->d_ino_hardlimit = cpu_to_be64(dqp->q_ino.hardlimit);
675 	ddqp->d_ino_softlimit = cpu_to_be64(dqp->q_ino.softlimit);
676 	ddqp->d_rtb_hardlimit = cpu_to_be64(dqp->q_rtb.hardlimit);
677 	ddqp->d_rtb_softlimit = cpu_to_be64(dqp->q_rtb.softlimit);
678 
679 	ddqp->d_bcount = cpu_to_be64(dqp->q_blk.count);
680 	ddqp->d_icount = cpu_to_be64(dqp->q_ino.count);
681 	ddqp->d_rtbcount = cpu_to_be64(dqp->q_rtb.count);
682 
683 	ddqp->d_bwarns = 0;
684 	ddqp->d_iwarns = 0;
685 	ddqp->d_rtbwarns = 0;
686 
687 	ddqp->d_btimer = xfs_dquot_to_disk_ts(dqp, dqp->q_blk.timer);
688 	ddqp->d_itimer = xfs_dquot_to_disk_ts(dqp, dqp->q_ino.timer);
689 	ddqp->d_rtbtimer = xfs_dquot_to_disk_ts(dqp, dqp->q_rtb.timer);
690 }
691 
692 /*
693  * Read in the ondisk dquot using dqtobp() then copy it to an incore version,
694  * and release the buffer immediately.  If @can_alloc is true, fill any
695  * holes in the on-disk metadata.
696  */
697 static int
xfs_qm_dqread(struct xfs_mount * mp,xfs_dqid_t id,xfs_dqtype_t type,bool can_alloc,struct xfs_dquot ** dqpp)698 xfs_qm_dqread(
699 	struct xfs_mount	*mp,
700 	xfs_dqid_t		id,
701 	xfs_dqtype_t		type,
702 	bool			can_alloc,
703 	struct xfs_dquot	**dqpp)
704 {
705 	struct xfs_dquot	*dqp;
706 	struct xfs_buf		*bp;
707 	int			error;
708 
709 	dqp = xfs_dquot_alloc(mp, id, type);
710 	trace_xfs_dqread(dqp);
711 
712 	/* Try to read the buffer, allocating if necessary. */
713 	error = xfs_dquot_disk_read(mp, dqp, &bp);
714 	if (error == -ENOENT && can_alloc)
715 		error = xfs_dquot_disk_alloc(dqp, &bp);
716 	if (error)
717 		goto err;
718 
719 	/*
720 	 * At this point we should have a clean locked buffer.  Copy the data
721 	 * to the incore dquot and release the buffer since the incore dquot
722 	 * has its own locking protocol so we needn't tie up the buffer any
723 	 * further.
724 	 */
725 	ASSERT(xfs_buf_islocked(bp));
726 	error = xfs_dquot_from_disk(dqp, bp);
727 	xfs_buf_relse(bp);
728 	if (error)
729 		goto err;
730 
731 	*dqpp = dqp;
732 	return error;
733 
734 err:
735 	trace_xfs_dqread_fail(dqp);
736 	xfs_qm_dqdestroy(dqp);
737 	*dqpp = NULL;
738 	return error;
739 }
740 
741 /*
742  * Advance to the next id in the current chunk, or if at the
743  * end of the chunk, skip ahead to first id in next allocated chunk
744  * using the SEEK_DATA interface.
745  */
746 static int
xfs_dq_get_next_id(struct xfs_mount * mp,xfs_dqtype_t type,xfs_dqid_t * id)747 xfs_dq_get_next_id(
748 	struct xfs_mount	*mp,
749 	xfs_dqtype_t		type,
750 	xfs_dqid_t		*id)
751 {
752 	struct xfs_inode	*quotip = xfs_quota_inode(mp, type);
753 	xfs_dqid_t		next_id = *id + 1; /* simple advance */
754 	uint			lock_flags;
755 	struct xfs_bmbt_irec	got;
756 	struct xfs_iext_cursor	cur;
757 	xfs_fsblock_t		start;
758 	int			error = 0;
759 
760 	/* If we'd wrap past the max ID, stop */
761 	if (next_id < *id)
762 		return -ENOENT;
763 
764 	/* If new ID is within the current chunk, advancing it sufficed */
765 	if (next_id % mp->m_quotainfo->qi_dqperchunk) {
766 		*id = next_id;
767 		return 0;
768 	}
769 
770 	/* Nope, next_id is now past the current chunk, so find the next one */
771 	start = (xfs_fsblock_t)next_id / mp->m_quotainfo->qi_dqperchunk;
772 
773 	lock_flags = xfs_ilock_data_map_shared(quotip);
774 	error = xfs_iread_extents(NULL, quotip, XFS_DATA_FORK);
775 	if (error)
776 		return error;
777 
778 	if (xfs_iext_lookup_extent(quotip, &quotip->i_df, start, &cur, &got)) {
779 		/* contiguous chunk, bump startoff for the id calculation */
780 		if (got.br_startoff < start)
781 			got.br_startoff = start;
782 		*id = got.br_startoff * mp->m_quotainfo->qi_dqperchunk;
783 	} else {
784 		error = -ENOENT;
785 	}
786 
787 	xfs_iunlock(quotip, lock_flags);
788 
789 	return error;
790 }
791 
792 /*
793  * Look up the dquot in the in-core cache.  If found, the dquot is returned
794  * locked and ready to go.
