xref: /freebsd/sys/contrib/openzfs/module/zfs/dsl_dir.c (revision 34f9f5680c9d5d5138e427ba3aeab0138cec3882)
1 // SPDX-License-Identifier: CDDL-1.0
2 /*
3  * This file and its contents are supplied under the terms of the
4  * Common Development and Distribution License ("CDDL"), version 1.0.
5  * You may only use this file in accordance with the terms of version
6  * 1.0 of the CDDL.
7  *
8  * A full copy of the text of the CDDL should have accompanied this
9  * source.  A copy of the CDDL is also available via the Internet at
10  * https://opensource.org/license/CDDL-1.0.
11  */
12 /*
13  * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
14  * Copyright (c) 2012, 2018 by Delphix. All rights reserved.
15  * Copyright (c) 2013 Martin Matuska. All rights reserved.
16  * Copyright (c) 2014 Joyent, Inc. All rights reserved.
17  * Copyright (c) 2014 Spectra Logic Corporation, All rights reserved.
18  * Copyright (c) 2016 Actifio, Inc. All rights reserved.
19  * Copyright (c) 2018, loli10K <ezomori.nozomu@gmail.com>. All rights reserved.
20  * Copyright (c) 2023 Hewlett Packard Enterprise Development LP.
21  * Copyright (c) 2025, Rob Norris <robn@despairlabs.com>
22  */
23 
24 #include <sys/dmu.h>
25 #include <sys/dmu_objset.h>
26 #include <sys/dmu_tx.h>
27 #include <sys/dsl_dataset.h>
28 #include <sys/dsl_dir.h>
29 #include <sys/dsl_prop.h>
30 #include <sys/dsl_synctask.h>
31 #include <sys/dsl_deleg.h>
32 #include <sys/dmu_impl.h>
33 #include <sys/spa.h>
34 #include <sys/spa_impl.h>
35 #include <sys/metaslab.h>
36 #include <sys/zap.h>
37 #include <sys/zio.h>
38 #include <sys/arc.h>
39 #include <sys/sunddi.h>
40 #include <sys/zfeature.h>
41 #include <sys/policy.h>
42 #include <sys/zfs_vfsops.h>
43 #include <sys/zfs_znode.h>
44 #include <sys/zvol.h>
45 #include <sys/zthr.h>
46 #include "zfs_namecheck.h"
47 #include "zfs_prop.h"
48 
49 /*
50  * This controls if we verify the ZVOL quota or not.
51  * Currently, quotas are not implemented for ZVOLs.
52  * The quota size is the size of the ZVOL.
53  * The size of the volume already implies the ZVOL size quota.
54  * The quota mechanism can introduce a significant performance drop.
55  */
56 static int zvol_enforce_quotas = B_TRUE;
57 
58 /*
59  * Filesystem and Snapshot Limits
60  * ------------------------------
61  *
62  * These limits are used to restrict the number of filesystems and/or snapshots
63  * that can be created at a given level in the tree or below. A typical
64  * use-case is with a delegated dataset where the administrator wants to ensure
65  * that a user within the zone is not creating too many additional filesystems
66  * or snapshots, even though they're not exceeding their space quota.
67  *
68  * The filesystem and snapshot counts are stored as extensible properties. This
69  * capability is controlled by a feature flag and must be enabled to be used.
70  * Once enabled, the feature is not active until the first limit is set. At
71  * that point, future operations to create/destroy filesystems or snapshots
72  * will validate and update the counts.
73  *
74  * Because the count properties will not exist before the feature is active,
75  * the counts are updated when a limit is first set on an uninitialized
76  * dsl_dir node in the tree (The filesystem/snapshot count on a node includes
77  * all of the nested filesystems/snapshots. Thus, a new leaf node has a
78  * filesystem count of 0 and a snapshot count of 0. Non-existent filesystem and
79  * snapshot count properties on a node indicate uninitialized counts on that
80  * node.) When first setting a limit on an uninitialized node, the code starts
81  * at the filesystem with the new limit and descends into all sub-filesystems
82  * to add the count properties.
83  *
84  * In practice this is lightweight since a limit is typically set when the
85  * filesystem is created and thus has no children. Once valid, changing the
86  * limit value won't require a re-traversal since the counts are already valid.
87  * When recursively fixing the counts, if a node with a limit is encountered
88  * during the descent, the counts are known to be valid and there is no need to
89  * descend into that filesystem's children. The counts on filesystems above the
90  * one with the new limit will still be uninitialized, unless a limit is
91  * eventually set on one of those filesystems. The counts are always recursively
92  * updated when a limit is set on a dataset, unless there is already a limit.
93  * When a new limit value is set on a filesystem with an existing limit, it is
94  * possible for the new limit to be less than the current count at that level
95  * since a user who can change the limit is also allowed to exceed the limit.
96  *
97  * Once the feature is active, then whenever a filesystem or snapshot is
98  * created, the code recurses up the tree, validating the new count against the
99  * limit at each initialized level. In practice, most levels will not have a
100  * limit set. If there is a limit at any initialized level up the tree, the
101  * check must pass or the creation will fail. Likewise, when a filesystem or
102  * snapshot is destroyed, the counts are recursively adjusted all the way up
103  * the initialized nodes in the tree. Renaming a filesystem into different point
104  * in the tree will first validate, then update the counts on each branch up to
105  * the common ancestor. A receive will also validate the counts and then update
106  * them.
107  *
108  * An exception to the above behavior is that the limit is not enforced if the
109  * user has permission to modify the limit. This is primarily so that
110  * recursive snapshots in the global zone always work. We want to prevent a
111  * denial-of-service in which a lower level delegated dataset could max out its
112  * limit and thus block recursive snapshots from being taken in the global zone.
113  * Because of this, it is possible for the snapshot count to be over the limit
114  * and snapshots taken in the global zone could cause a lower level dataset to
115  * hit or exceed its limit. The administrator taking the global zone recursive
116  * snapshot should be aware of this side-effect and behave accordingly.
117  * For consistency, the filesystem limit is also not enforced if the user can
118  * modify the limit.
119  *
120  * The filesystem and snapshot limits are validated by dsl_fs_ss_limit_check()
121  * and updated by dsl_fs_ss_count_adjust(). A new limit value is setup in
122  * dsl_dir_activate_fs_ss_limit() and the counts are adjusted, if necessary, by
123  * dsl_dir_init_fs_ss_count().
124  */
125 
126 static uint64_t dsl_dir_space_towrite(dsl_dir_t *dd);
127 
128 typedef struct ddulrt_arg {
129 	dsl_dir_t	*ddulrta_dd;
130 	uint64_t	ddlrta_txg;
131 } ddulrt_arg_t;
132 
133 static void
134 dsl_dir_evict_async(void *dbu)
135 {
136 	dsl_dir_t *dd = dbu;
137 	int t;
138 	dsl_pool_t *dp __maybe_unused = dd->dd_pool;
139 
140 	dd->dd_dbuf = NULL;
141 
142 	for (t = 0; t < TXG_SIZE; t++) {
143 		ASSERT(!txg_list_member(&dp->dp_dirty_dirs, dd, t));
144 		ASSERT0(dd->dd_tempreserved[t]);
145 		ASSERT0(dd->dd_space_towrite[t]);
146 	}
147 
148 	if (dd->dd_parent)
149 		dsl_dir_async_rele(dd->dd_parent, dd);
150 
151 	spa_async_close(dd->dd_pool->dp_spa, dd);
152 
153 	if (dsl_deadlist_is_open(&dd->dd_livelist))
154 		dsl_dir_livelist_close(dd);
155 
156 	dsl_prop_fini(dd);
157 	cv_destroy(&dd->dd_activity_cv);
158 	mutex_destroy(&dd->dd_activity_lock);
159 	mutex_destroy(&dd->dd_lock);
160 	kmem_free(dd, sizeof (dsl_dir_t));
161 }
162 
163 int
164 dsl_dir_hold_obj(dsl_pool_t *dp, uint64_t ddobj,
165     const char *tail, const void *tag, dsl_dir_t **ddp)
166 {
167 	dmu_buf_t *dbuf;
168 	dsl_dir_t *dd;
169 	dmu_object_info_t doi;
170 	int err;
171 
172 	ASSERT(dsl_pool_config_held(dp));
173 
174 	err = dmu_bonus_hold(dp->dp_meta_objset, ddobj, tag, &dbuf);
175 	if (err != 0)
176 		return (err);
177 	dd = dmu_buf_get_user(dbuf);
178 
179 	dmu_object_info_from_db(dbuf, &doi);
180 	ASSERT3U(doi.doi_bonus_type, ==, DMU_OT_DSL_DIR);
181 	ASSERT3U(doi.doi_bonus_size, >=, sizeof (dsl_dir_phys_t));
182 
183 	if (dd == NULL) {
184 		dsl_dir_t *winner;
185 
186 		dd = kmem_zalloc(sizeof (dsl_dir_t), KM_SLEEP);
187 		dd->dd_object = ddobj;
188 		dd->dd_dbuf = dbuf;
189 		dd->dd_pool = dp;
190 
191 		mutex_init(&dd->dd_lock, NULL, MUTEX_DEFAULT, NULL);
192 		mutex_init(&dd->dd_activity_lock, NULL, MUTEX_DEFAULT, NULL);
193 		cv_init(&dd->dd_activity_cv, NULL, CV_DEFAULT, NULL);
194 		dsl_prop_init(dd);
195 
196 		if (dsl_dir_is_zapified(dd)) {
197 			err = zap_lookup(dp->dp_meta_objset,
198 			    ddobj, DD_FIELD_CRYPTO_KEY_OBJ,
199 			    sizeof (uint64_t), 1, &dd->dd_crypto_obj);
200 			if (err == 0) {
201 				/* check for on-disk format errata */
202 				if (dsl_dir_incompatible_encryption_version(
203 				    dd)) {
204 					dp->dp_spa->spa_errata =
205 					    ZPOOL_ERRATA_ZOL_6845_ENCRYPTION;
206 				}
207 			} else if (err != ENOENT) {
208 				goto errout;
209 			}
210 		}
211 
212 		if (dsl_dir_phys(dd)->dd_parent_obj) {
213 			err = dsl_dir_hold_obj(dp,
214 			    dsl_dir_phys(dd)->dd_parent_obj, NULL, dd,
215 			    &dd->dd_parent);
216 			if (err != 0)
217 				goto errout;
218 			if (tail) {
219 #ifdef ZFS_DEBUG
220 				uint64_t foundobj;
221 
222 				err = zap_lookup(dp->dp_meta_objset,
223 				    dsl_dir_phys(dd->dd_parent)->
224 				    dd_child_dir_zapobj, tail,
225 				    sizeof (foundobj), 1, &foundobj);
226 				ASSERT(err || foundobj == ddobj);
227 #endif
228 				(void) strlcpy(dd->dd_myname, tail,
229 				    sizeof (dd->dd_myname));
230 			} else {
231 				err = zap_value_search(dp->dp_meta_objset,
232 				    dsl_dir_phys(dd->dd_parent)->
233 				    dd_child_dir_zapobj,
234 				    ddobj, 0, dd->dd_myname,
235 				    sizeof (dd->dd_myname));
236 			}
237 			if (err != 0)
238 				goto errout;
239 		} else {
240 			(void) strlcpy(dd->dd_myname, spa_name(dp->dp_spa),
241 			    sizeof (dd->dd_myname));
242 		}
243 
244 		if (dsl_dir_is_clone(dd)) {
245 			dmu_buf_t *origin_bonus;
246 			dsl_dataset_phys_t *origin_phys;
247 
248 			/*
249 			 * We can't open the origin dataset, because
250 			 * that would require opening this dsl_dir.
251 			 * Just look at its phys directly instead.
252 			 */
253 			err = dmu_bonus_hold(dp->dp_meta_objset,
254 			    dsl_dir_phys(dd)->dd_origin_obj, FTAG,
255 			    &origin_bonus);
256 			if (err != 0)
257 				goto errout;
258 			origin_phys = origin_bonus->db_data;
259 			dd->dd_origin_txg =
260 			    origin_phys->ds_creation_txg;
261 			dmu_buf_rele(origin_bonus, FTAG);
262 			if (dsl_dir_is_zapified(dd)) {
263 				uint64_t obj;
264 				err = zap_lookup(dp->dp_meta_objset,
265 				    dd->dd_object, DD_FIELD_LIVELIST,
266 				    sizeof (uint64_t), 1, &obj);
267 				if (err == 0) {
268 					err = dsl_dir_livelist_open(dd, obj);
269 					if (err != 0)
270 						goto errout;
271 				} else if (err != ENOENT)
272 					goto errout;
273 			}
274 		}
275 
276 		if (dsl_dir_is_zapified(dd)) {
277 			inode_timespec_t t = {0};
278 			(void) zap_lookup(dp->dp_meta_objset, ddobj,
279 			    DD_FIELD_SNAPSHOTS_CHANGED,
280 			    sizeof (uint64_t),
281 			    sizeof (inode_timespec_t) / sizeof (uint64_t),
282 			    &t);
283 			dd->dd_snap_cmtime = t;
284 		}
285 
286 		dmu_buf_init_user(&dd->dd_dbu, NULL, dsl_dir_evict_async,
287 		    &dd->dd_dbuf);
288 		winner = dmu_buf_set_user_ie(dbuf, &dd->dd_dbu);
289 		if (winner != NULL) {
290 			if (dd->dd_parent)
291 				dsl_dir_rele(dd->dd_parent, dd);
292 			if (dsl_deadlist_is_open(&dd->dd_livelist))
293 				dsl_dir_livelist_close(dd);
294 			dsl_prop_fini(dd);
295 			cv_destroy(&dd->dd_activity_cv);
296 			mutex_destroy(&dd->dd_activity_lock);
297 			mutex_destroy(&dd->dd_lock);
298 			kmem_free(dd, sizeof (dsl_dir_t));
299 			dd = winner;
300 		} else {
301 			spa_open_ref(dp->dp_spa, dd);
302 		}
303 	}
304 
305 	/*
306 	 * The dsl_dir_t has both open-to-close and instantiate-to-evict
307 	 * holds on the spa.  We need the open-to-close holds because
308 	 * otherwise the spa_refcnt wouldn't change when we open a
309 	 * dir which the spa also has open, so we could incorrectly
310 	 * think it was OK to unload/export/destroy the pool.  We need
311 	 * the instantiate-to-evict hold because the dsl_dir_t has a
312 	 * pointer to the dd_pool, which has a pointer to the spa_t.