795  */
796 static struct xfs_dquot *
xfs_qm_dqget_cache_lookup(struct xfs_mount * mp,struct xfs_quotainfo * qi,struct radix_tree_root * tree,xfs_dqid_t id)797 xfs_qm_dqget_cache_lookup(
798 	struct xfs_mount	*mp,
799 	struct xfs_quotainfo	*qi,
800 	struct radix_tree_root	*tree,
801 	xfs_dqid_t		id)
802 {
803 	struct xfs_dquot	*dqp;
804 
805 restart:
806 	mutex_lock(&qi->qi_tree_lock);
807 	dqp = radix_tree_lookup(tree, id);
808 	if (!dqp) {
809 		mutex_unlock(&qi->qi_tree_lock);
810 		XFS_STATS_INC(mp, xs_qm_dqcachemisses);
811 		return NULL;
812 	}
813 
814 	xfs_dqlock(dqp);
815 	if (dqp->q_flags & XFS_DQFLAG_FREEING) {
816 		xfs_dqunlock(dqp);
817 		mutex_unlock(&qi->qi_tree_lock);
818 		trace_xfs_dqget_freeing(dqp);
819 		delay(1);
820 		goto restart;
821 	}
822 
823 	dqp->q_nrefs++;
824 	mutex_unlock(&qi->qi_tree_lock);
825 
826 	trace_xfs_dqget_hit(dqp);
827 	XFS_STATS_INC(mp, xs_qm_dqcachehits);
828 	return dqp;
829 }
830 
831 /*
832  * Try to insert a new dquot into the in-core cache.  If an error occurs the
833  * caller should throw away the dquot and start over.  Otherwise, the dquot
834  * is returned locked (and held by the cache) as if there had been a cache
835  * hit.
836  *
837  * The insert needs to be done under memalloc_nofs context because the radix
838  * tree can do memory allocation during insert. The qi->qi_tree_lock is taken in
839  * memory reclaim when freeing unused dquots, so we cannot have the radix tree
840  * node allocation recursing into filesystem reclaim whilst we hold the
841  * qi_tree_lock.
842  */
843 static int
xfs_qm_dqget_cache_insert(struct xfs_mount * mp,struct xfs_quotainfo * qi,struct radix_tree_root * tree,xfs_dqid_t id,struct xfs_dquot * dqp)844 xfs_qm_dqget_cache_insert(
845 	struct xfs_mount	*mp,
846 	struct xfs_quotainfo	*qi,
847 	struct radix_tree_root	*tree,
848 	xfs_dqid_t		id,
849 	struct xfs_dquot	*dqp)
850 {
851 	unsigned int		nofs_flags;
852 	int			error;
853 
854 	nofs_flags = memalloc_nofs_save();
855 	mutex_lock(&qi->qi_tree_lock);
856 	error = radix_tree_insert(tree, id, dqp);
857 	if (unlikely(error)) {
858 		/* Duplicate found!  Caller must try again. */
859 		trace_xfs_dqget_dup(dqp);
860 		goto out_unlock;
861 	}
862 
863 	/* Return a locked dquot to the caller, with a reference taken. */
864 	xfs_dqlock(dqp);
865 	dqp->q_nrefs = 1;
866 	qi->qi_dquots++;
867 
868 out_unlock:
869 	mutex_unlock(&qi->qi_tree_lock);
870 	memalloc_nofs_restore(nofs_flags);
871 	return error;
872 }
873 
874 /* Check our input parameters. */
875 static int
xfs_qm_dqget_checks(struct xfs_mount * mp,xfs_dqtype_t type)876 xfs_qm_dqget_checks(
877 	struct xfs_mount	*mp,
878 	xfs_dqtype_t		type)
879 {
880 	switch (type) {
881 	case XFS_DQTYPE_USER:
882 		if (!XFS_IS_UQUOTA_ON(mp))
883 			return -ESRCH;
884 		return 0;
885 	case XFS_DQTYPE_GROUP:
886 		if (!XFS_IS_GQUOTA_ON(mp))
887 			return -ESRCH;
888 		return 0;
889 	case XFS_DQTYPE_PROJ:
890 		if (!XFS_IS_PQUOTA_ON(mp))
891 			return -ESRCH;
892 		return 0;
893 	default:
894 		WARN_ON_ONCE(0);
895 		return -EINVAL;
896 	}
897 }
898 
899 /*
900  * Given the file system, id, and type (UDQUOT/GDQUOT/PDQUOT), return a
901  * locked dquot, doing an allocation (if requested) as needed.
902  */
903 int
xfs_qm_dqget(struct xfs_mount * mp,xfs_dqid_t id,xfs_dqtype_t type,bool can_alloc,struct xfs_dquot ** O_dqpp)904 xfs_qm_dqget(
905 	struct xfs_mount	*mp,
906 	xfs_dqid_t		id,
907 	xfs_dqtype_t		type,
908 	bool			can_alloc,
909 	struct xfs_dquot	**O_dqpp)
910 {
911 	struct xfs_quotainfo	*qi = mp->m_quotainfo;
912 	struct radix_tree_root	*tree = xfs_dquot_tree(qi, type);
913 	struct xfs_dquot	*dqp;
914 	int			error;
915 
916 	error = xfs_qm_dqget_checks(mp, type);
917 	if (error)
918 		return error;
919 
920 restart:
921 	dqp = xfs_qm_dqget_cache_lookup(mp, qi, tree, id);
922 	if (dqp) {
923 		*O_dqpp = dqp;
924 		return 0;
925 	}
926 
927 	error = xfs_qm_dqread(mp, id, type, can_alloc, &dqp);
928 	if (error)
929 		return error;
930 
931 	error = xfs_qm_dqget_cache_insert(mp, qi, tree, id, dqp);
932 	if (error) {
933 		/*
934 		 * Duplicate found. Just throw away the new dquot and start
935 		 * over.
936 		 */
937 		xfs_qm_dqdestroy(dqp);
938 		XFS_STATS_INC(mp, xs_qm_dquot_dups);
939 		goto restart;
940 	}
941 
942 	trace_xfs_dqget_miss(dqp);
943 	*O_dqpp = dqp;
944 	return 0;
945 }
946 
947 /*
948  * Given a dquot id and type, read and initialize a dquot from the on-disk
949  * metadata.  This function is only for use during quota initialization so
950  * it ignores the dquot cache assuming that the dquot shrinker isn't set up.
951  * The caller is responsible for _qm_dqdestroy'ing the returned dquot.
952  */
953 int
xfs_qm_dqget_uncached(struct xfs_mount * mp,xfs_dqid_t id,xfs_dqtype_t type,struct xfs_dquot ** dqpp)954 xfs_qm_dqget_uncached(
955 	struct xfs_mount	*mp,
956 	xfs_dqid_t		id,
957 	xfs_dqtype_t		type,
958 	struct xfs_dquot	**dqpp)
959 {
960 	int			error;
961 
962 	error = xfs_qm_dqget_checks(mp, type);
963 	if (error)
964 		return error;
965 
966 	return xfs_qm_dqread(mp, id, type, 0, dqpp);
967 }
968 
969 /* Return the quota id for a given inode and type. */
970 xfs_dqid_t
xfs_qm_id_for_quotatype(struct xfs_inode * ip,xfs_dqtype_t type)971 xfs_qm_id_for_quotatype(
972 	struct xfs_inode	*ip,
973 	xfs_dqtype_t		type)
974 {
975 	switch (type) {
976 	case XFS_DQTYPE_USER:
977 		return i_uid_read(VFS_I(ip));
978 	case XFS_DQTYPE_GROUP:
979 		return i_gid_read(VFS_I(ip));
980 	case XFS_DQTYPE_PROJ:
981 		return ip->i_projid;
982 	}
983 	ASSERT(0);
984 	return 0;
985 }
986 
987 /*
988  * Return the dquot for a given inode and type.  If @can_alloc is true, then
989  * allocate blocks if needed.  The inode's ILOCK must be held and it must not
990  * have already had an inode attached.
991  */
992 int
xfs_qm_dqget_inode(struct xfs_inode * ip,xfs_dqtype_t type,bool can_alloc,struct xfs_dquot ** O_dqpp)993 xfs_qm_dqget_inode(
994 	struct xfs_inode	*ip,
995 	xfs_dqtype_t		type,
996 	bool			can_alloc,
997 	struct xfs_dquot	**O_dqpp)
998 {
999 	struct xfs_mount	*mp = ip->i_mount;
1000 	struct xfs_quotainfo	*qi = mp->m_quotainfo;
1001 	struct radix_tree_root	*tree = xfs_dquot_tree(qi, type);
1002 	struct xfs_dquot	*dqp;
1003 	xfs_dqid_t		id;
1004 	int			error;
1005 
1006 	error = xfs_qm_dqget_checks(mp, type);
1007 	if (error)
1008 		return error;
1009 
1010 	xfs_assert_ilocked(ip, XFS_ILOCK_EXCL);
1011 	ASSERT(xfs_inode_dquot(ip, type) == NULL);
1012 
1013 	id = xfs_qm_id_for_quotatype(ip, type);
1014 
1015 restart:
1016 	dqp = xfs_qm_dqget_cache_lookup(mp, qi, tree, id);
1017 	if (dqp) {
1018 		*O_dqpp = dqp;
1019 		return 0;
1020 	}
1021 
1022 	/*
1023 	 * Dquot cache miss. We don't want to keep the inode lock across
1024 	 * a (potential) disk read. Also we don't want to deal with the lock
1025 	 * ordering between quotainode and this inode. OTOH, dropping the inode
1026 	 * lock here means dealing with a chown that can happen before
1027 	 * we re-acquire the lock.