313 	 */
314 	spa_open_ref(dp->dp_spa, tag);
315 	ASSERT3P(dd->dd_pool, ==, dp);
316 	ASSERT3U(dd->dd_object, ==, ddobj);
317 	ASSERT3P(dd->dd_dbuf, ==, dbuf);
318 	*ddp = dd;
319 	return (0);
320 
321 errout:
322 	if (dd->dd_parent)
323 		dsl_dir_rele(dd->dd_parent, dd);
324 	if (dsl_deadlist_is_open(&dd->dd_livelist))
325 		dsl_dir_livelist_close(dd);
326 	dsl_prop_fini(dd);
327 	cv_destroy(&dd->dd_activity_cv);
328 	mutex_destroy(&dd->dd_activity_lock);
329 	mutex_destroy(&dd->dd_lock);
330 	kmem_free(dd, sizeof (dsl_dir_t));
331 	dmu_buf_rele(dbuf, tag);
332 	return (err);
333 }
334 
335 void
336 dsl_dir_rele(dsl_dir_t *dd, const void *tag)
337 {
338 	dprintf_dd(dd, "%s\n", "");
339 	spa_close(dd->dd_pool->dp_spa, tag);
340 	dmu_buf_rele(dd->dd_dbuf, tag);
341 }
342 
343 /*
344  * Remove a reference to the given dsl dir that is being asynchronously
345  * released.  Async releases occur from a taskq performing eviction of
346  * dsl datasets and dirs.  This process is identical to a normal release
347  * with the exception of using the async API for releasing the reference on
348  * the spa.
349  */
350 void
351 dsl_dir_async_rele(dsl_dir_t *dd, const void *tag)
352 {
353 	dprintf_dd(dd, "%s\n", "");
354 	spa_async_close(dd->dd_pool->dp_spa, tag);
355 	dmu_buf_rele(dd->dd_dbuf, tag);
356 }
357 
358 /* buf must be at least ZFS_MAX_DATASET_NAME_LEN bytes */
359 void
360 dsl_dir_name(dsl_dir_t *dd, char *buf)
361 {
362 	if (dd->dd_parent) {
363 		dsl_dir_name(dd->dd_parent, buf);
364 		VERIFY3U(strlcat(buf, "/", ZFS_MAX_DATASET_NAME_LEN), <,
365 		    ZFS_MAX_DATASET_NAME_LEN);
366 	} else {
367 		buf[0] = '\0';
368 	}
369 	if (!MUTEX_HELD(&dd->dd_lock)) {
370 		/*
371 		 * recursive mutex so that we can use
372 		 * dprintf_dd() with dd_lock held
373 		 */
374 		mutex_enter(&dd->dd_lock);
375 		VERIFY3U(strlcat(buf, dd->dd_myname, ZFS_MAX_DATASET_NAME_LEN),
376 		    <, ZFS_MAX_DATASET_NAME_LEN);
377 		mutex_exit(&dd->dd_lock);
378 	} else {
379 		VERIFY3U(strlcat(buf, dd->dd_myname, ZFS_MAX_DATASET_NAME_LEN),
380 		    <, ZFS_MAX_DATASET_NAME_LEN);
381 	}
382 }
383 
384 /* Calculate name length, avoiding all the strcat calls of dsl_dir_name */
385 int
386 dsl_dir_namelen(dsl_dir_t *dd)
387 {
388 	int result = 0;
389 
390 	if (dd->dd_parent) {
391 		/* parent's name + 1 for the "/" */
392 		result = dsl_dir_namelen(dd->dd_parent) + 1;
393 	}
394 
395 	if (!MUTEX_HELD(&dd->dd_lock)) {
396 		/* see dsl_dir_name */
397 		mutex_enter(&dd->dd_lock);
398 		result += strlen(dd->dd_myname);
399 		mutex_exit(&dd->dd_lock);
400 	} else {
401 		result += strlen(dd->dd_myname);
402 	}
403 
404 	return (result);
405 }
406 
407 static int
408 getcomponent(const char *path, char *component, const char **nextp)
409 {
410 	const char *p;
411 
412 	if ((path == NULL) || (path[0] == '\0'))
413 		return (SET_ERROR(ENOENT));
414 	/* This would be a good place to reserve some namespace... */
415 	p = strpbrk(path, "/@");
416 	if (p && (p[1] == '/' || p[1] == '@')) {
417 		/* two separators in a row */
418 		return (SET_ERROR(EINVAL));
419 	}
420 	if (p == NULL || p == path) {
421 		/*
422 		 * if the first thing is an @ or /, it had better be an
423 		 * @ and it had better not have any more ats or slashes,
424 		 * and it had better have something after the @.
425 		 */
426 		if (p != NULL &&
427 		    (p[0] != '@' || strpbrk(path+1, "/@") || p[1] == '\0'))
428 			return (SET_ERROR(EINVAL));
429 		if (strlen(path) >= ZFS_MAX_DATASET_NAME_LEN)
430 			return (SET_ERROR(ENAMETOOLONG));
431 		(void) strlcpy(component, path, ZFS_MAX_DATASET_NAME_LEN);
432 		p = NULL;
433 	} else if (p[0] == '/') {
434 		if (p - path >= ZFS_MAX_DATASET_NAME_LEN)
435 			return (SET_ERROR(ENAMETOOLONG));
436 		(void) strlcpy(component, path, p - path + 1);
437 		p++;
438 	} else if (p[0] == '@') {
439 		/*
440 		 * if the next separator is an @, there better not be
441 		 * any more slashes.
442 		 */
443 		if (strchr(path, '/'))
444 			return (SET_ERROR(EINVAL));
445 		if (p - path >= ZFS_MAX_DATASET_NAME_LEN)
446 			return (SET_ERROR(ENAMETOOLONG));
447 		(void) strlcpy(component, path, p - path + 1);
448 	} else {
449 		panic("invalid p=%p", (void *)p);
450 	}
451 	*nextp = p;
452 	return (0);
453 }
454 
455 /*
456  * Return the dsl_dir_t, and possibly the last component which couldn't
457  * be found in *tail.  The name must be in the specified dsl_pool_t.  This
458  * thread must hold the dp_config_rwlock for the pool.  Returns NULL if the
459  * path is bogus, or if tail==NULL and we couldn't parse the whole name.
460  * (*tail)[0] == '@' means that the last component is a snapshot.
461  */
462 int
463 dsl_dir_hold(dsl_pool_t *dp, const char *name, const void *tag,
464     dsl_dir_t **ddp, const char **tailp)
465 {
466 	char *buf;
467 	const char *spaname, *next, *nextnext = NULL;
468 	int err;
469 	dsl_dir_t *dd;
470 	uint64_t ddobj;
471 
472 	buf = kmem_alloc(ZFS_MAX_DATASET_NAME_LEN, KM_SLEEP);
473 	err = getcomponent(name, buf, &next);
474 	if (err != 0)
475 		goto error;
476 
477 	/* Make sure the name is in the specified pool. */
478 	spaname = spa_name(dp->dp_spa);
479 	if (strcmp(buf, spaname) != 0) {
480 		err = SET_ERROR(EXDEV);
481 		goto error;
482 	}
483 
484 	ASSERT(dsl_pool_config_held(dp));
485 
486 	err = dsl_dir_hold_obj(dp, dp->dp_root_dir_obj, NULL, tag, &dd);
487 	if (err != 0) {
488 		goto error;
489 	}
490 
491 	while (next != NULL) {
492 		dsl_dir_t *child_dd;
493 		err = getcomponent(next, buf, &nextnext);
494 		if (err != 0)
495 			break;
496 		ASSERT(next[0] != '\0');
497 		if (next[0] == '@')
498 			break;
499 		dprintf("looking up %s in obj%lld\n",
500 		    buf, (longlong_t)dsl_dir_phys(dd)->dd_child_dir_zapobj);
501 
502 		err = zap_lookup(dp->dp_meta_objset,
503 		    dsl_dir_phys(dd)->dd_child_dir_zapobj,
504 		    buf, sizeof (ddobj), 1, &ddobj);
505 		if (err != 0) {
506 			if (err == ENOENT)
507 				err = 0;
508 			break;
509 		}
510 
511 		err = dsl_dir_hold_obj(dp, ddobj, buf, tag, &child_dd);
512 		if (err != 0)
513 			break;
514 		dsl_dir_rele(dd, tag);
515 		dd = child_dd;
516 		next = nextnext;
517 	}
518 
519 	if (err != 0) {
520 		dsl_dir_rele(dd, tag);
521 		goto error;
522 	}
523 
524 	/*
525 	 * It's an error if there's more than one component left, or
526 	 * tailp==NULL and there's any component left.
527 	 */
528 	if (next != NULL &&
529 	    (tailp == NULL || (nextnext && nextnext[0] != '\0'))) {
530 		/* bad path name */
531 		dsl_dir_rele(dd, tag);
532 		dprintf("next=%p (%s) tail=%p\n", next, next?next:"", tailp);
533 		err = SET_ERROR(ENOENT);
534 	}
535 	if (tailp != NULL)
536 		*tailp = next;
537 	if (err == 0)
538 		*ddp = dd;
539 error:
540 	kmem_free(buf, ZFS_MAX_DATASET_NAME_LEN);
541 	return (err);
542 }
543 
544 /*
545  * If the counts are already initialized for this filesystem and its
546  * descendants then do nothing, otherwise initialize the counts.
547  *
548  * The counts on this filesystem, and those below, may be uninitialized due to
549  * either the use of a pre-existing pool which did not support the
550  * filesystem/snapshot limit feature, or one in which the feature had not yet
551  * been enabled.
552  *
553  * Recursively descend the filesystem tree and update the filesystem/snapshot
554  * counts on each filesystem below, then update the cumulative count on the
555  * current filesystem. If the filesystem already has a count set on it,
556  * then we know that its counts, and the counts on the filesystems below it,
557  * are already correct, so we don't have to update this filesystem.
558  */
559 static void
560 dsl_dir_init_fs_ss_count(dsl_dir_t *dd, dmu_tx_t *tx)
561 {
562 	uint64_t my_fs_cnt = 0;
563 	uint64_t my_ss_cnt = 0;
564 	dsl_pool_t *dp = dd->dd_pool;
565 	objset_t *os = dp->dp_meta_objset;
566 	zap_cursor_t *zc;
567 	zap_attribute_t *za;
568 	dsl_dataset_t *ds;
569 
570 	ASSERT(spa_feature_is_active(dp->dp_spa, SPA_FEATURE_FS_SS_LIMIT));
571 	ASSERT(dsl_pool_config_held(dp));
572 	ASSERT(dmu_tx_is_syncing(tx));
573 
574 	dsl_dir_zapify(dd, tx);
575 
576 	/*
577 	 * If the filesystem count has already been initialized then we
578 	 * don't need to recurse down any further.
579 	 */
580 	if (zap_contains(os, dd->dd_object, DD_FIELD_FILESYSTEM_COUNT) == 0)
581 		return;
582 
583 	zc = kmem_alloc(sizeof (zap_cursor_t), KM_SLEEP);
584 	za = zap_attribute_alloc();
585 
586 	/* Iterate my child dirs */
587 	for (zap_cursor_init(zc, os, dsl_dir_phys(dd)->dd_child_dir_zapobj);
588 	    zap_cursor_retrieve(zc, za) == 0; zap_cursor_advance(zc)) {
589 		dsl_dir_t *chld_dd;
590 		uint64_t count;
591 
592 		VERIFY0(dsl_dir_hold_obj(dp, za->za_first_integer, NULL, FTAG,
593 		    &chld_dd));
594 
595 		/*
596 		 * Ignore hidden ($FREE, $MOS & $ORIGIN) objsets.
597 		 */
598 		if (chld_dd->dd_myname[0] == '$') {
599 			dsl_dir_rele(chld_dd, FTAG);
600 			continue;
601 		}
602 
603 		my_fs_cnt++;	/* count this child */
604 
605 		dsl_dir_init_fs_ss_count(chld_dd, tx);
606 
607 		VERIFY0(zap_lookup(os, chld_dd->dd_object,
608 		    DD_FIELD_FILESYSTEM_COUNT, sizeof (count), 1, &count));
609 		my_fs_cnt += count;
610 		VERIFY0(zap_lookup(os, chld_dd->dd_object,
611 		    DD_FIELD_SNAPSHOT_COUNT, sizeof (count), 1, &count));
612 		my_ss_cnt += count;
613 
614 		dsl_dir_rele(chld_dd, FTAG);
615 	}
616 	zap_cursor_fini(zc);
617 	/* Count my snapshots (we counted children's snapshots above) */
618 	VERIFY0(dsl_dataset_hold_obj(dd->dd_pool,
619 	    dsl_dir_phys(dd)->dd_head_dataset_obj, FTAG, &ds));
620 
621 	for (zap_cursor_init(zc, os, dsl_dataset_phys(ds)->ds_snapnames_zapobj);
622 	    zap_cursor_retrieve(zc, za) == 0;
623 	    zap_cursor_advance(zc)) {
624 		/* Don't count temporary snapshots */
625 		if (za->za_name[0] != '%')
626 			my_ss_cnt++;
627 	}
628 	zap_cursor_fini(zc);
629 
630 	dsl_dataset_rele(ds, FTAG);
631 
632 	kmem_free(zc, sizeof (zap_cursor_t));
633 	zap_attribute_free(za);
634 
635 	/* we're in a sync task, update counts */
636 	dmu_buf_will_dirty(dd->dd_dbuf, tx);
637 	VERIFY0(zap_add(os, dd->dd_object, DD_FIELD_FILESYSTEM_COUNT,
638 	    sizeof (my_fs_cnt), 1, &my_fs_cnt, tx));
639 	VERIFY0(zap_add(os, dd->dd_object, DD_FIELD_SNAPSHOT_COUNT,
640 	    sizeof (my_ss_cnt), 1, &my_ss_cnt, tx));
641 }
642 
643 static int
644 dsl_dir_actv_fs_ss_limit_check(void *arg, dmu_tx_t *tx)
645 {
646 	char *ddname = (char *)arg;
647 	dsl_pool_t *dp = dmu_tx_pool(tx);
648 	dsl_dataset_t *ds;
649 	dsl_dir_t *dd;
650 	int error;
651 
652 	error = dsl_dataset_hold(dp, ddname, FTAG, &ds);
653 	if (error != 0)
654 		return (error);
655 
656 	if (!spa_feature_is_enabled(dp->dp_spa, SPA_FEATURE_FS_SS_LIMIT)) {
657 		dsl_dataset_rele(ds, FTAG);
658 		return (SET_ERROR(ENOTSUP));
659 	}
660 
661 	dd = ds->ds_dir;
662 	if (spa_feature_is_active(dp->dp_spa, SPA_FEATURE_FS_SS_LIMIT) &&
663 	    dsl_dir_is_zapified(dd) &&
664 	    zap_contains(dp->dp_meta_objset, dd->dd_object,
665 	    DD_FIELD_FILESYSTEM_COUNT) == 0) {
666 		dsl_dataset_rele(ds, FTAG);
667 		return (SET_ERROR(EALREADY));
668 	}
669 
670 	dsl_dataset_rele(ds, FTAG);
671 	return (0);
672 }
673 
674 static void
675 dsl_dir_actv_fs_ss_limit_sync(void *arg, dmu_tx_t *tx)
676 {
677 	char *ddname = (char *)arg;
678 	dsl_pool_t *dp = dmu_tx_pool(tx);
679 	dsl_dataset_t *ds;
680 	spa_t *spa;
681 
682 	VERIFY0(dsl_dataset_hold(dp, ddname, FTAG, &ds));
683 
684 	spa = dsl_dataset_get_spa(ds);
685 
686 	if (!spa_feature_is_active(spa, SPA_FEATURE_FS_SS_LIMIT)) {
687 		/*
688 		 * Since the feature was not active and we're now setting a
689 		 * limit, increment the feature-active counter so that the
690 		 * feature becomes active for the first time.