1028 	 */
1029 	xfs_iunlock(ip, XFS_ILOCK_EXCL);
1030 	error = xfs_qm_dqread(mp, id, type, can_alloc, &dqp);
1031 	xfs_ilock(ip, XFS_ILOCK_EXCL);
1032 	if (error)
1033 		return error;
1034 
1035 	/*
1036 	 * A dquot could be attached to this inode by now, since we had
1037 	 * dropped the ilock.
1038 	 */
1039 	if (xfs_this_quota_on(mp, type)) {
1040 		struct xfs_dquot	*dqp1;
1041 
1042 		dqp1 = xfs_inode_dquot(ip, type);
1043 		if (dqp1) {
1044 			xfs_qm_dqdestroy(dqp);
1045 			dqp = dqp1;
1046 			xfs_dqlock(dqp);
1047 			goto dqret;
1048 		}
1049 	} else {
1050 		/* inode stays locked on return */
1051 		xfs_qm_dqdestroy(dqp);
1052 		return -ESRCH;
1053 	}
1054 
1055 	error = xfs_qm_dqget_cache_insert(mp, qi, tree, id, dqp);
1056 	if (error) {
1057 		/*
1058 		 * Duplicate found. Just throw away the new dquot and start
1059 		 * over.
1060 		 */
1061 		xfs_qm_dqdestroy(dqp);
1062 		XFS_STATS_INC(mp, xs_qm_dquot_dups);
1063 		goto restart;
1064 	}
1065 
1066 dqret:
1067 	xfs_assert_ilocked(ip, XFS_ILOCK_EXCL);
1068 	trace_xfs_dqget_miss(dqp);
1069 	*O_dqpp = dqp;
1070 	return 0;
1071 }
1072 
1073 /*
1074  * Starting at @id and progressing upwards, look for an initialized incore
1075  * dquot, lock it, and return it.
1076  */
1077 int
xfs_qm_dqget_next(struct xfs_mount * mp,xfs_dqid_t id,xfs_dqtype_t type,struct xfs_dquot ** dqpp)1078 xfs_qm_dqget_next(
1079 	struct xfs_mount	*mp,
1080 	xfs_dqid_t		id,
1081 	xfs_dqtype_t		type,
1082 	struct xfs_dquot	**dqpp)
1083 {
1084 	struct xfs_dquot	*dqp;
1085 	int			error = 0;
1086 
1087 	*dqpp = NULL;
1088 	for (; !error; error = xfs_dq_get_next_id(mp, type, &id)) {
1089 		error = xfs_qm_dqget(mp, id, type, false, &dqp);
1090 		if (error == -ENOENT)
1091 			continue;
1092 		else if (error != 0)
1093 			break;
1094 
1095 		if (!XFS_IS_DQUOT_UNINITIALIZED(dqp)) {
1096 			*dqpp = dqp;
1097 			return 0;
1098 		}
1099 
1100 		xfs_qm_dqput(dqp);
1101 	}
1102 
1103 	return error;
1104 }
1105 
1106 /*
1107  * Release a reference to the dquot (decrement ref-count) and unlock it.
1108  *
1109  * If there is a group quota attached to this dquot, carefully release that
1110  * too without tripping over deadlocks'n'stuff.
1111  */
1112 void
xfs_qm_dqput(struct xfs_dquot * dqp)1113 xfs_qm_dqput(
1114 	struct xfs_dquot	*dqp)
1115 {
1116 	ASSERT(dqp->q_nrefs > 0);
1117 	ASSERT(XFS_DQ_IS_LOCKED(dqp));
1118 
1119 	trace_xfs_dqput(dqp);
1120 
1121 	if (--dqp->q_nrefs == 0) {
1122 		struct xfs_quotainfo	*qi = dqp->q_mount->m_quotainfo;
1123 		trace_xfs_dqput_free(dqp);
1124 
1125 		if (list_lru_add_obj(&qi->qi_lru, &dqp->q_lru))
1126 			XFS_STATS_INC(dqp->q_mount, xs_qm_dquot_unused);
1127 	}
1128 	xfs_dqunlock(dqp);
1129 }
1130 
1131 /*
1132  * Release a dquot. Flush it if dirty, then dqput() it.
1133  * dquot must not be locked.
1134  */
1135 void
xfs_qm_dqrele(struct xfs_dquot * dqp)1136 xfs_qm_dqrele(
1137 	struct xfs_dquot	*dqp)
1138 {
1139 	if (!dqp)
1140 		return;
1141 
1142 	trace_xfs_dqrele(dqp);
1143 
1144 	xfs_dqlock(dqp);
1145 	/*
1146 	 * We don't care to flush it if the dquot is dirty here.
1147 	 * That will create stutters that we want to avoid.
1148 	 * Instead we do a delayed write when we try to reclaim
1149 	 * a dirty dquot. Also xfs_sync will take part of the burden...
1150 	 */
1151 	xfs_qm_dqput(dqp);
1152 }
1153 
1154 /*
1155  * This is the dquot flushing I/O completion routine.  It is called
1156  * from interrupt level when the buffer containing the dquot is
1157  * flushed to disk.  It is responsible for removing the dquot logitem
1158  * from the AIL if it has not been re-logged, and unlocking the dquot's
1159  * flush lock. This behavior is very similar to that of inodes..
1160  */
1161 static void
xfs_qm_dqflush_done(struct xfs_log_item * lip)1162 xfs_qm_dqflush_done(
1163 	struct xfs_log_item	*lip)
1164 {
1165 	struct xfs_dq_logitem	*qlip =
1166 			container_of(lip, struct xfs_dq_logitem, qli_item);
1167 	struct xfs_dquot	*dqp = qlip->qli_dquot;
1168 	struct xfs_ail		*ailp = lip->li_ailp;
1169 	struct xfs_buf		*bp = NULL;
1170 	xfs_lsn_t		tail_lsn;
1171 
1172 	/*
1173 	 * We only want to pull the item from the AIL if its
1174 	 * location in the log has not changed since we started the flush.
1175 	 * Thus, we only bother if the dquot's lsn has
1176 	 * not changed. First we check the lsn outside the lock
1177 	 * since it's cheaper, and then we recheck while
1178 	 * holding the lock before removing the dquot from the AIL.
1179 	 */
1180 	if (test_bit(XFS_LI_IN_AIL, &lip->li_flags) &&
1181 	    ((lip->li_lsn == qlip->qli_flush_lsn) ||
1182 	     test_bit(XFS_LI_FAILED, &lip->li_flags))) {
1183 
1184 		spin_lock(&ailp->ail_lock);
1185 		xfs_clear_li_failed(lip);
1186 		if (lip->li_lsn == qlip->qli_flush_lsn) {
1187 			/* xfs_ail_update_finish() drops the AIL lock */
1188 			tail_lsn = xfs_ail_delete_one(ailp, lip);
1189 			xfs_ail_update_finish(ailp, tail_lsn);
1190 		} else {
1191 			spin_unlock(&ailp->ail_lock);
1192 		}
1193 	}
1194 
1195 	/*
1196 	 * Release the dq's flush lock since we're done with it.
1197 	 */
1198 	xfs_dqfunlock(dqp);
1199 
1200 	/*
1201 	 * If this dquot hasn't been dirtied since initiating the last dqflush,
1202 	 * release the buffer reference.
1203 	 */
1204 	spin_lock(&qlip->qli_lock);
1205 	if (!qlip->qli_dirty) {
1206 		bp = lip->li_buf;
1207 		lip->li_buf = NULL;
1208 	}
1209 	spin_unlock(&qlip->qli_lock);
1210 	if (bp)
1211 		xfs_buf_rele(bp);
1212 }
1213 
1214 void
xfs_buf_dquot_iodone(struct xfs_buf * bp)1215 xfs_buf_dquot_iodone(
1216 	struct xfs_buf		*bp)
1217 {
1218 	struct xfs_log_item	*lip, *n;
1219 
1220 	list_for_each_entry_safe(lip, n, &bp->b_li_list, li_bio_list) {
1221 		list_del_init(&lip->li_bio_list);
1222 		xfs_qm_dqflush_done(lip);
1223 	}
1224 }
1225 
1226 void
xfs_buf_dquot_io_fail(struct xfs_buf * bp)1227 xfs_buf_dquot_io_fail(
1228 	struct xfs_buf		*bp)
1229 {
1230 	struct xfs_log_item	*lip;
1231 
1232 	spin_lock(&bp->b_mount->m_ail->ail_lock);
1233 	list_for_each_entry(lip, &bp->b_li_list, li_bio_list)
1234 		set_bit(XFS_LI_FAILED, &lip->li_flags);
1235 	spin_unlock(&bp->b_mount->m_ail->ail_lock);
1236 }
1237 
1238 /* Check incore dquot for errors before we flush. */
1239 static xfs_failaddr_t
xfs_qm_dqflush_check(struct xfs_dquot * dqp)1240 xfs_qm_dqflush_check(
1241 	struct xfs_dquot	*dqp)
1242 {
1243 	xfs_dqtype_t		type = xfs_dquot_type(dqp);
1244 
1245 	if (type != XFS_DQTYPE_USER &&
1246 	    type != XFS_DQTYPE_GROUP &&
1247 	    type != XFS_DQTYPE_PROJ)
1248 		return __this_address;
1249 
1250 	if (dqp->q_id == 0)
1251 		return NULL;
1252 
1253 	if (dqp->q_blk.softlimit && dqp->q_blk.count > dqp->q_blk.softlimit &&
1254 	    !dqp->q_blk.timer)
1255 		return __this_address;
1256 
1257 	if (dqp->q_ino.softlimit && dqp->q_ino.count > dqp->q_ino.softlimit &&
1258 	    !dqp->q_ino.timer)
1259 		return __this_address;
1260 
1261 	if (dqp->q_rtb.softlimit && dqp->q_rtb.count > dqp->q_rtb.softlimit &&
1262 	    !dqp->q_rtb.timer)
1263 		return __this_address;
1264 
1265 	/* bigtime flag should never be set on root dquots */
1266 	if (dqp->q_type & XFS_DQTYPE_BIGTIME) {
1267 		if (!xfs_has_bigtime(dqp->q_mount))
1268 			return __this_address;
1269 		if (dqp->q_id == 0)
1270 			return __this_address;
1271 	}
1272 
1273 	return NULL;
1274 }
1275 
1276 /*
1277  * Get the buffer containing the on-disk dquot.