691 		 *
692 		 * We are already in a sync task so we can update the MOS.
693 		 */
694 		spa_feature_incr(spa, SPA_FEATURE_FS_SS_LIMIT, tx);
695 	}
696 
697 	/*
698 	 * Since we are now setting a non-UINT64_MAX limit on the filesystem,
699 	 * we need to ensure the counts are correct. Descend down the tree from
700 	 * this point and update all of the counts to be accurate.
701 	 */
702 	dsl_dir_init_fs_ss_count(ds->ds_dir, tx);
703 
704 	dsl_dataset_rele(ds, FTAG);
705 }
706 
707 /*
708  * Make sure the feature is enabled and activate it if necessary.
709  * Since we're setting a limit, ensure the on-disk counts are valid.
710  * This is only called by the ioctl path when setting a limit value.
711  *
712  * We do not need to validate the new limit, since users who can change the
713  * limit are also allowed to exceed the limit.
714  */
715 int
716 dsl_dir_activate_fs_ss_limit(const char *ddname)
717 {
718 	int error;
719 
720 	error = dsl_sync_task(ddname, dsl_dir_actv_fs_ss_limit_check,
721 	    dsl_dir_actv_fs_ss_limit_sync, (void *)ddname, 0,
722 	    ZFS_SPACE_CHECK_RESERVED);
723 
724 	if (error == EALREADY)
725 		error = 0;
726 
727 	return (error);
728 }
729 
730 /*
731  * Used to determine if the filesystem_limit or snapshot_limit should be
732  * enforced. We allow the limit to be exceeded if the user has permission to
733  * write the property value. We pass in the creds that we got in the open
734  * context since we will always be the GZ root in syncing context. We also have
735  * to handle the case where we are allowed to change the limit on the current
736  * dataset, but there may be another limit in the tree above.
737  *
738  * We can never modify these two properties within a non-global zone. In
739  * addition, the other checks are modeled on zfs_secpolicy_write_perms. We
740  * can't use that function since we are already holding the dp_config_rwlock.
741  * In addition, we already have the dd and dealing with snapshots is simplified
742  * in this code.
743  */
744 
745 typedef enum {
746 	ENFORCE_ALWAYS,
747 	ENFORCE_NEVER,
748 	ENFORCE_ABOVE
749 } enforce_res_t;
750 
751 static enforce_res_t
752 dsl_enforce_ds_ss_limits(dsl_dir_t *dd, zfs_prop_t prop,
753     cred_t *cr)
754 {
755 	enforce_res_t enforce = ENFORCE_ALWAYS;
756 	uint64_t obj;
757 	dsl_dataset_t *ds;
758 	uint64_t zoned;
759 	const char *zonedstr;
760 
761 	ASSERT(prop == ZFS_PROP_FILESYSTEM_LIMIT ||
762 	    prop == ZFS_PROP_SNAPSHOT_LIMIT);
763 
764 #ifdef _KERNEL
765 	if (crgetzoneid(cr) != GLOBAL_ZONEID)
766 		return (ENFORCE_ALWAYS);
767 
768 	if (secpolicy_zfs(cr) == 0)
769 		return (ENFORCE_NEVER);
770 #endif
771 
772 	if ((obj = dsl_dir_phys(dd)->dd_head_dataset_obj) == 0)
773 		return (ENFORCE_ALWAYS);
774 
775 	ASSERT(dsl_pool_config_held(dd->dd_pool));
776 
777 	if (dsl_dataset_hold_obj(dd->dd_pool, obj, FTAG, &ds) != 0)
778 		return (ENFORCE_ALWAYS);
779 
780 	zonedstr = zfs_prop_to_name(ZFS_PROP_ZONED);
781 	if (dsl_prop_get_ds(ds, zonedstr, 8, 1, &zoned, NULL) || zoned) {
782 		/* Only root can access zoned fs's from the GZ */
783 		enforce = ENFORCE_ALWAYS;
784 	} else {
785 		if (dsl_deleg_access_impl(ds, zfs_prop_to_name(prop), cr) == 0)
786 			enforce = ENFORCE_ABOVE;
787 	}
788 
789 	dsl_dataset_rele(ds, FTAG);
790 	return (enforce);
791 }
792 
793 /*
794  * Check if adding additional child filesystem(s) would exceed any filesystem
795  * limits or adding additional snapshot(s) would exceed any snapshot limits.
796  * The prop argument indicates which limit to check.
797  *
798  * Note that all filesystem limits up to the root (or the highest
799  * initialized) filesystem or the given ancestor must be satisfied.
800  */
801 int
802 dsl_fs_ss_limit_check(dsl_dir_t *dd, uint64_t delta, zfs_prop_t prop,
803     dsl_dir_t *ancestor, cred_t *cr)
804 {
805 	objset_t *os = dd->dd_pool->dp_meta_objset;
806 	uint64_t limit, count;
807 	const char *count_prop;
808 	enforce_res_t enforce;
809 	int err = 0;
810 
811 	ASSERT(dsl_pool_config_held(dd->dd_pool));
812 	ASSERT(prop == ZFS_PROP_FILESYSTEM_LIMIT ||
813 	    prop == ZFS_PROP_SNAPSHOT_LIMIT);
814 
815 	if (prop == ZFS_PROP_SNAPSHOT_LIMIT) {
816 		/*
817 		 * We don't enforce the limit for temporary snapshots. This is
818 		 * indicated by a NULL cred_t argument.
819 		 */
820 		if (cr == NULL)
821 			return (0);
822 
823 		count_prop = DD_FIELD_SNAPSHOT_COUNT;
824 	} else {
825 		count_prop = DD_FIELD_FILESYSTEM_COUNT;
826 	}
827 	/*
828 	 * If we're allowed to change the limit, don't enforce the limit
829 	 * e.g. this can happen if a snapshot is taken by an administrative
830 	 * user in the global zone (i.e. a recursive snapshot by root).
831 	 * However, we must handle the case of delegated permissions where we
832 	 * are allowed to change the limit on the current dataset, but there
833 	 * is another limit in the tree above.
834 	 */
835 	enforce = dsl_enforce_ds_ss_limits(dd, prop, cr);
836 	if (enforce == ENFORCE_NEVER)
837 		return (0);
838 
839 	/*
840 	 * e.g. if renaming a dataset with no snapshots, count adjustment
841 	 * is 0.
842 	 */
843 	if (delta == 0)
844 		return (0);
845 
846 	/*
847 	 * If an ancestor has been provided, stop checking the limit once we
848 	 * hit that dir. We need this during rename so that we don't overcount
849 	 * the check once we recurse up to the common ancestor.
850 	 */
851 	if (ancestor == dd)
852 		return (0);
853 
854 	/*
855 	 * If we hit an uninitialized node while recursing up the tree, we can
856 	 * stop since we know there is no limit here (or above). The counts are
857 	 * not valid on this node and we know we won't touch this node's counts.
858 	 */
859 	if (!dsl_dir_is_zapified(dd))
860 		return (0);
861 	err = zap_lookup(os, dd->dd_object,
862 	    count_prop, sizeof (count), 1, &count);
863 	if (err == ENOENT)
864 		return (0);
865 	if (err != 0)
866 		return (err);
867 
868 	err = dsl_prop_get_dd(dd, zfs_prop_to_name(prop), 8, 1, &limit, NULL,
869 	    B_FALSE);
870 	if (err != 0)
871 		return (err);
872 
873 	/* Is there a limit which we've hit? */
874 	if (enforce == ENFORCE_ALWAYS && (count + delta) > limit)
875 		return (SET_ERROR(EDQUOT));
876 
877 	if (dd->dd_parent != NULL)
878 		err = dsl_fs_ss_limit_check(dd->dd_parent, delta, prop,
879 		    ancestor, cr);
880 
881 	return (err);
882 }
883 
884 /*
885  * Adjust the filesystem or snapshot count for the specified dsl_dir_t and all
886  * parents. When a new filesystem/snapshot is created, increment the count on
887  * all parents, and when a filesystem/snapshot is destroyed, decrement the
888  * count.
889  */
890 void
891 dsl_fs_ss_count_adjust(dsl_dir_t *dd, int64_t delta, const char *prop,
892     dmu_tx_t *tx)
893 {
894 	int err;
895 	objset_t *os = dd->dd_pool->dp_meta_objset;
896 	uint64_t count;
897 
898 	ASSERT(dsl_pool_config_held(dd->dd_pool));
899 	ASSERT(dmu_tx_is_syncing(tx));
900 	ASSERT(strcmp(prop, DD_FIELD_FILESYSTEM_COUNT) == 0 ||
901 	    strcmp(prop, DD_FIELD_SNAPSHOT_COUNT) == 0);
902 
903 	/*
904 	 * We don't do accounting for hidden ($FREE, $MOS & $ORIGIN) objsets.
905 	 */
906 	if (dd->dd_myname[0] == '$' && strcmp(prop,
907 	    DD_FIELD_FILESYSTEM_COUNT) == 0) {
908 		return;
909 	}
910 
911 	/*
912 	 * e.g. if renaming a dataset with no snapshots, count adjustment is 0
913 	 */
914 	if (delta == 0)
915 		return;
916 
917 	/*
918 	 * If we hit an uninitialized node while recursing up the tree, we can
919 	 * stop since we know the counts are not valid on this node and we
920 	 * know we shouldn't touch this node's counts. An uninitialized count
921 	 * on the node indicates that either the feature has not yet been
922 	 * activated or there are no limits on this part of the tree.