1278  *
1279  * Requires dquot flush lock, will clear the dirty flag, delete the quota log
1280  * item from the AIL, and shut down the system if something goes wrong.
1281  */
1282 static int
xfs_dquot_read_buf(struct xfs_trans * tp,struct xfs_dquot * dqp,struct xfs_buf ** bpp)1283 xfs_dquot_read_buf(
1284 	struct xfs_trans	*tp,
1285 	struct xfs_dquot	*dqp,
1286 	struct xfs_buf		**bpp)
1287 {
1288 	struct xfs_mount	*mp = dqp->q_mount;
1289 	struct xfs_buf		*bp = NULL;
1290 	int			error;
1291 
1292 	error = xfs_trans_read_buf(mp, tp, mp->m_ddev_targp, dqp->q_blkno,
1293 				   mp->m_quotainfo->qi_dqchunklen, 0,
1294 				   &bp, &xfs_dquot_buf_ops);
1295 	if (xfs_metadata_is_sick(error))
1296 		xfs_dquot_mark_sick(dqp);
1297 	if (error)
1298 		goto out_abort;
1299 
1300 	*bpp = bp;
1301 	return 0;
1302 
1303 out_abort:
1304 	dqp->q_flags &= ~XFS_DQFLAG_DIRTY;
1305 	xfs_trans_ail_delete(&dqp->q_logitem.qli_item, 0);
1306 	xfs_force_shutdown(mp, SHUTDOWN_CORRUPT_INCORE);
1307 	return error;
1308 }
1309 
1310 /*
1311  * Attach a dquot buffer to this dquot to avoid allocating a buffer during a
1312  * dqflush, since dqflush can be called from reclaim context.  Caller must hold
1313  * the dqlock.
1314  */
1315 int
xfs_dquot_attach_buf(struct xfs_trans * tp,struct xfs_dquot * dqp)1316 xfs_dquot_attach_buf(
1317 	struct xfs_trans	*tp,
1318 	struct xfs_dquot	*dqp)
1319 {
1320 	struct xfs_dq_logitem	*qlip = &dqp->q_logitem;
1321 	struct xfs_log_item	*lip = &qlip->qli_item;
1322 	int			error;
1323 
1324 	spin_lock(&qlip->qli_lock);
1325 	if (!lip->li_buf) {
1326 		struct xfs_buf	*bp = NULL;
1327 
1328 		spin_unlock(&qlip->qli_lock);
1329 		error = xfs_dquot_read_buf(tp, dqp, &bp);
1330 		if (error)
1331 			return error;
1332 
1333 		/*
1334 		 * Hold the dquot buffer so that we retain our ref to it after
1335 		 * detaching it from the transaction, then give that ref to the
1336 		 * dquot log item so that the AIL does not have to read the
1337 		 * dquot buffer to push this item.
1338 		 */
1339 		xfs_buf_hold(bp);
1340 		xfs_trans_brelse(tp, bp);
1341 
1342 		spin_lock(&qlip->qli_lock);
1343 		lip->li_buf = bp;
1344 	}
1345 	qlip->qli_dirty = true;
1346 	spin_unlock(&qlip->qli_lock);
1347 
1348 	return 0;
1349 }
1350 
1351 /*
1352  * Get a new reference the dquot buffer attached to this dquot for a dqflush
1353  * operation.
1354  *
1355  * Returns 0 and a NULL bp if none was attached to the dquot; 0 and a locked
1356  * bp; or -EAGAIN if the buffer could not be locked.
1357  */
1358 int
xfs_dquot_use_attached_buf(struct xfs_dquot * dqp,struct xfs_buf ** bpp)1359 xfs_dquot_use_attached_buf(
1360 	struct xfs_dquot	*dqp,
1361 	struct xfs_buf		**bpp)
1362 {
1363 	struct xfs_buf		*bp = dqp->q_logitem.qli_item.li_buf;
1364 
1365 	/*
1366 	 * A NULL buffer can happen if the dquot dirty flag was set but the
1367 	 * filesystem shut down before transaction commit happened.  In that
1368 	 * case we're not going to flush anyway.
1369 	 */
1370 	if (!bp) {
1371 		ASSERT(xfs_is_shutdown(dqp->q_mount));
1372 
1373 		*bpp = NULL;
1374 		return 0;
1375 	}
1376 
1377 	if (!xfs_buf_trylock(bp))
1378 		return -EAGAIN;
1379 
1380 	xfs_buf_hold(bp);
1381 	*bpp = bp;
1382 	return 0;
1383 }
1384 
1385 /*
1386  * Write a modified dquot to disk.
1387  * The dquot must be locked and the flush lock too taken by caller.
1388  * The flush lock will not be unlocked until the dquot reaches the disk,
1389  * but the dquot is free to be unlocked and modified by the caller
1390  * in the interim. Dquot is still locked on return. This behavior is
1391  * identical to that of inodes.
1392  */
1393 int
xfs_qm_dqflush(struct xfs_dquot * dqp,struct xfs_buf * bp)1394 xfs_qm_dqflush(
1395 	struct xfs_dquot	*dqp,
1396 	struct xfs_buf		*bp)
1397 {
1398 	struct xfs_mount	*mp = dqp->q_mount;
1399 	struct xfs_dq_logitem	*qlip = &dqp->q_logitem;
1400 	struct xfs_log_item	*lip = &qlip->qli_item;
1401 	struct xfs_dqblk	*dqblk;
1402 	xfs_failaddr_t		fa;
1403 	int			error;
1404 
1405 	ASSERT(XFS_DQ_IS_LOCKED(dqp));
1406 	ASSERT(!completion_done(&dqp->q_flush));
1407 
1408 	trace_xfs_dqflush(dqp);
1409 
1410 	xfs_qm_dqunpin_wait(dqp);
1411 
1412 	fa = xfs_qm_dqflush_check(dqp);
1413 	if (fa) {
1414 		xfs_alert(mp, "corrupt dquot ID 0x%x in memory at %pS",
1415 				dqp->q_id, fa);
1416 		xfs_dquot_mark_sick(dqp);
1417 		error = -EFSCORRUPTED;
1418 		goto out_abort;
1419 	}
1420 
1421 	/* Flush the incore dquot to the ondisk buffer. */
1422 	dqblk = xfs_buf_offset(bp, dqp->q_bufoffset);
1423 	xfs_dquot_to_disk(&dqblk->dd_diskdq, dqp);
1424 
1425 	/*
1426 	 * Clear the dirty field and remember the flush lsn for later use.
1427 	 */
1428 	dqp->q_flags &= ~XFS_DQFLAG_DIRTY;
1429 
1430 	/*
1431 	 * We hold the dquot lock, so nobody can dirty it while we're
1432 	 * scheduling the write out.  Clear the dirty-since-flush flag.
1433 	 */
1434 	spin_lock(&qlip->qli_lock);
1435 	qlip->qli_dirty = false;
1436 	spin_unlock(&qlip->qli_lock);
1437 
1438 	xfs_trans_ail_copy_lsn(mp->m_ail, &qlip->qli_flush_lsn, &lip->li_lsn);
1439 
1440 	/*
1441 	 * copy the lsn into the on-disk dquot now while we have the in memory
1442 	 * dquot here. This can't be done later in the write verifier as we
1443 	 * can't get access to the log item at that point in time.
1444 	 *
1445 	 * We also calculate the CRC here so that the on-disk dquot in the
1446 	 * buffer always has a valid CRC. This ensures there is no possibility
1447 	 * of a dquot without an up-to-date CRC getting to disk.
1448 	 */
1449 	if (xfs_has_crc(mp)) {
1450 		dqblk->dd_lsn = cpu_to_be64(lip->li_lsn);
1451 		xfs_update_cksum((char *)dqblk, sizeof(struct xfs_dqblk),
1452 				 XFS_DQUOT_CRC_OFF);
1453 	}
1454 
1455 	/*
1456 	 * Attach the dquot to the buffer so that we can remove this dquot from
1457 	 * the AIL and release the flush lock once the dquot is synced to disk.
1458 	 */
1459 	bp->b_flags |= _XBF_DQUOTS;
1460 	list_add_tail(&lip->li_bio_list, &bp->b_li_list);
1461 
1462 	/*
1463 	 * If the buffer is pinned then push on the log so we won't
1464 	 * get stuck waiting in the write for too long.