923 	 */
924 	if (!dsl_dir_is_zapified(dd) || (err = zap_lookup(os, dd->dd_object,
925 	    prop, sizeof (count), 1, &count)) == ENOENT)
926 		return;
927 	VERIFY0(err);
928 
929 	count += delta;
930 	/* Use a signed verify to make sure we're not neg. */
931 	VERIFY3S(count, >=, 0);
932 
933 	VERIFY0(zap_update(os, dd->dd_object, prop, sizeof (count), 1, &count,
934 	    tx));
935 
936 	/* Roll up this additional count into our ancestors */
937 	if (dd->dd_parent != NULL)
938 		dsl_fs_ss_count_adjust(dd->dd_parent, delta, prop, tx);
939 }
940 
941 uint64_t
942 dsl_dir_create_sync(dsl_pool_t *dp, dsl_dir_t *pds, const char *name,
943     dmu_tx_t *tx)
944 {
945 	objset_t *mos = dp->dp_meta_objset;
946 	uint64_t ddobj;
947 	dsl_dir_phys_t *ddphys;
948 	dmu_buf_t *dbuf;
949 
950 	ddobj = dmu_object_alloc(mos, DMU_OT_DSL_DIR, 0,
951 	    DMU_OT_DSL_DIR, sizeof (dsl_dir_phys_t), tx);
952 	if (pds) {
953 		VERIFY0(zap_add(mos, dsl_dir_phys(pds)->dd_child_dir_zapobj,
954 		    name, sizeof (uint64_t), 1, &ddobj, tx));
955 	} else {
956 		/* it's the root dir */
957 		VERIFY0(zap_add(mos, DMU_POOL_DIRECTORY_OBJECT,
958 		    DMU_POOL_ROOT_DATASET, sizeof (uint64_t), 1, &ddobj, tx));
959 	}
960 	VERIFY0(dmu_bonus_hold(mos, ddobj, FTAG, &dbuf));
961 	dmu_buf_will_dirty(dbuf, tx);
962 	ddphys = dbuf->db_data;
963 
964 	ddphys->dd_creation_time = gethrestime_sec();
965 	if (pds) {
966 		ddphys->dd_parent_obj = pds->dd_object;
967 
968 		/* update the filesystem counts */
969 		dsl_fs_ss_count_adjust(pds, 1, DD_FIELD_FILESYSTEM_COUNT, tx);
970 	}
971 	ddphys->dd_props_zapobj = zap_create(mos,
972 	    DMU_OT_DSL_PROPS, DMU_OT_NONE, 0, tx);
973 	ddphys->dd_child_dir_zapobj = zap_create(mos,
974 	    DMU_OT_DSL_DIR_CHILD_MAP, DMU_OT_NONE, 0, tx);
975 	if (spa_version(dp->dp_spa) >= SPA_VERSION_USED_BREAKDOWN)
976 		ddphys->dd_flags |= DD_FLAG_USED_BREAKDOWN;
977 
978 	dmu_buf_rele(dbuf, FTAG);
979 
980 	return (ddobj);
981 }
982 
983 boolean_t
984 dsl_dir_is_clone(dsl_dir_t *dd)
985 {
986 	return (dsl_dir_phys(dd)->dd_origin_obj &&
987 	    (dd->dd_pool->dp_origin_snap == NULL ||
988 	    dsl_dir_phys(dd)->dd_origin_obj !=
989 	    dd->dd_pool->dp_origin_snap->ds_object));
990 }
991 
992 uint64_t
993 dsl_dir_get_used(dsl_dir_t *dd)
994 {
995 	return (dsl_dir_phys(dd)->dd_used_bytes);
996 }
997 
998 uint64_t
999 dsl_dir_get_compressed(dsl_dir_t *dd)
1000 {
1001 	return (dsl_dir_phys(dd)->dd_compressed_bytes);
1002 }
1003 
1004 uint64_t
1005 dsl_dir_get_quota(dsl_dir_t *dd)
1006 {
1007 	return (dsl_dir_phys(dd)->dd_quota);
1008 }
1009 
1010 uint64_t
1011 dsl_dir_get_reservation(dsl_dir_t *dd)
1012 {
1013 	return (dsl_dir_phys(dd)->dd_reserved);
1014 }
1015 
1016 uint64_t
1017 dsl_dir_get_compressratio(dsl_dir_t *dd)
1018 {
1019 	/* a fixed point number, 100x the ratio */
1020 	return (dsl_dir_phys(dd)->dd_compressed_bytes == 0 ? 100 :
1021 	    (dsl_dir_phys(dd)->dd_uncompressed_bytes * 100 /
1022 	    dsl_dir_phys(dd)->dd_compressed_bytes));
1023 }
1024 
1025 uint64_t
1026 dsl_dir_get_logicalused(dsl_dir_t *dd)
1027 {
1028 	return (dsl_dir_phys(dd)->dd_uncompressed_bytes);
1029 }
1030 
1031 uint64_t
1032 dsl_dir_get_usedsnap(dsl_dir_t *dd)
1033 {
1034 	return (dsl_dir_phys(dd)->dd_used_breakdown[DD_USED_SNAP]);
1035 }
1036 
1037 uint64_t
1038 dsl_dir_get_usedds(dsl_dir_t *dd)
1039 {
1040 	return (dsl_dir_phys(dd)->dd_used_breakdown[DD_USED_HEAD]);
1041 }
1042 
1043 uint64_t
1044 dsl_dir_get_usedrefreserv(dsl_dir_t *dd)
1045 {
1046 	return (dsl_dir_phys(dd)->dd_used_breakdown[DD_USED_REFRSRV]);
1047 }
1048 
1049 uint64_t
1050 dsl_dir_get_usedchild(dsl_dir_t *dd)
1051 {
1052 	return (dsl_dir_phys(dd)->dd_used_breakdown[DD_USED_CHILD] +
1053 	    dsl_dir_phys(dd)->dd_used_breakdown[DD_USED_CHILD_RSRV]);
1054 }
1055 
1056 void
1057 dsl_dir_get_origin(dsl_dir_t *dd, char *buf)
1058 {
1059 	dsl_dataset_t *ds;
1060 	VERIFY0(dsl_dataset_hold_obj(dd->dd_pool,
1061 	    dsl_dir_phys(dd)->dd_origin_obj, FTAG, &ds));
1062 
1063 	dsl_dataset_name(ds, buf);
1064 
1065 	dsl_dataset_rele(ds, FTAG);
1066 }
1067 
1068 int
1069 dsl_dir_get_filesystem_count(dsl_dir_t *dd, uint64_t *count)
1070 {
1071 	if (dsl_dir_is_zapified(dd)) {
1072 		objset_t *os = dd->dd_pool->dp_meta_objset;
1073 		return (zap_lookup(os, dd->dd_object, DD_FIELD_FILESYSTEM_COUNT,
1074 		    sizeof (*count), 1, count));
1075 	} else {
1076 		return (SET_ERROR(ENOENT));
1077 	}
1078 }
1079 
1080 int
1081 dsl_dir_get_snapshot_count(dsl_dir_t *dd, uint64_t *count)
1082 {
1083 	if (dsl_dir_is_zapified(dd)) {
1084 		objset_t *os = dd->dd_pool->dp_meta_objset;
1085 		return (zap_lookup(os, dd->dd_object, DD_FIELD_SNAPSHOT_COUNT,
1086 		    sizeof (*count), 1, count));
1087 	} else {
1088 		return (SET_ERROR(ENOENT));
1089 	}
1090 }
1091 
1092 void
1093 dsl_dir_stats(dsl_dir_t *dd, nvlist_t *nv)
1094 {
1095 	mutex_enter(&dd->dd_lock);
1096 	dsl_prop_nvlist_add_uint64(nv, ZFS_PROP_QUOTA,
1097 	    dsl_dir_get_quota(dd));
1098 	dsl_prop_nvlist_add_uint64(nv, ZFS_PROP_RESERVATION,
1099 	    dsl_dir_get_reservation(dd));
1100 	dsl_prop_nvlist_add_uint64(nv, ZFS_PROP_LOGICALUSED,
1101 	    dsl_dir_get_logicalused(dd));
1102 	if (dsl_dir_phys(dd)->dd_flags & DD_FLAG_USED_BREAKDOWN) {
1103 		dsl_prop_nvlist_add_uint64(nv, ZFS_PROP_USEDSNAP,
1104 		    dsl_dir_get_usedsnap(dd));
1105 		dsl_prop_nvlist_add_uint64(nv, ZFS_PROP_USEDDS,
1106 		    dsl_dir_get_usedds(dd));
1107 		dsl_prop_nvlist_add_uint64(nv, ZFS_PROP_USEDREFRESERV,
1108 		    dsl_dir_get_usedrefreserv(dd));
1109 		dsl_prop_nvlist_add_uint64(nv, ZFS_PROP_USEDCHILD,
1110 		    dsl_dir_get_usedchild(dd));
1111 	}
1112 	mutex_exit(&dd->dd_lock);
1113 
1114 	uint64_t count;
1115 	if (dsl_dir_get_filesystem_count(dd, &count) == 0) {
1116 		dsl_prop_nvlist_add_uint64(nv, ZFS_PROP_FILESYSTEM_COUNT,
1117 		    count);
1118 	}
1119 	if (dsl_dir_get_snapshot_count(dd, &count) == 0) {
1120 		dsl_prop_nvlist_add_uint64(nv, ZFS_PROP_SNAPSHOT_COUNT,
1121 		    count);
1122 	}
1123 
1124 	if (dsl_dir_is_clone(dd)) {
1125 		char buf[ZFS_MAX_DATASET_NAME_LEN];
1126 		dsl_dir_get_origin(dd, buf);
1127 		dsl_prop_nvlist_add_string(nv, ZFS_PROP_ORIGIN, buf);
1128 	}
1129 
1130 }
1131 
1132 void
1133 dsl_dir_dirty(dsl_dir_t *dd, dmu_tx_t *tx)
1134 {
1135 	dsl_pool_t *dp = dd->dd_pool;
1136 
1137 	ASSERT(dsl_dir_phys(dd));
1138 
1139 	if (txg_list_add(&dp->dp_dirty_dirs, dd, tx->tx_txg)) {
1140 		/* up the hold count until we can be written out */
1141 		dmu_buf_add_ref(dd->dd_dbuf, dd);
1142 	}
1143 }
1144 
1145 static int64_t
1146 parent_delta(dsl_dir_t *dd, uint64_t used, int64_t delta)
1147 {
1148 	uint64_t reserved = dsl_dir_phys(dd)->dd_reserved;
1149 	uint64_t old_accounted, new_accounted;
1150 
1151 	if (reserved == 0)
1152 		return (delta);
1153 
1154 	old_accounted = MAX(used, reserved);
1155 	new_accounted = MAX(used + delta, reserved);
1156 	return (new_accounted - old_accounted);
1157 }
1158 
1159 void
1160 dsl_dir_sync(dsl_dir_t *dd, dmu_tx_t *tx)
1161 {
1162 	ASSERT(dmu_tx_is_syncing(tx));
1163 
1164 	/* This txg is done, so open context can not use its slots any more. */
1165 	ASSERT0(dd->dd_tempreserved[tx->tx_txg & TXG_MASK]);
1166 	dprintf_dd(dd, "txg=%llu towrite=%lluK\n", (u_longlong_t)tx->tx_txg,
1167 	    (u_longlong_t)dd->dd_space_towrite[tx->tx_txg & TXG_MASK] / 1024);
1168 	dd->dd_space_towrite[tx->tx_txg & TXG_MASK] = 0;
1169 
1170 	/* release the hold from dsl_dir_dirty */
1171 	dmu_buf_rele(dd->dd_dbuf, dd);
1172 }
1173 
1174 /*
1175  * The slots are updated with atomics from open context, so the sum may be
1176  * slightly stale.  All the consumers only need an estimate.
1177  */
1178 static uint64_t
1179 dsl_dir_space_towrite(dsl_dir_t *dd)
1180 {
1181 	uint64_t space = 0;
1182 
1183 	for (int i = 0; i < TXG_SIZE; i++)
1184 		space += dd->dd_space_towrite[i & TXG_MASK];
1185 
1186 	return (space);
1187 }
1188 
1189 /*
1190  * How much space would dd have available if ancestor had delta applied
1191  * to it?  If ondiskonly is set, we're only interested in what's
1192  * on-disk, not estimated pending changes.
1193  */
1194 uint64_t
1195 dsl_dir_space_available(dsl_dir_t *dd,
1196     dsl_dir_t *ancestor, int64_t delta, int ondiskonly)
1197 {
1198 	uint64_t parentspace, myspace, quota, used;
1199 
1200 	/*
1201 	 * If there are no restrictions otherwise, assume we have
1202 	 * unlimited space available.
1203 	 */
1204 	quota = UINT64_MAX;
1205 	parentspace = UINT64_MAX;
1206 
1207 	if (dd->dd_parent != NULL) {
1208 		parentspace = dsl_dir_space_available(dd->dd_parent,
1209 		    ancestor, delta, ondiskonly);
1210 	}
1211 
1212 	mutex_enter(&dd->dd_lock);
1213 	if (dsl_dir_phys(dd)->dd_quota != 0)
1214 		quota = dsl_dir_phys(dd)->dd_quota;
1215 	used = dsl_dir_phys(dd)->dd_used_bytes;
1216 	if (!ondiskonly)
1217 		used += dsl_dir_space_towrite(dd);
1218 
1219 	if (dd->dd_parent == NULL) {
1220 		uint64_t poolsize = dsl_pool_adjustedsize(dd->dd_pool,
1221 		    ZFS_SPACE_CHECK_NORMAL);
1222 		quota = MIN(quota, poolsize);
1223 	}
1224 
1225 	if (dsl_dir_phys(dd)->dd_reserved > used && parentspace != UINT64_MAX) {
1226 		/*
1227 		 * We have some space reserved, in addition to what our
1228 		 * parent gave us.
1229 		 */
1230 		parentspace += dsl_dir_phys(dd)->dd_reserved - used;
1231 	}
1232 
1233 	if (dd == ancestor) {
1234 		ASSERT(delta <= 0);
1235 		ASSERT(used >= -delta);
1236 		used += delta;
1237 		if (parentspace != UINT64_MAX)
1238 			parentspace -= delta;
1239 	}
1240 
1241 	if (used > quota) {
1242 		/* over quota */
1243 		myspace = 0;
1244 	} else {
1245 		/*
1246 		 * the lesser of the space provided by our parent and
1247 		 * the space left in our quota
1248 		 */
1249 		myspace = MIN(parentspace, quota - used);
1250 	}
1251 
1252 	mutex_exit(&dd->dd_lock);
1253 
1254 	return (myspace);
1255 }
1256 
1257 struct tempreserve {
1258 	list_node_t tr_node;
1259 	dsl_dir_t *tr_ds;
1260 	uint64_t tr_size;
1261 };
1262 
1263 static int
1264 dsl_dir_tempreserve_impl(dsl_dir_t *dd, uint64_t asize, boolean_t netfree,
1265     boolean_t ignorequota, list_t *tr_list,
1266     dmu_tx_t *tx, boolean_t first)
1267 {
1268 	uint64_t txg;
1269 	uint64_t quota;
1270 	struct tempreserve *tr;
1271 	int retval;
1272 	uint64_t ext_quota;
1273 	uint64_t ref_rsrv;
1274 	uint64_t est_inflight, used_on_disk, parent_rsrv;
1275 	dsl_dataset_t *ds;
1276 
1277 top_of_function:
1278 	txg = tx->tx_txg;
1279 	retval = EDQUOT;
1280 	ref_rsrv = 0;
1281 	ds = (first && tx->tx_objset) ? tx->tx_objset->os_dsl_dataset : NULL;
1282 
1283 	ASSERT3U(txg, !=, 0);
1284 	ASSERT3S(asize, >, 0);
1285 
1286 	/*
1287 	 * If this transaction will result in a net free of space,
1288 	 * we want to let it through.  dd_quota is modified only by sync
1289 	 * tasks, so it may be read without dd_lock.
1290 	 */
1291 	if (ignorequota || netfree || dsl_dir_phys(dd)->dd_quota == 0 ||
1292 	    (tx->tx_objset && dmu_objset_type(tx->tx_objset) == DMU_OST_ZVOL &&
1293 	    zvol_enforce_quotas == B_FALSE))
1294 		quota = UINT64_MAX;
1295 	else
1296 		quota = dsl_dir_phys(dd)->dd_quota;
1297 
1298 	/*
1299 	 * Adjust the quota against the actual pool size at the root
1300 	 * minus any outstanding deferred frees.
1301 	 * To ensure that it's possible to remove files from a full
1302 	 * pool without inducing transient overcommits, we throttle
1303 	 * netfree transactions against a quota that is slightly larger,
1304 	 * but still within the pool's allocation slop.  In cases where
1305 	 * we're very close to full, this will allow a steady trickle of
1306 	 * removes to get through.
1307 	 */
1308 	if (dd->dd_parent == NULL) {
1309 		uint64_t avail = dsl_pool_unreserved_space(dd->dd_pool,
1310 		    (netfree) ?
1311 		    ZFS_SPACE_CHECK_RESERVED : ZFS_SPACE_CHECK_NORMAL);
1312 
1313 		if (avail < quota) {
1314 			quota = avail;
1315 			retval = SET_ERROR(ENOSPC);
1316 		}
1317 	}
1318 
1319 	/*
1320 	 * With no quota to enforce and no reservation to account for nobody
1321 	 * would read our estimates, so skip them.  Not charging dd_tempreserved
1322 	 * needs no matching decrement, since dsl_dir_tempreserve_clear() only
1323 	 * walks the dirs we have put on tr_list.
1324 	 */
1325 	if (quota == UINT64_MAX && dsl_dir_phys(dd)->dd_reserved == 0 &&
1326 	    (ds == NULL || (ds->ds_quota == 0 && ds->ds_reserved == 0))) {
1327 		parent_rsrv = asize;
1328 		goto recurse;
1329 	}
1330 
1331 	/*
1332 	 * Check against the dsl_dir's quota.  We don't add in the delta
1333 	 * when checking for over-quota because they get one free hit.
1334 	 */
1335 	est_inflight = dsl_dir_space_towrite(dd);
1336 	for (int i = 0; i < TXG_SIZE; i++)
1337 		est_inflight += dd->dd_tempreserved[i];
1338 
1339 	/*
1340 	 * On the first iteration, fetch the dataset's used-on-disk and
1341 	 * refreservation values. Also, if checkrefquota is set, test if
1342 	 * allocating this space would exceed the dataset's refquota.
1343 	 */
1344 	if (ds != NULL) {
1345 		int error = dsl_dataset_check_quota(ds, !netfree,
1346 		    asize, est_inflight, &used_on_disk, &ref_rsrv);
1347 		if (error != 0) {
1348 			DMU_TX_STAT_BUMP(dmu_tx_quota);
1349 			return (error);
1350 		}
1351 	} else {
1352 		used_on_disk = dsl_dir_phys(dd)->dd_used_bytes;
1353 	}
1354 
1355 	/*
1356 	 * If they are requesting more space, and our current estimate
1357 	 * is over quota, they get to try again unless the actual
1358 	 * on-disk is over quota and there are no pending changes
1359 	 * or deferred frees (which may free up space for us).
1360 	 */
1361 	ext_quota = quota >> 5;
1362 	if (quota == UINT64_MAX)
1363 		ext_quota = 0;
1364 
1365 	if (used_on_disk >= quota) {
1366 		if (retval == ENOSPC && (used_on_disk - quota) <
1367 		    dsl_pool_deferred_space(dd->dd_pool)) {
1368 			retval = SET_ERROR(ERESTART);
1369 		}
1370 		/* Quota exceeded */
1371 		DMU_TX_STAT_BUMP(dmu_tx_quota);
1372 		return (retval);
1373 	} else if (used_on_disk + est_inflight >= quota + ext_quota) {
1374 		dprintf_dd(dd, "failing: used=%lluK inflight = %lluK "
1375 		    "quota=%lluK tr=%lluK\n",
1376 		    (u_longlong_t)used_on_disk>>10,
1377 		    (u_longlong_t)est_inflight>>10,
1378 		    (u_longlong_t)quota>>10, (u_longlong_t)asize>>10);
1379 		DMU_TX_STAT_BUMP(dmu_tx_quota);
1380 		return (SET_ERROR(ERESTART));
1381 	}
1382 
1383 	atomic_add_64(&dd->dd_tempreserved[txg & TXG_MASK], asize);
1384 
1385 	parent_rsrv = parent_delta(dd, used_on_disk + est_inflight,
1386 	    asize - ref_rsrv);
1387 
1388 	tr = kmem_zalloc(sizeof (struct tempreserve), KM_SLEEP);
1389 	tr->tr_ds = dd;
1390 	tr->tr_size = asize;
1391 	list_insert_tail(tr_list, tr);
1392 
1393 recurse:
1394 	/* see if it's OK with our parent */
1395 	if (dd->dd_parent != NULL && parent_rsrv != 0) {
1396 		/*
1397 		 * Recurse on our parent without recursion. This has been
1398 		 * observed to be potentially large stack usage even within
1399 		 * the test suite. Largest seen stack was 7632 bytes on linux.
1400 		 */
1401 
1402 		dd = dd->dd_parent;
1403 		asize = parent_rsrv;
1404 		ignorequota = (dsl_dir_phys(dd)->dd_head_dataset_obj == 0);
1405 		first = B_FALSE;
1406 		goto top_of_function;
1407 	}
1408 
1409 	return (0);
1410 }
1411 
1412 /*
1413  * Reserve space in this dsl_dir, to be used in this tx's txg.
1414  * After the space has been dirtied (and dsl_dir_willuse_space()
1415  * has been called), the reservation should be canceled, using
1416  * dsl_dir_tempreserve_clear().
1417  */
1418 int
1419 dsl_dir_tempreserve_space(dsl_dir_t *dd, uint64_t lsize, uint64_t asize,
1420     boolean_t netfree, void **tr_cookiep, dmu_tx_t *tx)
1421 {
1422 	int err;
1423 	list_t *tr_list;
1424 
1425 	if (asize == 0) {
1426 		*tr_cookiep = NULL;
1427 		return (0);
1428 	}
1429 
1430 	tr_list = kmem_alloc(sizeof (list_t), KM_SLEEP);
1431 	list_create(tr_list, sizeof (struct tempreserve),
1432 	    offsetof(struct tempreserve, tr_node));
1433 	ASSERT3S(asize, >, 0);
1434 
1435 	err = arc_tempreserve_space(dd->dd_pool->dp_spa, lsize, tx->tx_txg);
1436 	if (err == 0) {
1437 		struct tempreserve *tr;
1438 
1439 		tr = kmem_zalloc(sizeof (struct tempreserve), KM_SLEEP);
1440 		tr->tr_size = lsize;
1441 		list_insert_tail(tr_list, tr);
1442 	} else {
1443 		if (err == EAGAIN) {
1444 			/*
1445 			 * If arc_memory_throttle() detected that pageout
1446 			 * is running and we are low on memory, we delay new
1447 			 * non-pageout transactions to give pageout an
1448 			 * advantage.
1449 			 *
1450 			 * It is unfortunate to be delaying while the caller's
1451 			 * locks are held.
1452 			 */
1453 			txg_delay(dd->dd_pool, tx->tx_txg,
1454 			    MSEC2NSEC(10), MSEC2NSEC(10));
1455 			err = SET_ERROR(ERESTART);
1456 		}
1457 
1458 		ASSERT3U(err, ==, ERESTART);
1459 	}
1460 
1461 	if (err == 0) {
1462 		err = dsl_dir_tempreserve_impl(dd, asize, netfree,
1463 		    B_FALSE, tr_list, tx, B_TRUE);
1464 	}
1465 
1466 	if (err != 0)
1467 		dsl_dir_tempreserve_clear(tr_list, tx);
1468 	else
1469 		*tr_cookiep = tr_list;
1470 
1471 	return (err);
1472 }
1473 
1474 /*
1475  * Clear a temporary reservation that we previously made with
1476  * dsl_dir_tempreserve_space().
1477  */
1478 void
1479 dsl_dir_tempreserve_clear(void *tr_cookie, dmu_tx_t *tx)
1480 {
1481 	int txgidx = tx->tx_txg & TXG_MASK;
1482 	list_t *tr_list = tr_cookie;
1483 	struct tempreserve *tr;
1484 
1485 	ASSERT3U(tx->tx_txg, !=, 0);
1486 
1487 	if (tr_cookie == NULL)
1488 		return;
1489 
1490 	while ((tr = list_remove_head(tr_list)) != NULL) {
1491 		if (tr->tr_ds) {
1492 			ASSERT3U(tr->tr_ds->dd_tempreserved[txgidx], >=,
1493 			    tr->tr_size);
1494 			atomic_add_64(&tr->tr_ds->dd_tempreserved[txgidx],
1495 			    -(int64_t)tr->tr_size);
1496 		} else {
1497 			arc_tempreserve_clear(tr->tr_size);
1498 		}
1499 		kmem_free(tr, sizeof (struct tempreserve));
1500 	}
1501 
1502 	kmem_free(tr_list, sizeof (list_t));
1503 }
1504 
1505 /*
1506  * This should be called from open context when we think we're going to write
1507  * or free space, for example when dirtying data. Be conservative; it's okay
1508  * to write less space or free more, but we don't want to write more or free
1509  * less than the amount specified.
1510  *
1511  * NOTE: The behavior of this function is identical to the Illumos / FreeBSD
1512  * version however it has been adjusted to use an iterative rather than
1513  * recursive algorithm to minimize stack usage.
1514  */
1515 void
1516 dsl_dir_willuse_space(dsl_dir_t *dd, int64_t space, dmu_tx_t *tx)
1517 {
1518 	int64_t parent_space;
1519 	uint64_t est_used;
1520 
1521 	do {
1522 		if (space > 0) {
1523 			atomic_add_64(&dd->dd_space_towrite[
1524 			    tx->tx_txg & TXG_MASK], space);
1525 		}
1526 
1527 		if (dsl_dir_phys(dd)->dd_reserved == 0) {
1528 			/* The space propagates to the parent as is. */
1529 			parent_space = space;
1530 		} else {
1531 			mutex_enter(&dd->dd_lock);
1532 			est_used = dsl_dir_space_towrite(dd) +
1533 			    dsl_dir_phys(dd)->dd_used_bytes;
1534 			parent_space = parent_delta(dd, est_used, space);
1535 			mutex_exit(&dd->dd_lock);
1536 		}
1537 
1538 		/* Make sure that we clean up dd_space_to* */
1539 		dsl_dir_dirty(dd, tx);
1540 
1541 		dd = dd->dd_parent;
1542 		space = parent_space;
1543 	} while (space && dd);
1544 }
1545 
1546 /* call from syncing context when we actually write/free space for this dd */
1547 static void dsl_dir_diduse_transfer_space_impl(dsl_dir_t *dd, int64_t used,
1548     int64_t compressed, int64_t uncompressed, int64_t tonew,
1549     dd_used_t oldtype, dd_used_t newtype, boolean_t nested, dmu_tx_t *tx);
1550 
1551 static void
1552 dsl_dir_lock_enter(dsl_dir_t *dd, boolean_t nested)
1553 {
1554 	/*
1555 	 * lockdep needs an explicit subclass when a child dd_lock
1556 	 * nests an ancestor.
1557 	 */
1558 	if (nested) {
1559 		mutex_enter_nested(&dd->dd_lock, NESTED_SINGLE);
1560 	} else {
1561 		mutex_enter(&dd->dd_lock);
1562 	}
1563 }
1564 
1565 static void
1566 dsl_dir_diduse_space_impl(dsl_dir_t *dd, dd_used_t type,
1567     int64_t used, int64_t compressed, int64_t uncompressed,
1568     boolean_t nested, dmu_tx_t *tx)
1569 {
1570 	int64_t accounted_delta;
1571 
1572 	ASSERT(dmu_tx_is_syncing(tx));
1573 	ASSERT(type < DD_USED_NUM);
1574 
1575 	dmu_buf_will_dirty(dd->dd_dbuf, tx);
1576 
1577 	/*
1578 	 * dsl_dataset_set_refreservation_sync_impl() calls this with
1579 	 * dd_lock held, so that it can atomically update
1580 	 * ds->ds_reserved and the dsl_dir accounting, so that
1581 	 * dsl_dataset_check_quota() can see dataset and dir accounting
1582 	 * consistently.
1583 	 */
1584 	boolean_t needlock = !MUTEX_HELD(&dd->dd_lock);
1585 	if (needlock)
1586 		dsl_dir_lock_enter(dd, nested);
1587 	dsl_dir_phys_t *ddp = dsl_dir_phys(dd);
1588 	accounted_delta = parent_delta(dd, ddp->dd_used_bytes, used);
1589 	ASSERT(used >= 0 || ddp->dd_used_bytes >= -used);
1590 	ASSERT(compressed >= 0 || ddp->dd_compressed_bytes >= -compressed);
1591 	ASSERT(uncompressed >= 0 ||
1592 	    ddp->dd_uncompressed_bytes >= -uncompressed);
1593 	ddp->dd_used_bytes += used;
1594 	ddp->dd_uncompressed_bytes += uncompressed;
1595 	ddp->dd_compressed_bytes += compressed;
1596 
1597 	if (ddp->dd_flags & DD_FLAG_USED_BREAKDOWN) {
1598 		ASSERT(used >= 0 || ddp->dd_used_breakdown[type] >= -used);
1599 		ddp->dd_used_breakdown[type] += used;
1600 #ifdef ZFS_DEBUG
1601 		{
1602 			dd_used_t t;
1603 			uint64_t u = 0;
1604 			for (t = 0; t < DD_USED_NUM; t++)
1605 				u += ddp->dd_used_breakdown[t];
1606 			ASSERT3U(u, ==, ddp->dd_used_bytes);
1607 		}
1608 #endif
1609 	}
1610 	if (needlock)
1611 		mutex_exit(&dd->dd_lock);
1612 
1613 	if (dd->dd_parent != NULL) {
1614 		dsl_dir_diduse_transfer_space_impl(dd->dd_parent,
1615 		    accounted_delta, compressed, uncompressed,
1616 		    used, DD_USED_CHILD_RSRV, DD_USED_CHILD, nested, tx);
1617 	}
1618 }
1619 
1620 void
1621 dsl_dir_diduse_space(dsl_dir_t *dd, dd_used_t type, int64_t used,
1622     int64_t compressed, int64_t uncompressed, dmu_tx_t *tx)
1623 {
1624 	dsl_dir_diduse_space_impl(dd, type, used, compressed, uncompressed,
1625 	    B_FALSE, tx);
1626 }
1627 
1628 void
1629 dsl_dir_transfer_space(dsl_dir_t *dd, int64_t delta,
1630     dd_used_t oldtype, dd_used_t newtype, dmu_tx_t *tx)
1631 {
1632 	ASSERT(dmu_tx_is_syncing(tx));
1633 	ASSERT(oldtype < DD_USED_NUM);
1634 	ASSERT(newtype < DD_USED_NUM);
1635 
1636 	dsl_dir_phys_t *ddp = dsl_dir_phys(dd);
1637 	if (delta == 0 ||
1638 	    !(ddp->dd_flags & DD_FLAG_USED_BREAKDOWN))
1639 		return;
1640 
1641 	dmu_buf_will_dirty(dd->dd_dbuf, tx);
1642 	mutex_enter(&dd->dd_lock);