1465 	 */
1466 	if (xfs_buf_ispinned(bp)) {
1467 		trace_xfs_dqflush_force(dqp);
1468 		xfs_log_force(mp, 0);
1469 	}
1470 
1471 	trace_xfs_dqflush_done(dqp);
1472 	return 0;
1473 
1474 out_abort:
1475 	dqp->q_flags &= ~XFS_DQFLAG_DIRTY;
1476 	xfs_trans_ail_delete(lip, 0);
1477 	xfs_force_shutdown(mp, SHUTDOWN_CORRUPT_INCORE);
1478 	xfs_dqfunlock(dqp);
1479 	return error;
1480 }
1481 
1482 /*
1483  * Lock two xfs_dquot structures.
1484  *
1485  * To avoid deadlocks we always lock the quota structure with
1486  * the lowerd id first.
1487  */
1488 void
xfs_dqlock2(struct xfs_dquot * d1,struct xfs_dquot * d2)1489 xfs_dqlock2(
1490 	struct xfs_dquot	*d1,
1491 	struct xfs_dquot	*d2)
1492 {
1493 	if (d1 && d2) {
1494 		ASSERT(d1 != d2);
1495 		if (d1->q_id > d2->q_id) {
1496 			mutex_lock(&d2->q_qlock);
1497 			mutex_lock_nested(&d1->q_qlock, XFS_QLOCK_NESTED);
1498 		} else {
1499 			mutex_lock(&d1->q_qlock);
1500 			mutex_lock_nested(&d2->q_qlock, XFS_QLOCK_NESTED);
1501 		}
1502 	} else if (d1) {
1503 		mutex_lock(&d1->q_qlock);
1504 	} else if (d2) {
1505 		mutex_lock(&d2->q_qlock);
1506 	}
1507 }
1508 
1509 static int
xfs_dqtrx_cmp(const void * a,const void * b)1510 xfs_dqtrx_cmp(
1511 	const void		*a,
1512 	const void		*b)
1513 {
1514 	const struct xfs_dqtrx	*qa = a;
1515 	const struct xfs_dqtrx	*qb = b;
1516 
1517 	if (qa->qt_dquot->q_id > qb->qt_dquot->q_id)
1518 		return 1;
1519 	if (qa->qt_dquot->q_id < qb->qt_dquot->q_id)
1520 		return -1;
1521 	return 0;
1522 }
1523 
1524 void
xfs_dqlockn(struct xfs_dqtrx * q)1525 xfs_dqlockn(
1526 	struct xfs_dqtrx	*q)
1527 {
1528 	unsigned int		i;
1529 
1530 	BUILD_BUG_ON(XFS_QM_TRANS_MAXDQS > MAX_LOCKDEP_SUBCLASSES);
1531 
1532 	/* Sort in order of dquot id, do not allow duplicates */
1533 	for (i = 0; i < XFS_QM_TRANS_MAXDQS && q[i].qt_dquot != NULL; i++) {
1534 		unsigned int	j;
1535 
1536 		for (j = 0; j < i; j++)
1537 			ASSERT(q[i].qt_dquot != q[j].qt_dquot);
1538 	}
1539 	if (i == 0)
1540 		return;
1541 
1542 	sort(q, i, sizeof(struct xfs_dqtrx), xfs_dqtrx_cmp, NULL);
1543 
1544 	mutex_lock(&q[0].qt_dquot->q_qlock);
1545 	for (i = 1; i < XFS_QM_TRANS_MAXDQS && q[i].qt_dquot != NULL; i++)
1546 		mutex_lock_nested(&q[i].qt_dquot->q_qlock,
1547 				XFS_QLOCK_NESTED + i - 1);
1548 }
1549 
1550 int __init
xfs_qm_init(void)1551 xfs_qm_init(void)
1552 {
1553 	xfs_dquot_cache = kmem_cache_create("xfs_dquot",
1554 					  sizeof(struct xfs_dquot),
1555 					  0, 0, NULL);
1556 	if (!xfs_dquot_cache)
1557 		goto out;
1558 
1559 	xfs_dqtrx_cache = kmem_cache_create("xfs_dqtrx",
1560 					     sizeof(struct xfs_dquot_acct),
1561 					     0, 0, NULL);
1562 	if (!xfs_dqtrx_cache)
1563 		goto out_free_dquot_cache;
1564 
1565 	return 0;
1566 
1567 out_free_dquot_cache:
1568 	kmem_cache_destroy(xfs_dquot_cache);
1569 out:
1570 	return -ENOMEM;
1571 }
1572 
1573 void
xfs_qm_exit(void)1574 xfs_qm_exit(void)
1575 {
1576 	kmem_cache_destroy(xfs_dqtrx_cache);
1577 	kmem_cache_destroy(xfs_dquot_cache);
1578 }
1579