1643 	ASSERT(delta > 0 ?
1644 	    ddp->dd_used_breakdown[oldtype] >= delta :
1645 	    ddp->dd_used_breakdown[newtype] >= -delta);
1646 	ASSERT(ddp->dd_used_bytes >= ABS(delta));
1647 	ddp->dd_used_breakdown[oldtype] -= delta;
1648 	ddp->dd_used_breakdown[newtype] += delta;
1649 	mutex_exit(&dd->dd_lock);
1650 }
1651 
1652 static void
1653 dsl_dir_diduse_transfer_space_impl(dsl_dir_t *dd, int64_t used,
1654     int64_t compressed, int64_t uncompressed, int64_t tonew,
1655 	dd_used_t oldtype, dd_used_t newtype, boolean_t nested, dmu_tx_t *tx)
1656 {
1657 	int64_t accounted_delta;
1658 
1659 	ASSERT(dmu_tx_is_syncing(tx));
1660 	ASSERT(oldtype < DD_USED_NUM);
1661 	ASSERT(newtype < DD_USED_NUM);
1662 
1663 	dmu_buf_will_dirty(dd->dd_dbuf, tx);
1664 
1665 	dsl_dir_lock_enter(dd, nested);
1666 	dsl_dir_phys_t *ddp = dsl_dir_phys(dd);
1667 	accounted_delta = parent_delta(dd, ddp->dd_used_bytes, used);
1668 	ASSERT(used >= 0 || ddp->dd_used_bytes >= -used);
1669 	ASSERT(compressed >= 0 || ddp->dd_compressed_bytes >= -compressed);
1670 	ASSERT(uncompressed >= 0 ||
1671 	    ddp->dd_uncompressed_bytes >= -uncompressed);
1672 	ddp->dd_used_bytes += used;
1673 	ddp->dd_uncompressed_bytes += uncompressed;
1674 	ddp->dd_compressed_bytes += compressed;
1675 
1676 	if (ddp->dd_flags & DD_FLAG_USED_BREAKDOWN) {
1677 		ASSERT(tonew - used <= 0 ||
1678 		    ddp->dd_used_breakdown[oldtype] >= tonew - used);
1679 		ASSERT(tonew >= 0 ||
1680 		    ddp->dd_used_breakdown[newtype] >= -tonew);
1681 		ddp->dd_used_breakdown[oldtype] -= tonew - used;
1682 		ddp->dd_used_breakdown[newtype] += tonew;
1683 #ifdef ZFS_DEBUG
1684 		{
1685 			dd_used_t t;
1686 			uint64_t u = 0;
1687 			for (t = 0; t < DD_USED_NUM; t++)
1688 				u += ddp->dd_used_breakdown[t];
1689 			ASSERT3U(u, ==, ddp->dd_used_bytes);
1690 		}
1691 #endif
1692 	}
1693 	mutex_exit(&dd->dd_lock);
1694 
1695 	if (dd->dd_parent != NULL) {
1696 		dsl_dir_diduse_transfer_space_impl(dd->dd_parent,
1697 		    accounted_delta, compressed, uncompressed,
1698 		    used, DD_USED_CHILD_RSRV, DD_USED_CHILD, nested, tx);
1699 	}
1700 }
1701 
1702 void
1703 dsl_dir_diduse_transfer_space(dsl_dir_t *dd, int64_t used,
1704     int64_t compressed, int64_t uncompressed, int64_t tonew,
1705     dd_used_t oldtype, dd_used_t newtype, dmu_tx_t *tx)
1706 {
1707 	dsl_dir_diduse_transfer_space_impl(dd, used, compressed,
1708 	    uncompressed, tonew, oldtype, newtype, B_FALSE, tx);
1709 }
1710 
1711 typedef struct dsl_dir_set_qr_arg {
1712 	const char *ddsqra_name;
1713 	zprop_source_t ddsqra_source;
1714 	uint64_t ddsqra_value;
1715 } dsl_dir_set_qr_arg_t;
1716 
1717 static int
1718 dsl_dir_set_quota_check(void *arg, dmu_tx_t *tx)
1719 {
1720 	dsl_dir_set_qr_arg_t *ddsqra = arg;
1721 	dsl_pool_t *dp = dmu_tx_pool(tx);
1722 	dsl_dataset_t *ds;
1723 	int error;
1724 	uint64_t towrite, newval;
1725 
1726 	error = dsl_dataset_hold(dp, ddsqra->ddsqra_name, FTAG, &ds);
1727 	if (error != 0)
1728 		return (error);
1729 
1730 	error = dsl_prop_predict(ds->ds_dir, "quota",
1731 	    ddsqra->ddsqra_source, ddsqra->ddsqra_value, &newval);
1732 	if (error != 0) {
1733 		dsl_dataset_rele(ds, FTAG);
1734 		return (error);
1735 	}
1736 
1737 	if (newval == 0) {
1738 		dsl_dataset_rele(ds, FTAG);
1739 		return (0);
1740 	}
1741 
1742 	mutex_enter(&ds->ds_dir->dd_lock);
1743 	/*
1744 	 * If we are doing the preliminary check in open context, and
1745 	 * there are pending changes, then don't fail it, since the
1746 	 * pending changes could under-estimate the amount of space to be
1747 	 * freed up.
1748 	 */
1749 	towrite = dsl_dir_space_towrite(ds->ds_dir);
1750 	if ((dmu_tx_is_syncing(tx) || towrite == 0) &&
1751 	    (newval < dsl_dir_phys(ds->ds_dir)->dd_reserved ||
1752 	    newval < dsl_dir_phys(ds->ds_dir)->dd_used_bytes + towrite)) {
1753 		error = SET_ERROR(ENOSPC);
1754 	}
1755 	mutex_exit(&ds->ds_dir->dd_lock);
1756 	dsl_dataset_rele(ds, FTAG);
1757 	return (error);
1758 }
1759 
1760 static void
1761 dsl_dir_set_quota_sync(void *arg, dmu_tx_t *tx)
1762 {
1763 	dsl_dir_set_qr_arg_t *ddsqra = arg;
1764 	dsl_pool_t *dp = dmu_tx_pool(tx);
1765 	dsl_dataset_t *ds;
1766 	uint64_t newval;
1767 
1768 	VERIFY0(dsl_dataset_hold(dp, ddsqra->ddsqra_name, FTAG, &ds));
1769 
1770 	if (spa_version(dp->dp_spa) >= SPA_VERSION_RECVD_PROPS) {
1771 		dsl_prop_set_sync_impl(ds, zfs_prop_to_name(ZFS_PROP_QUOTA),
1772 		    ddsqra->ddsqra_source, sizeof (ddsqra->ddsqra_value), 1,
1773 		    &ddsqra->ddsqra_value, tx);
1774 
1775 		VERIFY0(dsl_prop_get_int_ds(ds,
1776 		    zfs_prop_to_name(ZFS_PROP_QUOTA), &newval));
1777 	} else {
1778 		newval = ddsqra->ddsqra_value;
1779 		spa_history_log_internal_ds(ds, "set", tx, "%s=%lld",
1780 		    zfs_prop_to_name(ZFS_PROP_QUOTA), (longlong_t)newval);
1781 	}
1782 
1783 	dmu_buf_will_dirty(ds->ds_dir->dd_dbuf, tx);
1784 	mutex_enter(&ds->ds_dir->dd_lock);
1785 	dsl_dir_phys(ds->ds_dir)->dd_quota = newval;
1786 	mutex_exit(&ds->ds_dir->dd_lock);
1787 	dsl_dataset_rele(ds, FTAG);
1788 }
1789 
1790 int
1791 dsl_dir_set_quota(const char *ddname, zprop_source_t source, uint64_t quota)
1792 {
1793 	dsl_dir_set_qr_arg_t ddsqra;
1794 
1795 	ddsqra.ddsqra_name = ddname;
1796 	ddsqra.ddsqra_source = source;
1797 	ddsqra.ddsqra_value = quota;
1798 
1799 	return (dsl_sync_task(ddname, dsl_dir_set_quota_check,
1800 	    dsl_dir_set_quota_sync, &ddsqra, 0,
1801 	    ZFS_SPACE_CHECK_EXTRA_RESERVED));
1802 }
1803 
1804 static int
1805 dsl_dir_set_reservation_check(void *arg, dmu_tx_t *tx)
1806 {
1807 	dsl_dir_set_qr_arg_t *ddsqra = arg;
1808 	dsl_pool_t *dp = dmu_tx_pool(tx);
1809 	dsl_dataset_t *ds;
1810 	dsl_dir_t *dd;
1811 	uint64_t newval, used, avail;
1812 	int error;
1813 
1814 	error = dsl_dataset_hold(dp, ddsqra->ddsqra_name, FTAG, &ds);
1815 	if (error != 0)
1816 		return (error);
1817 	dd = ds->ds_dir;
1818 
1819 	/*
1820 	 * If we are doing the preliminary check in open context, the
1821 	 * space estimates may be inaccurate.
1822 	 */
1823 	if (!dmu_tx_is_syncing(tx)) {
1824 		dsl_dataset_rele(ds, FTAG);
1825 		return (0);
1826 	}
1827 
1828 	error = dsl_prop_predict(ds->ds_dir,
1829 	    zfs_prop_to_name(ZFS_PROP_RESERVATION),
1830 	    ddsqra->ddsqra_source, ddsqra->ddsqra_value, &newval);
1831 	if (error != 0) {
1832 		dsl_dataset_rele(ds, FTAG);
1833 		return (error);
1834 	}
1835 
1836 	mutex_enter(&dd->dd_lock);
1837 	used = dsl_dir_phys(dd)->dd_used_bytes;
1838 	mutex_exit(&dd->dd_lock);
1839 
1840 	if (dd->dd_parent) {
1841 		avail = dsl_dir_space_available(dd->dd_parent,
1842 		    NULL, 0, FALSE);
1843 	} else {
1844 		avail = dsl_pool_adjustedsize(dd->dd_pool,
1845 		    ZFS_SPACE_CHECK_NORMAL) - used;
1846 	}
1847 
1848 	if (MAX(used, newval) > MAX(used, dsl_dir_phys(dd)->dd_reserved)) {
1849 		uint64_t delta = MAX(used, newval) -
1850 		    MAX(used, dsl_dir_phys(dd)->dd_reserved);
1851 
1852 		if (delta > avail ||
1853 		    (dsl_dir_phys(dd)->dd_quota > 0 &&
1854 		    newval > dsl_dir_phys(dd)->dd_quota))
1855 			error = SET_ERROR(ENOSPC);
1856 	}
1857 
1858 	dsl_dataset_rele(ds, FTAG);
1859 	return (error);
1860 }
1861 
1862 void
1863 dsl_dir_set_reservation_sync_impl(dsl_dir_t *dd, uint64_t value, dmu_tx_t *tx)
1864 {
1865 	uint64_t used;
1866 	int64_t delta;
1867 
1868 	dmu_buf_will_dirty(dd->dd_dbuf, tx);
1869 
1870 	mutex_enter(&dd->dd_lock);
1871 	used = dsl_dir_phys(dd)->dd_used_bytes;
1872 	delta = MAX(used, value) - MAX(used, dsl_dir_phys(dd)->dd_reserved);
1873 	dsl_dir_phys(dd)->dd_reserved = value;
1874 
1875 	if (dd->dd_parent != NULL) {
1876 		/* Roll up this additional usage into our ancestors */
1877 		dsl_dir_diduse_space_impl(dd->dd_parent, DD_USED_CHILD_RSRV,
1878 		    delta, 0, 0, B_TRUE, tx);
1879 	}
1880 	mutex_exit(&dd->dd_lock);
1881 }
1882 
1883 static void
1884 dsl_dir_set_reservation_sync(void *arg, dmu_tx_t *tx)
1885 {
1886 	dsl_dir_set_qr_arg_t *ddsqra = arg;
1887 	dsl_pool_t *dp = dmu_tx_pool(tx);
1888 	dsl_dataset_t *ds;
1889 	uint64_t newval;
1890 
1891 	VERIFY0(dsl_dataset_hold(dp, ddsqra->ddsqra_name, FTAG, &ds));
1892 
1893 	if (spa_version(dp->dp_spa) >= SPA_VERSION_RECVD_PROPS) {
1894 		dsl_prop_set_sync_impl(ds,
1895 		    zfs_prop_to_name(ZFS_PROP_RESERVATION),
1896 		    ddsqra->ddsqra_source, sizeof (ddsqra->ddsqra_value), 1,
1897 		    &ddsqra->ddsqra_value, tx);
1898 
1899 		VERIFY0(dsl_prop_get_int_ds(ds,
1900 		    zfs_prop_to_name(ZFS_PROP_RESERVATION), &newval));
1901 	} else {
1902 		newval = ddsqra->ddsqra_value;
1903 		spa_history_log_internal_ds(ds, "set", tx, "%s=%lld",
1904 		    zfs_prop_to_name(ZFS_PROP_RESERVATION),
1905 		    (longlong_t)newval);
1906 	}
1907 
1908 	dsl_dir_set_reservation_sync_impl(ds->ds_dir, newval, tx);
1909 	dsl_dataset_rele(ds, FTAG);
1910 }
1911 
1912 int
1913 dsl_dir_set_reservation(const char *ddname, zprop_source_t source,
1914     uint64_t reservation)
1915 {
1916 	dsl_dir_set_qr_arg_t ddsqra;
1917 
1918 	ddsqra.ddsqra_name = ddname;
1919 	ddsqra.ddsqra_source = source;
1920 	ddsqra.ddsqra_value = reservation;
1921 
1922 	return (dsl_sync_task(ddname, dsl_dir_set_reservation_check,
1923 	    dsl_dir_set_reservation_sync, &ddsqra, 0,
1924 	    ZFS_SPACE_CHECK_EXTRA_RESERVED));
1925 }
1926 
1927 static dsl_dir_t *
1928 closest_common_ancestor(dsl_dir_t *ds1, dsl_dir_t *ds2)
1929 {
1930 	for (; ds1; ds1 = ds1->dd_parent) {
1931 		dsl_dir_t *dd;
1932 		for (dd = ds2; dd; dd = dd->dd_parent) {
1933 			if (ds1 == dd)
1934 				return (dd);
1935 		}
1936 	}
1937 	return (NULL);
1938 }
1939 
1940 /*
1941  * If delta is applied to dd, how much of that delta would be applied to
1942  * ancestor?  Syncing context only.
1943  */
1944 static int64_t
1945 would_change(dsl_dir_t *dd, int64_t delta, dsl_dir_t *ancestor)
1946 {
1947 	if (dd == ancestor)
1948 		return (delta);
1949 
1950 	mutex_enter(&dd->dd_lock);
1951 	delta = parent_delta(dd, dsl_dir_phys(dd)->dd_used_bytes, delta);
1952 	mutex_exit(&dd->dd_lock);
1953 	return (would_change(dd->dd_parent, delta, ancestor));
1954 }
1955 
1956 typedef struct dsl_dir_rename_arg {
1957 	const char *ddra_oldname;
1958 	const char *ddra_newname;
1959 	cred_t *ddra_cred;
1960 } dsl_dir_rename_arg_t;
1961 
1962 typedef struct dsl_valid_rename_arg {
1963 	int char_delta;
1964 	int nest_delta;
1965 } dsl_valid_rename_arg_t;
1966 
1967 static int
1968 dsl_valid_rename(dsl_pool_t *dp, dsl_dataset_t *ds, void *arg)
1969 {
1970 	(void) dp;
1971 	dsl_valid_rename_arg_t *dvra = arg;
1972 	char namebuf[ZFS_MAX_DATASET_NAME_LEN];
1973 
1974 	dsl_dataset_name(ds, namebuf);
1975 
1976 	ASSERT3U(strnlen(namebuf, ZFS_MAX_DATASET_NAME_LEN),
1977 	    <, ZFS_MAX_DATASET_NAME_LEN);
1978 	int namelen = strlen(namebuf) + dvra->char_delta;
1979 	int depth = get_dataset_depth(namebuf) + dvra->nest_delta;
1980 
1981 	if (namelen >= ZFS_MAX_DATASET_NAME_LEN)
1982 		return (SET_ERROR(ENAMETOOLONG));
1983 	if (dvra->nest_delta > 0 && depth >= zfs_max_dataset_nesting)
1984 		return (SET_ERROR(ENAMETOOLONG));
1985 	return (0);
1986 }
1987 
1988 static int
1989 dsl_dir_rename_check(void *arg, dmu_tx_t *tx)
1990 {
1991 	dsl_dir_rename_arg_t *ddra = arg;
1992 	dsl_pool_t *dp = dmu_tx_pool(tx);
1993 	dsl_dir_t *dd, *newparent;
1994 	dsl_valid_rename_arg_t dvra;
1995 	dsl_dataset_t *parentds;
1996 	objset_t *parentos;
1997 	const char *mynewname;
1998 	int error;
1999 
2000 	/* target dir should exist */
2001 	error = dsl_dir_hold(dp, ddra->ddra_oldname, FTAG, &dd, NULL);
2002 	if (error != 0)
2003 		return (error);
2004 
2005 	/* new parent should exist */
2006 	error = dsl_dir_hold(dp, ddra->ddra_newname, FTAG,
2007 	    &newparent, &mynewname);
2008 	if (error != 0) {
2009 		dsl_dir_rele(dd, FTAG);
2010 		return (error);
2011 	}
2012 
2013 	/* can't rename to different pool */
2014 	if (dd->dd_pool != newparent->dd_pool) {
2015 		dsl_dir_rele(newparent, FTAG);
2016 		dsl_dir_rele(dd, FTAG);
2017 		return (SET_ERROR(EXDEV));
2018 	}
2019 
2020 	/* new name should not already exist */
2021 	if (mynewname == NULL) {
2022 		dsl_dir_rele(newparent, FTAG);
2023 		dsl_dir_rele(dd, FTAG);
2024 		return (SET_ERROR(EEXIST));
2025 	}
2026 
2027 	/* can't rename below anything but filesystems (eg. no ZVOLs) */
2028 	error = dsl_dataset_hold_obj(newparent->dd_pool,
2029 	    dsl_dir_phys(newparent)->dd_head_dataset_obj, FTAG, &parentds);
2030 	if (error != 0) {
2031 		dsl_dir_rele(newparent, FTAG);
2032 		dsl_dir_rele(dd, FTAG);
2033 		return (error);
2034 	}
2035 	error = dmu_objset_from_ds(parentds, &parentos);
2036 	if (error != 0) {
2037 		dsl_dataset_rele(parentds, FTAG);
2038 		dsl_dir_rele(newparent, FTAG);
2039 		dsl_dir_rele(dd, FTAG);
2040 		return (error);
2041 	}
2042 	if (dmu_objset_type(parentos) != DMU_OST_ZFS) {
2043 		dsl_dataset_rele(parentds, FTAG);
2044 		dsl_dir_rele(newparent, FTAG);
2045 		dsl_dir_rele(dd, FTAG);
2046 		return (SET_ERROR(ZFS_ERR_WRONG_PARENT));
2047 	}
2048 	dsl_dataset_rele(parentds, FTAG);
2049 
2050 	ASSERT3U(strnlen(ddra->ddra_newname, ZFS_MAX_DATASET_NAME_LEN),
2051 	    <, ZFS_MAX_DATASET_NAME_LEN);
2052 	ASSERT3U(strnlen(ddra->ddra_oldname, ZFS_MAX_DATASET_NAME_LEN),
2053 	    <, ZFS_MAX_DATASET_NAME_LEN);
2054 	dvra.char_delta = strlen(ddra->ddra_newname)
2055 	    - strlen(ddra->ddra_oldname);
2056 	dvra.nest_delta = get_dataset_depth(ddra->ddra_newname)
2057 	    - get_dataset_depth(ddra->ddra_oldname);
2058 
2059 	/* if the name length is growing, validate child name lengths */
2060 	if (dvra.char_delta > 0 || dvra.nest_delta > 0) {
2061 		error = dmu_objset_find_dp(dp, dd->dd_object, dsl_valid_rename,
2062 		    &dvra, DS_FIND_CHILDREN | DS_FIND_SNAPSHOTS);
2063 		if (error != 0) {
2064 			dsl_dir_rele(newparent, FTAG);
2065 			dsl_dir_rele(dd, FTAG);
2066 			return (error);
2067 		}
2068 	}
2069 
2070 	if (dmu_tx_is_syncing(tx)) {
2071 		if (spa_feature_is_active(dp->dp_spa,
2072 		    SPA_FEATURE_FS_SS_LIMIT)) {
2073 			/*
2074 			 * Although this is the check function and we don't
2075 			 * normally make on-disk changes in check functions,
2076 			 * we need to do that here.
2077 			 *
2078 			 * Ensure this portion of the tree's counts have been
2079 			 * initialized in case the new parent has limits set.
2080 			 */
2081 			dsl_dir_init_fs_ss_count(dd, tx);
2082 		}
2083 	}
2084 
2085 	if (newparent != dd->dd_parent) {
2086 		/* is there enough space? */
2087 		uint64_t myspace =
2088 		    MAX(dsl_dir_phys(dd)->dd_used_bytes,
2089 		    dsl_dir_phys(dd)->dd_reserved);
2090 		objset_t *os = dd->dd_pool->dp_meta_objset;
2091 		uint64_t fs_cnt = 0;
2092 		uint64_t ss_cnt = 0;
2093 
2094 		if (dsl_dir_is_zapified(dd)) {
2095 			int err;
2096 
2097 			err = zap_lookup(os, dd->dd_object,
2098 			    DD_FIELD_FILESYSTEM_COUNT, sizeof (fs_cnt), 1,
2099 			    &fs_cnt);
2100 			if (err != ENOENT && err != 0) {
2101 				dsl_dir_rele(newparent, FTAG);
2102 				dsl_dir_rele(dd, FTAG);
2103 				return (err);
2104 			}
2105 
2106 			/*
2107 			 * have to add 1 for the filesystem itself that we're
2108 			 * moving
2109 			 */
2110 			fs_cnt++;
2111 
2112 			err = zap_lookup(os, dd->dd_object,
2113 			    DD_FIELD_SNAPSHOT_COUNT, sizeof (ss_cnt), 1,
2114 			    &ss_cnt);
2115 			if (err != ENOENT && err != 0) {
2116 				dsl_dir_rele(newparent, FTAG);
2117 				dsl_dir_rele(dd, FTAG);
2118 				return (err);
2119 			}
2120 		}
2121 
2122 		/* check for encryption errors */
2123 		error = dsl_dir_rename_crypt_check(dd, newparent);
2124 		if (error != 0) {
2125 			dsl_dir_rele(newparent, FTAG);
2126 			dsl_dir_rele(dd, FTAG);
2127 			return (SET_ERROR(EACCES));
2128 		}
2129 
2130 		/* no rename into our descendant */
2131 		if (closest_common_ancestor(dd, newparent) == dd) {
2132 			dsl_dir_rele(newparent, FTAG);
2133 			dsl_dir_rele(dd, FTAG);
2134 			return (SET_ERROR(EINVAL));
2135 		}
2136 
2137 		error = dsl_dir_transfer_possible(dd->dd_parent,
2138 		    newparent, fs_cnt, ss_cnt, myspace, ddra->ddra_cred);
2139 		if (error != 0) {
2140 			dsl_dir_rele(newparent, FTAG);
2141 			dsl_dir_rele(dd, FTAG);
2142 			return (error);
2143 		}
2144 	}
2145 
2146 	dsl_dir_rele(newparent, FTAG);
2147 	dsl_dir_rele(dd, FTAG);
2148 	return (0);
2149 }
2150 
2151 static void
2152 dsl_dir_rename_sync(void *arg, dmu_tx_t *tx)
2153 {
2154 	dsl_dir_rename_arg_t *ddra = arg;
2155 	dsl_pool_t *dp = dmu_tx_pool(tx);
2156 	dsl_dir_t *dd, *newparent;
2157 	const char *mynewname;
2158 	objset_t *mos = dp->dp_meta_objset;
2159 
2160 	VERIFY0(dsl_dir_hold(dp, ddra->ddra_oldname, FTAG, &dd, NULL));
2161 	VERIFY0(dsl_dir_hold(dp, ddra->ddra_newname, FTAG, &newparent,
2162 	    &mynewname));
2163 
2164 	ASSERT3P(mynewname, !=, NULL);
2165 
2166 	/* Log this before we change the name. */
2167 	spa_history_log_internal_dd(dd, "rename", tx,
2168 	    "-> %s", ddra->ddra_newname);
2169 
2170 	if (newparent != dd->dd_parent) {
2171 		objset_t *os = dd->dd_pool->dp_meta_objset;
2172 		uint64_t fs_cnt = 0;
2173 		uint64_t ss_cnt = 0;
2174 
2175 		/*
2176 		 * We already made sure the dd counts were initialized in the
2177 		 * check function.
2178 		 */
2179 		if (spa_feature_is_active(dp->dp_spa,
2180 		    SPA_FEATURE_FS_SS_LIMIT)) {
2181 			VERIFY0(zap_lookup(os, dd->dd_object,
2182 			    DD_FIELD_FILESYSTEM_COUNT, sizeof (fs_cnt), 1,
2183 			    &fs_cnt));
2184 			/* add 1 for the filesystem itself that we're moving */
2185 			fs_cnt++;
2186 
2187 			VERIFY0(zap_lookup(os, dd->dd_object,
2188 			    DD_FIELD_SNAPSHOT_COUNT, sizeof (ss_cnt), 1,
2189 			    &ss_cnt));
2190 		}
2191 
2192 		dsl_fs_ss_count_adjust(dd->dd_parent, -fs_cnt,
2193 		    DD_FIELD_FILESYSTEM_COUNT, tx);
2194 		dsl_fs_ss_count_adjust(newparent, fs_cnt,
2195 		    DD_FIELD_FILESYSTEM_COUNT, tx);
2196 
2197 		dsl_fs_ss_count_adjust(dd->dd_parent, -ss_cnt,
2198 		    DD_FIELD_SNAPSHOT_COUNT, tx);
2199 		dsl_fs_ss_count_adjust(newparent, ss_cnt,
2200 		    DD_FIELD_SNAPSHOT_COUNT, tx);
2201 
2202 		dsl_dir_diduse_space(dd->dd_parent, DD_USED_CHILD,
2203 		    -dsl_dir_phys(dd)->dd_used_bytes,
2204 		    -dsl_dir_phys(dd)->dd_compressed_bytes,
2205 		    -dsl_dir_phys(dd)->dd_uncompressed_bytes, tx);
2206 		dsl_dir_diduse_space(newparent, DD_USED_CHILD,
2207 		    dsl_dir_phys(dd)->dd_used_bytes,
2208 		    dsl_dir_phys(dd)->dd_compressed_bytes,
2209 		    dsl_dir_phys(dd)->dd_uncompressed_bytes, tx);
2210 
2211 		if (dsl_dir_phys(dd)->dd_reserved >
2212 		    dsl_dir_phys(dd)->dd_used_bytes) {
2213 			uint64_t unused_rsrv = dsl_dir_phys(dd)->dd_reserved -
2214 			    dsl_dir_phys(dd)->dd_used_bytes;
2215 
2216 			dsl_dir_diduse_space(dd->dd_parent, DD_USED_CHILD_RSRV,
2217 			    -unused_rsrv, 0, 0, tx);
2218 			dsl_dir_diduse_space(newparent, DD_USED_CHILD_RSRV,
2219 			    unused_rsrv, 0, 0, tx);
2220 		}
2221 	}
2222 
2223 	dmu_buf_will_dirty(dd->dd_dbuf, tx);
2224 
2225 	/* remove from old parent zapobj */
2226 	VERIFY0(zap_remove(mos,
2227 	    dsl_dir_phys(dd->dd_parent)->dd_child_dir_zapobj,
2228 	    dd->dd_myname, tx));
2229 
2230 	(void) strlcpy(dd->dd_myname, mynewname,
2231 	    sizeof (dd->dd_myname));
2232 	dsl_dir_rele(dd->dd_parent, dd);
2233 	dsl_dir_phys(dd)->dd_parent_obj = newparent->dd_object;
2234 	VERIFY0(dsl_dir_hold_obj(dp,
2235 	    newparent->dd_object, NULL, dd, &dd->dd_parent));
2236 
2237 	/* add to new parent zapobj */
2238 	VERIFY0(zap_add(mos, dsl_dir_phys(newparent)->dd_child_dir_zapobj,
2239 	    dd->dd_myname, 8, 1, &dd->dd_object, tx));
2240 
2241 	/* TODO: A rename callback to avoid these layering violations. */
2242 	zfsvfs_update_fromname(ddra->ddra_oldname, ddra->ddra_newname);
2243 	zvol_rename_minors(dp->dp_spa, ddra->ddra_oldname,
2244 	    ddra->ddra_newname, B_TRUE);
2245 
2246 	dsl_prop_notify_all(dd);
2247 
2248 	dsl_dir_rele(newparent, FTAG);
2249 	dsl_dir_rele(dd, FTAG);
2250 }
2251 
2252 int
2253 dsl_dir_rename(const char *oldname, const char *newname)
2254 {
2255 	cred_t *cr = CRED();
2256 	crhold(cr);
2257 
2258 	dsl_dir_rename_arg_t ddra;
2259 
2260 	ddra.ddra_oldname = oldname;
2261 	ddra.ddra_newname = newname;
2262 	ddra.ddra_cred = cr;
2263 
2264 	int err = dsl_sync_task(oldname,
2265 	    dsl_dir_rename_check, dsl_dir_rename_sync, &ddra,
2266 	    3, ZFS_SPACE_CHECK_RESERVED);
2267 
2268 	crfree(cr);
2269 	return (err);
2270 }
2271 
2272 int
2273 dsl_dir_transfer_possible(dsl_dir_t *sdd, dsl_dir_t *tdd,
2274     uint64_t fs_cnt, uint64_t ss_cnt, uint64_t space,
2275     cred_t *cr)
2276 {
2277 	dsl_dir_t *ancestor;
2278 	int64_t adelta;
2279 	uint64_t avail;
2280 	int err;
2281 
2282 	ancestor = closest_common_ancestor(sdd, tdd);
2283 	adelta = would_change(sdd, -space, ancestor);
2284 	avail = dsl_dir_space_available(tdd, ancestor, adelta, FALSE);
2285 	if (avail < space)
2286 		return (SET_ERROR(ENOSPC));
2287 
2288 	err = dsl_fs_ss_limit_check(tdd, fs_cnt, ZFS_PROP_FILESYSTEM_LIMIT,
2289 	    ancestor, cr);
2290 	if (err != 0)
2291 		return (err);
2292 	err = dsl_fs_ss_limit_check(tdd, ss_cnt, ZFS_PROP_SNAPSHOT_LIMIT,
2293 	    ancestor, cr);
2294 	if (err != 0)
2295 		return (err);
2296 
2297 	return (0);
2298 }
2299 
2300 inode_timespec_t
2301 dsl_dir_snap_cmtime(dsl_dir_t *dd)
2302 {
2303 	inode_timespec_t t;
2304 
2305 	mutex_enter(&dd->dd_lock);
2306 	t = dd->dd_snap_cmtime;
2307 	mutex_exit(&dd->dd_lock);
2308 
2309 	return (t);
2310 }
2311 
2312 void
2313 dsl_dir_snap_cmtime_update(dsl_dir_t *dd, dmu_tx_t *tx)
2314 {
2315 	dsl_pool_t *dp = dmu_tx_pool(tx);
2316 	inode_timespec_t t;
2317 
2318 	ASSERT(dsl_pool_sync_context(dp));
2319 	gethrestime(&t);
2320 
2321 	mutex_enter(&dd->dd_lock);
2322 	dd->dd_snap_cmtime = t;
2323 	mutex_exit(&dd->dd_lock);
2324 
2325 	if (!spa_feature_is_enabled(dp->dp_spa,
2326 	    SPA_FEATURE_EXTENSIBLE_DATASET)) {
2327 		return;
2328 	}
2329 
2330 	objset_t *mos = dd->dd_pool->dp_meta_objset;
2331 
2332 	/*
2333 	 * dsl_dir_zapify() and zap_update() may dirty buffers and recurse
2334 	 * into space accounting, so do not call them with dd_lock held.
2335 	 */
2336 	dsl_dir_zapify(dd, tx);
2337 	VERIFY0(zap_update(mos, dd->dd_object, DD_FIELD_SNAPSHOTS_CHANGED,
2338 	    sizeof (uint64_t),
2339 	    sizeof (inode_timespec_t) / sizeof (uint64_t), &t, tx));
2340 }
2341 
2342 void
2343 dsl_dir_zapify(dsl_dir_t *dd, dmu_tx_t *tx)
2344 {
2345 	objset_t *mos = dd->dd_pool->dp_meta_objset;
2346 	dmu_object_zapify(mos, dd->dd_object, DMU_OT_DSL_DIR, tx);
2347 }
2348 
2349 boolean_t
2350 dsl_dir_is_zapified(dsl_dir_t *dd)
2351 {
2352 	dmu_object_info_t doi;
2353 
2354 	dmu_object_info_from_db(dd->dd_dbuf, &doi);
2355 	return (doi.doi_type == DMU_OTN_ZAP_METADATA);
2356 }
2357 
2358 int
2359 dsl_dir_livelist_open(dsl_dir_t *dd, uint64_t obj)
2360 {
2361 	objset_t *mos = dd->dd_pool->dp_meta_objset;
2362 	ASSERT(spa_feature_is_active(dd->dd_pool->dp_spa,
2363 	    SPA_FEATURE_LIVELIST));
2364 	int err = dsl_deadlist_open(&dd->dd_livelist, mos, obj);
2365 	if (err != 0)
2366 		return (err);
2367 	bplist_create(&dd->dd_pending_allocs);
2368 	bplist_create(&dd->dd_pending_frees);
2369 	return (0);
2370 }
2371 
2372 void
2373 dsl_dir_livelist_close(dsl_dir_t *dd)
2374 {
2375 	dsl_deadlist_close(&dd->dd_livelist);
2376 	bplist_destroy(&dd->dd_pending_allocs);
2377 	bplist_destroy(&dd->dd_pending_frees);
2378 }
2379 
2380 void
2381 dsl_dir_remove_livelist(dsl_dir_t *dd, dmu_tx_t *tx, boolean_t total)
2382 {
2383 	uint64_t obj;
2384 	dsl_pool_t *dp = dmu_tx_pool(tx);
2385 	spa_t *spa = dp->dp_spa;
2386 	livelist_condense_entry_t to_condense = spa->spa_to_condense;
2387 
2388 	if (!dsl_deadlist_is_open(&dd->dd_livelist))
2389 		return;
2390 
2391 	/*
2392 	 * If the livelist being removed is set to be condensed, stop the
2393 	 * condense zthr and indicate the cancellation in the spa_to_condense
2394 	 * struct in case the condense no-wait synctask has already started
2395 	 */
2396 	zthr_t *ll_condense_thread = spa->spa_livelist_condense_zthr;
2397 	if (ll_condense_thread != NULL &&
2398 	    (to_condense.ds != NULL) && (to_condense.ds->ds_dir == dd)) {
2399 		/*
2400 		 * We use zthr_wait_cycle_done instead of zthr_cancel
2401 		 * because we don't want to destroy the zthr, just have
2402 		 * it skip its current task.
2403 		 */
2404 		spa->spa_to_condense.cancelled = B_TRUE;
2405 		zthr_wait_cycle_done(ll_condense_thread);
2406 		/*
2407 		 * If we've returned from zthr_wait_cycle_done without
2408 		 * clearing the to_condense data structure it's either
2409 		 * because the no-wait synctask has started (which is
2410 		 * indicated by 'syncing' field of to_condense) and we
2411 		 * can expect it to clear to_condense on its own.
2412 		 * Otherwise, we returned before the zthr ran. The
2413 		 * checkfunc will now fail as cancelled == B_TRUE so we
2414 		 * can safely NULL out ds, allowing a different dir's
2415 		 * livelist to be condensed.
2416 		 *
2417 		 * We can be sure that the to_condense struct will not
2418 		 * be repopulated at this stage because both this
2419 		 * function and dsl_livelist_try_condense execute in
2420 		 * syncing context.
2421 		 */
2422 		if ((spa->spa_to_condense.ds != NULL) &&
2423 		    !spa->spa_to_condense.syncing) {
2424 			dmu_buf_rele(spa->spa_to_condense.ds->ds_dbuf,
2425 			    spa);
2426 			spa->spa_to_condense.ds = NULL;
2427 		}
2428 	}
2429 
2430 	dsl_dir_livelist_close(dd);
2431 	VERIFY0(zap_lookup(dp->dp_meta_objset, dd->dd_object,
2432 	    DD_FIELD_LIVELIST, sizeof (uint64_t), 1, &obj));
2433 	VERIFY0(zap_remove(dp->dp_meta_objset, dd->dd_object,
2434 	    DD_FIELD_LIVELIST, tx));
2435 	if (total) {
2436 		dsl_deadlist_free(dp->dp_meta_objset, obj, tx);
2437 		spa_feature_decr(spa, SPA_FEATURE_LIVELIST, tx);
2438 	}
2439 }
2440 
2441 static int
2442 dsl_dir_activity_in_progress(dsl_dir_t *dd, dsl_dataset_t *ds,
2443     zfs_wait_activity_t activity, boolean_t *in_progress)
2444 {
2445 	int error = 0;
2446 
2447 	ASSERT(MUTEX_HELD(&dd->dd_activity_lock));
2448 
2449 	switch (activity) {
2450 	case ZFS_WAIT_DELETEQ: {
2451 #ifdef _KERNEL
2452 		objset_t *os;
2453 		error = dmu_objset_from_ds(ds, &os);
2454 		if (error != 0)
2455 			break;
2456 
2457 		mutex_enter(&os->os_user_ptr_lock);
2458 		void *user = dmu_objset_get_user(os);
2459 		mutex_exit(&os->os_user_ptr_lock);
2460 		if (dmu_objset_type(os) != DMU_OST_ZFS ||
2461 		    user == NULL || zfs_get_vfs_flag_unmounted(os)) {
2462 			*in_progress = B_FALSE;
2463 			return (0);
2464 		}
2465 
2466 		uint64_t readonly = B_FALSE;
2467 		error = zfs_get_temporary_prop(ds, ZFS_PROP_READONLY, &readonly,
2468 		    NULL);
2469 
2470 		if (error != 0)
2471 			break;
2472 
2473 		if (readonly || !spa_writeable(dd->dd_pool->dp_spa)) {
2474 			*in_progress = B_FALSE;
2475 			return (0);
2476 		}
2477 
2478 		uint64_t count, unlinked_obj;
2479 		error = zap_lookup(os, MASTER_NODE_OBJ, ZFS_UNLINKED_SET, 8, 1,
2480 		    &unlinked_obj);
2481 		if (error != 0) {
2482 			dsl_dataset_rele(ds, FTAG);
2483 			break;
2484 		}
2485 		error = zap_count(os, unlinked_obj, &count);
2486 
2487 		if (error == 0)
2488 			*in_progress = (count != 0);
2489 		break;
2490 #else
2491 		/*
2492 		 * The delete queue is ZPL specific, and libzpool doesn't have
2493 		 * it. It doesn't make sense to wait for it.
2494 		 */
2495 		(void) ds;
2496 		*in_progress = B_FALSE;
2497 		break;
2498 #endif
2499 	}
2500 	default:
2501 		panic("unrecognized value for activity %d", activity);
2502 	}
2503 
2504 	return (error);
2505 }
2506 
2507 int
2508 dsl_dir_wait(dsl_dir_t *dd, dsl_dataset_t *ds, zfs_wait_activity_t activity,
2509     boolean_t *waited)
2510 {
2511 	int error = 0;
2512 	boolean_t in_progress;
2513 	dsl_pool_t *dp = dd->dd_pool;
2514 	for (;;) {
2515 		dsl_pool_config_enter(dp, FTAG);
2516 		error = dsl_dir_activity_in_progress(dd, ds, activity,
2517 		    &in_progress);
2518 		dsl_pool_config_exit(dp, FTAG);
2519 		if (error != 0 || !in_progress)
2520 			break;
2521 
2522 		*waited = B_TRUE;
2523 
2524 		if (cv_wait_sig(&dd->dd_activity_cv, &dd->dd_activity_lock) ==
2525 		    0 || dd->dd_activity_cancelled) {
2526 			error = SET_ERROR(EINTR);
2527 			break;
2528 		}
2529 	}
2530 	return (error);
2531 }
2532 
2533 void
2534 dsl_dir_cancel_waiters(dsl_dir_t *dd)
2535 {
2536 	mutex_enter(&dd->dd_activity_lock);
2537 	dd->dd_activity_cancelled = B_TRUE;
2538 	cv_broadcast(&dd->dd_activity_cv);
2539 	while (dd->dd_activity_waiters > 0)
2540 		cv_wait(&dd->dd_activity_cv, &dd->dd_activity_lock);
2541 	mutex_exit(&dd->dd_activity_lock);
2542 }
2543 
2544 EXPORT_SYMBOL(dsl_dir_set_quota);
2545 EXPORT_SYMBOL(dsl_dir_set_reservation);
2546 
2547 ZFS_MODULE_PARAM(zfs, , zvol_enforce_quotas, INT, ZMOD_RW,
2548 	"Enable strict ZVOL quota enforcment");
2549